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, 2009, 2010
7 Free Software Foundation, Inc.
9 This file is part of GCC.
11 GCC is free software; you can redistribute it and/or modify it under
12 the terms of the GNU General Public License as published by the Free
13 Software Foundation; either version 3, or (at your option) any later
16 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
17 WARRANTY; without even the implied warranty of MERCHANTABILITY or
18 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
21 You should have received a copy of the GNU General Public License
22 along with GCC; see the file COPYING3. If not see
23 <http://www.gnu.org/licenses/>. */
27 #include "coretypes.h"
32 #include "tree-iterator.h"
33 #include "tree-inline.h"
34 #include "langhooks.h"
35 #include "diagnostic.h"
36 #include "tree-flow.h"
42 #include "tree-pass.h"
45 #include "splay-tree.h"
50 /* Lowering of OpenMP parallel and workshare constructs proceeds in two
51 phases. The first phase scans the function looking for OMP statements
52 and then for variables that must be replaced to satisfy data sharing
53 clauses. The second phase expands code for the constructs, as well as
54 re-gimplifying things when variables have been replaced with complex
57 Final code generation is done by pass_expand_omp. The flowgraph is
58 scanned for parallel regions which are then moved to a new
59 function, to be invoked by the thread library. */
61 /* Context structure. Used to store information about each parallel
62 directive in the code. */
64 typedef struct omp_context
66 /* This field must be at the beginning, as we do "inheritance": Some
67 callback functions for tree-inline.c (e.g., omp_copy_decl)
68 receive a copy_body_data pointer that is up-casted to an
69 omp_context pointer. */
72 /* The tree of contexts corresponding to the encountered constructs. */
73 struct omp_context
*outer
;
76 /* Map variables to fields in a structure that allows communication
77 between sending and receiving threads. */
83 /* These are used just by task contexts, if task firstprivate fn is
84 needed. srecord_type is used to communicate from the thread
85 that encountered the task construct to task firstprivate fn,
86 record_type is allocated by GOMP_task, initialized by task firstprivate
87 fn and passed to the task body fn. */
88 splay_tree sfield_map
;
91 /* A chain of variables to add to the top-level block surrounding the
92 construct. In the case of a parallel, this is in the child function. */
95 /* What to do with variables with implicitly determined sharing
97 enum omp_clause_default_kind default_kind
;
99 /* Nesting depth of this context. Used to beautify error messages re
100 invalid gotos. The outermost ctx is depth 1, with depth 0 being
101 reserved for the main body of the function. */
104 /* True if this parallel directive is nested within another. */
109 struct omp_for_data_loop
111 tree v
, n1
, n2
, step
;
112 enum tree_code cond_code
;
115 /* A structure describing the main elements of a parallel loop. */
119 struct omp_for_data_loop loop
;
124 bool have_nowait
, have_ordered
;
125 enum omp_clause_schedule_kind sched_kind
;
126 struct omp_for_data_loop
*loops
;
130 static splay_tree all_contexts
;
131 static int taskreg_nesting_level
;
132 struct omp_region
*root_omp_region
;
133 static bitmap task_shared_vars
;
135 static void scan_omp (gimple_seq
, omp_context
*);
136 static tree
scan_omp_1_op (tree
*, int *, void *);
138 #define WALK_SUBSTMTS \
142 case GIMPLE_EH_FILTER: \
143 /* The sub-statements for these should be walked. */ \
144 *handled_ops_p = false; \
147 /* Convenience function for calling scan_omp_1_op on tree operands. */
150 scan_omp_op (tree
*tp
, omp_context
*ctx
)
152 struct walk_stmt_info wi
;
154 memset (&wi
, 0, sizeof (wi
));
156 wi
.want_locations
= true;
158 return walk_tree (tp
, scan_omp_1_op
, &wi
, NULL
);
161 static void lower_omp (gimple_seq
, omp_context
*);
162 static tree
lookup_decl_in_outer_ctx (tree
, omp_context
*);
163 static tree
maybe_lookup_decl_in_outer_ctx (tree
, omp_context
*);
165 /* Find an OpenMP clause of type KIND within CLAUSES. */
168 find_omp_clause (tree clauses
, enum omp_clause_code kind
)
170 for (; clauses
; clauses
= OMP_CLAUSE_CHAIN (clauses
))
171 if (OMP_CLAUSE_CODE (clauses
) == kind
)
177 /* Return true if CTX is for an omp parallel. */
180 is_parallel_ctx (omp_context
*ctx
)
182 return gimple_code (ctx
->stmt
) == GIMPLE_OMP_PARALLEL
;
186 /* Return true if CTX is for an omp task. */
189 is_task_ctx (omp_context
*ctx
)
191 return gimple_code (ctx
->stmt
) == GIMPLE_OMP_TASK
;
195 /* Return true if CTX is for an omp parallel or omp task. */
198 is_taskreg_ctx (omp_context
*ctx
)
200 return gimple_code (ctx
->stmt
) == GIMPLE_OMP_PARALLEL
201 || gimple_code (ctx
->stmt
) == GIMPLE_OMP_TASK
;
205 /* Return true if REGION is a combined parallel+workshare region. */
208 is_combined_parallel (struct omp_region
*region
)
210 return region
->is_combined_parallel
;
214 /* Extract the header elements of parallel loop FOR_STMT and store
218 extract_omp_for_data (gimple for_stmt
, struct omp_for_data
*fd
,
219 struct omp_for_data_loop
*loops
)
221 tree t
, var
, *collapse_iter
, *collapse_count
;
222 tree count
= NULL_TREE
, iter_type
= long_integer_type_node
;
223 struct omp_for_data_loop
*loop
;
225 struct omp_for_data_loop dummy_loop
;
226 location_t loc
= gimple_location (for_stmt
);
228 fd
->for_stmt
= for_stmt
;
230 fd
->collapse
= gimple_omp_for_collapse (for_stmt
);
231 if (fd
->collapse
> 1)
234 fd
->loops
= &fd
->loop
;
236 fd
->have_nowait
= fd
->have_ordered
= false;
237 fd
->sched_kind
= OMP_CLAUSE_SCHEDULE_STATIC
;
238 fd
->chunk_size
= NULL_TREE
;
239 collapse_iter
= NULL
;
240 collapse_count
= NULL
;
242 for (t
= gimple_omp_for_clauses (for_stmt
); t
; t
= OMP_CLAUSE_CHAIN (t
))
243 switch (OMP_CLAUSE_CODE (t
))
245 case OMP_CLAUSE_NOWAIT
:
246 fd
->have_nowait
= true;
248 case OMP_CLAUSE_ORDERED
:
249 fd
->have_ordered
= true;
251 case OMP_CLAUSE_SCHEDULE
:
252 fd
->sched_kind
= OMP_CLAUSE_SCHEDULE_KIND (t
);
253 fd
->chunk_size
= OMP_CLAUSE_SCHEDULE_CHUNK_EXPR (t
);
255 case OMP_CLAUSE_COLLAPSE
:
256 if (fd
->collapse
> 1)
258 collapse_iter
= &OMP_CLAUSE_COLLAPSE_ITERVAR (t
);
259 collapse_count
= &OMP_CLAUSE_COLLAPSE_COUNT (t
);
265 /* FIXME: for now map schedule(auto) to schedule(static).
266 There should be analysis to determine whether all iterations
267 are approximately the same amount of work (then schedule(static)
268 is best) or if it varies (then schedule(dynamic,N) is better). */
269 if (fd
->sched_kind
== OMP_CLAUSE_SCHEDULE_AUTO
)
271 fd
->sched_kind
= OMP_CLAUSE_SCHEDULE_STATIC
;
272 gcc_assert (fd
->chunk_size
== NULL
);
274 gcc_assert (fd
->collapse
== 1 || collapse_iter
!= NULL
);
275 if (fd
->sched_kind
== OMP_CLAUSE_SCHEDULE_RUNTIME
)
276 gcc_assert (fd
->chunk_size
== NULL
);
277 else if (fd
->chunk_size
== NULL
)
279 /* We only need to compute a default chunk size for ordered
280 static loops and dynamic loops. */
281 if (fd
->sched_kind
!= OMP_CLAUSE_SCHEDULE_STATIC
284 fd
->chunk_size
= (fd
->sched_kind
== OMP_CLAUSE_SCHEDULE_STATIC
)
285 ? integer_zero_node
: integer_one_node
;
288 for (i
= 0; i
< fd
->collapse
; i
++)
290 if (fd
->collapse
== 1)
292 else if (loops
!= NULL
)
298 loop
->v
= gimple_omp_for_index (for_stmt
, i
);
299 gcc_assert (SSA_VAR_P (loop
->v
));
300 gcc_assert (TREE_CODE (TREE_TYPE (loop
->v
)) == INTEGER_TYPE
301 || TREE_CODE (TREE_TYPE (loop
->v
)) == POINTER_TYPE
);
302 var
= TREE_CODE (loop
->v
) == SSA_NAME
? SSA_NAME_VAR (loop
->v
) : loop
->v
;
303 loop
->n1
= gimple_omp_for_initial (for_stmt
, i
);
305 loop
->cond_code
= gimple_omp_for_cond (for_stmt
, i
);
306 loop
->n2
= gimple_omp_for_final (for_stmt
, i
);
307 switch (loop
->cond_code
)
313 if (POINTER_TYPE_P (TREE_TYPE (loop
->n2
)))
314 loop
->n2
= fold_build2_loc (loc
,
315 POINTER_PLUS_EXPR
, TREE_TYPE (loop
->n2
),
316 loop
->n2
, size_one_node
);
318 loop
->n2
= fold_build2_loc (loc
,
319 PLUS_EXPR
, TREE_TYPE (loop
->n2
), loop
->n2
,
320 build_int_cst (TREE_TYPE (loop
->n2
), 1));
321 loop
->cond_code
= LT_EXPR
;
324 if (POINTER_TYPE_P (TREE_TYPE (loop
->n2
)))
325 loop
->n2
= fold_build2_loc (loc
,
326 POINTER_PLUS_EXPR
, TREE_TYPE (loop
->n2
),
327 loop
->n2
, size_int (-1));
329 loop
->n2
= fold_build2_loc (loc
,
330 MINUS_EXPR
, TREE_TYPE (loop
->n2
), loop
->n2
,
331 build_int_cst (TREE_TYPE (loop
->n2
), 1));
332 loop
->cond_code
= GT_EXPR
;
338 t
= gimple_omp_for_incr (for_stmt
, i
);
339 gcc_assert (TREE_OPERAND (t
, 0) == var
);
340 switch (TREE_CODE (t
))
343 case POINTER_PLUS_EXPR
:
344 loop
->step
= TREE_OPERAND (t
, 1);
347 loop
->step
= TREE_OPERAND (t
, 1);
348 loop
->step
= fold_build1_loc (loc
,
349 NEGATE_EXPR
, TREE_TYPE (loop
->step
),
356 if (iter_type
!= long_long_unsigned_type_node
)
358 if (POINTER_TYPE_P (TREE_TYPE (loop
->v
)))
359 iter_type
= long_long_unsigned_type_node
;
360 else if (TYPE_UNSIGNED (TREE_TYPE (loop
->v
))
361 && TYPE_PRECISION (TREE_TYPE (loop
->v
))
362 >= TYPE_PRECISION (iter_type
))
366 if (loop
->cond_code
== LT_EXPR
)
367 n
= fold_build2_loc (loc
,
368 PLUS_EXPR
, TREE_TYPE (loop
->v
),
369 loop
->n2
, loop
->step
);
372 if (TREE_CODE (n
) != INTEGER_CST
373 || tree_int_cst_lt (TYPE_MAX_VALUE (iter_type
), n
))
374 iter_type
= long_long_unsigned_type_node
;
376 else if (TYPE_PRECISION (TREE_TYPE (loop
->v
))
377 > TYPE_PRECISION (iter_type
))
381 if (loop
->cond_code
== LT_EXPR
)
384 n2
= fold_build2_loc (loc
,
385 PLUS_EXPR
, TREE_TYPE (loop
->v
),
386 loop
->n2
, loop
->step
);
390 n1
= fold_build2_loc (loc
,
391 MINUS_EXPR
, TREE_TYPE (loop
->v
),
392 loop
->n2
, loop
->step
);
395 if (TREE_CODE (n1
) != INTEGER_CST
396 || TREE_CODE (n2
) != INTEGER_CST
397 || !tree_int_cst_lt (TYPE_MIN_VALUE (iter_type
), n1
)
398 || !tree_int_cst_lt (n2
, TYPE_MAX_VALUE (iter_type
)))
399 iter_type
= long_long_unsigned_type_node
;
403 if (collapse_count
&& *collapse_count
== NULL
)
405 if ((i
== 0 || count
!= NULL_TREE
)
406 && TREE_CODE (TREE_TYPE (loop
->v
)) == INTEGER_TYPE
407 && TREE_CONSTANT (loop
->n1
)
408 && TREE_CONSTANT (loop
->n2
)
409 && TREE_CODE (loop
->step
) == INTEGER_CST
)
411 tree itype
= TREE_TYPE (loop
->v
);
413 if (POINTER_TYPE_P (itype
))
415 = lang_hooks
.types
.type_for_size (TYPE_PRECISION (itype
), 0);
416 t
= build_int_cst (itype
, (loop
->cond_code
== LT_EXPR
? -1 : 1));
417 t
= fold_build2_loc (loc
,
419 fold_convert_loc (loc
, itype
, loop
->step
), t
);
420 t
= fold_build2_loc (loc
, PLUS_EXPR
, itype
, t
,
421 fold_convert_loc (loc
, itype
, loop
->n2
));
422 t
= fold_build2_loc (loc
, MINUS_EXPR
, itype
, t
,
423 fold_convert_loc (loc
, itype
, loop
->n1
));
424 if (TYPE_UNSIGNED (itype
) && loop
->cond_code
== GT_EXPR
)
425 t
= fold_build2_loc (loc
, TRUNC_DIV_EXPR
, itype
,
426 fold_build1_loc (loc
, NEGATE_EXPR
, itype
, t
),
427 fold_build1_loc (loc
, NEGATE_EXPR
, itype
,
428 fold_convert_loc (loc
, itype
,
431 t
= fold_build2_loc (loc
, TRUNC_DIV_EXPR
, itype
, t
,
432 fold_convert_loc (loc
, itype
, loop
->step
));
433 t
= fold_convert_loc (loc
, long_long_unsigned_type_node
, t
);
434 if (count
!= NULL_TREE
)
435 count
= fold_build2_loc (loc
,
436 MULT_EXPR
, long_long_unsigned_type_node
,
440 if (TREE_CODE (count
) != INTEGER_CST
)
450 if (!tree_int_cst_lt (count
, TYPE_MAX_VALUE (long_integer_type_node
)))
451 iter_type
= long_long_unsigned_type_node
;
453 iter_type
= long_integer_type_node
;
455 else if (collapse_iter
&& *collapse_iter
!= NULL
)
456 iter_type
= TREE_TYPE (*collapse_iter
);
457 fd
->iter_type
= iter_type
;
458 if (collapse_iter
&& *collapse_iter
== NULL
)
459 *collapse_iter
= create_tmp_var (iter_type
, ".iter");
460 if (collapse_count
&& *collapse_count
== NULL
)
463 *collapse_count
= fold_convert_loc (loc
, iter_type
, count
);
465 *collapse_count
= create_tmp_var (iter_type
, ".count");
468 if (fd
->collapse
> 1)
470 fd
->loop
.v
= *collapse_iter
;
471 fd
->loop
.n1
= build_int_cst (TREE_TYPE (fd
->loop
.v
), 0);
472 fd
->loop
.n2
= *collapse_count
;
473 fd
->loop
.step
= build_int_cst (TREE_TYPE (fd
->loop
.v
), 1);
474 fd
->loop
.cond_code
= LT_EXPR
;
479 /* Given two blocks PAR_ENTRY_BB and WS_ENTRY_BB such that WS_ENTRY_BB
480 is the immediate dominator of PAR_ENTRY_BB, return true if there
481 are no data dependencies that would prevent expanding the parallel
482 directive at PAR_ENTRY_BB as a combined parallel+workshare region.
484 When expanding a combined parallel+workshare region, the call to
485 the child function may need additional arguments in the case of
486 GIMPLE_OMP_FOR regions. In some cases, these arguments are
487 computed out of variables passed in from the parent to the child
488 via 'struct .omp_data_s'. For instance:
490 #pragma omp parallel for schedule (guided, i * 4)
495 # BLOCK 2 (PAR_ENTRY_BB)
497 #pragma omp parallel [child fn: bar.omp_fn.0 ( ..., D.1598)
499 # BLOCK 3 (WS_ENTRY_BB)
500 .omp_data_i = &.omp_data_o;
501 D.1667 = .omp_data_i->i;
503 #pragma omp for schedule (guided, D.1598)
505 When we outline the parallel region, the call to the child function
506 'bar.omp_fn.0' will need the value D.1598 in its argument list, but
507 that value is computed *after* the call site. So, in principle we
508 cannot do the transformation.
510 To see whether the code in WS_ENTRY_BB blocks the combined
511 parallel+workshare call, we collect all the variables used in the
512 GIMPLE_OMP_FOR header check whether they appear on the LHS of any
513 statement in WS_ENTRY_BB. If so, then we cannot emit the combined
516 FIXME. If we had the SSA form built at this point, we could merely
517 hoist the code in block 3 into block 2 and be done with it. But at
518 this point we don't have dataflow information and though we could
519 hack something up here, it is really not worth the aggravation. */
522 workshare_safe_to_combine_p (basic_block ws_entry_bb
)
524 struct omp_for_data fd
;
525 gimple ws_stmt
= last_stmt (ws_entry_bb
);
527 if (gimple_code (ws_stmt
) == GIMPLE_OMP_SECTIONS
)
530 gcc_assert (gimple_code (ws_stmt
) == GIMPLE_OMP_FOR
);
532 extract_omp_for_data (ws_stmt
, &fd
, NULL
);
534 if (fd
.collapse
> 1 && TREE_CODE (fd
.loop
.n2
) != INTEGER_CST
)
536 if (fd
.iter_type
!= long_integer_type_node
)
539 /* FIXME. We give up too easily here. If any of these arguments
540 are not constants, they will likely involve variables that have
541 been mapped into fields of .omp_data_s for sharing with the child
542 function. With appropriate data flow, it would be possible to
544 if (!is_gimple_min_invariant (fd
.loop
.n1
)
545 || !is_gimple_min_invariant (fd
.loop
.n2
)
546 || !is_gimple_min_invariant (fd
.loop
.step
)
547 || (fd
.chunk_size
&& !is_gimple_min_invariant (fd
.chunk_size
)))
554 /* Collect additional arguments needed to emit a combined
555 parallel+workshare call. WS_STMT is the workshare directive being
559 get_ws_args_for (gimple ws_stmt
)
562 location_t loc
= gimple_location (ws_stmt
);
564 if (gimple_code (ws_stmt
) == GIMPLE_OMP_FOR
)
566 struct omp_for_data fd
;
569 extract_omp_for_data (ws_stmt
, &fd
, NULL
);
574 t
= fold_convert_loc (loc
, long_integer_type_node
, fd
.chunk_size
);
575 ws_args
= tree_cons (NULL
, t
, ws_args
);
578 t
= fold_convert_loc (loc
, long_integer_type_node
, fd
.loop
.step
);
579 ws_args
= tree_cons (NULL
, t
, ws_args
);
581 t
= fold_convert_loc (loc
, long_integer_type_node
, fd
.loop
.n2
);
582 ws_args
= tree_cons (NULL
, t
, ws_args
);
584 t
= fold_convert_loc (loc
, long_integer_type_node
, fd
.loop
.n1
);
585 ws_args
= tree_cons (NULL
, t
, ws_args
);
589 else if (gimple_code (ws_stmt
) == GIMPLE_OMP_SECTIONS
)
591 /* Number of sections is equal to the number of edges from the
592 GIMPLE_OMP_SECTIONS_SWITCH statement, except for the one to
593 the exit of the sections region. */
594 basic_block bb
= single_succ (gimple_bb (ws_stmt
));
595 t
= build_int_cst (unsigned_type_node
, EDGE_COUNT (bb
->succs
) - 1);
596 t
= tree_cons (NULL
, t
, NULL
);
604 /* Discover whether REGION is a combined parallel+workshare region. */
607 determine_parallel_type (struct omp_region
*region
)
609 basic_block par_entry_bb
, par_exit_bb
;
610 basic_block ws_entry_bb
, ws_exit_bb
;
612 if (region
== NULL
|| region
->inner
== NULL
613 || region
->exit
== NULL
|| region
->inner
->exit
== NULL
614 || region
->inner
->cont
== NULL
)
617 /* We only support parallel+for and parallel+sections. */
618 if (region
->type
!= GIMPLE_OMP_PARALLEL
619 || (region
->inner
->type
!= GIMPLE_OMP_FOR
620 && region
->inner
->type
!= GIMPLE_OMP_SECTIONS
))
623 /* Check for perfect nesting PAR_ENTRY_BB -> WS_ENTRY_BB and
624 WS_EXIT_BB -> PAR_EXIT_BB. */
625 par_entry_bb
= region
->entry
;
626 par_exit_bb
= region
->exit
;
627 ws_entry_bb
= region
->inner
->entry
;
628 ws_exit_bb
= region
->inner
->exit
;
630 if (single_succ (par_entry_bb
) == ws_entry_bb
631 && single_succ (ws_exit_bb
) == par_exit_bb
632 && workshare_safe_to_combine_p (ws_entry_bb
)
633 && (gimple_omp_parallel_combined_p (last_stmt (par_entry_bb
))
634 || (last_and_only_stmt (ws_entry_bb
)
635 && last_and_only_stmt (par_exit_bb
))))
637 gimple ws_stmt
= last_stmt (ws_entry_bb
);
639 if (region
->inner
->type
== GIMPLE_OMP_FOR
)
641 /* If this is a combined parallel loop, we need to determine
642 whether or not to use the combined library calls. There
643 are two cases where we do not apply the transformation:
644 static loops and any kind of ordered loop. In the first
645 case, we already open code the loop so there is no need
646 to do anything else. In the latter case, the combined
647 parallel loop call would still need extra synchronization
648 to implement ordered semantics, so there would not be any
649 gain in using the combined call. */
650 tree clauses
= gimple_omp_for_clauses (ws_stmt
);
651 tree c
= find_omp_clause (clauses
, OMP_CLAUSE_SCHEDULE
);
653 || OMP_CLAUSE_SCHEDULE_KIND (c
) == OMP_CLAUSE_SCHEDULE_STATIC
654 || find_omp_clause (clauses
, OMP_CLAUSE_ORDERED
))
656 region
->is_combined_parallel
= false;
657 region
->inner
->is_combined_parallel
= false;
662 region
->is_combined_parallel
= true;
663 region
->inner
->is_combined_parallel
= true;
664 region
->ws_args
= get_ws_args_for (ws_stmt
);
669 /* Return true if EXPR is variable sized. */
672 is_variable_sized (const_tree expr
)
674 return !TREE_CONSTANT (TYPE_SIZE_UNIT (TREE_TYPE (expr
)));
677 /* Return true if DECL is a reference type. */
680 is_reference (tree decl
)
682 return lang_hooks
.decls
.omp_privatize_by_reference (decl
);
685 /* Lookup variables in the decl or field splay trees. The "maybe" form
686 allows for the variable form to not have been entered, otherwise we
687 assert that the variable must have been entered. */
690 lookup_decl (tree var
, omp_context
*ctx
)
693 n
= (tree
*) pointer_map_contains (ctx
->cb
.decl_map
, var
);
698 maybe_lookup_decl (const_tree var
, omp_context
*ctx
)
701 n
= (tree
*) pointer_map_contains (ctx
->cb
.decl_map
, var
);
702 return n
? *n
: NULL_TREE
;
706 lookup_field (tree var
, omp_context
*ctx
)
709 n
= splay_tree_lookup (ctx
->field_map
, (splay_tree_key
) var
);
710 return (tree
) n
->value
;
714 lookup_sfield (tree var
, omp_context
*ctx
)
717 n
= splay_tree_lookup (ctx
->sfield_map
718 ? ctx
->sfield_map
: ctx
->field_map
,
719 (splay_tree_key
) var
);
720 return (tree
) n
->value
;
724 maybe_lookup_field (tree var
, omp_context
*ctx
)
727 n
= splay_tree_lookup (ctx
->field_map
, (splay_tree_key
) var
);
728 return n
? (tree
) n
->value
: NULL_TREE
;
731 /* Return true if DECL should be copied by pointer. SHARED_CTX is
732 the parallel context if DECL is to be shared. */
735 use_pointer_for_field (tree decl
, omp_context
*shared_ctx
)
737 if (AGGREGATE_TYPE_P (TREE_TYPE (decl
)))
740 /* We can only use copy-in/copy-out semantics for shared variables
741 when we know the value is not accessible from an outer scope. */
744 /* ??? Trivially accessible from anywhere. But why would we even
745 be passing an address in this case? Should we simply assert
746 this to be false, or should we have a cleanup pass that removes
747 these from the list of mappings? */
748 if (TREE_STATIC (decl
) || DECL_EXTERNAL (decl
))
751 /* For variables with DECL_HAS_VALUE_EXPR_P set, we cannot tell
752 without analyzing the expression whether or not its location
753 is accessible to anyone else. In the case of nested parallel
754 regions it certainly may be. */
755 if (TREE_CODE (decl
) != RESULT_DECL
&& DECL_HAS_VALUE_EXPR_P (decl
))
758 /* Do not use copy-in/copy-out for variables that have their
760 if (TREE_ADDRESSABLE (decl
))
763 /* Disallow copy-in/out in nested parallel if
764 decl is shared in outer parallel, otherwise
765 each thread could store the shared variable
766 in its own copy-in location, making the
767 variable no longer really shared. */
768 if (!TREE_READONLY (decl
) && shared_ctx
->is_nested
)
772 for (up
= shared_ctx
->outer
; up
; up
= up
->outer
)
773 if (is_taskreg_ctx (up
) && maybe_lookup_decl (decl
, up
))
780 for (c
= gimple_omp_taskreg_clauses (up
->stmt
);
781 c
; c
= OMP_CLAUSE_CHAIN (c
))
782 if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_SHARED
783 && OMP_CLAUSE_DECL (c
) == decl
)
791 /* For tasks avoid using copy-in/out, unless they are readonly
792 (in which case just copy-in is used). As tasks can be
793 deferred or executed in different thread, when GOMP_task
794 returns, the task hasn't necessarily terminated. */
795 if (!TREE_READONLY (decl
) && is_task_ctx (shared_ctx
))
797 tree outer
= maybe_lookup_decl_in_outer_ctx (decl
, shared_ctx
);
798 if (is_gimple_reg (outer
))
800 /* Taking address of OUTER in lower_send_shared_vars
801 might need regimplification of everything that uses the
803 if (!task_shared_vars
)
804 task_shared_vars
= BITMAP_ALLOC (NULL
);
805 bitmap_set_bit (task_shared_vars
, DECL_UID (outer
));
806 TREE_ADDRESSABLE (outer
) = 1;
815 /* Create a new VAR_DECL and copy information from VAR to it. */
818 copy_var_decl (tree var
, tree name
, tree type
)
820 tree copy
= build_decl (DECL_SOURCE_LOCATION (var
), VAR_DECL
, name
, type
);
822 TREE_ADDRESSABLE (copy
) = TREE_ADDRESSABLE (var
);
823 TREE_THIS_VOLATILE (copy
) = TREE_THIS_VOLATILE (var
);
824 DECL_GIMPLE_REG_P (copy
) = DECL_GIMPLE_REG_P (var
);
825 DECL_ARTIFICIAL (copy
) = DECL_ARTIFICIAL (var
);
826 DECL_IGNORED_P (copy
) = DECL_IGNORED_P (var
);
827 DECL_CONTEXT (copy
) = DECL_CONTEXT (var
);
828 TREE_USED (copy
) = 1;
829 DECL_SEEN_IN_BIND_EXPR_P (copy
) = 1;
834 /* Construct a new automatic decl similar to VAR. */
837 omp_copy_decl_2 (tree var
, tree name
, tree type
, omp_context
*ctx
)
839 tree copy
= copy_var_decl (var
, name
, type
);
841 DECL_CONTEXT (copy
) = current_function_decl
;
842 TREE_CHAIN (copy
) = ctx
->block_vars
;
843 ctx
->block_vars
= copy
;
849 omp_copy_decl_1 (tree var
, omp_context
*ctx
)
851 return omp_copy_decl_2 (var
, DECL_NAME (var
), TREE_TYPE (var
), ctx
);
854 /* Build tree nodes to access the field for VAR on the receiver side. */
857 build_receiver_ref (tree var
, bool by_ref
, omp_context
*ctx
)
859 tree x
, field
= lookup_field (var
, ctx
);
861 /* If the receiver record type was remapped in the child function,
862 remap the field into the new record type. */
863 x
= maybe_lookup_field (field
, ctx
);
867 x
= build_fold_indirect_ref (ctx
->receiver_decl
);
868 x
= build3 (COMPONENT_REF
, TREE_TYPE (field
), x
, field
, NULL
);
870 x
= build_fold_indirect_ref (x
);
875 /* Build tree nodes to access VAR in the scope outer to CTX. In the case
876 of a parallel, this is a component reference; for workshare constructs
877 this is some variable. */
880 build_outer_var_ref (tree var
, omp_context
*ctx
)
884 if (is_global_var (maybe_lookup_decl_in_outer_ctx (var
, ctx
)))
886 else if (is_variable_sized (var
))
888 x
= TREE_OPERAND (DECL_VALUE_EXPR (var
), 0);
889 x
= build_outer_var_ref (x
, ctx
);
890 x
= build_fold_indirect_ref (x
);
892 else if (is_taskreg_ctx (ctx
))
894 bool by_ref
= use_pointer_for_field (var
, NULL
);
895 x
= build_receiver_ref (var
, by_ref
, ctx
);
898 x
= lookup_decl (var
, ctx
->outer
);
899 else if (is_reference (var
))
900 /* This can happen with orphaned constructs. If var is reference, it is
901 possible it is shared and as such valid. */
906 if (is_reference (var
))
907 x
= build_fold_indirect_ref (x
);
912 /* Build tree nodes to access the field for VAR on the sender side. */
915 build_sender_ref (tree var
, omp_context
*ctx
)
917 tree field
= lookup_sfield (var
, ctx
);
918 return build3 (COMPONENT_REF
, TREE_TYPE (field
),
919 ctx
->sender_decl
, field
, NULL
);
922 /* Add a new field for VAR inside the structure CTX->SENDER_DECL. */
925 install_var_field (tree var
, bool by_ref
, int mask
, omp_context
*ctx
)
927 tree field
, type
, sfield
= NULL_TREE
;
929 gcc_assert ((mask
& 1) == 0
930 || !splay_tree_lookup (ctx
->field_map
, (splay_tree_key
) var
));
931 gcc_assert ((mask
& 2) == 0 || !ctx
->sfield_map
932 || !splay_tree_lookup (ctx
->sfield_map
, (splay_tree_key
) var
));
934 type
= TREE_TYPE (var
);
936 type
= build_pointer_type (type
);
937 else if ((mask
& 3) == 1 && is_reference (var
))
938 type
= TREE_TYPE (type
);
940 field
= build_decl (DECL_SOURCE_LOCATION (var
),
941 FIELD_DECL
, DECL_NAME (var
), type
);
943 /* Remember what variable this field was created for. This does have a
944 side effect of making dwarf2out ignore this member, so for helpful
945 debugging we clear it later in delete_omp_context. */
946 DECL_ABSTRACT_ORIGIN (field
) = var
;
947 if (type
== TREE_TYPE (var
))
949 DECL_ALIGN (field
) = DECL_ALIGN (var
);
950 DECL_USER_ALIGN (field
) = DECL_USER_ALIGN (var
);
951 TREE_THIS_VOLATILE (field
) = TREE_THIS_VOLATILE (var
);
954 DECL_ALIGN (field
) = TYPE_ALIGN (type
);
958 insert_field_into_struct (ctx
->record_type
, field
);
959 if (ctx
->srecord_type
)
961 sfield
= build_decl (DECL_SOURCE_LOCATION (var
),
962 FIELD_DECL
, DECL_NAME (var
), type
);
963 DECL_ABSTRACT_ORIGIN (sfield
) = var
;
964 DECL_ALIGN (sfield
) = DECL_ALIGN (field
);
965 DECL_USER_ALIGN (sfield
) = DECL_USER_ALIGN (field
);
966 TREE_THIS_VOLATILE (sfield
) = TREE_THIS_VOLATILE (field
);
967 insert_field_into_struct (ctx
->srecord_type
, sfield
);
972 if (ctx
->srecord_type
== NULL_TREE
)
976 ctx
->srecord_type
= lang_hooks
.types
.make_type (RECORD_TYPE
);
977 ctx
->sfield_map
= splay_tree_new (splay_tree_compare_pointers
, 0, 0);
978 for (t
= TYPE_FIELDS (ctx
->record_type
); t
; t
= TREE_CHAIN (t
))
980 sfield
= build_decl (DECL_SOURCE_LOCATION (var
),
981 FIELD_DECL
, DECL_NAME (t
), TREE_TYPE (t
));
982 DECL_ABSTRACT_ORIGIN (sfield
) = DECL_ABSTRACT_ORIGIN (t
);
983 insert_field_into_struct (ctx
->srecord_type
, sfield
);
984 splay_tree_insert (ctx
->sfield_map
,
985 (splay_tree_key
) DECL_ABSTRACT_ORIGIN (t
),
986 (splay_tree_value
) sfield
);
990 insert_field_into_struct ((mask
& 1) ? ctx
->record_type
991 : ctx
->srecord_type
, field
);
995 splay_tree_insert (ctx
->field_map
, (splay_tree_key
) var
,
996 (splay_tree_value
) field
);
997 if ((mask
& 2) && ctx
->sfield_map
)
998 splay_tree_insert (ctx
->sfield_map
, (splay_tree_key
) var
,
999 (splay_tree_value
) sfield
);
1003 install_var_local (tree var
, omp_context
*ctx
)
1005 tree new_var
= omp_copy_decl_1 (var
, ctx
);
1006 insert_decl_map (&ctx
->cb
, var
, new_var
);
1010 /* Adjust the replacement for DECL in CTX for the new context. This means
1011 copying the DECL_VALUE_EXPR, and fixing up the type. */
1014 fixup_remapped_decl (tree decl
, omp_context
*ctx
, bool private_debug
)
1016 tree new_decl
, size
;
1018 new_decl
= lookup_decl (decl
, ctx
);
1020 TREE_TYPE (new_decl
) = remap_type (TREE_TYPE (decl
), &ctx
->cb
);
1022 if ((!TREE_CONSTANT (DECL_SIZE (new_decl
)) || private_debug
)
1023 && DECL_HAS_VALUE_EXPR_P (decl
))
1025 tree ve
= DECL_VALUE_EXPR (decl
);
1026 walk_tree (&ve
, copy_tree_body_r
, &ctx
->cb
, NULL
);
1027 SET_DECL_VALUE_EXPR (new_decl
, ve
);
1028 DECL_HAS_VALUE_EXPR_P (new_decl
) = 1;
1031 if (!TREE_CONSTANT (DECL_SIZE (new_decl
)))
1033 size
= remap_decl (DECL_SIZE (decl
), &ctx
->cb
);
1034 if (size
== error_mark_node
)
1035 size
= TYPE_SIZE (TREE_TYPE (new_decl
));
1036 DECL_SIZE (new_decl
) = size
;
1038 size
= remap_decl (DECL_SIZE_UNIT (decl
), &ctx
->cb
);
1039 if (size
== error_mark_node
)
1040 size
= TYPE_SIZE_UNIT (TREE_TYPE (new_decl
));
1041 DECL_SIZE_UNIT (new_decl
) = size
;
1045 /* The callback for remap_decl. Search all containing contexts for a
1046 mapping of the variable; this avoids having to duplicate the splay
1047 tree ahead of time. We know a mapping doesn't already exist in the
1048 given context. Create new mappings to implement default semantics. */
1051 omp_copy_decl (tree var
, copy_body_data
*cb
)
1053 omp_context
*ctx
= (omp_context
*) cb
;
1056 if (TREE_CODE (var
) == LABEL_DECL
)
1058 new_var
= create_artificial_label (DECL_SOURCE_LOCATION (var
));
1059 DECL_CONTEXT (new_var
) = current_function_decl
;
1060 insert_decl_map (&ctx
->cb
, var
, new_var
);
1064 while (!is_taskreg_ctx (ctx
))
1069 new_var
= maybe_lookup_decl (var
, ctx
);
1074 if (is_global_var (var
) || decl_function_context (var
) != ctx
->cb
.src_fn
)
1077 return error_mark_node
;
1081 /* Return the parallel region associated with STMT. */
1083 /* Debugging dumps for parallel regions. */
1084 void dump_omp_region (FILE *, struct omp_region
*, int);
1085 void debug_omp_region (struct omp_region
*);
1086 void debug_all_omp_regions (void);
1088 /* Dump the parallel region tree rooted at REGION. */
1091 dump_omp_region (FILE *file
, struct omp_region
*region
, int indent
)
1093 fprintf (file
, "%*sbb %d: %s\n", indent
, "", region
->entry
->index
,
1094 gimple_code_name
[region
->type
]);
1097 dump_omp_region (file
, region
->inner
, indent
+ 4);
1101 fprintf (file
, "%*sbb %d: GIMPLE_OMP_CONTINUE\n", indent
, "",
1102 region
->cont
->index
);
1106 fprintf (file
, "%*sbb %d: GIMPLE_OMP_RETURN\n", indent
, "",
1107 region
->exit
->index
);
1109 fprintf (file
, "%*s[no exit marker]\n", indent
, "");
1112 dump_omp_region (file
, region
->next
, indent
);
1116 debug_omp_region (struct omp_region
*region
)
1118 dump_omp_region (stderr
, region
, 0);
1122 debug_all_omp_regions (void)
1124 dump_omp_region (stderr
, root_omp_region
, 0);
1128 /* Create a new parallel region starting at STMT inside region PARENT. */
1131 new_omp_region (basic_block bb
, enum gimple_code type
,
1132 struct omp_region
*parent
)
1134 struct omp_region
*region
= XCNEW (struct omp_region
);
1136 region
->outer
= parent
;
1138 region
->type
= type
;
1142 /* This is a nested region. Add it to the list of inner
1143 regions in PARENT. */
1144 region
->next
= parent
->inner
;
1145 parent
->inner
= region
;
1149 /* This is a toplevel region. Add it to the list of toplevel
1150 regions in ROOT_OMP_REGION. */
1151 region
->next
= root_omp_region
;
1152 root_omp_region
= region
;
1158 /* Release the memory associated with the region tree rooted at REGION. */
1161 free_omp_region_1 (struct omp_region
*region
)
1163 struct omp_region
*i
, *n
;
1165 for (i
= region
->inner
; i
; i
= n
)
1168 free_omp_region_1 (i
);
1174 /* Release the memory for the entire omp region tree. */
1177 free_omp_regions (void)
1179 struct omp_region
*r
, *n
;
1180 for (r
= root_omp_region
; r
; r
= n
)
1183 free_omp_region_1 (r
);
1185 root_omp_region
= NULL
;
1189 /* Create a new context, with OUTER_CTX being the surrounding context. */
1191 static omp_context
*
1192 new_omp_context (gimple stmt
, omp_context
*outer_ctx
)
1194 omp_context
*ctx
= XCNEW (omp_context
);
1196 splay_tree_insert (all_contexts
, (splay_tree_key
) stmt
,
1197 (splay_tree_value
) ctx
);
1202 ctx
->outer
= outer_ctx
;
1203 ctx
->cb
= outer_ctx
->cb
;
1204 ctx
->cb
.block
= NULL
;
1205 ctx
->depth
= outer_ctx
->depth
+ 1;
1209 ctx
->cb
.src_fn
= current_function_decl
;
1210 ctx
->cb
.dst_fn
= current_function_decl
;
1211 ctx
->cb
.src_node
= cgraph_node (current_function_decl
);
1212 ctx
->cb
.dst_node
= ctx
->cb
.src_node
;
1213 ctx
->cb
.src_cfun
= cfun
;
1214 ctx
->cb
.copy_decl
= omp_copy_decl
;
1215 ctx
->cb
.eh_lp_nr
= 0;
1216 ctx
->cb
.transform_call_graph_edges
= CB_CGE_MOVE
;
1220 ctx
->cb
.decl_map
= pointer_map_create ();
1225 static gimple_seq
maybe_catch_exception (gimple_seq
);
1227 /* Finalize task copyfn. */
1230 finalize_task_copyfn (gimple task_stmt
)
1232 struct function
*child_cfun
;
1233 tree child_fn
, old_fn
;
1234 gimple_seq seq
, new_seq
;
1237 child_fn
= gimple_omp_task_copy_fn (task_stmt
);
1238 if (child_fn
== NULL_TREE
)
1241 child_cfun
= DECL_STRUCT_FUNCTION (child_fn
);
1243 /* Inform the callgraph about the new function. */
1244 DECL_STRUCT_FUNCTION (child_fn
)->curr_properties
1245 = cfun
->curr_properties
;
1247 old_fn
= current_function_decl
;
1248 push_cfun (child_cfun
);
1249 current_function_decl
= child_fn
;
1250 bind
= gimplify_body (&DECL_SAVED_TREE (child_fn
), child_fn
, false);
1251 seq
= gimple_seq_alloc ();
1252 gimple_seq_add_stmt (&seq
, bind
);
1253 new_seq
= maybe_catch_exception (seq
);
1256 bind
= gimple_build_bind (NULL
, new_seq
, NULL
);
1257 seq
= gimple_seq_alloc ();
1258 gimple_seq_add_stmt (&seq
, bind
);
1260 gimple_set_body (child_fn
, seq
);
1262 current_function_decl
= old_fn
;
1264 cgraph_add_new_function (child_fn
, false);
1267 /* Destroy a omp_context data structures. Called through the splay tree
1268 value delete callback. */
1271 delete_omp_context (splay_tree_value value
)
1273 omp_context
*ctx
= (omp_context
*) value
;
1275 pointer_map_destroy (ctx
->cb
.decl_map
);
1278 splay_tree_delete (ctx
->field_map
);
1279 if (ctx
->sfield_map
)
1280 splay_tree_delete (ctx
->sfield_map
);
1282 /* We hijacked DECL_ABSTRACT_ORIGIN earlier. We need to clear it before
1283 it produces corrupt debug information. */
1284 if (ctx
->record_type
)
1287 for (t
= TYPE_FIELDS (ctx
->record_type
); t
; t
= TREE_CHAIN (t
))
1288 DECL_ABSTRACT_ORIGIN (t
) = NULL
;
1290 if (ctx
->srecord_type
)
1293 for (t
= TYPE_FIELDS (ctx
->srecord_type
); t
; t
= TREE_CHAIN (t
))
1294 DECL_ABSTRACT_ORIGIN (t
) = NULL
;
1297 if (is_task_ctx (ctx
))
1298 finalize_task_copyfn (ctx
->stmt
);
1303 /* Fix up RECEIVER_DECL with a type that has been remapped to the child
1307 fixup_child_record_type (omp_context
*ctx
)
1309 tree f
, type
= ctx
->record_type
;
1311 /* ??? It isn't sufficient to just call remap_type here, because
1312 variably_modified_type_p doesn't work the way we expect for
1313 record types. Testing each field for whether it needs remapping
1314 and creating a new record by hand works, however. */
1315 for (f
= TYPE_FIELDS (type
); f
; f
= TREE_CHAIN (f
))
1316 if (variably_modified_type_p (TREE_TYPE (f
), ctx
->cb
.src_fn
))
1320 tree name
, new_fields
= NULL
;
1322 type
= lang_hooks
.types
.make_type (RECORD_TYPE
);
1323 name
= DECL_NAME (TYPE_NAME (ctx
->record_type
));
1324 name
= build_decl (DECL_SOURCE_LOCATION (ctx
->receiver_decl
),
1325 TYPE_DECL
, name
, type
);
1326 TYPE_NAME (type
) = name
;
1328 for (f
= TYPE_FIELDS (ctx
->record_type
); f
; f
= TREE_CHAIN (f
))
1330 tree new_f
= copy_node (f
);
1331 DECL_CONTEXT (new_f
) = type
;
1332 TREE_TYPE (new_f
) = remap_type (TREE_TYPE (f
), &ctx
->cb
);
1333 TREE_CHAIN (new_f
) = new_fields
;
1334 walk_tree (&DECL_SIZE (new_f
), copy_tree_body_r
, &ctx
->cb
, NULL
);
1335 walk_tree (&DECL_SIZE_UNIT (new_f
), copy_tree_body_r
,
1337 walk_tree (&DECL_FIELD_OFFSET (new_f
), copy_tree_body_r
,
1341 /* Arrange to be able to look up the receiver field
1342 given the sender field. */
1343 splay_tree_insert (ctx
->field_map
, (splay_tree_key
) f
,
1344 (splay_tree_value
) new_f
);
1346 TYPE_FIELDS (type
) = nreverse (new_fields
);
1350 TREE_TYPE (ctx
->receiver_decl
) = build_pointer_type (type
);
1353 /* Instantiate decls as necessary in CTX to satisfy the data sharing
1354 specified by CLAUSES. */
1357 scan_sharing_clauses (tree clauses
, omp_context
*ctx
)
1360 bool scan_array_reductions
= false;
1362 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
1366 switch (OMP_CLAUSE_CODE (c
))
1368 case OMP_CLAUSE_PRIVATE
:
1369 decl
= OMP_CLAUSE_DECL (c
);
1370 if (OMP_CLAUSE_PRIVATE_OUTER_REF (c
))
1372 else if (!is_variable_sized (decl
))
1373 install_var_local (decl
, ctx
);
1376 case OMP_CLAUSE_SHARED
:
1377 gcc_assert (is_taskreg_ctx (ctx
));
1378 decl
= OMP_CLAUSE_DECL (c
);
1379 gcc_assert (!COMPLETE_TYPE_P (TREE_TYPE (decl
))
1380 || !is_variable_sized (decl
));
1381 /* Global variables don't need to be copied,
1382 the receiver side will use them directly. */
1383 if (is_global_var (maybe_lookup_decl_in_outer_ctx (decl
, ctx
)))
1385 by_ref
= use_pointer_for_field (decl
, ctx
);
1386 if (! TREE_READONLY (decl
)
1387 || TREE_ADDRESSABLE (decl
)
1389 || is_reference (decl
))
1391 install_var_field (decl
, by_ref
, 3, ctx
);
1392 install_var_local (decl
, ctx
);
1395 /* We don't need to copy const scalar vars back. */
1396 OMP_CLAUSE_SET_CODE (c
, OMP_CLAUSE_FIRSTPRIVATE
);
1399 case OMP_CLAUSE_LASTPRIVATE
:
1400 /* Let the corresponding firstprivate clause create
1402 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c
))
1406 case OMP_CLAUSE_FIRSTPRIVATE
:
1407 case OMP_CLAUSE_REDUCTION
:
1408 decl
= OMP_CLAUSE_DECL (c
);
1410 if (is_variable_sized (decl
))
1412 if (is_task_ctx (ctx
))
1413 install_var_field (decl
, false, 1, ctx
);
1416 else if (is_taskreg_ctx (ctx
))
1419 = is_global_var (maybe_lookup_decl_in_outer_ctx (decl
, ctx
));
1420 by_ref
= use_pointer_for_field (decl
, NULL
);
1422 if (is_task_ctx (ctx
)
1423 && (global
|| by_ref
|| is_reference (decl
)))
1425 install_var_field (decl
, false, 1, ctx
);
1427 install_var_field (decl
, by_ref
, 2, ctx
);
1430 install_var_field (decl
, by_ref
, 3, ctx
);
1432 install_var_local (decl
, ctx
);
1435 case OMP_CLAUSE_COPYPRIVATE
:
1437 scan_omp_op (&OMP_CLAUSE_DECL (c
), ctx
->outer
);
1440 case OMP_CLAUSE_COPYIN
:
1441 decl
= OMP_CLAUSE_DECL (c
);
1442 by_ref
= use_pointer_for_field (decl
, NULL
);
1443 install_var_field (decl
, by_ref
, 3, ctx
);
1446 case OMP_CLAUSE_DEFAULT
:
1447 ctx
->default_kind
= OMP_CLAUSE_DEFAULT_KIND (c
);
1451 case OMP_CLAUSE_NUM_THREADS
:
1452 case OMP_CLAUSE_SCHEDULE
:
1454 scan_omp_op (&OMP_CLAUSE_OPERAND (c
, 0), ctx
->outer
);
1457 case OMP_CLAUSE_NOWAIT
:
1458 case OMP_CLAUSE_ORDERED
:
1459 case OMP_CLAUSE_COLLAPSE
:
1460 case OMP_CLAUSE_UNTIED
:
1468 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
1470 switch (OMP_CLAUSE_CODE (c
))
1472 case OMP_CLAUSE_LASTPRIVATE
:
1473 /* Let the corresponding firstprivate clause create
1475 if (OMP_CLAUSE_LASTPRIVATE_GIMPLE_SEQ (c
))
1476 scan_array_reductions
= true;
1477 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c
))
1481 case OMP_CLAUSE_PRIVATE
:
1482 case OMP_CLAUSE_FIRSTPRIVATE
:
1483 case OMP_CLAUSE_REDUCTION
:
1484 decl
= OMP_CLAUSE_DECL (c
);
1485 if (is_variable_sized (decl
))
1486 install_var_local (decl
, ctx
);
1487 fixup_remapped_decl (decl
, ctx
,
1488 OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_PRIVATE
1489 && OMP_CLAUSE_PRIVATE_DEBUG (c
));
1490 if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_REDUCTION
1491 && OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
))
1492 scan_array_reductions
= true;
1495 case OMP_CLAUSE_SHARED
:
1496 decl
= OMP_CLAUSE_DECL (c
);
1497 if (! is_global_var (maybe_lookup_decl_in_outer_ctx (decl
, ctx
)))
1498 fixup_remapped_decl (decl
, ctx
, false);
1501 case OMP_CLAUSE_COPYPRIVATE
:
1502 case OMP_CLAUSE_COPYIN
:
1503 case OMP_CLAUSE_DEFAULT
:
1505 case OMP_CLAUSE_NUM_THREADS
:
1506 case OMP_CLAUSE_SCHEDULE
:
1507 case OMP_CLAUSE_NOWAIT
:
1508 case OMP_CLAUSE_ORDERED
:
1509 case OMP_CLAUSE_COLLAPSE
:
1510 case OMP_CLAUSE_UNTIED
:
1518 if (scan_array_reductions
)
1519 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
1520 if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_REDUCTION
1521 && OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
))
1523 scan_omp (OMP_CLAUSE_REDUCTION_GIMPLE_INIT (c
), ctx
);
1524 scan_omp (OMP_CLAUSE_REDUCTION_GIMPLE_MERGE (c
), ctx
);
1526 else if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_LASTPRIVATE
1527 && OMP_CLAUSE_LASTPRIVATE_GIMPLE_SEQ (c
))
1528 scan_omp (OMP_CLAUSE_LASTPRIVATE_GIMPLE_SEQ (c
), ctx
);
1531 /* Create a new name for omp child function. Returns an identifier. */
1533 static GTY(()) unsigned int tmp_ompfn_id_num
;
1536 create_omp_child_function_name (bool task_copy
)
1538 tree name
= DECL_ASSEMBLER_NAME (current_function_decl
);
1539 size_t len
= IDENTIFIER_LENGTH (name
);
1540 char *tmp_name
, *prefix
;
1543 suffix
= task_copy
? "_omp_cpyfn" : "_omp_fn";
1544 prefix
= XALLOCAVEC (char, len
+ strlen (suffix
) + 1);
1545 memcpy (prefix
, IDENTIFIER_POINTER (name
), len
);
1546 strcpy (prefix
+ len
, suffix
);
1547 #ifndef NO_DOT_IN_LABEL
1549 #elif !defined NO_DOLLAR_IN_LABEL
1552 ASM_FORMAT_PRIVATE_NAME (tmp_name
, prefix
, tmp_ompfn_id_num
++);
1553 return get_identifier (tmp_name
);
1556 /* Build a decl for the omp child function. It'll not contain a body
1557 yet, just the bare decl. */
1560 create_omp_child_function (omp_context
*ctx
, bool task_copy
)
1562 tree decl
, type
, name
, t
;
1564 name
= create_omp_child_function_name (task_copy
);
1566 type
= build_function_type_list (void_type_node
, ptr_type_node
,
1567 ptr_type_node
, NULL_TREE
);
1569 type
= build_function_type_list (void_type_node
, ptr_type_node
, NULL_TREE
);
1571 decl
= build_decl (gimple_location (ctx
->stmt
),
1572 FUNCTION_DECL
, name
, type
);
1575 ctx
->cb
.dst_fn
= decl
;
1577 gimple_omp_task_set_copy_fn (ctx
->stmt
, decl
);
1579 TREE_STATIC (decl
) = 1;
1580 TREE_USED (decl
) = 1;
1581 DECL_ARTIFICIAL (decl
) = 1;
1582 DECL_IGNORED_P (decl
) = 0;
1583 TREE_PUBLIC (decl
) = 0;
1584 DECL_UNINLINABLE (decl
) = 1;
1585 DECL_EXTERNAL (decl
) = 0;
1586 DECL_CONTEXT (decl
) = NULL_TREE
;
1587 DECL_INITIAL (decl
) = make_node (BLOCK
);
1589 t
= build_decl (DECL_SOURCE_LOCATION (decl
),
1590 RESULT_DECL
, NULL_TREE
, void_type_node
);
1591 DECL_ARTIFICIAL (t
) = 1;
1592 DECL_IGNORED_P (t
) = 1;
1593 DECL_CONTEXT (t
) = decl
;
1594 DECL_RESULT (decl
) = t
;
1596 t
= build_decl (DECL_SOURCE_LOCATION (decl
),
1597 PARM_DECL
, get_identifier (".omp_data_i"), ptr_type_node
);
1598 DECL_ARTIFICIAL (t
) = 1;
1599 DECL_ARG_TYPE (t
) = ptr_type_node
;
1600 DECL_CONTEXT (t
) = current_function_decl
;
1602 DECL_ARGUMENTS (decl
) = t
;
1604 ctx
->receiver_decl
= t
;
1607 t
= build_decl (DECL_SOURCE_LOCATION (decl
),
1608 PARM_DECL
, get_identifier (".omp_data_o"),
1610 DECL_ARTIFICIAL (t
) = 1;
1611 DECL_ARG_TYPE (t
) = ptr_type_node
;
1612 DECL_CONTEXT (t
) = current_function_decl
;
1614 TREE_ADDRESSABLE (t
) = 1;
1615 TREE_CHAIN (t
) = DECL_ARGUMENTS (decl
);
1616 DECL_ARGUMENTS (decl
) = t
;
1619 /* Allocate memory for the function structure. The call to
1620 allocate_struct_function clobbers CFUN, so we need to restore
1622 push_struct_function (decl
);
1623 cfun
->function_end_locus
= gimple_location (ctx
->stmt
);
1628 /* Scan an OpenMP parallel directive. */
1631 scan_omp_parallel (gimple_stmt_iterator
*gsi
, omp_context
*outer_ctx
)
1635 gimple stmt
= gsi_stmt (*gsi
);
1637 /* Ignore parallel directives with empty bodies, unless there
1638 are copyin clauses. */
1640 && empty_body_p (gimple_omp_body (stmt
))
1641 && find_omp_clause (gimple_omp_parallel_clauses (stmt
),
1642 OMP_CLAUSE_COPYIN
) == NULL
)
1644 gsi_replace (gsi
, gimple_build_nop (), false);
1648 ctx
= new_omp_context (stmt
, outer_ctx
);
1649 if (taskreg_nesting_level
> 1)
1650 ctx
->is_nested
= true;
1651 ctx
->field_map
= splay_tree_new (splay_tree_compare_pointers
, 0, 0);
1652 ctx
->default_kind
= OMP_CLAUSE_DEFAULT_SHARED
;
1653 ctx
->record_type
= lang_hooks
.types
.make_type (RECORD_TYPE
);
1654 name
= create_tmp_var_name (".omp_data_s");
1655 name
= build_decl (gimple_location (stmt
),
1656 TYPE_DECL
, name
, ctx
->record_type
);
1657 TYPE_NAME (ctx
->record_type
) = name
;
1658 create_omp_child_function (ctx
, false);
1659 gimple_omp_parallel_set_child_fn (stmt
, ctx
->cb
.dst_fn
);
1661 scan_sharing_clauses (gimple_omp_parallel_clauses (stmt
), ctx
);
1662 scan_omp (gimple_omp_body (stmt
), ctx
);
1664 if (TYPE_FIELDS (ctx
->record_type
) == NULL
)
1665 ctx
->record_type
= ctx
->receiver_decl
= NULL
;
1668 layout_type (ctx
->record_type
);
1669 fixup_child_record_type (ctx
);
1673 /* Scan an OpenMP task directive. */
1676 scan_omp_task (gimple_stmt_iterator
*gsi
, omp_context
*outer_ctx
)
1680 gimple stmt
= gsi_stmt (*gsi
);
1681 location_t loc
= gimple_location (stmt
);
1683 /* Ignore task directives with empty bodies. */
1685 && empty_body_p (gimple_omp_body (stmt
)))
1687 gsi_replace (gsi
, gimple_build_nop (), false);
1691 ctx
= new_omp_context (stmt
, outer_ctx
);
1692 if (taskreg_nesting_level
> 1)
1693 ctx
->is_nested
= true;
1694 ctx
->field_map
= splay_tree_new (splay_tree_compare_pointers
, 0, 0);
1695 ctx
->default_kind
= OMP_CLAUSE_DEFAULT_SHARED
;
1696 ctx
->record_type
= lang_hooks
.types
.make_type (RECORD_TYPE
);
1697 name
= create_tmp_var_name (".omp_data_s");
1698 name
= build_decl (gimple_location (stmt
),
1699 TYPE_DECL
, name
, ctx
->record_type
);
1700 TYPE_NAME (ctx
->record_type
) = name
;
1701 create_omp_child_function (ctx
, false);
1702 gimple_omp_task_set_child_fn (stmt
, ctx
->cb
.dst_fn
);
1704 scan_sharing_clauses (gimple_omp_task_clauses (stmt
), ctx
);
1706 if (ctx
->srecord_type
)
1708 name
= create_tmp_var_name (".omp_data_a");
1709 name
= build_decl (gimple_location (stmt
),
1710 TYPE_DECL
, name
, ctx
->srecord_type
);
1711 TYPE_NAME (ctx
->srecord_type
) = name
;
1712 create_omp_child_function (ctx
, true);
1715 scan_omp (gimple_omp_body (stmt
), ctx
);
1717 if (TYPE_FIELDS (ctx
->record_type
) == NULL
)
1719 ctx
->record_type
= ctx
->receiver_decl
= NULL
;
1720 t
= build_int_cst (long_integer_type_node
, 0);
1721 gimple_omp_task_set_arg_size (stmt
, t
);
1722 t
= build_int_cst (long_integer_type_node
, 1);
1723 gimple_omp_task_set_arg_align (stmt
, t
);
1727 tree
*p
, vla_fields
= NULL_TREE
, *q
= &vla_fields
;
1728 /* Move VLA fields to the end. */
1729 p
= &TYPE_FIELDS (ctx
->record_type
);
1731 if (!TYPE_SIZE_UNIT (TREE_TYPE (*p
))
1732 || ! TREE_CONSTANT (TYPE_SIZE_UNIT (TREE_TYPE (*p
))))
1735 *p
= TREE_CHAIN (*p
);
1736 TREE_CHAIN (*q
) = NULL_TREE
;
1737 q
= &TREE_CHAIN (*q
);
1740 p
= &TREE_CHAIN (*p
);
1742 layout_type (ctx
->record_type
);
1743 fixup_child_record_type (ctx
);
1744 if (ctx
->srecord_type
)
1745 layout_type (ctx
->srecord_type
);
1746 t
= fold_convert_loc (loc
, long_integer_type_node
,
1747 TYPE_SIZE_UNIT (ctx
->record_type
));
1748 gimple_omp_task_set_arg_size (stmt
, t
);
1749 t
= build_int_cst (long_integer_type_node
,
1750 TYPE_ALIGN_UNIT (ctx
->record_type
));
1751 gimple_omp_task_set_arg_align (stmt
, t
);
1756 /* Scan an OpenMP loop directive. */
1759 scan_omp_for (gimple stmt
, omp_context
*outer_ctx
)
1764 ctx
= new_omp_context (stmt
, outer_ctx
);
1766 scan_sharing_clauses (gimple_omp_for_clauses (stmt
), ctx
);
1768 scan_omp (gimple_omp_for_pre_body (stmt
), ctx
);
1769 for (i
= 0; i
< gimple_omp_for_collapse (stmt
); i
++)
1771 scan_omp_op (gimple_omp_for_index_ptr (stmt
, i
), ctx
);
1772 scan_omp_op (gimple_omp_for_initial_ptr (stmt
, i
), ctx
);
1773 scan_omp_op (gimple_omp_for_final_ptr (stmt
, i
), ctx
);
1774 scan_omp_op (gimple_omp_for_incr_ptr (stmt
, i
), ctx
);
1776 scan_omp (gimple_omp_body (stmt
), ctx
);
1779 /* Scan an OpenMP sections directive. */
1782 scan_omp_sections (gimple stmt
, omp_context
*outer_ctx
)
1786 ctx
= new_omp_context (stmt
, outer_ctx
);
1787 scan_sharing_clauses (gimple_omp_sections_clauses (stmt
), ctx
);
1788 scan_omp (gimple_omp_body (stmt
), ctx
);
1791 /* Scan an OpenMP single directive. */
1794 scan_omp_single (gimple stmt
, omp_context
*outer_ctx
)
1799 ctx
= new_omp_context (stmt
, outer_ctx
);
1800 ctx
->field_map
= splay_tree_new (splay_tree_compare_pointers
, 0, 0);
1801 ctx
->record_type
= lang_hooks
.types
.make_type (RECORD_TYPE
);
1802 name
= create_tmp_var_name (".omp_copy_s");
1803 name
= build_decl (gimple_location (stmt
),
1804 TYPE_DECL
, name
, ctx
->record_type
);
1805 TYPE_NAME (ctx
->record_type
) = name
;
1807 scan_sharing_clauses (gimple_omp_single_clauses (stmt
), ctx
);
1808 scan_omp (gimple_omp_body (stmt
), ctx
);
1810 if (TYPE_FIELDS (ctx
->record_type
) == NULL
)
1811 ctx
->record_type
= NULL
;
1813 layout_type (ctx
->record_type
);
1817 /* Check OpenMP nesting restrictions. */
1819 check_omp_nesting_restrictions (gimple stmt
, omp_context
*ctx
)
1821 switch (gimple_code (stmt
))
1823 case GIMPLE_OMP_FOR
:
1824 case GIMPLE_OMP_SECTIONS
:
1825 case GIMPLE_OMP_SINGLE
:
1827 for (; ctx
!= NULL
; ctx
= ctx
->outer
)
1828 switch (gimple_code (ctx
->stmt
))
1830 case GIMPLE_OMP_FOR
:
1831 case GIMPLE_OMP_SECTIONS
:
1832 case GIMPLE_OMP_SINGLE
:
1833 case GIMPLE_OMP_ORDERED
:
1834 case GIMPLE_OMP_MASTER
:
1835 case GIMPLE_OMP_TASK
:
1836 if (is_gimple_call (stmt
))
1838 warning (0, "barrier region may not be closely nested inside "
1839 "of work-sharing, critical, ordered, master or "
1840 "explicit task region");
1843 warning (0, "work-sharing region may not be closely nested inside "
1844 "of work-sharing, critical, ordered, master or explicit "
1847 case GIMPLE_OMP_PARALLEL
:
1853 case GIMPLE_OMP_MASTER
:
1854 for (; ctx
!= NULL
; ctx
= ctx
->outer
)
1855 switch (gimple_code (ctx
->stmt
))
1857 case GIMPLE_OMP_FOR
:
1858 case GIMPLE_OMP_SECTIONS
:
1859 case GIMPLE_OMP_SINGLE
:
1860 case GIMPLE_OMP_TASK
:
1861 warning (0, "master region may not be closely nested inside "
1862 "of work-sharing or explicit task region");
1864 case GIMPLE_OMP_PARALLEL
:
1870 case GIMPLE_OMP_ORDERED
:
1871 for (; ctx
!= NULL
; ctx
= ctx
->outer
)
1872 switch (gimple_code (ctx
->stmt
))
1874 case GIMPLE_OMP_CRITICAL
:
1875 case GIMPLE_OMP_TASK
:
1876 warning (0, "ordered region may not be closely nested inside "
1877 "of critical or explicit task region");
1879 case GIMPLE_OMP_FOR
:
1880 if (find_omp_clause (gimple_omp_for_clauses (ctx
->stmt
),
1881 OMP_CLAUSE_ORDERED
) == NULL
)
1882 warning (0, "ordered region must be closely nested inside "
1883 "a loop region with an ordered clause");
1885 case GIMPLE_OMP_PARALLEL
:
1891 case GIMPLE_OMP_CRITICAL
:
1892 for (; ctx
!= NULL
; ctx
= ctx
->outer
)
1893 if (gimple_code (ctx
->stmt
) == GIMPLE_OMP_CRITICAL
1894 && (gimple_omp_critical_name (stmt
)
1895 == gimple_omp_critical_name (ctx
->stmt
)))
1897 warning (0, "critical region may not be nested inside a critical "
1898 "region with the same name");
1908 /* Helper function scan_omp.
1910 Callback for walk_tree or operators in walk_gimple_stmt used to
1911 scan for OpenMP directives in TP. */
1914 scan_omp_1_op (tree
*tp
, int *walk_subtrees
, void *data
)
1916 struct walk_stmt_info
*wi
= (struct walk_stmt_info
*) data
;
1917 omp_context
*ctx
= (omp_context
*) wi
->info
;
1920 switch (TREE_CODE (t
))
1927 *tp
= remap_decl (t
, &ctx
->cb
);
1931 if (ctx
&& TYPE_P (t
))
1932 *tp
= remap_type (t
, &ctx
->cb
);
1933 else if (!DECL_P (t
))
1937 TREE_TYPE (t
) = remap_type (TREE_TYPE (t
), &ctx
->cb
);
1946 /* Helper function for scan_omp.
1948 Callback for walk_gimple_stmt used to scan for OpenMP directives in
1949 the current statement in GSI. */
1952 scan_omp_1_stmt (gimple_stmt_iterator
*gsi
, bool *handled_ops_p
,
1953 struct walk_stmt_info
*wi
)
1955 gimple stmt
= gsi_stmt (*gsi
);
1956 omp_context
*ctx
= (omp_context
*) wi
->info
;
1958 if (gimple_has_location (stmt
))
1959 input_location
= gimple_location (stmt
);
1961 /* Check the OpenMP nesting restrictions. */
1964 if (is_gimple_omp (stmt
))
1965 check_omp_nesting_restrictions (stmt
, ctx
);
1966 else if (is_gimple_call (stmt
))
1968 tree fndecl
= gimple_call_fndecl (stmt
);
1969 if (fndecl
&& DECL_BUILT_IN_CLASS (fndecl
) == BUILT_IN_NORMAL
1970 && DECL_FUNCTION_CODE (fndecl
) == BUILT_IN_GOMP_BARRIER
)
1971 check_omp_nesting_restrictions (stmt
, ctx
);
1975 *handled_ops_p
= true;
1977 switch (gimple_code (stmt
))
1979 case GIMPLE_OMP_PARALLEL
:
1980 taskreg_nesting_level
++;
1981 scan_omp_parallel (gsi
, ctx
);
1982 taskreg_nesting_level
--;
1985 case GIMPLE_OMP_TASK
:
1986 taskreg_nesting_level
++;
1987 scan_omp_task (gsi
, ctx
);
1988 taskreg_nesting_level
--;
1991 case GIMPLE_OMP_FOR
:
1992 scan_omp_for (stmt
, ctx
);
1995 case GIMPLE_OMP_SECTIONS
:
1996 scan_omp_sections (stmt
, ctx
);
1999 case GIMPLE_OMP_SINGLE
:
2000 scan_omp_single (stmt
, ctx
);
2003 case GIMPLE_OMP_SECTION
:
2004 case GIMPLE_OMP_MASTER
:
2005 case GIMPLE_OMP_ORDERED
:
2006 case GIMPLE_OMP_CRITICAL
:
2007 ctx
= new_omp_context (stmt
, ctx
);
2008 scan_omp (gimple_omp_body (stmt
), ctx
);
2015 *handled_ops_p
= false;
2017 for (var
= gimple_bind_vars (stmt
); var
; var
= TREE_CHAIN (var
))
2018 insert_decl_map (&ctx
->cb
, var
, var
);
2022 *handled_ops_p
= false;
2030 /* Scan all the statements starting at the current statement. CTX
2031 contains context information about the OpenMP directives and
2032 clauses found during the scan. */
2035 scan_omp (gimple_seq body
, omp_context
*ctx
)
2037 location_t saved_location
;
2038 struct walk_stmt_info wi
;
2040 memset (&wi
, 0, sizeof (wi
));
2042 wi
.want_locations
= true;
2044 saved_location
= input_location
;
2045 walk_gimple_seq (body
, scan_omp_1_stmt
, scan_omp_1_op
, &wi
);
2046 input_location
= saved_location
;
2049 /* Re-gimplification and code generation routines. */
2051 /* Build a call to GOMP_barrier. */
2054 build_omp_barrier (void)
2056 return build_call_expr (built_in_decls
[BUILT_IN_GOMP_BARRIER
], 0);
2059 /* If a context was created for STMT when it was scanned, return it. */
2061 static omp_context
*
2062 maybe_lookup_ctx (gimple stmt
)
2065 n
= splay_tree_lookup (all_contexts
, (splay_tree_key
) stmt
);
2066 return n
? (omp_context
*) n
->value
: NULL
;
2070 /* Find the mapping for DECL in CTX or the immediately enclosing
2071 context that has a mapping for DECL.
2073 If CTX is a nested parallel directive, we may have to use the decl
2074 mappings created in CTX's parent context. Suppose that we have the
2075 following parallel nesting (variable UIDs showed for clarity):
2078 #omp parallel shared(iD.1562) -> outer parallel
2079 iD.1562 = iD.1562 + 1;
2081 #omp parallel shared (iD.1562) -> inner parallel
2082 iD.1562 = iD.1562 - 1;
2084 Each parallel structure will create a distinct .omp_data_s structure
2085 for copying iD.1562 in/out of the directive:
2087 outer parallel .omp_data_s.1.i -> iD.1562
2088 inner parallel .omp_data_s.2.i -> iD.1562
2090 A shared variable mapping will produce a copy-out operation before
2091 the parallel directive and a copy-in operation after it. So, in
2092 this case we would have:
2095 .omp_data_o.1.i = iD.1562;
2096 #omp parallel shared(iD.1562) -> outer parallel
2097 .omp_data_i.1 = &.omp_data_o.1
2098 .omp_data_i.1->i = .omp_data_i.1->i + 1;
2100 .omp_data_o.2.i = iD.1562; -> **
2101 #omp parallel shared(iD.1562) -> inner parallel
2102 .omp_data_i.2 = &.omp_data_o.2
2103 .omp_data_i.2->i = .omp_data_i.2->i - 1;
2106 ** This is a problem. The symbol iD.1562 cannot be referenced
2107 inside the body of the outer parallel region. But since we are
2108 emitting this copy operation while expanding the inner parallel
2109 directive, we need to access the CTX structure of the outer
2110 parallel directive to get the correct mapping:
2112 .omp_data_o.2.i = .omp_data_i.1->i
2114 Since there may be other workshare or parallel directives enclosing
2115 the parallel directive, it may be necessary to walk up the context
2116 parent chain. This is not a problem in general because nested
2117 parallelism happens only rarely. */
2120 lookup_decl_in_outer_ctx (tree decl
, omp_context
*ctx
)
2125 for (up
= ctx
->outer
, t
= NULL
; up
&& t
== NULL
; up
= up
->outer
)
2126 t
= maybe_lookup_decl (decl
, up
);
2128 gcc_assert (!ctx
->is_nested
|| t
|| is_global_var (decl
));
2130 return t
? t
: decl
;
2134 /* Similar to lookup_decl_in_outer_ctx, but return DECL if not found
2135 in outer contexts. */
2138 maybe_lookup_decl_in_outer_ctx (tree decl
, omp_context
*ctx
)
2143 for (up
= ctx
->outer
, t
= NULL
; up
&& t
== NULL
; up
= up
->outer
)
2144 t
= maybe_lookup_decl (decl
, up
);
2146 return t
? t
: decl
;
2150 /* Construct the initialization value for reduction CLAUSE. */
2153 omp_reduction_init (tree clause
, tree type
)
2155 location_t loc
= OMP_CLAUSE_LOCATION (clause
);
2156 switch (OMP_CLAUSE_REDUCTION_CODE (clause
))
2163 case TRUTH_ORIF_EXPR
:
2164 case TRUTH_XOR_EXPR
:
2166 return fold_convert_loc (loc
, type
, integer_zero_node
);
2169 case TRUTH_AND_EXPR
:
2170 case TRUTH_ANDIF_EXPR
:
2172 return fold_convert_loc (loc
, type
, integer_one_node
);
2175 return fold_convert_loc (loc
, type
, integer_minus_one_node
);
2178 if (SCALAR_FLOAT_TYPE_P (type
))
2180 REAL_VALUE_TYPE max
, min
;
2181 if (HONOR_INFINITIES (TYPE_MODE (type
)))
2184 real_arithmetic (&min
, NEGATE_EXPR
, &max
, NULL
);
2187 real_maxval (&min
, 1, TYPE_MODE (type
));
2188 return build_real (type
, min
);
2192 gcc_assert (INTEGRAL_TYPE_P (type
));
2193 return TYPE_MIN_VALUE (type
);
2197 if (SCALAR_FLOAT_TYPE_P (type
))
2199 REAL_VALUE_TYPE max
;
2200 if (HONOR_INFINITIES (TYPE_MODE (type
)))
2203 real_maxval (&max
, 0, TYPE_MODE (type
));
2204 return build_real (type
, max
);
2208 gcc_assert (INTEGRAL_TYPE_P (type
));
2209 return TYPE_MAX_VALUE (type
);
2217 /* Generate code to implement the input clauses, FIRSTPRIVATE and COPYIN,
2218 from the receiver (aka child) side and initializers for REFERENCE_TYPE
2219 private variables. Initialization statements go in ILIST, while calls
2220 to destructors go in DLIST. */
2223 lower_rec_input_clauses (tree clauses
, gimple_seq
*ilist
, gimple_seq
*dlist
,
2226 gimple_stmt_iterator diter
;
2227 tree c
, dtor
, copyin_seq
, x
, ptr
;
2228 bool copyin_by_ref
= false;
2229 bool lastprivate_firstprivate
= false;
2232 *dlist
= gimple_seq_alloc ();
2233 diter
= gsi_start (*dlist
);
2236 /* Do all the fixed sized types in the first pass, and the variable sized
2237 types in the second pass. This makes sure that the scalar arguments to
2238 the variable sized types are processed before we use them in the
2239 variable sized operations. */
2240 for (pass
= 0; pass
< 2; ++pass
)
2242 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
2244 enum omp_clause_code c_kind
= OMP_CLAUSE_CODE (c
);
2247 location_t clause_loc
= OMP_CLAUSE_LOCATION (c
);
2251 case OMP_CLAUSE_PRIVATE
:
2252 if (OMP_CLAUSE_PRIVATE_DEBUG (c
))
2255 case OMP_CLAUSE_SHARED
:
2256 if (maybe_lookup_decl (OMP_CLAUSE_DECL (c
), ctx
) == NULL
)
2258 gcc_assert (is_global_var (OMP_CLAUSE_DECL (c
)));
2261 case OMP_CLAUSE_FIRSTPRIVATE
:
2262 case OMP_CLAUSE_COPYIN
:
2263 case OMP_CLAUSE_REDUCTION
:
2265 case OMP_CLAUSE_LASTPRIVATE
:
2266 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c
))
2268 lastprivate_firstprivate
= true;
2277 new_var
= var
= OMP_CLAUSE_DECL (c
);
2278 if (c_kind
!= OMP_CLAUSE_COPYIN
)
2279 new_var
= lookup_decl (var
, ctx
);
2281 if (c_kind
== OMP_CLAUSE_SHARED
|| c_kind
== OMP_CLAUSE_COPYIN
)
2286 else if (is_variable_sized (var
))
2288 /* For variable sized types, we need to allocate the
2289 actual storage here. Call alloca and store the
2290 result in the pointer decl that we created elsewhere. */
2294 if (c_kind
!= OMP_CLAUSE_FIRSTPRIVATE
|| !is_task_ctx (ctx
))
2299 ptr
= DECL_VALUE_EXPR (new_var
);
2300 gcc_assert (TREE_CODE (ptr
) == INDIRECT_REF
);
2301 ptr
= TREE_OPERAND (ptr
, 0);
2302 gcc_assert (DECL_P (ptr
));
2303 x
= TYPE_SIZE_UNIT (TREE_TYPE (new_var
));
2305 /* void *tmp = __builtin_alloca */
2307 = gimple_build_call (built_in_decls
[BUILT_IN_ALLOCA
], 1, x
);
2308 tmp
= create_tmp_var_raw (ptr_type_node
, NULL
);
2309 gimple_add_tmp_var (tmp
);
2310 gimple_call_set_lhs (stmt
, tmp
);
2312 gimple_seq_add_stmt (ilist
, stmt
);
2314 x
= fold_convert_loc (clause_loc
, TREE_TYPE (ptr
), tmp
);
2315 gimplify_assign (ptr
, x
, ilist
);
2318 else if (is_reference (var
))
2320 /* For references that are being privatized for Fortran,
2321 allocate new backing storage for the new pointer
2322 variable. This allows us to avoid changing all the
2323 code that expects a pointer to something that expects
2324 a direct variable. Note that this doesn't apply to
2325 C++, since reference types are disallowed in data
2326 sharing clauses there, except for NRV optimized
2331 x
= TYPE_SIZE_UNIT (TREE_TYPE (TREE_TYPE (new_var
)));
2332 if (c_kind
== OMP_CLAUSE_FIRSTPRIVATE
&& is_task_ctx (ctx
))
2334 x
= build_receiver_ref (var
, false, ctx
);
2335 x
= build_fold_addr_expr_loc (clause_loc
, x
);
2337 else if (TREE_CONSTANT (x
))
2339 const char *name
= NULL
;
2340 if (DECL_NAME (var
))
2341 name
= IDENTIFIER_POINTER (DECL_NAME (new_var
));
2343 x
= create_tmp_var_raw (TREE_TYPE (TREE_TYPE (new_var
)),
2345 gimple_add_tmp_var (x
);
2346 TREE_ADDRESSABLE (x
) = 1;
2347 x
= build_fold_addr_expr_loc (clause_loc
, x
);
2351 x
= build_call_expr_loc (clause_loc
,
2352 built_in_decls
[BUILT_IN_ALLOCA
], 1, x
);
2355 x
= fold_convert_loc (clause_loc
, TREE_TYPE (new_var
), x
);
2356 gimplify_assign (new_var
, x
, ilist
);
2358 new_var
= build_fold_indirect_ref_loc (clause_loc
, new_var
);
2360 else if (c_kind
== OMP_CLAUSE_REDUCTION
2361 && OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
))
2369 switch (OMP_CLAUSE_CODE (c
))
2371 case OMP_CLAUSE_SHARED
:
2372 /* Shared global vars are just accessed directly. */
2373 if (is_global_var (new_var
))
2375 /* Set up the DECL_VALUE_EXPR for shared variables now. This
2376 needs to be delayed until after fixup_child_record_type so
2377 that we get the correct type during the dereference. */
2378 by_ref
= use_pointer_for_field (var
, ctx
);
2379 x
= build_receiver_ref (var
, by_ref
, ctx
);
2380 SET_DECL_VALUE_EXPR (new_var
, x
);
2381 DECL_HAS_VALUE_EXPR_P (new_var
) = 1;
2383 /* ??? If VAR is not passed by reference, and the variable
2384 hasn't been initialized yet, then we'll get a warning for
2385 the store into the omp_data_s structure. Ideally, we'd be
2386 able to notice this and not store anything at all, but
2387 we're generating code too early. Suppress the warning. */
2389 TREE_NO_WARNING (var
) = 1;
2392 case OMP_CLAUSE_LASTPRIVATE
:
2393 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c
))
2397 case OMP_CLAUSE_PRIVATE
:
2398 if (OMP_CLAUSE_CODE (c
) != OMP_CLAUSE_PRIVATE
)
2399 x
= build_outer_var_ref (var
, ctx
);
2400 else if (OMP_CLAUSE_PRIVATE_OUTER_REF (c
))
2402 if (is_task_ctx (ctx
))
2403 x
= build_receiver_ref (var
, false, ctx
);
2405 x
= build_outer_var_ref (var
, ctx
);
2409 x
= lang_hooks
.decls
.omp_clause_default_ctor (c
, new_var
, x
);
2411 gimplify_and_add (x
, ilist
);
2415 x
= lang_hooks
.decls
.omp_clause_dtor (c
, new_var
);
2418 gimple_seq tseq
= NULL
;
2421 gimplify_stmt (&dtor
, &tseq
);
2422 gsi_insert_seq_before (&diter
, tseq
, GSI_SAME_STMT
);
2426 case OMP_CLAUSE_FIRSTPRIVATE
:
2427 if (is_task_ctx (ctx
))
2429 if (is_reference (var
) || is_variable_sized (var
))
2431 else if (is_global_var (maybe_lookup_decl_in_outer_ctx (var
,
2433 || use_pointer_for_field (var
, NULL
))
2435 x
= build_receiver_ref (var
, false, ctx
);
2436 SET_DECL_VALUE_EXPR (new_var
, x
);
2437 DECL_HAS_VALUE_EXPR_P (new_var
) = 1;
2441 x
= build_outer_var_ref (var
, ctx
);
2442 x
= lang_hooks
.decls
.omp_clause_copy_ctor (c
, new_var
, x
);
2443 gimplify_and_add (x
, ilist
);
2447 case OMP_CLAUSE_COPYIN
:
2448 by_ref
= use_pointer_for_field (var
, NULL
);
2449 x
= build_receiver_ref (var
, by_ref
, ctx
);
2450 x
= lang_hooks
.decls
.omp_clause_assign_op (c
, new_var
, x
);
2451 append_to_statement_list (x
, ©in_seq
);
2452 copyin_by_ref
|= by_ref
;
2455 case OMP_CLAUSE_REDUCTION
:
2456 if (OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
))
2458 tree placeholder
= OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
);
2459 x
= build_outer_var_ref (var
, ctx
);
2461 if (is_reference (var
))
2462 x
= build_fold_addr_expr_loc (clause_loc
, x
);
2463 SET_DECL_VALUE_EXPR (placeholder
, x
);
2464 DECL_HAS_VALUE_EXPR_P (placeholder
) = 1;
2465 lower_omp (OMP_CLAUSE_REDUCTION_GIMPLE_INIT (c
), ctx
);
2466 gimple_seq_add_seq (ilist
,
2467 OMP_CLAUSE_REDUCTION_GIMPLE_INIT (c
));
2468 OMP_CLAUSE_REDUCTION_GIMPLE_INIT (c
) = NULL
;
2469 DECL_HAS_VALUE_EXPR_P (placeholder
) = 0;
2473 x
= omp_reduction_init (c
, TREE_TYPE (new_var
));
2474 gcc_assert (TREE_CODE (TREE_TYPE (new_var
)) != ARRAY_TYPE
);
2475 gimplify_assign (new_var
, x
, ilist
);
2485 /* The copyin sequence is not to be executed by the main thread, since
2486 that would result in self-copies. Perhaps not visible to scalars,
2487 but it certainly is to C++ operator=. */
2490 x
= build_call_expr (built_in_decls
[BUILT_IN_OMP_GET_THREAD_NUM
], 0);
2491 x
= build2 (NE_EXPR
, boolean_type_node
, x
,
2492 build_int_cst (TREE_TYPE (x
), 0));
2493 x
= build3 (COND_EXPR
, void_type_node
, x
, copyin_seq
, NULL
);
2494 gimplify_and_add (x
, ilist
);
2497 /* If any copyin variable is passed by reference, we must ensure the
2498 master thread doesn't modify it before it is copied over in all
2499 threads. Similarly for variables in both firstprivate and
2500 lastprivate clauses we need to ensure the lastprivate copying
2501 happens after firstprivate copying in all threads. */
2502 if (copyin_by_ref
|| lastprivate_firstprivate
)
2503 gimplify_and_add (build_omp_barrier (), ilist
);
2507 /* Generate code to implement the LASTPRIVATE clauses. This is used for
2508 both parallel and workshare constructs. PREDICATE may be NULL if it's
2512 lower_lastprivate_clauses (tree clauses
, tree predicate
, gimple_seq
*stmt_list
,
2515 tree x
, c
, label
= NULL
;
2516 bool par_clauses
= false;
2518 /* Early exit if there are no lastprivate clauses. */
2519 clauses
= find_omp_clause (clauses
, OMP_CLAUSE_LASTPRIVATE
);
2520 if (clauses
== NULL
)
2522 /* If this was a workshare clause, see if it had been combined
2523 with its parallel. In that case, look for the clauses on the
2524 parallel statement itself. */
2525 if (is_parallel_ctx (ctx
))
2529 if (ctx
== NULL
|| !is_parallel_ctx (ctx
))
2532 clauses
= find_omp_clause (gimple_omp_parallel_clauses (ctx
->stmt
),
2533 OMP_CLAUSE_LASTPRIVATE
);
2534 if (clauses
== NULL
)
2542 tree label_true
, arm1
, arm2
;
2544 label
= create_artificial_label (UNKNOWN_LOCATION
);
2545 label_true
= create_artificial_label (UNKNOWN_LOCATION
);
2546 arm1
= TREE_OPERAND (predicate
, 0);
2547 arm2
= TREE_OPERAND (predicate
, 1);
2548 gimplify_expr (&arm1
, stmt_list
, NULL
, is_gimple_val
, fb_rvalue
);
2549 gimplify_expr (&arm2
, stmt_list
, NULL
, is_gimple_val
, fb_rvalue
);
2550 stmt
= gimple_build_cond (TREE_CODE (predicate
), arm1
, arm2
,
2552 gimple_seq_add_stmt (stmt_list
, stmt
);
2553 gimple_seq_add_stmt (stmt_list
, gimple_build_label (label_true
));
2556 for (c
= clauses
; c
;)
2559 location_t clause_loc
= OMP_CLAUSE_LOCATION (c
);
2561 if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_LASTPRIVATE
)
2563 var
= OMP_CLAUSE_DECL (c
);
2564 new_var
= lookup_decl (var
, ctx
);
2566 if (OMP_CLAUSE_LASTPRIVATE_GIMPLE_SEQ (c
))
2568 lower_omp (OMP_CLAUSE_LASTPRIVATE_GIMPLE_SEQ (c
), ctx
);
2569 gimple_seq_add_seq (stmt_list
,
2570 OMP_CLAUSE_LASTPRIVATE_GIMPLE_SEQ (c
));
2572 OMP_CLAUSE_LASTPRIVATE_GIMPLE_SEQ (c
) = NULL
;
2574 x
= build_outer_var_ref (var
, ctx
);
2575 if (is_reference (var
))
2576 new_var
= build_fold_indirect_ref_loc (clause_loc
, new_var
);
2577 x
= lang_hooks
.decls
.omp_clause_assign_op (c
, x
, new_var
);
2578 gimplify_and_add (x
, stmt_list
);
2580 c
= OMP_CLAUSE_CHAIN (c
);
2581 if (c
== NULL
&& !par_clauses
)
2583 /* If this was a workshare clause, see if it had been combined
2584 with its parallel. In that case, continue looking for the
2585 clauses also on the parallel statement itself. */
2586 if (is_parallel_ctx (ctx
))
2590 if (ctx
== NULL
|| !is_parallel_ctx (ctx
))
2593 c
= find_omp_clause (gimple_omp_parallel_clauses (ctx
->stmt
),
2594 OMP_CLAUSE_LASTPRIVATE
);
2600 gimple_seq_add_stmt (stmt_list
, gimple_build_label (label
));
2604 /* Generate code to implement the REDUCTION clauses. */
2607 lower_reduction_clauses (tree clauses
, gimple_seq
*stmt_seqp
, omp_context
*ctx
)
2609 gimple_seq sub_seq
= NULL
;
2614 /* First see if there is exactly one reduction clause. Use OMP_ATOMIC
2615 update in that case, otherwise use a lock. */
2616 for (c
= clauses
; c
&& count
< 2; c
= OMP_CLAUSE_CHAIN (c
))
2617 if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_REDUCTION
)
2619 if (OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
))
2621 /* Never use OMP_ATOMIC for array reductions. */
2631 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
2633 tree var
, ref
, new_var
;
2634 enum tree_code code
;
2635 location_t clause_loc
= OMP_CLAUSE_LOCATION (c
);
2637 if (OMP_CLAUSE_CODE (c
) != OMP_CLAUSE_REDUCTION
)
2640 var
= OMP_CLAUSE_DECL (c
);
2641 new_var
= lookup_decl (var
, ctx
);
2642 if (is_reference (var
))
2643 new_var
= build_fold_indirect_ref_loc (clause_loc
, new_var
);
2644 ref
= build_outer_var_ref (var
, ctx
);
2645 code
= OMP_CLAUSE_REDUCTION_CODE (c
);
2647 /* reduction(-:var) sums up the partial results, so it acts
2648 identically to reduction(+:var). */
2649 if (code
== MINUS_EXPR
)
2654 tree addr
= build_fold_addr_expr_loc (clause_loc
, ref
);
2656 addr
= save_expr (addr
);
2657 ref
= build1 (INDIRECT_REF
, TREE_TYPE (TREE_TYPE (addr
)), addr
);
2658 x
= fold_build2_loc (clause_loc
, code
, TREE_TYPE (ref
), ref
, new_var
);
2659 x
= build2 (OMP_ATOMIC
, void_type_node
, addr
, x
);
2660 gimplify_and_add (x
, stmt_seqp
);
2664 if (OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
))
2666 tree placeholder
= OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
);
2668 if (is_reference (var
))
2669 ref
= build_fold_addr_expr_loc (clause_loc
, ref
);
2670 SET_DECL_VALUE_EXPR (placeholder
, ref
);
2671 DECL_HAS_VALUE_EXPR_P (placeholder
) = 1;
2672 lower_omp (OMP_CLAUSE_REDUCTION_GIMPLE_MERGE (c
), ctx
);
2673 gimple_seq_add_seq (&sub_seq
, OMP_CLAUSE_REDUCTION_GIMPLE_MERGE (c
));
2674 OMP_CLAUSE_REDUCTION_GIMPLE_MERGE (c
) = NULL
;
2675 OMP_CLAUSE_REDUCTION_PLACEHOLDER (c
) = NULL
;
2679 x
= build2 (code
, TREE_TYPE (ref
), ref
, new_var
);
2680 ref
= build_outer_var_ref (var
, ctx
);
2681 gimplify_assign (ref
, x
, &sub_seq
);
2685 stmt
= gimple_build_call (built_in_decls
[BUILT_IN_GOMP_ATOMIC_START
], 0);
2686 gimple_seq_add_stmt (stmt_seqp
, stmt
);
2688 gimple_seq_add_seq (stmt_seqp
, sub_seq
);
2690 stmt
= gimple_build_call (built_in_decls
[BUILT_IN_GOMP_ATOMIC_END
], 0);
2691 gimple_seq_add_stmt (stmt_seqp
, stmt
);
2695 /* Generate code to implement the COPYPRIVATE clauses. */
2698 lower_copyprivate_clauses (tree clauses
, gimple_seq
*slist
, gimple_seq
*rlist
,
2703 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
2707 location_t clause_loc
= OMP_CLAUSE_LOCATION (c
);
2709 if (OMP_CLAUSE_CODE (c
) != OMP_CLAUSE_COPYPRIVATE
)
2712 var
= OMP_CLAUSE_DECL (c
);
2713 by_ref
= use_pointer_for_field (var
, NULL
);
2715 ref
= build_sender_ref (var
, ctx
);
2716 x
= lookup_decl_in_outer_ctx (var
, ctx
);
2717 x
= by_ref
? build_fold_addr_expr_loc (clause_loc
, x
) : x
;
2718 gimplify_assign (ref
, x
, slist
);
2720 ref
= build_receiver_ref (var
, by_ref
, ctx
);
2721 if (is_reference (var
))
2723 ref
= build_fold_indirect_ref_loc (clause_loc
, ref
);
2724 var
= build_fold_indirect_ref_loc (clause_loc
, var
);
2726 x
= lang_hooks
.decls
.omp_clause_assign_op (c
, var
, ref
);
2727 gimplify_and_add (x
, rlist
);
2732 /* Generate code to implement the clauses, FIRSTPRIVATE, COPYIN, LASTPRIVATE,
2733 and REDUCTION from the sender (aka parent) side. */
2736 lower_send_clauses (tree clauses
, gimple_seq
*ilist
, gimple_seq
*olist
,
2741 for (c
= clauses
; c
; c
= OMP_CLAUSE_CHAIN (c
))
2743 tree val
, ref
, x
, var
;
2744 bool by_ref
, do_in
= false, do_out
= false;
2745 location_t clause_loc
= OMP_CLAUSE_LOCATION (c
);
2747 switch (OMP_CLAUSE_CODE (c
))
2749 case OMP_CLAUSE_PRIVATE
:
2750 if (OMP_CLAUSE_PRIVATE_OUTER_REF (c
))
2753 case OMP_CLAUSE_FIRSTPRIVATE
:
2754 case OMP_CLAUSE_COPYIN
:
2755 case OMP_CLAUSE_LASTPRIVATE
:
2756 case OMP_CLAUSE_REDUCTION
:
2762 val
= OMP_CLAUSE_DECL (c
);
2763 var
= lookup_decl_in_outer_ctx (val
, ctx
);
2765 if (OMP_CLAUSE_CODE (c
) != OMP_CLAUSE_COPYIN
2766 && is_global_var (var
))
2768 if (is_variable_sized (val
))
2770 by_ref
= use_pointer_for_field (val
, NULL
);
2772 switch (OMP_CLAUSE_CODE (c
))
2774 case OMP_CLAUSE_PRIVATE
:
2775 case OMP_CLAUSE_FIRSTPRIVATE
:
2776 case OMP_CLAUSE_COPYIN
:
2780 case OMP_CLAUSE_LASTPRIVATE
:
2781 if (by_ref
|| is_reference (val
))
2783 if (OMP_CLAUSE_LASTPRIVATE_FIRSTPRIVATE (c
))
2790 if (lang_hooks
.decls
.omp_private_outer_ref (val
))
2795 case OMP_CLAUSE_REDUCTION
:
2797 do_out
= !(by_ref
|| is_reference (val
));
2806 ref
= build_sender_ref (val
, ctx
);
2807 x
= by_ref
? build_fold_addr_expr_loc (clause_loc
, var
) : var
;
2808 gimplify_assign (ref
, x
, ilist
);
2809 if (is_task_ctx (ctx
))
2810 DECL_ABSTRACT_ORIGIN (TREE_OPERAND (ref
, 1)) = NULL
;
2815 ref
= build_sender_ref (val
, ctx
);
2816 gimplify_assign (var
, ref
, olist
);
2821 /* Generate code to implement SHARED from the sender (aka parent)
2822 side. This is trickier, since GIMPLE_OMP_PARALLEL_CLAUSES doesn't
2823 list things that got automatically shared. */
2826 lower_send_shared_vars (gimple_seq
*ilist
, gimple_seq
*olist
, omp_context
*ctx
)
2828 tree var
, ovar
, nvar
, f
, x
, record_type
;
2830 if (ctx
->record_type
== NULL
)
2833 record_type
= ctx
->srecord_type
? ctx
->srecord_type
: ctx
->record_type
;
2834 for (f
= TYPE_FIELDS (record_type
); f
; f
= TREE_CHAIN (f
))
2836 ovar
= DECL_ABSTRACT_ORIGIN (f
);
2837 nvar
= maybe_lookup_decl (ovar
, ctx
);
2838 if (!nvar
|| !DECL_HAS_VALUE_EXPR_P (nvar
))
2841 /* If CTX is a nested parallel directive. Find the immediately
2842 enclosing parallel or workshare construct that contains a
2843 mapping for OVAR. */
2844 var
= lookup_decl_in_outer_ctx (ovar
, ctx
);
2846 if (use_pointer_for_field (ovar
, ctx
))
2848 x
= build_sender_ref (ovar
, ctx
);
2849 var
= build_fold_addr_expr (var
);
2850 gimplify_assign (x
, var
, ilist
);
2854 x
= build_sender_ref (ovar
, ctx
);
2855 gimplify_assign (x
, var
, ilist
);
2857 if (!TREE_READONLY (var
)
2858 /* We don't need to receive a new reference to a result
2859 or parm decl. In fact we may not store to it as we will
2860 invalidate any pending RSO and generate wrong gimple
2862 && !((TREE_CODE (var
) == RESULT_DECL
2863 || TREE_CODE (var
) == PARM_DECL
)
2864 && DECL_BY_REFERENCE (var
)))
2866 x
= build_sender_ref (ovar
, ctx
);
2867 gimplify_assign (var
, x
, olist
);
2874 /* A convenience function to build an empty GIMPLE_COND with just the
2878 gimple_build_cond_empty (tree cond
)
2880 enum tree_code pred_code
;
2883 gimple_cond_get_ops_from_tree (cond
, &pred_code
, &lhs
, &rhs
);
2884 return gimple_build_cond (pred_code
, lhs
, rhs
, NULL_TREE
, NULL_TREE
);
2888 /* Build the function calls to GOMP_parallel_start etc to actually
2889 generate the parallel operation. REGION is the parallel region
2890 being expanded. BB is the block where to insert the code. WS_ARGS
2891 will be set if this is a call to a combined parallel+workshare
2892 construct, it contains the list of additional arguments needed by
2893 the workshare construct. */
2896 expand_parallel_call (struct omp_region
*region
, basic_block bb
,
2897 gimple entry_stmt
, tree ws_args
)
2899 tree t
, t1
, t2
, val
, cond
, c
, clauses
;
2900 gimple_stmt_iterator gsi
;
2903 location_t clause_loc
;
2905 clauses
= gimple_omp_parallel_clauses (entry_stmt
);
2907 /* Determine what flavor of GOMP_parallel_start we will be
2909 start_ix
= BUILT_IN_GOMP_PARALLEL_START
;
2910 if (is_combined_parallel (region
))
2912 switch (region
->inner
->type
)
2914 case GIMPLE_OMP_FOR
:
2915 gcc_assert (region
->inner
->sched_kind
!= OMP_CLAUSE_SCHEDULE_AUTO
);
2916 start_ix
= BUILT_IN_GOMP_PARALLEL_LOOP_STATIC_START
2917 + (region
->inner
->sched_kind
2918 == OMP_CLAUSE_SCHEDULE_RUNTIME
2919 ? 3 : region
->inner
->sched_kind
);
2921 case GIMPLE_OMP_SECTIONS
:
2922 start_ix
= BUILT_IN_GOMP_PARALLEL_SECTIONS_START
;
2929 /* By default, the value of NUM_THREADS is zero (selected at run time)
2930 and there is no conditional. */
2932 val
= build_int_cst (unsigned_type_node
, 0);
2934 c
= find_omp_clause (clauses
, OMP_CLAUSE_IF
);
2936 cond
= OMP_CLAUSE_IF_EXPR (c
);
2938 c
= find_omp_clause (clauses
, OMP_CLAUSE_NUM_THREADS
);
2941 val
= OMP_CLAUSE_NUM_THREADS_EXPR (c
);
2942 clause_loc
= OMP_CLAUSE_LOCATION (c
);
2945 clause_loc
= gimple_location (entry_stmt
);
2947 /* Ensure 'val' is of the correct type. */
2948 val
= fold_convert_loc (clause_loc
, unsigned_type_node
, val
);
2950 /* If we found the clause 'if (cond)', build either
2951 (cond != 0) or (cond ? val : 1u). */
2954 gimple_stmt_iterator gsi
;
2956 cond
= gimple_boolify (cond
);
2958 if (integer_zerop (val
))
2959 val
= fold_build2_loc (clause_loc
,
2960 EQ_EXPR
, unsigned_type_node
, cond
,
2961 build_int_cst (TREE_TYPE (cond
), 0));
2964 basic_block cond_bb
, then_bb
, else_bb
;
2965 edge e
, e_then
, e_else
;
2966 tree tmp_then
, tmp_else
, tmp_join
, tmp_var
;
2968 tmp_var
= create_tmp_var (TREE_TYPE (val
), NULL
);
2969 if (gimple_in_ssa_p (cfun
))
2971 tmp_then
= make_ssa_name (tmp_var
, NULL
);
2972 tmp_else
= make_ssa_name (tmp_var
, NULL
);
2973 tmp_join
= make_ssa_name (tmp_var
, NULL
);
2982 e
= split_block (bb
, NULL
);
2987 then_bb
= create_empty_bb (cond_bb
);
2988 else_bb
= create_empty_bb (then_bb
);
2989 set_immediate_dominator (CDI_DOMINATORS
, then_bb
, cond_bb
);
2990 set_immediate_dominator (CDI_DOMINATORS
, else_bb
, cond_bb
);
2992 stmt
= gimple_build_cond_empty (cond
);
2993 gsi
= gsi_start_bb (cond_bb
);
2994 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
2996 gsi
= gsi_start_bb (then_bb
);
2997 stmt
= gimple_build_assign (tmp_then
, val
);
2998 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3000 gsi
= gsi_start_bb (else_bb
);
3001 stmt
= gimple_build_assign
3002 (tmp_else
, build_int_cst (unsigned_type_node
, 1));
3003 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3005 make_edge (cond_bb
, then_bb
, EDGE_TRUE_VALUE
);
3006 make_edge (cond_bb
, else_bb
, EDGE_FALSE_VALUE
);
3007 e_then
= make_edge (then_bb
, bb
, EDGE_FALLTHRU
);
3008 e_else
= make_edge (else_bb
, bb
, EDGE_FALLTHRU
);
3010 if (gimple_in_ssa_p (cfun
))
3012 gimple phi
= create_phi_node (tmp_join
, bb
);
3013 SSA_NAME_DEF_STMT (tmp_join
) = phi
;
3014 add_phi_arg (phi
, tmp_then
, e_then
, UNKNOWN_LOCATION
);
3015 add_phi_arg (phi
, tmp_else
, e_else
, UNKNOWN_LOCATION
);
3021 gsi
= gsi_start_bb (bb
);
3022 val
= force_gimple_operand_gsi (&gsi
, val
, true, NULL_TREE
,
3023 false, GSI_CONTINUE_LINKING
);
3026 gsi
= gsi_last_bb (bb
);
3027 t
= gimple_omp_parallel_data_arg (entry_stmt
);
3029 t1
= null_pointer_node
;
3031 t1
= build_fold_addr_expr (t
);
3032 t2
= build_fold_addr_expr (gimple_omp_parallel_child_fn (entry_stmt
));
3036 tree args
= tree_cons (NULL
, t2
,
3037 tree_cons (NULL
, t1
,
3038 tree_cons (NULL
, val
, ws_args
)));
3039 t
= build_function_call_expr (UNKNOWN_LOCATION
,
3040 built_in_decls
[start_ix
], args
);
3043 t
= build_call_expr (built_in_decls
[start_ix
], 3, t2
, t1
, val
);
3045 force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
3046 false, GSI_CONTINUE_LINKING
);
3048 t
= gimple_omp_parallel_data_arg (entry_stmt
);
3050 t
= null_pointer_node
;
3052 t
= build_fold_addr_expr (t
);
3053 t
= build_call_expr_loc (gimple_location (entry_stmt
),
3054 gimple_omp_parallel_child_fn (entry_stmt
), 1, t
);
3055 force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
3056 false, GSI_CONTINUE_LINKING
);
3058 t
= build_call_expr_loc (gimple_location (entry_stmt
),
3059 built_in_decls
[BUILT_IN_GOMP_PARALLEL_END
], 0);
3060 force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
3061 false, GSI_CONTINUE_LINKING
);
3065 /* Build the function call to GOMP_task to actually
3066 generate the task operation. BB is the block where to insert the code. */
3069 expand_task_call (basic_block bb
, gimple entry_stmt
)
3071 tree t
, t1
, t2
, t3
, flags
, cond
, c
, clauses
;
3072 gimple_stmt_iterator gsi
;
3073 location_t loc
= gimple_location (entry_stmt
);
3075 clauses
= gimple_omp_task_clauses (entry_stmt
);
3077 c
= find_omp_clause (clauses
, OMP_CLAUSE_IF
);
3079 cond
= gimple_boolify (OMP_CLAUSE_IF_EXPR (c
));
3081 cond
= boolean_true_node
;
3083 c
= find_omp_clause (clauses
, OMP_CLAUSE_UNTIED
);
3084 flags
= build_int_cst (unsigned_type_node
, (c
? 1 : 0));
3086 gsi
= gsi_last_bb (bb
);
3087 t
= gimple_omp_task_data_arg (entry_stmt
);
3089 t2
= null_pointer_node
;
3091 t2
= build_fold_addr_expr_loc (loc
, t
);
3092 t1
= build_fold_addr_expr_loc (loc
, gimple_omp_task_child_fn (entry_stmt
));
3093 t
= gimple_omp_task_copy_fn (entry_stmt
);
3095 t3
= null_pointer_node
;
3097 t3
= build_fold_addr_expr_loc (loc
, t
);
3099 t
= build_call_expr (built_in_decls
[BUILT_IN_GOMP_TASK
], 7, t1
, t2
, t3
,
3100 gimple_omp_task_arg_size (entry_stmt
),
3101 gimple_omp_task_arg_align (entry_stmt
), cond
, flags
);
3103 force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
3104 false, GSI_CONTINUE_LINKING
);
3108 /* If exceptions are enabled, wrap the statements in BODY in a MUST_NOT_THROW
3109 catch handler and return it. This prevents programs from violating the
3110 structured block semantics with throws. */
3113 maybe_catch_exception (gimple_seq body
)
3118 if (!flag_exceptions
)
3121 if (lang_protect_cleanup_actions
)
3122 decl
= lang_protect_cleanup_actions ();
3124 decl
= built_in_decls
[BUILT_IN_TRAP
];
3126 g
= gimple_build_eh_must_not_throw (decl
);
3127 g
= gimple_build_try (body
, gimple_seq_alloc_with_stmt (g
),
3130 return gimple_seq_alloc_with_stmt (g
);
3133 /* Chain all the DECLs in LIST by their TREE_CHAIN fields. */
3136 list2chain (tree list
)
3140 for (t
= list
; t
; t
= TREE_CHAIN (t
))
3142 tree var
= TREE_VALUE (t
);
3144 TREE_CHAIN (var
) = TREE_VALUE (TREE_CHAIN (t
));
3146 TREE_CHAIN (var
) = NULL_TREE
;
3149 return list
? TREE_VALUE (list
) : NULL_TREE
;
3153 /* Remove barriers in REGION->EXIT's block. Note that this is only
3154 valid for GIMPLE_OMP_PARALLEL regions. Since the end of a parallel region
3155 is an implicit barrier, any workshare inside the GIMPLE_OMP_PARALLEL that
3156 left a barrier at the end of the GIMPLE_OMP_PARALLEL region can now be
3160 remove_exit_barrier (struct omp_region
*region
)
3162 gimple_stmt_iterator gsi
;
3163 basic_block exit_bb
;
3167 int any_addressable_vars
= -1;
3169 exit_bb
= region
->exit
;
3171 /* If the parallel region doesn't return, we don't have REGION->EXIT
3176 /* The last insn in the block will be the parallel's GIMPLE_OMP_RETURN. The
3177 workshare's GIMPLE_OMP_RETURN will be in a preceding block. The kinds of
3178 statements that can appear in between are extremely limited -- no
3179 memory operations at all. Here, we allow nothing at all, so the
3180 only thing we allow to precede this GIMPLE_OMP_RETURN is a label. */
3181 gsi
= gsi_last_bb (exit_bb
);
3182 gcc_assert (gimple_code (gsi_stmt (gsi
)) == GIMPLE_OMP_RETURN
);
3184 if (!gsi_end_p (gsi
) && gimple_code (gsi_stmt (gsi
)) != GIMPLE_LABEL
)
3187 FOR_EACH_EDGE (e
, ei
, exit_bb
->preds
)
3189 gsi
= gsi_last_bb (e
->src
);
3190 if (gsi_end_p (gsi
))
3192 stmt
= gsi_stmt (gsi
);
3193 if (gimple_code (stmt
) == GIMPLE_OMP_RETURN
3194 && !gimple_omp_return_nowait_p (stmt
))
3196 /* OpenMP 3.0 tasks unfortunately prevent this optimization
3197 in many cases. If there could be tasks queued, the barrier
3198 might be needed to let the tasks run before some local
3199 variable of the parallel that the task uses as shared
3200 runs out of scope. The task can be spawned either
3201 from within current function (this would be easy to check)
3202 or from some function it calls and gets passed an address
3203 of such a variable. */
3204 if (any_addressable_vars
< 0)
3206 gimple parallel_stmt
= last_stmt (region
->entry
);
3207 tree child_fun
= gimple_omp_parallel_child_fn (parallel_stmt
);
3208 tree local_decls
= DECL_STRUCT_FUNCTION (child_fun
)->local_decls
;
3211 any_addressable_vars
= 0;
3212 for (; local_decls
; local_decls
= TREE_CHAIN (local_decls
))
3213 if (TREE_ADDRESSABLE (TREE_VALUE (local_decls
)))
3215 any_addressable_vars
= 1;
3218 for (block
= gimple_block (stmt
);
3219 !any_addressable_vars
3221 && TREE_CODE (block
) == BLOCK
;
3222 block
= BLOCK_SUPERCONTEXT (block
))
3224 for (local_decls
= BLOCK_VARS (block
);
3226 local_decls
= TREE_CHAIN (local_decls
))
3227 if (TREE_ADDRESSABLE (local_decls
))
3229 any_addressable_vars
= 1;
3232 if (block
== gimple_block (parallel_stmt
))
3236 if (!any_addressable_vars
)
3237 gimple_omp_return_set_nowait (stmt
);
3243 remove_exit_barriers (struct omp_region
*region
)
3245 if (region
->type
== GIMPLE_OMP_PARALLEL
)
3246 remove_exit_barrier (region
);
3250 region
= region
->inner
;
3251 remove_exit_barriers (region
);
3252 while (region
->next
)
3254 region
= region
->next
;
3255 remove_exit_barriers (region
);
3260 /* Optimize omp_get_thread_num () and omp_get_num_threads ()
3261 calls. These can't be declared as const functions, but
3262 within one parallel body they are constant, so they can be
3263 transformed there into __builtin_omp_get_{thread_num,num_threads} ()
3264 which are declared const. Similarly for task body, except
3265 that in untied task omp_get_thread_num () can change at any task
3266 scheduling point. */
3269 optimize_omp_library_calls (gimple entry_stmt
)
3272 gimple_stmt_iterator gsi
;
3274 = DECL_ASSEMBLER_NAME (built_in_decls
[BUILT_IN_OMP_GET_THREAD_NUM
]);
3276 = DECL_ASSEMBLER_NAME (built_in_decls
[BUILT_IN_OMP_GET_NUM_THREADS
]);
3277 bool untied_task
= (gimple_code (entry_stmt
) == GIMPLE_OMP_TASK
3278 && find_omp_clause (gimple_omp_task_clauses (entry_stmt
),
3279 OMP_CLAUSE_UNTIED
) != NULL
);
3282 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
3284 gimple call
= gsi_stmt (gsi
);
3287 if (is_gimple_call (call
)
3288 && (decl
= gimple_call_fndecl (call
))
3289 && DECL_EXTERNAL (decl
)
3290 && TREE_PUBLIC (decl
)
3291 && DECL_INITIAL (decl
) == NULL
)
3295 if (DECL_NAME (decl
) == thr_num_id
)
3297 /* In #pragma omp task untied omp_get_thread_num () can change
3298 during the execution of the task region. */
3301 built_in
= built_in_decls
[BUILT_IN_OMP_GET_THREAD_NUM
];
3303 else if (DECL_NAME (decl
) == num_thr_id
)
3304 built_in
= built_in_decls
[BUILT_IN_OMP_GET_NUM_THREADS
];
3308 if (DECL_ASSEMBLER_NAME (decl
) != DECL_ASSEMBLER_NAME (built_in
)
3309 || gimple_call_num_args (call
) != 0)
3312 if (flag_exceptions
&& !TREE_NOTHROW (decl
))
3315 if (TREE_CODE (TREE_TYPE (decl
)) != FUNCTION_TYPE
3316 || !types_compatible_p (TREE_TYPE (TREE_TYPE (decl
)),
3317 TREE_TYPE (TREE_TYPE (built_in
))))
3320 gimple_call_set_fndecl (call
, built_in
);
3325 /* Expand the OpenMP parallel or task directive starting at REGION. */
3328 expand_omp_taskreg (struct omp_region
*region
)
3330 basic_block entry_bb
, exit_bb
, new_bb
;
3331 struct function
*child_cfun
;
3332 tree child_fn
, block
, t
, ws_args
, *tp
;
3334 gimple_stmt_iterator gsi
;
3335 gimple entry_stmt
, stmt
;
3338 entry_stmt
= last_stmt (region
->entry
);
3339 child_fn
= gimple_omp_taskreg_child_fn (entry_stmt
);
3340 child_cfun
= DECL_STRUCT_FUNCTION (child_fn
);
3341 /* If this function has been already instrumented, make sure
3342 the child function isn't instrumented again. */
3343 child_cfun
->after_tree_profile
= cfun
->after_tree_profile
;
3345 entry_bb
= region
->entry
;
3346 exit_bb
= region
->exit
;
3348 if (is_combined_parallel (region
))
3349 ws_args
= region
->ws_args
;
3351 ws_args
= NULL_TREE
;
3353 if (child_cfun
->cfg
)
3355 /* Due to inlining, it may happen that we have already outlined
3356 the region, in which case all we need to do is make the
3357 sub-graph unreachable and emit the parallel call. */
3358 edge entry_succ_e
, exit_succ_e
;
3359 gimple_stmt_iterator gsi
;
3361 entry_succ_e
= single_succ_edge (entry_bb
);
3363 gsi
= gsi_last_bb (entry_bb
);
3364 gcc_assert (gimple_code (gsi_stmt (gsi
)) == GIMPLE_OMP_PARALLEL
3365 || gimple_code (gsi_stmt (gsi
)) == GIMPLE_OMP_TASK
);
3366 gsi_remove (&gsi
, true);
3371 exit_succ_e
= single_succ_edge (exit_bb
);
3372 make_edge (new_bb
, exit_succ_e
->dest
, EDGE_FALLTHRU
);
3374 remove_edge_and_dominated_blocks (entry_succ_e
);
3378 /* If the parallel region needs data sent from the parent
3379 function, then the very first statement (except possible
3380 tree profile counter updates) of the parallel body
3381 is a copy assignment .OMP_DATA_I = &.OMP_DATA_O. Since
3382 &.OMP_DATA_O is passed as an argument to the child function,
3383 we need to replace it with the argument as seen by the child
3386 In most cases, this will end up being the identity assignment
3387 .OMP_DATA_I = .OMP_DATA_I. However, if the parallel body had
3388 a function call that has been inlined, the original PARM_DECL
3389 .OMP_DATA_I may have been converted into a different local
3390 variable. In which case, we need to keep the assignment. */
3391 if (gimple_omp_taskreg_data_arg (entry_stmt
))
3393 basic_block entry_succ_bb
= single_succ (entry_bb
);
3394 gimple_stmt_iterator gsi
;
3396 gimple parcopy_stmt
= NULL
;
3398 for (gsi
= gsi_start_bb (entry_succ_bb
); ; gsi_next (&gsi
))
3402 gcc_assert (!gsi_end_p (gsi
));
3403 stmt
= gsi_stmt (gsi
);
3404 if (gimple_code (stmt
) != GIMPLE_ASSIGN
)
3407 if (gimple_num_ops (stmt
) == 2)
3409 tree arg
= gimple_assign_rhs1 (stmt
);
3411 /* We're ignore the subcode because we're
3412 effectively doing a STRIP_NOPS. */
3414 if (TREE_CODE (arg
) == ADDR_EXPR
3415 && TREE_OPERAND (arg
, 0)
3416 == gimple_omp_taskreg_data_arg (entry_stmt
))
3418 parcopy_stmt
= stmt
;
3424 gcc_assert (parcopy_stmt
!= NULL
);
3425 arg
= DECL_ARGUMENTS (child_fn
);
3427 if (!gimple_in_ssa_p (cfun
))
3429 if (gimple_assign_lhs (parcopy_stmt
) == arg
)
3430 gsi_remove (&gsi
, true);
3433 /* ?? Is setting the subcode really necessary ?? */
3434 gimple_omp_set_subcode (parcopy_stmt
, TREE_CODE (arg
));
3435 gimple_assign_set_rhs1 (parcopy_stmt
, arg
);
3440 /* If we are in ssa form, we must load the value from the default
3441 definition of the argument. That should not be defined now,
3442 since the argument is not used uninitialized. */
3443 gcc_assert (gimple_default_def (cfun
, arg
) == NULL
);
3444 narg
= make_ssa_name (arg
, gimple_build_nop ());
3445 set_default_def (arg
, narg
);
3446 /* ?? Is setting the subcode really necessary ?? */
3447 gimple_omp_set_subcode (parcopy_stmt
, TREE_CODE (narg
));
3448 gimple_assign_set_rhs1 (parcopy_stmt
, narg
);
3449 update_stmt (parcopy_stmt
);
3453 /* Declare local variables needed in CHILD_CFUN. */
3454 block
= DECL_INITIAL (child_fn
);
3455 BLOCK_VARS (block
) = list2chain (child_cfun
->local_decls
);
3456 /* The gimplifier could record temporaries in parallel/task block
3457 rather than in containing function's local_decls chain,
3458 which would mean cgraph missed finalizing them. Do it now. */
3459 for (t
= BLOCK_VARS (block
); t
; t
= TREE_CHAIN (t
))
3460 if (TREE_CODE (t
) == VAR_DECL
3462 && !DECL_EXTERNAL (t
))
3463 varpool_finalize_decl (t
);
3464 DECL_SAVED_TREE (child_fn
) = NULL
;
3465 gimple_set_body (child_fn
, bb_seq (single_succ (entry_bb
)));
3466 TREE_USED (block
) = 1;
3468 /* Reset DECL_CONTEXT on function arguments. */
3469 for (t
= DECL_ARGUMENTS (child_fn
); t
; t
= TREE_CHAIN (t
))
3470 DECL_CONTEXT (t
) = child_fn
;
3472 /* Split ENTRY_BB at GIMPLE_OMP_PARALLEL or GIMPLE_OMP_TASK,
3473 so that it can be moved to the child function. */
3474 gsi
= gsi_last_bb (entry_bb
);
3475 stmt
= gsi_stmt (gsi
);
3476 gcc_assert (stmt
&& (gimple_code (stmt
) == GIMPLE_OMP_PARALLEL
3477 || gimple_code (stmt
) == GIMPLE_OMP_TASK
));
3478 gsi_remove (&gsi
, true);
3479 e
= split_block (entry_bb
, stmt
);
3481 single_succ_edge (entry_bb
)->flags
= EDGE_FALLTHRU
;
3483 /* Convert GIMPLE_OMP_RETURN into a RETURN_EXPR. */
3486 gsi
= gsi_last_bb (exit_bb
);
3487 gcc_assert (!gsi_end_p (gsi
)
3488 && gimple_code (gsi_stmt (gsi
)) == GIMPLE_OMP_RETURN
);
3489 stmt
= gimple_build_return (NULL
);
3490 gsi_insert_after (&gsi
, stmt
, GSI_SAME_STMT
);
3491 gsi_remove (&gsi
, true);
3494 /* Move the parallel region into CHILD_CFUN. */
3496 if (gimple_in_ssa_p (cfun
))
3498 push_cfun (child_cfun
);
3499 init_tree_ssa (child_cfun
);
3500 init_ssa_operands ();
3501 cfun
->gimple_df
->in_ssa_p
= true;
3506 block
= gimple_block (entry_stmt
);
3508 new_bb
= move_sese_region_to_fn (child_cfun
, entry_bb
, exit_bb
, block
);
3510 single_succ_edge (new_bb
)->flags
= EDGE_FALLTHRU
;
3512 /* Remove non-local VAR_DECLs from child_cfun->local_decls list. */
3513 for (tp
= &child_cfun
->local_decls
; *tp
; )
3514 if (DECL_CONTEXT (TREE_VALUE (*tp
)) != cfun
->decl
)
3515 tp
= &TREE_CHAIN (*tp
);
3517 *tp
= TREE_CHAIN (*tp
);
3519 /* Inform the callgraph about the new function. */
3520 DECL_STRUCT_FUNCTION (child_fn
)->curr_properties
3521 = cfun
->curr_properties
;
3522 cgraph_add_new_function (child_fn
, true);
3524 /* Fix the callgraph edges for child_cfun. Those for cfun will be
3525 fixed in a following pass. */
3526 push_cfun (child_cfun
);
3527 save_current
= current_function_decl
;
3528 current_function_decl
= child_fn
;
3530 optimize_omp_library_calls (entry_stmt
);
3531 rebuild_cgraph_edges ();
3533 /* Some EH regions might become dead, see PR34608. If
3534 pass_cleanup_cfg isn't the first pass to happen with the
3535 new child, these dead EH edges might cause problems.
3536 Clean them up now. */
3537 if (flag_exceptions
)
3540 bool changed
= false;
3543 changed
|= gimple_purge_dead_eh_edges (bb
);
3545 cleanup_tree_cfg ();
3547 if (gimple_in_ssa_p (cfun
))
3548 update_ssa (TODO_update_ssa
);
3549 current_function_decl
= save_current
;
3553 /* Emit a library call to launch the children threads. */
3554 if (gimple_code (entry_stmt
) == GIMPLE_OMP_PARALLEL
)
3555 expand_parallel_call (region
, new_bb
, entry_stmt
, ws_args
);
3557 expand_task_call (new_bb
, entry_stmt
);
3558 update_ssa (TODO_update_ssa_only_virtuals
);
3562 /* A subroutine of expand_omp_for. Generate code for a parallel
3563 loop with any schedule. Given parameters:
3565 for (V = N1; V cond N2; V += STEP) BODY;
3567 where COND is "<" or ">", we generate pseudocode
3569 more = GOMP_loop_foo_start (N1, N2, STEP, CHUNK, &istart0, &iend0);
3570 if (more) goto L0; else goto L3;
3577 if (V cond iend) goto L1; else goto L2;
3579 if (GOMP_loop_foo_next (&istart0, &iend0)) goto L0; else goto L3;
3582 If this is a combined omp parallel loop, instead of the call to
3583 GOMP_loop_foo_start, we call GOMP_loop_foo_next.
3585 For collapsed loops, given parameters:
3587 for (V1 = N11; V1 cond1 N12; V1 += STEP1)
3588 for (V2 = N21; V2 cond2 N22; V2 += STEP2)
3589 for (V3 = N31; V3 cond3 N32; V3 += STEP3)
3592 we generate pseudocode
3598 count3 = (adj + N32 - N31) / STEP3;
3603 count2 = (adj + N22 - N21) / STEP2;
3608 count1 = (adj + N12 - N11) / STEP1;
3609 count = count1 * count2 * count3;
3610 more = GOMP_loop_foo_start (0, count, 1, CHUNK, &istart0, &iend0);
3611 if (more) goto L0; else goto L3;
3615 V3 = N31 + (T % count3) * STEP3;
3617 V2 = N21 + (T % count2) * STEP2;
3619 V1 = N11 + T * STEP1;
3624 if (V < iend) goto L10; else goto L2;
3627 if (V3 cond3 N32) goto L1; else goto L11;
3631 if (V2 cond2 N22) goto L1; else goto L12;
3637 if (GOMP_loop_foo_next (&istart0, &iend0)) goto L0; else goto L3;
3643 expand_omp_for_generic (struct omp_region
*region
,
3644 struct omp_for_data
*fd
,
3645 enum built_in_function start_fn
,
3646 enum built_in_function next_fn
)
3648 tree type
, istart0
, iend0
, iend
;
3649 tree t
, vmain
, vback
, bias
= NULL_TREE
;
3650 basic_block entry_bb
, cont_bb
, exit_bb
, l0_bb
, l1_bb
, collapse_bb
;
3651 basic_block l2_bb
= NULL
, l3_bb
= NULL
;
3652 gimple_stmt_iterator gsi
;
3654 bool in_combined_parallel
= is_combined_parallel (region
);
3655 bool broken_loop
= region
->cont
== NULL
;
3657 tree
*counts
= NULL
;
3660 gcc_assert (!broken_loop
|| !in_combined_parallel
);
3661 gcc_assert (fd
->iter_type
== long_integer_type_node
3662 || !in_combined_parallel
);
3664 type
= TREE_TYPE (fd
->loop
.v
);
3665 istart0
= create_tmp_var (fd
->iter_type
, ".istart0");
3666 iend0
= create_tmp_var (fd
->iter_type
, ".iend0");
3667 TREE_ADDRESSABLE (istart0
) = 1;
3668 TREE_ADDRESSABLE (iend0
) = 1;
3669 if (gimple_in_ssa_p (cfun
))
3671 add_referenced_var (istart0
);
3672 add_referenced_var (iend0
);
3675 /* See if we need to bias by LLONG_MIN. */
3676 if (fd
->iter_type
== long_long_unsigned_type_node
3677 && TREE_CODE (type
) == INTEGER_TYPE
3678 && !TYPE_UNSIGNED (type
))
3682 if (fd
->loop
.cond_code
== LT_EXPR
)
3685 n2
= fold_build2 (PLUS_EXPR
, type
, fd
->loop
.n2
, fd
->loop
.step
);
3689 n1
= fold_build2 (MINUS_EXPR
, type
, fd
->loop
.n2
, fd
->loop
.step
);
3692 if (TREE_CODE (n1
) != INTEGER_CST
3693 || TREE_CODE (n2
) != INTEGER_CST
3694 || ((tree_int_cst_sgn (n1
) < 0) ^ (tree_int_cst_sgn (n2
) < 0)))
3695 bias
= fold_convert (fd
->iter_type
, TYPE_MIN_VALUE (type
));
3698 entry_bb
= region
->entry
;
3699 cont_bb
= region
->cont
;
3701 gcc_assert (EDGE_COUNT (entry_bb
->succs
) == 2);
3702 gcc_assert (broken_loop
3703 || BRANCH_EDGE (entry_bb
)->dest
== FALLTHRU_EDGE (cont_bb
)->dest
);
3704 l0_bb
= split_edge (FALLTHRU_EDGE (entry_bb
));
3705 l1_bb
= single_succ (l0_bb
);
3708 l2_bb
= create_empty_bb (cont_bb
);
3709 gcc_assert (BRANCH_EDGE (cont_bb
)->dest
== l1_bb
);
3710 gcc_assert (EDGE_COUNT (cont_bb
->succs
) == 2);
3714 l3_bb
= BRANCH_EDGE (entry_bb
)->dest
;
3715 exit_bb
= region
->exit
;
3717 gsi
= gsi_last_bb (entry_bb
);
3719 gcc_assert (gimple_code (gsi_stmt (gsi
)) == GIMPLE_OMP_FOR
);
3720 if (fd
->collapse
> 1)
3722 /* collapsed loops need work for expansion in SSA form. */
3723 gcc_assert (!gimple_in_ssa_p (cfun
));
3724 counts
= (tree
*) alloca (fd
->collapse
* sizeof (tree
));
3725 for (i
= 0; i
< fd
->collapse
; i
++)
3727 tree itype
= TREE_TYPE (fd
->loops
[i
].v
);
3729 if (POINTER_TYPE_P (itype
))
3730 itype
= lang_hooks
.types
.type_for_size (TYPE_PRECISION (itype
), 0);
3731 t
= build_int_cst (itype
, (fd
->loops
[i
].cond_code
== LT_EXPR
3733 t
= fold_build2 (PLUS_EXPR
, itype
,
3734 fold_convert (itype
, fd
->loops
[i
].step
), t
);
3735 t
= fold_build2 (PLUS_EXPR
, itype
, t
,
3736 fold_convert (itype
, fd
->loops
[i
].n2
));
3737 t
= fold_build2 (MINUS_EXPR
, itype
, t
,
3738 fold_convert (itype
, fd
->loops
[i
].n1
));
3739 if (TYPE_UNSIGNED (itype
) && fd
->loops
[i
].cond_code
== GT_EXPR
)
3740 t
= fold_build2 (TRUNC_DIV_EXPR
, itype
,
3741 fold_build1 (NEGATE_EXPR
, itype
, t
),
3742 fold_build1 (NEGATE_EXPR
, itype
,
3743 fold_convert (itype
,
3744 fd
->loops
[i
].step
)));
3746 t
= fold_build2 (TRUNC_DIV_EXPR
, itype
, t
,
3747 fold_convert (itype
, fd
->loops
[i
].step
));
3748 t
= fold_convert (type
, t
);
3749 if (TREE_CODE (t
) == INTEGER_CST
)
3753 counts
[i
] = create_tmp_var (type
, ".count");
3754 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
3755 true, GSI_SAME_STMT
);
3756 stmt
= gimple_build_assign (counts
[i
], t
);
3757 gsi_insert_before (&gsi
, stmt
, GSI_SAME_STMT
);
3759 if (SSA_VAR_P (fd
->loop
.n2
))
3765 t
= fold_build2 (MULT_EXPR
, type
, fd
->loop
.n2
, counts
[i
]);
3766 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
3767 true, GSI_SAME_STMT
);
3769 stmt
= gimple_build_assign (fd
->loop
.n2
, t
);
3770 gsi_insert_before (&gsi
, stmt
, GSI_SAME_STMT
);
3774 if (in_combined_parallel
)
3776 /* In a combined parallel loop, emit a call to
3777 GOMP_loop_foo_next. */
3778 t
= build_call_expr (built_in_decls
[next_fn
], 2,
3779 build_fold_addr_expr (istart0
),
3780 build_fold_addr_expr (iend0
));
3784 tree t0
, t1
, t2
, t3
, t4
;
3785 /* If this is not a combined parallel loop, emit a call to
3786 GOMP_loop_foo_start in ENTRY_BB. */
3787 t4
= build_fold_addr_expr (iend0
);
3788 t3
= build_fold_addr_expr (istart0
);
3789 t2
= fold_convert (fd
->iter_type
, fd
->loop
.step
);
3790 if (POINTER_TYPE_P (type
)
3791 && TYPE_PRECISION (type
) != TYPE_PRECISION (fd
->iter_type
))
3793 /* Avoid casting pointers to integer of a different size. */
3795 = lang_hooks
.types
.type_for_size (TYPE_PRECISION (type
), 0);
3796 t1
= fold_convert (fd
->iter_type
, fold_convert (itype
, fd
->loop
.n2
));
3797 t0
= fold_convert (fd
->iter_type
, fold_convert (itype
, fd
->loop
.n1
));
3801 t1
= fold_convert (fd
->iter_type
, fd
->loop
.n2
);
3802 t0
= fold_convert (fd
->iter_type
, fd
->loop
.n1
);
3806 t1
= fold_build2 (PLUS_EXPR
, fd
->iter_type
, t1
, bias
);
3807 t0
= fold_build2 (PLUS_EXPR
, fd
->iter_type
, t0
, bias
);
3809 if (fd
->iter_type
== long_integer_type_node
)
3813 t
= fold_convert (fd
->iter_type
, fd
->chunk_size
);
3814 t
= build_call_expr (built_in_decls
[start_fn
], 6,
3815 t0
, t1
, t2
, t
, t3
, t4
);
3818 t
= build_call_expr (built_in_decls
[start_fn
], 5,
3819 t0
, t1
, t2
, t3
, t4
);
3826 /* The GOMP_loop_ull_*start functions have additional boolean
3827 argument, true for < loops and false for > loops.
3828 In Fortran, the C bool type can be different from
3829 boolean_type_node. */
3830 c_bool_type
= TREE_TYPE (TREE_TYPE (built_in_decls
[start_fn
]));
3831 t5
= build_int_cst (c_bool_type
,
3832 fd
->loop
.cond_code
== LT_EXPR
? 1 : 0);
3835 t
= fold_convert (fd
->iter_type
, fd
->chunk_size
);
3836 t
= build_call_expr (built_in_decls
[start_fn
], 7,
3837 t5
, t0
, t1
, t2
, t
, t3
, t4
);
3840 t
= build_call_expr (built_in_decls
[start_fn
], 6,
3841 t5
, t0
, t1
, t2
, t3
, t4
);
3844 if (TREE_TYPE (t
) != boolean_type_node
)
3845 t
= fold_build2 (NE_EXPR
, boolean_type_node
,
3846 t
, build_int_cst (TREE_TYPE (t
), 0));
3847 t
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
3848 true, GSI_SAME_STMT
);
3849 gsi_insert_after (&gsi
, gimple_build_cond_empty (t
), GSI_SAME_STMT
);
3851 /* Remove the GIMPLE_OMP_FOR statement. */
3852 gsi_remove (&gsi
, true);
3854 /* Iteration setup for sequential loop goes in L0_BB. */
3855 gsi
= gsi_start_bb (l0_bb
);
3858 t
= fold_build2 (MINUS_EXPR
, fd
->iter_type
, t
, bias
);
3859 if (POINTER_TYPE_P (type
))
3860 t
= fold_convert (lang_hooks
.types
.type_for_size (TYPE_PRECISION (type
),
3862 t
= fold_convert (type
, t
);
3863 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
3864 false, GSI_CONTINUE_LINKING
);
3865 stmt
= gimple_build_assign (fd
->loop
.v
, t
);
3866 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3870 t
= fold_build2 (MINUS_EXPR
, fd
->iter_type
, t
, bias
);
3871 if (POINTER_TYPE_P (type
))
3872 t
= fold_convert (lang_hooks
.types
.type_for_size (TYPE_PRECISION (type
),
3874 t
= fold_convert (type
, t
);
3875 iend
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
3876 false, GSI_CONTINUE_LINKING
);
3877 if (fd
->collapse
> 1)
3879 tree tem
= create_tmp_var (type
, ".tem");
3881 stmt
= gimple_build_assign (tem
, fd
->loop
.v
);
3882 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3883 for (i
= fd
->collapse
- 1; i
>= 0; i
--)
3885 tree vtype
= TREE_TYPE (fd
->loops
[i
].v
), itype
;
3887 if (POINTER_TYPE_P (vtype
))
3888 itype
= lang_hooks
.types
.type_for_size (TYPE_PRECISION (vtype
), 0);
3889 t
= fold_build2 (TRUNC_MOD_EXPR
, type
, tem
, counts
[i
]);
3890 t
= fold_convert (itype
, t
);
3891 t
= fold_build2 (MULT_EXPR
, itype
, t
,
3892 fold_convert (itype
, fd
->loops
[i
].step
));
3893 if (POINTER_TYPE_P (vtype
))
3894 t
= fold_build2 (POINTER_PLUS_EXPR
, vtype
,
3895 fd
->loops
[i
].n1
, fold_convert (sizetype
, t
));
3897 t
= fold_build2 (PLUS_EXPR
, itype
, fd
->loops
[i
].n1
, t
);
3898 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
3899 false, GSI_CONTINUE_LINKING
);
3900 stmt
= gimple_build_assign (fd
->loops
[i
].v
, t
);
3901 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3904 t
= fold_build2 (TRUNC_DIV_EXPR
, type
, tem
, counts
[i
]);
3905 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
3906 false, GSI_CONTINUE_LINKING
);
3907 stmt
= gimple_build_assign (tem
, t
);
3908 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3915 /* Code to control the increment and predicate for the sequential
3916 loop goes in the CONT_BB. */
3917 gsi
= gsi_last_bb (cont_bb
);
3918 stmt
= gsi_stmt (gsi
);
3919 gcc_assert (gimple_code (stmt
) == GIMPLE_OMP_CONTINUE
);
3920 vmain
= gimple_omp_continue_control_use (stmt
);
3921 vback
= gimple_omp_continue_control_def (stmt
);
3923 if (POINTER_TYPE_P (type
))
3924 t
= fold_build2 (POINTER_PLUS_EXPR
, type
, vmain
,
3925 fold_convert (sizetype
, fd
->loop
.step
));
3927 t
= fold_build2 (PLUS_EXPR
, type
, vmain
, fd
->loop
.step
);
3928 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
3929 true, GSI_SAME_STMT
);
3930 stmt
= gimple_build_assign (vback
, t
);
3931 gsi_insert_before (&gsi
, stmt
, GSI_SAME_STMT
);
3933 t
= build2 (fd
->loop
.cond_code
, boolean_type_node
, vback
, iend
);
3934 stmt
= gimple_build_cond_empty (t
);
3935 gsi_insert_before (&gsi
, stmt
, GSI_SAME_STMT
);
3937 /* Remove GIMPLE_OMP_CONTINUE. */
3938 gsi_remove (&gsi
, true);
3940 if (fd
->collapse
> 1)
3942 basic_block last_bb
, bb
;
3945 for (i
= fd
->collapse
- 1; i
>= 0; i
--)
3947 tree vtype
= TREE_TYPE (fd
->loops
[i
].v
);
3949 bb
= create_empty_bb (last_bb
);
3950 gsi
= gsi_start_bb (bb
);
3952 if (i
< fd
->collapse
- 1)
3954 e
= make_edge (last_bb
, bb
, EDGE_FALSE_VALUE
);
3955 e
->probability
= REG_BR_PROB_BASE
/ 8;
3957 t
= fd
->loops
[i
+ 1].n1
;
3958 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
3959 false, GSI_CONTINUE_LINKING
);
3960 stmt
= gimple_build_assign (fd
->loops
[i
+ 1].v
, t
);
3961 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3966 set_immediate_dominator (CDI_DOMINATORS
, bb
, last_bb
);
3968 if (POINTER_TYPE_P (vtype
))
3969 t
= fold_build2 (POINTER_PLUS_EXPR
, vtype
,
3971 fold_convert (sizetype
, fd
->loops
[i
].step
));
3973 t
= fold_build2 (PLUS_EXPR
, vtype
, fd
->loops
[i
].v
,
3975 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
3976 false, GSI_CONTINUE_LINKING
);
3977 stmt
= gimple_build_assign (fd
->loops
[i
].v
, t
);
3978 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3982 t
= fd
->loops
[i
].n2
;
3983 t
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
3984 false, GSI_CONTINUE_LINKING
);
3985 t
= fold_build2 (fd
->loops
[i
].cond_code
, boolean_type_node
,
3987 stmt
= gimple_build_cond_empty (t
);
3988 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
3989 e
= make_edge (bb
, l1_bb
, EDGE_TRUE_VALUE
);
3990 e
->probability
= REG_BR_PROB_BASE
* 7 / 8;
3993 make_edge (bb
, l1_bb
, EDGE_FALLTHRU
);
3998 /* Emit code to get the next parallel iteration in L2_BB. */
3999 gsi
= gsi_start_bb (l2_bb
);
4001 t
= build_call_expr (built_in_decls
[next_fn
], 2,
4002 build_fold_addr_expr (istart0
),
4003 build_fold_addr_expr (iend0
));
4004 t
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
4005 false, GSI_CONTINUE_LINKING
);
4006 if (TREE_TYPE (t
) != boolean_type_node
)
4007 t
= fold_build2 (NE_EXPR
, boolean_type_node
,
4008 t
, build_int_cst (TREE_TYPE (t
), 0));
4009 stmt
= gimple_build_cond_empty (t
);
4010 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
4013 /* Add the loop cleanup function. */
4014 gsi
= gsi_last_bb (exit_bb
);
4015 if (gimple_omp_return_nowait_p (gsi_stmt (gsi
)))
4016 t
= built_in_decls
[BUILT_IN_GOMP_LOOP_END_NOWAIT
];
4018 t
= built_in_decls
[BUILT_IN_GOMP_LOOP_END
];
4019 stmt
= gimple_build_call (t
, 0);
4020 gsi_insert_after (&gsi
, stmt
, GSI_SAME_STMT
);
4021 gsi_remove (&gsi
, true);
4023 /* Connect the new blocks. */
4024 find_edge (entry_bb
, l0_bb
)->flags
= EDGE_TRUE_VALUE
;
4025 find_edge (entry_bb
, l3_bb
)->flags
= EDGE_FALSE_VALUE
;
4031 e
= find_edge (cont_bb
, l3_bb
);
4032 ne
= make_edge (l2_bb
, l3_bb
, EDGE_FALSE_VALUE
);
4034 phis
= phi_nodes (l3_bb
);
4035 for (gsi
= gsi_start (phis
); !gsi_end_p (gsi
); gsi_next (&gsi
))
4037 gimple phi
= gsi_stmt (gsi
);
4038 SET_USE (PHI_ARG_DEF_PTR_FROM_EDGE (phi
, ne
),
4039 PHI_ARG_DEF_FROM_EDGE (phi
, e
));
4043 make_edge (cont_bb
, l2_bb
, EDGE_FALSE_VALUE
);
4044 if (fd
->collapse
> 1)
4046 e
= find_edge (cont_bb
, l1_bb
);
4048 e
= make_edge (cont_bb
, collapse_bb
, EDGE_TRUE_VALUE
);
4052 e
= find_edge (cont_bb
, l1_bb
);
4053 e
->flags
= EDGE_TRUE_VALUE
;
4055 e
->probability
= REG_BR_PROB_BASE
* 7 / 8;
4056 find_edge (cont_bb
, l2_bb
)->probability
= REG_BR_PROB_BASE
/ 8;
4057 make_edge (l2_bb
, l0_bb
, EDGE_TRUE_VALUE
);
4059 set_immediate_dominator (CDI_DOMINATORS
, l2_bb
,
4060 recompute_dominator (CDI_DOMINATORS
, l2_bb
));
4061 set_immediate_dominator (CDI_DOMINATORS
, l3_bb
,
4062 recompute_dominator (CDI_DOMINATORS
, l3_bb
));
4063 set_immediate_dominator (CDI_DOMINATORS
, l0_bb
,
4064 recompute_dominator (CDI_DOMINATORS
, l0_bb
));
4065 set_immediate_dominator (CDI_DOMINATORS
, l1_bb
,
4066 recompute_dominator (CDI_DOMINATORS
, l1_bb
));
4071 /* A subroutine of expand_omp_for. Generate code for a parallel
4072 loop with static schedule and no specified chunk size. Given
4075 for (V = N1; V cond N2; V += STEP) BODY;
4077 where COND is "<" or ">", we generate pseudocode
4083 if ((__typeof (V)) -1 > 0 && cond is >)
4084 n = -(adj + N2 - N1) / -STEP;
4086 n = (adj + N2 - N1) / STEP;
4088 q += (q * nthreads != n);
4090 e0 = min(s0 + q, n);
4092 if (s0 >= e0) goto L2; else goto L0;
4098 if (V cond e) goto L1;
4103 expand_omp_for_static_nochunk (struct omp_region
*region
,
4104 struct omp_for_data
*fd
)
4106 tree n
, q
, s0
, e0
, e
, t
, nthreads
, threadid
;
4107 tree type
, itype
, vmain
, vback
;
4108 basic_block entry_bb
, exit_bb
, seq_start_bb
, body_bb
, cont_bb
;
4110 gimple_stmt_iterator gsi
;
4113 itype
= type
= TREE_TYPE (fd
->loop
.v
);
4114 if (POINTER_TYPE_P (type
))
4115 itype
= lang_hooks
.types
.type_for_size (TYPE_PRECISION (type
), 0);
4117 entry_bb
= region
->entry
;
4118 cont_bb
= region
->cont
;
4119 gcc_assert (EDGE_COUNT (entry_bb
->succs
) == 2);
4120 gcc_assert (BRANCH_EDGE (entry_bb
)->dest
== FALLTHRU_EDGE (cont_bb
)->dest
);
4121 seq_start_bb
= split_edge (FALLTHRU_EDGE (entry_bb
));
4122 body_bb
= single_succ (seq_start_bb
);
4123 gcc_assert (BRANCH_EDGE (cont_bb
)->dest
== body_bb
);
4124 gcc_assert (EDGE_COUNT (cont_bb
->succs
) == 2);
4125 fin_bb
= FALLTHRU_EDGE (cont_bb
)->dest
;
4126 exit_bb
= region
->exit
;
4128 /* Iteration space partitioning goes in ENTRY_BB. */
4129 gsi
= gsi_last_bb (entry_bb
);
4130 gcc_assert (gimple_code (gsi_stmt (gsi
)) == GIMPLE_OMP_FOR
);
4132 t
= build_call_expr (built_in_decls
[BUILT_IN_OMP_GET_NUM_THREADS
], 0);
4133 t
= fold_convert (itype
, t
);
4134 nthreads
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
4135 true, GSI_SAME_STMT
);
4137 t
= build_call_expr (built_in_decls
[BUILT_IN_OMP_GET_THREAD_NUM
], 0);
4138 t
= fold_convert (itype
, t
);
4139 threadid
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
4140 true, GSI_SAME_STMT
);
4143 = force_gimple_operand_gsi (&gsi
, fold_convert (type
, fd
->loop
.n1
),
4144 true, NULL_TREE
, true, GSI_SAME_STMT
);
4146 = force_gimple_operand_gsi (&gsi
, fold_convert (itype
, fd
->loop
.n2
),
4147 true, NULL_TREE
, true, GSI_SAME_STMT
);
4149 = force_gimple_operand_gsi (&gsi
, fold_convert (itype
, fd
->loop
.step
),
4150 true, NULL_TREE
, true, GSI_SAME_STMT
);
4152 t
= build_int_cst (itype
, (fd
->loop
.cond_code
== LT_EXPR
? -1 : 1));
4153 t
= fold_build2 (PLUS_EXPR
, itype
, fd
->loop
.step
, t
);
4154 t
= fold_build2 (PLUS_EXPR
, itype
, t
, fd
->loop
.n2
);
4155 t
= fold_build2 (MINUS_EXPR
, itype
, t
, fold_convert (itype
, fd
->loop
.n1
));
4156 if (TYPE_UNSIGNED (itype
) && fd
->loop
.cond_code
== GT_EXPR
)
4157 t
= fold_build2 (TRUNC_DIV_EXPR
, itype
,
4158 fold_build1 (NEGATE_EXPR
, itype
, t
),
4159 fold_build1 (NEGATE_EXPR
, itype
, fd
->loop
.step
));
4161 t
= fold_build2 (TRUNC_DIV_EXPR
, itype
, t
, fd
->loop
.step
);
4162 t
= fold_convert (itype
, t
);
4163 n
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
, true, GSI_SAME_STMT
);
4165 t
= fold_build2 (TRUNC_DIV_EXPR
, itype
, n
, nthreads
);
4166 q
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
, true, GSI_SAME_STMT
);
4168 t
= fold_build2 (MULT_EXPR
, itype
, q
, nthreads
);
4169 t
= fold_build2 (NE_EXPR
, itype
, t
, n
);
4170 t
= fold_build2 (PLUS_EXPR
, itype
, q
, t
);
4171 q
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
, true, GSI_SAME_STMT
);
4173 t
= build2 (MULT_EXPR
, itype
, q
, threadid
);
4174 s0
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
, true, GSI_SAME_STMT
);
4176 t
= fold_build2 (PLUS_EXPR
, itype
, s0
, q
);
4177 t
= fold_build2 (MIN_EXPR
, itype
, t
, n
);
4178 e0
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
, true, GSI_SAME_STMT
);
4180 t
= build2 (GE_EXPR
, boolean_type_node
, s0
, e0
);
4181 gsi_insert_before (&gsi
, gimple_build_cond_empty (t
), GSI_SAME_STMT
);
4183 /* Remove the GIMPLE_OMP_FOR statement. */
4184 gsi_remove (&gsi
, true);
4186 /* Setup code for sequential iteration goes in SEQ_START_BB. */
4187 gsi
= gsi_start_bb (seq_start_bb
);
4189 t
= fold_convert (itype
, s0
);
4190 t
= fold_build2 (MULT_EXPR
, itype
, t
, fd
->loop
.step
);
4191 if (POINTER_TYPE_P (type
))
4192 t
= fold_build2 (POINTER_PLUS_EXPR
, type
, fd
->loop
.n1
,
4193 fold_convert (sizetype
, t
));
4195 t
= fold_build2 (PLUS_EXPR
, type
, t
, fd
->loop
.n1
);
4196 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
4197 false, GSI_CONTINUE_LINKING
);
4198 stmt
= gimple_build_assign (fd
->loop
.v
, t
);
4199 gsi_insert_after (&gsi
, stmt
, GSI_CONTINUE_LINKING
);
4201 t
= fold_convert (itype
, e0
);
4202 t
= fold_build2 (MULT_EXPR
, itype
, t
, fd
->loop
.step
);
4203 if (POINTER_TYPE_P (type
))
4204 t
= fold_build2 (POINTER_PLUS_EXPR
, type
, fd
->loop
.n1
,
4205 fold_convert (sizetype
, t
));
4207 t
= fold_build2 (PLUS_EXPR
, type
, t
, fd
->loop
.n1
);
4208 e
= force_gimple_operand_gsi (&gsi
, t
, true, NULL_TREE
,
4209 false, GSI_CONTINUE_LINKING
);
4211 /* The code controlling the sequential loop replaces the
4212 GIMPLE_OMP_CONTINUE. */
4213 gsi
= gsi_last_bb (cont_bb
);
4214 stmt
= gsi_stmt (gsi
);
4215 gcc_assert (gimple_code (stmt
) == GIMPLE_OMP_CONTINUE
);
4216 vmain
= gimple_omp_continue_control_use (stmt
);
4217 vback
= gimple_omp_continue_control_def (stmt
);
4219 if (POINTER_TYPE_P (type
))
4220 t
= fold_build2 (POINTER_PLUS_EXPR
, type
, vmain
,
4221 fold_convert (sizetype
, fd
->loop
.step
));
4223 t
= fold_build2 (PLUS_EXPR
, type
, vmain
, fd
->loop
.step
);
4224 t
= force_gimple_operand_gsi (&gsi
, t
, false, NULL_TREE
,
4225 true, GSI_SAME_STMT
);
4226 stmt
= gimple_build_assign (vback
, t
);
4227 gsi_insert_before (&gsi
, stmt
, GSI_SAME_STMT
);
4229 t
= build2 (fd
->loop
.cond_code
, boolean_type_node
, vback
, e
);
4230 gsi_insert_before (&gsi
, gimple_build_cond_empty (t
), GSI_SAME_STMT
);
4232 /* Remove the GIMPLE_OMP_CONTINUE statement. */
4233 gsi_remove (&gsi
, true);
4235 /* Replace the GIMPLE_OMP_RETURN with a barrier, or nothing. */
4236 gsi
= gsi_last_bb (exit_bb
);
4237 if (!gimple_omp_return_nowait_p (gsi_stmt (gsi
)))
4238 force_gimple_operand_gsi (&gsi
, build_omp_barrier (), false, NULL_TREE
,
4239 false, GSI_SAME_STMT
);
4240 gsi_remove (&gsi
, true);
4242 /* Connect all the blocks. */
4243 find_edge (entry_bb
, seq_start_bb
)->flags
= EDGE_FALSE_VALUE
;
4244 find_edge (entry_bb
, fin_bb
)->flags
= EDGE_TRUE_VALUE
;
4246 find_edge (cont_bb
, body_bb
)->flags
= EDGE_TRUE_VALUE
;
4247 find_edge (cont_bb
, fin_bb
)->flags
= EDGE_FALSE_VALUE
;
4249 set_immediate_dominator (CDI_DOMINATORS
, seq_start_bb
, entry_bb
);
4250 set_immediate_dominator (CDI_DOMINATORS
, body_bb
,
4251 recompute_dominator (CDI_DOMINATORS
, body_bb
));
4252 set_immediate_dominator (CDI_DOMINATORS
, fin_bb
,
4253 recompute_dominator (CDI_DOMINATORS
, fin_bb
));
4257 /* A subroutine of expand_omp_for. Generate code for a parallel
4258 loop with static schedule and a specified chunk size. Given
4261 for (V = N1; V cond N2; V += STEP) BODY;
4263 where COND is "<" or ">", we generate pseudocode
4269 if ((__typeof (V)) -1 > 0 && cond is >)
4270 n = -(adj + N2 - N1) / -STEP;
4272 n = (adj + N2 - N1) / STEP;
4274 V = threadid * CHUNK * STEP + N1; -- this extra definition of V is
4275 here so that V is defined
4276 if the loop is not entered
4278 s0 = (trip * nthreads + threadid) * CHUNK;
4279 e0 = min(s0 + CHUNK, n);
4280 if (s0 < n) goto L1; else goto L4;
4287 if (V cond e) goto L2; else goto L3;
4295 expand_omp_for_static_chunk (struct omp_region
*region
, struct omp_for_data
*fd
)
4297 tree n
, s0
, e0
, e
, t
;
4298 tree trip_var
, trip_init
, trip_main
, trip_back
, nthreads
, threadid
;
4299 tree type
, itype
, v_main
, v_back
, v_extra
;
4300 basic_block entry_bb
, exit_bb
, body_bb
, seq_start_bb
, iter_part_bb
;
4301 basic_block trip_update_bb
, cont_bb
, fin_bb
;
4302 gimple_stmt_iterator si
;
4306 itype
= type
= TREE_TYPE (fd
->loop
.v
);
4307 if (POINTER_TYPE_P (type
))
4308 itype
= lang_hooks
.types
.type_for_size (TYPE_PRECISION (type
), 0);
4310 entry_bb
= region
->entry
;
4311 se
= split_block (entry_bb
, last_stmt (entry_bb
));
4313 iter_part_bb
= se
->dest
;
4314 cont_bb
= region
->cont
;
4315 gcc_assert (EDGE_COUNT (iter_part_bb
->succs
) == 2);
4316 gcc_assert (BRANCH_EDGE (iter_part_bb
)->dest
4317 == FALLTHRU_EDGE (cont_bb
)->dest
);
4318 seq_start_bb
= split_edge (FALLTHRU_EDGE (iter_part_bb
));
4319 body_bb
= single_succ (seq_start_bb
);
4320 gcc_assert (BRANCH_EDGE (cont_bb
)->dest
== body_bb
);
4321 gcc_assert (EDGE_COUNT (cont_bb
->succs
) == 2);
4322 fin_bb
= FALLTHRU_EDGE (cont_bb
)->dest
;
4323 trip_update_bb
= split_edge (FALLTHRU_EDGE (cont_bb
));
4324 exit_bb
= region
->exit
;
4326 /* Trip and adjustment setup goes in ENTRY_BB. */
4327 si
= gsi_last_bb (entry_bb
);
4328 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_FOR
);
4330 t
= build_call_expr (built_in_decls
[BUILT_IN_OMP_GET_NUM_THREADS
], 0);
4331 t
= fold_convert (itype
, t
);
4332 nthreads
= force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
,
4333 true, GSI_SAME_STMT
);
4335 t
= build_call_expr (built_in_decls
[BUILT_IN_OMP_GET_THREAD_NUM
], 0);
4336 t
= fold_convert (itype
, t
);
4337 threadid
= force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
,
4338 true, GSI_SAME_STMT
);
4341 = force_gimple_operand_gsi (&si
, fold_convert (type
, fd
->loop
.n1
),
4342 true, NULL_TREE
, true, GSI_SAME_STMT
);
4344 = force_gimple_operand_gsi (&si
, fold_convert (itype
, fd
->loop
.n2
),
4345 true, NULL_TREE
, true, GSI_SAME_STMT
);
4347 = force_gimple_operand_gsi (&si
, fold_convert (itype
, fd
->loop
.step
),
4348 true, NULL_TREE
, true, GSI_SAME_STMT
);
4350 = force_gimple_operand_gsi (&si
, fold_convert (itype
, fd
->chunk_size
),
4351 true, NULL_TREE
, true, GSI_SAME_STMT
);
4353 t
= build_int_cst (itype
, (fd
->loop
.cond_code
== LT_EXPR
? -1 : 1));
4354 t
= fold_build2 (PLUS_EXPR
, itype
, fd
->loop
.step
, t
);
4355 t
= fold_build2 (PLUS_EXPR
, itype
, t
, fd
->loop
.n2
);
4356 t
= fold_build2 (MINUS_EXPR
, itype
, t
, fold_convert (itype
, fd
->loop
.n1
));
4357 if (TYPE_UNSIGNED (itype
) && fd
->loop
.cond_code
== GT_EXPR
)
4358 t
= fold_build2 (TRUNC_DIV_EXPR
, itype
,
4359 fold_build1 (NEGATE_EXPR
, itype
, t
),
4360 fold_build1 (NEGATE_EXPR
, itype
, fd
->loop
.step
));
4362 t
= fold_build2 (TRUNC_DIV_EXPR
, itype
, t
, fd
->loop
.step
);
4363 t
= fold_convert (itype
, t
);
4364 n
= force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
,
4365 true, GSI_SAME_STMT
);
4367 trip_var
= create_tmp_var (itype
, ".trip");
4368 if (gimple_in_ssa_p (cfun
))
4370 add_referenced_var (trip_var
);
4371 trip_init
= make_ssa_name (trip_var
, NULL
);
4372 trip_main
= make_ssa_name (trip_var
, NULL
);
4373 trip_back
= make_ssa_name (trip_var
, NULL
);
4377 trip_init
= trip_var
;
4378 trip_main
= trip_var
;
4379 trip_back
= trip_var
;
4382 stmt
= gimple_build_assign (trip_init
, build_int_cst (itype
, 0));
4383 gsi_insert_before (&si
, stmt
, GSI_SAME_STMT
);
4385 t
= fold_build2 (MULT_EXPR
, itype
, threadid
, fd
->chunk_size
);
4386 t
= fold_build2 (MULT_EXPR
, itype
, t
, fd
->loop
.step
);
4387 if (POINTER_TYPE_P (type
))
4388 t
= fold_build2 (POINTER_PLUS_EXPR
, type
, fd
->loop
.n1
,
4389 fold_convert (sizetype
, t
));
4391 t
= fold_build2 (PLUS_EXPR
, type
, t
, fd
->loop
.n1
);
4392 v_extra
= force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
,
4393 true, GSI_SAME_STMT
);
4395 /* Remove the GIMPLE_OMP_FOR. */
4396 gsi_remove (&si
, true);
4398 /* Iteration space partitioning goes in ITER_PART_BB. */
4399 si
= gsi_last_bb (iter_part_bb
);
4401 t
= fold_build2 (MULT_EXPR
, itype
, trip_main
, nthreads
);
4402 t
= fold_build2 (PLUS_EXPR
, itype
, t
, threadid
);
4403 t
= fold_build2 (MULT_EXPR
, itype
, t
, fd
->chunk_size
);
4404 s0
= force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
,
4405 false, GSI_CONTINUE_LINKING
);
4407 t
= fold_build2 (PLUS_EXPR
, itype
, s0
, fd
->chunk_size
);
4408 t
= fold_build2 (MIN_EXPR
, itype
, t
, n
);
4409 e0
= force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
,
4410 false, GSI_CONTINUE_LINKING
);
4412 t
= build2 (LT_EXPR
, boolean_type_node
, s0
, n
);
4413 gsi_insert_after (&si
, gimple_build_cond_empty (t
), GSI_CONTINUE_LINKING
);
4415 /* Setup code for sequential iteration goes in SEQ_START_BB. */
4416 si
= gsi_start_bb (seq_start_bb
);
4418 t
= fold_convert (itype
, s0
);
4419 t
= fold_build2 (MULT_EXPR
, itype
, t
, fd
->loop
.step
);
4420 if (POINTER_TYPE_P (type
))
4421 t
= fold_build2 (POINTER_PLUS_EXPR
, type
, fd
->loop
.n1
,
4422 fold_convert (sizetype
, t
));
4424 t
= fold_build2 (PLUS_EXPR
, type
, t
, fd
->loop
.n1
);
4425 t
= force_gimple_operand_gsi (&si
, t
, false, NULL_TREE
,
4426 false, GSI_CONTINUE_LINKING
);
4427 stmt
= gimple_build_assign (fd
->loop
.v
, t
);
4428 gsi_insert_after (&si
, stmt
, GSI_CONTINUE_LINKING
);
4430 t
= fold_convert (itype
, e0
);
4431 t
= fold_build2 (MULT_EXPR
, itype
, t
, fd
->loop
.step
);
4432 if (POINTER_TYPE_P (type
))
4433 t
= fold_build2 (POINTER_PLUS_EXPR
, type
, fd
->loop
.n1
,
4434 fold_convert (sizetype
, t
));
4436 t
= fold_build2 (PLUS_EXPR
, type
, t
, fd
->loop
.n1
);
4437 e
= force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
,
4438 false, GSI_CONTINUE_LINKING
);
4440 /* The code controlling the sequential loop goes in CONT_BB,
4441 replacing the GIMPLE_OMP_CONTINUE. */
4442 si
= gsi_last_bb (cont_bb
);
4443 stmt
= gsi_stmt (si
);
4444 gcc_assert (gimple_code (stmt
) == GIMPLE_OMP_CONTINUE
);
4445 v_main
= gimple_omp_continue_control_use (stmt
);
4446 v_back
= gimple_omp_continue_control_def (stmt
);
4448 if (POINTER_TYPE_P (type
))
4449 t
= fold_build2 (POINTER_PLUS_EXPR
, type
, v_main
,
4450 fold_convert (sizetype
, fd
->loop
.step
));
4452 t
= fold_build2 (PLUS_EXPR
, type
, v_main
, fd
->loop
.step
);
4453 stmt
= gimple_build_assign (v_back
, t
);
4454 gsi_insert_before (&si
, stmt
, GSI_SAME_STMT
);
4456 t
= build2 (fd
->loop
.cond_code
, boolean_type_node
, v_back
, e
);
4457 gsi_insert_before (&si
, gimple_build_cond_empty (t
), GSI_SAME_STMT
);
4459 /* Remove GIMPLE_OMP_CONTINUE. */
4460 gsi_remove (&si
, true);
4462 /* Trip update code goes into TRIP_UPDATE_BB. */
4463 si
= gsi_start_bb (trip_update_bb
);
4465 t
= build_int_cst (itype
, 1);
4466 t
= build2 (PLUS_EXPR
, itype
, trip_main
, t
);
4467 stmt
= gimple_build_assign (trip_back
, t
);
4468 gsi_insert_after (&si
, stmt
, GSI_CONTINUE_LINKING
);
4470 /* Replace the GIMPLE_OMP_RETURN with a barrier, or nothing. */
4471 si
= gsi_last_bb (exit_bb
);
4472 if (!gimple_omp_return_nowait_p (gsi_stmt (si
)))
4473 force_gimple_operand_gsi (&si
, build_omp_barrier (), false, NULL_TREE
,
4474 false, GSI_SAME_STMT
);
4475 gsi_remove (&si
, true);
4477 /* Connect the new blocks. */
4478 find_edge (iter_part_bb
, seq_start_bb
)->flags
= EDGE_TRUE_VALUE
;
4479 find_edge (iter_part_bb
, fin_bb
)->flags
= EDGE_FALSE_VALUE
;
4481 find_edge (cont_bb
, body_bb
)->flags
= EDGE_TRUE_VALUE
;
4482 find_edge (cont_bb
, trip_update_bb
)->flags
= EDGE_FALSE_VALUE
;
4484 redirect_edge_and_branch (single_succ_edge (trip_update_bb
), iter_part_bb
);
4486 if (gimple_in_ssa_p (cfun
))
4488 gimple_stmt_iterator psi
;
4491 edge_var_map_vector head
;
4495 /* When we redirect the edge from trip_update_bb to iter_part_bb, we
4496 remove arguments of the phi nodes in fin_bb. We need to create
4497 appropriate phi nodes in iter_part_bb instead. */
4498 se
= single_pred_edge (fin_bb
);
4499 re
= single_succ_edge (trip_update_bb
);
4500 head
= redirect_edge_var_map_vector (re
);
4501 ene
= single_succ_edge (entry_bb
);
4503 psi
= gsi_start_phis (fin_bb
);
4504 for (i
= 0; !gsi_end_p (psi
) && VEC_iterate (edge_var_map
, head
, i
, vm
);
4505 gsi_next (&psi
), ++i
)
4508 source_location locus
;
4510 phi
= gsi_stmt (psi
);
4511 t
= gimple_phi_result (phi
);
4512 gcc_assert (t
== redirect_edge_var_map_result (vm
));
4513 nphi
= create_phi_node (t
, iter_part_bb
);
4514 SSA_NAME_DEF_STMT (t
) = nphi
;
4516 t
= PHI_ARG_DEF_FROM_EDGE (phi
, se
);
4517 locus
= gimple_phi_arg_location_from_edge (phi
, se
);
4519 /* A special case -- fd->loop.v is not yet computed in
4520 iter_part_bb, we need to use v_extra instead. */
4521 if (t
== fd
->loop
.v
)
4523 add_phi_arg (nphi
, t
, ene
, locus
);
4524 locus
= redirect_edge_var_map_location (vm
);
4525 add_phi_arg (nphi
, redirect_edge_var_map_def (vm
), re
, locus
);
4527 gcc_assert (!gsi_end_p (psi
) && i
== VEC_length (edge_var_map
, head
));
4528 redirect_edge_var_map_clear (re
);
4531 psi
= gsi_start_phis (fin_bb
);
4532 if (gsi_end_p (psi
))
4534 remove_phi_node (&psi
, false);
4537 /* Make phi node for trip. */
4538 phi
= create_phi_node (trip_main
, iter_part_bb
);
4539 SSA_NAME_DEF_STMT (trip_main
) = phi
;
4540 add_phi_arg (phi
, trip_back
, single_succ_edge (trip_update_bb
),
4542 add_phi_arg (phi
, trip_init
, single_succ_edge (entry_bb
),
4546 set_immediate_dominator (CDI_DOMINATORS
, trip_update_bb
, cont_bb
);
4547 set_immediate_dominator (CDI_DOMINATORS
, iter_part_bb
,
4548 recompute_dominator (CDI_DOMINATORS
, iter_part_bb
));
4549 set_immediate_dominator (CDI_DOMINATORS
, fin_bb
,
4550 recompute_dominator (CDI_DOMINATORS
, fin_bb
));
4551 set_immediate_dominator (CDI_DOMINATORS
, seq_start_bb
,
4552 recompute_dominator (CDI_DOMINATORS
, seq_start_bb
));
4553 set_immediate_dominator (CDI_DOMINATORS
, body_bb
,
4554 recompute_dominator (CDI_DOMINATORS
, body_bb
));
4558 /* Expand the OpenMP loop defined by REGION. */
4561 expand_omp_for (struct omp_region
*region
)
4563 struct omp_for_data fd
;
4564 struct omp_for_data_loop
*loops
;
4567 = (struct omp_for_data_loop
*)
4568 alloca (gimple_omp_for_collapse (last_stmt (region
->entry
))
4569 * sizeof (struct omp_for_data_loop
));
4570 extract_omp_for_data (last_stmt (region
->entry
), &fd
, loops
);
4571 region
->sched_kind
= fd
.sched_kind
;
4573 gcc_assert (EDGE_COUNT (region
->entry
->succs
) == 2);
4574 BRANCH_EDGE (region
->entry
)->flags
&= ~EDGE_ABNORMAL
;
4575 FALLTHRU_EDGE (region
->entry
)->flags
&= ~EDGE_ABNORMAL
;
4578 gcc_assert (EDGE_COUNT (region
->cont
->succs
) == 2);
4579 BRANCH_EDGE (region
->cont
)->flags
&= ~EDGE_ABNORMAL
;
4580 FALLTHRU_EDGE (region
->cont
)->flags
&= ~EDGE_ABNORMAL
;
4583 if (fd
.sched_kind
== OMP_CLAUSE_SCHEDULE_STATIC
4586 && region
->cont
!= NULL
)
4588 if (fd
.chunk_size
== NULL
)
4589 expand_omp_for_static_nochunk (region
, &fd
);
4591 expand_omp_for_static_chunk (region
, &fd
);
4595 int fn_index
, start_ix
, next_ix
;
4597 gcc_assert (fd
.sched_kind
!= OMP_CLAUSE_SCHEDULE_AUTO
);
4598 fn_index
= (fd
.sched_kind
== OMP_CLAUSE_SCHEDULE_RUNTIME
)
4599 ? 3 : fd
.sched_kind
;
4600 fn_index
+= fd
.have_ordered
* 4;
4601 start_ix
= BUILT_IN_GOMP_LOOP_STATIC_START
+ fn_index
;
4602 next_ix
= BUILT_IN_GOMP_LOOP_STATIC_NEXT
+ fn_index
;
4603 if (fd
.iter_type
== long_long_unsigned_type_node
)
4605 start_ix
+= BUILT_IN_GOMP_LOOP_ULL_STATIC_START
4606 - BUILT_IN_GOMP_LOOP_STATIC_START
;
4607 next_ix
+= BUILT_IN_GOMP_LOOP_ULL_STATIC_NEXT
4608 - BUILT_IN_GOMP_LOOP_STATIC_NEXT
;
4610 expand_omp_for_generic (region
, &fd
, (enum built_in_function
) start_ix
,
4611 (enum built_in_function
) next_ix
);
4614 update_ssa (TODO_update_ssa_only_virtuals
);
4618 /* Expand code for an OpenMP sections directive. In pseudo code, we generate
4620 v = GOMP_sections_start (n);
4637 v = GOMP_sections_next ();
4642 If this is a combined parallel sections, replace the call to
4643 GOMP_sections_start with call to GOMP_sections_next. */
4646 expand_omp_sections (struct omp_region
*region
)
4648 tree t
, u
, vin
= NULL
, vmain
, vnext
, l2
;
4649 VEC (tree
,heap
) *label_vec
;
4651 basic_block entry_bb
, l0_bb
, l1_bb
, l2_bb
, default_bb
;
4652 gimple_stmt_iterator si
, switch_si
;
4653 gimple sections_stmt
, stmt
, cont
;
4656 struct omp_region
*inner
;
4658 bool exit_reachable
= region
->cont
!= NULL
;
4660 gcc_assert (exit_reachable
== (region
->exit
!= NULL
));
4661 entry_bb
= region
->entry
;
4662 l0_bb
= single_succ (entry_bb
);
4663 l1_bb
= region
->cont
;
4664 l2_bb
= region
->exit
;
4667 if (single_pred_p (l2_bb
) && single_pred (l2_bb
) == l0_bb
)
4668 l2
= gimple_block_label (l2_bb
);
4671 /* This can happen if there are reductions. */
4672 len
= EDGE_COUNT (l0_bb
->succs
);
4673 gcc_assert (len
> 0);
4674 e
= EDGE_SUCC (l0_bb
, len
- 1);
4675 si
= gsi_last_bb (e
->dest
);
4678 || gimple_code (gsi_stmt (si
)) != GIMPLE_OMP_SECTION
)
4679 l2
= gimple_block_label (e
->dest
);
4681 FOR_EACH_EDGE (e
, ei
, l0_bb
->succs
)
4683 si
= gsi_last_bb (e
->dest
);
4685 || gimple_code (gsi_stmt (si
)) != GIMPLE_OMP_SECTION
)
4687 l2
= gimple_block_label (e
->dest
);
4692 default_bb
= create_empty_bb (l1_bb
->prev_bb
);
4696 default_bb
= create_empty_bb (l0_bb
);
4697 l2
= gimple_block_label (default_bb
);
4700 /* We will build a switch() with enough cases for all the
4701 GIMPLE_OMP_SECTION regions, a '0' case to handle the end of more work
4702 and a default case to abort if something goes wrong. */
4703 len
= EDGE_COUNT (l0_bb
->succs
);
4705 /* Use VEC_quick_push on label_vec throughout, since we know the size
4707 label_vec
= VEC_alloc (tree
, heap
, len
);
4709 /* The call to GOMP_sections_start goes in ENTRY_BB, replacing the
4710 GIMPLE_OMP_SECTIONS statement. */
4711 si
= gsi_last_bb (entry_bb
);
4712 sections_stmt
= gsi_stmt (si
);
4713 gcc_assert (gimple_code (sections_stmt
) == GIMPLE_OMP_SECTIONS
);
4714 vin
= gimple_omp_sections_control (sections_stmt
);
4715 if (!is_combined_parallel (region
))
4717 /* If we are not inside a combined parallel+sections region,
4718 call GOMP_sections_start. */
4719 t
= build_int_cst (unsigned_type_node
,
4720 exit_reachable
? len
- 1 : len
);
4721 u
= built_in_decls
[BUILT_IN_GOMP_SECTIONS_START
];
4722 stmt
= gimple_build_call (u
, 1, t
);
4726 /* Otherwise, call GOMP_sections_next. */
4727 u
= built_in_decls
[BUILT_IN_GOMP_SECTIONS_NEXT
];
4728 stmt
= gimple_build_call (u
, 0);
4730 gimple_call_set_lhs (stmt
, vin
);
4731 gsi_insert_after (&si
, stmt
, GSI_SAME_STMT
);
4732 gsi_remove (&si
, true);
4734 /* The switch() statement replacing GIMPLE_OMP_SECTIONS_SWITCH goes in
4736 switch_si
= gsi_last_bb (l0_bb
);
4737 gcc_assert (gimple_code (gsi_stmt (switch_si
)) == GIMPLE_OMP_SECTIONS_SWITCH
);
4740 cont
= last_stmt (l1_bb
);
4741 gcc_assert (gimple_code (cont
) == GIMPLE_OMP_CONTINUE
);
4742 vmain
= gimple_omp_continue_control_use (cont
);
4743 vnext
= gimple_omp_continue_control_def (cont
);
4754 t
= build3 (CASE_LABEL_EXPR
, void_type_node
,
4755 build_int_cst (unsigned_type_node
, 0), NULL
, l2
);
4756 VEC_quick_push (tree
, label_vec
, t
);
4760 /* Convert each GIMPLE_OMP_SECTION into a CASE_LABEL_EXPR. */
4761 for (inner
= region
->inner
, casei
= 1;
4763 inner
= inner
->next
, i
++, casei
++)
4765 basic_block s_entry_bb
, s_exit_bb
;
4767 /* Skip optional reduction region. */
4768 if (inner
->type
== GIMPLE_OMP_ATOMIC_LOAD
)
4775 s_entry_bb
= inner
->entry
;
4776 s_exit_bb
= inner
->exit
;
4778 t
= gimple_block_label (s_entry_bb
);
4779 u
= build_int_cst (unsigned_type_node
, casei
);
4780 u
= build3 (CASE_LABEL_EXPR
, void_type_node
, u
, NULL
, t
);
4781 VEC_quick_push (tree
, label_vec
, u
);
4783 si
= gsi_last_bb (s_entry_bb
);
4784 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_SECTION
);
4785 gcc_assert (i
< len
|| gimple_omp_section_last_p (gsi_stmt (si
)));
4786 gsi_remove (&si
, true);
4787 single_succ_edge (s_entry_bb
)->flags
= EDGE_FALLTHRU
;
4789 if (s_exit_bb
== NULL
)
4792 si
= gsi_last_bb (s_exit_bb
);
4793 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_RETURN
);
4794 gsi_remove (&si
, true);
4796 single_succ_edge (s_exit_bb
)->flags
= EDGE_FALLTHRU
;
4799 /* Error handling code goes in DEFAULT_BB. */
4800 t
= gimple_block_label (default_bb
);
4801 u
= build3 (CASE_LABEL_EXPR
, void_type_node
, NULL
, NULL
, t
);
4802 make_edge (l0_bb
, default_bb
, 0);
4804 stmt
= gimple_build_switch_vec (vmain
, u
, label_vec
);
4805 gsi_insert_after (&switch_si
, stmt
, GSI_SAME_STMT
);
4806 gsi_remove (&switch_si
, true);
4807 VEC_free (tree
, heap
, label_vec
);
4809 si
= gsi_start_bb (default_bb
);
4810 stmt
= gimple_build_call (built_in_decls
[BUILT_IN_TRAP
], 0);
4811 gsi_insert_after (&si
, stmt
, GSI_CONTINUE_LINKING
);
4815 /* Code to get the next section goes in L1_BB. */
4816 si
= gsi_last_bb (l1_bb
);
4817 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_CONTINUE
);
4819 stmt
= gimple_build_call (built_in_decls
[BUILT_IN_GOMP_SECTIONS_NEXT
], 0);
4820 gimple_call_set_lhs (stmt
, vnext
);
4821 gsi_insert_after (&si
, stmt
, GSI_SAME_STMT
);
4822 gsi_remove (&si
, true);
4824 single_succ_edge (l1_bb
)->flags
= EDGE_FALLTHRU
;
4826 /* Cleanup function replaces GIMPLE_OMP_RETURN in EXIT_BB. */
4827 si
= gsi_last_bb (l2_bb
);
4828 if (gimple_omp_return_nowait_p (gsi_stmt (si
)))
4829 t
= built_in_decls
[BUILT_IN_GOMP_SECTIONS_END_NOWAIT
];
4831 t
= built_in_decls
[BUILT_IN_GOMP_SECTIONS_END
];
4832 stmt
= gimple_build_call (t
, 0);
4833 gsi_insert_after (&si
, stmt
, GSI_SAME_STMT
);
4834 gsi_remove (&si
, true);
4837 set_immediate_dominator (CDI_DOMINATORS
, default_bb
, l0_bb
);
4841 /* Expand code for an OpenMP single directive. We've already expanded
4842 much of the code, here we simply place the GOMP_barrier call. */
4845 expand_omp_single (struct omp_region
*region
)
4847 basic_block entry_bb
, exit_bb
;
4848 gimple_stmt_iterator si
;
4849 bool need_barrier
= false;
4851 entry_bb
= region
->entry
;
4852 exit_bb
= region
->exit
;
4854 si
= gsi_last_bb (entry_bb
);
4855 /* The terminal barrier at the end of a GOMP_single_copy sequence cannot
4856 be removed. We need to ensure that the thread that entered the single
4857 does not exit before the data is copied out by the other threads. */
4858 if (find_omp_clause (gimple_omp_single_clauses (gsi_stmt (si
)),
4859 OMP_CLAUSE_COPYPRIVATE
))
4860 need_barrier
= true;
4861 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_SINGLE
);
4862 gsi_remove (&si
, true);
4863 single_succ_edge (entry_bb
)->flags
= EDGE_FALLTHRU
;
4865 si
= gsi_last_bb (exit_bb
);
4866 if (!gimple_omp_return_nowait_p (gsi_stmt (si
)) || need_barrier
)
4867 force_gimple_operand_gsi (&si
, build_omp_barrier (), false, NULL_TREE
,
4868 false, GSI_SAME_STMT
);
4869 gsi_remove (&si
, true);
4870 single_succ_edge (exit_bb
)->flags
= EDGE_FALLTHRU
;
4874 /* Generic expansion for OpenMP synchronization directives: master,
4875 ordered and critical. All we need to do here is remove the entry
4876 and exit markers for REGION. */
4879 expand_omp_synch (struct omp_region
*region
)
4881 basic_block entry_bb
, exit_bb
;
4882 gimple_stmt_iterator si
;
4884 entry_bb
= region
->entry
;
4885 exit_bb
= region
->exit
;
4887 si
= gsi_last_bb (entry_bb
);
4888 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_SINGLE
4889 || gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_MASTER
4890 || gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_ORDERED
4891 || gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_CRITICAL
);
4892 gsi_remove (&si
, true);
4893 single_succ_edge (entry_bb
)->flags
= EDGE_FALLTHRU
;
4897 si
= gsi_last_bb (exit_bb
);
4898 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_RETURN
);
4899 gsi_remove (&si
, true);
4900 single_succ_edge (exit_bb
)->flags
= EDGE_FALLTHRU
;
4904 /* A subroutine of expand_omp_atomic. Attempt to implement the atomic
4905 operation as a __sync_fetch_and_op builtin. INDEX is log2 of the
4906 size of the data type, and thus usable to find the index of the builtin
4907 decl. Returns false if the expression is not of the proper form. */
4910 expand_omp_atomic_fetch_op (basic_block load_bb
,
4911 tree addr
, tree loaded_val
,
4912 tree stored_val
, int index
)
4914 enum built_in_function base
;
4915 tree decl
, itype
, call
;
4916 enum insn_code
*optab
;
4918 basic_block store_bb
= single_succ (load_bb
);
4919 gimple_stmt_iterator gsi
;
4923 /* We expect to find the following sequences:
4926 GIMPLE_OMP_ATOMIC_LOAD (tmp, mem)
4929 val = tmp OP something; (or: something OP tmp)
4930 GIMPLE_OMP_STORE (val)
4932 ???FIXME: Allow a more flexible sequence.
4933 Perhaps use data flow to pick the statements.
4937 gsi
= gsi_after_labels (store_bb
);
4938 stmt
= gsi_stmt (gsi
);
4939 loc
= gimple_location (stmt
);
4940 if (!is_gimple_assign (stmt
))
4943 if (gimple_code (gsi_stmt (gsi
)) != GIMPLE_OMP_ATOMIC_STORE
)
4946 if (!operand_equal_p (gimple_assign_lhs (stmt
), stored_val
, 0))
4949 /* Check for one of the supported fetch-op operations. */
4950 switch (gimple_assign_rhs_code (stmt
))
4953 case POINTER_PLUS_EXPR
:
4954 base
= BUILT_IN_FETCH_AND_ADD_N
;
4955 optab
= sync_add_optab
;
4958 base
= BUILT_IN_FETCH_AND_SUB_N
;
4959 optab
= sync_add_optab
;
4962 base
= BUILT_IN_FETCH_AND_AND_N
;
4963 optab
= sync_and_optab
;
4966 base
= BUILT_IN_FETCH_AND_OR_N
;
4967 optab
= sync_ior_optab
;
4970 base
= BUILT_IN_FETCH_AND_XOR_N
;
4971 optab
= sync_xor_optab
;
4976 /* Make sure the expression is of the proper form. */
4977 if (operand_equal_p (gimple_assign_rhs1 (stmt
), loaded_val
, 0))
4978 rhs
= gimple_assign_rhs2 (stmt
);
4979 else if (commutative_tree_code (gimple_assign_rhs_code (stmt
))
4980 && operand_equal_p (gimple_assign_rhs2 (stmt
), loaded_val
, 0))
4981 rhs
= gimple_assign_rhs1 (stmt
);
4985 decl
= built_in_decls
[base
+ index
+ 1];
4986 itype
= TREE_TYPE (TREE_TYPE (decl
));
4988 if (optab
[TYPE_MODE (itype
)] == CODE_FOR_nothing
)
4991 gsi
= gsi_last_bb (load_bb
);
4992 gcc_assert (gimple_code (gsi_stmt (gsi
)) == GIMPLE_OMP_ATOMIC_LOAD
);
4993 call
= build_call_expr_loc (loc
,
4995 fold_convert_loc (loc
, itype
, rhs
));
4996 call
= fold_convert_loc (loc
, void_type_node
, call
);
4997 force_gimple_operand_gsi (&gsi
, call
, true, NULL_TREE
, true, GSI_SAME_STMT
);
4998 gsi_remove (&gsi
, true);
5000 gsi
= gsi_last_bb (store_bb
);
5001 gcc_assert (gimple_code (gsi_stmt (gsi
)) == GIMPLE_OMP_ATOMIC_STORE
);
5002 gsi_remove (&gsi
, true);
5003 gsi
= gsi_last_bb (store_bb
);
5004 gsi_remove (&gsi
, true);
5006 if (gimple_in_ssa_p (cfun
))
5007 update_ssa (TODO_update_ssa_no_phi
);
5012 /* A subroutine of expand_omp_atomic. Implement the atomic operation as:
5016 newval = rhs; // with oldval replacing *addr in rhs
5017 oldval = __sync_val_compare_and_swap (addr, oldval, newval);
5018 if (oldval != newval)
5021 INDEX is log2 of the size of the data type, and thus usable to find the
5022 index of the builtin decl. */
5025 expand_omp_atomic_pipeline (basic_block load_bb
, basic_block store_bb
,
5026 tree addr
, tree loaded_val
, tree stored_val
,
5029 tree loadedi
, storedi
, initial
, new_storedi
, old_vali
;
5030 tree type
, itype
, cmpxchg
, iaddr
;
5031 gimple_stmt_iterator si
;
5032 basic_block loop_header
= single_succ (load_bb
);
5036 cmpxchg
= built_in_decls
[BUILT_IN_VAL_COMPARE_AND_SWAP_N
+ index
+ 1];
5037 type
= TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (addr
)));
5038 itype
= TREE_TYPE (TREE_TYPE (cmpxchg
));
5040 if (sync_compare_and_swap
[TYPE_MODE (itype
)] == CODE_FOR_nothing
)
5043 /* Load the initial value, replacing the GIMPLE_OMP_ATOMIC_LOAD. */
5044 si
= gsi_last_bb (load_bb
);
5045 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_ATOMIC_LOAD
);
5047 /* For floating-point values, we'll need to view-convert them to integers
5048 so that we can perform the atomic compare and swap. Simplify the
5049 following code by always setting up the "i"ntegral variables. */
5050 if (!INTEGRAL_TYPE_P (type
) && !POINTER_TYPE_P (type
))
5054 iaddr
= create_tmp_var (build_pointer_type_for_mode (itype
, ptr_mode
,
5057 = force_gimple_operand_gsi (&si
,
5058 fold_convert (TREE_TYPE (iaddr
), addr
),
5059 false, NULL_TREE
, true, GSI_SAME_STMT
);
5060 stmt
= gimple_build_assign (iaddr
, iaddr_val
);
5061 gsi_insert_before (&si
, stmt
, GSI_SAME_STMT
);
5062 loadedi
= create_tmp_var (itype
, NULL
);
5063 if (gimple_in_ssa_p (cfun
))
5065 add_referenced_var (iaddr
);
5066 add_referenced_var (loadedi
);
5067 loadedi
= make_ssa_name (loadedi
, NULL
);
5073 loadedi
= loaded_val
;
5076 initial
= force_gimple_operand_gsi (&si
, build_fold_indirect_ref (iaddr
),
5077 true, NULL_TREE
, true, GSI_SAME_STMT
);
5079 /* Move the value to the LOADEDI temporary. */
5080 if (gimple_in_ssa_p (cfun
))
5082 gcc_assert (gimple_seq_empty_p (phi_nodes (loop_header
)));
5083 phi
= create_phi_node (loadedi
, loop_header
);
5084 SSA_NAME_DEF_STMT (loadedi
) = phi
;
5085 SET_USE (PHI_ARG_DEF_PTR_FROM_EDGE (phi
, single_succ_edge (load_bb
)),
5089 gsi_insert_before (&si
,
5090 gimple_build_assign (loadedi
, initial
),
5092 if (loadedi
!= loaded_val
)
5094 gimple_stmt_iterator gsi2
;
5097 x
= build1 (VIEW_CONVERT_EXPR
, type
, loadedi
);
5098 gsi2
= gsi_start_bb (loop_header
);
5099 if (gimple_in_ssa_p (cfun
))
5102 x
= force_gimple_operand_gsi (&gsi2
, x
, true, NULL_TREE
,
5103 true, GSI_SAME_STMT
);
5104 stmt
= gimple_build_assign (loaded_val
, x
);
5105 gsi_insert_before (&gsi2
, stmt
, GSI_SAME_STMT
);
5109 x
= build2 (MODIFY_EXPR
, TREE_TYPE (loaded_val
), loaded_val
, x
);
5110 force_gimple_operand_gsi (&gsi2
, x
, true, NULL_TREE
,
5111 true, GSI_SAME_STMT
);
5114 gsi_remove (&si
, true);
5116 si
= gsi_last_bb (store_bb
);
5117 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_ATOMIC_STORE
);
5120 storedi
= stored_val
;
5123 force_gimple_operand_gsi (&si
,
5124 build1 (VIEW_CONVERT_EXPR
, itype
,
5125 stored_val
), true, NULL_TREE
, true,
5128 /* Build the compare&swap statement. */
5129 new_storedi
= build_call_expr (cmpxchg
, 3, iaddr
, loadedi
, storedi
);
5130 new_storedi
= force_gimple_operand_gsi (&si
,
5131 fold_convert (TREE_TYPE (loadedi
),
5134 true, GSI_SAME_STMT
);
5136 if (gimple_in_ssa_p (cfun
))
5140 old_vali
= create_tmp_var (TREE_TYPE (loadedi
), NULL
);
5141 if (gimple_in_ssa_p (cfun
))
5142 add_referenced_var (old_vali
);
5143 stmt
= gimple_build_assign (old_vali
, loadedi
);
5144 gsi_insert_before (&si
, stmt
, GSI_SAME_STMT
);
5146 stmt
= gimple_build_assign (loadedi
, new_storedi
);
5147 gsi_insert_before (&si
, stmt
, GSI_SAME_STMT
);
5150 /* Note that we always perform the comparison as an integer, even for
5151 floating point. This allows the atomic operation to properly
5152 succeed even with NaNs and -0.0. */
5153 stmt
= gimple_build_cond_empty
5154 (build2 (NE_EXPR
, boolean_type_node
,
5155 new_storedi
, old_vali
));
5156 gsi_insert_before (&si
, stmt
, GSI_SAME_STMT
);
5159 e
= single_succ_edge (store_bb
);
5160 e
->flags
&= ~EDGE_FALLTHRU
;
5161 e
->flags
|= EDGE_FALSE_VALUE
;
5163 e
= make_edge (store_bb
, loop_header
, EDGE_TRUE_VALUE
);
5165 /* Copy the new value to loadedi (we already did that before the condition
5166 if we are not in SSA). */
5167 if (gimple_in_ssa_p (cfun
))
5169 phi
= gimple_seq_first_stmt (phi_nodes (loop_header
));
5170 SET_USE (PHI_ARG_DEF_PTR_FROM_EDGE (phi
, e
), new_storedi
);
5173 /* Remove GIMPLE_OMP_ATOMIC_STORE. */
5174 gsi_remove (&si
, true);
5176 if (gimple_in_ssa_p (cfun
))
5177 update_ssa (TODO_update_ssa_no_phi
);
5182 /* A subroutine of expand_omp_atomic. Implement the atomic operation as:
5184 GOMP_atomic_start ();
5188 The result is not globally atomic, but works so long as all parallel
5189 references are within #pragma omp atomic directives. According to
5190 responses received from omp@openmp.org, appears to be within spec.
5191 Which makes sense, since that's how several other compilers handle
5192 this situation as well.
5193 LOADED_VAL and ADDR are the operands of GIMPLE_OMP_ATOMIC_LOAD we're
5194 expanding. STORED_VAL is the operand of the matching
5195 GIMPLE_OMP_ATOMIC_STORE.
5198 GIMPLE_OMP_ATOMIC_LOAD (loaded_val, addr) with
5202 GIMPLE_OMP_ATOMIC_ATORE (stored_val) with
5207 expand_omp_atomic_mutex (basic_block load_bb
, basic_block store_bb
,
5208 tree addr
, tree loaded_val
, tree stored_val
)
5210 gimple_stmt_iterator si
;
5214 si
= gsi_last_bb (load_bb
);
5215 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_ATOMIC_LOAD
);
5217 t
= built_in_decls
[BUILT_IN_GOMP_ATOMIC_START
];
5218 t
= build_function_call_expr (UNKNOWN_LOCATION
, t
, 0);
5219 force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
, true, GSI_SAME_STMT
);
5221 stmt
= gimple_build_assign (loaded_val
, build_fold_indirect_ref (addr
));
5222 gsi_insert_before (&si
, stmt
, GSI_SAME_STMT
);
5223 gsi_remove (&si
, true);
5225 si
= gsi_last_bb (store_bb
);
5226 gcc_assert (gimple_code (gsi_stmt (si
)) == GIMPLE_OMP_ATOMIC_STORE
);
5228 stmt
= gimple_build_assign (build_fold_indirect_ref (unshare_expr (addr
)),
5230 gsi_insert_before (&si
, stmt
, GSI_SAME_STMT
);
5232 t
= built_in_decls
[BUILT_IN_GOMP_ATOMIC_END
];
5233 t
= build_function_call_expr (UNKNOWN_LOCATION
, t
, 0);
5234 force_gimple_operand_gsi (&si
, t
, true, NULL_TREE
, true, GSI_SAME_STMT
);
5235 gsi_remove (&si
, true);
5237 if (gimple_in_ssa_p (cfun
))
5238 update_ssa (TODO_update_ssa_no_phi
);
5242 /* Expand an GIMPLE_OMP_ATOMIC statement. We try to expand
5243 using expand_omp_atomic_fetch_op. If it failed, we try to
5244 call expand_omp_atomic_pipeline, and if it fails too, the
5245 ultimate fallback is wrapping the operation in a mutex
5246 (expand_omp_atomic_mutex). REGION is the atomic region built
5247 by build_omp_regions_1(). */
5250 expand_omp_atomic (struct omp_region
*region
)
5252 basic_block load_bb
= region
->entry
, store_bb
= region
->exit
;
5253 gimple load
= last_stmt (load_bb
), store
= last_stmt (store_bb
);
5254 tree loaded_val
= gimple_omp_atomic_load_lhs (load
);
5255 tree addr
= gimple_omp_atomic_load_rhs (load
);
5256 tree stored_val
= gimple_omp_atomic_store_val (store
);
5257 tree type
= TYPE_MAIN_VARIANT (TREE_TYPE (TREE_TYPE (addr
)));
5258 HOST_WIDE_INT index
;
5260 /* Make sure the type is one of the supported sizes. */
5261 index
= tree_low_cst (TYPE_SIZE_UNIT (type
), 1);
5262 index
= exact_log2 (index
);
5263 if (index
>= 0 && index
<= 4)
5265 unsigned int align
= TYPE_ALIGN_UNIT (type
);
5267 /* __sync builtins require strict data alignment. */
5268 if (exact_log2 (align
) >= index
)
5270 /* When possible, use specialized atomic update functions. */
5271 if ((INTEGRAL_TYPE_P (type
) || POINTER_TYPE_P (type
))
5272 && store_bb
== single_succ (load_bb
))
5274 if (expand_omp_atomic_fetch_op (load_bb
, addr
,
5275 loaded_val
, stored_val
, index
))
5279 /* If we don't have specialized __sync builtins, try and implement
5280 as a compare and swap loop. */
5281 if (expand_omp_atomic_pipeline (load_bb
, store_bb
, addr
,
5282 loaded_val
, stored_val
, index
))
5287 /* The ultimate fallback is wrapping the operation in a mutex. */
5288 expand_omp_atomic_mutex (load_bb
, store_bb
, addr
, loaded_val
, stored_val
);
5292 /* Expand the parallel region tree rooted at REGION. Expansion
5293 proceeds in depth-first order. Innermost regions are expanded
5294 first. This way, parallel regions that require a new function to
5295 be created (e.g., GIMPLE_OMP_PARALLEL) can be expanded without having any
5296 internal dependencies in their body. */
5299 expand_omp (struct omp_region
*region
)
5303 location_t saved_location
;
5305 /* First, determine whether this is a combined parallel+workshare
5307 if (region
->type
== GIMPLE_OMP_PARALLEL
)
5308 determine_parallel_type (region
);
5311 expand_omp (region
->inner
);
5313 saved_location
= input_location
;
5314 if (gimple_has_location (last_stmt (region
->entry
)))
5315 input_location
= gimple_location (last_stmt (region
->entry
));
5317 switch (region
->type
)
5319 case GIMPLE_OMP_PARALLEL
:
5320 case GIMPLE_OMP_TASK
:
5321 expand_omp_taskreg (region
);
5324 case GIMPLE_OMP_FOR
:
5325 expand_omp_for (region
);
5328 case GIMPLE_OMP_SECTIONS
:
5329 expand_omp_sections (region
);
5332 case GIMPLE_OMP_SECTION
:
5333 /* Individual omp sections are handled together with their
5334 parent GIMPLE_OMP_SECTIONS region. */
5337 case GIMPLE_OMP_SINGLE
:
5338 expand_omp_single (region
);
5341 case GIMPLE_OMP_MASTER
:
5342 case GIMPLE_OMP_ORDERED
:
5343 case GIMPLE_OMP_CRITICAL
:
5344 expand_omp_synch (region
);
5347 case GIMPLE_OMP_ATOMIC_LOAD
:
5348 expand_omp_atomic (region
);
5355 input_location
= saved_location
;
5356 region
= region
->next
;
5361 /* Helper for build_omp_regions. Scan the dominator tree starting at
5362 block BB. PARENT is the region that contains BB. If SINGLE_TREE is
5363 true, the function ends once a single tree is built (otherwise, whole
5364 forest of OMP constructs may be built). */
5367 build_omp_regions_1 (basic_block bb
, struct omp_region
*parent
,
5370 gimple_stmt_iterator gsi
;
5374 gsi
= gsi_last_bb (bb
);
5375 if (!gsi_end_p (gsi
) && is_gimple_omp (gsi_stmt (gsi
)))
5377 struct omp_region
*region
;
5378 enum gimple_code code
;
5380 stmt
= gsi_stmt (gsi
);
5381 code
= gimple_code (stmt
);
5382 if (code
== GIMPLE_OMP_RETURN
)
5384 /* STMT is the return point out of region PARENT. Mark it
5385 as the exit point and make PARENT the immediately
5386 enclosing region. */
5387 gcc_assert (parent
);
5390 parent
= parent
->outer
;
5392 else if (code
== GIMPLE_OMP_ATOMIC_STORE
)
5394 /* GIMPLE_OMP_ATOMIC_STORE is analoguous to
5395 GIMPLE_OMP_RETURN, but matches with
5396 GIMPLE_OMP_ATOMIC_LOAD. */
5397 gcc_assert (parent
);
5398 gcc_assert (parent
->type
== GIMPLE_OMP_ATOMIC_LOAD
);
5401 parent
= parent
->outer
;
5404 else if (code
== GIMPLE_OMP_CONTINUE
)
5406 gcc_assert (parent
);
5409 else if (code
== GIMPLE_OMP_SECTIONS_SWITCH
)
5411 /* GIMPLE_OMP_SECTIONS_SWITCH is part of
5412 GIMPLE_OMP_SECTIONS, and we do nothing for it. */
5417 /* Otherwise, this directive becomes the parent for a new
5419 region
= new_omp_region (bb
, code
, parent
);
5424 if (single_tree
&& !parent
)
5427 for (son
= first_dom_son (CDI_DOMINATORS
, bb
);
5429 son
= next_dom_son (CDI_DOMINATORS
, son
))
5430 build_omp_regions_1 (son
, parent
, single_tree
);
5433 /* Builds the tree of OMP regions rooted at ROOT, storing it to
5437 build_omp_regions_root (basic_block root
)
5439 gcc_assert (root_omp_region
== NULL
);
5440 build_omp_regions_1 (root
, NULL
, true);
5441 gcc_assert (root_omp_region
!= NULL
);
5444 /* Expands omp construct (and its subconstructs) starting in HEAD. */
5447 omp_expand_local (basic_block head
)
5449 build_omp_regions_root (head
);
5450 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
5452 fprintf (dump_file
, "\nOMP region tree\n\n");
5453 dump_omp_region (dump_file
, root_omp_region
, 0);
5454 fprintf (dump_file
, "\n");
5457 remove_exit_barriers (root_omp_region
);
5458 expand_omp (root_omp_region
);
5460 free_omp_regions ();
5463 /* Scan the CFG and build a tree of OMP regions. Return the root of
5464 the OMP region tree. */
5467 build_omp_regions (void)
5469 gcc_assert (root_omp_region
== NULL
);
5470 calculate_dominance_info (CDI_DOMINATORS
);
5471 build_omp_regions_1 (ENTRY_BLOCK_PTR
, NULL
, false);
5474 /* Main entry point for expanding OMP-GIMPLE into runtime calls. */
5477 execute_expand_omp (void)
5479 build_omp_regions ();
5481 if (!root_omp_region
)
5486 fprintf (dump_file
, "\nOMP region tree\n\n");
5487 dump_omp_region (dump_file
, root_omp_region
, 0);
5488 fprintf (dump_file
, "\n");
5491 remove_exit_barriers (root_omp_region
);
5493 expand_omp (root_omp_region
);
5495 cleanup_tree_cfg ();
5497 free_omp_regions ();
5502 /* OMP expansion -- the default pass, run before creation of SSA form. */
5505 gate_expand_omp (void)
5507 return (flag_openmp
!= 0 && errorcount
== 0);
5510 struct gimple_opt_pass pass_expand_omp
=
5514 "ompexp", /* name */
5515 gate_expand_omp
, /* gate */
5516 execute_expand_omp
, /* execute */
5519 0, /* static_pass_number */
5520 TV_NONE
, /* tv_id */
5521 PROP_gimple_any
, /* properties_required */
5522 0, /* properties_provided */
5523 0, /* properties_destroyed */
5524 0, /* todo_flags_start */
5525 TODO_dump_func
/* todo_flags_finish */
5529 /* Routines to lower OpenMP directives into OMP-GIMPLE. */
5531 /* Lower the OpenMP sections directive in the current statement in GSI_P.
5532 CTX is the enclosing OMP context for the current statement. */
5535 lower_omp_sections (gimple_stmt_iterator
*gsi_p
, omp_context
*ctx
)
5537 tree block
, control
;
5538 gimple_stmt_iterator tgsi
;
5540 gimple stmt
, new_stmt
, bind
, t
;
5541 gimple_seq ilist
, dlist
, olist
, new_body
, body
;
5542 struct gimplify_ctx gctx
;
5544 stmt
= gsi_stmt (*gsi_p
);
5546 push_gimplify_context (&gctx
);
5550 lower_rec_input_clauses (gimple_omp_sections_clauses (stmt
),
5551 &ilist
, &dlist
, ctx
);
5553 tgsi
= gsi_start (gimple_omp_body (stmt
));
5554 for (len
= 0; !gsi_end_p (tgsi
); len
++, gsi_next (&tgsi
))
5557 tgsi
= gsi_start (gimple_omp_body (stmt
));
5559 for (i
= 0; i
< len
; i
++, gsi_next (&tgsi
))
5564 sec_start
= gsi_stmt (tgsi
);
5565 sctx
= maybe_lookup_ctx (sec_start
);
5568 gimple_seq_add_stmt (&body
, sec_start
);
5570 lower_omp (gimple_omp_body (sec_start
), sctx
);
5571 gimple_seq_add_seq (&body
, gimple_omp_body (sec_start
));
5572 gimple_omp_set_body (sec_start
, NULL
);
5576 gimple_seq l
= NULL
;
5577 lower_lastprivate_clauses (gimple_omp_sections_clauses (stmt
), NULL
,
5579 gimple_seq_add_seq (&body
, l
);
5580 gimple_omp_section_set_last (sec_start
);
5583 gimple_seq_add_stmt (&body
, gimple_build_omp_return (false));
5586 block
= make_node (BLOCK
);
5587 bind
= gimple_build_bind (NULL
, body
, block
);
5590 lower_reduction_clauses (gimple_omp_sections_clauses (stmt
), &olist
, ctx
);
5592 block
= make_node (BLOCK
);
5593 new_stmt
= gimple_build_bind (NULL
, NULL
, block
);
5595 pop_gimplify_context (new_stmt
);
5596 gimple_bind_append_vars (new_stmt
, ctx
->block_vars
);
5597 BLOCK_VARS (block
) = gimple_bind_vars (bind
);
5598 if (BLOCK_VARS (block
))
5599 TREE_USED (block
) = 1;
5602 gimple_seq_add_seq (&new_body
, ilist
);
5603 gimple_seq_add_stmt (&new_body
, stmt
);
5604 gimple_seq_add_stmt (&new_body
, gimple_build_omp_sections_switch ());
5605 gimple_seq_add_stmt (&new_body
, bind
);
5607 control
= create_tmp_var (unsigned_type_node
, ".section");
5608 t
= gimple_build_omp_continue (control
, control
);
5609 gimple_omp_sections_set_control (stmt
, control
);
5610 gimple_seq_add_stmt (&new_body
, t
);
5612 gimple_seq_add_seq (&new_body
, olist
);
5613 gimple_seq_add_seq (&new_body
, dlist
);
5615 new_body
= maybe_catch_exception (new_body
);
5617 t
= gimple_build_omp_return
5618 (!!find_omp_clause (gimple_omp_sections_clauses (stmt
),
5619 OMP_CLAUSE_NOWAIT
));
5620 gimple_seq_add_stmt (&new_body
, t
);
5622 gimple_bind_set_body (new_stmt
, new_body
);
5623 gimple_omp_set_body (stmt
, NULL
);
5625 gsi_replace (gsi_p
, new_stmt
, true);
5629 /* A subroutine of lower_omp_single. Expand the simple form of
5630 a GIMPLE_OMP_SINGLE, without a copyprivate clause:
5632 if (GOMP_single_start ())
5634 [ GOMP_barrier (); ] -> unless 'nowait' is present.
5636 FIXME. It may be better to delay expanding the logic of this until
5637 pass_expand_omp. The expanded logic may make the job more difficult
5638 to a synchronization analysis pass. */
5641 lower_omp_single_simple (gimple single_stmt
, gimple_seq
*pre_p
)
5643 location_t loc
= gimple_location (single_stmt
);
5644 tree tlabel
= create_artificial_label (loc
);
5645 tree flabel
= create_artificial_label (loc
);
5649 decl
= built_in_decls
[BUILT_IN_GOMP_SINGLE_START
];
5650 lhs
= create_tmp_var (TREE_TYPE (TREE_TYPE (decl
)), NULL
);
5651 call
= gimple_build_call (decl
, 0);
5652 gimple_call_set_lhs (call
, lhs
);
5653 gimple_seq_add_stmt (pre_p
, call
);
5655 cond
= gimple_build_cond (EQ_EXPR
, lhs
,
5656 fold_convert_loc (loc
, TREE_TYPE (lhs
),
5659 gimple_seq_add_stmt (pre_p
, cond
);
5660 gimple_seq_add_stmt (pre_p
, gimple_build_label (tlabel
));
5661 gimple_seq_add_seq (pre_p
, gimple_omp_body (single_stmt
));
5662 gimple_seq_add_stmt (pre_p
, gimple_build_label (flabel
));
5666 /* A subroutine of lower_omp_single. Expand the simple form of
5667 a GIMPLE_OMP_SINGLE, with a copyprivate clause:
5669 #pragma omp single copyprivate (a, b, c)
5671 Create a new structure to hold copies of 'a', 'b' and 'c' and emit:
5674 if ((copyout_p = GOMP_single_copy_start ()) == NULL)
5680 GOMP_single_copy_end (©out);
5691 FIXME. It may be better to delay expanding the logic of this until
5692 pass_expand_omp. The expanded logic may make the job more difficult
5693 to a synchronization analysis pass. */
5696 lower_omp_single_copy (gimple single_stmt
, gimple_seq
*pre_p
, omp_context
*ctx
)
5698 tree ptr_type
, t
, l0
, l1
, l2
;
5699 gimple_seq copyin_seq
;
5700 location_t loc
= gimple_location (single_stmt
);
5702 ctx
->sender_decl
= create_tmp_var (ctx
->record_type
, ".omp_copy_o");
5704 ptr_type
= build_pointer_type (ctx
->record_type
);
5705 ctx
->receiver_decl
= create_tmp_var (ptr_type
, ".omp_copy_i");
5707 l0
= create_artificial_label (loc
);
5708 l1
= create_artificial_label (loc
);
5709 l2
= create_artificial_label (loc
);
5711 t
= build_call_expr_loc (loc
, built_in_decls
[BUILT_IN_GOMP_SINGLE_COPY_START
], 0);
5712 t
= fold_convert_loc (loc
, ptr_type
, t
);
5713 gimplify_assign (ctx
->receiver_decl
, t
, pre_p
);
5715 t
= build2 (EQ_EXPR
, boolean_type_node
, ctx
->receiver_decl
,
5716 build_int_cst (ptr_type
, 0));
5717 t
= build3 (COND_EXPR
, void_type_node
, t
,
5718 build_and_jump (&l0
), build_and_jump (&l1
));
5719 gimplify_and_add (t
, pre_p
);
5721 gimple_seq_add_stmt (pre_p
, gimple_build_label (l0
));
5723 gimple_seq_add_seq (pre_p
, gimple_omp_body (single_stmt
));
5726 lower_copyprivate_clauses (gimple_omp_single_clauses (single_stmt
), pre_p
,
5729 t
= build_fold_addr_expr_loc (loc
, ctx
->sender_decl
);
5730 t
= build_call_expr_loc (loc
, built_in_decls
[BUILT_IN_GOMP_SINGLE_COPY_END
],
5732 gimplify_and_add (t
, pre_p
);
5734 t
= build_and_jump (&l2
);
5735 gimplify_and_add (t
, pre_p
);
5737 gimple_seq_add_stmt (pre_p
, gimple_build_label (l1
));
5739 gimple_seq_add_seq (pre_p
, copyin_seq
);
5741 gimple_seq_add_stmt (pre_p
, gimple_build_label (l2
));
5745 /* Expand code for an OpenMP single directive. */
5748 lower_omp_single (gimple_stmt_iterator
*gsi_p
, omp_context
*ctx
)
5751 gimple t
, bind
, single_stmt
= gsi_stmt (*gsi_p
);
5752 gimple_seq bind_body
, dlist
;
5753 struct gimplify_ctx gctx
;
5755 push_gimplify_context (&gctx
);
5758 lower_rec_input_clauses (gimple_omp_single_clauses (single_stmt
),
5759 &bind_body
, &dlist
, ctx
);
5760 lower_omp (gimple_omp_body (single_stmt
), ctx
);
5762 gimple_seq_add_stmt (&bind_body
, single_stmt
);
5764 if (ctx
->record_type
)
5765 lower_omp_single_copy (single_stmt
, &bind_body
, ctx
);
5767 lower_omp_single_simple (single_stmt
, &bind_body
);
5769 gimple_omp_set_body (single_stmt
, NULL
);
5771 gimple_seq_add_seq (&bind_body
, dlist
);
5773 bind_body
= maybe_catch_exception (bind_body
);
5775 t
= gimple_build_omp_return
5776 (!!find_omp_clause (gimple_omp_single_clauses (single_stmt
),
5777 OMP_CLAUSE_NOWAIT
));
5778 gimple_seq_add_stmt (&bind_body
, t
);
5780 block
= make_node (BLOCK
);
5781 bind
= gimple_build_bind (NULL
, bind_body
, block
);
5783 pop_gimplify_context (bind
);
5785 gimple_bind_append_vars (bind
, ctx
->block_vars
);
5786 BLOCK_VARS (block
) = ctx
->block_vars
;
5787 gsi_replace (gsi_p
, bind
, true);
5788 if (BLOCK_VARS (block
))
5789 TREE_USED (block
) = 1;
5793 /* Expand code for an OpenMP master directive. */
5796 lower_omp_master (gimple_stmt_iterator
*gsi_p
, omp_context
*ctx
)
5798 tree block
, lab
= NULL
, x
;
5799 gimple stmt
= gsi_stmt (*gsi_p
), bind
;
5800 location_t loc
= gimple_location (stmt
);
5802 struct gimplify_ctx gctx
;
5804 push_gimplify_context (&gctx
);
5806 block
= make_node (BLOCK
);
5807 bind
= gimple_build_bind (NULL
, gimple_seq_alloc_with_stmt (stmt
),
5810 x
= build_call_expr_loc (loc
, built_in_decls
[BUILT_IN_OMP_GET_THREAD_NUM
], 0);
5811 x
= build2 (EQ_EXPR
, boolean_type_node
, x
, integer_zero_node
);
5812 x
= build3 (COND_EXPR
, void_type_node
, x
, NULL
, build_and_jump (&lab
));
5814 gimplify_and_add (x
, &tseq
);
5815 gimple_bind_add_seq (bind
, tseq
);
5817 lower_omp (gimple_omp_body (stmt
), ctx
);
5818 gimple_omp_set_body (stmt
, maybe_catch_exception (gimple_omp_body (stmt
)));
5819 gimple_bind_add_seq (bind
, gimple_omp_body (stmt
));
5820 gimple_omp_set_body (stmt
, NULL
);
5822 gimple_bind_add_stmt (bind
, gimple_build_label (lab
));
5824 gimple_bind_add_stmt (bind
, gimple_build_omp_return (true));
5826 pop_gimplify_context (bind
);
5828 gimple_bind_append_vars (bind
, ctx
->block_vars
);
5829 BLOCK_VARS (block
) = ctx
->block_vars
;
5830 gsi_replace (gsi_p
, bind
, true);
5834 /* Expand code for an OpenMP ordered directive. */
5837 lower_omp_ordered (gimple_stmt_iterator
*gsi_p
, omp_context
*ctx
)
5840 gimple stmt
= gsi_stmt (*gsi_p
), bind
, x
;
5841 struct gimplify_ctx gctx
;
5843 push_gimplify_context (&gctx
);
5845 block
= make_node (BLOCK
);
5846 bind
= gimple_build_bind (NULL
, gimple_seq_alloc_with_stmt (stmt
),
5849 x
= gimple_build_call (built_in_decls
[BUILT_IN_GOMP_ORDERED_START
], 0);
5850 gimple_bind_add_stmt (bind
, x
);
5852 lower_omp (gimple_omp_body (stmt
), ctx
);
5853 gimple_omp_set_body (stmt
, maybe_catch_exception (gimple_omp_body (stmt
)));
5854 gimple_bind_add_seq (bind
, gimple_omp_body (stmt
));
5855 gimple_omp_set_body (stmt
, NULL
);
5857 x
= gimple_build_call (built_in_decls
[BUILT_IN_GOMP_ORDERED_END
], 0);
5858 gimple_bind_add_stmt (bind
, x
);
5860 gimple_bind_add_stmt (bind
, gimple_build_omp_return (true));
5862 pop_gimplify_context (bind
);
5864 gimple_bind_append_vars (bind
, ctx
->block_vars
);
5865 BLOCK_VARS (block
) = gimple_bind_vars (bind
);
5866 gsi_replace (gsi_p
, bind
, true);
5870 /* Gimplify a GIMPLE_OMP_CRITICAL statement. This is a relatively simple
5871 substitution of a couple of function calls. But in the NAMED case,
5872 requires that languages coordinate a symbol name. It is therefore
5873 best put here in common code. */
5875 static GTY((param1_is (tree
), param2_is (tree
)))
5876 splay_tree critical_name_mutexes
;
5879 lower_omp_critical (gimple_stmt_iterator
*gsi_p
, omp_context
*ctx
)
5882 tree name
, lock
, unlock
;
5883 gimple stmt
= gsi_stmt (*gsi_p
), bind
;
5884 location_t loc
= gimple_location (stmt
);
5886 struct gimplify_ctx gctx
;
5888 name
= gimple_omp_critical_name (stmt
);
5894 if (!critical_name_mutexes
)
5895 critical_name_mutexes
5896 = splay_tree_new_ggc (splay_tree_compare_pointers
);
5898 n
= splay_tree_lookup (critical_name_mutexes
, (splay_tree_key
) name
);
5903 decl
= create_tmp_var_raw (ptr_type_node
, NULL
);
5905 new_str
= ACONCAT ((".gomp_critical_user_",
5906 IDENTIFIER_POINTER (name
), NULL
));
5907 DECL_NAME (decl
) = get_identifier (new_str
);
5908 TREE_PUBLIC (decl
) = 1;
5909 TREE_STATIC (decl
) = 1;
5910 DECL_COMMON (decl
) = 1;
5911 DECL_ARTIFICIAL (decl
) = 1;
5912 DECL_IGNORED_P (decl
) = 1;
5913 varpool_finalize_decl (decl
);
5915 splay_tree_insert (critical_name_mutexes
, (splay_tree_key
) name
,
5916 (splay_tree_value
) decl
);
5919 decl
= (tree
) n
->value
;
5921 lock
= built_in_decls
[BUILT_IN_GOMP_CRITICAL_NAME_START
];
5922 lock
= build_call_expr_loc (loc
, lock
, 1, build_fold_addr_expr_loc (loc
, decl
));
5924 unlock
= built_in_decls
[BUILT_IN_GOMP_CRITICAL_NAME_END
];
5925 unlock
= build_call_expr_loc (loc
, unlock
, 1,
5926 build_fold_addr_expr_loc (loc
, decl
));
5930 lock
= built_in_decls
[BUILT_IN_GOMP_CRITICAL_START
];
5931 lock
= build_call_expr_loc (loc
, lock
, 0);
5933 unlock
= built_in_decls
[BUILT_IN_GOMP_CRITICAL_END
];
5934 unlock
= build_call_expr_loc (loc
, unlock
, 0);
5937 push_gimplify_context (&gctx
);
5939 block
= make_node (BLOCK
);
5940 bind
= gimple_build_bind (NULL
, gimple_seq_alloc_with_stmt (stmt
), block
);
5942 tbody
= gimple_bind_body (bind
);
5943 gimplify_and_add (lock
, &tbody
);
5944 gimple_bind_set_body (bind
, tbody
);
5946 lower_omp (gimple_omp_body (stmt
), ctx
);
5947 gimple_omp_set_body (stmt
, maybe_catch_exception (gimple_omp_body (stmt
)));
5948 gimple_bind_add_seq (bind
, gimple_omp_body (stmt
));
5949 gimple_omp_set_body (stmt
, NULL
);
5951 tbody
= gimple_bind_body (bind
);
5952 gimplify_and_add (unlock
, &tbody
);
5953 gimple_bind_set_body (bind
, tbody
);
5955 gimple_bind_add_stmt (bind
, gimple_build_omp_return (true));
5957 pop_gimplify_context (bind
);
5958 gimple_bind_append_vars (bind
, ctx
->block_vars
);
5959 BLOCK_VARS (block
) = gimple_bind_vars (bind
);
5960 gsi_replace (gsi_p
, bind
, true);
5964 /* A subroutine of lower_omp_for. Generate code to emit the predicate
5965 for a lastprivate clause. Given a loop control predicate of (V
5966 cond N2), we gate the clause on (!(V cond N2)). The lowered form
5967 is appended to *DLIST, iterator initialization is appended to
5971 lower_omp_for_lastprivate (struct omp_for_data
*fd
, gimple_seq
*body_p
,
5972 gimple_seq
*dlist
, struct omp_context
*ctx
)
5974 tree clauses
, cond
, vinit
;
5975 enum tree_code cond_code
;
5978 cond_code
= fd
->loop
.cond_code
;
5979 cond_code
= cond_code
== LT_EXPR
? GE_EXPR
: LE_EXPR
;
5981 /* When possible, use a strict equality expression. This can let VRP
5982 type optimizations deduce the value and remove a copy. */
5983 if (host_integerp (fd
->loop
.step
, 0))
5985 HOST_WIDE_INT step
= TREE_INT_CST_LOW (fd
->loop
.step
);
5986 if (step
== 1 || step
== -1)
5987 cond_code
= EQ_EXPR
;
5990 cond
= build2 (cond_code
, boolean_type_node
, fd
->loop
.v
, fd
->loop
.n2
);
5992 clauses
= gimple_omp_for_clauses (fd
->for_stmt
);
5994 lower_lastprivate_clauses (clauses
, cond
, &stmts
, ctx
);
5995 if (!gimple_seq_empty_p (stmts
))
5997 gimple_seq_add_seq (&stmts
, *dlist
);
6000 /* Optimize: v = 0; is usually cheaper than v = some_other_constant. */
6001 vinit
= fd
->loop
.n1
;
6002 if (cond_code
== EQ_EXPR
6003 && host_integerp (fd
->loop
.n2
, 0)
6004 && ! integer_zerop (fd
->loop
.n2
))
6005 vinit
= build_int_cst (TREE_TYPE (fd
->loop
.v
), 0);
6007 /* Initialize the iterator variable, so that threads that don't execute
6008 any iterations don't execute the lastprivate clauses by accident. */
6009 gimplify_assign (fd
->loop
.v
, vinit
, body_p
);
6014 /* Lower code for an OpenMP loop directive. */
6017 lower_omp_for (gimple_stmt_iterator
*gsi_p
, omp_context
*ctx
)
6020 struct omp_for_data fd
;
6021 gimple stmt
= gsi_stmt (*gsi_p
), new_stmt
;
6022 gimple_seq omp_for_body
, body
, dlist
;
6024 struct gimplify_ctx gctx
;
6026 push_gimplify_context (&gctx
);
6028 lower_omp (gimple_omp_for_pre_body (stmt
), ctx
);
6029 lower_omp (gimple_omp_body (stmt
), ctx
);
6031 block
= make_node (BLOCK
);
6032 new_stmt
= gimple_build_bind (NULL
, NULL
, block
);
6034 /* Move declaration of temporaries in the loop body before we make
6036 omp_for_body
= gimple_omp_body (stmt
);
6037 if (!gimple_seq_empty_p (omp_for_body
)
6038 && gimple_code (gimple_seq_first_stmt (omp_for_body
)) == GIMPLE_BIND
)
6040 tree vars
= gimple_bind_vars (gimple_seq_first_stmt (omp_for_body
));
6041 gimple_bind_append_vars (new_stmt
, vars
);
6044 /* The pre-body and input clauses go before the lowered GIMPLE_OMP_FOR. */
6047 lower_rec_input_clauses (gimple_omp_for_clauses (stmt
), &body
, &dlist
, ctx
);
6048 gimple_seq_add_seq (&body
, gimple_omp_for_pre_body (stmt
));
6050 /* Lower the header expressions. At this point, we can assume that
6051 the header is of the form:
6053 #pragma omp for (V = VAL1; V {<|>|<=|>=} VAL2; V = V [+-] VAL3)
6055 We just need to make sure that VAL1, VAL2 and VAL3 are lowered
6056 using the .omp_data_s mapping, if needed. */
6057 for (i
= 0; i
< gimple_omp_for_collapse (stmt
); i
++)
6059 rhs_p
= gimple_omp_for_initial_ptr (stmt
, i
);
6060 if (!is_gimple_min_invariant (*rhs_p
))
6061 *rhs_p
= get_formal_tmp_var (*rhs_p
, &body
);
6063 rhs_p
= gimple_omp_for_final_ptr (stmt
, i
);
6064 if (!is_gimple_min_invariant (*rhs_p
))
6065 *rhs_p
= get_formal_tmp_var (*rhs_p
, &body
);
6067 rhs_p
= &TREE_OPERAND (gimple_omp_for_incr (stmt
, i
), 1);
6068 if (!is_gimple_min_invariant (*rhs_p
))
6069 *rhs_p
= get_formal_tmp_var (*rhs_p
, &body
);
6072 /* Once lowered, extract the bounds and clauses. */
6073 extract_omp_for_data (stmt
, &fd
, NULL
);
6075 lower_omp_for_lastprivate (&fd
, &body
, &dlist
, ctx
);
6077 gimple_seq_add_stmt (&body
, stmt
);
6078 gimple_seq_add_seq (&body
, gimple_omp_body (stmt
));
6080 gimple_seq_add_stmt (&body
, gimple_build_omp_continue (fd
.loop
.v
,
6083 /* After the loop, add exit clauses. */
6084 lower_reduction_clauses (gimple_omp_for_clauses (stmt
), &body
, ctx
);
6085 gimple_seq_add_seq (&body
, dlist
);
6087 body
= maybe_catch_exception (body
);
6089 /* Region exit marker goes at the end of the loop body. */
6090 gimple_seq_add_stmt (&body
, gimple_build_omp_return (fd
.have_nowait
));
6092 pop_gimplify_context (new_stmt
);
6094 gimple_bind_append_vars (new_stmt
, ctx
->block_vars
);
6095 BLOCK_VARS (block
) = gimple_bind_vars (new_stmt
);
6096 if (BLOCK_VARS (block
))
6097 TREE_USED (block
) = 1;
6099 gimple_bind_set_body (new_stmt
, body
);
6100 gimple_omp_set_body (stmt
, NULL
);
6101 gimple_omp_for_set_pre_body (stmt
, NULL
);
6102 gsi_replace (gsi_p
, new_stmt
, true);
6105 /* Callback for walk_stmts. Check if the current statement only contains
6106 GIMPLE_OMP_FOR or GIMPLE_OMP_PARALLEL. */
6109 check_combined_parallel (gimple_stmt_iterator
*gsi_p
,
6110 bool *handled_ops_p
,
6111 struct walk_stmt_info
*wi
)
6113 int *info
= (int *) wi
->info
;
6114 gimple stmt
= gsi_stmt (*gsi_p
);
6116 *handled_ops_p
= true;
6117 switch (gimple_code (stmt
))
6121 case GIMPLE_OMP_FOR
:
6122 case GIMPLE_OMP_SECTIONS
:
6123 *info
= *info
== 0 ? 1 : -1;
6132 struct omp_taskcopy_context
6134 /* This field must be at the beginning, as we do "inheritance": Some
6135 callback functions for tree-inline.c (e.g., omp_copy_decl)
6136 receive a copy_body_data pointer that is up-casted to an
6137 omp_context pointer. */
6143 task_copyfn_copy_decl (tree var
, copy_body_data
*cb
)
6145 struct omp_taskcopy_context
*tcctx
= (struct omp_taskcopy_context
*) cb
;
6147 if (splay_tree_lookup (tcctx
->ctx
->sfield_map
, (splay_tree_key
) var
))
6148 return create_tmp_var (TREE_TYPE (var
), NULL
);
6154 task_copyfn_remap_type (struct omp_taskcopy_context
*tcctx
, tree orig_type
)
6156 tree name
, new_fields
= NULL
, type
, f
;
6158 type
= lang_hooks
.types
.make_type (RECORD_TYPE
);
6159 name
= DECL_NAME (TYPE_NAME (orig_type
));
6160 name
= build_decl (gimple_location (tcctx
->ctx
->stmt
),
6161 TYPE_DECL
, name
, type
);
6162 TYPE_NAME (type
) = name
;
6164 for (f
= TYPE_FIELDS (orig_type
); f
; f
= TREE_CHAIN (f
))
6166 tree new_f
= copy_node (f
);
6167 DECL_CONTEXT (new_f
) = type
;
6168 TREE_TYPE (new_f
) = remap_type (TREE_TYPE (f
), &tcctx
->cb
);
6169 TREE_CHAIN (new_f
) = new_fields
;
6170 walk_tree (&DECL_SIZE (new_f
), copy_tree_body_r
, &tcctx
->cb
, NULL
);
6171 walk_tree (&DECL_SIZE_UNIT (new_f
), copy_tree_body_r
, &tcctx
->cb
, NULL
);
6172 walk_tree (&DECL_FIELD_OFFSET (new_f
), copy_tree_body_r
,
6175 *pointer_map_insert (tcctx
->cb
.decl_map
, f
) = new_f
;
6177 TYPE_FIELDS (type
) = nreverse (new_fields
);
6182 /* Create task copyfn. */
6185 create_task_copyfn (gimple task_stmt
, omp_context
*ctx
)
6187 struct function
*child_cfun
;
6188 tree child_fn
, t
, c
, src
, dst
, f
, sf
, arg
, sarg
, decl
;
6189 tree record_type
, srecord_type
, bind
, list
;
6190 bool record_needs_remap
= false, srecord_needs_remap
= false;
6192 struct omp_taskcopy_context tcctx
;
6193 struct gimplify_ctx gctx
;
6194 location_t loc
= gimple_location (task_stmt
);
6196 child_fn
= gimple_omp_task_copy_fn (task_stmt
);
6197 child_cfun
= DECL_STRUCT_FUNCTION (child_fn
);
6198 gcc_assert (child_cfun
->cfg
== NULL
);
6199 child_cfun
->dont_save_pending_sizes_p
= 1;
6200 DECL_SAVED_TREE (child_fn
) = alloc_stmt_list ();
6202 /* Reset DECL_CONTEXT on function arguments. */
6203 for (t
= DECL_ARGUMENTS (child_fn
); t
; t
= TREE_CHAIN (t
))
6204 DECL_CONTEXT (t
) = child_fn
;
6206 /* Populate the function. */
6207 push_gimplify_context (&gctx
);
6208 current_function_decl
= child_fn
;
6210 bind
= build3 (BIND_EXPR
, void_type_node
, NULL
, NULL
, NULL
);
6211 TREE_SIDE_EFFECTS (bind
) = 1;
6213 DECL_SAVED_TREE (child_fn
) = bind
;
6214 DECL_SOURCE_LOCATION (child_fn
) = gimple_location (task_stmt
);
6216 /* Remap src and dst argument types if needed. */
6217 record_type
= ctx
->record_type
;
6218 srecord_type
= ctx
->srecord_type
;
6219 for (f
= TYPE_FIELDS (record_type
); f
; f
= TREE_CHAIN (f
))
6220 if (variably_modified_type_p (TREE_TYPE (f
), ctx
->cb
.src_fn
))
6222 record_needs_remap
= true;
6225 for (f
= TYPE_FIELDS (srecord_type
); f
; f
= TREE_CHAIN (f
))
6226 if (variably_modified_type_p (TREE_TYPE (f
), ctx
->cb
.src_fn
))
6228 srecord_needs_remap
= true;
6232 if (record_needs_remap
|| srecord_needs_remap
)
6234 memset (&tcctx
, '\0', sizeof (tcctx
));
6235 tcctx
.cb
.src_fn
= ctx
->cb
.src_fn
;
6236 tcctx
.cb
.dst_fn
= child_fn
;
6237 tcctx
.cb
.src_node
= cgraph_node (tcctx
.cb
.src_fn
);
6238 tcctx
.cb
.dst_node
= tcctx
.cb
.src_node
;
6239 tcctx
.cb
.src_cfun
= ctx
->cb
.src_cfun
;
6240 tcctx
.cb
.copy_decl
= task_copyfn_copy_decl
;
6241 tcctx
.cb
.eh_lp_nr
= 0;
6242 tcctx
.cb
.transform_call_graph_edges
= CB_CGE_MOVE
;
6243 tcctx
.cb
.decl_map
= pointer_map_create ();
6246 if (record_needs_remap
)
6247 record_type
= task_copyfn_remap_type (&tcctx
, record_type
);
6248 if (srecord_needs_remap
)
6249 srecord_type
= task_copyfn_remap_type (&tcctx
, srecord_type
);
6252 tcctx
.cb
.decl_map
= NULL
;
6254 push_cfun (child_cfun
);
6256 arg
= DECL_ARGUMENTS (child_fn
);
6257 TREE_TYPE (arg
) = build_pointer_type (record_type
);
6258 sarg
= TREE_CHAIN (arg
);
6259 TREE_TYPE (sarg
) = build_pointer_type (srecord_type
);
6261 /* First pass: initialize temporaries used in record_type and srecord_type
6262 sizes and field offsets. */
6263 if (tcctx
.cb
.decl_map
)
6264 for (c
= gimple_omp_task_clauses (task_stmt
); c
; c
= OMP_CLAUSE_CHAIN (c
))
6265 if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_FIRSTPRIVATE
)
6269 decl
= OMP_CLAUSE_DECL (c
);
6270 p
= (tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, decl
);
6273 n
= splay_tree_lookup (ctx
->sfield_map
, (splay_tree_key
) decl
);
6274 sf
= (tree
) n
->value
;
6275 sf
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, sf
);
6276 src
= build_fold_indirect_ref_loc (loc
, sarg
);
6277 src
= build3 (COMPONENT_REF
, TREE_TYPE (sf
), src
, sf
, NULL
);
6278 t
= build2 (MODIFY_EXPR
, TREE_TYPE (*p
), *p
, src
);
6279 append_to_statement_list (t
, &list
);
6282 /* Second pass: copy shared var pointers and copy construct non-VLA
6283 firstprivate vars. */
6284 for (c
= gimple_omp_task_clauses (task_stmt
); c
; c
= OMP_CLAUSE_CHAIN (c
))
6285 switch (OMP_CLAUSE_CODE (c
))
6287 case OMP_CLAUSE_SHARED
:
6288 decl
= OMP_CLAUSE_DECL (c
);
6289 n
= splay_tree_lookup (ctx
->field_map
, (splay_tree_key
) decl
);
6292 f
= (tree
) n
->value
;
6293 if (tcctx
.cb
.decl_map
)
6294 f
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, f
);
6295 n
= splay_tree_lookup (ctx
->sfield_map
, (splay_tree_key
) decl
);
6296 sf
= (tree
) n
->value
;
6297 if (tcctx
.cb
.decl_map
)
6298 sf
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, sf
);
6299 src
= build_fold_indirect_ref_loc (loc
, sarg
);
6300 src
= build3 (COMPONENT_REF
, TREE_TYPE (sf
), src
, sf
, NULL
);
6301 dst
= build_fold_indirect_ref_loc (loc
, arg
);
6302 dst
= build3 (COMPONENT_REF
, TREE_TYPE (f
), dst
, f
, NULL
);
6303 t
= build2 (MODIFY_EXPR
, TREE_TYPE (dst
), dst
, src
);
6304 append_to_statement_list (t
, &list
);
6306 case OMP_CLAUSE_FIRSTPRIVATE
:
6307 decl
= OMP_CLAUSE_DECL (c
);
6308 if (is_variable_sized (decl
))
6310 n
= splay_tree_lookup (ctx
->field_map
, (splay_tree_key
) decl
);
6313 f
= (tree
) n
->value
;
6314 if (tcctx
.cb
.decl_map
)
6315 f
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, f
);
6316 n
= splay_tree_lookup (ctx
->sfield_map
, (splay_tree_key
) decl
);
6319 sf
= (tree
) n
->value
;
6320 if (tcctx
.cb
.decl_map
)
6321 sf
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, sf
);
6322 src
= build_fold_indirect_ref_loc (loc
, sarg
);
6323 src
= build3 (COMPONENT_REF
, TREE_TYPE (sf
), src
, sf
, NULL
);
6324 if (use_pointer_for_field (decl
, NULL
) || is_reference (decl
))
6325 src
= build_fold_indirect_ref_loc (loc
, src
);
6329 dst
= build_fold_indirect_ref_loc (loc
, arg
);
6330 dst
= build3 (COMPONENT_REF
, TREE_TYPE (f
), dst
, f
, NULL
);
6331 t
= lang_hooks
.decls
.omp_clause_copy_ctor (c
, dst
, src
);
6332 append_to_statement_list (t
, &list
);
6334 case OMP_CLAUSE_PRIVATE
:
6335 if (! OMP_CLAUSE_PRIVATE_OUTER_REF (c
))
6337 decl
= OMP_CLAUSE_DECL (c
);
6338 n
= splay_tree_lookup (ctx
->field_map
, (splay_tree_key
) decl
);
6339 f
= (tree
) n
->value
;
6340 if (tcctx
.cb
.decl_map
)
6341 f
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, f
);
6342 n
= splay_tree_lookup (ctx
->sfield_map
, (splay_tree_key
) decl
);
6345 sf
= (tree
) n
->value
;
6346 if (tcctx
.cb
.decl_map
)
6347 sf
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, sf
);
6348 src
= build_fold_indirect_ref_loc (loc
, sarg
);
6349 src
= build3 (COMPONENT_REF
, TREE_TYPE (sf
), src
, sf
, NULL
);
6350 if (use_pointer_for_field (decl
, NULL
))
6351 src
= build_fold_indirect_ref_loc (loc
, src
);
6355 dst
= build_fold_indirect_ref_loc (loc
, arg
);
6356 dst
= build3 (COMPONENT_REF
, TREE_TYPE (f
), dst
, f
, NULL
);
6357 t
= build2 (MODIFY_EXPR
, TREE_TYPE (dst
), dst
, src
);
6358 append_to_statement_list (t
, &list
);
6364 /* Last pass: handle VLA firstprivates. */
6365 if (tcctx
.cb
.decl_map
)
6366 for (c
= gimple_omp_task_clauses (task_stmt
); c
; c
= OMP_CLAUSE_CHAIN (c
))
6367 if (OMP_CLAUSE_CODE (c
) == OMP_CLAUSE_FIRSTPRIVATE
)
6371 decl
= OMP_CLAUSE_DECL (c
);
6372 if (!is_variable_sized (decl
))
6374 n
= splay_tree_lookup (ctx
->field_map
, (splay_tree_key
) decl
);
6377 f
= (tree
) n
->value
;
6378 f
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, f
);
6379 gcc_assert (DECL_HAS_VALUE_EXPR_P (decl
));
6380 ind
= DECL_VALUE_EXPR (decl
);
6381 gcc_assert (TREE_CODE (ind
) == INDIRECT_REF
);
6382 gcc_assert (DECL_P (TREE_OPERAND (ind
, 0)));
6383 n
= splay_tree_lookup (ctx
->sfield_map
,
6384 (splay_tree_key
) TREE_OPERAND (ind
, 0));
6385 sf
= (tree
) n
->value
;
6386 sf
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, sf
);
6387 src
= build_fold_indirect_ref_loc (loc
, sarg
);
6388 src
= build3 (COMPONENT_REF
, TREE_TYPE (sf
), src
, sf
, NULL
);
6389 src
= build_fold_indirect_ref_loc (loc
, src
);
6390 dst
= build_fold_indirect_ref_loc (loc
, arg
);
6391 dst
= build3 (COMPONENT_REF
, TREE_TYPE (f
), dst
, f
, NULL
);
6392 t
= lang_hooks
.decls
.omp_clause_copy_ctor (c
, dst
, src
);
6393 append_to_statement_list (t
, &list
);
6394 n
= splay_tree_lookup (ctx
->field_map
,
6395 (splay_tree_key
) TREE_OPERAND (ind
, 0));
6396 df
= (tree
) n
->value
;
6397 df
= *(tree
*) pointer_map_contains (tcctx
.cb
.decl_map
, df
);
6398 ptr
= build_fold_indirect_ref_loc (loc
, arg
);
6399 ptr
= build3 (COMPONENT_REF
, TREE_TYPE (df
), ptr
, df
, NULL
);
6400 t
= build2 (MODIFY_EXPR
, TREE_TYPE (ptr
), ptr
,
6401 build_fold_addr_expr_loc (loc
, dst
));
6402 append_to_statement_list (t
, &list
);
6405 t
= build1 (RETURN_EXPR
, void_type_node
, NULL
);
6406 append_to_statement_list (t
, &list
);
6408 if (tcctx
.cb
.decl_map
)
6409 pointer_map_destroy (tcctx
.cb
.decl_map
);
6410 pop_gimplify_context (NULL
);
6411 BIND_EXPR_BODY (bind
) = list
;
6413 current_function_decl
= ctx
->cb
.src_fn
;
6416 /* Lower the OpenMP parallel or task directive in the current statement
6417 in GSI_P. CTX holds context information for the directive. */
6420 lower_omp_taskreg (gimple_stmt_iterator
*gsi_p
, omp_context
*ctx
)
6424 gimple stmt
= gsi_stmt (*gsi_p
);
6425 gimple par_bind
, bind
;
6426 gimple_seq par_body
, olist
, ilist
, par_olist
, par_ilist
, new_body
;
6427 struct gimplify_ctx gctx
;
6428 location_t loc
= gimple_location (stmt
);
6430 clauses
= gimple_omp_taskreg_clauses (stmt
);
6431 par_bind
= gimple_seq_first_stmt (gimple_omp_body (stmt
));
6432 par_body
= gimple_bind_body (par_bind
);
6433 child_fn
= ctx
->cb
.dst_fn
;
6434 if (gimple_code (stmt
) == GIMPLE_OMP_PARALLEL
6435 && !gimple_omp_parallel_combined_p (stmt
))
6437 struct walk_stmt_info wi
;
6440 memset (&wi
, 0, sizeof (wi
));
6443 walk_gimple_seq (par_body
, check_combined_parallel
, NULL
, &wi
);
6445 gimple_omp_parallel_set_combined_p (stmt
, true);
6447 if (ctx
->srecord_type
)
6448 create_task_copyfn (stmt
, ctx
);
6450 push_gimplify_context (&gctx
);
6454 lower_rec_input_clauses (clauses
, &par_ilist
, &par_olist
, ctx
);
6455 lower_omp (par_body
, ctx
);
6456 if (gimple_code (stmt
) == GIMPLE_OMP_PARALLEL
)
6457 lower_reduction_clauses (clauses
, &par_olist
, ctx
);
6459 /* Declare all the variables created by mapping and the variables
6460 declared in the scope of the parallel body. */
6461 record_vars_into (ctx
->block_vars
, child_fn
);
6462 record_vars_into (gimple_bind_vars (par_bind
), child_fn
);
6464 if (ctx
->record_type
)
6467 = create_tmp_var (ctx
->srecord_type
? ctx
->srecord_type
6468 : ctx
->record_type
, ".omp_data_o");
6469 TREE_ADDRESSABLE (ctx
->sender_decl
) = 1;
6470 gimple_omp_taskreg_set_data_arg (stmt
, ctx
->sender_decl
);
6475 lower_send_clauses (clauses
, &ilist
, &olist
, ctx
);
6476 lower_send_shared_vars (&ilist
, &olist
, ctx
);
6478 /* Once all the expansions are done, sequence all the different
6479 fragments inside gimple_omp_body. */
6483 if (ctx
->record_type
)
6485 t
= build_fold_addr_expr_loc (loc
, ctx
->sender_decl
);
6486 /* fixup_child_record_type might have changed receiver_decl's type. */
6487 t
= fold_convert_loc (loc
, TREE_TYPE (ctx
->receiver_decl
), t
);
6488 gimple_seq_add_stmt (&new_body
,
6489 gimple_build_assign (ctx
->receiver_decl
, t
));
6492 gimple_seq_add_seq (&new_body
, par_ilist
);
6493 gimple_seq_add_seq (&new_body
, par_body
);
6494 gimple_seq_add_seq (&new_body
, par_olist
);
6495 new_body
= maybe_catch_exception (new_body
);
6496 gimple_seq_add_stmt (&new_body
, gimple_build_omp_return (false));
6497 gimple_omp_set_body (stmt
, new_body
);
6499 bind
= gimple_build_bind (NULL
, NULL
, gimple_bind_block (par_bind
));
6500 gimple_bind_add_stmt (bind
, stmt
);
6503 gimple_seq_add_stmt (&ilist
, bind
);
6504 gimple_seq_add_seq (&ilist
, olist
);
6505 bind
= gimple_build_bind (NULL
, ilist
, NULL
);
6508 gsi_replace (gsi_p
, bind
, true);
6510 pop_gimplify_context (NULL
);
6513 /* Callback for lower_omp_1. Return non-NULL if *tp needs to be
6514 regimplified. If DATA is non-NULL, lower_omp_1 is outside
6515 of OpenMP context, but with task_shared_vars set. */
6518 lower_omp_regimplify_p (tree
*tp
, int *walk_subtrees
,
6523 /* Any variable with DECL_VALUE_EXPR needs to be regimplified. */
6524 if (TREE_CODE (t
) == VAR_DECL
&& data
== NULL
&& DECL_HAS_VALUE_EXPR_P (t
))
6527 if (task_shared_vars
6529 && bitmap_bit_p (task_shared_vars
, DECL_UID (t
)))
6532 /* If a global variable has been privatized, TREE_CONSTANT on
6533 ADDR_EXPR might be wrong. */
6534 if (data
== NULL
&& TREE_CODE (t
) == ADDR_EXPR
)
6535 recompute_tree_invariant_for_addr_expr (t
);
6537 *walk_subtrees
= !TYPE_P (t
) && !DECL_P (t
);
6542 lower_omp_1 (gimple_stmt_iterator
*gsi_p
, omp_context
*ctx
)
6544 gimple stmt
= gsi_stmt (*gsi_p
);
6545 struct walk_stmt_info wi
;
6547 if (gimple_has_location (stmt
))
6548 input_location
= gimple_location (stmt
);
6550 if (task_shared_vars
)
6551 memset (&wi
, '\0', sizeof (wi
));
6553 /* If we have issued syntax errors, avoid doing any heavy lifting.
6554 Just replace the OpenMP directives with a NOP to avoid
6555 confusing RTL expansion. */
6556 if (errorcount
&& is_gimple_omp (stmt
))
6558 gsi_replace (gsi_p
, gimple_build_nop (), true);
6562 switch (gimple_code (stmt
))
6565 if ((ctx
|| task_shared_vars
)
6566 && (walk_tree (gimple_cond_lhs_ptr (stmt
), lower_omp_regimplify_p
,
6567 ctx
? NULL
: &wi
, NULL
)
6568 || walk_tree (gimple_cond_rhs_ptr (stmt
), lower_omp_regimplify_p
,
6569 ctx
? NULL
: &wi
, NULL
)))
6570 gimple_regimplify_operands (stmt
, gsi_p
);
6573 lower_omp (gimple_catch_handler (stmt
), ctx
);
6575 case GIMPLE_EH_FILTER
:
6576 lower_omp (gimple_eh_filter_failure (stmt
), ctx
);
6579 lower_omp (gimple_try_eval (stmt
), ctx
);
6580 lower_omp (gimple_try_cleanup (stmt
), ctx
);
6583 lower_omp (gimple_bind_body (stmt
), ctx
);
6585 case GIMPLE_OMP_PARALLEL
:
6586 case GIMPLE_OMP_TASK
:
6587 ctx
= maybe_lookup_ctx (stmt
);
6588 lower_omp_taskreg (gsi_p
, ctx
);
6590 case GIMPLE_OMP_FOR
:
6591 ctx
= maybe_lookup_ctx (stmt
);
6593 lower_omp_for (gsi_p
, ctx
);
6595 case GIMPLE_OMP_SECTIONS
:
6596 ctx
= maybe_lookup_ctx (stmt
);
6598 lower_omp_sections (gsi_p
, ctx
);
6600 case GIMPLE_OMP_SINGLE
:
6601 ctx
= maybe_lookup_ctx (stmt
);
6603 lower_omp_single (gsi_p
, ctx
);
6605 case GIMPLE_OMP_MASTER
:
6606 ctx
= maybe_lookup_ctx (stmt
);
6608 lower_omp_master (gsi_p
, ctx
);
6610 case GIMPLE_OMP_ORDERED
:
6611 ctx
= maybe_lookup_ctx (stmt
);
6613 lower_omp_ordered (gsi_p
, ctx
);
6615 case GIMPLE_OMP_CRITICAL
:
6616 ctx
= maybe_lookup_ctx (stmt
);
6618 lower_omp_critical (gsi_p
, ctx
);
6620 case GIMPLE_OMP_ATOMIC_LOAD
:
6621 if ((ctx
|| task_shared_vars
)
6622 && walk_tree (gimple_omp_atomic_load_rhs_ptr (stmt
),
6623 lower_omp_regimplify_p
, ctx
? NULL
: &wi
, NULL
))
6624 gimple_regimplify_operands (stmt
, gsi_p
);
6627 if ((ctx
|| task_shared_vars
)
6628 && walk_gimple_op (stmt
, lower_omp_regimplify_p
,
6630 gimple_regimplify_operands (stmt
, gsi_p
);
6636 lower_omp (gimple_seq body
, omp_context
*ctx
)
6638 location_t saved_location
= input_location
;
6639 gimple_stmt_iterator gsi
= gsi_start (body
);
6640 for (gsi
= gsi_start (body
); !gsi_end_p (gsi
); gsi_next (&gsi
))
6641 lower_omp_1 (&gsi
, ctx
);
6642 input_location
= saved_location
;
6645 /* Main entry point. */
6648 execute_lower_omp (void)
6652 /* This pass always runs, to provide PROP_gimple_lomp.
6653 But there is nothing to do unless -fopenmp is given. */
6654 if (flag_openmp
== 0)
6657 all_contexts
= splay_tree_new (splay_tree_compare_pointers
, 0,
6658 delete_omp_context
);
6660 body
= gimple_body (current_function_decl
);
6661 scan_omp (body
, NULL
);
6662 gcc_assert (taskreg_nesting_level
== 0);
6664 if (all_contexts
->root
)
6666 struct gimplify_ctx gctx
;
6668 if (task_shared_vars
)
6669 push_gimplify_context (&gctx
);
6670 lower_omp (body
, NULL
);
6671 if (task_shared_vars
)
6672 pop_gimplify_context (NULL
);
6677 splay_tree_delete (all_contexts
);
6678 all_contexts
= NULL
;
6680 BITMAP_FREE (task_shared_vars
);
6684 struct gimple_opt_pass pass_lower_omp
=
6688 "omplower", /* name */
6690 execute_lower_omp
, /* execute */
6693 0, /* static_pass_number */
6694 TV_NONE
, /* tv_id */
6695 PROP_gimple_any
, /* properties_required */
6696 PROP_gimple_lomp
, /* properties_provided */
6697 0, /* properties_destroyed */
6698 0, /* todo_flags_start */
6699 TODO_dump_func
/* todo_flags_finish */
6703 /* The following is a utility to diagnose OpenMP structured block violations.
6704 It is not part of the "omplower" pass, as that's invoked too late. It
6705 should be invoked by the respective front ends after gimplification. */
6707 static splay_tree all_labels
;
6709 /* Check for mismatched contexts and generate an error if needed. Return
6710 true if an error is detected. */
6713 diagnose_sb_0 (gimple_stmt_iterator
*gsi_p
,
6714 gimple branch_ctx
, gimple label_ctx
)
6716 if (label_ctx
== branch_ctx
)
6721 Previously we kept track of the label's entire context in diagnose_sb_[12]
6722 so we could traverse it and issue a correct "exit" or "enter" error
6723 message upon a structured block violation.
6725 We built the context by building a list with tree_cons'ing, but there is
6726 no easy counterpart in gimple tuples. It seems like far too much work
6727 for issuing exit/enter error messages. If someone really misses the
6728 distinct error message... patches welcome.
6732 /* Try to avoid confusing the user by producing and error message
6733 with correct "exit" or "enter" verbiage. We prefer "exit"
6734 unless we can show that LABEL_CTX is nested within BRANCH_CTX. */
6735 if (branch_ctx
== NULL
)
6741 if (TREE_VALUE (label_ctx
) == branch_ctx
)
6746 label_ctx
= TREE_CHAIN (label_ctx
);
6751 error ("invalid exit from OpenMP structured block");
6753 error ("invalid entry to OpenMP structured block");
6756 /* If it's obvious we have an invalid entry, be specific about the error. */
6757 if (branch_ctx
== NULL
)
6758 error ("invalid entry to OpenMP structured block");
6760 /* Otherwise, be vague and lazy, but efficient. */
6761 error ("invalid branch to/from an OpenMP structured block");
6763 gsi_replace (gsi_p
, gimple_build_nop (), false);
6767 /* Pass 1: Create a minimal tree of OpenMP structured blocks, and record
6768 where each label is found. */
6771 diagnose_sb_1 (gimple_stmt_iterator
*gsi_p
, bool *handled_ops_p
,
6772 struct walk_stmt_info
*wi
)
6774 gimple context
= (gimple
) wi
->info
;
6775 gimple inner_context
;
6776 gimple stmt
= gsi_stmt (*gsi_p
);
6778 *handled_ops_p
= true;
6780 switch (gimple_code (stmt
))
6784 case GIMPLE_OMP_PARALLEL
:
6785 case GIMPLE_OMP_TASK
:
6786 case GIMPLE_OMP_SECTIONS
:
6787 case GIMPLE_OMP_SINGLE
:
6788 case GIMPLE_OMP_SECTION
:
6789 case GIMPLE_OMP_MASTER
:
6790 case GIMPLE_OMP_ORDERED
:
6791 case GIMPLE_OMP_CRITICAL
:
6792 /* The minimal context here is just the current OMP construct. */
6793 inner_context
= stmt
;
6794 wi
->info
= inner_context
;
6795 walk_gimple_seq (gimple_omp_body (stmt
), diagnose_sb_1
, NULL
, wi
);
6799 case GIMPLE_OMP_FOR
:
6800 inner_context
= stmt
;
6801 wi
->info
= inner_context
;
6802 /* gimple_omp_for_{index,initial,final} are all DECLs; no need to
6804 walk_gimple_seq (gimple_omp_for_pre_body (stmt
),
6805 diagnose_sb_1
, NULL
, wi
);
6806 walk_gimple_seq (gimple_omp_body (stmt
), diagnose_sb_1
, NULL
, wi
);
6811 splay_tree_insert (all_labels
, (splay_tree_key
) gimple_label_label (stmt
),
6812 (splay_tree_value
) context
);
6822 /* Pass 2: Check each branch and see if its context differs from that of
6823 the destination label's context. */
6826 diagnose_sb_2 (gimple_stmt_iterator
*gsi_p
, bool *handled_ops_p
,
6827 struct walk_stmt_info
*wi
)
6829 gimple context
= (gimple
) wi
->info
;
6831 gimple stmt
= gsi_stmt (*gsi_p
);
6833 *handled_ops_p
= true;
6835 switch (gimple_code (stmt
))
6839 case GIMPLE_OMP_PARALLEL
:
6840 case GIMPLE_OMP_TASK
:
6841 case GIMPLE_OMP_SECTIONS
:
6842 case GIMPLE_OMP_SINGLE
:
6843 case GIMPLE_OMP_SECTION
:
6844 case GIMPLE_OMP_MASTER
:
6845 case GIMPLE_OMP_ORDERED
:
6846 case GIMPLE_OMP_CRITICAL
:
6848 walk_gimple_seq (gimple_omp_body (stmt
), diagnose_sb_2
, NULL
, wi
);
6852 case GIMPLE_OMP_FOR
:
6854 /* gimple_omp_for_{index,initial,final} are all DECLs; no need to
6856 walk_gimple_seq (gimple_omp_for_pre_body (stmt
),
6857 diagnose_sb_2
, NULL
, wi
);
6858 walk_gimple_seq (gimple_omp_body (stmt
), diagnose_sb_2
, NULL
, wi
);
6864 tree lab
= gimple_cond_true_label (stmt
);
6867 n
= splay_tree_lookup (all_labels
,
6868 (splay_tree_key
) lab
);
6869 diagnose_sb_0 (gsi_p
, context
,
6870 n
? (gimple
) n
->value
: NULL
);
6872 lab
= gimple_cond_false_label (stmt
);
6875 n
= splay_tree_lookup (all_labels
,
6876 (splay_tree_key
) lab
);
6877 diagnose_sb_0 (gsi_p
, context
,
6878 n
? (gimple
) n
->value
: NULL
);
6885 tree lab
= gimple_goto_dest (stmt
);
6886 if (TREE_CODE (lab
) != LABEL_DECL
)
6889 n
= splay_tree_lookup (all_labels
, (splay_tree_key
) lab
);
6890 diagnose_sb_0 (gsi_p
, context
, n
? (gimple
) n
->value
: NULL
);
6897 for (i
= 0; i
< gimple_switch_num_labels (stmt
); ++i
)
6899 tree lab
= CASE_LABEL (gimple_switch_label (stmt
, i
));
6900 n
= splay_tree_lookup (all_labels
, (splay_tree_key
) lab
);
6901 if (n
&& diagnose_sb_0 (gsi_p
, context
, (gimple
) n
->value
))
6908 diagnose_sb_0 (gsi_p
, context
, NULL
);
6919 diagnose_omp_structured_block_errors (void)
6921 struct walk_stmt_info wi
;
6922 gimple_seq body
= gimple_body (current_function_decl
);
6924 all_labels
= splay_tree_new (splay_tree_compare_pointers
, 0, 0);
6926 memset (&wi
, 0, sizeof (wi
));
6927 walk_gimple_seq (body
, diagnose_sb_1
, NULL
, &wi
);
6929 memset (&wi
, 0, sizeof (wi
));
6930 wi
.want_locations
= true;
6931 walk_gimple_seq (body
, diagnose_sb_2
, NULL
, &wi
);
6933 splay_tree_delete (all_labels
);
6940 gate_diagnose_omp_blocks (void)
6942 return flag_openmp
!= 0;
6945 struct gimple_opt_pass pass_diagnose_omp_blocks
=
6949 "*diagnose_omp_blocks", /* name */
6950 gate_diagnose_omp_blocks
, /* gate */
6951 diagnose_omp_structured_block_errors
, /* execute */
6954 0, /* static_pass_number */
6955 TV_NONE
, /* tv_id */
6956 PROP_gimple_any
, /* properties_required */
6957 0, /* properties_provided */
6958 0, /* properties_destroyed */
6959 0, /* todo_flags_start */
6960 0, /* todo_flags_finish */
6964 #include "gt-omp-low.h"