* libgcov-driver.c (get_gcov_dump_complete): Update comments.
[official-gcc.git] / gcc / cfgrtl.c
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1 /* Control flow graph manipulation code for GNU compiler.
2 Copyright (C) 1987-2013 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
9 version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 for more details.
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 /* This file contains low level functions to manipulate the CFG and analyze it
21 that are aware of the RTL intermediate language.
23 Available functionality:
24 - Basic CFG/RTL manipulation API documented in cfghooks.h
25 - CFG-aware instruction chain manipulation
26 delete_insn, delete_insn_chain
27 - Edge splitting and committing to edges
28 insert_insn_on_edge, commit_edge_insertions
29 - CFG updating after insn simplification
30 purge_dead_edges, purge_all_dead_edges
31 - CFG fixing after coarse manipulation
32 fixup_abnormal_edges
34 Functions not supposed for generic use:
35 - Infrastructure to determine quickly basic block for insn
36 compute_bb_for_insn, update_bb_for_insn, set_block_for_insn,
37 - Edge redirection with updating and optimizing of insn chain
38 block_label, tidy_fallthru_edge, force_nonfallthru */
40 #include "config.h"
41 #include "system.h"
42 #include "coretypes.h"
43 #include "tm.h"
44 #include "tree.h"
45 #include "hard-reg-set.h"
46 #include "basic-block.h"
47 #include "bb-reorder.h"
48 #include "regs.h"
49 #include "flags.h"
50 #include "function.h"
51 #include "except.h"
52 #include "rtl-error.h"
53 #include "tm_p.h"
54 #include "obstack.h"
55 #include "insn-attr.h"
56 #include "insn-config.h"
57 #include "expr.h"
58 #include "target.h"
59 #include "common/common-target.h"
60 #include "cfgloop.h"
61 #include "ggc.h"
62 #include "tree-pass.h"
63 #include "df.h"
65 /* Holds the interesting leading and trailing notes for the function.
66 Only applicable if the CFG is in cfglayout mode. */
67 static GTY(()) rtx cfg_layout_function_footer;
68 static GTY(()) rtx cfg_layout_function_header;
70 static rtx skip_insns_after_block (basic_block);
71 static void record_effective_endpoints (void);
72 static rtx label_for_bb (basic_block);
73 static void fixup_reorder_chain (void);
75 void verify_insn_chain (void);
76 static void fixup_fallthru_exit_predecessor (void);
77 static int can_delete_note_p (const_rtx);
78 static int can_delete_label_p (const_rtx);
79 static basic_block rtl_split_edge (edge);
80 static bool rtl_move_block_after (basic_block, basic_block);
81 static int rtl_verify_flow_info (void);
82 static basic_block cfg_layout_split_block (basic_block, void *);
83 static edge cfg_layout_redirect_edge_and_branch (edge, basic_block);
84 static basic_block cfg_layout_redirect_edge_and_branch_force (edge, basic_block);
85 static void cfg_layout_delete_block (basic_block);
86 static void rtl_delete_block (basic_block);
87 static basic_block rtl_redirect_edge_and_branch_force (edge, basic_block);
88 static edge rtl_redirect_edge_and_branch (edge, basic_block);
89 static basic_block rtl_split_block (basic_block, void *);
90 static void rtl_dump_bb (FILE *, basic_block, int, int);
91 static int rtl_verify_flow_info_1 (void);
92 static void rtl_make_forwarder_block (edge);
94 /* Return true if NOTE is not one of the ones that must be kept paired,
95 so that we may simply delete it. */
97 static int
98 can_delete_note_p (const_rtx note)
100 switch (NOTE_KIND (note))
102 case NOTE_INSN_DELETED:
103 case NOTE_INSN_BASIC_BLOCK:
104 case NOTE_INSN_EPILOGUE_BEG:
105 return true;
107 default:
108 return false;
112 /* True if a given label can be deleted. */
114 static int
115 can_delete_label_p (const_rtx label)
117 return (!LABEL_PRESERVE_P (label)
118 /* User declared labels must be preserved. */
119 && LABEL_NAME (label) == 0
120 && !in_expr_list_p (forced_labels, label));
123 /* Delete INSN by patching it out. */
125 void
126 delete_insn (rtx insn)
128 rtx note;
129 bool really_delete = true;
131 if (LABEL_P (insn))
133 /* Some labels can't be directly removed from the INSN chain, as they
134 might be references via variables, constant pool etc.
135 Convert them to the special NOTE_INSN_DELETED_LABEL note. */
136 if (! can_delete_label_p (insn))
138 const char *name = LABEL_NAME (insn);
139 basic_block bb = BLOCK_FOR_INSN (insn);
140 rtx bb_note = NEXT_INSN (insn);
142 really_delete = false;
143 PUT_CODE (insn, NOTE);
144 NOTE_KIND (insn) = NOTE_INSN_DELETED_LABEL;
145 NOTE_DELETED_LABEL_NAME (insn) = name;
147 /* If the note following the label starts a basic block, and the
148 label is a member of the same basic block, interchange the two. */
149 if (bb_note != NULL_RTX
150 && NOTE_INSN_BASIC_BLOCK_P (bb_note)
151 && bb != NULL
152 && bb == BLOCK_FOR_INSN (bb_note))
154 reorder_insns_nobb (insn, insn, bb_note);
155 BB_HEAD (bb) = bb_note;
156 if (BB_END (bb) == bb_note)
157 BB_END (bb) = insn;
161 remove_node_from_expr_list (insn, &nonlocal_goto_handler_labels);
164 if (really_delete)
166 /* If this insn has already been deleted, something is very wrong. */
167 gcc_assert (!INSN_DELETED_P (insn));
168 if (INSN_P (insn))
169 df_insn_delete (insn);
170 remove_insn (insn);
171 INSN_DELETED_P (insn) = 1;
174 /* If deleting a jump, decrement the use count of the label. Deleting
175 the label itself should happen in the normal course of block merging. */
176 if (JUMP_P (insn))
178 if (JUMP_LABEL (insn)
179 && LABEL_P (JUMP_LABEL (insn)))
180 LABEL_NUSES (JUMP_LABEL (insn))--;
182 /* If there are more targets, remove them too. */
183 while ((note
184 = find_reg_note (insn, REG_LABEL_TARGET, NULL_RTX)) != NULL_RTX
185 && LABEL_P (XEXP (note, 0)))
187 LABEL_NUSES (XEXP (note, 0))--;
188 remove_note (insn, note);
192 /* Also if deleting any insn that references a label as an operand. */
193 while ((note = find_reg_note (insn, REG_LABEL_OPERAND, NULL_RTX)) != NULL_RTX
194 && LABEL_P (XEXP (note, 0)))
196 LABEL_NUSES (XEXP (note, 0))--;
197 remove_note (insn, note);
200 if (JUMP_TABLE_DATA_P (insn))
202 rtx pat = PATTERN (insn);
203 int diff_vec_p = GET_CODE (PATTERN (insn)) == ADDR_DIFF_VEC;
204 int len = XVECLEN (pat, diff_vec_p);
205 int i;
207 for (i = 0; i < len; i++)
209 rtx label = XEXP (XVECEXP (pat, diff_vec_p, i), 0);
211 /* When deleting code in bulk (e.g. removing many unreachable
212 blocks) we can delete a label that's a target of the vector
213 before deleting the vector itself. */
214 if (!NOTE_P (label))
215 LABEL_NUSES (label)--;
220 /* Like delete_insn but also purge dead edges from BB. */
222 void
223 delete_insn_and_edges (rtx insn)
225 bool purge = false;
227 if (INSN_P (insn)
228 && BLOCK_FOR_INSN (insn)
229 && BB_END (BLOCK_FOR_INSN (insn)) == insn)
230 purge = true;
231 delete_insn (insn);
232 if (purge)
233 purge_dead_edges (BLOCK_FOR_INSN (insn));
236 /* Unlink a chain of insns between START and FINISH, leaving notes
237 that must be paired. If CLEAR_BB is true, we set bb field for
238 insns that cannot be removed to NULL. */
240 void
241 delete_insn_chain (rtx start, rtx finish, bool clear_bb)
243 rtx prev, current;
245 /* Unchain the insns one by one. It would be quicker to delete all of these
246 with a single unchaining, rather than one at a time, but we need to keep
247 the NOTE's. */
248 current = finish;
249 while (1)
251 prev = PREV_INSN (current);
252 if (NOTE_P (current) && !can_delete_note_p (current))
254 else
255 delete_insn (current);
257 if (clear_bb && !INSN_DELETED_P (current))
258 set_block_for_insn (current, NULL);
260 if (current == start)
261 break;
262 current = prev;
266 /* Create a new basic block consisting of the instructions between HEAD and END
267 inclusive. This function is designed to allow fast BB construction - reuses
268 the note and basic block struct in BB_NOTE, if any and do not grow
269 BASIC_BLOCK chain and should be used directly only by CFG construction code.
270 END can be NULL in to create new empty basic block before HEAD. Both END
271 and HEAD can be NULL to create basic block at the end of INSN chain.
272 AFTER is the basic block we should be put after. */
274 basic_block
275 create_basic_block_structure (rtx head, rtx end, rtx bb_note, basic_block after)
277 basic_block bb;
279 if (bb_note
280 && (bb = NOTE_BASIC_BLOCK (bb_note)) != NULL
281 && bb->aux == NULL)
283 /* If we found an existing note, thread it back onto the chain. */
285 rtx after;
287 if (LABEL_P (head))
288 after = head;
289 else
291 after = PREV_INSN (head);
292 head = bb_note;
295 if (after != bb_note && NEXT_INSN (after) != bb_note)
296 reorder_insns_nobb (bb_note, bb_note, after);
298 else
300 /* Otherwise we must create a note and a basic block structure. */
302 bb = alloc_block ();
304 init_rtl_bb_info (bb);
305 if (!head && !end)
306 head = end = bb_note
307 = emit_note_after (NOTE_INSN_BASIC_BLOCK, get_last_insn ());
308 else if (LABEL_P (head) && end)
310 bb_note = emit_note_after (NOTE_INSN_BASIC_BLOCK, head);
311 if (head == end)
312 end = bb_note;
314 else
316 bb_note = emit_note_before (NOTE_INSN_BASIC_BLOCK, head);
317 head = bb_note;
318 if (!end)
319 end = head;
322 NOTE_BASIC_BLOCK (bb_note) = bb;
325 /* Always include the bb note in the block. */
326 if (NEXT_INSN (end) == bb_note)
327 end = bb_note;
329 BB_HEAD (bb) = head;
330 BB_END (bb) = end;
331 bb->index = last_basic_block++;
332 bb->flags = BB_NEW | BB_RTL;
333 link_block (bb, after);
334 SET_BASIC_BLOCK (bb->index, bb);
335 df_bb_refs_record (bb->index, false);
336 update_bb_for_insn (bb);
337 BB_SET_PARTITION (bb, BB_UNPARTITIONED);
339 /* Tag the block so that we know it has been used when considering
340 other basic block notes. */
341 bb->aux = bb;
343 return bb;
346 /* Create new basic block consisting of instructions in between HEAD and END
347 and place it to the BB chain after block AFTER. END can be NULL to
348 create a new empty basic block before HEAD. Both END and HEAD can be
349 NULL to create basic block at the end of INSN chain. */
351 static basic_block
352 rtl_create_basic_block (void *headp, void *endp, basic_block after)
354 rtx head = (rtx) headp, end = (rtx) endp;
355 basic_block bb;
357 /* Grow the basic block array if needed. */
358 if ((size_t) last_basic_block >= basic_block_info->length ())
360 size_t new_size = last_basic_block + (last_basic_block + 3) / 4;
361 vec_safe_grow_cleared (basic_block_info, new_size);
364 n_basic_blocks++;
366 bb = create_basic_block_structure (head, end, NULL, after);
367 bb->aux = NULL;
368 return bb;
371 static basic_block
372 cfg_layout_create_basic_block (void *head, void *end, basic_block after)
374 basic_block newbb = rtl_create_basic_block (head, end, after);
376 return newbb;
379 /* Delete the insns in a (non-live) block. We physically delete every
380 non-deleted-note insn, and update the flow graph appropriately.
382 Return nonzero if we deleted an exception handler. */
384 /* ??? Preserving all such notes strikes me as wrong. It would be nice
385 to post-process the stream to remove empty blocks, loops, ranges, etc. */
387 static void
388 rtl_delete_block (basic_block b)
390 rtx insn, end;
392 /* If the head of this block is a CODE_LABEL, then it might be the
393 label for an exception handler which can't be reached. We need
394 to remove the label from the exception_handler_label list. */
395 insn = BB_HEAD (b);
397 end = get_last_bb_insn (b);
399 /* Selectively delete the entire chain. */
400 BB_HEAD (b) = NULL;
401 delete_insn_chain (insn, end, true);
404 if (dump_file)
405 fprintf (dump_file, "deleting block %d\n", b->index);
406 df_bb_delete (b->index);
409 /* Records the basic block struct in BLOCK_FOR_INSN for every insn. */
411 void
412 compute_bb_for_insn (void)
414 basic_block bb;
416 FOR_EACH_BB (bb)
418 rtx end = BB_END (bb);
419 rtx insn;
421 for (insn = BB_HEAD (bb); ; insn = NEXT_INSN (insn))
423 BLOCK_FOR_INSN (insn) = bb;
424 if (insn == end)
425 break;
430 /* Release the basic_block_for_insn array. */
432 unsigned int
433 free_bb_for_insn (void)
435 rtx insn;
436 for (insn = get_insns (); insn; insn = NEXT_INSN (insn))
437 if (!BARRIER_P (insn))
438 BLOCK_FOR_INSN (insn) = NULL;
439 return 0;
442 static unsigned int
443 rest_of_pass_free_cfg (void)
445 #ifdef DELAY_SLOTS
446 /* The resource.c machinery uses DF but the CFG isn't guaranteed to be
447 valid at that point so it would be too late to call df_analyze. */
448 if (optimize > 0 && flag_delayed_branch)
450 df_note_add_problem ();
451 df_analyze ();
453 #endif
455 if (crtl->has_bb_partition)
456 insert_section_boundary_note ();
458 free_bb_for_insn ();
459 return 0;
462 namespace {
464 const pass_data pass_data_free_cfg =
466 RTL_PASS, /* type */
467 "*free_cfg", /* name */
468 OPTGROUP_NONE, /* optinfo_flags */
469 false, /* has_gate */
470 true, /* has_execute */
471 TV_NONE, /* tv_id */
472 0, /* properties_required */
473 0, /* properties_provided */
474 PROP_cfg, /* properties_destroyed */
475 0, /* todo_flags_start */
476 0, /* todo_flags_finish */
479 class pass_free_cfg : public rtl_opt_pass
481 public:
482 pass_free_cfg (gcc::context *ctxt)
483 : rtl_opt_pass (pass_data_free_cfg, ctxt)
486 /* opt_pass methods: */
487 unsigned int execute () { return rest_of_pass_free_cfg (); }
489 }; // class pass_free_cfg
491 } // anon namespace
493 rtl_opt_pass *
494 make_pass_free_cfg (gcc::context *ctxt)
496 return new pass_free_cfg (ctxt);
499 /* Return RTX to emit after when we want to emit code on the entry of function. */
501 entry_of_function (void)
503 return (n_basic_blocks > NUM_FIXED_BLOCKS ?
504 BB_HEAD (ENTRY_BLOCK_PTR->next_bb) : get_insns ());
507 /* Emit INSN at the entry point of the function, ensuring that it is only
508 executed once per function. */
509 void
510 emit_insn_at_entry (rtx insn)
512 edge_iterator ei = ei_start (ENTRY_BLOCK_PTR->succs);
513 edge e = ei_safe_edge (ei);
514 gcc_assert (e->flags & EDGE_FALLTHRU);
516 insert_insn_on_edge (insn, e);
517 commit_edge_insertions ();
520 /* Update BLOCK_FOR_INSN of insns between BEGIN and END
521 (or BARRIER if found) and notify df of the bb change.
522 The insn chain range is inclusive
523 (i.e. both BEGIN and END will be updated. */
525 static void
526 update_bb_for_insn_chain (rtx begin, rtx end, basic_block bb)
528 rtx insn;
530 end = NEXT_INSN (end);
531 for (insn = begin; insn != end; insn = NEXT_INSN (insn))
532 if (!BARRIER_P (insn))
533 df_insn_change_bb (insn, bb);
536 /* Update BLOCK_FOR_INSN of insns in BB to BB,
537 and notify df of the change. */
539 void
540 update_bb_for_insn (basic_block bb)
542 update_bb_for_insn_chain (BB_HEAD (bb), BB_END (bb), bb);
546 /* Like active_insn_p, except keep the return value clobber around
547 even after reload. */
549 static bool
550 flow_active_insn_p (const_rtx insn)
552 if (active_insn_p (insn))
553 return true;
555 /* A clobber of the function return value exists for buggy
556 programs that fail to return a value. Its effect is to
557 keep the return value from being live across the entire
558 function. If we allow it to be skipped, we introduce the
559 possibility for register lifetime confusion. */
560 if (GET_CODE (PATTERN (insn)) == CLOBBER
561 && REG_P (XEXP (PATTERN (insn), 0))
562 && REG_FUNCTION_VALUE_P (XEXP (PATTERN (insn), 0)))
563 return true;
565 return false;
568 /* Return true if the block has no effect and only forwards control flow to
569 its single destination. */
571 bool
572 contains_no_active_insn_p (const_basic_block bb)
574 rtx insn;
576 if (bb == EXIT_BLOCK_PTR || bb == ENTRY_BLOCK_PTR
577 || !single_succ_p (bb))
578 return false;
580 for (insn = BB_HEAD (bb); insn != BB_END (bb); insn = NEXT_INSN (insn))
581 if (INSN_P (insn) && flow_active_insn_p (insn))
582 return false;
584 return (!INSN_P (insn)
585 || (JUMP_P (insn) && simplejump_p (insn))
586 || !flow_active_insn_p (insn));
589 /* Likewise, but protect loop latches, headers and preheaders. */
590 /* FIXME: Make this a cfg hook. */
592 bool
593 forwarder_block_p (const_basic_block bb)
595 if (!contains_no_active_insn_p (bb))
596 return false;
598 /* Protect loop latches, headers and preheaders. */
599 if (current_loops)
601 basic_block dest;
602 if (bb->loop_father->header == bb)
603 return false;
604 dest = EDGE_SUCC (bb, 0)->dest;
605 if (dest->loop_father->header == dest)
606 return false;
609 return true;
612 /* Return nonzero if we can reach target from src by falling through. */
613 /* FIXME: Make this a cfg hook, the result is only valid in cfgrtl mode. */
615 bool
616 can_fallthru (basic_block src, basic_block target)
618 rtx insn = BB_END (src);
619 rtx insn2;
620 edge e;
621 edge_iterator ei;
623 if (target == EXIT_BLOCK_PTR)
624 return true;
625 if (src->next_bb != target)
626 return false;
628 /* ??? Later we may add code to move jump tables offline. */
629 if (tablejump_p (insn, NULL, NULL))
630 return false;
632 FOR_EACH_EDGE (e, ei, src->succs)
633 if (e->dest == EXIT_BLOCK_PTR
634 && e->flags & EDGE_FALLTHRU)
635 return false;
637 insn2 = BB_HEAD (target);
638 if (!active_insn_p (insn2))
639 insn2 = next_active_insn (insn2);
641 return next_active_insn (insn) == insn2;
644 /* Return nonzero if we could reach target from src by falling through,
645 if the target was made adjacent. If we already have a fall-through
646 edge to the exit block, we can't do that. */
647 static bool
648 could_fall_through (basic_block src, basic_block target)
650 edge e;
651 edge_iterator ei;
653 if (target == EXIT_BLOCK_PTR)
654 return true;
655 FOR_EACH_EDGE (e, ei, src->succs)
656 if (e->dest == EXIT_BLOCK_PTR
657 && e->flags & EDGE_FALLTHRU)
658 return 0;
659 return true;
662 /* Return the NOTE_INSN_BASIC_BLOCK of BB. */
664 bb_note (basic_block bb)
666 rtx note;
668 note = BB_HEAD (bb);
669 if (LABEL_P (note))
670 note = NEXT_INSN (note);
672 gcc_assert (NOTE_INSN_BASIC_BLOCK_P (note));
673 return note;
676 /* Return the INSN immediately following the NOTE_INSN_BASIC_BLOCK
677 note associated with the BLOCK. */
679 static rtx
680 first_insn_after_basic_block_note (basic_block block)
682 rtx insn;
684 /* Get the first instruction in the block. */
685 insn = BB_HEAD (block);
687 if (insn == NULL_RTX)
688 return NULL_RTX;
689 if (LABEL_P (insn))
690 insn = NEXT_INSN (insn);
691 gcc_assert (NOTE_INSN_BASIC_BLOCK_P (insn));
693 return NEXT_INSN (insn);
696 /* Creates a new basic block just after basic block B by splitting
697 everything after specified instruction I. */
699 static basic_block
700 rtl_split_block (basic_block bb, void *insnp)
702 basic_block new_bb;
703 rtx insn = (rtx) insnp;
704 edge e;
705 edge_iterator ei;
707 if (!insn)
709 insn = first_insn_after_basic_block_note (bb);
711 if (insn)
713 rtx next = insn;
715 insn = PREV_INSN (insn);
717 /* If the block contains only debug insns, insn would have
718 been NULL in a non-debug compilation, and then we'd end
719 up emitting a DELETED note. For -fcompare-debug
720 stability, emit the note too. */
721 if (insn != BB_END (bb)
722 && DEBUG_INSN_P (next)
723 && DEBUG_INSN_P (BB_END (bb)))
725 while (next != BB_END (bb) && DEBUG_INSN_P (next))
726 next = NEXT_INSN (next);
728 if (next == BB_END (bb))
729 emit_note_after (NOTE_INSN_DELETED, next);
732 else
733 insn = get_last_insn ();
736 /* We probably should check type of the insn so that we do not create
737 inconsistent cfg. It is checked in verify_flow_info anyway, so do not
738 bother. */
739 if (insn == BB_END (bb))
740 emit_note_after (NOTE_INSN_DELETED, insn);
742 /* Create the new basic block. */
743 new_bb = create_basic_block (NEXT_INSN (insn), BB_END (bb), bb);
744 BB_COPY_PARTITION (new_bb, bb);
745 BB_END (bb) = insn;
747 /* Redirect the outgoing edges. */
748 new_bb->succs = bb->succs;
749 bb->succs = NULL;
750 FOR_EACH_EDGE (e, ei, new_bb->succs)
751 e->src = new_bb;
753 /* The new block starts off being dirty. */
754 df_set_bb_dirty (bb);
755 return new_bb;
758 /* Return true if the single edge between blocks A and B is the only place
759 in RTL which holds some unique locus. */
761 static bool
762 unique_locus_on_edge_between_p (basic_block a, basic_block b)
764 const location_t goto_locus = EDGE_SUCC (a, 0)->goto_locus;
765 rtx insn, end;
767 if (LOCATION_LOCUS (goto_locus) == UNKNOWN_LOCATION)
768 return false;
770 /* First scan block A backward. */
771 insn = BB_END (a);
772 end = PREV_INSN (BB_HEAD (a));
773 while (insn != end && (!NONDEBUG_INSN_P (insn) || !INSN_HAS_LOCATION (insn)))
774 insn = PREV_INSN (insn);
776 if (insn != end && INSN_LOCATION (insn) == goto_locus)
777 return false;
779 /* Then scan block B forward. */
780 insn = BB_HEAD (b);
781 if (insn)
783 end = NEXT_INSN (BB_END (b));
784 while (insn != end && !NONDEBUG_INSN_P (insn))
785 insn = NEXT_INSN (insn);
787 if (insn != end && INSN_HAS_LOCATION (insn)
788 && INSN_LOCATION (insn) == goto_locus)
789 return false;
792 return true;
795 /* If the single edge between blocks A and B is the only place in RTL which
796 holds some unique locus, emit a nop with that locus between the blocks. */
798 static void
799 emit_nop_for_unique_locus_between (basic_block a, basic_block b)
801 if (!unique_locus_on_edge_between_p (a, b))
802 return;
804 BB_END (a) = emit_insn_after_noloc (gen_nop (), BB_END (a), a);
805 INSN_LOCATION (BB_END (a)) = EDGE_SUCC (a, 0)->goto_locus;
808 /* Blocks A and B are to be merged into a single block A. The insns
809 are already contiguous. */
811 static void
812 rtl_merge_blocks (basic_block a, basic_block b)
814 rtx b_head = BB_HEAD (b), b_end = BB_END (b), a_end = BB_END (a);
815 rtx del_first = NULL_RTX, del_last = NULL_RTX;
816 rtx b_debug_start = b_end, b_debug_end = b_end;
817 bool forwarder_p = (b->flags & BB_FORWARDER_BLOCK) != 0;
818 int b_empty = 0;
820 if (dump_file)
821 fprintf (dump_file, "Merging block %d into block %d...\n", b->index,
822 a->index);
824 while (DEBUG_INSN_P (b_end))
825 b_end = PREV_INSN (b_debug_start = b_end);
827 /* If there was a CODE_LABEL beginning B, delete it. */
828 if (LABEL_P (b_head))
830 /* Detect basic blocks with nothing but a label. This can happen
831 in particular at the end of a function. */
832 if (b_head == b_end)
833 b_empty = 1;
835 del_first = del_last = b_head;
836 b_head = NEXT_INSN (b_head);
839 /* Delete the basic block note and handle blocks containing just that
840 note. */
841 if (NOTE_INSN_BASIC_BLOCK_P (b_head))
843 if (b_head == b_end)
844 b_empty = 1;
845 if (! del_last)
846 del_first = b_head;
848 del_last = b_head;
849 b_head = NEXT_INSN (b_head);
852 /* If there was a jump out of A, delete it. */
853 if (JUMP_P (a_end))
855 rtx prev;
857 for (prev = PREV_INSN (a_end); ; prev = PREV_INSN (prev))
858 if (!NOTE_P (prev)
859 || NOTE_INSN_BASIC_BLOCK_P (prev)
860 || prev == BB_HEAD (a))
861 break;
863 del_first = a_end;
865 #ifdef HAVE_cc0
866 /* If this was a conditional jump, we need to also delete
867 the insn that set cc0. */
868 if (only_sets_cc0_p (prev))
870 rtx tmp = prev;
872 prev = prev_nonnote_insn (prev);
873 if (!prev)
874 prev = BB_HEAD (a);
875 del_first = tmp;
877 #endif
879 a_end = PREV_INSN (del_first);
881 else if (BARRIER_P (NEXT_INSN (a_end)))
882 del_first = NEXT_INSN (a_end);
884 /* Delete everything marked above as well as crap that might be
885 hanging out between the two blocks. */
886 BB_END (a) = a_end;
887 BB_HEAD (b) = b_empty ? NULL_RTX : b_head;
888 delete_insn_chain (del_first, del_last, true);
890 /* When not optimizing CFG and the edge is the only place in RTL which holds
891 some unique locus, emit a nop with that locus in between. */
892 if (!optimize)
894 emit_nop_for_unique_locus_between (a, b);
895 a_end = BB_END (a);
898 /* Reassociate the insns of B with A. */
899 if (!b_empty)
901 update_bb_for_insn_chain (a_end, b_debug_end, a);
903 BB_END (a) = b_debug_end;
904 BB_HEAD (b) = NULL_RTX;
906 else if (b_end != b_debug_end)
908 /* Move any deleted labels and other notes between the end of A
909 and the debug insns that make up B after the debug insns,
910 bringing the debug insns into A while keeping the notes after
911 the end of A. */
912 if (NEXT_INSN (a_end) != b_debug_start)
913 reorder_insns_nobb (NEXT_INSN (a_end), PREV_INSN (b_debug_start),
914 b_debug_end);
915 update_bb_for_insn_chain (b_debug_start, b_debug_end, a);
916 BB_END (a) = b_debug_end;
919 df_bb_delete (b->index);
921 /* If B was a forwarder block, propagate the locus on the edge. */
922 if (forwarder_p
923 && LOCATION_LOCUS (EDGE_SUCC (b, 0)->goto_locus) == UNKNOWN_LOCATION)
924 EDGE_SUCC (b, 0)->goto_locus = EDGE_SUCC (a, 0)->goto_locus;
926 if (dump_file)
927 fprintf (dump_file, "Merged blocks %d and %d.\n", a->index, b->index);
931 /* Return true when block A and B can be merged. */
933 static bool
934 rtl_can_merge_blocks (basic_block a, basic_block b)
936 /* If we are partitioning hot/cold basic blocks, we don't want to
937 mess up unconditional or indirect jumps that cross between hot
938 and cold sections.
940 Basic block partitioning may result in some jumps that appear to
941 be optimizable (or blocks that appear to be mergeable), but which really
942 must be left untouched (they are required to make it safely across
943 partition boundaries). See the comments at the top of
944 bb-reorder.c:partition_hot_cold_basic_blocks for complete details. */
946 if (BB_PARTITION (a) != BB_PARTITION (b))
947 return false;
949 /* Protect the loop latches. */
950 if (current_loops && b->loop_father->latch == b)
951 return false;
953 /* There must be exactly one edge in between the blocks. */
954 return (single_succ_p (a)
955 && single_succ (a) == b
956 && single_pred_p (b)
957 && a != b
958 /* Must be simple edge. */
959 && !(single_succ_edge (a)->flags & EDGE_COMPLEX)
960 && a->next_bb == b
961 && a != ENTRY_BLOCK_PTR && b != EXIT_BLOCK_PTR
962 /* If the jump insn has side effects,
963 we can't kill the edge. */
964 && (!JUMP_P (BB_END (a))
965 || (reload_completed
966 ? simplejump_p (BB_END (a)) : onlyjump_p (BB_END (a)))));
969 /* Return the label in the head of basic block BLOCK. Create one if it doesn't
970 exist. */
973 block_label (basic_block block)
975 if (block == EXIT_BLOCK_PTR)
976 return NULL_RTX;
978 if (!LABEL_P (BB_HEAD (block)))
980 BB_HEAD (block) = emit_label_before (gen_label_rtx (), BB_HEAD (block));
983 return BB_HEAD (block);
986 /* Attempt to perform edge redirection by replacing possibly complex jump
987 instruction by unconditional jump or removing jump completely. This can
988 apply only if all edges now point to the same block. The parameters and
989 return values are equivalent to redirect_edge_and_branch. */
991 edge
992 try_redirect_by_replacing_jump (edge e, basic_block target, bool in_cfglayout)
994 basic_block src = e->src;
995 rtx insn = BB_END (src), kill_from;
996 rtx set;
997 int fallthru = 0;
999 /* If we are partitioning hot/cold basic blocks, we don't want to
1000 mess up unconditional or indirect jumps that cross between hot
1001 and cold sections.
1003 Basic block partitioning may result in some jumps that appear to
1004 be optimizable (or blocks that appear to be mergeable), but which really
1005 must be left untouched (they are required to make it safely across
1006 partition boundaries). See the comments at the top of
1007 bb-reorder.c:partition_hot_cold_basic_blocks for complete details. */
1009 if (BB_PARTITION (src) != BB_PARTITION (target))
1010 return NULL;
1012 /* We can replace or remove a complex jump only when we have exactly
1013 two edges. Also, if we have exactly one outgoing edge, we can
1014 redirect that. */
1015 if (EDGE_COUNT (src->succs) >= 3
1016 /* Verify that all targets will be TARGET. Specifically, the
1017 edge that is not E must also go to TARGET. */
1018 || (EDGE_COUNT (src->succs) == 2
1019 && EDGE_SUCC (src, EDGE_SUCC (src, 0) == e)->dest != target))
1020 return NULL;
1022 if (!onlyjump_p (insn))
1023 return NULL;
1024 if ((!optimize || reload_completed) && tablejump_p (insn, NULL, NULL))
1025 return NULL;
1027 /* Avoid removing branch with side effects. */
1028 set = single_set (insn);
1029 if (!set || side_effects_p (set))
1030 return NULL;
1032 /* In case we zap a conditional jump, we'll need to kill
1033 the cc0 setter too. */
1034 kill_from = insn;
1035 #ifdef HAVE_cc0
1036 if (reg_mentioned_p (cc0_rtx, PATTERN (insn))
1037 && only_sets_cc0_p (PREV_INSN (insn)))
1038 kill_from = PREV_INSN (insn);
1039 #endif
1041 /* See if we can create the fallthru edge. */
1042 if (in_cfglayout || can_fallthru (src, target))
1044 if (dump_file)
1045 fprintf (dump_file, "Removing jump %i.\n", INSN_UID (insn));
1046 fallthru = 1;
1048 /* Selectively unlink whole insn chain. */
1049 if (in_cfglayout)
1051 rtx insn = BB_FOOTER (src);
1053 delete_insn_chain (kill_from, BB_END (src), false);
1055 /* Remove barriers but keep jumptables. */
1056 while (insn)
1058 if (BARRIER_P (insn))
1060 if (PREV_INSN (insn))
1061 NEXT_INSN (PREV_INSN (insn)) = NEXT_INSN (insn);
1062 else
1063 BB_FOOTER (src) = NEXT_INSN (insn);
1064 if (NEXT_INSN (insn))
1065 PREV_INSN (NEXT_INSN (insn)) = PREV_INSN (insn);
1067 if (LABEL_P (insn))
1068 break;
1069 insn = NEXT_INSN (insn);
1072 else
1073 delete_insn_chain (kill_from, PREV_INSN (BB_HEAD (target)),
1074 false);
1077 /* If this already is simplejump, redirect it. */
1078 else if (simplejump_p (insn))
1080 if (e->dest == target)
1081 return NULL;
1082 if (dump_file)
1083 fprintf (dump_file, "Redirecting jump %i from %i to %i.\n",
1084 INSN_UID (insn), e->dest->index, target->index);
1085 if (!redirect_jump (insn, block_label (target), 0))
1087 gcc_assert (target == EXIT_BLOCK_PTR);
1088 return NULL;
1092 /* Cannot do anything for target exit block. */
1093 else if (target == EXIT_BLOCK_PTR)
1094 return NULL;
1096 /* Or replace possibly complicated jump insn by simple jump insn. */
1097 else
1099 rtx target_label = block_label (target);
1100 rtx barrier, label, table;
1102 emit_jump_insn_after_noloc (gen_jump (target_label), insn);
1103 JUMP_LABEL (BB_END (src)) = target_label;
1104 LABEL_NUSES (target_label)++;
1105 if (dump_file)
1106 fprintf (dump_file, "Replacing insn %i by jump %i\n",
1107 INSN_UID (insn), INSN_UID (BB_END (src)));
1110 delete_insn_chain (kill_from, insn, false);
1112 /* Recognize a tablejump that we are converting to a
1113 simple jump and remove its associated CODE_LABEL
1114 and ADDR_VEC or ADDR_DIFF_VEC. */
1115 if (tablejump_p (insn, &label, &table))
1116 delete_insn_chain (label, table, false);
1118 barrier = next_nonnote_insn (BB_END (src));
1119 if (!barrier || !BARRIER_P (barrier))
1120 emit_barrier_after (BB_END (src));
1121 else
1123 if (barrier != NEXT_INSN (BB_END (src)))
1125 /* Move the jump before barrier so that the notes
1126 which originally were or were created before jump table are
1127 inside the basic block. */
1128 rtx new_insn = BB_END (src);
1130 update_bb_for_insn_chain (NEXT_INSN (BB_END (src)),
1131 PREV_INSN (barrier), src);
1133 NEXT_INSN (PREV_INSN (new_insn)) = NEXT_INSN (new_insn);
1134 PREV_INSN (NEXT_INSN (new_insn)) = PREV_INSN (new_insn);
1136 NEXT_INSN (new_insn) = barrier;
1137 NEXT_INSN (PREV_INSN (barrier)) = new_insn;
1139 PREV_INSN (new_insn) = PREV_INSN (barrier);
1140 PREV_INSN (barrier) = new_insn;
1145 /* Keep only one edge out and set proper flags. */
1146 if (!single_succ_p (src))
1147 remove_edge (e);
1148 gcc_assert (single_succ_p (src));
1150 e = single_succ_edge (src);
1151 if (fallthru)
1152 e->flags = EDGE_FALLTHRU;
1153 else
1154 e->flags = 0;
1156 e->probability = REG_BR_PROB_BASE;
1157 e->count = src->count;
1159 if (e->dest != target)
1160 redirect_edge_succ (e, target);
1161 return e;
1164 /* Subroutine of redirect_branch_edge that tries to patch the jump
1165 instruction INSN so that it reaches block NEW. Do this
1166 only when it originally reached block OLD. Return true if this
1167 worked or the original target wasn't OLD, return false if redirection
1168 doesn't work. */
1170 static bool
1171 patch_jump_insn (rtx insn, rtx old_label, basic_block new_bb)
1173 rtx tmp;
1174 /* Recognize a tablejump and adjust all matching cases. */
1175 if (tablejump_p (insn, NULL, &tmp))
1177 rtvec vec;
1178 int j;
1179 rtx new_label = block_label (new_bb);
1181 if (new_bb == EXIT_BLOCK_PTR)
1182 return false;
1183 if (GET_CODE (PATTERN (tmp)) == ADDR_VEC)
1184 vec = XVEC (PATTERN (tmp), 0);
1185 else
1186 vec = XVEC (PATTERN (tmp), 1);
1188 for (j = GET_NUM_ELEM (vec) - 1; j >= 0; --j)
1189 if (XEXP (RTVEC_ELT (vec, j), 0) == old_label)
1191 RTVEC_ELT (vec, j) = gen_rtx_LABEL_REF (Pmode, new_label);
1192 --LABEL_NUSES (old_label);
1193 ++LABEL_NUSES (new_label);
1196 /* Handle casesi dispatch insns. */
1197 if ((tmp = single_set (insn)) != NULL
1198 && SET_DEST (tmp) == pc_rtx
1199 && GET_CODE (SET_SRC (tmp)) == IF_THEN_ELSE
1200 && GET_CODE (XEXP (SET_SRC (tmp), 2)) == LABEL_REF
1201 && XEXP (XEXP (SET_SRC (tmp), 2), 0) == old_label)
1203 XEXP (SET_SRC (tmp), 2) = gen_rtx_LABEL_REF (Pmode,
1204 new_label);
1205 --LABEL_NUSES (old_label);
1206 ++LABEL_NUSES (new_label);
1209 else if ((tmp = extract_asm_operands (PATTERN (insn))) != NULL)
1211 int i, n = ASM_OPERANDS_LABEL_LENGTH (tmp);
1212 rtx new_label, note;
1214 if (new_bb == EXIT_BLOCK_PTR)
1215 return false;
1216 new_label = block_label (new_bb);
1218 for (i = 0; i < n; ++i)
1220 rtx old_ref = ASM_OPERANDS_LABEL (tmp, i);
1221 gcc_assert (GET_CODE (old_ref) == LABEL_REF);
1222 if (XEXP (old_ref, 0) == old_label)
1224 ASM_OPERANDS_LABEL (tmp, i)
1225 = gen_rtx_LABEL_REF (Pmode, new_label);
1226 --LABEL_NUSES (old_label);
1227 ++LABEL_NUSES (new_label);
1231 if (JUMP_LABEL (insn) == old_label)
1233 JUMP_LABEL (insn) = new_label;
1234 note = find_reg_note (insn, REG_LABEL_TARGET, new_label);
1235 if (note)
1236 remove_note (insn, note);
1238 else
1240 note = find_reg_note (insn, REG_LABEL_TARGET, old_label);
1241 if (note)
1242 remove_note (insn, note);
1243 if (JUMP_LABEL (insn) != new_label
1244 && !find_reg_note (insn, REG_LABEL_TARGET, new_label))
1245 add_reg_note (insn, REG_LABEL_TARGET, new_label);
1247 while ((note = find_reg_note (insn, REG_LABEL_OPERAND, old_label))
1248 != NULL_RTX)
1249 XEXP (note, 0) = new_label;
1251 else
1253 /* ?? We may play the games with moving the named labels from
1254 one basic block to the other in case only one computed_jump is
1255 available. */
1256 if (computed_jump_p (insn)
1257 /* A return instruction can't be redirected. */
1258 || returnjump_p (insn))
1259 return false;
1261 if (!currently_expanding_to_rtl || JUMP_LABEL (insn) == old_label)
1263 /* If the insn doesn't go where we think, we're confused. */
1264 gcc_assert (JUMP_LABEL (insn) == old_label);
1266 /* If the substitution doesn't succeed, die. This can happen
1267 if the back end emitted unrecognizable instructions or if
1268 target is exit block on some arches. */
1269 if (!redirect_jump (insn, block_label (new_bb), 0))
1271 gcc_assert (new_bb == EXIT_BLOCK_PTR);
1272 return false;
1276 return true;
1280 /* Redirect edge representing branch of (un)conditional jump or tablejump,
1281 NULL on failure */
1282 static edge
1283 redirect_branch_edge (edge e, basic_block target)
1285 rtx old_label = BB_HEAD (e->dest);
1286 basic_block src = e->src;
1287 rtx insn = BB_END (src);
1289 /* We can only redirect non-fallthru edges of jump insn. */
1290 if (e->flags & EDGE_FALLTHRU)
1291 return NULL;
1292 else if (!JUMP_P (insn) && !currently_expanding_to_rtl)
1293 return NULL;
1295 if (!currently_expanding_to_rtl)
1297 if (!patch_jump_insn (insn, old_label, target))
1298 return NULL;
1300 else
1301 /* When expanding this BB might actually contain multiple
1302 jumps (i.e. not yet split by find_many_sub_basic_blocks).
1303 Redirect all of those that match our label. */
1304 FOR_BB_INSNS (src, insn)
1305 if (JUMP_P (insn) && !patch_jump_insn (insn, old_label, target))
1306 return NULL;
1308 if (dump_file)
1309 fprintf (dump_file, "Edge %i->%i redirected to %i\n",
1310 e->src->index, e->dest->index, target->index);
1312 if (e->dest != target)
1313 e = redirect_edge_succ_nodup (e, target);
1315 return e;
1318 /* Called when edge E has been redirected to a new destination,
1319 in order to update the region crossing flag on the edge and
1320 jump. */
1322 static void
1323 fixup_partition_crossing (edge e)
1325 rtx note;
1327 if (e->src == ENTRY_BLOCK_PTR || e->dest == EXIT_BLOCK_PTR)
1328 return;
1329 /* If we redirected an existing edge, it may already be marked
1330 crossing, even though the new src is missing a reg crossing note.
1331 But make sure reg crossing note doesn't already exist before
1332 inserting. */
1333 if (BB_PARTITION (e->src) != BB_PARTITION (e->dest))
1335 e->flags |= EDGE_CROSSING;
1336 note = find_reg_note (BB_END (e->src), REG_CROSSING_JUMP, NULL_RTX);
1337 if (JUMP_P (BB_END (e->src))
1338 && !note)
1339 add_reg_note (BB_END (e->src), REG_CROSSING_JUMP, NULL_RTX);
1341 else if (BB_PARTITION (e->src) == BB_PARTITION (e->dest))
1343 e->flags &= ~EDGE_CROSSING;
1344 /* Remove the section crossing note from jump at end of
1345 src if it exists, and if no other successors are
1346 still crossing. */
1347 note = find_reg_note (BB_END (e->src), REG_CROSSING_JUMP, NULL_RTX);
1348 if (note)
1350 bool has_crossing_succ = false;
1351 edge e2;
1352 edge_iterator ei;
1353 FOR_EACH_EDGE (e2, ei, e->src->succs)
1355 has_crossing_succ |= (e2->flags & EDGE_CROSSING);
1356 if (has_crossing_succ)
1357 break;
1359 if (!has_crossing_succ)
1360 remove_note (BB_END (e->src), note);
1365 /* Called when block BB has been reassigned to the cold partition,
1366 because it is now dominated by another cold block,
1367 to ensure that the region crossing attributes are updated. */
1369 static void
1370 fixup_new_cold_bb (basic_block bb)
1372 edge e;
1373 edge_iterator ei;
1375 /* This is called when a hot bb is found to now be dominated
1376 by a cold bb and therefore needs to become cold. Therefore,
1377 its preds will no longer be region crossing. Any non-dominating
1378 preds that were previously hot would also have become cold
1379 in the caller for the same region. Any preds that were previously
1380 region-crossing will be adjusted in fixup_partition_crossing. */
1381 FOR_EACH_EDGE (e, ei, bb->preds)
1383 fixup_partition_crossing (e);
1386 /* Possibly need to make bb's successor edges region crossing,
1387 or remove stale region crossing. */
1388 FOR_EACH_EDGE (e, ei, bb->succs)
1390 /* We can't have fall-through edges across partition boundaries.
1391 Note that force_nonfallthru will do any necessary partition
1392 boundary fixup by calling fixup_partition_crossing itself. */
1393 if ((e->flags & EDGE_FALLTHRU)
1394 && BB_PARTITION (bb) != BB_PARTITION (e->dest)
1395 && e->dest != EXIT_BLOCK_PTR)
1396 force_nonfallthru (e);
1397 else
1398 fixup_partition_crossing (e);
1402 /* Attempt to change code to redirect edge E to TARGET. Don't do that on
1403 expense of adding new instructions or reordering basic blocks.
1405 Function can be also called with edge destination equivalent to the TARGET.
1406 Then it should try the simplifications and do nothing if none is possible.
1408 Return edge representing the branch if transformation succeeded. Return NULL
1409 on failure.
1410 We still return NULL in case E already destinated TARGET and we didn't
1411 managed to simplify instruction stream. */
1413 static edge
1414 rtl_redirect_edge_and_branch (edge e, basic_block target)
1416 edge ret;
1417 basic_block src = e->src;
1418 basic_block dest = e->dest;
1420 if (e->flags & (EDGE_ABNORMAL_CALL | EDGE_EH))
1421 return NULL;
1423 if (dest == target)
1424 return e;
1426 if ((ret = try_redirect_by_replacing_jump (e, target, false)) != NULL)
1428 df_set_bb_dirty (src);
1429 fixup_partition_crossing (ret);
1430 return ret;
1433 ret = redirect_branch_edge (e, target);
1434 if (!ret)
1435 return NULL;
1437 df_set_bb_dirty (src);
1438 fixup_partition_crossing (ret);
1439 return ret;
1442 /* Emit a barrier after BB, into the footer if we are in CFGLAYOUT mode. */
1444 void
1445 emit_barrier_after_bb (basic_block bb)
1447 rtx barrier = emit_barrier_after (BB_END (bb));
1448 gcc_assert (current_ir_type () == IR_RTL_CFGRTL
1449 || current_ir_type () == IR_RTL_CFGLAYOUT);
1450 if (current_ir_type () == IR_RTL_CFGLAYOUT)
1451 BB_FOOTER (bb) = unlink_insn_chain (barrier, barrier);
1454 /* Like force_nonfallthru below, but additionally performs redirection
1455 Used by redirect_edge_and_branch_force. JUMP_LABEL is used only
1456 when redirecting to the EXIT_BLOCK, it is either ret_rtx or
1457 simple_return_rtx, indicating which kind of returnjump to create.
1458 It should be NULL otherwise. */
1460 basic_block
1461 force_nonfallthru_and_redirect (edge e, basic_block target, rtx jump_label)
1463 basic_block jump_block, new_bb = NULL, src = e->src;
1464 rtx note;
1465 edge new_edge;
1466 int abnormal_edge_flags = 0;
1467 bool asm_goto_edge = false;
1468 int loc;
1470 /* In the case the last instruction is conditional jump to the next
1471 instruction, first redirect the jump itself and then continue
1472 by creating a basic block afterwards to redirect fallthru edge. */
1473 if (e->src != ENTRY_BLOCK_PTR && e->dest != EXIT_BLOCK_PTR
1474 && any_condjump_p (BB_END (e->src))
1475 && JUMP_LABEL (BB_END (e->src)) == BB_HEAD (e->dest))
1477 rtx note;
1478 edge b = unchecked_make_edge (e->src, target, 0);
1479 bool redirected;
1481 redirected = redirect_jump (BB_END (e->src), block_label (target), 0);
1482 gcc_assert (redirected);
1484 note = find_reg_note (BB_END (e->src), REG_BR_PROB, NULL_RTX);
1485 if (note)
1487 int prob = XINT (note, 0);
1489 b->probability = prob;
1490 /* Update this to use GCOV_COMPUTE_SCALE. */
1491 b->count = e->count * prob / REG_BR_PROB_BASE;
1492 e->probability -= e->probability;
1493 e->count -= b->count;
1494 if (e->probability < 0)
1495 e->probability = 0;
1496 if (e->count < 0)
1497 e->count = 0;
1501 if (e->flags & EDGE_ABNORMAL)
1503 /* Irritating special case - fallthru edge to the same block as abnormal
1504 edge.
1505 We can't redirect abnormal edge, but we still can split the fallthru
1506 one and create separate abnormal edge to original destination.
1507 This allows bb-reorder to make such edge non-fallthru. */
1508 gcc_assert (e->dest == target);
1509 abnormal_edge_flags = e->flags & ~EDGE_FALLTHRU;
1510 e->flags &= EDGE_FALLTHRU;
1512 else
1514 gcc_assert (e->flags & EDGE_FALLTHRU);
1515 if (e->src == ENTRY_BLOCK_PTR)
1517 /* We can't redirect the entry block. Create an empty block
1518 at the start of the function which we use to add the new
1519 jump. */
1520 edge tmp;
1521 edge_iterator ei;
1522 bool found = false;
1524 basic_block bb = create_basic_block (BB_HEAD (e->dest), NULL, ENTRY_BLOCK_PTR);
1526 /* Change the existing edge's source to be the new block, and add
1527 a new edge from the entry block to the new block. */
1528 e->src = bb;
1529 for (ei = ei_start (ENTRY_BLOCK_PTR->succs); (tmp = ei_safe_edge (ei)); )
1531 if (tmp == e)
1533 ENTRY_BLOCK_PTR->succs->unordered_remove (ei.index);
1534 found = true;
1535 break;
1537 else
1538 ei_next (&ei);
1541 gcc_assert (found);
1543 vec_safe_push (bb->succs, e);
1544 make_single_succ_edge (ENTRY_BLOCK_PTR, bb, EDGE_FALLTHRU);
1548 /* If e->src ends with asm goto, see if any of the ASM_OPERANDS_LABELs
1549 don't point to the target or fallthru label. */
1550 if (JUMP_P (BB_END (e->src))
1551 && target != EXIT_BLOCK_PTR
1552 && (e->flags & EDGE_FALLTHRU)
1553 && (note = extract_asm_operands (PATTERN (BB_END (e->src)))))
1555 int i, n = ASM_OPERANDS_LABEL_LENGTH (note);
1556 bool adjust_jump_target = false;
1558 for (i = 0; i < n; ++i)
1560 if (XEXP (ASM_OPERANDS_LABEL (note, i), 0) == BB_HEAD (e->dest))
1562 LABEL_NUSES (XEXP (ASM_OPERANDS_LABEL (note, i), 0))--;
1563 XEXP (ASM_OPERANDS_LABEL (note, i), 0) = block_label (target);
1564 LABEL_NUSES (XEXP (ASM_OPERANDS_LABEL (note, i), 0))++;
1565 adjust_jump_target = true;
1567 if (XEXP (ASM_OPERANDS_LABEL (note, i), 0) == BB_HEAD (target))
1568 asm_goto_edge = true;
1570 if (adjust_jump_target)
1572 rtx insn = BB_END (e->src), note;
1573 rtx old_label = BB_HEAD (e->dest);
1574 rtx new_label = BB_HEAD (target);
1576 if (JUMP_LABEL (insn) == old_label)
1578 JUMP_LABEL (insn) = new_label;
1579 note = find_reg_note (insn, REG_LABEL_TARGET, new_label);
1580 if (note)
1581 remove_note (insn, note);
1583 else
1585 note = find_reg_note (insn, REG_LABEL_TARGET, old_label);
1586 if (note)
1587 remove_note (insn, note);
1588 if (JUMP_LABEL (insn) != new_label
1589 && !find_reg_note (insn, REG_LABEL_TARGET, new_label))
1590 add_reg_note (insn, REG_LABEL_TARGET, new_label);
1592 while ((note = find_reg_note (insn, REG_LABEL_OPERAND, old_label))
1593 != NULL_RTX)
1594 XEXP (note, 0) = new_label;
1598 if (EDGE_COUNT (e->src->succs) >= 2 || abnormal_edge_flags || asm_goto_edge)
1600 gcov_type count = e->count;
1601 int probability = e->probability;
1602 /* Create the new structures. */
1604 /* If the old block ended with a tablejump, skip its table
1605 by searching forward from there. Otherwise start searching
1606 forward from the last instruction of the old block. */
1607 if (!tablejump_p (BB_END (e->src), NULL, &note))
1608 note = BB_END (e->src);
1609 note = NEXT_INSN (note);
1611 jump_block = create_basic_block (note, NULL, e->src);
1612 jump_block->count = count;
1613 jump_block->frequency = EDGE_FREQUENCY (e);
1615 /* Make sure new block ends up in correct hot/cold section. */
1617 BB_COPY_PARTITION (jump_block, e->src);
1619 /* Wire edge in. */
1620 new_edge = make_edge (e->src, jump_block, EDGE_FALLTHRU);
1621 new_edge->probability = probability;
1622 new_edge->count = count;
1624 /* Redirect old edge. */
1625 redirect_edge_pred (e, jump_block);
1626 e->probability = REG_BR_PROB_BASE;
1628 /* If e->src was previously region crossing, it no longer is
1629 and the reg crossing note should be removed. */
1630 fixup_partition_crossing (new_edge);
1632 /* If asm goto has any label refs to target's label,
1633 add also edge from asm goto bb to target. */
1634 if (asm_goto_edge)
1636 new_edge->probability /= 2;
1637 new_edge->count /= 2;
1638 jump_block->count /= 2;
1639 jump_block->frequency /= 2;
1640 new_edge = make_edge (new_edge->src, target,
1641 e->flags & ~EDGE_FALLTHRU);
1642 new_edge->probability = probability - probability / 2;
1643 new_edge->count = count - count / 2;
1646 new_bb = jump_block;
1648 else
1649 jump_block = e->src;
1651 loc = e->goto_locus;
1652 e->flags &= ~EDGE_FALLTHRU;
1653 if (target == EXIT_BLOCK_PTR)
1655 if (jump_label == ret_rtx)
1657 #ifdef HAVE_return
1658 emit_jump_insn_after_setloc (gen_return (), BB_END (jump_block), loc);
1659 #else
1660 gcc_unreachable ();
1661 #endif
1663 else
1665 gcc_assert (jump_label == simple_return_rtx);
1666 #ifdef HAVE_simple_return
1667 emit_jump_insn_after_setloc (gen_simple_return (),
1668 BB_END (jump_block), loc);
1669 #else
1670 gcc_unreachable ();
1671 #endif
1673 set_return_jump_label (BB_END (jump_block));
1675 else
1677 rtx label = block_label (target);
1678 emit_jump_insn_after_setloc (gen_jump (label), BB_END (jump_block), loc);
1679 JUMP_LABEL (BB_END (jump_block)) = label;
1680 LABEL_NUSES (label)++;
1683 /* We might be in cfg layout mode, and if so, the following routine will
1684 insert the barrier correctly. */
1685 emit_barrier_after_bb (jump_block);
1686 redirect_edge_succ_nodup (e, target);
1688 if (abnormal_edge_flags)
1689 make_edge (src, target, abnormal_edge_flags);
1691 df_mark_solutions_dirty ();
1692 fixup_partition_crossing (e);
1693 return new_bb;
1696 /* Edge E is assumed to be fallthru edge. Emit needed jump instruction
1697 (and possibly create new basic block) to make edge non-fallthru.
1698 Return newly created BB or NULL if none. */
1700 static basic_block
1701 rtl_force_nonfallthru (edge e)
1703 return force_nonfallthru_and_redirect (e, e->dest, NULL_RTX);
1706 /* Redirect edge even at the expense of creating new jump insn or
1707 basic block. Return new basic block if created, NULL otherwise.
1708 Conversion must be possible. */
1710 static basic_block
1711 rtl_redirect_edge_and_branch_force (edge e, basic_block target)
1713 if (redirect_edge_and_branch (e, target)
1714 || e->dest == target)
1715 return NULL;
1717 /* In case the edge redirection failed, try to force it to be non-fallthru
1718 and redirect newly created simplejump. */
1719 df_set_bb_dirty (e->src);
1720 return force_nonfallthru_and_redirect (e, target, NULL_RTX);
1723 /* The given edge should potentially be a fallthru edge. If that is in
1724 fact true, delete the jump and barriers that are in the way. */
1726 static void
1727 rtl_tidy_fallthru_edge (edge e)
1729 rtx q;
1730 basic_block b = e->src, c = b->next_bb;
1732 /* ??? In a late-running flow pass, other folks may have deleted basic
1733 blocks by nopping out blocks, leaving multiple BARRIERs between here
1734 and the target label. They ought to be chastised and fixed.
1736 We can also wind up with a sequence of undeletable labels between
1737 one block and the next.
1739 So search through a sequence of barriers, labels, and notes for
1740 the head of block C and assert that we really do fall through. */
1742 for (q = NEXT_INSN (BB_END (b)); q != BB_HEAD (c); q = NEXT_INSN (q))
1743 if (INSN_P (q))
1744 return;
1746 /* Remove what will soon cease being the jump insn from the source block.
1747 If block B consisted only of this single jump, turn it into a deleted
1748 note. */
1749 q = BB_END (b);
1750 if (JUMP_P (q)
1751 && onlyjump_p (q)
1752 && (any_uncondjump_p (q)
1753 || single_succ_p (b)))
1755 #ifdef HAVE_cc0
1756 /* If this was a conditional jump, we need to also delete
1757 the insn that set cc0. */
1758 if (any_condjump_p (q) && only_sets_cc0_p (PREV_INSN (q)))
1759 q = PREV_INSN (q);
1760 #endif
1762 q = PREV_INSN (q);
1765 /* Selectively unlink the sequence. */
1766 if (q != PREV_INSN (BB_HEAD (c)))
1767 delete_insn_chain (NEXT_INSN (q), PREV_INSN (BB_HEAD (c)), false);
1769 e->flags |= EDGE_FALLTHRU;
1772 /* Should move basic block BB after basic block AFTER. NIY. */
1774 static bool
1775 rtl_move_block_after (basic_block bb ATTRIBUTE_UNUSED,
1776 basic_block after ATTRIBUTE_UNUSED)
1778 return false;
1781 /* Locate the last bb in the same partition as START_BB. */
1783 static basic_block
1784 last_bb_in_partition (basic_block start_bb)
1786 basic_block bb;
1787 FOR_BB_BETWEEN (bb, start_bb, EXIT_BLOCK_PTR, next_bb)
1789 if (BB_PARTITION (start_bb) != BB_PARTITION (bb->next_bb))
1790 return bb;
1792 /* Return bb before EXIT_BLOCK_PTR. */
1793 return bb->prev_bb;
1796 /* Split a (typically critical) edge. Return the new block.
1797 The edge must not be abnormal.
1799 ??? The code generally expects to be called on critical edges.
1800 The case of a block ending in an unconditional jump to a
1801 block with multiple predecessors is not handled optimally. */
1803 static basic_block
1804 rtl_split_edge (edge edge_in)
1806 basic_block bb, new_bb;
1807 rtx before;
1809 /* Abnormal edges cannot be split. */
1810 gcc_assert (!(edge_in->flags & EDGE_ABNORMAL));
1812 /* We are going to place the new block in front of edge destination.
1813 Avoid existence of fallthru predecessors. */
1814 if ((edge_in->flags & EDGE_FALLTHRU) == 0)
1816 edge e = find_fallthru_edge (edge_in->dest->preds);
1818 if (e)
1819 force_nonfallthru (e);
1822 /* Create the basic block note. */
1823 if (edge_in->dest != EXIT_BLOCK_PTR)
1824 before = BB_HEAD (edge_in->dest);
1825 else
1826 before = NULL_RTX;
1828 /* If this is a fall through edge to the exit block, the blocks might be
1829 not adjacent, and the right place is after the source. */
1830 if ((edge_in->flags & EDGE_FALLTHRU) && edge_in->dest == EXIT_BLOCK_PTR)
1832 before = NEXT_INSN (BB_END (edge_in->src));
1833 bb = create_basic_block (before, NULL, edge_in->src);
1834 BB_COPY_PARTITION (bb, edge_in->src);
1836 else
1838 if (edge_in->src == ENTRY_BLOCK_PTR)
1840 bb = create_basic_block (before, NULL, edge_in->dest->prev_bb);
1841 BB_COPY_PARTITION (bb, edge_in->dest);
1843 else
1845 basic_block after = edge_in->dest->prev_bb;
1846 /* If this is post-bb reordering, and the edge crosses a partition
1847 boundary, the new block needs to be inserted in the bb chain
1848 at the end of the src partition (since we put the new bb into
1849 that partition, see below). Otherwise we may end up creating
1850 an extra partition crossing in the chain, which is illegal.
1851 It can't go after the src, because src may have a fall-through
1852 to a different block. */
1853 if (crtl->bb_reorder_complete
1854 && (edge_in->flags & EDGE_CROSSING))
1856 after = last_bb_in_partition (edge_in->src);
1857 before = NEXT_INSN (BB_END (after));
1858 /* The instruction following the last bb in partition should
1859 be a barrier, since it cannot end in a fall-through. */
1860 gcc_checking_assert (BARRIER_P (before));
1861 before = NEXT_INSN (before);
1863 bb = create_basic_block (before, NULL, after);
1864 /* Put the split bb into the src partition, to avoid creating
1865 a situation where a cold bb dominates a hot bb, in the case
1866 where src is cold and dest is hot. The src will dominate
1867 the new bb (whereas it might not have dominated dest). */
1868 BB_COPY_PARTITION (bb, edge_in->src);
1872 make_single_succ_edge (bb, edge_in->dest, EDGE_FALLTHRU);
1874 /* Can't allow a region crossing edge to be fallthrough. */
1875 if (BB_PARTITION (bb) != BB_PARTITION (edge_in->dest)
1876 && edge_in->dest != EXIT_BLOCK_PTR)
1878 new_bb = force_nonfallthru (single_succ_edge (bb));
1879 gcc_assert (!new_bb);
1882 /* For non-fallthru edges, we must adjust the predecessor's
1883 jump instruction to target our new block. */
1884 if ((edge_in->flags & EDGE_FALLTHRU) == 0)
1886 edge redirected = redirect_edge_and_branch (edge_in, bb);
1887 gcc_assert (redirected);
1889 else
1891 if (edge_in->src != ENTRY_BLOCK_PTR)
1893 /* For asm goto even splitting of fallthru edge might
1894 need insn patching, as other labels might point to the
1895 old label. */
1896 rtx last = BB_END (edge_in->src);
1897 if (last
1898 && JUMP_P (last)
1899 && edge_in->dest != EXIT_BLOCK_PTR
1900 && extract_asm_operands (PATTERN (last)) != NULL_RTX
1901 && patch_jump_insn (last, before, bb))
1902 df_set_bb_dirty (edge_in->src);
1904 redirect_edge_succ (edge_in, bb);
1907 return bb;
1910 /* Queue instructions for insertion on an edge between two basic blocks.
1911 The new instructions and basic blocks (if any) will not appear in the
1912 CFG until commit_edge_insertions is called. */
1914 void
1915 insert_insn_on_edge (rtx pattern, edge e)
1917 /* We cannot insert instructions on an abnormal critical edge.
1918 It will be easier to find the culprit if we die now. */
1919 gcc_assert (!((e->flags & EDGE_ABNORMAL) && EDGE_CRITICAL_P (e)));
1921 if (e->insns.r == NULL_RTX)
1922 start_sequence ();
1923 else
1924 push_to_sequence (e->insns.r);
1926 emit_insn (pattern);
1928 e->insns.r = get_insns ();
1929 end_sequence ();
1932 /* Update the CFG for the instructions queued on edge E. */
1934 void
1935 commit_one_edge_insertion (edge e)
1937 rtx before = NULL_RTX, after = NULL_RTX, insns, tmp, last;
1938 basic_block bb;
1940 /* Pull the insns off the edge now since the edge might go away. */
1941 insns = e->insns.r;
1942 e->insns.r = NULL_RTX;
1944 /* Figure out where to put these insns. If the destination has
1945 one predecessor, insert there. Except for the exit block. */
1946 if (single_pred_p (e->dest) && e->dest != EXIT_BLOCK_PTR)
1948 bb = e->dest;
1950 /* Get the location correct wrt a code label, and "nice" wrt
1951 a basic block note, and before everything else. */
1952 tmp = BB_HEAD (bb);
1953 if (LABEL_P (tmp))
1954 tmp = NEXT_INSN (tmp);
1955 if (NOTE_INSN_BASIC_BLOCK_P (tmp))
1956 tmp = NEXT_INSN (tmp);
1957 if (tmp == BB_HEAD (bb))
1958 before = tmp;
1959 else if (tmp)
1960 after = PREV_INSN (tmp);
1961 else
1962 after = get_last_insn ();
1965 /* If the source has one successor and the edge is not abnormal,
1966 insert there. Except for the entry block.
1967 Don't do this if the predecessor ends in a jump other than
1968 unconditional simple jump. E.g. for asm goto that points all
1969 its labels at the fallthru basic block, we can't insert instructions
1970 before the asm goto, as the asm goto can have various of side effects,
1971 and can't emit instructions after the asm goto, as it must end
1972 the basic block. */
1973 else if ((e->flags & EDGE_ABNORMAL) == 0
1974 && single_succ_p (e->src)
1975 && e->src != ENTRY_BLOCK_PTR
1976 && (!JUMP_P (BB_END (e->src))
1977 || simplejump_p (BB_END (e->src))))
1979 bb = e->src;
1981 /* It is possible to have a non-simple jump here. Consider a target
1982 where some forms of unconditional jumps clobber a register. This
1983 happens on the fr30 for example.
1985 We know this block has a single successor, so we can just emit
1986 the queued insns before the jump. */
1987 if (JUMP_P (BB_END (bb)))
1988 before = BB_END (bb);
1989 else
1991 /* We'd better be fallthru, or we've lost track of what's what. */
1992 gcc_assert (e->flags & EDGE_FALLTHRU);
1994 after = BB_END (bb);
1998 /* Otherwise we must split the edge. */
1999 else
2001 bb = split_edge (e);
2003 /* If E crossed a partition boundary, we needed to make bb end in
2004 a region-crossing jump, even though it was originally fallthru. */
2005 if (JUMP_P (BB_END (bb)))
2006 before = BB_END (bb);
2007 else
2008 after = BB_END (bb);
2011 /* Now that we've found the spot, do the insertion. */
2012 if (before)
2014 emit_insn_before_noloc (insns, before, bb);
2015 last = prev_nonnote_insn (before);
2017 else
2018 last = emit_insn_after_noloc (insns, after, bb);
2020 if (returnjump_p (last))
2022 /* ??? Remove all outgoing edges from BB and add one for EXIT.
2023 This is not currently a problem because this only happens
2024 for the (single) epilogue, which already has a fallthru edge
2025 to EXIT. */
2027 e = single_succ_edge (bb);
2028 gcc_assert (e->dest == EXIT_BLOCK_PTR
2029 && single_succ_p (bb) && (e->flags & EDGE_FALLTHRU));
2031 e->flags &= ~EDGE_FALLTHRU;
2032 emit_barrier_after (last);
2034 if (before)
2035 delete_insn (before);
2037 else
2038 gcc_assert (!JUMP_P (last));
2041 /* Update the CFG for all queued instructions. */
2043 void
2044 commit_edge_insertions (void)
2046 basic_block bb;
2048 /* Optimization passes that invoke this routine can cause hot blocks
2049 previously reached by both hot and cold blocks to become dominated only
2050 by cold blocks. This will cause the verification below to fail,
2051 and lead to now cold code in the hot section. In some cases this
2052 may only be visible after newly unreachable blocks are deleted,
2053 which will be done by fixup_partitions. */
2054 fixup_partitions ();
2056 #ifdef ENABLE_CHECKING
2057 verify_flow_info ();
2058 #endif
2060 FOR_BB_BETWEEN (bb, ENTRY_BLOCK_PTR, EXIT_BLOCK_PTR, next_bb)
2062 edge e;
2063 edge_iterator ei;
2065 FOR_EACH_EDGE (e, ei, bb->succs)
2066 if (e->insns.r)
2067 commit_one_edge_insertion (e);
2072 /* Print out RTL-specific basic block information (live information
2073 at start and end with TDF_DETAILS). FLAGS are the TDF_* masks
2074 documented in dumpfile.h. */
2076 static void
2077 rtl_dump_bb (FILE *outf, basic_block bb, int indent, int flags)
2079 rtx insn;
2080 rtx last;
2081 char *s_indent;
2083 s_indent = (char *) alloca ((size_t) indent + 1);
2084 memset (s_indent, ' ', (size_t) indent);
2085 s_indent[indent] = '\0';
2087 if (df && (flags & TDF_DETAILS))
2089 df_dump_top (bb, outf);
2090 putc ('\n', outf);
2093 if (bb->index != ENTRY_BLOCK && bb->index != EXIT_BLOCK)
2094 for (insn = BB_HEAD (bb), last = NEXT_INSN (BB_END (bb)); insn != last;
2095 insn = NEXT_INSN (insn))
2097 if (flags & TDF_DETAILS)
2098 df_dump_insn_top (insn, outf);
2099 if (! (flags & TDF_SLIM))
2100 print_rtl_single (outf, insn);
2101 else
2102 dump_insn_slim (outf, insn);
2103 if (flags & TDF_DETAILS)
2104 df_dump_insn_bottom (insn, outf);
2107 if (df && (flags & TDF_DETAILS))
2109 df_dump_bottom (bb, outf);
2110 putc ('\n', outf);
2115 /* Like dump_function_to_file, but for RTL. Print out dataflow information
2116 for the start of each basic block. FLAGS are the TDF_* masks documented
2117 in dumpfile.h. */
2119 void
2120 print_rtl_with_bb (FILE *outf, const_rtx rtx_first, int flags)
2122 const_rtx tmp_rtx;
2123 if (rtx_first == 0)
2124 fprintf (outf, "(nil)\n");
2125 else
2127 enum bb_state { NOT_IN_BB, IN_ONE_BB, IN_MULTIPLE_BB };
2128 int max_uid = get_max_uid ();
2129 basic_block *start = XCNEWVEC (basic_block, max_uid);
2130 basic_block *end = XCNEWVEC (basic_block, max_uid);
2131 enum bb_state *in_bb_p = XCNEWVEC (enum bb_state, max_uid);
2132 basic_block bb;
2134 /* After freeing the CFG, we still have BLOCK_FOR_INSN set on most
2135 insns, but the CFG is not maintained so the basic block info
2136 is not reliable. Therefore it's omitted from the dumps. */
2137 if (! (cfun->curr_properties & PROP_cfg))
2138 flags &= ~TDF_BLOCKS;
2140 if (df)
2141 df_dump_start (outf);
2143 if (flags & TDF_BLOCKS)
2145 FOR_EACH_BB_REVERSE (bb)
2147 rtx x;
2149 start[INSN_UID (BB_HEAD (bb))] = bb;
2150 end[INSN_UID (BB_END (bb))] = bb;
2151 for (x = BB_HEAD (bb); x != NULL_RTX; x = NEXT_INSN (x))
2153 enum bb_state state = IN_MULTIPLE_BB;
2155 if (in_bb_p[INSN_UID (x)] == NOT_IN_BB)
2156 state = IN_ONE_BB;
2157 in_bb_p[INSN_UID (x)] = state;
2159 if (x == BB_END (bb))
2160 break;
2165 for (tmp_rtx = rtx_first; NULL != tmp_rtx; tmp_rtx = NEXT_INSN (tmp_rtx))
2167 if (flags & TDF_BLOCKS)
2169 bb = start[INSN_UID (tmp_rtx)];
2170 if (bb != NULL)
2172 dump_bb_info (outf, bb, 0, dump_flags | TDF_COMMENT, true, false);
2173 if (df && (flags & TDF_DETAILS))
2174 df_dump_top (bb, outf);
2177 if (in_bb_p[INSN_UID (tmp_rtx)] == NOT_IN_BB
2178 && !NOTE_P (tmp_rtx)
2179 && !BARRIER_P (tmp_rtx))
2180 fprintf (outf, ";; Insn is not within a basic block\n");
2181 else if (in_bb_p[INSN_UID (tmp_rtx)] == IN_MULTIPLE_BB)
2182 fprintf (outf, ";; Insn is in multiple basic blocks\n");
2185 if (flags & TDF_DETAILS)
2186 df_dump_insn_top (tmp_rtx, outf);
2187 if (! (flags & TDF_SLIM))
2188 print_rtl_single (outf, tmp_rtx);
2189 else
2190 dump_insn_slim (outf, tmp_rtx);
2191 if (flags & TDF_DETAILS)
2192 df_dump_insn_bottom (tmp_rtx, outf);
2194 if (flags & TDF_BLOCKS)
2196 bb = end[INSN_UID (tmp_rtx)];
2197 if (bb != NULL)
2199 dump_bb_info (outf, bb, 0, dump_flags | TDF_COMMENT, false, true);
2200 if (df && (flags & TDF_DETAILS))
2201 df_dump_bottom (bb, outf);
2202 putc ('\n', outf);
2207 free (start);
2208 free (end);
2209 free (in_bb_p);
2213 /* Update the branch probability of BB if a REG_BR_PROB is present. */
2215 void
2216 update_br_prob_note (basic_block bb)
2218 rtx note;
2219 if (!JUMP_P (BB_END (bb)))
2220 return;
2221 note = find_reg_note (BB_END (bb), REG_BR_PROB, NULL_RTX);
2222 if (!note || XINT (note, 0) == BRANCH_EDGE (bb)->probability)
2223 return;
2224 XINT (note, 0) = BRANCH_EDGE (bb)->probability;
2227 /* Get the last insn associated with block BB (that includes barriers and
2228 tablejumps after BB). */
2230 get_last_bb_insn (basic_block bb)
2232 rtx tmp;
2233 rtx end = BB_END (bb);
2235 /* Include any jump table following the basic block. */
2236 if (tablejump_p (end, NULL, &tmp))
2237 end = tmp;
2239 /* Include any barriers that may follow the basic block. */
2240 tmp = next_nonnote_insn_bb (end);
2241 while (tmp && BARRIER_P (tmp))
2243 end = tmp;
2244 tmp = next_nonnote_insn_bb (end);
2247 return end;
2250 /* Sanity check partition hotness to ensure that basic blocks in
2251   the cold partition don't dominate basic blocks in the hot partition.
2252 If FLAG_ONLY is true, report violations as errors. Otherwise
2253 re-mark the dominated blocks as cold, since this is run after
2254 cfg optimizations that may make hot blocks previously reached
2255 by both hot and cold blocks now only reachable along cold paths. */
2257 static vec<basic_block>
2258 find_partition_fixes (bool flag_only)
2260 basic_block bb;
2261 vec<basic_block> bbs_in_cold_partition = vNULL;
2262 vec<basic_block> bbs_to_fix = vNULL;
2264 /* Callers check this. */
2265 gcc_checking_assert (crtl->has_bb_partition);
2267 FOR_EACH_BB (bb)
2268 if ((BB_PARTITION (bb) == BB_COLD_PARTITION))
2269 bbs_in_cold_partition.safe_push (bb);
2271 if (bbs_in_cold_partition.is_empty ())
2272 return vNULL;
2274 bool dom_calculated_here = !dom_info_available_p (CDI_DOMINATORS);
2276 if (dom_calculated_here)
2277 calculate_dominance_info (CDI_DOMINATORS);
2279 while (! bbs_in_cold_partition.is_empty ())
2281 bb = bbs_in_cold_partition.pop ();
2282 /* Any blocks dominated by a block in the cold section
2283 must also be cold. */
2284 basic_block son;
2285 for (son = first_dom_son (CDI_DOMINATORS, bb);
2286 son;
2287 son = next_dom_son (CDI_DOMINATORS, son))
2289 /* If son is not yet cold, then mark it cold here and
2290 enqueue it for further processing. */
2291 if ((BB_PARTITION (son) != BB_COLD_PARTITION))
2293 if (flag_only)
2294 error ("non-cold basic block %d dominated "
2295 "by a block in the cold partition (%d)", son->index, bb->index);
2296 else
2297 BB_SET_PARTITION (son, BB_COLD_PARTITION);
2298 bbs_to_fix.safe_push (son);
2299 bbs_in_cold_partition.safe_push (son);
2304 if (dom_calculated_here)
2305 free_dominance_info (CDI_DOMINATORS);
2307 return bbs_to_fix;
2310 /* Perform cleanup on the hot/cold bb partitioning after optimization
2311 passes that modify the cfg. */
2313 void
2314 fixup_partitions (void)
2316 basic_block bb;
2318 if (!crtl->has_bb_partition)
2319 return;
2321 /* Delete any blocks that became unreachable and weren't
2322 already cleaned up, for example during edge forwarding
2323 and convert_jumps_to_returns. This will expose more
2324 opportunities for fixing the partition boundaries here.
2325 Also, the calculation of the dominance graph during verification
2326 will assert if there are unreachable nodes. */
2327 delete_unreachable_blocks ();
2329 /* If there are partitions, do a sanity check on them: A basic block in
2330   a cold partition cannot dominate a basic block in a hot partition.
2331 Fixup any that now violate this requirement, as a result of edge
2332 forwarding and unreachable block deletion.  */
2333 vec<basic_block> bbs_to_fix = find_partition_fixes (false);
2335 /* Do the partition fixup after all necessary blocks have been converted to
2336 cold, so that we only update the region crossings the minimum number of
2337 places, which can require forcing edges to be non fallthru. */
2338 while (! bbs_to_fix.is_empty ())
2340 bb = bbs_to_fix.pop ();
2341 fixup_new_cold_bb (bb);
2345 /* Verify, in the basic block chain, that there is at most one switch
2346 between hot/cold partitions. This condition will not be true until
2347 after reorder_basic_blocks is called. */
2349 static int
2350 verify_hot_cold_block_grouping (void)
2352 basic_block bb;
2353 int err = 0;
2354 bool switched_sections = false;
2355 int current_partition = BB_UNPARTITIONED;
2357 /* Even after bb reordering is complete, we go into cfglayout mode
2358 again (in compgoto). Ensure we don't call this before going back
2359 into linearized RTL when any layout fixes would have been committed. */
2360 if (!crtl->bb_reorder_complete
2361 || current_ir_type () != IR_RTL_CFGRTL)
2362 return err;
2364 FOR_EACH_BB (bb)
2366 if (current_partition != BB_UNPARTITIONED
2367 && BB_PARTITION (bb) != current_partition)
2369 if (switched_sections)
2371 error ("multiple hot/cold transitions found (bb %i)",
2372 bb->index);
2373 err = 1;
2375 else
2376 switched_sections = true;
2378 if (!crtl->has_bb_partition)
2379 error ("partition found but function partition flag not set");
2381 current_partition = BB_PARTITION (bb);
2384 return err;
2388 /* Perform several checks on the edges out of each block, such as
2389 the consistency of the branch probabilities, the correctness
2390 of hot/cold partition crossing edges, and the number of expected
2391 successor edges. Also verify that the dominance relationship
2392 between hot/cold blocks is sane. */
2394 static int
2395 rtl_verify_edges (void)
2397 int err = 0;
2398 basic_block bb;
2400 FOR_EACH_BB_REVERSE (bb)
2402 int n_fallthru = 0, n_branch = 0, n_abnormal_call = 0, n_sibcall = 0;
2403 int n_eh = 0, n_abnormal = 0;
2404 edge e, fallthru = NULL;
2405 edge_iterator ei;
2406 rtx note;
2407 bool has_crossing_edge = false;
2409 if (JUMP_P (BB_END (bb))
2410 && (note = find_reg_note (BB_END (bb), REG_BR_PROB, NULL_RTX))
2411 && EDGE_COUNT (bb->succs) >= 2
2412 && any_condjump_p (BB_END (bb)))
2414 if (XINT (note, 0) != BRANCH_EDGE (bb)->probability
2415 && profile_status != PROFILE_ABSENT)
2417 error ("verify_flow_info: REG_BR_PROB does not match cfg %i %i",
2418 XINT (note, 0), BRANCH_EDGE (bb)->probability);
2419 err = 1;
2423 FOR_EACH_EDGE (e, ei, bb->succs)
2425 bool is_crossing;
2427 if (e->flags & EDGE_FALLTHRU)
2428 n_fallthru++, fallthru = e;
2430 is_crossing = (BB_PARTITION (e->src) != BB_PARTITION (e->dest)
2431 && e->src != ENTRY_BLOCK_PTR
2432 && e->dest != EXIT_BLOCK_PTR);
2433 has_crossing_edge |= is_crossing;
2434 if (e->flags & EDGE_CROSSING)
2436 if (!is_crossing)
2438 error ("EDGE_CROSSING incorrectly set across same section");
2439 err = 1;
2441 if (e->flags & EDGE_FALLTHRU)
2443 error ("fallthru edge crosses section boundary in bb %i",
2444 e->src->index);
2445 err = 1;
2447 if (e->flags & EDGE_EH)
2449 error ("EH edge crosses section boundary in bb %i",
2450 e->src->index);
2451 err = 1;
2453 if (JUMP_P (BB_END (bb))
2454 && !find_reg_note (BB_END (bb), REG_CROSSING_JUMP, NULL_RTX))
2456 error ("No region crossing jump at section boundary in bb %i",
2457 bb->index);
2458 err = 1;
2461 else if (is_crossing)
2463 error ("EDGE_CROSSING missing across section boundary");
2464 err = 1;
2467 if ((e->flags & ~(EDGE_DFS_BACK
2468 | EDGE_CAN_FALLTHRU
2469 | EDGE_IRREDUCIBLE_LOOP
2470 | EDGE_LOOP_EXIT
2471 | EDGE_CROSSING
2472 | EDGE_PRESERVE)) == 0)
2473 n_branch++;
2475 if (e->flags & EDGE_ABNORMAL_CALL)
2476 n_abnormal_call++;
2478 if (e->flags & EDGE_SIBCALL)
2479 n_sibcall++;
2481 if (e->flags & EDGE_EH)
2482 n_eh++;
2484 if (e->flags & EDGE_ABNORMAL)
2485 n_abnormal++;
2488 if (!has_crossing_edge
2489 && find_reg_note (BB_END (bb), REG_CROSSING_JUMP, NULL_RTX))
2491 print_rtl_with_bb (stderr, get_insns (), TDF_RTL | TDF_BLOCKS | TDF_DETAILS);
2492 error ("Region crossing jump across same section in bb %i",
2493 bb->index);
2494 err = 1;
2497 if (n_eh && !find_reg_note (BB_END (bb), REG_EH_REGION, NULL_RTX))
2499 error ("missing REG_EH_REGION note at the end of bb %i", bb->index);
2500 err = 1;
2502 if (n_eh > 1)
2504 error ("too many exception handling edges in bb %i", bb->index);
2505 err = 1;
2507 if (n_branch
2508 && (!JUMP_P (BB_END (bb))
2509 || (n_branch > 1 && (any_uncondjump_p (BB_END (bb))
2510 || any_condjump_p (BB_END (bb))))))
2512 error ("too many outgoing branch edges from bb %i", bb->index);
2513 err = 1;
2515 if (n_fallthru && any_uncondjump_p (BB_END (bb)))
2517 error ("fallthru edge after unconditional jump in bb %i", bb->index);
2518 err = 1;
2520 if (n_branch != 1 && any_uncondjump_p (BB_END (bb)))
2522 error ("wrong number of branch edges after unconditional jump"
2523 " in bb %i", bb->index);
2524 err = 1;
2526 if (n_branch != 1 && any_condjump_p (BB_END (bb))
2527 && JUMP_LABEL (BB_END (bb)) != BB_HEAD (fallthru->dest))
2529 error ("wrong amount of branch edges after conditional jump"
2530 " in bb %i", bb->index);
2531 err = 1;
2533 if (n_abnormal_call && !CALL_P (BB_END (bb)))
2535 error ("abnormal call edges for non-call insn in bb %i", bb->index);
2536 err = 1;
2538 if (n_sibcall && !CALL_P (BB_END (bb)))
2540 error ("sibcall edges for non-call insn in bb %i", bb->index);
2541 err = 1;
2543 if (n_abnormal > n_eh
2544 && !(CALL_P (BB_END (bb))
2545 && n_abnormal == n_abnormal_call + n_sibcall)
2546 && (!JUMP_P (BB_END (bb))
2547 || any_condjump_p (BB_END (bb))
2548 || any_uncondjump_p (BB_END (bb))))
2550 error ("abnormal edges for no purpose in bb %i", bb->index);
2551 err = 1;
2555 /* If there are partitions, do a sanity check on them: A basic block in
2556   a cold partition cannot dominate a basic block in a hot partition.  */
2557 if (crtl->has_bb_partition && !err)
2559 vec<basic_block> bbs_to_fix = find_partition_fixes (true);
2560 err = !bbs_to_fix.is_empty ();
2563 /* Clean up. */
2564 return err;
2567 /* Checks on the instructions within blocks. Currently checks that each
2568 block starts with a basic block note, and that basic block notes and
2569 control flow jumps are not found in the middle of the block. */
2571 static int
2572 rtl_verify_bb_insns (void)
2574 rtx x;
2575 int err = 0;
2576 basic_block bb;
2578 FOR_EACH_BB_REVERSE (bb)
2580 /* Now check the header of basic
2581 block. It ought to contain optional CODE_LABEL followed
2582 by NOTE_BASIC_BLOCK. */
2583 x = BB_HEAD (bb);
2584 if (LABEL_P (x))
2586 if (BB_END (bb) == x)
2588 error ("NOTE_INSN_BASIC_BLOCK is missing for block %d",
2589 bb->index);
2590 err = 1;
2593 x = NEXT_INSN (x);
2596 if (!NOTE_INSN_BASIC_BLOCK_P (x) || NOTE_BASIC_BLOCK (x) != bb)
2598 error ("NOTE_INSN_BASIC_BLOCK is missing for block %d",
2599 bb->index);
2600 err = 1;
2603 if (BB_END (bb) == x)
2604 /* Do checks for empty blocks here. */
2606 else
2607 for (x = NEXT_INSN (x); x; x = NEXT_INSN (x))
2609 if (NOTE_INSN_BASIC_BLOCK_P (x))
2611 error ("NOTE_INSN_BASIC_BLOCK %d in middle of basic block %d",
2612 INSN_UID (x), bb->index);
2613 err = 1;
2616 if (x == BB_END (bb))
2617 break;
2619 if (control_flow_insn_p (x))
2621 error ("in basic block %d:", bb->index);
2622 fatal_insn ("flow control insn inside a basic block", x);
2627 /* Clean up. */
2628 return err;
2631 /* Verify that block pointers for instructions in basic blocks, headers and
2632 footers are set appropriately. */
2634 static int
2635 rtl_verify_bb_pointers (void)
2637 int err = 0;
2638 basic_block bb;
2640 /* Check the general integrity of the basic blocks. */
2641 FOR_EACH_BB_REVERSE (bb)
2643 rtx insn;
2645 if (!(bb->flags & BB_RTL))
2647 error ("BB_RTL flag not set for block %d", bb->index);
2648 err = 1;
2651 FOR_BB_INSNS (bb, insn)
2652 if (BLOCK_FOR_INSN (insn) != bb)
2654 error ("insn %d basic block pointer is %d, should be %d",
2655 INSN_UID (insn),
2656 BLOCK_FOR_INSN (insn) ? BLOCK_FOR_INSN (insn)->index : 0,
2657 bb->index);
2658 err = 1;
2661 for (insn = BB_HEADER (bb); insn; insn = NEXT_INSN (insn))
2662 if (!BARRIER_P (insn)
2663 && BLOCK_FOR_INSN (insn) != NULL)
2665 error ("insn %d in header of bb %d has non-NULL basic block",
2666 INSN_UID (insn), bb->index);
2667 err = 1;
2669 for (insn = BB_FOOTER (bb); insn; insn = NEXT_INSN (insn))
2670 if (!BARRIER_P (insn)
2671 && BLOCK_FOR_INSN (insn) != NULL)
2673 error ("insn %d in footer of bb %d has non-NULL basic block",
2674 INSN_UID (insn), bb->index);
2675 err = 1;
2679 /* Clean up. */
2680 return err;
2683 /* Verify the CFG and RTL consistency common for both underlying RTL and
2684 cfglayout RTL.
2686 Currently it does following checks:
2688 - overlapping of basic blocks
2689 - insns with wrong BLOCK_FOR_INSN pointers
2690 - headers of basic blocks (the NOTE_INSN_BASIC_BLOCK note)
2691 - tails of basic blocks (ensure that boundary is necessary)
2692 - scans body of the basic block for JUMP_INSN, CODE_LABEL
2693 and NOTE_INSN_BASIC_BLOCK
2694 - verify that no fall_thru edge crosses hot/cold partition boundaries
2695 - verify that there are no pending RTL branch predictions
2696 - verify that hot blocks are not dominated by cold blocks
2698 In future it can be extended check a lot of other stuff as well
2699 (reachability of basic blocks, life information, etc. etc.). */
2701 static int
2702 rtl_verify_flow_info_1 (void)
2704 int err = 0;
2706 err |= rtl_verify_bb_pointers ();
2708 err |= rtl_verify_bb_insns ();
2710 err |= rtl_verify_edges ();
2712 return err;
2715 /* Walk the instruction chain and verify that bb head/end pointers
2716 are correct, and that instructions are in exactly one bb and have
2717 correct block pointers. */
2719 static int
2720 rtl_verify_bb_insn_chain (void)
2722 basic_block bb;
2723 int err = 0;
2724 rtx x;
2725 rtx last_head = get_last_insn ();
2726 basic_block *bb_info;
2727 const int max_uid = get_max_uid ();
2729 bb_info = XCNEWVEC (basic_block, max_uid);
2731 FOR_EACH_BB_REVERSE (bb)
2733 rtx head = BB_HEAD (bb);
2734 rtx end = BB_END (bb);
2736 for (x = last_head; x != NULL_RTX; x = PREV_INSN (x))
2738 /* Verify the end of the basic block is in the INSN chain. */
2739 if (x == end)
2740 break;
2742 /* And that the code outside of basic blocks has NULL bb field. */
2743 if (!BARRIER_P (x)
2744 && BLOCK_FOR_INSN (x) != NULL)
2746 error ("insn %d outside of basic blocks has non-NULL bb field",
2747 INSN_UID (x));
2748 err = 1;
2752 if (!x)
2754 error ("end insn %d for block %d not found in the insn stream",
2755 INSN_UID (end), bb->index);
2756 err = 1;
2759 /* Work backwards from the end to the head of the basic block
2760 to verify the head is in the RTL chain. */
2761 for (; x != NULL_RTX; x = PREV_INSN (x))
2763 /* While walking over the insn chain, verify insns appear
2764 in only one basic block. */
2765 if (bb_info[INSN_UID (x)] != NULL)
2767 error ("insn %d is in multiple basic blocks (%d and %d)",
2768 INSN_UID (x), bb->index, bb_info[INSN_UID (x)]->index);
2769 err = 1;
2772 bb_info[INSN_UID (x)] = bb;
2774 if (x == head)
2775 break;
2777 if (!x)
2779 error ("head insn %d for block %d not found in the insn stream",
2780 INSN_UID (head), bb->index);
2781 err = 1;
2784 last_head = PREV_INSN (x);
2787 for (x = last_head; x != NULL_RTX; x = PREV_INSN (x))
2789 /* Check that the code before the first basic block has NULL
2790 bb field. */
2791 if (!BARRIER_P (x)
2792 && BLOCK_FOR_INSN (x) != NULL)
2794 error ("insn %d outside of basic blocks has non-NULL bb field",
2795 INSN_UID (x));
2796 err = 1;
2799 free (bb_info);
2801 return err;
2804 /* Verify that fallthru edges point to adjacent blocks in layout order and
2805 that barriers exist after non-fallthru blocks. */
2807 static int
2808 rtl_verify_fallthru (void)
2810 basic_block bb;
2811 int err = 0;
2813 FOR_EACH_BB_REVERSE (bb)
2815 edge e;
2817 e = find_fallthru_edge (bb->succs);
2818 if (!e)
2820 rtx insn;
2822 /* Ensure existence of barrier in BB with no fallthru edges. */
2823 for (insn = NEXT_INSN (BB_END (bb)); ; insn = NEXT_INSN (insn))
2825 if (!insn || NOTE_INSN_BASIC_BLOCK_P (insn))
2827 error ("missing barrier after block %i", bb->index);
2828 err = 1;
2829 break;
2831 if (BARRIER_P (insn))
2832 break;
2835 else if (e->src != ENTRY_BLOCK_PTR
2836 && e->dest != EXIT_BLOCK_PTR)
2838 rtx insn;
2840 if (e->src->next_bb != e->dest)
2842 error
2843 ("verify_flow_info: Incorrect blocks for fallthru %i->%i",
2844 e->src->index, e->dest->index);
2845 err = 1;
2847 else
2848 for (insn = NEXT_INSN (BB_END (e->src)); insn != BB_HEAD (e->dest);
2849 insn = NEXT_INSN (insn))
2850 if (BARRIER_P (insn) || INSN_P (insn))
2852 error ("verify_flow_info: Incorrect fallthru %i->%i",
2853 e->src->index, e->dest->index);
2854 fatal_insn ("wrong insn in the fallthru edge", insn);
2855 err = 1;
2860 return err;
2863 /* Verify that blocks are laid out in consecutive order. While walking the
2864 instructions, verify that all expected instructions are inside the basic
2865 blocks, and that all returns are followed by barriers. */
2867 static int
2868 rtl_verify_bb_layout (void)
2870 basic_block bb;
2871 int err = 0;
2872 rtx x;
2873 int num_bb_notes;
2874 const rtx rtx_first = get_insns ();
2875 basic_block last_bb_seen = ENTRY_BLOCK_PTR, curr_bb = NULL;
2877 num_bb_notes = 0;
2878 last_bb_seen = ENTRY_BLOCK_PTR;
2880 for (x = rtx_first; x; x = NEXT_INSN (x))
2882 if (NOTE_INSN_BASIC_BLOCK_P (x))
2884 bb = NOTE_BASIC_BLOCK (x);
2886 num_bb_notes++;
2887 if (bb != last_bb_seen->next_bb)
2888 internal_error ("basic blocks not laid down consecutively");
2890 curr_bb = last_bb_seen = bb;
2893 if (!curr_bb)
2895 switch (GET_CODE (x))
2897 case BARRIER:
2898 case NOTE:
2899 break;
2901 case CODE_LABEL:
2902 /* An ADDR_VEC is placed outside any basic block. */
2903 if (NEXT_INSN (x)
2904 && JUMP_TABLE_DATA_P (NEXT_INSN (x)))
2905 x = NEXT_INSN (x);
2907 /* But in any case, non-deletable labels can appear anywhere. */
2908 break;
2910 default:
2911 fatal_insn ("insn outside basic block", x);
2915 if (JUMP_P (x)
2916 && returnjump_p (x) && ! condjump_p (x)
2917 && ! (next_nonnote_insn (x) && BARRIER_P (next_nonnote_insn (x))))
2918 fatal_insn ("return not followed by barrier", x);
2920 if (curr_bb && x == BB_END (curr_bb))
2921 curr_bb = NULL;
2924 if (num_bb_notes != n_basic_blocks - NUM_FIXED_BLOCKS)
2925 internal_error
2926 ("number of bb notes in insn chain (%d) != n_basic_blocks (%d)",
2927 num_bb_notes, n_basic_blocks);
2929 return err;
2932 /* Verify the CFG and RTL consistency common for both underlying RTL and
2933 cfglayout RTL, plus consistency checks specific to linearized RTL mode.
2935 Currently it does following checks:
2936 - all checks of rtl_verify_flow_info_1
2937 - test head/end pointers
2938 - check that blocks are laid out in consecutive order
2939 - check that all insns are in the basic blocks
2940 (except the switch handling code, barriers and notes)
2941 - check that all returns are followed by barriers
2942 - check that all fallthru edge points to the adjacent blocks
2943 - verify that there is a single hot/cold partition boundary after bbro */
2945 static int
2946 rtl_verify_flow_info (void)
2948 int err = 0;
2950 err |= rtl_verify_flow_info_1 ();
2952 err |= rtl_verify_bb_insn_chain ();
2954 err |= rtl_verify_fallthru ();
2956 err |= rtl_verify_bb_layout ();
2958 err |= verify_hot_cold_block_grouping ();
2960 return err;
2963 /* Assume that the preceding pass has possibly eliminated jump instructions
2964 or converted the unconditional jumps. Eliminate the edges from CFG.
2965 Return true if any edges are eliminated. */
2967 bool
2968 purge_dead_edges (basic_block bb)
2970 edge e;
2971 rtx insn = BB_END (bb), note;
2972 bool purged = false;
2973 bool found;
2974 edge_iterator ei;
2976 if (DEBUG_INSN_P (insn) && insn != BB_HEAD (bb))
2978 insn = PREV_INSN (insn);
2979 while ((DEBUG_INSN_P (insn) || NOTE_P (insn)) && insn != BB_HEAD (bb));
2981 /* If this instruction cannot trap, remove REG_EH_REGION notes. */
2982 if (NONJUMP_INSN_P (insn)
2983 && (note = find_reg_note (insn, REG_EH_REGION, NULL)))
2985 rtx eqnote;
2987 if (! may_trap_p (PATTERN (insn))
2988 || ((eqnote = find_reg_equal_equiv_note (insn))
2989 && ! may_trap_p (XEXP (eqnote, 0))))
2990 remove_note (insn, note);
2993 /* Cleanup abnormal edges caused by exceptions or non-local gotos. */
2994 for (ei = ei_start (bb->succs); (e = ei_safe_edge (ei)); )
2996 bool remove = false;
2998 /* There are three types of edges we need to handle correctly here: EH
2999 edges, abnormal call EH edges, and abnormal call non-EH edges. The
3000 latter can appear when nonlocal gotos are used. */
3001 if (e->flags & EDGE_ABNORMAL_CALL)
3003 if (!CALL_P (insn))
3004 remove = true;
3005 else if (can_nonlocal_goto (insn))
3007 else if ((e->flags & EDGE_EH) && can_throw_internal (insn))
3009 else if (flag_tm && find_reg_note (insn, REG_TM, NULL))
3011 else
3012 remove = true;
3014 else if (e->flags & EDGE_EH)
3015 remove = !can_throw_internal (insn);
3017 if (remove)
3019 remove_edge (e);
3020 df_set_bb_dirty (bb);
3021 purged = true;
3023 else
3024 ei_next (&ei);
3027 if (JUMP_P (insn))
3029 rtx note;
3030 edge b,f;
3031 edge_iterator ei;
3033 /* We do care only about conditional jumps and simplejumps. */
3034 if (!any_condjump_p (insn)
3035 && !returnjump_p (insn)
3036 && !simplejump_p (insn))
3037 return purged;
3039 /* Branch probability/prediction notes are defined only for
3040 condjumps. We've possibly turned condjump into simplejump. */
3041 if (simplejump_p (insn))
3043 note = find_reg_note (insn, REG_BR_PROB, NULL);
3044 if (note)
3045 remove_note (insn, note);
3046 while ((note = find_reg_note (insn, REG_BR_PRED, NULL)))
3047 remove_note (insn, note);
3050 for (ei = ei_start (bb->succs); (e = ei_safe_edge (ei)); )
3052 /* Avoid abnormal flags to leak from computed jumps turned
3053 into simplejumps. */
3055 e->flags &= ~EDGE_ABNORMAL;
3057 /* See if this edge is one we should keep. */
3058 if ((e->flags & EDGE_FALLTHRU) && any_condjump_p (insn))
3059 /* A conditional jump can fall through into the next
3060 block, so we should keep the edge. */
3062 ei_next (&ei);
3063 continue;
3065 else if (e->dest != EXIT_BLOCK_PTR
3066 && BB_HEAD (e->dest) == JUMP_LABEL (insn))
3067 /* If the destination block is the target of the jump,
3068 keep the edge. */
3070 ei_next (&ei);
3071 continue;
3073 else if (e->dest == EXIT_BLOCK_PTR && returnjump_p (insn))
3074 /* If the destination block is the exit block, and this
3075 instruction is a return, then keep the edge. */
3077 ei_next (&ei);
3078 continue;
3080 else if ((e->flags & EDGE_EH) && can_throw_internal (insn))
3081 /* Keep the edges that correspond to exceptions thrown by
3082 this instruction and rematerialize the EDGE_ABNORMAL
3083 flag we just cleared above. */
3085 e->flags |= EDGE_ABNORMAL;
3086 ei_next (&ei);
3087 continue;
3090 /* We do not need this edge. */
3091 df_set_bb_dirty (bb);
3092 purged = true;
3093 remove_edge (e);
3096 if (EDGE_COUNT (bb->succs) == 0 || !purged)
3097 return purged;
3099 if (dump_file)
3100 fprintf (dump_file, "Purged edges from bb %i\n", bb->index);
3102 if (!optimize)
3103 return purged;
3105 /* Redistribute probabilities. */
3106 if (single_succ_p (bb))
3108 single_succ_edge (bb)->probability = REG_BR_PROB_BASE;
3109 single_succ_edge (bb)->count = bb->count;
3111 else
3113 note = find_reg_note (insn, REG_BR_PROB, NULL);
3114 if (!note)
3115 return purged;
3117 b = BRANCH_EDGE (bb);
3118 f = FALLTHRU_EDGE (bb);
3119 b->probability = XINT (note, 0);
3120 f->probability = REG_BR_PROB_BASE - b->probability;
3121 /* Update these to use GCOV_COMPUTE_SCALE. */
3122 b->count = bb->count * b->probability / REG_BR_PROB_BASE;
3123 f->count = bb->count * f->probability / REG_BR_PROB_BASE;
3126 return purged;
3128 else if (CALL_P (insn) && SIBLING_CALL_P (insn))
3130 /* First, there should not be any EH or ABCALL edges resulting
3131 from non-local gotos and the like. If there were, we shouldn't
3132 have created the sibcall in the first place. Second, there
3133 should of course never have been a fallthru edge. */
3134 gcc_assert (single_succ_p (bb));
3135 gcc_assert (single_succ_edge (bb)->flags
3136 == (EDGE_SIBCALL | EDGE_ABNORMAL));
3138 return 0;
3141 /* If we don't see a jump insn, we don't know exactly why the block would
3142 have been broken at this point. Look for a simple, non-fallthru edge,
3143 as these are only created by conditional branches. If we find such an
3144 edge we know that there used to be a jump here and can then safely
3145 remove all non-fallthru edges. */
3146 found = false;
3147 FOR_EACH_EDGE (e, ei, bb->succs)
3148 if (! (e->flags & (EDGE_COMPLEX | EDGE_FALLTHRU)))
3150 found = true;
3151 break;
3154 if (!found)
3155 return purged;
3157 /* Remove all but the fake and fallthru edges. The fake edge may be
3158 the only successor for this block in the case of noreturn
3159 calls. */
3160 for (ei = ei_start (bb->succs); (e = ei_safe_edge (ei)); )
3162 if (!(e->flags & (EDGE_FALLTHRU | EDGE_FAKE)))
3164 df_set_bb_dirty (bb);
3165 remove_edge (e);
3166 purged = true;
3168 else
3169 ei_next (&ei);
3172 gcc_assert (single_succ_p (bb));
3174 single_succ_edge (bb)->probability = REG_BR_PROB_BASE;
3175 single_succ_edge (bb)->count = bb->count;
3177 if (dump_file)
3178 fprintf (dump_file, "Purged non-fallthru edges from bb %i\n",
3179 bb->index);
3180 return purged;
3183 /* Search all basic blocks for potentially dead edges and purge them. Return
3184 true if some edge has been eliminated. */
3186 bool
3187 purge_all_dead_edges (void)
3189 int purged = false;
3190 basic_block bb;
3192 FOR_EACH_BB (bb)
3194 bool purged_here = purge_dead_edges (bb);
3196 purged |= purged_here;
3199 return purged;
3202 /* This is used by a few passes that emit some instructions after abnormal
3203 calls, moving the basic block's end, while they in fact do want to emit
3204 them on the fallthru edge. Look for abnormal call edges, find backward
3205 the call in the block and insert the instructions on the edge instead.
3207 Similarly, handle instructions throwing exceptions internally.
3209 Return true when instructions have been found and inserted on edges. */
3211 bool
3212 fixup_abnormal_edges (void)
3214 bool inserted = false;
3215 basic_block bb;
3217 FOR_EACH_BB (bb)
3219 edge e;
3220 edge_iterator ei;
3222 /* Look for cases we are interested in - calls or instructions causing
3223 exceptions. */
3224 FOR_EACH_EDGE (e, ei, bb->succs)
3225 if ((e->flags & EDGE_ABNORMAL_CALL)
3226 || ((e->flags & (EDGE_ABNORMAL | EDGE_EH))
3227 == (EDGE_ABNORMAL | EDGE_EH)))
3228 break;
3230 if (e && !CALL_P (BB_END (bb)) && !can_throw_internal (BB_END (bb)))
3232 rtx insn;
3234 /* Get past the new insns generated. Allow notes, as the insns
3235 may be already deleted. */
3236 insn = BB_END (bb);
3237 while ((NONJUMP_INSN_P (insn) || NOTE_P (insn))
3238 && !can_throw_internal (insn)
3239 && insn != BB_HEAD (bb))
3240 insn = PREV_INSN (insn);
3242 if (CALL_P (insn) || can_throw_internal (insn))
3244 rtx stop, next;
3246 e = find_fallthru_edge (bb->succs);
3248 stop = NEXT_INSN (BB_END (bb));
3249 BB_END (bb) = insn;
3251 for (insn = NEXT_INSN (insn); insn != stop; insn = next)
3253 next = NEXT_INSN (insn);
3254 if (INSN_P (insn))
3256 delete_insn (insn);
3258 /* Sometimes there's still the return value USE.
3259 If it's placed after a trapping call (i.e. that
3260 call is the last insn anyway), we have no fallthru
3261 edge. Simply delete this use and don't try to insert
3262 on the non-existent edge. */
3263 if (GET_CODE (PATTERN (insn)) != USE)
3265 /* We're not deleting it, we're moving it. */
3266 INSN_DELETED_P (insn) = 0;
3267 PREV_INSN (insn) = NULL_RTX;
3268 NEXT_INSN (insn) = NULL_RTX;
3270 insert_insn_on_edge (insn, e);
3271 inserted = true;
3274 else if (!BARRIER_P (insn))
3275 set_block_for_insn (insn, NULL);
3279 /* It may be that we don't find any trapping insn. In this
3280 case we discovered quite late that the insn that had been
3281 marked as can_throw_internal in fact couldn't trap at all.
3282 So we should in fact delete the EH edges out of the block. */
3283 else
3284 purge_dead_edges (bb);
3288 return inserted;
3291 /* Cut the insns from FIRST to LAST out of the insns stream. */
3294 unlink_insn_chain (rtx first, rtx last)
3296 rtx prevfirst = PREV_INSN (first);
3297 rtx nextlast = NEXT_INSN (last);
3299 PREV_INSN (first) = NULL;
3300 NEXT_INSN (last) = NULL;
3301 if (prevfirst)
3302 NEXT_INSN (prevfirst) = nextlast;
3303 if (nextlast)
3304 PREV_INSN (nextlast) = prevfirst;
3305 else
3306 set_last_insn (prevfirst);
3307 if (!prevfirst)
3308 set_first_insn (nextlast);
3309 return first;
3312 /* Skip over inter-block insns occurring after BB which are typically
3313 associated with BB (e.g., barriers). If there are any such insns,
3314 we return the last one. Otherwise, we return the end of BB. */
3316 static rtx
3317 skip_insns_after_block (basic_block bb)
3319 rtx insn, last_insn, next_head, prev;
3321 next_head = NULL_RTX;
3322 if (bb->next_bb != EXIT_BLOCK_PTR)
3323 next_head = BB_HEAD (bb->next_bb);
3325 for (last_insn = insn = BB_END (bb); (insn = NEXT_INSN (insn)) != 0; )
3327 if (insn == next_head)
3328 break;
3330 switch (GET_CODE (insn))
3332 case BARRIER:
3333 last_insn = insn;
3334 continue;
3336 case NOTE:
3337 switch (NOTE_KIND (insn))
3339 case NOTE_INSN_BLOCK_END:
3340 gcc_unreachable ();
3341 continue;
3342 default:
3343 continue;
3344 break;
3346 break;
3348 case CODE_LABEL:
3349 if (NEXT_INSN (insn)
3350 && JUMP_TABLE_DATA_P (NEXT_INSN (insn)))
3352 insn = NEXT_INSN (insn);
3353 last_insn = insn;
3354 continue;
3356 break;
3358 default:
3359 break;
3362 break;
3365 /* It is possible to hit contradictory sequence. For instance:
3367 jump_insn
3368 NOTE_INSN_BLOCK_BEG
3369 barrier
3371 Where barrier belongs to jump_insn, but the note does not. This can be
3372 created by removing the basic block originally following
3373 NOTE_INSN_BLOCK_BEG. In such case reorder the notes. */
3375 for (insn = last_insn; insn != BB_END (bb); insn = prev)
3377 prev = PREV_INSN (insn);
3378 if (NOTE_P (insn))
3379 switch (NOTE_KIND (insn))
3381 case NOTE_INSN_BLOCK_END:
3382 gcc_unreachable ();
3383 break;
3384 case NOTE_INSN_DELETED:
3385 case NOTE_INSN_DELETED_LABEL:
3386 case NOTE_INSN_DELETED_DEBUG_LABEL:
3387 continue;
3388 default:
3389 reorder_insns (insn, insn, last_insn);
3393 return last_insn;
3396 /* Locate or create a label for a given basic block. */
3398 static rtx
3399 label_for_bb (basic_block bb)
3401 rtx label = BB_HEAD (bb);
3403 if (!LABEL_P (label))
3405 if (dump_file)
3406 fprintf (dump_file, "Emitting label for block %d\n", bb->index);
3408 label = block_label (bb);
3411 return label;
3414 /* Locate the effective beginning and end of the insn chain for each
3415 block, as defined by skip_insns_after_block above. */
3417 static void
3418 record_effective_endpoints (void)
3420 rtx next_insn;
3421 basic_block bb;
3422 rtx insn;
3424 for (insn = get_insns ();
3425 insn
3426 && NOTE_P (insn)
3427 && NOTE_KIND (insn) != NOTE_INSN_BASIC_BLOCK;
3428 insn = NEXT_INSN (insn))
3429 continue;
3430 /* No basic blocks at all? */
3431 gcc_assert (insn);
3433 if (PREV_INSN (insn))
3434 cfg_layout_function_header =
3435 unlink_insn_chain (get_insns (), PREV_INSN (insn));
3436 else
3437 cfg_layout_function_header = NULL_RTX;
3439 next_insn = get_insns ();
3440 FOR_EACH_BB (bb)
3442 rtx end;
3444 if (PREV_INSN (BB_HEAD (bb)) && next_insn != BB_HEAD (bb))
3445 BB_HEADER (bb) = unlink_insn_chain (next_insn,
3446 PREV_INSN (BB_HEAD (bb)));
3447 end = skip_insns_after_block (bb);
3448 if (NEXT_INSN (BB_END (bb)) && BB_END (bb) != end)
3449 BB_FOOTER (bb) = unlink_insn_chain (NEXT_INSN (BB_END (bb)), end);
3450 next_insn = NEXT_INSN (BB_END (bb));
3453 cfg_layout_function_footer = next_insn;
3454 if (cfg_layout_function_footer)
3455 cfg_layout_function_footer = unlink_insn_chain (cfg_layout_function_footer, get_last_insn ());
3458 static unsigned int
3459 into_cfg_layout_mode (void)
3461 cfg_layout_initialize (0);
3462 return 0;
3465 static unsigned int
3466 outof_cfg_layout_mode (void)
3468 basic_block bb;
3470 FOR_EACH_BB (bb)
3471 if (bb->next_bb != EXIT_BLOCK_PTR)
3472 bb->aux = bb->next_bb;
3474 cfg_layout_finalize ();
3476 return 0;
3479 namespace {
3481 const pass_data pass_data_into_cfg_layout_mode =
3483 RTL_PASS, /* type */
3484 "into_cfglayout", /* name */
3485 OPTGROUP_NONE, /* optinfo_flags */
3486 false, /* has_gate */
3487 true, /* has_execute */
3488 TV_CFG, /* tv_id */
3489 0, /* properties_required */
3490 PROP_cfglayout, /* properties_provided */
3491 0, /* properties_destroyed */
3492 0, /* todo_flags_start */
3493 0, /* todo_flags_finish */
3496 class pass_into_cfg_layout_mode : public rtl_opt_pass
3498 public:
3499 pass_into_cfg_layout_mode (gcc::context *ctxt)
3500 : rtl_opt_pass (pass_data_into_cfg_layout_mode, ctxt)
3503 /* opt_pass methods: */
3504 unsigned int execute () { return into_cfg_layout_mode (); }
3506 }; // class pass_into_cfg_layout_mode
3508 } // anon namespace
3510 rtl_opt_pass *
3511 make_pass_into_cfg_layout_mode (gcc::context *ctxt)
3513 return new pass_into_cfg_layout_mode (ctxt);
3516 namespace {
3518 const pass_data pass_data_outof_cfg_layout_mode =
3520 RTL_PASS, /* type */
3521 "outof_cfglayout", /* name */
3522 OPTGROUP_NONE, /* optinfo_flags */
3523 false, /* has_gate */
3524 true, /* has_execute */
3525 TV_CFG, /* tv_id */
3526 0, /* properties_required */
3527 0, /* properties_provided */
3528 PROP_cfglayout, /* properties_destroyed */
3529 0, /* todo_flags_start */
3530 0, /* todo_flags_finish */
3533 class pass_outof_cfg_layout_mode : public rtl_opt_pass
3535 public:
3536 pass_outof_cfg_layout_mode (gcc::context *ctxt)
3537 : rtl_opt_pass (pass_data_outof_cfg_layout_mode, ctxt)
3540 /* opt_pass methods: */
3541 unsigned int execute () { return outof_cfg_layout_mode (); }
3543 }; // class pass_outof_cfg_layout_mode
3545 } // anon namespace
3547 rtl_opt_pass *
3548 make_pass_outof_cfg_layout_mode (gcc::context *ctxt)
3550 return new pass_outof_cfg_layout_mode (ctxt);
3554 /* Link the basic blocks in the correct order, compacting the basic
3555 block queue while at it. If STAY_IN_CFGLAYOUT_MODE is false, this
3556 function also clears the basic block header and footer fields.
3558 This function is usually called after a pass (e.g. tracer) finishes
3559 some transformations while in cfglayout mode. The required sequence
3560 of the basic blocks is in a linked list along the bb->aux field.
3561 This functions re-links the basic block prev_bb and next_bb pointers
3562 accordingly, and it compacts and renumbers the blocks.
3564 FIXME: This currently works only for RTL, but the only RTL-specific
3565 bits are the STAY_IN_CFGLAYOUT_MODE bits. The tracer pass was moved
3566 to GIMPLE a long time ago, but it doesn't relink the basic block
3567 chain. It could do that (to give better initial RTL) if this function
3568 is made IR-agnostic (and moved to cfganal.c or cfg.c while at it). */
3570 void
3571 relink_block_chain (bool stay_in_cfglayout_mode)
3573 basic_block bb, prev_bb;
3574 int index;
3576 /* Maybe dump the re-ordered sequence. */
3577 if (dump_file)
3579 fprintf (dump_file, "Reordered sequence:\n");
3580 for (bb = ENTRY_BLOCK_PTR->next_bb, index = NUM_FIXED_BLOCKS;
3582 bb = (basic_block) bb->aux, index++)
3584 fprintf (dump_file, " %i ", index);
3585 if (get_bb_original (bb))
3586 fprintf (dump_file, "duplicate of %i ",
3587 get_bb_original (bb)->index);
3588 else if (forwarder_block_p (bb)
3589 && !LABEL_P (BB_HEAD (bb)))
3590 fprintf (dump_file, "compensation ");
3591 else
3592 fprintf (dump_file, "bb %i ", bb->index);
3593 fprintf (dump_file, " [%i]\n", bb->frequency);
3597 /* Now reorder the blocks. */
3598 prev_bb = ENTRY_BLOCK_PTR;
3599 bb = ENTRY_BLOCK_PTR->next_bb;
3600 for (; bb; prev_bb = bb, bb = (basic_block) bb->aux)
3602 bb->prev_bb = prev_bb;
3603 prev_bb->next_bb = bb;
3605 prev_bb->next_bb = EXIT_BLOCK_PTR;
3606 EXIT_BLOCK_PTR->prev_bb = prev_bb;
3608 /* Then, clean up the aux fields. */
3609 FOR_ALL_BB (bb)
3611 bb->aux = NULL;
3612 if (!stay_in_cfglayout_mode)
3613 BB_HEADER (bb) = BB_FOOTER (bb) = NULL;
3616 /* Maybe reset the original copy tables, they are not valid anymore
3617 when we renumber the basic blocks in compact_blocks. If we are
3618 are going out of cfglayout mode, don't re-allocate the tables. */
3619 free_original_copy_tables ();
3620 if (stay_in_cfglayout_mode)
3621 initialize_original_copy_tables ();
3623 /* Finally, put basic_block_info in the new order. */
3624 compact_blocks ();
3628 /* Given a reorder chain, rearrange the code to match. */
3630 static void
3631 fixup_reorder_chain (void)
3633 basic_block bb;
3634 rtx insn = NULL;
3636 if (cfg_layout_function_header)
3638 set_first_insn (cfg_layout_function_header);
3639 insn = cfg_layout_function_header;
3640 while (NEXT_INSN (insn))
3641 insn = NEXT_INSN (insn);
3644 /* First do the bulk reordering -- rechain the blocks without regard to
3645 the needed changes to jumps and labels. */
3647 for (bb = ENTRY_BLOCK_PTR->next_bb; bb; bb = (basic_block) bb->aux)
3649 if (BB_HEADER (bb))
3651 if (insn)
3652 NEXT_INSN (insn) = BB_HEADER (bb);
3653 else
3654 set_first_insn (BB_HEADER (bb));
3655 PREV_INSN (BB_HEADER (bb)) = insn;
3656 insn = BB_HEADER (bb);
3657 while (NEXT_INSN (insn))
3658 insn = NEXT_INSN (insn);
3660 if (insn)
3661 NEXT_INSN (insn) = BB_HEAD (bb);
3662 else
3663 set_first_insn (BB_HEAD (bb));
3664 PREV_INSN (BB_HEAD (bb)) = insn;
3665 insn = BB_END (bb);
3666 if (BB_FOOTER (bb))
3668 NEXT_INSN (insn) = BB_FOOTER (bb);
3669 PREV_INSN (BB_FOOTER (bb)) = insn;
3670 while (NEXT_INSN (insn))
3671 insn = NEXT_INSN (insn);
3675 NEXT_INSN (insn) = cfg_layout_function_footer;
3676 if (cfg_layout_function_footer)
3677 PREV_INSN (cfg_layout_function_footer) = insn;
3679 while (NEXT_INSN (insn))
3680 insn = NEXT_INSN (insn);
3682 set_last_insn (insn);
3683 #ifdef ENABLE_CHECKING
3684 verify_insn_chain ();
3685 #endif
3687 /* Now add jumps and labels as needed to match the blocks new
3688 outgoing edges. */
3690 for (bb = ENTRY_BLOCK_PTR->next_bb; bb ; bb = (basic_block) bb->aux)
3692 edge e_fall, e_taken, e;
3693 rtx bb_end_insn;
3694 rtx ret_label = NULL_RTX;
3695 basic_block nb;
3696 edge_iterator ei;
3698 if (EDGE_COUNT (bb->succs) == 0)
3699 continue;
3701 /* Find the old fallthru edge, and another non-EH edge for
3702 a taken jump. */
3703 e_taken = e_fall = NULL;
3705 FOR_EACH_EDGE (e, ei, bb->succs)
3706 if (e->flags & EDGE_FALLTHRU)
3707 e_fall = e;
3708 else if (! (e->flags & EDGE_EH))
3709 e_taken = e;
3711 bb_end_insn = BB_END (bb);
3712 if (JUMP_P (bb_end_insn))
3714 ret_label = JUMP_LABEL (bb_end_insn);
3715 if (any_condjump_p (bb_end_insn))
3717 /* This might happen if the conditional jump has side
3718 effects and could therefore not be optimized away.
3719 Make the basic block to end with a barrier in order
3720 to prevent rtl_verify_flow_info from complaining. */
3721 if (!e_fall)
3723 gcc_assert (!onlyjump_p (bb_end_insn)
3724 || returnjump_p (bb_end_insn));
3725 emit_barrier_after (bb_end_insn);
3726 continue;
3729 /* If the old fallthru is still next, nothing to do. */
3730 if (bb->aux == e_fall->dest
3731 || e_fall->dest == EXIT_BLOCK_PTR)
3732 continue;
3734 /* The degenerated case of conditional jump jumping to the next
3735 instruction can happen for jumps with side effects. We need
3736 to construct a forwarder block and this will be done just
3737 fine by force_nonfallthru below. */
3738 if (!e_taken)
3741 /* There is another special case: if *neither* block is next,
3742 such as happens at the very end of a function, then we'll
3743 need to add a new unconditional jump. Choose the taken
3744 edge based on known or assumed probability. */
3745 else if (bb->aux != e_taken->dest)
3747 rtx note = find_reg_note (bb_end_insn, REG_BR_PROB, 0);
3749 if (note
3750 && XINT (note, 0) < REG_BR_PROB_BASE / 2
3751 && invert_jump (bb_end_insn,
3752 (e_fall->dest == EXIT_BLOCK_PTR
3753 ? NULL_RTX
3754 : label_for_bb (e_fall->dest)), 0))
3756 e_fall->flags &= ~EDGE_FALLTHRU;
3757 gcc_checking_assert (could_fall_through
3758 (e_taken->src, e_taken->dest));
3759 e_taken->flags |= EDGE_FALLTHRU;
3760 update_br_prob_note (bb);
3761 e = e_fall, e_fall = e_taken, e_taken = e;
3765 /* If the "jumping" edge is a crossing edge, and the fall
3766 through edge is non-crossing, leave things as they are. */
3767 else if ((e_taken->flags & EDGE_CROSSING)
3768 && !(e_fall->flags & EDGE_CROSSING))
3769 continue;
3771 /* Otherwise we can try to invert the jump. This will
3772 basically never fail, however, keep up the pretense. */
3773 else if (invert_jump (bb_end_insn,
3774 (e_fall->dest == EXIT_BLOCK_PTR
3775 ? NULL_RTX
3776 : label_for_bb (e_fall->dest)), 0))
3778 e_fall->flags &= ~EDGE_FALLTHRU;
3779 gcc_checking_assert (could_fall_through
3780 (e_taken->src, e_taken->dest));
3781 e_taken->flags |= EDGE_FALLTHRU;
3782 update_br_prob_note (bb);
3783 if (LABEL_NUSES (ret_label) == 0
3784 && single_pred_p (e_taken->dest))
3785 delete_insn (ret_label);
3786 continue;
3789 else if (extract_asm_operands (PATTERN (bb_end_insn)) != NULL)
3791 /* If the old fallthru is still next or if
3792 asm goto doesn't have a fallthru (e.g. when followed by
3793 __builtin_unreachable ()), nothing to do. */
3794 if (! e_fall
3795 || bb->aux == e_fall->dest
3796 || e_fall->dest == EXIT_BLOCK_PTR)
3797 continue;
3799 /* Otherwise we'll have to use the fallthru fixup below. */
3801 else
3803 /* Otherwise we have some return, switch or computed
3804 jump. In the 99% case, there should not have been a
3805 fallthru edge. */
3806 gcc_assert (returnjump_p (bb_end_insn) || !e_fall);
3807 continue;
3810 else
3812 /* No fallthru implies a noreturn function with EH edges, or
3813 something similarly bizarre. In any case, we don't need to
3814 do anything. */
3815 if (! e_fall)
3816 continue;
3818 /* If the fallthru block is still next, nothing to do. */
3819 if (bb->aux == e_fall->dest)
3820 continue;
3822 /* A fallthru to exit block. */
3823 if (e_fall->dest == EXIT_BLOCK_PTR)
3824 continue;
3827 /* We got here if we need to add a new jump insn.
3828 Note force_nonfallthru can delete E_FALL and thus we have to
3829 save E_FALL->src prior to the call to force_nonfallthru. */
3830 nb = force_nonfallthru_and_redirect (e_fall, e_fall->dest, ret_label);
3831 if (nb)
3833 nb->aux = bb->aux;
3834 bb->aux = nb;
3835 /* Don't process this new block. */
3836 bb = nb;
3840 relink_block_chain (/*stay_in_cfglayout_mode=*/false);
3842 /* Annoying special case - jump around dead jumptables left in the code. */
3843 FOR_EACH_BB (bb)
3845 edge e = find_fallthru_edge (bb->succs);
3847 if (e && !can_fallthru (e->src, e->dest))
3848 force_nonfallthru (e);
3851 /* Ensure goto_locus from edges has some instructions with that locus
3852 in RTL. */
3853 if (!optimize)
3854 FOR_EACH_BB (bb)
3856 edge e;
3857 edge_iterator ei;
3859 FOR_EACH_EDGE (e, ei, bb->succs)
3860 if (LOCATION_LOCUS (e->goto_locus) != UNKNOWN_LOCATION
3861 && !(e->flags & EDGE_ABNORMAL))
3863 edge e2;
3864 edge_iterator ei2;
3865 basic_block dest, nb;
3866 rtx end;
3868 insn = BB_END (e->src);
3869 end = PREV_INSN (BB_HEAD (e->src));
3870 while (insn != end
3871 && (!NONDEBUG_INSN_P (insn) || !INSN_HAS_LOCATION (insn)))
3872 insn = PREV_INSN (insn);
3873 if (insn != end
3874 && INSN_LOCATION (insn) == e->goto_locus)
3875 continue;
3876 if (simplejump_p (BB_END (e->src))
3877 && !INSN_HAS_LOCATION (BB_END (e->src)))
3879 INSN_LOCATION (BB_END (e->src)) = e->goto_locus;
3880 continue;
3882 dest = e->dest;
3883 if (dest == EXIT_BLOCK_PTR)
3885 /* Non-fallthru edges to the exit block cannot be split. */
3886 if (!(e->flags & EDGE_FALLTHRU))
3887 continue;
3889 else
3891 insn = BB_HEAD (dest);
3892 end = NEXT_INSN (BB_END (dest));
3893 while (insn != end && !NONDEBUG_INSN_P (insn))
3894 insn = NEXT_INSN (insn);
3895 if (insn != end && INSN_HAS_LOCATION (insn)
3896 && INSN_LOCATION (insn) == e->goto_locus)
3897 continue;
3899 nb = split_edge (e);
3900 if (!INSN_P (BB_END (nb)))
3901 BB_END (nb) = emit_insn_after_noloc (gen_nop (), BB_END (nb),
3902 nb);
3903 INSN_LOCATION (BB_END (nb)) = e->goto_locus;
3905 /* If there are other incoming edges to the destination block
3906 with the same goto locus, redirect them to the new block as
3907 well, this can prevent other such blocks from being created
3908 in subsequent iterations of the loop. */
3909 for (ei2 = ei_start (dest->preds); (e2 = ei_safe_edge (ei2)); )
3910 if (LOCATION_LOCUS (e2->goto_locus) != UNKNOWN_LOCATION
3911 && !(e2->flags & (EDGE_ABNORMAL | EDGE_FALLTHRU))
3912 && e->goto_locus == e2->goto_locus)
3913 redirect_edge_and_branch (e2, nb);
3914 else
3915 ei_next (&ei2);
3920 /* Perform sanity checks on the insn chain.
3921 1. Check that next/prev pointers are consistent in both the forward and
3922 reverse direction.
3923 2. Count insns in chain, going both directions, and check if equal.
3924 3. Check that get_last_insn () returns the actual end of chain. */
3926 DEBUG_FUNCTION void
3927 verify_insn_chain (void)
3929 rtx x, prevx, nextx;
3930 int insn_cnt1, insn_cnt2;
3932 for (prevx = NULL, insn_cnt1 = 1, x = get_insns ();
3933 x != 0;
3934 prevx = x, insn_cnt1++, x = NEXT_INSN (x))
3935 gcc_assert (PREV_INSN (x) == prevx);
3937 gcc_assert (prevx == get_last_insn ());
3939 for (nextx = NULL, insn_cnt2 = 1, x = get_last_insn ();
3940 x != 0;
3941 nextx = x, insn_cnt2++, x = PREV_INSN (x))
3942 gcc_assert (NEXT_INSN (x) == nextx);
3944 gcc_assert (insn_cnt1 == insn_cnt2);
3947 /* If we have assembler epilogues, the block falling through to exit must
3948 be the last one in the reordered chain when we reach final. Ensure
3949 that this condition is met. */
3950 static void
3951 fixup_fallthru_exit_predecessor (void)
3953 edge e;
3954 basic_block bb = NULL;
3956 /* This transformation is not valid before reload, because we might
3957 separate a call from the instruction that copies the return
3958 value. */
3959 gcc_assert (reload_completed);
3961 e = find_fallthru_edge (EXIT_BLOCK_PTR->preds);
3962 if (e)
3963 bb = e->src;
3965 if (bb && bb->aux)
3967 basic_block c = ENTRY_BLOCK_PTR->next_bb;
3969 /* If the very first block is the one with the fall-through exit
3970 edge, we have to split that block. */
3971 if (c == bb)
3973 bb = split_block (bb, NULL)->dest;
3974 bb->aux = c->aux;
3975 c->aux = bb;
3976 BB_FOOTER (bb) = BB_FOOTER (c);
3977 BB_FOOTER (c) = NULL;
3980 while (c->aux != bb)
3981 c = (basic_block) c->aux;
3983 c->aux = bb->aux;
3984 while (c->aux)
3985 c = (basic_block) c->aux;
3987 c->aux = bb;
3988 bb->aux = NULL;
3992 /* In case there are more than one fallthru predecessors of exit, force that
3993 there is only one. */
3995 static void
3996 force_one_exit_fallthru (void)
3998 edge e, predecessor = NULL;
3999 bool more = false;
4000 edge_iterator ei;
4001 basic_block forwarder, bb;
4003 FOR_EACH_EDGE (e, ei, EXIT_BLOCK_PTR->preds)
4004 if (e->flags & EDGE_FALLTHRU)
4006 if (predecessor == NULL)
4007 predecessor = e;
4008 else
4010 more = true;
4011 break;
4015 if (!more)
4016 return;
4018 /* Exit has several fallthru predecessors. Create a forwarder block for
4019 them. */
4020 forwarder = split_edge (predecessor);
4021 for (ei = ei_start (EXIT_BLOCK_PTR->preds); (e = ei_safe_edge (ei)); )
4023 if (e->src == forwarder
4024 || !(e->flags & EDGE_FALLTHRU))
4025 ei_next (&ei);
4026 else
4027 redirect_edge_and_branch_force (e, forwarder);
4030 /* Fix up the chain of blocks -- make FORWARDER immediately precede the
4031 exit block. */
4032 FOR_EACH_BB (bb)
4034 if (bb->aux == NULL && bb != forwarder)
4036 bb->aux = forwarder;
4037 break;
4042 /* Return true in case it is possible to duplicate the basic block BB. */
4044 static bool
4045 cfg_layout_can_duplicate_bb_p (const_basic_block bb)
4047 /* Do not attempt to duplicate tablejumps, as we need to unshare
4048 the dispatch table. This is difficult to do, as the instructions
4049 computing jump destination may be hoisted outside the basic block. */
4050 if (tablejump_p (BB_END (bb), NULL, NULL))
4051 return false;
4053 /* Do not duplicate blocks containing insns that can't be copied. */
4054 if (targetm.cannot_copy_insn_p)
4056 rtx insn = BB_HEAD (bb);
4057 while (1)
4059 if (INSN_P (insn) && targetm.cannot_copy_insn_p (insn))
4060 return false;
4061 if (insn == BB_END (bb))
4062 break;
4063 insn = NEXT_INSN (insn);
4067 return true;
4071 duplicate_insn_chain (rtx from, rtx to)
4073 rtx insn, next, last, copy;
4075 /* Avoid updating of boundaries of previous basic block. The
4076 note will get removed from insn stream in fixup. */
4077 last = emit_note (NOTE_INSN_DELETED);
4079 /* Create copy at the end of INSN chain. The chain will
4080 be reordered later. */
4081 for (insn = from; insn != NEXT_INSN (to); insn = NEXT_INSN (insn))
4083 switch (GET_CODE (insn))
4085 case DEBUG_INSN:
4086 /* Don't duplicate label debug insns. */
4087 if (TREE_CODE (INSN_VAR_LOCATION_DECL (insn)) == LABEL_DECL)
4088 break;
4089 /* FALLTHRU */
4090 case INSN:
4091 case CALL_INSN:
4092 case JUMP_INSN:
4093 copy = emit_copy_of_insn_after (insn, get_last_insn ());
4094 if (JUMP_P (insn) && JUMP_LABEL (insn) != NULL_RTX
4095 && ANY_RETURN_P (JUMP_LABEL (insn)))
4096 JUMP_LABEL (copy) = JUMP_LABEL (insn);
4097 maybe_copy_prologue_epilogue_insn (insn, copy);
4098 break;
4100 case JUMP_TABLE_DATA:
4101 /* Avoid copying of dispatch tables. We never duplicate
4102 tablejumps, so this can hit only in case the table got
4103 moved far from original jump.
4104 Avoid copying following barrier as well if any
4105 (and debug insns in between). */
4106 for (next = NEXT_INSN (insn);
4107 next != NEXT_INSN (to);
4108 next = NEXT_INSN (next))
4109 if (!DEBUG_INSN_P (next))
4110 break;
4111 if (next != NEXT_INSN (to) && BARRIER_P (next))
4112 insn = next;
4113 break;
4115 case CODE_LABEL:
4116 break;
4118 case BARRIER:
4119 emit_barrier ();
4120 break;
4122 case NOTE:
4123 switch (NOTE_KIND (insn))
4125 /* In case prologue is empty and function contain label
4126 in first BB, we may want to copy the block. */
4127 case NOTE_INSN_PROLOGUE_END:
4129 case NOTE_INSN_DELETED:
4130 case NOTE_INSN_DELETED_LABEL:
4131 case NOTE_INSN_DELETED_DEBUG_LABEL:
4132 /* No problem to strip these. */
4133 case NOTE_INSN_FUNCTION_BEG:
4134 /* There is always just single entry to function. */
4135 case NOTE_INSN_BASIC_BLOCK:
4136 /* We should only switch text sections once. */
4137 case NOTE_INSN_SWITCH_TEXT_SECTIONS:
4138 break;
4140 case NOTE_INSN_EPILOGUE_BEG:
4141 emit_note_copy (insn);
4142 break;
4144 default:
4145 /* All other notes should have already been eliminated. */
4146 gcc_unreachable ();
4148 break;
4149 default:
4150 gcc_unreachable ();
4153 insn = NEXT_INSN (last);
4154 delete_insn (last);
4155 return insn;
4158 /* Create a duplicate of the basic block BB. */
4160 static basic_block
4161 cfg_layout_duplicate_bb (basic_block bb)
4163 rtx insn;
4164 basic_block new_bb;
4166 insn = duplicate_insn_chain (BB_HEAD (bb), BB_END (bb));
4167 new_bb = create_basic_block (insn,
4168 insn ? get_last_insn () : NULL,
4169 EXIT_BLOCK_PTR->prev_bb);
4171 BB_COPY_PARTITION (new_bb, bb);
4172 if (BB_HEADER (bb))
4174 insn = BB_HEADER (bb);
4175 while (NEXT_INSN (insn))
4176 insn = NEXT_INSN (insn);
4177 insn = duplicate_insn_chain (BB_HEADER (bb), insn);
4178 if (insn)
4179 BB_HEADER (new_bb) = unlink_insn_chain (insn, get_last_insn ());
4182 if (BB_FOOTER (bb))
4184 insn = BB_FOOTER (bb);
4185 while (NEXT_INSN (insn))
4186 insn = NEXT_INSN (insn);
4187 insn = duplicate_insn_chain (BB_FOOTER (bb), insn);
4188 if (insn)
4189 BB_FOOTER (new_bb) = unlink_insn_chain (insn, get_last_insn ());
4192 return new_bb;
4196 /* Main entry point to this module - initialize the datastructures for
4197 CFG layout changes. It keeps LOOPS up-to-date if not null.
4199 FLAGS is a set of additional flags to pass to cleanup_cfg(). */
4201 void
4202 cfg_layout_initialize (unsigned int flags)
4204 rtx x;
4205 basic_block bb;
4207 initialize_original_copy_tables ();
4209 cfg_layout_rtl_register_cfg_hooks ();
4211 record_effective_endpoints ();
4213 /* Make sure that the targets of non local gotos are marked. */
4214 for (x = nonlocal_goto_handler_labels; x; x = XEXP (x, 1))
4216 bb = BLOCK_FOR_INSN (XEXP (x, 0));
4217 bb->flags |= BB_NON_LOCAL_GOTO_TARGET;
4220 cleanup_cfg (CLEANUP_CFGLAYOUT | flags);
4223 /* Splits superblocks. */
4224 void
4225 break_superblocks (void)
4227 sbitmap superblocks;
4228 bool need = false;
4229 basic_block bb;
4231 superblocks = sbitmap_alloc (last_basic_block);
4232 bitmap_clear (superblocks);
4234 FOR_EACH_BB (bb)
4235 if (bb->flags & BB_SUPERBLOCK)
4237 bb->flags &= ~BB_SUPERBLOCK;
4238 bitmap_set_bit (superblocks, bb->index);
4239 need = true;
4242 if (need)
4244 rebuild_jump_labels (get_insns ());
4245 find_many_sub_basic_blocks (superblocks);
4248 free (superblocks);
4251 /* Finalize the changes: reorder insn list according to the sequence specified
4252 by aux pointers, enter compensation code, rebuild scope forest. */
4254 void
4255 cfg_layout_finalize (void)
4257 #ifdef ENABLE_CHECKING
4258 verify_flow_info ();
4259 #endif
4260 force_one_exit_fallthru ();
4261 rtl_register_cfg_hooks ();
4262 if (reload_completed
4263 #ifdef HAVE_epilogue
4264 && !HAVE_epilogue
4265 #endif
4267 fixup_fallthru_exit_predecessor ();
4268 fixup_reorder_chain ();
4270 rebuild_jump_labels (get_insns ());
4271 delete_dead_jumptables ();
4273 #ifdef ENABLE_CHECKING
4274 verify_insn_chain ();
4275 verify_flow_info ();
4276 #endif
4280 /* Same as split_block but update cfg_layout structures. */
4282 static basic_block
4283 cfg_layout_split_block (basic_block bb, void *insnp)
4285 rtx insn = (rtx) insnp;
4286 basic_block new_bb = rtl_split_block (bb, insn);
4288 BB_FOOTER (new_bb) = BB_FOOTER (bb);
4289 BB_FOOTER (bb) = NULL;
4291 return new_bb;
4294 /* Redirect Edge to DEST. */
4295 static edge
4296 cfg_layout_redirect_edge_and_branch (edge e, basic_block dest)
4298 basic_block src = e->src;
4299 edge ret;
4301 if (e->flags & (EDGE_ABNORMAL_CALL | EDGE_EH))
4302 return NULL;
4304 if (e->dest == dest)
4305 return e;
4307 if (e->src != ENTRY_BLOCK_PTR
4308 && (ret = try_redirect_by_replacing_jump (e, dest, true)))
4310 df_set_bb_dirty (src);
4311 return ret;
4314 if (e->src == ENTRY_BLOCK_PTR
4315 && (e->flags & EDGE_FALLTHRU) && !(e->flags & EDGE_COMPLEX))
4317 if (dump_file)
4318 fprintf (dump_file, "Redirecting entry edge from bb %i to %i\n",
4319 e->src->index, dest->index);
4321 df_set_bb_dirty (e->src);
4322 redirect_edge_succ (e, dest);
4323 return e;
4326 /* Redirect_edge_and_branch may decide to turn branch into fallthru edge
4327 in the case the basic block appears to be in sequence. Avoid this
4328 transformation. */
4330 if (e->flags & EDGE_FALLTHRU)
4332 /* Redirect any branch edges unified with the fallthru one. */
4333 if (JUMP_P (BB_END (src))
4334 && label_is_jump_target_p (BB_HEAD (e->dest),
4335 BB_END (src)))
4337 edge redirected;
4339 if (dump_file)
4340 fprintf (dump_file, "Fallthru edge unified with branch "
4341 "%i->%i redirected to %i\n",
4342 e->src->index, e->dest->index, dest->index);
4343 e->flags &= ~EDGE_FALLTHRU;
4344 redirected = redirect_branch_edge (e, dest);
4345 gcc_assert (redirected);
4346 redirected->flags |= EDGE_FALLTHRU;
4347 df_set_bb_dirty (redirected->src);
4348 return redirected;
4350 /* In case we are redirecting fallthru edge to the branch edge
4351 of conditional jump, remove it. */
4352 if (EDGE_COUNT (src->succs) == 2)
4354 /* Find the edge that is different from E. */
4355 edge s = EDGE_SUCC (src, EDGE_SUCC (src, 0) == e);
4357 if (s->dest == dest
4358 && any_condjump_p (BB_END (src))
4359 && onlyjump_p (BB_END (src)))
4360 delete_insn (BB_END (src));
4362 if (dump_file)
4363 fprintf (dump_file, "Redirecting fallthru edge %i->%i to %i\n",
4364 e->src->index, e->dest->index, dest->index);
4365 ret = redirect_edge_succ_nodup (e, dest);
4367 else
4368 ret = redirect_branch_edge (e, dest);
4370 /* We don't want simplejumps in the insn stream during cfglayout. */
4371 gcc_assert (!simplejump_p (BB_END (src)));
4373 df_set_bb_dirty (src);
4374 return ret;
4377 /* Simple wrapper as we always can redirect fallthru edges. */
4378 static basic_block
4379 cfg_layout_redirect_edge_and_branch_force (edge e, basic_block dest)
4381 edge redirected = cfg_layout_redirect_edge_and_branch (e, dest);
4383 gcc_assert (redirected);
4384 return NULL;
4387 /* Same as delete_basic_block but update cfg_layout structures. */
4389 static void
4390 cfg_layout_delete_block (basic_block bb)
4392 rtx insn, next, prev = PREV_INSN (BB_HEAD (bb)), *to, remaints;
4394 if (BB_HEADER (bb))
4396 next = BB_HEAD (bb);
4397 if (prev)
4398 NEXT_INSN (prev) = BB_HEADER (bb);
4399 else
4400 set_first_insn (BB_HEADER (bb));
4401 PREV_INSN (BB_HEADER (bb)) = prev;
4402 insn = BB_HEADER (bb);
4403 while (NEXT_INSN (insn))
4404 insn = NEXT_INSN (insn);
4405 NEXT_INSN (insn) = next;
4406 PREV_INSN (next) = insn;
4408 next = NEXT_INSN (BB_END (bb));
4409 if (BB_FOOTER (bb))
4411 insn = BB_FOOTER (bb);
4412 while (insn)
4414 if (BARRIER_P (insn))
4416 if (PREV_INSN (insn))
4417 NEXT_INSN (PREV_INSN (insn)) = NEXT_INSN (insn);
4418 else
4419 BB_FOOTER (bb) = NEXT_INSN (insn);
4420 if (NEXT_INSN (insn))
4421 PREV_INSN (NEXT_INSN (insn)) = PREV_INSN (insn);
4423 if (LABEL_P (insn))
4424 break;
4425 insn = NEXT_INSN (insn);
4427 if (BB_FOOTER (bb))
4429 insn = BB_END (bb);
4430 NEXT_INSN (insn) = BB_FOOTER (bb);
4431 PREV_INSN (BB_FOOTER (bb)) = insn;
4432 while (NEXT_INSN (insn))
4433 insn = NEXT_INSN (insn);
4434 NEXT_INSN (insn) = next;
4435 if (next)
4436 PREV_INSN (next) = insn;
4437 else
4438 set_last_insn (insn);
4441 if (bb->next_bb != EXIT_BLOCK_PTR)
4442 to = &BB_HEADER (bb->next_bb);
4443 else
4444 to = &cfg_layout_function_footer;
4446 rtl_delete_block (bb);
4448 if (prev)
4449 prev = NEXT_INSN (prev);
4450 else
4451 prev = get_insns ();
4452 if (next)
4453 next = PREV_INSN (next);
4454 else
4455 next = get_last_insn ();
4457 if (next && NEXT_INSN (next) != prev)
4459 remaints = unlink_insn_chain (prev, next);
4460 insn = remaints;
4461 while (NEXT_INSN (insn))
4462 insn = NEXT_INSN (insn);
4463 NEXT_INSN (insn) = *to;
4464 if (*to)
4465 PREV_INSN (*to) = insn;
4466 *to = remaints;
4470 /* Return true when blocks A and B can be safely merged. */
4472 static bool
4473 cfg_layout_can_merge_blocks_p (basic_block a, basic_block b)
4475 /* If we are partitioning hot/cold basic blocks, we don't want to
4476 mess up unconditional or indirect jumps that cross between hot
4477 and cold sections.
4479 Basic block partitioning may result in some jumps that appear to
4480 be optimizable (or blocks that appear to be mergeable), but which really
4481 must be left untouched (they are required to make it safely across
4482 partition boundaries). See the comments at the top of
4483 bb-reorder.c:partition_hot_cold_basic_blocks for complete details. */
4485 if (BB_PARTITION (a) != BB_PARTITION (b))
4486 return false;
4488 /* Protect the loop latches. */
4489 if (current_loops && b->loop_father->latch == b)
4490 return false;
4492 /* If we would end up moving B's instructions, make sure it doesn't fall
4493 through into the exit block, since we cannot recover from a fallthrough
4494 edge into the exit block occurring in the middle of a function. */
4495 if (NEXT_INSN (BB_END (a)) != BB_HEAD (b))
4497 edge e = find_fallthru_edge (b->succs);
4498 if (e && e->dest == EXIT_BLOCK_PTR)
4499 return false;
4502 /* There must be exactly one edge in between the blocks. */
4503 return (single_succ_p (a)
4504 && single_succ (a) == b
4505 && single_pred_p (b) == 1
4506 && a != b
4507 /* Must be simple edge. */
4508 && !(single_succ_edge (a)->flags & EDGE_COMPLEX)
4509 && a != ENTRY_BLOCK_PTR && b != EXIT_BLOCK_PTR
4510 /* If the jump insn has side effects, we can't kill the edge.
4511 When not optimizing, try_redirect_by_replacing_jump will
4512 not allow us to redirect an edge by replacing a table jump. */
4513 && (!JUMP_P (BB_END (a))
4514 || ((!optimize || reload_completed)
4515 ? simplejump_p (BB_END (a)) : onlyjump_p (BB_END (a)))));
4518 /* Merge block A and B. The blocks must be mergeable. */
4520 static void
4521 cfg_layout_merge_blocks (basic_block a, basic_block b)
4523 bool forwarder_p = (b->flags & BB_FORWARDER_BLOCK) != 0;
4524 rtx insn;
4526 gcc_checking_assert (cfg_layout_can_merge_blocks_p (a, b));
4528 if (dump_file)
4529 fprintf (dump_file, "Merging block %d into block %d...\n", b->index,
4530 a->index);
4532 /* If there was a CODE_LABEL beginning B, delete it. */
4533 if (LABEL_P (BB_HEAD (b)))
4535 delete_insn (BB_HEAD (b));
4538 /* We should have fallthru edge in a, or we can do dummy redirection to get
4539 it cleaned up. */
4540 if (JUMP_P (BB_END (a)))
4541 try_redirect_by_replacing_jump (EDGE_SUCC (a, 0), b, true);
4542 gcc_assert (!JUMP_P (BB_END (a)));
4544 /* When not optimizing CFG and the edge is the only place in RTL which holds
4545 some unique locus, emit a nop with that locus in between. */
4546 if (!optimize)
4547 emit_nop_for_unique_locus_between (a, b);
4549 /* Move things from b->footer after a->footer. */
4550 if (BB_FOOTER (b))
4552 if (!BB_FOOTER (a))
4553 BB_FOOTER (a) = BB_FOOTER (b);
4554 else
4556 rtx last = BB_FOOTER (a);
4558 while (NEXT_INSN (last))
4559 last = NEXT_INSN (last);
4560 NEXT_INSN (last) = BB_FOOTER (b);
4561 PREV_INSN (BB_FOOTER (b)) = last;
4563 BB_FOOTER (b) = NULL;
4566 /* Move things from b->header before a->footer.
4567 Note that this may include dead tablejump data, but we don't clean
4568 those up until we go out of cfglayout mode. */
4569 if (BB_HEADER (b))
4571 if (! BB_FOOTER (a))
4572 BB_FOOTER (a) = BB_HEADER (b);
4573 else
4575 rtx last = BB_HEADER (b);
4577 while (NEXT_INSN (last))
4578 last = NEXT_INSN (last);
4579 NEXT_INSN (last) = BB_FOOTER (a);
4580 PREV_INSN (BB_FOOTER (a)) = last;
4581 BB_FOOTER (a) = BB_HEADER (b);
4583 BB_HEADER (b) = NULL;
4586 /* In the case basic blocks are not adjacent, move them around. */
4587 if (NEXT_INSN (BB_END (a)) != BB_HEAD (b))
4589 insn = unlink_insn_chain (BB_HEAD (b), BB_END (b));
4591 emit_insn_after_noloc (insn, BB_END (a), a);
4593 /* Otherwise just re-associate the instructions. */
4594 else
4596 insn = BB_HEAD (b);
4597 BB_END (a) = BB_END (b);
4600 /* emit_insn_after_noloc doesn't call df_insn_change_bb.
4601 We need to explicitly call. */
4602 update_bb_for_insn_chain (insn, BB_END (b), a);
4604 /* Skip possible DELETED_LABEL insn. */
4605 if (!NOTE_INSN_BASIC_BLOCK_P (insn))
4606 insn = NEXT_INSN (insn);
4607 gcc_assert (NOTE_INSN_BASIC_BLOCK_P (insn));
4608 BB_HEAD (b) = BB_END (b) = NULL;
4609 delete_insn (insn);
4611 df_bb_delete (b->index);
4613 /* If B was a forwarder block, propagate the locus on the edge. */
4614 if (forwarder_p
4615 && LOCATION_LOCUS (EDGE_SUCC (b, 0)->goto_locus) == UNKNOWN_LOCATION)
4616 EDGE_SUCC (b, 0)->goto_locus = EDGE_SUCC (a, 0)->goto_locus;
4618 if (dump_file)
4619 fprintf (dump_file, "Merged blocks %d and %d.\n", a->index, b->index);
4622 /* Split edge E. */
4624 static basic_block
4625 cfg_layout_split_edge (edge e)
4627 basic_block new_bb =
4628 create_basic_block (e->src != ENTRY_BLOCK_PTR
4629 ? NEXT_INSN (BB_END (e->src)) : get_insns (),
4630 NULL_RTX, e->src);
4632 if (e->dest == EXIT_BLOCK_PTR)
4633 BB_COPY_PARTITION (new_bb, e->src);
4634 else
4635 BB_COPY_PARTITION (new_bb, e->dest);
4636 make_edge (new_bb, e->dest, EDGE_FALLTHRU);
4637 redirect_edge_and_branch_force (e, new_bb);
4639 return new_bb;
4642 /* Do postprocessing after making a forwarder block joined by edge FALLTHRU. */
4644 static void
4645 rtl_make_forwarder_block (edge fallthru ATTRIBUTE_UNUSED)
4649 /* Return true if BB contains only labels or non-executable
4650 instructions. */
4652 static bool
4653 rtl_block_empty_p (basic_block bb)
4655 rtx insn;
4657 if (bb == ENTRY_BLOCK_PTR || bb == EXIT_BLOCK_PTR)
4658 return true;
4660 FOR_BB_INSNS (bb, insn)
4661 if (NONDEBUG_INSN_P (insn) && !any_uncondjump_p (insn))
4662 return false;
4664 return true;
4667 /* Split a basic block if it ends with a conditional branch and if
4668 the other part of the block is not empty. */
4670 static basic_block
4671 rtl_split_block_before_cond_jump (basic_block bb)
4673 rtx insn;
4674 rtx split_point = NULL;
4675 rtx last = NULL;
4676 bool found_code = false;
4678 FOR_BB_INSNS (bb, insn)
4680 if (any_condjump_p (insn))
4681 split_point = last;
4682 else if (NONDEBUG_INSN_P (insn))
4683 found_code = true;
4684 last = insn;
4687 /* Did not find everything. */
4688 if (found_code && split_point)
4689 return split_block (bb, split_point)->dest;
4690 else
4691 return NULL;
4694 /* Return 1 if BB ends with a call, possibly followed by some
4695 instructions that must stay with the call, 0 otherwise. */
4697 static bool
4698 rtl_block_ends_with_call_p (basic_block bb)
4700 rtx insn = BB_END (bb);
4702 while (!CALL_P (insn)
4703 && insn != BB_HEAD (bb)
4704 && (keep_with_call_p (insn)
4705 || NOTE_P (insn)
4706 || DEBUG_INSN_P (insn)))
4707 insn = PREV_INSN (insn);
4708 return (CALL_P (insn));
4711 /* Return 1 if BB ends with a conditional branch, 0 otherwise. */
4713 static bool
4714 rtl_block_ends_with_condjump_p (const_basic_block bb)
4716 return any_condjump_p (BB_END (bb));
4719 /* Return true if we need to add fake edge to exit.
4720 Helper function for rtl_flow_call_edges_add. */
4722 static bool
4723 need_fake_edge_p (const_rtx insn)
4725 if (!INSN_P (insn))
4726 return false;
4728 if ((CALL_P (insn)
4729 && !SIBLING_CALL_P (insn)
4730 && !find_reg_note (insn, REG_NORETURN, NULL)
4731 && !(RTL_CONST_OR_PURE_CALL_P (insn))))
4732 return true;
4734 return ((GET_CODE (PATTERN (insn)) == ASM_OPERANDS
4735 && MEM_VOLATILE_P (PATTERN (insn)))
4736 || (GET_CODE (PATTERN (insn)) == PARALLEL
4737 && asm_noperands (insn) != -1
4738 && MEM_VOLATILE_P (XVECEXP (PATTERN (insn), 0, 0)))
4739 || GET_CODE (PATTERN (insn)) == ASM_INPUT);
4742 /* Add fake edges to the function exit for any non constant and non noreturn
4743 calls, volatile inline assembly in the bitmap of blocks specified by
4744 BLOCKS or to the whole CFG if BLOCKS is zero. Return the number of blocks
4745 that were split.
4747 The goal is to expose cases in which entering a basic block does not imply
4748 that all subsequent instructions must be executed. */
4750 static int
4751 rtl_flow_call_edges_add (sbitmap blocks)
4753 int i;
4754 int blocks_split = 0;
4755 int last_bb = last_basic_block;
4756 bool check_last_block = false;
4758 if (n_basic_blocks == NUM_FIXED_BLOCKS)
4759 return 0;
4761 if (! blocks)
4762 check_last_block = true;
4763 else
4764 check_last_block = bitmap_bit_p (blocks, EXIT_BLOCK_PTR->prev_bb->index);
4766 /* In the last basic block, before epilogue generation, there will be
4767 a fallthru edge to EXIT. Special care is required if the last insn
4768 of the last basic block is a call because make_edge folds duplicate
4769 edges, which would result in the fallthru edge also being marked
4770 fake, which would result in the fallthru edge being removed by
4771 remove_fake_edges, which would result in an invalid CFG.
4773 Moreover, we can't elide the outgoing fake edge, since the block
4774 profiler needs to take this into account in order to solve the minimal
4775 spanning tree in the case that the call doesn't return.
4777 Handle this by adding a dummy instruction in a new last basic block. */
4778 if (check_last_block)
4780 basic_block bb = EXIT_BLOCK_PTR->prev_bb;
4781 rtx insn = BB_END (bb);
4783 /* Back up past insns that must be kept in the same block as a call. */
4784 while (insn != BB_HEAD (bb)
4785 && keep_with_call_p (insn))
4786 insn = PREV_INSN (insn);
4788 if (need_fake_edge_p (insn))
4790 edge e;
4792 e = find_edge (bb, EXIT_BLOCK_PTR);
4793 if (e)
4795 insert_insn_on_edge (gen_use (const0_rtx), e);
4796 commit_edge_insertions ();
4801 /* Now add fake edges to the function exit for any non constant
4802 calls since there is no way that we can determine if they will
4803 return or not... */
4805 for (i = NUM_FIXED_BLOCKS; i < last_bb; i++)
4807 basic_block bb = BASIC_BLOCK (i);
4808 rtx insn;
4809 rtx prev_insn;
4811 if (!bb)
4812 continue;
4814 if (blocks && !bitmap_bit_p (blocks, i))
4815 continue;
4817 for (insn = BB_END (bb); ; insn = prev_insn)
4819 prev_insn = PREV_INSN (insn);
4820 if (need_fake_edge_p (insn))
4822 edge e;
4823 rtx split_at_insn = insn;
4825 /* Don't split the block between a call and an insn that should
4826 remain in the same block as the call. */
4827 if (CALL_P (insn))
4828 while (split_at_insn != BB_END (bb)
4829 && keep_with_call_p (NEXT_INSN (split_at_insn)))
4830 split_at_insn = NEXT_INSN (split_at_insn);
4832 /* The handling above of the final block before the epilogue
4833 should be enough to verify that there is no edge to the exit
4834 block in CFG already. Calling make_edge in such case would
4835 cause us to mark that edge as fake and remove it later. */
4837 #ifdef ENABLE_CHECKING
4838 if (split_at_insn == BB_END (bb))
4840 e = find_edge (bb, EXIT_BLOCK_PTR);
4841 gcc_assert (e == NULL);
4843 #endif
4845 /* Note that the following may create a new basic block
4846 and renumber the existing basic blocks. */
4847 if (split_at_insn != BB_END (bb))
4849 e = split_block (bb, split_at_insn);
4850 if (e)
4851 blocks_split++;
4854 make_edge (bb, EXIT_BLOCK_PTR, EDGE_FAKE);
4857 if (insn == BB_HEAD (bb))
4858 break;
4862 if (blocks_split)
4863 verify_flow_info ();
4865 return blocks_split;
4868 /* Add COMP_RTX as a condition at end of COND_BB. FIRST_HEAD is
4869 the conditional branch target, SECOND_HEAD should be the fall-thru
4870 there is no need to handle this here the loop versioning code handles
4871 this. the reason for SECON_HEAD is that it is needed for condition
4872 in trees, and this should be of the same type since it is a hook. */
4873 static void
4874 rtl_lv_add_condition_to_bb (basic_block first_head ,
4875 basic_block second_head ATTRIBUTE_UNUSED,
4876 basic_block cond_bb, void *comp_rtx)
4878 rtx label, seq, jump;
4879 rtx op0 = XEXP ((rtx)comp_rtx, 0);
4880 rtx op1 = XEXP ((rtx)comp_rtx, 1);
4881 enum rtx_code comp = GET_CODE ((rtx)comp_rtx);
4882 enum machine_mode mode;
4885 label = block_label (first_head);
4886 mode = GET_MODE (op0);
4887 if (mode == VOIDmode)
4888 mode = GET_MODE (op1);
4890 start_sequence ();
4891 op0 = force_operand (op0, NULL_RTX);
4892 op1 = force_operand (op1, NULL_RTX);
4893 do_compare_rtx_and_jump (op0, op1, comp, 0,
4894 mode, NULL_RTX, NULL_RTX, label, -1);
4895 jump = get_last_insn ();
4896 JUMP_LABEL (jump) = label;
4897 LABEL_NUSES (label)++;
4898 seq = get_insns ();
4899 end_sequence ();
4901 /* Add the new cond , in the new head. */
4902 emit_insn_after (seq, BB_END (cond_bb));
4906 /* Given a block B with unconditional branch at its end, get the
4907 store the return the branch edge and the fall-thru edge in
4908 BRANCH_EDGE and FALLTHRU_EDGE respectively. */
4909 static void
4910 rtl_extract_cond_bb_edges (basic_block b, edge *branch_edge,
4911 edge *fallthru_edge)
4913 edge e = EDGE_SUCC (b, 0);
4915 if (e->flags & EDGE_FALLTHRU)
4917 *fallthru_edge = e;
4918 *branch_edge = EDGE_SUCC (b, 1);
4920 else
4922 *branch_edge = e;
4923 *fallthru_edge = EDGE_SUCC (b, 1);
4927 void
4928 init_rtl_bb_info (basic_block bb)
4930 gcc_assert (!bb->il.x.rtl);
4931 bb->il.x.head_ = NULL;
4932 bb->il.x.rtl = ggc_alloc_cleared_rtl_bb_info ();
4935 /* Returns true if it is possible to remove edge E by redirecting
4936 it to the destination of the other edge from E->src. */
4938 static bool
4939 rtl_can_remove_branch_p (const_edge e)
4941 const_basic_block src = e->src;
4942 const_basic_block target = EDGE_SUCC (src, EDGE_SUCC (src, 0) == e)->dest;
4943 const_rtx insn = BB_END (src), set;
4945 /* The conditions are taken from try_redirect_by_replacing_jump. */
4946 if (target == EXIT_BLOCK_PTR)
4947 return false;
4949 if (e->flags & (EDGE_ABNORMAL_CALL | EDGE_EH))
4950 return false;
4952 if (BB_PARTITION (src) != BB_PARTITION (target))
4953 return false;
4955 if (!onlyjump_p (insn)
4956 || tablejump_p (insn, NULL, NULL))
4957 return false;
4959 set = single_set (insn);
4960 if (!set || side_effects_p (set))
4961 return false;
4963 return true;
4966 static basic_block
4967 rtl_duplicate_bb (basic_block bb)
4969 bb = cfg_layout_duplicate_bb (bb);
4970 bb->aux = NULL;
4971 return bb;
4974 /* Do book-keeping of basic block BB for the profile consistency checker.
4975 If AFTER_PASS is 0, do pre-pass accounting, or if AFTER_PASS is 1
4976 then do post-pass accounting. Store the counting in RECORD. */
4977 static void
4978 rtl_account_profile_record (basic_block bb, int after_pass,
4979 struct profile_record *record)
4981 rtx insn;
4982 FOR_BB_INSNS (bb, insn)
4983 if (INSN_P (insn))
4985 record->size[after_pass]
4986 += insn_rtx_cost (PATTERN (insn), false);
4987 if (profile_status == PROFILE_READ)
4988 record->time[after_pass]
4989 += insn_rtx_cost (PATTERN (insn), true) * bb->count;
4990 else if (profile_status == PROFILE_GUESSED)
4991 record->time[after_pass]
4992 += insn_rtx_cost (PATTERN (insn), true) * bb->frequency;
4996 /* Implementation of CFG manipulation for linearized RTL. */
4997 struct cfg_hooks rtl_cfg_hooks = {
4998 "rtl",
4999 rtl_verify_flow_info,
5000 rtl_dump_bb,
5001 rtl_dump_bb_for_graph,
5002 rtl_create_basic_block,
5003 rtl_redirect_edge_and_branch,
5004 rtl_redirect_edge_and_branch_force,
5005 rtl_can_remove_branch_p,
5006 rtl_delete_block,
5007 rtl_split_block,
5008 rtl_move_block_after,
5009 rtl_can_merge_blocks, /* can_merge_blocks_p */
5010 rtl_merge_blocks,
5011 rtl_predict_edge,
5012 rtl_predicted_by_p,
5013 cfg_layout_can_duplicate_bb_p,
5014 rtl_duplicate_bb,
5015 rtl_split_edge,
5016 rtl_make_forwarder_block,
5017 rtl_tidy_fallthru_edge,
5018 rtl_force_nonfallthru,
5019 rtl_block_ends_with_call_p,
5020 rtl_block_ends_with_condjump_p,
5021 rtl_flow_call_edges_add,
5022 NULL, /* execute_on_growing_pred */
5023 NULL, /* execute_on_shrinking_pred */
5024 NULL, /* duplicate loop for trees */
5025 NULL, /* lv_add_condition_to_bb */
5026 NULL, /* lv_adjust_loop_header_phi*/
5027 NULL, /* extract_cond_bb_edges */
5028 NULL, /* flush_pending_stmts */
5029 rtl_block_empty_p, /* block_empty_p */
5030 rtl_split_block_before_cond_jump, /* split_block_before_cond_jump */
5031 rtl_account_profile_record,
5034 /* Implementation of CFG manipulation for cfg layout RTL, where
5035 basic block connected via fallthru edges does not have to be adjacent.
5036 This representation will hopefully become the default one in future
5037 version of the compiler. */
5039 struct cfg_hooks cfg_layout_rtl_cfg_hooks = {
5040 "cfglayout mode",
5041 rtl_verify_flow_info_1,
5042 rtl_dump_bb,
5043 rtl_dump_bb_for_graph,
5044 cfg_layout_create_basic_block,
5045 cfg_layout_redirect_edge_and_branch,
5046 cfg_layout_redirect_edge_and_branch_force,
5047 rtl_can_remove_branch_p,
5048 cfg_layout_delete_block,
5049 cfg_layout_split_block,
5050 rtl_move_block_after,
5051 cfg_layout_can_merge_blocks_p,
5052 cfg_layout_merge_blocks,
5053 rtl_predict_edge,
5054 rtl_predicted_by_p,
5055 cfg_layout_can_duplicate_bb_p,
5056 cfg_layout_duplicate_bb,
5057 cfg_layout_split_edge,
5058 rtl_make_forwarder_block,
5059 NULL, /* tidy_fallthru_edge */
5060 rtl_force_nonfallthru,
5061 rtl_block_ends_with_call_p,
5062 rtl_block_ends_with_condjump_p,
5063 rtl_flow_call_edges_add,
5064 NULL, /* execute_on_growing_pred */
5065 NULL, /* execute_on_shrinking_pred */
5066 duplicate_loop_to_header_edge, /* duplicate loop for trees */
5067 rtl_lv_add_condition_to_bb, /* lv_add_condition_to_bb */
5068 NULL, /* lv_adjust_loop_header_phi*/
5069 rtl_extract_cond_bb_edges, /* extract_cond_bb_edges */
5070 NULL, /* flush_pending_stmts */
5071 rtl_block_empty_p, /* block_empty_p */
5072 rtl_split_block_before_cond_jump, /* split_block_before_cond_jump */
5073 rtl_account_profile_record,
5076 #include "gt-cfgrtl.h"