summaryrefslogtreecommitdiff
path: root/lib/dpif-netdev.c
blob: 70b953ae6dd3297092d266e737008d82ead1afe4 (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
/*
 * Copyright (c) 2009-2014, 2016-2018 Nicira, Inc.
 *
 * Licensed under the Apache License, Version 2.0 (the "License");
 * you may not use this file except in compliance with the License.
 * You may obtain a copy of the License at:
 *
 *     http://www.apache.org/licenses/LICENSE-2.0
 *
 * Unless required by applicable law or agreed to in writing, software
 * distributed under the License is distributed on an "AS IS" BASIS,
 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
 * See the License for the specific language governing permissions and
 * limitations under the License.
 */

#include <config.h>
#include "dpif-netdev.h"
#include "dpif-netdev-private.h"
#include "dpif-netdev-private-dfc.h"

#include <ctype.h>
#include <errno.h>
#include <fcntl.h>
#include <inttypes.h>
#include <net/if.h>
#include <sys/types.h>
#include <netinet/in.h>
#include <stdint.h>
#include <stdlib.h>
#include <string.h>
#include <sys/ioctl.h>
#include <sys/socket.h>
#include <sys/stat.h>
#include <unistd.h>

#include "bitmap.h"
#include "ccmap.h"
#include "cmap.h"
#include "conntrack.h"
#include "conntrack-tp.h"
#include "coverage.h"
#include "ct-dpif.h"
#include "csum.h"
#include "dp-packet.h"
#include "dpif.h"
#include "dpif-netdev-lookup.h"
#include "dpif-netdev-perf.h"
#include "dpif-netdev-private-extract.h"
#include "dpif-provider.h"
#include "dummy.h"
#include "fat-rwlock.h"
#include "flow.h"
#include "hmapx.h"
#include "id-fpool.h"
#include "id-pool.h"
#include "ipf.h"
#include "mov-avg.h"
#include "mpsc-queue.h"
#include "netdev.h"
#include "netdev-offload.h"
#include "netdev-provider.h"
#include "netdev-vport.h"
#include "netlink.h"
#include "odp-execute.h"
#include "odp-util.h"
#include "openvswitch/dynamic-string.h"
#include "openvswitch/list.h"
#include "openvswitch/match.h"
#include "openvswitch/ofp-parse.h"
#include "openvswitch/ofp-print.h"
#include "openvswitch/ofpbuf.h"
#include "openvswitch/shash.h"
#include "openvswitch/vlog.h"
#include "ovs-numa.h"
#include "ovs-rcu.h"
#include "packets.h"
#include "openvswitch/poll-loop.h"
#include "pvector.h"
#include "random.h"
#include "seq.h"
#include "smap.h"
#include "sset.h"
#include "timeval.h"
#include "tnl-neigh-cache.h"
#include "tnl-ports.h"
#include "unixctl.h"
#include "util.h"
#include "uuid.h"

VLOG_DEFINE_THIS_MODULE(dpif_netdev);

/* Auto Load Balancing Defaults */
#define ALB_IMPROVEMENT_THRESHOLD    25
#define ALB_LOAD_THRESHOLD           95
#define ALB_REBALANCE_INTERVAL       1     /* 1 Min */
#define MAX_ALB_REBALANCE_INTERVAL   20000 /* 20000 Min */
#define MIN_TO_MSEC                  60000

#define FLOW_DUMP_MAX_BATCH 50
/* Use per thread recirc_depth to prevent recirculation loop. */
#define MAX_RECIRC_DEPTH 6
DEFINE_STATIC_PER_THREAD_DATA(uint32_t, recirc_depth, 0)

/* Use instant packet send by default. */
#define DEFAULT_TX_FLUSH_INTERVAL 0

/* Configuration parameters. */
enum { MAX_METERS = 1 << 18 };  /* Maximum number of meters. */
enum { MAX_BANDS = 8 };         /* Maximum number of bands / meter. */

COVERAGE_DEFINE(datapath_drop_meter);
COVERAGE_DEFINE(datapath_drop_upcall_error);
COVERAGE_DEFINE(datapath_drop_lock_error);
COVERAGE_DEFINE(datapath_drop_userspace_action_error);
COVERAGE_DEFINE(datapath_drop_tunnel_push_error);
COVERAGE_DEFINE(datapath_drop_tunnel_pop_error);
COVERAGE_DEFINE(datapath_drop_recirc_error);
COVERAGE_DEFINE(datapath_drop_invalid_port);
COVERAGE_DEFINE(datapath_drop_invalid_bond);
COVERAGE_DEFINE(datapath_drop_invalid_tnl_port);
COVERAGE_DEFINE(datapath_drop_rx_invalid_packet);
#ifdef ALLOW_EXPERIMENTAL_API /* Packet restoration API required. */
COVERAGE_DEFINE(datapath_drop_hw_miss_recover);
#endif

/* Protects against changes to 'dp_netdevs'. */
struct ovs_mutex dp_netdev_mutex = OVS_MUTEX_INITIALIZER;

/* Contains all 'struct dp_netdev's. */
static struct shash dp_netdevs OVS_GUARDED_BY(dp_netdev_mutex)
    = SHASH_INITIALIZER(&dp_netdevs);

static struct vlog_rate_limit upcall_rl = VLOG_RATE_LIMIT_INIT(600, 600);

#define DP_NETDEV_CS_SUPPORTED_MASK (CS_NEW | CS_ESTABLISHED | CS_RELATED \
                                     | CS_INVALID | CS_REPLY_DIR | CS_TRACKED \
                                     | CS_SRC_NAT | CS_DST_NAT)
#define DP_NETDEV_CS_UNSUPPORTED_MASK (~(uint32_t)DP_NETDEV_CS_SUPPORTED_MASK)

static struct odp_support dp_netdev_support = {
    .max_vlan_headers = SIZE_MAX,
    .max_mpls_depth = SIZE_MAX,
    .recirc = true,
    .ct_state = true,
    .ct_zone = true,
    .ct_mark = true,
    .ct_label = true,
    .ct_state_nat = true,
    .ct_orig_tuple = true,
    .ct_orig_tuple6 = true,
};


/* Simple non-wildcarding single-priority classifier. */

/* Time in microseconds between successive optimizations of the dpcls
 * subtable vector */
#define DPCLS_OPTIMIZATION_INTERVAL 1000000LL

/* Time in microseconds of the interval in which rxq processing cycles used
 * in rxq to pmd assignments is measured and stored. */
#define PMD_INTERVAL_LEN 5000000LL
/* For converting PMD_INTERVAL_LEN to secs. */
#define INTERVAL_USEC_TO_SEC 1000000LL

/* Number of intervals for which cycles are stored
 * and used during rxq to pmd assignment. */
#define PMD_INTERVAL_MAX 12

/* Time in microseconds to try RCU quiescing. */
#define PMD_RCU_QUIESCE_INTERVAL 10000LL

/* Timer resolution for PMD threads in nanoseconds. */
#define PMD_TIMER_RES_NS 1000

/* Number of pkts Rx on an interface that will stop pmd thread sleeping. */
#define PMD_SLEEP_THRESH (NETDEV_MAX_BURST / 2)
/* Time in uS to increment a pmd thread sleep time. */
#define PMD_SLEEP_INC_US 1

struct dpcls {
    struct cmap_node node;      /* Within dp_netdev_pmd_thread.classifiers */
    odp_port_t in_port;
    struct cmap subtables_map;
    struct pvector subtables;
};

/* Data structure to keep packet order till fastpath processing. */
struct dp_packet_flow_map {
    struct dp_packet *packet;
    struct dp_netdev_flow *flow;
    uint16_t tcp_flags;
};

static void dpcls_init(struct dpcls *);
static void dpcls_destroy(struct dpcls *);
static void dpcls_sort_subtable_vector(struct dpcls *);
static uint32_t dpcls_subtable_lookup_reprobe(struct dpcls *cls);
static void dpcls_insert(struct dpcls *, struct dpcls_rule *,
                         const struct netdev_flow_key *mask);
static void dpcls_remove(struct dpcls *, struct dpcls_rule *);

/* Set of supported meter flags */
#define DP_SUPPORTED_METER_FLAGS_MASK \
    (OFPMF13_STATS | OFPMF13_PKTPS | OFPMF13_KBPS | OFPMF13_BURST)

/* Set of supported meter band types */
#define DP_SUPPORTED_METER_BAND_TYPES           \
    ( 1 << OFPMBT13_DROP )

struct dp_meter_band {
    uint32_t rate;
    uint32_t burst_size;
    uint64_t bucket; /* In 1/1000 packets (for PKTPS), or in bits (for KBPS) */
    uint64_t packet_count;
    uint64_t byte_count;
};

struct dp_meter {
    struct cmap_node node;
    struct ovs_mutex lock;
    uint32_t id;
    uint16_t flags;
    uint16_t n_bands;
    uint32_t max_delta_t;
    uint64_t used;
    uint64_t packet_count;
    uint64_t byte_count;
    struct dp_meter_band bands[];
};

struct pmd_auto_lb {
    bool do_dry_run;
    bool recheck_config;
    bool is_enabled;            /* Current status of Auto load balancing. */
    uint64_t rebalance_intvl;
    uint64_t rebalance_poll_timer;
    uint8_t rebalance_improve_thresh;
    atomic_uint8_t rebalance_load_thresh;
};

enum sched_assignment_type {
    SCHED_ROUNDROBIN,
    SCHED_CYCLES, /* Default.*/
    SCHED_GROUP
};

/* Datapath based on the network device interface from netdev.h.
 *
 *
 * Thread-safety
 * =============
 *
 * Some members, marked 'const', are immutable.  Accessing other members
 * requires synchronization, as noted in more detail below.
 *
 * Acquisition order is, from outermost to innermost:
 *
 *    dp_netdev_mutex (global)
 *    port_rwlock
 *    bond_mutex
 *    non_pmd_mutex
 */
struct dp_netdev {
    const struct dpif_class *const class;
    const char *const name;
    struct ovs_refcount ref_cnt;
    atomic_flag destroyed;

    /* Ports.
     *
     * Any lookup into 'ports' or any access to the dp_netdev_ports found
     * through 'ports' requires taking 'port_rwlock'. */
    struct ovs_rwlock port_rwlock;
    struct hmap ports;
    struct seq *port_seq;       /* Incremented whenever a port changes. */

    /* The time that a packet can wait in output batch for sending. */
    atomic_uint32_t tx_flush_interval;

    /* Meters. */
    struct ovs_mutex meters_lock;
    struct cmap meters OVS_GUARDED;

    /* Probability of EMC insertions is a factor of 'emc_insert_min'.*/
    atomic_uint32_t emc_insert_min;
    /* Enable collection of PMD performance metrics. */
    atomic_bool pmd_perf_metrics;
    /* Max load based sleep request. */
    atomic_uint64_t pmd_max_sleep;
    /* Enable the SMC cache from ovsdb config */
    atomic_bool smc_enable_db;

    /* Protects access to ofproto-dpif-upcall interface during revalidator
     * thread synchronization. */
    struct fat_rwlock upcall_rwlock;
    upcall_callback *upcall_cb;  /* Callback function for executing upcalls. */
    void *upcall_aux;

    /* Callback function for notifying the purging of dp flows (during
     * reseting pmd deletion). */
    dp_purge_callback *dp_purge_cb;
    void *dp_purge_aux;

    /* Stores all 'struct dp_netdev_pmd_thread's. */
    struct cmap poll_threads;
    /* id pool for per thread static_tx_qid. */
    struct id_pool *tx_qid_pool;
    struct ovs_mutex tx_qid_pool_mutex;
    /* Rxq to pmd assignment type. */
    enum sched_assignment_type pmd_rxq_assign_type;
    bool pmd_iso;

    /* Protects the access of the 'struct dp_netdev_pmd_thread'
     * instance for non-pmd thread. */
    struct ovs_mutex non_pmd_mutex;

    /* Each pmd thread will store its pointer to
     * 'struct dp_netdev_pmd_thread' in 'per_pmd_key'. */
    ovsthread_key_t per_pmd_key;

    struct seq *reconfigure_seq;
    uint64_t last_reconfigure_seq;

    /* Cpu mask for pin of pmd threads. */
    char *pmd_cmask;

    uint64_t last_tnl_conf_seq;

    struct conntrack *conntrack;
    struct pmd_auto_lb pmd_alb;

    /* Bonds. */
    struct ovs_mutex bond_mutex; /* Protects updates of 'tx_bonds'. */
    struct cmap tx_bonds; /* Contains 'struct tx_bond'. */
};

static struct dp_netdev_port *dp_netdev_lookup_port(const struct dp_netdev *dp,
                                                    odp_port_t)
    OVS_REQ_RDLOCK(dp->port_rwlock);

enum rxq_cycles_counter_type {
    RXQ_CYCLES_PROC_CURR,       /* Cycles spent successfully polling and
                                   processing packets during the current
                                   interval. */
    RXQ_CYCLES_PROC_HIST,       /* Total cycles of all intervals that are used
                                   during rxq to pmd assignment. */
    RXQ_N_CYCLES
};

enum dp_offload_type {
    DP_OFFLOAD_FLOW,
    DP_OFFLOAD_FLUSH,
};

enum {
    DP_NETDEV_FLOW_OFFLOAD_OP_ADD,
    DP_NETDEV_FLOW_OFFLOAD_OP_MOD,
    DP_NETDEV_FLOW_OFFLOAD_OP_DEL,
};

struct dp_offload_flow_item {
    struct dp_netdev_flow *flow;
    int op;
    struct match match;
    struct nlattr *actions;
    size_t actions_len;
    odp_port_t orig_in_port; /* Originating in_port for tnl flows. */
};

struct dp_offload_flush_item {
    struct netdev *netdev;
    struct ovs_barrier *barrier;
};

union dp_offload_thread_data {
    struct dp_offload_flow_item flow;
    struct dp_offload_flush_item flush;
};

struct dp_offload_thread_item {
    struct mpsc_queue_node node;
    enum dp_offload_type type;
    long long int timestamp;
    struct dp_netdev *dp;
    union dp_offload_thread_data data[0];
};

struct dp_offload_thread {
    PADDED_MEMBERS(CACHE_LINE_SIZE,
        struct mpsc_queue queue;
        atomic_uint64_t enqueued_item;
        struct cmap megaflow_to_mark;
        struct cmap mark_to_flow;
        struct mov_avg_cma cma;
        struct mov_avg_ema ema;
    );
};
static struct dp_offload_thread *dp_offload_threads;
static void *dp_netdev_flow_offload_main(void *arg);

static void
dp_netdev_offload_init(void)
{
    static struct ovsthread_once once = OVSTHREAD_ONCE_INITIALIZER;
    unsigned int nb_offload_thread = netdev_offload_thread_nb();
    unsigned int tid;

    if (!ovsthread_once_start(&once)) {
        return;
    }

    dp_offload_threads = xcalloc(nb_offload_thread,
                                 sizeof *dp_offload_threads);

    for (tid = 0; tid < nb_offload_thread; tid++) {
        struct dp_offload_thread *thread;

        thread = &dp_offload_threads[tid];
        mpsc_queue_init(&thread->queue);
        cmap_init(&thread->megaflow_to_mark);
        cmap_init(&thread->mark_to_flow);
        atomic_init(&thread->enqueued_item, 0);
        mov_avg_cma_init(&thread->cma);
        mov_avg_ema_init(&thread->ema, 100);
        ovs_thread_create("hw_offload", dp_netdev_flow_offload_main, thread);
    }

    ovsthread_once_done(&once);
}

#define XPS_TIMEOUT 500000LL    /* In microseconds. */

/* Contained by struct dp_netdev_port's 'rxqs' member.  */
struct dp_netdev_rxq {
    struct dp_netdev_port *port;
    struct netdev_rxq *rx;
    unsigned core_id;                  /* Core to which this queue should be
                                          pinned. OVS_CORE_UNSPEC if the
                                          queue doesn't need to be pinned to a
                                          particular core. */
    atomic_count intrvl_idx;           /* Write index for 'cycles_intrvl'. */
    struct dp_netdev_pmd_thread *pmd;  /* pmd thread that polls this queue. */
    bool is_vhost;                     /* Is rxq of a vhost port. */

    /* Counters of cycles spent successfully polling and processing pkts. */
    atomic_ullong cycles[RXQ_N_CYCLES];
    /* We store PMD_INTERVAL_MAX intervals of data for an rxq and then
       sum them to yield the cycles used for an rxq. */
    atomic_ullong cycles_intrvl[PMD_INTERVAL_MAX];
};

enum txq_req_mode {
    TXQ_REQ_MODE_THREAD,
    TXQ_REQ_MODE_HASH,
};

enum txq_mode {
    TXQ_MODE_STATIC,
    TXQ_MODE_XPS,
    TXQ_MODE_XPS_HASH,
};

/* A port in a netdev-based datapath. */
struct dp_netdev_port {
    odp_port_t port_no;
    enum txq_mode txq_mode;     /* static, XPS, XPS_HASH. */
    bool need_reconfigure;      /* True if we should reconfigure netdev. */
    struct netdev *netdev;
    struct hmap_node node;      /* Node in dp_netdev's 'ports'. */
    struct netdev_saved_flags *sf;
    struct dp_netdev_rxq *rxqs;
    unsigned n_rxq;             /* Number of elements in 'rxqs' */
    unsigned *txq_used;         /* Number of threads that use each tx queue. */
    struct ovs_mutex txq_used_mutex;
    bool emc_enabled;           /* If true EMC will be used. */
    char *type;                 /* Port type as requested by user. */
    char *rxq_affinity_list;    /* Requested affinity of rx queues. */
    enum txq_req_mode txq_requested_mode;
};

static bool dp_netdev_flow_ref(struct dp_netdev_flow *);
static int dpif_netdev_flow_from_nlattrs(const struct nlattr *, uint32_t,
                                         struct flow *, bool);

struct dp_netdev_actions *dp_netdev_actions_create(const struct nlattr *,
                                                   size_t);
struct dp_netdev_actions *dp_netdev_flow_get_actions(
    const struct dp_netdev_flow *);
static void dp_netdev_actions_free(struct dp_netdev_actions *);

struct polled_queue {
    struct dp_netdev_rxq *rxq;
    odp_port_t port_no;
    bool emc_enabled;
    bool rxq_enabled;
    uint64_t change_seq;
};

/* Contained by struct dp_netdev_pmd_thread's 'poll_list' member. */
struct rxq_poll {
    struct dp_netdev_rxq *rxq;
    struct hmap_node node;
};

/* Contained by struct dp_netdev_pmd_thread's 'send_port_cache',
 * 'tnl_port_cache' or 'tx_ports'. */
struct tx_port {
    struct dp_netdev_port *port;
    int qid;
    long long last_used;
    struct hmap_node node;
    long long flush_time;
    struct dp_packet_batch output_pkts;
    struct dp_packet_batch *txq_pkts; /* Only for hash mode. */
    struct dp_netdev_rxq *output_pkts_rxqs[NETDEV_MAX_BURST];
};

/* Contained by struct tx_bond 'member_buckets'. */
struct member_entry {
    odp_port_t member_id;
    atomic_ullong n_packets;
    atomic_ullong n_bytes;
};

/* Contained by struct dp_netdev_pmd_thread's 'tx_bonds'. */
struct tx_bond {
    struct cmap_node node;
    uint32_t bond_id;
    struct member_entry member_buckets[BOND_BUCKETS];
};

/* Interface to netdev-based datapath. */
struct dpif_netdev {
    struct dpif dpif;
    struct dp_netdev *dp;
    uint64_t last_port_seq;
};

static int get_port_by_number(struct dp_netdev *dp, odp_port_t port_no,
                              struct dp_netdev_port **portp)
    OVS_REQ_RDLOCK(dp->port_rwlock);
static int get_port_by_name(struct dp_netdev *dp, const char *devname,
                            struct dp_netdev_port **portp)
    OVS_REQ_RDLOCK(dp->port_rwlock);
static void dp_netdev_free(struct dp_netdev *)
    OVS_REQUIRES(dp_netdev_mutex);
static int do_add_port(struct dp_netdev *dp, const char *devname,
                       const char *type, odp_port_t port_no)
    OVS_REQ_WRLOCK(dp->port_rwlock);
static void do_del_port(struct dp_netdev *dp, struct dp_netdev_port *)
    OVS_REQ_WRLOCK(dp->port_rwlock);
static int dpif_netdev_open(const struct dpif_class *, const char *name,
                            bool create, struct dpif **);
static void dp_netdev_execute_actions(struct dp_netdev_pmd_thread *pmd,
                                      struct dp_packet_batch *,
                                      bool should_steal,
                                      const struct flow *flow,
                                      const struct nlattr *actions,
                                      size_t actions_len);
static void dp_netdev_recirculate(struct dp_netdev_pmd_thread *,
                                  struct dp_packet_batch *);

static void dp_netdev_disable_upcall(struct dp_netdev *);
static void dp_netdev_pmd_reload_done(struct dp_netdev_pmd_thread *pmd);
static void dp_netdev_configure_pmd(struct dp_netdev_pmd_thread *pmd,
                                    struct dp_netdev *dp, unsigned core_id,
                                    int numa_id);
static void dp_netdev_destroy_pmd(struct dp_netdev_pmd_thread *pmd);
static void dp_netdev_set_nonpmd(struct dp_netdev *dp)
    OVS_REQ_WRLOCK(dp->port_rwlock);

static void *pmd_thread_main(void *);
static struct dp_netdev_pmd_thread *dp_netdev_get_pmd(struct dp_netdev *dp,
                                                      unsigned core_id);
static struct dp_netdev_pmd_thread *
dp_netdev_pmd_get_next(struct dp_netdev *dp, struct cmap_position *pos);
static void dp_netdev_del_pmd(struct dp_netdev *dp,
                              struct dp_netdev_pmd_thread *pmd);
static void dp_netdev_destroy_all_pmds(struct dp_netdev *dp, bool non_pmd);
static void dp_netdev_pmd_clear_ports(struct dp_netdev_pmd_thread *pmd);
static void dp_netdev_add_port_tx_to_pmd(struct dp_netdev_pmd_thread *pmd,
                                         struct dp_netdev_port *port)
    OVS_REQUIRES(pmd->port_mutex);
static void dp_netdev_del_port_tx_from_pmd(struct dp_netdev_pmd_thread *pmd,
                                           struct tx_port *tx)
    OVS_REQUIRES(pmd->port_mutex);
static void dp_netdev_add_rxq_to_pmd(struct dp_netdev_pmd_thread *pmd,
                                     struct dp_netdev_rxq *rxq)
    OVS_REQUIRES(pmd->port_mutex);
static void dp_netdev_del_rxq_from_pmd(struct dp_netdev_pmd_thread *pmd,
                                       struct rxq_poll *poll)
    OVS_REQUIRES(pmd->port_mutex);
static int
dp_netdev_pmd_flush_output_packets(struct dp_netdev_pmd_thread *pmd,
                                   bool force);
static void dp_netdev_add_bond_tx_to_pmd(struct dp_netdev_pmd_thread *pmd,
                                         struct tx_bond *bond, bool update)
    OVS_EXCLUDED(pmd->bond_mutex);
static void dp_netdev_del_bond_tx_from_pmd(struct dp_netdev_pmd_thread *pmd,
                                           uint32_t bond_id)
    OVS_EXCLUDED(pmd->bond_mutex);

static void dp_netdev_offload_flush(struct dp_netdev *dp,
                                    struct dp_netdev_port *port);

static void reconfigure_datapath(struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock);
static bool dp_netdev_pmd_try_ref(struct dp_netdev_pmd_thread *pmd);
static void dp_netdev_pmd_unref(struct dp_netdev_pmd_thread *pmd);
static void dp_netdev_pmd_flow_flush(struct dp_netdev_pmd_thread *pmd);
static void pmd_load_cached_ports(struct dp_netdev_pmd_thread *pmd)
    OVS_REQUIRES(pmd->port_mutex);
static inline void
dp_netdev_pmd_try_optimize(struct dp_netdev_pmd_thread *pmd,
                           struct polled_queue *poll_list, int poll_cnt);
static void
dp_netdev_rxq_set_cycles(struct dp_netdev_rxq *rx,
                         enum rxq_cycles_counter_type type,
                         unsigned long long cycles);
static uint64_t
dp_netdev_rxq_get_cycles(struct dp_netdev_rxq *rx,
                         enum rxq_cycles_counter_type type);
static void
dp_netdev_rxq_set_intrvl_cycles(struct dp_netdev_rxq *rx,
                           unsigned long long cycles);
static uint64_t
dp_netdev_rxq_get_intrvl_cycles(struct dp_netdev_rxq *rx, unsigned idx);
static uint64_t
get_interval_values(atomic_ullong *source, atomic_count *cur_idx,
                    int num_to_read);
static void
dpif_netdev_xps_revalidate_pmd(const struct dp_netdev_pmd_thread *pmd,
                               bool purge);
static int dpif_netdev_xps_get_tx_qid(const struct dp_netdev_pmd_thread *pmd,
                                      struct tx_port *tx);
inline struct dpcls *
dp_netdev_pmd_lookup_dpcls(struct dp_netdev_pmd_thread *pmd,
                           odp_port_t in_port);

static void dp_netdev_request_reconfigure(struct dp_netdev *dp);
static inline bool
pmd_perf_metrics_enabled(const struct dp_netdev_pmd_thread *pmd);
static void queue_netdev_flow_del(struct dp_netdev_pmd_thread *pmd,
                                  struct dp_netdev_flow *flow);

static void dp_netdev_simple_match_insert(struct dp_netdev_pmd_thread *pmd,
                                          struct dp_netdev_flow *flow)
    OVS_REQUIRES(pmd->flow_mutex);
static void dp_netdev_simple_match_remove(struct dp_netdev_pmd_thread *pmd,
                                          struct dp_netdev_flow *flow)
    OVS_REQUIRES(pmd->flow_mutex);

static bool dp_netdev_flow_is_simple_match(const struct match *);

/* Updates the time in PMD threads context and should be called in three cases:
 *
 *     1. PMD structure initialization:
 *         - dp_netdev_configure_pmd()
 *
 *     2. Before processing of the new packet batch:
 *         - dpif_netdev_execute()
 *         - dp_netdev_process_rxq_port()
 *
 *     3. At least once per polling iteration in main polling threads if no
 *        packets received on current iteration:
 *         - dpif_netdev_run()
 *         - pmd_thread_main()
 *
 * 'pmd->ctx.now' should be used without update in all other cases if possible.
 */
static inline void
pmd_thread_ctx_time_update(struct dp_netdev_pmd_thread *pmd)
{
    pmd->ctx.now = time_usec();
}

/* Returns true if 'dpif' is a netdev or dummy dpif, false otherwise. */
bool
dpif_is_netdev(const struct dpif *dpif)
{
    return dpif->dpif_class->open == dpif_netdev_open;
}

static struct dpif_netdev *
dpif_netdev_cast(const struct dpif *dpif)
{
    ovs_assert(dpif_is_netdev(dpif));
    return CONTAINER_OF(dpif, struct dpif_netdev, dpif);
}

static struct dp_netdev *
get_dp_netdev(const struct dpif *dpif)
{
    return dpif_netdev_cast(dpif)->dp;
}

enum pmd_info_type {
    PMD_INFO_SHOW_STATS,  /* Show how cpu cycles are spent. */
    PMD_INFO_CLEAR_STATS, /* Set the cycles count to 0. */
    PMD_INFO_SHOW_RXQ,    /* Show poll lists of pmd threads. */
    PMD_INFO_PERF_SHOW,   /* Show pmd performance details. */
};

static void
format_pmd_thread(struct ds *reply, struct dp_netdev_pmd_thread *pmd)
{
    ds_put_cstr(reply, (pmd->core_id == NON_PMD_CORE_ID)
                        ? "main thread" : "pmd thread");
    if (pmd->numa_id != OVS_NUMA_UNSPEC) {
        ds_put_format(reply, " numa_id %d", pmd->numa_id);
    }
    if (pmd->core_id != OVS_CORE_UNSPEC && pmd->core_id != NON_PMD_CORE_ID) {
        ds_put_format(reply, " core_id %u", pmd->core_id);
    }
    ds_put_cstr(reply, ":\n");
}

static void
pmd_info_show_stats(struct ds *reply,
                    struct dp_netdev_pmd_thread *pmd)
{
    uint64_t stats[PMD_N_STATS];
    uint64_t total_cycles, total_packets;
    double passes_per_pkt = 0;
    double lookups_per_hit = 0;
    double packets_per_batch = 0;

    pmd_perf_read_counters(&pmd->perf_stats, stats);
    total_cycles = stats[PMD_CYCLES_ITER_IDLE]
                         + stats[PMD_CYCLES_ITER_BUSY];
    total_packets = stats[PMD_STAT_RECV];

    format_pmd_thread(reply, pmd);

    if (total_packets > 0) {
        passes_per_pkt = (total_packets + stats[PMD_STAT_RECIRC])
                            / (double) total_packets;
    }
    if (stats[PMD_STAT_MASKED_HIT] > 0) {
        lookups_per_hit = stats[PMD_STAT_MASKED_LOOKUP]
                            / (double) stats[PMD_STAT_MASKED_HIT];
    }
    if (stats[PMD_STAT_SENT_BATCHES] > 0) {
        packets_per_batch = stats[PMD_STAT_SENT_PKTS]
                            / (double) stats[PMD_STAT_SENT_BATCHES];
    }

    ds_put_format(reply,
                  "  packets received: %"PRIu64"\n"
                  "  packet recirculations: %"PRIu64"\n"
                  "  avg. datapath passes per packet: %.02f\n"
                  "  phwol hits: %"PRIu64"\n"
                  "  mfex opt hits: %"PRIu64"\n"
                  "  simple match hits: %"PRIu64"\n"
                  "  emc hits: %"PRIu64"\n"
                  "  smc hits: %"PRIu64"\n"
                  "  megaflow hits: %"PRIu64"\n"
                  "  avg. subtable lookups per megaflow hit: %.02f\n"
                  "  miss with success upcall: %"PRIu64"\n"
                  "  miss with failed upcall: %"PRIu64"\n"
                  "  avg. packets per output batch: %.02f\n",
                  total_packets, stats[PMD_STAT_RECIRC],
                  passes_per_pkt, stats[PMD_STAT_PHWOL_HIT],
                  stats[PMD_STAT_MFEX_OPT_HIT],
                  stats[PMD_STAT_SIMPLE_HIT],
                  stats[PMD_STAT_EXACT_HIT],
                  stats[PMD_STAT_SMC_HIT],
                  stats[PMD_STAT_MASKED_HIT],
                  lookups_per_hit, stats[PMD_STAT_MISS], stats[PMD_STAT_LOST],
                  packets_per_batch);

    if (total_cycles == 0) {
        return;
    }

    ds_put_format(reply,
                  "  idle cycles: %"PRIu64" (%.02f%%)\n"
                  "  processing cycles: %"PRIu64" (%.02f%%)\n",
                  stats[PMD_CYCLES_ITER_IDLE],
                  stats[PMD_CYCLES_ITER_IDLE] / (double) total_cycles * 100,
                  stats[PMD_CYCLES_ITER_BUSY],
                  stats[PMD_CYCLES_ITER_BUSY] / (double) total_cycles * 100);

    if (total_packets == 0) {
        return;
    }

    ds_put_format(reply,
                  "  avg cycles per packet: %.02f (%"PRIu64"/%"PRIu64")\n",
                  total_cycles / (double) total_packets,
                  total_cycles, total_packets);

    ds_put_format(reply,
                  "  avg processing cycles per packet: "
                  "%.02f (%"PRIu64"/%"PRIu64")\n",
                  stats[PMD_CYCLES_ITER_BUSY] / (double) total_packets,
                  stats[PMD_CYCLES_ITER_BUSY], total_packets);
}

static void
pmd_info_show_perf(struct ds *reply,
                   struct dp_netdev_pmd_thread *pmd,
                   struct pmd_perf_params *par)
{
    if (pmd->core_id != NON_PMD_CORE_ID) {
        char *time_str =
                xastrftime_msec("%H:%M:%S.###", time_wall_msec(), true);
        long long now = time_msec();
        double duration = (now - pmd->perf_stats.start_ms) / 1000.0;

        ds_put_cstr(reply, "\n");
        ds_put_format(reply, "Time: %s\n", time_str);
        ds_put_format(reply, "Measurement duration: %.3f s\n", duration);
        ds_put_cstr(reply, "\n");
        format_pmd_thread(reply, pmd);
        ds_put_cstr(reply, "\n");
        pmd_perf_format_overall_stats(reply, &pmd->perf_stats, duration);
        if (pmd_perf_metrics_enabled(pmd)) {
            /* Prevent parallel clearing of perf metrics. */
            ovs_mutex_lock(&pmd->perf_stats.clear_mutex);
            if (par->histograms) {
                ds_put_cstr(reply, "\n");
                pmd_perf_format_histograms(reply, &pmd->perf_stats);
            }
            if (par->iter_hist_len > 0) {
                ds_put_cstr(reply, "\n");
                pmd_perf_format_iteration_history(reply, &pmd->perf_stats,
                        par->iter_hist_len);
            }
            if (par->ms_hist_len > 0) {
                ds_put_cstr(reply, "\n");
                pmd_perf_format_ms_history(reply, &pmd->perf_stats,
                        par->ms_hist_len);
            }
            ovs_mutex_unlock(&pmd->perf_stats.clear_mutex);
        }
        free(time_str);
    }
}

static int
compare_poll_list(const void *a_, const void *b_)
{
    const struct rxq_poll *a = a_;
    const struct rxq_poll *b = b_;

    const char *namea = netdev_rxq_get_name(a->rxq->rx);
    const char *nameb = netdev_rxq_get_name(b->rxq->rx);

    int cmp = strcmp(namea, nameb);
    if (!cmp) {
        return netdev_rxq_get_queue_id(a->rxq->rx)
               - netdev_rxq_get_queue_id(b->rxq->rx);
    } else {
        return cmp;
    }
}

static void
sorted_poll_list(struct dp_netdev_pmd_thread *pmd, struct rxq_poll **list,
                 size_t *n)
    OVS_REQUIRES(pmd->port_mutex)
{
    struct rxq_poll *ret, *poll;
    size_t i;

    *n = hmap_count(&pmd->poll_list);
    if (!*n) {
        ret = NULL;
    } else {
        ret = xcalloc(*n, sizeof *ret);
        i = 0;
        HMAP_FOR_EACH (poll, node, &pmd->poll_list) {
            ret[i] = *poll;
            i++;
        }
        ovs_assert(i == *n);
        qsort(ret, *n, sizeof *ret, compare_poll_list);
    }

    *list = ret;
}

static void
pmd_info_show_rxq(struct ds *reply, struct dp_netdev_pmd_thread *pmd,
                  int secs)
{
    if (pmd->core_id != NON_PMD_CORE_ID) {
        struct rxq_poll *list;
        size_t n_rxq;
        uint64_t total_pmd_cycles = 0;
        uint64_t busy_pmd_cycles = 0;
        uint64_t total_rxq_proc_cycles = 0;
        unsigned int intervals;

        ds_put_format(reply,
                      "pmd thread numa_id %d core_id %u:\n  isolated : %s\n",
                      pmd->numa_id, pmd->core_id, (pmd->isolated)
                                                  ? "true" : "false");

        ovs_mutex_lock(&pmd->port_mutex);
        sorted_poll_list(pmd, &list, &n_rxq);

        /* Get the total pmd cycles for an interval. */
        atomic_read_relaxed(&pmd->intrvl_cycles, &total_pmd_cycles);
        /* Calculate how many intervals are to be used. */
        intervals = DIV_ROUND_UP(secs,
                                 PMD_INTERVAL_LEN / INTERVAL_USEC_TO_SEC);
        /* Estimate the cycles to cover all intervals. */
        total_pmd_cycles *= intervals;
        busy_pmd_cycles = get_interval_values(pmd->busy_cycles_intrvl,
                                              &pmd->intrvl_idx,
                                              intervals);
        if (busy_pmd_cycles > total_pmd_cycles) {
            busy_pmd_cycles = total_pmd_cycles;
        }

        for (int i = 0; i < n_rxq; i++) {
            struct dp_netdev_rxq *rxq = list[i].rxq;
            const char *name = netdev_rxq_get_name(rxq->rx);
            uint64_t rxq_proc_cycles = 0;

            rxq_proc_cycles = get_interval_values(rxq->cycles_intrvl,
                                                  &rxq->intrvl_idx,
                                                  intervals);
            total_rxq_proc_cycles += rxq_proc_cycles;
            ds_put_format(reply, "  port: %-16s  queue-id: %2d", name,
                          netdev_rxq_get_queue_id(list[i].rxq->rx));
            ds_put_format(reply, " %s", netdev_rxq_enabled(list[i].rxq->rx)
                                        ? "(enabled) " : "(disabled)");
            ds_put_format(reply, "  pmd usage: ");
            if (total_pmd_cycles) {
                ds_put_format(reply, "%2"PRIu64"",
                              rxq_proc_cycles * 100 / total_pmd_cycles);
                ds_put_cstr(reply, " %");
            } else {
                ds_put_format(reply, "%s", "NOT AVAIL");
            }
            ds_put_cstr(reply, "\n");
        }

        if (n_rxq > 0) {
            ds_put_cstr(reply, "  overhead: ");
            if (total_pmd_cycles) {
                uint64_t overhead_cycles = 0;

                if (total_rxq_proc_cycles < busy_pmd_cycles) {
                    overhead_cycles = busy_pmd_cycles - total_rxq_proc_cycles;
                }
                ds_put_format(reply, "%2"PRIu64" %%",
                              overhead_cycles * 100 / total_pmd_cycles);
            } else {
                ds_put_cstr(reply, "NOT AVAIL");
            }
            ds_put_cstr(reply, "\n");
        }

        ovs_mutex_unlock(&pmd->port_mutex);
        free(list);
    }
}

static int
compare_poll_thread_list(const void *a_, const void *b_)
{
    const struct dp_netdev_pmd_thread *a, *b;

    a = *(struct dp_netdev_pmd_thread **)a_;
    b = *(struct dp_netdev_pmd_thread **)b_;

    if (a->core_id < b->core_id) {
        return -1;
    }
    if (a->core_id > b->core_id) {
        return 1;
    }
    return 0;
}

/* Create a sorted list of pmd's from the dp->poll_threads cmap. We can use
 * this list, as long as we do not go to quiescent state. */
static void
sorted_poll_thread_list(struct dp_netdev *dp,
                        struct dp_netdev_pmd_thread ***list,
                        size_t *n)
{
    struct dp_netdev_pmd_thread *pmd;
    struct dp_netdev_pmd_thread **pmd_list;
    size_t k = 0, n_pmds;

    n_pmds = cmap_count(&dp->poll_threads);
    pmd_list = xcalloc(n_pmds, sizeof *pmd_list);

    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        if (k >= n_pmds) {
            break;
        }
        pmd_list[k++] = pmd;
    }

    qsort(pmd_list, k, sizeof *pmd_list, compare_poll_thread_list);

    *list = pmd_list;
    *n = k;
}

static void
dpif_netdev_subtable_lookup_get(struct unixctl_conn *conn, int argc OVS_UNUSED,
                                const char *argv[] OVS_UNUSED,
                                void *aux OVS_UNUSED)
{
    struct ds reply = DS_EMPTY_INITIALIZER;

    dpcls_impl_print_stats(&reply);
    unixctl_command_reply(conn, ds_cstr(&reply));
    ds_destroy(&reply);
}

static void
dpif_netdev_subtable_lookup_set(struct unixctl_conn *conn, int argc OVS_UNUSED,
                                const char *argv[], void *aux OVS_UNUSED)
{
    /* This function requires 2 parameters (argv[1] and argv[2]) to execute.
     *   argv[1] is subtable name
     *   argv[2] is priority
     */
    const char *func_name = argv[1];

    errno = 0;
    char *err_char;
    uint32_t new_prio = strtoul(argv[2], &err_char, 10);
    uint32_t lookup_dpcls_changed = 0;
    uint32_t lookup_subtable_changed = 0;
    struct shash_node *node;
    if (errno != 0 || new_prio > UINT8_MAX) {
        unixctl_command_reply_error(conn,
            "error converting priority, use integer in range 0-255\n");
        return;
    }

    int32_t err = dpcls_subtable_set_prio(func_name, new_prio);
    if (err) {
        unixctl_command_reply_error(conn,
            "error, subtable lookup function not found\n");
        return;
    }

    ovs_mutex_lock(&dp_netdev_mutex);
    SHASH_FOR_EACH (node, &dp_netdevs) {
        struct dp_netdev *dp = node->data;

        /* Get PMD threads list, required to get DPCLS instances. */
        size_t n;
        struct dp_netdev_pmd_thread **pmd_list;
        sorted_poll_thread_list(dp, &pmd_list, &n);

        /* take port mutex as HMAP iters over them. */
        ovs_rwlock_rdlock(&dp->port_rwlock);

        for (size_t i = 0; i < n; i++) {
            struct dp_netdev_pmd_thread *pmd = pmd_list[i];
            if (pmd->core_id == NON_PMD_CORE_ID) {
                continue;
            }

            struct dp_netdev_port *port = NULL;
            HMAP_FOR_EACH (port, node, &dp->ports) {
                odp_port_t in_port = port->port_no;
                struct dpcls *cls = dp_netdev_pmd_lookup_dpcls(pmd, in_port);
                if (!cls) {
                    continue;
                }
                ovs_mutex_lock(&pmd->flow_mutex);
                uint32_t subtbl_changes = dpcls_subtable_lookup_reprobe(cls);
                ovs_mutex_unlock(&pmd->flow_mutex);
                if (subtbl_changes) {
                    lookup_dpcls_changed++;
                    lookup_subtable_changed += subtbl_changes;
                }
            }
        }

        /* release port mutex before netdev mutex. */
        ovs_rwlock_unlock(&dp->port_rwlock);
        free(pmd_list);
    }
    ovs_mutex_unlock(&dp_netdev_mutex);

    struct ds reply = DS_EMPTY_INITIALIZER;
    ds_put_format(&reply,
        "Lookup priority change affected %d dpcls ports and %d subtables.\n",
        lookup_dpcls_changed, lookup_subtable_changed);
    const char *reply_str = ds_cstr(&reply);
    unixctl_command_reply(conn, reply_str);
    VLOG_INFO("%s", reply_str);
    ds_destroy(&reply);
}

static void
dpif_netdev_impl_get(struct unixctl_conn *conn, int argc OVS_UNUSED,
                     const char *argv[] OVS_UNUSED, void *aux OVS_UNUSED)
{
    struct ds reply = DS_EMPTY_INITIALIZER;
    struct shash_node *node;

    ovs_mutex_lock(&dp_netdev_mutex);
    SHASH_FOR_EACH (node, &dp_netdevs) {
        struct dp_netdev_pmd_thread **pmd_list;
        struct dp_netdev *dp = node->data;
        size_t n;

        /* Get PMD threads list, required to get the DPIF impl used by each PMD
         * thread. */
        sorted_poll_thread_list(dp, &pmd_list, &n);
        dp_netdev_impl_get(&reply, pmd_list, n);
        free(pmd_list);
    }
    ovs_mutex_unlock(&dp_netdev_mutex);
    unixctl_command_reply(conn, ds_cstr(&reply));
    ds_destroy(&reply);
}

static void
dpif_netdev_impl_set(struct unixctl_conn *conn, int argc OVS_UNUSED,
                     const char *argv[], void *aux OVS_UNUSED)
{
    /* This function requires just one parameter, the DPIF name. */
    const char *dpif_name = argv[1];
    struct shash_node *node;

    static const char *error_description[2] = {
        "Unknown DPIF implementation",
        "CPU doesn't support the required instruction for",
    };

    ovs_mutex_lock(&dp_netdev_mutex);
    int32_t err = dp_netdev_impl_set_default_by_name(dpif_name);

    if (err) {
        struct ds reply = DS_EMPTY_INITIALIZER;
        ds_put_format(&reply, "DPIF implementation not available: %s %s.\n",
                      error_description[ (err == -ENOTSUP) ], dpif_name);
        const char *reply_str = ds_cstr(&reply);
        unixctl_command_reply_error(conn, reply_str);
        VLOG_ERR("%s", reply_str);
        ds_destroy(&reply);
        ovs_mutex_unlock(&dp_netdev_mutex);
        return;
    }

    SHASH_FOR_EACH (node, &dp_netdevs) {
        struct dp_netdev *dp = node->data;

        /* Get PMD threads list, required to get DPCLS instances. */
        size_t n;
        struct dp_netdev_pmd_thread **pmd_list;
        sorted_poll_thread_list(dp, &pmd_list, &n);

        for (size_t i = 0; i < n; i++) {
            struct dp_netdev_pmd_thread *pmd = pmd_list[i];
            if (pmd->core_id == NON_PMD_CORE_ID) {
                continue;
            }

            /* Initialize DPIF function pointer to the newly configured
             * default. */
            atomic_store_relaxed(&pmd->netdev_input_func,
                                 dp_netdev_impl_get_default());
        };

        free(pmd_list);
    }
    ovs_mutex_unlock(&dp_netdev_mutex);

    /* Reply with success to command. */
    struct ds reply = DS_EMPTY_INITIALIZER;
    ds_put_format(&reply, "DPIF implementation set to %s.\n", dpif_name);
    const char *reply_str = ds_cstr(&reply);
    unixctl_command_reply(conn, reply_str);
    VLOG_INFO("%s", reply_str);
    ds_destroy(&reply);
}

static void
dpif_miniflow_extract_impl_get(struct unixctl_conn *conn, int argc OVS_UNUSED,
                               const char *argv[] OVS_UNUSED,
                               void *aux OVS_UNUSED)
{
    struct ds reply = DS_EMPTY_INITIALIZER;
    struct shash_node *node;

    ovs_mutex_lock(&dp_netdev_mutex);
    SHASH_FOR_EACH (node, &dp_netdevs) {
        struct dp_netdev_pmd_thread **pmd_list;
        struct dp_netdev *dp = node->data;
        size_t n;

        /* Get PMD threads list, required to get the DPIF impl used by each PMD
         * thread. */
        sorted_poll_thread_list(dp, &pmd_list, &n);
        dp_mfex_impl_get(&reply, pmd_list, n);
        free(pmd_list);
    }
    ovs_mutex_unlock(&dp_netdev_mutex);
    unixctl_command_reply(conn, ds_cstr(&reply));
    ds_destroy(&reply);
}

static void
dpif_miniflow_extract_impl_set(struct unixctl_conn *conn, int argc,
                               const char *argv[], void *aux OVS_UNUSED)
{
    /* This command takes some optional and mandatory arguments. The function
     * here first parses all of the options, saving results in local variables.
     * Then the parsed values are acted on.
     */
    unsigned int pmd_thread_to_change = NON_PMD_CORE_ID;
    unsigned int study_count = MFEX_MAX_PKT_COUNT;
    struct ds reply = DS_EMPTY_INITIALIZER;
    bool pmd_thread_update_done = false;
    bool mfex_name_is_study = false;
    const char *mfex_name = NULL;
    const char *reply_str = NULL;
    struct shash_node *node;
    int err;

    while (argc > 1) {
        /* Optional argument "-pmd" limits the commands actions to just this
         * PMD thread.
         */
        if ((!strcmp(argv[1], "-pmd") && !mfex_name)) {
            if (argc < 3) {
                ds_put_format(&reply,
                              "Error: -pmd option requires a thread id"
                              " argument.\n");
                goto error;
            }

            /* Ensure argument can be parsed to an integer. */
            if (!str_to_uint(argv[2], 10, &pmd_thread_to_change) ||
                (pmd_thread_to_change == NON_PMD_CORE_ID)) {
                ds_put_format(&reply,
                              "Error: miniflow extract parser not changed,"
                              " PMD thread passed is not valid: '%s'."
                              " Pass a valid pmd thread ID.\n",
                              argv[2]);
                goto error;
            }

            argc -= 2;
            argv += 2;

        } else if (!mfex_name) {
            /* Name of MFEX impl requested by user. */
            mfex_name = argv[1];
            mfex_name_is_study = strcmp("study", mfex_name) == 0;
            argc -= 1;
            argv += 1;

        /* If name is study and more args exist, parse study_count value. */
        } else if (mfex_name && mfex_name_is_study) {
            if (!str_to_uint(argv[1], 10, &study_count) ||
                (study_count == 0)) {
                ds_put_format(&reply,
                              "Error: invalid study_pkt_cnt value: %s.\n",
                              argv[1]);
                goto error;
            }

            argc -= 1;
            argv += 1;
        } else {
            ds_put_format(&reply, "Error: unknown argument %s.\n", argv[1]);
            goto error;
        }
    }

    /* Ensure user passed an MFEX name. */
    if (!mfex_name) {
        ds_put_format(&reply, "Error: no miniflow extract name provided."
                      " Output of miniflow-parser-get shows implementation"
                      " list.\n");
        goto error;
    }

    /* If the MFEX name is "study", set the study packet count. */
    if (mfex_name_is_study) {
        err = mfex_set_study_pkt_cnt(study_count, mfex_name);
        if (err) {
            ds_put_format(&reply, "Error: failed to set study count %d for"
                          " miniflow extract implementation %s.\n",
                          study_count, mfex_name);
            goto error;
        }
    }

    /* Set the default MFEX impl only if the command was applied to all PMD
     * threads. If a PMD thread was selected, do NOT update the default.
     */
    if (pmd_thread_to_change == NON_PMD_CORE_ID) {
        err = dp_mfex_impl_set_default_by_name(mfex_name);
        if (err == -ENODEV) {
            ds_put_format(&reply,
                          "Error: miniflow extract not available due to CPU"
                          " ISA requirements: %s",
                          mfex_name);
            goto error;
        } else if (err) {
            ds_put_format(&reply,
                          "Error: unknown miniflow extract implementation %s.",
                          mfex_name);
            goto error;
        }
    }

    /* Get the desired MFEX function pointer and error check its usage. */
    miniflow_extract_func mfex_func = NULL;
    err = dp_mfex_impl_get_by_name(mfex_name, &mfex_func);
    if (err) {
        if (err == -ENODEV) {
            ds_put_format(&reply,
                          "Error: miniflow extract not available due to CPU"
                          " ISA requirements: %s", mfex_name);
        } else {
            ds_put_format(&reply,
                          "Error: unknown miniflow extract implementation %s.",
                          mfex_name);
        }
        goto error;
    }

    /* Apply the MFEX pointer to each pmd thread in each netdev, filtering
     * by the users "-pmd" argument if required.
     */
    ovs_mutex_lock(&dp_netdev_mutex);

    SHASH_FOR_EACH (node, &dp_netdevs) {
        struct dp_netdev_pmd_thread **pmd_list;
        struct dp_netdev *dp = node->data;
        size_t n;

        sorted_poll_thread_list(dp, &pmd_list, &n);

        for (size_t i = 0; i < n; i++) {
            struct dp_netdev_pmd_thread *pmd = pmd_list[i];
            if (pmd->core_id == NON_PMD_CORE_ID) {
                continue;
            }

            /* If -pmd specified, skip all other pmd threads. */
            if ((pmd_thread_to_change != NON_PMD_CORE_ID) &&
                (pmd->core_id != pmd_thread_to_change)) {
                continue;
            }

            pmd_thread_update_done = true;
            atomic_store_relaxed(&pmd->miniflow_extract_opt, mfex_func);
        };

        free(pmd_list);
    }

    ovs_mutex_unlock(&dp_netdev_mutex);

    /* If PMD thread was specified, but it wasn't found, return error. */
    if (pmd_thread_to_change != NON_PMD_CORE_ID && !pmd_thread_update_done) {
        ds_put_format(&reply,
                      "Error: miniflow extract parser not changed, "
                      "PMD thread %d not in use, pass a valid pmd"
                      " thread ID.\n", pmd_thread_to_change);
        goto error;
    }

    /* Reply with success to command. */
    ds_put_format(&reply, "Miniflow extract implementation set to %s",
                  mfex_name);
    if (pmd_thread_to_change != NON_PMD_CORE_ID) {
        ds_put_format(&reply, ", on pmd thread %d", pmd_thread_to_change);
    }
    if (mfex_name_is_study) {
        ds_put_format(&reply, ", studying %d packets", study_count);
    }
    ds_put_format(&reply, ".\n");

    reply_str = ds_cstr(&reply);
    VLOG_INFO("%s", reply_str);
    unixctl_command_reply(conn, reply_str);
    ds_destroy(&reply);
    return;

error:
    reply_str = ds_cstr(&reply);
    VLOG_ERR("%s", reply_str);
    unixctl_command_reply_error(conn, reply_str);
    ds_destroy(&reply);
}

static void
dpif_netdev_pmd_rebalance(struct unixctl_conn *conn, int argc,
                          const char *argv[], void *aux OVS_UNUSED)
{
    struct ds reply = DS_EMPTY_INITIALIZER;
    struct dp_netdev *dp = NULL;

    ovs_mutex_lock(&dp_netdev_mutex);

    if (argc == 2) {
        dp = shash_find_data(&dp_netdevs, argv[1]);
    } else if (shash_count(&dp_netdevs) == 1) {
        /* There's only one datapath */
        dp = shash_first(&dp_netdevs)->data;
    }

    if (!dp) {
        ovs_mutex_unlock(&dp_netdev_mutex);
        unixctl_command_reply_error(conn,
                                    "please specify an existing datapath");
        return;
    }

    dp_netdev_request_reconfigure(dp);
    ovs_mutex_unlock(&dp_netdev_mutex);
    ds_put_cstr(&reply, "pmd rxq rebalance requested.\n");
    unixctl_command_reply(conn, ds_cstr(&reply));
    ds_destroy(&reply);
}

static void
dpif_netdev_pmd_info(struct unixctl_conn *conn, int argc, const char *argv[],
                     void *aux)
{
    struct ds reply = DS_EMPTY_INITIALIZER;
    struct dp_netdev_pmd_thread **pmd_list;
    struct dp_netdev *dp = NULL;
    enum pmd_info_type type = *(enum pmd_info_type *) aux;
    unsigned int core_id;
    bool filter_on_pmd = false;
    size_t n;
    unsigned int secs = 0;
    unsigned long long max_secs = (PMD_INTERVAL_LEN * PMD_INTERVAL_MAX)
                                      / INTERVAL_USEC_TO_SEC;
    bool first_show_rxq = true;

    ovs_mutex_lock(&dp_netdev_mutex);

    while (argc > 1) {
        if (!strcmp(argv[1], "-pmd") && argc > 2) {
            if (str_to_uint(argv[2], 10, &core_id)) {
                filter_on_pmd = true;
            }
            argc -= 2;
            argv += 2;
        } else if (type == PMD_INFO_SHOW_RXQ &&
                       !strcmp(argv[1], "-secs") &&
                       argc > 2) {
            if (!str_to_uint(argv[2], 10, &secs)) {
                secs = max_secs;
            }
            argc -= 2;
            argv += 2;
        } else {
            dp = shash_find_data(&dp_netdevs, argv[1]);
            argc -= 1;
            argv += 1;
        }
    }

    if (!dp) {
        if (shash_count(&dp_netdevs) == 1) {
            /* There's only one datapath */
            dp = shash_first(&dp_netdevs)->data;
        } else {
            ovs_mutex_unlock(&dp_netdev_mutex);
            unixctl_command_reply_error(conn,
                                        "please specify an existing datapath");
            return;
        }
    }

    sorted_poll_thread_list(dp, &pmd_list, &n);
    for (size_t i = 0; i < n; i++) {
        struct dp_netdev_pmd_thread *pmd = pmd_list[i];
        if (!pmd) {
            break;
        }
        if (filter_on_pmd && pmd->core_id != core_id) {
            continue;
        }
        if (type == PMD_INFO_SHOW_RXQ) {
            if (first_show_rxq) {
                if (!secs || secs > max_secs) {
                    secs = max_secs;
                } else {
                    secs = ROUND_UP(secs,
                                    PMD_INTERVAL_LEN / INTERVAL_USEC_TO_SEC);
                }
                ds_put_format(&reply, "Displaying last %u seconds "
                              "pmd usage %%\n", secs);
                first_show_rxq = false;
            }
            pmd_info_show_rxq(&reply, pmd, secs);
        } else if (type == PMD_INFO_CLEAR_STATS) {
            pmd_perf_stats_clear(&pmd->perf_stats);
        } else if (type == PMD_INFO_SHOW_STATS) {
            pmd_info_show_stats(&reply, pmd);
        } else if (type == PMD_INFO_PERF_SHOW) {
            pmd_info_show_perf(&reply, pmd, (struct pmd_perf_params *)aux);
        }
    }
    free(pmd_list);

    ovs_mutex_unlock(&dp_netdev_mutex);

    unixctl_command_reply(conn, ds_cstr(&reply));
    ds_destroy(&reply);
}

static void
pmd_perf_show_cmd(struct unixctl_conn *conn, int argc,
                          const char *argv[],
                          void *aux OVS_UNUSED)
{
    struct pmd_perf_params par;
    long int it_hist = 0, ms_hist = 0;
    par.histograms = true;

    while (argc > 1) {
        if (!strcmp(argv[1], "-nh")) {
            par.histograms = false;
            argc -= 1;
            argv += 1;
        } else if (!strcmp(argv[1], "-it") && argc > 2) {
            it_hist = strtol(argv[2], NULL, 10);
            if (it_hist < 0) {
                it_hist = 0;
            } else if (it_hist > HISTORY_LEN) {
                it_hist = HISTORY_LEN;
            }
            argc -= 2;
            argv += 2;
        } else if (!strcmp(argv[1], "-ms") && argc > 2) {
            ms_hist = strtol(argv[2], NULL, 10);
            if (ms_hist < 0) {
                ms_hist = 0;
            } else if (ms_hist > HISTORY_LEN) {
                ms_hist = HISTORY_LEN;
            }
            argc -= 2;
            argv += 2;
        } else {
            break;
        }
    }
    par.iter_hist_len = it_hist;
    par.ms_hist_len = ms_hist;
    par.command_type = PMD_INFO_PERF_SHOW;
    dpif_netdev_pmd_info(conn, argc, argv, &par);
}

static void
dpif_netdev_bond_show(struct unixctl_conn *conn, int argc,
                      const char *argv[], void *aux OVS_UNUSED)
{
    struct ds reply = DS_EMPTY_INITIALIZER;
    struct dp_netdev *dp = NULL;

    ovs_mutex_lock(&dp_netdev_mutex);
    if (argc == 2) {
        dp = shash_find_data(&dp_netdevs, argv[1]);
    } else if (shash_count(&dp_netdevs) == 1) {
        /* There's only one datapath. */
        dp = shash_first(&dp_netdevs)->data;
    }
    if (!dp) {
        ovs_mutex_unlock(&dp_netdev_mutex);
        unixctl_command_reply_error(conn,
                                    "please specify an existing datapath");
        return;
    }

    if (cmap_count(&dp->tx_bonds) > 0) {
        struct tx_bond *dp_bond_entry;

        ds_put_cstr(&reply, "Bonds:\n");
        CMAP_FOR_EACH (dp_bond_entry, node, &dp->tx_bonds) {
            ds_put_format(&reply, "  bond-id %"PRIu32":\n",
                          dp_bond_entry->bond_id);
            for (int bucket = 0; bucket < BOND_BUCKETS; bucket++) {
                uint32_t member_id = odp_to_u32(
                    dp_bond_entry->member_buckets[bucket].member_id);
                ds_put_format(&reply,
                              "    bucket %d - member %"PRIu32"\n",
                              bucket, member_id);
            }
        }
    }
    ovs_mutex_unlock(&dp_netdev_mutex);
    unixctl_command_reply(conn, ds_cstr(&reply));
    ds_destroy(&reply);
}


static int
dpif_netdev_init(void)
{
    static enum pmd_info_type show_aux = PMD_INFO_SHOW_STATS,
                              clear_aux = PMD_INFO_CLEAR_STATS,
                              poll_aux = PMD_INFO_SHOW_RXQ;

    unixctl_command_register("dpif-netdev/pmd-stats-show", "[-pmd core] [dp]",
                             0, 3, dpif_netdev_pmd_info,
                             (void *)&show_aux);
    unixctl_command_register("dpif-netdev/pmd-stats-clear", "[-pmd core] [dp]",
                             0, 3, dpif_netdev_pmd_info,
                             (void *)&clear_aux);
    unixctl_command_register("dpif-netdev/pmd-rxq-show", "[-pmd core] "
                             "[-secs secs] [dp]",
                             0, 5, dpif_netdev_pmd_info,
                             (void *)&poll_aux);
    unixctl_command_register("dpif-netdev/pmd-perf-show",
                             "[-nh] [-it iter-history-len]"
                             " [-ms ms-history-len]"
                             " [-pmd core] [dp]",
                             0, 8, pmd_perf_show_cmd,
                             NULL);
    unixctl_command_register("dpif-netdev/pmd-rxq-rebalance", "[dp]",
                             0, 1, dpif_netdev_pmd_rebalance,
                             NULL);
    unixctl_command_register("dpif-netdev/pmd-perf-log-set",
                             "on|off [-b before] [-a after] [-e|-ne] "
                             "[-us usec] [-q qlen]",
                             0, 10, pmd_perf_log_set_cmd,
                             NULL);
    unixctl_command_register("dpif-netdev/bond-show", "[dp]",
                             0, 1, dpif_netdev_bond_show,
                             NULL);
    unixctl_command_register("dpif-netdev/subtable-lookup-prio-set",
                             "[lookup_func] [prio]",
                             2, 2, dpif_netdev_subtable_lookup_set,
                             NULL);
    unixctl_command_register("dpif-netdev/subtable-lookup-info-get", "",
                             0, 0, dpif_netdev_subtable_lookup_get,
                             NULL);
    unixctl_command_register("dpif-netdev/subtable-lookup-prio-get", NULL,
                             0, 0, dpif_netdev_subtable_lookup_get,
                             NULL);
    unixctl_command_register("dpif-netdev/dpif-impl-set",
                             "dpif_implementation_name",
                             1, 1, dpif_netdev_impl_set,
                             NULL);
    unixctl_command_register("dpif-netdev/dpif-impl-get", "",
                             0, 0, dpif_netdev_impl_get,
                             NULL);
    unixctl_command_register("dpif-netdev/miniflow-parser-set",
                             "[-pmd core] miniflow_implementation_name"
                             " [study_pkt_cnt]",
                             1, 5, dpif_miniflow_extract_impl_set,
                             NULL);
    unixctl_command_register("dpif-netdev/miniflow-parser-get", "",
                             0, 0, dpif_miniflow_extract_impl_get,
                             NULL);
    return 0;
}

static int
dpif_netdev_enumerate(struct sset *all_dps,
                      const struct dpif_class *dpif_class)
{
    struct shash_node *node;

    ovs_mutex_lock(&dp_netdev_mutex);
    SHASH_FOR_EACH(node, &dp_netdevs) {
        struct dp_netdev *dp = node->data;
        if (dpif_class != dp->class) {
            /* 'dp_netdevs' contains both "netdev" and "dummy" dpifs.
             * If the class doesn't match, skip this dpif. */
             continue;
        }
        sset_add(all_dps, node->name);
    }
    ovs_mutex_unlock(&dp_netdev_mutex);

    return 0;
}

static bool
dpif_netdev_class_is_dummy(const struct dpif_class *class)
{
    return class != &dpif_netdev_class;
}

static const char *
dpif_netdev_port_open_type(const struct dpif_class *class, const char *type)
{
    return strcmp(type, "internal") ? type
                  : dpif_netdev_class_is_dummy(class) ? "dummy-internal"
                  : "tap";
}

static struct dpif *
create_dpif_netdev(struct dp_netdev *dp)
{
    uint16_t netflow_id = hash_string(dp->name, 0);
    struct dpif_netdev *dpif;

    ovs_refcount_ref(&dp->ref_cnt);

    dpif = xmalloc(sizeof *dpif);
    dpif_init(&dpif->dpif, dp->class, dp->name, netflow_id >> 8, netflow_id);
    dpif->dp = dp;
    dpif->last_port_seq = seq_read(dp->port_seq);

    return &dpif->dpif;
}

/* Choose an unused, non-zero port number and return it on success.
 * Return ODPP_NONE on failure. */
static odp_port_t
choose_port(struct dp_netdev *dp, const char *name)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    uint32_t port_no;

    if (dp->class != &dpif_netdev_class) {
        const char *p;
        int start_no = 0;

        /* If the port name begins with "br", start the number search at
         * 100 to make writing tests easier. */
        if (!strncmp(name, "br", 2)) {
            start_no = 100;
        }

        /* If the port name contains a number, try to assign that port number.
         * This can make writing unit tests easier because port numbers are
         * predictable. */
        for (p = name; *p != '\0'; p++) {
            if (isdigit((unsigned char) *p)) {
                port_no = start_no + strtol(p, NULL, 10);
                if (port_no > 0 && port_no != odp_to_u32(ODPP_NONE)
                    && !dp_netdev_lookup_port(dp, u32_to_odp(port_no))) {
                    return u32_to_odp(port_no);
                }
                break;
            }
        }
    }

    for (port_no = 1; port_no <= UINT16_MAX; port_no++) {
        if (!dp_netdev_lookup_port(dp, u32_to_odp(port_no))) {
            return u32_to_odp(port_no);
        }
    }

    return ODPP_NONE;
}

static uint32_t
dp_meter_hash(uint32_t meter_id)
{
    /* In the ofproto-dpif layer, we use the id-pool to alloc meter id
     * orderly (e.g. 1, 2, ... N.), which provides a better hash
     * distribution.  Use them directly instead of hash_xxx function for
     * achieving high-performance. */
    return meter_id;
}

static void
dp_netdev_meter_destroy(struct dp_netdev *dp)
{
    struct dp_meter *m;

    ovs_mutex_lock(&dp->meters_lock);
    CMAP_FOR_EACH (m, node, &dp->meters) {
        cmap_remove(&dp->meters, &m->node, dp_meter_hash(m->id));
        ovsrcu_postpone(free, m);
    }

    cmap_destroy(&dp->meters);
    ovs_mutex_unlock(&dp->meters_lock);
    ovs_mutex_destroy(&dp->meters_lock);
}

static struct dp_meter *
dp_meter_lookup(struct cmap *meters, uint32_t meter_id)
{
    uint32_t hash = dp_meter_hash(meter_id);
    struct dp_meter *m;

    CMAP_FOR_EACH_WITH_HASH (m, node, hash, meters) {
        if (m->id == meter_id) {
            return m;
        }
    }

    return NULL;
}

static void
dp_meter_detach_free(struct cmap *meters, uint32_t meter_id)
{
    struct dp_meter *m = dp_meter_lookup(meters, meter_id);

    if (m) {
        cmap_remove(meters, &m->node, dp_meter_hash(meter_id));
        ovsrcu_postpone(free, m);
    }
}

static void
dp_meter_attach(struct cmap *meters, struct dp_meter *meter)
{
    cmap_insert(meters, &meter->node, dp_meter_hash(meter->id));
}

static int
create_dp_netdev(const char *name, const struct dpif_class *class,
                 struct dp_netdev **dpp)
    OVS_REQUIRES(dp_netdev_mutex)
{
    static struct ovsthread_once tsc_freq_check = OVSTHREAD_ONCE_INITIALIZER;
    struct dp_netdev *dp;
    int error;

    /* Avoid estimating TSC frequency for dummy datapath to not slow down
     * unit tests. */
    if (!dpif_netdev_class_is_dummy(class)
        && ovsthread_once_start(&tsc_freq_check)) {
        pmd_perf_estimate_tsc_frequency();
        ovsthread_once_done(&tsc_freq_check);
    }

    dp = xzalloc(sizeof *dp);
    shash_add(&dp_netdevs, name, dp);

    *CONST_CAST(const struct dpif_class **, &dp->class) = class;
    *CONST_CAST(const char **, &dp->name) = xstrdup(name);
    ovs_refcount_init(&dp->ref_cnt);
    atomic_flag_clear(&dp->destroyed);

    ovs_rwlock_init(&dp->port_rwlock);
    hmap_init(&dp->ports);
    dp->port_seq = seq_create();
    ovs_mutex_init(&dp->bond_mutex);
    cmap_init(&dp->tx_bonds);

    fat_rwlock_init(&dp->upcall_rwlock);

    dp->reconfigure_seq = seq_create();
    dp->last_reconfigure_seq = seq_read(dp->reconfigure_seq);

    /* Init meter resources. */
    cmap_init(&dp->meters);
    ovs_mutex_init(&dp->meters_lock);

    /* Disable upcalls by default. */
    dp_netdev_disable_upcall(dp);
    dp->upcall_aux = NULL;
    dp->upcall_cb = NULL;

    dp->conntrack = conntrack_init();

    dpif_miniflow_extract_init();

    atomic_init(&dp->emc_insert_min, DEFAULT_EM_FLOW_INSERT_MIN);
    atomic_init(&dp->tx_flush_interval, DEFAULT_TX_FLUSH_INTERVAL);

    cmap_init(&dp->poll_threads);
    dp->pmd_rxq_assign_type = SCHED_CYCLES;

    ovs_mutex_init(&dp->tx_qid_pool_mutex);
    /* We need 1 Tx queue for each possible core + 1 for non-PMD threads. */
    dp->tx_qid_pool = id_pool_create(0, ovs_numa_get_n_cores() + 1);

    ovs_mutex_init_recursive(&dp->non_pmd_mutex);
    ovsthread_key_create(&dp->per_pmd_key, NULL);

    ovs_rwlock_wrlock(&dp->port_rwlock);
    /* non-PMD will be created before all other threads and will
     * allocate static_tx_qid = 0. */
    dp_netdev_set_nonpmd(dp);

    error = do_add_port(dp, name, dpif_netdev_port_open_type(dp->class,
                                                             "internal"),
                        ODPP_LOCAL);
    ovs_rwlock_unlock(&dp->port_rwlock);
    if (error) {
        dp_netdev_free(dp);
        return error;
    }

    dp->last_tnl_conf_seq = seq_read(tnl_conf_seq);
    *dpp = dp;
    return 0;
}

static void
dp_netdev_request_reconfigure(struct dp_netdev *dp)
{
    seq_change(dp->reconfigure_seq);
}

static bool
dp_netdev_is_reconf_required(struct dp_netdev *dp)
{
    return seq_read(dp->reconfigure_seq) != dp->last_reconfigure_seq;
}

static int
dpif_netdev_open(const struct dpif_class *class, const char *name,
                 bool create, struct dpif **dpifp)
{
    struct dp_netdev *dp;
    int error;

    ovs_mutex_lock(&dp_netdev_mutex);
    dp = shash_find_data(&dp_netdevs, name);
    if (!dp) {
        error = create ? create_dp_netdev(name, class, &dp) : ENODEV;
    } else {
        error = (dp->class != class ? EINVAL
                 : create ? EEXIST
                 : 0);
    }
    if (!error) {
        *dpifp = create_dpif_netdev(dp);
    }
    ovs_mutex_unlock(&dp_netdev_mutex);

    return error;
}

static void
dp_netdev_destroy_upcall_lock(struct dp_netdev *dp)
    OVS_NO_THREAD_SAFETY_ANALYSIS
{
    /* Check that upcalls are disabled, i.e. that the rwlock is taken */
    ovs_assert(fat_rwlock_tryrdlock(&dp->upcall_rwlock));

    /* Before freeing a lock we should release it */
    fat_rwlock_unlock(&dp->upcall_rwlock);
    fat_rwlock_destroy(&dp->upcall_rwlock);
}

static uint32_t
hash_bond_id(uint32_t bond_id)
{
    return hash_int(bond_id, 0);
}

/* Requires dp_netdev_mutex so that we can't get a new reference to 'dp'
 * through the 'dp_netdevs' shash while freeing 'dp'. */
static void
dp_netdev_free(struct dp_netdev *dp)
    OVS_REQUIRES(dp_netdev_mutex)
{
    struct dp_netdev_port *port;
    struct tx_bond *bond;

    shash_find_and_delete(&dp_netdevs, dp->name);

    ovs_rwlock_wrlock(&dp->port_rwlock);
    HMAP_FOR_EACH_SAFE (port, node, &dp->ports) {
        do_del_port(dp, port);
    }
    ovs_rwlock_unlock(&dp->port_rwlock);

    ovs_mutex_lock(&dp->bond_mutex);
    CMAP_FOR_EACH (bond, node, &dp->tx_bonds) {
        cmap_remove(&dp->tx_bonds, &bond->node, hash_bond_id(bond->bond_id));
        ovsrcu_postpone(free, bond);
    }
    ovs_mutex_unlock(&dp->bond_mutex);

    dp_netdev_destroy_all_pmds(dp, true);
    cmap_destroy(&dp->poll_threads);

    ovs_mutex_destroy(&dp->tx_qid_pool_mutex);
    id_pool_destroy(dp->tx_qid_pool);

    ovs_mutex_destroy(&dp->non_pmd_mutex);
    ovsthread_key_delete(dp->per_pmd_key);

    conntrack_destroy(dp->conntrack);


    seq_destroy(dp->reconfigure_seq);

    seq_destroy(dp->port_seq);
    hmap_destroy(&dp->ports);
    ovs_rwlock_destroy(&dp->port_rwlock);

    cmap_destroy(&dp->tx_bonds);
    ovs_mutex_destroy(&dp->bond_mutex);

    /* Upcalls must be disabled at this point */
    dp_netdev_destroy_upcall_lock(dp);

    dp_netdev_meter_destroy(dp);

    free(dp->pmd_cmask);
    free(CONST_CAST(char *, dp->name));
    free(dp);
}

static void
dp_netdev_unref(struct dp_netdev *dp)
{
    if (dp) {
        /* Take dp_netdev_mutex so that, if dp->ref_cnt falls to zero, we can't
         * get a new reference to 'dp' through the 'dp_netdevs' shash. */
        ovs_mutex_lock(&dp_netdev_mutex);
        if (ovs_refcount_unref_relaxed(&dp->ref_cnt) == 1) {
            dp_netdev_free(dp);
        }
        ovs_mutex_unlock(&dp_netdev_mutex);
    }
}

static void
dpif_netdev_close(struct dpif *dpif)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);

    dp_netdev_unref(dp);
    free(dpif);
}

static int
dpif_netdev_destroy(struct dpif *dpif)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);

    if (!atomic_flag_test_and_set(&dp->destroyed)) {
        if (ovs_refcount_unref_relaxed(&dp->ref_cnt) == 1) {
            /* Can't happen: 'dpif' still owns a reference to 'dp'. */
            OVS_NOT_REACHED();
        }
    }

    return 0;
}

/* Add 'n' to the atomic variable 'var' non-atomically and using relaxed
 * load/store semantics.  While the increment is not atomic, the load and
 * store operations are, making it impossible to read inconsistent values.
 *
 * This is used to update thread local stats counters. */
static void
non_atomic_ullong_add(atomic_ullong *var, unsigned long long n)
{
    unsigned long long tmp;

    atomic_read_relaxed(var, &tmp);
    tmp += n;
    atomic_store_relaxed(var, tmp);
}

static int
dpif_netdev_get_stats(const struct dpif *dpif, struct dpif_dp_stats *stats)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_pmd_thread *pmd;
    uint64_t pmd_stats[PMD_N_STATS];

    stats->n_flows = stats->n_hit = stats->n_missed = stats->n_lost = 0;
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        stats->n_flows += cmap_count(&pmd->flow_table);
        pmd_perf_read_counters(&pmd->perf_stats, pmd_stats);
        stats->n_hit += pmd_stats[PMD_STAT_PHWOL_HIT];
        stats->n_hit += pmd_stats[PMD_STAT_SIMPLE_HIT];
        stats->n_hit += pmd_stats[PMD_STAT_EXACT_HIT];
        stats->n_hit += pmd_stats[PMD_STAT_SMC_HIT];
        stats->n_hit += pmd_stats[PMD_STAT_MASKED_HIT];
        stats->n_missed += pmd_stats[PMD_STAT_MISS];
        stats->n_lost += pmd_stats[PMD_STAT_LOST];
    }
    stats->n_masks = UINT32_MAX;
    stats->n_mask_hit = UINT64_MAX;
    stats->n_cache_hit = UINT64_MAX;

    return 0;
}

static void
dp_netdev_reload_pmd__(struct dp_netdev_pmd_thread *pmd)
{
    if (pmd->core_id == NON_PMD_CORE_ID) {
        ovs_mutex_lock(&pmd->dp->non_pmd_mutex);
        ovs_mutex_lock(&pmd->port_mutex);
        pmd_load_cached_ports(pmd);
        ovs_mutex_unlock(&pmd->port_mutex);
        ovs_mutex_unlock(&pmd->dp->non_pmd_mutex);
        return;
    }

    seq_change(pmd->reload_seq);
    atomic_store_explicit(&pmd->reload, true, memory_order_release);
}

static uint32_t
hash_port_no(odp_port_t port_no)
{
    return hash_int(odp_to_u32(port_no), 0);
}

static int
port_create(const char *devname, const char *type,
            odp_port_t port_no, struct dp_netdev_port **portp)
{
    struct dp_netdev_port *port;
    enum netdev_flags flags;
    struct netdev *netdev;
    int error;

    *portp = NULL;

    /* Open and validate network device. */
    error = netdev_open(devname, type, &netdev);
    if (error) {
        return error;
    }
    /* XXX reject non-Ethernet devices */

    netdev_get_flags(netdev, &flags);
    if (flags & NETDEV_LOOPBACK) {
        VLOG_ERR("%s: cannot add a loopback device", devname);
        error = EINVAL;
        goto out;
    }

    port = xzalloc(sizeof *port);
    port->port_no = port_no;
    port->netdev = netdev;
    port->type = xstrdup(type);
    port->sf = NULL;
    port->emc_enabled = true;
    port->need_reconfigure = true;
    ovs_mutex_init(&port->txq_used_mutex);

    *portp = port;

    return 0;

out:
    netdev_close(netdev);
    return error;
}

static int
do_add_port(struct dp_netdev *dp, const char *devname, const char *type,
            odp_port_t port_no)
    OVS_REQ_WRLOCK(dp->port_rwlock)
{
    struct netdev_saved_flags *sf;
    struct dp_netdev_port *port;
    int error;

    /* Reject devices already in 'dp'. */
    if (!get_port_by_name(dp, devname, &port)) {
        return EEXIST;
    }

    error = port_create(devname, type, port_no, &port);
    if (error) {
        return error;
    }

    hmap_insert(&dp->ports, &port->node, hash_port_no(port_no));
    seq_change(dp->port_seq);

    reconfigure_datapath(dp);

    /* Check that port was successfully configured. */
    if (!dp_netdev_lookup_port(dp, port_no)) {
        return EINVAL;
    }

    /* Updating device flags triggers an if_notifier, which triggers a bridge
     * reconfiguration and another attempt to add this port, leading to an
     * infinite loop if the device is configured incorrectly and cannot be
     * added.  Setting the promisc mode after a successful reconfiguration,
     * since we already know that the device is somehow properly configured. */
    error = netdev_turn_flags_on(port->netdev, NETDEV_PROMISC, &sf);
    if (error) {
        VLOG_ERR("%s: cannot set promisc flag", devname);
        do_del_port(dp, port);
        return error;
    }
    port->sf = sf;

    return 0;
}

static int
dpif_netdev_port_add(struct dpif *dpif, struct netdev *netdev,
                     odp_port_t *port_nop)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    char namebuf[NETDEV_VPORT_NAME_BUFSIZE];
    const char *dpif_port;
    odp_port_t port_no;
    int error;

    ovs_rwlock_wrlock(&dp->port_rwlock);
    dpif_port = netdev_vport_get_dpif_port(netdev, namebuf, sizeof namebuf);
    if (*port_nop != ODPP_NONE) {
        port_no = *port_nop;
        error = dp_netdev_lookup_port(dp, *port_nop) ? EBUSY : 0;
    } else {
        port_no = choose_port(dp, dpif_port);
        error = port_no == ODPP_NONE ? EFBIG : 0;
    }
    if (!error) {
        *port_nop = port_no;
        error = do_add_port(dp, dpif_port, netdev_get_type(netdev), port_no);
    }
    ovs_rwlock_unlock(&dp->port_rwlock);

    return error;
}

static int
dpif_netdev_port_del(struct dpif *dpif, odp_port_t port_no)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    int error;

    ovs_rwlock_wrlock(&dp->port_rwlock);
    if (port_no == ODPP_LOCAL) {
        error = EINVAL;
    } else {
        struct dp_netdev_port *port;

        error = get_port_by_number(dp, port_no, &port);
        if (!error) {
            do_del_port(dp, port);
        }
    }
    ovs_rwlock_unlock(&dp->port_rwlock);

    return error;
}

static bool
is_valid_port_number(odp_port_t port_no)
{
    return port_no != ODPP_NONE;
}

static struct dp_netdev_port *
dp_netdev_lookup_port(const struct dp_netdev *dp, odp_port_t port_no)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct dp_netdev_port *port;

    HMAP_FOR_EACH_WITH_HASH (port, node, hash_port_no(port_no), &dp->ports) {
        if (port->port_no == port_no) {
            return port;
        }
    }
    return NULL;
}

static int
get_port_by_number(struct dp_netdev *dp,
                   odp_port_t port_no, struct dp_netdev_port **portp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    if (!is_valid_port_number(port_no)) {
        *portp = NULL;
        return EINVAL;
    } else {
        *portp = dp_netdev_lookup_port(dp, port_no);
        return *portp ? 0 : ENODEV;
    }
}

static void
port_destroy(struct dp_netdev_port *port)
{
    if (!port) {
        return;
    }

    netdev_close(port->netdev);
    netdev_restore_flags(port->sf);

    for (unsigned i = 0; i < port->n_rxq; i++) {
        netdev_rxq_close(port->rxqs[i].rx);
    }
    ovs_mutex_destroy(&port->txq_used_mutex);
    free(port->rxq_affinity_list);
    free(port->txq_used);
    free(port->rxqs);
    free(port->type);
    free(port);
}

static int
get_port_by_name(struct dp_netdev *dp,
                 const char *devname, struct dp_netdev_port **portp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct dp_netdev_port *port;

    HMAP_FOR_EACH (port, node, &dp->ports) {
        if (!strcmp(netdev_get_name(port->netdev), devname)) {
            *portp = port;
            return 0;
        }
    }

    /* Callers of dpif_netdev_port_query_by_name() expect ENODEV for a non
     * existing port. */
    return ENODEV;
}

/* Returns 'true' if there is a port with pmd netdev. */
static bool
has_pmd_port(struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct dp_netdev_port *port;

    HMAP_FOR_EACH (port, node, &dp->ports) {
        if (netdev_is_pmd(port->netdev)) {
            return true;
        }
    }

    return false;
}

static void
do_del_port(struct dp_netdev *dp, struct dp_netdev_port *port)
    OVS_REQ_WRLOCK(dp->port_rwlock)
{
    hmap_remove(&dp->ports, &port->node);
    seq_change(dp->port_seq);

    reconfigure_datapath(dp);

    /* Flush and disable offloads only after 'port' has been made
     * inaccessible through datapath reconfiguration.
     * This prevents having PMDs enqueuing offload requests after
     * the flush.
     * When only this port is deleted instead of the whole datapath,
     * revalidator threads are still active and can still enqueue
     * offload modification or deletion. Managing those stray requests
     * is done in the offload threads. */
    dp_netdev_offload_flush(dp, port);
    netdev_uninit_flow_api(port->netdev);

    port_destroy(port);
}

static void
answer_port_query(const struct dp_netdev_port *port,
                  struct dpif_port *dpif_port)
{
    dpif_port->name = xstrdup(netdev_get_name(port->netdev));
    dpif_port->type = xstrdup(port->type);
    dpif_port->port_no = port->port_no;
}

static int
dpif_netdev_port_query_by_number(const struct dpif *dpif, odp_port_t port_no,
                                 struct dpif_port *dpif_port)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_port *port;
    int error;

    ovs_rwlock_wrlock(&dp->port_rwlock);
    error = get_port_by_number(dp, port_no, &port);
    if (!error && dpif_port) {
        answer_port_query(port, dpif_port);
    }
    ovs_rwlock_unlock(&dp->port_rwlock);

    return error;
}

static int
dpif_netdev_port_query_by_name(const struct dpif *dpif, const char *devname,
                               struct dpif_port *dpif_port)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_port *port;
    int error;

    ovs_rwlock_rdlock(&dp->port_rwlock);
    error = get_port_by_name(dp, devname, &port);
    if (!error && dpif_port) {
        answer_port_query(port, dpif_port);
    }
    ovs_rwlock_unlock(&dp->port_rwlock);

    return error;
}

static void
dp_netdev_flow_free(struct dp_netdev_flow *flow)
{
    dp_netdev_actions_free(dp_netdev_flow_get_actions(flow));
    free(flow->dp_extra_info);
    free(flow);
}

void dp_netdev_flow_unref(struct dp_netdev_flow *flow)
{
    if (ovs_refcount_unref_relaxed(&flow->ref_cnt) == 1) {
        ovsrcu_postpone(dp_netdev_flow_free, flow);
    }
}

inline struct dpcls *
dp_netdev_pmd_lookup_dpcls(struct dp_netdev_pmd_thread *pmd,
                           odp_port_t in_port)
{
    struct dpcls *cls;
    uint32_t hash = hash_port_no(in_port);
    CMAP_FOR_EACH_WITH_HASH (cls, node, hash, &pmd->classifiers) {
        if (cls->in_port == in_port) {
            /* Port classifier exists already */
            return cls;
        }
    }
    return NULL;
}

static inline struct dpcls *
dp_netdev_pmd_find_dpcls(struct dp_netdev_pmd_thread *pmd,
                         odp_port_t in_port)
    OVS_REQUIRES(pmd->flow_mutex)
{
    struct dpcls *cls = dp_netdev_pmd_lookup_dpcls(pmd, in_port);

    if (!cls) {
        uint32_t hash = hash_port_no(in_port);

        /* Create new classifier for in_port */
        cls = xmalloc(sizeof(*cls));
        dpcls_init(cls);
        cls->in_port = in_port;
        cmap_insert(&pmd->classifiers, &cls->node, hash);
        VLOG_DBG("Creating dpcls %p for in_port %d", cls, in_port);
    }
    return cls;
}

#define MAX_FLOW_MARK       (UINT32_MAX - 1)
#define INVALID_FLOW_MARK   0
/* Zero flow mark is used to indicate the HW to remove the mark. A packet
 * marked with zero mark is received in SW without a mark at all, so it
 * cannot be used as a valid mark.
 */

struct megaflow_to_mark_data {
    const struct cmap_node node;
    ovs_u128 mega_ufid;
    uint32_t mark;
};

static struct id_fpool *flow_mark_pool;

static uint32_t
flow_mark_alloc(void)
{
    static struct ovsthread_once init_once = OVSTHREAD_ONCE_INITIALIZER;
    unsigned int tid = netdev_offload_thread_id();
    uint32_t mark;

    if (ovsthread_once_start(&init_once)) {
        /* Haven't initiated yet, do it here */
        flow_mark_pool = id_fpool_create(netdev_offload_thread_nb(),
                                         1, MAX_FLOW_MARK);
        ovsthread_once_done(&init_once);
    }

    if (id_fpool_new_id(flow_mark_pool, tid, &mark)) {
        return mark;
    }

    return INVALID_FLOW_MARK;
}

static void
flow_mark_free(uint32_t mark)
{
    unsigned int tid = netdev_offload_thread_id();

    id_fpool_free_id(flow_mark_pool, tid, mark);
}

/* associate megaflow with a mark, which is a 1:1 mapping */
static void
megaflow_to_mark_associate(const ovs_u128 *mega_ufid, uint32_t mark)
{
    size_t hash = dp_netdev_flow_hash(mega_ufid);
    struct megaflow_to_mark_data *data = xzalloc(sizeof(*data));
    unsigned int tid = netdev_offload_thread_id();

    data->mega_ufid = *mega_ufid;
    data->mark = mark;

    cmap_insert(&dp_offload_threads[tid].megaflow_to_mark,
                CONST_CAST(struct cmap_node *, &data->node), hash);
}

/* disassociate meagaflow with a mark */
static void
megaflow_to_mark_disassociate(const ovs_u128 *mega_ufid)
{
    size_t hash = dp_netdev_flow_hash(mega_ufid);
    struct megaflow_to_mark_data *data;
    unsigned int tid = netdev_offload_thread_id();

    CMAP_FOR_EACH_WITH_HASH (data, node, hash,
                             &dp_offload_threads[tid].megaflow_to_mark) {
        if (ovs_u128_equals(*mega_ufid, data->mega_ufid)) {
            cmap_remove(&dp_offload_threads[tid].megaflow_to_mark,
                        CONST_CAST(struct cmap_node *, &data->node), hash);
            ovsrcu_postpone(free, data);
            return;
        }
    }

    VLOG_WARN("Masked ufid "UUID_FMT" is not associated with a mark?\n",
              UUID_ARGS((struct uuid *)mega_ufid));
}

static inline uint32_t
megaflow_to_mark_find(const ovs_u128 *mega_ufid)
{
    size_t hash = dp_netdev_flow_hash(mega_ufid);
    struct megaflow_to_mark_data *data;
    unsigned int tid = netdev_offload_thread_id();

    CMAP_FOR_EACH_WITH_HASH (data, node, hash,
                             &dp_offload_threads[tid].megaflow_to_mark) {
        if (ovs_u128_equals(*mega_ufid, data->mega_ufid)) {
            return data->mark;
        }
    }

    VLOG_DBG("Mark id for ufid "UUID_FMT" was not found\n",
             UUID_ARGS((struct uuid *)mega_ufid));
    return INVALID_FLOW_MARK;
}

/* associate mark with a flow, which is 1:N mapping */
static void
mark_to_flow_associate(const uint32_t mark, struct dp_netdev_flow *flow)
{
    unsigned int tid = netdev_offload_thread_id();
    dp_netdev_flow_ref(flow);

    cmap_insert(&dp_offload_threads[tid].mark_to_flow,
                CONST_CAST(struct cmap_node *, &flow->mark_node),
                hash_int(mark, 0));
    flow->mark = mark;

    VLOG_DBG("Associated dp_netdev flow %p with mark %u mega_ufid "UUID_FMT,
             flow, mark, UUID_ARGS((struct uuid *) &flow->mega_ufid));
}

static bool
flow_mark_has_no_ref(uint32_t mark)
{
    unsigned int tid = netdev_offload_thread_id();
    struct dp_netdev_flow *flow;

    CMAP_FOR_EACH_WITH_HASH (flow, mark_node, hash_int(mark, 0),
                             &dp_offload_threads[tid].mark_to_flow) {
        if (flow->mark == mark) {
            return false;
        }
    }

    return true;
}

static int
mark_to_flow_disassociate(struct dp_netdev *dp,
                          struct dp_netdev_flow *flow)
{
    const char *dpif_type_str = dpif_normalize_type(dp->class->type);
    struct cmap_node *mark_node = CONST_CAST(struct cmap_node *,
                                             &flow->mark_node);
    unsigned int tid = netdev_offload_thread_id();
    uint32_t mark = flow->mark;
    int ret = 0;

    /* INVALID_FLOW_MARK may mean that the flow has been disassociated or
     * never associated. */
    if (OVS_UNLIKELY(mark == INVALID_FLOW_MARK)) {
        return EINVAL;
    }

    cmap_remove(&dp_offload_threads[tid].mark_to_flow,
                mark_node, hash_int(mark, 0));
    flow->mark = INVALID_FLOW_MARK;

    /*
     * no flow is referencing the mark any more? If so, let's
     * remove the flow from hardware and free the mark.
     */
    if (flow_mark_has_no_ref(mark)) {
        struct netdev *port;
        odp_port_t in_port = flow->flow.in_port.odp_port;

        port = netdev_ports_get(in_port, dpif_type_str);
        if (port) {
            /* Taking a global 'port_rwlock' to fulfill thread safety
             * restrictions regarding netdev port mapping. */
            ovs_rwlock_rdlock(&dp->port_rwlock);
            ret = netdev_flow_del(port, &flow->mega_ufid, NULL);
            ovs_rwlock_unlock(&dp->port_rwlock);
            netdev_close(port);
        }

        flow_mark_free(mark);
        VLOG_DBG("Freed flow mark %u mega_ufid "UUID_FMT, mark,
                 UUID_ARGS((struct uuid *) &flow->mega_ufid));

        megaflow_to_mark_disassociate(&flow->mega_ufid);
    }
    dp_netdev_flow_unref(flow);

    return ret;
}

static struct dp_netdev_flow *
mark_to_flow_find(const struct dp_netdev_pmd_thread *pmd,
                  const uint32_t mark)
{
    struct dp_netdev_flow *flow;
    unsigned int tid;
    size_t hash;

    if (dp_offload_threads == NULL) {
        return NULL;
    }

    hash = hash_int(mark, 0);
    for (tid = 0; tid < netdev_offload_thread_nb(); tid++) {
        CMAP_FOR_EACH_WITH_HASH (flow, mark_node, hash,
                                 &dp_offload_threads[tid].mark_to_flow) {
            if (flow->mark == mark && flow->pmd_id == pmd->core_id &&
                flow->dead == false) {
                return flow;
            }
        }
    }

    return NULL;
}

static struct dp_offload_thread_item *
dp_netdev_alloc_flow_offload(struct dp_netdev *dp,
                             struct dp_netdev_flow *flow,
                             int op)
{
    struct dp_offload_thread_item *item;
    struct dp_offload_flow_item *flow_offload;

    item = xzalloc(sizeof *item + sizeof *flow_offload);
    flow_offload = &item->data->flow;

    item->type = DP_OFFLOAD_FLOW;
    item->dp = dp;

    flow_offload->flow = flow;
    flow_offload->op = op;

    dp_netdev_flow_ref(flow);

    return item;
}

static void
dp_netdev_free_flow_offload__(struct dp_offload_thread_item *offload)
{
    struct dp_offload_flow_item *flow_offload = &offload->data->flow;

    free(flow_offload->actions);
    free(offload);
}

static void
dp_netdev_free_flow_offload(struct dp_offload_thread_item *offload)
{
    struct dp_offload_flow_item *flow_offload = &offload->data->flow;

    dp_netdev_flow_unref(flow_offload->flow);
    ovsrcu_postpone(dp_netdev_free_flow_offload__, offload);
}

static void
dp_netdev_free_offload(struct dp_offload_thread_item *offload)
{
    switch (offload->type) {
    case DP_OFFLOAD_FLOW:
        dp_netdev_free_flow_offload(offload);
        break;
    case DP_OFFLOAD_FLUSH:
        free(offload);
        break;
    default:
        OVS_NOT_REACHED();
    };
}

static void
dp_netdev_append_offload(struct dp_offload_thread_item *offload,
                         unsigned int tid)
{
    dp_netdev_offload_init();

    mpsc_queue_insert(&dp_offload_threads[tid].queue, &offload->node);
    atomic_count_inc64(&dp_offload_threads[tid].enqueued_item);
}

static void
dp_netdev_offload_flow_enqueue(struct dp_offload_thread_item *item)
{
    struct dp_offload_flow_item *flow_offload = &item->data->flow;
    unsigned int tid;

    ovs_assert(item->type == DP_OFFLOAD_FLOW);

    tid = netdev_offload_ufid_to_thread_id(flow_offload->flow->mega_ufid);
    dp_netdev_append_offload(item, tid);
}

static int
dp_netdev_flow_offload_del(struct dp_offload_thread_item *item)
{
    return mark_to_flow_disassociate(item->dp, item->data->flow.flow);
}

/*
 * There are two flow offload operations here: addition and modification.
 *
 * For flow addition, this function does:
 * - allocate a new flow mark id
 * - perform hardware flow offload
 * - associate the flow mark with flow and mega flow
 *
 * For flow modification, both flow mark and the associations are still
 * valid, thus only item 2 needed.
 */
static int
dp_netdev_flow_offload_put(struct dp_offload_thread_item *item)
{
    struct dp_offload_flow_item *offload = &item->data->flow;
    struct dp_netdev *dp = item->dp;
    struct dp_netdev_flow *flow = offload->flow;
    odp_port_t in_port = flow->flow.in_port.odp_port;
    const char *dpif_type_str = dpif_normalize_type(dp->class->type);
    bool modification = offload->op == DP_NETDEV_FLOW_OFFLOAD_OP_MOD
                        && flow->mark != INVALID_FLOW_MARK;
    struct offload_info info;
    struct netdev *port;
    uint32_t mark;
    int ret;

    if (flow->dead) {
        return -1;
    }

    if (modification) {
        mark = flow->mark;
    } else {
        /*
         * If a mega flow has already been offloaded (from other PMD
         * instances), do not offload it again.
         */
        mark = megaflow_to_mark_find(&flow->mega_ufid);
        if (mark != INVALID_FLOW_MARK) {
            VLOG_DBG("Flow has already been offloaded with mark %u\n", mark);
            if (flow->mark != INVALID_FLOW_MARK) {
                ovs_assert(flow->mark == mark);
            } else {
                mark_to_flow_associate(mark, flow);
            }
            return 0;
        }

        mark = flow_mark_alloc();
        if (mark == INVALID_FLOW_MARK) {
            VLOG_ERR("Failed to allocate flow mark!\n");
            return -1;
        }
    }
    info.flow_mark = mark;
    info.orig_in_port = offload->orig_in_port;

    port = netdev_ports_get(in_port, dpif_type_str);
    if (!port) {
        goto err_free;
    }

    /* Taking a global 'port_rwlock' to fulfill thread safety
     * restrictions regarding the netdev port mapping. */
    ovs_rwlock_rdlock(&dp->port_rwlock);
    ret = netdev_flow_put(port, &offload->match,
                          CONST_CAST(struct nlattr *, offload->actions),
                          offload->actions_len, &flow->mega_ufid, &info,
                          NULL);
    ovs_rwlock_unlock(&dp->port_rwlock);
    netdev_close(port);

    if (ret) {
        goto err_free;
    }

    if (!modification) {
        megaflow_to_mark_associate(&flow->mega_ufid, mark);
        mark_to_flow_associate(mark, flow);
    }
    return 0;

err_free:
    if (!modification) {
        flow_mark_free(mark);
    } else {
        mark_to_flow_disassociate(item->dp, flow);
    }
    return -1;
}

static void
dp_offload_flow(struct dp_offload_thread_item *item)
{
    struct dp_offload_flow_item *flow_offload = &item->data->flow;
    const char *op;
    int ret;

    switch (flow_offload->op) {
    case DP_NETDEV_FLOW_OFFLOAD_OP_ADD:
        op = "add";
        ret = dp_netdev_flow_offload_put(item);
        break;
    case DP_NETDEV_FLOW_OFFLOAD_OP_MOD:
        op = "modify";
        ret = dp_netdev_flow_offload_put(item);
        break;
    case DP_NETDEV_FLOW_OFFLOAD_OP_DEL:
        op = "delete";
        ret = dp_netdev_flow_offload_del(item);
        break;
    default:
        OVS_NOT_REACHED();
    }

    VLOG_DBG("%s to %s netdev flow "UUID_FMT,
             ret == 0 ? "succeed" : "failed", op,
             UUID_ARGS((struct uuid *) &flow_offload->flow->mega_ufid));
}

static void
dp_offload_flush(struct dp_offload_thread_item *item)
{
    struct dp_offload_flush_item *flush = &item->data->flush;

    ovs_rwlock_rdlock(&item->dp->port_rwlock);
    netdev_flow_flush(flush->netdev);
    ovs_rwlock_unlock(&item->dp->port_rwlock);

    ovs_barrier_block(flush->barrier);

    /* Allow the initiator thread to take again the port lock,
     * before continuing offload operations in this thread.
     */
    ovs_barrier_block(flush->barrier);
}

#define DP_NETDEV_OFFLOAD_BACKOFF_MIN 1
#define DP_NETDEV_OFFLOAD_BACKOFF_MAX 64
#define DP_NETDEV_OFFLOAD_QUIESCE_INTERVAL_US (10 * 1000) /* 10 ms */

static void *
dp_netdev_flow_offload_main(void *arg)
{
    struct dp_offload_thread *ofl_thread = arg;
    struct dp_offload_thread_item *offload;
    struct mpsc_queue_node *node;
    struct mpsc_queue *queue;
    long long int latency_us;
    long long int next_rcu;
    long long int now;
    uint64_t backoff;

    queue = &ofl_thread->queue;
    mpsc_queue_acquire(queue);

    while (true) {
        backoff = DP_NETDEV_OFFLOAD_BACKOFF_MIN;
        while (mpsc_queue_tail(queue) == NULL) {
            xnanosleep(backoff * 1E6);
            if (backoff < DP_NETDEV_OFFLOAD_BACKOFF_MAX) {
                backoff <<= 1;
            }
        }

        next_rcu = time_usec() + DP_NETDEV_OFFLOAD_QUIESCE_INTERVAL_US;
        MPSC_QUEUE_FOR_EACH_POP (node, queue) {
            offload = CONTAINER_OF(node, struct dp_offload_thread_item, node);
            atomic_count_dec64(&ofl_thread->enqueued_item);

            switch (offload->type) {
            case DP_OFFLOAD_FLOW:
                dp_offload_flow(offload);
                break;
            case DP_OFFLOAD_FLUSH:
                dp_offload_flush(offload);
                break;
            default:
                OVS_NOT_REACHED();
            }

            now = time_usec();

            latency_us = now - offload->timestamp;
            mov_avg_cma_update(&ofl_thread->cma, latency_us);
            mov_avg_ema_update(&ofl_thread->ema, latency_us);

            dp_netdev_free_offload(offload);

            /* Do RCU synchronization at fixed interval. */
            if (now > next_rcu) {
                ovsrcu_quiesce();
                next_rcu = time_usec() + DP_NETDEV_OFFLOAD_QUIESCE_INTERVAL_US;
            }
        }
    }

    OVS_NOT_REACHED();
    mpsc_queue_release(queue);

    return NULL;
}

static void
queue_netdev_flow_del(struct dp_netdev_pmd_thread *pmd,
                      struct dp_netdev_flow *flow)
{
    struct dp_offload_thread_item *offload;

    if (!netdev_is_flow_api_enabled()) {
        return;
    }

    offload = dp_netdev_alloc_flow_offload(pmd->dp, flow,
                                           DP_NETDEV_FLOW_OFFLOAD_OP_DEL);
    offload->timestamp = pmd->ctx.now;
    dp_netdev_offload_flow_enqueue(offload);
}

static void
log_netdev_flow_change(const struct dp_netdev_flow *flow,
                       const struct match *match,
                       const struct dp_netdev_actions *old_actions,
                       const struct nlattr *actions,
                       size_t actions_len)
{
    struct ds ds = DS_EMPTY_INITIALIZER;
    struct ofpbuf key_buf, mask_buf;
    struct odp_flow_key_parms odp_parms = {
        .flow = &match->flow,
        .mask = &match->wc.masks,
        .support = dp_netdev_support,
    };

    if (OVS_LIKELY(VLOG_DROP_DBG((&upcall_rl)))) {
        return;
    }

    ofpbuf_init(&key_buf, 0);
    ofpbuf_init(&mask_buf, 0);

    odp_flow_key_from_flow(&odp_parms, &key_buf);
    odp_parms.key_buf = &key_buf;
    odp_flow_key_from_mask(&odp_parms, &mask_buf);

    if (old_actions) {
        ds_put_cstr(&ds, "flow_mod: ");
    } else {
        ds_put_cstr(&ds, "flow_add: ");
    }
    odp_format_ufid(&flow->ufid, &ds);
    ds_put_cstr(&ds, " mega_");
    odp_format_ufid(&flow->mega_ufid, &ds);
    ds_put_cstr(&ds, " ");
    odp_flow_format(key_buf.data, key_buf.size,
                    mask_buf.data, mask_buf.size,
                    NULL, &ds, false);
    if (old_actions) {
        ds_put_cstr(&ds, ", old_actions:");
        format_odp_actions(&ds, old_actions->actions, old_actions->size,
                           NULL);
    }
    ds_put_cstr(&ds, ", actions:");
    format_odp_actions(&ds, actions, actions_len, NULL);

    VLOG_DBG("%s", ds_cstr(&ds));

    ofpbuf_uninit(&key_buf);
    ofpbuf_uninit(&mask_buf);

    /* Add a printout of the actual match installed. */
    struct match m;
    ds_clear(&ds);
    ds_put_cstr(&ds, "flow match: ");
    miniflow_expand(&flow->cr.flow.mf, &m.flow);
    miniflow_expand(&flow->cr.mask->mf, &m.wc.masks);
    memset(&m.tun_md, 0, sizeof m.tun_md);
    match_format(&m, NULL, &ds, OFP_DEFAULT_PRIORITY);

    VLOG_DBG("%s", ds_cstr(&ds));

    ds_destroy(&ds);
}

static void
queue_netdev_flow_put(struct dp_netdev_pmd_thread *pmd,
                      struct dp_netdev_flow *flow, struct match *match,
                      const struct nlattr *actions, size_t actions_len,
                      int op)
{
    struct dp_offload_thread_item *item;
    struct dp_offload_flow_item *flow_offload;

    if (!netdev_is_flow_api_enabled()) {
        return;
    }

    item = dp_netdev_alloc_flow_offload(pmd->dp, flow, op);
    flow_offload = &item->data->flow;
    flow_offload->match = *match;
    flow_offload->actions = xmalloc(actions_len);
    memcpy(flow_offload->actions, actions, actions_len);
    flow_offload->actions_len = actions_len;
    flow_offload->orig_in_port = flow->orig_in_port;

    item->timestamp = pmd->ctx.now;
    dp_netdev_offload_flow_enqueue(item);
}

static void
dp_netdev_pmd_remove_flow(struct dp_netdev_pmd_thread *pmd,
                          struct dp_netdev_flow *flow)
    OVS_REQUIRES(pmd->flow_mutex)
{
    struct cmap_node *node = CONST_CAST(struct cmap_node *, &flow->node);
    struct dpcls *cls;
    odp_port_t in_port = flow->flow.in_port.odp_port;

    cls = dp_netdev_pmd_lookup_dpcls(pmd, in_port);
    ovs_assert(cls != NULL);
    dpcls_remove(cls, &flow->cr);
    dp_netdev_simple_match_remove(pmd, flow);
    cmap_remove(&pmd->flow_table, node, dp_netdev_flow_hash(&flow->ufid));
    ccmap_dec(&pmd->n_flows, odp_to_u32(in_port));
    queue_netdev_flow_del(pmd, flow);
    flow->dead = true;

    dp_netdev_flow_unref(flow);
}

static void
dp_netdev_offload_flush_enqueue(struct dp_netdev *dp,
                                struct netdev *netdev,
                                struct ovs_barrier *barrier)
{
    unsigned int tid;
    long long int now_us = time_usec();

    for (tid = 0; tid < netdev_offload_thread_nb(); tid++) {
        struct dp_offload_thread_item *item;
        struct dp_offload_flush_item *flush;

        item = xmalloc(sizeof *item + sizeof *flush);
        item->type = DP_OFFLOAD_FLUSH;
        item->dp = dp;
        item->timestamp = now_us;

        flush = &item->data->flush;
        flush->netdev = netdev;
        flush->barrier = barrier;

        dp_netdev_append_offload(item, tid);
    }
}

/* Blocking call that will wait on the offload thread to
 * complete its work.  As the flush order will only be
 * enqueued after existing offload requests, those previous
 * offload requests must be processed, which requires being
 * able to lock the 'port_rwlock' from the offload thread.
 *
 * Flow offload flush is done when a port is being deleted.
 * Right after this call executes, the offload API is disabled
 * for the port. This call must be made blocking until the
 * offload provider completed its job.
 */
static void
dp_netdev_offload_flush(struct dp_netdev *dp,
                        struct dp_netdev_port *port)
    OVS_REQ_WRLOCK(dp->port_rwlock)
{
    /* The flush mutex serves to exclude mutual access to the static
     * barrier, and to prevent multiple flush orders to several threads.
     *
     * The memory barrier needs to go beyond the function scope as
     * the other threads can resume from blocking after this function
     * already finished.
     *
     * Additionally, because the flush operation is blocking, it would
     * deadlock if multiple offload threads were blocking on several
     * different barriers. Only allow a single flush order in the offload
     * queue at a time.
     */
    static struct ovs_mutex flush_mutex = OVS_MUTEX_INITIALIZER;
    static struct ovs_barrier barrier OVS_GUARDED_BY(flush_mutex);
    struct netdev *netdev;

    if (!netdev_is_flow_api_enabled()) {
        return;
    }

    ovs_rwlock_unlock(&dp->port_rwlock);
    ovs_mutex_lock(&flush_mutex);

    /* This thread and the offload threads. */
    ovs_barrier_init(&barrier, 1 + netdev_offload_thread_nb());

    netdev = netdev_ref(port->netdev);
    dp_netdev_offload_flush_enqueue(dp, netdev, &barrier);
    ovs_barrier_block(&barrier);
    netdev_close(netdev);

    /* Take back the datapath port lock before allowing the offload
     * threads to proceed further. The port deletion must complete first,
     * to ensure no further offloads are inserted after the flush.
     *
     * Some offload provider (e.g. DPDK) keeps a netdev reference with
     * the offload data. If this reference is not closed, the netdev is
     * kept indefinitely. */
    ovs_rwlock_wrlock(&dp->port_rwlock);

    ovs_barrier_block(&barrier);
    ovs_barrier_destroy(&barrier);

    ovs_mutex_unlock(&flush_mutex);
}

static void
dp_netdev_pmd_flow_flush(struct dp_netdev_pmd_thread *pmd)
{
    struct dp_netdev_flow *netdev_flow;

    ovs_mutex_lock(&pmd->flow_mutex);
    CMAP_FOR_EACH (netdev_flow, node, &pmd->flow_table) {
        dp_netdev_pmd_remove_flow(pmd, netdev_flow);
    }
    ovs_mutex_unlock(&pmd->flow_mutex);
}

static int
dpif_netdev_flow_flush(struct dpif *dpif)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_pmd_thread *pmd;

    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        dp_netdev_pmd_flow_flush(pmd);
    }

    return 0;
}

struct dp_netdev_port_state {
    struct hmap_position position;
    char *name;
};

static int
dpif_netdev_port_dump_start(const struct dpif *dpif OVS_UNUSED, void **statep)
{
    *statep = xzalloc(sizeof(struct dp_netdev_port_state));
    return 0;
}

static int
dpif_netdev_port_dump_next(const struct dpif *dpif, void *state_,
                           struct dpif_port *dpif_port)
{
    struct dp_netdev_port_state *state = state_;
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct hmap_node *node;
    int retval;

    ovs_rwlock_rdlock(&dp->port_rwlock);
    node = hmap_at_position(&dp->ports, &state->position);
    if (node) {
        struct dp_netdev_port *port;

        port = CONTAINER_OF(node, struct dp_netdev_port, node);

        free(state->name);
        state->name = xstrdup(netdev_get_name(port->netdev));
        dpif_port->name = state->name;
        dpif_port->type = port->type;
        dpif_port->port_no = port->port_no;

        retval = 0;
    } else {
        retval = EOF;
    }
    ovs_rwlock_unlock(&dp->port_rwlock);

    return retval;
}

static int
dpif_netdev_port_dump_done(const struct dpif *dpif OVS_UNUSED, void *state_)
{
    struct dp_netdev_port_state *state = state_;
    free(state->name);
    free(state);
    return 0;
}

static int
dpif_netdev_port_poll(const struct dpif *dpif_, char **devnamep OVS_UNUSED)
{
    struct dpif_netdev *dpif = dpif_netdev_cast(dpif_);
    uint64_t new_port_seq;
    int error;

    new_port_seq = seq_read(dpif->dp->port_seq);
    if (dpif->last_port_seq != new_port_seq) {
        dpif->last_port_seq = new_port_seq;
        error = ENOBUFS;
    } else {
        error = EAGAIN;
    }

    return error;
}

static void
dpif_netdev_port_poll_wait(const struct dpif *dpif_)
{
    struct dpif_netdev *dpif = dpif_netdev_cast(dpif_);

    seq_wait(dpif->dp->port_seq, dpif->last_port_seq);
}

static struct dp_netdev_flow *
dp_netdev_flow_cast(const struct dpcls_rule *cr)
{
    return cr ? CONTAINER_OF(cr, struct dp_netdev_flow, cr) : NULL;
}

static bool dp_netdev_flow_ref(struct dp_netdev_flow *flow)
{
    return ovs_refcount_try_ref_rcu(&flow->ref_cnt);
}

/* netdev_flow_key utilities.
 *
 * netdev_flow_key is basically a miniflow.  We use these functions
 * (netdev_flow_key_clone, netdev_flow_key_equal, ...) instead of the miniflow
 * functions (miniflow_clone_inline, miniflow_equal, ...), because:
 *
 * - Since we are dealing exclusively with miniflows created by
 *   miniflow_extract(), if the map is different the miniflow is different.
 *   Therefore we can be faster by comparing the map and the miniflow in a
 *   single memcmp().
 * - These functions can be inlined by the compiler. */

static inline bool
netdev_flow_key_equal(const struct netdev_flow_key *a,
                      const struct netdev_flow_key *b)
{
    /* 'b->len' may be not set yet. */
    return a->hash == b->hash && !memcmp(&a->mf, &b->mf, a->len);
}

static inline void
netdev_flow_key_clone(struct netdev_flow_key *dst,
                      const struct netdev_flow_key *src)
{
    memcpy(dst, src,
           offsetof(struct netdev_flow_key, mf) + src->len);
}

/* Initialize a netdev_flow_key 'mask' from 'match'. */
static inline void
netdev_flow_mask_init(struct netdev_flow_key *mask,
                      const struct match *match)
{
    uint64_t *dst = miniflow_values(&mask->mf);
    struct flowmap fmap;
    uint32_t hash = 0;
    size_t idx;

    /* Only check masks that make sense for the flow. */
    flow_wc_map(&match->flow, &fmap);
    flowmap_init(&mask->mf.map);

    FLOWMAP_FOR_EACH_INDEX(idx, fmap) {
        uint64_t mask_u64 = flow_u64_value(&match->wc.masks, idx);

        if (mask_u64) {
            flowmap_set(&mask->mf.map, idx, 1);
            *dst++ = mask_u64;
            hash = hash_add64(hash, mask_u64);
        }
    }

    map_t map;

    FLOWMAP_FOR_EACH_MAP (map, mask->mf.map) {
        hash = hash_add64(hash, map);
    }

    size_t n = dst - miniflow_get_values(&mask->mf);

    mask->hash = hash_finish(hash, n * 8);
    mask->len = netdev_flow_key_size(n);
}

/* Initializes 'dst' as a copy of 'flow' masked with 'mask'. */
static inline void
netdev_flow_key_init_masked(struct netdev_flow_key *dst,
                            const struct flow *flow,
                            const struct netdev_flow_key *mask)
{
    uint64_t *dst_u64 = miniflow_values(&dst->mf);
    const uint64_t *mask_u64 = miniflow_get_values(&mask->mf);
    uint32_t hash = 0;
    uint64_t value;

    dst->len = mask->len;
    dst->mf = mask->mf;   /* Copy maps. */

    FLOW_FOR_EACH_IN_MAPS(value, flow, mask->mf.map) {
        *dst_u64 = value & *mask_u64++;
        hash = hash_add64(hash, *dst_u64++);
    }
    dst->hash = hash_finish(hash,
                            (dst_u64 - miniflow_get_values(&dst->mf)) * 8);
}

/* Initializes 'key' as a copy of 'flow'. */
static inline void
netdev_flow_key_init(struct netdev_flow_key *key,
                     const struct flow *flow)
{
    uint64_t *dst = miniflow_values(&key->mf);
    uint32_t hash = 0;
    uint64_t value;

    miniflow_map_init(&key->mf, flow);
    miniflow_init(&key->mf, flow);

    size_t n = dst - miniflow_get_values(&key->mf);

    FLOW_FOR_EACH_IN_MAPS (value, flow, key->mf.map) {
        hash = hash_add64(hash, value);
    }

    key->hash = hash_finish(hash, n * 8);
    key->len = netdev_flow_key_size(n);
}

static inline void
emc_change_entry(struct emc_entry *ce, struct dp_netdev_flow *flow,
                 const struct netdev_flow_key *key)
{
    if (ce->flow != flow) {
        if (ce->flow) {
            dp_netdev_flow_unref(ce->flow);
        }

        if (dp_netdev_flow_ref(flow)) {
            ce->flow = flow;
        } else {
            ce->flow = NULL;
        }
    }
    if (key) {
        netdev_flow_key_clone(&ce->key, key);
    }
}

static inline void
emc_insert(struct emc_cache *cache, const struct netdev_flow_key *key,
           struct dp_netdev_flow *flow)
{
    struct emc_entry *to_be_replaced = NULL;
    struct emc_entry *current_entry;

    EMC_FOR_EACH_POS_WITH_HASH(cache, current_entry, key->hash) {
        if (netdev_flow_key_equal(&current_entry->key, key)) {
            /* We found the entry with the 'mf' miniflow */
            emc_change_entry(current_entry, flow, NULL);
            return;
        }

        /* Replacement policy: put the flow in an empty (not alive) entry, or
         * in the first entry where it can be */
        if (!to_be_replaced
            || (emc_entry_alive(to_be_replaced)
                && !emc_entry_alive(current_entry))
            || current_entry->key.hash < to_be_replaced->key.hash) {
            to_be_replaced = current_entry;
        }
    }
    /* We didn't find the miniflow in the cache.
     * The 'to_be_replaced' entry is where the new flow will be stored */

    emc_change_entry(to_be_replaced, flow, key);
}

static inline void
emc_probabilistic_insert(struct dp_netdev_pmd_thread *pmd,
                         const struct netdev_flow_key *key,
                         struct dp_netdev_flow *flow)
{
    /* Insert an entry into the EMC based on probability value 'min'. By
     * default the value is UINT32_MAX / 100 which yields an insertion
     * probability of 1/100 ie. 1% */

    uint32_t min = pmd->ctx.emc_insert_min;

    if (min && random_uint32() <= min) {
        emc_insert(&(pmd->flow_cache).emc_cache, key, flow);
    }
}

static inline const struct cmap_node *
smc_entry_get(struct dp_netdev_pmd_thread *pmd, const uint32_t hash)
{
    struct smc_cache *cache = &(pmd->flow_cache).smc_cache;
    struct smc_bucket *bucket = &cache->buckets[hash & SMC_MASK];
    uint16_t sig = hash >> 16;
    uint16_t index = UINT16_MAX;

    for (int i = 0; i < SMC_ENTRY_PER_BUCKET; i++) {
        if (bucket->sig[i] == sig) {
            index = bucket->flow_idx[i];
            break;
        }
    }
    if (index != UINT16_MAX) {
        return cmap_find_by_index(&pmd->flow_table, index);
    }
    return NULL;
}

/* Insert the flow_table index into SMC. Insertion may fail when 1) SMC is
 * turned off, 2) the flow_table index is larger than uint16_t can handle.
 * If there is already an SMC entry having same signature, the index will be
 * updated. If there is no existing entry, but an empty entry is available,
 * the empty entry will be taken. If no empty entry or existing same signature,
 * a random entry from the hashed bucket will be picked. */
static inline void
smc_insert(struct dp_netdev_pmd_thread *pmd,
           const struct netdev_flow_key *key,
           uint32_t hash)
{
    struct smc_cache *smc_cache = &(pmd->flow_cache).smc_cache;
    struct smc_bucket *bucket = &smc_cache->buckets[key->hash & SMC_MASK];
    uint16_t index;
    uint32_t cmap_index;
    int i;

    if (!pmd->ctx.smc_enable_db) {
        return;
    }

    cmap_index = cmap_find_index(&pmd->flow_table, hash);
    index = (cmap_index >= UINT16_MAX) ? UINT16_MAX : (uint16_t)cmap_index;

    /* If the index is larger than SMC can handle (uint16_t), we don't
     * insert */
    if (index == UINT16_MAX) {
        return;
    }

    /* If an entry with same signature already exists, update the index */
    uint16_t sig = key->hash >> 16;
    for (i = 0; i < SMC_ENTRY_PER_BUCKET; i++) {
        if (bucket->sig[i] == sig) {
            bucket->flow_idx[i] = index;
            return;
        }
    }
    /* If there is an empty entry, occupy it. */
    for (i = 0; i < SMC_ENTRY_PER_BUCKET; i++) {
        if (bucket->flow_idx[i] == UINT16_MAX) {
            bucket->sig[i] = sig;
            bucket->flow_idx[i] = index;
            return;
        }
    }
    /* Otherwise, pick a random entry. */
    i = random_uint32() % SMC_ENTRY_PER_BUCKET;
    bucket->sig[i] = sig;
    bucket->flow_idx[i] = index;
}

inline void
emc_probabilistic_insert_batch(struct dp_netdev_pmd_thread *pmd,
                               const struct netdev_flow_key *keys,
                               struct dpcls_rule **rules,
                               uint32_t emc_insert_mask)
{
    while (emc_insert_mask) {
        uint32_t i = raw_ctz(emc_insert_mask);
        emc_insert_mask &= emc_insert_mask - 1;
        /* Get the require parameters for EMC/SMC from the rule */
        struct dp_netdev_flow *flow = dp_netdev_flow_cast(rules[i]);
        /* Insert the key into EMC/SMC. */
        emc_probabilistic_insert(pmd, &keys[i], flow);
    }
}

inline void
smc_insert_batch(struct dp_netdev_pmd_thread *pmd,
                 const struct netdev_flow_key *keys,
                 struct dpcls_rule **rules,
                 uint32_t smc_insert_mask)
{
    while (smc_insert_mask) {
        uint32_t i = raw_ctz(smc_insert_mask);
        smc_insert_mask &= smc_insert_mask - 1;
        /* Get the require parameters for EMC/SMC from the rule */
        struct dp_netdev_flow *flow = dp_netdev_flow_cast(rules[i]);
        uint32_t hash = dp_netdev_flow_hash(&flow->ufid);
        /* Insert the key into EMC/SMC. */
        smc_insert(pmd, &keys[i], hash);
    }
}

static struct dp_netdev_flow *
dp_netdev_pmd_lookup_flow(struct dp_netdev_pmd_thread *pmd,
                          const struct netdev_flow_key *key,
                          int *lookup_num_p)
{
    struct dpcls *cls;
    struct dpcls_rule *rule = NULL;
    odp_port_t in_port = u32_to_odp(MINIFLOW_GET_U32(&key->mf,
                                                     in_port.odp_port));
    struct dp_netdev_flow *netdev_flow = NULL;

    cls = dp_netdev_pmd_lookup_dpcls(pmd, in_port);
    if (OVS_LIKELY(cls)) {
        dpcls_lookup(cls, &key, &rule, 1, lookup_num_p);
        netdev_flow = dp_netdev_flow_cast(rule);
    }
    return netdev_flow;
}

static struct dp_netdev_flow *
dp_netdev_pmd_find_flow(const struct dp_netdev_pmd_thread *pmd,
                        const ovs_u128 *ufidp, const struct nlattr *key,
                        size_t key_len)
{
    struct dp_netdev_flow *netdev_flow;
    struct flow flow;
    ovs_u128 ufid;

    /* If a UFID is not provided, determine one based on the key. */
    if (!ufidp && key && key_len
        && !dpif_netdev_flow_from_nlattrs(key, key_len, &flow, false)) {
        odp_flow_key_hash(&flow, sizeof flow, &ufid);
        ufidp = &ufid;
    }

    if (ufidp) {
        CMAP_FOR_EACH_WITH_HASH (netdev_flow, node, dp_netdev_flow_hash(ufidp),
                                 &pmd->flow_table) {
            if (ovs_u128_equals(netdev_flow->ufid, *ufidp)) {
                return netdev_flow;
            }
        }
    }

    return NULL;
}

static void
dp_netdev_flow_set_last_stats_attrs(struct dp_netdev_flow *netdev_flow,
                                    const struct dpif_flow_stats *stats,
                                    const struct dpif_flow_attrs *attrs,
                                    int result)
{
    struct dp_netdev_flow_stats *last_stats = &netdev_flow->last_stats;
    struct dp_netdev_flow_attrs *last_attrs = &netdev_flow->last_attrs;

    atomic_store_relaxed(&netdev_flow->netdev_flow_get_result, result);
    if (result) {
        return;
    }

    atomic_store_relaxed(&last_stats->used,         stats->used);
    atomic_store_relaxed(&last_stats->packet_count, stats->n_packets);
    atomic_store_relaxed(&last_stats->byte_count,   stats->n_bytes);
    atomic_store_relaxed(&last_stats->tcp_flags,    stats->tcp_flags);

    atomic_store_relaxed(&last_attrs->offloaded,    attrs->offloaded);
    atomic_store_relaxed(&last_attrs->dp_layer,     attrs->dp_layer);

}

static void
dp_netdev_flow_get_last_stats_attrs(struct dp_netdev_flow *netdev_flow,
                                    struct dpif_flow_stats *stats,
                                    struct dpif_flow_attrs *attrs,
                                    int *result)
{
    struct dp_netdev_flow_stats *last_stats = &netdev_flow->last_stats;
    struct dp_netdev_flow_attrs *last_attrs = &netdev_flow->last_attrs;

    atomic_read_relaxed(&netdev_flow->netdev_flow_get_result, result);
    if (*result) {
        return;
    }

    atomic_read_relaxed(&last_stats->used,         &stats->used);
    atomic_read_relaxed(&last_stats->packet_count, &stats->n_packets);
    atomic_read_relaxed(&last_stats->byte_count,   &stats->n_bytes);
    atomic_read_relaxed(&last_stats->tcp_flags,    &stats->tcp_flags);

    atomic_read_relaxed(&last_attrs->offloaded,    &attrs->offloaded);
    atomic_read_relaxed(&last_attrs->dp_layer,     &attrs->dp_layer);
}

static bool
dpif_netdev_get_flow_offload_status(const struct dp_netdev *dp,
                                    struct dp_netdev_flow *netdev_flow,
                                    struct dpif_flow_stats *stats,
                                    struct dpif_flow_attrs *attrs)
{
    uint64_t act_buf[1024 / 8];
    struct nlattr *actions;
    struct netdev *netdev;
    struct match match;
    struct ofpbuf buf;

    int ret = 0;

    if (!netdev_is_flow_api_enabled()) {
        return false;
    }

    netdev = netdev_ports_get(netdev_flow->flow.in_port.odp_port,
                              dpif_normalize_type(dp->class->type));
    if (!netdev) {
        return false;
    }
    ofpbuf_use_stack(&buf, &act_buf, sizeof act_buf);
    /* Taking a global 'port_rwlock' to fulfill thread safety
     * restrictions regarding netdev port mapping.
     *
     * XXX: Main thread will try to pause/stop all revalidators during datapath
     *      reconfiguration via datapath purge callback (dp_purge_cb) while
     *      rw-holding 'dp->port_rwlock'.  So we're not waiting for lock here.
     *      Otherwise, deadlock is possible, because revalidators might sleep
     *      waiting for the main thread to release the lock and main thread
     *      will wait for them to stop processing.
     *      This workaround might make statistics less accurate. Especially
     *      for flow deletion case, since there will be no other attempt.  */
    if (!ovs_rwlock_tryrdlock(&dp->port_rwlock)) {
        ret = netdev_flow_get(netdev, &match, &actions,
                              &netdev_flow->mega_ufid, stats, attrs, &buf);
        /* Storing statistics and attributes from the last request for
         * later use on mutex contention. */
        dp_netdev_flow_set_last_stats_attrs(netdev_flow, stats, attrs, ret);
        ovs_rwlock_unlock(&dp->port_rwlock);
    } else {
        dp_netdev_flow_get_last_stats_attrs(netdev_flow, stats, attrs, &ret);
        if (!ret && !attrs->dp_layer) {
            /* Flow was never reported as 'offloaded' so it's harmless
             * to continue to think so. */
            ret = EAGAIN;
        }
    }
    netdev_close(netdev);
    if (ret) {
        return false;
    }

    return true;
}

static void
get_dpif_flow_status(const struct dp_netdev *dp,
                     const struct dp_netdev_flow *netdev_flow_,
                     struct dpif_flow_stats *stats,
                     struct dpif_flow_attrs *attrs)
{
    struct dpif_flow_stats offload_stats;
    struct dpif_flow_attrs offload_attrs;
    struct dp_netdev_flow *netdev_flow;
    unsigned long long n;
    long long used;
    uint16_t flags;

    netdev_flow = CONST_CAST(struct dp_netdev_flow *, netdev_flow_);

    atomic_read_relaxed(&netdev_flow->stats.packet_count, &n);
    stats->n_packets = n;
    atomic_read_relaxed(&netdev_flow->stats.byte_count, &n);
    stats->n_bytes = n;
    atomic_read_relaxed(&netdev_flow->stats.used, &used);
    stats->used = used;
    atomic_read_relaxed(&netdev_flow->stats.tcp_flags, &flags);
    stats->tcp_flags = flags;

    if (dpif_netdev_get_flow_offload_status(dp, netdev_flow,
                                            &offload_stats, &offload_attrs)) {
        stats->n_packets += offload_stats.n_packets;
        stats->n_bytes += offload_stats.n_bytes;
        stats->used = MAX(stats->used, offload_stats.used);
        stats->tcp_flags |= offload_stats.tcp_flags;
        if (attrs) {
            attrs->offloaded = offload_attrs.offloaded;
            attrs->dp_layer = offload_attrs.dp_layer;
        }
    } else if (attrs) {
        attrs->offloaded = false;
        attrs->dp_layer = "ovs";
    }
}

/* Converts to the dpif_flow format, using 'key_buf' and 'mask_buf' for
 * storing the netlink-formatted key/mask. 'key_buf' may be the same as
 * 'mask_buf'. Actions will be returned without copying, by relying on RCU to
 * protect them. */
static void
dp_netdev_flow_to_dpif_flow(const struct dp_netdev *dp,
                            const struct dp_netdev_flow *netdev_flow,
                            struct ofpbuf *key_buf, struct ofpbuf *mask_buf,
                            struct dpif_flow *flow, bool terse)
{
    if (terse) {
        memset(flow, 0, sizeof *flow);
    } else {
        struct flow_wildcards wc;
        struct dp_netdev_actions *actions;
        size_t offset;
        struct odp_flow_key_parms odp_parms = {
            .flow = &netdev_flow->flow,
            .mask = &wc.masks,
            .support = dp_netdev_support,
        };

        miniflow_expand(&netdev_flow->cr.mask->mf, &wc.masks);
        /* in_port is exact matched, but we have left it out from the mask for
         * optimnization reasons. Add in_port back to the mask. */
        wc.masks.in_port.odp_port = ODPP_NONE;

        /* Key */
        offset = key_buf->size;
        flow->key = ofpbuf_tail(key_buf);
        odp_flow_key_from_flow(&odp_parms, key_buf);
        flow->key_len = key_buf->size - offset;

        /* Mask */
        offset = mask_buf->size;
        flow->mask = ofpbuf_tail(mask_buf);
        odp_parms.key_buf = key_buf;
        odp_flow_key_from_mask(&odp_parms, mask_buf);
        flow->mask_len = mask_buf->size - offset;

        /* Actions */
        actions = dp_netdev_flow_get_actions(netdev_flow);
        flow->actions = actions->actions;
        flow->actions_len = actions->size;
    }

    flow->ufid = netdev_flow->ufid;
    flow->ufid_present = true;
    flow->pmd_id = netdev_flow->pmd_id;

    get_dpif_flow_status(dp, netdev_flow, &flow->stats, &flow->attrs);
    flow->attrs.dp_extra_info = netdev_flow->dp_extra_info;
}

static int
dpif_netdev_mask_from_nlattrs(const struct nlattr *key, uint32_t key_len,
                              const struct nlattr *mask_key,
                              uint32_t mask_key_len, const struct flow *flow,
                              struct flow_wildcards *wc, bool probe)
{
    enum odp_key_fitness fitness;

    fitness = odp_flow_key_to_mask(mask_key, mask_key_len, wc, flow, NULL);
    if (fitness) {
        if (!probe) {
            /* This should not happen: it indicates that
             * odp_flow_key_from_mask() and odp_flow_key_to_mask()
             * disagree on the acceptable form of a mask.  Log the problem
             * as an error, with enough details to enable debugging. */
            static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);

            if (!VLOG_DROP_ERR(&rl)) {
                struct ds s;

                ds_init(&s);
                odp_flow_format(key, key_len, mask_key, mask_key_len, NULL, &s,
                                true);
                VLOG_ERR("internal error parsing flow mask %s (%s)",
                ds_cstr(&s), odp_key_fitness_to_string(fitness));
                ds_destroy(&s);
            }
        }

        return EINVAL;
    }

    return 0;
}

static int
dpif_netdev_flow_from_nlattrs(const struct nlattr *key, uint32_t key_len,
                              struct flow *flow, bool probe)
{
    if (odp_flow_key_to_flow(key, key_len, flow, NULL)) {
        if (!probe) {
            /* This should not happen: it indicates that
             * odp_flow_key_from_flow() and odp_flow_key_to_flow() disagree on
             * the acceptable form of a flow.  Log the problem as an error,
             * with enough details to enable debugging. */
            static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);

            if (!VLOG_DROP_ERR(&rl)) {
                struct ds s;

                ds_init(&s);
                odp_flow_format(key, key_len, NULL, 0, NULL, &s, true);
                VLOG_ERR("internal error parsing flow key %s", ds_cstr(&s));
                ds_destroy(&s);
            }
        }

        return EINVAL;
    }

    if (flow->ct_state & DP_NETDEV_CS_UNSUPPORTED_MASK) {
        return EINVAL;
    }

    return 0;
}

static int
dpif_netdev_flow_get(const struct dpif *dpif, const struct dpif_flow_get *get)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_flow *netdev_flow;
    struct dp_netdev_pmd_thread *pmd;
    struct hmapx to_find = HMAPX_INITIALIZER(&to_find);
    struct hmapx_node *node;
    int error = EINVAL;

    if (get->pmd_id == PMD_ID_NULL) {
        CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
            if (dp_netdev_pmd_try_ref(pmd) && !hmapx_add(&to_find, pmd)) {
                dp_netdev_pmd_unref(pmd);
            }
        }
    } else {
        pmd = dp_netdev_get_pmd(dp, get->pmd_id);
        if (!pmd) {
            goto out;
        }
        hmapx_add(&to_find, pmd);
    }

    if (!hmapx_count(&to_find)) {
        goto out;
    }

    HMAPX_FOR_EACH (node, &to_find) {
        pmd = (struct dp_netdev_pmd_thread *) node->data;
        netdev_flow = dp_netdev_pmd_find_flow(pmd, get->ufid, get->key,
                                              get->key_len);
        if (netdev_flow) {
            dp_netdev_flow_to_dpif_flow(dp, netdev_flow, get->buffer,
                                        get->buffer, get->flow, false);
            error = 0;
            break;
        } else {
            error = ENOENT;
        }
    }

    HMAPX_FOR_EACH (node, &to_find) {
        pmd = (struct dp_netdev_pmd_thread *) node->data;
        dp_netdev_pmd_unref(pmd);
    }
out:
    hmapx_destroy(&to_find);
    return error;
}

static void
dp_netdev_get_mega_ufid(const struct match *match, ovs_u128 *mega_ufid)
{
    struct flow masked_flow;
    size_t i;

    for (i = 0; i < sizeof(struct flow); i++) {
        ((uint8_t *)&masked_flow)[i] = ((uint8_t *)&match->flow)[i] &
                                       ((uint8_t *)&match->wc)[i];
    }
    odp_flow_key_hash(&masked_flow, sizeof masked_flow, mega_ufid);
}

uint64_t
dp_netdev_simple_match_mark(odp_port_t in_port, ovs_be16 dl_type,
                            uint8_t nw_frag, ovs_be16 vlan_tci)
{
    /* Simple Match Mark:
     *
     * BE:
     * +-----------------+-------------++---------+---+-----------+
     * |     in_port     |   dl_type   || nw_frag |CFI|  VID(12)  |
     * +-----------------+-------------++---------+---+-----------+
     * 0                 32          47 49         51  52     63
     *
     * LE:
     * +-----------------+-------------+------++-------+---+------+
     * |     in_port     |   dl_type   |VID(8)||nw_frag|CFI|VID(4)|
     * +-----------------+-------------+------++-------+---+------+
     * 0                 32          47 48  55  57   59 60  61   63
     *
     *         Big Endian              Little Endian
     * in_port : 32 bits [ 0..31]  in_port : 32 bits [ 0..31]
     * dl_type : 16 bits [32..47]  dl_type : 16 bits [32..47]
     * <empty> :  1 bit  [48..48]  vlan VID:  8 bits [48..55]
     * nw_frag :  2 bits [49..50]  <empty> :  1 bit  [56..56]
     * vlan CFI:  1 bit  [51..51]  nw_frag :  2 bits [57..59]
     * vlan VID: 12 bits [52..63]  vlan CFI:  1 bit  [60..60]
     *                             vlan VID:  4 bits [61..63]
     *
     * Layout is different for LE and BE in order to save a couple of
     * network to host translations.
     * */
    return ((uint64_t) odp_to_u32(in_port) << 32)
           | ((OVS_FORCE uint32_t) dl_type << 16)
#if WORDS_BIGENDIAN
           | (((uint16_t) nw_frag & FLOW_NW_FRAG_MASK) << VLAN_PCP_SHIFT)
#else
           | ((nw_frag & FLOW_NW_FRAG_MASK) << (VLAN_PCP_SHIFT - 8))
#endif
           | (OVS_FORCE uint16_t) (vlan_tci & htons(VLAN_VID_MASK | VLAN_CFI));
}

struct dp_netdev_flow *
dp_netdev_simple_match_lookup(const struct dp_netdev_pmd_thread *pmd,
                              odp_port_t in_port, ovs_be16 dl_type,
                              uint8_t nw_frag, ovs_be16 vlan_tci)
{
    uint64_t mark = dp_netdev_simple_match_mark(in_port, dl_type,
                                                nw_frag, vlan_tci);
    uint32_t hash = hash_uint64(mark);
    struct dp_netdev_flow *flow;
    bool found = false;

    CMAP_FOR_EACH_WITH_HASH (flow, simple_match_node,
                             hash, &pmd->simple_match_table) {
        if (flow->simple_match_mark == mark) {
            found = true;
            break;
        }
    }
    return found ? flow : NULL;
}

bool
dp_netdev_simple_match_enabled(const struct dp_netdev_pmd_thread *pmd,
                               odp_port_t in_port)
{
    return ccmap_find(&pmd->n_flows, odp_to_u32(in_port))
           == ccmap_find(&pmd->n_simple_flows, odp_to_u32(in_port));
}

static void
dp_netdev_simple_match_insert(struct dp_netdev_pmd_thread *pmd,
                              struct dp_netdev_flow *dp_flow)
    OVS_REQUIRES(pmd->flow_mutex)
{
    odp_port_t in_port = dp_flow->flow.in_port.odp_port;
    ovs_be16 vlan_tci = dp_flow->flow.vlans[0].tci;
    ovs_be16 dl_type = dp_flow->flow.dl_type;
    uint8_t nw_frag = dp_flow->flow.nw_frag;

    if (!dp_netdev_flow_ref(dp_flow)) {
        return;
    }

    /* Avoid double insertion.  Should not happen in practice. */
    dp_netdev_simple_match_remove(pmd, dp_flow);

    uint64_t mark = dp_netdev_simple_match_mark(in_port, dl_type,
                                                nw_frag, vlan_tci);
    uint32_t hash = hash_uint64(mark);

    dp_flow->simple_match_mark = mark;
    cmap_insert(&pmd->simple_match_table,
                CONST_CAST(struct cmap_node *, &dp_flow->simple_match_node),
                hash);
    ccmap_inc(&pmd->n_simple_flows, odp_to_u32(in_port));

    VLOG_DBG("Simple match insert: "
             "core_id(%d),in_port(%"PRIu32"),mark(0x%016"PRIx64").",
             pmd->core_id, in_port, mark);
}

static void
dp_netdev_simple_match_remove(struct dp_netdev_pmd_thread *pmd,
                               struct dp_netdev_flow *dp_flow)
    OVS_REQUIRES(pmd->flow_mutex)
{
    odp_port_t in_port = dp_flow->flow.in_port.odp_port;
    ovs_be16 vlan_tci = dp_flow->flow.vlans[0].tci;
    ovs_be16 dl_type = dp_flow->flow.dl_type;
    uint8_t nw_frag = dp_flow->flow.nw_frag;
    struct dp_netdev_flow *flow;
    uint64_t mark = dp_netdev_simple_match_mark(in_port, dl_type,
                                                nw_frag, vlan_tci);
    uint32_t hash = hash_uint64(mark);

    flow = dp_netdev_simple_match_lookup(pmd, in_port, dl_type,
                                         nw_frag, vlan_tci);
    if (flow == dp_flow) {
        VLOG_DBG("Simple match remove: "
                 "core_id(%d),in_port(%"PRIu32"),mark(0x%016"PRIx64").",
                 pmd->core_id, in_port, mark);
        cmap_remove(&pmd->simple_match_table,
                    CONST_CAST(struct cmap_node *, &flow->simple_match_node),
                    hash);
        ccmap_dec(&pmd->n_simple_flows, odp_to_u32(in_port));
        dp_netdev_flow_unref(flow);
    }
}

static bool
dp_netdev_flow_is_simple_match(const struct match *match)
{
    const struct flow *flow = &match->flow;
    const struct flow_wildcards *wc = &match->wc;

    if (flow->recirc_id || flow->packet_type != htonl(PT_ETH)) {
        return false;
    }

    /* Check that flow matches only minimal set of fields that always set.
     * Also checking that VLAN VID+CFI is an exact match, because these
     * are not mandatory and could be masked. */
    struct flow_wildcards *minimal = xmalloc(sizeof *minimal);
    ovs_be16 vlan_tci_mask = htons(VLAN_VID_MASK | VLAN_CFI);

    flow_wildcards_init_catchall(minimal);
    /* 'dpif-netdev' always has following in exact match:
     *   - recirc_id                   <-- recirc_id == 0 checked on input.
     *   - in_port                     <-- Will be checked on input.
     *   - packet_type                 <-- Assuming all packets are PT_ETH.
     *   - dl_type                     <-- Need to match with.
     *   - vlan_tci                    <-- Need to match with.
     *   - and nw_frag for ip packets. <-- Need to match with.
     */
    WC_MASK_FIELD(minimal, recirc_id);
    WC_MASK_FIELD(minimal, in_port);
    WC_MASK_FIELD(minimal, packet_type);
    WC_MASK_FIELD(minimal, dl_type);
    WC_MASK_FIELD_MASK(minimal, vlans[0].tci, vlan_tci_mask);
    WC_MASK_FIELD_MASK(minimal, nw_frag, FLOW_NW_FRAG_MASK);

    if (flow_wildcards_has_extra(minimal, wc)
        || wc->masks.vlans[0].tci != vlan_tci_mask) {
        free(minimal);
        return false;
    }
    free(minimal);

    return true;
}

static struct dp_netdev_flow *
dp_netdev_flow_add(struct dp_netdev_pmd_thread *pmd,
                   struct match *match, const ovs_u128 *ufid,
                   const struct nlattr *actions, size_t actions_len,
                   odp_port_t orig_in_port)
    OVS_REQUIRES(pmd->flow_mutex)
{
    struct ds extra_info = DS_EMPTY_INITIALIZER;
    struct dp_netdev_flow *flow;
    struct netdev_flow_key mask;
    struct dpcls *cls;
    size_t unit;

    /* Make sure in_port is exact matched before we read it. */
    ovs_assert(match->wc.masks.in_port.odp_port == ODPP_NONE);
    odp_port_t in_port = match->flow.in_port.odp_port;

    /* As we select the dpcls based on the port number, each netdev flow
     * belonging to the same dpcls will have the same odp_port value.
     * For performance reasons we wildcard odp_port here in the mask.  In the
     * typical case dp_hash is also wildcarded, and the resulting 8-byte
     * chunk {dp_hash, in_port} will be ignored by netdev_flow_mask_init() and
     * will not be part of the subtable mask.
     * This will speed up the hash computation during dpcls_lookup() because
     * there is one less call to hash_add64() in this case. */
    match->wc.masks.in_port.odp_port = 0;
    netdev_flow_mask_init(&mask, match);
    match->wc.masks.in_port.odp_port = ODPP_NONE;

    /* Make sure wc does not have metadata. */
    ovs_assert(!FLOWMAP_HAS_FIELD(&mask.mf.map, metadata)
               && !FLOWMAP_HAS_FIELD(&mask.mf.map, regs));

    /* Do not allocate extra space. */
    flow = xmalloc(sizeof *flow - sizeof flow->cr.flow.mf + mask.len);
    memset(&flow->stats, 0, sizeof flow->stats);
    atomic_init(&flow->netdev_flow_get_result, 0);
    memset(&flow->last_stats, 0, sizeof flow->last_stats);
    memset(&flow->last_attrs, 0, sizeof flow->last_attrs);
    flow->dead = false;
    flow->batch = NULL;
    flow->mark = INVALID_FLOW_MARK;
    flow->orig_in_port = orig_in_port;
    *CONST_CAST(unsigned *, &flow->pmd_id) = pmd->core_id;
    *CONST_CAST(struct flow *, &flow->flow) = match->flow;
    *CONST_CAST(ovs_u128 *, &flow->ufid) = *ufid;
    ovs_refcount_init(&flow->ref_cnt);
    ovsrcu_set(&flow->actions, dp_netdev_actions_create(actions, actions_len));

    dp_netdev_get_mega_ufid(match, CONST_CAST(ovs_u128 *, &flow->mega_ufid));
    netdev_flow_key_init_masked(&flow->cr.flow, &match->flow, &mask);

    /* Select dpcls for in_port. Relies on in_port to be exact match. */
    cls = dp_netdev_pmd_find_dpcls(pmd, in_port);
    dpcls_insert(cls, &flow->cr, &mask);

    ds_put_cstr(&extra_info, "miniflow_bits(");
    FLOWMAP_FOR_EACH_UNIT (unit) {
        if (unit) {
            ds_put_char(&extra_info, ',');
        }
        ds_put_format(&extra_info, "%d",
                      count_1bits(flow->cr.mask->mf.map.bits[unit]));
    }
    ds_put_char(&extra_info, ')');
    flow->dp_extra_info = ds_steal_cstr(&extra_info);
    ds_destroy(&extra_info);

    cmap_insert(&pmd->flow_table, CONST_CAST(struct cmap_node *, &flow->node),
                dp_netdev_flow_hash(&flow->ufid));
    ccmap_inc(&pmd->n_flows, odp_to_u32(in_port));

    if (dp_netdev_flow_is_simple_match(match)) {
        dp_netdev_simple_match_insert(pmd, flow);
    }

    queue_netdev_flow_put(pmd, flow, match, actions, actions_len,
                          DP_NETDEV_FLOW_OFFLOAD_OP_ADD);
    log_netdev_flow_change(flow, match, NULL, actions, actions_len);

    return flow;
}

static int
flow_put_on_pmd(struct dp_netdev_pmd_thread *pmd,
                struct netdev_flow_key *key,
                struct match *match,
                ovs_u128 *ufid,
                const struct dpif_flow_put *put,
                struct dpif_flow_stats *stats)
{
    struct dp_netdev_flow *netdev_flow;
    int error = 0;

    if (stats) {
        memset(stats, 0, sizeof *stats);
    }

    ovs_mutex_lock(&pmd->flow_mutex);
    netdev_flow = dp_netdev_pmd_lookup_flow(pmd, key, NULL);
    if (!netdev_flow) {
        if (put->flags & DPIF_FP_CREATE) {
            dp_netdev_flow_add(pmd, match, ufid, put->actions,
                               put->actions_len, ODPP_NONE);
        } else {
            error = ENOENT;
        }
    } else {
        if (put->flags & DPIF_FP_MODIFY) {
            struct dp_netdev_actions *new_actions;
            struct dp_netdev_actions *old_actions;

            new_actions = dp_netdev_actions_create(put->actions,
                                                   put->actions_len);

            old_actions = dp_netdev_flow_get_actions(netdev_flow);
            ovsrcu_set(&netdev_flow->actions, new_actions);

            queue_netdev_flow_put(pmd, netdev_flow, match,
                                  put->actions, put->actions_len,
                                  DP_NETDEV_FLOW_OFFLOAD_OP_MOD);
            log_netdev_flow_change(netdev_flow, match, old_actions,
                                   put->actions, put->actions_len);

            if (stats) {
                get_dpif_flow_status(pmd->dp, netdev_flow, stats, NULL);
            }
            if (put->flags & DPIF_FP_ZERO_STATS) {
                /* XXX: The userspace datapath uses thread local statistics
                 * (for flows), which should be updated only by the owning
                 * thread.  Since we cannot write on stats memory here,
                 * we choose not to support this flag.  Please note:
                 * - This feature is currently used only by dpctl commands with
                 *   option --clear.
                 * - Should the need arise, this operation can be implemented
                 *   by keeping a base value (to be update here) for each
                 *   counter, and subtracting it before outputting the stats */
                error = EOPNOTSUPP;
            }

            ovsrcu_postpone(dp_netdev_actions_free, old_actions);
        } else if (put->flags & DPIF_FP_CREATE) {
            error = EEXIST;
        } else {
            /* Overlapping flow. */
            error = EINVAL;
        }
    }
    ovs_mutex_unlock(&pmd->flow_mutex);
    return error;
}

static int
dpif_netdev_flow_put(struct dpif *dpif, const struct dpif_flow_put *put)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct netdev_flow_key key;
    struct dp_netdev_pmd_thread *pmd;
    struct match match;
    ovs_u128 ufid;
    int error;
    bool probe = put->flags & DPIF_FP_PROBE;

    if (put->stats) {
        memset(put->stats, 0, sizeof *put->stats);
    }
    error = dpif_netdev_flow_from_nlattrs(put->key, put->key_len, &match.flow,
                                          probe);
    if (error) {
        return error;
    }
    error = dpif_netdev_mask_from_nlattrs(put->key, put->key_len,
                                          put->mask, put->mask_len,
                                          &match.flow, &match.wc, probe);
    if (error) {
        return error;
    }

    if (match.wc.masks.in_port.odp_port != ODPP_NONE) {
        static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);

        VLOG_ERR_RL(&rl, "failed to put%s flow: in_port is not an exact match",
                    (put->flags & DPIF_FP_CREATE) ? "[create]"
                    : (put->flags & DPIF_FP_MODIFY) ? "[modify]" : "[zero]");
        return EINVAL;
    }

    if (put->ufid) {
        ufid = *put->ufid;
    } else {
        odp_flow_key_hash(&match.flow, sizeof match.flow, &ufid);
    }

    /* The Netlink encoding of datapath flow keys cannot express
     * wildcarding the presence of a VLAN tag. Instead, a missing VLAN
     * tag is interpreted as exact match on the fact that there is no
     * VLAN.  Unless we refactor a lot of code that translates between
     * Netlink and struct flow representations, we have to do the same
     * here.  This must be in sync with 'match' in handle_packet_upcall(). */
    if (!match.wc.masks.vlans[0].tci) {
        match.wc.masks.vlans[0].tci = htons(VLAN_VID_MASK | VLAN_CFI);
    }

    /* Must produce a netdev_flow_key for lookup.
     * Use the same method as employed to create the key when adding
     * the flow to the dplcs to make sure they match.
     * We need to put in the unmasked key as flow_put_on_pmd() will first try
     * to see if an entry exists doing a packet type lookup. As masked-out
     * fields are interpreted as zeros, they could falsely match a wider IP
     * address mask. Installation of the flow will use the match variable. */
    netdev_flow_key_init(&key, &match.flow);

    if (put->pmd_id == PMD_ID_NULL) {
        if (cmap_count(&dp->poll_threads) == 0) {
            return EINVAL;
        }
        CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
            struct dpif_flow_stats pmd_stats;
            int pmd_error;

            pmd_error = flow_put_on_pmd(pmd, &key, &match, &ufid, put,
                                        &pmd_stats);
            if (pmd_error) {
                error = pmd_error;
            } else if (put->stats) {
                put->stats->n_packets += pmd_stats.n_packets;
                put->stats->n_bytes += pmd_stats.n_bytes;
                put->stats->used = MAX(put->stats->used, pmd_stats.used);
                put->stats->tcp_flags |= pmd_stats.tcp_flags;
            }
        }
    } else {
        pmd = dp_netdev_get_pmd(dp, put->pmd_id);
        if (!pmd) {
            return EINVAL;
        }
        error = flow_put_on_pmd(pmd, &key, &match, &ufid, put, put->stats);
        dp_netdev_pmd_unref(pmd);
    }

    return error;
}

static int
flow_del_on_pmd(struct dp_netdev_pmd_thread *pmd,
                struct dpif_flow_stats *stats,
                const struct dpif_flow_del *del)
{
    struct dp_netdev_flow *netdev_flow;
    int error = 0;

    ovs_mutex_lock(&pmd->flow_mutex);
    netdev_flow = dp_netdev_pmd_find_flow(pmd, del->ufid, del->key,
                                          del->key_len);
    if (netdev_flow) {
        if (stats) {
            get_dpif_flow_status(pmd->dp, netdev_flow, stats, NULL);
        }
        dp_netdev_pmd_remove_flow(pmd, netdev_flow);
    } else {
        error = ENOENT;
    }
    ovs_mutex_unlock(&pmd->flow_mutex);

    return error;
}

static int
dpif_netdev_flow_del(struct dpif *dpif, const struct dpif_flow_del *del)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_pmd_thread *pmd;
    int error = 0;

    if (del->stats) {
        memset(del->stats, 0, sizeof *del->stats);
    }

    if (del->pmd_id == PMD_ID_NULL) {
        if (cmap_count(&dp->poll_threads) == 0) {
            return EINVAL;
        }
        CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
            struct dpif_flow_stats pmd_stats;
            int pmd_error;

            pmd_error = flow_del_on_pmd(pmd, &pmd_stats, del);
            if (pmd_error) {
                error = pmd_error;
            } else if (del->stats) {
                del->stats->n_packets += pmd_stats.n_packets;
                del->stats->n_bytes += pmd_stats.n_bytes;
                del->stats->used = MAX(del->stats->used, pmd_stats.used);
                del->stats->tcp_flags |= pmd_stats.tcp_flags;
            }
        }
    } else {
        pmd = dp_netdev_get_pmd(dp, del->pmd_id);
        if (!pmd) {
            return EINVAL;
        }
        error = flow_del_on_pmd(pmd, del->stats, del);
        dp_netdev_pmd_unref(pmd);
    }


    return error;
}

struct dpif_netdev_flow_dump {
    struct dpif_flow_dump up;
    struct cmap_position poll_thread_pos;
    struct cmap_position flow_pos;
    struct dp_netdev_pmd_thread *cur_pmd;
    int status;
    struct ovs_mutex mutex;
};

static struct dpif_netdev_flow_dump *
dpif_netdev_flow_dump_cast(struct dpif_flow_dump *dump)
{
    return CONTAINER_OF(dump, struct dpif_netdev_flow_dump, up);
}

static struct dpif_flow_dump *
dpif_netdev_flow_dump_create(const struct dpif *dpif_, bool terse,
                             struct dpif_flow_dump_types *types OVS_UNUSED)
{
    struct dpif_netdev_flow_dump *dump;

    dump = xzalloc(sizeof *dump);
    dpif_flow_dump_init(&dump->up, dpif_);
    dump->up.terse = terse;
    ovs_mutex_init(&dump->mutex);

    return &dump->up;
}

static int
dpif_netdev_flow_dump_destroy(struct dpif_flow_dump *dump_)
{
    struct dpif_netdev_flow_dump *dump = dpif_netdev_flow_dump_cast(dump_);

    ovs_mutex_destroy(&dump->mutex);
    free(dump);
    return 0;
}

struct dpif_netdev_flow_dump_thread {
    struct dpif_flow_dump_thread up;
    struct dpif_netdev_flow_dump *dump;
    struct odputil_keybuf keybuf[FLOW_DUMP_MAX_BATCH];
    struct odputil_keybuf maskbuf[FLOW_DUMP_MAX_BATCH];
};

static struct dpif_netdev_flow_dump_thread *
dpif_netdev_flow_dump_thread_cast(struct dpif_flow_dump_thread *thread)
{
    return CONTAINER_OF(thread, struct dpif_netdev_flow_dump_thread, up);
}

static struct dpif_flow_dump_thread *
dpif_netdev_flow_dump_thread_create(struct dpif_flow_dump *dump_)
{
    struct dpif_netdev_flow_dump *dump = dpif_netdev_flow_dump_cast(dump_);
    struct dpif_netdev_flow_dump_thread *thread;

    thread = xmalloc(sizeof *thread);
    dpif_flow_dump_thread_init(&thread->up, &dump->up);
    thread->dump = dump;
    return &thread->up;
}

static void
dpif_netdev_flow_dump_thread_destroy(struct dpif_flow_dump_thread *thread_)
{
    struct dpif_netdev_flow_dump_thread *thread
        = dpif_netdev_flow_dump_thread_cast(thread_);

    free(thread);
}

static int
dpif_netdev_flow_dump_next(struct dpif_flow_dump_thread *thread_,
                           struct dpif_flow *flows, int max_flows)
{
    struct dpif_netdev_flow_dump_thread *thread
        = dpif_netdev_flow_dump_thread_cast(thread_);
    struct dpif_netdev_flow_dump *dump = thread->dump;
    struct dp_netdev_flow *netdev_flows[FLOW_DUMP_MAX_BATCH];
    struct dpif_netdev *dpif = dpif_netdev_cast(thread->up.dpif);
    struct dp_netdev *dp = get_dp_netdev(&dpif->dpif);
    int n_flows = 0;
    int i;

    ovs_mutex_lock(&dump->mutex);
    if (!dump->status) {
        struct dp_netdev_pmd_thread *pmd = dump->cur_pmd;
        int flow_limit = MIN(max_flows, FLOW_DUMP_MAX_BATCH);

        /* First call to dump_next(), extracts the first pmd thread.
         * If there is no pmd thread, returns immediately. */
        if (!pmd) {
            pmd = dp_netdev_pmd_get_next(dp, &dump->poll_thread_pos);
            if (!pmd) {
                ovs_mutex_unlock(&dump->mutex);
                return n_flows;

            }
        }

        do {
            for (n_flows = 0; n_flows < flow_limit; n_flows++) {
                struct cmap_node *node;

                node = cmap_next_position(&pmd->flow_table, &dump->flow_pos);
                if (!node) {
                    break;
                }
                netdev_flows[n_flows] = CONTAINER_OF(node,
                                                     struct dp_netdev_flow,
                                                     node);
            }
            /* When finishing dumping the current pmd thread, moves to
             * the next. */
            if (n_flows < flow_limit) {
                memset(&dump->flow_pos, 0, sizeof dump->flow_pos);
                dp_netdev_pmd_unref(pmd);
                pmd = dp_netdev_pmd_get_next(dp, &dump->poll_thread_pos);
                if (!pmd) {
                    dump->status = EOF;
                    break;
                }
            }
            /* Keeps the reference to next caller. */
            dump->cur_pmd = pmd;

            /* If the current dump is empty, do not exit the loop, since the
             * remaining pmds could have flows to be dumped.  Just dumps again
             * on the new 'pmd'. */
        } while (!n_flows);
    }
    ovs_mutex_unlock(&dump->mutex);

    for (i = 0; i < n_flows; i++) {
        struct odputil_keybuf *maskbuf = &thread->maskbuf[i];
        struct odputil_keybuf *keybuf = &thread->keybuf[i];
        struct dp_netdev_flow *netdev_flow = netdev_flows[i];
        struct dpif_flow *f = &flows[i];
        struct ofpbuf key, mask;

        ofpbuf_use_stack(&key, keybuf, sizeof *keybuf);
        ofpbuf_use_stack(&mask, maskbuf, sizeof *maskbuf);
        dp_netdev_flow_to_dpif_flow(dp, netdev_flow, &key, &mask, f,
                                    dump->up.terse);
    }

    return n_flows;
}

static int
dpif_netdev_execute(struct dpif *dpif, struct dpif_execute *execute)
    OVS_NO_THREAD_SAFETY_ANALYSIS
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_pmd_thread *pmd;
    struct dp_packet_batch pp;

    if (dp_packet_size(execute->packet) < ETH_HEADER_LEN ||
        dp_packet_size(execute->packet) > UINT16_MAX) {
        return EINVAL;
    }

    /* Tries finding the 'pmd'.  If NULL is returned, that means
     * the current thread is a non-pmd thread and should use
     * dp_netdev_get_pmd(dp, NON_PMD_CORE_ID). */
    pmd = ovsthread_getspecific(dp->per_pmd_key);
    if (!pmd) {
        pmd = dp_netdev_get_pmd(dp, NON_PMD_CORE_ID);
        if (!pmd) {
            return EBUSY;
        }
    }

    if (execute->probe) {
        /* If this is part of a probe, Drop the packet, since executing
         * the action may actually cause spurious packets be sent into
         * the network. */
        if (pmd->core_id == NON_PMD_CORE_ID) {
            dp_netdev_pmd_unref(pmd);
        }
        return 0;
    }

    /* If the current thread is non-pmd thread, acquires
     * the 'non_pmd_mutex'. */
    if (pmd->core_id == NON_PMD_CORE_ID) {
        ovs_mutex_lock(&dp->non_pmd_mutex);
    }

    /* Update current time in PMD context. We don't care about EMC insertion
     * probability, because we are on a slow path. */
    pmd_thread_ctx_time_update(pmd);

    /* The action processing expects the RSS hash to be valid, because
     * it's always initialized at the beginning of datapath processing.
     * In this case, though, 'execute->packet' may not have gone through
     * the datapath at all, it may have been generated by the upper layer
     * (OpenFlow packet-out, BFD frame, ...). */
    if (!dp_packet_rss_valid(execute->packet)) {
        dp_packet_set_rss_hash(execute->packet,
                               flow_hash_5tuple(execute->flow, 0));
    }

    /* Making a copy because the packet might be stolen during the execution
     * and caller might still need it.  */
    struct dp_packet *packet_clone = dp_packet_clone(execute->packet);
    dp_packet_batch_init_packet(&pp, packet_clone);
    dp_netdev_execute_actions(pmd, &pp, false, execute->flow,
                              execute->actions, execute->actions_len);
    dp_netdev_pmd_flush_output_packets(pmd, true);

    if (pmd->core_id == NON_PMD_CORE_ID) {
        ovs_mutex_unlock(&dp->non_pmd_mutex);
        dp_netdev_pmd_unref(pmd);
    }

    if (dp_packet_batch_size(&pp) == 1) {
        /* Packet wasn't dropped during the execution.  Swapping content with
         * the original packet, because the caller might expect actions to
         * modify it.  Uisng the packet from a batch instead of 'packet_clone'
         * because it maybe stolen and replaced by other packet, e.g. by
         * the fragmentation engine. */
        dp_packet_swap(execute->packet, pp.packets[0]);
        dp_packet_delete_batch(&pp, true);
    } else if (dp_packet_batch_size(&pp)) {
        /* FIXME: We have more packets than expected.  Likely, we got IP
         * fragments of the reassembled packet.  Dropping them here as we have
         * no way to get them to the caller.  It might be that all the required
         * actions with them are already executed, but it also might not be a
         * case, e.g. if dpif_netdev_execute() called to execute a single
         * tunnel push. */
        dp_packet_delete_batch(&pp, true);
    }

    return 0;
}

static void
dpif_netdev_operate(struct dpif *dpif, struct dpif_op **ops, size_t n_ops,
                    enum dpif_offload_type offload_type OVS_UNUSED)
{
    size_t i;

    for (i = 0; i < n_ops; i++) {
        struct dpif_op *op = ops[i];

        switch (op->type) {
        case DPIF_OP_FLOW_PUT:
            op->error = dpif_netdev_flow_put(dpif, &op->flow_put);
            break;

        case DPIF_OP_FLOW_DEL:
            op->error = dpif_netdev_flow_del(dpif, &op->flow_del);
            break;

        case DPIF_OP_EXECUTE:
            op->error = dpif_netdev_execute(dpif, &op->execute);
            break;

        case DPIF_OP_FLOW_GET:
            op->error = dpif_netdev_flow_get(dpif, &op->flow_get);
            break;
        }
    }
}

static int
dpif_netdev_offload_stats_get(struct dpif *dpif,
                              struct netdev_custom_stats *stats)
{
    enum {
        DP_NETDEV_HW_OFFLOADS_STATS_ENQUEUED,
        DP_NETDEV_HW_OFFLOADS_STATS_INSERTED,
        DP_NETDEV_HW_OFFLOADS_STATS_LAT_CMA_MEAN,
        DP_NETDEV_HW_OFFLOADS_STATS_LAT_CMA_STDDEV,
        DP_NETDEV_HW_OFFLOADS_STATS_LAT_EMA_MEAN,
        DP_NETDEV_HW_OFFLOADS_STATS_LAT_EMA_STDDEV,
    };
    struct {
        const char *name;
        uint64_t total;
    } hwol_stats[] = {
        [DP_NETDEV_HW_OFFLOADS_STATS_ENQUEUED] =
            { "                Enqueued offloads", 0 },
        [DP_NETDEV_HW_OFFLOADS_STATS_INSERTED] =
            { "                Inserted offloads", 0 },
        [DP_NETDEV_HW_OFFLOADS_STATS_LAT_CMA_MEAN] =
            { "  Cumulative Average latency (us)", 0 },
        [DP_NETDEV_HW_OFFLOADS_STATS_LAT_CMA_STDDEV] =
            { "   Cumulative Latency stddev (us)", 0 },
        [DP_NETDEV_HW_OFFLOADS_STATS_LAT_EMA_MEAN] =
            { " Exponential Average latency (us)", 0 },
        [DP_NETDEV_HW_OFFLOADS_STATS_LAT_EMA_STDDEV] =
            { "  Exponential Latency stddev (us)", 0 },
    };
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_port *port;
    unsigned int nb_thread;
    uint64_t *port_nb_offloads;
    uint64_t *nb_offloads;
    unsigned int tid;
    size_t i;

    if (!netdev_is_flow_api_enabled()) {
        return EINVAL;
    }

    nb_thread = netdev_offload_thread_nb();
    /* nb_thread counters for the overall total as well. */
    stats->size = ARRAY_SIZE(hwol_stats) * (nb_thread + 1);
    stats->counters = xcalloc(stats->size, sizeof *stats->counters);

    nb_offloads = xcalloc(nb_thread, sizeof *nb_offloads);
    port_nb_offloads = xcalloc(nb_thread, sizeof *port_nb_offloads);

    ovs_rwlock_rdlock(&dp->port_rwlock);
    HMAP_FOR_EACH (port, node, &dp->ports) {
        memset(port_nb_offloads, 0, nb_thread * sizeof *port_nb_offloads);
        /* Do not abort on read error from a port, just report 0. */
        if (!netdev_flow_get_n_flows(port->netdev, port_nb_offloads)) {
            for (i = 0; i < nb_thread; i++) {
                nb_offloads[i] += port_nb_offloads[i];
            }
        }
    }
    ovs_rwlock_unlock(&dp->port_rwlock);

    free(port_nb_offloads);

    for (tid = 0; tid < nb_thread; tid++) {
        uint64_t counts[ARRAY_SIZE(hwol_stats)];
        size_t idx = ((tid + 1) * ARRAY_SIZE(hwol_stats));

        memset(counts, 0, sizeof counts);
        counts[DP_NETDEV_HW_OFFLOADS_STATS_INSERTED] = nb_offloads[tid];
        if (dp_offload_threads != NULL) {
            atomic_read_relaxed(&dp_offload_threads[tid].enqueued_item,
                                &counts[DP_NETDEV_HW_OFFLOADS_STATS_ENQUEUED]);

            counts[DP_NETDEV_HW_OFFLOADS_STATS_LAT_CMA_MEAN] =
                mov_avg_cma(&dp_offload_threads[tid].cma);
            counts[DP_NETDEV_HW_OFFLOADS_STATS_LAT_CMA_STDDEV] =
                mov_avg_cma_std_dev(&dp_offload_threads[tid].cma);

            counts[DP_NETDEV_HW_OFFLOADS_STATS_LAT_EMA_MEAN] =
                mov_avg_ema(&dp_offload_threads[tid].ema);
            counts[DP_NETDEV_HW_OFFLOADS_STATS_LAT_EMA_STDDEV] =
                mov_avg_ema_std_dev(&dp_offload_threads[tid].ema);
        }

        for (i = 0; i < ARRAY_SIZE(hwol_stats); i++) {
            snprintf(stats->counters[idx + i].name,
                     sizeof(stats->counters[idx + i].name),
                     "  [%3u] %s", tid, hwol_stats[i].name);
            stats->counters[idx + i].value = counts[i];
            hwol_stats[i].total += counts[i];
        }
    }

    free(nb_offloads);

    /* Do an average of the average for the aggregate. */
    hwol_stats[DP_NETDEV_HW_OFFLOADS_STATS_LAT_CMA_MEAN].total /= nb_thread;
    hwol_stats[DP_NETDEV_HW_OFFLOADS_STATS_LAT_CMA_STDDEV].total /= nb_thread;
    hwol_stats[DP_NETDEV_HW_OFFLOADS_STATS_LAT_EMA_MEAN].total /= nb_thread;
    hwol_stats[DP_NETDEV_HW_OFFLOADS_STATS_LAT_EMA_STDDEV].total /= nb_thread;

    for (i = 0; i < ARRAY_SIZE(hwol_stats); i++) {
        snprintf(stats->counters[i].name, sizeof(stats->counters[i].name),
                 "  Total %s", hwol_stats[i].name);
        stats->counters[i].value = hwol_stats[i].total;
    }

    return 0;
}

/* Enable or Disable PMD auto load balancing. */
static void
set_pmd_auto_lb(struct dp_netdev *dp, bool state, bool always_log)
{
    struct pmd_auto_lb *pmd_alb = &dp->pmd_alb;

    if (pmd_alb->is_enabled != state || always_log) {
        pmd_alb->is_enabled = state;
        if (pmd_alb->is_enabled) {
            uint8_t rebalance_load_thresh;

            atomic_read_relaxed(&pmd_alb->rebalance_load_thresh,
                                &rebalance_load_thresh);
            VLOG_INFO("PMD auto load balance is enabled, "
                      "interval %"PRIu64" mins, "
                      "pmd load threshold %"PRIu8"%%, "
                      "improvement threshold %"PRIu8"%%.",
                       pmd_alb->rebalance_intvl / MIN_TO_MSEC,
                       rebalance_load_thresh,
                       pmd_alb->rebalance_improve_thresh);
        } else {
            pmd_alb->rebalance_poll_timer = 0;
            VLOG_INFO("PMD auto load balance is disabled.");
        }
    }
}

/* Applies datapath configuration from the database. Some of the changes are
 * actually applied in dpif_netdev_run(). */
static int
dpif_netdev_set_config(struct dpif *dpif, const struct smap *other_config)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    const char *cmask = smap_get(other_config, "pmd-cpu-mask");
    const char *pmd_rxq_assign = smap_get_def(other_config, "pmd-rxq-assign",
                                             "cycles");
    unsigned long long insert_prob =
        smap_get_ullong(other_config, "emc-insert-inv-prob",
                        DEFAULT_EM_FLOW_INSERT_INV_PROB);
    uint32_t insert_min, cur_min;
    uint32_t tx_flush_interval, cur_tx_flush_interval;
    uint64_t rebalance_intvl;
    uint8_t cur_rebalance_load;
    uint32_t rebalance_load, rebalance_improve;
    uint64_t  pmd_max_sleep, cur_pmd_max_sleep;
    bool log_autolb = false;
    enum sched_assignment_type pmd_rxq_assign_type;
    static bool first_set_config = true;

    tx_flush_interval = smap_get_int(other_config, "tx-flush-interval",
                                     DEFAULT_TX_FLUSH_INTERVAL);
    atomic_read_relaxed(&dp->tx_flush_interval, &cur_tx_flush_interval);
    if (tx_flush_interval != cur_tx_flush_interval) {
        atomic_store_relaxed(&dp->tx_flush_interval, tx_flush_interval);
        VLOG_INFO("Flushing interval for tx queues set to %"PRIu32" us",
                  tx_flush_interval);
    }

    if (!nullable_string_is_equal(dp->pmd_cmask, cmask)) {
        free(dp->pmd_cmask);
        dp->pmd_cmask = nullable_xstrdup(cmask);
        dp_netdev_request_reconfigure(dp);
    }

    atomic_read_relaxed(&dp->emc_insert_min, &cur_min);
    if (insert_prob <= UINT32_MAX) {
        insert_min = insert_prob == 0 ? 0 : UINT32_MAX / insert_prob;
    } else {
        insert_min = DEFAULT_EM_FLOW_INSERT_MIN;
        insert_prob = DEFAULT_EM_FLOW_INSERT_INV_PROB;
    }

    if (insert_min != cur_min) {
        atomic_store_relaxed(&dp->emc_insert_min, insert_min);
        if (insert_min == 0) {
            VLOG_INFO("EMC insertion probability changed to zero");
        } else {
            VLOG_INFO("EMC insertion probability changed to 1/%llu (~%.2f%%)",
                      insert_prob, (100 / (float)insert_prob));
        }
    }

    bool perf_enabled = smap_get_bool(other_config, "pmd-perf-metrics", false);
    bool cur_perf_enabled;
    atomic_read_relaxed(&dp->pmd_perf_metrics, &cur_perf_enabled);
    if (perf_enabled != cur_perf_enabled) {
        atomic_store_relaxed(&dp->pmd_perf_metrics, perf_enabled);
        if (perf_enabled) {
            VLOG_INFO("PMD performance metrics collection enabled");
        } else {
            VLOG_INFO("PMD performance metrics collection disabled");
        }
    }

    bool smc_enable = smap_get_bool(other_config, "smc-enable", false);
    bool cur_smc;
    atomic_read_relaxed(&dp->smc_enable_db, &cur_smc);
    if (smc_enable != cur_smc) {
        atomic_store_relaxed(&dp->smc_enable_db, smc_enable);
        if (smc_enable) {
            VLOG_INFO("SMC cache is enabled");
        } else {
            VLOG_INFO("SMC cache is disabled");
        }
    }

    if (!strcmp(pmd_rxq_assign, "roundrobin")) {
        pmd_rxq_assign_type = SCHED_ROUNDROBIN;
    } else if (!strcmp(pmd_rxq_assign, "cycles")) {
        pmd_rxq_assign_type = SCHED_CYCLES;
    } else if (!strcmp(pmd_rxq_assign, "group")) {
        pmd_rxq_assign_type = SCHED_GROUP;
    } else {
        /* Default. */
        VLOG_WARN("Unsupported rx queue to PMD assignment mode in "
                  "pmd-rxq-assign. Defaulting to 'cycles'.");
        pmd_rxq_assign_type = SCHED_CYCLES;
        pmd_rxq_assign = "cycles";
    }
    if (dp->pmd_rxq_assign_type != pmd_rxq_assign_type) {
        dp->pmd_rxq_assign_type = pmd_rxq_assign_type;
        VLOG_INFO("Rxq to PMD assignment mode changed to: \'%s\'.",
                  pmd_rxq_assign);
        dp_netdev_request_reconfigure(dp);
    }

    bool pmd_iso = smap_get_bool(other_config, "pmd-rxq-isolate", true);

    if (pmd_rxq_assign_type != SCHED_GROUP && pmd_iso == false) {
        /* Invalid combination. */
        VLOG_WARN("pmd-rxq-isolate can only be set false "
                  "when using pmd-rxq-assign=group");
        pmd_iso = true;
    }
    if (dp->pmd_iso != pmd_iso) {
        dp->pmd_iso = pmd_iso;
        if (pmd_iso) {
            VLOG_INFO("pmd-rxq-affinity isolates PMD core");
        } else {
            VLOG_INFO("pmd-rxq-affinity does not isolate PMD core");
        }
        dp_netdev_request_reconfigure(dp);
    }

    struct pmd_auto_lb *pmd_alb = &dp->pmd_alb;

    rebalance_intvl = smap_get_ullong(other_config,
                                      "pmd-auto-lb-rebal-interval",
                                      ALB_REBALANCE_INTERVAL);
    if (rebalance_intvl > MAX_ALB_REBALANCE_INTERVAL) {
        rebalance_intvl = ALB_REBALANCE_INTERVAL;
    }

    /* Input is in min, convert it to msec. */
    rebalance_intvl =
        rebalance_intvl ? rebalance_intvl * MIN_TO_MSEC : MIN_TO_MSEC;

    if (pmd_alb->rebalance_intvl != rebalance_intvl) {
        pmd_alb->rebalance_intvl = rebalance_intvl;
        VLOG_INFO("PMD auto load balance interval set to "
                  "%"PRIu64" mins\n", rebalance_intvl / MIN_TO_MSEC);
        log_autolb = true;
    }

    rebalance_improve = smap_get_uint(other_config,
                                      "pmd-auto-lb-improvement-threshold",
                                      ALB_IMPROVEMENT_THRESHOLD);
    if (rebalance_improve > 100) {
        rebalance_improve = ALB_IMPROVEMENT_THRESHOLD;
    }
    if (rebalance_improve != pmd_alb->rebalance_improve_thresh) {
        pmd_alb->rebalance_improve_thresh = rebalance_improve;
        VLOG_INFO("PMD auto load balance improvement threshold set to "
                  "%"PRIu32"%%", rebalance_improve);
        log_autolb = true;
    }

    rebalance_load = smap_get_uint(other_config, "pmd-auto-lb-load-threshold",
                                   ALB_LOAD_THRESHOLD);
    if (rebalance_load > 100) {
        rebalance_load = ALB_LOAD_THRESHOLD;
    }
    atomic_read_relaxed(&pmd_alb->rebalance_load_thresh, &cur_rebalance_load);
    if (rebalance_load != cur_rebalance_load) {
        atomic_store_relaxed(&pmd_alb->rebalance_load_thresh,
                             rebalance_load);
        VLOG_INFO("PMD auto load balance load threshold set to %"PRIu32"%%",
                  rebalance_load);
        log_autolb = true;
    }

    bool autolb_state = smap_get_bool(other_config, "pmd-auto-lb", false);

    set_pmd_auto_lb(dp, autolb_state, log_autolb);

    pmd_max_sleep = smap_get_ullong(other_config, "pmd-maxsleep", 0);
    pmd_max_sleep = MIN(PMD_RCU_QUIESCE_INTERVAL, pmd_max_sleep);
    atomic_read_relaxed(&dp->pmd_max_sleep, &cur_pmd_max_sleep);
    if (first_set_config || pmd_max_sleep != cur_pmd_max_sleep) {
        atomic_store_relaxed(&dp->pmd_max_sleep, pmd_max_sleep);
        VLOG_INFO("PMD max sleep request is %"PRIu64" usecs.", pmd_max_sleep);
        VLOG_INFO("PMD load based sleeps are %s.",
                  pmd_max_sleep ? "enabled" : "disabled" );
    }

    first_set_config  = false;
    return 0;
}

/* Parses affinity list and returns result in 'core_ids'. */
static int
parse_affinity_list(const char *affinity_list, unsigned *core_ids, int n_rxq)
{
    unsigned i;
    char *list, *copy, *key, *value;
    int error = 0;

    for (i = 0; i < n_rxq; i++) {
        core_ids[i] = OVS_CORE_UNSPEC;
    }

    if (!affinity_list) {
        return 0;
    }

    list = copy = xstrdup(affinity_list);

    while (ofputil_parse_key_value(&list, &key, &value)) {
        int rxq_id, core_id;

        if (!str_to_int(key, 0, &rxq_id) || rxq_id < 0
            || !str_to_int(value, 0, &core_id) || core_id < 0) {
            error = EINVAL;
            break;
        }

        if (rxq_id < n_rxq) {
            core_ids[rxq_id] = core_id;
        }
    }

    free(copy);
    return error;
}

/* Parses 'affinity_list' and applies configuration if it is valid. */
static int
dpif_netdev_port_set_rxq_affinity(struct dp_netdev_port *port,
                                  const char *affinity_list)
{
    unsigned *core_ids, i;
    int error = 0;

    core_ids = xmalloc(port->n_rxq * sizeof *core_ids);
    if (parse_affinity_list(affinity_list, core_ids, port->n_rxq)) {
        error = EINVAL;
        goto exit;
    }

    for (i = 0; i < port->n_rxq; i++) {
        port->rxqs[i].core_id = core_ids[i];
    }

exit:
    free(core_ids);
    return error;
}

/* Returns 'true' if one of the 'port's RX queues exists in 'poll_list'
 * of given PMD thread. */
static bool
dpif_netdev_pmd_polls_port(struct dp_netdev_pmd_thread *pmd,
                           struct dp_netdev_port *port)
    OVS_EXCLUDED(pmd->port_mutex)
{
    struct rxq_poll *poll;
    bool found = false;

    ovs_mutex_lock(&pmd->port_mutex);
    HMAP_FOR_EACH (poll, node, &pmd->poll_list) {
        if (port == poll->rxq->port) {
            found = true;
            break;
        }
    }
    ovs_mutex_unlock(&pmd->port_mutex);
    return found;
}

/* Updates port configuration from the database.  The changes are actually
 * applied in dpif_netdev_run(). */
static int
dpif_netdev_port_set_config(struct dpif *dpif, odp_port_t port_no,
                            const struct smap *cfg)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_port *port;
    int error = 0;
    const char *affinity_list = smap_get(cfg, "pmd-rxq-affinity");
    bool emc_enabled = smap_get_bool(cfg, "emc-enable", true);
    const char *tx_steering_mode = smap_get(cfg, "tx-steering");
    enum txq_req_mode txq_mode;

    ovs_rwlock_wrlock(&dp->port_rwlock);
    error = get_port_by_number(dp, port_no, &port);
    if (error) {
        goto unlock;
    }

    if (emc_enabled != port->emc_enabled) {
        struct dp_netdev_pmd_thread *pmd;
        struct ds ds = DS_EMPTY_INITIALIZER;
        uint32_t cur_min, insert_prob;

        port->emc_enabled = emc_enabled;
        /* Mark for reload all the threads that polls this port and request
         * for reconfiguration for the actual reloading of threads. */
        CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
            if (dpif_netdev_pmd_polls_port(pmd, port)) {
                pmd->need_reload = true;
            }
        }
        dp_netdev_request_reconfigure(dp);

        ds_put_format(&ds, "%s: EMC has been %s.",
                      netdev_get_name(port->netdev),
                      (emc_enabled) ? "enabled" : "disabled");
        if (emc_enabled) {
            ds_put_cstr(&ds, " Current insertion probability is ");
            atomic_read_relaxed(&dp->emc_insert_min, &cur_min);
            if (!cur_min) {
                ds_put_cstr(&ds, "zero.");
            } else {
                insert_prob = UINT32_MAX / cur_min;
                ds_put_format(&ds, "1/%"PRIu32" (~%.2f%%).",
                              insert_prob, 100 / (float) insert_prob);
            }
        }
        VLOG_INFO("%s", ds_cstr(&ds));
        ds_destroy(&ds);
    }

    /* Checking for RXq affinity changes. */
    if (netdev_is_pmd(port->netdev)
        && !nullable_string_is_equal(affinity_list, port->rxq_affinity_list)) {

        error = dpif_netdev_port_set_rxq_affinity(port, affinity_list);
        if (error) {
            goto unlock;
        }
        free(port->rxq_affinity_list);
        port->rxq_affinity_list = nullable_xstrdup(affinity_list);

        dp_netdev_request_reconfigure(dp);
    }

    if (nullable_string_is_equal(tx_steering_mode, "hash")) {
        txq_mode = TXQ_REQ_MODE_HASH;
    } else {
        txq_mode = TXQ_REQ_MODE_THREAD;
    }

    if (txq_mode != port->txq_requested_mode) {
        port->txq_requested_mode = txq_mode;
        VLOG_INFO("%s: Tx packet steering mode has been set to '%s'.",
                  netdev_get_name(port->netdev),
                  (txq_mode == TXQ_REQ_MODE_THREAD) ? "thread" : "hash");
        dp_netdev_request_reconfigure(dp);
    }

unlock:
    ovs_rwlock_unlock(&dp->port_rwlock);
    return error;
}

static int
dpif_netdev_queue_to_priority(const struct dpif *dpif OVS_UNUSED,
                              uint32_t queue_id, uint32_t *priority)
{
    *priority = queue_id;
    return 0;
}


/* Creates and returns a new 'struct dp_netdev_actions', whose actions are
 * a copy of the 'size' bytes of 'actions' input parameters. */
struct dp_netdev_actions *
dp_netdev_actions_create(const struct nlattr *actions, size_t size)
{
    struct dp_netdev_actions *netdev_actions;

    netdev_actions = xmalloc(sizeof *netdev_actions + size);
    netdev_actions->size = size;
    if (size) {
        memcpy(netdev_actions->actions, actions, size);
    }

    return netdev_actions;
}

struct dp_netdev_actions *
dp_netdev_flow_get_actions(const struct dp_netdev_flow *flow)
{
    return ovsrcu_get(struct dp_netdev_actions *, &flow->actions);
}

static void
dp_netdev_actions_free(struct dp_netdev_actions *actions)
{
    free(actions);
}

static void
dp_netdev_rxq_set_cycles(struct dp_netdev_rxq *rx,
                         enum rxq_cycles_counter_type type,
                         unsigned long long cycles)
{
   atomic_store_relaxed(&rx->cycles[type], cycles);
}

static void
dp_netdev_rxq_add_cycles(struct dp_netdev_rxq *rx,
                         enum rxq_cycles_counter_type type,
                         unsigned long long cycles)
{
    non_atomic_ullong_add(&rx->cycles[type], cycles);
}

static uint64_t
dp_netdev_rxq_get_cycles(struct dp_netdev_rxq *rx,
                         enum rxq_cycles_counter_type type)
{
    unsigned long long processing_cycles;
    atomic_read_relaxed(&rx->cycles[type], &processing_cycles);
    return processing_cycles;
}

static void
dp_netdev_rxq_set_intrvl_cycles(struct dp_netdev_rxq *rx,
                                unsigned long long cycles)
{
    unsigned int idx = atomic_count_inc(&rx->intrvl_idx) % PMD_INTERVAL_MAX;
    atomic_store_relaxed(&rx->cycles_intrvl[idx], cycles);
}

static uint64_t
dp_netdev_rxq_get_intrvl_cycles(struct dp_netdev_rxq *rx, unsigned idx)
{
    unsigned long long processing_cycles;
    atomic_read_relaxed(&rx->cycles_intrvl[idx], &processing_cycles);
    return processing_cycles;
}

#if ATOMIC_ALWAYS_LOCK_FREE_8B
static inline bool
pmd_perf_metrics_enabled(const struct dp_netdev_pmd_thread *pmd)
{
    bool pmd_perf_enabled;
    atomic_read_relaxed(&pmd->dp->pmd_perf_metrics, &pmd_perf_enabled);
    return pmd_perf_enabled;
}
#else
/* If stores and reads of 64-bit integers are not atomic, the full PMD
 * performance metrics are not available as locked access to 64 bit
 * integers would be prohibitively expensive. */
static inline bool
pmd_perf_metrics_enabled(const struct dp_netdev_pmd_thread *pmd OVS_UNUSED)
{
    return false;
}
#endif

static int
dp_netdev_pmd_flush_output_on_port(struct dp_netdev_pmd_thread *pmd,
                                   struct tx_port *p)
{
    int i;
    int tx_qid;
    int output_cnt;
    bool concurrent_txqs;
    struct cycle_timer timer;
    uint64_t cycles;
    uint32_t tx_flush_interval;

    cycle_timer_start(&pmd->perf_stats, &timer);

    output_cnt = dp_packet_batch_size(&p->output_pkts);
    ovs_assert(output_cnt > 0);

    if (p->port->txq_mode == TXQ_MODE_XPS_HASH) {
        int n_txq = netdev_n_txq(p->port->netdev);

        /* Re-batch per txq based on packet hash. */
        struct dp_packet *packet;
        DP_PACKET_BATCH_FOR_EACH (j, packet, &p->output_pkts) {
            uint32_t hash;

            if (OVS_LIKELY(dp_packet_rss_valid(packet))) {
                hash = dp_packet_get_rss_hash(packet);
            } else {
                struct flow flow;

                flow_extract(packet, &flow);
                hash = flow_hash_5tuple(&flow, 0);
            }
            dp_packet_batch_add(&p->txq_pkts[hash % n_txq], packet);
        }

        /* Flush batches of each Tx queues. */
        for (i = 0; i < n_txq; i++) {
            if (dp_packet_batch_is_empty(&p->txq_pkts[i])) {
                continue;
            }
            netdev_send(p->port->netdev, i, &p->txq_pkts[i], true);
            dp_packet_batch_init(&p->txq_pkts[i]);
        }
    } else {
        if (p->port->txq_mode == TXQ_MODE_XPS) {
            tx_qid = dpif_netdev_xps_get_tx_qid(pmd, p);
            concurrent_txqs = true;
        } else {
            tx_qid = pmd->static_tx_qid;
            concurrent_txqs = false;
        }
        netdev_send(p->port->netdev, tx_qid, &p->output_pkts, concurrent_txqs);
    }
    dp_packet_batch_init(&p->output_pkts);

    /* Update time of the next flush. */
    atomic_read_relaxed(&pmd->dp->tx_flush_interval, &tx_flush_interval);
    p->flush_time = pmd->ctx.now + tx_flush_interval;

    ovs_assert(pmd->n_output_batches > 0);
    pmd->n_output_batches--;

    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_SENT_PKTS, output_cnt);
    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_SENT_BATCHES, 1);

    /* Distribute send cycles evenly among transmitted packets and assign to
     * their respective rx queues. */
    cycles = cycle_timer_stop(&pmd->perf_stats, &timer) / output_cnt;
    for (i = 0; i < output_cnt; i++) {
        if (p->output_pkts_rxqs[i]) {
            dp_netdev_rxq_add_cycles(p->output_pkts_rxqs[i],
                                     RXQ_CYCLES_PROC_CURR, cycles);
        }
    }

    return output_cnt;
}

static int
dp_netdev_pmd_flush_output_packets(struct dp_netdev_pmd_thread *pmd,
                                   bool force)
{
    struct tx_port *p;
    int output_cnt = 0;

    if (!pmd->n_output_batches) {
        return 0;
    }

    HMAP_FOR_EACH (p, node, &pmd->send_port_cache) {
        if (!dp_packet_batch_is_empty(&p->output_pkts)
            && (force || pmd->ctx.now >= p->flush_time)) {
            output_cnt += dp_netdev_pmd_flush_output_on_port(pmd, p);
        }
    }
    return output_cnt;
}

static int
dp_netdev_process_rxq_port(struct dp_netdev_pmd_thread *pmd,
                           struct dp_netdev_rxq *rxq,
                           odp_port_t port_no)
{
    struct pmd_perf_stats *s = &pmd->perf_stats;
    struct dp_packet_batch batch;
    struct cycle_timer timer;
    int error;
    int batch_cnt = 0;
    int rem_qlen = 0, *qlen_p = NULL;
    uint64_t cycles;

    /* Measure duration for polling and processing rx burst. */
    cycle_timer_start(&pmd->perf_stats, &timer);

    pmd->ctx.last_rxq = rxq;
    dp_packet_batch_init(&batch);

    /* Fetch the rx queue length only for vhostuser ports. */
    if (pmd_perf_metrics_enabled(pmd) && rxq->is_vhost) {
        qlen_p = &rem_qlen;
    }

    error = netdev_rxq_recv(rxq->rx, &batch, qlen_p);
    if (!error) {
        /* At least one packet received. */
        *recirc_depth_get() = 0;
        pmd_thread_ctx_time_update(pmd);
        batch_cnt = dp_packet_batch_size(&batch);
        if (pmd_perf_metrics_enabled(pmd)) {
            /* Update batch histogram. */
            s->current.batches++;
            histogram_add_sample(&s->pkts_per_batch, batch_cnt);
            /* Update the maximum vhost rx queue fill level. */
            if (rxq->is_vhost && rem_qlen >= 0) {
                uint32_t qfill = batch_cnt + rem_qlen;
                if (qfill > s->current.max_vhost_qfill) {
                    s->current.max_vhost_qfill = qfill;
                }
            }
        }

        /* Process packet batch. */
        int ret = pmd->netdev_input_func(pmd, &batch, port_no);
        if (ret) {
            dp_netdev_input(pmd, &batch, port_no);
        }

        /* Assign processing cycles to rx queue. */
        cycles = cycle_timer_stop(&pmd->perf_stats, &timer);
        dp_netdev_rxq_add_cycles(rxq, RXQ_CYCLES_PROC_CURR, cycles);

        dp_netdev_pmd_flush_output_packets(pmd, false);
    } else {
        /* Discard cycles. */
        cycle_timer_stop(&pmd->perf_stats, &timer);
        if (error != EAGAIN && error != EOPNOTSUPP) {
            static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(1, 5);

            VLOG_ERR_RL(&rl, "error receiving data from %s: %s",
                    netdev_rxq_get_name(rxq->rx), ovs_strerror(error));
        }
    }

    pmd->ctx.last_rxq = NULL;

    return batch_cnt;
}

static struct tx_port *
tx_port_lookup(const struct hmap *hmap, odp_port_t port_no)
{
    struct tx_port *tx;

    HMAP_FOR_EACH_IN_BUCKET (tx, node, hash_port_no(port_no), hmap) {
        if (tx->port->port_no == port_no) {
            return tx;
        }
    }

    return NULL;
}

static struct tx_bond *
tx_bond_lookup(const struct cmap *tx_bonds, uint32_t bond_id)
{
    uint32_t hash = hash_bond_id(bond_id);
    struct tx_bond *tx;

    CMAP_FOR_EACH_WITH_HASH (tx, node, hash, tx_bonds) {
        if (tx->bond_id == bond_id) {
            return tx;
        }
    }
    return NULL;
}

static int
port_reconfigure(struct dp_netdev_port *port)
{
    struct netdev *netdev = port->netdev;
    int i, err;

    /* Closes the existing 'rxq's. */
    for (i = 0; i < port->n_rxq; i++) {
        netdev_rxq_close(port->rxqs[i].rx);
        port->rxqs[i].rx = NULL;
    }
    unsigned last_nrxq = port->n_rxq;
    port->n_rxq = 0;

    /* Allows 'netdev' to apply the pending configuration changes. */
    if (netdev_is_reconf_required(netdev) || port->need_reconfigure) {
        err = netdev_reconfigure(netdev);
        if (err && (err != EOPNOTSUPP)) {
            VLOG_ERR("Failed to set interface %s new configuration",
                     netdev_get_name(netdev));
            return err;
        }
    }
    /* If the netdev_reconfigure() above succeeds, reopens the 'rxq's. */
    port->rxqs = xrealloc(port->rxqs,
                          sizeof *port->rxqs * netdev_n_rxq(netdev));
    /* Realloc 'used' counters for tx queues. */
    free(port->txq_used);
    port->txq_used = xcalloc(netdev_n_txq(netdev), sizeof *port->txq_used);

    for (i = 0; i < netdev_n_rxq(netdev); i++) {
        bool new_queue = i >= last_nrxq;
        if (new_queue) {
            memset(&port->rxqs[i], 0, sizeof port->rxqs[i]);
        }

        port->rxqs[i].port = port;
        port->rxqs[i].is_vhost = !strncmp(port->type, "dpdkvhost", 9);

        err = netdev_rxq_open(netdev, &port->rxqs[i].rx, i);
        if (err) {
            return err;
        }
        port->n_rxq++;
    }

    /* Parse affinity list to apply configuration for new queues. */
    dpif_netdev_port_set_rxq_affinity(port, port->rxq_affinity_list);

    /* If reconfiguration was successful mark it as such, so we can use it */
    port->need_reconfigure = false;

    return 0;
}

struct sched_numa_list {
    struct hmap numas;  /* Contains 'struct sched_numa'. */
};

/* Meta data for out-of-place pmd rxq assignments. */
struct sched_pmd {
    struct sched_numa *numa;
    /* Associated PMD thread. */
    struct dp_netdev_pmd_thread *pmd;
    uint64_t pmd_proc_cycles;
    struct dp_netdev_rxq **rxqs;
    unsigned n_rxq;
    bool isolated;
};

struct sched_numa {
    struct hmap_node node;
    int numa_id;
    /* PMDs on numa node. */
    struct sched_pmd *pmds;
    /* Num of PMDs on numa node. */
    unsigned n_pmds;
    /* Num of isolated PMDs on numa node. */
    unsigned n_isolated;
    int rr_cur_index;
    bool rr_idx_inc;
};

static size_t
sched_numa_list_count(struct sched_numa_list *numa_list)
{
    return hmap_count(&numa_list->numas);
}

static struct sched_numa *
sched_numa_list_next(struct sched_numa_list *numa_list,
                     const struct sched_numa *numa)
{
    struct hmap_node *node = NULL;

    if (numa) {
        node = hmap_next(&numa_list->numas, &numa->node);
    }
    if (!node) {
        node = hmap_first(&numa_list->numas);
    }

    return (node) ? CONTAINER_OF(node, struct sched_numa, node) : NULL;
}

static struct sched_numa *
sched_numa_list_lookup(struct sched_numa_list *numa_list, int numa_id)
{
    struct sched_numa *numa;

    HMAP_FOR_EACH_WITH_HASH (numa, node, hash_int(numa_id, 0),
                             &numa_list->numas) {
        if (numa->numa_id == numa_id) {
            return numa;
        }
    }
    return NULL;
}

static int
compare_sched_pmd_list(const void *a_, const void *b_)
{
    struct sched_pmd *a, *b;

    a = (struct sched_pmd *) a_;
    b = (struct sched_pmd *) b_;

    return compare_poll_thread_list(&a->pmd, &b->pmd);
}

static void
sort_numa_list_pmds(struct sched_numa_list *numa_list)
{
    struct sched_numa *numa;

    HMAP_FOR_EACH (numa, node, &numa_list->numas) {
        if (numa->n_pmds > 1) {
            qsort(numa->pmds, numa->n_pmds, sizeof *numa->pmds,
                  compare_sched_pmd_list);
        }
    }
}

/* Populate numas and pmds on those numas. */
static void
sched_numa_list_populate(struct sched_numa_list *numa_list,
                         struct dp_netdev *dp)
{
    struct dp_netdev_pmd_thread *pmd;

    hmap_init(&numa_list->numas);

    /* For each pmd on this datapath. */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        struct sched_numa *numa;
        struct sched_pmd *sched_pmd;
        if (pmd->core_id == NON_PMD_CORE_ID) {
            continue;
        }

        /* Get the numa of the PMD. */
        numa = sched_numa_list_lookup(numa_list, pmd->numa_id);
        /* Create a new numa node for it if not already created. */
        if (!numa) {
            numa = xzalloc(sizeof *numa);
            numa->numa_id = pmd->numa_id;
            hmap_insert(&numa_list->numas, &numa->node,
                        hash_int(pmd->numa_id, 0));
        }

        /* Create a sched_pmd on this numa for the pmd. */
        numa->n_pmds++;
        numa->pmds = xrealloc(numa->pmds, numa->n_pmds * sizeof *numa->pmds);
        sched_pmd = &numa->pmds[numa->n_pmds - 1];
        memset(sched_pmd, 0, sizeof *sched_pmd);
        sched_pmd->numa = numa;
        sched_pmd->pmd = pmd;
        /* At least one pmd is present so initialize curr_idx and idx_inc. */
        numa->rr_cur_index = 0;
        numa->rr_idx_inc = true;
    }
    sort_numa_list_pmds(numa_list);
}

static void
sched_numa_list_free_entries(struct sched_numa_list *numa_list)
{
    struct sched_numa *numa;

    HMAP_FOR_EACH_POP (numa, node, &numa_list->numas) {
        for (unsigned i = 0; i < numa->n_pmds; i++) {
            struct sched_pmd *sched_pmd;

            sched_pmd = &numa->pmds[i];
            sched_pmd->n_rxq = 0;
            free(sched_pmd->rxqs);
        }
        numa->n_pmds = 0;
        free(numa->pmds);
        free(numa);
    }
    hmap_destroy(&numa_list->numas);
}

static struct sched_pmd *
sched_pmd_find_by_pmd(struct sched_numa_list *numa_list,
                      struct dp_netdev_pmd_thread *pmd)
{
    struct sched_numa *numa;

    HMAP_FOR_EACH (numa, node, &numa_list->numas) {
        for (unsigned i = 0; i < numa->n_pmds; i++) {
            struct sched_pmd *sched_pmd;

            sched_pmd = &numa->pmds[i];
            if (pmd == sched_pmd->pmd) {
                return sched_pmd;
            }
        }
    }
    return NULL;
}

static void
sched_pmd_add_rxq(struct sched_pmd *sched_pmd, struct dp_netdev_rxq *rxq,
                  uint64_t cycles)
{
    /* As sched_pmd is allocated outside this fn. better to not assume
     * rxqs is initialized to NULL. */
    if (sched_pmd->n_rxq == 0) {
        sched_pmd->rxqs = xmalloc(sizeof *sched_pmd->rxqs);
    } else {
        sched_pmd->rxqs = xrealloc(sched_pmd->rxqs, (sched_pmd->n_rxq + 1) *
                                                    sizeof *sched_pmd->rxqs);
    }

    sched_pmd->rxqs[sched_pmd->n_rxq++] = rxq;
    sched_pmd->pmd_proc_cycles += cycles;
}

static void
sched_numa_list_assignments(struct sched_numa_list *numa_list,
                            struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct dp_netdev_port *port;

    /* For each port. */
    HMAP_FOR_EACH (port, node, &dp->ports) {
        if (!netdev_is_pmd(port->netdev)) {
            continue;
        }
        /* For each rxq on the port. */
        for (unsigned qid = 0; qid < port->n_rxq; qid++) {
            struct dp_netdev_rxq *rxq = &port->rxqs[qid];
            struct sched_pmd *sched_pmd;
            uint64_t proc_cycles = 0;

            for (int i = 0; i < PMD_INTERVAL_MAX; i++) {
                proc_cycles  += dp_netdev_rxq_get_intrvl_cycles(rxq, i);
            }

            sched_pmd = sched_pmd_find_by_pmd(numa_list, rxq->pmd);
            if (sched_pmd) {
                if (rxq->core_id != OVS_CORE_UNSPEC && dp->pmd_iso) {
                    sched_pmd->isolated = true;
                }
                sched_pmd_add_rxq(sched_pmd, rxq, proc_cycles);
            }
        }
    }
}

static void
sched_numa_list_put_in_place(struct sched_numa_list *numa_list)
{
    struct sched_numa *numa;

    /* For each numa. */
    HMAP_FOR_EACH (numa, node, &numa_list->numas) {
        /* For each pmd. */
        for (int i = 0; i < numa->n_pmds; i++) {
            struct sched_pmd *sched_pmd;

            sched_pmd = &numa->pmds[i];
            sched_pmd->pmd->isolated = sched_pmd->isolated;
            /* For each rxq. */
            for (unsigned k = 0; k < sched_pmd->n_rxq; k++) {
                /* Store the new pmd from the out of place sched_numa_list
                 * struct to the dp_netdev_rxq struct */
                sched_pmd->rxqs[k]->pmd = sched_pmd->pmd;
            }
        }
    }
}

/* Returns 'true' if OVS rxq scheduling algorithm assigned any unpinned rxq to
 * a PMD thread core on a non-local numa node. */
static bool
sched_numa_list_cross_numa_polling(struct sched_numa_list *numa_list)
{
    struct sched_numa *numa;

    HMAP_FOR_EACH (numa, node, &numa_list->numas) {
        for (int i = 0; i < numa->n_pmds; i++) {
            struct sched_pmd *sched_pmd;

            sched_pmd = &numa->pmds[i];
            if (sched_pmd->isolated) {
                /* All rxqs on this PMD thread core are pinned. */
                continue;
            }
            for (unsigned k = 0; k < sched_pmd->n_rxq; k++) {
                struct dp_netdev_rxq *rxq = sched_pmd->rxqs[k];
                /* Check if the rxq is not pinned to a specific PMD thread core
                 * by the user AND the PMD thread core that OVS assigned is
                 * non-local to the rxq port. */
                if (rxq->core_id == OVS_CORE_UNSPEC &&
                    rxq->pmd->numa_id !=
                        netdev_get_numa_id(rxq->port->netdev)) {
                    return true;
                }
            }
        }
    }
    return false;
}

static unsigned
sched_numa_noniso_pmd_count(struct sched_numa *numa)
{
    if (numa->n_pmds > numa->n_isolated) {
        return numa->n_pmds - numa->n_isolated;
    }
    return 0;
}

/* Sort Rx Queues by the processing cycles they are consuming. */
static int
compare_rxq_cycles(const void *a, const void *b)
{
    struct dp_netdev_rxq *qa;
    struct dp_netdev_rxq *qb;
    uint64_t cycles_qa, cycles_qb;

    qa = *(struct dp_netdev_rxq **) a;
    qb = *(struct dp_netdev_rxq **) b;

    cycles_qa = dp_netdev_rxq_get_cycles(qa, RXQ_CYCLES_PROC_HIST);
    cycles_qb = dp_netdev_rxq_get_cycles(qb, RXQ_CYCLES_PROC_HIST);

    if (cycles_qa != cycles_qb) {
        return (cycles_qa < cycles_qb) ? 1 : -1;
    } else {
        /* Cycles are the same so tiebreak on port/queue id.
         * Tiebreaking (as opposed to return 0) ensures consistent
         * sort results across multiple OS's. */
        uint32_t port_qa = odp_to_u32(qa->port->port_no);
        uint32_t port_qb = odp_to_u32(qb->port->port_no);
        if (port_qa != port_qb) {
            return port_qa > port_qb ? 1 : -1;
        } else {
            return netdev_rxq_get_queue_id(qa->rx)
                    - netdev_rxq_get_queue_id(qb->rx);
        }
    }
}

static bool
sched_pmd_new_lowest(struct sched_pmd *current_lowest, struct sched_pmd *pmd,
                     bool has_proc)
{
    uint64_t current_num, pmd_num;

    if (current_lowest == NULL) {
        return true;
    }

    if (has_proc) {
        current_num = current_lowest->pmd_proc_cycles;
        pmd_num = pmd->pmd_proc_cycles;
    } else {
        current_num = current_lowest->n_rxq;
        pmd_num = pmd->n_rxq;
    }

    if (pmd_num < current_num) {
        return true;
    }
    return false;
}

static struct sched_pmd *
sched_pmd_get_lowest(struct sched_numa *numa, bool has_cyc)
{
    struct sched_pmd *lowest_sched_pmd = NULL;

    for (unsigned i = 0; i < numa->n_pmds; i++) {
        struct sched_pmd *sched_pmd;

        sched_pmd = &numa->pmds[i];
        if (sched_pmd->isolated) {
            continue;
        }
        if (sched_pmd_new_lowest(lowest_sched_pmd, sched_pmd, has_cyc)) {
            lowest_sched_pmd = sched_pmd;
        }
    }
    return lowest_sched_pmd;
}

/*
 * Returns the next pmd from the numa node.
 *
 * If 'updown' is 'true' it will alternate between selecting the next pmd in
 * either an up or down walk, switching between up/down when the first or last
 * core is reached. e.g. 1,2,3,3,2,1,1,2...
 *
 * If 'updown' is 'false' it will select the next pmd wrapping around when
 * last core reached. e.g. 1,2,3,1,2,3,1,2...
 */
static struct sched_pmd *
sched_pmd_next_rr(struct sched_numa *numa, bool updown)
{
    int numa_idx = numa->rr_cur_index;

    if (numa->rr_idx_inc == true) {
        /* Incrementing through list of pmds. */
        if (numa->rr_cur_index == numa->n_pmds - 1) {
            /* Reached the last pmd. */
            if (updown) {
                numa->rr_idx_inc = false;
            } else {
                numa->rr_cur_index = 0;
            }
        } else {
            numa->rr_cur_index++;
        }
    } else {
        /* Decrementing through list of pmds. */
        if (numa->rr_cur_index == 0) {
            /* Reached the first pmd. */
            numa->rr_idx_inc = true;
        } else {
            numa->rr_cur_index--;
        }
    }
    return &numa->pmds[numa_idx];
}

static struct sched_pmd *
sched_pmd_next_noniso_rr(struct sched_numa *numa, bool updown)
{
    struct sched_pmd *sched_pmd = NULL;

    /* sched_pmd_next_rr() may return duplicate PMDs before all PMDs have been
     * returned depending on updown. Call it more than n_pmds to ensure all
     * PMDs can be searched for the next non-isolated PMD. */
    for (unsigned i = 0; i < numa->n_pmds * 2; i++) {
        sched_pmd = sched_pmd_next_rr(numa, updown);
        if (!sched_pmd->isolated) {
            break;
        }
        sched_pmd = NULL;
    }
    return sched_pmd;
}

static struct sched_pmd *
sched_pmd_next(struct sched_numa *numa, enum sched_assignment_type algo,
               bool has_proc)
{
    if (algo == SCHED_GROUP) {
        return sched_pmd_get_lowest(numa, has_proc);
    }

    /* By default RR the PMDs. */
    return sched_pmd_next_noniso_rr(numa, algo == SCHED_CYCLES ? true : false);
}

static const char *
get_assignment_type_string(enum sched_assignment_type algo)
{
    switch (algo) {
    case SCHED_ROUNDROBIN: return "roundrobin";
    case SCHED_CYCLES: return "cycles";
    case SCHED_GROUP: return "group";
    default: return "Unknown";
    }
}

#define MAX_RXQ_CYC_TEXT 40
#define MAX_RXQ_CYC_STRLEN (INT_STRLEN(uint64_t) + MAX_RXQ_CYC_TEXT)

static char *
get_rxq_cyc_log(char *a, enum sched_assignment_type algo, uint64_t cycles)
{
    int ret = 0;

    if (algo != SCHED_ROUNDROBIN) {
        ret = snprintf(a, MAX_RXQ_CYC_STRLEN,
                       " (measured processing cycles %"PRIu64")", cycles);
    }

    if (algo == SCHED_ROUNDROBIN || ret <= 0) {
        a[0] = '\0';
    }
    return a;
}

static void
sched_numa_list_schedule(struct sched_numa_list *numa_list,
                         struct dp_netdev *dp,
                         enum sched_assignment_type algo,
                         enum vlog_level level)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct dp_netdev_port *port;
    struct dp_netdev_rxq **rxqs = NULL;
    struct sched_numa *last_cross_numa;
    unsigned n_rxqs = 0;
    bool start_logged = false;
    size_t n_numa;

    /* For each port. */
    HMAP_FOR_EACH (port, node, &dp->ports) {
        if (!netdev_is_pmd(port->netdev)) {
            continue;
        }

        /* For each rxq on the port. */
        for (int qid = 0; qid < port->n_rxq; qid++) {
            struct dp_netdev_rxq *rxq = &port->rxqs[qid];

            if (algo != SCHED_ROUNDROBIN) {
                uint64_t cycle_hist = 0;

                /* Sum the queue intervals and store the cycle history. */
                for (unsigned i = 0; i < PMD_INTERVAL_MAX; i++) {
                    cycle_hist += dp_netdev_rxq_get_intrvl_cycles(rxq, i);
                }
                dp_netdev_rxq_set_cycles(rxq, RXQ_CYCLES_PROC_HIST,
                                         cycle_hist);
            }

            /* Check if this rxq is pinned. */
            if (rxq->core_id != OVS_CORE_UNSPEC) {
                struct sched_pmd *sched_pmd;
                struct dp_netdev_pmd_thread *pmd;
                struct sched_numa *numa;
                bool iso = dp->pmd_iso;
                uint64_t proc_cycles;
                char rxq_cyc_log[MAX_RXQ_CYC_STRLEN];

                /* This rxq should be pinned, pin it now. */
                pmd = dp_netdev_get_pmd(dp, rxq->core_id);
                sched_pmd = sched_pmd_find_by_pmd(numa_list, pmd);
                dp_netdev_pmd_unref(pmd);
                if (!sched_pmd) {
                    /* Cannot find the PMD.  Cannot pin this rxq. */
                    VLOG(level == VLL_DBG ? VLL_DBG : VLL_WARN,
                            "Core %2u cannot be pinned with "
                            "port \'%s\' rx queue %d. Use pmd-cpu-mask to "
                            "enable a pmd on core %u. An alternative core "
                            "will be assigned.",
                            rxq->core_id,
                            netdev_rxq_get_name(rxq->rx),
                            netdev_rxq_get_queue_id(rxq->rx),
                            rxq->core_id);
                    rxqs = xrealloc(rxqs, (n_rxqs + 1) * sizeof *rxqs);
                    rxqs[n_rxqs++] = rxq;
                    continue;
                }
                if (iso) {
                    /* Mark PMD as isolated if not done already. */
                    if (sched_pmd->isolated == false) {
                        sched_pmd->isolated = true;
                        numa = sched_pmd->numa;
                        numa->n_isolated++;
                    }
                }
                proc_cycles = dp_netdev_rxq_get_cycles(rxq,
                                                       RXQ_CYCLES_PROC_HIST);
                VLOG(level, "Core %2u on numa node %d is pinned with "
                            "port \'%s\' rx queue %d%s",
                            sched_pmd->pmd->core_id, sched_pmd->pmd->numa_id,
                            netdev_rxq_get_name(rxq->rx),
                            netdev_rxq_get_queue_id(rxq->rx),
                            get_rxq_cyc_log(rxq_cyc_log, algo, proc_cycles));
                sched_pmd_add_rxq(sched_pmd, rxq, proc_cycles);
            } else {
                rxqs = xrealloc(rxqs, (n_rxqs + 1) * sizeof *rxqs);
                rxqs[n_rxqs++] = rxq;
            }
        }
    }

    if (n_rxqs > 1 && algo != SCHED_ROUNDROBIN) {
        /* Sort the queues in order of the processing cycles
         * they consumed during their last pmd interval. */
        qsort(rxqs, n_rxqs, sizeof *rxqs, compare_rxq_cycles);
    }

    last_cross_numa = NULL;
    n_numa = sched_numa_list_count(numa_list);
    for (unsigned i = 0; i < n_rxqs; i++) {
        struct dp_netdev_rxq *rxq = rxqs[i];
        struct sched_pmd *sched_pmd = NULL;
        struct sched_numa *numa;
        int port_numa_id;
        uint64_t proc_cycles;
        char rxq_cyc_log[MAX_RXQ_CYC_STRLEN];

        if (start_logged == false && level != VLL_DBG) {
            VLOG(level, "Performing pmd to rx queue assignment using %s "
                        "algorithm.", get_assignment_type_string(algo));
            start_logged = true;
        }

        /* Store the cycles for this rxq as we will log these later. */
        proc_cycles = dp_netdev_rxq_get_cycles(rxq, RXQ_CYCLES_PROC_HIST);

        port_numa_id = netdev_get_numa_id(rxq->port->netdev);

        /* Select numa. */
        numa = sched_numa_list_lookup(numa_list, port_numa_id);

        /* Check if numa has no PMDs or no non-isolated PMDs. */
        if (!numa || !sched_numa_noniso_pmd_count(numa)) {
            /* Unable to use this numa to find a PMD. */
            numa = NULL;
            /* Find any numa with available PMDs. */
            for (int j = 0; j < n_numa; j++) {
                numa = sched_numa_list_next(numa_list, last_cross_numa);
                last_cross_numa = numa;
                if (sched_numa_noniso_pmd_count(numa)) {
                    break;
                }
                numa = NULL;
            }
        }

        if (numa) {
            /* Select the PMD that should be used for this rxq. */
            sched_pmd = sched_pmd_next(numa, algo,
                                       proc_cycles ? true : false);
        }

        /* Check that a pmd has been selected. */
        if (sched_pmd) {
            int pmd_numa_id;

            pmd_numa_id = sched_pmd->numa->numa_id;
            /* Check if selected pmd numa matches port numa. */
            if (pmd_numa_id != port_numa_id) {
                VLOG(level, "There's no available (non-isolated) pmd thread "
                            "on numa node %d. Port \'%s\' rx queue %d will "
                            "be assigned to a pmd on numa node %d. "
                            "This may lead to reduced performance.",
                            port_numa_id, netdev_rxq_get_name(rxq->rx),
                            netdev_rxq_get_queue_id(rxq->rx), pmd_numa_id);
            }
            VLOG(level, "Core %2u on numa node %d assigned port \'%s\' "
                        "rx queue %d%s.",
                        sched_pmd->pmd->core_id, sched_pmd->pmd->numa_id,
                        netdev_rxq_get_name(rxq->rx),
                        netdev_rxq_get_queue_id(rxq->rx),
                        get_rxq_cyc_log(rxq_cyc_log, algo, proc_cycles));
            sched_pmd_add_rxq(sched_pmd, rxq, proc_cycles);
        } else  {
            VLOG(level == VLL_DBG ? level : VLL_WARN,
                 "No non-isolated pmd on any numa available for "
                 "port \'%s\' rx queue %d%s. "
                 "This rx queue will not be polled.",
                 netdev_rxq_get_name(rxq->rx),
                 netdev_rxq_get_queue_id(rxq->rx),
                 get_rxq_cyc_log(rxq_cyc_log, algo, proc_cycles));
        }
    }
    free(rxqs);
}

static void
rxq_scheduling(struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct sched_numa_list numa_list;
    enum sched_assignment_type algo = dp->pmd_rxq_assign_type;

    sched_numa_list_populate(&numa_list, dp);
    sched_numa_list_schedule(&numa_list, dp, algo, VLL_INFO);
    sched_numa_list_put_in_place(&numa_list);

    sched_numa_list_free_entries(&numa_list);
}

static uint64_t variance(uint64_t a[], int n);

static uint64_t
sched_numa_variance(struct sched_numa *numa)
{
    uint64_t *percent_busy = NULL;
    int n_proc = 0;
    uint64_t var;

    percent_busy = xmalloc(numa->n_pmds * sizeof *percent_busy);

    for (unsigned i = 0; i < numa->n_pmds; i++) {
        struct sched_pmd *sched_pmd;
        uint64_t total_cycles = 0;

        sched_pmd = &numa->pmds[i];
        /* Exclude isolated PMDs from variance calculations. */
        if (sched_pmd->isolated == true) {
            continue;
        }
        /* Get the total pmd cycles for an interval. */
        atomic_read_relaxed(&sched_pmd->pmd->intrvl_cycles, &total_cycles);

        if (total_cycles) {
            /* Estimate the cycles to cover all intervals. */
            total_cycles *= PMD_INTERVAL_MAX;
            percent_busy[n_proc++] = (sched_pmd->pmd_proc_cycles * 100)
                                            / total_cycles;
        } else {
            percent_busy[n_proc++] = 0;
        }
    }
    var = variance(percent_busy, n_proc);
    free(percent_busy);
    return var;
}

/*
 * This function checks that some basic conditions needed for a rebalance to be
 * effective are met. Such as Rxq scheduling assignment type, more than one
 * PMD, more than 2 Rxqs on a PMD. If there was no reconfiguration change
 * since the last check, it reuses the last result.
 *
 * It is not intended to be an inclusive check of every condition that may make
 * a rebalance ineffective. It is done as a quick check so a full
 * pmd_rebalance_dry_run() can be avoided when it is not needed.
 */
static bool
pmd_rebalance_dry_run_needed(struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct dp_netdev_pmd_thread *pmd;
    struct pmd_auto_lb *pmd_alb = &dp->pmd_alb;
    unsigned int cnt = 0;
    bool multi_rxq = false;

    /* Check if there was no reconfiguration since last check. */
    if (!pmd_alb->recheck_config) {
        if (!pmd_alb->do_dry_run) {
            VLOG_DBG("PMD auto load balance nothing to do, "
                     "no configuration changes since last check.");
            return false;
        }
        return true;
    }
    pmd_alb->recheck_config = false;

    /* Check for incompatible assignment type. */
    if (dp->pmd_rxq_assign_type == SCHED_ROUNDROBIN) {
        VLOG_DBG("PMD auto load balance nothing to do, "
                 "pmd-rxq-assign=roundrobin assignment type configured.");
        return pmd_alb->do_dry_run = false;
    }

    /* Check that there is at least 2 non-isolated PMDs and
     * one of them is polling more than one rxq. */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        if (pmd->core_id == NON_PMD_CORE_ID || pmd->isolated) {
            continue;
        }

        if (hmap_count(&pmd->poll_list) > 1) {
            multi_rxq = true;
        }
        if (cnt && multi_rxq) {
            return pmd_alb->do_dry_run = true;
        }
        cnt++;
    }

    VLOG_DBG("PMD auto load balance nothing to do, "
             "not enough non-isolated PMDs or RxQs.");
    return pmd_alb->do_dry_run = false;
}

static bool
pmd_rebalance_dry_run(struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct sched_numa_list numa_list_cur;
    struct sched_numa_list numa_list_est;
    bool thresh_met = false;
    uint64_t current_var, estimate_var;
    struct sched_numa *numa_cur, *numa_est;
    uint64_t improvement = 0;

    VLOG_DBG("PMD auto load balance performing dry run.");

    /* Populate current assignments. */
    sched_numa_list_populate(&numa_list_cur, dp);
    sched_numa_list_assignments(&numa_list_cur, dp);

    /* Populate estimated assignments. */
    sched_numa_list_populate(&numa_list_est, dp);
    sched_numa_list_schedule(&numa_list_est, dp,
                             dp->pmd_rxq_assign_type, VLL_DBG);

    /* Check if cross-numa polling, there is only one numa with PMDs. */
    if (!sched_numa_list_cross_numa_polling(&numa_list_est) ||
            sched_numa_list_count(&numa_list_est) == 1) {

        /* Calculate variances. */
        HMAP_FOR_EACH (numa_cur, node, &numa_list_cur.numas) {
            numa_est = sched_numa_list_lookup(&numa_list_est,
                                              numa_cur->numa_id);
            if (!numa_est) {
                continue;
            }
            current_var = sched_numa_variance(numa_cur);
            estimate_var = sched_numa_variance(numa_est);
            if (estimate_var < current_var) {
                improvement = ((current_var - estimate_var) * 100)
                              / current_var;
            }
            VLOG_DBG("Numa node %d. Current variance %"PRIu64" Estimated "
                     "variance %"PRIu64". Variance improvement %"PRIu64"%%.",
                     numa_cur->numa_id, current_var,
                     estimate_var, improvement);
            if (improvement >= dp->pmd_alb.rebalance_improve_thresh) {
                thresh_met = true;
            }
        }
        VLOG_DBG("PMD load variance improvement threshold %u%% is %s.",
                 dp->pmd_alb.rebalance_improve_thresh,
                 thresh_met ? "met" : "not met");
    } else {
        VLOG_DBG("PMD auto load balance detected cross-numa polling with "
                 "multiple numa nodes. Unable to accurately estimate.");
    }

    sched_numa_list_free_entries(&numa_list_cur);
    sched_numa_list_free_entries(&numa_list_est);

    return thresh_met;
}

static void
reload_affected_pmds(struct dp_netdev *dp)
{
    struct dp_netdev_pmd_thread *pmd;

    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        if (pmd->need_reload) {
            dp_netdev_reload_pmd__(pmd);
        }
    }

    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        if (pmd->need_reload) {
            if (pmd->core_id != NON_PMD_CORE_ID) {
                bool reload;

                do {
                    atomic_read_explicit(&pmd->reload, &reload,
                                         memory_order_acquire);
                } while (reload);
            }
            pmd->need_reload = false;
        }
    }
}

static void
reconfigure_pmd_threads(struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct dp_netdev_pmd_thread *pmd;
    struct ovs_numa_dump *pmd_cores;
    struct ovs_numa_info_core *core;
    struct hmapx to_delete = HMAPX_INITIALIZER(&to_delete);
    struct hmapx_node *node;
    bool changed = false;
    bool need_to_adjust_static_tx_qids = false;

    /* The pmd threads should be started only if there's a pmd port in the
     * datapath.  If the user didn't provide any "pmd-cpu-mask", we start
     * NR_PMD_THREADS per numa node. */
    if (!has_pmd_port(dp)) {
        pmd_cores = ovs_numa_dump_n_cores_per_numa(0);
    } else if (dp->pmd_cmask && dp->pmd_cmask[0]) {
        pmd_cores = ovs_numa_dump_cores_with_cmask(dp->pmd_cmask);
    } else {
        pmd_cores = ovs_numa_dump_n_cores_per_numa(NR_PMD_THREADS);
    }

    /* We need to adjust 'static_tx_qid's only if we're reducing number of
     * PMD threads. Otherwise, new threads will allocate all the freed ids. */
    if (ovs_numa_dump_count(pmd_cores) < cmap_count(&dp->poll_threads) - 1) {
        /* Adjustment is required to keep 'static_tx_qid's sequential and
         * avoid possible issues, for example, imbalanced tx queue usage
         * and unnecessary locking caused by remapping on netdev level. */
        need_to_adjust_static_tx_qids = true;
    }

    /* Check for unwanted pmd threads */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        if (pmd->core_id == NON_PMD_CORE_ID) {
            continue;
        }
        if (!ovs_numa_dump_contains_core(pmd_cores, pmd->numa_id,
                                                    pmd->core_id)) {
            hmapx_add(&to_delete, pmd);
        } else if (need_to_adjust_static_tx_qids) {
            atomic_store_relaxed(&pmd->reload_tx_qid, true);
            pmd->need_reload = true;
        }
    }

    HMAPX_FOR_EACH (node, &to_delete) {
        pmd = (struct dp_netdev_pmd_thread *) node->data;
        VLOG_INFO("PMD thread on numa_id: %d, core id: %2d destroyed.",
                  pmd->numa_id, pmd->core_id);
        dp_netdev_del_pmd(dp, pmd);
    }
    changed = !hmapx_is_empty(&to_delete);
    hmapx_destroy(&to_delete);

    if (need_to_adjust_static_tx_qids) {
        /* 'static_tx_qid's are not sequential now.
         * Reload remaining threads to fix this. */
        reload_affected_pmds(dp);
    }

    /* Check for required new pmd threads */
    FOR_EACH_CORE_ON_DUMP(core, pmd_cores) {
        pmd = dp_netdev_get_pmd(dp, core->core_id);
        if (!pmd) {
            struct ds name = DS_EMPTY_INITIALIZER;

            pmd = xzalloc(sizeof *pmd);
            dp_netdev_configure_pmd(pmd, dp, core->core_id, core->numa_id);

            ds_put_format(&name, "pmd-c%02d/id:", core->core_id);
            pmd->thread = ovs_thread_create(ds_cstr(&name),
                                            pmd_thread_main, pmd);
            ds_destroy(&name);

            VLOG_INFO("PMD thread on numa_id: %d, core id: %2d created.",
                      pmd->numa_id, pmd->core_id);
            changed = true;
        } else {
            dp_netdev_pmd_unref(pmd);
        }
    }

    if (changed) {
        struct ovs_numa_info_numa *numa;

        /* Log the number of pmd threads per numa node. */
        FOR_EACH_NUMA_ON_DUMP (numa, pmd_cores) {
            VLOG_INFO("There are %"PRIuSIZE" pmd threads on numa node %d",
                      numa->n_cores, numa->numa_id);
        }
    }

    ovs_numa_dump_destroy(pmd_cores);
}

static void
pmd_remove_stale_ports(struct dp_netdev *dp,
                       struct dp_netdev_pmd_thread *pmd)
    OVS_EXCLUDED(pmd->port_mutex)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct rxq_poll *poll;
    struct tx_port *tx;

    ovs_mutex_lock(&pmd->port_mutex);
    HMAP_FOR_EACH_SAFE (poll, node, &pmd->poll_list) {
        struct dp_netdev_port *port = poll->rxq->port;

        if (port->need_reconfigure
            || !hmap_contains(&dp->ports, &port->node)) {
            dp_netdev_del_rxq_from_pmd(pmd, poll);
        }
    }
    HMAP_FOR_EACH_SAFE (tx, node, &pmd->tx_ports) {
        struct dp_netdev_port *port = tx->port;

        if (port->need_reconfigure
            || !hmap_contains(&dp->ports, &port->node)) {
            dp_netdev_del_port_tx_from_pmd(pmd, tx);
        }
    }
    ovs_mutex_unlock(&pmd->port_mutex);
}

/* Must be called each time a port is added/removed or the cmask changes.
 * This creates and destroys pmd threads, reconfigures ports, opens their
 * rxqs and assigns all rxqs/txqs to pmd threads. */
static void
reconfigure_datapath(struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct hmapx busy_threads = HMAPX_INITIALIZER(&busy_threads);
    struct dp_netdev_pmd_thread *pmd;
    struct dp_netdev_port *port;
    int wanted_txqs;

    dp->last_reconfigure_seq = seq_read(dp->reconfigure_seq);

    /* Step 1: Adjust the pmd threads based on the datapath ports, the cores
     * on the system and the user configuration. */
    reconfigure_pmd_threads(dp);

    wanted_txqs = cmap_count(&dp->poll_threads);

    /* The number of pmd threads might have changed, or a port can be new:
     * adjust the txqs. */
    HMAP_FOR_EACH (port, node, &dp->ports) {
        netdev_set_tx_multiq(port->netdev, wanted_txqs);
    }

    /* Step 2: Remove from the pmd threads ports that have been removed or
     * need reconfiguration. */

    /* Check for all the ports that need reconfiguration.  We cache this in
     * 'port->need_reconfigure', because netdev_is_reconf_required() can
     * change at any time.
     * Also mark for reconfiguration all ports which will likely change their
     * 'txq_mode' parameter.  It's required to stop using them before
     * changing this setting and it's simpler to mark ports here and allow
     * 'pmd_remove_stale_ports' to remove them from threads.  There will be
     * no actual reconfiguration in 'port_reconfigure' because it's
     * unnecessary.  */
    HMAP_FOR_EACH (port, node, &dp->ports) {
        if (netdev_is_reconf_required(port->netdev)
            || ((port->txq_mode == TXQ_MODE_XPS)
                != (netdev_n_txq(port->netdev) < wanted_txqs))
            || ((port->txq_mode == TXQ_MODE_XPS_HASH)
                != (port->txq_requested_mode == TXQ_REQ_MODE_HASH
                    && netdev_n_txq(port->netdev) > 1))) {
            port->need_reconfigure = true;
        }
    }

    /* Remove from the pmd threads all the ports that have been deleted or
     * need reconfiguration. */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        pmd_remove_stale_ports(dp, pmd);
    }

    /* Reload affected pmd threads.  We must wait for the pmd threads before
     * reconfiguring the ports, because a port cannot be reconfigured while
     * it's being used. */
    reload_affected_pmds(dp);

    /* Step 3: Reconfigure ports. */

    /* We only reconfigure the ports that we determined above, because they're
     * not being used by any pmd thread at the moment.  If a port fails to
     * reconfigure we remove it from the datapath. */
    HMAP_FOR_EACH_SAFE (port, node, &dp->ports) {
        int err;

        if (!port->need_reconfigure) {
            continue;
        }

        err = port_reconfigure(port);
        if (err) {
            hmap_remove(&dp->ports, &port->node);
            seq_change(dp->port_seq);
            port_destroy(port);
        } else {
            /* With a single queue, there is no point in using hash mode. */
            if (port->txq_requested_mode == TXQ_REQ_MODE_HASH &&
                netdev_n_txq(port->netdev) > 1) {
                port->txq_mode = TXQ_MODE_XPS_HASH;
            } else if (netdev_n_txq(port->netdev) < wanted_txqs) {
                port->txq_mode = TXQ_MODE_XPS;
            } else {
                port->txq_mode = TXQ_MODE_STATIC;
            }
        }
    }

    /* Step 4: Compute new rxq scheduling.  We don't touch the pmd threads
     * for now, we just update the 'pmd' pointer in each rxq to point to the
     * wanted thread according to the scheduling policy. */

    /* Reset all the pmd threads to non isolated. */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        pmd->isolated = false;
    }

    /* Reset all the queues to unassigned */
    HMAP_FOR_EACH (port, node, &dp->ports) {
        for (int i = 0; i < port->n_rxq; i++) {
            port->rxqs[i].pmd = NULL;
        }
    }
    rxq_scheduling(dp);

    /* Step 5: Remove queues not compliant with new scheduling. */

    /* Count all the threads that will have at least one queue to poll. */
    HMAP_FOR_EACH (port, node, &dp->ports) {
        for (int qid = 0; qid < port->n_rxq; qid++) {
            struct dp_netdev_rxq *q = &port->rxqs[qid];

            if (q->pmd) {
                hmapx_add(&busy_threads, q->pmd);
            }
        }
    }

    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        struct rxq_poll *poll;

        ovs_mutex_lock(&pmd->port_mutex);
        HMAP_FOR_EACH_SAFE (poll, node, &pmd->poll_list) {
            if (poll->rxq->pmd != pmd) {
                dp_netdev_del_rxq_from_pmd(pmd, poll);

                /* This pmd might sleep after this step if it has no rxq
                 * remaining. Tell it to busy wait for new assignment if it
                 * has at least one scheduled queue. */
                if (hmap_count(&pmd->poll_list) == 0 &&
                    hmapx_contains(&busy_threads, pmd)) {
                    atomic_store_relaxed(&pmd->wait_for_reload, true);
                }
            }
        }
        ovs_mutex_unlock(&pmd->port_mutex);
    }

    hmapx_destroy(&busy_threads);

    /* Reload affected pmd threads.  We must wait for the pmd threads to remove
     * the old queues before readding them, otherwise a queue can be polled by
     * two threads at the same time. */
    reload_affected_pmds(dp);

    /* Step 6: Add queues from scheduling, if they're not there already. */
    HMAP_FOR_EACH (port, node, &dp->ports) {
        if (!netdev_is_pmd(port->netdev)) {
            continue;
        }

        for (int qid = 0; qid < port->n_rxq; qid++) {
            struct dp_netdev_rxq *q = &port->rxqs[qid];

            if (q->pmd) {
                ovs_mutex_lock(&q->pmd->port_mutex);
                dp_netdev_add_rxq_to_pmd(q->pmd, q);
                ovs_mutex_unlock(&q->pmd->port_mutex);
            }
        }
    }

    /* Add every port and bond to the tx port and bond caches of
     * every pmd thread, if it's not there already and if this pmd
     * has at least one rxq to poll.
     */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        ovs_mutex_lock(&pmd->port_mutex);
        if (hmap_count(&pmd->poll_list) || pmd->core_id == NON_PMD_CORE_ID) {
            struct tx_bond *bond;

            HMAP_FOR_EACH (port, node, &dp->ports) {
                dp_netdev_add_port_tx_to_pmd(pmd, port);
            }

            CMAP_FOR_EACH (bond, node, &dp->tx_bonds) {
                dp_netdev_add_bond_tx_to_pmd(pmd, bond, false);
            }
        }
        ovs_mutex_unlock(&pmd->port_mutex);
    }

    /* Reload affected pmd threads. */
    reload_affected_pmds(dp);

    /* PMD ALB will need to recheck if dry run needed. */
    dp->pmd_alb.recheck_config = true;
}

/* Returns true if one of the netdevs in 'dp' requires a reconfiguration */
static bool
ports_require_restart(const struct dp_netdev *dp)
    OVS_REQ_RDLOCK(dp->port_rwlock)
{
    struct dp_netdev_port *port;

    HMAP_FOR_EACH (port, node, &dp->ports) {
        if (netdev_is_reconf_required(port->netdev)) {
            return true;
        }
    }

    return false;
}

/* Calculates variance in the values stored in array 'a'. 'n' is the number
 * of elements in array to be considered for calculating vairance.
 * Usage example: data array 'a' contains the processing load of each pmd and
 * 'n' is the number of PMDs. It returns the variance in processing load of
 * PMDs*/
static uint64_t
variance(uint64_t a[], int n)
{
    /* Compute mean (average of elements). */
    uint64_t sum = 0;
    uint64_t mean = 0;
    uint64_t sqDiff = 0;

    if (!n) {
        return 0;
    }

    for (int i = 0; i < n; i++) {
        sum += a[i];
    }

    if (sum) {
        mean = sum / n;

        /* Compute sum squared differences with mean. */
        for (int i = 0; i < n; i++) {
            sqDiff += (a[i] - mean)*(a[i] - mean);
        }
    }
    return (sqDiff ? (sqDiff / n) : 0);
}

/* Return true if needs to revalidate datapath flows. */
static bool
dpif_netdev_run(struct dpif *dpif)
{
    struct dp_netdev_port *port;
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_pmd_thread *non_pmd;
    uint64_t new_tnl_seq;
    bool need_to_flush = true;
    bool pmd_rebalance = false;
    long long int now = time_msec();
    struct dp_netdev_pmd_thread *pmd;

    ovs_rwlock_rdlock(&dp->port_rwlock);
    non_pmd = dp_netdev_get_pmd(dp, NON_PMD_CORE_ID);
    if (non_pmd) {
        ovs_mutex_lock(&dp->non_pmd_mutex);

        atomic_read_relaxed(&dp->smc_enable_db, &non_pmd->ctx.smc_enable_db);

        HMAP_FOR_EACH (port, node, &dp->ports) {
            if (!netdev_is_pmd(port->netdev)) {
                int i;

                if (port->emc_enabled) {
                    atomic_read_relaxed(&dp->emc_insert_min,
                                        &non_pmd->ctx.emc_insert_min);
                } else {
                    non_pmd->ctx.emc_insert_min = 0;
                }

                for (i = 0; i < port->n_rxq; i++) {

                    if (!netdev_rxq_enabled(port->rxqs[i].rx)) {
                        continue;
                    }

                    if (dp_netdev_process_rxq_port(non_pmd,
                                                   &port->rxqs[i],
                                                   port->port_no)) {
                        need_to_flush = false;
                    }
                }
            }
        }
        if (need_to_flush) {
            /* We didn't receive anything in the process loop.
             * Check if we need to send something.
             * There was no time updates on current iteration. */
            pmd_thread_ctx_time_update(non_pmd);
            dp_netdev_pmd_flush_output_packets(non_pmd, false);
        }

        dpif_netdev_xps_revalidate_pmd(non_pmd, false);
        ovs_mutex_unlock(&dp->non_pmd_mutex);

        dp_netdev_pmd_unref(non_pmd);
    }

    struct pmd_auto_lb *pmd_alb = &dp->pmd_alb;
    if (pmd_alb->is_enabled) {
        if (!pmd_alb->rebalance_poll_timer) {
            pmd_alb->rebalance_poll_timer = now;
        } else if ((pmd_alb->rebalance_poll_timer +
                   pmd_alb->rebalance_intvl) < now) {
            pmd_alb->rebalance_poll_timer = now;
            CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
                if (atomic_count_get(&pmd->pmd_overloaded) >=
                                    PMD_INTERVAL_MAX) {
                    pmd_rebalance = true;
                    break;
                }
            }

            if (pmd_rebalance &&
                !dp_netdev_is_reconf_required(dp) &&
                !ports_require_restart(dp) &&
                pmd_rebalance_dry_run_needed(dp) &&
                pmd_rebalance_dry_run(dp)) {
                VLOG_INFO("PMD auto load balance dry run. "
                          "Requesting datapath reconfigure.");
                dp_netdev_request_reconfigure(dp);
            }
        }
    }

    if (dp_netdev_is_reconf_required(dp) || ports_require_restart(dp)) {
        reconfigure_datapath(dp);
    }
    ovs_rwlock_unlock(&dp->port_rwlock);

    tnl_neigh_cache_run();
    tnl_port_map_run();
    new_tnl_seq = seq_read(tnl_conf_seq);

    if (dp->last_tnl_conf_seq != new_tnl_seq) {
        dp->last_tnl_conf_seq = new_tnl_seq;
        return true;
    }
    return false;
}

static void
dpif_netdev_wait(struct dpif *dpif)
{
    struct dp_netdev_port *port;
    struct dp_netdev *dp = get_dp_netdev(dpif);

    ovs_mutex_lock(&dp_netdev_mutex);
    ovs_rwlock_rdlock(&dp->port_rwlock);
    HMAP_FOR_EACH (port, node, &dp->ports) {
        netdev_wait_reconf_required(port->netdev);
        if (!netdev_is_pmd(port->netdev)) {
            int i;

            for (i = 0; i < port->n_rxq; i++) {
                netdev_rxq_wait(port->rxqs[i].rx);
            }
        }
    }
    ovs_rwlock_unlock(&dp->port_rwlock);
    ovs_mutex_unlock(&dp_netdev_mutex);
    seq_wait(tnl_conf_seq, dp->last_tnl_conf_seq);
}

static void
pmd_free_cached_ports(struct dp_netdev_pmd_thread *pmd)
{
    struct tx_port *tx_port_cached;

    /* Flush all the queued packets. */
    dp_netdev_pmd_flush_output_packets(pmd, true);
    /* Free all used tx queue ids. */
    dpif_netdev_xps_revalidate_pmd(pmd, true);

    HMAP_FOR_EACH_POP (tx_port_cached, node, &pmd->tnl_port_cache) {
        free(tx_port_cached->txq_pkts);
        free(tx_port_cached);
    }
    HMAP_FOR_EACH_POP (tx_port_cached, node, &pmd->send_port_cache) {
        free(tx_port_cached->txq_pkts);
        free(tx_port_cached);
    }
}

/* Copies ports from 'pmd->tx_ports' (shared with the main thread) to
 * thread-local copies. Copy to 'pmd->tnl_port_cache' if it is a tunnel
 * device, otherwise to 'pmd->send_port_cache' if the port has at least
 * one txq. */
static void
pmd_load_cached_ports(struct dp_netdev_pmd_thread *pmd)
    OVS_REQUIRES(pmd->port_mutex)
{
    struct tx_port *tx_port, *tx_port_cached;

    pmd_free_cached_ports(pmd);
    hmap_shrink(&pmd->send_port_cache);
    hmap_shrink(&pmd->tnl_port_cache);

    HMAP_FOR_EACH (tx_port, node, &pmd->tx_ports) {
        int n_txq = netdev_n_txq(tx_port->port->netdev);
        struct dp_packet_batch *txq_pkts_cached;

        if (netdev_has_tunnel_push_pop(tx_port->port->netdev)) {
            tx_port_cached = xmemdup(tx_port, sizeof *tx_port_cached);
            if (tx_port->txq_pkts) {
                txq_pkts_cached = xmemdup(tx_port->txq_pkts,
                                          n_txq * sizeof *tx_port->txq_pkts);
                tx_port_cached->txq_pkts = txq_pkts_cached;
            }
            hmap_insert(&pmd->tnl_port_cache, &tx_port_cached->node,
                        hash_port_no(tx_port_cached->port->port_no));
        }

        if (n_txq) {
            tx_port_cached = xmemdup(tx_port, sizeof *tx_port_cached);
            if (tx_port->txq_pkts) {
                txq_pkts_cached = xmemdup(tx_port->txq_pkts,
                                          n_txq * sizeof *tx_port->txq_pkts);
                tx_port_cached->txq_pkts = txq_pkts_cached;
            }
            hmap_insert(&pmd->send_port_cache, &tx_port_cached->node,
                        hash_port_no(tx_port_cached->port->port_no));
        }
    }
}

static void
pmd_alloc_static_tx_qid(struct dp_netdev_pmd_thread *pmd)
{
    ovs_mutex_lock(&pmd->dp->tx_qid_pool_mutex);
    if (!id_pool_alloc_id(pmd->dp->tx_qid_pool, &pmd->static_tx_qid)) {
        VLOG_ABORT("static_tx_qid allocation failed for PMD on core %2d"
                   ", numa_id %d.", pmd->core_id, pmd->numa_id);
    }
    ovs_mutex_unlock(&pmd->dp->tx_qid_pool_mutex);

    VLOG_DBG("static_tx_qid = %d allocated for PMD thread on core %2d"
             ", numa_id %d.", pmd->static_tx_qid, pmd->core_id, pmd->numa_id);
}

static void
pmd_free_static_tx_qid(struct dp_netdev_pmd_thread *pmd)
{
    ovs_mutex_lock(&pmd->dp->tx_qid_pool_mutex);
    id_pool_free_id(pmd->dp->tx_qid_pool, pmd->static_tx_qid);
    ovs_mutex_unlock(&pmd->dp->tx_qid_pool_mutex);
}

static int
pmd_load_queues_and_ports(struct dp_netdev_pmd_thread *pmd,
                          struct polled_queue **ppoll_list)
{
    struct polled_queue *poll_list = *ppoll_list;
    struct rxq_poll *poll;
    int i;

    ovs_mutex_lock(&pmd->port_mutex);
    poll_list = xrealloc(poll_list, hmap_count(&pmd->poll_list)
                                    * sizeof *poll_list);

    i = 0;
    HMAP_FOR_EACH (poll, node, &pmd->poll_list) {
        poll_list[i].rxq = poll->rxq;
        poll_list[i].port_no = poll->rxq->port->port_no;
        poll_list[i].emc_enabled = poll->rxq->port->emc_enabled;
        poll_list[i].rxq_enabled = netdev_rxq_enabled(poll->rxq->rx);
        poll_list[i].change_seq =
                     netdev_get_change_seq(poll->rxq->port->netdev);
        i++;
    }

    pmd_load_cached_ports(pmd);

    ovs_mutex_unlock(&pmd->port_mutex);

    *ppoll_list = poll_list;
    return i;
}

static void *
pmd_thread_main(void *f_)
{
    struct dp_netdev_pmd_thread *pmd = f_;
    struct pmd_perf_stats *s = &pmd->perf_stats;
    unsigned int lc = 0;
    struct polled_queue *poll_list;
    bool wait_for_reload = false;
    bool dpdk_attached;
    bool reload_tx_qid;
    bool exiting;
    bool reload;
    int poll_cnt;
    int i;
    int process_packets = 0;
    uint64_t sleep_time = 0;

    poll_list = NULL;

    /* Stores the pmd thread's 'pmd' to 'per_pmd_key'. */
    ovsthread_setspecific(pmd->dp->per_pmd_key, pmd);
    ovs_numa_thread_setaffinity_core(pmd->core_id);
    dpdk_attached = dpdk_attach_thread(pmd->core_id);
    poll_cnt = pmd_load_queues_and_ports(pmd, &poll_list);
    dfc_cache_init(&pmd->flow_cache);
    pmd_alloc_static_tx_qid(pmd);
    set_timer_resolution(PMD_TIMER_RES_NS);

reload:
    atomic_count_init(&pmd->pmd_overloaded, 0);

    pmd->intrvl_tsc_prev = 0;
    atomic_store_relaxed(&pmd->intrvl_cycles, 0);

    if (!dpdk_attached) {
        dpdk_attached = dpdk_attach_thread(pmd->core_id);
    }

    /* List port/core affinity */
    for (i = 0; i < poll_cnt; i++) {
       VLOG_DBG("Core %d processing port \'%s\' with queue-id %d\n",
                pmd->core_id, netdev_rxq_get_name(poll_list[i].rxq->rx),
                netdev_rxq_get_queue_id(poll_list[i].rxq->rx));
       /* Reset the rxq current cycles counter. */
       dp_netdev_rxq_set_cycles(poll_list[i].rxq, RXQ_CYCLES_PROC_CURR, 0);
       for (int j = 0; j < PMD_INTERVAL_MAX; j++) {
           dp_netdev_rxq_set_intrvl_cycles(poll_list[i].rxq, 0);
       }
    }

    if (!poll_cnt) {
        if (wait_for_reload) {
            /* Don't sleep, control thread will ask for a reload shortly. */
            do {
                atomic_read_explicit(&pmd->reload, &reload,
                                     memory_order_acquire);
            } while (!reload);
        } else {
            while (seq_read(pmd->reload_seq) == pmd->last_reload_seq) {
                seq_wait(pmd->reload_seq, pmd->last_reload_seq);
                poll_block();
            }
        }
    }

    for (i = 0; i < PMD_INTERVAL_MAX; i++) {
        atomic_store_relaxed(&pmd->busy_cycles_intrvl[i], 0);
    }
    atomic_count_set(&pmd->intrvl_idx, 0);
    cycles_counter_update(s);

    pmd->next_rcu_quiesce = pmd->ctx.now + PMD_RCU_QUIESCE_INTERVAL;

    /* Protect pmd stats from external clearing while polling. */
    ovs_mutex_lock(&pmd->perf_stats.stats_mutex);
    for (;;) {
        uint64_t rx_packets = 0, tx_packets = 0;
        uint64_t time_slept = 0;
        uint64_t max_sleep;

        pmd_perf_start_iteration(s);

        atomic_read_relaxed(&pmd->dp->smc_enable_db, &pmd->ctx.smc_enable_db);
        atomic_read_relaxed(&pmd->dp->pmd_max_sleep, &max_sleep);

        for (i = 0; i < poll_cnt; i++) {

            if (!poll_list[i].rxq_enabled) {
                continue;
            }

            if (poll_list[i].emc_enabled) {
                atomic_read_relaxed(&pmd->dp->emc_insert_min,
                                    &pmd->ctx.emc_insert_min);
            } else {
                pmd->ctx.emc_insert_min = 0;
            }

            process_packets =
                dp_netdev_process_rxq_port(pmd, poll_list[i].rxq,
                                           poll_list[i].port_no);
            rx_packets += process_packets;
            if (process_packets >= PMD_SLEEP_THRESH) {
                sleep_time = 0;
            }
        }

        if (!rx_packets) {
            /* We didn't receive anything in the process loop.
             * Check if we need to send something.
             * There was no time updates on current iteration. */
            pmd_thread_ctx_time_update(pmd);
            tx_packets = dp_netdev_pmd_flush_output_packets(pmd,
                                                   max_sleep && sleep_time
                                                   ? true : false);
        }

        if (max_sleep) {
            /* Check if a sleep should happen on this iteration. */
            if (sleep_time) {
                struct cycle_timer sleep_timer;

                cycle_timer_start(&pmd->perf_stats, &sleep_timer);
                xnanosleep_no_quiesce(sleep_time * 1000);
                time_slept = cycle_timer_stop(&pmd->perf_stats, &sleep_timer);
                pmd_thread_ctx_time_update(pmd);
            }
            if (sleep_time < max_sleep) {
                /* Increase sleep time for next iteration. */
                sleep_time += PMD_SLEEP_INC_US;
            } else {
                sleep_time = max_sleep;
            }
        } else {
            /* Reset sleep time as max sleep policy may have been changed. */
            sleep_time = 0;
        }

        /* Do RCU synchronization at fixed interval.  This ensures that
         * synchronization would not be delayed long even at high load of
         * packet processing. */
        if (pmd->ctx.now > pmd->next_rcu_quiesce) {
            if (!ovsrcu_try_quiesce()) {
                pmd->next_rcu_quiesce =
                    pmd->ctx.now + PMD_RCU_QUIESCE_INTERVAL;
            }
        }

        if (lc++ > 1024) {
            lc = 0;

            coverage_try_clear();
            dp_netdev_pmd_try_optimize(pmd, poll_list, poll_cnt);
            if (!ovsrcu_try_quiesce()) {
                emc_cache_slow_sweep(&((pmd->flow_cache).emc_cache));
                pmd->next_rcu_quiesce =
                    pmd->ctx.now + PMD_RCU_QUIESCE_INTERVAL;
            }

            for (i = 0; i < poll_cnt; i++) {
                uint64_t current_seq =
                         netdev_get_change_seq(poll_list[i].rxq->port->netdev);
                if (poll_list[i].change_seq != current_seq) {
                    poll_list[i].change_seq = current_seq;
                    poll_list[i].rxq_enabled =
                                 netdev_rxq_enabled(poll_list[i].rxq->rx);
                }
            }
        }

        atomic_read_explicit(&pmd->reload, &reload, memory_order_acquire);
        if (OVS_UNLIKELY(reload)) {
            break;
        }

        pmd_perf_end_iteration(s, rx_packets, tx_packets, time_slept,
                               pmd_perf_metrics_enabled(pmd));
    }
    ovs_mutex_unlock(&pmd->perf_stats.stats_mutex);

    poll_cnt = pmd_load_queues_and_ports(pmd, &poll_list);
    atomic_read_relaxed(&pmd->wait_for_reload, &wait_for_reload);
    atomic_read_relaxed(&pmd->reload_tx_qid, &reload_tx_qid);
    atomic_read_relaxed(&pmd->exit, &exiting);
    /* Signal here to make sure the pmd finishes
     * reloading the updated configuration. */
    dp_netdev_pmd_reload_done(pmd);

    if (reload_tx_qid) {
        pmd_free_static_tx_qid(pmd);
        pmd_alloc_static_tx_qid(pmd);
    }

    if (!exiting) {
        goto reload;
    }

    pmd_free_static_tx_qid(pmd);
    dfc_cache_uninit(&pmd->flow_cache);
    free(poll_list);
    pmd_free_cached_ports(pmd);
    if (dpdk_attached) {
        dpdk_detach_thread();
    }
    return NULL;
}

static void
dp_netdev_disable_upcall(struct dp_netdev *dp)
    OVS_ACQUIRES(dp->upcall_rwlock)
{
    fat_rwlock_wrlock(&dp->upcall_rwlock);
}


/* Meters */
static void
dpif_netdev_meter_get_features(const struct dpif * dpif OVS_UNUSED,
                               struct ofputil_meter_features *features)
{
    features->max_meters = MAX_METERS;
    features->band_types = DP_SUPPORTED_METER_BAND_TYPES;
    features->capabilities = DP_SUPPORTED_METER_FLAGS_MASK;
    features->max_bands = MAX_BANDS;
    features->max_color = 0;
}

/* Applies the meter identified by 'meter_id' to 'packets_'.  Packets
 * that exceed a band are dropped in-place. */
static void
dp_netdev_run_meter(struct dp_netdev *dp, struct dp_packet_batch *packets_,
                    uint32_t meter_id, long long int now)
{
    struct dp_meter *meter;
    struct dp_meter_band *band;
    struct dp_packet *packet;
    long long int long_delta_t; /* msec */
    uint32_t delta_t; /* msec */
    const size_t cnt = dp_packet_batch_size(packets_);
    uint32_t bytes, volume;
    int exceeded_band[NETDEV_MAX_BURST];
    uint32_t exceeded_rate[NETDEV_MAX_BURST];
    int exceeded_pkt = cnt; /* First packet that exceeded a band rate. */

    if (meter_id >= MAX_METERS) {
        return;
    }

    meter = dp_meter_lookup(&dp->meters, meter_id);
    if (!meter) {
        return;
    }

    /* Initialize as negative values. */
    memset(exceeded_band, 0xff, cnt * sizeof *exceeded_band);
    /* Initialize as zeroes. */
    memset(exceeded_rate, 0, cnt * sizeof *exceeded_rate);

    ovs_mutex_lock(&meter->lock);
    /* All packets will hit the meter at the same time. */
    long_delta_t = now / 1000 - meter->used / 1000; /* msec */

    if (long_delta_t < 0) {
        /* This condition means that we have several threads fighting for a
           meter lock, and the one who received the packets a bit later wins.
           Assuming that all racing threads received packets at the same time
           to avoid overflow. */
        long_delta_t = 0;
    }

    /* Make sure delta_t will not be too large, so that bucket will not
     * wrap around below. */
    delta_t = (long_delta_t > (long long int)meter->max_delta_t)
        ? meter->max_delta_t : (uint32_t)long_delta_t;

    /* Update meter stats. */
    meter->used = now;
    meter->packet_count += cnt;
    bytes = 0;
    DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
        bytes += dp_packet_size(packet);
    }
    meter->byte_count += bytes;

    /* Meters can operate in terms of packets per second or kilobits per
     * second. */
    if (meter->flags & OFPMF13_PKTPS) {
        /* Rate in packets/second, bucket 1/1000 packets. */
        /* msec * packets/sec = 1/1000 packets. */
        volume = cnt * 1000; /* Take 'cnt' packets from the bucket. */
    } else {
        /* Rate in kbps, bucket in bits. */
        /* msec * kbps = bits */
        volume = bytes * 8;
    }

    /* Update all bands and find the one hit with the highest rate for each
     * packet (if any). */
    for (int m = 0; m < meter->n_bands; ++m) {
        uint64_t max_bucket_size;

        band = &meter->bands[m];
        max_bucket_size = band->burst_size * 1000ULL;
        /* Update band's bucket. */
        band->bucket += (uint64_t) delta_t * band->rate;
        if (band->bucket > max_bucket_size) {
            band->bucket = max_bucket_size;
        }

        /* Drain the bucket for all the packets, if possible. */
        if (band->bucket >= volume) {
            band->bucket -= volume;
        } else {
            int band_exceeded_pkt;

            /* Band limit hit, must process packet-by-packet. */
            if (meter->flags & OFPMF13_PKTPS) {
                band_exceeded_pkt = band->bucket / 1000;
                band->bucket %= 1000; /* Remainder stays in bucket. */

                /* Update the exceeding band for each exceeding packet.
                 * (Only one band will be fired by a packet, and that
                 * can be different for each packet.) */
                for (int i = band_exceeded_pkt; i < cnt; i++) {
                    if (band->rate > exceeded_rate[i]) {
                        exceeded_rate[i] = band->rate;
                        exceeded_band[i] = m;
                    }
                }
            } else {
                /* Packet sizes differ, must process one-by-one. */
                band_exceeded_pkt = cnt;
                DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
                    uint32_t bits = dp_packet_size(packet) * 8;

                    if (band->bucket >= bits) {
                        band->bucket -= bits;
                    } else {
                        if (i < band_exceeded_pkt) {
                            band_exceeded_pkt = i;
                        }
                        /* Update the exceeding band for the exceeding packet.
                         * (Only one band will be fired by a packet, and that
                         * can be different for each packet.) */
                        if (band->rate > exceeded_rate[i]) {
                            exceeded_rate[i] = band->rate;
                            exceeded_band[i] = m;
                        }
                    }
                }
            }
            /* Remember the first exceeding packet. */
            if (exceeded_pkt > band_exceeded_pkt) {
                exceeded_pkt = band_exceeded_pkt;
            }
        }
    }

    /* Fire the highest rate band exceeded by each packet, and drop
     * packets if needed. */
    size_t j;
    DP_PACKET_BATCH_REFILL_FOR_EACH (j, cnt, packet, packets_) {
        if (exceeded_band[j] >= 0) {
            /* Meter drop packet. */
            band = &meter->bands[exceeded_band[j]];
            band->packet_count += 1;
            band->byte_count += dp_packet_size(packet);
            COVERAGE_INC(datapath_drop_meter);
            dp_packet_delete(packet);
        } else {
            /* Meter accepts packet. */
            dp_packet_batch_refill(packets_, packet, j);
        }
    }

    ovs_mutex_unlock(&meter->lock);
}

/* Meter set/get/del processing is still single-threaded. */
static int
dpif_netdev_meter_set(struct dpif *dpif, ofproto_meter_id meter_id,
                      struct ofputil_meter_config *config)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    uint32_t mid = meter_id.uint32;
    struct dp_meter *meter;
    int i;

    if (mid >= MAX_METERS) {
        return EFBIG; /* Meter_id out of range. */
    }

    if (config->flags & ~DP_SUPPORTED_METER_FLAGS_MASK) {
        return EBADF; /* Unsupported flags set */
    }

    if (config->n_bands > MAX_BANDS) {
        return EINVAL;
    }

    for (i = 0; i < config->n_bands; ++i) {
        switch (config->bands[i].type) {
        case OFPMBT13_DROP:
            break;
        default:
            return ENODEV; /* Unsupported band type */
        }
    }

    /* Allocate meter */
    meter = xzalloc(sizeof *meter
                    + config->n_bands * sizeof(struct dp_meter_band));

    meter->flags = config->flags;
    meter->n_bands = config->n_bands;
    meter->max_delta_t = 0;
    meter->used = time_usec();
    meter->id = mid;
    ovs_mutex_init_adaptive(&meter->lock);

    /* set up bands */
    for (i = 0; i < config->n_bands; ++i) {
        uint32_t band_max_delta_t;

        /* Set burst size to a workable value if none specified. */
        if (config->bands[i].burst_size == 0) {
            config->bands[i].burst_size = config->bands[i].rate;
        }

        meter->bands[i].rate = config->bands[i].rate;
        meter->bands[i].burst_size = config->bands[i].burst_size;
        /* Start with a full bucket. */
        meter->bands[i].bucket = meter->bands[i].burst_size * 1000ULL;

        /* Figure out max delta_t that is enough to fill any bucket. */
        band_max_delta_t
            = meter->bands[i].bucket / meter->bands[i].rate;
        if (band_max_delta_t > meter->max_delta_t) {
            meter->max_delta_t = band_max_delta_t;
        }
    }

    ovs_mutex_lock(&dp->meters_lock);

    dp_meter_detach_free(&dp->meters, mid); /* Free existing meter, if any. */
    dp_meter_attach(&dp->meters, meter);

    ovs_mutex_unlock(&dp->meters_lock);

    return 0;
}

static int
dpif_netdev_meter_get(const struct dpif *dpif,
                      ofproto_meter_id meter_id_,
                      struct ofputil_meter_stats *stats, uint16_t n_bands)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    uint32_t meter_id = meter_id_.uint32;
    const struct dp_meter *meter;

    if (meter_id >= MAX_METERS) {
        return EFBIG;
    }

    meter = dp_meter_lookup(&dp->meters, meter_id);
    if (!meter) {
        return ENOENT;
    }

    if (stats) {
        int i = 0;

        ovs_mutex_lock(&meter->lock);

        stats->packet_in_count = meter->packet_count;
        stats->byte_in_count = meter->byte_count;

        for (i = 0; i < n_bands && i < meter->n_bands; ++i) {
            stats->bands[i].packet_count = meter->bands[i].packet_count;
            stats->bands[i].byte_count = meter->bands[i].byte_count;
        }

        ovs_mutex_unlock(&meter->lock);
        stats->n_bands = i;
    }

    return 0;
}

static int
dpif_netdev_meter_del(struct dpif *dpif,
                      ofproto_meter_id meter_id_,
                      struct ofputil_meter_stats *stats, uint16_t n_bands)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    int error;

    error = dpif_netdev_meter_get(dpif, meter_id_, stats, n_bands);
    if (!error) {
        uint32_t meter_id = meter_id_.uint32;

        ovs_mutex_lock(&dp->meters_lock);
        dp_meter_detach_free(&dp->meters, meter_id);
        ovs_mutex_unlock(&dp->meters_lock);
    }
    return error;
}


static void
dpif_netdev_disable_upcall(struct dpif *dpif)
    OVS_NO_THREAD_SAFETY_ANALYSIS
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    dp_netdev_disable_upcall(dp);
}

static void
dp_netdev_enable_upcall(struct dp_netdev *dp)
    OVS_RELEASES(dp->upcall_rwlock)
{
    fat_rwlock_unlock(&dp->upcall_rwlock);
}

static void
dpif_netdev_enable_upcall(struct dpif *dpif)
    OVS_NO_THREAD_SAFETY_ANALYSIS
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    dp_netdev_enable_upcall(dp);
}

static void
dp_netdev_pmd_reload_done(struct dp_netdev_pmd_thread *pmd)
{
    atomic_store_relaxed(&pmd->wait_for_reload, false);
    atomic_store_relaxed(&pmd->reload_tx_qid, false);
    pmd->last_reload_seq = seq_read(pmd->reload_seq);
    atomic_store_explicit(&pmd->reload, false, memory_order_release);
}

/* Finds and refs the dp_netdev_pmd_thread on core 'core_id'.  Returns
 * the pointer if succeeds, otherwise, NULL (it can return NULL even if
 * 'core_id' is NON_PMD_CORE_ID).
 *
 * Caller must unrefs the returned reference.  */
static struct dp_netdev_pmd_thread *
dp_netdev_get_pmd(struct dp_netdev *dp, unsigned core_id)
{
    struct dp_netdev_pmd_thread *pmd;

    CMAP_FOR_EACH_WITH_HASH (pmd, node, hash_int(core_id, 0),
                             &dp->poll_threads) {
        if (pmd->core_id == core_id) {
            return dp_netdev_pmd_try_ref(pmd) ? pmd : NULL;
        }
    }

    return NULL;
}

/* Sets the 'struct dp_netdev_pmd_thread' for non-pmd threads. */
static void
dp_netdev_set_nonpmd(struct dp_netdev *dp)
    OVS_REQ_WRLOCK(dp->port_rwlock)
{
    struct dp_netdev_pmd_thread *non_pmd;

    non_pmd = xzalloc(sizeof *non_pmd);
    dp_netdev_configure_pmd(non_pmd, dp, NON_PMD_CORE_ID, OVS_NUMA_UNSPEC);
}

/* Caller must have valid pointer to 'pmd'. */
static bool
dp_netdev_pmd_try_ref(struct dp_netdev_pmd_thread *pmd)
{
    return ovs_refcount_try_ref_rcu(&pmd->ref_cnt);
}

static void
dp_netdev_pmd_unref(struct dp_netdev_pmd_thread *pmd)
{
    if (pmd && ovs_refcount_unref(&pmd->ref_cnt) == 1) {
        ovsrcu_postpone(dp_netdev_destroy_pmd, pmd);
    }
}

/* Given cmap position 'pos', tries to ref the next node.  If try_ref()
 * fails, keeps checking for next node until reaching the end of cmap.
 *
 * Caller must unrefs the returned reference. */
static struct dp_netdev_pmd_thread *
dp_netdev_pmd_get_next(struct dp_netdev *dp, struct cmap_position *pos)
{
    struct dp_netdev_pmd_thread *next;

    do {
        struct cmap_node *node;

        node = cmap_next_position(&dp->poll_threads, pos);
        next = node ? CONTAINER_OF(node, struct dp_netdev_pmd_thread, node)
            : NULL;
    } while (next && !dp_netdev_pmd_try_ref(next));

    return next;
}

/* Configures the 'pmd' based on the input argument. */
static void
dp_netdev_configure_pmd(struct dp_netdev_pmd_thread *pmd, struct dp_netdev *dp,
                        unsigned core_id, int numa_id)
{
    pmd->dp = dp;
    pmd->core_id = core_id;
    pmd->numa_id = numa_id;
    pmd->need_reload = false;
    pmd->n_output_batches = 0;

    ovs_refcount_init(&pmd->ref_cnt);
    atomic_init(&pmd->exit, false);
    pmd->reload_seq = seq_create();
    pmd->last_reload_seq = seq_read(pmd->reload_seq);
    atomic_init(&pmd->reload, false);
    ovs_mutex_init(&pmd->flow_mutex);
    ovs_mutex_init(&pmd->port_mutex);
    ovs_mutex_init(&pmd->bond_mutex);
    cmap_init(&pmd->flow_table);
    cmap_init(&pmd->classifiers);
    cmap_init(&pmd->simple_match_table);
    ccmap_init(&pmd->n_flows);
    ccmap_init(&pmd->n_simple_flows);
    pmd->ctx.last_rxq = NULL;
    pmd_thread_ctx_time_update(pmd);
    pmd->next_optimization = pmd->ctx.now + DPCLS_OPTIMIZATION_INTERVAL;
    pmd->next_rcu_quiesce = pmd->ctx.now + PMD_RCU_QUIESCE_INTERVAL;
    pmd->next_cycle_store = pmd->ctx.now + PMD_INTERVAL_LEN;
    pmd->busy_cycles_intrvl = xzalloc(PMD_INTERVAL_MAX *
                                      sizeof *pmd->busy_cycles_intrvl);
    hmap_init(&pmd->poll_list);
    hmap_init(&pmd->tx_ports);
    hmap_init(&pmd->tnl_port_cache);
    hmap_init(&pmd->send_port_cache);
    cmap_init(&pmd->tx_bonds);

    /* Initialize DPIF function pointer to the default configured version. */
    atomic_init(&pmd->netdev_input_func, dp_netdev_impl_get_default());

    /* Init default miniflow_extract function */
    atomic_init(&pmd->miniflow_extract_opt, dp_mfex_impl_get_default());

    /* init the 'flow_cache' since there is no
     * actual thread created for NON_PMD_CORE_ID. */
    if (core_id == NON_PMD_CORE_ID) {
        dfc_cache_init(&pmd->flow_cache);
        pmd_alloc_static_tx_qid(pmd);
    }
    pmd_perf_stats_init(&pmd->perf_stats);
    cmap_insert(&dp->poll_threads, CONST_CAST(struct cmap_node *, &pmd->node),
                hash_int(core_id, 0));
}

static void
dp_netdev_destroy_pmd(struct dp_netdev_pmd_thread *pmd)
{
    struct dpcls *cls;

    dp_netdev_pmd_flow_flush(pmd);
    hmap_destroy(&pmd->send_port_cache);
    hmap_destroy(&pmd->tnl_port_cache);
    hmap_destroy(&pmd->tx_ports);
    cmap_destroy(&pmd->tx_bonds);
    hmap_destroy(&pmd->poll_list);
    free(pmd->busy_cycles_intrvl);
    /* All flows (including their dpcls_rules) have been deleted already */
    CMAP_FOR_EACH (cls, node, &pmd->classifiers) {
        dpcls_destroy(cls);
        ovsrcu_postpone(free, cls);
    }
    cmap_destroy(&pmd->classifiers);
    cmap_destroy(&pmd->flow_table);
    cmap_destroy(&pmd->simple_match_table);
    ccmap_destroy(&pmd->n_flows);
    ccmap_destroy(&pmd->n_simple_flows);
    ovs_mutex_destroy(&pmd->flow_mutex);
    seq_destroy(pmd->reload_seq);
    ovs_mutex_destroy(&pmd->port_mutex);
    ovs_mutex_destroy(&pmd->bond_mutex);
    free(pmd->netdev_input_func_userdata);
    free(pmd);
}

/* Stops the pmd thread, removes it from the 'dp->poll_threads',
 * and unrefs the struct. */
static void
dp_netdev_del_pmd(struct dp_netdev *dp, struct dp_netdev_pmd_thread *pmd)
{
    /* NON_PMD_CORE_ID doesn't have a thread, so we don't have to synchronize,
     * but extra cleanup is necessary */
    if (pmd->core_id == NON_PMD_CORE_ID) {
        ovs_mutex_lock(&dp->non_pmd_mutex);
        dfc_cache_uninit(&pmd->flow_cache);
        pmd_free_cached_ports(pmd);
        pmd_free_static_tx_qid(pmd);
        ovs_mutex_unlock(&dp->non_pmd_mutex);
    } else {
        atomic_store_relaxed(&pmd->exit, true);
        dp_netdev_reload_pmd__(pmd);
        xpthread_join(pmd->thread, NULL);
    }

    dp_netdev_pmd_clear_ports(pmd);

    /* Purges the 'pmd''s flows after stopping the thread, but before
     * destroying the flows, so that the flow stats can be collected. */
    if (dp->dp_purge_cb) {
        dp->dp_purge_cb(dp->dp_purge_aux, pmd->core_id);
    }
    cmap_remove(&pmd->dp->poll_threads, &pmd->node, hash_int(pmd->core_id, 0));
    dp_netdev_pmd_unref(pmd);
}

/* Destroys all pmd threads. If 'non_pmd' is true it also destroys the non pmd
 * thread. */
static void
dp_netdev_destroy_all_pmds(struct dp_netdev *dp, bool non_pmd)
{
    struct dp_netdev_pmd_thread *pmd;
    struct dp_netdev_pmd_thread **pmd_list;
    size_t k = 0, n_pmds;

    n_pmds = cmap_count(&dp->poll_threads);
    pmd_list = xcalloc(n_pmds, sizeof *pmd_list);

    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        if (!non_pmd && pmd->core_id == NON_PMD_CORE_ID) {
            continue;
        }
        /* We cannot call dp_netdev_del_pmd(), since it alters
         * 'dp->poll_threads' (while we're iterating it) and it
         * might quiesce. */
        ovs_assert(k < n_pmds);
        pmd_list[k++] = pmd;
    }

    for (size_t i = 0; i < k; i++) {
        dp_netdev_del_pmd(dp, pmd_list[i]);
    }
    free(pmd_list);
}

/* Deletes all rx queues from pmd->poll_list and all the ports from
 * pmd->tx_ports. */
static void
dp_netdev_pmd_clear_ports(struct dp_netdev_pmd_thread *pmd)
{
    struct rxq_poll *poll;
    struct tx_port *port;
    struct tx_bond *tx;

    ovs_mutex_lock(&pmd->port_mutex);
    HMAP_FOR_EACH_POP (poll, node, &pmd->poll_list) {
        free(poll);
    }
    HMAP_FOR_EACH_POP (port, node, &pmd->tx_ports) {
        free(port->txq_pkts);
        free(port);
    }
    ovs_mutex_unlock(&pmd->port_mutex);

    ovs_mutex_lock(&pmd->bond_mutex);
    CMAP_FOR_EACH (tx, node, &pmd->tx_bonds) {
        cmap_remove(&pmd->tx_bonds, &tx->node, hash_bond_id(tx->bond_id));
        ovsrcu_postpone(free, tx);
    }
    ovs_mutex_unlock(&pmd->bond_mutex);
}

/* Adds rx queue to poll_list of PMD thread, if it's not there already. */
static void
dp_netdev_add_rxq_to_pmd(struct dp_netdev_pmd_thread *pmd,
                         struct dp_netdev_rxq *rxq)
    OVS_REQUIRES(pmd->port_mutex)
{
    int qid = netdev_rxq_get_queue_id(rxq->rx);
    uint32_t hash = hash_2words(odp_to_u32(rxq->port->port_no), qid);
    struct rxq_poll *poll;

    HMAP_FOR_EACH_WITH_HASH (poll, node, hash, &pmd->poll_list) {
        if (poll->rxq == rxq) {
            /* 'rxq' is already polled by this thread. Do nothing. */
            return;
        }
    }

    poll = xmalloc(sizeof *poll);
    poll->rxq = rxq;
    hmap_insert(&pmd->poll_list, &poll->node, hash);

    pmd->need_reload = true;
}

/* Delete 'poll' from poll_list of PMD thread. */
static void
dp_netdev_del_rxq_from_pmd(struct dp_netdev_pmd_thread *pmd,
                           struct rxq_poll *poll)
    OVS_REQUIRES(pmd->port_mutex)
{
    hmap_remove(&pmd->poll_list, &poll->node);
    free(poll);

    pmd->need_reload = true;
}

/* Add 'port' to the tx port cache of 'pmd', which must be reloaded for the
 * changes to take effect. */
static void
dp_netdev_add_port_tx_to_pmd(struct dp_netdev_pmd_thread *pmd,
                             struct dp_netdev_port *port)
    OVS_REQUIRES(pmd->port_mutex)
{
    struct tx_port *tx;

    tx = tx_port_lookup(&pmd->tx_ports, port->port_no);
    if (tx) {
        /* 'port' is already on this thread tx cache. Do nothing. */
        return;
    }

    tx = xzalloc(sizeof *tx);

    tx->port = port;
    tx->qid = -1;
    tx->flush_time = 0LL;
    dp_packet_batch_init(&tx->output_pkts);

    if (tx->port->txq_mode == TXQ_MODE_XPS_HASH) {
        int i, n_txq = netdev_n_txq(tx->port->netdev);

        tx->txq_pkts = xzalloc(n_txq * sizeof *tx->txq_pkts);
        for (i = 0; i < n_txq; i++) {
            dp_packet_batch_init(&tx->txq_pkts[i]);
        }
    }

    hmap_insert(&pmd->tx_ports, &tx->node, hash_port_no(tx->port->port_no));
    pmd->need_reload = true;
}

/* Del 'tx' from the tx port cache of 'pmd', which must be reloaded for the
 * changes to take effect. */
static void
dp_netdev_del_port_tx_from_pmd(struct dp_netdev_pmd_thread *pmd,
                               struct tx_port *tx)
    OVS_REQUIRES(pmd->port_mutex)
{
    hmap_remove(&pmd->tx_ports, &tx->node);
    free(tx->txq_pkts);
    free(tx);
    pmd->need_reload = true;
}

/* Add bond to the tx bond cmap of 'pmd'. */
static void
dp_netdev_add_bond_tx_to_pmd(struct dp_netdev_pmd_thread *pmd,
                             struct tx_bond *bond, bool update)
    OVS_EXCLUDED(pmd->bond_mutex)
{
    struct tx_bond *tx;

    ovs_mutex_lock(&pmd->bond_mutex);
    tx = tx_bond_lookup(&pmd->tx_bonds, bond->bond_id);

    if (tx && !update) {
        /* It's not an update and the entry already exists.  Do nothing. */
        goto unlock;
    }

    if (tx) {
        struct tx_bond *new_tx = xmemdup(bond, sizeof *bond);

        /* Copy the stats for each bucket. */
        for (int i = 0; i < BOND_BUCKETS; i++) {
            uint64_t n_packets, n_bytes;

            atomic_read_relaxed(&tx->member_buckets[i].n_packets, &n_packets);
            atomic_read_relaxed(&tx->member_buckets[i].n_bytes, &n_bytes);
            atomic_init(&new_tx->member_buckets[i].n_packets, n_packets);
            atomic_init(&new_tx->member_buckets[i].n_bytes, n_bytes);
        }
        cmap_replace(&pmd->tx_bonds, &tx->node, &new_tx->node,
                     hash_bond_id(bond->bond_id));
        ovsrcu_postpone(free, tx);
    } else {
        tx = xmemdup(bond, sizeof *bond);
        cmap_insert(&pmd->tx_bonds, &tx->node, hash_bond_id(bond->bond_id));
    }
unlock:
    ovs_mutex_unlock(&pmd->bond_mutex);
}

/* Delete bond from the tx bond cmap of 'pmd'. */
static void
dp_netdev_del_bond_tx_from_pmd(struct dp_netdev_pmd_thread *pmd,
                               uint32_t bond_id)
    OVS_EXCLUDED(pmd->bond_mutex)
{
    struct tx_bond *tx;

    ovs_mutex_lock(&pmd->bond_mutex);
    tx = tx_bond_lookup(&pmd->tx_bonds, bond_id);
    if (tx) {
        cmap_remove(&pmd->tx_bonds, &tx->node, hash_bond_id(tx->bond_id));
        ovsrcu_postpone(free, tx);
    }
    ovs_mutex_unlock(&pmd->bond_mutex);
}

static char *
dpif_netdev_get_datapath_version(void)
{
     return xstrdup("<built-in>");
}

static void
dp_netdev_flow_used(struct dp_netdev_flow *netdev_flow, int cnt, int size,
                    uint16_t tcp_flags, long long now)
{
    uint16_t flags;

    atomic_store_relaxed(&netdev_flow->stats.used, now);
    non_atomic_ullong_add(&netdev_flow->stats.packet_count, cnt);
    non_atomic_ullong_add(&netdev_flow->stats.byte_count, size);
    atomic_read_relaxed(&netdev_flow->stats.tcp_flags, &flags);
    flags |= tcp_flags;
    atomic_store_relaxed(&netdev_flow->stats.tcp_flags, flags);
}

static int
dp_netdev_upcall(struct dp_netdev_pmd_thread *pmd, struct dp_packet *packet_,
                 struct flow *flow, struct flow_wildcards *wc, ovs_u128 *ufid,
                 enum dpif_upcall_type type, const struct nlattr *userdata,
                 struct ofpbuf *actions, struct ofpbuf *put_actions)
{
    struct dp_netdev *dp = pmd->dp;

    if (OVS_UNLIKELY(!dp->upcall_cb)) {
        return ENODEV;
    }

    if (OVS_UNLIKELY(!VLOG_DROP_DBG(&upcall_rl))) {
        struct ds ds = DS_EMPTY_INITIALIZER;
        char *packet_str;
        struct ofpbuf key;
        struct odp_flow_key_parms odp_parms = {
            .flow = flow,
            .mask = wc ? &wc->masks : NULL,
            .support = dp_netdev_support,
        };

        ofpbuf_init(&key, 0);
        odp_flow_key_from_flow(&odp_parms, &key);
        packet_str = ofp_dp_packet_to_string(packet_);

        odp_flow_key_format(key.data, key.size, &ds);

        VLOG_DBG("%s: %s upcall:\n%s\n%s", dp->name,
                 dpif_upcall_type_to_string(type), ds_cstr(&ds), packet_str);

        ofpbuf_uninit(&key);
        free(packet_str);

        ds_destroy(&ds);
    }

    return dp->upcall_cb(packet_, flow, ufid, pmd->core_id, type, userdata,
                         actions, wc, put_actions, dp->upcall_aux);
}

static inline uint32_t
dpif_netdev_packet_get_rss_hash(struct dp_packet *packet,
                                const struct miniflow *mf)
{
    uint32_t hash, recirc_depth;

    if (OVS_LIKELY(dp_packet_rss_valid(packet))) {
        hash = dp_packet_get_rss_hash(packet);
    } else {
        hash = miniflow_hash_5tuple(mf, 0);
        dp_packet_set_rss_hash(packet, hash);
    }

    /* The RSS hash must account for the recirculation depth to avoid
     * collisions in the exact match cache */
    recirc_depth = *recirc_depth_get_unsafe();
    if (OVS_UNLIKELY(recirc_depth)) {
        hash = hash_finish(hash, recirc_depth);
    }
    return hash;
}

struct packet_batch_per_flow {
    unsigned int byte_count;
    uint16_t tcp_flags;
    struct dp_netdev_flow *flow;

    struct dp_packet_batch array;
};

static inline void
packet_batch_per_flow_update(struct packet_batch_per_flow *batch,
                             struct dp_packet *packet,
                             uint16_t tcp_flags)
{
    batch->byte_count += dp_packet_size(packet);
    batch->tcp_flags |= tcp_flags;
    dp_packet_batch_add(&batch->array, packet);
}

static inline void
packet_batch_per_flow_init(struct packet_batch_per_flow *batch,
                           struct dp_netdev_flow *flow)
{
    flow->batch = batch;

    batch->flow = flow;
    dp_packet_batch_init(&batch->array);
    batch->byte_count = 0;
    batch->tcp_flags = 0;
}

static inline void
packet_batch_per_flow_execute(struct packet_batch_per_flow *batch,
                              struct dp_netdev_pmd_thread *pmd)
{
    struct dp_netdev_actions *actions;
    struct dp_netdev_flow *flow = batch->flow;

    dp_netdev_flow_used(flow, dp_packet_batch_size(&batch->array),
                        batch->byte_count,
                        batch->tcp_flags, pmd->ctx.now / 1000);

    actions = dp_netdev_flow_get_actions(flow);

    dp_netdev_execute_actions(pmd, &batch->array, true, &flow->flow,
                              actions->actions, actions->size);
}

void
dp_netdev_batch_execute(struct dp_netdev_pmd_thread *pmd,
                        struct dp_packet_batch *packets,
                        struct dpcls_rule *rule,
                        uint32_t bytes,
                        uint16_t tcp_flags)
{
    /* Gets action* from the rule. */
    struct dp_netdev_flow *flow = dp_netdev_flow_cast(rule);
    struct dp_netdev_actions *actions = dp_netdev_flow_get_actions(flow);

    dp_netdev_flow_used(flow, dp_packet_batch_size(packets), bytes,
                        tcp_flags, pmd->ctx.now / 1000);
    const uint32_t steal = 1;
    dp_netdev_execute_actions(pmd, packets, steal, &flow->flow,
                              actions->actions, actions->size);
}

static inline void
dp_netdev_queue_batches(struct dp_packet *pkt,
                        struct dp_netdev_flow *flow, uint16_t tcp_flags,
                        struct packet_batch_per_flow *batches,
                        size_t *n_batches)
{
    struct packet_batch_per_flow *batch = flow->batch;

    if (OVS_UNLIKELY(!batch)) {
        batch = &batches[(*n_batches)++];
        packet_batch_per_flow_init(batch, flow);
    }

    packet_batch_per_flow_update(batch, pkt, tcp_flags);
}

static inline void
packet_enqueue_to_flow_map(struct dp_packet *packet,
                           struct dp_netdev_flow *flow,
                           uint16_t tcp_flags,
                           struct dp_packet_flow_map *flow_map,
                           size_t index)
{
    struct dp_packet_flow_map *map = &flow_map[index];
    map->flow = flow;
    map->packet = packet;
    map->tcp_flags = tcp_flags;
}

/* SMC lookup function for a batch of packets.
 * By doing batching SMC lookup, we can use prefetch
 * to hide memory access latency.
 */
static inline void
smc_lookup_batch(struct dp_netdev_pmd_thread *pmd,
            struct netdev_flow_key *keys,
            struct netdev_flow_key **missed_keys,
            struct dp_packet_batch *packets_,
            const int cnt,
            struct dp_packet_flow_map *flow_map,
            uint8_t *index_map)
{
    int i;
    struct dp_packet *packet;
    size_t n_smc_hit = 0, n_missed = 0;
    struct dfc_cache *cache = &pmd->flow_cache;
    struct smc_cache *smc_cache = &cache->smc_cache;
    const struct cmap_node *flow_node;
    int recv_idx;
    uint16_t tcp_flags;

    /* Prefetch buckets for all packets */
    for (i = 0; i < cnt; i++) {
        OVS_PREFETCH(&smc_cache->buckets[keys[i].hash & SMC_MASK]);
    }

    DP_PACKET_BATCH_REFILL_FOR_EACH (i, cnt, packet, packets_) {
        struct dp_netdev_flow *flow = NULL;
        flow_node = smc_entry_get(pmd, keys[i].hash);
        bool hit = false;
        /* Get the original order of this packet in received batch. */
        recv_idx = index_map[i];

        if (OVS_LIKELY(flow_node != NULL)) {
            CMAP_NODE_FOR_EACH (flow, node, flow_node) {
                /* Since we dont have per-port megaflow to check the port
                 * number, we need to  verify that the input ports match. */
                if (OVS_LIKELY(dpcls_rule_matches_key(&flow->cr, &keys[i]) &&
                flow->flow.in_port.odp_port == packet->md.in_port.odp_port)) {
                    tcp_flags = miniflow_get_tcp_flags(&keys[i].mf);

                    /* SMC hit and emc miss, we insert into EMC */
                    keys[i].len =
                        netdev_flow_key_size(miniflow_n_values(&keys[i].mf));
                    emc_probabilistic_insert(pmd, &keys[i], flow);
                    /* Add these packets into the flow map in the same order
                     * as received.
                     */
                    packet_enqueue_to_flow_map(packet, flow, tcp_flags,
                                               flow_map, recv_idx);
                    n_smc_hit++;
                    hit = true;
                    break;
                }
            }
            if (hit) {
                continue;
            }
        }

        /* SMC missed. Group missed packets together at
         * the beginning of the 'packets' array. */
        dp_packet_batch_refill(packets_, packet, i);

        /* Preserve the order of packet for flow batching. */
        index_map[n_missed] = recv_idx;

        /* Put missed keys to the pointer arrays return to the caller */
        missed_keys[n_missed++] = &keys[i];
    }

    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_SMC_HIT, n_smc_hit);
}

struct dp_netdev_flow *
smc_lookup_single(struct dp_netdev_pmd_thread *pmd,
                  struct dp_packet *packet,
                  struct netdev_flow_key *key)
{
    const struct cmap_node *flow_node = smc_entry_get(pmd, key->hash);

    if (OVS_LIKELY(flow_node != NULL)) {
        struct dp_netdev_flow *flow = NULL;

        CMAP_NODE_FOR_EACH (flow, node, flow_node) {
            /* Since we dont have per-port megaflow to check the port
             * number, we need to verify that the input ports match. */
            if (OVS_LIKELY(dpcls_rule_matches_key(&flow->cr, key) &&
                flow->flow.in_port.odp_port == packet->md.in_port.odp_port)) {

                return (void *) flow;
            }
        }
    }

    return NULL;
}

inline int
dp_netdev_hw_flow(const struct dp_netdev_pmd_thread *pmd,
                  struct dp_packet *packet,
                  struct dp_netdev_flow **flow)
{
    uint32_t mark;

#ifdef ALLOW_EXPERIMENTAL_API /* Packet restoration API required. */
    /* Restore the packet if HW processing was terminated before completion. */
    struct dp_netdev_rxq *rxq = pmd->ctx.last_rxq;
    bool miss_api_supported;

    atomic_read_relaxed(&rxq->port->netdev->hw_info.miss_api_supported,
                        &miss_api_supported);
    if (miss_api_supported) {
        int err = netdev_hw_miss_packet_recover(rxq->port->netdev, packet);
        if (err && err != EOPNOTSUPP) {
            COVERAGE_INC(datapath_drop_hw_miss_recover);
            return -1;
        }
    }
#endif

    /* If no mark, no flow to find. */
    if (!dp_packet_has_flow_mark(packet, &mark)) {
        *flow = NULL;
        return 0;
    }

    *flow = mark_to_flow_find(pmd, mark);
    return 0;
}

/* Enqueues already classified packet into per-flow batches or the flow map,
 * depending on the fact if batching enabled. */
static inline void
dfc_processing_enqueue_classified_packet(struct dp_packet *packet,
                                         struct dp_netdev_flow *flow,
                                         uint16_t tcp_flags,
                                         bool batch_enable,
                                         struct packet_batch_per_flow *batches,
                                         size_t *n_batches,
                                         struct dp_packet_flow_map *flow_map,
                                         size_t *map_cnt)

{
    if (OVS_LIKELY(batch_enable)) {
        dp_netdev_queue_batches(packet, flow, tcp_flags, batches,
                                n_batches);
    } else {
        /* Flow batching should be performed only after fast-path
         * processing is also completed for packets with emc miss
         * or else it will result in reordering of packets with
         * same datapath flows. */
        packet_enqueue_to_flow_map(packet, flow, tcp_flags,
                                   flow_map, (*map_cnt)++);
    }

}

/* Try to process all ('cnt') the 'packets' using only the datapath flow cache
 * 'pmd->flow_cache'. If a flow is not found for a packet 'packets[i]', the
 * miniflow is copied into 'keys' and the packet pointer is moved at the
 * beginning of the 'packets' array. The pointers of missed keys are put in the
 * missed_keys pointer array for future processing.
 *
 * The function returns the number of packets that needs to be processed in the
 * 'packets' array (they have been moved to the beginning of the vector).
 *
 * For performance reasons a caller may choose not to initialize the metadata
 * in 'packets_'.  If 'md_is_valid' is false, the metadata in 'packets'
 * is not valid and must be initialized by this function using 'port_no'.
 * If 'md_is_valid' is true, the metadata is already valid and 'port_no'
 * will be ignored.
 */
static inline size_t
dfc_processing(struct dp_netdev_pmd_thread *pmd,
               struct dp_packet_batch *packets_,
               struct netdev_flow_key *keys,
               struct netdev_flow_key **missed_keys,
               struct packet_batch_per_flow batches[], size_t *n_batches,
               struct dp_packet_flow_map *flow_map,
               size_t *n_flows, uint8_t *index_map,
               bool md_is_valid, odp_port_t port_no)
{
    const bool netdev_flow_api = netdev_is_flow_api_enabled();
    const uint32_t recirc_depth = *recirc_depth_get();
    const size_t cnt = dp_packet_batch_size(packets_);
    size_t n_missed = 0, n_emc_hit = 0, n_phwol_hit = 0;
    size_t n_mfex_opt_hit = 0, n_simple_hit = 0;
    struct dfc_cache *cache = &pmd->flow_cache;
    struct netdev_flow_key *key = &keys[0];
    struct dp_packet *packet;
    size_t map_cnt = 0;
    bool batch_enable = true;

    const bool simple_match_enabled =
        !md_is_valid && dp_netdev_simple_match_enabled(pmd, port_no);
    /* 'simple_match_table' is a full flow table.  If the flow is not there,
     * upcall is required, and there is no chance to find a match in caches. */
    const bool smc_enable_db = !simple_match_enabled && pmd->ctx.smc_enable_db;
    const uint32_t cur_min = simple_match_enabled
                             ? 0 : pmd->ctx.emc_insert_min;

    pmd_perf_update_counter(&pmd->perf_stats,
                            md_is_valid ? PMD_STAT_RECIRC : PMD_STAT_RECV,
                            cnt);
    int i;
    DP_PACKET_BATCH_REFILL_FOR_EACH (i, cnt, packet, packets_) {
        struct dp_netdev_flow *flow = NULL;
        uint16_t tcp_flags;

        if (OVS_UNLIKELY(dp_packet_size(packet) < ETH_HEADER_LEN)) {
            dp_packet_delete(packet);
            COVERAGE_INC(datapath_drop_rx_invalid_packet);
            continue;
        }

        if (i != cnt - 1) {
            struct dp_packet **packets = packets_->packets;
            /* Prefetch next packet data and metadata. */
            OVS_PREFETCH(dp_packet_data(packets[i+1]));
            pkt_metadata_prefetch_init(&packets[i+1]->md);
        }

        if (!md_is_valid) {
            pkt_metadata_init(&packet->md, port_no);
        }

        if (netdev_flow_api && recirc_depth == 0) {
            if (OVS_UNLIKELY(dp_netdev_hw_flow(pmd, packet, &flow))) {
                /* Packet restoration failed and it was dropped, do not
                 * continue processing.
                 */
                continue;
            }
            if (OVS_LIKELY(flow)) {
                tcp_flags = parse_tcp_flags(packet, NULL, NULL, NULL);
                n_phwol_hit++;
                dfc_processing_enqueue_classified_packet(
                        packet, flow, tcp_flags, batch_enable,
                        batches, n_batches, flow_map, &map_cnt);
                continue;
            }
        }

        if (!flow && simple_match_enabled) {
            ovs_be16 dl_type = 0, vlan_tci = 0;
            uint8_t nw_frag = 0;

            tcp_flags = parse_tcp_flags(packet, &dl_type, &nw_frag, &vlan_tci);
            flow = dp_netdev_simple_match_lookup(pmd, port_no, dl_type,
                                                 nw_frag, vlan_tci);
            if (OVS_LIKELY(flow)) {
                n_simple_hit++;
                dfc_processing_enqueue_classified_packet(
                        packet, flow, tcp_flags, batch_enable,
                        batches, n_batches, flow_map, &map_cnt);
                continue;
            }
        }

        miniflow_extract(packet, &key->mf);
        key->len = 0; /* Not computed yet. */
        key->hash =
                (md_is_valid == false)
                ? dpif_netdev_packet_get_rss_hash_orig_pkt(packet, &key->mf)
                : dpif_netdev_packet_get_rss_hash(packet, &key->mf);

        /* If EMC is disabled skip emc_lookup */
        flow = (cur_min != 0) ? emc_lookup(&cache->emc_cache, key) : NULL;
        if (OVS_LIKELY(flow)) {
            tcp_flags = miniflow_get_tcp_flags(&key->mf);
            n_emc_hit++;
            dfc_processing_enqueue_classified_packet(
                    packet, flow, tcp_flags, batch_enable,
                    batches, n_batches, flow_map, &map_cnt);
        } else {
            /* Exact match cache missed. Group missed packets together at
             * the beginning of the 'packets' array. */
            dp_packet_batch_refill(packets_, packet, i);

            /* Preserve the order of packet for flow batching. */
            index_map[n_missed] = map_cnt;
            flow_map[map_cnt++].flow = NULL;

            /* 'key[n_missed]' contains the key of the current packet and it
             * will be passed to SMC lookup. The next key should be extracted
             * to 'keys[n_missed + 1]'.
             * We also maintain a pointer array to keys missed both SMC and EMC
             * which will be returned to the caller for future processing. */
            missed_keys[n_missed] = key;
            key = &keys[++n_missed];

            /* Skip batching for subsequent packets to avoid reordering. */
            batch_enable = false;
        }
    }
    /* Count of packets which are not flow batched. */
    *n_flows = map_cnt;

    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_PHWOL_HIT, n_phwol_hit);
    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_MFEX_OPT_HIT,
                            n_mfex_opt_hit);
    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_SIMPLE_HIT,
                            n_simple_hit);
    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_EXACT_HIT, n_emc_hit);

    if (!smc_enable_db) {
        return dp_packet_batch_size(packets_);
    }

    /* Packets miss EMC will do a batch lookup in SMC if enabled */
    smc_lookup_batch(pmd, keys, missed_keys, packets_,
                     n_missed, flow_map, index_map);

    return dp_packet_batch_size(packets_);
}

static inline int
handle_packet_upcall(struct dp_netdev_pmd_thread *pmd,
                     struct dp_packet *packet,
                     const struct netdev_flow_key *key,
                     struct ofpbuf *actions, struct ofpbuf *put_actions)
{
    struct ofpbuf *add_actions;
    struct dp_packet_batch b;
    struct match match;
    ovs_u128 ufid;
    int error;
    uint64_t cycles = cycles_counter_update(&pmd->perf_stats);
    odp_port_t orig_in_port = packet->md.orig_in_port;

    match.tun_md.valid = false;
    miniflow_expand(&key->mf, &match.flow);
    memset(&match.wc, 0, sizeof match.wc);

    ofpbuf_clear(actions);
    ofpbuf_clear(put_actions);

    odp_flow_key_hash(&match.flow, sizeof match.flow, &ufid);
    error = dp_netdev_upcall(pmd, packet, &match.flow, &match.wc,
                             &ufid, DPIF_UC_MISS, NULL, actions,
                             put_actions);
    if (OVS_UNLIKELY(error && error != ENOSPC)) {
        dp_packet_delete(packet);
        COVERAGE_INC(datapath_drop_upcall_error);
        return error;
    }

    /* The Netlink encoding of datapath flow keys cannot express
     * wildcarding the presence of a VLAN tag. Instead, a missing VLAN
     * tag is interpreted as exact match on the fact that there is no
     * VLAN.  Unless we refactor a lot of code that translates between
     * Netlink and struct flow representations, we have to do the same
     * here.  This must be in sync with 'match' in dpif_netdev_flow_put(). */
    if (!match.wc.masks.vlans[0].tci) {
        match.wc.masks.vlans[0].tci = htons(VLAN_VID_MASK | VLAN_CFI);
    }

    /* We can't allow the packet batching in the next loop to execute
     * the actions.  Otherwise, if there are any slow path actions,
     * we'll send the packet up twice. */
    dp_packet_batch_init_packet(&b, packet);
    dp_netdev_execute_actions(pmd, &b, true, &match.flow,
                              actions->data, actions->size);

    add_actions = put_actions->size ? put_actions : actions;
    if (OVS_LIKELY(error != ENOSPC)) {
        struct dp_netdev_flow *netdev_flow;

        /* XXX: There's a race window where a flow covering this packet
         * could have already been installed since we last did the flow
         * lookup before upcall.  This could be solved by moving the
         * mutex lock outside the loop, but that's an awful long time
         * to be locking revalidators out of making flow modifications. */
        ovs_mutex_lock(&pmd->flow_mutex);
        netdev_flow = dp_netdev_pmd_lookup_flow(pmd, key, NULL);
        if (OVS_LIKELY(!netdev_flow)) {
            netdev_flow = dp_netdev_flow_add(pmd, &match, &ufid,
                                             add_actions->data,
                                             add_actions->size, orig_in_port);
        }
        ovs_mutex_unlock(&pmd->flow_mutex);
        uint32_t hash = dp_netdev_flow_hash(&netdev_flow->ufid);
        smc_insert(pmd, key, hash);
        emc_probabilistic_insert(pmd, key, netdev_flow);
    }
    if (pmd_perf_metrics_enabled(pmd)) {
        /* Update upcall stats. */
        cycles = cycles_counter_update(&pmd->perf_stats) - cycles;
        struct pmd_perf_stats *s = &pmd->perf_stats;
        s->current.upcalls++;
        s->current.upcall_cycles += cycles;
        histogram_add_sample(&s->cycles_per_upcall, cycles);
    }
    return error;
}

static inline void
fast_path_processing(struct dp_netdev_pmd_thread *pmd,
                     struct dp_packet_batch *packets_,
                     struct netdev_flow_key **keys,
                     struct dp_packet_flow_map *flow_map,
                     uint8_t *index_map,
                     odp_port_t in_port)
{
    const size_t cnt = dp_packet_batch_size(packets_);
#if !defined(__CHECKER__) && !defined(_WIN32)
    const size_t PKT_ARRAY_SIZE = cnt;
#else
    /* Sparse or MSVC doesn't like variable length array. */
    enum { PKT_ARRAY_SIZE = NETDEV_MAX_BURST };
#endif
    struct dp_packet *packet;
    struct dpcls *cls;
    struct dpcls_rule *rules[PKT_ARRAY_SIZE];
    struct dp_netdev *dp = pmd->dp;
    int upcall_ok_cnt = 0, upcall_fail_cnt = 0;
    int lookup_cnt = 0, add_lookup_cnt;
    bool any_miss;

    for (size_t i = 0; i < cnt; i++) {
        /* Key length is needed in all the cases, hash computed on demand. */
        keys[i]->len = netdev_flow_key_size(miniflow_n_values(&keys[i]->mf));
    }
    /* Get the classifier for the in_port */
    cls = dp_netdev_pmd_lookup_dpcls(pmd, in_port);
    if (OVS_LIKELY(cls)) {
        any_miss = !dpcls_lookup(cls, (const struct netdev_flow_key **)keys,
                                rules, cnt, &lookup_cnt);
    } else {
        any_miss = true;
        memset(rules, 0, sizeof(rules));
    }
    if (OVS_UNLIKELY(any_miss) && !fat_rwlock_tryrdlock(&dp->upcall_rwlock)) {
        uint64_t actions_stub[512 / 8], slow_stub[512 / 8];
        struct ofpbuf actions, put_actions;

        ofpbuf_use_stub(&actions, actions_stub, sizeof actions_stub);
        ofpbuf_use_stub(&put_actions, slow_stub, sizeof slow_stub);

        DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
            struct dp_netdev_flow *netdev_flow;

            if (OVS_LIKELY(rules[i])) {
                continue;
            }

            /* It's possible that an earlier slow path execution installed
             * a rule covering this flow.  In this case, it's a lot cheaper
             * to catch it here than execute a miss. */
            netdev_flow = dp_netdev_pmd_lookup_flow(pmd, keys[i],
                                                    &add_lookup_cnt);
            if (netdev_flow) {
                lookup_cnt += add_lookup_cnt;
                rules[i] = &netdev_flow->cr;
                continue;
            }

            int error = handle_packet_upcall(pmd, packet, keys[i],
                                             &actions, &put_actions);

            if (OVS_UNLIKELY(error)) {
                upcall_fail_cnt++;
            } else {
                upcall_ok_cnt++;
            }
        }

        ofpbuf_uninit(&actions);
        ofpbuf_uninit(&put_actions);
        fat_rwlock_unlock(&dp->upcall_rwlock);
    } else if (OVS_UNLIKELY(any_miss)) {
        DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
            if (OVS_UNLIKELY(!rules[i])) {
                dp_packet_delete(packet);
                COVERAGE_INC(datapath_drop_lock_error);
                upcall_fail_cnt++;
            }
        }
    }

    DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
        struct dp_netdev_flow *flow;
        /* Get the original order of this packet in received batch. */
        int recv_idx = index_map[i];
        uint16_t tcp_flags;

        if (OVS_UNLIKELY(!rules[i])) {
            continue;
        }

        flow = dp_netdev_flow_cast(rules[i]);
        uint32_t hash =  dp_netdev_flow_hash(&flow->ufid);
        smc_insert(pmd, keys[i], hash);

        emc_probabilistic_insert(pmd, keys[i], flow);
        /* Add these packets into the flow map in the same order
         * as received.
         */
        tcp_flags = miniflow_get_tcp_flags(&keys[i]->mf);
        packet_enqueue_to_flow_map(packet, flow, tcp_flags,
                                   flow_map, recv_idx);
    }

    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_MASKED_HIT,
                            cnt - upcall_ok_cnt - upcall_fail_cnt);
    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_MASKED_LOOKUP,
                            lookup_cnt);
    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_MISS,
                            upcall_ok_cnt);
    pmd_perf_update_counter(&pmd->perf_stats, PMD_STAT_LOST,
                            upcall_fail_cnt);
}

/* Packets enter the datapath from a port (or from recirculation) here.
 *
 * When 'md_is_valid' is true the metadata in 'packets' are already valid.
 * When false the metadata in 'packets' need to be initialized. */
static void
dp_netdev_input__(struct dp_netdev_pmd_thread *pmd,
                  struct dp_packet_batch *packets,
                  bool md_is_valid, odp_port_t port_no)
{
#if !defined(__CHECKER__) && !defined(_WIN32)
    const size_t PKT_ARRAY_SIZE = dp_packet_batch_size(packets);
#else
    /* Sparse or MSVC doesn't like variable length array. */
    enum { PKT_ARRAY_SIZE = NETDEV_MAX_BURST };
#endif
    OVS_ALIGNED_VAR(CACHE_LINE_SIZE)
        struct netdev_flow_key keys[PKT_ARRAY_SIZE];
    struct netdev_flow_key *missed_keys[PKT_ARRAY_SIZE];
    struct packet_batch_per_flow batches[PKT_ARRAY_SIZE];
    size_t n_batches;
    struct dp_packet_flow_map flow_map[PKT_ARRAY_SIZE];
    uint8_t index_map[PKT_ARRAY_SIZE];
    size_t n_flows, i;

    odp_port_t in_port;

    n_batches = 0;
    dfc_processing(pmd, packets, keys, missed_keys, batches, &n_batches,
                   flow_map, &n_flows, index_map, md_is_valid, port_no);

    if (!dp_packet_batch_is_empty(packets)) {
        /* Get ingress port from first packet's metadata. */
        in_port = packets->packets[0]->md.in_port.odp_port;
        fast_path_processing(pmd, packets, missed_keys,
                             flow_map, index_map, in_port);
    }

    /* Batch rest of packets which are in flow map. */
    for (i = 0; i < n_flows; i++) {
        struct dp_packet_flow_map *map = &flow_map[i];

        if (OVS_UNLIKELY(!map->flow)) {
            continue;
        }
        dp_netdev_queue_batches(map->packet, map->flow, map->tcp_flags,
                                batches, &n_batches);
     }

    /* All the flow batches need to be reset before any call to
     * packet_batch_per_flow_execute() as it could potentially trigger
     * recirculation. When a packet matching flow 'j' happens to be
     * recirculated, the nested call to dp_netdev_input__() could potentially
     * classify the packet as matching another flow - say 'k'. It could happen
     * that in the previous call to dp_netdev_input__() that same flow 'k' had
     * already its own batches[k] still waiting to be served.  So if its
     * 'batch' member is not reset, the recirculated packet would be wrongly
     * appended to batches[k] of the 1st call to dp_netdev_input__(). */
    for (i = 0; i < n_batches; i++) {
        batches[i].flow->batch = NULL;
    }

    for (i = 0; i < n_batches; i++) {
        packet_batch_per_flow_execute(&batches[i], pmd);
    }
}

int32_t
dp_netdev_input(struct dp_netdev_pmd_thread *pmd,
                struct dp_packet_batch *packets,
                odp_port_t port_no)
{
    dp_netdev_input__(pmd, packets, false, port_no);
    return 0;
}

static void
dp_netdev_recirculate(struct dp_netdev_pmd_thread *pmd,
                      struct dp_packet_batch *packets)
{
    dp_netdev_input__(pmd, packets, true, 0);
}

struct dp_netdev_execute_aux {
    struct dp_netdev_pmd_thread *pmd;
    const struct flow *flow;
};

static void
dpif_netdev_register_dp_purge_cb(struct dpif *dpif, dp_purge_callback *cb,
                                 void *aux)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    dp->dp_purge_aux = aux;
    dp->dp_purge_cb = cb;
}

static void
dpif_netdev_register_upcall_cb(struct dpif *dpif, upcall_callback *cb,
                               void *aux)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    dp->upcall_aux = aux;
    dp->upcall_cb = cb;
}

static void
dpif_netdev_xps_revalidate_pmd(const struct dp_netdev_pmd_thread *pmd,
                               bool purge)
{
    struct tx_port *tx;
    struct dp_netdev_port *port;
    long long interval;

    HMAP_FOR_EACH (tx, node, &pmd->send_port_cache) {
        if (tx->port->txq_mode != TXQ_MODE_XPS) {
            continue;
        }
        interval = pmd->ctx.now - tx->last_used;
        if (tx->qid >= 0 && (purge || interval >= XPS_TIMEOUT)) {
            port = tx->port;
            ovs_mutex_lock(&port->txq_used_mutex);
            port->txq_used[tx->qid]--;
            ovs_mutex_unlock(&port->txq_used_mutex);
            tx->qid = -1;
        }
    }
}

static int
dpif_netdev_xps_get_tx_qid(const struct dp_netdev_pmd_thread *pmd,
                           struct tx_port *tx)
{
    struct dp_netdev_port *port;
    long long interval;
    int i, min_cnt, min_qid;

    interval = pmd->ctx.now - tx->last_used;
    tx->last_used = pmd->ctx.now;

    if (OVS_LIKELY(tx->qid >= 0 && interval < XPS_TIMEOUT)) {
        return tx->qid;
    }

    port = tx->port;

    ovs_mutex_lock(&port->txq_used_mutex);
    if (tx->qid >= 0) {
        port->txq_used[tx->qid]--;
        tx->qid = -1;
    }

    min_cnt = -1;
    min_qid = 0;
    for (i = 0; i < netdev_n_txq(port->netdev); i++) {
        if (port->txq_used[i] < min_cnt || min_cnt == -1) {
            min_cnt = port->txq_used[i];
            min_qid = i;
        }
    }

    port->txq_used[min_qid]++;
    tx->qid = min_qid;

    ovs_mutex_unlock(&port->txq_used_mutex);

    dpif_netdev_xps_revalidate_pmd(pmd, false);

    VLOG_DBG("Core %d: New TX queue ID %d for port \'%s\'.",
             pmd->core_id, tx->qid, netdev_get_name(tx->port->netdev));
    return min_qid;
}

static struct tx_port *
pmd_tnl_port_cache_lookup(const struct dp_netdev_pmd_thread *pmd,
                          odp_port_t port_no)
{
    return tx_port_lookup(&pmd->tnl_port_cache, port_no);
}

static struct tx_port *
pmd_send_port_cache_lookup(const struct dp_netdev_pmd_thread *pmd,
                           odp_port_t port_no)
{
    return tx_port_lookup(&pmd->send_port_cache, port_no);
}

static int
push_tnl_action(const struct dp_netdev_pmd_thread *pmd,
                const struct nlattr *attr,
                struct dp_packet_batch *batch)
{
    struct tx_port *tun_port;
    const struct ovs_action_push_tnl *data;
    int err;

    data = nl_attr_get(attr);

    tun_port = pmd_tnl_port_cache_lookup(pmd, data->tnl_port);
    if (!tun_port) {
        err = -EINVAL;
        goto error;
    }
    err = netdev_push_header(tun_port->port->netdev, batch, data);
    if (!err) {
        return 0;
    }
error:
    dp_packet_delete_batch(batch, true);
    return err;
}

static void
dp_execute_userspace_action(struct dp_netdev_pmd_thread *pmd,
                            struct dp_packet *packet, bool should_steal,
                            struct flow *flow, ovs_u128 *ufid,
                            struct ofpbuf *actions,
                            const struct nlattr *userdata)
{
    struct dp_packet_batch b;
    int error;

    ofpbuf_clear(actions);

    error = dp_netdev_upcall(pmd, packet, flow, NULL, ufid,
                             DPIF_UC_ACTION, userdata, actions,
                             NULL);
    if (!error || error == ENOSPC) {
        dp_packet_batch_init_packet(&b, packet);
        dp_netdev_execute_actions(pmd, &b, should_steal, flow,
                                  actions->data, actions->size);
    } else if (should_steal) {
        dp_packet_delete(packet);
        COVERAGE_INC(datapath_drop_userspace_action_error);
    }
}

static bool
dp_execute_output_action(struct dp_netdev_pmd_thread *pmd,
                         struct dp_packet_batch *packets_,
                         bool should_steal, odp_port_t port_no)
{
    struct tx_port *p = pmd_send_port_cache_lookup(pmd, port_no);
    struct dp_packet_batch out;

    if (!OVS_LIKELY(p)) {
        COVERAGE_ADD(datapath_drop_invalid_port,
                     dp_packet_batch_size(packets_));
        dp_packet_delete_batch(packets_, should_steal);
        return false;
    }
    if (!should_steal) {
        dp_packet_batch_clone(&out, packets_);
        dp_packet_batch_reset_cutlen(packets_);
        packets_ = &out;
    }
    dp_packet_batch_apply_cutlen(packets_);
#ifdef DPDK_NETDEV
    if (OVS_UNLIKELY(!dp_packet_batch_is_empty(&p->output_pkts)
                     && packets_->packets[0]->source
                        != p->output_pkts.packets[0]->source)) {
        /* XXX: netdev-dpdk assumes that all packets in a single
         *      output batch has the same source. Flush here to
         *      avoid memory access issues. */
        dp_netdev_pmd_flush_output_on_port(pmd, p);
    }
#endif
    if (dp_packet_batch_size(&p->output_pkts)
        + dp_packet_batch_size(packets_) > NETDEV_MAX_BURST) {
        /* Flush here to avoid overflow. */
        dp_netdev_pmd_flush_output_on_port(pmd, p);
    }
    if (dp_packet_batch_is_empty(&p->output_pkts)) {
        pmd->n_output_batches++;
    }

    struct dp_packet *packet;
    DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
        p->output_pkts_rxqs[dp_packet_batch_size(&p->output_pkts)] =
            pmd->ctx.last_rxq;
        dp_packet_batch_add(&p->output_pkts, packet);
    }
    return true;
}

static void
dp_execute_lb_output_action(struct dp_netdev_pmd_thread *pmd,
                            struct dp_packet_batch *packets_,
                            bool should_steal, uint32_t bond)
{
    struct tx_bond *p_bond = tx_bond_lookup(&pmd->tx_bonds, bond);
    struct dp_packet_batch out;
    struct dp_packet *packet;

    if (!p_bond) {
        COVERAGE_ADD(datapath_drop_invalid_bond,
                     dp_packet_batch_size(packets_));
        dp_packet_delete_batch(packets_, should_steal);
        return;
    }
    if (!should_steal) {
        dp_packet_batch_clone(&out, packets_);
        dp_packet_batch_reset_cutlen(packets_);
        packets_ = &out;
    }
    dp_packet_batch_apply_cutlen(packets_);

    DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
        /*
         * Lookup the bond-hash table using hash to get the member.
         */
        uint32_t hash = dp_packet_get_rss_hash(packet);
        struct member_entry *s_entry
            = &p_bond->member_buckets[hash & BOND_MASK];
        odp_port_t bond_member = s_entry->member_id;
        uint32_t size = dp_packet_size(packet);
        struct dp_packet_batch output_pkt;

        dp_packet_batch_init_packet(&output_pkt, packet);
        if (OVS_LIKELY(dp_execute_output_action(pmd, &output_pkt, true,
                                                bond_member))) {
            /* Update member stats. */
            non_atomic_ullong_add(&s_entry->n_packets, 1);
            non_atomic_ullong_add(&s_entry->n_bytes, size);
        }
    }
}

static void
dp_execute_cb(void *aux_, struct dp_packet_batch *packets_,
              const struct nlattr *a, bool should_steal)
    OVS_NO_THREAD_SAFETY_ANALYSIS
{
    struct dp_netdev_execute_aux *aux = aux_;
    uint32_t *depth = recirc_depth_get();
    struct dp_netdev_pmd_thread *pmd = aux->pmd;
    struct dp_netdev *dp = pmd->dp;
    int type = nl_attr_type(a);
    struct tx_port *p;
    uint32_t packet_count, packets_dropped;

    switch ((enum ovs_action_attr)type) {
    case OVS_ACTION_ATTR_OUTPUT:
        dp_execute_output_action(pmd, packets_, should_steal,
                                 nl_attr_get_odp_port(a));
        return;

    case OVS_ACTION_ATTR_LB_OUTPUT:
        dp_execute_lb_output_action(pmd, packets_, should_steal,
                                    nl_attr_get_u32(a));
        return;

    case OVS_ACTION_ATTR_TUNNEL_PUSH:
        if (should_steal) {
            /* We're requested to push tunnel header, but also we need to take
             * the ownership of these packets. Thus, we can avoid performing
             * the action, because the caller will not use the result anyway.
             * Just break to free the batch. */
            break;
        }
        dp_packet_batch_apply_cutlen(packets_);
        packet_count = dp_packet_batch_size(packets_);
        if (push_tnl_action(pmd, a, packets_)) {
            COVERAGE_ADD(datapath_drop_tunnel_push_error,
                         packet_count);
        }
        return;

    case OVS_ACTION_ATTR_TUNNEL_POP:
        if (*depth < MAX_RECIRC_DEPTH) {
            struct dp_packet_batch *orig_packets_ = packets_;
            odp_port_t portno = nl_attr_get_odp_port(a);

            p = pmd_tnl_port_cache_lookup(pmd, portno);
            if (p) {
                struct dp_packet_batch tnl_pkt;

                if (!should_steal) {
                    dp_packet_batch_clone(&tnl_pkt, packets_);
                    packets_ = &tnl_pkt;
                    dp_packet_batch_reset_cutlen(orig_packets_);
                }

                dp_packet_batch_apply_cutlen(packets_);

                packet_count = dp_packet_batch_size(packets_);
                netdev_pop_header(p->port->netdev, packets_);
                packets_dropped =
                   packet_count - dp_packet_batch_size(packets_);
                if (packets_dropped) {
                    COVERAGE_ADD(datapath_drop_tunnel_pop_error,
                                 packets_dropped);
                }
                if (dp_packet_batch_is_empty(packets_)) {
                    return;
                }

                struct dp_packet *packet;
                DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
                    packet->md.in_port.odp_port = portno;
                }

                (*depth)++;
                dp_netdev_recirculate(pmd, packets_);
                (*depth)--;
                return;
            }
            COVERAGE_ADD(datapath_drop_invalid_tnl_port,
                         dp_packet_batch_size(packets_));
        } else {
            COVERAGE_ADD(datapath_drop_recirc_error,
                         dp_packet_batch_size(packets_));
        }
        break;

    case OVS_ACTION_ATTR_USERSPACE:
        if (!fat_rwlock_tryrdlock(&dp->upcall_rwlock)) {
            struct dp_packet_batch *orig_packets_ = packets_;
            const struct nlattr *userdata;
            struct dp_packet_batch usr_pkt;
            struct ofpbuf actions;
            struct flow flow;
            ovs_u128 ufid;
            bool clone = false;

            userdata = nl_attr_find_nested(a, OVS_USERSPACE_ATTR_USERDATA);
            ofpbuf_init(&actions, 0);

            if (packets_->trunc) {
                if (!should_steal) {
                    dp_packet_batch_clone(&usr_pkt, packets_);
                    packets_ = &usr_pkt;
                    clone = true;
                    dp_packet_batch_reset_cutlen(orig_packets_);
                }

                dp_packet_batch_apply_cutlen(packets_);
            }

            struct dp_packet *packet;
            DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
                flow_extract(packet, &flow);
                odp_flow_key_hash(&flow, sizeof flow, &ufid);
                dp_execute_userspace_action(pmd, packet, should_steal, &flow,
                                            &ufid, &actions, userdata);
            }

            if (clone) {
                dp_packet_delete_batch(packets_, true);
            }

            ofpbuf_uninit(&actions);
            fat_rwlock_unlock(&dp->upcall_rwlock);

            return;
        }
        COVERAGE_ADD(datapath_drop_lock_error,
                     dp_packet_batch_size(packets_));
        break;

    case OVS_ACTION_ATTR_RECIRC:
        if (*depth < MAX_RECIRC_DEPTH) {
            struct dp_packet_batch recirc_pkts;

            if (!should_steal) {
               dp_packet_batch_clone(&recirc_pkts, packets_);
               packets_ = &recirc_pkts;
            }

            struct dp_packet *packet;
            DP_PACKET_BATCH_FOR_EACH (i, packet, packets_) {
                packet->md.recirc_id = nl_attr_get_u32(a);
            }

            (*depth)++;
            dp_netdev_recirculate(pmd, packets_);
            (*depth)--;

            return;
        }

        COVERAGE_ADD(datapath_drop_recirc_error,
                     dp_packet_batch_size(packets_));
        VLOG_WARN("Packet dropped. Max recirculation depth exceeded.");
        break;

    case OVS_ACTION_ATTR_CT: {
        const struct nlattr *b;
        bool force = false;
        bool commit = false;
        unsigned int left;
        uint16_t zone = 0;
        uint32_t tp_id = 0;
        const char *helper = NULL;
        const uint32_t *setmark = NULL;
        const struct ovs_key_ct_labels *setlabel = NULL;
        struct nat_action_info_t nat_action_info;
        struct nat_action_info_t *nat_action_info_ref = NULL;
        bool nat_config = false;

        NL_ATTR_FOR_EACH_UNSAFE (b, left, nl_attr_get(a),
                                 nl_attr_get_size(a)) {
            enum ovs_ct_attr sub_type = nl_attr_type(b);

            switch(sub_type) {
            case OVS_CT_ATTR_FORCE_COMMIT:
                force = true;
                /* fall through. */
            case OVS_CT_ATTR_COMMIT:
                commit = true;
                break;
            case OVS_CT_ATTR_ZONE:
                zone = nl_attr_get_u16(b);
                break;
            case OVS_CT_ATTR_HELPER:
                helper = nl_attr_get_string(b);
                break;
            case OVS_CT_ATTR_MARK:
                setmark = nl_attr_get(b);
                break;
            case OVS_CT_ATTR_LABELS:
                setlabel = nl_attr_get(b);
                break;
            case OVS_CT_ATTR_EVENTMASK:
                /* Silently ignored, as userspace datapath does not generate
                 * netlink events. */
                break;
            case OVS_CT_ATTR_TIMEOUT:
                if (!str_to_uint(nl_attr_get_string(b), 10, &tp_id)) {
                    VLOG_WARN("Invalid Timeout Policy ID: %s.",
                              nl_attr_get_string(b));
                    tp_id = DEFAULT_TP_ID;
                }
                break;
            case OVS_CT_ATTR_NAT: {
                const struct nlattr *b_nest;
                unsigned int left_nest;
                bool ip_min_specified = false;
                bool proto_num_min_specified = false;
                bool ip_max_specified = false;
                bool proto_num_max_specified = false;
                memset(&nat_action_info, 0, sizeof nat_action_info);
                nat_action_info_ref = &nat_action_info;

                NL_NESTED_FOR_EACH_UNSAFE (b_nest, left_nest, b) {
                    enum ovs_nat_attr sub_type_nest = nl_attr_type(b_nest);

                    switch (sub_type_nest) {
                    case OVS_NAT_ATTR_SRC:
                    case OVS_NAT_ATTR_DST:
                        nat_config = true;
                        nat_action_info.nat_action |=
                            ((sub_type_nest == OVS_NAT_ATTR_SRC)
                                ? NAT_ACTION_SRC : NAT_ACTION_DST);
                        break;
                    case OVS_NAT_ATTR_IP_MIN:
                        memcpy(&nat_action_info.min_addr,
                               nl_attr_get(b_nest),
                               nl_attr_get_size(b_nest));
                        ip_min_specified = true;
                        break;
                    case OVS_NAT_ATTR_IP_MAX:
                        memcpy(&nat_action_info.max_addr,
                               nl_attr_get(b_nest),
                               nl_attr_get_size(b_nest));
                        ip_max_specified = true;
                        break;
                    case OVS_NAT_ATTR_PROTO_MIN:
                        nat_action_info.min_port =
                            nl_attr_get_u16(b_nest);
                        proto_num_min_specified = true;
                        break;
                    case OVS_NAT_ATTR_PROTO_MAX:
                        nat_action_info.max_port =
                            nl_attr_get_u16(b_nest);
                        proto_num_max_specified = true;
                        break;
                    case OVS_NAT_ATTR_PERSISTENT:
                    case OVS_NAT_ATTR_PROTO_HASH:
                    case OVS_NAT_ATTR_PROTO_RANDOM:
                        break;
                    case OVS_NAT_ATTR_UNSPEC:
                    case __OVS_NAT_ATTR_MAX:
                        OVS_NOT_REACHED();
                    }
                }

                if (ip_min_specified && !ip_max_specified) {
                    nat_action_info.max_addr = nat_action_info.min_addr;
                }
                if (proto_num_min_specified && !proto_num_max_specified) {
                    nat_action_info.max_port = nat_action_info.min_port;
                }
                if (proto_num_min_specified || proto_num_max_specified) {
                    if (nat_action_info.nat_action & NAT_ACTION_SRC) {
                        nat_action_info.nat_action |= NAT_ACTION_SRC_PORT;
                    } else if (nat_action_info.nat_action & NAT_ACTION_DST) {
                        nat_action_info.nat_action |= NAT_ACTION_DST_PORT;
                    }
                }
                break;
            }
            case OVS_CT_ATTR_UNSPEC:
            case __OVS_CT_ATTR_MAX:
                OVS_NOT_REACHED();
            }
        }

        /* We won't be able to function properly in this case, hence
         * complain loudly. */
        if (nat_config && !commit) {
            static struct vlog_rate_limit rl = VLOG_RATE_LIMIT_INIT(5, 5);
            VLOG_WARN_RL(&rl, "NAT specified without commit.");
        }

        conntrack_execute(dp->conntrack, packets_, aux->flow->dl_type, force,
                          commit, zone, setmark, setlabel, aux->flow->tp_src,
                          aux->flow->tp_dst, helper, nat_action_info_ref,
                          pmd->ctx.now / 1000, tp_id);
        break;
    }

    case OVS_ACTION_ATTR_METER:
        dp_netdev_run_meter(pmd->dp, packets_, nl_attr_get_u32(a),
                            pmd->ctx.now);
        break;

    case OVS_ACTION_ATTR_PUSH_VLAN:
    case OVS_ACTION_ATTR_POP_VLAN:
    case OVS_ACTION_ATTR_PUSH_MPLS:
    case OVS_ACTION_ATTR_POP_MPLS:
    case OVS_ACTION_ATTR_SET:
    case OVS_ACTION_ATTR_SET_MASKED:
    case OVS_ACTION_ATTR_SAMPLE:
    case OVS_ACTION_ATTR_HASH:
    case OVS_ACTION_ATTR_UNSPEC:
    case OVS_ACTION_ATTR_TRUNC:
    case OVS_ACTION_ATTR_PUSH_ETH:
    case OVS_ACTION_ATTR_POP_ETH:
    case OVS_ACTION_ATTR_CLONE:
    case OVS_ACTION_ATTR_PUSH_NSH:
    case OVS_ACTION_ATTR_POP_NSH:
    case OVS_ACTION_ATTR_CT_CLEAR:
    case OVS_ACTION_ATTR_CHECK_PKT_LEN:
    case OVS_ACTION_ATTR_DROP:
    case OVS_ACTION_ATTR_ADD_MPLS:
    case __OVS_ACTION_ATTR_MAX:
        OVS_NOT_REACHED();
    }

    dp_packet_delete_batch(packets_, should_steal);
}

static void
dp_netdev_execute_actions(struct dp_netdev_pmd_thread *pmd,
                          struct dp_packet_batch *packets,
                          bool should_steal, const struct flow *flow,
                          const struct nlattr *actions, size_t actions_len)
{
    struct dp_netdev_execute_aux aux = { pmd, flow };

    odp_execute_actions(&aux, packets, should_steal, actions,
                        actions_len, dp_execute_cb);
}

struct dp_netdev_ct_dump {
    struct ct_dpif_dump_state up;
    struct conntrack_dump dump;
    struct conntrack *ct;
    struct dp_netdev *dp;
};

static int
dpif_netdev_ct_dump_start(struct dpif *dpif, struct ct_dpif_dump_state **dump_,
                          const uint16_t *pzone, int *ptot_bkts)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_ct_dump *dump;

    dump = xzalloc(sizeof *dump);
    dump->dp = dp;
    dump->ct = dp->conntrack;

    conntrack_dump_start(dp->conntrack, &dump->dump, pzone, ptot_bkts);

    *dump_ = &dump->up;

    return 0;
}

static int
dpif_netdev_ct_dump_next(struct dpif *dpif OVS_UNUSED,
                         struct ct_dpif_dump_state *dump_,
                         struct ct_dpif_entry *entry)
{
    struct dp_netdev_ct_dump *dump;

    INIT_CONTAINER(dump, dump_, up);

    return conntrack_dump_next(&dump->dump, entry);
}

static int
dpif_netdev_ct_dump_done(struct dpif *dpif OVS_UNUSED,
                         struct ct_dpif_dump_state *dump_)
{
    struct dp_netdev_ct_dump *dump;
    int err;

    INIT_CONTAINER(dump, dump_, up);

    err = conntrack_dump_done(&dump->dump);

    free(dump);

    return err;
}

static int
dpif_netdev_ct_flush(struct dpif *dpif, const uint16_t *zone,
                     const struct ct_dpif_tuple *tuple)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);

    if (tuple) {
        return conntrack_flush_tuple(dp->conntrack, tuple, zone ? *zone : 0);
    }
    return conntrack_flush(dp->conntrack, zone);
}

static int
dpif_netdev_ct_set_maxconns(struct dpif *dpif, uint32_t maxconns)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);

    return conntrack_set_maxconns(dp->conntrack, maxconns);
}

static int
dpif_netdev_ct_get_maxconns(struct dpif *dpif, uint32_t *maxconns)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);

    return conntrack_get_maxconns(dp->conntrack, maxconns);
}

static int
dpif_netdev_ct_get_nconns(struct dpif *dpif, uint32_t *nconns)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);

    return conntrack_get_nconns(dp->conntrack, nconns);
}

static int
dpif_netdev_ct_set_tcp_seq_chk(struct dpif *dpif, bool enabled)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);

    return conntrack_set_tcp_seq_chk(dp->conntrack, enabled);
}

static int
dpif_netdev_ct_get_tcp_seq_chk(struct dpif *dpif, bool *enabled)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    *enabled = conntrack_get_tcp_seq_chk(dp->conntrack);
    return 0;
}

static int
dpif_netdev_ct_set_sweep_interval(struct dpif *dpif, uint32_t ms)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    return conntrack_set_sweep_interval(dp->conntrack, ms);
}

static int
dpif_netdev_ct_get_sweep_interval(struct dpif *dpif, uint32_t *ms)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    *ms = conntrack_get_sweep_interval(dp->conntrack);
    return 0;
}

static int
dpif_netdev_ct_set_limits(struct dpif *dpif,
                           const uint32_t *default_limits,
                           const struct ovs_list *zone_limits)
{
    int err = 0;
    struct dp_netdev *dp = get_dp_netdev(dpif);
    if (default_limits) {
        err = zone_limit_update(dp->conntrack, DEFAULT_ZONE, *default_limits);
        if (err != 0) {
            return err;
        }
    }

    struct ct_dpif_zone_limit *zone_limit;
    LIST_FOR_EACH (zone_limit, node, zone_limits) {
        err = zone_limit_update(dp->conntrack, zone_limit->zone,
                                zone_limit->limit);
        if (err != 0) {
            break;
        }
    }
    return err;
}

static int
dpif_netdev_ct_get_limits(struct dpif *dpif,
                           uint32_t *default_limit,
                           const struct ovs_list *zone_limits_request,
                           struct ovs_list *zone_limits_reply)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct conntrack_zone_limit czl;

    czl = zone_limit_get(dp->conntrack, DEFAULT_ZONE);
    if (czl.zone == DEFAULT_ZONE) {
        *default_limit = czl.limit;
    } else {
        return EINVAL;
    }

    if (!ovs_list_is_empty(zone_limits_request)) {
        struct ct_dpif_zone_limit *zone_limit;
        LIST_FOR_EACH (zone_limit, node, zone_limits_request) {
            czl = zone_limit_get(dp->conntrack, zone_limit->zone);
            if (czl.zone == zone_limit->zone || czl.zone == DEFAULT_ZONE) {
                ct_dpif_push_zone_limit(zone_limits_reply, zone_limit->zone,
                                        czl.limit,
                                        atomic_count_get(&czl.count));
            } else {
                return EINVAL;
            }
        }
    } else {
        for (int z = MIN_ZONE; z <= MAX_ZONE; z++) {
            czl = zone_limit_get(dp->conntrack, z);
            if (czl.zone == z) {
                ct_dpif_push_zone_limit(zone_limits_reply, z, czl.limit,
                                        atomic_count_get(&czl.count));
            }
        }
    }

    return 0;
}

static int
dpif_netdev_ct_del_limits(struct dpif *dpif,
                           const struct ovs_list *zone_limits)
{
    int err = 0;
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct ct_dpif_zone_limit *zone_limit;
    LIST_FOR_EACH (zone_limit, node, zone_limits) {
        err = zone_limit_delete(dp->conntrack, zone_limit->zone);
        if (err != 0) {
            break;
        }
    }

    return err;
}

static int
dpif_netdev_ct_get_features(struct dpif *dpif OVS_UNUSED,
                            enum ct_features *features)
{
    if (features != NULL) {
        *features = CONNTRACK_F_ZERO_SNAT;
    }
    return 0;
}

static int
dpif_netdev_ct_set_timeout_policy(struct dpif *dpif,
                                  const struct ct_dpif_timeout_policy *dpif_tp)
{
    struct timeout_policy tp;
    struct dp_netdev *dp;

    dp = get_dp_netdev(dpif);
    memcpy(&tp.policy, dpif_tp, sizeof tp.policy);
    return timeout_policy_update(dp->conntrack, &tp);
}

static int
dpif_netdev_ct_get_timeout_policy(struct dpif *dpif, uint32_t tp_id,
                                  struct ct_dpif_timeout_policy *dpif_tp)
{
    struct timeout_policy *tp;
    struct dp_netdev *dp;
    int err = 0;

    dp = get_dp_netdev(dpif);
    tp = timeout_policy_get(dp->conntrack, tp_id);
    if (!tp) {
        return ENOENT;
    }
    memcpy(dpif_tp, &tp->policy, sizeof tp->policy);
    return err;
}

static int
dpif_netdev_ct_del_timeout_policy(struct dpif *dpif,
                                  uint32_t tp_id)
{
    struct dp_netdev *dp;
    int err = 0;

    dp = get_dp_netdev(dpif);
    err = timeout_policy_delete(dp->conntrack, tp_id);
    return err;
}

static int
dpif_netdev_ct_get_timeout_policy_name(struct dpif *dpif OVS_UNUSED,
                                       uint32_t tp_id,
                                       uint16_t dl_type OVS_UNUSED,
                                       uint8_t nw_proto OVS_UNUSED,
                                       char **tp_name, bool *is_generic)
{
    struct ds ds = DS_EMPTY_INITIALIZER;

    ds_put_format(&ds, "%"PRIu32, tp_id);
    *tp_name = ds_steal_cstr(&ds);
    *is_generic = true;
    return 0;
}

static int
dpif_netdev_ipf_set_enabled(struct dpif *dpif, bool v6, bool enable)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    return ipf_set_enabled(conntrack_ipf_ctx(dp->conntrack), v6, enable);
}

static int
dpif_netdev_ipf_set_min_frag(struct dpif *dpif, bool v6, uint32_t min_frag)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    return ipf_set_min_frag(conntrack_ipf_ctx(dp->conntrack), v6, min_frag);
}

static int
dpif_netdev_ipf_set_max_nfrags(struct dpif *dpif, uint32_t max_frags)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    return ipf_set_max_nfrags(conntrack_ipf_ctx(dp->conntrack), max_frags);
}

/* Adjust this function if 'dpif_ipf_status' and 'ipf_status' were to
 * diverge. */
static int
dpif_netdev_ipf_get_status(struct dpif *dpif,
                           struct dpif_ipf_status *dpif_ipf_status)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    ipf_get_status(conntrack_ipf_ctx(dp->conntrack),
                   (struct ipf_status *) dpif_ipf_status);
    return 0;
}

static int
dpif_netdev_ipf_dump_start(struct dpif *dpif OVS_UNUSED,
                           struct ipf_dump_ctx **ipf_dump_ctx)
{
    return ipf_dump_start(ipf_dump_ctx);
}

static int
dpif_netdev_ipf_dump_next(struct dpif *dpif, void *ipf_dump_ctx, char **dump)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    return ipf_dump_next(conntrack_ipf_ctx(dp->conntrack), ipf_dump_ctx,
                         dump);
}

static int
dpif_netdev_ipf_dump_done(struct dpif *dpif OVS_UNUSED, void *ipf_dump_ctx)
{
    return ipf_dump_done(ipf_dump_ctx);

}

static int
dpif_netdev_bond_add(struct dpif *dpif, uint32_t bond_id,
                     odp_port_t *member_map)
{
    struct tx_bond *new_tx = xzalloc(sizeof *new_tx);
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_pmd_thread *pmd;

    /* Prepare new bond mapping. */
    new_tx->bond_id = bond_id;
    for (int bucket = 0; bucket < BOND_BUCKETS; bucket++) {
        new_tx->member_buckets[bucket].member_id = member_map[bucket];
    }

    ovs_mutex_lock(&dp->bond_mutex);
    /* Check if bond already existed. */
    struct tx_bond *old_tx = tx_bond_lookup(&dp->tx_bonds, bond_id);
    if (old_tx) {
        cmap_replace(&dp->tx_bonds, &old_tx->node, &new_tx->node,
                     hash_bond_id(bond_id));
        ovsrcu_postpone(free, old_tx);
    } else {
        cmap_insert(&dp->tx_bonds, &new_tx->node, hash_bond_id(bond_id));
    }
    ovs_mutex_unlock(&dp->bond_mutex);

    /* Update all PMDs with new bond mapping. */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        dp_netdev_add_bond_tx_to_pmd(pmd, new_tx, true);
    }
    return 0;
}

static int
dpif_netdev_bond_del(struct dpif *dpif, uint32_t bond_id)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_pmd_thread *pmd;
    struct tx_bond *tx;

    ovs_mutex_lock(&dp->bond_mutex);
    /* Check if bond existed. */
    tx = tx_bond_lookup(&dp->tx_bonds, bond_id);
    if (tx) {
        cmap_remove(&dp->tx_bonds, &tx->node, hash_bond_id(bond_id));
        ovsrcu_postpone(free, tx);
    } else {
        /* Bond is not present. */
        ovs_mutex_unlock(&dp->bond_mutex);
        return ENOENT;
    }
    ovs_mutex_unlock(&dp->bond_mutex);

    /* Remove the bond map in all pmds. */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        dp_netdev_del_bond_tx_from_pmd(pmd, bond_id);
    }
    return 0;
}

static int
dpif_netdev_bond_stats_get(struct dpif *dpif, uint32_t bond_id,
                           uint64_t *n_bytes)
{
    struct dp_netdev *dp = get_dp_netdev(dpif);
    struct dp_netdev_pmd_thread *pmd;

    if (!tx_bond_lookup(&dp->tx_bonds, bond_id)) {
        return ENOENT;
    }

    /* Search the bond in all PMDs. */
    CMAP_FOR_EACH (pmd, node, &dp->poll_threads) {
        struct tx_bond *pmd_bond_entry
            = tx_bond_lookup(&pmd->tx_bonds, bond_id);

        if (!pmd_bond_entry) {
            continue;
        }

        /* Read bond stats. */
        for (int i = 0; i < BOND_BUCKETS; i++) {
            uint64_t pmd_n_bytes;

            atomic_read_relaxed(&pmd_bond_entry->member_buckets[i].n_bytes,
                                &pmd_n_bytes);
            n_bytes[i] += pmd_n_bytes;
        }
    }
    return 0;
}

const struct dpif_class dpif_netdev_class = {
    "netdev",
    true,                       /* cleanup_required */
    true,                       /* synced_dp_layers */
    dpif_netdev_init,
    dpif_netdev_enumerate,
    dpif_netdev_port_open_type,
    dpif_netdev_open,
    dpif_netdev_close,
    dpif_netdev_destroy,
    dpif_netdev_run,
    dpif_netdev_wait,
    dpif_netdev_get_stats,
    NULL,                      /* set_features */
    dpif_netdev_port_add,
    dpif_netdev_port_del,
    dpif_netdev_port_set_config,
    dpif_netdev_port_query_by_number,
    dpif_netdev_port_query_by_name,
    NULL,                       /* port_get_pid */
    dpif_netdev_port_dump_start,
    dpif_netdev_port_dump_next,
    dpif_netdev_port_dump_done,
    dpif_netdev_port_poll,
    dpif_netdev_port_poll_wait,
    dpif_netdev_flow_flush,
    dpif_netdev_flow_dump_create,
    dpif_netdev_flow_dump_destroy,
    dpif_netdev_flow_dump_thread_create,
    dpif_netdev_flow_dump_thread_destroy,
    dpif_netdev_flow_dump_next,
    dpif_netdev_operate,
    dpif_netdev_offload_stats_get,
    NULL,                       /* recv_set */
    NULL,                       /* handlers_set */
    NULL,                       /* number_handlers_required */
    dpif_netdev_set_config,
    dpif_netdev_queue_to_priority,
    NULL,                       /* recv */
    NULL,                       /* recv_wait */
    NULL,                       /* recv_purge */
    dpif_netdev_register_dp_purge_cb,
    dpif_netdev_register_upcall_cb,
    dpif_netdev_enable_upcall,
    dpif_netdev_disable_upcall,
    dpif_netdev_get_datapath_version,
    dpif_netdev_ct_dump_start,
    dpif_netdev_ct_dump_next,
    dpif_netdev_ct_dump_done,
    dpif_netdev_ct_flush,
    dpif_netdev_ct_set_maxconns,
    dpif_netdev_ct_get_maxconns,
    dpif_netdev_ct_get_nconns,
    dpif_netdev_ct_set_tcp_seq_chk,
    dpif_netdev_ct_get_tcp_seq_chk,
    dpif_netdev_ct_set_sweep_interval,
    dpif_netdev_ct_get_sweep_interval,
    dpif_netdev_ct_set_limits,
    dpif_netdev_ct_get_limits,
    dpif_netdev_ct_del_limits,
    dpif_netdev_ct_set_timeout_policy,
    dpif_netdev_ct_get_timeout_policy,
    dpif_netdev_ct_del_timeout_policy,
    NULL,                       /* ct_timeout_policy_dump_start */
    NULL,                       /* ct_timeout_policy_dump_next */
    NULL,                       /* ct_timeout_policy_dump_done */
    dpif_netdev_ct_get_timeout_policy_name,
    dpif_netdev_ct_get_features,
    dpif_netdev_ipf_set_enabled,
    dpif_netdev_ipf_set_min_frag,
    dpif_netdev_ipf_set_max_nfrags,
    dpif_netdev_ipf_get_status,
    dpif_netdev_ipf_dump_start,
    dpif_netdev_ipf_dump_next,
    dpif_netdev_ipf_dump_done,
    dpif_netdev_meter_get_features,
    dpif_netdev_meter_set,
    dpif_netdev_meter_get,
    dpif_netdev_meter_del,
    dpif_netdev_bond_add,
    dpif_netdev_bond_del,
    dpif_netdev_bond_stats_get,
    NULL,                       /* cache_get_supported_levels */
    NULL,                       /* cache_get_name */
    NULL,                       /* cache_get_size */
    NULL,                       /* cache_set_size */
};

static void
dpif_dummy_change_port_number(struct unixctl_conn *conn, int argc OVS_UNUSED,
                              const char *argv[], void *aux OVS_UNUSED)
{
    struct dp_netdev_port *port;
    struct dp_netdev *dp;
    odp_port_t port_no;

    ovs_mutex_lock(&dp_netdev_mutex);
    dp = shash_find_data(&dp_netdevs, argv[1]);
    if (!dp || !dpif_netdev_class_is_dummy(dp->class)) {
        ovs_mutex_unlock(&dp_netdev_mutex);
        unixctl_command_reply_error(conn, "unknown datapath or not a dummy");
        return;
    }
    ovs_refcount_ref(&dp->ref_cnt);
    ovs_mutex_unlock(&dp_netdev_mutex);

    ovs_rwlock_wrlock(&dp->port_rwlock);
    if (get_port_by_name(dp, argv[2], &port)) {
        unixctl_command_reply_error(conn, "unknown port");
        goto exit;
    }

    port_no = u32_to_odp(atoi(argv[3]));
    if (!port_no || port_no == ODPP_NONE) {
        unixctl_command_reply_error(conn, "bad port number");
        goto exit;
    }
    if (dp_netdev_lookup_port(dp, port_no)) {
        unixctl_command_reply_error(conn, "port number already in use");
        goto exit;
    }

    /* Remove port. */
    hmap_remove(&dp->ports, &port->node);
    reconfigure_datapath(dp);

    /* Reinsert with new port number. */
    port->port_no = port_no;
    hmap_insert(&dp->ports, &port->node, hash_port_no(port_no));
    reconfigure_datapath(dp);

    seq_change(dp->port_seq);
    unixctl_command_reply(conn, NULL);

exit:
    ovs_rwlock_unlock(&dp->port_rwlock);
    dp_netdev_unref(dp);
}

static void
dpif_dummy_register__(const char *type)
{
    struct dpif_class *class;

    class = xmalloc(sizeof *class);
    *class = dpif_netdev_class;
    class->type = xstrdup(type);
    dp_register_provider(class);
}

static void
dpif_dummy_override(const char *type)
{
    int error;

    /*
     * Ignore EAFNOSUPPORT to allow --enable-dummy=system with
     * a userland-only build.  It's useful for testsuite.
     */
    error = dp_unregister_provider(type);
    if (error == 0 || error == EAFNOSUPPORT) {
        dpif_dummy_register__(type);
    }
}

void
dpif_dummy_register(enum dummy_level level)
{
    if (level == DUMMY_OVERRIDE_ALL) {
        struct sset types;
        const char *type;

        sset_init(&types);
        dp_enumerate_types(&types);
        SSET_FOR_EACH (type, &types) {
            dpif_dummy_override(type);
        }
        sset_destroy(&types);
    } else if (level == DUMMY_OVERRIDE_SYSTEM) {
        dpif_dummy_override("system");
    }

    dpif_dummy_register__("dummy");

    unixctl_command_register("dpif-dummy/change-port-number",
                             "dp port new-number",
                             3, 3, dpif_dummy_change_port_number, NULL);
}

/* Datapath Classifier. */

static void
dpcls_subtable_destroy_cb(struct dpcls_subtable *subtable)
{
    cmap_destroy(&subtable->rules);
    ovsrcu_postpone(free, subtable->mf_masks);
    ovsrcu_postpone(free, subtable);
}

/* Initializes 'cls' as a classifier that initially contains no classification
 * rules. */
static void
dpcls_init(struct dpcls *cls)
{
    cmap_init(&cls->subtables_map);
    pvector_init(&cls->subtables);
}

static void
dpcls_destroy_subtable(struct dpcls *cls, struct dpcls_subtable *subtable)
{
    VLOG_DBG("Destroying subtable %p for in_port %d", subtable, cls->in_port);
    pvector_remove(&cls->subtables, subtable);
    cmap_remove(&cls->subtables_map, &subtable->cmap_node,
                subtable->mask.hash);
    dpcls_info_dec_usage(subtable->lookup_func_info);
    ovsrcu_postpone(dpcls_subtable_destroy_cb, subtable);
}

/* Destroys 'cls'.  Rules within 'cls', if any, are not freed; this is the
 * caller's responsibility.
 * May only be called after all the readers have been terminated. */
static void
dpcls_destroy(struct dpcls *cls)
{
    if (cls) {
        struct dpcls_subtable *subtable;

        CMAP_FOR_EACH (subtable, cmap_node, &cls->subtables_map) {
            ovs_assert(cmap_count(&subtable->rules) == 0);
            dpcls_destroy_subtable(cls, subtable);
        }
        cmap_destroy(&cls->subtables_map);
        pvector_destroy(&cls->subtables);
    }
}

static struct dpcls_subtable *
dpcls_create_subtable(struct dpcls *cls, const struct netdev_flow_key *mask)
{
    struct dpcls_subtable *subtable;

    /* Need to add one. */
    subtable = xmalloc(sizeof *subtable
                       - sizeof subtable->mask.mf + mask->len);
    cmap_init(&subtable->rules);
    subtable->hit_cnt = 0;
    netdev_flow_key_clone(&subtable->mask, mask);

    /* The count of bits in the mask defines the space required for masks.
     * Then call gen_masks() to create the appropriate masks, avoiding the cost
     * of doing runtime calculations. */
    uint32_t unit0 = count_1bits(mask->mf.map.bits[0]);
    uint32_t unit1 = count_1bits(mask->mf.map.bits[1]);
    subtable->mf_bits_set_unit0 = unit0;
    subtable->mf_bits_set_unit1 = unit1;
    subtable->mf_masks = xmalloc(sizeof(uint64_t) * (unit0 + unit1));
    dpcls_flow_key_gen_masks(mask, subtable->mf_masks, unit0, unit1);

    /* Get the preferred subtable search function for this (u0,u1) subtable.
     * The function is guaranteed to always return a valid implementation, and
     * possibly an ISA optimized, and/or specialized implementation. Initialize
     * the subtable search function atomically to avoid garbage data being read
     * by the PMD thread.
     */
    atomic_init(&subtable->lookup_func,
                dpcls_subtable_get_best_impl(unit0, unit1,
                                             &subtable->lookup_func_info));
    dpcls_info_inc_usage(subtable->lookup_func_info);

    cmap_insert(&cls->subtables_map, &subtable->cmap_node, mask->hash);
    /* Add the new subtable at the end of the pvector (with no hits yet) */
    pvector_insert(&cls->subtables, subtable, 0);
    VLOG_DBG("Creating %"PRIuSIZE". subtable %p for in_port %d",
             cmap_count(&cls->subtables_map), subtable, cls->in_port);
    pvector_publish(&cls->subtables);

    return subtable;
}

static inline struct dpcls_subtable *
dpcls_find_subtable(struct dpcls *cls, const struct netdev_flow_key *mask)
{
    struct dpcls_subtable *subtable;

    CMAP_FOR_EACH_WITH_HASH (subtable, cmap_node, mask->hash,
                             &cls->subtables_map) {
        if (netdev_flow_key_equal(&subtable->mask, mask)) {
            return subtable;
        }
    }
    return dpcls_create_subtable(cls, mask);
}

/* Checks for the best available implementation for each subtable lookup
 * function, and assigns it as the lookup function pointer for each subtable.
 * Returns the number of subtables that have changed lookup implementation.
 * This function requires holding a flow_mutex when called. This is to make
 * sure modifications done by this function are not overwritten. This could
 * happen if dpcls_sort_subtable_vector() is called at the same time as this
 * function.
 */
static uint32_t
dpcls_subtable_lookup_reprobe(struct dpcls *cls)
{
    struct pvector *pvec = &cls->subtables;
    uint32_t subtables_changed = 0;
    struct dpcls_subtable *subtable = NULL;

    PVECTOR_FOR_EACH (subtable, pvec) {
        uint32_t u0_bits = subtable->mf_bits_set_unit0;
        uint32_t u1_bits = subtable->mf_bits_set_unit1;
        void *old_func = subtable->lookup_func;
        struct dpcls_subtable_lookup_info_t *old_info;
        old_info = subtable->lookup_func_info;
        /* Set the subtable lookup function atomically to avoid garbage data
         * being read by the PMD thread. */
        atomic_store_relaxed(&subtable->lookup_func,
                dpcls_subtable_get_best_impl(u0_bits, u1_bits,
                                             &subtable->lookup_func_info));
        if (old_func != subtable->lookup_func) {
            subtables_changed += 1;
        }

        if (old_info != subtable->lookup_func_info) {
            /* In theory, functions can be shared between implementations, so
             * do an explicit check on the function info structures. */
            dpcls_info_dec_usage(old_info);
            dpcls_info_inc_usage(subtable->lookup_func_info);
        }
    }

    return subtables_changed;
}

/* Periodically sort the dpcls subtable vectors according to hit counts */
static void
dpcls_sort_subtable_vector(struct dpcls *cls)
{
    struct pvector *pvec = &cls->subtables;
    struct dpcls_subtable *subtable;

    PVECTOR_FOR_EACH (subtable, pvec) {
        pvector_change_priority(pvec, subtable, subtable->hit_cnt);
        subtable->hit_cnt = 0;
    }
    pvector_publish(pvec);
}

static inline void
dp_netdev_pmd_try_optimize(struct dp_netdev_pmd_thread *pmd,
                           struct polled_queue *poll_list, int poll_cnt)
{
    struct dpcls *cls;
    uint64_t tot_idle = 0, tot_proc = 0, tot_sleep = 0;
    unsigned int pmd_load = 0;

    if (pmd->ctx.now > pmd->next_cycle_store) {
        uint64_t curr_tsc;
        uint8_t rebalance_load_trigger;
        struct pmd_auto_lb *pmd_alb = &pmd->dp->pmd_alb;
        unsigned int idx;

        if (pmd->perf_stats.counters.n[PMD_CYCLES_ITER_IDLE] >=
                pmd->prev_stats[PMD_CYCLES_ITER_IDLE] &&
            pmd->perf_stats.counters.n[PMD_CYCLES_ITER_BUSY] >=
                pmd->prev_stats[PMD_CYCLES_ITER_BUSY]) {
            tot_idle = pmd->perf_stats.counters.n[PMD_CYCLES_ITER_IDLE] -
                       pmd->prev_stats[PMD_CYCLES_ITER_IDLE];
            tot_proc = pmd->perf_stats.counters.n[PMD_CYCLES_ITER_BUSY] -
                       pmd->prev_stats[PMD_CYCLES_ITER_BUSY];
            tot_sleep = pmd->perf_stats.counters.n[PMD_CYCLES_SLEEP] -
                        pmd->prev_stats[PMD_CYCLES_SLEEP];

            if (pmd_alb->is_enabled && !pmd->isolated) {
                if (tot_proc) {
                    pmd_load = ((tot_proc * 100) /
                                    (tot_idle + tot_proc + tot_sleep));
                }

                atomic_read_relaxed(&pmd_alb->rebalance_load_thresh,
                                    &rebalance_load_trigger);
                if (pmd_load >= rebalance_load_trigger) {
                    atomic_count_inc(&pmd->pmd_overloaded);
                } else {
                    atomic_count_set(&pmd->pmd_overloaded, 0);
                }
            }
        }

        pmd->prev_stats[PMD_CYCLES_ITER_IDLE] =
                        pmd->perf_stats.counters.n[PMD_CYCLES_ITER_IDLE];
        pmd->prev_stats[PMD_CYCLES_ITER_BUSY] =
                        pmd->perf_stats.counters.n[PMD_CYCLES_ITER_BUSY];
        pmd->prev_stats[PMD_CYCLES_SLEEP] =
                        pmd->perf_stats.counters.n[PMD_CYCLES_SLEEP];

        /* Get the cycles that were used to process each queue and store. */
        for (unsigned i = 0; i < poll_cnt; i++) {
            uint64_t rxq_cyc_curr = dp_netdev_rxq_get_cycles(poll_list[i].rxq,
                                                        RXQ_CYCLES_PROC_CURR);
            dp_netdev_rxq_set_intrvl_cycles(poll_list[i].rxq, rxq_cyc_curr);
            dp_netdev_rxq_set_cycles(poll_list[i].rxq, RXQ_CYCLES_PROC_CURR,
                                     0);
        }
        curr_tsc = cycles_counter_update(&pmd->perf_stats);
        if (pmd->intrvl_tsc_prev) {
            /* There is a prev timestamp, store a new intrvl cycle count. */
            atomic_store_relaxed(&pmd->intrvl_cycles,
                                 curr_tsc - pmd->intrvl_tsc_prev);
        }
        idx = atomic_count_inc(&pmd->intrvl_idx) % PMD_INTERVAL_MAX;
        atomic_store_relaxed(&pmd->busy_cycles_intrvl[idx], tot_proc);
        pmd->intrvl_tsc_prev = curr_tsc;
        /* Start new measuring interval */
        pmd->next_cycle_store = pmd->ctx.now + PMD_INTERVAL_LEN;
    }

    if (pmd->ctx.now > pmd->next_optimization) {
        /* Try to obtain the flow lock to block out revalidator threads.
         * If not possible, just try next time. */
        if (!ovs_mutex_trylock(&pmd->flow_mutex)) {
            /* Optimize each classifier */
            CMAP_FOR_EACH (cls, node, &pmd->classifiers) {
                dpcls_sort_subtable_vector(cls);
            }
            ovs_mutex_unlock(&pmd->flow_mutex);
            /* Start new measuring interval */
            pmd->next_optimization = pmd->ctx.now
                                     + DPCLS_OPTIMIZATION_INTERVAL;
        }
    }
}

/* Returns the sum of a specified number of newest to
 * oldest interval values. 'cur_idx' is where the next
 * write will be and wrap around needs to be handled.
 */
static uint64_t
get_interval_values(atomic_ullong *source, atomic_count *cur_idx,
                    int num_to_read) {
    unsigned int i;
    uint64_t total = 0;

    i = atomic_count_get(cur_idx) % PMD_INTERVAL_MAX;
    for (int read = 0; read < num_to_read; read++) {
        uint64_t interval_value;

        i = i ? i - 1 : PMD_INTERVAL_MAX - 1;
        atomic_read_relaxed(&source[i], &interval_value);
        total += interval_value;
    }
    return total;
}

/* Insert 'rule' into 'cls'. */
static void
dpcls_insert(struct dpcls *cls, struct dpcls_rule *rule,
             const struct netdev_flow_key *mask)
{
    struct dpcls_subtable *subtable = dpcls_find_subtable(cls, mask);

    /* Refer to subtable's mask, also for later removal. */
    rule->mask = &subtable->mask;
    cmap_insert(&subtable->rules, &rule->cmap_node, rule->flow.hash);
}

/* Removes 'rule' from 'cls', also destructing the 'rule'. */
static void
dpcls_remove(struct dpcls *cls, struct dpcls_rule *rule)
{
    struct dpcls_subtable *subtable;

    ovs_assert(rule->mask);

    /* Get subtable from reference in rule->mask. */
    INIT_CONTAINER(subtable, rule->mask, mask);
    if (cmap_remove(&subtable->rules, &rule->cmap_node, rule->flow.hash)
        == 0) {
        /* Delete empty subtable. */
        dpcls_destroy_subtable(cls, subtable);
        pvector_publish(&cls->subtables);
    }
}

/* Inner loop for mask generation of a unit, see dpcls_flow_key_gen_masks. */
static inline void
dpcls_flow_key_gen_mask_unit(uint64_t iter, const uint64_t count,
                             uint64_t *mf_masks)
{
    int i;
    for (i = 0; i < count; i++) {
        uint64_t lowest_bit = (iter & -iter);
        iter &= ~lowest_bit;
        mf_masks[i] = (lowest_bit - 1);
    }
    /* Checks that count has covered all bits in the iter bitmap. */
    ovs_assert(iter == 0);
}

/* Generate a mask for each block in the miniflow, based on the bits set. This
 * allows easily masking packets with the generated array here, without
 * calculations. This replaces runtime-calculating the masks.
 * @param key The table to generate the mf_masks for
 * @param mf_masks Pointer to a u64 array of at least *mf_bits* in size
 * @param mf_bits_total Number of bits set in the whole miniflow (both units)
 * @param mf_bits_unit0 Number of bits set in unit0 of the miniflow
 */
void
dpcls_flow_key_gen_masks(const struct netdev_flow_key *tbl,
                         uint64_t *mf_masks,
                         const uint32_t mf_bits_u0,
                         const uint32_t mf_bits_u1)
{
    uint64_t iter_u0 = tbl->mf.map.bits[0];
    uint64_t iter_u1 = tbl->mf.map.bits[1];

    dpcls_flow_key_gen_mask_unit(iter_u0, mf_bits_u0, &mf_masks[0]);
    dpcls_flow_key_gen_mask_unit(iter_u1, mf_bits_u1, &mf_masks[mf_bits_u0]);
}

/* Returns true if 'target' satisfies 'key' in 'mask', that is, if each 1-bit
 * in 'mask' the values in 'key' and 'target' are the same. */
inline bool
dpcls_rule_matches_key(const struct dpcls_rule *rule,
                       const struct netdev_flow_key *target)
{
    const uint64_t *keyp = miniflow_get_values(&rule->flow.mf);
    const uint64_t *maskp = miniflow_get_values(&rule->mask->mf);
    uint64_t value;

    NETDEV_FLOW_KEY_FOR_EACH_IN_FLOWMAP(value, target, rule->flow.mf.map) {
        if (OVS_UNLIKELY((value & *maskp++) != *keyp++)) {
            return false;
        }
    }
    return true;
}

/* For each miniflow in 'keys' performs a classifier lookup writing the result
 * into the corresponding slot in 'rules'.  If a particular entry in 'keys' is
 * NULL it is skipped.
 *
 * This function is optimized for use in the userspace datapath and therefore
 * does not implement a lot of features available in the standard
 * classifier_lookup() function.  Specifically, it does not implement
 * priorities, instead returning any rule which matches the flow.
 *
 * Returns true if all miniflows found a corresponding rule. */
bool
dpcls_lookup(struct dpcls *cls, const struct netdev_flow_key *keys[],
             struct dpcls_rule **rules, const size_t cnt,
             int *num_lookups_p)
{
    /* The received 'cnt' miniflows are the search-keys that will be processed
     * to find a matching entry into the available subtables.
     * The number of bits in map_type is equal to NETDEV_MAX_BURST. */
#define MAP_BITS (sizeof(uint32_t) * CHAR_BIT)
    BUILD_ASSERT_DECL(MAP_BITS >= NETDEV_MAX_BURST);

    struct dpcls_subtable *subtable;
    uint32_t keys_map = TYPE_MAXIMUM(uint32_t); /* Set all bits. */

    if (cnt != MAP_BITS) {
        keys_map >>= MAP_BITS - cnt; /* Clear extra bits. */
    }
    memset(rules, 0, cnt * sizeof *rules);

    int lookups_match = 0, subtable_pos = 1;
    uint32_t found_map;

    /* The Datapath classifier - aka dpcls - is composed of subtables.
     * Subtables are dynamically created as needed when new rules are inserted.
     * Each subtable collects rules with matches on a specific subset of packet
     * fields as defined by the subtable's mask.  We proceed to process every
     * search-key against each subtable, but when a match is found for a
     * search-key, the search for that key can stop because the rules are
     * non-overlapping. */
    PVECTOR_FOR_EACH (subtable, &cls->subtables) {
        /* Call the subtable specific lookup function. */
        found_map = subtable->lookup_func(subtable, keys_map, keys, rules);

        /* Count the number of subtables searched for this packet match. This
         * estimates the "spread" of subtables looked at per matched packet. */
        uint32_t pkts_matched = count_1bits(found_map);
        lookups_match += pkts_matched * subtable_pos;

        /* Clear the found rules, and return early if all packets are found. */
        keys_map &= ~found_map;
        if (!keys_map) {
            if (num_lookups_p) {
                *num_lookups_p = lookups_match;
            }
            return true;
        }
        subtable_pos++;
    }

    if (num_lookups_p) {
        *num_lookups_p = lookups_match;
    }
    return false;
}