1 /* Dead code elimination pass for the GNU compiler.
2 Copyright (C) 2002, 2003, 2004, 2005 Free Software Foundation, Inc.
3 Contributed by Ben Elliston <bje@redhat.com>
4 and Andrew MacLeod <amacleod@redhat.com>
5 Adapted to use control dependence by Steven Bosscher, SUSE Labs.
7 This file is part of GCC.
9 GCC is free software; you can redistribute it and/or modify it
10 under the terms of the GNU General Public License as published by the
11 Free Software Foundation; either version 2, or (at your option) any
14 GCC is distributed in the hope that it will be useful, but WITHOUT
15 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
16 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
19 You should have received a copy of the GNU General Public License
20 along with GCC; see the file COPYING. If not, write to the Free
21 Software Foundation, 59 Temple Place - Suite 330, Boston, MA
24 /* Dead code elimination.
28 Building an Optimizing Compiler,
29 Robert Morgan, Butterworth-Heinemann, 1998, Section 8.9.
31 Advanced Compiler Design and Implementation,
32 Steven Muchnick, Morgan Kaufmann, 1997, Section 18.10.
34 Dead-code elimination is the removal of statements which have no
35 impact on the program's output. "Dead statements" have no impact
36 on the program's output, while "necessary statements" may have
39 The algorithm consists of three phases:
40 1. Marking as necessary all statements known to be necessary,
41 e.g. most function calls, writing a value to memory, etc;
42 2. Propagating necessary statements, e.g., the statements
43 giving values to operands in necessary statements; and
44 3. Removing dead statements. */
48 #include "coretypes.h"
53 /* These RTL headers are needed for basic-block.h. */
56 #include "hard-reg-set.h"
58 #include "basic-block.h"
61 #include "diagnostic.h"
62 #include "tree-flow.h"
63 #include "tree-gimple.h"
64 #include "tree-dump.h"
65 #include "tree-pass.h"
69 static struct stmt_stats
77 static VEC(tree
,heap
) *worklist
;
79 /* Vector indicating an SSA name has already been processed and marked
81 static sbitmap processed
;
83 /* Vector indicating that last_stmt if a basic block has already been
84 marked as necessary. */
85 static sbitmap last_stmt_necessary
;
87 /* Before we can determine whether a control branch is dead, we need to
88 compute which blocks are control dependent on which edges.
90 We expect each block to be control dependent on very few edges so we
91 use a bitmap for each block recording its edges. An array holds the
92 bitmap. The Ith bit in the bitmap is set if that block is dependent
94 static bitmap
*control_dependence_map
;
96 /* Vector indicating that a basic block has already had all the edges
97 processed that it is control dependent on. */
98 static sbitmap visited_control_parents
;
100 /* Execute CODE for each edge (given number EDGE_NUMBER within the CODE)
101 for which the block with index N is control dependent. */
102 #define EXECUTE_IF_CONTROL_DEPENDENT(N, EDGE_NUMBER, CODE) \
104 bitmap_iterator bi; \
106 EXECUTE_IF_SET_IN_BITMAP (control_dependence_map[N], 0, EDGE_NUMBER, bi) \
112 /* Local function prototypes. */
113 static inline void set_control_dependence_map_bit (basic_block
, int);
114 static inline void clear_control_dependence_bitmap (basic_block
);
115 static void find_all_control_dependences (struct edge_list
*);
116 static void find_control_dependence (struct edge_list
*, int);
117 static inline basic_block
find_pdom (basic_block
);
119 static inline void mark_stmt_necessary (tree
, bool);
120 static inline void mark_operand_necessary (tree
, bool);
122 static void mark_stmt_if_obviously_necessary (tree
, bool);
123 static void find_obviously_necessary_stmts (struct edge_list
*);
125 static void mark_control_dependent_edges_necessary (basic_block
, struct edge_list
*);
126 static void propagate_necessity (struct edge_list
*);
128 static void eliminate_unnecessary_stmts (void);
129 static void remove_dead_phis (basic_block
);
130 static void remove_dead_stmt (block_stmt_iterator
*, basic_block
);
132 static void print_stats (void);
133 static void tree_dce_init (bool);
134 static void tree_dce_done (bool);
136 /* Indicate block BB is control dependent on an edge with index EDGE_INDEX. */
138 set_control_dependence_map_bit (basic_block bb
, int edge_index
)
140 if (bb
== ENTRY_BLOCK_PTR
)
142 gcc_assert (bb
!= EXIT_BLOCK_PTR
);
143 bitmap_set_bit (control_dependence_map
[bb
->index
], edge_index
);
146 /* Clear all control dependences for block BB. */
148 void clear_control_dependence_bitmap (basic_block bb
)
150 bitmap_clear (control_dependence_map
[bb
->index
]);
153 /* Record all blocks' control dependences on all edges in the edge
154 list EL, ala Morgan, Section 3.6. */
157 find_all_control_dependences (struct edge_list
*el
)
161 for (i
= 0; i
< NUM_EDGES (el
); ++i
)
162 find_control_dependence (el
, i
);
165 /* Determine all blocks' control dependences on the given edge with edge_list
166 EL index EDGE_INDEX, ala Morgan, Section 3.6. */
169 find_control_dependence (struct edge_list
*el
, int edge_index
)
171 basic_block current_block
;
172 basic_block ending_block
;
174 gcc_assert (INDEX_EDGE_PRED_BB (el
, edge_index
) != EXIT_BLOCK_PTR
);
176 if (INDEX_EDGE_PRED_BB (el
, edge_index
) == ENTRY_BLOCK_PTR
)
177 ending_block
= ENTRY_BLOCK_PTR
->next_bb
;
179 ending_block
= find_pdom (INDEX_EDGE_PRED_BB (el
, edge_index
));
181 for (current_block
= INDEX_EDGE_SUCC_BB (el
, edge_index
);
182 current_block
!= ending_block
&& current_block
!= EXIT_BLOCK_PTR
;
183 current_block
= find_pdom (current_block
))
185 edge e
= INDEX_EDGE (el
, edge_index
);
187 /* For abnormal edges, we don't make current_block control
188 dependent because instructions that throw are always necessary
190 if (e
->flags
& EDGE_ABNORMAL
)
193 set_control_dependence_map_bit (current_block
, edge_index
);
197 /* Find the immediate postdominator PDOM of the specified basic block BLOCK.
198 This function is necessary because some blocks have negative numbers. */
200 static inline basic_block
201 find_pdom (basic_block block
)
203 gcc_assert (block
!= ENTRY_BLOCK_PTR
);
205 if (block
== EXIT_BLOCK_PTR
)
206 return EXIT_BLOCK_PTR
;
209 basic_block bb
= get_immediate_dominator (CDI_POST_DOMINATORS
, block
);
211 return EXIT_BLOCK_PTR
;
216 #define NECESSARY(stmt) stmt->common.asm_written_flag
218 /* If STMT is not already marked necessary, mark it, and add it to the
219 worklist if ADD_TO_WORKLIST is true. */
221 mark_stmt_necessary (tree stmt
, bool add_to_worklist
)
224 gcc_assert (!DECL_P (stmt
));
226 if (NECESSARY (stmt
))
229 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
231 fprintf (dump_file
, "Marking useful stmt: ");
232 print_generic_stmt (dump_file
, stmt
, TDF_SLIM
);
233 fprintf (dump_file
, "\n");
236 NECESSARY (stmt
) = 1;
238 VEC_safe_push (tree
, heap
, worklist
, stmt
);
241 /* Mark the statement defining operand OP as necessary. PHIONLY is true
242 if we should only mark it necessary if it is a phi node. */
245 mark_operand_necessary (tree op
, bool phionly
)
252 ver
= SSA_NAME_VERSION (op
);
253 if (TEST_BIT (processed
, ver
))
255 SET_BIT (processed
, ver
);
257 stmt
= SSA_NAME_DEF_STMT (op
);
261 || IS_EMPTY_STMT (stmt
)
262 || (phionly
&& TREE_CODE (stmt
) != PHI_NODE
))
265 NECESSARY (stmt
) = 1;
266 VEC_safe_push (tree
, heap
, worklist
, stmt
);
270 /* Mark STMT as necessary if it obviously is. Add it to the worklist if
271 it can make other statements necessary.
273 If AGGRESSIVE is false, control statements are conservatively marked as
277 mark_stmt_if_obviously_necessary (tree stmt
, bool aggressive
)
283 /* Statements that are implicitly live. Most function calls, asm and return
284 statements are required. Labels and BIND_EXPR nodes are kept because
285 they are control flow, and we have no way of knowing whether they can be
286 removed. DCE can eliminate all the other statements in a block, and CFG
287 can then remove the block and labels. */
288 switch (TREE_CODE (stmt
))
292 case CASE_LABEL_EXPR
:
293 mark_stmt_necessary (stmt
, false);
299 mark_stmt_necessary (stmt
, true);
303 /* Most, but not all function calls are required. Function calls that
304 produce no result and have no side effects (i.e. const pure
305 functions) are unnecessary. */
306 if (TREE_SIDE_EFFECTS (stmt
))
307 mark_stmt_necessary (stmt
, true);
311 op
= get_call_expr_in (stmt
);
312 if (op
&& TREE_SIDE_EFFECTS (op
))
314 mark_stmt_necessary (stmt
, true);
318 /* These values are mildly magic bits of the EH runtime. We can't
319 see the entire lifetime of these values until landing pads are
321 if (TREE_CODE (TREE_OPERAND (stmt
, 0)) == EXC_PTR_EXPR
322 || TREE_CODE (TREE_OPERAND (stmt
, 0)) == FILTER_EXPR
)
324 mark_stmt_necessary (stmt
, true);
330 gcc_assert (!simple_goto_p (stmt
));
331 mark_stmt_necessary (stmt
, true);
335 gcc_assert (EDGE_COUNT (bb_for_stmt (stmt
)->succs
) == 2);
340 mark_stmt_necessary (stmt
, true);
347 ann
= stmt_ann (stmt
);
349 /* If the statement has volatile operands, it needs to be preserved.
350 Same for statements that can alter control flow in unpredictable
352 if (ann
->has_volatile_ops
|| is_ctrl_altering_stmt (stmt
))
354 mark_stmt_necessary (stmt
, true);
358 FOR_EACH_SSA_TREE_OPERAND (def
, stmt
, iter
, SSA_OP_DEF
)
360 if (is_global_var (SSA_NAME_VAR (def
)))
362 mark_stmt_necessary (stmt
, true);
366 if (is_hidden_global_store (stmt
))
368 mark_stmt_necessary (stmt
, true);
375 /* Find obviously necessary statements. These are things like most function
376 calls, and stores to file level variables.
378 If EL is NULL, control statements are conservatively marked as
379 necessary. Otherwise it contains the list of edges used by control
380 dependence analysis. */
383 find_obviously_necessary_stmts (struct edge_list
*el
)
386 block_stmt_iterator i
;
393 /* Check any PHI nodes in the block. */
394 for (phi
= phi_nodes (bb
); phi
; phi
= PHI_CHAIN (phi
))
398 /* PHIs for virtual variables do not directly affect code
399 generation and need not be considered inherently necessary
400 regardless of the bits set in their decl.
402 Thus, we only need to mark PHIs for real variables which
403 need their result preserved as being inherently necessary. */
404 if (is_gimple_reg (PHI_RESULT (phi
))
405 && is_global_var (SSA_NAME_VAR (PHI_RESULT (phi
))))
406 mark_stmt_necessary (phi
, true);
409 /* Check all statements in the block. */
410 for (i
= bsi_start (bb
); ! bsi_end_p (i
); bsi_next (&i
))
412 tree stmt
= bsi_stmt (i
);
413 NECESSARY (stmt
) = 0;
414 mark_stmt_if_obviously_necessary (stmt
, el
!= NULL
);
420 /* Prevent the loops from being removed. We must keep the infinite loops,
421 and we currently do not have a means to recognize the finite ones. */
425 FOR_EACH_EDGE (e
, ei
, bb
->succs
)
426 if (e
->flags
& EDGE_DFS_BACK
)
427 mark_control_dependent_edges_necessary (e
->dest
, el
);
432 /* Make corresponding control dependent edges necessary. We only
433 have to do this once for each basic block, so we clear the bitmap
436 mark_control_dependent_edges_necessary (basic_block bb
, struct edge_list
*el
)
438 unsigned edge_number
;
440 gcc_assert (bb
!= EXIT_BLOCK_PTR
);
442 if (bb
== ENTRY_BLOCK_PTR
)
445 EXECUTE_IF_CONTROL_DEPENDENT (bb
->index
, edge_number
,
448 basic_block cd_bb
= INDEX_EDGE_PRED_BB (el
, edge_number
);
450 if (TEST_BIT (last_stmt_necessary
, cd_bb
->index
))
452 SET_BIT (last_stmt_necessary
, cd_bb
->index
);
454 t
= last_stmt (cd_bb
);
455 if (t
&& is_ctrl_stmt (t
))
456 mark_stmt_necessary (t
, true);
460 /* Propagate necessity using the operands of necessary statements. Process
461 the uses on each statement in the worklist, and add all feeding statements
462 which contribute to the calculation of this value to the worklist.
464 In conservative mode, EL is NULL. */
467 propagate_necessity (struct edge_list
*el
)
470 bool aggressive
= (el
? true : false);
472 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
473 fprintf (dump_file
, "\nProcessing worklist:\n");
475 while (VEC_length (tree
, worklist
) > 0)
477 /* Take `i' from worklist. */
478 i
= VEC_pop (tree
, worklist
);
480 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
482 fprintf (dump_file
, "processing: ");
483 print_generic_stmt (dump_file
, i
, TDF_SLIM
);
484 fprintf (dump_file
, "\n");
489 /* Mark the last statements of the basic blocks that the block
490 containing `i' is control dependent on, but only if we haven't
492 basic_block bb
= bb_for_stmt (i
);
493 if (bb
!= ENTRY_BLOCK_PTR
494 && ! TEST_BIT (visited_control_parents
, bb
->index
))
496 SET_BIT (visited_control_parents
, bb
->index
);
497 mark_control_dependent_edges_necessary (bb
, el
);
501 if (TREE_CODE (i
) == PHI_NODE
)
503 /* PHI nodes are somewhat special in that each PHI alternative has
504 data and control dependencies. All the statements feeding the
505 PHI node's arguments are always necessary. In aggressive mode,
506 we also consider the control dependent edges leading to the
507 predecessor block associated with each PHI alternative as
510 for (k
= 0; k
< PHI_NUM_ARGS (i
); k
++)
512 tree arg
= PHI_ARG_DEF (i
, k
);
513 if (TREE_CODE (arg
) == SSA_NAME
)
514 mark_operand_necessary (arg
, false);
519 for (k
= 0; k
< PHI_NUM_ARGS (i
); k
++)
521 basic_block arg_bb
= PHI_ARG_EDGE (i
, k
)->src
;
522 if (arg_bb
!= ENTRY_BLOCK_PTR
523 && ! TEST_BIT (visited_control_parents
, arg_bb
->index
))
525 SET_BIT (visited_control_parents
, arg_bb
->index
);
526 mark_control_dependent_edges_necessary (arg_bb
, el
);
533 /* Propagate through the operands. Examine all the USE, VUSE and
534 V_MAY_DEF operands in this statement. Mark all the statements
535 which feed this statement's uses as necessary. */
539 /* The operands of V_MAY_DEF expressions are also needed as they
540 represent potential definitions that may reach this
541 statement (V_MAY_DEF operands allow us to follow def-def
544 FOR_EACH_SSA_TREE_OPERAND (use
, i
, iter
, SSA_OP_ALL_USES
)
545 mark_operand_necessary (use
, false);
551 /* Propagate necessity around virtual phi nodes used in kill operands.
552 The reason this isn't done during propagate_necessity is because we don't
553 want to keep phis around that are just there for must-defs, unless we
554 absolutely have to. After we've rewritten the reaching definitions to be
555 correct in the previous part of the fixup routine, we can simply propagate
556 around the information about which of these virtual phi nodes are really
557 used, and set the NECESSARY flag accordingly.
558 Note that we do the minimum here to ensure that we keep alive the phis that
559 are actually used in the corrected SSA form. In particular, some of these
560 phis may now have all of the same operand, and will be deleted by some
564 mark_really_necessary_kill_operand_phis (void)
569 /* Seed the worklist with the new virtual phi arguments and virtual
573 block_stmt_iterator bsi
;
576 for (phi
= phi_nodes (bb
); phi
; phi
= PHI_CHAIN (phi
))
578 if (!is_gimple_reg (PHI_RESULT (phi
)) && NECESSARY (phi
))
580 for (i
= 0; i
< PHI_NUM_ARGS (phi
); i
++)
581 mark_operand_necessary (PHI_ARG_DEF (phi
, i
), true);
585 for (bsi
= bsi_last (bb
); !bsi_end_p (bsi
); bsi_prev (&bsi
))
587 tree stmt
= bsi_stmt (bsi
);
589 if (NECESSARY (stmt
))
593 FOR_EACH_SSA_USE_OPERAND (use_p
, stmt
, iter
,
594 SSA_OP_VIRTUAL_USES
| SSA_OP_VIRTUAL_KILLS
)
596 tree use
= USE_FROM_PTR (use_p
);
597 mark_operand_necessary (use
, true);
603 /* Mark all virtual phis still in use as necessary, and all of their
604 arguments that are phis as necessary. */
605 while (VEC_length (tree
, worklist
) > 0)
607 tree use
= VEC_pop (tree
, worklist
);
609 for (i
= 0; i
< PHI_NUM_ARGS (use
); i
++)
610 mark_operand_necessary (PHI_ARG_DEF (use
, i
), true);
617 /* Eliminate unnecessary statements. Any instruction not marked as necessary
618 contributes nothing to the program, and can be deleted. */
621 eliminate_unnecessary_stmts (void)
624 block_stmt_iterator i
;
626 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
627 fprintf (dump_file
, "\nEliminating unnecessary statements:\n");
629 clear_special_calls ();
632 /* Remove dead PHI nodes. */
633 remove_dead_phis (bb
);
638 /* Remove dead statements. */
639 for (i
= bsi_start (bb
); ! bsi_end_p (i
) ; )
641 tree t
= bsi_stmt (i
);
645 /* If `i' is not necessary then remove it. */
647 remove_dead_stmt (&i
, bb
);
650 tree call
= get_call_expr_in (t
);
652 notice_special_calls (call
);
659 /* Remove dead PHI nodes from block BB. */
662 remove_dead_phis (basic_block bb
)
667 phi
= phi_nodes (bb
);
672 if (! NECESSARY (phi
))
674 tree next
= PHI_CHAIN (phi
);
676 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
678 fprintf (dump_file
, "Deleting : ");
679 print_generic_stmt (dump_file
, phi
, TDF_SLIM
);
680 fprintf (dump_file
, "\n");
683 remove_phi_node (phi
, prev
);
684 stats
.removed_phis
++;
690 phi
= PHI_CHAIN (phi
);
695 /* Remove dead statement pointed by iterator I. Receives the basic block BB
696 containing I so that we don't have to look it up. */
699 remove_dead_stmt (block_stmt_iterator
*i
, basic_block bb
)
701 tree t
= bsi_stmt (*i
);
706 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
708 fprintf (dump_file
, "Deleting : ");
709 print_generic_stmt (dump_file
, t
, TDF_SLIM
);
710 fprintf (dump_file
, "\n");
715 /* If we have determined that a conditional branch statement contributes
716 nothing to the program, then we not only remove it, but we also change
717 the flow graph so that the current block will simply fall-thru to its
718 immediate post-dominator. The blocks we are circumventing will be
719 removed by cleaup_tree_cfg if this change in the flow graph makes them
721 if (is_ctrl_stmt (t
))
723 basic_block post_dom_bb
;
725 /* The post dominance info has to be up-to-date. */
726 gcc_assert (dom_computed
[CDI_POST_DOMINATORS
] == DOM_OK
);
727 /* Get the immediate post dominator of bb. */
728 post_dom_bb
= get_immediate_dominator (CDI_POST_DOMINATORS
, bb
);
729 /* Some blocks don't have an immediate post dominator. This can happen
730 for example with infinite loops. Removing an infinite loop is an
731 inappropriate transformation anyway... */
738 /* If the post dominator block has PHI nodes, we might be unable
739 to compute the right PHI args for them. Since the control
740 statement is unnecessary, all edges can be regarded as
741 equivalent, but we have to get rid of the condition, since it
742 might reference a variable that was determined to be
743 unnecessary and thus removed. */
744 if (phi_nodes (post_dom_bb
))
745 post_dom_bb
= EDGE_SUCC (bb
, 0)->dest
;
748 /* Redirect the first edge out of BB to reach POST_DOM_BB. */
749 redirect_edge_and_branch (EDGE_SUCC (bb
, 0), post_dom_bb
);
750 PENDING_STMT (EDGE_SUCC (bb
, 0)) = NULL
;
752 EDGE_SUCC (bb
, 0)->probability
= REG_BR_PROB_BASE
;
753 EDGE_SUCC (bb
, 0)->count
= bb
->count
;
755 /* The edge is no longer associated with a conditional, so it does
756 not have TRUE/FALSE flags. */
757 EDGE_SUCC (bb
, 0)->flags
&= ~(EDGE_TRUE_VALUE
| EDGE_FALSE_VALUE
);
759 /* If the edge reaches any block other than the exit, then it is a
760 fallthru edge; if it reaches the exit, then it is not a fallthru
762 if (post_dom_bb
!= EXIT_BLOCK_PTR
)
763 EDGE_SUCC (bb
, 0)->flags
|= EDGE_FALLTHRU
;
765 EDGE_SUCC (bb
, 0)->flags
&= ~EDGE_FALLTHRU
;
767 /* Remove the remaining the outgoing edges. */
768 while (!single_succ_p (bb
))
769 remove_edge (EDGE_SUCC (bb
, 1));
772 FOR_EACH_SSA_DEF_OPERAND (def_p
, t
, iter
, SSA_OP_VIRTUAL_DEFS
)
774 tree def
= DEF_FROM_PTR (def_p
);
775 mark_sym_for_renaming (SSA_NAME_VAR (def
));
781 /* Print out removed statement statistics. */
786 if (dump_file
&& (dump_flags
& (TDF_STATS
|TDF_DETAILS
)))
790 percg
= ((float) stats
.removed
/ (float) stats
.total
) * 100;
791 fprintf (dump_file
, "Removed %d of %d statements (%d%%)\n",
792 stats
.removed
, stats
.total
, (int) percg
);
794 if (stats
.total_phis
== 0)
797 percg
= ((float) stats
.removed_phis
/ (float) stats
.total_phis
) * 100;
799 fprintf (dump_file
, "Removed %d of %d PHI nodes (%d%%)\n",
800 stats
.removed_phis
, stats
.total_phis
, (int) percg
);
804 /* Initialization for this pass. Set up the used data structures. */
807 tree_dce_init (bool aggressive
)
809 memset ((void *) &stats
, 0, sizeof (stats
));
815 control_dependence_map
816 = xmalloc (last_basic_block
* sizeof (bitmap
));
817 for (i
= 0; i
< last_basic_block
; ++i
)
818 control_dependence_map
[i
] = BITMAP_ALLOC (NULL
);
820 last_stmt_necessary
= sbitmap_alloc (last_basic_block
);
821 sbitmap_zero (last_stmt_necessary
);
824 processed
= sbitmap_alloc (num_ssa_names
+ 1);
825 sbitmap_zero (processed
);
827 worklist
= VEC_alloc (tree
, heap
, 64);
830 /* Cleanup after this pass. */
833 tree_dce_done (bool aggressive
)
839 for (i
= 0; i
< last_basic_block
; ++i
)
840 BITMAP_FREE (control_dependence_map
[i
]);
841 free (control_dependence_map
);
843 sbitmap_free (visited_control_parents
);
844 sbitmap_free (last_stmt_necessary
);
847 sbitmap_free (processed
);
849 VEC_free (tree
, heap
, worklist
);
852 /* Main routine to eliminate dead code.
854 AGGRESSIVE controls the aggressiveness of the algorithm.
855 In conservative mode, we ignore control dependence and simply declare
856 all but the most trivially dead branches necessary. This mode is fast.
857 In aggressive mode, control dependences are taken into account, which
858 results in more dead code elimination, but at the cost of some time.
860 FIXME: Aggressive mode before PRE doesn't work currently because
861 the dominance info is not invalidated after DCE1. This is
862 not an issue right now because we only run aggressive DCE
863 as the last tree SSA pass, but keep this in mind when you
864 start experimenting with pass ordering. */
867 perform_tree_ssa_dce (bool aggressive
)
869 struct edge_list
*el
= NULL
;
871 tree_dce_init (aggressive
);
875 /* Compute control dependence. */
876 timevar_push (TV_CONTROL_DEPENDENCES
);
877 calculate_dominance_info (CDI_POST_DOMINATORS
);
878 el
= create_edge_list ();
879 find_all_control_dependences (el
);
880 timevar_pop (TV_CONTROL_DEPENDENCES
);
882 visited_control_parents
= sbitmap_alloc (last_basic_block
);
883 sbitmap_zero (visited_control_parents
);
885 mark_dfs_back_edges ();
888 find_obviously_necessary_stmts (el
);
890 propagate_necessity (el
);
892 mark_really_necessary_kill_operand_phis ();
893 eliminate_unnecessary_stmts ();
896 free_dominance_info (CDI_POST_DOMINATORS
);
898 /* Debugging dumps. */
902 tree_dce_done (aggressive
);
907 /* Pass entry points. */
911 perform_tree_ssa_dce (/*aggressive=*/false);
915 tree_ssa_cd_dce (void)
917 perform_tree_ssa_dce (/*aggressive=*/optimize
>= 2);
923 return flag_tree_dce
!= 0;
926 struct tree_opt_pass pass_dce
=
930 tree_ssa_dce
, /* execute */
933 0, /* static_pass_number */
934 TV_TREE_DCE
, /* tv_id */
935 PROP_cfg
| PROP_ssa
| PROP_alias
, /* properties_required */
936 0, /* properties_provided */
937 0, /* properties_destroyed */
938 0, /* todo_flags_start */
940 | TODO_update_ssa_no_phi
943 | TODO_verify_ssa
, /* todo_flags_finish */
947 struct tree_opt_pass pass_cd_dce
=
951 tree_ssa_cd_dce
, /* execute */
954 0, /* static_pass_number */
955 TV_TREE_CD_DCE
, /* tv_id */
956 PROP_cfg
| PROP_ssa
| PROP_alias
, /* properties_required */
957 0, /* properties_provided */
958 0, /* properties_destroyed */
959 0, /* todo_flags_start */
961 | TODO_update_ssa_no_phi
965 | TODO_verify_flow
, /* todo_flags_finish */