1 /* Define control and data flow tables, and regsets.
2 Copyright (C) 1987, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004,
3 2005, 2006, 2007, 2008 Free Software Foundation, Inc.
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 3, or (at your option) any later
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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/>. */
21 #ifndef GCC_BASIC_BLOCK_H
22 #define GCC_BASIC_BLOCK_H
27 #include "partition.h"
28 #include "hard-reg-set.h"
33 /* Head of register set linked list. */
34 typedef bitmap_head regset_head
;
36 /* A pointer to a regset_head. */
37 typedef bitmap regset
;
39 /* Allocate a register set with oballoc. */
40 #define ALLOC_REG_SET(OBSTACK) BITMAP_ALLOC (OBSTACK)
42 /* Do any cleanup needed on a regset when it is no longer used. */
43 #define FREE_REG_SET(REGSET) BITMAP_FREE (REGSET)
45 /* Initialize a new regset. */
46 #define INIT_REG_SET(HEAD) bitmap_initialize (HEAD, ®_obstack)
48 /* Clear a register set by freeing up the linked list. */
49 #define CLEAR_REG_SET(HEAD) bitmap_clear (HEAD)
51 /* Copy a register set to another register set. */
52 #define COPY_REG_SET(TO, FROM) bitmap_copy (TO, FROM)
54 /* Compare two register sets. */
55 #define REG_SET_EQUAL_P(A, B) bitmap_equal_p (A, B)
57 /* `and' a register set with a second register set. */
58 #define AND_REG_SET(TO, FROM) bitmap_and_into (TO, FROM)
60 /* `and' the complement of a register set with a register set. */
61 #define AND_COMPL_REG_SET(TO, FROM) bitmap_and_compl_into (TO, FROM)
63 /* Inclusive or a register set with a second register set. */
64 #define IOR_REG_SET(TO, FROM) bitmap_ior_into (TO, FROM)
66 /* Exclusive or a register set with a second register set. */
67 #define XOR_REG_SET(TO, FROM) bitmap_xor_into (TO, FROM)
69 /* Or into TO the register set FROM1 `and'ed with the complement of FROM2. */
70 #define IOR_AND_COMPL_REG_SET(TO, FROM1, FROM2) \
71 bitmap_ior_and_compl_into (TO, FROM1, FROM2)
73 /* Clear a single register in a register set. */
74 #define CLEAR_REGNO_REG_SET(HEAD, REG) bitmap_clear_bit (HEAD, REG)
76 /* Set a single register in a register set. */
77 #define SET_REGNO_REG_SET(HEAD, REG) bitmap_set_bit (HEAD, REG)
79 /* Return true if a register is set in a register set. */
80 #define REGNO_REG_SET_P(TO, REG) bitmap_bit_p (TO, REG)
82 /* Copy the hard registers in a register set to the hard register set. */
83 extern void reg_set_to_hard_reg_set (HARD_REG_SET
*, const_bitmap
);
84 #define REG_SET_TO_HARD_REG_SET(TO, FROM) \
86 CLEAR_HARD_REG_SET (TO); \
87 reg_set_to_hard_reg_set (&TO, FROM); \
90 typedef bitmap_iterator reg_set_iterator
;
92 /* Loop over all registers in REGSET, starting with MIN, setting REGNUM to the
93 register number and executing CODE for all registers that are set. */
94 #define EXECUTE_IF_SET_IN_REG_SET(REGSET, MIN, REGNUM, RSI) \
95 EXECUTE_IF_SET_IN_BITMAP (REGSET, MIN, REGNUM, RSI)
97 /* Loop over all registers in REGSET1 and REGSET2, starting with MIN, setting
98 REGNUM to the register number and executing CODE for all registers that are
99 set in the first regset and not set in the second. */
100 #define EXECUTE_IF_AND_COMPL_IN_REG_SET(REGSET1, REGSET2, MIN, REGNUM, RSI) \
101 EXECUTE_IF_AND_COMPL_IN_BITMAP (REGSET1, REGSET2, MIN, REGNUM, RSI)
103 /* Loop over all registers in REGSET1 and REGSET2, starting with MIN, setting
104 REGNUM to the register number and executing CODE for all registers that are
105 set in both regsets. */
106 #define EXECUTE_IF_AND_IN_REG_SET(REGSET1, REGSET2, MIN, REGNUM, RSI) \
107 EXECUTE_IF_AND_IN_BITMAP (REGSET1, REGSET2, MIN, REGNUM, RSI) \
109 /* Type we use to hold basic block counters. Should be at least
110 64bit. Although a counter cannot be negative, we use a signed
111 type, because erroneous negative counts can be generated when the
112 flow graph is manipulated by various optimizations. A signed type
113 makes those easy to detect. */
114 typedef HOST_WIDEST_INT gcov_type
;
116 /* Control flow edge information. */
117 struct edge_def
GTY(())
119 /* The two blocks at the ends of the edge. */
120 struct basic_block_def
*src
;
121 struct basic_block_def
*dest
;
123 /* Instructions queued on the edge. */
124 union edge_def_insns
{
125 gimple_seq
GTY ((tag ("true"))) g
;
126 rtx
GTY ((tag ("false"))) r
;
127 } GTY ((desc ("current_ir_type () == IR_GIMPLE"))) insns
;
129 /* Auxiliary info specific to a pass. */
130 PTR
GTY ((skip (""))) aux
;
132 /* Location of any goto implicit in the edge, during tree-ssa. */
133 location_t goto_locus
;
135 /* The index number corresponding to this edge in the edge vector
137 unsigned int dest_idx
;
139 int flags
; /* see EDGE_* below */
140 int probability
; /* biased by REG_BR_PROB_BASE */
141 gcov_type count
; /* Expected number of executions calculated
145 typedef struct edge_def
*edge
;
146 typedef const struct edge_def
*const_edge
;
148 DEF_VEC_ALLOC_P(edge
,gc
);
149 DEF_VEC_ALLOC_P(edge
,heap
);
151 #define EDGE_FALLTHRU 1 /* 'Straight line' flow */
152 #define EDGE_ABNORMAL 2 /* Strange flow, like computed
154 #define EDGE_ABNORMAL_CALL 4 /* Call with abnormal exit
155 like an exception, or sibcall */
156 #define EDGE_EH 8 /* Exception throw */
157 #define EDGE_FAKE 16 /* Not a real edge (profile.c) */
158 #define EDGE_DFS_BACK 32 /* A backwards edge */
159 #define EDGE_CAN_FALLTHRU 64 /* Candidate for straight line
161 #define EDGE_IRREDUCIBLE_LOOP 128 /* Part of irreducible loop. */
162 #define EDGE_SIBCALL 256 /* Edge from sibcall to exit. */
163 #define EDGE_LOOP_EXIT 512 /* Exit of a loop. */
164 #define EDGE_TRUE_VALUE 1024 /* Edge taken when controlling
165 predicate is nonzero. */
166 #define EDGE_FALSE_VALUE 2048 /* Edge taken when controlling
167 predicate is zero. */
168 #define EDGE_EXECUTABLE 4096 /* Edge is executable. Only
169 valid during SSA-CCP. */
170 #define EDGE_CROSSING 8192 /* Edge crosses between hot
171 and cold sections, when we
173 #define EDGE_ALL_FLAGS 16383
175 #define EDGE_COMPLEX (EDGE_ABNORMAL | EDGE_ABNORMAL_CALL | EDGE_EH)
177 /* Counter summary from the last set of coverage counts read by
179 extern const struct gcov_ctr_summary
*profile_info
;
181 /* Declared in cfgloop.h. */
184 /* Declared in tree-flow.h. */
185 struct edge_prediction
;
188 /* A basic block is a sequence of instructions with only entry and
189 only one exit. If any one of the instructions are executed, they
190 will all be executed, and in sequence from first to last.
192 There may be COND_EXEC instructions in the basic block. The
193 COND_EXEC *instructions* will be executed -- but if the condition
194 is false the conditionally executed *expressions* will of course
195 not be executed. We don't consider the conditionally executed
196 expression (which might have side-effects) to be in a separate
197 basic block because the program counter will always be at the same
198 location after the COND_EXEC instruction, regardless of whether the
199 condition is true or not.
201 Basic blocks need not start with a label nor end with a jump insn.
202 For example, a previous basic block may just "conditionally fall"
203 into the succeeding basic block, and the last basic block need not
204 end with a jump insn. Block 0 is a descendant of the entry block.
206 A basic block beginning with two labels cannot have notes between
209 Data for jump tables are stored in jump_insns that occur in no
210 basic block even though these insns can follow or precede insns in
213 /* Basic block information indexed by block number. */
214 struct basic_block_def
GTY((chain_next ("%h.next_bb"), chain_prev ("%h.prev_bb")))
216 /* The edges into and out of the block. */
220 /* Auxiliary info specific to a pass. */
221 PTR
GTY ((skip (""))) aux
;
223 /* Innermost loop containing the block. */
224 struct loop
*loop_father
;
226 /* The dominance and postdominance information node. */
227 struct et_node
* GTY ((skip (""))) dom
[2];
229 /* Previous and next blocks in the chain. */
230 struct basic_block_def
*prev_bb
;
231 struct basic_block_def
*next_bb
;
233 union basic_block_il_dependent
{
234 struct gimple_bb_info
* GTY ((tag ("0"))) gimple
;
235 struct rtl_bb_info
* GTY ((tag ("1"))) rtl
;
236 } GTY ((desc ("((%1.flags & BB_RTL) != 0)"))) il
;
238 /* Expected number of executions: calculated in profile.c. */
241 /* The index of this block. */
244 /* The loop depth of this block. */
247 /* Expected frequency. Normalized to be in range 0 to BB_FREQ_MAX. */
250 /* Various flags. See BB_* below. */
254 struct rtl_bb_info
GTY(())
256 /* The first and last insns of the block. */
260 /* In CFGlayout mode points to insn notes/jumptables to be placed just before
261 and after the block. */
265 /* This field is used by the bb-reorder and tracer passes. */
269 struct gimple_bb_info
GTY(())
271 /* Sequence of statements in this block. */
274 /* PHI nodes for this block. */
275 gimple_seq phi_nodes
;
278 typedef struct basic_block_def
*basic_block
;
279 typedef const struct basic_block_def
*const_basic_block
;
281 DEF_VEC_P(basic_block
);
282 DEF_VEC_ALLOC_P(basic_block
,gc
);
283 DEF_VEC_ALLOC_P(basic_block
,heap
);
285 #define BB_FREQ_MAX 10000
287 /* Masks for basic_block.flags.
289 BB_HOT_PARTITION and BB_COLD_PARTITION should be preserved throughout
290 the compilation, so they are never cleared.
292 All other flags may be cleared by clear_bb_flags(). It is generally
293 a bad idea to rely on any flags being up-to-date. */
297 /* Only set on blocks that have just been created by create_bb. */
300 /* Set by find_unreachable_blocks. Do not rely on this being set in any
302 BB_REACHABLE
= 1 << 1,
304 /* Set for blocks in an irreducible loop by loop analysis. */
305 BB_IRREDUCIBLE_LOOP
= 1 << 2,
307 /* Set on blocks that may actually not be single-entry single-exit block. */
308 BB_SUPERBLOCK
= 1 << 3,
310 /* Set on basic blocks that the scheduler should not touch. This is used
311 by SMS to prevent other schedulers from messing with the loop schedule. */
312 BB_DISABLE_SCHEDULE
= 1 << 4,
314 /* Set on blocks that should be put in a hot section. */
315 BB_HOT_PARTITION
= 1 << 5,
317 /* Set on blocks that should be put in a cold section. */
318 BB_COLD_PARTITION
= 1 << 6,
320 /* Set on block that was duplicated. */
321 BB_DUPLICATED
= 1 << 7,
323 /* Set if the label at the top of this block is the target of a non-local goto. */
324 BB_NON_LOCAL_GOTO_TARGET
= 1 << 8,
326 /* Set on blocks that are in RTL format. */
329 /* Set on blocks that are forwarder blocks.
330 Only used in cfgcleanup.c. */
331 BB_FORWARDER_BLOCK
= 1 << 10,
333 /* Set on blocks that cannot be threaded through.
334 Only used in cfgcleanup.c. */
335 BB_NONTHREADABLE_BLOCK
= 1 << 11
338 /* Dummy flag for convenience in the hot/cold partitioning code. */
339 #define BB_UNPARTITIONED 0
341 /* Partitions, to be used when partitioning hot and cold basic blocks into
342 separate sections. */
343 #define BB_PARTITION(bb) ((bb)->flags & (BB_HOT_PARTITION|BB_COLD_PARTITION))
344 #define BB_SET_PARTITION(bb, part) do { \
345 basic_block bb_ = (bb); \
346 bb_->flags = ((bb_->flags & ~(BB_HOT_PARTITION|BB_COLD_PARTITION)) \
350 #define BB_COPY_PARTITION(dstbb, srcbb) \
351 BB_SET_PARTITION (dstbb, BB_PARTITION (srcbb))
353 /* State of dominance information. */
357 DOM_NONE
, /* Not computed at all. */
358 DOM_NO_FAST_QUERY
, /* The data is OK, but the fast query data are not usable. */
359 DOM_OK
/* Everything is ok. */
362 /* A structure to group all the per-function control flow graph data.
363 The x_* prefixing is necessary because otherwise references to the
364 fields of this struct are interpreted as the defines for backward
365 source compatibility following the definition of this struct. */
366 struct control_flow_graph
GTY(())
368 /* Block pointers for the exit and entry of a function.
369 These are always the head and tail of the basic block list. */
370 basic_block x_entry_block_ptr
;
371 basic_block x_exit_block_ptr
;
373 /* Index by basic block number, get basic block struct info. */
374 VEC(basic_block
,gc
) *x_basic_block_info
;
376 /* Number of basic blocks in this flow graph. */
377 int x_n_basic_blocks
;
379 /* Number of edges in this flow graph. */
382 /* The first free basic block number. */
383 int x_last_basic_block
;
385 /* Mapping of labels to their associated blocks. At present
386 only used for the gimple CFG. */
387 VEC(basic_block
,gc
) *x_label_to_block_map
;
389 enum profile_status
{
395 /* Whether the dominators and the postdominators are available. */
396 enum dom_state x_dom_computed
[2];
398 /* Number of basic blocks in the dominance tree. */
399 unsigned x_n_bbs_in_dom_tree
[2];
401 /* Maximal number of entities in the single jumptable. Used to estimate
402 final flowgraph size. */
403 int max_jumptable_ents
;
405 /* UIDs for LABEL_DECLs. */
409 /* Defines for accessing the fields of the CFG structure for function FN. */
410 #define ENTRY_BLOCK_PTR_FOR_FUNCTION(FN) ((FN)->cfg->x_entry_block_ptr)
411 #define EXIT_BLOCK_PTR_FOR_FUNCTION(FN) ((FN)->cfg->x_exit_block_ptr)
412 #define basic_block_info_for_function(FN) ((FN)->cfg->x_basic_block_info)
413 #define n_basic_blocks_for_function(FN) ((FN)->cfg->x_n_basic_blocks)
414 #define n_edges_for_function(FN) ((FN)->cfg->x_n_edges)
415 #define last_basic_block_for_function(FN) ((FN)->cfg->x_last_basic_block)
416 #define label_to_block_map_for_function(FN) ((FN)->cfg->x_label_to_block_map)
417 #define profile_status_for_function(FN) ((FN)->cfg->x_profile_status)
419 #define BASIC_BLOCK_FOR_FUNCTION(FN,N) \
420 (VEC_index (basic_block, basic_block_info_for_function(FN), (N)))
421 #define SET_BASIC_BLOCK_FOR_FUNCTION(FN,N,BB) \
422 (VEC_replace (basic_block, basic_block_info_for_function(FN), (N), (BB)))
424 /* Defines for textual backward source compatibility. */
425 #define ENTRY_BLOCK_PTR (cfun->cfg->x_entry_block_ptr)
426 #define EXIT_BLOCK_PTR (cfun->cfg->x_exit_block_ptr)
427 #define basic_block_info (cfun->cfg->x_basic_block_info)
428 #define n_basic_blocks (cfun->cfg->x_n_basic_blocks)
429 #define n_edges (cfun->cfg->x_n_edges)
430 #define last_basic_block (cfun->cfg->x_last_basic_block)
431 #define label_to_block_map (cfun->cfg->x_label_to_block_map)
432 #define profile_status (cfun->cfg->x_profile_status)
434 #define BASIC_BLOCK(N) (VEC_index (basic_block, basic_block_info, (N)))
435 #define SET_BASIC_BLOCK(N,BB) (VEC_replace (basic_block, basic_block_info, (N), (BB)))
437 /* For iterating over basic blocks. */
438 #define FOR_BB_BETWEEN(BB, FROM, TO, DIR) \
439 for (BB = FROM; BB != TO; BB = BB->DIR)
441 #define FOR_EACH_BB_FN(BB, FN) \
442 FOR_BB_BETWEEN (BB, (FN)->cfg->x_entry_block_ptr->next_bb, (FN)->cfg->x_exit_block_ptr, next_bb)
444 #define FOR_EACH_BB(BB) FOR_EACH_BB_FN (BB, cfun)
446 #define FOR_EACH_BB_REVERSE_FN(BB, FN) \
447 FOR_BB_BETWEEN (BB, (FN)->cfg->x_exit_block_ptr->prev_bb, (FN)->cfg->x_entry_block_ptr, prev_bb)
449 #define FOR_EACH_BB_REVERSE(BB) FOR_EACH_BB_REVERSE_FN(BB, cfun)
451 /* For iterating over insns in basic block. */
452 #define FOR_BB_INSNS(BB, INSN) \
453 for ((INSN) = BB_HEAD (BB); \
454 (INSN) && (INSN) != NEXT_INSN (BB_END (BB)); \
455 (INSN) = NEXT_INSN (INSN))
457 /* For iterating over insns in basic block when we might remove the
459 #define FOR_BB_INSNS_SAFE(BB, INSN, CURR) \
460 for ((INSN) = BB_HEAD (BB), (CURR) = (INSN) ? NEXT_INSN ((INSN)): NULL; \
461 (INSN) && (INSN) != NEXT_INSN (BB_END (BB)); \
462 (INSN) = (CURR), (CURR) = (INSN) ? NEXT_INSN ((INSN)) : NULL)
464 #define FOR_BB_INSNS_REVERSE(BB, INSN) \
465 for ((INSN) = BB_END (BB); \
466 (INSN) && (INSN) != PREV_INSN (BB_HEAD (BB)); \
467 (INSN) = PREV_INSN (INSN))
469 #define FOR_BB_INSNS_REVERSE_SAFE(BB, INSN, CURR) \
470 for ((INSN) = BB_END (BB),(CURR) = (INSN) ? PREV_INSN ((INSN)) : NULL; \
471 (INSN) && (INSN) != PREV_INSN (BB_HEAD (BB)); \
472 (INSN) = (CURR), (CURR) = (INSN) ? PREV_INSN ((INSN)) : NULL)
474 /* Cycles through _all_ basic blocks, even the fake ones (entry and
477 #define FOR_ALL_BB(BB) \
478 for (BB = ENTRY_BLOCK_PTR; BB; BB = BB->next_bb)
480 #define FOR_ALL_BB_FN(BB, FN) \
481 for (BB = ENTRY_BLOCK_PTR_FOR_FUNCTION (FN); BB; BB = BB->next_bb)
483 extern bitmap_obstack reg_obstack
;
486 /* Stuff for recording basic block info. */
488 #define BB_HEAD(B) (B)->il.rtl->head_
489 #define BB_END(B) (B)->il.rtl->end_
491 /* Special block numbers [markers] for entry and exit. */
492 #define ENTRY_BLOCK (0)
493 #define EXIT_BLOCK (1)
495 /* The two blocks that are always in the cfg. */
496 #define NUM_FIXED_BLOCKS (2)
499 #define BLOCK_NUM(INSN) (BLOCK_FOR_INSN (INSN)->index + 0)
500 #define set_block_for_insn(INSN, BB) (BLOCK_FOR_INSN (INSN) = BB)
502 extern void compute_bb_for_insn (void);
503 extern unsigned int free_bb_for_insn (void);
504 extern void update_bb_for_insn (basic_block
);
506 extern void insert_insn_on_edge (rtx
, edge
);
507 basic_block
split_edge_and_insert (edge
, rtx
);
509 extern void commit_edge_insertions (void);
511 extern void remove_fake_edges (void);
512 extern void remove_fake_exit_edges (void);
513 extern void add_noreturn_fake_exit_edges (void);
514 extern void connect_infinite_loops_to_exit (void);
515 extern edge
unchecked_make_edge (basic_block
, basic_block
, int);
516 extern edge
cached_make_edge (sbitmap
, basic_block
, basic_block
, int);
517 extern edge
make_edge (basic_block
, basic_block
, int);
518 extern edge
make_single_succ_edge (basic_block
, basic_block
, int);
519 extern void remove_edge_raw (edge
);
520 extern void redirect_edge_succ (edge
, basic_block
);
521 extern edge
redirect_edge_succ_nodup (edge
, basic_block
);
522 extern void redirect_edge_pred (edge
, basic_block
);
523 extern basic_block
create_basic_block_structure (rtx
, rtx
, rtx
, basic_block
);
524 extern void clear_bb_flags (void);
525 extern int post_order_compute (int *, bool, bool);
526 extern int inverted_post_order_compute (int *);
527 extern int pre_and_rev_post_order_compute (int *, int *, bool);
528 extern int dfs_enumerate_from (basic_block
, int,
529 bool (*)(const_basic_block
, const void *),
530 basic_block
*, int, const void *);
531 extern void compute_dominance_frontiers (bitmap
*);
532 extern bitmap
compute_idf (bitmap
, bitmap
*);
533 extern void dump_bb_info (basic_block
, bool, bool, int, const char *, FILE *);
534 extern void dump_edge_info (FILE *, edge
, int);
535 extern void brief_dump_cfg (FILE *);
536 extern void clear_edges (void);
537 extern void scale_bbs_frequencies_int (basic_block
*, int, int, int);
538 extern void scale_bbs_frequencies_gcov_type (basic_block
*, int, gcov_type
,
541 /* Structure to group all of the information to process IF-THEN and
542 IF-THEN-ELSE blocks for the conditional execution support. This
543 needs to be in a public file in case the IFCVT macros call
544 functions passing the ce_if_block data structure. */
546 typedef struct ce_if_block
548 basic_block test_bb
; /* First test block. */
549 basic_block then_bb
; /* THEN block. */
550 basic_block else_bb
; /* ELSE block or NULL. */
551 basic_block join_bb
; /* Join THEN/ELSE blocks. */
552 basic_block last_test_bb
; /* Last bb to hold && or || tests. */
553 int num_multiple_test_blocks
; /* # of && and || basic blocks. */
554 int num_and_and_blocks
; /* # of && blocks. */
555 int num_or_or_blocks
; /* # of || blocks. */
556 int num_multiple_test_insns
; /* # of insns in && and || blocks. */
557 int and_and_p
; /* Complex test is &&. */
558 int num_then_insns
; /* # of insns in THEN block. */
559 int num_else_insns
; /* # of insns in ELSE block. */
560 int pass
; /* Pass number. */
562 #ifdef IFCVT_EXTRA_FIELDS
563 IFCVT_EXTRA_FIELDS
/* Any machine dependent fields. */
568 /* This structure maintains an edge list vector. */
576 /* The base value for branch probability notes and edge probabilities. */
577 #define REG_BR_PROB_BASE 10000
579 /* This is the value which indicates no edge is present. */
580 #define EDGE_INDEX_NO_EDGE -1
582 /* EDGE_INDEX returns an integer index for an edge, or EDGE_INDEX_NO_EDGE
583 if there is no edge between the 2 basic blocks. */
584 #define EDGE_INDEX(el, pred, succ) (find_edge_index ((el), (pred), (succ)))
586 /* INDEX_EDGE_PRED_BB and INDEX_EDGE_SUCC_BB return a pointer to the basic
587 block which is either the pred or succ end of the indexed edge. */
588 #define INDEX_EDGE_PRED_BB(el, index) ((el)->index_to_edge[(index)]->src)
589 #define INDEX_EDGE_SUCC_BB(el, index) ((el)->index_to_edge[(index)]->dest)
591 /* INDEX_EDGE returns a pointer to the edge. */
592 #define INDEX_EDGE(el, index) ((el)->index_to_edge[(index)])
594 /* Number of edges in the compressed edge list. */
595 #define NUM_EDGES(el) ((el)->num_edges)
597 /* BB is assumed to contain conditional jump. Return the fallthru edge. */
598 #define FALLTHRU_EDGE(bb) (EDGE_SUCC ((bb), 0)->flags & EDGE_FALLTHRU \
599 ? EDGE_SUCC ((bb), 0) : EDGE_SUCC ((bb), 1))
601 /* BB is assumed to contain conditional jump. Return the branch edge. */
602 #define BRANCH_EDGE(bb) (EDGE_SUCC ((bb), 0)->flags & EDGE_FALLTHRU \
603 ? EDGE_SUCC ((bb), 1) : EDGE_SUCC ((bb), 0))
605 /* Return expected execution frequency of the edge E. */
606 #define EDGE_FREQUENCY(e) (((e)->src->frequency \
608 + REG_BR_PROB_BASE / 2) \
611 /* Return nonzero if edge is critical. */
612 #define EDGE_CRITICAL_P(e) (EDGE_COUNT ((e)->src->succs) >= 2 \
613 && EDGE_COUNT ((e)->dest->preds) >= 2)
615 #define EDGE_COUNT(ev) VEC_length (edge, (ev))
616 #define EDGE_I(ev,i) VEC_index (edge, (ev), (i))
617 #define EDGE_PRED(bb,i) VEC_index (edge, (bb)->preds, (i))
618 #define EDGE_SUCC(bb,i) VEC_index (edge, (bb)->succs, (i))
620 /* Returns true if BB has precisely one successor. */
623 single_succ_p (const_basic_block bb
)
625 return EDGE_COUNT (bb
->succs
) == 1;
628 /* Returns true if BB has precisely one predecessor. */
631 single_pred_p (const_basic_block bb
)
633 return EDGE_COUNT (bb
->preds
) == 1;
636 /* Returns the single successor edge of basic block BB. Aborts if
637 BB does not have exactly one successor. */
640 single_succ_edge (const_basic_block bb
)
642 gcc_assert (single_succ_p (bb
));
643 return EDGE_SUCC (bb
, 0);
646 /* Returns the single predecessor edge of basic block BB. Aborts
647 if BB does not have exactly one predecessor. */
650 single_pred_edge (const_basic_block bb
)
652 gcc_assert (single_pred_p (bb
));
653 return EDGE_PRED (bb
, 0);
656 /* Returns the single successor block of basic block BB. Aborts
657 if BB does not have exactly one successor. */
659 static inline basic_block
660 single_succ (const_basic_block bb
)
662 return single_succ_edge (bb
)->dest
;
665 /* Returns the single predecessor block of basic block BB. Aborts
666 if BB does not have exactly one predecessor.*/
668 static inline basic_block
669 single_pred (const_basic_block bb
)
671 return single_pred_edge (bb
)->src
;
674 /* Iterator object for edges. */
678 VEC(edge
,gc
) **container
;
681 static inline VEC(edge
,gc
) *
682 ei_container (edge_iterator i
)
684 gcc_assert (i
.container
);
688 #define ei_start(iter) ei_start_1 (&(iter))
689 #define ei_last(iter) ei_last_1 (&(iter))
691 /* Return an iterator pointing to the start of an edge vector. */
692 static inline edge_iterator
693 ei_start_1 (VEC(edge
,gc
) **ev
)
703 /* Return an iterator pointing to the last element of an edge
705 static inline edge_iterator
706 ei_last_1 (VEC(edge
,gc
) **ev
)
710 i
.index
= EDGE_COUNT (*ev
) - 1;
716 /* Is the iterator `i' at the end of the sequence? */
718 ei_end_p (edge_iterator i
)
720 return (i
.index
== EDGE_COUNT (ei_container (i
)));
723 /* Is the iterator `i' at one position before the end of the
726 ei_one_before_end_p (edge_iterator i
)
728 return (i
.index
+ 1 == EDGE_COUNT (ei_container (i
)));
731 /* Advance the iterator to the next element. */
733 ei_next (edge_iterator
*i
)
735 gcc_assert (i
->index
< EDGE_COUNT (ei_container (*i
)));
739 /* Move the iterator to the previous element. */
741 ei_prev (edge_iterator
*i
)
743 gcc_assert (i
->index
> 0);
747 /* Return the edge pointed to by the iterator `i'. */
749 ei_edge (edge_iterator i
)
751 return EDGE_I (ei_container (i
), i
.index
);
754 /* Return an edge pointed to by the iterator. Do it safely so that
755 NULL is returned when the iterator is pointing at the end of the
758 ei_safe_edge (edge_iterator i
)
760 return !ei_end_p (i
) ? ei_edge (i
) : NULL
;
763 /* Return 1 if we should continue to iterate. Return 0 otherwise.
764 *Edge P is set to the next edge if we are to continue to iterate
765 and NULL otherwise. */
768 ei_cond (edge_iterator ei
, edge
*p
)
782 /* This macro serves as a convenient way to iterate each edge in a
783 vector of predecessor or successor edges. It must not be used when
784 an element might be removed during the traversal, otherwise
785 elements will be missed. Instead, use a for-loop like that shown
786 in the following pseudo-code:
788 FOR (ei = ei_start (bb->succs); (e = ei_safe_edge (ei)); )
797 #define FOR_EACH_EDGE(EDGE,ITER,EDGE_VEC) \
798 for ((ITER) = ei_start ((EDGE_VEC)); \
799 ei_cond ((ITER), &(EDGE)); \
802 struct edge_list
* create_edge_list (void);
803 void free_edge_list (struct edge_list
*);
804 void print_edge_list (FILE *, struct edge_list
*);
805 void verify_edge_list (FILE *, struct edge_list
*);
806 int find_edge_index (struct edge_list
*, basic_block
, basic_block
);
807 edge
find_edge (basic_block
, basic_block
);
809 #define CLEANUP_EXPENSIVE 1 /* Do relatively expensive optimizations
810 except for edge forwarding */
811 #define CLEANUP_CROSSJUMP 2 /* Do crossjumping. */
812 #define CLEANUP_POST_REGSTACK 4 /* We run after reg-stack and need
813 to care REG_DEAD notes. */
814 #define CLEANUP_THREADING 8 /* Do jump threading. */
815 #define CLEANUP_NO_INSN_DEL 16 /* Do not try to delete trivially dead
817 #define CLEANUP_CFGLAYOUT 32 /* Do cleanup in cfglayout mode. */
820 extern struct edge_list
*pre_edge_lcm (int, sbitmap
*, sbitmap
*,
821 sbitmap
*, sbitmap
*, sbitmap
**,
823 extern struct edge_list
*pre_edge_rev_lcm (int, sbitmap
*,
824 sbitmap
*, sbitmap
*,
825 sbitmap
*, sbitmap
**,
827 extern void compute_available (sbitmap
*, sbitmap
*, sbitmap
*, sbitmap
*);
830 extern bool maybe_hot_bb_p (const_basic_block
);
831 extern bool maybe_hot_edge_p (edge
);
832 extern bool probably_cold_bb_p (const_basic_block
);
833 extern bool probably_never_executed_bb_p (const_basic_block
);
834 extern bool optimize_bb_for_size_p (basic_block
);
835 extern bool optimize_bb_for_speed_p (basic_block
);
836 extern bool optimize_edge_for_size_p (edge
);
837 extern bool optimize_edge_for_speed_p (edge
);
838 extern bool optimize_insn_for_size_p (void);
839 extern bool optimize_insn_for_speed_p (void);
840 extern bool gimple_predicted_by_p (const_basic_block
, enum br_predictor
);
841 extern bool rtl_predicted_by_p (const_basic_block
, enum br_predictor
);
842 extern void gimple_predict_edge (edge
, enum br_predictor
, int);
843 extern void rtl_predict_edge (edge
, enum br_predictor
, int);
844 extern void predict_edge_def (edge
, enum br_predictor
, enum prediction
);
845 extern void guess_outgoing_edge_probabilities (basic_block
);
846 extern void remove_predictions_associated_with_edge (edge
);
847 extern bool edge_probability_reliable_p (const_edge
);
848 extern bool br_prob_note_reliable_p (const_rtx
);
851 extern void dump_regset (regset
, FILE *);
852 extern void debug_regset (regset
);
853 extern void init_flow (struct function
*);
854 extern void debug_bb (basic_block
);
855 extern basic_block
debug_bb_n (int);
856 extern void dump_regset (regset
, FILE *);
857 extern void debug_regset (regset
);
858 extern void expunge_block (basic_block
);
859 extern void link_block (basic_block
, basic_block
);
860 extern void unlink_block (basic_block
);
861 extern void compact_blocks (void);
862 extern basic_block
alloc_block (void);
863 extern void alloc_aux_for_block (basic_block
, int);
864 extern void alloc_aux_for_blocks (int);
865 extern void clear_aux_for_blocks (void);
866 extern void free_aux_for_blocks (void);
867 extern void alloc_aux_for_edge (edge
, int);
868 extern void alloc_aux_for_edges (int);
869 extern void clear_aux_for_edges (void);
870 extern void free_aux_for_edges (void);
873 extern void find_unreachable_blocks (void);
874 extern bool forwarder_block_p (const_basic_block
);
875 extern bool can_fallthru (basic_block
, basic_block
);
876 extern bool could_fall_through (basic_block
, basic_block
);
877 extern void flow_nodes_print (const char *, const_sbitmap
, FILE *);
878 extern void flow_edge_list_print (const char *, const edge
*, int, FILE *);
881 extern basic_block
force_nonfallthru (edge
);
882 extern rtx
block_label (basic_block
);
883 extern bool purge_all_dead_edges (void);
884 extern bool purge_dead_edges (basic_block
);
887 extern void find_many_sub_basic_blocks (sbitmap
);
888 extern void rtl_make_eh_edge (sbitmap
, basic_block
, rtx
);
889 extern void find_basic_blocks (rtx
);
891 /* In cfgcleanup.c. */
892 extern bool cleanup_cfg (int);
893 extern bool delete_unreachable_blocks (void);
895 extern bool mark_dfs_back_edges (void);
896 extern void set_edge_can_fallthru_flag (void);
897 extern void update_br_prob_note (basic_block
);
898 extern void fixup_abnormal_edges (void);
899 extern bool inside_basic_block_p (const_rtx
);
900 extern bool control_flow_insn_p (const_rtx
);
901 extern rtx
get_last_bb_insn (basic_block
);
903 /* In bb-reorder.c */
904 extern void reorder_basic_blocks (void);
911 CDI_POST_DOMINATORS
= 2
914 extern enum dom_state
dom_info_state (enum cdi_direction
);
915 extern void set_dom_info_availability (enum cdi_direction
, enum dom_state
);
916 extern bool dom_info_available_p (enum cdi_direction
);
917 extern void calculate_dominance_info (enum cdi_direction
);
918 extern void free_dominance_info (enum cdi_direction
);
919 extern basic_block
nearest_common_dominator (enum cdi_direction
,
920 basic_block
, basic_block
);
921 extern basic_block
nearest_common_dominator_for_set (enum cdi_direction
,
923 extern void set_immediate_dominator (enum cdi_direction
, basic_block
,
925 extern basic_block
get_immediate_dominator (enum cdi_direction
, basic_block
);
926 extern bool dominated_by_p (enum cdi_direction
, const_basic_block
, const_basic_block
);
927 extern VEC (basic_block
, heap
) *get_dominated_by (enum cdi_direction
, basic_block
);
928 extern VEC (basic_block
, heap
) *get_dominated_by_region (enum cdi_direction
,
931 extern void add_to_dominance_info (enum cdi_direction
, basic_block
);
932 extern void delete_from_dominance_info (enum cdi_direction
, basic_block
);
933 basic_block
recompute_dominator (enum cdi_direction
, basic_block
);
934 extern void redirect_immediate_dominators (enum cdi_direction
, basic_block
,
936 extern void iterate_fix_dominators (enum cdi_direction
,
937 VEC (basic_block
, heap
) *, bool);
938 extern void verify_dominators (enum cdi_direction
);
939 extern basic_block
first_dom_son (enum cdi_direction
, basic_block
);
940 extern basic_block
next_dom_son (enum cdi_direction
, basic_block
);
941 unsigned bb_dom_dfs_in (enum cdi_direction
, basic_block
);
942 unsigned bb_dom_dfs_out (enum cdi_direction
, basic_block
);
944 extern edge
try_redirect_by_replacing_jump (edge
, basic_block
, bool);
945 extern void break_superblocks (void);
946 extern void relink_block_chain (bool);
947 extern void check_bb_profile (basic_block
, FILE *);
948 extern void update_bb_profile_for_threading (basic_block
, int, gcov_type
, edge
);
949 extern void init_rtl_bb_info (basic_block
);
951 extern void initialize_original_copy_tables (void);
952 extern void free_original_copy_tables (void);
953 extern void set_bb_original (basic_block
, basic_block
);
954 extern basic_block
get_bb_original (basic_block
);
955 extern void set_bb_copy (basic_block
, basic_block
);
956 extern basic_block
get_bb_copy (basic_block
);
957 void set_loop_copy (struct loop
*, struct loop
*);
958 struct loop
*get_loop_copy (struct loop
*);
961 extern rtx
insert_insn_end_bb_new (rtx
, basic_block
);
963 #include "cfghooks.h"
965 /* Return true when one of the predecessor edges of BB is marked with EDGE_EH. */
967 bb_has_eh_pred (basic_block bb
)
972 FOR_EACH_EDGE (e
, ei
, bb
->preds
)
974 if (e
->flags
& EDGE_EH
)
980 /* Return true when one of the predecessor edges of BB is marked with EDGE_ABNORMAL. */
982 bb_has_abnormal_pred (basic_block bb
)
987 FOR_EACH_EDGE (e
, ei
, bb
->preds
)
989 if (e
->flags
& EDGE_ABNORMAL
)
995 /* In cfgloopmanip.c. */
996 extern edge mfb_kj_edge
;
997 extern bool mfb_keep_just (edge
);
999 /* In cfgexpand.c. */
1000 extern void rtl_profile_for_bb (basic_block
);
1001 extern void rtl_profile_for_edge (edge
);
1002 extern void default_rtl_profile (void);
1004 #endif /* GCC_BASIC_BLOCK_H */