1 /* Natural loop discovery code for GNU compiler.
2 Copyright (C) 2000, 2001 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 2, or (at your option) any later
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
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING. If not, write to the Free
18 Software Foundation, 59 Temple Place - Suite 330, Boston, MA
24 #include "hard-reg-set.h"
25 #include "basic-block.h"
28 /* Ratio of frequencies of edges so that one of more latch edges is
29 considered to belong to inner loop with same header. */
30 #define HEAVY_EDGE_RATIO 8
32 static void flow_loops_cfg_dump
PARAMS ((const struct loops
*,
34 static void flow_loop_entry_edges_find
PARAMS ((struct loop
*));
35 static void flow_loop_exit_edges_find
PARAMS ((struct loop
*));
36 static int flow_loop_nodes_find
PARAMS ((basic_block
, struct loop
*));
37 static void flow_loop_pre_header_scan
PARAMS ((struct loop
*));
38 static basic_block flow_loop_pre_header_find
PARAMS ((basic_block
,
40 static int flow_loop_level_compute
PARAMS ((struct loop
*));
41 static int flow_loops_level_compute
PARAMS ((struct loops
*));
42 static basic_block make_forwarder_block
PARAMS ((basic_block
, int, int,
44 static void canonicalize_loop_headers
PARAMS ((void));
45 static bool glb_enum_p
PARAMS ((basic_block
, void *));
46 static void redirect_edge_with_latch_update
PARAMS ((edge
, basic_block
));
47 static void flow_loop_free
PARAMS ((struct loop
*));
49 /* Dump loop related CFG information. */
52 flow_loops_cfg_dump (loops
, file
)
53 const struct loops
*loops
;
59 if (! loops
->num
|| ! file
|| ! loops
->cfg
.dom
)
66 fprintf (file
, ";; %d succs { ", bb
->index
);
67 for (succ
= bb
->succ
; succ
; succ
= succ
->succ_next
)
68 fprintf (file
, "%d ", succ
->dest
->index
);
69 fprintf (file
, "}\n");
72 /* Dump the DFS node order. */
73 if (loops
->cfg
.dfs_order
)
75 fputs (";; DFS order: ", file
);
76 for (i
= 0; i
< n_basic_blocks
; i
++)
77 fprintf (file
, "%d ", loops
->cfg
.dfs_order
[i
]);
82 /* Dump the reverse completion node order. */
83 if (loops
->cfg
.rc_order
)
85 fputs (";; RC order: ", file
);
86 for (i
= 0; i
< n_basic_blocks
; i
++)
87 fprintf (file
, "%d ", loops
->cfg
.rc_order
[i
]);
93 /* Return non-zero if the nodes of LOOP are a subset of OUTER. */
96 flow_loop_nested_p (outer
, loop
)
97 const struct loop
*outer
;
98 const struct loop
*loop
;
100 return loop
->depth
> outer
->depth
101 && loop
->pred
[outer
->depth
] == outer
;
104 /* Dump the loop information specified by LOOP to the stream FILE
105 using auxiliary dump callback function LOOP_DUMP_AUX if non null. */
108 flow_loop_dump (loop
, file
, loop_dump_aux
, verbose
)
109 const struct loop
*loop
;
111 void (*loop_dump_aux
) PARAMS((const struct loop
*, FILE *, int));
117 if (! loop
|| ! loop
->header
)
120 fprintf (file
, ";;\n;; Loop %d:%s\n", loop
->num
,
121 loop
->invalid
? " invalid" : "");
123 fprintf (file
, ";; header %d, latch %d, pre-header %d\n",
124 loop
->header
->index
, loop
->latch
->index
,
125 loop
->pre_header
? loop
->pre_header
->index
: -1);
126 fprintf (file
, ";; depth %d, level %d, outer %ld\n",
127 loop
->depth
, loop
->level
,
128 (long) (loop
->outer
? loop
->outer
->num
: -1));
130 if (loop
->pre_header_edges
)
131 flow_edge_list_print (";; pre-header edges", loop
->pre_header_edges
,
132 loop
->num_pre_header_edges
, file
);
134 flow_edge_list_print (";; entry edges", loop
->entry_edges
,
135 loop
->num_entries
, file
);
136 fprintf (file
, ";; nodes:");
137 bbs
= get_loop_body (loop
);
138 for (i
= 0; i
< loop
->num_nodes
; i
++)
139 fprintf (file
, " %d", bbs
[i
]->index
);
141 fprintf (file
, "\n");
142 flow_edge_list_print (";; exit edges", loop
->exit_edges
,
143 loop
->num_exits
, file
);
146 loop_dump_aux (loop
, file
, verbose
);
149 /* Dump the loop information specified by LOOPS to the stream FILE,
150 using auxiliary dump callback function LOOP_DUMP_AUX if non null. */
153 flow_loops_dump (loops
, file
, loop_dump_aux
, verbose
)
154 const struct loops
*loops
;
156 void (*loop_dump_aux
) PARAMS((const struct loop
*, FILE *, int));
162 num_loops
= loops
->num
;
163 if (! num_loops
|| ! file
)
166 fprintf (file
, ";; %d loops found, %d levels\n",
167 num_loops
, loops
->levels
);
169 for (i
= 0; i
< num_loops
; i
++)
171 struct loop
*loop
= loops
->parray
[i
];
176 flow_loop_dump (loop
, file
, loop_dump_aux
, verbose
);
180 flow_loops_cfg_dump (loops
, file
);
183 /* Free data allocated for LOOP. */
185 flow_loop_free (loop
)
188 if (loop
->pre_header_edges
)
189 free (loop
->pre_header_edges
);
190 if (loop
->entry_edges
)
191 free (loop
->entry_edges
);
192 if (loop
->exit_edges
)
193 free (loop
->exit_edges
);
199 /* Free all the memory allocated for LOOPS. */
202 flow_loops_free (loops
)
212 /* Free the loop descriptors. */
213 for (i
= 0; i
< loops
->num
; i
++)
215 struct loop
*loop
= loops
->parray
[i
];
220 flow_loop_free (loop
);
223 free (loops
->parray
);
224 loops
->parray
= NULL
;
227 free_dominance_info (loops
->cfg
.dom
);
229 if (loops
->cfg
.dfs_order
)
230 free (loops
->cfg
.dfs_order
);
231 if (loops
->cfg
.rc_order
)
232 free (loops
->cfg
.rc_order
);
237 /* Find the entry edges into the LOOP. */
240 flow_loop_entry_edges_find (loop
)
247 for (e
= loop
->header
->pred
; e
; e
= e
->pred_next
)
249 if (flow_loop_outside_edge_p (loop
, e
))
256 loop
->entry_edges
= (edge
*) xmalloc (num_entries
* sizeof (edge
*));
259 for (e
= loop
->header
->pred
; e
; e
= e
->pred_next
)
261 if (flow_loop_outside_edge_p (loop
, e
))
262 loop
->entry_edges
[num_entries
++] = e
;
265 loop
->num_entries
= num_entries
;
268 /* Find the exit edges from the LOOP. */
271 flow_loop_exit_edges_find (loop
)
275 basic_block node
, *bbs
;
278 loop
->exit_edges
= NULL
;
281 /* Check all nodes within the loop to see if there are any
282 successors not in the loop. Note that a node may have multiple
285 bbs
= get_loop_body (loop
);
286 for (i
= 0; i
< loop
->num_nodes
; i
++)
289 for (e
= node
->succ
; e
; e
= e
->succ_next
)
291 basic_block dest
= e
->dest
;
293 if (!flow_bb_inside_loop_p (loop
, dest
))
304 loop
->exit_edges
= (edge
*) xmalloc (num_exits
* sizeof (edge
*));
306 /* Store all exiting edges into an array. */
308 for (i
= 0; i
< loop
->num_nodes
; i
++)
311 for (e
= node
->succ
; e
; e
= e
->succ_next
)
313 basic_block dest
= e
->dest
;
315 if (!flow_bb_inside_loop_p (loop
, dest
))
316 loop
->exit_edges
[num_exits
++] = e
;
320 loop
->num_exits
= num_exits
;
323 /* Find the nodes contained within the LOOP with header HEADER.
324 Return the number of nodes within the loop. */
327 flow_loop_nodes_find (header
, loop
)
336 header
->loop_father
= loop
;
337 header
->loop_depth
= loop
->depth
;
338 findex
= lindex
= header
->index
;
340 if (loop
->latch
->loop_father
!= loop
)
342 stack
= (basic_block
*) xmalloc (n_basic_blocks
* sizeof (basic_block
));
345 stack
[sp
++] = loop
->latch
;
346 loop
->latch
->loop_father
= loop
;
347 loop
->latch
->loop_depth
= loop
->depth
;
356 for (e
= node
->pred
; e
; e
= e
->pred_next
)
358 basic_block ancestor
= e
->src
;
360 if (ancestor
!= ENTRY_BLOCK_PTR
361 && ancestor
->loop_father
!= loop
)
363 ancestor
->loop_father
= loop
;
364 ancestor
->loop_depth
= loop
->depth
;
366 stack
[sp
++] = ancestor
;
375 /* Find the root node of the loop pre-header extended basic block and
376 the edges along the trace from the root node to the loop header. */
379 flow_loop_pre_header_scan (loop
)
386 loop
->num_pre_header_edges
= 0;
387 if (loop
->num_entries
!= 1)
390 ebb
= loop
->entry_edges
[0]->src
;
391 if (ebb
== ENTRY_BLOCK_PTR
)
394 /* Count number of edges along trace from loop header to
395 root of pre-header extended basic block. Usually this is
396 only one or two edges. */
397 for (num
= 1; ebb
->pred
->src
!= ENTRY_BLOCK_PTR
&& ! ebb
->pred
->pred_next
;
399 ebb
= ebb
->pred
->src
;
401 loop
->pre_header_edges
= (edge
*) xmalloc (num
* sizeof (edge
));
402 loop
->num_pre_header_edges
= num
;
404 /* Store edges in order that they are followed. The source of the first edge
405 is the root node of the pre-header extended basic block and the
406 destination of the last last edge is the loop header. */
407 for (e
= loop
->entry_edges
[0]; num
; e
= e
->src
->pred
)
408 loop
->pre_header_edges
[--num
] = e
;
411 /* Return the block for the pre-header of the loop with header
412 HEADER where DOM specifies the dominator information. Return NULL if
413 there is no pre-header. */
416 flow_loop_pre_header_find (header
, dom
)
420 basic_block pre_header
;
423 /* If block p is a predecessor of the header and is the only block
424 that the header does not dominate, then it is the pre-header. */
426 for (e
= header
->pred
; e
; e
= e
->pred_next
)
428 basic_block node
= e
->src
;
430 if (node
!= ENTRY_BLOCK_PTR
431 && ! dominated_by_p (dom
, node
, header
))
433 if (pre_header
== NULL
)
437 /* There are multiple edges into the header from outside
438 the loop so there is no pre-header block. */
448 /* Add LOOP to the loop hierarchy tree where FATHER is father of the
452 flow_loop_tree_node_add (father
, loop
)
456 loop
->next
= father
->inner
;
457 father
->inner
= loop
;
458 loop
->outer
= father
;
460 loop
->depth
= father
->depth
+ 1;
461 loop
->pred
= xmalloc (sizeof (struct loop
*) * loop
->depth
);
462 memcpy (loop
->pred
, father
->pred
, sizeof (struct loop
*) * father
->depth
);
463 loop
->pred
[father
->depth
] = father
;
466 /* Remove LOOP from the loop hierarchy tree. */
469 flow_loop_tree_node_remove (loop
)
472 struct loop
*prev
, *father
;
474 father
= loop
->outer
;
477 /* Remove loop from the list of sons. */
478 if (father
->inner
== loop
)
479 father
->inner
= loop
->next
;
482 for (prev
= father
->inner
; prev
->next
!= loop
; prev
= prev
->next
);
483 prev
->next
= loop
->next
;
491 /* Helper function to compute loop nesting depth and enclosed loop level
492 for the natural loop specified by LOOP. Returns the loop level. */
495 flow_loop_level_compute (loop
)
504 /* Traverse loop tree assigning depth and computing level as the
505 maximum level of all the inner loops of this loop. The loop
506 level is equivalent to the height of the loop in the loop tree
507 and corresponds to the number of enclosed loop levels (including
509 for (inner
= loop
->inner
; inner
; inner
= inner
->next
)
511 int ilevel
= flow_loop_level_compute (inner
) + 1;
521 /* Compute the loop nesting depth and enclosed loop level for the loop
522 hierarchy tree specified by LOOPS. Return the maximum enclosed loop
526 flow_loops_level_compute (loops
)
529 return flow_loop_level_compute (loops
->tree_root
);
532 /* Scan a single natural loop specified by LOOP collecting information
533 about it specified by FLAGS. */
536 flow_loop_scan (loops
, loop
, flags
)
541 if (flags
& LOOP_ENTRY_EDGES
)
543 /* Find edges which enter the loop header.
544 Note that the entry edges should only
545 enter the header of a natural loop. */
546 flow_loop_entry_edges_find (loop
);
549 if (flags
& LOOP_EXIT_EDGES
)
551 /* Find edges which exit the loop. */
552 flow_loop_exit_edges_find (loop
);
555 if (flags
& LOOP_PRE_HEADER
)
557 /* Look to see if the loop has a pre-header node. */
559 = flow_loop_pre_header_find (loop
->header
, loops
->cfg
.dom
);
561 /* Find the blocks within the extended basic block of
562 the loop pre-header. */
563 flow_loop_pre_header_scan (loop
);
569 #define HEADER_BLOCK(B) (* (int *) (B)->aux)
570 #define LATCH_EDGE(E) (*(int *) (E)->aux)
572 /* Redirect edge and update latch and header info. */
574 redirect_edge_with_latch_update (e
, to
)
580 jump
= redirect_edge_and_branch_force (e
, to
);
583 alloc_aux_for_block (jump
, sizeof (int));
584 HEADER_BLOCK (jump
) = 0;
585 alloc_aux_for_edge (jump
->pred
, sizeof (int));
586 LATCH_EDGE (jump
->succ
) = LATCH_EDGE (e
);
587 LATCH_EDGE (jump
->pred
) = 0;
591 /* Split BB into entry part and rest; if REDIRECT_LATCH, redirect edges
592 marked as latch into entry part, analogically for REDIRECT_NONLATCH.
593 In both of these cases, ignore edge EXCEPT. If CONN_LATCH, set edge
594 between created entry part and BB as latch one. Return created entry
598 make_forwarder_block (bb
, redirect_latch
, redirect_nonlatch
, except
,
602 int redirect_nonlatch
;
606 edge e
, next_e
, fallthru
;
610 insn
= PREV_INSN (first_insn_after_basic_block_note (bb
));
612 fallthru
= split_block (bb
, insn
);
613 dummy
= fallthru
->src
;
616 bb
->aux
= xmalloc (sizeof (int));
617 HEADER_BLOCK (dummy
) = 0;
618 HEADER_BLOCK (bb
) = 1;
620 /* Redirect back edges we want to keep. */
621 for (e
= dummy
->pred
; e
; e
= next_e
)
623 next_e
= e
->pred_next
;
625 || !((redirect_latch
&& LATCH_EDGE (e
))
626 || (redirect_nonlatch
&& !LATCH_EDGE (e
))))
628 dummy
->frequency
-= EDGE_FREQUENCY (e
);
629 dummy
->count
-= e
->count
;
630 if (dummy
->frequency
< 0)
631 dummy
->frequency
= 0;
632 if (dummy
->count
< 0)
634 redirect_edge_with_latch_update (e
, bb
);
638 alloc_aux_for_edge (fallthru
, sizeof (int));
639 LATCH_EDGE (fallthru
) = conn_latch
;
644 /* Takes care of merging natural loops with shared headers. */
646 canonicalize_loop_headers ()
652 /* Compute the dominators. */
653 dom
= calculate_dominance_info (CDI_DOMINATORS
);
655 alloc_aux_for_blocks (sizeof (int));
656 alloc_aux_for_edges (sizeof (int));
658 /* Split blocks so that each loop has only single latch. */
662 int have_abnormal_edge
= 0;
664 for (e
= header
->pred
; e
; e
= e
->pred_next
)
666 basic_block latch
= e
->src
;
668 if (e
->flags
& EDGE_ABNORMAL
)
669 have_abnormal_edge
= 1;
671 if (latch
!= ENTRY_BLOCK_PTR
672 && dominated_by_p (dom
, latch
, header
))
678 if (have_abnormal_edge
)
679 HEADER_BLOCK (header
) = 0;
681 HEADER_BLOCK (header
) = num_latches
;
684 if (HEADER_BLOCK (ENTRY_BLOCK_PTR
->succ
->dest
))
688 /* We could not redirect edges freely here. On the other hand,
689 we can simply split the edge from entry block. */
690 bb
= split_edge (ENTRY_BLOCK_PTR
->succ
);
692 alloc_aux_for_edge (bb
->succ
, sizeof (int));
693 LATCH_EDGE (bb
->succ
) = 0;
694 alloc_aux_for_block (bb
, sizeof (int));
695 HEADER_BLOCK (bb
) = 0;
702 int max_freq
, is_heavy
;
705 if (!HEADER_BLOCK (header
))
708 num_latch
= HEADER_BLOCK (header
);
710 want_join_latch
= (num_latch
> 1);
712 if (!want_join_latch
)
715 /* Find a heavy edge. */
719 for (e
= header
->pred
; e
; e
= e
->pred_next
)
720 if (LATCH_EDGE (e
) &&
721 EDGE_FREQUENCY (e
) > max_freq
)
722 max_freq
= EDGE_FREQUENCY (e
);
723 for (e
= header
->pred
; e
; e
= e
->pred_next
)
724 if (LATCH_EDGE (e
) &&
725 EDGE_FREQUENCY (e
) >= max_freq
/ HEAVY_EDGE_RATIO
)
738 basic_block new_header
=
739 make_forwarder_block (header
, true, true, heavy
, 0);
741 make_forwarder_block (new_header
, true, false, NULL
, 1);
744 make_forwarder_block (header
, true, false, NULL
, 1);
747 free_aux_for_blocks ();
748 free_aux_for_edges ();
749 free_dominance_info (dom
);
752 /* Find all the natural loops in the function and save in LOOPS structure and
753 recalculate loop_depth information in basic block structures. FLAGS
754 controls which loop information is collected. Return the number of natural
758 flow_loops_find (loops
, flags
)
773 /* This function cannot be repeatedly called with different
774 flags to build up the loop information. The loop tree
775 must always be built if this function is called. */
776 if (! (flags
& LOOP_TREE
))
779 memset (loops
, 0, sizeof *loops
);
781 /* Taking care of this degenerate case makes the rest of
782 this code simpler. */
783 if (n_basic_blocks
== 0)
789 /* Join loops with shared headers. */
790 canonicalize_loop_headers ();
792 /* Compute the dominators. */
793 dom
= loops
->cfg
.dom
= calculate_dominance_info (CDI_DOMINATORS
);
795 /* Count the number of loop headers. This should be the
796 same as the number of natural loops. */
797 headers
= sbitmap_alloc (last_basic_block
);
798 sbitmap_zero (headers
);
803 int more_latches
= 0;
805 header
->loop_depth
= 0;
807 for (e
= header
->pred
; e
; e
= e
->pred_next
)
809 basic_block latch
= e
->src
;
811 if (e
->flags
& EDGE_ABNORMAL
)
815 RESET_BIT (headers
, header
->index
);
821 /* Look for back edges where a predecessor is dominated
822 by this block. A natural loop has a single entry
823 node (header) that dominates all the nodes in the
824 loop. It also has single back edge to the header
825 from a latch node. */
826 if (latch
!= ENTRY_BLOCK_PTR
&& dominated_by_p (dom
, latch
, header
))
828 /* Shared headers should be eliminated by now. */
832 SET_BIT (headers
, header
->index
);
838 /* Allocate loop structures. */
839 loops
->parray
= (struct loop
**) xcalloc (num_loops
+ 1, sizeof (struct loop
*));
841 /* Dummy loop containing whole function. */
842 loops
->parray
[0] = xcalloc (1, sizeof (struct loop
));
843 loops
->parray
[0]->next
= NULL
;
844 loops
->parray
[0]->inner
= NULL
;
845 loops
->parray
[0]->outer
= NULL
;
846 loops
->parray
[0]->depth
= 0;
847 loops
->parray
[0]->pred
= NULL
;
848 loops
->parray
[0]->num_nodes
= n_basic_blocks
+ 2;
849 loops
->parray
[0]->latch
= EXIT_BLOCK_PTR
;
850 loops
->parray
[0]->header
= ENTRY_BLOCK_PTR
;
851 ENTRY_BLOCK_PTR
->loop_father
= loops
->parray
[0];
852 EXIT_BLOCK_PTR
->loop_father
= loops
->parray
[0];
854 loops
->tree_root
= loops
->parray
[0];
856 /* Find and record information about all the natural loops
860 bb
->loop_father
= loops
->tree_root
;
864 /* Compute depth first search order of the CFG so that outer
865 natural loops will be found before inner natural loops. */
866 dfs_order
= (int *) xmalloc (n_basic_blocks
* sizeof (int));
867 rc_order
= (int *) xmalloc (n_basic_blocks
* sizeof (int));
868 flow_depth_first_order_compute (dfs_order
, rc_order
);
870 /* Save CFG derived information to avoid recomputing it. */
871 loops
->cfg
.dom
= dom
;
872 loops
->cfg
.dfs_order
= dfs_order
;
873 loops
->cfg
.rc_order
= rc_order
;
877 for (b
= 0; b
< n_basic_blocks
; b
++)
881 /* Search the nodes of the CFG in reverse completion order
882 so that we can find outer loops first. */
883 if (!TEST_BIT (headers
, rc_order
[b
]))
886 header
= BASIC_BLOCK (rc_order
[b
]);
888 loop
= loops
->parray
[num_loops
] = xcalloc (1, sizeof (struct loop
));
890 loop
->header
= header
;
891 loop
->num
= num_loops
;
894 /* Look for the latch for this header block. */
895 for (e
= header
->pred
; e
; e
= e
->pred_next
)
897 basic_block latch
= e
->src
;
899 if (latch
!= ENTRY_BLOCK_PTR
900 && dominated_by_p (dom
, latch
, header
))
907 flow_loop_tree_node_add (header
->loop_father
, loop
);
908 loop
->num_nodes
= flow_loop_nodes_find (loop
->header
, loop
);
911 sbitmap_free (headers
);
913 /* Assign the loop nesting depth and enclosed loop level for each
915 loops
->levels
= flow_loops_level_compute (loops
);
917 /* Scan the loops. */
918 for (i
= 1; i
< num_loops
; i
++)
919 flow_loop_scan (loops
, loops
->parray
[i
], flags
);
921 loops
->num
= num_loops
;
925 loops
->cfg
.dom
= NULL
;
926 free_dominance_info (dom
);
928 #ifdef ENABLE_CHECKING
930 verify_loop_structure (loops
, 0);
936 /* Update the information regarding the loops in the CFG
937 specified by LOOPS. */
940 flow_loops_update (loops
, flags
)
944 /* One day we may want to update the current loop data. For now
945 throw away the old stuff and rebuild what we need. */
947 flow_loops_free (loops
);
949 return flow_loops_find (loops
, flags
);
952 /* Return non-zero if basic block BB belongs to LOOP. */
954 flow_bb_inside_loop_p (loop
, bb
)
955 const struct loop
*loop
;
956 const basic_block bb
;
958 struct loop
*source_loop
;
960 if (bb
== ENTRY_BLOCK_PTR
|| bb
== EXIT_BLOCK_PTR
)
963 source_loop
= bb
->loop_father
;
964 return loop
== source_loop
|| flow_loop_nested_p (loop
, source_loop
);
967 /* Return non-zero if edge E enters header of LOOP from outside of LOOP. */
970 flow_loop_outside_edge_p (loop
, e
)
971 const struct loop
*loop
;
974 if (e
->dest
!= loop
->header
)
976 return !flow_bb_inside_loop_p (loop
, e
->src
);
979 /* Enumeration predicate for get_loop_body. */
981 glb_enum_p (bb
, glb_header
)
985 return bb
!= (basic_block
) glb_header
;
988 /* Gets basic blocks of a loop. */
991 const struct loop
*loop
;
993 basic_block
*tovisit
, bb
;
996 if (!loop
->num_nodes
)
999 tovisit
= xcalloc (loop
->num_nodes
, sizeof (basic_block
));
1000 tovisit
[tv
++] = loop
->header
;
1002 if (loop
->latch
== EXIT_BLOCK_PTR
)
1004 /* There may be blocks unreachable from EXIT_BLOCK. */
1005 if (loop
->num_nodes
!= n_basic_blocks
+ 2)
1009 tovisit
[tv
++] = EXIT_BLOCK_PTR
;
1011 else if (loop
->latch
!= loop
->header
)
1013 tv
= dfs_enumerate_from (loop
->latch
, 1, glb_enum_p
,
1014 tovisit
+ 1, loop
->num_nodes
- 1,
1018 if (tv
!= loop
->num_nodes
)
1023 /* Adds basic block BB to LOOP. */
1025 add_bb_to_loop (bb
, loop
)
1031 bb
->loop_father
= loop
;
1032 bb
->loop_depth
= loop
->depth
;
1034 for (i
= 0; i
< loop
->depth
; i
++)
1035 loop
->pred
[i
]->num_nodes
++;
1038 /* Remove basic block BB from loops. */
1040 remove_bb_from_loops (bb
)
1044 struct loop
*loop
= bb
->loop_father
;
1047 for (i
= 0; i
< loop
->depth
; i
++)
1048 loop
->pred
[i
]->num_nodes
--;
1049 bb
->loop_father
= NULL
;
1053 /* Finds nearest common ancestor in loop tree for given loops. */
1055 find_common_loop (loop_s
, loop_d
)
1056 struct loop
*loop_s
;
1057 struct loop
*loop_d
;
1059 if (!loop_s
) return loop_d
;
1060 if (!loop_d
) return loop_s
;
1062 if (loop_s
->depth
< loop_d
->depth
)
1063 loop_d
= loop_d
->pred
[loop_s
->depth
];
1064 else if (loop_s
->depth
> loop_d
->depth
)
1065 loop_s
= loop_s
->pred
[loop_d
->depth
];
1067 while (loop_s
!= loop_d
)
1069 loop_s
= loop_s
->outer
;
1070 loop_d
= loop_d
->outer
;
1075 /* Checks that LOOPS are allright:
1076 -- sizes of loops are allright
1077 -- results of get_loop_body really belong to the loop
1078 -- loop header have just single entry edge and single latch edge
1079 -- loop latches have only single successor that is header of their loop
1082 verify_loop_structure (loops
, flags
)
1083 struct loops
*loops
;
1087 basic_block
*bbs
, bb
;
1092 sizes
= xcalloc (loops
->num
, sizeof (int));
1096 for (loop
= bb
->loop_father
; loop
; loop
= loop
->outer
)
1099 for (i
= 0; i
< loops
->num
; i
++)
1101 if (!loops
->parray
[i
])
1104 if (loops
->parray
[i
]->num_nodes
!= sizes
[i
])
1106 error ("Size of loop %d should be %d, not %d.",
1107 i
, sizes
[i
], loops
->parray
[i
]->num_nodes
);
1114 /* Check get_loop_body. */
1115 for (i
= 1; i
< loops
->num
; i
++)
1117 loop
= loops
->parray
[i
];
1120 bbs
= get_loop_body (loop
);
1122 for (j
= 0; j
< loop
->num_nodes
; j
++)
1123 if (!flow_bb_inside_loop_p (loop
, bbs
[j
]))
1125 error ("Bb %d do not belong to loop %d.",
1132 /* Check headers and latches. */
1133 for (i
= 1; i
< loops
->num
; i
++)
1135 loop
= loops
->parray
[i
];
1139 if ((flags
& VLS_EXPECT_PREHEADERS
)
1140 && (!loop
->header
->pred
->pred_next
1141 || loop
->header
->pred
->pred_next
->pred_next
))
1143 error ("Loop %d's header does not have exactly 2 entries.", i
);
1146 if (flags
& VLS_EXPECT_SIMPLE_LATCHES
)
1148 if (!loop
->latch
->succ
1149 || loop
->latch
->succ
->succ_next
)
1151 error ("Loop %d's latch does not have exactly 1 successor.", i
);
1154 if (loop
->latch
->succ
->dest
!= loop
->header
)
1156 error ("Loop %d's latch does not have header as successor.", i
);
1159 if (loop
->latch
->loop_father
!= loop
)
1161 error ("Loop %d's latch does not belong directly to it.", i
);
1165 if (loop
->header
->loop_father
!= loop
)
1167 error ("Loop %d's header does not belong directly to it.", i
);
1176 /* Returns latch edge of LOOP. */
1178 loop_latch_edge (loop
)
1183 for (e
= loop
->header
->pred
; e
->src
!= loop
->latch
; e
= e
->pred_next
)
1189 /* Returns preheader edge of LOOP. */
1191 loop_preheader_edge (loop
)
1196 for (e
= loop
->header
->pred
; e
->src
== loop
->latch
; e
= e
->pred_next
)