summaryrefslogtreecommitdiff
path: root/compiler/rename/RnExpr.lhs
blob: d27ef98e807bcaf700bdf5bb9cef93525bac0600 (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
%
% (c) The GRASP/AQUA Project, Glasgow University, 1992-1998
%
\section[RnExpr]{Renaming of expressions}

Basically dependency analysis.

Handles @Match@, @GRHSs@, @HsExpr@, and @Qualifier@ datatypes.  In
general, all of these functions return a renamed thing, and a set of
free variables.

\begin{code}
{-# OPTIONS -fno-warn-tabs #-}
-- The above warning supression flag is a temporary kludge.
-- While working on this module you are encouraged to remove it and
-- detab the module (please do the detabbing in a separate patch). See
--     http://hackage.haskell.org/trac/ghc/wiki/Commentary/CodingStyle#TabsvsSpaces
-- for details

module RnExpr (
	rnLExpr, rnExpr, rnStmts
   ) where

#include "HsVersions.h"

#ifdef GHCI
import {-# SOURCE #-} TcSplice( runQuasiQuoteExpr )
#endif 	/* GHCI */

import RnSource  ( rnSrcDecls, findSplice )
import RnBinds   ( rnLocalBindsAndThen, rnLocalValBindsLHS, rnLocalValBindsRHS,
                   rnMatchGroup, makeMiniFixityEnv) 
import HsSyn
import TcRnMonad
import TcEnv		( thRnBrack )
import RnEnv
import RnTypes	
import RnPat
import DynFlags
import BasicTypes	( FixityDirection(..) )
import PrelNames

import Name
import NameSet
import RdrName
import LoadIface	( loadInterfaceForName )
import UniqSet
import Data.List
import Util
import ListSetOps	( removeDups )
import Outputable
import SrcLoc
import FastString
import Control.Monad
\end{code}


\begin{code}
-- XXX
thenM :: Monad a => a b -> (b -> a c) -> a c
thenM = (>>=)

thenM_ :: Monad a => a b -> a c -> a c
thenM_ = (>>)
\end{code}

%************************************************************************
%*									*
\subsubsection{Expressions}
%*									*
%************************************************************************

\begin{code}
rnExprs :: [LHsExpr RdrName] -> RnM ([LHsExpr Name], FreeVars)
rnExprs ls = rnExprs' ls emptyUniqSet
 where
  rnExprs' [] acc = return ([], acc)
  rnExprs' (expr:exprs) acc
   = rnLExpr expr 	        `thenM` \ (expr', fvExpr) ->

	-- Now we do a "seq" on the free vars because typically it's small
	-- or empty, especially in very long lists of constants
    let
	acc' = acc `plusFV` fvExpr
    in
    acc' `seq` rnExprs' exprs acc' `thenM` \ (exprs', fvExprs) ->
    return (expr':exprs', fvExprs)
\end{code}

Variables. We look up the variable and return the resulting name. 

\begin{code}
rnLExpr :: LHsExpr RdrName -> RnM (LHsExpr Name, FreeVars)
rnLExpr = wrapLocFstM rnExpr

rnExpr :: HsExpr RdrName -> RnM (HsExpr Name, FreeVars)

finishHsVar :: Name -> RnM (HsExpr Name, FreeVars)
-- Separated from rnExpr because it's also used
-- when renaming infix expressions
-- See Note [Adding the implicit parameter to 'assert']
finishHsVar name 
 = do { ignore_asserts <- doptM Opt_IgnoreAsserts
      ; if ignore_asserts || not (name `hasKey` assertIdKey)
	then return (HsVar name, unitFV name)
	else do { e <- mkAssertErrorExpr
		; return (e, unitFV name) } }

rnExpr (HsVar v)
  = do name <- lookupOccRn v
       finishHsVar name

rnExpr (HsIPVar v)
  = return (HsIPVar v, emptyFVs)

rnExpr (HsLit lit@(HsString s))
  = do {
         opt_OverloadedStrings <- xoptM Opt_OverloadedStrings
       ; if opt_OverloadedStrings then
            rnExpr (HsOverLit (mkHsIsString s placeHolderType))
	 else -- Same as below
	    rnLit lit		`thenM_`
            return (HsLit lit, emptyFVs)
       }

rnExpr (HsLit lit) 
  = rnLit lit		`thenM_`
    return (HsLit lit, emptyFVs)

rnExpr (HsOverLit lit) 
  = rnOverLit lit		`thenM` \ (lit', fvs) ->
    return (HsOverLit lit', fvs)

rnExpr (HsApp fun arg)
  = rnLExpr fun		`thenM` \ (fun',fvFun) ->
    rnLExpr arg		`thenM` \ (arg',fvArg) ->
    return (HsApp fun' arg', fvFun `plusFV` fvArg)

rnExpr (OpApp e1 (L op_loc (HsVar op_rdr)) _ e2)
  = do  { (e1', fv_e1) <- rnLExpr e1
	; (e2', fv_e2) <- rnLExpr e2
	; op_name <- setSrcSpan op_loc (lookupOccRn op_rdr)
  	; (op', fv_op) <- finishHsVar op_name
		-- NB: op' is usually just a variable, but might be
		--     an applicatoin (assert "Foo.hs:47")
	-- Deal with fixity
	-- When renaming code synthesised from "deriving" declarations
	-- we used to avoid fixity stuff, but we can't easily tell any
	-- more, so I've removed the test.  Adding HsPars in TcGenDeriv
	-- should prevent bad things happening.
	; fixity <- lookupFixityRn op_name
	; final_e <- mkOpAppRn e1' (L op_loc op') fixity e2'
	; return (final_e, fv_e1 `plusFV` fv_op `plusFV` fv_e2) }
rnExpr (OpApp _ other_op _ _)
  = failWith (vcat [ hang (ptext (sLit "Infix application with a non-variable operator:"))
                        2 (ppr other_op)
                   , ptext (sLit "(Probably resulting from a Template Haskell splice)") ])

rnExpr (NegApp e _)
  = rnLExpr e			`thenM` \ (e', fv_e) ->
    lookupSyntaxName negateName	`thenM` \ (neg_name, fv_neg) ->
    mkNegAppRn e' neg_name	`thenM` \ final_e ->
    return (final_e, fv_e `plusFV` fv_neg)

------------------------------------------
-- Template Haskell extensions
-- Don't ifdef-GHCI them because we want to fail gracefully
-- (not with an rnExpr crash) in a stage-1 compiler.
rnExpr e@(HsBracket br_body)
  = do
    thEnabled <- xoptM Opt_TemplateHaskell
    unless thEnabled $
      failWith ( vcat [ ptext (sLit "Syntax error on") <+> ppr e
                      , ptext (sLit "Perhaps you intended to use -XTemplateHaskell") ] )
    checkTH e "bracket"
    (body', fvs_e) <- rnBracket br_body
    return (HsBracket body', fvs_e)

rnExpr (HsSpliceE splice)
  = rnSplice splice 		`thenM` \ (splice', fvs) ->
    return (HsSpliceE splice', fvs)

#ifndef GHCI
rnExpr e@(HsQuasiQuoteE _) = pprPanic "Cant do quasiquotation without GHCi" (ppr e)
#else
rnExpr (HsQuasiQuoteE qq)
  = runQuasiQuoteExpr qq	`thenM` \ (L _ expr') ->
    rnExpr expr'
#endif 	/* GHCI */

---------------------------------------------
--	Sections
-- See Note [Parsing sections] in Parser.y.pp
rnExpr (HsPar (L loc (section@(SectionL {}))))
  = do	{ (section', fvs) <- rnSection section
	; return (HsPar (L loc section'), fvs) }

rnExpr (HsPar (L loc (section@(SectionR {}))))
  = do	{ (section', fvs) <- rnSection section
	; return (HsPar (L loc section'), fvs) }

rnExpr (HsPar e)
  = do	{ (e', fvs_e) <- rnLExpr e
	; return (HsPar e', fvs_e) }

rnExpr expr@(SectionL {})
  = do	{ addErr (sectionErr expr); rnSection expr }
rnExpr expr@(SectionR {})
  = do	{ addErr (sectionErr expr); rnSection expr }

---------------------------------------------
rnExpr (HsCoreAnn ann expr)
  = rnLExpr expr `thenM` \ (expr', fvs_expr) ->
    return (HsCoreAnn ann expr', fvs_expr)

rnExpr (HsSCC lbl expr)
  = rnLExpr expr	 	`thenM` \ (expr', fvs_expr) ->
    return (HsSCC lbl expr', fvs_expr)
rnExpr (HsTickPragma info expr)
  = rnLExpr expr	 	`thenM` \ (expr', fvs_expr) ->
    return (HsTickPragma info expr', fvs_expr)

rnExpr (HsLam matches)
  = rnMatchGroup LambdaExpr matches	`thenM` \ (matches', fvMatch) ->
    return (HsLam matches', fvMatch)

rnExpr (HsCase expr matches)
  = rnLExpr expr		 	`thenM` \ (new_expr, e_fvs) ->
    rnMatchGroup CaseAlt matches	`thenM` \ (new_matches, ms_fvs) ->
    return (HsCase new_expr new_matches, e_fvs `plusFV` ms_fvs)

rnExpr (HsLet binds expr)
  = rnLocalBindsAndThen binds		$ \ binds' ->
    rnLExpr expr			 `thenM` \ (expr',fvExpr) ->
    return (HsLet binds' expr', fvExpr)

rnExpr (HsDo do_or_lc stmts _)
  = do 	{ ((stmts', _), fvs) <- rnStmts do_or_lc stmts (\ _ -> return ((), emptyFVs))
	; return ( HsDo do_or_lc stmts' placeHolderType, fvs ) }

rnExpr (ExplicitList _ exps)
  = rnExprs exps		 	`thenM` \ (exps', fvs) ->
    return  (ExplicitList placeHolderType exps', fvs)

rnExpr (ExplicitPArr _ exps)
  = rnExprs exps		 	`thenM` \ (exps', fvs) ->
    return  (ExplicitPArr placeHolderType exps', fvs)

rnExpr (ExplicitTuple tup_args boxity)
  = do { checkTupleSection tup_args
       ; checkTupSize (length tup_args)
       ; (tup_args', fvs) <- mapAndUnzipM rnTupArg tup_args
       ; return (ExplicitTuple tup_args' boxity, plusFVs fvs) }
  where
    rnTupArg (Present e) = do { (e',fvs) <- rnLExpr e; return (Present e', fvs) }
    rnTupArg (Missing _) = return (Missing placeHolderType, emptyFVs)

rnExpr (RecordCon con_id _ rbinds)
  = do	{ conname <- lookupLocatedOccRn con_id
	; (rbinds', fvRbinds) <- rnHsRecBinds (HsRecFieldCon (unLoc conname)) rbinds
	; return (RecordCon conname noPostTcExpr rbinds', 
		  fvRbinds `addOneFV` unLoc conname) }

rnExpr (RecordUpd expr rbinds _ _ _)
  = do	{ (expr', fvExpr) <- rnLExpr expr
	; (rbinds', fvRbinds) <- rnHsRecBinds HsRecFieldUpd rbinds
	; return (RecordUpd expr' rbinds' [] [] [], 
		  fvExpr `plusFV` fvRbinds) }

rnExpr (ExprWithTySig expr pty)
  = do	{ (pty', fvTy) <- rnLHsType ExprWithTySigCtx pty
	; (expr', fvExpr) <- bindSigTyVarsFV (hsExplicitTvs pty') $
		  	     rnLExpr expr
	; return (ExprWithTySig expr' pty', fvExpr `plusFV` fvTy) }

rnExpr (HsIf _ p b1 b2)
  = do { (p', fvP) <- rnLExpr p
       ; (b1', fvB1) <- rnLExpr b1
       ; (b2', fvB2) <- rnLExpr b2
       ; (mb_ite, fvITE) <- lookupIfThenElse
       ; return (HsIf mb_ite p' b1' b2', plusFVs [fvITE, fvP, fvB1, fvB2]) }

rnExpr (HsType a)
  = rnLHsType HsTypeCtx a	`thenM` \ (t, fvT) -> 
    return (HsType t, fvT)

rnExpr (ArithSeq _ seq)
  = rnArithSeq seq	 `thenM` \ (new_seq, fvs) ->
    return (ArithSeq noPostTcExpr new_seq, fvs)

rnExpr (PArrSeq _ seq)
  = rnArithSeq seq	 `thenM` \ (new_seq, fvs) ->
    return (PArrSeq noPostTcExpr new_seq, fvs)
\end{code}

These three are pattern syntax appearing in expressions.
Since all the symbols are reservedops we can simply reject them.
We return a (bogus) EWildPat in each case.

\begin{code}
rnExpr e@EWildPat      = patSynErr e
rnExpr e@(EAsPat {})   = patSynErr e
rnExpr e@(EViewPat {}) = patSynErr e
rnExpr e@(ELazyPat {}) = patSynErr e
\end{code}

%************************************************************************
%*									*
	Arrow notation
%*									*
%************************************************************************

\begin{code}
rnExpr (HsProc pat body)
  = newArrowScope $
    rnPat ProcExpr pat $ \ pat' ->
    rnCmdTop body	         `thenM` \ (body',fvBody) ->
    return (HsProc pat' body', fvBody)

rnExpr (HsArrApp arrow arg _ ho rtl)
  = select_arrow_scope (rnLExpr arrow)	`thenM` \ (arrow',fvArrow) ->
    rnLExpr arg				`thenM` \ (arg',fvArg) ->
    return (HsArrApp arrow' arg' placeHolderType ho rtl,
	     fvArrow `plusFV` fvArg)
  where
    select_arrow_scope tc = case ho of
        HsHigherOrderApp -> tc
        HsFirstOrderApp  -> escapeArrowScope tc

-- infix form
rnExpr (HsArrForm op (Just _) [arg1, arg2])
  = escapeArrowScope (rnLExpr op)
			`thenM` \ (op',fv_op) ->
    let L _ (HsVar op_name) = op' in
    rnCmdTop arg1	`thenM` \ (arg1',fv_arg1) ->
    rnCmdTop arg2	`thenM` \ (arg2',fv_arg2) ->

	-- Deal with fixity

    lookupFixityRn op_name		`thenM` \ fixity ->
    mkOpFormRn arg1' op' fixity arg2'	`thenM` \ final_e -> 

    return (final_e,
	      fv_arg1 `plusFV` fv_op `plusFV` fv_arg2)

rnExpr (HsArrForm op fixity cmds)
  = escapeArrowScope (rnLExpr op)	`thenM` \ (op',fvOp) ->
    rnCmdArgs cmds			`thenM` \ (cmds',fvCmds) ->
    return (HsArrForm op' fixity cmds', fvOp `plusFV` fvCmds)

rnExpr other = pprPanic "rnExpr: unexpected expression" (ppr other)
	-- HsWrap

----------------------
-- See Note [Parsing sections] in Parser.y.pp
rnSection :: HsExpr RdrName -> RnM (HsExpr Name, FreeVars)
rnSection section@(SectionR op expr)
  = do	{ (op', fvs_op)     <- rnLExpr op
	; (expr', fvs_expr) <- rnLExpr expr
	; checkSectionPrec InfixR section op' expr'
	; return (SectionR op' expr', fvs_op `plusFV` fvs_expr) }

rnSection section@(SectionL expr op)
  = do	{ (expr', fvs_expr) <- rnLExpr expr
	; (op', fvs_op)     <- rnLExpr op
	; checkSectionPrec InfixL section op' expr'
	; return (SectionL expr' op', fvs_op `plusFV` fvs_expr) }

rnSection other = pprPanic "rnSection" (ppr other)
\end{code}

%************************************************************************
%*									*
	Records
%*									*
%************************************************************************

\begin{code}
rnHsRecBinds :: HsRecFieldContext -> HsRecordBinds RdrName
             -> RnM (HsRecordBinds Name, FreeVars)
rnHsRecBinds ctxt rec_binds@(HsRecFields { rec_dotdot = dd })
  = do { (flds, fvs) <- rnHsRecFields1 ctxt HsVar rec_binds
       ; (flds', fvss) <- mapAndUnzipM rn_field flds
       ; return (HsRecFields { rec_flds = flds', rec_dotdot = dd }, 
                 fvs `plusFV` plusFVs fvss) }
  where 
    rn_field fld = do { (arg', fvs) <- rnLExpr (hsRecFieldArg fld)
                      ; return (fld { hsRecFieldArg = arg' }, fvs) }
\end{code}


%************************************************************************
%*									*
	Arrow commands
%*									*
%************************************************************************

\begin{code}
rnCmdArgs :: [LHsCmdTop RdrName] -> RnM ([LHsCmdTop Name], FreeVars)
rnCmdArgs [] = return ([], emptyFVs)
rnCmdArgs (arg:args)
  = rnCmdTop arg	`thenM` \ (arg',fvArg) ->
    rnCmdArgs args	`thenM` \ (args',fvArgs) ->
    return (arg':args', fvArg `plusFV` fvArgs)

rnCmdTop :: LHsCmdTop RdrName -> RnM (LHsCmdTop Name, FreeVars)
rnCmdTop = wrapLocFstM rnCmdTop'
 where
  rnCmdTop' (HsCmdTop cmd _ _ _) 
   = rnLExpr (convertOpFormsLCmd cmd) `thenM` \ (cmd', fvCmd) ->
     let 
	cmd_names = [arrAName, composeAName, firstAName] ++
		    nameSetToList (methodNamesCmd (unLoc cmd'))
     in
	-- Generate the rebindable syntax for the monad
     lookupSyntaxTable cmd_names	`thenM` \ (cmd_names', cmd_fvs) ->

     return (HsCmdTop cmd' [] placeHolderType cmd_names', 
	     fvCmd `plusFV` cmd_fvs)

---------------------------------------------------
-- convert OpApp's in a command context to HsArrForm's

convertOpFormsLCmd :: LHsCmd id -> LHsCmd id
convertOpFormsLCmd = fmap convertOpFormsCmd

convertOpFormsCmd :: HsCmd id -> HsCmd id

convertOpFormsCmd (HsApp c e) = HsApp (convertOpFormsLCmd c) e
convertOpFormsCmd (HsLam match) = HsLam (convertOpFormsMatch match)
convertOpFormsCmd (OpApp c1 op fixity c2)
  = let
	arg1 = L (getLoc c1) $ HsCmdTop (convertOpFormsLCmd c1) [] placeHolderType []
	arg2 = L (getLoc c2) $ HsCmdTop (convertOpFormsLCmd c2) [] placeHolderType []
    in
    HsArrForm op (Just fixity) [arg1, arg2]

convertOpFormsCmd (HsPar c) = HsPar (convertOpFormsLCmd c)

convertOpFormsCmd (HsCase exp matches)
  = HsCase exp (convertOpFormsMatch matches)

convertOpFormsCmd (HsIf f exp c1 c2)
  = HsIf f exp (convertOpFormsLCmd c1) (convertOpFormsLCmd c2)

convertOpFormsCmd (HsLet binds cmd)
  = HsLet binds (convertOpFormsLCmd cmd)

convertOpFormsCmd (HsDo DoExpr stmts ty)
  = HsDo ArrowExpr (map (fmap convertOpFormsStmt) stmts) ty
    -- Mark the HsDo as begin the body of an arrow command

-- Anything else is unchanged.  This includes HsArrForm (already done),
-- things with no sub-commands, and illegal commands (which will be
-- caught by the type checker)
convertOpFormsCmd c = c

convertOpFormsStmt :: StmtLR id id -> StmtLR id id
convertOpFormsStmt (BindStmt pat cmd _ _)
  = BindStmt pat (convertOpFormsLCmd cmd) noSyntaxExpr noSyntaxExpr
convertOpFormsStmt (ExprStmt cmd _ _ _)
  = ExprStmt (convertOpFormsLCmd cmd) noSyntaxExpr noSyntaxExpr placeHolderType
convertOpFormsStmt stmt@(RecStmt { recS_stmts = stmts })
  = stmt { recS_stmts = map (fmap convertOpFormsStmt) stmts }
convertOpFormsStmt stmt = stmt

convertOpFormsMatch :: MatchGroup id -> MatchGroup id
convertOpFormsMatch (MatchGroup ms ty)
  = MatchGroup (map (fmap convert) ms) ty
 where convert (Match pat mty grhss)
	  = Match pat mty (convertOpFormsGRHSs grhss)

convertOpFormsGRHSs :: GRHSs id -> GRHSs id
convertOpFormsGRHSs (GRHSs grhss binds)
  = GRHSs (map convertOpFormsGRHS grhss) binds

convertOpFormsGRHS :: Located (GRHS id) -> Located (GRHS id)
convertOpFormsGRHS = fmap convert
 where 
   convert (GRHS stmts cmd) = GRHS stmts (convertOpFormsLCmd cmd)

---------------------------------------------------
type CmdNeeds = FreeVars	-- Only inhabitants are 
				-- 	appAName, choiceAName, loopAName

-- find what methods the Cmd needs (loop, choice, apply)
methodNamesLCmd :: LHsCmd Name -> CmdNeeds
methodNamesLCmd = methodNamesCmd . unLoc

methodNamesCmd :: HsCmd Name -> CmdNeeds

methodNamesCmd (HsArrApp _arrow _arg _ HsFirstOrderApp _rtl)
  = emptyFVs
methodNamesCmd (HsArrApp _arrow _arg _ HsHigherOrderApp _rtl)
  = unitFV appAName
methodNamesCmd (HsArrForm {}) = emptyFVs

methodNamesCmd (HsPar c) = methodNamesLCmd c

methodNamesCmd (HsIf _ _ c1 c2)
  = methodNamesLCmd c1 `plusFV` methodNamesLCmd c2 `addOneFV` choiceAName

methodNamesCmd (HsLet _ c)      = methodNamesLCmd c
methodNamesCmd (HsDo _ stmts _) = methodNamesStmts stmts 
methodNamesCmd (HsApp c _)      = methodNamesLCmd c
methodNamesCmd (HsLam match)    = methodNamesMatch match

methodNamesCmd (HsCase _ matches)
  = methodNamesMatch matches `addOneFV` choiceAName

methodNamesCmd _ = emptyFVs
   -- Other forms can't occur in commands, but it's not convenient 
   -- to error here so we just do what's convenient.
   -- The type checker will complain later

---------------------------------------------------
methodNamesMatch :: MatchGroup Name -> FreeVars
methodNamesMatch (MatchGroup ms _)
  = plusFVs (map do_one ms)
 where 
    do_one (L _ (Match _ _ grhss)) = methodNamesGRHSs grhss

-------------------------------------------------
-- gaw 2004
methodNamesGRHSs :: GRHSs Name -> FreeVars
methodNamesGRHSs (GRHSs grhss _) = plusFVs (map methodNamesGRHS grhss)

-------------------------------------------------

methodNamesGRHS :: Located (GRHS Name) -> CmdNeeds
methodNamesGRHS (L _ (GRHS _ rhs)) = methodNamesLCmd rhs

---------------------------------------------------
methodNamesStmts :: [Located (StmtLR Name Name)] -> FreeVars
methodNamesStmts stmts = plusFVs (map methodNamesLStmt stmts)

---------------------------------------------------
methodNamesLStmt :: Located (StmtLR Name Name) -> FreeVars
methodNamesLStmt = methodNamesStmt . unLoc

methodNamesStmt :: StmtLR Name Name -> FreeVars
methodNamesStmt (LastStmt cmd _)                 = methodNamesLCmd cmd
methodNamesStmt (ExprStmt cmd _ _ _)             = methodNamesLCmd cmd
methodNamesStmt (BindStmt _ cmd _ _)             = methodNamesLCmd cmd
methodNamesStmt (RecStmt { recS_stmts = stmts }) = methodNamesStmts stmts `addOneFV` loopAName
methodNamesStmt (LetStmt {})                     = emptyFVs
methodNamesStmt (ParStmt {})                     = emptyFVs
methodNamesStmt (TransStmt {})                   = emptyFVs
   -- ParStmt and TransStmt can't occur in commands, but it's not convenient to error 
   -- here so we just do what's convenient
\end{code}


%************************************************************************
%*									*
	Arithmetic sequences
%*									*
%************************************************************************

\begin{code}
rnArithSeq :: ArithSeqInfo RdrName -> RnM (ArithSeqInfo Name, FreeVars)
rnArithSeq (From expr)
 = rnLExpr expr 	`thenM` \ (expr', fvExpr) ->
   return (From expr', fvExpr)

rnArithSeq (FromThen expr1 expr2)
 = rnLExpr expr1 	`thenM` \ (expr1', fvExpr1) ->
   rnLExpr expr2	`thenM` \ (expr2', fvExpr2) ->
   return (FromThen expr1' expr2', fvExpr1 `plusFV` fvExpr2)

rnArithSeq (FromTo expr1 expr2)
 = rnLExpr expr1	`thenM` \ (expr1', fvExpr1) ->
   rnLExpr expr2	`thenM` \ (expr2', fvExpr2) ->
   return (FromTo expr1' expr2', fvExpr1 `plusFV` fvExpr2)

rnArithSeq (FromThenTo expr1 expr2 expr3)
 = rnLExpr expr1	`thenM` \ (expr1', fvExpr1) ->
   rnLExpr expr2	`thenM` \ (expr2', fvExpr2) ->
   rnLExpr expr3	`thenM` \ (expr3', fvExpr3) ->
   return (FromThenTo expr1' expr2' expr3',
	    plusFVs [fvExpr1, fvExpr2, fvExpr3])
\end{code}

%************************************************************************
%*									*
	Template Haskell brackets
%*									*
%************************************************************************

\begin{code}
rnBracket :: HsBracket RdrName -> RnM (HsBracket Name, FreeVars)
rnBracket (VarBr flg n) 
  = do { name <- lookupOccRn n
       ; this_mod <- getModule
       ; unless (nameIsLocalOrFrom this_mod name) $  -- Reason: deprecation checking assumes
         do { _ <- loadInterfaceForName msg name     -- the home interface is loaded, and
            ; return () }			     -- this is the only way that is going
	      	     				     -- to happen
       ; return (VarBr flg name, unitFV name) }
  where
    msg = ptext (sLit "Need interface for Template Haskell quoted Name")

rnBracket (ExpBr e) = do { (e', fvs) <- rnLExpr e
			 ; return (ExpBr e', fvs) }

rnBracket (PatBr p) = rnPat ThPatQuote p $ \ p' -> return (PatBr p', emptyFVs)

rnBracket (TypBr t) = do { (t', fvs) <- rnLHsType TypBrCtx t
			 ; return (TypBr t', fvs) }

rnBracket (DecBrL decls) 
  = do { (group, mb_splice) <- findSplice decls
       ; case mb_splice of
           Nothing -> return ()
           Just (SpliceDecl (L loc _) _, _)  
              -> setSrcSpan loc $
                 addErr (ptext (sLit "Declaration splices are not permitted inside declaration brackets"))
		-- Why not?  See Section 7.3 of the TH paper.  

       ; gbl_env  <- getGblEnv
       ; let new_gbl_env = gbl_env { tcg_dus = emptyDUs }
	      		  -- The emptyDUs is so that we just collect uses for this
                          -- group alone in the call to rnSrcDecls below
       ; (tcg_env, group') <- setGblEnv new_gbl_env $ 
       	 	   	      setStage thRnBrack $
			      rnSrcDecls [] group
   -- The empty list is for extra dependencies coming from .hs-boot files
   -- See Note [Extra dependencies from .hs-boot files] in RnSource

	      -- Discard the tcg_env; it contains only extra info about fixity
        ; traceRn (text "rnBracket dec" <+> (ppr (tcg_dus tcg_env) $$ 
                   ppr (duUses (tcg_dus tcg_env))))
	; return (DecBrG group', duUses (tcg_dus tcg_env)) }

rnBracket (DecBrG _) = panic "rnBracket: unexpected DecBrG"
\end{code}

%************************************************************************
%*									*
\subsubsection{@Stmt@s: in @do@ expressions}
%*									*
%************************************************************************

\begin{code}
rnStmts :: HsStmtContext Name -> [LStmt RdrName]
	-> ([Name] -> RnM (thing, FreeVars))
	-> RnM (([LStmt Name], thing), FreeVars)	
-- Variables bound by the Stmts, and mentioned in thing_inside,
-- do not appear in the result FreeVars

rnStmts ctxt [] thing_inside
  = do { checkEmptyStmts ctxt
       ; (thing, fvs) <- thing_inside []
       ; return (([], thing), fvs) }

rnStmts MDoExpr stmts thing_inside    -- Deal with mdo
  = -- Behave like do { rec { ...all but last... }; last }
    do { ((stmts1, (stmts2, thing)), fvs) 
    	   <- rnStmt MDoExpr (noLoc $ mkRecStmt all_but_last) $ \ _ ->
    	      do { last_stmt' <- checkLastStmt MDoExpr last_stmt
    	         ; rnStmt MDoExpr last_stmt' thing_inside }
	; return (((stmts1 ++ stmts2), thing), fvs) }
  where
    Just (all_but_last, last_stmt) = snocView stmts

rnStmts ctxt (lstmt@(L loc _) : lstmts) thing_inside
  | null lstmts
  = setSrcSpan loc $
    do { lstmt' <- checkLastStmt ctxt lstmt
       ; rnStmt ctxt lstmt' thing_inside }

  | otherwise
  = do { ((stmts1, (stmts2, thing)), fvs) 
            <- setSrcSpan loc                         $
               do { checkStmt ctxt lstmt
                  ; rnStmt ctxt lstmt    $ \ bndrs1 ->
                    rnStmts ctxt lstmts  $ \ bndrs2 ->
                    thing_inside (bndrs1 ++ bndrs2) }
	; return (((stmts1 ++ stmts2), thing), fvs) }

----------------------
rnStmt :: HsStmtContext Name 
       -> LStmt RdrName
       -> ([Name] -> RnM (thing, FreeVars))
       -> RnM (([LStmt Name], thing), FreeVars)
-- Variables bound by the Stmt, and mentioned in thing_inside,
-- do not appear in the result FreeVars

rnStmt ctxt (L loc (LastStmt expr _)) thing_inside
  = do	{ (expr', fv_expr) <- rnLExpr expr
	; (ret_op, fvs1)   <- lookupStmtName ctxt returnMName
	; (thing,  fvs3)   <- thing_inside []
	; return (([L loc (LastStmt expr' ret_op)], thing),
		  fv_expr `plusFV` fvs1 `plusFV` fvs3) }

rnStmt ctxt (L loc (ExprStmt expr _ _ _)) thing_inside
  = do	{ (expr', fv_expr) <- rnLExpr expr
	; (then_op, fvs1)  <- lookupStmtName ctxt thenMName
	; (guard_op, fvs2) <- if isListCompExpr ctxt
                              then lookupStmtName ctxt guardMName
			      else return (noSyntaxExpr, emptyFVs)
			      -- Only list/parr/monad comprehensions use 'guard'
			      -- Also for sub-stmts of same eg [ e | x<-xs, gd | blah ]
			      -- Here "gd" is a guard
	; (thing, fvs3)    <- thing_inside []
	; return (([L loc (ExprStmt expr' then_op guard_op placeHolderType)], thing),
		  fv_expr `plusFV` fvs1 `plusFV` fvs2 `plusFV` fvs3) }

rnStmt ctxt (L loc (BindStmt pat expr _ _)) thing_inside
  = do	{ (expr', fv_expr) <- rnLExpr expr
		-- The binders do not scope over the expression
	; (bind_op, fvs1) <- lookupStmtName ctxt bindMName
	; (fail_op, fvs2) <- lookupStmtName ctxt failMName
	; rnPat (StmtCtxt ctxt) pat $ \ pat' -> do
	{ (thing, fvs3) <- thing_inside (collectPatBinders pat')
	; return (([L loc (BindStmt pat' expr' bind_op fail_op)], thing),
		  fv_expr `plusFV` fvs1 `plusFV` fvs2 `plusFV` fvs3) }}
       -- fv_expr shouldn't really be filtered by the rnPatsAndThen
	-- but it does not matter because the names are unique

rnStmt _ (L loc (LetStmt binds)) thing_inside 
  = do	{ rnLocalBindsAndThen binds $ \binds' -> do
	{ (thing, fvs) <- thing_inside (collectLocalBinders binds')
        ; return (([L loc (LetStmt binds')], thing), fvs) }  }

rnStmt ctxt (L _ (RecStmt { recS_stmts = rec_stmts })) thing_inside
  = do	{ 
	-- Step1: Bring all the binders of the mdo into scope
	-- (Remember that this also removes the binders from the
	-- finally-returned free-vars.)
   	-- And rename each individual stmt, making a
	-- singleton segment.  At this stage the FwdRefs field
	-- isn't finished: it's empty for all except a BindStmt
	-- for which it's the fwd refs within the bind itself
	-- (This set may not be empty, because we're in a recursive 
	-- context.)
        ; rnRecStmtsAndThen rec_stmts   $ \ segs -> do

	{ let bndrs = nameSetToList $ foldr (unionNameSets . (\(ds,_,_,_) -> ds)) 
                                            emptyNameSet segs
        ; (thing, fvs_later) <- thing_inside bndrs
	; (return_op, fvs1)  <- lookupStmtName ctxt returnMName
	; (mfix_op,   fvs2)  <- lookupStmtName ctxt mfixName
	; (bind_op,   fvs3)  <- lookupStmtName ctxt bindMName
	; let
		-- Step 2: Fill in the fwd refs.
		-- 	   The segments are all singletons, but their fwd-ref
		--	   field mentions all the things used by the segment
		--	   that are bound after their use
	    segs_w_fwd_refs          = addFwdRefs segs

		-- Step 3: Group together the segments to make bigger segments
		--	   Invariant: in the result, no segment uses a variable
		--	   	      bound in a later segment
	    grouped_segs = glomSegments ctxt segs_w_fwd_refs

		-- Step 4: Turn the segments into Stmts
		--	   Use RecStmt when and only when there are fwd refs
		--	   Also gather up the uses from the end towards the
		--	   start, so we can tell the RecStmt which things are
		--	   used 'after' the RecStmt
	    empty_rec_stmt = emptyRecStmt { recS_ret_fn  = return_op
                                          , recS_mfix_fn = mfix_op
                                          , recS_bind_fn = bind_op }
	    (rec_stmts', fvs) = segsToStmts empty_rec_stmt grouped_segs fvs_later

	; return ((rec_stmts', thing), fvs `plusFV` fvs1 `plusFV` fvs2 `plusFV` fvs3) } }

rnStmt ctxt (L loc (ParStmt segs _ _)) thing_inside
  = do	{ (mzip_op, fvs1)   <- lookupStmtName ctxt mzipName
        ; (bind_op, fvs2)   <- lookupStmtName ctxt bindMName
        ; (return_op, fvs3) <- lookupStmtName ctxt returnMName
	; ((segs', thing), fvs4) <- rnParallelStmts (ParStmtCtxt ctxt) return_op segs thing_inside
	; return ( ([L loc (ParStmt segs' mzip_op bind_op)], thing)
                 , fvs1 `plusFV` fvs2 `plusFV` fvs3 `plusFV` fvs4) }

rnStmt ctxt (L loc (TransStmt { trS_stmts = stmts, trS_by = by, trS_form = form
                              , trS_using = using })) thing_inside
  = do { -- Rename the 'using' expression in the context before the transform is begun
         (using', fvs1) <- rnLExpr using

         -- Rename the stmts and the 'by' expression
         -- Keep track of the variables mentioned in the 'by' expression
       ; ((stmts', (by', used_bndrs, thing)), fvs2) 
             <- rnStmts (TransStmtCtxt ctxt) stmts $ \ bndrs ->
                do { (by',   fvs_by) <- mapMaybeFvRn rnLExpr by
                   ; (thing, fvs_thing) <- thing_inside bndrs
                   ; let fvs = fvs_by `plusFV` fvs_thing
                         used_bndrs = filter (`elemNameSet` fvs) bndrs
                         -- The paper (Fig 5) has a bug here; we must treat any free varaible
                         -- of the "thing inside", **or of the by-expression**, as used
                   ; return ((by', used_bndrs, thing), fvs) }

       -- Lookup `return`, `(>>=)` and `liftM` for monad comprehensions
       ; (return_op, fvs3) <- lookupStmtName ctxt returnMName
       ; (bind_op,   fvs4) <- lookupStmtName ctxt bindMName
       ; (fmap_op,   fvs5) <- case form of
                                ThenForm -> return (noSyntaxExpr, emptyFVs)
                                _        -> lookupStmtName ctxt fmapName

       ; let all_fvs  = fvs1 `plusFV` fvs2 `plusFV` fvs3 
                             `plusFV` fvs4 `plusFV` fvs5
             bndr_map = used_bndrs `zip` used_bndrs
	     -- See Note [TransStmt binder map] in HsExpr

       ; traceRn (text "rnStmt: implicitly rebound these used binders:" <+> ppr bndr_map)
       ; return (([L loc (TransStmt { trS_stmts = stmts', trS_bndrs = bndr_map
                                    , trS_by = by', trS_using = using', trS_form = form
                                    , trS_ret = return_op, trS_bind = bind_op
                                    , trS_fmap = fmap_op })], thing), all_fvs) }

rnParallelStmts :: forall thing. HsStmtContext Name 
                -> SyntaxExpr Name
                -> [ParStmtBlock RdrName RdrName]
                -> ([Name] -> RnM (thing, FreeVars))
                -> RnM (([ParStmtBlock Name Name], thing), FreeVars)
-- Note [Renaming parallel Stmts]
rnParallelStmts ctxt return_op segs thing_inside
  = do { orig_lcl_env <- getLocalRdrEnv
       ; rn_segs orig_lcl_env [] segs }
  where
    rn_segs :: LocalRdrEnv
            -> [Name] -> [ParStmtBlock RdrName RdrName]
            -> RnM (([ParStmtBlock Name Name], thing), FreeVars)
    rn_segs _ bndrs_so_far [] 
      = do { let (bndrs', dups) = removeDups cmpByOcc bndrs_so_far
           ; mapM_ dupErr dups
           ; (thing, fvs) <- bindLocalNames bndrs' (thing_inside bndrs')
           ; return (([], thing), fvs) }

    rn_segs env bndrs_so_far (ParStmtBlock stmts _ _ : segs) 
      = do { ((stmts', (used_bndrs, segs', thing)), fvs)
                    <- rnStmts ctxt stmts $ \ bndrs ->
                       setLocalRdrEnv env       $ do
                       { ((segs', thing), fvs) <- rn_segs env (bndrs ++ bndrs_so_far) segs
		       ; let used_bndrs = filter (`elemNameSet` fvs) bndrs
                       ; return ((used_bndrs, segs', thing), fvs) }
		       
           ; let seg' = ParStmtBlock stmts' used_bndrs return_op
           ; return ((seg':segs', thing), fvs) }

    cmpByOcc n1 n2 = nameOccName n1 `compare` nameOccName n2
    dupErr vs = addErr (ptext (sLit "Duplicate binding in parallel list comprehension for:")
                    <+> quotes (ppr (head vs)))

lookupStmtName :: HsStmtContext Name -> Name -> RnM (HsExpr Name, FreeVars)
-- Like lookupSyntaxName, but ListComp/PArrComp are never rebindable
-- Neither is ArrowExpr, which has its own desugarer in DsArrows
lookupStmtName ctxt n 
  = case ctxt of
      ListComp        -> not_rebindable
      PArrComp        -> not_rebindable
      ArrowExpr       -> not_rebindable
      PatGuard {}     -> not_rebindable

      DoExpr          -> rebindable
      MDoExpr         -> rebindable
      MonadComp       -> rebindable
      GhciStmt        -> rebindable   -- I suppose?

      ParStmtCtxt   c -> lookupStmtName c n	-- Look inside to
      TransStmtCtxt c -> lookupStmtName c n	-- the parent context
  where
    rebindable     = lookupSyntaxName n
    not_rebindable = return (HsVar n, emptyFVs)
\end{code}

Note [Renaming parallel Stmts]
~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
Renaming parallel statements is painful.  Given, say  
     [ a+c | a <- as, bs <- bss
           | c <- bs, a <- ds ]
Note that
  (a) In order to report "Defined by not used" about 'bs', we must rename
      each group of Stmts with a thing_inside whose FreeVars include at least {a,c}
   
  (b) We want to report that 'a' is illegally bound in both branches

  (c) The 'bs' in the second group must obviously not be captured by 
      the binding in the first group

To satisfy (a) we nest the segements. 
To satisfy (b) we check for duplicates just before thing_inside.
To satisfy (c) we reset the LocalRdrEnv each time.

%************************************************************************
%*									*
\subsubsection{mdo expressions}
%*									*
%************************************************************************

\begin{code}
type FwdRefs = NameSet
type Segment stmts = (Defs,
		      Uses, 	-- May include defs
		      FwdRefs,	-- A subset of uses that are 
				--   (a) used before they are bound in this segment, or 
				--   (b) used here, and bound in subsequent segments
		      stmts)	-- Either Stmt or [Stmt]


-- wrapper that does both the left- and right-hand sides
rnRecStmtsAndThen :: [LStmt RdrName]
                         -- assumes that the FreeVars returned includes
                         -- the FreeVars of the Segments
                      -> ([Segment (LStmt Name)] -> RnM (a, FreeVars))
                      -> RnM (a, FreeVars)
rnRecStmtsAndThen s cont
  = do	{ -- (A) Make the mini fixity env for all of the stmts
	  fix_env <- makeMiniFixityEnv (collectRecStmtsFixities s)

	  -- (B) Do the LHSes
	; new_lhs_and_fv <- rn_rec_stmts_lhs fix_env s

	  --    ...bring them and their fixities into scope
	; let bound_names = collectLStmtsBinders (map fst new_lhs_and_fv)
	      -- Fake uses of variables introduced implicitly (warning suppression, see #4404)
	      implicit_uses = lStmtsImplicits (map fst new_lhs_and_fv)
	; bindLocalNamesFV bound_names $
          addLocalFixities fix_env bound_names $ do

	  -- (C) do the right-hand-sides and thing-inside
	{ segs <- rn_rec_stmts bound_names new_lhs_and_fv
	; (res, fvs) <- cont segs 
	; warnUnusedLocalBinds bound_names (fvs `unionNameSets` implicit_uses)
	; return (res, fvs) }}

-- get all the fixity decls in any Let stmt
collectRecStmtsFixities :: [LStmtLR RdrName RdrName] -> [LFixitySig RdrName]
collectRecStmtsFixities l = 
    foldr (\ s -> \acc -> case s of 
                            (L _ (LetStmt (HsValBinds (ValBindsIn _ sigs)))) -> 
                                foldr (\ sig -> \ acc -> case sig of 
                                                           (L loc (FixSig s)) -> (L loc s) : acc
                                                           _ -> acc) acc sigs
                            _ -> acc) [] l
                             
-- left-hand sides

rn_rec_stmt_lhs :: MiniFixityEnv
                -> LStmt RdrName
                   -- rename LHS, and return its FVs
                   -- Warning: we will only need the FreeVars below in the case of a BindStmt,
                   -- so we don't bother to compute it accurately in the other cases
                -> RnM [(LStmtLR Name RdrName, FreeVars)]

rn_rec_stmt_lhs _ (L loc (ExprStmt expr a b c)) 
  = return [(L loc (ExprStmt expr a b c), emptyFVs)]

rn_rec_stmt_lhs _ (L loc (LastStmt expr a)) 
  = return [(L loc (LastStmt expr a), emptyFVs)]

rn_rec_stmt_lhs fix_env (L loc (BindStmt pat expr a b)) 
  = do 
      -- should the ctxt be MDo instead?
      (pat', fv_pat) <- rnBindPat (localRecNameMaker fix_env) pat 
      return [(L loc (BindStmt pat' expr a b),
               fv_pat)]

rn_rec_stmt_lhs _ (L _ (LetStmt binds@(HsIPBinds _)))
  = failWith (badIpBinds (ptext (sLit "an mdo expression")) binds)

rn_rec_stmt_lhs fix_env (L loc (LetStmt (HsValBinds binds))) 
    = do (_bound_names, binds') <- rnLocalValBindsLHS fix_env binds
         return [(L loc (LetStmt (HsValBinds binds')),
                 -- Warning: this is bogus; see function invariant
                 emptyFVs
                 )]

-- XXX Do we need to do something with the return and mfix names?
rn_rec_stmt_lhs fix_env (L _ (RecStmt { recS_stmts = stmts }))	-- Flatten Rec inside Rec
    = rn_rec_stmts_lhs fix_env stmts

rn_rec_stmt_lhs _ stmt@(L _ (ParStmt {}))	-- Syntactically illegal in mdo
  = pprPanic "rn_rec_stmt" (ppr stmt)
  
rn_rec_stmt_lhs _ stmt@(L _ (TransStmt {}))	-- Syntactically illegal in mdo
  = pprPanic "rn_rec_stmt" (ppr stmt)

rn_rec_stmt_lhs _ (L _ (LetStmt EmptyLocalBinds))
  = panic "rn_rec_stmt LetStmt EmptyLocalBinds"

rn_rec_stmts_lhs :: MiniFixityEnv
                 -> [LStmt RdrName] 
                 -> RnM [(LStmtLR Name RdrName, FreeVars)]
rn_rec_stmts_lhs fix_env stmts
  = do { ls <- concatMapM (rn_rec_stmt_lhs fix_env) stmts
       ; let boundNames = collectLStmtsBinders (map fst ls)
            -- First do error checking: we need to check for dups here because we
            -- don't bind all of the variables from the Stmt at once
            -- with bindLocatedLocals.
       ; checkDupNames boundNames
       ; return ls }


-- right-hand-sides

rn_rec_stmt :: [Name] -> LStmtLR Name RdrName -> FreeVars -> RnM [Segment (LStmt Name)]
	-- Rename a Stmt that is inside a RecStmt (or mdo)
	-- Assumes all binders are already in scope
	-- Turns each stmt into a singleton Stmt
rn_rec_stmt _ (L loc (LastStmt expr _)) _
  = do	{ (expr', fv_expr) <- rnLExpr expr
	; (ret_op, fvs1)   <- lookupSyntaxName returnMName
	; return [(emptyNameSet, fv_expr `plusFV` fvs1, emptyNameSet,
                   L loc (LastStmt expr' ret_op))] }

rn_rec_stmt _ (L loc (ExprStmt expr _ _ _)) _
  = rnLExpr expr `thenM` \ (expr', fvs) ->
    lookupSyntaxName thenMName	`thenM` \ (then_op, fvs1) ->
    return [(emptyNameSet, fvs `plusFV` fvs1, emptyNameSet,
	      L loc (ExprStmt expr' then_op noSyntaxExpr placeHolderType))]

rn_rec_stmt _ (L loc (BindStmt pat' expr _ _)) fv_pat
  = rnLExpr expr		`thenM` \ (expr', fv_expr) ->
    lookupSyntaxName bindMName	`thenM` \ (bind_op, fvs1) ->
    lookupSyntaxName failMName	`thenM` \ (fail_op, fvs2) ->
    let
	bndrs = mkNameSet (collectPatBinders pat')
	fvs   = fv_expr `plusFV` fv_pat `plusFV` fvs1 `plusFV` fvs2
    in
    return [(bndrs, fvs, bndrs `intersectNameSet` fvs,
	      L loc (BindStmt pat' expr' bind_op fail_op))]

rn_rec_stmt _ (L _ (LetStmt binds@(HsIPBinds _))) _
  = failWith (badIpBinds (ptext (sLit "an mdo expression")) binds)

rn_rec_stmt all_bndrs (L loc (LetStmt (HsValBinds binds'))) _ = do 
  (binds', du_binds) <- 
      -- fixities and unused are handled above in rnRecStmtsAndThen
      rnLocalValBindsRHS (mkNameSet all_bndrs) binds'
  return [(duDefs du_binds, allUses du_binds, 
	   emptyNameSet, L loc (LetStmt (HsValBinds binds')))]

-- no RecStmt case becuase they get flattened above when doing the LHSes
rn_rec_stmt _ stmt@(L _ (RecStmt {})) _
  = pprPanic "rn_rec_stmt: RecStmt" (ppr stmt)

rn_rec_stmt _ stmt@(L _ (ParStmt {})) _	-- Syntactically illegal in mdo
  = pprPanic "rn_rec_stmt: ParStmt" (ppr stmt)

rn_rec_stmt _ stmt@(L _ (TransStmt {})) _	-- Syntactically illegal in mdo
  = pprPanic "rn_rec_stmt: TransStmt" (ppr stmt)

rn_rec_stmt _ (L _ (LetStmt EmptyLocalBinds)) _
  = panic "rn_rec_stmt: LetStmt EmptyLocalBinds"

rn_rec_stmts :: [Name] -> [(LStmtLR Name RdrName, FreeVars)] -> RnM [Segment (LStmt Name)]
rn_rec_stmts bndrs stmts = mapM (uncurry (rn_rec_stmt bndrs)) stmts	`thenM` \ segs_s ->
		   	   return (concat segs_s)

---------------------------------------------
addFwdRefs :: [Segment a] -> [Segment a]
-- So far the segments only have forward refs *within* the Stmt
-- 	(which happens for bind:  x <- ...x...)
-- This function adds the cross-seg fwd ref info

addFwdRefs pairs 
  = fst (foldr mk_seg ([], emptyNameSet) pairs)
  where
    mk_seg (defs, uses, fwds, stmts) (segs, later_defs)
	= (new_seg : segs, all_defs)
	where
	  new_seg = (defs, uses, new_fwds, stmts)
	  all_defs = later_defs `unionNameSets` defs
	  new_fwds = fwds `unionNameSets` (uses `intersectNameSet` later_defs)
		-- Add the downstream fwd refs here

----------------------------------------------------
-- 	Glomming the singleton segments of an mdo into 
--	minimal recursive groups.
--
-- At first I thought this was just strongly connected components, but
-- there's an important constraint: the order of the stmts must not change.
--
-- Consider
--	mdo { x <- ...y...
--	      p <- z
--	      y <- ...x...
--	      q <- x
--	      z <- y
--	      r <- x }
--
-- Here, the first stmt mention 'y', which is bound in the third.  
-- But that means that the innocent second stmt (p <- z) gets caught
-- up in the recursion.  And that in turn means that the binding for
-- 'z' has to be included... and so on.
--
-- Start at the tail { r <- x }
-- Now add the next one { z <- y ; r <- x }
-- Now add one more     { q <- x ; z <- y ; r <- x }
-- Now one more... but this time we have to group a bunch into rec
--	{ rec { y <- ...x... ; q <- x ; z <- y } ; r <- x }
-- Now one more, which we can add on without a rec
--	{ p <- z ; 
--	  rec { y <- ...x... ; q <- x ; z <- y } ; 
-- 	  r <- x }
-- Finally we add the last one; since it mentions y we have to
-- glom it togeher with the first two groups
--	{ rec { x <- ...y...; p <- z ; y <- ...x... ; 
--		q <- x ; z <- y } ; 
-- 	  r <- x }
--
-- NB. June 7 2012: We only glom segments that appear in
-- an explicit mdo; and leave those found in "do rec"'s intact.
-- See http://hackage.haskell.org/trac/ghc/ticket/4148 for
-- the discussion leading to this design choice.

glomSegments :: HsStmtContext Name -> [Segment (LStmt Name)] -> [Segment [LStmt Name]]

glomSegments _ [] = []
glomSegments ctxt ((defs,uses,fwds,stmt) : segs)
	-- Actually stmts will always be a singleton
  = (seg_defs, seg_uses, seg_fwds, seg_stmts)  : others
  where
    segs'	     = glomSegments ctxt segs
    (extras, others) = grab uses segs'
    (ds, us, fs, ss) = unzip4 extras
    
    seg_defs  = plusFVs ds `plusFV` defs
    seg_uses  = plusFVs us `plusFV` uses
    seg_fwds  = plusFVs fs `plusFV` fwds
    seg_stmts = stmt : concat ss

    grab :: NameSet	 	-- The client
	 -> [Segment a]
	 -> ([Segment a],	-- Needed by the 'client'
	     [Segment a])	-- Not needed by the client
	-- The result is simply a split of the input
    grab uses dus 
	= (reverse yeses, reverse noes)
	where
	  (noes, yeses) 	  = span not_needed (reverse dus)
	  not_needed (defs,_,_,_) = case ctxt of
	  		              MDoExpr -> not (intersectsNameSet defs uses)
				      _	      -> False  -- unless we're in mdo, we *need* everything


----------------------------------------------------
segsToStmts :: Stmt Name		-- A RecStmt with the SyntaxOps filled in
            -> [Segment [LStmt Name]] 
	    -> FreeVars			-- Free vars used 'later'
	    -> ([LStmt Name], FreeVars)

segsToStmts _ [] fvs_later = ([], fvs_later)
segsToStmts empty_rec_stmt ((defs, uses, fwds, ss) : segs) fvs_later
  = ASSERT( not (null ss) )
    (new_stmt : later_stmts, later_uses `plusFV` uses)
  where
    (later_stmts, later_uses) = segsToStmts empty_rec_stmt segs fvs_later
    new_stmt | non_rec	 = head ss
	     | otherwise = L (getLoc (head ss)) rec_stmt 
    rec_stmt = empty_rec_stmt { recS_stmts     = ss
                              , recS_later_ids = nameSetToList used_later
                              , recS_rec_ids   = nameSetToList fwds }
    non_rec    = isSingleton ss && isEmptyNameSet fwds
    used_later = defs `intersectNameSet` later_uses
				-- The ones needed after the RecStmt
\end{code}

%************************************************************************
%*									*
\subsubsection{Assertion utils}
%*									*
%************************************************************************

\begin{code}
srcSpanPrimLit :: DynFlags -> SrcSpan -> HsExpr Name
srcSpanPrimLit dflags span
    = HsLit (HsStringPrim (mkFastString (showSDocOneLine dflags (ppr span))))

mkAssertErrorExpr :: RnM (HsExpr Name)
-- Return an expression for (assertError "Foo.hs:27")
mkAssertErrorExpr
  = do sloc <- getSrcSpanM
       dflags <- getDynFlags
       return (HsApp (L sloc (HsVar assertErrorName))
                     (L sloc (srcSpanPrimLit dflags sloc)))
\end{code}

Note [Adding the implicit parameter to 'assert']
~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
The renamer transforms (assert e1 e2) to (assert "Foo.hs:27" e1 e2).
By doing this in the renamer we allow the typechecker to just see the
expanded application and do the right thing. But it's not really 
the Right Thing because there's no way to "undo" if you want to see
the original source code.  We'll have fix this in due course, when
we care more about being able to reconstruct the exact original 
program.

%************************************************************************
%*									*
\subsubsection{Errors}
%*									*
%************************************************************************

\begin{code}
checkEmptyStmts :: HsStmtContext Name -> RnM ()
-- We've seen an empty sequence of Stmts... is that ok?
checkEmptyStmts ctxt 
  = unless (okEmpty ctxt) (addErr (emptyErr ctxt))

okEmpty :: HsStmtContext a -> Bool
okEmpty (PatGuard {}) = True
okEmpty _             = False

emptyErr :: HsStmtContext Name -> SDoc
emptyErr (ParStmtCtxt {})   = ptext (sLit "Empty statement group in parallel comprehension")
emptyErr (TransStmtCtxt {}) = ptext (sLit "Empty statement group preceding 'group' or 'then'")
emptyErr ctxt               = ptext (sLit "Empty") <+> pprStmtContext ctxt

---------------------- 
checkLastStmt :: HsStmtContext Name
              -> LStmt RdrName 
              -> RnM (LStmt RdrName)
checkLastStmt ctxt lstmt@(L loc stmt)
  = case ctxt of 
      ListComp  -> check_comp
      MonadComp -> check_comp
      PArrComp  -> check_comp
      ArrowExpr	-> check_do
      DoExpr	-> check_do
      MDoExpr   -> check_do
      _         -> check_other
  where
    check_do	-- Expect ExprStmt, and change it to LastStmt
      = case stmt of 
          ExprStmt e _ _ _ -> return (L loc (mkLastStmt e))
          LastStmt {}      -> return lstmt   -- "Deriving" clauses may generate a
	  	   	      	     	     -- LastStmt directly (unlike the parser)
	  _                -> do { addErr (hang last_error 2 (ppr stmt)); return lstmt }
    last_error = (ptext (sLit "The last statement in") <+> pprAStmtContext ctxt
                  <+> ptext (sLit "must be an expression"))

    check_comp	-- Expect LastStmt; this should be enforced by the parser!
      = case stmt of 
          LastStmt {} -> return lstmt
          _           -> pprPanic "checkLastStmt" (ppr lstmt)

    check_other	-- Behave just as if this wasn't the last stmt
      = do { checkStmt ctxt lstmt; return lstmt }

-- Checking when a particular Stmt is ok
checkStmt :: HsStmtContext Name
          -> LStmt RdrName 
          -> RnM ()
checkStmt ctxt (L _ stmt)
  = do { dflags <- getDynFlags
       ; case okStmt dflags ctxt stmt of 
           Nothing    -> return ()
           Just extra -> addErr (msg $$ extra) }
  where
   msg = sep [ ptext (sLit "Unexpected") <+> pprStmtCat stmt <+> ptext (sLit "statement")
             , ptext (sLit "in") <+> pprAStmtContext ctxt ]

pprStmtCat :: Stmt a -> SDoc
pprStmtCat (TransStmt {})     = ptext (sLit "transform")
pprStmtCat (LastStmt {})      = ptext (sLit "return expression")
pprStmtCat (ExprStmt {})      = ptext (sLit "exprssion")
pprStmtCat (BindStmt {})      = ptext (sLit "binding")
pprStmtCat (LetStmt {})       = ptext (sLit "let")
pprStmtCat (RecStmt {})       = ptext (sLit "rec")
pprStmtCat (ParStmt {})       = ptext (sLit "parallel")

------------
isOK, notOK :: Maybe SDoc
isOK  = Nothing
notOK = Just empty

okStmt, okDoStmt, okCompStmt, okParStmt, okPArrStmt
   :: DynFlags -> HsStmtContext Name
   -> Stmt RdrName -> Maybe SDoc
-- Return Nothing if OK, (Just extra) if not ok
-- The "extra" is an SDoc that is appended to an generic error message

okStmt dflags ctxt stmt 
  = case ctxt of
      PatGuard {}      	 -> okPatGuardStmt stmt
      ParStmtCtxt ctxt 	 -> okParStmt  dflags ctxt stmt
      DoExpr           	 -> okDoStmt   dflags ctxt stmt
      MDoExpr          	 -> okDoStmt   dflags ctxt stmt
      ArrowExpr        	 -> okDoStmt   dflags ctxt stmt
      GhciStmt         	 -> okDoStmt   dflags ctxt stmt
      ListComp         	 -> okCompStmt dflags ctxt stmt
      MonadComp        	 -> okCompStmt dflags ctxt stmt
      PArrComp         	 -> okPArrStmt dflags ctxt stmt
      TransStmtCtxt ctxt -> okStmt dflags ctxt stmt

-------------
okPatGuardStmt :: Stmt RdrName -> Maybe SDoc
okPatGuardStmt stmt
  = case stmt of
      ExprStmt {} -> isOK
      BindStmt {} -> isOK
      LetStmt {}  -> isOK
      _           -> notOK

-------------
okParStmt dflags ctxt stmt
  = case stmt of
      LetStmt (HsIPBinds {}) -> notOK
      _                      -> okStmt dflags ctxt stmt

----------------
okDoStmt dflags ctxt stmt
  = case stmt of
       RecStmt {}
         | Opt_RecursiveDo `xopt` dflags -> isOK
         | ArrowExpr <- ctxt -> isOK	-- Arrows allows 'rec'
         | otherwise         -> Just (ptext (sLit "Use -XRecursiveDo"))
       BindStmt {} -> isOK
       LetStmt {}  -> isOK
       ExprStmt {} -> isOK
       _           -> notOK

----------------
okCompStmt dflags _ stmt
  = case stmt of
       BindStmt {} -> isOK
       LetStmt {}  -> isOK
       ExprStmt {} -> isOK
       ParStmt {} 
         | Opt_ParallelListComp `xopt` dflags -> isOK
         | otherwise -> Just (ptext (sLit "Use -XParallelListComp"))
       TransStmt {} 
         | Opt_TransformListComp `xopt` dflags -> isOK
         | otherwise -> Just (ptext (sLit "Use -XTransformListComp"))
       RecStmt {}  -> notOK
       LastStmt {} -> notOK  -- Should not happen (dealt with by checkLastStmt)

----------------
okPArrStmt dflags _ stmt
  = case stmt of
       BindStmt {} -> isOK
       LetStmt {}  -> isOK
       ExprStmt {} -> isOK
       ParStmt {} 
         | Opt_ParallelListComp `xopt` dflags -> isOK
         | otherwise -> Just (ptext (sLit "Use -XParallelListComp"))
       TransStmt {} -> notOK
       RecStmt {}   -> notOK
       LastStmt {}  -> notOK  -- Should not happen (dealt with by checkLastStmt)

---------
checkTupleSection :: [HsTupArg RdrName] -> RnM ()
checkTupleSection args
  = do	{ tuple_section <- xoptM Opt_TupleSections
	; checkErr (all tupArgPresent args || tuple_section) msg }
  where
    msg = ptext (sLit "Illegal tuple section: use -XTupleSections")

---------
sectionErr :: HsExpr RdrName -> SDoc
sectionErr expr
  = hang (ptext (sLit "A section must be enclosed in parentheses"))
       2 (ptext (sLit "thus:") <+> (parens (ppr expr)))

patSynErr :: HsExpr RdrName -> RnM (HsExpr Name, FreeVars)
patSynErr e = do { addErr (sep [ptext (sLit "Pattern syntax in expression context:"),
			 	nest 4 (ppr e)])
		 ; return (EWildPat, emptyFVs) }

badIpBinds :: Outputable a => SDoc -> a -> SDoc
badIpBinds what binds
  = hang (ptext (sLit "Implicit-parameter bindings illegal in") <+> what)
	 2 (ppr binds)
\end{code}