Daily bump.
[official-gcc.git] / gcc / omp-low.c
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1 /* Lowering pass for OpenMP directives. Converts OpenMP directives
2 into explicit calls to the runtime library (libgomp) and data
3 marshalling to implement data sharing and copying clauses.
4 Contributed by Diego Novillo <dnovillo@redhat.com>
6 Copyright (C) 2005, 2006, 2007, 2008 Free Software Foundation, Inc.
8 This file is part of GCC.
10 GCC is free software; you can redistribute it and/or modify it under
11 the terms of the GNU General Public License as published by the Free
12 Software Foundation; either version 3, or (at your option) any later
13 version.
15 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
16 WARRANTY; without even the implied warranty of MERCHANTABILITY or
17 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
18 for more details.
20 You should have received a copy of the GNU General Public License
21 along with GCC; see the file COPYING3. If not see
22 <http://www.gnu.org/licenses/>. */
24 #include "config.h"
25 #include "system.h"
26 #include "coretypes.h"
27 #include "tm.h"
28 #include "tree.h"
29 #include "rtl.h"
30 #include "tree-gimple.h"
31 #include "tree-inline.h"
32 #include "langhooks.h"
33 #include "diagnostic.h"
34 #include "tree-flow.h"
35 #include "timevar.h"
36 #include "flags.h"
37 #include "function.h"
38 #include "expr.h"
39 #include "toplev.h"
40 #include "tree-pass.h"
41 #include "ggc.h"
42 #include "except.h"
43 #include "splay-tree.h"
44 #include "optabs.h"
45 #include "cfgloop.h"
47 /* Lowering of OpenMP parallel and workshare constructs proceeds in two
48 phases. The first phase scans the function looking for OMP statements
49 and then for variables that must be replaced to satisfy data sharing
50 clauses. The second phase expands code for the constructs, as well as
51 re-gimplifying things when variables have been replaced with complex
52 expressions.
54 Final code generation is done by pass_expand_omp. The flowgraph is
55 scanned for parallel regions which are then moved to a new
56 function, to be invoked by the thread library. */
58 /* Context structure. Used to store information about each parallel
59 directive in the code. */
61 typedef struct omp_context
63 /* This field must be at the beginning, as we do "inheritance": Some
64 callback functions for tree-inline.c (e.g., omp_copy_decl)
65 receive a copy_body_data pointer that is up-casted to an
66 omp_context pointer. */
67 copy_body_data cb;
69 /* The tree of contexts corresponding to the encountered constructs. */
70 struct omp_context *outer;
71 tree stmt;
73 /* Map variables to fields in a structure that allows communication
74 between sending and receiving threads. */
75 splay_tree field_map;
76 tree record_type;
77 tree sender_decl;
78 tree receiver_decl;
80 /* A chain of variables to add to the top-level block surrounding the
81 construct. In the case of a parallel, this is in the child function. */
82 tree block_vars;
84 /* What to do with variables with implicitly determined sharing
85 attributes. */
86 enum omp_clause_default_kind default_kind;
88 /* Nesting depth of this context. Used to beautify error messages re
89 invalid gotos. The outermost ctx is depth 1, with depth 0 being
90 reserved for the main body of the function. */
91 int depth;
93 /* True if this parallel directive is nested within another. */
94 bool is_nested;
95 } omp_context;
98 /* A structure describing the main elements of a parallel loop. */
100 struct omp_for_data
102 tree v, n1, n2, step, chunk_size, for_stmt;
103 enum tree_code cond_code;
104 tree pre;
105 bool have_nowait, have_ordered;
106 enum omp_clause_schedule_kind sched_kind;
110 static splay_tree all_contexts;
111 static int parallel_nesting_level;
112 struct omp_region *root_omp_region;
114 static void scan_omp (tree *, omp_context *);
115 static void lower_omp (tree *, omp_context *);
116 static tree lookup_decl_in_outer_ctx (tree, omp_context *);
117 static tree maybe_lookup_decl_in_outer_ctx (tree, omp_context *);
119 /* Find an OpenMP clause of type KIND within CLAUSES. */
121 tree
122 find_omp_clause (tree clauses, enum tree_code kind)
124 for (; clauses ; clauses = OMP_CLAUSE_CHAIN (clauses))
125 if (OMP_CLAUSE_CODE (clauses) == kind)
126 return clauses;
128 return NULL_TREE;
131 /* Return true if CTX is for an omp parallel. */
133 static inline bool
134 is_parallel_ctx (omp_context *ctx)
136 return TREE_CODE (ctx->stmt) == OMP_PARALLEL;
140 /* Return true if REGION is a combined parallel+workshare region. */
142 static inline bool
143 is_combined_parallel (struct omp_region *region)
145 return region->is_combined_parallel;
149 /* Extract the header elements of parallel loop FOR_STMT and store
150 them into *FD. */
152 static void
153 extract_omp_for_data (tree for_stmt, struct omp_for_data *fd)
155 tree t, var;
157 fd->for_stmt = for_stmt;
158 fd->pre = NULL;
160 t = OMP_FOR_INIT (for_stmt);
161 gcc_assert (TREE_CODE (t) == GIMPLE_MODIFY_STMT);
162 fd->v = GIMPLE_STMT_OPERAND (t, 0);
163 gcc_assert (SSA_VAR_P (fd->v));
164 gcc_assert (TREE_CODE (TREE_TYPE (fd->v)) == INTEGER_TYPE);
165 var = TREE_CODE (fd->v) == SSA_NAME ? SSA_NAME_VAR (fd->v) : fd->v;
166 fd->n1 = GIMPLE_STMT_OPERAND (t, 1);
168 t = OMP_FOR_COND (for_stmt);
169 fd->cond_code = TREE_CODE (t);
170 gcc_assert (TREE_OPERAND (t, 0) == var);
171 fd->n2 = TREE_OPERAND (t, 1);
172 switch (fd->cond_code)
174 case LT_EXPR:
175 case GT_EXPR:
176 break;
177 case LE_EXPR:
178 fd->n2 = fold_build2 (PLUS_EXPR, TREE_TYPE (fd->n2), fd->n2,
179 build_int_cst (TREE_TYPE (fd->n2), 1));
180 fd->cond_code = LT_EXPR;
181 break;
182 case GE_EXPR:
183 fd->n2 = fold_build2 (MINUS_EXPR, TREE_TYPE (fd->n2), fd->n2,
184 build_int_cst (TREE_TYPE (fd->n2), 1));
185 fd->cond_code = GT_EXPR;
186 break;
187 default:
188 gcc_unreachable ();
191 t = OMP_FOR_INCR (fd->for_stmt);
192 gcc_assert (TREE_CODE (t) == GIMPLE_MODIFY_STMT);
193 gcc_assert (GIMPLE_STMT_OPERAND (t, 0) == var);
194 t = GIMPLE_STMT_OPERAND (t, 1);
195 gcc_assert (TREE_OPERAND (t, 0) == var);
196 switch (TREE_CODE (t))
198 case PLUS_EXPR:
199 fd->step = TREE_OPERAND (t, 1);
200 break;
201 case MINUS_EXPR:
202 fd->step = TREE_OPERAND (t, 1);
203 fd->step = fold_build1 (NEGATE_EXPR, TREE_TYPE (fd->step), fd->step);
204 break;
205 default:
206 gcc_unreachable ();
209 fd->have_nowait = fd->have_ordered = false;
210 fd->sched_kind = OMP_CLAUSE_SCHEDULE_STATIC;
211 fd->chunk_size = NULL_TREE;
213 for (t = OMP_FOR_CLAUSES (for_stmt); t ; t = OMP_CLAUSE_CHAIN (t))
214 switch (OMP_CLAUSE_CODE (t))
216 case OMP_CLAUSE_NOWAIT:
217 fd->have_nowait = true;
218 break;
219 case OMP_CLAUSE_ORDERED:
220 fd->have_ordered = true;
221 break;
222 case OMP_CLAUSE_SCHEDULE:
223 fd->sched_kind = OMP_CLAUSE_SCHEDULE_KIND (t);
224 fd->chunk_size = OMP_CLAUSE_SCHEDULE_CHUNK_EXPR (t);
225 break;
226 default:
227 break;
230 if (fd->sched_kind == OMP_CLAUSE_SCHEDULE_RUNTIME)
231 gcc_assert (fd->chunk_size == NULL);
232 else if (fd->chunk_size == NULL)
234 /* We only need to compute a default chunk size for ordered
235 static loops and dynamic loops. */
236 if (fd->sched_kind != OMP_CLAUSE_SCHEDULE_STATIC || fd->have_ordered)
237 fd->chunk_size = (fd->sched_kind == OMP_CLAUSE_SCHEDULE_STATIC)
238 ? integer_zero_node : integer_one_node;
243 /* Given two blocks PAR_ENTRY_BB and WS_ENTRY_BB such that WS_ENTRY_BB
244 is the immediate dominator of PAR_ENTRY_BB, return true if there
245 are no data dependencies that would prevent expanding the parallel
246 directive at PAR_ENTRY_BB as a combined parallel+workshare region.
248 When expanding a combined parallel+workshare region, the call to
249 the child function may need additional arguments in the case of
250 OMP_FOR regions. In some cases, these arguments are computed out
251 of variables passed in from the parent to the child via 'struct
252 .omp_data_s'. For instance:
254 #pragma omp parallel for schedule (guided, i * 4)
255 for (j ...)
257 Is lowered into:
259 # BLOCK 2 (PAR_ENTRY_BB)
260 .omp_data_o.i = i;
261 #pragma omp parallel [child fn: bar.omp_fn.0 ( ..., D.1598)
263 # BLOCK 3 (WS_ENTRY_BB)
264 .omp_data_i = &.omp_data_o;
265 D.1667 = .omp_data_i->i;
266 D.1598 = D.1667 * 4;
267 #pragma omp for schedule (guided, D.1598)
269 When we outline the parallel region, the call to the child function
270 'bar.omp_fn.0' will need the value D.1598 in its argument list, but
271 that value is computed *after* the call site. So, in principle we
272 cannot do the transformation.
274 To see whether the code in WS_ENTRY_BB blocks the combined
275 parallel+workshare call, we collect all the variables used in the
276 OMP_FOR header check whether they appear on the LHS of any
277 statement in WS_ENTRY_BB. If so, then we cannot emit the combined
278 call.
280 FIXME. If we had the SSA form built at this point, we could merely
281 hoist the code in block 3 into block 2 and be done with it. But at
282 this point we don't have dataflow information and though we could
283 hack something up here, it is really not worth the aggravation. */
285 static bool
286 workshare_safe_to_combine_p (basic_block par_entry_bb, basic_block ws_entry_bb)
288 struct omp_for_data fd;
289 tree par_stmt, ws_stmt;
291 par_stmt = last_stmt (par_entry_bb);
292 ws_stmt = last_stmt (ws_entry_bb);
294 if (TREE_CODE (ws_stmt) == OMP_SECTIONS)
295 return true;
297 gcc_assert (TREE_CODE (ws_stmt) == OMP_FOR);
299 extract_omp_for_data (ws_stmt, &fd);
301 /* FIXME. We give up too easily here. If any of these arguments
302 are not constants, they will likely involve variables that have
303 been mapped into fields of .omp_data_s for sharing with the child
304 function. With appropriate data flow, it would be possible to
305 see through this. */
306 if (!is_gimple_min_invariant (fd.n1)
307 || !is_gimple_min_invariant (fd.n2)
308 || !is_gimple_min_invariant (fd.step)
309 || (fd.chunk_size && !is_gimple_min_invariant (fd.chunk_size)))
310 return false;
312 return true;
316 /* Collect additional arguments needed to emit a combined
317 parallel+workshare call. WS_STMT is the workshare directive being
318 expanded. */
320 static tree
321 get_ws_args_for (tree ws_stmt)
323 tree t;
325 if (TREE_CODE (ws_stmt) == OMP_FOR)
327 struct omp_for_data fd;
328 tree ws_args;
330 extract_omp_for_data (ws_stmt, &fd);
332 ws_args = NULL_TREE;
333 if (fd.chunk_size)
335 t = fold_convert (long_integer_type_node, fd.chunk_size);
336 ws_args = tree_cons (NULL, t, ws_args);
339 t = fold_convert (long_integer_type_node, fd.step);
340 ws_args = tree_cons (NULL, t, ws_args);
342 t = fold_convert (long_integer_type_node, fd.n2);
343 ws_args = tree_cons (NULL, t, ws_args);
345 t = fold_convert (long_integer_type_node, fd.n1);
346 ws_args = tree_cons (NULL, t, ws_args);
348 return ws_args;
350 else if (TREE_CODE (ws_stmt) == OMP_SECTIONS)
352 /* Number of sections is equal to the number of edges from the
353 OMP_SECTIONS_SWITCH statement, except for the one to the exit
354 of the sections region. */
355 basic_block bb = single_succ (bb_for_stmt (ws_stmt));
356 t = build_int_cst (unsigned_type_node, EDGE_COUNT (bb->succs) - 1);
357 t = tree_cons (NULL, t, NULL);
358 return t;
361 gcc_unreachable ();
365 /* Discover whether REGION is a combined parallel+workshare region. */
367 static void
368 determine_parallel_type (struct omp_region *region)
370 basic_block par_entry_bb, par_exit_bb;
371 basic_block ws_entry_bb, ws_exit_bb;
373 if (region == NULL || region->inner == NULL
374 || region->exit == NULL || region->inner->exit == NULL
375 || region->inner->cont == NULL)
376 return;
378 /* We only support parallel+for and parallel+sections. */
379 if (region->type != OMP_PARALLEL
380 || (region->inner->type != OMP_FOR
381 && region->inner->type != OMP_SECTIONS))
382 return;
384 /* Check for perfect nesting PAR_ENTRY_BB -> WS_ENTRY_BB and
385 WS_EXIT_BB -> PAR_EXIT_BB. */
386 par_entry_bb = region->entry;
387 par_exit_bb = region->exit;
388 ws_entry_bb = region->inner->entry;
389 ws_exit_bb = region->inner->exit;
391 if (single_succ (par_entry_bb) == ws_entry_bb
392 && single_succ (ws_exit_bb) == par_exit_bb
393 && workshare_safe_to_combine_p (par_entry_bb, ws_entry_bb)
394 && (OMP_PARALLEL_COMBINED (last_stmt (par_entry_bb))
395 || (last_and_only_stmt (ws_entry_bb)
396 && last_and_only_stmt (par_exit_bb))))
398 tree ws_stmt = last_stmt (ws_entry_bb);
400 if (region->inner->type == OMP_FOR)
402 /* If this is a combined parallel loop, we need to determine
403 whether or not to use the combined library calls. There
404 are two cases where we do not apply the transformation:
405 static loops and any kind of ordered loop. In the first
406 case, we already open code the loop so there is no need
407 to do anything else. In the latter case, the combined
408 parallel loop call would still need extra synchronization
409 to implement ordered semantics, so there would not be any
410 gain in using the combined call. */
411 tree clauses = OMP_FOR_CLAUSES (ws_stmt);
412 tree c = find_omp_clause (clauses, OMP_CLAUSE_SCHEDULE);
413 if (c == NULL
414 || OMP_CLAUSE_SCHEDULE_KIND (c) == OMP_CLAUSE_SCHEDULE_STATIC
415 || find_omp_clause (clauses, OMP_CLAUSE_ORDERED))
417 region->is_combined_parallel = false;
418 region->inner->is_combined_parallel = false;
419 return;
423 region->is_combined_parallel = true;
424 region->inner->is_combined_parallel = true;
425 region->ws_args = get_ws_args_for (ws_stmt);
430 /* Return true if EXPR is variable sized. */
432 static inline bool
433 is_variable_sized (const_tree expr)
435 return !TREE_CONSTANT (TYPE_SIZE_UNIT (TREE_TYPE (expr)));
438 /* Return true if DECL is a reference type. */
440 static inline bool
441 is_reference (tree decl)
443 return lang_hooks.decls.omp_privatize_by_reference (decl);
446 /* Lookup variables in the decl or field splay trees. The "maybe" form
447 allows for the variable form to not have been entered, otherwise we
448 assert that the variable must have been entered. */
450 static inline tree
451 lookup_decl (tree var, omp_context *ctx)
453 tree *n;
454 n = (tree *) pointer_map_contains (ctx->cb.decl_map, var);
455 return *n;
458 static inline tree
459 maybe_lookup_decl (const_tree var, omp_context *ctx)
461 tree *n;
462 n = (tree *) pointer_map_contains (ctx->cb.decl_map, var);
463 return n ? *n : NULL_TREE;
466 static inline tree
467 lookup_field (tree var, omp_context *ctx)
469 splay_tree_node n;
470 n = splay_tree_lookup (ctx->field_map, (splay_tree_key) var);
471 return (tree) n->value;
474 static inline tree
475 maybe_lookup_field (tree var, omp_context *ctx)
477 splay_tree_node n;
478 n = splay_tree_lookup (ctx->field_map, (splay_tree_key) var);
479 return n ? (tree) n->value : NULL_TREE;
482 /* Return true if DECL should be copied by pointer. SHARED_CTX is
483 the parallel context if DECL is to be shared. */
485 static bool
486 use_pointer_for_field (const_tree decl, omp_context *shared_ctx)
488 if (AGGREGATE_TYPE_P (TREE_TYPE (decl)))
489 return true;
491 /* We can only use copy-in/copy-out semantics for shared variables
492 when we know the value is not accessible from an outer scope. */
493 if (shared_ctx)
495 /* ??? Trivially accessible from anywhere. But why would we even
496 be passing an address in this case? Should we simply assert
497 this to be false, or should we have a cleanup pass that removes
498 these from the list of mappings? */
499 if (TREE_STATIC (decl) || DECL_EXTERNAL (decl))
500 return true;
502 /* For variables with DECL_HAS_VALUE_EXPR_P set, we cannot tell
503 without analyzing the expression whether or not its location
504 is accessible to anyone else. In the case of nested parallel
505 regions it certainly may be. */
506 if (TREE_CODE (decl) != RESULT_DECL && DECL_HAS_VALUE_EXPR_P (decl))
507 return true;
509 /* Do not use copy-in/copy-out for variables that have their
510 address taken. */
511 if (TREE_ADDRESSABLE (decl))
512 return true;
514 /* Disallow copy-in/out in nested parallel if
515 decl is shared in outer parallel, otherwise
516 each thread could store the shared variable
517 in its own copy-in location, making the
518 variable no longer really shared. */
519 if (!TREE_READONLY (decl) && shared_ctx->is_nested)
521 omp_context *up;
523 for (up = shared_ctx->outer; up; up = up->outer)
524 if (maybe_lookup_decl (decl, up))
525 break;
527 if (up && is_parallel_ctx (up))
529 tree c;
531 for (c = OMP_PARALLEL_CLAUSES (up->stmt);
532 c; c = OMP_CLAUSE_CHAIN (c))
533 if (OMP_CLAUSE_CODE (c) == OMP_CLAUSE_SHARED
534 && OMP_CLAUSE_DECL (c) == decl)
535 break;
537 if (c)
538 return true;
543 return false;
546 /* Create a new VAR_DECL and copy information from VAR to it. */
548 tree
549 copy_var_decl (tree var, tree name, tree type)
551 tree copy = build_decl (VAR_DECL, name, type);
553 TREE_ADDRESSABLE (copy) = TREE_ADDRESSABLE (var);
554 TREE_THIS_VOLATILE (copy) = TREE_THIS_VOLATILE (var);
555 DECL_GIMPLE_REG_P (copy) = DECL_GIMPLE_REG_P (var);
556 DECL_NO_TBAA_P (copy) = DECL_NO_TBAA_P (var);
557 DECL_ARTIFICIAL (copy) = DECL_ARTIFICIAL (var);
558 DECL_IGNORED_P (copy) = DECL_IGNORED_P (var);
559 DECL_CONTEXT (copy) = DECL_CONTEXT (var);
560 DECL_SOURCE_LOCATION (copy) = DECL_SOURCE_LOCATION (var);
561 TREE_USED (copy) = 1;
562 DECL_SEEN_IN_BIND_EXPR_P (copy) = 1;
564 return copy;
567 /* Construct a new automatic decl similar to VAR. */
569 static tree
570 omp_copy_decl_2 (tree var, tree name, tree type, omp_context *ctx)
572 tree copy = copy_var_decl (var, name, type);
574 DECL_CONTEXT (copy) = current_function_decl;
575 TREE_CHAIN (copy) = ctx->block_vars;
576 ctx->block_vars = copy;
578 return copy;
581 static tree
582 omp_copy_decl_1 (tree var, omp_context *ctx)
584 return omp_copy_decl_2 (var, DECL_NAME (var), TREE_TYPE (var), ctx);
587 /* Build tree nodes to access the field for VAR on the receiver side. */
589 static tree
590 build_receiver_ref (tree var, bool by_ref, omp_context *ctx)
592 tree x, field = lookup_field (var, ctx);
594 /* If the receiver record type was remapped in the child function,
595 remap the field into the new record type. */
596 x = maybe_lookup_field (field, ctx);
597 if (x != NULL)
598 field = x;
600 x = build_fold_indirect_ref (ctx->receiver_decl);
601 x = build3 (COMPONENT_REF, TREE_TYPE (field), x, field, NULL);
602 if (by_ref)
603 x = build_fold_indirect_ref (x);
605 return x;
608 /* Build tree nodes to access VAR in the scope outer to CTX. In the case
609 of a parallel, this is a component reference; for workshare constructs
610 this is some variable. */
612 static tree
613 build_outer_var_ref (tree var, omp_context *ctx)
615 tree x;
617 if (is_global_var (maybe_lookup_decl_in_outer_ctx (var, ctx)))
618 x = var;
619 else if (is_variable_sized (var))
621 x = TREE_OPERAND (DECL_VALUE_EXPR (var), 0);
622 x = build_outer_var_ref (x, ctx);
623 x = build_fold_indirect_ref (x);
625 else if (is_parallel_ctx (ctx))
627 bool by_ref = use_pointer_for_field (var, NULL);
628 x = build_receiver_ref (var, by_ref, ctx);
630 else if (ctx->outer)
631 x = lookup_decl (var, ctx->outer);
632 else if (is_reference (var))
633 /* This can happen with orphaned constructs. If var is reference, it is
634 possible it is shared and as such valid. */
635 x = var;
636 else
637 gcc_unreachable ();
639 if (is_reference (var))
640 x = build_fold_indirect_ref (x);
642 return x;
645 /* Build tree nodes to access the field for VAR on the sender side. */
647 static tree
648 build_sender_ref (tree var, omp_context *ctx)
650 tree field = lookup_field (var, ctx);
651 return build3 (COMPONENT_REF, TREE_TYPE (field),
652 ctx->sender_decl, field, NULL);
655 /* Add a new field for VAR inside the structure CTX->SENDER_DECL. */
657 static void
658 install_var_field (tree var, bool by_ref, omp_context *ctx)
660 tree field, type;
662 gcc_assert (!splay_tree_lookup (ctx->field_map, (splay_tree_key) var));
664 type = TREE_TYPE (var);
665 if (by_ref)
666 type = build_pointer_type (type);
668 field = build_decl (FIELD_DECL, DECL_NAME (var), type);
670 /* Remember what variable this field was created for. This does have a
671 side effect of making dwarf2out ignore this member, so for helpful
672 debugging we clear it later in delete_omp_context. */
673 DECL_ABSTRACT_ORIGIN (field) = var;
675 insert_field_into_struct (ctx->record_type, field);
677 splay_tree_insert (ctx->field_map, (splay_tree_key) var,
678 (splay_tree_value) field);
681 static tree
682 install_var_local (tree var, omp_context *ctx)
684 tree new_var = omp_copy_decl_1 (var, ctx);
685 insert_decl_map (&ctx->cb, var, new_var);
686 return new_var;
689 /* Adjust the replacement for DECL in CTX for the new context. This means
690 copying the DECL_VALUE_EXPR, and fixing up the type. */
692 static void
693 fixup_remapped_decl (tree decl, omp_context *ctx, bool private_debug)
695 tree new_decl, size;
697 new_decl = lookup_decl (decl, ctx);
699 TREE_TYPE (new_decl) = remap_type (TREE_TYPE (decl), &ctx->cb);
701 if ((!TREE_CONSTANT (DECL_SIZE (new_decl)) || private_debug)
702 && DECL_HAS_VALUE_EXPR_P (decl))
704 tree ve = DECL_VALUE_EXPR (decl);
705 walk_tree (&ve, copy_body_r, &ctx->cb, NULL);
706 SET_DECL_VALUE_EXPR (new_decl, ve);
707 DECL_HAS_VALUE_EXPR_P (new_decl) = 1;
710 if (!TREE_CONSTANT (DECL_SIZE (new_decl)))
712 size = remap_decl (DECL_SIZE (decl), &ctx->cb);
713 if (size == error_mark_node)
714 size = TYPE_SIZE (TREE_TYPE (new_decl));
715 DECL_SIZE (new_decl) = size;
717 size = remap_decl (DECL_SIZE_UNIT (decl), &ctx->cb);
718 if (size == error_mark_node)
719 size = TYPE_SIZE_UNIT (TREE_TYPE (new_decl));
720 DECL_SIZE_UNIT (new_decl) = size;
724 /* The callback for remap_decl. Search all containing contexts for a
725 mapping of the variable; this avoids having to duplicate the splay
726 tree ahead of time. We know a mapping doesn't already exist in the
727 given context. Create new mappings to implement default semantics. */
729 static tree
730 omp_copy_decl (tree var, copy_body_data *cb)
732 omp_context *ctx = (omp_context *) cb;
733 tree new_var;
735 if (TREE_CODE (var) == LABEL_DECL)
737 new_var = create_artificial_label ();
738 DECL_CONTEXT (new_var) = current_function_decl;
739 insert_decl_map (&ctx->cb, var, new_var);
740 return new_var;
743 while (!is_parallel_ctx (ctx))
745 ctx = ctx->outer;
746 if (ctx == NULL)
747 return var;
748 new_var = maybe_lookup_decl (var, ctx);
749 if (new_var)
750 return new_var;
753 if (is_global_var (var) || decl_function_context (var) != ctx->cb.src_fn)
754 return var;
756 return error_mark_node;
760 /* Return the parallel region associated with STMT. */
762 /* Debugging dumps for parallel regions. */
763 void dump_omp_region (FILE *, struct omp_region *, int);
764 void debug_omp_region (struct omp_region *);
765 void debug_all_omp_regions (void);
767 /* Dump the parallel region tree rooted at REGION. */
769 void
770 dump_omp_region (FILE *file, struct omp_region *region, int indent)
772 fprintf (file, "%*sbb %d: %s\n", indent, "", region->entry->index,
773 tree_code_name[region->type]);
775 if (region->inner)
776 dump_omp_region (file, region->inner, indent + 4);
778 if (region->cont)
780 fprintf (file, "%*sbb %d: OMP_CONTINUE\n", indent, "",
781 region->cont->index);
784 if (region->exit)
785 fprintf (file, "%*sbb %d: OMP_RETURN\n", indent, "",
786 region->exit->index);
787 else
788 fprintf (file, "%*s[no exit marker]\n", indent, "");
790 if (region->next)
791 dump_omp_region (file, region->next, indent);
794 void
795 debug_omp_region (struct omp_region *region)
797 dump_omp_region (stderr, region, 0);
800 void
801 debug_all_omp_regions (void)
803 dump_omp_region (stderr, root_omp_region, 0);
807 /* Create a new parallel region starting at STMT inside region PARENT. */
809 struct omp_region *
810 new_omp_region (basic_block bb, enum tree_code type, struct omp_region *parent)
812 struct omp_region *region = xcalloc (1, sizeof (*region));
814 region->outer = parent;
815 region->entry = bb;
816 region->type = type;
818 if (parent)
820 /* This is a nested region. Add it to the list of inner
821 regions in PARENT. */
822 region->next = parent->inner;
823 parent->inner = region;
825 else
827 /* This is a toplevel region. Add it to the list of toplevel
828 regions in ROOT_OMP_REGION. */
829 region->next = root_omp_region;
830 root_omp_region = region;
833 return region;
836 /* Release the memory associated with the region tree rooted at REGION. */
838 static void
839 free_omp_region_1 (struct omp_region *region)
841 struct omp_region *i, *n;
843 for (i = region->inner; i ; i = n)
845 n = i->next;
846 free_omp_region_1 (i);
849 free (region);
852 /* Release the memory for the entire omp region tree. */
854 void
855 free_omp_regions (void)
857 struct omp_region *r, *n;
858 for (r = root_omp_region; r ; r = n)
860 n = r->next;
861 free_omp_region_1 (r);
863 root_omp_region = NULL;
867 /* Create a new context, with OUTER_CTX being the surrounding context. */
869 static omp_context *
870 new_omp_context (tree stmt, omp_context *outer_ctx)
872 omp_context *ctx = XCNEW (omp_context);
874 splay_tree_insert (all_contexts, (splay_tree_key) stmt,
875 (splay_tree_value) ctx);
876 ctx->stmt = stmt;
878 if (outer_ctx)
880 ctx->outer = outer_ctx;
881 ctx->cb = outer_ctx->cb;
882 ctx->cb.block = NULL;
883 ctx->depth = outer_ctx->depth + 1;
885 else
887 ctx->cb.src_fn = current_function_decl;
888 ctx->cb.dst_fn = current_function_decl;
889 ctx->cb.src_node = cgraph_node (current_function_decl);
890 ctx->cb.dst_node = ctx->cb.src_node;
891 ctx->cb.src_cfun = cfun;
892 ctx->cb.copy_decl = omp_copy_decl;
893 ctx->cb.eh_region = -1;
894 ctx->cb.transform_call_graph_edges = CB_CGE_MOVE;
895 ctx->depth = 1;
898 ctx->cb.decl_map = pointer_map_create ();
900 return ctx;
903 /* Destroy a omp_context data structures. Called through the splay tree
904 value delete callback. */
906 static void
907 delete_omp_context (splay_tree_value value)
909 omp_context *ctx = (omp_context *) value;
911 pointer_map_destroy (ctx->cb.decl_map);
913 if (ctx->field_map)
914 splay_tree_delete (ctx->field_map);
916 /* We hijacked DECL_ABSTRACT_ORIGIN earlier. We need to clear it before
917 it produces corrupt debug information. */
918 if (ctx->record_type)
920 tree t;
921 for (t = TYPE_FIELDS (ctx->record_type); t ; t = TREE_CHAIN (t))
922 DECL_ABSTRACT_ORIGIN (t) = NULL;
925 XDELETE (ctx);
928 /* Fix up RECEIVER_DECL with a type that has been remapped to the child
929 context. */
931 static void
932 fixup_child_record_type (omp_context *ctx)
934 tree f, type = ctx->record_type;
936 /* ??? It isn't sufficient to just call remap_type here, because
937 variably_modified_type_p doesn't work the way we expect for
938 record types. Testing each field for whether it needs remapping
939 and creating a new record by hand works, however. */
940 for (f = TYPE_FIELDS (type); f ; f = TREE_CHAIN (f))
941 if (variably_modified_type_p (TREE_TYPE (f), ctx->cb.src_fn))
942 break;
943 if (f)
945 tree name, new_fields = NULL;
947 type = lang_hooks.types.make_type (RECORD_TYPE);
948 name = DECL_NAME (TYPE_NAME (ctx->record_type));
949 name = build_decl (TYPE_DECL, name, type);
950 TYPE_NAME (type) = name;
952 for (f = TYPE_FIELDS (ctx->record_type); f ; f = TREE_CHAIN (f))
954 tree new_f = copy_node (f);
955 DECL_CONTEXT (new_f) = type;
956 TREE_TYPE (new_f) = remap_type (TREE_TYPE (f), &ctx->cb);
957 TREE_CHAIN (new_f) = new_fields;
958 new_fields = new_f;
960 /* Arrange to be able to look up the receiver field
961 given the sender field. */
962 splay_tree_insert (ctx->field_map, (splay_tree_key) f,
963 (splay_tree_value) new_f);
965 TYPE_FIELDS (type) = nreverse (new_fields);
966 layout_type (type);
969 TREE_TYPE (ctx->receiver_decl) = build_pointer_type (type);
972 /* Instantiate decls as necessary in CTX to satisfy the data sharing
973 specified by CLAUSES. */
975 static void
976 scan_sharing_clauses (tree clauses, omp_context *ctx)
978 tree c, decl;
979 bool scan_array_reductions = false;
981 for (c = clauses; c; c = OMP_CLAUSE_CHAIN (c))
983 bool by_ref;
985 switch (OMP_CLAUSE_CODE (c))
987 case OMP_CLAUSE_PRIVATE:
988 decl = OMP_CLAUSE_DECL (c);
989 if (!is_variable_sized (decl))
990 install_var_local (decl, ctx);
991 break;
993 case OMP_CLAUSE_SHARED:
994 gcc_assert (is_parallel_ctx (ctx));
995 decl = OMP_CLAUSE_DECL (c);
996 gcc_assert (!COMPLETE_TYPE_P (TREE_TYPE (decl))
997 || !is_variable_sized (decl));
998 by_ref = use_pointer_for_field (decl, ctx);
999 /* Global variables don't need to be copied,
1000 the receiver side will use them directly. */
1001 if (is_global_var (maybe_lookup_decl_in_outer_ctx (decl, ctx)))
1002 break;
1003 if (! TREE_READONLY (decl)
1004 || TREE_ADDRESSABLE (decl)
1005 || by_ref
1006 || is_reference (decl))
1008 install_var_field (decl, by_ref, ctx);
1009 install_var_local (decl, ctx);
1010 break;
1012 /* We don't need to copy const scalar vars back. */
1013 OMP_CLAUSE_SET_CODE (c, OMP_CLAUSE_FIRSTPRIVATE);
1014 goto do_private;
1016 case OMP_CLAUSE_LASTPRIVATE:
1017 /* Let the corresponding firstprivate clause create
1018 the variable. */
1019 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c))
1020 break;
1021 /* FALLTHRU */
1023 case OMP_CLAUSE_FIRSTPRIVATE:
1024 case OMP_CLAUSE_REDUCTION:
1025 decl = OMP_CLAUSE_DECL (c);
1026 do_private:
1027 if (is_variable_sized (decl))
1028 break;
1029 else if (is_parallel_ctx (ctx)
1030 && ! is_global_var (maybe_lookup_decl_in_outer_ctx (decl,
1031 ctx)))
1033 by_ref = use_pointer_for_field (decl, NULL);
1034 install_var_field (decl, by_ref, ctx);
1036 install_var_local (decl, ctx);
1037 break;
1039 case OMP_CLAUSE_COPYPRIVATE:
1040 if (ctx->outer)
1041 scan_omp (&OMP_CLAUSE_DECL (c), ctx->outer);
1042 /* FALLTHRU */
1044 case OMP_CLAUSE_COPYIN:
1045 decl = OMP_CLAUSE_DECL (c);
1046 by_ref = use_pointer_for_field (decl, NULL);
1047 install_var_field (decl, by_ref, ctx);
1048 break;
1050 case OMP_CLAUSE_DEFAULT:
1051 ctx->default_kind = OMP_CLAUSE_DEFAULT_KIND (c);
1052 break;
1054 case OMP_CLAUSE_IF:
1055 case OMP_CLAUSE_NUM_THREADS:
1056 case OMP_CLAUSE_SCHEDULE:
1057 if (ctx->outer)
1058 scan_omp (&OMP_CLAUSE_OPERAND (c, 0), ctx->outer);
1059 break;
1061 case OMP_CLAUSE_NOWAIT:
1062 case OMP_CLAUSE_ORDERED:
1063 break;
1065 default:
1066 gcc_unreachable ();
1070 for (c = clauses; c; c = OMP_CLAUSE_CHAIN (c))
1072 switch (OMP_CLAUSE_CODE (c))
1074 case OMP_CLAUSE_LASTPRIVATE:
1075 /* Let the corresponding firstprivate clause create
1076 the variable. */
1077 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c))
1078 break;
1079 /* FALLTHRU */
1081 case OMP_CLAUSE_PRIVATE:
1082 case OMP_CLAUSE_FIRSTPRIVATE:
1083 case OMP_CLAUSE_REDUCTION:
1084 decl = OMP_CLAUSE_DECL (c);
1085 if (is_variable_sized (decl))
1086 install_var_local (decl, ctx);
1087 fixup_remapped_decl (decl, ctx,
1088 OMP_CLAUSE_CODE (c) == OMP_CLAUSE_PRIVATE
1089 && OMP_CLAUSE_PRIVATE_DEBUG (c));
1090 if (OMP_CLAUSE_CODE (c) == OMP_CLAUSE_REDUCTION
1091 && OMP_CLAUSE_REDUCTION_PLACEHOLDER (c))
1092 scan_array_reductions = true;
1093 break;
1095 case OMP_CLAUSE_SHARED:
1096 decl = OMP_CLAUSE_DECL (c);
1097 if (! is_global_var (maybe_lookup_decl_in_outer_ctx (decl, ctx)))
1098 fixup_remapped_decl (decl, ctx, false);
1099 break;
1101 case OMP_CLAUSE_COPYPRIVATE:
1102 case OMP_CLAUSE_COPYIN:
1103 case OMP_CLAUSE_DEFAULT:
1104 case OMP_CLAUSE_IF:
1105 case OMP_CLAUSE_NUM_THREADS:
1106 case OMP_CLAUSE_SCHEDULE:
1107 case OMP_CLAUSE_NOWAIT:
1108 case OMP_CLAUSE_ORDERED:
1109 break;
1111 default:
1112 gcc_unreachable ();
1116 if (scan_array_reductions)
1117 for (c = clauses; c; c = OMP_CLAUSE_CHAIN (c))
1118 if (OMP_CLAUSE_CODE (c) == OMP_CLAUSE_REDUCTION
1119 && OMP_CLAUSE_REDUCTION_PLACEHOLDER (c))
1121 scan_omp (&OMP_CLAUSE_REDUCTION_INIT (c), ctx);
1122 scan_omp (&OMP_CLAUSE_REDUCTION_MERGE (c), ctx);
1126 /* Create a new name for omp child function. Returns an identifier. */
1128 static GTY(()) unsigned int tmp_ompfn_id_num;
1130 static tree
1131 create_omp_child_function_name (void)
1133 tree name = DECL_ASSEMBLER_NAME (current_function_decl);
1134 size_t len = IDENTIFIER_LENGTH (name);
1135 char *tmp_name, *prefix;
1137 prefix = alloca (len + sizeof ("_omp_fn"));
1138 memcpy (prefix, IDENTIFIER_POINTER (name), len);
1139 strcpy (prefix + len, "_omp_fn");
1140 #ifndef NO_DOT_IN_LABEL
1141 prefix[len] = '.';
1142 #elif !defined NO_DOLLAR_IN_LABEL
1143 prefix[len] = '$';
1144 #endif
1145 ASM_FORMAT_PRIVATE_NAME (tmp_name, prefix, tmp_ompfn_id_num++);
1146 return get_identifier (tmp_name);
1149 /* Build a decl for the omp child function. It'll not contain a body
1150 yet, just the bare decl. */
1152 static void
1153 create_omp_child_function (omp_context *ctx)
1155 tree decl, type, name, t;
1157 name = create_omp_child_function_name ();
1158 type = build_function_type_list (void_type_node, ptr_type_node, NULL_TREE);
1160 decl = build_decl (FUNCTION_DECL, name, type);
1161 decl = lang_hooks.decls.pushdecl (decl);
1163 ctx->cb.dst_fn = decl;
1165 TREE_STATIC (decl) = 1;
1166 TREE_USED (decl) = 1;
1167 DECL_ARTIFICIAL (decl) = 1;
1168 DECL_IGNORED_P (decl) = 0;
1169 TREE_PUBLIC (decl) = 0;
1170 DECL_UNINLINABLE (decl) = 1;
1171 DECL_EXTERNAL (decl) = 0;
1172 DECL_CONTEXT (decl) = NULL_TREE;
1173 DECL_INITIAL (decl) = make_node (BLOCK);
1175 t = build_decl (RESULT_DECL, NULL_TREE, void_type_node);
1176 DECL_ARTIFICIAL (t) = 1;
1177 DECL_IGNORED_P (t) = 1;
1178 DECL_RESULT (decl) = t;
1180 t = build_decl (PARM_DECL, get_identifier (".omp_data_i"), ptr_type_node);
1181 DECL_ARTIFICIAL (t) = 1;
1182 DECL_ARG_TYPE (t) = ptr_type_node;
1183 DECL_CONTEXT (t) = current_function_decl;
1184 TREE_USED (t) = 1;
1185 DECL_ARGUMENTS (decl) = t;
1186 ctx->receiver_decl = t;
1188 /* Allocate memory for the function structure. The call to
1189 allocate_struct_function clobbers CFUN, so we need to restore
1190 it afterward. */
1191 push_struct_function (decl);
1192 DECL_SOURCE_LOCATION (decl) = EXPR_LOCATION (ctx->stmt);
1193 cfun->function_end_locus = EXPR_LOCATION (ctx->stmt);
1194 pop_cfun ();
1198 /* Scan an OpenMP parallel directive. */
1200 static void
1201 scan_omp_parallel (tree *stmt_p, omp_context *outer_ctx)
1203 omp_context *ctx;
1204 tree name;
1206 /* Ignore parallel directives with empty bodies, unless there
1207 are copyin clauses. */
1208 if (optimize > 0
1209 && empty_body_p (OMP_PARALLEL_BODY (*stmt_p))
1210 && find_omp_clause (OMP_CLAUSES (*stmt_p), OMP_CLAUSE_COPYIN) == NULL)
1212 *stmt_p = build_empty_stmt ();
1213 return;
1216 ctx = new_omp_context (*stmt_p, outer_ctx);
1217 if (parallel_nesting_level > 1)
1218 ctx->is_nested = true;
1219 ctx->field_map = splay_tree_new (splay_tree_compare_pointers, 0, 0);
1220 ctx->default_kind = OMP_CLAUSE_DEFAULT_SHARED;
1221 ctx->record_type = lang_hooks.types.make_type (RECORD_TYPE);
1222 name = create_tmp_var_name (".omp_data_s");
1223 name = build_decl (TYPE_DECL, name, ctx->record_type);
1224 TYPE_NAME (ctx->record_type) = name;
1225 create_omp_child_function (ctx);
1226 OMP_PARALLEL_FN (*stmt_p) = ctx->cb.dst_fn;
1228 scan_sharing_clauses (OMP_PARALLEL_CLAUSES (*stmt_p), ctx);
1229 scan_omp (&OMP_PARALLEL_BODY (*stmt_p), ctx);
1231 if (TYPE_FIELDS (ctx->record_type) == NULL)
1232 ctx->record_type = ctx->receiver_decl = NULL;
1233 else
1235 layout_type (ctx->record_type);
1236 fixup_child_record_type (ctx);
1241 /* Scan an OpenMP loop directive. */
1243 static void
1244 scan_omp_for (tree *stmt_p, omp_context *outer_ctx)
1246 omp_context *ctx;
1247 tree stmt;
1249 stmt = *stmt_p;
1250 ctx = new_omp_context (stmt, outer_ctx);
1252 scan_sharing_clauses (OMP_FOR_CLAUSES (stmt), ctx);
1254 scan_omp (&OMP_FOR_PRE_BODY (stmt), ctx);
1255 scan_omp (&OMP_FOR_INIT (stmt), ctx);
1256 scan_omp (&OMP_FOR_COND (stmt), ctx);
1257 scan_omp (&OMP_FOR_INCR (stmt), ctx);
1258 scan_omp (&OMP_FOR_BODY (stmt), ctx);
1261 /* Scan an OpenMP sections directive. */
1263 static void
1264 scan_omp_sections (tree *stmt_p, omp_context *outer_ctx)
1266 tree stmt;
1267 omp_context *ctx;
1269 stmt = *stmt_p;
1270 ctx = new_omp_context (stmt, outer_ctx);
1271 scan_sharing_clauses (OMP_SECTIONS_CLAUSES (stmt), ctx);
1272 scan_omp (&OMP_SECTIONS_BODY (stmt), ctx);
1275 /* Scan an OpenMP single directive. */
1277 static void
1278 scan_omp_single (tree *stmt_p, omp_context *outer_ctx)
1280 tree stmt = *stmt_p;
1281 omp_context *ctx;
1282 tree name;
1284 ctx = new_omp_context (stmt, outer_ctx);
1285 ctx->field_map = splay_tree_new (splay_tree_compare_pointers, 0, 0);
1286 ctx->record_type = lang_hooks.types.make_type (RECORD_TYPE);
1287 name = create_tmp_var_name (".omp_copy_s");
1288 name = build_decl (TYPE_DECL, name, ctx->record_type);
1289 TYPE_NAME (ctx->record_type) = name;
1291 scan_sharing_clauses (OMP_SINGLE_CLAUSES (stmt), ctx);
1292 scan_omp (&OMP_SINGLE_BODY (stmt), ctx);
1294 if (TYPE_FIELDS (ctx->record_type) == NULL)
1295 ctx->record_type = NULL;
1296 else
1297 layout_type (ctx->record_type);
1301 /* Check OpenMP nesting restrictions. */
1302 static void
1303 check_omp_nesting_restrictions (tree t, omp_context *ctx)
1305 switch (TREE_CODE (t))
1307 case OMP_FOR:
1308 case OMP_SECTIONS:
1309 case OMP_SINGLE:
1310 for (; ctx != NULL; ctx = ctx->outer)
1311 switch (TREE_CODE (ctx->stmt))
1313 case OMP_FOR:
1314 case OMP_SECTIONS:
1315 case OMP_SINGLE:
1316 case OMP_ORDERED:
1317 case OMP_MASTER:
1318 warning (0, "work-sharing region may not be closely nested inside "
1319 "of work-sharing, critical, ordered or master region");
1320 return;
1321 case OMP_PARALLEL:
1322 return;
1323 default:
1324 break;
1326 break;
1327 case OMP_MASTER:
1328 for (; ctx != NULL; ctx = ctx->outer)
1329 switch (TREE_CODE (ctx->stmt))
1331 case OMP_FOR:
1332 case OMP_SECTIONS:
1333 case OMP_SINGLE:
1334 warning (0, "master region may not be closely nested inside "
1335 "of work-sharing region");
1336 return;
1337 case OMP_PARALLEL:
1338 return;
1339 default:
1340 break;
1342 break;
1343 case OMP_ORDERED:
1344 for (; ctx != NULL; ctx = ctx->outer)
1345 switch (TREE_CODE (ctx->stmt))
1347 case OMP_CRITICAL:
1348 warning (0, "ordered region may not be closely nested inside "
1349 "of critical region");
1350 return;
1351 case OMP_FOR:
1352 if (find_omp_clause (OMP_CLAUSES (ctx->stmt),
1353 OMP_CLAUSE_ORDERED) == NULL)
1354 warning (0, "ordered region must be closely nested inside "
1355 "a loop region with an ordered clause");
1356 return;
1357 case OMP_PARALLEL:
1358 return;
1359 default:
1360 break;
1362 break;
1363 case OMP_CRITICAL:
1364 for (; ctx != NULL; ctx = ctx->outer)
1365 if (TREE_CODE (ctx->stmt) == OMP_CRITICAL
1366 && OMP_CRITICAL_NAME (t) == OMP_CRITICAL_NAME (ctx->stmt))
1368 warning (0, "critical region may not be nested inside a critical "
1369 "region with the same name");
1370 return;
1372 break;
1373 default:
1374 break;
1379 /* Callback for walk_stmts used to scan for OpenMP directives at TP. */
1381 static tree
1382 scan_omp_1 (tree *tp, int *walk_subtrees, void *data)
1384 struct walk_stmt_info *wi = data;
1385 omp_context *ctx = wi->info;
1386 tree t = *tp;
1388 if (EXPR_HAS_LOCATION (t))
1389 input_location = EXPR_LOCATION (t);
1391 /* Check the OpenMP nesting restrictions. */
1392 if (OMP_DIRECTIVE_P (t) && ctx != NULL)
1393 check_omp_nesting_restrictions (t, ctx);
1395 *walk_subtrees = 0;
1396 switch (TREE_CODE (t))
1398 case OMP_PARALLEL:
1399 parallel_nesting_level++;
1400 scan_omp_parallel (tp, ctx);
1401 parallel_nesting_level--;
1402 break;
1404 case OMP_FOR:
1405 scan_omp_for (tp, ctx);
1406 break;
1408 case OMP_SECTIONS:
1409 scan_omp_sections (tp, ctx);
1410 break;
1412 case OMP_SINGLE:
1413 scan_omp_single (tp, ctx);
1414 break;
1416 case OMP_SECTION:
1417 case OMP_MASTER:
1418 case OMP_ORDERED:
1419 case OMP_CRITICAL:
1420 ctx = new_omp_context (*tp, ctx);
1421 scan_omp (&OMP_BODY (*tp), ctx);
1422 break;
1424 case BIND_EXPR:
1426 tree var;
1427 *walk_subtrees = 1;
1429 for (var = BIND_EXPR_VARS (t); var ; var = TREE_CHAIN (var))
1430 insert_decl_map (&ctx->cb, var, var);
1432 break;
1434 case VAR_DECL:
1435 case PARM_DECL:
1436 case LABEL_DECL:
1437 case RESULT_DECL:
1438 if (ctx)
1439 *tp = remap_decl (t, &ctx->cb);
1440 break;
1442 default:
1443 if (ctx && TYPE_P (t))
1444 *tp = remap_type (t, &ctx->cb);
1445 else if (!DECL_P (t))
1446 *walk_subtrees = 1;
1447 break;
1450 return NULL_TREE;
1454 /* Scan all the statements starting at STMT_P. CTX contains context
1455 information about the OpenMP directives and clauses found during
1456 the scan. */
1458 static void
1459 scan_omp (tree *stmt_p, omp_context *ctx)
1461 location_t saved_location;
1462 struct walk_stmt_info wi;
1464 memset (&wi, 0, sizeof (wi));
1465 wi.callback = scan_omp_1;
1466 wi.info = ctx;
1467 wi.want_bind_expr = (ctx != NULL);
1468 wi.want_locations = true;
1470 saved_location = input_location;
1471 walk_stmts (&wi, stmt_p);
1472 input_location = saved_location;
1475 /* Re-gimplification and code generation routines. */
1477 /* Build a call to GOMP_barrier. */
1479 static tree
1480 build_omp_barrier (void)
1482 return build_call_expr (built_in_decls[BUILT_IN_GOMP_BARRIER], 0);
1485 /* If a context was created for STMT when it was scanned, return it. */
1487 static omp_context *
1488 maybe_lookup_ctx (tree stmt)
1490 splay_tree_node n;
1491 n = splay_tree_lookup (all_contexts, (splay_tree_key) stmt);
1492 return n ? (omp_context *) n->value : NULL;
1496 /* Find the mapping for DECL in CTX or the immediately enclosing
1497 context that has a mapping for DECL.
1499 If CTX is a nested parallel directive, we may have to use the decl
1500 mappings created in CTX's parent context. Suppose that we have the
1501 following parallel nesting (variable UIDs showed for clarity):
1503 iD.1562 = 0;
1504 #omp parallel shared(iD.1562) -> outer parallel
1505 iD.1562 = iD.1562 + 1;
1507 #omp parallel shared (iD.1562) -> inner parallel
1508 iD.1562 = iD.1562 - 1;
1510 Each parallel structure will create a distinct .omp_data_s structure
1511 for copying iD.1562 in/out of the directive:
1513 outer parallel .omp_data_s.1.i -> iD.1562
1514 inner parallel .omp_data_s.2.i -> iD.1562
1516 A shared variable mapping will produce a copy-out operation before
1517 the parallel directive and a copy-in operation after it. So, in
1518 this case we would have:
1520 iD.1562 = 0;
1521 .omp_data_o.1.i = iD.1562;
1522 #omp parallel shared(iD.1562) -> outer parallel
1523 .omp_data_i.1 = &.omp_data_o.1
1524 .omp_data_i.1->i = .omp_data_i.1->i + 1;
1526 .omp_data_o.2.i = iD.1562; -> **
1527 #omp parallel shared(iD.1562) -> inner parallel
1528 .omp_data_i.2 = &.omp_data_o.2
1529 .omp_data_i.2->i = .omp_data_i.2->i - 1;
1532 ** This is a problem. The symbol iD.1562 cannot be referenced
1533 inside the body of the outer parallel region. But since we are
1534 emitting this copy operation while expanding the inner parallel
1535 directive, we need to access the CTX structure of the outer
1536 parallel directive to get the correct mapping:
1538 .omp_data_o.2.i = .omp_data_i.1->i
1540 Since there may be other workshare or parallel directives enclosing
1541 the parallel directive, it may be necessary to walk up the context
1542 parent chain. This is not a problem in general because nested
1543 parallelism happens only rarely. */
1545 static tree
1546 lookup_decl_in_outer_ctx (tree decl, omp_context *ctx)
1548 tree t;
1549 omp_context *up;
1551 for (up = ctx->outer, t = NULL; up && t == NULL; up = up->outer)
1552 t = maybe_lookup_decl (decl, up);
1554 gcc_assert (!ctx->is_nested || t || is_global_var (decl));
1556 return t ? t : decl;
1560 /* Similar to lookup_decl_in_outer_ctx, but return DECL if not found
1561 in outer contexts. */
1563 static tree
1564 maybe_lookup_decl_in_outer_ctx (tree decl, omp_context *ctx)
1566 tree t = NULL;
1567 omp_context *up;
1569 for (up = ctx->outer, t = NULL; up && t == NULL; up = up->outer)
1570 t = maybe_lookup_decl (decl, up);
1572 return t ? t : decl;
1576 /* Construct the initialization value for reduction CLAUSE. */
1578 tree
1579 omp_reduction_init (tree clause, tree type)
1581 switch (OMP_CLAUSE_REDUCTION_CODE (clause))
1583 case PLUS_EXPR:
1584 case MINUS_EXPR:
1585 case BIT_IOR_EXPR:
1586 case BIT_XOR_EXPR:
1587 case TRUTH_OR_EXPR:
1588 case TRUTH_ORIF_EXPR:
1589 case TRUTH_XOR_EXPR:
1590 case NE_EXPR:
1591 return fold_convert (type, integer_zero_node);
1593 case MULT_EXPR:
1594 case TRUTH_AND_EXPR:
1595 case TRUTH_ANDIF_EXPR:
1596 case EQ_EXPR:
1597 return fold_convert (type, integer_one_node);
1599 case BIT_AND_EXPR:
1600 return fold_convert (type, integer_minus_one_node);
1602 case MAX_EXPR:
1603 if (SCALAR_FLOAT_TYPE_P (type))
1605 REAL_VALUE_TYPE max, min;
1606 if (HONOR_INFINITIES (TYPE_MODE (type)))
1608 real_inf (&max);
1609 real_arithmetic (&min, NEGATE_EXPR, &max, NULL);
1611 else
1612 real_maxval (&min, 1, TYPE_MODE (type));
1613 return build_real (type, min);
1615 else
1617 gcc_assert (INTEGRAL_TYPE_P (type));
1618 return TYPE_MIN_VALUE (type);
1621 case MIN_EXPR:
1622 if (SCALAR_FLOAT_TYPE_P (type))
1624 REAL_VALUE_TYPE max;
1625 if (HONOR_INFINITIES (TYPE_MODE (type)))
1626 real_inf (&max);
1627 else
1628 real_maxval (&max, 0, TYPE_MODE (type));
1629 return build_real (type, max);
1631 else
1633 gcc_assert (INTEGRAL_TYPE_P (type));
1634 return TYPE_MAX_VALUE (type);
1637 default:
1638 gcc_unreachable ();
1642 /* Generate code to implement the input clauses, FIRSTPRIVATE and COPYIN,
1643 from the receiver (aka child) side and initializers for REFERENCE_TYPE
1644 private variables. Initialization statements go in ILIST, while calls
1645 to destructors go in DLIST. */
1647 static void
1648 lower_rec_input_clauses (tree clauses, tree *ilist, tree *dlist,
1649 omp_context *ctx)
1651 tree_stmt_iterator diter;
1652 tree c, dtor, copyin_seq, x, ptr;
1653 bool copyin_by_ref = false;
1654 bool lastprivate_firstprivate = false;
1655 int pass;
1657 *dlist = alloc_stmt_list ();
1658 diter = tsi_start (*dlist);
1659 copyin_seq = NULL;
1661 /* Do all the fixed sized types in the first pass, and the variable sized
1662 types in the second pass. This makes sure that the scalar arguments to
1663 the variable sized types are processed before we use them in the
1664 variable sized operations. */
1665 for (pass = 0; pass < 2; ++pass)
1667 for (c = clauses; c ; c = OMP_CLAUSE_CHAIN (c))
1669 enum omp_clause_code c_kind = OMP_CLAUSE_CODE (c);
1670 tree var, new_var;
1671 bool by_ref;
1673 switch (c_kind)
1675 case OMP_CLAUSE_PRIVATE:
1676 if (OMP_CLAUSE_PRIVATE_DEBUG (c))
1677 continue;
1678 break;
1679 case OMP_CLAUSE_SHARED:
1680 if (maybe_lookup_decl (OMP_CLAUSE_DECL (c), ctx) == NULL)
1682 gcc_assert (is_global_var (OMP_CLAUSE_DECL (c)));
1683 continue;
1685 case OMP_CLAUSE_FIRSTPRIVATE:
1686 case OMP_CLAUSE_COPYIN:
1687 case OMP_CLAUSE_REDUCTION:
1688 break;
1689 case OMP_CLAUSE_LASTPRIVATE:
1690 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c))
1692 lastprivate_firstprivate = true;
1693 if (pass != 0)
1694 continue;
1696 break;
1697 default:
1698 continue;
1701 new_var = var = OMP_CLAUSE_DECL (c);
1702 if (c_kind != OMP_CLAUSE_COPYIN)
1703 new_var = lookup_decl (var, ctx);
1705 if (c_kind == OMP_CLAUSE_SHARED || c_kind == OMP_CLAUSE_COPYIN)
1707 if (pass != 0)
1708 continue;
1710 else if (is_variable_sized (var))
1712 /* For variable sized types, we need to allocate the
1713 actual storage here. Call alloca and store the
1714 result in the pointer decl that we created elsewhere. */
1715 if (pass == 0)
1716 continue;
1718 ptr = DECL_VALUE_EXPR (new_var);
1719 gcc_assert (TREE_CODE (ptr) == INDIRECT_REF);
1720 ptr = TREE_OPERAND (ptr, 0);
1721 gcc_assert (DECL_P (ptr));
1723 x = TYPE_SIZE_UNIT (TREE_TYPE (new_var));
1724 x = build_call_expr (built_in_decls[BUILT_IN_ALLOCA], 1, x);
1725 x = fold_convert (TREE_TYPE (ptr), x);
1726 x = build_gimple_modify_stmt (ptr, x);
1727 gimplify_and_add (x, ilist);
1729 else if (is_reference (var))
1731 /* For references that are being privatized for Fortran,
1732 allocate new backing storage for the new pointer
1733 variable. This allows us to avoid changing all the
1734 code that expects a pointer to something that expects
1735 a direct variable. Note that this doesn't apply to
1736 C++, since reference types are disallowed in data
1737 sharing clauses there, except for NRV optimized
1738 return values. */
1739 if (pass == 0)
1740 continue;
1742 x = TYPE_SIZE_UNIT (TREE_TYPE (TREE_TYPE (new_var)));
1743 if (TREE_CONSTANT (x))
1745 const char *name = NULL;
1746 if (DECL_NAME (var))
1747 name = IDENTIFIER_POINTER (DECL_NAME (new_var));
1749 x = create_tmp_var_raw (TREE_TYPE (TREE_TYPE (new_var)),
1750 name);
1751 gimple_add_tmp_var (x);
1752 x = build_fold_addr_expr_with_type (x, TREE_TYPE (new_var));
1754 else
1756 x = build_call_expr (built_in_decls[BUILT_IN_ALLOCA], 1, x);
1757 x = fold_convert (TREE_TYPE (new_var), x);
1760 x = build_gimple_modify_stmt (new_var, x);
1761 gimplify_and_add (x, ilist);
1763 new_var = build_fold_indirect_ref (new_var);
1765 else if (c_kind == OMP_CLAUSE_REDUCTION
1766 && OMP_CLAUSE_REDUCTION_PLACEHOLDER (c))
1768 if (pass == 0)
1769 continue;
1771 else if (pass != 0)
1772 continue;
1774 switch (OMP_CLAUSE_CODE (c))
1776 case OMP_CLAUSE_SHARED:
1777 /* Shared global vars are just accessed directly. */
1778 if (is_global_var (new_var))
1779 break;
1780 /* Set up the DECL_VALUE_EXPR for shared variables now. This
1781 needs to be delayed until after fixup_child_record_type so
1782 that we get the correct type during the dereference. */
1783 by_ref = use_pointer_for_field (var, ctx);
1784 x = build_receiver_ref (var, by_ref, ctx);
1785 SET_DECL_VALUE_EXPR (new_var, x);
1786 DECL_HAS_VALUE_EXPR_P (new_var) = 1;
1788 /* ??? If VAR is not passed by reference, and the variable
1789 hasn't been initialized yet, then we'll get a warning for
1790 the store into the omp_data_s structure. Ideally, we'd be
1791 able to notice this and not store anything at all, but
1792 we're generating code too early. Suppress the warning. */
1793 if (!by_ref)
1794 TREE_NO_WARNING (var) = 1;
1795 break;
1797 case OMP_CLAUSE_LASTPRIVATE:
1798 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c))
1799 break;
1800 /* FALLTHRU */
1802 case OMP_CLAUSE_PRIVATE:
1803 x = lang_hooks.decls.omp_clause_default_ctor (c, new_var);
1804 if (x)
1805 gimplify_and_add (x, ilist);
1806 /* FALLTHRU */
1808 do_dtor:
1809 x = lang_hooks.decls.omp_clause_dtor (c, new_var);
1810 if (x)
1812 dtor = x;
1813 gimplify_stmt (&dtor);
1814 tsi_link_before (&diter, dtor, TSI_SAME_STMT);
1816 break;
1818 case OMP_CLAUSE_FIRSTPRIVATE:
1819 x = build_outer_var_ref (var, ctx);
1820 x = lang_hooks.decls.omp_clause_copy_ctor (c, new_var, x);
1821 gimplify_and_add (x, ilist);
1822 goto do_dtor;
1823 break;
1825 case OMP_CLAUSE_COPYIN:
1826 by_ref = use_pointer_for_field (var, NULL);
1827 x = build_receiver_ref (var, by_ref, ctx);
1828 x = lang_hooks.decls.omp_clause_assign_op (c, new_var, x);
1829 append_to_statement_list (x, &copyin_seq);
1830 copyin_by_ref |= by_ref;
1831 break;
1833 case OMP_CLAUSE_REDUCTION:
1834 if (OMP_CLAUSE_REDUCTION_PLACEHOLDER (c))
1836 gimplify_and_add (OMP_CLAUSE_REDUCTION_INIT (c), ilist);
1837 OMP_CLAUSE_REDUCTION_INIT (c) = NULL;
1839 else
1841 x = omp_reduction_init (c, TREE_TYPE (new_var));
1842 gcc_assert (TREE_CODE (TREE_TYPE (new_var)) != ARRAY_TYPE);
1843 x = build_gimple_modify_stmt (new_var, x);
1844 gimplify_and_add (x, ilist);
1846 break;
1848 default:
1849 gcc_unreachable ();
1854 /* The copyin sequence is not to be executed by the main thread, since
1855 that would result in self-copies. Perhaps not visible to scalars,
1856 but it certainly is to C++ operator=. */
1857 if (copyin_seq)
1859 x = build_call_expr (built_in_decls[BUILT_IN_OMP_GET_THREAD_NUM], 0);
1860 x = build2 (NE_EXPR, boolean_type_node, x,
1861 build_int_cst (TREE_TYPE (x), 0));
1862 x = build3 (COND_EXPR, void_type_node, x, copyin_seq, NULL);
1863 gimplify_and_add (x, ilist);
1866 /* If any copyin variable is passed by reference, we must ensure the
1867 master thread doesn't modify it before it is copied over in all
1868 threads. Similarly for variables in both firstprivate and
1869 lastprivate clauses we need to ensure the lastprivate copying
1870 happens after firstprivate copying in all threads. */
1871 if (copyin_by_ref || lastprivate_firstprivate)
1872 gimplify_and_add (build_omp_barrier (), ilist);
1876 /* Generate code to implement the LASTPRIVATE clauses. This is used for
1877 both parallel and workshare constructs. PREDICATE may be NULL if it's
1878 always true. */
1880 static void
1881 lower_lastprivate_clauses (tree clauses, tree predicate, tree *stmt_list,
1882 omp_context *ctx)
1884 tree sub_list, x, c;
1886 /* Early exit if there are no lastprivate clauses. */
1887 clauses = find_omp_clause (clauses, OMP_CLAUSE_LASTPRIVATE);
1888 if (clauses == NULL)
1890 /* If this was a workshare clause, see if it had been combined
1891 with its parallel. In that case, look for the clauses on the
1892 parallel statement itself. */
1893 if (is_parallel_ctx (ctx))
1894 return;
1896 ctx = ctx->outer;
1897 if (ctx == NULL || !is_parallel_ctx (ctx))
1898 return;
1900 clauses = find_omp_clause (OMP_PARALLEL_CLAUSES (ctx->stmt),
1901 OMP_CLAUSE_LASTPRIVATE);
1902 if (clauses == NULL)
1903 return;
1906 sub_list = alloc_stmt_list ();
1908 for (c = clauses; c ; c = OMP_CLAUSE_CHAIN (c))
1910 tree var, new_var;
1912 if (OMP_CLAUSE_CODE (c) != OMP_CLAUSE_LASTPRIVATE)
1913 continue;
1915 var = OMP_CLAUSE_DECL (c);
1916 new_var = lookup_decl (var, ctx);
1918 x = build_outer_var_ref (var, ctx);
1919 if (is_reference (var))
1920 new_var = build_fold_indirect_ref (new_var);
1921 x = lang_hooks.decls.omp_clause_assign_op (c, x, new_var);
1922 append_to_statement_list (x, &sub_list);
1925 if (predicate)
1926 x = build3 (COND_EXPR, void_type_node, predicate, sub_list, NULL);
1927 else
1928 x = sub_list;
1930 gimplify_and_add (x, stmt_list);
1934 /* Generate code to implement the REDUCTION clauses. */
1936 static void
1937 lower_reduction_clauses (tree clauses, tree *stmt_list, omp_context *ctx)
1939 tree sub_list = NULL, x, c;
1940 int count = 0;
1942 /* First see if there is exactly one reduction clause. Use OMP_ATOMIC
1943 update in that case, otherwise use a lock. */
1944 for (c = clauses; c && count < 2; c = OMP_CLAUSE_CHAIN (c))
1945 if (OMP_CLAUSE_CODE (c) == OMP_CLAUSE_REDUCTION)
1947 if (OMP_CLAUSE_REDUCTION_PLACEHOLDER (c))
1949 /* Never use OMP_ATOMIC for array reductions. */
1950 count = -1;
1951 break;
1953 count++;
1956 if (count == 0)
1957 return;
1959 for (c = clauses; c ; c = OMP_CLAUSE_CHAIN (c))
1961 tree var, ref, new_var;
1962 enum tree_code code;
1964 if (OMP_CLAUSE_CODE (c) != OMP_CLAUSE_REDUCTION)
1965 continue;
1967 var = OMP_CLAUSE_DECL (c);
1968 new_var = lookup_decl (var, ctx);
1969 if (is_reference (var))
1970 new_var = build_fold_indirect_ref (new_var);
1971 ref = build_outer_var_ref (var, ctx);
1972 code = OMP_CLAUSE_REDUCTION_CODE (c);
1974 /* reduction(-:var) sums up the partial results, so it acts
1975 identically to reduction(+:var). */
1976 if (code == MINUS_EXPR)
1977 code = PLUS_EXPR;
1979 if (count == 1)
1981 tree addr = build_fold_addr_expr (ref);
1983 addr = save_expr (addr);
1984 ref = build1 (INDIRECT_REF, TREE_TYPE (TREE_TYPE (addr)), addr);
1985 x = fold_build2 (code, TREE_TYPE (ref), ref, new_var);
1986 x = build2 (OMP_ATOMIC, void_type_node, addr, x);
1987 gimplify_and_add (x, stmt_list);
1988 return;
1991 if (OMP_CLAUSE_REDUCTION_PLACEHOLDER (c))
1993 tree placeholder = OMP_CLAUSE_REDUCTION_PLACEHOLDER (c);
1995 if (is_reference (var))
1996 ref = build_fold_addr_expr (ref);
1997 SET_DECL_VALUE_EXPR (placeholder, ref);
1998 DECL_HAS_VALUE_EXPR_P (placeholder) = 1;
1999 gimplify_and_add (OMP_CLAUSE_REDUCTION_MERGE (c), &sub_list);
2000 OMP_CLAUSE_REDUCTION_MERGE (c) = NULL;
2001 OMP_CLAUSE_REDUCTION_PLACEHOLDER (c) = NULL;
2003 else
2005 x = build2 (code, TREE_TYPE (ref), ref, new_var);
2006 ref = build_outer_var_ref (var, ctx);
2007 x = build_gimple_modify_stmt (ref, x);
2008 append_to_statement_list (x, &sub_list);
2012 x = build_call_expr (built_in_decls[BUILT_IN_GOMP_ATOMIC_START], 0);
2013 gimplify_and_add (x, stmt_list);
2015 gimplify_and_add (sub_list, stmt_list);
2017 x = build_call_expr (built_in_decls[BUILT_IN_GOMP_ATOMIC_END], 0);
2018 gimplify_and_add (x, stmt_list);
2022 /* Generate code to implement the COPYPRIVATE clauses. */
2024 static void
2025 lower_copyprivate_clauses (tree clauses, tree *slist, tree *rlist,
2026 omp_context *ctx)
2028 tree c;
2030 for (c = clauses; c ; c = OMP_CLAUSE_CHAIN (c))
2032 tree var, ref, x;
2033 bool by_ref;
2035 if (OMP_CLAUSE_CODE (c) != OMP_CLAUSE_COPYPRIVATE)
2036 continue;
2038 var = OMP_CLAUSE_DECL (c);
2039 by_ref = use_pointer_for_field (var, NULL);
2041 ref = build_sender_ref (var, ctx);
2042 x = lookup_decl_in_outer_ctx (var, ctx);
2043 x = by_ref ? build_fold_addr_expr (x) : x;
2044 x = build_gimple_modify_stmt (ref, x);
2045 gimplify_and_add (x, slist);
2047 ref = build_receiver_ref (var, by_ref, ctx);
2048 if (is_reference (var))
2050 ref = build_fold_indirect_ref (ref);
2051 var = build_fold_indirect_ref (var);
2053 x = lang_hooks.decls.omp_clause_assign_op (c, var, ref);
2054 gimplify_and_add (x, rlist);
2059 /* Generate code to implement the clauses, FIRSTPRIVATE, COPYIN, LASTPRIVATE,
2060 and REDUCTION from the sender (aka parent) side. */
2062 static void
2063 lower_send_clauses (tree clauses, tree *ilist, tree *olist, omp_context *ctx)
2065 tree c;
2067 for (c = clauses; c ; c = OMP_CLAUSE_CHAIN (c))
2069 tree val, ref, x, var;
2070 bool by_ref, do_in = false, do_out = false;
2072 switch (OMP_CLAUSE_CODE (c))
2074 case OMP_CLAUSE_FIRSTPRIVATE:
2075 case OMP_CLAUSE_COPYIN:
2076 case OMP_CLAUSE_LASTPRIVATE:
2077 case OMP_CLAUSE_REDUCTION:
2078 break;
2079 default:
2080 continue;
2083 val = OMP_CLAUSE_DECL (c);
2084 var = lookup_decl_in_outer_ctx (val, ctx);
2086 if (OMP_CLAUSE_CODE (c) != OMP_CLAUSE_COPYIN
2087 && is_global_var (var))
2088 continue;
2089 if (is_variable_sized (val))
2090 continue;
2091 by_ref = use_pointer_for_field (val, NULL);
2093 switch (OMP_CLAUSE_CODE (c))
2095 case OMP_CLAUSE_FIRSTPRIVATE:
2096 case OMP_CLAUSE_COPYIN:
2097 do_in = true;
2098 break;
2100 case OMP_CLAUSE_LASTPRIVATE:
2101 if (by_ref || is_reference (val))
2103 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c))
2104 continue;
2105 do_in = true;
2107 else
2108 do_out = true;
2109 break;
2111 case OMP_CLAUSE_REDUCTION:
2112 do_in = true;
2113 do_out = !(by_ref || is_reference (val));
2114 break;
2116 default:
2117 gcc_unreachable ();
2120 if (do_in)
2122 ref = build_sender_ref (val, ctx);
2123 x = by_ref ? build_fold_addr_expr (var) : var;
2124 x = build_gimple_modify_stmt (ref, x);
2125 gimplify_and_add (x, ilist);
2128 if (do_out)
2130 ref = build_sender_ref (val, ctx);
2131 x = build_gimple_modify_stmt (var, ref);
2132 gimplify_and_add (x, olist);
2137 /* Generate code to implement SHARED from the sender (aka parent) side.
2138 This is trickier, since OMP_PARALLEL_CLAUSES doesn't list things that
2139 got automatically shared. */
2141 static void
2142 lower_send_shared_vars (tree *ilist, tree *olist, omp_context *ctx)
2144 tree var, ovar, nvar, f, x;
2146 if (ctx->record_type == NULL)
2147 return;
2149 for (f = TYPE_FIELDS (ctx->record_type); f ; f = TREE_CHAIN (f))
2151 ovar = DECL_ABSTRACT_ORIGIN (f);
2152 nvar = maybe_lookup_decl (ovar, ctx);
2153 if (!nvar || !DECL_HAS_VALUE_EXPR_P (nvar))
2154 continue;
2156 /* If CTX is a nested parallel directive. Find the immediately
2157 enclosing parallel or workshare construct that contains a
2158 mapping for OVAR. */
2159 var = lookup_decl_in_outer_ctx (ovar, ctx);
2161 if (use_pointer_for_field (ovar, ctx))
2163 x = build_sender_ref (ovar, ctx);
2164 var = build_fold_addr_expr (var);
2165 x = build_gimple_modify_stmt (x, var);
2166 gimplify_and_add (x, ilist);
2168 else
2170 x = build_sender_ref (ovar, ctx);
2171 x = build_gimple_modify_stmt (x, var);
2172 gimplify_and_add (x, ilist);
2174 x = build_sender_ref (ovar, ctx);
2175 x = build_gimple_modify_stmt (var, x);
2176 gimplify_and_add (x, olist);
2181 /* Build the function calls to GOMP_parallel_start etc to actually
2182 generate the parallel operation. REGION is the parallel region
2183 being expanded. BB is the block where to insert the code. WS_ARGS
2184 will be set if this is a call to a combined parallel+workshare
2185 construct, it contains the list of additional arguments needed by
2186 the workshare construct. */
2188 static void
2189 expand_parallel_call (struct omp_region *region, basic_block bb,
2190 tree entry_stmt, tree ws_args)
2192 tree t, t1, t2, val, cond, c, clauses;
2193 block_stmt_iterator si;
2194 int start_ix;
2196 clauses = OMP_PARALLEL_CLAUSES (entry_stmt);
2198 /* Determine what flavor of GOMP_parallel_start we will be
2199 emitting. */
2200 start_ix = BUILT_IN_GOMP_PARALLEL_START;
2201 if (is_combined_parallel (region))
2203 switch (region->inner->type)
2205 case OMP_FOR:
2206 start_ix = BUILT_IN_GOMP_PARALLEL_LOOP_STATIC_START
2207 + region->inner->sched_kind;
2208 break;
2209 case OMP_SECTIONS:
2210 start_ix = BUILT_IN_GOMP_PARALLEL_SECTIONS_START;
2211 break;
2212 default:
2213 gcc_unreachable ();
2217 /* By default, the value of NUM_THREADS is zero (selected at run time)
2218 and there is no conditional. */
2219 cond = NULL_TREE;
2220 val = build_int_cst (unsigned_type_node, 0);
2222 c = find_omp_clause (clauses, OMP_CLAUSE_IF);
2223 if (c)
2224 cond = OMP_CLAUSE_IF_EXPR (c);
2226 c = find_omp_clause (clauses, OMP_CLAUSE_NUM_THREADS);
2227 if (c)
2228 val = OMP_CLAUSE_NUM_THREADS_EXPR (c);
2230 /* Ensure 'val' is of the correct type. */
2231 val = fold_convert (unsigned_type_node, val);
2233 /* If we found the clause 'if (cond)', build either
2234 (cond != 0) or (cond ? val : 1u). */
2235 if (cond)
2237 block_stmt_iterator si;
2239 cond = gimple_boolify (cond);
2241 if (integer_zerop (val))
2242 val = fold_build2 (EQ_EXPR, unsigned_type_node, cond,
2243 build_int_cst (TREE_TYPE (cond), 0));
2244 else
2246 basic_block cond_bb, then_bb, else_bb;
2247 edge e, e_then, e_else;
2248 tree t, tmp_then, tmp_else, tmp_join, tmp_var;
2250 tmp_var = create_tmp_var (TREE_TYPE (val), NULL);
2251 if (gimple_in_ssa_p (cfun))
2253 tmp_then = make_ssa_name (tmp_var, NULL_TREE);
2254 tmp_else = make_ssa_name (tmp_var, NULL_TREE);
2255 tmp_join = make_ssa_name (tmp_var, NULL_TREE);
2257 else
2259 tmp_then = tmp_var;
2260 tmp_else = tmp_var;
2261 tmp_join = tmp_var;
2264 e = split_block (bb, NULL);
2265 cond_bb = e->src;
2266 bb = e->dest;
2267 remove_edge (e);
2269 then_bb = create_empty_bb (cond_bb);
2270 else_bb = create_empty_bb (then_bb);
2271 set_immediate_dominator (CDI_DOMINATORS, then_bb, cond_bb);
2272 set_immediate_dominator (CDI_DOMINATORS, else_bb, cond_bb);
2274 t = build3 (COND_EXPR, void_type_node,
2275 cond, NULL_TREE, NULL_TREE);
2277 si = bsi_start (cond_bb);
2278 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
2280 si = bsi_start (then_bb);
2281 t = build_gimple_modify_stmt (tmp_then, val);
2282 if (gimple_in_ssa_p (cfun))
2283 SSA_NAME_DEF_STMT (tmp_then) = t;
2284 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
2286 si = bsi_start (else_bb);
2287 t = build_gimple_modify_stmt (tmp_else,
2288 build_int_cst (unsigned_type_node, 1));
2289 if (gimple_in_ssa_p (cfun))
2290 SSA_NAME_DEF_STMT (tmp_else) = t;
2291 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
2293 make_edge (cond_bb, then_bb, EDGE_TRUE_VALUE);
2294 make_edge (cond_bb, else_bb, EDGE_FALSE_VALUE);
2295 e_then = make_edge (then_bb, bb, EDGE_FALLTHRU);
2296 e_else = make_edge (else_bb, bb, EDGE_FALLTHRU);
2298 if (gimple_in_ssa_p (cfun))
2300 tree phi = create_phi_node (tmp_join, bb);
2301 SSA_NAME_DEF_STMT (tmp_join) = phi;
2302 add_phi_arg (phi, tmp_then, e_then);
2303 add_phi_arg (phi, tmp_else, e_else);
2306 val = tmp_join;
2309 si = bsi_start (bb);
2310 val = force_gimple_operand_bsi (&si, val, true, NULL_TREE,
2311 false, BSI_CONTINUE_LINKING);
2314 si = bsi_last (bb);
2315 t = OMP_PARALLEL_DATA_ARG (entry_stmt);
2316 if (t == NULL)
2317 t1 = null_pointer_node;
2318 else
2319 t1 = build_fold_addr_expr (t);
2320 t2 = build_fold_addr_expr (OMP_PARALLEL_FN (entry_stmt));
2322 if (ws_args)
2324 tree args = tree_cons (NULL, t2,
2325 tree_cons (NULL, t1,
2326 tree_cons (NULL, val, ws_args)));
2327 t = build_function_call_expr (built_in_decls[start_ix], args);
2329 else
2330 t = build_call_expr (built_in_decls[start_ix], 3, t2, t1, val);
2332 force_gimple_operand_bsi (&si, t, true, NULL_TREE,
2333 false, BSI_CONTINUE_LINKING);
2335 t = OMP_PARALLEL_DATA_ARG (entry_stmt);
2336 if (t == NULL)
2337 t = null_pointer_node;
2338 else
2339 t = build_fold_addr_expr (t);
2340 t = build_call_expr (OMP_PARALLEL_FN (entry_stmt), 1, t);
2341 force_gimple_operand_bsi (&si, t, true, NULL_TREE,
2342 false, BSI_CONTINUE_LINKING);
2344 t = build_call_expr (built_in_decls[BUILT_IN_GOMP_PARALLEL_END], 0);
2345 force_gimple_operand_bsi (&si, t, true, NULL_TREE,
2346 false, BSI_CONTINUE_LINKING);
2350 /* If exceptions are enabled, wrap *STMT_P in a MUST_NOT_THROW catch
2351 handler. This prevents programs from violating the structured
2352 block semantics with throws. */
2354 static void
2355 maybe_catch_exception (tree *stmt_p)
2357 tree f, t;
2359 if (!flag_exceptions)
2360 return;
2362 if (lang_protect_cleanup_actions)
2363 t = lang_protect_cleanup_actions ();
2364 else
2365 t = build_call_expr (built_in_decls[BUILT_IN_TRAP], 0);
2366 f = build2 (EH_FILTER_EXPR, void_type_node, NULL, NULL);
2367 EH_FILTER_MUST_NOT_THROW (f) = 1;
2368 gimplify_and_add (t, &EH_FILTER_FAILURE (f));
2370 t = build2 (TRY_CATCH_EXPR, void_type_node, *stmt_p, NULL);
2371 append_to_statement_list (f, &TREE_OPERAND (t, 1));
2373 *stmt_p = NULL;
2374 append_to_statement_list (t, stmt_p);
2377 /* Chain all the DECLs in LIST by their TREE_CHAIN fields. */
2379 static tree
2380 list2chain (tree list)
2382 tree t;
2384 for (t = list; t; t = TREE_CHAIN (t))
2386 tree var = TREE_VALUE (t);
2387 if (TREE_CHAIN (t))
2388 TREE_CHAIN (var) = TREE_VALUE (TREE_CHAIN (t));
2389 else
2390 TREE_CHAIN (var) = NULL_TREE;
2393 return list ? TREE_VALUE (list) : NULL_TREE;
2397 /* Remove barriers in REGION->EXIT's block. Note that this is only
2398 valid for OMP_PARALLEL regions. Since the end of a parallel region
2399 is an implicit barrier, any workshare inside the OMP_PARALLEL that
2400 left a barrier at the end of the OMP_PARALLEL region can now be
2401 removed. */
2403 static void
2404 remove_exit_barrier (struct omp_region *region)
2406 block_stmt_iterator si;
2407 basic_block exit_bb;
2408 edge_iterator ei;
2409 edge e;
2410 tree t;
2412 exit_bb = region->exit;
2414 /* If the parallel region doesn't return, we don't have REGION->EXIT
2415 block at all. */
2416 if (! exit_bb)
2417 return;
2419 /* The last insn in the block will be the parallel's OMP_RETURN. The
2420 workshare's OMP_RETURN will be in a preceding block. The kinds of
2421 statements that can appear in between are extremely limited -- no
2422 memory operations at all. Here, we allow nothing at all, so the
2423 only thing we allow to precede this OMP_RETURN is a label. */
2424 si = bsi_last (exit_bb);
2425 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_RETURN);
2426 bsi_prev (&si);
2427 if (!bsi_end_p (si) && TREE_CODE (bsi_stmt (si)) != LABEL_EXPR)
2428 return;
2430 FOR_EACH_EDGE (e, ei, exit_bb->preds)
2432 si = bsi_last (e->src);
2433 if (bsi_end_p (si))
2434 continue;
2435 t = bsi_stmt (si);
2436 if (TREE_CODE (t) == OMP_RETURN)
2437 OMP_RETURN_NOWAIT (t) = 1;
2441 static void
2442 remove_exit_barriers (struct omp_region *region)
2444 if (region->type == OMP_PARALLEL)
2445 remove_exit_barrier (region);
2447 if (region->inner)
2449 region = region->inner;
2450 remove_exit_barriers (region);
2451 while (region->next)
2453 region = region->next;
2454 remove_exit_barriers (region);
2459 /* Optimize omp_get_thread_num () and omp_get_num_threads ()
2460 calls. These can't be declared as const functions, but
2461 within one parallel body they are constant, so they can be
2462 transformed there into __builtin_omp_get_{thread_num,num_threads} ()
2463 which are declared const. */
2465 static void
2466 optimize_omp_library_calls (void)
2468 basic_block bb;
2469 block_stmt_iterator bsi;
2470 tree thr_num_id
2471 = DECL_ASSEMBLER_NAME (built_in_decls [BUILT_IN_OMP_GET_THREAD_NUM]);
2472 tree num_thr_id
2473 = DECL_ASSEMBLER_NAME (built_in_decls [BUILT_IN_OMP_GET_NUM_THREADS]);
2475 FOR_EACH_BB (bb)
2476 for (bsi = bsi_start (bb); !bsi_end_p (bsi); bsi_next (&bsi))
2478 tree stmt = bsi_stmt (bsi);
2479 tree call = get_call_expr_in (stmt);
2480 tree decl;
2482 if (call
2483 && (decl = get_callee_fndecl (call))
2484 && DECL_EXTERNAL (decl)
2485 && TREE_PUBLIC (decl)
2486 && DECL_INITIAL (decl) == NULL)
2488 tree built_in;
2490 if (DECL_NAME (decl) == thr_num_id)
2491 built_in = built_in_decls [BUILT_IN_OMP_GET_THREAD_NUM];
2492 else if (DECL_NAME (decl) == num_thr_id)
2493 built_in = built_in_decls [BUILT_IN_OMP_GET_NUM_THREADS];
2494 else
2495 continue;
2497 if (DECL_ASSEMBLER_NAME (decl) != DECL_ASSEMBLER_NAME (built_in)
2498 || call_expr_nargs (call) != 0)
2499 continue;
2501 if (flag_exceptions && !TREE_NOTHROW (decl))
2502 continue;
2504 if (TREE_CODE (TREE_TYPE (decl)) != FUNCTION_TYPE
2505 || TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (decl)))
2506 != TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (built_in))))
2507 continue;
2509 CALL_EXPR_FN (call) = build_fold_addr_expr (built_in);
2514 /* Expand the OpenMP parallel directive starting at REGION. */
2516 static void
2517 expand_omp_parallel (struct omp_region *region)
2519 basic_block entry_bb, exit_bb, new_bb;
2520 struct function *child_cfun;
2521 tree child_fn, block, t, ws_args;
2522 block_stmt_iterator si;
2523 tree entry_stmt;
2524 edge e;
2526 entry_stmt = last_stmt (region->entry);
2527 child_fn = OMP_PARALLEL_FN (entry_stmt);
2528 child_cfun = DECL_STRUCT_FUNCTION (child_fn);
2529 /* If this function has been already instrumented, make sure
2530 the child function isn't instrumented again. */
2531 child_cfun->after_tree_profile = cfun->after_tree_profile;
2533 entry_bb = region->entry;
2534 exit_bb = region->exit;
2536 if (is_combined_parallel (region))
2537 ws_args = region->ws_args;
2538 else
2539 ws_args = NULL_TREE;
2541 if (child_cfun->cfg)
2543 /* Due to inlining, it may happen that we have already outlined
2544 the region, in which case all we need to do is make the
2545 sub-graph unreachable and emit the parallel call. */
2546 edge entry_succ_e, exit_succ_e;
2547 block_stmt_iterator si;
2549 entry_succ_e = single_succ_edge (entry_bb);
2551 si = bsi_last (entry_bb);
2552 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_PARALLEL);
2553 bsi_remove (&si, true);
2555 new_bb = entry_bb;
2556 if (exit_bb)
2558 exit_succ_e = single_succ_edge (exit_bb);
2559 make_edge (new_bb, exit_succ_e->dest, EDGE_FALLTHRU);
2561 remove_edge_and_dominated_blocks (entry_succ_e);
2563 else
2565 /* If the parallel region needs data sent from the parent
2566 function, then the very first statement (except possible
2567 tree profile counter updates) of the parallel body
2568 is a copy assignment .OMP_DATA_I = &.OMP_DATA_O. Since
2569 &.OMP_DATA_O is passed as an argument to the child function,
2570 we need to replace it with the argument as seen by the child
2571 function.
2573 In most cases, this will end up being the identity assignment
2574 .OMP_DATA_I = .OMP_DATA_I. However, if the parallel body had
2575 a function call that has been inlined, the original PARM_DECL
2576 .OMP_DATA_I may have been converted into a different local
2577 variable. In which case, we need to keep the assignment. */
2578 if (OMP_PARALLEL_DATA_ARG (entry_stmt))
2580 basic_block entry_succ_bb = single_succ (entry_bb);
2581 block_stmt_iterator si;
2582 tree parcopy_stmt = NULL_TREE, arg, narg;
2584 for (si = bsi_start (entry_succ_bb); ; bsi_next (&si))
2586 tree stmt, arg;
2588 gcc_assert (!bsi_end_p (si));
2589 stmt = bsi_stmt (si);
2590 if (TREE_CODE (stmt) != GIMPLE_MODIFY_STMT)
2591 continue;
2593 arg = GIMPLE_STMT_OPERAND (stmt, 1);
2594 STRIP_NOPS (arg);
2595 if (TREE_CODE (arg) == ADDR_EXPR
2596 && TREE_OPERAND (arg, 0)
2597 == OMP_PARALLEL_DATA_ARG (entry_stmt))
2599 parcopy_stmt = stmt;
2600 break;
2604 gcc_assert (parcopy_stmt != NULL_TREE);
2605 arg = DECL_ARGUMENTS (child_fn);
2607 if (!gimple_in_ssa_p (cfun))
2609 if (GIMPLE_STMT_OPERAND (parcopy_stmt, 0) == arg)
2610 bsi_remove (&si, true);
2611 else
2612 GIMPLE_STMT_OPERAND (parcopy_stmt, 1) = arg;
2614 else
2616 /* If we are in ssa form, we must load the value from the default
2617 definition of the argument. That should not be defined now,
2618 since the argument is not used uninitialized. */
2619 gcc_assert (gimple_default_def (cfun, arg) == NULL);
2620 narg = make_ssa_name (arg, build_empty_stmt ());
2621 set_default_def (arg, narg);
2622 GIMPLE_STMT_OPERAND (parcopy_stmt, 1) = narg;
2623 update_stmt (parcopy_stmt);
2627 /* Declare local variables needed in CHILD_CFUN. */
2628 block = DECL_INITIAL (child_fn);
2629 BLOCK_VARS (block) = list2chain (child_cfun->local_decls);
2630 DECL_SAVED_TREE (child_fn) = bb_stmt_list (single_succ (entry_bb));
2632 /* Reset DECL_CONTEXT on function arguments. */
2633 for (t = DECL_ARGUMENTS (child_fn); t; t = TREE_CHAIN (t))
2634 DECL_CONTEXT (t) = child_fn;
2636 /* Split ENTRY_BB at OMP_PARALLEL so that it can be moved to the
2637 child function. */
2638 si = bsi_last (entry_bb);
2639 t = bsi_stmt (si);
2640 gcc_assert (t && TREE_CODE (t) == OMP_PARALLEL);
2641 bsi_remove (&si, true);
2642 e = split_block (entry_bb, t);
2643 entry_bb = e->dest;
2644 single_succ_edge (entry_bb)->flags = EDGE_FALLTHRU;
2646 /* Convert OMP_RETURN into a RETURN_EXPR. */
2647 if (exit_bb)
2649 si = bsi_last (exit_bb);
2650 gcc_assert (!bsi_end_p (si)
2651 && TREE_CODE (bsi_stmt (si)) == OMP_RETURN);
2652 t = build1 (RETURN_EXPR, void_type_node, NULL);
2653 bsi_insert_after (&si, t, BSI_SAME_STMT);
2654 bsi_remove (&si, true);
2657 /* Move the parallel region into CHILD_CFUN. */
2659 if (gimple_in_ssa_p (cfun))
2661 push_cfun (child_cfun);
2662 init_tree_ssa ();
2663 init_ssa_operands ();
2664 cfun->gimple_df->in_ssa_p = true;
2665 pop_cfun ();
2667 new_bb = move_sese_region_to_fn (child_cfun, entry_bb, exit_bb);
2668 if (exit_bb)
2669 single_succ_edge (new_bb)->flags = EDGE_FALLTHRU;
2671 /* Inform the callgraph about the new function. */
2672 DECL_STRUCT_FUNCTION (child_fn)->curr_properties
2673 = cfun->curr_properties;
2674 cgraph_add_new_function (child_fn, true);
2676 /* Fix the callgraph edges for child_cfun. Those for cfun will be
2677 fixed in a following pass. */
2678 push_cfun (child_cfun);
2679 if (optimize)
2680 optimize_omp_library_calls ();
2681 rebuild_cgraph_edges ();
2683 /* Some EH regions might become dead, see PR34608. If
2684 pass_cleanup_cfg isn't the first pass to happen with the
2685 new child, these dead EH edges might cause problems.
2686 Clean them up now. */
2687 if (flag_exceptions)
2689 basic_block bb;
2690 tree save_current = current_function_decl;
2691 bool changed = false;
2693 current_function_decl = child_fn;
2694 FOR_EACH_BB (bb)
2695 changed |= tree_purge_dead_eh_edges (bb);
2696 if (changed)
2697 cleanup_tree_cfg ();
2698 current_function_decl = save_current;
2700 pop_cfun ();
2703 /* Emit a library call to launch the children threads. */
2704 expand_parallel_call (region, new_bb, entry_stmt, ws_args);
2705 update_ssa (TODO_update_ssa_only_virtuals);
2709 /* A subroutine of expand_omp_for. Generate code for a parallel
2710 loop with any schedule. Given parameters:
2712 for (V = N1; V cond N2; V += STEP) BODY;
2714 where COND is "<" or ">", we generate pseudocode
2716 more = GOMP_loop_foo_start (N1, N2, STEP, CHUNK, &istart0, &iend0);
2717 if (more) goto L0; else goto L3;
2719 V = istart0;
2720 iend = iend0;
2722 BODY;
2723 V += STEP;
2724 if (V cond iend) goto L1; else goto L2;
2726 if (GOMP_loop_foo_next (&istart0, &iend0)) goto L0; else goto L3;
2729 If this is a combined omp parallel loop, instead of the call to
2730 GOMP_loop_foo_start, we call GOMP_loop_foo_next. */
2732 static void
2733 expand_omp_for_generic (struct omp_region *region,
2734 struct omp_for_data *fd,
2735 enum built_in_function start_fn,
2736 enum built_in_function next_fn)
2738 tree type, istart0, iend0, iend, phi;
2739 tree t, vmain, vback;
2740 basic_block entry_bb, cont_bb, exit_bb, l0_bb, l1_bb;
2741 basic_block l2_bb = NULL, l3_bb = NULL;
2742 block_stmt_iterator si;
2743 bool in_combined_parallel = is_combined_parallel (region);
2744 bool broken_loop = region->cont == NULL;
2745 edge e, ne;
2747 gcc_assert (!broken_loop || !in_combined_parallel);
2749 type = TREE_TYPE (fd->v);
2751 istart0 = create_tmp_var (long_integer_type_node, ".istart0");
2752 iend0 = create_tmp_var (long_integer_type_node, ".iend0");
2753 TREE_ADDRESSABLE (istart0) = 1;
2754 TREE_ADDRESSABLE (iend0) = 1;
2755 if (gimple_in_ssa_p (cfun))
2757 add_referenced_var (istart0);
2758 add_referenced_var (iend0);
2761 entry_bb = region->entry;
2762 cont_bb = region->cont;
2763 gcc_assert (EDGE_COUNT (entry_bb->succs) == 2);
2764 gcc_assert (broken_loop
2765 || BRANCH_EDGE (entry_bb)->dest == FALLTHRU_EDGE (cont_bb)->dest);
2766 l0_bb = split_edge (FALLTHRU_EDGE (entry_bb));
2767 l1_bb = single_succ (l0_bb);
2768 if (!broken_loop)
2770 l2_bb = create_empty_bb (cont_bb);
2771 gcc_assert (BRANCH_EDGE (cont_bb)->dest == l1_bb);
2772 gcc_assert (EDGE_COUNT (cont_bb->succs) == 2);
2774 else
2775 l2_bb = NULL;
2776 l3_bb = BRANCH_EDGE (entry_bb)->dest;
2777 exit_bb = region->exit;
2779 si = bsi_last (entry_bb);
2780 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_FOR);
2781 if (in_combined_parallel)
2783 /* In a combined parallel loop, emit a call to
2784 GOMP_loop_foo_next. */
2785 t = build_call_expr (built_in_decls[next_fn], 2,
2786 build_fold_addr_expr (istart0),
2787 build_fold_addr_expr (iend0));
2789 else
2791 tree t0, t1, t2, t3, t4;
2792 /* If this is not a combined parallel loop, emit a call to
2793 GOMP_loop_foo_start in ENTRY_BB. */
2794 t4 = build_fold_addr_expr (iend0);
2795 t3 = build_fold_addr_expr (istart0);
2796 t2 = fold_convert (long_integer_type_node, fd->step);
2797 t1 = fold_convert (long_integer_type_node, fd->n2);
2798 t0 = fold_convert (long_integer_type_node, fd->n1);
2799 if (fd->chunk_size)
2801 t = fold_convert (long_integer_type_node, fd->chunk_size);
2802 t = build_call_expr (built_in_decls[start_fn], 6,
2803 t0, t1, t2, t, t3, t4);
2805 else
2806 t = build_call_expr (built_in_decls[start_fn], 5,
2807 t0, t1, t2, t3, t4);
2809 t = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
2810 true, BSI_SAME_STMT);
2811 t = build3 (COND_EXPR, void_type_node, t, NULL_TREE, NULL_TREE);
2812 bsi_insert_after (&si, t, BSI_SAME_STMT);
2814 /* Remove the OMP_FOR statement. */
2815 bsi_remove (&si, true);
2817 /* Iteration setup for sequential loop goes in L0_BB. */
2818 si = bsi_start (l0_bb);
2819 t = fold_convert (type, istart0);
2820 t = force_gimple_operand_bsi (&si, t, false, NULL_TREE,
2821 false, BSI_CONTINUE_LINKING);
2822 t = build_gimple_modify_stmt (fd->v, t);
2823 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
2824 if (gimple_in_ssa_p (cfun))
2825 SSA_NAME_DEF_STMT (fd->v) = t;
2827 t = fold_convert (type, iend0);
2828 iend = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
2829 false, BSI_CONTINUE_LINKING);
2831 if (!broken_loop)
2833 /* Code to control the increment and predicate for the sequential
2834 loop goes in the CONT_BB. */
2835 si = bsi_last (cont_bb);
2836 t = bsi_stmt (si);
2837 gcc_assert (TREE_CODE (t) == OMP_CONTINUE);
2838 vmain = TREE_OPERAND (t, 1);
2839 vback = TREE_OPERAND (t, 0);
2841 t = fold_build2 (PLUS_EXPR, type, vmain, fd->step);
2842 t = force_gimple_operand_bsi (&si, t, false, NULL_TREE,
2843 true, BSI_SAME_STMT);
2844 t = build_gimple_modify_stmt (vback, t);
2845 bsi_insert_before (&si, t, BSI_SAME_STMT);
2846 if (gimple_in_ssa_p (cfun))
2847 SSA_NAME_DEF_STMT (vback) = t;
2849 t = build2 (fd->cond_code, boolean_type_node, vback, iend);
2850 t = build3 (COND_EXPR, void_type_node, t, NULL_TREE, NULL_TREE);
2851 bsi_insert_before (&si, t, BSI_SAME_STMT);
2853 /* Remove OMP_CONTINUE. */
2854 bsi_remove (&si, true);
2856 /* Emit code to get the next parallel iteration in L2_BB. */
2857 si = bsi_start (l2_bb);
2859 t = build_call_expr (built_in_decls[next_fn], 2,
2860 build_fold_addr_expr (istart0),
2861 build_fold_addr_expr (iend0));
2862 t = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
2863 false, BSI_CONTINUE_LINKING);
2864 t = build3 (COND_EXPR, void_type_node, t, NULL_TREE, NULL_TREE);
2865 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
2868 /* Add the loop cleanup function. */
2869 si = bsi_last (exit_bb);
2870 if (OMP_RETURN_NOWAIT (bsi_stmt (si)))
2871 t = built_in_decls[BUILT_IN_GOMP_LOOP_END_NOWAIT];
2872 else
2873 t = built_in_decls[BUILT_IN_GOMP_LOOP_END];
2874 t = build_call_expr (t, 0);
2875 bsi_insert_after (&si, t, BSI_SAME_STMT);
2876 bsi_remove (&si, true);
2878 /* Connect the new blocks. */
2879 find_edge (entry_bb, l0_bb)->flags = EDGE_TRUE_VALUE;
2880 find_edge (entry_bb, l3_bb)->flags = EDGE_FALSE_VALUE;
2882 if (!broken_loop)
2884 e = find_edge (cont_bb, l3_bb);
2885 ne = make_edge (l2_bb, l3_bb, EDGE_FALSE_VALUE);
2887 for (phi = phi_nodes (l3_bb); phi; phi = PHI_CHAIN (phi))
2888 SET_USE (PHI_ARG_DEF_PTR_FROM_EDGE (phi, ne),
2889 PHI_ARG_DEF_FROM_EDGE (phi, e));
2890 remove_edge (e);
2892 find_edge (cont_bb, l1_bb)->flags = EDGE_TRUE_VALUE;
2893 make_edge (cont_bb, l2_bb, EDGE_FALSE_VALUE);
2894 make_edge (l2_bb, l0_bb, EDGE_TRUE_VALUE);
2896 set_immediate_dominator (CDI_DOMINATORS, l2_bb,
2897 recompute_dominator (CDI_DOMINATORS, l2_bb));
2898 set_immediate_dominator (CDI_DOMINATORS, l3_bb,
2899 recompute_dominator (CDI_DOMINATORS, l3_bb));
2900 set_immediate_dominator (CDI_DOMINATORS, l0_bb,
2901 recompute_dominator (CDI_DOMINATORS, l0_bb));
2902 set_immediate_dominator (CDI_DOMINATORS, l1_bb,
2903 recompute_dominator (CDI_DOMINATORS, l1_bb));
2908 /* A subroutine of expand_omp_for. Generate code for a parallel
2909 loop with static schedule and no specified chunk size. Given
2910 parameters:
2912 for (V = N1; V cond N2; V += STEP) BODY;
2914 where COND is "<" or ">", we generate pseudocode
2916 if (cond is <)
2917 adj = STEP - 1;
2918 else
2919 adj = STEP + 1;
2920 n = (adj + N2 - N1) / STEP;
2921 q = n / nthreads;
2922 q += (q * nthreads != n);
2923 s0 = q * threadid;
2924 e0 = min(s0 + q, n);
2925 V = s0 * STEP + N1;
2926 if (s0 >= e0) goto L2; else goto L0;
2928 e = e0 * STEP + N1;
2930 BODY;
2931 V += STEP;
2932 if (V cond e) goto L1;
2936 static void
2937 expand_omp_for_static_nochunk (struct omp_region *region,
2938 struct omp_for_data *fd)
2940 tree n, q, s0, e0, e, t, nthreads, threadid;
2941 tree type, vmain, vback;
2942 basic_block entry_bb, exit_bb, seq_start_bb, body_bb, cont_bb;
2943 basic_block fin_bb;
2944 block_stmt_iterator si;
2946 type = TREE_TYPE (fd->v);
2948 entry_bb = region->entry;
2949 cont_bb = region->cont;
2950 gcc_assert (EDGE_COUNT (entry_bb->succs) == 2);
2951 gcc_assert (BRANCH_EDGE (entry_bb)->dest == FALLTHRU_EDGE (cont_bb)->dest);
2952 seq_start_bb = split_edge (FALLTHRU_EDGE (entry_bb));
2953 body_bb = single_succ (seq_start_bb);
2954 gcc_assert (BRANCH_EDGE (cont_bb)->dest == body_bb);
2955 gcc_assert (EDGE_COUNT (cont_bb->succs) == 2);
2956 fin_bb = FALLTHRU_EDGE (cont_bb)->dest;
2957 exit_bb = region->exit;
2959 /* Iteration space partitioning goes in ENTRY_BB. */
2960 si = bsi_last (entry_bb);
2961 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_FOR);
2963 t = build_call_expr (built_in_decls[BUILT_IN_OMP_GET_NUM_THREADS], 0);
2964 t = fold_convert (type, t);
2965 nthreads = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
2966 true, BSI_SAME_STMT);
2968 t = build_call_expr (built_in_decls[BUILT_IN_OMP_GET_THREAD_NUM], 0);
2969 t = fold_convert (type, t);
2970 threadid = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
2971 true, BSI_SAME_STMT);
2973 fd->n1 = force_gimple_operand_bsi (&si,
2974 fold_convert (type, fd->n1),
2975 true, NULL_TREE,
2976 true, BSI_SAME_STMT);
2978 fd->n2 = force_gimple_operand_bsi (&si,
2979 fold_convert (type, fd->n2),
2980 true, NULL_TREE,
2981 true, BSI_SAME_STMT);
2983 fd->step = force_gimple_operand_bsi (&si,
2984 fold_convert (type, fd->step),
2985 true, NULL_TREE,
2986 true, BSI_SAME_STMT);
2988 t = build_int_cst (type, (fd->cond_code == LT_EXPR ? -1 : 1));
2989 t = fold_build2 (PLUS_EXPR, type, fd->step, t);
2990 t = fold_build2 (PLUS_EXPR, type, t, fd->n2);
2991 t = fold_build2 (MINUS_EXPR, type, t, fd->n1);
2992 t = fold_build2 (TRUNC_DIV_EXPR, type, t, fd->step);
2993 t = fold_convert (type, t);
2994 n = force_gimple_operand_bsi (&si, t, true, NULL_TREE, true, BSI_SAME_STMT);
2996 t = fold_build2 (TRUNC_DIV_EXPR, type, n, nthreads);
2997 q = force_gimple_operand_bsi (&si, t, true, NULL_TREE, true, BSI_SAME_STMT);
2999 t = fold_build2 (MULT_EXPR, type, q, nthreads);
3000 t = fold_build2 (NE_EXPR, type, t, n);
3001 t = fold_build2 (PLUS_EXPR, type, q, t);
3002 q = force_gimple_operand_bsi (&si, t, true, NULL_TREE, true, BSI_SAME_STMT);
3004 t = build2 (MULT_EXPR, type, q, threadid);
3005 s0 = force_gimple_operand_bsi (&si, t, true, NULL_TREE, true, BSI_SAME_STMT);
3007 t = fold_build2 (PLUS_EXPR, type, s0, q);
3008 t = fold_build2 (MIN_EXPR, type, t, n);
3009 e0 = force_gimple_operand_bsi (&si, t, true, NULL_TREE, true, BSI_SAME_STMT);
3011 t = build2 (GE_EXPR, boolean_type_node, s0, e0);
3012 t = build3 (COND_EXPR, void_type_node, t, NULL_TREE, NULL_TREE);
3013 bsi_insert_before (&si, t, BSI_SAME_STMT);
3015 /* Remove the OMP_FOR statement. */
3016 bsi_remove (&si, true);
3018 /* Setup code for sequential iteration goes in SEQ_START_BB. */
3019 si = bsi_start (seq_start_bb);
3021 t = fold_convert (type, s0);
3022 t = fold_build2 (MULT_EXPR, type, t, fd->step);
3023 t = fold_build2 (PLUS_EXPR, type, t, fd->n1);
3024 t = force_gimple_operand_bsi (&si, t, false, NULL_TREE,
3025 false, BSI_CONTINUE_LINKING);
3026 t = build_gimple_modify_stmt (fd->v, t);
3027 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
3028 if (gimple_in_ssa_p (cfun))
3029 SSA_NAME_DEF_STMT (fd->v) = t;
3031 t = fold_convert (type, e0);
3032 t = fold_build2 (MULT_EXPR, type, t, fd->step);
3033 t = fold_build2 (PLUS_EXPR, type, t, fd->n1);
3034 e = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
3035 false, BSI_CONTINUE_LINKING);
3037 /* The code controlling the sequential loop replaces the OMP_CONTINUE. */
3038 si = bsi_last (cont_bb);
3039 t = bsi_stmt (si);
3040 gcc_assert (TREE_CODE (t) == OMP_CONTINUE);
3041 vmain = TREE_OPERAND (t, 1);
3042 vback = TREE_OPERAND (t, 0);
3044 t = fold_build2 (PLUS_EXPR, type, vmain, fd->step);
3045 t = force_gimple_operand_bsi (&si, t, false, NULL_TREE,
3046 true, BSI_SAME_STMT);
3047 t = build_gimple_modify_stmt (vback, t);
3048 bsi_insert_before (&si, t, BSI_SAME_STMT);
3049 if (gimple_in_ssa_p (cfun))
3050 SSA_NAME_DEF_STMT (vback) = t;
3052 t = build2 (fd->cond_code, boolean_type_node, vback, e);
3053 t = build3 (COND_EXPR, void_type_node, t, NULL_TREE, NULL_TREE);
3054 bsi_insert_before (&si, t, BSI_SAME_STMT);
3056 /* Remove the OMP_CONTINUE statement. */
3057 bsi_remove (&si, true);
3059 /* Replace the OMP_RETURN with a barrier, or nothing. */
3060 si = bsi_last (exit_bb);
3061 if (!OMP_RETURN_NOWAIT (bsi_stmt (si)))
3062 force_gimple_operand_bsi (&si, build_omp_barrier (), false, NULL_TREE,
3063 false, BSI_SAME_STMT);
3064 bsi_remove (&si, true);
3066 /* Connect all the blocks. */
3067 find_edge (entry_bb, seq_start_bb)->flags = EDGE_FALSE_VALUE;
3068 find_edge (entry_bb, fin_bb)->flags = EDGE_TRUE_VALUE;
3070 find_edge (cont_bb, body_bb)->flags = EDGE_TRUE_VALUE;
3071 find_edge (cont_bb, fin_bb)->flags = EDGE_FALSE_VALUE;
3073 set_immediate_dominator (CDI_DOMINATORS, seq_start_bb, entry_bb);
3074 set_immediate_dominator (CDI_DOMINATORS, body_bb,
3075 recompute_dominator (CDI_DOMINATORS, body_bb));
3076 set_immediate_dominator (CDI_DOMINATORS, fin_bb,
3077 recompute_dominator (CDI_DOMINATORS, fin_bb));
3081 /* A subroutine of expand_omp_for. Generate code for a parallel
3082 loop with static schedule and a specified chunk size. Given
3083 parameters:
3085 for (V = N1; V cond N2; V += STEP) BODY;
3087 where COND is "<" or ">", we generate pseudocode
3089 if (cond is <)
3090 adj = STEP - 1;
3091 else
3092 adj = STEP + 1;
3093 n = (adj + N2 - N1) / STEP;
3094 trip = 0;
3095 V = threadid * CHUNK * STEP + N1; -- this extra definition of V is
3096 here so that V is defined
3097 if the loop is not entered
3099 s0 = (trip * nthreads + threadid) * CHUNK;
3100 e0 = min(s0 + CHUNK, n);
3101 if (s0 < n) goto L1; else goto L4;
3103 V = s0 * STEP + N1;
3104 e = e0 * STEP + N1;
3106 BODY;
3107 V += STEP;
3108 if (V cond e) goto L2; else goto L3;
3110 trip += 1;
3111 goto L0;
3115 static void
3116 expand_omp_for_static_chunk (struct omp_region *region, struct omp_for_data *fd)
3118 tree n, s0, e0, e, t, phi, nphi, args;
3119 tree trip_var, trip_init, trip_main, trip_back, nthreads, threadid;
3120 tree type, cont, v_main, v_back, v_extra;
3121 basic_block entry_bb, exit_bb, body_bb, seq_start_bb, iter_part_bb;
3122 basic_block trip_update_bb, cont_bb, fin_bb;
3123 block_stmt_iterator si;
3124 edge se, re, ene;
3126 type = TREE_TYPE (fd->v);
3128 entry_bb = region->entry;
3129 se = split_block (entry_bb, last_stmt (entry_bb));
3130 entry_bb = se->src;
3131 iter_part_bb = se->dest;
3132 cont_bb = region->cont;
3133 gcc_assert (EDGE_COUNT (iter_part_bb->succs) == 2);
3134 gcc_assert (BRANCH_EDGE (iter_part_bb)->dest
3135 == FALLTHRU_EDGE (cont_bb)->dest);
3136 seq_start_bb = split_edge (FALLTHRU_EDGE (iter_part_bb));
3137 body_bb = single_succ (seq_start_bb);
3138 gcc_assert (BRANCH_EDGE (cont_bb)->dest == body_bb);
3139 gcc_assert (EDGE_COUNT (cont_bb->succs) == 2);
3140 fin_bb = FALLTHRU_EDGE (cont_bb)->dest;
3141 trip_update_bb = split_edge (FALLTHRU_EDGE (cont_bb));
3142 exit_bb = region->exit;
3144 /* Trip and adjustment setup goes in ENTRY_BB. */
3145 si = bsi_last (entry_bb);
3146 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_FOR);
3148 t = build_call_expr (built_in_decls[BUILT_IN_OMP_GET_NUM_THREADS], 0);
3149 t = fold_convert (type, t);
3150 nthreads = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
3151 true, BSI_SAME_STMT);
3153 t = build_call_expr (built_in_decls[BUILT_IN_OMP_GET_THREAD_NUM], 0);
3154 t = fold_convert (type, t);
3155 threadid = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
3156 true, BSI_SAME_STMT);
3158 fd->n1 = force_gimple_operand_bsi (&si, fold_convert (type, fd->n1),
3159 true, NULL_TREE,
3160 true, BSI_SAME_STMT);
3161 fd->n2 = force_gimple_operand_bsi (&si, fold_convert (type, fd->n2),
3162 true, NULL_TREE,
3163 true, BSI_SAME_STMT);
3164 fd->step = force_gimple_operand_bsi (&si, fold_convert (type, fd->step),
3165 true, NULL_TREE,
3166 true, BSI_SAME_STMT);
3167 fd->chunk_size
3168 = force_gimple_operand_bsi (&si, fold_convert (type,
3169 fd->chunk_size),
3170 true, NULL_TREE,
3171 true, BSI_SAME_STMT);
3173 t = build_int_cst (type, (fd->cond_code == LT_EXPR ? -1 : 1));
3174 t = fold_build2 (PLUS_EXPR, type, fd->step, t);
3175 t = fold_build2 (PLUS_EXPR, type, t, fd->n2);
3176 t = fold_build2 (MINUS_EXPR, type, t, fd->n1);
3177 t = fold_build2 (TRUNC_DIV_EXPR, type, t, fd->step);
3178 t = fold_convert (type, t);
3179 n = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
3180 true, BSI_SAME_STMT);
3182 trip_var = create_tmp_var (type, ".trip");
3183 if (gimple_in_ssa_p (cfun))
3185 add_referenced_var (trip_var);
3186 trip_init = make_ssa_name (trip_var, NULL_TREE);
3187 trip_main = make_ssa_name (trip_var, NULL_TREE);
3188 trip_back = make_ssa_name (trip_var, NULL_TREE);
3190 else
3192 trip_init = trip_var;
3193 trip_main = trip_var;
3194 trip_back = trip_var;
3197 t = build_gimple_modify_stmt (trip_init, build_int_cst (type, 0));
3198 bsi_insert_before (&si, t, BSI_SAME_STMT);
3199 if (gimple_in_ssa_p (cfun))
3200 SSA_NAME_DEF_STMT (trip_init) = t;
3202 t = fold_build2 (MULT_EXPR, type, threadid, fd->chunk_size);
3203 t = fold_build2 (MULT_EXPR, type, t, fd->step);
3204 t = fold_build2 (PLUS_EXPR, type, t, fd->n1);
3205 v_extra = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
3206 true, BSI_SAME_STMT);
3208 /* Remove the OMP_FOR. */
3209 bsi_remove (&si, true);
3211 /* Iteration space partitioning goes in ITER_PART_BB. */
3212 si = bsi_last (iter_part_bb);
3214 t = fold_build2 (MULT_EXPR, type, trip_main, nthreads);
3215 t = fold_build2 (PLUS_EXPR, type, t, threadid);
3216 t = fold_build2 (MULT_EXPR, type, t, fd->chunk_size);
3217 s0 = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
3218 false, BSI_CONTINUE_LINKING);
3220 t = fold_build2 (PLUS_EXPR, type, s0, fd->chunk_size);
3221 t = fold_build2 (MIN_EXPR, type, t, n);
3222 e0 = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
3223 false, BSI_CONTINUE_LINKING);
3225 t = build2 (LT_EXPR, boolean_type_node, s0, n);
3226 t = build3 (COND_EXPR, void_type_node, t, NULL_TREE, NULL_TREE);
3227 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
3229 /* Setup code for sequential iteration goes in SEQ_START_BB. */
3230 si = bsi_start (seq_start_bb);
3232 t = fold_convert (type, s0);
3233 t = fold_build2 (MULT_EXPR, type, t, fd->step);
3234 t = fold_build2 (PLUS_EXPR, type, t, fd->n1);
3235 t = force_gimple_operand_bsi (&si, t, false, NULL_TREE,
3236 false, BSI_CONTINUE_LINKING);
3237 t = build_gimple_modify_stmt (fd->v, t);
3238 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
3239 if (gimple_in_ssa_p (cfun))
3240 SSA_NAME_DEF_STMT (fd->v) = t;
3242 t = fold_convert (type, e0);
3243 t = fold_build2 (MULT_EXPR, type, t, fd->step);
3244 t = fold_build2 (PLUS_EXPR, type, t, fd->n1);
3245 e = force_gimple_operand_bsi (&si, t, true, NULL_TREE,
3246 false, BSI_CONTINUE_LINKING);
3248 /* The code controlling the sequential loop goes in CONT_BB,
3249 replacing the OMP_CONTINUE. */
3250 si = bsi_last (cont_bb);
3251 cont = bsi_stmt (si);
3252 gcc_assert (TREE_CODE (cont) == OMP_CONTINUE);
3253 v_main = TREE_OPERAND (cont, 1);
3254 v_back = TREE_OPERAND (cont, 0);
3256 t = build2 (PLUS_EXPR, type, v_main, fd->step);
3257 t = build_gimple_modify_stmt (v_back, t);
3258 bsi_insert_before (&si, t, BSI_SAME_STMT);
3259 if (gimple_in_ssa_p (cfun))
3260 SSA_NAME_DEF_STMT (v_back) = t;
3262 t = build2 (fd->cond_code, boolean_type_node, v_back, e);
3263 t = build3 (COND_EXPR, void_type_node, t, NULL_TREE, NULL_TREE);
3264 bsi_insert_before (&si, t, BSI_SAME_STMT);
3266 /* Remove OMP_CONTINUE. */
3267 bsi_remove (&si, true);
3269 /* Trip update code goes into TRIP_UPDATE_BB. */
3270 si = bsi_start (trip_update_bb);
3272 t = build_int_cst (type, 1);
3273 t = build2 (PLUS_EXPR, type, trip_main, t);
3274 t = build_gimple_modify_stmt (trip_back, t);
3275 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
3276 if (gimple_in_ssa_p (cfun))
3277 SSA_NAME_DEF_STMT (trip_back) = t;
3279 /* Replace the OMP_RETURN with a barrier, or nothing. */
3280 si = bsi_last (exit_bb);
3281 if (!OMP_RETURN_NOWAIT (bsi_stmt (si)))
3282 force_gimple_operand_bsi (&si, build_omp_barrier (), false, NULL_TREE,
3283 false, BSI_SAME_STMT);
3284 bsi_remove (&si, true);
3286 /* Connect the new blocks. */
3287 find_edge (iter_part_bb, seq_start_bb)->flags = EDGE_TRUE_VALUE;
3288 find_edge (iter_part_bb, fin_bb)->flags = EDGE_FALSE_VALUE;
3290 find_edge (cont_bb, body_bb)->flags = EDGE_TRUE_VALUE;
3291 find_edge (cont_bb, trip_update_bb)->flags = EDGE_FALSE_VALUE;
3293 redirect_edge_and_branch (single_succ_edge (trip_update_bb), iter_part_bb);
3295 if (gimple_in_ssa_p (cfun))
3297 /* When we redirect the edge from trip_update_bb to iter_part_bb, we
3298 remove arguments of the phi nodes in fin_bb. We need to create
3299 appropriate phi nodes in iter_part_bb instead. */
3300 se = single_pred_edge (fin_bb);
3301 re = single_succ_edge (trip_update_bb);
3302 ene = single_succ_edge (entry_bb);
3304 args = PENDING_STMT (re);
3305 PENDING_STMT (re) = NULL_TREE;
3306 for (phi = phi_nodes (fin_bb);
3307 phi && args;
3308 phi = PHI_CHAIN (phi), args = TREE_CHAIN (args))
3310 t = PHI_RESULT (phi);
3311 gcc_assert (t == TREE_PURPOSE (args));
3312 nphi = create_phi_node (t, iter_part_bb);
3313 SSA_NAME_DEF_STMT (t) = nphi;
3315 t = PHI_ARG_DEF_FROM_EDGE (phi, se);
3316 /* A special case -- fd->v is not yet computed in iter_part_bb, we
3317 need to use v_extra instead. */
3318 if (t == fd->v)
3319 t = v_extra;
3320 add_phi_arg (nphi, t, ene);
3321 add_phi_arg (nphi, TREE_VALUE (args), re);
3323 gcc_assert (!phi && !args);
3324 while ((phi = phi_nodes (fin_bb)) != NULL_TREE)
3325 remove_phi_node (phi, NULL_TREE, false);
3327 /* Make phi node for trip. */
3328 phi = create_phi_node (trip_main, iter_part_bb);
3329 SSA_NAME_DEF_STMT (trip_main) = phi;
3330 add_phi_arg (phi, trip_back, single_succ_edge (trip_update_bb));
3331 add_phi_arg (phi, trip_init, single_succ_edge (entry_bb));
3334 set_immediate_dominator (CDI_DOMINATORS, trip_update_bb, cont_bb);
3335 set_immediate_dominator (CDI_DOMINATORS, iter_part_bb,
3336 recompute_dominator (CDI_DOMINATORS, iter_part_bb));
3337 set_immediate_dominator (CDI_DOMINATORS, fin_bb,
3338 recompute_dominator (CDI_DOMINATORS, fin_bb));
3339 set_immediate_dominator (CDI_DOMINATORS, seq_start_bb,
3340 recompute_dominator (CDI_DOMINATORS, seq_start_bb));
3341 set_immediate_dominator (CDI_DOMINATORS, body_bb,
3342 recompute_dominator (CDI_DOMINATORS, body_bb));
3346 /* Expand the OpenMP loop defined by REGION. */
3348 static void
3349 expand_omp_for (struct omp_region *region)
3351 struct omp_for_data fd;
3353 extract_omp_for_data (last_stmt (region->entry), &fd);
3354 region->sched_kind = fd.sched_kind;
3356 gcc_assert (EDGE_COUNT (region->entry->succs) == 2);
3357 BRANCH_EDGE (region->entry)->flags &= ~EDGE_ABNORMAL;
3358 FALLTHRU_EDGE (region->entry)->flags &= ~EDGE_ABNORMAL;
3359 if (region->cont)
3361 gcc_assert (EDGE_COUNT (region->cont->succs) == 2);
3362 BRANCH_EDGE (region->cont)->flags &= ~EDGE_ABNORMAL;
3363 FALLTHRU_EDGE (region->cont)->flags &= ~EDGE_ABNORMAL;
3366 if (fd.sched_kind == OMP_CLAUSE_SCHEDULE_STATIC
3367 && !fd.have_ordered
3368 && region->cont != NULL)
3370 if (fd.chunk_size == NULL)
3371 expand_omp_for_static_nochunk (region, &fd);
3372 else
3373 expand_omp_for_static_chunk (region, &fd);
3375 else
3377 int fn_index = fd.sched_kind + fd.have_ordered * 4;
3378 int start_ix = BUILT_IN_GOMP_LOOP_STATIC_START + fn_index;
3379 int next_ix = BUILT_IN_GOMP_LOOP_STATIC_NEXT + fn_index;
3380 expand_omp_for_generic (region, &fd, start_ix, next_ix);
3383 update_ssa (TODO_update_ssa_only_virtuals);
3387 /* Expand code for an OpenMP sections directive. In pseudo code, we generate
3389 v = GOMP_sections_start (n);
3391 switch (v)
3393 case 0:
3394 goto L2;
3395 case 1:
3396 section 1;
3397 goto L1;
3398 case 2:
3400 case n:
3402 default:
3403 abort ();
3406 v = GOMP_sections_next ();
3407 goto L0;
3409 reduction;
3411 If this is a combined parallel sections, replace the call to
3412 GOMP_sections_start with call to GOMP_sections_next. */
3414 static void
3415 expand_omp_sections (struct omp_region *region)
3417 tree label_vec, l1, l2, t, u, sections_stmt, vin, vmain, vnext, cont;
3418 unsigned i, casei, len;
3419 basic_block entry_bb, l0_bb, l1_bb, l2_bb, default_bb;
3420 block_stmt_iterator si;
3421 struct omp_region *inner;
3422 bool exit_reachable = region->cont != NULL;
3424 gcc_assert (exit_reachable == (region->exit != NULL));
3425 entry_bb = region->entry;
3426 l0_bb = single_succ (entry_bb);
3427 l1_bb = region->cont;
3428 l2_bb = region->exit;
3429 if (exit_reachable)
3431 gcc_assert (single_pred (l2_bb) == l0_bb);
3432 default_bb = create_empty_bb (l1_bb->prev_bb);
3433 l1 = tree_block_label (l1_bb);
3434 l2 = tree_block_label (l2_bb);
3436 else
3438 default_bb = create_empty_bb (l0_bb);
3439 l1 = NULL_TREE;
3440 l2 = tree_block_label (default_bb);
3443 /* We will build a switch() with enough cases for all the
3444 OMP_SECTION regions, a '0' case to handle the end of more work
3445 and a default case to abort if something goes wrong. */
3446 len = EDGE_COUNT (l0_bb->succs);
3447 label_vec = make_tree_vec (len + 1);
3449 /* The call to GOMP_sections_start goes in ENTRY_BB, replacing the
3450 OMP_SECTIONS statement. */
3451 si = bsi_last (entry_bb);
3452 sections_stmt = bsi_stmt (si);
3453 gcc_assert (TREE_CODE (sections_stmt) == OMP_SECTIONS);
3454 vin = OMP_SECTIONS_CONTROL (sections_stmt);
3455 if (!is_combined_parallel (region))
3457 /* If we are not inside a combined parallel+sections region,
3458 call GOMP_sections_start. */
3459 t = build_int_cst (unsigned_type_node,
3460 exit_reachable ? len - 1 : len);
3461 u = built_in_decls[BUILT_IN_GOMP_SECTIONS_START];
3462 t = build_call_expr (u, 1, t);
3464 else
3466 /* Otherwise, call GOMP_sections_next. */
3467 u = built_in_decls[BUILT_IN_GOMP_SECTIONS_NEXT];
3468 t = build_call_expr (u, 0);
3470 t = build_gimple_modify_stmt (vin, t);
3471 bsi_insert_after (&si, t, BSI_SAME_STMT);
3472 if (gimple_in_ssa_p (cfun))
3473 SSA_NAME_DEF_STMT (vin) = t;
3474 bsi_remove (&si, true);
3476 /* The switch() statement replacing OMP_SECTIONS_SWITCH goes in L0_BB. */
3477 si = bsi_last (l0_bb);
3478 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_SECTIONS_SWITCH);
3479 if (exit_reachable)
3481 cont = last_stmt (l1_bb);
3482 gcc_assert (TREE_CODE (cont) == OMP_CONTINUE);
3483 vmain = TREE_OPERAND (cont, 1);
3484 vnext = TREE_OPERAND (cont, 0);
3486 else
3488 vmain = vin;
3489 vnext = NULL_TREE;
3492 t = build3 (SWITCH_EXPR, void_type_node, vmain, NULL, label_vec);
3493 bsi_insert_after (&si, t, BSI_SAME_STMT);
3494 bsi_remove (&si, true);
3496 i = 0;
3497 if (exit_reachable)
3499 t = build3 (CASE_LABEL_EXPR, void_type_node,
3500 build_int_cst (unsigned_type_node, 0), NULL, l2);
3501 TREE_VEC_ELT (label_vec, 0) = t;
3502 i++;
3505 /* Convert each OMP_SECTION into a CASE_LABEL_EXPR. */
3506 for (inner = region->inner, casei = 1;
3507 inner;
3508 inner = inner->next, i++, casei++)
3510 basic_block s_entry_bb, s_exit_bb;
3512 s_entry_bb = inner->entry;
3513 s_exit_bb = inner->exit;
3515 t = tree_block_label (s_entry_bb);
3516 u = build_int_cst (unsigned_type_node, casei);
3517 u = build3 (CASE_LABEL_EXPR, void_type_node, u, NULL, t);
3518 TREE_VEC_ELT (label_vec, i) = u;
3520 si = bsi_last (s_entry_bb);
3521 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_SECTION);
3522 gcc_assert (i < len || OMP_SECTION_LAST (bsi_stmt (si)));
3523 bsi_remove (&si, true);
3524 single_succ_edge (s_entry_bb)->flags = EDGE_FALLTHRU;
3526 if (s_exit_bb == NULL)
3527 continue;
3529 si = bsi_last (s_exit_bb);
3530 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_RETURN);
3531 bsi_remove (&si, true);
3533 single_succ_edge (s_exit_bb)->flags = EDGE_FALLTHRU;
3536 /* Error handling code goes in DEFAULT_BB. */
3537 t = tree_block_label (default_bb);
3538 u = build3 (CASE_LABEL_EXPR, void_type_node, NULL, NULL, t);
3539 TREE_VEC_ELT (label_vec, len) = u;
3540 make_edge (l0_bb, default_bb, 0);
3542 si = bsi_start (default_bb);
3543 t = build_call_expr (built_in_decls[BUILT_IN_TRAP], 0);
3544 bsi_insert_after (&si, t, BSI_CONTINUE_LINKING);
3546 if (exit_reachable)
3548 /* Code to get the next section goes in L1_BB. */
3549 si = bsi_last (l1_bb);
3550 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_CONTINUE);
3552 t = build_call_expr (built_in_decls[BUILT_IN_GOMP_SECTIONS_NEXT], 0);
3553 t = build_gimple_modify_stmt (vnext, t);
3554 bsi_insert_after (&si, t, BSI_SAME_STMT);
3555 if (gimple_in_ssa_p (cfun))
3556 SSA_NAME_DEF_STMT (vnext) = t;
3557 bsi_remove (&si, true);
3559 single_succ_edge (l1_bb)->flags = EDGE_FALLTHRU;
3561 /* Cleanup function replaces OMP_RETURN in EXIT_BB. */
3562 si = bsi_last (l2_bb);
3563 if (OMP_RETURN_NOWAIT (bsi_stmt (si)))
3564 t = built_in_decls[BUILT_IN_GOMP_SECTIONS_END_NOWAIT];
3565 else
3566 t = built_in_decls[BUILT_IN_GOMP_SECTIONS_END];
3567 t = build_call_expr (t, 0);
3568 bsi_insert_after (&si, t, BSI_SAME_STMT);
3569 bsi_remove (&si, true);
3572 set_immediate_dominator (CDI_DOMINATORS, default_bb, l0_bb);
3576 /* Expand code for an OpenMP single directive. We've already expanded
3577 much of the code, here we simply place the GOMP_barrier call. */
3579 static void
3580 expand_omp_single (struct omp_region *region)
3582 basic_block entry_bb, exit_bb;
3583 block_stmt_iterator si;
3584 bool need_barrier = false;
3586 entry_bb = region->entry;
3587 exit_bb = region->exit;
3589 si = bsi_last (entry_bb);
3590 /* The terminal barrier at the end of a GOMP_single_copy sequence cannot
3591 be removed. We need to ensure that the thread that entered the single
3592 does not exit before the data is copied out by the other threads. */
3593 if (find_omp_clause (OMP_SINGLE_CLAUSES (bsi_stmt (si)),
3594 OMP_CLAUSE_COPYPRIVATE))
3595 need_barrier = true;
3596 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_SINGLE);
3597 bsi_remove (&si, true);
3598 single_succ_edge (entry_bb)->flags = EDGE_FALLTHRU;
3600 si = bsi_last (exit_bb);
3601 if (!OMP_RETURN_NOWAIT (bsi_stmt (si)) || need_barrier)
3602 force_gimple_operand_bsi (&si, build_omp_barrier (), false, NULL_TREE,
3603 false, BSI_SAME_STMT);
3604 bsi_remove (&si, true);
3605 single_succ_edge (exit_bb)->flags = EDGE_FALLTHRU;
3609 /* Generic expansion for OpenMP synchronization directives: master,
3610 ordered and critical. All we need to do here is remove the entry
3611 and exit markers for REGION. */
3613 static void
3614 expand_omp_synch (struct omp_region *region)
3616 basic_block entry_bb, exit_bb;
3617 block_stmt_iterator si;
3619 entry_bb = region->entry;
3620 exit_bb = region->exit;
3622 si = bsi_last (entry_bb);
3623 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_SINGLE
3624 || TREE_CODE (bsi_stmt (si)) == OMP_MASTER
3625 || TREE_CODE (bsi_stmt (si)) == OMP_ORDERED
3626 || TREE_CODE (bsi_stmt (si)) == OMP_CRITICAL);
3627 bsi_remove (&si, true);
3628 single_succ_edge (entry_bb)->flags = EDGE_FALLTHRU;
3630 if (exit_bb)
3632 si = bsi_last (exit_bb);
3633 gcc_assert (TREE_CODE (bsi_stmt (si)) == OMP_RETURN);
3634 bsi_remove (&si, true);
3635 single_succ_edge (exit_bb)->flags = EDGE_FALLTHRU;
3639 /* A subroutine of expand_omp_atomic. Attempt to implement the atomic
3640 operation as a __sync_fetch_and_op builtin. INDEX is log2 of the
3641 size of the data type, and thus usable to find the index of the builtin
3642 decl. Returns false if the expression is not of the proper form. */
3644 static bool
3645 expand_omp_atomic_fetch_op (basic_block load_bb,
3646 tree addr, tree loaded_val,
3647 tree stored_val, int index)
3649 enum built_in_function base;
3650 tree decl, itype, call;
3651 enum insn_code *optab;
3652 tree rhs;
3653 basic_block store_bb = single_succ (load_bb);
3654 block_stmt_iterator bsi;
3655 tree stmt;
3657 /* We expect to find the following sequences:
3659 load_bb:
3660 OMP_ATOMIC_LOAD (tmp, mem)
3662 store_bb:
3663 val = tmp OP something; (or: something OP tmp)
3664 OMP_STORE (val)
3666 ???FIXME: Allow a more flexible sequence.
3667 Perhaps use data flow to pick the statements.
3671 bsi = bsi_after_labels (store_bb);
3672 stmt = bsi_stmt (bsi);
3673 if (TREE_CODE (stmt) != GIMPLE_MODIFY_STMT)
3674 return false;
3675 bsi_next (&bsi);
3676 if (TREE_CODE (bsi_stmt (bsi)) != OMP_ATOMIC_STORE)
3677 return false;
3679 if (!operand_equal_p (GIMPLE_STMT_OPERAND (stmt, 0), stored_val, 0))
3680 return false;
3682 rhs = GIMPLE_STMT_OPERAND (stmt, 1);
3684 /* Check for one of the supported fetch-op operations. */
3685 switch (TREE_CODE (rhs))
3687 case PLUS_EXPR:
3688 case POINTER_PLUS_EXPR:
3689 base = BUILT_IN_FETCH_AND_ADD_N;
3690 optab = sync_add_optab;
3691 break;
3692 case MINUS_EXPR:
3693 base = BUILT_IN_FETCH_AND_SUB_N;
3694 optab = sync_add_optab;
3695 break;
3696 case BIT_AND_EXPR:
3697 base = BUILT_IN_FETCH_AND_AND_N;
3698 optab = sync_and_optab;
3699 break;
3700 case BIT_IOR_EXPR:
3701 base = BUILT_IN_FETCH_AND_OR_N;
3702 optab = sync_ior_optab;
3703 break;
3704 case BIT_XOR_EXPR:
3705 base = BUILT_IN_FETCH_AND_XOR_N;
3706 optab = sync_xor_optab;
3707 break;
3708 default:
3709 return false;
3711 /* Make sure the expression is of the proper form. */
3712 if (operand_equal_p (TREE_OPERAND (rhs, 0), loaded_val, 0))
3713 rhs = TREE_OPERAND (rhs, 1);
3714 else if (commutative_tree_code (TREE_CODE (rhs))
3715 && operand_equal_p (TREE_OPERAND (rhs, 1), loaded_val, 0))
3716 rhs = TREE_OPERAND (rhs, 0);
3717 else
3718 return false;
3720 decl = built_in_decls[base + index + 1];
3721 itype = TREE_TYPE (TREE_TYPE (decl));
3723 if (optab[TYPE_MODE (itype)] == CODE_FOR_nothing)
3724 return false;
3726 bsi = bsi_last (load_bb);
3727 gcc_assert (TREE_CODE (bsi_stmt (bsi)) == OMP_ATOMIC_LOAD);
3728 call = build_call_expr (decl, 2, addr, fold_convert (itype, rhs));
3729 force_gimple_operand_bsi (&bsi, call, true, NULL_TREE, true, BSI_SAME_STMT);
3730 bsi_remove (&bsi, true);
3732 bsi = bsi_last (store_bb);
3733 gcc_assert (TREE_CODE (bsi_stmt (bsi)) == OMP_ATOMIC_STORE);
3734 bsi_remove (&bsi, true);
3735 bsi = bsi_last (store_bb);
3736 bsi_remove (&bsi, true);
3738 if (gimple_in_ssa_p (cfun))
3739 update_ssa (TODO_update_ssa_no_phi);
3741 return true;
3744 /* A subroutine of expand_omp_atomic. Implement the atomic operation as:
3746 oldval = *addr;
3747 repeat:
3748 newval = rhs; // with oldval replacing *addr in rhs
3749 oldval = __sync_val_compare_and_swap (addr, oldval, newval);
3750 if (oldval != newval)
3751 goto repeat;
3753 INDEX is log2 of the size of the data type, and thus usable to find the
3754 index of the builtin decl. */
3756 static bool
3757 expand_omp_atomic_pipeline (basic_block load_bb, basic_block store_bb,
3758 tree addr, tree loaded_val, tree stored_val,
3759 int index)
3761 tree loadedi, storedi, initial, new_stored, new_storedi, old_vali;
3762 tree type, itype, cmpxchg, iaddr;
3763 block_stmt_iterator bsi;
3764 basic_block loop_header = single_succ (load_bb);
3765 tree phi, x;
3766 edge e;
3768 cmpxchg = built_in_decls[BUILT_IN_VAL_COMPARE_AND_SWAP_N + index + 1];
3769 type = TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (addr)));
3770 itype = TREE_TYPE (TREE_TYPE (cmpxchg));
3772 if (sync_compare_and_swap[TYPE_MODE (itype)] == CODE_FOR_nothing)
3773 return false;
3775 /* Load the initial value, replacing the OMP_ATOMIC_LOAD. */
3776 bsi = bsi_last (load_bb);
3777 gcc_assert (TREE_CODE (bsi_stmt (bsi)) == OMP_ATOMIC_LOAD);
3778 initial = force_gimple_operand_bsi (&bsi, build_fold_indirect_ref (addr),
3779 true, NULL_TREE, true, BSI_SAME_STMT);
3780 /* Move the value to the LOADED_VAL temporary. */
3781 if (gimple_in_ssa_p (cfun))
3783 gcc_assert (phi_nodes (loop_header) == NULL_TREE);
3784 phi = create_phi_node (loaded_val, loop_header);
3785 SSA_NAME_DEF_STMT (loaded_val) = phi;
3786 SET_USE (PHI_ARG_DEF_PTR_FROM_EDGE (phi, single_succ_edge (load_bb)),
3787 initial);
3789 else
3790 bsi_insert_before (&bsi,
3791 build_gimple_modify_stmt (loaded_val, initial),
3792 BSI_SAME_STMT);
3793 bsi_remove (&bsi, true);
3795 bsi = bsi_last (store_bb);
3796 gcc_assert (TREE_CODE (bsi_stmt (bsi)) == OMP_ATOMIC_STORE);
3798 /* For floating-point values, we'll need to view-convert them to integers
3799 so that we can perform the atomic compare and swap. Simplify the
3800 following code by always setting up the "i"ntegral variables. */
3801 if (INTEGRAL_TYPE_P (type) || POINTER_TYPE_P (type))
3803 loadedi = loaded_val;
3804 storedi = stored_val;
3805 iaddr = addr;
3807 else
3809 loadedi = force_gimple_operand_bsi (&bsi,
3810 build1 (VIEW_CONVERT_EXPR, itype,
3811 loaded_val), true,
3812 NULL_TREE, true, BSI_SAME_STMT);
3813 storedi =
3814 force_gimple_operand_bsi (&bsi,
3815 build1 (VIEW_CONVERT_EXPR, itype,
3816 stored_val), true, NULL_TREE, true,
3817 BSI_SAME_STMT);
3818 iaddr = fold_convert (build_pointer_type (itype), addr);
3821 /* Build the compare&swap statement. */
3822 new_storedi = build_call_expr (cmpxchg, 3, iaddr, loadedi, storedi);
3823 new_storedi = force_gimple_operand_bsi (&bsi,
3824 fold_convert (itype, new_storedi),
3825 true, NULL_TREE,
3826 true, BSI_SAME_STMT);
3827 if (storedi == stored_val)
3828 new_stored = new_storedi;
3829 else
3830 new_stored = force_gimple_operand_bsi (&bsi,
3831 build1 (VIEW_CONVERT_EXPR, type,
3832 new_storedi), true,
3833 NULL_TREE, true, BSI_SAME_STMT);
3835 if (gimple_in_ssa_p (cfun))
3836 old_vali = loadedi;
3837 else
3839 old_vali = create_tmp_var (itype, NULL);
3840 x = build_gimple_modify_stmt (old_vali, loadedi);
3841 bsi_insert_before (&bsi, x, BSI_SAME_STMT);
3843 x = build_gimple_modify_stmt (loaded_val, new_stored);
3844 bsi_insert_before (&bsi, x, BSI_SAME_STMT);
3847 /* Note that we always perform the comparison as an integer, even for
3848 floating point. This allows the atomic operation to properly
3849 succeed even with NaNs and -0.0. */
3850 x = build3 (COND_EXPR, void_type_node,
3851 build2 (NE_EXPR, boolean_type_node,
3852 new_storedi, old_vali), NULL_TREE, NULL_TREE);
3853 bsi_insert_before (&bsi, x, BSI_SAME_STMT);
3855 /* Update cfg. */
3856 e = single_succ_edge (store_bb);
3857 e->flags &= ~EDGE_FALLTHRU;
3858 e->flags |= EDGE_FALSE_VALUE;
3860 e = make_edge (store_bb, loop_header, EDGE_TRUE_VALUE);
3862 /* Copy the new value to loaded_val (we already did that before the condition
3863 if we are not in SSA). */
3864 if (gimple_in_ssa_p (cfun))
3866 phi = phi_nodes (loop_header);
3867 SET_USE (PHI_ARG_DEF_PTR_FROM_EDGE (phi, e), new_stored);
3870 /* Remove OMP_ATOMIC_STORE. */
3871 bsi_remove (&bsi, true);
3873 if (gimple_in_ssa_p (cfun))
3874 update_ssa (TODO_update_ssa_no_phi);
3876 return true;
3879 /* A subroutine of expand_omp_atomic. Implement the atomic operation as:
3881 GOMP_atomic_start ();
3882 *addr = rhs;
3883 GOMP_atomic_end ();
3885 The result is not globally atomic, but works so long as all parallel
3886 references are within #pragma omp atomic directives. According to
3887 responses received from omp@openmp.org, appears to be within spec.
3888 Which makes sense, since that's how several other compilers handle
3889 this situation as well.
3890 LOADED_VAL and ADDR are the operands of OMP_ATOMIC_LOAD we're expanding.
3891 STORED_VAL is the operand of the matching OMP_ATOMIC_STORE.
3893 We replace
3894 OMP_ATOMIC_LOAD (loaded_val, addr) with
3895 loaded_val = *addr;
3897 and replace
3898 OMP_ATOMIC_ATORE (stored_val) with
3899 *addr = stored_val;
3902 static bool
3903 expand_omp_atomic_mutex (basic_block load_bb, basic_block store_bb,
3904 tree addr, tree loaded_val, tree stored_val)
3906 block_stmt_iterator bsi;
3907 tree t;
3909 bsi = bsi_last (load_bb);
3910 gcc_assert (TREE_CODE (bsi_stmt (bsi)) == OMP_ATOMIC_LOAD);
3912 t = built_in_decls[BUILT_IN_GOMP_ATOMIC_START];
3913 t = build_function_call_expr (t, 0);
3914 force_gimple_operand_bsi (&bsi, t, true, NULL_TREE, true, BSI_SAME_STMT);
3916 t = build_gimple_modify_stmt (loaded_val, build_fold_indirect_ref (addr));
3917 if (gimple_in_ssa_p (cfun))
3918 SSA_NAME_DEF_STMT (loaded_val) = t;
3919 bsi_insert_before (&bsi, t, BSI_SAME_STMT);
3920 bsi_remove (&bsi, true);
3922 bsi = bsi_last (store_bb);
3923 gcc_assert (TREE_CODE (bsi_stmt (bsi)) == OMP_ATOMIC_STORE);
3925 t = build_gimple_modify_stmt (build_fold_indirect_ref (unshare_expr (addr)),
3926 stored_val);
3927 bsi_insert_before (&bsi, t, BSI_SAME_STMT);
3929 t = built_in_decls[BUILT_IN_GOMP_ATOMIC_END];
3930 t = build_function_call_expr (t, 0);
3931 force_gimple_operand_bsi (&bsi, t, true, NULL_TREE, true, BSI_SAME_STMT);
3932 bsi_remove (&bsi, true);
3934 if (gimple_in_ssa_p (cfun))
3935 update_ssa (TODO_update_ssa_no_phi);
3936 return true;
3939 /* Expand an OMP_ATOMIC statement. We try to expand
3940 using expand_omp_atomic_fetch_op. If it failed, we try to
3941 call expand_omp_atomic_pipeline, and if it fails too, the
3942 ultimate fallback is wrapping the operation in a mutex
3943 (expand_omp_atomic_mutex). REGION is the atomic region built
3944 by build_omp_regions_1(). */
3946 static void
3947 expand_omp_atomic (struct omp_region *region)
3949 basic_block load_bb = region->entry, store_bb = region->exit;
3950 tree load = last_stmt (load_bb), store = last_stmt (store_bb);
3951 tree loaded_val = TREE_OPERAND (load, 0);
3952 tree addr = TREE_OPERAND (load, 1);
3953 tree stored_val = TREE_OPERAND (store, 0);
3954 tree type = TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (addr)));
3955 HOST_WIDE_INT index;
3957 /* Make sure the type is one of the supported sizes. */
3958 index = tree_low_cst (TYPE_SIZE_UNIT (type), 1);
3959 index = exact_log2 (index);
3960 if (index >= 0 && index <= 4)
3962 unsigned int align = TYPE_ALIGN_UNIT (type);
3964 /* __sync builtins require strict data alignment. */
3965 if (exact_log2 (align) >= index)
3967 /* When possible, use specialized atomic update functions. */
3968 if ((INTEGRAL_TYPE_P (type) || POINTER_TYPE_P (type))
3969 && store_bb == single_succ (load_bb))
3971 if (expand_omp_atomic_fetch_op (load_bb, addr,
3972 loaded_val, stored_val, index))
3973 return;
3976 /* If we don't have specialized __sync builtins, try and implement
3977 as a compare and swap loop. */
3978 if (expand_omp_atomic_pipeline (load_bb, store_bb, addr,
3979 loaded_val, stored_val, index))
3980 return;
3984 /* The ultimate fallback is wrapping the operation in a mutex. */
3985 expand_omp_atomic_mutex (load_bb, store_bb, addr, loaded_val, stored_val);
3989 /* Expand the parallel region tree rooted at REGION. Expansion
3990 proceeds in depth-first order. Innermost regions are expanded
3991 first. This way, parallel regions that require a new function to
3992 be created (e.g., OMP_PARALLEL) can be expanded without having any
3993 internal dependencies in their body. */
3995 static void
3996 expand_omp (struct omp_region *region)
3998 while (region)
4000 /* First, determine whether this is a combined parallel+workshare
4001 region. */
4002 if (region->type == OMP_PARALLEL)
4003 determine_parallel_type (region);
4005 if (region->inner)
4006 expand_omp (region->inner);
4008 switch (region->type)
4010 case OMP_PARALLEL:
4011 expand_omp_parallel (region);
4012 break;
4014 case OMP_FOR:
4015 expand_omp_for (region);
4016 break;
4018 case OMP_SECTIONS:
4019 expand_omp_sections (region);
4020 break;
4022 case OMP_SECTION:
4023 /* Individual omp sections are handled together with their
4024 parent OMP_SECTIONS region. */
4025 break;
4027 case OMP_SINGLE:
4028 expand_omp_single (region);
4029 break;
4031 case OMP_MASTER:
4032 case OMP_ORDERED:
4033 case OMP_CRITICAL:
4034 expand_omp_synch (region);
4035 break;
4037 case OMP_ATOMIC_LOAD:
4038 expand_omp_atomic (region);
4039 break;
4042 default:
4043 gcc_unreachable ();
4046 region = region->next;
4051 /* Helper for build_omp_regions. Scan the dominator tree starting at
4052 block BB. PARENT is the region that contains BB. If SINGLE_TREE is
4053 true, the function ends once a single tree is built (otherwise, whole
4054 forest of OMP constructs may be built). */
4056 static void
4057 build_omp_regions_1 (basic_block bb, struct omp_region *parent,
4058 bool single_tree)
4060 block_stmt_iterator si;
4061 tree stmt;
4062 basic_block son;
4064 si = bsi_last (bb);
4065 if (!bsi_end_p (si) && OMP_DIRECTIVE_P (bsi_stmt (si)))
4067 struct omp_region *region;
4068 enum tree_code code;
4070 stmt = bsi_stmt (si);
4071 code = TREE_CODE (stmt);
4072 if (code == OMP_RETURN)
4074 /* STMT is the return point out of region PARENT. Mark it
4075 as the exit point and make PARENT the immediately
4076 enclosing region. */
4077 gcc_assert (parent);
4078 region = parent;
4079 region->exit = bb;
4080 parent = parent->outer;
4082 else if (code == OMP_ATOMIC_STORE)
4084 /* OMP_ATOMIC_STORE is analoguous to OMP_RETURN, but matches with
4085 OMP_ATOMIC_LOAD. */
4086 gcc_assert (parent);
4087 gcc_assert (parent->type == OMP_ATOMIC_LOAD);
4088 region = parent;
4089 region->exit = bb;
4090 parent = parent->outer;
4093 else if (code == OMP_CONTINUE)
4095 gcc_assert (parent);
4096 parent->cont = bb;
4098 else if (code == OMP_SECTIONS_SWITCH)
4100 /* OMP_SECTIONS_SWITCH is part of OMP_SECTIONS, and we do nothing for
4101 it. */ ;
4103 else
4105 /* Otherwise, this directive becomes the parent for a new
4106 region. */
4107 region = new_omp_region (bb, code, parent);
4108 parent = region;
4112 if (single_tree && !parent)
4113 return;
4115 for (son = first_dom_son (CDI_DOMINATORS, bb);
4116 son;
4117 son = next_dom_son (CDI_DOMINATORS, son))
4118 build_omp_regions_1 (son, parent, single_tree);
4121 /* Builds the tree of OMP regions rooted at ROOT, storing it to
4122 root_omp_region. */
4124 static void
4125 build_omp_regions_root (basic_block root)
4127 gcc_assert (root_omp_region == NULL);
4128 build_omp_regions_1 (root, NULL, true);
4129 gcc_assert (root_omp_region != NULL);
4132 /* Expands omp construct (and its subconstructs) starting in HEAD. */
4134 void
4135 omp_expand_local (basic_block head)
4137 build_omp_regions_root (head);
4138 if (dump_file && (dump_flags & TDF_DETAILS))
4140 fprintf (dump_file, "\nOMP region tree\n\n");
4141 dump_omp_region (dump_file, root_omp_region, 0);
4142 fprintf (dump_file, "\n");
4145 remove_exit_barriers (root_omp_region);
4146 expand_omp (root_omp_region);
4148 free_omp_regions ();
4151 /* Scan the CFG and build a tree of OMP regions. Return the root of
4152 the OMP region tree. */
4154 static void
4155 build_omp_regions (void)
4157 gcc_assert (root_omp_region == NULL);
4158 calculate_dominance_info (CDI_DOMINATORS);
4159 build_omp_regions_1 (ENTRY_BLOCK_PTR, NULL, false);
4163 /* Main entry point for expanding OMP-GIMPLE into runtime calls. */
4165 static unsigned int
4166 execute_expand_omp (void)
4168 build_omp_regions ();
4170 if (!root_omp_region)
4171 return 0;
4173 if (dump_file)
4175 fprintf (dump_file, "\nOMP region tree\n\n");
4176 dump_omp_region (dump_file, root_omp_region, 0);
4177 fprintf (dump_file, "\n");
4180 remove_exit_barriers (root_omp_region);
4182 expand_omp (root_omp_region);
4184 cleanup_tree_cfg ();
4186 free_omp_regions ();
4188 return 0;
4191 /* OMP expansion in SSA form. For testing purposes only. */
4193 static bool
4194 gate_expand_omp_ssa (void)
4196 return flag_openmp_ssa && flag_openmp != 0 && errorcount == 0;
4199 struct gimple_opt_pass pass_expand_omp_ssa =
4202 GIMPLE_PASS,
4203 "ompexpssa", /* name */
4204 gate_expand_omp_ssa, /* gate */
4205 execute_expand_omp, /* execute */
4206 NULL, /* sub */
4207 NULL, /* next */
4208 0, /* static_pass_number */
4209 0, /* tv_id */
4210 PROP_gimple_any, /* properties_required */
4211 PROP_gimple_lomp, /* properties_provided */
4212 0, /* properties_destroyed */
4213 0, /* todo_flags_start */
4214 TODO_dump_func /* todo_flags_finish */
4218 /* OMP expansion -- the default pass, run before creation of SSA form. */
4220 static bool
4221 gate_expand_omp (void)
4223 return ((!flag_openmp_ssa || !optimize)
4224 && flag_openmp != 0 && errorcount == 0);
4227 struct gimple_opt_pass pass_expand_omp =
4230 GIMPLE_PASS,
4231 "ompexp", /* name */
4232 gate_expand_omp, /* gate */
4233 execute_expand_omp, /* execute */
4234 NULL, /* sub */
4235 NULL, /* next */
4236 0, /* static_pass_number */
4237 0, /* tv_id */
4238 PROP_gimple_any, /* properties_required */
4239 PROP_gimple_lomp, /* properties_provided */
4240 0, /* properties_destroyed */
4241 0, /* todo_flags_start */
4242 TODO_dump_func /* todo_flags_finish */
4246 /* Routines to lower OpenMP directives into OMP-GIMPLE. */
4248 /* Lower the OpenMP sections directive in *STMT_P. */
4250 static void
4251 lower_omp_sections (tree *stmt_p, omp_context *ctx)
4253 tree new_stmt, stmt, body, bind, block, ilist, olist, new_body, control;
4254 tree t, dlist;
4255 tree_stmt_iterator tsi;
4256 unsigned i, len;
4258 stmt = *stmt_p;
4260 push_gimplify_context ();
4262 dlist = NULL;
4263 ilist = NULL;
4264 lower_rec_input_clauses (OMP_SECTIONS_CLAUSES (stmt), &ilist, &dlist, ctx);
4266 tsi = tsi_start (OMP_SECTIONS_BODY (stmt));
4267 for (len = 0; !tsi_end_p (tsi); len++, tsi_next (&tsi))
4268 continue;
4270 tsi = tsi_start (OMP_SECTIONS_BODY (stmt));
4271 body = alloc_stmt_list ();
4272 for (i = 0; i < len; i++, tsi_next (&tsi))
4274 omp_context *sctx;
4275 tree sec_start, sec_end;
4277 sec_start = tsi_stmt (tsi);
4278 sctx = maybe_lookup_ctx (sec_start);
4279 gcc_assert (sctx);
4281 append_to_statement_list (sec_start, &body);
4283 lower_omp (&OMP_SECTION_BODY (sec_start), sctx);
4284 append_to_statement_list (OMP_SECTION_BODY (sec_start), &body);
4285 OMP_SECTION_BODY (sec_start) = NULL;
4287 if (i == len - 1)
4289 tree l = alloc_stmt_list ();
4290 lower_lastprivate_clauses (OMP_SECTIONS_CLAUSES (stmt), NULL,
4291 &l, ctx);
4292 append_to_statement_list (l, &body);
4293 OMP_SECTION_LAST (sec_start) = 1;
4296 sec_end = make_node (OMP_RETURN);
4297 append_to_statement_list (sec_end, &body);
4300 block = make_node (BLOCK);
4301 bind = build3 (BIND_EXPR, void_type_node, NULL, body, block);
4303 olist = NULL_TREE;
4304 lower_reduction_clauses (OMP_SECTIONS_CLAUSES (stmt), &olist, ctx);
4306 pop_gimplify_context (NULL_TREE);
4307 record_vars_into (ctx->block_vars, ctx->cb.dst_fn);
4309 new_stmt = build3 (BIND_EXPR, void_type_node, NULL, NULL, NULL);
4310 TREE_SIDE_EFFECTS (new_stmt) = 1;
4312 new_body = alloc_stmt_list ();
4313 append_to_statement_list (ilist, &new_body);
4314 append_to_statement_list (stmt, &new_body);
4315 append_to_statement_list (make_node (OMP_SECTIONS_SWITCH), &new_body);
4316 append_to_statement_list (bind, &new_body);
4318 control = create_tmp_var (unsigned_type_node, ".section");
4319 t = build2 (OMP_CONTINUE, void_type_node, control, control);
4320 OMP_SECTIONS_CONTROL (stmt) = control;
4321 append_to_statement_list (t, &new_body);
4323 append_to_statement_list (olist, &new_body);
4324 append_to_statement_list (dlist, &new_body);
4326 maybe_catch_exception (&new_body);
4328 t = make_node (OMP_RETURN);
4329 OMP_RETURN_NOWAIT (t) = !!find_omp_clause (OMP_SECTIONS_CLAUSES (stmt),
4330 OMP_CLAUSE_NOWAIT);
4331 append_to_statement_list (t, &new_body);
4333 BIND_EXPR_BODY (new_stmt) = new_body;
4334 OMP_SECTIONS_BODY (stmt) = NULL;
4336 *stmt_p = new_stmt;
4340 /* A subroutine of lower_omp_single. Expand the simple form of
4341 an OMP_SINGLE, without a copyprivate clause:
4343 if (GOMP_single_start ())
4344 BODY;
4345 [ GOMP_barrier (); ] -> unless 'nowait' is present.
4347 FIXME. It may be better to delay expanding the logic of this until
4348 pass_expand_omp. The expanded logic may make the job more difficult
4349 to a synchronization analysis pass. */
4351 static void
4352 lower_omp_single_simple (tree single_stmt, tree *pre_p)
4354 tree t;
4356 t = build_call_expr (built_in_decls[BUILT_IN_GOMP_SINGLE_START], 0);
4357 t = build3 (COND_EXPR, void_type_node, t,
4358 OMP_SINGLE_BODY (single_stmt), NULL);
4359 gimplify_and_add (t, pre_p);
4363 /* A subroutine of lower_omp_single. Expand the simple form of
4364 an OMP_SINGLE, with a copyprivate clause:
4366 #pragma omp single copyprivate (a, b, c)
4368 Create a new structure to hold copies of 'a', 'b' and 'c' and emit:
4371 if ((copyout_p = GOMP_single_copy_start ()) == NULL)
4373 BODY;
4374 copyout.a = a;
4375 copyout.b = b;
4376 copyout.c = c;
4377 GOMP_single_copy_end (&copyout);
4379 else
4381 a = copyout_p->a;
4382 b = copyout_p->b;
4383 c = copyout_p->c;
4385 GOMP_barrier ();
4388 FIXME. It may be better to delay expanding the logic of this until
4389 pass_expand_omp. The expanded logic may make the job more difficult
4390 to a synchronization analysis pass. */
4392 static void
4393 lower_omp_single_copy (tree single_stmt, tree *pre_p, omp_context *ctx)
4395 tree ptr_type, t, l0, l1, l2, copyin_seq;
4397 ctx->sender_decl = create_tmp_var (ctx->record_type, ".omp_copy_o");
4399 ptr_type = build_pointer_type (ctx->record_type);
4400 ctx->receiver_decl = create_tmp_var (ptr_type, ".omp_copy_i");
4402 l0 = create_artificial_label ();
4403 l1 = create_artificial_label ();
4404 l2 = create_artificial_label ();
4406 t = build_call_expr (built_in_decls[BUILT_IN_GOMP_SINGLE_COPY_START], 0);
4407 t = fold_convert (ptr_type, t);
4408 t = build_gimple_modify_stmt (ctx->receiver_decl, t);
4409 gimplify_and_add (t, pre_p);
4411 t = build2 (EQ_EXPR, boolean_type_node, ctx->receiver_decl,
4412 build_int_cst (ptr_type, 0));
4413 t = build3 (COND_EXPR, void_type_node, t,
4414 build_and_jump (&l0), build_and_jump (&l1));
4415 gimplify_and_add (t, pre_p);
4417 t = build1 (LABEL_EXPR, void_type_node, l0);
4418 gimplify_and_add (t, pre_p);
4420 append_to_statement_list (OMP_SINGLE_BODY (single_stmt), pre_p);
4422 copyin_seq = NULL;
4423 lower_copyprivate_clauses (OMP_SINGLE_CLAUSES (single_stmt), pre_p,
4424 &copyin_seq, ctx);
4426 t = build_fold_addr_expr (ctx->sender_decl);
4427 t = build_call_expr (built_in_decls[BUILT_IN_GOMP_SINGLE_COPY_END], 1, t);
4428 gimplify_and_add (t, pre_p);
4430 t = build_and_jump (&l2);
4431 gimplify_and_add (t, pre_p);
4433 t = build1 (LABEL_EXPR, void_type_node, l1);
4434 gimplify_and_add (t, pre_p);
4436 append_to_statement_list (copyin_seq, pre_p);
4438 t = build1 (LABEL_EXPR, void_type_node, l2);
4439 gimplify_and_add (t, pre_p);
4443 /* Expand code for an OpenMP single directive. */
4445 static void
4446 lower_omp_single (tree *stmt_p, omp_context *ctx)
4448 tree t, bind, block, single_stmt = *stmt_p, dlist;
4450 push_gimplify_context ();
4452 block = make_node (BLOCK);
4453 *stmt_p = bind = build3 (BIND_EXPR, void_type_node, NULL, NULL, block);
4454 TREE_SIDE_EFFECTS (bind) = 1;
4456 lower_rec_input_clauses (OMP_SINGLE_CLAUSES (single_stmt),
4457 &BIND_EXPR_BODY (bind), &dlist, ctx);
4458 lower_omp (&OMP_SINGLE_BODY (single_stmt), ctx);
4460 append_to_statement_list (single_stmt, &BIND_EXPR_BODY (bind));
4462 if (ctx->record_type)
4463 lower_omp_single_copy (single_stmt, &BIND_EXPR_BODY (bind), ctx);
4464 else
4465 lower_omp_single_simple (single_stmt, &BIND_EXPR_BODY (bind));
4467 OMP_SINGLE_BODY (single_stmt) = NULL;
4469 append_to_statement_list (dlist, &BIND_EXPR_BODY (bind));
4471 maybe_catch_exception (&BIND_EXPR_BODY (bind));
4473 t = make_node (OMP_RETURN);
4474 OMP_RETURN_NOWAIT (t) = !!find_omp_clause (OMP_SINGLE_CLAUSES (single_stmt),
4475 OMP_CLAUSE_NOWAIT);
4476 append_to_statement_list (t, &BIND_EXPR_BODY (bind));
4478 pop_gimplify_context (bind);
4480 BIND_EXPR_VARS (bind) = chainon (BIND_EXPR_VARS (bind), ctx->block_vars);
4481 BLOCK_VARS (block) = BIND_EXPR_VARS (bind);
4485 /* Expand code for an OpenMP master directive. */
4487 static void
4488 lower_omp_master (tree *stmt_p, omp_context *ctx)
4490 tree bind, block, stmt = *stmt_p, lab = NULL, x;
4492 push_gimplify_context ();
4494 block = make_node (BLOCK);
4495 *stmt_p = bind = build3 (BIND_EXPR, void_type_node, NULL, NULL, block);
4496 TREE_SIDE_EFFECTS (bind) = 1;
4498 append_to_statement_list (stmt, &BIND_EXPR_BODY (bind));
4500 x = build_call_expr (built_in_decls[BUILT_IN_OMP_GET_THREAD_NUM], 0);
4501 x = build2 (EQ_EXPR, boolean_type_node, x, integer_zero_node);
4502 x = build3 (COND_EXPR, void_type_node, x, NULL, build_and_jump (&lab));
4503 gimplify_and_add (x, &BIND_EXPR_BODY (bind));
4505 lower_omp (&OMP_MASTER_BODY (stmt), ctx);
4506 maybe_catch_exception (&OMP_MASTER_BODY (stmt));
4507 append_to_statement_list (OMP_MASTER_BODY (stmt), &BIND_EXPR_BODY (bind));
4508 OMP_MASTER_BODY (stmt) = NULL;
4510 x = build1 (LABEL_EXPR, void_type_node, lab);
4511 gimplify_and_add (x, &BIND_EXPR_BODY (bind));
4513 x = make_node (OMP_RETURN);
4514 OMP_RETURN_NOWAIT (x) = 1;
4515 append_to_statement_list (x, &BIND_EXPR_BODY (bind));
4517 pop_gimplify_context (bind);
4519 BIND_EXPR_VARS (bind) = chainon (BIND_EXPR_VARS (bind), ctx->block_vars);
4520 BLOCK_VARS (block) = BIND_EXPR_VARS (bind);
4524 /* Expand code for an OpenMP ordered directive. */
4526 static void
4527 lower_omp_ordered (tree *stmt_p, omp_context *ctx)
4529 tree bind, block, stmt = *stmt_p, x;
4531 push_gimplify_context ();
4533 block = make_node (BLOCK);
4534 *stmt_p = bind = build3 (BIND_EXPR, void_type_node, NULL, NULL, block);
4535 TREE_SIDE_EFFECTS (bind) = 1;
4537 append_to_statement_list (stmt, &BIND_EXPR_BODY (bind));
4539 x = build_call_expr (built_in_decls[BUILT_IN_GOMP_ORDERED_START], 0);
4540 gimplify_and_add (x, &BIND_EXPR_BODY (bind));
4542 lower_omp (&OMP_ORDERED_BODY (stmt), ctx);
4543 maybe_catch_exception (&OMP_ORDERED_BODY (stmt));
4544 append_to_statement_list (OMP_ORDERED_BODY (stmt), &BIND_EXPR_BODY (bind));
4545 OMP_ORDERED_BODY (stmt) = NULL;
4547 x = build_call_expr (built_in_decls[BUILT_IN_GOMP_ORDERED_END], 0);
4548 gimplify_and_add (x, &BIND_EXPR_BODY (bind));
4550 x = make_node (OMP_RETURN);
4551 OMP_RETURN_NOWAIT (x) = 1;
4552 append_to_statement_list (x, &BIND_EXPR_BODY (bind));
4554 pop_gimplify_context (bind);
4556 BIND_EXPR_VARS (bind) = chainon (BIND_EXPR_VARS (bind), ctx->block_vars);
4557 BLOCK_VARS (block) = BIND_EXPR_VARS (bind);
4561 /* Gimplify an OMP_CRITICAL statement. This is a relatively simple
4562 substitution of a couple of function calls. But in the NAMED case,
4563 requires that languages coordinate a symbol name. It is therefore
4564 best put here in common code. */
4566 static GTY((param1_is (tree), param2_is (tree)))
4567 splay_tree critical_name_mutexes;
4569 static void
4570 lower_omp_critical (tree *stmt_p, omp_context *ctx)
4572 tree bind, block, stmt = *stmt_p;
4573 tree t, lock, unlock, name;
4575 name = OMP_CRITICAL_NAME (stmt);
4576 if (name)
4578 tree decl;
4579 splay_tree_node n;
4581 if (!critical_name_mutexes)
4582 critical_name_mutexes
4583 = splay_tree_new_ggc (splay_tree_compare_pointers);
4585 n = splay_tree_lookup (critical_name_mutexes, (splay_tree_key) name);
4586 if (n == NULL)
4588 char *new_str;
4590 decl = create_tmp_var_raw (ptr_type_node, NULL);
4592 new_str = ACONCAT ((".gomp_critical_user_",
4593 IDENTIFIER_POINTER (name), NULL));
4594 DECL_NAME (decl) = get_identifier (new_str);
4595 TREE_PUBLIC (decl) = 1;
4596 TREE_STATIC (decl) = 1;
4597 DECL_COMMON (decl) = 1;
4598 DECL_ARTIFICIAL (decl) = 1;
4599 DECL_IGNORED_P (decl) = 1;
4600 varpool_finalize_decl (decl);
4602 splay_tree_insert (critical_name_mutexes, (splay_tree_key) name,
4603 (splay_tree_value) decl);
4605 else
4606 decl = (tree) n->value;
4608 lock = built_in_decls[BUILT_IN_GOMP_CRITICAL_NAME_START];
4609 lock = build_call_expr (lock, 1, build_fold_addr_expr (decl));
4611 unlock = built_in_decls[BUILT_IN_GOMP_CRITICAL_NAME_END];
4612 unlock = build_call_expr (unlock, 1, build_fold_addr_expr (decl));
4614 else
4616 lock = built_in_decls[BUILT_IN_GOMP_CRITICAL_START];
4617 lock = build_call_expr (lock, 0);
4619 unlock = built_in_decls[BUILT_IN_GOMP_CRITICAL_END];
4620 unlock = build_call_expr (unlock, 0);
4623 push_gimplify_context ();
4625 block = make_node (BLOCK);
4626 *stmt_p = bind = build3 (BIND_EXPR, void_type_node, NULL, NULL, block);
4627 TREE_SIDE_EFFECTS (bind) = 1;
4629 append_to_statement_list (stmt, &BIND_EXPR_BODY (bind));
4631 gimplify_and_add (lock, &BIND_EXPR_BODY (bind));
4633 lower_omp (&OMP_CRITICAL_BODY (stmt), ctx);
4634 maybe_catch_exception (&OMP_CRITICAL_BODY (stmt));
4635 append_to_statement_list (OMP_CRITICAL_BODY (stmt), &BIND_EXPR_BODY (bind));
4636 OMP_CRITICAL_BODY (stmt) = NULL;
4638 gimplify_and_add (unlock, &BIND_EXPR_BODY (bind));
4640 t = make_node (OMP_RETURN);
4641 OMP_RETURN_NOWAIT (t) = 1;
4642 append_to_statement_list (t, &BIND_EXPR_BODY (bind));
4644 pop_gimplify_context (bind);
4645 BIND_EXPR_VARS (bind) = chainon (BIND_EXPR_VARS (bind), ctx->block_vars);
4646 BLOCK_VARS (block) = BIND_EXPR_VARS (bind);
4650 /* A subroutine of lower_omp_for. Generate code to emit the predicate
4651 for a lastprivate clause. Given a loop control predicate of (V
4652 cond N2), we gate the clause on (!(V cond N2)). The lowered form
4653 is appended to *DLIST, iterator initialization is appended to
4654 *BODY_P. */
4656 static void
4657 lower_omp_for_lastprivate (struct omp_for_data *fd, tree *body_p,
4658 tree *dlist, struct omp_context *ctx)
4660 tree clauses, cond, stmts, vinit, t;
4661 enum tree_code cond_code;
4663 cond_code = fd->cond_code;
4664 cond_code = cond_code == LT_EXPR ? GE_EXPR : LE_EXPR;
4666 /* When possible, use a strict equality expression. This can let VRP
4667 type optimizations deduce the value and remove a copy. */
4668 if (host_integerp (fd->step, 0))
4670 HOST_WIDE_INT step = TREE_INT_CST_LOW (fd->step);
4671 if (step == 1 || step == -1)
4672 cond_code = EQ_EXPR;
4675 cond = build2 (cond_code, boolean_type_node, fd->v, fd->n2);
4677 clauses = OMP_FOR_CLAUSES (fd->for_stmt);
4678 stmts = NULL;
4679 lower_lastprivate_clauses (clauses, cond, &stmts, ctx);
4680 if (stmts != NULL)
4682 append_to_statement_list (stmts, dlist);
4684 /* Optimize: v = 0; is usually cheaper than v = some_other_constant. */
4685 vinit = fd->n1;
4686 if (cond_code == EQ_EXPR
4687 && host_integerp (fd->n2, 0)
4688 && ! integer_zerop (fd->n2))
4689 vinit = build_int_cst (TREE_TYPE (fd->v), 0);
4691 /* Initialize the iterator variable, so that threads that don't execute
4692 any iterations don't execute the lastprivate clauses by accident. */
4693 t = build_gimple_modify_stmt (fd->v, vinit);
4694 gimplify_and_add (t, body_p);
4699 /* Lower code for an OpenMP loop directive. */
4701 static void
4702 lower_omp_for (tree *stmt_p, omp_context *ctx)
4704 tree t, stmt, ilist, dlist, new_stmt, *body_p, *rhs_p;
4705 struct omp_for_data fd;
4707 stmt = *stmt_p;
4709 push_gimplify_context ();
4711 lower_omp (&OMP_FOR_PRE_BODY (stmt), ctx);
4712 lower_omp (&OMP_FOR_BODY (stmt), ctx);
4714 /* Move declaration of temporaries in the loop body before we make
4715 it go away. */
4716 if (TREE_CODE (OMP_FOR_BODY (stmt)) == BIND_EXPR)
4717 record_vars_into (BIND_EXPR_VARS (OMP_FOR_BODY (stmt)), ctx->cb.dst_fn);
4719 new_stmt = build3 (BIND_EXPR, void_type_node, NULL, NULL, NULL);
4720 TREE_SIDE_EFFECTS (new_stmt) = 1;
4721 body_p = &BIND_EXPR_BODY (new_stmt);
4723 /* The pre-body and input clauses go before the lowered OMP_FOR. */
4724 ilist = NULL;
4725 dlist = NULL;
4726 append_to_statement_list (OMP_FOR_PRE_BODY (stmt), body_p);
4727 lower_rec_input_clauses (OMP_FOR_CLAUSES (stmt), body_p, &dlist, ctx);
4729 /* Lower the header expressions. At this point, we can assume that
4730 the header is of the form:
4732 #pragma omp for (V = VAL1; V {<|>|<=|>=} VAL2; V = V [+-] VAL3)
4734 We just need to make sure that VAL1, VAL2 and VAL3 are lowered
4735 using the .omp_data_s mapping, if needed. */
4736 rhs_p = &GIMPLE_STMT_OPERAND (OMP_FOR_INIT (stmt), 1);
4737 if (!is_gimple_min_invariant (*rhs_p))
4738 *rhs_p = get_formal_tmp_var (*rhs_p, body_p);
4740 rhs_p = &TREE_OPERAND (OMP_FOR_COND (stmt), 1);
4741 if (!is_gimple_min_invariant (*rhs_p))
4742 *rhs_p = get_formal_tmp_var (*rhs_p, body_p);
4744 rhs_p = &TREE_OPERAND (GIMPLE_STMT_OPERAND (OMP_FOR_INCR (stmt), 1), 1);
4745 if (!is_gimple_min_invariant (*rhs_p))
4746 *rhs_p = get_formal_tmp_var (*rhs_p, body_p);
4748 /* Once lowered, extract the bounds and clauses. */
4749 extract_omp_for_data (stmt, &fd);
4751 lower_omp_for_lastprivate (&fd, body_p, &dlist, ctx);
4753 append_to_statement_list (stmt, body_p);
4755 append_to_statement_list (OMP_FOR_BODY (stmt), body_p);
4757 t = build2 (OMP_CONTINUE, void_type_node, fd.v, fd.v);
4758 append_to_statement_list (t, body_p);
4760 /* After the loop, add exit clauses. */
4761 lower_reduction_clauses (OMP_FOR_CLAUSES (stmt), body_p, ctx);
4762 append_to_statement_list (dlist, body_p);
4764 maybe_catch_exception (body_p);
4766 /* Region exit marker goes at the end of the loop body. */
4767 t = make_node (OMP_RETURN);
4768 OMP_RETURN_NOWAIT (t) = fd.have_nowait;
4769 append_to_statement_list (t, body_p);
4771 pop_gimplify_context (NULL_TREE);
4772 record_vars_into (ctx->block_vars, ctx->cb.dst_fn);
4774 OMP_FOR_BODY (stmt) = NULL_TREE;
4775 OMP_FOR_PRE_BODY (stmt) = NULL_TREE;
4776 *stmt_p = new_stmt;
4779 /* Callback for walk_stmts. Check if *TP only contains OMP_FOR
4780 or OMP_PARALLEL. */
4782 static tree
4783 check_combined_parallel (tree *tp, int *walk_subtrees, void *data)
4785 struct walk_stmt_info *wi = data;
4786 int *info = wi->info;
4788 *walk_subtrees = 0;
4789 switch (TREE_CODE (*tp))
4791 case OMP_FOR:
4792 case OMP_SECTIONS:
4793 *info = *info == 0 ? 1 : -1;
4794 break;
4795 default:
4796 *info = -1;
4797 break;
4799 return NULL;
4802 /* Lower the OpenMP parallel directive in *STMT_P. CTX holds context
4803 information for the directive. */
4805 static void
4806 lower_omp_parallel (tree *stmt_p, omp_context *ctx)
4808 tree clauses, par_bind, par_body, new_body, bind;
4809 tree olist, ilist, par_olist, par_ilist;
4810 tree stmt, child_fn, t;
4812 stmt = *stmt_p;
4814 clauses = OMP_PARALLEL_CLAUSES (stmt);
4815 par_bind = OMP_PARALLEL_BODY (stmt);
4816 par_body = BIND_EXPR_BODY (par_bind);
4817 child_fn = ctx->cb.dst_fn;
4818 if (!OMP_PARALLEL_COMBINED (stmt))
4820 struct walk_stmt_info wi;
4821 int ws_num = 0;
4823 memset (&wi, 0, sizeof (wi));
4824 wi.callback = check_combined_parallel;
4825 wi.info = &ws_num;
4826 wi.val_only = true;
4827 walk_stmts (&wi, &par_bind);
4828 if (ws_num == 1)
4829 OMP_PARALLEL_COMBINED (stmt) = 1;
4832 push_gimplify_context ();
4834 par_olist = NULL_TREE;
4835 par_ilist = NULL_TREE;
4836 lower_rec_input_clauses (clauses, &par_ilist, &par_olist, ctx);
4837 lower_omp (&par_body, ctx);
4838 lower_reduction_clauses (clauses, &par_olist, ctx);
4840 /* Declare all the variables created by mapping and the variables
4841 declared in the scope of the parallel body. */
4842 record_vars_into (ctx->block_vars, child_fn);
4843 record_vars_into (BIND_EXPR_VARS (par_bind), child_fn);
4845 if (ctx->record_type)
4847 ctx->sender_decl = create_tmp_var (ctx->record_type, ".omp_data_o");
4848 OMP_PARALLEL_DATA_ARG (stmt) = ctx->sender_decl;
4851 olist = NULL_TREE;
4852 ilist = NULL_TREE;
4853 lower_send_clauses (clauses, &ilist, &olist, ctx);
4854 lower_send_shared_vars (&ilist, &olist, ctx);
4856 /* Once all the expansions are done, sequence all the different
4857 fragments inside OMP_PARALLEL_BODY. */
4858 bind = build3 (BIND_EXPR, void_type_node, NULL, NULL, NULL);
4859 append_to_statement_list (ilist, &BIND_EXPR_BODY (bind));
4861 new_body = alloc_stmt_list ();
4863 if (ctx->record_type)
4865 t = build_fold_addr_expr (ctx->sender_decl);
4866 /* fixup_child_record_type might have changed receiver_decl's type. */
4867 t = fold_convert (TREE_TYPE (ctx->receiver_decl), t);
4868 t = build_gimple_modify_stmt (ctx->receiver_decl, t);
4869 append_to_statement_list (t, &new_body);
4872 append_to_statement_list (par_ilist, &new_body);
4873 append_to_statement_list (par_body, &new_body);
4874 append_to_statement_list (par_olist, &new_body);
4875 maybe_catch_exception (&new_body);
4876 t = make_node (OMP_RETURN);
4877 append_to_statement_list (t, &new_body);
4878 OMP_PARALLEL_BODY (stmt) = new_body;
4880 append_to_statement_list (stmt, &BIND_EXPR_BODY (bind));
4881 append_to_statement_list (olist, &BIND_EXPR_BODY (bind));
4883 *stmt_p = bind;
4885 pop_gimplify_context (NULL_TREE);
4888 /* Callback for lower_omp_1. Return non-NULL if *tp needs to be
4889 regimplified. */
4891 static tree
4892 lower_omp_2 (tree *tp, int *walk_subtrees, void *data ATTRIBUTE_UNUSED)
4894 tree t = *tp;
4896 /* Any variable with DECL_VALUE_EXPR needs to be regimplified. */
4897 if (TREE_CODE (t) == VAR_DECL && DECL_HAS_VALUE_EXPR_P (t))
4898 return t;
4900 /* If a global variable has been privatized, TREE_CONSTANT on
4901 ADDR_EXPR might be wrong. */
4902 if (TREE_CODE (t) == ADDR_EXPR)
4903 recompute_tree_invariant_for_addr_expr (t);
4905 *walk_subtrees = !TYPE_P (t) && !DECL_P (t);
4906 return NULL_TREE;
4909 static void
4910 lower_omp_1 (tree *tp, omp_context *ctx, tree_stmt_iterator *tsi)
4912 tree t = *tp;
4914 if (!t)
4915 return;
4917 if (EXPR_HAS_LOCATION (t))
4918 input_location = EXPR_LOCATION (t);
4920 /* If we have issued syntax errors, avoid doing any heavy lifting.
4921 Just replace the OpenMP directives with a NOP to avoid
4922 confusing RTL expansion. */
4923 if (errorcount && OMP_DIRECTIVE_P (t))
4925 *tp = build_empty_stmt ();
4926 return;
4929 switch (TREE_CODE (t))
4931 case STATEMENT_LIST:
4933 tree_stmt_iterator i;
4934 for (i = tsi_start (t); !tsi_end_p (i); tsi_next (&i))
4935 lower_omp_1 (tsi_stmt_ptr (i), ctx, &i);
4937 break;
4939 case COND_EXPR:
4940 lower_omp_1 (&COND_EXPR_THEN (t), ctx, NULL);
4941 lower_omp_1 (&COND_EXPR_ELSE (t), ctx, NULL);
4942 if (ctx
4943 && walk_tree (&COND_EXPR_COND (t), lower_omp_2, ctx, NULL))
4945 tree pre = NULL;
4946 gimplify_expr (&COND_EXPR_COND (t), &pre, NULL,
4947 is_gimple_condexpr, fb_rvalue);
4948 if (pre)
4950 if (tsi)
4951 tsi_link_before (tsi, pre, TSI_SAME_STMT);
4952 else
4954 append_to_statement_list (t, &pre);
4955 *tp = pre;
4959 break;
4960 case CATCH_EXPR:
4961 lower_omp_1 (&CATCH_BODY (t), ctx, NULL);
4962 break;
4963 case EH_FILTER_EXPR:
4964 lower_omp_1 (&EH_FILTER_FAILURE (t), ctx, NULL);
4965 break;
4966 case TRY_CATCH_EXPR:
4967 case TRY_FINALLY_EXPR:
4968 lower_omp_1 (&TREE_OPERAND (t, 0), ctx, NULL);
4969 lower_omp_1 (&TREE_OPERAND (t, 1), ctx, NULL);
4970 break;
4971 case BIND_EXPR:
4972 lower_omp_1 (&BIND_EXPR_BODY (t), ctx, NULL);
4973 break;
4974 case RETURN_EXPR:
4975 lower_omp_1 (&TREE_OPERAND (t, 0), ctx, NULL);
4976 break;
4978 case OMP_PARALLEL:
4979 ctx = maybe_lookup_ctx (t);
4980 lower_omp_parallel (tp, ctx);
4981 break;
4982 case OMP_FOR:
4983 ctx = maybe_lookup_ctx (t);
4984 gcc_assert (ctx);
4985 lower_omp_for (tp, ctx);
4986 break;
4987 case OMP_SECTIONS:
4988 ctx = maybe_lookup_ctx (t);
4989 gcc_assert (ctx);
4990 lower_omp_sections (tp, ctx);
4991 break;
4992 case OMP_SINGLE:
4993 ctx = maybe_lookup_ctx (t);
4994 gcc_assert (ctx);
4995 lower_omp_single (tp, ctx);
4996 break;
4997 case OMP_MASTER:
4998 ctx = maybe_lookup_ctx (t);
4999 gcc_assert (ctx);
5000 lower_omp_master (tp, ctx);
5001 break;
5002 case OMP_ORDERED:
5003 ctx = maybe_lookup_ctx (t);
5004 gcc_assert (ctx);
5005 lower_omp_ordered (tp, ctx);
5006 break;
5007 case OMP_CRITICAL:
5008 ctx = maybe_lookup_ctx (t);
5009 gcc_assert (ctx);
5010 lower_omp_critical (tp, ctx);
5011 break;
5013 default:
5014 if (ctx && walk_tree (tp, lower_omp_2, ctx, NULL))
5016 /* The gimplifier doesn't gimplify CALL_EXPR_STATIC_CHAIN.
5017 Handle that here. */
5018 tree call = get_call_expr_in (t);
5019 if (call
5020 && CALL_EXPR_STATIC_CHAIN (call)
5021 && walk_tree (&CALL_EXPR_STATIC_CHAIN (call), lower_omp_2,
5022 ctx, NULL))
5024 tree pre = NULL;
5025 gimplify_expr (&CALL_EXPR_STATIC_CHAIN (call), &pre, NULL,
5026 is_gimple_val, fb_rvalue);
5027 if (pre)
5029 if (tsi)
5030 tsi_link_before (tsi, pre, TSI_SAME_STMT);
5031 else
5033 append_to_statement_list (t, &pre);
5034 lower_omp_1 (&pre, ctx, NULL);
5035 *tp = pre;
5036 return;
5041 if (tsi == NULL)
5042 gimplify_stmt (tp);
5043 else
5045 tree pre = NULL;
5046 gimplify_expr (tp, &pre, NULL, is_gimple_stmt, fb_none);
5047 if (pre)
5048 tsi_link_before (tsi, pre, TSI_SAME_STMT);
5051 break;
5055 static void
5056 lower_omp (tree *stmt_p, omp_context *ctx)
5058 lower_omp_1 (stmt_p, ctx, NULL);
5061 /* Main entry point. */
5063 static unsigned int
5064 execute_lower_omp (void)
5066 all_contexts = splay_tree_new (splay_tree_compare_pointers, 0,
5067 delete_omp_context);
5069 scan_omp (&DECL_SAVED_TREE (current_function_decl), NULL);
5070 gcc_assert (parallel_nesting_level == 0);
5072 if (all_contexts->root)
5073 lower_omp (&DECL_SAVED_TREE (current_function_decl), NULL);
5075 if (all_contexts)
5077 splay_tree_delete (all_contexts);
5078 all_contexts = NULL;
5080 return 0;
5083 static bool
5084 gate_lower_omp (void)
5086 return flag_openmp != 0;
5089 struct gimple_opt_pass pass_lower_omp =
5092 GIMPLE_PASS,
5093 "omplower", /* name */
5094 gate_lower_omp, /* gate */
5095 execute_lower_omp, /* execute */
5096 NULL, /* sub */
5097 NULL, /* next */
5098 0, /* static_pass_number */
5099 0, /* tv_id */
5100 PROP_gimple_any, /* properties_required */
5101 PROP_gimple_lomp, /* properties_provided */
5102 0, /* properties_destroyed */
5103 0, /* todo_flags_start */
5104 TODO_dump_func /* todo_flags_finish */
5108 /* The following is a utility to diagnose OpenMP structured block violations.
5109 It is not part of the "omplower" pass, as that's invoked too late. It
5110 should be invoked by the respective front ends after gimplification. */
5112 static splay_tree all_labels;
5114 /* Check for mismatched contexts and generate an error if needed. Return
5115 true if an error is detected. */
5117 static bool
5118 diagnose_sb_0 (tree *stmt_p, tree branch_ctx, tree label_ctx)
5120 bool exit_p = true;
5122 if ((label_ctx ? TREE_VALUE (label_ctx) : NULL) == branch_ctx)
5123 return false;
5125 /* Try to avoid confusing the user by producing and error message
5126 with correct "exit" or "enter" verbage. We prefer "exit"
5127 unless we can show that LABEL_CTX is nested within BRANCH_CTX. */
5128 if (branch_ctx == NULL)
5129 exit_p = false;
5130 else
5132 while (label_ctx)
5134 if (TREE_VALUE (label_ctx) == branch_ctx)
5136 exit_p = false;
5137 break;
5139 label_ctx = TREE_CHAIN (label_ctx);
5143 if (exit_p)
5144 error ("invalid exit from OpenMP structured block");
5145 else
5146 error ("invalid entry to OpenMP structured block");
5148 *stmt_p = build_empty_stmt ();
5149 return true;
5152 /* Pass 1: Create a minimal tree of OpenMP structured blocks, and record
5153 where in the tree each label is found. */
5155 static tree
5156 diagnose_sb_1 (tree *tp, int *walk_subtrees, void *data)
5158 struct walk_stmt_info *wi = data;
5159 tree context = (tree) wi->info;
5160 tree inner_context;
5161 tree t = *tp;
5163 *walk_subtrees = 0;
5164 switch (TREE_CODE (t))
5166 case OMP_PARALLEL:
5167 case OMP_SECTIONS:
5168 case OMP_SINGLE:
5169 walk_tree (&OMP_CLAUSES (t), diagnose_sb_1, wi, NULL);
5170 /* FALLTHRU */
5171 case OMP_SECTION:
5172 case OMP_MASTER:
5173 case OMP_ORDERED:
5174 case OMP_CRITICAL:
5175 /* The minimal context here is just a tree of statements. */
5176 inner_context = tree_cons (NULL, t, context);
5177 wi->info = inner_context;
5178 walk_stmts (wi, &OMP_BODY (t));
5179 wi->info = context;
5180 break;
5182 case OMP_FOR:
5183 walk_tree (&OMP_FOR_CLAUSES (t), diagnose_sb_1, wi, NULL);
5184 inner_context = tree_cons (NULL, t, context);
5185 wi->info = inner_context;
5186 walk_tree (&OMP_FOR_INIT (t), diagnose_sb_1, wi, NULL);
5187 walk_tree (&OMP_FOR_COND (t), diagnose_sb_1, wi, NULL);
5188 walk_tree (&OMP_FOR_INCR (t), diagnose_sb_1, wi, NULL);
5189 walk_stmts (wi, &OMP_FOR_PRE_BODY (t));
5190 walk_stmts (wi, &OMP_FOR_BODY (t));
5191 wi->info = context;
5192 break;
5194 case LABEL_EXPR:
5195 splay_tree_insert (all_labels, (splay_tree_key) LABEL_EXPR_LABEL (t),
5196 (splay_tree_value) context);
5197 break;
5199 default:
5200 break;
5203 return NULL_TREE;
5206 /* Pass 2: Check each branch and see if its context differs from that of
5207 the destination label's context. */
5209 static tree
5210 diagnose_sb_2 (tree *tp, int *walk_subtrees, void *data)
5212 struct walk_stmt_info *wi = data;
5213 tree context = (tree) wi->info;
5214 splay_tree_node n;
5215 tree t = *tp;
5217 *walk_subtrees = 0;
5218 switch (TREE_CODE (t))
5220 case OMP_PARALLEL:
5221 case OMP_SECTIONS:
5222 case OMP_SINGLE:
5223 walk_tree (&OMP_CLAUSES (t), diagnose_sb_2, wi, NULL);
5224 /* FALLTHRU */
5225 case OMP_SECTION:
5226 case OMP_MASTER:
5227 case OMP_ORDERED:
5228 case OMP_CRITICAL:
5229 wi->info = t;
5230 walk_stmts (wi, &OMP_BODY (t));
5231 wi->info = context;
5232 break;
5234 case OMP_FOR:
5235 walk_tree (&OMP_FOR_CLAUSES (t), diagnose_sb_2, wi, NULL);
5236 wi->info = t;
5237 walk_tree (&OMP_FOR_INIT (t), diagnose_sb_2, wi, NULL);
5238 walk_tree (&OMP_FOR_COND (t), diagnose_sb_2, wi, NULL);
5239 walk_tree (&OMP_FOR_INCR (t), diagnose_sb_2, wi, NULL);
5240 walk_stmts (wi, &OMP_FOR_PRE_BODY (t));
5241 walk_stmts (wi, &OMP_FOR_BODY (t));
5242 wi->info = context;
5243 break;
5245 case GOTO_EXPR:
5247 tree lab = GOTO_DESTINATION (t);
5248 if (TREE_CODE (lab) != LABEL_DECL)
5249 break;
5251 n = splay_tree_lookup (all_labels, (splay_tree_key) lab);
5252 diagnose_sb_0 (tp, context, n ? (tree) n->value : NULL_TREE);
5254 break;
5256 case SWITCH_EXPR:
5258 tree vec = SWITCH_LABELS (t);
5259 int i, len = TREE_VEC_LENGTH (vec);
5260 for (i = 0; i < len; ++i)
5262 tree lab = CASE_LABEL (TREE_VEC_ELT (vec, i));
5263 n = splay_tree_lookup (all_labels, (splay_tree_key) lab);
5264 if (diagnose_sb_0 (tp, context, (tree) n->value))
5265 break;
5268 break;
5270 case RETURN_EXPR:
5271 diagnose_sb_0 (tp, context, NULL_TREE);
5272 break;
5274 default:
5275 break;
5278 return NULL_TREE;
5281 void
5282 diagnose_omp_structured_block_errors (tree fndecl)
5284 tree save_current = current_function_decl;
5285 struct walk_stmt_info wi;
5287 current_function_decl = fndecl;
5289 all_labels = splay_tree_new (splay_tree_compare_pointers, 0, 0);
5291 memset (&wi, 0, sizeof (wi));
5292 wi.callback = diagnose_sb_1;
5293 walk_stmts (&wi, &DECL_SAVED_TREE (fndecl));
5295 memset (&wi, 0, sizeof (wi));
5296 wi.callback = diagnose_sb_2;
5297 wi.want_locations = true;
5298 wi.want_return_expr = true;
5299 walk_stmts (&wi, &DECL_SAVED_TREE (fndecl));
5301 splay_tree_delete (all_labels);
5302 all_labels = NULL;
5304 current_function_decl = save_current;
5307 #include "gt-omp-low.h"