summaryrefslogtreecommitdiff
path: root/backend/RTLtyping.v
blob: 5042c775295776947dc909be5a3775eb393c829f (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
(* *********************************************************************)
(*                                                                     *)
(*              The Compcert verified compiler                         *)
(*                                                                     *)
(*          Xavier Leroy, INRIA Paris-Rocquencourt                     *)
(*                                                                     *)
(*  Copyright Institut National de Recherche en Informatique et en     *)
(*  Automatique.  All rights reserved.  This file is distributed       *)
(*  under the terms of the INRIA Non-Commercial License Agreement.     *)
(*                                                                     *)
(* *********************************************************************)

(** Typing rules and a type inference algorithm for RTL. *)

Require Import Coqlib.
Require Import Errors.
Require Import Unityping.
Require Import Maps.
Require Import AST.
Require Import Op.
Require Import Registers.
Require Import Globalenvs.
Require Import Values.
Require Import Integers.
Require Import Memory.
Require Import Events.
Require Import RTL.
Require Import Conventions.

(** * The type system *)

(** Like Cminor and all intermediate languages, RTL can be equipped with
  a simple type system that statically guarantees that operations
  and addressing modes are applied to the right number of arguments
  and that the arguments are of the correct types.   The type algebra
  is very simple, consisting of the four types [Tint] (for integers
  and pointers), [Tfloat] (for double-precision floats), [Tlong]
  (for 64-bit integers) and [Tsingle] (for single-precision floats).

  Additionally, we impose that each pseudo-register has the same type
  throughout the function.  This requirement helps with register allocation,
  enabling each pseudo-register to be mapped to a single hardware register
  or stack location of the correct type.

  Finally, we also check that the successors of instructions
  are valid, i.e. refer to non-empty nodes in the CFG.

  The typing judgement for instructions is of the form [wt_instr f env
  instr], where [f] is the current function (used to type-check
  [Ireturn] instructions) and [env] is a typing environment
  associating types to pseudo-registers.  Since pseudo-registers have
  unique types throughout the function, the typing environment does
  not change during type-checking of individual instructions.  One
  point to note is that we have one polymorphic operator, [Omove],
  which can work over both integers and floats.
*)

Definition regenv := reg -> typ.

Section WT_INSTR.

Variable funct: function.
Variable env: regenv.

Definition valid_successor (s: node) : Prop :=
  exists i, funct.(fn_code)!s = Some i.

Inductive wt_instr : instruction -> Prop :=
  | wt_Inop:
      forall s,
      valid_successor s ->
      wt_instr (Inop s)
  | wt_Iopmove:
      forall r1 r s,
      env r = env r1 ->
      valid_successor s ->
      wt_instr (Iop Omove (r1 :: nil) r s)
  | wt_Iop:
      forall op args res s,
      op <> Omove ->
      map env args = fst (type_of_operation op) ->
      env res = snd (type_of_operation op) ->
      valid_successor s ->
      wt_instr (Iop op args res s)
  | wt_Iload:
      forall chunk addr args dst s,
      map env args = type_of_addressing addr ->
      env dst = type_of_chunk chunk ->
      valid_successor s ->
      wt_instr (Iload chunk addr args dst s)
  | wt_Istore:
      forall chunk addr args src s,
      map env args = type_of_addressing addr ->
      env src = type_of_chunk chunk ->
      valid_successor s ->
      wt_instr (Istore chunk addr args src s)
  | wt_Icall:
      forall sig ros args res s,
      match ros with inl r => env r = Tint | inr s => True end ->
      map env args = sig.(sig_args) ->
      env res = proj_sig_res sig ->
      valid_successor s ->
      wt_instr (Icall sig ros args res s)
  | wt_Itailcall:
      forall sig ros args,
      match ros with inl r => env r = Tint | inr s => True end ->
      map env args = sig.(sig_args) ->
      sig.(sig_res) = funct.(fn_sig).(sig_res) ->
      tailcall_possible sig ->
      wt_instr (Itailcall sig ros args)
  | wt_Ibuiltin:
      forall ef args res s,
      map env args = (ef_sig ef).(sig_args) ->
      env res = proj_sig_res (ef_sig ef) ->
      valid_successor s ->
      wt_instr (Ibuiltin ef args res s)
  | wt_Icond:
      forall cond args s1 s2,
      map env args = type_of_condition cond ->
      valid_successor s1 ->
      valid_successor s2 ->
      wt_instr (Icond cond args s1 s2)
  | wt_Ijumptable:
      forall arg tbl,
      env arg = Tint ->
      (forall s, In s tbl -> valid_successor s) ->
      list_length_z tbl * 4 <= Int.max_unsigned ->
      wt_instr (Ijumptable arg tbl)
  | wt_Ireturn_none:
      funct.(fn_sig).(sig_res) = None ->
      wt_instr (Ireturn None)
  | wt_Ireturn_some:
      forall arg ty,
      funct.(fn_sig).(sig_res) = Some ty ->
      env arg = ty ->
      wt_instr (Ireturn (Some arg)).

End WT_INSTR.

(** A function [f] is well-typed w.r.t. a typing environment [env],
   written [wt_function env f], if all instructions are well-typed,
   parameters agree in types with the function signature, and
   parameters are pairwise distinct. *)

Record wt_function (f: function) (env: regenv): Prop :=
  mk_wt_function {
    wt_params:
      map env f.(fn_params) = f.(fn_sig).(sig_args);
    wt_norepet:
      list_norepet f.(fn_params);
    wt_instrs:
      forall pc instr, 
      f.(fn_code)!pc = Some instr -> wt_instr f env instr;
    wt_entrypoint:
      valid_successor f f.(fn_entrypoint)
}.

Inductive wt_fundef: fundef -> Prop :=
  | wt_fundef_external: forall ef,
      wt_fundef (External ef)
  | wt_function_internal: forall f env,
      wt_function f env ->
      wt_fundef (Internal f).

Definition wt_program (p: program): Prop :=
  forall i f, In (i, Gfun f) (prog_defs p) -> wt_fundef f.

(** * Type inference *)

(** Type inference reuses the generic solver for unification constraints
  defined in module [Unityping]. *)

Module RTLtypes <: TYPE_ALGEBRA.

Definition t := typ.
Definition eq := typ_eq.
Definition default := Tint.

End RTLtypes.

Module S := UniSolver(RTLtypes).

Section INFERENCE.

Local Open Scope error_monad_scope.

Variable f: function.

(** Checking the validity of successor nodes. *)

Definition check_successor (s: node): res unit :=
  match f.(fn_code)!s with
  | None => Error (MSG "bad successor " :: POS s :: nil)
  | Some i => OK tt
  end.

Fixpoint check_successors (sl: list node): res unit :=
  match sl with
  | nil => OK tt
  | s1 :: sl' => do x <- check_successor s1; check_successors sl'
  end.

(** Check structural constraints and process / record all type constraints. *)

Definition type_ros (e: S.typenv) (ros: reg + ident) : res S.typenv :=
  match ros with
  | inl r => S.set e r Tint
  | inr s => OK e
  end.

Definition is_move (op: operation) : bool :=
  match op with Omove => true | _ => false end.

Definition type_instr (e: S.typenv) (i: instruction) : res S.typenv :=
  match i with
  | Inop s =>
      do x <- check_successor s; OK e
  | Iop op args res s =>
      do x <- check_successor s;
      if is_move op then
        match args with
        | arg :: nil => do (changed, e') <- S.move e res arg; OK e'
        | _ => Error (msg "ill-formed move")
        end
      else
       (let (targs, tres) := type_of_operation op in
        do e1 <- S.set_list e args targs; S.set e1 res tres)
  | Iload chunk addr args dst s =>
      do x <- check_successor s;
      do e1 <- S.set_list e args (type_of_addressing addr);
      S.set e1 dst (type_of_chunk chunk)
  | Istore chunk addr args src s =>
      do x <- check_successor s;
      do e1 <- S.set_list e args (type_of_addressing addr);
      S.set e1 src (type_of_chunk chunk)
  | Icall sig ros args res s =>
      do x <- check_successor s;
      do e1 <- type_ros e ros;
      do e2 <- S.set_list e1 args sig.(sig_args);
      S.set e2 res (proj_sig_res sig)
  | Itailcall sig ros args =>
      do e1 <- type_ros e ros;
      do e2 <- S.set_list e1 args sig.(sig_args);
      if opt_typ_eq sig.(sig_res) f.(fn_sig).(sig_res) then
        if tailcall_is_possible sig
        then OK e2
        else Error(msg "tailcall not possible")
      else Error(msg "bad return type in tailcall")
  | Ibuiltin ef args res s =>
      let sig := ef_sig ef in
      do x <- check_successor s;
      do e1 <- S.set_list e args sig.(sig_args);
      S.set e1 res (proj_sig_res sig)
 | Icond cond args s1 s2 =>
      do x1 <- check_successor s1;
      do x2 <- check_successor s2;
      S.set_list e args (type_of_condition cond)
 | Ijumptable arg tbl =>
      do x <- check_successors tbl;
      do e1 <- S.set e arg Tint;
      if zle (list_length_z tbl * 4) Int.max_unsigned
      then OK e1
      else Error(msg "jumptable too big")
  | Ireturn optres =>
      match optres, f.(fn_sig).(sig_res) with
      | None, None => OK e
      | Some r, Some t => S.set e r t
      | _, _ => Error(msg "bad return")
      end
  end.

Definition type_code (e: S.typenv): res S.typenv :=
  PTree.fold (fun re pc i =>
    match re with
    | Error _ => re
    | OK e =>
        match type_instr e i with
        | Error msg => Error(MSG "At PC " :: POS pc :: MSG ": " :: msg)
        | OK e' => OK e'
        end
    end)
  f.(fn_code) (OK e).

(** Solve remaining constraints *)

Definition check_params_norepet (params: list reg): res unit := 
  if list_norepet_dec Reg.eq params
  then OK tt
  else Error(msg "duplicate parameters").

Definition type_function : res regenv :=
  do e1 <- type_code S.initial;
  do e2 <- S.set_list e1 f.(fn_params) f.(fn_sig).(sig_args);
  do te <- S.solve e2;
  do x1 <- check_params_norepet f.(fn_params);
  do x2 <- check_successor f.(fn_entrypoint);
  OK te.

(** ** Soundness proof *)

Remark type_ros_incr:
  forall e ros e' te, type_ros e ros = OK e' -> S.satisf te e' -> S.satisf te e.
Proof.
  unfold type_ros; intros. destruct ros. eauto with ty. inv H; auto with ty.
Qed.

Hint Resolve type_ros_incr: ty.

Lemma type_ros_sound:
  forall e ros e' te, type_ros e ros = OK e' -> S.satisf te e' ->
  match ros with inl r => te r = Tint | inr s => True end.
Proof.
  unfold type_ros; intros. destruct ros. 
  eapply S.set_sound; eauto.
  auto.
Qed.

Lemma check_successor_sound:
  forall s x, check_successor s = OK x -> valid_successor f s.
Proof.
  unfold check_successor, valid_successor; intros. 
  destruct (fn_code f)!s; inv H. exists i; auto.
Qed.

Hint Resolve check_successor_sound: ty.

Lemma check_successors_sound:
  forall sl x, check_successors sl = OK x -> forall s, In s sl -> valid_successor f s.
Proof.
  induction sl; simpl; intros. 
  contradiction.
  monadInv H. destruct H0. subst a; eauto with ty. eauto. 
Qed.

Lemma type_instr_incr:
  forall e i e' te,
  type_instr e i = OK e' -> S.satisf te e' -> S.satisf te e.
Proof.
  intros; destruct i; try (monadInv H); eauto with ty.
- (* op *)
  destruct (is_move o) eqn:ISMOVE.
  destruct l; try discriminate. destruct l; monadInv EQ0. eauto with ty.
  destruct (type_of_operation o) as [targs tres] eqn:TYOP. monadInv EQ0. eauto with ty.
- (* tailcall *)
  destruct (opt_typ_eq (sig_res s) (sig_res (fn_sig f))); try discriminate.
  destruct (tailcall_is_possible s) eqn:TCIP; inv EQ2.
  eauto with ty.
- (* jumptable *)
  destruct (zle (list_length_z l * 4) Int.max_unsigned); inv EQ2.
  eauto with ty.
- (* return *)
  simpl in H. destruct o as [r|] eqn: RET; destruct (sig_res (fn_sig f)) as [t|] eqn: RES; try discriminate.
  eauto with ty.
  inv H; auto with ty.
Qed.

Lemma type_instr_sound:
  forall e i e' te,
  type_instr e i = OK e' -> S.satisf te e' -> wt_instr f te i.
Proof.
  intros; destruct i; try (monadInv H); simpl.
- (* nop *)
  constructor; eauto with ty.
- (* op *)
  destruct (is_move o) eqn:ISMOVE.
  (* move *)
  + assert (o = Omove) by (unfold is_move in ISMOVE; destruct o; congruence).
    subst o.
    destruct l; try discriminate. destruct l; monadInv EQ0.
    constructor. eapply S.move_sound; eauto. eauto with ty.
  + destruct (type_of_operation o) as [targs tres] eqn:TYOP. monadInv EQ0.
    apply wt_Iop. 
    unfold is_move in ISMOVE; destruct o; congruence.
    rewrite TYOP. eapply S.set_list_sound; eauto with ty.
    rewrite TYOP. eapply S.set_sound; eauto with ty.
    eauto with ty.
- (* load *)
  constructor.
  eapply S.set_list_sound; eauto with ty.
  eapply S.set_sound; eauto with ty.
  eauto with ty.
- (* store *)
  constructor.
  eapply S.set_list_sound; eauto with ty.
  eapply S.set_sound; eauto with ty.
  eauto with ty.
- (* call *)
  constructor. 
  eapply type_ros_sound; eauto with ty.
  eapply S.set_list_sound; eauto with ty.
  eapply S.set_sound; eauto with ty.
  eauto with ty.
- (* tailcall *)
  destruct (opt_typ_eq (sig_res s) (sig_res (fn_sig f))); try discriminate.
  destruct (tailcall_is_possible s) eqn:TCIP; inv EQ2.
  constructor.
  eapply type_ros_sound; eauto with ty. 
  eapply S.set_list_sound; eauto with ty.
  auto.
  apply tailcall_is_possible_correct; auto.
- (* builtin *)
  constructor.
  eapply S.set_list_sound; eauto with ty.
  eapply S.set_sound; eauto with ty.
  eauto with ty.
- (* cond *)
  constructor.
  eapply S.set_list_sound; eauto with ty.
  eauto with ty.
  eauto with ty.
- (* jumptable *)
  destruct (zle (list_length_z l * 4) Int.max_unsigned); inv EQ2.
  constructor.
  eapply S.set_sound; eauto.
  eapply check_successors_sound; eauto. 
  auto.
- (* return *)
  simpl in H. destruct o as [r|] eqn: RET; destruct (sig_res (fn_sig f)) as [t|] eqn: RES; try discriminate.
  econstructor. eauto. eapply S.set_sound; eauto with ty.
  inv H. constructor. auto. 
Qed.

Lemma type_code_sound:
  forall pc i e e' te,
  type_code e = OK e' ->
  f.(fn_code)!pc = Some i -> S.satisf te e' -> wt_instr f te i.
Proof.
  intros pc i e0 e1 te TCODE.
  set (P := fun c opte =>
         match opte with
         | Error _ => True
         | OK e' => c!pc = Some i -> S.satisf te e' -> wt_instr f te i
         end).
  change (P f.(fn_code) (OK e1)).
  rewrite <- TCODE. unfold type_code. apply PTree_Properties.fold_rec; unfold P; intros. 
  - (* extensionality *)
    destruct a; auto; intros. rewrite <- H in H1. eapply H0; eauto. 
  - (* base case *)
    rewrite PTree.gempty in H; discriminate.
  - (* inductive case *)
    destruct a as [e|?]; auto. 
    destruct (type_instr e v) as [e'|?] eqn:TYINSTR; auto.
    intros. rewrite PTree.gsspec in H2. destruct (peq pc k). 
    inv H2. eapply type_instr_sound; eauto. 
    eapply H1; eauto. eapply type_instr_incr; eauto.
Qed.

Theorem type_function_correct:
  forall env, type_function = OK env -> wt_function f env.
Proof.
  unfold type_function; intros. monadInv H.
  assert (SAT0: S.satisf env x0) by (eapply S.solve_sound; eauto).
  assert (SAT1: S.satisf env x) by (eauto with ty).
  constructor.
- (* type of parameters *)
  eapply S.set_list_sound; eauto.
- (* parameters are unique *)
  unfold check_params_norepet in EQ2. 
  destruct (list_norepet_dec Reg.eq (fn_params f)); inv EQ2; auto. 
- (* instructions are well typed *)
  intros. eapply type_code_sound; eauto. 
- (* entry point is valid *)
  eauto with ty. 
Qed.

(** ** Completeness proof *)

Lemma type_ros_complete:
  forall te ros e,
  S.satisf te e ->
  match ros with inl r => te r = Tint | inr s => True end ->
  exists e', type_ros e ros = OK e' /\ S.satisf te e'.
Proof.
  intros; destruct ros; simpl. 
  eapply S.set_complete; eauto.
  exists e; auto.
Qed.

Lemma check_successor_complete:
  forall s, valid_successor f s -> check_successor s = OK tt.
Proof.
  unfold valid_successor, check_successor; intros. 
  destruct H as [i EQ]; rewrite EQ; auto.
Qed.

Lemma type_instr_complete:
  forall te e i,
  S.satisf te e ->
  wt_instr f te i ->
  exists e', type_instr e i = OK e' /\ S.satisf te e'.
Proof.
  induction 2; simpl.
- (* nop *)
  econstructor; split. rewrite check_successor_complete; simpl; eauto. auto.
- (* move *)
  exploit S.move_complete; eauto. intros (changed & e' & A & B).
  exists e'; split. rewrite check_successor_complete by auto; simpl. rewrite A; auto. auto.
- (* other op *)
  destruct (type_of_operation op) as [targ tres]. simpl in *.
  exploit S.set_list_complete. eauto. eauto. intros [e1 [A B]].
  exploit S.set_complete. eexact B. eauto. intros [e2 [C D]].
  exists e2; split; auto.
  rewrite check_successor_complete by auto; simpl. 
  replace (is_move op) with false. rewrite A; simpl; rewrite C; auto.
  destruct op; reflexivity || congruence.
- (* load *)
  exploit S.set_list_complete. eauto. eauto. intros [e1 [A B]].
  exploit S.set_complete. eexact B. eauto. intros [e2 [C D]].
  exists e2; split; auto.
  rewrite check_successor_complete by auto; simpl. 
  rewrite A; simpl; rewrite C; auto.
- (* store *)
  exploit S.set_list_complete. eauto. eauto. intros [e1 [A B]].
  exploit S.set_complete. eexact B. eauto. intros [e2 [C D]].
  exists e2; split; auto.
  rewrite check_successor_complete by auto; simpl. 
  rewrite A; simpl; rewrite C; auto.
- (* call *)
  exploit type_ros_complete. eauto. eauto. intros [e1 [A B]].
  exploit S.set_list_complete. eauto. eauto. intros [e2 [C D]].
  exploit S.set_complete. eexact D. eauto. intros [e3 [E F]].
  exists e3; split; auto. 
  rewrite check_successor_complete by auto; simpl. 
  rewrite A; simpl; rewrite C; simpl; rewrite E; auto.
- (* tailcall *)
  exploit type_ros_complete. eauto. eauto. intros [e1 [A B]].
  exploit S.set_list_complete. eauto. eauto. intros [e2 [C D]].
  exists e2; split; auto. 
  rewrite A; simpl; rewrite C; simpl. 
  rewrite H2; rewrite dec_eq_true. 
  replace (tailcall_is_possible sig) with true; auto. 
  revert H3. unfold tailcall_possible, tailcall_is_possible. generalize (loc_arguments sig). 
  induction l; simpl; intros. auto.
  exploit (H3 a); auto. intros. destruct a; try contradiction. apply IHl.
  intros; apply H3; auto. 
- (* builtin *)
  exploit S.set_list_complete. eauto. eauto. intros [e1 [A B]].
  exploit S.set_complete. eexact B. eauto. intros [e2 [C D]].
  exists e2; split; auto.
  rewrite check_successor_complete by auto; simpl. 
  rewrite A; simpl; rewrite C; auto.
- (* cond *)
  exploit S.set_list_complete. eauto. eauto. intros [e1 [A B]].
  exists e1; split; auto.
  rewrite check_successor_complete by auto; simpl. 
  rewrite check_successor_complete by auto; simpl.
  auto.
- (* jumptbl *)
  exploit S.set_complete. eauto. eauto. intros [e1 [A B]].
  exists e1; split; auto.
  replace (check_successors tbl) with (OK tt). simpl. 
  rewrite A; simpl. apply zle_true; auto. 
  revert H1. generalize tbl. induction tbl0; simpl; intros. auto. 
  rewrite check_successor_complete by auto; simpl.
  apply IHtbl0; intros; auto.
- (* return none *)
  rewrite H0. exists e; auto.
- (* return some *)
  rewrite H0. apply S.set_complete; auto.
Qed.

Lemma type_code_complete:
  forall te e,
  (forall pc instr, f.(fn_code)!pc = Some instr -> wt_instr f te instr) ->
  S.satisf te e ->
  exists e', type_code e = OK e' /\ S.satisf te e'.
Proof.
  intros te e0 WTC SAT0.
  set (P := fun c res =>
        (forall pc i, c!pc = Some i -> wt_instr f te i) ->
        exists e', res = OK e' /\ S.satisf te e').
  assert (P f.(fn_code) (type_code e0)).
  {
    unfold type_code. apply PTree_Properties.fold_rec; unfold P; intros.
    - apply H0. intros. apply H1 with pc. rewrite <- H; auto. 
    - exists e0; auto. 
    - destruct H1 as [e [A B]]. 
      intros. apply H2 with pc. rewrite PTree.gso; auto. congruence.
      subst a. 
      destruct (type_instr_complete te e v) as [e' [C D]].
      auto. apply H2 with k. apply PTree.gss. 
      exists e'; split; auto. rewrite C; auto. 
  }
  apply H; auto.
Qed.

Theorem type_function_complete:
  forall te, wt_function f te -> exists te, type_function = OK te.
Proof.
  intros. destruct H. 
  destruct (type_code_complete te S.initial) as (e1 & A & B).
  auto. apply S.satisf_initial. 
  destruct (S.set_list_complete te f.(fn_params) f.(fn_sig).(sig_args) e1) as (e2 & C & D); auto.
  destruct (S.solve_complete te e2) as (te' & E); auto.
  exists te'; unfold type_function.
  rewrite A; simpl. rewrite C; simpl. rewrite E; simpl. 
  unfold check_params_norepet. rewrite pred_dec_true; auto. simpl. 
  rewrite check_successor_complete by auto. auto. 
Qed.

End INFERENCE.

(** * Type preservation during evaluation *)

(** The type system for RTL is not sound in that it does not guarantee
  progress: well-typed instructions such as [Icall] can fail because
  of run-time type tests (such as the equality between callee and caller's
  signatures).  However, the type system guarantees a type preservation
  property: if the execution does not fail because of a failed run-time
  test, the result values and register states match the static
  typing assumptions.  This preservation property will be useful
  later for the proof of semantic equivalence between [Linear] and [Mach].
  Even though we do not need it for [RTL], we show preservation for [RTL]
  here, as a warm-up exercise and because some of the lemmas will be
  useful later. *)

Definition wt_regset (env: regenv) (rs: regset) : Prop :=
  forall r, Val.has_type (rs#r) (env r).

Lemma wt_regset_assign:
  forall env rs v r,
  wt_regset env rs ->
  Val.has_type v (env r) ->
  wt_regset env (rs#r <- v).
Proof.
  intros; red; intros. 
  rewrite Regmap.gsspec.
  case (peq r0 r); intro.
  subst r0. assumption.
  apply H.
Qed.

Lemma wt_regset_list:
  forall env rs,
  wt_regset env rs ->
  forall rl, Val.has_type_list (rs##rl) (List.map env rl).
Proof.
  induction rl; simpl.
  auto.
  split. apply H. apply IHrl.
Qed.  

Lemma wt_init_regs:
  forall env rl args,
  Val.has_type_list args (List.map env rl) ->
  wt_regset env (init_regs args rl).
Proof.
  induction rl; destruct args; simpl; intuition.
  red; intros. rewrite Regmap.gi. simpl; auto. 
  apply wt_regset_assign; auto.
Qed.

Lemma wt_exec_Iop:
  forall (ge: genv) env f sp op args res s rs m v,
  wt_instr f env (Iop op args res s) ->
  eval_operation ge sp op rs##args m = Some v ->
  wt_regset env rs ->
  wt_regset env (rs#res <- v).
Proof.
  intros. inv H. 
  simpl in H0. inv H0. apply wt_regset_assign; auto.
  rewrite H4; auto.
  eapply wt_regset_assign; auto.
  rewrite H8. eapply type_of_operation_sound; eauto.
Qed.

Lemma wt_exec_Iload:
  forall env f chunk addr args dst s m a v rs,
  wt_instr f env (Iload chunk addr args dst s) ->
  Mem.loadv chunk m a = Some v ->
  wt_regset env rs ->
  wt_regset env (rs#dst <- v).
Proof.
  intros. destruct a; simpl in H0; try discriminate. inv H.
  eapply wt_regset_assign; eauto. rewrite H8; eapply Mem.load_type; eauto.
Qed.

Lemma wt_exec_Ibuiltin:
  forall env f ef (ge: genv) args res s vargs m t vres m' rs,
  wt_instr f env (Ibuiltin ef args res s) ->
  external_call ef ge vargs m t vres m' ->
  wt_regset env rs ->
  wt_regset env (rs#res <- vres).
Proof.
  intros. inv H. 
  eapply wt_regset_assign; eauto. 
  rewrite H7; eapply external_call_well_typed; eauto.
Qed.

Lemma wt_instr_at:
  forall f env pc i,
  wt_function f env -> f.(fn_code)!pc = Some i -> wt_instr f env i.
Proof.
  intros. inv H. eauto. 
Qed.

Inductive wt_stackframes: list stackframe -> signature -> Prop :=
  | wt_stackframes_nil: forall sg,
      sg.(sig_res) = Some Tint ->
      wt_stackframes nil sg
  | wt_stackframes_cons:
      forall s res f sp pc rs env sg,
      wt_function f env ->
      wt_regset env rs ->
      env res = proj_sig_res sg ->
      wt_stackframes s (fn_sig f) ->
      wt_stackframes (Stackframe res f sp pc rs :: s) sg.

Inductive wt_state: state -> Prop :=
  | wt_state_intro:
      forall s f sp pc rs m env
        (WT_STK: wt_stackframes s (fn_sig f))
        (WT_FN: wt_function f env)
        (WT_RS: wt_regset env rs),
      wt_state (State s f sp pc rs m)
  | wt_state_call:
      forall s f args m,
      wt_stackframes s (funsig f) ->
      wt_fundef f ->
      Val.has_type_list args (sig_args (funsig f)) ->
      wt_state (Callstate s f args m)
  | wt_state_return:
      forall s v m sg,
      wt_stackframes s sg ->
      Val.has_type v (proj_sig_res sg) ->
      wt_state (Returnstate s v m).

Remark wt_stackframes_change_sig:
  forall s sg1 sg2,
  sg1.(sig_res) = sg2.(sig_res) -> wt_stackframes s sg1 -> wt_stackframes s sg2.
Proof.
  intros. inv H0. 
- constructor; congruence.
- econstructor; eauto. rewrite H3. unfold proj_sig_res. rewrite H. auto. 
Qed.

Section SUBJECT_REDUCTION.

Variable p: program.

Hypothesis wt_p: wt_program p.

Let ge := Genv.globalenv p.

Lemma subject_reduction:
  forall st1 t st2, step ge st1 t st2 ->
  forall (WT: wt_state st1), wt_state st2.
Proof.
  induction 1; intros; inv WT;
  try (generalize (wt_instrs _ _ WT_FN pc _ H); intros WTI).
  (* Inop *)
  econstructor; eauto.
  (* Iop *)
  econstructor; eauto. eapply wt_exec_Iop; eauto.
  (* Iload *)
  econstructor; eauto. eapply wt_exec_Iload; eauto.
  (* Istore *)
  econstructor; eauto.
  (* Icall *)
  assert (wt_fundef fd).
    destruct ros; simpl in H0.
    pattern fd. apply Genv.find_funct_prop with fundef unit p (rs#r).
    exact wt_p. exact H0. 
    caseEq (Genv.find_symbol ge i); intros; rewrite H1 in H0.
    pattern fd. apply Genv.find_funct_ptr_prop with fundef unit p b.
    exact wt_p. exact H0.
    discriminate.
  econstructor; eauto.
  econstructor; eauto. inv WTI; auto. 
  inv WTI. rewrite <- H8. apply wt_regset_list. auto.
  (* Itailcall *)
  assert (wt_fundef fd).
    destruct ros; simpl in H0.
    pattern fd. apply Genv.find_funct_prop with fundef unit p (rs#r).
    exact wt_p. exact H0. 
    caseEq (Genv.find_symbol ge i); intros; rewrite H1 in H0.
    pattern fd. apply Genv.find_funct_ptr_prop with fundef unit p b.
    exact wt_p. exact H0.
    discriminate.
  econstructor; eauto.
  inv WTI. apply wt_stackframes_change_sig with (fn_sig f); auto.
  inv WTI. rewrite <- H7. apply wt_regset_list. auto.
  (* Ibuiltin *)
  econstructor; eauto. eapply wt_exec_Ibuiltin; eauto.
  (* Icond *)
  econstructor; eauto.
  (* Ijumptable *)
  econstructor; eauto.
  (* Ireturn *)
  econstructor; eauto. 
  inv WTI; simpl. auto. unfold proj_sig_res; rewrite H2. auto. 
  (* internal function *)
  simpl in *. inv H5.
  econstructor; eauto.
  inv H1. apply wt_init_regs; auto. rewrite wt_params0. auto. 
  (* external function *)
  econstructor; eauto. simpl.  
  eapply external_call_well_typed; eauto.
  (* return *)
  inv H1. econstructor; eauto.
  apply wt_regset_assign; auto. rewrite H10; auto. 
Qed.

Lemma wt_initial_state:
  forall S, initial_state p S -> wt_state S.
Proof.
  intros. inv H. constructor. constructor. rewrite H3; auto. 
  pattern f. apply Genv.find_funct_ptr_prop with fundef unit p b.
  exact wt_p. exact H2.
  rewrite H3. constructor.
Qed.

Lemma wt_instr_inv:
  forall s f sp pc rs m i,
  wt_state (State s f sp pc rs m) ->
  f.(fn_code)!pc = Some i ->
  exists env, wt_instr f env i /\ wt_regset env rs.
Proof.
  intros. inv H. exists env; split; auto. 
  inv WT_FN. eauto. 
Qed.

End SUBJECT_REDUCTION.