1 /* DDG - Data Dependence Graph implementation.
2 Copyright (C) 2004, 2005, 2006, 2007, 2008, 2009
3 Free Software Foundation, Inc.
4 Contributed by Ayal Zaks and Mustafa Hagog <zaks,mustafa@il.ibm.com>
6 This file is part of GCC.
8 GCC is free software; you can redistribute it and/or modify it under
9 the terms of the GNU General Public License as published by the Free
10 Software Foundation; either version 3, or (at your option) any later
13 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
14 WARRANTY; without even the implied warranty of MERCHANTABILITY or
15 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
18 You should have received a copy of the GNU General Public License
19 along with GCC; see the file COPYING3. If not see
20 <http://www.gnu.org/licenses/>. */
25 #include "coretypes.h"
30 #include "hard-reg-set.h"
34 #include "insn-config.h"
35 #include "insn-attr.h"
38 #include "sched-int.h"
40 #include "cfglayout.h"
47 #ifdef INSN_SCHEDULING
49 /* A flag indicating that a ddg edge belongs to an SCC or not. */
50 enum edge_flag
{NOT_IN_SCC
= 0, IN_SCC
};
52 /* Forward declarations. */
53 static void add_backarc_to_ddg (ddg_ptr
, ddg_edge_ptr
);
54 static void add_backarc_to_scc (ddg_scc_ptr
, ddg_edge_ptr
);
55 static void add_scc_to_ddg (ddg_all_sccs_ptr
, ddg_scc_ptr
);
56 static void create_ddg_dep_from_intra_loop_link (ddg_ptr
, ddg_node_ptr
,
58 static void create_ddg_dep_no_link (ddg_ptr
, ddg_node_ptr
, ddg_node_ptr
,
59 dep_type
, dep_data_type
, int);
60 static ddg_edge_ptr
create_ddg_edge (ddg_node_ptr
, ddg_node_ptr
, dep_type
,
61 dep_data_type
, int, int);
62 static void add_edge_to_ddg (ddg_ptr g
, ddg_edge_ptr
);
64 /* Auxiliary variable for mem_read_insn_p/mem_write_insn_p. */
65 static bool mem_ref_p
;
67 /* Auxiliary function for mem_read_insn_p. */
69 mark_mem_use (rtx
*x
, void *data ATTRIBUTE_UNUSED
)
76 /* Auxiliary function for mem_read_insn_p. */
78 mark_mem_use_1 (rtx
*x
, void *data
)
80 for_each_rtx (x
, mark_mem_use
, data
);
83 /* Returns nonzero if INSN reads from memory. */
85 mem_read_insn_p (rtx insn
)
88 note_uses (&PATTERN (insn
), mark_mem_use_1
, NULL
);
93 mark_mem_store (rtx loc
, const_rtx setter ATTRIBUTE_UNUSED
, void *data ATTRIBUTE_UNUSED
)
99 /* Returns nonzero if INSN writes to memory. */
101 mem_write_insn_p (rtx insn
)
104 note_stores (PATTERN (insn
), mark_mem_store
, NULL
);
108 /* Returns nonzero if X has access to memory. */
110 rtx_mem_access_p (rtx x
)
123 fmt
= GET_RTX_FORMAT (code
);
124 for (i
= GET_RTX_LENGTH (code
) - 1; i
>= 0; i
--)
128 if (rtx_mem_access_p (XEXP (x
, i
)))
131 else if (fmt
[i
] == 'E')
132 for (j
= 0; j
< XVECLEN (x
, i
); j
++)
134 if (rtx_mem_access_p (XVECEXP (x
, i
, j
)))
141 /* Returns nonzero if INSN reads to or writes from memory. */
143 mem_access_insn_p (rtx insn
)
145 return rtx_mem_access_p (PATTERN (insn
));
148 /* Computes the dependence parameters (latency, distance etc.), creates
149 a ddg_edge and adds it to the given DDG. */
151 create_ddg_dep_from_intra_loop_link (ddg_ptr g
, ddg_node_ptr src_node
,
152 ddg_node_ptr dest_node
, dep_t link
)
155 int latency
, distance
= 0;
156 dep_type t
= TRUE_DEP
;
157 dep_data_type dt
= (mem_access_insn_p (src_node
->insn
)
158 && mem_access_insn_p (dest_node
->insn
) ? MEM_DEP
160 gcc_assert (src_node
->cuid
< dest_node
->cuid
);
163 /* Note: REG_DEP_ANTI applies to MEM ANTI_DEP as well!! */
164 if (DEP_TYPE (link
) == REG_DEP_ANTI
)
166 else if (DEP_TYPE (link
) == REG_DEP_OUTPUT
)
169 gcc_assert (!DEBUG_INSN_P (dest_node
->insn
) || t
== ANTI_DEP
);
170 gcc_assert (!DEBUG_INSN_P (src_node
->insn
) || t
== ANTI_DEP
);
172 /* We currently choose not to create certain anti-deps edges and
173 compensate for that by generating reg-moves based on the life-range
174 analysis. The anti-deps that will be deleted are the ones which
175 have true-deps edges in the opposite direction (in other words
176 the kernel has only one def of the relevant register). TODO:
177 support the removal of all anti-deps edges, i.e. including those
178 whose register has multiple defs in the loop. */
179 if (flag_modulo_sched_allow_regmoves
&& (t
== ANTI_DEP
&& dt
== REG_DEP
))
183 set
= single_set (dest_node
->insn
);
184 /* TODO: Handle registers that REG_P is not true for them, i.e.
185 subregs and special registers. */
186 if (set
&& REG_P (SET_DEST (set
)))
188 int regno
= REGNO (SET_DEST (set
));
190 struct df_rd_bb_info
*bb_info
= DF_RD_BB_INFO (g
->bb
);
192 first_def
= df_bb_regno_first_def_find (g
->bb
, regno
);
193 gcc_assert (first_def
);
195 if (bitmap_bit_p (bb_info
->gen
, DF_REF_ID (first_def
)))
200 latency
= dep_cost (link
);
201 e
= create_ddg_edge (src_node
, dest_node
, t
, dt
, latency
, distance
);
202 add_edge_to_ddg (g
, e
);
205 /* The same as the above function, but it doesn't require a link parameter. */
207 create_ddg_dep_no_link (ddg_ptr g
, ddg_node_ptr from
, ddg_node_ptr to
,
208 dep_type d_t
, dep_data_type d_dt
, int distance
)
212 enum reg_note dep_kind
;
213 struct _dep _dep
, *dep
= &_dep
;
215 gcc_assert (!DEBUG_INSN_P (to
->insn
) || d_t
== ANTI_DEP
);
216 gcc_assert (!DEBUG_INSN_P (from
->insn
) || d_t
== ANTI_DEP
);
219 dep_kind
= REG_DEP_ANTI
;
220 else if (d_t
== OUTPUT_DEP
)
221 dep_kind
= REG_DEP_OUTPUT
;
224 gcc_assert (d_t
== TRUE_DEP
);
226 dep_kind
= REG_DEP_TRUE
;
229 init_dep (dep
, from
->insn
, to
->insn
, dep_kind
);
233 e
= create_ddg_edge (from
, to
, d_t
, d_dt
, l
, distance
);
235 add_backarc_to_ddg (g
, e
);
237 add_edge_to_ddg (g
, e
);
241 /* Given a downwards exposed register def LAST_DEF (which is the last
242 definition of that register in the bb), add inter-loop true dependences
243 to all its uses in the next iteration, an output dependence to the
244 first def of the same register (possibly itself) in the next iteration
245 and anti-dependences from its uses in the current iteration to the
246 first definition in the next iteration. */
248 add_cross_iteration_register_deps (ddg_ptr g
, df_ref last_def
)
250 int regno
= DF_REF_REGNO (last_def
);
251 struct df_link
*r_use
;
252 int has_use_in_bb_p
= false;
253 rtx def_insn
= DF_REF_INSN (last_def
);
254 ddg_node_ptr last_def_node
= get_node_of_insn (g
, def_insn
);
255 ddg_node_ptr use_node
;
256 #ifdef ENABLE_CHECKING
257 struct df_rd_bb_info
*bb_info
= DF_RD_BB_INFO (g
->bb
);
259 df_ref first_def
= df_bb_regno_first_def_find (g
->bb
, regno
);
261 gcc_assert (last_def_node
);
262 gcc_assert (first_def
);
264 #ifdef ENABLE_CHECKING
265 if (DF_REF_ID (last_def
) != DF_REF_ID (first_def
))
266 gcc_assert (!bitmap_bit_p (bb_info
->gen
, DF_REF_ID (first_def
)));
269 /* Create inter-loop true dependences and anti dependences. */
270 for (r_use
= DF_REF_CHAIN (last_def
); r_use
!= NULL
; r_use
= r_use
->next
)
272 rtx use_insn
= DF_REF_INSN (r_use
->ref
);
274 if (BLOCK_FOR_INSN (use_insn
) != g
->bb
)
277 /* ??? Do not handle uses with DF_REF_IN_NOTE notes. */
278 use_node
= get_node_of_insn (g
, use_insn
);
279 gcc_assert (use_node
);
280 has_use_in_bb_p
= true;
281 if (use_node
->cuid
<= last_def_node
->cuid
)
283 /* Add true deps from last_def to it's uses in the next
284 iteration. Any such upwards exposed use appears before
286 create_ddg_dep_no_link (g
, last_def_node
, use_node
,
287 DEBUG_INSN_P (use_insn
) ? ANTI_DEP
: TRUE_DEP
,
290 else if (!DEBUG_INSN_P (use_insn
))
292 /* Add anti deps from last_def's uses in the current iteration
293 to the first def in the next iteration. We do not add ANTI
294 dep when there is an intra-loop TRUE dep in the opposite
295 direction, but use regmoves to fix such disregarded ANTI
296 deps when broken. If the first_def reaches the USE then
297 there is such a dep. */
298 ddg_node_ptr first_def_node
= get_node_of_insn (g
,
299 DF_REF_INSN (first_def
));
301 gcc_assert (first_def_node
);
303 if (DF_REF_ID (last_def
) != DF_REF_ID (first_def
)
304 || !flag_modulo_sched_allow_regmoves
)
305 create_ddg_dep_no_link (g
, use_node
, first_def_node
, ANTI_DEP
,
310 /* Create an inter-loop output dependence between LAST_DEF (which is the
311 last def in its block, being downwards exposed) and the first def in
312 its block. Avoid creating a self output dependence. Avoid creating
313 an output dependence if there is a dependence path between the two
314 defs starting with a true dependence to a use which can be in the
315 next iteration; followed by an anti dependence of that use to the
316 first def (i.e. if there is a use between the two defs.) */
317 if (!has_use_in_bb_p
)
319 ddg_node_ptr dest_node
;
321 if (DF_REF_ID (last_def
) == DF_REF_ID (first_def
))
324 dest_node
= get_node_of_insn (g
, DF_REF_INSN (first_def
));
325 gcc_assert (dest_node
);
326 create_ddg_dep_no_link (g
, last_def_node
, dest_node
,
327 OUTPUT_DEP
, REG_DEP
, 1);
330 /* Build inter-loop dependencies, by looking at DF analysis backwards. */
332 build_inter_loop_deps (ddg_ptr g
)
335 struct df_rd_bb_info
*rd_bb_info
;
338 rd_bb_info
= DF_RD_BB_INFO (g
->bb
);
340 /* Find inter-loop register output, true and anti deps. */
341 EXECUTE_IF_SET_IN_BITMAP (rd_bb_info
->gen
, 0, rd_num
, bi
)
343 df_ref rd
= DF_DEFS_GET (rd_num
);
345 add_cross_iteration_register_deps (g
, rd
);
350 /* Given two nodes, analyze their RTL insns and add inter-loop mem deps
353 add_inter_loop_mem_dep (ddg_ptr g
, ddg_node_ptr from
, ddg_node_ptr to
)
355 if (!insn_alias_sets_conflict_p (from
->insn
, to
->insn
))
356 /* Do not create edge if memory references have disjoint alias sets. */
359 if (mem_write_insn_p (from
->insn
))
361 if (mem_read_insn_p (to
->insn
))
362 create_ddg_dep_no_link (g
, from
, to
,
363 DEBUG_INSN_P (to
->insn
)
364 ? ANTI_DEP
: TRUE_DEP
, MEM_DEP
, 1);
365 else if (from
->cuid
!= to
->cuid
)
366 create_ddg_dep_no_link (g
, from
, to
,
367 DEBUG_INSN_P (to
->insn
)
368 ? ANTI_DEP
: OUTPUT_DEP
, MEM_DEP
, 1);
372 if (mem_read_insn_p (to
->insn
))
374 else if (from
->cuid
!= to
->cuid
)
376 create_ddg_dep_no_link (g
, from
, to
, ANTI_DEP
, MEM_DEP
, 1);
377 if (DEBUG_INSN_P (from
->insn
) || DEBUG_INSN_P (to
->insn
))
378 create_ddg_dep_no_link (g
, to
, from
, ANTI_DEP
, MEM_DEP
, 1);
380 create_ddg_dep_no_link (g
, to
, from
, TRUE_DEP
, MEM_DEP
, 1);
386 /* Perform intra-block Data Dependency analysis and connect the nodes in
387 the DDG. We assume the loop has a single basic block. */
389 build_intra_loop_deps (ddg_ptr g
)
392 /* Hold the dependency analysis state during dependency calculations. */
393 struct deps tmp_deps
;
396 /* Build the dependence information, using the sched_analyze function. */
398 init_deps (&tmp_deps
, false);
400 /* Do the intra-block data dependence analysis for the given block. */
401 get_ebb_head_tail (g
->bb
, g
->bb
, &head
, &tail
);
402 sched_analyze (&tmp_deps
, head
, tail
);
404 /* Build intra-loop data dependencies using the scheduler dependency
406 for (i
= 0; i
< g
->num_nodes
; i
++)
408 ddg_node_ptr dest_node
= &g
->nodes
[i
];
409 sd_iterator_def sd_it
;
412 if (! INSN_P (dest_node
->insn
))
415 FOR_EACH_DEP (dest_node
->insn
, SD_LIST_BACK
, sd_it
, dep
)
417 ddg_node_ptr src_node
= get_node_of_insn (g
, DEP_PRO (dep
));
422 create_ddg_dep_from_intra_loop_link (g
, src_node
, dest_node
, dep
);
425 /* If this insn modifies memory, add an edge to all insns that access
427 if (mem_access_insn_p (dest_node
->insn
))
431 for (j
= 0; j
<= i
; j
++)
433 ddg_node_ptr j_node
= &g
->nodes
[j
];
434 if (DEBUG_INSN_P (j_node
->insn
))
436 if (mem_access_insn_p (j_node
->insn
))
437 /* Don't bother calculating inter-loop dep if an intra-loop dep
439 if (! TEST_BIT (dest_node
->successors
, j
))
440 add_inter_loop_mem_dep (g
, dest_node
, j_node
);
445 /* Free the INSN_LISTs. */
446 finish_deps_global ();
447 free_deps (&tmp_deps
);
449 /* Free dependencies. */
450 sched_free_deps (head
, tail
, false);
454 /* Given a basic block, create its DDG and return a pointer to a variable
455 of ddg type that represents it.
456 Initialize the ddg structure fields to the appropriate values. */
458 create_ddg (basic_block bb
, int closing_branch_deps
)
461 rtx insn
, first_note
;
465 g
= (ddg_ptr
) xcalloc (1, sizeof (struct ddg
));
468 g
->closing_branch_deps
= closing_branch_deps
;
470 /* Count the number of insns in the BB. */
471 for (insn
= BB_HEAD (bb
); insn
!= NEXT_INSN (BB_END (bb
));
472 insn
= NEXT_INSN (insn
))
474 if (! INSN_P (insn
) || GET_CODE (PATTERN (insn
)) == USE
)
477 if (DEBUG_INSN_P (insn
))
481 if (mem_read_insn_p (insn
))
483 if (mem_write_insn_p (insn
))
489 /* There is nothing to do for this BB. */
496 /* Allocate the nodes array, and initialize the nodes. */
497 g
->num_nodes
= num_nodes
;
498 g
->nodes
= (ddg_node_ptr
) xcalloc (num_nodes
, sizeof (struct ddg_node
));
499 g
->closing_branch
= NULL
;
501 first_note
= NULL_RTX
;
502 for (insn
= BB_HEAD (bb
); insn
!= NEXT_INSN (BB_END (bb
));
503 insn
= NEXT_INSN (insn
))
507 if (! first_note
&& NOTE_P (insn
)
508 && NOTE_KIND (insn
) != NOTE_INSN_BASIC_BLOCK
)
514 gcc_assert (!g
->closing_branch
);
515 g
->closing_branch
= &g
->nodes
[i
];
517 else if (GET_CODE (PATTERN (insn
)) == USE
)
524 g
->nodes
[i
].cuid
= i
;
525 g
->nodes
[i
].successors
= sbitmap_alloc (num_nodes
);
526 sbitmap_zero (g
->nodes
[i
].successors
);
527 g
->nodes
[i
].predecessors
= sbitmap_alloc (num_nodes
);
528 sbitmap_zero (g
->nodes
[i
].predecessors
);
529 g
->nodes
[i
].first_note
= (first_note
? first_note
: insn
);
530 g
->nodes
[i
++].insn
= insn
;
531 first_note
= NULL_RTX
;
534 /* We must have found a branch in DDG. */
535 gcc_assert (g
->closing_branch
);
538 /* Build the data dependency graph. */
539 build_intra_loop_deps (g
);
540 build_inter_loop_deps (g
);
544 /* Free all the memory allocated for the DDG. */
553 for (i
= 0; i
< g
->num_nodes
; i
++)
555 ddg_edge_ptr e
= g
->nodes
[i
].out
;
559 ddg_edge_ptr next
= e
->next_out
;
564 sbitmap_free (g
->nodes
[i
].successors
);
565 sbitmap_free (g
->nodes
[i
].predecessors
);
567 if (g
->num_backarcs
> 0)
574 print_ddg_edge (FILE *file
, ddg_edge_ptr e
)
590 fprintf (file
, " [%d -(%c,%d,%d)-> %d] ", INSN_UID (e
->src
->insn
),
591 dep_c
, e
->latency
, e
->distance
, INSN_UID (e
->dest
->insn
));
594 /* Print the DDG nodes with there in/out edges to the dump file. */
596 print_ddg (FILE *file
, ddg_ptr g
)
600 for (i
= 0; i
< g
->num_nodes
; i
++)
604 fprintf (file
, "Node num: %d\n", g
->nodes
[i
].cuid
);
605 print_rtl_single (file
, g
->nodes
[i
].insn
);
606 fprintf (file
, "OUT ARCS: ");
607 for (e
= g
->nodes
[i
].out
; e
; e
= e
->next_out
)
608 print_ddg_edge (file
, e
);
610 fprintf (file
, "\nIN ARCS: ");
611 for (e
= g
->nodes
[i
].in
; e
; e
= e
->next_in
)
612 print_ddg_edge (file
, e
);
614 fprintf (file
, "\n");
618 /* Print the given DDG in VCG format. */
620 vcg_print_ddg (FILE *file
, ddg_ptr g
)
624 fprintf (file
, "graph: {\n");
625 for (src_cuid
= 0; src_cuid
< g
->num_nodes
; src_cuid
++)
628 int src_uid
= INSN_UID (g
->nodes
[src_cuid
].insn
);
630 fprintf (file
, "node: {title: \"%d_%d\" info1: \"", src_cuid
, src_uid
);
631 print_rtl_single (file
, g
->nodes
[src_cuid
].insn
);
632 fprintf (file
, "\"}\n");
633 for (e
= g
->nodes
[src_cuid
].out
; e
; e
= e
->next_out
)
635 int dst_uid
= INSN_UID (e
->dest
->insn
);
636 int dst_cuid
= e
->dest
->cuid
;
638 /* Give the backarcs a different color. */
640 fprintf (file
, "backedge: {color: red ");
642 fprintf (file
, "edge: { ");
644 fprintf (file
, "sourcename: \"%d_%d\" ", src_cuid
, src_uid
);
645 fprintf (file
, "targetname: \"%d_%d\" ", dst_cuid
, dst_uid
);
646 fprintf (file
, "label: \"%d_%d\"}\n", e
->latency
, e
->distance
);
649 fprintf (file
, "}\n");
652 /* Dump the sccs in SCCS. */
654 print_sccs (FILE *file
, ddg_all_sccs_ptr sccs
, ddg_ptr g
)
657 sbitmap_iterator sbi
;
663 fprintf (file
, "\n;; Number of SCC nodes - %d\n", sccs
->num_sccs
);
664 for (i
= 0; i
< sccs
->num_sccs
; i
++)
666 fprintf (file
, "SCC number: %d\n", i
);
667 EXECUTE_IF_SET_IN_SBITMAP (sccs
->sccs
[i
]->nodes
, 0, u
, sbi
)
669 fprintf (file
, "insn num %d\n", u
);
670 print_rtl_single (file
, g
->nodes
[u
].insn
);
673 fprintf (file
, "\n");
676 /* Create an edge and initialize it with given values. */
678 create_ddg_edge (ddg_node_ptr src
, ddg_node_ptr dest
,
679 dep_type t
, dep_data_type dt
, int l
, int d
)
681 ddg_edge_ptr e
= (ddg_edge_ptr
) xmalloc (sizeof (struct ddg_edge
));
689 e
->next_in
= e
->next_out
= NULL
;
694 /* Add the given edge to the in/out linked lists of the DDG nodes. */
696 add_edge_to_ddg (ddg_ptr g ATTRIBUTE_UNUSED
, ddg_edge_ptr e
)
698 ddg_node_ptr src
= e
->src
;
699 ddg_node_ptr dest
= e
->dest
;
701 /* Should have allocated the sbitmaps. */
702 gcc_assert (src
->successors
&& dest
->predecessors
);
704 SET_BIT (src
->successors
, dest
->cuid
);
705 SET_BIT (dest
->predecessors
, src
->cuid
);
706 e
->next_in
= dest
->in
;
708 e
->next_out
= src
->out
;
714 /* Algorithm for computing the recurrence_length of an scc. We assume at
715 for now that cycles in the data dependence graph contain a single backarc.
716 This simplifies the algorithm, and can be generalized later. */
718 set_recurrence_length (ddg_scc_ptr scc
, ddg_ptr g
)
723 for (j
= 0; j
< scc
->num_backarcs
; j
++)
725 ddg_edge_ptr backarc
= scc
->backarcs
[j
];
727 int distance
= backarc
->distance
;
728 ddg_node_ptr src
= backarc
->dest
;
729 ddg_node_ptr dest
= backarc
->src
;
731 length
= longest_simple_path (g
, src
->cuid
, dest
->cuid
, scc
->nodes
);
734 /* fprintf (stderr, "Backarc not on simple cycle in SCC.\n"); */
737 length
+= backarc
->latency
;
738 result
= MAX (result
, (length
/ distance
));
740 scc
->recurrence_length
= result
;
743 /* Create a new SCC given the set of its nodes. Compute its recurrence_length
744 and mark edges that belong to this scc as IN_SCC. */
746 create_scc (ddg_ptr g
, sbitmap nodes
)
750 sbitmap_iterator sbi
;
752 scc
= (ddg_scc_ptr
) xmalloc (sizeof (struct ddg_scc
));
753 scc
->backarcs
= NULL
;
754 scc
->num_backarcs
= 0;
755 scc
->nodes
= sbitmap_alloc (g
->num_nodes
);
756 sbitmap_copy (scc
->nodes
, nodes
);
758 /* Mark the backarcs that belong to this SCC. */
759 EXECUTE_IF_SET_IN_SBITMAP (nodes
, 0, u
, sbi
)
762 ddg_node_ptr n
= &g
->nodes
[u
];
764 for (e
= n
->out
; e
; e
= e
->next_out
)
765 if (TEST_BIT (nodes
, e
->dest
->cuid
))
767 e
->aux
.count
= IN_SCC
;
769 add_backarc_to_scc (scc
, e
);
773 set_recurrence_length (scc
, g
);
777 /* Cleans the memory allocation of a given SCC. */
779 free_scc (ddg_scc_ptr scc
)
784 sbitmap_free (scc
->nodes
);
785 if (scc
->num_backarcs
> 0)
786 free (scc
->backarcs
);
791 /* Add a given edge known to be a backarc to the given DDG. */
793 add_backarc_to_ddg (ddg_ptr g
, ddg_edge_ptr e
)
795 int size
= (g
->num_backarcs
+ 1) * sizeof (ddg_edge_ptr
);
797 add_edge_to_ddg (g
, e
);
798 g
->backarcs
= (ddg_edge_ptr
*) xrealloc (g
->backarcs
, size
);
799 g
->backarcs
[g
->num_backarcs
++] = e
;
802 /* Add backarc to an SCC. */
804 add_backarc_to_scc (ddg_scc_ptr scc
, ddg_edge_ptr e
)
806 int size
= (scc
->num_backarcs
+ 1) * sizeof (ddg_edge_ptr
);
808 scc
->backarcs
= (ddg_edge_ptr
*) xrealloc (scc
->backarcs
, size
);
809 scc
->backarcs
[scc
->num_backarcs
++] = e
;
812 /* Add the given SCC to the DDG. */
814 add_scc_to_ddg (ddg_all_sccs_ptr g
, ddg_scc_ptr scc
)
816 int size
= (g
->num_sccs
+ 1) * sizeof (ddg_scc_ptr
);
818 g
->sccs
= (ddg_scc_ptr
*) xrealloc (g
->sccs
, size
);
819 g
->sccs
[g
->num_sccs
++] = scc
;
822 /* Given the instruction INSN return the node that represents it. */
824 get_node_of_insn (ddg_ptr g
, rtx insn
)
828 for (i
= 0; i
< g
->num_nodes
; i
++)
829 if (insn
== g
->nodes
[i
].insn
)
834 /* Given a set OPS of nodes in the DDG, find the set of their successors
835 which are not in OPS, and set their bits in SUCC. Bits corresponding to
836 OPS are cleared from SUCC. Leaves the other bits in SUCC unchanged. */
838 find_successors (sbitmap succ
, ddg_ptr g
, sbitmap ops
)
841 sbitmap_iterator sbi
;
843 EXECUTE_IF_SET_IN_SBITMAP (ops
, 0, i
, sbi
)
845 const sbitmap node_succ
= NODE_SUCCESSORS (&g
->nodes
[i
]);
846 sbitmap_a_or_b (succ
, succ
, node_succ
);
849 /* We want those that are not in ops. */
850 sbitmap_difference (succ
, succ
, ops
);
853 /* Given a set OPS of nodes in the DDG, find the set of their predecessors
854 which are not in OPS, and set their bits in PREDS. Bits corresponding to
855 OPS are cleared from PREDS. Leaves the other bits in PREDS unchanged. */
857 find_predecessors (sbitmap preds
, ddg_ptr g
, sbitmap ops
)
860 sbitmap_iterator sbi
;
862 EXECUTE_IF_SET_IN_SBITMAP (ops
, 0, i
, sbi
)
864 const sbitmap node_preds
= NODE_PREDECESSORS (&g
->nodes
[i
]);
865 sbitmap_a_or_b (preds
, preds
, node_preds
);
868 /* We want those that are not in ops. */
869 sbitmap_difference (preds
, preds
, ops
);
873 /* Compare function to be passed to qsort to order the backarcs in descending
876 compare_sccs (const void *s1
, const void *s2
)
878 const int rec_l1
= (*(const ddg_scc_ptr
*)s1
)->recurrence_length
;
879 const int rec_l2
= (*(const ddg_scc_ptr
*)s2
)->recurrence_length
;
880 return ((rec_l2
> rec_l1
) - (rec_l2
< rec_l1
));
884 /* Order the backarcs in descending recMII order using compare_sccs. */
886 order_sccs (ddg_all_sccs_ptr g
)
888 qsort (g
->sccs
, g
->num_sccs
, sizeof (ddg_scc_ptr
),
889 (int (*) (const void *, const void *)) compare_sccs
);
892 #ifdef ENABLE_CHECKING
893 /* Check that every node in SCCS belongs to exactly one strongly connected
894 component and that no element of SCCS is empty. */
896 check_sccs (ddg_all_sccs_ptr sccs
, int num_nodes
)
899 sbitmap tmp
= sbitmap_alloc (num_nodes
);
902 for (i
= 0; i
< sccs
->num_sccs
; i
++)
904 gcc_assert (!sbitmap_empty_p (sccs
->sccs
[i
]->nodes
));
905 /* Verify that every node in sccs is in exactly one strongly
906 connected component. */
907 gcc_assert (!sbitmap_any_common_bits (tmp
, sccs
->sccs
[i
]->nodes
));
908 sbitmap_a_or_b (tmp
, tmp
, sccs
->sccs
[i
]->nodes
);
914 /* Perform the Strongly Connected Components decomposing algorithm on the
915 DDG and return DDG_ALL_SCCS structure that contains them. */
917 create_ddg_all_sccs (ddg_ptr g
)
920 int num_nodes
= g
->num_nodes
;
921 sbitmap from
= sbitmap_alloc (num_nodes
);
922 sbitmap to
= sbitmap_alloc (num_nodes
);
923 sbitmap scc_nodes
= sbitmap_alloc (num_nodes
);
924 ddg_all_sccs_ptr sccs
= (ddg_all_sccs_ptr
)
925 xmalloc (sizeof (struct ddg_all_sccs
));
931 for (i
= 0; i
< g
->num_backarcs
; i
++)
934 ddg_edge_ptr backarc
= g
->backarcs
[i
];
935 ddg_node_ptr src
= backarc
->src
;
936 ddg_node_ptr dest
= backarc
->dest
;
938 /* If the backarc already belongs to an SCC, continue. */
939 if (backarc
->aux
.count
== IN_SCC
)
942 sbitmap_zero (scc_nodes
);
945 SET_BIT (from
, dest
->cuid
);
946 SET_BIT (to
, src
->cuid
);
948 if (find_nodes_on_paths (scc_nodes
, g
, from
, to
))
950 scc
= create_scc (g
, scc_nodes
);
951 add_scc_to_ddg (sccs
, scc
);
957 sbitmap_free (scc_nodes
);
958 #ifdef ENABLE_CHECKING
959 check_sccs (sccs
, num_nodes
);
964 /* Frees the memory allocated for all SCCs of the DDG, but keeps the DDG. */
966 free_ddg_all_sccs (ddg_all_sccs_ptr all_sccs
)
973 for (i
= 0; i
< all_sccs
->num_sccs
; i
++)
974 free_scc (all_sccs
->sccs
[i
]);
980 /* Given FROM - a bitmap of source nodes - and TO - a bitmap of destination
981 nodes - find all nodes that lie on paths from FROM to TO (not excluding
982 nodes from FROM and TO). Return nonzero if nodes exist. */
984 find_nodes_on_paths (sbitmap result
, ddg_ptr g
, sbitmap from
, sbitmap to
)
989 int num_nodes
= g
->num_nodes
;
990 sbitmap_iterator sbi
;
992 sbitmap workset
= sbitmap_alloc (num_nodes
);
993 sbitmap reachable_from
= sbitmap_alloc (num_nodes
);
994 sbitmap reach_to
= sbitmap_alloc (num_nodes
);
995 sbitmap tmp
= sbitmap_alloc (num_nodes
);
997 sbitmap_copy (reachable_from
, from
);
998 sbitmap_copy (tmp
, from
);
1004 sbitmap_copy (workset
, tmp
);
1006 EXECUTE_IF_SET_IN_SBITMAP (workset
, 0, u
, sbi
)
1009 ddg_node_ptr u_node
= &g
->nodes
[u
];
1011 for (e
= u_node
->out
; e
!= (ddg_edge_ptr
) 0; e
= e
->next_out
)
1013 ddg_node_ptr v_node
= e
->dest
;
1014 int v
= v_node
->cuid
;
1016 if (!TEST_BIT (reachable_from
, v
))
1018 SET_BIT (reachable_from
, v
);
1026 sbitmap_copy (reach_to
, to
);
1027 sbitmap_copy (tmp
, to
);
1033 sbitmap_copy (workset
, tmp
);
1035 EXECUTE_IF_SET_IN_SBITMAP (workset
, 0, u
, sbi
)
1038 ddg_node_ptr u_node
= &g
->nodes
[u
];
1040 for (e
= u_node
->in
; e
!= (ddg_edge_ptr
) 0; e
= e
->next_in
)
1042 ddg_node_ptr v_node
= e
->src
;
1043 int v
= v_node
->cuid
;
1045 if (!TEST_BIT (reach_to
, v
))
1047 SET_BIT (reach_to
, v
);
1055 answer
= sbitmap_a_and_b_cg (result
, reachable_from
, reach_to
);
1056 sbitmap_free (workset
);
1057 sbitmap_free (reachable_from
);
1058 sbitmap_free (reach_to
);
1064 /* Updates the counts of U_NODE's successors (that belong to NODES) to be
1065 at-least as large as the count of U_NODE plus the latency between them.
1066 Sets a bit in TMP for each successor whose count was changed (increased).
1067 Returns nonzero if any count was changed. */
1069 update_dist_to_successors (ddg_node_ptr u_node
, sbitmap nodes
, sbitmap tmp
)
1074 for (e
= u_node
->out
; e
; e
= e
->next_out
)
1076 ddg_node_ptr v_node
= e
->dest
;
1077 int v
= v_node
->cuid
;
1079 if (TEST_BIT (nodes
, v
)
1080 && (e
->distance
== 0)
1081 && (v_node
->aux
.count
< u_node
->aux
.count
+ e
->latency
))
1083 v_node
->aux
.count
= u_node
->aux
.count
+ e
->latency
;
1092 /* Find the length of a longest path from SRC to DEST in G,
1093 going only through NODES, and disregarding backarcs. */
1095 longest_simple_path (struct ddg
* g
, int src
, int dest
, sbitmap nodes
)
1101 int num_nodes
= g
->num_nodes
;
1102 sbitmap workset
= sbitmap_alloc (num_nodes
);
1103 sbitmap tmp
= sbitmap_alloc (num_nodes
);
1106 /* Data will hold the distance of the longest path found so far from
1107 src to each node. Initialize to -1 = less than minimum. */
1108 for (i
= 0; i
< g
->num_nodes
; i
++)
1109 g
->nodes
[i
].aux
.count
= -1;
1110 g
->nodes
[src
].aux
.count
= 0;
1117 sbitmap_iterator sbi
;
1120 sbitmap_copy (workset
, tmp
);
1122 EXECUTE_IF_SET_IN_SBITMAP (workset
, 0, u
, sbi
)
1124 ddg_node_ptr u_node
= &g
->nodes
[u
];
1126 change
|= update_dist_to_successors (u_node
, nodes
, tmp
);
1129 result
= g
->nodes
[dest
].aux
.count
;
1130 sbitmap_free (workset
);
1135 #endif /* INSN_SCHEDULING */