1 /* Interprocedural constant propagation
2 Copyright (C) 2005, 2006, 2007, 2008, 2009, 2010
3 Free Software Foundation, Inc.
4 Contributed by Razya Ladelsky <RAZYA@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/>. */
22 /* Interprocedural constant propagation. The aim of interprocedural constant
23 propagation (IPCP) is to find which function's argument has the same
24 constant value in each invocation throughout the whole program. For example,
25 consider the following program:
29 printf ("value is %d",y);
49 The IPCP algorithm will find that g's formal argument y is always called
52 The algorithm used is based on "Interprocedural Constant Propagation", by
53 Challahan David, Keith D Cooper, Ken Kennedy, Linda Torczon, Comp86, pg
56 The optimization is divided into three stages:
58 First stage - intraprocedural analysis
59 =======================================
60 This phase computes jump_function and modification flags.
62 A jump function for a callsite represents the values passed as an actual
63 arguments of a given callsite. There are three types of values:
64 Pass through - the caller's formal parameter is passed as an actual argument.
65 Constant - a constant is passed as an actual argument.
66 Unknown - neither of the above.
68 The jump function info, ipa_jump_func, is stored in ipa_edge_args
69 structure (defined in ipa_prop.h and pointed to by cgraph_node->aux)
70 modified_flags are defined in ipa_node_params structure
71 (defined in ipa_prop.h and pointed to by cgraph_edge->aux).
73 -ipcp_generate_summary() is the first stage driver.
75 Second stage - interprocedural analysis
76 ========================================
77 This phase does the interprocedural constant propagation.
78 It computes lattices for all formal parameters in the program
79 and their value that may be:
81 BOTTOM - non constant.
82 CONSTANT - constant value.
84 Lattice describing a formal parameter p will have a constant value if all
85 callsites invoking this function have the same constant value passed to p.
87 The lattices are stored in ipcp_lattice which is itself in ipa_node_params
88 structure (defined in ipa_prop.h and pointed to by cgraph_edge->aux).
90 -ipcp_iterate_stage() is the second stage driver.
92 Third phase - transformation of function code
93 ============================================
94 Propagates the constant-valued formals into the function.
95 For each function whose parameters are constants, we create its clone.
97 Then we process the clone in two ways:
98 1. We insert an assignment statement 'parameter = const' at the beginning
99 of the cloned function.
100 2. For read-only parameters that do not live in memory, we replace all their
101 uses with the constant.
103 We also need to modify some callsites to call the cloned functions instead
104 of the original ones. For a callsite passing an argument found to be a
105 constant by IPCP, there are two different cases to handle:
106 1. A constant is passed as an argument. In this case the callsite in the
107 should be redirected to call the cloned callee.
108 2. A parameter (of the caller) passed as an argument (pass through
109 argument). In such cases both the caller and the callee have clones and
110 only the callsite in the cloned caller is redirected to call to the
113 This update is done in two steps: First all cloned functions are created
114 during a traversal of the call graph, during which all callsites are
115 redirected to call the cloned function. Then the callsites are traversed
116 and many calls redirected back to fit the description above.
118 -ipcp_insert_stage() is the third phase driver.
121 This pass also performs devirtualization - turns virtual calls into direct
122 ones if it can prove that all invocations of the function call the same
123 callee. This is achieved by building a list of all base types (actually,
124 their BINFOs) that individual parameters can have in an iterative matter
125 just like propagating scalar constants and then examining whether virtual
126 calls which take a parameter as their object fold to the same target for all
127 these types. If we cannot enumerate all types or there is a type which does
128 not have any BINFO associated with it, cannot_devirtualize of the associated
129 parameter descriptor is set which is an equivalent of BOTTOM lattice value
130 in standard IPA constant propagation.
135 #include "coretypes.h"
140 #include "ipa-prop.h"
141 #include "tree-flow.h"
142 #include "tree-pass.h"
145 #include "diagnostic.h"
146 #include "tree-pretty-print.h"
147 #include "tree-dump.h"
148 #include "tree-inline.h"
152 /* Number of functions identified as candidates for cloning. When not cloning
153 we can simplify iterate stage not forcing it to go through the decision
154 on what is profitable and what not. */
155 static int n_cloning_candidates
;
157 /* Maximal count found in program. */
158 static gcov_type max_count
;
160 /* Cgraph nodes that has been completely replaced by cloning during iterate
161 * stage and will be removed after ipcp is finished. */
162 static bitmap dead_nodes
;
164 static void ipcp_print_profile_data (FILE *);
165 static void ipcp_function_scale_print (FILE *);
167 /* Get the original node field of ipa_node_params associated with node NODE. */
168 static inline struct cgraph_node
*
169 ipcp_get_orig_node (struct cgraph_node
*node
)
171 return IPA_NODE_REF (node
)->ipcp_orig_node
;
174 /* Return true if NODE describes a cloned/versioned function. */
176 ipcp_node_is_clone (struct cgraph_node
*node
)
178 return (ipcp_get_orig_node (node
) != NULL
);
181 /* Create ipa_node_params and its data structures for NEW_NODE. Set ORIG_NODE
182 as the ipcp_orig_node field in ipa_node_params. */
184 ipcp_init_cloned_node (struct cgraph_node
*orig_node
,
185 struct cgraph_node
*new_node
)
187 gcc_checking_assert (ipa_node_params_vector
188 && (VEC_length (ipa_node_params_t
,
189 ipa_node_params_vector
)
190 > (unsigned) cgraph_max_uid
));
191 gcc_checking_assert (IPA_NODE_REF (new_node
)->params
);
192 IPA_NODE_REF (new_node
)->ipcp_orig_node
= orig_node
;
195 /* Return scale for NODE. */
196 static inline gcov_type
197 ipcp_get_node_scale (struct cgraph_node
*node
)
199 return IPA_NODE_REF (node
)->count_scale
;
202 /* Set COUNT as scale for NODE. */
204 ipcp_set_node_scale (struct cgraph_node
*node
, gcov_type count
)
206 IPA_NODE_REF (node
)->count_scale
= count
;
209 /* Return whether LAT is a constant lattice. */
211 ipcp_lat_is_const (struct ipcp_lattice
*lat
)
213 if (lat
->type
== IPA_CONST_VALUE
)
219 /* Return whether LAT is a constant lattice that ipa-cp can actually insert
220 into the code (i.e. constants excluding member pointers and pointers). */
222 ipcp_lat_is_insertable (struct ipcp_lattice
*lat
)
224 return lat
->type
== IPA_CONST_VALUE
;
227 /* Return true if LAT1 and LAT2 are equal. */
229 ipcp_lats_are_equal (struct ipcp_lattice
*lat1
, struct ipcp_lattice
*lat2
)
231 gcc_assert (ipcp_lat_is_const (lat1
) && ipcp_lat_is_const (lat2
));
232 if (lat1
->type
!= lat2
->type
)
235 if (TREE_CODE (lat1
->constant
) == ADDR_EXPR
236 && TREE_CODE (lat2
->constant
) == ADDR_EXPR
237 && TREE_CODE (TREE_OPERAND (lat1
->constant
, 0)) == CONST_DECL
238 && TREE_CODE (TREE_OPERAND (lat2
->constant
, 0)) == CONST_DECL
)
239 return operand_equal_p (DECL_INITIAL (TREE_OPERAND (lat1
->constant
, 0)),
240 DECL_INITIAL (TREE_OPERAND (lat2
->constant
, 0)), 0);
242 return operand_equal_p (lat1
->constant
, lat2
->constant
, 0);
245 /* Compute Meet arithmetics:
246 Meet (IPA_BOTTOM, x) = IPA_BOTTOM
248 Meet (const_a,const_b) = IPA_BOTTOM, if const_a != const_b.
249 MEET (const_a,const_b) = const_a, if const_a == const_b.*/
251 ipa_lattice_meet (struct ipcp_lattice
*res
, struct ipcp_lattice
*lat1
,
252 struct ipcp_lattice
*lat2
)
254 if (lat1
->type
== IPA_BOTTOM
|| lat2
->type
== IPA_BOTTOM
)
256 res
->type
= IPA_BOTTOM
;
259 if (lat1
->type
== IPA_TOP
)
261 res
->type
= lat2
->type
;
262 res
->constant
= lat2
->constant
;
265 if (lat2
->type
== IPA_TOP
)
267 res
->type
= lat1
->type
;
268 res
->constant
= lat1
->constant
;
271 if (!ipcp_lats_are_equal (lat1
, lat2
))
273 res
->type
= IPA_BOTTOM
;
276 res
->type
= lat1
->type
;
277 res
->constant
= lat1
->constant
;
280 /* Return the lattice corresponding to the Ith formal parameter of the function
281 described by INFO. */
282 static inline struct ipcp_lattice
*
283 ipcp_get_lattice (struct ipa_node_params
*info
, int i
)
285 return &(info
->params
[i
].ipcp_lattice
);
288 /* Given the jump function JFUNC, compute the lattice LAT that describes the
289 value coming down the callsite. INFO describes the caller node so that
290 pass-through jump functions can be evaluated. */
292 ipcp_lattice_from_jfunc (struct ipa_node_params
*info
, struct ipcp_lattice
*lat
,
293 struct ipa_jump_func
*jfunc
)
295 if (jfunc
->type
== IPA_JF_CONST
)
297 lat
->type
= IPA_CONST_VALUE
;
298 lat
->constant
= jfunc
->value
.constant
;
300 else if (jfunc
->type
== IPA_JF_PASS_THROUGH
)
302 struct ipcp_lattice
*caller_lat
;
305 caller_lat
= ipcp_get_lattice (info
, jfunc
->value
.pass_through
.formal_id
);
306 lat
->type
= caller_lat
->type
;
307 if (caller_lat
->type
!= IPA_CONST_VALUE
)
309 cst
= caller_lat
->constant
;
311 if (jfunc
->value
.pass_through
.operation
!= NOP_EXPR
)
314 if (TREE_CODE_CLASS (jfunc
->value
.pass_through
.operation
)
316 restype
= boolean_type_node
;
318 restype
= TREE_TYPE (cst
);
319 cst
= fold_binary (jfunc
->value
.pass_through
.operation
,
320 restype
, cst
, jfunc
->value
.pass_through
.operand
);
322 if (!cst
|| !is_gimple_ip_invariant (cst
))
323 lat
->type
= IPA_BOTTOM
;
326 else if (jfunc
->type
== IPA_JF_ANCESTOR
)
328 struct ipcp_lattice
*caller_lat
;
332 caller_lat
= ipcp_get_lattice (info
, jfunc
->value
.ancestor
.formal_id
);
333 lat
->type
= caller_lat
->type
;
334 if (caller_lat
->type
!= IPA_CONST_VALUE
)
336 if (TREE_CODE (caller_lat
->constant
) != ADDR_EXPR
)
338 /* This can happen when the constant is a NULL pointer. */
339 lat
->type
= IPA_BOTTOM
;
342 t
= TREE_OPERAND (caller_lat
->constant
, 0);
343 ok
= build_ref_for_offset (&t
, TREE_TYPE (t
),
344 jfunc
->value
.ancestor
.offset
,
345 jfunc
->value
.ancestor
.type
, false);
348 lat
->type
= IPA_BOTTOM
;
349 lat
->constant
= NULL_TREE
;
352 lat
->constant
= build_fold_addr_expr (t
);
355 lat
->type
= IPA_BOTTOM
;
358 /* True when OLD_LAT and NEW_LAT values are not the same. */
361 ipcp_lattice_changed (struct ipcp_lattice
*old_lat
,
362 struct ipcp_lattice
*new_lat
)
364 if (old_lat
->type
== new_lat
->type
)
366 if (!ipcp_lat_is_const (old_lat
))
368 if (ipcp_lats_are_equal (old_lat
, new_lat
))
374 /* Print all ipcp_lattices of all functions to F. */
376 ipcp_print_all_lattices (FILE * f
)
378 struct cgraph_node
*node
;
381 fprintf (f
, "\nLattice:\n");
382 for (node
= cgraph_nodes
; node
; node
= node
->next
)
384 struct ipa_node_params
*info
;
388 info
= IPA_NODE_REF (node
);
389 fprintf (f
, " Node: %s:\n", cgraph_node_name (node
));
390 count
= ipa_get_param_count (info
);
391 for (i
= 0; i
< count
; i
++)
393 struct ipcp_lattice
*lat
= ipcp_get_lattice (info
, i
);
395 fprintf (f
, " param [%d]: ", i
);
396 if (lat
->type
== IPA_CONST_VALUE
)
398 tree cst
= lat
->constant
;
399 fprintf (f
, "type is CONST ");
400 print_generic_expr (f
, cst
, 0);
401 if (TREE_CODE (cst
) == ADDR_EXPR
402 && TREE_CODE (TREE_OPERAND (cst
, 0)) == CONST_DECL
)
405 print_generic_expr (f
, DECL_INITIAL (TREE_OPERAND (cst
, 0)),
409 else if (lat
->type
== IPA_TOP
)
410 fprintf (f
, "type is TOP");
412 fprintf (f
, "type is BOTTOM");
413 if (ipa_param_cannot_devirtualize_p (info
, i
))
414 fprintf (f
, " - cannot_devirtualize set\n");
415 else if (ipa_param_types_vec_empty (info
, i
))
416 fprintf (f
, " - type list empty\n");
423 /* Return true if ipcp algorithms would allow cloning NODE. */
426 ipcp_versionable_function_p (struct cgraph_node
*node
)
428 struct cgraph_edge
*edge
;
430 /* There are a number of generic reasons functions cannot be versioned. */
431 if (!node
->local
.versionable
)
434 /* Removing arguments doesn't work if the function takes varargs
435 or use __builtin_apply_args. */
436 for (edge
= node
->callees
; edge
; edge
= edge
->next_callee
)
438 tree t
= edge
->callee
->decl
;
439 if (DECL_BUILT_IN_CLASS (t
) == BUILT_IN_NORMAL
440 && (DECL_FUNCTION_CODE (t
) == BUILT_IN_APPLY_ARGS
441 || DECL_FUNCTION_CODE (t
) == BUILT_IN_VA_START
))
448 /* Return true if this NODE is viable candidate for cloning. */
450 ipcp_cloning_candidate_p (struct cgraph_node
*node
)
454 gcov_type direct_call_sum
= 0;
455 struct cgraph_edge
*e
;
457 /* We never clone functions that are not visible from outside.
458 FIXME: in future we should clone such functions when they are called with
459 different constants, but current ipcp implementation is not good on this.
461 if (cgraph_only_called_directly_p (node
) || !node
->analyzed
)
464 if (cgraph_function_body_availability (node
) <= AVAIL_OVERWRITABLE
)
467 fprintf (dump_file
, "Not considering %s for cloning; body is overwrittable.\n",
468 cgraph_node_name (node
));
471 if (!ipcp_versionable_function_p (node
))
474 fprintf (dump_file
, "Not considering %s for cloning; body is not versionable.\n",
475 cgraph_node_name (node
));
478 for (e
= node
->callers
; e
; e
= e
->next_caller
)
480 direct_call_sum
+= e
->count
;
482 if (cgraph_maybe_hot_edge_p (e
))
489 fprintf (dump_file
, "Not considering %s for cloning; no direct calls.\n",
490 cgraph_node_name (node
));
493 if (node
->local
.inline_summary
.self_size
< n_calls
)
496 fprintf (dump_file
, "Considering %s for cloning; code would shrink.\n",
497 cgraph_node_name (node
));
501 if (!flag_ipa_cp_clone
)
504 fprintf (dump_file
, "Not considering %s for cloning; -fipa-cp-clone disabled.\n",
505 cgraph_node_name (node
));
509 if (!optimize_function_for_speed_p (DECL_STRUCT_FUNCTION (node
->decl
)))
512 fprintf (dump_file
, "Not considering %s for cloning; optimizing it for size.\n",
513 cgraph_node_name (node
));
517 /* When profile is available and function is hot, propagate into it even if
518 calls seems cold; constant propagation can improve function's speed
522 if (direct_call_sum
> node
->count
* 90 / 100)
525 fprintf (dump_file
, "Considering %s for cloning; usually called directly.\n",
526 cgraph_node_name (node
));
533 fprintf (dump_file
, "Not considering %s for cloning; no hot calls.\n",
534 cgraph_node_name (node
));
538 fprintf (dump_file
, "Considering %s for cloning.\n",
539 cgraph_node_name (node
));
543 /* Mark parameter with index I of function described by INFO as unsuitable for
544 devirtualization. Return true if it has already been marked so. */
547 ipa_set_param_cannot_devirtualize (struct ipa_node_params
*info
, int i
)
549 bool ret
= info
->params
[i
].cannot_devirtualize
;
550 info
->params
[i
].cannot_devirtualize
= true;
551 if (info
->params
[i
].types
)
552 VEC_free (tree
, heap
, info
->params
[i
].types
);
556 /* Initialize ipcp_lattices array. The lattices corresponding to supported
557 types (integers, real types and Fortran constants defined as const_decls)
558 are initialized to IPA_TOP, the rest of them to IPA_BOTTOM. */
560 ipcp_initialize_node_lattices (struct cgraph_node
*node
)
563 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
564 enum ipa_lattice_type type
;
566 if (ipa_is_called_with_var_arguments (info
))
568 else if (cgraph_only_called_directly_p (node
))
570 /* When cloning is allowed, we can assume that externally visible functions
571 are not called. We will compensate this by cloning later. */
572 else if (ipcp_cloning_candidate_p (node
))
573 type
= IPA_TOP
, n_cloning_candidates
++;
577 for (i
= 0; i
< ipa_get_param_count (info
) ; i
++)
579 ipcp_get_lattice (info
, i
)->type
= type
;
580 if (type
== IPA_BOTTOM
)
581 ipa_set_param_cannot_devirtualize (info
, i
);
585 /* build INTEGER_CST tree with type TREE_TYPE and value according to LAT.
588 build_const_val (struct ipcp_lattice
*lat
, tree tree_type
)
592 gcc_assert (ipcp_lat_is_const (lat
));
595 if (!useless_type_conversion_p (tree_type
, TREE_TYPE (val
)))
597 if (fold_convertible_p (tree_type
, val
))
598 return fold_build1 (NOP_EXPR
, tree_type
, val
);
600 return fold_build1 (VIEW_CONVERT_EXPR
, tree_type
, val
);
605 /* Compute the proper scale for NODE. It is the ratio between the number of
606 direct calls (represented on the incoming cgraph_edges) and sum of all
607 invocations of NODE (represented as count in cgraph_node).
609 FIXME: This code is wrong. Since the callers can be also clones and
610 the clones are not scaled yet, the sums gets unrealistically high.
611 To properly compute the counts, we would need to do propagation across
612 callgraph (as external call to A might imply call to non-clonned B
613 if A's clone calls clonned B). */
615 ipcp_compute_node_scale (struct cgraph_node
*node
)
618 struct cgraph_edge
*cs
;
621 /* Compute sum of all counts of callers. */
622 for (cs
= node
->callers
; cs
!= NULL
; cs
= cs
->next_caller
)
624 /* Work around the unrealistically high sum problem. We just don't want
625 the non-cloned body to have negative or very low frequency. Since
626 majority of execution time will be spent in clones anyway, this should
627 give good enough profile. */
628 if (sum
> node
->count
* 9 / 10)
629 sum
= node
->count
* 9 / 10;
630 if (node
->count
== 0)
631 ipcp_set_node_scale (node
, 0);
633 ipcp_set_node_scale (node
, sum
* REG_BR_PROB_BASE
/ node
->count
);
636 /* Return true if there are some formal parameters whose value is IPA_TOP (in
637 the whole compilation unit). Change their values to IPA_BOTTOM, since they
638 most probably get their values from outside of this compilation unit. */
640 ipcp_change_tops_to_bottom (void)
643 struct cgraph_node
*node
;
647 for (node
= cgraph_nodes
; node
; node
= node
->next
)
649 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
650 count
= ipa_get_param_count (info
);
651 for (i
= 0; i
< count
; i
++)
653 struct ipcp_lattice
*lat
= ipcp_get_lattice (info
, i
);
654 if (lat
->type
== IPA_TOP
)
659 fprintf (dump_file
, "Forcing param ");
660 print_generic_expr (dump_file
, ipa_get_param (info
, i
), 0);
661 fprintf (dump_file
, " of node %s to bottom.\n",
662 cgraph_node_name (node
));
664 lat
->type
= IPA_BOTTOM
;
666 if (!ipa_param_cannot_devirtualize_p (info
, i
)
667 && ipa_param_types_vec_empty (info
, i
))
670 ipa_set_param_cannot_devirtualize (info
, i
);
673 fprintf (dump_file
, "Marking param ");
674 print_generic_expr (dump_file
, ipa_get_param (info
, i
), 0);
675 fprintf (dump_file
, " of node %s as unusable for "
676 "devirtualization.\n",
677 cgraph_node_name (node
));
685 /* Insert BINFO to the list of known types of parameter number I of the
686 function described by CALLEE_INFO. Return true iff the type information
687 associated with the callee parameter changed in any way. */
690 ipcp_add_param_type (struct ipa_node_params
*callee_info
, int i
, tree binfo
)
694 if (ipa_param_cannot_devirtualize_p (callee_info
, i
))
697 if (callee_info
->params
[i
].types
)
699 count
= VEC_length (tree
, callee_info
->params
[i
].types
);
700 for (j
= 0; j
< count
; j
++)
701 if (VEC_index (tree
, callee_info
->params
[i
].types
, j
) == binfo
)
705 if (VEC_length (tree
, callee_info
->params
[i
].types
)
706 == (unsigned) PARAM_VALUE (PARAM_DEVIRT_TYPE_LIST_SIZE
))
707 return !ipa_set_param_cannot_devirtualize (callee_info
, i
);
709 VEC_safe_push (tree
, heap
, callee_info
->params
[i
].types
, binfo
);
713 /* Copy known types information for parameter number CALLEE_IDX of CALLEE_INFO
714 from a parameter of CALLER_INFO as described by JF. Return true iff the
715 type information changed in any way. JF must be a pass-through or an
716 ancestor jump function. */
719 ipcp_copy_types (struct ipa_node_params
*caller_info
,
720 struct ipa_node_params
*callee_info
,
721 int callee_idx
, struct ipa_jump_func
*jf
)
723 int caller_idx
, j
, count
;
726 if (ipa_param_cannot_devirtualize_p (callee_info
, callee_idx
))
729 if (jf
->type
== IPA_JF_PASS_THROUGH
)
731 if (jf
->value
.pass_through
.operation
!= NOP_EXPR
)
733 ipa_set_param_cannot_devirtualize (callee_info
, callee_idx
);
736 caller_idx
= jf
->value
.pass_through
.formal_id
;
739 caller_idx
= jf
->value
.ancestor
.formal_id
;
741 if (ipa_param_cannot_devirtualize_p (caller_info
, caller_idx
))
743 ipa_set_param_cannot_devirtualize (callee_info
, callee_idx
);
747 if (!caller_info
->params
[caller_idx
].types
)
751 count
= VEC_length (tree
, caller_info
->params
[caller_idx
].types
);
752 for (j
= 0; j
< count
; j
++)
754 tree binfo
= VEC_index (tree
, caller_info
->params
[caller_idx
].types
, j
);
755 if (jf
->type
== IPA_JF_ANCESTOR
)
757 binfo
= get_binfo_at_offset (binfo
, jf
->value
.ancestor
.offset
,
758 jf
->value
.ancestor
.type
);
761 ipa_set_param_cannot_devirtualize (callee_info
, callee_idx
);
765 res
|= ipcp_add_param_type (callee_info
, callee_idx
, binfo
);
770 /* Propagate type information for parameter of CALLEE_INFO number I as
771 described by JF. CALLER_INFO describes the caller. Return true iff the
772 type information changed in any way. */
775 ipcp_propagate_types (struct ipa_node_params
*caller_info
,
776 struct ipa_node_params
*callee_info
,
777 struct ipa_jump_func
*jf
, int i
)
784 case IPA_JF_CONST_MEMBER_PTR
:
787 case IPA_JF_KNOWN_TYPE
:
788 return ipcp_add_param_type (callee_info
, i
, jf
->value
.base_binfo
);
791 cst
= jf
->value
.constant
;
792 if (TREE_CODE (cst
) != ADDR_EXPR
)
794 binfo
= gimple_get_relevant_ref_binfo (TREE_OPERAND (cst
, 0), NULL_TREE
);
797 return ipcp_add_param_type (callee_info
, i
, binfo
);
799 case IPA_JF_PASS_THROUGH
:
800 case IPA_JF_ANCESTOR
:
801 return ipcp_copy_types (caller_info
, callee_info
, i
, jf
);
804 /* If we reach this we cannot use this parameter for devirtualization. */
805 return !ipa_set_param_cannot_devirtualize (callee_info
, i
);
808 /* Interprocedural analysis. The algorithm propagates constants from the
809 caller's parameters to the callee's arguments. */
811 ipcp_propagate_stage (void)
814 struct ipcp_lattice inc_lat
= { IPA_BOTTOM
, NULL
};
815 struct ipcp_lattice new_lat
= { IPA_BOTTOM
, NULL
};
816 struct ipcp_lattice
*dest_lat
;
817 struct cgraph_edge
*cs
;
818 struct ipa_jump_func
*jump_func
;
819 struct ipa_func_list
*wl
;
822 ipa_check_create_node_params ();
823 ipa_check_create_edge_args ();
825 /* Initialize worklist to contain all functions. */
826 wl
= ipa_init_func_list ();
829 struct cgraph_node
*node
= ipa_pop_func_from_list (&wl
);
830 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
832 for (cs
= node
->callees
; cs
; cs
= cs
->next_callee
)
834 struct ipa_node_params
*callee_info
= IPA_NODE_REF (cs
->callee
);
835 struct ipa_edge_args
*args
= IPA_EDGE_REF (cs
);
837 if (ipa_is_called_with_var_arguments (callee_info
)
838 || !cs
->callee
->analyzed
839 || ipa_is_called_with_var_arguments (callee_info
))
842 count
= ipa_get_cs_argument_count (args
);
843 for (i
= 0; i
< count
; i
++)
845 jump_func
= ipa_get_ith_jump_func (args
, i
);
846 ipcp_lattice_from_jfunc (info
, &inc_lat
, jump_func
);
847 dest_lat
= ipcp_get_lattice (callee_info
, i
);
848 ipa_lattice_meet (&new_lat
, &inc_lat
, dest_lat
);
849 if (ipcp_lattice_changed (&new_lat
, dest_lat
))
851 dest_lat
->type
= new_lat
.type
;
852 dest_lat
->constant
= new_lat
.constant
;
853 ipa_push_func_to_list (&wl
, cs
->callee
);
856 if (ipcp_propagate_types (info
, callee_info
, jump_func
, i
))
857 ipa_push_func_to_list (&wl
, cs
->callee
);
863 /* Call the constant propagation algorithm and re-call it if necessary
864 (if there are undetermined values left). */
866 ipcp_iterate_stage (void)
868 struct cgraph_node
*node
;
869 n_cloning_candidates
= 0;
872 fprintf (dump_file
, "\nIPA iterate stage:\n\n");
875 ipa_update_after_lto_read ();
877 for (node
= cgraph_nodes
; node
; node
= node
->next
)
879 ipcp_initialize_node_lattices (node
);
880 ipcp_compute_node_scale (node
);
882 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
884 ipcp_print_all_lattices (dump_file
);
885 ipcp_function_scale_print (dump_file
);
888 ipcp_propagate_stage ();
889 if (ipcp_change_tops_to_bottom ())
890 /* Some lattices have changed from IPA_TOP to IPA_BOTTOM.
891 This change should be propagated. */
893 gcc_assert (n_cloning_candidates
);
894 ipcp_propagate_stage ();
898 fprintf (dump_file
, "\nIPA lattices after propagation:\n");
899 ipcp_print_all_lattices (dump_file
);
900 if (dump_flags
& TDF_DETAILS
)
901 ipcp_print_profile_data (dump_file
);
905 /* Check conditions to forbid constant insertion to function described by
908 ipcp_node_modifiable_p (struct cgraph_node
*node
)
910 /* Once we will be able to do in-place replacement, we can be more
912 return ipcp_versionable_function_p (node
);
915 /* Print count scale data structures. */
917 ipcp_function_scale_print (FILE * f
)
919 struct cgraph_node
*node
;
921 for (node
= cgraph_nodes
; node
; node
= node
->next
)
925 fprintf (f
, "printing scale for %s: ", cgraph_node_name (node
));
926 fprintf (f
, "value is " HOST_WIDE_INT_PRINT_DEC
927 " \n", (HOST_WIDE_INT
) ipcp_get_node_scale (node
));
931 /* Print counts of all cgraph nodes. */
933 ipcp_print_func_profile_counts (FILE * f
)
935 struct cgraph_node
*node
;
937 for (node
= cgraph_nodes
; node
; node
= node
->next
)
939 fprintf (f
, "function %s: ", cgraph_node_name (node
));
940 fprintf (f
, "count is " HOST_WIDE_INT_PRINT_DEC
941 " \n", (HOST_WIDE_INT
) node
->count
);
945 /* Print counts of all cgraph edges. */
947 ipcp_print_call_profile_counts (FILE * f
)
949 struct cgraph_node
*node
;
950 struct cgraph_edge
*cs
;
952 for (node
= cgraph_nodes
; node
; node
= node
->next
)
954 for (cs
= node
->callees
; cs
; cs
= cs
->next_callee
)
956 fprintf (f
, "%s -> %s ", cgraph_node_name (cs
->caller
),
957 cgraph_node_name (cs
->callee
));
958 fprintf (f
, "count is " HOST_WIDE_INT_PRINT_DEC
" \n",
959 (HOST_WIDE_INT
) cs
->count
);
964 /* Print profile info for all functions. */
966 ipcp_print_profile_data (FILE * f
)
968 fprintf (f
, "\nNODE COUNTS :\n");
969 ipcp_print_func_profile_counts (f
);
970 fprintf (f
, "\nCS COUNTS stage:\n");
971 ipcp_print_call_profile_counts (f
);
974 /* Build and initialize ipa_replace_map struct according to LAT. This struct is
975 processed by versioning, which operates according to the flags set.
976 PARM_TREE is the formal parameter found to be constant. LAT represents the
978 static struct ipa_replace_map
*
979 ipcp_create_replace_map (tree parm_tree
, struct ipcp_lattice
*lat
)
981 struct ipa_replace_map
*replace_map
;
984 replace_map
= ggc_alloc_ipa_replace_map ();
985 const_val
= build_const_val (lat
, TREE_TYPE (parm_tree
));
988 fprintf (dump_file
, " replacing param ");
989 print_generic_expr (dump_file
, parm_tree
, 0);
990 fprintf (dump_file
, " with const ");
991 print_generic_expr (dump_file
, const_val
, 0);
992 fprintf (dump_file
, "\n");
994 replace_map
->old_tree
= parm_tree
;
995 replace_map
->new_tree
= const_val
;
996 replace_map
->replace_p
= true;
997 replace_map
->ref_p
= false;
1002 /* Return true if this callsite should be redirected to the original callee
1003 (instead of the cloned one). */
1005 ipcp_need_redirect_p (struct cgraph_edge
*cs
)
1007 struct ipa_node_params
*orig_callee_info
;
1009 struct cgraph_node
*node
= cs
->callee
, *orig
;
1011 if (!n_cloning_candidates
)
1014 if ((orig
= ipcp_get_orig_node (node
)) != NULL
)
1016 if (ipcp_get_orig_node (cs
->caller
))
1019 orig_callee_info
= IPA_NODE_REF (node
);
1020 count
= ipa_get_param_count (orig_callee_info
);
1021 for (i
= 0; i
< count
; i
++)
1023 struct ipcp_lattice
*lat
= ipcp_get_lattice (orig_callee_info
, i
);
1024 struct ipa_jump_func
*jump_func
;
1026 jump_func
= ipa_get_ith_jump_func (IPA_EDGE_REF (cs
), i
);
1027 if ((ipcp_lat_is_const (lat
)
1028 && jump_func
->type
!= IPA_JF_CONST
)
1029 || (!ipa_param_cannot_devirtualize_p (orig_callee_info
, i
)
1030 && !ipa_param_types_vec_empty (orig_callee_info
, i
)
1031 && jump_func
->type
!= IPA_JF_CONST
1032 && jump_func
->type
!= IPA_JF_KNOWN_TYPE
))
1039 /* Fix the callsites and the call graph after function cloning was done. */
1041 ipcp_update_callgraph (void)
1043 struct cgraph_node
*node
;
1045 for (node
= cgraph_nodes
; node
; node
= node
->next
)
1046 if (node
->analyzed
&& ipcp_node_is_clone (node
))
1048 bitmap args_to_skip
= BITMAP_ALLOC (NULL
);
1049 struct cgraph_node
*orig_node
= ipcp_get_orig_node (node
);
1050 struct ipa_node_params
*info
= IPA_NODE_REF (orig_node
);
1051 int i
, count
= ipa_get_param_count (info
);
1052 struct cgraph_edge
*cs
, *next
;
1054 for (i
= 0; i
< count
; i
++)
1056 struct ipcp_lattice
*lat
= ipcp_get_lattice (info
, i
);
1058 /* We can proactively remove obviously unused arguments. */
1059 if (!ipa_is_param_used (info
, i
))
1061 bitmap_set_bit (args_to_skip
, i
);
1065 if (lat
->type
== IPA_CONST_VALUE
)
1066 bitmap_set_bit (args_to_skip
, i
);
1068 for (cs
= node
->callers
; cs
; cs
= next
)
1070 next
= cs
->next_caller
;
1071 if (!ipcp_node_is_clone (cs
->caller
) && ipcp_need_redirect_p (cs
))
1074 fprintf (dump_file
, "Redirecting edge %s/%i -> %s/%i "
1076 cgraph_node_name (cs
->caller
), cs
->caller
->uid
,
1077 cgraph_node_name (cs
->callee
), cs
->callee
->uid
,
1078 cgraph_node_name (orig_node
), orig_node
->uid
);
1079 cgraph_redirect_edge_callee (cs
, orig_node
);
1085 /* Update profiling info for versioned functions and the functions they were
1088 ipcp_update_profiling (void)
1090 struct cgraph_node
*node
, *orig_node
;
1091 gcov_type scale
, scale_complement
;
1092 struct cgraph_edge
*cs
;
1094 for (node
= cgraph_nodes
; node
; node
= node
->next
)
1096 if (ipcp_node_is_clone (node
))
1098 orig_node
= ipcp_get_orig_node (node
);
1099 scale
= ipcp_get_node_scale (orig_node
);
1100 node
->count
= orig_node
->count
* scale
/ REG_BR_PROB_BASE
;
1101 scale_complement
= REG_BR_PROB_BASE
- scale
;
1103 orig_node
->count
* scale_complement
/ REG_BR_PROB_BASE
;
1104 for (cs
= node
->callees
; cs
; cs
= cs
->next_callee
)
1105 cs
->count
= cs
->count
* scale
/ REG_BR_PROB_BASE
;
1106 for (cs
= orig_node
->callees
; cs
; cs
= cs
->next_callee
)
1107 cs
->count
= cs
->count
* scale_complement
/ REG_BR_PROB_BASE
;
1112 /* If NODE was cloned, how much would program grow? */
1114 ipcp_estimate_growth (struct cgraph_node
*node
)
1116 struct cgraph_edge
*cs
;
1117 int redirectable_node_callers
= 0;
1118 int removable_args
= 0;
1120 = !cgraph_will_be_removed_from_program_if_no_direct_calls (node
);
1121 struct ipa_node_params
*info
;
1125 for (cs
= node
->callers
; cs
!= NULL
; cs
= cs
->next_caller
)
1126 if (cs
->caller
== node
|| !ipcp_need_redirect_p (cs
))
1127 redirectable_node_callers
++;
1129 need_original
= true;
1131 /* If we will be able to fully replace orignal node, we never increase
1136 info
= IPA_NODE_REF (node
);
1137 count
= ipa_get_param_count (info
);
1138 for (i
= 0; i
< count
; i
++)
1140 struct ipcp_lattice
*lat
= ipcp_get_lattice (info
, i
);
1142 /* We can proactively remove obviously unused arguments. */
1143 if (!ipa_is_param_used (info
, i
))
1146 if (lat
->type
== IPA_CONST_VALUE
)
1150 /* We make just very simple estimate of savings for removal of operand from
1151 call site. Precise cost is dificult to get, as our size metric counts
1152 constants and moves as free. Generally we are looking for cases that
1153 small function is called very many times. */
1154 growth
= node
->local
.inline_summary
.self_size
1155 - removable_args
* redirectable_node_callers
;
1162 /* Estimate cost of cloning NODE. */
1164 ipcp_estimate_cloning_cost (struct cgraph_node
*node
)
1167 gcov_type count_sum
= 1;
1168 struct cgraph_edge
*e
;
1171 cost
= ipcp_estimate_growth (node
) * 1000;
1175 fprintf (dump_file
, "Versioning of %s will save code size\n",
1176 cgraph_node_name (node
));
1180 for (e
= node
->callers
; e
; e
= e
->next_caller
)
1181 if (!bitmap_bit_p (dead_nodes
, e
->caller
->uid
)
1182 && !ipcp_need_redirect_p (e
))
1184 count_sum
+= e
->count
;
1185 freq_sum
+= e
->frequency
+ 1;
1189 cost
/= count_sum
* 1000 / max_count
+ 1;
1191 cost
/= freq_sum
* 1000 / REG_BR_PROB_BASE
+ 1;
1193 fprintf (dump_file
, "Cost of versioning %s is %i, (size: %i, freq: %i)\n",
1194 cgraph_node_name (node
), cost
, node
->local
.inline_summary
.self_size
,
1199 /* Walk indirect calls of NODE and if any polymorphic can be turned into a
1200 direct one now, do so. */
1203 ipcp_process_devirtualization_opportunities (struct cgraph_node
*node
)
1205 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
1206 struct cgraph_edge
*ie
, *next_ie
;
1208 for (ie
= node
->indirect_calls
; ie
; ie
= next_ie
)
1210 int param_index
, types_count
, j
;
1211 HOST_WIDE_INT token
;
1214 next_ie
= ie
->next_callee
;
1215 if (!ie
->indirect_info
->polymorphic
)
1217 param_index
= ie
->indirect_info
->param_index
;
1218 if (param_index
== -1
1219 || ipa_param_cannot_devirtualize_p (info
, param_index
)
1220 || ipa_param_types_vec_empty (info
, param_index
))
1223 token
= ie
->indirect_info
->otr_token
;
1225 types_count
= VEC_length (tree
, info
->params
[param_index
].types
);
1226 for (j
= 0; j
< types_count
; j
++)
1228 tree binfo
= VEC_index (tree
, info
->params
[param_index
].types
, j
);
1229 tree t
= gimple_fold_obj_type_ref_known_binfo (token
, binfo
);
1238 else if (target
!= t
)
1246 ipa_make_edge_direct_to_target (ie
, target
);
1250 /* Return number of live constant parameters. */
1252 ipcp_const_param_count (struct cgraph_node
*node
)
1254 int const_param
= 0;
1255 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
1256 int count
= ipa_get_param_count (info
);
1259 for (i
= 0; i
< count
; i
++)
1261 struct ipcp_lattice
*lat
= ipcp_get_lattice (info
, i
);
1262 if ((ipcp_lat_is_insertable (lat
)
1263 /* Do not count obviously unused arguments. */
1264 && ipa_is_param_used (info
, i
))
1265 || (!ipa_param_cannot_devirtualize_p (info
, i
)
1266 && !ipa_param_types_vec_empty (info
, i
)))
1272 /* Given that a formal parameter of NODE given by INDEX is known to be constant
1273 CST, try to find any indirect edges that can be made direct and make them
1274 so. Note that INDEX is the number the parameter at the time of analyzing
1275 parameter uses and parameter removals should not be considered for it. (In
1276 fact, the parameter itself has just been removed.) */
1279 ipcp_discover_new_direct_edges (struct cgraph_node
*node
, int index
, tree cst
)
1281 struct cgraph_edge
*ie
, *next_ie
;
1283 for (ie
= node
->indirect_calls
; ie
; ie
= next_ie
)
1285 struct cgraph_indirect_call_info
*ici
= ie
->indirect_info
;
1287 next_ie
= ie
->next_callee
;
1288 if (ici
->param_index
!= index
)
1291 if (ici
->polymorphic
)
1294 HOST_WIDE_INT token
;
1296 if (TREE_CODE (cst
) != ADDR_EXPR
)
1299 binfo
= gimple_get_relevant_ref_binfo (TREE_OPERAND (cst
, 0),
1303 gcc_assert (ie
->indirect_info
->anc_offset
== 0);
1304 token
= ie
->indirect_info
->otr_token
;
1305 cst
= gimple_fold_obj_type_ref_known_binfo (token
, binfo
);
1310 ipa_make_edge_direct_to_target (ie
, cst
);
1315 /* Propagate the constant parameters found by ipcp_iterate_stage()
1316 to the function's code. */
1318 ipcp_insert_stage (void)
1320 struct cgraph_node
*node
, *node1
= NULL
;
1322 VEC (cgraph_edge_p
, heap
) * redirect_callers
;
1323 VEC (ipa_replace_map_p
,gc
)* replace_trees
;
1324 int node_callers
, count
;
1326 struct ipa_replace_map
*replace_param
;
1328 long overall_size
= 0, new_size
= 0;
1331 ipa_check_create_node_params ();
1332 ipa_check_create_edge_args ();
1334 fprintf (dump_file
, "\nIPA insert stage:\n\n");
1336 dead_nodes
= BITMAP_ALLOC (NULL
);
1338 for (node
= cgraph_nodes
; node
; node
= node
->next
)
1341 if (node
->count
> max_count
)
1342 max_count
= node
->count
;
1343 overall_size
+= node
->local
.inline_summary
.self_size
;
1346 max_new_size
= overall_size
;
1347 if (max_new_size
< PARAM_VALUE (PARAM_LARGE_UNIT_INSNS
))
1348 max_new_size
= PARAM_VALUE (PARAM_LARGE_UNIT_INSNS
);
1349 max_new_size
= max_new_size
* PARAM_VALUE (PARAM_IPCP_UNIT_GROWTH
) / 100 + 1;
1351 /* First collect all functions we proved to have constant arguments to
1353 heap
= fibheap_new ();
1354 for (node
= cgraph_nodes
; node
; node
= node
->next
)
1356 struct ipa_node_params
*info
;
1357 /* Propagation of the constant is forbidden in certain conditions. */
1358 if (!node
->analyzed
|| !ipcp_node_modifiable_p (node
))
1360 info
= IPA_NODE_REF (node
);
1361 if (ipa_is_called_with_var_arguments (info
))
1363 if (ipcp_const_param_count (node
))
1364 node
->aux
= fibheap_insert (heap
, ipcp_estimate_cloning_cost (node
),
1368 /* Now clone in priority order until code size growth limits are met or
1370 while (!fibheap_empty (heap
))
1372 struct ipa_node_params
*info
;
1374 bitmap args_to_skip
;
1375 struct cgraph_edge
*cs
;
1377 node
= (struct cgraph_node
*)fibheap_extract_min (heap
);
1380 fprintf (dump_file
, "considering function %s\n",
1381 cgraph_node_name (node
));
1383 growth
= ipcp_estimate_growth (node
);
1385 if (new_size
+ growth
> max_new_size
)
1388 && optimize_function_for_size_p (DECL_STRUCT_FUNCTION (node
->decl
)))
1391 fprintf (dump_file
, "Not versioning, cold code would grow");
1397 /* Look if original function becomes dead after clonning. */
1398 for (cs
= node
->callers
; cs
!= NULL
; cs
= cs
->next_caller
)
1399 if (cs
->caller
== node
|| ipcp_need_redirect_p (cs
))
1401 if (!cs
&& cgraph_will_be_removed_from_program_if_no_direct_calls (node
))
1402 bitmap_set_bit (dead_nodes
, node
->uid
);
1404 info
= IPA_NODE_REF (node
);
1405 count
= ipa_get_param_count (info
);
1407 replace_trees
= VEC_alloc (ipa_replace_map_p
, gc
, 1);
1408 args_to_skip
= BITMAP_GGC_ALLOC ();
1409 for (i
= 0; i
< count
; i
++)
1411 struct ipcp_lattice
*lat
= ipcp_get_lattice (info
, i
);
1412 parm_tree
= ipa_get_param (info
, i
);
1414 /* We can proactively remove obviously unused arguments. */
1415 if (!ipa_is_param_used (info
, i
))
1417 bitmap_set_bit (args_to_skip
, i
);
1421 if (lat
->type
== IPA_CONST_VALUE
)
1424 ipcp_create_replace_map (parm_tree
, lat
);
1425 VEC_safe_push (ipa_replace_map_p
, gc
, replace_trees
, replace_param
);
1426 bitmap_set_bit (args_to_skip
, i
);
1430 /* Compute how many callers node has. */
1432 for (cs
= node
->callers
; cs
!= NULL
; cs
= cs
->next_caller
)
1434 redirect_callers
= VEC_alloc (cgraph_edge_p
, heap
, node_callers
);
1435 for (cs
= node
->callers
; cs
!= NULL
; cs
= cs
->next_caller
)
1436 if (!cs
->indirect_inlining_edge
)
1437 VEC_quick_push (cgraph_edge_p
, redirect_callers
, cs
);
1439 /* Redirecting all the callers of the node to the
1440 new versioned node. */
1442 cgraph_create_virtual_clone (node
, redirect_callers
, replace_trees
,
1443 args_to_skip
, "constprop");
1444 args_to_skip
= NULL
;
1445 VEC_free (cgraph_edge_p
, heap
, redirect_callers
);
1446 replace_trees
= NULL
;
1450 ipcp_process_devirtualization_opportunities (node1
);
1453 fprintf (dump_file
, "versioned function %s with growth %i, overall %i\n",
1454 cgraph_node_name (node
), (int)growth
, (int)new_size
);
1455 ipcp_init_cloned_node (node
, node1
);
1457 info
= IPA_NODE_REF (node
);
1458 for (i
= 0; i
< count
; i
++)
1460 struct ipcp_lattice
*lat
= ipcp_get_lattice (info
, i
);
1461 if (lat
->type
== IPA_CONST_VALUE
)
1462 ipcp_discover_new_direct_edges (node1
, i
, lat
->constant
);
1466 dump_function_to_file (node1
->decl
, dump_file
, dump_flags
);
1468 for (cs
= node
->callees
; cs
; cs
= cs
->next_callee
)
1469 if (cs
->callee
->aux
)
1471 fibheap_delete_node (heap
, (fibnode_t
) cs
->callee
->aux
);
1472 cs
->callee
->aux
= fibheap_insert (heap
,
1473 ipcp_estimate_cloning_cost (cs
->callee
),
1478 while (!fibheap_empty (heap
))
1481 fprintf (dump_file
, "skipping function %s\n",
1482 cgraph_node_name (node
));
1483 node
= (struct cgraph_node
*) fibheap_extract_min (heap
);
1486 fibheap_delete (heap
);
1487 BITMAP_FREE (dead_nodes
);
1488 ipcp_update_callgraph ();
1489 ipcp_update_profiling ();
1492 /* The IPCP driver. */
1496 cgraph_remove_unreachable_nodes (true,dump_file
);
1499 fprintf (dump_file
, "\nIPA structures before propagation:\n");
1500 if (dump_flags
& TDF_DETAILS
)
1501 ipa_print_all_params (dump_file
);
1502 ipa_print_all_jump_functions (dump_file
);
1504 /* 2. Do the interprocedural propagation. */
1505 ipcp_iterate_stage ();
1506 /* 3. Insert the constants found to the functions. */
1507 ipcp_insert_stage ();
1508 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
1510 fprintf (dump_file
, "\nProfiling info after insert stage:\n");
1511 ipcp_print_profile_data (dump_file
);
1513 /* Free all IPCP structures. */
1514 ipa_free_all_structures_after_ipa_cp ();
1516 fprintf (dump_file
, "\nIPA constant propagation end\n");
1520 /* Initialization and computation of IPCP data structures. This is the initial
1521 intraprocedural analysis of functions, which gathers information to be
1522 propagated later on. */
1525 ipcp_generate_summary (void)
1527 struct cgraph_node
*node
;
1530 fprintf (dump_file
, "\nIPA constant propagation start:\n");
1531 ipa_check_create_node_params ();
1532 ipa_check_create_edge_args ();
1533 ipa_register_cgraph_hooks ();
1535 for (node
= cgraph_nodes
; node
; node
= node
->next
)
1538 /* Unreachable nodes should have been eliminated before ipcp. */
1539 gcc_assert (node
->needed
|| node
->reachable
);
1541 node
->local
.versionable
= tree_versionable_function_p (node
->decl
);
1542 ipa_analyze_node (node
);
1546 /* Write ipcp summary for nodes in SET. */
1548 ipcp_write_summary (cgraph_node_set set
,
1549 varpool_node_set vset ATTRIBUTE_UNUSED
)
1551 ipa_prop_write_jump_functions (set
);
1554 /* Read ipcp summary. */
1556 ipcp_read_summary (void)
1558 ipa_prop_read_jump_functions ();
1561 /* Gate for IPCP optimization. */
1563 cgraph_gate_cp (void)
1565 /* FIXME: We should remove the optimize check after we ensure we never run
1566 IPA passes when not optimizng. */
1567 return flag_ipa_cp
&& optimize
;
1570 struct ipa_opt_pass_d pass_ipa_cp
=
1575 cgraph_gate_cp
, /* gate */
1576 ipcp_driver
, /* execute */
1579 0, /* static_pass_number */
1580 TV_IPA_CONSTANT_PROP
, /* tv_id */
1581 0, /* properties_required */
1582 0, /* properties_provided */
1583 0, /* properties_destroyed */
1584 0, /* todo_flags_start */
1585 TODO_dump_cgraph
| TODO_dump_func
|
1586 TODO_remove_functions
| TODO_ggc_collect
/* todo_flags_finish */
1588 ipcp_generate_summary
, /* generate_summary */
1589 ipcp_write_summary
, /* write_summary */
1590 ipcp_read_summary
, /* read_summary */
1591 NULL
, /* write_optimization_summary */
1592 NULL
, /* read_optimization_summary */
1593 NULL
, /* stmt_fixup */
1595 NULL
, /* function_transform */
1596 NULL
, /* variable_transform */