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[official-gcc.git] / gcc / trans-mem.c
blobb2adc3d03e9b31bba1ae25263797933d6756a17d
1 /* Passes for transactional memory support.
2 Copyright (C) 2008-2013 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
9 version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 for more details.
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 #include "config.h"
21 #include "system.h"
22 #include "coretypes.h"
23 #include "hash-table.h"
24 #include "tree.h"
25 #include "basic-block.h"
26 #include "tree-ssa-alias.h"
27 #include "internal-fn.h"
28 #include "tree-eh.h"
29 #include "gimple-expr.h"
30 #include "is-a.h"
31 #include "gimple.h"
32 #include "calls.h"
33 #include "function.h"
34 #include "rtl.h"
35 #include "emit-rtl.h"
36 #include "gimplify.h"
37 #include "gimple-iterator.h"
38 #include "gimplify-me.h"
39 #include "gimple-walk.h"
40 #include "gimple-ssa.h"
41 #include "cgraph.h"
42 #include "tree-cfg.h"
43 #include "stringpool.h"
44 #include "tree-ssanames.h"
45 #include "tree-into-ssa.h"
46 #include "tree-pass.h"
47 #include "tree-inline.h"
48 #include "diagnostic-core.h"
49 #include "demangle.h"
50 #include "output.h"
51 #include "trans-mem.h"
52 #include "params.h"
53 #include "target.h"
54 #include "langhooks.h"
55 #include "gimple-pretty-print.h"
56 #include "cfgloop.h"
57 #include "tree-ssa-address.h"
58 #include "predict.h"
61 #define A_RUNINSTRUMENTEDCODE 0x0001
62 #define A_RUNUNINSTRUMENTEDCODE 0x0002
63 #define A_SAVELIVEVARIABLES 0x0004
64 #define A_RESTORELIVEVARIABLES 0x0008
65 #define A_ABORTTRANSACTION 0x0010
67 #define AR_USERABORT 0x0001
68 #define AR_USERRETRY 0x0002
69 #define AR_TMCONFLICT 0x0004
70 #define AR_EXCEPTIONBLOCKABORT 0x0008
71 #define AR_OUTERABORT 0x0010
73 #define MODE_SERIALIRREVOCABLE 0x0000
76 /* The representation of a transaction changes several times during the
77 lowering process. In the beginning, in the front-end we have the
78 GENERIC tree TRANSACTION_EXPR. For example,
80 __transaction {
81 local++;
82 if (++global == 10)
83 __tm_abort;
86 During initial gimplification (gimplify.c) the TRANSACTION_EXPR node is
87 trivially replaced with a GIMPLE_TRANSACTION node.
89 During pass_lower_tm, we examine the body of transactions looking
90 for aborts. Transactions that do not contain an abort may be
91 merged into an outer transaction. We also add a TRY-FINALLY node
92 to arrange for the transaction to be committed on any exit.
94 [??? Think about how this arrangement affects throw-with-commit
95 and throw-with-abort operations. In this case we want the TRY to
96 handle gotos, but not to catch any exceptions because the transaction
97 will already be closed.]
99 GIMPLE_TRANSACTION [label=NULL] {
100 try {
101 local = local + 1;
102 t0 = global;
103 t1 = t0 + 1;
104 global = t1;
105 if (t1 == 10)
106 __builtin___tm_abort ();
107 } finally {
108 __builtin___tm_commit ();
112 During pass_lower_eh, we create EH regions for the transactions,
113 intermixed with the regular EH stuff. This gives us a nice persistent
114 mapping (all the way through rtl) from transactional memory operation
115 back to the transaction, which allows us to get the abnormal edges
116 correct to model transaction aborts and restarts:
118 GIMPLE_TRANSACTION [label=over]
119 local = local + 1;
120 t0 = global;
121 t1 = t0 + 1;
122 global = t1;
123 if (t1 == 10)
124 __builtin___tm_abort ();
125 __builtin___tm_commit ();
126 over:
128 This is the end of all_lowering_passes, and so is what is present
129 during the IPA passes, and through all of the optimization passes.
131 During pass_ipa_tm, we examine all GIMPLE_TRANSACTION blocks in all
132 functions and mark functions for cloning.
134 At the end of gimple optimization, before exiting SSA form,
135 pass_tm_edges replaces statements that perform transactional
136 memory operations with the appropriate TM builtins, and swap
137 out function calls with their transactional clones. At this
138 point we introduce the abnormal transaction restart edges and
139 complete lowering of the GIMPLE_TRANSACTION node.
141 x = __builtin___tm_start (MAY_ABORT);
142 eh_label:
143 if (x & abort_transaction)
144 goto over;
145 local = local + 1;
146 t0 = __builtin___tm_load (global);
147 t1 = t0 + 1;
148 __builtin___tm_store (&global, t1);
149 if (t1 == 10)
150 __builtin___tm_abort ();
151 __builtin___tm_commit ();
152 over:
155 static void *expand_regions (struct tm_region *,
156 void *(*callback)(struct tm_region *, void *),
157 void *, bool);
160 /* Return the attributes we want to examine for X, or NULL if it's not
161 something we examine. We look at function types, but allow pointers
162 to function types and function decls and peek through. */
164 static tree
165 get_attrs_for (const_tree x)
167 switch (TREE_CODE (x))
169 case FUNCTION_DECL:
170 return TYPE_ATTRIBUTES (TREE_TYPE (x));
171 break;
173 default:
174 if (TYPE_P (x))
175 return NULL;
176 x = TREE_TYPE (x);
177 if (TREE_CODE (x) != POINTER_TYPE)
178 return NULL;
179 /* FALLTHRU */
181 case POINTER_TYPE:
182 x = TREE_TYPE (x);
183 if (TREE_CODE (x) != FUNCTION_TYPE && TREE_CODE (x) != METHOD_TYPE)
184 return NULL;
185 /* FALLTHRU */
187 case FUNCTION_TYPE:
188 case METHOD_TYPE:
189 return TYPE_ATTRIBUTES (x);
193 /* Return true if X has been marked TM_PURE. */
195 bool
196 is_tm_pure (const_tree x)
198 unsigned flags;
200 switch (TREE_CODE (x))
202 case FUNCTION_DECL:
203 case FUNCTION_TYPE:
204 case METHOD_TYPE:
205 break;
207 default:
208 if (TYPE_P (x))
209 return false;
210 x = TREE_TYPE (x);
211 if (TREE_CODE (x) != POINTER_TYPE)
212 return false;
213 /* FALLTHRU */
215 case POINTER_TYPE:
216 x = TREE_TYPE (x);
217 if (TREE_CODE (x) != FUNCTION_TYPE && TREE_CODE (x) != METHOD_TYPE)
218 return false;
219 break;
222 flags = flags_from_decl_or_type (x);
223 return (flags & ECF_TM_PURE) != 0;
226 /* Return true if X has been marked TM_IRREVOCABLE. */
228 static bool
229 is_tm_irrevocable (tree x)
231 tree attrs = get_attrs_for (x);
233 if (attrs && lookup_attribute ("transaction_unsafe", attrs))
234 return true;
236 /* A call to the irrevocable builtin is by definition,
237 irrevocable. */
238 if (TREE_CODE (x) == ADDR_EXPR)
239 x = TREE_OPERAND (x, 0);
240 if (TREE_CODE (x) == FUNCTION_DECL
241 && DECL_BUILT_IN_CLASS (x) == BUILT_IN_NORMAL
242 && DECL_FUNCTION_CODE (x) == BUILT_IN_TM_IRREVOCABLE)
243 return true;
245 return false;
248 /* Return true if X has been marked TM_SAFE. */
250 bool
251 is_tm_safe (const_tree x)
253 if (flag_tm)
255 tree attrs = get_attrs_for (x);
256 if (attrs)
258 if (lookup_attribute ("transaction_safe", attrs))
259 return true;
260 if (lookup_attribute ("transaction_may_cancel_outer", attrs))
261 return true;
264 return false;
267 /* Return true if CALL is const, or tm_pure. */
269 static bool
270 is_tm_pure_call (gimple call)
272 tree fn = gimple_call_fn (call);
274 if (TREE_CODE (fn) == ADDR_EXPR)
276 fn = TREE_OPERAND (fn, 0);
277 gcc_assert (TREE_CODE (fn) == FUNCTION_DECL);
279 else
280 fn = TREE_TYPE (fn);
282 return is_tm_pure (fn);
285 /* Return true if X has been marked TM_CALLABLE. */
287 static bool
288 is_tm_callable (tree x)
290 tree attrs = get_attrs_for (x);
291 if (attrs)
293 if (lookup_attribute ("transaction_callable", attrs))
294 return true;
295 if (lookup_attribute ("transaction_safe", attrs))
296 return true;
297 if (lookup_attribute ("transaction_may_cancel_outer", attrs))
298 return true;
300 return false;
303 /* Return true if X has been marked TRANSACTION_MAY_CANCEL_OUTER. */
305 bool
306 is_tm_may_cancel_outer (tree x)
308 tree attrs = get_attrs_for (x);
309 if (attrs)
310 return lookup_attribute ("transaction_may_cancel_outer", attrs) != NULL;
311 return false;
314 /* Return true for built in functions that "end" a transaction. */
316 bool
317 is_tm_ending_fndecl (tree fndecl)
319 if (DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL)
320 switch (DECL_FUNCTION_CODE (fndecl))
322 case BUILT_IN_TM_COMMIT:
323 case BUILT_IN_TM_COMMIT_EH:
324 case BUILT_IN_TM_ABORT:
325 case BUILT_IN_TM_IRREVOCABLE:
326 return true;
327 default:
328 break;
331 return false;
334 /* Return true if STMT is a built in function call that "ends" a
335 transaction. */
337 bool
338 is_tm_ending (gimple stmt)
340 tree fndecl;
342 if (gimple_code (stmt) != GIMPLE_CALL)
343 return false;
345 fndecl = gimple_call_fndecl (stmt);
346 return (fndecl != NULL_TREE
347 && is_tm_ending_fndecl (fndecl));
350 /* Return true if STMT is a TM load. */
352 static bool
353 is_tm_load (gimple stmt)
355 tree fndecl;
357 if (gimple_code (stmt) != GIMPLE_CALL)
358 return false;
360 fndecl = gimple_call_fndecl (stmt);
361 return (fndecl && DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL
362 && BUILTIN_TM_LOAD_P (DECL_FUNCTION_CODE (fndecl)));
365 /* Same as above, but for simple TM loads, that is, not the
366 after-write, after-read, etc optimized variants. */
368 static bool
369 is_tm_simple_load (gimple stmt)
371 tree fndecl;
373 if (gimple_code (stmt) != GIMPLE_CALL)
374 return false;
376 fndecl = gimple_call_fndecl (stmt);
377 if (fndecl && DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL)
379 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
380 return (fcode == BUILT_IN_TM_LOAD_1
381 || fcode == BUILT_IN_TM_LOAD_2
382 || fcode == BUILT_IN_TM_LOAD_4
383 || fcode == BUILT_IN_TM_LOAD_8
384 || fcode == BUILT_IN_TM_LOAD_FLOAT
385 || fcode == BUILT_IN_TM_LOAD_DOUBLE
386 || fcode == BUILT_IN_TM_LOAD_LDOUBLE
387 || fcode == BUILT_IN_TM_LOAD_M64
388 || fcode == BUILT_IN_TM_LOAD_M128
389 || fcode == BUILT_IN_TM_LOAD_M256);
391 return false;
394 /* Return true if STMT is a TM store. */
396 static bool
397 is_tm_store (gimple stmt)
399 tree fndecl;
401 if (gimple_code (stmt) != GIMPLE_CALL)
402 return false;
404 fndecl = gimple_call_fndecl (stmt);
405 return (fndecl && DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL
406 && BUILTIN_TM_STORE_P (DECL_FUNCTION_CODE (fndecl)));
409 /* Same as above, but for simple TM stores, that is, not the
410 after-write, after-read, etc optimized variants. */
412 static bool
413 is_tm_simple_store (gimple stmt)
415 tree fndecl;
417 if (gimple_code (stmt) != GIMPLE_CALL)
418 return false;
420 fndecl = gimple_call_fndecl (stmt);
421 if (fndecl && DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL)
423 enum built_in_function fcode = DECL_FUNCTION_CODE (fndecl);
424 return (fcode == BUILT_IN_TM_STORE_1
425 || fcode == BUILT_IN_TM_STORE_2
426 || fcode == BUILT_IN_TM_STORE_4
427 || fcode == BUILT_IN_TM_STORE_8
428 || fcode == BUILT_IN_TM_STORE_FLOAT
429 || fcode == BUILT_IN_TM_STORE_DOUBLE
430 || fcode == BUILT_IN_TM_STORE_LDOUBLE
431 || fcode == BUILT_IN_TM_STORE_M64
432 || fcode == BUILT_IN_TM_STORE_M128
433 || fcode == BUILT_IN_TM_STORE_M256);
435 return false;
438 /* Return true if FNDECL is BUILT_IN_TM_ABORT. */
440 static bool
441 is_tm_abort (tree fndecl)
443 return (fndecl
444 && DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL
445 && DECL_FUNCTION_CODE (fndecl) == BUILT_IN_TM_ABORT);
448 /* Build a GENERIC tree for a user abort. This is called by front ends
449 while transforming the __tm_abort statement. */
451 tree
452 build_tm_abort_call (location_t loc, bool is_outer)
454 return build_call_expr_loc (loc, builtin_decl_explicit (BUILT_IN_TM_ABORT), 1,
455 build_int_cst (integer_type_node,
456 AR_USERABORT
457 | (is_outer ? AR_OUTERABORT : 0)));
460 /* Common gateing function for several of the TM passes. */
462 static bool
463 gate_tm (void)
465 return flag_tm;
468 /* Map for aribtrary function replacement under TM, as created
469 by the tm_wrap attribute. */
471 static GTY((if_marked ("tree_map_marked_p"), param_is (struct tree_map)))
472 htab_t tm_wrap_map;
474 void
475 record_tm_replacement (tree from, tree to)
477 struct tree_map **slot, *h;
479 /* Do not inline wrapper functions that will get replaced in the TM
480 pass.
482 Suppose you have foo() that will get replaced into tmfoo(). Make
483 sure the inliner doesn't try to outsmart us and inline foo()
484 before we get a chance to do the TM replacement. */
485 DECL_UNINLINABLE (from) = 1;
487 if (tm_wrap_map == NULL)
488 tm_wrap_map = htab_create_ggc (32, tree_map_hash, tree_map_eq, 0);
490 h = ggc_alloc_tree_map ();
491 h->hash = htab_hash_pointer (from);
492 h->base.from = from;
493 h->to = to;
495 slot = (struct tree_map **)
496 htab_find_slot_with_hash (tm_wrap_map, h, h->hash, INSERT);
497 *slot = h;
500 /* Return a TM-aware replacement function for DECL. */
502 static tree
503 find_tm_replacement_function (tree fndecl)
505 if (tm_wrap_map)
507 struct tree_map *h, in;
509 in.base.from = fndecl;
510 in.hash = htab_hash_pointer (fndecl);
511 h = (struct tree_map *) htab_find_with_hash (tm_wrap_map, &in, in.hash);
512 if (h)
513 return h->to;
516 /* ??? We may well want TM versions of most of the common <string.h>
517 functions. For now, we've already these two defined. */
518 /* Adjust expand_call_tm() attributes as necessary for the cases
519 handled here: */
520 if (DECL_BUILT_IN_CLASS (fndecl) == BUILT_IN_NORMAL)
521 switch (DECL_FUNCTION_CODE (fndecl))
523 case BUILT_IN_MEMCPY:
524 return builtin_decl_explicit (BUILT_IN_TM_MEMCPY);
525 case BUILT_IN_MEMMOVE:
526 return builtin_decl_explicit (BUILT_IN_TM_MEMMOVE);
527 case BUILT_IN_MEMSET:
528 return builtin_decl_explicit (BUILT_IN_TM_MEMSET);
529 default:
530 return NULL;
533 return NULL;
536 /* When appropriate, record TM replacement for memory allocation functions.
538 FROM is the FNDECL to wrap. */
539 void
540 tm_malloc_replacement (tree from)
542 const char *str;
543 tree to;
545 if (TREE_CODE (from) != FUNCTION_DECL)
546 return;
548 /* If we have a previous replacement, the user must be explicitly
549 wrapping malloc/calloc/free. They better know what they're
550 doing... */
551 if (find_tm_replacement_function (from))
552 return;
554 str = IDENTIFIER_POINTER (DECL_NAME (from));
556 if (!strcmp (str, "malloc"))
557 to = builtin_decl_explicit (BUILT_IN_TM_MALLOC);
558 else if (!strcmp (str, "calloc"))
559 to = builtin_decl_explicit (BUILT_IN_TM_CALLOC);
560 else if (!strcmp (str, "free"))
561 to = builtin_decl_explicit (BUILT_IN_TM_FREE);
562 else
563 return;
565 TREE_NOTHROW (to) = 0;
567 record_tm_replacement (from, to);
570 /* Diagnostics for tm_safe functions/regions. Called by the front end
571 once we've lowered the function to high-gimple. */
573 /* Subroutine of diagnose_tm_safe_errors, called through walk_gimple_seq.
574 Process exactly one statement. WI->INFO is set to non-null when in
575 the context of a tm_safe function, and null for a __transaction block. */
577 #define DIAG_TM_OUTER 1
578 #define DIAG_TM_SAFE 2
579 #define DIAG_TM_RELAXED 4
581 struct diagnose_tm
583 unsigned int summary_flags : 8;
584 unsigned int block_flags : 8;
585 unsigned int func_flags : 8;
586 unsigned int saw_volatile : 1;
587 gimple stmt;
590 /* Return true if T is a volatile variable of some kind. */
592 static bool
593 volatile_var_p (tree t)
595 return (SSA_VAR_P (t)
596 && TREE_THIS_VOLATILE (TREE_TYPE (t)));
599 /* Tree callback function for diagnose_tm pass. */
601 static tree
602 diagnose_tm_1_op (tree *tp, int *walk_subtrees ATTRIBUTE_UNUSED,
603 void *data)
605 struct walk_stmt_info *wi = (struct walk_stmt_info *) data;
606 struct diagnose_tm *d = (struct diagnose_tm *) wi->info;
608 if (volatile_var_p (*tp)
609 && d->block_flags & DIAG_TM_SAFE
610 && !d->saw_volatile)
612 d->saw_volatile = 1;
613 error_at (gimple_location (d->stmt),
614 "invalid volatile use of %qD inside transaction",
615 *tp);
618 return NULL_TREE;
621 static inline bool
622 is_tm_safe_or_pure (const_tree x)
624 return is_tm_safe (x) || is_tm_pure (x);
627 static tree
628 diagnose_tm_1 (gimple_stmt_iterator *gsi, bool *handled_ops_p,
629 struct walk_stmt_info *wi)
631 gimple stmt = gsi_stmt (*gsi);
632 struct diagnose_tm *d = (struct diagnose_tm *) wi->info;
634 /* Save stmt for use in leaf analysis. */
635 d->stmt = stmt;
637 switch (gimple_code (stmt))
639 case GIMPLE_CALL:
641 tree fn = gimple_call_fn (stmt);
643 if ((d->summary_flags & DIAG_TM_OUTER) == 0
644 && is_tm_may_cancel_outer (fn))
645 error_at (gimple_location (stmt),
646 "%<transaction_may_cancel_outer%> function call not within"
647 " outer transaction or %<transaction_may_cancel_outer%>");
649 if (d->summary_flags & DIAG_TM_SAFE)
651 bool is_safe, direct_call_p;
652 tree replacement;
654 if (TREE_CODE (fn) == ADDR_EXPR
655 && TREE_CODE (TREE_OPERAND (fn, 0)) == FUNCTION_DECL)
657 direct_call_p = true;
658 replacement = TREE_OPERAND (fn, 0);
659 replacement = find_tm_replacement_function (replacement);
660 if (replacement)
661 fn = replacement;
663 else
665 direct_call_p = false;
666 replacement = NULL_TREE;
669 if (is_tm_safe_or_pure (fn))
670 is_safe = true;
671 else if (is_tm_callable (fn) || is_tm_irrevocable (fn))
673 /* A function explicitly marked transaction_callable as
674 opposed to transaction_safe is being defined to be
675 unsafe as part of its ABI, regardless of its contents. */
676 is_safe = false;
678 else if (direct_call_p)
680 if (flags_from_decl_or_type (fn) & ECF_TM_BUILTIN)
681 is_safe = true;
682 else if (replacement)
684 /* ??? At present we've been considering replacements
685 merely transaction_callable, and therefore might
686 enter irrevocable. The tm_wrap attribute has not
687 yet made it into the new language spec. */
688 is_safe = false;
690 else
692 /* ??? Diagnostics for unmarked direct calls moved into
693 the IPA pass. Section 3.2 of the spec details how
694 functions not marked should be considered "implicitly
695 safe" based on having examined the function body. */
696 is_safe = true;
699 else
701 /* An unmarked indirect call. Consider it unsafe even
702 though optimization may yet figure out how to inline. */
703 is_safe = false;
706 if (!is_safe)
708 if (TREE_CODE (fn) == ADDR_EXPR)
709 fn = TREE_OPERAND (fn, 0);
710 if (d->block_flags & DIAG_TM_SAFE)
712 if (direct_call_p)
713 error_at (gimple_location (stmt),
714 "unsafe function call %qD within "
715 "atomic transaction", fn);
716 else
718 if (!DECL_P (fn) || DECL_NAME (fn))
719 error_at (gimple_location (stmt),
720 "unsafe function call %qE within "
721 "atomic transaction", fn);
722 else
723 error_at (gimple_location (stmt),
724 "unsafe indirect function call within "
725 "atomic transaction");
728 else
730 if (direct_call_p)
731 error_at (gimple_location (stmt),
732 "unsafe function call %qD within "
733 "%<transaction_safe%> function", fn);
734 else
736 if (!DECL_P (fn) || DECL_NAME (fn))
737 error_at (gimple_location (stmt),
738 "unsafe function call %qE within "
739 "%<transaction_safe%> function", fn);
740 else
741 error_at (gimple_location (stmt),
742 "unsafe indirect function call within "
743 "%<transaction_safe%> function");
749 break;
751 case GIMPLE_ASM:
752 /* ??? We ought to come up with a way to add attributes to
753 asm statements, and then add "transaction_safe" to it.
754 Either that or get the language spec to resurrect __tm_waiver. */
755 if (d->block_flags & DIAG_TM_SAFE)
756 error_at (gimple_location (stmt),
757 "asm not allowed in atomic transaction");
758 else if (d->func_flags & DIAG_TM_SAFE)
759 error_at (gimple_location (stmt),
760 "asm not allowed in %<transaction_safe%> function");
761 break;
763 case GIMPLE_TRANSACTION:
765 unsigned char inner_flags = DIAG_TM_SAFE;
767 if (gimple_transaction_subcode (stmt) & GTMA_IS_RELAXED)
769 if (d->block_flags & DIAG_TM_SAFE)
770 error_at (gimple_location (stmt),
771 "relaxed transaction in atomic transaction");
772 else if (d->func_flags & DIAG_TM_SAFE)
773 error_at (gimple_location (stmt),
774 "relaxed transaction in %<transaction_safe%> function");
775 inner_flags = DIAG_TM_RELAXED;
777 else if (gimple_transaction_subcode (stmt) & GTMA_IS_OUTER)
779 if (d->block_flags)
780 error_at (gimple_location (stmt),
781 "outer transaction in transaction");
782 else if (d->func_flags & DIAG_TM_OUTER)
783 error_at (gimple_location (stmt),
784 "outer transaction in "
785 "%<transaction_may_cancel_outer%> function");
786 else if (d->func_flags & DIAG_TM_SAFE)
787 error_at (gimple_location (stmt),
788 "outer transaction in %<transaction_safe%> function");
789 inner_flags |= DIAG_TM_OUTER;
792 *handled_ops_p = true;
793 if (gimple_transaction_body (stmt))
795 struct walk_stmt_info wi_inner;
796 struct diagnose_tm d_inner;
798 memset (&d_inner, 0, sizeof (d_inner));
799 d_inner.func_flags = d->func_flags;
800 d_inner.block_flags = d->block_flags | inner_flags;
801 d_inner.summary_flags = d_inner.func_flags | d_inner.block_flags;
803 memset (&wi_inner, 0, sizeof (wi_inner));
804 wi_inner.info = &d_inner;
806 walk_gimple_seq (gimple_transaction_body (stmt),
807 diagnose_tm_1, diagnose_tm_1_op, &wi_inner);
810 break;
812 default:
813 break;
816 return NULL_TREE;
819 static unsigned int
820 diagnose_tm_blocks (void)
822 struct walk_stmt_info wi;
823 struct diagnose_tm d;
825 memset (&d, 0, sizeof (d));
826 if (is_tm_may_cancel_outer (current_function_decl))
827 d.func_flags = DIAG_TM_OUTER | DIAG_TM_SAFE;
828 else if (is_tm_safe (current_function_decl))
829 d.func_flags = DIAG_TM_SAFE;
830 d.summary_flags = d.func_flags;
832 memset (&wi, 0, sizeof (wi));
833 wi.info = &d;
835 walk_gimple_seq (gimple_body (current_function_decl),
836 diagnose_tm_1, diagnose_tm_1_op, &wi);
838 return 0;
841 namespace {
843 const pass_data pass_data_diagnose_tm_blocks =
845 GIMPLE_PASS, /* type */
846 "*diagnose_tm_blocks", /* name */
847 OPTGROUP_NONE, /* optinfo_flags */
848 true, /* has_gate */
849 true, /* has_execute */
850 TV_TRANS_MEM, /* tv_id */
851 PROP_gimple_any, /* properties_required */
852 0, /* properties_provided */
853 0, /* properties_destroyed */
854 0, /* todo_flags_start */
855 0, /* todo_flags_finish */
858 class pass_diagnose_tm_blocks : public gimple_opt_pass
860 public:
861 pass_diagnose_tm_blocks (gcc::context *ctxt)
862 : gimple_opt_pass (pass_data_diagnose_tm_blocks, ctxt)
865 /* opt_pass methods: */
866 bool gate () { return gate_tm (); }
867 unsigned int execute () { return diagnose_tm_blocks (); }
869 }; // class pass_diagnose_tm_blocks
871 } // anon namespace
873 gimple_opt_pass *
874 make_pass_diagnose_tm_blocks (gcc::context *ctxt)
876 return new pass_diagnose_tm_blocks (ctxt);
879 /* Instead of instrumenting thread private memory, we save the
880 addresses in a log which we later use to save/restore the addresses
881 upon transaction start/restart.
883 The log is keyed by address, where each element contains individual
884 statements among different code paths that perform the store.
886 This log is later used to generate either plain save/restore of the
887 addresses upon transaction start/restart, or calls to the ITM_L*
888 logging functions.
890 So for something like:
892 struct large { int x[1000]; };
893 struct large lala = { 0 };
894 __transaction {
895 lala.x[i] = 123;
899 We can either save/restore:
901 lala = { 0 };
902 trxn = _ITM_startTransaction ();
903 if (trxn & a_saveLiveVariables)
904 tmp_lala1 = lala.x[i];
905 else if (a & a_restoreLiveVariables)
906 lala.x[i] = tmp_lala1;
908 or use the logging functions:
910 lala = { 0 };
911 trxn = _ITM_startTransaction ();
912 _ITM_LU4 (&lala.x[i]);
914 Obviously, if we use _ITM_L* to log, we prefer to call _ITM_L* as
915 far up the dominator tree to shadow all of the writes to a given
916 location (thus reducing the total number of logging calls), but not
917 so high as to be called on a path that does not perform a
918 write. */
920 /* One individual log entry. We may have multiple statements for the
921 same location if neither dominate each other (on different
922 execution paths). */
923 typedef struct tm_log_entry
925 /* Address to save. */
926 tree addr;
927 /* Entry block for the transaction this address occurs in. */
928 basic_block entry_block;
929 /* Dominating statements the store occurs in. */
930 gimple_vec stmts;
931 /* Initially, while we are building the log, we place a nonzero
932 value here to mean that this address *will* be saved with a
933 save/restore sequence. Later, when generating the save sequence
934 we place the SSA temp generated here. */
935 tree save_var;
936 } *tm_log_entry_t;
939 /* Log entry hashtable helpers. */
941 struct log_entry_hasher
943 typedef tm_log_entry value_type;
944 typedef tm_log_entry compare_type;
945 static inline hashval_t hash (const value_type *);
946 static inline bool equal (const value_type *, const compare_type *);
947 static inline void remove (value_type *);
950 /* Htab support. Return hash value for a `tm_log_entry'. */
951 inline hashval_t
952 log_entry_hasher::hash (const value_type *log)
954 return iterative_hash_expr (log->addr, 0);
957 /* Htab support. Return true if two log entries are the same. */
958 inline bool
959 log_entry_hasher::equal (const value_type *log1, const compare_type *log2)
961 /* FIXME:
963 rth: I suggest that we get rid of the component refs etc.
964 I.e. resolve the reference to base + offset.
966 We may need to actually finish a merge with mainline for this,
967 since we'd like to be presented with Richi's MEM_REF_EXPRs more
968 often than not. But in the meantime your tm_log_entry could save
969 the results of get_inner_reference.
971 See: g++.dg/tm/pr46653.C
974 /* Special case plain equality because operand_equal_p() below will
975 return FALSE if the addresses are equal but they have
976 side-effects (e.g. a volatile address). */
977 if (log1->addr == log2->addr)
978 return true;
980 return operand_equal_p (log1->addr, log2->addr, 0);
983 /* Htab support. Free one tm_log_entry. */
984 inline void
985 log_entry_hasher::remove (value_type *lp)
987 lp->stmts.release ();
988 free (lp);
992 /* The actual log. */
993 static hash_table <log_entry_hasher> tm_log;
995 /* Addresses to log with a save/restore sequence. These should be in
996 dominator order. */
997 static vec<tree> tm_log_save_addresses;
999 enum thread_memory_type
1001 mem_non_local = 0,
1002 mem_thread_local,
1003 mem_transaction_local,
1004 mem_max
1007 typedef struct tm_new_mem_map
1009 /* SSA_NAME being dereferenced. */
1010 tree val;
1011 enum thread_memory_type local_new_memory;
1012 } tm_new_mem_map_t;
1014 /* Hashtable helpers. */
1016 struct tm_mem_map_hasher : typed_free_remove <tm_new_mem_map_t>
1018 typedef tm_new_mem_map_t value_type;
1019 typedef tm_new_mem_map_t compare_type;
1020 static inline hashval_t hash (const value_type *);
1021 static inline bool equal (const value_type *, const compare_type *);
1024 inline hashval_t
1025 tm_mem_map_hasher::hash (const value_type *v)
1027 return (intptr_t)v->val >> 4;
1030 inline bool
1031 tm_mem_map_hasher::equal (const value_type *v, const compare_type *c)
1033 return v->val == c->val;
1036 /* Map for an SSA_NAME originally pointing to a non aliased new piece
1037 of memory (malloc, alloc, etc). */
1038 static hash_table <tm_mem_map_hasher> tm_new_mem_hash;
1040 /* Initialize logging data structures. */
1041 static void
1042 tm_log_init (void)
1044 tm_log.create (10);
1045 tm_new_mem_hash.create (5);
1046 tm_log_save_addresses.create (5);
1049 /* Free logging data structures. */
1050 static void
1051 tm_log_delete (void)
1053 tm_log.dispose ();
1054 tm_new_mem_hash.dispose ();
1055 tm_log_save_addresses.release ();
1058 /* Return true if MEM is a transaction invariant memory for the TM
1059 region starting at REGION_ENTRY_BLOCK. */
1060 static bool
1061 transaction_invariant_address_p (const_tree mem, basic_block region_entry_block)
1063 if ((TREE_CODE (mem) == INDIRECT_REF || TREE_CODE (mem) == MEM_REF)
1064 && TREE_CODE (TREE_OPERAND (mem, 0)) == SSA_NAME)
1066 basic_block def_bb;
1068 def_bb = gimple_bb (SSA_NAME_DEF_STMT (TREE_OPERAND (mem, 0)));
1069 return def_bb != region_entry_block
1070 && dominated_by_p (CDI_DOMINATORS, region_entry_block, def_bb);
1073 mem = strip_invariant_refs (mem);
1074 return mem && (CONSTANT_CLASS_P (mem) || decl_address_invariant_p (mem));
1077 /* Given an address ADDR in STMT, find it in the memory log or add it,
1078 making sure to keep only the addresses highest in the dominator
1079 tree.
1081 ENTRY_BLOCK is the entry_block for the transaction.
1083 If we find the address in the log, make sure it's either the same
1084 address, or an equivalent one that dominates ADDR.
1086 If we find the address, but neither ADDR dominates the found
1087 address, nor the found one dominates ADDR, we're on different
1088 execution paths. Add it.
1090 If known, ENTRY_BLOCK is the entry block for the region, otherwise
1091 NULL. */
1092 static void
1093 tm_log_add (basic_block entry_block, tree addr, gimple stmt)
1095 tm_log_entry **slot;
1096 struct tm_log_entry l, *lp;
1098 l.addr = addr;
1099 slot = tm_log.find_slot (&l, INSERT);
1100 if (!*slot)
1102 tree type = TREE_TYPE (addr);
1104 lp = XNEW (struct tm_log_entry);
1105 lp->addr = addr;
1106 *slot = lp;
1108 /* Small invariant addresses can be handled as save/restores. */
1109 if (entry_block
1110 && transaction_invariant_address_p (lp->addr, entry_block)
1111 && TYPE_SIZE_UNIT (type) != NULL
1112 && tree_fits_uhwi_p (TYPE_SIZE_UNIT (type))
1113 && ((HOST_WIDE_INT) tree_to_uhwi (TYPE_SIZE_UNIT (type))
1114 < PARAM_VALUE (PARAM_TM_MAX_AGGREGATE_SIZE))
1115 /* We must be able to copy this type normally. I.e., no
1116 special constructors and the like. */
1117 && !TREE_ADDRESSABLE (type))
1119 lp->save_var = create_tmp_reg (TREE_TYPE (lp->addr), "tm_save");
1120 lp->stmts.create (0);
1121 lp->entry_block = entry_block;
1122 /* Save addresses separately in dominator order so we don't
1123 get confused by overlapping addresses in the save/restore
1124 sequence. */
1125 tm_log_save_addresses.safe_push (lp->addr);
1127 else
1129 /* Use the logging functions. */
1130 lp->stmts.create (5);
1131 lp->stmts.quick_push (stmt);
1132 lp->save_var = NULL;
1135 else
1137 size_t i;
1138 gimple oldstmt;
1140 lp = *slot;
1142 /* If we're generating a save/restore sequence, we don't care
1143 about statements. */
1144 if (lp->save_var)
1145 return;
1147 for (i = 0; lp->stmts.iterate (i, &oldstmt); ++i)
1149 if (stmt == oldstmt)
1150 return;
1151 /* We already have a store to the same address, higher up the
1152 dominator tree. Nothing to do. */
1153 if (dominated_by_p (CDI_DOMINATORS,
1154 gimple_bb (stmt), gimple_bb (oldstmt)))
1155 return;
1156 /* We should be processing blocks in dominator tree order. */
1157 gcc_assert (!dominated_by_p (CDI_DOMINATORS,
1158 gimple_bb (oldstmt), gimple_bb (stmt)));
1160 /* Store is on a different code path. */
1161 lp->stmts.safe_push (stmt);
1165 /* Gimplify the address of a TARGET_MEM_REF. Return the SSA_NAME
1166 result, insert the new statements before GSI. */
1168 static tree
1169 gimplify_addr (gimple_stmt_iterator *gsi, tree x)
1171 if (TREE_CODE (x) == TARGET_MEM_REF)
1172 x = tree_mem_ref_addr (build_pointer_type (TREE_TYPE (x)), x);
1173 else
1174 x = build_fold_addr_expr (x);
1175 return force_gimple_operand_gsi (gsi, x, true, NULL, true, GSI_SAME_STMT);
1178 /* Instrument one address with the logging functions.
1179 ADDR is the address to save.
1180 STMT is the statement before which to place it. */
1181 static void
1182 tm_log_emit_stmt (tree addr, gimple stmt)
1184 tree type = TREE_TYPE (addr);
1185 tree size = TYPE_SIZE_UNIT (type);
1186 gimple_stmt_iterator gsi = gsi_for_stmt (stmt);
1187 gimple log;
1188 enum built_in_function code = BUILT_IN_TM_LOG;
1190 if (type == float_type_node)
1191 code = BUILT_IN_TM_LOG_FLOAT;
1192 else if (type == double_type_node)
1193 code = BUILT_IN_TM_LOG_DOUBLE;
1194 else if (type == long_double_type_node)
1195 code = BUILT_IN_TM_LOG_LDOUBLE;
1196 else if (tree_fits_uhwi_p (size))
1198 unsigned int n = tree_to_uhwi (size);
1199 switch (n)
1201 case 1:
1202 code = BUILT_IN_TM_LOG_1;
1203 break;
1204 case 2:
1205 code = BUILT_IN_TM_LOG_2;
1206 break;
1207 case 4:
1208 code = BUILT_IN_TM_LOG_4;
1209 break;
1210 case 8:
1211 code = BUILT_IN_TM_LOG_8;
1212 break;
1213 default:
1214 code = BUILT_IN_TM_LOG;
1215 if (TREE_CODE (type) == VECTOR_TYPE)
1217 if (n == 8 && builtin_decl_explicit (BUILT_IN_TM_LOG_M64))
1218 code = BUILT_IN_TM_LOG_M64;
1219 else if (n == 16 && builtin_decl_explicit (BUILT_IN_TM_LOG_M128))
1220 code = BUILT_IN_TM_LOG_M128;
1221 else if (n == 32 && builtin_decl_explicit (BUILT_IN_TM_LOG_M256))
1222 code = BUILT_IN_TM_LOG_M256;
1224 break;
1228 addr = gimplify_addr (&gsi, addr);
1229 if (code == BUILT_IN_TM_LOG)
1230 log = gimple_build_call (builtin_decl_explicit (code), 2, addr, size);
1231 else
1232 log = gimple_build_call (builtin_decl_explicit (code), 1, addr);
1233 gsi_insert_before (&gsi, log, GSI_SAME_STMT);
1236 /* Go through the log and instrument address that must be instrumented
1237 with the logging functions. Leave the save/restore addresses for
1238 later. */
1239 static void
1240 tm_log_emit (void)
1242 hash_table <log_entry_hasher>::iterator hi;
1243 struct tm_log_entry *lp;
1245 FOR_EACH_HASH_TABLE_ELEMENT (tm_log, lp, tm_log_entry_t, hi)
1247 size_t i;
1248 gimple stmt;
1250 if (dump_file)
1252 fprintf (dump_file, "TM thread private mem logging: ");
1253 print_generic_expr (dump_file, lp->addr, 0);
1254 fprintf (dump_file, "\n");
1257 if (lp->save_var)
1259 if (dump_file)
1260 fprintf (dump_file, "DUMPING to variable\n");
1261 continue;
1263 else
1265 if (dump_file)
1266 fprintf (dump_file, "DUMPING with logging functions\n");
1267 for (i = 0; lp->stmts.iterate (i, &stmt); ++i)
1268 tm_log_emit_stmt (lp->addr, stmt);
1273 /* Emit the save sequence for the corresponding addresses in the log.
1274 ENTRY_BLOCK is the entry block for the transaction.
1275 BB is the basic block to insert the code in. */
1276 static void
1277 tm_log_emit_saves (basic_block entry_block, basic_block bb)
1279 size_t i;
1280 gimple_stmt_iterator gsi = gsi_last_bb (bb);
1281 gimple stmt;
1282 struct tm_log_entry l, *lp;
1284 for (i = 0; i < tm_log_save_addresses.length (); ++i)
1286 l.addr = tm_log_save_addresses[i];
1287 lp = *(tm_log.find_slot (&l, NO_INSERT));
1288 gcc_assert (lp->save_var != NULL);
1290 /* We only care about variables in the current transaction. */
1291 if (lp->entry_block != entry_block)
1292 continue;
1294 stmt = gimple_build_assign (lp->save_var, unshare_expr (lp->addr));
1296 /* Make sure we can create an SSA_NAME for this type. For
1297 instance, aggregates aren't allowed, in which case the system
1298 will create a VOP for us and everything will just work. */
1299 if (is_gimple_reg_type (TREE_TYPE (lp->save_var)))
1301 lp->save_var = make_ssa_name (lp->save_var, stmt);
1302 gimple_assign_set_lhs (stmt, lp->save_var);
1305 gsi_insert_before (&gsi, stmt, GSI_SAME_STMT);
1309 /* Emit the restore sequence for the corresponding addresses in the log.
1310 ENTRY_BLOCK is the entry block for the transaction.
1311 BB is the basic block to insert the code in. */
1312 static void
1313 tm_log_emit_restores (basic_block entry_block, basic_block bb)
1315 int i;
1316 struct tm_log_entry l, *lp;
1317 gimple_stmt_iterator gsi;
1318 gimple stmt;
1320 for (i = tm_log_save_addresses.length () - 1; i >= 0; i--)
1322 l.addr = tm_log_save_addresses[i];
1323 lp = *(tm_log.find_slot (&l, NO_INSERT));
1324 gcc_assert (lp->save_var != NULL);
1326 /* We only care about variables in the current transaction. */
1327 if (lp->entry_block != entry_block)
1328 continue;
1330 /* Restores are in LIFO order from the saves in case we have
1331 overlaps. */
1332 gsi = gsi_start_bb (bb);
1334 stmt = gimple_build_assign (unshare_expr (lp->addr), lp->save_var);
1335 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING);
1340 static tree lower_sequence_tm (gimple_stmt_iterator *, bool *,
1341 struct walk_stmt_info *);
1342 static tree lower_sequence_no_tm (gimple_stmt_iterator *, bool *,
1343 struct walk_stmt_info *);
1345 /* Evaluate an address X being dereferenced and determine if it
1346 originally points to a non aliased new chunk of memory (malloc,
1347 alloca, etc).
1349 Return MEM_THREAD_LOCAL if it points to a thread-local address.
1350 Return MEM_TRANSACTION_LOCAL if it points to a transaction-local address.
1351 Return MEM_NON_LOCAL otherwise.
1353 ENTRY_BLOCK is the entry block to the transaction containing the
1354 dereference of X. */
1355 static enum thread_memory_type
1356 thread_private_new_memory (basic_block entry_block, tree x)
1358 gimple stmt = NULL;
1359 enum tree_code code;
1360 tm_new_mem_map_t **slot;
1361 tm_new_mem_map_t elt, *elt_p;
1362 tree val = x;
1363 enum thread_memory_type retval = mem_transaction_local;
1365 if (!entry_block
1366 || TREE_CODE (x) != SSA_NAME
1367 /* Possible uninitialized use, or a function argument. In
1368 either case, we don't care. */
1369 || SSA_NAME_IS_DEFAULT_DEF (x))
1370 return mem_non_local;
1372 /* Look in cache first. */
1373 elt.val = x;
1374 slot = tm_new_mem_hash.find_slot (&elt, INSERT);
1375 elt_p = *slot;
1376 if (elt_p)
1377 return elt_p->local_new_memory;
1379 /* Optimistically assume the memory is transaction local during
1380 processing. This catches recursion into this variable. */
1381 *slot = elt_p = XNEW (tm_new_mem_map_t);
1382 elt_p->val = val;
1383 elt_p->local_new_memory = mem_transaction_local;
1385 /* Search DEF chain to find the original definition of this address. */
1388 if (ptr_deref_may_alias_global_p (x))
1390 /* Address escapes. This is not thread-private. */
1391 retval = mem_non_local;
1392 goto new_memory_ret;
1395 stmt = SSA_NAME_DEF_STMT (x);
1397 /* If the malloc call is outside the transaction, this is
1398 thread-local. */
1399 if (retval != mem_thread_local
1400 && !dominated_by_p (CDI_DOMINATORS, gimple_bb (stmt), entry_block))
1401 retval = mem_thread_local;
1403 if (is_gimple_assign (stmt))
1405 code = gimple_assign_rhs_code (stmt);
1406 /* x = foo ==> foo */
1407 if (code == SSA_NAME)
1408 x = gimple_assign_rhs1 (stmt);
1409 /* x = foo + n ==> foo */
1410 else if (code == POINTER_PLUS_EXPR)
1411 x = gimple_assign_rhs1 (stmt);
1412 /* x = (cast*) foo ==> foo */
1413 else if (code == VIEW_CONVERT_EXPR || code == NOP_EXPR)
1414 x = gimple_assign_rhs1 (stmt);
1415 /* x = c ? op1 : op2 == > op1 or op2 just like a PHI */
1416 else if (code == COND_EXPR)
1418 tree op1 = gimple_assign_rhs2 (stmt);
1419 tree op2 = gimple_assign_rhs3 (stmt);
1420 enum thread_memory_type mem;
1421 retval = thread_private_new_memory (entry_block, op1);
1422 if (retval == mem_non_local)
1423 goto new_memory_ret;
1424 mem = thread_private_new_memory (entry_block, op2);
1425 retval = MIN (retval, mem);
1426 goto new_memory_ret;
1428 else
1430 retval = mem_non_local;
1431 goto new_memory_ret;
1434 else
1436 if (gimple_code (stmt) == GIMPLE_PHI)
1438 unsigned int i;
1439 enum thread_memory_type mem;
1440 tree phi_result = gimple_phi_result (stmt);
1442 /* If any of the ancestors are non-local, we are sure to
1443 be non-local. Otherwise we can avoid doing anything
1444 and inherit what has already been generated. */
1445 retval = mem_max;
1446 for (i = 0; i < gimple_phi_num_args (stmt); ++i)
1448 tree op = PHI_ARG_DEF (stmt, i);
1450 /* Exclude self-assignment. */
1451 if (phi_result == op)
1452 continue;
1454 mem = thread_private_new_memory (entry_block, op);
1455 if (mem == mem_non_local)
1457 retval = mem;
1458 goto new_memory_ret;
1460 retval = MIN (retval, mem);
1462 goto new_memory_ret;
1464 break;
1467 while (TREE_CODE (x) == SSA_NAME);
1469 if (stmt && is_gimple_call (stmt) && gimple_call_flags (stmt) & ECF_MALLOC)
1470 /* Thread-local or transaction-local. */
1472 else
1473 retval = mem_non_local;
1475 new_memory_ret:
1476 elt_p->local_new_memory = retval;
1477 return retval;
1480 /* Determine whether X has to be instrumented using a read
1481 or write barrier.
1483 ENTRY_BLOCK is the entry block for the region where stmt resides
1484 in. NULL if unknown.
1486 STMT is the statement in which X occurs in. It is used for thread
1487 private memory instrumentation. If no TPM instrumentation is
1488 desired, STMT should be null. */
1489 static bool
1490 requires_barrier (basic_block entry_block, tree x, gimple stmt)
1492 tree orig = x;
1493 while (handled_component_p (x))
1494 x = TREE_OPERAND (x, 0);
1496 switch (TREE_CODE (x))
1498 case INDIRECT_REF:
1499 case MEM_REF:
1501 enum thread_memory_type ret;
1503 ret = thread_private_new_memory (entry_block, TREE_OPERAND (x, 0));
1504 if (ret == mem_non_local)
1505 return true;
1506 if (stmt && ret == mem_thread_local)
1507 /* ?? Should we pass `orig', or the INDIRECT_REF X. ?? */
1508 tm_log_add (entry_block, orig, stmt);
1510 /* Transaction-locals require nothing at all. For malloc, a
1511 transaction restart frees the memory and we reallocate.
1512 For alloca, the stack pointer gets reset by the retry and
1513 we reallocate. */
1514 return false;
1517 case TARGET_MEM_REF:
1518 if (TREE_CODE (TMR_BASE (x)) != ADDR_EXPR)
1519 return true;
1520 x = TREE_OPERAND (TMR_BASE (x), 0);
1521 if (TREE_CODE (x) == PARM_DECL)
1522 return false;
1523 gcc_assert (TREE_CODE (x) == VAR_DECL);
1524 /* FALLTHRU */
1526 case PARM_DECL:
1527 case RESULT_DECL:
1528 case VAR_DECL:
1529 if (DECL_BY_REFERENCE (x))
1531 /* ??? This value is a pointer, but aggregate_value_p has been
1532 jigged to return true which confuses needs_to_live_in_memory.
1533 This ought to be cleaned up generically.
1535 FIXME: Verify this still happens after the next mainline
1536 merge. Testcase ie g++.dg/tm/pr47554.C.
1538 return false;
1541 if (is_global_var (x))
1542 return !TREE_READONLY (x);
1543 if (/* FIXME: This condition should actually go below in the
1544 tm_log_add() call, however is_call_clobbered() depends on
1545 aliasing info which is not available during
1546 gimplification. Since requires_barrier() gets called
1547 during lower_sequence_tm/gimplification, leave the call
1548 to needs_to_live_in_memory until we eliminate
1549 lower_sequence_tm altogether. */
1550 needs_to_live_in_memory (x))
1551 return true;
1552 else
1554 /* For local memory that doesn't escape (aka thread private
1555 memory), we can either save the value at the beginning of
1556 the transaction and restore on restart, or call a tm
1557 function to dynamically save and restore on restart
1558 (ITM_L*). */
1559 if (stmt)
1560 tm_log_add (entry_block, orig, stmt);
1561 return false;
1564 default:
1565 return false;
1569 /* Mark the GIMPLE_ASSIGN statement as appropriate for being inside
1570 a transaction region. */
1572 static void
1573 examine_assign_tm (unsigned *state, gimple_stmt_iterator *gsi)
1575 gimple stmt = gsi_stmt (*gsi);
1577 if (requires_barrier (/*entry_block=*/NULL, gimple_assign_rhs1 (stmt), NULL))
1578 *state |= GTMA_HAVE_LOAD;
1579 if (requires_barrier (/*entry_block=*/NULL, gimple_assign_lhs (stmt), NULL))
1580 *state |= GTMA_HAVE_STORE;
1583 /* Mark a GIMPLE_CALL as appropriate for being inside a transaction. */
1585 static void
1586 examine_call_tm (unsigned *state, gimple_stmt_iterator *gsi)
1588 gimple stmt = gsi_stmt (*gsi);
1589 tree fn;
1591 if (is_tm_pure_call (stmt))
1592 return;
1594 /* Check if this call is a transaction abort. */
1595 fn = gimple_call_fndecl (stmt);
1596 if (is_tm_abort (fn))
1597 *state |= GTMA_HAVE_ABORT;
1599 /* Note that something may happen. */
1600 *state |= GTMA_HAVE_LOAD | GTMA_HAVE_STORE;
1603 /* Lower a GIMPLE_TRANSACTION statement. */
1605 static void
1606 lower_transaction (gimple_stmt_iterator *gsi, struct walk_stmt_info *wi)
1608 gimple g, stmt = gsi_stmt (*gsi);
1609 unsigned int *outer_state = (unsigned int *) wi->info;
1610 unsigned int this_state = 0;
1611 struct walk_stmt_info this_wi;
1613 /* First, lower the body. The scanning that we do inside gives
1614 us some idea of what we're dealing with. */
1615 memset (&this_wi, 0, sizeof (this_wi));
1616 this_wi.info = (void *) &this_state;
1617 walk_gimple_seq_mod (gimple_transaction_body_ptr (stmt),
1618 lower_sequence_tm, NULL, &this_wi);
1620 /* If there was absolutely nothing transaction related inside the
1621 transaction, we may elide it. Likewise if this is a nested
1622 transaction and does not contain an abort. */
1623 if (this_state == 0
1624 || (!(this_state & GTMA_HAVE_ABORT) && outer_state != NULL))
1626 if (outer_state)
1627 *outer_state |= this_state;
1629 gsi_insert_seq_before (gsi, gimple_transaction_body (stmt),
1630 GSI_SAME_STMT);
1631 gimple_transaction_set_body (stmt, NULL);
1633 gsi_remove (gsi, true);
1634 wi->removed_stmt = true;
1635 return;
1638 /* Wrap the body of the transaction in a try-finally node so that
1639 the commit call is always properly called. */
1640 g = gimple_build_call (builtin_decl_explicit (BUILT_IN_TM_COMMIT), 0);
1641 if (flag_exceptions)
1643 tree ptr;
1644 gimple_seq n_seq, e_seq;
1646 n_seq = gimple_seq_alloc_with_stmt (g);
1647 e_seq = NULL;
1649 g = gimple_build_call (builtin_decl_explicit (BUILT_IN_EH_POINTER),
1650 1, integer_zero_node);
1651 ptr = create_tmp_var (ptr_type_node, NULL);
1652 gimple_call_set_lhs (g, ptr);
1653 gimple_seq_add_stmt (&e_seq, g);
1655 g = gimple_build_call (builtin_decl_explicit (BUILT_IN_TM_COMMIT_EH),
1656 1, ptr);
1657 gimple_seq_add_stmt (&e_seq, g);
1659 g = gimple_build_eh_else (n_seq, e_seq);
1662 g = gimple_build_try (gimple_transaction_body (stmt),
1663 gimple_seq_alloc_with_stmt (g), GIMPLE_TRY_FINALLY);
1664 gsi_insert_after (gsi, g, GSI_CONTINUE_LINKING);
1666 gimple_transaction_set_body (stmt, NULL);
1668 /* If the transaction calls abort or if this is an outer transaction,
1669 add an "over" label afterwards. */
1670 if ((this_state & (GTMA_HAVE_ABORT))
1671 || (gimple_transaction_subcode (stmt) & GTMA_IS_OUTER))
1673 tree label = create_artificial_label (UNKNOWN_LOCATION);
1674 gimple_transaction_set_label (stmt, label);
1675 gsi_insert_after (gsi, gimple_build_label (label), GSI_CONTINUE_LINKING);
1678 /* Record the set of operations found for use later. */
1679 this_state |= gimple_transaction_subcode (stmt) & GTMA_DECLARATION_MASK;
1680 gimple_transaction_set_subcode (stmt, this_state);
1683 /* Iterate through the statements in the sequence, lowering them all
1684 as appropriate for being in a transaction. */
1686 static tree
1687 lower_sequence_tm (gimple_stmt_iterator *gsi, bool *handled_ops_p,
1688 struct walk_stmt_info *wi)
1690 unsigned int *state = (unsigned int *) wi->info;
1691 gimple stmt = gsi_stmt (*gsi);
1693 *handled_ops_p = true;
1694 switch (gimple_code (stmt))
1696 case GIMPLE_ASSIGN:
1697 /* Only memory reads/writes need to be instrumented. */
1698 if (gimple_assign_single_p (stmt))
1699 examine_assign_tm (state, gsi);
1700 break;
1702 case GIMPLE_CALL:
1703 examine_call_tm (state, gsi);
1704 break;
1706 case GIMPLE_ASM:
1707 *state |= GTMA_MAY_ENTER_IRREVOCABLE;
1708 break;
1710 case GIMPLE_TRANSACTION:
1711 lower_transaction (gsi, wi);
1712 break;
1714 default:
1715 *handled_ops_p = !gimple_has_substatements (stmt);
1716 break;
1719 return NULL_TREE;
1722 /* Iterate through the statements in the sequence, lowering them all
1723 as appropriate for being outside of a transaction. */
1725 static tree
1726 lower_sequence_no_tm (gimple_stmt_iterator *gsi, bool *handled_ops_p,
1727 struct walk_stmt_info * wi)
1729 gimple stmt = gsi_stmt (*gsi);
1731 if (gimple_code (stmt) == GIMPLE_TRANSACTION)
1733 *handled_ops_p = true;
1734 lower_transaction (gsi, wi);
1736 else
1737 *handled_ops_p = !gimple_has_substatements (stmt);
1739 return NULL_TREE;
1742 /* Main entry point for flattening GIMPLE_TRANSACTION constructs. After
1743 this, GIMPLE_TRANSACTION nodes still exist, but the nested body has
1744 been moved out, and all the data required for constructing a proper
1745 CFG has been recorded. */
1747 static unsigned int
1748 execute_lower_tm (void)
1750 struct walk_stmt_info wi;
1751 gimple_seq body;
1753 /* Transactional clones aren't created until a later pass. */
1754 gcc_assert (!decl_is_tm_clone (current_function_decl));
1756 body = gimple_body (current_function_decl);
1757 memset (&wi, 0, sizeof (wi));
1758 walk_gimple_seq_mod (&body, lower_sequence_no_tm, NULL, &wi);
1759 gimple_set_body (current_function_decl, body);
1761 return 0;
1764 namespace {
1766 const pass_data pass_data_lower_tm =
1768 GIMPLE_PASS, /* type */
1769 "tmlower", /* name */
1770 OPTGROUP_NONE, /* optinfo_flags */
1771 true, /* has_gate */
1772 true, /* has_execute */
1773 TV_TRANS_MEM, /* tv_id */
1774 PROP_gimple_lcf, /* properties_required */
1775 0, /* properties_provided */
1776 0, /* properties_destroyed */
1777 0, /* todo_flags_start */
1778 0, /* todo_flags_finish */
1781 class pass_lower_tm : public gimple_opt_pass
1783 public:
1784 pass_lower_tm (gcc::context *ctxt)
1785 : gimple_opt_pass (pass_data_lower_tm, ctxt)
1788 /* opt_pass methods: */
1789 bool gate () { return gate_tm (); }
1790 unsigned int execute () { return execute_lower_tm (); }
1792 }; // class pass_lower_tm
1794 } // anon namespace
1796 gimple_opt_pass *
1797 make_pass_lower_tm (gcc::context *ctxt)
1799 return new pass_lower_tm (ctxt);
1802 /* Collect region information for each transaction. */
1804 struct tm_region
1806 /* Link to the next unnested transaction. */
1807 struct tm_region *next;
1809 /* Link to the next inner transaction. */
1810 struct tm_region *inner;
1812 /* Link to the next outer transaction. */
1813 struct tm_region *outer;
1815 /* The GIMPLE_TRANSACTION statement beginning this transaction.
1816 After TM_MARK, this gets replaced by a call to
1817 BUILT_IN_TM_START. */
1818 gimple transaction_stmt;
1820 /* After TM_MARK expands the GIMPLE_TRANSACTION into a call to
1821 BUILT_IN_TM_START, this field is true if the transaction is an
1822 outer transaction. */
1823 bool original_transaction_was_outer;
1825 /* Return value from BUILT_IN_TM_START. */
1826 tree tm_state;
1828 /* The entry block to this region. This will always be the first
1829 block of the body of the transaction. */
1830 basic_block entry_block;
1832 /* The first block after an expanded call to _ITM_beginTransaction. */
1833 basic_block restart_block;
1835 /* The set of all blocks that end the region; NULL if only EXIT_BLOCK.
1836 These blocks are still a part of the region (i.e., the border is
1837 inclusive). Note that this set is only complete for paths in the CFG
1838 starting at ENTRY_BLOCK, and that there is no exit block recorded for
1839 the edge to the "over" label. */
1840 bitmap exit_blocks;
1842 /* The set of all blocks that have an TM_IRREVOCABLE call. */
1843 bitmap irr_blocks;
1846 typedef struct tm_region *tm_region_p;
1848 /* True if there are pending edge statements to be committed for the
1849 current function being scanned in the tmmark pass. */
1850 bool pending_edge_inserts_p;
1852 static struct tm_region *all_tm_regions;
1853 static bitmap_obstack tm_obstack;
1856 /* A subroutine of tm_region_init. Record the existence of the
1857 GIMPLE_TRANSACTION statement in a tree of tm_region elements. */
1859 static struct tm_region *
1860 tm_region_init_0 (struct tm_region *outer, basic_block bb, gimple stmt)
1862 struct tm_region *region;
1864 region = (struct tm_region *)
1865 obstack_alloc (&tm_obstack.obstack, sizeof (struct tm_region));
1867 if (outer)
1869 region->next = outer->inner;
1870 outer->inner = region;
1872 else
1874 region->next = all_tm_regions;
1875 all_tm_regions = region;
1877 region->inner = NULL;
1878 region->outer = outer;
1880 region->transaction_stmt = stmt;
1881 region->original_transaction_was_outer = false;
1882 region->tm_state = NULL;
1884 /* There are either one or two edges out of the block containing
1885 the GIMPLE_TRANSACTION, one to the actual region and one to the
1886 "over" label if the region contains an abort. The former will
1887 always be the one marked FALLTHRU. */
1888 region->entry_block = FALLTHRU_EDGE (bb)->dest;
1890 region->exit_blocks = BITMAP_ALLOC (&tm_obstack);
1891 region->irr_blocks = BITMAP_ALLOC (&tm_obstack);
1893 return region;
1896 /* A subroutine of tm_region_init. Record all the exit and
1897 irrevocable blocks in BB into the region's exit_blocks and
1898 irr_blocks bitmaps. Returns the new region being scanned. */
1900 static struct tm_region *
1901 tm_region_init_1 (struct tm_region *region, basic_block bb)
1903 gimple_stmt_iterator gsi;
1904 gimple g;
1906 if (!region
1907 || (!region->irr_blocks && !region->exit_blocks))
1908 return region;
1910 /* Check to see if this is the end of a region by seeing if it
1911 contains a call to __builtin_tm_commit{,_eh}. Note that the
1912 outermost region for DECL_IS_TM_CLONE need not collect this. */
1913 for (gsi = gsi_last_bb (bb); !gsi_end_p (gsi); gsi_prev (&gsi))
1915 g = gsi_stmt (gsi);
1916 if (gimple_code (g) == GIMPLE_CALL)
1918 tree fn = gimple_call_fndecl (g);
1919 if (fn && DECL_BUILT_IN_CLASS (fn) == BUILT_IN_NORMAL)
1921 if ((DECL_FUNCTION_CODE (fn) == BUILT_IN_TM_COMMIT
1922 || DECL_FUNCTION_CODE (fn) == BUILT_IN_TM_COMMIT_EH)
1923 && region->exit_blocks)
1925 bitmap_set_bit (region->exit_blocks, bb->index);
1926 region = region->outer;
1927 break;
1929 if (DECL_FUNCTION_CODE (fn) == BUILT_IN_TM_IRREVOCABLE)
1930 bitmap_set_bit (region->irr_blocks, bb->index);
1934 return region;
1937 /* Collect all of the transaction regions within the current function
1938 and record them in ALL_TM_REGIONS. The REGION parameter may specify
1939 an "outermost" region for use by tm clones. */
1941 static void
1942 tm_region_init (struct tm_region *region)
1944 gimple g;
1945 edge_iterator ei;
1946 edge e;
1947 basic_block bb;
1948 auto_vec<basic_block> queue;
1949 bitmap visited_blocks = BITMAP_ALLOC (NULL);
1950 struct tm_region *old_region;
1951 auto_vec<tm_region_p> bb_regions;
1953 all_tm_regions = region;
1954 bb = single_succ (ENTRY_BLOCK_PTR_FOR_FN (cfun));
1956 /* We could store this information in bb->aux, but we may get called
1957 through get_all_tm_blocks() from another pass that may be already
1958 using bb->aux. */
1959 bb_regions.safe_grow_cleared (last_basic_block);
1961 queue.safe_push (bb);
1962 bb_regions[bb->index] = region;
1965 bb = queue.pop ();
1966 region = bb_regions[bb->index];
1967 bb_regions[bb->index] = NULL;
1969 /* Record exit and irrevocable blocks. */
1970 region = tm_region_init_1 (region, bb);
1972 /* Check for the last statement in the block beginning a new region. */
1973 g = last_stmt (bb);
1974 old_region = region;
1975 if (g && gimple_code (g) == GIMPLE_TRANSACTION)
1976 region = tm_region_init_0 (region, bb, g);
1978 /* Process subsequent blocks. */
1979 FOR_EACH_EDGE (e, ei, bb->succs)
1980 if (!bitmap_bit_p (visited_blocks, e->dest->index))
1982 bitmap_set_bit (visited_blocks, e->dest->index);
1983 queue.safe_push (e->dest);
1985 /* If the current block started a new region, make sure that only
1986 the entry block of the new region is associated with this region.
1987 Other successors are still part of the old region. */
1988 if (old_region != region && e->dest != region->entry_block)
1989 bb_regions[e->dest->index] = old_region;
1990 else
1991 bb_regions[e->dest->index] = region;
1994 while (!queue.is_empty ());
1995 BITMAP_FREE (visited_blocks);
1998 /* The "gate" function for all transactional memory expansion and optimization
1999 passes. We collect region information for each top-level transaction, and
2000 if we don't find any, we skip all of the TM passes. Each region will have
2001 all of the exit blocks recorded, and the originating statement. */
2003 static bool
2004 gate_tm_init (void)
2006 if (!flag_tm)
2007 return false;
2009 calculate_dominance_info (CDI_DOMINATORS);
2010 bitmap_obstack_initialize (&tm_obstack);
2012 /* If the function is a TM_CLONE, then the entire function is the region. */
2013 if (decl_is_tm_clone (current_function_decl))
2015 struct tm_region *region = (struct tm_region *)
2016 obstack_alloc (&tm_obstack.obstack, sizeof (struct tm_region));
2017 memset (region, 0, sizeof (*region));
2018 region->entry_block = single_succ (ENTRY_BLOCK_PTR_FOR_FN (cfun));
2019 /* For a clone, the entire function is the region. But even if
2020 we don't need to record any exit blocks, we may need to
2021 record irrevocable blocks. */
2022 region->irr_blocks = BITMAP_ALLOC (&tm_obstack);
2024 tm_region_init (region);
2026 else
2028 tm_region_init (NULL);
2030 /* If we didn't find any regions, cleanup and skip the whole tree
2031 of tm-related optimizations. */
2032 if (all_tm_regions == NULL)
2034 bitmap_obstack_release (&tm_obstack);
2035 return false;
2039 return true;
2042 namespace {
2044 const pass_data pass_data_tm_init =
2046 GIMPLE_PASS, /* type */
2047 "*tminit", /* name */
2048 OPTGROUP_NONE, /* optinfo_flags */
2049 true, /* has_gate */
2050 false, /* has_execute */
2051 TV_TRANS_MEM, /* tv_id */
2052 ( PROP_ssa | PROP_cfg ), /* properties_required */
2053 0, /* properties_provided */
2054 0, /* properties_destroyed */
2055 0, /* todo_flags_start */
2056 0, /* todo_flags_finish */
2059 class pass_tm_init : public gimple_opt_pass
2061 public:
2062 pass_tm_init (gcc::context *ctxt)
2063 : gimple_opt_pass (pass_data_tm_init, ctxt)
2066 /* opt_pass methods: */
2067 bool gate () { return gate_tm_init (); }
2069 }; // class pass_tm_init
2071 } // anon namespace
2073 gimple_opt_pass *
2074 make_pass_tm_init (gcc::context *ctxt)
2076 return new pass_tm_init (ctxt);
2079 /* Add FLAGS to the GIMPLE_TRANSACTION subcode for the transaction region
2080 represented by STATE. */
2082 static inline void
2083 transaction_subcode_ior (struct tm_region *region, unsigned flags)
2085 if (region && region->transaction_stmt)
2087 flags |= gimple_transaction_subcode (region->transaction_stmt);
2088 gimple_transaction_set_subcode (region->transaction_stmt, flags);
2092 /* Construct a memory load in a transactional context. Return the
2093 gimple statement performing the load, or NULL if there is no
2094 TM_LOAD builtin of the appropriate size to do the load.
2096 LOC is the location to use for the new statement(s). */
2098 static gimple
2099 build_tm_load (location_t loc, tree lhs, tree rhs, gimple_stmt_iterator *gsi)
2101 enum built_in_function code = END_BUILTINS;
2102 tree t, type = TREE_TYPE (rhs), decl;
2103 gimple gcall;
2105 if (type == float_type_node)
2106 code = BUILT_IN_TM_LOAD_FLOAT;
2107 else if (type == double_type_node)
2108 code = BUILT_IN_TM_LOAD_DOUBLE;
2109 else if (type == long_double_type_node)
2110 code = BUILT_IN_TM_LOAD_LDOUBLE;
2111 else if (TYPE_SIZE_UNIT (type) != NULL
2112 && tree_fits_uhwi_p (TYPE_SIZE_UNIT (type)))
2114 switch (tree_to_uhwi (TYPE_SIZE_UNIT (type)))
2116 case 1:
2117 code = BUILT_IN_TM_LOAD_1;
2118 break;
2119 case 2:
2120 code = BUILT_IN_TM_LOAD_2;
2121 break;
2122 case 4:
2123 code = BUILT_IN_TM_LOAD_4;
2124 break;
2125 case 8:
2126 code = BUILT_IN_TM_LOAD_8;
2127 break;
2131 if (code == END_BUILTINS)
2133 decl = targetm.vectorize.builtin_tm_load (type);
2134 if (!decl)
2135 return NULL;
2137 else
2138 decl = builtin_decl_explicit (code);
2140 t = gimplify_addr (gsi, rhs);
2141 gcall = gimple_build_call (decl, 1, t);
2142 gimple_set_location (gcall, loc);
2144 t = TREE_TYPE (TREE_TYPE (decl));
2145 if (useless_type_conversion_p (type, t))
2147 gimple_call_set_lhs (gcall, lhs);
2148 gsi_insert_before (gsi, gcall, GSI_SAME_STMT);
2150 else
2152 gimple g;
2153 tree temp;
2155 temp = create_tmp_reg (t, NULL);
2156 gimple_call_set_lhs (gcall, temp);
2157 gsi_insert_before (gsi, gcall, GSI_SAME_STMT);
2159 t = fold_build1 (VIEW_CONVERT_EXPR, type, temp);
2160 g = gimple_build_assign (lhs, t);
2161 gsi_insert_before (gsi, g, GSI_SAME_STMT);
2164 return gcall;
2168 /* Similarly for storing TYPE in a transactional context. */
2170 static gimple
2171 build_tm_store (location_t loc, tree lhs, tree rhs, gimple_stmt_iterator *gsi)
2173 enum built_in_function code = END_BUILTINS;
2174 tree t, fn, type = TREE_TYPE (rhs), simple_type;
2175 gimple gcall;
2177 if (type == float_type_node)
2178 code = BUILT_IN_TM_STORE_FLOAT;
2179 else if (type == double_type_node)
2180 code = BUILT_IN_TM_STORE_DOUBLE;
2181 else if (type == long_double_type_node)
2182 code = BUILT_IN_TM_STORE_LDOUBLE;
2183 else if (TYPE_SIZE_UNIT (type) != NULL
2184 && tree_fits_uhwi_p (TYPE_SIZE_UNIT (type)))
2186 switch (tree_to_uhwi (TYPE_SIZE_UNIT (type)))
2188 case 1:
2189 code = BUILT_IN_TM_STORE_1;
2190 break;
2191 case 2:
2192 code = BUILT_IN_TM_STORE_2;
2193 break;
2194 case 4:
2195 code = BUILT_IN_TM_STORE_4;
2196 break;
2197 case 8:
2198 code = BUILT_IN_TM_STORE_8;
2199 break;
2203 if (code == END_BUILTINS)
2205 fn = targetm.vectorize.builtin_tm_store (type);
2206 if (!fn)
2207 return NULL;
2209 else
2210 fn = builtin_decl_explicit (code);
2212 simple_type = TREE_VALUE (TREE_CHAIN (TYPE_ARG_TYPES (TREE_TYPE (fn))));
2214 if (TREE_CODE (rhs) == CONSTRUCTOR)
2216 /* Handle the easy initialization to zero. */
2217 if (!CONSTRUCTOR_ELTS (rhs))
2218 rhs = build_int_cst (simple_type, 0);
2219 else
2221 /* ...otherwise punt to the caller and probably use
2222 BUILT_IN_TM_MEMMOVE, because we can't wrap a
2223 VIEW_CONVERT_EXPR around a CONSTRUCTOR (below) and produce
2224 valid gimple. */
2225 return NULL;
2228 else if (!useless_type_conversion_p (simple_type, type))
2230 gimple g;
2231 tree temp;
2233 temp = create_tmp_reg (simple_type, NULL);
2234 t = fold_build1 (VIEW_CONVERT_EXPR, simple_type, rhs);
2235 g = gimple_build_assign (temp, t);
2236 gimple_set_location (g, loc);
2237 gsi_insert_before (gsi, g, GSI_SAME_STMT);
2239 rhs = temp;
2242 t = gimplify_addr (gsi, lhs);
2243 gcall = gimple_build_call (fn, 2, t, rhs);
2244 gimple_set_location (gcall, loc);
2245 gsi_insert_before (gsi, gcall, GSI_SAME_STMT);
2247 return gcall;
2251 /* Expand an assignment statement into transactional builtins. */
2253 static void
2254 expand_assign_tm (struct tm_region *region, gimple_stmt_iterator *gsi)
2256 gimple stmt = gsi_stmt (*gsi);
2257 location_t loc = gimple_location (stmt);
2258 tree lhs = gimple_assign_lhs (stmt);
2259 tree rhs = gimple_assign_rhs1 (stmt);
2260 bool store_p = requires_barrier (region->entry_block, lhs, NULL);
2261 bool load_p = requires_barrier (region->entry_block, rhs, NULL);
2262 gimple gcall = NULL;
2264 if (!load_p && !store_p)
2266 /* Add thread private addresses to log if applicable. */
2267 requires_barrier (region->entry_block, lhs, stmt);
2268 gsi_next (gsi);
2269 return;
2272 // Remove original load/store statement.
2273 gsi_remove (gsi, true);
2275 if (load_p && !store_p)
2277 transaction_subcode_ior (region, GTMA_HAVE_LOAD);
2278 gcall = build_tm_load (loc, lhs, rhs, gsi);
2280 else if (store_p && !load_p)
2282 transaction_subcode_ior (region, GTMA_HAVE_STORE);
2283 gcall = build_tm_store (loc, lhs, rhs, gsi);
2285 if (!gcall)
2287 tree lhs_addr, rhs_addr, tmp;
2289 if (load_p)
2290 transaction_subcode_ior (region, GTMA_HAVE_LOAD);
2291 if (store_p)
2292 transaction_subcode_ior (region, GTMA_HAVE_STORE);
2294 /* ??? Figure out if there's any possible overlap between the LHS
2295 and the RHS and if not, use MEMCPY. */
2297 if (load_p && is_gimple_reg (lhs))
2299 tmp = create_tmp_var (TREE_TYPE (lhs), NULL);
2300 lhs_addr = build_fold_addr_expr (tmp);
2302 else
2304 tmp = NULL_TREE;
2305 lhs_addr = gimplify_addr (gsi, lhs);
2307 rhs_addr = gimplify_addr (gsi, rhs);
2308 gcall = gimple_build_call (builtin_decl_explicit (BUILT_IN_TM_MEMMOVE),
2309 3, lhs_addr, rhs_addr,
2310 TYPE_SIZE_UNIT (TREE_TYPE (lhs)));
2311 gimple_set_location (gcall, loc);
2312 gsi_insert_before (gsi, gcall, GSI_SAME_STMT);
2314 if (tmp)
2316 gcall = gimple_build_assign (lhs, tmp);
2317 gsi_insert_before (gsi, gcall, GSI_SAME_STMT);
2321 /* Now that we have the load/store in its instrumented form, add
2322 thread private addresses to the log if applicable. */
2323 if (!store_p)
2324 requires_barrier (region->entry_block, lhs, gcall);
2326 // The calls to build_tm_{store,load} above inserted the instrumented
2327 // call into the stream.
2328 // gsi_insert_before (gsi, gcall, GSI_SAME_STMT);
2332 /* Expand a call statement as appropriate for a transaction. That is,
2333 either verify that the call does not affect the transaction, or
2334 redirect the call to a clone that handles transactions, or change
2335 the transaction state to IRREVOCABLE. Return true if the call is
2336 one of the builtins that end a transaction. */
2338 static bool
2339 expand_call_tm (struct tm_region *region,
2340 gimple_stmt_iterator *gsi)
2342 gimple stmt = gsi_stmt (*gsi);
2343 tree lhs = gimple_call_lhs (stmt);
2344 tree fn_decl;
2345 struct cgraph_node *node;
2346 bool retval = false;
2348 fn_decl = gimple_call_fndecl (stmt);
2350 if (fn_decl == builtin_decl_explicit (BUILT_IN_TM_MEMCPY)
2351 || fn_decl == builtin_decl_explicit (BUILT_IN_TM_MEMMOVE))
2352 transaction_subcode_ior (region, GTMA_HAVE_STORE | GTMA_HAVE_LOAD);
2353 if (fn_decl == builtin_decl_explicit (BUILT_IN_TM_MEMSET))
2354 transaction_subcode_ior (region, GTMA_HAVE_STORE);
2356 if (is_tm_pure_call (stmt))
2357 return false;
2359 if (fn_decl)
2360 retval = is_tm_ending_fndecl (fn_decl);
2361 if (!retval)
2363 /* Assume all non-const/pure calls write to memory, except
2364 transaction ending builtins. */
2365 transaction_subcode_ior (region, GTMA_HAVE_STORE);
2368 /* For indirect calls, we already generated a call into the runtime. */
2369 if (!fn_decl)
2371 tree fn = gimple_call_fn (stmt);
2373 /* We are guaranteed never to go irrevocable on a safe or pure
2374 call, and the pure call was handled above. */
2375 if (is_tm_safe (fn))
2376 return false;
2377 else
2378 transaction_subcode_ior (region, GTMA_MAY_ENTER_IRREVOCABLE);
2380 return false;
2383 node = cgraph_get_node (fn_decl);
2384 /* All calls should have cgraph here. */
2385 if (!node)
2387 /* We can have a nodeless call here if some pass after IPA-tm
2388 added uninstrumented calls. For example, loop distribution
2389 can transform certain loop constructs into __builtin_mem*
2390 calls. In this case, see if we have a suitable TM
2391 replacement and fill in the gaps. */
2392 gcc_assert (DECL_BUILT_IN_CLASS (fn_decl) == BUILT_IN_NORMAL);
2393 enum built_in_function code = DECL_FUNCTION_CODE (fn_decl);
2394 gcc_assert (code == BUILT_IN_MEMCPY
2395 || code == BUILT_IN_MEMMOVE
2396 || code == BUILT_IN_MEMSET);
2398 tree repl = find_tm_replacement_function (fn_decl);
2399 if (repl)
2401 gimple_call_set_fndecl (stmt, repl);
2402 update_stmt (stmt);
2403 node = cgraph_create_node (repl);
2404 node->local.tm_may_enter_irr = false;
2405 return expand_call_tm (region, gsi);
2407 gcc_unreachable ();
2409 if (node->local.tm_may_enter_irr)
2410 transaction_subcode_ior (region, GTMA_MAY_ENTER_IRREVOCABLE);
2412 if (is_tm_abort (fn_decl))
2414 transaction_subcode_ior (region, GTMA_HAVE_ABORT);
2415 return true;
2418 /* Instrument the store if needed.
2420 If the assignment happens inside the function call (return slot
2421 optimization), there is no instrumentation to be done, since
2422 the callee should have done the right thing. */
2423 if (lhs && requires_barrier (region->entry_block, lhs, stmt)
2424 && !gimple_call_return_slot_opt_p (stmt))
2426 tree tmp = create_tmp_reg (TREE_TYPE (lhs), NULL);
2427 location_t loc = gimple_location (stmt);
2428 edge fallthru_edge = NULL;
2430 /* Remember if the call was going to throw. */
2431 if (stmt_can_throw_internal (stmt))
2433 edge_iterator ei;
2434 edge e;
2435 basic_block bb = gimple_bb (stmt);
2437 FOR_EACH_EDGE (e, ei, bb->succs)
2438 if (e->flags & EDGE_FALLTHRU)
2440 fallthru_edge = e;
2441 break;
2445 gimple_call_set_lhs (stmt, tmp);
2446 update_stmt (stmt);
2447 stmt = gimple_build_assign (lhs, tmp);
2448 gimple_set_location (stmt, loc);
2450 /* We cannot throw in the middle of a BB. If the call was going
2451 to throw, place the instrumentation on the fallthru edge, so
2452 the call remains the last statement in the block. */
2453 if (fallthru_edge)
2455 gimple_seq fallthru_seq = gimple_seq_alloc_with_stmt (stmt);
2456 gimple_stmt_iterator fallthru_gsi = gsi_start (fallthru_seq);
2457 expand_assign_tm (region, &fallthru_gsi);
2458 gsi_insert_seq_on_edge (fallthru_edge, fallthru_seq);
2459 pending_edge_inserts_p = true;
2461 else
2463 gsi_insert_after (gsi, stmt, GSI_CONTINUE_LINKING);
2464 expand_assign_tm (region, gsi);
2467 transaction_subcode_ior (region, GTMA_HAVE_STORE);
2470 return retval;
2474 /* Expand all statements in BB as appropriate for being inside
2475 a transaction. */
2477 static void
2478 expand_block_tm (struct tm_region *region, basic_block bb)
2480 gimple_stmt_iterator gsi;
2482 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); )
2484 gimple stmt = gsi_stmt (gsi);
2485 switch (gimple_code (stmt))
2487 case GIMPLE_ASSIGN:
2488 /* Only memory reads/writes need to be instrumented. */
2489 if (gimple_assign_single_p (stmt)
2490 && !gimple_clobber_p (stmt))
2492 expand_assign_tm (region, &gsi);
2493 continue;
2495 break;
2497 case GIMPLE_CALL:
2498 if (expand_call_tm (region, &gsi))
2499 return;
2500 break;
2502 case GIMPLE_ASM:
2503 gcc_unreachable ();
2505 default:
2506 break;
2508 if (!gsi_end_p (gsi))
2509 gsi_next (&gsi);
2513 /* Return the list of basic-blocks in REGION.
2515 STOP_AT_IRREVOCABLE_P is true if caller is uninterested in blocks
2516 following a TM_IRREVOCABLE call.
2518 INCLUDE_UNINSTRUMENTED_P is TRUE if we should include the
2519 uninstrumented code path blocks in the list of basic blocks
2520 returned, false otherwise. */
2522 static vec<basic_block>
2523 get_tm_region_blocks (basic_block entry_block,
2524 bitmap exit_blocks,
2525 bitmap irr_blocks,
2526 bitmap all_region_blocks,
2527 bool stop_at_irrevocable_p,
2528 bool include_uninstrumented_p = true)
2530 vec<basic_block> bbs = vNULL;
2531 unsigned i;
2532 edge e;
2533 edge_iterator ei;
2534 bitmap visited_blocks = BITMAP_ALLOC (NULL);
2536 i = 0;
2537 bbs.safe_push (entry_block);
2538 bitmap_set_bit (visited_blocks, entry_block->index);
2542 basic_block bb = bbs[i++];
2544 if (exit_blocks &&
2545 bitmap_bit_p (exit_blocks, bb->index))
2546 continue;
2548 if (stop_at_irrevocable_p
2549 && irr_blocks
2550 && bitmap_bit_p (irr_blocks, bb->index))
2551 continue;
2553 FOR_EACH_EDGE (e, ei, bb->succs)
2554 if ((include_uninstrumented_p
2555 || !(e->flags & EDGE_TM_UNINSTRUMENTED))
2556 && !bitmap_bit_p (visited_blocks, e->dest->index))
2558 bitmap_set_bit (visited_blocks, e->dest->index);
2559 bbs.safe_push (e->dest);
2562 while (i < bbs.length ());
2564 if (all_region_blocks)
2565 bitmap_ior_into (all_region_blocks, visited_blocks);
2567 BITMAP_FREE (visited_blocks);
2568 return bbs;
2571 // Callback data for collect_bb2reg.
2572 struct bb2reg_stuff
2574 vec<tm_region_p> *bb2reg;
2575 bool include_uninstrumented_p;
2578 // Callback for expand_regions, collect innermost region data for each bb.
2579 static void *
2580 collect_bb2reg (struct tm_region *region, void *data)
2582 struct bb2reg_stuff *stuff = (struct bb2reg_stuff *)data;
2583 vec<tm_region_p> *bb2reg = stuff->bb2reg;
2584 vec<basic_block> queue;
2585 unsigned int i;
2586 basic_block bb;
2588 queue = get_tm_region_blocks (region->entry_block,
2589 region->exit_blocks,
2590 region->irr_blocks,
2591 NULL,
2592 /*stop_at_irr_p=*/true,
2593 stuff->include_uninstrumented_p);
2595 // We expect expand_region to perform a post-order traversal of the region
2596 // tree. Therefore the last region seen for any bb is the innermost.
2597 FOR_EACH_VEC_ELT (queue, i, bb)
2598 (*bb2reg)[bb->index] = region;
2600 queue.release ();
2601 return NULL;
2604 // Returns a vector, indexed by BB->INDEX, of the innermost tm_region to
2605 // which a basic block belongs. Note that we only consider the instrumented
2606 // code paths for the region; the uninstrumented code paths are ignored if
2607 // INCLUDE_UNINSTRUMENTED_P is false.
2609 // ??? This data is very similar to the bb_regions array that is collected
2610 // during tm_region_init. Or, rather, this data is similar to what could
2611 // be used within tm_region_init. The actual computation in tm_region_init
2612 // begins and ends with bb_regions entirely full of NULL pointers, due to
2613 // the way in which pointers are swapped in and out of the array.
2615 // ??? Our callers expect that blocks are not shared between transactions.
2616 // When the optimizers get too smart, and blocks are shared, then during
2617 // the tm_mark phase we'll add log entries to only one of the two transactions,
2618 // and in the tm_edge phase we'll add edges to the CFG that create invalid
2619 // cycles. The symptom being SSA defs that do not dominate their uses.
2620 // Note that the optimizers were locally correct with their transformation,
2621 // as we have no info within the program that suggests that the blocks cannot
2622 // be shared.
2624 // ??? There is currently a hack inside tree-ssa-pre.c to work around the
2625 // only known instance of this block sharing.
2627 static vec<tm_region_p>
2628 get_bb_regions_instrumented (bool traverse_clones,
2629 bool include_uninstrumented_p)
2631 unsigned n = last_basic_block;
2632 struct bb2reg_stuff stuff;
2633 vec<tm_region_p> ret;
2635 ret.create (n);
2636 ret.safe_grow_cleared (n);
2637 stuff.bb2reg = &ret;
2638 stuff.include_uninstrumented_p = include_uninstrumented_p;
2639 expand_regions (all_tm_regions, collect_bb2reg, &stuff, traverse_clones);
2641 return ret;
2644 /* Set the IN_TRANSACTION for all gimple statements that appear in a
2645 transaction. */
2647 void
2648 compute_transaction_bits (void)
2650 struct tm_region *region;
2651 vec<basic_block> queue;
2652 unsigned int i;
2653 basic_block bb;
2655 /* ?? Perhaps we need to abstract gate_tm_init further, because we
2656 certainly don't need it to calculate CDI_DOMINATOR info. */
2657 gate_tm_init ();
2659 FOR_EACH_BB (bb)
2660 bb->flags &= ~BB_IN_TRANSACTION;
2662 for (region = all_tm_regions; region; region = region->next)
2664 queue = get_tm_region_blocks (region->entry_block,
2665 region->exit_blocks,
2666 region->irr_blocks,
2667 NULL,
2668 /*stop_at_irr_p=*/true);
2669 for (i = 0; queue.iterate (i, &bb); ++i)
2670 bb->flags |= BB_IN_TRANSACTION;
2671 queue.release ();
2674 if (all_tm_regions)
2675 bitmap_obstack_release (&tm_obstack);
2678 /* Replace the GIMPLE_TRANSACTION in this region with the corresponding
2679 call to BUILT_IN_TM_START. */
2681 static void *
2682 expand_transaction (struct tm_region *region, void *data ATTRIBUTE_UNUSED)
2684 tree tm_start = builtin_decl_explicit (BUILT_IN_TM_START);
2685 basic_block transaction_bb = gimple_bb (region->transaction_stmt);
2686 tree tm_state = region->tm_state;
2687 tree tm_state_type = TREE_TYPE (tm_state);
2688 edge abort_edge = NULL;
2689 edge inst_edge = NULL;
2690 edge uninst_edge = NULL;
2691 edge fallthru_edge = NULL;
2693 // Identify the various successors of the transaction start.
2695 edge_iterator i;
2696 edge e;
2697 FOR_EACH_EDGE (e, i, transaction_bb->succs)
2699 if (e->flags & EDGE_TM_ABORT)
2700 abort_edge = e;
2701 else if (e->flags & EDGE_TM_UNINSTRUMENTED)
2702 uninst_edge = e;
2703 else
2704 inst_edge = e;
2705 if (e->flags & EDGE_FALLTHRU)
2706 fallthru_edge = e;
2710 /* ??? There are plenty of bits here we're not computing. */
2712 int subcode = gimple_transaction_subcode (region->transaction_stmt);
2713 int flags = 0;
2714 if (subcode & GTMA_DOES_GO_IRREVOCABLE)
2715 flags |= PR_DOESGOIRREVOCABLE;
2716 if ((subcode & GTMA_MAY_ENTER_IRREVOCABLE) == 0)
2717 flags |= PR_HASNOIRREVOCABLE;
2718 /* If the transaction does not have an abort in lexical scope and is not
2719 marked as an outer transaction, then it will never abort. */
2720 if ((subcode & GTMA_HAVE_ABORT) == 0 && (subcode & GTMA_IS_OUTER) == 0)
2721 flags |= PR_HASNOABORT;
2722 if ((subcode & GTMA_HAVE_STORE) == 0)
2723 flags |= PR_READONLY;
2724 if (inst_edge && !(subcode & GTMA_HAS_NO_INSTRUMENTATION))
2725 flags |= PR_INSTRUMENTEDCODE;
2726 if (uninst_edge)
2727 flags |= PR_UNINSTRUMENTEDCODE;
2728 if (subcode & GTMA_IS_OUTER)
2729 region->original_transaction_was_outer = true;
2730 tree t = build_int_cst (tm_state_type, flags);
2731 gimple call = gimple_build_call (tm_start, 1, t);
2732 gimple_call_set_lhs (call, tm_state);
2733 gimple_set_location (call, gimple_location (region->transaction_stmt));
2735 // Replace the GIMPLE_TRANSACTION with the call to BUILT_IN_TM_START.
2736 gimple_stmt_iterator gsi = gsi_last_bb (transaction_bb);
2737 gcc_assert (gsi_stmt (gsi) == region->transaction_stmt);
2738 gsi_insert_before (&gsi, call, GSI_SAME_STMT);
2739 gsi_remove (&gsi, true);
2740 region->transaction_stmt = call;
2743 // Generate log saves.
2744 if (!tm_log_save_addresses.is_empty ())
2745 tm_log_emit_saves (region->entry_block, transaction_bb);
2747 // In the beginning, we've no tests to perform on transaction restart.
2748 // Note that after this point, transaction_bb becomes the "most recent
2749 // block containing tests for the transaction".
2750 region->restart_block = region->entry_block;
2752 // Generate log restores.
2753 if (!tm_log_save_addresses.is_empty ())
2755 basic_block test_bb = create_empty_bb (transaction_bb);
2756 basic_block code_bb = create_empty_bb (test_bb);
2757 basic_block join_bb = create_empty_bb (code_bb);
2758 if (current_loops && transaction_bb->loop_father)
2760 add_bb_to_loop (test_bb, transaction_bb->loop_father);
2761 add_bb_to_loop (code_bb, transaction_bb->loop_father);
2762 add_bb_to_loop (join_bb, transaction_bb->loop_father);
2764 if (region->restart_block == region->entry_block)
2765 region->restart_block = test_bb;
2767 tree t1 = create_tmp_reg (tm_state_type, NULL);
2768 tree t2 = build_int_cst (tm_state_type, A_RESTORELIVEVARIABLES);
2769 gimple stmt = gimple_build_assign_with_ops (BIT_AND_EXPR, t1,
2770 tm_state, t2);
2771 gimple_stmt_iterator gsi = gsi_last_bb (test_bb);
2772 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING);
2774 t2 = build_int_cst (tm_state_type, 0);
2775 stmt = gimple_build_cond (NE_EXPR, t1, t2, NULL, NULL);
2776 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING);
2778 tm_log_emit_restores (region->entry_block, code_bb);
2780 edge ei = make_edge (transaction_bb, test_bb, EDGE_FALLTHRU);
2781 edge et = make_edge (test_bb, code_bb, EDGE_TRUE_VALUE);
2782 edge ef = make_edge (test_bb, join_bb, EDGE_FALSE_VALUE);
2783 redirect_edge_pred (fallthru_edge, join_bb);
2785 join_bb->frequency = test_bb->frequency = transaction_bb->frequency;
2786 join_bb->count = test_bb->count = transaction_bb->count;
2788 ei->probability = PROB_ALWAYS;
2789 et->probability = PROB_LIKELY;
2790 ef->probability = PROB_UNLIKELY;
2791 et->count = apply_probability (test_bb->count, et->probability);
2792 ef->count = apply_probability (test_bb->count, ef->probability);
2794 code_bb->count = et->count;
2795 code_bb->frequency = EDGE_FREQUENCY (et);
2797 transaction_bb = join_bb;
2800 // If we have an ABORT edge, create a test to perform the abort.
2801 if (abort_edge)
2803 basic_block test_bb = create_empty_bb (transaction_bb);
2804 if (current_loops && transaction_bb->loop_father)
2805 add_bb_to_loop (test_bb, transaction_bb->loop_father);
2806 if (region->restart_block == region->entry_block)
2807 region->restart_block = test_bb;
2809 tree t1 = create_tmp_reg (tm_state_type, NULL);
2810 tree t2 = build_int_cst (tm_state_type, A_ABORTTRANSACTION);
2811 gimple stmt = gimple_build_assign_with_ops (BIT_AND_EXPR, t1,
2812 tm_state, t2);
2813 gimple_stmt_iterator gsi = gsi_last_bb (test_bb);
2814 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING);
2816 t2 = build_int_cst (tm_state_type, 0);
2817 stmt = gimple_build_cond (NE_EXPR, t1, t2, NULL, NULL);
2818 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING);
2820 edge ei = make_edge (transaction_bb, test_bb, EDGE_FALLTHRU);
2821 test_bb->frequency = transaction_bb->frequency;
2822 test_bb->count = transaction_bb->count;
2823 ei->probability = PROB_ALWAYS;
2825 // Not abort edge. If both are live, chose one at random as we'll
2826 // we'll be fixing that up below.
2827 redirect_edge_pred (fallthru_edge, test_bb);
2828 fallthru_edge->flags = EDGE_FALSE_VALUE;
2829 fallthru_edge->probability = PROB_VERY_LIKELY;
2830 fallthru_edge->count
2831 = apply_probability (test_bb->count, fallthru_edge->probability);
2833 // Abort/over edge.
2834 redirect_edge_pred (abort_edge, test_bb);
2835 abort_edge->flags = EDGE_TRUE_VALUE;
2836 abort_edge->probability = PROB_VERY_UNLIKELY;
2837 abort_edge->count
2838 = apply_probability (test_bb->count, abort_edge->probability);
2840 transaction_bb = test_bb;
2843 // If we have both instrumented and uninstrumented code paths, select one.
2844 if (inst_edge && uninst_edge)
2846 basic_block test_bb = create_empty_bb (transaction_bb);
2847 if (current_loops && transaction_bb->loop_father)
2848 add_bb_to_loop (test_bb, transaction_bb->loop_father);
2849 if (region->restart_block == region->entry_block)
2850 region->restart_block = test_bb;
2852 tree t1 = create_tmp_reg (tm_state_type, NULL);
2853 tree t2 = build_int_cst (tm_state_type, A_RUNUNINSTRUMENTEDCODE);
2855 gimple stmt = gimple_build_assign_with_ops (BIT_AND_EXPR, t1,
2856 tm_state, t2);
2857 gimple_stmt_iterator gsi = gsi_last_bb (test_bb);
2858 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING);
2860 t2 = build_int_cst (tm_state_type, 0);
2861 stmt = gimple_build_cond (NE_EXPR, t1, t2, NULL, NULL);
2862 gsi_insert_after (&gsi, stmt, GSI_CONTINUE_LINKING);
2864 // Create the edge into test_bb first, as we want to copy values
2865 // out of the fallthru edge.
2866 edge e = make_edge (transaction_bb, test_bb, fallthru_edge->flags);
2867 e->probability = fallthru_edge->probability;
2868 test_bb->count = e->count = fallthru_edge->count;
2869 test_bb->frequency = EDGE_FREQUENCY (e);
2871 // Now update the edges to the inst/uninist implementations.
2872 // For now assume that the paths are equally likely. When using HTM,
2873 // we'll try the uninst path first and fallback to inst path if htm
2874 // buffers are exceeded. Without HTM we start with the inst path and
2875 // use the uninst path when falling back to serial mode.
2876 redirect_edge_pred (inst_edge, test_bb);
2877 inst_edge->flags = EDGE_FALSE_VALUE;
2878 inst_edge->probability = REG_BR_PROB_BASE / 2;
2879 inst_edge->count
2880 = apply_probability (test_bb->count, inst_edge->probability);
2882 redirect_edge_pred (uninst_edge, test_bb);
2883 uninst_edge->flags = EDGE_TRUE_VALUE;
2884 uninst_edge->probability = REG_BR_PROB_BASE / 2;
2885 uninst_edge->count
2886 = apply_probability (test_bb->count, uninst_edge->probability);
2889 // If we have no previous special cases, and we have PHIs at the beginning
2890 // of the atomic region, this means we have a loop at the beginning of the
2891 // atomic region that shares the first block. This can cause problems with
2892 // the transaction restart abnormal edges to be added in the tm_edges pass.
2893 // Solve this by adding a new empty block to receive the abnormal edges.
2894 if (region->restart_block == region->entry_block
2895 && phi_nodes (region->entry_block))
2897 basic_block empty_bb = create_empty_bb (transaction_bb);
2898 region->restart_block = empty_bb;
2899 if (current_loops && transaction_bb->loop_father)
2900 add_bb_to_loop (empty_bb, transaction_bb->loop_father);
2902 redirect_edge_pred (fallthru_edge, empty_bb);
2903 make_edge (transaction_bb, empty_bb, EDGE_FALLTHRU);
2906 return NULL;
2909 /* Generate the temporary to be used for the return value of
2910 BUILT_IN_TM_START. */
2912 static void *
2913 generate_tm_state (struct tm_region *region, void *data ATTRIBUTE_UNUSED)
2915 tree tm_start = builtin_decl_explicit (BUILT_IN_TM_START);
2916 region->tm_state =
2917 create_tmp_reg (TREE_TYPE (TREE_TYPE (tm_start)), "tm_state");
2919 // Reset the subcode, post optimizations. We'll fill this in
2920 // again as we process blocks.
2921 if (region->exit_blocks)
2923 unsigned int subcode
2924 = gimple_transaction_subcode (region->transaction_stmt);
2926 if (subcode & GTMA_DOES_GO_IRREVOCABLE)
2927 subcode &= (GTMA_DECLARATION_MASK | GTMA_DOES_GO_IRREVOCABLE
2928 | GTMA_MAY_ENTER_IRREVOCABLE
2929 | GTMA_HAS_NO_INSTRUMENTATION);
2930 else
2931 subcode &= GTMA_DECLARATION_MASK;
2932 gimple_transaction_set_subcode (region->transaction_stmt, subcode);
2935 return NULL;
2938 // Propagate flags from inner transactions outwards.
2939 static void
2940 propagate_tm_flags_out (struct tm_region *region)
2942 if (region == NULL)
2943 return;
2944 propagate_tm_flags_out (region->inner);
2946 if (region->outer && region->outer->transaction_stmt)
2948 unsigned s = gimple_transaction_subcode (region->transaction_stmt);
2949 s &= (GTMA_HAVE_ABORT | GTMA_HAVE_LOAD | GTMA_HAVE_STORE
2950 | GTMA_MAY_ENTER_IRREVOCABLE);
2951 s |= gimple_transaction_subcode (region->outer->transaction_stmt);
2952 gimple_transaction_set_subcode (region->outer->transaction_stmt, s);
2955 propagate_tm_flags_out (region->next);
2958 /* Entry point to the MARK phase of TM expansion. Here we replace
2959 transactional memory statements with calls to builtins, and function
2960 calls with their transactional clones (if available). But we don't
2961 yet lower GIMPLE_TRANSACTION or add the transaction restart back-edges. */
2963 static unsigned int
2964 execute_tm_mark (void)
2966 pending_edge_inserts_p = false;
2968 expand_regions (all_tm_regions, generate_tm_state, NULL,
2969 /*traverse_clones=*/true);
2971 tm_log_init ();
2973 vec<tm_region_p> bb_regions
2974 = get_bb_regions_instrumented (/*traverse_clones=*/true,
2975 /*include_uninstrumented_p=*/false);
2976 struct tm_region *r;
2977 unsigned i;
2979 // Expand memory operations into calls into the runtime.
2980 // This collects log entries as well.
2981 FOR_EACH_VEC_ELT (bb_regions, i, r)
2983 if (r != NULL)
2985 if (r->transaction_stmt)
2987 unsigned sub = gimple_transaction_subcode (r->transaction_stmt);
2989 /* If we're sure to go irrevocable, there won't be
2990 anything to expand, since the run-time will go
2991 irrevocable right away. */
2992 if (sub & GTMA_DOES_GO_IRREVOCABLE
2993 && sub & GTMA_MAY_ENTER_IRREVOCABLE)
2994 continue;
2996 expand_block_tm (r, BASIC_BLOCK (i));
3000 bb_regions.release ();
3002 // Propagate flags from inner transactions outwards.
3003 propagate_tm_flags_out (all_tm_regions);
3005 // Expand GIMPLE_TRANSACTIONs into calls into the runtime.
3006 expand_regions (all_tm_regions, expand_transaction, NULL,
3007 /*traverse_clones=*/false);
3009 tm_log_emit ();
3010 tm_log_delete ();
3012 if (pending_edge_inserts_p)
3013 gsi_commit_edge_inserts ();
3014 free_dominance_info (CDI_DOMINATORS);
3015 return 0;
3018 namespace {
3020 const pass_data pass_data_tm_mark =
3022 GIMPLE_PASS, /* type */
3023 "tmmark", /* name */
3024 OPTGROUP_NONE, /* optinfo_flags */
3025 false, /* has_gate */
3026 true, /* has_execute */
3027 TV_TRANS_MEM, /* tv_id */
3028 ( PROP_ssa | PROP_cfg ), /* properties_required */
3029 0, /* properties_provided */
3030 0, /* properties_destroyed */
3031 0, /* todo_flags_start */
3032 ( TODO_update_ssa | TODO_verify_ssa ), /* todo_flags_finish */
3035 class pass_tm_mark : public gimple_opt_pass
3037 public:
3038 pass_tm_mark (gcc::context *ctxt)
3039 : gimple_opt_pass (pass_data_tm_mark, ctxt)
3042 /* opt_pass methods: */
3043 unsigned int execute () { return execute_tm_mark (); }
3045 }; // class pass_tm_mark
3047 } // anon namespace
3049 gimple_opt_pass *
3050 make_pass_tm_mark (gcc::context *ctxt)
3052 return new pass_tm_mark (ctxt);
3056 /* Create an abnormal edge from STMT at iter, splitting the block
3057 as necessary. Adjust *PNEXT as needed for the split block. */
3059 static inline void
3060 split_bb_make_tm_edge (gimple stmt, basic_block dest_bb,
3061 gimple_stmt_iterator iter, gimple_stmt_iterator *pnext)
3063 basic_block bb = gimple_bb (stmt);
3064 if (!gsi_one_before_end_p (iter))
3066 edge e = split_block (bb, stmt);
3067 *pnext = gsi_start_bb (e->dest);
3069 make_edge (bb, dest_bb, EDGE_ABNORMAL);
3071 // Record the need for the edge for the benefit of the rtl passes.
3072 if (cfun->gimple_df->tm_restart == NULL)
3073 cfun->gimple_df->tm_restart = htab_create_ggc (31, struct_ptr_hash,
3074 struct_ptr_eq, ggc_free);
3076 struct tm_restart_node dummy;
3077 dummy.stmt = stmt;
3078 dummy.label_or_list = gimple_block_label (dest_bb);
3080 void **slot = htab_find_slot (cfun->gimple_df->tm_restart, &dummy, INSERT);
3081 struct tm_restart_node *n = (struct tm_restart_node *) *slot;
3082 if (n == NULL)
3084 n = ggc_alloc_tm_restart_node ();
3085 *n = dummy;
3087 else
3089 tree old = n->label_or_list;
3090 if (TREE_CODE (old) == LABEL_DECL)
3091 old = tree_cons (NULL, old, NULL);
3092 n->label_or_list = tree_cons (NULL, dummy.label_or_list, old);
3096 /* Split block BB as necessary for every builtin function we added, and
3097 wire up the abnormal back edges implied by the transaction restart. */
3099 static void
3100 expand_block_edges (struct tm_region *const region, basic_block bb)
3102 gimple_stmt_iterator gsi, next_gsi;
3104 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi = next_gsi)
3106 gimple stmt = gsi_stmt (gsi);
3108 next_gsi = gsi;
3109 gsi_next (&next_gsi);
3111 // ??? Shouldn't we split for any non-pure, non-irrevocable function?
3112 if (gimple_code (stmt) != GIMPLE_CALL
3113 || (gimple_call_flags (stmt) & ECF_TM_BUILTIN) == 0)
3114 continue;
3116 if (DECL_FUNCTION_CODE (gimple_call_fndecl (stmt)) == BUILT_IN_TM_ABORT)
3118 // If we have a ``_transaction_cancel [[outer]]'', there is only
3119 // one abnormal edge: to the transaction marked OUTER.
3120 // All compiler-generated instances of BUILT_IN_TM_ABORT have a
3121 // constant argument, which we can examine here. Users invoking
3122 // TM_ABORT directly get what they deserve.
3123 tree arg = gimple_call_arg (stmt, 0);
3124 if (TREE_CODE (arg) == INTEGER_CST
3125 && (TREE_INT_CST_LOW (arg) & AR_OUTERABORT) != 0
3126 && !decl_is_tm_clone (current_function_decl))
3128 // Find the GTMA_IS_OUTER transaction.
3129 for (struct tm_region *o = region; o; o = o->outer)
3130 if (o->original_transaction_was_outer)
3132 split_bb_make_tm_edge (stmt, o->restart_block,
3133 gsi, &next_gsi);
3134 break;
3137 // Otherwise, the front-end should have semantically checked
3138 // outer aborts, but in either case the target region is not
3139 // within this function.
3140 continue;
3143 // Non-outer, TM aborts have an abnormal edge to the inner-most
3144 // transaction, the one being aborted;
3145 split_bb_make_tm_edge (stmt, region->restart_block, gsi, &next_gsi);
3148 // All TM builtins have an abnormal edge to the outer-most transaction.
3149 // We never restart inner transactions. For tm clones, we know a-priori
3150 // that the outer-most transaction is outside the function.
3151 if (decl_is_tm_clone (current_function_decl))
3152 continue;
3154 if (cfun->gimple_df->tm_restart == NULL)
3155 cfun->gimple_df->tm_restart
3156 = htab_create_ggc (31, struct_ptr_hash, struct_ptr_eq, ggc_free);
3158 // All TM builtins have an abnormal edge to the outer-most transaction.
3159 // We never restart inner transactions.
3160 for (struct tm_region *o = region; o; o = o->outer)
3161 if (!o->outer)
3163 split_bb_make_tm_edge (stmt, o->restart_block, gsi, &next_gsi);
3164 break;
3167 // Delete any tail-call annotation that may have been added.
3168 // The tail-call pass may have mis-identified the commit as being
3169 // a candidate because we had not yet added this restart edge.
3170 gimple_call_set_tail (stmt, false);
3174 /* Entry point to the final expansion of transactional nodes. */
3176 static unsigned int
3177 execute_tm_edges (void)
3179 vec<tm_region_p> bb_regions
3180 = get_bb_regions_instrumented (/*traverse_clones=*/false,
3181 /*include_uninstrumented_p=*/true);
3182 struct tm_region *r;
3183 unsigned i;
3185 FOR_EACH_VEC_ELT (bb_regions, i, r)
3186 if (r != NULL)
3187 expand_block_edges (r, BASIC_BLOCK (i));
3189 bb_regions.release ();
3191 /* We've got to release the dominance info now, to indicate that it
3192 must be rebuilt completely. Otherwise we'll crash trying to update
3193 the SSA web in the TODO section following this pass. */
3194 free_dominance_info (CDI_DOMINATORS);
3195 bitmap_obstack_release (&tm_obstack);
3196 all_tm_regions = NULL;
3198 return 0;
3201 namespace {
3203 const pass_data pass_data_tm_edges =
3205 GIMPLE_PASS, /* type */
3206 "tmedge", /* name */
3207 OPTGROUP_NONE, /* optinfo_flags */
3208 false, /* has_gate */
3209 true, /* has_execute */
3210 TV_TRANS_MEM, /* tv_id */
3211 ( PROP_ssa | PROP_cfg ), /* properties_required */
3212 0, /* properties_provided */
3213 0, /* properties_destroyed */
3214 0, /* todo_flags_start */
3215 ( TODO_update_ssa | TODO_verify_ssa ), /* todo_flags_finish */
3218 class pass_tm_edges : public gimple_opt_pass
3220 public:
3221 pass_tm_edges (gcc::context *ctxt)
3222 : gimple_opt_pass (pass_data_tm_edges, ctxt)
3225 /* opt_pass methods: */
3226 unsigned int execute () { return execute_tm_edges (); }
3228 }; // class pass_tm_edges
3230 } // anon namespace
3232 gimple_opt_pass *
3233 make_pass_tm_edges (gcc::context *ctxt)
3235 return new pass_tm_edges (ctxt);
3238 /* Helper function for expand_regions. Expand REGION and recurse to
3239 the inner region. Call CALLBACK on each region. CALLBACK returns
3240 NULL to continue the traversal, otherwise a non-null value which
3241 this function will return as well. TRAVERSE_CLONES is true if we
3242 should traverse transactional clones. */
3244 static void *
3245 expand_regions_1 (struct tm_region *region,
3246 void *(*callback)(struct tm_region *, void *),
3247 void *data,
3248 bool traverse_clones)
3250 void *retval = NULL;
3251 if (region->exit_blocks
3252 || (traverse_clones && decl_is_tm_clone (current_function_decl)))
3254 retval = callback (region, data);
3255 if (retval)
3256 return retval;
3258 if (region->inner)
3260 retval = expand_regions (region->inner, callback, data, traverse_clones);
3261 if (retval)
3262 return retval;
3264 return retval;
3267 /* Traverse the regions enclosed and including REGION. Execute
3268 CALLBACK for each region, passing DATA. CALLBACK returns NULL to
3269 continue the traversal, otherwise a non-null value which this
3270 function will return as well. TRAVERSE_CLONES is true if we should
3271 traverse transactional clones. */
3273 static void *
3274 expand_regions (struct tm_region *region,
3275 void *(*callback)(struct tm_region *, void *),
3276 void *data,
3277 bool traverse_clones)
3279 void *retval = NULL;
3280 while (region)
3282 retval = expand_regions_1 (region, callback, data, traverse_clones);
3283 if (retval)
3284 return retval;
3285 region = region->next;
3287 return retval;
3291 /* A unique TM memory operation. */
3292 typedef struct tm_memop
3294 /* Unique ID that all memory operations to the same location have. */
3295 unsigned int value_id;
3296 /* Address of load/store. */
3297 tree addr;
3298 } *tm_memop_t;
3300 /* TM memory operation hashtable helpers. */
3302 struct tm_memop_hasher : typed_free_remove <tm_memop>
3304 typedef tm_memop value_type;
3305 typedef tm_memop compare_type;
3306 static inline hashval_t hash (const value_type *);
3307 static inline bool equal (const value_type *, const compare_type *);
3310 /* Htab support. Return a hash value for a `tm_memop'. */
3311 inline hashval_t
3312 tm_memop_hasher::hash (const value_type *mem)
3314 tree addr = mem->addr;
3315 /* We drill down to the SSA_NAME/DECL for the hash, but equality is
3316 actually done with operand_equal_p (see tm_memop_eq). */
3317 if (TREE_CODE (addr) == ADDR_EXPR)
3318 addr = TREE_OPERAND (addr, 0);
3319 return iterative_hash_expr (addr, 0);
3322 /* Htab support. Return true if two tm_memop's are the same. */
3323 inline bool
3324 tm_memop_hasher::equal (const value_type *mem1, const compare_type *mem2)
3326 return operand_equal_p (mem1->addr, mem2->addr, 0);
3329 /* Sets for solving data flow equations in the memory optimization pass. */
3330 struct tm_memopt_bitmaps
3332 /* Stores available to this BB upon entry. Basically, stores that
3333 dominate this BB. */
3334 bitmap store_avail_in;
3335 /* Stores available at the end of this BB. */
3336 bitmap store_avail_out;
3337 bitmap store_antic_in;
3338 bitmap store_antic_out;
3339 /* Reads available to this BB upon entry. Basically, reads that
3340 dominate this BB. */
3341 bitmap read_avail_in;
3342 /* Reads available at the end of this BB. */
3343 bitmap read_avail_out;
3344 /* Reads performed in this BB. */
3345 bitmap read_local;
3346 /* Writes performed in this BB. */
3347 bitmap store_local;
3349 /* Temporary storage for pass. */
3350 /* Is the current BB in the worklist? */
3351 bool avail_in_worklist_p;
3352 /* Have we visited this BB? */
3353 bool visited_p;
3356 static bitmap_obstack tm_memopt_obstack;
3358 /* Unique counter for TM loads and stores. Loads and stores of the
3359 same address get the same ID. */
3360 static unsigned int tm_memopt_value_id;
3361 static hash_table <tm_memop_hasher> tm_memopt_value_numbers;
3363 #define STORE_AVAIL_IN(BB) \
3364 ((struct tm_memopt_bitmaps *) ((BB)->aux))->store_avail_in
3365 #define STORE_AVAIL_OUT(BB) \
3366 ((struct tm_memopt_bitmaps *) ((BB)->aux))->store_avail_out
3367 #define STORE_ANTIC_IN(BB) \
3368 ((struct tm_memopt_bitmaps *) ((BB)->aux))->store_antic_in
3369 #define STORE_ANTIC_OUT(BB) \
3370 ((struct tm_memopt_bitmaps *) ((BB)->aux))->store_antic_out
3371 #define READ_AVAIL_IN(BB) \
3372 ((struct tm_memopt_bitmaps *) ((BB)->aux))->read_avail_in
3373 #define READ_AVAIL_OUT(BB) \
3374 ((struct tm_memopt_bitmaps *) ((BB)->aux))->read_avail_out
3375 #define READ_LOCAL(BB) \
3376 ((struct tm_memopt_bitmaps *) ((BB)->aux))->read_local
3377 #define STORE_LOCAL(BB) \
3378 ((struct tm_memopt_bitmaps *) ((BB)->aux))->store_local
3379 #define AVAIL_IN_WORKLIST_P(BB) \
3380 ((struct tm_memopt_bitmaps *) ((BB)->aux))->avail_in_worklist_p
3381 #define BB_VISITED_P(BB) \
3382 ((struct tm_memopt_bitmaps *) ((BB)->aux))->visited_p
3384 /* Given a TM load/store in STMT, return the value number for the address
3385 it accesses. */
3387 static unsigned int
3388 tm_memopt_value_number (gimple stmt, enum insert_option op)
3390 struct tm_memop tmpmem, *mem;
3391 tm_memop **slot;
3393 gcc_assert (is_tm_load (stmt) || is_tm_store (stmt));
3394 tmpmem.addr = gimple_call_arg (stmt, 0);
3395 slot = tm_memopt_value_numbers.find_slot (&tmpmem, op);
3396 if (*slot)
3397 mem = *slot;
3398 else if (op == INSERT)
3400 mem = XNEW (struct tm_memop);
3401 *slot = mem;
3402 mem->value_id = tm_memopt_value_id++;
3403 mem->addr = tmpmem.addr;
3405 else
3406 gcc_unreachable ();
3407 return mem->value_id;
3410 /* Accumulate TM memory operations in BB into STORE_LOCAL and READ_LOCAL. */
3412 static void
3413 tm_memopt_accumulate_memops (basic_block bb)
3415 gimple_stmt_iterator gsi;
3417 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
3419 gimple stmt = gsi_stmt (gsi);
3420 bitmap bits;
3421 unsigned int loc;
3423 if (is_tm_store (stmt))
3424 bits = STORE_LOCAL (bb);
3425 else if (is_tm_load (stmt))
3426 bits = READ_LOCAL (bb);
3427 else
3428 continue;
3430 loc = tm_memopt_value_number (stmt, INSERT);
3431 bitmap_set_bit (bits, loc);
3432 if (dump_file)
3434 fprintf (dump_file, "TM memopt (%s): value num=%d, BB=%d, addr=",
3435 is_tm_load (stmt) ? "LOAD" : "STORE", loc,
3436 gimple_bb (stmt)->index);
3437 print_generic_expr (dump_file, gimple_call_arg (stmt, 0), 0);
3438 fprintf (dump_file, "\n");
3443 /* Prettily dump one of the memopt sets. BITS is the bitmap to dump. */
3445 static void
3446 dump_tm_memopt_set (const char *set_name, bitmap bits)
3448 unsigned i;
3449 bitmap_iterator bi;
3450 const char *comma = "";
3452 fprintf (dump_file, "TM memopt: %s: [", set_name);
3453 EXECUTE_IF_SET_IN_BITMAP (bits, 0, i, bi)
3455 hash_table <tm_memop_hasher>::iterator hi;
3456 struct tm_memop *mem = NULL;
3458 /* Yeah, yeah, yeah. Whatever. This is just for debugging. */
3459 FOR_EACH_HASH_TABLE_ELEMENT (tm_memopt_value_numbers, mem, tm_memop_t, hi)
3460 if (mem->value_id == i)
3461 break;
3462 gcc_assert (mem->value_id == i);
3463 fprintf (dump_file, "%s", comma);
3464 comma = ", ";
3465 print_generic_expr (dump_file, mem->addr, 0);
3467 fprintf (dump_file, "]\n");
3470 /* Prettily dump all of the memopt sets in BLOCKS. */
3472 static void
3473 dump_tm_memopt_sets (vec<basic_block> blocks)
3475 size_t i;
3476 basic_block bb;
3478 for (i = 0; blocks.iterate (i, &bb); ++i)
3480 fprintf (dump_file, "------------BB %d---------\n", bb->index);
3481 dump_tm_memopt_set ("STORE_LOCAL", STORE_LOCAL (bb));
3482 dump_tm_memopt_set ("READ_LOCAL", READ_LOCAL (bb));
3483 dump_tm_memopt_set ("STORE_AVAIL_IN", STORE_AVAIL_IN (bb));
3484 dump_tm_memopt_set ("STORE_AVAIL_OUT", STORE_AVAIL_OUT (bb));
3485 dump_tm_memopt_set ("READ_AVAIL_IN", READ_AVAIL_IN (bb));
3486 dump_tm_memopt_set ("READ_AVAIL_OUT", READ_AVAIL_OUT (bb));
3490 /* Compute {STORE,READ}_AVAIL_IN for the basic block BB. */
3492 static void
3493 tm_memopt_compute_avin (basic_block bb)
3495 edge e;
3496 unsigned ix;
3498 /* Seed with the AVOUT of any predecessor. */
3499 for (ix = 0; ix < EDGE_COUNT (bb->preds); ix++)
3501 e = EDGE_PRED (bb, ix);
3502 /* Make sure we have already visited this BB, and is thus
3503 initialized.
3505 If e->src->aux is NULL, this predecessor is actually on an
3506 enclosing transaction. We only care about the current
3507 transaction, so ignore it. */
3508 if (e->src->aux && BB_VISITED_P (e->src))
3510 bitmap_copy (STORE_AVAIL_IN (bb), STORE_AVAIL_OUT (e->src));
3511 bitmap_copy (READ_AVAIL_IN (bb), READ_AVAIL_OUT (e->src));
3512 break;
3516 for (; ix < EDGE_COUNT (bb->preds); ix++)
3518 e = EDGE_PRED (bb, ix);
3519 if (e->src->aux && BB_VISITED_P (e->src))
3521 bitmap_and_into (STORE_AVAIL_IN (bb), STORE_AVAIL_OUT (e->src));
3522 bitmap_and_into (READ_AVAIL_IN (bb), READ_AVAIL_OUT (e->src));
3526 BB_VISITED_P (bb) = true;
3529 /* Compute the STORE_ANTIC_IN for the basic block BB. */
3531 static void
3532 tm_memopt_compute_antin (basic_block bb)
3534 edge e;
3535 unsigned ix;
3537 /* Seed with the ANTIC_OUT of any successor. */
3538 for (ix = 0; ix < EDGE_COUNT (bb->succs); ix++)
3540 e = EDGE_SUCC (bb, ix);
3541 /* Make sure we have already visited this BB, and is thus
3542 initialized. */
3543 if (BB_VISITED_P (e->dest))
3545 bitmap_copy (STORE_ANTIC_IN (bb), STORE_ANTIC_OUT (e->dest));
3546 break;
3550 for (; ix < EDGE_COUNT (bb->succs); ix++)
3552 e = EDGE_SUCC (bb, ix);
3553 if (BB_VISITED_P (e->dest))
3554 bitmap_and_into (STORE_ANTIC_IN (bb), STORE_ANTIC_OUT (e->dest));
3557 BB_VISITED_P (bb) = true;
3560 /* Compute the AVAIL sets for every basic block in BLOCKS.
3562 We compute {STORE,READ}_AVAIL_{OUT,IN} as follows:
3564 AVAIL_OUT[bb] = union (AVAIL_IN[bb], LOCAL[bb])
3565 AVAIL_IN[bb] = intersect (AVAIL_OUT[predecessors])
3567 This is basically what we do in lcm's compute_available(), but here
3568 we calculate two sets of sets (one for STOREs and one for READs),
3569 and we work on a region instead of the entire CFG.
3571 REGION is the TM region.
3572 BLOCKS are the basic blocks in the region. */
3574 static void
3575 tm_memopt_compute_available (struct tm_region *region,
3576 vec<basic_block> blocks)
3578 edge e;
3579 basic_block *worklist, *qin, *qout, *qend, bb;
3580 unsigned int qlen, i;
3581 edge_iterator ei;
3582 bool changed;
3584 /* Allocate a worklist array/queue. Entries are only added to the
3585 list if they were not already on the list. So the size is
3586 bounded by the number of basic blocks in the region. */
3587 qlen = blocks.length () - 1;
3588 qin = qout = worklist =
3589 XNEWVEC (basic_block, qlen);
3591 /* Put every block in the region on the worklist. */
3592 for (i = 0; blocks.iterate (i, &bb); ++i)
3594 /* Seed AVAIL_OUT with the LOCAL set. */
3595 bitmap_ior_into (STORE_AVAIL_OUT (bb), STORE_LOCAL (bb));
3596 bitmap_ior_into (READ_AVAIL_OUT (bb), READ_LOCAL (bb));
3598 AVAIL_IN_WORKLIST_P (bb) = true;
3599 /* No need to insert the entry block, since it has an AVIN of
3600 null, and an AVOUT that has already been seeded in. */
3601 if (bb != region->entry_block)
3602 *qin++ = bb;
3605 /* The entry block has been initialized with the local sets. */
3606 BB_VISITED_P (region->entry_block) = true;
3608 qin = worklist;
3609 qend = &worklist[qlen];
3611 /* Iterate until the worklist is empty. */
3612 while (qlen)
3614 /* Take the first entry off the worklist. */
3615 bb = *qout++;
3616 qlen--;
3618 if (qout >= qend)
3619 qout = worklist;
3621 /* This block can be added to the worklist again if necessary. */
3622 AVAIL_IN_WORKLIST_P (bb) = false;
3623 tm_memopt_compute_avin (bb);
3625 /* Note: We do not add the LOCAL sets here because we already
3626 seeded the AVAIL_OUT sets with them. */
3627 changed = bitmap_ior_into (STORE_AVAIL_OUT (bb), STORE_AVAIL_IN (bb));
3628 changed |= bitmap_ior_into (READ_AVAIL_OUT (bb), READ_AVAIL_IN (bb));
3629 if (changed
3630 && (region->exit_blocks == NULL
3631 || !bitmap_bit_p (region->exit_blocks, bb->index)))
3632 /* If the out state of this block changed, then we need to add
3633 its successors to the worklist if they are not already in. */
3634 FOR_EACH_EDGE (e, ei, bb->succs)
3635 if (!AVAIL_IN_WORKLIST_P (e->dest)
3636 && e->dest != EXIT_BLOCK_PTR_FOR_FN (cfun))
3638 *qin++ = e->dest;
3639 AVAIL_IN_WORKLIST_P (e->dest) = true;
3640 qlen++;
3642 if (qin >= qend)
3643 qin = worklist;
3647 free (worklist);
3649 if (dump_file)
3650 dump_tm_memopt_sets (blocks);
3653 /* Compute ANTIC sets for every basic block in BLOCKS.
3655 We compute STORE_ANTIC_OUT as follows:
3657 STORE_ANTIC_OUT[bb] = union(STORE_ANTIC_IN[bb], STORE_LOCAL[bb])
3658 STORE_ANTIC_IN[bb] = intersect(STORE_ANTIC_OUT[successors])
3660 REGION is the TM region.
3661 BLOCKS are the basic blocks in the region. */
3663 static void
3664 tm_memopt_compute_antic (struct tm_region *region,
3665 vec<basic_block> blocks)
3667 edge e;
3668 basic_block *worklist, *qin, *qout, *qend, bb;
3669 unsigned int qlen;
3670 int i;
3671 edge_iterator ei;
3673 /* Allocate a worklist array/queue. Entries are only added to the
3674 list if they were not already on the list. So the size is
3675 bounded by the number of basic blocks in the region. */
3676 qin = qout = worklist = XNEWVEC (basic_block, blocks.length ());
3678 for (qlen = 0, i = blocks.length () - 1; i >= 0; --i)
3680 bb = blocks[i];
3682 /* Seed ANTIC_OUT with the LOCAL set. */
3683 bitmap_ior_into (STORE_ANTIC_OUT (bb), STORE_LOCAL (bb));
3685 /* Put every block in the region on the worklist. */
3686 AVAIL_IN_WORKLIST_P (bb) = true;
3687 /* No need to insert exit blocks, since their ANTIC_IN is NULL,
3688 and their ANTIC_OUT has already been seeded in. */
3689 if (region->exit_blocks
3690 && !bitmap_bit_p (region->exit_blocks, bb->index))
3692 qlen++;
3693 *qin++ = bb;
3697 /* The exit blocks have been initialized with the local sets. */
3698 if (region->exit_blocks)
3700 unsigned int i;
3701 bitmap_iterator bi;
3702 EXECUTE_IF_SET_IN_BITMAP (region->exit_blocks, 0, i, bi)
3703 BB_VISITED_P (BASIC_BLOCK (i)) = true;
3706 qin = worklist;
3707 qend = &worklist[qlen];
3709 /* Iterate until the worklist is empty. */
3710 while (qlen)
3712 /* Take the first entry off the worklist. */
3713 bb = *qout++;
3714 qlen--;
3716 if (qout >= qend)
3717 qout = worklist;
3719 /* This block can be added to the worklist again if necessary. */
3720 AVAIL_IN_WORKLIST_P (bb) = false;
3721 tm_memopt_compute_antin (bb);
3723 /* Note: We do not add the LOCAL sets here because we already
3724 seeded the ANTIC_OUT sets with them. */
3725 if (bitmap_ior_into (STORE_ANTIC_OUT (bb), STORE_ANTIC_IN (bb))
3726 && bb != region->entry_block)
3727 /* If the out state of this block changed, then we need to add
3728 its predecessors to the worklist if they are not already in. */
3729 FOR_EACH_EDGE (e, ei, bb->preds)
3730 if (!AVAIL_IN_WORKLIST_P (e->src))
3732 *qin++ = e->src;
3733 AVAIL_IN_WORKLIST_P (e->src) = true;
3734 qlen++;
3736 if (qin >= qend)
3737 qin = worklist;
3741 free (worklist);
3743 if (dump_file)
3744 dump_tm_memopt_sets (blocks);
3747 /* Offsets of load variants from TM_LOAD. For example,
3748 BUILT_IN_TM_LOAD_RAR* is an offset of 1 from BUILT_IN_TM_LOAD*.
3749 See gtm-builtins.def. */
3750 #define TRANSFORM_RAR 1
3751 #define TRANSFORM_RAW 2
3752 #define TRANSFORM_RFW 3
3753 /* Offsets of store variants from TM_STORE. */
3754 #define TRANSFORM_WAR 1
3755 #define TRANSFORM_WAW 2
3757 /* Inform about a load/store optimization. */
3759 static void
3760 dump_tm_memopt_transform (gimple stmt)
3762 if (dump_file)
3764 fprintf (dump_file, "TM memopt: transforming: ");
3765 print_gimple_stmt (dump_file, stmt, 0, 0);
3766 fprintf (dump_file, "\n");
3770 /* Perform a read/write optimization. Replaces the TM builtin in STMT
3771 by a builtin that is OFFSET entries down in the builtins table in
3772 gtm-builtins.def. */
3774 static void
3775 tm_memopt_transform_stmt (unsigned int offset,
3776 gimple stmt,
3777 gimple_stmt_iterator *gsi)
3779 tree fn = gimple_call_fn (stmt);
3780 gcc_assert (TREE_CODE (fn) == ADDR_EXPR);
3781 TREE_OPERAND (fn, 0)
3782 = builtin_decl_explicit ((enum built_in_function)
3783 (DECL_FUNCTION_CODE (TREE_OPERAND (fn, 0))
3784 + offset));
3785 gimple_call_set_fn (stmt, fn);
3786 gsi_replace (gsi, stmt, true);
3787 dump_tm_memopt_transform (stmt);
3790 /* Perform the actual TM memory optimization transformations in the
3791 basic blocks in BLOCKS. */
3793 static void
3794 tm_memopt_transform_blocks (vec<basic_block> blocks)
3796 size_t i;
3797 basic_block bb;
3798 gimple_stmt_iterator gsi;
3800 for (i = 0; blocks.iterate (i, &bb); ++i)
3802 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
3804 gimple stmt = gsi_stmt (gsi);
3805 bitmap read_avail = READ_AVAIL_IN (bb);
3806 bitmap store_avail = STORE_AVAIL_IN (bb);
3807 bitmap store_antic = STORE_ANTIC_OUT (bb);
3808 unsigned int loc;
3810 if (is_tm_simple_load (stmt))
3812 loc = tm_memopt_value_number (stmt, NO_INSERT);
3813 if (store_avail && bitmap_bit_p (store_avail, loc))
3814 tm_memopt_transform_stmt (TRANSFORM_RAW, stmt, &gsi);
3815 else if (store_antic && bitmap_bit_p (store_antic, loc))
3817 tm_memopt_transform_stmt (TRANSFORM_RFW, stmt, &gsi);
3818 bitmap_set_bit (store_avail, loc);
3820 else if (read_avail && bitmap_bit_p (read_avail, loc))
3821 tm_memopt_transform_stmt (TRANSFORM_RAR, stmt, &gsi);
3822 else
3823 bitmap_set_bit (read_avail, loc);
3825 else if (is_tm_simple_store (stmt))
3827 loc = tm_memopt_value_number (stmt, NO_INSERT);
3828 if (store_avail && bitmap_bit_p (store_avail, loc))
3829 tm_memopt_transform_stmt (TRANSFORM_WAW, stmt, &gsi);
3830 else
3832 if (read_avail && bitmap_bit_p (read_avail, loc))
3833 tm_memopt_transform_stmt (TRANSFORM_WAR, stmt, &gsi);
3834 bitmap_set_bit (store_avail, loc);
3841 /* Return a new set of bitmaps for a BB. */
3843 static struct tm_memopt_bitmaps *
3844 tm_memopt_init_sets (void)
3846 struct tm_memopt_bitmaps *b
3847 = XOBNEW (&tm_memopt_obstack.obstack, struct tm_memopt_bitmaps);
3848 b->store_avail_in = BITMAP_ALLOC (&tm_memopt_obstack);
3849 b->store_avail_out = BITMAP_ALLOC (&tm_memopt_obstack);
3850 b->store_antic_in = BITMAP_ALLOC (&tm_memopt_obstack);
3851 b->store_antic_out = BITMAP_ALLOC (&tm_memopt_obstack);
3852 b->store_avail_out = BITMAP_ALLOC (&tm_memopt_obstack);
3853 b->read_avail_in = BITMAP_ALLOC (&tm_memopt_obstack);
3854 b->read_avail_out = BITMAP_ALLOC (&tm_memopt_obstack);
3855 b->read_local = BITMAP_ALLOC (&tm_memopt_obstack);
3856 b->store_local = BITMAP_ALLOC (&tm_memopt_obstack);
3857 return b;
3860 /* Free sets computed for each BB. */
3862 static void
3863 tm_memopt_free_sets (vec<basic_block> blocks)
3865 size_t i;
3866 basic_block bb;
3868 for (i = 0; blocks.iterate (i, &bb); ++i)
3869 bb->aux = NULL;
3872 /* Clear the visited bit for every basic block in BLOCKS. */
3874 static void
3875 tm_memopt_clear_visited (vec<basic_block> blocks)
3877 size_t i;
3878 basic_block bb;
3880 for (i = 0; blocks.iterate (i, &bb); ++i)
3881 BB_VISITED_P (bb) = false;
3884 /* Replace TM load/stores with hints for the runtime. We handle
3885 things like read-after-write, write-after-read, read-after-read,
3886 read-for-write, etc. */
3888 static unsigned int
3889 execute_tm_memopt (void)
3891 struct tm_region *region;
3892 vec<basic_block> bbs;
3894 tm_memopt_value_id = 0;
3895 tm_memopt_value_numbers.create (10);
3897 for (region = all_tm_regions; region; region = region->next)
3899 /* All the TM stores/loads in the current region. */
3900 size_t i;
3901 basic_block bb;
3903 bitmap_obstack_initialize (&tm_memopt_obstack);
3905 /* Save all BBs for the current region. */
3906 bbs = get_tm_region_blocks (region->entry_block,
3907 region->exit_blocks,
3908 region->irr_blocks,
3909 NULL,
3910 false);
3912 /* Collect all the memory operations. */
3913 for (i = 0; bbs.iterate (i, &bb); ++i)
3915 bb->aux = tm_memopt_init_sets ();
3916 tm_memopt_accumulate_memops (bb);
3919 /* Solve data flow equations and transform each block accordingly. */
3920 tm_memopt_clear_visited (bbs);
3921 tm_memopt_compute_available (region, bbs);
3922 tm_memopt_clear_visited (bbs);
3923 tm_memopt_compute_antic (region, bbs);
3924 tm_memopt_transform_blocks (bbs);
3926 tm_memopt_free_sets (bbs);
3927 bbs.release ();
3928 bitmap_obstack_release (&tm_memopt_obstack);
3929 tm_memopt_value_numbers.empty ();
3932 tm_memopt_value_numbers.dispose ();
3933 return 0;
3936 static bool
3937 gate_tm_memopt (void)
3939 return flag_tm && optimize > 0;
3942 namespace {
3944 const pass_data pass_data_tm_memopt =
3946 GIMPLE_PASS, /* type */
3947 "tmmemopt", /* name */
3948 OPTGROUP_NONE, /* optinfo_flags */
3949 true, /* has_gate */
3950 true, /* has_execute */
3951 TV_TRANS_MEM, /* tv_id */
3952 ( PROP_ssa | PROP_cfg ), /* properties_required */
3953 0, /* properties_provided */
3954 0, /* properties_destroyed */
3955 0, /* todo_flags_start */
3956 0, /* todo_flags_finish */
3959 class pass_tm_memopt : public gimple_opt_pass
3961 public:
3962 pass_tm_memopt (gcc::context *ctxt)
3963 : gimple_opt_pass (pass_data_tm_memopt, ctxt)
3966 /* opt_pass methods: */
3967 bool gate () { return gate_tm_memopt (); }
3968 unsigned int execute () { return execute_tm_memopt (); }
3970 }; // class pass_tm_memopt
3972 } // anon namespace
3974 gimple_opt_pass *
3975 make_pass_tm_memopt (gcc::context *ctxt)
3977 return new pass_tm_memopt (ctxt);
3981 /* Interprocedual analysis for the creation of transactional clones.
3982 The aim of this pass is to find which functions are referenced in
3983 a non-irrevocable transaction context, and for those over which
3984 we have control (or user directive), create a version of the
3985 function which uses only the transactional interface to reference
3986 protected memories. This analysis proceeds in several steps:
3988 (1) Collect the set of all possible transactional clones:
3990 (a) For all local public functions marked tm_callable, push
3991 it onto the tm_callee queue.
3993 (b) For all local functions, scan for calls in transaction blocks.
3994 Push the caller and callee onto the tm_caller and tm_callee
3995 queues. Count the number of callers for each callee.
3997 (c) For each local function on the callee list, assume we will
3998 create a transactional clone. Push *all* calls onto the
3999 callee queues; count the number of clone callers separately
4000 to the number of original callers.
4002 (2) Propagate irrevocable status up the dominator tree:
4004 (a) Any external function on the callee list that is not marked
4005 tm_callable is irrevocable. Push all callers of such onto
4006 a worklist.
4008 (b) For each function on the worklist, mark each block that
4009 contains an irrevocable call. Use the AND operator to
4010 propagate that mark up the dominator tree.
4012 (c) If we reach the entry block for a possible transactional
4013 clone, then the transactional clone is irrevocable, and
4014 we should not create the clone after all. Push all
4015 callers onto the worklist.
4017 (d) Place tm_irrevocable calls at the beginning of the relevant
4018 blocks. Special case here is the entry block for the entire
4019 transaction region; there we mark it GTMA_DOES_GO_IRREVOCABLE for
4020 the library to begin the region in serial mode. Decrement
4021 the call count for all callees in the irrevocable region.
4023 (3) Create the transactional clones:
4025 Any tm_callee that still has a non-zero call count is cloned.
4028 /* This structure is stored in the AUX field of each cgraph_node. */
4029 struct tm_ipa_cg_data
4031 /* The clone of the function that got created. */
4032 struct cgraph_node *clone;
4034 /* The tm regions in the normal function. */
4035 struct tm_region *all_tm_regions;
4037 /* The blocks of the normal/clone functions that contain irrevocable
4038 calls, or blocks that are post-dominated by irrevocable calls. */
4039 bitmap irrevocable_blocks_normal;
4040 bitmap irrevocable_blocks_clone;
4042 /* The blocks of the normal function that are involved in transactions. */
4043 bitmap transaction_blocks_normal;
4045 /* The number of callers to the transactional clone of this function
4046 from normal and transactional clones respectively. */
4047 unsigned tm_callers_normal;
4048 unsigned tm_callers_clone;
4050 /* True if all calls to this function's transactional clone
4051 are irrevocable. Also automatically true if the function
4052 has no transactional clone. */
4053 bool is_irrevocable;
4055 /* Flags indicating the presence of this function in various queues. */
4056 bool in_callee_queue;
4057 bool in_worklist;
4059 /* Flags indicating the kind of scan desired while in the worklist. */
4060 bool want_irr_scan_normal;
4063 typedef vec<cgraph_node_ptr> cgraph_node_queue;
4065 /* Return the ipa data associated with NODE, allocating zeroed memory
4066 if necessary. TRAVERSE_ALIASES is true if we must traverse aliases
4067 and set *NODE accordingly. */
4069 static struct tm_ipa_cg_data *
4070 get_cg_data (struct cgraph_node **node, bool traverse_aliases)
4072 struct tm_ipa_cg_data *d;
4074 if (traverse_aliases && (*node)->alias)
4075 *node = cgraph_alias_target (*node);
4077 d = (struct tm_ipa_cg_data *) (*node)->aux;
4079 if (d == NULL)
4081 d = (struct tm_ipa_cg_data *)
4082 obstack_alloc (&tm_obstack.obstack, sizeof (*d));
4083 (*node)->aux = (void *) d;
4084 memset (d, 0, sizeof (*d));
4087 return d;
4090 /* Add NODE to the end of QUEUE, unless IN_QUEUE_P indicates that
4091 it is already present. */
4093 static void
4094 maybe_push_queue (struct cgraph_node *node,
4095 cgraph_node_queue *queue_p, bool *in_queue_p)
4097 if (!*in_queue_p)
4099 *in_queue_p = true;
4100 queue_p->safe_push (node);
4104 /* Duplicate the basic blocks in QUEUE for use in the uninstrumented
4105 code path. QUEUE are the basic blocks inside the transaction
4106 represented in REGION.
4108 Later in split_code_paths() we will add the conditional to choose
4109 between the two alternatives. */
4111 static void
4112 ipa_uninstrument_transaction (struct tm_region *region,
4113 vec<basic_block> queue)
4115 gimple transaction = region->transaction_stmt;
4116 basic_block transaction_bb = gimple_bb (transaction);
4117 int n = queue.length ();
4118 basic_block *new_bbs = XNEWVEC (basic_block, n);
4120 copy_bbs (queue.address (), n, new_bbs, NULL, 0, NULL, NULL, transaction_bb,
4121 true);
4122 edge e = make_edge (transaction_bb, new_bbs[0], EDGE_TM_UNINSTRUMENTED);
4123 add_phi_args_after_copy (new_bbs, n, e);
4125 // Now we will have a GIMPLE_ATOMIC with 3 possible edges out of it.
4126 // a) EDGE_FALLTHRU into the transaction
4127 // b) EDGE_TM_ABORT out of the transaction
4128 // c) EDGE_TM_UNINSTRUMENTED into the uninstrumented blocks.
4130 free (new_bbs);
4133 /* A subroutine of ipa_tm_scan_calls_transaction and ipa_tm_scan_calls_clone.
4134 Queue all callees within block BB. */
4136 static void
4137 ipa_tm_scan_calls_block (cgraph_node_queue *callees_p,
4138 basic_block bb, bool for_clone)
4140 gimple_stmt_iterator gsi;
4142 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
4144 gimple stmt = gsi_stmt (gsi);
4145 if (is_gimple_call (stmt) && !is_tm_pure_call (stmt))
4147 tree fndecl = gimple_call_fndecl (stmt);
4148 if (fndecl)
4150 struct tm_ipa_cg_data *d;
4151 unsigned *pcallers;
4152 struct cgraph_node *node;
4154 if (is_tm_ending_fndecl (fndecl))
4155 continue;
4156 if (find_tm_replacement_function (fndecl))
4157 continue;
4159 node = cgraph_get_node (fndecl);
4160 gcc_assert (node != NULL);
4161 d = get_cg_data (&node, true);
4163 pcallers = (for_clone ? &d->tm_callers_clone
4164 : &d->tm_callers_normal);
4165 *pcallers += 1;
4167 maybe_push_queue (node, callees_p, &d->in_callee_queue);
4173 /* Scan all calls in NODE that are within a transaction region,
4174 and push the resulting nodes into the callee queue. */
4176 static void
4177 ipa_tm_scan_calls_transaction (struct tm_ipa_cg_data *d,
4178 cgraph_node_queue *callees_p)
4180 struct tm_region *r;
4182 d->transaction_blocks_normal = BITMAP_ALLOC (&tm_obstack);
4183 d->all_tm_regions = all_tm_regions;
4185 for (r = all_tm_regions; r; r = r->next)
4187 vec<basic_block> bbs;
4188 basic_block bb;
4189 unsigned i;
4191 bbs = get_tm_region_blocks (r->entry_block, r->exit_blocks, NULL,
4192 d->transaction_blocks_normal, false);
4194 // Generate the uninstrumented code path for this transaction.
4195 ipa_uninstrument_transaction (r, bbs);
4197 FOR_EACH_VEC_ELT (bbs, i, bb)
4198 ipa_tm_scan_calls_block (callees_p, bb, false);
4200 bbs.release ();
4203 // ??? copy_bbs should maintain cgraph edges for the blocks as it is
4204 // copying them, rather than forcing us to do this externally.
4205 rebuild_cgraph_edges ();
4207 // ??? In ipa_uninstrument_transaction we don't try to update dominators
4208 // because copy_bbs doesn't return a VEC like iterate_fix_dominators expects.
4209 // Instead, just release dominators here so update_ssa recomputes them.
4210 free_dominance_info (CDI_DOMINATORS);
4212 // When building the uninstrumented code path, copy_bbs will have invoked
4213 // create_new_def_for starting an "ssa update context". There is only one
4214 // instance of this context, so resolve ssa updates before moving on to
4215 // the next function.
4216 update_ssa (TODO_update_ssa);
4219 /* Scan all calls in NODE as if this is the transactional clone,
4220 and push the destinations into the callee queue. */
4222 static void
4223 ipa_tm_scan_calls_clone (struct cgraph_node *node,
4224 cgraph_node_queue *callees_p)
4226 struct function *fn = DECL_STRUCT_FUNCTION (node->decl);
4227 basic_block bb;
4229 FOR_EACH_BB_FN (bb, fn)
4230 ipa_tm_scan_calls_block (callees_p, bb, true);
4233 /* The function NODE has been detected to be irrevocable. Push all
4234 of its callers onto WORKLIST for the purpose of re-scanning them. */
4236 static void
4237 ipa_tm_note_irrevocable (struct cgraph_node *node,
4238 cgraph_node_queue *worklist_p)
4240 struct tm_ipa_cg_data *d = get_cg_data (&node, true);
4241 struct cgraph_edge *e;
4243 d->is_irrevocable = true;
4245 for (e = node->callers; e ; e = e->next_caller)
4247 basic_block bb;
4248 struct cgraph_node *caller;
4250 /* Don't examine recursive calls. */
4251 if (e->caller == node)
4252 continue;
4253 /* Even if we think we can go irrevocable, believe the user
4254 above all. */
4255 if (is_tm_safe_or_pure (e->caller->decl))
4256 continue;
4258 caller = e->caller;
4259 d = get_cg_data (&caller, true);
4261 /* Check if the callee is in a transactional region. If so,
4262 schedule the function for normal re-scan as well. */
4263 bb = gimple_bb (e->call_stmt);
4264 gcc_assert (bb != NULL);
4265 if (d->transaction_blocks_normal
4266 && bitmap_bit_p (d->transaction_blocks_normal, bb->index))
4267 d->want_irr_scan_normal = true;
4269 maybe_push_queue (caller, worklist_p, &d->in_worklist);
4273 /* A subroutine of ipa_tm_scan_irr_blocks; return true iff any statement
4274 within the block is irrevocable. */
4276 static bool
4277 ipa_tm_scan_irr_block (basic_block bb)
4279 gimple_stmt_iterator gsi;
4280 tree fn;
4282 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
4284 gimple stmt = gsi_stmt (gsi);
4285 switch (gimple_code (stmt))
4287 case GIMPLE_ASSIGN:
4288 if (gimple_assign_single_p (stmt))
4290 tree lhs = gimple_assign_lhs (stmt);
4291 tree rhs = gimple_assign_rhs1 (stmt);
4292 if (volatile_var_p (lhs) || volatile_var_p (rhs))
4293 return true;
4295 break;
4297 case GIMPLE_CALL:
4299 tree lhs = gimple_call_lhs (stmt);
4300 if (lhs && volatile_var_p (lhs))
4301 return true;
4303 if (is_tm_pure_call (stmt))
4304 break;
4306 fn = gimple_call_fn (stmt);
4308 /* Functions with the attribute are by definition irrevocable. */
4309 if (is_tm_irrevocable (fn))
4310 return true;
4312 /* For direct function calls, go ahead and check for replacement
4313 functions, or transitive irrevocable functions. For indirect
4314 functions, we'll ask the runtime. */
4315 if (TREE_CODE (fn) == ADDR_EXPR)
4317 struct tm_ipa_cg_data *d;
4318 struct cgraph_node *node;
4320 fn = TREE_OPERAND (fn, 0);
4321 if (is_tm_ending_fndecl (fn))
4322 break;
4323 if (find_tm_replacement_function (fn))
4324 break;
4326 node = cgraph_get_node (fn);
4327 d = get_cg_data (&node, true);
4329 /* Return true if irrevocable, but above all, believe
4330 the user. */
4331 if (d->is_irrevocable
4332 && !is_tm_safe_or_pure (fn))
4333 return true;
4335 break;
4338 case GIMPLE_ASM:
4339 /* ??? The Approved Method of indicating that an inline
4340 assembly statement is not relevant to the transaction
4341 is to wrap it in a __tm_waiver block. This is not
4342 yet implemented, so we can't check for it. */
4343 if (is_tm_safe (current_function_decl))
4345 tree t = build1 (NOP_EXPR, void_type_node, size_zero_node);
4346 SET_EXPR_LOCATION (t, gimple_location (stmt));
4347 error ("%Kasm not allowed in %<transaction_safe%> function", t);
4349 return true;
4351 default:
4352 break;
4356 return false;
4359 /* For each of the blocks seeded witin PQUEUE, walk the CFG looking
4360 for new irrevocable blocks, marking them in NEW_IRR. Don't bother
4361 scanning past OLD_IRR or EXIT_BLOCKS. */
4363 static bool
4364 ipa_tm_scan_irr_blocks (vec<basic_block> *pqueue, bitmap new_irr,
4365 bitmap old_irr, bitmap exit_blocks)
4367 bool any_new_irr = false;
4368 edge e;
4369 edge_iterator ei;
4370 bitmap visited_blocks = BITMAP_ALLOC (NULL);
4374 basic_block bb = pqueue->pop ();
4376 /* Don't re-scan blocks we know already are irrevocable. */
4377 if (old_irr && bitmap_bit_p (old_irr, bb->index))
4378 continue;
4380 if (ipa_tm_scan_irr_block (bb))
4382 bitmap_set_bit (new_irr, bb->index);
4383 any_new_irr = true;
4385 else if (exit_blocks == NULL || !bitmap_bit_p (exit_blocks, bb->index))
4387 FOR_EACH_EDGE (e, ei, bb->succs)
4388 if (!bitmap_bit_p (visited_blocks, e->dest->index))
4390 bitmap_set_bit (visited_blocks, e->dest->index);
4391 pqueue->safe_push (e->dest);
4395 while (!pqueue->is_empty ());
4397 BITMAP_FREE (visited_blocks);
4399 return any_new_irr;
4402 /* Propagate the irrevocable property both up and down the dominator tree.
4403 BB is the current block being scanned; EXIT_BLOCKS are the edges of the
4404 TM regions; OLD_IRR are the results of a previous scan of the dominator
4405 tree which has been fully propagated; NEW_IRR is the set of new blocks
4406 which are gaining the irrevocable property during the current scan. */
4408 static void
4409 ipa_tm_propagate_irr (basic_block entry_block, bitmap new_irr,
4410 bitmap old_irr, bitmap exit_blocks)
4412 vec<basic_block> bbs;
4413 bitmap all_region_blocks;
4415 /* If this block is in the old set, no need to rescan. */
4416 if (old_irr && bitmap_bit_p (old_irr, entry_block->index))
4417 return;
4419 all_region_blocks = BITMAP_ALLOC (&tm_obstack);
4420 bbs = get_tm_region_blocks (entry_block, exit_blocks, NULL,
4421 all_region_blocks, false);
4424 basic_block bb = bbs.pop ();
4425 bool this_irr = bitmap_bit_p (new_irr, bb->index);
4426 bool all_son_irr = false;
4427 edge_iterator ei;
4428 edge e;
4430 /* Propagate up. If my children are, I am too, but we must have
4431 at least one child that is. */
4432 if (!this_irr)
4434 FOR_EACH_EDGE (e, ei, bb->succs)
4436 if (!bitmap_bit_p (new_irr, e->dest->index))
4438 all_son_irr = false;
4439 break;
4441 else
4442 all_son_irr = true;
4444 if (all_son_irr)
4446 /* Add block to new_irr if it hasn't already been processed. */
4447 if (!old_irr || !bitmap_bit_p (old_irr, bb->index))
4449 bitmap_set_bit (new_irr, bb->index);
4450 this_irr = true;
4455 /* Propagate down to everyone we immediately dominate. */
4456 if (this_irr)
4458 basic_block son;
4459 for (son = first_dom_son (CDI_DOMINATORS, bb);
4460 son;
4461 son = next_dom_son (CDI_DOMINATORS, son))
4463 /* Make sure block is actually in a TM region, and it
4464 isn't already in old_irr. */
4465 if ((!old_irr || !bitmap_bit_p (old_irr, son->index))
4466 && bitmap_bit_p (all_region_blocks, son->index))
4467 bitmap_set_bit (new_irr, son->index);
4471 while (!bbs.is_empty ());
4473 BITMAP_FREE (all_region_blocks);
4474 bbs.release ();
4477 static void
4478 ipa_tm_decrement_clone_counts (basic_block bb, bool for_clone)
4480 gimple_stmt_iterator gsi;
4482 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
4484 gimple stmt = gsi_stmt (gsi);
4485 if (is_gimple_call (stmt) && !is_tm_pure_call (stmt))
4487 tree fndecl = gimple_call_fndecl (stmt);
4488 if (fndecl)
4490 struct tm_ipa_cg_data *d;
4491 unsigned *pcallers;
4492 struct cgraph_node *tnode;
4494 if (is_tm_ending_fndecl (fndecl))
4495 continue;
4496 if (find_tm_replacement_function (fndecl))
4497 continue;
4499 tnode = cgraph_get_node (fndecl);
4500 d = get_cg_data (&tnode, true);
4502 pcallers = (for_clone ? &d->tm_callers_clone
4503 : &d->tm_callers_normal);
4505 gcc_assert (*pcallers > 0);
4506 *pcallers -= 1;
4512 /* (Re-)Scan the transaction blocks in NODE for calls to irrevocable functions,
4513 as well as other irrevocable actions such as inline assembly. Mark all
4514 such blocks as irrevocable and decrement the number of calls to
4515 transactional clones. Return true if, for the transactional clone, the
4516 entire function is irrevocable. */
4518 static bool
4519 ipa_tm_scan_irr_function (struct cgraph_node *node, bool for_clone)
4521 struct tm_ipa_cg_data *d;
4522 bitmap new_irr, old_irr;
4523 bool ret = false;
4525 /* Builtin operators (operator new, and such). */
4526 if (DECL_STRUCT_FUNCTION (node->decl) == NULL
4527 || DECL_STRUCT_FUNCTION (node->decl)->cfg == NULL)
4528 return false;
4530 push_cfun (DECL_STRUCT_FUNCTION (node->decl));
4531 calculate_dominance_info (CDI_DOMINATORS);
4533 d = get_cg_data (&node, true);
4534 stack_vec<basic_block, 10> queue;
4535 new_irr = BITMAP_ALLOC (&tm_obstack);
4537 /* Scan each tm region, propagating irrevocable status through the tree. */
4538 if (for_clone)
4540 old_irr = d->irrevocable_blocks_clone;
4541 queue.quick_push (single_succ (ENTRY_BLOCK_PTR_FOR_FN (cfun)));
4542 if (ipa_tm_scan_irr_blocks (&queue, new_irr, old_irr, NULL))
4544 ipa_tm_propagate_irr (single_succ (ENTRY_BLOCK_PTR_FOR_FN (cfun)),
4545 new_irr,
4546 old_irr, NULL);
4547 ret = bitmap_bit_p (new_irr,
4548 single_succ (ENTRY_BLOCK_PTR_FOR_FN (cfun))->index);
4551 else
4553 struct tm_region *region;
4555 old_irr = d->irrevocable_blocks_normal;
4556 for (region = d->all_tm_regions; region; region = region->next)
4558 queue.quick_push (region->entry_block);
4559 if (ipa_tm_scan_irr_blocks (&queue, new_irr, old_irr,
4560 region->exit_blocks))
4561 ipa_tm_propagate_irr (region->entry_block, new_irr, old_irr,
4562 region->exit_blocks);
4566 /* If we found any new irrevocable blocks, reduce the call count for
4567 transactional clones within the irrevocable blocks. Save the new
4568 set of irrevocable blocks for next time. */
4569 if (!bitmap_empty_p (new_irr))
4571 bitmap_iterator bmi;
4572 unsigned i;
4574 EXECUTE_IF_SET_IN_BITMAP (new_irr, 0, i, bmi)
4575 ipa_tm_decrement_clone_counts (BASIC_BLOCK (i), for_clone);
4577 if (old_irr)
4579 bitmap_ior_into (old_irr, new_irr);
4580 BITMAP_FREE (new_irr);
4582 else if (for_clone)
4583 d->irrevocable_blocks_clone = new_irr;
4584 else
4585 d->irrevocable_blocks_normal = new_irr;
4587 if (dump_file && new_irr)
4589 const char *dname;
4590 bitmap_iterator bmi;
4591 unsigned i;
4593 dname = lang_hooks.decl_printable_name (current_function_decl, 2);
4594 EXECUTE_IF_SET_IN_BITMAP (new_irr, 0, i, bmi)
4595 fprintf (dump_file, "%s: bb %d goes irrevocable\n", dname, i);
4598 else
4599 BITMAP_FREE (new_irr);
4601 pop_cfun ();
4603 return ret;
4606 /* Return true if, for the transactional clone of NODE, any call
4607 may enter irrevocable mode. */
4609 static bool
4610 ipa_tm_mayenterirr_function (struct cgraph_node *node)
4612 struct tm_ipa_cg_data *d;
4613 tree decl;
4614 unsigned flags;
4616 d = get_cg_data (&node, true);
4617 decl = node->decl;
4618 flags = flags_from_decl_or_type (decl);
4620 /* Handle some TM builtins. Ordinarily these aren't actually generated
4621 at this point, but handling these functions when written in by the
4622 user makes it easier to build unit tests. */
4623 if (flags & ECF_TM_BUILTIN)
4624 return false;
4626 /* Filter out all functions that are marked. */
4627 if (flags & ECF_TM_PURE)
4628 return false;
4629 if (is_tm_safe (decl))
4630 return false;
4631 if (is_tm_irrevocable (decl))
4632 return true;
4633 if (is_tm_callable (decl))
4634 return true;
4635 if (find_tm_replacement_function (decl))
4636 return true;
4638 /* If we aren't seeing the final version of the function we don't
4639 know what it will contain at runtime. */
4640 if (cgraph_function_body_availability (node) < AVAIL_AVAILABLE)
4641 return true;
4643 /* If the function must go irrevocable, then of course true. */
4644 if (d->is_irrevocable)
4645 return true;
4647 /* If there are any blocks marked irrevocable, then the function
4648 as a whole may enter irrevocable. */
4649 if (d->irrevocable_blocks_clone)
4650 return true;
4652 /* We may have previously marked this function as tm_may_enter_irr;
4653 see pass_diagnose_tm_blocks. */
4654 if (node->local.tm_may_enter_irr)
4655 return true;
4657 /* Recurse on the main body for aliases. In general, this will
4658 result in one of the bits above being set so that we will not
4659 have to recurse next time. */
4660 if (node->alias)
4661 return ipa_tm_mayenterirr_function (cgraph_get_node (node->thunk.alias));
4663 /* What remains is unmarked local functions without items that force
4664 the function to go irrevocable. */
4665 return false;
4668 /* Diagnose calls from transaction_safe functions to unmarked
4669 functions that are determined to not be safe. */
4671 static void
4672 ipa_tm_diagnose_tm_safe (struct cgraph_node *node)
4674 struct cgraph_edge *e;
4676 for (e = node->callees; e ; e = e->next_callee)
4677 if (!is_tm_callable (e->callee->decl)
4678 && e->callee->local.tm_may_enter_irr)
4679 error_at (gimple_location (e->call_stmt),
4680 "unsafe function call %qD within "
4681 "%<transaction_safe%> function", e->callee->decl);
4684 /* Diagnose call from atomic transactions to unmarked functions
4685 that are determined to not be safe. */
4687 static void
4688 ipa_tm_diagnose_transaction (struct cgraph_node *node,
4689 struct tm_region *all_tm_regions)
4691 struct tm_region *r;
4693 for (r = all_tm_regions; r ; r = r->next)
4694 if (gimple_transaction_subcode (r->transaction_stmt) & GTMA_IS_RELAXED)
4696 /* Atomic transactions can be nested inside relaxed. */
4697 if (r->inner)
4698 ipa_tm_diagnose_transaction (node, r->inner);
4700 else
4702 vec<basic_block> bbs;
4703 gimple_stmt_iterator gsi;
4704 basic_block bb;
4705 size_t i;
4707 bbs = get_tm_region_blocks (r->entry_block, r->exit_blocks,
4708 r->irr_blocks, NULL, false);
4710 for (i = 0; bbs.iterate (i, &bb); ++i)
4711 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
4713 gimple stmt = gsi_stmt (gsi);
4714 tree fndecl;
4716 if (gimple_code (stmt) == GIMPLE_ASM)
4718 error_at (gimple_location (stmt),
4719 "asm not allowed in atomic transaction");
4720 continue;
4723 if (!is_gimple_call (stmt))
4724 continue;
4725 fndecl = gimple_call_fndecl (stmt);
4727 /* Indirect function calls have been diagnosed already. */
4728 if (!fndecl)
4729 continue;
4731 /* Stop at the end of the transaction. */
4732 if (is_tm_ending_fndecl (fndecl))
4734 if (bitmap_bit_p (r->exit_blocks, bb->index))
4735 break;
4736 continue;
4739 /* Marked functions have been diagnosed already. */
4740 if (is_tm_pure_call (stmt))
4741 continue;
4742 if (is_tm_callable (fndecl))
4743 continue;
4745 if (cgraph_local_info (fndecl)->tm_may_enter_irr)
4746 error_at (gimple_location (stmt),
4747 "unsafe function call %qD within "
4748 "atomic transaction", fndecl);
4751 bbs.release ();
4755 /* Return a transactional mangled name for the DECL_ASSEMBLER_NAME in
4756 OLD_DECL. The returned value is a freshly malloced pointer that
4757 should be freed by the caller. */
4759 static tree
4760 tm_mangle (tree old_asm_id)
4762 const char *old_asm_name;
4763 char *tm_name;
4764 void *alloc = NULL;
4765 struct demangle_component *dc;
4766 tree new_asm_id;
4768 /* Determine if the symbol is already a valid C++ mangled name. Do this
4769 even for C, which might be interfacing with C++ code via appropriately
4770 ugly identifiers. */
4771 /* ??? We could probably do just as well checking for "_Z" and be done. */
4772 old_asm_name = IDENTIFIER_POINTER (old_asm_id);
4773 dc = cplus_demangle_v3_components (old_asm_name, DMGL_NO_OPTS, &alloc);
4775 if (dc == NULL)
4777 char length[8];
4779 do_unencoded:
4780 sprintf (length, "%u", IDENTIFIER_LENGTH (old_asm_id));
4781 tm_name = concat ("_ZGTt", length, old_asm_name, NULL);
4783 else
4785 old_asm_name += 2; /* Skip _Z */
4787 switch (dc->type)
4789 case DEMANGLE_COMPONENT_TRANSACTION_CLONE:
4790 case DEMANGLE_COMPONENT_NONTRANSACTION_CLONE:
4791 /* Don't play silly games, you! */
4792 goto do_unencoded;
4794 case DEMANGLE_COMPONENT_HIDDEN_ALIAS:
4795 /* I'd really like to know if we can ever be passed one of
4796 these from the C++ front end. The Logical Thing would
4797 seem that hidden-alias should be outer-most, so that we
4798 get hidden-alias of a transaction-clone and not vice-versa. */
4799 old_asm_name += 2;
4800 break;
4802 default:
4803 break;
4806 tm_name = concat ("_ZGTt", old_asm_name, NULL);
4808 free (alloc);
4810 new_asm_id = get_identifier (tm_name);
4811 free (tm_name);
4813 return new_asm_id;
4816 static inline void
4817 ipa_tm_mark_force_output_node (struct cgraph_node *node)
4819 cgraph_mark_force_output_node (node);
4820 node->analyzed = true;
4823 static inline void
4824 ipa_tm_mark_forced_by_abi_node (struct cgraph_node *node)
4826 node->forced_by_abi = true;
4827 node->analyzed = true;
4830 /* Callback data for ipa_tm_create_version_alias. */
4831 struct create_version_alias_info
4833 struct cgraph_node *old_node;
4834 tree new_decl;
4837 /* A subroutine of ipa_tm_create_version, called via
4838 cgraph_for_node_and_aliases. Create new tm clones for each of
4839 the existing aliases. */
4840 static bool
4841 ipa_tm_create_version_alias (struct cgraph_node *node, void *data)
4843 struct create_version_alias_info *info
4844 = (struct create_version_alias_info *)data;
4845 tree old_decl, new_decl, tm_name;
4846 struct cgraph_node *new_node;
4848 if (!node->cpp_implicit_alias)
4849 return false;
4851 old_decl = node->decl;
4852 tm_name = tm_mangle (DECL_ASSEMBLER_NAME (old_decl));
4853 new_decl = build_decl (DECL_SOURCE_LOCATION (old_decl),
4854 TREE_CODE (old_decl), tm_name,
4855 TREE_TYPE (old_decl));
4857 SET_DECL_ASSEMBLER_NAME (new_decl, tm_name);
4858 SET_DECL_RTL (new_decl, NULL);
4860 /* Based loosely on C++'s make_alias_for(). */
4861 TREE_PUBLIC (new_decl) = TREE_PUBLIC (old_decl);
4862 DECL_CONTEXT (new_decl) = DECL_CONTEXT (old_decl);
4863 DECL_LANG_SPECIFIC (new_decl) = DECL_LANG_SPECIFIC (old_decl);
4864 TREE_READONLY (new_decl) = TREE_READONLY (old_decl);
4865 DECL_EXTERNAL (new_decl) = 0;
4866 DECL_ARTIFICIAL (new_decl) = 1;
4867 TREE_ADDRESSABLE (new_decl) = 1;
4868 TREE_USED (new_decl) = 1;
4869 TREE_SYMBOL_REFERENCED (tm_name) = 1;
4871 /* Perform the same remapping to the comdat group. */
4872 if (DECL_ONE_ONLY (new_decl))
4873 DECL_COMDAT_GROUP (new_decl) = tm_mangle (DECL_COMDAT_GROUP (old_decl));
4875 new_node = cgraph_same_body_alias (NULL, new_decl, info->new_decl);
4876 new_node->tm_clone = true;
4877 new_node->externally_visible = info->old_node->externally_visible;
4878 /* ?? Do not traverse aliases here. */
4879 get_cg_data (&node, false)->clone = new_node;
4881 record_tm_clone_pair (old_decl, new_decl);
4883 if (info->old_node->force_output
4884 || ipa_ref_list_first_referring (&info->old_node->ref_list))
4885 ipa_tm_mark_force_output_node (new_node);
4886 if (info->old_node->forced_by_abi)
4887 ipa_tm_mark_forced_by_abi_node (new_node);
4888 return false;
4891 /* Create a copy of the function (possibly declaration only) of OLD_NODE,
4892 appropriate for the transactional clone. */
4894 static void
4895 ipa_tm_create_version (struct cgraph_node *old_node)
4897 tree new_decl, old_decl, tm_name;
4898 struct cgraph_node *new_node;
4900 old_decl = old_node->decl;
4901 new_decl = copy_node (old_decl);
4903 /* DECL_ASSEMBLER_NAME needs to be set before we call
4904 cgraph_copy_node_for_versioning below, because cgraph_node will
4905 fill the assembler_name_hash. */
4906 tm_name = tm_mangle (DECL_ASSEMBLER_NAME (old_decl));
4907 SET_DECL_ASSEMBLER_NAME (new_decl, tm_name);
4908 SET_DECL_RTL (new_decl, NULL);
4909 TREE_SYMBOL_REFERENCED (tm_name) = 1;
4911 /* Perform the same remapping to the comdat group. */
4912 if (DECL_ONE_ONLY (new_decl))
4913 DECL_COMDAT_GROUP (new_decl) = tm_mangle (DECL_COMDAT_GROUP (old_decl));
4915 new_node = cgraph_copy_node_for_versioning (old_node, new_decl, vNULL, NULL);
4916 new_node->local.local = false;
4917 new_node->externally_visible = old_node->externally_visible;
4918 new_node->lowered = true;
4919 new_node->tm_clone = 1;
4920 get_cg_data (&old_node, true)->clone = new_node;
4922 if (cgraph_function_body_availability (old_node) >= AVAIL_OVERWRITABLE)
4924 /* Remap extern inline to static inline. */
4925 /* ??? Is it worth trying to use make_decl_one_only? */
4926 if (DECL_DECLARED_INLINE_P (new_decl) && DECL_EXTERNAL (new_decl))
4928 DECL_EXTERNAL (new_decl) = 0;
4929 TREE_PUBLIC (new_decl) = 0;
4930 DECL_WEAK (new_decl) = 0;
4933 tree_function_versioning (old_decl, new_decl,
4934 NULL, false, NULL,
4935 false, NULL, NULL);
4938 record_tm_clone_pair (old_decl, new_decl);
4940 cgraph_call_function_insertion_hooks (new_node);
4941 if (old_node->force_output
4942 || ipa_ref_list_first_referring (&old_node->ref_list))
4943 ipa_tm_mark_force_output_node (new_node);
4944 if (old_node->forced_by_abi)
4945 ipa_tm_mark_forced_by_abi_node (new_node);
4947 /* Do the same thing, but for any aliases of the original node. */
4949 struct create_version_alias_info data;
4950 data.old_node = old_node;
4951 data.new_decl = new_decl;
4952 cgraph_for_node_and_aliases (old_node, ipa_tm_create_version_alias,
4953 &data, true);
4957 /* Construct a call to TM_IRREVOCABLE and insert it at the beginning of BB. */
4959 static void
4960 ipa_tm_insert_irr_call (struct cgraph_node *node, struct tm_region *region,
4961 basic_block bb)
4963 gimple_stmt_iterator gsi;
4964 gimple g;
4966 transaction_subcode_ior (region, GTMA_MAY_ENTER_IRREVOCABLE);
4968 g = gimple_build_call (builtin_decl_explicit (BUILT_IN_TM_IRREVOCABLE),
4969 1, build_int_cst (NULL_TREE, MODE_SERIALIRREVOCABLE));
4971 split_block_after_labels (bb);
4972 gsi = gsi_after_labels (bb);
4973 gsi_insert_before (&gsi, g, GSI_SAME_STMT);
4975 cgraph_create_edge (node,
4976 cgraph_get_create_node
4977 (builtin_decl_explicit (BUILT_IN_TM_IRREVOCABLE)),
4978 g, 0,
4979 compute_call_stmt_bb_frequency (node->decl,
4980 gimple_bb (g)));
4983 /* Construct a call to TM_GETTMCLONE and insert it before GSI. */
4985 static bool
4986 ipa_tm_insert_gettmclone_call (struct cgraph_node *node,
4987 struct tm_region *region,
4988 gimple_stmt_iterator *gsi, gimple stmt)
4990 tree gettm_fn, ret, old_fn, callfn;
4991 gimple g, g2;
4992 bool safe;
4994 old_fn = gimple_call_fn (stmt);
4996 if (TREE_CODE (old_fn) == ADDR_EXPR)
4998 tree fndecl = TREE_OPERAND (old_fn, 0);
4999 tree clone = get_tm_clone_pair (fndecl);
5001 /* By transforming the call into a TM_GETTMCLONE, we are
5002 technically taking the address of the original function and
5003 its clone. Explain this so inlining will know this function
5004 is needed. */
5005 cgraph_mark_address_taken_node (cgraph_get_node (fndecl));
5006 if (clone)
5007 cgraph_mark_address_taken_node (cgraph_get_node (clone));
5010 safe = is_tm_safe (TREE_TYPE (old_fn));
5011 gettm_fn = builtin_decl_explicit (safe ? BUILT_IN_TM_GETTMCLONE_SAFE
5012 : BUILT_IN_TM_GETTMCLONE_IRR);
5013 ret = create_tmp_var (ptr_type_node, NULL);
5015 if (!safe)
5016 transaction_subcode_ior (region, GTMA_MAY_ENTER_IRREVOCABLE);
5018 /* Discard OBJ_TYPE_REF, since we weren't able to fold it. */
5019 if (TREE_CODE (old_fn) == OBJ_TYPE_REF)
5020 old_fn = OBJ_TYPE_REF_EXPR (old_fn);
5022 g = gimple_build_call (gettm_fn, 1, old_fn);
5023 ret = make_ssa_name (ret, g);
5024 gimple_call_set_lhs (g, ret);
5026 gsi_insert_before (gsi, g, GSI_SAME_STMT);
5028 cgraph_create_edge (node, cgraph_get_create_node (gettm_fn), g, 0,
5029 compute_call_stmt_bb_frequency (node->decl,
5030 gimple_bb (g)));
5032 /* Cast return value from tm_gettmclone* into appropriate function
5033 pointer. */
5034 callfn = create_tmp_var (TREE_TYPE (old_fn), NULL);
5035 g2 = gimple_build_assign (callfn,
5036 fold_build1 (NOP_EXPR, TREE_TYPE (callfn), ret));
5037 callfn = make_ssa_name (callfn, g2);
5038 gimple_assign_set_lhs (g2, callfn);
5039 gsi_insert_before (gsi, g2, GSI_SAME_STMT);
5041 /* ??? This is a hack to preserve the NOTHROW bit on the call,
5042 which we would have derived from the decl. Failure to save
5043 this bit means we might have to split the basic block. */
5044 if (gimple_call_nothrow_p (stmt))
5045 gimple_call_set_nothrow (stmt, true);
5047 gimple_call_set_fn (stmt, callfn);
5049 /* Discarding OBJ_TYPE_REF above may produce incompatible LHS and RHS
5050 for a call statement. Fix it. */
5052 tree lhs = gimple_call_lhs (stmt);
5053 tree rettype = TREE_TYPE (gimple_call_fntype (stmt));
5054 if (lhs
5055 && !useless_type_conversion_p (TREE_TYPE (lhs), rettype))
5057 tree temp;
5059 temp = create_tmp_reg (rettype, 0);
5060 gimple_call_set_lhs (stmt, temp);
5062 g2 = gimple_build_assign (lhs,
5063 fold_build1 (VIEW_CONVERT_EXPR,
5064 TREE_TYPE (lhs), temp));
5065 gsi_insert_after (gsi, g2, GSI_SAME_STMT);
5069 update_stmt (stmt);
5071 return true;
5074 /* Helper function for ipa_tm_transform_calls*. Given a call
5075 statement in GSI which resides inside transaction REGION, redirect
5076 the call to either its wrapper function, or its clone. */
5078 static void
5079 ipa_tm_transform_calls_redirect (struct cgraph_node *node,
5080 struct tm_region *region,
5081 gimple_stmt_iterator *gsi,
5082 bool *need_ssa_rename_p)
5084 gimple stmt = gsi_stmt (*gsi);
5085 struct cgraph_node *new_node;
5086 struct cgraph_edge *e = cgraph_edge (node, stmt);
5087 tree fndecl = gimple_call_fndecl (stmt);
5089 /* For indirect calls, pass the address through the runtime. */
5090 if (fndecl == NULL)
5092 *need_ssa_rename_p |=
5093 ipa_tm_insert_gettmclone_call (node, region, gsi, stmt);
5094 return;
5097 /* Handle some TM builtins. Ordinarily these aren't actually generated
5098 at this point, but handling these functions when written in by the
5099 user makes it easier to build unit tests. */
5100 if (flags_from_decl_or_type (fndecl) & ECF_TM_BUILTIN)
5101 return;
5103 /* Fixup recursive calls inside clones. */
5104 /* ??? Why did cgraph_copy_node_for_versioning update the call edges
5105 for recursion but not update the call statements themselves? */
5106 if (e->caller == e->callee && decl_is_tm_clone (current_function_decl))
5108 gimple_call_set_fndecl (stmt, current_function_decl);
5109 return;
5112 /* If there is a replacement, use it. */
5113 fndecl = find_tm_replacement_function (fndecl);
5114 if (fndecl)
5116 new_node = cgraph_get_create_node (fndecl);
5118 /* ??? Mark all transaction_wrap functions tm_may_enter_irr.
5120 We can't do this earlier in record_tm_replacement because
5121 cgraph_remove_unreachable_nodes is called before we inject
5122 references to the node. Further, we can't do this in some
5123 nice central place in ipa_tm_execute because we don't have
5124 the exact list of wrapper functions that would be used.
5125 Marking more wrappers than necessary results in the creation
5126 of unnecessary cgraph_nodes, which can cause some of the
5127 other IPA passes to crash.
5129 We do need to mark these nodes so that we get the proper
5130 result in expand_call_tm. */
5131 /* ??? This seems broken. How is it that we're marking the
5132 CALLEE as may_enter_irr? Surely we should be marking the
5133 CALLER. Also note that find_tm_replacement_function also
5134 contains mappings into the TM runtime, e.g. memcpy. These
5135 we know won't go irrevocable. */
5136 new_node->local.tm_may_enter_irr = 1;
5138 else
5140 struct tm_ipa_cg_data *d;
5141 struct cgraph_node *tnode = e->callee;
5143 d = get_cg_data (&tnode, true);
5144 new_node = d->clone;
5146 /* As we've already skipped pure calls and appropriate builtins,
5147 and we've already marked irrevocable blocks, if we can't come
5148 up with a static replacement, then ask the runtime. */
5149 if (new_node == NULL)
5151 *need_ssa_rename_p |=
5152 ipa_tm_insert_gettmclone_call (node, region, gsi, stmt);
5153 return;
5156 fndecl = new_node->decl;
5159 cgraph_redirect_edge_callee (e, new_node);
5160 gimple_call_set_fndecl (stmt, fndecl);
5163 /* Helper function for ipa_tm_transform_calls. For a given BB,
5164 install calls to tm_irrevocable when IRR_BLOCKS are reached,
5165 redirect other calls to the generated transactional clone. */
5167 static bool
5168 ipa_tm_transform_calls_1 (struct cgraph_node *node, struct tm_region *region,
5169 basic_block bb, bitmap irr_blocks)
5171 gimple_stmt_iterator gsi;
5172 bool need_ssa_rename = false;
5174 if (irr_blocks && bitmap_bit_p (irr_blocks, bb->index))
5176 ipa_tm_insert_irr_call (node, region, bb);
5177 return true;
5180 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
5182 gimple stmt = gsi_stmt (gsi);
5184 if (!is_gimple_call (stmt))
5185 continue;
5186 if (is_tm_pure_call (stmt))
5187 continue;
5189 /* Redirect edges to the appropriate replacement or clone. */
5190 ipa_tm_transform_calls_redirect (node, region, &gsi, &need_ssa_rename);
5193 return need_ssa_rename;
5196 /* Walk the CFG for REGION, beginning at BB. Install calls to
5197 tm_irrevocable when IRR_BLOCKS are reached, redirect other calls to
5198 the generated transactional clone. */
5200 static bool
5201 ipa_tm_transform_calls (struct cgraph_node *node, struct tm_region *region,
5202 basic_block bb, bitmap irr_blocks)
5204 bool need_ssa_rename = false;
5205 edge e;
5206 edge_iterator ei;
5207 auto_vec<basic_block> queue;
5208 bitmap visited_blocks = BITMAP_ALLOC (NULL);
5210 queue.safe_push (bb);
5213 bb = queue.pop ();
5215 need_ssa_rename |=
5216 ipa_tm_transform_calls_1 (node, region, bb, irr_blocks);
5218 if (irr_blocks && bitmap_bit_p (irr_blocks, bb->index))
5219 continue;
5221 if (region && bitmap_bit_p (region->exit_blocks, bb->index))
5222 continue;
5224 FOR_EACH_EDGE (e, ei, bb->succs)
5225 if (!bitmap_bit_p (visited_blocks, e->dest->index))
5227 bitmap_set_bit (visited_blocks, e->dest->index);
5228 queue.safe_push (e->dest);
5231 while (!queue.is_empty ());
5233 BITMAP_FREE (visited_blocks);
5235 return need_ssa_rename;
5238 /* Transform the calls within the TM regions within NODE. */
5240 static void
5241 ipa_tm_transform_transaction (struct cgraph_node *node)
5243 struct tm_ipa_cg_data *d;
5244 struct tm_region *region;
5245 bool need_ssa_rename = false;
5247 d = get_cg_data (&node, true);
5249 push_cfun (DECL_STRUCT_FUNCTION (node->decl));
5250 calculate_dominance_info (CDI_DOMINATORS);
5252 for (region = d->all_tm_regions; region; region = region->next)
5254 /* If we're sure to go irrevocable, don't transform anything. */
5255 if (d->irrevocable_blocks_normal
5256 && bitmap_bit_p (d->irrevocable_blocks_normal,
5257 region->entry_block->index))
5259 transaction_subcode_ior (region, GTMA_DOES_GO_IRREVOCABLE
5260 | GTMA_MAY_ENTER_IRREVOCABLE
5261 | GTMA_HAS_NO_INSTRUMENTATION);
5262 continue;
5265 need_ssa_rename |=
5266 ipa_tm_transform_calls (node, region, region->entry_block,
5267 d->irrevocable_blocks_normal);
5270 if (need_ssa_rename)
5271 update_ssa (TODO_update_ssa_only_virtuals);
5273 pop_cfun ();
5276 /* Transform the calls within the transactional clone of NODE. */
5278 static void
5279 ipa_tm_transform_clone (struct cgraph_node *node)
5281 struct tm_ipa_cg_data *d;
5282 bool need_ssa_rename;
5284 d = get_cg_data (&node, true);
5286 /* If this function makes no calls and has no irrevocable blocks,
5287 then there's nothing to do. */
5288 /* ??? Remove non-aborting top-level transactions. */
5289 if (!node->callees && !node->indirect_calls && !d->irrevocable_blocks_clone)
5290 return;
5292 push_cfun (DECL_STRUCT_FUNCTION (d->clone->decl));
5293 calculate_dominance_info (CDI_DOMINATORS);
5295 need_ssa_rename =
5296 ipa_tm_transform_calls (d->clone, NULL,
5297 single_succ (ENTRY_BLOCK_PTR_FOR_FN (cfun)),
5298 d->irrevocable_blocks_clone);
5300 if (need_ssa_rename)
5301 update_ssa (TODO_update_ssa_only_virtuals);
5303 pop_cfun ();
5306 /* Main entry point for the transactional memory IPA pass. */
5308 static unsigned int
5309 ipa_tm_execute (void)
5311 cgraph_node_queue tm_callees = cgraph_node_queue ();
5312 /* List of functions that will go irrevocable. */
5313 cgraph_node_queue irr_worklist = cgraph_node_queue ();
5315 struct cgraph_node *node;
5316 struct tm_ipa_cg_data *d;
5317 enum availability a;
5318 unsigned int i;
5320 #ifdef ENABLE_CHECKING
5321 verify_cgraph ();
5322 #endif
5324 bitmap_obstack_initialize (&tm_obstack);
5325 initialize_original_copy_tables ();
5327 /* For all local functions marked tm_callable, queue them. */
5328 FOR_EACH_DEFINED_FUNCTION (node)
5329 if (is_tm_callable (node->decl)
5330 && cgraph_function_body_availability (node) >= AVAIL_OVERWRITABLE)
5332 d = get_cg_data (&node, true);
5333 maybe_push_queue (node, &tm_callees, &d->in_callee_queue);
5336 /* For all local reachable functions... */
5337 FOR_EACH_DEFINED_FUNCTION (node)
5338 if (node->lowered
5339 && cgraph_function_body_availability (node) >= AVAIL_OVERWRITABLE)
5341 /* ... marked tm_pure, record that fact for the runtime by
5342 indicating that the pure function is its own tm_callable.
5343 No need to do this if the function's address can't be taken. */
5344 if (is_tm_pure (node->decl))
5346 if (!node->local.local)
5347 record_tm_clone_pair (node->decl, node->decl);
5348 continue;
5351 push_cfun (DECL_STRUCT_FUNCTION (node->decl));
5352 calculate_dominance_info (CDI_DOMINATORS);
5354 tm_region_init (NULL);
5355 if (all_tm_regions)
5357 d = get_cg_data (&node, true);
5359 /* Scan for calls that are in each transaction, and
5360 generate the uninstrumented code path. */
5361 ipa_tm_scan_calls_transaction (d, &tm_callees);
5363 /* Put it in the worklist so we can scan the function
5364 later (ipa_tm_scan_irr_function) and mark the
5365 irrevocable blocks. */
5366 maybe_push_queue (node, &irr_worklist, &d->in_worklist);
5367 d->want_irr_scan_normal = true;
5370 pop_cfun ();
5373 /* For every local function on the callee list, scan as if we will be
5374 creating a transactional clone, queueing all new functions we find
5375 along the way. */
5376 for (i = 0; i < tm_callees.length (); ++i)
5378 node = tm_callees[i];
5379 a = cgraph_function_body_availability (node);
5380 d = get_cg_data (&node, true);
5382 /* Put it in the worklist so we can scan the function later
5383 (ipa_tm_scan_irr_function) and mark the irrevocable
5384 blocks. */
5385 maybe_push_queue (node, &irr_worklist, &d->in_worklist);
5387 /* Some callees cannot be arbitrarily cloned. These will always be
5388 irrevocable. Mark these now, so that we need not scan them. */
5389 if (is_tm_irrevocable (node->decl))
5390 ipa_tm_note_irrevocable (node, &irr_worklist);
5391 else if (a <= AVAIL_NOT_AVAILABLE
5392 && !is_tm_safe_or_pure (node->decl))
5393 ipa_tm_note_irrevocable (node, &irr_worklist);
5394 else if (a >= AVAIL_OVERWRITABLE)
5396 if (!tree_versionable_function_p (node->decl))
5397 ipa_tm_note_irrevocable (node, &irr_worklist);
5398 else if (!d->is_irrevocable)
5400 /* If this is an alias, make sure its base is queued as well.
5401 we need not scan the callees now, as the base will do. */
5402 if (node->alias)
5404 node = cgraph_get_node (node->thunk.alias);
5405 d = get_cg_data (&node, true);
5406 maybe_push_queue (node, &tm_callees, &d->in_callee_queue);
5407 continue;
5410 /* Add all nodes called by this function into
5411 tm_callees as well. */
5412 ipa_tm_scan_calls_clone (node, &tm_callees);
5417 /* Iterate scans until no more work to be done. Prefer not to use
5418 vec::pop because the worklist tends to follow a breadth-first
5419 search of the callgraph, which should allow convergance with a
5420 minimum number of scans. But we also don't want the worklist
5421 array to grow without bound, so we shift the array up periodically. */
5422 for (i = 0; i < irr_worklist.length (); ++i)
5424 if (i > 256 && i == irr_worklist.length () / 8)
5426 irr_worklist.block_remove (0, i);
5427 i = 0;
5430 node = irr_worklist[i];
5431 d = get_cg_data (&node, true);
5432 d->in_worklist = false;
5434 if (d->want_irr_scan_normal)
5436 d->want_irr_scan_normal = false;
5437 ipa_tm_scan_irr_function (node, false);
5439 if (d->in_callee_queue && ipa_tm_scan_irr_function (node, true))
5440 ipa_tm_note_irrevocable (node, &irr_worklist);
5443 /* For every function on the callee list, collect the tm_may_enter_irr
5444 bit on the node. */
5445 irr_worklist.truncate (0);
5446 for (i = 0; i < tm_callees.length (); ++i)
5448 node = tm_callees[i];
5449 if (ipa_tm_mayenterirr_function (node))
5451 d = get_cg_data (&node, true);
5452 gcc_assert (d->in_worklist == false);
5453 maybe_push_queue (node, &irr_worklist, &d->in_worklist);
5457 /* Propagate the tm_may_enter_irr bit to callers until stable. */
5458 for (i = 0; i < irr_worklist.length (); ++i)
5460 struct cgraph_node *caller;
5461 struct cgraph_edge *e;
5462 struct ipa_ref *ref;
5463 unsigned j;
5465 if (i > 256 && i == irr_worklist.length () / 8)
5467 irr_worklist.block_remove (0, i);
5468 i = 0;
5471 node = irr_worklist[i];
5472 d = get_cg_data (&node, true);
5473 d->in_worklist = false;
5474 node->local.tm_may_enter_irr = true;
5476 /* Propagate back to normal callers. */
5477 for (e = node->callers; e ; e = e->next_caller)
5479 caller = e->caller;
5480 if (!is_tm_safe_or_pure (caller->decl)
5481 && !caller->local.tm_may_enter_irr)
5483 d = get_cg_data (&caller, true);
5484 maybe_push_queue (caller, &irr_worklist, &d->in_worklist);
5488 /* Propagate back to referring aliases as well. */
5489 for (j = 0; ipa_ref_list_referring_iterate (&node->ref_list, j, ref); j++)
5491 caller = cgraph (ref->referring);
5492 if (ref->use == IPA_REF_ALIAS
5493 && !caller->local.tm_may_enter_irr)
5495 /* ?? Do not traverse aliases here. */
5496 d = get_cg_data (&caller, false);
5497 maybe_push_queue (caller, &irr_worklist, &d->in_worklist);
5502 /* Now validate all tm_safe functions, and all atomic regions in
5503 other functions. */
5504 FOR_EACH_DEFINED_FUNCTION (node)
5505 if (node->lowered
5506 && cgraph_function_body_availability (node) >= AVAIL_OVERWRITABLE)
5508 d = get_cg_data (&node, true);
5509 if (is_tm_safe (node->decl))
5510 ipa_tm_diagnose_tm_safe (node);
5511 else if (d->all_tm_regions)
5512 ipa_tm_diagnose_transaction (node, d->all_tm_regions);
5515 /* Create clones. Do those that are not irrevocable and have a
5516 positive call count. Do those publicly visible functions that
5517 the user directed us to clone. */
5518 for (i = 0; i < tm_callees.length (); ++i)
5520 bool doit = false;
5522 node = tm_callees[i];
5523 if (node->cpp_implicit_alias)
5524 continue;
5526 a = cgraph_function_body_availability (node);
5527 d = get_cg_data (&node, true);
5529 if (a <= AVAIL_NOT_AVAILABLE)
5530 doit = is_tm_callable (node->decl);
5531 else if (a <= AVAIL_AVAILABLE && is_tm_callable (node->decl))
5532 doit = true;
5533 else if (!d->is_irrevocable
5534 && d->tm_callers_normal + d->tm_callers_clone > 0)
5535 doit = true;
5537 if (doit)
5538 ipa_tm_create_version (node);
5541 /* Redirect calls to the new clones, and insert irrevocable marks. */
5542 for (i = 0; i < tm_callees.length (); ++i)
5544 node = tm_callees[i];
5545 if (node->analyzed)
5547 d = get_cg_data (&node, true);
5548 if (d->clone)
5549 ipa_tm_transform_clone (node);
5552 FOR_EACH_DEFINED_FUNCTION (node)
5553 if (node->lowered
5554 && cgraph_function_body_availability (node) >= AVAIL_OVERWRITABLE)
5556 d = get_cg_data (&node, true);
5557 if (d->all_tm_regions)
5558 ipa_tm_transform_transaction (node);
5561 /* Free and clear all data structures. */
5562 tm_callees.release ();
5563 irr_worklist.release ();
5564 bitmap_obstack_release (&tm_obstack);
5565 free_original_copy_tables ();
5567 FOR_EACH_FUNCTION (node)
5568 node->aux = NULL;
5570 #ifdef ENABLE_CHECKING
5571 verify_cgraph ();
5572 #endif
5574 return 0;
5577 namespace {
5579 const pass_data pass_data_ipa_tm =
5581 SIMPLE_IPA_PASS, /* type */
5582 "tmipa", /* name */
5583 OPTGROUP_NONE, /* optinfo_flags */
5584 true, /* has_gate */
5585 true, /* has_execute */
5586 TV_TRANS_MEM, /* tv_id */
5587 ( PROP_ssa | PROP_cfg ), /* properties_required */
5588 0, /* properties_provided */
5589 0, /* properties_destroyed */
5590 0, /* todo_flags_start */
5591 0, /* todo_flags_finish */
5594 class pass_ipa_tm : public simple_ipa_opt_pass
5596 public:
5597 pass_ipa_tm (gcc::context *ctxt)
5598 : simple_ipa_opt_pass (pass_data_ipa_tm, ctxt)
5601 /* opt_pass methods: */
5602 bool gate () { return gate_tm (); }
5603 unsigned int execute () { return ipa_tm_execute (); }
5605 }; // class pass_ipa_tm
5607 } // anon namespace
5609 simple_ipa_opt_pass *
5610 make_pass_ipa_tm (gcc::context *ctxt)
5612 return new pass_ipa_tm (ctxt);
5615 #include "gt-trans-mem.h"