1 /* Control flow functions for trees.
2 Copyright (C) 2001-2025 Free Software Foundation, Inc.
3 Contributed by Diego Novillo <dnovillo@redhat.com>
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3, or (at your option)
12 GCC is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING3. If not see
19 <http://www.gnu.org/licenses/>. */
23 #include "coretypes.h"
30 #include "tree-pass.h"
33 #include "gimple-pretty-print.h"
34 #include "diagnostic-core.h"
35 #include "fold-const.h"
36 #include "trans-mem.h"
37 #include "stor-layout.h"
38 #include "print-tree.h"
40 #include "gimple-iterator.h"
41 #include "gimple-fold.h"
43 #include "gimplify-me.h"
44 #include "gimple-walk.h"
46 #include "tree-ssa-loop-manip.h"
47 #include "tree-ssa-loop-niter.h"
48 #include "tree-into-ssa.h"
53 #include "tree-ssa-propagate.h"
54 #include "value-prof.h"
55 #include "tree-inline.h"
56 #include "tree-ssa-live.h"
57 #include "tree-ssa-dce.h"
58 #include "omp-general.h"
59 #include "omp-expand.h"
60 #include "tree-cfgcleanup.h"
68 #include "gcc-urlifier.h"
70 /* This file contains functions for building the Control Flow Graph (CFG)
71 for a function tree. */
73 /* Local declarations. */
75 /* Initial capacity for the basic block array. */
76 static const int initial_cfg_capacity
= 20;
78 /* This hash table allows us to efficiently lookup all CASE_LABEL_EXPRs
79 which use a particular edge. The CASE_LABEL_EXPRs are chained together
80 via their CASE_CHAIN field, which we clear after we're done with the
81 hash table to prevent problems with duplication of GIMPLE_SWITCHes.
83 Access to this list of CASE_LABEL_EXPRs allows us to efficiently
84 update the case vector in response to edge redirections.
86 Right now this table is set up and torn down at key points in the
87 compilation process. It would be nice if we could make the table
88 more persistent. The key is getting notification of changes to
89 the CFG (particularly edge removal, creation and redirection). */
91 static hash_map
<edge
, tree
> *edge_to_cases
;
93 /* If we record edge_to_cases, this bitmap will hold indexes
94 of basic blocks that end in a GIMPLE_SWITCH which we touched
95 due to edge manipulations. */
97 static bitmap touched_switch_bbs
;
99 /* OpenMP region idxs for blocks during cfg pass. */
100 static vec
<int> bb_to_omp_idx
;
102 /* CFG statistics. */
105 long num_merged_labels
;
108 static struct cfg_stats_d cfg_stats
;
110 /* Data to pass to replace_block_vars_by_duplicates_1. */
111 struct replace_decls_d
113 hash_map
<tree
, tree
> *vars_map
;
117 /* Hash table to store last discriminator assigned for each locus. */
118 struct locus_discrim_map
124 /* Hashtable helpers. */
126 struct locus_discrim_hasher
: free_ptr_hash
<locus_discrim_map
>
128 static inline hashval_t
hash (const locus_discrim_map
*);
129 static inline bool equal (const locus_discrim_map
*,
130 const locus_discrim_map
*);
133 /* Trivial hash function for a location_t. ITEM is a pointer to
134 a hash table entry that maps a location_t to a discriminator. */
137 locus_discrim_hasher::hash (const locus_discrim_map
*item
)
139 return item
->location_line
;
142 /* Equality function for the locus-to-discriminator map. A and B
143 point to the two hash table entries to compare. */
146 locus_discrim_hasher::equal (const locus_discrim_map
*a
,
147 const locus_discrim_map
*b
)
149 return a
->location_line
== b
->location_line
;
152 static hash_table
<locus_discrim_hasher
> *discriminator_per_locus
;
154 /* Basic blocks and flowgraphs. */
155 static void make_blocks (gimple_seq
);
158 static void make_edges (void);
159 static void assign_discriminators (void);
160 static void make_cond_expr_edges (basic_block
);
161 static void make_gimple_switch_edges (gswitch
*, basic_block
);
162 static bool make_goto_expr_edges (basic_block
);
163 static void make_gimple_asm_edges (basic_block
);
164 static edge
gimple_redirect_edge_and_branch (edge
, basic_block
);
165 static edge
gimple_try_redirect_by_replacing_jump (edge
, basic_block
);
167 /* Various helpers. */
168 static inline bool stmt_starts_bb_p (gimple
*, gimple
*);
169 static bool gimple_verify_flow_info (void);
170 static void gimple_make_forwarder_block (edge
);
171 static gimple
*first_non_label_stmt (basic_block
);
172 static bool verify_gimple_transaction (gtransaction
*);
173 static bool call_can_make_abnormal_goto (gimple
*);
175 /* Flowgraph optimization and cleanup. */
176 static void gimple_merge_blocks (basic_block
, basic_block
);
177 static bool gimple_can_merge_blocks_p (basic_block
, basic_block
);
178 static void remove_bb (basic_block
);
179 static edge
find_taken_edge_computed_goto (basic_block
, tree
);
180 static edge
find_taken_edge_cond_expr (const gcond
*, tree
);
183 init_empty_tree_cfg_for_function (struct function
*fn
)
185 /* Initialize the basic block array. */
187 profile_status_for_fn (fn
) = PROFILE_ABSENT
;
188 n_basic_blocks_for_fn (fn
) = NUM_FIXED_BLOCKS
;
189 last_basic_block_for_fn (fn
) = NUM_FIXED_BLOCKS
;
190 vec_safe_grow_cleared (basic_block_info_for_fn (fn
),
191 initial_cfg_capacity
, true);
193 /* Build a mapping of labels to their associated blocks. */
194 vec_safe_grow_cleared (label_to_block_map_for_fn (fn
),
195 initial_cfg_capacity
, true);
197 SET_BASIC_BLOCK_FOR_FN (fn
, ENTRY_BLOCK
, ENTRY_BLOCK_PTR_FOR_FN (fn
));
198 SET_BASIC_BLOCK_FOR_FN (fn
, EXIT_BLOCK
, EXIT_BLOCK_PTR_FOR_FN (fn
));
200 ENTRY_BLOCK_PTR_FOR_FN (fn
)->next_bb
201 = EXIT_BLOCK_PTR_FOR_FN (fn
);
202 EXIT_BLOCK_PTR_FOR_FN (fn
)->prev_bb
203 = ENTRY_BLOCK_PTR_FOR_FN (fn
);
207 init_empty_tree_cfg (void)
209 init_empty_tree_cfg_for_function (cfun
);
212 /*---------------------------------------------------------------------------
214 ---------------------------------------------------------------------------*/
216 /* Entry point to the CFG builder for trees. SEQ is the sequence of
217 statements to be added to the flowgraph. */
220 build_gimple_cfg (gimple_seq seq
)
222 /* Register specific gimple functions. */
223 gimple_register_cfg_hooks ();
225 memset ((void *) &cfg_stats
, 0, sizeof (cfg_stats
));
227 init_empty_tree_cfg ();
231 /* Make sure there is always at least one block, even if it's empty. */
232 if (n_basic_blocks_for_fn (cfun
) == NUM_FIXED_BLOCKS
)
233 create_empty_bb (ENTRY_BLOCK_PTR_FOR_FN (cfun
));
235 /* Adjust the size of the array. */
236 if (basic_block_info_for_fn (cfun
)->length ()
237 < (size_t) n_basic_blocks_for_fn (cfun
))
238 vec_safe_grow_cleared (basic_block_info_for_fn (cfun
),
239 n_basic_blocks_for_fn (cfun
));
241 /* To speed up statement iterator walks, we first purge dead labels. */
242 cleanup_dead_labels ();
244 /* Group case nodes to reduce the number of edges.
245 We do this after cleaning up dead labels because otherwise we miss
246 a lot of obvious case merging opportunities. */
247 group_case_labels ();
249 /* Create the edges of the flowgraph. */
250 discriminator_per_locus
= new hash_table
<locus_discrim_hasher
> (13);
252 assign_discriminators ();
253 cleanup_dead_labels ();
254 delete discriminator_per_locus
;
255 discriminator_per_locus
= NULL
;
258 /* Look for ANNOTATE calls with loop annotation kind in BB; if found, remove
259 them and propagate the information to LOOP. We assume that the annotations
260 come immediately before the condition in BB, if any. */
263 replace_loop_annotate_in_block (basic_block bb
, class loop
*loop
)
265 gimple_stmt_iterator gsi
= gsi_last_bb (bb
);
266 gimple
*stmt
= gsi_stmt (gsi
);
268 if (!(stmt
&& gimple_code (stmt
) == GIMPLE_COND
))
271 for (gsi_prev_nondebug (&gsi
); !gsi_end_p (gsi
); gsi_prev (&gsi
))
273 stmt
= gsi_stmt (gsi
);
274 if (gimple_code (stmt
) != GIMPLE_CALL
)
276 if (!gimple_call_internal_p (stmt
)
277 || gimple_call_internal_fn (stmt
) != IFN_ANNOTATE
)
280 switch ((annot_expr_kind
) tree_to_shwi (gimple_call_arg (stmt
, 1)))
282 case annot_expr_ivdep_kind
:
283 loop
->safelen
= INT_MAX
;
285 case annot_expr_unroll_kind
:
287 = (unsigned short) tree_to_shwi (gimple_call_arg (stmt
, 2));
288 cfun
->has_unroll
= true;
290 case annot_expr_no_vector_kind
:
291 loop
->dont_vectorize
= true;
293 case annot_expr_vector_kind
:
294 loop
->force_vectorize
= true;
295 cfun
->has_force_vectorize_loops
= true;
297 case annot_expr_parallel_kind
:
298 loop
->can_be_parallel
= true;
299 loop
->safelen
= INT_MAX
;
301 case annot_expr_maybe_infinite_kind
:
302 loop
->finite_p
= false;
308 stmt
= gimple_build_assign (gimple_call_lhs (stmt
),
309 gimple_call_arg (stmt
, 0));
310 gsi_replace (&gsi
, stmt
, true);
314 /* Look for ANNOTATE calls with loop annotation kind; if found, remove
315 them and propagate the information to the loop. We assume that the
316 annotations come immediately before the condition of the loop. */
319 replace_loop_annotate (void)
322 gimple_stmt_iterator gsi
;
325 for (auto loop
: loops_list (cfun
, 0))
327 /* Push the global flag_finite_loops state down to individual loops. */
328 loop
->finite_p
= flag_finite_loops
;
330 /* Check all exit source blocks for annotations. */
331 for (auto e
: get_loop_exit_edges (loop
))
332 replace_loop_annotate_in_block (e
->src
, loop
);
335 /* Remove IFN_ANNOTATE. Safeguard for the case loop->latch == NULL. */
336 FOR_EACH_BB_FN (bb
, cfun
)
338 for (gsi
= gsi_last_bb (bb
); !gsi_end_p (gsi
); gsi_prev (&gsi
))
340 stmt
= gsi_stmt (gsi
);
341 if (gimple_code (stmt
) != GIMPLE_CALL
)
343 if (!gimple_call_internal_p (stmt
)
344 || gimple_call_internal_fn (stmt
) != IFN_ANNOTATE
)
347 switch ((annot_expr_kind
) tree_to_shwi (gimple_call_arg (stmt
, 1)))
349 case annot_expr_ivdep_kind
:
350 case annot_expr_unroll_kind
:
351 case annot_expr_no_vector_kind
:
352 case annot_expr_vector_kind
:
353 case annot_expr_parallel_kind
:
354 case annot_expr_maybe_infinite_kind
:
360 warning_at (gimple_location (stmt
), 0, "ignoring loop annotation");
361 stmt
= gimple_build_assign (gimple_call_lhs (stmt
),
362 gimple_call_arg (stmt
, 0));
363 gsi_replace (&gsi
, stmt
, true);
369 execute_build_cfg (void)
371 gimple_seq body
= gimple_body (current_function_decl
);
373 build_gimple_cfg (body
);
374 gimple_set_body (current_function_decl
, NULL
);
375 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
377 fprintf (dump_file
, "Scope blocks:\n");
378 dump_scope_blocks (dump_file
, dump_flags
);
382 bb_to_omp_idx
.release ();
384 loop_optimizer_init (AVOID_CFG_MODIFICATIONS
);
385 replace_loop_annotate ();
391 const pass_data pass_data_build_cfg
=
393 GIMPLE_PASS
, /* type */
395 OPTGROUP_NONE
, /* optinfo_flags */
396 TV_TREE_CFG
, /* tv_id */
397 PROP_gimple_leh
, /* properties_required */
398 ( PROP_cfg
| PROP_loops
), /* properties_provided */
399 0, /* properties_destroyed */
400 0, /* todo_flags_start */
401 0, /* todo_flags_finish */
404 class pass_build_cfg
: public gimple_opt_pass
407 pass_build_cfg (gcc::context
*ctxt
)
408 : gimple_opt_pass (pass_data_build_cfg
, ctxt
)
411 /* opt_pass methods: */
412 unsigned int execute (function
*) final override
414 return execute_build_cfg ();
417 }; // class pass_build_cfg
422 make_pass_build_cfg (gcc::context
*ctxt
)
424 return new pass_build_cfg (ctxt
);
428 /* Return true if T is a computed goto. */
431 computed_goto_p (gimple
*t
)
433 return (gimple_code (t
) == GIMPLE_GOTO
434 && TREE_CODE (gimple_goto_dest (t
)) != LABEL_DECL
);
437 /* Returns true if the sequence of statements STMTS only contains
438 a call to __builtin_unreachable (). */
441 gimple_seq_unreachable_p (gimple_seq stmts
)
444 /* Return false if -fsanitize=unreachable, we don't want to
445 optimize away those calls, but rather turn them into
446 __ubsan_handle_builtin_unreachable () or __builtin_trap ()
448 || sanitize_flags_p (SANITIZE_UNREACHABLE
))
451 gimple_stmt_iterator gsi
= gsi_last (stmts
);
453 if (!gimple_call_builtin_p (gsi_stmt (gsi
), BUILT_IN_UNREACHABLE
))
456 for (gsi_prev (&gsi
); !gsi_end_p (gsi
); gsi_prev (&gsi
))
458 gimple
*stmt
= gsi_stmt (gsi
);
459 if (gimple_code (stmt
) != GIMPLE_LABEL
460 && !is_gimple_debug (stmt
)
461 && !gimple_clobber_p (stmt
))
467 /* Returns true for edge E where e->src ends with a GIMPLE_COND and
468 the other edge points to a bb with just __builtin_unreachable ().
469 I.e. return true for C->M edge in:
477 __builtin_unreachable ();
481 assert_unreachable_fallthru_edge_p (edge e
)
483 basic_block pred_bb
= e
->src
;
484 if (safe_is_a
<gcond
*> (*gsi_last_bb (pred_bb
)))
486 basic_block other_bb
= EDGE_SUCC (pred_bb
, 0)->dest
;
487 if (other_bb
== e
->dest
)
488 other_bb
= EDGE_SUCC (pred_bb
, 1)->dest
;
489 if (EDGE_COUNT (other_bb
->succs
) == 0)
490 return gimple_seq_unreachable_p (bb_seq (other_bb
));
496 /* Initialize GF_CALL_CTRL_ALTERING flag, which indicates the call
497 could alter control flow except via eh. We initialize the flag at
498 CFG build time and only ever clear it later. */
501 gimple_call_initialize_ctrl_altering (gimple
*stmt
)
503 int flags
= gimple_call_flags (stmt
);
505 /* A call alters control flow if it can make an abnormal goto. */
506 if (call_can_make_abnormal_goto (stmt
)
507 /* A call also alters control flow if it does not return. */
508 || flags
& ECF_NORETURN
509 /* TM ending statements have backedges out of the transaction.
510 Return true so we split the basic block containing them.
511 Note that the TM_BUILTIN test is merely an optimization. */
512 || ((flags
& ECF_TM_BUILTIN
)
513 && is_tm_ending_fndecl (gimple_call_fndecl (stmt
)))
514 /* BUILT_IN_RETURN call is same as return statement. */
515 || gimple_call_builtin_p (stmt
, BUILT_IN_RETURN
)
516 /* IFN_UNIQUE should be the last insn, to make checking for it
517 as cheap as possible. */
518 || (gimple_call_internal_p (stmt
)
519 && gimple_call_internal_unique_p (stmt
)))
520 gimple_call_set_ctrl_altering (stmt
, true);
522 gimple_call_set_ctrl_altering (stmt
, false);
526 /* Insert SEQ after BB and build a flowgraph. */
529 make_blocks_1 (gimple_seq seq
, basic_block bb
)
531 gimple_stmt_iterator i
= gsi_start (seq
);
533 gimple
*prev_stmt
= NULL
;
534 bool start_new_block
= true;
535 bool first_stmt_of_seq
= true;
537 while (!gsi_end_p (i
))
539 /* PREV_STMT should only be set to a debug stmt if the debug
540 stmt is before nondebug stmts. Once stmt reaches a nondebug
541 nonlabel, prev_stmt will be set to it, so that
542 stmt_starts_bb_p will know to start a new block if a label is
543 found. However, if stmt was a label after debug stmts only,
544 keep the label in prev_stmt even if we find further debug
545 stmts, for there may be other labels after them, and they
546 should land in the same block. */
547 if (!prev_stmt
|| !stmt
|| !is_gimple_debug (stmt
))
551 if (stmt
&& is_gimple_call (stmt
))
552 gimple_call_initialize_ctrl_altering (stmt
);
554 /* If the statement starts a new basic block or if we have determined
555 in a previous pass that we need to create a new block for STMT, do
557 if (start_new_block
|| stmt_starts_bb_p (stmt
, prev_stmt
))
559 if (!first_stmt_of_seq
)
560 gsi_split_seq_before (&i
, &seq
);
561 bb
= create_basic_block (seq
, bb
);
562 start_new_block
= false;
566 /* Now add STMT to BB and create the subgraphs for special statement
568 gimple_set_bb (stmt
, bb
);
570 /* If STMT is a basic block terminator, set START_NEW_BLOCK for the
572 if (stmt_ends_bb_p (stmt
))
574 /* If the stmt can make abnormal goto use a new temporary
575 for the assignment to the LHS. This makes sure the old value
576 of the LHS is available on the abnormal edge. Otherwise
577 we will end up with overlapping life-ranges for abnormal
579 if (gimple_has_lhs (stmt
)
580 && stmt_can_make_abnormal_goto (stmt
)
581 && is_gimple_reg_type (TREE_TYPE (gimple_get_lhs (stmt
))))
583 tree lhs
= gimple_get_lhs (stmt
);
584 tree tmp
= create_tmp_var (TREE_TYPE (lhs
));
585 gimple
*s
= gimple_build_assign (lhs
, tmp
);
586 gimple_set_location (s
, gimple_location (stmt
));
587 gimple_set_block (s
, gimple_block (stmt
));
588 gimple_set_lhs (stmt
, tmp
);
589 gsi_insert_after (&i
, s
, GSI_SAME_STMT
);
591 start_new_block
= true;
595 first_stmt_of_seq
= false;
600 /* Build a flowgraph for the sequence of stmts SEQ. */
603 make_blocks (gimple_seq seq
)
605 /* Look for debug markers right before labels, and move the debug
606 stmts after the labels. Accepting labels among debug markers
607 adds no value, just complexity; if we wanted to annotate labels
608 with view numbers (so sequencing among markers would matter) or
609 somesuch, we're probably better off still moving the labels, but
610 adding other debug annotations in their original positions or
611 emitting nonbind or bind markers associated with the labels in
612 the original position of the labels.
614 Moving labels would probably be simpler, but we can't do that:
615 moving labels assigns label ids to them, and doing so because of
616 debug markers makes for -fcompare-debug and possibly even codegen
617 differences. So, we have to move the debug stmts instead. To
618 that end, we scan SEQ backwards, marking the position of the
619 latest (earliest we find) label, and moving debug stmts that are
620 not separated from it by nondebug nonlabel stmts after the
622 if (MAY_HAVE_DEBUG_MARKER_STMTS
)
624 gimple_stmt_iterator label
= gsi_none ();
626 for (gimple_stmt_iterator i
= gsi_last (seq
); !gsi_end_p (i
); gsi_prev (&i
))
628 gimple
*stmt
= gsi_stmt (i
);
630 /* If this is the first label we encounter (latest in SEQ)
631 before nondebug stmts, record its position. */
632 if (is_a
<glabel
*> (stmt
))
634 if (gsi_end_p (label
))
639 /* Without a recorded label position to move debug stmts to,
640 there's nothing to do. */
641 if (gsi_end_p (label
))
644 /* Move the debug stmt at I after LABEL. */
645 if (is_gimple_debug (stmt
))
647 gcc_assert (gimple_debug_nonbind_marker_p (stmt
));
648 /* As STMT is removed, I advances to the stmt after
649 STMT, so the gsi_prev in the for "increment"
650 expression gets us to the stmt we're to visit after
651 STMT. LABEL, however, would advance to the moved
652 stmt if we passed it to gsi_move_after, so pass it a
653 copy instead, so as to keep LABEL pointing to the
655 gimple_stmt_iterator copy
= label
;
656 gsi_move_after (&i
, ©
);
660 /* There aren't any (more?) debug stmts before label, so
661 there isn't anything else to move after it. */
666 make_blocks_1 (seq
, ENTRY_BLOCK_PTR_FOR_FN (cfun
));
669 /* Create and return a new empty basic block after bb AFTER. */
672 create_bb (void *h
, void *e
, basic_block after
)
678 /* Create and initialize a new basic block. Since alloc_block uses
679 GC allocation that clears memory to allocate a basic block, we do
680 not have to clear the newly allocated basic block here. */
683 bb
->index
= last_basic_block_for_fn (cfun
);
685 set_bb_seq (bb
, h
? (gimple_seq
) h
: NULL
);
687 /* Add the new block to the linked list of blocks. */
688 link_block (bb
, after
);
690 /* Grow the basic block array if needed. */
691 if ((size_t) last_basic_block_for_fn (cfun
)
692 == basic_block_info_for_fn (cfun
)->length ())
693 vec_safe_grow_cleared (basic_block_info_for_fn (cfun
),
694 last_basic_block_for_fn (cfun
) + 1);
696 /* Add the newly created block to the array. */
697 SET_BASIC_BLOCK_FOR_FN (cfun
, last_basic_block_for_fn (cfun
), bb
);
699 n_basic_blocks_for_fn (cfun
)++;
700 last_basic_block_for_fn (cfun
)++;
706 /*---------------------------------------------------------------------------
708 ---------------------------------------------------------------------------*/
710 /* If basic block BB has an abnormal edge to a basic block
711 containing IFN_ABNORMAL_DISPATCHER internal call, return
712 that the dispatcher's basic block, otherwise return NULL. */
715 get_abnormal_succ_dispatcher (basic_block bb
)
720 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
721 if ((e
->flags
& (EDGE_ABNORMAL
| EDGE_EH
)) == EDGE_ABNORMAL
)
723 gimple_stmt_iterator gsi
724 = gsi_start_nondebug_after_labels_bb (e
->dest
);
725 gimple
*g
= gsi_stmt (gsi
);
726 if (g
&& gimple_call_internal_p (g
, IFN_ABNORMAL_DISPATCHER
))
732 /* Helper function for make_edges. Create a basic block with
733 with ABNORMAL_DISPATCHER internal call in it if needed, and
734 create abnormal edges from BBS to it and from it to FOR_BB
735 if COMPUTED_GOTO is false, otherwise factor the computed gotos. */
738 handle_abnormal_edges (basic_block
*dispatcher_bbs
, basic_block for_bb
,
739 auto_vec
<basic_block
> *bbs
, bool computed_goto
)
741 basic_block
*dispatcher
= dispatcher_bbs
+ (computed_goto
? 1 : 0);
742 unsigned int idx
= 0;
746 if (!bb_to_omp_idx
.is_empty ())
748 dispatcher
= dispatcher_bbs
+ 2 * bb_to_omp_idx
[for_bb
->index
];
749 if (bb_to_omp_idx
[for_bb
->index
] != 0)
753 /* If the dispatcher has been created already, then there are basic
754 blocks with abnormal edges to it, so just make a new edge to
756 if (*dispatcher
== NULL
)
758 /* Check if there are any basic blocks that need to have
759 abnormal edges to this dispatcher. If there are none, return
761 if (bb_to_omp_idx
.is_empty ())
763 if (bbs
->is_empty ())
768 FOR_EACH_VEC_ELT (*bbs
, idx
, bb
)
769 if (bb_to_omp_idx
[bb
->index
] == bb_to_omp_idx
[for_bb
->index
])
775 /* Create the dispatcher bb. */
776 *dispatcher
= create_basic_block (NULL
, for_bb
);
779 /* Factor computed gotos into a common computed goto site. Also
780 record the location of that site so that we can un-factor the
781 gotos after we have converted back to normal form. */
782 gimple_stmt_iterator gsi
= gsi_start_bb (*dispatcher
);
784 /* Create the destination of the factored goto. Each original
785 computed goto will put its desired destination into this
786 variable and jump to the label we create immediately below. */
787 tree var
= create_tmp_var (ptr_type_node
, "gotovar");
789 /* Build a label for the new block which will contain the
790 factored computed goto. */
791 tree factored_label_decl
792 = create_artificial_label (UNKNOWN_LOCATION
);
793 gimple
*factored_computed_goto_label
794 = gimple_build_label (factored_label_decl
);
795 gsi_insert_after (&gsi
, factored_computed_goto_label
, GSI_NEW_STMT
);
797 /* Build our new computed goto. */
798 gimple
*factored_computed_goto
= gimple_build_goto (var
);
799 gsi_insert_after (&gsi
, factored_computed_goto
, GSI_NEW_STMT
);
801 FOR_EACH_VEC_ELT (*bbs
, idx
, bb
)
803 if (!bb_to_omp_idx
.is_empty ()
804 && bb_to_omp_idx
[bb
->index
] != bb_to_omp_idx
[for_bb
->index
])
807 gsi
= gsi_last_bb (bb
);
808 gimple
*last
= gsi_stmt (gsi
);
810 gcc_assert (computed_goto_p (last
));
812 /* Copy the original computed goto's destination into VAR. */
814 = gimple_build_assign (var
, gimple_goto_dest (last
));
815 gsi_insert_before (&gsi
, assignment
, GSI_SAME_STMT
);
817 edge e
= make_edge (bb
, *dispatcher
, EDGE_FALLTHRU
);
818 e
->goto_locus
= gimple_location (last
);
819 gsi_remove (&gsi
, true);
824 tree arg
= inner
? boolean_true_node
: boolean_false_node
;
825 gcall
*g
= gimple_build_call_internal (IFN_ABNORMAL_DISPATCHER
,
827 gimple_call_set_ctrl_altering (g
, true);
828 gimple_stmt_iterator gsi
= gsi_after_labels (*dispatcher
);
829 gsi_insert_after (&gsi
, g
, GSI_NEW_STMT
);
831 /* Create predecessor edges of the dispatcher. */
832 FOR_EACH_VEC_ELT (*bbs
, idx
, bb
)
834 if (!bb_to_omp_idx
.is_empty ()
835 && bb_to_omp_idx
[bb
->index
] != bb_to_omp_idx
[for_bb
->index
])
837 make_edge (bb
, *dispatcher
, EDGE_ABNORMAL
);
842 make_edge (*dispatcher
, for_bb
, EDGE_ABNORMAL
);
845 /* Creates outgoing edges for BB. Returns 1 when it ends with an
846 computed goto, returns 2 when it ends with a statement that
847 might return to this function via an nonlocal goto, otherwise
848 return 0. Updates *PCUR_REGION with the OMP region this BB is in. */
851 make_edges_bb (basic_block bb
, struct omp_region
**pcur_region
, int *pomp_index
)
853 gimple
*last
= *gsi_last_bb (bb
);
854 bool fallthru
= false;
860 switch (gimple_code (last
))
863 if (make_goto_expr_edges (bb
))
869 edge e
= make_edge (bb
, EXIT_BLOCK_PTR_FOR_FN (cfun
), 0);
870 e
->goto_locus
= gimple_location (last
);
875 make_cond_expr_edges (bb
);
879 make_gimple_switch_edges (as_a
<gswitch
*> (last
), bb
);
886 case GIMPLE_EH_DISPATCH
:
887 fallthru
= make_eh_dispatch_edges (as_a
<geh_dispatch
*> (last
));
891 /* If this function receives a nonlocal goto, then we need to
892 make edges from this call site to all the nonlocal goto
894 if (stmt_can_make_abnormal_goto (last
))
897 /* If this statement has reachable exception handlers, then
898 create abnormal edges to them. */
901 /* BUILTIN_RETURN is really a return statement. */
902 if (gimple_call_builtin_p (last
, BUILT_IN_RETURN
))
904 make_edge (bb
, EXIT_BLOCK_PTR_FOR_FN (cfun
), 0);
907 /* Some calls are known not to return. */
909 fallthru
= !gimple_call_noreturn_p (last
);
913 /* A GIMPLE_ASSIGN may throw internally and thus be considered
915 if (is_ctrl_altering_stmt (last
))
921 make_gimple_asm_edges (bb
);
926 fallthru
= omp_make_gimple_edges (bb
, pcur_region
, pomp_index
);
929 case GIMPLE_TRANSACTION
:
931 gtransaction
*txn
= as_a
<gtransaction
*> (last
);
932 tree label1
= gimple_transaction_label_norm (txn
);
933 tree label2
= gimple_transaction_label_uninst (txn
);
936 make_edge (bb
, label_to_block (cfun
, label1
), EDGE_FALLTHRU
);
938 make_edge (bb
, label_to_block (cfun
, label2
),
939 EDGE_TM_UNINSTRUMENTED
| (label1
? 0 : EDGE_FALLTHRU
));
941 tree label3
= gimple_transaction_label_over (txn
);
942 if (gimple_transaction_subcode (txn
)
943 & (GTMA_HAVE_ABORT
| GTMA_IS_OUTER
))
944 make_edge (bb
, label_to_block (cfun
, label3
), EDGE_TM_ABORT
);
951 gcc_assert (!stmt_ends_bb_p (last
));
957 make_edge (bb
, bb
->next_bb
, EDGE_FALLTHRU
);
962 /* Join all the blocks in the flowgraph. */
968 struct omp_region
*cur_region
= NULL
;
969 auto_vec
<basic_block
> ab_edge_goto
;
970 auto_vec
<basic_block
> ab_edge_call
;
971 int cur_omp_region_idx
= 0;
973 /* Create an edge from entry to the first block with executable
975 make_edge (ENTRY_BLOCK_PTR_FOR_FN (cfun
),
976 BASIC_BLOCK_FOR_FN (cfun
, NUM_FIXED_BLOCKS
),
979 /* Traverse the basic block array placing edges. */
980 FOR_EACH_BB_FN (bb
, cfun
)
984 if (!bb_to_omp_idx
.is_empty ())
985 bb_to_omp_idx
[bb
->index
] = cur_omp_region_idx
;
987 mer
= make_edges_bb (bb
, &cur_region
, &cur_omp_region_idx
);
989 ab_edge_goto
.safe_push (bb
);
991 ab_edge_call
.safe_push (bb
);
993 if (cur_region
&& bb_to_omp_idx
.is_empty ())
994 bb_to_omp_idx
.safe_grow_cleared (n_basic_blocks_for_fn (cfun
), true);
997 /* Computed gotos are hell to deal with, especially if there are
998 lots of them with a large number of destinations. So we factor
999 them to a common computed goto location before we build the
1000 edge list. After we convert back to normal form, we will un-factor
1001 the computed gotos since factoring introduces an unwanted jump.
1002 For non-local gotos and abnormal edges from calls to calls that return
1003 twice or forced labels, factor the abnormal edges too, by having all
1004 abnormal edges from the calls go to a common artificial basic block
1005 with ABNORMAL_DISPATCHER internal call and abnormal edges from that
1006 basic block to all forced labels and calls returning twice.
1007 We do this per-OpenMP structured block, because those regions
1008 are guaranteed to be single entry single exit by the standard,
1009 so it is not allowed to enter or exit such regions abnormally this way,
1010 thus all computed gotos, non-local gotos and setjmp/longjmp calls
1011 must not transfer control across SESE region boundaries. */
1012 if (!ab_edge_goto
.is_empty () || !ab_edge_call
.is_empty ())
1014 gimple_stmt_iterator gsi
;
1015 basic_block dispatcher_bb_array
[2] = { NULL
, NULL
};
1016 basic_block
*dispatcher_bbs
= dispatcher_bb_array
;
1017 int count
= n_basic_blocks_for_fn (cfun
);
1019 if (!bb_to_omp_idx
.is_empty ())
1020 dispatcher_bbs
= XCNEWVEC (basic_block
, 2 * count
);
1022 FOR_EACH_BB_FN (bb
, cfun
)
1024 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
1026 glabel
*label_stmt
= dyn_cast
<glabel
*> (gsi_stmt (gsi
));
1032 target
= gimple_label_label (label_stmt
);
1034 /* Make an edge to every label block that has been marked as a
1035 potential target for a computed goto or a non-local goto. */
1036 if (FORCED_LABEL (target
))
1037 handle_abnormal_edges (dispatcher_bbs
, bb
, &ab_edge_goto
,
1039 if (DECL_NONLOCAL (target
))
1041 handle_abnormal_edges (dispatcher_bbs
, bb
, &ab_edge_call
,
1047 if (!gsi_end_p (gsi
) && is_gimple_debug (gsi_stmt (gsi
)))
1048 gsi_next_nondebug (&gsi
);
1049 if (!gsi_end_p (gsi
))
1051 /* Make an edge to every setjmp-like call. */
1052 gimple
*call_stmt
= gsi_stmt (gsi
);
1053 if (is_gimple_call (call_stmt
)
1054 && ((gimple_call_flags (call_stmt
) & ECF_RETURNS_TWICE
)
1055 || gimple_call_builtin_p (call_stmt
,
1056 BUILT_IN_SETJMP_RECEIVER
)))
1057 handle_abnormal_edges (dispatcher_bbs
, bb
, &ab_edge_call
,
1062 if (!bb_to_omp_idx
.is_empty ())
1063 XDELETE (dispatcher_bbs
);
1066 omp_free_regions ();
1069 /* Add SEQ after GSI. Start new bb after GSI, and created further bbs as
1070 needed. Returns true if new bbs were created.
1071 Note: This is transitional code, and should not be used for new code. We
1072 should be able to get rid of this by rewriting all target va-arg
1073 gimplification hooks to use an interface gimple_build_cond_value as described
1074 in https://gcc.gnu.org/ml/gcc-patches/2015-02/msg01194.html. */
1077 gimple_find_sub_bbs (gimple_seq seq
, gimple_stmt_iterator
*gsi
)
1079 gimple
*stmt
= gsi_stmt (*gsi
);
1080 basic_block bb
= gimple_bb (stmt
);
1081 basic_block lastbb
, afterbb
;
1082 int old_num_bbs
= n_basic_blocks_for_fn (cfun
);
1084 lastbb
= make_blocks_1 (seq
, bb
);
1085 if (old_num_bbs
== n_basic_blocks_for_fn (cfun
))
1087 e
= split_block (bb
, stmt
);
1088 /* Move e->dest to come after the new basic blocks. */
1090 unlink_block (afterbb
);
1091 link_block (afterbb
, lastbb
);
1092 redirect_edge_succ (e
, bb
->next_bb
);
1094 while (bb
!= afterbb
)
1096 struct omp_region
*cur_region
= NULL
;
1097 profile_count cnt
= profile_count::zero ();
1100 int cur_omp_region_idx
= 0;
1101 int mer
= make_edges_bb (bb
, &cur_region
, &cur_omp_region_idx
);
1102 gcc_assert (!mer
&& !cur_region
);
1103 add_bb_to_loop (bb
, afterbb
->loop_father
);
1107 FOR_EACH_EDGE (e
, ei
, bb
->preds
)
1109 if (e
->count ().initialized_p ())
1114 tree_guess_outgoing_edge_probabilities (bb
);
1115 if (all
|| profile_status_for_fn (cfun
) == PROFILE_READ
)
1123 /* Find the next available discriminator value for LOCUS. The
1124 discriminator distinguishes among several basic blocks that
1125 share a common locus, allowing for more accurate sample-based
1129 next_discriminator_for_locus (int line
)
1131 struct locus_discrim_map item
;
1132 struct locus_discrim_map
**slot
;
1134 item
.location_line
= line
;
1135 item
.discriminator
= 0;
1136 slot
= discriminator_per_locus
->find_slot_with_hash (&item
, line
, INSERT
);
1138 if (*slot
== HTAB_EMPTY_ENTRY
)
1140 *slot
= XNEW (struct locus_discrim_map
);
1142 (*slot
)->location_line
= line
;
1143 (*slot
)->discriminator
= 0;
1145 (*slot
)->discriminator
++;
1146 return (*slot
)->discriminator
;
1149 /* Return TRUE if LOCUS1 and LOCUS2 refer to the same source line. */
1152 same_line_p (location_t locus1
, expanded_location
*from
, location_t locus2
)
1154 expanded_location to
;
1156 if (locus1
== locus2
)
1159 to
= expand_location (locus2
);
1161 if (from
->line
!= to
.line
)
1163 if (from
->file
== to
.file
)
1165 return (from
->file
!= NULL
1167 && filename_cmp (from
->file
, to
.file
) == 0);
1170 /* Assign a unique discriminator value to all statements in block bb that
1171 have the same line number as locus. */
1174 assign_discriminator (location_t locus
, basic_block bb
)
1176 gimple_stmt_iterator gsi
;
1179 if (locus
== UNKNOWN_LOCATION
)
1182 expanded_location locus_e
= expand_location (locus
);
1184 discriminator
= next_discriminator_for_locus (locus_e
.line
);
1186 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
1188 gimple
*stmt
= gsi_stmt (gsi
);
1189 location_t stmt_locus
= gimple_location (stmt
);
1190 if (same_line_p (locus
, &locus_e
, stmt_locus
))
1191 gimple_set_location (stmt
,
1192 location_with_discriminator (stmt_locus
, discriminator
));
1196 /* Assign discriminators to statement locations. */
1199 assign_discriminators (void)
1203 FOR_EACH_BB_FN (bb
, cfun
)
1207 gimple_stmt_iterator gsi
;
1208 location_t curr_locus
= UNKNOWN_LOCATION
;
1209 expanded_location curr_locus_e
= {};
1212 /* Traverse the basic block, if two function calls within a basic block
1213 are mapped to the same line, assign a new discriminator because a call
1214 stmt could be a split point of a basic block. */
1215 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
1217 gimple
*stmt
= gsi_stmt (gsi
);
1219 /* Don't allow debug stmts to affect discriminators, but
1220 allow them to take discriminators when they're on the
1221 same line as the preceding nondebug stmt. */
1222 if (is_gimple_debug (stmt
))
1224 if (curr_locus
!= UNKNOWN_LOCATION
1225 && same_line_p (curr_locus
, &curr_locus_e
,
1226 gimple_location (stmt
)))
1228 location_t loc
= gimple_location (stmt
);
1229 location_t dloc
= location_with_discriminator (loc
,
1231 gimple_set_location (stmt
, dloc
);
1235 if (curr_locus
== UNKNOWN_LOCATION
)
1237 curr_locus
= gimple_location (stmt
);
1238 curr_locus_e
= expand_location (curr_locus
);
1240 else if (!same_line_p (curr_locus
, &curr_locus_e
, gimple_location (stmt
)))
1242 curr_locus
= gimple_location (stmt
);
1243 curr_locus_e
= expand_location (curr_locus
);
1246 else if (curr_discr
!= 0)
1248 location_t loc
= gimple_location (stmt
);
1249 location_t dloc
= location_with_discriminator (loc
, curr_discr
);
1250 gimple_set_location (stmt
, dloc
);
1252 /* Allocate a new discriminator for CALL stmt. */
1253 if (gimple_code (stmt
) == GIMPLE_CALL
)
1254 curr_discr
= next_discriminator_for_locus (curr_locus_e
.line
);
1257 gimple
*last
= last_nondebug_stmt (bb
);
1258 location_t locus
= last
? gimple_location (last
) : UNKNOWN_LOCATION
;
1259 if (locus
== UNKNOWN_LOCATION
)
1262 expanded_location locus_e
= expand_location (locus
);
1264 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
1266 gimple
*first
= first_non_label_stmt (e
->dest
);
1267 gimple
*last
= last_nondebug_stmt (e
->dest
);
1269 gimple
*stmt_on_same_line
= NULL
;
1270 if (first
&& same_line_p (locus
, &locus_e
,
1271 gimple_location (first
)))
1272 stmt_on_same_line
= first
;
1273 else if (last
&& same_line_p (locus
, &locus_e
,
1274 gimple_location (last
)))
1275 stmt_on_same_line
= last
;
1277 if (stmt_on_same_line
)
1279 if (has_discriminator (gimple_location (stmt_on_same_line
))
1280 && !has_discriminator (locus
))
1281 assign_discriminator (locus
, bb
);
1283 assign_discriminator (locus
, e
->dest
);
1289 /* Create the edges for a GIMPLE_COND starting at block BB. */
1292 make_cond_expr_edges (basic_block bb
)
1294 gcond
*entry
= as_a
<gcond
*> (*gsi_last_bb (bb
));
1295 gimple
*then_stmt
, *else_stmt
;
1296 basic_block then_bb
, else_bb
;
1297 tree then_label
, else_label
;
1302 /* Entry basic blocks for each component. */
1303 then_label
= gimple_cond_true_label (entry
);
1304 else_label
= gimple_cond_false_label (entry
);
1305 then_bb
= label_to_block (cfun
, then_label
);
1306 else_bb
= label_to_block (cfun
, else_label
);
1307 then_stmt
= first_stmt (then_bb
);
1308 else_stmt
= first_stmt (else_bb
);
1310 e
= make_edge (bb
, then_bb
, EDGE_TRUE_VALUE
);
1311 e
->goto_locus
= gimple_location (then_stmt
);
1312 e
= make_edge (bb
, else_bb
, EDGE_FALSE_VALUE
);
1314 e
->goto_locus
= gimple_location (else_stmt
);
1316 /* We do not need the labels anymore. */
1317 gimple_cond_set_true_label (entry
, NULL_TREE
);
1318 gimple_cond_set_false_label (entry
, NULL_TREE
);
1322 /* Called for each element in the hash table (P) as we delete the
1323 edge to cases hash table.
1325 Clear all the CASE_CHAINs to prevent problems with copying of
1326 SWITCH_EXPRs and structure sharing rules, then free the hash table
1330 edge_to_cases_cleanup (edge
const &, tree
const &value
, void *)
1334 for (t
= value
; t
; t
= next
)
1336 next
= CASE_CHAIN (t
);
1337 CASE_CHAIN (t
) = NULL
;
1343 /* Start recording information mapping edges to case labels. */
1346 start_recording_case_labels (void)
1348 gcc_assert (edge_to_cases
== NULL
);
1349 edge_to_cases
= new hash_map
<edge
, tree
>;
1350 touched_switch_bbs
= BITMAP_ALLOC (NULL
);
1353 /* Return nonzero if we are recording information for case labels. */
1356 recording_case_labels_p (void)
1358 return (edge_to_cases
!= NULL
);
1361 /* Stop recording information mapping edges to case labels and
1362 remove any information we have recorded. */
1364 end_recording_case_labels (void)
1368 edge_to_cases
->traverse
<void *, edge_to_cases_cleanup
> (NULL
);
1369 delete edge_to_cases
;
1370 edge_to_cases
= NULL
;
1371 EXECUTE_IF_SET_IN_BITMAP (touched_switch_bbs
, 0, i
, bi
)
1373 basic_block bb
= BASIC_BLOCK_FOR_FN (cfun
, i
);
1376 if (gswitch
*stmt
= safe_dyn_cast
<gswitch
*> (*gsi_last_bb (bb
)))
1377 group_case_labels_stmt (stmt
);
1380 BITMAP_FREE (touched_switch_bbs
);
1383 /* If we are inside a {start,end}_recording_cases block, then return
1384 a chain of CASE_LABEL_EXPRs from T which reference E.
1386 Otherwise return NULL. */
1389 get_cases_for_edge (edge e
, gswitch
*t
)
1394 /* If we are not recording cases, then we do not have CASE_LABEL_EXPR
1395 chains available. Return NULL so the caller can detect this case. */
1396 if (!recording_case_labels_p ())
1399 slot
= edge_to_cases
->get (e
);
1403 /* If we did not find E in the hash table, then this must be the first
1404 time we have been queried for information about E & T. Add all the
1405 elements from T to the hash table then perform the query again. */
1407 n
= gimple_switch_num_labels (t
);
1408 for (i
= 0; i
< n
; i
++)
1410 tree elt
= gimple_switch_label (t
, i
);
1411 tree lab
= CASE_LABEL (elt
);
1412 basic_block label_bb
= label_to_block (cfun
, lab
);
1413 edge this_edge
= find_edge (e
->src
, label_bb
);
1415 /* Add it to the chain of CASE_LABEL_EXPRs referencing E, or create
1417 tree
&s
= edge_to_cases
->get_or_insert (this_edge
);
1418 CASE_CHAIN (elt
) = s
;
1422 return *edge_to_cases
->get (e
);
1425 /* Create the edges for a GIMPLE_SWITCH starting at block BB. */
1428 make_gimple_switch_edges (gswitch
*entry
, basic_block bb
)
1432 n
= gimple_switch_num_labels (entry
);
1434 for (i
= 0; i
< n
; ++i
)
1436 basic_block label_bb
= gimple_switch_label_bb (cfun
, entry
, i
);
1437 make_edge (bb
, label_bb
, 0);
1442 /* Return the basic block holding label DEST. */
1445 label_to_block (struct function
*ifun
, tree dest
)
1447 int uid
= LABEL_DECL_UID (dest
);
1449 /* We would die hard when faced by an undefined label. Emit a label to
1450 the very first basic block. This will hopefully make even the dataflow
1451 and undefined variable warnings quite right. */
1452 if (seen_error () && uid
< 0)
1454 gimple_stmt_iterator gsi
=
1455 gsi_start_bb (BASIC_BLOCK_FOR_FN (cfun
, NUM_FIXED_BLOCKS
));
1458 stmt
= gimple_build_label (dest
);
1459 gsi_insert_before (&gsi
, stmt
, GSI_NEW_STMT
);
1460 uid
= LABEL_DECL_UID (dest
);
1462 if (vec_safe_length (ifun
->cfg
->x_label_to_block_map
) <= (unsigned int) uid
)
1464 return (*ifun
->cfg
->x_label_to_block_map
)[uid
];
1467 /* Create edges for a goto statement at block BB. Returns true
1468 if abnormal edges should be created. */
1471 make_goto_expr_edges (basic_block bb
)
1473 gimple_stmt_iterator last
= gsi_last_bb (bb
);
1474 gimple
*goto_t
= gsi_stmt (last
);
1476 /* A simple GOTO creates normal edges. */
1477 if (simple_goto_p (goto_t
))
1479 tree dest
= gimple_goto_dest (goto_t
);
1480 basic_block label_bb
= label_to_block (cfun
, dest
);
1481 edge e
= make_edge (bb
, label_bb
, EDGE_FALLTHRU
);
1482 e
->goto_locus
= gimple_location (goto_t
);
1483 gsi_remove (&last
, true);
1487 /* A computed GOTO creates abnormal edges. */
1491 /* Create edges for an asm statement with labels at block BB. */
1494 make_gimple_asm_edges (basic_block bb
)
1496 gasm
*stmt
= as_a
<gasm
*> (*gsi_last_bb (bb
));
1497 int i
, n
= gimple_asm_nlabels (stmt
);
1499 for (i
= 0; i
< n
; ++i
)
1501 tree label
= TREE_VALUE (gimple_asm_label_op (stmt
, i
));
1502 basic_block label_bb
= label_to_block (cfun
, label
);
1503 make_edge (bb
, label_bb
, 0);
1507 /*---------------------------------------------------------------------------
1509 ---------------------------------------------------------------------------*/
1511 /* Cleanup useless labels in basic blocks. This is something we wish
1512 to do early because it allows us to group case labels before creating
1513 the edges for the CFG, and it speeds up block statement iterators in
1514 all passes later on.
1515 We rerun this pass after CFG is created, to get rid of the labels that
1516 are no longer referenced. After then we do not run it any more, since
1517 (almost) no new labels should be created. */
1519 /* A map from basic block index to the leading label of that block. */
1525 /* True if the label is referenced from somewhere. */
1529 /* Given LABEL return the first label in the same basic block. */
1532 main_block_label (tree label
, label_record
*label_for_bb
)
1534 basic_block bb
= label_to_block (cfun
, label
);
1535 tree main_label
= label_for_bb
[bb
->index
].label
;
1537 /* label_to_block possibly inserted undefined label into the chain. */
1540 label_for_bb
[bb
->index
].label
= label
;
1544 label_for_bb
[bb
->index
].used
= true;
1548 /* Clean up redundant labels within the exception tree. */
1551 cleanup_dead_labels_eh (label_record
*label_for_bb
)
1558 if (cfun
->eh
== NULL
)
1561 for (i
= 1; vec_safe_iterate (cfun
->eh
->lp_array
, i
, &lp
); ++i
)
1562 if (lp
&& lp
->post_landing_pad
)
1564 lab
= main_block_label (lp
->post_landing_pad
, label_for_bb
);
1565 if (lab
!= lp
->post_landing_pad
)
1567 EH_LANDING_PAD_NR (lp
->post_landing_pad
) = 0;
1568 lp
->post_landing_pad
= lab
;
1569 EH_LANDING_PAD_NR (lab
) = lp
->index
;
1573 FOR_ALL_EH_REGION (r
)
1577 case ERT_MUST_NOT_THROW
:
1583 for (c
= r
->u
.eh_try
.first_catch
; c
; c
= c
->next_catch
)
1587 c
->label
= main_block_label (lab
, label_for_bb
);
1592 case ERT_ALLOWED_EXCEPTIONS
:
1593 lab
= r
->u
.allowed
.label
;
1595 r
->u
.allowed
.label
= main_block_label (lab
, label_for_bb
);
1601 /* Cleanup redundant labels. This is a three-step process:
1602 1) Find the leading label for each block.
1603 2) Redirect all references to labels to the leading labels.
1604 3) Cleanup all useless labels. */
1607 cleanup_dead_labels (void)
1610 label_record
*label_for_bb
= XCNEWVEC (struct label_record
,
1611 last_basic_block_for_fn (cfun
));
1613 /* Find a suitable label for each block. We use the first user-defined
1614 label if there is one, or otherwise just the first label we see. */
1615 FOR_EACH_BB_FN (bb
, cfun
)
1617 gimple_stmt_iterator i
;
1619 for (i
= gsi_start_bb (bb
); !gsi_end_p (i
); gsi_next (&i
))
1622 glabel
*label_stmt
= dyn_cast
<glabel
*> (gsi_stmt (i
));
1627 label
= gimple_label_label (label_stmt
);
1629 /* If we have not yet seen a label for the current block,
1630 remember this one and see if there are more labels. */
1631 if (!label_for_bb
[bb
->index
].label
)
1633 label_for_bb
[bb
->index
].label
= label
;
1637 /* If we did see a label for the current block already, but it
1638 is an artificially created label, replace it if the current
1639 label is a user defined label. */
1640 if (!DECL_ARTIFICIAL (label
)
1641 && DECL_ARTIFICIAL (label_for_bb
[bb
->index
].label
))
1643 label_for_bb
[bb
->index
].label
= label
;
1649 /* Now redirect all jumps/branches to the selected label.
1650 First do so for each block ending in a control statement. */
1651 FOR_EACH_BB_FN (bb
, cfun
)
1653 gimple
*stmt
= *gsi_last_bb (bb
);
1654 tree label
, new_label
;
1659 switch (gimple_code (stmt
))
1663 gcond
*cond_stmt
= as_a
<gcond
*> (stmt
);
1664 label
= gimple_cond_true_label (cond_stmt
);
1667 new_label
= main_block_label (label
, label_for_bb
);
1668 if (new_label
!= label
)
1669 gimple_cond_set_true_label (cond_stmt
, new_label
);
1672 label
= gimple_cond_false_label (cond_stmt
);
1675 new_label
= main_block_label (label
, label_for_bb
);
1676 if (new_label
!= label
)
1677 gimple_cond_set_false_label (cond_stmt
, new_label
);
1684 gswitch
*switch_stmt
= as_a
<gswitch
*> (stmt
);
1685 size_t i
, n
= gimple_switch_num_labels (switch_stmt
);
1687 /* Replace all destination labels. */
1688 for (i
= 0; i
< n
; ++i
)
1690 tree case_label
= gimple_switch_label (switch_stmt
, i
);
1691 label
= CASE_LABEL (case_label
);
1692 new_label
= main_block_label (label
, label_for_bb
);
1693 if (new_label
!= label
)
1694 CASE_LABEL (case_label
) = new_label
;
1701 gasm
*asm_stmt
= as_a
<gasm
*> (stmt
);
1702 int i
, n
= gimple_asm_nlabels (asm_stmt
);
1704 for (i
= 0; i
< n
; ++i
)
1706 tree cons
= gimple_asm_label_op (asm_stmt
, i
);
1707 tree label
= main_block_label (TREE_VALUE (cons
), label_for_bb
);
1708 TREE_VALUE (cons
) = label
;
1713 /* We have to handle gotos until they're removed, and we don't
1714 remove them until after we've created the CFG edges. */
1716 if (!computed_goto_p (stmt
))
1718 ggoto
*goto_stmt
= as_a
<ggoto
*> (stmt
);
1719 label
= gimple_goto_dest (goto_stmt
);
1720 new_label
= main_block_label (label
, label_for_bb
);
1721 if (new_label
!= label
)
1722 gimple_goto_set_dest (goto_stmt
, new_label
);
1726 case GIMPLE_TRANSACTION
:
1728 gtransaction
*txn
= as_a
<gtransaction
*> (stmt
);
1730 label
= gimple_transaction_label_norm (txn
);
1733 new_label
= main_block_label (label
, label_for_bb
);
1734 if (new_label
!= label
)
1735 gimple_transaction_set_label_norm (txn
, new_label
);
1738 label
= gimple_transaction_label_uninst (txn
);
1741 new_label
= main_block_label (label
, label_for_bb
);
1742 if (new_label
!= label
)
1743 gimple_transaction_set_label_uninst (txn
, new_label
);
1746 label
= gimple_transaction_label_over (txn
);
1749 new_label
= main_block_label (label
, label_for_bb
);
1750 if (new_label
!= label
)
1751 gimple_transaction_set_label_over (txn
, new_label
);
1761 /* Do the same for the exception region tree labels. */
1762 cleanup_dead_labels_eh (label_for_bb
);
1764 /* Finally, purge dead labels. All user-defined labels and labels that
1765 can be the target of non-local gotos and labels which have their
1766 address taken are preserved. */
1767 FOR_EACH_BB_FN (bb
, cfun
)
1769 gimple_stmt_iterator i
;
1770 tree label_for_this_bb
= label_for_bb
[bb
->index
].label
;
1772 if (!label_for_this_bb
)
1775 /* If the main label of the block is unused, we may still remove it. */
1776 if (!label_for_bb
[bb
->index
].used
)
1777 label_for_this_bb
= NULL
;
1779 for (i
= gsi_start_bb (bb
); !gsi_end_p (i
); )
1782 glabel
*label_stmt
= dyn_cast
<glabel
*> (gsi_stmt (i
));
1787 label
= gimple_label_label (label_stmt
);
1789 if (label
== label_for_this_bb
1790 || !DECL_ARTIFICIAL (label
)
1791 || DECL_NONLOCAL (label
)
1792 || FORCED_LABEL (label
))
1796 gcc_checking_assert (EH_LANDING_PAD_NR (label
) == 0);
1797 gsi_remove (&i
, true);
1802 free (label_for_bb
);
1805 /* Scan the sorted vector of cases in STMT (a GIMPLE_SWITCH) and combine
1806 the ones jumping to the same label.
1807 Eg. three separate entries 1: 2: 3: become one entry 1..3: */
1810 group_case_labels_stmt (gswitch
*stmt
)
1812 int old_size
= gimple_switch_num_labels (stmt
);
1813 int i
, next_index
, new_size
;
1814 basic_block default_bb
= NULL
;
1815 hash_set
<tree
> *removed_labels
= NULL
;
1817 default_bb
= gimple_switch_default_bb (cfun
, stmt
);
1819 /* Look for possible opportunities to merge cases. */
1821 while (i
< old_size
)
1823 tree base_case
, base_high
;
1824 basic_block base_bb
;
1826 base_case
= gimple_switch_label (stmt
, i
);
1828 gcc_assert (base_case
);
1829 base_bb
= label_to_block (cfun
, CASE_LABEL (base_case
));
1831 /* Discard cases that have the same destination as the default case or
1832 whose destination blocks have already been removed as unreachable. */
1834 || base_bb
== default_bb
1836 && removed_labels
->contains (CASE_LABEL (base_case
))))
1842 base_high
= CASE_HIGH (base_case
)
1843 ? CASE_HIGH (base_case
)
1844 : CASE_LOW (base_case
);
1847 /* Try to merge case labels. Break out when we reach the end
1848 of the label vector or when we cannot merge the next case
1849 label with the current one. */
1850 while (next_index
< old_size
)
1852 tree merge_case
= gimple_switch_label (stmt
, next_index
);
1853 basic_block merge_bb
= label_to_block (cfun
, CASE_LABEL (merge_case
));
1854 wide_int bhp1
= wi::to_wide (base_high
) + 1;
1856 /* Merge the cases if they jump to the same place,
1857 and their ranges are consecutive. */
1858 if (merge_bb
== base_bb
1859 && (removed_labels
== NULL
1860 || !removed_labels
->contains (CASE_LABEL (merge_case
)))
1861 && wi::to_wide (CASE_LOW (merge_case
)) == bhp1
)
1864 = (CASE_HIGH (merge_case
)
1865 ? CASE_HIGH (merge_case
) : CASE_LOW (merge_case
));
1866 CASE_HIGH (base_case
) = base_high
;
1873 /* Discard cases that have an unreachable destination block. */
1874 if (EDGE_COUNT (base_bb
->succs
) == 0
1875 && gimple_seq_unreachable_p (bb_seq (base_bb
))
1876 /* Don't optimize this if __builtin_unreachable () is the
1877 implicitly added one by the C++ FE too early, before
1878 -Wreturn-type can be diagnosed. We'll optimize it later
1879 during switchconv pass or any other cfg cleanup. */
1880 && (gimple_in_ssa_p (cfun
)
1881 || (LOCATION_LOCUS (gimple_location (last_nondebug_stmt (base_bb
)))
1882 != BUILTINS_LOCATION
)))
1884 edge base_edge
= find_edge (gimple_bb (stmt
), base_bb
);
1885 if (base_edge
!= NULL
)
1887 for (gimple_stmt_iterator gsi
= gsi_start_bb (base_bb
);
1888 !gsi_end_p (gsi
); gsi_next (&gsi
))
1889 if (glabel
*stmt
= dyn_cast
<glabel
*> (gsi_stmt (gsi
)))
1891 if (FORCED_LABEL (gimple_label_label (stmt
))
1892 || DECL_NONLOCAL (gimple_label_label (stmt
)))
1894 /* Forced/non-local labels aren't going to be removed,
1895 but they will be moved to some neighbouring basic
1896 block. If some later case label refers to one of
1897 those labels, we should throw that case away rather
1898 than keeping it around and refering to some random
1899 other basic block without an edge to it. */
1900 if (removed_labels
== NULL
)
1901 removed_labels
= new hash_set
<tree
>;
1902 removed_labels
->add (gimple_label_label (stmt
));
1907 remove_edge_and_dominated_blocks (base_edge
);
1914 gimple_switch_set_label (stmt
, new_size
,
1915 gimple_switch_label (stmt
, i
));
1920 gcc_assert (new_size
<= old_size
);
1922 if (new_size
< old_size
)
1923 gimple_switch_set_num_labels (stmt
, new_size
);
1925 delete removed_labels
;
1926 return new_size
< old_size
;
1929 /* Look for blocks ending in a multiway branch (a GIMPLE_SWITCH),
1930 and scan the sorted vector of cases. Combine the ones jumping to the
1934 group_case_labels (void)
1937 bool changed
= false;
1939 FOR_EACH_BB_FN (bb
, cfun
)
1941 if (gswitch
*stmt
= safe_dyn_cast
<gswitch
*> (*gsi_last_bb (bb
)))
1942 changed
|= group_case_labels_stmt (stmt
);
1948 /* Checks whether we can merge block B into block A. */
1951 gimple_can_merge_blocks_p (basic_block a
, basic_block b
)
1955 if (!single_succ_p (a
))
1958 if (single_succ_edge (a
)->flags
& EDGE_COMPLEX
)
1961 if (single_succ (a
) != b
)
1964 if (!single_pred_p (b
))
1967 if (a
== ENTRY_BLOCK_PTR_FOR_FN (cfun
)
1968 || b
== EXIT_BLOCK_PTR_FOR_FN (cfun
))
1971 /* If A ends by a statement causing exceptions or something similar, we
1972 cannot merge the blocks. */
1973 stmt
= *gsi_last_bb (a
);
1974 if (stmt
&& stmt_ends_bb_p (stmt
))
1977 /* Examine the labels at the beginning of B. */
1978 for (gimple_stmt_iterator gsi
= gsi_start_bb (b
); !gsi_end_p (gsi
);
1982 glabel
*label_stmt
= dyn_cast
<glabel
*> (gsi_stmt (gsi
));
1985 lab
= gimple_label_label (label_stmt
);
1987 /* Do not remove user forced labels or for -O0 any user labels. */
1988 if (!DECL_ARTIFICIAL (lab
) && (!optimize
|| FORCED_LABEL (lab
)))
1992 /* Protect simple loop latches. We only want to avoid merging
1993 the latch with the loop header or with a block in another
1994 loop in this case. */
1996 && b
->loop_father
->latch
== b
1997 && loops_state_satisfies_p (LOOPS_HAVE_SIMPLE_LATCHES
)
1998 && (b
->loop_father
->header
== a
1999 || b
->loop_father
!= a
->loop_father
))
2002 /* It must be possible to eliminate all phi nodes in B. If ssa form
2003 is not up-to-date and a name-mapping is registered, we cannot eliminate
2004 any phis. Symbols marked for renaming are never a problem though. */
2005 for (gphi_iterator gsi
= gsi_start_phis (b
); !gsi_end_p (gsi
);
2008 gphi
*phi
= gsi
.phi ();
2009 /* Technically only new names matter. */
2010 if (name_registered_for_update_p (PHI_RESULT (phi
)))
2014 /* When not optimizing, don't merge if we'd lose goto_locus. */
2016 && single_succ_edge (a
)->goto_locus
!= UNKNOWN_LOCATION
)
2018 location_t goto_locus
= single_succ_edge (a
)->goto_locus
;
2019 gimple_stmt_iterator prev
, next
;
2020 prev
= gsi_last_nondebug_bb (a
);
2021 next
= gsi_after_labels (b
);
2022 if (!gsi_end_p (next
) && is_gimple_debug (gsi_stmt (next
)))
2023 gsi_next_nondebug (&next
);
2024 if ((gsi_end_p (prev
)
2025 || gimple_location (gsi_stmt (prev
)) != goto_locus
)
2026 && (gsi_end_p (next
)
2027 || gimple_location (gsi_stmt (next
)) != goto_locus
))
2034 /* Replaces all uses of NAME by VAL. */
2037 replace_uses_by (tree name
, tree val
)
2039 imm_use_iterator imm_iter
;
2044 FOR_EACH_IMM_USE_STMT (stmt
, imm_iter
, name
)
2046 /* Mark the block if we change the last stmt in it. */
2047 if (cfgcleanup_altered_bbs
2048 && stmt_ends_bb_p (stmt
))
2049 bitmap_set_bit (cfgcleanup_altered_bbs
, gimple_bb (stmt
)->index
);
2051 FOR_EACH_IMM_USE_ON_STMT (use
, imm_iter
)
2053 replace_exp (use
, val
);
2055 if (gimple_code (stmt
) == GIMPLE_PHI
)
2057 e
= gimple_phi_arg_edge (as_a
<gphi
*> (stmt
),
2058 PHI_ARG_INDEX_FROM_USE (use
));
2059 if (e
->flags
& EDGE_ABNORMAL
2060 && !SSA_NAME_OCCURS_IN_ABNORMAL_PHI (val
))
2062 /* This can only occur for virtual operands, since
2063 for the real ones SSA_NAME_OCCURS_IN_ABNORMAL_PHI (name))
2064 would prevent replacement. */
2065 gcc_checking_assert (virtual_operand_p (name
));
2066 SSA_NAME_OCCURS_IN_ABNORMAL_PHI (val
) = 1;
2071 if (gimple_code (stmt
) != GIMPLE_PHI
)
2073 gimple_stmt_iterator gsi
= gsi_for_stmt (stmt
);
2074 gimple
*orig_stmt
= stmt
;
2077 /* FIXME. It shouldn't be required to keep TREE_CONSTANT
2078 on ADDR_EXPRs up-to-date on GIMPLE. Propagation will
2079 only change sth from non-invariant to invariant, and only
2080 when propagating constants. */
2081 if (is_gimple_min_invariant (val
))
2082 for (i
= 0; i
< gimple_num_ops (stmt
); i
++)
2084 tree op
= gimple_op (stmt
, i
);
2085 /* Operands may be empty here. For example, the labels
2086 of a GIMPLE_COND are nulled out following the creation
2087 of the corresponding CFG edges. */
2088 if (op
&& TREE_CODE (op
) == ADDR_EXPR
)
2089 recompute_tree_invariant_for_addr_expr (op
);
2092 if (fold_stmt (&gsi
))
2093 stmt
= gsi_stmt (gsi
);
2095 if (maybe_clean_or_replace_eh_stmt (orig_stmt
, stmt
))
2096 gimple_purge_dead_eh_edges (gimple_bb (stmt
));
2102 gcc_checking_assert (has_zero_uses (name
));
2104 /* Also update the trees stored in loop structures. */
2107 for (auto loop
: loops_list (cfun
, 0))
2108 substitute_in_loop_info (loop
, name
, val
);
2112 /* Merge block B into block A. */
2115 gimple_merge_blocks (basic_block a
, basic_block b
)
2117 gimple_stmt_iterator last
, gsi
;
2121 fprintf (dump_file
, "Merging blocks %d and %d\n", a
->index
, b
->index
);
2123 /* Remove all single-valued PHI nodes from block B of the form
2124 V_i = PHI <V_j> by propagating V_j to all the uses of V_i. */
2125 gsi
= gsi_last_bb (a
);
2126 for (psi
= gsi_start_phis (b
); !gsi_end_p (psi
); )
2128 gimple
*phi
= gsi_stmt (psi
);
2129 tree def
= gimple_phi_result (phi
), use
= gimple_phi_arg_def (phi
, 0);
2131 bool may_replace_uses
= (virtual_operand_p (def
)
2132 || may_propagate_copy (def
, use
));
2134 /* In case we maintain loop closed ssa form, do not propagate arguments
2135 of loop exit phi nodes. */
2137 && loops_state_satisfies_p (LOOP_CLOSED_SSA
)
2138 && !virtual_operand_p (def
)
2139 && TREE_CODE (use
) == SSA_NAME
2140 && a
->loop_father
!= b
->loop_father
)
2141 may_replace_uses
= false;
2143 if (!may_replace_uses
)
2145 gcc_assert (!virtual_operand_p (def
));
2147 /* Note that just emitting the copies is fine -- there is no problem
2148 with ordering of phi nodes. This is because A is the single
2149 predecessor of B, therefore results of the phi nodes cannot
2150 appear as arguments of the phi nodes. */
2151 copy
= gimple_build_assign (def
, use
);
2152 gsi_insert_after (&gsi
, copy
, GSI_NEW_STMT
);
2153 remove_phi_node (&psi
, false);
2157 /* If we deal with a PHI for virtual operands, we can simply
2158 propagate these without fussing with folding or updating
2160 if (virtual_operand_p (def
))
2162 imm_use_iterator iter
;
2163 use_operand_p use_p
;
2166 FOR_EACH_IMM_USE_STMT (stmt
, iter
, def
)
2167 FOR_EACH_IMM_USE_ON_STMT (use_p
, iter
)
2168 SET_USE (use_p
, use
);
2170 if (SSA_NAME_OCCURS_IN_ABNORMAL_PHI (def
))
2171 SSA_NAME_OCCURS_IN_ABNORMAL_PHI (use
) = 1;
2174 replace_uses_by (def
, use
);
2176 remove_phi_node (&psi
, true);
2180 /* Ensure that B follows A. */
2181 move_block_after (b
, a
);
2183 gcc_assert (single_succ_edge (a
)->flags
& EDGE_FALLTHRU
);
2184 gcc_assert (!*gsi_last_bb (a
)
2185 || !stmt_ends_bb_p (*gsi_last_bb (a
)));
2187 /* Remove labels from B and set gimple_bb to A for other statements. */
2188 for (gsi
= gsi_start_bb (b
); !gsi_end_p (gsi
);)
2190 gimple
*stmt
= gsi_stmt (gsi
);
2191 if (glabel
*label_stmt
= dyn_cast
<glabel
*> (stmt
))
2193 tree label
= gimple_label_label (label_stmt
);
2196 gsi_remove (&gsi
, false);
2198 /* Now that we can thread computed gotos, we might have
2199 a situation where we have a forced label in block B
2200 However, the label at the start of block B might still be
2201 used in other ways (think about the runtime checking for
2202 Fortran assigned gotos). So we cannot just delete the
2203 label. Instead we move the label to the start of block A. */
2204 if (FORCED_LABEL (label
))
2206 gimple_stmt_iterator dest_gsi
= gsi_start_bb (a
);
2207 tree first_label
= NULL_TREE
;
2208 if (!gsi_end_p (dest_gsi
))
2209 if (glabel
*first_label_stmt
2210 = dyn_cast
<glabel
*> (gsi_stmt (dest_gsi
)))
2211 first_label
= gimple_label_label (first_label_stmt
);
2213 && (DECL_NONLOCAL (first_label
)
2214 || EH_LANDING_PAD_NR (first_label
) != 0))
2215 gsi_insert_after (&dest_gsi
, stmt
, GSI_NEW_STMT
);
2217 gsi_insert_before (&dest_gsi
, stmt
, GSI_NEW_STMT
);
2219 /* Other user labels keep around in a form of a debug stmt. */
2220 else if (!DECL_ARTIFICIAL (label
) && MAY_HAVE_DEBUG_BIND_STMTS
)
2222 gimple
*dbg
= gimple_build_debug_bind (label
,
2225 gimple_debug_bind_reset_value (dbg
);
2226 gsi_insert_before (&gsi
, dbg
, GSI_SAME_STMT
);
2229 lp_nr
= EH_LANDING_PAD_NR (label
);
2232 eh_landing_pad lp
= get_eh_landing_pad_from_number (lp_nr
);
2233 lp
->post_landing_pad
= NULL
;
2238 gimple_set_bb (stmt
, a
);
2243 /* When merging two BBs, if their counts are different, the larger count
2244 is selected as the new bb count. This is to handle inconsistent
2246 if (a
->loop_father
== b
->loop_father
)
2248 a
->count
= a
->count
.merge (b
->count
);
2251 /* Merge the sequences. */
2252 last
= gsi_last_bb (a
);
2253 gsi_insert_seq_after (&last
, bb_seq (b
), GSI_NEW_STMT
);
2254 set_bb_seq (b
, NULL
);
2256 if (cfgcleanup_altered_bbs
)
2257 bitmap_set_bit (cfgcleanup_altered_bbs
, a
->index
);
2261 /* Return the one of two successors of BB that is not reachable by a
2262 complex edge, if there is one. Else, return BB. We use
2263 this in optimizations that use post-dominators for their heuristics,
2264 to catch the cases in C++ where function calls are involved. */
2267 single_noncomplex_succ (basic_block bb
)
2270 if (EDGE_COUNT (bb
->succs
) != 2)
2273 e0
= EDGE_SUCC (bb
, 0);
2274 e1
= EDGE_SUCC (bb
, 1);
2275 if (e0
->flags
& EDGE_COMPLEX
)
2277 if (e1
->flags
& EDGE_COMPLEX
)
2283 /* T is CALL_EXPR. Set current_function_calls_* flags. */
2286 notice_special_calls (gcall
*call
)
2288 int flags
= gimple_call_flags (call
);
2290 if (flags
& ECF_MAY_BE_ALLOCA
)
2291 cfun
->calls_alloca
= true;
2292 if (flags
& ECF_RETURNS_TWICE
)
2293 cfun
->calls_setjmp
= true;
2294 if (gimple_call_must_tail_p (call
))
2295 cfun
->has_musttail
= true;
2299 /* Clear flags set by notice_special_calls. Used by dead code removal
2300 to update the flags. */
2303 clear_special_calls (void)
2305 cfun
->calls_alloca
= false;
2306 cfun
->calls_setjmp
= false;
2307 cfun
->has_musttail
= false;
2310 /* Remove PHI nodes associated with basic block BB and all edges out of BB. */
2313 remove_phi_nodes_and_edges_for_unreachable_block (basic_block bb
)
2315 /* Since this block is no longer reachable, we can just delete all
2316 of its PHI nodes. */
2317 remove_phi_nodes (bb
);
2319 /* Remove edges to BB's successors. */
2320 while (EDGE_COUNT (bb
->succs
) > 0)
2321 remove_edge (EDGE_SUCC (bb
, 0));
2325 /* Remove statements of basic block BB. */
2328 remove_bb (basic_block bb
)
2330 gimple_stmt_iterator i
;
2334 fprintf (dump_file
, "Removing basic block %d\n", bb
->index
);
2335 if (dump_flags
& TDF_DETAILS
)
2337 dump_bb (dump_file
, bb
, 0, TDF_BLOCKS
);
2338 fprintf (dump_file
, "\n");
2344 class loop
*loop
= bb
->loop_father
;
2346 /* If a loop gets removed, clean up the information associated
2348 if (loop
->latch
== bb
2349 || loop
->header
== bb
)
2350 free_numbers_of_iterations_estimates (loop
);
2353 /* Remove all the instructions in the block. */
2354 if (bb_seq (bb
) != NULL
)
2356 /* Walk backwards so as to get a chance to substitute all
2357 released DEFs into debug stmts. See
2358 eliminate_unnecessary_stmts() in tree-ssa-dce.cc for more
2360 for (i
= gsi_last_bb (bb
); !gsi_end_p (i
);)
2362 gimple
*stmt
= gsi_stmt (i
);
2363 glabel
*label_stmt
= dyn_cast
<glabel
*> (stmt
);
2365 && (FORCED_LABEL (gimple_label_label (label_stmt
))
2366 || DECL_NONLOCAL (gimple_label_label (label_stmt
))))
2369 gimple_stmt_iterator new_gsi
;
2371 /* A non-reachable non-local label may still be referenced.
2372 But it no longer needs to carry the extra semantics of
2374 if (DECL_NONLOCAL (gimple_label_label (label_stmt
)))
2376 DECL_NONLOCAL (gimple_label_label (label_stmt
)) = 0;
2377 FORCED_LABEL (gimple_label_label (label_stmt
)) = 1;
2380 new_bb
= bb
->prev_bb
;
2381 /* Don't move any labels into ENTRY block. */
2382 if (new_bb
== ENTRY_BLOCK_PTR_FOR_FN (cfun
))
2384 new_bb
= single_succ (new_bb
);
2385 gcc_assert (new_bb
!= bb
);
2387 if ((unsigned) bb
->index
< bb_to_omp_idx
.length ()
2388 && ((unsigned) new_bb
->index
>= bb_to_omp_idx
.length ()
2389 || (bb_to_omp_idx
[bb
->index
]
2390 != bb_to_omp_idx
[new_bb
->index
])))
2392 /* During cfg pass make sure to put orphaned labels
2393 into the right OMP region. */
2397 FOR_EACH_VEC_ELT (bb_to_omp_idx
, i
, idx
)
2398 if (i
>= NUM_FIXED_BLOCKS
2399 && idx
== bb_to_omp_idx
[bb
->index
]
2400 && i
!= (unsigned) bb
->index
)
2402 new_bb
= BASIC_BLOCK_FOR_FN (cfun
, i
);
2407 new_bb
= single_succ (ENTRY_BLOCK_PTR_FOR_FN (cfun
));
2408 gcc_assert (new_bb
!= bb
);
2411 new_gsi
= gsi_after_labels (new_bb
);
2412 gsi_remove (&i
, false);
2413 gsi_insert_before (&new_gsi
, stmt
, GSI_NEW_STMT
);
2417 /* Release SSA definitions. */
2418 release_defs (stmt
);
2419 gsi_remove (&i
, true);
2423 i
= gsi_last_bb (bb
);
2429 if ((unsigned) bb
->index
< bb_to_omp_idx
.length ())
2430 bb_to_omp_idx
[bb
->index
] = -1;
2431 remove_phi_nodes_and_edges_for_unreachable_block (bb
);
2432 bb
->il
.gimple
.seq
= NULL
;
2433 bb
->il
.gimple
.phi_nodes
= NULL
;
2437 /* Given a basic block BB and a value VAL for use in the final statement
2438 of the block (if a GIMPLE_COND, GIMPLE_SWITCH, or computed goto), return
2439 the edge that will be taken out of the block.
2440 If VAL is NULL_TREE, then the current value of the final statement's
2441 predicate or index is used.
2442 If the value does not match a unique edge, NULL is returned. */
2445 find_taken_edge (basic_block bb
, tree val
)
2449 stmt
= *gsi_last_bb (bb
);
2451 /* Handle ENTRY and EXIT. */
2455 else if (gimple_code (stmt
) == GIMPLE_COND
)
2456 return find_taken_edge_cond_expr (as_a
<gcond
*> (stmt
), val
);
2458 else if (gimple_code (stmt
) == GIMPLE_SWITCH
)
2459 return find_taken_edge_switch_expr (as_a
<gswitch
*> (stmt
), val
);
2461 else if (computed_goto_p (stmt
))
2463 /* Only optimize if the argument is a label, if the argument is
2464 not a label then we cannot construct a proper CFG.
2466 It may be the case that we only need to allow the LABEL_REF to
2467 appear inside an ADDR_EXPR, but we also allow the LABEL_REF to
2468 appear inside a LABEL_EXPR just to be safe. */
2470 && (TREE_CODE (val
) == ADDR_EXPR
|| TREE_CODE (val
) == LABEL_EXPR
)
2471 && TREE_CODE (TREE_OPERAND (val
, 0)) == LABEL_DECL
)
2472 return find_taken_edge_computed_goto (bb
, TREE_OPERAND (val
, 0));
2475 /* Otherwise we only know the taken successor edge if it's unique. */
2476 return single_succ_p (bb
) ? single_succ_edge (bb
) : NULL
;
2479 /* Given a constant value VAL and the entry block BB to a GOTO_EXPR
2480 statement, determine which of the outgoing edges will be taken out of the
2481 block. Return NULL if either edge may be taken. */
2484 find_taken_edge_computed_goto (basic_block bb
, tree val
)
2489 dest
= label_to_block (cfun
, val
);
2491 e
= find_edge (bb
, dest
);
2493 /* It's possible for find_edge to return NULL here on invalid code
2494 that abuses the labels-as-values extension (e.g. code that attempts to
2495 jump *between* functions via stored labels-as-values; PR 84136).
2496 If so, then we simply return that NULL for the edge.
2497 We don't currently have a way of detecting such invalid code, so we
2498 can't assert that it was the case when a NULL edge occurs here. */
2503 /* Given COND_STMT and a constant value VAL for use as the predicate,
2504 determine which of the two edges will be taken out of
2505 the statement's block. Return NULL if either edge may be taken.
2506 If VAL is NULL_TREE, then the current value of COND_STMT's predicate
2510 find_taken_edge_cond_expr (const gcond
*cond_stmt
, tree val
)
2512 edge true_edge
, false_edge
;
2514 if (val
== NULL_TREE
)
2516 /* Use the current value of the predicate. */
2517 if (gimple_cond_true_p (cond_stmt
))
2518 val
= integer_one_node
;
2519 else if (gimple_cond_false_p (cond_stmt
))
2520 val
= integer_zero_node
;
2524 else if (TREE_CODE (val
) != INTEGER_CST
)
2527 extract_true_false_edges_from_block (gimple_bb (cond_stmt
),
2528 &true_edge
, &false_edge
);
2530 return (integer_zerop (val
) ? false_edge
: true_edge
);
2533 /* Given SWITCH_STMT and an INTEGER_CST VAL for use as the index, determine
2534 which edge will be taken out of the statement's block. Return NULL if any
2536 If VAL is NULL_TREE, then the current value of SWITCH_STMT's index
2540 find_taken_edge_switch_expr (const gswitch
*switch_stmt
, tree val
)
2542 basic_block dest_bb
;
2546 if (gimple_switch_num_labels (switch_stmt
) == 1)
2547 taken_case
= gimple_switch_default_label (switch_stmt
);
2550 if (val
== NULL_TREE
)
2551 val
= gimple_switch_index (switch_stmt
);
2552 if (TREE_CODE (val
) != INTEGER_CST
)
2555 taken_case
= find_case_label_for_value (switch_stmt
, val
);
2557 dest_bb
= label_to_block (cfun
, CASE_LABEL (taken_case
));
2559 e
= find_edge (gimple_bb (switch_stmt
), dest_bb
);
2565 /* Return the CASE_LABEL_EXPR that SWITCH_STMT will take for VAL.
2566 We can make optimal use here of the fact that the case labels are
2567 sorted: We can do a binary search for a case matching VAL. */
2570 find_case_label_for_value (const gswitch
*switch_stmt
, tree val
)
2572 size_t low
, high
, n
= gimple_switch_num_labels (switch_stmt
);
2573 tree default_case
= gimple_switch_default_label (switch_stmt
);
2575 for (low
= 0, high
= n
; high
- low
> 1; )
2577 size_t i
= (high
+ low
) / 2;
2578 tree t
= gimple_switch_label (switch_stmt
, i
);
2581 /* Cache the result of comparing CASE_LOW and val. */
2582 cmp
= tree_int_cst_compare (CASE_LOW (t
), val
);
2589 if (CASE_HIGH (t
) == NULL
)
2591 /* A singe-valued case label. */
2597 /* A case range. We can only handle integer ranges. */
2598 if (cmp
<= 0 && tree_int_cst_compare (CASE_HIGH (t
), val
) >= 0)
2603 return default_case
;
2607 /* Dump a basic block on stderr. */
2610 gimple_debug_bb (basic_block bb
)
2612 dump_bb (stderr
, bb
, 0, TDF_VOPS
|TDF_MEMSYMS
|TDF_BLOCKS
);
2616 /* Dump basic block with index N on stderr. */
2619 gimple_debug_bb_n (int n
)
2621 gimple_debug_bb (BASIC_BLOCK_FOR_FN (cfun
, n
));
2622 return BASIC_BLOCK_FOR_FN (cfun
, n
);
2626 /* Dump the CFG on stderr.
2628 FLAGS are the same used by the tree dumping functions
2629 (see TDF_* in dumpfile.h). */
2632 gimple_debug_cfg (dump_flags_t flags
)
2634 gimple_dump_cfg (stderr
, flags
);
2638 /* Dump the program showing basic block boundaries on the given FILE.
2640 FLAGS are the same used by the tree dumping functions (see TDF_* in
2644 gimple_dump_cfg (FILE *file
, dump_flags_t flags
)
2646 if (flags
& TDF_DETAILS
)
2648 dump_function_header (file
, current_function_decl
, flags
);
2649 fprintf (file
, ";; \n%d basic blocks, %d edges, last basic block %d.\n\n",
2650 n_basic_blocks_for_fn (cfun
), n_edges_for_fn (cfun
),
2651 last_basic_block_for_fn (cfun
));
2653 brief_dump_cfg (file
, flags
);
2654 fprintf (file
, "\n");
2657 if (flags
& TDF_STATS
)
2658 dump_cfg_stats (file
);
2660 dump_function_to_file (current_function_decl
, file
, flags
| TDF_BLOCKS
);
2664 /* Dump CFG statistics on FILE. */
2667 dump_cfg_stats (FILE *file
)
2669 static long max_num_merged_labels
= 0;
2670 unsigned long size
, total
= 0;
2673 const char * const fmt_str
= "%-30s%-13s%12s\n";
2674 const char * const fmt_str_1
= "%-30s%13d" PRsa (11) "\n";
2675 const char * const fmt_str_2
= "%-30s%13ld" PRsa (11) "\n";
2676 const char * const fmt_str_3
= "%-43s" PRsa (11) "\n";
2677 const char *funcname
= current_function_name ();
2679 fprintf (file
, "\nCFG Statistics for %s\n\n", funcname
);
2681 fprintf (file
, "---------------------------------------------------------\n");
2682 fprintf (file
, fmt_str
, "", " Number of ", "Memory");
2683 fprintf (file
, fmt_str
, "", " instances ", "used ");
2684 fprintf (file
, "---------------------------------------------------------\n");
2686 size
= n_basic_blocks_for_fn (cfun
) * sizeof (struct basic_block_def
);
2688 fprintf (file
, fmt_str_1
, "Basic blocks", n_basic_blocks_for_fn (cfun
),
2689 SIZE_AMOUNT (size
));
2692 FOR_EACH_BB_FN (bb
, cfun
)
2693 num_edges
+= EDGE_COUNT (bb
->succs
);
2694 size
= num_edges
* sizeof (class edge_def
);
2696 fprintf (file
, fmt_str_2
, "Edges", num_edges
, SIZE_AMOUNT (size
));
2698 fprintf (file
, "---------------------------------------------------------\n");
2699 fprintf (file
, fmt_str_3
, "Total memory used by CFG data",
2700 SIZE_AMOUNT (total
));
2701 fprintf (file
, "---------------------------------------------------------\n");
2702 fprintf (file
, "\n");
2704 if (cfg_stats
.num_merged_labels
> max_num_merged_labels
)
2705 max_num_merged_labels
= cfg_stats
.num_merged_labels
;
2707 fprintf (file
, "Coalesced label blocks: %ld (Max so far: %ld)\n",
2708 cfg_stats
.num_merged_labels
, max_num_merged_labels
);
2710 fprintf (file
, "\n");
2714 /* Dump CFG statistics on stderr. Keep extern so that it's always
2715 linked in the final executable. */
2718 debug_cfg_stats (void)
2720 dump_cfg_stats (stderr
);
2723 /*---------------------------------------------------------------------------
2724 Miscellaneous helpers
2725 ---------------------------------------------------------------------------*/
2727 /* Return true if T, a GIMPLE_CALL, can make an abnormal transfer of control
2728 flow. Transfers of control flow associated with EH are excluded. */
2731 call_can_make_abnormal_goto (gimple
*t
)
2733 /* If the function has no non-local labels, then a call cannot make an
2734 abnormal transfer of control. */
2735 if (!cfun
->has_nonlocal_label
2736 && !cfun
->calls_setjmp
)
2739 /* Likewise if the call has no side effects. */
2740 if (!gimple_has_side_effects (t
))
2743 /* Likewise if the called function is leaf. */
2744 if (gimple_call_flags (t
) & ECF_LEAF
)
2751 /* Return true if T can make an abnormal transfer of control flow.
2752 Transfers of control flow associated with EH are excluded. */
2755 stmt_can_make_abnormal_goto (gimple
*t
)
2757 if (computed_goto_p (t
))
2759 if (is_gimple_call (t
))
2760 return call_can_make_abnormal_goto (t
);
2765 /* Return true if T represents a stmt that always transfers control. */
2768 is_ctrl_stmt (gimple
*t
)
2770 switch (gimple_code (t
))
2784 /* Return true if T is a statement that may alter the flow of control
2785 (e.g., a call to a non-returning function). */
2788 is_ctrl_altering_stmt (gimple
*t
)
2792 switch (gimple_code (t
))
2795 /* Per stmt call flag indicates whether the call could alter
2797 if (gimple_call_ctrl_altering_p (t
))
2801 case GIMPLE_EH_DISPATCH
:
2802 /* EH_DISPATCH branches to the individual catch handlers at
2803 this level of a try or allowed-exceptions region. It can
2804 fallthru to the next statement as well. */
2808 if (gimple_asm_nlabels (as_a
<gasm
*> (t
)) > 0)
2813 /* OpenMP directives alter control flow. */
2816 case GIMPLE_TRANSACTION
:
2817 /* A transaction start alters control flow. */
2824 /* If a statement can throw, it alters control flow. */
2825 return stmt_can_throw_internal (cfun
, t
);
2829 /* Return true if T is a simple local goto. */
2832 simple_goto_p (gimple
*t
)
2834 return (gimple_code (t
) == GIMPLE_GOTO
2835 && TREE_CODE (gimple_goto_dest (t
)) == LABEL_DECL
);
2839 /* Return true if STMT should start a new basic block. PREV_STMT is
2840 the statement preceding STMT. It is used when STMT is a label or a
2841 case label. Labels should only start a new basic block if their
2842 previous statement wasn't a label. Otherwise, sequence of labels
2843 would generate unnecessary basic blocks that only contain a single
2847 stmt_starts_bb_p (gimple
*stmt
, gimple
*prev_stmt
)
2852 /* PREV_STMT is only set to a debug stmt if the debug stmt is before
2853 any nondebug stmts in the block. We don't want to start another
2854 block in this case: the debug stmt will already have started the
2855 one STMT would start if we weren't outputting debug stmts. */
2856 if (prev_stmt
&& is_gimple_debug (prev_stmt
))
2859 /* Labels start a new basic block only if the preceding statement
2860 wasn't a label of the same type. This prevents the creation of
2861 consecutive blocks that have nothing but a single label. */
2862 if (glabel
*label_stmt
= dyn_cast
<glabel
*> (stmt
))
2864 /* Nonlocal and computed GOTO targets always start a new block. */
2865 if (DECL_NONLOCAL (gimple_label_label (label_stmt
))
2866 || FORCED_LABEL (gimple_label_label (label_stmt
)))
2869 if (glabel
*plabel
= safe_dyn_cast
<glabel
*> (prev_stmt
))
2871 if (DECL_NONLOCAL (gimple_label_label (plabel
))
2872 || !DECL_ARTIFICIAL (gimple_label_label (plabel
)))
2875 cfg_stats
.num_merged_labels
++;
2881 else if (gimple_code (stmt
) == GIMPLE_CALL
)
2883 if (gimple_call_flags (stmt
) & ECF_RETURNS_TWICE
)
2884 /* setjmp acts similar to a nonlocal GOTO target and thus should
2885 start a new block. */
2887 if (gimple_call_internal_p (stmt
, IFN_PHI
)
2889 && gimple_code (prev_stmt
) != GIMPLE_LABEL
2890 && (gimple_code (prev_stmt
) != GIMPLE_CALL
2891 || ! gimple_call_internal_p (prev_stmt
, IFN_PHI
)))
2892 /* PHI nodes start a new block unless preceeded by a label
2901 /* Return true if T should end a basic block. */
2904 stmt_ends_bb_p (gimple
*t
)
2906 return is_ctrl_stmt (t
) || is_ctrl_altering_stmt (t
);
2909 /* Remove block annotations and other data structures. */
2912 delete_tree_cfg_annotations (struct function
*fn
)
2914 vec_free (label_to_block_map_for_fn (fn
));
2917 /* Return the virtual phi in BB. */
2920 get_virtual_phi (basic_block bb
)
2922 for (gphi_iterator gsi
= gsi_start_phis (bb
);
2926 gphi
*phi
= gsi
.phi ();
2928 if (virtual_operand_p (PHI_RESULT (phi
)))
2935 /* Return the first statement in basic block BB. */
2938 first_stmt (basic_block bb
)
2940 gimple_stmt_iterator i
= gsi_start_bb (bb
);
2941 gimple
*stmt
= NULL
;
2943 while (!gsi_end_p (i
) && is_gimple_debug ((stmt
= gsi_stmt (i
))))
2951 /* Return the first non-label statement in basic block BB. */
2954 first_non_label_stmt (basic_block bb
)
2956 gimple_stmt_iterator i
= gsi_start_bb (bb
);
2957 while (!gsi_end_p (i
) && gimple_code (gsi_stmt (i
)) == GIMPLE_LABEL
)
2959 return !gsi_end_p (i
) ? gsi_stmt (i
) : NULL
;
2962 /* Return the last statement in basic block BB. */
2965 last_nondebug_stmt (basic_block bb
)
2967 gimple_stmt_iterator i
= gsi_last_bb (bb
);
2968 gimple
*stmt
= NULL
;
2970 while (!gsi_end_p (i
) && is_gimple_debug ((stmt
= gsi_stmt (i
))))
2978 /* Return the last statement of an otherwise empty block. Return NULL
2979 if the block is totally empty, or if it contains more than one
2983 last_and_only_stmt (basic_block bb
)
2985 gimple_stmt_iterator i
= gsi_last_nondebug_bb (bb
);
2986 gimple
*last
, *prev
;
2991 last
= gsi_stmt (i
);
2992 gsi_prev_nondebug (&i
);
2996 /* Empty statements should no longer appear in the instruction stream.
2997 Everything that might have appeared before should be deleted by
2998 remove_useless_stmts, and the optimizers should just gsi_remove
2999 instead of smashing with build_empty_stmt.
3001 Thus the only thing that should appear here in a block containing
3002 one executable statement is a label. */
3003 prev
= gsi_stmt (i
);
3004 if (gimple_code (prev
) == GIMPLE_LABEL
)
3010 /* Returns the basic block after which the new basic block created
3011 by splitting edge EDGE_IN should be placed. Tries to keep the new block
3012 near its "logical" location. This is of most help to humans looking
3013 at debugging dumps. */
3016 split_edge_bb_loc (edge edge_in
)
3018 basic_block dest
= edge_in
->dest
;
3019 basic_block dest_prev
= dest
->prev_bb
;
3023 edge e
= find_edge (dest_prev
, dest
);
3024 if (e
&& !(e
->flags
& EDGE_COMPLEX
))
3025 return edge_in
->src
;
3030 /* Split a (typically critical) edge EDGE_IN. Return the new block.
3031 Abort on abnormal edges. */
3034 gimple_split_edge (edge edge_in
)
3036 basic_block new_bb
, after_bb
, dest
;
3039 /* Abnormal edges cannot be split. */
3040 gcc_assert (!(edge_in
->flags
& EDGE_ABNORMAL
));
3042 dest
= edge_in
->dest
;
3044 after_bb
= split_edge_bb_loc (edge_in
);
3046 new_bb
= create_empty_bb (after_bb
);
3047 new_bb
->count
= edge_in
->count ();
3049 /* We want to avoid re-allocating PHIs when we first
3050 add the fallthru edge from new_bb to dest but we also
3051 want to avoid changing PHI argument order when
3052 first redirecting edge_in away from dest. The former
3053 avoids changing PHI argument order by adding them
3054 last and then the redirection swapping it back into
3055 place by means of unordered remove.
3056 So hack around things by temporarily removing all PHIs
3057 from the destination during the edge redirection and then
3058 making sure the edges stay in order. */
3059 gimple_seq saved_phis
= phi_nodes (dest
);
3060 unsigned old_dest_idx
= edge_in
->dest_idx
;
3061 set_phi_nodes (dest
, NULL
);
3062 new_edge
= make_single_succ_edge (new_bb
, dest
, EDGE_FALLTHRU
);
3063 e
= redirect_edge_and_branch (edge_in
, new_bb
);
3064 gcc_assert (e
== edge_in
&& new_edge
->dest_idx
== old_dest_idx
);
3065 /* set_phi_nodes sets the BB of the PHI nodes, so do it manually here. */
3066 dest
->il
.gimple
.phi_nodes
= saved_phis
;
3072 /* Verify properties of the address expression T whose base should be
3073 TREE_ADDRESSABLE if VERIFY_ADDRESSABLE is true. */
3076 verify_address (tree t
, bool verify_addressable
)
3079 bool old_side_effects
;
3081 bool new_side_effects
;
3083 old_constant
= TREE_CONSTANT (t
);
3084 old_side_effects
= TREE_SIDE_EFFECTS (t
);
3086 recompute_tree_invariant_for_addr_expr (t
);
3087 new_side_effects
= TREE_SIDE_EFFECTS (t
);
3088 new_constant
= TREE_CONSTANT (t
);
3090 if (old_constant
!= new_constant
)
3092 error ("constant not recomputed when %<ADDR_EXPR%> changed");
3095 if (old_side_effects
!= new_side_effects
)
3097 error ("side effects not recomputed when %<ADDR_EXPR%> changed");
3101 tree base
= TREE_OPERAND (t
, 0);
3102 while (handled_component_p (base
))
3103 base
= TREE_OPERAND (base
, 0);
3106 || TREE_CODE (base
) == PARM_DECL
3107 || TREE_CODE (base
) == RESULT_DECL
))
3110 if (verify_addressable
&& !TREE_ADDRESSABLE (base
))
3112 error ("address taken but %<TREE_ADDRESSABLE%> bit not set");
3120 /* Verify if EXPR is a valid GIMPLE reference expression. If
3121 REQUIRE_LVALUE is true verifies it is an lvalue. Returns true
3122 if there is an error, otherwise false. */
3125 verify_types_in_gimple_reference (tree expr
, bool require_lvalue
)
3127 const char *code_name
= get_tree_code_name (TREE_CODE (expr
));
3129 if (TREE_CODE (expr
) == REALPART_EXPR
3130 || TREE_CODE (expr
) == IMAGPART_EXPR
3131 || TREE_CODE (expr
) == BIT_FIELD_REF
3132 || TREE_CODE (expr
) == VIEW_CONVERT_EXPR
)
3134 tree op
= TREE_OPERAND (expr
, 0);
3135 if (TREE_CODE (expr
) != VIEW_CONVERT_EXPR
3136 && !is_gimple_reg_type (TREE_TYPE (expr
)))
3138 error ("non-scalar %qs", code_name
);
3142 if (TREE_CODE (expr
) == BIT_FIELD_REF
)
3144 tree t1
= TREE_OPERAND (expr
, 1);
3145 tree t2
= TREE_OPERAND (expr
, 2);
3146 poly_uint64 size
, bitpos
;
3147 if (!poly_int_tree_p (t1
, &size
)
3148 || !poly_int_tree_p (t2
, &bitpos
)
3149 || !types_compatible_p (bitsizetype
, TREE_TYPE (t1
))
3150 || !types_compatible_p (bitsizetype
, TREE_TYPE (t2
)))
3152 error ("invalid position or size operand to %qs", code_name
);
3155 if (INTEGRAL_TYPE_P (TREE_TYPE (expr
))
3156 && maybe_ne (TYPE_PRECISION (TREE_TYPE (expr
)), size
))
3158 error ("integral result type precision does not match "
3159 "field size of %qs", code_name
);
3162 else if (!INTEGRAL_TYPE_P (TREE_TYPE (expr
))
3163 && TYPE_MODE (TREE_TYPE (expr
)) != BLKmode
3164 && maybe_ne (GET_MODE_BITSIZE (TYPE_MODE (TREE_TYPE (expr
))),
3167 error ("mode size of non-integral result does not "
3168 "match field size of %qs",
3172 if (INTEGRAL_TYPE_P (TREE_TYPE (op
))
3173 && !type_has_mode_precision_p (TREE_TYPE (op
)))
3175 error ("%qs of non-mode-precision operand", code_name
);
3178 if (!AGGREGATE_TYPE_P (TREE_TYPE (op
))
3179 && known_gt (size
+ bitpos
,
3180 tree_to_poly_uint64 (TYPE_SIZE (TREE_TYPE (op
)))))
3182 error ("position plus size exceeds size of referenced object in "
3188 if ((TREE_CODE (expr
) == REALPART_EXPR
3189 || TREE_CODE (expr
) == IMAGPART_EXPR
)
3190 && !useless_type_conversion_p (TREE_TYPE (expr
),
3191 TREE_TYPE (TREE_TYPE (op
))))
3193 error ("type mismatch in %qs reference", code_name
);
3194 debug_generic_stmt (TREE_TYPE (expr
));
3195 debug_generic_stmt (TREE_TYPE (TREE_TYPE (op
)));
3199 if (TREE_CODE (expr
) == VIEW_CONVERT_EXPR
)
3201 /* For VIEW_CONVERT_EXPRs which are allowed here too, we only check
3202 that their operand is not a register an invariant when
3203 requiring an lvalue (this usually means there is a SRA or IPA-SRA
3204 bug). Otherwise there is nothing to verify, gross mismatches at
3205 most invoke undefined behavior. */
3207 && (is_gimple_reg (op
) || is_gimple_min_invariant (op
)))
3209 error ("conversion of %qs on the left hand side of %qs",
3210 get_tree_code_name (TREE_CODE (op
)), code_name
);
3211 debug_generic_stmt (expr
);
3214 else if (is_gimple_reg (op
)
3215 && TYPE_SIZE (TREE_TYPE (expr
)) != TYPE_SIZE (TREE_TYPE (op
)))
3217 error ("conversion of register to a different size in %qs",
3219 debug_generic_stmt (expr
);
3227 bool require_non_reg
= false;
3228 while (handled_component_p (expr
))
3230 require_non_reg
= true;
3231 code_name
= get_tree_code_name (TREE_CODE (expr
));
3233 if (TREE_CODE (expr
) == REALPART_EXPR
3234 || TREE_CODE (expr
) == IMAGPART_EXPR
3235 || TREE_CODE (expr
) == BIT_FIELD_REF
)
3237 error ("non-top-level %qs", code_name
);
3241 tree op
= TREE_OPERAND (expr
, 0);
3243 if (TREE_CODE (expr
) == ARRAY_REF
3244 || TREE_CODE (expr
) == ARRAY_RANGE_REF
)
3246 if (!is_gimple_val (TREE_OPERAND (expr
, 1))
3247 || (TREE_OPERAND (expr
, 2)
3248 && !is_gimple_val (TREE_OPERAND (expr
, 2)))
3249 || (TREE_OPERAND (expr
, 3)
3250 && !is_gimple_val (TREE_OPERAND (expr
, 3))))
3252 error ("invalid operands to %qs", code_name
);
3253 debug_generic_stmt (expr
);
3258 /* Verify if the reference array element types are compatible. */
3259 if (TREE_CODE (expr
) == ARRAY_REF
3260 && !useless_type_conversion_p (TREE_TYPE (expr
),
3261 TREE_TYPE (TREE_TYPE (op
))))
3263 error ("type mismatch in %qs", code_name
);
3264 debug_generic_stmt (TREE_TYPE (expr
));
3265 debug_generic_stmt (TREE_TYPE (TREE_TYPE (op
)));
3268 if (TREE_CODE (expr
) == ARRAY_RANGE_REF
3269 && !useless_type_conversion_p (TREE_TYPE (TREE_TYPE (expr
)),
3270 TREE_TYPE (TREE_TYPE (op
))))
3272 error ("type mismatch in %qs", code_name
);
3273 debug_generic_stmt (TREE_TYPE (TREE_TYPE (expr
)));
3274 debug_generic_stmt (TREE_TYPE (TREE_TYPE (op
)));
3278 if (TREE_CODE (expr
) == COMPONENT_REF
)
3280 if (TREE_OPERAND (expr
, 2)
3281 && !is_gimple_val (TREE_OPERAND (expr
, 2)))
3283 error ("invalid %qs offset operator", code_name
);
3286 if (!useless_type_conversion_p (TREE_TYPE (expr
),
3287 TREE_TYPE (TREE_OPERAND (expr
, 1))))
3289 error ("type mismatch in %qs", code_name
);
3290 debug_generic_stmt (TREE_TYPE (expr
));
3291 debug_generic_stmt (TREE_TYPE (TREE_OPERAND (expr
, 1)));
3299 code_name
= get_tree_code_name (TREE_CODE (expr
));
3301 if (TREE_CODE (expr
) == MEM_REF
)
3303 if (!is_gimple_mem_ref_addr (TREE_OPERAND (expr
, 0))
3304 || (TREE_CODE (TREE_OPERAND (expr
, 0)) == ADDR_EXPR
3305 && verify_address (TREE_OPERAND (expr
, 0), false)))
3307 error ("invalid address operand in %qs", code_name
);
3308 debug_generic_stmt (expr
);
3311 if (!poly_int_tree_p (TREE_OPERAND (expr
, 1))
3312 || !POINTER_TYPE_P (TREE_TYPE (TREE_OPERAND (expr
, 1))))
3314 error ("invalid offset operand in %qs", code_name
);
3315 debug_generic_stmt (expr
);
3318 if (MR_DEPENDENCE_CLIQUE (expr
) != 0
3319 && MR_DEPENDENCE_CLIQUE (expr
) > cfun
->last_clique
)
3321 error ("invalid clique in %qs", code_name
);
3322 debug_generic_stmt (expr
);
3326 else if (TREE_CODE (expr
) == TARGET_MEM_REF
)
3328 if (!TMR_BASE (expr
)
3329 || !is_gimple_mem_ref_addr (TMR_BASE (expr
))
3330 || (TREE_CODE (TMR_BASE (expr
)) == ADDR_EXPR
3331 && verify_address (TMR_BASE (expr
), false)))
3333 error ("invalid address operand in %qs", code_name
);
3336 if (!TMR_OFFSET (expr
)
3337 || !poly_int_tree_p (TMR_OFFSET (expr
))
3338 || !POINTER_TYPE_P (TREE_TYPE (TMR_OFFSET (expr
))))
3340 error ("invalid offset operand in %qs", code_name
);
3341 debug_generic_stmt (expr
);
3344 if (MR_DEPENDENCE_CLIQUE (expr
) != 0
3345 && MR_DEPENDENCE_CLIQUE (expr
) > cfun
->last_clique
)
3347 error ("invalid clique in %qs", code_name
);
3348 debug_generic_stmt (expr
);
3352 else if (INDIRECT_REF_P (expr
))
3354 error ("%qs in gimple IL", code_name
);
3355 debug_generic_stmt (expr
);
3358 else if (require_non_reg
3359 && (is_gimple_reg (expr
)
3360 || (is_gimple_min_invariant (expr
)
3361 /* STRING_CSTs are representatives of the string table
3362 entry which lives in memory. */
3363 && TREE_CODE (expr
) != STRING_CST
)))
3365 error ("%qs as base where non-register is required", code_name
);
3366 debug_generic_stmt (expr
);
3371 && (is_gimple_reg (expr
) || is_gimple_min_invariant (expr
)))
3374 if (TREE_CODE (expr
) != SSA_NAME
&& is_gimple_id (expr
))
3377 if (TREE_CODE (expr
) != TARGET_MEM_REF
3378 && TREE_CODE (expr
) != MEM_REF
)
3380 error ("invalid expression for min lvalue");
3387 /* Returns true if there is one pointer type in TYPE_POINTER_TO (SRC_OBJ)
3388 list of pointer-to types that is trivially convertible to DEST. */
3391 one_pointer_to_useless_type_conversion_p (tree dest
, tree src_obj
)
3395 if (!TYPE_POINTER_TO (src_obj
))
3398 for (src
= TYPE_POINTER_TO (src_obj
); src
; src
= TYPE_NEXT_PTR_TO (src
))
3399 if (useless_type_conversion_p (dest
, src
))
3405 /* Return true if TYPE1 is a fixed-point type and if conversions to and
3406 from TYPE2 can be handled by FIXED_CONVERT_EXPR. */
3409 valid_fixed_convert_types_p (tree type1
, tree type2
)
3411 return (FIXED_POINT_TYPE_P (type1
)
3412 && (INTEGRAL_TYPE_P (type2
)
3413 || SCALAR_FLOAT_TYPE_P (type2
)
3414 || FIXED_POINT_TYPE_P (type2
)));
3417 /* Verify the contents of a GIMPLE_CALL STMT. Returns true when there
3418 is a problem, otherwise false. */
3421 verify_gimple_call (gcall
*stmt
)
3423 tree fn
= gimple_call_fn (stmt
);
3424 tree fntype
, fndecl
;
3427 if (gimple_call_internal_p (stmt
))
3431 error ("gimple call has two targets");
3432 debug_generic_stmt (fn
);
3440 error ("gimple call has no target");
3445 if (fn
&& !is_gimple_call_addr (fn
))
3447 error ("invalid function in gimple call");
3448 debug_generic_stmt (fn
);
3453 && (!POINTER_TYPE_P (TREE_TYPE (fn
))
3454 || (TREE_CODE (TREE_TYPE (TREE_TYPE (fn
))) != FUNCTION_TYPE
3455 && TREE_CODE (TREE_TYPE (TREE_TYPE (fn
))) != METHOD_TYPE
)))
3457 error ("non-function in gimple call");
3461 fndecl
= gimple_call_fndecl (stmt
);
3463 && TREE_CODE (fndecl
) == FUNCTION_DECL
3464 && DECL_LOOPING_CONST_OR_PURE_P (fndecl
)
3465 && !DECL_PURE_P (fndecl
)
3466 && !TREE_READONLY (fndecl
))
3468 error ("invalid pure const state for function");
3472 tree lhs
= gimple_call_lhs (stmt
);
3474 && (!is_gimple_reg (lhs
)
3475 && (!is_gimple_lvalue (lhs
)
3476 || verify_types_in_gimple_reference
3477 (TREE_CODE (lhs
) == WITH_SIZE_EXPR
3478 ? TREE_OPERAND (lhs
, 0) : lhs
, true))))
3480 error ("invalid LHS in gimple call");
3484 if (gimple_call_ctrl_altering_p (stmt
)
3485 && gimple_call_noreturn_p (stmt
)
3486 && should_remove_lhs_p (lhs
))
3488 error ("LHS in %<noreturn%> call");
3492 fntype
= gimple_call_fntype (stmt
);
3495 && !useless_type_conversion_p (TREE_TYPE (lhs
), TREE_TYPE (fntype
))
3496 /* ??? At least C++ misses conversions at assignments from
3497 void * call results.
3498 For now simply allow arbitrary pointer type conversions. */
3499 && !(POINTER_TYPE_P (TREE_TYPE (lhs
))
3500 && POINTER_TYPE_P (TREE_TYPE (fntype
))))
3502 error ("invalid conversion in gimple call");
3503 debug_generic_stmt (TREE_TYPE (lhs
));
3504 debug_generic_stmt (TREE_TYPE (fntype
));
3508 if (gimple_call_chain (stmt
)
3509 && !is_gimple_val (gimple_call_chain (stmt
)))
3511 error ("invalid static chain in gimple call");
3512 debug_generic_stmt (gimple_call_chain (stmt
));
3516 /* If there is a static chain argument, the call should either be
3517 indirect, or the decl should have DECL_STATIC_CHAIN set. */
3518 if (gimple_call_chain (stmt
)
3520 && !DECL_STATIC_CHAIN (fndecl
))
3522 error ("static chain with function that doesn%'t use one");
3526 if (fndecl
&& fndecl_built_in_p (fndecl
, BUILT_IN_NORMAL
))
3528 switch (DECL_FUNCTION_CODE (fndecl
))
3530 case BUILT_IN_UNREACHABLE
:
3531 case BUILT_IN_UNREACHABLE_TRAP
:
3533 if (gimple_call_num_args (stmt
) > 0)
3535 /* Built-in unreachable with parameters might not be caught by
3536 undefined behavior sanitizer. Front-ends do check users do not
3537 call them that way but we also produce calls to
3538 __builtin_unreachable internally, for example when IPA figures
3539 out a call cannot happen in a legal program. In such cases,
3540 we must make sure arguments are stripped off. */
3541 error ("%<__builtin_unreachable%> or %<__builtin_trap%> call "
3551 /* For a call to .DEFERRED_INIT,
3552 LHS = DEFERRED_INIT (SIZE of the DECL, INIT_TYPE, NAME of the DECL)
3553 we should guarantee that when the 1st argument is a constant, it should
3554 be the same as the size of the LHS. */
3556 if (gimple_call_internal_p (stmt
, IFN_DEFERRED_INIT
))
3558 tree size_of_arg0
= gimple_call_arg (stmt
, 0);
3559 tree size_of_lhs
= TYPE_SIZE_UNIT (TREE_TYPE (lhs
));
3561 if (TREE_CODE (lhs
) == SSA_NAME
)
3562 lhs
= SSA_NAME_VAR (lhs
);
3564 poly_uint64 size_from_arg0
, size_from_lhs
;
3565 bool is_constant_size_arg0
= poly_int_tree_p (size_of_arg0
,
3567 bool is_constant_size_lhs
= poly_int_tree_p (size_of_lhs
,
3569 if (is_constant_size_arg0
&& is_constant_size_lhs
)
3570 if (maybe_ne (size_from_arg0
, size_from_lhs
))
3572 error ("%<DEFERRED_INIT%> calls should have same "
3573 "constant size for the first argument and LHS");
3578 /* ??? The C frontend passes unpromoted arguments in case it
3579 didn't see a function declaration before the call. So for now
3580 leave the call arguments mostly unverified. Once we gimplify
3581 unit-at-a-time we have a chance to fix this. */
3582 for (i
= 0; i
< gimple_call_num_args (stmt
); ++i
)
3584 tree arg
= gimple_call_arg (stmt
, i
);
3585 if ((is_gimple_reg_type (TREE_TYPE (arg
))
3586 && !is_gimple_val (arg
))
3587 || (!is_gimple_reg_type (TREE_TYPE (arg
))
3588 && !is_gimple_lvalue (arg
)))
3590 error ("invalid argument to gimple call");
3591 debug_generic_expr (arg
);
3594 if (!is_gimple_reg (arg
))
3596 if (TREE_CODE (arg
) == WITH_SIZE_EXPR
)
3597 arg
= TREE_OPERAND (arg
, 0);
3598 if (verify_types_in_gimple_reference (arg
, false))
3606 /* Verifies the gimple comparison with the result type TYPE and
3607 the operands OP0 and OP1, comparison code is CODE. */
3610 verify_gimple_comparison (tree type
, tree op0
, tree op1
, enum tree_code code
)
3612 tree op0_type
= TREE_TYPE (op0
);
3613 tree op1_type
= TREE_TYPE (op1
);
3615 if (!is_gimple_val (op0
) || !is_gimple_val (op1
))
3617 error ("invalid operands in gimple comparison");
3621 /* For comparisons we do not have the operations type as the
3622 effective type the comparison is carried out in. Instead
3623 we require that either the first operand is trivially
3624 convertible into the second, or the other way around. */
3625 if (!useless_type_conversion_p (op0_type
, op1_type
)
3626 && !useless_type_conversion_p (op1_type
, op0_type
))
3628 error ("mismatching comparison operand types");
3629 debug_generic_expr (op0_type
);
3630 debug_generic_expr (op1_type
);
3634 /* The resulting type of a comparison may be an effective boolean type. */
3635 if (INTEGRAL_TYPE_P (type
)
3636 && (TREE_CODE (type
) == BOOLEAN_TYPE
3637 || TYPE_PRECISION (type
) == 1))
3639 if ((VECTOR_TYPE_P (op0_type
)
3640 || VECTOR_TYPE_P (op1_type
))
3641 && code
!= EQ_EXPR
&& code
!= NE_EXPR
3642 && !VECTOR_BOOLEAN_TYPE_P (op0_type
)
3643 && !VECTOR_INTEGER_TYPE_P (op0_type
))
3645 error ("unsupported operation or type for vector comparison"
3646 " returning a boolean");
3647 debug_generic_expr (op0_type
);
3648 debug_generic_expr (op1_type
);
3652 /* Or a boolean vector type with the same element count
3653 as the comparison operand types. */
3654 else if (VECTOR_TYPE_P (type
)
3655 && TREE_CODE (TREE_TYPE (type
)) == BOOLEAN_TYPE
)
3657 if (TREE_CODE (op0_type
) != VECTOR_TYPE
3658 || TREE_CODE (op1_type
) != VECTOR_TYPE
)
3660 error ("non-vector operands in vector comparison");
3661 debug_generic_expr (op0_type
);
3662 debug_generic_expr (op1_type
);
3666 if (maybe_ne (TYPE_VECTOR_SUBPARTS (type
),
3667 TYPE_VECTOR_SUBPARTS (op0_type
)))
3669 error ("invalid vector comparison resulting type");
3670 debug_generic_expr (type
);
3676 error ("bogus comparison result type");
3677 debug_generic_expr (type
);
3684 /* Verify a gimple assignment statement STMT with an unary rhs.
3685 Returns true if anything is wrong. */
3688 verify_gimple_assign_unary (gassign
*stmt
)
3690 enum tree_code rhs_code
= gimple_assign_rhs_code (stmt
);
3691 tree lhs
= gimple_assign_lhs (stmt
);
3692 tree lhs_type
= TREE_TYPE (lhs
);
3693 tree rhs1
= gimple_assign_rhs1 (stmt
);
3694 tree rhs1_type
= TREE_TYPE (rhs1
);
3696 if (!is_gimple_reg (lhs
))
3698 error ("non-register as LHS of unary operation");
3702 if (!is_gimple_val (rhs1
))
3704 error ("invalid operand in unary operation");
3708 const char* const code_name
= get_tree_code_name (rhs_code
);
3710 /* First handle conversions. */
3715 /* Allow conversions between vectors with the same number of elements,
3716 provided that the conversion is OK for the element types too. */
3717 if (VECTOR_TYPE_P (lhs_type
)
3718 && VECTOR_TYPE_P (rhs1_type
)
3719 && known_eq (TYPE_VECTOR_SUBPARTS (lhs_type
),
3720 TYPE_VECTOR_SUBPARTS (rhs1_type
)))
3722 lhs_type
= TREE_TYPE (lhs_type
);
3723 rhs1_type
= TREE_TYPE (rhs1_type
);
3725 else if (VECTOR_TYPE_P (lhs_type
) || VECTOR_TYPE_P (rhs1_type
))
3727 error ("invalid vector types in nop conversion");
3728 debug_generic_expr (lhs_type
);
3729 debug_generic_expr (rhs1_type
);
3733 /* Allow conversions from pointer type to integral type only if
3734 there is no sign or zero extension involved.
3735 For targets were the precision of ptrofftype doesn't match that
3736 of pointers we allow conversions to types where
3737 POINTERS_EXTEND_UNSIGNED specifies how that works. */
3738 if ((POINTER_TYPE_P (lhs_type
)
3739 && INTEGRAL_TYPE_P (rhs1_type
))
3740 || (POINTER_TYPE_P (rhs1_type
)
3741 && INTEGRAL_TYPE_P (lhs_type
)
3742 && (TYPE_PRECISION (rhs1_type
) >= TYPE_PRECISION (lhs_type
)
3743 #if defined(POINTERS_EXTEND_UNSIGNED)
3744 || (TYPE_MODE (rhs1_type
) == ptr_mode
3745 && (TYPE_PRECISION (lhs_type
)
3746 == BITS_PER_WORD
/* word_mode */
3747 || (TYPE_PRECISION (lhs_type
)
3748 == GET_MODE_PRECISION (Pmode
))))
3753 /* Allow conversion from integral to offset type and vice versa. */
3754 if ((TREE_CODE (lhs_type
) == OFFSET_TYPE
3755 && INTEGRAL_TYPE_P (rhs1_type
))
3756 || (INTEGRAL_TYPE_P (lhs_type
)
3757 && TREE_CODE (rhs1_type
) == OFFSET_TYPE
))
3760 /* Otherwise assert we are converting between types of the
3762 if (INTEGRAL_TYPE_P (lhs_type
) != INTEGRAL_TYPE_P (rhs1_type
))
3764 error ("invalid types in nop conversion");
3765 debug_generic_expr (lhs_type
);
3766 debug_generic_expr (rhs1_type
);
3773 case ADDR_SPACE_CONVERT_EXPR
:
3775 if (!POINTER_TYPE_P (rhs1_type
) || !POINTER_TYPE_P (lhs_type
)
3776 || (TYPE_ADDR_SPACE (TREE_TYPE (rhs1_type
))
3777 == TYPE_ADDR_SPACE (TREE_TYPE (lhs_type
))))
3779 error ("invalid types in address space conversion");
3780 debug_generic_expr (lhs_type
);
3781 debug_generic_expr (rhs1_type
);
3788 case FIXED_CONVERT_EXPR
:
3790 if (!valid_fixed_convert_types_p (lhs_type
, rhs1_type
)
3791 && !valid_fixed_convert_types_p (rhs1_type
, lhs_type
))
3793 error ("invalid types in fixed-point conversion");
3794 debug_generic_expr (lhs_type
);
3795 debug_generic_expr (rhs1_type
);
3804 if ((!INTEGRAL_TYPE_P (rhs1_type
) || !SCALAR_FLOAT_TYPE_P (lhs_type
))
3805 && (!VECTOR_INTEGER_TYPE_P (rhs1_type
)
3806 || !VECTOR_FLOAT_TYPE_P (lhs_type
)))
3808 error ("invalid types in conversion to floating-point");
3809 debug_generic_expr (lhs_type
);
3810 debug_generic_expr (rhs1_type
);
3817 case FIX_TRUNC_EXPR
:
3819 if ((!INTEGRAL_TYPE_P (lhs_type
) || !SCALAR_FLOAT_TYPE_P (rhs1_type
))
3820 && (!VECTOR_INTEGER_TYPE_P (lhs_type
)
3821 || !VECTOR_FLOAT_TYPE_P (rhs1_type
)))
3823 error ("invalid types in conversion to integer");
3824 debug_generic_expr (lhs_type
);
3825 debug_generic_expr (rhs1_type
);
3832 case VEC_UNPACK_HI_EXPR
:
3833 case VEC_UNPACK_LO_EXPR
:
3834 case VEC_UNPACK_FLOAT_HI_EXPR
:
3835 case VEC_UNPACK_FLOAT_LO_EXPR
:
3836 case VEC_UNPACK_FIX_TRUNC_HI_EXPR
:
3837 case VEC_UNPACK_FIX_TRUNC_LO_EXPR
:
3838 if (TREE_CODE (rhs1_type
) != VECTOR_TYPE
3839 || TREE_CODE (lhs_type
) != VECTOR_TYPE
3840 || (!INTEGRAL_TYPE_P (TREE_TYPE (lhs_type
))
3841 && !SCALAR_FLOAT_TYPE_P (TREE_TYPE (lhs_type
)))
3842 || (!INTEGRAL_TYPE_P (TREE_TYPE (rhs1_type
))
3843 && !SCALAR_FLOAT_TYPE_P (TREE_TYPE (rhs1_type
)))
3844 || ((rhs_code
== VEC_UNPACK_HI_EXPR
3845 || rhs_code
== VEC_UNPACK_LO_EXPR
)
3846 && (INTEGRAL_TYPE_P (TREE_TYPE (lhs_type
))
3847 != INTEGRAL_TYPE_P (TREE_TYPE (rhs1_type
))))
3848 || ((rhs_code
== VEC_UNPACK_FLOAT_HI_EXPR
3849 || rhs_code
== VEC_UNPACK_FLOAT_LO_EXPR
)
3850 && (INTEGRAL_TYPE_P (TREE_TYPE (lhs_type
))
3851 || SCALAR_FLOAT_TYPE_P (TREE_TYPE (rhs1_type
))))
3852 || ((rhs_code
== VEC_UNPACK_FIX_TRUNC_HI_EXPR
3853 || rhs_code
== VEC_UNPACK_FIX_TRUNC_LO_EXPR
)
3854 && (INTEGRAL_TYPE_P (TREE_TYPE (rhs1_type
))
3855 || SCALAR_FLOAT_TYPE_P (TREE_TYPE (lhs_type
))))
3856 || (maybe_ne (GET_MODE_SIZE (element_mode (lhs_type
)),
3857 2 * GET_MODE_SIZE (element_mode (rhs1_type
)))
3858 && (!VECTOR_BOOLEAN_TYPE_P (lhs_type
)
3859 || !VECTOR_BOOLEAN_TYPE_P (rhs1_type
)))
3860 || maybe_ne (2 * TYPE_VECTOR_SUBPARTS (lhs_type
),
3861 TYPE_VECTOR_SUBPARTS (rhs1_type
)))
3863 error ("type mismatch in %qs expression", code_name
);
3864 debug_generic_expr (lhs_type
);
3865 debug_generic_expr (rhs1_type
);
3876 /* Disallow pointer and offset types for many of the unary gimple. */
3877 if (POINTER_TYPE_P (lhs_type
)
3878 || TREE_CODE (lhs_type
) == OFFSET_TYPE
)
3880 error ("invalid types for %qs", code_name
);
3881 debug_generic_expr (lhs_type
);
3882 debug_generic_expr (rhs1_type
);
3888 if (!ANY_INTEGRAL_TYPE_P (lhs_type
)
3889 || !TYPE_UNSIGNED (lhs_type
)
3890 || !ANY_INTEGRAL_TYPE_P (rhs1_type
)
3891 || TYPE_UNSIGNED (rhs1_type
)
3892 || element_precision (lhs_type
) != element_precision (rhs1_type
))
3894 error ("invalid types for %qs", code_name
);
3895 debug_generic_expr (lhs_type
);
3896 debug_generic_expr (rhs1_type
);
3901 case VEC_DUPLICATE_EXPR
:
3902 if (TREE_CODE (lhs_type
) != VECTOR_TYPE
3903 || !useless_type_conversion_p (TREE_TYPE (lhs_type
), rhs1_type
))
3905 error ("%qs should be from a scalar to a like vector", code_name
);
3906 debug_generic_expr (lhs_type
);
3907 debug_generic_expr (rhs1_type
);
3916 /* For the remaining codes assert there is no conversion involved. */
3917 if (!useless_type_conversion_p (lhs_type
, rhs1_type
))
3919 error ("non-trivial conversion in unary operation");
3920 debug_generic_expr (lhs_type
);
3921 debug_generic_expr (rhs1_type
);
3928 /* Verify a gimple assignment statement STMT with a binary rhs.
3929 Returns true if anything is wrong. */
3932 verify_gimple_assign_binary (gassign
*stmt
)
3934 enum tree_code rhs_code
= gimple_assign_rhs_code (stmt
);
3935 tree lhs
= gimple_assign_lhs (stmt
);
3936 tree lhs_type
= TREE_TYPE (lhs
);
3937 tree rhs1
= gimple_assign_rhs1 (stmt
);
3938 tree rhs1_type
= TREE_TYPE (rhs1
);
3939 tree rhs2
= gimple_assign_rhs2 (stmt
);
3940 tree rhs2_type
= TREE_TYPE (rhs2
);
3942 if (!is_gimple_reg (lhs
))
3944 error ("non-register as LHS of binary operation");
3948 if (!is_gimple_val (rhs1
)
3949 || !is_gimple_val (rhs2
))
3951 error ("invalid operands in binary operation");
3955 const char* const code_name
= get_tree_code_name (rhs_code
);
3957 /* First handle operations that involve different types. */
3962 if (TREE_CODE (lhs_type
) != COMPLEX_TYPE
3963 || !(INTEGRAL_TYPE_P (rhs1_type
)
3964 || SCALAR_FLOAT_TYPE_P (rhs1_type
))
3965 || !(INTEGRAL_TYPE_P (rhs2_type
)
3966 || SCALAR_FLOAT_TYPE_P (rhs2_type
)))
3968 error ("type mismatch in %qs", code_name
);
3969 debug_generic_expr (lhs_type
);
3970 debug_generic_expr (rhs1_type
);
3971 debug_generic_expr (rhs2_type
);
3983 /* Shifts and rotates are ok on integral types, fixed point
3984 types and integer vector types. */
3985 if ((!INTEGRAL_TYPE_P (rhs1_type
)
3986 && !FIXED_POINT_TYPE_P (rhs1_type
)
3987 && ! (VECTOR_TYPE_P (rhs1_type
)
3988 && INTEGRAL_TYPE_P (TREE_TYPE (rhs1_type
))))
3989 || (!INTEGRAL_TYPE_P (rhs2_type
)
3990 /* Vector shifts of vectors are also ok. */
3991 && ! (VECTOR_TYPE_P (rhs1_type
)
3992 && INTEGRAL_TYPE_P (TREE_TYPE (rhs1_type
))
3993 && VECTOR_TYPE_P (rhs2_type
)
3994 && INTEGRAL_TYPE_P (TREE_TYPE (rhs2_type
))))
3995 || !useless_type_conversion_p (lhs_type
, rhs1_type
))
3997 error ("type mismatch in %qs", code_name
);
3998 debug_generic_expr (lhs_type
);
3999 debug_generic_expr (rhs1_type
);
4000 debug_generic_expr (rhs2_type
);
4007 case WIDEN_LSHIFT_EXPR
:
4009 if (!INTEGRAL_TYPE_P (lhs_type
)
4010 || !INTEGRAL_TYPE_P (rhs1_type
)
4011 || TREE_CODE (rhs2
) != INTEGER_CST
4012 || (2 * TYPE_PRECISION (rhs1_type
) > TYPE_PRECISION (lhs_type
)))
4014 error ("type mismatch in %qs", code_name
);
4015 debug_generic_expr (lhs_type
);
4016 debug_generic_expr (rhs1_type
);
4017 debug_generic_expr (rhs2_type
);
4024 case VEC_WIDEN_LSHIFT_HI_EXPR
:
4025 case VEC_WIDEN_LSHIFT_LO_EXPR
:
4027 if (TREE_CODE (rhs1_type
) != VECTOR_TYPE
4028 || TREE_CODE (lhs_type
) != VECTOR_TYPE
4029 || !INTEGRAL_TYPE_P (TREE_TYPE (rhs1_type
))
4030 || !INTEGRAL_TYPE_P (TREE_TYPE (lhs_type
))
4031 || TREE_CODE (rhs2
) != INTEGER_CST
4032 || (2 * TYPE_PRECISION (TREE_TYPE (rhs1_type
))
4033 > TYPE_PRECISION (TREE_TYPE (lhs_type
))))
4035 error ("type mismatch in %qs", code_name
);
4036 debug_generic_expr (lhs_type
);
4037 debug_generic_expr (rhs1_type
);
4038 debug_generic_expr (rhs2_type
);
4048 tree lhs_etype
= lhs_type
;
4049 tree rhs1_etype
= rhs1_type
;
4050 tree rhs2_etype
= rhs2_type
;
4051 if (VECTOR_TYPE_P (lhs_type
))
4053 if (TREE_CODE (rhs1_type
) != VECTOR_TYPE
4054 || TREE_CODE (rhs2_type
) != VECTOR_TYPE
)
4056 error ("invalid non-vector operands to %qs", code_name
);
4059 lhs_etype
= TREE_TYPE (lhs_type
);
4060 rhs1_etype
= TREE_TYPE (rhs1_type
);
4061 rhs2_etype
= TREE_TYPE (rhs2_type
);
4063 if (POINTER_TYPE_P (lhs_etype
)
4064 || POINTER_TYPE_P (rhs1_etype
)
4065 || POINTER_TYPE_P (rhs2_etype
))
4067 error ("invalid (pointer) operands %qs", code_name
);
4071 /* Continue with generic binary expression handling. */
4075 case POINTER_PLUS_EXPR
:
4077 if (!POINTER_TYPE_P (rhs1_type
)
4078 || !useless_type_conversion_p (lhs_type
, rhs1_type
)
4079 || !ptrofftype_p (rhs2_type
))
4081 error ("type mismatch in %qs", code_name
);
4082 debug_generic_stmt (lhs_type
);
4083 debug_generic_stmt (rhs1_type
);
4084 debug_generic_stmt (rhs2_type
);
4091 case POINTER_DIFF_EXPR
:
4093 if (!POINTER_TYPE_P (rhs1_type
)
4094 || !POINTER_TYPE_P (rhs2_type
)
4095 /* Because we special-case pointers to void we allow difference
4096 of arbitrary pointers with the same mode. */
4097 || TYPE_MODE (rhs1_type
) != TYPE_MODE (rhs2_type
)
4098 || !INTEGRAL_TYPE_P (lhs_type
)
4099 || TYPE_UNSIGNED (lhs_type
)
4100 || TYPE_PRECISION (lhs_type
) != TYPE_PRECISION (rhs1_type
))
4102 error ("type mismatch in %qs", code_name
);
4103 debug_generic_stmt (lhs_type
);
4104 debug_generic_stmt (rhs1_type
);
4105 debug_generic_stmt (rhs2_type
);
4112 case TRUTH_ANDIF_EXPR
:
4113 case TRUTH_ORIF_EXPR
:
4114 case TRUTH_AND_EXPR
:
4116 case TRUTH_XOR_EXPR
:
4126 case UNORDERED_EXPR
:
4134 /* Comparisons are also binary, but the result type is not
4135 connected to the operand types. */
4136 return verify_gimple_comparison (lhs_type
, rhs1
, rhs2
, rhs_code
);
4138 case WIDEN_MULT_EXPR
:
4139 if (TREE_CODE (lhs_type
) != INTEGER_TYPE
)
4141 return ((2 * TYPE_PRECISION (rhs1_type
) > TYPE_PRECISION (lhs_type
))
4142 || (TYPE_PRECISION (rhs1_type
) != TYPE_PRECISION (rhs2_type
)));
4144 case WIDEN_SUM_EXPR
:
4146 if (((TREE_CODE (rhs1_type
) != VECTOR_TYPE
4147 || TREE_CODE (lhs_type
) != VECTOR_TYPE
)
4148 && ((!INTEGRAL_TYPE_P (rhs1_type
)
4149 && !SCALAR_FLOAT_TYPE_P (rhs1_type
))
4150 || (!INTEGRAL_TYPE_P (lhs_type
)
4151 && !SCALAR_FLOAT_TYPE_P (lhs_type
))))
4152 || !useless_type_conversion_p (lhs_type
, rhs2_type
)
4153 || maybe_lt (GET_MODE_SIZE (element_mode (rhs2_type
)),
4154 2 * GET_MODE_SIZE (element_mode (rhs1_type
))))
4156 error ("type mismatch in %qs", code_name
);
4157 debug_generic_expr (lhs_type
);
4158 debug_generic_expr (rhs1_type
);
4159 debug_generic_expr (rhs2_type
);
4165 case VEC_WIDEN_MULT_HI_EXPR
:
4166 case VEC_WIDEN_MULT_LO_EXPR
:
4167 case VEC_WIDEN_MULT_EVEN_EXPR
:
4168 case VEC_WIDEN_MULT_ODD_EXPR
:
4170 if (TREE_CODE (rhs1_type
) != VECTOR_TYPE
4171 || TREE_CODE (lhs_type
) != VECTOR_TYPE
4172 || !types_compatible_p (rhs1_type
, rhs2_type
)
4173 || maybe_ne (GET_MODE_SIZE (element_mode (lhs_type
)),
4174 2 * GET_MODE_SIZE (element_mode (rhs1_type
))))
4176 error ("type mismatch in %qs", code_name
);
4177 debug_generic_expr (lhs_type
);
4178 debug_generic_expr (rhs1_type
);
4179 debug_generic_expr (rhs2_type
);
4185 case VEC_PACK_TRUNC_EXPR
:
4186 /* ??? We currently use VEC_PACK_TRUNC_EXPR to simply concat
4187 vector boolean types. */
4188 if (VECTOR_BOOLEAN_TYPE_P (lhs_type
)
4189 && VECTOR_BOOLEAN_TYPE_P (rhs1_type
)
4190 && types_compatible_p (rhs1_type
, rhs2_type
)
4191 && known_eq (TYPE_VECTOR_SUBPARTS (lhs_type
),
4192 2 * TYPE_VECTOR_SUBPARTS (rhs1_type
)))
4196 case VEC_PACK_SAT_EXPR
:
4197 case VEC_PACK_FIX_TRUNC_EXPR
:
4199 if (TREE_CODE (rhs1_type
) != VECTOR_TYPE
4200 || TREE_CODE (lhs_type
) != VECTOR_TYPE
4201 || !((rhs_code
== VEC_PACK_FIX_TRUNC_EXPR
4202 && SCALAR_FLOAT_TYPE_P (TREE_TYPE (rhs1_type
))
4203 && INTEGRAL_TYPE_P (TREE_TYPE (lhs_type
)))
4204 || (INTEGRAL_TYPE_P (TREE_TYPE (rhs1_type
))
4205 == INTEGRAL_TYPE_P (TREE_TYPE (lhs_type
))))
4206 || !types_compatible_p (rhs1_type
, rhs2_type
)
4207 || maybe_ne (GET_MODE_SIZE (element_mode (rhs1_type
)),
4208 2 * GET_MODE_SIZE (element_mode (lhs_type
)))
4209 || maybe_ne (2 * TYPE_VECTOR_SUBPARTS (rhs1_type
),
4210 TYPE_VECTOR_SUBPARTS (lhs_type
)))
4212 error ("type mismatch in %qs", code_name
);
4213 debug_generic_expr (lhs_type
);
4214 debug_generic_expr (rhs1_type
);
4215 debug_generic_expr (rhs2_type
);
4222 case VEC_PACK_FLOAT_EXPR
:
4223 if (TREE_CODE (rhs1_type
) != VECTOR_TYPE
4224 || TREE_CODE (lhs_type
) != VECTOR_TYPE
4225 || !INTEGRAL_TYPE_P (TREE_TYPE (rhs1_type
))
4226 || !SCALAR_FLOAT_TYPE_P (TREE_TYPE (lhs_type
))
4227 || !types_compatible_p (rhs1_type
, rhs2_type
)
4228 || maybe_ne (GET_MODE_SIZE (element_mode (rhs1_type
)),
4229 2 * GET_MODE_SIZE (element_mode (lhs_type
)))
4230 || maybe_ne (2 * TYPE_VECTOR_SUBPARTS (rhs1_type
),
4231 TYPE_VECTOR_SUBPARTS (lhs_type
)))
4233 error ("type mismatch in %qs", code_name
);
4234 debug_generic_expr (lhs_type
);
4235 debug_generic_expr (rhs1_type
);
4236 debug_generic_expr (rhs2_type
);
4243 case MULT_HIGHPART_EXPR
:
4244 case TRUNC_DIV_EXPR
:
4246 case FLOOR_DIV_EXPR
:
4247 case ROUND_DIV_EXPR
:
4248 case TRUNC_MOD_EXPR
:
4250 case FLOOR_MOD_EXPR
:
4251 case ROUND_MOD_EXPR
:
4253 case EXACT_DIV_EXPR
:
4256 /* Disallow pointer and offset types for many of the binary gimple. */
4257 if (POINTER_TYPE_P (lhs_type
)
4258 || TREE_CODE (lhs_type
) == OFFSET_TYPE
)
4260 error ("invalid types for %qs", code_name
);
4261 debug_generic_expr (lhs_type
);
4262 debug_generic_expr (rhs1_type
);
4263 debug_generic_expr (rhs2_type
);
4266 /* Continue with generic binary expression handling. */
4271 /* Continue with generic binary expression handling. */
4275 if (POINTER_TYPE_P (lhs_type
)
4276 && TREE_CODE (rhs2
) == INTEGER_CST
)
4278 /* Disallow pointer and offset types for many of the binary gimple. */
4279 if (POINTER_TYPE_P (lhs_type
)
4280 || TREE_CODE (lhs_type
) == OFFSET_TYPE
)
4282 error ("invalid types for %qs", code_name
);
4283 debug_generic_expr (lhs_type
);
4284 debug_generic_expr (rhs1_type
);
4285 debug_generic_expr (rhs2_type
);
4288 /* Continue with generic binary expression handling. */
4291 case VEC_SERIES_EXPR
:
4292 if (!useless_type_conversion_p (rhs1_type
, rhs2_type
))
4294 error ("type mismatch in %qs", code_name
);
4295 debug_generic_expr (rhs1_type
);
4296 debug_generic_expr (rhs2_type
);
4299 if (TREE_CODE (lhs_type
) != VECTOR_TYPE
4300 || !useless_type_conversion_p (TREE_TYPE (lhs_type
), rhs1_type
))
4302 error ("vector type expected in %qs", code_name
);
4303 debug_generic_expr (lhs_type
);
4312 if (!useless_type_conversion_p (lhs_type
, rhs1_type
)
4313 || !useless_type_conversion_p (lhs_type
, rhs2_type
))
4315 error ("type mismatch in binary expression");
4316 debug_generic_stmt (lhs_type
);
4317 debug_generic_stmt (rhs1_type
);
4318 debug_generic_stmt (rhs2_type
);
4325 /* Verify a gimple assignment statement STMT with a ternary rhs.
4326 Returns true if anything is wrong. */
4329 verify_gimple_assign_ternary (gassign
*stmt
)
4331 enum tree_code rhs_code
= gimple_assign_rhs_code (stmt
);
4332 tree lhs
= gimple_assign_lhs (stmt
);
4333 tree lhs_type
= TREE_TYPE (lhs
);
4334 tree rhs1
= gimple_assign_rhs1 (stmt
);
4335 tree rhs1_type
= TREE_TYPE (rhs1
);
4336 tree rhs2
= gimple_assign_rhs2 (stmt
);
4337 tree rhs2_type
= TREE_TYPE (rhs2
);
4338 tree rhs3
= gimple_assign_rhs3 (stmt
);
4339 tree rhs3_type
= TREE_TYPE (rhs3
);
4341 if (!is_gimple_reg (lhs
))
4343 error ("non-register as LHS of ternary operation");
4347 if (!is_gimple_val (rhs1
)
4348 || !is_gimple_val (rhs2
)
4349 || !is_gimple_val (rhs3
))
4351 error ("invalid operands in ternary operation");
4355 const char* const code_name
= get_tree_code_name (rhs_code
);
4357 /* First handle operations that involve different types. */
4360 case WIDEN_MULT_PLUS_EXPR
:
4361 case WIDEN_MULT_MINUS_EXPR
:
4362 if ((!INTEGRAL_TYPE_P (rhs1_type
)
4363 && !FIXED_POINT_TYPE_P (rhs1_type
))
4364 || !useless_type_conversion_p (rhs1_type
, rhs2_type
)
4365 || !useless_type_conversion_p (lhs_type
, rhs3_type
)
4366 || 2 * TYPE_PRECISION (rhs1_type
) > TYPE_PRECISION (lhs_type
)
4367 || TYPE_PRECISION (rhs1_type
) != TYPE_PRECISION (rhs2_type
))
4369 error ("type mismatch in %qs", code_name
);
4370 debug_generic_expr (lhs_type
);
4371 debug_generic_expr (rhs1_type
);
4372 debug_generic_expr (rhs2_type
);
4373 debug_generic_expr (rhs3_type
);
4379 if (!VECTOR_BOOLEAN_TYPE_P (rhs1_type
)
4380 || maybe_ne (TYPE_VECTOR_SUBPARTS (rhs1_type
),
4381 TYPE_VECTOR_SUBPARTS (lhs_type
)))
4383 error ("the first argument of a %qs must be of a "
4384 "boolean vector type of the same number of elements "
4385 "as the result", code_name
);
4386 debug_generic_expr (lhs_type
);
4387 debug_generic_expr (rhs1_type
);
4392 if (!useless_type_conversion_p (lhs_type
, rhs2_type
)
4393 || !useless_type_conversion_p (lhs_type
, rhs3_type
))
4395 error ("type mismatch in %qs", code_name
);
4396 debug_generic_expr (lhs_type
);
4397 debug_generic_expr (rhs2_type
);
4398 debug_generic_expr (rhs3_type
);
4404 /* If permute is constant, then we allow for lhs and rhs
4405 to have different vector types, provided:
4406 (1) lhs, rhs1, rhs2 have same element type.
4407 (2) rhs3 vector is constant and has integer element type.
4408 (3) len(lhs) == len(rhs3) && len(rhs1) == len(rhs2). */
4410 if (TREE_CODE (lhs_type
) != VECTOR_TYPE
4411 || TREE_CODE (rhs1_type
) != VECTOR_TYPE
4412 || TREE_CODE (rhs2_type
) != VECTOR_TYPE
4413 || TREE_CODE (rhs3_type
) != VECTOR_TYPE
)
4415 error ("vector types expected in %qs", code_name
);
4416 debug_generic_expr (lhs_type
);
4417 debug_generic_expr (rhs1_type
);
4418 debug_generic_expr (rhs2_type
);
4419 debug_generic_expr (rhs3_type
);
4423 /* If rhs3 is constant, we allow lhs, rhs1 and rhs2 to be different vector types,
4424 as long as lhs, rhs1 and rhs2 have same element type. */
4425 if (TREE_CONSTANT (rhs3
)
4426 ? (!useless_type_conversion_p (TREE_TYPE (lhs_type
), TREE_TYPE (rhs1_type
))
4427 || !useless_type_conversion_p (TREE_TYPE (lhs_type
), TREE_TYPE (rhs2_type
)))
4428 : (!useless_type_conversion_p (lhs_type
, rhs1_type
)
4429 || !useless_type_conversion_p (lhs_type
, rhs2_type
)))
4431 error ("type mismatch in %qs", code_name
);
4432 debug_generic_expr (lhs_type
);
4433 debug_generic_expr (rhs1_type
);
4434 debug_generic_expr (rhs2_type
);
4435 debug_generic_expr (rhs3_type
);
4439 /* If rhs3 is constant, relax the check len(rhs2) == len(rhs3). */
4440 if (maybe_ne (TYPE_VECTOR_SUBPARTS (rhs1_type
),
4441 TYPE_VECTOR_SUBPARTS (rhs2_type
))
4442 || (!TREE_CONSTANT(rhs3
)
4443 && maybe_ne (TYPE_VECTOR_SUBPARTS (rhs2_type
),
4444 TYPE_VECTOR_SUBPARTS (rhs3_type
)))
4445 || maybe_ne (TYPE_VECTOR_SUBPARTS (rhs3_type
),
4446 TYPE_VECTOR_SUBPARTS (lhs_type
)))
4448 error ("vectors with different element number found in %qs",
4450 debug_generic_expr (lhs_type
);
4451 debug_generic_expr (rhs1_type
);
4452 debug_generic_expr (rhs2_type
);
4453 debug_generic_expr (rhs3_type
);
4457 if (TREE_CODE (TREE_TYPE (rhs3_type
)) != INTEGER_TYPE
4458 || (TREE_CODE (rhs3
) != VECTOR_CST
4459 && (GET_MODE_BITSIZE (SCALAR_INT_TYPE_MODE
4460 (TREE_TYPE (rhs3_type
)))
4461 != GET_MODE_BITSIZE (SCALAR_TYPE_MODE
4462 (TREE_TYPE (rhs1_type
))))))
4464 error ("invalid mask type in %qs", code_name
);
4465 debug_generic_expr (lhs_type
);
4466 debug_generic_expr (rhs1_type
);
4467 debug_generic_expr (rhs2_type
);
4468 debug_generic_expr (rhs3_type
);
4475 if (!useless_type_conversion_p (rhs1_type
, rhs2_type
)
4476 || !useless_type_conversion_p (lhs_type
, rhs3_type
)
4477 || 2 * GET_MODE_UNIT_BITSIZE (TYPE_MODE (TREE_TYPE (rhs1_type
)))
4478 > GET_MODE_UNIT_BITSIZE (TYPE_MODE (TREE_TYPE (lhs_type
))))
4480 error ("type mismatch in %qs", code_name
);
4481 debug_generic_expr (lhs_type
);
4482 debug_generic_expr (rhs1_type
);
4483 debug_generic_expr (rhs2_type
);
4484 debug_generic_expr (rhs3_type
);
4488 if (TREE_CODE (rhs1_type
) != VECTOR_TYPE
4489 || TREE_CODE (rhs2_type
) != VECTOR_TYPE
4490 || TREE_CODE (rhs3_type
) != VECTOR_TYPE
)
4492 error ("vector types expected in %qs", code_name
);
4493 debug_generic_expr (lhs_type
);
4494 debug_generic_expr (rhs1_type
);
4495 debug_generic_expr (rhs2_type
);
4496 debug_generic_expr (rhs3_type
);
4502 case BIT_INSERT_EXPR
:
4503 if (! useless_type_conversion_p (lhs_type
, rhs1_type
))
4505 error ("type mismatch in %qs", code_name
);
4506 debug_generic_expr (lhs_type
);
4507 debug_generic_expr (rhs1_type
);
4510 if (! ((INTEGRAL_TYPE_P (rhs1_type
)
4511 && INTEGRAL_TYPE_P (rhs2_type
))
4512 /* Vector element insert. */
4513 || (VECTOR_TYPE_P (rhs1_type
)
4514 && types_compatible_p (TREE_TYPE (rhs1_type
), rhs2_type
))
4515 /* Aligned sub-vector insert. */
4516 || (VECTOR_TYPE_P (rhs1_type
)
4517 && VECTOR_TYPE_P (rhs2_type
)
4518 && types_compatible_p (TREE_TYPE (rhs1_type
),
4519 TREE_TYPE (rhs2_type
))
4520 && multiple_p (TYPE_VECTOR_SUBPARTS (rhs1_type
),
4521 TYPE_VECTOR_SUBPARTS (rhs2_type
))
4522 && multiple_p (wi::to_poly_offset (rhs3
),
4523 wi::to_poly_offset (TYPE_SIZE (rhs2_type
))))))
4525 error ("not allowed type combination in %qs", code_name
);
4526 debug_generic_expr (rhs1_type
);
4527 debug_generic_expr (rhs2_type
);
4530 if (! tree_fits_uhwi_p (rhs3
)
4531 || ! types_compatible_p (bitsizetype
, TREE_TYPE (rhs3
))
4532 || ! tree_fits_uhwi_p (TYPE_SIZE (rhs2_type
)))
4534 error ("invalid position or size in %qs", code_name
);
4537 if (INTEGRAL_TYPE_P (rhs1_type
)
4538 && !type_has_mode_precision_p (rhs1_type
))
4540 error ("%qs into non-mode-precision operand", code_name
);
4543 if (INTEGRAL_TYPE_P (rhs1_type
))
4545 unsigned HOST_WIDE_INT bitpos
= tree_to_uhwi (rhs3
);
4546 if (bitpos
>= TYPE_PRECISION (rhs1_type
)
4547 || (bitpos
+ TYPE_PRECISION (rhs2_type
)
4548 > TYPE_PRECISION (rhs1_type
)))
4550 error ("insertion out of range in %qs", code_name
);
4554 else if (VECTOR_TYPE_P (rhs1_type
))
4556 unsigned HOST_WIDE_INT bitpos
= tree_to_uhwi (rhs3
);
4557 unsigned HOST_WIDE_INT bitsize
= tree_to_uhwi (TYPE_SIZE (rhs2_type
));
4558 if (bitpos
% bitsize
!= 0)
4560 error ("%qs not at element boundary", code_name
);
4568 if (((TREE_CODE (rhs1_type
) != VECTOR_TYPE
4569 || TREE_CODE (lhs_type
) != VECTOR_TYPE
)
4570 && ((!INTEGRAL_TYPE_P (rhs1_type
)
4571 && !SCALAR_FLOAT_TYPE_P (rhs1_type
))
4572 || (!INTEGRAL_TYPE_P (lhs_type
)
4573 && !SCALAR_FLOAT_TYPE_P (lhs_type
))))
4574 /* rhs1_type and rhs2_type may differ in sign. */
4575 || !tree_nop_conversion_p (rhs1_type
, rhs2_type
)
4576 || !useless_type_conversion_p (lhs_type
, rhs3_type
)
4577 || maybe_lt (GET_MODE_SIZE (element_mode (rhs3_type
)),
4578 2 * GET_MODE_SIZE (element_mode (rhs1_type
))))
4580 error ("type mismatch in %qs", code_name
);
4581 debug_generic_expr (lhs_type
);
4582 debug_generic_expr (rhs1_type
);
4583 debug_generic_expr (rhs2_type
);
4589 case REALIGN_LOAD_EXPR
:
4599 /* Verify a gimple assignment statement STMT with a single rhs.
4600 Returns true if anything is wrong. */
4603 verify_gimple_assign_single (gassign
*stmt
)
4605 enum tree_code rhs_code
= gimple_assign_rhs_code (stmt
);
4606 tree lhs
= gimple_assign_lhs (stmt
);
4607 tree lhs_type
= TREE_TYPE (lhs
);
4608 tree rhs1
= gimple_assign_rhs1 (stmt
);
4609 tree rhs1_type
= TREE_TYPE (rhs1
);
4612 const char* const code_name
= get_tree_code_name (rhs_code
);
4614 if (!useless_type_conversion_p (lhs_type
, rhs1_type
))
4616 error ("non-trivial conversion in %qs", code_name
);
4617 debug_generic_expr (lhs_type
);
4618 debug_generic_expr (rhs1_type
);
4622 if (gimple_clobber_p (stmt
)
4623 && !(DECL_P (lhs
) || TREE_CODE (lhs
) == MEM_REF
))
4625 error ("%qs LHS in clobber statement",
4626 get_tree_code_name (TREE_CODE (lhs
)));
4627 debug_generic_expr (lhs
);
4631 if (TREE_CODE (lhs
) == WITH_SIZE_EXPR
)
4633 error ("%qs LHS in assignment statement",
4634 get_tree_code_name (TREE_CODE (lhs
)));
4635 debug_generic_expr (lhs
);
4639 if (handled_component_p (lhs
)
4640 || TREE_CODE (lhs
) == MEM_REF
4641 || TREE_CODE (lhs
) == TARGET_MEM_REF
)
4642 res
|= verify_types_in_gimple_reference (lhs
, true);
4644 /* Special codes we cannot handle via their class. */
4649 tree op
= TREE_OPERAND (rhs1
, 0);
4650 if (!is_gimple_addressable (op
))
4652 error ("invalid operand in %qs", code_name
);
4656 /* Technically there is no longer a need for matching types, but
4657 gimple hygiene asks for this check. In LTO we can end up
4658 combining incompatible units and thus end up with addresses
4659 of globals that change their type to a common one. */
4661 && !types_compatible_p (TREE_TYPE (op
),
4662 TREE_TYPE (TREE_TYPE (rhs1
)))
4663 && !one_pointer_to_useless_type_conversion_p (TREE_TYPE (rhs1
),
4666 error ("type mismatch in %qs", code_name
);
4667 debug_generic_stmt (TREE_TYPE (rhs1
));
4668 debug_generic_stmt (TREE_TYPE (op
));
4672 return (verify_address (rhs1
, true)
4673 || verify_types_in_gimple_reference (op
, true));
4678 error ("%qs in gimple IL", code_name
);
4681 case WITH_SIZE_EXPR
:
4682 if (!is_gimple_val (TREE_OPERAND (rhs1
, 1)))
4684 error ("invalid %qs size argument in load", code_name
);
4685 debug_generic_stmt (lhs
);
4686 debug_generic_stmt (rhs1
);
4689 rhs1
= TREE_OPERAND (rhs1
, 0);
4694 case ARRAY_RANGE_REF
:
4695 case VIEW_CONVERT_EXPR
:
4698 case TARGET_MEM_REF
:
4700 if (!is_gimple_reg (lhs
)
4701 && is_gimple_reg_type (TREE_TYPE (lhs
)))
4703 error ("invalid RHS for gimple memory store: %qs", code_name
);
4704 debug_generic_stmt (lhs
);
4705 debug_generic_stmt (rhs1
);
4708 return res
|| verify_types_in_gimple_reference (rhs1
, false);
4720 /* tcc_declaration */
4725 if (!is_gimple_reg (lhs
)
4726 && !is_gimple_reg (rhs1
)
4727 && is_gimple_reg_type (TREE_TYPE (lhs
)))
4729 error ("invalid RHS for gimple memory store: %qs", code_name
);
4730 debug_generic_stmt (lhs
);
4731 debug_generic_stmt (rhs1
);
4737 if (VECTOR_TYPE_P (rhs1_type
))
4740 tree elt_i
, elt_v
, elt_t
= NULL_TREE
;
4742 if (CONSTRUCTOR_NELTS (rhs1
) == 0)
4744 /* For vector CONSTRUCTORs we require that either it is empty
4745 CONSTRUCTOR, or it is a CONSTRUCTOR of smaller vector elements
4746 (then the element count must be correct to cover the whole
4747 outer vector and index must be NULL on all elements, or it is
4748 a CONSTRUCTOR of scalar elements, where we as an exception allow
4749 smaller number of elements (assuming zero filling) and
4750 consecutive indexes as compared to NULL indexes (such
4751 CONSTRUCTORs can appear in the IL from FEs). */
4752 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (rhs1
), i
, elt_i
, elt_v
)
4754 if (elt_t
== NULL_TREE
)
4756 elt_t
= TREE_TYPE (elt_v
);
4757 if (VECTOR_TYPE_P (elt_t
))
4759 tree elt_t
= TREE_TYPE (elt_v
);
4760 if (!useless_type_conversion_p (TREE_TYPE (rhs1_type
),
4763 error ("incorrect type of vector %qs elements",
4765 debug_generic_stmt (rhs1
);
4768 else if (maybe_ne (CONSTRUCTOR_NELTS (rhs1
)
4769 * TYPE_VECTOR_SUBPARTS (elt_t
),
4770 TYPE_VECTOR_SUBPARTS (rhs1_type
)))
4772 error ("incorrect number of vector %qs elements",
4774 debug_generic_stmt (rhs1
);
4778 else if (!useless_type_conversion_p (TREE_TYPE (rhs1_type
),
4781 error ("incorrect type of vector %qs elements",
4783 debug_generic_stmt (rhs1
);
4786 else if (maybe_gt (CONSTRUCTOR_NELTS (rhs1
),
4787 TYPE_VECTOR_SUBPARTS (rhs1_type
)))
4789 error ("incorrect number of vector %qs elements",
4791 debug_generic_stmt (rhs1
);
4795 else if (!useless_type_conversion_p (elt_t
, TREE_TYPE (elt_v
)))
4797 error ("incorrect type of vector CONSTRUCTOR elements");
4798 debug_generic_stmt (rhs1
);
4801 if (elt_i
!= NULL_TREE
4802 && (VECTOR_TYPE_P (elt_t
)
4803 || TREE_CODE (elt_i
) != INTEGER_CST
4804 || compare_tree_int (elt_i
, i
) != 0))
4806 error ("vector %qs with non-NULL element index",
4808 debug_generic_stmt (rhs1
);
4811 if (!is_gimple_val (elt_v
))
4813 error ("vector %qs element is not a GIMPLE value",
4815 debug_generic_stmt (rhs1
);
4820 else if (CONSTRUCTOR_NELTS (rhs1
) != 0)
4822 error ("non-vector %qs with elements", code_name
);
4823 debug_generic_stmt (rhs1
);
4838 /* Verify the contents of a GIMPLE_ASSIGN STMT. Returns true when there
4839 is a problem, otherwise false. */
4842 verify_gimple_assign (gassign
*stmt
)
4844 if (gimple_assign_nontemporal_move_p (stmt
))
4846 tree lhs
= gimple_assign_lhs (stmt
);
4847 if (is_gimple_reg (lhs
))
4849 error ("nontemporal store lhs cannot be a gimple register");
4850 debug_generic_stmt (lhs
);
4855 switch (gimple_assign_rhs_class (stmt
))
4857 case GIMPLE_SINGLE_RHS
:
4858 return verify_gimple_assign_single (stmt
);
4860 case GIMPLE_UNARY_RHS
:
4861 return verify_gimple_assign_unary (stmt
);
4863 case GIMPLE_BINARY_RHS
:
4864 return verify_gimple_assign_binary (stmt
);
4866 case GIMPLE_TERNARY_RHS
:
4867 return verify_gimple_assign_ternary (stmt
);
4874 /* Verify the contents of a GIMPLE_RETURN STMT. Returns true when there
4875 is a problem, otherwise false. */
4878 verify_gimple_return (greturn
*stmt
)
4880 tree op
= gimple_return_retval (stmt
);
4881 tree restype
= TREE_TYPE (TREE_TYPE (cfun
->decl
));
4883 /* We cannot test for present return values as we do not fix up missing
4884 return values from the original source. */
4888 if (!is_gimple_val (op
)
4889 && TREE_CODE (op
) != RESULT_DECL
)
4891 error ("invalid operand in return statement");
4892 debug_generic_stmt (op
);
4896 if ((TREE_CODE (op
) == RESULT_DECL
4897 && DECL_BY_REFERENCE (op
))
4898 || (TREE_CODE (op
) == SSA_NAME
4899 && SSA_NAME_VAR (op
)
4900 && TREE_CODE (SSA_NAME_VAR (op
)) == RESULT_DECL
4901 && DECL_BY_REFERENCE (SSA_NAME_VAR (op
))))
4902 op
= TREE_TYPE (op
);
4904 if (!useless_type_conversion_p (restype
, TREE_TYPE (op
)))
4906 error ("invalid conversion in return statement");
4907 debug_generic_stmt (restype
);
4908 debug_generic_stmt (TREE_TYPE (op
));
4916 /* Verify the contents of a GIMPLE_GOTO STMT. Returns true when there
4917 is a problem, otherwise false. */
4920 verify_gimple_goto (ggoto
*stmt
)
4922 tree dest
= gimple_goto_dest (stmt
);
4924 /* ??? We have two canonical forms of direct goto destinations, a
4925 bare LABEL_DECL and an ADDR_EXPR of a LABEL_DECL. */
4926 if (TREE_CODE (dest
) != LABEL_DECL
4927 && (!is_gimple_val (dest
)
4928 || !POINTER_TYPE_P (TREE_TYPE (dest
))))
4930 error ("goto destination is neither a label nor a pointer");
4937 /* Verify the contents of a GIMPLE_SWITCH STMT. Returns true when there
4938 is a problem, otherwise false. */
4941 verify_gimple_switch (gswitch
*stmt
)
4944 tree elt
, prev_upper_bound
= NULL_TREE
;
4945 tree index_type
, elt_type
= NULL_TREE
;
4947 if (!is_gimple_val (gimple_switch_index (stmt
)))
4949 error ("invalid operand to switch statement");
4950 debug_generic_stmt (gimple_switch_index (stmt
));
4954 index_type
= TREE_TYPE (gimple_switch_index (stmt
));
4955 if (! INTEGRAL_TYPE_P (index_type
))
4957 error ("non-integral type switch statement");
4958 debug_generic_expr (index_type
);
4962 elt
= gimple_switch_label (stmt
, 0);
4963 if (CASE_LOW (elt
) != NULL_TREE
4964 || CASE_HIGH (elt
) != NULL_TREE
4965 || CASE_CHAIN (elt
) != NULL_TREE
)
4967 error ("invalid default case label in switch statement");
4968 debug_generic_expr (elt
);
4972 n
= gimple_switch_num_labels (stmt
);
4973 for (i
= 1; i
< n
; i
++)
4975 elt
= gimple_switch_label (stmt
, i
);
4977 if (CASE_CHAIN (elt
))
4979 error ("invalid %<CASE_CHAIN%>");
4980 debug_generic_expr (elt
);
4983 if (! CASE_LOW (elt
))
4985 error ("invalid case label in switch statement");
4986 debug_generic_expr (elt
);
4990 && ! tree_int_cst_lt (CASE_LOW (elt
), CASE_HIGH (elt
)))
4992 error ("invalid case range in switch statement");
4993 debug_generic_expr (elt
);
4999 elt_type
= TREE_TYPE (CASE_LOW (elt
));
5000 if (TYPE_PRECISION (index_type
) < TYPE_PRECISION (elt_type
))
5002 error ("type precision mismatch in switch statement");
5006 if (TREE_TYPE (CASE_LOW (elt
)) != elt_type
5007 || (CASE_HIGH (elt
) && TREE_TYPE (CASE_HIGH (elt
)) != elt_type
))
5009 error ("type mismatch for case label in switch statement");
5010 debug_generic_expr (elt
);
5014 if (prev_upper_bound
)
5016 if (! tree_int_cst_lt (prev_upper_bound
, CASE_LOW (elt
)))
5018 error ("case labels not sorted in switch statement");
5023 prev_upper_bound
= CASE_HIGH (elt
);
5024 if (! prev_upper_bound
)
5025 prev_upper_bound
= CASE_LOW (elt
);
5031 /* Verify a gimple debug statement STMT.
5032 Returns true if anything is wrong. */
5035 verify_gimple_debug (gimple
*stmt ATTRIBUTE_UNUSED
)
5037 /* There isn't much that could be wrong in a gimple debug stmt. A
5038 gimple debug bind stmt, for example, maps a tree, that's usually
5039 a VAR_DECL or a PARM_DECL, but that could also be some scalarized
5040 component or member of an aggregate type, to another tree, that
5041 can be an arbitrary expression. These stmts expand into debug
5042 insns, and are converted to debug notes by var-tracking.cc. */
5046 /* Verify a gimple label statement STMT.
5047 Returns true if anything is wrong. */
5050 verify_gimple_label (glabel
*stmt
)
5052 tree decl
= gimple_label_label (stmt
);
5056 if (TREE_CODE (decl
) != LABEL_DECL
)
5058 if (!DECL_NONLOCAL (decl
) && !FORCED_LABEL (decl
)
5059 && DECL_CONTEXT (decl
) != current_function_decl
)
5061 error ("label context is not the current function declaration");
5065 uid
= LABEL_DECL_UID (decl
);
5068 || (*label_to_block_map_for_fn (cfun
))[uid
] != gimple_bb (stmt
)))
5070 error ("incorrect entry in %<label_to_block_map%>");
5074 uid
= EH_LANDING_PAD_NR (decl
);
5077 eh_landing_pad lp
= get_eh_landing_pad_from_number (uid
);
5078 if (decl
!= lp
->post_landing_pad
)
5080 error ("incorrect setting of landing pad number");
5088 /* Verify a gimple cond statement STMT.
5089 Returns true if anything is wrong. */
5092 verify_gimple_cond (gcond
*stmt
)
5094 if (TREE_CODE_CLASS (gimple_cond_code (stmt
)) != tcc_comparison
)
5096 error ("invalid comparison code in gimple cond");
5099 if (!(!gimple_cond_true_label (stmt
)
5100 || TREE_CODE (gimple_cond_true_label (stmt
)) == LABEL_DECL
)
5101 || !(!gimple_cond_false_label (stmt
)
5102 || TREE_CODE (gimple_cond_false_label (stmt
)) == LABEL_DECL
))
5104 error ("invalid labels in gimple cond");
5108 return verify_gimple_comparison (boolean_type_node
,
5109 gimple_cond_lhs (stmt
),
5110 gimple_cond_rhs (stmt
),
5111 gimple_cond_code (stmt
));
5114 /* Verify the GIMPLE statement STMT. Returns true if there is an
5115 error, otherwise false. */
5118 verify_gimple_stmt (gimple
*stmt
)
5120 switch (gimple_code (stmt
))
5123 return verify_gimple_assign (as_a
<gassign
*> (stmt
));
5126 return verify_gimple_label (as_a
<glabel
*> (stmt
));
5129 return verify_gimple_call (as_a
<gcall
*> (stmt
));
5132 return verify_gimple_cond (as_a
<gcond
*> (stmt
));
5135 return verify_gimple_goto (as_a
<ggoto
*> (stmt
));
5138 return verify_gimple_switch (as_a
<gswitch
*> (stmt
));
5141 return verify_gimple_return (as_a
<greturn
*> (stmt
));
5146 case GIMPLE_TRANSACTION
:
5147 return verify_gimple_transaction (as_a
<gtransaction
*> (stmt
));
5149 /* Tuples that do not have tree operands. */
5151 case GIMPLE_PREDICT
:
5153 case GIMPLE_EH_DISPATCH
:
5154 case GIMPLE_EH_MUST_NOT_THROW
:
5158 /* OpenMP directives are validated by the FE and never operated
5159 on by the optimizers. Furthermore, GIMPLE_OMP_FOR may contain
5160 non-gimple expressions when the main index variable has had
5161 its address taken. This does not affect the loop itself
5162 because the header of an GIMPLE_OMP_FOR is merely used to determine
5163 how to setup the parallel iteration. */
5170 return verify_gimple_debug (stmt
);
5177 /* Verify the contents of a GIMPLE_PHI. Returns true if there is a problem,
5178 and false otherwise. */
5181 verify_gimple_phi (gphi
*phi
)
5185 tree phi_result
= gimple_phi_result (phi
);
5190 error ("invalid %<PHI%> result");
5194 virtual_p
= virtual_operand_p (phi_result
);
5195 if (TREE_CODE (phi_result
) != SSA_NAME
5197 && SSA_NAME_VAR (phi_result
) != gimple_vop (cfun
)))
5199 error ("invalid %<PHI%> result");
5203 for (i
= 0; i
< gimple_phi_num_args (phi
); i
++)
5205 tree t
= gimple_phi_arg_def (phi
, i
);
5209 error ("missing %<PHI%> def");
5213 /* Addressable variables do have SSA_NAMEs but they
5214 are not considered gimple values. */
5215 else if ((TREE_CODE (t
) == SSA_NAME
5216 && virtual_p
!= virtual_operand_p (t
))
5218 && (TREE_CODE (t
) != SSA_NAME
5219 || SSA_NAME_VAR (t
) != gimple_vop (cfun
)))
5221 && !is_gimple_val (t
)))
5223 error ("invalid %<PHI%> argument");
5224 debug_generic_expr (t
);
5227 #ifdef ENABLE_TYPES_CHECKING
5228 if (!useless_type_conversion_p (TREE_TYPE (phi_result
), TREE_TYPE (t
)))
5230 error ("incompatible types in %<PHI%> argument %u", i
);
5231 debug_generic_stmt (TREE_TYPE (phi_result
));
5232 debug_generic_stmt (TREE_TYPE (t
));
5241 /* Verify the GIMPLE statements inside the sequence STMTS. */
5244 verify_gimple_in_seq_2 (gimple_seq stmts
)
5246 gimple_stmt_iterator ittr
;
5249 for (ittr
= gsi_start (stmts
); !gsi_end_p (ittr
); gsi_next (&ittr
))
5251 gimple
*stmt
= gsi_stmt (ittr
);
5253 switch (gimple_code (stmt
))
5256 err
|= verify_gimple_in_seq_2 (
5257 gimple_bind_body (as_a
<gbind
*> (stmt
)));
5261 err
|= verify_gimple_in_seq_2 (gimple_try_eval (stmt
));
5262 err
|= verify_gimple_in_seq_2 (gimple_try_cleanup (stmt
));
5265 case GIMPLE_EH_FILTER
:
5266 err
|= verify_gimple_in_seq_2 (gimple_eh_filter_failure (stmt
));
5269 case GIMPLE_EH_ELSE
:
5271 geh_else
*eh_else
= as_a
<geh_else
*> (stmt
);
5272 err
|= verify_gimple_in_seq_2 (gimple_eh_else_n_body (eh_else
));
5273 err
|= verify_gimple_in_seq_2 (gimple_eh_else_e_body (eh_else
));
5278 err
|= verify_gimple_in_seq_2 (gimple_catch_handler (
5279 as_a
<gcatch
*> (stmt
)));
5283 err
|= verify_gimple_in_seq_2 (gimple_assume_body (stmt
));
5286 case GIMPLE_TRANSACTION
:
5287 err
|= verify_gimple_transaction (as_a
<gtransaction
*> (stmt
));
5292 bool err2
= verify_gimple_stmt (stmt
);
5294 debug_gimple_stmt (stmt
);
5303 /* Verify the contents of a GIMPLE_TRANSACTION. Returns true if there
5304 is a problem, otherwise false. */
5307 verify_gimple_transaction (gtransaction
*stmt
)
5311 lab
= gimple_transaction_label_norm (stmt
);
5312 if (lab
!= NULL
&& TREE_CODE (lab
) != LABEL_DECL
)
5314 lab
= gimple_transaction_label_uninst (stmt
);
5315 if (lab
!= NULL
&& TREE_CODE (lab
) != LABEL_DECL
)
5317 lab
= gimple_transaction_label_over (stmt
);
5318 if (lab
!= NULL
&& TREE_CODE (lab
) != LABEL_DECL
)
5321 return verify_gimple_in_seq_2 (gimple_transaction_body (stmt
));
5325 /* Verify the GIMPLE statements inside the statement list STMTS. */
5328 verify_gimple_in_seq (gimple_seq stmts
, bool ice
)
5330 timevar_push (TV_TREE_STMT_VERIFY
);
5331 bool res
= verify_gimple_in_seq_2 (stmts
);
5333 internal_error ("%<verify_gimple%> failed");
5334 timevar_pop (TV_TREE_STMT_VERIFY
);
5338 /* Return true when the T can be shared. */
5341 tree_node_can_be_shared (tree t
)
5343 if (IS_TYPE_OR_DECL_P (t
)
5344 || TREE_CODE (t
) == SSA_NAME
5345 || TREE_CODE (t
) == IDENTIFIER_NODE
5346 || TREE_CODE (t
) == CASE_LABEL_EXPR
5347 || TREE_CODE (t
) == OMP_NEXT_VARIANT
5348 || is_gimple_min_invariant (t
))
5351 if (t
== error_mark_node
)
5357 /* Called via walk_tree. Verify tree sharing. */
5360 verify_node_sharing_1 (tree
*tp
, int *walk_subtrees
, void *data
)
5362 hash_set
<void *> *visited
= (hash_set
<void *> *) data
;
5364 if (tree_node_can_be_shared (*tp
))
5366 *walk_subtrees
= false;
5370 if (visited
->add (*tp
))
5376 /* Called via walk_gimple_stmt. Verify tree sharing. */
5379 verify_node_sharing (tree
*tp
, int *walk_subtrees
, void *data
)
5381 struct walk_stmt_info
*wi
= (struct walk_stmt_info
*) data
;
5382 return verify_node_sharing_1 (tp
, walk_subtrees
, wi
->info
);
5385 static bool eh_error_found
;
5387 verify_eh_throw_stmt_node (gimple
*const &stmt
, const int &,
5388 hash_set
<gimple
*> *visited
)
5390 if (!visited
->contains (stmt
))
5392 error ("dead statement in EH table");
5393 debug_gimple_stmt (stmt
);
5394 eh_error_found
= true;
5399 /* Verify if the location LOCs block is in BLOCKS. */
5402 verify_location (hash_set
<tree
> *blocks
, location_t loc
)
5404 tree block
= LOCATION_BLOCK (loc
);
5405 if (block
!= NULL_TREE
5406 && !blocks
->contains (block
))
5408 error ("location references block not in block tree");
5411 if (block
!= NULL_TREE
)
5412 return verify_location (blocks
, BLOCK_SOURCE_LOCATION (block
));
5416 /* Called via walk_tree. Verify that expressions have no blocks. */
5419 verify_expr_no_block (tree
*tp
, int *walk_subtrees
, void *)
5423 *walk_subtrees
= false;
5427 location_t loc
= EXPR_LOCATION (*tp
);
5428 if (LOCATION_BLOCK (loc
) != NULL
)
5434 /* Called via walk_tree. Verify locations of expressions. */
5437 verify_expr_location_1 (tree
*tp
, int *walk_subtrees
, void *data
)
5439 hash_set
<tree
> *blocks
= (hash_set
<tree
> *) data
;
5442 /* ??? This doesn't really belong here but there's no good place to
5443 stick this remainder of old verify_expr. */
5444 /* ??? This barfs on debug stmts which contain binds to vars with
5445 different function context. */
5448 || TREE_CODE (t
) == PARM_DECL
5449 || TREE_CODE (t
) == RESULT_DECL
)
5451 tree context
= decl_function_context (t
);
5452 if (context
!= cfun
->decl
5453 && !SCOPE_FILE_SCOPE_P (context
)
5455 && !DECL_EXTERNAL (t
))
5457 error ("local declaration from a different function");
5463 if (VAR_P (t
) && DECL_HAS_DEBUG_EXPR_P (t
))
5465 tree x
= DECL_DEBUG_EXPR (t
);
5466 tree addr
= walk_tree (&x
, verify_expr_no_block
, NULL
, NULL
);
5471 || TREE_CODE (t
) == PARM_DECL
5472 || TREE_CODE (t
) == RESULT_DECL
)
5473 && DECL_HAS_VALUE_EXPR_P (t
))
5475 tree x
= DECL_VALUE_EXPR (t
);
5476 tree addr
= walk_tree (&x
, verify_expr_no_block
, NULL
, NULL
);
5483 *walk_subtrees
= false;
5487 location_t loc
= EXPR_LOCATION (t
);
5488 if (verify_location (blocks
, loc
))
5494 /* Called via walk_gimple_op. Verify locations of expressions. */
5497 verify_expr_location (tree
*tp
, int *walk_subtrees
, void *data
)
5499 struct walk_stmt_info
*wi
= (struct walk_stmt_info
*) data
;
5500 return verify_expr_location_1 (tp
, walk_subtrees
, wi
->info
);
5503 /* Insert all subblocks of BLOCK into BLOCKS and recurse. */
5506 collect_subblocks (hash_set
<tree
> *blocks
, tree block
)
5509 for (t
= BLOCK_SUBBLOCKS (block
); t
; t
= BLOCK_CHAIN (t
))
5512 collect_subblocks (blocks
, t
);
5516 /* Disable warnings about missing quoting in GCC diagnostics for
5517 the verification errors. Their format strings don't follow
5518 GCC diagnostic conventions and trigger an ICE in the end. */
5520 # pragma GCC diagnostic push
5521 # pragma GCC diagnostic ignored "-Wformat-diag"
5524 /* Verify the GIMPLE statements in the CFG of FN. */
5527 verify_gimple_in_cfg (struct function
*fn
, bool verify_nothrow
, bool ice
)
5532 timevar_push (TV_TREE_STMT_VERIFY
);
5533 hash_set
<void *> visited
;
5534 hash_set
<gimple
*> visited_throwing_stmts
;
5536 /* Collect all BLOCKs referenced by the BLOCK tree of FN. */
5537 hash_set
<tree
> blocks
;
5538 if (DECL_INITIAL (fn
->decl
))
5540 blocks
.add (DECL_INITIAL (fn
->decl
));
5541 collect_subblocks (&blocks
, DECL_INITIAL (fn
->decl
));
5544 FOR_EACH_BB_FN (bb
, fn
)
5546 gimple_stmt_iterator gsi
;
5550 for (gphi_iterator gpi
= gsi_start_phis (bb
);
5554 gphi
*phi
= gpi
.phi ();
5558 if (gimple_bb (phi
) != bb
)
5560 error ("gimple_bb (phi) is set to a wrong basic block");
5564 err2
|= verify_gimple_phi (phi
);
5566 /* Only PHI arguments have locations. */
5567 if (gimple_location (phi
) != UNKNOWN_LOCATION
)
5569 error ("PHI node with location");
5573 for (i
= 0; i
< gimple_phi_num_args (phi
); i
++)
5575 tree arg
= gimple_phi_arg_def (phi
, i
);
5576 tree addr
= walk_tree (&arg
, verify_node_sharing_1
,
5580 error ("incorrect sharing of tree nodes");
5581 debug_generic_expr (addr
);
5584 location_t loc
= gimple_phi_arg_location (phi
, i
);
5585 if (virtual_operand_p (gimple_phi_result (phi
))
5586 && loc
!= UNKNOWN_LOCATION
)
5588 error ("virtual PHI with argument locations");
5591 addr
= walk_tree (&arg
, verify_expr_location_1
, &blocks
, NULL
);
5594 debug_generic_expr (addr
);
5597 err2
|= verify_location (&blocks
, loc
);
5601 debug_gimple_stmt (phi
);
5605 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
5607 gimple
*stmt
= gsi_stmt (gsi
);
5609 struct walk_stmt_info wi
;
5613 if (gimple_bb (stmt
) != bb
)
5615 error ("gimple_bb (stmt) is set to a wrong basic block");
5619 err2
|= verify_gimple_stmt (stmt
);
5620 err2
|= verify_location (&blocks
, gimple_location (stmt
));
5622 memset (&wi
, 0, sizeof (wi
));
5623 wi
.info
= (void *) &visited
;
5624 addr
= walk_gimple_op (stmt
, verify_node_sharing
, &wi
);
5627 error ("incorrect sharing of tree nodes");
5628 debug_generic_expr (addr
);
5632 memset (&wi
, 0, sizeof (wi
));
5633 wi
.info
= (void *) &blocks
;
5634 addr
= walk_gimple_op (stmt
, verify_expr_location
, &wi
);
5637 debug_generic_expr (addr
);
5641 /* If the statement is marked as part of an EH region, then it is
5642 expected that the statement could throw. Verify that when we
5643 have optimizations that simplify statements such that we prove
5644 that they cannot throw, that we update other data structures
5646 lp_nr
= lookup_stmt_eh_lp (stmt
);
5648 visited_throwing_stmts
.add (stmt
);
5651 if (!stmt_could_throw_p (cfun
, stmt
))
5655 error ("statement marked for throw, but doesn%'t");
5659 else if (!gsi_one_before_end_p (gsi
))
5661 error ("statement marked for throw in middle of block");
5667 debug_gimple_stmt (stmt
);
5671 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
5672 if (e
->goto_locus
!= UNKNOWN_LOCATION
)
5673 err
|= verify_location (&blocks
, e
->goto_locus
);
5676 hash_map
<gimple
*, int> *eh_table
= get_eh_throw_stmt_table (cfun
);
5677 eh_error_found
= false;
5679 eh_table
->traverse
<hash_set
<gimple
*> *, verify_eh_throw_stmt_node
>
5680 (&visited_throwing_stmts
);
5682 if (ice
&& (err
|| eh_error_found
))
5683 internal_error ("verify_gimple failed");
5685 verify_histograms ();
5686 timevar_pop (TV_TREE_STMT_VERIFY
);
5688 return (err
|| eh_error_found
);
5692 /* Verifies that the flow information is OK. */
5695 gimple_verify_flow_info (void)
5699 gimple_stmt_iterator gsi
;
5704 if (ENTRY_BLOCK_PTR_FOR_FN (cfun
)->il
.gimple
.seq
5705 || ENTRY_BLOCK_PTR_FOR_FN (cfun
)->il
.gimple
.phi_nodes
)
5707 error ("ENTRY_BLOCK has IL associated with it");
5711 if (EXIT_BLOCK_PTR_FOR_FN (cfun
)->il
.gimple
.seq
5712 || EXIT_BLOCK_PTR_FOR_FN (cfun
)->il
.gimple
.phi_nodes
)
5714 error ("EXIT_BLOCK has IL associated with it");
5718 FOR_EACH_EDGE (e
, ei
, EXIT_BLOCK_PTR_FOR_FN (cfun
)->preds
)
5719 if (e
->flags
& EDGE_FALLTHRU
)
5721 error ("fallthru to exit from bb %d", e
->src
->index
);
5724 if (cfun
->cfg
->full_profile
5725 && !ENTRY_BLOCK_PTR_FOR_FN (cfun
)->count
.initialized_p ())
5727 error ("entry block count not initialized");
5730 if (cfun
->cfg
->full_profile
5731 && !EXIT_BLOCK_PTR_FOR_FN (cfun
)->count
.initialized_p ())
5733 error ("exit block count not initialized");
5736 if (cfun
->cfg
->full_profile
5737 && !single_succ_edge
5738 (ENTRY_BLOCK_PTR_FOR_FN (cfun
))->probability
.initialized_p ())
5740 error ("probability of edge from entry block not initialized");
5745 FOR_EACH_BB_FN (bb
, cfun
)
5747 bool found_ctrl_stmt
= false;
5751 if (cfun
->cfg
->full_profile
)
5753 if (!bb
->count
.initialized_p ())
5755 error ("count of bb %d not initialized", bb
->index
);
5758 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
5759 if (!e
->probability
.initialized_p ())
5761 error ("probability of edge %d->%d not initialized",
5762 bb
->index
, e
->dest
->index
);
5767 /* Skip labels on the start of basic block. */
5768 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
5771 gimple
*prev_stmt
= stmt
;
5773 stmt
= gsi_stmt (gsi
);
5775 if (gimple_code (stmt
) != GIMPLE_LABEL
)
5778 label
= gimple_label_label (as_a
<glabel
*> (stmt
));
5779 if (prev_stmt
&& DECL_NONLOCAL (label
))
5781 error ("nonlocal label %qD is not first in a sequence "
5782 "of labels in bb %d", label
, bb
->index
);
5786 if (prev_stmt
&& EH_LANDING_PAD_NR (label
) != 0)
5788 error ("EH landing pad label %qD is not first in a sequence "
5789 "of labels in bb %d", label
, bb
->index
);
5793 if (label_to_block (cfun
, label
) != bb
)
5795 error ("label %qD to block does not match in bb %d",
5800 if (decl_function_context (label
) != current_function_decl
)
5802 error ("label %qD has incorrect context in bb %d",
5808 /* Verify that body of basic block BB is free of control flow. */
5809 bool seen_nondebug_stmt
= false;
5810 for (; !gsi_end_p (gsi
); gsi_next (&gsi
))
5812 gimple
*stmt
= gsi_stmt (gsi
);
5814 /* Do NOT disregard debug stmts after found_ctrl_stmt. */
5815 if (found_ctrl_stmt
)
5817 error ("control flow in the middle of basic block %d",
5822 if (stmt_ends_bb_p (stmt
))
5823 found_ctrl_stmt
= true;
5825 if (glabel
*label_stmt
= dyn_cast
<glabel
*> (stmt
))
5827 error ("label %qD in the middle of basic block %d",
5828 gimple_label_label (label_stmt
), bb
->index
);
5832 /* Check that no statements appear between a returns_twice call
5833 and its associated abnormal edge. */
5834 if (gimple_code (stmt
) == GIMPLE_CALL
5835 && gimple_call_flags (stmt
) & ECF_RETURNS_TWICE
)
5837 bool misplaced
= false;
5838 /* TM is an exception: it points abnormal edges just after the
5839 call that starts a transaction, i.e. it must end the BB. */
5840 if (gimple_call_builtin_p (stmt
, BUILT_IN_TM_START
))
5842 if (single_succ_p (bb
)
5843 && bb_has_abnormal_pred (single_succ (bb
))
5844 && !gsi_one_nondebug_before_end_p (gsi
))
5846 error ("returns_twice call is not last in basic block "
5853 if (seen_nondebug_stmt
&& bb_has_abnormal_pred (bb
))
5855 error ("returns_twice call is not first in basic block "
5862 print_gimple_stmt (stderr
, stmt
, 0, TDF_SLIM
);
5866 if (!is_gimple_debug (stmt
))
5867 seen_nondebug_stmt
= true;
5870 gsi
= gsi_last_nondebug_bb (bb
);
5871 if (gsi_end_p (gsi
))
5874 stmt
= gsi_stmt (gsi
);
5876 if (gimple_code (stmt
) == GIMPLE_LABEL
)
5879 if (verify_eh_edges (stmt
))
5882 if (is_ctrl_stmt (stmt
))
5884 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
5885 if (e
->flags
& EDGE_FALLTHRU
)
5887 error ("fallthru edge after a control statement in bb %d",
5893 if (gimple_code (stmt
) != GIMPLE_COND
)
5895 /* Verify that there are no edges with EDGE_TRUE/FALSE_FLAG set
5896 after anything else but if statement. */
5897 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
5898 if (e
->flags
& (EDGE_TRUE_VALUE
| EDGE_FALSE_VALUE
))
5900 error ("true/false edge after a non-GIMPLE_COND in bb %d",
5906 switch (gimple_code (stmt
))
5913 extract_true_false_edges_from_block (bb
, &true_edge
, &false_edge
);
5917 || !(true_edge
->flags
& EDGE_TRUE_VALUE
)
5918 || !(false_edge
->flags
& EDGE_FALSE_VALUE
)
5919 || (true_edge
->flags
& (EDGE_FALLTHRU
| EDGE_ABNORMAL
))
5920 || (false_edge
->flags
& (EDGE_FALLTHRU
| EDGE_ABNORMAL
))
5921 || EDGE_COUNT (bb
->succs
) >= 3)
5923 error ("wrong outgoing edge flags at end of bb %d",
5931 if (simple_goto_p (stmt
))
5933 error ("explicit goto at end of bb %d", bb
->index
);
5938 /* FIXME. We should double check that the labels in the
5939 destination blocks have their address taken. */
5940 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
5941 if ((e
->flags
& (EDGE_FALLTHRU
| EDGE_TRUE_VALUE
5942 | EDGE_FALSE_VALUE
))
5943 || !(e
->flags
& EDGE_ABNORMAL
))
5945 error ("wrong outgoing edge flags at end of bb %d",
5953 if (!gimple_call_builtin_p (stmt
, BUILT_IN_RETURN
))
5957 if (!single_succ_p (bb
)
5958 || (single_succ_edge (bb
)->flags
5959 & (EDGE_FALLTHRU
| EDGE_ABNORMAL
5960 | EDGE_TRUE_VALUE
| EDGE_FALSE_VALUE
)))
5962 error ("wrong outgoing edge flags at end of bb %d", bb
->index
);
5965 if (single_succ (bb
) != EXIT_BLOCK_PTR_FOR_FN (cfun
))
5967 error ("return edge does not point to exit in bb %d",
5975 gswitch
*switch_stmt
= as_a
<gswitch
*> (stmt
);
5980 n
= gimple_switch_num_labels (switch_stmt
);
5982 /* Mark all the destination basic blocks. */
5983 for (i
= 0; i
< n
; ++i
)
5985 basic_block label_bb
= gimple_switch_label_bb (cfun
, switch_stmt
, i
);
5986 gcc_assert (!label_bb
->aux
|| label_bb
->aux
== (void *)1);
5987 label_bb
->aux
= (void *)1;
5990 /* Verify that the case labels are sorted. */
5991 prev
= gimple_switch_label (switch_stmt
, 0);
5992 for (i
= 1; i
< n
; ++i
)
5994 tree c
= gimple_switch_label (switch_stmt
, i
);
5997 error ("found default case not at the start of "
6003 && !tree_int_cst_lt (CASE_LOW (prev
), CASE_LOW (c
)))
6005 error ("case labels not sorted: ");
6006 print_generic_expr (stderr
, prev
);
6007 fprintf (stderr
," is greater than ");
6008 print_generic_expr (stderr
, c
);
6009 fprintf (stderr
," but comes before it.\n");
6014 /* VRP will remove the default case if it can prove it will
6015 never be executed. So do not verify there always exists
6016 a default case here. */
6018 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
6022 error ("extra outgoing edge %d->%d",
6023 bb
->index
, e
->dest
->index
);
6027 e
->dest
->aux
= (void *)2;
6028 if ((e
->flags
& (EDGE_FALLTHRU
| EDGE_ABNORMAL
6029 | EDGE_TRUE_VALUE
| EDGE_FALSE_VALUE
)))
6031 error ("wrong outgoing edge flags at end of bb %d",
6037 /* Check that we have all of them. */
6038 for (i
= 0; i
< n
; ++i
)
6040 basic_block label_bb
= gimple_switch_label_bb (cfun
,
6043 if (label_bb
->aux
!= (void *)2)
6045 error ("missing edge %i->%i", bb
->index
, label_bb
->index
);
6050 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
6051 e
->dest
->aux
= (void *)0;
6055 case GIMPLE_EH_DISPATCH
:
6056 if (verify_eh_dispatch_edge (as_a
<geh_dispatch
*> (stmt
)))
6065 if (dom_info_state (CDI_DOMINATORS
) >= DOM_NO_FAST_QUERY
)
6066 verify_dominators (CDI_DOMINATORS
);
6072 # pragma GCC diagnostic pop
6075 /* Updates phi nodes after creating a forwarder block joined
6076 by edge FALLTHRU. */
6079 gimple_make_forwarder_block (edge fallthru
)
6083 basic_block dummy
, bb
;
6086 bool forward_location_p
;
6088 dummy
= fallthru
->src
;
6089 bb
= fallthru
->dest
;
6091 if (single_pred_p (bb
))
6094 /* We can forward location info if we have only one predecessor. */
6095 forward_location_p
= single_pred_p (dummy
);
6097 /* If we redirected a branch we must create new PHI nodes at the
6099 for (gsi
= gsi_start_phis (dummy
); !gsi_end_p (gsi
); gsi_next (&gsi
))
6101 gphi
*phi
, *new_phi
;
6104 var
= gimple_phi_result (phi
);
6105 new_phi
= create_phi_node (var
, bb
);
6106 gimple_phi_set_result (phi
, copy_ssa_name (var
, phi
));
6107 add_phi_arg (new_phi
, gimple_phi_result (phi
), fallthru
,
6109 ? gimple_phi_arg_location (phi
, 0) : UNKNOWN_LOCATION
);
6112 /* Add the arguments we have stored on edges. */
6113 FOR_EACH_EDGE (e
, ei
, bb
->preds
)
6118 flush_pending_stmts (e
);
6123 /* Return a non-special label in the head of basic block BLOCK.
6124 Create one if it doesn't exist. */
6127 gimple_block_label (basic_block bb
)
6129 gimple_stmt_iterator i
, s
= gsi_start_bb (bb
);
6134 for (i
= s
; !gsi_end_p (i
); first
= false, gsi_next (&i
))
6136 stmt
= dyn_cast
<glabel
*> (gsi_stmt (i
));
6139 label
= gimple_label_label (stmt
);
6140 if (!DECL_NONLOCAL (label
))
6143 gsi_move_before (&i
, &s
);
6148 label
= create_artificial_label (UNKNOWN_LOCATION
);
6149 stmt
= gimple_build_label (label
);
6150 gsi_insert_before (&s
, stmt
, GSI_NEW_STMT
);
6155 /* Attempt to perform edge redirection by replacing a possibly complex
6156 jump instruction by a goto or by removing the jump completely.
6157 This can apply only if all edges now point to the same block. The
6158 parameters and return values are equivalent to
6159 redirect_edge_and_branch. */
6162 gimple_try_redirect_by_replacing_jump (edge e
, basic_block target
)
6164 basic_block src
= e
->src
;
6165 gimple_stmt_iterator i
;
6168 /* We can replace or remove a complex jump only when we have exactly
6170 if (EDGE_COUNT (src
->succs
) != 2
6171 /* Verify that all targets will be TARGET. Specifically, the
6172 edge that is not E must also go to TARGET. */
6173 || EDGE_SUCC (src
, EDGE_SUCC (src
, 0) == e
)->dest
!= target
)
6176 i
= gsi_last_bb (src
);
6180 stmt
= gsi_stmt (i
);
6182 if (gimple_code (stmt
) == GIMPLE_COND
|| gimple_code (stmt
) == GIMPLE_SWITCH
)
6184 gsi_remove (&i
, true);
6185 e
= ssa_redirect_edge (e
, target
);
6186 e
->flags
= EDGE_FALLTHRU
;
6194 /* Redirect E to DEST. Return NULL on failure. Otherwise, return the
6195 edge representing the redirected branch. */
6198 gimple_redirect_edge_and_branch (edge e
, basic_block dest
)
6200 basic_block bb
= e
->src
;
6201 gimple_stmt_iterator gsi
;
6205 if (e
->flags
& EDGE_ABNORMAL
)
6208 if (e
->dest
== dest
)
6211 if (e
->flags
& EDGE_EH
)
6212 return redirect_eh_edge (e
, dest
);
6214 if (e
->src
!= ENTRY_BLOCK_PTR_FOR_FN (cfun
))
6216 ret
= gimple_try_redirect_by_replacing_jump (e
, dest
);
6221 gsi
= gsi_last_nondebug_bb (bb
);
6222 stmt
= gsi_end_p (gsi
) ? NULL
: gsi_stmt (gsi
);
6224 switch (stmt
? gimple_code (stmt
) : GIMPLE_ERROR_MARK
)
6227 /* For COND_EXPR, we only need to redirect the edge. */
6231 /* No non-abnormal edges should lead from a non-simple goto, and
6232 simple ones should be represented implicitly. */
6237 gswitch
*switch_stmt
= as_a
<gswitch
*> (stmt
);
6238 tree label
= gimple_block_label (dest
);
6239 tree cases
= get_cases_for_edge (e
, switch_stmt
);
6241 /* If we have a list of cases associated with E, then use it
6242 as it's a lot faster than walking the entire case vector. */
6245 edge e2
= find_edge (e
->src
, dest
);
6252 CASE_LABEL (cases
) = label
;
6253 cases
= CASE_CHAIN (cases
);
6256 /* If there was already an edge in the CFG, then we need
6257 to move all the cases associated with E to E2. */
6260 tree cases2
= get_cases_for_edge (e2
, switch_stmt
);
6262 CASE_CHAIN (last
) = CASE_CHAIN (cases2
);
6263 CASE_CHAIN (cases2
) = first
;
6265 bitmap_set_bit (touched_switch_bbs
, gimple_bb (stmt
)->index
);
6269 size_t i
, n
= gimple_switch_num_labels (switch_stmt
);
6271 for (i
= 0; i
< n
; i
++)
6273 tree elt
= gimple_switch_label (switch_stmt
, i
);
6274 if (label_to_block (cfun
, CASE_LABEL (elt
)) == e
->dest
)
6275 CASE_LABEL (elt
) = label
;
6283 gasm
*asm_stmt
= as_a
<gasm
*> (stmt
);
6284 int i
, n
= gimple_asm_nlabels (asm_stmt
);
6287 for (i
= 0; i
< n
; ++i
)
6289 tree cons
= gimple_asm_label_op (asm_stmt
, i
);
6290 if (label_to_block (cfun
, TREE_VALUE (cons
)) == e
->dest
)
6293 label
= gimple_block_label (dest
);
6294 TREE_VALUE (cons
) = label
;
6298 /* If we didn't find any label matching the former edge in the
6299 asm labels, we must be redirecting the fallthrough
6301 gcc_assert (label
|| (e
->flags
& EDGE_FALLTHRU
));
6306 gsi_remove (&gsi
, true);
6307 e
->flags
|= EDGE_FALLTHRU
;
6310 case GIMPLE_OMP_RETURN
:
6311 case GIMPLE_OMP_CONTINUE
:
6312 case GIMPLE_OMP_SECTIONS_SWITCH
:
6313 case GIMPLE_OMP_FOR
:
6314 /* The edges from OMP constructs can be simply redirected. */
6317 case GIMPLE_EH_DISPATCH
:
6318 if (!(e
->flags
& EDGE_FALLTHRU
))
6319 redirect_eh_dispatch_edge (as_a
<geh_dispatch
*> (stmt
), e
, dest
);
6322 case GIMPLE_TRANSACTION
:
6323 if (e
->flags
& EDGE_TM_ABORT
)
6324 gimple_transaction_set_label_over (as_a
<gtransaction
*> (stmt
),
6325 gimple_block_label (dest
));
6326 else if (e
->flags
& EDGE_TM_UNINSTRUMENTED
)
6327 gimple_transaction_set_label_uninst (as_a
<gtransaction
*> (stmt
),
6328 gimple_block_label (dest
));
6330 gimple_transaction_set_label_norm (as_a
<gtransaction
*> (stmt
),
6331 gimple_block_label (dest
));
6335 /* Otherwise it must be a fallthru edge, and we don't need to
6336 do anything besides redirecting it. */
6337 gcc_assert (e
->flags
& EDGE_FALLTHRU
);
6341 /* Update/insert PHI nodes as necessary. */
6343 /* Now update the edges in the CFG. */
6344 e
= ssa_redirect_edge (e
, dest
);
6349 /* Returns true if it is possible to remove edge E by redirecting
6350 it to the destination of the other edge from E->src. */
6353 gimple_can_remove_branch_p (const_edge e
)
6355 if (e
->flags
& (EDGE_ABNORMAL
| EDGE_EH
))
6361 /* Simple wrapper, as we can always redirect fallthru edges. */
6364 gimple_redirect_edge_and_branch_force (edge e
, basic_block dest
)
6366 e
= gimple_redirect_edge_and_branch (e
, dest
);
6373 /* Splits basic block BB after statement STMT (but at least after the
6374 labels). If STMT is NULL, BB is split just after the labels. */
6377 gimple_split_block (basic_block bb
, void *stmt
)
6379 gimple_stmt_iterator gsi
;
6380 gimple_stmt_iterator gsi_tgt
;
6386 new_bb
= create_empty_bb (bb
);
6388 /* Redirect the outgoing edges. */
6389 new_bb
->succs
= bb
->succs
;
6391 FOR_EACH_EDGE (e
, ei
, new_bb
->succs
)
6394 /* Get a stmt iterator pointing to the first stmt to move. */
6395 if (!stmt
|| gimple_code ((gimple
*) stmt
) == GIMPLE_LABEL
)
6396 gsi
= gsi_after_labels (bb
);
6399 gsi
= gsi_for_stmt ((gimple
*) stmt
);
6403 /* Move everything from GSI to the new basic block. */
6404 if (gsi_end_p (gsi
))
6407 /* Split the statement list - avoid re-creating new containers as this
6408 brings ugly quadratic memory consumption in the inliner.
6409 (We are still quadratic since we need to update stmt BB pointers,
6411 gsi_split_seq_before (&gsi
, &list
);
6412 set_bb_seq (new_bb
, list
);
6413 for (gsi_tgt
= gsi_start (list
);
6414 !gsi_end_p (gsi_tgt
); gsi_next (&gsi_tgt
))
6415 gimple_set_bb (gsi_stmt (gsi_tgt
), new_bb
);
6421 /* Moves basic block BB after block AFTER. */
6424 gimple_move_block_after (basic_block bb
, basic_block after
)
6426 if (bb
->prev_bb
== after
)
6430 link_block (bb
, after
);
6436 /* Return TRUE if block BB has no executable statements, otherwise return
6440 gimple_empty_block_p (basic_block bb
)
6442 /* BB must have no executable statements. */
6443 gimple_stmt_iterator gsi
= gsi_after_labels (bb
);
6446 while (!gsi_end_p (gsi
))
6448 gimple
*stmt
= gsi_stmt (gsi
);
6449 if (is_gimple_debug (stmt
))
6451 else if (gimple_code (stmt
) == GIMPLE_NOP
6452 || gimple_code (stmt
) == GIMPLE_PREDICT
)
6462 /* Split a basic block if it ends with a conditional branch and if the
6463 other part of the block is not empty. */
6466 gimple_split_block_before_cond_jump (basic_block bb
)
6468 gimple
*last
, *split_point
;
6469 gimple_stmt_iterator gsi
= gsi_last_nondebug_bb (bb
);
6470 if (gsi_end_p (gsi
))
6472 last
= gsi_stmt (gsi
);
6473 if (gimple_code (last
) != GIMPLE_COND
6474 && gimple_code (last
) != GIMPLE_SWITCH
)
6477 split_point
= gsi_stmt (gsi
);
6478 return split_block (bb
, split_point
)->dest
;
6482 /* Return true if basic_block can be duplicated. */
6485 gimple_can_duplicate_bb_p (const_basic_block bb
)
6487 gimple
*last
= last_nondebug_stmt (CONST_CAST_BB (bb
));
6489 /* Do checks that can only fail for the last stmt, to minimize the work in the
6492 /* A transaction is a single entry multiple exit region. It
6493 must be duplicated in its entirety or not at all. */
6494 if (gimple_code (last
) == GIMPLE_TRANSACTION
)
6497 /* An IFN_UNIQUE call must be duplicated as part of its group,
6499 if (is_gimple_call (last
)
6500 && gimple_call_internal_p (last
)
6501 && gimple_call_internal_unique_p (last
))
6504 /* Prohibit duplication of returns_twice calls, otherwise associated
6505 abnormal edges also need to be duplicated properly.
6506 return_twice functions will always be the last statement. */
6507 if (is_gimple_call (last
)
6508 && (gimple_call_flags (last
) & ECF_RETURNS_TWICE
))
6512 for (gimple_stmt_iterator gsi
= gsi_start_bb (CONST_CAST_BB (bb
));
6513 !gsi_end_p (gsi
); gsi_next (&gsi
))
6515 gimple
*g
= gsi_stmt (gsi
);
6517 /* An IFN_GOMP_SIMT_ENTER_ALLOC/IFN_GOMP_SIMT_EXIT call must be
6518 duplicated as part of its group, or not at all.
6519 The IFN_GOMP_SIMT_VOTE_ANY and IFN_GOMP_SIMT_XCHG_* are part of such a
6520 group, so the same holds there. */
6521 if (is_gimple_call (g
)
6522 && (gimple_call_internal_p (g
, IFN_GOMP_SIMT_ENTER_ALLOC
)
6523 || gimple_call_internal_p (g
, IFN_GOMP_SIMT_EXIT
)
6524 || gimple_call_internal_p (g
, IFN_GOMP_SIMT_VOTE_ANY
)
6525 || gimple_call_internal_p (g
, IFN_GOMP_SIMT_XCHG_BFLY
)
6526 || gimple_call_internal_p (g
, IFN_GOMP_SIMT_XCHG_IDX
)))
6533 /* Create a duplicate of the basic block BB. NOTE: This does not
6534 preserve SSA form. */
6537 gimple_duplicate_bb (basic_block bb
, copy_bb_data
*id
)
6540 gimple_stmt_iterator gsi_tgt
;
6542 new_bb
= create_empty_bb (EXIT_BLOCK_PTR_FOR_FN (cfun
)->prev_bb
);
6544 /* Copy the PHI nodes. We ignore PHI node arguments here because
6545 the incoming edges have not been setup yet. */
6546 for (gphi_iterator gpi
= gsi_start_phis (bb
);
6552 copy
= create_phi_node (NULL_TREE
, new_bb
);
6553 create_new_def_for (gimple_phi_result (phi
), copy
,
6554 gimple_phi_result_ptr (copy
));
6555 gimple_set_uid (copy
, gimple_uid (phi
));
6558 gsi_tgt
= gsi_start_bb (new_bb
);
6559 for (gimple_stmt_iterator gsi
= gsi_start_bb (bb
);
6563 def_operand_p def_p
;
6564 ssa_op_iter op_iter
;
6566 gimple
*stmt
, *copy
;
6568 stmt
= gsi_stmt (gsi
);
6569 if (gimple_code (stmt
) == GIMPLE_LABEL
)
6572 /* Don't duplicate label debug stmts. */
6573 if (gimple_debug_bind_p (stmt
)
6574 && TREE_CODE (gimple_debug_bind_get_var (stmt
))
6578 /* Create a new copy of STMT and duplicate STMT's virtual
6580 copy
= gimple_copy (stmt
);
6581 gsi_insert_after (&gsi_tgt
, copy
, GSI_NEW_STMT
);
6583 maybe_duplicate_eh_stmt (copy
, stmt
);
6584 gimple_duplicate_stmt_histograms (cfun
, copy
, cfun
, stmt
);
6586 /* When copying around a stmt writing into a local non-user
6587 aggregate, make sure it won't share stack slot with other
6589 lhs
= gimple_get_lhs (stmt
);
6590 if (lhs
&& TREE_CODE (lhs
) != SSA_NAME
)
6592 tree base
= get_base_address (lhs
);
6594 && (VAR_P (base
) || TREE_CODE (base
) == RESULT_DECL
)
6595 && DECL_IGNORED_P (base
)
6596 && !TREE_STATIC (base
)
6597 && !DECL_EXTERNAL (base
)
6598 && (!VAR_P (base
) || !DECL_HAS_VALUE_EXPR_P (base
)))
6599 DECL_NONSHAREABLE (base
) = 1;
6602 /* If requested remap dependence info of cliques brought in
6605 for (unsigned i
= 0; i
< gimple_num_ops (copy
); ++i
)
6607 tree op
= gimple_op (copy
, i
);
6610 if (TREE_CODE (op
) == ADDR_EXPR
6611 || TREE_CODE (op
) == WITH_SIZE_EXPR
)
6612 op
= TREE_OPERAND (op
, 0);
6613 while (handled_component_p (op
))
6614 op
= TREE_OPERAND (op
, 0);
6615 if ((TREE_CODE (op
) == MEM_REF
6616 || TREE_CODE (op
) == TARGET_MEM_REF
)
6617 && MR_DEPENDENCE_CLIQUE (op
) > 1
6618 && MR_DEPENDENCE_CLIQUE (op
) != bb
->loop_father
->owned_clique
)
6620 if (!id
->dependence_map
)
6621 id
->dependence_map
= new hash_map
<dependence_hash
,
6624 unsigned short &newc
= id
->dependence_map
->get_or_insert
6625 (MR_DEPENDENCE_CLIQUE (op
), &existed
);
6628 gcc_assert (MR_DEPENDENCE_CLIQUE (op
) <= cfun
->last_clique
);
6629 newc
= get_new_clique (cfun
);
6631 MR_DEPENDENCE_CLIQUE (op
) = newc
;
6635 /* Create new names for all the definitions created by COPY and
6636 add replacement mappings for each new name. */
6637 FOR_EACH_SSA_DEF_OPERAND (def_p
, copy
, op_iter
, SSA_OP_ALL_DEFS
)
6638 create_new_def_for (DEF_FROM_PTR (def_p
), copy
, def_p
);
6644 /* Adds phi node arguments for edge E_COPY after basic block duplication. */
6647 add_phi_args_after_copy_edge (edge e_copy
)
6649 basic_block bb
, bb_copy
= e_copy
->src
, dest
;
6652 gphi
*phi
, *phi_copy
;
6654 gphi_iterator psi
, psi_copy
;
6656 if (gimple_seq_empty_p (phi_nodes (e_copy
->dest
)))
6659 bb
= bb_copy
->flags
& BB_DUPLICATED
? get_bb_original (bb_copy
) : bb_copy
;
6661 if (e_copy
->dest
->flags
& BB_DUPLICATED
)
6662 dest
= get_bb_original (e_copy
->dest
);
6664 dest
= e_copy
->dest
;
6666 e
= find_edge (bb
, dest
);
6669 /* During loop unrolling the target of the latch edge is copied.
6670 In this case we are not looking for edge to dest, but to
6671 duplicated block whose original was dest. */
6672 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
6674 if ((e
->dest
->flags
& BB_DUPLICATED
)
6675 && get_bb_original (e
->dest
) == dest
)
6679 gcc_assert (e
!= NULL
);
6682 for (psi
= gsi_start_phis (e
->dest
),
6683 psi_copy
= gsi_start_phis (e_copy
->dest
);
6685 gsi_next (&psi
), gsi_next (&psi_copy
))
6688 phi_copy
= psi_copy
.phi ();
6689 def
= PHI_ARG_DEF_FROM_EDGE (phi
, e
);
6690 add_phi_arg (phi_copy
, def
, e_copy
,
6691 gimple_phi_arg_location_from_edge (phi
, e
));
6696 /* Basic block BB_COPY was created by code duplication. Add phi node
6697 arguments for edges going out of BB_COPY. The blocks that were
6698 duplicated have BB_DUPLICATED set. */
6701 add_phi_args_after_copy_bb (basic_block bb_copy
)
6706 FOR_EACH_EDGE (e_copy
, ei
, bb_copy
->succs
)
6708 add_phi_args_after_copy_edge (e_copy
);
6712 /* Blocks in REGION_COPY array of length N_REGION were created by
6713 duplication of basic blocks. Add phi node arguments for edges
6714 going from these blocks. If E_COPY is not NULL, also add
6715 phi node arguments for its destination.*/
6718 add_phi_args_after_copy (basic_block
*region_copy
, unsigned n_region
,
6723 for (i
= 0; i
< n_region
; i
++)
6724 region_copy
[i
]->flags
|= BB_DUPLICATED
;
6726 for (i
= 0; i
< n_region
; i
++)
6727 add_phi_args_after_copy_bb (region_copy
[i
]);
6729 add_phi_args_after_copy_edge (e_copy
);
6731 for (i
= 0; i
< n_region
; i
++)
6732 region_copy
[i
]->flags
&= ~BB_DUPLICATED
;
6735 /* Duplicates a REGION (set of N_REGION basic blocks) with just a single
6736 important exit edge EXIT. By important we mean that no SSA name defined
6737 inside region is live over the other exit edges of the region. All entry
6738 edges to the region must go to ENTRY->dest. The edge ENTRY is redirected
6739 to the duplicate of the region. Dominance and loop information is
6740 updated if UPDATE_DOMINANCE is true, but not the SSA web. If
6741 UPDATE_DOMINANCE is false then we assume that the caller will update the
6742 dominance information after calling this function. The new basic
6743 blocks are stored to REGION_COPY in the same order as they had in REGION,
6744 provided that REGION_COPY is not NULL.
6745 The function returns false if it is unable to copy the region,
6748 It is callers responsibility to update profile. */
6751 gimple_duplicate_seme_region (edge entry
, edge exit
,
6752 basic_block
*region
, unsigned n_region
,
6753 basic_block
*region_copy
,
6754 bool update_dominance
)
6757 bool free_region_copy
= false, copying_header
= false;
6758 class loop
*loop
= entry
->dest
->loop_father
;
6762 if (!can_copy_bbs_p (region
, n_region
))
6765 /* Some sanity checking. Note that we do not check for all possible
6766 missuses of the functions. I.e. if you ask to copy something weird,
6767 it will work, but the state of structures probably will not be
6769 for (i
= 0; i
< n_region
; i
++)
6771 /* We do not handle subloops, i.e. all the blocks must belong to the
6773 if (region
[i
]->loop_father
!= loop
)
6776 if (region
[i
] != entry
->dest
6777 && region
[i
] == loop
->header
)
6781 /* In case the function is used for loop header copying (which is the primary
6782 use), ensure that EXIT and its copy will be new latch and entry edges. */
6783 if (loop
->header
== entry
->dest
)
6785 copying_header
= true;
6787 if (!dominated_by_p (CDI_DOMINATORS
, loop
->latch
, exit
->src
))
6790 for (i
= 0; i
< n_region
; i
++)
6791 if (region
[i
] != exit
->src
6792 && dominated_by_p (CDI_DOMINATORS
, region
[i
], exit
->src
))
6796 initialize_original_copy_tables ();
6799 set_loop_copy (loop
, loop_outer (loop
));
6801 set_loop_copy (loop
, loop
);
6805 region_copy
= XNEWVEC (basic_block
, n_region
);
6806 free_region_copy
= true;
6809 /* Record blocks outside the region that are dominated by something
6811 auto_vec
<basic_block
> doms
;
6812 if (update_dominance
)
6813 doms
= get_dominated_by_region (CDI_DOMINATORS
, region
, n_region
);
6815 copy_bbs (region
, n_region
, region_copy
, &exit
, 1, &exit_copy
, loop
,
6816 split_edge_bb_loc (entry
), update_dominance
);
6820 loop
->header
= exit
->dest
;
6821 loop
->latch
= exit
->src
;
6824 /* Redirect the entry and add the phi node arguments. */
6825 redirected
= redirect_edge_and_branch (entry
, get_bb_copy (entry
->dest
));
6826 gcc_assert (redirected
!= NULL
);
6827 flush_pending_stmts (entry
);
6829 /* Concerning updating of dominators: We must recount dominators
6830 for entry block and its copy. Anything that is outside of the
6831 region, but was dominated by something inside needs recounting as
6833 if (update_dominance
)
6835 set_immediate_dominator (CDI_DOMINATORS
, entry
->dest
, entry
->src
);
6836 doms
.safe_push (get_bb_original (entry
->dest
));
6837 iterate_fix_dominators (CDI_DOMINATORS
, doms
, false);
6840 /* Add the other PHI node arguments. */
6841 add_phi_args_after_copy (region_copy
, n_region
, NULL
);
6843 if (free_region_copy
)
6846 free_original_copy_tables ();
6850 /* Checks if BB is part of the region defined by N_REGION BBS. */
6852 bb_part_of_region_p (basic_block bb
, basic_block
* bbs
, unsigned n_region
)
6856 for (n
= 0; n
< n_region
; n
++)
6865 /* For each PHI in BB, copy the argument associated with SRC_E to TGT_E.
6866 Assuming the argument exists, just does not have a value. */
6869 copy_phi_arg_into_existing_phi (edge src_e
, edge tgt_e
)
6871 int src_idx
= src_e
->dest_idx
;
6872 int tgt_idx
= tgt_e
->dest_idx
;
6874 /* Iterate over each PHI in e->dest. */
6875 for (gphi_iterator gsi
= gsi_start_phis (src_e
->dest
),
6876 gsi2
= gsi_start_phis (tgt_e
->dest
);
6878 gsi_next (&gsi
), gsi_next (&gsi2
))
6880 gphi
*src_phi
= gsi
.phi ();
6881 gphi
*dest_phi
= gsi2
.phi ();
6882 tree val
= gimple_phi_arg_def (src_phi
, src_idx
);
6883 location_t locus
= gimple_phi_arg_location (src_phi
, src_idx
);
6885 SET_PHI_ARG_DEF (dest_phi
, tgt_idx
, val
);
6886 gimple_phi_arg_set_location (dest_phi
, tgt_idx
, locus
);
6890 /* Duplicates REGION consisting of N_REGION blocks. The new blocks
6891 are stored to REGION_COPY in the same order in that they appear
6892 in REGION, if REGION_COPY is not NULL. ENTRY is the entry to
6893 the region, EXIT an exit from it. The condition guarding EXIT
6894 is moved to ENTRY. Returns true if duplication succeeds, false
6920 gimple_duplicate_sese_tail (edge entry
, edge exit
,
6921 basic_block
*region
, unsigned n_region
,
6922 basic_block
*region_copy
)
6925 bool free_region_copy
= false;
6926 class loop
*loop
= exit
->dest
->loop_father
;
6927 class loop
*orig_loop
= entry
->dest
->loop_father
;
6928 basic_block switch_bb
, entry_bb
, nentry_bb
;
6929 profile_count total_count
= profile_count::uninitialized (),
6930 exit_count
= profile_count::uninitialized ();
6931 edge exits
[2], nexits
[2], e
;
6932 gimple_stmt_iterator gsi
;
6934 basic_block exit_bb
;
6935 class loop
*target
, *aloop
, *cloop
;
6937 gcc_assert (EDGE_COUNT (exit
->src
->succs
) == 2);
6939 exits
[1] = EDGE_SUCC (exit
->src
, EDGE_SUCC (exit
->src
, 0) == exit
);
6941 if (!can_copy_bbs_p (region
, n_region
))
6944 initialize_original_copy_tables ();
6945 set_loop_copy (orig_loop
, loop
);
6948 for (aloop
= orig_loop
->inner
; aloop
; aloop
= aloop
->next
)
6950 if (bb_part_of_region_p (aloop
->header
, region
, n_region
))
6952 cloop
= duplicate_loop (aloop
, target
);
6953 duplicate_subloops (aloop
, cloop
);
6959 region_copy
= XNEWVEC (basic_block
, n_region
);
6960 free_region_copy
= true;
6963 gcc_assert (!need_ssa_update_p (cfun
));
6965 /* Record blocks outside the region that are dominated by something
6967 auto_vec
<basic_block
> doms
= get_dominated_by_region (CDI_DOMINATORS
, region
,
6970 total_count
= exit
->src
->count
;
6971 exit_count
= exit
->count ();
6972 /* Fix up corner cases, to avoid division by zero or creation of negative
6974 if (exit_count
> total_count
)
6975 exit_count
= total_count
;
6977 copy_bbs (region
, n_region
, region_copy
, exits
, 2, nexits
, orig_loop
,
6978 split_edge_bb_loc (exit
), true);
6979 if (total_count
.initialized_p () && exit_count
.initialized_p ())
6981 scale_bbs_frequencies_profile_count (region
, n_region
,
6982 total_count
- exit_count
,
6984 scale_bbs_frequencies_profile_count (region_copy
, n_region
, exit_count
,
6988 /* Create the switch block, and put the exit condition to it. */
6989 entry_bb
= entry
->dest
;
6990 nentry_bb
= get_bb_copy (entry_bb
);
6991 if (!*gsi_last_bb (entry
->src
)
6992 || !stmt_ends_bb_p (*gsi_last_bb (entry
->src
)))
6993 switch_bb
= entry
->src
;
6995 switch_bb
= split_edge (entry
);
6996 set_immediate_dominator (CDI_DOMINATORS
, nentry_bb
, switch_bb
);
6998 gcond
*cond_stmt
= as_a
<gcond
*> (*gsi_last_bb (exit
->src
));
6999 cond_stmt
= as_a
<gcond
*> (gimple_copy (cond_stmt
));
7001 gsi
= gsi_last_bb (switch_bb
);
7002 gsi_insert_after (&gsi
, cond_stmt
, GSI_NEW_STMT
);
7004 sorig
= single_succ_edge (switch_bb
);
7005 sorig
->flags
= exits
[1]->flags
;
7006 sorig
->probability
= exits
[1]->probability
;
7007 snew
= make_edge (switch_bb
, nentry_bb
, exits
[0]->flags
);
7008 snew
->probability
= exits
[0]->probability
;
7011 /* Register the new edge from SWITCH_BB in loop exit lists. */
7012 rescan_loop_exit (snew
, true, false);
7014 /* Add the PHI node arguments. */
7015 add_phi_args_after_copy (region_copy
, n_region
, snew
);
7017 /* Get rid of now superfluous conditions and associated edges (and phi node
7019 exit_bb
= exit
->dest
;
7021 e
= redirect_edge_and_branch (exits
[0], exits
[1]->dest
);
7022 PENDING_STMT (e
) = NULL
;
7024 /* The latch of ORIG_LOOP was copied, and so was the backedge
7025 to the original header. We redirect this backedge to EXIT_BB. */
7026 for (i
= 0; i
< n_region
; i
++)
7027 if (get_bb_original (region_copy
[i
]) == orig_loop
->latch
)
7029 gcc_assert (single_succ_edge (region_copy
[i
]));
7030 e
= redirect_edge_and_branch (single_succ_edge (region_copy
[i
]), exit_bb
);
7031 PENDING_STMT (e
) = NULL
;
7032 copy_phi_arg_into_existing_phi (nexits
[0], e
);
7034 e
= redirect_edge_and_branch (nexits
[1], nexits
[0]->dest
);
7035 PENDING_STMT (e
) = NULL
;
7037 /* Anything that is outside of the region, but was dominated by something
7038 inside needs to update dominance info. */
7039 iterate_fix_dominators (CDI_DOMINATORS
, doms
, false);
7041 if (free_region_copy
)
7044 free_original_copy_tables ();
7048 /* Add all the blocks dominated by ENTRY to the array BBS_P. Stop
7049 adding blocks when the dominator traversal reaches EXIT. This
7050 function silently assumes that ENTRY strictly dominates EXIT. */
7053 gather_blocks_in_sese_region (basic_block entry
, basic_block exit
,
7054 vec
<basic_block
> *bbs_p
)
7058 for (son
= first_dom_son (CDI_DOMINATORS
, entry
);
7060 son
= next_dom_son (CDI_DOMINATORS
, son
))
7062 bbs_p
->safe_push (son
);
7064 gather_blocks_in_sese_region (son
, exit
, bbs_p
);
7068 /* Replaces *TP with a duplicate (belonging to function TO_CONTEXT).
7069 The duplicates are recorded in VARS_MAP. */
7072 replace_by_duplicate_decl (tree
*tp
, hash_map
<tree
, tree
> *vars_map
,
7075 tree t
= *tp
, new_t
;
7076 struct function
*f
= DECL_STRUCT_FUNCTION (to_context
);
7078 if (DECL_CONTEXT (t
) == to_context
)
7082 tree
&loc
= vars_map
->get_or_insert (t
, &existed
);
7088 new_t
= copy_var_decl (t
, DECL_NAME (t
), TREE_TYPE (t
));
7089 add_local_decl (f
, new_t
);
7093 gcc_assert (TREE_CODE (t
) == CONST_DECL
);
7094 new_t
= copy_node (t
);
7096 DECL_CONTEXT (new_t
) = to_context
;
7107 /* Creates an ssa name in TO_CONTEXT equivalent to NAME.
7108 VARS_MAP maps old ssa names and var_decls to the new ones. */
7111 replace_ssa_name (tree name
, hash_map
<tree
, tree
> *vars_map
,
7116 gcc_assert (!virtual_operand_p (name
));
7118 tree
*loc
= vars_map
->get (name
);
7122 tree decl
= SSA_NAME_VAR (name
);
7125 gcc_assert (!SSA_NAME_IS_DEFAULT_DEF (name
));
7126 replace_by_duplicate_decl (&decl
, vars_map
, to_context
);
7127 new_name
= make_ssa_name_fn (DECL_STRUCT_FUNCTION (to_context
),
7128 decl
, SSA_NAME_DEF_STMT (name
));
7131 new_name
= copy_ssa_name_fn (DECL_STRUCT_FUNCTION (to_context
),
7132 name
, SSA_NAME_DEF_STMT (name
));
7134 /* Now that we've used the def stmt to define new_name, make sure it
7135 doesn't define name anymore. */
7136 SSA_NAME_DEF_STMT (name
) = NULL
;
7138 vars_map
->put (name
, new_name
);
7152 hash_map
<tree
, tree
> *vars_map
;
7153 htab_t new_label_map
;
7154 hash_map
<void *, void *> *eh_map
;
7158 /* Helper for move_block_to_fn. Set TREE_BLOCK in every expression
7159 contained in *TP if it has been ORIG_BLOCK previously and change the
7160 DECL_CONTEXT of every local variable referenced in *TP. */
7163 move_stmt_op (tree
*tp
, int *walk_subtrees
, void *data
)
7165 struct walk_stmt_info
*wi
= (struct walk_stmt_info
*) data
;
7166 struct move_stmt_d
*p
= (struct move_stmt_d
*) wi
->info
;
7171 tree block
= TREE_BLOCK (t
);
7172 if (block
== NULL_TREE
)
7174 else if (block
== p
->orig_block
7175 || p
->orig_block
== NULL_TREE
)
7177 /* tree_node_can_be_shared says we can share invariant
7178 addresses but unshare_expr copies them anyways. Make sure
7179 to unshare before adjusting the block in place - we do not
7180 always see a copy here. */
7181 if (TREE_CODE (t
) == ADDR_EXPR
7182 && is_gimple_min_invariant (t
))
7183 *tp
= t
= unshare_expr (t
);
7184 TREE_SET_BLOCK (t
, p
->new_block
);
7186 else if (flag_checking
)
7188 while (block
&& TREE_CODE (block
) == BLOCK
&& block
!= p
->orig_block
)
7189 block
= BLOCK_SUPERCONTEXT (block
);
7190 gcc_assert (block
== p
->orig_block
);
7193 else if (DECL_P (t
) || TREE_CODE (t
) == SSA_NAME
)
7195 if (TREE_CODE (t
) == SSA_NAME
)
7196 *tp
= replace_ssa_name (t
, p
->vars_map
, p
->to_context
);
7197 else if (TREE_CODE (t
) == PARM_DECL
7198 && gimple_in_ssa_p (cfun
))
7199 *tp
= *(p
->vars_map
->get (t
));
7200 else if (TREE_CODE (t
) == LABEL_DECL
)
7202 if (p
->new_label_map
)
7204 struct tree_map in
, *out
;
7206 out
= (struct tree_map
*)
7207 htab_find_with_hash (p
->new_label_map
, &in
, DECL_UID (t
));
7212 /* For FORCED_LABELs we can end up with references from other
7213 functions if some SESE regions are outlined. It is UB to
7214 jump in between them, but they could be used just for printing
7215 addresses etc. In that case, DECL_CONTEXT on the label should
7216 be the function containing the glabel stmt with that LABEL_DECL,
7217 rather than whatever function a reference to the label was seen
7219 if (!FORCED_LABEL (t
) && !DECL_NONLOCAL (t
))
7220 DECL_CONTEXT (t
) = p
->to_context
;
7222 else if (p
->remap_decls_p
)
7224 /* Replace T with its duplicate. T should no longer appear in the
7225 parent function, so this looks wasteful; however, it may appear
7226 in referenced_vars, and more importantly, as virtual operands of
7227 statements, and in alias lists of other variables. It would be
7228 quite difficult to expunge it from all those places. ??? It might
7229 suffice to do this for addressable variables. */
7230 if ((VAR_P (t
) && !is_global_var (t
))
7231 || TREE_CODE (t
) == CONST_DECL
)
7232 replace_by_duplicate_decl (tp
, p
->vars_map
, p
->to_context
);
7236 else if (TYPE_P (t
))
7242 /* Helper for move_stmt_r. Given an EH region number for the source
7243 function, map that to the duplicate EH regio number in the dest. */
7246 move_stmt_eh_region_nr (int old_nr
, struct move_stmt_d
*p
)
7248 eh_region old_r
, new_r
;
7250 old_r
= get_eh_region_from_number (old_nr
);
7251 new_r
= static_cast<eh_region
> (*p
->eh_map
->get (old_r
));
7253 return new_r
->index
;
7256 /* Similar, but operate on INTEGER_CSTs. */
7259 move_stmt_eh_region_tree_nr (tree old_t_nr
, struct move_stmt_d
*p
)
7263 old_nr
= tree_to_shwi (old_t_nr
);
7264 new_nr
= move_stmt_eh_region_nr (old_nr
, p
);
7266 return build_int_cst (integer_type_node
, new_nr
);
7269 /* Like move_stmt_op, but for gimple statements.
7271 Helper for move_block_to_fn. Set GIMPLE_BLOCK in every expression
7272 contained in the current statement in *GSI_P and change the
7273 DECL_CONTEXT of every local variable referenced in the current
7277 move_stmt_r (gimple_stmt_iterator
*gsi_p
, bool *handled_ops_p
,
7278 struct walk_stmt_info
*wi
)
7280 struct move_stmt_d
*p
= (struct move_stmt_d
*) wi
->info
;
7281 gimple
*stmt
= gsi_stmt (*gsi_p
);
7282 tree block
= gimple_block (stmt
);
7284 if (block
== p
->orig_block
7285 || (p
->orig_block
== NULL_TREE
7286 && block
!= NULL_TREE
))
7287 gimple_set_block (stmt
, p
->new_block
);
7289 switch (gimple_code (stmt
))
7292 /* Remap the region numbers for __builtin_eh_{pointer,filter}. */
7294 tree r
, fndecl
= gimple_call_fndecl (stmt
);
7295 if (fndecl
&& fndecl_built_in_p (fndecl
, BUILT_IN_NORMAL
))
7296 switch (DECL_FUNCTION_CODE (fndecl
))
7298 case BUILT_IN_EH_COPY_VALUES
:
7299 r
= gimple_call_arg (stmt
, 1);
7300 r
= move_stmt_eh_region_tree_nr (r
, p
);
7301 gimple_call_set_arg (stmt
, 1, r
);
7304 case BUILT_IN_EH_POINTER
:
7305 case BUILT_IN_EH_FILTER
:
7306 r
= gimple_call_arg (stmt
, 0);
7307 r
= move_stmt_eh_region_tree_nr (r
, p
);
7308 gimple_call_set_arg (stmt
, 0, r
);
7319 gresx
*resx_stmt
= as_a
<gresx
*> (stmt
);
7320 int r
= gimple_resx_region (resx_stmt
);
7321 r
= move_stmt_eh_region_nr (r
, p
);
7322 gimple_resx_set_region (resx_stmt
, r
);
7326 case GIMPLE_EH_DISPATCH
:
7328 geh_dispatch
*eh_dispatch_stmt
= as_a
<geh_dispatch
*> (stmt
);
7329 int r
= gimple_eh_dispatch_region (eh_dispatch_stmt
);
7330 r
= move_stmt_eh_region_nr (r
, p
);
7331 gimple_eh_dispatch_set_region (eh_dispatch_stmt
, r
);
7335 case GIMPLE_OMP_RETURN
:
7336 case GIMPLE_OMP_CONTINUE
:
7341 /* For FORCED_LABEL, move_stmt_op doesn't adjust DECL_CONTEXT,
7342 so that such labels can be referenced from other regions.
7343 Make sure to update it when seeing a GIMPLE_LABEL though,
7344 that is the owner of the label. */
7345 walk_gimple_op (stmt
, move_stmt_op
, wi
);
7346 *handled_ops_p
= true;
7347 tree label
= gimple_label_label (as_a
<glabel
*> (stmt
));
7348 if (FORCED_LABEL (label
) || DECL_NONLOCAL (label
))
7349 DECL_CONTEXT (label
) = p
->to_context
;
7354 if (is_gimple_omp (stmt
))
7356 /* Do not remap variables inside OMP directives. Variables
7357 referenced in clauses and directive header belong to the
7358 parent function and should not be moved into the child
7360 bool save_remap_decls_p
= p
->remap_decls_p
;
7361 p
->remap_decls_p
= false;
7362 *handled_ops_p
= true;
7364 walk_gimple_seq_mod (gimple_omp_body_ptr (stmt
), move_stmt_r
,
7367 p
->remap_decls_p
= save_remap_decls_p
;
7375 /* Move basic block BB from function CFUN to function DEST_FN. The
7376 block is moved out of the original linked list and placed after
7377 block AFTER in the new list. Also, the block is removed from the
7378 original array of blocks and placed in DEST_FN's array of blocks.
7379 If UPDATE_EDGE_COUNT_P is true, the edge counts on both CFGs is
7380 updated to reflect the moved edges.
7382 The local variables are remapped to new instances, VARS_MAP is used
7383 to record the mapping. */
7386 move_block_to_fn (struct function
*dest_cfun
, basic_block bb
,
7387 basic_block after
, bool update_edge_count_p
,
7388 struct move_stmt_d
*d
)
7390 struct control_flow_graph
*cfg
;
7393 gimple_stmt_iterator si
;
7396 /* Remove BB from dominance structures. */
7397 delete_from_dominance_info (CDI_DOMINATORS
, bb
);
7399 /* Move BB from its current loop to the copy in the new function. */
7402 class loop
*new_loop
= (class loop
*)bb
->loop_father
->aux
;
7404 bb
->loop_father
= new_loop
;
7407 /* Link BB to the new linked list. */
7408 move_block_after (bb
, after
);
7410 /* Update the edge count in the corresponding flowgraphs. */
7411 if (update_edge_count_p
)
7412 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
7414 cfun
->cfg
->x_n_edges
--;
7415 dest_cfun
->cfg
->x_n_edges
++;
7418 /* Remove BB from the original basic block array. */
7419 (*cfun
->cfg
->x_basic_block_info
)[bb
->index
] = NULL
;
7420 cfun
->cfg
->x_n_basic_blocks
--;
7422 /* Grow DEST_CFUN's basic block array if needed. */
7423 cfg
= dest_cfun
->cfg
;
7424 cfg
->x_n_basic_blocks
++;
7425 if (bb
->index
>= cfg
->x_last_basic_block
)
7426 cfg
->x_last_basic_block
= bb
->index
+ 1;
7428 old_len
= vec_safe_length (cfg
->x_basic_block_info
);
7429 if ((unsigned) cfg
->x_last_basic_block
>= old_len
)
7430 vec_safe_grow_cleared (cfg
->x_basic_block_info
,
7431 cfg
->x_last_basic_block
+ 1);
7433 (*cfg
->x_basic_block_info
)[bb
->index
] = bb
;
7435 /* Remap the variables in phi nodes. */
7436 for (gphi_iterator psi
= gsi_start_phis (bb
);
7439 gphi
*phi
= psi
.phi ();
7441 tree op
= PHI_RESULT (phi
);
7445 if (virtual_operand_p (op
))
7447 /* Remove the phi nodes for virtual operands (alias analysis will be
7448 run for the new function, anyway). But replace all uses that
7449 might be outside of the region we move. */
7450 use_operand_p use_p
;
7451 imm_use_iterator iter
;
7453 FOR_EACH_IMM_USE_STMT (use_stmt
, iter
, op
)
7454 FOR_EACH_IMM_USE_ON_STMT (use_p
, iter
)
7455 SET_USE (use_p
, SSA_NAME_VAR (op
));
7456 remove_phi_node (&psi
, true);
7460 SET_PHI_RESULT (phi
,
7461 replace_ssa_name (op
, d
->vars_map
, dest_cfun
->decl
));
7462 FOR_EACH_PHI_ARG (use
, phi
, oi
, SSA_OP_USE
)
7464 op
= USE_FROM_PTR (use
);
7465 if (TREE_CODE (op
) == SSA_NAME
)
7466 SET_USE (use
, replace_ssa_name (op
, d
->vars_map
, dest_cfun
->decl
));
7469 for (i
= 0; i
< EDGE_COUNT (bb
->preds
); i
++)
7471 location_t locus
= gimple_phi_arg_location (phi
, i
);
7472 tree block
= LOCATION_BLOCK (locus
);
7474 if (locus
== UNKNOWN_LOCATION
)
7476 if (d
->orig_block
== NULL_TREE
|| block
== d
->orig_block
)
7478 locus
= set_block (locus
, d
->new_block
);
7479 gimple_phi_arg_set_location (phi
, i
, locus
);
7486 for (si
= gsi_start_bb (bb
); !gsi_end_p (si
); gsi_next (&si
))
7488 gimple
*stmt
= gsi_stmt (si
);
7489 struct walk_stmt_info wi
;
7491 memset (&wi
, 0, sizeof (wi
));
7493 walk_gimple_stmt (&si
, move_stmt_r
, move_stmt_op
, &wi
);
7495 if (glabel
*label_stmt
= dyn_cast
<glabel
*> (stmt
))
7497 tree label
= gimple_label_label (label_stmt
);
7498 int uid
= LABEL_DECL_UID (label
);
7500 gcc_assert (uid
> -1);
7502 old_len
= vec_safe_length (cfg
->x_label_to_block_map
);
7503 if (old_len
<= (unsigned) uid
)
7504 vec_safe_grow_cleared (cfg
->x_label_to_block_map
, uid
+ 1);
7506 (*cfg
->x_label_to_block_map
)[uid
] = bb
;
7507 (*cfun
->cfg
->x_label_to_block_map
)[uid
] = NULL
;
7509 gcc_assert (DECL_CONTEXT (label
) == dest_cfun
->decl
);
7511 if (uid
>= dest_cfun
->cfg
->last_label_uid
)
7512 dest_cfun
->cfg
->last_label_uid
= uid
+ 1;
7515 maybe_duplicate_eh_stmt_fn (dest_cfun
, stmt
, cfun
, stmt
, d
->eh_map
, 0);
7516 remove_stmt_from_eh_lp_fn (cfun
, stmt
);
7518 gimple_duplicate_stmt_histograms (dest_cfun
, stmt
, cfun
, stmt
);
7519 gimple_remove_stmt_histograms (cfun
, stmt
);
7521 /* We cannot leave any operands allocated from the operand caches of
7522 the current function. */
7523 free_stmt_operands (cfun
, stmt
);
7524 push_cfun (dest_cfun
);
7526 if (is_gimple_call (stmt
))
7527 notice_special_calls (as_a
<gcall
*> (stmt
));
7531 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
7532 if (e
->goto_locus
!= UNKNOWN_LOCATION
)
7534 tree block
= LOCATION_BLOCK (e
->goto_locus
);
7535 if (d
->orig_block
== NULL_TREE
7536 || block
== d
->orig_block
)
7537 e
->goto_locus
= set_block (e
->goto_locus
, d
->new_block
);
7541 /* Examine the statements in BB (which is in SRC_CFUN); find and return
7542 the outermost EH region. Use REGION as the incoming base EH region.
7543 If there is no single outermost region, return NULL and set *ALL to
7547 find_outermost_region_in_block (struct function
*src_cfun
,
7548 basic_block bb
, eh_region region
,
7551 gimple_stmt_iterator si
;
7553 for (si
= gsi_start_bb (bb
); !gsi_end_p (si
); gsi_next (&si
))
7555 gimple
*stmt
= gsi_stmt (si
);
7556 eh_region stmt_region
;
7559 lp_nr
= lookup_stmt_eh_lp_fn (src_cfun
, stmt
);
7560 stmt_region
= get_eh_region_from_lp_number_fn (src_cfun
, lp_nr
);
7564 region
= stmt_region
;
7565 else if (stmt_region
!= region
)
7567 region
= eh_region_outermost (src_cfun
, stmt_region
, region
);
7581 new_label_mapper (tree decl
, void *data
)
7583 htab_t hash
= (htab_t
) data
;
7587 gcc_assert (TREE_CODE (decl
) == LABEL_DECL
);
7589 m
= XNEW (struct tree_map
);
7590 m
->hash
= DECL_UID (decl
);
7591 m
->base
.from
= decl
;
7592 m
->to
= create_artificial_label (UNKNOWN_LOCATION
);
7593 LABEL_DECL_UID (m
->to
) = LABEL_DECL_UID (decl
);
7594 if (LABEL_DECL_UID (m
->to
) >= cfun
->cfg
->last_label_uid
)
7595 cfun
->cfg
->last_label_uid
= LABEL_DECL_UID (m
->to
) + 1;
7597 slot
= htab_find_slot_with_hash (hash
, m
, m
->hash
, INSERT
);
7598 gcc_assert (*slot
== NULL
);
7605 /* Tree walker to replace the decls used inside value expressions by
7609 replace_block_vars_by_duplicates_1 (tree
*tp
, int *walk_subtrees
, void *data
)
7611 struct replace_decls_d
*rd
= (struct replace_decls_d
*)data
;
7613 switch (TREE_CODE (*tp
))
7618 replace_by_duplicate_decl (tp
, rd
->vars_map
, rd
->to_context
);
7624 if (IS_TYPE_OR_DECL_P (*tp
))
7625 *walk_subtrees
= false;
7630 /* Change DECL_CONTEXT of all BLOCK_VARS in block, including
7634 replace_block_vars_by_duplicates (tree block
, hash_map
<tree
, tree
> *vars_map
,
7639 for (tp
= &BLOCK_VARS (block
); *tp
; tp
= &DECL_CHAIN (*tp
))
7642 if (!VAR_P (t
) && TREE_CODE (t
) != CONST_DECL
)
7644 replace_by_duplicate_decl (&t
, vars_map
, to_context
);
7647 if (VAR_P (*tp
) && DECL_HAS_VALUE_EXPR_P (*tp
))
7649 tree x
= DECL_VALUE_EXPR (*tp
);
7650 struct replace_decls_d rd
= { vars_map
, to_context
};
7652 walk_tree (&x
, replace_block_vars_by_duplicates_1
, &rd
, NULL
);
7653 SET_DECL_VALUE_EXPR (t
, x
);
7654 DECL_HAS_VALUE_EXPR_P (t
) = 1;
7656 DECL_CHAIN (t
) = DECL_CHAIN (*tp
);
7661 for (block
= BLOCK_SUBBLOCKS (block
); block
; block
= BLOCK_CHAIN (block
))
7662 replace_block_vars_by_duplicates (block
, vars_map
, to_context
);
7665 /* Fixup the loop arrays and numbers after moving LOOP and its subloops
7669 fixup_loop_arrays_after_move (struct function
*fn1
, struct function
*fn2
,
7672 /* Discard it from the old loop array. */
7673 (*get_loops (fn1
))[loop
->num
] = NULL
;
7675 /* Place it in the new loop array, assigning it a new number. */
7676 loop
->num
= number_of_loops (fn2
);
7677 vec_safe_push (loops_for_fn (fn2
)->larray
, loop
);
7679 /* Recurse to children. */
7680 for (loop
= loop
->inner
; loop
; loop
= loop
->next
)
7681 fixup_loop_arrays_after_move (fn1
, fn2
, loop
);
7684 /* Verify that the blocks in BBS_P are a single-entry, single-exit region
7685 delimited by ENTRY_BB and EXIT_BB, possibly containing noreturn blocks. */
7688 verify_sese (basic_block entry
, basic_block exit
, vec
<basic_block
> *bbs_p
)
7693 bitmap bbs
= BITMAP_ALLOC (NULL
);
7696 gcc_assert (entry
!= NULL
);
7697 gcc_assert (entry
!= exit
);
7698 gcc_assert (bbs_p
!= NULL
);
7700 gcc_assert (bbs_p
->length () > 0);
7702 FOR_EACH_VEC_ELT (*bbs_p
, i
, bb
)
7703 bitmap_set_bit (bbs
, bb
->index
);
7705 gcc_assert (bitmap_bit_p (bbs
, entry
->index
));
7706 gcc_assert (exit
== NULL
|| bitmap_bit_p (bbs
, exit
->index
));
7708 FOR_EACH_VEC_ELT (*bbs_p
, i
, bb
)
7712 gcc_assert (single_pred_p (entry
));
7713 gcc_assert (!bitmap_bit_p (bbs
, single_pred (entry
)->index
));
7716 for (ei
= ei_start (bb
->preds
); !ei_end_p (ei
); ei_next (&ei
))
7719 gcc_assert (bitmap_bit_p (bbs
, e
->src
->index
));
7724 gcc_assert (single_succ_p (exit
));
7725 gcc_assert (!bitmap_bit_p (bbs
, single_succ (exit
)->index
));
7728 for (ei
= ei_start (bb
->succs
); !ei_end_p (ei
); ei_next (&ei
))
7731 gcc_assert (bitmap_bit_p (bbs
, e
->dest
->index
));
7738 /* If FROM is an SSA_NAME, mark the version in bitmap DATA. */
7741 gather_ssa_name_hash_map_from (tree
const &from
, tree
const &, void *data
)
7743 bitmap release_names
= (bitmap
)data
;
7745 if (TREE_CODE (from
) != SSA_NAME
)
7748 bitmap_set_bit (release_names
, SSA_NAME_VERSION (from
));
7752 /* Return LOOP_DIST_ALIAS call if present in BB. */
7755 find_loop_dist_alias (basic_block bb
)
7757 gimple_stmt_iterator gsi
= gsi_last_bb (bb
);
7758 if (!safe_is_a
<gcond
*> (*gsi
))
7762 if (gsi_end_p (gsi
))
7765 gimple
*g
= gsi_stmt (gsi
);
7766 if (gimple_call_internal_p (g
, IFN_LOOP_DIST_ALIAS
))
7771 /* Fold loop internal call G like IFN_LOOP_VECTORIZED/IFN_LOOP_DIST_ALIAS
7772 to VALUE and update any immediate uses of it's LHS. */
7775 fold_loop_internal_call (gimple
*g
, tree value
)
7777 tree lhs
= gimple_call_lhs (g
);
7778 use_operand_p use_p
;
7779 imm_use_iterator iter
;
7781 gimple_stmt_iterator gsi
= gsi_for_stmt (g
);
7783 replace_call_with_value (&gsi
, value
);
7784 FOR_EACH_IMM_USE_STMT (use_stmt
, iter
, lhs
)
7786 FOR_EACH_IMM_USE_ON_STMT (use_p
, iter
)
7787 SET_USE (use_p
, value
);
7788 update_stmt (use_stmt
);
7789 /* If we turn conditional to constant, scale profile counts.
7790 We know that the conditional was created by loop distribution
7791 and all basic blocks dominated by the taken edge are part of
7792 the loop distributed. */
7793 if (gimple_code (use_stmt
) == GIMPLE_COND
)
7795 edge true_edge
, false_edge
;
7796 extract_true_false_edges_from_block (gimple_bb (use_stmt
),
7797 &true_edge
, &false_edge
);
7798 edge taken_edge
= NULL
, other_edge
= NULL
;
7799 if (gimple_cond_true_p (as_a
<gcond
*>(use_stmt
)))
7801 taken_edge
= true_edge
;
7802 other_edge
= false_edge
;
7804 else if (gimple_cond_false_p (as_a
<gcond
*>(use_stmt
)))
7806 taken_edge
= false_edge
;
7807 other_edge
= true_edge
;
7810 && !(taken_edge
->probability
== profile_probability::always ()))
7812 profile_count old_count
= taken_edge
->count ();
7813 profile_count new_count
= taken_edge
->src
->count
;
7814 taken_edge
->probability
= profile_probability::always ();
7815 other_edge
->probability
= profile_probability::never ();
7816 /* If we have multiple predecessors, we can't use the dominance
7817 test. This should not happen as the guarded code should
7818 start with pre-header. */
7819 gcc_assert (single_pred_edge (taken_edge
->dest
));
7820 if (old_count
.nonzero_p ())
7822 taken_edge
->dest
->count
7823 = taken_edge
->dest
->count
.apply_scale (new_count
,
7825 scale_strictly_dominated_blocks (taken_edge
->dest
,
7826 new_count
, old_count
);
7833 /* Move a single-entry, single-exit region delimited by ENTRY_BB and
7834 EXIT_BB to function DEST_CFUN. The whole region is replaced by a
7835 single basic block in the original CFG and the new basic block is
7836 returned. DEST_CFUN must not have a CFG yet.
7838 Note that the region need not be a pure SESE region. Blocks inside
7839 the region may contain calls to abort/exit. The only restriction
7840 is that ENTRY_BB should be the only entry point and it must
7843 Change TREE_BLOCK of all statements in ORIG_BLOCK to the new
7844 functions outermost BLOCK, move all subblocks of ORIG_BLOCK
7845 to the new function.
7847 All local variables referenced in the region are assumed to be in
7848 the corresponding BLOCK_VARS and unexpanded variable lists
7849 associated with DEST_CFUN.
7851 TODO: investigate whether we can reuse gimple_duplicate_sese_region to
7852 reimplement move_sese_region_to_fn by duplicating the region rather than
7856 move_sese_region_to_fn (struct function
*dest_cfun
, basic_block entry_bb
,
7857 basic_block exit_bb
, tree orig_block
)
7859 vec
<basic_block
> bbs
;
7860 basic_block dom_entry
= get_immediate_dominator (CDI_DOMINATORS
, entry_bb
);
7861 basic_block after
, bb
, *entry_pred
, *exit_succ
, abb
;
7862 struct function
*saved_cfun
= cfun
;
7863 int *entry_flag
, *exit_flag
;
7864 profile_probability
*entry_prob
, *exit_prob
;
7865 unsigned i
, num_entry_edges
, num_exit_edges
, num_nodes
;
7868 htab_t new_label_map
;
7869 hash_map
<void *, void *> *eh_map
;
7870 class loop
*loop
= entry_bb
->loop_father
;
7871 class loop
*loop0
= get_loop (saved_cfun
, 0);
7872 struct move_stmt_d d
;
7874 /* If ENTRY does not strictly dominate EXIT, this cannot be an SESE
7876 gcc_assert (entry_bb
!= exit_bb
7878 || dominated_by_p (CDI_DOMINATORS
, exit_bb
, entry_bb
)));
7880 /* Collect all the blocks in the region. Manually add ENTRY_BB
7881 because it won't be added by dfs_enumerate_from. */
7883 bbs
.safe_push (entry_bb
);
7884 gather_blocks_in_sese_region (entry_bb
, exit_bb
, &bbs
);
7887 verify_sese (entry_bb
, exit_bb
, &bbs
);
7889 /* The blocks that used to be dominated by something in BBS will now be
7890 dominated by the new block. */
7891 auto_vec
<basic_block
> dom_bbs
= get_dominated_by_region (CDI_DOMINATORS
,
7895 /* Detach ENTRY_BB and EXIT_BB from CFUN->CFG. We need to remember
7896 the predecessor edges to ENTRY_BB and the successor edges to
7897 EXIT_BB so that we can re-attach them to the new basic block that
7898 will replace the region. */
7899 num_entry_edges
= EDGE_COUNT (entry_bb
->preds
);
7900 entry_pred
= XNEWVEC (basic_block
, num_entry_edges
);
7901 entry_flag
= XNEWVEC (int, num_entry_edges
);
7902 entry_prob
= XNEWVEC (profile_probability
, num_entry_edges
);
7904 for (ei
= ei_start (entry_bb
->preds
); (e
= ei_safe_edge (ei
)) != NULL
;)
7906 entry_prob
[i
] = e
->probability
;
7907 entry_flag
[i
] = e
->flags
;
7908 entry_pred
[i
++] = e
->src
;
7914 num_exit_edges
= EDGE_COUNT (exit_bb
->succs
);
7915 exit_succ
= XNEWVEC (basic_block
, num_exit_edges
);
7916 exit_flag
= XNEWVEC (int, num_exit_edges
);
7917 exit_prob
= XNEWVEC (profile_probability
, num_exit_edges
);
7919 for (ei
= ei_start (exit_bb
->succs
); (e
= ei_safe_edge (ei
)) != NULL
;)
7921 exit_prob
[i
] = e
->probability
;
7922 exit_flag
[i
] = e
->flags
;
7923 exit_succ
[i
++] = e
->dest
;
7935 /* Switch context to the child function to initialize DEST_FN's CFG. */
7936 gcc_assert (dest_cfun
->cfg
== NULL
);
7937 push_cfun (dest_cfun
);
7939 init_empty_tree_cfg ();
7941 /* Initialize EH information for the new function. */
7943 new_label_map
= NULL
;
7946 eh_region region
= NULL
;
7949 FOR_EACH_VEC_ELT (bbs
, i
, bb
)
7951 region
= find_outermost_region_in_block (saved_cfun
, bb
, region
, &all
);
7956 init_eh_for_function ();
7957 if (region
!= NULL
|| all
)
7959 new_label_map
= htab_create (17, tree_map_hash
, tree_map_eq
, free
);
7960 eh_map
= duplicate_eh_regions (saved_cfun
, region
, 0,
7961 new_label_mapper
, new_label_map
);
7965 /* Initialize an empty loop tree. */
7966 struct loops
*loops
= ggc_cleared_alloc
<struct loops
> ();
7967 init_loops_structure (dest_cfun
, loops
, 1);
7968 loops
->state
= LOOPS_MAY_HAVE_MULTIPLE_LATCHES
;
7969 set_loops_for_fn (dest_cfun
, loops
);
7971 vec
<loop_p
, va_gc
> *larray
= get_loops (saved_cfun
)->copy ();
7973 /* Move the outlined loop tree part. */
7974 num_nodes
= bbs
.length ();
7975 FOR_EACH_VEC_ELT (bbs
, i
, bb
)
7977 if (bb
->loop_father
->header
== bb
)
7979 class loop
*this_loop
= bb
->loop_father
;
7980 /* Avoid the need to remap SSA names used in nb_iterations. */
7981 free_numbers_of_iterations_estimates (this_loop
);
7982 class loop
*outer
= loop_outer (this_loop
);
7984 /* If the SESE region contains some bbs ending with
7985 a noreturn call, those are considered to belong
7986 to the outermost loop in saved_cfun, rather than
7987 the entry_bb's loop_father. */
7991 num_nodes
-= this_loop
->num_nodes
;
7992 flow_loop_tree_node_remove (bb
->loop_father
);
7993 flow_loop_tree_node_add (get_loop (dest_cfun
, 0), this_loop
);
7994 fixup_loop_arrays_after_move (saved_cfun
, cfun
, this_loop
);
7997 else if (bb
->loop_father
== loop0
&& loop0
!= loop
)
8000 /* Remove loop exits from the outlined region. */
8001 if (loops_for_fn (saved_cfun
)->exits
)
8002 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
8004 struct loops
*l
= loops_for_fn (saved_cfun
);
8006 = l
->exits
->find_slot_with_hash (e
, htab_hash_pointer (e
),
8009 l
->exits
->clear_slot (slot
);
8013 /* Adjust the number of blocks in the tree root of the outlined part. */
8014 get_loop (dest_cfun
, 0)->num_nodes
= bbs
.length () + 2;
8016 /* Setup a mapping to be used by move_block_to_fn. */
8017 loop
->aux
= current_loops
->tree_root
;
8018 loop0
->aux
= current_loops
->tree_root
;
8020 /* Fix up orig_loop_num. If the block referenced in it has been moved
8021 to dest_cfun, update orig_loop_num field, otherwise clear it. */
8022 signed char *moved_orig_loop_num
= NULL
;
8023 for (auto dloop
: loops_list (dest_cfun
, 0))
8024 if (dloop
->orig_loop_num
)
8026 if (moved_orig_loop_num
== NULL
)
8028 = XCNEWVEC (signed char, vec_safe_length (larray
));
8029 if ((*larray
)[dloop
->orig_loop_num
] != NULL
8030 && get_loop (saved_cfun
, dloop
->orig_loop_num
) == NULL
)
8032 if (moved_orig_loop_num
[dloop
->orig_loop_num
] >= 0
8033 && moved_orig_loop_num
[dloop
->orig_loop_num
] < 2)
8034 moved_orig_loop_num
[dloop
->orig_loop_num
]++;
8035 dloop
->orig_loop_num
= (*larray
)[dloop
->orig_loop_num
]->num
;
8039 moved_orig_loop_num
[dloop
->orig_loop_num
] = -1;
8040 dloop
->orig_loop_num
= 0;
8045 if (moved_orig_loop_num
)
8047 FOR_EACH_VEC_ELT (bbs
, i
, bb
)
8049 gimple
*g
= find_loop_dist_alias (bb
);
8053 int orig_loop_num
= tree_to_shwi (gimple_call_arg (g
, 0));
8054 gcc_assert (orig_loop_num
8055 && (unsigned) orig_loop_num
< vec_safe_length (larray
));
8056 if (moved_orig_loop_num
[orig_loop_num
] == 2)
8058 /* If we have moved both loops with this orig_loop_num into
8059 dest_cfun and the LOOP_DIST_ALIAS call is being moved there
8060 too, update the first argument. */
8061 gcc_assert ((*larray
)[orig_loop_num
] != NULL
8062 && (get_loop (saved_cfun
, orig_loop_num
) == NULL
));
8063 tree t
= build_int_cst (integer_type_node
,
8064 (*larray
)[orig_loop_num
]->num
);
8065 gimple_call_set_arg (g
, 0, t
);
8067 /* Make sure the following loop will not update it. */
8068 moved_orig_loop_num
[orig_loop_num
] = 0;
8071 /* Otherwise at least one of the loops stayed in saved_cfun.
8072 Remove the LOOP_DIST_ALIAS call. */
8073 fold_loop_internal_call (g
, gimple_call_arg (g
, 1));
8075 FOR_EACH_BB_FN (bb
, saved_cfun
)
8077 gimple
*g
= find_loop_dist_alias (bb
);
8080 int orig_loop_num
= tree_to_shwi (gimple_call_arg (g
, 0));
8081 gcc_assert (orig_loop_num
8082 && (unsigned) orig_loop_num
< vec_safe_length (larray
));
8083 if (moved_orig_loop_num
[orig_loop_num
])
8084 /* LOOP_DIST_ALIAS call remained in saved_cfun, if at least one
8085 of the corresponding loops was moved, remove it. */
8086 fold_loop_internal_call (g
, gimple_call_arg (g
, 1));
8088 XDELETEVEC (moved_orig_loop_num
);
8092 /* Move blocks from BBS into DEST_CFUN. */
8093 gcc_assert (bbs
.length () >= 2);
8094 after
= dest_cfun
->cfg
->x_entry_block_ptr
;
8095 hash_map
<tree
, tree
> vars_map
;
8097 memset (&d
, 0, sizeof (d
));
8098 d
.orig_block
= orig_block
;
8099 d
.new_block
= DECL_INITIAL (dest_cfun
->decl
);
8100 d
.from_context
= cfun
->decl
;
8101 d
.to_context
= dest_cfun
->decl
;
8102 d
.vars_map
= &vars_map
;
8103 d
.new_label_map
= new_label_map
;
8105 d
.remap_decls_p
= true;
8107 if (gimple_in_ssa_p (cfun
))
8108 for (tree arg
= DECL_ARGUMENTS (d
.to_context
); arg
; arg
= DECL_CHAIN (arg
))
8110 tree narg
= make_ssa_name_fn (dest_cfun
, arg
, gimple_build_nop ());
8111 set_ssa_default_def (dest_cfun
, arg
, narg
);
8112 vars_map
.put (arg
, narg
);
8115 FOR_EACH_VEC_ELT (bbs
, i
, bb
)
8117 /* No need to update edge counts on the last block. It has
8118 already been updated earlier when we detached the region from
8119 the original CFG. */
8120 move_block_to_fn (dest_cfun
, bb
, after
, bb
!= exit_bb
, &d
);
8124 /* Adjust the maximum clique used. */
8125 dest_cfun
->last_clique
= saved_cfun
->last_clique
;
8129 /* Loop sizes are no longer correct, fix them up. */
8130 loop
->num_nodes
-= num_nodes
;
8131 for (class loop
*outer
= loop_outer (loop
);
8132 outer
; outer
= loop_outer (outer
))
8133 outer
->num_nodes
-= num_nodes
;
8134 loop0
->num_nodes
-= bbs
.length () - num_nodes
;
8136 if (saved_cfun
->has_simduid_loops
|| saved_cfun
->has_force_vectorize_loops
)
8139 for (i
= 0; vec_safe_iterate (loops
->larray
, i
, &aloop
); i
++)
8144 replace_by_duplicate_decl (&aloop
->simduid
, d
.vars_map
,
8146 dest_cfun
->has_simduid_loops
= true;
8148 if (aloop
->force_vectorize
)
8149 dest_cfun
->has_force_vectorize_loops
= true;
8153 /* Rewire BLOCK_SUBBLOCKS of orig_block. */
8157 gcc_assert (BLOCK_SUBBLOCKS (DECL_INITIAL (dest_cfun
->decl
))
8159 BLOCK_SUBBLOCKS (DECL_INITIAL (dest_cfun
->decl
))
8160 = BLOCK_SUBBLOCKS (orig_block
);
8161 for (block
= BLOCK_SUBBLOCKS (orig_block
);
8162 block
; block
= BLOCK_CHAIN (block
))
8163 BLOCK_SUPERCONTEXT (block
) = DECL_INITIAL (dest_cfun
->decl
);
8164 BLOCK_SUBBLOCKS (orig_block
) = NULL_TREE
;
8167 replace_block_vars_by_duplicates (DECL_INITIAL (dest_cfun
->decl
),
8168 &vars_map
, dest_cfun
->decl
);
8171 htab_delete (new_label_map
);
8175 /* We need to release ssa-names in a defined order, so first find them,
8176 and then iterate in ascending version order. */
8177 bitmap release_names
= BITMAP_ALLOC (NULL
);
8178 vars_map
.traverse
<void *, gather_ssa_name_hash_map_from
> (release_names
);
8180 EXECUTE_IF_SET_IN_BITMAP (release_names
, 0, i
, bi
)
8181 release_ssa_name (ssa_name (i
));
8182 BITMAP_FREE (release_names
);
8184 /* Rewire the entry and exit blocks. The successor to the entry
8185 block turns into the successor of DEST_FN's ENTRY_BLOCK_PTR in
8186 the child function. Similarly, the predecessor of DEST_FN's
8187 EXIT_BLOCK_PTR turns into the predecessor of EXIT_BLOCK_PTR. We
8188 need to switch CFUN between DEST_CFUN and SAVED_CFUN so that the
8189 various CFG manipulation function get to the right CFG.
8191 FIXME, this is silly. The CFG ought to become a parameter to
8193 push_cfun (dest_cfun
);
8194 ENTRY_BLOCK_PTR_FOR_FN (cfun
)->count
= entry_bb
->count
;
8195 make_single_succ_edge (ENTRY_BLOCK_PTR_FOR_FN (cfun
), entry_bb
, EDGE_FALLTHRU
);
8198 make_single_succ_edge (exit_bb
, EXIT_BLOCK_PTR_FOR_FN (cfun
), 0);
8199 EXIT_BLOCK_PTR_FOR_FN (cfun
)->count
= exit_bb
->count
;
8202 EXIT_BLOCK_PTR_FOR_FN (cfun
)->count
= profile_count::zero ();
8205 /* Back in the original function, the SESE region has disappeared,
8206 create a new basic block in its place. */
8207 bb
= create_empty_bb (entry_pred
[0]);
8209 add_bb_to_loop (bb
, loop
);
8210 profile_count count
= profile_count::zero ();
8211 for (i
= 0; i
< num_entry_edges
; i
++)
8213 e
= make_edge (entry_pred
[i
], bb
, entry_flag
[i
]);
8214 e
->probability
= entry_prob
[i
];
8215 count
+= e
->count ();
8219 for (i
= 0; i
< num_exit_edges
; i
++)
8221 e
= make_edge (bb
, exit_succ
[i
], exit_flag
[i
]);
8222 e
->probability
= exit_prob
[i
];
8225 set_immediate_dominator (CDI_DOMINATORS
, bb
, dom_entry
);
8226 FOR_EACH_VEC_ELT (dom_bbs
, i
, abb
)
8227 set_immediate_dominator (CDI_DOMINATORS
, abb
, bb
);
8243 /* Dump default def DEF to file FILE using FLAGS and indentation
8247 dump_default_def (FILE *file
, tree def
, int spc
, dump_flags_t flags
)
8249 for (int i
= 0; i
< spc
; ++i
)
8250 fprintf (file
, " ");
8251 dump_ssaname_info_to_file (file
, def
, spc
);
8253 print_generic_expr (file
, TREE_TYPE (def
), flags
);
8254 fprintf (file
, " ");
8255 print_generic_expr (file
, def
, flags
);
8256 fprintf (file
, " = ");
8257 print_generic_expr (file
, SSA_NAME_VAR (def
), flags
);
8258 fprintf (file
, ";\n");
8261 /* Print no_sanitize attribute to FILE for a given attribute VALUE. */
8264 print_no_sanitize_attr_value (FILE *file
, tree value
)
8266 unsigned int flags
= tree_to_uhwi (value
);
8268 for (int i
= 0; sanitizer_opts
[i
].name
!= NULL
; ++i
)
8270 if ((sanitizer_opts
[i
].flag
& flags
) == sanitizer_opts
[i
].flag
)
8273 fprintf (file
, " | ");
8274 fprintf (file
, "%s", sanitizer_opts
[i
].name
);
8280 /* Dump FUNCTION_DECL FN to file FILE using FLAGS (see TDF_* in dumpfile.h)
8284 dump_function_to_file (tree fndecl
, FILE *file
, dump_flags_t flags
)
8286 tree arg
, var
, old_current_fndecl
= current_function_decl
;
8287 struct function
*dsf
;
8288 bool ignore_topmost_bind
= false, any_var
= false;
8291 bool tmclone
= (TREE_CODE (fndecl
) == FUNCTION_DECL
8292 && decl_is_tm_clone (fndecl
));
8293 struct function
*fun
= DECL_STRUCT_FUNCTION (fndecl
);
8295 tree fntype
= TREE_TYPE (fndecl
);
8296 tree attrs
[] = { DECL_ATTRIBUTES (fndecl
), TYPE_ATTRIBUTES (fntype
) };
8298 for (int i
= 0; i
!= 2; ++i
)
8303 fprintf (file
, "__attribute__((");
8307 for (chain
= attrs
[i
]; chain
; first
= false, chain
= TREE_CHAIN (chain
))
8310 fprintf (file
, ", ");
8312 tree name
= get_attribute_name (chain
);
8313 print_generic_expr (file
, name
, dump_flags
);
8314 if (TREE_VALUE (chain
) != NULL_TREE
)
8316 fprintf (file
, " (");
8318 if (strstr (IDENTIFIER_POINTER (name
), "no_sanitize"))
8319 print_no_sanitize_attr_value (file
, TREE_VALUE (chain
));
8320 else if (!strcmp (IDENTIFIER_POINTER (name
),
8321 "omp declare variant base"))
8323 tree a
= TREE_VALUE (chain
);
8324 print_generic_expr (file
, TREE_PURPOSE (a
), dump_flags
);
8325 fprintf (file
, " match ");
8326 print_omp_context_selector (file
, TREE_VALUE (a
),
8330 print_generic_expr (file
, TREE_VALUE (chain
), dump_flags
);
8331 fprintf (file
, ")");
8335 fprintf (file
, "))\n");
8338 current_function_decl
= fndecl
;
8339 if (flags
& TDF_GIMPLE
)
8341 static bool hotness_bb_param_printed
= false;
8342 if (profile_info
!= NULL
8343 && !hotness_bb_param_printed
)
8345 hotness_bb_param_printed
= true;
8347 "/* --param=gimple-fe-computed-hot-bb-threshold=%" PRId64
8348 " */\n", get_hot_bb_threshold ());
8351 print_generic_expr (file
, TREE_TYPE (TREE_TYPE (fndecl
)),
8352 dump_flags
| TDF_SLIM
);
8353 fprintf (file
, " __GIMPLE (%s",
8354 (fun
->curr_properties
& PROP_ssa
) ? "ssa"
8355 : (fun
->curr_properties
& PROP_cfg
) ? "cfg"
8358 if (fun
&& fun
->cfg
)
8360 basic_block bb
= ENTRY_BLOCK_PTR_FOR_FN (fun
);
8361 if (bb
->count
.initialized_p ())
8362 fprintf (file
, ",%s(%" PRIu64
")",
8363 profile_quality_as_string (bb
->count
.quality ()),
8364 bb
->count
.value ());
8365 if (dump_flags
& TDF_UID
)
8366 fprintf (file
, ")\n%sD_%u (", function_name (fun
),
8369 fprintf (file
, ")\n%s (", function_name (fun
));
8374 print_generic_expr (file
, TREE_TYPE (fntype
), dump_flags
);
8375 if (dump_flags
& TDF_UID
)
8376 fprintf (file
, " %sD.%u %s(", function_name (fun
), DECL_UID (fndecl
),
8377 tmclone
? "[tm-clone] " : "");
8379 fprintf (file
, " %s %s(", function_name (fun
),
8380 tmclone
? "[tm-clone] " : "");
8383 arg
= DECL_ARGUMENTS (fndecl
);
8386 print_generic_expr (file
, TREE_TYPE (arg
), dump_flags
);
8387 fprintf (file
, " ");
8388 print_generic_expr (file
, arg
, dump_flags
);
8389 if (DECL_CHAIN (arg
))
8390 fprintf (file
, ", ");
8391 arg
= DECL_CHAIN (arg
);
8393 fprintf (file
, ")\n");
8395 dsf
= DECL_STRUCT_FUNCTION (fndecl
);
8396 if (dsf
&& (flags
& TDF_EH
))
8397 dump_eh_tree (file
, dsf
);
8399 if (flags
& TDF_RAW
&& !gimple_has_body_p (fndecl
))
8401 dump_node (fndecl
, TDF_SLIM
| flags
, file
);
8402 current_function_decl
= old_current_fndecl
;
8406 /* When GIMPLE is lowered, the variables are no longer available in
8407 BIND_EXPRs, so display them separately. */
8408 if (fun
&& fun
->decl
== fndecl
&& (fun
->curr_properties
& PROP_gimple_lcf
))
8411 ignore_topmost_bind
= true;
8413 fprintf (file
, "{\n");
8414 if (gimple_in_ssa_p (fun
)
8415 && (flags
& TDF_ALIAS
))
8417 for (arg
= DECL_ARGUMENTS (fndecl
); arg
!= NULL
;
8418 arg
= DECL_CHAIN (arg
))
8420 tree def
= ssa_default_def (fun
, arg
);
8422 dump_default_def (file
, def
, 2, flags
);
8425 tree res
= DECL_RESULT (fun
->decl
);
8426 if (res
!= NULL_TREE
8427 && DECL_BY_REFERENCE (res
))
8429 tree def
= ssa_default_def (fun
, res
);
8431 dump_default_def (file
, def
, 2, flags
);
8434 tree static_chain
= fun
->static_chain_decl
;
8435 if (static_chain
!= NULL_TREE
)
8437 tree def
= ssa_default_def (fun
, static_chain
);
8439 dump_default_def (file
, def
, 2, flags
);
8443 if (!vec_safe_is_empty (fun
->local_decls
))
8444 FOR_EACH_LOCAL_DECL (fun
, ix
, var
)
8446 print_generic_decl (file
, var
, flags
);
8447 fprintf (file
, "\n");
8454 if (gimple_in_ssa_p (fun
))
8455 FOR_EACH_SSA_NAME (ix
, name
, fun
)
8457 if (!SSA_NAME_VAR (name
)
8458 /* SSA name with decls without a name still get
8459 dumped as _N, list those explicitely as well even
8460 though we've dumped the decl declaration as D.xxx
8462 || !SSA_NAME_IDENTIFIER (name
))
8464 fprintf (file
, " ");
8465 print_generic_expr (file
, TREE_TYPE (name
), flags
);
8466 fprintf (file
, " ");
8467 print_generic_expr (file
, name
, flags
);
8468 fprintf (file
, ";\n");
8475 if (fun
&& fun
->decl
== fndecl
8477 && basic_block_info_for_fn (fun
))
8479 /* If the CFG has been built, emit a CFG-based dump. */
8480 if (!ignore_topmost_bind
)
8481 fprintf (file
, "{\n");
8483 if (any_var
&& n_basic_blocks_for_fn (fun
))
8484 fprintf (file
, "\n");
8486 FOR_EACH_BB_FN (bb
, fun
)
8487 dump_bb (file
, bb
, 2, flags
);
8489 fprintf (file
, "}\n");
8491 else if (fun
&& (fun
->curr_properties
& PROP_gimple_any
))
8493 /* The function is now in GIMPLE form but the CFG has not been
8494 built yet. Emit the single sequence of GIMPLE statements
8495 that make up its body. */
8496 gimple_seq body
= gimple_body (fndecl
);
8498 if (gimple_seq_first_stmt (body
)
8499 && gimple_seq_first_stmt (body
) == gimple_seq_last_stmt (body
)
8500 && gimple_code (gimple_seq_first_stmt (body
)) == GIMPLE_BIND
)
8501 print_gimple_seq (file
, body
, 0, flags
);
8504 if (!ignore_topmost_bind
)
8505 fprintf (file
, "{\n");
8508 fprintf (file
, "\n");
8510 print_gimple_seq (file
, body
, 2, flags
);
8511 fprintf (file
, "}\n");
8518 /* Make a tree based dump. */
8519 chain
= DECL_SAVED_TREE (fndecl
);
8520 if (chain
&& TREE_CODE (chain
) == BIND_EXPR
)
8522 if (ignore_topmost_bind
)
8524 chain
= BIND_EXPR_BODY (chain
);
8532 if (!ignore_topmost_bind
)
8534 fprintf (file
, "{\n");
8535 /* No topmost bind, pretend it's ignored for later. */
8536 ignore_topmost_bind
= true;
8542 fprintf (file
, "\n");
8544 print_generic_stmt_indented (file
, chain
, flags
, indent
);
8545 if (ignore_topmost_bind
)
8546 fprintf (file
, "}\n");
8549 if (flags
& TDF_ENUMERATE_LOCALS
)
8550 dump_enumerated_decls (file
, flags
);
8551 fprintf (file
, "\n\n");
8553 current_function_decl
= old_current_fndecl
;
8556 /* Dump FUNCTION_DECL FN to stderr using FLAGS (see TDF_* in tree.h) */
8559 debug_function (tree fn
, dump_flags_t flags
)
8561 dump_function_to_file (fn
, stderr
, flags
);
8565 /* Print on FILE the indexes for the predecessors of basic_block BB. */
8568 print_pred_bbs (FILE *file
, basic_block bb
)
8573 FOR_EACH_EDGE (e
, ei
, bb
->preds
)
8574 fprintf (file
, "bb_%d ", e
->src
->index
);
8578 /* Print on FILE the indexes for the successors of basic_block BB. */
8581 print_succ_bbs (FILE *file
, basic_block bb
)
8586 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
8587 fprintf (file
, "bb_%d ", e
->dest
->index
);
8590 /* Print to FILE the basic block BB following the VERBOSITY level. */
8593 print_loops_bb (FILE *file
, basic_block bb
, int indent
, int verbosity
)
8595 char *s_indent
= (char *) alloca ((size_t) indent
+ 1);
8596 memset ((void *) s_indent
, ' ', (size_t) indent
);
8597 s_indent
[indent
] = '\0';
8599 /* Print basic_block's header. */
8602 fprintf (file
, "%s bb_%d (preds = {", s_indent
, bb
->index
);
8603 print_pred_bbs (file
, bb
);
8604 fprintf (file
, "}, succs = {");
8605 print_succ_bbs (file
, bb
);
8606 fprintf (file
, "})\n");
8609 /* Print basic_block's body. */
8612 fprintf (file
, "%s {\n", s_indent
);
8613 dump_bb (file
, bb
, indent
+ 4, TDF_VOPS
|TDF_MEMSYMS
);
8614 fprintf (file
, "%s }\n", s_indent
);
8618 /* Print loop information. */
8621 print_loop_info (FILE *file
, const class loop
*loop
, const char *prefix
)
8623 if (loop
->can_be_parallel
)
8624 fprintf (file
, ", can_be_parallel");
8625 if (loop
->warned_aggressive_loop_optimizations
)
8626 fprintf (file
, ", warned_aggressive_loop_optimizations");
8627 if (loop
->dont_vectorize
)
8628 fprintf (file
, ", dont_vectorize");
8629 if (loop
->force_vectorize
)
8630 fprintf (file
, ", force_vectorize");
8631 if (loop
->in_oacc_kernels_region
)
8632 fprintf (file
, ", in_oacc_kernels_region");
8634 fprintf (file
, ", finite_p");
8636 fprintf (file
, "\n%sunroll %d", prefix
, loop
->unroll
);
8637 if (loop
->nb_iterations
)
8639 fprintf (file
, "\n%sniter ", prefix
);
8640 print_generic_expr (file
, loop
->nb_iterations
);
8643 if (loop
->any_upper_bound
)
8645 fprintf (file
, "\n%supper_bound ", prefix
);
8646 print_decu (loop
->nb_iterations_upper_bound
, file
);
8648 if (loop
->any_likely_upper_bound
)
8650 fprintf (file
, "\n%slikely_upper_bound ", prefix
);
8651 print_decu (loop
->nb_iterations_likely_upper_bound
, file
);
8654 if (loop
->any_estimate
)
8656 fprintf (file
, "\n%sestimate ", prefix
);
8657 print_decu (loop
->nb_iterations_estimate
, file
);
8661 if (loop
->num
&& expected_loop_iterations_by_profile (loop
, &iterations
, &reliable
))
8663 fprintf (file
, "\n%siterations by profile: %f (%s%s) entry count:", prefix
,
8664 iterations
.to_double (), reliable
? "reliable" : "unreliable",
8665 maybe_flat_loop_profile (loop
) ? ", maybe flat" : "");
8666 loop_count_in (loop
).dump (file
, cfun
);
8671 static void print_loop_and_siblings (FILE *, class loop
*, int, int);
8673 /* Pretty print LOOP on FILE, indented INDENT spaces. Following
8674 VERBOSITY level this outputs the contents of the loop, or just its
8678 print_loop (FILE *file
, class loop
*loop
, int indent
, int verbosity
)
8686 s_indent
= (char *) alloca ((size_t) indent
+ 1);
8687 memset ((void *) s_indent
, ' ', (size_t) indent
);
8688 s_indent
[indent
] = '\0';
8690 /* Print loop's header. */
8691 fprintf (file
, "%sloop_%d (", s_indent
, loop
->num
);
8693 fprintf (file
, "header = %d", loop
->header
->index
);
8696 fprintf (file
, "deleted)\n");
8700 fprintf (file
, ", latch = %d", loop
->latch
->index
);
8702 fprintf (file
, ", multiple latches");
8703 print_loop_info (file
, loop
, s_indent
);
8704 fprintf (file
, ")\n");
8706 /* Print loop's body. */
8709 fprintf (file
, "%s{\n", s_indent
);
8710 FOR_EACH_BB_FN (bb
, cfun
)
8711 if (bb
->loop_father
== loop
)
8712 print_loops_bb (file
, bb
, indent
, verbosity
);
8714 print_loop_and_siblings (file
, loop
->inner
, indent
+ 2, verbosity
);
8715 fprintf (file
, "%s}\n", s_indent
);
8719 /* Print the LOOP and its sibling loops on FILE, indented INDENT
8720 spaces. Following VERBOSITY level this outputs the contents of the
8721 loop, or just its structure. */
8724 print_loop_and_siblings (FILE *file
, class loop
*loop
, int indent
,
8730 print_loop (file
, loop
, indent
, verbosity
);
8731 print_loop_and_siblings (file
, loop
->next
, indent
, verbosity
);
8734 /* Follow a CFG edge from the entry point of the program, and on entry
8735 of a loop, pretty print the loop structure on FILE. */
8738 print_loops (FILE *file
, int verbosity
)
8742 bb
= ENTRY_BLOCK_PTR_FOR_FN (cfun
);
8743 fprintf (file
, "\nLoops in function: %s\n", current_function_name ());
8744 if (bb
&& bb
->loop_father
)
8745 print_loop_and_siblings (file
, bb
->loop_father
, 0, verbosity
);
8751 debug (class loop
&ref
)
8753 print_loop (stderr
, &ref
, 0, /*verbosity*/0);
8757 debug (class loop
*ptr
)
8762 fprintf (stderr
, "<nil>\n");
8765 /* Dump a loop verbosely. */
8768 debug_verbose (class loop
&ref
)
8770 print_loop (stderr
, &ref
, 0, /*verbosity*/3);
8774 debug_verbose (class loop
*ptr
)
8779 fprintf (stderr
, "<nil>\n");
8783 /* Debugging loops structure at tree level, at some VERBOSITY level. */
8786 debug_loops (int verbosity
)
8788 print_loops (stderr
, verbosity
);
8791 /* Print on stderr the code of LOOP, at some VERBOSITY level. */
8794 debug_loop (class loop
*loop
, int verbosity
)
8796 print_loop (stderr
, loop
, 0, verbosity
);
8799 /* Print on stderr the code of loop number NUM, at some VERBOSITY
8803 debug_loop_num (unsigned num
, int verbosity
)
8805 debug_loop (get_loop (cfun
, num
), verbosity
);
8808 /* Return true if BB ends with a call, possibly followed by some
8809 instructions that must stay with the call. Return false,
8813 gimple_block_ends_with_call_p (basic_block bb
)
8815 gimple_stmt_iterator gsi
= gsi_last_nondebug_bb (bb
);
8816 return !gsi_end_p (gsi
) && is_gimple_call (gsi_stmt (gsi
));
8820 /* Return true if BB ends with a conditional branch. Return false,
8824 gimple_block_ends_with_condjump_p (const_basic_block bb
)
8826 return safe_is_a
<gcond
*> (*gsi_last_bb (const_cast <basic_block
> (bb
)));
8830 /* Return true if statement T may terminate execution of BB in ways not
8831 explicitly represtented in the CFG. */
8834 stmt_can_terminate_bb_p (gimple
*t
)
8836 tree fndecl
= NULL_TREE
;
8839 /* Eh exception not handled internally terminates execution of the whole
8841 if (stmt_can_throw_external (cfun
, t
))
8844 /* NORETURN and LONGJMP calls already have an edge to exit.
8845 CONST and PURE calls do not need one.
8846 We don't currently check for CONST and PURE here, although
8847 it would be a good idea, because those attributes are
8848 figured out from the RTL in mark_constant_function, and
8849 the counter incrementation code from -fprofile-arcs
8850 leads to different results from -fbranch-probabilities. */
8851 if (is_gimple_call (t
))
8853 fndecl
= gimple_call_fndecl (t
);
8854 call_flags
= gimple_call_flags (t
);
8857 if (is_gimple_call (t
)
8859 && fndecl_built_in_p (fndecl
)
8860 && (call_flags
& ECF_NOTHROW
)
8861 && !(call_flags
& ECF_RETURNS_TWICE
)
8862 /* fork() doesn't really return twice, but the effect of
8863 wrapping it in __gcov_fork() which calls __gcov_dump() and
8864 __gcov_reset() and clears the counters before forking has the same
8865 effect as returning twice. Force a fake edge. */
8866 && !fndecl_built_in_p (fndecl
, BUILT_IN_FORK
))
8869 if (is_gimple_call (t
))
8875 if (call_flags
& (ECF_PURE
| ECF_CONST
)
8876 && !(call_flags
& ECF_LOOPING_CONST_OR_PURE
))
8879 /* Function call may do longjmp, terminate program or do other things.
8880 Special case noreturn that have non-abnormal edges out as in this case
8881 the fact is sufficiently represented by lack of edges out of T. */
8882 if (!(call_flags
& ECF_NORETURN
))
8886 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
8887 if ((e
->flags
& EDGE_FAKE
) == 0)
8891 if (gasm
*asm_stmt
= dyn_cast
<gasm
*> (t
))
8892 if (gimple_asm_volatile_p (asm_stmt
) || gimple_asm_basic_p (asm_stmt
))
8899 /* Add fake edges to the function exit for any non constant and non
8900 noreturn calls (or noreturn calls with EH/abnormal edges),
8901 volatile inline assembly in the bitmap of blocks specified by BLOCKS
8902 or to the whole CFG if BLOCKS is zero. Return the number of blocks
8905 The goal is to expose cases in which entering a basic block does
8906 not imply that all subsequent instructions must be executed. */
8909 gimple_flow_call_edges_add (sbitmap blocks
)
8912 int blocks_split
= 0;
8913 int last_bb
= last_basic_block_for_fn (cfun
);
8914 bool check_last_block
= false;
8916 if (n_basic_blocks_for_fn (cfun
) == NUM_FIXED_BLOCKS
)
8920 check_last_block
= true;
8922 check_last_block
= bitmap_bit_p (blocks
,
8923 EXIT_BLOCK_PTR_FOR_FN (cfun
)->prev_bb
->index
);
8925 /* In the last basic block, before epilogue generation, there will be
8926 a fallthru edge to EXIT. Special care is required if the last insn
8927 of the last basic block is a call because make_edge folds duplicate
8928 edges, which would result in the fallthru edge also being marked
8929 fake, which would result in the fallthru edge being removed by
8930 remove_fake_edges, which would result in an invalid CFG.
8932 Moreover, we can't elide the outgoing fake edge, since the block
8933 profiler needs to take this into account in order to solve the minimal
8934 spanning tree in the case that the call doesn't return.
8936 Handle this by adding a dummy instruction in a new last basic block. */
8937 if (check_last_block
)
8939 basic_block bb
= EXIT_BLOCK_PTR_FOR_FN (cfun
)->prev_bb
;
8940 gimple_stmt_iterator gsi
= gsi_last_nondebug_bb (bb
);
8943 if (!gsi_end_p (gsi
))
8946 if (t
&& stmt_can_terminate_bb_p (t
))
8950 e
= find_edge (bb
, EXIT_BLOCK_PTR_FOR_FN (cfun
));
8953 gsi_insert_on_edge (e
, gimple_build_nop ());
8954 gsi_commit_edge_inserts ();
8959 /* Now add fake edges to the function exit for any non constant
8960 calls since there is no way that we can determine if they will
8962 for (i
= 0; i
< last_bb
; i
++)
8964 basic_block bb
= BASIC_BLOCK_FOR_FN (cfun
, i
);
8965 gimple_stmt_iterator gsi
;
8966 gimple
*stmt
, *last_stmt
;
8971 if (blocks
&& !bitmap_bit_p (blocks
, i
))
8974 gsi
= gsi_last_nondebug_bb (bb
);
8975 if (!gsi_end_p (gsi
))
8977 last_stmt
= gsi_stmt (gsi
);
8980 stmt
= gsi_stmt (gsi
);
8981 if (stmt_can_terminate_bb_p (stmt
))
8985 /* The handling above of the final block before the
8986 epilogue should be enough to verify that there is
8987 no edge to the exit block in CFG already.
8988 Calling make_edge in such case would cause us to
8989 mark that edge as fake and remove it later. */
8990 if (flag_checking
&& stmt
== last_stmt
)
8992 e
= find_edge (bb
, EXIT_BLOCK_PTR_FOR_FN (cfun
));
8993 gcc_assert (e
== NULL
);
8996 /* Note that the following may create a new basic block
8997 and renumber the existing basic blocks. */
8998 if (stmt
!= last_stmt
)
9000 e
= split_block (bb
, stmt
);
9004 e
= make_edge (bb
, EXIT_BLOCK_PTR_FOR_FN (cfun
), EDGE_FAKE
);
9005 e
->probability
= profile_probability::guessed_never ();
9009 while (!gsi_end_p (gsi
));
9014 checking_verify_flow_info ();
9016 return blocks_split
;
9019 /* Removes edge E and all the blocks dominated by it, and updates dominance
9020 information. The IL in E->src needs to be updated separately.
9021 If dominance info is not available, only the edge E is removed.*/
9024 remove_edge_and_dominated_blocks (edge e
)
9026 vec
<basic_block
> bbs_to_fix_dom
= vNULL
;
9029 bool none_removed
= false;
9031 basic_block bb
, dbb
;
9034 /* If we are removing a path inside a non-root loop that may change
9035 loop ownership of blocks or remove loops. Mark loops for fixup. */
9036 class loop
*src_loop
= e
->src
->loop_father
;
9038 && loop_outer (src_loop
) != NULL
9039 && src_loop
== e
->dest
->loop_father
)
9041 loops_state_set (LOOPS_NEED_FIXUP
);
9042 /* If we are removing a backedge clear the number of iterations
9044 class loop
*dest_loop
= e
->dest
->loop_father
;
9045 if (e
->dest
== src_loop
->header
9046 || (e
->dest
== dest_loop
->header
9047 && flow_loop_nested_p (dest_loop
, src_loop
)))
9049 free_numbers_of_iterations_estimates (dest_loop
);
9050 /* If we removed the last backedge mark the loop for removal. */
9051 FOR_EACH_EDGE (f
, ei
, dest_loop
->header
->preds
)
9053 && (f
->src
->loop_father
== dest_loop
9054 || flow_loop_nested_p (dest_loop
, f
->src
->loop_father
)))
9057 mark_loop_for_removal (dest_loop
);
9061 if (!dom_info_available_p (CDI_DOMINATORS
))
9067 /* No updating is needed for edges to exit. */
9068 if (e
->dest
== EXIT_BLOCK_PTR_FOR_FN (cfun
))
9070 if (cfgcleanup_altered_bbs
)
9071 bitmap_set_bit (cfgcleanup_altered_bbs
, e
->src
->index
);
9076 /* First, we find the basic blocks to remove. If E->dest has a predecessor
9077 that is not dominated by E->dest, then this set is empty. Otherwise,
9078 all the basic blocks dominated by E->dest are removed.
9080 Also, to DF_IDOM we store the immediate dominators of the blocks in
9081 the dominance frontier of E (i.e., of the successors of the
9082 removed blocks, if there are any, and of E->dest otherwise). */
9083 FOR_EACH_EDGE (f
, ei
, e
->dest
->preds
)
9088 if (!dominated_by_p (CDI_DOMINATORS
, f
->src
, e
->dest
))
9090 none_removed
= true;
9095 auto_bitmap df
, df_idom
;
9096 auto_vec
<basic_block
> bbs_to_remove
;
9098 bitmap_set_bit (df_idom
,
9099 get_immediate_dominator (CDI_DOMINATORS
, e
->dest
)->index
);
9102 bbs_to_remove
= get_all_dominated_blocks (CDI_DOMINATORS
, e
->dest
);
9103 FOR_EACH_VEC_ELT (bbs_to_remove
, i
, bb
)
9105 FOR_EACH_EDGE (f
, ei
, bb
->succs
)
9107 if (f
->dest
!= EXIT_BLOCK_PTR_FOR_FN (cfun
))
9108 bitmap_set_bit (df
, f
->dest
->index
);
9111 FOR_EACH_VEC_ELT (bbs_to_remove
, i
, bb
)
9112 bitmap_clear_bit (df
, bb
->index
);
9114 EXECUTE_IF_SET_IN_BITMAP (df
, 0, i
, bi
)
9116 bb
= BASIC_BLOCK_FOR_FN (cfun
, i
);
9117 bitmap_set_bit (df_idom
,
9118 get_immediate_dominator (CDI_DOMINATORS
, bb
)->index
);
9122 if (cfgcleanup_altered_bbs
)
9124 /* Record the set of the altered basic blocks. */
9125 bitmap_set_bit (cfgcleanup_altered_bbs
, e
->src
->index
);
9126 bitmap_ior_into (cfgcleanup_altered_bbs
, df
);
9129 /* Remove E and the cancelled blocks. */
9134 /* Walk backwards so as to get a chance to substitute all
9135 released DEFs into debug stmts. See
9136 eliminate_unnecessary_stmts() in tree-ssa-dce.cc for more
9138 for (i
= bbs_to_remove
.length (); i
-- > 0; )
9139 delete_basic_block (bbs_to_remove
[i
]);
9142 /* Update the dominance information. The immediate dominator may change only
9143 for blocks whose immediate dominator belongs to DF_IDOM:
9145 Suppose that idom(X) = Y before removal of E and idom(X) != Y after the
9146 removal. Let Z the arbitrary block such that idom(Z) = Y and
9147 Z dominates X after the removal. Before removal, there exists a path P
9148 from Y to X that avoids Z. Let F be the last edge on P that is
9149 removed, and let W = F->dest. Before removal, idom(W) = Y (since Y
9150 dominates W, and because of P, Z does not dominate W), and W belongs to
9151 the dominance frontier of E. Therefore, Y belongs to DF_IDOM. */
9152 EXECUTE_IF_SET_IN_BITMAP (df_idom
, 0, i
, bi
)
9154 bb
= BASIC_BLOCK_FOR_FN (cfun
, i
);
9155 for (dbb
= first_dom_son (CDI_DOMINATORS
, bb
);
9157 dbb
= next_dom_son (CDI_DOMINATORS
, dbb
))
9158 bbs_to_fix_dom
.safe_push (dbb
);
9161 iterate_fix_dominators (CDI_DOMINATORS
, bbs_to_fix_dom
, true);
9163 bbs_to_fix_dom
.release ();
9166 /* Purge dead EH edges from basic block BB. */
9169 gimple_purge_dead_eh_edges (basic_block bb
)
9171 bool changed
= false;
9174 gimple
*stmt
= *gsi_last_bb (bb
);
9176 if (stmt
&& stmt_can_throw_internal (cfun
, stmt
))
9179 for (ei
= ei_start (bb
->succs
); (e
= ei_safe_edge (ei
)); )
9181 if (e
->flags
& EDGE_EH
)
9183 remove_edge_and_dominated_blocks (e
);
9193 /* Purge dead EH edges from basic block listed in BLOCKS. */
9196 gimple_purge_all_dead_eh_edges (const_bitmap blocks
)
9198 bool changed
= false;
9202 EXECUTE_IF_SET_IN_BITMAP (blocks
, 0, i
, bi
)
9204 basic_block bb
= BASIC_BLOCK_FOR_FN (cfun
, i
);
9206 /* Earlier gimple_purge_dead_eh_edges could have removed
9207 this basic block already. */
9208 gcc_assert (bb
|| changed
);
9210 changed
|= gimple_purge_dead_eh_edges (bb
);
9216 /* Purge dead abnormal call edges from basic block BB. */
9219 gimple_purge_dead_abnormal_call_edges (basic_block bb
)
9221 bool changed
= false;
9224 gimple
*stmt
= *gsi_last_bb (bb
);
9226 if (stmt
&& stmt_can_make_abnormal_goto (stmt
))
9229 for (ei
= ei_start (bb
->succs
); (e
= ei_safe_edge (ei
)); )
9231 if (e
->flags
& EDGE_ABNORMAL
)
9233 if (e
->flags
& EDGE_FALLTHRU
)
9234 e
->flags
&= ~EDGE_ABNORMAL
;
9236 remove_edge_and_dominated_blocks (e
);
9246 /* Purge dead abnormal call edges from basic block listed in BLOCKS. */
9249 gimple_purge_all_dead_abnormal_call_edges (const_bitmap blocks
)
9251 bool changed
= false;
9255 EXECUTE_IF_SET_IN_BITMAP (blocks
, 0, i
, bi
)
9257 basic_block bb
= BASIC_BLOCK_FOR_FN (cfun
, i
);
9259 /* Earlier gimple_purge_dead_abnormal_call_edges could have removed
9260 this basic block already. */
9261 gcc_assert (bb
|| changed
);
9263 changed
|= gimple_purge_dead_abnormal_call_edges (bb
);
9269 /* This function is called whenever a new edge is created or
9273 gimple_execute_on_growing_pred (edge e
)
9275 basic_block bb
= e
->dest
;
9277 if (!gimple_seq_empty_p (phi_nodes (bb
)))
9278 reserve_phi_args_for_new_edge (bb
);
9281 /* This function is called immediately before edge E is removed from
9282 the edge vector E->dest->preds. */
9285 gimple_execute_on_shrinking_pred (edge e
)
9287 if (!gimple_seq_empty_p (phi_nodes (e
->dest
)))
9288 remove_phi_args (e
);
9291 /*---------------------------------------------------------------------------
9292 Helper functions for Loop versioning
9293 ---------------------------------------------------------------------------*/
9295 /* Adjust phi nodes for 'first' basic block. 'second' basic block is a copy
9296 of 'first'. Both of them are dominated by 'new_head' basic block. When
9297 'new_head' was created by 'second's incoming edge it received phi arguments
9298 on the edge by split_edge(). Later, additional edge 'e' was created to
9299 connect 'new_head' and 'first'. Now this routine adds phi args on this
9300 additional edge 'e' that new_head to second edge received as part of edge
9304 gimple_lv_adjust_loop_header_phi (basic_block first
, basic_block second
,
9305 basic_block new_head
, edge e
)
9308 gphi_iterator psi1
, psi2
;
9310 edge e2
= find_edge (new_head
, second
);
9312 /* Because NEW_HEAD has been created by splitting SECOND's incoming
9313 edge, we should always have an edge from NEW_HEAD to SECOND. */
9314 gcc_assert (e2
!= NULL
);
9316 /* Browse all 'second' basic block phi nodes and add phi args to
9317 edge 'e' for 'first' head. PHI args are always in correct order. */
9319 for (psi2
= gsi_start_phis (second
),
9320 psi1
= gsi_start_phis (first
);
9321 !gsi_end_p (psi2
) && !gsi_end_p (psi1
);
9322 gsi_next (&psi2
), gsi_next (&psi1
))
9326 def
= PHI_ARG_DEF (phi2
, e2
->dest_idx
);
9327 add_phi_arg (phi1
, def
, e
, gimple_phi_arg_location_from_edge (phi2
, e2
));
9332 /* Adds a if else statement to COND_BB with condition COND_EXPR.
9333 SECOND_HEAD is the destination of the THEN and FIRST_HEAD is
9334 the destination of the ELSE part. */
9337 gimple_lv_add_condition_to_bb (basic_block first_head ATTRIBUTE_UNUSED
,
9338 basic_block second_head ATTRIBUTE_UNUSED
,
9339 basic_block cond_bb
, void *cond_e
)
9341 gimple_stmt_iterator gsi
;
9342 gimple
*new_cond_expr
;
9343 tree cond_expr
= (tree
) cond_e
;
9346 /* Build new conditional expr */
9347 gsi
= gsi_last_bb (cond_bb
);
9349 cond_expr
= force_gimple_operand_gsi_1 (&gsi
, cond_expr
,
9350 is_gimple_condexpr_for_cond
,
9352 GSI_CONTINUE_LINKING
);
9353 new_cond_expr
= gimple_build_cond_from_tree (cond_expr
,
9354 NULL_TREE
, NULL_TREE
);
9356 /* Add new cond in cond_bb. */
9357 gsi_insert_after (&gsi
, new_cond_expr
, GSI_NEW_STMT
);
9359 /* Adjust edges appropriately to connect new head with first head
9360 as well as second head. */
9361 e0
= single_succ_edge (cond_bb
);
9362 e0
->flags
&= ~EDGE_FALLTHRU
;
9363 e0
->flags
|= EDGE_FALSE_VALUE
;
9367 /* Do book-keeping of basic block BB for the profile consistency checker.
9368 Store the counting in RECORD. */
9370 gimple_account_profile_record (basic_block bb
,
9371 struct profile_record
*record
)
9373 gimple_stmt_iterator i
;
9374 for (i
= gsi_start_nondebug_after_labels_bb (bb
); !gsi_end_p (i
);
9375 gsi_next_nondebug (&i
))
9378 += estimate_num_insns (gsi_stmt (i
), &eni_size_weights
);
9381 if (ENTRY_BLOCK_PTR_FOR_FN (cfun
)->count
.ipa ().initialized_p ()
9382 && ENTRY_BLOCK_PTR_FOR_FN (cfun
)->count
.ipa ().nonzero_p ()
9383 && bb
->count
.ipa ().initialized_p ())
9385 += estimate_num_insns (gsi_stmt (i
),
9387 * bb
->count
.ipa ().to_gcov_type ();
9389 else if (bb
->count
.initialized_p ()
9390 && ENTRY_BLOCK_PTR_FOR_FN (cfun
)->count
.initialized_p ())
9392 += estimate_num_insns
9395 * bb
->count
.to_sreal_scale
9396 (ENTRY_BLOCK_PTR_FOR_FN (cfun
)->count
).to_double ();
9399 += estimate_num_insns (gsi_stmt (i
), &eni_time_weights
);
9403 struct cfg_hooks gimple_cfg_hooks
= {
9405 gimple_verify_flow_info
,
9406 gimple_dump_bb
, /* dump_bb */
9407 gimple_dump_bb_for_graph
, /* dump_bb_for_graph */
9408 create_bb
, /* create_basic_block */
9409 gimple_redirect_edge_and_branch
, /* redirect_edge_and_branch */
9410 gimple_redirect_edge_and_branch_force
, /* redirect_edge_and_branch_force */
9411 gimple_can_remove_branch_p
, /* can_remove_branch_p */
9412 remove_bb
, /* delete_basic_block */
9413 gimple_split_block
, /* split_block */
9414 gimple_move_block_after
, /* move_block_after */
9415 gimple_can_merge_blocks_p
, /* can_merge_blocks_p */
9416 gimple_merge_blocks
, /* merge_blocks */
9417 gimple_predict_edge
, /* predict_edge */
9418 gimple_predicted_by_p
, /* predicted_by_p */
9419 gimple_can_duplicate_bb_p
, /* can_duplicate_block_p */
9420 gimple_duplicate_bb
, /* duplicate_block */
9421 gimple_split_edge
, /* split_edge */
9422 gimple_make_forwarder_block
, /* make_forward_block */
9423 NULL
, /* tidy_fallthru_edge */
9424 NULL
, /* force_nonfallthru */
9425 gimple_block_ends_with_call_p
,/* block_ends_with_call_p */
9426 gimple_block_ends_with_condjump_p
, /* block_ends_with_condjump_p */
9427 gimple_flow_call_edges_add
, /* flow_call_edges_add */
9428 gimple_execute_on_growing_pred
, /* execute_on_growing_pred */
9429 gimple_execute_on_shrinking_pred
, /* execute_on_shrinking_pred */
9430 gimple_duplicate_loop_body_to_header_edge
, /* duplicate loop for trees */
9431 gimple_lv_add_condition_to_bb
, /* lv_add_condition_to_bb */
9432 gimple_lv_adjust_loop_header_phi
, /* lv_adjust_loop_header_phi*/
9433 extract_true_false_edges_from_block
, /* extract_cond_bb_edges */
9434 flush_pending_stmts
, /* flush_pending_stmts */
9435 gimple_empty_block_p
, /* block_empty_p */
9436 gimple_split_block_before_cond_jump
, /* split_block_before_cond_jump */
9437 gimple_account_profile_record
,
9441 /* Split all critical edges. Split some extra (not necessarily critical) edges
9442 if FOR_EDGE_INSERTION_P is true. */
9445 split_critical_edges (bool for_edge_insertion_p
/* = false */)
9451 /* split_edge can redirect edges out of SWITCH_EXPRs, which can get
9452 expensive. So we want to enable recording of edge to CASE_LABEL_EXPR
9453 mappings around the calls to split_edge. */
9454 start_recording_case_labels ();
9455 FOR_ALL_BB_FN (bb
, cfun
)
9457 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
9459 if (EDGE_CRITICAL_P (e
) && !(e
->flags
& EDGE_ABNORMAL
))
9461 /* PRE inserts statements to edges and expects that
9462 since split_critical_edges was done beforehand, committing edge
9463 insertions will not split more edges. In addition to critical
9464 edges we must split edges that have multiple successors and
9465 end by control flow statements, such as RESX.
9466 Go ahead and split them too. This matches the logic in
9467 gimple_find_edge_insert_loc. */
9468 else if (for_edge_insertion_p
9469 && (!single_pred_p (e
->dest
)
9470 || !gimple_seq_empty_p (phi_nodes (e
->dest
))
9471 || e
->dest
== EXIT_BLOCK_PTR_FOR_FN (cfun
))
9472 && e
->src
!= ENTRY_BLOCK_PTR_FOR_FN (cfun
)
9473 && !(e
->flags
& EDGE_ABNORMAL
))
9475 gimple_stmt_iterator gsi
;
9477 gsi
= gsi_last_bb (e
->src
);
9478 if (!gsi_end_p (gsi
)
9479 && stmt_ends_bb_p (gsi_stmt (gsi
))
9480 && (gimple_code (gsi_stmt (gsi
)) != GIMPLE_RETURN
9481 && !gimple_call_builtin_p (gsi_stmt (gsi
),
9487 end_recording_case_labels ();
9493 const pass_data pass_data_split_crit_edges
=
9495 GIMPLE_PASS
, /* type */
9496 "crited", /* name */
9497 OPTGROUP_NONE
, /* optinfo_flags */
9498 TV_TREE_SPLIT_EDGES
, /* tv_id */
9499 PROP_cfg
, /* properties_required */
9500 PROP_no_crit_edges
, /* properties_provided */
9501 0, /* properties_destroyed */
9502 0, /* todo_flags_start */
9503 0, /* todo_flags_finish */
9506 class pass_split_crit_edges
: public gimple_opt_pass
9509 pass_split_crit_edges (gcc::context
*ctxt
)
9510 : gimple_opt_pass (pass_data_split_crit_edges
, ctxt
)
9513 /* opt_pass methods: */
9514 unsigned int execute (function
*) final override
9516 return split_critical_edges ();
9519 opt_pass
* clone () final override
9521 return new pass_split_crit_edges (m_ctxt
);
9523 }; // class pass_split_crit_edges
9528 make_pass_split_crit_edges (gcc::context
*ctxt
)
9530 return new pass_split_crit_edges (ctxt
);
9534 /* Insert COND expression which is GIMPLE_COND after STMT
9535 in basic block BB with appropriate basic block split
9536 and creation of a new conditionally executed basic block.
9537 Update profile so the new bb is visited with probability PROB.
9538 Return created basic block. */
9540 insert_cond_bb (basic_block bb
, gimple
*stmt
, gimple
*cond
,
9541 profile_probability prob
)
9543 edge fall
= split_block (bb
, stmt
);
9544 gimple_stmt_iterator iter
= gsi_last_bb (bb
);
9547 /* Insert cond statement. */
9548 gcc_assert (gimple_code (cond
) == GIMPLE_COND
);
9549 if (gsi_end_p (iter
))
9550 gsi_insert_before (&iter
, cond
, GSI_CONTINUE_LINKING
);
9552 gsi_insert_after (&iter
, cond
, GSI_CONTINUE_LINKING
);
9554 /* Create conditionally executed block. */
9555 new_bb
= create_empty_bb (bb
);
9556 edge e
= make_edge (bb
, new_bb
, EDGE_TRUE_VALUE
);
9557 e
->probability
= prob
;
9558 new_bb
->count
= e
->count ();
9559 make_single_succ_edge (new_bb
, fall
->dest
, EDGE_FALLTHRU
);
9561 /* Fix edge for split bb. */
9562 fall
->flags
= EDGE_FALSE_VALUE
;
9563 fall
->probability
-= e
->probability
;
9565 /* Update dominance info. */
9566 if (dom_info_available_p (CDI_DOMINATORS
))
9568 set_immediate_dominator (CDI_DOMINATORS
, new_bb
, bb
);
9569 set_immediate_dominator (CDI_DOMINATORS
, fall
->dest
, bb
);
9572 /* Update loop info. */
9574 add_bb_to_loop (new_bb
, bb
->loop_father
);
9581 /* Given a basic block B which ends with a conditional and has
9582 precisely two successors, determine which of the edges is taken if
9583 the conditional is true and which is taken if the conditional is
9584 false. Set TRUE_EDGE and FALSE_EDGE appropriately. */
9587 extract_true_false_edges_from_block (basic_block b
,
9591 edge e
= EDGE_SUCC (b
, 0);
9593 if (e
->flags
& EDGE_TRUE_VALUE
)
9596 *false_edge
= EDGE_SUCC (b
, 1);
9601 *true_edge
= EDGE_SUCC (b
, 1);
9606 /* From a controlling predicate in the immediate dominator DOM of
9607 PHIBLOCK determine the edges into PHIBLOCK that are chosen if the
9608 predicate evaluates to true and false and store them to
9609 *TRUE_CONTROLLED_EDGE and *FALSE_CONTROLLED_EDGE if
9610 they are non-NULL. Returns true if the edges can be determined,
9611 else return false. */
9614 extract_true_false_controlled_edges (basic_block dom
, basic_block phiblock
,
9615 edge
*true_controlled_edge
,
9616 edge
*false_controlled_edge
)
9618 basic_block bb
= phiblock
;
9619 edge true_edge
, false_edge
, tem
;
9620 edge e0
= NULL
, e1
= NULL
;
9622 /* We have to verify that one edge into the PHI node is dominated
9623 by the true edge of the predicate block and the other edge
9624 dominated by the false edge. This ensures that the PHI argument
9625 we are going to take is completely determined by the path we
9626 take from the predicate block.
9627 We can only use BB dominance checks below if the destination of
9628 the true/false edges are dominated by their edge, thus only
9629 have a single predecessor. */
9630 extract_true_false_edges_from_block (dom
, &true_edge
, &false_edge
);
9631 tem
= EDGE_PRED (bb
, 0);
9632 if (tem
== true_edge
9633 || (single_pred_p (true_edge
->dest
)
9634 && (tem
->src
== true_edge
->dest
9635 || dominated_by_p (CDI_DOMINATORS
,
9636 tem
->src
, true_edge
->dest
))))
9638 else if (tem
== false_edge
9639 || (single_pred_p (false_edge
->dest
)
9640 && (tem
->src
== false_edge
->dest
9641 || dominated_by_p (CDI_DOMINATORS
,
9642 tem
->src
, false_edge
->dest
))))
9646 tem
= EDGE_PRED (bb
, 1);
9647 if (tem
== true_edge
9648 || (single_pred_p (true_edge
->dest
)
9649 && (tem
->src
== true_edge
->dest
9650 || dominated_by_p (CDI_DOMINATORS
,
9651 tem
->src
, true_edge
->dest
))))
9653 else if (tem
== false_edge
9654 || (single_pred_p (false_edge
->dest
)
9655 && (tem
->src
== false_edge
->dest
9656 || dominated_by_p (CDI_DOMINATORS
,
9657 tem
->src
, false_edge
->dest
))))
9664 if (true_controlled_edge
)
9665 *true_controlled_edge
= e0
;
9666 if (false_controlled_edge
)
9667 *false_controlled_edge
= e1
;
9672 /* Generate a range test LHS CODE RHS that determines whether INDEX is in the
9673 range [low, high]. Place associated stmts before *GSI. */
9676 generate_range_test (basic_block bb
, tree index
, tree low
, tree high
,
9677 tree
*lhs
, tree
*rhs
)
9679 tree type
= TREE_TYPE (index
);
9680 tree utype
= range_check_type (type
);
9682 low
= fold_convert (utype
, low
);
9683 high
= fold_convert (utype
, high
);
9685 gimple_seq seq
= NULL
;
9686 index
= gimple_convert (&seq
, utype
, index
);
9687 *lhs
= gimple_build (&seq
, MINUS_EXPR
, utype
, index
, low
);
9688 *rhs
= const_binop (MINUS_EXPR
, utype
, high
, low
);
9690 gimple_stmt_iterator gsi
= gsi_last_bb (bb
);
9691 gsi_insert_seq_before (&gsi
, seq
, GSI_SAME_STMT
);
9694 /* Return the basic block that belongs to label numbered INDEX
9695 of a switch statement. */
9698 gimple_switch_label_bb (function
*ifun
, gswitch
*gs
, unsigned index
)
9700 return label_to_block (ifun
, CASE_LABEL (gimple_switch_label (gs
, index
)));
9703 /* Return the default basic block of a switch statement. */
9706 gimple_switch_default_bb (function
*ifun
, gswitch
*gs
)
9708 return gimple_switch_label_bb (ifun
, gs
, 0);
9711 /* Return the edge that belongs to label numbered INDEX
9712 of a switch statement. */
9715 gimple_switch_edge (function
*ifun
, gswitch
*gs
, unsigned index
)
9717 return find_edge (gimple_bb (gs
), gimple_switch_label_bb (ifun
, gs
, index
));
9720 /* Return the default edge of a switch statement. */
9723 gimple_switch_default_edge (function
*ifun
, gswitch
*gs
)
9725 return gimple_switch_edge (ifun
, gs
, 0);
9728 /* Return true if the only executable statement in BB is a GIMPLE_COND. */
9731 cond_only_block_p (basic_block bb
)
9733 /* BB must have no executable statements. */
9734 gimple_stmt_iterator gsi
= gsi_after_labels (bb
);
9737 while (!gsi_end_p (gsi
))
9739 gimple
*stmt
= gsi_stmt (gsi
);
9740 if (is_gimple_debug (stmt
))
9742 else if (gimple_code (stmt
) == GIMPLE_NOP
9743 || gimple_code (stmt
) == GIMPLE_PREDICT
9744 || gimple_code (stmt
) == GIMPLE_COND
)
9754 /* Emit return warnings. */
9758 const pass_data pass_data_warn_function_return
=
9760 GIMPLE_PASS
, /* type */
9761 "*warn_function_return", /* name */
9762 OPTGROUP_NONE
, /* optinfo_flags */
9763 TV_NONE
, /* tv_id */
9764 PROP_cfg
, /* properties_required */
9765 0, /* properties_provided */
9766 0, /* properties_destroyed */
9767 0, /* todo_flags_start */
9768 0, /* todo_flags_finish */
9771 class pass_warn_function_return
: public gimple_opt_pass
9774 pass_warn_function_return (gcc::context
*ctxt
)
9775 : gimple_opt_pass (pass_data_warn_function_return
, ctxt
)
9778 /* opt_pass methods: */
9779 unsigned int execute (function
*) final override
;
9781 }; // class pass_warn_function_return
9784 pass_warn_function_return::execute (function
*fun
)
9786 location_t location
;
9791 if (!targetm
.warn_func_return (fun
->decl
))
9794 /* If we have a path to EXIT, then we do return. */
9795 if (TREE_THIS_VOLATILE (fun
->decl
)
9796 && EDGE_COUNT (EXIT_BLOCK_PTR_FOR_FN (fun
)->preds
) > 0)
9798 location
= UNKNOWN_LOCATION
;
9799 for (ei
= ei_start (EXIT_BLOCK_PTR_FOR_FN (fun
)->preds
);
9800 (e
= ei_safe_edge (ei
)); )
9802 last
= *gsi_last_bb (e
->src
);
9803 if ((gimple_code (last
) == GIMPLE_RETURN
9804 || gimple_call_builtin_p (last
, BUILT_IN_RETURN
))
9805 && location
== UNKNOWN_LOCATION
9806 && ((location
= LOCATION_LOCUS (gimple_location (last
)))
9807 != UNKNOWN_LOCATION
)
9810 /* When optimizing, replace return stmts in noreturn functions
9811 with __builtin_unreachable () call. */
9812 if (optimize
&& gimple_code (last
) == GIMPLE_RETURN
)
9814 location_t loc
= gimple_location (last
);
9815 gimple
*new_stmt
= gimple_build_builtin_unreachable (loc
);
9816 gimple_stmt_iterator gsi
= gsi_for_stmt (last
);
9817 gsi_replace (&gsi
, new_stmt
, true);
9823 if (location
== UNKNOWN_LOCATION
)
9824 location
= cfun
->function_end_locus
;
9825 warning_at (location
, 0, "%<noreturn%> function does return");
9828 /* If we see "return;" in some basic block, then we do reach the end
9829 without returning a value. */
9830 else if (warn_return_type
> 0
9831 && !warning_suppressed_p (fun
->decl
, OPT_Wreturn_type
)
9832 && !VOID_TYPE_P (TREE_TYPE (TREE_TYPE (fun
->decl
))))
9834 FOR_EACH_EDGE (e
, ei
, EXIT_BLOCK_PTR_FOR_FN (fun
)->preds
)
9836 greturn
*return_stmt
= dyn_cast
<greturn
*> (*gsi_last_bb (e
->src
));
9838 && gimple_return_retval (return_stmt
) == NULL
9839 && !warning_suppressed_p (return_stmt
, OPT_Wreturn_type
))
9841 location
= gimple_location (return_stmt
);
9842 if (LOCATION_LOCUS (location
) == UNKNOWN_LOCATION
)
9843 location
= fun
->function_end_locus
;
9844 if (warning_at (location
, OPT_Wreturn_type
,
9845 "control reaches end of non-void function"))
9846 suppress_warning (fun
->decl
, OPT_Wreturn_type
);
9850 /* The C++ FE turns fallthrough from the end of non-void function
9851 into __builtin_unreachable () call with BUILTINS_LOCATION.
9852 Recognize those as well as calls from ubsan_instrument_return. */
9854 if (!warning_suppressed_p (fun
->decl
, OPT_Wreturn_type
))
9855 FOR_EACH_BB_FN (bb
, fun
)
9856 if (EDGE_COUNT (bb
->succs
) == 0)
9858 gimple
*last
= *gsi_last_bb (bb
);
9859 const enum built_in_function ubsan_missing_ret
9860 = BUILT_IN_UBSAN_HANDLE_MISSING_RETURN
;
9862 && ((LOCATION_LOCUS (gimple_location (last
))
9863 == BUILTINS_LOCATION
9864 && (gimple_call_builtin_p (last
, BUILT_IN_UNREACHABLE
)
9865 || gimple_call_builtin_p (last
,
9866 BUILT_IN_UNREACHABLE_TRAP
)
9867 || gimple_call_builtin_p (last
, BUILT_IN_TRAP
)))
9868 || gimple_call_builtin_p (last
, ubsan_missing_ret
)))
9870 gimple_stmt_iterator gsi
= gsi_for_stmt (last
);
9871 gsi_prev_nondebug (&gsi
);
9872 gimple
*prev
= gsi_stmt (gsi
);
9874 location
= UNKNOWN_LOCATION
;
9876 location
= gimple_location (prev
);
9877 if (LOCATION_LOCUS (location
) == UNKNOWN_LOCATION
)
9878 location
= fun
->function_end_locus
;
9879 if (warning_at (location
, OPT_Wreturn_type
,
9880 "control reaches end of non-void function"))
9881 suppress_warning (fun
->decl
, OPT_Wreturn_type
);
9892 make_pass_warn_function_return (gcc::context
*ctxt
)
9894 return new pass_warn_function_return (ctxt
);
9897 /* Walk a gimplified function and warn for functions whose return value is
9898 ignored and attribute((warn_unused_result)) is set. This is done before
9899 inlining, so we don't have to worry about that. */
9902 do_warn_unused_result (gimple_seq seq
)
9905 gimple_stmt_iterator i
;
9907 for (i
= gsi_start (seq
); !gsi_end_p (i
); gsi_next (&i
))
9909 gimple
*g
= gsi_stmt (i
);
9911 switch (gimple_code (g
))
9914 do_warn_unused_result (gimple_bind_body (as_a
<gbind
*>(g
)));
9917 do_warn_unused_result (gimple_try_eval (g
));
9918 do_warn_unused_result (gimple_try_cleanup (g
));
9921 do_warn_unused_result (gimple_catch_handler (
9922 as_a
<gcatch
*> (g
)));
9924 case GIMPLE_EH_FILTER
:
9925 do_warn_unused_result (gimple_eh_filter_failure (g
));
9929 if (gimple_call_lhs (g
))
9931 if (gimple_call_internal_p (g
))
9934 /* This is a naked call, as opposed to a GIMPLE_CALL with an
9935 LHS. All calls whose value is ignored should be
9936 represented like this. Look for the attribute. */
9937 fdecl
= gimple_call_fndecl (g
);
9938 ftype
= gimple_call_fntype (g
);
9940 if (lookup_attribute ("warn_unused_result", TYPE_ATTRIBUTES (ftype
)))
9942 auto_urlify_attributes sentinel
;
9944 location_t loc
= gimple_location (g
);
9947 warning_at (loc
, OPT_Wunused_result
,
9948 "ignoring return value of %qD "
9949 "declared with attribute %<warn_unused_result%>",
9952 warning_at (loc
, OPT_Wunused_result
,
9953 "ignoring return value of function "
9954 "declared with attribute %<warn_unused_result%>");
9959 /* Not a container, not a call, or a call whose value is used. */
9967 const pass_data pass_data_warn_unused_result
=
9969 GIMPLE_PASS
, /* type */
9970 "*warn_unused_result", /* name */
9971 OPTGROUP_NONE
, /* optinfo_flags */
9972 TV_NONE
, /* tv_id */
9973 PROP_gimple_any
, /* properties_required */
9974 0, /* properties_provided */
9975 0, /* properties_destroyed */
9976 0, /* todo_flags_start */
9977 0, /* todo_flags_finish */
9980 class pass_warn_unused_result
: public gimple_opt_pass
9983 pass_warn_unused_result (gcc::context
*ctxt
)
9984 : gimple_opt_pass (pass_data_warn_unused_result
, ctxt
)
9987 /* opt_pass methods: */
9988 bool gate (function
*) final override
{ return flag_warn_unused_result
; }
9989 unsigned int execute (function
*) final override
9991 do_warn_unused_result (gimple_body (current_function_decl
));
9995 }; // class pass_warn_unused_result
10000 make_pass_warn_unused_result (gcc::context
*ctxt
)
10002 return new pass_warn_unused_result (ctxt
);
10005 /* Maybe Remove stores to variables we marked write-only.
10006 Return true if a store was removed. */
10008 maybe_remove_writeonly_store (gimple_stmt_iterator
&gsi
, gimple
*stmt
,
10009 bitmap dce_ssa_names
)
10011 /* Keep access when store has side effect, i.e. in case when source
10013 if (!gimple_store_p (stmt
)
10014 || gimple_has_side_effects (stmt
)
10018 tree lhs
= get_base_address (gimple_get_lhs (stmt
));
10021 || (!TREE_STATIC (lhs
) && !DECL_EXTERNAL (lhs
))
10022 || !varpool_node::get (lhs
)->writeonly
)
10025 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
10027 fprintf (dump_file
, "Removing statement, writes"
10028 " to write only var:\n");
10029 print_gimple_stmt (dump_file
, stmt
, 0,
10030 TDF_VOPS
|TDF_MEMSYMS
);
10033 /* Mark ssa name defining to be checked for simple dce. */
10034 if (gimple_assign_single_p (stmt
))
10036 tree rhs
= gimple_assign_rhs1 (stmt
);
10037 if (TREE_CODE (rhs
) == SSA_NAME
10038 && !SSA_NAME_IS_DEFAULT_DEF (rhs
))
10039 bitmap_set_bit (dce_ssa_names
, SSA_NAME_VERSION (rhs
));
10041 unlink_stmt_vdef (stmt
);
10042 gsi_remove (&gsi
, true);
10043 release_defs (stmt
);
10047 /* IPA passes, compilation of earlier functions or inlining
10048 might have changed some properties, such as marked functions nothrow,
10049 pure, const or noreturn.
10050 Remove redundant edges and basic blocks, and create new ones if necessary. */
10053 execute_fixup_cfg (void)
10056 gimple_stmt_iterator gsi
;
10058 cgraph_node
*node
= cgraph_node::get (current_function_decl
);
10059 /* Same scaling is also done by ipa_merge_profiles. */
10060 profile_count num
= node
->count
;
10061 profile_count den
= ENTRY_BLOCK_PTR_FOR_FN (cfun
)->count
;
10062 bool scale
= num
.initialized_p () && !(num
== den
);
10063 auto_bitmap dce_ssa_names
;
10067 profile_count::adjust_for_ipa_scaling (&num
, &den
);
10068 ENTRY_BLOCK_PTR_FOR_FN (cfun
)->count
= node
->count
;
10069 EXIT_BLOCK_PTR_FOR_FN (cfun
)->count
10070 = EXIT_BLOCK_PTR_FOR_FN (cfun
)->count
.apply_scale (num
, den
);
10073 FOR_EACH_BB_FN (bb
, cfun
)
10076 bb
->count
= bb
->count
.apply_scale (num
, den
);
10077 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
);)
10079 gimple
*stmt
= gsi_stmt (gsi
);
10080 tree decl
= is_gimple_call (stmt
)
10081 ? gimple_call_fndecl (stmt
)
10085 int flags
= gimple_call_flags (stmt
);
10086 if (flags
& (ECF_CONST
| ECF_PURE
| ECF_LOOPING_CONST_OR_PURE
))
10088 if (gimple_in_ssa_p (cfun
))
10090 todo
|= TODO_update_ssa
| TODO_cleanup_cfg
;
10091 update_stmt (stmt
);
10094 if (flags
& ECF_NORETURN
10095 && fixup_noreturn_call (stmt
))
10096 todo
|= TODO_cleanup_cfg
;
10099 /* Remove stores to variables we marked write-only. */
10100 if (maybe_remove_writeonly_store (gsi
, stmt
, dce_ssa_names
))
10102 todo
|= TODO_update_ssa
| TODO_cleanup_cfg
;
10106 /* For calls we can simply remove LHS when it is known
10107 to be write-only. */
10108 if (is_gimple_call (stmt
)
10109 && gimple_get_lhs (stmt
))
10111 tree lhs
= get_base_address (gimple_get_lhs (stmt
));
10114 && (TREE_STATIC (lhs
) || DECL_EXTERNAL (lhs
))
10115 && varpool_node::get (lhs
)->writeonly
)
10117 gimple_call_set_lhs (stmt
, NULL
);
10118 update_stmt (stmt
);
10119 todo
|= TODO_update_ssa
| TODO_cleanup_cfg
;
10125 if (gimple
*last
= *gsi_last_bb (bb
))
10127 if (maybe_clean_eh_stmt (last
)
10128 && gimple_purge_dead_eh_edges (bb
))
10129 todo
|= TODO_cleanup_cfg
;
10130 if (gimple_purge_dead_abnormal_call_edges (bb
))
10131 todo
|= TODO_cleanup_cfg
;
10134 /* If we have a basic block with no successors that does not
10135 end with a control statement or a noreturn call end it with
10136 a call to __builtin_unreachable. This situation can occur
10137 when inlining a noreturn call that does in fact return. */
10138 if (EDGE_COUNT (bb
->succs
) == 0)
10140 gimple
*stmt
= last_nondebug_stmt (bb
);
10142 || (!is_ctrl_stmt (stmt
)
10143 && (!is_gimple_call (stmt
)
10144 || !gimple_call_noreturn_p (stmt
))))
10146 if (stmt
&& is_gimple_call (stmt
))
10147 gimple_call_set_ctrl_altering (stmt
, false);
10148 stmt
= gimple_build_builtin_unreachable (UNKNOWN_LOCATION
);
10149 gimple_stmt_iterator gsi
= gsi_last_bb (bb
);
10150 gsi_insert_after (&gsi
, stmt
, GSI_NEW_STMT
);
10151 if (!cfun
->after_inlining
)
10152 if (tree fndecl
= gimple_call_fndecl (stmt
))
10154 gcall
*call_stmt
= dyn_cast
<gcall
*> (stmt
);
10155 node
->create_edge (cgraph_node::get_create (fndecl
),
10156 call_stmt
, bb
->count
);
10163 update_max_bb_count ();
10164 compute_function_frequency ();
10168 && (todo
& TODO_cleanup_cfg
))
10169 loops_state_set (LOOPS_NEED_FIXUP
);
10171 simple_dce_from_worklist (dce_ssa_names
);
10178 const pass_data pass_data_fixup_cfg
=
10180 GIMPLE_PASS
, /* type */
10181 "fixup_cfg", /* name */
10182 OPTGROUP_NONE
, /* optinfo_flags */
10183 TV_NONE
, /* tv_id */
10184 PROP_cfg
, /* properties_required */
10185 0, /* properties_provided */
10186 0, /* properties_destroyed */
10187 0, /* todo_flags_start */
10188 0, /* todo_flags_finish */
10191 class pass_fixup_cfg
: public gimple_opt_pass
10194 pass_fixup_cfg (gcc::context
*ctxt
)
10195 : gimple_opt_pass (pass_data_fixup_cfg
, ctxt
)
10198 /* opt_pass methods: */
10199 opt_pass
* clone () final override
{ return new pass_fixup_cfg (m_ctxt
); }
10200 unsigned int execute (function
*) final override
10202 return execute_fixup_cfg ();
10205 }; // class pass_fixup_cfg
10207 } // anon namespace
10210 make_pass_fixup_cfg (gcc::context
*ctxt
)
10212 return new pass_fixup_cfg (ctxt
);
10215 /* Garbage collection support for edge_def. */
10217 extern void gt_ggc_mx (tree
&);
10218 extern void gt_ggc_mx (gimple
*&);
10219 extern void gt_ggc_mx (rtx
&);
10220 extern void gt_ggc_mx (basic_block
&);
10223 gt_ggc_mx (rtx_insn
*& x
)
10226 gt_ggc_mx_rtx_def ((void *) x
);
10230 gt_ggc_mx (edge_def
*e
)
10232 tree block
= LOCATION_BLOCK (e
->goto_locus
);
10233 gt_ggc_mx (e
->src
);
10234 gt_ggc_mx (e
->dest
);
10235 if (current_ir_type () == IR_GIMPLE
)
10236 gt_ggc_mx (e
->insns
.g
);
10238 gt_ggc_mx (e
->insns
.r
);
10242 /* PCH support for edge_def. */
10244 extern void gt_pch_nx (tree
&);
10245 extern void gt_pch_nx (gimple
*&);
10246 extern void gt_pch_nx (rtx
&);
10247 extern void gt_pch_nx (basic_block
&);
10250 gt_pch_nx (rtx_insn
*& x
)
10253 gt_pch_nx_rtx_def ((void *) x
);
10257 gt_pch_nx (edge_def
*e
)
10259 tree block
= LOCATION_BLOCK (e
->goto_locus
);
10260 gt_pch_nx (e
->src
);
10261 gt_pch_nx (e
->dest
);
10262 if (current_ir_type () == IR_GIMPLE
)
10263 gt_pch_nx (e
->insns
.g
);
10265 gt_pch_nx (e
->insns
.r
);
10270 gt_pch_nx (edge_def
*e
, gt_pointer_operator op
, void *cookie
)
10272 tree block
= LOCATION_BLOCK (e
->goto_locus
);
10273 op (&(e
->src
), NULL
, cookie
);
10274 op (&(e
->dest
), NULL
, cookie
);
10275 if (current_ir_type () == IR_GIMPLE
)
10276 op (&(e
->insns
.g
), NULL
, cookie
);
10278 op (&(e
->insns
.r
), NULL
, cookie
);
10279 op (&(block
), &(block
), cookie
);
10284 namespace selftest
{
10286 /* Helper function for CFG selftests: create a dummy function decl
10287 and push it as cfun. */
10290 push_fndecl (const char *name
)
10292 tree fn_type
= build_function_type_array (integer_type_node
, 0, NULL
);
10293 /* FIXME: this uses input_location: */
10294 tree fndecl
= build_fn_decl (name
, fn_type
);
10295 tree retval
= build_decl (UNKNOWN_LOCATION
, RESULT_DECL
,
10296 NULL_TREE
, integer_type_node
);
10297 DECL_RESULT (fndecl
) = retval
;
10298 push_struct_function (fndecl
);
10299 function
*fun
= DECL_STRUCT_FUNCTION (fndecl
);
10300 ASSERT_TRUE (fun
!= NULL
);
10301 init_empty_tree_cfg_for_function (fun
);
10302 ASSERT_EQ (2, n_basic_blocks_for_fn (fun
));
10303 ASSERT_EQ (0, n_edges_for_fn (fun
));
10307 /* These tests directly create CFGs.
10308 Compare with the static fns within tree-cfg.cc:
10310 - make_blocks: calls create_basic_block (seq, bb);
10313 /* Verify a simple cfg of the form:
10314 ENTRY -> A -> B -> C -> EXIT. */
10317 test_linear_chain ()
10319 gimple_register_cfg_hooks ();
10321 tree fndecl
= push_fndecl ("cfg_test_linear_chain");
10322 function
*fun
= DECL_STRUCT_FUNCTION (fndecl
);
10324 /* Create some empty blocks. */
10325 basic_block bb_a
= create_empty_bb (ENTRY_BLOCK_PTR_FOR_FN (fun
));
10326 basic_block bb_b
= create_empty_bb (bb_a
);
10327 basic_block bb_c
= create_empty_bb (bb_b
);
10329 ASSERT_EQ (5, n_basic_blocks_for_fn (fun
));
10330 ASSERT_EQ (0, n_edges_for_fn (fun
));
10332 /* Create some edges: a simple linear chain of BBs. */
10333 make_edge (ENTRY_BLOCK_PTR_FOR_FN (fun
), bb_a
, EDGE_FALLTHRU
);
10334 make_edge (bb_a
, bb_b
, 0);
10335 make_edge (bb_b
, bb_c
, 0);
10336 make_edge (bb_c
, EXIT_BLOCK_PTR_FOR_FN (fun
), 0);
10338 /* Verify the edges. */
10339 ASSERT_EQ (4, n_edges_for_fn (fun
));
10340 ASSERT_EQ (NULL
, ENTRY_BLOCK_PTR_FOR_FN (fun
)->preds
);
10341 ASSERT_EQ (1, ENTRY_BLOCK_PTR_FOR_FN (fun
)->succs
->length ());
10342 ASSERT_EQ (1, bb_a
->preds
->length ());
10343 ASSERT_EQ (1, bb_a
->succs
->length ());
10344 ASSERT_EQ (1, bb_b
->preds
->length ());
10345 ASSERT_EQ (1, bb_b
->succs
->length ());
10346 ASSERT_EQ (1, bb_c
->preds
->length ());
10347 ASSERT_EQ (1, bb_c
->succs
->length ());
10348 ASSERT_EQ (1, EXIT_BLOCK_PTR_FOR_FN (fun
)->preds
->length ());
10349 ASSERT_EQ (NULL
, EXIT_BLOCK_PTR_FOR_FN (fun
)->succs
);
10351 /* Verify the dominance information
10352 Each BB in our simple chain should be dominated by the one before
10354 calculate_dominance_info (CDI_DOMINATORS
);
10355 ASSERT_EQ (bb_a
, get_immediate_dominator (CDI_DOMINATORS
, bb_b
));
10356 ASSERT_EQ (bb_b
, get_immediate_dominator (CDI_DOMINATORS
, bb_c
));
10357 auto_vec
<basic_block
> dom_by_b
= get_dominated_by (CDI_DOMINATORS
, bb_b
);
10358 ASSERT_EQ (1, dom_by_b
.length ());
10359 ASSERT_EQ (bb_c
, dom_by_b
[0]);
10360 free_dominance_info (CDI_DOMINATORS
);
10362 /* Similarly for post-dominance: each BB in our chain is post-dominated
10363 by the one after it. */
10364 calculate_dominance_info (CDI_POST_DOMINATORS
);
10365 ASSERT_EQ (bb_b
, get_immediate_dominator (CDI_POST_DOMINATORS
, bb_a
));
10366 ASSERT_EQ (bb_c
, get_immediate_dominator (CDI_POST_DOMINATORS
, bb_b
));
10367 auto_vec
<basic_block
> postdom_by_b
= get_dominated_by (CDI_POST_DOMINATORS
, bb_b
);
10368 ASSERT_EQ (1, postdom_by_b
.length ());
10369 ASSERT_EQ (bb_a
, postdom_by_b
[0]);
10370 free_dominance_info (CDI_POST_DOMINATORS
);
10375 /* Verify a simple CFG of the form:
10391 gimple_register_cfg_hooks ();
10393 tree fndecl
= push_fndecl ("cfg_test_diamond");
10394 function
*fun
= DECL_STRUCT_FUNCTION (fndecl
);
10396 /* Create some empty blocks. */
10397 basic_block bb_a
= create_empty_bb (ENTRY_BLOCK_PTR_FOR_FN (fun
));
10398 basic_block bb_b
= create_empty_bb (bb_a
);
10399 basic_block bb_c
= create_empty_bb (bb_a
);
10400 basic_block bb_d
= create_empty_bb (bb_b
);
10402 ASSERT_EQ (6, n_basic_blocks_for_fn (fun
));
10403 ASSERT_EQ (0, n_edges_for_fn (fun
));
10405 /* Create the edges. */
10406 make_edge (ENTRY_BLOCK_PTR_FOR_FN (fun
), bb_a
, EDGE_FALLTHRU
);
10407 make_edge (bb_a
, bb_b
, EDGE_TRUE_VALUE
);
10408 make_edge (bb_a
, bb_c
, EDGE_FALSE_VALUE
);
10409 make_edge (bb_b
, bb_d
, 0);
10410 make_edge (bb_c
, bb_d
, 0);
10411 make_edge (bb_d
, EXIT_BLOCK_PTR_FOR_FN (fun
), 0);
10413 /* Verify the edges. */
10414 ASSERT_EQ (6, n_edges_for_fn (fun
));
10415 ASSERT_EQ (1, bb_a
->preds
->length ());
10416 ASSERT_EQ (2, bb_a
->succs
->length ());
10417 ASSERT_EQ (1, bb_b
->preds
->length ());
10418 ASSERT_EQ (1, bb_b
->succs
->length ());
10419 ASSERT_EQ (1, bb_c
->preds
->length ());
10420 ASSERT_EQ (1, bb_c
->succs
->length ());
10421 ASSERT_EQ (2, bb_d
->preds
->length ());
10422 ASSERT_EQ (1, bb_d
->succs
->length ());
10424 /* Verify the dominance information. */
10425 calculate_dominance_info (CDI_DOMINATORS
);
10426 ASSERT_EQ (bb_a
, get_immediate_dominator (CDI_DOMINATORS
, bb_b
));
10427 ASSERT_EQ (bb_a
, get_immediate_dominator (CDI_DOMINATORS
, bb_c
));
10428 ASSERT_EQ (bb_a
, get_immediate_dominator (CDI_DOMINATORS
, bb_d
));
10429 auto_vec
<basic_block
> dom_by_a
= get_dominated_by (CDI_DOMINATORS
, bb_a
);
10430 ASSERT_EQ (3, dom_by_a
.length ()); /* B, C, D, in some order. */
10431 dom_by_a
.release ();
10432 auto_vec
<basic_block
> dom_by_b
= get_dominated_by (CDI_DOMINATORS
, bb_b
);
10433 ASSERT_EQ (0, dom_by_b
.length ());
10434 dom_by_b
.release ();
10435 free_dominance_info (CDI_DOMINATORS
);
10437 /* Similarly for post-dominance. */
10438 calculate_dominance_info (CDI_POST_DOMINATORS
);
10439 ASSERT_EQ (bb_d
, get_immediate_dominator (CDI_POST_DOMINATORS
, bb_a
));
10440 ASSERT_EQ (bb_d
, get_immediate_dominator (CDI_POST_DOMINATORS
, bb_b
));
10441 ASSERT_EQ (bb_d
, get_immediate_dominator (CDI_POST_DOMINATORS
, bb_c
));
10442 auto_vec
<basic_block
> postdom_by_d
= get_dominated_by (CDI_POST_DOMINATORS
, bb_d
);
10443 ASSERT_EQ (3, postdom_by_d
.length ()); /* A, B, C in some order. */
10444 postdom_by_d
.release ();
10445 auto_vec
<basic_block
> postdom_by_b
= get_dominated_by (CDI_POST_DOMINATORS
, bb_b
);
10446 ASSERT_EQ (0, postdom_by_b
.length ());
10447 postdom_by_b
.release ();
10448 free_dominance_info (CDI_POST_DOMINATORS
);
10453 /* Verify that we can handle a CFG containing a "complete" aka
10454 fully-connected subgraph (where A B C D below all have edges
10455 pointing to each other node, also to themselves).
10473 test_fully_connected ()
10475 gimple_register_cfg_hooks ();
10477 tree fndecl
= push_fndecl ("cfg_fully_connected");
10478 function
*fun
= DECL_STRUCT_FUNCTION (fndecl
);
10482 /* Create some empty blocks. */
10483 auto_vec
<basic_block
> subgraph_nodes
;
10484 for (int i
= 0; i
< n
; i
++)
10485 subgraph_nodes
.safe_push (create_empty_bb (ENTRY_BLOCK_PTR_FOR_FN (fun
)));
10487 ASSERT_EQ (n
+ 2, n_basic_blocks_for_fn (fun
));
10488 ASSERT_EQ (0, n_edges_for_fn (fun
));
10490 /* Create the edges. */
10491 make_edge (ENTRY_BLOCK_PTR_FOR_FN (fun
), subgraph_nodes
[0], EDGE_FALLTHRU
);
10492 make_edge (subgraph_nodes
[0], EXIT_BLOCK_PTR_FOR_FN (fun
), 0);
10493 for (int i
= 0; i
< n
; i
++)
10494 for (int j
= 0; j
< n
; j
++)
10495 make_edge (subgraph_nodes
[i
], subgraph_nodes
[j
], 0);
10497 /* Verify the edges. */
10498 ASSERT_EQ (2 + (n
* n
), n_edges_for_fn (fun
));
10499 /* The first one is linked to ENTRY/EXIT as well as itself and
10500 everything else. */
10501 ASSERT_EQ (n
+ 1, subgraph_nodes
[0]->preds
->length ());
10502 ASSERT_EQ (n
+ 1, subgraph_nodes
[0]->succs
->length ());
10503 /* The other ones in the subgraph are linked to everything in
10504 the subgraph (including themselves). */
10505 for (int i
= 1; i
< n
; i
++)
10507 ASSERT_EQ (n
, subgraph_nodes
[i
]->preds
->length ());
10508 ASSERT_EQ (n
, subgraph_nodes
[i
]->succs
->length ());
10511 /* Verify the dominance information. */
10512 calculate_dominance_info (CDI_DOMINATORS
);
10513 /* The initial block in the subgraph should be dominated by ENTRY. */
10514 ASSERT_EQ (ENTRY_BLOCK_PTR_FOR_FN (fun
),
10515 get_immediate_dominator (CDI_DOMINATORS
,
10516 subgraph_nodes
[0]));
10517 /* Every other block in the subgraph should be dominated by the
10519 for (int i
= 1; i
< n
; i
++)
10520 ASSERT_EQ (subgraph_nodes
[0],
10521 get_immediate_dominator (CDI_DOMINATORS
,
10522 subgraph_nodes
[i
]));
10523 free_dominance_info (CDI_DOMINATORS
);
10525 /* Similarly for post-dominance. */
10526 calculate_dominance_info (CDI_POST_DOMINATORS
);
10527 /* The initial block in the subgraph should be postdominated by EXIT. */
10528 ASSERT_EQ (EXIT_BLOCK_PTR_FOR_FN (fun
),
10529 get_immediate_dominator (CDI_POST_DOMINATORS
,
10530 subgraph_nodes
[0]));
10531 /* Every other block in the subgraph should be postdominated by the
10532 initial block, since that leads to EXIT. */
10533 for (int i
= 1; i
< n
; i
++)
10534 ASSERT_EQ (subgraph_nodes
[0],
10535 get_immediate_dominator (CDI_POST_DOMINATORS
,
10536 subgraph_nodes
[i
]));
10537 free_dominance_info (CDI_POST_DOMINATORS
);
10542 /* Run all of the selftests within this file. */
10545 tree_cfg_cc_tests ()
10547 test_linear_chain ();
10549 test_fully_connected ();
10552 } // namespace selftest
10554 /* TODO: test the dominator/postdominator logic with various graphs/nodes:
10557 - switch statement (a block with many out-edges)
10558 - something that jumps to itself
10561 #endif /* CHECKING_P */