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[official-gcc.git] / gcc / cfgloop.c
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1 /* Natural loop discovery code for GNU compiler.
2 Copyright (C) 2000-2013 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 #include "config.h"
21 #include "system.h"
22 #include "coretypes.h"
23 #include "tm.h"
24 #include "rtl.h"
25 #include "function.h"
26 #include "basic-block.h"
27 #include "cfgloop.h"
28 #include "diagnostic-core.h"
29 #include "flags.h"
30 #include "tree.h"
31 #include "tree-flow.h"
32 #include "pointer-set.h"
33 #include "ggc.h"
34 #include "dumpfile.h"
36 static void flow_loops_cfg_dump (FILE *);
38 /* Dump loop related CFG information. */
40 static void
41 flow_loops_cfg_dump (FILE *file)
43 basic_block bb;
45 if (!file)
46 return;
48 FOR_EACH_BB (bb)
50 edge succ;
51 edge_iterator ei;
53 fprintf (file, ";; %d succs { ", bb->index);
54 FOR_EACH_EDGE (succ, ei, bb->succs)
55 fprintf (file, "%d ", succ->dest->index);
56 fprintf (file, "}\n");
60 /* Return nonzero if the nodes of LOOP are a subset of OUTER. */
62 bool
63 flow_loop_nested_p (const struct loop *outer, const struct loop *loop)
65 unsigned odepth = loop_depth (outer);
67 return (loop_depth (loop) > odepth
68 && (*loop->superloops)[odepth] == outer);
71 /* Returns the loop such that LOOP is nested DEPTH (indexed from zero)
72 loops within LOOP. */
74 struct loop *
75 superloop_at_depth (struct loop *loop, unsigned depth)
77 unsigned ldepth = loop_depth (loop);
79 gcc_assert (depth <= ldepth);
81 if (depth == ldepth)
82 return loop;
84 return (*loop->superloops)[depth];
87 /* Returns the list of the latch edges of LOOP. */
89 static vec<edge>
90 get_loop_latch_edges (const struct loop *loop)
92 edge_iterator ei;
93 edge e;
94 vec<edge> ret = vNULL;
96 FOR_EACH_EDGE (e, ei, loop->header->preds)
98 if (dominated_by_p (CDI_DOMINATORS, e->src, loop->header))
99 ret.safe_push (e);
102 return ret;
105 /* Dump the loop information specified by LOOP to the stream FILE
106 using auxiliary dump callback function LOOP_DUMP_AUX if non null. */
108 void
109 flow_loop_dump (const struct loop *loop, FILE *file,
110 void (*loop_dump_aux) (const struct loop *, FILE *, int),
111 int verbose)
113 basic_block *bbs;
114 unsigned i;
115 vec<edge> latches;
116 edge e;
118 if (! loop || ! loop->header)
119 return;
121 fprintf (file, ";;\n;; Loop %d\n", loop->num);
123 fprintf (file, ";; header %d, ", loop->header->index);
124 if (loop->latch)
125 fprintf (file, "latch %d\n", loop->latch->index);
126 else
128 fprintf (file, "multiple latches:");
129 latches = get_loop_latch_edges (loop);
130 FOR_EACH_VEC_ELT (latches, i, e)
131 fprintf (file, " %d", e->src->index);
132 latches.release ();
133 fprintf (file, "\n");
136 fprintf (file, ";; depth %d, outer %ld\n",
137 loop_depth (loop), (long) (loop_outer (loop)
138 ? loop_outer (loop)->num : -1));
140 fprintf (file, ";; nodes:");
141 bbs = get_loop_body (loop);
142 for (i = 0; i < loop->num_nodes; i++)
143 fprintf (file, " %d", bbs[i]->index);
144 free (bbs);
145 fprintf (file, "\n");
147 if (loop_dump_aux)
148 loop_dump_aux (loop, file, verbose);
151 /* Dump the loop information about loops to the stream FILE,
152 using auxiliary dump callback function LOOP_DUMP_AUX if non null. */
154 void
155 flow_loops_dump (FILE *file, void (*loop_dump_aux) (const struct loop *, FILE *, int), int verbose)
157 loop_iterator li;
158 struct loop *loop;
160 if (!current_loops || ! file)
161 return;
163 fprintf (file, ";; %d loops found\n", number_of_loops ());
165 FOR_EACH_LOOP (li, loop, LI_INCLUDE_ROOT)
167 flow_loop_dump (loop, file, loop_dump_aux, verbose);
170 if (verbose)
171 flow_loops_cfg_dump (file);
174 /* Free data allocated for LOOP. */
176 void
177 flow_loop_free (struct loop *loop)
179 struct loop_exit *exit, *next;
181 vec_free (loop->superloops);
183 /* Break the list of the loop exit records. They will be freed when the
184 corresponding edge is rescanned or removed, and this avoids
185 accessing the (already released) head of the list stored in the
186 loop structure. */
187 for (exit = loop->exits->next; exit != loop->exits; exit = next)
189 next = exit->next;
190 exit->next = exit;
191 exit->prev = exit;
194 ggc_free (loop->exits);
195 ggc_free (loop);
198 /* Free all the memory allocated for LOOPS. */
200 void
201 flow_loops_free (struct loops *loops)
203 if (loops->larray)
205 unsigned i;
206 loop_p loop;
208 /* Free the loop descriptors. */
209 FOR_EACH_VEC_SAFE_ELT (loops->larray, i, loop)
211 if (!loop)
212 continue;
214 flow_loop_free (loop);
217 vec_free (loops->larray);
221 /* Find the nodes contained within the LOOP with header HEADER.
222 Return the number of nodes within the loop. */
225 flow_loop_nodes_find (basic_block header, struct loop *loop)
227 vec<basic_block> stack = vNULL;
228 int num_nodes = 1;
229 edge latch;
230 edge_iterator latch_ei;
232 header->loop_father = loop;
234 FOR_EACH_EDGE (latch, latch_ei, loop->header->preds)
236 if (latch->src->loop_father == loop
237 || !dominated_by_p (CDI_DOMINATORS, latch->src, loop->header))
238 continue;
240 num_nodes++;
241 stack.safe_push (latch->src);
242 latch->src->loop_father = loop;
244 while (!stack.is_empty ())
246 basic_block node;
247 edge e;
248 edge_iterator ei;
250 node = stack.pop ();
252 FOR_EACH_EDGE (e, ei, node->preds)
254 basic_block ancestor = e->src;
256 if (ancestor->loop_father != loop)
258 ancestor->loop_father = loop;
259 num_nodes++;
260 stack.safe_push (ancestor);
265 stack.release ();
267 return num_nodes;
270 /* Records the vector of superloops of the loop LOOP, whose immediate
271 superloop is FATHER. */
273 static void
274 establish_preds (struct loop *loop, struct loop *father)
276 loop_p ploop;
277 unsigned depth = loop_depth (father) + 1;
278 unsigned i;
280 loop->superloops = 0;
281 vec_alloc (loop->superloops, depth);
282 FOR_EACH_VEC_SAFE_ELT (father->superloops, i, ploop)
283 loop->superloops->quick_push (ploop);
284 loop->superloops->quick_push (father);
286 for (ploop = loop->inner; ploop; ploop = ploop->next)
287 establish_preds (ploop, loop);
290 /* Add LOOP to the loop hierarchy tree where FATHER is father of the
291 added loop. If LOOP has some children, take care of that their
292 pred field will be initialized correctly. */
294 void
295 flow_loop_tree_node_add (struct loop *father, struct loop *loop)
297 loop->next = father->inner;
298 father->inner = loop;
300 establish_preds (loop, father);
303 /* Remove LOOP from the loop hierarchy tree. */
305 void
306 flow_loop_tree_node_remove (struct loop *loop)
308 struct loop *prev, *father;
310 father = loop_outer (loop);
312 /* Remove loop from the list of sons. */
313 if (father->inner == loop)
314 father->inner = loop->next;
315 else
317 for (prev = father->inner; prev->next != loop; prev = prev->next)
318 continue;
319 prev->next = loop->next;
322 loop->superloops = NULL;
325 /* Allocates and returns new loop structure. */
327 struct loop *
328 alloc_loop (void)
330 struct loop *loop = ggc_alloc_cleared_loop ();
332 loop->exits = ggc_alloc_cleared_loop_exit ();
333 loop->exits->next = loop->exits->prev = loop->exits;
334 loop->can_be_parallel = false;
336 return loop;
339 /* Initializes loops structure LOOPS, reserving place for NUM_LOOPS loops
340 (including the root of the loop tree). */
342 static void
343 init_loops_structure (struct loops *loops, unsigned num_loops)
345 struct loop *root;
347 memset (loops, 0, sizeof *loops);
348 vec_alloc (loops->larray, num_loops);
350 /* Dummy loop containing whole function. */
351 root = alloc_loop ();
352 root->num_nodes = n_basic_blocks;
353 root->latch = EXIT_BLOCK_PTR;
354 root->header = ENTRY_BLOCK_PTR;
355 ENTRY_BLOCK_PTR->loop_father = root;
356 EXIT_BLOCK_PTR->loop_father = root;
358 loops->larray->quick_push (root);
359 loops->tree_root = root;
362 /* Returns whether HEADER is a loop header. */
364 bool
365 bb_loop_header_p (basic_block header)
367 edge_iterator ei;
368 edge e;
370 /* If we have an abnormal predecessor, do not consider the
371 loop (not worth the problems). */
372 if (bb_has_abnormal_pred (header))
373 return false;
375 /* Look for back edges where a predecessor is dominated
376 by this block. A natural loop has a single entry
377 node (header) that dominates all the nodes in the
378 loop. It also has single back edge to the header
379 from a latch node. */
380 FOR_EACH_EDGE (e, ei, header->preds)
382 basic_block latch = e->src;
383 if (latch != ENTRY_BLOCK_PTR
384 && dominated_by_p (CDI_DOMINATORS, latch, header))
385 return true;
388 return false;
391 /* Find all the natural loops in the function and save in LOOPS structure and
392 recalculate loop_father information in basic block structures.
393 If LOOPS is non-NULL then the loop structures for already recorded loops
394 will be re-used and their number will not change. We assume that no
395 stale loops exist in LOOPS.
396 When LOOPS is NULL it is allocated and re-built from scratch.
397 Return the built LOOPS structure. */
399 struct loops *
400 flow_loops_find (struct loops *loops)
402 bool from_scratch = (loops == NULL);
403 int *rc_order;
404 int b;
405 unsigned i;
406 vec<loop_p> larray;
408 /* Ensure that the dominators are computed. */
409 calculate_dominance_info (CDI_DOMINATORS);
411 if (!loops)
413 loops = ggc_alloc_cleared_loops ();
414 init_loops_structure (loops, 1);
417 /* Ensure that loop exits were released. */
418 gcc_assert (loops->exits == NULL);
420 /* Taking care of this degenerate case makes the rest of
421 this code simpler. */
422 if (n_basic_blocks == NUM_FIXED_BLOCKS)
423 return loops;
425 /* The root loop node contains all basic-blocks. */
426 loops->tree_root->num_nodes = n_basic_blocks;
428 /* Compute depth first search order of the CFG so that outer
429 natural loops will be found before inner natural loops. */
430 rc_order = XNEWVEC (int, n_basic_blocks);
431 pre_and_rev_post_order_compute (NULL, rc_order, false);
433 /* Gather all loop headers in reverse completion order and allocate
434 loop structures for loops that are not already present. */
435 larray.create (loops->larray->length());
436 for (b = 0; b < n_basic_blocks - NUM_FIXED_BLOCKS; b++)
438 basic_block header = BASIC_BLOCK (rc_order[b]);
439 if (bb_loop_header_p (header))
441 struct loop *loop;
443 /* The current active loop tree has valid loop-fathers for
444 header blocks. */
445 if (!from_scratch
446 && header->loop_father->header == header)
448 loop = header->loop_father;
449 /* If we found an existing loop remove it from the
450 loop tree. It is going to be inserted again
451 below. */
452 flow_loop_tree_node_remove (loop);
454 else
456 /* Otherwise allocate a new loop structure for the loop. */
457 loop = alloc_loop ();
458 /* ??? We could re-use unused loop slots here. */
459 loop->num = loops->larray->length ();
460 vec_safe_push (loops->larray, loop);
461 loop->header = header;
463 if (!from_scratch
464 && dump_file && (dump_flags & TDF_DETAILS))
465 fprintf (dump_file, "flow_loops_find: discovered new "
466 "loop %d with header %d\n",
467 loop->num, header->index);
469 /* Reset latch, we recompute it below. */
470 loop->latch = NULL;
471 larray.safe_push (loop);
474 /* Make blocks part of the loop root node at start. */
475 header->loop_father = loops->tree_root;
478 free (rc_order);
480 /* Now iterate over the loops found, insert them into the loop tree
481 and assign basic-block ownership. */
482 for (i = 0; i < larray.length (); ++i)
484 struct loop *loop = larray[i];
485 basic_block header = loop->header;
486 edge_iterator ei;
487 edge e;
489 flow_loop_tree_node_add (header->loop_father, loop);
490 loop->num_nodes = flow_loop_nodes_find (loop->header, loop);
492 /* Look for the latch for this header block, if it has just a
493 single one. */
494 FOR_EACH_EDGE (e, ei, header->preds)
496 basic_block latch = e->src;
498 if (flow_bb_inside_loop_p (loop, latch))
500 if (loop->latch != NULL)
502 /* More than one latch edge. */
503 loop->latch = NULL;
504 break;
506 loop->latch = latch;
511 larray.release();
513 return loops;
516 /* Ratio of frequencies of edges so that one of more latch edges is
517 considered to belong to inner loop with same header. */
518 #define HEAVY_EDGE_RATIO 8
520 /* Minimum number of samples for that we apply
521 find_subloop_latch_edge_by_profile heuristics. */
522 #define HEAVY_EDGE_MIN_SAMPLES 10
524 /* If the profile info is available, finds an edge in LATCHES that much more
525 frequent than the remaining edges. Returns such an edge, or NULL if we do
526 not find one.
528 We do not use guessed profile here, only the measured one. The guessed
529 profile is usually too flat and unreliable for this (and it is mostly based
530 on the loop structure of the program, so it does not make much sense to
531 derive the loop structure from it). */
533 static edge
534 find_subloop_latch_edge_by_profile (vec<edge> latches)
536 unsigned i;
537 edge e, me = NULL;
538 gcov_type mcount = 0, tcount = 0;
540 FOR_EACH_VEC_ELT (latches, i, e)
542 if (e->count > mcount)
544 me = e;
545 mcount = e->count;
547 tcount += e->count;
550 if (tcount < HEAVY_EDGE_MIN_SAMPLES
551 || (tcount - mcount) * HEAVY_EDGE_RATIO > tcount)
552 return NULL;
554 if (dump_file)
555 fprintf (dump_file,
556 "Found latch edge %d -> %d using profile information.\n",
557 me->src->index, me->dest->index);
558 return me;
561 /* Among LATCHES, guesses a latch edge of LOOP corresponding to subloop, based
562 on the structure of induction variables. Returns this edge, or NULL if we
563 do not find any.
565 We are quite conservative, and look just for an obvious simple innermost
566 loop (which is the case where we would lose the most performance by not
567 disambiguating the loop). More precisely, we look for the following
568 situation: The source of the chosen latch edge dominates sources of all
569 the other latch edges. Additionally, the header does not contain a phi node
570 such that the argument from the chosen edge is equal to the argument from
571 another edge. */
573 static edge
574 find_subloop_latch_edge_by_ivs (struct loop *loop ATTRIBUTE_UNUSED, vec<edge> latches)
576 edge e, latch = latches[0];
577 unsigned i;
578 gimple phi;
579 gimple_stmt_iterator psi;
580 tree lop;
581 basic_block bb;
583 /* Find the candidate for the latch edge. */
584 for (i = 1; latches.iterate (i, &e); i++)
585 if (dominated_by_p (CDI_DOMINATORS, latch->src, e->src))
586 latch = e;
588 /* Verify that it dominates all the latch edges. */
589 FOR_EACH_VEC_ELT (latches, i, e)
590 if (!dominated_by_p (CDI_DOMINATORS, e->src, latch->src))
591 return NULL;
593 /* Check for a phi node that would deny that this is a latch edge of
594 a subloop. */
595 for (psi = gsi_start_phis (loop->header); !gsi_end_p (psi); gsi_next (&psi))
597 phi = gsi_stmt (psi);
598 lop = PHI_ARG_DEF_FROM_EDGE (phi, latch);
600 /* Ignore the values that are not changed inside the subloop. */
601 if (TREE_CODE (lop) != SSA_NAME
602 || SSA_NAME_DEF_STMT (lop) == phi)
603 continue;
604 bb = gimple_bb (SSA_NAME_DEF_STMT (lop));
605 if (!bb || !flow_bb_inside_loop_p (loop, bb))
606 continue;
608 FOR_EACH_VEC_ELT (latches, i, e)
609 if (e != latch
610 && PHI_ARG_DEF_FROM_EDGE (phi, e) == lop)
611 return NULL;
614 if (dump_file)
615 fprintf (dump_file,
616 "Found latch edge %d -> %d using iv structure.\n",
617 latch->src->index, latch->dest->index);
618 return latch;
621 /* If we can determine that one of the several latch edges of LOOP behaves
622 as a latch edge of a separate subloop, returns this edge. Otherwise
623 returns NULL. */
625 static edge
626 find_subloop_latch_edge (struct loop *loop)
628 vec<edge> latches = get_loop_latch_edges (loop);
629 edge latch = NULL;
631 if (latches.length () > 1)
633 latch = find_subloop_latch_edge_by_profile (latches);
635 if (!latch
636 /* We consider ivs to guess the latch edge only in SSA. Perhaps we
637 should use cfghook for this, but it is hard to imagine it would
638 be useful elsewhere. */
639 && current_ir_type () == IR_GIMPLE)
640 latch = find_subloop_latch_edge_by_ivs (loop, latches);
643 latches.release ();
644 return latch;
647 /* Callback for make_forwarder_block. Returns true if the edge E is marked
648 in the set MFB_REIS_SET. */
650 static struct pointer_set_t *mfb_reis_set;
651 static bool
652 mfb_redirect_edges_in_set (edge e)
654 return pointer_set_contains (mfb_reis_set, e);
657 /* Creates a subloop of LOOP with latch edge LATCH. */
659 static void
660 form_subloop (struct loop *loop, edge latch)
662 edge_iterator ei;
663 edge e, new_entry;
664 struct loop *new_loop;
666 mfb_reis_set = pointer_set_create ();
667 FOR_EACH_EDGE (e, ei, loop->header->preds)
669 if (e != latch)
670 pointer_set_insert (mfb_reis_set, e);
672 new_entry = make_forwarder_block (loop->header, mfb_redirect_edges_in_set,
673 NULL);
674 pointer_set_destroy (mfb_reis_set);
676 loop->header = new_entry->src;
678 /* Find the blocks and subloops that belong to the new loop, and add it to
679 the appropriate place in the loop tree. */
680 new_loop = alloc_loop ();
681 new_loop->header = new_entry->dest;
682 new_loop->latch = latch->src;
683 add_loop (new_loop, loop);
686 /* Make all the latch edges of LOOP to go to a single forwarder block --
687 a new latch of LOOP. */
689 static void
690 merge_latch_edges (struct loop *loop)
692 vec<edge> latches = get_loop_latch_edges (loop);
693 edge latch, e;
694 unsigned i;
696 gcc_assert (latches.length () > 0);
698 if (latches.length () == 1)
699 loop->latch = latches[0]->src;
700 else
702 if (dump_file)
703 fprintf (dump_file, "Merged latch edges of loop %d\n", loop->num);
705 mfb_reis_set = pointer_set_create ();
706 FOR_EACH_VEC_ELT (latches, i, e)
707 pointer_set_insert (mfb_reis_set, e);
708 latch = make_forwarder_block (loop->header, mfb_redirect_edges_in_set,
709 NULL);
710 pointer_set_destroy (mfb_reis_set);
712 loop->header = latch->dest;
713 loop->latch = latch->src;
716 latches.release ();
719 /* LOOP may have several latch edges. Transform it into (possibly several)
720 loops with single latch edge. */
722 static void
723 disambiguate_multiple_latches (struct loop *loop)
725 edge e;
727 /* We eliminate the multiple latches by splitting the header to the forwarder
728 block F and the rest R, and redirecting the edges. There are two cases:
730 1) If there is a latch edge E that corresponds to a subloop (we guess
731 that based on profile -- if it is taken much more often than the
732 remaining edges; and on trees, using the information about induction
733 variables of the loops), we redirect E to R, all the remaining edges to
734 F, then rescan the loops and try again for the outer loop.
735 2) If there is no such edge, we redirect all latch edges to F, and the
736 entry edges to R, thus making F the single latch of the loop. */
738 if (dump_file)
739 fprintf (dump_file, "Disambiguating loop %d with multiple latches\n",
740 loop->num);
742 /* During latch merging, we may need to redirect the entry edges to a new
743 block. This would cause problems if the entry edge was the one from the
744 entry block. To avoid having to handle this case specially, split
745 such entry edge. */
746 e = find_edge (ENTRY_BLOCK_PTR, loop->header);
747 if (e)
748 split_edge (e);
750 while (1)
752 e = find_subloop_latch_edge (loop);
753 if (!e)
754 break;
756 form_subloop (loop, e);
759 merge_latch_edges (loop);
762 /* Split loops with multiple latch edges. */
764 void
765 disambiguate_loops_with_multiple_latches (void)
767 loop_iterator li;
768 struct loop *loop;
770 FOR_EACH_LOOP (li, loop, 0)
772 if (!loop->latch)
773 disambiguate_multiple_latches (loop);
777 /* Return nonzero if basic block BB belongs to LOOP. */
778 bool
779 flow_bb_inside_loop_p (const struct loop *loop, const_basic_block bb)
781 struct loop *source_loop;
783 if (bb == ENTRY_BLOCK_PTR || bb == EXIT_BLOCK_PTR)
784 return 0;
786 source_loop = bb->loop_father;
787 return loop == source_loop || flow_loop_nested_p (loop, source_loop);
790 /* Enumeration predicate for get_loop_body_with_size. */
791 static bool
792 glb_enum_p (const_basic_block bb, const void *glb_loop)
794 const struct loop *const loop = (const struct loop *) glb_loop;
795 return (bb != loop->header
796 && dominated_by_p (CDI_DOMINATORS, bb, loop->header));
799 /* Gets basic blocks of a LOOP. Header is the 0-th block, rest is in dfs
800 order against direction of edges from latch. Specially, if
801 header != latch, latch is the 1-st block. LOOP cannot be the fake
802 loop tree root, and its size must be at most MAX_SIZE. The blocks
803 in the LOOP body are stored to BODY, and the size of the LOOP is
804 returned. */
806 unsigned
807 get_loop_body_with_size (const struct loop *loop, basic_block *body,
808 unsigned max_size)
810 return dfs_enumerate_from (loop->header, 1, glb_enum_p,
811 body, max_size, loop);
814 /* Gets basic blocks of a LOOP. Header is the 0-th block, rest is in dfs
815 order against direction of edges from latch. Specially, if
816 header != latch, latch is the 1-st block. */
818 basic_block *
819 get_loop_body (const struct loop *loop)
821 basic_block *body, bb;
822 unsigned tv = 0;
824 gcc_assert (loop->num_nodes);
826 body = XNEWVEC (basic_block, loop->num_nodes);
828 if (loop->latch == EXIT_BLOCK_PTR)
830 /* There may be blocks unreachable from EXIT_BLOCK, hence we need to
831 special-case the fake loop that contains the whole function. */
832 gcc_assert (loop->num_nodes == (unsigned) n_basic_blocks);
833 body[tv++] = loop->header;
834 body[tv++] = EXIT_BLOCK_PTR;
835 FOR_EACH_BB (bb)
836 body[tv++] = bb;
838 else
839 tv = get_loop_body_with_size (loop, body, loop->num_nodes);
841 gcc_assert (tv == loop->num_nodes);
842 return body;
845 /* Fills dominance descendants inside LOOP of the basic block BB into
846 array TOVISIT from index *TV. */
848 static void
849 fill_sons_in_loop (const struct loop *loop, basic_block bb,
850 basic_block *tovisit, int *tv)
852 basic_block son, postpone = NULL;
854 tovisit[(*tv)++] = bb;
855 for (son = first_dom_son (CDI_DOMINATORS, bb);
856 son;
857 son = next_dom_son (CDI_DOMINATORS, son))
859 if (!flow_bb_inside_loop_p (loop, son))
860 continue;
862 if (dominated_by_p (CDI_DOMINATORS, loop->latch, son))
864 postpone = son;
865 continue;
867 fill_sons_in_loop (loop, son, tovisit, tv);
870 if (postpone)
871 fill_sons_in_loop (loop, postpone, tovisit, tv);
874 /* Gets body of a LOOP (that must be different from the outermost loop)
875 sorted by dominance relation. Additionally, if a basic block s dominates
876 the latch, then only blocks dominated by s are be after it. */
878 basic_block *
879 get_loop_body_in_dom_order (const struct loop *loop)
881 basic_block *tovisit;
882 int tv;
884 gcc_assert (loop->num_nodes);
886 tovisit = XNEWVEC (basic_block, loop->num_nodes);
888 gcc_assert (loop->latch != EXIT_BLOCK_PTR);
890 tv = 0;
891 fill_sons_in_loop (loop, loop->header, tovisit, &tv);
893 gcc_assert (tv == (int) loop->num_nodes);
895 return tovisit;
898 /* Gets body of a LOOP sorted via provided BB_COMPARATOR. */
900 basic_block *
901 get_loop_body_in_custom_order (const struct loop *loop,
902 int (*bb_comparator) (const void *, const void *))
904 basic_block *bbs = get_loop_body (loop);
906 qsort (bbs, loop->num_nodes, sizeof (basic_block), bb_comparator);
908 return bbs;
911 /* Get body of a LOOP in breadth first sort order. */
913 basic_block *
914 get_loop_body_in_bfs_order (const struct loop *loop)
916 basic_block *blocks;
917 basic_block bb;
918 bitmap visited;
919 unsigned int i = 0;
920 unsigned int vc = 1;
922 gcc_assert (loop->num_nodes);
923 gcc_assert (loop->latch != EXIT_BLOCK_PTR);
925 blocks = XNEWVEC (basic_block, loop->num_nodes);
926 visited = BITMAP_ALLOC (NULL);
928 bb = loop->header;
929 while (i < loop->num_nodes)
931 edge e;
932 edge_iterator ei;
934 if (bitmap_set_bit (visited, bb->index))
935 /* This basic block is now visited */
936 blocks[i++] = bb;
938 FOR_EACH_EDGE (e, ei, bb->succs)
940 if (flow_bb_inside_loop_p (loop, e->dest))
942 if (bitmap_set_bit (visited, e->dest->index))
943 blocks[i++] = e->dest;
947 gcc_assert (i >= vc);
949 bb = blocks[vc++];
952 BITMAP_FREE (visited);
953 return blocks;
956 /* Hash function for struct loop_exit. */
958 static hashval_t
959 loop_exit_hash (const void *ex)
961 const struct loop_exit *const exit = (const struct loop_exit *) ex;
963 return htab_hash_pointer (exit->e);
966 /* Equality function for struct loop_exit. Compares with edge. */
968 static int
969 loop_exit_eq (const void *ex, const void *e)
971 const struct loop_exit *const exit = (const struct loop_exit *) ex;
973 return exit->e == e;
976 /* Frees the list of loop exit descriptions EX. */
978 static void
979 loop_exit_free (void *ex)
981 struct loop_exit *exit = (struct loop_exit *) ex, *next;
983 for (; exit; exit = next)
985 next = exit->next_e;
987 exit->next->prev = exit->prev;
988 exit->prev->next = exit->next;
990 ggc_free (exit);
994 /* Returns the list of records for E as an exit of a loop. */
996 static struct loop_exit *
997 get_exit_descriptions (edge e)
999 return (struct loop_exit *) htab_find_with_hash (current_loops->exits, e,
1000 htab_hash_pointer (e));
1003 /* Updates the lists of loop exits in that E appears.
1004 If REMOVED is true, E is being removed, and we
1005 just remove it from the lists of exits.
1006 If NEW_EDGE is true and E is not a loop exit, we
1007 do not try to remove it from loop exit lists. */
1009 void
1010 rescan_loop_exit (edge e, bool new_edge, bool removed)
1012 void **slot;
1013 struct loop_exit *exits = NULL, *exit;
1014 struct loop *aloop, *cloop;
1016 if (!loops_state_satisfies_p (LOOPS_HAVE_RECORDED_EXITS))
1017 return;
1019 if (!removed
1020 && e->src->loop_father != NULL
1021 && e->dest->loop_father != NULL
1022 && !flow_bb_inside_loop_p (e->src->loop_father, e->dest))
1024 cloop = find_common_loop (e->src->loop_father, e->dest->loop_father);
1025 for (aloop = e->src->loop_father;
1026 aloop != cloop;
1027 aloop = loop_outer (aloop))
1029 exit = ggc_alloc_loop_exit ();
1030 exit->e = e;
1032 exit->next = aloop->exits->next;
1033 exit->prev = aloop->exits;
1034 exit->next->prev = exit;
1035 exit->prev->next = exit;
1037 exit->next_e = exits;
1038 exits = exit;
1042 if (!exits && new_edge)
1043 return;
1045 slot = htab_find_slot_with_hash (current_loops->exits, e,
1046 htab_hash_pointer (e),
1047 exits ? INSERT : NO_INSERT);
1048 if (!slot)
1049 return;
1051 if (exits)
1053 if (*slot)
1054 loop_exit_free (*slot);
1055 *slot = exits;
1057 else
1058 htab_clear_slot (current_loops->exits, slot);
1061 /* For each loop, record list of exit edges, and start maintaining these
1062 lists. */
1064 void
1065 record_loop_exits (void)
1067 basic_block bb;
1068 edge_iterator ei;
1069 edge e;
1071 if (!current_loops)
1072 return;
1074 if (loops_state_satisfies_p (LOOPS_HAVE_RECORDED_EXITS))
1075 return;
1076 loops_state_set (LOOPS_HAVE_RECORDED_EXITS);
1078 gcc_assert (current_loops->exits == NULL);
1079 current_loops->exits = htab_create_ggc (2 * number_of_loops (),
1080 loop_exit_hash, loop_exit_eq,
1081 loop_exit_free);
1083 FOR_EACH_BB (bb)
1085 FOR_EACH_EDGE (e, ei, bb->succs)
1087 rescan_loop_exit (e, true, false);
1092 /* Dumps information about the exit in *SLOT to FILE.
1093 Callback for htab_traverse. */
1095 static int
1096 dump_recorded_exit (void **slot, void *file)
1098 struct loop_exit *exit = (struct loop_exit *) *slot;
1099 unsigned n = 0;
1100 edge e = exit->e;
1102 for (; exit != NULL; exit = exit->next_e)
1103 n++;
1105 fprintf ((FILE*) file, "Edge %d->%d exits %u loops\n",
1106 e->src->index, e->dest->index, n);
1108 return 1;
1111 /* Dumps the recorded exits of loops to FILE. */
1113 extern void dump_recorded_exits (FILE *);
1114 void
1115 dump_recorded_exits (FILE *file)
1117 if (!current_loops->exits)
1118 return;
1119 htab_traverse (current_loops->exits, dump_recorded_exit, file);
1122 /* Releases lists of loop exits. */
1124 void
1125 release_recorded_exits (void)
1127 gcc_assert (loops_state_satisfies_p (LOOPS_HAVE_RECORDED_EXITS));
1128 htab_delete (current_loops->exits);
1129 current_loops->exits = NULL;
1130 loops_state_clear (LOOPS_HAVE_RECORDED_EXITS);
1133 /* Returns the list of the exit edges of a LOOP. */
1135 vec<edge>
1136 get_loop_exit_edges (const struct loop *loop)
1138 vec<edge> edges = vNULL;
1139 edge e;
1140 unsigned i;
1141 basic_block *body;
1142 edge_iterator ei;
1143 struct loop_exit *exit;
1145 gcc_assert (loop->latch != EXIT_BLOCK_PTR);
1147 /* If we maintain the lists of exits, use them. Otherwise we must
1148 scan the body of the loop. */
1149 if (loops_state_satisfies_p (LOOPS_HAVE_RECORDED_EXITS))
1151 for (exit = loop->exits->next; exit->e; exit = exit->next)
1152 edges.safe_push (exit->e);
1154 else
1156 body = get_loop_body (loop);
1157 for (i = 0; i < loop->num_nodes; i++)
1158 FOR_EACH_EDGE (e, ei, body[i]->succs)
1160 if (!flow_bb_inside_loop_p (loop, e->dest))
1161 edges.safe_push (e);
1163 free (body);
1166 return edges;
1169 /* Counts the number of conditional branches inside LOOP. */
1171 unsigned
1172 num_loop_branches (const struct loop *loop)
1174 unsigned i, n;
1175 basic_block * body;
1177 gcc_assert (loop->latch != EXIT_BLOCK_PTR);
1179 body = get_loop_body (loop);
1180 n = 0;
1181 for (i = 0; i < loop->num_nodes; i++)
1182 if (EDGE_COUNT (body[i]->succs) >= 2)
1183 n++;
1184 free (body);
1186 return n;
1189 /* Adds basic block BB to LOOP. */
1190 void
1191 add_bb_to_loop (basic_block bb, struct loop *loop)
1193 unsigned i;
1194 loop_p ploop;
1195 edge_iterator ei;
1196 edge e;
1198 gcc_assert (bb->loop_father == NULL);
1199 bb->loop_father = loop;
1200 loop->num_nodes++;
1201 FOR_EACH_VEC_SAFE_ELT (loop->superloops, i, ploop)
1202 ploop->num_nodes++;
1204 FOR_EACH_EDGE (e, ei, bb->succs)
1206 rescan_loop_exit (e, true, false);
1208 FOR_EACH_EDGE (e, ei, bb->preds)
1210 rescan_loop_exit (e, true, false);
1214 /* Remove basic block BB from loops. */
1215 void
1216 remove_bb_from_loops (basic_block bb)
1218 unsigned i;
1219 struct loop *loop = bb->loop_father;
1220 loop_p ploop;
1221 edge_iterator ei;
1222 edge e;
1224 gcc_assert (loop != NULL);
1225 loop->num_nodes--;
1226 FOR_EACH_VEC_SAFE_ELT (loop->superloops, i, ploop)
1227 ploop->num_nodes--;
1228 bb->loop_father = NULL;
1230 FOR_EACH_EDGE (e, ei, bb->succs)
1232 rescan_loop_exit (e, false, true);
1234 FOR_EACH_EDGE (e, ei, bb->preds)
1236 rescan_loop_exit (e, false, true);
1240 /* Finds nearest common ancestor in loop tree for given loops. */
1241 struct loop *
1242 find_common_loop (struct loop *loop_s, struct loop *loop_d)
1244 unsigned sdepth, ddepth;
1246 if (!loop_s) return loop_d;
1247 if (!loop_d) return loop_s;
1249 sdepth = loop_depth (loop_s);
1250 ddepth = loop_depth (loop_d);
1252 if (sdepth < ddepth)
1253 loop_d = (*loop_d->superloops)[sdepth];
1254 else if (sdepth > ddepth)
1255 loop_s = (*loop_s->superloops)[ddepth];
1257 while (loop_s != loop_d)
1259 loop_s = loop_outer (loop_s);
1260 loop_d = loop_outer (loop_d);
1262 return loop_s;
1265 /* Removes LOOP from structures and frees its data. */
1267 void
1268 delete_loop (struct loop *loop)
1270 /* Remove the loop from structure. */
1271 flow_loop_tree_node_remove (loop);
1273 /* Remove loop from loops array. */
1274 (*current_loops->larray)[loop->num] = NULL;
1276 /* Free loop data. */
1277 flow_loop_free (loop);
1280 /* Cancels the LOOP; it must be innermost one. */
1282 static void
1283 cancel_loop (struct loop *loop)
1285 basic_block *bbs;
1286 unsigned i;
1287 struct loop *outer = loop_outer (loop);
1289 gcc_assert (!loop->inner);
1291 /* Move blocks up one level (they should be removed as soon as possible). */
1292 bbs = get_loop_body (loop);
1293 for (i = 0; i < loop->num_nodes; i++)
1294 bbs[i]->loop_father = outer;
1296 free (bbs);
1297 delete_loop (loop);
1300 /* Cancels LOOP and all its subloops. */
1301 void
1302 cancel_loop_tree (struct loop *loop)
1304 while (loop->inner)
1305 cancel_loop_tree (loop->inner);
1306 cancel_loop (loop);
1309 /* Checks that information about loops is correct
1310 -- sizes of loops are all right
1311 -- results of get_loop_body really belong to the loop
1312 -- loop header have just single entry edge and single latch edge
1313 -- loop latches have only single successor that is header of their loop
1314 -- irreducible loops are correctly marked
1315 -- the cached loop depth and loop father of each bb is correct
1317 DEBUG_FUNCTION void
1318 verify_loop_structure (void)
1320 unsigned *sizes, i, j;
1321 sbitmap irreds;
1322 basic_block bb;
1323 struct loop *loop;
1324 int err = 0;
1325 edge e;
1326 unsigned num = number_of_loops ();
1327 loop_iterator li;
1328 struct loop_exit *exit, *mexit;
1329 bool dom_available = dom_info_available_p (CDI_DOMINATORS);
1330 sbitmap visited;
1332 /* We need up-to-date dominators, compute or verify them. */
1333 if (!dom_available)
1334 calculate_dominance_info (CDI_DOMINATORS);
1335 else
1336 verify_dominators (CDI_DOMINATORS);
1338 /* Check sizes. */
1339 sizes = XCNEWVEC (unsigned, num);
1340 sizes[0] = 2;
1342 FOR_EACH_BB (bb)
1343 for (loop = bb->loop_father; loop; loop = loop_outer (loop))
1344 sizes[loop->num]++;
1346 FOR_EACH_LOOP (li, loop, LI_INCLUDE_ROOT)
1348 i = loop->num;
1350 if (loop->num_nodes != sizes[i])
1352 error ("size of loop %d should be %d, not %d",
1353 i, sizes[i], loop->num_nodes);
1354 err = 1;
1358 /* Check the headers. */
1359 FOR_EACH_BB (bb)
1360 if (bb_loop_header_p (bb)
1361 && bb->loop_father->header != bb)
1363 error ("loop with header %d not in loop tree", bb->index);
1364 err = 1;
1367 /* Check get_loop_body. */
1368 visited = sbitmap_alloc (last_basic_block);
1369 bitmap_clear (visited);
1370 FOR_EACH_LOOP (li, loop, LI_FROM_INNERMOST)
1372 basic_block *bbs = get_loop_body (loop);
1374 for (j = 0; j < loop->num_nodes; j++)
1376 bb = bbs[j];
1378 if (!flow_bb_inside_loop_p (loop, bb))
1380 error ("bb %d does not belong to loop %d",
1381 bb->index, loop->num);
1382 err = 1;
1385 /* Ignore this block if it is in an inner loop. */
1386 if (bitmap_bit_p (visited, bb->index))
1387 continue;
1388 bitmap_set_bit (visited, bb->index);
1390 if (bb->loop_father != loop)
1392 error ("bb %d has father loop %d, should be loop %d",
1393 bb->index, bb->loop_father->num, loop->num);
1394 err = 1;
1398 free (bbs);
1400 sbitmap_free (visited);
1402 /* Check headers and latches. */
1403 FOR_EACH_LOOP (li, loop, 0)
1405 i = loop->num;
1407 if (!bb_loop_header_p (loop->header))
1409 error ("loop %d%'s header is not a loop header", i);
1410 err = 1;
1412 if (loops_state_satisfies_p (LOOPS_HAVE_PREHEADERS)
1413 && EDGE_COUNT (loop->header->preds) != 2)
1415 error ("loop %d%'s header does not have exactly 2 entries", i);
1416 err = 1;
1418 if (loop->latch)
1420 if (!find_edge (loop->latch, loop->header))
1422 error ("loop %d%'s latch does not have an edge to its header", i);
1423 err = 1;
1425 if (!dominated_by_p (CDI_DOMINATORS, loop->latch, loop->header))
1427 error ("loop %d%'s latch is not dominated by its header", i);
1428 err = 1;
1431 if (loops_state_satisfies_p (LOOPS_HAVE_SIMPLE_LATCHES))
1433 if (!single_succ_p (loop->latch))
1435 error ("loop %d%'s latch does not have exactly 1 successor", i);
1436 err = 1;
1438 if (single_succ (loop->latch) != loop->header)
1440 error ("loop %d%'s latch does not have header as successor", i);
1441 err = 1;
1443 if (loop->latch->loop_father != loop)
1445 error ("loop %d%'s latch does not belong directly to it", i);
1446 err = 1;
1449 if (loop->header->loop_father != loop)
1451 error ("loop %d%'s header does not belong directly to it", i);
1452 err = 1;
1454 if (loops_state_satisfies_p (LOOPS_HAVE_MARKED_IRREDUCIBLE_REGIONS)
1455 && (loop_latch_edge (loop)->flags & EDGE_IRREDUCIBLE_LOOP))
1457 error ("loop %d%'s latch is marked as part of irreducible region", i);
1458 err = 1;
1462 /* Check irreducible loops. */
1463 if (loops_state_satisfies_p (LOOPS_HAVE_MARKED_IRREDUCIBLE_REGIONS))
1465 /* Record old info. */
1466 irreds = sbitmap_alloc (last_basic_block);
1467 FOR_EACH_BB (bb)
1469 edge_iterator ei;
1470 if (bb->flags & BB_IRREDUCIBLE_LOOP)
1471 bitmap_set_bit (irreds, bb->index);
1472 else
1473 bitmap_clear_bit (irreds, bb->index);
1474 FOR_EACH_EDGE (e, ei, bb->succs)
1475 if (e->flags & EDGE_IRREDUCIBLE_LOOP)
1476 e->flags |= EDGE_ALL_FLAGS + 1;
1479 /* Recount it. */
1480 mark_irreducible_loops ();
1482 /* Compare. */
1483 FOR_EACH_BB (bb)
1485 edge_iterator ei;
1487 if ((bb->flags & BB_IRREDUCIBLE_LOOP)
1488 && !bitmap_bit_p (irreds, bb->index))
1490 error ("basic block %d should be marked irreducible", bb->index);
1491 err = 1;
1493 else if (!(bb->flags & BB_IRREDUCIBLE_LOOP)
1494 && bitmap_bit_p (irreds, bb->index))
1496 error ("basic block %d should not be marked irreducible", bb->index);
1497 err = 1;
1499 FOR_EACH_EDGE (e, ei, bb->succs)
1501 if ((e->flags & EDGE_IRREDUCIBLE_LOOP)
1502 && !(e->flags & (EDGE_ALL_FLAGS + 1)))
1504 error ("edge from %d to %d should be marked irreducible",
1505 e->src->index, e->dest->index);
1506 err = 1;
1508 else if (!(e->flags & EDGE_IRREDUCIBLE_LOOP)
1509 && (e->flags & (EDGE_ALL_FLAGS + 1)))
1511 error ("edge from %d to %d should not be marked irreducible",
1512 e->src->index, e->dest->index);
1513 err = 1;
1515 e->flags &= ~(EDGE_ALL_FLAGS + 1);
1518 free (irreds);
1521 /* Check the recorded loop exits. */
1522 FOR_EACH_LOOP (li, loop, 0)
1524 if (!loop->exits || loop->exits->e != NULL)
1526 error ("corrupted head of the exits list of loop %d",
1527 loop->num);
1528 err = 1;
1530 else
1532 /* Check that the list forms a cycle, and all elements except
1533 for the head are nonnull. */
1534 for (mexit = loop->exits, exit = mexit->next, i = 0;
1535 exit->e && exit != mexit;
1536 exit = exit->next)
1538 if (i++ & 1)
1539 mexit = mexit->next;
1542 if (exit != loop->exits)
1544 error ("corrupted exits list of loop %d", loop->num);
1545 err = 1;
1549 if (!loops_state_satisfies_p (LOOPS_HAVE_RECORDED_EXITS))
1551 if (loop->exits->next != loop->exits)
1553 error ("nonempty exits list of loop %d, but exits are not recorded",
1554 loop->num);
1555 err = 1;
1560 if (loops_state_satisfies_p (LOOPS_HAVE_RECORDED_EXITS))
1562 unsigned n_exits = 0, eloops;
1564 memset (sizes, 0, sizeof (unsigned) * num);
1565 FOR_EACH_BB (bb)
1567 edge_iterator ei;
1568 if (bb->loop_father == current_loops->tree_root)
1569 continue;
1570 FOR_EACH_EDGE (e, ei, bb->succs)
1572 if (flow_bb_inside_loop_p (bb->loop_father, e->dest))
1573 continue;
1575 n_exits++;
1576 exit = get_exit_descriptions (e);
1577 if (!exit)
1579 error ("exit %d->%d not recorded",
1580 e->src->index, e->dest->index);
1581 err = 1;
1583 eloops = 0;
1584 for (; exit; exit = exit->next_e)
1585 eloops++;
1587 for (loop = bb->loop_father;
1588 loop != e->dest->loop_father
1589 /* When a loop exit is also an entry edge which
1590 can happen when avoiding CFG manipulations
1591 then the last loop exited is the outer loop
1592 of the loop entered. */
1593 && loop != loop_outer (e->dest->loop_father);
1594 loop = loop_outer (loop))
1596 eloops--;
1597 sizes[loop->num]++;
1600 if (eloops != 0)
1602 error ("wrong list of exited loops for edge %d->%d",
1603 e->src->index, e->dest->index);
1604 err = 1;
1609 if (n_exits != htab_elements (current_loops->exits))
1611 error ("too many loop exits recorded");
1612 err = 1;
1615 FOR_EACH_LOOP (li, loop, 0)
1617 eloops = 0;
1618 for (exit = loop->exits->next; exit->e; exit = exit->next)
1619 eloops++;
1620 if (eloops != sizes[loop->num])
1622 error ("%d exits recorded for loop %d (having %d exits)",
1623 eloops, loop->num, sizes[loop->num]);
1624 err = 1;
1629 gcc_assert (!err);
1631 free (sizes);
1632 if (!dom_available)
1633 free_dominance_info (CDI_DOMINATORS);
1636 /* Returns latch edge of LOOP. */
1637 edge
1638 loop_latch_edge (const struct loop *loop)
1640 return find_edge (loop->latch, loop->header);
1643 /* Returns preheader edge of LOOP. */
1644 edge
1645 loop_preheader_edge (const struct loop *loop)
1647 edge e;
1648 edge_iterator ei;
1650 gcc_assert (loops_state_satisfies_p (LOOPS_HAVE_PREHEADERS));
1652 FOR_EACH_EDGE (e, ei, loop->header->preds)
1653 if (e->src != loop->latch)
1654 break;
1656 return e;
1659 /* Returns true if E is an exit of LOOP. */
1661 bool
1662 loop_exit_edge_p (const struct loop *loop, const_edge e)
1664 return (flow_bb_inside_loop_p (loop, e->src)
1665 && !flow_bb_inside_loop_p (loop, e->dest));
1668 /* Returns the single exit edge of LOOP, or NULL if LOOP has either no exit
1669 or more than one exit. If loops do not have the exits recorded, NULL
1670 is returned always. */
1672 edge
1673 single_exit (const struct loop *loop)
1675 struct loop_exit *exit = loop->exits->next;
1677 if (!loops_state_satisfies_p (LOOPS_HAVE_RECORDED_EXITS))
1678 return NULL;
1680 if (exit->e && exit->next == loop->exits)
1681 return exit->e;
1682 else
1683 return NULL;
1686 /* Returns true when BB has an incoming edge exiting LOOP. */
1688 bool
1689 loop_exits_to_bb_p (struct loop *loop, basic_block bb)
1691 edge e;
1692 edge_iterator ei;
1694 FOR_EACH_EDGE (e, ei, bb->preds)
1695 if (loop_exit_edge_p (loop, e))
1696 return true;
1698 return false;
1701 /* Returns true when BB has an outgoing edge exiting LOOP. */
1703 bool
1704 loop_exits_from_bb_p (struct loop *loop, basic_block bb)
1706 edge e;
1707 edge_iterator ei;
1709 FOR_EACH_EDGE (e, ei, bb->succs)
1710 if (loop_exit_edge_p (loop, e))
1711 return true;
1713 return false;
1716 /* Return location corresponding to the loop control condition if possible. */
1718 location_t
1719 get_loop_location (struct loop *loop)
1721 rtx insn = NULL;
1722 struct niter_desc *desc = NULL;
1723 edge exit;
1725 /* For a for or while loop, we would like to return the location
1726 of the for or while statement, if possible. To do this, look
1727 for the branch guarding the loop back-edge. */
1729 /* If this is a simple loop with an in_edge, then the loop control
1730 branch is typically at the end of its source. */
1731 desc = get_simple_loop_desc (loop);
1732 if (desc->in_edge)
1734 FOR_BB_INSNS_REVERSE (desc->in_edge->src, insn)
1736 if (INSN_P (insn) && INSN_HAS_LOCATION (insn))
1737 return INSN_LOCATION (insn);
1740 /* If loop has a single exit, then the loop control branch
1741 must be at the end of its source. */
1742 if ((exit = single_exit (loop)))
1744 FOR_BB_INSNS_REVERSE (exit->src, insn)
1746 if (INSN_P (insn) && INSN_HAS_LOCATION (insn))
1747 return INSN_LOCATION (insn);
1750 /* Next check the latch, to see if it is non-empty. */
1751 FOR_BB_INSNS_REVERSE (loop->latch, insn)
1753 if (INSN_P (insn) && INSN_HAS_LOCATION (insn))
1754 return INSN_LOCATION (insn);
1756 /* Finally, if none of the above identifies the loop control branch,
1757 return the first location in the loop header. */
1758 FOR_BB_INSNS (loop->header, insn)
1760 if (INSN_P (insn) && INSN_HAS_LOCATION (insn))
1761 return INSN_LOCATION (insn);
1763 /* If all else fails, simply return the current function location. */
1764 return DECL_SOURCE_LOCATION (current_function_decl);