summaryrefslogtreecommitdiff
path: root/sv.c
blob: 68b4b8219d7d0596af8e2cfd36f11bc8d3c57382 (plain)
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
394
395
396
397
398
399
400
401
402
403
404
405
406
407
408
409
410
411
412
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
443
444
445
446
447
448
449
450
451
452
453
454
455
456
457
458
459
460
461
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
492
493
494
495
496
497
498
499
500
501
502
503
504
505
506
507
508
509
510
511
512
513
514
515
516
517
518
519
520
521
522
523
524
525
526
527
528
529
530
531
532
533
534
535
536
537
538
539
540
541
542
543
544
545
546
547
548
549
550
551
552
553
554
555
556
557
558
559
560
561
562
563
564
565
566
567
568
569
570
571
572
573
574
575
576
577
578
579
580
581
582
583
584
585
586
587
588
589
590
591
592
593
594
595
596
597
598
599
600
601
602
603
604
605
606
607
608
609
610
611
612
613
614
615
616
617
618
619
620
621
622
623
624
625
626
627
628
629
630
631
632
633
634
635
636
637
638
639
640
641
642
643
644
645
646
647
648
649
650
651
652
653
654
655
656
657
658
659
660
661
662
663
664
665
666
667
668
669
670
671
672
673
674
675
676
677
678
679
680
681
682
683
684
685
686
687
688
689
690
691
692
693
694
695
696
697
698
699
700
701
702
703
704
705
706
707
708
709
710
711
712
713
714
715
716
717
718
719
720
721
722
723
724
725
726
727
728
729
730
731
732
733
734
735
736
737
738
739
740
741
742
743
744
745
746
747
748
749
750
751
752
753
754
755
756
757
758
759
760
761
762
763
764
765
766
767
768
769
770
771
772
773
774
775
776
777
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793
794
795
796
797
798
799
800
801
802
803
804
805
806
807
808
809
810
811
812
813
814
815
816
817
818
819
820
821
822
823
824
825
826
827
828
829
830
831
832
833
834
835
836
837
838
839
840
841
842
843
844
845
846
847
848
849
850
851
852
853
854
855
856
857
858
859
860
861
862
863
864
865
866
867
868
869
870
871
872
873
874
875
876
877
878
879
880
881
882
883
884
885
886
887
888
889
890
891
892
893
894
895
896
897
898
899
900
901
902
903
904
905
906
907
908
909
910
911
912
913
914
915
916
917
918
919
920
921
922
923
924
925
926
927
928
929
930
931
932
933
934
935
936
937
938
939
940
941
942
943
944
945
946
947
948
949
950
951
952
953
954
955
956
957
958
959
960
961
962
963
964
965
966
967
968
969
970
971
972
973
974
975
976
977
978
979
980
981
982
983
984
985
986
987
988
989
990
991
992
993
994
995
996
997
998
999
1000
1001
1002
1003
1004
1005
1006
1007
1008
1009
1010
1011
1012
1013
1014
1015
1016
1017
1018
1019
1020
1021
1022
1023
1024
1025
1026
1027
1028
1029
1030
1031
1032
1033
1034
1035
1036
1037
1038
1039
1040
1041
1042
1043
1044
1045
1046
1047
1048
1049
1050
1051
1052
1053
1054
1055
1056
1057
1058
1059
1060
1061
1062
1063
1064
1065
1066
1067
1068
1069
1070
1071
1072
1073
1074
1075
1076
1077
1078
1079
1080
1081
1082
1083
1084
1085
1086
1087
1088
1089
1090
1091
1092
1093
1094
1095
1096
1097
1098
1099
1100
1101
1102
1103
1104
1105
1106
1107
1108
1109
1110
1111
1112
1113
1114
1115
1116
1117
1118
1119
1120
1121
1122
1123
1124
1125
1126
1127
1128
1129
1130
1131
1132
1133
1134
1135
1136
1137
1138
1139
1140
1141
1142
1143
1144
1145
1146
1147
1148
1149
1150
1151
1152
1153
1154
1155
1156
1157
1158
1159
1160
1161
1162
1163
1164
1165
1166
1167
1168
1169
1170
1171
1172
1173
1174
1175
1176
1177
1178
1179
1180
1181
1182
1183
1184
1185
1186
1187
1188
1189
1190
1191
1192
1193
1194
1195
1196
1197
1198
1199
1200
1201
1202
1203
1204
1205
1206
1207
1208
1209
1210
1211
1212
1213
1214
1215
1216
1217
1218
1219
1220
1221
1222
1223
1224
1225
1226
1227
1228
1229
1230
1231
1232
1233
1234
1235
1236
1237
1238
1239
1240
1241
1242
1243
1244
1245
1246
1247
1248
1249
1250
1251
1252
1253
1254
1255
1256
1257
1258
1259
1260
1261
1262
1263
1264
1265
1266
1267
1268
1269
1270
1271
1272
1273
1274
1275
1276
1277
1278
1279
1280
1281
1282
1283
1284
1285
1286
1287
1288
1289
1290
1291
1292
1293
1294
1295
1296
1297
1298
1299
1300
1301
1302
1303
1304
1305
1306
1307
1308
1309
1310
1311
1312
1313
1314
1315
1316
1317
1318
1319
1320
1321
1322
1323
1324
1325
1326
1327
1328
1329
1330
1331
1332
1333
1334
1335
1336
1337
1338
1339
1340
1341
1342
1343
1344
1345
1346
1347
1348
1349
1350
1351
1352
1353
1354
1355
1356
1357
1358
1359
1360
1361
1362
1363
1364
1365
1366
1367
1368
1369
1370
1371
1372
1373
1374
1375
1376
1377
1378
1379
1380
1381
1382
1383
1384
1385
1386
1387
1388
1389
1390
1391
1392
1393
1394
1395
1396
1397
1398
1399
1400
1401
1402
1403
1404
1405
1406
1407
1408
1409
1410
1411
1412
1413
1414
1415
1416
1417
1418
1419
1420
1421
1422
1423
1424
1425
1426
1427
1428
1429
1430
1431
1432
1433
1434
1435
1436
1437
1438
1439
1440
1441
1442
1443
1444
1445
1446
1447
1448
1449
1450
1451
1452
1453
1454
1455
1456
1457
1458
1459
1460
1461
1462
1463
1464
1465
1466
1467
1468
1469
1470
1471
1472
1473
1474
1475
1476
1477
1478
1479
1480
1481
1482
1483
1484
1485
1486
1487
1488
1489
1490
1491
1492
1493
1494
1495
1496
1497
1498
1499
1500
1501
1502
1503
1504
1505
1506
1507
1508
1509
1510
1511
1512
1513
1514
1515
1516
1517
1518
1519
1520
1521
1522
1523
1524
1525
1526
1527
1528
1529
1530
1531
1532
1533
1534
1535
1536
1537
1538
1539
1540
1541
1542
1543
1544
1545
1546
1547
1548
1549
1550
1551
1552
1553
1554
1555
1556
1557
1558
1559
1560
1561
1562
1563
1564
1565
1566
1567
1568
1569
1570
1571
1572
1573
1574
1575
1576
1577
1578
1579
1580
1581
1582
1583
1584
1585
1586
1587
1588
1589
1590
1591
1592
1593
1594
1595
1596
1597
1598
1599
1600
1601
1602
1603
1604
1605
1606
1607
1608
1609
1610
1611
1612
1613
1614
1615
1616
1617
1618
1619
1620
1621
1622
1623
1624
1625
1626
1627
1628
1629
1630
1631
1632
1633
1634
1635
1636
1637
1638
1639
1640
1641
1642
1643
1644
1645
1646
1647
1648
1649
1650
1651
1652
1653
1654
1655
1656
1657
1658
1659
1660
1661
1662
1663
1664
1665
1666
1667
1668
1669
1670
1671
1672
1673
1674
1675
1676
1677
1678
1679
1680
1681
1682
1683
1684
1685
1686
1687
1688
1689
1690
1691
1692
1693
1694
1695
1696
1697
1698
1699
1700
1701
1702
1703
1704
1705
1706
1707
1708
1709
1710
1711
1712
1713
1714
1715
1716
1717
1718
1719
1720
1721
1722
1723
1724
1725
1726
1727
1728
1729
1730
1731
1732
1733
1734
1735
1736
1737
1738
1739
1740
1741
1742
1743
1744
1745
1746
1747
1748
1749
1750
1751
1752
1753
1754
1755
1756
1757
1758
1759
1760
1761
1762
1763
1764
1765
1766
1767
1768
1769
1770
1771
1772
1773
1774
1775
1776
1777
1778
1779
1780
1781
1782
1783
1784
1785
1786
1787
1788
1789
1790
1791
1792
1793
1794
1795
1796
1797
1798
1799
1800
1801
1802
1803
1804
1805
1806
1807
1808
1809
1810
1811
1812
1813
1814
1815
1816
1817
1818
1819
1820
1821
1822
1823
1824
1825
1826
1827
1828
1829
1830
1831
1832
1833
1834
1835
1836
1837
1838
1839
1840
1841
1842
1843
1844
1845
1846
1847
1848
1849
1850
1851
1852
1853
1854
1855
1856
1857
1858
1859
1860
1861
1862
1863
1864
1865
1866
1867
1868
1869
1870
1871
1872
1873
1874
1875
1876
1877
1878
1879
1880
1881
1882
1883
1884
1885
1886
1887
1888
1889
1890
1891
1892
1893
1894
1895
1896
1897
1898
1899
1900
1901
1902
1903
1904
1905
1906
1907
1908
1909
1910
1911
1912
1913
1914
1915
1916
1917
1918
1919
1920
1921
1922
1923
1924
1925
1926
1927
1928
1929
1930
1931
1932
1933
1934
1935
1936
1937
1938
1939
1940
1941
1942
1943
1944
1945
1946
1947
1948
1949
1950
1951
1952
1953
1954
1955
1956
1957
1958
1959
1960
1961
1962
1963
1964
1965
1966
1967
1968
1969
1970
1971
1972
1973
1974
1975
1976
1977
1978
1979
1980
1981
1982
1983
1984
1985
1986
1987
1988
1989
1990
1991
1992
1993
1994
1995
1996
1997
1998
1999
2000
2001
2002
2003
2004
2005
2006
2007
2008
2009
2010
2011
2012
2013
2014
2015
2016
2017
2018
2019
2020
2021
2022
2023
2024
2025
2026
2027
2028
2029
2030
2031
2032
2033
2034
2035
2036
2037
2038
2039
2040
2041
2042
2043
2044
2045
2046
2047
2048
2049
2050
2051
2052
2053
2054
2055
2056
2057
2058
2059
2060
2061
2062
2063
2064
2065
2066
2067
2068
2069
2070
2071
2072
2073
2074
2075
2076
2077
2078
2079
2080
2081
2082
2083
2084
2085
2086
2087
2088
2089
2090
2091
2092
2093
2094
2095
2096
2097
2098
2099
2100
2101
2102
2103
2104
2105
2106
2107
2108
2109
2110
2111
2112
2113
2114
2115
2116
2117
2118
2119
2120
2121
2122
2123
2124
2125
2126
2127
2128
2129
2130
2131
2132
2133
2134
2135
2136
2137
2138
2139
2140
2141
2142
2143
2144
2145
2146
2147
2148
2149
2150
2151
2152
2153
2154
2155
2156
2157
2158
2159
2160
2161
2162
2163
2164
2165
2166
2167
2168
2169
2170
2171
2172
2173
2174
2175
2176
2177
2178
2179
2180
2181
2182
2183
2184
2185
2186
2187
2188
2189
2190
2191
2192
2193
2194
2195
2196
2197
2198
2199
2200
2201
2202
2203
2204
2205
2206
2207
2208
2209
2210
2211
2212
2213
2214
2215
2216
2217
2218
2219
2220
2221
2222
2223
2224
2225
2226
2227
2228
2229
2230
2231
2232
2233
2234
2235
2236
2237
2238
2239
2240
2241
2242
2243
2244
2245
2246
2247
2248
2249
2250
2251
2252
2253
2254
2255
2256
2257
2258
2259
2260
2261
2262
2263
2264
2265
2266
2267
2268
2269
2270
2271
2272
2273
2274
2275
2276
2277
2278
2279
2280
2281
2282
2283
2284
2285
2286
2287
2288
2289
2290
2291
2292
2293
2294
2295
2296
2297
2298
2299
2300
2301
2302
2303
2304
2305
2306
2307
2308
2309
2310
2311
2312
2313
2314
2315
2316
2317
2318
2319
2320
2321
2322
2323
2324
2325
2326
2327
2328
2329
2330
2331
2332
2333
2334
2335
2336
2337
2338
2339
2340
2341
2342
2343
2344
2345
2346
2347
2348
2349
2350
2351
2352
2353
2354
2355
2356
2357
2358
2359
2360
2361
2362
2363
2364
2365
2366
2367
2368
2369
2370
2371
2372
2373
2374
2375
2376
2377
2378
2379
2380
2381
2382
2383
2384
2385
2386
2387
2388
2389
2390
2391
2392
2393
2394
2395
2396
2397
2398
2399
2400
2401
2402
2403
2404
2405
2406
2407
2408
2409
2410
2411
2412
2413
2414
2415
2416
2417
2418
2419
2420
2421
2422
2423
2424
2425
2426
2427
2428
2429
2430
2431
2432
2433
2434
2435
2436
2437
2438
2439
2440
2441
2442
2443
2444
2445
2446
2447
2448
2449
2450
2451
2452
2453
2454
2455
2456
2457
2458
2459
2460
2461
2462
2463
2464
2465
2466
2467
2468
2469
2470
2471
2472
2473
2474
2475
2476
2477
2478
2479
2480
2481
2482
2483
2484
2485
2486
2487
2488
2489
2490
2491
2492
2493
2494
2495
2496
2497
2498
2499
2500
2501
2502
2503
2504
2505
2506
2507
2508
2509
2510
2511
2512
2513
2514
2515
2516
2517
2518
2519
2520
2521
2522
2523
2524
2525
2526
2527
2528
2529
2530
2531
2532
2533
2534
2535
2536
2537
2538
2539
2540
2541
2542
2543
2544
2545
2546
2547
2548
2549
2550
2551
2552
2553
2554
2555
2556
2557
2558
2559
2560
2561
2562
2563
2564
2565
2566
2567
2568
2569
2570
2571
2572
2573
2574
2575
2576
2577
2578
2579
2580
2581
2582
2583
2584
2585
2586
2587
2588
2589
2590
2591
2592
2593
2594
2595
2596
2597
2598
2599
2600
2601
2602
2603
2604
2605
2606
2607
2608
2609
2610
2611
2612
2613
2614
2615
2616
2617
2618
2619
2620
2621
2622
2623
2624
2625
2626
2627
2628
2629
2630
2631
2632
2633
2634
2635
2636
2637
2638
2639
2640
2641
2642
2643
2644
2645
2646
2647
2648
2649
2650
2651
2652
2653
2654
2655
2656
2657
2658
2659
2660
2661
2662
2663
2664
2665
2666
2667
2668
2669
2670
2671
2672
2673
2674
2675
2676
2677
2678
2679
2680
2681
2682
2683
2684
2685
2686
2687
2688
2689
2690
2691
2692
2693
2694
2695
2696
2697
2698
2699
2700
2701
2702
2703
2704
2705
2706
2707
2708
2709
2710
2711
2712
2713
2714
2715
2716
2717
2718
2719
2720
2721
2722
2723
2724
2725
2726
2727
2728
2729
2730
2731
2732
2733
2734
2735
2736
2737
2738
2739
2740
2741
2742
2743
2744
2745
2746
2747
2748
2749
2750
2751
2752
2753
2754
2755
2756
2757
2758
2759
2760
2761
2762
2763
2764
2765
2766
2767
2768
2769
2770
2771
2772
2773
2774
2775
2776
2777
2778
2779
2780
2781
2782
2783
2784
2785
2786
2787
2788
2789
2790
2791
2792
2793
2794
2795
2796
2797
2798
2799
2800
2801
2802
2803
2804
2805
2806
2807
2808
2809
2810
2811
2812
2813
2814
2815
2816
2817
2818
2819
2820
2821
2822
2823
2824
2825
2826
2827
2828
2829
2830
2831
2832
2833
2834
2835
2836
2837
2838
2839
2840
2841
2842
2843
2844
2845
2846
2847
2848
2849
2850
2851
2852
2853
2854
2855
2856
2857
2858
2859
2860
2861
2862
2863
2864
2865
2866
2867
2868
2869
2870
2871
2872
2873
2874
2875
2876
2877
2878
2879
2880
2881
2882
2883
2884
2885
2886
2887
2888
2889
2890
2891
2892
2893
2894
2895
2896
2897
2898
2899
2900
2901
2902
2903
2904
2905
2906
2907
2908
2909
2910
2911
2912
2913
2914
2915
2916
2917
2918
2919
2920
2921
2922
2923
2924
2925
2926
2927
2928
2929
2930
2931
2932
2933
2934
2935
2936
2937
2938
2939
2940
2941
2942
2943
2944
2945
2946
2947
2948
2949
2950
2951
2952
2953
2954
2955
2956
2957
2958
2959
2960
2961
2962
2963
2964
2965
2966
2967
2968
2969
2970
2971
2972
2973
2974
2975
2976
2977
2978
2979
2980
2981
2982
2983
2984
2985
2986
2987
2988
2989
2990
2991
2992
2993
2994
2995
2996
2997
2998
2999
3000
3001
3002
3003
3004
3005
3006
3007
3008
3009
3010
3011
3012
3013
3014
3015
3016
3017
3018
3019
3020
3021
3022
3023
3024
3025
3026
3027
3028
3029
3030
3031
3032
3033
3034
3035
3036
3037
3038
3039
3040
3041
3042
3043
3044
3045
3046
3047
3048
3049
3050
3051
3052
3053
3054
3055
3056
3057
3058
3059
3060
3061
3062
3063
3064
3065
3066
3067
3068
3069
3070
3071
3072
3073
3074
3075
3076
3077
3078
3079
3080
3081
3082
3083
3084
3085
3086
3087
3088
3089
3090
3091
3092
3093
3094
3095
3096
3097
3098
3099
3100
3101
3102
3103
3104
3105
3106
3107
3108
3109
3110
3111
3112
3113
3114
3115
3116
3117
3118
3119
3120
3121
3122
3123
3124
3125
3126
3127
3128
3129
3130
3131
3132
3133
3134
3135
3136
3137
3138
3139
3140
3141
3142
3143
3144
3145
3146
3147
3148
3149
3150
3151
3152
3153
3154
3155
3156
3157
3158
3159
3160
3161
3162
3163
3164
3165
3166
3167
3168
3169
3170
3171
3172
3173
3174
3175
3176
3177
3178
3179
3180
3181
3182
3183
3184
3185
3186
3187
3188
3189
3190
3191
3192
3193
3194
3195
3196
3197
3198
3199
3200
3201
3202
3203
3204
3205
3206
3207
3208
3209
3210
3211
3212
3213
3214
3215
3216
3217
3218
3219
3220
3221
3222
3223
3224
3225
3226
3227
3228
3229
3230
3231
3232
3233
3234
3235
3236
3237
3238
3239
3240
3241
3242
3243
3244
3245
3246
3247
3248
3249
3250
3251
3252
3253
3254
3255
3256
3257
3258
3259
3260
3261
3262
3263
3264
3265
3266
3267
3268
3269
3270
3271
3272
3273
3274
3275
3276
3277
3278
3279
3280
3281
3282
3283
3284
3285
3286
3287
3288
3289
3290
3291
3292
3293
3294
3295
3296
3297
3298
3299
3300
3301
3302
3303
3304
3305
3306
3307
3308
3309
3310
3311
3312
3313
3314
3315
3316
3317
3318
3319
3320
3321
3322
3323
3324
3325
3326
3327
3328
3329
3330
3331
3332
3333
3334
3335
3336
3337
3338
3339
3340
3341
3342
3343
3344
3345
3346
3347
3348
3349
3350
3351
3352
3353
3354
3355
3356
3357
3358
3359
3360
3361
3362
3363
3364
3365
3366
3367
3368
3369
3370
3371
3372
3373
3374
3375
3376
3377
3378
3379
3380
3381
3382
3383
3384
3385
3386
3387
3388
3389
3390
3391
3392
3393
3394
3395
3396
3397
3398
3399
3400
3401
3402
3403
3404
3405
3406
3407
3408
3409
3410
3411
3412
3413
3414
3415
3416
3417
3418
3419
3420
3421
3422
3423
3424
3425
3426
3427
3428
3429
3430
3431
3432
3433
3434
3435
3436
3437
3438
3439
3440
3441
3442
3443
3444
3445
3446
3447
3448
3449
3450
3451
3452
3453
3454
3455
3456
3457
3458
3459
3460
3461
3462
3463
3464
3465
3466
3467
3468
3469
3470
3471
3472
3473
3474
3475
3476
3477
3478
3479
3480
3481
3482
3483
3484
3485
3486
3487
3488
3489
3490
3491
3492
3493
3494
3495
3496
3497
3498
3499
3500
3501
3502
3503
3504
3505
3506
3507
3508
3509
3510
3511
3512
3513
3514
3515
3516
3517
3518
3519
3520
3521
3522
3523
3524
3525
3526
3527
3528
3529
3530
3531
3532
3533
3534
3535
3536
3537
3538
3539
3540
3541
3542
3543
3544
3545
3546
3547
3548
3549
3550
3551
3552
3553
3554
3555
3556
3557
3558
3559
3560
3561
3562
3563
3564
3565
3566
3567
3568
3569
3570
3571
3572
3573
3574
3575
3576
3577
3578
3579
3580
3581
3582
3583
3584
3585
3586
3587
3588
3589
3590
3591
3592
3593
3594
3595
3596
3597
3598
3599
3600
3601
3602
3603
3604
3605
3606
3607
3608
3609
3610
3611
3612
3613
3614
3615
3616
3617
3618
3619
3620
3621
3622
3623
3624
3625
3626
3627
3628
3629
3630
3631
3632
3633
3634
3635
3636
3637
3638
3639
3640
3641
3642
3643
3644
3645
3646
3647
3648
3649
3650
3651
3652
3653
3654
3655
3656
3657
3658
3659
3660
3661
3662
3663
3664
3665
3666
3667
3668
3669
3670
3671
3672
3673
3674
3675
3676
3677
3678
3679
3680
3681
3682
3683
3684
3685
3686
3687
3688
3689
3690
3691
3692
3693
3694
3695
3696
3697
3698
3699
3700
3701
3702
3703
3704
3705
3706
3707
3708
3709
3710
3711
3712
3713
3714
3715
3716
3717
3718
3719
3720
3721
3722
3723
3724
3725
3726
3727
3728
3729
3730
3731
3732
3733
3734
3735
3736
3737
3738
3739
3740
3741
3742
3743
3744
3745
3746
3747
3748
3749
3750
3751
3752
3753
3754
3755
3756
3757
3758
3759
3760
3761
3762
3763
3764
3765
3766
3767
3768
3769
3770
3771
3772
3773
3774
3775
3776
3777
3778
3779
3780
3781
3782
3783
3784
3785
3786
3787
3788
3789
3790
3791
3792
3793
3794
3795
3796
3797
3798
3799
3800
3801
3802
3803
3804
3805
3806
3807
3808
3809
3810
3811
3812
3813
3814
3815
3816
3817
3818
3819
3820
3821
3822
3823
3824
3825
3826
3827
3828
3829
3830
3831
3832
3833
3834
3835
3836
3837
3838
3839
3840
3841
3842
3843
3844
3845
3846
3847
3848
3849
3850
3851
3852
3853
3854
3855
3856
3857
3858
3859
3860
3861
3862
3863
3864
3865
3866
3867
3868
3869
3870
3871
3872
3873
3874
3875
3876
3877
3878
3879
3880
3881
3882
3883
3884
3885
3886
3887
3888
3889
3890
3891
3892
3893
3894
3895
3896
3897
3898
3899
3900
3901
3902
3903
3904
3905
3906
3907
3908
3909
3910
3911
3912
3913
3914
3915
3916
3917
3918
3919
3920
3921
3922
3923
3924
3925
3926
3927
3928
3929
3930
3931
3932
3933
3934
3935
3936
3937
3938
3939
3940
3941
3942
3943
3944
3945
3946
3947
3948
3949
3950
3951
3952
3953
3954
3955
3956
3957
3958
3959
3960
3961
3962
3963
3964
3965
3966
3967
3968
3969
3970
3971
3972
3973
3974
3975
3976
3977
3978
3979
3980
3981
3982
3983
3984
3985
3986
3987
3988
3989
3990
3991
3992
3993
3994
3995
3996
3997
3998
3999
4000
4001
4002
4003
4004
4005
4006
4007
4008
4009
4010
4011
4012
4013
4014
4015
4016
4017
4018
4019
4020
4021
4022
4023
4024
4025
4026
4027
4028
4029
4030
4031
4032
4033
4034
4035
4036
4037
4038
4039
4040
4041
4042
4043
4044
4045
4046
4047
4048
4049
4050
4051
4052
4053
4054
4055
4056
4057
4058
4059
4060
4061
4062
4063
4064
4065
4066
4067
4068
4069
4070
4071
4072
4073
4074
4075
4076
4077
4078
4079
4080
4081
4082
4083
4084
4085
4086
4087
4088
4089
4090
4091
4092
4093
4094
4095
4096
4097
4098
4099
4100
4101
4102
4103
4104
4105
4106
4107
4108
4109
4110
4111
4112
4113
4114
4115
4116
4117
4118
4119
4120
4121
4122
4123
4124
4125
4126
4127
4128
4129
4130
4131
4132
4133
4134
4135
4136
4137
4138
4139
4140
4141
4142
4143
4144
4145
4146
4147
4148
4149
4150
4151
4152
4153
4154
4155
4156
4157
4158
4159
4160
4161
4162
4163
4164
4165
4166
4167
4168
4169
4170
4171
4172
4173
4174
4175
4176
4177
4178
4179
4180
4181
4182
4183
4184
4185
4186
4187
4188
4189
4190
4191
4192
4193
4194
4195
4196
4197
4198
4199
4200
4201
4202
4203
4204
4205
4206
4207
4208
4209
4210
4211
4212
4213
4214
4215
4216
4217
4218
4219
4220
4221
4222
4223
4224
4225
4226
4227
4228
4229
4230
4231
4232
4233
4234
4235
4236
4237
4238
4239
4240
4241
4242
4243
4244
4245
4246
4247
4248
4249
4250
4251
4252
4253
4254
4255
4256
4257
4258
4259
4260
4261
4262
4263
4264
4265
4266
4267
4268
4269
4270
4271
4272
4273
4274
4275
4276
4277
4278
4279
4280
4281
4282
4283
4284
4285
4286
4287
4288
4289
4290
4291
4292
4293
4294
4295
4296
4297
4298
4299
4300
4301
4302
4303
4304
4305
4306
4307
4308
4309
4310
4311
4312
4313
4314
4315
4316
4317
4318
4319
4320
4321
4322
4323
4324
4325
4326
4327
4328
4329
4330
4331
4332
4333
4334
4335
4336
4337
4338
4339
4340
4341
4342
4343
4344
4345
4346
4347
4348
4349
4350
4351
4352
4353
4354
4355
4356
4357
4358
4359
4360
4361
4362
4363
4364
4365
4366
4367
4368
4369
4370
4371
4372
4373
4374
4375
4376
4377
4378
4379
4380
4381
4382
4383
4384
4385
4386
4387
4388
4389
4390
4391
4392
4393
4394
4395
4396
4397
4398
4399
4400
4401
4402
4403
4404
4405
4406
4407
4408
4409
4410
4411
4412
4413
4414
4415
4416
4417
4418
4419
4420
4421
4422
4423
4424
4425
4426
4427
4428
4429
4430
4431
4432
4433
4434
4435
4436
4437
4438
4439
4440
4441
4442
4443
4444
4445
4446
4447
4448
4449
4450
4451
4452
4453
4454
4455
4456
4457
4458
4459
4460
4461
4462
4463
4464
4465
4466
4467
4468
4469
4470
4471
4472
4473
4474
4475
4476
4477
4478
4479
4480
4481
4482
4483
4484
4485
4486
4487
4488
4489
4490
4491
4492
4493
4494
4495
4496
4497
4498
4499
4500
4501
4502
4503
4504
4505
4506
4507
4508
4509
4510
4511
4512
4513
4514
4515
4516
4517
4518
4519
4520
4521
4522
4523
4524
4525
4526
4527
4528
4529
4530
4531
4532
4533
4534
4535
4536
4537
4538
4539
4540
4541
4542
4543
4544
4545
4546
4547
4548
4549
4550
4551
4552
4553
4554
4555
4556
4557
4558
4559
4560
4561
4562
4563
4564
4565
4566
4567
4568
4569
4570
4571
4572
4573
4574
4575
4576
4577
4578
4579
4580
4581
4582
4583
4584
4585
4586
4587
4588
4589
4590
4591
4592
4593
4594
4595
4596
4597
4598
4599
4600
4601
4602
4603
4604
4605
4606
4607
4608
4609
4610
4611
4612
4613
4614
4615
4616
4617
4618
4619
4620
4621
4622
4623
4624
4625
4626
4627
4628
4629
4630
4631
4632
4633
4634
4635
4636
4637
4638
4639
4640
4641
4642
4643
4644
4645
4646
4647
4648
4649
4650
4651
4652
4653
4654
4655
4656
4657
4658
4659
4660
4661
4662
4663
4664
4665
4666
4667
4668
4669
4670
4671
4672
4673
4674
4675
4676
4677
4678
4679
4680
4681
4682
4683
4684
4685
4686
4687
4688
4689
4690
4691
4692
4693
4694
4695
4696
4697
4698
4699
4700
4701
4702
4703
4704
4705
4706
4707
4708
4709
4710
4711
4712
4713
4714
4715
4716
4717
4718
4719
4720
4721
4722
4723
4724
4725
4726
4727
4728
4729
4730
4731
4732
4733
4734
4735
4736
4737
4738
4739
4740
4741
4742
4743
4744
4745
4746
4747
4748
4749
4750
4751
4752
4753
4754
4755
4756
4757
4758
4759
4760
4761
4762
4763
4764
4765
4766
4767
4768
4769
4770
4771
4772
4773
4774
4775
4776
4777
4778
4779
4780
4781
4782
4783
4784
4785
4786
4787
4788
4789
4790
4791
4792
4793
4794
4795
4796
4797
4798
4799
4800
4801
4802
4803
4804
4805
4806
4807
4808
4809
4810
4811
4812
4813
4814
4815
4816
4817
4818
4819
4820
4821
4822
4823
4824
4825
4826
4827
4828
4829
4830
4831
4832
4833
4834
4835
4836
4837
4838
4839
4840
4841
4842
4843
4844
4845
4846
4847
4848
4849
4850
4851
4852
4853
4854
4855
4856
4857
4858
4859
4860
4861
4862
4863
4864
4865
4866
4867
4868
4869
4870
4871
4872
4873
4874
4875
4876
4877
4878
4879
4880
4881
4882
4883
4884
4885
4886
4887
4888
4889
4890
4891
4892
4893
4894
4895
4896
4897
4898
4899
4900
4901
4902
4903
4904
4905
4906
4907
4908
4909
4910
4911
4912
4913
4914
4915
4916
4917
4918
4919
4920
4921
4922
4923
4924
4925
4926
4927
4928
4929
4930
4931
4932
4933
4934
4935
4936
4937
4938
4939
4940
4941
4942
4943
4944
4945
4946
4947
4948
4949
4950
4951
4952
4953
4954
4955
4956
4957
4958
4959
4960
4961
4962
4963
4964
4965
4966
4967
4968
4969
4970
4971
4972
4973
4974
4975
4976
4977
4978
4979
4980
4981
4982
4983
4984
4985
4986
4987
4988
4989
4990
4991
4992
4993
4994
4995
4996
4997
4998
4999
5000
5001
5002
5003
5004
5005
5006
5007
5008
5009
5010
5011
5012
5013
5014
5015
5016
5017
5018
5019
5020
5021
5022
5023
5024
5025
5026
5027
5028
5029
5030
5031
5032
5033
5034
5035
5036
5037
5038
5039
5040
5041
5042
5043
5044
5045
5046
5047
5048
5049
5050
5051
5052
5053
5054
5055
5056
5057
5058
5059
5060
5061
5062
5063
5064
5065
5066
5067
5068
5069
5070
5071
5072
5073
5074
5075
5076
5077
5078
5079
5080
5081
5082
5083
5084
5085
5086
5087
5088
5089
5090
5091
5092
5093
5094
5095
5096
5097
5098
5099
5100
5101
5102
5103
5104
5105
5106
5107
5108
5109
5110
5111
5112
5113
5114
5115
5116
5117
5118
5119
5120
5121
5122
5123
5124
5125
5126
5127
5128
5129
5130
5131
5132
5133
5134
5135
5136
5137
5138
5139
5140
5141
5142
5143
5144
5145
5146
5147
5148
5149
5150
5151
5152
5153
5154
5155
5156
5157
5158
5159
5160
5161
5162
5163
5164
5165
5166
5167
5168
5169
5170
5171
5172
5173
5174
5175
5176
5177
5178
5179
5180
5181
5182
5183
5184
5185
5186
5187
5188
5189
5190
5191
5192
5193
5194
5195
5196
5197
5198
5199
5200
5201
5202
5203
5204
5205
5206
5207
5208
5209
5210
5211
5212
5213
5214
5215
5216
5217
5218
5219
5220
5221
5222
5223
5224
5225
5226
5227
5228
5229
5230
5231
5232
5233
5234
5235
5236
5237
5238
5239
5240
5241
5242
5243
5244
5245
5246
5247
5248
5249
5250
5251
5252
5253
5254
5255
5256
5257
5258
5259
5260
5261
5262
5263
5264
5265
5266
5267
5268
5269
5270
5271
5272
5273
5274
5275
5276
5277
5278
5279
5280
5281
5282
5283
5284
5285
5286
5287
5288
5289
5290
5291
5292
5293
5294
5295
5296
5297
5298
5299
5300
5301
5302
5303
5304
5305
5306
5307
5308
5309
5310
5311
5312
5313
5314
5315
5316
5317
5318
5319
5320
5321
5322
5323
5324
5325
5326
5327
5328
5329
5330
5331
5332
5333
5334
5335
5336
5337
5338
5339
5340
5341
5342
5343
5344
5345
5346
5347
5348
5349
5350
5351
5352
5353
5354
5355
5356
5357
5358
5359
5360
5361
5362
5363
5364
5365
5366
5367
5368
5369
5370
5371
5372
5373
5374
5375
5376
5377
5378
5379
5380
5381
5382
5383
5384
5385
5386
5387
5388
5389
5390
5391
5392
5393
5394
5395
5396
5397
5398
5399
5400
5401
5402
5403
5404
5405
5406
5407
5408
5409
5410
5411
5412
5413
5414
5415
5416
5417
5418
5419
5420
5421
5422
5423
5424
5425
5426
5427
5428
5429
5430
5431
5432
5433
5434
5435
5436
5437
5438
5439
5440
5441
5442
5443
5444
5445
5446
5447
5448
5449
5450
5451
5452
5453
5454
5455
5456
5457
5458
5459
5460
5461
5462
5463
5464
5465
5466
5467
5468
5469
5470
5471
5472
5473
5474
5475
5476
5477
5478
5479
5480
5481
5482
5483
5484
5485
5486
5487
5488
5489
5490
5491
5492
5493
5494
5495
5496
5497
5498
5499
5500
5501
5502
5503
5504
5505
5506
5507
5508
5509
5510
5511
5512
5513
5514
5515
5516
5517
5518
5519
5520
5521
5522
5523
5524
5525
5526
5527
5528
5529
5530
5531
5532
5533
5534
5535
5536
5537
5538
5539
5540
5541
5542
5543
5544
5545
5546
5547
5548
5549
5550
5551
5552
5553
5554
5555
5556
5557
5558
5559
5560
5561
5562
5563
5564
5565
5566
5567
5568
5569
5570
5571
5572
5573
5574
5575
5576
5577
5578
5579
5580
5581
5582
5583
5584
5585
5586
5587
5588
5589
5590
5591
5592
5593
5594
5595
5596
5597
5598
5599
5600
5601
5602
5603
5604
5605
5606
5607
5608
5609
5610
5611
5612
5613
5614
5615
5616
5617
5618
5619
5620
5621
5622
5623
5624
5625
5626
5627
5628
5629
5630
5631
5632
5633
5634
5635
5636
5637
5638
5639
5640
5641
5642
5643
5644
5645
5646
5647
5648
5649
5650
5651
5652
5653
5654
5655
5656
5657
5658
5659
5660
5661
5662
5663
5664
5665
5666
5667
5668
5669
5670
5671
5672
5673
5674
5675
5676
5677
5678
5679
5680
5681
5682
5683
5684
5685
5686
5687
5688
5689
5690
5691
5692
5693
5694
5695
5696
5697
5698
5699
5700
5701
5702
5703
5704
5705
5706
5707
5708
5709
5710
5711
5712
5713
5714
5715
5716
5717
5718
5719
5720
5721
5722
5723
5724
5725
5726
5727
5728
5729
5730
5731
5732
5733
5734
5735
5736
5737
5738
5739
5740
5741
5742
5743
5744
5745
5746
5747
5748
5749
5750
5751
5752
5753
5754
5755
5756
5757
5758
5759
5760
5761
5762
5763
5764
5765
5766
5767
5768
5769
5770
5771
5772
5773
5774
5775
5776
5777
5778
5779
5780
5781
5782
5783
5784
5785
5786
5787
5788
5789
5790
5791
5792
5793
5794
5795
5796
5797
5798
5799
5800
5801
5802
5803
5804
5805
5806
5807
5808
5809
5810
5811
5812
5813
5814
5815
5816
5817
5818
5819
5820
5821
5822
5823
5824
5825
5826
5827
5828
5829
5830
5831
5832
5833
5834
5835
5836
5837
5838
5839
5840
5841
5842
5843
5844
5845
5846
5847
5848
5849
5850
5851
5852
5853
5854
5855
5856
5857
5858
5859
5860
5861
5862
5863
5864
5865
5866
5867
5868
5869
5870
5871
5872
5873
5874
5875
5876
5877
5878
5879
5880
5881
5882
5883
5884
5885
5886
5887
5888
5889
5890
5891
5892
5893
5894
5895
5896
5897
5898
5899
5900
5901
5902
5903
5904
5905
5906
5907
5908
5909
5910
5911
5912
5913
5914
5915
5916
5917
5918
5919
5920
5921
5922
5923
5924
5925
5926
5927
5928
5929
5930
5931
5932
5933
5934
5935
5936
5937
5938
5939
5940
5941
5942
5943
5944
5945
5946
5947
5948
5949
5950
5951
5952
5953
5954
5955
5956
5957
5958
5959
5960
5961
5962
5963
5964
5965
5966
5967
5968
5969
5970
5971
5972
5973
5974
5975
5976
5977
5978
5979
5980
5981
5982
5983
5984
5985
5986
5987
5988
5989
5990
5991
5992
5993
5994
5995
5996
5997
5998
5999
6000
6001
6002
6003
6004
6005
6006
6007
6008
6009
6010
6011
6012
6013
6014
6015
6016
6017
6018
6019
6020
6021
6022
6023
6024
6025
6026
6027
6028
6029
6030
6031
6032
6033
6034
6035
6036
6037
6038
6039
6040
6041
6042
6043
6044
6045
6046
6047
6048
6049
6050
6051
6052
6053
6054
6055
6056
6057
6058
6059
6060
6061
6062
6063
6064
6065
6066
6067
6068
6069
6070
6071
6072
6073
6074
6075
6076
6077
6078
6079
6080
6081
6082
6083
6084
6085
6086
6087
6088
6089
6090
6091
6092
6093
6094
6095
6096
6097
6098
6099
6100
6101
6102
6103
6104
6105
6106
6107
6108
6109
6110
6111
6112
6113
6114
6115
6116
6117
6118
6119
6120
6121
6122
6123
6124
6125
6126
6127
6128
6129
6130
6131
6132
6133
6134
6135
6136
6137
6138
6139
6140
6141
6142
6143
6144
6145
6146
6147
6148
6149
6150
6151
6152
6153
6154
6155
6156
6157
6158
6159
6160
6161
6162
6163
6164
6165
6166
6167
6168
6169
6170
6171
6172
6173
6174
6175
6176
6177
6178
6179
6180
6181
6182
6183
6184
6185
6186
6187
6188
6189
6190
6191
6192
6193
6194
6195
6196
6197
6198
6199
6200
6201
6202
6203
6204
6205
6206
6207
6208
6209
6210
6211
6212
6213
6214
6215
6216
6217
6218
6219
6220
6221
6222
6223
6224
6225
6226
6227
6228
6229
6230
6231
6232
6233
6234
6235
6236
6237
6238
6239
6240
6241
6242
6243
6244
6245
6246
6247
6248
6249
6250
6251
6252
6253
6254
6255
6256
6257
6258
6259
6260
6261
6262
6263
6264
6265
6266
6267
6268
6269
6270
6271
6272
6273
6274
6275
6276
6277
6278
6279
6280
6281
6282
6283
6284
6285
6286
6287
6288
6289
6290
6291
6292
6293
6294
6295
6296
6297
6298
6299
6300
6301
6302
6303
6304
6305
6306
6307
6308
6309
6310
6311
6312
6313
6314
6315
6316
6317
6318
6319
6320
6321
6322
6323
6324
6325
6326
6327
6328
6329
6330
6331
6332
6333
6334
6335
6336
6337
6338
6339
6340
6341
6342
6343
6344
6345
6346
6347
6348
6349
6350
6351
6352
6353
6354
6355
6356
6357
6358
6359
6360
6361
6362
6363
6364
6365
6366
6367
6368
6369
6370
6371
6372
6373
6374
6375
6376
6377
6378
6379
6380
6381
6382
6383
6384
6385
6386
6387
6388
6389
6390
6391
6392
6393
6394
6395
6396
6397
6398
6399
6400
6401
6402
6403
6404
6405
6406
6407
6408
6409
6410
6411
6412
6413
6414
6415
6416
6417
6418
6419
6420
6421
6422
6423
6424
6425
6426
6427
6428
6429
6430
6431
6432
6433
6434
6435
6436
6437
6438
6439
6440
6441
6442
6443
6444
6445
6446
6447
6448
6449
6450
6451
6452
6453
6454
6455
6456
6457
6458
6459
6460
6461
6462
6463
6464
6465
6466
6467
6468
6469
6470
6471
6472
6473
6474
6475
6476
6477
6478
6479
6480
6481
6482
6483
6484
6485
6486
6487
6488
6489
6490
6491
6492
6493
6494
6495
6496
6497
6498
6499
6500
6501
6502
6503
6504
6505
6506
6507
6508
6509
6510
6511
6512
6513
6514
6515
6516
6517
6518
6519
6520
6521
6522
6523
6524
6525
6526
6527
6528
6529
6530
6531
6532
6533
6534
6535
6536
6537
6538
6539
6540
6541
6542
6543
6544
6545
6546
6547
6548
6549
6550
6551
6552
6553
6554
6555
6556
6557
6558
6559
6560
6561
6562
6563
6564
6565
6566
6567
6568
6569
6570
6571
6572
6573
6574
6575
6576
6577
6578
6579
6580
6581
6582
6583
6584
6585
6586
6587
6588
6589
6590
6591
6592
6593
6594
6595
6596
6597
6598
6599
6600
6601
6602
6603
6604
6605
6606
6607
6608
6609
6610
6611
6612
6613
6614
6615
6616
6617
6618
6619
6620
6621
6622
6623
6624
6625
6626
6627
6628
6629
6630
6631
6632
6633
6634
6635
6636
6637
6638
6639
6640
6641
6642
6643
6644
6645
6646
6647
6648
6649
6650
6651
6652
6653
6654
6655
6656
6657
6658
6659
6660
6661
6662
6663
6664
6665
6666
6667
6668
6669
6670
6671
6672
6673
6674
6675
6676
6677
6678
6679
6680
6681
6682
6683
6684
6685
6686
6687
6688
6689
6690
6691
6692
6693
6694
6695
6696
6697
6698
6699
6700
6701
6702
6703
6704
6705
6706
6707
6708
6709
6710
6711
6712
6713
6714
6715
6716
6717
6718
6719
6720
6721
6722
6723
6724
6725
6726
6727
6728
6729
6730
6731
6732
6733
6734
6735
6736
6737
6738
6739
6740
6741
6742
6743
6744
6745
6746
6747
6748
6749
6750
6751
6752
6753
6754
6755
6756
6757
6758
6759
6760
6761
6762
6763
6764
6765
6766
6767
6768
6769
6770
6771
6772
6773
6774
6775
6776
6777
6778
6779
6780
6781
6782
6783
6784
6785
6786
6787
6788
6789
6790
6791
6792
6793
6794
6795
6796
6797
6798
6799
6800
6801
6802
6803
6804
6805
6806
6807
6808
6809
6810
6811
6812
6813
6814
6815
6816
6817
6818
6819
6820
6821
6822
6823
6824
6825
6826
6827
6828
6829
6830
6831
6832
6833
6834
6835
6836
6837
6838
6839
6840
6841
6842
6843
6844
6845
6846
6847
6848
6849
6850
6851
6852
6853
6854
6855
6856
6857
6858
6859
6860
6861
6862
6863
6864
6865
6866
6867
6868
6869
6870
6871
6872
6873
6874
6875
6876
6877
6878
6879
6880
6881
6882
6883
6884
6885
6886
6887
6888
6889
6890
6891
6892
6893
6894
6895
6896
6897
6898
6899
6900
6901
6902
6903
6904
6905
6906
6907
6908
6909
6910
6911
6912
6913
6914
6915
6916
6917
6918
6919
6920
6921
6922
6923
6924
6925
6926
6927
6928
6929
6930
6931
6932
6933
6934
6935
6936
6937
6938
6939
6940
6941
6942
6943
6944
6945
6946
6947
6948
6949
6950
6951
6952
6953
6954
6955
6956
6957
6958
6959
6960
6961
6962
6963
6964
6965
6966
6967
6968
6969
6970
6971
6972
6973
6974
6975
6976
6977
6978
6979
6980
6981
6982
6983
6984
6985
6986
6987
6988
6989
6990
6991
6992
6993
6994
6995
6996
6997
6998
6999
7000
7001
7002
7003
7004
7005
7006
7007
7008
7009
7010
7011
7012
7013
7014
7015
7016
7017
7018
7019
7020
7021
7022
7023
7024
7025
7026
7027
7028
7029
7030
7031
7032
7033
7034
7035
7036
7037
7038
7039
7040
7041
7042
7043
7044
7045
7046
7047
7048
7049
7050
7051
7052
7053
7054
7055
7056
7057
7058
7059
7060
7061
7062
7063
7064
7065
7066
7067
7068
7069
7070
7071
7072
7073
7074
7075
7076
7077
7078
7079
7080
7081
7082
7083
7084
7085
7086
7087
7088
7089
7090
7091
7092
7093
7094
7095
7096
7097
7098
7099
7100
7101
7102
7103
7104
7105
7106
7107
7108
7109
7110
7111
7112
7113
7114
7115
7116
7117
7118
7119
7120
7121
7122
7123
7124
7125
7126
7127
7128
7129
7130
7131
7132
7133
7134
7135
7136
7137
7138
7139
7140
7141
7142
7143
7144
7145
7146
7147
7148
7149
7150
7151
7152
7153
7154
7155
7156
7157
7158
7159
7160
7161
7162
7163
7164
7165
7166
7167
7168
7169
7170
7171
7172
7173
7174
7175
7176
7177
7178
7179
7180
7181
7182
7183
7184
7185
7186
7187
7188
7189
7190
7191
7192
7193
7194
7195
7196
7197
7198
7199
7200
7201
7202
7203
7204
7205
7206
7207
7208
7209
7210
7211
7212
7213
7214
7215
7216
7217
7218
7219
7220
7221
7222
7223
7224
7225
7226
7227
7228
7229
7230
7231
7232
7233
7234
7235
7236
7237
7238
7239
7240
7241
7242
7243
7244
7245
7246
7247
7248
7249
7250
7251
7252
7253
7254
7255
7256
7257
7258
7259
7260
7261
7262
7263
7264
7265
7266
7267
7268
7269
7270
7271
7272
7273
7274
7275
7276
7277
7278
7279
7280
7281
7282
7283
7284
7285
7286
7287
7288
7289
7290
7291
7292
7293
7294
7295
7296
7297
7298
7299
7300
7301
7302
7303
7304
7305
7306
7307
7308
7309
7310
7311
7312
7313
7314
7315
7316
7317
7318
7319
7320
7321
7322
7323
7324
7325
7326
7327
7328
7329
7330
7331
7332
7333
7334
7335
7336
7337
7338
7339
7340
7341
7342
7343
7344
7345
7346
7347
7348
7349
7350
7351
7352
7353
7354
7355
7356
7357
7358
7359
7360
7361
7362
7363
7364
7365
7366
7367
7368
7369
7370
7371
7372
7373
7374
7375
7376
7377
7378
7379
7380
7381
7382
7383
7384
7385
7386
7387
7388
7389
7390
7391
7392
7393
7394
7395
7396
7397
7398
7399
7400
7401
7402
7403
7404
7405
7406
7407
7408
7409
7410
7411
7412
7413
7414
7415
7416
7417
7418
7419
7420
7421
7422
7423
7424
7425
7426
7427
7428
7429
7430
7431
7432
7433
7434
7435
7436
7437
7438
7439
7440
7441
7442
7443
7444
7445
7446
7447
7448
7449
7450
7451
7452
7453
7454
7455
7456
7457
7458
7459
7460
7461
7462
7463
7464
7465
7466
7467
7468
7469
7470
7471
7472
7473
7474
7475
7476
7477
7478
7479
7480
7481
7482
7483
7484
7485
7486
7487
7488
7489
7490
7491
7492
7493
7494
7495
7496
7497
7498
7499
7500
7501
7502
7503
7504
7505
7506
7507
7508
7509
7510
7511
7512
7513
7514
7515
7516
7517
7518
7519
7520
7521
7522
7523
7524
7525
7526
7527
7528
7529
7530
7531
7532
7533
7534
7535
7536
7537
7538
7539
7540
7541
7542
7543
7544
7545
7546
7547
7548
7549
7550
7551
7552
7553
7554
7555
7556
7557
7558
7559
7560
7561
7562
7563
7564
7565
7566
7567
7568
7569
7570
7571
7572
7573
7574
7575
7576
7577
7578
7579
7580
7581
7582
7583
7584
7585
7586
7587
7588
7589
7590
7591
7592
7593
7594
7595
7596
7597
7598
7599
7600
7601
7602
7603
7604
7605
7606
7607
7608
7609
7610
7611
7612
7613
7614
7615
7616
7617
7618
7619
7620
7621
7622
7623
7624
7625
7626
7627
7628
7629
7630
7631
7632
7633
7634
7635
7636
7637
7638
7639
7640
7641
7642
7643
7644
7645
7646
7647
7648
7649
7650
7651
7652
7653
7654
7655
7656
7657
7658
7659
7660
7661
7662
7663
7664
7665
7666
7667
7668
7669
7670
7671
7672
7673
7674
7675
7676
7677
7678
7679
7680
7681
7682
7683
7684
7685
7686
7687
7688
7689
7690
7691
7692
7693
7694
7695
7696
7697
7698
7699
7700
7701
7702
7703
7704
7705
7706
7707
7708
7709
7710
7711
7712
7713
7714
7715
7716
7717
7718
7719
7720
7721
7722
7723
7724
7725
7726
7727
7728
7729
7730
7731
7732
7733
7734
7735
7736
7737
7738
7739
7740
7741
7742
7743
7744
7745
7746
7747
7748
7749
7750
7751
7752
7753
7754
7755
7756
7757
7758
7759
7760
7761
7762
7763
7764
7765
7766
7767
7768
7769
7770
7771
7772
7773
7774
7775
7776
7777
7778
7779
7780
7781
7782
7783
7784
7785
7786
7787
7788
7789
7790
7791
7792
7793
7794
7795
7796
7797
7798
7799
7800
7801
7802
7803
7804
7805
7806
7807
7808
7809
7810
7811
7812
7813
7814
7815
7816
7817
7818
7819
7820
7821
7822
7823
7824
7825
7826
7827
7828
7829
7830
7831
7832
7833
7834
7835
7836
7837
7838
7839
7840
7841
7842
7843
7844
7845
7846
7847
7848
7849
7850
7851
7852
7853
7854
7855
7856
7857
7858
7859
7860
7861
7862
7863
7864
7865
7866
7867
7868
7869
7870
7871
7872
7873
7874
7875
7876
7877
7878
7879
7880
7881
7882
7883
7884
7885
7886
7887
7888
7889
7890
7891
7892
7893
7894
7895
7896
7897
7898
7899
7900
7901
7902
7903
7904
7905
7906
7907
7908
7909
7910
7911
7912
7913
7914
7915
7916
7917
7918
7919
7920
7921
7922
7923
7924
7925
7926
7927
7928
7929
7930
7931
7932
7933
7934
7935
7936
7937
7938
7939
7940
7941
7942
7943
7944
7945
7946
7947
7948
7949
7950
7951
7952
7953
7954
7955
7956
7957
7958
7959
7960
7961
7962
7963
7964
7965
7966
7967
7968
7969
7970
7971
7972
7973
7974
7975
7976
7977
7978
7979
7980
7981
7982
7983
7984
7985
7986
7987
7988
7989
7990
7991
7992
7993
7994
7995
7996
7997
7998
7999
8000
8001
8002
8003
8004
8005
8006
8007
8008
8009
8010
8011
8012
8013
8014
8015
8016
8017
8018
8019
8020
8021
8022
8023
8024
8025
8026
8027
8028
8029
8030
8031
8032
8033
8034
8035
8036
8037
8038
8039
8040
8041
8042
8043
8044
8045
8046
8047
8048
8049
8050
8051
8052
8053
8054
8055
8056
8057
8058
8059
8060
8061
8062
8063
8064
8065
8066
8067
8068
8069
8070
8071
8072
8073
8074
8075
8076
8077
8078
8079
8080
8081
8082
8083
8084
8085
8086
8087
8088
8089
8090
8091
8092
8093
8094
8095
8096
8097
8098
8099
8100
8101
8102
8103
8104
8105
8106
8107
8108
8109
8110
8111
8112
8113
8114
8115
8116
8117
8118
8119
8120
8121
8122
8123
8124
8125
8126
8127
8128
8129
8130
8131
8132
8133
8134
8135
8136
8137
8138
8139
8140
8141
8142
8143
8144
8145
8146
8147
8148
8149
8150
8151
8152
8153
8154
8155
8156
8157
8158
8159
8160
8161
8162
8163
8164
8165
8166
8167
8168
8169
8170
8171
8172
8173
8174
8175
8176
8177
8178
8179
8180
8181
8182
8183
8184
8185
8186
8187
8188
8189
8190
8191
8192
8193
8194
8195
8196
8197
8198
8199
8200
8201
8202
8203
8204
8205
8206
8207
8208
8209
8210
8211
8212
8213
8214
8215
8216
8217
8218
8219
8220
8221
8222
8223
8224
8225
8226
8227
8228
8229
8230
8231
8232
8233
8234
8235
8236
8237
8238
8239
8240
8241
8242
8243
8244
8245
8246
8247
8248
8249
8250
8251
8252
8253
8254
8255
8256
8257
8258
8259
8260
8261
8262
8263
8264
8265
8266
8267
8268
8269
8270
8271
8272
8273
8274
8275
8276
8277
8278
8279
8280
8281
8282
8283
8284
8285
8286
8287
8288
8289
8290
8291
8292
8293
8294
8295
8296
8297
8298
8299
8300
8301
8302
8303
8304
8305
8306
8307
8308
8309
8310
8311
8312
8313
8314
8315
8316
8317
8318
8319
8320
8321
8322
8323
8324
8325
8326
8327
8328
8329
8330
8331
8332
8333
8334
8335
8336
8337
8338
8339
8340
8341
8342
8343
8344
8345
8346
8347
8348
8349
8350
8351
8352
8353
8354
8355
8356
8357
8358
8359
8360
8361
8362
8363
8364
8365
8366
8367
8368
8369
8370
8371
8372
8373
8374
8375
8376
8377
8378
8379
8380
8381
8382
8383
8384
8385
8386
8387
8388
8389
8390
8391
8392
8393
8394
8395
8396
8397
8398
8399
8400
8401
8402
8403
8404
8405
8406
8407
8408
8409
8410
8411
8412
8413
8414
8415
8416
8417
8418
8419
8420
8421
8422
8423
8424
8425
8426
8427
8428
8429
8430
8431
8432
8433
8434
8435
8436
8437
8438
8439
8440
8441
8442
8443
8444
8445
8446
8447
8448
8449
8450
8451
8452
8453
8454
8455
8456
8457
8458
8459
8460
8461
8462
8463
8464
8465
8466
8467
8468
8469
8470
8471
8472
8473
8474
8475
8476
8477
8478
8479
8480
8481
8482
8483
8484
8485
8486
8487
8488
8489
8490
8491
8492
8493
8494
8495
8496
8497
8498
8499
8500
8501
8502
8503
8504
8505
8506
8507
8508
8509
8510
8511
8512
8513
8514
8515
8516
8517
8518
8519
8520
8521
8522
8523
8524
8525
8526
8527
8528
8529
8530
8531
8532
8533
8534
8535
8536
8537
8538
8539
8540
8541
8542
8543
8544
8545
8546
8547
8548
8549
8550
8551
8552
8553
8554
8555
8556
8557
8558
8559
8560
8561
8562
8563
8564
8565
8566
8567
8568
8569
8570
8571
8572
8573
8574
8575
8576
8577
8578
8579
8580
8581
8582
8583
8584
8585
8586
8587
8588
8589
8590
8591
8592
8593
8594
8595
8596
8597
8598
8599
8600
8601
8602
8603
8604
8605
8606
8607
8608
8609
8610
8611
8612
8613
8614
8615
8616
8617
8618
8619
8620
8621
8622
8623
8624
8625
8626
8627
8628
8629
8630
8631
8632
8633
8634
8635
8636
8637
8638
8639
8640
8641
8642
8643
8644
8645
8646
8647
8648
8649
8650
8651
8652
8653
8654
8655
8656
8657
8658
8659
8660
8661
8662
8663
8664
8665
8666
8667
8668
8669
8670
8671
8672
8673
8674
8675
8676
8677
8678
8679
8680
8681
8682
8683
8684
8685
8686
8687
8688
8689
8690
8691
8692
8693
8694
8695
8696
8697
8698
8699
8700
8701
8702
8703
8704
8705
8706
8707
8708
8709
8710
8711
8712
8713
8714
8715
8716
8717
8718
8719
8720
8721
8722
8723
8724
8725
8726
8727
8728
8729
8730
8731
8732
8733
8734
8735
8736
8737
8738
8739
8740
8741
8742
8743
8744
8745
8746
8747
8748
8749
8750
8751
8752
8753
8754
8755
8756
8757
8758
8759
8760
8761
8762
8763
8764
8765
8766
8767
8768
8769
8770
8771
8772
8773
8774
8775
8776
8777
8778
8779
8780
8781
8782
8783
8784
8785
8786
8787
8788
8789
8790
8791
8792
8793
8794
8795
8796
8797
8798
8799
8800
8801
8802
8803
8804
8805
8806
8807
8808
8809
8810
8811
8812
8813
8814
8815
8816
8817
8818
8819
8820
8821
8822
8823
8824
8825
8826
8827
8828
8829
8830
8831
8832
8833
8834
8835
8836
8837
8838
8839
8840
8841
8842
8843
8844
8845
8846
8847
8848
8849
8850
8851
8852
8853
8854
8855
8856
8857
8858
8859
8860
8861
8862
8863
8864
8865
8866
8867
8868
8869
8870
8871
8872
8873
8874
8875
8876
8877
8878
8879
8880
8881
8882
8883
8884
8885
8886
8887
8888
8889
8890
8891
8892
8893
8894
8895
8896
8897
8898
8899
8900
8901
8902
8903
8904
8905
8906
8907
8908
8909
8910
8911
8912
8913
8914
8915
8916
8917
8918
8919
8920
8921
8922
8923
8924
8925
8926
8927
8928
8929
8930
8931
8932
8933
8934
8935
8936
8937
8938
8939
8940
8941
8942
8943
8944
8945
8946
8947
8948
8949
8950
8951
8952
8953
8954
8955
8956
8957
8958
8959
8960
8961
8962
8963
8964
8965
8966
8967
8968
8969
8970
8971
8972
8973
8974
8975
8976
8977
8978
8979
8980
8981
8982
8983
8984
8985
8986
8987
8988
8989
8990
8991
8992
8993
8994
8995
8996
8997
8998
8999
9000
9001
9002
9003
9004
9005
9006
9007
9008
9009
9010
9011
9012
9013
9014
9015
9016
9017
9018
9019
9020
9021
9022
9023
9024
9025
9026
9027
9028
9029
9030
9031
9032
9033
9034
9035
9036
9037
9038
9039
9040
9041
9042
9043
9044
9045
9046
9047
9048
9049
9050
9051
9052
9053
9054
9055
9056
9057
9058
9059
9060
9061
9062
9063
9064
9065
9066
9067
9068
9069
9070
9071
9072
9073
9074
9075
9076
9077
9078
9079
9080
9081
9082
9083
9084
9085
9086
9087
9088
9089
9090
9091
9092
9093
9094
9095
9096
9097
9098
9099
9100
9101
9102
9103
9104
9105
9106
9107
9108
9109
9110
9111
9112
9113
9114
9115
9116
9117
9118
9119
9120
9121
9122
9123
9124
9125
9126
9127
9128
9129
9130
9131
9132
9133
9134
9135
9136
9137
9138
9139
9140
9141
9142
9143
9144
9145
9146
9147
9148
9149
9150
9151
9152
9153
9154
9155
9156
9157
9158
9159
9160
9161
9162
9163
9164
9165
9166
9167
9168
9169
9170
9171
9172
9173
9174
9175
9176
9177
9178
9179
9180
9181
9182
9183
9184
9185
9186
9187
9188
9189
9190
9191
9192
9193
9194
9195
9196
9197
9198
9199
9200
9201
9202
9203
9204
9205
9206
9207
9208
9209
9210
9211
9212
9213
9214
9215
9216
9217
9218
9219
9220
9221
9222
9223
9224
9225
9226
9227
9228
9229
9230
9231
9232
9233
9234
9235
9236
9237
9238
9239
9240
9241
9242
9243
9244
9245
9246
9247
9248
9249
9250
9251
9252
9253
9254
9255
9256
9257
9258
9259
9260
9261
9262
9263
9264
9265
9266
9267
9268
9269
9270
9271
9272
9273
9274
9275
9276
9277
9278
9279
9280
9281
9282
9283
9284
9285
9286
9287
9288
9289
9290
9291
9292
9293
9294
9295
9296
9297
9298
9299
9300
9301
9302
9303
9304
9305
9306
9307
9308
9309
9310
9311
9312
9313
9314
9315
9316
9317
9318
9319
9320
9321
9322
9323
9324
9325
9326
9327
9328
9329
9330
9331
9332
9333
9334
9335
9336
9337
9338
9339
9340
9341
9342
9343
9344
9345
9346
9347
9348
9349
9350
9351
9352
9353
9354
9355
9356
9357
9358
9359
9360
9361
9362
9363
9364
9365
9366
9367
9368
9369
9370
9371
9372
9373
9374
9375
9376
9377
9378
9379
9380
9381
9382
9383
9384
9385
9386
9387
9388
9389
9390
9391
9392
9393
9394
9395
9396
9397
9398
9399
9400
9401
9402
9403
9404
9405
9406
9407
9408
9409
9410
9411
9412
9413
9414
9415
9416
9417
9418
9419
9420
9421
9422
9423
9424
9425
9426
9427
9428
9429
9430
9431
9432
9433
9434
9435
9436
9437
9438
9439
9440
9441
9442
9443
9444
9445
9446
9447
9448
9449
9450
9451
9452
9453
9454
9455
9456
9457
9458
9459
9460
9461
9462
9463
9464
9465
9466
9467
9468
9469
9470
9471
9472
9473
9474
9475
9476
9477
9478
9479
9480
9481
9482
9483
9484
9485
9486
9487
9488
9489
9490
9491
9492
9493
9494
9495
9496
9497
9498
9499
9500
9501
9502
9503
9504
9505
9506
9507
9508
9509
9510
9511
9512
9513
9514
9515
9516
9517
9518
9519
9520
9521
9522
9523
9524
9525
9526
9527
9528
9529
9530
9531
9532
9533
9534
9535
9536
9537
9538
9539
9540
9541
9542
9543
9544
9545
9546
9547
9548
9549
9550
9551
9552
9553
9554
9555
9556
9557
9558
9559
9560
9561
9562
9563
9564
9565
9566
9567
9568
9569
9570
9571
9572
9573
9574
9575
9576
9577
9578
9579
9580
9581
9582
9583
9584
9585
9586
9587
9588
9589
9590
9591
9592
9593
9594
9595
9596
9597
9598
9599
9600
9601
9602
9603
9604
9605
9606
9607
9608
9609
9610
9611
9612
9613
9614
9615
9616
9617
9618
9619
9620
9621
9622
9623
9624
9625
9626
9627
9628
9629
9630
9631
9632
9633
9634
9635
9636
9637
9638
9639
9640
9641
9642
9643
9644
9645
9646
9647
9648
9649
9650
9651
9652
9653
9654
9655
9656
9657
9658
9659
9660
9661
9662
9663
9664
9665
9666
9667
9668
9669
9670
9671
9672
9673
9674
9675
9676
9677
9678
9679
9680
9681
9682
9683
9684
9685
9686
9687
9688
9689
9690
9691
9692
9693
9694
9695
9696
9697
9698
9699
9700
9701
9702
9703
9704
9705
9706
9707
9708
9709
9710
9711
9712
9713
9714
9715
9716
9717
9718
9719
9720
9721
9722
9723
9724
9725
9726
9727
9728
9729
9730
9731
9732
9733
9734
9735
9736
9737
9738
9739
9740
9741
9742
9743
9744
9745
9746
9747
9748
9749
9750
9751
9752
9753
9754
9755
9756
9757
9758
9759
9760
9761
9762
9763
9764
9765
9766
9767
9768
9769
9770
9771
9772
9773
9774
9775
9776
9777
9778
9779
9780
9781
9782
9783
9784
9785
9786
9787
9788
9789
9790
9791
9792
9793
9794
9795
9796
9797
9798
9799
9800
9801
9802
9803
9804
9805
9806
9807
9808
9809
9810
9811
9812
9813
9814
9815
9816
9817
9818
9819
9820
9821
9822
9823
9824
9825
9826
9827
9828
9829
9830
9831
9832
9833
9834
9835
9836
9837
9838
9839
9840
9841
9842
9843
9844
9845
9846
9847
9848
9849
9850
9851
9852
9853
9854
9855
9856
9857
9858
9859
9860
9861
9862
9863
9864
9865
9866
9867
9868
9869
9870
9871
9872
9873
9874
9875
9876
9877
9878
9879
9880
9881
9882
9883
9884
9885
9886
9887
9888
9889
9890
9891
9892
9893
9894
9895
9896
9897
9898
9899
9900
9901
9902
9903
9904
9905
9906
9907
9908
9909
9910
9911
9912
9913
9914
9915
9916
9917
9918
9919
9920
9921
9922
9923
9924
9925
9926
9927
9928
9929
9930
9931
9932
9933
9934
9935
9936
9937
9938
9939
9940
9941
9942
9943
9944
9945
9946
9947
9948
9949
9950
9951
9952
9953
9954
9955
9956
9957
9958
9959
9960
9961
9962
9963
9964
9965
9966
9967
9968
9969
9970
9971
9972
9973
9974
9975
9976
9977
9978
9979
9980
9981
9982
9983
9984
9985
9986
9987
9988
9989
9990
9991
9992
9993
9994
9995
9996
9997
9998
9999
10000
10001
10002
10003
10004
10005
10006
10007
10008
10009
10010
10011
10012
10013
10014
10015
10016
10017
10018
10019
10020
10021
10022
10023
10024
10025
10026
10027
10028
10029
10030
10031
10032
10033
10034
10035
10036
10037
10038
10039
10040
10041
10042
10043
10044
10045
10046
10047
10048
10049
10050
10051
10052
10053
10054
10055
10056
10057
10058
10059
10060
10061
10062
10063
10064
10065
10066
10067
10068
10069
10070
10071
10072
10073
10074
10075
10076
10077
10078
10079
10080
10081
10082
10083
10084
10085
10086
10087
10088
10089
10090
10091
10092
10093
10094
10095
10096
10097
10098
10099
10100
10101
10102
10103
10104
10105
10106
10107
10108
10109
10110
10111
10112
10113
10114
10115
10116
10117
10118
10119
10120
10121
10122
10123
10124
10125
10126
10127
10128
10129
10130
10131
10132
10133
10134
10135
10136
10137
10138
10139
10140
10141
10142
10143
10144
10145
10146
10147
10148
10149
10150
10151
10152
10153
10154
10155
10156
10157
10158
10159
10160
10161
10162
10163
10164
10165
10166
10167
10168
10169
10170
10171
10172
10173
10174
10175
10176
10177
10178
10179
10180
10181
10182
10183
10184
10185
10186
10187
10188
10189
10190
10191
10192
10193
10194
10195
10196
10197
10198
10199
10200
10201
10202
10203
10204
10205
10206
10207
10208
10209
10210
10211
10212
10213
10214
10215
10216
10217
10218
10219
10220
10221
10222
10223
10224
10225
10226
10227
10228
10229
10230
10231
10232
10233
10234
10235
10236
10237
10238
10239
10240
10241
10242
10243
10244
10245
10246
10247
10248
10249
10250
10251
10252
10253
10254
10255
10256
10257
10258
10259
10260
10261
10262
10263
10264
10265
10266
10267
10268
10269
10270
10271
10272
10273
10274
10275
10276
10277
10278
10279
10280
10281
10282
10283
10284
10285
10286
10287
10288
10289
10290
10291
10292
10293
10294
10295
10296
10297
10298
10299
10300
10301
10302
10303
10304
10305
10306
10307
10308
10309
10310
10311
10312
10313
10314
10315
10316
10317
10318
10319
10320
10321
10322
10323
10324
10325
10326
10327
10328
10329
10330
10331
10332
10333
10334
10335
10336
10337
10338
10339
10340
10341
10342
10343
10344
10345
10346
10347
10348
10349
10350
10351
10352
10353
10354
10355
10356
10357
10358
10359
10360
10361
10362
10363
10364
10365
10366
10367
10368
10369
10370
10371
10372
10373
10374
10375
10376
10377
10378
10379
10380
10381
10382
10383
10384
10385
10386
10387
10388
10389
10390
10391
10392
10393
10394
10395
10396
10397
10398
10399
10400
10401
10402
10403
10404
10405
10406
10407
10408
10409
10410
10411
10412
10413
10414
10415
10416
10417
10418
10419
10420
10421
10422
10423
10424
10425
10426
10427
10428
10429
10430
10431
10432
10433
10434
10435
10436
10437
10438
10439
10440
10441
10442
10443
10444
10445
10446
10447
10448
10449
10450
10451
10452
10453
10454
10455
10456
10457
10458
10459
10460
10461
10462
10463
10464
10465
10466
10467
10468
10469
10470
10471
10472
10473
10474
10475
10476
10477
10478
10479
10480
10481
10482
10483
10484
10485
10486
10487
10488
10489
10490
10491
10492
10493
10494
10495
10496
10497
10498
10499
10500
10501
10502
10503
10504
10505
10506
10507
10508
10509
10510
10511
10512
10513
10514
10515
10516
10517
10518
10519
10520
10521
10522
10523
10524
10525
10526
10527
10528
10529
10530
10531
10532
10533
10534
10535
10536
10537
10538
10539
10540
10541
10542
10543
10544
10545
10546
10547
10548
10549
10550
10551
10552
10553
10554
10555
10556
10557
10558
10559
10560
10561
10562
10563
10564
10565
10566
10567
10568
10569
10570
10571
10572
10573
10574
10575
10576
10577
10578
10579
10580
10581
10582
10583
10584
10585
10586
10587
10588
10589
10590
10591
10592
10593
10594
10595
10596
10597
10598
10599
10600
10601
10602
10603
10604
10605
10606
10607
10608
10609
10610
10611
10612
10613
10614
10615
10616
10617
10618
10619
10620
10621
10622
10623
10624
10625
10626
10627
10628
10629
10630
10631
10632
10633
10634
10635
10636
10637
10638
10639
10640
10641
10642
10643
10644
10645
10646
10647
10648
10649
10650
10651
10652
10653
10654
10655
10656
10657
10658
10659
10660
10661
10662
10663
10664
10665
10666
10667
10668
10669
10670
10671
10672
10673
10674
10675
10676
10677
10678
10679
10680
10681
10682
10683
10684
10685
10686
10687
10688
10689
10690
10691
10692
10693
10694
10695
10696
10697
10698
10699
10700
10701
10702
10703
10704
10705
10706
10707
10708
10709
10710
10711
10712
10713
10714
10715
10716
10717
10718
10719
10720
10721
10722
10723
10724
10725
10726
10727
10728
10729
10730
10731
10732
10733
10734
10735
10736
10737
10738
10739
10740
10741
10742
10743
10744
10745
10746
10747
10748
10749
10750
10751
10752
10753
10754
10755
10756
10757
10758
10759
10760
10761
10762
10763
10764
10765
10766
10767
10768
10769
10770
10771
10772
10773
10774
10775
10776
10777
10778
10779
10780
10781
10782
10783
10784
10785
10786
10787
10788
10789
10790
10791
10792
10793
10794
10795
10796
10797
10798
10799
10800
10801
10802
10803
10804
10805
10806
10807
10808
10809
10810
10811
10812
10813
10814
10815
10816
10817
10818
10819
10820
10821
10822
10823
10824
10825
10826
10827
10828
10829
10830
10831
10832
10833
10834
10835
10836
10837
10838
10839
10840
10841
10842
10843
10844
10845
10846
10847
10848
10849
10850
10851
10852
10853
10854
10855
10856
10857
10858
10859
10860
10861
10862
10863
10864
10865
10866
10867
10868
10869
10870
10871
10872
10873
10874
10875
10876
10877
10878
10879
10880
10881
10882
10883
10884
10885
10886
10887
10888
10889
10890
10891
10892
10893
10894
10895
10896
10897
10898
10899
10900
10901
10902
10903
10904
10905
10906
10907
10908
10909
10910
10911
10912
10913
10914
10915
10916
10917
10918
10919
10920
10921
10922
10923
10924
10925
10926
10927
10928
10929
10930
10931
10932
10933
10934
10935
10936
10937
10938
10939
10940
10941
10942
10943
10944
10945
10946
10947
10948
10949
10950
10951
10952
10953
10954
10955
10956
10957
10958
10959
10960
10961
10962
10963
10964
10965
10966
10967
10968
10969
10970
10971
10972
10973
10974
10975
10976
10977
10978
10979
10980
10981
10982
10983
10984
10985
10986
10987
10988
10989
10990
10991
10992
10993
10994
10995
10996
10997
10998
10999
11000
11001
11002
11003
11004
11005
11006
11007
11008
11009
11010
11011
11012
11013
11014
11015
11016
11017
11018
11019
11020
11021
11022
11023
11024
11025
11026
11027
11028
11029
11030
11031
11032
11033
11034
11035
11036
11037
11038
11039
11040
11041
11042
11043
11044
11045
11046
11047
11048
11049
11050
11051
11052
11053
11054
11055
11056
11057
11058
11059
11060
11061
11062
11063
11064
11065
11066
11067
11068
11069
11070
11071
11072
11073
11074
11075
11076
11077
11078
11079
11080
11081
11082
11083
11084
11085
11086
11087
11088
11089
11090
11091
11092
11093
11094
11095
11096
11097
11098
11099
11100
11101
11102
11103
11104
11105
11106
11107
11108
11109
11110
11111
11112
11113
11114
11115
11116
11117
11118
11119
11120
11121
11122
11123
11124
11125
11126
11127
11128
11129
11130
11131
11132
11133
11134
11135
11136
11137
11138
11139
11140
11141
11142
11143
11144
11145
11146
11147
11148
11149
11150
11151
11152
11153
11154
11155
11156
11157
11158
11159
11160
11161
11162
11163
11164
11165
11166
11167
11168
11169
11170
11171
11172
11173
11174
11175
11176
11177
11178
11179
11180
11181
11182
11183
11184
11185
11186
11187
11188
11189
11190
11191
11192
11193
11194
11195
11196
11197
11198
11199
11200
11201
11202
11203
11204
11205
11206
11207
11208
11209
11210
11211
11212
11213
11214
11215
11216
11217
11218
11219
11220
11221
11222
11223
11224
11225
11226
11227
11228
11229
11230
11231
11232
11233
11234
11235
11236
11237
11238
11239
11240
11241
11242
11243
11244
11245
11246
11247
11248
11249
11250
11251
11252
11253
11254
11255
11256
11257
11258
11259
11260
11261
11262
11263
11264
11265
11266
11267
11268
11269
11270
11271
11272
11273
11274
11275
11276
11277
11278
11279
11280
11281
11282
11283
11284
11285
11286
11287
11288
11289
11290
11291
11292
11293
11294
11295
11296
11297
11298
11299
11300
11301
11302
11303
11304
11305
11306
11307
11308
11309
11310
11311
11312
11313
11314
11315
11316
11317
11318
11319
11320
11321
11322
11323
11324
11325
11326
11327
11328
11329
11330
11331
11332
11333
11334
11335
11336
11337
11338
11339
11340
11341
11342
11343
11344
11345
11346
11347
11348
11349
11350
11351
11352
11353
11354
11355
11356
11357
11358
11359
11360
11361
11362
11363
11364
11365
11366
11367
11368
11369
11370
11371
11372
11373
11374
11375
11376
11377
11378
11379
11380
11381
11382
11383
11384
11385
11386
11387
11388
11389
11390
11391
11392
11393
11394
11395
11396
11397
11398
11399
11400
11401
11402
11403
11404
11405
11406
11407
11408
11409
11410
11411
11412
11413
11414
11415
11416
11417
11418
11419
11420
11421
11422
11423
11424
11425
11426
11427
11428
11429
11430
11431
11432
11433
11434
11435
11436
11437
11438
11439
11440
11441
11442
11443
11444
11445
11446
11447
11448
11449
11450
11451
11452
11453
11454
11455
11456
11457
11458
11459
11460
11461
11462
11463
11464
11465
11466
11467
11468
11469
11470
11471
11472
11473
11474
11475
11476
11477
11478
11479
11480
11481
11482
11483
11484
11485
11486
11487
11488
11489
11490
11491
11492
11493
11494
11495
11496
11497
11498
11499
11500
11501
11502
11503
11504
11505
11506
11507
11508
11509
11510
11511
11512
11513
11514
11515
11516
11517
11518
11519
11520
11521
11522
11523
11524
11525
11526
11527
11528
11529
11530
11531
11532
11533
11534
11535
11536
11537
11538
11539
11540
11541
11542
11543
11544
11545
11546
11547
11548
11549
11550
11551
11552
11553
11554
11555
11556
11557
11558
11559
11560
11561
11562
11563
11564
11565
11566
11567
11568
11569
11570
11571
11572
11573
11574
11575
11576
11577
11578
11579
11580
11581
11582
11583
11584
11585
11586
11587
11588
11589
11590
11591
11592
11593
11594
11595
11596
11597
11598
11599
11600
11601
11602
11603
11604
11605
11606
11607
11608
11609
11610
11611
11612
11613
11614
11615
11616
11617
11618
11619
11620
11621
11622
11623
11624
11625
11626
11627
11628
11629
11630
11631
11632
11633
11634
11635
11636
11637
11638
11639
11640
11641
11642
11643
11644
11645
11646
11647
11648
11649
11650
11651
11652
11653
11654
11655
11656
11657
11658
11659
11660
11661
11662
11663
11664
11665
11666
11667
11668
11669
11670
11671
11672
11673
11674
11675
11676
11677
11678
11679
11680
11681
11682
11683
11684
11685
11686
11687
11688
11689
11690
11691
11692
11693
11694
11695
11696
11697
11698
11699
11700
11701
11702
11703
11704
11705
11706
11707
11708
11709
11710
11711
11712
11713
11714
11715
11716
11717
11718
11719
11720
11721
11722
11723
11724
11725
11726
11727
11728
11729
11730
11731
11732
11733
11734
11735
11736
11737
11738
11739
11740
11741
11742
11743
11744
11745
11746
11747
11748
11749
11750
11751
11752
11753
11754
11755
11756
11757
11758
11759
11760
11761
11762
11763
11764
11765
11766
11767
11768
11769
11770
11771
11772
11773
11774
11775
11776
11777
11778
11779
11780
11781
11782
11783
11784
11785
11786
11787
11788
11789
11790
11791
11792
11793
11794
11795
11796
11797
11798
11799
11800
11801
11802
11803
11804
11805
11806
11807
11808
11809
11810
11811
11812
11813
11814
11815
11816
11817
11818
11819
11820
11821
11822
11823
11824
11825
11826
11827
11828
11829
11830
11831
11832
11833
11834
11835
11836
11837
11838
11839
11840
11841
11842
11843
11844
11845
11846
11847
11848
11849
11850
11851
11852
11853
11854
11855
11856
11857
11858
11859
11860
11861
11862
11863
11864
11865
11866
11867
11868
11869
11870
11871
11872
11873
11874
11875
11876
11877
11878
11879
11880
11881
11882
11883
11884
11885
11886
11887
11888
11889
11890
11891
11892
11893
11894
11895
11896
11897
11898
11899
11900
11901
11902
11903
11904
11905
11906
11907
11908
11909
11910
11911
11912
11913
11914
11915
11916
11917
11918
11919
11920
11921
11922
11923
11924
11925
11926
11927
11928
11929
11930
11931
11932
11933
11934
11935
11936
11937
11938
11939
11940
11941
11942
11943
11944
11945
11946
11947
11948
11949
11950
11951
11952
11953
11954
11955
11956
11957
11958
11959
11960
11961
11962
11963
11964
11965
11966
11967
11968
11969
11970
11971
11972
11973
11974
11975
11976
11977
11978
11979
11980
11981
11982
11983
11984
11985
11986
11987
11988
11989
11990
11991
11992
11993
11994
11995
11996
11997
11998
11999
12000
12001
12002
12003
12004
12005
12006
12007
12008
12009
12010
12011
12012
12013
12014
12015
12016
12017
12018
12019
12020
12021
12022
12023
12024
12025
12026
12027
12028
12029
12030
12031
12032
12033
12034
12035
12036
12037
12038
12039
12040
12041
12042
12043
12044
12045
12046
12047
12048
12049
12050
12051
12052
12053
12054
12055
12056
12057
12058
12059
12060
12061
12062
12063
12064
12065
12066
12067
12068
12069
12070
12071
12072
12073
12074
12075
12076
12077
12078
12079
12080
12081
12082
12083
12084
12085
12086
12087
12088
12089
12090
12091
12092
12093
12094
12095
12096
12097
12098
12099
12100
12101
12102
12103
12104
12105
12106
12107
12108
12109
12110
12111
12112
12113
12114
12115
12116
12117
12118
12119
12120
12121
12122
12123
12124
12125
12126
12127
12128
12129
12130
12131
12132
12133
12134
12135
12136
12137
12138
12139
12140
12141
12142
12143
12144
12145
12146
12147
12148
12149
12150
12151
12152
12153
12154
12155
12156
12157
12158
12159
12160
12161
12162
12163
12164
12165
12166
12167
12168
12169
12170
12171
12172
12173
12174
12175
12176
12177
12178
12179
12180
12181
12182
12183
12184
12185
12186
12187
12188
12189
12190
12191
12192
12193
12194
12195
12196
12197
12198
12199
12200
12201
12202
12203
12204
12205
12206
12207
12208
12209
12210
12211
12212
12213
12214
12215
12216
12217
12218
12219
12220
12221
12222
12223
12224
12225
12226
12227
12228
12229
12230
12231
12232
12233
12234
12235
12236
12237
12238
12239
12240
12241
12242
12243
12244
12245
12246
12247
12248
12249
12250
12251
12252
12253
12254
12255
12256
12257
12258
12259
12260
12261
12262
12263
12264
12265
12266
12267
12268
12269
12270
12271
12272
12273
12274
12275
12276
12277
12278
12279
12280
12281
12282
12283
12284
12285
12286
12287
12288
12289
12290
12291
12292
12293
12294
12295
12296
12297
12298
12299
12300
12301
12302
12303
12304
12305
12306
12307
12308
12309
12310
12311
12312
12313
12314
12315
12316
12317
12318
12319
12320
12321
12322
12323
12324
12325
12326
12327
12328
12329
12330
12331
12332
12333
12334
12335
12336
12337
12338
12339
12340
12341
12342
12343
12344
12345
12346
12347
12348
12349
12350
12351
12352
12353
12354
12355
12356
12357
12358
12359
12360
12361
12362
12363
12364
12365
12366
12367
12368
12369
12370
12371
12372
12373
12374
12375
12376
12377
12378
12379
12380
12381
12382
12383
12384
12385
12386
12387
12388
12389
12390
12391
12392
12393
12394
12395
12396
12397
12398
12399
12400
12401
12402
12403
12404
12405
12406
12407
12408
12409
12410
12411
12412
12413
12414
12415
12416
12417
12418
12419
12420
12421
12422
12423
12424
12425
12426
12427
12428
12429
12430
12431
12432
12433
12434
12435
12436
12437
12438
12439
12440
12441
12442
12443
12444
12445
12446
12447
12448
12449
12450
12451
12452
12453
12454
12455
12456
12457
12458
12459
12460
12461
12462
12463
12464
12465
12466
12467
12468
12469
12470
12471
12472
12473
12474
12475
12476
12477
12478
12479
12480
12481
12482
12483
12484
12485
12486
12487
12488
12489
12490
12491
12492
12493
12494
12495
12496
12497
12498
12499
12500
12501
12502
12503
12504
12505
12506
12507
12508
12509
12510
12511
12512
12513
12514
12515
12516
12517
12518
12519
12520
12521
12522
12523
12524
12525
12526
12527
12528
12529
12530
12531
12532
12533
12534
12535
12536
12537
12538
12539
12540
12541
12542
12543
12544
12545
12546
12547
12548
12549
12550
12551
12552
12553
12554
12555
12556
12557
12558
12559
12560
12561
12562
12563
12564
12565
12566
12567
12568
12569
12570
12571
12572
12573
12574
12575
12576
12577
12578
12579
12580
12581
12582
12583
12584
12585
12586
12587
12588
12589
12590
12591
12592
12593
12594
12595
12596
12597
12598
12599
12600
12601
12602
12603
12604
12605
12606
12607
12608
12609
12610
12611
12612
12613
12614
12615
12616
12617
12618
12619
12620
12621
12622
12623
12624
12625
12626
12627
12628
12629
12630
12631
12632
12633
12634
12635
12636
12637
12638
12639
12640
12641
12642
12643
12644
12645
12646
12647
12648
12649
12650
12651
12652
12653
12654
12655
12656
12657
12658
12659
12660
12661
12662
12663
12664
12665
12666
12667
12668
12669
12670
12671
12672
12673
12674
12675
12676
12677
12678
12679
12680
12681
12682
12683
12684
12685
12686
12687
12688
12689
12690
12691
12692
12693
12694
12695
12696
12697
12698
12699
12700
12701
12702
12703
12704
12705
12706
12707
12708
12709
12710
12711
12712
12713
12714
12715
12716
12717
12718
12719
12720
12721
12722
12723
12724
12725
12726
12727
12728
12729
12730
12731
12732
12733
12734
12735
12736
12737
12738
12739
12740
12741
12742
12743
12744
12745
12746
12747
12748
12749
12750
12751
12752
12753
12754
12755
12756
12757
12758
12759
12760
12761
12762
12763
12764
12765
12766
12767
12768
12769
12770
12771
12772
12773
12774
12775
12776
12777
12778
12779
12780
12781
12782
12783
12784
12785
12786
12787
12788
12789
12790
12791
12792
12793
12794
12795
12796
12797
12798
12799
12800
12801
12802
12803
12804
12805
12806
12807
12808
12809
12810
12811
12812
12813
12814
12815
12816
12817
12818
12819
12820
12821
12822
12823
12824
12825
12826
12827
12828
12829
12830
12831
12832
12833
12834
12835
12836
12837
12838
12839
12840
12841
12842
12843
12844
12845
12846
12847
12848
12849
12850
12851
12852
12853
12854
12855
12856
12857
12858
12859
12860
12861
12862
12863
12864
12865
12866
12867
12868
12869
12870
12871
12872
12873
12874
12875
12876
12877
12878
12879
12880
12881
12882
12883
12884
12885
12886
12887
12888
12889
12890
12891
12892
12893
12894
12895
12896
12897
12898
12899
12900
12901
12902
12903
12904
12905
12906
12907
12908
12909
12910
12911
12912
12913
12914
12915
12916
12917
12918
12919
12920
12921
12922
12923
12924
12925
12926
12927
12928
12929
12930
12931
12932
12933
12934
12935
12936
12937
12938
12939
12940
12941
12942
12943
12944
12945
12946
12947
12948
12949
12950
12951
12952
12953
12954
12955
12956
12957
12958
12959
12960
12961
12962
12963
12964
12965
12966
12967
12968
12969
12970
12971
12972
12973
12974
12975
12976
12977
12978
12979
12980
12981
12982
12983
12984
12985
12986
12987
12988
12989
12990
12991
12992
12993
12994
12995
12996
12997
12998
12999
13000
13001
13002
13003
13004
13005
13006
13007
13008
13009
13010
13011
13012
13013
13014
13015
13016
13017
13018
13019
13020
13021
13022
13023
13024
13025
13026
13027
13028
13029
13030
13031
13032
13033
13034
13035
13036
13037
13038
13039
13040
13041
13042
13043
13044
13045
13046
13047
13048
13049
13050
13051
13052
13053
13054
13055
13056
13057
13058
13059
13060
13061
13062
13063
13064
13065
13066
13067
13068
13069
13070
13071
13072
13073
13074
13075
13076
13077
13078
13079
13080
13081
13082
13083
13084
13085
13086
13087
13088
13089
13090
13091
13092
13093
13094
13095
13096
13097
13098
13099
13100
13101
13102
13103
13104
13105
13106
13107
13108
13109
13110
13111
13112
13113
13114
13115
13116
13117
13118
13119
13120
13121
13122
13123
13124
13125
13126
13127
13128
13129
13130
13131
13132
13133
13134
13135
13136
13137
13138
13139
13140
13141
13142
13143
13144
13145
13146
13147
13148
13149
13150
13151
13152
13153
13154
13155
13156
13157
13158
13159
13160
13161
13162
13163
13164
13165
13166
13167
13168
13169
13170
13171
13172
13173
13174
13175
13176
13177
13178
13179
13180
13181
13182
13183
13184
13185
13186
13187
13188
13189
13190
13191
13192
13193
13194
13195
13196
13197
13198
13199
13200
13201
13202
13203
13204
13205
13206
13207
13208
13209
13210
13211
13212
13213
13214
13215
13216
13217
13218
13219
13220
13221
13222
13223
13224
13225
13226
13227
13228
13229
13230
13231
13232
13233
13234
13235
13236
13237
13238
13239
13240
13241
13242
13243
13244
13245
13246
13247
13248
13249
13250
13251
13252
13253
13254
13255
13256
13257
13258
13259
13260
13261
13262
13263
13264
13265
13266
13267
13268
13269
13270
13271
13272
13273
13274
13275
13276
13277
13278
13279
13280
13281
13282
13283
13284
13285
13286
13287
13288
13289
13290
13291
13292
13293
13294
13295
13296
13297
13298
13299
13300
13301
13302
13303
13304
13305
13306
13307
13308
13309
13310
13311
13312
13313
13314
13315
13316
13317
13318
13319
13320
13321
13322
13323
13324
13325
13326
13327
13328
13329
13330
13331
13332
13333
13334
13335
13336
13337
13338
13339
13340
13341
13342
13343
13344
13345
13346
13347
13348
13349
13350
13351
13352
13353
13354
13355
13356
13357
13358
13359
13360
13361
13362
13363
13364
13365
13366
13367
13368
13369
13370
13371
13372
13373
13374
13375
13376
13377
13378
13379
13380
13381
13382
13383
13384
13385
13386
13387
13388
13389
13390
13391
13392
13393
13394
13395
13396
13397
13398
13399
13400
13401
13402
13403
13404
13405
13406
13407
13408
13409
13410
13411
13412
13413
13414
13415
13416
13417
13418
13419
13420
13421
13422
13423
13424
13425
13426
13427
13428
13429
13430
13431
13432
13433
13434
13435
13436
13437
13438
13439
13440
13441
13442
13443
13444
13445
13446
13447
13448
13449
13450
13451
13452
13453
13454
13455
13456
13457
13458
13459
13460
13461
13462
13463
13464
13465
13466
13467
13468
13469
13470
13471
13472
13473
13474
13475
13476
13477
13478
13479
13480
13481
13482
13483
13484
13485
13486
13487
13488
13489
13490
13491
13492
13493
13494
13495
13496
13497
13498
13499
13500
13501
13502
13503
13504
13505
13506
13507
13508
13509
13510
13511
13512
13513
13514
13515
13516
13517
13518
13519
13520
13521
13522
13523
13524
13525
13526
13527
13528
13529
13530
13531
13532
13533
13534
13535
13536
13537
13538
13539
13540
13541
13542
13543
13544
13545
13546
13547
13548
13549
13550
13551
13552
13553
13554
13555
13556
13557
13558
13559
13560
13561
13562
13563
13564
13565
13566
13567
13568
13569
13570
13571
13572
13573
13574
13575
13576
13577
13578
13579
13580
13581
13582
13583
13584
13585
13586
13587
13588
13589
13590
13591
13592
13593
13594
13595
13596
13597
13598
13599
13600
13601
13602
13603
13604
13605
13606
13607
13608
13609
13610
13611
13612
13613
13614
13615
13616
13617
13618
13619
13620
13621
13622
13623
13624
13625
13626
13627
13628
13629
13630
13631
13632
13633
13634
13635
13636
13637
13638
13639
13640
13641
13642
13643
13644
13645
13646
13647
13648
13649
13650
13651
13652
13653
13654
13655
13656
13657
13658
13659
13660
13661
13662
13663
13664
13665
13666
13667
13668
13669
13670
13671
13672
13673
13674
13675
13676
13677
13678
13679
13680
13681
13682
13683
13684
13685
13686
13687
13688
13689
13690
13691
13692
13693
13694
13695
13696
13697
13698
13699
13700
13701
13702
13703
13704
13705
13706
13707
13708
13709
13710
13711
13712
13713
13714
13715
13716
13717
13718
13719
13720
13721
13722
13723
13724
13725
13726
13727
13728
13729
13730
13731
13732
13733
13734
13735
13736
13737
13738
13739
13740
13741
13742
13743
13744
13745
13746
13747
13748
13749
13750
13751
13752
13753
13754
13755
13756
13757
13758
13759
13760
13761
13762
13763
13764
13765
13766
13767
13768
13769
13770
13771
13772
13773
13774
13775
13776
13777
13778
13779
13780
13781
13782
13783
13784
13785
13786
13787
13788
13789
13790
13791
13792
13793
13794
13795
13796
13797
13798
13799
13800
13801
13802
13803
13804
13805
13806
13807
13808
13809
13810
13811
13812
13813
13814
13815
13816
13817
13818
13819
13820
13821
13822
13823
13824
13825
13826
13827
13828
13829
13830
13831
13832
13833
13834
13835
13836
13837
13838
13839
13840
13841
13842
13843
13844
13845
13846
13847
13848
13849
13850
13851
13852
13853
13854
13855
13856
13857
13858
13859
13860
13861
13862
13863
13864
13865
13866
13867
13868
13869
13870
13871
13872
13873
13874
13875
13876
13877
13878
13879
13880
13881
13882
13883
13884
13885
13886
13887
13888
13889
13890
13891
13892
13893
13894
13895
13896
13897
13898
13899
13900
13901
13902
13903
13904
13905
13906
13907
13908
13909
13910
13911
13912
13913
13914
13915
13916
13917
13918
13919
13920
13921
13922
13923
13924
13925
13926
13927
13928
13929
13930
13931
13932
13933
13934
13935
13936
13937
13938
13939
13940
13941
13942
13943
13944
13945
13946
13947
13948
13949
13950
13951
13952
13953
13954
13955
13956
13957
13958
13959
13960
13961
13962
13963
13964
13965
13966
13967
13968
13969
13970
13971
13972
13973
13974
13975
13976
13977
13978
13979
13980
13981
13982
13983
13984
13985
13986
13987
13988
13989
13990
13991
13992
13993
13994
13995
13996
13997
13998
13999
14000
14001
14002
14003
14004
14005
14006
14007
14008
14009
14010
14011
14012
14013
14014
14015
14016
14017
14018
14019
14020
14021
14022
14023
14024
14025
14026
14027
14028
14029
14030
14031
14032
14033
14034
14035
14036
14037
14038
14039
14040
14041
14042
14043
14044
14045
14046
14047
14048
14049
14050
14051
14052
14053
14054
14055
14056
14057
14058
14059
14060
14061
14062
14063
14064
14065
14066
14067
14068
14069
14070
14071
14072
14073
14074
14075
14076
14077
14078
14079
14080
14081
14082
14083
14084
14085
14086
14087
14088
14089
14090
14091
14092
14093
14094
14095
14096
14097
14098
14099
14100
14101
14102
14103
14104
14105
14106
14107
14108
14109
14110
14111
14112
14113
14114
14115
14116
14117
14118
14119
14120
14121
14122
14123
14124
14125
14126
14127
14128
14129
14130
14131
14132
14133
14134
14135
14136
14137
14138
14139
14140
14141
14142
14143
14144
14145
14146
14147
14148
14149
14150
14151
14152
14153
14154
14155
14156
14157
14158
14159
14160
14161
14162
14163
14164
14165
14166
14167
14168
14169
14170
14171
14172
14173
14174
14175
14176
14177
14178
14179
14180
14181
14182
14183
14184
14185
14186
14187
14188
14189
14190
14191
14192
14193
14194
14195
14196
14197
14198
14199
14200
14201
14202
14203
14204
14205
14206
14207
14208
14209
14210
14211
14212
14213
14214
14215
14216
14217
14218
14219
14220
14221
14222
14223
14224
14225
14226
14227
14228
14229
14230
14231
14232
14233
14234
14235
14236
14237
14238
14239
14240
14241
14242
14243
14244
14245
14246
14247
14248
14249
14250
14251
14252
14253
14254
14255
14256
14257
14258
14259
14260
14261
14262
14263
14264
14265
14266
14267
14268
14269
14270
14271
14272
14273
14274
14275
14276
14277
14278
14279
14280
14281
14282
14283
14284
14285
14286
14287
14288
14289
14290
14291
14292
14293
14294
14295
14296
14297
14298
14299
14300
14301
14302
14303
14304
14305
14306
14307
14308
14309
14310
14311
14312
14313
14314
14315
14316
14317
14318
14319
14320
14321
14322
14323
14324
14325
14326
14327
14328
14329
14330
14331
14332
14333
14334
14335
14336
14337
14338
14339
14340
14341
14342
14343
14344
14345
14346
14347
14348
14349
14350
14351
14352
14353
14354
14355
14356
14357
14358
14359
14360
14361
14362
14363
14364
14365
14366
14367
14368
14369
14370
14371
14372
14373
14374
14375
14376
14377
14378
14379
14380
14381
14382
14383
14384
14385
14386
14387
14388
14389
14390
14391
14392
14393
14394
14395
14396
14397
14398
14399
14400
14401
14402
14403
14404
14405
14406
14407
14408
14409
14410
14411
14412
14413
14414
14415
14416
14417
14418
14419
14420
14421
14422
14423
14424
14425
14426
14427
14428
14429
14430
14431
14432
14433
14434
14435
14436
14437
14438
14439
14440
14441
14442
14443
14444
14445
14446
14447
14448
14449
14450
14451
14452
14453
14454
14455
14456
14457
14458
14459
14460
14461
14462
14463
14464
14465
14466
14467
14468
14469
14470
14471
14472
14473
14474
14475
14476
14477
14478
14479
14480
14481
14482
14483
14484
14485
14486
14487
14488
14489
14490
14491
14492
14493
14494
14495
14496
14497
14498
14499
14500
14501
14502
14503
14504
14505
14506
14507
14508
14509
14510
14511
14512
14513
14514
14515
14516
14517
14518
14519
14520
14521
14522
14523
14524
14525
14526
14527
14528
14529
14530
14531
14532
14533
14534
14535
14536
14537
14538
14539
14540
14541
14542
14543
14544
14545
14546
14547
14548
14549
14550
14551
14552
14553
14554
14555
14556
14557
14558
14559
14560
14561
14562
14563
14564
14565
14566
14567
14568
14569
14570
14571
14572
14573
14574
14575
14576
14577
14578
14579
14580
14581
14582
14583
14584
14585
14586
14587
14588
14589
14590
14591
14592
14593
14594
14595
14596
14597
14598
14599
14600
14601
14602
14603
14604
14605
14606
14607
14608
14609
14610
14611
14612
14613
14614
14615
14616
14617
14618
14619
14620
14621
14622
14623
14624
14625
14626
14627
14628
14629
14630
14631
14632
14633
14634
14635
14636
14637
14638
14639
14640
14641
14642
14643
14644
14645
14646
14647
14648
14649
14650
14651
14652
14653
14654
14655
14656
14657
14658
14659
14660
14661
14662
14663
14664
14665
14666
14667
14668
14669
14670
14671
14672
14673
14674
14675
14676
14677
14678
14679
14680
14681
14682
14683
14684
14685
14686
14687
14688
14689
14690
14691
14692
14693
14694
14695
14696
14697
14698
14699
14700
14701
14702
14703
14704
14705
14706
14707
14708
14709
14710
14711
14712
14713
14714
14715
14716
14717
14718
14719
14720
14721
14722
14723
14724
14725
14726
14727
14728
14729
14730
14731
14732
14733
14734
14735
14736
14737
14738
14739
14740
14741
14742
14743
14744
14745
14746
14747
14748
14749
14750
14751
14752
14753
14754
14755
14756
14757
14758
14759
14760
14761
14762
14763
14764
14765
14766
14767
14768
14769
14770
14771
14772
14773
14774
14775
14776
14777
14778
14779
14780
14781
14782
14783
14784
14785
14786
14787
14788
14789
14790
14791
14792
14793
14794
14795
14796
14797
14798
14799
14800
14801
14802
14803
14804
14805
14806
14807
14808
14809
14810
14811
14812
14813
14814
14815
14816
14817
14818
14819
14820
14821
14822
14823
14824
14825
14826
14827
14828
14829
14830
14831
14832
14833
14834
14835
14836
14837
14838
14839
14840
14841
14842
14843
14844
14845
14846
14847
14848
14849
14850
14851
14852
14853
14854
14855
14856
14857
14858
14859
14860
14861
14862
14863
14864
14865
14866
14867
14868
14869
14870
14871
14872
14873
14874
14875
14876
14877
14878
14879
14880
14881
14882
14883
14884
14885
14886
14887
14888
14889
14890
14891
14892
14893
14894
14895
14896
14897
14898
14899
14900
14901
14902
14903
14904
14905
14906
14907
14908
14909
14910
14911
14912
14913
14914
14915
14916
14917
14918
14919
14920
14921
14922
14923
14924
14925
14926
14927
14928
14929
14930
14931
14932
14933
14934
14935
14936
14937
14938
14939
14940
14941
14942
14943
14944
14945
14946
14947
14948
14949
14950
14951
14952
14953
14954
14955
14956
14957
14958
14959
14960
14961
14962
14963
14964
14965
14966
14967
14968
14969
14970
14971
14972
14973
14974
14975
14976
14977
14978
14979
14980
14981
14982
14983
14984
14985
14986
14987
14988
14989
14990
14991
14992
14993
14994
14995
14996
14997
14998
14999
15000
15001
15002
15003
15004
15005
15006
15007
15008
15009
15010
15011
15012
15013
15014
15015
15016
15017
15018
15019
15020
15021
15022
15023
15024
15025
15026
15027
15028
15029
15030
15031
15032
15033
15034
15035
15036
15037
15038
15039
15040
15041
15042
15043
15044
15045
15046
15047
15048
15049
15050
15051
15052
15053
15054
15055
15056
15057
15058
15059
15060
15061
15062
15063
15064
15065
15066
15067
15068
15069
15070
15071
15072
15073
15074
15075
15076
15077
15078
15079
15080
15081
15082
15083
15084
15085
15086
15087
15088
15089
15090
15091
15092
15093
15094
15095
15096
15097
15098
15099
15100
15101
15102
15103
15104
15105
15106
15107
15108
15109
15110
15111
15112
15113
15114
15115
15116
15117
15118
15119
15120
15121
15122
15123
15124
15125
15126
15127
15128
15129
15130
15131
15132
15133
15134
15135
15136
15137
15138
15139
15140
15141
15142
15143
15144
15145
15146
15147
15148
15149
15150
15151
15152
15153
15154
15155
15156
15157
15158
15159
15160
15161
15162
15163
15164
15165
15166
15167
15168
15169
15170
15171
15172
15173
15174
15175
15176
15177
15178
15179
15180
15181
15182
15183
15184
15185
15186
15187
15188
15189
15190
15191
15192
15193
15194
15195
15196
15197
15198
15199
15200
15201
15202
15203
15204
15205
15206
15207
15208
15209
15210
15211
15212
15213
15214
15215
15216
15217
15218
15219
15220
15221
15222
15223
15224
15225
15226
15227
15228
15229
15230
15231
15232
15233
15234
15235
15236
15237
15238
15239
15240
15241
15242
15243
15244
15245
15246
15247
15248
15249
15250
15251
15252
15253
15254
15255
15256
15257
15258
15259
15260
15261
15262
15263
15264
15265
15266
15267
15268
15269
15270
15271
15272
15273
15274
15275
15276
15277
15278
15279
15280
15281
15282
15283
15284
15285
15286
15287
15288
15289
15290
15291
15292
15293
15294
15295
15296
15297
15298
15299
15300
15301
15302
15303
15304
15305
15306
15307
15308
15309
15310
15311
15312
15313
15314
15315
15316
15317
15318
15319
15320
15321
15322
15323
15324
15325
15326
15327
15328
15329
15330
15331
15332
15333
15334
15335
15336
15337
15338
15339
15340
15341
15342
15343
15344
15345
15346
15347
15348
15349
15350
15351
15352
15353
15354
15355
15356
15357
15358
15359
15360
15361
15362
15363
15364
15365
15366
15367
15368
15369
15370
15371
15372
15373
15374
15375
15376
15377
15378
15379
15380
15381
15382
15383
15384
15385
15386
15387
15388
15389
15390
15391
15392
15393
15394
15395
15396
15397
15398
15399
15400
15401
15402
15403
15404
15405
15406
15407
15408
15409
15410
15411
15412
15413
15414
15415
15416
15417
15418
15419
15420
15421
15422
15423
15424
15425
15426
15427
15428
15429
15430
15431
15432
15433
15434
15435
15436
15437
15438
15439
15440
15441
15442
15443
15444
15445
15446
15447
15448
15449
15450
15451
15452
15453
15454
15455
15456
15457
15458
15459
15460
15461
15462
15463
15464
15465
15466
15467
15468
15469
15470
15471
15472
15473
15474
15475
15476
15477
15478
15479
15480
15481
15482
15483
15484
15485
15486
15487
15488
15489
15490
15491
15492
15493
15494
15495
15496
15497
15498
15499
15500
15501
15502
15503
15504
15505
15506
15507
15508
15509
15510
15511
15512
15513
15514
15515
15516
15517
15518
15519
15520
15521
15522
15523
15524
15525
15526
15527
15528
15529
15530
15531
15532
15533
15534
15535
15536
15537
15538
15539
15540
15541
15542
15543
15544
15545
15546
15547
15548
15549
15550
15551
15552
15553
15554
15555
15556
15557
15558
15559
15560
15561
15562
15563
15564
15565
15566
15567
15568
15569
15570
15571
15572
15573
15574
15575
15576
15577
15578
15579
15580
15581
15582
15583
15584
15585
15586
15587
15588
15589
15590
15591
15592
15593
15594
15595
15596
15597
15598
15599
15600
15601
15602
15603
15604
15605
15606
15607
15608
15609
15610
15611
15612
15613
15614
15615
15616
15617
15618
15619
15620
15621
15622
15623
15624
15625
15626
15627
15628
15629
15630
15631
15632
15633
15634
15635
15636
15637
15638
15639
15640
15641
15642
15643
15644
15645
15646
15647
15648
15649
15650
15651
15652
15653
15654
15655
15656
15657
15658
15659
15660
15661
15662
15663
15664
15665
15666
15667
15668
15669
15670
15671
15672
15673
15674
15675
15676
15677
15678
15679
15680
15681
15682
15683
15684
15685
15686
15687
15688
15689
15690
15691
15692
15693
15694
15695
15696
15697
15698
15699
15700
15701
15702
15703
15704
15705
15706
15707
15708
15709
15710
15711
15712
15713
15714
15715
15716
15717
15718
15719
15720
15721
15722
15723
15724
15725
15726
15727
15728
15729
15730
15731
15732
15733
15734
15735
15736
15737
15738
15739
15740
15741
15742
15743
15744
15745
15746
15747
15748
15749
15750
15751
15752
15753
15754
15755
15756
15757
15758
15759
15760
15761
15762
15763
15764
15765
15766
15767
15768
15769
15770
15771
15772
15773
15774
15775
15776
15777
15778
15779
15780
15781
15782
15783
15784
15785
15786
15787
15788
15789
15790
15791
15792
15793
15794
15795
15796
15797
15798
15799
15800
15801
15802
15803
15804
15805
15806
15807
15808
15809
15810
15811
15812
15813
15814
15815
15816
15817
15818
15819
15820
15821
15822
15823
15824
15825
15826
15827
15828
15829
15830
15831
15832
15833
15834
15835
15836
15837
15838
15839
15840
15841
15842
15843
15844
15845
15846
15847
15848
15849
15850
15851
15852
15853
15854
15855
15856
15857
15858
15859
15860
15861
15862
15863
15864
15865
15866
15867
15868
15869
15870
15871
15872
15873
15874
15875
15876
15877
15878
15879
15880
15881
15882
15883
15884
15885
15886
15887
15888
15889
15890
15891
15892
15893
15894
15895
15896
15897
15898
15899
15900
15901
15902
15903
15904
15905
15906
15907
15908
15909
15910
15911
15912
15913
15914
15915
15916
15917
15918
15919
15920
15921
15922
15923
15924
15925
15926
15927
15928
15929
15930
15931
15932
15933
15934
15935
15936
15937
15938
15939
15940
15941
15942
15943
15944
15945
15946
15947
15948
15949
15950
15951
15952
15953
15954
15955
15956
15957
15958
15959
15960
15961
15962
15963
15964
15965
15966
15967
15968
15969
15970
15971
15972
15973
15974
15975
15976
15977
15978
15979
15980
15981
15982
15983
15984
15985
15986
15987
15988
15989
15990
15991
15992
15993
15994
15995
15996
15997
15998
15999
16000
16001
16002
16003
16004
16005
16006
16007
16008
16009
16010
16011
16012
16013
16014
16015
16016
16017
16018
16019
16020
16021
16022
16023
16024
16025
16026
16027
16028
16029
16030
16031
16032
16033
16034
16035
16036
16037
16038
16039
16040
16041
16042
16043
16044
16045
16046
16047
16048
16049
16050
16051
16052
16053
16054
16055
16056
16057
16058
16059
16060
16061
16062
16063
16064
16065
16066
16067
16068
16069
16070
16071
16072
16073
16074
16075
16076
16077
16078
16079
16080
16081
16082
16083
16084
16085
16086
16087
16088
16089
16090
16091
16092
16093
16094
16095
16096
16097
16098
16099
16100
16101
16102
16103
16104
16105
16106
16107
16108
16109
16110
16111
16112
16113
16114
16115
16116
16117
16118
16119
16120
16121
16122
16123
16124
16125
16126
16127
16128
16129
16130
16131
16132
16133
16134
16135
16136
16137
16138
16139
16140
16141
16142
16143
16144
16145
16146
16147
16148
16149
16150
16151
16152
16153
16154
16155
16156
16157
16158
16159
16160
16161
16162
16163
16164
16165
16166
16167
16168
16169
16170
16171
16172
16173
16174
16175
16176
16177
16178
16179
16180
16181
16182
16183
16184
16185
16186
16187
16188
16189
16190
16191
16192
16193
16194
16195
16196
16197
16198
16199
16200
16201
16202
16203
16204
16205
16206
16207
16208
16209
16210
16211
16212
16213
16214
16215
16216
16217
16218
16219
16220
16221
16222
16223
16224
16225
16226
16227
16228
16229
16230
16231
16232
16233
16234
16235
16236
16237
16238
16239
16240
16241
16242
16243
16244
16245
16246
16247
16248
16249
16250
16251
16252
16253
16254
16255
16256
16257
16258
16259
16260
16261
16262
16263
16264
16265
16266
16267
16268
16269
16270
16271
16272
16273
16274
16275
16276
16277
16278
16279
16280
16281
16282
16283
16284
16285
16286
16287
16288
16289
16290
16291
16292
16293
16294
16295
16296
16297
16298
16299
16300
16301
16302
16303
16304
16305
16306
16307
16308
16309
16310
16311
16312
16313
16314
16315
16316
16317
16318
16319
16320
16321
16322
16323
16324
16325
16326
16327
16328
16329
16330
16331
16332
16333
16334
16335
16336
16337
16338
16339
16340
16341
16342
16343
16344
16345
16346
16347
16348
16349
16350
16351
16352
16353
16354
16355
16356
16357
16358
16359
16360
16361
16362
16363
16364
16365
16366
16367
16368
16369
16370
16371
16372
16373
16374
16375
16376
16377
16378
16379
16380
16381
16382
16383
16384
16385
16386
16387
16388
16389
16390
16391
16392
16393
16394
16395
16396
16397
16398
16399
16400
16401
16402
16403
16404
16405
16406
16407
16408
16409
16410
16411
16412
16413
16414
16415
16416
16417
16418
16419
16420
16421
16422
16423
16424
16425
16426
16427
16428
16429
16430
16431
16432
16433
16434
16435
16436
16437
16438
16439
16440
16441
16442
16443
16444
16445
16446
16447
16448
16449
16450
16451
16452
16453
16454
16455
16456
16457
16458
16459
16460
16461
16462
16463
16464
16465
16466
16467
16468
16469
16470
16471
16472
16473
16474
16475
16476
16477
16478
16479
16480
16481
16482
16483
16484
16485
16486
16487
16488
16489
16490
16491
16492
16493
16494
16495
16496
16497
16498
16499
16500
16501
16502
16503
16504
16505
16506
16507
16508
16509
16510
16511
16512
16513
16514
16515
16516
16517
16518
16519
16520
16521
16522
16523
16524
16525
16526
16527
16528
16529
16530
16531
16532
16533
16534
16535
16536
16537
16538
16539
16540
16541
16542
16543
16544
16545
16546
16547
16548
16549
16550
16551
16552
16553
16554
16555
16556
16557
16558
16559
16560
16561
16562
16563
16564
16565
16566
16567
16568
16569
16570
16571
16572
16573
16574
16575
16576
16577
16578
16579
16580
16581
16582
16583
16584
16585
16586
16587
16588
16589
16590
16591
16592
16593
16594
16595
16596
16597
16598
16599
16600
16601
16602
16603
16604
16605
16606
16607
16608
16609
16610
16611
16612
16613
16614
16615
16616
16617
16618
16619
16620
16621
16622
16623
16624
16625
16626
16627
16628
16629
16630
16631
16632
16633
16634
16635
16636
16637
16638
16639
16640
16641
16642
16643
16644
16645
16646
16647
16648
16649
16650
16651
16652
16653
16654
16655
16656
16657
16658
16659
16660
16661
16662
16663
16664
16665
16666
16667
16668
16669
16670
16671
16672
16673
16674
16675
16676
16677
16678
16679
16680
16681
16682
16683
16684
16685
16686
16687
16688
16689
16690
16691
16692
16693
16694
16695
16696
16697
16698
16699
16700
16701
16702
16703
16704
16705
16706
16707
16708
16709
16710
16711
16712
16713
16714
16715
16716
16717
16718
16719
16720
16721
16722
16723
16724
16725
16726
16727
16728
16729
16730
16731
16732
16733
16734
16735
16736
16737
16738
16739
16740
16741
16742
16743
16744
16745
16746
16747
16748
16749
16750
16751
16752
16753
16754
16755
16756
16757
16758
16759
16760
16761
16762
16763
16764
16765
16766
16767
16768
16769
16770
16771
16772
16773
16774
16775
16776
16777
16778
16779
16780
16781
16782
16783
16784
16785
16786
16787
16788
16789
16790
16791
16792
16793
16794
16795
16796
16797
16798
16799
16800
16801
16802
16803
16804
16805
16806
16807
16808
16809
16810
16811
16812
16813
16814
16815
16816
16817
16818
16819
16820
16821
16822
16823
16824
16825
16826
16827
16828
16829
16830
16831
16832
16833
16834
16835
16836
16837
16838
16839
16840
16841
16842
16843
16844
16845
16846
16847
16848
16849
16850
16851
16852
16853
16854
16855
16856
16857
16858
16859
16860
16861
16862
16863
16864
16865
16866
16867
16868
16869
16870
16871
16872
16873
16874
16875
16876
16877
16878
16879
16880
16881
16882
16883
16884
16885
16886
16887
16888
16889
16890
16891
16892
16893
16894
16895
16896
16897
16898
16899
16900
16901
16902
16903
16904
16905
16906
16907
16908
16909
16910
16911
16912
16913
16914
16915
16916
16917
16918
16919
16920
16921
16922
16923
16924
16925
16926
16927
16928
16929
16930
16931
16932
16933
16934
16935
16936
16937
16938
16939
16940
16941
16942
16943
16944
16945
16946
16947
16948
16949
16950
16951
16952
16953
16954
16955
16956
16957
16958
16959
16960
16961
16962
16963
16964
16965
16966
16967
16968
16969
16970
16971
16972
16973
16974
16975
16976
16977
16978
16979
16980
16981
16982
16983
16984
16985
16986
16987
16988
16989
16990
16991
16992
16993
16994
16995
16996
16997
16998
16999
17000
17001
17002
17003
17004
17005
17006
17007
17008
17009
17010
17011
17012
17013
17014
17015
17016
17017
17018
17019
17020
17021
17022
17023
17024
17025
17026
17027
17028
17029
17030
17031
17032
17033
17034
17035
17036
17037
17038
17039
17040
17041
17042
17043
17044
17045
17046
17047
17048
17049
17050
17051
17052
17053
17054
17055
17056
17057
17058
17059
17060
17061
17062
17063
17064
17065
17066
17067
17068
17069
17070
17071
17072
17073
17074
17075
17076
17077
17078
17079
17080
17081
17082
17083
17084
17085
17086
17087
17088
17089
17090
17091
17092
17093
17094
17095
17096
17097
17098
17099
17100
17101
17102
17103
17104
17105
17106
17107
17108
17109
17110
17111
17112
17113
17114
17115
17116
17117
17118
17119
17120
17121
17122
17123
17124
17125
17126
17127
17128
17129
17130
17131
17132
17133
17134
17135
17136
17137
17138
17139
17140
17141
17142
17143
17144
17145
17146
17147
17148
17149
17150
17151
17152
17153
17154
17155
17156
17157
17158
17159
17160
17161
17162
17163
17164
17165
17166
17167
17168
17169
17170
17171
17172
17173
17174
17175
17176
17177
17178
17179
17180
17181
17182
17183
17184
17185
17186
17187
17188
17189
17190
17191
17192
17193
17194
17195
17196
17197
17198
17199
17200
17201
17202
17203
17204
17205
17206
17207
17208
17209
17210
17211
17212
17213
17214
17215
17216
17217
17218
17219
17220
17221
17222
17223
17224
17225
17226
17227
17228
17229
17230
17231
17232
17233
17234
17235
17236
17237
17238
17239
17240
17241
17242
17243
17244
17245
17246
17247
17248
17249
17250
17251
17252
17253
17254
17255
17256
17257
17258
17259
17260
17261
17262
17263
17264
17265
17266
17267
17268
17269
17270
17271
17272
17273
17274
17275
17276
17277
17278
17279
17280
17281
17282
17283
17284
17285
17286
17287
17288
17289
17290
17291
17292
17293
17294
17295
17296
17297
17298
17299
17300
17301
17302
17303
17304
17305
17306
17307
17308
17309
17310
17311
17312
17313
17314
17315
17316
17317
17318
17319
17320
17321
17322
17323
17324
17325
17326
17327
17328
17329
17330
17331
17332
17333
17334
17335
17336
17337
17338
17339
17340
17341
17342
17343
17344
17345
17346
17347
17348
17349
17350
17351
17352
17353
17354
17355
17356
17357
17358
17359
17360
17361
17362
17363
17364
17365
17366
17367
17368
17369
17370
17371
17372
17373
17374
17375
17376
17377
17378
17379
17380
17381
17382
17383
17384
17385
17386
17387
17388
17389
17390
17391
17392
17393
17394
17395
17396
17397
17398
17399
17400
17401
17402
17403
17404
17405
17406
17407
17408
17409
17410
17411
17412
17413
17414
17415
17416
17417
17418
17419
17420
17421
17422
17423
17424
17425
17426
17427
17428
17429
17430
17431
17432
17433
17434
17435
17436
17437
17438
17439
17440
17441
17442
17443
17444
17445
17446
17447
17448
17449
17450
17451
17452
17453
17454
17455
17456
17457
17458
17459
17460
17461
17462
17463
17464
17465
17466
17467
17468
17469
17470
17471
17472
17473
17474
17475
17476
17477
17478
17479
17480
17481
17482
17483
17484
17485
17486
17487
17488
17489
17490
17491
17492
17493
17494
17495
17496
17497
17498
17499
17500
17501
17502
17503
17504
17505
17506
17507
17508
17509
17510
17511
17512
17513
17514
17515
17516
17517
17518
17519
17520
17521
17522
17523
17524
17525
17526
17527
17528
17529
17530
17531
17532
/*    sv.c
 *
 *    Copyright (C) 1991, 1992, 1993, 1994, 1995, 1996, 1997, 1998, 1999, 2000,
 *    2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, 2009 by Larry Wall
 *    and others
 *
 *    You may distribute under the terms of either the GNU General Public
 *    License or the Artistic License, as specified in the README file.
 *
 */

/*
 * 'I wonder what the Entish is for "yes" and "no",' he thought.
 *                                                      --Pippin
 *
 *     [p.480 of _The Lord of the Rings_, III/iv: "Treebeard"]
 */

/*
 *
 *
 * This file contains the code that creates, manipulates and destroys
 * scalar values (SVs). The other types (AV, HV, GV, etc.) reuse the
 * structure of an SV, so their creation and destruction is handled
 * here; higher-level functions are in av.c, hv.c, and so on. Opcode
 * level functions (eg. substr, split, join) for each of the types are
 * in the pp*.c files.
 */

#include "EXTERN.h"
#define PERL_IN_SV_C
#include "perl.h"
#include "regcomp.h"
#ifdef __VMS
# include <rms.h>
#endif

#ifdef __Lynx__
/* Missing proto on LynxOS */
  char *gconvert(double, int, int,  char *);
#endif

#ifdef USE_QUADMATH
#  define SNPRINTF_G(nv, buffer, size, ndig) \
    quadmath_snprintf(buffer, size, "%.*Qg", (int)ndig, (NV)(nv))
#else
#  define SNPRINTF_G(nv, buffer, size, ndig) \
    PERL_UNUSED_RESULT(Gconvert((NV)(nv), (int)ndig, 0, buffer))
#endif

#ifndef SV_COW_THRESHOLD
#    define SV_COW_THRESHOLD                    0   /* COW iff len > K */
#endif
#ifndef SV_COWBUF_THRESHOLD
#    define SV_COWBUF_THRESHOLD                 1250 /* COW iff len > K */
#endif
#ifndef SV_COW_MAX_WASTE_THRESHOLD
#    define SV_COW_MAX_WASTE_THRESHOLD          80   /* COW iff (len - cur) < K */
#endif
#ifndef SV_COWBUF_WASTE_THRESHOLD
#    define SV_COWBUF_WASTE_THRESHOLD           80   /* COW iff (len - cur) < K */
#endif
#ifndef SV_COW_MAX_WASTE_FACTOR_THRESHOLD
#    define SV_COW_MAX_WASTE_FACTOR_THRESHOLD   2    /* COW iff len < (cur * K) */
#endif
#ifndef SV_COWBUF_WASTE_FACTOR_THRESHOLD
#    define SV_COWBUF_WASTE_FACTOR_THRESHOLD    2    /* COW iff len < (cur * K) */
#endif
/* Work around compiler warnings about unsigned >= THRESHOLD when thres-
   hold is 0. */
#if SV_COW_THRESHOLD
# define GE_COW_THRESHOLD(cur) ((cur) >= SV_COW_THRESHOLD)
#else
# define GE_COW_THRESHOLD(cur) 1
#endif
#if SV_COWBUF_THRESHOLD
# define GE_COWBUF_THRESHOLD(cur) ((cur) >= SV_COWBUF_THRESHOLD)
#else
# define GE_COWBUF_THRESHOLD(cur) 1
#endif
#if SV_COW_MAX_WASTE_THRESHOLD
# define GE_COW_MAX_WASTE_THRESHOLD(cur,len) (((len)-(cur)) < SV_COW_MAX_WASTE_THRESHOLD)
#else
# define GE_COW_MAX_WASTE_THRESHOLD(cur,len) 1
#endif
#if SV_COWBUF_WASTE_THRESHOLD
# define GE_COWBUF_WASTE_THRESHOLD(cur,len) (((len)-(cur)) < SV_COWBUF_WASTE_THRESHOLD)
#else
# define GE_COWBUF_WASTE_THRESHOLD(cur,len) 1
#endif
#if SV_COW_MAX_WASTE_FACTOR_THRESHOLD
# define GE_COW_MAX_WASTE_FACTOR_THRESHOLD(cur,len) ((len) < SV_COW_MAX_WASTE_FACTOR_THRESHOLD * (cur))
#else
# define GE_COW_MAX_WASTE_FACTOR_THRESHOLD(cur,len) 1
#endif
#if SV_COWBUF_WASTE_FACTOR_THRESHOLD
# define GE_COWBUF_WASTE_FACTOR_THRESHOLD(cur,len) ((len) < SV_COWBUF_WASTE_FACTOR_THRESHOLD * (cur))
#else
# define GE_COWBUF_WASTE_FACTOR_THRESHOLD(cur,len) 1
#endif

#define CHECK_COW_THRESHOLD(cur,len) (\
    GE_COW_THRESHOLD((cur)) && \
    GE_COW_MAX_WASTE_THRESHOLD((cur),(len)) && \
    GE_COW_MAX_WASTE_FACTOR_THRESHOLD((cur),(len)) \
)
#define CHECK_COWBUF_THRESHOLD(cur,len) (\
    GE_COWBUF_THRESHOLD((cur)) && \
    GE_COWBUF_WASTE_THRESHOLD((cur),(len)) && \
    GE_COWBUF_WASTE_FACTOR_THRESHOLD((cur),(len)) \
)

#ifdef PERL_UTF8_CACHE_ASSERT
/* if adding more checks watch out for the following tests:
 *   t/op/index.t t/op/length.t t/op/pat.t t/op/substr.t
 *   lib/utf8.t lib/Unicode/Collate/t/index.t
 * --jhi
 */
#   define ASSERT_UTF8_CACHE(cache) \
    STMT_START { if (cache) { assert((cache)[0] <= (cache)[1]); \
                              assert((cache)[2] <= (cache)[3]); \
                              assert((cache)[3] <= (cache)[1]);} \
                              } STMT_END
#else
#   define ASSERT_UTF8_CACHE(cache) NOOP
#endif

static const char S_destroy[] = "DESTROY";
#define S_destroy_len (sizeof(S_destroy)-1)

/* ============================================================================

An SV (or AV, HV, etc.) is allocated in two parts: the head (struct
sv, av, hv...) contains type and reference count information, and for
many types, a pointer to the body (struct xrv, xpv, xpviv...), which
contains fields specific to each type.  Some types store all they need
in the head, so don't have a body.

In all but the most memory-paranoid configurations (ex: PURIFY), heads
and bodies are allocated out of arenas, which by default are
approximately 4K chunks of memory parcelled up into N heads or bodies.
Sv-bodies are allocated by their sv-type, guaranteeing size
consistency needed to allocate safely from arrays.

For SV-heads, the first slot in each arena is reserved, and holds a
link to the next arena, some flags, and a note of the number of slots.
Snaked through each arena chain is a linked list of free items; when
this becomes empty, an extra arena is allocated and divided up into N
items which are threaded into the free list.

SV-bodies are similar, but they use arena-sets by default, which
separate the link and info from the arena itself, and reclaim the 1st
slot in the arena.  SV-bodies are further described later.

The following global variables are associated with arenas:

 PL_sv_arenaroot     pointer to list of SV arenas
 PL_sv_root          pointer to list of free SV structures

 PL_body_arenas      head of linked-list of body arenas
 PL_body_roots[]     array of pointers to list of free bodies of svtype
                     arrays are indexed by the svtype needed

A few special SV heads are not allocated from an arena, but are
instead directly created in the interpreter structure, eg PL_sv_undef.
The size of arenas can be changed from the default by setting
PERL_ARENA_SIZE appropriately at compile time.

The SV arena serves the secondary purpose of allowing still-live SVs
to be located and destroyed during final cleanup.

At the lowest level, the macros new_SV() and del_SV() grab and free
an SV head.  (If debugging with -DD, del_SV() calls the function S_del_sv()
to return the SV to the free list with error checking.) new_SV() calls
more_sv() / sv_add_arena() to add an extra arena if the free list is empty.
SVs in the free list have their SvTYPE field set to all ones.

At the time of very final cleanup, sv_free_arenas() is called from
perl_destruct() to physically free all the arenas allocated since the
start of the interpreter.

The internal function visit() scans the SV arenas list, and calls a specified
function for each SV it finds which is still live, I<i.e.> which has an SvTYPE
other than all 1's, and a non-zero SvREFCNT. visit() is used by the
following functions (specified as [function that calls visit()] / [function
called by visit() for each SV]):

    sv_report_used() / do_report_used()
                        dump all remaining SVs (debugging aid)

    sv_clean_objs() / do_clean_objs(),do_clean_named_objs(),
                      do_clean_named_io_objs(),do_curse()
                        Attempt to free all objects pointed to by RVs,
                        try to do the same for all objects indir-
                        ectly referenced by typeglobs too, and
                        then do a final sweep, cursing any
                        objects that remain.  Called once from
                        perl_destruct(), prior to calling sv_clean_all()
                        below.

    sv_clean_all() / do_clean_all()
                        SvREFCNT_dec(sv) each remaining SV, possibly
                        triggering an sv_free(). It also sets the
                        SVf_BREAK flag on the SV to indicate that the
                        refcnt has been artificially lowered, and thus
                        stopping sv_free() from giving spurious warnings
                        about SVs which unexpectedly have a refcnt
                        of zero.  called repeatedly from perl_destruct()
                        until there are no SVs left.

=head2 Arena allocator API Summary

Private API to rest of sv.c

    new_SV(),  del_SV(),

    new_XPVNV(), del_body()
    etc

Public API:

    sv_report_used(), sv_clean_objs(), sv_clean_all(), sv_free_arenas()

=cut

 * ========================================================================= */

/*
 * "A time to plant, and a time to uproot what was planted..."
 */

#ifdef DEBUG_LEAKING_SCALARS
#  define FREE_SV_DEBUG_FILE(sv) STMT_START { \
        if ((sv)->sv_debug_file) {                   \
            PerlMemShared_free((sv)->sv_debug_file); \
            sv->sv_debug_file = NULL;                \
        }                                            \
    } STMT_END
#  define DEBUG_SV_SERIAL(sv)						    \
    DEBUG_m(PerlIO_printf(Perl_debug_log, "0x%" UVxf ": (%05ld) del_SV\n",    \
            PTR2UV(sv), (long)(sv)->sv_debug_serial))
#else
#  define FREE_SV_DEBUG_FILE(sv)
#  define DEBUG_SV_SERIAL(sv)	NOOP
#endif

/* Mark an SV head as unused, and add to free list.
 *
 * If SVf_BREAK is set, skip adding it to the free list, as this SV had
 * its refcount artificially decremented during global destruction, so
 * there may be dangling pointers to it. The last thing we want in that
 * case is for it to be reused. */

#define plant_SV(p) \
    STMT_START {					\
        const U32 old_flags = SvFLAGS(p);			\
        MEM_LOG_DEL_SV(p, __FILE__, __LINE__, FUNCTION__);  \
        DEBUG_SV_SERIAL(p);				\
        FREE_SV_DEBUG_FILE(p);				\
        POISON_SV_HEAD(p);				\
        SvFLAGS(p) = SVTYPEMASK;			\
        if (!(old_flags & SVf_BREAK)) {		\
            SvARENA_CHAIN_SET(p, PL_sv_root);	\
            PL_sv_root = (p);				\
        }						\
        --PL_sv_count;					\
    } STMT_END


/* make some more SVs by adding another arena */

SV*
Perl_more_sv(pTHX)
{
    SV* sv;
    char *chunk;                /* must use New here to match call to */
    Newx(chunk,PERL_ARENA_SIZE,char);  /* Safefree() in sv_free_arenas() */
    sv_add_arena(chunk, PERL_ARENA_SIZE, 0);
    uproot_SV(sv);
    return sv;
}

/* del_SV(): return an empty SV head to the free list */

#ifdef DEBUGGING

#define del_SV(p) \
    STMT_START {					\
        if (DEBUG_D_TEST)				\
            del_sv(p);					\
        else						\
            plant_SV(p);				\
    } STMT_END

STATIC void
S_del_sv(pTHX_ SV *p)
{
    PERL_ARGS_ASSERT_DEL_SV;

    if (DEBUG_D_TEST) {
        SV* sva;
        bool ok = 0;
        for (sva = PL_sv_arenaroot; sva; sva = MUTABLE_SV(SvANY(sva))) {
            const SV * const sv = sva + 1;
            const SV * const svend = &sva[SvREFCNT(sva)];
            if (p >= sv && p < svend) {
                ok = 1;
                break;
            }
        }
        if (!ok) {
            Perl_ck_warner_d(aTHX_ packWARN(WARN_INTERNAL),
                             "Attempt to free non-arena SV: 0x%" UVxf
                             pTHX__FORMAT, PTR2UV(p) pTHX__VALUE);
            return;
        }
    }
    plant_SV(p);
}

#else /* ! DEBUGGING */

#define del_SV(p)   plant_SV(p)

#endif /* DEBUGGING */


/*
=for apidoc_section $SV

=for apidoc sv_add_arena

Given a chunk of memory, link it to the head of the list of arenas,
and split it into a list of free SVs.

=cut
*/

static void
S_sv_add_arena(pTHX_ char *const ptr, const U32 size, const U32 flags)
{
    SV *const sva = MUTABLE_SV(ptr);
    SV* sv;
    SV* svend;

    PERL_ARGS_ASSERT_SV_ADD_ARENA;

    /* The first SV in an arena isn't an SV. */
    SvANY(sva) = (void *) PL_sv_arenaroot;		/* ptr to next arena */
    SvREFCNT(sva) = size / sizeof(SV);		/* number of SV slots */
    SvFLAGS(sva) = flags;			/* FAKE if not to be freed */

    PL_sv_arenaroot = sva;
    PL_sv_root = sva + 1;

    svend = &sva[SvREFCNT(sva) - 1];
    sv = sva + 1;
    while (sv < svend) {
        SvARENA_CHAIN_SET(sv, (sv + 1));
#ifdef DEBUGGING
        SvREFCNT(sv) = 0;
#endif
        /* Must always set typemask because it's always checked in on cleanup
           when the arenas are walked looking for objects.  */
        SvFLAGS(sv) = SVTYPEMASK;
        sv++;
    }
    SvARENA_CHAIN_SET(sv, 0);
#ifdef DEBUGGING
    SvREFCNT(sv) = 0;
#endif
    SvFLAGS(sv) = SVTYPEMASK;
}

/* visit(): call the named function for each non-free SV in the arenas
 * whose flags field matches the flags/mask args. */

STATIC I32
S_visit(pTHX_ SVFUNC_t f, const U32 flags, const U32 mask)
{
    SV* sva;
    I32 visited = 0;

    PERL_ARGS_ASSERT_VISIT;

    for (sva = PL_sv_arenaroot; sva; sva = MUTABLE_SV(SvANY(sva))) {
        const SV * const svend = &sva[SvREFCNT(sva)];
        SV* sv;
        for (sv = sva + 1; sv < svend; ++sv) {
            if (!SvIS_FREED(sv)
                    && (sv->sv_flags & mask) == flags
                    && SvREFCNT(sv))
            {
                (*f)(aTHX_ sv);
                ++visited;
            }
        }
    }
    return visited;
}

#ifdef DEBUGGING

/* called by sv_report_used() for each live SV */

static void
do_report_used(pTHX_ SV *const sv)
{
    if (!SvIS_FREED(sv)) {
        PerlIO_printf(Perl_debug_log, "****\n");
        sv_dump(sv);
    }
}
#endif

/*
=for apidoc sv_report_used

Dump the contents of all SVs not yet freed (debugging aid).

=cut
*/

void
Perl_sv_report_used(pTHX)
{
#ifdef DEBUGGING
    visit(do_report_used, 0, 0);
#else
    PERL_UNUSED_CONTEXT;
#endif
}

/* called by sv_clean_objs() for each live SV */

static void
do_clean_objs(pTHX_ SV *const ref)
{
    assert (SvROK(ref));
    {
        SV * const target = SvRV(ref);
        if (SvOBJECT(target)) {
            DEBUG_D((PerlIO_printf(Perl_debug_log, "Cleaning object ref:\n "), sv_dump(ref)));
            if (SvWEAKREF(ref)) {
                sv_del_backref(target, ref);
                SvWEAKREF_off(ref);
                SvRV_set(ref, NULL);
            } else {
                SvROK_off(ref);
                SvRV_set(ref, NULL);
                SvREFCNT_dec_NN(target);
            }
        }
    }
}


/* clear any slots in a GV which hold objects - except IO;
 * called by sv_clean_objs() for each live GV */

static void
do_clean_named_objs(pTHX_ SV *const sv)
{
    SV *obj;
    assert(SvTYPE(sv) == SVt_PVGV);
    assert(isGV_with_GP(sv));
    if (!GvGP(sv))
        return;

    /* freeing GP entries may indirectly free the current GV;
     * hold onto it while we mess with the GP slots */
    SvREFCNT_inc(sv);

    if ( ((obj = GvSV(sv) )) && SvOBJECT(obj)) {
        DEBUG_D((PerlIO_printf(Perl_debug_log,
                "Cleaning named glob SV object:\n "), sv_dump(obj)));
        GvSV(sv) = NULL;
        SvREFCNT_dec_NN(obj);
    }
    if ( ((obj = MUTABLE_SV(GvAV(sv)) )) && SvOBJECT(obj)) {
        DEBUG_D((PerlIO_printf(Perl_debug_log,
                "Cleaning named glob AV object:\n "), sv_dump(obj)));
        GvAV(sv) = NULL;
        SvREFCNT_dec_NN(obj);
    }
    if ( ((obj = MUTABLE_SV(GvHV(sv)) )) && SvOBJECT(obj)) {
        DEBUG_D((PerlIO_printf(Perl_debug_log,
                "Cleaning named glob HV object:\n "), sv_dump(obj)));
        GvHV(sv) = NULL;
        SvREFCNT_dec_NN(obj);
    }
    if ( ((obj = MUTABLE_SV(GvCV(sv)) )) && SvOBJECT(obj)) {
        DEBUG_D((PerlIO_printf(Perl_debug_log,
                "Cleaning named glob CV object:\n "), sv_dump(obj)));
        GvCV_set(sv, NULL);
        SvREFCNT_dec_NN(obj);
    }
    SvREFCNT_dec_NN(sv); /* undo the inc above */
}

/* clear any IO slots in a GV which hold objects (except stderr, defout);
 * called by sv_clean_objs() for each live GV */

static void
do_clean_named_io_objs(pTHX_ SV *const sv)
{
    SV *obj;
    assert(SvTYPE(sv) == SVt_PVGV);
    assert(isGV_with_GP(sv));
    if (!GvGP(sv) || sv == (SV*)PL_stderrgv || sv == (SV*)PL_defoutgv)
        return;

    SvREFCNT_inc(sv);
    if ( ((obj = MUTABLE_SV(GvIO(sv)) )) && SvOBJECT(obj)) {
        DEBUG_D((PerlIO_printf(Perl_debug_log,
                "Cleaning named glob IO object:\n "), sv_dump(obj)));
        GvIOp(sv) = NULL;
        SvREFCNT_dec_NN(obj);
    }
    SvREFCNT_dec_NN(sv); /* undo the inc above */
}

/* Void wrapper to pass to visit() */
static void
do_curse(pTHX_ SV * const sv) {
    if ((PL_stderrgv && GvGP(PL_stderrgv) && (SV*)GvIO(PL_stderrgv) == sv)
     || (PL_defoutgv && GvGP(PL_defoutgv) && (SV*)GvIO(PL_defoutgv) == sv))
        return;
    (void)curse(sv, 0);
}

/*
=for apidoc sv_clean_objs

Attempt to destroy all objects not yet freed.

=cut
*/

void
Perl_sv_clean_objs(pTHX)
{
    GV *olddef, *olderr;
    PL_in_clean_objs = TRUE;
    visit(do_clean_objs, SVf_ROK, SVf_ROK);
    /* Some barnacles may yet remain, clinging to typeglobs.
     * Run the non-IO destructors first: they may want to output
     * error messages, close files etc */
    visit(do_clean_named_objs, SVt_PVGV|SVpgv_GP, SVTYPEMASK|SVp_POK|SVpgv_GP);
    visit(do_clean_named_io_objs, SVt_PVGV|SVpgv_GP, SVTYPEMASK|SVp_POK|SVpgv_GP);
    /* And if there are some very tenacious barnacles clinging to arrays,
       closures, or what have you.... */
    visit(do_curse, SVs_OBJECT, SVs_OBJECT);
    olddef = PL_defoutgv;
    PL_defoutgv = NULL; /* disable skip of PL_defoutgv */
    if (olddef && isGV_with_GP(olddef))
        do_clean_named_io_objs(aTHX_ MUTABLE_SV(olddef));
    olderr = PL_stderrgv;
    PL_stderrgv = NULL; /* disable skip of PL_stderrgv */
    if (olderr && isGV_with_GP(olderr))
        do_clean_named_io_objs(aTHX_ MUTABLE_SV(olderr));
    SvREFCNT_dec(olddef);
    PL_in_clean_objs = FALSE;
}

/* called by sv_clean_all() for each live SV */

static void
do_clean_all(pTHX_ SV *const sv)
{
    if (sv == (const SV *) PL_fdpid || sv == (const SV *)PL_strtab) {
        /* don't clean pid table and strtab */
        return;
    }
    DEBUG_D((PerlIO_printf(Perl_debug_log, "Cleaning loops: SV at 0x%" UVxf "\n", PTR2UV(sv)) ));
    SvFLAGS(sv) |= SVf_BREAK;
    SvREFCNT_dec_NN(sv);
}

/*
=for apidoc sv_clean_all

Decrement the refcnt of each remaining SV, possibly triggering a
cleanup.  This function may have to be called multiple times to free
SVs which are in complex self-referential hierarchies.

=cut
*/

I32
Perl_sv_clean_all(pTHX)
{
    I32 cleaned;
    PL_in_clean_all = TRUE;
    cleaned = visit(do_clean_all, 0,0);
    return cleaned;
}

/*
  ARENASETS: a meta-arena implementation which separates arena-info
  into struct arena_set, which contains an array of struct
  arena_descs, each holding info for a single arena.  By separating
  the meta-info from the arena, we recover the 1st slot, formerly
  borrowed for list management.  The arena_set is about the size of an
  arena, avoiding the needless malloc overhead of a naive linked-list.

  The cost is 1 arena-set malloc per ~320 arena-mallocs, + the unused
  memory in the last arena-set (1/2 on average).  In trade, we get
  back the 1st slot in each arena (ie 1.7% of a CV-arena, less for
  smaller types).  The recovery of the wasted space allows use of
  small arenas for large, rare body types, by changing array* fields
  in body_details_by_type[] below.
*/
struct arena_desc {
    char       *arena;		/* the raw storage, allocated aligned */
    size_t      size;		/* its size ~4k typ */
    svtype	utype;		/* bodytype stored in arena */
};

struct arena_set;

/* Get the maximum number of elements in set[] such that struct arena_set
   will fit within PERL_ARENA_SIZE, which is probably just under 4K, and
   therefore likely to be 1 aligned memory page.  */

#define ARENAS_PER_SET  ((PERL_ARENA_SIZE - sizeof(struct arena_set*) \
                          - 2 * sizeof(int)) / sizeof (struct arena_desc))

struct arena_set {
    struct arena_set* next;
    unsigned int   set_size;	/* ie ARENAS_PER_SET */
    unsigned int   curr;	/* index of next available arena-desc */
    struct arena_desc set[ARENAS_PER_SET];
};

/*
=for apidoc sv_free_arenas

Deallocate the memory used by all arenas.  Note that all the individual SV
heads and bodies within the arenas must already have been freed.

=cut

*/
void
Perl_sv_free_arenas(pTHX)
{
    SV* sva;
    SV* svanext;
    unsigned int i;

    /* Free arenas here, but be careful about fake ones.  (We assume
       contiguity of the fake ones with the corresponding real ones.) */

    for (sva = PL_sv_arenaroot; sva; sva = svanext) {
        svanext = MUTABLE_SV(SvANY(sva));
        while (svanext && SvFAKE(svanext))
            svanext = MUTABLE_SV(SvANY(svanext));

        if (!SvFAKE(sva))
            Safefree(sva);
    }

    {
        struct arena_set *aroot = (struct arena_set*) PL_body_arenas;

        while (aroot) {
            struct arena_set *current = aroot;
            i = aroot->curr;
            while (i--) {
                assert(aroot->set[i].arena);
                Safefree(aroot->set[i].arena);
            }
            aroot = aroot->next;
            Safefree(current);
        }
    }
    PL_body_arenas = 0;

    i = PERL_ARENA_ROOTS_SIZE;
    while (i--)
        PL_body_roots[i] = 0;

    PL_sv_arenaroot = 0;
    PL_sv_root = 0;
}

/*
  Historically, here were mid-level routines that manage the
  allocation of bodies out of the various arenas. Some of these
  routines and related definitions remain here, but others were
  moved into sv_inline.h to facilitate inlining of newSV_type().

  There are 4 kinds of arenas:

  1. SV-head arenas, which are discussed and handled above
  2. regular body arenas
  3. arenas for reduced-size bodies
  4. Hash-Entry arenas

  Arena types 2 & 3 are chained by body-type off an array of
  arena-root pointers, which is indexed by svtype.  Some of the
  larger/less used body types are malloced singly, since a large
  unused block of them is wasteful.  Also, several svtypes don't have
  bodies; the data fits into the sv-head itself.  The arena-root
  pointer thus has a few unused root-pointers (which may be hijacked
  later for arena type 4)

  3 differs from 2 as an optimization; some body types have several
  unused fields in the front of the structure (which are kept in-place
  for consistency).  These bodies can be allocated in smaller chunks,
  because the leading fields arent accessed.  Pointers to such bodies
  are decremented to point at the unused 'ghost' memory, knowing that
  the pointers are used with offsets to the real memory.

Allocation of SV-bodies is similar to SV-heads, differing as follows;
the allocation mechanism is used for many body types, so is somewhat
more complicated, it uses arena-sets, and has no need for still-live
SV detection.

At the outermost level, (new|del)_X*V macros return bodies of the
appropriate type.  These macros call either (new|del)_body_type or
(new|del)_body_allocated macro pairs, depending on specifics of the
type.  Most body types use the former pair, the latter pair is used to
allocate body types with "ghost fields".

"ghost fields" are fields that are unused in certain types, and
consequently don't need to actually exist.  They are declared because
they're part of a "base type", which allows use of functions as
methods.  The simplest examples are AVs and HVs, 2 aggregate types
which don't use the fields which support SCALAR semantics.

For these types, the arenas are carved up into appropriately sized
chunks, we thus avoid wasted memory for those unaccessed members.
When bodies are allocated, we adjust the pointer back in memory by the
size of the part not allocated, so it's as if we allocated the full
structure.  (But things will all go boom if you write to the part that
is "not there", because you'll be overwriting the last members of the
preceding structure in memory.)

We calculate the correction using the STRUCT_OFFSET macro on the first
member present.  If the allocated structure is smaller (no initial NV
actually allocated) then the net effect is to subtract the size of the NV
from the pointer, to return a new pointer as if an initial NV were actually
allocated.  (We were using structures named *_allocated for this, but
this turned out to be a subtle bug, because a structure without an NV
could have a lower alignment constraint, but the compiler is allowed to
optimised accesses based on the alignment constraint of the actual pointer
to the full structure, for example, using a single 64 bit load instruction
because it "knows" that two adjacent 32 bit members will be 8-byte aligned.)

This is the same trick as was used for NV and IV bodies.  Ironically it
doesn't need to be used for NV bodies any more, because NV is now at
the start of the structure.  IV bodies, and also in some builds NV bodies,
don't need it either, because they are no longer allocated.

In turn, the new_body_* allocators call S_new_body(), which invokes
new_body_from_arena macro, which takes a lock, and takes a body off the
linked list at PL_body_roots[sv_type], calling Perl_more_bodies() if
necessary to refresh an empty list.  Then the lock is released, and
the body is returned.

Perl_more_bodies allocates a new arena, and carves it up into an array of N
bodies, which it strings into a linked list.  It looks up arena-size
and body-size from the body_details table described below, thus
supporting the multiple body-types.

If PURIFY is defined, or PERL_ARENA_SIZE=0, arenas are not used, and
the (new|del)_X*V macros are mapped directly to malloc/free.

For each sv-type, struct body_details bodies_by_type[] carries
parameters which control these aspects of SV handling:

Arena_size determines whether arenas are used for this body type, and if
so, how big they are.  PURIFY or PERL_ARENA_SIZE=0 set this field to
zero, forcing individual mallocs and frees.

Body_size determines how big a body is, and therefore how many fit into
each arena.  Offset carries the body-pointer adjustment needed for
"ghost fields", and is used in *_allocated macros.

But its main purpose is to parameterize info needed in
Perl_sv_upgrade().  The info here dramatically simplifies the function
vs the implementation in 5.8.8, making it table-driven.  All fields
are used for this, except for arena_size.

For the sv-types that have no bodies, arenas are not used, so those
PL_body_roots[sv_type] are unused, and can be overloaded.  In
something of a special case, SVt_NULL is borrowed for HE arenas;
PL_body_roots[HE_ARENA_ROOT_IX=SVt_NULL] is filled by S_more_he, but the
bodies_by_type[SVt_NULL] slot is not used, as the table is not
available in hv.c. Similarly SVt_IV is re-used for HVAUX_ARENA_ROOT_IX.

*/

/* return a thing to the free list */

#define del_body(thing, root)				\
    STMT_START {					\
        void ** const thing_copy = (void **)thing;	\
        *thing_copy = *root;				\
        *root = (void*)thing_copy;			\
    } STMT_END


void *
Perl_more_bodies (pTHX_ const svtype sv_type, const size_t body_size,
                  const size_t arena_size)
{
    void ** const root = &PL_body_roots[sv_type];
    struct arena_desc *adesc;
    struct arena_set *aroot = (struct arena_set *) PL_body_arenas;
    unsigned int curr;
    char *start;
    const char *end;
    const size_t good_arena_size = Perl_malloc_good_size(arena_size);
#if defined(DEBUGGING)
    static bool done_sanity_check;

    if (!done_sanity_check) {
        unsigned int i = SVt_LAST;

        done_sanity_check = TRUE;

        while (i--)
            assert (bodies_by_type[i].type == i);
    }
#endif

    assert(arena_size);

    /* may need new arena-set to hold new arena */
    if (!aroot || aroot->curr >= aroot->set_size) {
        struct arena_set *newroot;
        Newxz(newroot, 1, struct arena_set);
        newroot->set_size = ARENAS_PER_SET;
        newroot->next = aroot;
        aroot = newroot;
        PL_body_arenas = (void *) newroot;
        DEBUG_m(PerlIO_printf(Perl_debug_log, "new arenaset %p\n", (void*)aroot));
    }

    /* ok, now have arena-set with at least 1 empty/available arena-desc */
    curr = aroot->curr++;
    adesc = &(aroot->set[curr]);
    assert(!adesc->arena);

    Newx(adesc->arena, good_arena_size, char);
    adesc->size = good_arena_size;
    adesc->utype = sv_type;
    DEBUG_m(PerlIO_printf(Perl_debug_log, "arena %d added: %p size %" UVuf "\n",
                          curr, (void*)adesc->arena, (UV)good_arena_size));

    start = (char *) adesc->arena;

    /* Get the address of the byte after the end of the last body we can fit.
       Remember, this is integer division:  */
    end = start + good_arena_size / body_size * body_size;

    /* computed count doesn't reflect the 1st slot reservation */
#if defined(MYMALLOC) || defined(HAS_MALLOC_GOOD_SIZE)
    DEBUG_m(PerlIO_printf(Perl_debug_log,
                          "arena %p end %p arena-size %d (from %d) type %d "
                          "size %d ct %d\n",
                          (void*)start, (void*)end, (int)good_arena_size,
                          (int)arena_size, sv_type, (int)body_size,
                          (int)good_arena_size / (int)body_size));
#else
    DEBUG_m(PerlIO_printf(Perl_debug_log,
                          "arena %p end %p arena-size %d type %d size %d ct %d\n",
                          (void*)start, (void*)end,
                          (int)arena_size, sv_type, (int)body_size,
                          (int)good_arena_size / (int)body_size));
#endif
    *root = (void *)start;

    while (1) {
        /* Where the next body would start:  */
        char * const next = start + body_size;

        if (next >= end) {
            /* This is the last body:  */
            assert(next == end);

            *(void **)start = 0;
            return *root;
        }

        *(void**) start = (void *)next;
        start = next;
    }
}

/*
=for apidoc sv_upgrade

Upgrade an SV to a more complex form.  Generally adds a new body type to the
SV, then copies across as much information as possible from the old body.
It croaks if the SV is already in a more complex form than requested.  You
generally want to use the C<SvUPGRADE> macro wrapper, which checks the type
before calling C<sv_upgrade>, and hence does not croak.  See also
C<L</svtype>>.

=cut
*/

void
Perl_sv_upgrade(pTHX_ SV *const sv, svtype new_type)
{
    void*	old_body;
    void*	new_body;
    const svtype old_type = SvTYPE(sv);
    const struct body_details *new_type_details;
    const struct body_details *old_type_details
        = bodies_by_type + old_type;
    SV *referent = NULL;

    PERL_ARGS_ASSERT_SV_UPGRADE;

    if (old_type == new_type)
        return;

    /* This clause was purposefully added ahead of the early return above to
       the shared string hackery for (sort {$a <=> $b} keys %hash), with the
       inference by Nick I-S that it would fix other troublesome cases. See
       changes 7162, 7163 (f130fd4589cf5fbb24149cd4db4137c8326f49c1 and parent)

       Given that shared hash key scalars are no longer PVIV, but PV, there is
       no longer need to unshare so as to free up the IVX slot for its proper
       purpose. So it's safe to move the early return earlier.  */

    if (new_type > SVt_PVMG && SvIsCOW(sv)) {
        sv_force_normal_flags(sv, 0);
    }

    old_body = SvANY(sv);

    /* Copying structures onto other structures that have been neatly zeroed
       has a subtle gotcha. Consider XPVMG

       +------+------+------+------+------+-------+-------+
       |     NV      | CUR  | LEN  |  IV  | MAGIC | STASH |
       +------+------+------+------+------+-------+-------+
       0      4      8     12     16     20      24      28

       where NVs are aligned to 8 bytes, so that sizeof that structure is
       actually 32 bytes long, with 4 bytes of padding at the end:

       +------+------+------+------+------+-------+-------+------+
       |     NV      | CUR  | LEN  |  IV  | MAGIC | STASH | ???  |
       +------+------+------+------+------+-------+-------+------+
       0      4      8     12     16     20      24      28     32

       so what happens if you allocate memory for this structure:

       +------+------+------+------+------+-------+-------+------+------+...
       |     NV      | CUR  | LEN  |  IV  | MAGIC | STASH |  GP  | NAME |
       +------+------+------+------+------+-------+-------+------+------+...
       0      4      8     12     16     20      24      28     32     36

       zero it, then copy sizeof(XPVMG) bytes on top of it? Not quite what you
       expect, because you copy the area marked ??? onto GP. Now, ??? may have
       started out as zero once, but it's quite possible that it isn't. So now,
       rather than a nicely zeroed GP, you have it pointing somewhere random.
       Bugs ensue.

       (In fact, GP ends up pointing at a previous GP structure, because the
       principle cause of the padding in XPVMG getting garbage is a copy of
       sizeof(XPVMG) bytes from a XPVGV structure in sv_unglob. Right now
       this happens to be moot because XPVGV has been re-ordered, with GP
       no longer after STASH)

       So we are careful and work out the size of used parts of all the
       structures.  */

    switch (old_type) {
    case SVt_NULL:
        break;
    case SVt_IV:
        if (SvROK(sv)) {
            referent = SvRV(sv);
            old_type_details = &fake_rv;
            if (new_type == SVt_NV)
                new_type = SVt_PVNV;
        } else {
            if (new_type < SVt_PVIV) {
                new_type = (new_type == SVt_NV)
                    ? SVt_PVNV : SVt_PVIV;
            }
        }
        break;
    case SVt_NV:
        if (new_type < SVt_PVNV) {
            new_type = SVt_PVNV;
        }
        break;
    case SVt_PV:
        assert(new_type > SVt_PV);
        STATIC_ASSERT_STMT(SVt_IV < SVt_PV);
        STATIC_ASSERT_STMT(SVt_NV < SVt_PV);
        break;
    case SVt_PVIV:
        break;
    case SVt_PVNV:
        break;
    case SVt_PVMG:
        /* Because the XPVMG of PL_mess_sv isn't allocated from the arena,
           there's no way that it can be safely upgraded, because perl.c
           expects to Safefree(SvANY(PL_mess_sv))  */
        assert(sv != PL_mess_sv);
        break;
    default:
        if (UNLIKELY(old_type_details->cant_upgrade))
            Perl_croak(aTHX_ "Can't upgrade %s (%" UVuf ") to %" UVuf,
                       sv_reftype(sv, 0), (UV) old_type, (UV) new_type);
    }

    if (UNLIKELY(old_type > new_type))
        Perl_croak(aTHX_ "sv_upgrade from type %d down to type %d",
                (int)old_type, (int)new_type);

    new_type_details = bodies_by_type + new_type;

    SvFLAGS(sv) &= ~SVTYPEMASK;
    SvFLAGS(sv) |= new_type;

    /* This can't happen, as SVt_NULL is <= all values of new_type, so one of
       the return statements above will have triggered.  */
    assert (new_type != SVt_NULL);
    switch (new_type) {
    case SVt_IV:
        assert(old_type == SVt_NULL);
        SET_SVANY_FOR_BODYLESS_IV(sv);
        SvIV_set(sv, 0);
        return;
    case SVt_NV:
        assert(old_type == SVt_NULL);
#if NVSIZE <= IVSIZE
        SET_SVANY_FOR_BODYLESS_NV(sv);
#else
        SvANY(sv) = new_XNV();
#endif
        SvNV_set(sv, 0);
        return;
    case SVt_PVHV:
    case SVt_PVAV:
    case SVt_PVOBJ:
        assert(new_type_details->body_size);

#ifndef PURIFY
        assert(new_type_details->arena);
        assert(new_type_details->arena_size);
        /* This points to the start of the allocated area.  */
        new_body = S_new_body(aTHX_ new_type);
        /* xpvav and xpvhv have no offset, so no need to adjust new_body */
        assert(!(new_type_details->offset));
#else
        /* We always allocated the full length item with PURIFY. To do this
           we fake things so that arena is false for all 16 types..  */
        new_body = new_NOARENAZ(new_type_details);
#endif
        SvANY(sv) = new_body;
        switch(new_type) {
        case SVt_PVAV:
            *((XPVAV*) SvANY(sv)) = (XPVAV) {
                .xmg_stash = NULL, .xmg_u = {.xmg_magic = NULL},
                .xav_fill = -1, .xav_max = -1, .xav_alloc = 0
                };

            AvREAL_only(sv);
            break;
        case SVt_PVHV:
            *((XPVHV*) SvANY(sv)) = (XPVHV) {
                .xmg_stash = NULL, .xmg_u = {.xmg_magic = NULL},
                .xhv_keys = 0,
                /* start with PERL_HASH_DEFAULT_HvMAX+1 buckets: */
                .xhv_max = PERL_HASH_DEFAULT_HvMAX
                };

            assert(!SvOK(sv));
            SvOK_off(sv);
#ifndef NODEFAULT_SHAREKEYS
            HvSHAREKEYS_on(sv);         /* key-sharing on by default */
#endif
            break;
        case SVt_PVOBJ:
            *((XPVOBJ*) SvANY(sv)) = (XPVOBJ) {
                .xmg_stash = NULL, .xmg_u = {.xmg_magic = NULL},
                .xobject_maxfield = -1,
                .xobject_iter_sv_at = 0,
                .xobject_fields = NULL,
            };
            break;
        default:
            NOT_REACHED;
        }

        /* SVt_NULL isn't the only thing upgraded to AV or HV.
           The target created by newSVrv also is, and it can have magic.
           However, it never has SvPVX set.
        */
        if (old_type == SVt_IV) {
            assert(!SvROK(sv));
        } else if (old_type >= SVt_PV) {
            assert(SvPVX_const(sv) == 0);
        }

        if (old_type >= SVt_PVMG) {
            SvMAGIC_set(sv, ((XPVMG*)old_body)->xmg_u.xmg_magic);
            SvSTASH_set(sv, ((XPVMG*)old_body)->xmg_stash);
        } else {
            sv->sv_u.svu_array = NULL; /* or svu_hash  */
        }
        break;

    case SVt_PVIV:
        /* XXX Is this still needed?  Was it ever needed?   Surely as there is
           no route from NV to PVIV, NOK can never be true  */
        assert(!SvNOKp(sv));
        assert(!SvNOK(sv));
        /* FALLTHROUGH */
    case SVt_PVIO:
    case SVt_PVFM:
    case SVt_PVGV:
    case SVt_PVCV:
    case SVt_PVLV:
    case SVt_INVLIST:
    case SVt_REGEXP:
    case SVt_PVMG:
    case SVt_PVNV:
    case SVt_PV:

        assert(new_type_details->body_size);
        /* We always allocated the full length item with PURIFY. To do this
           we fake things so that arena is false for all 16 types..  */
#ifndef PURIFY
        if(new_type_details->arena) {
            /* This points to the start of the allocated area.  */
            new_body = S_new_body(aTHX_ new_type);
            Zero(new_body, new_type_details->body_size, char);
            new_body = ((char *)new_body) - new_type_details->offset;
        } else
#endif
        {
            new_body = new_NOARENAZ(new_type_details);
        }
        SvANY(sv) = new_body;

        if (old_type_details->copy) {
            /* There is now the potential for an upgrade from something without
               an offset (PVNV or PVMG) to something with one (PVCV, PVFM)  */
            int offset = old_type_details->offset;
            int length = old_type_details->copy;

            if (new_type_details->offset > old_type_details->offset) {
                const int difference
                    = new_type_details->offset - old_type_details->offset;
                offset += difference;
                length -= difference;
            }
            assert (length >= 0);

            Copy((char *)old_body + offset, (char *)new_body + offset, length,
                 char);
        }

#ifndef NV_ZERO_IS_ALLBITS_ZERO
        /* If NV 0.0 is stores as all bits 0 then Zero() already creates a
         * correct 0.0 for us.  Otherwise, if the old body didn't have an
         * NV slot, but the new one does, then we need to initialise the
         * freshly created NV slot with whatever the correct bit pattern is
         * for 0.0  */
        if (old_type_details->zero_nv && !new_type_details->zero_nv
            && !isGV_with_GP(sv))
            SvNV_set(sv, 0);
#endif

        if (UNLIKELY(new_type == SVt_PVIO)) {
            IO * const io = MUTABLE_IO(sv);
            GV *iogv = gv_fetchpvs("IO::File::", GV_ADD, SVt_PVHV);

            SvOBJECT_on(io);
            /* Clear the stashcache because a new IO could overrule a package
               name */
            DEBUG_o(Perl_deb(aTHX_ "sv_upgrade clearing PL_stashcache\n"));
            hv_clear(PL_stashcache);

            SvSTASH_set(io, MUTABLE_HV(SvREFCNT_inc(GvHV(iogv))));
            IoPAGE_LEN(sv) = 60;
        }
        if (old_type < SVt_PV) {
            /* referent will be NULL unless the old type was SVt_IV emulating
               SVt_RV */
            sv->sv_u.svu_rv = referent;
        }
        break;
    default:
        Perl_croak(aTHX_ "panic: sv_upgrade to unknown type %lu",
                   (unsigned long)new_type);
    }

    /* if this is zero, this is a body-less SVt_NULL, SVt_IV/SVt_RV,
       and sometimes SVt_NV */
    if (old_type_details->body_size) {
#ifdef PURIFY
        safefree(old_body);
#else
        /* Note that there is an assumption that all bodies of types that
           can be upgraded came from arenas. Only the more complex non-
           upgradable types are allowed to be directly malloc()ed.  */
        assert(old_type_details->arena);
        del_body((void*)((char*)old_body + old_type_details->offset),
                 &PL_body_roots[old_type]);
#endif
    }
}

struct xpvhv_aux*
Perl_hv_auxalloc(pTHX_ HV *hv) {
    const struct body_details *old_type_details = bodies_by_type + SVt_PVHV;
    void *old_body;
    void *new_body;

    PERL_ARGS_ASSERT_HV_AUXALLOC;
    assert(SvTYPE(hv) == SVt_PVHV);
    assert(!HvHasAUX(hv));

#ifdef PURIFY
    new_body = new_NOARENAZ(&fake_hv_with_aux);
#else
    new_body_from_arena(new_body, HVAUX_ARENA_ROOT_IX, fake_hv_with_aux);
#endif

    old_body = SvANY(hv);

    Copy((char *)old_body + old_type_details->offset,
         (char *)new_body + fake_hv_with_aux.offset,
         old_type_details->copy,
         char);

#ifdef PURIFY
    safefree(old_body);
#else
    assert(old_type_details->arena);
    del_body((void*)((char*)old_body + old_type_details->offset),
             &PL_body_roots[SVt_PVHV]);
#endif

    SvANY(hv) = (XPVHV *) new_body;
    SvFLAGS(hv) |= SVphv_HasAUX;
    return HvAUX(hv);
}

/*
=for apidoc sv_backoff

Remove any string offset.  You should normally use the C<SvOOK_off> macro
wrapper instead.

=cut
*/

/* prior to 5.000 stable, this function returned the new OOK-less SvFLAGS
   prior to 5.23.4 this function always returned 0
*/

void
Perl_sv_backoff(SV *const sv)
{
    STRLEN delta;
    const char * const s = SvPVX_const(sv);

    PERL_ARGS_ASSERT_SV_BACKOFF;

    assert(SvOOK(sv));
    assert(SvTYPE(sv) != SVt_PVHV);
    assert(SvTYPE(sv) != SVt_PVAV);

    SvOOK_offset(sv, delta);

    SvLEN_set(sv, SvLEN(sv) + delta);
    SvPV_set(sv, SvPVX(sv) - delta);
    SvFLAGS(sv) &= ~SVf_OOK;
    Move(s, SvPVX(sv), SvCUR(sv)+1, char);
    return;
}


/* forward declaration */
static void S_sv_uncow(pTHX_ SV * const sv, const U32 flags);


/*
=for apidoc sv_grow

Expands the character buffer in the SV.  If necessary, uses C<sv_unref> and
upgrades the SV to C<SVt_PV>.  Returns a pointer to the character buffer.
Use the C<SvGROW> wrapper instead.

=cut
*/


char *
Perl_sv_grow(pTHX_ SV *const sv, STRLEN newlen)
{
    char *s;

    PERL_ARGS_ASSERT_SV_GROW;

    if (SvROK(sv))
        sv_unref(sv);
    if (SvTYPE(sv) < SVt_PV) {
        sv_upgrade(sv, SVt_PV);
        s = SvPVX_mutable(sv);
    }
    else if (SvOOK(sv)) {	/* pv is offset? */
        sv_backoff(sv);
        s = SvPVX_mutable(sv);
        if (newlen > SvLEN(sv))
            newlen += 10 * (newlen - SvCUR(sv)); /* avoid copy each time */
    }
    else
    {
        if (SvIsCOW(sv)) S_sv_uncow(aTHX_ sv, 0);
        s = SvPVX_mutable(sv);
    }

#ifdef PERL_COPY_ON_WRITE
    /* the new COW scheme uses SvPVX(sv)[SvLEN(sv)-1] (if spare)
     * to store the COW count. So in general, allocate one more byte than
     * asked for, to make it likely this byte is always spare: and thus
     * make more strings COW-able.
     *
     * Only increment if the allocation isn't MEM_SIZE_MAX,
     * otherwise it will wrap to 0.
     */
    if ( newlen != MEM_SIZE_MAX )
        newlen++;
#endif

#if defined(PERL_USE_MALLOC_SIZE) && defined(Perl_safesysmalloc_size)
#define PERL_UNWARANTED_CHUMMINESS_WITH_MALLOC
#endif

    if (newlen > SvLEN(sv)) {		/* need more room? */
        STRLEN minlen = SvCUR(sv);
        minlen += (minlen >> PERL_STRLEN_EXPAND_SHIFT) + PERL_STRLEN_NEW_MIN;
        if (newlen < minlen)
            newlen = minlen;
#ifndef PERL_UNWARANTED_CHUMMINESS_WITH_MALLOC

        /* Don't round up on the first allocation, as odds are pretty good that
         * the initial request is accurate as to what is really needed */
        if (SvLEN(sv)) {
            STRLEN rounded = PERL_STRLEN_ROUNDUP(newlen);
            if (rounded > newlen)
                newlen = rounded;
        }
#endif
        if (SvLEN(sv) && s) {
            s = (char*)saferealloc(s, newlen);
        }
        else {
            s = (char*)safemalloc(newlen);
            if (SvPVX_const(sv) && SvCUR(sv)) {
                Move(SvPVX_const(sv), s, SvCUR(sv), char);
            }
        }
        SvPV_set(sv, s);
#ifdef PERL_UNWARANTED_CHUMMINESS_WITH_MALLOC
        /* Do this here, do it once, do it right, and then we will never get
           called back into sv_grow() unless there really is some growing
           needed.  */
        SvLEN_set(sv, Perl_safesysmalloc_size(s));
#else
        SvLEN_set(sv, newlen);
#endif
    }
    return s;
}

/*
=for apidoc sv_grow_fresh

A cut-down version of sv_grow intended only for when sv is a freshly-minted
SVt_PV, SVt_PVIV, SVt_PVNV, or SVt_PVMG. i.e. sv has the default flags, has
never been any other type, and does not have an existing string. Basically,
just assigns a char buffer and returns a pointer to it.

=cut
*/


char *
Perl_sv_grow_fresh(pTHX_ SV *const sv, STRLEN newlen)
{
    char *s;

    PERL_ARGS_ASSERT_SV_GROW_FRESH;

    assert(SvTYPE(sv) >= SVt_PV && SvTYPE(sv) <= SVt_PVMG);
    assert(!SvROK(sv));
    assert(!SvOOK(sv));
    assert(!SvIsCOW(sv));
    assert(!SvLEN(sv));
    assert(!SvCUR(sv));

#ifdef PERL_COPY_ON_WRITE
    /* the new COW scheme uses SvPVX(sv)[SvLEN(sv)-1] (if spare)
     * to store the COW count. So in general, allocate one more byte than
     * asked for, to make it likely this byte is always spare: and thus
     * make more strings COW-able.
     *
     * Only increment if the allocation isn't MEM_SIZE_MAX,
     * otherwise it will wrap to 0.
     */
    if ( newlen != MEM_SIZE_MAX )
        newlen++;
#endif

    if (newlen < PERL_STRLEN_NEW_MIN)
        newlen = PERL_STRLEN_NEW_MIN;

    s = (char*)safemalloc(newlen);
    SvPV_set(sv, s);

    /* No PERL_UNWARANTED_CHUMMINESS_WITH_MALLOC here, since many strings */
    /* will never be grown once set. Let the real sv_grow worry about that. */
    SvLEN_set(sv, newlen);
    return s;
}

/*
=for apidoc sv_setiv
=for apidoc_item sv_setiv_mg

These copy an integer into the given SV, upgrading first if necessary.

They differ only in that C<sv_setiv_mg> handles 'set' magic; C<sv_setiv> does
not.

=cut
*/

void
Perl_sv_setiv(pTHX_ SV *const sv, const IV i)
{
    PERL_ARGS_ASSERT_SV_SETIV;

    SV_CHECK_THINKFIRST_COW_DROP(sv);
    switch (SvTYPE(sv)) {
#if NVSIZE <= IVSIZE
    case SVt_NULL:
    case SVt_NV:
        SET_SVANY_FOR_BODYLESS_IV(sv);
        SvFLAGS(sv) &= ~SVTYPEMASK;
        SvFLAGS(sv) |= SVt_IV;
        break;
#else
    case SVt_NULL:
        SET_SVANY_FOR_BODYLESS_IV(sv);
        SvFLAGS(sv) &= ~SVTYPEMASK;
        SvFLAGS(sv) |= SVt_IV;
        break;
    case SVt_NV:
        sv_upgrade(sv, SVt_IV);
        break;
#endif
    case SVt_PV:
        sv_upgrade(sv, SVt_PVIV);
        break;

    case SVt_PVGV:
        if (!isGV_with_GP(sv))
            break;
        /* FALLTHROUGH */
    case SVt_PVAV:
    case SVt_PVHV:
    case SVt_PVCV:
    case SVt_PVFM:
    case SVt_PVIO:
        /* diag_listed_as: Can't coerce %s to %s in %s */
        Perl_croak(aTHX_ "Can't coerce %s to integer in %s", sv_reftype(sv,0),
                   OP_DESC(PL_op));
        NOT_REACHED; /* NOTREACHED */
        break;
    default: NOOP;
    }
    (void)SvIOK_only(sv);			/* validate number */
    SvIV_set(sv, i);
    SvTAINT(sv);
}

void
Perl_sv_setiv_mg(pTHX_ SV *const sv, const IV i)
{
    PERL_ARGS_ASSERT_SV_SETIV_MG;

    sv_setiv(sv,i);
    SvSETMAGIC(sv);
}

/*
=for apidoc sv_setuv
=for apidoc_item sv_setuv_mg

These copy an unsigned integer into the given SV, upgrading first if necessary.


They differ only in that C<sv_setuv_mg> handles 'set' magic; C<sv_setuv> does
not.

=cut
*/

void
Perl_sv_setuv(pTHX_ SV *const sv, const UV u)
{
    PERL_ARGS_ASSERT_SV_SETUV;

    /* With the if statement to ensure that integers are stored as IVs whenever
       possible:
       u=1.49  s=0.52  cu=72.49  cs=10.64  scripts=270  tests=20865

       without
       u=1.35  s=0.47  cu=73.45  cs=11.43  scripts=270  tests=20865

       If you wish to remove the following if statement, so that this routine
       (and its callers) always return UVs, please benchmark to see what the
       effect is. Modern CPUs may be different. Or may not :-)
    */
    if (u <= (UV)IV_MAX) {
       sv_setiv(sv, (IV)u);
       return;
    }
    sv_setiv(sv, 0);
    SvIsUV_on(sv);
    SvUV_set(sv, u);
}

void
Perl_sv_setuv_mg(pTHX_ SV *const sv, const UV u)
{
    PERL_ARGS_ASSERT_SV_SETUV_MG;

    sv_setuv(sv,u);
    SvSETMAGIC(sv);
}

/*
=for apidoc sv_setnv
=for apidoc_item sv_setnv_mg

These copy a double into the given SV, upgrading first if necessary.

They differ only in that C<sv_setnv_mg> handles 'set' magic; C<sv_setnv> does
not.

=cut
*/

void
Perl_sv_setnv(pTHX_ SV *const sv, const NV num)
{
    PERL_ARGS_ASSERT_SV_SETNV;

    SV_CHECK_THINKFIRST_COW_DROP(sv);
    switch (SvTYPE(sv)) {
    case SVt_NULL:
    case SVt_IV:
#if NVSIZE <= IVSIZE
        SET_SVANY_FOR_BODYLESS_NV(sv);
        SvFLAGS(sv) &= ~SVTYPEMASK;
        SvFLAGS(sv) |= SVt_NV;
        break;
#else
        sv_upgrade(sv, SVt_NV);
        break;
#endif
    case SVt_PV:
    case SVt_PVIV:
        sv_upgrade(sv, SVt_PVNV);
        break;

    case SVt_PVGV:
        if (!isGV_with_GP(sv))
            break;
        /* FALLTHROUGH */
    case SVt_PVAV:
    case SVt_PVHV:
    case SVt_PVCV:
    case SVt_PVFM:
    case SVt_PVIO:
        /* diag_listed_as: Can't coerce %s to %s in %s */
        Perl_croak(aTHX_ "Can't coerce %s to number in %s", sv_reftype(sv,0),
                   OP_DESC(PL_op));
        NOT_REACHED; /* NOTREACHED */
        break;
    default: NOOP;
    }
    SvNV_set(sv, num);
    (void)SvNOK_only(sv);			/* validate number */
    SvTAINT(sv);
}

void
Perl_sv_setnv_mg(pTHX_ SV *const sv, const NV num)
{
    PERL_ARGS_ASSERT_SV_SETNV_MG;

    sv_setnv(sv,num);
    SvSETMAGIC(sv);
}

/*
=for apidoc sv_setrv_noinc
=for apidoc_item sv_setrv_noinc_mg

Copies an SV pointer into the given SV as an SV reference, upgrading it if
necessary. After this, C<SvRV(sv)> is equal to I<ref>. This does not adjust
the reference count of I<ref>. The reference I<ref> must not be NULL.

C<sv_setrv_noinc_mg> will invoke 'set' magic on the SV; C<sv_setrv_noinc> will
not.

=cut
*/

void
Perl_sv_setrv_noinc(pTHX_ SV *const sv, SV *const ref)
{
    PERL_ARGS_ASSERT_SV_SETRV_NOINC;

    SV_CHECK_THINKFIRST_COW_DROP(sv);
    prepare_SV_for_RV(sv);

    SvOK_off(sv);
    SvRV_set(sv, ref);
    SvROK_on(sv);
}

void
Perl_sv_setrv_noinc_mg(pTHX_ SV *const sv, SV *const ref)
{
    PERL_ARGS_ASSERT_SV_SETRV_NOINC_MG;

    sv_setrv_noinc(sv, ref);
    SvSETMAGIC(sv);
}

/*
=for apidoc sv_setrv_inc
=for apidoc_item sv_setrv_inc_mg

As C<sv_setrv_noinc> but increments the reference count of I<ref>.

C<sv_setrv_inc_mg> will invoke 'set' magic on the SV; C<sv_setrv_inc> will
not.

=cut
*/

void
Perl_sv_setrv_inc(pTHX_ SV *const sv, SV *const ref)
{
    PERL_ARGS_ASSERT_SV_SETRV_INC;

    sv_setrv_noinc(sv, SvREFCNT_inc_simple_NN(ref));
}

void
Perl_sv_setrv_inc_mg(pTHX_ SV *const sv, SV *const ref)
{
    PERL_ARGS_ASSERT_SV_SETRV_INC_MG;

    sv_setrv_noinc(sv, SvREFCNT_inc_simple_NN(ref));
    SvSETMAGIC(sv);
}

/* Return a cleaned-up, printable version of sv, for non-numeric, or
 * not incrementable warning display.
 * Originally part of S_not_a_number().
 * The return value may be != tmpbuf.
 */

STATIC const char *
S_sv_display(pTHX_ SV *const sv, char *tmpbuf, STRLEN tmpbuf_size) {
    const char *pv;

     PERL_ARGS_ASSERT_SV_DISPLAY;

     if (DO_UTF8(sv)) {
          SV *dsv = newSVpvs_flags("", SVs_TEMP);
          pv = sv_uni_display(dsv, sv, 32, UNI_DISPLAY_ISPRINT);
     } else {
          char *d = tmpbuf;
          const char * const limit = tmpbuf + tmpbuf_size - 8;
          /* each *s can expand to 4 chars + "...\0",
             i.e. need room for 8 chars */

          const char *s = SvPVX_const(sv);
          const char * const end = s + SvCUR(sv);
          for ( ; s < end && d < limit; s++ ) {
               int ch = (U8) *s;
               if (! isASCII(ch) && !isPRINT_LC(ch)) {
                    *d++ = 'M';
                    *d++ = '-';

                    /* Map to ASCII "equivalent" of Latin1 */
                    ch = LATIN1_TO_NATIVE(NATIVE_TO_LATIN1(ch) & 127);
               }
               if (ch == '\n') {
                    *d++ = '\\';
                    *d++ = 'n';
               }
               else if (ch == '\r') {
                    *d++ = '\\';
                    *d++ = 'r';
               }
               else if (ch == '\f') {
                    *d++ = '\\';
                    *d++ = 'f';
               }
               else if (ch == '\\') {
                    *d++ = '\\';
                    *d++ = '\\';
               }
               else if (ch == '\0') {
                    *d++ = '\\';
                    *d++ = '0';
               }
               else if (isPRINT_LC(ch))
                    *d++ = ch;
               else {
                    *d++ = '^';
                    *d++ = toCTRL(ch);
               }
          }
          if (s < end) {
               *d++ = '.';
               *d++ = '.';
               *d++ = '.';
          }
          *d = '\0';
          pv = tmpbuf;
    }

    return pv;
}

/* Print an "isn't numeric" warning, using a cleaned-up,
 * printable version of the offending string
 */

STATIC void
S_not_a_number(pTHX_ SV *const sv)
{
     char tmpbuf[64];
     const char *pv;

     PERL_ARGS_ASSERT_NOT_A_NUMBER;

     pv = sv_display(sv, tmpbuf, sizeof(tmpbuf));

    if (PL_op)
        Perl_warner(aTHX_ packWARN(WARN_NUMERIC),
                    /* diag_listed_as: Argument "%s" isn't numeric%s */
                    "Argument \"%s\" isn't numeric in %s", pv,
                    OP_DESC(PL_op));
    else
        Perl_warner(aTHX_ packWARN(WARN_NUMERIC),
                    /* diag_listed_as: Argument "%s" isn't numeric%s */
                    "Argument \"%s\" isn't numeric", pv);
}

STATIC void
S_not_incrementable(pTHX_ SV *const sv) {
     char tmpbuf[64];
     const char *pv;

     PERL_ARGS_ASSERT_NOT_INCREMENTABLE;

     pv = sv_display(sv, tmpbuf, sizeof(tmpbuf));

     Perl_warner(aTHX_ packWARN(WARN_NUMERIC),
                 "Argument \"%s\" treated as 0 in increment (++)", pv);
}

/*
=for apidoc looks_like_number

Test if the content of an SV looks like a number (or is a number).
C<Inf> and C<Infinity> are treated as numbers (so will not issue a
non-numeric warning), even if your C<atof()> doesn't grok them.  Get-magic is
ignored.

=cut
*/

I32
Perl_looks_like_number(pTHX_ SV *const sv)
{
    const char *sbegin;
    STRLEN len;
    int numtype;

    PERL_ARGS_ASSERT_LOOKS_LIKE_NUMBER;

    if (SvPOK(sv) || SvPOKp(sv)) {
        sbegin = SvPV_nomg_const(sv, len);
    }
    else
        return SvFLAGS(sv) & (SVf_NOK|SVp_NOK|SVf_IOK|SVp_IOK);
    numtype = grok_number(sbegin, len, NULL);
    return ((numtype & IS_NUMBER_TRAILING)) ? 0 : numtype;
}

STATIC bool
S_glob_2number(pTHX_ GV * const gv)
{
    PERL_ARGS_ASSERT_GLOB_2NUMBER;

    /* We know that all GVs stringify to something that is not-a-number,
        so no need to test that.  */
    if (ckWARN(WARN_NUMERIC))
    {
        SV *const buffer = sv_newmortal();
        gv_efullname3(buffer, gv, "*");
        not_a_number(buffer);
    }
    /* We just want something true to return, so that S_sv_2iuv_common
        can tail call us and return true.  */
    return TRUE;
}

/* Actually, ISO C leaves conversion of UV to IV undefined, but
   until proven guilty, assume that things are not that bad... */

/*
   NV_PRESERVES_UV:

   As 64 bit platforms often have an NV that doesn't preserve all bits of
   an IV (an assumption perl has been based on to date) it becomes necessary
   to remove the assumption that the NV always carries enough precision to
   recreate the IV whenever needed, and that the NV is the canonical form.
   Instead, IV/UV and NV need to be given equal rights. So as to not lose
   precision as a side effect of conversion (which would lead to insanity
   and the dragon(s) in t/op/numconvert.t getting very angry) the intent is
   1) to distinguish between IV/UV/NV slots that have a valid conversion cached
      where precision was lost, and IV/UV/NV slots that have a valid conversion
      which has lost no precision
   2) to ensure that if a numeric conversion to one form is requested that
      would lose precision, the precise conversion (or differently
      imprecise conversion) is also performed and cached, to prevent
      requests for different numeric formats on the same SV causing
      lossy conversion chains. (lossless conversion chains are perfectly
      acceptable (still))


   flags are used:
   SvIOKp is true if the IV slot contains a valid value
   SvIOK  is true only if the IV value is accurate (UV if SvIOK_UV true)
   SvNOKp is true if the NV slot contains a valid value
   SvNOK  is true only if the NV value is accurate

   so
   while converting from PV to NV, check to see if converting that NV to an
   IV(or UV) would lose accuracy over a direct conversion from PV to
   IV(or UV). If it would, cache both conversions, return NV, but mark
   SV as IOK NOKp (ie not NOK).

   While converting from PV to IV, check to see if converting that IV to an
   NV would lose accuracy over a direct conversion from PV to NV. If it
   would, cache both conversions, flag similarly.

   Before, the SV value "3.2" could become NV=3.2 IV=3 NOK, IOK quite
   correctly because if IV & NV were set NV *always* overruled.
   Now, "3.2" will become NV=3.2 IV=3 NOK, IOKp, because the flag's meaning
   changes - now IV and NV together means that the two are interchangeable:
   SvIVX == (IV) SvNVX && SvNVX == (NV) SvIVX;

   The benefit of this is that operations such as pp_add know that if
   SvIOK is true for both left and right operands, then integer addition
   can be used instead of floating point (for cases where the result won't
   overflow). Before, floating point was always used, which could lead to
   loss of precision compared with integer addition.

   * making IV and NV equal status should make maths accurate on 64 bit
     platforms
   * may speed up maths somewhat if pp_add and friends start to use
     integers when possible instead of fp. (Hopefully the overhead in
     looking for SvIOK and checking for overflow will not outweigh the
     fp to integer speedup)
   * will slow down integer operations (callers of SvIV) on "inaccurate"
     values, as the change from SvIOK to SvIOKp will cause a call into
     sv_2iv each time rather than a macro access direct to the IV slot
   * should speed up number->string conversion on integers as IV is
     favoured when IV and NV are equally accurate

   ####################################################################
   You had better be using SvIOK_notUV if you want an IV for arithmetic:
   SvIOK is true if (IV or UV), so you might be getting (IV)SvUV.
   On the other hand, SvUOK is true iff UV.
   ####################################################################

   Your mileage will vary depending your CPU's relative fp to integer
   performance ratio.
*/

#ifndef NV_PRESERVES_UV
#  define IS_NUMBER_UNDERFLOW_IV 1
#  define IS_NUMBER_UNDERFLOW_UV 2
#  define IS_NUMBER_IV_AND_UV    2
#  define IS_NUMBER_OVERFLOW_IV  4
#  define IS_NUMBER_OVERFLOW_UV  5

/* sv_2iuv_non_preserve(): private routine for use by sv_2iv() and sv_2uv() */

/* For sv_2nv these three cases are "SvNOK and don't bother casting"  */
STATIC int
S_sv_2iuv_non_preserve(pTHX_ SV *const sv
#  ifdef DEBUGGING
                       , I32 numtype
#  endif
                       )
{
    PERL_ARGS_ASSERT_SV_2IUV_NON_PRESERVE;
    PERL_UNUSED_CONTEXT;

    DEBUG_c(PerlIO_printf(Perl_debug_log,"sv_2iuv_non '%s', IV=0x%" UVxf " NV=%" NVgf " inttype=%" UVXf "\n", SvPVX_const(sv), SvIVX(sv), SvNVX(sv), (UV)numtype));
    if (SvNVX(sv) < (NV)IV_MIN) {
        (void)SvIOKp_on(sv);
        (void)SvNOK_on(sv);
        SvIV_set(sv, IV_MIN);
        return IS_NUMBER_UNDERFLOW_IV;
    }
    if (SvNVX(sv) > (NV)UV_MAX) {
        (void)SvIOKp_on(sv);
        (void)SvNOK_on(sv);
        SvIsUV_on(sv);
        SvUV_set(sv, UV_MAX);
        return IS_NUMBER_OVERFLOW_UV;
    }
    (void)SvIOKp_on(sv);
    (void)SvNOK_on(sv);
    /* Can't use strtol etc to convert this string.  (See truth table in
       sv_2iv  */
    if (SvNVX(sv) < IV_MAX_P1) {
        SvIV_set(sv, I_V(SvNVX(sv)));
        if ((NV)(SvIVX(sv)) == SvNVX(sv)) {
            SvIOK_on(sv); /* Integer is precise. NOK, IOK */
        } else {
            /* Integer is imprecise. NOK, IOKp */
        }
        return SvNVX(sv) < 0 ? IS_NUMBER_UNDERFLOW_UV : IS_NUMBER_IV_AND_UV;
    }
    SvIsUV_on(sv);
    SvUV_set(sv, U_V(SvNVX(sv)));
    if ((NV)(SvUVX(sv)) == SvNVX(sv)) {
        if (SvUVX(sv) == UV_MAX) {
            /* As we know that NVs don't preserve UVs, UV_MAX cannot
               possibly be preserved by NV. Hence, it must be overflow.
               NOK, IOKp */
            return IS_NUMBER_OVERFLOW_UV;
        }
        SvIOK_on(sv); /* Integer is precise. NOK, UOK */
    } else {
        /* Integer is imprecise. NOK, IOKp */
    }
    return IS_NUMBER_OVERFLOW_IV;
}
#endif /* !NV_PRESERVES_UV*/

/* If numtype is infnan, set the NV of the sv accordingly.
 * If numtype is anything else, try setting the NV using Atof(PV). */
static void
S_sv_setnv(pTHX_ SV* sv, int numtype)
{
    bool pok = cBOOL(SvPOK(sv));
    bool nok = FALSE;
#ifdef NV_INF
    if ((numtype & IS_NUMBER_INFINITY)) {
        SvNV_set(sv, (numtype & IS_NUMBER_NEG) ? -NV_INF : NV_INF);
        nok = TRUE;
    } else
#endif
#ifdef NV_NAN
    if ((numtype & IS_NUMBER_NAN)) {
        SvNV_set(sv, NV_NAN);
        nok = TRUE;
    } else
#endif
    if (pok) {
        SvNV_set(sv, Atof(SvPVX_const(sv)));
        /* Purposefully no true nok here, since we don't want to blow
         * away the possible IOK/UV of an existing sv. */
    }
    if (nok) {
        SvNOK_only(sv); /* No IV or UV please, this is pure infnan. */
        if (pok)
            SvPOK_on(sv); /* PV is okay, though. */
    }
}

STATIC bool
S_sv_2iuv_common(pTHX_ SV *const sv)
{
    PERL_ARGS_ASSERT_SV_2IUV_COMMON;

    if (SvNOKp(sv)) {
        /* erm. not sure. *should* never get NOKp (without NOK) from sv_2nv
         * without also getting a cached IV/UV from it at the same time
         * (ie PV->NV conversion should detect loss of accuracy and cache
         * IV or UV at same time to avoid this. */
        /* IV-over-UV optimisation - choose to cache IV if possible */

        if (SvTYPE(sv) == SVt_NV)
            sv_upgrade(sv, SVt_PVNV);

    got_nv:
        (void)SvIOKp_on(sv);	/* Must do this first, to clear any SvOOK */
        /* < not <= as for NV doesn't preserve UV, ((NV)IV_MAX+1) will almost
           certainly cast into the IV range at IV_MAX, whereas the correct
           answer is the UV IV_MAX +1. Hence < ensures that dodgy boundary
           cases go to UV */
#if defined(NAN_COMPARE_BROKEN) && defined(Perl_isnan)
        if (Perl_isnan(SvNVX(sv))) {
            SvUV_set(sv, 0);
            SvIsUV_on(sv);
            return FALSE;
        }
#endif
        if (SvNVX(sv) < (NV)IV_MAX + 0.5) {
            SvIV_set(sv, I_V(SvNVX(sv)));
            if (SvNVX(sv) == (NV) SvIVX(sv)
#ifndef NV_PRESERVES_UV
                && SvIVX(sv) != IV_MIN /* avoid negating IV_MIN below */
                && (((UV)1 << NV_PRESERVES_UV_BITS) >
                    (UV)(SvIVX(sv) > 0 ? SvIVX(sv) : -SvIVX(sv)))
                /* Don't flag it as "accurately an integer" if the number
                   came from a (by definition imprecise) NV operation, and
                   we're outside the range of NV integer precision */
#endif
                ) {
                if (SvNOK(sv))
                    SvIOK_on(sv);  /* Can this go wrong with rounding? NWC */
                else {
                    /* scalar has trailing garbage, eg "42a" */
                }
                DEBUG_c(PerlIO_printf(Perl_debug_log,
                                      "0x%" UVxf " iv(%" NVgf " => %" IVdf ") (precise)\n",
                                      PTR2UV(sv),
                                      SvNVX(sv),
                                      SvIVX(sv)));

            } else {
                /* IV not precise.  No need to convert from PV, as NV
                   conversion would already have cached IV if it detected
                   that PV->IV would be better than PV->NV->IV
                   flags already correct - don't set public IOK.  */
                DEBUG_c(PerlIO_printf(Perl_debug_log,
                                      "0x%" UVxf " iv(%" NVgf " => %" IVdf ") (imprecise)\n",
                                      PTR2UV(sv),
                                      SvNVX(sv),
                                      SvIVX(sv)));
            }
            /* Can the above go wrong if SvIVX == IV_MIN and SvNVX < IV_MIN,
               but the cast (NV)IV_MIN rounds to a the value less (more
               negative) than IV_MIN which happens to be equal to SvNVX ??
               Analogous to 0xFFFFFFFFFFFFFFFF rounding up to NV (2**64) and
               NV rounding back to 0xFFFFFFFFFFFFFFFF, so UVX == UV(NVX) and
               (NV)UVX == NVX are both true, but the values differ. :-(
               Hopefully for 2s complement IV_MIN is something like
               0x8000000000000000 which will be exact. NWC */
        }
        else {
            SvUV_set(sv, U_V(SvNVX(sv)));
            if (
                (SvNVX(sv) == (NV) SvUVX(sv))
#ifndef  NV_PRESERVES_UV
                /* Make sure it's not 0xFFFFFFFFFFFFFFFF */
                /*&& (SvUVX(sv) != UV_MAX) irrelevant with code below */
                && (((UV)1 << NV_PRESERVES_UV_BITS) > SvUVX(sv))
                /* Don't flag it as "accurately an integer" if the number
                   came from a (by definition imprecise) NV operation, and
                   we're outside the range of NV integer precision */
#endif
                && SvNOK(sv)
                )
                SvIOK_on(sv);
            SvIsUV_on(sv);
            DEBUG_c(PerlIO_printf(Perl_debug_log,
                                  "0x%" UVxf " 2iv(%" UVuf " => %" IVdf ") (as unsigned)\n",
                                  PTR2UV(sv),
                                  SvUVX(sv),
                                  SvUVX(sv)));
        }
    }
    else if (SvPOKp(sv)) {
        UV value;
        int numtype;
        const char *s = SvPVX_const(sv);
        const STRLEN cur = SvCUR(sv);

        /* short-cut for a single digit string like "1" */

        if (cur == 1) {
            char c = *s;
            if (isDIGIT(c)) {
                if (SvTYPE(sv) < SVt_PVIV)
                    sv_upgrade(sv, SVt_PVIV);
                (void)SvIOK_on(sv);
                SvIV_set(sv, (IV)(c - '0'));
                return FALSE;
            }
        }

        numtype = grok_number(s, cur, &value);
        /* We want to avoid a possible problem when we cache an IV/ a UV which
           may be later translated to an NV, and the resulting NV is not
           the same as the direct translation of the initial string
           (eg 123.456 can shortcut to the IV 123 with atol(), but we must
           be careful to ensure that the value with the .456 is around if the
           NV value is requested in the future).

           This means that if we cache such an IV/a UV, we need to cache the
           NV as well.  Moreover, we trade speed for space, and do not
           cache the NV if we are sure it's not needed.
         */

        /* SVt_PVNV is one higher than SVt_PVIV, hence this order  */
        if ((numtype & (IS_NUMBER_IN_UV | IS_NUMBER_NOT_INT))
             == IS_NUMBER_IN_UV) {
            /* It's definitely an integer, only upgrade to PVIV */
            if (SvTYPE(sv) < SVt_PVIV)
                sv_upgrade(sv, SVt_PVIV);
            (void)SvIOK_on(sv);
        } else if (SvTYPE(sv) < SVt_PVNV)
            sv_upgrade(sv, SVt_PVNV);

        if ((numtype & (IS_NUMBER_INFINITY | IS_NUMBER_NAN))) {
            if (ckWARN(WARN_NUMERIC) && ((numtype & IS_NUMBER_TRAILING)))
                not_a_number(sv);
            S_sv_setnv(aTHX_ sv, numtype);
            goto got_nv;        /* Fill IV/UV slot and set IOKp */
        }

        /* If NVs preserve UVs then we only use the UV value if we know that
           we aren't going to call atof() below. If NVs don't preserve UVs
           then the value returned may have more precision than atof() will
           return, even though value isn't perfectly accurate.  */
        if ((numtype & (IS_NUMBER_IN_UV
#ifdef NV_PRESERVES_UV
                        | IS_NUMBER_NOT_INT
#endif
            )) == IS_NUMBER_IN_UV) {
            /* This won't turn off the public IOK flag if it was set above  */
            (void)SvIOKp_on(sv);

            if (!(numtype & IS_NUMBER_NEG)) {
                /* positive */;
                if (value <= (UV)IV_MAX) {
                    SvIV_set(sv, (IV)value);
                } else {
                    /* it didn't overflow, and it was positive. */
                    SvUV_set(sv, value);
                    SvIsUV_on(sv);
                }
            } else {
                /* 2s complement assumption  */
                if (value <= (UV)IV_MIN) {
                    SvIV_set(sv, value == (UV)IV_MIN
                                    ? IV_MIN : -(IV)value);
                } else {
                    /* Too negative for an IV.  This is a double upgrade, but
                       I'm assuming it will be rare.  */
                    if (SvTYPE(sv) < SVt_PVNV)
                        sv_upgrade(sv, SVt_PVNV);
                    SvNOK_on(sv);
                    SvIOK_off(sv);
                    SvIOKp_on(sv);
                    SvNV_set(sv, -(NV)value);
                    SvIV_set(sv, IV_MIN);
                }
            }
        }
        /* For !NV_PRESERVES_UV and IS_NUMBER_IN_UV and IS_NUMBER_NOT_INT we
           will be in the previous block to set the IV slot, and the next
           block to set the NV slot.  So no else here.  */

        if ((numtype & (IS_NUMBER_IN_UV | IS_NUMBER_NOT_INT))
            != IS_NUMBER_IN_UV) {
            /* It wasn't an (integer that doesn't overflow the UV). */
            S_sv_setnv(aTHX_ sv, numtype);

            if (! numtype && ckWARN(WARN_NUMERIC))
                not_a_number(sv);

            DEBUG_c(PerlIO_printf(Perl_debug_log, "0x%" UVxf " 2iv(%" NVgf ")\n",
                                  PTR2UV(sv), SvNVX(sv)));

#ifdef NV_PRESERVES_UV
            SvNOKp_on(sv);
            if (numtype)
                SvNOK_on(sv);
            goto got_nv;        /* Fill IV/UV slot and set IOKp, maybe IOK */
#else /* NV_PRESERVES_UV */
            if ((numtype & (IS_NUMBER_IN_UV | IS_NUMBER_NOT_INT))
                == (IS_NUMBER_IN_UV | IS_NUMBER_NOT_INT)) {
                /* The IV/UV slot will have been set from value returned by
                   grok_number above.  The NV slot has just been set using
                   Atof.  */
                SvNOK_on(sv);
                assert (SvIOKp(sv));
            } else {
                if (((UV)1 << NV_PRESERVES_UV_BITS) >
                    U_V(Perl_fabs(SvNVX(sv)))) {
                    /* Small enough to preserve all bits. */
                    (void)SvIOKp_on(sv);
                    SvNOK_on(sv);
                    SvIV_set(sv, I_V(SvNVX(sv)));
                    if ((NV)(SvIVX(sv)) == SvNVX(sv))
                        SvIOK_on(sv);
                    /* There had been runtime checking for
                       "U_V(Perl_fabs(SvNVX(sv))) < (UV)IV_MAX" here to ensure
                       that this NV is in the preserved range, but this should
                       be always true if the following assertion is true: */
                    STATIC_ASSERT_STMT(((UV)1 << NV_PRESERVES_UV_BITS) <=
                                       (UV)IV_MAX);
                } else {
                    /* IN_UV NOT_INT
                         0      0	already failed to read UV.
                         0      1       already failed to read UV.
                         1      0       you won't get here in this case. IV/UV
                                        slot set, public IOK, Atof() unneeded.
                         1      1       already read UV.
                       so there's no point in sv_2iuv_non_preserve() attempting
                       to use atol, strtol, strtoul etc.  */
#  ifdef DEBUGGING
                    sv_2iuv_non_preserve (sv, numtype);
#  else
                    sv_2iuv_non_preserve (sv);
#  endif
                }
            }
        /* It might be more code efficient to go through the entire logic above
           and conditionally set with SvIOKp_on() rather than SvIOK(), but it
           gets complex and potentially buggy, so more programmer efficient
           to do it this way, by turning off the public flags:  */
        if (!numtype)
            SvFLAGS(sv) &= ~(SVf_IOK|SVf_NOK);
#endif /* NV_PRESERVES_UV */
        }
    }
    else {
        if (isGV_with_GP(sv))
            return glob_2number(MUTABLE_GV(sv));

        if (!PL_localizing && ckWARN(WARN_UNINITIALIZED))
                report_uninit(sv);
        if (SvTYPE(sv) < SVt_IV)
            /* Typically the caller expects that sv_any is not NULL now.  */
            sv_upgrade(sv, SVt_IV);
        /* Return 0 from the caller.  */
        return TRUE;
    }
    return FALSE;
}

/*
=for apidoc sv_2iv_flags

Return the integer value of an SV, doing any necessary string
conversion.  If C<flags> has the C<SV_GMAGIC> bit set, does an C<mg_get()> first.
Normally used via the C<SvIV(sv)> and C<SvIVx(sv)> macros.

=cut
*/

IV
Perl_sv_2iv_flags(pTHX_ SV *const sv, const I32 flags)
{
    PERL_ARGS_ASSERT_SV_2IV_FLAGS;

    assert (SvTYPE(sv) != SVt_PVAV && SvTYPE(sv) != SVt_PVHV
         && SvTYPE(sv) != SVt_PVFM);

    if (SvGMAGICAL(sv) && (flags & SV_GMAGIC))
        mg_get(sv);

    if (SvROK(sv)) {
        if (SvAMAGIC(sv)) {
            SV * tmpstr;
            if (flags & SV_SKIP_OVERLOAD)
                return 0;
            tmpstr = AMG_CALLunary(sv, numer_amg);
            if (tmpstr && (!SvROK(tmpstr) || (SvRV(tmpstr) != SvRV(sv)))) {
                return SvIV(tmpstr);
            }
        }
        return PTR2IV(SvRV(sv));
    }

    if (SvVALID(sv) || isREGEXP(sv)) {
        /* FBMs use the space for SvIVX and SvNVX for other purposes, so
           must not let them cache IVs.
           In practice they are extremely unlikely to actually get anywhere
           accessible by user Perl code - the only way that I'm aware of is when
           a constant subroutine which is used as the second argument to index.

           Regexps have no SvIVX and SvNVX fields.
        */
        assert(SvPOKp(sv));
        {
            UV value;
            const char * const ptr =
                isREGEXP(sv) ? RX_WRAPPED((REGEXP*)sv) : SvPVX_const(sv);
            const int numtype
                = grok_number(ptr, SvCUR(sv), &value);

            if ((numtype & (IS_NUMBER_IN_UV | IS_NUMBER_NOT_INT))
                == IS_NUMBER_IN_UV) {
                /* It's definitely an integer */
                if (numtype & IS_NUMBER_NEG) {
                    if (value < (UV)IV_MIN)
                        return -(IV)value;
                } else {
                    if (value < (UV)IV_MAX)
                        return (IV)value;
                }
            }

            /* Quite wrong but no good choices. */
            if ((numtype & IS_NUMBER_INFINITY)) {
                return (numtype & IS_NUMBER_NEG) ? IV_MIN : IV_MAX;
            } else if ((numtype & IS_NUMBER_NAN)) {
                return 0; /* So wrong. */
            }

            if (!numtype) {
                if (ckWARN(WARN_NUMERIC))
                    not_a_number(sv);
            }
            return I_V(Atof(ptr));
        }
    }

    if (SvTHINKFIRST(sv)) {
        if (SvREADONLY(sv) && !SvOK(sv)) {
            if (ckWARN(WARN_UNINITIALIZED))
                report_uninit(sv);
            return 0;
        }
    }

    if (!SvIOKp(sv)) {
        if (S_sv_2iuv_common(aTHX_ sv))
            return 0;
    }

    DEBUG_c(PerlIO_printf(Perl_debug_log, "0x%" UVxf " 2iv(%" IVdf ")\n",
        PTR2UV(sv),SvIVX(sv)));
    return SvIsUV(sv) ? (IV)SvUVX(sv) : SvIVX(sv);
}

/*
=for apidoc sv_2uv_flags

Return the unsigned integer value of an SV, doing any necessary string
conversion.  If C<flags> has the C<SV_GMAGIC> bit set, does an C<mg_get()> first.
Normally used via the C<SvUV(sv)> and C<SvUVx(sv)> macros.

=for apidoc Amnh||SV_GMAGIC

=cut
*/

UV
Perl_sv_2uv_flags(pTHX_ SV *const sv, const I32 flags)
{
    PERL_ARGS_ASSERT_SV_2UV_FLAGS;

    if (SvGMAGICAL(sv) && (flags & SV_GMAGIC))
        mg_get(sv);

    if (SvROK(sv)) {
        if (SvAMAGIC(sv)) {
            SV *tmpstr;
            if (flags & SV_SKIP_OVERLOAD)
                return 0;
            tmpstr = AMG_CALLunary(sv, numer_amg);
            if (tmpstr && (!SvROK(tmpstr) || (SvRV(tmpstr) != SvRV(sv)))) {
                return SvUV(tmpstr);
            }
        }
        return PTR2UV(SvRV(sv));
    }

    if (SvVALID(sv) || isREGEXP(sv)) {
        /* FBMs use the space for SvIVX and SvNVX for other purposes, and use
           the same flag bit as SVf_IVisUV, so must not let them cache IVs.
           Regexps have no SvIVX and SvNVX fields. */
        assert(SvPOKp(sv));
        {
            UV value;
            const char * const ptr =
                isREGEXP(sv) ? RX_WRAPPED((REGEXP*)sv) : SvPVX_const(sv);
            const int numtype
                = grok_number(ptr, SvCUR(sv), &value);

            if ((numtype & (IS_NUMBER_IN_UV | IS_NUMBER_NOT_INT))
                == IS_NUMBER_IN_UV) {
                /* It's definitely an integer */
                if (!(numtype & IS_NUMBER_NEG))
                    return value;
            }

            /* Quite wrong but no good choices. */
            if ((numtype & IS_NUMBER_INFINITY)) {
                return UV_MAX; /* So wrong. */
            } else if ((numtype & IS_NUMBER_NAN)) {
                return 0; /* So wrong. */
            }

            if (!numtype) {
                if (ckWARN(WARN_NUMERIC))
                    not_a_number(sv);
            }
            return U_V(Atof(ptr));
        }
    }

    if (SvTHINKFIRST(sv)) {
        if (SvREADONLY(sv) && !SvOK(sv)) {
            if (ckWARN(WARN_UNINITIALIZED))
                report_uninit(sv);
            return 0;
        }
    }

    if (!SvIOKp(sv)) {
        if (S_sv_2iuv_common(aTHX_ sv))
            return 0;
    }

    DEBUG_c(PerlIO_printf(Perl_debug_log, "0x%" UVxf " 2uv(%" UVuf ")\n",
                          PTR2UV(sv),SvUVX(sv)));
    return SvIsUV(sv) ? SvUVX(sv) : (UV)SvIVX(sv);
}

/*
=for apidoc sv_2nv_flags

Return the num value of an SV, doing any necessary string or integer
conversion.  If C<flags> has the C<SV_GMAGIC> bit set, does an C<mg_get()> first.
Normally used via the C<SvNV(sv)> and C<SvNVx(sv)> macros.

=cut
*/

NV
Perl_sv_2nv_flags(pTHX_ SV *const sv, const I32 flags)
{
    PERL_ARGS_ASSERT_SV_2NV_FLAGS;

    assert (SvTYPE(sv) != SVt_PVAV && SvTYPE(sv) != SVt_PVHV
         && SvTYPE(sv) != SVt_PVFM);
    if (SvGMAGICAL(sv) || SvVALID(sv) || isREGEXP(sv)) {
        /* FBMs use the space for SvIVX and SvNVX for other purposes, and use
           the same flag bit as SVf_IVisUV, so must not let them cache NVs.
           Regexps have no SvIVX and SvNVX fields.  */
        const char *ptr;
        if (flags & SV_GMAGIC)
            mg_get(sv);
        if (SvNOKp(sv))
            return SvNVX(sv);
        if (SvPOKp(sv) && !SvIOKp(sv)) {
            ptr = SvPVX_const(sv);
            if (!SvIOKp(sv) && ckWARN(WARN_NUMERIC) &&
                !grok_number(ptr, SvCUR(sv), NULL))
                not_a_number(sv);
            return Atof(ptr);
        }
        if (SvIOKp(sv)) {
            if (SvIsUV(sv))
                return (NV)SvUVX(sv);
            else
                return (NV)SvIVX(sv);
        }
        if (SvROK(sv)) {
            goto return_rok;
        }
        assert(SvTYPE(sv) >= SVt_PVMG);
        /* This falls through to the report_uninit near the end of the
           function. */
    } else if (SvTHINKFIRST(sv)) {
        if (SvROK(sv)) {
        return_rok:
            if (SvAMAGIC(sv)) {
                SV *tmpstr;
                if (flags & SV_SKIP_OVERLOAD)
                    return 0;
                tmpstr = AMG_CALLunary(sv, numer_amg);
                if (tmpstr && (!SvROK(tmpstr) || (SvRV(tmpstr) != SvRV(sv)))) {
                    return SvNV(tmpstr);
                }
            }
            return PTR2NV(SvRV(sv));
        }
        if (SvREADONLY(sv) && !SvOK(sv)) {
            if (ckWARN(WARN_UNINITIALIZED))
                report_uninit(sv);
            return 0.0;
        }
    }
    if (SvTYPE(sv) < SVt_NV) {
        /* The logic to use SVt_PVNV if necessary is in sv_upgrade.  */
        sv_upgrade(sv, SVt_NV);
        CLANG_DIAG_IGNORE_STMT(-Wthread-safety);
        DEBUG_c({
            DECLARATION_FOR_LC_NUMERIC_MANIPULATION;
            STORE_LC_NUMERIC_SET_STANDARD();
            PerlIO_printf(Perl_debug_log,
                          "0x%" UVxf " num(%" NVgf ")\n",
                          PTR2UV(sv), SvNVX(sv));
            RESTORE_LC_NUMERIC();
        });
        CLANG_DIAG_RESTORE_STMT;

    }
    else if (SvTYPE(sv) < SVt_PVNV)
        sv_upgrade(sv, SVt_PVNV);
    if (SvNOKp(sv)) {
        return SvNVX(sv);
    }
    if (SvIOKp(sv)) {
        SvNV_set(sv, SvIsUV(sv) ? (NV)SvUVX(sv) : (NV)SvIVX(sv));
#ifdef NV_PRESERVES_UV
        if (SvIOK(sv))
            SvNOK_on(sv);
        else
            SvNOKp_on(sv);
#else
        /* Only set the public NV OK flag if this NV preserves the IV  */
        /* Check it's not 0xFFFFFFFFFFFFFFFF */
        if (SvIOK(sv) &&
            SvIsUV(sv) ? ((SvUVX(sv) != UV_MAX)&&(SvUVX(sv) == U_V(SvNVX(sv))))
                       : (SvIVX(sv) == I_V(SvNVX(sv))))
            SvNOK_on(sv);
        else
            SvNOKp_on(sv);
#endif
    }
    else if (SvPOKp(sv)) {
        UV value;
        const int numtype = grok_number(SvPVX_const(sv), SvCUR(sv), &value);
        if (!SvIOKp(sv) && !numtype && ckWARN(WARN_NUMERIC))
            not_a_number(sv);
#ifdef NV_PRESERVES_UV
        if ((numtype & (IS_NUMBER_IN_UV | IS_NUMBER_NOT_INT))
            == IS_NUMBER_IN_UV) {
            /* It's definitely an integer */
            SvNV_set(sv, (numtype & IS_NUMBER_NEG) ? -(NV)value : (NV)value);
        } else {
            S_sv_setnv(aTHX_ sv, numtype);
        }
        if (numtype)
            SvNOK_on(sv);
        else
            SvNOKp_on(sv);
#else
        SvNV_set(sv, Atof(SvPVX_const(sv)));
        /* Only set the public NV OK flag if this NV preserves the value in
           the PV at least as well as an IV/UV would.
           Not sure how to do this 100% reliably. */
        /* if that shift count is out of range then Configure's test is
           wonky. We shouldn't be in here with NV_PRESERVES_UV_BITS ==
           UV_BITS */
        if (((UV)1 << NV_PRESERVES_UV_BITS) > U_V(Perl_fabs(SvNVX(sv)))) {
            SvNOK_on(sv); /* Definitely small enough to preserve all bits */
        } else if (!(numtype & IS_NUMBER_IN_UV)) {
            /* Can't use strtol etc to convert this string, so don't try.
               sv_2iv and sv_2uv will use the NV to convert, not the PV.  */
            SvNOK_on(sv);
        } else {
            /* value has been set.  It may not be precise.  */
            if ((numtype & IS_NUMBER_NEG) && (value >= (UV)IV_MIN)) {
                /* 2s complement assumption for (UV)IV_MIN  */
                SvNOK_on(sv); /* Integer is too negative.  */
            } else {
                SvNOKp_on(sv);
                SvIOKp_on(sv);

                if (numtype & IS_NUMBER_NEG) {
                    /* -IV_MIN is undefined, but we should never reach
                     * this point with both IS_NUMBER_NEG and value ==
                     * (UV)IV_MIN */
                    assert(value != (UV)IV_MIN);
                    SvIV_set(sv, -(IV)value);
                } else if (value <= (UV)IV_MAX) {
                    SvIV_set(sv, (IV)value);
                } else {
                    SvUV_set(sv, value);
                    SvIsUV_on(sv);
                }

                if (numtype & IS_NUMBER_NOT_INT) {
                    /* I believe that even if the original PV had decimals,
                       they are lost beyond the limit of the FP precision.
                       However, neither is canonical, so both only get p
                       flags.  NWC, 2000/11/25 */
                    /* Both already have p flags, so do nothing */
                } else {
                    const NV nv = SvNVX(sv);
                    /* XXX should this spot have NAN_COMPARE_BROKEN, too? */
                    if (SvNVX(sv) < (NV)IV_MAX + 0.5) {
                        if (SvIVX(sv) == I_V(nv)) {
                            SvNOK_on(sv);
                        } else {
                            /* It had no "." so it must be integer.  */
                        }
                        SvIOK_on(sv);
                    } else {
                        /* between IV_MAX and NV(UV_MAX).
                           Could be slightly > UV_MAX */

                        if (numtype & IS_NUMBER_NOT_INT) {
                            /* UV and NV both imprecise.  */
                        } else {
                            const UV nv_as_uv = U_V(nv);

                            if (value == nv_as_uv && SvUVX(sv) != UV_MAX) {
                                SvNOK_on(sv);
                            }
                            SvIOK_on(sv);
                        }
                    }
                }
            }
        }
        /* It might be more code efficient to go through the entire logic above
           and conditionally set with SvNOKp_on() rather than SvNOK(), but it
           gets complex and potentially buggy, so more programmer efficient
           to do it this way, by turning off the public flags:  */
        if (!numtype)
            SvFLAGS(sv) &= ~(SVf_IOK|SVf_NOK);
#endif /* NV_PRESERVES_UV */
    }
    else {
        if (isGV_with_GP(sv)) {
            glob_2number(MUTABLE_GV(sv));
            return 0.0;
        }

        if (!PL_localizing && ckWARN(WARN_UNINITIALIZED))
            report_uninit(sv);
        assert (SvTYPE(sv) >= SVt_NV);
        /* Typically the caller expects that sv_any is not NULL now.  */
        /* XXX Ilya implies that this is a bug in callers that assume this
           and ideally should be fixed.  */
        return 0.0;
    }
    CLANG_DIAG_IGNORE_STMT(-Wthread-safety);
    DEBUG_c({
        DECLARATION_FOR_LC_NUMERIC_MANIPULATION;
        STORE_LC_NUMERIC_SET_STANDARD();
        PerlIO_printf(Perl_debug_log, "0x%" UVxf " 2nv(%" NVgf ")\n",
                      PTR2UV(sv), SvNVX(sv));
        RESTORE_LC_NUMERIC();
    });
    CLANG_DIAG_RESTORE_STMT;
    return SvNVX(sv);
}

/*
=for apidoc sv_2num

Return an SV with the numeric value of the source SV, doing any necessary
reference or overload conversion.  The caller is expected to have handled
get-magic already.

=cut
*/

SV *
Perl_sv_2num(pTHX_ SV *const sv)
{
    PERL_ARGS_ASSERT_SV_2NUM;

    if (!SvROK(sv))
        return sv;
    if (SvAMAGIC(sv)) {
        SV * const tmpsv = AMG_CALLunary(sv, numer_amg);
        TAINT_IF(tmpsv && SvTAINTED(tmpsv));
        if (tmpsv && (!SvROK(tmpsv) || (SvRV(tmpsv) != SvRV(sv))))
            return sv_2num(tmpsv);
    }
    return sv_2mortal(newSVuv(PTR2UV(SvRV(sv))));
}

/* int2str_table: lookup table containing string representations of all
 * two digit numbers. For example, int2str_table.arr[0] is "00" and
 * int2str_table.arr[12*2] is "12".
 *
 * We are going to read two bytes at a time, so we have to ensure that
 * the array is aligned to a 2 byte boundary. That's why it was made a
 * union with a dummy U16 member. */
static const union {
    char arr[200];
    U16 dummy;
} int2str_table = {{
    '0', '0', '0', '1', '0', '2', '0', '3', '0', '4', '0', '5', '0', '6',
    '0', '7', '0', '8', '0', '9', '1', '0', '1', '1', '1', '2', '1', '3',
    '1', '4', '1', '5', '1', '6', '1', '7', '1', '8', '1', '9', '2', '0',
    '2', '1', '2', '2', '2', '3', '2', '4', '2', '5', '2', '6', '2', '7',
    '2', '8', '2', '9', '3', '0', '3', '1', '3', '2', '3', '3', '3', '4',
    '3', '5', '3', '6', '3', '7', '3', '8', '3', '9', '4', '0', '4', '1',
    '4', '2', '4', '3', '4', '4', '4', '5', '4', '6', '4', '7', '4', '8',
    '4', '9', '5', '0', '5', '1', '5', '2', '5', '3', '5', '4', '5', '5',
    '5', '6', '5', '7', '5', '8', '5', '9', '6', '0', '6', '1', '6', '2',
    '6', '3', '6', '4', '6', '5', '6', '6', '6', '7', '6', '8', '6', '9',
    '7', '0', '7', '1', '7', '2', '7', '3', '7', '4', '7', '5', '7', '6',
    '7', '7', '7', '8', '7', '9', '8', '0', '8', '1', '8', '2', '8', '3',
    '8', '4', '8', '5', '8', '6', '8', '7', '8', '8', '8', '9', '9', '0',
    '9', '1', '9', '2', '9', '3', '9', '4', '9', '5', '9', '6', '9', '7',
    '9', '8', '9', '9'
}};

/* uiv_2buf(): private routine for use by sv_2pv_flags(): print an IV or
 * UV as a string towards the end of buf, and return pointers to start and
 * end of it.
 *
 * We assume that buf is at least TYPE_CHARS(UV) long.
 */

PERL_STATIC_INLINE char *
S_uiv_2buf(char *const buf, const IV iv, UV uv, const int is_uv, char **const peob)
{
    char *ptr = buf + TYPE_CHARS(UV);
    char * const ebuf = ptr;
    int sign;
    U16 *word_ptr, *word_table;

    PERL_ARGS_ASSERT_UIV_2BUF;

    /* ptr has to be properly aligned, because we will cast it to U16* */
    assert(PTR2nat(ptr) % 2 == 0);
    /* we are going to read/write two bytes at a time */
    word_ptr = (U16*)ptr;
    word_table = (U16*)int2str_table.arr;

    if (UNLIKELY(is_uv))
        sign = 0;
    else if (iv >= 0) {
        uv = iv;
        sign = 0;
    } else {
        /* Using 0- here to silence bogus warning from MS VC */
        uv = (UV) (0 - (UV) iv);
        sign = 1;
    }

    while (uv > 99) {
        *--word_ptr = word_table[uv % 100];
        uv /= 100;
    }
    ptr = (char*)word_ptr;

    if (uv < 10)
        *--ptr = (char)uv + '0';
    else {
        *--word_ptr = word_table[uv];
        ptr = (char*)word_ptr;
    }

    if (sign)
        *--ptr = '-';

    *peob = ebuf;
    return ptr;
}

/* Helper for sv_2pv_flags and sv_vcatpvfn_flags.  If the NV is an
 * infinity or a not-a-number, writes the appropriate strings to the
 * buffer, including a zero byte.  On success returns the written length,
 * excluding the zero byte, on failure (not an infinity, not a nan)
 * returns zero, assert-fails on maxlen being too short.
 *
 * XXX for "Inf", "-Inf", and "NaN", we could have three read-only
 * shared string constants we point to, instead of generating a new
 * string for each instance. */
STATIC size_t
S_infnan_2pv(NV nv, char* buffer, size_t maxlen, char plus) {
    char* s = buffer;
    assert(maxlen >= 4);
    if (Perl_isinf(nv)) {
        if (nv < 0) {
            if (maxlen < 5) /* "-Inf\0"  */
                return 0;
            *s++ = '-';
        } else if (plus) {
            *s++ = '+';
        }
        *s++ = 'I';
        *s++ = 'n';
        *s++ = 'f';
    }
    else if (Perl_isnan(nv)) {
        *s++ = 'N';
        *s++ = 'a';
        *s++ = 'N';
        /* XXX optionally output the payload mantissa bits as
         * "(unsigned)" (to match the nan("...") C99 function,
         * or maybe as "(0xhhh...)"  would make more sense...
         * provide a format string so that the user can decide?
         * NOTE: would affect the maxlen and assert() logic.*/
    }
    else {
      return 0;
    }
    assert((s == buffer + 3) || (s == buffer + 4));
    *s = 0;
    return s - buffer;
}

/*
=for apidoc      sv_2pv
=for apidoc_item sv_2pv_flags

These implement the various forms of the L<perlapi/C<SvPV>> macros.
The macros are the preferred interface.

These return a pointer to the string value of an SV (coercing it to a string if
necessary), and set C<*lp> to its length in bytes.

The forms differ in that plain C<sv_2pvbyte> always processes 'get' magic; and
C<sv_2pvbyte_flags> processes 'get' magic if and only if C<flags> contains
C<SV_GMAGIC>.

=for apidoc Amnh||SV_GMAGIC

=cut
*/

char *
Perl_sv_2pv_flags(pTHX_ SV *const sv, STRLEN *const lp, const U32 flags)
{
    char *s;
    bool done_gmagic = FALSE;

    PERL_ARGS_ASSERT_SV_2PV_FLAGS;

    assert (SvTYPE(sv) != SVt_PVAV && SvTYPE(sv) != SVt_PVHV
         && SvTYPE(sv) != SVt_PVFM);
    if (SvGMAGICAL(sv) && (flags & SV_GMAGIC)) {
        mg_get(sv);
        done_gmagic = TRUE;
    }

    if (SvROK(sv)) {
        if (SvAMAGIC(sv)) {
            SV *tmpstr;
            SV *nsv= (SV *)sv;
            if (flags & SV_SKIP_OVERLOAD)
                return NULL;
            if (done_gmagic)
                nsv = sv_mortalcopy_flags(sv,0);
            tmpstr = AMG_CALLunary(nsv, string_amg);
            TAINT_IF(tmpstr && SvTAINTED(tmpstr));
            if (tmpstr && (!SvROK(tmpstr) || (SvRV(tmpstr) != SvRV(nsv)))) {
                /* Unwrap this:  */
                /* char *pv = lp ? SvPV(tmpstr, *lp) : SvPV_nolen(tmpstr);
                 */

                char *pv;
                if ((SvFLAGS(tmpstr) & (SVf_POK)) == SVf_POK) {
                    if (flags & SV_CONST_RETURN) {
                        pv = (char *) SvPVX_const(tmpstr);
                    } else {
                        pv = (flags & SV_MUTABLE_RETURN)
                            ? SvPVX_mutable(tmpstr) : SvPVX(tmpstr);
                    }
                    if (lp)
                        *lp = SvCUR(tmpstr);
                } else {
                    pv = sv_2pv_flags(tmpstr, lp, flags);
                }
                if (SvUTF8(tmpstr))
                    SvUTF8_on(sv);
                else
                    SvUTF8_off(sv);
                return pv;
            }
        }
        {
            STRLEN len;
            char *retval;
            char *buffer;
            SV *const referent = SvRV(sv);

            if (!referent) {
                len = 7;
                retval = buffer = savepvn("NULLREF", len);
            } else if (SvTYPE(referent) == SVt_REGEXP &&
                       (!(PL_curcop->cop_hints & HINT_NO_AMAGIC) ||
                        amagic_is_enabled(string_amg))) {
                REGEXP * const re = (REGEXP *)MUTABLE_PTR(referent);

                assert(re);

                /* If the regex is UTF-8 we want the containing scalar to
                   have an UTF-8 flag too */
                if (RX_UTF8(re))
                    SvUTF8_on(sv);
                else
                    SvUTF8_off(sv);

                if (lp)
                    *lp = RX_WRAPLEN(re);

                return RX_WRAPPED(re);
            } else {
                const char *const typestring = sv_reftype(referent, 0);
                const STRLEN typelen = strlen(typestring);
                UV addr = PTR2UV(referent);
                const char *stashname = NULL;
                STRLEN stashnamelen = 0; /* hush, gcc */
                const char *buffer_end;

                if (SvOBJECT(referent)) {
                    const HEK *const name = HvNAME_HEK(SvSTASH(referent));

                    if (name) {
                        stashname = HEK_KEY(name);
                        stashnamelen = HEK_LEN(name);

                        if (HEK_UTF8(name)) {
                            SvUTF8_on(sv);
                        } else {
                            SvUTF8_off(sv);
                        }
                    } else {
                        stashname = "__ANON__";
                        stashnamelen = 8;
                    }
                    len = stashnamelen + 1 /* = */ + typelen + 3 /* (0x */
                        + 2 * sizeof(UV) + 2 /* )\0 */;
                } else {
                    len = typelen + 3 /* (0x */
                        + 2 * sizeof(UV) + 2 /* )\0 */;
                }

                Newx(buffer, len, char);
                buffer_end = retval = buffer + len;

                /* Working backwards  */
                *--retval = '\0';
                *--retval = ')';
                do {
                    *--retval = PL_hexdigit[addr & 15];
                } while (addr >>= 4);
                *--retval = 'x';
                *--retval = '0';
                *--retval = '(';

                retval -= typelen;
                memcpy(retval, typestring, typelen);

                if (stashname) {
                    *--retval = '=';
                    retval -= stashnamelen;
                    memcpy(retval, stashname, stashnamelen);
                }
                /* retval may not necessarily have reached the start of the
                   buffer here.  */
                assert (retval >= buffer);

                len = buffer_end - retval - 1; /* -1 for that \0  */
            }
            if (lp)
                *lp = len;
            SAVEFREEPV(buffer);
            return retval;
        }
    }

    if (SvPOKp(sv)) {
        if (lp)
            *lp = SvCUR(sv);
        if (flags & SV_MUTABLE_RETURN)
            return SvPVX_mutable(sv);
        if (flags & SV_CONST_RETURN)
            return (char *)SvPVX_const(sv);
        return SvPVX(sv);
    }

    if (SvIOK(sv)) {
        /* I'm assuming that if both IV and NV are equally valid then
           converting the IV is going to be more efficient */
        const U32 isUIOK = SvIsUV(sv);
        /* The purpose of this union is to ensure that arr is aligned on
           a 2 byte boundary, because that is what uiv_2buf() requires */
        union {
            char arr[TYPE_CHARS(UV)];
            U16 dummy;
        } buf;
        char *ebuf, *ptr;
        STRLEN len;

        if (SvTYPE(sv) < SVt_PVIV)
            sv_upgrade(sv, SVt_PVIV);
        ptr = uiv_2buf(buf.arr, SvIVX(sv), SvUVX(sv), isUIOK, &ebuf);
        len = ebuf - ptr;
        /* inlined from sv_setpvn */
        s = SvGROW_mutable(sv, len + 1);
        Move(ptr, s, len, char);
        s += len;
        *s = '\0';
        /* We used to call SvPOK_on(). Whilst this is fine for (most) Perl code,
           it means that after this stringification is cached, there is no way
           to distinguish between values originally assigned as $a = 42; and
           $a = "42"; (or results of string operators vs numeric operators)
           where the value has subsequently been used in the other sense
           and had a value cached.
           This (somewhat) hack means that we retain the cached stringification,
           but don't set SVf_POK. Hence if a value is SVf_IOK|SVf_POK then it
           originated as "42", whereas if it's SVf_IOK then it originated as 42.
           (ignore SVp_IOK and SVp_POK)
           The SvPV macros are now updated to recognise this specific case
           (and that there isn't overloading or magic that could alter the
           cached value) and so return the cached value immediately without
           re-entering this function, getting back here to this block of code,
           and repeating the same conversion. */
        SvPOKp_on(sv);
    }
    else if (SvNOK(sv)) {
        if (SvTYPE(sv) < SVt_PVNV)
            sv_upgrade(sv, SVt_PVNV);
        if (SvNVX(sv) == 0.0
#if defined(NAN_COMPARE_BROKEN) && defined(Perl_isnan)
            && !Perl_isnan(SvNVX(sv))
#endif
        ) {
            s = SvGROW_mutable(sv, 2);
            *s++ = '0';
            *s = '\0';
        } else {
            STRLEN len;
            STRLEN size = 5; /* "-Inf\0" */

            s = SvGROW_mutable(sv, size);
            len = S_infnan_2pv(SvNVX(sv), s, size, 0);
            if (len > 0) {
                s += len;
                SvPOKp_on(sv);
            }
            else {
                /* some Xenix systems wipe out errno here */
                dSAVE_ERRNO;

                size =
                    1 + /* sign */
                    1 + /* "." */
                    NV_DIG +
                    1 + /* "e" */
                    1 + /* sign */
                    5 + /* exponent digits */
                    1 + /* \0 */
                    2; /* paranoia */

                s = SvGROW_mutable(sv, size);
#ifndef USE_LOCALE_NUMERIC
                SNPRINTF_G(SvNVX(sv), s, SvLEN(sv), NV_DIG);

                SvPOKp_on(sv);
#else
                {
                    bool local_radix;
                    DECLARATION_FOR_LC_NUMERIC_MANIPULATION;
                    STORE_LC_NUMERIC_SET_TO_NEEDED();

                    local_radix = NOT_IN_NUMERIC_STANDARD_;
                    if (local_radix && SvCUR(PL_numeric_radix_sv) > 1) {
                        size += SvCUR(PL_numeric_radix_sv) - 1;
                        s = SvGROW_mutable(sv, size);
                    }

                    SNPRINTF_G(SvNVX(sv), s, SvLEN(sv), NV_DIG);

                    /* If the radix character is UTF-8, and actually is in the
                     * output, turn on the UTF-8 flag for the scalar */
                    if (   local_radix
                        && SvUTF8(PL_numeric_radix_sv)
                        && instr(s, SvPVX_const(PL_numeric_radix_sv)))
                    {
                        SvUTF8_on(sv);
                    }

                    RESTORE_LC_NUMERIC();
                }

                /* We don't call SvPOK_on(), because it may come to
                 * pass that the locale changes so that the
                 * stringification we just did is no longer correct.  We
                 * will have to re-stringify every time it is needed */
#endif
                RESTORE_ERRNO;
            }
            while (*s) s++;
        }
    }
    else if (isGV_with_GP(sv)) {
        GV *const gv = MUTABLE_GV(sv);
        SV *const buffer = sv_newmortal();

        gv_efullname3(buffer, gv, "*");

        assert(SvPOK(buffer));
        if (SvUTF8(buffer))
            SvUTF8_on(sv);
        else
            SvUTF8_off(sv);
        if (lp)
            *lp = SvCUR(buffer);
        return SvPVX(buffer);
    }
    else {
        if (lp)
            *lp = 0;
        if (flags & SV_UNDEF_RETURNS_NULL)
            return NULL;
        if (!PL_localizing && ckWARN(WARN_UNINITIALIZED))
            report_uninit(sv);
        /* Typically the caller expects that sv_any is not NULL now.  */
        if (!SvREADONLY(sv) && SvTYPE(sv) < SVt_PV)
            sv_upgrade(sv, SVt_PV);
        return (char *)"";
    }

    {
        const STRLEN len = s - SvPVX_const(sv);
        if (lp)
            *lp = len;
        SvCUR_set(sv, len);
    }
    DEBUG_c(PerlIO_printf(Perl_debug_log, "0x%" UVxf " 2pv(%s)\n",
                          PTR2UV(sv),SvPVX_const(sv)));
    if (flags & SV_CONST_RETURN)
        return (char *)SvPVX_const(sv);
    if (flags & SV_MUTABLE_RETURN)
        return SvPVX_mutable(sv);
    return SvPVX(sv);
}

/*
=for apidoc sv_copypv
=for apidoc_item sv_copypv_flags
=for apidoc_item sv_copypv_nomg

These copy a stringified representation of the source SV into the
destination SV.  They automatically perform coercion of numeric values into
strings.  Guaranteed to preserve the C<UTF8> flag even from overloaded objects.
Similar in nature to C<sv_2pv[_flags]> but they operate directly on an SV
instead of just the string.  Mostly they use L</C<sv_2pv_flags>> to
do the work, except when that would lose the UTF-8'ness of the PV.

The three forms differ only in whether or not they perform 'get magic' on
C<sv>.  C<sv_copypv_nomg> skips 'get magic'; C<sv_copypv> performs it; and
C<sv_copypv_flags> either performs it (if the C<SV_GMAGIC> bit is set in
C<flags>) or doesn't (if that bit is cleared).

=cut
*/

void
Perl_sv_copypv_flags(pTHX_ SV *const dsv, SV *const ssv, const I32 flags)
{
    STRLEN len;
    const char *s;

    PERL_ARGS_ASSERT_SV_COPYPV_FLAGS;

    s = SvPV_flags_const(ssv,len,(flags & SV_GMAGIC));
    sv_setpvn(dsv,s,len);
    if (SvUTF8(ssv))
        SvUTF8_on(dsv);
    else
        SvUTF8_off(dsv);
}

/*
=for apidoc      sv_2pvbyte
=for apidoc_item sv_2pvbyte_flags

These implement the various forms of the L<perlapi/C<SvPVbyte>> macros.
The macros are the preferred interface.

These return a pointer to the byte-encoded representation of the SV, and set
C<*lp> to its length.  If the SV is marked as being encoded as UTF-8, it will
be downgraded, if possible, to a byte string.  If the SV cannot be downgraded,
they croak.

The forms differ in that plain C<sv_2pvbyte> always processes 'get' magic; and
C<sv_2pvbyte_flags> processes 'get' magic if and only if C<flags> contains
C<SV_GMAGIC>.

=for apidoc Amnh||SV_GMAGIC

=cut
*/

char *
Perl_sv_2pvbyte_flags(pTHX_ SV *sv, STRLEN *const lp, const U32 flags)
{
    PERL_ARGS_ASSERT_SV_2PVBYTE_FLAGS;

    if (SvGMAGICAL(sv) && (flags & SV_GMAGIC))
        mg_get(sv);
    if (((SvREADONLY(sv) || SvFAKE(sv)) && !SvIsCOW(sv))
     || isGV_with_GP(sv) || SvROK(sv)) {
        SV *sv2 = sv_newmortal();
        sv_copypv_nomg(sv2,sv);
        sv = sv2;
    }
    sv_utf8_downgrade_nomg(sv,0);
    return lp ? SvPV_nomg(sv,*lp) : SvPV_nomg_nolen(sv);
}

/*
=for apidoc      sv_2pvutf8
=for apidoc_item sv_2pvutf8_flags

These implement the various forms of the L<perlapi/C<SvPVutf8>> macros.
The macros are the preferred interface.

These return a pointer to the UTF-8-encoded representation of the SV, and set
C<*lp> to its length in bytes.  They may cause the SV to be upgraded to UTF-8
as a side-effect.

The forms differ in that plain C<sv_2pvutf8> always processes 'get' magic; and
C<sv_2pvutf8_flags> processes 'get' magic if and only if C<flags> contains
C<SV_GMAGIC>.

=cut
*/

char *
Perl_sv_2pvutf8_flags(pTHX_ SV *sv, STRLEN *const lp, const U32 flags)
{
    PERL_ARGS_ASSERT_SV_2PVUTF8_FLAGS;

    if (SvGMAGICAL(sv) && (flags & SV_GMAGIC))
        mg_get(sv);
    if (((SvREADONLY(sv) || SvFAKE(sv)) && !SvIsCOW(sv))
     || isGV_with_GP(sv) || SvROK(sv)) {
        SV *sv2 = sv_newmortal();
        sv_copypv_nomg(sv2,sv);
        sv = sv2;
    }
    sv_utf8_upgrade_nomg(sv);
    return lp ? SvPV_nomg(sv,*lp) : SvPV_nomg_nolen(sv);
}


/*
=for apidoc sv_2bool

This macro is only used by C<sv_true()> or its macro equivalent, and only if
the latter's argument is neither C<SvPOK>, C<SvIOK> nor C<SvNOK>.
It calls C<sv_2bool_flags> with the C<SV_GMAGIC> flag.

=for apidoc sv_2bool_flags

This function is only used by C<sv_true()> and friends,  and only if
the latter's argument is neither C<SvPOK>, C<SvIOK> nor C<SvNOK>.  If the flags
contain C<SV_GMAGIC>, then it does an C<mg_get()> first.


=cut
*/

bool
Perl_sv_2bool_flags(pTHX_ SV *sv, I32 flags)
{
    PERL_ARGS_ASSERT_SV_2BOOL_FLAGS;

    restart:
    if(flags & SV_GMAGIC) SvGETMAGIC(sv);

    if (!SvOK(sv))
        return 0;
    if (SvROK(sv)) {
        if (SvAMAGIC(sv)) {
            SV * const tmpsv = AMG_CALLunary(sv, bool__amg);
            if (tmpsv && (!SvROK(tmpsv) || (SvRV(tmpsv) != SvRV(sv)))) {
                bool svb;
                sv = tmpsv;
                if(SvGMAGICAL(sv)) {
                    flags = SV_GMAGIC;
                    goto restart; /* call sv_2bool */
                }
                /* expanded SvTRUE_common(sv, (flags = 0, goto restart)) */
                else if(!SvOK(sv)) {
                    svb = 0;
                }
                else if(SvPOK(sv)) {
                    svb = SvPVXtrue(sv);
                }
                else if((SvFLAGS(sv) & (SVf_IOK|SVf_NOK))) {
                    svb = (SvIOK(sv) && SvIVX(sv) != 0)
                        || (SvNOK(sv) && SvNVX(sv) != 0.0);
                }
                else {
                    flags = 0;
                    goto restart; /* call sv_2bool_nomg */
                }
                return cBOOL(svb);
            }
        }
        assert(SvRV(sv));
        return TRUE;
    }
    if (isREGEXP(sv))
        return
          RX_WRAPLEN(sv) > 1 || (RX_WRAPLEN(sv) && *RX_WRAPPED(sv) != '0');

    if (SvNOK(sv) && !SvPOK(sv))
        return SvNVX(sv) != 0.0;

    return SvTRUE_common(sv, 0);
}

/*
=for apidoc sv_utf8_upgrade
=for apidoc_item sv_utf8_upgrade_flags
=for apidoc_item sv_utf8_upgrade_flags_grow
=for apidoc_item sv_utf8_upgrade_nomg

These convert the PV of an SV to its UTF-8-encoded form.
The SV is forced to string form if it is not already.
They always set the C<SvUTF8> flag to avoid future validity checks even if the
whole string is the same in UTF-8 as not.
They return the number of bytes in the converted string

The forms differ in just two ways.  The main difference is whether or not they
perform 'get magic' on C<sv>.  C<sv_utf8_upgrade_nomg> skips 'get magic';
C<sv_utf8_upgrade> performs it; and C<sv_utf8_upgrade_flags> and
C<sv_utf8_upgrade_flags_grow> either perform it (if the C<SV_GMAGIC> bit is set
in C<flags>) or don't (if that bit is cleared).

The other difference is that C<sv_utf8_upgrade_flags_grow> has an additional
parameter, C<extra>, which allows the caller to specify an amount of space to
be reserved as spare beyond what is needed for the actual conversion.  This is
used when the caller knows it will soon be needing yet more space, and it is
more efficient to request space from the system in a single call.
This form is otherwise identical to C<sv_utf8_upgrade_flags>.

These are not a general purpose byte encoding to Unicode interface: use the
Encode extension for that.

The C<SV_FORCE_UTF8_UPGRADE> flag is now ignored.

=for apidoc Amnh||SV_GMAGIC|
=for apidoc Amnh||SV_FORCE_UTF8_UPGRADE|

=cut

If the routine itself changes the string, it adds a trailing C<NUL>.  Such a
C<NUL> isn't guaranteed due to having other routines do the work in some input
cases, or if the input is already flagged as being in utf8.

*/

STRLEN
Perl_sv_utf8_upgrade_flags_grow(pTHX_ SV *const sv, const I32 flags, STRLEN extra)
{
    PERL_ARGS_ASSERT_SV_UTF8_UPGRADE_FLAGS_GROW;

    if (sv == &PL_sv_undef)
        return 0;
    if (!SvPOK_nog(sv)) {
        STRLEN len = 0;
        if (SvREADONLY(sv) && (SvPOKp(sv) || SvIOKp(sv) || SvNOKp(sv))) {
            (void) sv_2pv_flags(sv,&len, flags);
            if (SvUTF8(sv)) {
                if (extra) SvGROW(sv, SvCUR(sv) + extra);
                return len;
            }
        } else {
            (void) SvPV_force_flags(sv,len,flags & SV_GMAGIC);
        }
    }

    /* SVt_REGEXP's shouldn't be upgraded to UTF8 - they're already
     * compiled and individual nodes will remain non-utf8 even if the
     * stringified version of the pattern gets upgraded. Whether the
     * PVX of a REGEXP should be grown or we should just croak, I don't
     * know - DAPM */
    if (SvUTF8(sv) || isREGEXP(sv)) {
        if (extra) SvGROW(sv, SvCUR(sv) + extra);
        return SvCUR(sv);
    }

    if (SvIsCOW(sv)) {
        S_sv_uncow(aTHX_ sv, 0);
    }

    if (SvCUR(sv) == 0) {
        if (extra) SvGROW(sv, extra + 1); /* Make sure is room for a trailing
                                             byte */
    } else { /* Assume Latin-1/EBCDIC */
        /* This function could be much more efficient if we
         * had a FLAG in SVs to signal if there are any variant
         * chars in the PV.  Given that there isn't such a flag
         * make the loop as fast as possible. */
        U8 * s = (U8 *) SvPVX_const(sv);
        U8 *t = s;

        if (is_utf8_invariant_string_loc(s, SvCUR(sv), (const U8 **) &t)) {

            /* utf8 conversion not needed because all are invariants.  Mark
             * as UTF-8 even if no variant - saves scanning loop */
            SvUTF8_on(sv);
            if (extra) SvGROW(sv, SvCUR(sv) + extra);
            return SvCUR(sv);
        }

        /* Here, there is at least one variant (t points to the first one), so
         * the string should be converted to utf8.  Everything from 's' to
         * 't - 1' will occupy only 1 byte each on output.
         *
         * Note that the incoming SV may not have a trailing '\0', as certain
         * code in pp_formline can send us partially built SVs.
         *
         * There are two main ways to convert.  One is to create a new string
         * and go through the input starting from the beginning, appending each
         * converted value onto the new string as we go along.  Going this
         * route, it's probably best to initially allocate enough space in the
         * string rather than possibly running out of space and having to
         * reallocate and then copy what we've done so far.  Since everything
         * from 's' to 't - 1' is invariant, the destination can be initialized
         * with these using a fast memory copy.  To be sure to allocate enough
         * space, one could use the worst case scenario, where every remaining
         * byte expands to two under UTF-8, or one could parse it and count
         * exactly how many do expand.
         *
         * The other way is to unconditionally parse the remainder of the
         * string to figure out exactly how big the expanded string will be,
         * growing if needed.  Then start at the end of the string and place
         * the character there at the end of the unfilled space in the expanded
         * one, working backwards until reaching 't'.
         *
         * The problem with assuming the worst case scenario is that for very
         * long strings, we could allocate much more memory than actually
         * needed, which can create performance problems.  If we have to parse
         * anyway, the second method is the winner as it may avoid an extra
         * copy.  The code used to use the first method under some
         * circumstances, but now that there is faster variant counting on
         * ASCII platforms, the second method is used exclusively, eliminating
         * some code that no longer has to be maintained. */

        {
            /* Count the total number of variants there are.  We can start
             * just beyond the first one, which is known to be at 't' */
            const Size_t invariant_length = t - s;
            U8 * e = (U8 *) SvEND(sv);

            /* The length of the left overs, plus 1. */
            const Size_t remaining_length_p1 = e - t;

            /* We expand by 1 for the variant at 't' and one for each remaining
             * variant (we start looking at 't+1') */
            Size_t expansion = 1 + variant_under_utf8_count(t + 1, e);

            /* +1 = trailing NUL */
            Size_t need = SvCUR(sv) + expansion + extra + 1;
            U8 * d;

            /* Grow if needed */
            if (SvLEN(sv) < need) {
                t = invariant_length + (U8*) SvGROW(sv, need);
                e = t + remaining_length_p1;
            }
            SvCUR_set(sv, invariant_length + remaining_length_p1 + expansion);

            /* Set the NUL at the end */
            d = (U8 *) SvEND(sv);
            *d-- = '\0';

            /* Having decremented d, it points to the position to put the
             * very last byte of the expanded string.  Go backwards through
             * the string, copying and expanding as we go, stopping when we
             * get to the part that is invariant the rest of the way down */

            e--;
            while (e >= t) {
                if (NATIVE_BYTE_IS_INVARIANT(*e)) {
                    *d-- = *e;
                } else {
                    *d-- = UTF8_EIGHT_BIT_LO(*e);
                    *d-- = UTF8_EIGHT_BIT_HI(*e);
                }
                e--;
            }

            if (SvTYPE(sv) >= SVt_PVMG && SvMAGIC(sv)) {
                /* Update pos. We do it at the end rather than during
                 * the upgrade, to avoid slowing down the common case
                 * (upgrade without pos).
                 * pos can be stored as either bytes or characters.  Since
                 * this was previously a byte string we can just turn off
                 * the bytes flag. */
                MAGIC * mg = mg_find(sv, PERL_MAGIC_regex_global);
                if (mg) {
                    mg->mg_flags &= ~MGf_BYTES;
                }
                if ((mg = mg_find(sv, PERL_MAGIC_utf8)))
                    magic_setutf8(sv,mg); /* clear UTF8 cache */
            }
        }
    }

    SvUTF8_on(sv);
    return SvCUR(sv);
}

/*
=for apidoc sv_utf8_downgrade
=for apidoc_item sv_utf8_downgrade_flags
=for apidoc_item sv_utf8_downgrade_nomg

These attempt to convert the PV of an SV from characters to bytes.  If the PV
contains a character that cannot fit in a byte, this conversion will fail; in
this case, C<FALSE> is returned if C<fail_ok> is true; otherwise they croak.

They are not a general purpose Unicode to byte encoding interface:
use the C<Encode> extension for that.

They differ only in that:

C<sv_utf8_downgrade> processes 'get' magic on C<sv>.

C<sv_utf8_downgrade_nomg> does not.

C<sv_utf8_downgrade_flags> has an additional C<flags> parameter in which you can specify
C<SV_GMAGIC> to process 'get' magic, or leave it cleared to not process 'get' magic.

=cut
*/

bool
Perl_sv_utf8_downgrade_flags(pTHX_ SV *const sv, const bool fail_ok, const U32 flags)
{
    PERL_ARGS_ASSERT_SV_UTF8_DOWNGRADE_FLAGS;

    if (SvPOKp(sv) && SvUTF8(sv)) {
        if (SvCUR(sv)) {
            U8 *s;
            STRLEN len;
            U32 mg_flags = flags & SV_GMAGIC;

            if (SvIsCOW(sv)) {
                S_sv_uncow(aTHX_ sv, 0);
            }
            if (SvTYPE(sv) >= SVt_PVMG && SvMAGIC(sv)) {
                /* update pos */
                MAGIC * mg = mg_find(sv, PERL_MAGIC_regex_global);
                if (mg && mg->mg_len > 0 && mg->mg_flags & MGf_BYTES) {
                        mg->mg_len = sv_pos_b2u_flags(sv, mg->mg_len,
                                                mg_flags|SV_CONST_RETURN);
                        mg_flags = 0; /* sv_pos_b2u does get magic */
                }
                if ((mg = mg_find(sv, PERL_MAGIC_utf8)))
                    magic_setutf8(sv,mg); /* clear UTF8 cache */

            }
            s = (U8 *) SvPV_flags(sv, len, mg_flags);

            if (!utf8_to_bytes(s, &len)) {
                if (fail_ok)
                    return FALSE;
                else {
                    if (PL_op)
                        Perl_croak(aTHX_ "Wide character in %s",
                                   OP_DESC(PL_op));
                    else
                        Perl_croak(aTHX_ "Wide character");
                }
            }
            SvCUR_set(sv, len);
        }
    }
    SvUTF8_off(sv);
    return TRUE;
}

/*
=for apidoc sv_utf8_encode

Converts the PV of an SV to UTF-8, but then turns the C<SvUTF8>
flag off so that it looks like octets again.

=cut
*/

void
Perl_sv_utf8_encode(pTHX_ SV *const sv)
{
    PERL_ARGS_ASSERT_SV_UTF8_ENCODE;

    if (SvREADONLY(sv)) {
        sv_force_normal_flags(sv, 0);
    }
    (void) sv_utf8_upgrade(sv);
    SvUTF8_off(sv);
}

/*
=for apidoc sv_utf8_decode

If the PV of the SV is an octet sequence in Perl's extended UTF-8
and contains a multiple-byte character, the C<SvUTF8> flag is turned on
so that it looks like a character.  If the PV contains only single-byte
characters, the C<SvUTF8> flag stays off.
Scans PV for validity and returns FALSE if the PV is invalid UTF-8.

=cut
*/

bool
Perl_sv_utf8_decode(pTHX_ SV *const sv)
{
    PERL_ARGS_ASSERT_SV_UTF8_DECODE;

    if (SvPOKp(sv)) {
        const U8 *start, *c, *first_variant;

        /* The octets may have got themselves encoded - get them back as
         * bytes
         */
        if (!sv_utf8_downgrade(sv, TRUE))
            return FALSE;

        /* it is actually just a matter of turning the utf8 flag on, but
         * we want to make sure everything inside is valid utf8 first.
         */
        c = start = (const U8 *) SvPVX_const(sv);
        if (! is_utf8_invariant_string_loc(c, SvCUR(sv), &first_variant)) {
            if (!is_utf8_string(first_variant, SvCUR(sv) - (first_variant -c)))
                return FALSE;
            SvUTF8_on(sv);
        }
        if (SvTYPE(sv) >= SVt_PVMG && SvMAGIC(sv)) {
            /* XXX Is this dead code?  XS_utf8_decode calls SvSETMAGIC
                   after this, clearing pos.  Does anything on CPAN
                   need this? */
            /* adjust pos to the start of a UTF8 char sequence */
            MAGIC * mg = mg_find(sv, PERL_MAGIC_regex_global);
            if (mg) {
                I32 pos = mg->mg_len;
                if (pos > 0) {
                    for (c = start + pos; c > start; c--) {
                        if (UTF8_IS_START(*c))
                            break;
                    }
                    mg->mg_len  = c - start;
                }
            }
            if ((mg = mg_find(sv, PERL_MAGIC_utf8)))
                magic_setutf8(sv,mg); /* clear UTF8 cache */
        }
    }
    return TRUE;
}

/*
=for apidoc sv_setsv
=for apidoc_item sv_setsv_flags
=for apidoc_item sv_setsv_mg
=for apidoc_item sv_setsv_nomg

These copy the contents of the source SV C<ssv> into the destination SV C<dsv>.
C<ssv> may be destroyed if it is mortal, so don't use these functions if
the source SV needs to be reused.
Loosely speaking, they perform a copy-by-value, obliterating any previous
content of the destination.

They differ only in that:

C<sv_setsv> calls 'get' magic on C<ssv>, but skips 'set' magic on C<dsv>.

C<sv_setsv_mg> calls both 'get' magic on C<ssv> and 'set' magic on C<dsv>.

C<sv_setsv_nomg> skips all magic.

C<sv_setsv_flags> has a C<flags> parameter which you can use to specify any
combination of magic handling, and also you can specify C<SV_NOSTEAL> so that
the buffers of temps will not be stolen.

You probably want to instead use one of the assortment of wrappers, such as
C<L</SvSetSV>>, C<L</SvSetSV_nosteal>>, C<L</SvSetMagicSV>> and
C<L</SvSetMagicSV_nosteal>>.

C<sv_setsv_flags> is the primary function for copying scalars, and most other
copy-ish functions and macros use it underneath.

=for apidoc Amnh||SV_NOSTEAL

=cut
*/

static void
S_glob_assign_glob(pTHX_ SV *const dsv, SV *const ssv, const int dtype)
{
    I32 mro_changes = 0; /* 1 = method, 2 = isa, 3 = recursive isa */
    HV *old_stash = NULL;

    PERL_ARGS_ASSERT_GLOB_ASSIGN_GLOB;

    if (dtype != SVt_PVGV && !isGV_with_GP(dsv)) {
        const char * const name = GvNAME(ssv);
        const STRLEN len = GvNAMELEN(ssv);
        {
            if (dtype >= SVt_PV) {
                SvPV_free(dsv);
                SvPV_set(dsv, 0);
                SvLEN_set(dsv, 0);
                SvCUR_set(dsv, 0);
            }
            SvUPGRADE(dsv, SVt_PVGV);
            (void)SvOK_off(dsv);
            isGV_with_GP_on(dsv);
        }
        GvSTASH(dsv) = GvSTASH(ssv);
        if (GvSTASH(dsv))
            Perl_sv_add_backref(aTHX_ MUTABLE_SV(GvSTASH(dsv)), dsv);
        gv_name_set(MUTABLE_GV(dsv), name, len,
                        GV_ADD | (GvNAMEUTF8(ssv) ? SVf_UTF8 : 0 ));
        SvFAKE_on(dsv);	/* can coerce to non-glob */
    }

    if(GvGP(MUTABLE_GV(ssv))) {
        /* If source has method cache entry, clear it */
        if(GvCVGEN(ssv)) {
            SvREFCNT_dec(GvCV(ssv));
            GvCV_set(ssv, NULL);
            GvCVGEN(ssv) = 0;
        }
        /* If source has a real method, then a method is
           going to change */
        else if(
         GvCV((const GV *)ssv) && GvSTASH(dsv) && HvHasENAME(GvSTASH(dsv))
        ) {
            mro_changes = 1;
        }
    }

    /* If dest already had a real method, that's a change as well */
    if(
        !mro_changes && GvGP(MUTABLE_GV(dsv)) && GvCVu((const GV *)dsv)
     && GvSTASH(dsv) && HvHasENAME(GvSTASH(dsv))
    ) {
        mro_changes = 1;
    }

    /* We don't need to check the name of the destination if it was not a
       glob to begin with. */
    if(dtype == SVt_PVGV) {
        const char * const name = GvNAME((const GV *)dsv);
        const STRLEN len = GvNAMELEN(dsv);
        if(memEQs(name, len, "ISA")
         /* The stash may have been detached from the symbol table, so
            check its name. */
         && GvSTASH(dsv) && HvHasENAME(GvSTASH(dsv))
        )
            mro_changes = 2;
        else {
            if ((len > 1 && name[len-2] == ':' && name[len-1] == ':')
             || (len == 1 && name[0] == ':')) {
                mro_changes = 3;

                /* Set aside the old stash, so we can reset isa caches on
                   its subclasses. */
                if((old_stash = GvHV(dsv)))
                    /* Make sure we do not lose it early. */
                    SvREFCNT_inc_simple_void_NN(
                     sv_2mortal((SV *)old_stash)
                    );
            }
        }

        SvREFCNT_inc_simple_void_NN(sv_2mortal(dsv));
    }

    /* freeing dsv's GP might free ssv (e.g. *x = $x),
     * so temporarily protect it */
    ENTER;
    SAVEFREESV(SvREFCNT_inc_simple_NN(ssv));
    gp_free(MUTABLE_GV(dsv));
    GvINTRO_off(dsv);		/* one-shot flag */
    GvGP_set(dsv, gp_ref(GvGP(ssv)));
    LEAVE;

    if (SvTAINTED(ssv))
        SvTAINT(dsv);
    if (GvIMPORTED(dsv) != GVf_IMPORTED
        && CopSTASH_ne(PL_curcop, GvSTASH(dsv)))
        {
            GvIMPORTED_on(dsv);
        }
    GvMULTI_on(dsv);
    if(mro_changes == 2) {
      if (GvAV((const GV *)ssv)) {
        MAGIC *mg;
        SV * const sref = (SV *)GvAV((const GV *)dsv);
        if (SvSMAGICAL(sref) && (mg = mg_find(sref, PERL_MAGIC_isa))) {
            if (SvTYPE(mg->mg_obj) != SVt_PVAV) {
                AV * const ary = newAV_alloc_x(2);
                av_push_simple(ary, mg->mg_obj); /* takes the refcount */
                av_push_simple(ary, SvREFCNT_inc_simple_NN(dsv));
                mg->mg_obj = (SV *)ary;
            } else {
                av_push((AV *)mg->mg_obj, SvREFCNT_inc_simple_NN(dsv));
            }
        }
        else sv_magic(sref, dsv, PERL_MAGIC_isa, NULL, 0);
      }
      mro_isa_changed_in(GvSTASH(dsv));
    }
    else if(mro_changes == 3) {
        HV * const stash = GvHV(dsv);
        if(old_stash ? HvHasENAME(old_stash) : cBOOL(stash))
            mro_package_moved(
                stash, old_stash,
                (GV *)dsv, 0
            );
    }
    else if(mro_changes) mro_method_changed_in(GvSTASH(dsv));
    if (GvIO(dsv) && dtype == SVt_PVGV) {
        DEBUG_o(Perl_deb(aTHX_
                        "glob_assign_glob clearing PL_stashcache\n"));
        /* It's a cache. It will rebuild itself quite happily.
           It's a lot of effort to work out exactly which key (or keys)
           might be invalidated by the creation of the this file handle.
         */
        hv_clear(PL_stashcache);
    }
    return;
}

void
Perl_gv_setref(pTHX_ SV *const dsv, SV *const ssv)
{
    SV * const sref = SvRV(ssv);
    SV *dref;
    const int intro = GvINTRO(dsv);
    SV **location;
    U8 import_flag = 0;
    const U32 stype = SvTYPE(sref);

    PERL_ARGS_ASSERT_GV_SETREF;

    if (intro) {
        GvINTRO_off(dsv);	/* one-shot flag */
        GvLINE(dsv) = CopLINE(PL_curcop);
        GvEGV(dsv) = MUTABLE_GV(dsv);
    }
    GvMULTI_on(dsv);
    switch (stype) {
    case SVt_PVCV:
        location = (SV **) &(GvGP(dsv)->gp_cv); /* XXX bypassing GvCV_set */
        import_flag = GVf_IMPORTED_CV;
        goto common;
    case SVt_PVHV:
        location = (SV **) &GvHV(dsv);
        import_flag = GVf_IMPORTED_HV;
        goto common;
    case SVt_PVAV:
        location = (SV **) &GvAV(dsv);
        import_flag = GVf_IMPORTED_AV;
        goto common;
    case SVt_PVIO:
        location = (SV **) &GvIOp(dsv);
        goto common;
    case SVt_PVFM:
        location = (SV **) &GvFORM(dsv);
        goto common;
    default:
        location = &GvSV(dsv);
        import_flag = GVf_IMPORTED_SV;
    common:
        if (intro) {
            if (stype == SVt_PVCV) {
                /*if (GvCVGEN(dsv) && (GvCV(dsv) != (const CV *)sref || GvCVGEN(dsv))) {*/
                if (GvCVGEN(dsv)) {
                    SvREFCNT_dec(GvCV(dsv));
                    GvCV_set(dsv, NULL);
                    GvCVGEN(dsv) = 0; /* Switch off cacheness. */
                }
            }
            /* SAVEt_GVSLOT takes more room on the savestack and has more
               overhead in leave_scope than SAVEt_GENERIC_SV.  But for CVs
               leave_scope needs access to the GV so it can reset method
               caches.  We must use SAVEt_GVSLOT whenever the type is
               SVt_PVCV, even if the stash is anonymous, as the stash may
               gain a name somehow before leave_scope. */
            if (stype == SVt_PVCV) {
                /* There is no save_pushptrptrptr.  Creating it for this
                   one call site would be overkill.  So inline the ss add
                   routines here. */
                dSS_ADD;
                SS_ADD_PTR(dsv);
                SS_ADD_PTR(location);
                SS_ADD_PTR(SvREFCNT_inc(*location));
                SS_ADD_UV(SAVEt_GVSLOT);
                SS_ADD_END(4);
            }
            else SAVEGENERICSV(*location);
        }
        dref = *location;
        if (stype == SVt_PVCV && (*location != sref || GvCVGEN(dsv))) {
            CV* const cv = MUTABLE_CV(*location);
            if (cv) {
                if (!GvCVGEN((const GV *)dsv) &&
                    (CvROOT(cv) || CvXSUB(cv)) &&
                    /* redundant check that avoids creating the extra SV
                       most of the time: */
                    (CvCONST(cv) || (ckWARN(WARN_REDEFINE) && !intro)))
                    {
                        SV * const new_const_sv =
                            CvCONST((const CV *)sref)
                                 ? cv_const_sv_or_av((const CV *)sref)
                                 : NULL;
                        HV * const stash = GvSTASH((const GV *)dsv);
                        report_redefined_cv(
                           sv_2mortal(
                             stash
                               ? Perl_newSVpvf(aTHX_
                                    "%" HEKf "::%" HEKf,
                                    HEKfARG(HvNAME_HEK(stash)),
                                    HEKfARG(GvENAME_HEK(MUTABLE_GV(dsv))))
                               : Perl_newSVpvf(aTHX_
                                    "%" HEKf,
                                    HEKfARG(GvENAME_HEK(MUTABLE_GV(dsv))))
                           ),
                           cv,
                           CvCONST((const CV *)sref) ? &new_const_sv : NULL
                        );
                    }
                if (!intro)
                    cv_ckproto_len_flags(cv, (const GV *)dsv,
                                   SvPOK(sref) ? CvPROTO(sref) : NULL,
                                   SvPOK(sref) ? CvPROTOLEN(sref) : 0,
                                   SvPOK(sref) ? SvUTF8(sref) : 0);
            }
            GvCVGEN(dsv) = 0; /* Switch off cacheness. */
            GvASSUMECV_on(dsv);
            if(GvSTASH(dsv)) { /* sub foo { 1 } sub bar { 2 } *bar = \&foo */
                if (intro && GvREFCNT(dsv) > 1) {
                    /* temporary remove extra savestack's ref */
                    --GvREFCNT(dsv);
                    gv_method_changed(dsv);
                    ++GvREFCNT(dsv);
                }
                else gv_method_changed(dsv);
            }
        }
        *location = SvREFCNT_inc_simple_NN(sref);
        if (import_flag && !(GvFLAGS(dsv) & import_flag)
            && CopSTASH_ne(PL_curcop, GvSTASH(dsv))) {
            GvFLAGS(dsv) |= import_flag;
        }

        if (stype == SVt_PVHV) {
            const char * const name = GvNAME((GV*)dsv);
            const STRLEN len = GvNAMELEN(dsv);
            if (
                (
                   (len > 1 && name[len-2] == ':' && name[len-1] == ':')
                || (len == 1 && name[0] == ':')
                )
             && (!dref || HvHasENAME(dref))
            ) {
                mro_package_moved(
                    (HV *)sref, (HV *)dref,
                    (GV *)dsv, 0
                );
            }
        }
        else if (
            stype == SVt_PVAV && sref != dref
         && memEQs(GvNAME((GV*)dsv), GvNAMELEN((GV*)dsv), "ISA")
         /* The stash may have been detached from the symbol table, so
            check its name before doing anything. */
         && GvSTASH(dsv) && HvHasENAME(GvSTASH(dsv))
        ) {
            MAGIC *mg;
            MAGIC * const omg = dref && SvSMAGICAL(dref)
                                 ? mg_find(dref, PERL_MAGIC_isa)
                                 : NULL;
            if (SvSMAGICAL(sref) && (mg = mg_find(sref, PERL_MAGIC_isa))) {
                if (SvTYPE(mg->mg_obj) != SVt_PVAV) {
                    AV * const ary = newAV_alloc_xz(4);
                    av_push_simple(ary, mg->mg_obj); /* takes the refcount */
                    mg->mg_obj = (SV *)ary;
                }
                if (omg) {
                    if (SvTYPE(omg->mg_obj) == SVt_PVAV) {
                        SV **svp = AvARRAY((AV *)omg->mg_obj);
                        I32 items = AvFILLp((AV *)omg->mg_obj) + 1;
                        while (items--)
                            av_push(
                             (AV *)mg->mg_obj,
                             SvREFCNT_inc_simple_NN(*svp++)
                            );
                    }
                    else
                        av_push(
                         (AV *)mg->mg_obj,
                         SvREFCNT_inc_simple_NN(omg->mg_obj)
                        );
                }
                else
                    av_push((AV *)mg->mg_obj,SvREFCNT_inc_simple_NN(dsv));
            }
            else
            {
                SSize_t i;
                sv_magic(
                 sref, omg ? omg->mg_obj : dsv, PERL_MAGIC_isa, NULL, 0
                );
                for (i = 0; i <= AvFILL(sref); ++i) {
                    SV **elem = av_fetch ((AV*)sref, i, 0);
                    if (elem) {
                        sv_magic(
                          *elem, sref, PERL_MAGIC_isaelem, NULL, i
                        );
                    }
                }
                mg = mg_find(sref, PERL_MAGIC_isa);
            }
            /* Since the *ISA assignment could have affected more than
               one stash, don't call mro_isa_changed_in directly, but let
               magic_clearisa do it for us, as it already has the logic for
               dealing with globs vs arrays of globs. */
            assert(mg);
            Perl_magic_clearisa(aTHX_ NULL, mg);
        }
        else if (stype == SVt_PVIO) {
            DEBUG_o(Perl_deb(aTHX_ "gv_setref clearing PL_stashcache\n"));
            /* It's a cache. It will rebuild itself quite happily.
               It's a lot of effort to work out exactly which key (or keys)
               might be invalidated by the creation of the this file handle.
            */
            hv_clear(PL_stashcache);
        }
        break;
    }
    if (!intro) SvREFCNT_dec(dref);
    if (SvTAINTED(ssv))
        SvTAINT(dsv);
    return;
}




#ifdef PERL_DEBUG_READONLY_COW
# include <sys/mman.h>

# ifndef PERL_MEMORY_DEBUG_HEADER_SIZE
#  define PERL_MEMORY_DEBUG_HEADER_SIZE 0
# endif

void
Perl_sv_buf_to_ro(pTHX_ SV *sv)
{
    struct perl_memory_debug_header * const header =
        (struct perl_memory_debug_header *)(SvPVX(sv)-PERL_MEMORY_DEBUG_HEADER_SIZE);
    const MEM_SIZE len = header->size;
    PERL_ARGS_ASSERT_SV_BUF_TO_RO;
# ifdef PERL_TRACK_MEMPOOL
    if (!header->readonly) header->readonly = 1;
# endif
    if (mprotect(header, len, PROT_READ))
        Perl_warn(aTHX_ "mprotect RW for COW string %p %lu failed with %d",
                         header, len, errno);
}

static void
S_sv_buf_to_rw(pTHX_ SV *sv)
{
    struct perl_memory_debug_header * const header =
        (struct perl_memory_debug_header *)(SvPVX(sv)-PERL_MEMORY_DEBUG_HEADER_SIZE);
    const MEM_SIZE len = header->size;
    PERL_ARGS_ASSERT_SV_BUF_TO_RW;
    if (mprotect(header, len, PROT_READ|PROT_WRITE))
        Perl_warn(aTHX_ "mprotect for COW string %p %lu failed with %d",
                         header, len, errno);
# ifdef PERL_TRACK_MEMPOOL
    header->readonly = 0;
# endif
}

#else
# define sv_buf_to_ro(sv)	NOOP
# define sv_buf_to_rw(sv)	NOOP
#endif

void
Perl_sv_setsv_flags(pTHX_ SV *dsv, SV* ssv, const I32 flags)
{
    U32 sflags;
    int dtype;
    svtype stype;
    unsigned int both_type;

    PERL_ARGS_ASSERT_SV_SETSV_FLAGS;

    if (UNLIKELY( ssv == dsv ))
        return;

    if (UNLIKELY( !ssv ))
        ssv = &PL_sv_undef;

    stype = SvTYPE(ssv);
    dtype = SvTYPE(dsv);
    both_type = (stype | dtype);

    /* with these values, we can check that both SVs are NULL/IV (and not
     * freed) just by testing the or'ed types */
    STATIC_ASSERT_STMT(SVt_NULL == 0);
    STATIC_ASSERT_STMT(SVt_IV   == 1);
    STATIC_ASSERT_STMT(SVt_NV   == 2);
#if NVSIZE <= IVSIZE
    if (both_type <= 2) {
#else
    if (both_type <= 1) {
#endif
        /* both src and dst are UNDEF/IV/RV - maybe NV depending on config,
         * so we can do a lot of special-casing */
        U32 sflags;
        U32 new_dflags;
        SV *old_rv = NULL;

        /* minimal subset of SV_CHECK_THINKFIRST_COW_DROP(dsv) */
        if (SvREADONLY(dsv))
            Perl_croak_no_modify();
        if (SvROK(dsv)) {
            if (SvWEAKREF(dsv))
                sv_unref_flags(dsv, 0);
            else
                old_rv = SvRV(dsv);
            SvROK_off(dsv);
        }

        assert(!SvGMAGICAL(ssv));
        assert(!SvGMAGICAL(dsv));

        sflags = SvFLAGS(ssv);
        if (sflags & (SVf_IOK|SVf_ROK)) {
            SET_SVANY_FOR_BODYLESS_IV(dsv);
            new_dflags = SVt_IV;

            if (sflags & SVf_ROK) {
                dsv->sv_u.svu_rv = SvREFCNT_inc(SvRV(ssv));
                new_dflags |= SVf_ROK;
            }
            else {
                /* both src and dst are <= SVt_IV, so sv_any points to the
                 * head; so access the head directly
                 */
                assert(    &(ssv->sv_u.svu_iv)
                        == &(((XPVIV*) SvANY(ssv))->xiv_iv));
                assert(    &(dsv->sv_u.svu_iv)
                        == &(((XPVIV*) SvANY(dsv))->xiv_iv));
                dsv->sv_u.svu_iv = ssv->sv_u.svu_iv;
                new_dflags |= (SVf_IOK|SVp_IOK|(sflags & SVf_IVisUV));
            }
        }
#if NVSIZE <= IVSIZE
        else if (sflags & SVf_NOK) {
            SET_SVANY_FOR_BODYLESS_NV(dsv);
            new_dflags = (SVt_NV|SVf_NOK|SVp_NOK);

            /* both src and dst are <= SVt_MV, so sv_any points to the
             * head; so access the head directly
             */
            assert(    &(ssv->sv_u.svu_nv)
                    == &(((XPVNV*) SvANY(ssv))->xnv_u.xnv_nv));
            assert(    &(dsv->sv_u.svu_nv)
                    == &(((XPVNV*) SvANY(dsv))->xnv_u.xnv_nv));
            dsv->sv_u.svu_nv = ssv->sv_u.svu_nv;
        }
#endif
        else {
            new_dflags = dtype; /* turn off everything except the type */
        }
        /* Should preserve some dsv flags - at least SVs_TEMP, */
        /* so cannot just set SvFLAGS(dsv) = new_dflags        */
        /* First clear the flags that we do want to clobber    */
        (void)SvOK_off(dsv);
        SvFLAGS(dsv) &= ~SVTYPEMASK;
        /* Now set the new flags */
        SvFLAGS(dsv) |= new_dflags;

        SvREFCNT_dec(old_rv);
        return;
    }

    if (UNLIKELY(both_type == SVTYPEMASK)) {
        if (SvIS_FREED(dsv)) {
            Perl_croak(aTHX_ "panic: attempt to copy value %" SVf
                       " to a freed scalar %p", SVfARG(ssv), (void *)dsv);
        }
        if (SvIS_FREED(ssv)) {
            Perl_croak(aTHX_ "panic: attempt to copy freed scalar %p to %p",
                       (void*)ssv, (void*)dsv);
        }
    }



    SV_CHECK_THINKFIRST_COW_DROP(dsv);
    dtype = SvTYPE(dsv); /* THINKFIRST may have changed type */

    /* There's a lot of redundancy below but we're going for speed here
     * Note: some of the cases below do return; rather than break; so the
     * if-elseif-else logic below this switch does not see all cases. */

    switch (stype) {
    case SVt_NULL:
      undef_sstr:
        if (LIKELY( dtype != SVt_PVGV && dtype != SVt_PVLV )) {
            (void)SvOK_off(dsv);
            return;
        }
        break;
    case SVt_IV:
        if (SvIOK(ssv)) {
            switch (dtype) {
            case SVt_NULL:
                /* For performance, we inline promoting to type SVt_IV. */
                /* We're starting from SVt_NULL, so provided that define is
                 * actual 0, we don't have to unset any SV type flags
                 * to promote to SVt_IV. */
                STATIC_ASSERT_STMT(SVt_NULL == 0);
                SET_SVANY_FOR_BODYLESS_IV(dsv);
                SvFLAGS(dsv) |= SVt_IV;
                break;
            case SVt_NV:
            case SVt_PV:
                sv_upgrade(dsv, SVt_PVIV);
                break;
            case SVt_PVGV:
            case SVt_PVLV:
                goto end_of_first_switch;
            }
            (void)SvIOK_only(dsv);
            SvIV_set(dsv,  SvIVX(ssv));
            if (SvIsUV(ssv))
                SvIsUV_on(dsv);
            /* SvTAINTED can only be true if the SV has taint magic, which in
               turn means that the SV type is PVMG (or greater). This is the
               case statement for SVt_IV, so this cannot be true (whatever gcov
               may say).  */
            assert(!SvTAINTED(ssv));
            return;
        }
        if (!SvROK(ssv))
            goto undef_sstr;
        if (dtype < SVt_PV && dtype != SVt_IV)
            sv_upgrade(dsv, SVt_IV);
        break;

    case SVt_NV:
        if (LIKELY( SvNOK(ssv) )) {
            switch (dtype) {
            case SVt_NULL:
            case SVt_IV:
                sv_upgrade(dsv, SVt_NV);
                break;
            case SVt_PV:
            case SVt_PVIV:
                sv_upgrade(dsv, SVt_PVNV);
                break;
            case SVt_PVGV:
            case SVt_PVLV:
                goto end_of_first_switch;
            }
            SvNV_set(dsv, SvNVX(ssv));
            (void)SvNOK_only(dsv);
            /* SvTAINTED can only be true if the SV has taint magic, which in
               turn means that the SV type is PVMG (or greater). This is the
               case statement for SVt_NV, so this cannot be true (whatever gcov
               may say).  */
            assert(!SvTAINTED(ssv));
            return;
        }
        goto undef_sstr;

    case SVt_PV:
        if (dtype < SVt_PV)
            sv_upgrade(dsv, SVt_PV);
        break;
    case SVt_PVIV:
        if (dtype < SVt_PVIV)
            sv_upgrade(dsv, SVt_PVIV);
        break;
    case SVt_PVNV:
        if (dtype < SVt_PVNV)
            sv_upgrade(dsv, SVt_PVNV);
        break;

    case SVt_INVLIST:
        invlist_clone(ssv, dsv);
        return;
    default:
        {
        const char * const type = sv_reftype(ssv,0);
        if (PL_op)
            /* diag_listed_as: Bizarre copy of %s */
            Perl_croak(aTHX_ "Bizarre copy of %s in %s", type, OP_DESC(PL_op));
        else
            Perl_croak(aTHX_ "Bizarre copy of %s", type);
        }
        NOT_REACHED; /* NOTREACHED */

    case SVt_REGEXP:
      upgregexp:
        if (dtype < SVt_REGEXP)
            sv_upgrade(dsv, SVt_REGEXP);
        break;

    case SVt_PVLV:
    case SVt_PVGV:
    case SVt_PVMG:
        if (SvGMAGICAL(ssv) && (flags & SV_GMAGIC)) {
            mg_get(ssv);
            if (SvTYPE(ssv) != stype)
                stype = SvTYPE(ssv);
        }
        if (isGV_with_GP(ssv) && dtype <= SVt_PVLV) {
                    glob_assign_glob(dsv, ssv, dtype);
                    return;
        }
        if (stype == SVt_PVLV)
        {
            if (isREGEXP(ssv)) goto upgregexp;
            SvUPGRADE(dsv, SVt_PVNV);
        }
        else
            SvUPGRADE(dsv, (svtype)stype);
    }
 end_of_first_switch:

    /* dsv may have been upgraded.  */
    dtype = SvTYPE(dsv);
    sflags = SvFLAGS(ssv);

    if (UNLIKELY( dtype == SVt_PVCV )) {
        /* Assigning to a subroutine sets the prototype.  */
        if (SvOK(ssv)) {
            STRLEN len;
            const char *const ptr = SvPV_const(ssv, len);

            SvGROW(dsv, len + 1);
            Copy(ptr, SvPVX(dsv), len + 1, char);
            SvCUR_set(dsv, len);
            SvPOK_only(dsv);
            SvFLAGS(dsv) |= sflags & SVf_UTF8;
            CvAUTOLOAD_off(dsv);
        } else {
            SvOK_off(dsv);
        }
    }
    else if (UNLIKELY(dtype == SVt_PVAV || dtype == SVt_PVHV
             || dtype == SVt_PVFM))
    {
        const char * const type = sv_reftype(dsv,0);
        if (PL_op)
            /* diag_listed_as: Cannot copy to %s */
            Perl_croak(aTHX_ "Cannot copy to %s in %s", type, OP_DESC(PL_op));
        else
            Perl_croak(aTHX_ "Cannot copy to %s", type);
    } else if (sflags & SVf_ROK) {
        if (isGV_with_GP(dsv)
            && SvTYPE(SvRV(ssv)) == SVt_PVGV && isGV_with_GP(SvRV(ssv))) {
            ssv = SvRV(ssv);
            if (ssv == dsv) {
                if (GvIMPORTED(dsv) != GVf_IMPORTED
                    && CopSTASH_ne(PL_curcop, GvSTASH(dsv)))
                {
                    GvIMPORTED_on(dsv);
                }
                GvMULTI_on(dsv);
                return;
            }
            glob_assign_glob(dsv, ssv, dtype);
            return;
        }

        if (dtype >= SVt_PV) {
            if (isGV_with_GP(dsv)) {
                gv_setref(dsv, ssv);
                return;
            }
            if (SvPVX_const(dsv)) {
                SvPV_free(dsv);
                SvLEN_set(dsv, 0);
                SvCUR_set(dsv, 0);
            }
        }
        (void)SvOK_off(dsv);
        SvRV_set(dsv, SvREFCNT_inc(SvRV(ssv)));
        SvFLAGS(dsv) |= sflags & SVf_ROK;
        assert(!(sflags & SVp_NOK));
        assert(!(sflags & SVp_IOK));
        assert(!(sflags & SVf_NOK));
        assert(!(sflags & SVf_IOK));
    }
    else if (isGV_with_GP(dsv)) {
        if (!(sflags & SVf_OK)) {
            Perl_ck_warner(aTHX_ packWARN(WARN_MISC),
                           "Undefined value assigned to typeglob");
        }
        else {
            GV *gv = gv_fetchsv_nomg(ssv, GV_ADD, SVt_PVGV);
            if (dsv != (const SV *)gv) {
                const char * const name = GvNAME((const GV *)dsv);
                const STRLEN len = GvNAMELEN(dsv);
                HV *old_stash = NULL;
                bool reset_isa = FALSE;
                if ((len > 1 && name[len-2] == ':' && name[len-1] == ':')
                 || (len == 1 && name[0] == ':')) {
                    /* Set aside the old stash, so we can reset isa caches
                       on its subclasses. */
                    if((old_stash = GvHV(dsv))) {
                        /* Make sure we do not lose it early. */
                        SvREFCNT_inc_simple_void_NN(
                         sv_2mortal((SV *)old_stash)
                        );
                    }
                    reset_isa = TRUE;
                }

                if (GvGP(dsv)) {
                    SvREFCNT_inc_simple_void_NN(sv_2mortal(dsv));
                    gp_free(MUTABLE_GV(dsv));
                }
                GvGP_set(dsv, gp_ref(GvGP(gv)));

                if (reset_isa) {
                    HV * const stash = GvHV(dsv);
                    if(
                        old_stash ? HvHasENAME(old_stash) : cBOOL(stash)
                    )
                        mro_package_moved(
                         stash, old_stash,
                         (GV *)dsv, 0
                        );
                }
            }
        }
    }
    else if ((dtype == SVt_REGEXP || dtype == SVt_PVLV)
          && (stype == SVt_REGEXP || isREGEXP(ssv))) {
        reg_temp_copy((REGEXP*)dsv, (REGEXP*)ssv);
    }
    else if (sflags & SVp_POK) {
        const STRLEN cur = SvCUR(ssv);
        const STRLEN len = SvLEN(ssv);

        /*
         * We have three basic ways to copy the string:
         *
         *  1. Swipe
         *  2. Copy-on-write
         *  3. Actual copy
         *
         * Which we choose is based on various factors.  The following
         * things are listed in order of speed, fastest to slowest:
         *  - Swipe
         *  - Copying a short string
         *  - Copy-on-write bookkeeping
         *  - malloc
         *  - Copying a long string
         *
         * We swipe the string (steal the string buffer) if the SV on the
         * rhs is about to be freed anyway (TEMP and refcnt==1).  This is a
         * big win on long strings.  It should be a win on short strings if
         * SvPVX_const(dsv) has to be allocated.  If not, it should not
         * slow things down, as SvPVX_const(ssv) would have been freed
         * soon anyway.
         *
         * We also steal the buffer from a PADTMP (operator target) if it
         * is ‘long enough’.  For short strings, a swipe does not help
         * here, as it causes more malloc calls the next time the target
         * is used.  Benchmarks show that even if SvPVX_const(dsv) has to
         * be allocated it is still not worth swiping PADTMPs for short
         * strings, as the savings here are small.
         *
         * If swiping is not an option, then we see whether it is worth using
         * copy-on-write.  If the lhs already has a buffer big enough and the
         * string is short, we skip it and fall back to method 3, since memcpy
         * is faster for short strings than the later bookkeeping overhead that
         * copy-on-write entails.

         * If the rhs is not a copy-on-write string yet, then we also
         * consider whether the buffer is too large relative to the string
         * it holds.  Some operations such as readline allocate a large
         * buffer in the expectation of reusing it.  But turning such into
         * a COW buffer is counter-productive because it increases memory
         * usage by making readline allocate a new large buffer the sec-
         * ond time round.  So, if the buffer is too large, again, we use
         * method 3 (copy).
         *
         * Finally, if there is no buffer on the left, or the buffer is too
         * small, then we use copy-on-write and make both SVs share the
         * string buffer.
         *
         */

        /* Whichever path we take through the next code, we want this true,
           and doing it now facilitates the COW check.  */
        (void)SvPOK_only(dsv);

        if (
                 (              /* Either ... */
                                /* slated for free anyway (and not COW)? */
                    (sflags & (SVs_TEMP|SVf_IsCOW)) == SVs_TEMP
                                /* or a swipable TARG */
                 || ((sflags &
                           (SVs_PADTMP|SVf_READONLY|SVf_PROTECT|SVf_IsCOW))
                       == SVs_PADTMP
                                /* whose buffer is worth stealing */
                     && CHECK_COWBUF_THRESHOLD(cur,len)
                    )
                 ) &&
                 !(sflags & SVf_OOK) &&   /* and not involved in OOK hack? */
                 (!(flags & SV_NOSTEAL)) &&
                                        /* and we're allowed to steal temps */
                 SvREFCNT(ssv) == 1 &&   /* and no other references to it? */
                 len)             /* and really is a string */
        {	/* Passes the swipe test.  */
            if (SvPVX_const(dsv))	/* we know that dtype >= SVt_PV */
                SvPV_free(dsv);
            SvPV_set(dsv, SvPVX_mutable(ssv));
            SvLEN_set(dsv, SvLEN(ssv));
            SvCUR_set(dsv, SvCUR(ssv));

            SvTEMP_off(dsv);
            (void)SvOK_off(ssv);	/* NOTE: nukes most SvFLAGS on ssv */
            SvPV_set(ssv, NULL);
            SvLEN_set(ssv, 0);
            SvCUR_set(ssv, 0);
            SvTEMP_off(ssv);
        }
        /* We must check for SvIsCOW_static() even without
         * SV_COW_SHARED_HASH_KEYS being set or else we'll break SvIsBOOL()
         */
        else if (SvIsCOW_static(ssv)) {
            if (SvPVX_const(dsv)) {     /* we know that dtype >= SVt_PV */
                SvPV_free(dsv);
            }
            SvPV_set(dsv, SvPVX(ssv));
            SvLEN_set(dsv, 0);
            SvCUR_set(dsv, cur);
            SvFLAGS(dsv) |= (SVf_IsCOW|SVppv_STATIC);
        }
        else if (flags & SV_COW_SHARED_HASH_KEYS
              &&
#ifdef PERL_COPY_ON_WRITE
                 (sflags & SVf_IsCOW
                   ? (!len ||
                       (  (CHECK_COWBUF_THRESHOLD(cur,len) || SvLEN(dsv) < cur+1)
                          /* If this is a regular (non-hek) COW, only so
                             many COW "copies" are possible. */
                       && CowREFCNT(ssv) != SV_COW_REFCNT_MAX  ))
                   : (  (sflags & CAN_COW_MASK) == CAN_COW_FLAGS
                     && !(SvFLAGS(dsv) & SVf_BREAK)
                     && CHECK_COW_THRESHOLD(cur,len) && cur+1 < len
                     && (CHECK_COWBUF_THRESHOLD(cur,len) || SvLEN(dsv) < cur+1)
                    ))
#else
                 sflags & SVf_IsCOW
              && !(SvFLAGS(dsv) & SVf_BREAK)
#endif
            ) {
            /* Either it's a shared hash key, or it's suitable for
               copy-on-write.  */
#ifdef DEBUGGING
            if (DEBUG_C_TEST) {
                PerlIO_printf(Perl_debug_log, "Copy on write: ssv --> dsv\n");
                sv_dump(ssv);
                sv_dump(dsv);
            }
#endif
#ifdef PERL_ANY_COW
            if (!(sflags & SVf_IsCOW)) {
                    SvIsCOW_on(ssv);
                    CowREFCNT(ssv) = 0;
            }
#endif
            if (SvPVX_const(dsv)) {	/* we know that dtype >= SVt_PV */
                SvPV_free(dsv);
            }

#ifdef PERL_ANY_COW
            if (len) {
                    if (sflags & SVf_IsCOW) {
                        sv_buf_to_rw(ssv);
                    }
                    CowREFCNT(ssv)++;
                    SvPV_set(dsv, SvPVX_mutable(ssv));
                    sv_buf_to_ro(ssv);
            } else
#endif
            {
                    /* SvIsCOW_shared_hash */
                    DEBUG_C(PerlIO_printf(Perl_debug_log,
                                          "Copy on write: Sharing hash\n"));

                    assert (SvTYPE(dsv) >= SVt_PV);
                    SvPV_set(dsv,
                             HEK_KEY(share_hek_hek(SvSHARED_HEK_FROM_PV(SvPVX_const(ssv)))));
            }
            SvLEN_set(dsv, len);
            SvCUR_set(dsv, cur);
            SvIsCOW_on(dsv);
        } else {
            /* Failed the swipe test, and we cannot do copy-on-write either.
               Have to copy the string.  */
            SvGROW(dsv, cur + 1);	/* inlined from sv_setpvn */
            Move(SvPVX_const(ssv),SvPVX(dsv),cur,char);
            SvCUR_set(dsv, cur);
            *SvEND(dsv) = '\0';
        }
        if (sflags & SVp_NOK) {
            SvNV_set(dsv, SvNVX(ssv));
            if ((sflags & SVf_NOK) && !(sflags & SVf_POK)) {
                /* Source was SVf_NOK|SVp_NOK|SVp_POK but not SVf_POK, meaning
                   a value set as floating point and later stringified, where
                  the value happens to be one of the few that we know aren't
                  affected by the numeric locale, hence we can cache the
                  stringification. Currently that's  +Inf, -Inf and NaN, but
                  conceivably we might extend this to -9 .. +9 (excluding -0).
                  So mark destination the same: */
                SvFLAGS(dsv) &= ~SVf_POK;
            }
        }
        if (sflags & SVp_IOK) {
            SvIV_set(dsv, SvIVX(ssv));
            if (sflags & SVf_IVisUV)
                SvIsUV_on(dsv);
            if ((sflags & SVf_IOK) && !(sflags & SVf_POK)) {
                /* Source was SVf_IOK|SVp_IOK|SVp_POK but not SVf_POK, meaning
                   a value set as an integer and later stringified. So mark
                   destination the same: */
                SvFLAGS(dsv) &= ~SVf_POK;
            }
        }
        SvFLAGS(dsv) |= sflags & (SVf_IOK|SVp_IOK|SVf_NOK|SVp_NOK|SVf_UTF8);
        {
            const MAGIC * const smg = SvVSTRING_mg(ssv);
            if (smg) {
                sv_magic(dsv, NULL, PERL_MAGIC_vstring,
                         smg->mg_ptr, smg->mg_len);
                SvRMAGICAL_on(dsv);
            }
        }
    }
    else if (sflags & (SVp_IOK|SVp_NOK)) {
        (void)SvOK_off(dsv);
        SvFLAGS(dsv) |= sflags & (SVf_IOK|SVp_IOK|SVf_IVisUV|SVf_NOK|SVp_NOK);
        if (sflags & SVp_IOK) {
            /* XXXX Do we want to set IsUV for IV(ROK)?  Be extra safe... */
            SvIV_set(dsv, SvIVX(ssv));
        }
        if (sflags & SVp_NOK) {
            SvNV_set(dsv, SvNVX(ssv));
        }
    }
    else {
        if (isGV_with_GP(ssv)) {
            gv_efullname3(dsv, MUTABLE_GV(ssv), "*");
        }
        else
            (void)SvOK_off(dsv);
    }
    if (SvTAINTED(ssv))
        SvTAINT(dsv);
}


/*
=for apidoc sv_set_undef

Equivalent to C<sv_setsv(sv, &PL_sv_undef)>, but more efficient.
Doesn't handle set magic.

The perl equivalent is C<$sv = undef;>. Note that it doesn't free any string
buffer, unlike C<undef $sv>.

Introduced in perl 5.25.12.

=cut
*/

void
Perl_sv_set_undef(pTHX_ SV *sv)
{
    U32 type = SvTYPE(sv);

    PERL_ARGS_ASSERT_SV_SET_UNDEF;

    /* shortcut, NULL, IV, RV */

    if (type <= SVt_IV) {
        assert(!SvGMAGICAL(sv));
        if (SvREADONLY(sv)) {
            /* does undeffing PL_sv_undef count as modifying a read-only
             * variable? Some XS code does this */
            if (sv == &PL_sv_undef)
                return;
            Perl_croak_no_modify();
        }

        if (SvROK(sv)) {
            if (SvWEAKREF(sv))
                sv_unref_flags(sv, 0);
            else {
                SV *rv = SvRV(sv);
                SvFLAGS(sv) = type; /* quickly turn off all flags */
                SvREFCNT_dec_NN(rv);
                return;
            }
        }
        SvFLAGS(sv) = type; /* quickly turn off all flags */
        return;
    }

    if (SvIS_FREED(sv))
        Perl_croak(aTHX_ "panic: attempt to undefine a freed scalar %p",
            (void *)sv);

    SV_CHECK_THINKFIRST_COW_DROP(sv);

    if (isGV_with_GP(sv))
        Perl_ck_warner(aTHX_ packWARN(WARN_MISC),
                       "Undefined value assigned to typeglob");
    else
        SvOK_off(sv);
}

/*
=for apidoc sv_set_true

Equivalent to C<sv_setsv(sv, &PL_sv_yes)>, but may be made more
efficient in the future. Doesn't handle set magic.

The perl equivalent is C<$sv = !0;>.

Introduced in perl 5.35.11.

=cut
*/

void
Perl_sv_set_true(pTHX_ SV *sv)
{
    PERL_ARGS_ASSERT_SV_SET_TRUE;
    sv_setsv(sv, &PL_sv_yes);
}

/*
=for apidoc sv_set_false

Equivalent to C<sv_setsv(sv, &PL_sv_no)>, but may be made more
efficient in the future. Doesn't handle set magic.

The perl equivalent is C<$sv = !1;>.

Introduced in perl 5.35.11.

=cut
*/

void
Perl_sv_set_false(pTHX_ SV *sv)
{
    PERL_ARGS_ASSERT_SV_SET_FALSE;
    sv_setsv(sv, &PL_sv_no);
}

/*
=for apidoc sv_set_bool

Equivalent to C<sv_setsv(sv, bool_val ? &Pl_sv_yes : &PL_sv_no)>, but
may be made more efficient in the future. Doesn't handle set magic.

The perl equivalent is C<$sv = !!$expr;>.

Introduced in perl 5.35.11.

=cut
*/

void
Perl_sv_set_bool(pTHX_ SV *sv, const bool bool_val)
{
    PERL_ARGS_ASSERT_SV_SET_BOOL;
    sv_setsv(sv, bool_val ? &PL_sv_yes : &PL_sv_no);
}


void
Perl_sv_setsv_mg(pTHX_ SV *const dsv, SV *const ssv)
{
    PERL_ARGS_ASSERT_SV_SETSV_MG;

    sv_setsv(dsv,ssv);
    SvSETMAGIC(dsv);
}

#ifdef PERL_ANY_COW
#  define SVt_COW SVt_PV
SV *
Perl_sv_setsv_cow(pTHX_ SV *dsv, SV *ssv)
{
    STRLEN cur = SvCUR(ssv);
    STRLEN len = SvLEN(ssv);
    char *new_pv;
    U32 new_flags = (SVt_COW|SVf_POK|SVp_POK|SVf_IsCOW);
#if defined(PERL_DEBUG_READONLY_COW) && defined(PERL_COPY_ON_WRITE)
    const bool already = cBOOL(SvIsCOW(ssv));
#endif

    PERL_ARGS_ASSERT_SV_SETSV_COW;
#ifdef DEBUGGING
    if (DEBUG_C_TEST) {
        PerlIO_printf(Perl_debug_log, "Fast copy on write: %p -> %p\n",
                      (void*)ssv, (void*)dsv);
        sv_dump(ssv);
        if (dsv)
                    sv_dump(dsv);
    }
#endif
    if (dsv) {
        if (SvTHINKFIRST(dsv))
            sv_force_normal_flags(dsv, SV_COW_DROP_PV);
        else if (SvPVX_const(dsv))
            Safefree(SvPVX_mutable(dsv));
        SvUPGRADE(dsv, SVt_COW);
    }
    else
        dsv = newSV_type(SVt_COW);

    assert (SvPOK(ssv));
    assert (SvPOKp(ssv));

    if (SvIsCOW(ssv)) {
        if (SvIsCOW_shared_hash(ssv)) {
            /* source is a COW shared hash key.  */
            DEBUG_C(PerlIO_printf(Perl_debug_log,
                                  "Fast copy on write: Sharing hash\n"));
            new_pv = HEK_KEY(share_hek_hek(SvSHARED_HEK_FROM_PV(SvPVX_const(ssv))));
            goto common_exit;
        }
        else if (SvIsCOW_static(ssv)) {
            /* source is static constant; preserve this */
            new_pv = SvPVX(ssv);
            new_flags |= SVppv_STATIC;
            goto common_exit;
        }
        assert(SvCUR(ssv)+1 < SvLEN(ssv));
        assert(CowREFCNT(ssv) < SV_COW_REFCNT_MAX);
    } else {
        assert ((SvFLAGS(ssv) & CAN_COW_MASK) == CAN_COW_FLAGS);
        SvUPGRADE(ssv, SVt_COW);
        SvIsCOW_on(ssv);
        DEBUG_C(PerlIO_printf(Perl_debug_log,
                              "Fast copy on write: Converting ssv to COW\n"));
        CowREFCNT(ssv) = 0;
    }
#  ifdef PERL_DEBUG_READONLY_COW
    if (already) sv_buf_to_rw(ssv);
#  endif
    CowREFCNT(ssv)++;
    new_pv = SvPVX_mutable(ssv);
    sv_buf_to_ro(ssv);

  common_exit:
    SvPV_set(dsv, new_pv);
    SvFLAGS(dsv) = new_flags;
    if (SvUTF8(ssv))
        SvUTF8_on(dsv);
    SvLEN_set(dsv, len);
    SvCUR_set(dsv, cur);
#ifdef DEBUGGING
    if (DEBUG_C_TEST)
                sv_dump(dsv);
#endif
    return dsv;
}
#endif

/*
=for apidoc sv_setpv_bufsize

Sets the SV to be a string of cur bytes length, with at least
len bytes available. Ensures that there is a null byte at SvEND.
Returns a char * pointer to the SvPV buffer.

=cut
*/

char *
Perl_sv_setpv_bufsize(pTHX_ SV *const sv, const STRLEN cur, const STRLEN len)
{
    char *pv;

    PERL_ARGS_ASSERT_SV_SETPV_BUFSIZE;

    SV_CHECK_THINKFIRST_COW_DROP(sv);
    SvUPGRADE(sv, SVt_PV);
    pv = SvGROW(sv, len + 1);
    SvCUR_set(sv, cur);
    *(SvEND(sv))= '\0';
    (void)SvPOK_only_UTF8(sv);                /* validate pointer */

    SvTAINT(sv);
    if (SvTYPE(sv) == SVt_PVCV) CvAUTOLOAD_off(sv);
    return pv;
}

/*
=for apidoc            sv_setpv
=for apidoc_item       sv_setpv_mg
=for apidoc_item       sv_setpvn
=for apidoc_item       sv_setpvn_fresh
=for apidoc_item       sv_setpvn_mg
=for apidoc_item |void|sv_setpvs|SV* sv|"literal string"
=for apidoc_item |void|sv_setpvs_mg|SV* sv|"literal string"

These copy a string into the SV C<sv>, making sure it is C<L</SvPOK_only>>.

In the C<pvs> forms, the string must be a C literal string, enclosed in double
quotes.

In the C<pvn> forms, the first byte of the string is pointed to by C<ptr>, and
C<len> indicates the number of bytes to be copied, potentially including
embedded C<NUL> characters.

In the plain C<pv> forms, C<ptr> points to a NUL-terminated C string.  That is,
it points to the first byte of the string, and the copy proceeds up through the
first encountered C<NUL> byte.

In the forms that take a C<ptr> argument, if it is NULL, the SV will become
undefined.

The UTF-8 flag is not changed by these functions.  A terminating NUL byte is
guaranteed in the result.

The C<_mg> forms handle 'set' magic; the other forms skip all magic.

C<sv_setpvn_fresh> is a cut-down alternative to C<sv_setpvn>, intended ONLY
to be used with a fresh sv that has been upgraded to a SVt_PV, SVt_PVIV,
SVt_PVNV, or SVt_PVMG.

=cut
*/

void
Perl_sv_setpvn(pTHX_ SV *const sv, const char *const ptr, const STRLEN len)
{
    char *dptr;

    PERL_ARGS_ASSERT_SV_SETPVN;

    SV_CHECK_THINKFIRST_COW_DROP(sv);
    if (isGV_with_GP(sv))
        Perl_croak_no_modify();
    if (!ptr) {
        (void)SvOK_off(sv);
        return;
    }
    else {
        /* len is STRLEN which is unsigned, need to copy to signed */
        const IV iv = len;
        if (iv < 0)
            Perl_croak(aTHX_ "panic: sv_setpvn called with negative strlen %"
                       IVdf, iv);
    }
    SvUPGRADE(sv, SVt_PV);

    dptr = SvGROW(sv, len + 1);
    Move(ptr,dptr,len,char);
    dptr[len] = '\0';
    SvCUR_set(sv, len);
    (void)SvPOK_only_UTF8(sv);		/* validate pointer */
    SvTAINT(sv);
    if (SvTYPE(sv) == SVt_PVCV) CvAUTOLOAD_off(sv);
}

void
Perl_sv_setpvn_mg(pTHX_ SV *const sv, const char *const ptr, const STRLEN len)
{
    PERL_ARGS_ASSERT_SV_SETPVN_MG;

    sv_setpvn(sv,ptr,len);
    SvSETMAGIC(sv);
}

void
Perl_sv_setpvn_fresh(pTHX_ SV *const sv, const char *const ptr, const STRLEN len)
{
    char *dptr;

    PERL_ARGS_ASSERT_SV_SETPVN_FRESH;
    assert(SvTYPE(sv) >= SVt_PV && SvTYPE(sv) <= SVt_PVMG);
    assert(!SvTHINKFIRST(sv));
    assert(!isGV_with_GP(sv));

    if (ptr) {
        const IV iv = len;
        /* len is STRLEN which is unsigned, need to copy to signed */
        if (iv < 0)
            Perl_croak(aTHX_ "panic: sv_setpvn_fresh called with negative strlen %"
                       IVdf, iv);

        dptr = sv_grow_fresh(sv, len + 1);
        Move(ptr,dptr,len,char);
        dptr[len] = '\0';
        SvCUR_set(sv, len);
        SvPOK_on(sv);
        SvTAINT(sv);
    }
}

void
Perl_sv_setpv(pTHX_ SV *const sv, const char *const ptr)
{
    STRLEN len;

    PERL_ARGS_ASSERT_SV_SETPV;

    SV_CHECK_THINKFIRST_COW_DROP(sv);
    if (!ptr) {
        (void)SvOK_off(sv);
        return;
    }
    len = strlen(ptr);
    SvUPGRADE(sv, SVt_PV);

    SvGROW(sv, len + 1);
    Move(ptr,SvPVX(sv),len+1,char);
    SvCUR_set(sv, len);
    (void)SvPOK_only_UTF8(sv);		/* validate pointer */
    SvTAINT(sv);
    if (SvTYPE(sv) == SVt_PVCV) CvAUTOLOAD_off(sv);
}

void
Perl_sv_setpv_mg(pTHX_ SV *const sv, const char *const ptr)
{
    PERL_ARGS_ASSERT_SV_SETPV_MG;

    sv_setpv(sv,ptr);
    SvSETMAGIC(sv);
}

void
Perl_sv_sethek(pTHX_ SV *const sv, const HEK *const hek)
{
    PERL_ARGS_ASSERT_SV_SETHEK;

    if (!hek) {
        return;
    }

    if (HEK_LEN(hek) == HEf_SVKEY) {
        sv_setsv(sv, *(SV**)HEK_KEY(hek));
        return;
    } else {
        const int flags = HEK_FLAGS(hek);
        if (flags & HVhek_WASUTF8) {
            STRLEN utf8_len = HEK_LEN(hek);
            char *as_utf8 = (char *)bytes_to_utf8((U8*)HEK_KEY(hek), &utf8_len);
            sv_usepvn_flags(sv, as_utf8, utf8_len, SV_HAS_TRAILING_NUL);
            SvUTF8_on(sv);
            return;
        } else if (flags & HVhek_NOTSHARED) {
            sv_setpvn(sv, HEK_KEY(hek), HEK_LEN(hek));
            if (HEK_UTF8(hek))
                SvUTF8_on(sv);
            else SvUTF8_off(sv);
            return;
        }
        {
            SV_CHECK_THINKFIRST_COW_DROP(sv);
            SvUPGRADE(sv, SVt_PV);
            SvPV_free(sv);
            SvPV_set(sv,(char *)HEK_KEY(share_hek_hek(hek)));
            SvCUR_set(sv, HEK_LEN(hek));
            SvLEN_set(sv, 0);
            SvIsCOW_on(sv);
            SvPOK_on(sv);
            if (HEK_UTF8(hek))
                SvUTF8_on(sv);
            else SvUTF8_off(sv);
            return;
        }
    }
}


/*
=for apidoc      sv_usepvn
=for apidoc_item sv_usepvn_flags
=for apidoc_item sv_usepvn_mg

These tell an SV to use C<ptr> for its string value.  Normally SVs have
their string stored inside the SV, but these tell the SV to use an
external string instead.

C<ptr> should point to memory that was allocated
by L</C<Newx>>.  It must be
the start of a C<Newx>-ed block of memory, and not a pointer to the
middle of it (beware of L<C<OOK>|perlguts/Offsets> and copy-on-write),
and not be from a non-C<Newx> memory allocator like C<malloc>.  The
string length, C<len>, must be supplied.  By default this function
will L</C<Renew>> (i.e. realloc, move) the memory pointed to by C<ptr>,
so that the pointer should not be freed or used by the programmer after giving
it to C<sv_usepvn>, and neither should any pointers from "behind" that pointer
(I<e.g.>, S<C<ptr> + 1>) be used.

In the C<sv_usepvn_flags> form, if S<C<flags & SV_SMAGIC>> is true,
C<SvSETMAGIC> is called before returning.
And if S<C<flags & SV_HAS_TRAILING_NUL>> is true, then C<ptr[len]> must be
C<NUL>, and the realloc will be skipped (I<i.e.>, the buffer is actually at
least 1 byte longer than C<len>, and already meets the requirements for storing
in C<SvPVX>).

C<sv_usepvn> is merely C<sv_usepvn_flags> with C<flags> set to 0, so 'set'
magic is skipped.

C<sv_usepvn_mg> is merely C<sv_usepvn_flags> with C<flags> set to C<SV_SMAGIC>,
so 'set' magic is performed.

=for apidoc Amnh||SV_SMAGIC
=for apidoc Amnh||SV_HAS_TRAILING_NUL

=cut
*/

void
Perl_sv_usepvn_flags(pTHX_ SV *const sv, char *ptr, const STRLEN len, const U32 flags)
{
    STRLEN allocate;

    PERL_ARGS_ASSERT_SV_USEPVN_FLAGS;

    SV_CHECK_THINKFIRST_COW_DROP(sv);
    SvUPGRADE(sv, SVt_PV);
    if (!ptr) {
        (void)SvOK_off(sv);
        if (flags & SV_SMAGIC)
            SvSETMAGIC(sv);
        return;
    }
    if (SvPVX_const(sv))
        SvPV_free(sv);

#ifdef DEBUGGING
    if (flags & SV_HAS_TRAILING_NUL)
        assert(ptr[len] == '\0');
#endif

    allocate = (flags & SV_HAS_TRAILING_NUL)
        ? len + 1 :
#ifdef Perl_safesysmalloc_size
        len + 1;
#else
        PERL_STRLEN_ROUNDUP(len + 1);
#endif
    if (flags & SV_HAS_TRAILING_NUL) {
        /* It's long enough - do nothing.
           Specifically Perl_newCONSTSUB is relying on this.  */
    } else {
#ifdef DEBUGGING
        /* Force a move to shake out bugs in callers.  */
        char *new_ptr = (char*)safemalloc(allocate);
        Copy(ptr, new_ptr, len, char);
        PoisonFree(ptr,len,char);
        Safefree(ptr);
        ptr = new_ptr;
#else
        ptr = (char*) saferealloc (ptr, allocate);
#endif
    }
#ifdef Perl_safesysmalloc_size
    SvLEN_set(sv, Perl_safesysmalloc_size(ptr));
#else
    SvLEN_set(sv, allocate);
#endif
    SvCUR_set(sv, len);
    SvPV_set(sv, ptr);
    if (!(flags & SV_HAS_TRAILING_NUL)) {
        ptr[len] = '\0';
    }
    (void)SvPOK_only_UTF8(sv);		/* validate pointer */
    SvTAINT(sv);
    if (flags & SV_SMAGIC)
        SvSETMAGIC(sv);
}


static void
S_sv_uncow(pTHX_ SV * const sv, const U32 flags)
{
    assert(SvIsCOW(sv));
    {
#ifdef PERL_ANY_COW
        const char * const pvx = SvPVX_const(sv);
        const STRLEN len = SvLEN(sv);
        const STRLEN cur = SvCUR(sv);
        const bool was_shared_hek = SvIsCOW_shared_hash(sv);

#ifdef DEBUGGING
        if (DEBUG_C_TEST) {
                PerlIO_printf(Perl_debug_log,
                              "Copy on write: Force normal %ld\n",
                              (long) flags);
                sv_dump(sv);
        }
#endif
        SvIsCOW_off(sv);
# ifdef PERL_COPY_ON_WRITE
        if (len) {
            /* Must do this first, since the CowREFCNT uses SvPVX and
            we need to write to CowREFCNT, or de-RO the whole buffer if we are
            the only owner left of the buffer. */
            sv_buf_to_rw(sv); /* NOOP if RO-ing not supported */
            {
                U8 cowrefcnt = CowREFCNT(sv);
                if(cowrefcnt != 0) {
                    cowrefcnt--;
                    CowREFCNT(sv) = cowrefcnt;
                    sv_buf_to_ro(sv);
                    goto copy_over;
                }
            }
            /* Else we are the only owner of the buffer. */
        }
        else
# endif
        {
            /* This SV doesn't own the buffer, so need to Newx() a new one:  */
            copy_over:
            SvPV_set(sv, NULL);
            SvCUR_set(sv, 0);
            SvLEN_set(sv, 0);
            if (flags & SV_COW_DROP_PV) {
                /* OK, so we don't need to copy our buffer.  */
                SvPOK_off(sv);
            } else {
                SvGROW(sv, cur + 1);
                Move(pvx,SvPVX(sv),cur,char);
                SvCUR_set(sv, cur);
                *SvEND(sv) = '\0';
            }
            if (was_shared_hek) {
                        unshare_hek(SvSHARED_HEK_FROM_PV(pvx));
            }
#ifdef DEBUGGING
            if (DEBUG_C_TEST)
                sv_dump(sv);
#endif
        }
#else
            const char * const pvx = SvPVX_const(sv);
            const STRLEN len = SvCUR(sv);
            SvIsCOW_off(sv);
            SvPV_set(sv, NULL);
            SvLEN_set(sv, 0);
            if (flags & SV_COW_DROP_PV) {
                /* OK, so we don't need to copy our buffer.  */
                SvPOK_off(sv);
            } else {
                SvGROW(sv, len + 1);
                Move(pvx,SvPVX(sv),len,char);
                *SvEND(sv) = '\0';
            }
            unshare_hek(SvSHARED_HEK_FROM_PV(pvx));
#endif
    }
}


/*
=for apidoc sv_force_normal_flags

Undo various types of fakery on an SV, where fakery means
"more than" a string: if the PV is a shared string, make
a private copy; if we're a ref, stop refing; if we're a glob, downgrade to
an C<xpvmg>; if we're a copy-on-write scalar, this is the on-write time when
we do the copy, and is also used locally; if this is a
vstring, drop the vstring magic.  If C<SV_COW_DROP_PV> is set
then a copy-on-write scalar drops its PV buffer (if any) and becomes
C<SvPOK_off> rather than making a copy.  (Used where this
scalar is about to be set to some other value.)  In addition,
the C<flags> parameter gets passed to C<sv_unref_flags()>
when unreffing.  C<sv_force_normal> calls this function
with flags set to 0.

This function is expected to be used to signal to perl that this SV is
about to be written to, and any extra book-keeping needs to be taken care
of.  Hence, it croaks on read-only values.

=for apidoc Amnh||SV_COW_DROP_PV

=cut
*/

void
Perl_sv_force_normal_flags(pTHX_ SV *const sv, const U32 flags)
{
    PERL_ARGS_ASSERT_SV_FORCE_NORMAL_FLAGS;

    if (SvREADONLY(sv))
        Perl_croak_no_modify();
    else if (SvIsCOW(sv) && LIKELY(SvTYPE(sv) != SVt_PVHV))
        S_sv_uncow(aTHX_ sv, flags);
    if (SvROK(sv))
        sv_unref_flags(sv, flags);
    else if (SvFAKE(sv) && isGV_with_GP(sv))
        sv_unglob(sv, flags);
    else if (SvFAKE(sv) && isREGEXP(sv)) {
        /* Need to downgrade the REGEXP to a simple(r) scalar. This is analogous
           to sv_unglob. We only need it here, so inline it.  */
        const bool islv = SvTYPE(sv) == SVt_PVLV;
        const svtype new_type =
          islv ? SVt_NULL : SvMAGIC(sv) || SvSTASH(sv) ? SVt_PVMG : SVt_PV;
        SV *const temp = newSV_type(new_type);
        regexp *old_rx_body;

        if (new_type == SVt_PVMG) {
            SvMAGIC_set(temp, SvMAGIC(sv));
            SvMAGIC_set(sv, NULL);
            SvSTASH_set(temp, SvSTASH(sv));
            SvSTASH_set(sv, NULL);
        }
        if (!islv)
            SvCUR_set(temp, SvCUR(sv));
        /* Remember that SvPVX is in the head, not the body. */
        assert(ReANY((REGEXP *)sv)->mother_re);

        if (islv) {
            /* LV-as-regex has sv->sv_any pointing to an XPVLV body,
             * whose xpvlenu_rx field points to the regex body */
            XPV *xpv = (XPV*)(SvANY(sv));
            old_rx_body = xpv->xpv_len_u.xpvlenu_rx;
            xpv->xpv_len_u.xpvlenu_rx = NULL;
        }
        else
            old_rx_body = ReANY((REGEXP *)sv);

        /* Their buffer is already owned by someone else. */
        if (flags & SV_COW_DROP_PV) {
            /* SvLEN is already 0.  For SVt_REGEXP, we have a brand new
               zeroed body.  For SVt_PVLV, we zeroed it above (len field
               a union with xpvlenu_rx) */
            assert(!SvLEN(islv ? sv : temp));
            sv->sv_u.svu_pv = 0;
        }
        else {
            sv->sv_u.svu_pv = savepvn(RX_WRAPPED((REGEXP *)sv), SvCUR(sv));
            SvLEN_set(islv ? sv : temp, SvCUR(sv)+1);
            SvPOK_on(sv);
        }

        /* Now swap the rest of the bodies. */

        SvFAKE_off(sv);
        if (!islv) {
            SvFLAGS(sv) &= ~SVTYPEMASK;
            SvFLAGS(sv) |= new_type;
            SvANY(sv) = SvANY(temp);
        }

        SvFLAGS(temp) &= ~(SVTYPEMASK);
        SvFLAGS(temp) |= SVt_REGEXP|SVf_FAKE;
        SvANY(temp) = old_rx_body;

        /* temp is now rebuilt as a correctly structured SVt_REGEXP, so this
         * will trigger a call to sv_clear() which will correctly free the
         * body. */
        SvREFCNT_dec_NN(temp);
    }
    else if (SvVOK(sv)) sv_unmagic(sv, PERL_MAGIC_vstring);
}

/*
=for apidoc sv_chop

Efficient removal of characters from the beginning of the string buffer.
C<SvPOK(sv)>, or at least C<SvPOKp(sv)>, must be true and C<ptr> must be a
pointer to somewhere inside the string buffer.  C<ptr> becomes the first
character of the adjusted string.  Uses the C<OOK> hack.  On return, only
C<SvPOK(sv)> and C<SvPOKp(sv)> among the C<OK> flags will be true.

Beware: after this function returns, C<ptr> and SvPVX_const(sv) may no longer
refer to the same chunk of data.

The unfortunate similarity of this function's name to that of Perl's C<chop>
operator is strictly coincidental.  This function works from the left;
C<chop> works from the right.

=cut
*/

void
Perl_sv_chop(pTHX_ SV *const sv, const char *const ptr)
{
    STRLEN delta;
    STRLEN old_delta;
    U8 *p;
#ifdef DEBUGGING
    const U8 *evacp;
    STRLEN evacn;
#endif
    STRLEN max_delta;

    PERL_ARGS_ASSERT_SV_CHOP;

    if (!ptr || !SvPOKp(sv))
        return;
    delta = ptr - SvPVX_const(sv);
    if (!delta) {
        /* Nothing to do.  */
        return;
    }
    max_delta = SvLEN(sv) ? SvLEN(sv) : SvCUR(sv);
    if (delta > max_delta)
        Perl_croak(aTHX_ "panic: sv_chop ptr=%p, start=%p, end=%p",
                   ptr, SvPVX_const(sv), SvPVX_const(sv) + max_delta);
    /* SvPVX(sv) may move in SV_CHECK_THINKFIRST(sv), so don't use ptr any more */
    SV_CHECK_THINKFIRST(sv);
    SvPOK_only_UTF8(sv);

    if (!SvOOK(sv)) {
        if (!SvLEN(sv)) { /* make copy of shared string */
            const char *pvx = SvPVX_const(sv);
            const STRLEN len = SvCUR(sv);
            SvGROW(sv, len + 1);
            Move(pvx,SvPVX(sv),len,char);
            *SvEND(sv) = '\0';
        }
        SvOOK_on(sv);
        old_delta = 0;
    } else {
        SvOOK_offset(sv, old_delta);
    }
    SvLEN_set(sv, SvLEN(sv) - delta);
    SvCUR_set(sv, SvCUR(sv) - delta);
    SvPV_set(sv, SvPVX(sv) + delta);

    p = (U8 *)SvPVX_const(sv);

#ifdef DEBUGGING
    /* how many bytes were evacuated?  we will fill them with sentinel
       bytes, except for the part holding the new offset of course. */
    evacn = delta;
    if (old_delta)
        evacn += (old_delta < 0x100 ? 1 : 1 + sizeof(STRLEN));
    assert(evacn);
    assert(evacn <= delta + old_delta);
    evacp = p - evacn;
#endif

    /* This sets 'delta' to the accumulated value of all deltas so far */
    delta += old_delta;
    assert(delta);

    /* If 'delta' fits in a byte, store it just prior to the new beginning of
     * the string; otherwise store a 0 byte there and store 'delta' just prior
     * to that, using as many bytes as a STRLEN occupies.  Thus it overwrites a
     * portion of the chopped part of the string */
    if (delta < 0x100) {
        *--p = (U8) delta;
    } else {
        *--p = 0;
        p -= sizeof(STRLEN);
        Copy((U8*)&delta, p, sizeof(STRLEN), U8);
    }

#ifdef DEBUGGING
    /* Fill the preceding buffer with sentinals to verify that no-one is
       using it.  */
    while (p > evacp) {
        --p;
        *p = (U8)PTR2UV(p);
    }
#endif
}

/*
=for apidoc sv_catpvn
=for apidoc_item sv_catpvn_flags
=for apidoc_item sv_catpvn_mg
=for apidoc_item sv_catpvn_nomg

These concatenate the C<len> bytes of the string beginning at C<ptr> onto the
end of the string which is in C<dsv>.  The caller must make sure C<ptr>
contains at least C<len> bytes.

For all but C<sv_catpvn_flags>, the string appended is assumed to be valid
UTF-8 if the SV has the UTF-8 status set, and a string of bytes otherwise.

They differ in that:

C<sv_catpvn_mg> performs both 'get' and 'set' magic on C<dsv>.

C<sv_catpvn> performs only 'get' magic.

C<sv_catpvn_nomg> skips all magic.

C<sv_catpvn_flags> has an extra C<flags> parameter which allows you to specify
any combination of magic handling (using C<SV_GMAGIC> and/or C<SV_SMAGIC>) and
to also override the UTF-8 handling.  By supplying the C<SV_CATBYTES> flag, the
appended string is interpreted as plain bytes; by supplying instead the
C<SV_CATUTF8> flag, it will be interpreted as UTF-8, and the C<dsv> will be
upgraded to UTF-8 if necessary.

C<sv_catpvn>, C<sv_catpvn_mg>, and C<sv_catpvn_nomg> are implemented
in terms of C<sv_catpvn_flags>.

=for apidoc Amnh||SV_CATUTF8
=for apidoc Amnh||SV_CATBYTES

=cut
*/

void
Perl_sv_catpvn_flags(pTHX_ SV *const dsv, const char *sstr, const STRLEN slen, const I32 flags)
{
    STRLEN dlen;
    const char * const dstr = SvPV_force_flags(dsv, dlen, flags);

    PERL_ARGS_ASSERT_SV_CATPVN_FLAGS;
    assert((flags & (SV_CATBYTES|SV_CATUTF8)) != (SV_CATBYTES|SV_CATUTF8));

    if (!(flags & SV_CATBYTES) || !SvUTF8(dsv)) {
      if (flags & SV_CATUTF8 && !SvUTF8(dsv)) {
         sv_utf8_upgrade_flags_grow(dsv, 0, slen + 1);
         dlen = SvCUR(dsv);
      }
      else SvGROW(dsv, dlen + slen + 3);
      if (sstr == dstr)
        sstr = SvPVX_const(dsv);
      Move(sstr, SvPVX(dsv) + dlen, slen, char);
      SvCUR_set(dsv, SvCUR(dsv) + slen);
    }
    else {
        /* We inline bytes_to_utf8, to avoid an extra malloc. */
        const char * const send = sstr + slen;
        U8 *d;

        /* Something this code does not account for, which I think is
           impossible; it would require the same pv to be treated as
           bytes *and* utf8, which would indicate a bug elsewhere. */
        assert(sstr != dstr);

        SvGROW(dsv, dlen + slen * 2 + 3);
        d = (U8 *)SvPVX(dsv) + dlen;

        while (sstr < send) {
            append_utf8_from_native_byte(*sstr, &d);
            sstr++;
        }
        SvCUR_set(dsv, d-(const U8 *)SvPVX(dsv));
    }
    *SvEND(dsv) = '\0';
    (void)SvPOK_only_UTF8(dsv);		/* validate pointer */
    SvTAINT(dsv);
    if (flags & SV_SMAGIC)
        SvSETMAGIC(dsv);
}

/*
=for apidoc sv_catsv
=for apidoc_item sv_catsv_flags
=for apidoc_item sv_catsv_mg
=for apidoc_item sv_catsv_nomg

These concatenate the string from SV C<sstr> onto the end of the string in SV
C<dsv>.  If C<sstr> is null, these are no-ops; otherwise only C<dsv> is
modified.

They differ only in what magic they perform:

C<sv_catsv_mg> performs 'get' magic on both SVs before the copy, and 'set' magic
on C<dsv> afterwards.

C<sv_catsv> performs just 'get' magic, on both SVs.

C<sv_catsv_nomg> skips all magic.

C<sv_catsv_flags> has an extra C<flags> parameter which allows you to use
C<SV_GMAGIC> and/or C<SV_SMAGIC> to specify any combination of magic handling
(although either both or neither SV will have 'get' magic applied to it.)

C<sv_catsv>, C<sv_catsv_mg>, and C<sv_catsv_nomg> are implemented
in terms of C<sv_catsv_flags>.

=cut */

void
Perl_sv_catsv_flags(pTHX_ SV *const dsv, SV *const sstr, const I32 flags)
{
    PERL_ARGS_ASSERT_SV_CATSV_FLAGS;

    if (sstr) {
        STRLEN slen;
        const char *spv = SvPV_flags_const(sstr, slen, flags);
        if (flags & SV_GMAGIC)
                SvGETMAGIC(dsv);
        sv_catpvn_flags(dsv, spv, slen,
                            DO_UTF8(sstr) ? SV_CATUTF8 : SV_CATBYTES);
        if (flags & SV_SMAGIC)
                SvSETMAGIC(dsv);
    }
}

/*
=for apidoc sv_catpv
=for apidoc_item sv_catpv_flags
=for apidoc_item sv_catpv_mg
=for apidoc_item sv_catpv_nomg

These concatenate the C<NUL>-terminated string C<sstr> onto the end of the
string which is in the SV.
If the SV has the UTF-8 status set, then the bytes appended should be
valid UTF-8.

They differ only in how they handle magic:

C<sv_catpv_mg> performs both 'get' and 'set' magic.

C<sv_catpv> performs only 'get' magic.

C<sv_catpv_nomg> skips all magic.

C<sv_catpv_flags> has an extra C<flags> parameter which allows you to specify
any combination of magic handling (using C<SV_GMAGIC> and/or C<SV_SMAGIC>), and
to also override the UTF-8 handling.  By supplying the C<SV_CATUTF8> flag, the
appended string is forced to be interpreted as UTF-8; by supplying instead the
C<SV_CATBYTES> flag, it will be interpreted as just bytes.  Either the SV or
the string appended will be upgraded to UTF-8 if necessary.

=cut
*/

void
Perl_sv_catpv(pTHX_ SV *const dsv, const char *sstr)
{
    STRLEN len;
    STRLEN tlen;
    char *junk;

    PERL_ARGS_ASSERT_SV_CATPV;

    if (!sstr)
        return;
    junk = SvPV_force(dsv, tlen);
    len = strlen(sstr);
    SvGROW(dsv, tlen + len + 1);
    if (sstr == junk)
        sstr = SvPVX_const(dsv);
    Move(sstr,SvPVX(dsv)+tlen,len+1,char);
    SvCUR_set(dsv, SvCUR(dsv) + len);
    (void)SvPOK_only_UTF8(dsv);		/* validate pointer */
    SvTAINT(dsv);
}

void
Perl_sv_catpv_flags(pTHX_ SV *dsv, const char *sstr, const I32 flags)
{
    PERL_ARGS_ASSERT_SV_CATPV_FLAGS;
    sv_catpvn_flags(dsv, sstr, strlen(sstr), flags);
}

void
Perl_sv_catpv_mg(pTHX_ SV *const dsv, const char *const sstr)
{
    PERL_ARGS_ASSERT_SV_CATPV_MG;

    sv_catpv(dsv,sstr);
    SvSETMAGIC(dsv);
}

/*
=for apidoc newSV

Creates a new SV.  A non-zero C<len> parameter indicates the number of
bytes of preallocated string space the SV should have.  An extra byte for a
trailing C<NUL> is also reserved.  (C<SvPOK> is not set for the SV even if string
space is allocated.)  The reference count for the new SV is set to 1.

In 5.9.3, C<newSV()> replaces the older C<NEWSV()> API, and drops the first
parameter, I<x>, a debug aid which allowed callers to identify themselves.
This aid has been superseded by a new build option, C<PERL_MEM_LOG> (see
L<perlhacktips/PERL_MEM_LOG>).  The older API is still there for use in XS
modules supporting older perls.

=cut
*/

SV *
Perl_newSV(pTHX_ const STRLEN len)
{
    SV *sv;

    if (!len)
        new_SV(sv);
    else {
        sv = newSV_type(SVt_PV);
        sv_grow_fresh(sv, len + 1);
    }
    return sv;
}
/*
=for apidoc sv_magicext

Adds magic to an SV, upgrading it if necessary.  Applies the
supplied C<vtable> and returns a pointer to the magic added.

Note that C<sv_magicext> will allow things that C<sv_magic> will not.
In particular, you can add magic to C<SvREADONLY> SVs, and add more than
one instance of the same C<how>.

If C<namlen> is greater than zero then a C<savepvn> I<copy> of C<name> is
stored, if C<namlen> is zero then C<name> is stored as-is and - as another
special case - if C<(name && namlen == HEf_SVKEY)> then C<name> is assumed
to contain an SV* and is stored as-is with its C<REFCNT> incremented.

(This is now used as a subroutine by C<sv_magic>.)

=cut
*/
MAGIC *
Perl_sv_magicext(pTHX_ SV *const sv, SV *const obj, const int how,
                const MGVTBL *const vtable, const char *const name, const I32 namlen)
{
    MAGIC* mg;

    PERL_ARGS_ASSERT_SV_MAGICEXT;

    SvUPGRADE(sv, SVt_PVMG);
    Newxz(mg, 1, MAGIC);
    mg->mg_moremagic = SvMAGIC(sv);
    SvMAGIC_set(sv, mg);

    /* Sometimes a magic contains a reference loop, where the sv and
       object refer to each other.  To prevent a reference loop that
       would prevent such objects being freed, we look for such loops
       and if we find one we avoid incrementing the object refcount.

       Note we cannot do this to avoid self-tie loops as intervening RV must
       have its REFCNT incremented to keep it in existence.

    */
    if (!obj || obj == sv ||
        how == PERL_MAGIC_arylen ||
        how == PERL_MAGIC_regdata ||
        how == PERL_MAGIC_regdatum ||
        how == PERL_MAGIC_symtab ||
        (SvTYPE(obj) == SVt_PVGV &&
            (GvSV(obj) == sv || GvHV(obj) == (const HV *)sv
             || GvAV(obj) == (const AV *)sv || GvCV(obj) == (const CV *)sv
             || GvIOp(obj) == (const IO *)sv || GvFORM(obj) == (const CV *)sv)))
    {
        mg->mg_obj = obj;
    }
    else {
        mg->mg_obj = SvREFCNT_inc_simple(obj);
        mg->mg_flags |= MGf_REFCOUNTED;
    }

    /* Normal self-ties simply pass a null object, and instead of
       using mg_obj directly, use the SvTIED_obj macro to produce a
       new RV as needed.  For glob "self-ties", we are tieing the PVIO
       with an RV obj pointing to the glob containing the PVIO.  In
       this case, to avoid a reference loop, we need to weaken the
       reference.
    */

    if (how == PERL_MAGIC_tiedscalar && SvTYPE(sv) == SVt_PVIO &&
        obj && SvROK(obj) && GvIO(SvRV(obj)) == (const IO *)sv)
    {
      sv_rvweaken(obj);
    }

    mg->mg_type = how;
    mg->mg_len = namlen;
    if (name) {
        if (namlen > 0)
            mg->mg_ptr = savepvn(name, namlen);
        else if (namlen == HEf_SVKEY) {
            /* Yes, this is casting away const. This is only for the case of
               HEf_SVKEY. I think we need to document this aberration of the
               constness of the API, rather than making name non-const, as
               that change propagating outwards a long way.  */
            mg->mg_ptr = (char*)SvREFCNT_inc_simple_NN((SV *)name);
        } else
            mg->mg_ptr = (char *) name;
    }
    mg->mg_virtual = (MGVTBL *) vtable;

    mg_magical(sv);
    return mg;
}

MAGIC *
Perl_sv_magicext_mglob(pTHX_ SV *sv)
{
    PERL_ARGS_ASSERT_SV_MAGICEXT_MGLOB;
    if (SvTYPE(sv) == SVt_PVLV && LvTYPE(sv) == 'y') {
        /* This sv is only a delegate.  //g magic must be attached to
           its target. */
        vivify_defelem(sv);
        sv = LvTARG(sv);
    }
    return sv_magicext(sv, NULL, PERL_MAGIC_regex_global,
                       &PL_vtbl_mglob, 0, 0);
}

/*
=for apidoc sv_magic

Adds magic to an SV.  First upgrades C<sv> to type C<SVt_PVMG> if
necessary, then adds a new magic item of type C<how> to the head of the
magic list.

See C<L</sv_magicext>> (which C<sv_magic> now calls) for a description of the
handling of the C<name> and C<namlen> arguments.

You need to use C<sv_magicext> to add magic to C<SvREADONLY> SVs and also
to add more than one instance of the same C<how>.

=cut
*/

void
Perl_sv_magic(pTHX_ SV *const sv, SV *const obj, const int how,
             const char *const name, const I32 namlen)
{
    const MGVTBL *vtable;
    MAGIC* mg;
    unsigned int flags;
    unsigned int vtable_index;

    PERL_ARGS_ASSERT_SV_MAGIC;

    if (how < 0 || (unsigned)how >= C_ARRAY_LENGTH(PL_magic_data)
        || ((flags = PL_magic_data[how]),
            (vtable_index = flags & PERL_MAGIC_VTABLE_MASK)
            > magic_vtable_max))
        Perl_croak(aTHX_ "Don't know how to handle magic of type \\%o", how);

    /* PERL_MAGIC_ext is reserved for use by extensions not perl internals.
       Useful for attaching extension internal data to perl vars.
       Note that multiple extensions may clash if magical scalars
       etc holding private data from one are passed to another. */

    vtable = (vtable_index == magic_vtable_max)
        ? NULL : PL_magic_vtables + vtable_index;

    if (SvREADONLY(sv)) {
        if (
            !PERL_MAGIC_TYPE_READONLY_ACCEPTABLE(how)
           )
        {
            Perl_croak_no_modify();
        }
    }
    if (SvMAGICAL(sv) || (how == PERL_MAGIC_taint && SvTYPE(sv) >= SVt_PVMG)) {
        if (SvMAGIC(sv) && (mg = mg_find(sv, how))) {
            /* sv_magic() refuses to add a magic of the same 'how' as an
               existing one
             */
            if (how == PERL_MAGIC_taint)
                mg->mg_len |= 1;
            return;
        }
    }

    /* Rest of work is done else where */
    mg = sv_magicext(sv,obj,how,vtable,name,namlen);

    switch (how) {
    case PERL_MAGIC_taint:
        mg->mg_len = 1;
        break;
    case PERL_MAGIC_ext:
    case PERL_MAGIC_dbfile:
        SvRMAGICAL_on(sv);
        break;
    }
}

static int
S_sv_unmagicext_flags(pTHX_ SV *const sv, const int type, const MGVTBL *vtbl, const U32 flags)
{
    MAGIC* mg;
    MAGIC** mgp;

    assert(flags <= 1);

    if (SvTYPE(sv) < SVt_PVMG || !SvMAGIC(sv))
        return 0;
    mgp = &(((XPVMG*) SvANY(sv))->xmg_u.xmg_magic);
    for (mg = *mgp; mg; mg = *mgp) {
        const MGVTBL* const virt = mg->mg_virtual;
        if (mg->mg_type == type && (!flags || virt == vtbl)) {
            *mgp = mg->mg_moremagic;
            if (virt && virt->svt_free)
                virt->svt_free(aTHX_ sv, mg);
            if (mg->mg_ptr && mg->mg_type != PERL_MAGIC_regex_global) {
                if (mg->mg_len > 0)
                    Safefree(mg->mg_ptr);
                else if (mg->mg_len == HEf_SVKEY)
                    SvREFCNT_dec(MUTABLE_SV(mg->mg_ptr));
                else if (mg->mg_type == PERL_MAGIC_utf8)
                    Safefree(mg->mg_ptr);
            }
            if (mg->mg_flags & MGf_REFCOUNTED)
                SvREFCNT_dec(mg->mg_obj);
            Safefree(mg);
        }
        else
            mgp = &mg->mg_moremagic;
    }
    if (SvMAGIC(sv)) {
        if (SvMAGICAL(sv))	/* if we're under save_magic, wait for restore_magic; */
            mg_magical(sv);	/*    else fix the flags now */
    }
    else
        SvMAGICAL_off(sv);

    return 0;
}

/*
=for apidoc sv_unmagic

Removes all magic of type C<type> from an SV.

=cut
*/

int
Perl_sv_unmagic(pTHX_ SV *const sv, const int type)
{
    PERL_ARGS_ASSERT_SV_UNMAGIC;
    return S_sv_unmagicext_flags(aTHX_ sv, type, NULL, 0);
}

/*
=for apidoc sv_unmagicext

Removes all magic of type C<type> with the specified C<vtbl> from an SV.

=cut
*/

int
Perl_sv_unmagicext(pTHX_ SV *const sv, const int type, const MGVTBL *vtbl)
{
    PERL_ARGS_ASSERT_SV_UNMAGICEXT;
    return S_sv_unmagicext_flags(aTHX_ sv, type, vtbl, 1);
}

/*
=for apidoc sv_rvweaken

Weaken a reference: set the C<SvWEAKREF> flag on this RV; give the
referred-to SV C<PERL_MAGIC_backref> magic if it hasn't already; and
push a back-reference to this RV onto the array of backreferences
associated with that magic.  If the RV is magical, set magic will be
called after the RV is cleared.  Silently ignores C<undef> and warns
on already-weak references.

=cut
*/

SV *
Perl_sv_rvweaken(pTHX_ SV *const sv)
{
    SV *tsv;

    PERL_ARGS_ASSERT_SV_RVWEAKEN;

    if (!SvOK(sv))  /* let undefs pass */
        return sv;
    if (!SvROK(sv))
        Perl_croak(aTHX_ "Can't weaken a nonreference");
    else if (SvWEAKREF(sv)) {
        Perl_ck_warner(aTHX_ packWARN(WARN_MISC), "Reference is already weak");
        return sv;
    }
    else if (SvREADONLY(sv)) croak_no_modify();
    tsv = SvRV(sv);
    Perl_sv_add_backref(aTHX_ tsv, sv);
    SvWEAKREF_on(sv);
    SvREFCNT_dec_NN(tsv);
    return sv;
}

/*
=for apidoc sv_rvunweaken

Unweaken a reference: Clear the C<SvWEAKREF> flag on this RV; remove
the backreference to this RV from the array of backreferences
associated with the target SV, increment the refcount of the target.
Silently ignores C<undef> and warns on non-weak references.

=cut
*/

SV *
Perl_sv_rvunweaken(pTHX_ SV *const sv)
{
    SV *tsv;

    PERL_ARGS_ASSERT_SV_RVUNWEAKEN;

    if (!SvOK(sv)) /* let undefs pass */
        return sv;
    if (!SvROK(sv))
        Perl_croak(aTHX_ "Can't unweaken a nonreference");
    else if (!SvWEAKREF(sv)) {
        Perl_ck_warner(aTHX_ packWARN(WARN_MISC), "Reference is not weak");
        return sv;
    }
    else if (SvREADONLY(sv)) croak_no_modify();

    tsv = SvRV(sv);
    SvWEAKREF_off(sv);
    SvROK_on(sv);
    SvREFCNT_inc_NN(tsv);
    Perl_sv_del_backref(aTHX_ tsv, sv);
    return sv;
}

/*
=for apidoc sv_get_backrefs

If C<sv> is the target of a weak reference then it returns the back
references structure associated with the sv; otherwise return C<NULL>.

When returning a non-null result the type of the return is relevant. If it
is an AV then the elements of the AV are the weak reference RVs which
point at this item. If it is any other type then the item itself is the
weak reference.

See also C<Perl_sv_add_backref()>, C<Perl_sv_del_backref()>,
C<Perl_sv_kill_backrefs()>

=cut
*/

SV *
Perl_sv_get_backrefs(SV *const sv)
{
    SV *backrefs= NULL;

    PERL_ARGS_ASSERT_SV_GET_BACKREFS;

    /* find slot to store array or singleton backref */

    if (SvTYPE(sv) == SVt_PVHV) {
        if (HvHasAUX(sv)) {
            struct xpvhv_aux * const iter = HvAUX((HV *)sv);
            backrefs = (SV *)iter->xhv_backreferences;
        }
    } else if (SvMAGICAL(sv)) {
        MAGIC *mg = mg_find(sv, PERL_MAGIC_backref);
        if (mg)
            backrefs = mg->mg_obj;
    }
    return backrefs;
}

/* Give tsv backref magic if it hasn't already got it, then push a
 * back-reference to sv onto the array associated with the backref magic.
 *
 * As an optimisation, if there's only one backref and it's not an AV,
 * store it directly in the HvAUX or mg_obj slot, avoiding the need to
 * allocate an AV. (Whether the slot holds an AV tells us whether this is
 * active.)
 */

/* A discussion about the backreferences array and its refcount:
 *
 * The AV holding the backreferences is pointed to either as the mg_obj of
 * PERL_MAGIC_backref, or in the specific case of a HV, from the
 * xhv_backreferences field. The array is created with a refcount
 * of 2. This means that if during global destruction the array gets
 * picked on before its parent to have its refcount decremented by the
 * random zapper, it won't actually be freed, meaning it's still there for
 * when its parent gets freed.
 *
 * When the parent SV is freed, the extra ref is killed by
 * Perl_sv_kill_backrefs.  The other ref is killed, in the case of magic,
 * by mg_free() / MGf_REFCOUNTED, or for a hash, by Perl_hv_kill_backrefs.
 *
 * When a single backref SV is stored directly, it is not reference
 * counted.
 */

void
Perl_sv_add_backref(pTHX_ SV *const tsv, SV *const sv)
{
    SV **svp;
    AV *av = NULL;
    MAGIC *mg = NULL;

    PERL_ARGS_ASSERT_SV_ADD_BACKREF;

    /* find slot to store array or singleton backref */

    if (SvTYPE(tsv) == SVt_PVHV) {
        svp = (SV**)Perl_hv_backreferences_p(aTHX_ MUTABLE_HV(tsv));
    } else {
        if (SvMAGICAL(tsv))
            mg = mg_find(tsv, PERL_MAGIC_backref);
        if (!mg)
            mg = sv_magicext(tsv, NULL, PERL_MAGIC_backref, &PL_vtbl_backref, NULL, 0);
        svp = &(mg->mg_obj);
    }

    /* create or retrieve the array */

    if (   (!*svp && SvTYPE(sv) == SVt_PVAV)
        || (*svp && SvTYPE(*svp) != SVt_PVAV)
    ) {
        /* create array */
        if (mg)
            mg->mg_flags |= MGf_REFCOUNTED;
        av = newAV();
        AvREAL_off(av);
        SvREFCNT_inc_simple_void_NN(av);
        /* av now has a refcnt of 2; see discussion above */
        av_extend(av, *svp ? 2 : 1);
        if (*svp) {
            /* move single existing backref to the array */
            AvARRAY(av)[++AvFILLp(av)] = *svp; /* av_push() */
        }
        *svp = (SV*)av;
    }
    else {
        av = MUTABLE_AV(*svp);
        if (!av) {
            /* optimisation: store single backref directly in HvAUX or mg_obj */
            *svp = sv;
            return;
        }
        assert(SvTYPE(av) == SVt_PVAV);
        if (AvFILLp(av) >= AvMAX(av)) {
            av_extend(av, AvFILLp(av)+1);
        }
    }
    /* push new backref */
    AvARRAY(av)[++AvFILLp(av)] = sv; /* av_push() */
}

/* delete a back-reference to ourselves from the backref magic associated
 * with the SV we point to.
 */

void
Perl_sv_del_backref(pTHX_ SV *const tsv, SV *const sv)
{
    SV **svp = NULL;

    PERL_ARGS_ASSERT_SV_DEL_BACKREF;

    if (SvTYPE(tsv) == SVt_PVHV) {
        if (HvHasAUX(tsv))
            svp = (SV**)Perl_hv_backreferences_p(aTHX_ MUTABLE_HV(tsv));
    }
    else if (SvIS_FREED(tsv) && PL_phase == PERL_PHASE_DESTRUCT) {
        /* It's possible for the last (strong) reference to tsv to have
           become freed *before* the last thing holding a weak reference.
           If both survive longer than the backreferences array, then when
           the referent's reference count drops to 0 and it is freed, it's
           not able to chase the backreferences, so they aren't NULLed.

           For example, a CV holds a weak reference to its stash. If both the
           CV and the stash survive longer than the backreferences array,
           and the CV gets picked for the SvBREAK() treatment first,
           *and* it turns out that the stash is only being kept alive because
           of an our variable in the pad of the CV, then midway during CV
           destruction the stash gets freed, but CvSTASH() isn't set to NULL.
           It ends up pointing to the freed HV. Hence it's chased in here, and
           if this block wasn't here, it would hit the !svp panic just below.

           I don't believe that "better" destruction ordering is going to help
           here - during global destruction there's always going to be the
           chance that something goes out of order. We've tried to make it
           foolproof before, and it only resulted in evolutionary pressure on
           fools. Which made us look foolish for our hubris. :-(
        */
        return;
    }
    else {
        MAGIC *const mg
            = SvMAGICAL(tsv) ? mg_find(tsv, PERL_MAGIC_backref) : NULL;
        svp =  mg ? &(mg->mg_obj) : NULL;
    }

    if (!svp)
        Perl_croak(aTHX_ "panic: del_backref, svp=0");
    if (!*svp) {
        /* It's possible that sv is being freed recursively part way through the
           freeing of tsv. If this happens, the backreferences array of tsv has
           already been freed, and so svp will be NULL. If this is the case,
           we should not panic. Instead, nothing needs doing, so return.  */
        if (PL_phase == PERL_PHASE_DESTRUCT && SvREFCNT(tsv) == 0)
            return;
        Perl_croak(aTHX_ "panic: del_backref, *svp=%p phase=%s refcnt=%" UVuf,
                   (void*)*svp, PL_phase_names[PL_phase], (UV)SvREFCNT(tsv));
    }

    if (SvTYPE(*svp) == SVt_PVAV) {
#ifdef DEBUGGING
        int count = 1;
#endif
        AV * const av = (AV*)*svp;
        SSize_t fill;
        assert(!SvIS_FREED(av));
        fill = AvFILLp(av);
        assert(fill > -1);
        svp = AvARRAY(av);
        /* for an SV with N weak references to it, if all those
         * weak refs are deleted, then sv_del_backref will be called
         * N times and O(N^2) compares will be done within the backref
         * array. To ameliorate this potential slowness, we:
         * 1) make sure this code is as tight as possible;
         * 2) when looking for SV, look for it at both the head and tail of the
         *    array first before searching the rest, since some create/destroy
         *    patterns will cause the backrefs to be freed in order.
         */
        if (*svp == sv) {
            AvARRAY(av)++;
            AvMAX(av)--;
        }
        else {
            SV **p = &svp[fill];
            SV *const topsv = *p;
            if (topsv != sv) {
#ifdef DEBUGGING
                count = 0;
#endif
                while (--p > svp) {
                    if (*p == sv) {
                        /* We weren't the last entry.
                           An unordered list has this property that you
                           can take the last element off the end to fill
                           the hole, and it's still an unordered list :-)
                        */
                        *p = topsv;
#ifdef DEBUGGING
                        count++;
#else
                        break; /* should only be one */
#endif
                    }
                }
            }
        }
        assert(count ==1);
        AvFILLp(av) = fill-1;
    }
    else if (SvIS_FREED(*svp) && PL_phase == PERL_PHASE_DESTRUCT) {
        /* freed AV; skip */
    }
    else {
        /* optimisation: only a single backref, stored directly */
        if (*svp != sv)
            Perl_croak(aTHX_ "panic: del_backref, *svp=%p, sv=%p",
                       (void*)*svp, (void*)sv);
        *svp = NULL;
    }

}

void
Perl_sv_kill_backrefs(pTHX_ SV *const sv, AV *const av)
{
    SV **svp;
    SV **last;
    bool is_array;

    PERL_ARGS_ASSERT_SV_KILL_BACKREFS;

    if (!av)
        return;

    /* after multiple passes through Perl_sv_clean_all() for a thingy
     * that has badly leaked, the backref array may have gotten freed,
     * since we only protect it against 1 round of cleanup */
    if (SvIS_FREED(av)) {
        if (PL_in_clean_all) /* All is fair */
            return;
        Perl_croak(aTHX_
                   "panic: magic_killbackrefs (freed backref AV/SV)");
    }


    is_array = (SvTYPE(av) == SVt_PVAV);
    if (is_array) {
        assert(!SvIS_FREED(av));
        svp = AvARRAY(av);
        if (svp)
            last = svp + AvFILLp(av);
    }
    else {
        /* optimisation: only a single backref, stored directly */
        svp = (SV**)&av;
        last = svp;
    }

    if (svp) {
        while (svp <= last) {
            if (*svp) {
                SV *const referrer = *svp;
                if (SvWEAKREF(referrer)) {
                    /* XXX Should we check that it hasn't changed? */
                    assert(SvROK(referrer));
                    SvRV_set(referrer, 0);
                    SvOK_off(referrer);
                    SvWEAKREF_off(referrer);
                    SvSETMAGIC(referrer);
                } else if (SvTYPE(referrer) == SVt_PVGV ||
                           SvTYPE(referrer) == SVt_PVLV) {
                    assert(SvTYPE(sv) == SVt_PVHV); /* stash backref */
                    /* You lookin' at me?  */
                    assert(GvSTASH(referrer));
                    assert(GvSTASH(referrer) == (const HV *)sv);
                    GvSTASH(referrer) = 0;
                } else if (SvTYPE(referrer) == SVt_PVCV ||
                           SvTYPE(referrer) == SVt_PVFM) {
                    if (SvTYPE(sv) == SVt_PVHV) { /* stash backref */
                        /* You lookin' at me?  */
                        assert(CvSTASH(referrer));
                        assert(CvSTASH(referrer) == (const HV *)sv);
                        SvANY(MUTABLE_CV(referrer))->xcv_stash = 0;
                    }
                    else {
                        assert(SvTYPE(sv) == SVt_PVGV);
                        /* You lookin' at me?  */
                        assert(CvGV(referrer));
                        assert(CvGV(referrer) == (const GV *)sv);
                        anonymise_cv_maybe(MUTABLE_GV(sv),
                                                MUTABLE_CV(referrer));
                    }

                } else {
                    Perl_croak(aTHX_
                               "panic: magic_killbackrefs (flags=%" UVxf ")",
                               (UV)SvFLAGS(referrer));
                }

                if (is_array)
                    *svp = NULL;
            }
            svp++;
        }
    }
    if (is_array) {
        AvFILLp(av) = -1;
        SvREFCNT_dec_NN(av); /* remove extra count added by sv_add_backref() */
    }
    return;
}

/*
=for apidoc sv_insert

Inserts and/or replaces a string at the specified offset/length within the SV.
Similar to the Perl C<substr()> function, with C<littlelen> bytes starting at
C<little> replacing C<len> bytes of the string in C<bigstr> starting at
C<offset>.  Handles get magic.

=for apidoc sv_insert_flags

Same as C<sv_insert>, but the extra C<flags> are passed to the
C<SvPV_force_flags> that applies to C<bigstr>.

=cut
*/

void
Perl_sv_insert_flags(pTHX_ SV *const bigstr, const STRLEN offset, const STRLEN len, const char *little, const STRLEN littlelen, const U32 flags)
{
    char *big;
    char *mid;
    char *midend;
    char *bigend;
    SSize_t i;		/* better be sizeof(STRLEN) or bad things happen */
    STRLEN curlen;

    PERL_ARGS_ASSERT_SV_INSERT_FLAGS;

    SvPV_force_flags(bigstr, curlen, flags);
    (void)SvPOK_only_UTF8(bigstr);

    if (little >= SvPVX(bigstr) &&
        little < SvPVX(bigstr) + (SvLEN(bigstr) ? SvLEN(bigstr) : SvCUR(bigstr))) {
        /* little is a pointer to within bigstr, since we can reallocate bigstr,
           or little...little+littlelen might overlap offset...offset+len we make a copy
        */
        little = savepvn(little, littlelen);
        SAVEFREEPV(little);
    }

    if (offset + len > curlen) {
        SvGROW(bigstr, offset+len+1);
        Zero(SvPVX(bigstr)+curlen, offset+len-curlen, char);
        SvCUR_set(bigstr, offset+len);
    }

    SvTAINT(bigstr);
    i = littlelen - len;
    if (i > 0) {			/* string might grow */
        big = SvGROW(bigstr, SvCUR(bigstr) + i + 1);
        mid = big + offset + len;
        midend = bigend = big + SvCUR(bigstr);
        bigend += i;
        *bigend = '\0';
        while (midend > mid)		/* shove everything down */
            *--bigend = *--midend;
        Move(little,big+offset,littlelen,char);
        SvCUR_set(bigstr, SvCUR(bigstr) + i);
        SvSETMAGIC(bigstr);
        return;
    }
    else if (i == 0) {
        Move(little,SvPVX(bigstr)+offset,len,char);
        SvSETMAGIC(bigstr);
        return;
    }

    big = SvPVX(bigstr);
    mid = big + offset;
    midend = mid + len;
    bigend = big + SvCUR(bigstr);

    if (midend > bigend)
        Perl_croak(aTHX_ "panic: sv_insert, midend=%p, bigend=%p",
                   midend, bigend);

    if (mid - big > bigend - midend) {	/* faster to shorten from end */
        if (littlelen) {
            Move(little, mid, littlelen,char);
            mid += littlelen;
        }
        i = bigend - midend;
        if (i > 0) {
            Move(midend, mid, i,char);
            mid += i;
        }
        *mid = '\0';
        SvCUR_set(bigstr, mid - big);
    }
    else if ((i = mid - big)) {	/* faster from front */
        midend -= littlelen;
        mid = midend;
        Move(big, midend - i, i, char);
        sv_chop(bigstr,midend-i);
        if (littlelen)
            Move(little, mid, littlelen,char);
    }
    else if (littlelen) {
        midend -= littlelen;
        sv_chop(bigstr,midend);
        Move(little,midend,littlelen,char);
    }
    else {
        sv_chop(bigstr,midend);
    }
    SvSETMAGIC(bigstr);
}

/*
=for apidoc sv_replace

Make the first argument a copy of the second, then delete the original.
The target SV physically takes over ownership of the body of the source SV
and inherits its flags; however, the target keeps any magic it owns,
and any magic in the source is discarded.
Note that this is a rather specialist SV copying operation; most of the
time you'll want to use C<sv_setsv> or one of its many macro front-ends.

=cut
*/

void
Perl_sv_replace(pTHX_ SV *const sv, SV *const nsv)
{
    const U32 refcnt = SvREFCNT(sv);

    PERL_ARGS_ASSERT_SV_REPLACE;

    SV_CHECK_THINKFIRST_COW_DROP(sv);
    if (SvREFCNT(nsv) != 1) {
        Perl_croak(aTHX_ "panic: reference miscount on nsv in sv_replace()"
                   " (%" UVuf " != 1)", (UV) SvREFCNT(nsv));
    }
    if (SvMAGICAL(sv)) {
        if (SvMAGICAL(nsv))
            mg_free(nsv);
        else
            sv_upgrade(nsv, SVt_PVMG);
        SvMAGIC_set(nsv, SvMAGIC(sv));
        SvFLAGS(nsv) |= SvMAGICAL(sv);
        SvMAGICAL_off(sv);
        SvMAGIC_set(sv, NULL);
    }
    SvREFCNT(sv) = 0;
    sv_clear(sv);
    assert(!SvREFCNT(sv));
#ifdef DEBUG_LEAKING_SCALARS
    sv->sv_flags  = nsv->sv_flags;
    sv->sv_any    = nsv->sv_any;
    sv->sv_refcnt = nsv->sv_refcnt;
    sv->sv_u      = nsv->sv_u;
#else
    StructCopy(nsv,sv,SV);
#endif
    if(SvTYPE(sv) == SVt_IV) {
        SET_SVANY_FOR_BODYLESS_IV(sv);
    }


    SvREFCNT(sv) = refcnt;
    SvFLAGS(nsv) |= SVTYPEMASK;		/* Mark as freed */
    SvREFCNT(nsv) = 0;
    del_SV(nsv);
}

/* We're about to free a GV which has a CV that refers back to us.
 * If that CV will outlive us, make it anonymous (i.e. fix up its CvGV
 * field) */

STATIC void
S_anonymise_cv_maybe(pTHX_ GV *gv, CV* cv)
{
    SV *gvname;
    GV *anongv;

    PERL_ARGS_ASSERT_ANONYMISE_CV_MAYBE;

    /* be assertive! */
    assert(SvREFCNT(gv) == 0);
    assert(isGV(gv) && isGV_with_GP(gv));
    assert(GvGP(gv));
    assert(!CvANON(cv));
    assert(CvGV(cv) == gv);
    assert(!CvNAMED(cv));

    /* will the CV shortly be freed by gp_free() ? */
    if (GvCV(gv) == cv && GvGP(gv)->gp_refcnt < 2 && SvREFCNT(cv) < 2) {
        SvANY(cv)->xcv_gv_u.xcv_gv = NULL;
        return;
    }

    /* if not, anonymise: */
    gvname = (GvSTASH(gv) && HvHasNAME(GvSTASH(gv)) && HvHasENAME(GvSTASH(gv)))
                    ? newSVhek(HvENAME_HEK(GvSTASH(gv)))
                    : newSVpvn_flags( "__ANON__", 8, 0 );
    sv_catpvs(gvname, "::__ANON__");
    anongv = gv_fetchsv(gvname, GV_ADDMULTI, SVt_PVCV);
    SvREFCNT_dec_NN(gvname);

    CvANON_on(cv);
    CvCVGV_RC_on(cv);
    SvANY(cv)->xcv_gv_u.xcv_gv = MUTABLE_GV(SvREFCNT_inc(anongv));
}


/*
=for apidoc sv_clear

Clear an SV: call any destructors, free up any memory used by the body,
and free the body itself.  The SV's head is I<not> freed, although
its type is set to all 1's so that it won't inadvertently be assumed
to be live during global destruction etc.
This function should only be called when C<REFCNT> is zero.  Most of the time
you'll want to call C<SvREFCNT_dec> instead.

=cut
*/

void
Perl_sv_clear(pTHX_ SV *const orig_sv)
{
    SV* iter_sv = NULL;
    SV* next_sv = NULL;
    SV *sv = orig_sv;
    STRLEN hash_index = 0; /* initialise to make Coverity et al happy.
                              Not strictly necessary */

    PERL_ARGS_ASSERT_SV_CLEAR;

    /* within this loop, sv is the SV currently being freed, and
     * iter_sv is the most recent AV or whatever that's being iterated
     * over to provide more SVs */

    while (sv) {
        U32 type = SvTYPE(sv);
        HV *stash;

        assert(SvREFCNT(sv) == 0);
        assert(!SvIS_FREED(sv));
#if NVSIZE <= IVSIZE
        if (type <= SVt_NV) {
#else
        if (type <= SVt_IV) {
#endif
            /* Historically this check on type was needed so that the code to
             * free bodies wasn't reached for these types, because the arena
             * slots were re-used for HEs and pointer table entries. The
             * metadata table `bodies_by_type` had the information for the sizes
             * for HEs and PTEs, hence the code here had to have a special-case
             * check to ensure that the "regular" body freeing code wasn't
             * reached, and get confused by the "lies" in `bodies_by_type`.
             *
             * However, it hasn't actually been needed for that reason since
             * Aug 2010 (commit 829cd18aa7f45221), because `bodies_by_type` was
             * changed to always hold the accurate metadata for the SV types.
             * This was possible because PTEs were no longer allocated from the
             * "SVt_IV" arena, and the code to allocate HEs from the "SVt_NULL"
             * arena is entirely in hv.c, so doesn't access the table.
             *
             * Some sort of check is still needed to handle SVt_IVs - pure RVs
             * need to take one code path which is common with RVs stored in
             * SVt_PV (or larger), but pure IVs mustn't take the "PV but not RV"
             * path, as SvPVX() doesn't point to valid memory.
             *
             * Hence this code is still the most efficient way to handle this.
             *
             * Additionally, for bodyless NVs, riding this branch is more
             * efficient than stepping through the general logic.
             */

            if (SvROK(sv))
                goto free_rv;
            SvFLAGS(sv) &= SVf_BREAK;
            SvFLAGS(sv) |= SVTYPEMASK;
            goto free_head;
        }

        /* objs are always >= MG, but pad names use the SVs_OBJECT flag
           for another purpose  */
        assert(!SvOBJECT(sv) || type >= SVt_PVMG);

        if (type >= SVt_PVMG) {
            if (SvOBJECT(sv)) {
                if (!curse(sv, 1)) goto get_next_sv;
                type = SvTYPE(sv); /* destructor may have changed it */
            }
            /* Free back-references before magic, in case the magic calls
             * Perl code that has weak references to sv. */
            if (type == SVt_PVHV) {
                Perl_hv_kill_backrefs(aTHX_ MUTABLE_HV(sv));
                if (SvMAGIC(sv))
                    mg_free(sv);
            }
            else if (SvMAGIC(sv)) {
                /* Free back-references before other types of magic. */
                sv_unmagic(sv, PERL_MAGIC_backref);
                mg_free(sv);
            }
            SvMAGICAL_off(sv);
        }
        switch (type) {
            /* case SVt_INVLIST: */
        case SVt_PVIO:
            if (IoIFP(sv) &&
                IoIFP(sv) != PerlIO_stdin() &&
                IoIFP(sv) != PerlIO_stdout() &&
                IoIFP(sv) != PerlIO_stderr() &&
                !(IoFLAGS(sv) & IOf_FAKE_DIRP))
            {
                io_close(MUTABLE_IO(sv), NULL, FALSE,
                         (IoTYPE(sv) == IoTYPE_WRONLY ||
                          IoTYPE(sv) == IoTYPE_RDWR   ||
                          IoTYPE(sv) == IoTYPE_APPEND));
            }
            if (IoDIRP(sv) && !(IoFLAGS(sv) & IOf_FAKE_DIRP))
                PerlDir_close(IoDIRP(sv));
            IoDIRP(sv) = (DIR*)NULL;
            Safefree(IoTOP_NAME(sv));
            Safefree(IoFMT_NAME(sv));
            Safefree(IoBOTTOM_NAME(sv));
            if ((const GV *)sv == PL_statgv)
                PL_statgv = NULL;
            goto freescalar;
        case SVt_REGEXP:
            /* FIXME for plugins */
            pregfree2((REGEXP*) sv);
            goto freescalar;
        case SVt_PVCV:
        case SVt_PVFM:
            cv_undef(MUTABLE_CV(sv));
            /* If we're in a stash, we don't own a reference to it.
             * However it does have a back reference to us, which needs to
             * be cleared.  */
            if ((stash = CvSTASH(sv)))
                sv_del_backref(MUTABLE_SV(stash), sv);
            goto freescalar;
        case SVt_PVHV:
            if (HvTOTALKEYS((HV*)sv) > 0) {
                const HEK *hek;
                /* this statement should match the one at the beginning of
                 * hv_undef_flags() */
                if (   PL_phase != PERL_PHASE_DESTRUCT
                    && (hek = HvNAME_HEK((HV*)sv)))
                {
                    if (PL_stashcache) {
                        DEBUG_o(Perl_deb(aTHX_
                            "sv_clear clearing PL_stashcache for '%" HEKf
                            "'\n",
                             HEKfARG(hek)));
                        (void)hv_deletehek(PL_stashcache,
                                           hek, G_DISCARD);
                    }
                    hv_name_set((HV*)sv, NULL, 0, 0);
                }

                /* save old iter_sv in unused SvSTASH field */
                assert(!SvOBJECT(sv));
                SvSTASH(sv) = (HV*)iter_sv;
                iter_sv = sv;

                /* save old hash_index in unused SvMAGIC field */
                assert(!SvMAGICAL(sv));
                assert(!SvMAGIC(sv));
                ((XPVMG*) SvANY(sv))->xmg_u.xmg_hash_index = hash_index;
                hash_index = 0;

                next_sv = Perl_hfree_next_entry(aTHX_ (HV*)sv, &hash_index);
                goto get_next_sv; /* process this new sv */
            }
            /* free empty hash */
            Perl_hv_undef_flags(aTHX_ MUTABLE_HV(sv), HV_NAME_SETALL);
            assert(!HvARRAY((HV*)sv));
            break;
        case SVt_PVAV:
            {
                AV* av = MUTABLE_AV(sv);
                if (PL_comppad == av) {
                    PL_comppad = NULL;
                    PL_curpad = NULL;
                }
                if (AvREAL(av) && AvFILLp(av) > -1) {
                    next_sv = AvARRAY(av)[AvFILLp(av)--];
                    /* save old iter_sv in top-most slot of AV,
                     * and pray that it doesn't get wiped in the meantime */
                    AvARRAY(av)[AvMAX(av)] = iter_sv;
                    iter_sv = sv;
                    goto get_next_sv; /* process this new sv */
                }
                Safefree(AvALLOC(av));
            }

            break;
        case SVt_PVOBJ:
            if(ObjectMAXFIELD(sv) > -1) {
                next_sv = ObjectFIELDS(sv)[ObjectMAXFIELD(sv)--];
                /* save old iter_sv in top-most field, and pray that it
                 * doesn't get wiped in the meantime */
                ObjectFIELDS(sv)[(ObjectITERSVAT(sv) = ObjectMAXFIELD(sv) + 1)] = iter_sv;
                iter_sv = sv;
                goto get_next_sv;
            }
            Safefree(ObjectFIELDS(sv));
            break;
        case SVt_PVLV:
            if (LvTYPE(sv) == 'T') { /* for tie: return HE to pool */
                SvREFCNT_dec(HeKEY_sv((HE*)LvTARG(sv)));
                HeNEXT((HE*)LvTARG(sv)) = PL_hv_fetch_ent_mh;
                PL_hv_fetch_ent_mh = (HE*)LvTARG(sv);
            }
            else if (LvTYPE(sv) != 't') /* unless tie: unrefcnted fake SV**  */
                SvREFCNT_dec(LvTARG(sv));
            if (isREGEXP(sv)) {
                /* This PVLV has had a REGEXP assigned to it - the memory
                 * normally used to store SvLEN instead points to a regex body.
                 * Retrieving the pointer to the regex body from the correct
                 * location is normally abstracted by ReANY(), which handles
                 * both SVt_PVLV and SVt_REGEXP
                 *
                 * This code is unwinding the storage specific to SVt_PVLV.
                 * We get the body pointer directly from the union, free it,
                 * then set SvLEN to whatever value was in the now-freed regex
                 * body. The PVX buffer is shared by multiple re's and only
                 * freed once, by the re whose SvLEN is non-null.
                 *
                 * Perl_sv_force_normal_flags() also has code to free this
                 * hidden body - it swaps the body into a temporary SV it has
                 * just allocated, then frees that SV. That causes execution
                 * to reach the SVt_REGEXP: case about 60 lines earlier in this
                 * function.
                 *
                 * See Perl_reg_temp_copy() for the code that sets up this
                 * REGEXP body referenced by the PVLV. */
                struct regexp *r = ((XPV*)SvANY(sv))->xpv_len_u.xpvlenu_rx;
                STRLEN len = r->xpv_len;
                pregfree2((REGEXP*) sv);
                del_body_by_type(r, SVt_REGEXP);
                SvLEN_set((sv), len);
                goto freescalar;
            }
            /* FALLTHROUGH */
        case SVt_PVGV:
            if (isGV_with_GP(sv)) {
                if(GvCVu((const GV *)sv) && (stash = GvSTASH(MUTABLE_GV(sv)))
                   && HvHasENAME(stash))
                    mro_method_changed_in(stash);
                gp_free(MUTABLE_GV(sv));
                if (GvNAME_HEK(sv))
                    unshare_hek(GvNAME_HEK(sv));
                /* If we're in a stash, we don't own a reference to it.
                 * However it does have a back reference to us, which
                 * needs to be cleared.  */
                if ((stash = GvSTASH(sv)))
                        sv_del_backref(MUTABLE_SV(stash), sv);
            }
            /* FIXME. There are probably more unreferenced pointers to SVs
             * in the interpreter struct that we should check and tidy in
             * a similar fashion to this:  */
            /* See also S_sv_unglob, which does the same thing. */
            if ((const GV *)sv == PL_last_in_gv)
                PL_last_in_gv = NULL;
            else if ((const GV *)sv == PL_statgv)
                PL_statgv = NULL;
            else if ((const GV *)sv == PL_stderrgv)
                PL_stderrgv = NULL;
            /* FALLTHROUGH */
        case SVt_PVMG:
        case SVt_PVNV:
        case SVt_PVIV:
        case SVt_INVLIST:
        case SVt_PV:
          freescalar:
            /* Don't bother with SvOOK_off(sv); as we're only going to
             * free it.  */
            if (SvOOK(sv)) {
                STRLEN offset;
                SvOOK_offset(sv, offset);
                SvPV_set(sv, SvPVX_mutable(sv) - offset);
                /* Don't even bother with turning off the OOK flag.  */
            }
            if (SvROK(sv)) {
            free_rv:
                {
                    SV * const target = SvRV(sv);
                    if (SvWEAKREF(sv))
                        sv_del_backref(target, sv);
                    else
                        next_sv = target;
                }
            }
#ifdef PERL_ANY_COW
            else if (SvPVX_const(sv)
                     && !(SvTYPE(sv) == SVt_PVIO
                     && !(IoFLAGS(sv) & IOf_FAKE_DIRP)))
            {
                if (SvIsCOW(sv)) {
#ifdef DEBUGGING
                    if (DEBUG_C_TEST) {
                        PerlIO_printf(Perl_debug_log, "Copy on write: clear\n");
                        sv_dump(sv);
                    }
#endif
                    if (SvIsCOW_static(sv)) {
                        SvLEN_set(sv, 0);
                    }
                    else if (SvIsCOW_shared_hash(sv)) {
                        unshare_hek(SvSHARED_HEK_FROM_PV(SvPVX_const(sv)));
                    }
                    else {
                        if (CowREFCNT(sv)) {
                            sv_buf_to_rw(sv);
                            CowREFCNT(sv)--;
                            sv_buf_to_ro(sv);
                            SvLEN_set(sv, 0);
                        }
                    }
                }
                if (SvLEN(sv)) {
                    Safefree(SvPVX_mutable(sv));
                }
            }
#else
            else if (SvPVX_const(sv) && SvLEN(sv)
                     && !(SvTYPE(sv) == SVt_PVIO
                     && !(IoFLAGS(sv) & IOf_FAKE_DIRP)))
                Safefree(SvPVX_mutable(sv));
            else if (SvPVX_const(sv) && SvIsCOW(sv)) {
                unshare_hek(SvSHARED_HEK_FROM_PV(SvPVX_const(sv)));
            }
#endif
            break;
        case SVt_NV:
            break;
        }

      free_body:

        {
            U32 arena_index;
            const struct body_details *sv_type_details;

            if (type == SVt_PVHV && HvHasAUX(sv)) {
                arena_index = HVAUX_ARENA_ROOT_IX;
                sv_type_details = &fake_hv_with_aux;
            }
            else {
                arena_index = type;
                sv_type_details = bodies_by_type + arena_index;
            }

            SvFLAGS(sv) &= SVf_BREAK;
            SvFLAGS(sv) |= SVTYPEMASK;

            if (sv_type_details->arena) {
                del_body(((char *)SvANY(sv) + sv_type_details->offset),
                         &PL_body_roots[arena_index]);
            }
            else if (sv_type_details->body_size) {
                safefree(SvANY(sv));
            }
        }

      free_head:
        /* caller is responsible for freeing the head of the original sv */
        if (sv != orig_sv && !SvREFCNT(sv))
            del_SV(sv);

        /* grab and free next sv, if any */
      get_next_sv:
        while (1) {
            sv = NULL;
            if (next_sv) {
                sv = next_sv;
                next_sv = NULL;
            }
            else if (!iter_sv) {
                break;
            } else if (SvTYPE(iter_sv) == SVt_PVAV) {
                AV *const av = (AV*)iter_sv;
                if (AvFILLp(av) > -1) {
                    sv = AvARRAY(av)[AvFILLp(av)--];
                }
                else { /* no more elements of current AV to free */
                    sv = iter_sv;
                    type = SvTYPE(sv);
                    /* restore previous value, squirrelled away */
                    iter_sv = AvARRAY(av)[AvMAX(av)];
                    Safefree(AvALLOC(av));
                    goto free_body;
                }
            } else if (SvTYPE(iter_sv) == SVt_PVOBJ) {
                if (ObjectMAXFIELD(iter_sv) > -1) {
                    sv = ObjectFIELDS(iter_sv)[ObjectMAXFIELD(iter_sv)--];
                }
                else { /* no more fields in the current SV to free */
                    sv = iter_sv;
                    type = SvTYPE(sv);
                    iter_sv = ObjectFIELDS(sv)[ObjectITERSVAT(sv)];
                    Safefree(ObjectFIELDS(sv));
                    goto free_body;
                }
            } else if (SvTYPE(iter_sv) == SVt_PVHV) {
                sv = Perl_hfree_next_entry(aTHX_ (HV*)iter_sv, &hash_index);
                if (!sv && !HvTOTALKEYS((HV *)iter_sv)) {
                    /* no more elements of current HV to free */
                    sv = iter_sv;
                    type = SvTYPE(sv);
                    /* Restore previous values of iter_sv and hash_index,
                     * squirrelled away */
                    assert(!SvOBJECT(sv));
                    iter_sv = (SV*)SvSTASH(sv);
                    assert(!SvMAGICAL(sv));
                    hash_index = ((XPVMG*) SvANY(sv))->xmg_u.xmg_hash_index;
#ifdef DEBUGGING
                    /* perl -DA does not like rubbish in SvMAGIC. */
                    SvMAGIC_set(sv, 0);
#endif

                    /* free any remaining detritus from the hash struct */
                    Perl_hv_undef_flags(aTHX_ MUTABLE_HV(sv), HV_NAME_SETALL);
                    assert(!HvARRAY((HV*)sv));
                    goto free_body;
                }
            }

            /* unrolled SvREFCNT_dec and sv_free2 follows: */

            if (!sv)
                continue;
            if (!SvREFCNT(sv)) {
                sv_free(sv);
                continue;
            }
            if (--(SvREFCNT(sv)))
                continue;
#ifdef DEBUGGING
            if (SvTEMP(sv)) {
                Perl_ck_warner_d(aTHX_ packWARN(WARN_DEBUGGING),
                         "Attempt to free temp prematurely: SV 0x%" UVxf
                         pTHX__FORMAT, PTR2UV(sv) pTHX__VALUE);
                continue;
            }
#endif
            if (SvIMMORTAL(sv)) {
                /* make sure SvREFCNT(sv)==0 happens very seldom */
                SvREFCNT(sv) = SvREFCNT_IMMORTAL;
                continue;
            }
            break;
        } /* while 1 */

    } /* while sv */
}

/* This routine curses the sv itself, not the object referenced by sv. So
   sv does not have to be ROK. */

static bool
S_curse(pTHX_ SV * const sv, const bool check_refcnt) {
    PERL_ARGS_ASSERT_CURSE;
    assert(SvOBJECT(sv));

    if (PL_defstash &&	/* Still have a symbol table? */
        SvDESTROYABLE(sv))
    {
        dSP;
        HV* stash;
        do {
          stash = SvSTASH(sv);
          assert(SvTYPE(stash) == SVt_PVHV);
          if (HvNAME(stash)) {
            CV* destructor = NULL;
            struct mro_meta *meta;

            assert (HvHasAUX(stash));

            DEBUG_o( Perl_deb(aTHX_ "Looking for DESTROY method for %s\n",
                         HvNAME(stash)) );

            /* don't make this an initialization above the assert, since it needs
               an AUX structure */
            meta = HvMROMETA(stash);
            if (meta->destroy_gen && meta->destroy_gen == PL_sub_generation) {
                destructor = meta->destroy;
                DEBUG_o( Perl_deb(aTHX_ "Using cached DESTROY method %p for %s\n",
                             (void *)destructor, HvNAME(stash)) );
            }
            else {
                bool autoload = FALSE;
                GV *gv =
                    gv_fetchmeth_pvn(stash, S_destroy, S_destroy_len, -1, 0);
                if (gv)
                    destructor = GvCV(gv);
                if (!destructor) {
                    gv = gv_autoload_pvn(stash, S_destroy, S_destroy_len,
                                         GV_AUTOLOAD_ISMETHOD);
                    if (gv)
                        destructor = GvCV(gv);
                    if (destructor)
                        autoload = TRUE;
                }
                /* we don't cache AUTOLOAD for DESTROY, since this code
                   would then need to set $__PACKAGE__::AUTOLOAD, or the
                   equivalent for XS AUTOLOADs */
                if (!autoload) {
                    meta->destroy_gen = PL_sub_generation;
                    meta->destroy = destructor;

                    DEBUG_o( Perl_deb(aTHX_ "Set cached DESTROY method %p for %s\n",
                                      (void *)destructor, HvNAME(stash)) );
                }
                else {
                    DEBUG_o( Perl_deb(aTHX_ "Not caching AUTOLOAD for DESTROY method for %s\n",
                                      HvNAME(stash)) );
                }
            }
            assert(!destructor || SvTYPE(destructor) == SVt_PVCV);
            if (destructor
                /* A constant subroutine can have no side effects, so
                   don't bother calling it.  */
                && !CvCONST(destructor)
                /* Don't bother calling an empty destructor or one that
                   returns immediately. */
                && (CvISXSUB(destructor)
                || (CvSTART(destructor)
                    && (CvSTART(destructor)->op_next->op_type
                                        != OP_LEAVESUB)
                    && (CvSTART(destructor)->op_next->op_type
                                        != OP_PUSHMARK
                        || CvSTART(destructor)->op_next->op_next->op_type
                                        != OP_RETURN
                       )
                   ))
               )
            {
                SV* const tmpref = newRV(sv);
                SvREADONLY_on(tmpref); /* DESTROY() could be naughty */
                ENTER;
                PUSHSTACKi(PERLSI_DESTROY);
                EXTEND(SP, 2);
                PUSHMARK(SP);
                PUSHs(tmpref);
                PUTBACK;
                call_sv(MUTABLE_SV(destructor),
                            G_DISCARD|G_EVAL|G_KEEPERR|G_VOID);
                POPSTACK;
                SPAGAIN;
                LEAVE;
                if(SvREFCNT(tmpref) < 2) {
                    /* tmpref is not kept alive! */
                    SvREFCNT(sv)--;
                    SvRV_set(tmpref, NULL);
                    SvROK_off(tmpref);
                }
                SvREFCNT_dec_NN(tmpref);
            }
          }
        } while (SvOBJECT(sv) && SvSTASH(sv) != stash);


        if (check_refcnt && SvREFCNT(sv)) {
            if (PL_in_clean_objs)
                Perl_croak(aTHX_
                  "DESTROY created new reference to dead object '%" HEKf "'",
                   HEKfARG(HvNAME_HEK(stash)));
            /* DESTROY gave object new lease on life */
            return FALSE;
        }
    }

    if (SvOBJECT(sv)) {
        HV * const stash = SvSTASH(sv);
        /* Curse before freeing the stash, as freeing the stash could cause
           a recursive call into S_curse. */
        SvOBJECT_off(sv);	/* Curse the object. */
        SvSTASH_set(sv,0);	/* SvREFCNT_dec may try to read this */
        SvREFCNT_dec(stash); /* possibly of changed persuasion */
    }
    return TRUE;
}

/*
=for apidoc sv_newref

Increment an SV's reference count.  Use the C<SvREFCNT_inc()> wrapper
instead.

=cut
*/

SV *
Perl_sv_newref(pTHX_ SV *const sv)
{
    PERL_UNUSED_CONTEXT;
    if (sv)
        (SvREFCNT(sv))++;
    return sv;
}

/*
=for apidoc sv_free

Decrement an SV's reference count, and if it drops to zero, call
C<sv_clear> to invoke destructors and free up any memory used by
the body; finally, deallocating the SV's head itself.
Normally called via a wrapper macro C<SvREFCNT_dec>.

=cut
*/

void
Perl_sv_free(pTHX_ SV *const sv)
{
    SvREFCNT_dec(sv);
}


/* Private helper function for SvREFCNT_dec().
 * Called with rc set to original SvREFCNT(sv), where rc == 0 or 1 */

void
Perl_sv_free2(pTHX_ SV *const sv, const U32 rc)
{

    PERL_ARGS_ASSERT_SV_FREE2;

    if (LIKELY( rc == 1 )) {
        /* normal case */
        SvREFCNT(sv) = 0;

#ifdef DEBUGGING
        if (SvTEMP(sv)) {
            Perl_ck_warner_d(aTHX_ packWARN(WARN_DEBUGGING),
                             "Attempt to free temp prematurely: SV 0x%" UVxf
                             pTHX__FORMAT, PTR2UV(sv) pTHX__VALUE);
            return;
        }
#endif
        if (SvIMMORTAL(sv)) {
            /* make sure SvREFCNT(sv)==0 happens very seldom */
            SvREFCNT(sv) = SvREFCNT_IMMORTAL;
            return;
        }
        sv_clear(sv);
        if (! SvREFCNT(sv)) /* may have have been resurrected */
            del_SV(sv);
        return;
    }

    /* handle exceptional cases */

    assert(rc == 0);

    if (SvFLAGS(sv) & SVf_BREAK)
        /* this SV's refcnt has been artificially decremented to
         * trigger cleanup */
        return;
    if (PL_in_clean_all) /* All is fair */
        return;
    if (SvIMMORTAL(sv)) {
        /* make sure SvREFCNT(sv)==0 happens very seldom */
        SvREFCNT(sv) = SvREFCNT_IMMORTAL;
        return;
    }
    if (ckWARN_d(WARN_INTERNAL)) {
#ifdef DEBUG_LEAKING_SCALARS_FORK_DUMP
        Perl_dump_sv_child(aTHX_ sv);
#else
    #ifdef DEBUG_LEAKING_SCALARS
        sv_dump(sv);
    #endif
#ifdef DEBUG_LEAKING_SCALARS_ABORT
        if (PL_warnhook == PERL_WARNHOOK_FATAL
            || ckDEAD(packWARN(WARN_INTERNAL))) {
            /* Don't let Perl_warner cause us to escape our fate:  */
            abort();
        }
#endif
        /* This may not return:  */
        Perl_warner(aTHX_ packWARN(WARN_INTERNAL),
                    "Attempt to free unreferenced scalar: SV 0x%" UVxf
                    pTHX__FORMAT, PTR2UV(sv) pTHX__VALUE);
#endif
    }
#ifdef DEBUG_LEAKING_SCALARS_ABORT
    abort();
#endif

}


/*
=for apidoc sv_len

Returns the length of the string in the SV.  Handles magic and type
coercion and sets the UTF8 flag appropriately.  See also C<L</SvCUR>>, which
gives raw access to the C<xpv_cur> slot.

=cut
*/

STRLEN
Perl_sv_len(pTHX_ SV *const sv)
{
    STRLEN len;

    if (!sv)
        return 0;

    (void)SvPV_const(sv, len);
    return len;
}

/*
=for apidoc sv_len_utf8
=for apidoc_item sv_len_utf8_nomg

These return the number of characters in the string in an SV, counting wide
UTF-8 bytes as a single character.  Both handle type coercion.
They differ only in that C<sv_len_utf8> performs 'get' magic;
C<sv_len_utf8_nomg> skips any magic.

=cut
*/

/*
 * The length is cached in PERL_MAGIC_utf8, in the mg_len field.  Also the
 * mg_ptr is used, by sv_pos_u2b() and sv_pos_b2u() - see the comments below.
 * (Note that the mg_len is not the length of the mg_ptr field.
 * This allows the cache to store the character length of the string without
 * needing to malloc() extra storage to attach to the mg_ptr.)
 *
 */

STRLEN
Perl_sv_len_utf8(pTHX_ SV *const sv)
{
    if (!sv)
        return 0;

    SvGETMAGIC(sv);
    return sv_len_utf8_nomg(sv);
}

STRLEN
Perl_sv_len_utf8_nomg(pTHX_ SV * const sv)
{
    STRLEN len;
    const U8 *s = (U8*)SvPV_nomg_const(sv, len);

    PERL_ARGS_ASSERT_SV_LEN_UTF8_NOMG;

    if (PL_utf8cache && SvUTF8(sv)) {
            STRLEN ulen;
            MAGIC *mg = SvMAGICAL(sv) ? mg_find(sv, PERL_MAGIC_utf8) : NULL;

            if (mg && (mg->mg_len != -1 || mg->mg_ptr)) {
                if (mg->mg_len != -1)
                    ulen = mg->mg_len;
                else {
                    /* We can use the offset cache for a headstart.
                       The longer value is stored in the first pair.  */
                    STRLEN *cache = (STRLEN *) mg->mg_ptr;

                    ulen = cache[0] + Perl_utf8_length(aTHX_ s + cache[1],
                                                       s + len);
                }

                if (PL_utf8cache < 0) {
                    const STRLEN real = Perl_utf8_length(aTHX_ s, s + len);
                    assert_uft8_cache_coherent("sv_len_utf8", ulen, real, sv);
                }
            }
            else {
                ulen = Perl_utf8_length(aTHX_ s, s + len);
                utf8_mg_len_cache_update(sv, &mg, ulen);
            }
            return ulen;
    }
    return SvUTF8(sv) ? Perl_utf8_length(aTHX_ s, s + len) : len;
}

/* Walk forwards to find the byte corresponding to the passed in UTF-8
   offset.  */
static STRLEN
S_sv_pos_u2b_forwards(const U8 *const start, const U8 *const send,
                      STRLEN *const uoffset_p, bool *const at_end,
                      bool* canonical_position)
{
    const U8 *s = start;
    STRLEN uoffset = *uoffset_p;

    PERL_ARGS_ASSERT_SV_POS_U2B_FORWARDS;

    while (s < send && uoffset) {
        --uoffset;
        s += UTF8SKIP(s);
    }
    if (s == send) {
        *at_end = TRUE;
    }
    else if (s > send) {
        *at_end = TRUE;
        /* This is the existing behaviour. Possibly it should be a croak, as
           it's actually a bounds error  */
        s = send;
    }
    /* If the unicode position is beyond the end, we return the end but
       shouldn't cache that position */
    *canonical_position = (uoffset == 0);
    *uoffset_p -= uoffset;
    return s - start;
}

/* Given the length of the string in both bytes and UTF-8 characters, decide
   whether to walk forwards or backwards to find the byte corresponding to
   the passed in UTF-8 offset.  */
static STRLEN
S_sv_pos_u2b_midway(const U8 *const start, const U8 *send,
                    STRLEN uoffset, const STRLEN uend)
{
    STRLEN backw = uend - uoffset;

    PERL_ARGS_ASSERT_SV_POS_U2B_MIDWAY;

    if (uoffset < 2 * backw) {
        /* The assumption is that going forwards is twice the speed of going
           forward (that's where the 2 * backw comes from).
           (The real figure of course depends on the UTF-8 data.)  */
        const U8 *s = start;

        while (s < send && uoffset--)
            s += UTF8SKIP(s);
        assert (s <= send);
        if (s > send)
            s = send;
        return s - start;
    }

    while (backw--) {
        send--;
        while (UTF8_IS_CONTINUATION(*send))
            send--;
    }
    return send - start;
}

/* For the string representation of the given scalar, find the byte
   corresponding to the passed in UTF-8 offset.  uoffset0 and boffset0
   give another position in the string, *before* the sought offset, which
   (which is always true, as 0, 0 is a valid pair of positions), which should
   help reduce the amount of linear searching.
   If *mgp is non-NULL, it should point to the UTF-8 cache magic, which
   will be used to reduce the amount of linear searching. The cache will be
   created if necessary, and the found value offered to it for update.  */
static STRLEN
S_sv_pos_u2b_cached(pTHX_ SV *const sv, MAGIC **const mgp, const U8 *const start,
                    const U8 *const send, STRLEN uoffset,
                    STRLEN uoffset0, STRLEN boffset0)
{
    STRLEN boffset = 0; /* Actually always set, but let's keep gcc happy.  */
    bool found = FALSE;
    bool at_end = FALSE;
    bool canonical_position = FALSE;

    PERL_ARGS_ASSERT_SV_POS_U2B_CACHED;

    assert (uoffset >= uoffset0);

    if (!uoffset)
        return 0;

    if (!SvREADONLY(sv) && !SvGMAGICAL(sv) && SvPOK(sv)
        && PL_utf8cache
        && (*mgp || (SvTYPE(sv) >= SVt_PVMG &&
                     (*mgp = mg_find(sv, PERL_MAGIC_utf8))))) {
        if ((*mgp)->mg_ptr) {
            STRLEN *cache = (STRLEN *) (*mgp)->mg_ptr;
            if (cache[0] == uoffset) {
                /* An exact match. */
                return cache[1];
            }
            if (cache[2] == uoffset) {
                /* An exact match. */
                return cache[3];
            }

            if (cache[0] < uoffset) {
                /* The cache already knows part of the way.   */
                if (cache[0] > uoffset0) {
                    /* The cache knows more than the passed in pair  */
                    uoffset0 = cache[0];
                    boffset0 = cache[1];
                }
                if ((*mgp)->mg_len != -1) {
                    /* And we know the end too.  */
                    boffset = boffset0
                        + sv_pos_u2b_midway(start + boffset0, send,
                                              uoffset - uoffset0,
                                              (*mgp)->mg_len - uoffset0);
                } else {
                    uoffset -= uoffset0;
                    boffset = boffset0
                        + sv_pos_u2b_forwards(start + boffset0,
                                              send, &uoffset, &at_end,
                                              &canonical_position);
                    uoffset += uoffset0;
                }
            }
            else if (cache[2] < uoffset) {
                /* We're between the two cache entries.  */
                if (cache[2] > uoffset0) {
                    /* and the cache knows more than the passed in pair  */
                    uoffset0 = cache[2];
                    boffset0 = cache[3];
                }

                boffset = boffset0
                    + sv_pos_u2b_midway(start + boffset0,
                                          start + cache[1],
                                          uoffset - uoffset0,
                                          cache[0] - uoffset0);
            } else {
                boffset = boffset0
                    + sv_pos_u2b_midway(start + boffset0,
                                          start + cache[3],
                                          uoffset - uoffset0,
                                          cache[2] - uoffset0);
            }
            found = TRUE;
        }
        else if ((*mgp)->mg_len != -1) {
            /* If we can take advantage of a passed in offset, do so.  */
            /* In fact, offset0 is either 0, or less than offset, so don't
               need to worry about the other possibility.  */
            boffset = boffset0
                + sv_pos_u2b_midway(start + boffset0, send,
                                      uoffset - uoffset0,
                                      (*mgp)->mg_len - uoffset0);
            found = TRUE;
        }
    }

    if (!found || PL_utf8cache < 0) {
        STRLEN real_boffset;
        uoffset -= uoffset0;
        real_boffset = boffset0 + sv_pos_u2b_forwards(start + boffset0,
                                                      send, &uoffset, &at_end,
                                                      &canonical_position);
        uoffset += uoffset0;

        if (found && PL_utf8cache < 0)
            assert_uft8_cache_coherent("sv_pos_u2b_cache", boffset,
                                       real_boffset, sv);
        boffset = real_boffset;
    }

    if (PL_utf8cache && canonical_position && !SvGMAGICAL(sv) && SvPOK(sv)) {
        if (at_end)
            utf8_mg_len_cache_update(sv, mgp, uoffset);
        else
            utf8_mg_pos_cache_update(sv, mgp, boffset, uoffset, send - start);
    }
    return boffset;
}


/*
=for apidoc sv_pos_u2b_flags

Converts the offset from a count of UTF-8 chars from
the start of the string, to a count of the equivalent number of bytes; if
C<lenp> is non-zero, it does the same to C<lenp>, but this time starting from
C<offset>, rather than from the start
of the string.  Handles type coercion.
C<flags> is passed to C<SvPV_flags>, and usually should be
C<SV_GMAGIC|SV_CONST_RETURN> to handle magic.

=cut
*/

/*
 * sv_pos_u2b_flags() uses, like sv_pos_b2u(), the mg_ptr of the potential
 * PERL_MAGIC_utf8 of the sv to store the mapping between UTF-8 and
 * byte offsets.  See also the comments of S_utf8_mg_pos_cache_update().
 *
 */

STRLEN
Perl_sv_pos_u2b_flags(pTHX_ SV *const sv, STRLEN uoffset, STRLEN *const lenp,
                      U32 flags)
{
    const U8 *start;
    STRLEN len;
    STRLEN boffset;

    PERL_ARGS_ASSERT_SV_POS_U2B_FLAGS;

    start = (U8*)SvPV_flags(sv, len, flags);
    if (len) {
        const U8 * const send = start + len;
        MAGIC *mg = NULL;
        boffset = sv_pos_u2b_cached(sv, &mg, start, send, uoffset, 0, 0);

        if (lenp
            && *lenp /* don't bother doing work for 0, as its bytes equivalent
                        is 0, and *lenp is already set to that.  */) {
            /* Convert the relative offset to absolute.  */
            const STRLEN uoffset2 = uoffset + *lenp;
            const STRLEN boffset2
                = sv_pos_u2b_cached(sv, &mg, start, send, uoffset2,
                                      uoffset, boffset) - boffset;

            *lenp = boffset2;
        }
    } else {
        if (lenp)
            *lenp = 0;
        boffset = 0;
    }

    return boffset;
}

/*
=for apidoc sv_pos_u2b

Converts the value pointed to by C<offsetp> from a count of UTF-8 chars from
the start of the string, to a count of the equivalent number of bytes; if
C<lenp> is non-zero, it does the same to C<lenp>, but this time starting from
the offset, rather than from the start of the string.  Handles magic and
type coercion.

Use C<sv_pos_u2b_flags> in preference, which correctly handles strings longer
than 2Gb.

=cut
*/

/*
 * sv_pos_u2b() uses, like sv_pos_b2u(), the mg_ptr of the potential
 * PERL_MAGIC_utf8 of the sv to store the mapping between UTF-8 and
 * byte offsets.  See also the comments of S_utf8_mg_pos_cache_update().
 *
 */

/* This function is subject to size and sign problems */

void
Perl_sv_pos_u2b(pTHX_ SV *const sv, I32 *const offsetp, I32 *const lenp)
{
    PERL_ARGS_ASSERT_SV_POS_U2B;

    if (lenp) {
        STRLEN ulen = (STRLEN)*lenp;
        *offsetp = (I32)sv_pos_u2b_flags(sv, (STRLEN)*offsetp, &ulen,
                                         SV_GMAGIC|SV_CONST_RETURN);
        *lenp = (I32)ulen;
    } else {
        *offsetp = (I32)sv_pos_u2b_flags(sv, (STRLEN)*offsetp, NULL,
                                         SV_GMAGIC|SV_CONST_RETURN);
    }
}

static void
S_utf8_mg_len_cache_update(pTHX_ SV *const sv, MAGIC **const mgp,
                           const STRLEN ulen)
{
    PERL_ARGS_ASSERT_UTF8_MG_LEN_CACHE_UPDATE;
    if (SvREADONLY(sv) || SvGMAGICAL(sv) || !SvPOK(sv))
        return;

    if (!*mgp && (SvTYPE(sv) < SVt_PVMG ||
                  !(*mgp = mg_find(sv, PERL_MAGIC_utf8)))) {
        *mgp = sv_magicext(sv, 0, PERL_MAGIC_utf8, &PL_vtbl_utf8, 0, 0);
    }
    assert(*mgp);

    (*mgp)->mg_len = ulen;
}

/* Create and update the UTF8 magic offset cache, with the proffered utf8/
   byte length pairing. The (byte) length of the total SV is passed in too,
   as blen, because for some (more esoteric) SVs, the call to SvPV_const()
   may not have updated SvCUR, so we can't rely on reading it directly.

   The proffered utf8/byte length pairing isn't used if the cache already has
   two pairs, and swapping either for the proffered pair would increase the
   RMS of the intervals between known byte offsets.

   The cache itself consists of 4 STRLEN values
   0: larger UTF-8 offset
   1: corresponding byte offset
   2: smaller UTF-8 offset
   3: corresponding byte offset

   Unused cache pairs have the value 0, 0.
   Keeping the cache "backwards" means that the invariant of
   cache[0] >= cache[2] is maintained even with empty slots, which means that
   the code that uses it doesn't need to worry if only 1 entry has actually
   been set to non-zero.  It also makes the "position beyond the end of the
   cache" logic much simpler, as the first slot is always the one to start
   from.
*/
static void
S_utf8_mg_pos_cache_update(pTHX_ SV *const sv, MAGIC **const mgp, const STRLEN byte,
                           const STRLEN utf8, const STRLEN blen)
{
    STRLEN *cache;

    PERL_ARGS_ASSERT_UTF8_MG_POS_CACHE_UPDATE;

    if (SvREADONLY(sv))
        return;

    if (!*mgp && (SvTYPE(sv) < SVt_PVMG ||
                  !(*mgp = mg_find(sv, PERL_MAGIC_utf8)))) {
        *mgp = sv_magicext(sv, 0, PERL_MAGIC_utf8, (MGVTBL*)&PL_vtbl_utf8, 0,
                           0);
        (*mgp)->mg_len = -1;
    }
    assert(*mgp);

    if (!(cache = (STRLEN *)(*mgp)->mg_ptr)) {
        Newxz(cache, PERL_MAGIC_UTF8_CACHESIZE * 2, STRLEN);
        (*mgp)->mg_ptr = (char *) cache;
    }
    assert(cache);

    if (PL_utf8cache < 0 && SvPOKp(sv)) {
        /* SvPOKp() because, if sv is a reference, then SvPVX() is actually
           a pointer.  Note that we no longer cache utf8 offsets on refer-
           ences, but this check is still a good idea, for robustness.  */
        const U8 *start = (const U8 *) SvPVX_const(sv);
        const STRLEN realutf8 = utf8_length(start, start + byte);

        assert_uft8_cache_coherent("utf8_mg_pos_cache_update", utf8, realutf8,
                                   sv);
    }

    /* Cache is held with the later position first, to simplify the code
       that deals with unbounded ends.  */

    ASSERT_UTF8_CACHE(cache);
    if (cache[1] == 0) {
        /* Cache is totally empty  */
        cache[0] = utf8;
        cache[1] = byte;
    } else if (cache[3] == 0) {
        if (byte > cache[1]) {
            /* New one is larger, so goes first.  */
            cache[2] = cache[0];
            cache[3] = cache[1];
            cache[0] = utf8;
            cache[1] = byte;
        } else {
            cache[2] = utf8;
            cache[3] = byte;
        }
    } else {
/* float casts necessary? XXX */
#define THREEWAY_SQUARE(a,b,c,d) \
            ((float)((d) - (c))) * ((float)((d) - (c))) \
            + ((float)((c) - (b))) * ((float)((c) - (b))) \
               + ((float)((b) - (a))) * ((float)((b) - (a)))

        /* Cache has 2 slots in use, and we know three potential pairs.
           Keep the two that give the lowest RMS distance. Do the
           calculation in bytes simply because we always know the byte
           length.  squareroot has the same ordering as the positive value,
           so don't bother with the actual square root.  */
        if (byte > cache[1]) {
            /* New position is after the existing pair of pairs.  */
            const float keep_earlier
                = THREEWAY_SQUARE(0, cache[3], byte, blen);
            const float keep_later
                = THREEWAY_SQUARE(0, cache[1], byte, blen);

            if (keep_later < keep_earlier) {
                cache[2] = cache[0];
                cache[3] = cache[1];
            }
            cache[0] = utf8;
            cache[1] = byte;
        }
        else {
            const float keep_later = THREEWAY_SQUARE(0, byte, cache[1], blen);
            float b, c, keep_earlier;
            if (byte > cache[3]) {
                /* New position is between the existing pair of pairs.  */
                b = (float)cache[3];
                c = (float)byte;
            } else {
                /* New position is before the existing pair of pairs.  */
                b = (float)byte;
                c = (float)cache[3];
            }
            keep_earlier = THREEWAY_SQUARE(0, b, c, blen);
            if (byte > cache[3]) {
                if (keep_later < keep_earlier) {
                    cache[2] = utf8;
                    cache[3] = byte;
                }
                else {
                    cache[0] = utf8;
                    cache[1] = byte;
                }
            }
            else {
                if (! (keep_later < keep_earlier)) {
                    cache[0] = cache[2];
                    cache[1] = cache[3];
                }
                cache[2] = utf8;
                cache[3] = byte;
            }
        }
    }
    ASSERT_UTF8_CACHE(cache);
}

/* We already know all of the way, now we may be able to walk back.  The same
   assumption is made as in S_sv_pos_u2b_midway(), namely that walking
   backward is half the speed of walking forward. */
static STRLEN
S_sv_pos_b2u_midway(pTHX_ const U8 *const s, const U8 *const target,
                    const U8 *end, STRLEN endu)
{
    const STRLEN forw = target - s;
    STRLEN backw = end - target;

    PERL_ARGS_ASSERT_SV_POS_B2U_MIDWAY;

    if (forw < 2 * backw) {
        return utf8_length(s, target);
    }

    while (end > target) {
        end--;
        while (UTF8_IS_CONTINUATION(*end)) {
            end--;
        }
        endu--;
    }
    return endu;
}

/*
=for apidoc sv_pos_b2u_flags

Converts C<offset> from a count of bytes from the start of the string, to
a count of the equivalent number of UTF-8 chars.  Handles type coercion.
C<flags> is passed to C<SvPV_flags>, and usually should be
C<SV_GMAGIC|SV_CONST_RETURN> to handle magic.

=cut
*/

/*
 * sv_pos_b2u_flags() uses, like sv_pos_u2b_flags(), the mg_ptr of the
 * potential PERL_MAGIC_utf8 of the sv to store the mapping between UTF-8
 * and byte offsets.
 *
 */
STRLEN
Perl_sv_pos_b2u_flags(pTHX_ SV *const sv, STRLEN const offset, U32 flags)
{
    const U8* s;
    STRLEN len = 0; /* Actually always set, but let's keep gcc happy.  */
    STRLEN blen;
    MAGIC* mg = NULL;
    const U8* send;
    bool found = FALSE;

    PERL_ARGS_ASSERT_SV_POS_B2U_FLAGS;

    s = (const U8*)SvPV_flags(sv, blen, flags);

    if (blen < offset)
        Perl_croak(aTHX_ "panic: sv_pos_b2u: bad byte offset, blen=%" UVuf
                   ", byte=%" UVuf, (UV)blen, (UV)offset);

    send = s + offset;

    if (!SvREADONLY(sv)
        && PL_utf8cache
        && SvTYPE(sv) >= SVt_PVMG
        && (mg = mg_find(sv, PERL_MAGIC_utf8)))
    {
        if (mg->mg_ptr) {
            STRLEN * const cache = (STRLEN *) mg->mg_ptr;
            if (cache[1] == offset) {
                /* An exact match. */
                return cache[0];
            }
            if (cache[3] == offset) {
                /* An exact match. */
                return cache[2];
            }

            if (cache[1] < offset) {
                /* We already know part of the way. */
                if (mg->mg_len != -1) {
                    /* Actually, we know the end too.  */
                    len = cache[0]
                        + S_sv_pos_b2u_midway(aTHX_ s + cache[1], send,
                                              s + blen, mg->mg_len - cache[0]);
                } else {
                    len = cache[0] + utf8_length(s + cache[1], send);
                }
            }
            else if (cache[3] < offset) {
                /* We're between the two cached pairs, so we do the calculation
                   offset by the byte/utf-8 positions for the earlier pair,
                   then add the utf-8 characters from the string start to
                   there.  */
                len = S_sv_pos_b2u_midway(aTHX_ s + cache[3], send,
                                          s + cache[1], cache[0] - cache[2])
                    + cache[2];

            }
            else { /* cache[3] > offset */
                len = S_sv_pos_b2u_midway(aTHX_ s, send, s + cache[3],
                                          cache[2]);

            }
            ASSERT_UTF8_CACHE(cache);
            found = TRUE;
        } else if (mg->mg_len != -1) {
            len = S_sv_pos_b2u_midway(aTHX_ s, send, s + blen, mg->mg_len);
            found = TRUE;
        }
    }
    if (!found || PL_utf8cache < 0) {
        const STRLEN real_len = utf8_length(s, send);

        if (found && PL_utf8cache < 0)
            assert_uft8_cache_coherent("sv_pos_b2u", len, real_len, sv);
        len = real_len;
    }

    if (PL_utf8cache) {
        if (blen == offset)
            utf8_mg_len_cache_update(sv, &mg, len);
        else
            utf8_mg_pos_cache_update(sv, &mg, offset, len, blen);
    }

    return len;
}

/*
=for apidoc sv_pos_b2u

Converts the value pointed to by C<offsetp> from a count of bytes from the
start of the string, to a count of the equivalent number of UTF-8 chars.
Handles magic and type coercion.

Use C<sv_pos_b2u_flags> in preference, which correctly handles strings
longer than 2Gb.

=cut
*/

/*
 * sv_pos_b2u() uses, like sv_pos_u2b(), the mg_ptr of the potential
 * PERL_MAGIC_utf8 of the sv to store the mapping between UTF-8 and
 * byte offsets.
 *
 */
void
Perl_sv_pos_b2u(pTHX_ SV *const sv, I32 *const offsetp)
{
    PERL_ARGS_ASSERT_SV_POS_B2U;

    if (!sv)
        return;

    *offsetp = (I32)sv_pos_b2u_flags(sv, (STRLEN)*offsetp,
                                     SV_GMAGIC|SV_CONST_RETURN);
}

static void
S_assert_uft8_cache_coherent(pTHX_ const char *const func, STRLEN from_cache,
                             STRLEN real, SV *const sv)
{
    PERL_ARGS_ASSERT_ASSERT_UFT8_CACHE_COHERENT;

    /* As this is debugging only code, save space by keeping this test here,
       rather than inlining it in all the callers.  */
    if (from_cache == real)
        return;

    /* Need to turn the assertions off otherwise we may recurse infinitely
       while printing error messages.  */
    SAVEI8(PL_utf8cache);
    PL_utf8cache = 0;
    Perl_croak(aTHX_ "panic: %s cache %" UVuf " real %" UVuf " for %" SVf,
               func, (UV) from_cache, (UV) real, SVfARG(sv));
}

/*
=for apidoc sv_eq

Returns a boolean indicating whether the strings in the two SVs are
identical.  Is UTF-8 and S<C<'use bytes'>> aware, handles get magic, and will
coerce its args to strings if necessary.

This function does not handle operator overloading. For a version that does,
see instead C<sv_streq>.

=for apidoc sv_eq_flags

Returns a boolean indicating whether the strings in the two SVs are
identical.  Is UTF-8 and S<C<'use bytes'>> aware and coerces its args to strings
if necessary.  If the flags has the C<SV_GMAGIC> bit set, it handles get-magic, too.

This function does not handle operator overloading. For a version that does,
see instead C<sv_streq_flags>.

=cut
*/

I32
Perl_sv_eq_flags(pTHX_ SV *sv1, SV *sv2, const U32 flags)
{
    const char *pv1;
    STRLEN cur1;
    const char *pv2;
    STRLEN cur2;

    if (!sv1) {
        pv1 = "";
        cur1 = 0;
    }
    else {
        /* if pv1 and pv2 are the same, second SvPV_const call may
         * invalidate pv1 (if we are handling magic), so we may need to
         * make a copy */
        if (sv1 == sv2 && flags & SV_GMAGIC
         && (SvTHINKFIRST(sv1) || SvGMAGICAL(sv1))) {
            pv1 = SvPV_const(sv1, cur1);
            sv1 = newSVpvn_flags(pv1, cur1, SVs_TEMP | SvUTF8(sv2));
        }
        pv1 = SvPV_flags_const(sv1, cur1, flags);
    }

    if (!sv2){
        pv2 = "";
        cur2 = 0;
    }
    else
        pv2 = SvPV_flags_const(sv2, cur2, flags);

    if (cur1 && cur2 && SvUTF8(sv1) != SvUTF8(sv2) && !IN_BYTES) {
        /* Differing utf8ness.  */
        if (SvUTF8(sv1)) {
                  /* sv1 is the UTF-8 one  */
                  return bytes_cmp_utf8((const U8*)pv2, cur2,
                                        (const U8*)pv1, cur1) == 0;
        }
        else {
                  /* sv2 is the UTF-8 one  */
                  return bytes_cmp_utf8((const U8*)pv1, cur1,
                                        (const U8*)pv2, cur2) == 0;
        }
    }

    if (cur1 == cur2)
        return (pv1 == pv2) || memEQ(pv1, pv2, cur1);
    else
        return 0;
}

/*
=for apidoc sv_streq_flags

Returns a boolean indicating whether the strings in the two SVs are
identical. If the flags argument has the C<SV_GMAGIC> bit set, it handles
get-magic too. Will coerce its args to strings if necessary. Treats
C<NULL> as undef. Correctly handles the UTF8 flag.

If flags does not have the C<SV_SKIP_OVERLOAD> bit set, an attempt to use
C<eq> overloading will be made. If such overloading does not exist or the
flag is set, then regular string comparison will be used instead.

=for apidoc sv_streq

A convenient shortcut for calling C<sv_streq_flags> with the C<SV_GMAGIC>
flag. This function basically behaves like the Perl code C<$sv1 eq $sv2>.

=cut
*/

bool
Perl_sv_streq_flags(pTHX_ SV *sv1, SV *sv2, const U32 flags)
{
    PERL_ARGS_ASSERT_SV_STREQ_FLAGS;

    if(flags & SV_GMAGIC) {
        if(sv1)
            SvGETMAGIC(sv1);
        if(sv2)
            SvGETMAGIC(sv2);
    }

    /* Treat NULL as undef */
    if(!sv1)
        sv1 = &PL_sv_undef;
    if(!sv2)
        sv2 = &PL_sv_undef;

    if(!(flags & SV_SKIP_OVERLOAD) &&
            (SvAMAGIC(sv1) || SvAMAGIC(sv2))) {
        SV *ret = amagic_call(sv1, sv2, seq_amg, 0);
        if(ret)
            return SvTRUE(ret);
    }

    return sv_eq_flags(sv1, sv2, 0);
}

/*
=for apidoc sv_numeq_flags

Returns a boolean indicating whether the numbers in the two SVs are
identical. If the flags argument has the C<SV_GMAGIC> bit set, it handles
get-magic too. Will coerce its args to numbers if necessary. Treats
C<NULL> as undef.

If flags does not have the C<SV_SKIP_OVERLOAD> bit set, an attempt to use
C<==> overloading will be made. If such overloading does not exist or the
flag is set, then regular numerical comparison will be used instead.

=for apidoc sv_numeq

A convenient shortcut for calling C<sv_numeq_flags> with the C<SV_GMAGIC>
flag. This function basically behaves like the Perl code C<$sv1 == $sv2>.

=cut
*/

bool
Perl_sv_numeq_flags(pTHX_ SV *sv1, SV *sv2, const U32 flags)
{
    PERL_ARGS_ASSERT_SV_NUMEQ_FLAGS;

    if(flags & SV_GMAGIC) {
        if(sv1)
            SvGETMAGIC(sv1);
        if(sv2)
            SvGETMAGIC(sv2);
    }

    /* Treat NULL as undef */
    if(!sv1)
        sv1 = &PL_sv_undef;
    if(!sv2)
        sv2 = &PL_sv_undef;

    if(!(flags & SV_SKIP_OVERLOAD) &&
            (SvAMAGIC(sv1) || SvAMAGIC(sv2))) {
        SV *ret = amagic_call(sv1, sv2, eq_amg, 0);
        if(ret)
            return SvTRUE(ret);
    }

    return do_ncmp(sv1, sv2) == 0;
}

/*
=for apidoc sv_cmp

Compares the strings in two SVs.  Returns -1, 0, or 1 indicating whether the
string in C<sv1> is less than, equal to, or greater than the string in
C<sv2>.  Is UTF-8 and S<C<'use bytes'>> aware, handles get magic, and will
coerce its args to strings if necessary.  See also C<L</sv_cmp_locale>>.

=for apidoc sv_cmp_flags

Compares the strings in two SVs.  Returns -1, 0, or 1 indicating whether the
string in C<sv1> is less than, equal to, or greater than the string in
C<sv2>.  Is UTF-8 and S<C<'use bytes'>> aware and will coerce its args to strings
if necessary.  If the flags has the C<SV_GMAGIC> bit set, it handles get magic.  See
also C<L</sv_cmp_locale_flags>>.

=cut
*/

I32
Perl_sv_cmp(pTHX_ SV *const sv1, SV *const sv2)
{
    return sv_cmp_flags(sv1, sv2, SV_GMAGIC);
}

I32
Perl_sv_cmp_flags(pTHX_ SV *const sv1, SV *const sv2,
                  const U32 flags)
{
    STRLEN cur1, cur2;
    const char *pv1, *pv2;
    I32  cmp;
    SV *svrecode = NULL;

    if (!sv1) {
        pv1 = "";
        cur1 = 0;
    }
    else
        pv1 = SvPV_flags_const(sv1, cur1, flags);

    if (!sv2) {
        pv2 = "";
        cur2 = 0;
    }
    else
        pv2 = SvPV_flags_const(sv2, cur2, flags);

    if (cur1 && cur2 && SvUTF8(sv1) != SvUTF8(sv2) && !IN_BYTES) {
        /* Differing utf8ness.  */
        if (SvUTF8(sv1)) {
                const int retval = -bytes_cmp_utf8((const U8*)pv2, cur2,
                                                   (const U8*)pv1, cur1);
                return retval ? retval < 0 ? -1 : +1 : 0;
        }
        else {
                const int retval = bytes_cmp_utf8((const U8*)pv1, cur1,
                                                  (const U8*)pv2, cur2);
                return retval ? retval < 0 ? -1 : +1 : 0;
        }
    }

    /* Here, if both are non-NULL, then they have the same UTF8ness. */

    if (!cur1) {
        cmp = cur2 ? -1 : 0;
    } else if (!cur2) {
        cmp = 1;
    } else {
        STRLEN shortest_len = cur1 < cur2 ? cur1 : cur2;

#ifdef EBCDIC
        if (! DO_UTF8(sv1)) {
#endif
            const I32 retval = memcmp((const void*)pv1,
                                      (const void*)pv2,
                                      shortest_len);
            if (retval) {
                cmp = retval < 0 ? -1 : 1;
            } else if (cur1 == cur2) {
                cmp = 0;
            } else {
                cmp = cur1 < cur2 ? -1 : 1;
            }
#ifdef EBCDIC
        }
        else {  /* Both are to be treated as UTF-EBCDIC */

            /* EBCDIC UTF-8 is complicated by the fact that it is based on I8
             * which remaps code points 0-255.  We therefore generally have to
             * unmap back to the original values to get an accurate comparison.
             * But we don't have to do that for UTF-8 invariants, as by
             * definition, they aren't remapped, nor do we have to do it for
             * above-latin1 code points, as they also aren't remapped.  (This
             * code also works on ASCII platforms, but the memcmp() above is
             * much faster). */

            const char *e = pv1 + shortest_len;

            /* Find the first bytes that differ between the two strings */
            while (pv1 < e && *pv1 == *pv2) {
                pv1++;
                pv2++;
            }


            if (pv1 == e) { /* Are the same all the way to the end */
                if (cur1 == cur2) {
                    cmp = 0;
                } else {
                    cmp = cur1 < cur2 ? -1 : 1;
                }
            }
            else   /* Here *pv1 and *pv2 are not equal, but all bytes earlier
                    * in the strings were.  The current bytes may or may not be
                    * at the beginning of a character.  But neither or both are
                    * (or else earlier bytes would have been different).  And
                    * if we are in the middle of a character, the two
                    * characters are comprised of the same number of bytes
                    * (because in this case the start bytes are the same, and
                    * the start bytes encode the character's length). */
                 if (UTF8_IS_INVARIANT(*pv1))
            {
                /* If both are invariants; can just compare directly */
                if (UTF8_IS_INVARIANT(*pv2)) {
                    cmp = ((U8) *pv1 < (U8) *pv2) ? -1 : 1;
                }
                else   /* Since *pv1 is invariant, it is the whole character,
                          which means it is at the beginning of a character.
                          That means pv2 is also at the beginning of a
                          character (see earlier comment).  Since it isn't
                          invariant, it must be a start byte.  If it starts a
                          character whose code point is above 255, that
                          character is greater than any single-byte char, which
                          *pv1 is */
                      if (UTF8_IS_ABOVE_LATIN1_START(*pv2))
                {
                    cmp = -1;
                }
                else {
                    /* Here, pv2 points to a character composed of 2 bytes
                     * whose code point is < 256.  Get its code point and
                     * compare with *pv1 */
                    cmp = ((U8) *pv1 < EIGHT_BIT_UTF8_TO_NATIVE(*pv2, *(pv2 + 1)))
                           ?  -1
                           : 1;
                }
            }
            else   /* The code point starting at pv1 isn't a single byte */
                 if (UTF8_IS_INVARIANT(*pv2))
            {
                /* But here, the code point starting at *pv2 is a single byte,
                 * and so *pv1 must begin a character, hence is a start byte.
                 * If that character is above 255, it is larger than any
                 * single-byte char, which *pv2 is */
                if (UTF8_IS_ABOVE_LATIN1_START(*pv1)) {
                    cmp = 1;
                }
                else {
                    /* Here, pv1 points to a character composed of 2 bytes
                     * whose code point is < 256.  Get its code point and
                     * compare with the single byte character *pv2 */
                    cmp = (EIGHT_BIT_UTF8_TO_NATIVE(*pv1, *(pv1 + 1)) < (U8) *pv2)
                          ?  -1
                          : 1;
                }
            }
            else   /* Here, we've ruled out either *pv1 and *pv2 being
                      invariant.  That means both are part of variants, but not
                      necessarily at the start of a character */
                 if (   UTF8_IS_ABOVE_LATIN1_START(*pv1)
                     || UTF8_IS_ABOVE_LATIN1_START(*pv2))
            {
                /* Here, at least one is the start of a character, which means
                 * the other is also a start byte.  And the code point of at
                 * least one of the characters is above 255.  It is a
                 * characteristic of UTF-EBCDIC that all start bytes for
                 * above-latin1 code points are well behaved as far as code
                 * point comparisons go, and all are larger than all other
                 * start bytes, so the comparison with those is also well
                 * behaved */
                cmp = ((U8) *pv1 < (U8) *pv2) ? -1 : 1;
            }
            else {
                /* Here both *pv1 and *pv2 are part of variant characters.
                 * They could be both continuations, or both start characters.
                 * (One or both could even be an illegal start character (for
                 * an overlong) which for the purposes of sorting we treat as
                 * legal. */
                if (UTF8_IS_CONTINUATION(*pv1)) {

                    /* If they are continuations for code points above 255,
                     * then comparing the current byte is sufficient, as there
                     * is no remapping of these and so the comparison is
                     * well-behaved.   We determine if they are such
                     * continuations by looking at the preceding byte.  It
                     * could be a start byte, from which we can tell if it is
                     * for an above 255 code point.  Or it could be a
                     * continuation, which means the character occupies at
                     * least 3 bytes, so must be above 255.  */
                    if (   UTF8_IS_CONTINUATION(*(pv2 - 1))
                        || UTF8_IS_ABOVE_LATIN1_START(*(pv2 -1)))
                    {
                        cmp = ((U8) *pv1 < (U8) *pv2) ? -1 : 1;
                        goto cmp_done;
                    }

                    /* Here, the continuations are for code points below 256;
                     * back up one to get to the start byte */
                    pv1--;
                    pv2--;
                }

                /* We need to get the actual native code point of each of these
                 * variants in order to compare them */
                cmp =  (  EIGHT_BIT_UTF8_TO_NATIVE(*pv1, *(pv1 + 1))
                        < EIGHT_BIT_UTF8_TO_NATIVE(*pv2, *(pv2 + 1)))
                        ? -1
                        : 1;
            }
        }
      cmp_done: ;
#endif
    }

    SvREFCNT_dec(svrecode);

    return cmp;
}

/*
=for apidoc sv_cmp_locale

Compares the strings in two SVs in a locale-aware manner.  Is UTF-8 and
S<C<'use bytes'>> aware, handles get magic, and will coerce its args to strings
if necessary.  See also C<L</sv_cmp>>.

=for apidoc sv_cmp_locale_flags

Compares the strings in two SVs in a locale-aware manner.  Is UTF-8 and
S<C<'use bytes'>> aware and will coerce its args to strings if necessary.  If
the flags contain C<SV_GMAGIC>, it handles get magic.  See also
C<L</sv_cmp_flags>>.

=cut
*/

I32
Perl_sv_cmp_locale(pTHX_ SV *const sv1, SV *const sv2)
{
    return sv_cmp_locale_flags(sv1, sv2, SV_GMAGIC);
}

I32
Perl_sv_cmp_locale_flags(pTHX_ SV *const sv1, SV *const sv2,
                         const U32 flags)
{
#ifdef USE_LOCALE_COLLATE

    char *pv1, *pv2;
    STRLEN len1, len2;
    I32 retval;

    if (PL_collation_standard)
        goto raw_compare;

    len1 = len2 = 0;

    /* Revert to using raw compare if both operands exist, but either one
     * doesn't transform properly for collation */
    if (sv1 && sv2) {
        pv1 = sv_collxfrm_flags(sv1, &len1, flags);
        if (! pv1) {
            goto raw_compare;
        }
        pv2 = sv_collxfrm_flags(sv2, &len2, flags);
        if (! pv2) {
            goto raw_compare;
        }
    }
    else {
        pv1 = sv1 ? sv_collxfrm_flags(sv1, &len1, flags) : (char *) NULL;
        pv2 = sv2 ? sv_collxfrm_flags(sv2, &len2, flags) : (char *) NULL;
    }

    if (!pv1 || !len1) {
        if (pv2 && len2)
            return -1;
        else
            goto raw_compare;
    }
    else {
        if (!pv2 || !len2)
            return 1;
    }

    retval = memcmp((void*)pv1, (void*)pv2, len1 < len2 ? len1 : len2);

    if (retval)
        return retval < 0 ? -1 : 1;

    /*
     * When the result of collation is equality, that doesn't mean
     * that there are no differences -- some locales exclude some
     * characters from consideration.  So to avoid false equalities,
     * we use the raw string as a tiebreaker.
     */

  raw_compare:
    /* FALLTHROUGH */

#else
    PERL_UNUSED_ARG(flags);
#endif /* USE_LOCALE_COLLATE */

    return sv_cmp(sv1, sv2);
}


#ifdef USE_LOCALE_COLLATE

/*
=for apidoc sv_collxfrm

This calls C<sv_collxfrm_flags> with the SV_GMAGIC flag.  See
C<L</sv_collxfrm_flags>>.

=for apidoc sv_collxfrm_flags

Add Collate Transform magic to an SV if it doesn't already have it.  If the
flags contain C<SV_GMAGIC>, it handles get-magic.

Any scalar variable may carry C<PERL_MAGIC_collxfrm> magic that contains the
scalar data of the variable, but transformed to such a format that a normal
memory comparison can be used to compare the data according to the locale
settings.

=cut
*/

char *
Perl_sv_collxfrm_flags(pTHX_ SV *const sv, STRLEN *const nxp, const I32 flags)
{
    MAGIC *mg;

    PERL_ARGS_ASSERT_SV_COLLXFRM_FLAGS;

    mg = SvMAGICAL(sv) ? mg_find(sv, PERL_MAGIC_collxfrm) : (MAGIC *) NULL;

    /* If we don't have collation magic on 'sv', or the locale has changed
     * since the last time we calculated it, get it and save it now */
    if (!mg || !mg->mg_ptr || *(U32*)mg->mg_ptr != PL_collation_ix) {
        const char *s;
        char *xf;
        STRLEN len, xlen;

        /* Free the old space */
        if (mg)
            Safefree(mg->mg_ptr);

        s = SvPV_flags_const(sv, len, flags);
        if ((xf = mem_collxfrm_(s, len, &xlen, cBOOL(SvUTF8(sv))))) {
            if (! mg) {
                mg = sv_magicext(sv, 0, PERL_MAGIC_collxfrm, &PL_vtbl_collxfrm,
                                 0, 0);
                assert(mg);
            }
            mg->mg_ptr = xf;
            mg->mg_len = xlen;
        }
        else {
            if (mg) {
                mg->mg_ptr = NULL;
                mg->mg_len = -1;
            }
        }
    }

    if (mg && mg->mg_ptr) {
        *nxp = mg->mg_len;
        return mg->mg_ptr + sizeof(PL_collation_ix);
    }
    else {
        *nxp = 0;
        return NULL;
    }
}

#endif /* USE_LOCALE_COLLATE */

static char *
S_sv_gets_append_to_utf8(pTHX_ SV *const sv, PerlIO *const fp, I32 append)
{
    SV * const tsv = newSV_type(SVt_NULL);
    ENTER;
    SAVEFREESV(tsv);
    sv_gets(tsv, fp, 0);
    sv_utf8_upgrade_nomg(tsv);
    SvCUR_set(sv,append);
    sv_catsv(sv,tsv);
    LEAVE;
    return (SvCUR(sv) - append) ? SvPVX(sv) : NULL;
}

static char *
S_sv_gets_read_record(pTHX_ SV *const sv, PerlIO *const fp, I32 append)
{
    SSize_t bytesread;
    const STRLEN recsize = SvUV(SvRV(PL_rs)); /* RsRECORD() guarantees > 0. */
      /* Grab the size of the record we're getting */
    char *buffer = SvGROW(sv, (STRLEN)(recsize + append + 1)) + append;

    /* Go yank in */
#ifdef __VMS
    int fd;
    Stat_t st;

    /* With a true, record-oriented file on VMS, we need to use read directly
     * to ensure that we respect RMS record boundaries.  The user is responsible
     * for providing a PL_rs value that corresponds to the FAB$W_MRS (maximum
     * record size) field.  N.B. This is likely to produce invalid results on
     * varying-width character data when a record ends mid-character.
     */
    fd = PerlIO_fileno(fp);
    if (fd != -1
        && PerlLIO_fstat(fd, &st) == 0
        && (st.st_fab_rfm == FAB$C_VAR
            || st.st_fab_rfm == FAB$C_VFC
            || st.st_fab_rfm == FAB$C_FIX)) {

        bytesread = PerlLIO_read(fd, buffer, recsize);
    }
    else /* in-memory file from PerlIO::Scalar
          * or not a record-oriented file
          */
#endif
    {
        bytesread = PerlIO_read(fp, buffer, recsize);

        /* At this point, the logic in sv_get() means that sv will
           be treated as utf-8 if the handle is utf8.
        */
        if (PerlIO_isutf8(fp) && bytesread > 0) {
            char *bend = buffer + bytesread;
            char *bufp = buffer;
            size_t charcount = 0;
            bool charstart = TRUE;
            STRLEN skip = 0;

            while (charcount < recsize) {
                /* count accumulated characters */
                while (bufp < bend) {
                    if (charstart) {
                        skip = UTF8SKIP(bufp);
                    }
                    if (bufp + skip > bend) {
                        /* partial at the end */
                        charstart = FALSE;
                        break;
                    }
                    else {
                        ++charcount;
                        bufp += skip;
                        charstart = TRUE;
                    }
                }

                if (charcount < recsize) {
                    STRLEN readsize;
                    STRLEN bufp_offset = bufp - buffer;
                    SSize_t morebytesread;

                    /* originally I read enough to fill any incomplete
                       character and the first byte of the next
                       character if needed, but if there's many
                       multi-byte encoded characters we're going to be
                       making a read call for every character beyond
                       the original read size.

                       So instead, read the rest of the character if
                       any, and enough bytes to match at least the
                       start bytes for each character we're going to
                       read.
                    */
                    if (charstart)
                        readsize = recsize - charcount;
                    else
                        readsize = skip - (bend - bufp) + recsize - charcount - 1;
                    buffer = SvGROW(sv, append + bytesread + readsize + 1) + append;
                    bend = buffer + bytesread;
                    morebytesread = PerlIO_read(fp, bend, readsize);
                    if (morebytesread <= 0) {
                        /* we're done, if we still have incomplete
                           characters the check code in sv_gets() will
                           warn about them.

                           I'd originally considered doing
                           PerlIO_ungetc() on all but the lead
                           character of the incomplete character, but
                           read() doesn't do that, so I don't.
                        */
                        break;
                    }

                    /* prepare to scan some more */
                    bytesread += morebytesread;
                    bend = buffer + bytesread;
                    bufp = buffer + bufp_offset;
                }
            }
        }
    }

    if (bytesread < 0)
        bytesread = 0;
    SvCUR_set(sv, bytesread + append);
    buffer[bytesread] = '\0';
    return (SvCUR(sv) - append) ? SvPVX(sv) : NULL;
}

/*
=for apidoc sv_gets

Get a line from the filehandle and store it into the SV, optionally
appending to the currently-stored string.  If C<append> is not 0, the
line is appended to the SV instead of overwriting it.  C<append> should
be set to the byte offset that the appended string should start at
in the SV (typically, C<SvCUR(sv)> is a suitable choice).

=cut
*/

char *
Perl_sv_gets(pTHX_ SV *const sv, PerlIO *const fp, I32 append)
{
    const char *rsptr;
    STRLEN rslen;
    STDCHAR rslast;
    STDCHAR *bp;
    SSize_t cnt;
    int i = 0;
    int rspara = 0;

    PERL_ARGS_ASSERT_SV_GETS;

    if (SvTHINKFIRST(sv))
        sv_force_normal_flags(sv, append ? 0 : SV_COW_DROP_PV);
    /* XXX. If you make this PVIV, then copy on write can copy scalars read
       from <>.
       However, perlbench says it's slower, because the existing swipe code
       is faster than copy on write.
       Swings and roundabouts.  */
    SvUPGRADE(sv, SVt_PV);

    if (append) {
        /* line is going to be appended to the existing buffer in the sv */
        if (PerlIO_isutf8(fp)) {
            if (!SvUTF8(sv)) {
                sv_utf8_upgrade_nomg(sv);
                sv_pos_u2b(sv,&append,0);
            }
        } else if (SvUTF8(sv)) {
            return S_sv_gets_append_to_utf8(aTHX_ sv, fp, append);
        }
    }

    SvPOK_only(sv);
    if (!append) {
        /* not appending - "clear" the string by setting SvCUR to 0,
         * the pv is still available. */
        SvCUR_set(sv,0);
    }
    if (PerlIO_isutf8(fp))
        SvUTF8_on(sv);

    if (IN_PERL_COMPILETIME) {
        /* we always read code in line mode */
        rsptr = "\n";
        rslen = 1;
    }
    else if (RsSNARF(PL_rs)) {
        /* If it is a regular disk file use size from stat() as estimate
           of amount we are going to read -- may result in mallocing
           more memory than we really need if the layers below reduce
           the size we read (e.g. CRLF or a gzip layer).
         */
        Stat_t st;
        int fd = PerlIO_fileno(fp);
        if (fd >= 0 && (PerlLIO_fstat(fd, &st) == 0) && S_ISREG(st.st_mode))  {
            const Off_t offset = PerlIO_tell(fp);
            if (offset != (Off_t) -1 && st.st_size + append > offset) {
#ifdef PERL_COPY_ON_WRITE
                /* Add an extra byte for the sake of copy-on-write's
                 * buffer reference count. */
                (void) SvGROW(sv, (STRLEN)((st.st_size - offset) + append + 2));
#else
                (void) SvGROW(sv, (STRLEN)((st.st_size - offset) + append + 1));
#endif
            }
        }
        rsptr = NULL;
        rslen = 0;
    }
    else if (RsRECORD(PL_rs)) {
        return S_sv_gets_read_record(aTHX_ sv, fp, append);
    }
    else if (RsPARA(PL_rs)) {
        rsptr = "\n\n";
        rslen = 2;
        rspara = 1;
    }
    else {
        /* Get $/ i.e. PL_rs into same encoding as stream wants */
        if (PerlIO_isutf8(fp)) {
            rsptr = SvPVutf8(PL_rs, rslen);
        }
        else {
            if (SvUTF8(PL_rs)) {
                if (!sv_utf8_downgrade(PL_rs, TRUE)) {
                    Perl_croak(aTHX_ "Wide character in $/");
                }
            }
            /* extract the raw pointer to the record separator */
            rsptr = SvPV_const(PL_rs, rslen);
        }
    }

    /* rslast is the last character in the record separator
     * note we don't use rslast except when rslen is true, so the
     * null assign is a placeholder. */
    rslast = rslen ? rsptr[rslen - 1] : '\0';

    if (rspara) {        /* have to do this both before and after */
                         /* to make sure file boundaries work right */
        while (1) {
            if (PerlIO_eof(fp))
                return 0;
            i = PerlIO_getc(fp);
            if (i != '\n') {
                if (i == -1)
                    return 0;
                PerlIO_ungetc(fp,i);
                break;
            }
        }
    }

    /* See if we know enough about I/O mechanism to cheat it ! */

    /* This used to be #ifdef test - it is made run-time test for ease
       of abstracting out stdio interface. One call should be cheap
       enough here - and may even be a macro allowing compile
       time optimization.
     */

    if (PerlIO_fast_gets(fp)) {
    /*
     * We can do buffer based IO operations on this filehandle.
     *
     * This means we can bypass a lot of subcalls and process
     * the buffer directly, it also means we know the upper bound
     * on the amount of data we might read of the current buffer
     * into our sv. Knowing this allows us to preallocate the pv
     * to be able to hold that maximum, which allows us to simplify
     * a lot of logic. */

    /*
     * We're going to steal some values from the stdio struct
     * and put EVERYTHING in the innermost loop into registers.
     */
    STDCHAR *ptr;       /* pointer into fp's read-ahead buffer */
    STRLEN bpx;         /* length of the data in the target sv
                           used to fix pointers after a SvGROW */
    I32 shortbuffered;  /* If the pv buffer is shorter than the amount
                           of data left in the read-ahead buffer.
                           If 0 then the pv buffer can hold the full
                           amount left, otherwise this is the amount it
                           can hold. */

    /* Here is some breathtakingly efficient cheating */

    /* When you read the following logic resist the urge to think
     * of record separators that are 1 byte long. They are an
     * uninteresting special (simple) case.
     *
     * Instead think of record separators which are at least 2 bytes
     * long, and keep in mind that we need to deal with such
     * separators when they cross a read-ahead buffer boundary.
     *
     * Also consider that we need to gracefully deal with separators
     * that may be longer than a single read ahead buffer.
     *
     * Lastly do not forget we want to copy the delimiter as well. We
     * are copying all data in the file _up_to_and_including_ the separator
     * itself.
     *
     * Now that you have all that in mind here is what is happening below:
     *
     * 1. When we first enter the loop we do some memory book keeping to see
     * how much free space there is in the target SV. (This sub assumes that
     * it is operating on the same SV most of the time via $_ and that it is
     * going to be able to reuse the same pv buffer each call.) If there is
     * "enough" room then we set "shortbuffered" to how much space there is
     * and start reading forward.
     *
     * 2. When we scan forward we copy from the read-ahead buffer to the target
     * SV's pv buffer. While we go we watch for the end of the read-ahead buffer,
     * and the end of the of pv, as well as for the "rslast", which is the last
     * char of the separator.
     *
     * 3. When scanning forward if we see rslast then we jump backwards in *pv*
     * (which has a "complete" record up to the point we saw rslast) and check
     * it to see if it matches the separator. If it does we are done. If it doesn't
     * we continue on with the scan/copy.
     *
     * 4. If we run out of read-ahead buffer (cnt goes to 0) then we have to get
     * the IO system to read the next buffer. We do this by doing a getc(), which
     * returns a single char read (or EOF), and prefills the buffer, and also
     * allows us to find out how full the buffer is.  We use this information to
     * SvGROW() the sv to the size remaining in the buffer, after which we copy
     * the returned single char into the target sv, and then go back into scan
     * forward mode.
     *
     * 5. If we run out of write-buffer then we SvGROW() it by the size of the
     * remaining space in the read-buffer.
     *
     * Note that this code despite its twisty-turny nature is pretty darn slick.
     * It manages single byte separators, multi-byte cross boundary separators,
     * and cross-read-buffer separators cleanly and efficiently at the cost
     * of potentially greatly overallocating the target SV.
     *
     * Yves
     */


    /* get the number of bytes remaining in the read-ahead buffer
     * on first call on a given fp this will return 0.*/
    cnt = PerlIO_get_cnt(fp);

    /* make sure we have the room */
    if ((I32)(SvLEN(sv) - append) <= cnt + 1) {
        /* Not room for all of it
           if we are looking for a separator and room for some
         */
        if (rslen && cnt > 80 && (I32)SvLEN(sv) > append) {
            /* just process what we have room for */
            shortbuffered = cnt - SvLEN(sv) + append + 1;
            cnt -= shortbuffered;
        }
        else {
            /* ensure that the target sv has enough room to hold
             * the rest of the read-ahead buffer */
            shortbuffered = 0;
            /* remember that cnt can be negative */
            SvGROW(sv, (STRLEN)(append + (cnt <= 0 ? 2 : (cnt + 1))));
        }
    }
    else {
        /* we have enough room to hold the full buffer, lets scream */
        shortbuffered = 0;
    }

    /* extract the pointer to sv's string buffer, offset by append as necessary */
    bp = (STDCHAR*)SvPVX_const(sv) + append;  /* move these two too to registers */
    /* extract the point to the read-ahead buffer */
    ptr = (STDCHAR*)PerlIO_get_ptr(fp);

    /* some trace debug output */
    DEBUG_P(PerlIO_printf(Perl_debug_log,
        "Screamer: entering, ptr=%" UVuf ", cnt=%ld\n",PTR2UV(ptr),(long)cnt));
    DEBUG_P(PerlIO_printf(Perl_debug_log,
        "Screamer: entering: PerlIO * thinks ptr=%" UVuf ", cnt=%" IVdf ", base=%"
         UVuf "\n",
               PTR2UV(PerlIO_get_ptr(fp)), (IV)PerlIO_get_cnt(fp),
               PTR2UV(PerlIO_has_base(fp) ? PerlIO_get_base(fp) : 0)));

    for (;;) {
      screamer:
        /* if there is stuff left in the read-ahead buffer */
        if (cnt > 0) {
            /* if there is a separator */
            if (rslen) {
                /* find next rslast */
                STDCHAR *p;

                /* shortcut common case of blank line */
                cnt--;
                if ((*bp++ = *ptr++) == rslast)
                    goto thats_all_folks;

                p = (STDCHAR *)memchr(ptr, rslast, cnt);
                if (p) {
                    SSize_t got = p - ptr + 1;
                    Copy(ptr, bp, got, STDCHAR);
                    ptr += got;
                    bp  += got;
                    cnt -= got;
                    goto thats_all_folks;
                }
                Copy(ptr, bp, cnt, STDCHAR);
                ptr += cnt;
                bp  += cnt;
                cnt = 0;
            }
            else {
                /* no separator, slurp the full buffer */
                Copy(ptr, bp, cnt, char);	     /* this     |  eat */
                bp += cnt;			     /* screams  |  dust */
                ptr += cnt;			     /* louder   |  sed :-) */
                cnt = 0;
                assert (!shortbuffered);
                goto cannot_be_shortbuffered;
            }
        }

        if (shortbuffered) {		/* oh well, must extend */
            /* we didn't have enough room to fit the line into the target buffer
             * so we must extend the target buffer and keep going */
            cnt = shortbuffered;
            shortbuffered = 0;
            bpx = bp - (STDCHAR*)SvPVX_const(sv); /* box up before relocation */
            SvCUR_set(sv, bpx);
            /* extned the target sv's buffer so it can hold the full read-ahead buffer */
            SvGROW(sv, SvLEN(sv) + append + cnt + 2);
            bp = (STDCHAR*)SvPVX_const(sv) + bpx; /* unbox after relocation */
            continue;
        }

    cannot_be_shortbuffered:
        /* we need to refill the read-ahead buffer if possible */

        DEBUG_P(PerlIO_printf(Perl_debug_log,
                             "Screamer: going to getc, ptr=%" UVuf ", cnt=%" IVdf "\n",
                              PTR2UV(ptr),(IV)cnt));
        PerlIO_set_ptrcnt(fp, (STDCHAR*)ptr, cnt); /* deregisterize cnt and ptr */

        DEBUG_Pv(PerlIO_printf(Perl_debug_log,
           "Screamer: pre: FILE * thinks ptr=%" UVuf ", cnt=%" IVdf ", base=%" UVuf "\n",
            PTR2UV(PerlIO_get_ptr(fp)), (IV)PerlIO_get_cnt(fp),
            PTR2UV(PerlIO_has_base (fp) ? PerlIO_get_base(fp) : 0)));

        /*
            call PerlIO_getc() to let it prefill the lookahead buffer

            This used to call 'filbuf' in stdio form, but as that behaves like
            getc when cnt <= 0 we use PerlIO_getc here to avoid introducing
            another abstraction.

            Note we have to deal with the char in 'i' if we are not at EOF
        */
        bpx = bp - (STDCHAR*)SvPVX_const(sv);
        /* signals might be called here, possibly modifying sv */
        i   = PerlIO_getc(fp);		/* get more characters */
        bp = (STDCHAR*)SvPVX_const(sv) + bpx;

        DEBUG_Pv(PerlIO_printf(Perl_debug_log,
           "Screamer: post: FILE * thinks ptr=%" UVuf ", cnt=%" IVdf ", base=%" UVuf "\n",
            PTR2UV(PerlIO_get_ptr(fp)), (IV)PerlIO_get_cnt(fp),
            PTR2UV(PerlIO_has_base (fp) ? PerlIO_get_base(fp) : 0)));

        /* find out how much is left in the read-ahead buffer, and rextract its pointer */
        cnt = PerlIO_get_cnt(fp);
        ptr = (STDCHAR*)PerlIO_get_ptr(fp);	/* reregisterize cnt and ptr */
        DEBUG_P(PerlIO_printf(Perl_debug_log,
            "Screamer: after getc, ptr=%" UVuf ", cnt=%" IVdf "\n",
            PTR2UV(ptr),(IV)cnt));

        if (i == EOF)			/* all done for ever? */
            goto thats_really_all_folks;

        /* make sure we have enough space in the target sv */
        bpx = bp - (STDCHAR*)SvPVX_const(sv);	/* box up before relocation */
        SvCUR_set(sv, bpx);
        SvGROW(sv, bpx + cnt + 2);
        bp = (STDCHAR*)SvPVX_const(sv) + bpx;	/* unbox after relocation */

        /* copy of the char we got from getc() */
        *bp++ = (STDCHAR)i;		/* store character from PerlIO_getc */

        /* make sure we deal with the i being the last character of a separator */
        if (rslen && (STDCHAR)i == rslast)  /* all done for now? */
            goto thats_all_folks;
    }

  thats_all_folks:
    /* check if we have actually found the separator - only really applies
     * when rslen > 1 */
    if ((rslen > 1 && (STRLEN)(bp - (STDCHAR*)SvPVX_const(sv)) < rslen) ||
          memNE((char*)bp - rslen, rsptr, rslen))
        goto screamer;				/* go back to the fray */
  thats_really_all_folks:
    if (shortbuffered)
        cnt += shortbuffered;
    DEBUG_P(PerlIO_printf(Perl_debug_log,
         "Screamer: quitting, ptr=%" UVuf ", cnt=%" IVdf "\n",PTR2UV(ptr),(IV)cnt));
    PerlIO_set_ptrcnt(fp, (STDCHAR*)ptr, cnt);	/* put these back or we're in trouble */
    DEBUG_P(PerlIO_printf(Perl_debug_log,
        "Screamer: end: FILE * thinks ptr=%" UVuf ", cnt=%" IVdf ", base=%" UVuf
        "\n",
        PTR2UV(PerlIO_get_ptr(fp)), (IV)PerlIO_get_cnt(fp),
        PTR2UV(PerlIO_has_base (fp) ? PerlIO_get_base(fp) : 0)));
    *bp = '\0';
    SvCUR_set(sv, bp - (STDCHAR*)SvPVX_const(sv));	/* set length */
    DEBUG_P(PerlIO_printf(Perl_debug_log,
        "Screamer: done, len=%ld, string=|%.*s|\n",
        (long)SvCUR(sv),(int)SvCUR(sv),SvPVX_const(sv)));
    }
   else
    {
       /*The big, slow, and stupid way. */
        STDCHAR buf[8192];

      screamer2:
        if (rslen) {
            const STDCHAR * const bpe = buf + sizeof(buf);
            bp = buf;
            while ((i = PerlIO_getc(fp)) != EOF && (*bp++ = (STDCHAR)i) != rslast && bp < bpe)
                ; /* keep reading */
            cnt = bp - buf;
        }
        else {
            cnt = PerlIO_read(fp,(char*)buf, sizeof(buf));
            /* Accommodate broken VAXC compiler, which applies U8 cast to
             * both args of ?: operator, causing EOF to change into 255
             */
            if (cnt > 0)
                 i = (U8)buf[cnt - 1];
            else
                 i = EOF;
        }

        if (cnt < 0)
            cnt = 0;  /* we do need to re-set the sv even when cnt <= 0 */
        if (append)
            sv_catpvn_nomg(sv, (char *) buf, cnt);
        else
            sv_setpvn(sv, (char *) buf, cnt);   /* "nomg" is implied */

        if (i != EOF &&			/* joy */
            (!rslen ||
             SvCUR(sv) < rslen ||
             memNE(SvPVX_const(sv) + SvCUR(sv) - rslen, rsptr, rslen)))
        {
            append = -1;
            /*
             * If we're reading from a TTY and we get a short read,
             * indicating that the user hit his EOF character, we need
             * to notice it now, because if we try to read from the TTY
             * again, the EOF condition will disappear.
             *
             * The comparison of cnt to sizeof(buf) is an optimization
             * that prevents unnecessary calls to feof().
             *
             * - jik 9/25/96
             */
            if (!(cnt < (I32)sizeof(buf) && PerlIO_eof(fp)))
                goto screamer2;
        }

    }

    if (rspara) {		/* have to do this both before and after */
        while (i != EOF) {	/* to make sure file boundaries work right */
            i = PerlIO_getc(fp);
            if (i != '\n') {
                PerlIO_ungetc(fp,i);
                break;
            }
        }
    }

    return (SvCUR(sv) - append) ? SvPVX(sv) : NULL;
}

/*
=for apidoc sv_inc
=for apidoc_item sv_inc_nomg

These auto-increment the value in the SV, doing string to numeric conversion
if necessary.  They both handle operator overloading.

They differ only in that C<sv_inc> performs 'get' magic; C<sv_inc_nomg> skips
any magic.

=cut
*/

void
Perl_sv_inc(pTHX_ SV *const sv)
{
    if (!sv)
        return;
    SvGETMAGIC(sv);
    sv_inc_nomg(sv);
}

void
Perl_sv_inc_nomg(pTHX_ SV *const sv)
{
    char *d;
    int flags;

    if (!sv)
        return;
    if (SvTHINKFIRST(sv)) {
        if (SvREADONLY(sv)) {
                Perl_croak_no_modify();
        }
        if (SvROK(sv)) {
            IV i;
            if (SvAMAGIC(sv) && AMG_CALLunary(sv, inc_amg))
                return;
            i = PTR2IV(SvRV(sv));
            sv_unref(sv);
            sv_setiv(sv, i);
        }
        else sv_force_normal_flags(sv, 0);
    }
    flags = SvFLAGS(sv);
    if ((flags & (SVp_NOK|SVp_IOK)) == SVp_NOK) {
        /* It's (privately or publicly) a float, but not tested as an
           integer, so test it to see. */
        (void) SvIV(sv);
        flags = SvFLAGS(sv);
    }
    if ((flags & SVf_IOK) || ((flags & (SVp_IOK | SVp_NOK)) == SVp_IOK)) {
        /* It's publicly an integer, or privately an integer-not-float */
#ifdef PERL_PRESERVE_IVUV
      oops_its_int:
#endif
        if (SvIsUV(sv)) {
            if (SvUVX(sv) == UV_MAX)
                sv_setnv(sv, UV_MAX_P1);
            else {
                (void)SvIOK_only_UV(sv);
                SvUV_set(sv, SvUVX(sv) + 1);
            }
        } else {
            if (SvIVX(sv) == IV_MAX)
                sv_setuv(sv, (UV)IV_MAX + 1);
            else {
                (void)SvIOK_only(sv);
                SvIV_set(sv, SvIVX(sv) + 1);
            }
        }
        return;
    }
    if (flags & SVp_NOK) {
        const NV was = SvNVX(sv);
        if (NV_OVERFLOWS_INTEGERS_AT != 0.0 &&
            /* If NVX was NaN, the following comparisons return always false */
            UNLIKELY(was >= NV_OVERFLOWS_INTEGERS_AT ||
                     was < -NV_OVERFLOWS_INTEGERS_AT) &&
#if defined(NAN_COMPARE_BROKEN)
            LIKELY(!Perl_isinfnan(was))
#else
            LIKELY(!Perl_isinf(was))
#endif
            ) {
            /* diag_listed_as: Lost precision when %s %f by 1 */
            Perl_ck_warner(aTHX_ packWARN(WARN_IMPRECISION),
                           "Lost precision when incrementing %" NVff " by 1",
                           was);
        }
        (void)SvNOK_only(sv);
        SvNV_set(sv, was + 1.0);
        return;
    }

    /* treat AV/HV/CV/FM/IO and non-fake GVs as immutable */
    if (SvTYPE(sv) >= SVt_PVAV || (isGV_with_GP(sv) && !SvFAKE(sv)))
        Perl_croak_no_modify();

    if (!(flags & SVp_POK) || !*SvPVX_const(sv)) {
        if ((flags & SVTYPEMASK) < SVt_PVIV)
            sv_upgrade(sv, ((flags & SVTYPEMASK) > SVt_IV ? SVt_PVIV : SVt_IV));
        (void)SvIOK_only(sv);
        SvIV_set(sv, 1);
        return;
    }
    d = SvPVX(sv);
    while (isALPHA(*d)) d++;
    while (isDIGIT(*d)) d++;
    if (d < SvEND(sv)) {
        const int numtype = grok_number_flags(SvPVX_const(sv), SvCUR(sv), NULL, PERL_SCAN_TRAILING);
#ifdef PERL_PRESERVE_IVUV
        /* Got to punt this as an integer if needs be, but we don't issue
           warnings. Probably ought to make the sv_iv_please() that does
           the conversion if possible, and silently.  */
        if (numtype && !(numtype & IS_NUMBER_INFINITY)) {
            /* Need to try really hard to see if it's an integer.
               9.22337203685478e+18 is an integer.
               but "9.22337203685478e+18" + 0 is UV=9223372036854779904
               so $a="9.22337203685478e+18"; $a+0; $a++
               needs to be the same as $a="9.22337203685478e+18"; $a++
               or we go insane. */

            (void) sv_2iv(sv);
            if (SvIOK(sv))
                goto oops_its_int;

            /* sv_2iv *should* have made this an NV */
            if (flags & SVp_NOK) {
                (void)SvNOK_only(sv);
                SvNV_set(sv, SvNVX(sv) + 1.0);
                return;
            }
            /* I don't think we can get here. Maybe I should assert this
               And if we do get here I suspect that sv_setnv will croak. NWC
               Fall through. */
            DEBUG_c(PerlIO_printf(Perl_debug_log,"sv_inc punt failed to convert '%s' to IOK or NOKp, UV=0x%" UVxf " NV=%" NVgf "\n",
                                  SvPVX_const(sv), SvIVX(sv), SvNVX(sv)));
        }
#endif /* PERL_PRESERVE_IVUV */
        if (!numtype && ckWARN(WARN_NUMERIC))
            not_incrementable(sv);
        sv_setnv(sv,Atof(SvPVX_const(sv)) + 1.0);
        return;
    }
    d--;
    while (d >= SvPVX_const(sv)) {
        if (isDIGIT(*d)) {
            if (++*d <= '9')
                return;
            *(d--) = '0';
        }
        else {
#ifdef EBCDIC
            /* MKS: The original code here died if letters weren't consecutive.
             * at least it didn't have to worry about non-C locales.  The
             * new code assumes that ('z'-'a')==('Z'-'A'), letters are
             * arranged in order (although not consecutively) and that only
             * [A-Za-z] are accepted by isALPHA in the C locale.
             */
            if (isALPHA_FOLD_NE(*d, 'z')) {
                do { ++*d; } while (!isALPHA(*d));
                return;
            }
            *(d--) -= 'z' - 'a';
#else
            ++*d;
            if (isALPHA(*d))
                return;
            *(d--) -= 'z' - 'a' + 1;
#endif
        }
    }
    /* oh,oh, the number grew */
    SvGROW(sv, SvCUR(sv) + 2);
    SvCUR_set(sv, SvCUR(sv) + 1);
    for (d = SvPVX(sv) + SvCUR(sv); d > SvPVX_const(sv); d--)
        *d = d[-1];
    if (isDIGIT(d[1]))
        *d = '1';
    else
        *d = d[1];
}

/*
=for apidoc sv_dec
=for apidoc_item sv_dec_nomg

These auto-decrement the value in the SV, doing string to numeric conversion
if necessary.  They both handle operator overloading.

They differ only in that:

C<sv_dec> handles 'get' magic; C<sv_dec_nomg> skips 'get' magic.

=cut
*/

void
Perl_sv_dec(pTHX_ SV *const sv)
{
    if (!sv)
        return;
    SvGETMAGIC(sv);
    sv_dec_nomg(sv);
}

void
Perl_sv_dec_nomg(pTHX_ SV *const sv)
{
    int flags;

    if (!sv)
        return;
    if (SvTHINKFIRST(sv)) {
        if (SvREADONLY(sv)) {
                Perl_croak_no_modify();
        }
        if (SvROK(sv)) {
            IV i;
            if (SvAMAGIC(sv) && AMG_CALLunary(sv, dec_amg))
                return;
            i = PTR2IV(SvRV(sv));
            sv_unref(sv);
            sv_setiv(sv, i);
        }
        else sv_force_normal_flags(sv, 0);
    }
    /* Unlike sv_inc we don't have to worry about string-never-numbers
       and keeping them magic. But we mustn't warn on punting */
    flags = SvFLAGS(sv);
    if ((flags & SVf_IOK) || ((flags & (SVp_IOK | SVp_NOK)) == SVp_IOK)) {
        /* It's publicly an integer, or privately an integer-not-float */
#ifdef PERL_PRESERVE_IVUV
      oops_its_int:
#endif
        if (SvIsUV(sv)) {
            if (SvUVX(sv) == 0) {
                (void)SvIOK_only(sv);
                SvIV_set(sv, -1);
            }
            else {
                (void)SvIOK_only_UV(sv);
                SvUV_set(sv, SvUVX(sv) - 1);
            }
        } else {
            if (SvIVX(sv) == IV_MIN) {
                sv_setnv(sv, (NV)IV_MIN);
                goto oops_its_num;
            }
            else {
                (void)SvIOK_only(sv);
                SvIV_set(sv, SvIVX(sv) - 1);
            }
        }
        return;
    }
    if (flags & SVp_NOK) {
    oops_its_num:
        {
            const NV was = SvNVX(sv);
            if (NV_OVERFLOWS_INTEGERS_AT != 0.0 &&
                /* If NVX was NaN, these comparisons return always false */
                UNLIKELY(was <= -NV_OVERFLOWS_INTEGERS_AT ||
                         was > NV_OVERFLOWS_INTEGERS_AT) &&
#if defined(NAN_COMPARE_BROKEN)
                LIKELY(!Perl_isinfnan(was))
#else
                LIKELY(!Perl_isinf(was))
#endif
                ) {
                /* diag_listed_as: Lost precision when %s %f by 1 */
                Perl_ck_warner(aTHX_ packWARN(WARN_IMPRECISION),
                               "Lost precision when decrementing %" NVff " by 1",
                               was);
            }
            (void)SvNOK_only(sv);
            SvNV_set(sv, was - 1.0);
            return;
        }
    }

    /* treat AV/HV/CV/FM/IO and non-fake GVs as immutable */
    if (SvTYPE(sv) >= SVt_PVAV || (isGV_with_GP(sv) && !SvFAKE(sv)))
        Perl_croak_no_modify();

    if (!(flags & SVp_POK)) {
        if ((flags & SVTYPEMASK) < SVt_PVIV)
            sv_upgrade(sv, ((flags & SVTYPEMASK) > SVt_IV) ? SVt_PVIV : SVt_IV);
        SvIV_set(sv, -1);
        (void)SvIOK_only(sv);
        return;
    }
#ifdef PERL_PRESERVE_IVUV
    {
        const int numtype = grok_number(SvPVX_const(sv), SvCUR(sv), NULL);
        if (numtype && !(numtype & IS_NUMBER_INFINITY)) {
            /* Need to try really hard to see if it's an integer.
               9.22337203685478e+18 is an integer.
               but "9.22337203685478e+18" + 0 is UV=9223372036854779904
               so $a="9.22337203685478e+18"; $a+0; $a--
               needs to be the same as $a="9.22337203685478e+18"; $a--
               or we go insane. */

            (void) sv_2iv(sv);
            if (SvIOK(sv))
                goto oops_its_int;

            /* sv_2iv *should* have made this an NV */
            if (flags & SVp_NOK) {
                (void)SvNOK_only(sv);
                SvNV_set(sv, SvNVX(sv) - 1.0);
                return;
            }
            /* I don't think we can get here. Maybe I should assert this
               And if we do get here I suspect that sv_setnv will croak. NWC
               Fall through. */
            DEBUG_c(PerlIO_printf(Perl_debug_log,"sv_dec punt failed to convert '%s' to IOK or NOKp, UV=0x%" UVxf " NV=%" NVgf "\n",
                                  SvPVX_const(sv), SvIVX(sv), SvNVX(sv)));
        }
    }
#endif /* PERL_PRESERVE_IVUV */
    sv_setnv(sv,Atof(SvPVX_const(sv)) - 1.0);	/* punt */
}

/* this define is used to eliminate a chunk of duplicated but shared logic
 * it has the suffix __SV_C to signal that it isnt API, and isnt meant to be
 * used anywhere but here - yves
 */
#define PUSH_EXTEND_MORTAL__SV_C(AnSv) \
    STMT_START {      \
        SSize_t ix = ++PL_tmps_ix;		\
        if (UNLIKELY(ix >= PL_tmps_max))	\
            ix = tmps_grow_p(ix);			\
        PL_tmps_stack[ix] = (AnSv); \
    } STMT_END

/*
=for apidoc sv_mortalcopy

Creates a new SV which is a copy of the original SV (using C<sv_setsv>).
The new SV is marked as mortal.  It will be destroyed "soon", either by an
explicit call to C<FREETMPS>, or by an implicit call at places such as
statement boundaries.  See also C<L</sv_newmortal>> and C<L</sv_2mortal>>.

=for apidoc sv_mortalcopy_flags

Like C<sv_mortalcopy>, but the extra C<flags> are passed to the
C<sv_setsv_flags>.

=cut
*/

/* Make a string that will exist for the duration of the expression
 * evaluation.  Actually, it may have to last longer than that, but
 * hopefully we won't free it until it has been assigned to a
 * permanent location. */

SV *
Perl_sv_mortalcopy_flags(pTHX_ SV *const oldstr, U32 flags)
{
    SV *sv;

    if (flags & SV_GMAGIC)
        SvGETMAGIC(oldstr); /* before new_SV, in case it dies */
    new_SV(sv);
    sv_setsv_flags(sv,oldstr,flags & ~SV_GMAGIC);
    PUSH_EXTEND_MORTAL__SV_C(sv);
    SvTEMP_on(sv);
    return sv;
}

/*
=for apidoc sv_newmortal

Creates a new null SV which is mortal.  The reference count of the SV is
set to 1.  It will be destroyed "soon", either by an explicit call to
C<FREETMPS>, or by an implicit call at places such as statement boundaries.
See also C<L</sv_mortalcopy>> and C<L</sv_2mortal>>.

=cut
*/

SV *
Perl_sv_newmortal(pTHX)
{
    SV *sv;

    new_SV(sv);
    SvFLAGS(sv) = SVs_TEMP;
    PUSH_EXTEND_MORTAL__SV_C(sv);
    return sv;
}


/*
=for apidoc newSVpvn_flags

Creates a new SV and copies a string (which may contain C<NUL> (C<\0>)
characters) into it.  The reference count for the
SV is set to 1.  Note that if C<len> is zero, Perl will create a zero length
string.  You are responsible for ensuring that the source string is at least
C<len> bytes long.  If the C<s> argument is NULL the new SV will be undefined.
Currently the only flag bits accepted are C<SVf_UTF8> and C<SVs_TEMP>.
If C<SVs_TEMP> is set, then C<sv_2mortal()> is called on the result before
returning.  If C<SVf_UTF8> is set, C<s>
is considered to be in UTF-8 and the
C<SVf_UTF8> flag will be set on the new SV.
C<newSVpvn_utf8()> is a convenience wrapper for this function, defined as

    #define newSVpvn_utf8(s, len, u)			\
        newSVpvn_flags((s), (len), (u) ? SVf_UTF8 : 0)

=for apidoc Amnh||SVs_TEMP

=cut
*/

SV *
Perl_newSVpvn_flags(pTHX_ const char *const s, const STRLEN len, const U32 flags)
{
    SV *sv;

    /* All the flags we don't support must be zero.
       And we're new code so I'm going to assert this from the start.  */
    assert(!(flags & ~(SVf_UTF8|SVs_TEMP)));
    sv = newSV_type(SVt_PV);
    sv_setpvn_fresh(sv,s,len);

    /* This code used to do a sv_2mortal(), however we now unroll the call to
     * sv_2mortal() and do what it does ourselves here.  Since we have asserted
     * that flags can only have the SVf_UTF8 and/or SVs_TEMP flags set above we
     * can use it to enable the sv flags directly (bypassing SvTEMP_on), which
     * in turn means we don't need to mask out the SVf_UTF8 flag below, which
     * means that we eliminate quite a few steps than it looks - Yves
     * (explaining patch by gfx) */

    SvFLAGS(sv) |= flags;

    if(flags & SVs_TEMP){
        PUSH_EXTEND_MORTAL__SV_C(sv);
    }

    return sv;
}

/*
=for apidoc sv_2mortal

Marks an existing SV as mortal.  The SV will be destroyed "soon", either
by an explicit call to C<FREETMPS>, or by an implicit call at places such as
statement boundaries.  C<SvTEMP()> is turned on which means that the SV's
string buffer can be "stolen" if this SV is copied.  See also
C<L</sv_newmortal>> and C<L</sv_mortalcopy>>.

=cut
*/

SV *
Perl_sv_2mortal(pTHX_ SV *const sv)
{
    if (!sv)
        return sv;
    if (SvIMMORTAL(sv))
        return sv;
    PUSH_EXTEND_MORTAL__SV_C(sv);
    SvTEMP_on(sv);
    return sv;
}

/*
=for apidoc newSVpv

Creates a new SV and copies a string (which may contain C<NUL> (C<\0>)
characters) into it.  The reference count for the
SV is set to 1.  If C<len> is zero, Perl will compute the length using
C<strlen()>, (which means if you use this option, that C<s> can't have embedded
C<NUL> characters and has to have a terminating C<NUL> byte).

This function can cause reliability issues if you are likely to pass in
empty strings that are not null terminated, because it will run
strlen on the string and potentially run past valid memory.

Using L</newSVpvn> is a safer alternative for non C<NUL> terminated strings.
For string literals use L</newSVpvs> instead.  This function will work fine for
C<NUL> terminated strings, but if you want to avoid the if statement on whether
to call C<strlen> use C<newSVpvn> instead (calling C<strlen> yourself).

=cut
*/

SV *
Perl_newSVpv(pTHX_ const char *const s, const STRLEN len)
{
    SV *sv = newSV_type(SVt_PV);
    sv_setpvn_fresh(sv, s, len || s == NULL ? len : strlen(s));
    return sv;
}

/*
=for apidoc newSVpvn

Creates a new SV and copies a string into it, which may contain C<NUL> characters
(C<\0>) and other binary data.  The reference count for the SV is set to 1.
Note that if C<len> is zero, Perl will create a zero length (Perl) string.  You
are responsible for ensuring that the source buffer is at least
C<len> bytes long.  If the C<buffer> argument is NULL the new SV will be
undefined.

=cut
*/

SV *
Perl_newSVpvn(pTHX_ const char *const buffer, const STRLEN len)
{
    SV *sv = newSV_type(SVt_PV);
    sv_setpvn_fresh(sv,buffer,len);
    return sv;
}

/*
=for apidoc newSVhek_mortal

Creates a new mortal SV from the hash key structure.  It will generate
scalars that point to the shared string table where possible.  Returns
a new (undefined) SV if C<hek> is NULL.

This is more efficient than using sv_2mortal(newSVhek( ... ))

=cut
*/

SV *
Perl_newSVhek_mortal(pTHX_ const HEK *const hek)
{
    SV * const sv = newSVhek(hek);
    assert(sv);
    assert(!SvIMMORTAL(sv));

    PUSH_EXTEND_MORTAL__SV_C(sv);
    SvTEMP_on(sv);
    return sv;
}

/*
=for apidoc newSVhek

Creates a new SV from the hash key structure.  It will generate scalars that
point to the shared string table where possible.  Returns a new (undefined)
SV if C<hek> is NULL.

=cut
*/

SV *
Perl_newSVhek(pTHX_ const HEK *const hek)
{
    if (!hek) {
        SV *sv;

        new_SV(sv);
        return sv;
    }

    if (HEK_LEN(hek) == HEf_SVKEY) {
        return newSVsv(*(SV**)HEK_KEY(hek));
    } else {
        const int flags = HEK_FLAGS(hek);
        if (flags & HVhek_WASUTF8) {
            /* Trouble :-)
               Andreas would like keys he put in as utf8 to come back as utf8
            */
            STRLEN utf8_len = HEK_LEN(hek);
            SV * const sv = newSV_type(SVt_PV);
            char *as_utf8 = (char *)bytes_to_utf8 ((U8*)HEK_KEY(hek), &utf8_len);
            /* bytes_to_utf8() allocates a new string, which we can repurpose: */
            sv_usepvn_flags(sv, as_utf8, utf8_len, SV_HAS_TRAILING_NUL);
            SvUTF8_on (sv);
            return sv;
        } else if (flags & HVhek_NOTSHARED) {
            /* A hash that isn't using shared hash keys has to have
               the flag in every key so that we know not to try to call
               share_hek_hek on it.  */

            SV * const sv = newSVpvn (HEK_KEY(hek), HEK_LEN(hek));
            if (HEK_UTF8(hek))
                SvUTF8_on (sv);
            return sv;
        }
        /* This will be overwhelmingly the most common case.  */
        {
            /* Inline most of newSVpvn_share(), because share_hek_hek() is far
               more efficient than sharepvn().  */
            SV *sv = newSV_type(SVt_PV);

            SvPV_set(sv, (char *)HEK_KEY(share_hek_hek(hek)));
            SvCUR_set(sv, HEK_LEN(hek));
            SvLEN_set(sv, 0);
            SvIsCOW_on(sv);
            SvPOK_on(sv);
            if (HEK_UTF8(hek))
                SvUTF8_on(sv);
            return sv;
        }
    }
}

/*
=for apidoc newSVpvn_share

Creates a new SV with its C<SvPVX_const> pointing to a shared string in the string
table.  If the string does not already exist in the table, it is
created first.  Turns on the C<SvIsCOW> flag (or C<READONLY>
and C<FAKE> in 5.16 and earlier).  If the C<hash> parameter
is non-zero, that value is used; otherwise the hash is computed.
The string's hash can later be retrieved from the SV
with the C<L</SvSHARED_HASH>> macro.  The idea here is
that as the string table is used for shared hash keys these strings will have
C<SvPVX_const == HeKEY> and hash lookup will avoid string compare.

=cut
*/

SV *
Perl_newSVpvn_share(pTHX_ const char *src, I32 len, U32 hash)
{
    SV *sv;
    bool is_utf8 = FALSE;
    const char *const orig_src = src;

    if (len < 0) {
        STRLEN tmplen = -len;
        is_utf8 = TRUE;
        /* See the note in hv.c:hv_fetch() --jhi */
        src = (char*)bytes_from_utf8((const U8*)src, &tmplen, &is_utf8);
        len = tmplen;
    }
    if (!hash)
        PERL_HASH(hash, src, len);
    sv = newSV_type(SVt_PV);
    /* The logic for this is inlined in S_mro_get_linear_isa_dfs(), so if it
       changes here, update it there too.  */
    SvPV_set(sv, sharepvn(src, is_utf8?-len:len, hash));
    SvCUR_set(sv, len);
    SvLEN_set(sv, 0);
    SvIsCOW_on(sv);
    SvPOK_on(sv);
    if (is_utf8)
        SvUTF8_on(sv);
    if (src != orig_src)
        Safefree(src);
    return sv;
}

/*
=for apidoc newSVpv_share

Like C<newSVpvn_share>, but takes a C<NUL>-terminated string instead of a
string/length pair.

=cut
*/

SV *
Perl_newSVpv_share(pTHX_ const char *src, U32 hash)
{
    return newSVpvn_share(src, strlen(src), hash);
}

#if defined(MULTIPLICITY)

/* pTHX_ magic can't cope with varargs, so this is a no-context
 * version of the main function, (which may itself be aliased to us).
 * Don't access this version directly.
 */

SV *
Perl_newSVpvf_nocontext(const char *const pat, ...)
{
    dTHX;
    SV *sv;
    va_list args;

    PERL_ARGS_ASSERT_NEWSVPVF_NOCONTEXT;

    va_start(args, pat);
    sv = vnewSVpvf(pat, &args);
    va_end(args);
    return sv;
}
#endif

/*
=for apidoc newSVpvf

Creates a new SV and initializes it with the string formatted like
C<sv_catpvf>.

=for apidoc newSVpvf_nocontext
Like C<L</newSVpvf>> but does not take a thread context (C<aTHX>) parameter,
so is used in situations where the caller doesn't already have the thread
context.

=for apidoc vnewSVpvf
Like C<L</newSVpvf>> but the arguments are an encapsulated argument list.

=cut
*/

SV *
Perl_newSVpvf(pTHX_ const char *const pat, ...)
{
    SV *sv;
    va_list args;

    PERL_ARGS_ASSERT_NEWSVPVF;

    va_start(args, pat);
    sv = vnewSVpvf(pat, &args);
    va_end(args);
    return sv;
}

/* backend for newSVpvf() and newSVpvf_nocontext() */

SV *
Perl_vnewSVpvf(pTHX_ const char *const pat, va_list *const args)
{
    SV *sv;

    PERL_ARGS_ASSERT_VNEWSVPVF;

    sv = newSV(1);
    SvPVCLEAR_FRESH(sv);
    sv_vcatpvfn_flags(sv, pat, strlen(pat), args, NULL, 0, NULL, 0);
    return sv;
}

/*
=for apidoc newSVnv

Creates a new SV and copies a floating point value into it.
The reference count for the SV is set to 1.

=cut
*/

SV *
Perl_newSVnv(pTHX_ const NV n)
{
    SV *sv = newSV_type(SVt_NV);
    (void)SvNOK_on(sv);

    SvNV_set(sv, n);
    SvTAINT(sv);

    return sv;
}

/*
=for apidoc newSViv

Creates a new SV and copies an integer into it.  The reference count for the
SV is set to 1.

=cut
*/

SV *
Perl_newSViv(pTHX_ const IV i)
{
    SV *sv = newSV_type(SVt_IV);
    (void)SvIOK_on(sv);

    SvIV_set(sv, i);
    SvTAINT(sv);

    return sv;
}

/*
=for apidoc newSVuv

Creates a new SV and copies an unsigned integer into it.
The reference count for the SV is set to 1.

=cut
*/

SV *
Perl_newSVuv(pTHX_ const UV u)
{
    SV *sv;

    /* Inlining ONLY the small relevant subset of sv_setuv here
     * for performance. Makes a significant difference. */

    /* Using ivs is more efficient than using uvs - see sv_setuv */
    if (u <= (UV)IV_MAX) {
        return newSViv((IV)u);
    }

    new_SV(sv);

    /* We're starting from SVt_FIRST, so provided that's
     * actual 0, we don't have to unset any SV type flags
     * to promote to SVt_IV. */
    STATIC_ASSERT_STMT(SVt_FIRST == 0);

    SET_SVANY_FOR_BODYLESS_IV(sv);
    SvFLAGS(sv) |= SVt_IV;
    (void)SvIOK_on(sv);
    (void)SvIsUV_on(sv);

    SvUV_set(sv, u);
    SvTAINT(sv);

    return sv;
}

/*
=for apidoc newSVbool

Creates a new SV boolean.

=cut
*/

SV *
Perl_newSVbool(pTHX_ bool bool_val)
{
    PERL_ARGS_ASSERT_NEWSVBOOL;
    SV *sv = newSVsv(bool_val ? &PL_sv_yes : &PL_sv_no);

    return sv;
}

/*
=for apidoc newSV_true

Creates a new SV that is a boolean true.

=cut
*/
SV *
Perl_newSV_true(pTHX)
{
    PERL_ARGS_ASSERT_NEWSV_TRUE;
    SV *sv = newSVsv(&PL_sv_yes);

    return sv;
}

/*
=for apidoc newSV_false

Creates a new SV that is a boolean false.

=cut
*/

SV *
Perl_newSV_false(pTHX)
{
    PERL_ARGS_ASSERT_NEWSV_FALSE;
    SV *sv = newSVsv(&PL_sv_no);

    return sv;
}

/* newRV_inc is the official function name to use now.
 * newRV_inc is in fact #defined to newRV in sv.h
 */

SV *
Perl_newRV(pTHX_ SV *const sv)
{
    PERL_ARGS_ASSERT_NEWRV;

    return newRV_noinc(SvREFCNT_inc_simple_NN(sv));
}

/*
=for apidoc newSVsv
=for apidoc_item newSVsv_flags
=for apidoc_item newSVsv_nomg

These create a new SV which is an exact duplicate of the original SV
(using C<sv_setsv>.)

They differ only in that C<newSVsv> performs 'get' magic; C<newSVsv_nomg> skips
any magic; and C<newSVsv_flags> allows you to explicitly set a C<flags>
parameter.

=cut
*/

SV *
Perl_newSVsv_flags(pTHX_ SV *const old, I32 flags)
{
    SV *sv;

    if (!old)
        return NULL;
    if (SvIS_FREED(old)) {
        Perl_ck_warner_d(aTHX_ packWARN(WARN_INTERNAL), "semi-panic: attempt to dup freed string");
        return NULL;
    }
    /* Do this here, otherwise we leak the new SV if this croaks. */
    if (flags & SV_GMAGIC)
        SvGETMAGIC(old);
    new_SV(sv);
    sv_setsv_flags(sv, old, flags & ~SV_GMAGIC);
    return sv;
}

/*
=for apidoc sv_reset

Underlying implementation for the C<reset> Perl function.
Note that the perl-level function is vaguely deprecated.

=cut
*/

void
Perl_sv_reset(pTHX_ const char *s, HV *const stash)
{
    PERL_ARGS_ASSERT_SV_RESET;

    sv_resetpvn(*s ? s : NULL, strlen(s), stash);
}

void
Perl_sv_resetpvn(pTHX_ const char *s, STRLEN len, HV * const stash)
{
    char todo[PERL_UCHAR_MAX+1];
    const char *send;

    if (!stash || SvTYPE(stash) != SVt_PVHV)
        return;

    if (!s) {		/* reset ?? searches */
        MAGIC * const mg = mg_find((const SV *)stash, PERL_MAGIC_symtab);
        if (mg && mg->mg_len) {
            const U32 count = mg->mg_len / sizeof(PMOP**);
            PMOP **pmp = (PMOP**) mg->mg_ptr;
            PMOP *const *const end = pmp + count;

            while (pmp < end) {
#ifdef USE_ITHREADS
                SvREADONLY_off(PL_regex_pad[(*pmp)->op_pmoffset]);
#else
                (*pmp)->op_pmflags &= ~PMf_USED;
#endif
                ++pmp;
            }
        }
        return;
    }

    /* reset variables */

    if (!HvTOTALKEYS(stash))
        return;

    Zero(todo, 256, char);
    send = s + len;
    while (s < send) {
        I32 max;
        I32 i = (unsigned char)*s;
        if (s[1] == '-') {
            s += 2;
        }
        max = (unsigned char)*s++;
        for ( ; i <= max; i++) {
            todo[i] = 1;
        }
        for (i = 0; i <= (I32) HvMAX(stash); i++) {
            HE *entry;
            for (entry = HvARRAY(stash)[i];
                 entry;
                 entry = HeNEXT(entry))
            {
                GV *gv;
                SV *sv;

                if (!todo[(U8)*HeKEY(entry)])
                    continue;
                gv = MUTABLE_GV(HeVAL(entry));
                if (!isGV(gv))
                    continue;
                sv = GvSV(gv);
                if (sv && !SvREADONLY(sv)) {
                    SV_CHECK_THINKFIRST_COW_DROP(sv);
                    if (!isGV(sv)) SvOK_off(sv);
                }
                if (GvAV(gv)) {
                    av_clear(GvAV(gv));
                }
                if (GvHV(gv) && !HvHasNAME(GvHV(gv))) {
                    hv_clear(GvHV(gv));
                }
            }
        }
    }
}

/*
=for apidoc sv_2io

Using various gambits, try to get an IO from an SV: the IO slot if its a
GV; or the recursive result if we're an RV; or the IO slot of the symbol
named after the PV if we're a string.

'Get' magic is ignored on the C<sv> passed in, but will be called on
C<SvRV(sv)> if C<sv> is an RV.

=cut
*/

IO*
Perl_sv_2io(pTHX_ SV *const sv)
{
    IO* io;
    GV* gv;

    PERL_ARGS_ASSERT_SV_2IO;

    switch (SvTYPE(sv)) {
    case SVt_PVIO:
        io = MUTABLE_IO(sv);
        break;
    case SVt_PVGV:
    case SVt_PVLV:
        if (isGV_with_GP(sv)) {
            gv = MUTABLE_GV(sv);
            io = GvIO(gv);
            if (!io)
                Perl_croak(aTHX_ "Bad filehandle: %" HEKf,
                                    HEKfARG(GvNAME_HEK(gv)));
            break;
        }
        /* FALLTHROUGH */
    default:
        if (!SvOK(sv))
            Perl_croak(aTHX_ PL_no_usym, "filehandle");
        if (SvROK(sv)) {
            SvGETMAGIC(SvRV(sv));
            return sv_2io(SvRV(sv));
        }
        gv = gv_fetchsv_nomg(sv, 0, SVt_PVIO);
        if (gv)
            io = GvIO(gv);
        else
            io = 0;
        if (!io) {
            SV *newsv = sv;
            if (SvGMAGICAL(sv)) {
                newsv = sv_newmortal();
                sv_setsv_nomg(newsv, sv);
            }
            Perl_croak(aTHX_ "Bad filehandle: %" SVf, SVfARG(newsv));
        }
        break;
    }
    return io;
}

/*
=for apidoc sv_2cv

Using various gambits, try to get a CV from an SV; in addition, try if
possible to set C<*st> and C<*gvp> to the stash and GV associated with it.
The flags in C<lref> are passed to C<gv_fetchsv>.

=cut
*/

CV *
Perl_sv_2cv(pTHX_ SV *sv, HV **const st, GV **const gvp, const I32 lref)
{
    GV *gv = NULL;
    CV *cv = NULL;

    PERL_ARGS_ASSERT_SV_2CV;

    if (!sv) {
        *st = NULL;
        *gvp = NULL;
        return NULL;
    }
    switch (SvTYPE(sv)) {
    case SVt_PVCV:
        *st = CvSTASH(sv);
        *gvp = NULL;
        return MUTABLE_CV(sv);
    case SVt_PVHV:
    case SVt_PVAV:
        *st = NULL;
        *gvp = NULL;
        return NULL;
    default:
        SvGETMAGIC(sv);
        if (SvROK(sv)) {
            if (SvAMAGIC(sv))
                sv = amagic_deref_call(sv, to_cv_amg);

            sv = SvRV(sv);
            if (SvTYPE(sv) == SVt_PVCV) {
                cv = MUTABLE_CV(sv);
                *gvp = NULL;
                *st = CvSTASH(cv);
                return cv;
            }
            else if(SvGETMAGIC(sv), isGV_with_GP(sv))
                gv = MUTABLE_GV(sv);
            else
                Perl_croak(aTHX_ "Not a subroutine reference");
        }
        else if (isGV_with_GP(sv)) {
            gv = MUTABLE_GV(sv);
        }
        else {
            gv = gv_fetchsv_nomg(sv, lref, SVt_PVCV);
        }
        *gvp = gv;
        if (!gv) {
            *st = NULL;
            return NULL;
        }
        /* Some flags to gv_fetchsv mean don't really create the GV  */
        if (!isGV_with_GP(gv)) {
            *st = NULL;
            return NULL;
        }
        *st = GvESTASH(gv);
        if (lref & ~GV_ADDMG && !GvCVu(gv)) {
            /* XXX this is probably not what they think they're getting.
             * It has the same effect as "sub name;", i.e. just a forward
             * declaration! */
            newSTUB(gv,0);
        }
        return GvCVu(gv);
    }
}

/*
=for apidoc sv_true

Returns true if the SV has a true value by Perl's rules.
Use the C<SvTRUE> macro instead, which may call C<sv_true()> or may
instead use an in-line version.

=cut
*/

I32
Perl_sv_true(pTHX_ SV *const sv)
{
    if (!sv)
        return 0;
    if (SvPOK(sv)) {
        const XPV* const tXpv = (XPV*)SvANY(sv);
        if (tXpv &&
                (tXpv->xpv_cur > 1 ||
                (tXpv->xpv_cur && *sv->sv_u.svu_pv != '0')))
            return 1;
        else
            return 0;
    }
    else {
        if (SvIOK(sv))
            return SvIVX(sv) != 0;
        else {
            if (SvNOK(sv))
                return SvNVX(sv) != 0.0;
            else
                return sv_2bool(sv);
        }
    }
}

/*
=for apidoc sv_pvn_force

Get a sensible string out of the SV somehow.
A private implementation of the C<SvPV_force> macro for compilers which
can't cope with complex macro expressions.  Always use the macro instead.

=for apidoc sv_pvn_force_flags

Get a sensible string out of the SV somehow.
If C<flags> has the C<SV_GMAGIC> bit set, will C<L</mg_get>> on C<sv> if
appropriate, else not.  C<sv_pvn_force> and C<sv_pvn_force_nomg> are
implemented in terms of this function.
You normally want to use the various wrapper macros instead: see
C<L</SvPV_force>> and C<L</SvPV_force_nomg>>.

=cut
*/

char *
Perl_sv_pvn_force_flags(pTHX_ SV *const sv, STRLEN *const lp, const U32 flags)
{
    PERL_ARGS_ASSERT_SV_PVN_FORCE_FLAGS;

    if (flags & SV_GMAGIC) SvGETMAGIC(sv);
    if (SvTHINKFIRST(sv) && (!SvROK(sv) || SvREADONLY(sv)))
        sv_force_normal_flags(sv, 0);

    if (SvPOK(sv)) {
        if (lp)
            *lp = SvCUR(sv);
    }
    else {
        char *s;
        STRLEN len;

        if (SvTYPE(sv) > SVt_PVLV
            || isGV_with_GP(sv))
            /* diag_listed_as: Can't coerce %s to %s in %s */
            Perl_croak(aTHX_ "Can't coerce %s to string in %s", sv_reftype(sv,0),
                OP_DESC(PL_op));
        s = sv_2pv_flags(sv, &len, flags &~ SV_GMAGIC);
        if (!s) {
          s = (char *)"";
        }
        if (lp)
            *lp = len;

        if (SvTYPE(sv) < SVt_PV ||
            s != SvPVX_const(sv)) {	/* Almost, but not quite, sv_setpvn() */
            if (SvROK(sv))
                sv_unref(sv);
            SvUPGRADE(sv, SVt_PV);		/* Never FALSE */
            SvGROW(sv, len + 1);
            Move(s,SvPVX(sv),len,char);
            SvCUR_set(sv, len);
            SvPVX(sv)[len] = '\0';
        }
        if (!SvPOK(sv)) {
            SvPOK_on(sv);		/* validate pointer */
            SvTAINT(sv);
            DEBUG_c(PerlIO_printf(Perl_debug_log, "0x%" UVxf " 2pv(%s)\n",
                                  PTR2UV(sv),SvPVX_const(sv)));
        }
    }
    (void)SvPOK_only_UTF8(sv);
    return SvPVX_mutable(sv);
}

/*
=for apidoc sv_pvbyten_force

The backend for the C<SvPVbytex_force> macro.  Always use the macro
instead.  If the SV cannot be downgraded from UTF-8, this croaks.

=cut
*/

char *
Perl_sv_pvbyten_force(pTHX_ SV *const sv, STRLEN *const lp)
{
    PERL_ARGS_ASSERT_SV_PVBYTEN_FORCE;

    sv_pvn_force(sv,lp);
    (void)sv_utf8_downgrade(sv,0);
    *lp = SvCUR(sv);
    return SvPVX(sv);
}

/*
=for apidoc sv_pvutf8n_force

The backend for the C<SvPVutf8x_force> macro.  Always use the macro
instead.

=cut
*/

char *
Perl_sv_pvutf8n_force(pTHX_ SV *const sv, STRLEN *const lp)
{
    PERL_ARGS_ASSERT_SV_PVUTF8N_FORCE;

    sv_pvn_force(sv,0);
    sv_utf8_upgrade_nomg(sv);
    *lp = SvCUR(sv);
    return SvPVX(sv);
}

/*
=for apidoc sv_reftype

Returns a string describing what the SV is a reference to.

If ob is true and the SV is blessed, the string is the class name,
otherwise it is the type of the SV, "SCALAR", "ARRAY" etc.

=cut
*/

const char *
Perl_sv_reftype(pTHX_ const SV *const sv, const int ob)
{
    PERL_ARGS_ASSERT_SV_REFTYPE;
    if (ob && SvOBJECT(sv)) {
        return SvPV_nolen_const(sv_ref(NULL, sv, ob));
    }
    else {
        /* WARNING - There is code, for instance in mg.c, that assumes that
         * the only reason that sv_reftype(sv,0) would return a string starting
         * with 'L' or 'S' is that it is a LVALUE or a SCALAR.
         * Yes this a dodgy way to do type checking, but it saves practically reimplementing
         * this routine inside other subs, and it saves time.
         * Do not change this assumption without searching for "dodgy type check" in
         * the code.
         * - Yves */
        switch (SvTYPE(sv)) {
        case SVt_NULL:
        case SVt_IV:
        case SVt_NV:
        case SVt_PV:
        case SVt_PVIV:
        case SVt_PVNV:
        case SVt_PVMG:
                                if (SvVOK(sv))
                                    return "VSTRING";
                                if (SvROK(sv))
                                    return "REF";
                                else
                                    return "SCALAR";

        case SVt_PVLV:		return (char *)  (SvROK(sv) ? "REF"
                                /* tied lvalues should appear to be
                                 * scalars for backwards compatibility */
                                : (isALPHA_FOLD_EQ(LvTYPE(sv), 't'))
                                    ? "SCALAR" : "LVALUE");
        case SVt_PVAV:		return "ARRAY";
        case SVt_PVHV:		return "HASH";
        case SVt_PVCV:		return "CODE";
        case SVt_PVGV:		return (char *) (isGV_with_GP(sv)
                                    ? "GLOB" : "SCALAR");
        case SVt_PVFM:		return "FORMAT";
        case SVt_PVIO:		return "IO";
        case SVt_INVLIST:	return "INVLIST";
        case SVt_REGEXP:	return "REGEXP";
        case SVt_PVOBJ:         return "OBJECT";
        default:		return "UNKNOWN";
        }
    }
}

/*
=for apidoc sv_ref

Returns a SV describing what the SV passed in is a reference to.

dst can be a SV to be set to the description or NULL, in which case a
mortal SV is returned.

If ob is true and the SV is blessed, the description is the class
name, otherwise it is the type of the SV, "SCALAR", "ARRAY" etc.

=cut
*/

SV *
Perl_sv_ref(pTHX_ SV *dst, const SV *const sv, const int ob)
{
    PERL_ARGS_ASSERT_SV_REF;

    if (!dst)
        dst = sv_newmortal();

    if (ob && SvOBJECT(sv)) {
        if (HvHasNAME(SvSTASH(sv)))
            sv_sethek(dst, HvNAME_HEK(SvSTASH(sv)));
        else
            sv_setpvs(dst, "__ANON__");
    }
    else {
        const char * reftype = sv_reftype(sv, 0);
        sv_setpv(dst, reftype);
    }
    return dst;
}

/*
=for apidoc sv_isobject

Returns a boolean indicating whether the SV is an RV pointing to a blessed
object.  If the SV is not an RV, or if the object is not blessed, then this
will return false.

=cut
*/

int
Perl_sv_isobject(pTHX_ SV *sv)
{
    if (!sv)
        return 0;
    SvGETMAGIC(sv);
    if (!SvROK(sv))
        return 0;
    sv = SvRV(sv);
    if (!SvOBJECT(sv))
        return 0;
    return 1;
}

/*
=for apidoc sv_isa

Returns a boolean indicating whether the SV is blessed into the specified
class.

This does not check for subtypes or method overloading. Use C<sv_isa_sv> to
verify an inheritance relationship in the same way as the C<isa> operator by
respecting any C<isa()> method overloading; or C<sv_derived_from_sv> to test
directly on the actual object type.

=cut
*/

int
Perl_sv_isa(pTHX_ SV *sv, const char *const name)
{
    const char *hvname;

    PERL_ARGS_ASSERT_SV_ISA;

    if (!sv)
        return 0;
    SvGETMAGIC(sv);
    if (!SvROK(sv))
        return 0;
    sv = SvRV(sv);
    if (!SvOBJECT(sv))
        return 0;
    hvname = HvNAME_get(SvSTASH(sv));
    if (!hvname)
        return 0;

    return strEQ(hvname, name);
}

/*
=for apidoc newSVrv

Creates a new SV for the existing RV, C<rv>, to point to.  If C<rv> is not an
RV then it will be upgraded to one.  If C<classname> is non-null then the new
SV will be blessed in the specified package.  The new SV is returned and its
reference count is 1.  The reference count 1 is owned by C<rv>. See also
newRV_inc() and newRV_noinc() for creating a new RV properly.

=cut
*/

SV*
Perl_newSVrv(pTHX_ SV *const rv, const char *const classname)
{
    SV *sv;

    PERL_ARGS_ASSERT_NEWSVRV;

    new_SV(sv);

    SV_CHECK_THINKFIRST_COW_DROP(rv);

    if (UNLIKELY( SvTYPE(rv) >= SVt_PVMG )) {
        const U32 refcnt = SvREFCNT(rv);
        SvREFCNT(rv) = 0;
        sv_clear(rv);
        SvFLAGS(rv) = 0;
        SvREFCNT(rv) = refcnt;

        sv_upgrade(rv, SVt_IV);
    } else if (SvROK(rv)) {
        SvREFCNT_dec(SvRV(rv));
    } else {
        prepare_SV_for_RV(rv);
    }

    SvOK_off(rv);
    SvRV_set(rv, sv);
    SvROK_on(rv);

    if (classname) {
        HV* const stash = gv_stashpv(classname, GV_ADD);
        (void)sv_bless(rv, stash);
    }
    return sv;
}

SV *
Perl_newSVavdefelem(pTHX_ AV *av, SSize_t ix, bool extendible)
{
    SV * const lv = newSV_type(SVt_PVLV);
    PERL_ARGS_ASSERT_NEWSVAVDEFELEM;
    LvTYPE(lv) = 'y';
    sv_magic(lv, NULL, PERL_MAGIC_defelem, NULL, 0);
    LvTARG(lv) = SvREFCNT_inc_simple_NN(av);
    LvSTARGOFF(lv) = ix;
    LvTARGLEN(lv) = extendible ? 1 : (STRLEN)UV_MAX;
    return lv;
}

/*
=for apidoc sv_setref_pv

Copies a pointer into a new SV, optionally blessing the SV.  The C<rv>
argument will be upgraded to an RV.  That RV will be modified to point to
the new SV.  If the C<pv> argument is C<NULL>, then C<PL_sv_undef> will be placed
into the SV.  The C<classname> argument indicates the package for the
blessing.  Set C<classname> to C<NULL> to avoid the blessing.  The new SV
will have a reference count of 1, and the RV will be returned.

Do not use with other Perl types such as HV, AV, SV, CV, because those
objects will become corrupted by the pointer copy process.

Note that C<sv_setref_pvn> copies the string while this copies the pointer.

=cut
*/

SV*
Perl_sv_setref_pv(pTHX_ SV *const rv, const char *const classname, void *const pv)
{
    PERL_ARGS_ASSERT_SV_SETREF_PV;

    if (!pv) {
        sv_set_undef(rv);
        SvSETMAGIC(rv);
    }
    else
        sv_setiv(newSVrv(rv,classname), PTR2IV(pv));
    return rv;
}

/*
=for apidoc sv_setref_iv

Copies an integer into a new SV, optionally blessing the SV.  The C<rv>
argument will be upgraded to an RV.  That RV will be modified to point to
the new SV.  The C<classname> argument indicates the package for the
blessing.  Set C<classname> to C<NULL> to avoid the blessing.  The new SV
will have a reference count of 1, and the RV will be returned.

=cut
*/

SV*
Perl_sv_setref_iv(pTHX_ SV *const rv, const char *const classname, const IV iv)
{
    PERL_ARGS_ASSERT_SV_SETREF_IV;

    sv_setiv(newSVrv(rv,classname), iv);
    return rv;
}

/*
=for apidoc sv_setref_uv

Copies an unsigned integer into a new SV, optionally blessing the SV.  The C<rv>
argument will be upgraded to an RV.  That RV will be modified to point to
the new SV.  The C<classname> argument indicates the package for the
blessing.  Set C<classname> to C<NULL> to avoid the blessing.  The new SV
will have a reference count of 1, and the RV will be returned.

=cut
*/

SV*
Perl_sv_setref_uv(pTHX_ SV *const rv, const char *const classname, const UV uv)
{
    PERL_ARGS_ASSERT_SV_SETREF_UV;

    sv_setuv(newSVrv(rv,classname), uv);
    return rv;
}

/*
=for apidoc sv_setref_nv

Copies a double into a new SV, optionally blessing the SV.  The C<rv>
argument will be upgraded to an RV.  That RV will be modified to point to
the new SV.  The C<classname> argument indicates the package for the
blessing.  Set C<classname> to C<NULL> to avoid the blessing.  The new SV
will have a reference count of 1, and the RV will be returned.

=cut
*/

SV*
Perl_sv_setref_nv(pTHX_ SV *const rv, const char *const classname, const NV nv)
{
    PERL_ARGS_ASSERT_SV_SETREF_NV;

    sv_setnv(newSVrv(rv,classname), nv);
    return rv;
}

/*
=for apidoc sv_setref_pvn

Copies a string into a new SV, optionally blessing the SV.  The length of the
string must be specified with C<n>.  The C<rv> argument will be upgraded to
an RV.  That RV will be modified to point to the new SV.  The C<classname>
argument indicates the package for the blessing.  Set C<classname> to
C<NULL> to avoid the blessing.  The new SV will have a reference count
of 1, and the RV will be returned.

Note that C<sv_setref_pv> copies the pointer while this copies the string.

=cut
*/

SV*
Perl_sv_setref_pvn(pTHX_ SV *const rv, const char *const classname,
                   const char *const pv, const STRLEN n)
{
    PERL_ARGS_ASSERT_SV_SETREF_PVN;

    sv_setpvn(newSVrv(rv,classname), pv, n);
    return rv;
}

/*
=for apidoc sv_bless

Blesses an SV into a specified package.  The SV must be an RV.  The package
must be designated by its stash (see C<L</gv_stashpv>>).  The reference count
of the SV is unaffected.

=cut
*/

SV*
Perl_sv_bless(pTHX_ SV *const sv, HV *const stash)
{
    SV *tmpRef;
    HV *oldstash = NULL;

    PERL_ARGS_ASSERT_SV_BLESS;

    SvGETMAGIC(sv);
    if (!SvROK(sv))
        Perl_croak(aTHX_ "Can't bless non-reference value");
    if (HvSTASH_IS_CLASS(stash))
        Perl_croak(aTHX_ "Attempt to bless into a class");

    tmpRef = SvRV(sv);
    if (SvFLAGS(tmpRef) & (SVs_OBJECT|SVf_READONLY|SVf_PROTECT)) {
        if (SvREADONLY(tmpRef))
            Perl_croak_no_modify();
        if (SvTYPE(tmpRef) == SVt_PVOBJ)
            Perl_croak(aTHX_ "Can't bless an object reference");
        if (SvOBJECT(tmpRef)) {
            oldstash = SvSTASH(tmpRef);
        }
    }
    SvOBJECT_on(tmpRef);
    SvUPGRADE(tmpRef, SVt_PVMG);
    SvSTASH_set(tmpRef, MUTABLE_HV(SvREFCNT_inc_simple(stash)));
    SvREFCNT_dec(oldstash);

    if(SvSMAGICAL(tmpRef))
        if(mg_find(tmpRef, PERL_MAGIC_ext) || mg_find(tmpRef, PERL_MAGIC_uvar))
            mg_set(tmpRef);



    return sv;
}

/* Downgrades a PVGV to a PVMG. If it's actually a PVLV, we leave the type
 * as it is after unglobbing it.
 */

PERL_STATIC_INLINE void
S_sv_unglob(pTHX_ SV *const sv, U32 flags)
{
    void *xpvmg;
    HV *stash;
    SV * const temp = flags & SV_COW_DROP_PV ? NULL : sv_newmortal();

    PERL_ARGS_ASSERT_SV_UNGLOB;

    assert(SvTYPE(sv) == SVt_PVGV || SvTYPE(sv) == SVt_PVLV);
    SvFAKE_off(sv);
    if (!(flags & SV_COW_DROP_PV))
        gv_efullname3(temp, MUTABLE_GV(sv), "*");

    SvREFCNT_inc_simple_void_NN(sv_2mortal(sv));
    if (GvGP(sv)) {
        if(GvCVu((const GV *)sv) && (stash = GvSTASH(MUTABLE_GV(sv)))
           && HvHasNAME(stash))
            mro_method_changed_in(stash);
        gp_free(MUTABLE_GV(sv));
    }
    if (GvSTASH(sv)) {
        sv_del_backref(MUTABLE_SV(GvSTASH(sv)), sv);
        GvSTASH(sv) = NULL;
    }
    GvMULTI_off(sv);
    if (GvNAME_HEK(sv)) {
        unshare_hek(GvNAME_HEK(sv));
    }
    isGV_with_GP_off(sv);

    if(SvTYPE(sv) == SVt_PVGV) {
        /* need to keep SvANY(sv) in the right arena */
        xpvmg = new_XPVMG();
        StructCopy(SvANY(sv), xpvmg, XPVMG);
        del_body_by_type(SvANY(sv), SVt_PVGV);
        SvANY(sv) = xpvmg;

        SvFLAGS(sv) &= ~SVTYPEMASK;
        SvFLAGS(sv) |= SVt_PVMG;
    }

    /* Intentionally not calling any local SET magic, as this isn't so much a
       set operation as merely an internal storage change.  */
    if (flags & SV_COW_DROP_PV) SvOK_off(sv);
    else sv_setsv_flags(sv, temp, 0);

    if ((const GV *)sv == PL_last_in_gv)
        PL_last_in_gv = NULL;
    else if ((const GV *)sv == PL_statgv)
        PL_statgv = NULL;
}

/*
=for apidoc sv_unref_flags

Unsets the RV status of the SV, and decrements the reference count of
whatever was being referenced by the RV.  This can almost be thought of
as a reversal of C<newSVrv>.  The C<cflags> argument can contain
C<SV_IMMEDIATE_UNREF> to force the reference count to be decremented
(otherwise the decrementing is conditional on the reference count being
different from one or the reference being a readonly SV).
See C<L</SvROK_off>>.

=for apidoc Amnh||SV_IMMEDIATE_UNREF

=cut
*/

void
Perl_sv_unref_flags(pTHX_ SV *const ref, const U32 flags)
{
    SV* const target = SvRV(ref);

    PERL_ARGS_ASSERT_SV_UNREF_FLAGS;

    if (SvWEAKREF(ref)) {
        sv_del_backref(target, ref);
        SvWEAKREF_off(ref);
        SvRV_set(ref, NULL);
        return;
    }
    SvRV_set(ref, NULL);
    SvROK_off(ref);
    /* You can't have a || SvREADONLY(target) here, as $a = $$a, where $a was
       assigned to as BEGIN {$a = \"Foo"} will fail.  */
    if (SvREFCNT(target) != 1 || (flags & SV_IMMEDIATE_UNREF))
        SvREFCNT_dec_NN(target);
    else /* XXX Hack, but hard to make $a=$a->[1] work otherwise */
        sv_2mortal(target);	/* Schedule for freeing later */
}

/*
=for apidoc sv_untaint

Untaint an SV.  Use C<SvTAINTED_off> instead.

=cut
*/

void
Perl_sv_untaint(pTHX_ SV *const sv)
{
    PERL_ARGS_ASSERT_SV_UNTAINT;
    PERL_UNUSED_CONTEXT;

    if (SvTYPE(sv) >= SVt_PVMG && SvMAGIC(sv)) {
        MAGIC * const mg = mg_find(sv, PERL_MAGIC_taint);
        if (mg)
            mg->mg_len &= ~1;
    }
}

/*
=for apidoc sv_tainted

Test an SV for taintedness.  Use C<SvTAINTED> instead.

=cut
*/

bool
Perl_sv_tainted(pTHX_ SV *const sv)
{
    PERL_ARGS_ASSERT_SV_TAINTED;
    PERL_UNUSED_CONTEXT;

    if (SvTYPE(sv) >= SVt_PVMG && SvMAGIC(sv)) {
        const MAGIC * const mg = mg_find(sv, PERL_MAGIC_taint);
        if (mg && (mg->mg_len & 1) )
            return TRUE;
    }
    return FALSE;
}

#if defined(MULTIPLICITY)

/* pTHX_ magic can't cope with varargs, so this is a no-context
 * version of the main function, (which may itself be aliased to us).
 * Don't access this version directly.
 */

void
Perl_sv_setpvf_nocontext(SV *const sv, const char *const pat, ...)
{
    dTHX;
    va_list args;

    PERL_ARGS_ASSERT_SV_SETPVF_NOCONTEXT;

    va_start(args, pat);
    sv_vsetpvf(sv, pat, &args);
    va_end(args);
}

/* pTHX_ magic can't cope with varargs, so this is a no-context
 * version of the main function, (which may itself be aliased to us).
 * Don't access this version directly.
 */

void
Perl_sv_setpvf_mg_nocontext(SV *const sv, const char *const pat, ...)
{
    dTHX;
    va_list args;

    PERL_ARGS_ASSERT_SV_SETPVF_MG_NOCONTEXT;

    va_start(args, pat);
    sv_vsetpvf_mg(sv, pat, &args);
    va_end(args);
}
#endif

/*
=for apidoc      sv_setpvf
=for apidoc_item sv_setpvf_mg
=for apidoc_item sv_setpvf_mg_nocontext
=for apidoc_item sv_setpvf_nocontext

These work like C<L</sv_catpvf>> but copy the text into the SV instead of
appending it.

The differences between these are:

C<sv_setpvf_mg> and C<sv_setpvf_mg_nocontext> perform 'set' magic; C<sv_setpvf>
and C<sv_setpvf_nocontext> skip all magic.

C<sv_setpvf_nocontext> and C<sv_setpvf_mg_nocontext> do not take a thread
context (C<aTHX>) parameter, so are used in situations where the caller
doesn't already have the thread context.

=cut
*/

void
Perl_sv_setpvf(pTHX_ SV *const sv, const char *const pat, ...)
{
    va_list args;

    PERL_ARGS_ASSERT_SV_SETPVF;

    va_start(args, pat);
    sv_vsetpvf(sv, pat, &args);
    va_end(args);
}

/*
=for apidoc sv_vsetpvf
=for apidoc_item sv_vsetpvf_mg

These work like C<L</sv_vcatpvf>> but copy the text into the SV instead of
appending it.

They differ only in that C<sv_vsetpvf_mg> performs 'set' magic;
C<sv_vsetpvf> skips all magic.

They are usually used via their frontends, C<L</sv_setpvf>> and
C<L</sv_setpvf_mg>>.

=cut
*/

void
Perl_sv_vsetpvf(pTHX_ SV *const sv, const char *const pat, va_list *const args)
{
    PERL_ARGS_ASSERT_SV_VSETPVF;

    sv_vsetpvfn(sv, pat, strlen(pat), args, NULL, 0, NULL);
}

void
Perl_sv_setpvf_mg(pTHX_ SV *const sv, const char *const pat, ...)
{
    va_list args;

    PERL_ARGS_ASSERT_SV_SETPVF_MG;

    va_start(args, pat);
    sv_vsetpvf_mg(sv, pat, &args);
    va_end(args);
}

void
Perl_sv_vsetpvf_mg(pTHX_ SV *const sv, const char *const pat, va_list *const args)
{
    PERL_ARGS_ASSERT_SV_VSETPVF_MG;

    sv_vsetpvfn(sv, pat, strlen(pat), args, NULL, 0, NULL);
    SvSETMAGIC(sv);
}

#if defined(MULTIPLICITY)

/* pTHX_ magic can't cope with varargs, so this is a no-context
 * version of the main function, (which may itself be aliased to us).
 * Don't access this version directly.
 */

void
Perl_sv_catpvf_nocontext(SV *const sv, const char *const pat, ...)
{
    dTHX;
    va_list args;

    PERL_ARGS_ASSERT_SV_CATPVF_NOCONTEXT;

    va_start(args, pat);
    sv_vcatpvfn_flags(sv, pat, strlen(pat), &args, NULL, 0, NULL, SV_GMAGIC|SV_SMAGIC);
    va_end(args);
}

/* pTHX_ magic can't cope with varargs, so this is a no-context
 * version of the main function, (which may itself be aliased to us).
 * Don't access this version directly.
 */

void
Perl_sv_catpvf_mg_nocontext(SV *const sv, const char *const pat, ...)
{
    dTHX;
    va_list args;

    PERL_ARGS_ASSERT_SV_CATPVF_MG_NOCONTEXT;

    va_start(args, pat);
    sv_vcatpvfn_flags(sv, pat, strlen(pat), &args, NULL, 0, NULL, SV_GMAGIC|SV_SMAGIC);
    SvSETMAGIC(sv);
    va_end(args);
}
#endif

/*
=for apidoc sv_catpvf
=for apidoc_item sv_catpvf_mg
=for apidoc_item sv_catpvf_mg_nocontext
=for apidoc_item sv_catpvf_nocontext

These process their arguments like C<sprintf>, and append the formatted
output to an SV.  As with C<sv_vcatpvfn>, argument reordering is not supporte
when called with a non-null C-style variable argument list.

If the appended data contains "wide" characters
(including, but not limited to, SVs with a UTF-8 PV formatted with C<%s>,
and characters >255 formatted with C<%c>), the original SV might get
upgraded to UTF-8.

If the original SV was UTF-8, the pattern should be
valid UTF-8; if the original SV was bytes, the pattern should be too.

All perform 'get' magic, but only C<sv_catpvf_mg> and C<sv_catpvf_mg_nocontext>
perform 'set' magic.

C<sv_catpvf_nocontext> and C<sv_catpvf_mg_nocontext> do not take a thread
context (C<aTHX>) parameter, so are used in situations where the caller
doesn't already have the thread context.

=cut
*/

void
Perl_sv_catpvf(pTHX_ SV *const sv, const char *const pat, ...)
{
    va_list args;

    PERL_ARGS_ASSERT_SV_CATPVF;

    va_start(args, pat);
    sv_vcatpvfn_flags(sv, pat, strlen(pat), &args, NULL, 0, NULL, SV_GMAGIC|SV_SMAGIC);
    va_end(args);
}

/*
=for apidoc sv_vcatpvf
=for apidoc_item sv_vcatpvf_mg

These process their arguments like C<sv_vcatpvfn> called with a non-null
C-style variable argument list, and append the formatted output to C<sv>.

They differ only in that C<sv_vcatpvf_mg> performs 'set' magic;
C<sv_vcatpvf> skips 'set' magic.

Both perform 'get' magic.

They are usually accessed via their frontends C<L</sv_catpvf>> and
C<L</sv_catpvf_mg>>.

=cut
*/

void
Perl_sv_vcatpvf(pTHX_ SV *const sv, const char *const pat, va_list *const args)
{
    PERL_ARGS_ASSERT_SV_VCATPVF;

    sv_vcatpvfn_flags(sv, pat, strlen(pat), args, NULL, 0, NULL, SV_GMAGIC|SV_SMAGIC);
}

void
Perl_sv_catpvf_mg(pTHX_ SV *const sv, const char *const pat, ...)
{
    va_list args;

    PERL_ARGS_ASSERT_SV_CATPVF_MG;

    va_start(args, pat);
    sv_vcatpvfn_flags(sv, pat, strlen(pat), &args, NULL, 0, NULL, SV_GMAGIC|SV_SMAGIC);
    SvSETMAGIC(sv);
    va_end(args);
}

void
Perl_sv_vcatpvf_mg(pTHX_ SV *const sv, const char *const pat, va_list *const args)
{
    PERL_ARGS_ASSERT_SV_VCATPVF_MG;

    sv_vcatpvfn(sv, pat, strlen(pat), args, NULL, 0, NULL);
    SvSETMAGIC(sv);
}

/*
=for apidoc sv_vsetpvfn

Works like C<sv_vcatpvfn> but copies the text into the SV instead of
appending it.

Usually used via one of its frontends L</C<sv_vsetpvf>> and
L</C<sv_vsetpvf_mg>>.

=cut
*/

void
Perl_sv_vsetpvfn(pTHX_ SV *const sv, const char *const pat, const STRLEN patlen,
                 va_list *const args, SV **const svargs, const Size_t sv_count, bool *const maybe_tainted)
{
    PERL_ARGS_ASSERT_SV_VSETPVFN;

    SvPVCLEAR(sv);
    sv_vcatpvfn_flags(sv, pat, patlen, args, svargs, sv_count, maybe_tainted, 0);
}


/* simplified inline Perl_sv_catpvn_nomg() when you know the SV's SvPOK */

PERL_STATIC_INLINE void
S_sv_catpvn_simple(pTHX_ SV *const sv, const char* const buf, const STRLEN len)
{
    STRLEN const need = len + SvCUR(sv) + 1;
    char *end;

    /* can't wrap as both len and SvCUR() are allocated in
     * memory and together can't consume all the address space
     */
    assert(need > len);

    assert(SvPOK(sv));
    SvGROW(sv, need);
    end = SvEND(sv);
    Copy(buf, end, len, char);
    end += len;
    *end = '\0';
    SvCUR_set(sv, need - 1);
}


/*
 * Warn of missing argument to sprintf. The value used in place of such
 * arguments should be &PL_sv_no; an undefined value would yield
 * inappropriate "use of uninit" warnings [perl #71000].
 */
STATIC void
S_warn_vcatpvfn_missing_argument(pTHX) {
    if (ckWARN(WARN_MISSING)) {
        Perl_warner(aTHX_ packWARN(WARN_MISSING), "Missing argument in %s",
                PL_op ? OP_DESC(PL_op) : "sv_vcatpvfn()");
    }
}


static void
S_croak_overflow()
{
    dTHX;
    Perl_croak(aTHX_ "Integer overflow in format string for %s",
                    (PL_op ? OP_DESC(PL_op) : "sv_vcatpvfn"));
}


/* Given an int i from the next arg (if args is true) or an sv from an arg
 * (if args is false), try to extract a STRLEN-ranged value from the arg,
 * with overflow checking.
 * Sets *neg to true if the value was negative (untouched otherwise.
 * Returns the absolute value.
 * As an extra margin of safety, it croaks if the returned value would
 * exceed the maximum value of a STRLEN / 4.
 */

static STRLEN
S_sprintf_arg_num_val(pTHX_ va_list *const args, int i, SV *sv, bool *neg)
{
    IV iv;

    if (args) {
        iv = i;
        goto do_iv;
    }

    if (!sv)
        return 0;

    SvGETMAGIC(sv);

    if (UNLIKELY(SvIsUV(sv))) {
        UV uv = SvUV_nomg(sv);
        if (uv > IV_MAX)
            S_croak_overflow();
        iv = uv;
    }
    else {
        iv = SvIV_nomg(sv);
      do_iv:
        if (iv < 0) {
            if (iv < -IV_MAX)
                S_croak_overflow();
            iv = -iv;
            *neg = TRUE;
        }
    }

    if (iv > (IV)(((STRLEN)~0) / 4))
        S_croak_overflow();

    return (STRLEN)iv;
}

/* Read in and return a number. Updates *pattern to point to the char
 * following the number. Expects the first char to 1..9.
 * Croaks if the number exceeds 1/4 of the maximum value of STRLEN.
 * This is a belt-and-braces safety measure to complement any
 * overflow/wrap checks done in the main body of sv_vcatpvfn_flags.
 * It means that e.g. on a 32-bit system the width/precision can't be more
 * than 1G, which seems reasonable.
 */

STATIC STRLEN
S_expect_number(pTHX_ const char **const pattern)
{
    STRLEN var;

    PERL_ARGS_ASSERT_EXPECT_NUMBER;

    assert(inRANGE(**pattern, '1', '9'));

    var = *(*pattern)++ - '0';
    while (isDIGIT(**pattern)) {
        /* if var * 10 + 9 would exceed 1/4 max strlen, croak */
        if (var > ((((STRLEN)~0) / 4 - 9) / 10))
            S_croak_overflow();
        var = var * 10 + (*(*pattern)++ - '0');
    }
    return var;
}

/* Implement a fast "%.0f": given a pointer to the end of a buffer (caller
 * ensures it's big enough), back fill it with the rounded integer part of
 * nv. Returns ptr to start of string, and sets *len to its length.
 * Returns NULL if not convertible.
 */

STATIC char *
S_F0convert(NV nv, char *const endbuf, STRLEN *const len)
{
    const int neg = nv < 0;
    UV uv;

    PERL_ARGS_ASSERT_F0CONVERT;

    assert(!Perl_isinfnan(nv));
    if (neg)
        nv = -nv;
    if (nv != 0.0 && nv < (NV) UV_MAX) {
        char *p = endbuf;
        uv = (UV)nv;
        if (uv != nv) {
            nv += 0.5;
            uv = (UV)nv;
            if (uv & 1 && uv == nv)
                uv--;			/* Round to even */
        }
        do {
            const unsigned dig = uv % 10;
            *--p = '0' + dig;
        } while (uv /= 10);
        if (neg)
            *--p = '-';
        *len = endbuf - p;
        return p;
    }
    return NULL;
}


/* XXX maybe_tainted is never assigned to, so the doc above is lying. */

void
Perl_sv_vcatpvfn(pTHX_ SV *const sv, const char *const pat, const STRLEN patlen,
                 va_list *const args, SV **const svargs, const Size_t sv_count, bool *const maybe_tainted)
{
    PERL_ARGS_ASSERT_SV_VCATPVFN;

    sv_vcatpvfn_flags(sv, pat, patlen, args, svargs, sv_count, maybe_tainted, SV_GMAGIC|SV_SMAGIC);
}


/* For the vcatpvfn code, we need a long double target in case
 * HAS_LONG_DOUBLE, even without USE_LONG_DOUBLE, so that we can printf
 * with long double formats, even without NV being long double.  But we
 * call the target 'fv' instead of 'nv', since most of the time it is not
 * (most compilers these days recognize "long double", even if only as a
 * synonym for "double").
*/
#if defined(HAS_LONG_DOUBLE) && LONG_DOUBLESIZE > DOUBLESIZE && \
        defined(PERL_PRIgldbl) && !defined(USE_QUADMATH)
#  define VCATPVFN_FV_GF PERL_PRIgldbl
#  if defined(__VMS) && defined(__ia64) && defined(__IEEE_FLOAT)
       /* Work around breakage in OTS$CVT_FLOAT_T_X */
#    define VCATPVFN_NV_TO_FV(nv,fv)                    \
            STMT_START {                                \
                double _dv = nv;                        \
                fv = Perl_isnan(_dv) ? LDBL_QNAN : _dv; \
            } STMT_END
#  else
#    define VCATPVFN_NV_TO_FV(nv,fv) (fv)=(nv)
#  endif
   typedef long double vcatpvfn_long_double_t;
#else
#  define VCATPVFN_FV_GF NVgf
#  define VCATPVFN_NV_TO_FV(nv,fv) (fv)=(nv)
   typedef NV vcatpvfn_long_double_t;
#endif

#ifdef LONGDOUBLE_DOUBLEDOUBLE
/* The first double can be as large as 2**1023, or '1' x '0' x 1023.
 * The second double can be as small as 2**-1074, or '0' x 1073 . '1'.
 * The sum of them can be '1' . '0' x 2096 . '1', with implied radix point
 * after the first 1023 zero bits.
 *
 * XXX The 2098 is quite large (262.25 bytes) and therefore some sort
 * of dynamically growing buffer might be better, start at just 16 bytes
 * (for example) and grow only when necessary.  Or maybe just by looking
 * at the exponents of the two doubles? */
#  define DOUBLEDOUBLE_MAXBITS 2098
#endif

/* vhex will contain the values (0..15) of the hex digits ("nybbles"
 * of 4 bits); 1 for the implicit 1, and the mantissa bits, four bits
 * per xdigit.  For the double-double case, this can be rather many.
 * The non-double-double-long-double overshoots since all bits of NV
 * are not mantissa bits, there are also exponent bits. */
#ifdef LONGDOUBLE_DOUBLEDOUBLE
#  define VHEX_SIZE (3+DOUBLEDOUBLE_MAXBITS/4)
#else
#  define VHEX_SIZE (1+(NVSIZE * 8)/4)
#endif

/* If we do not have a known long double format, (including not using
 * long doubles, or long doubles being equal to doubles) then we will
 * fall back to the ldexp/frexp route, with which we can retrieve at
 * most as many bits as our widest unsigned integer type is.  We try
 * to get a 64-bit unsigned integer even if we are not using a 64-bit UV.
 *
 * (If you want to test the case of UVSIZE == 4, NVSIZE == 8,
 *  set the MANTISSATYPE to int and the MANTISSASIZE to 4.)
 */
#if defined(HAS_QUAD) && defined(Uquad_t)
#  define MANTISSATYPE Uquad_t
#  define MANTISSASIZE 8
#else
#  define MANTISSATYPE UV
#  define MANTISSASIZE UVSIZE
#endif

#if defined(DOUBLE_LITTLE_ENDIAN) || defined(LONGDOUBLE_LITTLE_ENDIAN)
#  define HEXTRACT_LITTLE_ENDIAN
#elif defined(DOUBLE_BIG_ENDIAN) || defined(LONGDOUBLE_BIG_ENDIAN)
#  define HEXTRACT_BIG_ENDIAN
#else
#  define HEXTRACT_MIX_ENDIAN
#endif

/* S_hextract() is a helper for S_format_hexfp, for extracting
 * the hexadecimal values (for %a/%A).  The nv is the NV where the value
 * are being extracted from (either directly from the long double in-memory
 * presentation, or from the uquad computed via frexp+ldexp).  frexp also
 * is used to update the exponent.  The subnormal is set to true
 * for IEEE 754 subnormals/denormals (including the x86 80-bit format).
 * The vhex is the pointer to the beginning of the output buffer of VHEX_SIZE.
 *
 * The tricky part is that S_hextract() needs to be called twice:
 * the first time with vend as NULL, and the second time with vend as
 * the pointer returned by the first call.  What happens is that on
 * the first round the output size is computed, and the intended
 * extraction sanity checked.  On the second round the actual output
 * (the extraction of the hexadecimal values) takes place.
 * Sanity failures cause fatal failures during both rounds. */
STATIC U8*
S_hextract(pTHX_ const NV nv, int* exponent, bool *subnormal,
           U8* vhex, U8* vend)
{
    U8* v = vhex;
    int ix;
    int ixmin = 0, ixmax = 0;

    /* XXX Inf/NaN are not handled here, since it is
     * assumed they are to be output as "Inf" and "NaN". */

    /* These macros are just to reduce typos, they have multiple
     * repetitions below, but usually only one (or sometimes two)
     * of them is really being used. */
    /* HEXTRACT_OUTPUT() extracts the high nybble first. */
#define HEXTRACT_OUTPUT_HI(ix) (*v++ = nvp[ix] >> 4)
#define HEXTRACT_OUTPUT_LO(ix) (*v++ = nvp[ix] & 0xF)
#define HEXTRACT_OUTPUT(ix) \
    STMT_START { \
      HEXTRACT_OUTPUT_HI(ix); HEXTRACT_OUTPUT_LO(ix); \
   } STMT_END
#define HEXTRACT_COUNT(ix, c) \
    STMT_START { \
      v += c; if (ix < ixmin) ixmin = ix; else if (ix > ixmax) ixmax = ix; \
   } STMT_END
#define HEXTRACT_BYTE(ix) \
    STMT_START { \
      if (vend) HEXTRACT_OUTPUT(ix); else HEXTRACT_COUNT(ix, 2); \
   } STMT_END
#define HEXTRACT_LO_NYBBLE(ix) \
    STMT_START { \
      if (vend) HEXTRACT_OUTPUT_LO(ix); else HEXTRACT_COUNT(ix, 1); \
   } STMT_END
    /* HEXTRACT_TOP_NYBBLE is just convenience disguise,
     * to make it look less odd when the top bits of a NV
     * are extracted using HEXTRACT_LO_NYBBLE: the highest
     * order bits can be in the "low nybble" of a byte. */
#define HEXTRACT_TOP_NYBBLE(ix) HEXTRACT_LO_NYBBLE(ix)
#define HEXTRACT_BYTES_LE(a, b) \
    for (ix = a; ix >= b; ix--) { HEXTRACT_BYTE(ix); }
#define HEXTRACT_BYTES_BE(a, b) \
    for (ix = a; ix <= b; ix++) { HEXTRACT_BYTE(ix); }
#define HEXTRACT_GET_SUBNORMAL(nv) *subnormal = Perl_fp_class_denorm(nv)
#define HEXTRACT_IMPLICIT_BIT(nv) \
    STMT_START { \
        if (!*subnormal) { \
            if (vend) *v++ = ((nv) == 0.0) ? 0 : 1; else v++; \
        } \
   } STMT_END

/* Most formats do.  Those which don't should undef this.
 *
 * But also note that IEEE 754 subnormals do not have it, or,
 * expressed alternatively, their implicit bit is zero. */
#define HEXTRACT_HAS_IMPLICIT_BIT

/* Many formats do.  Those which don't should undef this. */
#define HEXTRACT_HAS_TOP_NYBBLE

    /* HEXTRACTSIZE is the maximum number of xdigits. */
#if defined(USE_LONG_DOUBLE) && defined(LONGDOUBLE_DOUBLEDOUBLE)
#  define HEXTRACTSIZE (2+DOUBLEDOUBLE_MAXBITS/4)
#else
#  define HEXTRACTSIZE 2 * NVSIZE
#endif

    const U8* vmaxend = vhex + HEXTRACTSIZE;

    assert(HEXTRACTSIZE <= VHEX_SIZE);

    PERL_UNUSED_VAR(ix); /* might happen */
    (void)Perl_frexp(PERL_ABS(nv), exponent);
    *subnormal = FALSE;
    if (vend && (vend <= vhex || vend > vmaxend)) {
        /* diag_listed_as: Hexadecimal float: internal error (%s) */
        Perl_croak(aTHX_ "Hexadecimal float: internal error (entry)");
    }
    {
        /* First check if using long doubles. */
#if defined(USE_LONG_DOUBLE) && (NVSIZE > DOUBLESIZE)
#  if LONG_DOUBLEKIND == LONG_DOUBLE_IS_IEEE_754_128_BIT_LITTLE_ENDIAN
        /* Used in e.g. VMS and HP-UX IA-64, e.g. -0.1L:
         * 9a 99 99 99 99 99 99 99 99 99 99 99 99 99 fb bf */
        /* The bytes 13..0 are the mantissa/fraction,
         * the 15,14 are the sign+exponent. */
        const U8* nvp = (const U8*)(&nv);
        HEXTRACT_GET_SUBNORMAL(nv);
        HEXTRACT_IMPLICIT_BIT(nv);
#    undef HEXTRACT_HAS_TOP_NYBBLE
        HEXTRACT_BYTES_LE(13, 0);
#  elif LONG_DOUBLEKIND == LONG_DOUBLE_IS_IEEE_754_128_BIT_BIG_ENDIAN
        /* Used in e.g. Solaris Sparc and HP-UX PA-RISC, e.g. -0.1L:
         * bf fb 99 99 99 99 99 99 99 99 99 99 99 99 99 9a */
        /* The bytes 2..15 are the mantissa/fraction,
         * the 0,1 are the sign+exponent. */
        const U8* nvp = (const U8*)(&nv);
        HEXTRACT_GET_SUBNORMAL(nv);
        HEXTRACT_IMPLICIT_BIT(nv);
#    undef HEXTRACT_HAS_TOP_NYBBLE
        HEXTRACT_BYTES_BE(2, 15);
#  elif LONG_DOUBLEKIND == LONG_DOUBLE_IS_X86_80_BIT_LITTLE_ENDIAN
        /* x86 80-bit "extended precision", 64 bits of mantissa / fraction /
         * significand, 15 bits of exponent, 1 bit of sign.  No implicit bit.
         * NVSIZE can be either 12 (ILP32, Solaris x86) or 16 (LP64, Linux
         * and OS X), meaning that 2 or 6 bytes are empty padding. */
        /* The bytes 0..1 are the sign+exponent,
         * the bytes 2..9 are the mantissa/fraction. */
        const U8* nvp = (const U8*)(&nv);
#    undef HEXTRACT_HAS_IMPLICIT_BIT
#    undef HEXTRACT_HAS_TOP_NYBBLE
        HEXTRACT_GET_SUBNORMAL(nv);
        HEXTRACT_BYTES_LE(7, 0);
#  elif LONG_DOUBLEKIND == LONG_DOUBLE_IS_X86_80_BIT_BIG_ENDIAN
        /* Does this format ever happen? (Wikipedia says the Motorola
         * 6888x math coprocessors used format _like_ this but padded
         * to 96 bits with 16 unused bits between the exponent and the
         * mantissa.) */
        const U8* nvp = (const U8*)(&nv);
#    undef HEXTRACT_HAS_IMPLICIT_BIT
#    undef HEXTRACT_HAS_TOP_NYBBLE
        HEXTRACT_GET_SUBNORMAL(nv);
        HEXTRACT_BYTES_BE(0, 7);
#  else
#    define HEXTRACT_FALLBACK
        /* Double-double format: two doubles next to each other.
         * The first double is the high-order one, exactly like
         * it would be for a "lone" double.  The second double
         * is shifted down using the exponent so that that there
         * are no common bits.  The tricky part is that the value
         * of the double-double is the SUM of the two doubles and
         * the second one can be also NEGATIVE.
         *
         * Because of this tricky construction the bytewise extraction we
         * use for the other long double formats doesn't work, we must
         * extract the values bit by bit.
         *
         * The little-endian double-double is used .. somewhere?
         *
         * The big endian double-double is used in e.g. PPC/Power (AIX)
         * and MIPS (SGI).
         *
         * The mantissa bits are in two separate stretches, e.g. for -0.1L:
         * 9a 99 99 99 99 99 59 bc 9a 99 99 99 99 99 b9 3f (LE)
         * 3f b9 99 99 99 99 99 9a bc 59 99 99 99 99 99 9a (BE)
         */
#  endif
#else /* #if defined(USE_LONG_DOUBLE) && (NVSIZE > DOUBLESIZE) */
        /* Using normal doubles, not long doubles.
         *
         * We generate 4-bit xdigits (nybble/nibble) instead of 8-bit
         * bytes, since we might need to handle printf precision, and
         * also need to insert the radix. */
#  if NVSIZE == 8
#    ifdef HEXTRACT_LITTLE_ENDIAN
        /* 0 1 2 3 4 5 6 7 (MSB = 7, LSB = 0, 6+7 = exponent+sign) */
        const U8* nvp = (const U8*)(&nv);
        HEXTRACT_GET_SUBNORMAL(nv);
        HEXTRACT_IMPLICIT_BIT(nv);
        HEXTRACT_TOP_NYBBLE(6);
        HEXTRACT_BYTES_LE(5, 0);
#    elif defined(HEXTRACT_BIG_ENDIAN)
        /* 7 6 5 4 3 2 1 0 (MSB = 7, LSB = 0, 6+7 = exponent+sign) */
        const U8* nvp = (const U8*)(&nv);
        HEXTRACT_GET_SUBNORMAL(nv);
        HEXTRACT_IMPLICIT_BIT(nv);
        HEXTRACT_TOP_NYBBLE(1);
        HEXTRACT_BYTES_BE(2, 7);
#    elif DOUBLEKIND == DOUBLE_IS_IEEE_754_64_BIT_MIXED_ENDIAN_LE_BE
        /* 4 5 6 7 0 1 2 3 (MSB = 7, LSB = 0, 6:7 = nybble:exponent:sign) */
        const U8* nvp = (const U8*)(&nv);
        HEXTRACT_GET_SUBNORMAL(nv);
        HEXTRACT_IMPLICIT_BIT(nv);
        HEXTRACT_TOP_NYBBLE(2); /* 6 */
        HEXTRACT_BYTE(1); /* 5 */
        HEXTRACT_BYTE(0); /* 4 */
        HEXTRACT_BYTE(7); /* 3 */
        HEXTRACT_BYTE(6); /* 2 */
        HEXTRACT_BYTE(5); /* 1 */
        HEXTRACT_BYTE(4); /* 0 */
#    elif DOUBLEKIND == DOUBLE_IS_IEEE_754_64_BIT_MIXED_ENDIAN_BE_LE
        /* 3 2 1 0 7 6 5 4 (MSB = 7, LSB = 0, 7:6 = sign:exponent:nybble) */
        const U8* nvp = (const U8*)(&nv);
        HEXTRACT_GET_SUBNORMAL(nv);
        HEXTRACT_IMPLICIT_BIT(nv);
        HEXTRACT_TOP_NYBBLE(5); /* 6 */
        HEXTRACT_BYTE(6); /* 5 */
        HEXTRACT_BYTE(7); /* 4 */
        HEXTRACT_BYTE(0); /* 3 */
        HEXTRACT_BYTE(1); /* 2 */
        HEXTRACT_BYTE(2); /* 1 */
        HEXTRACT_BYTE(3); /* 0 */
#    else
#      define HEXTRACT_FALLBACK
#    endif
#  else
#    define HEXTRACT_FALLBACK
#  endif
#endif /* #if defined(USE_LONG_DOUBLE) && (NVSIZE > DOUBLESIZE) #else */

#ifdef HEXTRACT_FALLBACK
        HEXTRACT_GET_SUBNORMAL(nv);
#  undef HEXTRACT_HAS_TOP_NYBBLE /* Meaningless, but consistent. */
        /* The fallback is used for the double-double format, and
         * for unknown long double formats, and for unknown double
         * formats, or in general unknown NV formats. */
        if (nv == (NV)0.0) {
            if (vend)
                *v++ = 0;
            else
                v++;
            *exponent = 0;
        }
        else {
            NV d = nv < 0 ? -nv : nv;
            NV e = (NV)1.0;
            U8 ha = 0x0; /* hexvalue accumulator */
            U8 hd = 0x8; /* hexvalue digit */

            /* Shift d and e (and update exponent) so that e <= d < 2*e,
             * this is essentially manual frexp(). Multiplying by 0.5 and
             * doubling should be lossless in binary floating point. */

            *exponent = 1;

            while (e > d) {
                e *= (NV)0.5;
                (*exponent)--;
            }
            /* Now d >= e */

            while (d >= e + e) {
                e += e;
                (*exponent)++;
            }
            /* Now e <= d < 2*e */

            /* First extract the leading hexdigit (the implicit bit). */
            if (d >= e) {
                d -= e;
                if (vend)
                    *v++ = 1;
                else
                    v++;
            }
            else {
                if (vend)
                    *v++ = 0;
                else
                    v++;
            }
            e *= (NV)0.5;

            /* Then extract the remaining hexdigits. */
            while (d > (NV)0.0) {
                if (d >= e) {
                    ha |= hd;
                    d -= e;
                }
                if (hd == 1) {
                    /* Output or count in groups of four bits,
                     * that is, when the hexdigit is down to one. */
                    if (vend)
                        *v++ = ha;
                    else
                        v++;
                    /* Reset the hexvalue. */
                    ha = 0x0;
                    hd = 0x8;
                }
                else
                    hd >>= 1;
                e *= (NV)0.5;
            }

            /* Flush possible pending hexvalue. */
            if (ha) {
                if (vend)
                    *v++ = ha;
                else
                    v++;
            }
        }
#endif
    }
    /* Croak for various reasons: if the output pointer escaped the
     * output buffer, if the extraction index escaped the extraction
     * buffer, or if the ending output pointer didn't match the
     * previously computed value. */
    if (v <= vhex || v - vhex >= VHEX_SIZE ||
        /* For double-double the ixmin and ixmax stay at zero,
         * which is convenient since the HEXTRACTSIZE is tricky
         * for double-double. */
        ixmin < 0 || ixmax >= NVSIZE ||
        (vend && v != vend)) {
        /* diag_listed_as: Hexadecimal float: internal error (%s) */
        Perl_croak(aTHX_ "Hexadecimal float: internal error (overflow)");
    }
    return v;
}


/* S_format_hexfp(): helper function for Perl_sv_vcatpvfn_flags().
 *
 * Processes the %a/%A hexadecimal floating-point format, since the
 * built-in snprintf()s which are used for most of the f/p formats, don't
 * universally handle %a/%A.
 * Populates buf of length bufsize, and returns the length of the created
 * string.
 * The rest of the args have the same meaning as the local vars of the
 * same name within Perl_sv_vcatpvfn_flags().
 *
 * The caller's determination of IN_LC(LC_NUMERIC), passed as in_lc_numeric,
 * is used to ensure we do the right thing when we need to access the locale's
 * numeric radix.
 *
 * It requires the caller to make buf large enough.
 */

static STRLEN
S_format_hexfp(pTHX_ char * const buf, const STRLEN bufsize, const char c,
                    const NV nv, const vcatpvfn_long_double_t fv,
                    bool has_precis, STRLEN precis, STRLEN width,
                    bool alt, char plus, bool left, bool fill, bool in_lc_numeric)
{
    /* Hexadecimal floating point. */
    char* p = buf;
    U8 vhex[VHEX_SIZE];
    U8* v = vhex; /* working pointer to vhex */
    U8* vend; /* pointer to one beyond last digit of vhex */
    U8* vfnz = NULL; /* first non-zero */
    U8* vlnz = NULL; /* last non-zero */
    U8* v0 = NULL; /* first output */
    const bool lower = (c == 'a');
    /* At output the values of vhex (up to vend) will
     * be mapped through the xdig to get the actual
     * human-readable xdigits. */
    const char* xdig = PL_hexdigit;
    STRLEN zerotail = 0; /* how many extra zeros to append */
    int exponent = 0; /* exponent of the floating point input */
    bool hexradix = FALSE; /* should we output the radix */
    bool subnormal = FALSE; /* IEEE 754 subnormal/denormal */
    bool negative = FALSE;
    STRLEN elen;

    /* XXX: NaN, Inf -- though they are printed as "NaN" and "Inf".
     *
     * For example with denormals, (assuming the vanilla
     * 64-bit double): the exponent is zero. 1xp-1074 is
     * the smallest denormal and the smallest double, it
     * could be output also as 0x0.0000000000001p-1022 to
     * match its internal structure. */

    vend = S_hextract(aTHX_ nv, &exponent, &subnormal, vhex, NULL);
    S_hextract(aTHX_ nv, &exponent, &subnormal, vhex, vend);

#if NVSIZE > DOUBLESIZE
#  ifdef HEXTRACT_HAS_IMPLICIT_BIT
    /* In this case there is an implicit bit,
     * and therefore the exponent is shifted by one. */
    exponent--;
#  elif defined(NV_X86_80_BIT)
    if (subnormal) {
        /* The subnormals of the x86-80 have a base exponent of -16382,
         * (while the physical exponent bits are zero) but the frexp()
         * returned the scientific-style floating exponent.  We want
         * to map the last one as:
         * -16831..-16384 -> -16382 (the last normal is 0x1p-16382)
         * -16835..-16388 -> -16384
         * since we want to keep the first hexdigit
         * as one of the [8421]. */
        exponent = -4 * ( (exponent + 1) / -4) - 2;
    } else {
        exponent -= 4;
    }
    /* TBD: other non-implicit-bit platforms than the x86-80. */
#  endif
#endif

    negative = fv < 0 || Perl_signbit(nv);
    if (negative)
        *p++ = '-';
    else if (plus)
        *p++ = plus;
    *p++ = '0';
    if (lower) {
        *p++ = 'x';
    }
    else {
        *p++ = 'X';
        xdig += 16; /* Use uppercase hex. */
    }

    /* Find the first non-zero xdigit. */
    for (v = vhex; v < vend; v++) {
        if (*v) {
            vfnz = v;
            break;
        }
    }

    if (vfnz) {
        /* Find the last non-zero xdigit. */
        for (v = vend - 1; v >= vhex; v--) {
            if (*v) {
                vlnz = v;
                break;
            }
        }

#if NVSIZE == DOUBLESIZE
        if (fv != 0.0)
            exponent--;
#endif

        if (subnormal) {
#ifndef NV_X86_80_BIT
          if (vfnz[0] > 1) {
            /* IEEE 754 subnormals (but not the x86 80-bit):
             * we want "normalize" the subnormal,
             * so we need to right shift the hex nybbles
             * so that the output of the subnormal starts
             * from the first true bit.  (Another, equally
             * valid, policy would be to dump the subnormal
             * nybbles as-is, to display the "physical" layout.) */
            int i, n;
            U8 *vshr;
            /* Find the ceil(log2(v[0])) of
             * the top non-zero nybble. */
            for (i = vfnz[0], n = 0; i > 1; i >>= 1, n++) { }
            assert(n < 4);
            assert(vlnz);
            vlnz[1] = 0;
            for (vshr = vlnz; vshr >= vfnz; vshr--) {
              vshr[1] |= (vshr[0] & (0xF >> (4 - n))) << (4 - n);
              vshr[0] >>= n;
            }
            if (vlnz[1]) {
              vlnz++;
            }
          }
#endif
          v0 = vfnz;
        } else {
          v0 = vhex;
        }

        if (has_precis) {
            U8* ve = (subnormal ? vlnz + 1 : vend);
            SSize_t vn = ve - v0;
            assert(vn >= 1);
            if (precis < (Size_t)(vn - 1)) {
                bool overflow = FALSE;
                if (v0[precis + 1] < 0x8) {
                    /* Round down, nothing to do. */
                } else if (v0[precis + 1] > 0x8) {
                    /* Round up. */
                    v0[precis]++;
                    overflow = v0[precis] > 0xF;
                    v0[precis] &= 0xF;
                } else { /* v0[precis] == 0x8 */
                    /* Half-point: round towards the one
                     * with the even least-significant digit:
                     * 08 -> 0  88 -> 8
                     * 18 -> 2  98 -> a
                     * 28 -> 2  a8 -> a
                     * 38 -> 4  b8 -> c
                     * 48 -> 4  c8 -> c
                     * 58 -> 6  d8 -> e
                     * 68 -> 6  e8 -> e
                     * 78 -> 8  f8 -> 10 */
                    if ((v0[precis] & 0x1)) {
                        v0[precis]++;
                    }
                    overflow = v0[precis] > 0xF;
                    v0[precis] &= 0xF;
                }

                if (overflow) {
                    for (v = v0 + precis - 1; v >= v0; v--) {
                        (*v)++;
                        overflow = *v > 0xF;
                        (*v) &= 0xF;
                        if (!overflow) {
                            break;
                        }
                    }
                    if (v == v0 - 1 && overflow) {
                        /* If the overflow goes all the
                         * way to the front, we need to
                         * insert 0x1 in front, and adjust
                         * the exponent. */
                        Move(v0, v0 + 1, vn - 1, char);
                        *v0 = 0x1;
                        exponent += 4;
                    }
                }

                /* The new effective "last non zero". */
                vlnz = v0 + precis;
            }
            else {
                zerotail =
                  subnormal ? precis - vn + 1 :
                  precis - (vlnz - vhex);
            }
        }

        v = v0;
        *p++ = xdig[*v++];

        /* If there are non-zero xdigits, the radix
         * is output after the first one. */
        if (vfnz < vlnz) {
          hexradix = TRUE;
        }
    }
    else {
        *p++ = '0';
        exponent = 0;
        zerotail = has_precis ? precis : 0;
    }

    /* The radix is always output if precis, or if alt. */
    if ((has_precis && precis > 0) || alt) {
      hexradix = TRUE;
    }

    if (hexradix) {
#ifndef USE_LOCALE_NUMERIC
        PERL_UNUSED_ARG(in_lc_numeric);

        *p++ = '.';
#else
        if (in_lc_numeric) {
            STRLEN n;
            WITH_LC_NUMERIC_SET_TO_NEEDED_IN(TRUE, {
                const char* r = SvPV(PL_numeric_radix_sv, n);
                Copy(r, p, n, char);
            });
            p += n;
        }
        else {
            *p++ = '.';
        }
#endif
    }

    if (vlnz) {
        while (v <= vlnz)
            *p++ = xdig[*v++];
    }

    if (zerotail > 0) {
      while (zerotail--) {
        *p++ = '0';
      }
    }

    elen = p - buf;

    /* sanity checks */
    if (elen >= bufsize || width >= bufsize)
        /* diag_listed_as: Hexadecimal float: internal error (%s) */
        Perl_croak(aTHX_ "Hexadecimal float: internal error (overflow)");

    elen += my_snprintf(p, bufsize - elen,
                        "%c%+d", lower ? 'p' : 'P',
                        exponent);

    if (elen < width) {
        STRLEN gap = (STRLEN)(width - elen);
        if (left) {
            /* Pad the back with spaces. */
            memset(buf + elen, ' ', gap);
        }
        else if (fill) {
            /* Insert the zeros after the "0x" and the
             * the potential sign, but before the digits,
             * otherwise we end up with "0000xH.HHH...",
             * when we want "0x000H.HHH..."  */
            STRLEN nzero = gap;
            char* zerox = buf + 2;
            STRLEN nmove = elen - 2;
            if (negative || plus) {
                zerox++;
                nmove--;
            }
            Move(zerox, zerox + nzero, nmove, char);
            memset(zerox, fill ? '0' : ' ', nzero);
        }
        else {
            /* Move it to the right. */
            Move(buf, buf + gap,
                 elen, char);
            /* Pad the front with spaces. */
            memset(buf, ' ', gap);
        }
        elen = width;
    }
    return elen;
}

/*
=for apidoc sv_vcatpvfn
=for apidoc_item sv_vcatpvfn_flags

These process their arguments like C<L<vsprintf(3)>> and append the formatted output
to an SV.  They use an array of SVs if the C-style variable argument list is
missing (C<NULL>). Argument reordering (using format specifiers like C<%2$d> or
C<%*2$d>) is supported only when using an array of SVs; using a C-style
C<va_list> argument list with a format string that uses argument reordering
will yield an exception.

When running with taint checks enabled, they indicate via C<maybe_tainted> if
results are untrustworthy (often due to the use of locales).

They assume that C<pat> has the same utf8-ness as C<sv>.  It's the caller's
responsibility to ensure that this is so.

They differ in that C<sv_vcatpvfn_flags> has a C<flags> parameter in which you
can set or clear the C<SV_GMAGIC> and/or S<SV_SMAGIC> flags, to specify which
magic to handle or not handle; whereas plain C<sv_vcatpvfn> always specifies
both 'get' and 'set' magic.

They are usually used via one of the frontends L</C<sv_vcatpvf>> and
L</C<sv_vcatpvf_mg>>.

=cut
*/


void
Perl_sv_vcatpvfn_flags(pTHX_ SV *const sv, const char *const pat, const STRLEN patlen,
                       va_list *const args, SV **const svargs, const Size_t sv_count, bool *const maybe_tainted,
                       const U32 flags)
{
    const char *fmtstart; /* character following the current '%' */
    const char *q;        /* current position within format */
    const char *patend;
    STRLEN origlen;
    Size_t svix = 0;
    static const char nullstr[] = "(null)";
    bool has_utf8 = DO_UTF8(sv);    /* has the result utf8? */
    const bool pat_utf8 = has_utf8; /* the pattern is in utf8? */
    /* Times 4: a decimal digit takes more than 3 binary digits.
     * NV_DIG: mantissa takes that many decimal digits.
     * Plus 32: Playing safe. */
    char ebuf[IV_DIG * 4 + NV_DIG + 32];
    bool no_redundant_warning = FALSE; /* did we use any explicit format parameter index? */
#ifdef USE_LOCALE_NUMERIC
    bool have_in_lc_numeric = FALSE;
#endif
    /* we never change this unless USE_LOCALE_NUMERIC */
    bool in_lc_numeric = FALSE;
    SV *tmp_sv = NULL;

    PERL_ARGS_ASSERT_SV_VCATPVFN_FLAGS;
    PERL_UNUSED_ARG(maybe_tainted);

    if (flags & SV_GMAGIC)
        SvGETMAGIC(sv);

    /* no matter what, this is a string now */
    (void)SvPV_force_nomg(sv, origlen);

    /* the code that scans for flags etc following a % relies on
     * a '\0' being present to avoid falling off the end. Ideally that
     * should be fixed */
    assert(pat[patlen] == '\0');


    /* Special-case "", "%s", "%-p" (SVf - see below) and "%.0f".
     * In each case, if there isn't the correct number of args, instead
     * fall through to the main code to handle the issuing of any
     * warnings etc.
     */

    if (patlen == 0 && (args || sv_count == 0))
        return;

    if (patlen <= 4 && pat[0] == '%' && (args || sv_count == 1)) {

        /* "%s" */
        if (patlen == 2 && pat[1] == 's') {
            if (args) {
                const char * const s = va_arg(*args, char*);
                sv_catpv_nomg(sv, s ? s : nullstr);
            }
            else {
                /* we want get magic on the source but not the target.
                 * sv_catsv can't do that, though */
                SvGETMAGIC(*svargs);
                sv_catsv_nomg(sv, *svargs);
            }
            return;
        }

        /* "%-p" */
        if (args) {
            if (patlen == 3  && pat[1] == '-' && pat[2] == 'p') {
                SV *asv = MUTABLE_SV(va_arg(*args, void*));
                sv_catsv_nomg(sv, asv);
                return;
            }
        }
#if !defined(USE_LONG_DOUBLE) && !defined(USE_QUADMATH)
        /* special-case "%.0f" */
        else if (   patlen == 4
                 && pat[1] == '.' && pat[2] == '0' && pat[3] == 'f')
        {
            const NV nv = SvNV(*svargs);
            if (LIKELY(!Perl_isinfnan(nv))) {
                STRLEN l;
                char *p;

                if ((p = F0convert(nv, ebuf + sizeof ebuf, &l))) {
                    sv_catpvn_nomg(sv, p, l);
                    return;
                }
            }
        }
#endif /* !USE_LONG_DOUBLE */
    }


    patend = (char*)pat + patlen;
    for (fmtstart = pat; fmtstart < patend; fmtstart = q) {
        char intsize     = 0;         /* size qualifier in "%hi..." etc */
        bool alt         = FALSE;     /* has      "%#..."    */
        bool left        = FALSE;     /* has      "%-..."    */
        bool fill        = FALSE;     /* has      "%0..."    */
        char plus        = 0;         /* has      "%+..."    */
        STRLEN width     = 0;         /* value of "%NNN..."  */
        bool has_precis  = FALSE;     /* has      "%.NNN..." */
        STRLEN precis    = 0;         /* value of "%.NNN..." */
        int base         = 0;         /* base to print in, e.g. 8 for %o */
        UV uv            = 0;         /* the value to print of int-ish args */

        bool vectorize   = FALSE;     /* has      "%v..."    */
        bool vec_utf8    = FALSE;     /* SvUTF8(vec arg)     */
        const U8 *vecstr = NULL;      /* SvPVX(vec arg)      */
        STRLEN veclen    = 0;         /* SvCUR(vec arg)      */
        const char *dotstr = NULL;    /* separator string for %v */
        STRLEN dotstrlen;             /* length of separator string for %v */

        Size_t efix      = 0;         /* explicit format parameter index */
        const Size_t osvix  = svix;   /* original index in case of bad fmt */

        SV *argsv        = NULL;
        bool is_utf8     = FALSE;     /* is this item utf8?   */
        bool arg_missing = FALSE;     /* give "Missing argument" warning */
        char esignbuf[4];             /* holds sign prefix, e.g. "-0x" */
        STRLEN esignlen  = 0;         /* length of e.g. "-0x" */
        STRLEN zeros     = 0;         /* how many '0' to prepend */

        const char *eptr = NULL;      /* the address of the element string */
        STRLEN elen      = 0;         /* the length  of the element string */

        char c;                       /* the actual format ('d', s' etc) */

        bool escape_it   = FALSE;     /* if this is a string should we quote and escape it? */


        /* echo everything up to the next format specification */
        for (q = fmtstart; q < patend && *q != '%'; ++q)
            {};

        if (q > fmtstart) {
            if (has_utf8 && !pat_utf8) {
                /* upgrade and copy the bytes of fmtstart..q-1 to utf8 on
                 * the fly */
                const char *p;
                char *dst;
                STRLEN need = SvCUR(sv) + (q - fmtstart) + 1;

                for (p = fmtstart; p < q; p++)
                    if (!NATIVE_BYTE_IS_INVARIANT(*p))
                        need++;
                SvGROW(sv, need);

                dst = SvEND(sv);
                for (p = fmtstart; p < q; p++)
                    append_utf8_from_native_byte((U8)*p, (U8**)&dst);
                *dst = '\0';
                SvCUR_set(sv, need - 1);
            }
            else
                S_sv_catpvn_simple(aTHX_ sv, fmtstart, q - fmtstart);
        }
        if (q++ >= patend)
            break;

        fmtstart = q; /* fmtstart is char following the '%' */

/*
    We allow format specification elements in this order:
        \d+\$              explicit format parameter index
        [-+ 0#]+           flags
        v|\*(\d+\$)?v      vector with optional (optionally specified) arg
        0		   flag (as above): repeated to allow "v02"
        \d+|\*(\d+\$)?     width using optional (optionally specified) arg
        \.(\d*|\*(\d+\$)?) precision using optional (optionally specified) arg
        [hlqLV]            size
    [%bcdefginopsuxDFOUX] format (mandatory)
*/

        if (inRANGE(*q, '1', '9')) {
            width = expect_number(&q);
            if (*q == '$') {
                if (args)
                    Perl_croak_nocontext(
                        "Cannot yet reorder sv_vcatpvfn() arguments from va_list");
                ++q;
                efix = (Size_t)width;
                width = 0;
                no_redundant_warning = TRUE;
            } else {
                goto gotwidth;
            }
        }

        /* FLAGS */

        while (*q) {
            switch (*q) {
            case ' ':
            case '+':
                if (plus == '+' && *q == ' ') /* '+' over ' ' */
                    q++;
                else
                    plus = *q++;
                continue;

            case '-':
                left = TRUE;
                q++;
                continue;

            case '0':
                fill = TRUE;
                q++;
                continue;

            case '#':
                alt = TRUE;
                q++;
                continue;

            default:
                break;
            }
            break;
        }

      /* at this point we can expect one of:
       *
       *  123  an explicit width
       *  *    width taken from next arg
       *  *12$ width taken from 12th arg
       *       or no width
       *
       * But any width specification may be preceded by a v, in one of its
       * forms:
       *        v
       *        *v
       *        *12$v
       * So an asterisk may be either a width specifier or a vector
       * separator arg specifier, and we don't know which initially
       */

      tryasterisk:
        if (*q == '*') {
            STRLEN ix; /* explicit width/vector separator index */
            q++;
            if (inRANGE(*q, '1', '9')) {
                ix = expect_number(&q);
                if (*q++ == '$') {
                    if (args)
                        Perl_croak_nocontext(
                            "Cannot yet reorder sv_vcatpvfn() arguments from va_list");
                    no_redundant_warning = TRUE;
                } else
                    goto unknown;
            }
            else
                ix = 0;

            if (*q == 'v') {
                SV *vecsv;
                /* The asterisk was for  *v, *NNN$v: vectorizing, but not
                 * with the default "." */
                q++;
                if (vectorize)
                    goto unknown;
                if (args)
                    vecsv = va_arg(*args, SV*);
                else {
                    ix = ix ? ix - 1 : svix++;
                    vecsv = ix < sv_count ? svargs[ix]
                                       : (arg_missing = TRUE, &PL_sv_no);
                }
                dotstr = SvPV_const(vecsv, dotstrlen);
                /* Keep the DO_UTF8 test *after* the SvPV call, else things go
                   bad with tied or overloaded values that return UTF8.  */
                if (DO_UTF8(vecsv))
                    is_utf8 = TRUE;
                else if (has_utf8) {
                    vecsv = sv_mortalcopy(vecsv);
                    sv_utf8_upgrade(vecsv);
                    dotstr = SvPV_const(vecsv, dotstrlen);
                    is_utf8 = TRUE;
                }
                vectorize = TRUE;
                goto tryasterisk;
            }

            /* the asterisk specified a width */
            {
                int i = 0;
                SV *width_sv = NULL;
                if (args)
                    i = va_arg(*args, int);
                else {
                    ix = ix ? ix - 1 : svix++;
                    width_sv = (ix < sv_count) ? svargs[ix]
                                      : (arg_missing = TRUE, (SV*)NULL);
                }
                width = S_sprintf_arg_num_val(aTHX_ args, i, width_sv, &left);
            }
        }
        else if (*q == 'v') {
            q++;
            if (vectorize)
                goto unknown;
            vectorize = TRUE;
            dotstr = ".";
            dotstrlen = 1;
            goto tryasterisk;

        }
        else {
        /* explicit width? */
            if(*q == '0') {
                fill = TRUE;
                q++;
            }
            if (inRANGE(*q, '1', '9'))
                width = expect_number(&q);
        }

      gotwidth:

        /* PRECISION */

        if (*q == '.') {
            q++;
            if (*q == '*') {
                STRLEN ix; /* explicit precision index */
                q++;
                if (inRANGE(*q, '1', '9')) {
                    ix = expect_number(&q);
                    if (*q++ == '$') {
                        if (args)
                            Perl_croak_nocontext(
                                "Cannot yet reorder sv_vcatpvfn() arguments from va_list");
                        no_redundant_warning = TRUE;
                    } else
                        goto unknown;
                }
                else
                    ix = 0;

                {
                    int i = 0;
                    SV *width_sv = NULL;
                    bool neg = FALSE;

                    if (args)
                        i = va_arg(*args, int);
                    else {
                        ix = ix ? ix - 1 : svix++;
                        width_sv = (ix < sv_count) ? svargs[ix]
                                          : (arg_missing = TRUE, (SV*)NULL);
                    }
                    precis = S_sprintf_arg_num_val(aTHX_ args, i, width_sv, &neg);
                    has_precis = !neg;
                    /* ignore negative precision */
                    if (!has_precis)
                        precis = 0;
                }
            }
            else {
                /* although it doesn't seem documented, this code has long
                 * behaved so that:
                 *   no digits following the '.' is treated like '.0'
                 *   the number may be preceded by any number of zeroes,
                 *      e.g. "%.0001f", which is the same as "%.1f"
                 * so I've kept that behaviour. DAPM May 2017
                 */
                while (*q == '0')
                    q++;
                precis = inRANGE(*q, '1', '9') ? expect_number(&q) : 0;
                has_precis = TRUE;
            }
        }

        /* SIZE */

        switch (*q) {
#ifdef WIN32
        case 'I':			/* Ix, I32x, and I64x */
#  ifdef USE_64_BIT_INT
            if (q[1] == '6' && q[2] == '4') {
                q += 3;
                intsize = 'q';
                break;
            }
#  endif
            if (q[1] == '3' && q[2] == '2') {
                q += 3;
                break;
            }
#  ifdef USE_64_BIT_INT
            intsize = 'q';
#  endif
            q++;
            break;
#endif
#if (IVSIZE >= 8 || defined(HAS_LONG_DOUBLE)) || \
    (IVSIZE == 4 && !defined(HAS_LONG_DOUBLE))
        case 'L':			/* Ld */
            /* FALLTHROUGH */
#  if IVSIZE >= 8
        case 'q':			/* qd */
#  endif
            intsize = 'q';
            q++;
            break;
#endif
        case 'l':
            ++q;
#if (IVSIZE >= 8 || defined(HAS_LONG_DOUBLE)) || \
    (IVSIZE == 4 && !defined(HAS_LONG_DOUBLE))
            if (*q == 'l') {	/* lld, llf */
                intsize = 'q';
                ++q;
            }
            else
#endif
                intsize = 'l';
            break;
        case 'h':
            if (*++q == 'h') {	/* hhd, hhu */
                intsize = 'c';
                ++q;
            }
            else
                intsize = 'h';
            break;
#ifdef USE_QUADMATH
        case 'Q':
#endif
        case 'V':
        case 'z':
        case 't':
        case 'j':
            intsize = *q++;
            break;
        }

        /* CONVERSION */

        c = *q++; /* c now holds the conversion type */

        /* '%' doesn't have an arg, so skip arg processing */
        if (c == '%') {
            eptr = q - 1;
            elen = 1;
            if (vectorize)
                goto unknown;
            goto string;
        }

        if (vectorize && !memCHRs("BbDdiOouUXx", c))
            goto unknown;

        /* get next arg (individual branches do their own va_arg()
         * handling for the args case) */

        if (!args) {
            efix = efix ? efix - 1 : svix++;
            argsv = efix < sv_count ? svargs[efix]
                                 : (arg_missing = TRUE, &PL_sv_no);
        }


        switch (c) {

            /* STRINGS */

        case 's':
            if (args) {
                eptr = va_arg(*args, char*);
                if (eptr)
                    if (has_precis)
                        elen = my_strnlen(eptr, precis);
                    else
                        elen = strlen(eptr);
                else {
                    eptr = (char *)nullstr;
                    elen = sizeof nullstr - 1;
                }
            }
            else {
                eptr = SvPV_const(argsv, elen);
                if (DO_UTF8(argsv)) {
                    STRLEN old_precis = precis;
                    if (has_precis && precis < elen) {
                        STRLEN ulen = sv_or_pv_len_utf8(argsv, eptr, elen);
                        STRLEN p = precis > ulen ? ulen : precis;
                        precis = sv_or_pv_pos_u2b(argsv, eptr, p, 0);
                                                        /* sticks at end */
                    }
                    if (width) { /* fudge width (can't fudge elen) */
                        if (has_precis && precis < elen)
                            width += precis - old_precis;
                        else
                            width +=
                                elen - sv_or_pv_len_utf8(argsv,eptr,elen);
                    }
                    is_utf8 = TRUE;
                }
            }

        string:
            if (escape_it) {
                U32 flags = PERL_PV_PRETTY_QUOTEDPREFIX;
                if (is_utf8)
                    flags |= PERL_PV_ESCAPE_UNI;

                if (!tmp_sv) {
                    /* "blah"... where blah might be made up
                     * of characters like \x{1234} */
                    tmp_sv = newSV(1 + (PERL_QUOTEDPREFIX_LEN * 8) + 1 + 3);
                    sv_2mortal(tmp_sv);
                }
                pv_pretty(tmp_sv, eptr, elen, PERL_QUOTEDPREFIX_LEN,
                            NULL, NULL, flags);
                eptr = SvPV_const(tmp_sv, elen);
            }
            if (has_precis && precis < elen)
                elen = precis;
            break;

            /* INTEGERS */

        case 'p':

            /* BEGIN NOTE
             *
             * We want to extend the C level sprintf format API with
             * custom formats for specific types (eg SV*) and behavior.
             * However some C compilers are "sprintf aware" and will
             * throw compile time exceptions when an illegal sprintf is
             * encountered, so we can't just add new format letters.
             *
             * However it turns out the length argument to the %p format
             * is more or less useless (the size of a pointer does not
             * change over time) and is not really used in the C level
             * code. Accordingly we can map our special behavior to
             * specific "length" options to the %p format. We hide these
             * mappings behind defines anyway, so nobody needs to know
             * that HEKf is actually %2p. This keeps the C compiler
             * happy while allowing us to add new formats.
             *
             * Note the existing logic for which number is used for what
             * is torturous. All negative values are used for SVf, and
             * non-negative values have arbitrary meanings with no
             * structure to them. This may change in the future.
             *
             * NEVER use the raw %p values directly. Always use the define
             * as the underlying mapping may change in the future.
             *
             * END NOTE
             *
             * %p extensions:
             *
             * "%...p" is normally treated like "%...x", except that the
             * number to print is the SV's address (or a pointer address
             * for C-ish sprintf).
             *
             * However, the C-ish sprintf variant allows a few special
             * extensions. These are currently:
             *
             * %-p       (SVf)  Like %s, but gets the string from an SV*
             *                  arg rather than a char* arg. Use C<SVfARG()>
             *                  to set up the argument properly.
             *                  (This was previously %_).
             *
             * %-<num>p         Ditto but like %.<num>s (i.e. num is max
             *                  width), there is no escaped and quoted version
             *                  of this.
             *
             * %1p       (PVf_QUOTEDPREFIX). Like raw %s, but it is escaped
             *                  and quoted.
             *
             * %5p       (SVf_QUOTEDPREFIX) Like SVf, but length restricted,
             *                  escaped and quoted with pv_pretty. Intended
             *                  for error messages.
             *
             * %2p       (HEKf) Like %s, but using the key string in a HEK
             * %7p       (HEKf_QUOTEDPREFIX) ... but escaped and quoted.
             *
             * %3p       (HEKf256) Ditto but like %.256s
             * %8p       (HEKf256_QUOTEDPREFIX) ... but escaped and quoted
             *
             * %d%lu%4p  (UTF8f) A utf8 string. Consumes 3 args:
             *                       (cBOOL(utf8), len, string_buf).
             *                   It's handled by the "case 'd'" branch
             *                   rather than here.
             * %d%lu%9p  (UTF8f_QUOTEDPREFIX) .. but escaped and quoted.
             *
             * %6p       (HvNAMEf) Like %s, but using the HvNAME() and HvNAMELEN()
             * %10p      (HvNAMEf_QUOTEDPREFIX) ... but escaped and quoted
             *
             * %<num>p   where num is > 9: reserved for future
             *           extensions. Warns, but then is treated as a
             *           general %p (print hex address) format.
             *
             * NOTE: If you add a new magic %p value you will
             * need to update F<t/porting/diag.t> to be aware of it
             * on top of adding the various defines and etc. Do not
             * forget to add it to F<pod/perlguts.pod> as well.
             */

            if (   args
                && !intsize
                && !fill
                && !plus
                && !has_precis
                    /* not %*p or %*1$p - any width was explicit */
                && q[-2] != '*'
                && q[-2] != '$'
            ) {
                if (left || width == 5) {                /* %-p (SVf), %-NNNp, %5p */
                    if (left && width) {
                        precis = width;
                        has_precis = TRUE;
                    } else if (width == 5) {
                        escape_it = TRUE;
                    }
                    argsv = MUTABLE_SV(va_arg(*args, void*));
                    eptr = SvPV_const(argsv, elen);
                    if (DO_UTF8(argsv))
                        is_utf8 = TRUE;
                    width = 0;
                    goto string;
                }
                else if (width == 2 || width == 3 ||
                         width == 7 || width == 8)
                {        /* HEKf, HEKf256, HEKf_QUOTEDPREFIX, HEKf256_QUOTEDPREFIX */
                    HEK * const hek = va_arg(*args, HEK *);
                    eptr = HEK_KEY(hek);
                    elen = HEK_LEN(hek);
                    if (HEK_UTF8(hek))
                        is_utf8 = TRUE;
                    if (width == 3) {
                        precis = 256;
                        has_precis = TRUE;
                    }
                    if (width > 5)
                        escape_it = TRUE;
                    width = 0;
                    goto string;
                }
                else if (width == 1) {
                    eptr = va_arg(*args,char *);
                    elen = strlen(eptr);
                    escape_it = TRUE;
                    width = 0;
                    goto string;
                }
                else if (width == 6 || width == 10) {
                    HV *hv = va_arg(*args, HV *);
                    eptr = HvNAME(hv);
                    elen = HvNAMELEN(hv);
                    if (HvNAMEUTF8(hv))
                        is_utf8 = TRUE;
                    if (width == 10)
                        escape_it = TRUE;
                    width = 0;
                    goto string;
                }
                else if (width) {
                    /* note width=4 or width=9 is handled under %d */
                    Perl_ck_warner_d(aTHX_ packWARN(WARN_INTERNAL),
                         "internal %%<num>p might conflict with future printf extensions");
                }
            }

            /* treat as normal %...p */

            uv = PTR2UV(args ? va_arg(*args, void*) : argsv);
            base = 16;
            c = 'x';    /* in case the format string contains '#' */
            goto do_integer;

        case 'c':
            /* Ignore any size specifiers, since they're not documented as
             * being allowed for %c (ideally we should warn on e.g. '%hc').
             * Setting a default intsize, along with a positive
             * (which signals unsigned) base, causes, for C-ish use, the
             * va_arg to be interpreted as an unsigned int, when it's
             * actually signed, which will convert -ve values to high +ve
             * values. Note that unlike the libc %c, values > 255 will
             * convert to high unicode points rather than being truncated
             * to 8 bits. For perlish use, it will do SvUV(argsv), which
             * will again convert -ve args to high -ve values.
             */
            intsize = 0;
            base = 1; /* special value that indicates we're doing a 'c' */
            goto get_int_arg_val;

        case 'D':
#ifdef IV_IS_QUAD
            intsize = 'q';
#else
            intsize = 'l';
#endif
            base = -10;
            goto get_int_arg_val;

        case 'd':
            /* probably just a plain %d, but it might be the start of the
             * special UTF8f format, which usually looks something like
             * "%d%lu%4p" (the lu may vary by platform) or
             * "%d%lu%9p" for an escaped version.
             */
            assert((UTF8f)[0] == 'd');
            assert((UTF8f)[1] == '%');

             if (   args              /* UTF8f only valid for C-ish sprintf */
                 && q == fmtstart + 1 /* plain %d, not %....d */
                 && patend >= fmtstart + sizeof(UTF8f) - 1 /* long enough */
                 && *q == '%'
                 && strnEQ(q + 1, (UTF8f) + 2, sizeof(UTF8f) - 5)
                 && q[sizeof(UTF8f)-3] == 'p'
                 && (q[sizeof(UTF8f)-4] == '4' ||
                     q[sizeof(UTF8f)-4] == '9'))
            {
                /* The argument has already gone through cBOOL, so the cast
                   is safe. */
                if (q[sizeof(UTF8f)-4] == '9')
                    escape_it = TRUE;
                is_utf8 = (bool)va_arg(*args, int);
                elen = va_arg(*args, UV);
                /* if utf8 length is larger than 0x7ffff..., then it might
                 * have been a signed value that wrapped */
                if (elen  > ((~(STRLEN)0) >> 1)) {
                    assert(0); /* in DEBUGGING build we want to crash */
                    elen = 0; /* otherwise we want to treat this as an empty string */
                }
                eptr = va_arg(*args, char *);
                q += sizeof(UTF8f) - 2;
                goto string;
            }

            /* FALLTHROUGH */
        case 'i':
            base = -10;
            goto get_int_arg_val;

        case 'U':
#ifdef IV_IS_QUAD
            intsize = 'q';
#else
            intsize = 'l';
#endif
            /* FALLTHROUGH */
        case 'u':
            base = 10;
            goto get_int_arg_val;

        case 'B':
        case 'b':
            base = 2;
            goto get_int_arg_val;

        case 'O':
#ifdef IV_IS_QUAD
            intsize = 'q';
#else
            intsize = 'l';
#endif
            /* FALLTHROUGH */
        case 'o':
            base = 8;
            goto get_int_arg_val;

        case 'X':
        case 'x':
            base = 16;

          get_int_arg_val:

            if (vectorize) {
                STRLEN ulen;
                SV *vecsv;

                if (base < 0) {
                    base = -base;
                    if (plus)
                         esignbuf[esignlen++] = plus;
                }

                /* initialise the vector string to iterate over */

                vecsv = args ? va_arg(*args, SV*) : argsv;

                /* if this is a version object, we need to convert
                 * back into v-string notation and then let the
                 * vectorize happen normally
                 */
                if (sv_isobject(vecsv) && sv_derived_from(vecsv, "version")) {
                    if ( hv_existss(MUTABLE_HV(SvRV(vecsv)), "alpha") ) {
                        Perl_ck_warner_d(aTHX_ packWARN(WARN_PRINTF),
                        "vector argument not supported with alpha versions");
                        vecsv = &PL_sv_no;
                    }
                    else {
                        vecstr = (U8*)SvPV_const(vecsv,veclen);
                        vecsv = sv_newmortal();
                        scan_vstring((char *)vecstr, (char *)vecstr + veclen,
                                     vecsv);
                    }
                }
                vecstr = (U8*)SvPV_const(vecsv, veclen);
                vec_utf8 = DO_UTF8(vecsv);

              /* This is the re-entry point for when we're iterating
               * over the individual characters of a vector arg */
              vector:
                if (!veclen)
                    goto done_valid_conversion;
                if (vec_utf8)
                    uv = utf8n_to_uvchr(vecstr, veclen, &ulen,
                                        UTF8_ALLOW_ANYUV);
                else {
                    uv = *vecstr;
                    ulen = 1;
                }
                vecstr += ulen;
                veclen -= ulen;
            }
            else {
                /* test arg for inf/nan. This can trigger an unwanted
                 * 'str' overload, so manually force 'num' overload first
                 * if necessary */
                if (argsv) {
                    SvGETMAGIC(argsv);
                    if (UNLIKELY(SvAMAGIC(argsv)))
                        argsv = sv_2num(argsv);
                    if (UNLIKELY(isinfnansv(argsv)))
                        goto handle_infnan_argsv;
                }

                if (base < 0) {
                    /* signed int type */
                    IV iv;
                    base = -base;
                    if (args) {
                        switch (intsize) {
                        case 'c':  iv = (char)va_arg(*args, int);  break;
                        case 'h':  iv = (short)va_arg(*args, int); break;
                        case 'l':  iv = va_arg(*args, long);       break;
                        case 'V':  iv = va_arg(*args, IV);         break;
                        case 'z':  iv = va_arg(*args, SSize_t);    break;
#ifdef HAS_PTRDIFF_T
                        case 't':  iv = va_arg(*args, ptrdiff_t);  break;
#endif
                        default:   iv = va_arg(*args, int);        break;
                        case 'j':  iv = (IV) va_arg(*args, PERL_INTMAX_T); break;
                        case 'q':
#if IVSIZE >= 8
                                   iv = va_arg(*args, Quad_t);     break;
#else
                                   goto unknown;
#endif
                        }
                    }
                    else {
                        /* assign to tiv then cast to iv to work around
                         * 2003 GCC cast bug (gnu.org bugzilla #13488) */
                        IV tiv = SvIV_nomg(argsv);
                        switch (intsize) {
                        case 'c':  iv = (char)tiv;   break;
                        case 'h':  iv = (short)tiv;  break;
                        case 'l':  iv = (long)tiv;   break;
                        case 'V':
                        default:   iv = tiv;         break;
                        case 'q':
#if IVSIZE >= 8
                                   iv = (Quad_t)tiv; break;
#else
                                   goto unknown;
#endif
                        }
                    }

                    /* now convert iv to uv */
                    if (iv >= 0) {
                        uv = iv;
                        if (plus)
                            esignbuf[esignlen++] = plus;
                    }
                    else {
                        /* Using 0- here to silence bogus warning from MS VC */
                        uv = (UV) (0 - (UV) iv);
                        esignbuf[esignlen++] = '-';
                    }
                }
                else {
                    /* unsigned int type */
                    if (args) {
                        switch (intsize) {
                        case 'c': uv = (unsigned char)va_arg(*args, unsigned);
                                  break;
                        case 'h': uv = (unsigned short)va_arg(*args, unsigned);
                                  break;
                        case 'l': uv = va_arg(*args, unsigned long); break;
                        case 'V': uv = va_arg(*args, UV);            break;
                        case 'z': uv = va_arg(*args, Size_t);        break;
#ifdef HAS_PTRDIFF_T
                                  /* will sign extend, but there is no
                                   * uptrdiff_t, so oh well */
                        case 't': uv = va_arg(*args, ptrdiff_t);     break;
#endif
                        case 'j': uv = (UV) va_arg(*args, PERL_UINTMAX_T); break;
                        default:  uv = va_arg(*args, unsigned);      break;
                        case 'q':
#if IVSIZE >= 8
                                  uv = va_arg(*args, Uquad_t);       break;
#else
                                  goto unknown;
#endif
                        }
                    }
                    else {
                        /* assign to tiv then cast to iv to work around
                         * 2003 GCC cast bug (gnu.org bugzilla #13488) */
                        UV tuv = SvUV_nomg(argsv);
                        switch (intsize) {
                        case 'c': uv = (unsigned char)tuv;  break;
                        case 'h': uv = (unsigned short)tuv; break;
                        case 'l': uv = (unsigned long)tuv;  break;
                        case 'V':
                        default:  uv = tuv;                 break;
                        case 'q':
#if IVSIZE >= 8
                                  uv = (Uquad_t)tuv;        break;
#else
                                  goto unknown;
#endif
                        }
                    }
                }
            }

        do_integer:
            {
                char *ptr = ebuf + sizeof ebuf;
                unsigned dig;
                zeros = 0;

                switch (base) {
                case 16:
                    {
                    const char * const p =
                            (c == 'X') ? PL_hexdigit + 16 : PL_hexdigit;

                        do {
                            dig = uv & 15;
                            *--ptr = p[dig];
                        } while (uv >>= 4);
                        if (alt && *ptr != '0') {
                            esignbuf[esignlen++] = '0';
                            esignbuf[esignlen++] = c;  /* 'x' or 'X' */
                        }
                        break;
                    }
                case 8:
                    do {
                        dig = uv & 7;
                        *--ptr = '0' + dig;
                    } while (uv >>= 3);
                    if (alt && *ptr != '0')
                        *--ptr = '0';
                    break;
                case 2:
                    do {
                        dig = uv & 1;
                        *--ptr = '0' + dig;
                    } while (uv >>= 1);
                    if (alt && *ptr != '0') {
                        esignbuf[esignlen++] = '0';
                        esignbuf[esignlen++] = c; /* 'b' or 'B' */
                    }
                    break;

                case 1:
                    /* special-case: base 1 indicates a 'c' format:
                     * we use the common code for extracting a uv,
                     * but handle that value differently here than
                     * all the other int types */
                    if ((uv > 255 ||
                         (!UVCHR_IS_INVARIANT(uv) && SvUTF8(sv)))
                        && !IN_BYTES)
                    {
                        STATIC_ASSERT_STMT(sizeof(ebuf) >= UTF8_MAXBYTES + 1);
                        eptr = ebuf;
                        elen = uvchr_to_utf8((U8*)eptr, uv) - (U8*)ebuf;
                        is_utf8 = TRUE;
                    }
                    else {
                        eptr = ebuf;
                        ebuf[0] = (char)uv;
                        elen = 1;
                    }
                    goto string;

                default:		/* it had better be ten or less */
                    do {
                        dig = uv % base;
                        *--ptr = '0' + dig;
                    } while (uv /= base);
                    break;
                }
                elen = (ebuf + sizeof ebuf) - ptr;
                eptr = ptr;
                if (has_precis) {
                    if (precis > elen)
                        zeros = precis - elen;
                    else if (precis == 0 && elen == 1 && *eptr == '0'
                             && !(base == 8 && alt)) /* "%#.0o" prints "0" */
                        elen = 0;

                    /* a precision nullifies the 0 flag. */
                    fill = FALSE;
                }
            }
            break;

            /* FLOATING POINT */

        case 'F':
            c = 'f';		/* maybe %F isn't supported here */
            /* FALLTHROUGH */
        case 'e': case 'E':
        case 'f':
        case 'g': case 'G':
        case 'a': case 'A':

        {
            STRLEN float_need; /* what PL_efloatsize needs to become */
            bool hexfp;        /* hexadecimal floating point? */

            vcatpvfn_long_double_t fv;
            NV                     nv;

            /* This is evil, but floating point is even more evil */

            /* for SV-style calling, we can only get NV
               for C-style calling, we assume %f is double;
               for simplicity we allow any of %Lf, %llf, %qf for long double
            */
            switch (intsize) {
#if defined(USE_QUADMATH)
            case 'Q':
                break;
#endif
            case 'V':
#if defined(USE_LONG_DOUBLE) || defined(USE_QUADMATH)
                intsize = 'q';
#endif
                break;
/* [perl #20339] - we should accept and ignore %lf rather than die */
            case 'l':
                /* FALLTHROUGH */
            default:
#if defined(USE_LONG_DOUBLE) || defined(USE_QUADMATH)
                intsize = args ? 0 : 'q';
#endif
                break;
            case 'q':
#if defined(HAS_LONG_DOUBLE)
                break;
#else
                /* FALLTHROUGH */
#endif
            case 'c':
            case 'h':
            case 'z':
            case 't':
            case 'j':
                goto unknown;
            }

            /* Now we need (long double) if intsize == 'q', else (double). */
            if (args) {
                /* Note: do not pull NVs off the va_list with va_arg()
                 * (pull doubles instead) because if you have a build
                 * with long doubles, you would always be pulling long
                 * doubles, which would badly break anyone using only
                 * doubles (i.e. the majority of builds). In other
                 * words, you cannot mix doubles and long doubles.
                 * The only case where you can pull off long doubles
                 * is when the format specifier explicitly asks so with
                 * e.g. "%Lg". */
#ifdef USE_QUADMATH
                nv = intsize == 'Q' ? va_arg(*args, NV) :
                    intsize == 'q' ? va_arg(*args, long double) :
                    va_arg(*args, double);
                fv = nv;
#elif LONG_DOUBLESIZE > DOUBLESIZE
                if (intsize == 'q') {
                    fv = va_arg(*args, long double);
                    nv = fv;
                } else {
                    nv = va_arg(*args, double);
                    VCATPVFN_NV_TO_FV(nv, fv);
                }
#else
                nv = va_arg(*args, double);
                fv = nv;
#endif
            }
            else
            {
                SvGETMAGIC(argsv);
                /* we jump here if an int-ish format encountered an
                 * infinite/Nan argsv. After setting nv/fv, it falls
                 * into the isinfnan block which follows */
              handle_infnan_argsv:
                nv = SvNV_nomg(argsv);
                VCATPVFN_NV_TO_FV(nv, fv);
            }

            if (Perl_isinfnan(nv)) {
                if (c == 'c')
                    Perl_croak(aTHX_ "Cannot printf %" NVgf " with '%c'",
                               nv, (int)c);

                elen = S_infnan_2pv(nv, ebuf, sizeof(ebuf), plus);
                assert(elen);
                eptr = ebuf;
                zeros     = 0;
                esignlen  = 0;
                dotstrlen = 0;
                break;
            }

            /* special-case "%.0f" */
            if (   c == 'f'
                && !precis
                && has_precis
                && !(width || left || plus || alt)
                && !fill
                && intsize != 'q'
                && ((eptr = F0convert(nv, ebuf + sizeof ebuf, &elen)))
            )
                goto float_concat;

            /* Determine the buffer size needed for the various
             * floating-point formats.
             *
             * The basic possibilities are:
             *
             *               <---P--->
             *    %f 1111111.123456789
             *    %e       1.111111123e+06
             *    %a     0x1.0f4471f9bp+20
             *    %g        1111111.12
             *    %g        1.11111112e+15
             *
             * where P is the value of the precision in the format, or 6
             * if not specified. Note the two possible output formats of
             * %g; in both cases the number of significant digits is <=
             * precision.
             *
             * For most of the format types the maximum buffer size needed
             * is precision, plus: any leading 1 or 0x1, the radix
             * point, and an exponent.  The difficult one is %f: for a
             * large positive exponent it can have many leading digits,
             * which needs to be calculated specially. Also %a is slightly
             * different in that in the absence of a specified precision,
             * it uses as many digits as necessary to distinguish
             * different values.
             *
             * First, here are the constant bits. For ease of calculation
             * we over-estimate the needed buffer size, for example by
             * assuming all formats have an exponent and a leading 0x1.
             *
             * Also for production use, add a little extra overhead for
             * safety's sake. Under debugging don't, as it means we're
             * more likely to quickly spot issues during development.
             */

            float_need =     1  /* possible unary minus */
                          +  4  /* "0x1" plus very unlikely carry */
                          +  1  /* default radix point '.' */
                          +  2  /* "e-", "p+" etc */
                          +  6  /* exponent: up to 16383 (quad fp) */
#ifndef DEBUGGING
                          + 20  /* safety net */
#endif
                          +  1; /* \0 */


            /* determine the radix point len, e.g. length(".") in "1.2" */
#ifdef USE_LOCALE_NUMERIC
            /* note that we may either explicitly use PL_numeric_radix_sv
             * below, or implicitly, via an snprintf() variant.
             * Note also things like ps_AF.utf8 which has
             * "\N{ARABIC DECIMAL SEPARATOR} as a radix point */
            if (! have_in_lc_numeric) {
                in_lc_numeric = IN_LC(LC_NUMERIC);
                have_in_lc_numeric = TRUE;
            }

            if (in_lc_numeric) {
                WITH_LC_NUMERIC_SET_TO_NEEDED_IN(TRUE, {
                    /* this can't wrap unless PL_numeric_radix_sv is a string
                     * consuming virtually all the 32-bit or 64-bit address
                     * space
                     */
                    float_need += (SvCUR(PL_numeric_radix_sv) - 1);

                    /* floating-point formats only get utf8 if the radix point
                     * is utf8. All other characters in the string are < 128
                     * and so can be safely appended to both a non-utf8 and utf8
                     * string as-is.
                     * Note that this will convert the output to utf8 even if
                     * the radix point didn't get output.
                     */
                    if (SvUTF8(PL_numeric_radix_sv) && !has_utf8) {
                        sv_utf8_upgrade(sv);
                        has_utf8 = TRUE;
                    }
                });
            }
#endif

            hexfp = FALSE;

            if (isALPHA_FOLD_EQ(c, 'f')) {
                /* Determine how many digits before the radix point
                 * might be emitted.  frexp() (or frexpl) has some
                 * unspecified behaviour for nan/inf/-inf, so lucky we've
                 * already handled them above */
                STRLEN digits;
                int i = PERL_INT_MIN;
                (void)Perl_frexp((NV)fv, &i);
                if (i == PERL_INT_MIN)
                    Perl_die(aTHX_ "panic: frexp: %" VCATPVFN_FV_GF, fv);

                if (i > 0) {
                    digits = BIT_DIGITS(i);
                    /* this can't overflow. 'digits' will only be a few
                     * thousand even for the largest floating-point types.
                     * And up until now float_need is just some small
                     * constants plus radix len, which can't be in
                     * overflow territory unless the radix SV is consuming
                     * over 1/2 the address space */
                    assert(float_need < ((STRLEN)~0) - digits);
                    float_need += digits;
                }
            }
            else if (UNLIKELY(isALPHA_FOLD_EQ(c, 'a'))) {
                hexfp = TRUE;
                if (!has_precis) {
                    /* %a in the absence of precision may print as many
                     * digits as needed to represent the entire mantissa
                     * bit pattern.
                     * This estimate seriously overshoots in most cases,
                     * but better the undershooting.  Firstly, all bytes
                     * of the NV are not mantissa, some of them are
                     * exponent.  Secondly, for the reasonably common
                     * long doubles case, the "80-bit extended", two
                     * or six bytes of the NV are unused. Also, we'll
                     * still pick up an extra +6 from the default
                     * precision calculation below. */
                    STRLEN digits =
#ifdef LONGDOUBLE_DOUBLEDOUBLE
                        /* For the "double double", we need more.
                         * Since each double has their own exponent, the
                         * doubles may float (haha) rather far from each
                         * other, and the number of required bits is much
                         * larger, up to total of DOUBLEDOUBLE_MAXBITS bits.
                         * See the definition of DOUBLEDOUBLE_MAXBITS.
                         *
                         * Need 2 hexdigits for each byte. */
                        (DOUBLEDOUBLE_MAXBITS/8 + 1) * 2;
#else
                        NVSIZE * 2; /* 2 hexdigits for each byte */
#endif
                    /* see "this can't overflow" comment above */
                    assert(float_need < ((STRLEN)~0) - digits);
                    float_need += digits;
                }
            }
            /* special-case "%.<number>g" if it will fit in ebuf */
            else if (c == 'g'
                && precis   /* See earlier comment about buggy Gconvert
                               when digits, aka precis, is 0  */
                && has_precis
                /* check that "%.<number>g" formatting will fit in ebuf  */
                && sizeof(ebuf) - float_need > precis
                /* sizeof(ebuf) - float_need will have wrapped if float_need > sizeof(ebuf).     *
                 * Therefore we should check that float_need < sizeof(ebuf). Normally, we would  *
                 * have run this check first, but that triggers incorrect -Wformat-overflow      *
                 * compilation warnings with some versions of gcc if Gconvert invokes sprintf(). *
                 * ( See: https://gcc.gnu.org/bugzilla/show_bug.cgi?id=89161 )                   *
                 * So, instead, we check it next:                                                */
                && float_need < sizeof(ebuf)
                && !(width || left || plus || alt)
                && !fill
                && intsize != 'q'
            ) {
                WITH_LC_NUMERIC_SET_TO_NEEDED_IN(in_lc_numeric,
                    SNPRINTF_G(fv, ebuf, sizeof(ebuf), precis)
                );
                elen = strlen(ebuf);
                eptr = ebuf;
                goto float_concat;
            }


            {
                STRLEN pr = has_precis ? precis : 6; /* known default */
                /* this probably can't wrap, since precis is limited
                 * to 1/4 address space size, but better safe than sorry
                 */
                if (float_need >= ((STRLEN)~0) - pr)
                    croak_memory_wrap();
                float_need += pr;
            }

            if (float_need < width)
                float_need = width;

            if (float_need > INT_MAX) {
                /* snprintf() returns an int, and we use that return value,
                   so die horribly if the expected size is too large for int
                */
                Perl_croak(aTHX_ "Numeric format result too large");
            }

            if (PL_efloatsize <= float_need) {
                /* PL_efloatbuf should be at least 1 greater than
                 * float_need to allow a trailing \0 to be returned by
                 * snprintf().  If we need to grow, overgrow for the
                 * benefit of future generations */
                const STRLEN extra = 0x20;
                if (float_need >= ((STRLEN)~0) - extra)
                    croak_memory_wrap();
                float_need += extra;
                Safefree(PL_efloatbuf);
                PL_efloatsize = float_need;
                Newx(PL_efloatbuf, PL_efloatsize, char);
                PL_efloatbuf[0] = '\0';
            }

            if (UNLIKELY(hexfp)) {
                elen = S_format_hexfp(aTHX_ PL_efloatbuf, PL_efloatsize, c,
                                nv, fv, has_precis, precis, width,
                                alt, plus, left, fill, in_lc_numeric);
            }
            else {
                char *ptr = ebuf + sizeof ebuf;
                *--ptr = '\0';
                *--ptr = c;
#if defined(USE_QUADMATH)
                /* always use Q here.  my_snprint() throws an exception if we
                   fallthrough to the double/long double code, even when the
                   format is correct, presumably to avoid any accidentally
                   missing Q.
                */
                *--ptr = 'Q';
                /* FIXME: what to do if HAS_LONG_DOUBLE but not PERL_PRIfldbl? */
#elif defined(HAS_LONG_DOUBLE) && defined(PERL_PRIfldbl)
                /* Note that this is HAS_LONG_DOUBLE and PERL_PRIfldbl,
                 * not USE_LONG_DOUBLE and NVff.  In other words,
                 * this needs to work without USE_LONG_DOUBLE. */
                if (intsize == 'q') {
                    /* Copy the one or more characters in a long double
                     * format before the 'base' ([efgEFG]) character to
                     * the format string. */
                    static char const ldblf[] = PERL_PRIfldbl;
                    char const *p = ldblf + sizeof(ldblf) - 3;
                    while (p >= ldblf) { *--ptr = *p--; }
                }
#endif
                if (has_precis) {
                    base = precis;
                    do { *--ptr = '0' + (base % 10); } while (base /= 10);
                    *--ptr = '.';
                }
                if (width) {
                    base = width;
                    do { *--ptr = '0' + (base % 10); } while (base /= 10);
                }
                if (fill)
                    *--ptr = '0';
                if (left)
                    *--ptr = '-';
                if (plus)
                    *--ptr = plus;
                if (alt)
                    *--ptr = '#';
                *--ptr = '%';

                /* No taint.  Otherwise we are in the strange situation
                 * where printf() taints but print($float) doesn't.
                 * --jhi */

                /* hopefully the above makes ptr a very constrained format
                 * that is safe to use, even though it's not literal */
                GCC_DIAG_IGNORE_STMT(-Wformat-nonliteral);
#ifdef USE_QUADMATH
                {
                    if (!quadmath_format_valid(ptr))
                        Perl_croak_nocontext("panic: quadmath invalid format \"%s\"", ptr);
                    WITH_LC_NUMERIC_SET_TO_NEEDED_IN(in_lc_numeric,
                        elen = quadmath_snprintf(PL_efloatbuf, PL_efloatsize,
                                                 ptr, nv);
                    );
                    if ((IV)elen == -1) {
                        Perl_croak_nocontext("panic: quadmath_snprintf failed, format \"%s\"", ptr);
                    }
                }
#elif defined(HAS_LONG_DOUBLE)
                WITH_LC_NUMERIC_SET_TO_NEEDED_IN(in_lc_numeric,
                    elen = ((intsize == 'q')
                            ? my_snprintf(PL_efloatbuf, PL_efloatsize, ptr, fv)
                            : my_snprintf(PL_efloatbuf, PL_efloatsize, ptr, (double)fv))
                );
#else
                WITH_LC_NUMERIC_SET_TO_NEEDED_IN(in_lc_numeric,
                    elen = my_snprintf(PL_efloatbuf, PL_efloatsize, ptr, fv)
                );
#endif
                GCC_DIAG_RESTORE_STMT;
            }

            eptr = PL_efloatbuf;

          float_concat:

            /* Since floating-point formats do their own formatting and
             * padding, we skip the main block of code at the end of this
             * loop which handles appending eptr to sv, and do our own
             * stripped-down version */

            assert(!zeros);
            assert(!esignlen);
            assert(elen);
            assert(elen >= width);

            S_sv_catpvn_simple(aTHX_ sv, eptr, elen);

            goto done_valid_conversion;
        }

            /* SPECIAL */

        case 'n':
            {
                STRLEN len;
                /* XXX ideally we should warn if any flags etc have been
                 * set, e.g. "%-4.5n" */
                /* XXX if sv was originally non-utf8 with a char in the
                 * range 0x80-0xff, then if it got upgraded, we should
                 * calculate char len rather than byte len here */
                len = SvCUR(sv) - origlen;
                if (args) {
                    int i = (len > PERL_INT_MAX) ? PERL_INT_MAX : (int)len;

                    switch (intsize) {
                    case 'c':  *(va_arg(*args, char*))      = i; break;
                    case 'h':  *(va_arg(*args, short*))     = i; break;
                    default:   *(va_arg(*args, int*))       = i; break;
                    case 'l':  *(va_arg(*args, long*))      = i; break;
                    case 'V':  *(va_arg(*args, IV*))        = i; break;
                    case 'z':  *(va_arg(*args, SSize_t*))   = i; break;
#ifdef HAS_PTRDIFF_T
                    case 't':  *(va_arg(*args, ptrdiff_t*)) = i; break;
#endif
                    case 'j':  *(va_arg(*args, PERL_INTMAX_T*)) = i; break;
                    case 'q':
#if IVSIZE >= 8
                               *(va_arg(*args, Quad_t*))    = i; break;
#else
                               goto unknown;
#endif
                    }
                }
                else {
                    if (arg_missing)
                        Perl_croak_nocontext(
                            "Missing argument for %%n in %s",
                                PL_op ? OP_DESC(PL_op) : "sv_vcatpvfn()");
                    sv_setuv_mg(argsv, has_utf8
                        ? (UV)utf8_length((U8*)SvPVX(sv), (U8*)SvEND(sv))
                        : (UV)len);
                }
                goto done_valid_conversion;
            }

            /* UNKNOWN */

        default:
      unknown:
            if (!args
                && (PL_op->op_type == OP_PRTF || PL_op->op_type == OP_SPRINTF)
                && ckWARN(WARN_PRINTF))
            {
                SV * const msg = sv_newmortal();
                Perl_sv_setpvf(aTHX_ msg, "Invalid conversion in %sprintf: ",
                          (PL_op->op_type == OP_PRTF) ? "" : "s");
                if (fmtstart < patend) {
                    const char * const fmtend = q < patend ? q : patend;
                    const char * f;
                    sv_catpvs(msg, "\"%");
                    for (f = fmtstart; f < fmtend; f++) {
                        if (isPRINT(*f)) {
                            sv_catpvn_nomg(msg, f, 1);
                        } else {
                            Perl_sv_catpvf(aTHX_ msg, "\\%03o", (U8) *f);
                        }
                    }
                    sv_catpvs(msg, "\"");
                } else {
                    sv_catpvs(msg, "end of string");
                }
                Perl_warner(aTHX_ packWARN(WARN_PRINTF), "%" SVf, SVfARG(msg)); /* yes, this is reentrant */
            }

            /* mangled format: output the '%', then continue from the
             * character following that */
            sv_catpvn_nomg(sv, fmtstart-1, 1);
            q = fmtstart;
            svix = osvix;
            /* Any "redundant arg" warning from now onwards will probably
             * just be misleading, so don't bother. */
            no_redundant_warning = TRUE;
            continue;	/* not "break" */
        }

        if (is_utf8 != has_utf8) {
            if (is_utf8) {
                if (SvCUR(sv))
                    sv_utf8_upgrade(sv);
            }
            else {
                const STRLEN old_elen = elen;
                SV * const nsv = newSVpvn_flags(eptr, elen, SVs_TEMP);
                sv_utf8_upgrade(nsv);
                eptr = SvPVX_const(nsv);
                elen = SvCUR(nsv);

                if (width) { /* fudge width (can't fudge elen) */
                    width += elen - old_elen;
                }
                is_utf8 = TRUE;
            }
        }


        /* append esignbuf, filler, zeros, eptr and dotstr to sv */

        {
            STRLEN need, have, gap;
            STRLEN i;
            char *s;

            /* signed value that's wrapped? */
            assert(elen  <= ((~(STRLEN)0) >> 1));

            /* if zeros is non-zero, then it represents filler between
             * elen and precis. So adding elen and zeros together will
             * always be <= precis, and the addition can never wrap */
            assert(!zeros || (precis > elen && precis - elen == zeros));
            have = elen + zeros;

            if (have >= (((STRLEN)~0) - esignlen))
                croak_memory_wrap();
            have += esignlen;

            need = (have > width ? have : width);
            gap = need - have;

            if (need >= (((STRLEN)~0) - (SvCUR(sv) + 1)))
                croak_memory_wrap();
            need += (SvCUR(sv) + 1);

            SvGROW(sv, need);

            s = SvEND(sv);

            if (left) {
                for (i = 0; i < esignlen; i++)
                    *s++ = esignbuf[i];
                for (i = zeros; i; i--)
                    *s++ = '0';
                Copy(eptr, s, elen, char);
                s += elen;
                for (i = gap; i; i--)
                    *s++ = ' ';
            }
            else {
                if (fill) {
                    for (i = 0; i < esignlen; i++)
                        *s++ = esignbuf[i];
                    assert(!zeros);
                    zeros = gap;
                }
                else {
                    for (i = gap; i; i--)
                        *s++ = ' ';
                    for (i = 0; i < esignlen; i++)
                        *s++ = esignbuf[i];
                }

                for (i = zeros; i; i--)
                    *s++ = '0';
                Copy(eptr, s, elen, char);
                s += elen;
            }

            *s = '\0';
            SvCUR_set(sv, s - SvPVX_const(sv));

            if (is_utf8)
                has_utf8 = TRUE;
            if (has_utf8)
                SvUTF8_on(sv);
        }

        if (vectorize && veclen) {
            /* we append the vector separator separately since %v isn't
             * very common: don't slow down the general case by adding
             * dotstrlen to need etc */
            sv_catpvn_nomg(sv, dotstr, dotstrlen);
            esignlen = 0;
            goto vector; /* do next iteration */
        }

      done_valid_conversion:

        if (arg_missing)
            S_warn_vcatpvfn_missing_argument(aTHX);
    }

    /* Now that we've consumed all our printf format arguments (svix)
     * do we have things left on the stack that we didn't use?
     */
    if (!no_redundant_warning && sv_count >= svix + 1 && ckWARN(WARN_REDUNDANT)) {
        Perl_warner(aTHX_ packWARN(WARN_REDUNDANT), "Redundant argument in %s",
                PL_op ? OP_DESC(PL_op) : "sv_vcatpvfn()");
    }

    if (SvTYPE(sv) >= SVt_PVMG && SvMAGIC(sv)) {
        /* while we shouldn't set the cache, it may have been previously
           set in the caller, so clear it */
        MAGIC *mg = mg_find(sv, PERL_MAGIC_utf8);
        if (mg)
            magic_setutf8(sv,mg); /* clear UTF8 cache */
    }
    SvTAINT(sv);
}

/* =========================================================================

=for apidoc_section $embedding

=cut

All the macros and functions in this section are for the private use of
the main function, perl_clone().

The foo_dup() functions make an exact copy of an existing foo thingy.
During the course of a cloning, a hash table is used to map old addresses
to new addresses.  The table is created and manipulated with the
ptr_table_* functions.

 * =========================================================================*/


#if defined(USE_ITHREADS)

/* XXX Remove this so it doesn't have to go thru the macro and return for nothing */
#ifndef GpREFCNT_inc
#  define GpREFCNT_inc(gp)	((gp) ? (++(gp)->gp_refcnt, (gp)) : (GP*)NULL)
#endif


#define SAVEPV(p)	((p) ? savepv(p) : NULL)
#define SAVEPVN(p,n)	((p) ? savepvn(p,n) : NULL)

/* clone a parser */

yy_parser *
Perl_parser_dup(pTHX_ const yy_parser *const proto, CLONE_PARAMS *const param)
{
    yy_parser *parser;

    PERL_ARGS_ASSERT_PARSER_DUP;

    if (!proto)
        return NULL;

    /* look for it in the table first */
    parser = (yy_parser *)ptr_table_fetch(PL_ptr_table, proto);
    if (parser)
        return parser;

    /* create anew and remember what it is */
    Newxz(parser, 1, yy_parser);
    ptr_table_store(PL_ptr_table, proto, parser);

    /* XXX eventually, just Copy() most of the parser struct ? */

    parser->lex_brackets = proto->lex_brackets;
    parser->lex_casemods = proto->lex_casemods;
    parser->lex_brackstack = savepvn(proto->lex_brackstack,
                    (proto->lex_brackets < 120 ? 120 : proto->lex_brackets));
    parser->lex_casestack = savepvn(proto->lex_casestack,
                    (proto->lex_casemods < 12 ? 12 : proto->lex_casemods));
    parser->lex_defer	= proto->lex_defer;
    parser->lex_dojoin	= proto->lex_dojoin;
    parser->lex_formbrack = proto->lex_formbrack;
    parser->lex_inpat	= proto->lex_inpat;
    parser->lex_inwhat	= proto->lex_inwhat;
    parser->lex_op	= proto->lex_op;
    parser->lex_repl	= sv_dup_inc(proto->lex_repl, param);
    parser->lex_starts	= proto->lex_starts;
    parser->lex_stuff	= sv_dup_inc(proto->lex_stuff, param);
    parser->multi_close	= proto->multi_close;
    parser->multi_open	= proto->multi_open;
    parser->multi_start	= proto->multi_start;
    parser->multi_end	= proto->multi_end;
    parser->preambled	= proto->preambled;
    parser->lex_super_state = proto->lex_super_state;
    parser->lex_sub_inwhat  = proto->lex_sub_inwhat;
    parser->lex_sub_op	= proto->lex_sub_op;
    parser->lex_sub_repl= sv_dup_inc(proto->lex_sub_repl, param);
    parser->linestr	= sv_dup_inc(proto->linestr, param);
    parser->expect	= proto->expect;
    parser->copline	= proto->copline;
    parser->last_lop_op	= proto->last_lop_op;
    parser->lex_state	= proto->lex_state;
    parser->rsfp	= fp_dup(proto->rsfp, '<', param);
    /* rsfp_filters entries have fake IoDIRP() */
    parser->rsfp_filters= av_dup_inc(proto->rsfp_filters, param);
    parser->in_my	= proto->in_my;
    parser->in_my_stash	= hv_dup(proto->in_my_stash, param);
    parser->error_count	= proto->error_count;
    parser->sig_elems	= proto->sig_elems;
    parser->sig_optelems= proto->sig_optelems;
    parser->sig_slurpy  = proto->sig_slurpy;
    parser->recheck_utf8_validity = proto->recheck_utf8_validity;

    {
        char * const ols = SvPVX(proto->linestr);
        char * const ls  = SvPVX(parser->linestr);

        parser->bufptr	    = ls + (proto->bufptr >= ols ?
                                    proto->bufptr -  ols : 0);
        parser->oldbufptr   = ls + (proto->oldbufptr >= ols ?
                                    proto->oldbufptr -  ols : 0);
        parser->oldoldbufptr= ls + (proto->oldoldbufptr >= ols ?
                                    proto->oldoldbufptr -  ols : 0);
        parser->linestart   = ls + (proto->linestart >= ols ?
                                    proto->linestart -  ols : 0);
        parser->last_uni    = ls + (proto->last_uni >= ols ?
                                    proto->last_uni -  ols : 0);
        parser->last_lop    = ls + (proto->last_lop >= ols ?
                                    proto->last_lop -  ols : 0);

        parser->bufend	    = ls + SvCUR(parser->linestr);
    }

    Copy(proto->tokenbuf, parser->tokenbuf, 256, char);


    Copy(proto->nextval, parser->nextval, 5, YYSTYPE);
    Copy(proto->nexttype, parser->nexttype, 5,	I32);
    parser->nexttoke	= proto->nexttoke;

    /* XXX should clone saved_curcop here, but we aren't passed
     * proto_perl; so do it in perl_clone_using instead */

    return parser;
}

/*
=for apidoc_section $io
=for apidoc fp_dup

Duplicate a file handle, returning a pointer to the cloned object.

=cut
*/

PerlIO *
Perl_fp_dup(pTHX_ PerlIO *const fp, const char type, CLONE_PARAMS *const param)
{
    PerlIO *ret;

    PERL_ARGS_ASSERT_FP_DUP;
    PERL_UNUSED_ARG(type);

    if (!fp)
        return (PerlIO*)NULL;

    /* look for it in the table first */
    ret = (PerlIO*)ptr_table_fetch(PL_ptr_table, fp);
    if (ret)
        return ret;

    /* create anew and remember what it is */
#ifdef __amigaos4__
    ret = PerlIO_fdupopen(aTHX_ fp, param, PERLIO_DUP_CLONE|PERLIO_DUP_FD);
#else
    ret = PerlIO_fdupopen(aTHX_ fp, param, PERLIO_DUP_CLONE);
#endif
    ptr_table_store(PL_ptr_table, fp, ret);
    return ret;
}

/*
=for apidoc_section $io
=for apidoc dirp_dup

Duplicate a directory handle, returning a pointer to the cloned object.

=cut
*/

DIR *
Perl_dirp_dup(pTHX_ DIR *const dp, CLONE_PARAMS *const param)
{
    DIR *ret;

#if defined(HAS_FCHDIR) && defined(HAS_TELLDIR) && defined(HAS_SEEKDIR)
    DIR *pwd;
    const Direntry_t *dirent;
    char smallbuf[256]; /* XXX MAXPATHLEN, surely? */
    char *name = NULL;
    STRLEN len = 0;
    long pos;
#endif

    PERL_UNUSED_CONTEXT;
    PERL_ARGS_ASSERT_DIRP_DUP;

    if (!dp)
        return (DIR*)NULL;

    /* look for it in the table first */
    ret = (DIR*)ptr_table_fetch(PL_ptr_table, dp);
    if (ret)
        return ret;

#if defined(HAS_FCHDIR) && defined(HAS_TELLDIR) && defined(HAS_SEEKDIR)

    PERL_UNUSED_ARG(param);

    /* create anew */

    /* open the current directory (so we can switch back) */
    if (!(pwd = PerlDir_open("."))) return (DIR *)NULL;

    /* chdir to our dir handle and open the present working directory */
    if (fchdir(my_dirfd(dp)) < 0 || !(ret = PerlDir_open("."))) {
        PerlDir_close(pwd);
        return (DIR *)NULL;
    }
    /* Now we should have two dir handles pointing to the same dir. */

    /* Be nice to the calling code and chdir back to where we were. */
    /* XXX If this fails, then what? */
    PERL_UNUSED_RESULT(fchdir(my_dirfd(pwd)));

    /* We have no need of the pwd handle any more. */
    PerlDir_close(pwd);

#ifdef DIRNAMLEN
# define d_namlen(d) (d)->d_namlen
#else
# define d_namlen(d) strlen((d)->d_name)
#endif
    /* Iterate once through dp, to get the file name at the current posi-
       tion. Then step back. */
    pos = PerlDir_tell(dp);
    if ((dirent = PerlDir_read(dp))) {
        len = d_namlen(dirent);
        if (len > sizeof(dirent->d_name) && sizeof(dirent->d_name) > PTRSIZE) {
            /* If the len is somehow magically longer than the
             * maximum length of the directory entry, even though
             * we could fit it in a buffer, we could not copy it
             * from the dirent.  Bail out. */
            PerlDir_close(ret);
            return (DIR*)NULL;
        }
        if (len <= sizeof smallbuf) name = smallbuf;
        else Newx(name, len, char);
        Move(dirent->d_name, name, len, char);
    }
    PerlDir_seek(dp, pos);

    /* Iterate through the new dir handle, till we find a file with the
       right name. */
    if (!dirent) /* just before the end */
        for(;;) {
            pos = PerlDir_tell(ret);
            if (PerlDir_read(ret)) continue; /* not there yet */
            PerlDir_seek(ret, pos); /* step back */
            break;
        }
    else {
        const long pos0 = PerlDir_tell(ret);
        for(;;) {
            pos = PerlDir_tell(ret);
            if ((dirent = PerlDir_read(ret))) {
                if (len == (STRLEN)d_namlen(dirent)
                    && memEQ(name, dirent->d_name, len)) {
                    /* found it */
                    PerlDir_seek(ret, pos); /* step back */
                    break;
                }
                /* else we are not there yet; keep iterating */
            }
            else { /* This is not meant to happen. The best we can do is
                      reset the iterator to the beginning. */
                PerlDir_seek(ret, pos0);
                break;
            }
        }
    }
#undef d_namlen

    if (name && name != smallbuf)
        Safefree(name);
#endif

#ifdef WIN32
    ret = win32_dirp_dup(dp, param);
#endif

    /* pop it in the pointer table */
    if (ret)
        ptr_table_store(PL_ptr_table, dp, ret);

    return ret;
}

/*
=for apidoc_section $GV
=for apidoc gp_dup

Duplicate a typeglob, returning a pointer to the cloned object.

=cut
*/

GP *
Perl_gp_dup(pTHX_ GP *const gp, CLONE_PARAMS *const param)
{
    GP *ret;

    PERL_ARGS_ASSERT_GP_DUP;

    if (!gp)
        return (GP*)NULL;
    /* look for it in the table first */
    ret = (GP*)ptr_table_fetch(PL_ptr_table, gp);
    if (ret)
        return ret;

    /* create anew and remember what it is */
    Newxz(ret, 1, GP);
    ptr_table_store(PL_ptr_table, gp, ret);

    /* clone */
    /* ret->gp_refcnt must be 0 before any other dups are called. We're relying
       on Newxz() to do this for us.  */
    ret->gp_sv		= sv_dup_inc(gp->gp_sv, param);
    ret->gp_io		= io_dup_inc(gp->gp_io, param);
    ret->gp_form	= cv_dup_inc(gp->gp_form, param);
    ret->gp_av		= av_dup_inc(gp->gp_av, param);
    ret->gp_hv		= hv_dup_inc(gp->gp_hv, param);
    ret->gp_egv	= gv_dup(gp->gp_egv, param);/* GvEGV is not refcounted */
    ret->gp_cv		= cv_dup_inc(gp->gp_cv, param);
    ret->gp_cvgen	= gp->gp_cvgen;
    ret->gp_line	= gp->gp_line;
    ret->gp_file_hek	= hek_dup(gp->gp_file_hek, param);
    return ret;
}


/*
=for apidoc_section $magic
=for apidoc mg_dup

Duplicate a chain of magic, returning a pointer to the cloned object.

=cut
*/

MAGIC *
Perl_mg_dup(pTHX_ MAGIC *mg, CLONE_PARAMS *const param)
{
    MAGIC *mgret = NULL;
    MAGIC **mgprev_p = &mgret;

    PERL_ARGS_ASSERT_MG_DUP;

    for (; mg; mg = mg->mg_moremagic) {
        MAGIC *nmg;

        if ((param->flags & CLONEf_JOIN_IN)
                && mg->mg_type == PERL_MAGIC_backref)
            /* when joining, we let the individual SVs add themselves to
             * backref as needed. */
            continue;

        Newx(nmg, 1, MAGIC);
        *mgprev_p = nmg;
        mgprev_p = &(nmg->mg_moremagic);

        /* There was a comment "XXX copy dynamic vtable?" but as we don't have
           dynamic vtables, I'm not sure why Sarathy wrote it. The comment dates
           from the original commit adding Perl_mg_dup() - revision 4538.
           Similarly there is the annotation "XXX random ptr?" next to the
           assignment to nmg->mg_ptr.  */
        *nmg = *mg;

        /* FIXME for plugins
        if (nmg->mg_type == PERL_MAGIC_qr) {
            nmg->mg_obj	= MUTABLE_SV(CALLREGDUPE((REGEXP*)nmg->mg_obj, param));
        }
        else
        */
        nmg->mg_obj = (nmg->mg_flags & MGf_REFCOUNTED)
                          ? nmg->mg_type == PERL_MAGIC_backref
                                /* The backref AV has its reference
                                 * count deliberately bumped by 1 */
                                ? SvREFCNT_inc(av_dup_inc((const AV *)
                                                    nmg->mg_obj, param))
                                : sv_dup_inc(nmg->mg_obj, param)
                          : (nmg->mg_type == PERL_MAGIC_regdatum ||
                             nmg->mg_type == PERL_MAGIC_regdata)
                                  ? nmg->mg_obj
                                  : sv_dup(nmg->mg_obj, param);

        if (nmg->mg_ptr && nmg->mg_type != PERL_MAGIC_regex_global) {
            if (nmg->mg_len > 0) {
                nmg->mg_ptr	= SAVEPVN(nmg->mg_ptr, nmg->mg_len);
                if (nmg->mg_type == PERL_MAGIC_overload_table &&
                        AMT_AMAGIC((AMT*)nmg->mg_ptr))
                {
                    AMT * const namtp = (AMT*)nmg->mg_ptr;
                    sv_dup_inc_multiple((SV**)(namtp->table),
                                        (SV**)(namtp->table), NofAMmeth, param);
                }
            }
            else if (nmg->mg_len == HEf_SVKEY)
                nmg->mg_ptr = (char*)sv_dup_inc((const SV *)nmg->mg_ptr, param);
        }
        if ((nmg->mg_flags & MGf_DUP) && nmg->mg_virtual && nmg->mg_virtual->svt_dup) {
            nmg->mg_virtual->svt_dup(aTHX_ nmg, param);
        }
    }
    return mgret;
}

#endif /* USE_ITHREADS */

struct ptr_tbl_arena {
    struct ptr_tbl_arena *next;
    struct ptr_tbl_ent array[1023/3]; /* as ptr_tbl_ent has 3 pointers.  */
};

/*
=for apidoc_section $embedding
=for apidoc ptr_table_new

Create a new pointer-mapping table

=cut
*/

PTR_TBL_t *
Perl_ptr_table_new(pTHX)
{
    PTR_TBL_t *tbl;
    PERL_UNUSED_CONTEXT;

    Newx(tbl, 1, PTR_TBL_t);
    tbl->tbl_max	= 511;
    tbl->tbl_items	= 0;
    tbl->tbl_arena	= NULL;
    tbl->tbl_arena_next	= NULL;
    tbl->tbl_arena_end	= NULL;
    Newxz(tbl->tbl_ary, tbl->tbl_max + 1, PTR_TBL_ENT_t*);
    return tbl;
}

#define PTR_TABLE_HASH(ptr) \
  ((PTR2UV(ptr) >> 3) ^ (PTR2UV(ptr) >> (3 + 7)) ^ (PTR2UV(ptr) >> (3 + 17)))

/* map an existing pointer using a table */

STATIC PTR_TBL_ENT_t *
S_ptr_table_find(PTR_TBL_t *const tbl, const void *const sv)
{
    PTR_TBL_ENT_t *tblent;
    const UV hash = PTR_TABLE_HASH(sv);

    PERL_ARGS_ASSERT_PTR_TABLE_FIND;

    tblent = tbl->tbl_ary[hash & tbl->tbl_max];
    for (; tblent; tblent = tblent->next) {
        if (tblent->oldval == sv)
            return tblent;
    }
    return NULL;
}

/*
=for apidoc ptr_table_fetch

Look for C<sv> in the pointer-mapping table C<tbl>, returning its value, or
NULL if not found.

=cut
*/

void *
Perl_ptr_table_fetch(pTHX_ PTR_TBL_t *const tbl, const void *const sv)
{
    PTR_TBL_ENT_t const *const tblent = ptr_table_find(tbl, sv);

    PERL_ARGS_ASSERT_PTR_TABLE_FETCH;
    PERL_UNUSED_CONTEXT;

    return tblent ? tblent->newval : NULL;
}

/*
=for apidoc ptr_table_store

Add a new entry to a pointer-mapping table C<tbl>.
In hash terms, C<oldsv> is the key; Cnewsv> is the value.

The names "old" and "new" are specific to the core's typical use of ptr_tables
in thread cloning.

=cut
*/

void
Perl_ptr_table_store(pTHX_ PTR_TBL_t *const tbl, const void *const oldsv, void *const newsv)
{
    PTR_TBL_ENT_t *tblent = ptr_table_find(tbl, oldsv);

    PERL_ARGS_ASSERT_PTR_TABLE_STORE;
    PERL_UNUSED_CONTEXT;

    if (tblent) {
        tblent->newval = newsv;
    } else {
        const UV entry = PTR_TABLE_HASH(oldsv) & tbl->tbl_max;

        if (tbl->tbl_arena_next == tbl->tbl_arena_end) {
            struct ptr_tbl_arena *new_arena;

            Newx(new_arena, 1, struct ptr_tbl_arena);
            new_arena->next = tbl->tbl_arena;
            tbl->tbl_arena = new_arena;
            tbl->tbl_arena_next = new_arena->array;
            tbl->tbl_arena_end = C_ARRAY_END(new_arena->array);
        }

        tblent = tbl->tbl_arena_next++;

        tblent->oldval = oldsv;
        tblent->newval = newsv;
        tblent->next = tbl->tbl_ary[entry];
        tbl->tbl_ary[entry] = tblent;
        tbl->tbl_items++;
        if (tblent->next && tbl->tbl_items > tbl->tbl_max)
            ptr_table_split(tbl);
    }
}

/*
=for apidoc ptr_table_split

Double the hash bucket size of an existing ptr table

=cut
*/

void
Perl_ptr_table_split(pTHX_ PTR_TBL_t *const tbl)
{
    PTR_TBL_ENT_t **ary = tbl->tbl_ary;
    const UV oldsize = tbl->tbl_max + 1;
    UV newsize = oldsize * 2;
    UV i;

    PERL_ARGS_ASSERT_PTR_TABLE_SPLIT;
    PERL_UNUSED_CONTEXT;

    Renew(ary, newsize, PTR_TBL_ENT_t*);
    Zero(&ary[oldsize], newsize-oldsize, PTR_TBL_ENT_t*);
    tbl->tbl_max = --newsize;
    tbl->tbl_ary = ary;
    for (i=0; i < oldsize; i++, ary++) {
        PTR_TBL_ENT_t **entp = ary;
        PTR_TBL_ENT_t *ent = *ary;
        PTR_TBL_ENT_t **curentp;
        if (!ent)
            continue;
        curentp = ary + oldsize;
        do {
            if ((newsize & PTR_TABLE_HASH(ent->oldval)) != i) {
                *entp = ent->next;
                ent->next = *curentp;
                *curentp = ent;
            }
            else
                entp = &ent->next;
            ent = *entp;
        } while (ent);
    }
}

/*
=for apidoc ptr_table_free

Clear and free a ptr table

=cut
*/

void
Perl_ptr_table_free(pTHX_ PTR_TBL_t *const tbl)
{
    struct ptr_tbl_arena *arena;

    PERL_UNUSED_CONTEXT;

    if (!tbl) {
        return;
    }

    arena = tbl->tbl_arena;

    while (arena) {
        struct ptr_tbl_arena *next = arena->next;

        Safefree(arena);
        arena = next;
    }

    Safefree(tbl->tbl_ary);
    Safefree(tbl);
}

#if defined(USE_ITHREADS)

void
Perl_rvpv_dup(pTHX_ SV *const dsv, const SV *const ssv, CLONE_PARAMS *const param)
{
    PERL_ARGS_ASSERT_RVPV_DUP;

    assert(!isREGEXP(ssv));
    if (SvROK(ssv)) {
        if (SvWEAKREF(ssv)) {
            SvRV_set(dsv, sv_dup(SvRV_const(ssv), param));
            if (param->flags & CLONEf_JOIN_IN) {
                /* if joining, we add any back references individually rather
                 * than copying the whole backref array */
                Perl_sv_add_backref(aTHX_ SvRV(dsv), dsv);
            }
        }
        else
            SvRV_set(dsv, sv_dup_inc(SvRV_const(ssv), param));
    }
    else if (SvPVX_const(ssv)) {
        /* Has something there */
        if (SvLEN(ssv)) {
            /* Normal PV - clone whole allocated space */
            SvPV_set(dsv, SAVEPVN(SvPVX_const(ssv), SvLEN(ssv)-1));
            /* ssv may not be that normal, but actually copy on write.
               But we are a true, independent SV, so:  */
            SvIsCOW_off(dsv);
        }
        else {
            /* Special case - not normally malloced for some reason */
            if (isGV_with_GP(ssv)) {
                /* Don't need to do anything here.  */
            }
            else if ((SvIsCOW_shared_hash(ssv))) {
                /* A "shared" PV - clone it as "shared" PV */
                SvPV_set(dsv,
                         HEK_KEY(hek_dup(SvSHARED_HEK_FROM_PV(SvPVX_const(ssv)),
                                         param)));
            }
            else {
                /* Some other special case - random pointer */
                SvPV_set(dsv, (char *) SvPVX_const(ssv));
            }
        }
    }
    else {
        /* Copy the NULL */
        SvPV_set(dsv, NULL);
    }
}

/* duplicate a list of SVs. source and dest may point to the same memory.  */
static SV **
S_sv_dup_inc_multiple(pTHX_ SV *const *source, SV **dest,
                      SSize_t items, CLONE_PARAMS *const param)
{
    PERL_ARGS_ASSERT_SV_DUP_INC_MULTIPLE;

    while (items-- > 0) {
        *dest++ = sv_dup_inc(*source++, param);
    }

    return dest;
}

/* duplicate the HvAUX of an HV */
static void
S_sv_dup_hvaux(pTHX_ const SV *const ssv, SV *dsv, CLONE_PARAMS *const param)
{
    PERL_ARGS_ASSERT_SV_DUP_HVAUX;

    const struct xpvhv_aux * const saux = HvAUX(ssv);
    struct xpvhv_aux * const daux = HvAUX(dsv);
    /* This flag isn't copied.  */
    SvFLAGS(dsv) |= SVphv_HasAUX;

    if (saux->xhv_name_count) {
        HEK ** const sname = saux->xhv_name_u.xhvnameu_names;
        const I32 count = saux->xhv_name_count < 0
            ? -saux->xhv_name_count
            :  saux->xhv_name_count;
        HEK **shekp = sname + count;
        HEK **dhekp;
        Newx(daux->xhv_name_u.xhvnameu_names, count, HEK *);
        dhekp = daux->xhv_name_u.xhvnameu_names + count;
        while (shekp-- > sname) {
            dhekp--;
            *dhekp = hek_dup(*shekp, param);
        }
    }
    else {
        daux->xhv_name_u.xhvnameu_name = hek_dup(saux->xhv_name_u.xhvnameu_name, param);
    }
    daux->xhv_name_count = saux->xhv_name_count;

    daux->xhv_aux_flags = saux->xhv_aux_flags;
#ifdef PERL_HASH_RANDOMIZE_KEYS
    daux->xhv_rand = saux->xhv_rand;
    daux->xhv_last_rand = saux->xhv_last_rand;
#endif
    daux->xhv_riter = saux->xhv_riter;
    daux->xhv_eiter = saux->xhv_eiter ? he_dup(saux->xhv_eiter, FALSE, param) : 0;
    /* backref array needs refcnt=2; see sv_add_backref */
    daux->xhv_backreferences =
        (param->flags & CLONEf_JOIN_IN)
            /* when joining, we let the individual GVs and
             * CVs add themselves to backref as
             * needed. This avoids pulling in stuff
             * that isn't required, and simplifies the
             * case where stashes aren't cloned back
             * if they already exist in the parent
             * thread */
        ? NULL
        : saux->xhv_backreferences
            ? (SvTYPE(saux->xhv_backreferences) == SVt_PVAV)
                ? MUTABLE_AV(SvREFCNT_inc(
                      sv_dup_inc((const SV *)
                        saux->xhv_backreferences, param)))
                : MUTABLE_AV(sv_dup((const SV *)
                        saux->xhv_backreferences, param))
            : 0;

    daux->xhv_mro_meta = saux->xhv_mro_meta
        ? mro_meta_dup(saux->xhv_mro_meta, param)
        : 0;

    /* Record stashes for possible cloning in Perl_clone(). */
    if (HvNAME(ssv))
        av_push(param->stashes, dsv);

    if (HvSTASH_IS_CLASS(ssv)) {
        daux->xhv_class_superclass    = hv_dup_inc(saux->xhv_class_superclass,    param);
        daux->xhv_class_initfields_cv = cv_dup_inc(saux->xhv_class_initfields_cv, param);
        daux->xhv_class_adjust_blocks = av_dup_inc(saux->xhv_class_adjust_blocks, param);
        daux->xhv_class_fields        = padnamelist_dup_inc(saux->xhv_class_fields, param);
        daux->xhv_class_next_fieldix  = saux->xhv_class_next_fieldix;
        daux->xhv_class_param_map     = hv_dup_inc(saux->xhv_class_param_map,     param);

        /* TODO: This does mean that we can't compile more `field` expressions
         * in the cloned thread, but surely we're done with compiletime now..?
         */
        daux->xhv_class_suspended_initfields_compcv = NULL;
    }
}

/* duplicate an SV of any type (including AV, HV etc) */

static SV *
S_sv_dup_common(pTHX_ const SV *const ssv, CLONE_PARAMS *const param)
{
    SV *dsv;

    PERL_ARGS_ASSERT_SV_DUP_COMMON;

    if (SvIS_FREED(ssv)) {
#ifdef DEBUG_LEAKING_SCALARS_ABORT
        abort();
#endif
        return NULL;
    }
    /* look for it in the table first */
    dsv = MUTABLE_SV(ptr_table_fetch(PL_ptr_table, ssv));
    if (dsv)
        return dsv;

    if(param->flags & CLONEf_JOIN_IN) {
        /** We are joining here so we don't want do clone
            something that is bad **/
        if (SvTYPE(ssv) == SVt_PVHV) {
            const HEK * const hvname = HvNAME_HEK(ssv);
            if (hvname) {
                /** don't clone stashes if they already exist **/
                dsv = MUTABLE_SV(gv_stashpvn(HEK_KEY(hvname), HEK_LEN(hvname),
                                                HEK_UTF8(hvname) ? SVf_UTF8 : 0));
                ptr_table_store(PL_ptr_table, ssv, dsv);
                return dsv;
            }
        }
        else if (SvTYPE(ssv) == SVt_PVGV && !SvFAKE(ssv)) {
            HV *stash = GvSTASH(ssv);
            const HEK * hvname;
            if (stash && (hvname = HvNAME_HEK(stash))) {
                /** don't clone GVs if they already exist **/
                SV **svp;
                stash = gv_stashpvn(HEK_KEY(hvname), HEK_LEN(hvname),
                                    HEK_UTF8(hvname) ? SVf_UTF8 : 0);
                svp = hv_fetch(
                        stash, GvNAME(ssv),
                        GvNAMEUTF8(ssv)
                            ? -GvNAMELEN(ssv)
                            :  GvNAMELEN(ssv),
                        0
                      );
                if (svp && *svp && SvTYPE(*svp) == SVt_PVGV) {
                    ptr_table_store(PL_ptr_table, ssv, *svp);
                    return *svp;
                }
            }
        }
    }

    /* create anew and remember what it is */
    new_SV(dsv);

#ifdef DEBUG_LEAKING_SCALARS
    dsv->sv_debug_optype = ssv->sv_debug_optype;
    dsv->sv_debug_line = ssv->sv_debug_line;
    dsv->sv_debug_inpad = ssv->sv_debug_inpad;
    dsv->sv_debug_parent = (SV*)ssv;
    FREE_SV_DEBUG_FILE(dsv);
    dsv->sv_debug_file = savesharedpv(ssv->sv_debug_file);
#endif

    ptr_table_store(PL_ptr_table, ssv, dsv);

    /* clone */
    SvFLAGS(dsv)	= SvFLAGS(ssv);
    SvFLAGS(dsv)	&= ~SVf_OOK;		/* don't propagate OOK hack */
    SvREFCNT(dsv)	= 0;			/* must be before any other dups! */

#ifdef DEBUGGING
    if (SvANY(ssv) && PL_watch_pvx && SvPVX_const(ssv) == PL_watch_pvx)
        PerlIO_printf(Perl_debug_log, "watch at %p hit, found string \"%s\"\n",
                      (void*)PL_watch_pvx, SvPVX_const(ssv));
#endif

    /* don't clone objects whose class has asked us not to */
    if (SvOBJECT(ssv)
     && ! (SvFLAGS(SvSTASH(ssv)) & SVphv_CLONEABLE))
    {
        SvFLAGS(dsv) = 0;
        return dsv;
    }

    switch (SvTYPE(ssv)) {
    case SVt_NULL:
        SvANY(dsv)	= NULL;
        break;
    case SVt_IV:
        SET_SVANY_FOR_BODYLESS_IV(dsv);
        if(SvROK(ssv)) {
            Perl_rvpv_dup(aTHX_ dsv, ssv, param);
        } else {
            SvIV_set(dsv, SvIVX(ssv));
        }
        break;
    case SVt_NV:
#if NVSIZE <= IVSIZE
        SET_SVANY_FOR_BODYLESS_NV(dsv);
#else
        SvANY(dsv)	= new_XNV();
#endif
        SvNV_set(dsv, SvNVX(ssv));
        break;
    default:
        {
            /* These are all the types that need complex bodies allocating.  */
            void *new_body;
            const svtype sv_type = SvTYPE(ssv);
            const struct body_details *sv_type_details
                = bodies_by_type + sv_type;

            switch (sv_type) {
            default:
                Perl_croak(param->proto_perl, "Bizarre SvTYPE [%" IVdf "]", (IV)SvTYPE(ssv));
                NOT_REACHED; /* NOTREACHED */
                break;

            case SVt_PVHV:
                if (HvHasAUX(ssv)) {
                    sv_type_details = &fake_hv_with_aux;
#ifdef PURIFY
                    new_body = new_NOARENA(sv_type_details);
#else
                    new_body_from_arena(new_body, HVAUX_ARENA_ROOT_IX, fake_hv_with_aux);
#endif
                    goto have_body;
                }
                /* FALLTHROUGH */
            case SVt_PVOBJ:
            case SVt_PVGV:
            case SVt_PVIO:
            case SVt_PVFM:
            case SVt_PVAV:
            case SVt_PVCV:
            case SVt_PVLV:
            case SVt_REGEXP:
            case SVt_PVMG:
            case SVt_PVNV:
            case SVt_PVIV:
            case SVt_INVLIST:
            case SVt_PV:
                assert(sv_type_details->body_size);
#ifndef PURIFY
                if (sv_type_details->arena) {
                    new_body = S_new_body(aTHX_ sv_type);
                    new_body
                        = (void*)((char*)new_body - sv_type_details->offset);
                } else
#endif
                {
                    new_body = new_NOARENA(sv_type_details);
                }
            }
        have_body:
            assert(new_body);
            SvANY(dsv) = new_body;

#ifndef PURIFY
            Copy(((char*)SvANY(ssv)) + sv_type_details->offset,
                 ((char*)SvANY(dsv)) + sv_type_details->offset,
                 sv_type_details->copy, char);
#else
            Copy(((char*)SvANY(ssv)),
                 ((char*)SvANY(dsv)),
                 sv_type_details->body_size + sv_type_details->offset, char);
#endif

            if (sv_type != SVt_PVAV && sv_type != SVt_PVHV && sv_type != SVt_PVOBJ
                && !isGV_with_GP(dsv)
                && !isREGEXP(dsv)
                && !(sv_type == SVt_PVIO && !(IoFLAGS(dsv) & IOf_FAKE_DIRP)))
                Perl_rvpv_dup(aTHX_ dsv, ssv, param);

            /* The Copy above means that all the source (unduplicated) pointers
               are now in the destination.  We can check the flags and the
               pointers in either, but it's possible that there's less cache
               missing by always going for the destination.
               FIXME - instrument and check that assumption  */
            if (sv_type >= SVt_PVMG) {
                if (SvMAGIC(dsv))
                    SvMAGIC_set(dsv, mg_dup(SvMAGIC(dsv), param));
                if (SvOBJECT(dsv) && SvSTASH(dsv))
                    SvSTASH_set(dsv, hv_dup_inc(SvSTASH(dsv), param));
                else SvSTASH_set(dsv, 0); /* don't copy DESTROY cache */
            }

            /* The cast silences a GCC warning about unhandled types.  */
            switch ((int)sv_type) {
            case SVt_PV:
                break;
            case SVt_PVIV:
                break;
            case SVt_PVNV:
                break;
            case SVt_PVMG:
                break;
            case SVt_REGEXP:
              duprex:
                /* FIXME for plugins */
                re_dup_guts((REGEXP*) ssv, (REGEXP*) dsv, param);
                break;
            case SVt_PVLV:
                /* XXX LvTARGOFF sometimes holds PMOP* when DEBUGGING */
                if (LvTYPE(dsv) == 't') /* for tie: unrefcnted fake (SV**) */
                    LvTARG(dsv) = dsv;
                else if (LvTYPE(dsv) == 'T') /* for tie: fake HE */
                    LvTARG(dsv) = MUTABLE_SV(he_dup((HE*)LvTARG(dsv), FALSE, param));
                else
                    LvTARG(dsv) = sv_dup_inc(LvTARG(dsv), param);
                if (isREGEXP(ssv)) goto duprex;
                /* FALLTHROUGH */
            case SVt_PVGV:
                /* non-GP case already handled above */
                if(isGV_with_GP(ssv)) {
                    GvNAME_HEK(dsv) = hek_dup(GvNAME_HEK(dsv), param);
                    /* Don't call sv_add_backref here as it's going to be
                       created as part of the magic cloning of the symbol
                       table--unless this is during a join and the stash
                       is not actually being cloned.  */
                    /* Danger Will Robinson - GvGP(dsv) isn't initialised
                       at the point of this comment.  */
                    GvSTASH(dsv) = hv_dup(GvSTASH(dsv), param);
                    if (param->flags & CLONEf_JOIN_IN)
                        Perl_sv_add_backref(aTHX_ MUTABLE_SV(GvSTASH(dsv)), dsv);
                    GvGP_set(dsv, gp_dup(GvGP(ssv), param));
                    (void)GpREFCNT_inc(GvGP(dsv));
                }
                break;
            case SVt_PVIO:
                /* PL_parser->rsfp_filters entries have fake IoDIRP() */
                if(IoFLAGS(dsv) & IOf_FAKE_DIRP) {
                    /* I have no idea why fake dirp (rsfps)
                       should be treated differently but otherwise
                       we end up with leaks -- sky*/
                    IoTOP_GV(dsv)      = gv_dup_inc(IoTOP_GV(dsv), param);
                    IoFMT_GV(dsv)      = gv_dup_inc(IoFMT_GV(dsv), param);
                    IoBOTTOM_GV(dsv)   = gv_dup_inc(IoBOTTOM_GV(dsv), param);
                } else {
                    IoTOP_GV(dsv)      = gv_dup(IoTOP_GV(dsv), param);
                    IoFMT_GV(dsv)      = gv_dup(IoFMT_GV(dsv), param);
                    IoBOTTOM_GV(dsv)   = gv_dup(IoBOTTOM_GV(dsv), param);
                    if (IoDIRP(dsv)) {
                        IoDIRP(dsv)	= dirp_dup(IoDIRP(dsv), param);
                    } else {
                        NOOP;
                        /* IoDIRP(dsv) is already a copy of IoDIRP(ssv)  */
                    }
                    IoIFP(dsv)	= fp_dup(IoIFP(ssv), IoTYPE(dsv), param);
                }
                if (IoOFP(dsv) == IoIFP(ssv))
                    IoOFP(dsv) = IoIFP(dsv);
                else
                    IoOFP(dsv)	= fp_dup(IoOFP(dsv), IoTYPE(dsv), param);
                IoTOP_NAME(dsv)	= SAVEPV(IoTOP_NAME(dsv));
                IoFMT_NAME(dsv)	= SAVEPV(IoFMT_NAME(dsv));
                IoBOTTOM_NAME(dsv)	= SAVEPV(IoBOTTOM_NAME(dsv));
                break;
            case SVt_PVAV:
                /* avoid cloning an empty array */
                if (AvARRAY((const AV *)ssv) && AvFILLp((const AV *)ssv) >= 0) {
                    SV **dst_ary, **src_ary;
                    SSize_t items = AvFILLp((const AV *)ssv) + 1;

                    src_ary = AvARRAY((const AV *)ssv);
                    Newx(dst_ary, AvMAX((const AV *)ssv)+1, SV*);
                    ptr_table_store(PL_ptr_table, src_ary, dst_ary);
                    AvARRAY(MUTABLE_AV(dsv)) = dst_ary;
                    AvALLOC((const AV *)dsv) = dst_ary;
                    if (AvREAL((const AV *)ssv)) {
                        dst_ary = sv_dup_inc_multiple(src_ary, dst_ary, items,
                                                      param);
                    }
                    else {
                        while (items-- > 0)
                            *dst_ary++ = sv_dup(*src_ary++, param);
                    }
                    items = AvMAX((const AV *)ssv) - AvFILLp((const AV *)ssv);
                    while (items-- > 0) {
                        *dst_ary++ = NULL;
                    }
                }
                else {
                    AvARRAY(MUTABLE_AV(dsv))	= NULL;
                    AvALLOC((const AV *)dsv)	= (SV**)NULL;
                    AvMAX(  (const AV *)dsv)	= -1;
                    AvFILLp((const AV *)dsv)	= -1;
                }
                break;
            case SVt_PVHV:
                if (HvARRAY((const HV *)ssv)) {
                    STRLEN i = 0;
                    XPVHV * const dxhv = (XPVHV*)SvANY(dsv);
                    XPVHV * const sxhv = (XPVHV*)SvANY(ssv);
                    char *darray;
                    Newx(darray, PERL_HV_ARRAY_ALLOC_BYTES(dxhv->xhv_max+1),
                        char);
                    HvARRAY(dsv) = (HE**)darray;
                    while (i <= sxhv->xhv_max) {
                        const HE * const source = HvARRAY(ssv)[i];
                        HvARRAY(dsv)[i] = source
                            ? he_dup(source, FALSE, param) : 0;
                        ++i;
                    }
                    if (HvHasAUX(ssv))
                        sv_dup_hvaux(ssv, dsv, param);
                }
                else
                    HvARRAY(MUTABLE_HV(dsv)) = NULL;
                break;
            case SVt_PVCV:
                if (!(param->flags & CLONEf_COPY_STACKS)) {
                    CvDEPTH(dsv) = 0;
                }
                /* FALLTHROUGH */
            case SVt_PVFM:
                /* NOTE: not refcounted */
                SvANY(MUTABLE_CV(dsv))->xcv_stash =
                    hv_dup(CvSTASH(dsv), param);
                if ((param->flags & CLONEf_JOIN_IN) && CvSTASH(dsv))
                    Perl_sv_add_backref(aTHX_ MUTABLE_SV(CvSTASH(dsv)), dsv);
                if (!CvISXSUB(dsv)) {
                    OP_REFCNT_LOCK;
                    CvROOT(dsv) = OpREFCNT_inc(CvROOT(dsv));
                    OP_REFCNT_UNLOCK;
                    CvSLABBED_off(dsv);
                } else if (CvCONST(dsv)) {
                    CvXSUBANY(dsv).any_ptr =
                        sv_dup_inc((const SV *)CvXSUBANY(dsv).any_ptr, param);
                } else if (CvREFCOUNTED_ANYSV(dsv)) {
                    CvXSUBANY(dsv).any_sv =
                        sv_dup_inc((const SV *)CvXSUBANY(dsv).any_sv, param);
                }
                assert(!CvSLABBED(dsv));
                if (CvDYNFILE(dsv)) CvFILE(dsv) = SAVEPV(CvFILE(dsv));
                if (CvNAMED(dsv))
                    SvANY((CV *)dsv)->xcv_gv_u.xcv_hek =
                        hek_dup(CvNAME_HEK((CV *)ssv), param);
                /* don't dup if copying back - CvGV isn't refcounted, so the
                 * duped GV may never be freed. A bit of a hack! DAPM */
                else
                  SvANY(MUTABLE_CV(dsv))->xcv_gv_u.xcv_gv =
                    CvCVGV_RC(dsv)
                    ? gv_dup_inc(CvGV(ssv), param)
                    : (param->flags & CLONEf_JOIN_IN)
                        ? NULL
                        : gv_dup(CvGV(ssv), param);

                if (!CvISXSUB(ssv)) {
                    PADLIST * padlist = CvPADLIST(ssv);
                    if(padlist)
                        padlist = padlist_dup(padlist, param);
                    CvPADLIST_set(dsv, padlist);
                } else
/* unthreaded perl can't sv_dup so we don't support unthreaded's CvHSCXT */
                    PoisonPADLIST(dsv);

                CvOUTSIDE(dsv)	=
                    CvWEAKOUTSIDE(ssv)
                    ? cv_dup(    CvOUTSIDE(dsv), param)
                    : cv_dup_inc(CvOUTSIDE(dsv), param);
                break;
            case SVt_PVOBJ:
                {
                    Size_t fieldcount = ObjectMAXFIELD(ssv) + 1;

                    Newx(ObjectFIELDS(dsv), fieldcount, SV *);
                    ObjectMAXFIELD(dsv) = fieldcount - 1;

                    sv_dup_inc_multiple(ObjectFIELDS(ssv), ObjectFIELDS(dsv), fieldcount, param);
                }
                break;
            }
        }
    }

    return dsv;
 }

SV *
Perl_sv_dup_inc(pTHX_ const SV *const ssv, CLONE_PARAMS *const param)
{
    PERL_ARGS_ASSERT_SV_DUP_INC;
    return ssv ? SvREFCNT_inc(sv_dup_common(ssv, param)) : NULL;
}

SV *
Perl_sv_dup(pTHX_ const SV *const ssv, CLONE_PARAMS *const param)
{
    SV *dsv = ssv ? sv_dup_common(ssv, param) : NULL;
    PERL_ARGS_ASSERT_SV_DUP;

    /* Track every SV that (at least initially) had a reference count of 0.
       We need to do this by holding an actual reference to it in this array.
       If we attempt to cheat, turn AvREAL_off(), and store only pointers
       (akin to the stashes hash, and the perl stack), we come unstuck if
       a weak reference (or other SV legitimately SvREFCNT() == 0 for this
       thread) is manipulated in a CLONE method, because CLONE runs before the
       unreferenced array is walked to find SVs still with SvREFCNT() == 0
       (and fix things up by giving each a reference via the temps stack).
       Instead, during CLONE, if the 0-referenced SV has SvREFCNT_inc() and
       then SvREFCNT_dec(), it will be cleaned up (and added to the free list)
       before the walk of unreferenced happens and a reference to that is SV
       added to the temps stack. At which point we have the same SV considered
       to be in use, and free to be re-used. Not good.
    */
    if (dsv && !(param->flags & CLONEf_COPY_STACKS) && !SvREFCNT(dsv)) {
        assert(param->unreferenced);
        av_push(param->unreferenced, SvREFCNT_inc(dsv));
    }

    return dsv;
}

/* duplicate a context */

PERL_CONTEXT *
Perl_cx_dup(pTHX_ PERL_CONTEXT *cxs, I32 ix, I32 max, CLONE_PARAMS* param)
{
    PERL_CONTEXT *ncxs;

    PERL_ARGS_ASSERT_CX_DUP;

    if (!cxs)
        return (PERL_CONTEXT*)NULL;

    /* look for it in the table first */
    ncxs = (PERL_CONTEXT*)ptr_table_fetch(PL_ptr_table, cxs);
    if (ncxs)
        return ncxs;

    /* create anew and remember what it is */
    Newx(ncxs, max + 1, PERL_CONTEXT);
    ptr_table_store(PL_ptr_table, cxs, ncxs);
    Copy(cxs, ncxs, max + 1, PERL_CONTEXT);

    while (ix >= 0) {
        PERL_CONTEXT * const ncx = &ncxs[ix];
        if (CxTYPE(ncx) == CXt_SUBST) {
            Perl_croak(aTHX_ "Cloning substitution context is unimplemented");
        }
        else {
            ncx->blk_oldcop = (COP*)any_dup(ncx->blk_oldcop, param->proto_perl);
            switch (CxTYPE(ncx)) {
            case CXt_SUB:
                ncx->blk_sub.cv		= cv_dup_inc(ncx->blk_sub.cv, param);
                if(CxHASARGS(ncx)){
                    ncx->blk_sub.savearray = av_dup_inc(ncx->blk_sub.savearray,param);
                } else {
                    ncx->blk_sub.savearray = NULL;
                }
                ncx->blk_sub.prevcomppad = (PAD*)ptr_table_fetch(PL_ptr_table,
                                           ncx->blk_sub.prevcomppad);
                break;
            case CXt_EVAL:
                ncx->blk_eval.old_namesv = sv_dup_inc(ncx->blk_eval.old_namesv,
                                                      param);
                /* XXX should this sv_dup_inc? Or only if CxEVAL_TXT_REFCNTED ???? */
                ncx->blk_eval.cur_text	= sv_dup(ncx->blk_eval.cur_text, param);
                ncx->blk_eval.cv = cv_dup(ncx->blk_eval.cv, param);
                /* XXX what to do with cur_top_env ???? */
                break;
            case CXt_LOOP_LAZYSV:
                ncx->blk_loop.state_u.lazysv.end
                    = sv_dup_inc(ncx->blk_loop.state_u.lazysv.end, param);
                /* Fallthrough: duplicate lazysv.cur by using the ary.ary
                   duplication code instead.
                   We are taking advantage of (1) av_dup_inc and sv_dup_inc
                   actually being the same function, and (2) order
                   equivalence of the two unions.
                   We can assert the later [but only at run time :-(]  */
                assert ((void *) &ncx->blk_loop.state_u.ary.ary ==
                        (void *) &ncx->blk_loop.state_u.lazysv.cur);
                /* FALLTHROUGH */
            case CXt_LOOP_ARY:
                ncx->blk_loop.state_u.ary.ary
                    = av_dup_inc(ncx->blk_loop.state_u.ary.ary, param);
                /* FALLTHROUGH */
            case CXt_LOOP_LIST:
            case CXt_LOOP_LAZYIV:
                /* code common to all 'for' CXt_LOOP_* types */
                ncx->blk_loop.itersave =
                                    sv_dup_inc(ncx->blk_loop.itersave, param);
                if (CxPADLOOP(ncx)) {
                    PADOFFSET off = ncx->blk_loop.itervar_u.svp
                                    - &CX_CURPAD_SV(ncx->blk_loop, 0);
                    ncx->blk_loop.oldcomppad =
                                    (PAD*)ptr_table_fetch(PL_ptr_table,
                                                ncx->blk_loop.oldcomppad);
                    ncx->blk_loop.itervar_u.svp =
                                    &CX_CURPAD_SV(ncx->blk_loop, off);
                }
                else {
                    /* this copies the GV if CXp_FOR_GV, or the SV for an
                     * alias (for \$x (...)) - relies on gv_dup being the
                     * same as sv_dup */
                    ncx->blk_loop.itervar_u.gv
                        = gv_dup((const GV *)ncx->blk_loop.itervar_u.gv,
                                    param);
                }
                break;
            case CXt_LOOP_PLAIN:
                break;
            case CXt_FORMAT:
                ncx->blk_format.prevcomppad =
                        (PAD*)ptr_table_fetch(PL_ptr_table,
                                           ncx->blk_format.prevcomppad);
                ncx->blk_format.cv	= cv_dup_inc(ncx->blk_format.cv, param);
                ncx->blk_format.gv	= gv_dup(ncx->blk_format.gv, param);
                ncx->blk_format.dfoutgv	= gv_dup_inc(ncx->blk_format.dfoutgv,
                                                     param);
                break;
            case CXt_GIVEN:
                ncx->blk_givwhen.defsv_save =
                                sv_dup_inc(ncx->blk_givwhen.defsv_save, param);
                break;
            case CXt_BLOCK:
            case CXt_NULL:
            case CXt_WHEN:
            case CXt_DEFER:
                break;
            }
        }
        --ix;
    }
    return ncxs;
}

/*
=for apidoc si_dup

Duplicate a stack info structure, returning a pointer to the cloned object.

=cut
*/

PERL_SI *
Perl_si_dup(pTHX_ PERL_SI *si, CLONE_PARAMS* param)
{
    PERL_SI *nsi;

    PERL_ARGS_ASSERT_SI_DUP;

    if (!si)
        return (PERL_SI*)NULL;

    /* look for it in the table first */
    nsi = (PERL_SI*)ptr_table_fetch(PL_ptr_table, si);
    if (nsi)
        return nsi;

    /* create anew and remember what it is */
    Newx(nsi, 1, PERL_SI);
    ptr_table_store(PL_ptr_table, si, nsi);

    nsi->si_stack	= av_dup_inc(si->si_stack, param);
    nsi->si_cxix	= si->si_cxix;
    nsi->si_cxsubix	= si->si_cxsubix;
    nsi->si_cxmax	= si->si_cxmax;
    nsi->si_cxstack	= cx_dup(si->si_cxstack, si->si_cxix, si->si_cxmax, param);
    nsi->si_type	= si->si_type;
    nsi->si_prev	= si_dup(si->si_prev, param);
    nsi->si_next	= si_dup(si->si_next, param);
    nsi->si_markoff	= si->si_markoff;
#if defined DEBUGGING && !defined DEBUGGING_RE_ONLY
    nsi->si_stack_hwm   = 0;
#endif

    return nsi;
}

#define POPINT(ss,ix)	((ss)[--(ix)].any_i32)
#define TOPINT(ss,ix)	((ss)[ix].any_i32)
#define POPLONG(ss,ix)	((ss)[--(ix)].any_long)
#define TOPLONG(ss,ix)	((ss)[ix].any_long)
#define POPIV(ss,ix)	((ss)[--(ix)].any_iv)
#define TOPIV(ss,ix)	((ss)[ix].any_iv)
#define POPUV(ss,ix)	((ss)[--(ix)].any_uv)
#define TOPUV(ss,ix)	((ss)[ix].any_uv)
#define POPBOOL(ss,ix)	((ss)[--(ix)].any_bool)
#define TOPBOOL(ss,ix)	((ss)[ix].any_bool)
#define POPPTR(ss,ix)	((ss)[--(ix)].any_ptr)
#define TOPPTR(ss,ix)	((ss)[ix].any_ptr)
#define POPDPTR(ss,ix)	((ss)[--(ix)].any_dptr)
#define TOPDPTR(ss,ix)	((ss)[ix].any_dptr)
#define POPDXPTR(ss,ix)	((ss)[--(ix)].any_dxptr)
#define TOPDXPTR(ss,ix)	((ss)[ix].any_dxptr)

/* XXXXX todo */
#define pv_dup_inc(p)	SAVEPV(p)
#define pv_dup(p)	SAVEPV(p)
#define svp_dup_inc(p,pp)	any_dup(p,pp)

/* map any object to the new equivalent - either something in the
 * ptr table, or something in the interpreter structure
 */

void *
Perl_any_dup(pTHX_ void *v, const PerlInterpreter *proto_perl)
{
    void *ret;

    PERL_ARGS_ASSERT_ANY_DUP;

    if (!v)
        return (void*)NULL;

    /* look for it in the table first */
    ret = ptr_table_fetch(PL_ptr_table, v);
    if (ret)
        return ret;

    /* see if it is part of the interpreter structure */
    if (v >= (void*)proto_perl && v < (void*)(proto_perl+1))
        ret = (void*)(((char*)aTHX) + (((char*)v) - (char*)proto_perl));
    else {
        ret = v;
    }

    return ret;
}

/*
=for apidoc ss_dup

Duplicate the save stack, returning a pointer to the cloned object.

=cut
*/

ANY *
Perl_ss_dup(pTHX_ PerlInterpreter *proto_perl, CLONE_PARAMS* param)
{
    ANY * const ss	= proto_perl->Isavestack;
    const I32 max	= proto_perl->Isavestack_max + SS_MAXPUSH;
    I32 ix		= proto_perl->Isavestack_ix;
    ANY *nss;
    const SV *sv;
    const GV *gv;
    const AV *av;
    const HV *hv;
    char *pv; /* no const deliberately */
    void* ptr;
    int intval;
    long longval;
    GP *gp;
    IV iv;
    I32 i;
    char *c = NULL;
    void (*dptr) (void*);
    void (*dxptr) (pTHX_ void*);

    PERL_ARGS_ASSERT_SS_DUP;

    Newx(nss, max, ANY);

    while (ix > 0) {
        const UV uv = POPUV(ss,ix);
        const U8 type = (U8)uv & SAVE_MASK;

        TOPUV(nss,ix) = uv;
        switch (type) {
        case SAVEt_CLEARSV:
        case SAVEt_CLEARPADRANGE:
            break;
        case SAVEt_HELEM:		/* hash element */
        case SAVEt_SV:			/* scalar reference */
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = SvREFCNT_inc(sv_dup_inc(sv, param));
            /* FALLTHROUGH */
        case SAVEt_ITEM:			/* normal string */
        case SAVEt_GVSV:			/* scalar slot in GV */
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup_inc(sv, param);
            if (type == SAVEt_SV)
                break;
            /* FALLTHROUGH */
        case SAVEt_FREESV:
        case SAVEt_MORTALIZESV:
        case SAVEt_READONLY_OFF:
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup_inc(sv, param);
            break;
        case SAVEt_FREEPADNAME:
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = padname_dup((PADNAME *)ptr, param);
            PadnameREFCNT((PADNAME *)TOPPTR(nss,ix))++;
            break;
        case SAVEt_SHARED_PVREF:		/* char* in shared space */
            c = (char*)POPPTR(ss,ix);
            TOPPTR(nss,ix) = savesharedpv(c);
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            break;
        case SAVEt_GENERIC_SVREF:		/* generic sv */
        case SAVEt_SVREF:			/* scalar reference */
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup_inc(sv, param);
            if (type == SAVEt_SVREF)
                SvREFCNT_inc_simple_void((SV *)TOPPTR(nss,ix));
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = svp_dup_inc((SV**)ptr, proto_perl);/* XXXXX */
            /* this feels very strange, we have a **SV from one thread,
             * we copy the SV, but dont change the **SV. But in this thread
             * the target of the **SV could be something from the *other* thread.
             * So how can this possibly work correctly? */
            break;
        case SAVEt_RCPV:
            pv = (char *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = rcpv_copy(pv);
            ptr = POPPTR(ss,ix);
            (void)rcpv_copy(*((char **)ptr));
            TOPPTR(nss,ix) = ptr;
            /* XXXXX: see comment above. */
            break;
        case SAVEt_GVSLOT:		/* any slot in GV */
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup_inc(sv, param);
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = svp_dup_inc((SV**)ptr, proto_perl);/* XXXXX */
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup_inc(sv, param);
            break;
        case SAVEt_HV:				/* hash reference */
        case SAVEt_AV:				/* array reference */
            sv = (const SV *) POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup_inc(sv, param);
            /* FALLTHROUGH */
        case SAVEt_COMPPAD:
        case SAVEt_NSTAB:
            sv = (const SV *) POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup(sv, param);
            break;
        case SAVEt_INT:				/* int reference */
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            intval = (int)POPINT(ss,ix);
            TOPINT(nss,ix) = intval;
            break;
        case SAVEt_LONG:			/* long reference */
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            longval = (long)POPLONG(ss,ix);
            TOPLONG(nss,ix) = longval;
            break;
        case SAVEt_I32:				/* I32 reference */
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            i = POPINT(ss,ix);
            TOPINT(nss,ix) = i;
            break;
        case SAVEt_IV:				/* IV reference */
        case SAVEt_STRLEN:			/* STRLEN/size_t ref */
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            iv = POPIV(ss,ix);
            TOPIV(nss,ix) = iv;
            break;
        case SAVEt_TMPSFLOOR:
            iv = POPIV(ss,ix);
            TOPIV(nss,ix) = iv;
            break;
        case SAVEt_HPTR:			/* HV* reference */
        case SAVEt_APTR:			/* AV* reference */
        case SAVEt_SPTR:			/* SV* reference */
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup(sv, param);
            break;
        case SAVEt_VPTR:			/* random* reference */
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            /* FALLTHROUGH */
        case SAVEt_STRLEN_SMALL:
        case SAVEt_INT_SMALL:
        case SAVEt_I32_SMALL:
        case SAVEt_I16:				/* I16 reference */
        case SAVEt_I8:				/* I8 reference */
        case SAVEt_BOOL:
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            break;
        case SAVEt_GENERIC_PVREF:		/* generic char* */
        case SAVEt_PPTR:			/* char* reference */
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            c = (char*)POPPTR(ss,ix);
            TOPPTR(nss,ix) = pv_dup(c);
            break;
        case SAVEt_GP:				/* scalar reference */
            gp = (GP*)POPPTR(ss,ix);
            TOPPTR(nss,ix) = gp = gp_dup(gp, param);
            (void)GpREFCNT_inc(gp);
            gv = (const GV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = gv_dup_inc(gv, param);
            break;
        case SAVEt_FREEOP:
            ptr = POPPTR(ss,ix);
            if (ptr && (((OP*)ptr)->op_private & OPpREFCOUNTED)) {
                /* these are assumed to be refcounted properly */
                OP *o;
                switch (((OP*)ptr)->op_type) {
                case OP_LEAVESUB:
                case OP_LEAVESUBLV:
                case OP_LEAVEEVAL:
                case OP_LEAVE:
                case OP_SCOPE:
                case OP_LEAVEWRITE:
                    TOPPTR(nss,ix) = ptr;
                    o = (OP*)ptr;
                    OP_REFCNT_LOCK;
                    (void) OpREFCNT_inc(o);
                    OP_REFCNT_UNLOCK;
                    break;
                default:
                    TOPPTR(nss,ix) = NULL;
                    break;
                }
            }
            else
                TOPPTR(nss,ix) = NULL;
            break;
        case SAVEt_FREECOPHH:
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = cophh_copy((COPHH *)ptr);
            break;
        case SAVEt_ADELETE:
            av = (const AV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = av_dup_inc(av, param);
            i = POPINT(ss,ix);
            TOPINT(nss,ix) = i;
            break;
        case SAVEt_DELETE:
            hv = (const HV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = hv_dup_inc(hv, param);
            i = POPINT(ss,ix);
            TOPINT(nss,ix) = i;
            /* FALLTHROUGH */
        case SAVEt_FREEPV:
            c = (char*)POPPTR(ss,ix);
            TOPPTR(nss,ix) = pv_dup_inc(c);
            break;
        case SAVEt_FREERCPV:
            c = (char *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = rcpv_copy(c);
            break;
        case SAVEt_STACK_POS:		/* Position on Perl stack */
            i = POPINT(ss,ix);
            TOPINT(nss,ix) = i;
            break;
        case SAVEt_DESTRUCTOR:
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);	/* XXX quite arbitrary */
            dptr = POPDPTR(ss,ix);
            TOPDPTR(nss,ix) = DPTR2FPTR(void (*)(void*),
                                        any_dup(FPTR2DPTR(void *, dptr),
                                                proto_perl));
            break;
        case SAVEt_DESTRUCTOR_X:
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);	/* XXX quite arbitrary */
            dxptr = POPDXPTR(ss,ix);
            TOPDXPTR(nss,ix) = DPTR2FPTR(void (*)(pTHX_ void*),
                                         any_dup(FPTR2DPTR(void *, dxptr),
                                                 proto_perl));
            break;
        case SAVEt_REGCONTEXT:
        case SAVEt_ALLOC:
            ix -= uv >> SAVE_TIGHT_SHIFT;
            break;
        case SAVEt_AELEM:		/* array element */
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = SvREFCNT_inc(sv_dup_inc(sv, param));
            iv = POPIV(ss,ix);
            TOPIV(nss,ix) = iv;
            av = (const AV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = av_dup_inc(av, param);
            break;
        case SAVEt_OP:
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = ptr;
            break;
        case SAVEt_HINTS_HH:
            hv = (const HV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = hv_dup_inc(hv, param);
            /* FALLTHROUGH */
        case SAVEt_HINTS:
            ptr = POPPTR(ss,ix);
            ptr = cophh_copy((COPHH*)ptr);
            TOPPTR(nss,ix) = ptr;
            i = POPINT(ss,ix);
            TOPINT(nss,ix) = i;
            break;
        case SAVEt_PADSV_AND_MORTALIZE:
            longval = (long)POPLONG(ss,ix);
            TOPLONG(nss,ix) = longval;
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = any_dup(ptr, proto_perl);
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup_inc(sv, param);
            break;
        case SAVEt_SET_SVFLAGS:
            i = POPINT(ss,ix);
            TOPINT(nss,ix) = i;
            i = POPINT(ss,ix);
            TOPINT(nss,ix) = i;
            sv = (const SV *)POPPTR(ss,ix);
            TOPPTR(nss,ix) = sv_dup(sv, param);
            break;
        case SAVEt_CURCOP_WARNINGS:
            /* FALLTHROUGH */
        case SAVEt_COMPILE_WARNINGS:
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = DUP_WARNINGS((char*)ptr);
            break;
        case SAVEt_PARSER:
            ptr = POPPTR(ss,ix);
            TOPPTR(nss,ix) = parser_dup((const yy_parser*)ptr, param);
            break;
        default:
            Perl_croak(aTHX_
                       "panic: ss_dup inconsistency (%" IVdf ")", (IV) type);
        }
    }

    return nss;
}


/* if sv is a stash, call $class->CLONE_SKIP(), and set the SVphv_CLONEABLE
 * flag to the result. This is done for each stash before cloning starts,
 * so we know which stashes want their objects cloned */

static void
do_mark_cloneable_stash(pTHX_ SV *const sv)
{
    const HEK * const hvname = HvNAME_HEK((const HV *)sv);
    if (hvname) {
        GV* const cloner = gv_fetchmethod_autoload(MUTABLE_HV(sv), "CLONE_SKIP", 0);
        SvFLAGS(sv) |= SVphv_CLONEABLE; /* clone objects by default */
        if (cloner && GvCV(cloner)) {
            dSP;
            UV status;

            ENTER;
            SAVETMPS;
            PUSHMARK(SP);
            mXPUSHs(newSVhek(hvname));
            PUTBACK;
            call_sv(MUTABLE_SV(GvCV(cloner)), G_SCALAR);
            SPAGAIN;
            status = POPu;
            PUTBACK;
            FREETMPS;
            LEAVE;
            if (status)
                SvFLAGS(sv) &= ~SVphv_CLONEABLE;
        }
    }
}



/*
=for apidoc perl_clone

Create and return a new interpreter by cloning the current one.

C<perl_clone> takes these flags as parameters:

C<CLONEf_COPY_STACKS> - is used to, well, copy the stacks also,
without it we only clone the data and zero the stacks,
with it we copy the stacks and the new perl interpreter is
ready to run at the exact same point as the previous one.
The pseudo-fork code uses C<COPY_STACKS> while the
threads->create doesn't.

C<CLONEf_KEEP_PTR_TABLE> -
C<perl_clone> keeps a ptr_table with the pointer of the old
variable as a key and the new variable as a value,
this allows it to check if something has been cloned and not
clone it again, but rather just use the value and increase the
refcount.
If C<KEEP_PTR_TABLE> is not set then C<perl_clone> will kill the ptr_table
using the function S<C<ptr_table_free(PL_ptr_table); PL_ptr_table = NULL;>>.
A reason to keep it around is if you want to dup some of your own
variables which are outside the graph that perl scans.

C<CLONEf_CLONE_HOST> -
This is a win32 thing, it is ignored on unix, it tells perl's
win32host code (which is c++) to clone itself, this is needed on
win32 if you want to run two threads at the same time,
if you just want to do some stuff in a separate perl interpreter
and then throw it away and return to the original one,
you don't need to do anything.

=cut
*/

/* XXX the above needs expanding by someone who actually understands it ! */
EXTERN_C PerlInterpreter *
perl_clone_host(PerlInterpreter* proto_perl, UV flags);

PerlInterpreter *
perl_clone(PerlInterpreter *proto_perl, UV flags)
{
#ifdef PERL_IMPLICIT_SYS

    PERL_ARGS_ASSERT_PERL_CLONE;

   /* perlhost.h so we need to call into it
   to clone the host, CPerlHost should have a c interface, sky */

#ifndef __amigaos4__
   if (flags & CLONEf_CLONE_HOST) {
       return perl_clone_host(proto_perl,flags);
   }
#endif
   return perl_clone_using(proto_perl, flags,
                            proto_perl->IMem,
                            proto_perl->IMemShared,
                            proto_perl->IMemParse,
                            proto_perl->IEnv,
                            proto_perl->IStdIO,
                            proto_perl->ILIO,
                            proto_perl->IDir,
                            proto_perl->ISock,
                            proto_perl->IProc);
}

PerlInterpreter *
perl_clone_using(PerlInterpreter *proto_perl, UV flags,
                 struct IPerlMem* ipM, struct IPerlMem* ipMS,
                 struct IPerlMem* ipMP, struct IPerlEnv* ipE,
                 struct IPerlStdIO* ipStd, struct IPerlLIO* ipLIO,
                 struct IPerlDir* ipD, struct IPerlSock* ipS,
                 struct IPerlProc* ipP)
{
    /* XXX many of the string copies here can be optimized if they're
     * constants; they need to be allocated as common memory and just
     * their pointers copied. */

    IV i;
    CLONE_PARAMS clone_params;
    CLONE_PARAMS* const param = &clone_params;

    PerlInterpreter * const my_perl = (PerlInterpreter*)(*ipM->pMalloc)(ipM, sizeof(PerlInterpreter));

    PERL_ARGS_ASSERT_PERL_CLONE_USING;
#else		/* !PERL_IMPLICIT_SYS */
    IV i;
    CLONE_PARAMS clone_params;
    CLONE_PARAMS* param = &clone_params;
    PerlInterpreter * const my_perl = (PerlInterpreter*)PerlMem_malloc(sizeof(PerlInterpreter));

    PERL_ARGS_ASSERT_PERL_CLONE;
#endif		/* PERL_IMPLICIT_SYS */

    /* for each stash, determine whether its objects should be cloned */
    S_visit(proto_perl, do_mark_cloneable_stash, SVt_PVHV, SVTYPEMASK);
    my_perl->Iphase = PERL_PHASE_CONSTRUCT;
    PERL_SET_THX(my_perl);

#ifdef DEBUGGING
    PoisonNew(my_perl, 1, PerlInterpreter);
    PL_op = NULL;
    PL_curcop = NULL;
    PL_defstash = NULL; /* may be used by perl malloc() */
    PL_markstack = 0;
    PL_scopestack = 0;
    PL_scopestack_name = 0;
    PL_savestack = 0;
    PL_savestack_ix = 0;
    PL_savestack_max = -1;
    PL_sig_pending = 0;
    PL_parser = NULL;
    PL_eval_begin_nest_depth = proto_perl->Ieval_begin_nest_depth;
    Zero(&PL_debug_pad, 1, struct perl_debug_pad);
    Zero(&PL_padname_undef, 1, PADNAME);
    Zero(&PL_padname_const, 1, PADNAME);
#  ifdef DEBUG_LEAKING_SCALARS
    PL_sv_serial = (((UV)my_perl >> 2) & 0xfff) * 1000000;
#  endif
#  ifdef PERL_TRACE_OPS
    Zero(PL_op_exec_cnt, OP_max+2, UV);
#  endif
#else	/* !DEBUGGING */
    Zero(my_perl, 1, PerlInterpreter);
#endif	/* DEBUGGING */

#ifdef PERL_IMPLICIT_SYS
    /* host pointers */
    PL_Mem		= ipM;
    PL_MemShared	= ipMS;
    PL_MemParse		= ipMP;
    PL_Env		= ipE;
    PL_StdIO		= ipStd;
    PL_LIO		= ipLIO;
    PL_Dir		= ipD;
    PL_Sock		= ipS;
    PL_Proc		= ipP;
#endif		/* PERL_IMPLICIT_SYS */


    param->flags = flags;
    /* Nothing in the core code uses this, but we make it available to
       extensions (using mg_dup).  */
    param->proto_perl = proto_perl;
    /* Likely nothing will use this, but it is initialised to be consistent
       with Perl_clone_params_new().  */
    param->new_perl = my_perl;
    param->unreferenced = NULL;


    INIT_TRACK_MEMPOOL(my_perl->Imemory_debug_header, my_perl);

    PL_body_arenas = NULL;
    Zero(&PL_body_roots, 1, PL_body_roots);

    PL_sv_count		= 0;
    PL_sv_root		= NULL;
    PL_sv_arenaroot	= NULL;

    PL_debug		= proto_perl->Idebug;

    /* dbargs array probably holds garbage */
    PL_dbargs		= NULL;

    PL_compiling = proto_perl->Icompiling;

    /* pseudo environmental stuff */
    PL_origargc		= proto_perl->Iorigargc;
    PL_origargv		= proto_perl->Iorigargv;

#ifndef NO_TAINT_SUPPORT
    /* Set tainting stuff before PerlIO_debug can possibly get called */
    PL_tainting		= proto_perl->Itainting;
    PL_taint_warn	= proto_perl->Itaint_warn;
#else
    PL_tainting         = FALSE;
    PL_taint_warn	= FALSE;
#endif

    PL_minus_c		= proto_perl->Iminus_c;

    PL_localpatches	= proto_perl->Ilocalpatches;
    PL_splitstr		= SAVEPV(proto_perl->Isplitstr);
    PL_minus_n		= proto_perl->Iminus_n;
    PL_minus_p		= proto_perl->Iminus_p;
    PL_minus_l		= proto_perl->Iminus_l;
    PL_minus_a		= proto_perl->Iminus_a;
    PL_minus_E		= proto_perl->Iminus_E;
    PL_minus_F		= proto_perl->Iminus_F;
    PL_doswitches	= proto_perl->Idoswitches;
    PL_dowarn		= proto_perl->Idowarn;
#ifdef PERL_SAWAMPERSAND
    PL_sawampersand	= proto_perl->Isawampersand;
#endif
    PL_unsafe		= proto_perl->Iunsafe;
    PL_perldb		= proto_perl->Iperldb;
    PL_perl_destruct_level = proto_perl->Iperl_destruct_level;
    PL_exit_flags       = proto_perl->Iexit_flags;

    /* XXX time(&PL_basetime) when asked for? */
    PL_basetime		= proto_perl->Ibasetime;

    PL_maxsysfd		= proto_perl->Imaxsysfd;
    PL_statusvalue	= proto_perl->Istatusvalue;
#ifdef __VMS
    PL_statusvalue_vms	= proto_perl->Istatusvalue_vms;
#else
    PL_statusvalue_posix = proto_perl->Istatusvalue_posix;
#endif

    /* RE engine related */
    PL_regmatch_slab	= NULL;
    PL_reg_curpm	= NULL;

    PL_sub_generation	= proto_perl->Isub_generation;

    /* funky return mechanisms */
    PL_forkprocess	= proto_perl->Iforkprocess;

    /* internal state */
    PL_main_start	= proto_perl->Imain_start;
    PL_eval_root	= proto_perl->Ieval_root;
    PL_eval_start	= proto_perl->Ieval_start;

    PL_filemode		= proto_perl->Ifilemode;
    PL_lastfd		= proto_perl->Ilastfd;
    PL_oldname		= proto_perl->Ioldname;		/* XXX not quite right */
    PL_gensym		= proto_perl->Igensym;

    PL_laststatval	= proto_perl->Ilaststatval;
    PL_laststype	= proto_perl->Ilaststype;
    PL_mess_sv		= NULL;

    PL_profiledata	= NULL;

    PL_generation	= proto_perl->Igeneration;

    PL_in_clean_objs	= proto_perl->Iin_clean_objs;
    PL_in_clean_all	= proto_perl->Iin_clean_all;

    PL_delaymagic_uid	= proto_perl->Idelaymagic_uid;
    PL_delaymagic_euid	= proto_perl->Idelaymagic_euid;
    PL_delaymagic_gid	= proto_perl->Idelaymagic_gid;
    PL_delaymagic_egid	= proto_perl->Idelaymagic_egid;
    PL_nomemok		= proto_perl->Inomemok;
    PL_an		= proto_perl->Ian;
    PL_evalseq		= proto_perl->Ievalseq;
    PL_origalen		= proto_perl->Iorigalen;

    PL_sighandlerp	= proto_perl->Isighandlerp;
    PL_sighandler1p	= proto_perl->Isighandler1p;
    PL_sighandler3p	= proto_perl->Isighandler3p;

    PL_runops		= proto_perl->Irunops;

    PL_subline		= proto_perl->Isubline;

    PL_cv_has_eval	= proto_perl->Icv_has_eval;
    /* Unicode features (see perlrun/-C) */
    PL_unicode		= proto_perl->Iunicode;

    /* Pre-5.8 signals control */
    PL_signals		= proto_perl->Isignals;

    /* times() ticks per second */
    PL_clocktick	= proto_perl->Iclocktick;

    /* Recursion stopper for PerlIO_find_layer */
    PL_in_load_module	= proto_perl->Iin_load_module;

    /* Not really needed/useful since the reenrant_retint is "volatile",
     * but do it for consistency's sake. */
    PL_reentrant_retint	= proto_perl->Ireentrant_retint;

    /* Hooks to shared SVs and locks. */
    PL_sharehook	= proto_perl->Isharehook;
    PL_lockhook		= proto_perl->Ilockhook;
    PL_unlockhook	= proto_perl->Iunlockhook;
    PL_threadhook	= proto_perl->Ithreadhook;
    PL_destroyhook	= proto_perl->Idestroyhook;
    PL_signalhook	= proto_perl->Isignalhook;

    PL_globhook		= proto_perl->Iglobhook;

    PL_srand_called	= proto_perl->Isrand_called;
    Copy(&(proto_perl->Irandom_state), &PL_random_state, 1, PL_RANDOM_STATE_TYPE);
    PL_srand_override   = proto_perl->Isrand_override;
    PL_srand_override_next = proto_perl->Isrand_override_next;

    if (flags & CLONEf_COPY_STACKS) {
        /* next allocation will be PL_tmps_stack[PL_tmps_ix+1] */
        PL_tmps_ix		= proto_perl->Itmps_ix;
        PL_tmps_max		= proto_perl->Itmps_max;
        PL_tmps_floor		= proto_perl->Itmps_floor;

        /* next push_scope()/ENTER sets PL_scopestack[PL_scopestack_ix]
         * NOTE: unlike the others! */
        PL_scopestack_ix	= proto_perl->Iscopestack_ix;
        PL_scopestack_max	= proto_perl->Iscopestack_max;

        /* next SSPUSHFOO() sets PL_savestack[PL_savestack_ix]
         * NOTE: unlike the others! */
        PL_savestack_ix		= proto_perl->Isavestack_ix;
        PL_savestack_max	= proto_perl->Isavestack_max;
    }

    PL_start_env	= proto_perl->Istart_env;	/* XXXXXX */
    PL_top_env		= &PL_start_env;

    PL_op		= proto_perl->Iop;

    PL_Sv		= NULL;
    PL_Xpv		= (XPV*)NULL;
    my_perl->Ina	= proto_perl->Ina;

    PL_statcache	= proto_perl->Istatcache;

#ifndef NO_TAINT_SUPPORT
    PL_tainted		= proto_perl->Itainted;
#else
    PL_tainted          = FALSE;
#endif
    PL_curpm		= proto_perl->Icurpm;	/* XXX No PMOP ref count */

    PL_chopset		= proto_perl->Ichopset;	/* XXX never deallocated */

    PL_restartjmpenv	= proto_perl->Irestartjmpenv;
    PL_restartop	= proto_perl->Irestartop;
    PL_in_eval		= proto_perl->Iin_eval;
    PL_delaymagic	= proto_perl->Idelaymagic;
    PL_phase		= proto_perl->Iphase;
    PL_localizing	= proto_perl->Ilocalizing;

    PL_hv_fetch_ent_mh	= NULL;
    PL_modcount		= proto_perl->Imodcount;
    PL_lastgotoprobe	= NULL;
    PL_dumpindent	= proto_perl->Idumpindent;

    PL_efloatbuf	= NULL;		/* reinits on demand */
    PL_efloatsize	= 0;			/* reinits on demand */

    /* regex stuff */

    PL_colorset		= 0;		/* reinits PL_colors[] */
    /*PL_colors[6]	= {0,0,0,0,0,0};*/

    /* Pluggable optimizer */
    PL_peepp		= proto_perl->Ipeepp;
    PL_rpeepp		= proto_perl->Irpeepp;
    /* op_free() hook */
    PL_opfreehook	= proto_perl->Iopfreehook;

#  ifdef PERL_MEM_LOG
    Zero(PL_mem_log, sizeof(PL_mem_log), char);
#  endif

#ifdef USE_REENTRANT_API
    /* XXX: things like -Dm will segfault here in perlio, but doing
     *  PERL_SET_CONTEXT(proto_perl);
     * breaks too many other things
     */
    Perl_reentrant_init(aTHX);
#endif

    /* create SV map for pointer relocation */
    PL_ptr_table = ptr_table_new();

    /* initialize these special pointers as early as possible */
    init_constants();
    ptr_table_store(PL_ptr_table, &proto_perl->Isv_undef, &PL_sv_undef);
    ptr_table_store(PL_ptr_table, &proto_perl->Isv_no, &PL_sv_no);
    ptr_table_store(PL_ptr_table, &proto_perl->Isv_zero, &PL_sv_zero);
    ptr_table_store(PL_ptr_table, &proto_perl->Isv_yes, &PL_sv_yes);
    ptr_table_store(PL_ptr_table, &proto_perl->Ipadname_const,
                    &PL_padname_const);

    /* create (a non-shared!) shared string table */
    PL_strtab		= newHV();
    HvSHAREKEYS_off(PL_strtab);
    hv_ksplit(PL_strtab, HvTOTALKEYS(proto_perl->Istrtab));
    ptr_table_store(PL_ptr_table, proto_perl->Istrtab, PL_strtab);

    Zero(PL_sv_consts, SV_CONSTS_COUNT, SV*);

    PL_compiling.cop_file    = rcpv_copy(proto_perl->Icompiling.cop_file);

    ptr_table_store(PL_ptr_table, &proto_perl->Icompiling, &PL_compiling);
    PL_compiling.cop_warnings = DUP_WARNINGS(PL_compiling.cop_warnings);
    CopHINTHASH_set(&PL_compiling, cophh_copy(CopHINTHASH_get(&PL_compiling)));
    PL_curcop		= (COP*)any_dup(proto_perl->Icurcop, proto_perl);

    param->stashes      = newAV();  /* Setup array of objects to call clone on */
    /* This makes no difference to the implementation, as it always pushes
       and shifts pointers to other SVs without changing their reference
       count, with the array becoming empty before it is freed. However, it
       makes it conceptually clear what is going on, and will avoid some
       work inside av.c, filling slots between AvFILL() and AvMAX() with
       &PL_sv_undef, and SvREFCNT_dec()ing those.  */
    AvREAL_off(param->stashes);

    if (!(flags & CLONEf_COPY_STACKS)) {
        param->unreferenced = newAV();
    }

#ifdef PERLIO_LAYERS
    /* Clone PerlIO tables as soon as we can handle general xx_dup() */
    PerlIO_clone(aTHX_ proto_perl, param);
#endif

    PL_envgv		= gv_dup_inc(proto_perl->Ienvgv, param);
    PL_incgv		= gv_dup_inc(proto_perl->Iincgv, param);
    PL_hintgv		= gv_dup_inc(proto_perl->Ihintgv, param);
    PL_origfilename	= SAVEPV(proto_perl->Iorigfilename);
    PL_xsubfilename	= proto_perl->Ixsubfilename;
    PL_diehook		= sv_dup_inc(proto_perl->Idiehook, param);
    PL_warnhook		= sv_dup_inc(proto_perl->Iwarnhook, param);

    PL_hook__require__before = sv_dup_inc(proto_perl->Ihook__require__before, param);
    PL_hook__require__after  = sv_dup_inc(proto_perl->Ihook__require__after, param);

    /* switches */
    PL_patchlevel	= sv_dup_inc(proto_perl->Ipatchlevel, param);
    PL_inplace		= SAVEPV(proto_perl->Iinplace);
    PL_e_script		= sv_dup_inc(proto_perl->Ie_script, param);

    /* magical thingies */

    SvPVCLEAR(PERL_DEBUG_PAD(0));        /* For regex debugging. */
    SvPVCLEAR(PERL_DEBUG_PAD(1));        /* ext/re needs these */
    SvPVCLEAR(PERL_DEBUG_PAD(2));        /* even without DEBUGGING. */


    /* Clone the regex array */
    /* ORANGE FIXME for plugins, probably in the SV dup code.
       newSViv(PTR2IV(CALLREGDUPE(
       INT2PTR(REGEXP *, SvIVX(regex)), param))))
    */
    PL_regex_padav = av_dup_inc(proto_perl->Iregex_padav, param);
    PL_regex_pad = AvARRAY(PL_regex_padav);

    PL_stashpadmax	= proto_perl->Istashpadmax;
    PL_stashpadix	= proto_perl->Istashpadix ;
    Newx(PL_stashpad, PL_stashpadmax, HV *);
    {
        PADOFFSET o = 0;
        for (; o < PL_stashpadmax; ++o)
            PL_stashpad[o] = hv_dup(proto_perl->Istashpad[o], param);
    }

    /* shortcuts to various I/O objects */
    PL_ofsgv            = gv_dup_inc(proto_perl->Iofsgv, param);
    PL_stdingv		= gv_dup(proto_perl->Istdingv, param);
    PL_stderrgv		= gv_dup(proto_perl->Istderrgv, param);
    PL_defgv		= gv_dup(proto_perl->Idefgv, param);
    PL_argvgv		= gv_dup_inc(proto_perl->Iargvgv, param);
    PL_argvoutgv	= gv_dup(proto_perl->Iargvoutgv, param);
    PL_argvout_stack	= av_dup_inc(proto_perl->Iargvout_stack, param);

    /* shortcuts to regexp stuff */
    PL_replgv		= gv_dup_inc(proto_perl->Ireplgv, param);

    /* shortcuts to misc objects */
    PL_errgv		= gv_dup(proto_perl->Ierrgv, param);

    /* shortcuts to debugging objects */
    PL_DBgv		= gv_dup_inc(proto_perl->IDBgv, param);
    PL_DBline		= gv_dup_inc(proto_perl->IDBline, param);
    PL_DBsub		= gv_dup_inc(proto_perl->IDBsub, param);
    PL_DBsingle		= sv_dup(proto_perl->IDBsingle, param);
    PL_DBtrace		= sv_dup(proto_perl->IDBtrace, param);
    PL_DBsignal		= sv_dup(proto_perl->IDBsignal, param);
    Copy(proto_perl->IDBcontrol, PL_DBcontrol, DBVARMG_COUNT, IV);

    /* symbol tables */
    PL_defstash		= hv_dup_inc(proto_perl->Idefstash, param);
    PL_curstash		= hv_dup_inc(proto_perl->Icurstash, param);
    PL_debstash		= hv_dup(proto_perl->Idebstash, param);
    PL_globalstash	= hv_dup(proto_perl->Iglobalstash, param);
    PL_curstname	= sv_dup_inc(proto_perl->Icurstname, param);

    PL_beginav		= av_dup_inc(proto_perl->Ibeginav, param);
    PL_beginav_save	= av_dup_inc(proto_perl->Ibeginav_save, param);
    PL_checkav_save	= av_dup_inc(proto_perl->Icheckav_save, param);
    PL_unitcheckav      = av_dup_inc(proto_perl->Iunitcheckav, param);
    PL_unitcheckav_save = av_dup_inc(proto_perl->Iunitcheckav_save, param);
    PL_endav		= av_dup_inc(proto_perl->Iendav, param);
    PL_checkav		= av_dup_inc(proto_perl->Icheckav, param);
    PL_initav		= av_dup_inc(proto_perl->Iinitav, param);
    PL_savebegin	= proto_perl->Isavebegin;

    PL_isarev		= hv_dup_inc(proto_perl->Iisarev, param);

    /* subprocess state */
    PL_fdpid		= av_dup_inc(proto_perl->Ifdpid, param);

    if (proto_perl->Iop_mask)
        PL_op_mask	= SAVEPVN(proto_perl->Iop_mask, PL_maxo);
    else
        PL_op_mask 	= NULL;
    /* PL_asserting        = proto_perl->Iasserting; */

    /* current interpreter roots */
    PL_main_cv		= cv_dup_inc(proto_perl->Imain_cv, param);
    OP_REFCNT_LOCK;
    PL_main_root	= OpREFCNT_inc(proto_perl->Imain_root);
    OP_REFCNT_UNLOCK;

    /* runtime control stuff */
    PL_curcopdb		= (COP*)any_dup(proto_perl->Icurcopdb, proto_perl);

    PL_preambleav	= av_dup_inc(proto_perl->Ipreambleav, param);

    PL_ors_sv		= sv_dup_inc(proto_perl->Iors_sv, param);

    /* interpreter atexit processing */
    PL_exitlistlen	= proto_perl->Iexitlistlen;
    if (PL_exitlistlen) {
        Newx(PL_exitlist, PL_exitlistlen, PerlExitListEntry);
        Copy(proto_perl->Iexitlist, PL_exitlist, PL_exitlistlen, PerlExitListEntry);
    }
    else
        PL_exitlist	= (PerlExitListEntry*)NULL;

    PL_my_cxt_size = proto_perl->Imy_cxt_size;
    if (PL_my_cxt_size) {
        Newx(PL_my_cxt_list, PL_my_cxt_size, void *);
        Copy(proto_perl->Imy_cxt_list, PL_my_cxt_list, PL_my_cxt_size, void *);
    }
    else {
        PL_my_cxt_list	= (void**)NULL;
    }
    PL_modglobal	= hv_dup_inc(proto_perl->Imodglobal, param);
    PL_custom_op_names  = hv_dup_inc(proto_perl->Icustom_op_names,param);
    PL_custom_op_descs  = hv_dup_inc(proto_perl->Icustom_op_descs,param);
    PL_custom_ops	= hv_dup_inc(proto_perl->Icustom_ops, param);

    PL_compcv			= cv_dup(proto_perl->Icompcv, param);

    PAD_CLONE_VARS(proto_perl, param);

#ifdef HAVE_INTERP_INTERN
    sys_intern_dup(&proto_perl->Isys_intern, &PL_sys_intern);
#endif

    PL_DBcv		= cv_dup(proto_perl->IDBcv, param);

#ifdef PERL_USES_PL_PIDSTATUS
    PL_pidstatus	= newHV();			/* XXX flag for cloning? */
#endif
    PL_osname		= SAVEPV(proto_perl->Iosname);
    PL_parser		= parser_dup(proto_perl->Iparser, param);

    /* XXX this only works if the saved cop has already been cloned */
    if (proto_perl->Iparser) {
        PL_parser->saved_curcop = (COP*)any_dup(
                                    proto_perl->Iparser->saved_curcop,
                                    proto_perl);
    }

    PL_subname		= sv_dup_inc(proto_perl->Isubname, param);

#ifdef USE_PL_CURLOCALES
    for (i = 0; i < (int) C_ARRAY_LENGTH(PL_curlocales); i++) {
        PL_curlocales[i] = SAVEPV("C");
    }
#endif
#ifdef USE_PL_CUR_LC_ALL
    PL_cur_LC_ALL = SAVEPV("C");
#endif
#ifdef USE_LOCALE_CTYPE
    Copy(PL_fold, PL_fold_locale, 256, U8);

    /* Should we warn if uses locale? */
    PL_ctype_name	= SAVEPV("C");
    PL_warn_locale      = sv_dup_inc(proto_perl->Iwarn_locale, param);
    PL_in_utf8_CTYPE_locale   = false;
    PL_in_utf8_turkic_locale  = false;
#endif

    /* Did the locale setup indicate UTF-8? */
    PL_utf8locale	= false;

#ifdef USE_LOCALE_COLLATE
    PL_in_utf8_COLLATE_locale = false;
    PL_collation_name	= SAVEPV("C");
    PL_collation_ix	= proto_perl->Icollation_ix;
    PL_collation_standard = true;
    PL_collxfrm_base	= 0;
    PL_collxfrm_mult	= 0;
    PL_strxfrm_max_cp   = 0;
    PL_strxfrm_is_behaved = proto_perl->Istrxfrm_is_behaved;
    PL_strxfrm_NUL_replacement = '\0';
#endif /* USE_LOCALE_COLLATE */

#ifdef USE_LOCALE_THREADS
    assert(PL_locale_mutex_depth <= 0);
    PL_locale_mutex_depth = 0;
#endif

#ifdef USE_LOCALE_NUMERIC
    PL_numeric_name	= SAVEPV("C");
    PL_numeric_radix_sv	= newSVpvs(".");
    PL_underlying_radix_sv = newSVpvs(".");
    PL_numeric_standard	= true;
    PL_numeric_underlying = true;
    PL_numeric_underlying_is_standard = true;

#  if defined(USE_POSIX_2008_LOCALE)
    PL_underlying_numeric_obj = NULL;
#  endif
#endif /* !USE_LOCALE_NUMERIC */
#if defined(USE_POSIX_2008_LOCALE)
    PL_scratch_locale_obj = NULL;
    PL_cur_locale_obj = PL_C_locale_obj;
#endif

#ifdef HAS_MBRLEN
    PL_mbrlen_ps = proto_perl->Imbrlen_ps;
#endif
#ifdef HAS_MBRTOWC
    PL_mbrtowc_ps = proto_perl->Imbrtowc_ps;
#endif
#ifdef HAS_WCRTOMB
    PL_wcrtomb_ps = proto_perl->Iwcrtomb_ps;
#endif

    PL_langinfo_buf = NULL;
    PL_langinfo_bufsize = 0;

    PL_setlocale_buf = NULL;
    PL_setlocale_bufsize = 0;

    PL_stdize_locale_buf = NULL;
    PL_stdize_locale_bufsize = 0;

    /* Unicode inversion lists */

    PL_AboveLatin1            = sv_dup_inc(proto_perl->IAboveLatin1, param);
    PL_Assigned_invlist       = sv_dup_inc(proto_perl->IAssigned_invlist, param);
    PL_GCB_invlist            = sv_dup_inc(proto_perl->IGCB_invlist, param);
    PL_HasMultiCharFold       = sv_dup_inc(proto_perl->IHasMultiCharFold, param);
    PL_InMultiCharFold        = sv_dup_inc(proto_perl->IInMultiCharFold, param);
    PL_Latin1                 = sv_dup_inc(proto_perl->ILatin1, param);
    PL_LB_invlist             = sv_dup_inc(proto_perl->ILB_invlist, param);
    PL_SB_invlist             = sv_dup_inc(proto_perl->ISB_invlist, param);
    PL_SCX_invlist            = sv_dup_inc(proto_perl->ISCX_invlist, param);
    PL_UpperLatin1            = sv_dup_inc(proto_perl->IUpperLatin1, param);
    PL_in_some_fold           = sv_dup_inc(proto_perl->Iin_some_fold, param);
    PL_utf8_foldclosures      = sv_dup_inc(proto_perl->Iutf8_foldclosures, param);
    PL_utf8_idcont            = sv_dup_inc(proto_perl->Iutf8_idcont, param);
    PL_utf8_idstart           = sv_dup_inc(proto_perl->Iutf8_idstart, param);
    PL_utf8_perl_idcont       = sv_dup_inc(proto_perl->Iutf8_perl_idcont, param);
    PL_utf8_perl_idstart      = sv_dup_inc(proto_perl->Iutf8_perl_idstart, param);
    PL_utf8_xidcont           = sv_dup_inc(proto_perl->Iutf8_xidcont, param);
    PL_utf8_xidstart          = sv_dup_inc(proto_perl->Iutf8_xidstart, param);
    PL_WB_invlist             = sv_dup_inc(proto_perl->IWB_invlist, param);
    for (i = 0; i < POSIX_CC_COUNT; i++) {
        PL_XPosix_ptrs[i]     = sv_dup_inc(proto_perl->IXPosix_ptrs[i], param);
        if (i != CC_CASED_ && i != CC_VERTSPACE_) {
            PL_Posix_ptrs[i]  = sv_dup_inc(proto_perl->IPosix_ptrs[i], param);
        }
    }
    PL_Posix_ptrs[CC_CASED_]  = PL_Posix_ptrs[CC_ALPHA_];
    PL_Posix_ptrs[CC_VERTSPACE_] = NULL;

    PL_utf8_toupper           = sv_dup_inc(proto_perl->Iutf8_toupper, param);
    PL_utf8_totitle           = sv_dup_inc(proto_perl->Iutf8_totitle, param);
    PL_utf8_tolower           = sv_dup_inc(proto_perl->Iutf8_tolower, param);
    PL_utf8_tofold            = sv_dup_inc(proto_perl->Iutf8_tofold, param);
    PL_utf8_tosimplefold      = sv_dup_inc(proto_perl->Iutf8_tosimplefold, param);
    PL_utf8_charname_begin    = sv_dup_inc(proto_perl->Iutf8_charname_begin, param);
    PL_utf8_charname_continue = sv_dup_inc(proto_perl->Iutf8_charname_continue, param);
    PL_utf8_mark              = sv_dup_inc(proto_perl->Iutf8_mark, param);
    PL_InBitmap               = sv_dup_inc(proto_perl->IInBitmap, param);
    PL_CCC_non0_non230        = sv_dup_inc(proto_perl->ICCC_non0_non230, param);
    PL_Private_Use            = sv_dup_inc(proto_perl->IPrivate_Use, param);

#if 0
    PL_seen_deprecated_macro = hv_dup_inc(proto_perl->Iseen_deprecated_macro, param);
#endif

    if (proto_perl->Ipsig_pend) {
        Newxz(PL_psig_pend, SIG_SIZE, int);
    }
    else {
        PL_psig_pend	= (int*)NULL;
    }

    if (proto_perl->Ipsig_name) {
        Newx(PL_psig_name, 2 * SIG_SIZE, SV*);
        sv_dup_inc_multiple(proto_perl->Ipsig_name, PL_psig_name, 2 * SIG_SIZE,
                            param);
        PL_psig_ptr = PL_psig_name + SIG_SIZE;
    }
    else {
        PL_psig_ptr	= (SV**)NULL;
        PL_psig_name	= (SV**)NULL;
    }

    if (flags & CLONEf_COPY_STACKS) {
        Newx(PL_tmps_stack, PL_tmps_max, SV*);
        sv_dup_inc_multiple(proto_perl->Itmps_stack, PL_tmps_stack,
                            PL_tmps_ix+1, param);

        /* next PUSHMARK() sets *(PL_markstack_ptr+1) */
        i = proto_perl->Imarkstack_max - proto_perl->Imarkstack;
        Newx(PL_markstack, i, I32);
        PL_markstack_max	= PL_markstack + (proto_perl->Imarkstack_max
                                                  - proto_perl->Imarkstack);
        PL_markstack_ptr	= PL_markstack + (proto_perl->Imarkstack_ptr
                                                  - proto_perl->Imarkstack);
        Copy(proto_perl->Imarkstack, PL_markstack,
             PL_markstack_ptr - PL_markstack + 1, I32);

        /* next push_scope()/ENTER sets PL_scopestack[PL_scopestack_ix]
         * NOTE: unlike the others! */
        Newx(PL_scopestack, PL_scopestack_max, I32);
        Copy(proto_perl->Iscopestack, PL_scopestack, PL_scopestack_ix, I32);

#ifdef DEBUGGING
        Newx(PL_scopestack_name, PL_scopestack_max, const char *);
        Copy(proto_perl->Iscopestack_name, PL_scopestack_name, PL_scopestack_ix, const char *);
#endif
        /* reset stack AV to correct length before its duped via
         * PL_curstackinfo */
        AvFILLp(proto_perl->Icurstack) =
                            proto_perl->Istack_sp - proto_perl->Istack_base;

        /* NOTE: si_dup() looks at PL_markstack */
        PL_curstackinfo		= si_dup(proto_perl->Icurstackinfo, param);

        /* PL_curstack		= PL_curstackinfo->si_stack; */
        PL_curstack		= av_dup(proto_perl->Icurstack, param);
        PL_mainstack		= av_dup(proto_perl->Imainstack, param);

        /* next PUSHs() etc. set *(PL_stack_sp+1) */
        PL_stack_base		= AvARRAY(PL_curstack);
        PL_stack_sp		= PL_stack_base + (proto_perl->Istack_sp
                                                   - proto_perl->Istack_base);
        PL_stack_max		= PL_stack_base + AvMAX(PL_curstack);

        /*Newxz(PL_savestack, PL_savestack_max, ANY);*/
        PL_savestack		= ss_dup(proto_perl, param);
    }
    else {
        init_stacks();
        ENTER;			/* perl_destruct() wants to LEAVE; */
    }

    PL_statgv		= gv_dup(proto_perl->Istatgv, param);
    PL_statname		= sv_dup_inc(proto_perl->Istatname, param);

    PL_rs		= sv_dup_inc(proto_perl->Irs, param);
    PL_last_in_gv	= gv_dup(proto_perl->Ilast_in_gv, param);
    PL_defoutgv		= gv_dup_inc(proto_perl->Idefoutgv, param);
    PL_toptarget	= sv_dup_inc(proto_perl->Itoptarget, param);
    PL_bodytarget	= sv_dup_inc(proto_perl->Ibodytarget, param);
    PL_formtarget	= sv_dup(proto_perl->Iformtarget, param);

    PL_errors		= sv_dup_inc(proto_perl->Ierrors, param);

    PL_sortcop		= (OP*)any_dup(proto_perl->Isortcop, proto_perl);
    PL_firstgv		= gv_dup_inc(proto_perl->Ifirstgv, param);
    PL_secondgv		= gv_dup_inc(proto_perl->Isecondgv, param);

    PL_stashcache       = newHV();

    PL_watchaddr	= (char **) ptr_table_fetch(PL_ptr_table,
                                            proto_perl->Iwatchaddr);
    PL_watchok		= PL_watchaddr ? * PL_watchaddr : NULL;
    if (PL_debug && PL_watchaddr) {
        PerlIO_printf(Perl_debug_log,
          "WATCHING: %" UVxf " cloned as %" UVxf " with value %" UVxf "\n",
          PTR2UV(proto_perl->Iwatchaddr), PTR2UV(PL_watchaddr),
          PTR2UV(PL_watchok));
    }

    PL_registered_mros  = hv_dup_inc(proto_perl->Iregistered_mros, param);
    PL_blockhooks	= av_dup_inc(proto_perl->Iblockhooks, param);

    /* Call the ->CLONE method, if it exists, for each of the stashes
       identified by sv_dup() above.
    */
    while(av_count(param->stashes) != 0) {
        HV* const stash = MUTABLE_HV(av_shift(param->stashes));
        GV* const cloner = gv_fetchmethod_autoload(stash, "CLONE", 0);
        if (cloner && GvCV(cloner)) {
            dSP;
            ENTER;
            SAVETMPS;
            PUSHMARK(SP);
            mXPUSHs(newSVhek(HvNAME_HEK(stash)));
            PUTBACK;
            call_sv(MUTABLE_SV(GvCV(cloner)), G_DISCARD);
            FREETMPS;
            LEAVE;
        }
    }

    if (!(flags & CLONEf_KEEP_PTR_TABLE)) {
        ptr_table_free(PL_ptr_table);
        PL_ptr_table = NULL;
    }

    if (!(flags & CLONEf_COPY_STACKS)) {
        unreferenced_to_tmp_stack(param->unreferenced);
    }

    SvREFCNT_dec(param->stashes);

    /* orphaned? eg threads->new inside BEGIN or use */
    if (PL_compcv && ! SvREFCNT(PL_compcv)) {
        SvREFCNT_inc_simple_void(PL_compcv);
        SAVEFREESV(PL_compcv);
    }

    return my_perl;
}

static void
S_unreferenced_to_tmp_stack(pTHX_ AV *const unreferenced)
{
    PERL_ARGS_ASSERT_UNREFERENCED_TO_TMP_STACK;

    if (AvFILLp(unreferenced) > -1) {
        SV **svp = AvARRAY(unreferenced);
        SV **const last = svp + AvFILLp(unreferenced);
        SSize_t count = 0;

        do {
            if (SvREFCNT(*svp) == 1)
                ++count;
        } while (++svp <= last);

        EXTEND_MORTAL(count);
        svp = AvARRAY(unreferenced);

        do {
            if (SvREFCNT(*svp) == 1) {
                /* Our reference is the only one to this SV. This means that
                   in this thread, the scalar effectively has a 0 reference.
                   That doesn't work (cleanup never happens), so donate our
                   reference to it onto the save stack. */
                PL_tmps_stack[++PL_tmps_ix] = *svp;
            } else {
                /* As an optimisation, because we are already walking the
                   entire array, instead of above doing either
                   SvREFCNT_inc(*svp) or *svp = &PL_sv_undef, we can instead
                   release our reference to the scalar, so that at the end of
                   the array owns zero references to the scalars it happens to
                   point to. We are effectively converting the array from
                   AvREAL() on to AvREAL() off. This saves the av_clear()
                   (triggered by the SvREFCNT_dec(unreferenced) below) from
                   walking the array a second time.  */
                SvREFCNT_dec(*svp);
            }

        } while (++svp <= last);
        AvREAL_off(unreferenced);
    }
    SvREFCNT_dec_NN(unreferenced);
}

void
Perl_clone_params_del(CLONE_PARAMS *param)
{
    PerlInterpreter *const was = PERL_GET_THX;
    PerlInterpreter *const to = param->new_perl;
    dTHXa(to);

    PERL_ARGS_ASSERT_CLONE_PARAMS_DEL;

    if (was != to) {
        PERL_SET_THX(to);
    }

    SvREFCNT_dec(param->stashes);
    if (param->unreferenced)
        unreferenced_to_tmp_stack(param->unreferenced);

    Safefree(param);

    if (was != to) {
        PERL_SET_THX(was);
    }
}

CLONE_PARAMS *
Perl_clone_params_new(PerlInterpreter *const from, PerlInterpreter *const to)
{
    /* Need to play this game, as newAV() can call safesysmalloc(), and that
       does a dTHX; to get the context from thread local storage.
       FIXME - under PERL_CORE Newx(), Safefree() and friends should expand to
       a version that passes in my_perl.  */
    PerlInterpreter *const was = PERL_GET_THX;
    CLONE_PARAMS *param;

    PERL_ARGS_ASSERT_CLONE_PARAMS_NEW;

    if (was != to) {
        PERL_SET_THX(to);
    }

    /* Given that we've set the context, we can do this unshared.  */
    Newx(param, 1, CLONE_PARAMS);

    param->flags = 0;
    param->proto_perl = from;
    param->new_perl = to;
    param->stashes = (AV *)Perl_newSV_type(to, SVt_PVAV);
    AvREAL_off(param->stashes);
    param->unreferenced = (AV *)Perl_newSV_type(to, SVt_PVAV);

    if (was != to) {
        PERL_SET_THX(was);
    }
    return param;
}

#endif /* USE_ITHREADS */

void
Perl_init_constants(pTHX)
{

    SvREFCNT(&PL_sv_undef)	= SvREFCNT_IMMORTAL;
    SvFLAGS(&PL_sv_undef)	= SVf_READONLY|SVf_PROTECT|SVt_NULL;
    SvANY(&PL_sv_undef)		= NULL;

    SvANY(&PL_sv_no)		= new_XPVNV();
    SvREFCNT(&PL_sv_no)		= SvREFCNT_IMMORTAL;
    SvFLAGS(&PL_sv_no)		= SVt_PVNV|SVf_READONLY|SVf_PROTECT
                                  |SVp_IOK|SVf_IOK|SVp_NOK|SVf_NOK
                                  |SVp_POK|SVf_POK|SVf_IsCOW|SVppv_STATIC;

    SvANY(&PL_sv_yes)		= new_XPVNV();
    SvREFCNT(&PL_sv_yes)	= SvREFCNT_IMMORTAL;
    SvFLAGS(&PL_sv_yes)		= SVt_PVNV|SVf_READONLY|SVf_PROTECT
                                  |SVp_IOK|SVf_IOK|SVp_NOK|SVf_NOK
                                  |SVp_POK|SVf_POK|SVf_IsCOW|SVppv_STATIC;

    SvANY(&PL_sv_zero)		= new_XPVNV();
    SvREFCNT(&PL_sv_zero)	= SvREFCNT_IMMORTAL;
    SvFLAGS(&PL_sv_zero)	= SVt_PVNV|SVf_READONLY|SVf_PROTECT
                                  |SVp_IOK|SVf_IOK|SVp_NOK|SVf_NOK
                                  |SVp_POK|SVf_POK
                                  |SVs_PADTMP;

    SvPV_set(&PL_sv_no, (char*)PL_No);
    SvCUR_set(&PL_sv_no, 0);
    SvLEN_set(&PL_sv_no, 0);
    SvIV_set(&PL_sv_no, 0);
    SvNV_set(&PL_sv_no, 0);

    SvPV_set(&PL_sv_yes, (char*)PL_Yes);
    SvCUR_set(&PL_sv_yes, 1);
    SvLEN_set(&PL_sv_yes, 0);
    SvIV_set(&PL_sv_yes, 1);
    SvNV_set(&PL_sv_yes, 1);

    SvPV_set(&PL_sv_zero, (char*)PL_Zero);
    SvCUR_set(&PL_sv_zero, 1);
    SvLEN_set(&PL_sv_zero, 0);
    SvIV_set(&PL_sv_zero, 0);
    SvNV_set(&PL_sv_zero, 0);

    PadnamePV(&PL_padname_const) = (char *)PL_No;

    assert(SvIMMORTAL_INTERP(&PL_sv_yes));
    assert(SvIMMORTAL_INTERP(&PL_sv_undef));
    assert(SvIMMORTAL_INTERP(&PL_sv_no));
    assert(SvIMMORTAL_INTERP(&PL_sv_zero));

    assert(SvIMMORTAL(&PL_sv_yes));
    assert(SvIMMORTAL(&PL_sv_undef));
    assert(SvIMMORTAL(&PL_sv_no));
    assert(SvIMMORTAL(&PL_sv_zero));

    assert( SvIMMORTAL_TRUE(&PL_sv_yes));
    assert(!SvIMMORTAL_TRUE(&PL_sv_undef));
    assert(!SvIMMORTAL_TRUE(&PL_sv_no));
    assert(!SvIMMORTAL_TRUE(&PL_sv_zero));

    assert( SvTRUE_nomg_NN(&PL_sv_yes));
    assert(!SvTRUE_nomg_NN(&PL_sv_undef));
    assert(!SvTRUE_nomg_NN(&PL_sv_no));
    assert(!SvTRUE_nomg_NN(&PL_sv_zero));
}

/*
=for apidoc_section $unicode

=for apidoc sv_recode_to_utf8

C<encoding> is assumed to be an C<Encode> object, on entry the PV
of C<sv> is assumed to be octets in that encoding, and C<sv>
will be converted into Unicode (and UTF-8).

If C<sv> already is UTF-8 (or if it is not C<POK>), or if C<encoding>
is not a reference, nothing is done to C<sv>.  If C<encoding> is not
an C<Encode::XS> Encoding object, bad things will happen.
(See L<encoding> and L<Encode>.)

The PV of C<sv> is returned.

=cut */

char *
Perl_sv_recode_to_utf8(pTHX_ SV *sv, SV *encoding)
{
    PERL_ARGS_ASSERT_SV_RECODE_TO_UTF8;

    if (SvPOK(sv) && !SvUTF8(sv) && !IN_BYTES && SvROK(encoding)) {
        SV *uni;
        STRLEN len;
        const char *s;
        dSP;
        SV *nsv = sv;
        ENTER;
        PUSHSTACK;
        SAVETMPS;
        if (SvPADTMP(nsv)) {
            nsv = sv_newmortal();
            SvSetSV_nosteal(nsv, sv);
        }
        save_re_context();
        PUSHMARK(sp);
        EXTEND(SP, 3);
        PUSHs(encoding);
        PUSHs(nsv);
/*
  NI-S 2002/07/09
  Passing sv_yes is wrong - it needs to be or'ed set of constants
  for Encode::XS, while UTf-8 decode (currently) assumes a true value means
  remove converted chars from source.

  Both will default the value - let them.

        XPUSHs(&PL_sv_yes);
*/
        PUTBACK;
        call_method("decode", G_SCALAR);
        SPAGAIN;
        uni = POPs;
        PUTBACK;
        s = SvPV_const(uni, len);
        if (s != SvPVX_const(sv)) {
            SvGROW(sv, len + 1);
            Move(s, SvPVX(sv), len + 1, char);
            SvCUR_set(sv, len);
        }
        FREETMPS;
        POPSTACK;
        LEAVE;
        if (SvTYPE(sv) >= SVt_PVMG && SvMAGIC(sv)) {
            /* clear pos and any utf8 cache */
            MAGIC * mg = mg_find(sv, PERL_MAGIC_regex_global);
            if (mg)
                mg->mg_len = -1;
            if ((mg = mg_find(sv, PERL_MAGIC_utf8)))
                magic_setutf8(sv,mg); /* clear UTF8 cache */
        }
        SvUTF8_on(sv);
        return SvPVX(sv);
    }
    return SvPOKp(sv) ? SvPVX(sv) : NULL;
}

/*
=for apidoc sv_cat_decode

C<encoding> is assumed to be an C<Encode> object, the PV of C<ssv> is
assumed to be octets in that encoding and decoding the input starts
from the position which S<C<(PV + *offset)>> pointed to.  C<dsv> will be
concatenated with the decoded UTF-8 string from C<ssv>.  Decoding will terminate
when the string C<tstr> appears in decoding output or the input ends on
the PV of C<ssv>.  The value which C<offset> points will be modified
to the last input position on C<ssv>.

Returns TRUE if the terminator was found, else returns FALSE.

=cut */

bool
Perl_sv_cat_decode(pTHX_ SV *dsv, SV *encoding,
                   SV *ssv, int *offset, char *tstr, int tlen)
{
    bool ret = FALSE;

    PERL_ARGS_ASSERT_SV_CAT_DECODE;

    if (SvPOK(ssv) && SvPOK(dsv) && SvROK(encoding)) {
        SV *offsv;
        dSP;
        ENTER;
        SAVETMPS;
        save_re_context();
        PUSHMARK(sp);
        EXTEND(SP, 6);
        PUSHs(encoding);
        PUSHs(dsv);
        PUSHs(ssv);
        offsv = newSViv(*offset);
        mPUSHs(offsv);
        mPUSHp(tstr, tlen);
        PUTBACK;
        call_method("cat_decode", G_SCALAR);
        SPAGAIN;
        ret = SvTRUE(TOPs);
        *offset = SvIV(offsv);
        PUTBACK;
        FREETMPS;
        LEAVE;
    }
    else
        Perl_croak(aTHX_ "Invalid argument to sv_cat_decode");
    return ret;

}

/* ---------------------------------------------------------------------
 *
 * support functions for report_uninit()
 */

/* the maxiumum size of array or hash where we will scan looking
 * for the undefined element that triggered the warning */

#define FUV_MAX_SEARCH_SIZE 1000

/* Look for an entry in the hash whose value has the same SV as val;
 * If so, return a mortal copy of the key. */

STATIC SV*
S_find_hash_subscript(pTHX_ const HV *const hv, const SV *const val)
{
    HE **array;
    I32 i;

    PERL_ARGS_ASSERT_FIND_HASH_SUBSCRIPT;

    if (!hv || SvMAGICAL(hv) || !HvTOTALKEYS(hv) ||
                        (HvTOTALKEYS(hv) > FUV_MAX_SEARCH_SIZE))
        return NULL;

    if (val == &PL_sv_undef || val == &PL_sv_placeholder)
        return NULL;

    array = HvARRAY(hv);

    for (i=HvMAX(hv); i>=0; i--) {
        HE *entry;
        for (entry = array[i]; entry; entry = HeNEXT(entry)) {
            if (HeVAL(entry) == val)
                return newSVhek_mortal(HeKEY_hek(entry));
        }
    }
    return NULL;
}

/* Look for an entry in the array whose value has the same SV as val;
 * If so, return the index, otherwise return -1. */

STATIC SSize_t
S_find_array_subscript(pTHX_ const AV *const av, const SV *const val)
{
    PERL_ARGS_ASSERT_FIND_ARRAY_SUBSCRIPT;

    if (!av || SvMAGICAL(av) || !AvARRAY(av) ||
                        (AvFILLp(av) > FUV_MAX_SEARCH_SIZE))
        return -1;

    if (val != &PL_sv_undef) {
        SV ** const svp = AvARRAY(av);
        SSize_t i;

        for (i=AvFILLp(av); i>=0; i--)
            if (svp[i] == val)
                return i;
    }
    return -1;
}

/* varname(): return the name of a variable, optionally with a subscript.
 * If gv is non-zero, use the name of that global, along with gvtype (one
 * of "$", "@", "%"); otherwise use the name of the lexical at pad offset
 * targ.  Depending on the value of the subscript_type flag, return:
 */

#define FUV_SUBSCRIPT_NONE	1	/* "@foo"          */
#define FUV_SUBSCRIPT_ARRAY	2	/* "$foo[aindex]"  */
#define FUV_SUBSCRIPT_HASH	3	/* "$foo{keyname}" */
#define FUV_SUBSCRIPT_WITHIN	4	/* "within @foo"   */

SV*
Perl_varname(pTHX_ const GV *const gv, const char gvtype, PADOFFSET targ,
        const SV *const keyname, SSize_t aindex, int subscript_type)
{

    SV * const name = sv_newmortal();
    if (gv && isGV(gv)) {
        char buffer[2];
        buffer[0] = gvtype;
        buffer[1] = 0;

        /* as gv_fullname4(), but add literal '^' for $^FOO names  */

        gv_fullname4(name, gv, buffer, 0);

        if ((unsigned int)SvPVX(name)[1] <= 26) {
            buffer[0] = '^';
            buffer[1] = SvPVX(name)[1] + 'A' - 1;

            /* Swap the 1 unprintable control character for the 2 byte pretty
               version - ie substr($name, 1, 1) = $buffer; */
            sv_insert(name, 1, 1, buffer, 2);
        }
    }
    else {
        CV * const cv = gv ? ((CV *)gv) : find_runcv(NULL);
        PADNAME *sv;

        assert(!cv || SvTYPE(cv) == SVt_PVCV || SvTYPE(cv) == SVt_PVFM);

        if (!cv || !CvPADLIST(cv))
            return NULL;
        sv = padnamelist_fetch(PadlistNAMES(CvPADLIST(cv)), targ);
        sv_setpvn(name, PadnamePV(sv), PadnameLEN(sv));
        SvUTF8_on(name);
    }

    if (subscript_type == FUV_SUBSCRIPT_HASH) {
        SV * const sv = newSV_type(SVt_NULL);
        STRLEN len;
        const char * const pv = SvPV_nomg_const((SV*)keyname, len);

        *SvPVX(name) = '$';
        Perl_sv_catpvf(aTHX_ name, "{%s}",
            pv_pretty(sv, pv, len, 32, NULL, NULL,
                    PERL_PV_PRETTY_DUMP | PERL_PV_ESCAPE_UNI_DETECT ));
        SvREFCNT_dec_NN(sv);
    }
    else if (subscript_type == FUV_SUBSCRIPT_ARRAY) {
        *SvPVX(name) = '$';
        Perl_sv_catpvf(aTHX_ name, "[%" IVdf "]", (IV)aindex);
    }
    else if (subscript_type == FUV_SUBSCRIPT_WITHIN) {
        /* We know that name has no magic, so can use 0 instead of SV_GMAGIC */
        Perl_sv_insert_flags(aTHX_ name, 0, 0,  STR_WITH_LEN("within "), 0);
    }

    return name;
}


/*
=apidoc_section $warning
=for apidoc find_uninit_var

Find the name of the undefined variable (if any) that caused the operator
to issue a "Use of uninitialized value" warning.
If match is true, only return a name if its value matches C<uninit_sv>.
So roughly speaking, if a unary operator (such as C<OP_COS>) generates a
warning, then following the direct child of the op may yield an
C<OP_PADSV> or C<OP_GV> that gives the name of the undefined variable.  On the
other hand, with C<OP_ADD> there are two branches to follow, so we only print
the variable name if we get an exact match.
C<desc_p> points to a string pointer holding the description of the op.
This may be updated if needed.

The name is returned as a mortal SV.

Assumes that C<PL_op> is the OP that originally triggered the error, and that
C<PL_comppad>/C<PL_curpad> points to the currently executing pad.

=cut
*/

STATIC SV *
S_find_uninit_var(pTHX_ const OP *const obase, const SV *const uninit_sv,
                  bool match, const char **desc_p)
{
    SV *sv;
    const GV *gv;
    const OP *o, *o2, *kid;

    PERL_ARGS_ASSERT_FIND_UNINIT_VAR;

    if (!obase || (match && (!uninit_sv || uninit_sv == &PL_sv_undef ||
                            uninit_sv == &PL_sv_placeholder)))
        return NULL;

    switch (obase->op_type) {

    case OP_UNDEF:
        /* the optimizer rewrites '$x = undef' to 'undef $x' for lexical
         * variables, which can occur as the source of warnings:
         *   ($x = undef) =~ s/a/b/;
         * The OPpUNDEF_KEEP_PV flag indicates that this used to be an
         * assignment op.
         * Otherwise undef should not care if its args are undef - any warnings
         * will be from tied/magic vars */
        if (
            (obase->op_private & (OPpTARGET_MY | OPpUNDEF_KEEP_PV)) == (OPpTARGET_MY | OPpUNDEF_KEEP_PV)
            && (!match || PAD_SVl(obase->op_targ) == uninit_sv)
        ) {
            return varname(NULL, '$', obase->op_targ, NULL, 0, FUV_SUBSCRIPT_NONE);
        }
        break;

    case OP_RV2AV:
    case OP_RV2HV:
    case OP_PADAV:
    case OP_PADHV:
      {
        const bool pad  = (    obase->op_type == OP_PADAV
                            || obase->op_type == OP_PADHV
                            || obase->op_type == OP_PADRANGE
                          );

        const bool hash = (    obase->op_type == OP_PADHV
                            || obase->op_type == OP_RV2HV
                            || (obase->op_type == OP_PADRANGE
                                && SvTYPE(PAD_SVl(obase->op_targ)) == SVt_PVHV)
                          );
        SSize_t index = 0;
        SV *keysv = NULL;
        int subscript_type = FUV_SUBSCRIPT_WITHIN;

        if (pad) { /* @lex, %lex */
            sv = PAD_SVl(obase->op_targ);
            gv = NULL;
        }
        else {
            if (cUNOPx(obase)->op_first->op_type == OP_GV) {
            /* @global, %global */
                gv = cGVOPx_gv(cUNOPx(obase)->op_first);
                if (!gv)
                    break;
                sv = hash ? MUTABLE_SV(GvHV(gv)): MUTABLE_SV(GvAV(gv));
            }
            else if (obase == PL_op) /* @{expr}, %{expr} */
                return find_uninit_var(cUNOPx(obase)->op_first,
                                                uninit_sv, match, desc_p);
            else /* @{expr}, %{expr} as a sub-expression */
                return NULL;
        }

        /* attempt to find a match within the aggregate */
        if (hash) {
            keysv = find_hash_subscript((const HV*)sv, uninit_sv);
            if (keysv)
                subscript_type = FUV_SUBSCRIPT_HASH;
        }
        else {
            index = find_array_subscript((const AV *)sv, uninit_sv);
            if (index >= 0)
                subscript_type = FUV_SUBSCRIPT_ARRAY;
        }

        if (match && subscript_type == FUV_SUBSCRIPT_WITHIN)
            break;

        return varname(gv, (char)(hash ? '%' : '@'), obase->op_targ,
                                    keysv, index, subscript_type);
      }

    case OP_RV2SV:
        if (cUNOPx(obase)->op_first->op_type == OP_GV) {
            /* $global */
            gv = cGVOPx_gv(cUNOPx(obase)->op_first);
            if (!gv || !GvSTASH(gv))
                break;
            if (match && (GvSV(gv) != uninit_sv))
                break;
            return varname(gv, '$', 0, NULL, 0, FUV_SUBSCRIPT_NONE);
        }
        /* ${expr} */
        return find_uninit_var(cUNOPx(obase)->op_first, uninit_sv, 1, desc_p);

    case OP_PADSV:
        if (match && PAD_SVl(obase->op_targ) != uninit_sv)
            break;
        return varname(NULL, '$', obase->op_targ,
                                    NULL, 0, FUV_SUBSCRIPT_NONE);

    case OP_PADSV_STORE:
        if (match && PAD_SVl(obase->op_targ) != uninit_sv)
            goto do_op;
        return varname(NULL, '$', obase->op_targ,
                                    NULL, 0, FUV_SUBSCRIPT_NONE);

    case OP_GVSV:
        gv = cGVOPx_gv(obase);
        if (!gv || (match && GvSV(gv) != uninit_sv) || !GvSTASH(gv))
            break;
        return varname(gv, '$', 0, NULL, 0, FUV_SUBSCRIPT_NONE);

    case OP_AELEMFAST_LEX:
        if (match) {
            SV **svp;
            AV *av = MUTABLE_AV(PAD_SV(obase->op_targ));
            if (!av || SvRMAGICAL(av))
                break;
            svp = av_fetch(av, (I8)obase->op_private, FALSE);
            if (!svp || *svp != uninit_sv)
                break;
        }
        return varname(NULL, '$', obase->op_targ,
                       NULL, (I8)obase->op_private, FUV_SUBSCRIPT_ARRAY);

    case OP_AELEMFASTLEX_STORE:
        if (match) {
            SV **svp;
            AV *av = MUTABLE_AV(PAD_SV(obase->op_targ));
            if (!av || SvRMAGICAL(av))
                goto do_op;
            svp = av_fetch(av, (I8)obase->op_private, FALSE);
            if (!svp || *svp != uninit_sv)
                goto do_op;
        }
        return varname(NULL, '$', obase->op_targ,
                       NULL, (I8)obase->op_private, FUV_SUBSCRIPT_ARRAY);

    case OP_AELEMFAST:
        {
            gv = cGVOPx_gv(obase);
            if (!gv)
                break;
            if (match) {
                SV **svp;
                AV *const av = GvAV(gv);
                if (!av || SvRMAGICAL(av))
                    break;
                svp = av_fetch(av, (I8)obase->op_private, FALSE);
                if (!svp || *svp != uninit_sv)
                    break;
            }
            return varname(gv, '$', 0,
                    NULL, (I8)obase->op_private, FUV_SUBSCRIPT_ARRAY);
        }
        NOT_REACHED; /* NOTREACHED */

    case OP_EXISTS:
        o = cUNOPx(obase)->op_first;
        if (!o || o->op_type != OP_NULL ||
                ! (o->op_targ == OP_AELEM || o->op_targ == OP_HELEM))
            break;
        return find_uninit_var(cBINOPo->op_last, uninit_sv, match, desc_p);

    case OP_AELEM:
    case OP_HELEM:
    {
        bool negate = FALSE;

        if (PL_op == obase)
            /* $a[uninit_expr] or $h{uninit_expr} */
            return find_uninit_var(cBINOPx(obase)->op_last,
                                                uninit_sv, match, desc_p);

        gv = NULL;
        o = cBINOPx(obase)->op_first;
        kid = cBINOPx(obase)->op_last;

        /* get the av or hv, and optionally the gv */
        sv = NULL;
        if  (o->op_type == OP_PADAV || o->op_type == OP_PADHV) {
            sv = PAD_SV(o->op_targ);
        }
        else if ((o->op_type == OP_RV2AV || o->op_type == OP_RV2HV)
                && cUNOPo->op_first->op_type == OP_GV)
        {
            gv = cGVOPx_gv(cUNOPo->op_first);
            if (!gv)
                break;
            sv = o->op_type
                == OP_RV2HV ? MUTABLE_SV(GvHV(gv)) : MUTABLE_SV(GvAV(gv));
        }
        if (!sv)
            break;

        if (kid && kid->op_type == OP_NEGATE) {
            negate = TRUE;
            kid = cUNOPx(kid)->op_first;
        }

        if (kid && kid->op_type == OP_CONST && SvOK(cSVOPx_sv(kid))) {
            /* index is constant */
            SV* kidsv;
            if (negate) {
                kidsv = newSVpvs_flags("-", SVs_TEMP);
                sv_catsv(kidsv, cSVOPx_sv(kid));
            }
            else
                kidsv = cSVOPx_sv(kid);
            if (match) {
                if (SvMAGICAL(sv))
                    break;
                if (obase->op_type == OP_HELEM) {
                    HE* he = hv_fetch_ent(MUTABLE_HV(sv), kidsv, 0, 0);
                    if (!he || HeVAL(he) != uninit_sv)
                        break;
                }
                else {
                    SV * const  opsv = cSVOPx_sv(kid);
                    const IV  opsviv = SvIV(opsv);
                    SV * const * const svp = av_fetch(MUTABLE_AV(sv),
                        negate ? - opsviv : opsviv,
                        FALSE);
                    if (!svp || *svp != uninit_sv)
                        break;
                }
            }
            if (obase->op_type == OP_HELEM)
                return varname(gv, '%', o->op_targ,
                            kidsv, 0, FUV_SUBSCRIPT_HASH);
            else
                return varname(gv, '@', o->op_targ, NULL,
                    negate ? - SvIV(cSVOPx_sv(kid)) : SvIV(cSVOPx_sv(kid)),
                    FUV_SUBSCRIPT_ARRAY);
        }
        else {
            /* index is an expression;
             * attempt to find a match within the aggregate */
            if (obase->op_type == OP_HELEM) {
                SV * const keysv = find_hash_subscript((const HV*)sv, uninit_sv);
                if (keysv)
                    return varname(gv, '%', o->op_targ,
                                                keysv, 0, FUV_SUBSCRIPT_HASH);
            }
            else {
                const SSize_t index
                    = find_array_subscript((const AV *)sv, uninit_sv);
                if (index >= 0)
                    return varname(gv, '@', o->op_targ,
                                        NULL, index, FUV_SUBSCRIPT_ARRAY);
            }
            if (match)
                break;
            return varname(gv,
                (char)((o->op_type == OP_PADAV || o->op_type == OP_RV2AV)
                ? '@' : '%'),
                o->op_targ, NULL, 0, FUV_SUBSCRIPT_WITHIN);
        }
        NOT_REACHED; /* NOTREACHED */
    }

    case OP_MULTIDEREF: {
        /* If we were executing OP_MULTIDEREF when the undef warning
         * triggered, then it must be one of the index values within
         * that triggered it. If not, then the only possibility is that
         * the value retrieved by the last aggregate index might be the
         * culprit. For the former, we set PL_multideref_pc each time before
         * using an index, so work though the item list until we reach
         * that point. For the latter, just work through the entire item
         * list; the last aggregate retrieved will be the candidate.
         * There is a third rare possibility: something triggered
         * magic while fetching an array/hash element. Just display
         * nothing in this case.
         */

        /* the named aggregate, if any */
        PADOFFSET agg_targ = 0;
        GV       *agg_gv   = NULL;
        /* the last-seen index */
        UV        index_type;
        PADOFFSET index_targ;
        GV       *index_gv;
        IV        index_const_iv = 0; /* init for spurious compiler warn */
        SV       *index_const_sv;
        int       depth = 0;  /* how many array/hash lookups we've done */

        UNOP_AUX_item *items = cUNOP_AUXx(obase)->op_aux;
        UNOP_AUX_item *last = NULL;
        UV actions = items->uv;
        bool is_hv;

        if (PL_op == obase) {
            last = PL_multideref_pc;
            assert(last >= items && last <= items + items[-1].uv);
        }

        assert(actions);

        while (1) {
            is_hv = FALSE;
            switch (actions & MDEREF_ACTION_MASK) {

            case MDEREF_reload:
                actions = (++items)->uv;
                continue;

            case MDEREF_HV_padhv_helem:               /* $lex{...} */
                is_hv = TRUE;
                /* FALLTHROUGH */
            case MDEREF_AV_padav_aelem:               /* $lex[...] */
                agg_targ = (++items)->pad_offset;
                agg_gv = NULL;
                break;

            case MDEREF_HV_gvhv_helem:                /* $pkg{...} */
                is_hv = TRUE;
                /* FALLTHROUGH */
            case MDEREF_AV_gvav_aelem:                /* $pkg[...] */
                agg_targ = 0;
                agg_gv = (GV*)UNOP_AUX_item_sv(++items);
                assert(isGV_with_GP(agg_gv));
                break;

            case MDEREF_HV_gvsv_vivify_rv2hv_helem:   /* $pkg->{...} */
            case MDEREF_HV_padsv_vivify_rv2hv_helem:  /* $lex->{...} */
                ++items;
                /* FALLTHROUGH */
            case MDEREF_HV_pop_rv2hv_helem:           /* expr->{...} */
            case MDEREF_HV_vivify_rv2hv_helem:        /* vivify, ->{...} */
                agg_targ = 0;
                agg_gv   = NULL;
                is_hv    = TRUE;
                break;

            case MDEREF_AV_gvsv_vivify_rv2av_aelem:   /* $pkg->[...] */
            case MDEREF_AV_padsv_vivify_rv2av_aelem:  /* $lex->[...] */
                ++items;
                /* FALLTHROUGH */
            case MDEREF_AV_pop_rv2av_aelem:           /* expr->[...] */
            case MDEREF_AV_vivify_rv2av_aelem:        /* vivify, ->[...] */
                agg_targ = 0;
                agg_gv   = NULL;
            } /* switch */

            index_targ     = 0;
            index_gv       = NULL;
            index_const_sv = NULL;

            index_type = (actions & MDEREF_INDEX_MASK);
            switch (index_type) {
            case MDEREF_INDEX_none:
                break;
            case MDEREF_INDEX_const:
                if (is_hv)
                    index_const_sv = UNOP_AUX_item_sv(++items)
                else
                    index_const_iv = (++items)->iv;
                break;
            case MDEREF_INDEX_padsv:
                index_targ = (++items)->pad_offset;
                break;
            case MDEREF_INDEX_gvsv:
                index_gv = (GV*)UNOP_AUX_item_sv(++items);
                assert(isGV_with_GP(index_gv));
                break;
            }

            if (index_type != MDEREF_INDEX_none)
                depth++;

            if (   index_type == MDEREF_INDEX_none
                || (actions & MDEREF_FLAG_last)
                || (last && items >= last)
            )
                break;

            actions >>= MDEREF_SHIFT;
        } /* while */

        if (PL_op == obase) {
            /* most likely index was undef */

            *desc_p = (    (actions & MDEREF_FLAG_last)
                        && (obase->op_private
                                & (OPpMULTIDEREF_EXISTS|OPpMULTIDEREF_DELETE)))
                        ?
                            (obase->op_private & OPpMULTIDEREF_EXISTS)
                                ? "exists"
                                : "delete"
                        : is_hv ? "hash element" : "array element";
            assert(index_type != MDEREF_INDEX_none);
            if (index_gv) {
                if (GvSV(index_gv) == uninit_sv)
                    return varname(index_gv, '$', 0, NULL, 0,
                                                    FUV_SUBSCRIPT_NONE);
                else
                    return NULL;
            }
            if (index_targ) {
                if (PL_curpad[index_targ] == uninit_sv)
                    return varname(NULL, '$', index_targ,
                                    NULL, 0, FUV_SUBSCRIPT_NONE);
                else
                    return NULL;
            }
            /* If we got to this point it was undef on a const subscript,
             * so magic probably involved, e.g. $ISA[0]. Give up. */
            return NULL;
        }

        /* the SV returned by pp_multideref() was undef, if anything was */

        if (depth != 1)
            break;

        if (agg_targ)
            sv = PAD_SV(agg_targ);
        else if (agg_gv) {
            sv = is_hv ? MUTABLE_SV(GvHV(agg_gv)) : MUTABLE_SV(GvAV(agg_gv));
            if (!sv)
                break;
            }
        else
            break;

        if (index_type == MDEREF_INDEX_const) {
            if (match) {
                if (SvMAGICAL(sv))
                    break;
                if (is_hv) {
                    HE* he = hv_fetch_ent(MUTABLE_HV(sv), index_const_sv, 0, 0);
                    if (!he || HeVAL(he) != uninit_sv)
                        break;
                }
                else {
                    SV * const * const svp =
                            av_fetch(MUTABLE_AV(sv), index_const_iv, FALSE);
                    if (!svp || *svp != uninit_sv)
                        break;
                }
            }
            return is_hv
                ? varname(agg_gv, '%', agg_targ,
                                index_const_sv, 0,    FUV_SUBSCRIPT_HASH)
                : varname(agg_gv, '@', agg_targ,
                                NULL, index_const_iv, FUV_SUBSCRIPT_ARRAY);
        }
        else {
            /* index is an var */
            if (is_hv) {
                SV * const keysv = find_hash_subscript((const HV*)sv, uninit_sv);
                if (keysv)
                    return varname(agg_gv, '%', agg_targ,
                                                keysv, 0, FUV_SUBSCRIPT_HASH);
            }
            else {
                const SSize_t index
                    = find_array_subscript((const AV *)sv, uninit_sv);
                if (index >= 0)
                    return varname(agg_gv, '@', agg_targ,
                                        NULL, index, FUV_SUBSCRIPT_ARRAY);
            }
            /* look for an element not found */
            if (!SvMAGICAL(sv)) {
                SV *index_sv = NULL;
                if (index_targ) {
                    index_sv = PL_curpad[index_targ];
                }
                else if (index_gv) {
                    index_sv = GvSV(index_gv);
                }
                if (index_sv && !SvMAGICAL(index_sv) && !SvROK(index_sv)) {
                    if (is_hv) {
                        SV *report_index_sv = SvOK(index_sv) ? index_sv : &PL_sv_no;
                        HE *he = hv_fetch_ent(MUTABLE_HV(sv), report_index_sv, 0, 0);
                        if (!he) {
                            return varname(agg_gv, '%', agg_targ,
                                           report_index_sv, 0, FUV_SUBSCRIPT_HASH);
                        }
                    }
                    else {
                        SSize_t index = SvOK(index_sv) ? SvIV(index_sv) : 0;
                        SV * const * const svp =
                            av_fetch(MUTABLE_AV(sv), index, FALSE);
                        if (!svp) {
                            return varname(agg_gv, '@', agg_targ,
                                           NULL, index, FUV_SUBSCRIPT_ARRAY);
                        }
                    }
                }
            }
            if (match)
                break;
            return varname(agg_gv,
                is_hv ? '%' : '@',
                agg_targ, NULL, 0, FUV_SUBSCRIPT_WITHIN);
        }
        NOT_REACHED; /* NOTREACHED */
    }

    case OP_AASSIGN:
        /* only examine RHS */
        return find_uninit_var(cBINOPx(obase)->op_first, uninit_sv,
                                                                match, desc_p);

    case OP_OPEN:
        o = cUNOPx(obase)->op_first;
        if (   o->op_type == OP_PUSHMARK
           || (o->op_type == OP_NULL && o->op_targ == OP_PUSHMARK)
        )
            o = OpSIBLING(o);

        if (!OpHAS_SIBLING(o)) {
            /* one-arg version of open is highly magical */

            if (o->op_type == OP_GV) { /* open FOO; */
                gv = cGVOPx_gv(o);
                if (match && GvSV(gv) != uninit_sv)
                    break;
                return varname(gv, '$', 0,
                            NULL, 0, FUV_SUBSCRIPT_NONE);
            }
            /* other possibilities not handled are:
             * open $x; or open my $x;	should return '${*$x}'
             * open expr;		should return '$'.expr ideally
             */
             break;
        }
        match = 1;
        goto do_op;

    /* ops where $_ may be an implicit arg */
    case OP_TRANS:
    case OP_TRANSR:
    case OP_SUBST:
    case OP_MATCH:
        if ( !(obase->op_flags & OPf_STACKED)) {
            if (uninit_sv == DEFSV)
                return newSVpvs_flags("$_", SVs_TEMP);
            else if (obase->op_targ
                  && uninit_sv == PAD_SVl(obase->op_targ))
                return varname(NULL, '$', obase->op_targ, NULL, 0,
                               FUV_SUBSCRIPT_NONE);
        }
        goto do_op;

    case OP_PRTF:
    case OP_PRINT:
    case OP_SAY:
        match = 1; /* print etc can return undef on defined args */
        /* skip filehandle as it can't produce 'undef' warning  */
        o = cUNOPx(obase)->op_first;
        if ((obase->op_flags & OPf_STACKED)
            &&
               (   o->op_type == OP_PUSHMARK
               || (o->op_type == OP_NULL && o->op_targ == OP_PUSHMARK)))
            o = OpSIBLING(OpSIBLING(o));
        goto do_op2;


    case OP_ENTEREVAL: /* could be eval $undef or $x='$undef'; eval $x */
    case OP_CUSTOM: /* XS or custom code could trigger random warnings */

        /* the following ops are capable of returning PL_sv_undef even for
         * defined arg(s) */

    case OP_BACKTICK:
    case OP_PIPE_OP:
    case OP_FILENO:
    case OP_BINMODE:
    case OP_TIED:
    case OP_GETC:
    case OP_SYSREAD:
    case OP_SEND:
    case OP_IOCTL:
    case OP_SOCKET:
    case OP_SOCKPAIR:
    case OP_BIND:
    case OP_CONNECT:
    case OP_LISTEN:
    case OP_ACCEPT:
    case OP_SHUTDOWN:
    case OP_SSOCKOPT:
    case OP_GETPEERNAME:
    case OP_FTRREAD:
    case OP_FTRWRITE:
    case OP_FTREXEC:
    case OP_FTROWNED:
    case OP_FTEREAD:
    case OP_FTEWRITE:
    case OP_FTEEXEC:
    case OP_FTEOWNED:
    case OP_FTIS:
    case OP_FTZERO:
    case OP_FTSIZE:
    case OP_FTFILE:
    case OP_FTDIR:
    case OP_FTLINK:
    case OP_FTPIPE:
    case OP_FTSOCK:
    case OP_FTBLK:
    case OP_FTCHR:
    case OP_FTTTY:
    case OP_FTSUID:
    case OP_FTSGID:
    case OP_FTSVTX:
    case OP_FTTEXT:
    case OP_FTBINARY:
    case OP_FTMTIME:
    case OP_FTATIME:
    case OP_FTCTIME:
    case OP_READLINK:
    case OP_OPEN_DIR:
    case OP_READDIR:
    case OP_TELLDIR:
    case OP_SEEKDIR:
    case OP_REWINDDIR:
    case OP_CLOSEDIR:
    case OP_GMTIME:
    case OP_ALARM:
    case OP_SEMGET:
    case OP_GETLOGIN:
    case OP_SUBSTR:
    case OP_AEACH:
    case OP_EACH:
    case OP_SORT:
    case OP_CALLER:
    case OP_DOFILE:
    case OP_PROTOTYPE:
    case OP_NCMP:
    case OP_SMARTMATCH:
    case OP_UNPACK:
    case OP_SYSOPEN:
    case OP_SYSSEEK:
        match = 1;
        goto do_op;

    case OP_ENTERSUB:
    case OP_GOTO:
        /* XXX tmp hack: these two may call an XS sub, and currently
          XS subs don't have a SUB entry on the context stack, so CV and
          pad determination goes wrong, and BAD things happen. So, just
          don't try to determine the value under those circumstances.
          Need a better fix at dome point. DAPM 11/2007 */
        break;

    case OP_FLIP:
    case OP_FLOP:
    {
        GV * const gv = gv_fetchpvs(".", GV_NOTQUAL, SVt_PV);
        if (gv && GvSV(gv) == uninit_sv)
            return newSVpvs_flags("$.", SVs_TEMP);
        goto do_op;
    }

    case OP_POS:
        /* def-ness of rval pos() is independent of the def-ness of its arg */
        if ( !(obase->op_flags & OPf_MOD))
            break;
        /* FALLTHROUGH */

    case OP_SCHOMP:
    case OP_CHOMP:
        if (SvROK(PL_rs) && uninit_sv == SvRV(PL_rs))
            return newSVpvs_flags("${$/}", SVs_TEMP);
        /* FALLTHROUGH */

    default:
    do_op:
        if (!(obase->op_flags & OPf_KIDS))
            break;
        o = cUNOPx(obase)->op_first;

    do_op2:
        if (!o)
            break;

        /* This loop checks all the kid ops, skipping any that cannot pos-
         * sibly be responsible for the uninitialized value; i.e., defined
         * constants and ops that return nothing.  If there is only one op
         * left that is not skipped, then we *know* it is responsible for
         * the uninitialized value.  If there is more than one op left, we
         * have to look for an exact match in the while() loop below.
         * Note that we skip padrange, because the individual pad ops that
         * it replaced are still in the tree, so we work on them instead.
         */
        o2 = NULL;
        for (kid=o; kid; kid = OpSIBLING(kid)) {
            const OPCODE type = kid->op_type;
            if ( (type == OP_CONST && SvOK(cSVOPx_sv(kid)))
              || (type == OP_NULL  && ! (kid->op_flags & OPf_KIDS))
              || (type == OP_PUSHMARK)
              || (type == OP_PADRANGE)
            )
            continue;

            if (o2) { /* more than one found */
                o2 = NULL;
                break;
            }
            o2 = kid;
        }
        if (o2)
            return find_uninit_var(o2, uninit_sv, match, desc_p);

        /* scan all args */
        while (o) {
            sv = find_uninit_var(o, uninit_sv, 1, desc_p);
            if (sv)
                return sv;
            o = OpSIBLING(o);
        }
        break;
    }
    return NULL;
}


/*
=for apidoc_section $warning
=for apidoc report_uninit

Print appropriate "Use of uninitialized variable" warning.

=cut
*/

void
Perl_report_uninit(pTHX_ const SV *uninit_sv)
{
    const char *desc = NULL;
    SV* varname = NULL;

    if (PL_op) {
        desc = PL_op->op_type == OP_STRINGIFY && PL_op->op_folded
                ? "join or string"
                : PL_op->op_type == OP_MULTICONCAT
                    && (PL_op->op_private & OPpMULTICONCAT_FAKE)
                ? "sprintf"
                : OP_DESC(PL_op);
        if (uninit_sv && PL_curpad) {
            varname = find_uninit_var(PL_op, uninit_sv, 0, &desc);
            if (varname)
                sv_insert(varname, 0, 0, " ", 1);
        }
    }
    else if (PL_curstackinfo->si_type == PERLSI_SORT && cxstack_ix == 0)
        /* we've reached the end of a sort block or sub,
         * and the uninit value is probably what that code returned */
        desc = "sort";

    /* PL_warn_uninit_sv is constant */
    GCC_DIAG_IGNORE_STMT(-Wformat-nonliteral);
    if (desc)
        /* diag_listed_as: Use of uninitialized value%s */
        Perl_warner(aTHX_ packWARN(WARN_UNINITIALIZED), PL_warn_uninit_sv,
                SVfARG(varname ? varname : &PL_sv_no),
                " in ", desc);
    else
        Perl_warner(aTHX_ packWARN(WARN_UNINITIALIZED), PL_warn_uninit,
                "", "", "");
    GCC_DIAG_RESTORE_STMT;
}

/*
 * ex: set ts=8 sts=4 sw=4 et:
 */