1 /* Interprocedural analyses.
2 Copyright (C) 2005-2015 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
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 COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
22 #include "coretypes.h"
27 #include "fold-const.h"
30 #include "hard-reg-set.h"
32 #include "dominance.h"
34 #include "basic-block.h"
35 #include "tree-ssa-alias.h"
36 #include "internal-fn.h"
37 #include "gimple-fold.h"
39 #include "gimple-expr.h"
43 #include "insn-config.h"
52 #include "stor-layout.h"
53 #include "print-tree.h"
55 #include "gimple-iterator.h"
56 #include "gimplify-me.h"
57 #include "gimple-walk.h"
58 #include "langhooks.h"
60 #include "plugin-api.h"
63 #include "alloc-pool.h"
64 #include "symbol-summary.h"
67 #include "gimple-ssa.h"
69 #include "tree-phinodes.h"
70 #include "ssa-iterators.h"
71 #include "tree-into-ssa.h"
73 #include "tree-pass.h"
74 #include "tree-inline.h"
75 #include "ipa-inline.h"
76 #include "diagnostic.h"
77 #include "gimple-pretty-print.h"
78 #include "lto-streamer.h"
79 #include "data-streamer.h"
80 #include "tree-streamer.h"
82 #include "ipa-utils.h"
83 #include "stringpool.h"
84 #include "tree-ssanames.h"
89 /* Intermediate information that we get from alias analysis about a particular
90 parameter in a particular basic_block. When a parameter or the memory it
91 references is marked modified, we use that information in all dominatd
92 blocks without cosulting alias analysis oracle. */
94 struct param_aa_status
96 /* Set when this structure contains meaningful information. If not, the
97 structure describing a dominating BB should be used instead. */
100 /* Whether we have seen something which might have modified the data in
101 question. PARM is for the parameter itself, REF is for data it points to
102 but using the alias type of individual accesses and PT is the same thing
103 but for computing aggregate pass-through functions using a very inclusive
105 bool parm_modified
, ref_modified
, pt_modified
;
108 /* Information related to a given BB that used only when looking at function
113 /* Call graph edges going out of this BB. */
114 vec
<cgraph_edge
*> cg_edges
;
115 /* Alias analysis statuses of each formal parameter at this bb. */
116 vec
<param_aa_status
> param_aa_statuses
;
119 /* Structure with global information that is only used when looking at function
122 struct func_body_info
124 /* The node that is being analyzed. */
128 struct ipa_node_params
*info
;
130 /* Information about individual BBs. */
131 vec
<ipa_bb_info
> bb_infos
;
133 /* Number of parameters. */
136 /* Number of statements already walked by when analyzing this function. */
137 unsigned int aa_walked
;
140 /* Function summary where the parameter infos are actually stored. */
141 ipa_node_params_t
*ipa_node_params_sum
= NULL
;
142 /* Vector of IPA-CP transformation data for each clone. */
143 vec
<ipcp_transformation_summary
, va_gc
> *ipcp_transformations
;
144 /* Vector where the parameter infos are actually stored. */
145 vec
<ipa_edge_args
, va_gc
> *ipa_edge_args_vector
;
147 /* Holders of ipa cgraph hooks: */
148 static struct cgraph_edge_hook_list
*edge_removal_hook_holder
;
149 static struct cgraph_2edge_hook_list
*edge_duplication_hook_holder
;
150 static struct cgraph_node_hook_list
*function_insertion_hook_holder
;
152 /* Description of a reference to an IPA constant. */
153 struct ipa_cst_ref_desc
155 /* Edge that corresponds to the statement which took the reference. */
156 struct cgraph_edge
*cs
;
157 /* Linked list of duplicates created when call graph edges are cloned. */
158 struct ipa_cst_ref_desc
*next_duplicate
;
159 /* Number of references in IPA structures, IPA_UNDESCRIBED_USE if the value
160 if out of control. */
164 /* Allocation pool for reference descriptions. */
166 static pool_allocator
<ipa_cst_ref_desc
> ipa_refdesc_pool
167 ("IPA-PROP ref descriptions", 32);
169 /* Return true if DECL_FUNCTION_SPECIFIC_OPTIMIZATION of the decl associated
170 with NODE should prevent us from analyzing it for the purposes of IPA-CP. */
173 ipa_func_spec_opts_forbid_analysis_p (struct cgraph_node
*node
)
175 tree fs_opts
= DECL_FUNCTION_SPECIFIC_OPTIMIZATION (node
->decl
);
179 return !opt_for_fn (node
->decl
, optimize
) || !opt_for_fn (node
->decl
, flag_ipa_cp
);
182 /* Return index of the formal whose tree is PTREE in function which corresponds
186 ipa_get_param_decl_index_1 (vec
<ipa_param_descriptor
> descriptors
, tree ptree
)
190 count
= descriptors
.length ();
191 for (i
= 0; i
< count
; i
++)
192 if (descriptors
[i
].decl
== ptree
)
198 /* Return index of the formal whose tree is PTREE in function which corresponds
202 ipa_get_param_decl_index (struct ipa_node_params
*info
, tree ptree
)
204 return ipa_get_param_decl_index_1 (info
->descriptors
, ptree
);
207 /* Populate the param_decl field in parameter DESCRIPTORS that correspond to
211 ipa_populate_param_decls (struct cgraph_node
*node
,
212 vec
<ipa_param_descriptor
> &descriptors
)
220 gcc_assert (gimple_has_body_p (fndecl
));
221 fnargs
= DECL_ARGUMENTS (fndecl
);
223 for (parm
= fnargs
; parm
; parm
= DECL_CHAIN (parm
))
225 descriptors
[param_num
].decl
= parm
;
226 descriptors
[param_num
].move_cost
= estimate_move_cost (TREE_TYPE (parm
),
232 /* Return how many formal parameters FNDECL has. */
235 count_formal_params (tree fndecl
)
239 gcc_assert (gimple_has_body_p (fndecl
));
241 for (parm
= DECL_ARGUMENTS (fndecl
); parm
; parm
= DECL_CHAIN (parm
))
247 /* Return the declaration of Ith formal parameter of the function corresponding
248 to INFO. Note there is no setter function as this array is built just once
249 using ipa_initialize_node_params. */
252 ipa_dump_param (FILE *file
, struct ipa_node_params
*info
, int i
)
254 fprintf (file
, "param #%i", i
);
255 if (info
->descriptors
[i
].decl
)
258 print_generic_expr (file
, info
->descriptors
[i
].decl
, 0);
262 /* Initialize the ipa_node_params structure associated with NODE
263 to hold PARAM_COUNT parameters. */
266 ipa_alloc_node_params (struct cgraph_node
*node
, int param_count
)
268 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
270 if (!info
->descriptors
.exists () && param_count
)
271 info
->descriptors
.safe_grow_cleared (param_count
);
274 /* Initialize the ipa_node_params structure associated with NODE by counting
275 the function parameters, creating the descriptors and populating their
279 ipa_initialize_node_params (struct cgraph_node
*node
)
281 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
283 if (!info
->descriptors
.exists ())
285 ipa_alloc_node_params (node
, count_formal_params (node
->decl
));
286 ipa_populate_param_decls (node
, info
->descriptors
);
290 /* Print the jump functions associated with call graph edge CS to file F. */
293 ipa_print_node_jump_functions_for_edge (FILE *f
, struct cgraph_edge
*cs
)
297 count
= ipa_get_cs_argument_count (IPA_EDGE_REF (cs
));
298 for (i
= 0; i
< count
; i
++)
300 struct ipa_jump_func
*jump_func
;
301 enum jump_func_type type
;
303 jump_func
= ipa_get_ith_jump_func (IPA_EDGE_REF (cs
), i
);
304 type
= jump_func
->type
;
306 fprintf (f
, " param %d: ", i
);
307 if (type
== IPA_JF_UNKNOWN
)
308 fprintf (f
, "UNKNOWN\n");
309 else if (type
== IPA_JF_CONST
)
311 tree val
= jump_func
->value
.constant
.value
;
312 fprintf (f
, "CONST: ");
313 print_generic_expr (f
, val
, 0);
314 if (TREE_CODE (val
) == ADDR_EXPR
315 && TREE_CODE (TREE_OPERAND (val
, 0)) == CONST_DECL
)
318 print_generic_expr (f
, DECL_INITIAL (TREE_OPERAND (val
, 0)),
323 else if (type
== IPA_JF_PASS_THROUGH
)
325 fprintf (f
, "PASS THROUGH: ");
326 fprintf (f
, "%d, op %s",
327 jump_func
->value
.pass_through
.formal_id
,
328 get_tree_code_name(jump_func
->value
.pass_through
.operation
));
329 if (jump_func
->value
.pass_through
.operation
!= NOP_EXPR
)
332 print_generic_expr (f
,
333 jump_func
->value
.pass_through
.operand
, 0);
335 if (jump_func
->value
.pass_through
.agg_preserved
)
336 fprintf (f
, ", agg_preserved");
339 else if (type
== IPA_JF_ANCESTOR
)
341 fprintf (f
, "ANCESTOR: ");
342 fprintf (f
, "%d, offset " HOST_WIDE_INT_PRINT_DEC
,
343 jump_func
->value
.ancestor
.formal_id
,
344 jump_func
->value
.ancestor
.offset
);
345 if (jump_func
->value
.ancestor
.agg_preserved
)
346 fprintf (f
, ", agg_preserved");
350 if (jump_func
->agg
.items
)
352 struct ipa_agg_jf_item
*item
;
355 fprintf (f
, " Aggregate passed by %s:\n",
356 jump_func
->agg
.by_ref
? "reference" : "value");
357 FOR_EACH_VEC_SAFE_ELT (jump_func
->agg
.items
, j
, item
)
359 fprintf (f
, " offset: " HOST_WIDE_INT_PRINT_DEC
", ",
361 if (TYPE_P (item
->value
))
362 fprintf (f
, "clobber of " HOST_WIDE_INT_PRINT_DEC
" bits",
363 tree_to_uhwi (TYPE_SIZE (item
->value
)));
366 fprintf (f
, "cst: ");
367 print_generic_expr (f
, item
->value
, 0);
373 struct ipa_polymorphic_call_context
*ctx
374 = ipa_get_ith_polymorhic_call_context (IPA_EDGE_REF (cs
), i
);
375 if (ctx
&& !ctx
->useless_p ())
377 fprintf (f
, " Context: ");
378 ctx
->dump (dump_file
);
381 if (jump_func
->alignment
.known
)
383 fprintf (f
, " Alignment: %u, misalignment: %u\n",
384 jump_func
->alignment
.align
,
385 jump_func
->alignment
.misalign
);
388 fprintf (f
, " Unknown alignment\n");
393 /* Print the jump functions of all arguments on all call graph edges going from
397 ipa_print_node_jump_functions (FILE *f
, struct cgraph_node
*node
)
399 struct cgraph_edge
*cs
;
401 fprintf (f
, " Jump functions of caller %s/%i:\n", node
->name (),
403 for (cs
= node
->callees
; cs
; cs
= cs
->next_callee
)
405 if (!ipa_edge_args_info_available_for_edge_p (cs
))
408 fprintf (f
, " callsite %s/%i -> %s/%i : \n",
409 xstrdup_for_dump (node
->name ()), node
->order
,
410 xstrdup_for_dump (cs
->callee
->name ()),
412 ipa_print_node_jump_functions_for_edge (f
, cs
);
415 for (cs
= node
->indirect_calls
; cs
; cs
= cs
->next_callee
)
417 struct cgraph_indirect_call_info
*ii
;
418 if (!ipa_edge_args_info_available_for_edge_p (cs
))
421 ii
= cs
->indirect_info
;
422 if (ii
->agg_contents
)
423 fprintf (f
, " indirect %s callsite, calling param %i, "
424 "offset " HOST_WIDE_INT_PRINT_DEC
", %s",
425 ii
->member_ptr
? "member ptr" : "aggregate",
426 ii
->param_index
, ii
->offset
,
427 ii
->by_ref
? "by reference" : "by_value");
429 fprintf (f
, " indirect %s callsite, calling param %i, "
430 "offset " HOST_WIDE_INT_PRINT_DEC
,
431 ii
->polymorphic
? "polymorphic" : "simple", ii
->param_index
,
436 fprintf (f
, ", for stmt ");
437 print_gimple_stmt (f
, cs
->call_stmt
, 0, TDF_SLIM
);
442 ii
->context
.dump (f
);
443 ipa_print_node_jump_functions_for_edge (f
, cs
);
447 /* Print ipa_jump_func data structures of all nodes in the call graph to F. */
450 ipa_print_all_jump_functions (FILE *f
)
452 struct cgraph_node
*node
;
454 fprintf (f
, "\nJump functions:\n");
455 FOR_EACH_FUNCTION (node
)
457 ipa_print_node_jump_functions (f
, node
);
461 /* Set jfunc to be a know-really nothing jump function. */
464 ipa_set_jf_unknown (struct ipa_jump_func
*jfunc
)
466 jfunc
->type
= IPA_JF_UNKNOWN
;
467 jfunc
->alignment
.known
= false;
470 /* Set JFUNC to be a copy of another jmp (to be used by jump function
471 combination code). The two functions will share their rdesc. */
474 ipa_set_jf_cst_copy (struct ipa_jump_func
*dst
,
475 struct ipa_jump_func
*src
)
478 gcc_checking_assert (src
->type
== IPA_JF_CONST
);
479 dst
->type
= IPA_JF_CONST
;
480 dst
->value
.constant
= src
->value
.constant
;
483 /* Set JFUNC to be a constant jmp function. */
486 ipa_set_jf_constant (struct ipa_jump_func
*jfunc
, tree constant
,
487 struct cgraph_edge
*cs
)
489 constant
= unshare_expr (constant
);
490 if (constant
&& EXPR_P (constant
))
491 SET_EXPR_LOCATION (constant
, UNKNOWN_LOCATION
);
492 jfunc
->type
= IPA_JF_CONST
;
493 jfunc
->value
.constant
.value
= unshare_expr_without_location (constant
);
495 if (TREE_CODE (constant
) == ADDR_EXPR
496 && TREE_CODE (TREE_OPERAND (constant
, 0)) == FUNCTION_DECL
)
498 struct ipa_cst_ref_desc
*rdesc
;
500 rdesc
= ipa_refdesc_pool
.allocate ();
502 rdesc
->next_duplicate
= NULL
;
504 jfunc
->value
.constant
.rdesc
= rdesc
;
507 jfunc
->value
.constant
.rdesc
= NULL
;
510 /* Set JFUNC to be a simple pass-through jump function. */
512 ipa_set_jf_simple_pass_through (struct ipa_jump_func
*jfunc
, int formal_id
,
515 jfunc
->type
= IPA_JF_PASS_THROUGH
;
516 jfunc
->value
.pass_through
.operand
= NULL_TREE
;
517 jfunc
->value
.pass_through
.formal_id
= formal_id
;
518 jfunc
->value
.pass_through
.operation
= NOP_EXPR
;
519 jfunc
->value
.pass_through
.agg_preserved
= agg_preserved
;
522 /* Set JFUNC to be an arithmetic pass through jump function. */
525 ipa_set_jf_arith_pass_through (struct ipa_jump_func
*jfunc
, int formal_id
,
526 tree operand
, enum tree_code operation
)
528 jfunc
->type
= IPA_JF_PASS_THROUGH
;
529 jfunc
->value
.pass_through
.operand
= unshare_expr_without_location (operand
);
530 jfunc
->value
.pass_through
.formal_id
= formal_id
;
531 jfunc
->value
.pass_through
.operation
= operation
;
532 jfunc
->value
.pass_through
.agg_preserved
= false;
535 /* Set JFUNC to be an ancestor jump function. */
538 ipa_set_ancestor_jf (struct ipa_jump_func
*jfunc
, HOST_WIDE_INT offset
,
539 int formal_id
, bool agg_preserved
)
541 jfunc
->type
= IPA_JF_ANCESTOR
;
542 jfunc
->value
.ancestor
.formal_id
= formal_id
;
543 jfunc
->value
.ancestor
.offset
= offset
;
544 jfunc
->value
.ancestor
.agg_preserved
= agg_preserved
;
547 /* Get IPA BB information about the given BB. FBI is the context of analyzis
548 of this function body. */
550 static struct ipa_bb_info
*
551 ipa_get_bb_info (struct func_body_info
*fbi
, basic_block bb
)
553 gcc_checking_assert (fbi
);
554 return &fbi
->bb_infos
[bb
->index
];
557 /* Structure to be passed in between detect_type_change and
558 check_stmt_for_type_change. */
560 struct prop_type_change_info
562 /* Offset into the object where there is the virtual method pointer we are
564 HOST_WIDE_INT offset
;
565 /* The declaration or SSA_NAME pointer of the base that we are checking for
568 /* Set to true if dynamic type change has been detected. */
569 bool type_maybe_changed
;
572 /* Return true if STMT can modify a virtual method table pointer.
574 This function makes special assumptions about both constructors and
575 destructors which are all the functions that are allowed to alter the VMT
576 pointers. It assumes that destructors begin with assignment into all VMT
577 pointers and that constructors essentially look in the following way:
579 1) The very first thing they do is that they call constructors of ancestor
580 sub-objects that have them.
582 2) Then VMT pointers of this and all its ancestors is set to new values
583 corresponding to the type corresponding to the constructor.
585 3) Only afterwards, other stuff such as constructor of member sub-objects
586 and the code written by the user is run. Only this may include calling
587 virtual functions, directly or indirectly.
589 There is no way to call a constructor of an ancestor sub-object in any
592 This means that we do not have to care whether constructors get the correct
593 type information because they will always change it (in fact, if we define
594 the type to be given by the VMT pointer, it is undefined).
596 The most important fact to derive from the above is that if, for some
597 statement in the section 3, we try to detect whether the dynamic type has
598 changed, we can safely ignore all calls as we examine the function body
599 backwards until we reach statements in section 2 because these calls cannot
600 be ancestor constructors or destructors (if the input is not bogus) and so
601 do not change the dynamic type (this holds true only for automatically
602 allocated objects but at the moment we devirtualize only these). We then
603 must detect that statements in section 2 change the dynamic type and can try
604 to derive the new type. That is enough and we can stop, we will never see
605 the calls into constructors of sub-objects in this code. Therefore we can
606 safely ignore all call statements that we traverse.
610 stmt_may_be_vtbl_ptr_store (gimple stmt
)
612 if (is_gimple_call (stmt
))
614 if (gimple_clobber_p (stmt
))
616 else if (is_gimple_assign (stmt
))
618 tree lhs
= gimple_assign_lhs (stmt
);
620 if (!AGGREGATE_TYPE_P (TREE_TYPE (lhs
)))
622 if (flag_strict_aliasing
623 && !POINTER_TYPE_P (TREE_TYPE (lhs
)))
626 if (TREE_CODE (lhs
) == COMPONENT_REF
627 && !DECL_VIRTUAL_P (TREE_OPERAND (lhs
, 1)))
629 /* In the future we might want to use get_base_ref_and_offset to find
630 if there is a field corresponding to the offset and if so, proceed
631 almost like if it was a component ref. */
637 /* Callback of walk_aliased_vdefs and a helper function for detect_type_change
638 to check whether a particular statement may modify the virtual table
639 pointerIt stores its result into DATA, which points to a
640 prop_type_change_info structure. */
643 check_stmt_for_type_change (ao_ref
*ao ATTRIBUTE_UNUSED
, tree vdef
, void *data
)
645 gimple stmt
= SSA_NAME_DEF_STMT (vdef
);
646 struct prop_type_change_info
*tci
= (struct prop_type_change_info
*) data
;
648 if (stmt_may_be_vtbl_ptr_store (stmt
))
650 tci
->type_maybe_changed
= true;
657 /* See if ARG is PARAM_DECl describing instance passed by pointer
658 or reference in FUNCTION. Return false if the dynamic type may change
659 in between beggining of the function until CALL is invoked.
661 Generally functions are not allowed to change type of such instances,
662 but they call destructors. We assume that methods can not destroy the THIS
663 pointer. Also as a special cases, constructor and destructors may change
664 type of the THIS pointer. */
667 param_type_may_change_p (tree function
, tree arg
, gimple call
)
669 /* Pure functions can not do any changes on the dynamic type;
670 that require writting to memory. */
671 if (flags_from_decl_or_type (function
) & (ECF_PURE
| ECF_CONST
))
673 /* We need to check if we are within inlined consturctor
674 or destructor (ideally we would have way to check that the
675 inline cdtor is actually working on ARG, but we don't have
676 easy tie on this, so punt on all non-pure cdtors.
677 We may also record the types of cdtors and once we know type
678 of the instance match them.
680 Also code unification optimizations may merge calls from
681 different blocks making return values unreliable. So
682 do nothing during late optimization. */
683 if (DECL_STRUCT_FUNCTION (function
)->after_inlining
)
685 if (TREE_CODE (arg
) == SSA_NAME
686 && SSA_NAME_IS_DEFAULT_DEF (arg
)
687 && TREE_CODE (SSA_NAME_VAR (arg
)) == PARM_DECL
)
689 /* Normal (non-THIS) argument. */
690 if ((SSA_NAME_VAR (arg
) != DECL_ARGUMENTS (function
)
691 || TREE_CODE (TREE_TYPE (function
)) != METHOD_TYPE
)
692 /* THIS pointer of an method - here we we want to watch constructors
693 and destructors as those definitely may change the dynamic
695 || (TREE_CODE (TREE_TYPE (function
)) == METHOD_TYPE
696 && !DECL_CXX_CONSTRUCTOR_P (function
)
697 && !DECL_CXX_DESTRUCTOR_P (function
)
698 && (SSA_NAME_VAR (arg
) == DECL_ARGUMENTS (function
))))
700 /* Walk the inline stack and watch out for ctors/dtors. */
701 for (tree block
= gimple_block (call
); block
&& TREE_CODE (block
) == BLOCK
;
702 block
= BLOCK_SUPERCONTEXT (block
))
703 if (inlined_polymorphic_ctor_dtor_block_p (block
, false))
711 /* Detect whether the dynamic type of ARG of COMP_TYPE has changed (before
712 callsite CALL) by looking for assignments to its virtual table pointer. If
713 it is, return true and fill in the jump function JFUNC with relevant type
714 information or set it to unknown. ARG is the object itself (not a pointer
715 to it, unless dereferenced). BASE is the base of the memory access as
716 returned by get_ref_base_and_extent, as is the offset.
718 This is helper function for detect_type_change and detect_type_change_ssa
719 that does the heavy work which is usually unnecesary. */
722 detect_type_change_from_memory_writes (tree arg
, tree base
, tree comp_type
,
723 gcall
*call
, struct ipa_jump_func
*jfunc
,
724 HOST_WIDE_INT offset
)
726 struct prop_type_change_info tci
;
728 bool entry_reached
= false;
730 gcc_checking_assert (DECL_P (arg
)
731 || TREE_CODE (arg
) == MEM_REF
732 || handled_component_p (arg
));
734 comp_type
= TYPE_MAIN_VARIANT (comp_type
);
736 /* Const calls cannot call virtual methods through VMT and so type changes do
738 if (!flag_devirtualize
|| !gimple_vuse (call
)
739 /* Be sure expected_type is polymorphic. */
741 || TREE_CODE (comp_type
) != RECORD_TYPE
742 || !TYPE_BINFO (TYPE_MAIN_VARIANT (comp_type
))
743 || !BINFO_VTABLE (TYPE_BINFO (TYPE_MAIN_VARIANT (comp_type
))))
746 ao_ref_init (&ao
, arg
);
749 ao
.size
= POINTER_SIZE
;
750 ao
.max_size
= ao
.size
;
753 tci
.object
= get_base_address (arg
);
754 tci
.type_maybe_changed
= false;
756 walk_aliased_vdefs (&ao
, gimple_vuse (call
), check_stmt_for_type_change
,
757 &tci
, NULL
, &entry_reached
);
758 if (!tci
.type_maybe_changed
)
761 ipa_set_jf_unknown (jfunc
);
765 /* Detect whether the dynamic type of ARG of COMP_TYPE may have changed.
766 If it is, return true and fill in the jump function JFUNC with relevant type
767 information or set it to unknown. ARG is the object itself (not a pointer
768 to it, unless dereferenced). BASE is the base of the memory access as
769 returned by get_ref_base_and_extent, as is the offset. */
772 detect_type_change (tree arg
, tree base
, tree comp_type
, gcall
*call
,
773 struct ipa_jump_func
*jfunc
, HOST_WIDE_INT offset
)
775 if (!flag_devirtualize
)
778 if (TREE_CODE (base
) == MEM_REF
779 && !param_type_may_change_p (current_function_decl
,
780 TREE_OPERAND (base
, 0),
783 return detect_type_change_from_memory_writes (arg
, base
, comp_type
,
784 call
, jfunc
, offset
);
787 /* Like detect_type_change but ARG is supposed to be a non-dereferenced pointer
788 SSA name (its dereference will become the base and the offset is assumed to
792 detect_type_change_ssa (tree arg
, tree comp_type
,
793 gcall
*call
, struct ipa_jump_func
*jfunc
)
795 gcc_checking_assert (TREE_CODE (arg
) == SSA_NAME
);
796 if (!flag_devirtualize
797 || !POINTER_TYPE_P (TREE_TYPE (arg
)))
800 if (!param_type_may_change_p (current_function_decl
, arg
, call
))
803 arg
= build2 (MEM_REF
, ptr_type_node
, arg
,
804 build_int_cst (ptr_type_node
, 0));
806 return detect_type_change_from_memory_writes (arg
, arg
, comp_type
,
810 /* Callback of walk_aliased_vdefs. Flags that it has been invoked to the
811 boolean variable pointed to by DATA. */
814 mark_modified (ao_ref
*ao ATTRIBUTE_UNUSED
, tree vdef ATTRIBUTE_UNUSED
,
817 bool *b
= (bool *) data
;
822 /* Return true if we have already walked so many statements in AA that we
823 should really just start giving up. */
826 aa_overwalked (struct func_body_info
*fbi
)
828 gcc_checking_assert (fbi
);
829 return fbi
->aa_walked
> (unsigned) PARAM_VALUE (PARAM_IPA_MAX_AA_STEPS
);
832 /* Find the nearest valid aa status for parameter specified by INDEX that
835 static struct param_aa_status
*
836 find_dominating_aa_status (struct func_body_info
*fbi
, basic_block bb
,
841 bb
= get_immediate_dominator (CDI_DOMINATORS
, bb
);
844 struct ipa_bb_info
*bi
= ipa_get_bb_info (fbi
, bb
);
845 if (!bi
->param_aa_statuses
.is_empty ()
846 && bi
->param_aa_statuses
[index
].valid
)
847 return &bi
->param_aa_statuses
[index
];
851 /* Get AA status structure for the given BB and parameter with INDEX. Allocate
852 structures and/or intialize the result with a dominating description as
855 static struct param_aa_status
*
856 parm_bb_aa_status_for_bb (struct func_body_info
*fbi
, basic_block bb
,
859 gcc_checking_assert (fbi
);
860 struct ipa_bb_info
*bi
= ipa_get_bb_info (fbi
, bb
);
861 if (bi
->param_aa_statuses
.is_empty ())
862 bi
->param_aa_statuses
.safe_grow_cleared (fbi
->param_count
);
863 struct param_aa_status
*paa
= &bi
->param_aa_statuses
[index
];
866 gcc_checking_assert (!paa
->parm_modified
867 && !paa
->ref_modified
868 && !paa
->pt_modified
);
869 struct param_aa_status
*dom_paa
;
870 dom_paa
= find_dominating_aa_status (fbi
, bb
, index
);
880 /* Return true if a load from a formal parameter PARM_LOAD is known to retrieve
881 a value known not to be modified in this function before reaching the
882 statement STMT. FBI holds information about the function we have so far
883 gathered but do not survive the summary building stage. */
886 parm_preserved_before_stmt_p (struct func_body_info
*fbi
, int index
,
887 gimple stmt
, tree parm_load
)
889 struct param_aa_status
*paa
;
890 bool modified
= false;
893 /* FIXME: FBI can be NULL if we are being called from outside
894 ipa_node_analysis or ipcp_transform_function, which currently happens
895 during inlining analysis. It would be great to extend fbi's lifetime and
896 always have it. Currently, we are just not afraid of too much walking in
900 if (aa_overwalked (fbi
))
902 paa
= parm_bb_aa_status_for_bb (fbi
, gimple_bb (stmt
), index
);
903 if (paa
->parm_modified
)
909 gcc_checking_assert (gimple_vuse (stmt
) != NULL_TREE
);
910 ao_ref_init (&refd
, parm_load
);
911 int walked
= walk_aliased_vdefs (&refd
, gimple_vuse (stmt
), mark_modified
,
914 fbi
->aa_walked
+= walked
;
916 paa
->parm_modified
= true;
920 /* If STMT is an assignment that loads a value from an parameter declaration,
921 return the index of the parameter in ipa_node_params which has not been
922 modified. Otherwise return -1. */
925 load_from_unmodified_param (struct func_body_info
*fbi
,
926 vec
<ipa_param_descriptor
> descriptors
,
932 if (!gimple_assign_single_p (stmt
))
935 op1
= gimple_assign_rhs1 (stmt
);
936 if (TREE_CODE (op1
) != PARM_DECL
)
939 index
= ipa_get_param_decl_index_1 (descriptors
, op1
);
941 || !parm_preserved_before_stmt_p (fbi
, index
, stmt
, op1
))
947 /* Return true if memory reference REF (which must be a load through parameter
948 with INDEX) loads data that are known to be unmodified in this function
949 before reaching statement STMT. */
952 parm_ref_data_preserved_p (struct func_body_info
*fbi
,
953 int index
, gimple stmt
, tree ref
)
955 struct param_aa_status
*paa
;
956 bool modified
= false;
959 /* FIXME: FBI can be NULL if we are being called from outside
960 ipa_node_analysis or ipcp_transform_function, which currently happens
961 during inlining analysis. It would be great to extend fbi's lifetime and
962 always have it. Currently, we are just not afraid of too much walking in
966 if (aa_overwalked (fbi
))
968 paa
= parm_bb_aa_status_for_bb (fbi
, gimple_bb (stmt
), index
);
969 if (paa
->ref_modified
)
975 gcc_checking_assert (gimple_vuse (stmt
));
976 ao_ref_init (&refd
, ref
);
977 int walked
= walk_aliased_vdefs (&refd
, gimple_vuse (stmt
), mark_modified
,
980 fbi
->aa_walked
+= walked
;
982 paa
->ref_modified
= true;
986 /* Return true if the data pointed to by PARM (which is a parameter with INDEX)
987 is known to be unmodified in this function before reaching call statement
988 CALL into which it is passed. FBI describes the function body. */
991 parm_ref_data_pass_through_p (struct func_body_info
*fbi
, int index
,
992 gimple call
, tree parm
)
994 bool modified
= false;
997 /* It's unnecessary to calculate anything about memory contnets for a const
998 function because it is not goin to use it. But do not cache the result
999 either. Also, no such calculations for non-pointers. */
1000 if (!gimple_vuse (call
)
1001 || !POINTER_TYPE_P (TREE_TYPE (parm
))
1002 || aa_overwalked (fbi
))
1005 struct param_aa_status
*paa
= parm_bb_aa_status_for_bb (fbi
, gimple_bb (call
),
1007 if (paa
->pt_modified
)
1010 ao_ref_init_from_ptr_and_size (&refd
, parm
, NULL_TREE
);
1011 int walked
= walk_aliased_vdefs (&refd
, gimple_vuse (call
), mark_modified
,
1013 fbi
->aa_walked
+= walked
;
1015 paa
->pt_modified
= true;
1019 /* Return true if we can prove that OP is a memory reference loading unmodified
1020 data from an aggregate passed as a parameter and if the aggregate is passed
1021 by reference, that the alias type of the load corresponds to the type of the
1022 formal parameter (so that we can rely on this type for TBAA in callers).
1023 INFO and PARMS_AINFO describe parameters of the current function (but the
1024 latter can be NULL), STMT is the load statement. If function returns true,
1025 *INDEX_P, *OFFSET_P and *BY_REF is filled with the parameter index, offset
1026 within the aggregate and whether it is a load from a value passed by
1027 reference respectively. */
1030 ipa_load_from_parm_agg_1 (struct func_body_info
*fbi
,
1031 vec
<ipa_param_descriptor
> descriptors
,
1032 gimple stmt
, tree op
, int *index_p
,
1033 HOST_WIDE_INT
*offset_p
, HOST_WIDE_INT
*size_p
,
1037 HOST_WIDE_INT size
, max_size
;
1038 tree base
= get_ref_base_and_extent (op
, offset_p
, &size
, &max_size
);
1040 if (max_size
== -1 || max_size
!= size
|| *offset_p
< 0)
1045 int index
= ipa_get_param_decl_index_1 (descriptors
, base
);
1047 && parm_preserved_before_stmt_p (fbi
, index
, stmt
, op
))
1058 if (TREE_CODE (base
) != MEM_REF
1059 || TREE_CODE (TREE_OPERAND (base
, 0)) != SSA_NAME
1060 || !integer_zerop (TREE_OPERAND (base
, 1)))
1063 if (SSA_NAME_IS_DEFAULT_DEF (TREE_OPERAND (base
, 0)))
1065 tree parm
= SSA_NAME_VAR (TREE_OPERAND (base
, 0));
1066 index
= ipa_get_param_decl_index_1 (descriptors
, parm
);
1070 /* This branch catches situations where a pointer parameter is not a
1071 gimple register, for example:
1073 void hip7(S*) (struct S * p)
1075 void (*<T2e4>) (struct S *) D.1867;
1080 D.1867_2 = p.1_1->f;
1085 gimple def
= SSA_NAME_DEF_STMT (TREE_OPERAND (base
, 0));
1086 index
= load_from_unmodified_param (fbi
, descriptors
, def
);
1090 && parm_ref_data_preserved_p (fbi
, index
, stmt
, op
))
1101 /* Just like the previous function, just without the param_analysis_info
1102 pointer, for users outside of this file. */
1105 ipa_load_from_parm_agg (struct ipa_node_params
*info
, gimple stmt
,
1106 tree op
, int *index_p
, HOST_WIDE_INT
*offset_p
,
1109 return ipa_load_from_parm_agg_1 (NULL
, info
->descriptors
, stmt
, op
, index_p
,
1110 offset_p
, NULL
, by_ref_p
);
1113 /* Given that an actual argument is an SSA_NAME (given in NAME) and is a result
1114 of an assignment statement STMT, try to determine whether we are actually
1115 handling any of the following cases and construct an appropriate jump
1116 function into JFUNC if so:
1118 1) The passed value is loaded from a formal parameter which is not a gimple
1119 register (most probably because it is addressable, the value has to be
1120 scalar) and we can guarantee the value has not changed. This case can
1121 therefore be described by a simple pass-through jump function. For example:
1130 2) The passed value can be described by a simple arithmetic pass-through
1137 D.2064_4 = a.1(D) + 4;
1140 This case can also occur in combination of the previous one, e.g.:
1148 D.2064_4 = a.0_3 + 4;
1151 3) The passed value is an address of an object within another one (which
1152 also passed by reference). Such situations are described by an ancestor
1153 jump function and describe situations such as:
1155 B::foo() (struct B * const this)
1159 D.1845_2 = &this_1(D)->D.1748;
1162 INFO is the structure describing individual parameters access different
1163 stages of IPA optimizations. PARMS_AINFO contains the information that is
1164 only needed for intraprocedural analysis. */
1167 compute_complex_assign_jump_func (struct func_body_info
*fbi
,
1168 struct ipa_node_params
*info
,
1169 struct ipa_jump_func
*jfunc
,
1170 gcall
*call
, gimple stmt
, tree name
,
1173 HOST_WIDE_INT offset
, size
, max_size
;
1174 tree op1
, tc_ssa
, base
, ssa
;
1177 op1
= gimple_assign_rhs1 (stmt
);
1179 if (TREE_CODE (op1
) == SSA_NAME
)
1181 if (SSA_NAME_IS_DEFAULT_DEF (op1
))
1182 index
= ipa_get_param_decl_index (info
, SSA_NAME_VAR (op1
));
1184 index
= load_from_unmodified_param (fbi
, info
->descriptors
,
1185 SSA_NAME_DEF_STMT (op1
));
1190 index
= load_from_unmodified_param (fbi
, info
->descriptors
, stmt
);
1191 tc_ssa
= gimple_assign_lhs (stmt
);
1196 tree op2
= gimple_assign_rhs2 (stmt
);
1200 if (!is_gimple_ip_invariant (op2
)
1201 || (TREE_CODE_CLASS (gimple_expr_code (stmt
)) != tcc_comparison
1202 && !useless_type_conversion_p (TREE_TYPE (name
),
1206 ipa_set_jf_arith_pass_through (jfunc
, index
, op2
,
1207 gimple_assign_rhs_code (stmt
));
1209 else if (gimple_assign_single_p (stmt
))
1211 bool agg_p
= parm_ref_data_pass_through_p (fbi
, index
, call
, tc_ssa
);
1212 ipa_set_jf_simple_pass_through (jfunc
, index
, agg_p
);
1217 if (TREE_CODE (op1
) != ADDR_EXPR
)
1219 op1
= TREE_OPERAND (op1
, 0);
1220 if (TREE_CODE (TREE_TYPE (op1
)) != RECORD_TYPE
)
1222 base
= get_ref_base_and_extent (op1
, &offset
, &size
, &max_size
);
1223 if (TREE_CODE (base
) != MEM_REF
1224 /* If this is a varying address, punt. */
1226 || max_size
!= size
)
1228 offset
+= mem_ref_offset (base
).to_short_addr () * BITS_PER_UNIT
;
1229 ssa
= TREE_OPERAND (base
, 0);
1230 if (TREE_CODE (ssa
) != SSA_NAME
1231 || !SSA_NAME_IS_DEFAULT_DEF (ssa
)
1235 /* Dynamic types are changed in constructors and destructors. */
1236 index
= ipa_get_param_decl_index (info
, SSA_NAME_VAR (ssa
));
1237 if (index
>= 0 && param_type
&& POINTER_TYPE_P (param_type
))
1238 ipa_set_ancestor_jf (jfunc
, offset
, index
,
1239 parm_ref_data_pass_through_p (fbi
, index
, call
, ssa
));
1242 /* Extract the base, offset and MEM_REF expression from a statement ASSIGN if
1245 iftmp.1_3 = &obj_2(D)->D.1762;
1247 The base of the MEM_REF must be a default definition SSA NAME of a
1248 parameter. Return NULL_TREE if it looks otherwise. If case of success, the
1249 whole MEM_REF expression is returned and the offset calculated from any
1250 handled components and the MEM_REF itself is stored into *OFFSET. The whole
1251 RHS stripped off the ADDR_EXPR is stored into *OBJ_P. */
1254 get_ancestor_addr_info (gimple assign
, tree
*obj_p
, HOST_WIDE_INT
*offset
)
1256 HOST_WIDE_INT size
, max_size
;
1257 tree expr
, parm
, obj
;
1259 if (!gimple_assign_single_p (assign
))
1261 expr
= gimple_assign_rhs1 (assign
);
1263 if (TREE_CODE (expr
) != ADDR_EXPR
)
1265 expr
= TREE_OPERAND (expr
, 0);
1267 expr
= get_ref_base_and_extent (expr
, offset
, &size
, &max_size
);
1269 if (TREE_CODE (expr
) != MEM_REF
1270 /* If this is a varying address, punt. */
1275 parm
= TREE_OPERAND (expr
, 0);
1276 if (TREE_CODE (parm
) != SSA_NAME
1277 || !SSA_NAME_IS_DEFAULT_DEF (parm
)
1278 || TREE_CODE (SSA_NAME_VAR (parm
)) != PARM_DECL
)
1281 *offset
+= mem_ref_offset (expr
).to_short_addr () * BITS_PER_UNIT
;
1287 /* Given that an actual argument is an SSA_NAME that is a result of a phi
1288 statement PHI, try to find out whether NAME is in fact a
1289 multiple-inheritance typecast from a descendant into an ancestor of a formal
1290 parameter and thus can be described by an ancestor jump function and if so,
1291 write the appropriate function into JFUNC.
1293 Essentially we want to match the following pattern:
1301 iftmp.1_3 = &obj_2(D)->D.1762;
1304 # iftmp.1_1 = PHI <iftmp.1_3(3), 0B(2)>
1305 D.1879_6 = middleman_1 (iftmp.1_1, i_5(D));
1309 compute_complex_ancestor_jump_func (struct func_body_info
*fbi
,
1310 struct ipa_node_params
*info
,
1311 struct ipa_jump_func
*jfunc
,
1312 gcall
*call
, gphi
*phi
)
1314 HOST_WIDE_INT offset
;
1315 gimple assign
, cond
;
1316 basic_block phi_bb
, assign_bb
, cond_bb
;
1317 tree tmp
, parm
, expr
, obj
;
1320 if (gimple_phi_num_args (phi
) != 2)
1323 if (integer_zerop (PHI_ARG_DEF (phi
, 1)))
1324 tmp
= PHI_ARG_DEF (phi
, 0);
1325 else if (integer_zerop (PHI_ARG_DEF (phi
, 0)))
1326 tmp
= PHI_ARG_DEF (phi
, 1);
1329 if (TREE_CODE (tmp
) != SSA_NAME
1330 || SSA_NAME_IS_DEFAULT_DEF (tmp
)
1331 || !POINTER_TYPE_P (TREE_TYPE (tmp
))
1332 || TREE_CODE (TREE_TYPE (TREE_TYPE (tmp
))) != RECORD_TYPE
)
1335 assign
= SSA_NAME_DEF_STMT (tmp
);
1336 assign_bb
= gimple_bb (assign
);
1337 if (!single_pred_p (assign_bb
))
1339 expr
= get_ancestor_addr_info (assign
, &obj
, &offset
);
1342 parm
= TREE_OPERAND (expr
, 0);
1343 index
= ipa_get_param_decl_index (info
, SSA_NAME_VAR (parm
));
1347 cond_bb
= single_pred (assign_bb
);
1348 cond
= last_stmt (cond_bb
);
1350 || gimple_code (cond
) != GIMPLE_COND
1351 || gimple_cond_code (cond
) != NE_EXPR
1352 || gimple_cond_lhs (cond
) != parm
1353 || !integer_zerop (gimple_cond_rhs (cond
)))
1356 phi_bb
= gimple_bb (phi
);
1357 for (i
= 0; i
< 2; i
++)
1359 basic_block pred
= EDGE_PRED (phi_bb
, i
)->src
;
1360 if (pred
!= assign_bb
&& pred
!= cond_bb
)
1364 ipa_set_ancestor_jf (jfunc
, offset
, index
,
1365 parm_ref_data_pass_through_p (fbi
, index
, call
, parm
));
1368 /* Inspect the given TYPE and return true iff it has the same structure (the
1369 same number of fields of the same types) as a C++ member pointer. If
1370 METHOD_PTR and DELTA are non-NULL, store the trees representing the
1371 corresponding fields there. */
1374 type_like_member_ptr_p (tree type
, tree
*method_ptr
, tree
*delta
)
1378 if (TREE_CODE (type
) != RECORD_TYPE
)
1381 fld
= TYPE_FIELDS (type
);
1382 if (!fld
|| !POINTER_TYPE_P (TREE_TYPE (fld
))
1383 || TREE_CODE (TREE_TYPE (TREE_TYPE (fld
))) != METHOD_TYPE
1384 || !tree_fits_uhwi_p (DECL_FIELD_OFFSET (fld
)))
1390 fld
= DECL_CHAIN (fld
);
1391 if (!fld
|| INTEGRAL_TYPE_P (fld
)
1392 || !tree_fits_uhwi_p (DECL_FIELD_OFFSET (fld
)))
1397 if (DECL_CHAIN (fld
))
1403 /* If RHS is an SSA_NAME and it is defined by a simple copy assign statement,
1404 return the rhs of its defining statement. Otherwise return RHS as it
1408 get_ssa_def_if_simple_copy (tree rhs
)
1410 while (TREE_CODE (rhs
) == SSA_NAME
&& !SSA_NAME_IS_DEFAULT_DEF (rhs
))
1412 gimple def_stmt
= SSA_NAME_DEF_STMT (rhs
);
1414 if (gimple_assign_single_p (def_stmt
))
1415 rhs
= gimple_assign_rhs1 (def_stmt
);
1422 /* Simple linked list, describing known contents of an aggregate beforere
1425 struct ipa_known_agg_contents_list
1427 /* Offset and size of the described part of the aggregate. */
1428 HOST_WIDE_INT offset
, size
;
1429 /* Known constant value or NULL if the contents is known to be unknown. */
1431 /* Pointer to the next structure in the list. */
1432 struct ipa_known_agg_contents_list
*next
;
1435 /* Find the proper place in linked list of ipa_known_agg_contents_list
1436 structures where to put a new one with the given LHS_OFFSET and LHS_SIZE,
1437 unless there is a partial overlap, in which case return NULL, or such
1438 element is already there, in which case set *ALREADY_THERE to true. */
1440 static struct ipa_known_agg_contents_list
**
1441 get_place_in_agg_contents_list (struct ipa_known_agg_contents_list
**list
,
1442 HOST_WIDE_INT lhs_offset
,
1443 HOST_WIDE_INT lhs_size
,
1444 bool *already_there
)
1446 struct ipa_known_agg_contents_list
**p
= list
;
1447 while (*p
&& (*p
)->offset
< lhs_offset
)
1449 if ((*p
)->offset
+ (*p
)->size
> lhs_offset
)
1454 if (*p
&& (*p
)->offset
< lhs_offset
+ lhs_size
)
1456 if ((*p
)->offset
== lhs_offset
&& (*p
)->size
== lhs_size
)
1457 /* We already know this value is subsequently overwritten with
1459 *already_there
= true;
1461 /* Otherwise this is a partial overlap which we cannot
1468 /* Build aggregate jump function from LIST, assuming there are exactly
1469 CONST_COUNT constant entries there and that th offset of the passed argument
1470 is ARG_OFFSET and store it into JFUNC. */
1473 build_agg_jump_func_from_list (struct ipa_known_agg_contents_list
*list
,
1474 int const_count
, HOST_WIDE_INT arg_offset
,
1475 struct ipa_jump_func
*jfunc
)
1477 vec_alloc (jfunc
->agg
.items
, const_count
);
1482 struct ipa_agg_jf_item item
;
1483 item
.offset
= list
->offset
- arg_offset
;
1484 gcc_assert ((item
.offset
% BITS_PER_UNIT
) == 0);
1485 item
.value
= unshare_expr_without_location (list
->constant
);
1486 jfunc
->agg
.items
->quick_push (item
);
1492 /* Traverse statements from CALL backwards, scanning whether an aggregate given
1493 in ARG is filled in with constant values. ARG can either be an aggregate
1494 expression or a pointer to an aggregate. ARG_TYPE is the type of the
1495 aggregate. JFUNC is the jump function into which the constants are
1496 subsequently stored. */
1499 determine_locally_known_aggregate_parts (gcall
*call
, tree arg
,
1501 struct ipa_jump_func
*jfunc
)
1503 struct ipa_known_agg_contents_list
*list
= NULL
;
1504 int item_count
= 0, const_count
= 0;
1505 HOST_WIDE_INT arg_offset
, arg_size
;
1506 gimple_stmt_iterator gsi
;
1508 bool check_ref
, by_ref
;
1511 /* The function operates in three stages. First, we prepare check_ref, r,
1512 arg_base and arg_offset based on what is actually passed as an actual
1515 if (POINTER_TYPE_P (arg_type
))
1518 if (TREE_CODE (arg
) == SSA_NAME
)
1521 if (!tree_fits_uhwi_p (TYPE_SIZE (TREE_TYPE (arg_type
))))
1526 type_size
= TYPE_SIZE (TREE_TYPE (arg_type
));
1527 arg_size
= tree_to_uhwi (type_size
);
1528 ao_ref_init_from_ptr_and_size (&r
, arg_base
, NULL_TREE
);
1530 else if (TREE_CODE (arg
) == ADDR_EXPR
)
1532 HOST_WIDE_INT arg_max_size
;
1534 arg
= TREE_OPERAND (arg
, 0);
1535 arg_base
= get_ref_base_and_extent (arg
, &arg_offset
, &arg_size
,
1537 if (arg_max_size
== -1
1538 || arg_max_size
!= arg_size
1541 if (DECL_P (arg_base
))
1544 ao_ref_init (&r
, arg_base
);
1554 HOST_WIDE_INT arg_max_size
;
1556 gcc_checking_assert (AGGREGATE_TYPE_P (TREE_TYPE (arg
)));
1560 arg_base
= get_ref_base_and_extent (arg
, &arg_offset
, &arg_size
,
1562 if (arg_max_size
== -1
1563 || arg_max_size
!= arg_size
1567 ao_ref_init (&r
, arg
);
1570 /* Second stage walks back the BB, looks at individual statements and as long
1571 as it is confident of how the statements affect contents of the
1572 aggregates, it builds a sorted linked list of ipa_agg_jf_list structures
1574 gsi
= gsi_for_stmt (call
);
1576 for (; !gsi_end_p (gsi
); gsi_prev (&gsi
))
1578 struct ipa_known_agg_contents_list
*n
, **p
;
1579 gimple stmt
= gsi_stmt (gsi
);
1580 HOST_WIDE_INT lhs_offset
, lhs_size
, lhs_max_size
;
1581 tree lhs
, rhs
, lhs_base
;
1583 if (!stmt_may_clobber_ref_p_1 (stmt
, &r
))
1585 if (!gimple_assign_single_p (stmt
))
1588 lhs
= gimple_assign_lhs (stmt
);
1589 rhs
= gimple_assign_rhs1 (stmt
);
1590 if (!is_gimple_reg_type (TREE_TYPE (rhs
))
1591 || TREE_CODE (lhs
) == BIT_FIELD_REF
1592 || contains_bitfld_component_ref_p (lhs
))
1595 lhs_base
= get_ref_base_and_extent (lhs
, &lhs_offset
, &lhs_size
,
1597 if (lhs_max_size
== -1
1598 || lhs_max_size
!= lhs_size
)
1603 if (TREE_CODE (lhs_base
) != MEM_REF
1604 || TREE_OPERAND (lhs_base
, 0) != arg_base
1605 || !integer_zerop (TREE_OPERAND (lhs_base
, 1)))
1608 else if (lhs_base
!= arg_base
)
1610 if (DECL_P (lhs_base
))
1616 bool already_there
= false;
1617 p
= get_place_in_agg_contents_list (&list
, lhs_offset
, lhs_size
,
1624 rhs
= get_ssa_def_if_simple_copy (rhs
);
1625 n
= XALLOCA (struct ipa_known_agg_contents_list
);
1627 n
->offset
= lhs_offset
;
1628 if (is_gimple_ip_invariant (rhs
))
1634 n
->constant
= NULL_TREE
;
1639 if (const_count
== PARAM_VALUE (PARAM_IPA_MAX_AGG_ITEMS
)
1640 || item_count
== 2 * PARAM_VALUE (PARAM_IPA_MAX_AGG_ITEMS
))
1644 /* Third stage just goes over the list and creates an appropriate vector of
1645 ipa_agg_jf_item structures out of it, of sourse only if there are
1646 any known constants to begin with. */
1650 jfunc
->agg
.by_ref
= by_ref
;
1651 build_agg_jump_func_from_list (list
, const_count
, arg_offset
, jfunc
);
1656 ipa_get_callee_param_type (struct cgraph_edge
*e
, int i
)
1659 tree type
= (e
->callee
1660 ? TREE_TYPE (e
->callee
->decl
)
1661 : gimple_call_fntype (e
->call_stmt
));
1662 tree t
= TYPE_ARG_TYPES (type
);
1664 for (n
= 0; n
< i
; n
++)
1671 return TREE_VALUE (t
);
1674 t
= DECL_ARGUMENTS (e
->callee
->decl
);
1675 for (n
= 0; n
< i
; n
++)
1682 return TREE_TYPE (t
);
1686 /* Compute jump function for all arguments of callsite CS and insert the
1687 information in the jump_functions array in the ipa_edge_args corresponding
1688 to this callsite. */
1691 ipa_compute_jump_functions_for_edge (struct func_body_info
*fbi
,
1692 struct cgraph_edge
*cs
)
1694 struct ipa_node_params
*info
= IPA_NODE_REF (cs
->caller
);
1695 struct ipa_edge_args
*args
= IPA_EDGE_REF (cs
);
1696 gcall
*call
= cs
->call_stmt
;
1697 int n
, arg_num
= gimple_call_num_args (call
);
1698 bool useful_context
= false;
1700 if (arg_num
== 0 || args
->jump_functions
)
1702 vec_safe_grow_cleared (args
->jump_functions
, arg_num
);
1703 if (flag_devirtualize
)
1704 vec_safe_grow_cleared (args
->polymorphic_call_contexts
, arg_num
);
1706 if (gimple_call_internal_p (call
))
1708 if (ipa_func_spec_opts_forbid_analysis_p (cs
->caller
))
1711 for (n
= 0; n
< arg_num
; n
++)
1713 struct ipa_jump_func
*jfunc
= ipa_get_ith_jump_func (args
, n
);
1714 tree arg
= gimple_call_arg (call
, n
);
1715 tree param_type
= ipa_get_callee_param_type (cs
, n
);
1716 if (flag_devirtualize
&& POINTER_TYPE_P (TREE_TYPE (arg
)))
1719 struct ipa_polymorphic_call_context
context (cs
->caller
->decl
,
1722 context
.get_dynamic_type (instance
, arg
, NULL
, cs
->call_stmt
);
1723 *ipa_get_ith_polymorhic_call_context (args
, n
) = context
;
1724 if (!context
.useless_p ())
1725 useful_context
= true;
1728 if (POINTER_TYPE_P (TREE_TYPE(arg
)))
1730 unsigned HOST_WIDE_INT hwi_bitpos
;
1733 if (get_pointer_alignment_1 (arg
, &align
, &hwi_bitpos
)
1734 && align
% BITS_PER_UNIT
== 0
1735 && hwi_bitpos
% BITS_PER_UNIT
== 0)
1737 jfunc
->alignment
.known
= true;
1738 jfunc
->alignment
.align
= align
/ BITS_PER_UNIT
;
1739 jfunc
->alignment
.misalign
= hwi_bitpos
/ BITS_PER_UNIT
;
1742 gcc_assert (!jfunc
->alignment
.known
);
1745 gcc_assert (!jfunc
->alignment
.known
);
1747 if (is_gimple_ip_invariant (arg
))
1748 ipa_set_jf_constant (jfunc
, arg
, cs
);
1749 else if (!is_gimple_reg_type (TREE_TYPE (arg
))
1750 && TREE_CODE (arg
) == PARM_DECL
)
1752 int index
= ipa_get_param_decl_index (info
, arg
);
1754 gcc_assert (index
>=0);
1755 /* Aggregate passed by value, check for pass-through, otherwise we
1756 will attempt to fill in aggregate contents later in this
1758 if (parm_preserved_before_stmt_p (fbi
, index
, call
, arg
))
1760 ipa_set_jf_simple_pass_through (jfunc
, index
, false);
1764 else if (TREE_CODE (arg
) == SSA_NAME
)
1766 if (SSA_NAME_IS_DEFAULT_DEF (arg
))
1768 int index
= ipa_get_param_decl_index (info
, SSA_NAME_VAR (arg
));
1772 agg_p
= parm_ref_data_pass_through_p (fbi
, index
, call
, arg
);
1773 ipa_set_jf_simple_pass_through (jfunc
, index
, agg_p
);
1778 gimple stmt
= SSA_NAME_DEF_STMT (arg
);
1779 if (is_gimple_assign (stmt
))
1780 compute_complex_assign_jump_func (fbi
, info
, jfunc
,
1781 call
, stmt
, arg
, param_type
);
1782 else if (gimple_code (stmt
) == GIMPLE_PHI
)
1783 compute_complex_ancestor_jump_func (fbi
, info
, jfunc
,
1785 as_a
<gphi
*> (stmt
));
1789 /* If ARG is pointer, we can not use its type to determine the type of aggregate
1790 passed (because type conversions are ignored in gimple). Usually we can
1791 safely get type from function declaration, but in case of K&R prototypes or
1792 variadic functions we can try our luck with type of the pointer passed.
1793 TODO: Since we look for actual initialization of the memory object, we may better
1794 work out the type based on the memory stores we find. */
1796 param_type
= TREE_TYPE (arg
);
1798 if ((jfunc
->type
!= IPA_JF_PASS_THROUGH
1799 || !ipa_get_jf_pass_through_agg_preserved (jfunc
))
1800 && (jfunc
->type
!= IPA_JF_ANCESTOR
1801 || !ipa_get_jf_ancestor_agg_preserved (jfunc
))
1802 && (AGGREGATE_TYPE_P (TREE_TYPE (arg
))
1803 || POINTER_TYPE_P (param_type
)))
1804 determine_locally_known_aggregate_parts (call
, arg
, param_type
, jfunc
);
1806 if (!useful_context
)
1807 vec_free (args
->polymorphic_call_contexts
);
1810 /* Compute jump functions for all edges - both direct and indirect - outgoing
1814 ipa_compute_jump_functions_for_bb (struct func_body_info
*fbi
, basic_block bb
)
1816 struct ipa_bb_info
*bi
= ipa_get_bb_info (fbi
, bb
);
1818 struct cgraph_edge
*cs
;
1820 FOR_EACH_VEC_ELT_REVERSE (bi
->cg_edges
, i
, cs
)
1822 struct cgraph_node
*callee
= cs
->callee
;
1826 callee
->ultimate_alias_target ();
1827 /* We do not need to bother analyzing calls to unknown functions
1828 unless they may become known during lto/whopr. */
1829 if (!callee
->definition
&& !flag_lto
)
1832 ipa_compute_jump_functions_for_edge (fbi
, cs
);
1836 /* If STMT looks like a statement loading a value from a member pointer formal
1837 parameter, return that parameter and store the offset of the field to
1838 *OFFSET_P, if it is non-NULL. Otherwise return NULL (but *OFFSET_P still
1839 might be clobbered). If USE_DELTA, then we look for a use of the delta
1840 field rather than the pfn. */
1843 ipa_get_stmt_member_ptr_load_param (gimple stmt
, bool use_delta
,
1844 HOST_WIDE_INT
*offset_p
)
1846 tree rhs
, rec
, ref_field
, ref_offset
, fld
, ptr_field
, delta_field
;
1848 if (!gimple_assign_single_p (stmt
))
1851 rhs
= gimple_assign_rhs1 (stmt
);
1852 if (TREE_CODE (rhs
) == COMPONENT_REF
)
1854 ref_field
= TREE_OPERAND (rhs
, 1);
1855 rhs
= TREE_OPERAND (rhs
, 0);
1858 ref_field
= NULL_TREE
;
1859 if (TREE_CODE (rhs
) != MEM_REF
)
1861 rec
= TREE_OPERAND (rhs
, 0);
1862 if (TREE_CODE (rec
) != ADDR_EXPR
)
1864 rec
= TREE_OPERAND (rec
, 0);
1865 if (TREE_CODE (rec
) != PARM_DECL
1866 || !type_like_member_ptr_p (TREE_TYPE (rec
), &ptr_field
, &delta_field
))
1868 ref_offset
= TREE_OPERAND (rhs
, 1);
1875 *offset_p
= int_bit_position (fld
);
1879 if (integer_nonzerop (ref_offset
))
1881 return ref_field
== fld
? rec
: NULL_TREE
;
1884 return tree_int_cst_equal (byte_position (fld
), ref_offset
) ? rec
1888 /* Returns true iff T is an SSA_NAME defined by a statement. */
1891 ipa_is_ssa_with_stmt_def (tree t
)
1893 if (TREE_CODE (t
) == SSA_NAME
1894 && !SSA_NAME_IS_DEFAULT_DEF (t
))
1900 /* Find the indirect call graph edge corresponding to STMT and mark it as a
1901 call to a parameter number PARAM_INDEX. NODE is the caller. Return the
1902 indirect call graph edge. */
1904 static struct cgraph_edge
*
1905 ipa_note_param_call (struct cgraph_node
*node
, int param_index
,
1908 struct cgraph_edge
*cs
;
1910 cs
= node
->get_edge (stmt
);
1911 cs
->indirect_info
->param_index
= param_index
;
1912 cs
->indirect_info
->agg_contents
= 0;
1913 cs
->indirect_info
->member_ptr
= 0;
1917 /* Analyze the CALL and examine uses of formal parameters of the caller NODE
1918 (described by INFO). PARMS_AINFO is a pointer to a vector containing
1919 intermediate information about each formal parameter. Currently it checks
1920 whether the call calls a pointer that is a formal parameter and if so, the
1921 parameter is marked with the called flag and an indirect call graph edge
1922 describing the call is created. This is very simple for ordinary pointers
1923 represented in SSA but not-so-nice when it comes to member pointers. The
1924 ugly part of this function does nothing more than trying to match the
1925 pattern of such a call. An example of such a pattern is the gimple dump
1926 below, the call is on the last line:
1929 f$__delta_5 = f.__delta;
1930 f$__pfn_24 = f.__pfn;
1934 f$__delta_5 = MEM[(struct *)&f];
1935 f$__pfn_24 = MEM[(struct *)&f + 4B];
1937 and a few lines below:
1940 D.2496_3 = (int) f$__pfn_24;
1941 D.2497_4 = D.2496_3 & 1;
1948 D.2500_7 = (unsigned int) f$__delta_5;
1949 D.2501_8 = &S + D.2500_7;
1950 D.2502_9 = (int (*__vtbl_ptr_type) (void) * *) D.2501_8;
1951 D.2503_10 = *D.2502_9;
1952 D.2504_12 = f$__pfn_24 + -1;
1953 D.2505_13 = (unsigned int) D.2504_12;
1954 D.2506_14 = D.2503_10 + D.2505_13;
1955 D.2507_15 = *D.2506_14;
1956 iftmp.11_16 = (String:: *) D.2507_15;
1959 # iftmp.11_1 = PHI <iftmp.11_16(3), f$__pfn_24(2)>
1960 D.2500_19 = (unsigned int) f$__delta_5;
1961 D.2508_20 = &S + D.2500_19;
1962 D.2493_21 = iftmp.11_1 (D.2508_20, 4);
1964 Such patterns are results of simple calls to a member pointer:
1966 int doprinting (int (MyString::* f)(int) const)
1968 MyString S ("somestring");
1973 Moreover, the function also looks for called pointers loaded from aggregates
1974 passed by value or reference. */
1977 ipa_analyze_indirect_call_uses (struct func_body_info
*fbi
, gcall
*call
,
1980 struct ipa_node_params
*info
= fbi
->info
;
1981 HOST_WIDE_INT offset
;
1984 if (SSA_NAME_IS_DEFAULT_DEF (target
))
1986 tree var
= SSA_NAME_VAR (target
);
1987 int index
= ipa_get_param_decl_index (info
, var
);
1989 ipa_note_param_call (fbi
->node
, index
, call
);
1994 gimple def
= SSA_NAME_DEF_STMT (target
);
1995 if (gimple_assign_single_p (def
)
1996 && ipa_load_from_parm_agg_1 (fbi
, info
->descriptors
, def
,
1997 gimple_assign_rhs1 (def
), &index
, &offset
,
2000 struct cgraph_edge
*cs
= ipa_note_param_call (fbi
->node
, index
, call
);
2001 cs
->indirect_info
->offset
= offset
;
2002 cs
->indirect_info
->agg_contents
= 1;
2003 cs
->indirect_info
->by_ref
= by_ref
;
2007 /* Now we need to try to match the complex pattern of calling a member
2009 if (gimple_code (def
) != GIMPLE_PHI
2010 || gimple_phi_num_args (def
) != 2
2011 || !POINTER_TYPE_P (TREE_TYPE (target
))
2012 || TREE_CODE (TREE_TYPE (TREE_TYPE (target
))) != METHOD_TYPE
)
2015 /* First, we need to check whether one of these is a load from a member
2016 pointer that is a parameter to this function. */
2017 tree n1
= PHI_ARG_DEF (def
, 0);
2018 tree n2
= PHI_ARG_DEF (def
, 1);
2019 if (!ipa_is_ssa_with_stmt_def (n1
) || !ipa_is_ssa_with_stmt_def (n2
))
2021 gimple d1
= SSA_NAME_DEF_STMT (n1
);
2022 gimple d2
= SSA_NAME_DEF_STMT (n2
);
2025 basic_block bb
, virt_bb
;
2026 basic_block join
= gimple_bb (def
);
2027 if ((rec
= ipa_get_stmt_member_ptr_load_param (d1
, false, &offset
)))
2029 if (ipa_get_stmt_member_ptr_load_param (d2
, false, NULL
))
2032 bb
= EDGE_PRED (join
, 0)->src
;
2033 virt_bb
= gimple_bb (d2
);
2035 else if ((rec
= ipa_get_stmt_member_ptr_load_param (d2
, false, &offset
)))
2037 bb
= EDGE_PRED (join
, 1)->src
;
2038 virt_bb
= gimple_bb (d1
);
2043 /* Second, we need to check that the basic blocks are laid out in the way
2044 corresponding to the pattern. */
2046 if (!single_pred_p (virt_bb
) || !single_succ_p (virt_bb
)
2047 || single_pred (virt_bb
) != bb
2048 || single_succ (virt_bb
) != join
)
2051 /* Third, let's see that the branching is done depending on the least
2052 significant bit of the pfn. */
2054 gimple branch
= last_stmt (bb
);
2055 if (!branch
|| gimple_code (branch
) != GIMPLE_COND
)
2058 if ((gimple_cond_code (branch
) != NE_EXPR
2059 && gimple_cond_code (branch
) != EQ_EXPR
)
2060 || !integer_zerop (gimple_cond_rhs (branch
)))
2063 tree cond
= gimple_cond_lhs (branch
);
2064 if (!ipa_is_ssa_with_stmt_def (cond
))
2067 def
= SSA_NAME_DEF_STMT (cond
);
2068 if (!is_gimple_assign (def
)
2069 || gimple_assign_rhs_code (def
) != BIT_AND_EXPR
2070 || !integer_onep (gimple_assign_rhs2 (def
)))
2073 cond
= gimple_assign_rhs1 (def
);
2074 if (!ipa_is_ssa_with_stmt_def (cond
))
2077 def
= SSA_NAME_DEF_STMT (cond
);
2079 if (is_gimple_assign (def
)
2080 && CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (def
)))
2082 cond
= gimple_assign_rhs1 (def
);
2083 if (!ipa_is_ssa_with_stmt_def (cond
))
2085 def
= SSA_NAME_DEF_STMT (cond
);
2089 rec2
= ipa_get_stmt_member_ptr_load_param (def
,
2090 (TARGET_PTRMEMFUNC_VBIT_LOCATION
2091 == ptrmemfunc_vbit_in_delta
),
2096 index
= ipa_get_param_decl_index (info
, rec
);
2098 && parm_preserved_before_stmt_p (fbi
, index
, call
, rec
))
2100 struct cgraph_edge
*cs
= ipa_note_param_call (fbi
->node
, index
, call
);
2101 cs
->indirect_info
->offset
= offset
;
2102 cs
->indirect_info
->agg_contents
= 1;
2103 cs
->indirect_info
->member_ptr
= 1;
2109 /* Analyze a CALL to an OBJ_TYPE_REF which is passed in TARGET and if the
2110 object referenced in the expression is a formal parameter of the caller
2111 FBI->node (described by FBI->info), create a call note for the
2115 ipa_analyze_virtual_call_uses (struct func_body_info
*fbi
,
2116 gcall
*call
, tree target
)
2118 tree obj
= OBJ_TYPE_REF_OBJECT (target
);
2120 HOST_WIDE_INT anc_offset
;
2122 if (!flag_devirtualize
)
2125 if (TREE_CODE (obj
) != SSA_NAME
)
2128 struct ipa_node_params
*info
= fbi
->info
;
2129 if (SSA_NAME_IS_DEFAULT_DEF (obj
))
2131 struct ipa_jump_func jfunc
;
2132 if (TREE_CODE (SSA_NAME_VAR (obj
)) != PARM_DECL
)
2136 index
= ipa_get_param_decl_index (info
, SSA_NAME_VAR (obj
));
2137 gcc_assert (index
>= 0);
2138 if (detect_type_change_ssa (obj
, obj_type_ref_class (target
),
2144 struct ipa_jump_func jfunc
;
2145 gimple stmt
= SSA_NAME_DEF_STMT (obj
);
2148 expr
= get_ancestor_addr_info (stmt
, &obj
, &anc_offset
);
2151 index
= ipa_get_param_decl_index (info
,
2152 SSA_NAME_VAR (TREE_OPERAND (expr
, 0)));
2153 gcc_assert (index
>= 0);
2154 if (detect_type_change (obj
, expr
, obj_type_ref_class (target
),
2155 call
, &jfunc
, anc_offset
))
2159 struct cgraph_edge
*cs
= ipa_note_param_call (fbi
->node
, index
, call
);
2160 struct cgraph_indirect_call_info
*ii
= cs
->indirect_info
;
2161 ii
->offset
= anc_offset
;
2162 ii
->otr_token
= tree_to_uhwi (OBJ_TYPE_REF_TOKEN (target
));
2163 ii
->otr_type
= obj_type_ref_class (target
);
2164 ii
->polymorphic
= 1;
2167 /* Analyze a call statement CALL whether and how it utilizes formal parameters
2168 of the caller (described by INFO). PARMS_AINFO is a pointer to a vector
2169 containing intermediate information about each formal parameter. */
2172 ipa_analyze_call_uses (struct func_body_info
*fbi
, gcall
*call
)
2174 tree target
= gimple_call_fn (call
);
2177 || (TREE_CODE (target
) != SSA_NAME
2178 && !virtual_method_call_p (target
)))
2181 struct cgraph_edge
*cs
= fbi
->node
->get_edge (call
);
2182 /* If we previously turned the call into a direct call, there is
2183 no need to analyze. */
2184 if (cs
&& !cs
->indirect_unknown_callee
)
2187 if (cs
->indirect_info
->polymorphic
&& flag_devirtualize
)
2190 tree target
= gimple_call_fn (call
);
2191 ipa_polymorphic_call_context
context (current_function_decl
,
2192 target
, call
, &instance
);
2194 gcc_checking_assert (cs
->indirect_info
->otr_type
2195 == obj_type_ref_class (target
));
2196 gcc_checking_assert (cs
->indirect_info
->otr_token
2197 == tree_to_shwi (OBJ_TYPE_REF_TOKEN (target
)));
2199 cs
->indirect_info
->vptr_changed
2200 = !context
.get_dynamic_type (instance
,
2201 OBJ_TYPE_REF_OBJECT (target
),
2202 obj_type_ref_class (target
), call
);
2203 cs
->indirect_info
->context
= context
;
2206 if (TREE_CODE (target
) == SSA_NAME
)
2207 ipa_analyze_indirect_call_uses (fbi
, call
, target
);
2208 else if (virtual_method_call_p (target
))
2209 ipa_analyze_virtual_call_uses (fbi
, call
, target
);
2213 /* Analyze the call statement STMT with respect to formal parameters (described
2214 in INFO) of caller given by FBI->NODE. Currently it only checks whether
2215 formal parameters are called. */
2218 ipa_analyze_stmt_uses (struct func_body_info
*fbi
, gimple stmt
)
2220 if (is_gimple_call (stmt
))
2221 ipa_analyze_call_uses (fbi
, as_a
<gcall
*> (stmt
));
2224 /* Callback of walk_stmt_load_store_addr_ops for the visit_load.
2225 If OP is a parameter declaration, mark it as used in the info structure
2229 visit_ref_for_mod_analysis (gimple
, tree op
, tree
, void *data
)
2231 struct ipa_node_params
*info
= (struct ipa_node_params
*) data
;
2233 op
= get_base_address (op
);
2235 && TREE_CODE (op
) == PARM_DECL
)
2237 int index
= ipa_get_param_decl_index (info
, op
);
2238 gcc_assert (index
>= 0);
2239 ipa_set_param_used (info
, index
, true);
2245 /* Scan the statements in BB and inspect the uses of formal parameters. Store
2246 the findings in various structures of the associated ipa_node_params
2247 structure, such as parameter flags, notes etc. FBI holds various data about
2248 the function being analyzed. */
2251 ipa_analyze_params_uses_in_bb (struct func_body_info
*fbi
, basic_block bb
)
2253 gimple_stmt_iterator gsi
;
2254 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
2256 gimple stmt
= gsi_stmt (gsi
);
2258 if (is_gimple_debug (stmt
))
2261 ipa_analyze_stmt_uses (fbi
, stmt
);
2262 walk_stmt_load_store_addr_ops (stmt
, fbi
->info
,
2263 visit_ref_for_mod_analysis
,
2264 visit_ref_for_mod_analysis
,
2265 visit_ref_for_mod_analysis
);
2267 for (gsi
= gsi_start_phis (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
2268 walk_stmt_load_store_addr_ops (gsi_stmt (gsi
), fbi
->info
,
2269 visit_ref_for_mod_analysis
,
2270 visit_ref_for_mod_analysis
,
2271 visit_ref_for_mod_analysis
);
2274 /* Calculate controlled uses of parameters of NODE. */
2277 ipa_analyze_controlled_uses (struct cgraph_node
*node
)
2279 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
2281 for (int i
= 0; i
< ipa_get_param_count (info
); i
++)
2283 tree parm
= ipa_get_param (info
, i
);
2284 int controlled_uses
= 0;
2286 /* For SSA regs see if parameter is used. For non-SSA we compute
2287 the flag during modification analysis. */
2288 if (is_gimple_reg (parm
))
2290 tree ddef
= ssa_default_def (DECL_STRUCT_FUNCTION (node
->decl
),
2292 if (ddef
&& !has_zero_uses (ddef
))
2294 imm_use_iterator imm_iter
;
2295 use_operand_p use_p
;
2297 ipa_set_param_used (info
, i
, true);
2298 FOR_EACH_IMM_USE_FAST (use_p
, imm_iter
, ddef
)
2299 if (!is_gimple_call (USE_STMT (use_p
)))
2301 if (!is_gimple_debug (USE_STMT (use_p
)))
2303 controlled_uses
= IPA_UNDESCRIBED_USE
;
2311 controlled_uses
= 0;
2314 controlled_uses
= IPA_UNDESCRIBED_USE
;
2315 ipa_set_controlled_uses (info
, i
, controlled_uses
);
2319 /* Free stuff in BI. */
2322 free_ipa_bb_info (struct ipa_bb_info
*bi
)
2324 bi
->cg_edges
.release ();
2325 bi
->param_aa_statuses
.release ();
2328 /* Dominator walker driving the analysis. */
2330 class analysis_dom_walker
: public dom_walker
2333 analysis_dom_walker (struct func_body_info
*fbi
)
2334 : dom_walker (CDI_DOMINATORS
), m_fbi (fbi
) {}
2336 virtual void before_dom_children (basic_block
);
2339 struct func_body_info
*m_fbi
;
2343 analysis_dom_walker::before_dom_children (basic_block bb
)
2345 ipa_analyze_params_uses_in_bb (m_fbi
, bb
);
2346 ipa_compute_jump_functions_for_bb (m_fbi
, bb
);
2349 /* Initialize the array describing properties of of formal parameters
2350 of NODE, analyze their uses and compute jump functions associated
2351 with actual arguments of calls from within NODE. */
2354 ipa_analyze_node (struct cgraph_node
*node
)
2356 struct func_body_info fbi
;
2357 struct ipa_node_params
*info
;
2359 ipa_check_create_node_params ();
2360 ipa_check_create_edge_args ();
2361 info
= IPA_NODE_REF (node
);
2363 if (info
->analysis_done
)
2365 info
->analysis_done
= 1;
2367 if (ipa_func_spec_opts_forbid_analysis_p (node
))
2369 for (int i
= 0; i
< ipa_get_param_count (info
); i
++)
2371 ipa_set_param_used (info
, i
, true);
2372 ipa_set_controlled_uses (info
, i
, IPA_UNDESCRIBED_USE
);
2377 struct function
*func
= DECL_STRUCT_FUNCTION (node
->decl
);
2379 calculate_dominance_info (CDI_DOMINATORS
);
2380 ipa_initialize_node_params (node
);
2381 ipa_analyze_controlled_uses (node
);
2384 fbi
.info
= IPA_NODE_REF (node
);
2385 fbi
.bb_infos
= vNULL
;
2386 fbi
.bb_infos
.safe_grow_cleared (last_basic_block_for_fn (cfun
));
2387 fbi
.param_count
= ipa_get_param_count (info
);
2390 for (struct cgraph_edge
*cs
= node
->callees
; cs
; cs
= cs
->next_callee
)
2392 ipa_bb_info
*bi
= ipa_get_bb_info (&fbi
, gimple_bb (cs
->call_stmt
));
2393 bi
->cg_edges
.safe_push (cs
);
2396 for (struct cgraph_edge
*cs
= node
->indirect_calls
; cs
; cs
= cs
->next_callee
)
2398 ipa_bb_info
*bi
= ipa_get_bb_info (&fbi
, gimple_bb (cs
->call_stmt
));
2399 bi
->cg_edges
.safe_push (cs
);
2402 analysis_dom_walker (&fbi
).walk (ENTRY_BLOCK_PTR_FOR_FN (cfun
));
2405 struct ipa_bb_info
*bi
;
2406 FOR_EACH_VEC_ELT (fbi
.bb_infos
, i
, bi
)
2407 free_ipa_bb_info (bi
);
2408 fbi
.bb_infos
.release ();
2409 free_dominance_info (CDI_DOMINATORS
);
2413 /* Update the jump functions associated with call graph edge E when the call
2414 graph edge CS is being inlined, assuming that E->caller is already (possibly
2415 indirectly) inlined into CS->callee and that E has not been inlined. */
2418 update_jump_functions_after_inlining (struct cgraph_edge
*cs
,
2419 struct cgraph_edge
*e
)
2421 struct ipa_edge_args
*top
= IPA_EDGE_REF (cs
);
2422 struct ipa_edge_args
*args
= IPA_EDGE_REF (e
);
2423 int count
= ipa_get_cs_argument_count (args
);
2426 for (i
= 0; i
< count
; i
++)
2428 struct ipa_jump_func
*dst
= ipa_get_ith_jump_func (args
, i
);
2429 struct ipa_polymorphic_call_context
*dst_ctx
2430 = ipa_get_ith_polymorhic_call_context (args
, i
);
2432 if (dst
->type
== IPA_JF_ANCESTOR
)
2434 struct ipa_jump_func
*src
;
2435 int dst_fid
= dst
->value
.ancestor
.formal_id
;
2436 struct ipa_polymorphic_call_context
*src_ctx
2437 = ipa_get_ith_polymorhic_call_context (top
, dst_fid
);
2439 /* Variable number of arguments can cause havoc if we try to access
2440 one that does not exist in the inlined edge. So make sure we
2442 if (dst_fid
>= ipa_get_cs_argument_count (top
))
2444 ipa_set_jf_unknown (dst
);
2448 src
= ipa_get_ith_jump_func (top
, dst_fid
);
2450 if (src_ctx
&& !src_ctx
->useless_p ())
2452 struct ipa_polymorphic_call_context ctx
= *src_ctx
;
2454 /* TODO: Make type preserved safe WRT contexts. */
2455 if (!ipa_get_jf_ancestor_type_preserved (dst
))
2456 ctx
.possible_dynamic_type_change (e
->in_polymorphic_cdtor
);
2457 ctx
.offset_by (dst
->value
.ancestor
.offset
);
2458 if (!ctx
.useless_p ())
2460 vec_safe_grow_cleared (args
->polymorphic_call_contexts
,
2462 dst_ctx
= ipa_get_ith_polymorhic_call_context (args
, i
);
2464 dst_ctx
->combine_with (ctx
);
2468 && (dst
->value
.ancestor
.agg_preserved
|| !src
->agg
.by_ref
))
2470 struct ipa_agg_jf_item
*item
;
2473 /* Currently we do not produce clobber aggregate jump functions,
2474 replace with merging when we do. */
2475 gcc_assert (!dst
->agg
.items
);
2477 dst
->agg
.items
= vec_safe_copy (src
->agg
.items
);
2478 dst
->agg
.by_ref
= src
->agg
.by_ref
;
2479 FOR_EACH_VEC_SAFE_ELT (dst
->agg
.items
, j
, item
)
2480 item
->offset
-= dst
->value
.ancestor
.offset
;
2483 if (src
->type
== IPA_JF_PASS_THROUGH
2484 && src
->value
.pass_through
.operation
== NOP_EXPR
)
2486 dst
->value
.ancestor
.formal_id
= src
->value
.pass_through
.formal_id
;
2487 dst
->value
.ancestor
.agg_preserved
&=
2488 src
->value
.pass_through
.agg_preserved
;
2490 else if (src
->type
== IPA_JF_ANCESTOR
)
2492 dst
->value
.ancestor
.formal_id
= src
->value
.ancestor
.formal_id
;
2493 dst
->value
.ancestor
.offset
+= src
->value
.ancestor
.offset
;
2494 dst
->value
.ancestor
.agg_preserved
&=
2495 src
->value
.ancestor
.agg_preserved
;
2498 ipa_set_jf_unknown (dst
);
2500 else if (dst
->type
== IPA_JF_PASS_THROUGH
)
2502 struct ipa_jump_func
*src
;
2503 /* We must check range due to calls with variable number of arguments
2504 and we cannot combine jump functions with operations. */
2505 if (dst
->value
.pass_through
.operation
== NOP_EXPR
2506 && (dst
->value
.pass_through
.formal_id
2507 < ipa_get_cs_argument_count (top
)))
2509 int dst_fid
= dst
->value
.pass_through
.formal_id
;
2510 src
= ipa_get_ith_jump_func (top
, dst_fid
);
2511 bool dst_agg_p
= ipa_get_jf_pass_through_agg_preserved (dst
);
2512 struct ipa_polymorphic_call_context
*src_ctx
2513 = ipa_get_ith_polymorhic_call_context (top
, dst_fid
);
2515 if (src_ctx
&& !src_ctx
->useless_p ())
2517 struct ipa_polymorphic_call_context ctx
= *src_ctx
;
2519 /* TODO: Make type preserved safe WRT contexts. */
2520 if (!ipa_get_jf_pass_through_type_preserved (dst
))
2521 ctx
.possible_dynamic_type_change (e
->in_polymorphic_cdtor
);
2522 if (!ctx
.useless_p ())
2526 vec_safe_grow_cleared (args
->polymorphic_call_contexts
,
2528 dst_ctx
= ipa_get_ith_polymorhic_call_context (args
, i
);
2530 dst_ctx
->combine_with (ctx
);
2535 case IPA_JF_UNKNOWN
:
2536 ipa_set_jf_unknown (dst
);
2539 ipa_set_jf_cst_copy (dst
, src
);
2542 case IPA_JF_PASS_THROUGH
:
2544 int formal_id
= ipa_get_jf_pass_through_formal_id (src
);
2545 enum tree_code operation
;
2546 operation
= ipa_get_jf_pass_through_operation (src
);
2548 if (operation
== NOP_EXPR
)
2552 && ipa_get_jf_pass_through_agg_preserved (src
);
2553 ipa_set_jf_simple_pass_through (dst
, formal_id
, agg_p
);
2557 tree operand
= ipa_get_jf_pass_through_operand (src
);
2558 ipa_set_jf_arith_pass_through (dst
, formal_id
, operand
,
2563 case IPA_JF_ANCESTOR
:
2567 && ipa_get_jf_ancestor_agg_preserved (src
);
2568 ipa_set_ancestor_jf (dst
,
2569 ipa_get_jf_ancestor_offset (src
),
2570 ipa_get_jf_ancestor_formal_id (src
),
2579 && (dst_agg_p
|| !src
->agg
.by_ref
))
2581 /* Currently we do not produce clobber aggregate jump
2582 functions, replace with merging when we do. */
2583 gcc_assert (!dst
->agg
.items
);
2585 dst
->agg
.by_ref
= src
->agg
.by_ref
;
2586 dst
->agg
.items
= vec_safe_copy (src
->agg
.items
);
2590 ipa_set_jf_unknown (dst
);
2595 /* If TARGET is an addr_expr of a function declaration, make it the
2596 (SPECULATIVE)destination of an indirect edge IE and return the edge.
2597 Otherwise, return NULL. */
2599 struct cgraph_edge
*
2600 ipa_make_edge_direct_to_target (struct cgraph_edge
*ie
, tree target
,
2603 struct cgraph_node
*callee
;
2604 struct inline_edge_summary
*es
= inline_edge_summary (ie
);
2605 bool unreachable
= false;
2607 if (TREE_CODE (target
) == ADDR_EXPR
)
2608 target
= TREE_OPERAND (target
, 0);
2609 if (TREE_CODE (target
) != FUNCTION_DECL
)
2611 target
= canonicalize_constructor_val (target
, NULL
);
2612 if (!target
|| TREE_CODE (target
) != FUNCTION_DECL
)
2614 /* Member pointer call that goes through a VMT lookup. */
2615 if (ie
->indirect_info
->member_ptr
2616 /* Or if target is not an invariant expression and we do not
2617 know if it will evaulate to function at runtime.
2618 This can happen when folding through &VAR, where &VAR
2619 is IP invariant, but VAR itself is not.
2621 TODO: Revisit this when GCC 5 is branched. It seems that
2622 member_ptr check is not needed and that we may try to fold
2623 the expression and see if VAR is readonly. */
2624 || !is_gimple_ip_invariant (target
))
2626 if (dump_enabled_p ())
2628 location_t loc
= gimple_location_safe (ie
->call_stmt
);
2629 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS
, loc
,
2630 "discovered direct call non-invariant "
2632 ie
->caller
->name (), ie
->caller
->order
);
2638 if (dump_enabled_p ())
2640 location_t loc
= gimple_location_safe (ie
->call_stmt
);
2641 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS
, loc
,
2642 "discovered direct call to non-function in %s/%i, "
2643 "making it __builtin_unreachable\n",
2644 ie
->caller
->name (), ie
->caller
->order
);
2647 target
= builtin_decl_implicit (BUILT_IN_UNREACHABLE
);
2648 callee
= cgraph_node::get_create (target
);
2652 callee
= cgraph_node::get (target
);
2655 callee
= cgraph_node::get (target
);
2657 /* Because may-edges are not explicitely represented and vtable may be external,
2658 we may create the first reference to the object in the unit. */
2659 if (!callee
|| callee
->global
.inlined_to
)
2662 /* We are better to ensure we can refer to it.
2663 In the case of static functions we are out of luck, since we already
2664 removed its body. In the case of public functions we may or may
2665 not introduce the reference. */
2666 if (!canonicalize_constructor_val (target
, NULL
)
2667 || !TREE_PUBLIC (target
))
2670 fprintf (dump_file
, "ipa-prop: Discovered call to a known target "
2671 "(%s/%i -> %s/%i) but can not refer to it. Giving up.\n",
2672 xstrdup_for_dump (ie
->caller
->name ()),
2674 xstrdup_for_dump (ie
->callee
->name ()),
2678 callee
= cgraph_node::get_create (target
);
2681 /* If the edge is already speculated. */
2682 if (speculative
&& ie
->speculative
)
2684 struct cgraph_edge
*e2
;
2685 struct ipa_ref
*ref
;
2686 ie
->speculative_call_info (e2
, ie
, ref
);
2687 if (e2
->callee
->ultimate_alias_target ()
2688 != callee
->ultimate_alias_target ())
2691 fprintf (dump_file
, "ipa-prop: Discovered call to a speculative target "
2692 "(%s/%i -> %s/%i) but the call is already speculated to %s/%i. Giving up.\n",
2693 xstrdup_for_dump (ie
->caller
->name ()),
2695 xstrdup_for_dump (callee
->name ()),
2697 xstrdup_for_dump (e2
->callee
->name ()),
2703 fprintf (dump_file
, "ipa-prop: Discovered call to a speculative target "
2704 "(%s/%i -> %s/%i) this agree with previous speculation.\n",
2705 xstrdup_for_dump (ie
->caller
->name ()),
2707 xstrdup_for_dump (callee
->name ()),
2713 if (!dbg_cnt (devirt
))
2716 ipa_check_create_node_params ();
2718 /* We can not make edges to inline clones. It is bug that someone removed
2719 the cgraph node too early. */
2720 gcc_assert (!callee
->global
.inlined_to
);
2722 if (dump_file
&& !unreachable
)
2724 fprintf (dump_file
, "ipa-prop: Discovered %s call to a %s target "
2725 "(%s/%i -> %s/%i), for stmt ",
2726 ie
->indirect_info
->polymorphic
? "a virtual" : "an indirect",
2727 speculative
? "speculative" : "known",
2728 xstrdup_for_dump (ie
->caller
->name ()),
2730 xstrdup_for_dump (callee
->name ()),
2733 print_gimple_stmt (dump_file
, ie
->call_stmt
, 2, TDF_SLIM
);
2735 fprintf (dump_file
, "with uid %i\n", ie
->lto_stmt_uid
);
2737 if (dump_enabled_p ())
2739 location_t loc
= gimple_location_safe (ie
->call_stmt
);
2741 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS
, loc
,
2742 "converting indirect call in %s to direct call to %s\n",
2743 ie
->caller
->name (), callee
->name ());
2747 struct cgraph_edge
*orig
= ie
;
2748 ie
= ie
->make_direct (callee
);
2749 /* If we resolved speculative edge the cost is already up to date
2750 for direct call (adjusted by inline_edge_duplication_hook). */
2753 es
= inline_edge_summary (ie
);
2754 es
->call_stmt_size
-= (eni_size_weights
.indirect_call_cost
2755 - eni_size_weights
.call_cost
);
2756 es
->call_stmt_time
-= (eni_time_weights
.indirect_call_cost
2757 - eni_time_weights
.call_cost
);
2762 if (!callee
->can_be_discarded_p ())
2765 alias
= dyn_cast
<cgraph_node
*> (callee
->noninterposable_alias ());
2769 /* make_speculative will update ie's cost to direct call cost. */
2770 ie
= ie
->make_speculative
2771 (callee
, ie
->count
* 8 / 10, ie
->frequency
* 8 / 10);
2777 /* Retrieve value from aggregate jump function AGG for the given OFFSET or
2778 return NULL if there is not any. BY_REF specifies whether the value has to
2779 be passed by reference or by value. */
2782 ipa_find_agg_cst_for_param (struct ipa_agg_jump_function
*agg
,
2783 HOST_WIDE_INT offset
, bool by_ref
)
2785 struct ipa_agg_jf_item
*item
;
2788 if (by_ref
!= agg
->by_ref
)
2791 FOR_EACH_VEC_SAFE_ELT (agg
->items
, i
, item
)
2792 if (item
->offset
== offset
)
2794 /* Currently we do not have clobber values, return NULL for them once
2796 gcc_checking_assert (is_gimple_ip_invariant (item
->value
));
2802 /* Remove a reference to SYMBOL from the list of references of a node given by
2803 reference description RDESC. Return true if the reference has been
2804 successfully found and removed. */
2807 remove_described_reference (symtab_node
*symbol
, struct ipa_cst_ref_desc
*rdesc
)
2809 struct ipa_ref
*to_del
;
2810 struct cgraph_edge
*origin
;
2815 to_del
= origin
->caller
->find_reference (symbol
, origin
->call_stmt
,
2816 origin
->lto_stmt_uid
);
2820 to_del
->remove_reference ();
2822 fprintf (dump_file
, "ipa-prop: Removed a reference from %s/%i to %s.\n",
2823 xstrdup_for_dump (origin
->caller
->name ()),
2824 origin
->caller
->order
, xstrdup_for_dump (symbol
->name ()));
2828 /* If JFUNC has a reference description with refcount different from
2829 IPA_UNDESCRIBED_USE, return the reference description, otherwise return
2830 NULL. JFUNC must be a constant jump function. */
2832 static struct ipa_cst_ref_desc
*
2833 jfunc_rdesc_usable (struct ipa_jump_func
*jfunc
)
2835 struct ipa_cst_ref_desc
*rdesc
= ipa_get_jf_constant_rdesc (jfunc
);
2836 if (rdesc
&& rdesc
->refcount
!= IPA_UNDESCRIBED_USE
)
2842 /* If the value of constant jump function JFUNC is an address of a function
2843 declaration, return the associated call graph node. Otherwise return
2846 static cgraph_node
*
2847 cgraph_node_for_jfunc (struct ipa_jump_func
*jfunc
)
2849 gcc_checking_assert (jfunc
->type
== IPA_JF_CONST
);
2850 tree cst
= ipa_get_jf_constant (jfunc
);
2851 if (TREE_CODE (cst
) != ADDR_EXPR
2852 || TREE_CODE (TREE_OPERAND (cst
, 0)) != FUNCTION_DECL
)
2855 return cgraph_node::get (TREE_OPERAND (cst
, 0));
2859 /* If JFUNC is a constant jump function with a usable rdesc, decrement its
2860 refcount and if it hits zero, remove reference to SYMBOL from the caller of
2861 the edge specified in the rdesc. Return false if either the symbol or the
2862 reference could not be found, otherwise return true. */
2865 try_decrement_rdesc_refcount (struct ipa_jump_func
*jfunc
)
2867 struct ipa_cst_ref_desc
*rdesc
;
2868 if (jfunc
->type
== IPA_JF_CONST
2869 && (rdesc
= jfunc_rdesc_usable (jfunc
))
2870 && --rdesc
->refcount
== 0)
2872 symtab_node
*symbol
= cgraph_node_for_jfunc (jfunc
);
2876 return remove_described_reference (symbol
, rdesc
);
2881 /* Try to find a destination for indirect edge IE that corresponds to a simple
2882 call or a call of a member function pointer and where the destination is a
2883 pointer formal parameter described by jump function JFUNC. If it can be
2884 determined, return the newly direct edge, otherwise return NULL.
2885 NEW_ROOT_INFO is the node info that JFUNC lattices are relative to. */
2887 static struct cgraph_edge
*
2888 try_make_edge_direct_simple_call (struct cgraph_edge
*ie
,
2889 struct ipa_jump_func
*jfunc
,
2890 struct ipa_node_params
*new_root_info
)
2892 struct cgraph_edge
*cs
;
2894 bool agg_contents
= ie
->indirect_info
->agg_contents
;
2896 if (ie
->indirect_info
->agg_contents
)
2897 target
= ipa_find_agg_cst_for_param (&jfunc
->agg
,
2898 ie
->indirect_info
->offset
,
2899 ie
->indirect_info
->by_ref
);
2901 target
= ipa_value_from_jfunc (new_root_info
, jfunc
);
2904 cs
= ipa_make_edge_direct_to_target (ie
, target
);
2906 if (cs
&& !agg_contents
)
2909 gcc_checking_assert (cs
->callee
2911 || jfunc
->type
!= IPA_JF_CONST
2912 || !cgraph_node_for_jfunc (jfunc
)
2913 || cs
->callee
== cgraph_node_for_jfunc (jfunc
)));
2914 ok
= try_decrement_rdesc_refcount (jfunc
);
2915 gcc_checking_assert (ok
);
2921 /* Return the target to be used in cases of impossible devirtualization. IE
2922 and target (the latter can be NULL) are dumped when dumping is enabled. */
2925 ipa_impossible_devirt_target (struct cgraph_edge
*ie
, tree target
)
2931 "Type inconsistent devirtualization: %s/%i->%s\n",
2932 ie
->caller
->name (), ie
->caller
->order
,
2933 IDENTIFIER_POINTER (DECL_ASSEMBLER_NAME (target
)));
2936 "No devirtualization target in %s/%i\n",
2937 ie
->caller
->name (), ie
->caller
->order
);
2939 tree new_target
= builtin_decl_implicit (BUILT_IN_UNREACHABLE
);
2940 cgraph_node::get_create (new_target
);
2944 /* Try to find a destination for indirect edge IE that corresponds to a virtual
2945 call based on a formal parameter which is described by jump function JFUNC
2946 and if it can be determined, make it direct and return the direct edge.
2947 Otherwise, return NULL. CTX describes the polymorphic context that the
2948 parameter the call is based on brings along with it. */
2950 static struct cgraph_edge
*
2951 try_make_edge_direct_virtual_call (struct cgraph_edge
*ie
,
2952 struct ipa_jump_func
*jfunc
,
2953 struct ipa_polymorphic_call_context ctx
)
2956 bool speculative
= false;
2958 if (!opt_for_fn (ie
->caller
->decl
, flag_devirtualize
))
2961 gcc_assert (!ie
->indirect_info
->by_ref
);
2963 /* Try to do lookup via known virtual table pointer value. */
2964 if (!ie
->indirect_info
->vptr_changed
2965 || opt_for_fn (ie
->caller
->decl
, flag_devirtualize_speculatively
))
2968 unsigned HOST_WIDE_INT offset
;
2969 tree t
= ipa_find_agg_cst_for_param (&jfunc
->agg
,
2970 ie
->indirect_info
->offset
,
2972 if (t
&& vtable_pointer_value_to_vtable (t
, &vtable
, &offset
))
2974 t
= gimple_get_virt_method_for_vtable (ie
->indirect_info
->otr_token
,
2978 if ((TREE_CODE (TREE_TYPE (t
)) == FUNCTION_TYPE
2979 && DECL_FUNCTION_CODE (t
) == BUILT_IN_UNREACHABLE
)
2980 || !possible_polymorphic_call_target_p
2981 (ie
, cgraph_node::get (t
)))
2983 /* Do not speculate builtin_unreachable, it is stupid! */
2984 if (!ie
->indirect_info
->vptr_changed
)
2985 target
= ipa_impossible_devirt_target (ie
, target
);
2990 speculative
= ie
->indirect_info
->vptr_changed
;
2996 ipa_polymorphic_call_context
ie_context (ie
);
2997 vec
<cgraph_node
*>targets
;
3000 ctx
.offset_by (ie
->indirect_info
->offset
);
3001 if (ie
->indirect_info
->vptr_changed
)
3002 ctx
.possible_dynamic_type_change (ie
->in_polymorphic_cdtor
,
3003 ie
->indirect_info
->otr_type
);
3004 ctx
.combine_with (ie_context
, ie
->indirect_info
->otr_type
);
3005 targets
= possible_polymorphic_call_targets
3006 (ie
->indirect_info
->otr_type
,
3007 ie
->indirect_info
->otr_token
,
3009 if (final
&& targets
.length () <= 1)
3011 speculative
= false;
3012 if (targets
.length () == 1)
3013 target
= targets
[0]->decl
;
3015 target
= ipa_impossible_devirt_target (ie
, NULL_TREE
);
3017 else if (!target
&& opt_for_fn (ie
->caller
->decl
, flag_devirtualize_speculatively
)
3018 && !ie
->speculative
&& ie
->maybe_hot_p ())
3021 n
= try_speculative_devirtualization (ie
->indirect_info
->otr_type
,
3022 ie
->indirect_info
->otr_token
,
3023 ie
->indirect_info
->context
);
3033 if (!possible_polymorphic_call_target_p
3034 (ie
, cgraph_node::get_create (target
)))
3038 target
= ipa_impossible_devirt_target (ie
, target
);
3040 return ipa_make_edge_direct_to_target (ie
, target
, speculative
);
3046 /* Update the param called notes associated with NODE when CS is being inlined,
3047 assuming NODE is (potentially indirectly) inlined into CS->callee.
3048 Moreover, if the callee is discovered to be constant, create a new cgraph
3049 edge for it. Newly discovered indirect edges will be added to *NEW_EDGES,
3050 unless NEW_EDGES is NULL. Return true iff a new edge(s) were created. */
3053 update_indirect_edges_after_inlining (struct cgraph_edge
*cs
,
3054 struct cgraph_node
*node
,
3055 vec
<cgraph_edge
*> *new_edges
)
3057 struct ipa_edge_args
*top
;
3058 struct cgraph_edge
*ie
, *next_ie
, *new_direct_edge
;
3059 struct ipa_node_params
*new_root_info
;
3062 ipa_check_create_edge_args ();
3063 top
= IPA_EDGE_REF (cs
);
3064 new_root_info
= IPA_NODE_REF (cs
->caller
->global
.inlined_to
3065 ? cs
->caller
->global
.inlined_to
3068 for (ie
= node
->indirect_calls
; ie
; ie
= next_ie
)
3070 struct cgraph_indirect_call_info
*ici
= ie
->indirect_info
;
3071 struct ipa_jump_func
*jfunc
;
3073 cgraph_node
*spec_target
= NULL
;
3075 next_ie
= ie
->next_callee
;
3077 if (ici
->param_index
== -1)
3080 /* We must check range due to calls with variable number of arguments: */
3081 if (ici
->param_index
>= ipa_get_cs_argument_count (top
))
3083 ici
->param_index
= -1;
3087 param_index
= ici
->param_index
;
3088 jfunc
= ipa_get_ith_jump_func (top
, param_index
);
3090 if (ie
->speculative
)
3092 struct cgraph_edge
*de
;
3093 struct ipa_ref
*ref
;
3094 ie
->speculative_call_info (de
, ie
, ref
);
3095 spec_target
= de
->callee
;
3098 if (!opt_for_fn (node
->decl
, flag_indirect_inlining
))
3099 new_direct_edge
= NULL
;
3100 else if (ici
->polymorphic
)
3102 ipa_polymorphic_call_context ctx
;
3103 ctx
= ipa_context_from_jfunc (new_root_info
, cs
, param_index
, jfunc
);
3104 new_direct_edge
= try_make_edge_direct_virtual_call (ie
, jfunc
, ctx
);
3107 new_direct_edge
= try_make_edge_direct_simple_call (ie
, jfunc
,
3109 /* If speculation was removed, then we need to do nothing. */
3110 if (new_direct_edge
&& new_direct_edge
!= ie
3111 && new_direct_edge
->callee
== spec_target
)
3113 new_direct_edge
->indirect_inlining_edge
= 1;
3114 top
= IPA_EDGE_REF (cs
);
3116 if (!new_direct_edge
->speculative
)
3119 else if (new_direct_edge
)
3121 new_direct_edge
->indirect_inlining_edge
= 1;
3122 if (new_direct_edge
->call_stmt
)
3123 new_direct_edge
->call_stmt_cannot_inline_p
3124 = !gimple_check_call_matching_types (
3125 new_direct_edge
->call_stmt
,
3126 new_direct_edge
->callee
->decl
, false);
3129 new_edges
->safe_push (new_direct_edge
);
3132 top
= IPA_EDGE_REF (cs
);
3133 /* If speculative edge was introduced we still need to update
3134 call info of the indirect edge. */
3135 if (!new_direct_edge
->speculative
)
3138 if (jfunc
->type
== IPA_JF_PASS_THROUGH
3139 && ipa_get_jf_pass_through_operation (jfunc
) == NOP_EXPR
)
3141 if (ici
->agg_contents
3142 && !ipa_get_jf_pass_through_agg_preserved (jfunc
)
3143 && !ici
->polymorphic
)
3144 ici
->param_index
= -1;
3147 ici
->param_index
= ipa_get_jf_pass_through_formal_id (jfunc
);
3148 if (ici
->polymorphic
3149 && !ipa_get_jf_pass_through_type_preserved (jfunc
))
3150 ici
->vptr_changed
= true;
3153 else if (jfunc
->type
== IPA_JF_ANCESTOR
)
3155 if (ici
->agg_contents
3156 && !ipa_get_jf_ancestor_agg_preserved (jfunc
)
3157 && !ici
->polymorphic
)
3158 ici
->param_index
= -1;
3161 ici
->param_index
= ipa_get_jf_ancestor_formal_id (jfunc
);
3162 ici
->offset
+= ipa_get_jf_ancestor_offset (jfunc
);
3163 if (ici
->polymorphic
3164 && !ipa_get_jf_ancestor_type_preserved (jfunc
))
3165 ici
->vptr_changed
= true;
3169 /* Either we can find a destination for this edge now or never. */
3170 ici
->param_index
= -1;
3176 /* Recursively traverse subtree of NODE (including node) made of inlined
3177 cgraph_edges when CS has been inlined and invoke
3178 update_indirect_edges_after_inlining on all nodes and
3179 update_jump_functions_after_inlining on all non-inlined edges that lead out
3180 of this subtree. Newly discovered indirect edges will be added to
3181 *NEW_EDGES, unless NEW_EDGES is NULL. Return true iff a new edge(s) were
3185 propagate_info_to_inlined_callees (struct cgraph_edge
*cs
,
3186 struct cgraph_node
*node
,
3187 vec
<cgraph_edge
*> *new_edges
)
3189 struct cgraph_edge
*e
;
3192 res
= update_indirect_edges_after_inlining (cs
, node
, new_edges
);
3194 for (e
= node
->callees
; e
; e
= e
->next_callee
)
3195 if (!e
->inline_failed
)
3196 res
|= propagate_info_to_inlined_callees (cs
, e
->callee
, new_edges
);
3198 update_jump_functions_after_inlining (cs
, e
);
3199 for (e
= node
->indirect_calls
; e
; e
= e
->next_callee
)
3200 update_jump_functions_after_inlining (cs
, e
);
3205 /* Combine two controlled uses counts as done during inlining. */
3208 combine_controlled_uses_counters (int c
, int d
)
3210 if (c
== IPA_UNDESCRIBED_USE
|| d
== IPA_UNDESCRIBED_USE
)
3211 return IPA_UNDESCRIBED_USE
;
3216 /* Propagate number of controlled users from CS->caleee to the new root of the
3217 tree of inlined nodes. */
3220 propagate_controlled_uses (struct cgraph_edge
*cs
)
3222 struct ipa_edge_args
*args
= IPA_EDGE_REF (cs
);
3223 struct cgraph_node
*new_root
= cs
->caller
->global
.inlined_to
3224 ? cs
->caller
->global
.inlined_to
: cs
->caller
;
3225 struct ipa_node_params
*new_root_info
= IPA_NODE_REF (new_root
);
3226 struct ipa_node_params
*old_root_info
= IPA_NODE_REF (cs
->callee
);
3229 count
= MIN (ipa_get_cs_argument_count (args
),
3230 ipa_get_param_count (old_root_info
));
3231 for (i
= 0; i
< count
; i
++)
3233 struct ipa_jump_func
*jf
= ipa_get_ith_jump_func (args
, i
);
3234 struct ipa_cst_ref_desc
*rdesc
;
3236 if (jf
->type
== IPA_JF_PASS_THROUGH
)
3239 src_idx
= ipa_get_jf_pass_through_formal_id (jf
);
3240 c
= ipa_get_controlled_uses (new_root_info
, src_idx
);
3241 d
= ipa_get_controlled_uses (old_root_info
, i
);
3243 gcc_checking_assert (ipa_get_jf_pass_through_operation (jf
)
3244 == NOP_EXPR
|| c
== IPA_UNDESCRIBED_USE
);
3245 c
= combine_controlled_uses_counters (c
, d
);
3246 ipa_set_controlled_uses (new_root_info
, src_idx
, c
);
3247 if (c
== 0 && new_root_info
->ipcp_orig_node
)
3249 struct cgraph_node
*n
;
3250 struct ipa_ref
*ref
;
3251 tree t
= new_root_info
->known_csts
[src_idx
];
3253 if (t
&& TREE_CODE (t
) == ADDR_EXPR
3254 && TREE_CODE (TREE_OPERAND (t
, 0)) == FUNCTION_DECL
3255 && (n
= cgraph_node::get (TREE_OPERAND (t
, 0)))
3256 && (ref
= new_root
->find_reference (n
, NULL
, 0)))
3259 fprintf (dump_file
, "ipa-prop: Removing cloning-created "
3260 "reference from %s/%i to %s/%i.\n",
3261 xstrdup_for_dump (new_root
->name ()),
3263 xstrdup_for_dump (n
->name ()), n
->order
);
3264 ref
->remove_reference ();
3268 else if (jf
->type
== IPA_JF_CONST
3269 && (rdesc
= jfunc_rdesc_usable (jf
)))
3271 int d
= ipa_get_controlled_uses (old_root_info
, i
);
3272 int c
= rdesc
->refcount
;
3273 rdesc
->refcount
= combine_controlled_uses_counters (c
, d
);
3274 if (rdesc
->refcount
== 0)
3276 tree cst
= ipa_get_jf_constant (jf
);
3277 struct cgraph_node
*n
;
3278 gcc_checking_assert (TREE_CODE (cst
) == ADDR_EXPR
3279 && TREE_CODE (TREE_OPERAND (cst
, 0))
3281 n
= cgraph_node::get (TREE_OPERAND (cst
, 0));
3284 struct cgraph_node
*clone
;
3286 ok
= remove_described_reference (n
, rdesc
);
3287 gcc_checking_assert (ok
);
3290 while (clone
->global
.inlined_to
3291 && clone
!= rdesc
->cs
->caller
3292 && IPA_NODE_REF (clone
)->ipcp_orig_node
)
3294 struct ipa_ref
*ref
;
3295 ref
= clone
->find_reference (n
, NULL
, 0);
3299 fprintf (dump_file
, "ipa-prop: Removing "
3300 "cloning-created reference "
3301 "from %s/%i to %s/%i.\n",
3302 xstrdup_for_dump (clone
->name ()),
3304 xstrdup_for_dump (n
->name ()),
3306 ref
->remove_reference ();
3308 clone
= clone
->callers
->caller
;
3315 for (i
= ipa_get_param_count (old_root_info
);
3316 i
< ipa_get_cs_argument_count (args
);
3319 struct ipa_jump_func
*jf
= ipa_get_ith_jump_func (args
, i
);
3321 if (jf
->type
== IPA_JF_CONST
)
3323 struct ipa_cst_ref_desc
*rdesc
= jfunc_rdesc_usable (jf
);
3325 rdesc
->refcount
= IPA_UNDESCRIBED_USE
;
3327 else if (jf
->type
== IPA_JF_PASS_THROUGH
)
3328 ipa_set_controlled_uses (new_root_info
,
3329 jf
->value
.pass_through
.formal_id
,
3330 IPA_UNDESCRIBED_USE
);
3334 /* Update jump functions and call note functions on inlining the call site CS.
3335 CS is expected to lead to a node already cloned by
3336 cgraph_clone_inline_nodes. Newly discovered indirect edges will be added to
3337 *NEW_EDGES, unless NEW_EDGES is NULL. Return true iff a new edge(s) were +
3341 ipa_propagate_indirect_call_infos (struct cgraph_edge
*cs
,
3342 vec
<cgraph_edge
*> *new_edges
)
3345 /* Do nothing if the preparation phase has not been carried out yet
3346 (i.e. during early inlining). */
3347 if (!ipa_node_params_sum
)
3349 gcc_assert (ipa_edge_args_vector
);
3351 propagate_controlled_uses (cs
);
3352 changed
= propagate_info_to_inlined_callees (cs
, cs
->callee
, new_edges
);
3357 /* Frees all dynamically allocated structures that the argument info points
3361 ipa_free_edge_args_substructures (struct ipa_edge_args
*args
)
3363 vec_free (args
->jump_functions
);
3364 memset (args
, 0, sizeof (*args
));
3367 /* Free all ipa_edge structures. */
3370 ipa_free_all_edge_args (void)
3373 struct ipa_edge_args
*args
;
3375 if (!ipa_edge_args_vector
)
3378 FOR_EACH_VEC_ELT (*ipa_edge_args_vector
, i
, args
)
3379 ipa_free_edge_args_substructures (args
);
3381 vec_free (ipa_edge_args_vector
);
3384 /* Frees all dynamically allocated structures that the param info points
3387 ipa_node_params::~ipa_node_params ()
3389 descriptors
.release ();
3391 /* Lattice values and their sources are deallocated with their alocation
3393 known_contexts
.release ();
3396 ipcp_orig_node
= NULL
;
3399 do_clone_for_all_contexts
= 0;
3400 is_all_contexts_clone
= 0;
3404 /* Free all ipa_node_params structures. */
3407 ipa_free_all_node_params (void)
3409 delete ipa_node_params_sum
;
3410 ipa_node_params_sum
= NULL
;
3413 /* Grow ipcp_transformations if necessary. */
3416 ipcp_grow_transformations_if_necessary (void)
3418 if (vec_safe_length (ipcp_transformations
)
3419 <= (unsigned) symtab
->cgraph_max_uid
)
3420 vec_safe_grow_cleared (ipcp_transformations
, symtab
->cgraph_max_uid
+ 1);
3423 /* Set the aggregate replacements of NODE to be AGGVALS. */
3426 ipa_set_node_agg_value_chain (struct cgraph_node
*node
,
3427 struct ipa_agg_replacement_value
*aggvals
)
3429 ipcp_grow_transformations_if_necessary ();
3430 (*ipcp_transformations
)[node
->uid
].agg_values
= aggvals
;
3433 /* Hook that is called by cgraph.c when an edge is removed. */
3436 ipa_edge_removal_hook (struct cgraph_edge
*cs
, void *data ATTRIBUTE_UNUSED
)
3438 struct ipa_edge_args
*args
;
3440 /* During IPA-CP updating we can be called on not-yet analyzed clones. */
3441 if (vec_safe_length (ipa_edge_args_vector
) <= (unsigned)cs
->uid
)
3444 args
= IPA_EDGE_REF (cs
);
3445 if (args
->jump_functions
)
3447 struct ipa_jump_func
*jf
;
3449 FOR_EACH_VEC_ELT (*args
->jump_functions
, i
, jf
)
3451 struct ipa_cst_ref_desc
*rdesc
;
3452 try_decrement_rdesc_refcount (jf
);
3453 if (jf
->type
== IPA_JF_CONST
3454 && (rdesc
= ipa_get_jf_constant_rdesc (jf
))
3460 ipa_free_edge_args_substructures (IPA_EDGE_REF (cs
));
3463 /* Hook that is called by cgraph.c when an edge is duplicated. */
3466 ipa_edge_duplication_hook (struct cgraph_edge
*src
, struct cgraph_edge
*dst
,
3469 struct ipa_edge_args
*old_args
, *new_args
;
3472 ipa_check_create_edge_args ();
3474 old_args
= IPA_EDGE_REF (src
);
3475 new_args
= IPA_EDGE_REF (dst
);
3477 new_args
->jump_functions
= vec_safe_copy (old_args
->jump_functions
);
3478 if (old_args
->polymorphic_call_contexts
)
3479 new_args
->polymorphic_call_contexts
3480 = vec_safe_copy (old_args
->polymorphic_call_contexts
);
3482 for (i
= 0; i
< vec_safe_length (old_args
->jump_functions
); i
++)
3484 struct ipa_jump_func
*src_jf
= ipa_get_ith_jump_func (old_args
, i
);
3485 struct ipa_jump_func
*dst_jf
= ipa_get_ith_jump_func (new_args
, i
);
3487 dst_jf
->agg
.items
= vec_safe_copy (dst_jf
->agg
.items
);
3489 if (src_jf
->type
== IPA_JF_CONST
)
3491 struct ipa_cst_ref_desc
*src_rdesc
= jfunc_rdesc_usable (src_jf
);
3494 dst_jf
->value
.constant
.rdesc
= NULL
;
3495 else if (src
->caller
== dst
->caller
)
3497 struct ipa_ref
*ref
;
3498 symtab_node
*n
= cgraph_node_for_jfunc (src_jf
);
3499 gcc_checking_assert (n
);
3500 ref
= src
->caller
->find_reference (n
, src
->call_stmt
,
3502 gcc_checking_assert (ref
);
3503 dst
->caller
->clone_reference (ref
, ref
->stmt
);
3505 struct ipa_cst_ref_desc
*dst_rdesc
= ipa_refdesc_pool
.allocate ();
3506 dst_rdesc
->cs
= dst
;
3507 dst_rdesc
->refcount
= src_rdesc
->refcount
;
3508 dst_rdesc
->next_duplicate
= NULL
;
3509 dst_jf
->value
.constant
.rdesc
= dst_rdesc
;
3511 else if (src_rdesc
->cs
== src
)
3513 struct ipa_cst_ref_desc
*dst_rdesc
= ipa_refdesc_pool
.allocate ();
3514 dst_rdesc
->cs
= dst
;
3515 dst_rdesc
->refcount
= src_rdesc
->refcount
;
3516 dst_rdesc
->next_duplicate
= src_rdesc
->next_duplicate
;
3517 src_rdesc
->next_duplicate
= dst_rdesc
;
3518 dst_jf
->value
.constant
.rdesc
= dst_rdesc
;
3522 struct ipa_cst_ref_desc
*dst_rdesc
;
3523 /* This can happen during inlining, when a JFUNC can refer to a
3524 reference taken in a function up in the tree of inline clones.
3525 We need to find the duplicate that refers to our tree of
3528 gcc_assert (dst
->caller
->global
.inlined_to
);
3529 for (dst_rdesc
= src_rdesc
->next_duplicate
;
3531 dst_rdesc
= dst_rdesc
->next_duplicate
)
3533 struct cgraph_node
*top
;
3534 top
= dst_rdesc
->cs
->caller
->global
.inlined_to
3535 ? dst_rdesc
->cs
->caller
->global
.inlined_to
3536 : dst_rdesc
->cs
->caller
;
3537 if (dst
->caller
->global
.inlined_to
== top
)
3540 gcc_assert (dst_rdesc
);
3541 dst_jf
->value
.constant
.rdesc
= dst_rdesc
;
3544 else if (dst_jf
->type
== IPA_JF_PASS_THROUGH
3545 && src
->caller
== dst
->caller
)
3547 struct cgraph_node
*inline_root
= dst
->caller
->global
.inlined_to
3548 ? dst
->caller
->global
.inlined_to
: dst
->caller
;
3549 struct ipa_node_params
*root_info
= IPA_NODE_REF (inline_root
);
3550 int idx
= ipa_get_jf_pass_through_formal_id (dst_jf
);
3552 int c
= ipa_get_controlled_uses (root_info
, idx
);
3553 if (c
!= IPA_UNDESCRIBED_USE
)
3556 ipa_set_controlled_uses (root_info
, idx
, c
);
3562 /* Analyze newly added function into callgraph. */
3565 ipa_add_new_function (cgraph_node
*node
, void *data ATTRIBUTE_UNUSED
)
3567 if (node
->has_gimple_body_p ())
3568 ipa_analyze_node (node
);
3571 /* Hook that is called by summary when a node is duplicated. */
3574 ipa_node_params_t::duplicate(cgraph_node
*src
, cgraph_node
*dst
,
3575 ipa_node_params
*old_info
,
3576 ipa_node_params
*new_info
)
3578 ipa_agg_replacement_value
*old_av
, *new_av
;
3580 new_info
->descriptors
= old_info
->descriptors
.copy ();
3581 new_info
->lattices
= NULL
;
3582 new_info
->ipcp_orig_node
= old_info
->ipcp_orig_node
;
3584 new_info
->analysis_done
= old_info
->analysis_done
;
3585 new_info
->node_enqueued
= old_info
->node_enqueued
;
3587 old_av
= ipa_get_agg_replacements_for_node (src
);
3593 struct ipa_agg_replacement_value
*v
;
3595 v
= ggc_alloc
<ipa_agg_replacement_value
> ();
3596 memcpy (v
, old_av
, sizeof (*v
));
3599 old_av
= old_av
->next
;
3601 ipa_set_node_agg_value_chain (dst
, new_av
);
3604 ipcp_transformation_summary
*src_trans
= ipcp_get_transformation_summary (src
);
3606 if (src_trans
&& vec_safe_length (src_trans
->alignments
) > 0)
3608 ipcp_grow_transformations_if_necessary ();
3609 src_trans
= ipcp_get_transformation_summary (src
);
3610 const vec
<ipa_alignment
, va_gc
> *src_alignments
= src_trans
->alignments
;
3611 vec
<ipa_alignment
, va_gc
> *&dst_alignments
3612 = ipcp_get_transformation_summary (dst
)->alignments
;
3613 vec_safe_reserve_exact (dst_alignments
, src_alignments
->length ());
3614 for (unsigned i
= 0; i
< src_alignments
->length (); ++i
)
3615 dst_alignments
->quick_push ((*src_alignments
)[i
]);
3619 /* Register our cgraph hooks if they are not already there. */
3622 ipa_register_cgraph_hooks (void)
3624 ipa_check_create_node_params ();
3626 if (!edge_removal_hook_holder
)
3627 edge_removal_hook_holder
=
3628 symtab
->add_edge_removal_hook (&ipa_edge_removal_hook
, NULL
);
3629 if (!edge_duplication_hook_holder
)
3630 edge_duplication_hook_holder
=
3631 symtab
->add_edge_duplication_hook (&ipa_edge_duplication_hook
, NULL
);
3632 function_insertion_hook_holder
=
3633 symtab
->add_cgraph_insertion_hook (&ipa_add_new_function
, NULL
);
3636 /* Unregister our cgraph hooks if they are not already there. */
3639 ipa_unregister_cgraph_hooks (void)
3641 symtab
->remove_edge_removal_hook (edge_removal_hook_holder
);
3642 edge_removal_hook_holder
= NULL
;
3643 symtab
->remove_edge_duplication_hook (edge_duplication_hook_holder
);
3644 edge_duplication_hook_holder
= NULL
;
3645 symtab
->remove_cgraph_insertion_hook (function_insertion_hook_holder
);
3646 function_insertion_hook_holder
= NULL
;
3649 /* Free all ipa_node_params and all ipa_edge_args structures if they are no
3650 longer needed after ipa-cp. */
3653 ipa_free_all_structures_after_ipa_cp (void)
3655 if (!optimize
&& !in_lto_p
)
3657 ipa_free_all_edge_args ();
3658 ipa_free_all_node_params ();
3659 ipcp_sources_pool
.release ();
3660 ipcp_cst_values_pool
.release ();
3661 ipcp_poly_ctx_values_pool
.release ();
3662 ipcp_agg_lattice_pool
.release ();
3663 ipa_unregister_cgraph_hooks ();
3664 ipa_refdesc_pool
.release ();
3668 /* Free all ipa_node_params and all ipa_edge_args structures if they are no
3669 longer needed after indirect inlining. */
3672 ipa_free_all_structures_after_iinln (void)
3674 ipa_free_all_edge_args ();
3675 ipa_free_all_node_params ();
3676 ipa_unregister_cgraph_hooks ();
3677 ipcp_sources_pool
.release ();
3678 ipcp_cst_values_pool
.release ();
3679 ipcp_poly_ctx_values_pool
.release ();
3680 ipcp_agg_lattice_pool
.release ();
3681 ipa_refdesc_pool
.release ();
3684 /* Print ipa_tree_map data structures of all functions in the
3688 ipa_print_node_params (FILE *f
, struct cgraph_node
*node
)
3691 struct ipa_node_params
*info
;
3693 if (!node
->definition
)
3695 info
= IPA_NODE_REF (node
);
3696 fprintf (f
, " function %s/%i parameter descriptors:\n",
3697 node
->name (), node
->order
);
3698 count
= ipa_get_param_count (info
);
3699 for (i
= 0; i
< count
; i
++)
3704 ipa_dump_param (f
, info
, i
);
3705 if (ipa_is_param_used (info
, i
))
3706 fprintf (f
, " used");
3707 c
= ipa_get_controlled_uses (info
, i
);
3708 if (c
== IPA_UNDESCRIBED_USE
)
3709 fprintf (f
, " undescribed_use");
3711 fprintf (f
, " controlled_uses=%i", c
);
3716 /* Print ipa_tree_map data structures of all functions in the
3720 ipa_print_all_params (FILE * f
)
3722 struct cgraph_node
*node
;
3724 fprintf (f
, "\nFunction parameters:\n");
3725 FOR_EACH_FUNCTION (node
)
3726 ipa_print_node_params (f
, node
);
3729 /* Return a heap allocated vector containing formal parameters of FNDECL. */
3732 ipa_get_vector_of_formal_parms (tree fndecl
)
3738 gcc_assert (!flag_wpa
);
3739 count
= count_formal_params (fndecl
);
3740 args
.create (count
);
3741 for (parm
= DECL_ARGUMENTS (fndecl
); parm
; parm
= DECL_CHAIN (parm
))
3742 args
.quick_push (parm
);
3747 /* Return a heap allocated vector containing types of formal parameters of
3748 function type FNTYPE. */
3751 ipa_get_vector_of_formal_parm_types (tree fntype
)
3757 for (t
= TYPE_ARG_TYPES (fntype
); t
; t
= TREE_CHAIN (t
))
3760 types
.create (count
);
3761 for (t
= TYPE_ARG_TYPES (fntype
); t
; t
= TREE_CHAIN (t
))
3762 types
.quick_push (TREE_VALUE (t
));
3767 /* Modify the function declaration FNDECL and its type according to the plan in
3768 ADJUSTMENTS. It also sets base fields of individual adjustments structures
3769 to reflect the actual parameters being modified which are determined by the
3770 base_index field. */
3773 ipa_modify_formal_parameters (tree fndecl
, ipa_parm_adjustment_vec adjustments
)
3775 vec
<tree
> oparms
= ipa_get_vector_of_formal_parms (fndecl
);
3776 tree orig_type
= TREE_TYPE (fndecl
);
3777 tree old_arg_types
= TYPE_ARG_TYPES (orig_type
);
3779 /* The following test is an ugly hack, some functions simply don't have any
3780 arguments in their type. This is probably a bug but well... */
3781 bool care_for_types
= (old_arg_types
!= NULL_TREE
);
3782 bool last_parm_void
;
3786 last_parm_void
= (TREE_VALUE (tree_last (old_arg_types
))
3788 otypes
= ipa_get_vector_of_formal_parm_types (orig_type
);
3790 gcc_assert (oparms
.length () + 1 == otypes
.length ());
3792 gcc_assert (oparms
.length () == otypes
.length ());
3796 last_parm_void
= false;
3800 int len
= adjustments
.length ();
3801 tree
*link
= &DECL_ARGUMENTS (fndecl
);
3802 tree new_arg_types
= NULL
;
3803 for (int i
= 0; i
< len
; i
++)
3805 struct ipa_parm_adjustment
*adj
;
3808 adj
= &adjustments
[i
];
3810 if (adj
->op
== IPA_PARM_OP_NEW
)
3813 parm
= oparms
[adj
->base_index
];
3816 if (adj
->op
== IPA_PARM_OP_COPY
)
3819 new_arg_types
= tree_cons (NULL_TREE
, otypes
[adj
->base_index
],
3822 link
= &DECL_CHAIN (parm
);
3824 else if (adj
->op
!= IPA_PARM_OP_REMOVE
)
3830 ptype
= build_pointer_type (adj
->type
);
3834 if (is_gimple_reg_type (ptype
))
3836 unsigned malign
= GET_MODE_ALIGNMENT (TYPE_MODE (ptype
));
3837 if (TYPE_ALIGN (ptype
) < malign
)
3838 ptype
= build_aligned_type (ptype
, malign
);
3843 new_arg_types
= tree_cons (NULL_TREE
, ptype
, new_arg_types
);
3845 new_parm
= build_decl (UNKNOWN_LOCATION
, PARM_DECL
, NULL_TREE
,
3847 const char *prefix
= adj
->arg_prefix
? adj
->arg_prefix
: "SYNTH";
3848 DECL_NAME (new_parm
) = create_tmp_var_name (prefix
);
3849 DECL_ARTIFICIAL (new_parm
) = 1;
3850 DECL_ARG_TYPE (new_parm
) = ptype
;
3851 DECL_CONTEXT (new_parm
) = fndecl
;
3852 TREE_USED (new_parm
) = 1;
3853 DECL_IGNORED_P (new_parm
) = 1;
3854 layout_decl (new_parm
, 0);
3856 if (adj
->op
== IPA_PARM_OP_NEW
)
3860 adj
->new_decl
= new_parm
;
3863 link
= &DECL_CHAIN (new_parm
);
3869 tree new_reversed
= NULL
;
3872 new_reversed
= nreverse (new_arg_types
);
3876 TREE_CHAIN (new_arg_types
) = void_list_node
;
3878 new_reversed
= void_list_node
;
3882 /* Use copy_node to preserve as much as possible from original type
3883 (debug info, attribute lists etc.)
3884 Exception is METHOD_TYPEs must have THIS argument.
3885 When we are asked to remove it, we need to build new FUNCTION_TYPE
3887 tree new_type
= NULL
;
3888 if (TREE_CODE (orig_type
) != METHOD_TYPE
3889 || (adjustments
[0].op
== IPA_PARM_OP_COPY
3890 && adjustments
[0].base_index
== 0))
3892 new_type
= build_distinct_type_copy (orig_type
);
3893 TYPE_ARG_TYPES (new_type
) = new_reversed
;
3898 = build_distinct_type_copy (build_function_type (TREE_TYPE (orig_type
),
3900 TYPE_CONTEXT (new_type
) = TYPE_CONTEXT (orig_type
);
3901 DECL_VINDEX (fndecl
) = NULL_TREE
;
3904 /* When signature changes, we need to clear builtin info. */
3905 if (DECL_BUILT_IN (fndecl
))
3907 DECL_BUILT_IN_CLASS (fndecl
) = NOT_BUILT_IN
;
3908 DECL_FUNCTION_CODE (fndecl
) = (enum built_in_function
) 0;
3911 TREE_TYPE (fndecl
) = new_type
;
3912 DECL_VIRTUAL_P (fndecl
) = 0;
3913 DECL_LANG_SPECIFIC (fndecl
) = NULL
;
3918 /* Modify actual arguments of a function call CS as indicated in ADJUSTMENTS.
3919 If this is a directly recursive call, CS must be NULL. Otherwise it must
3920 contain the corresponding call graph edge. */
3923 ipa_modify_call_arguments (struct cgraph_edge
*cs
, gcall
*stmt
,
3924 ipa_parm_adjustment_vec adjustments
)
3926 struct cgraph_node
*current_node
= cgraph_node::get (current_function_decl
);
3928 vec
<tree
, va_gc
> **debug_args
= NULL
;
3930 gimple_stmt_iterator gsi
, prev_gsi
;
3934 len
= adjustments
.length ();
3936 callee_decl
= !cs
? gimple_call_fndecl (stmt
) : cs
->callee
->decl
;
3937 current_node
->remove_stmt_references (stmt
);
3939 gsi
= gsi_for_stmt (stmt
);
3941 gsi_prev (&prev_gsi
);
3942 for (i
= 0; i
< len
; i
++)
3944 struct ipa_parm_adjustment
*adj
;
3946 adj
= &adjustments
[i
];
3948 if (adj
->op
== IPA_PARM_OP_COPY
)
3950 tree arg
= gimple_call_arg (stmt
, adj
->base_index
);
3952 vargs
.quick_push (arg
);
3954 else if (adj
->op
!= IPA_PARM_OP_REMOVE
)
3956 tree expr
, base
, off
;
3958 unsigned int deref_align
= 0;
3959 bool deref_base
= false;
3961 /* We create a new parameter out of the value of the old one, we can
3962 do the following kind of transformations:
3964 - A scalar passed by reference is converted to a scalar passed by
3965 value. (adj->by_ref is false and the type of the original
3966 actual argument is a pointer to a scalar).
3968 - A part of an aggregate is passed instead of the whole aggregate.
3969 The part can be passed either by value or by reference, this is
3970 determined by value of adj->by_ref. Moreover, the code below
3971 handles both situations when the original aggregate is passed by
3972 value (its type is not a pointer) and when it is passed by
3973 reference (it is a pointer to an aggregate).
3975 When the new argument is passed by reference (adj->by_ref is true)
3976 it must be a part of an aggregate and therefore we form it by
3977 simply taking the address of a reference inside the original
3980 gcc_checking_assert (adj
->offset
% BITS_PER_UNIT
== 0);
3981 base
= gimple_call_arg (stmt
, adj
->base_index
);
3982 loc
= DECL_P (base
) ? DECL_SOURCE_LOCATION (base
)
3983 : EXPR_LOCATION (base
);
3985 if (TREE_CODE (base
) != ADDR_EXPR
3986 && POINTER_TYPE_P (TREE_TYPE (base
)))
3987 off
= build_int_cst (adj
->alias_ptr_type
,
3988 adj
->offset
/ BITS_PER_UNIT
);
3991 HOST_WIDE_INT base_offset
;
3995 if (TREE_CODE (base
) == ADDR_EXPR
)
3997 base
= TREE_OPERAND (base
, 0);
4003 base
= get_addr_base_and_unit_offset (base
, &base_offset
);
4004 /* Aggregate arguments can have non-invariant addresses. */
4007 base
= build_fold_addr_expr (prev_base
);
4008 off
= build_int_cst (adj
->alias_ptr_type
,
4009 adj
->offset
/ BITS_PER_UNIT
);
4011 else if (TREE_CODE (base
) == MEM_REF
)
4016 deref_align
= TYPE_ALIGN (TREE_TYPE (base
));
4018 off
= build_int_cst (adj
->alias_ptr_type
,
4020 + adj
->offset
/ BITS_PER_UNIT
);
4021 off
= int_const_binop (PLUS_EXPR
, TREE_OPERAND (base
, 1),
4023 base
= TREE_OPERAND (base
, 0);
4027 off
= build_int_cst (adj
->alias_ptr_type
,
4029 + adj
->offset
/ BITS_PER_UNIT
);
4030 base
= build_fold_addr_expr (base
);
4036 tree type
= adj
->type
;
4038 unsigned HOST_WIDE_INT misalign
;
4042 align
= deref_align
;
4047 get_pointer_alignment_1 (base
, &align
, &misalign
);
4048 if (TYPE_ALIGN (type
) > align
)
4049 align
= TYPE_ALIGN (type
);
4051 misalign
+= (offset_int::from (off
, SIGNED
).to_short_addr ()
4053 misalign
= misalign
& (align
- 1);
4055 align
= (misalign
& -misalign
);
4056 if (align
< TYPE_ALIGN (type
))
4057 type
= build_aligned_type (type
, align
);
4058 base
= force_gimple_operand_gsi (&gsi
, base
,
4059 true, NULL
, true, GSI_SAME_STMT
);
4060 expr
= fold_build2_loc (loc
, MEM_REF
, type
, base
, off
);
4061 /* If expr is not a valid gimple call argument emit
4062 a load into a temporary. */
4063 if (is_gimple_reg_type (TREE_TYPE (expr
)))
4065 gimple tem
= gimple_build_assign (NULL_TREE
, expr
);
4066 if (gimple_in_ssa_p (cfun
))
4068 gimple_set_vuse (tem
, gimple_vuse (stmt
));
4069 expr
= make_ssa_name (TREE_TYPE (expr
), tem
);
4072 expr
= create_tmp_reg (TREE_TYPE (expr
));
4073 gimple_assign_set_lhs (tem
, expr
);
4074 gsi_insert_before (&gsi
, tem
, GSI_SAME_STMT
);
4079 expr
= fold_build2_loc (loc
, MEM_REF
, adj
->type
, base
, off
);
4080 expr
= build_fold_addr_expr (expr
);
4081 expr
= force_gimple_operand_gsi (&gsi
, expr
,
4082 true, NULL
, true, GSI_SAME_STMT
);
4084 vargs
.quick_push (expr
);
4086 if (adj
->op
!= IPA_PARM_OP_COPY
&& MAY_HAVE_DEBUG_STMTS
)
4089 tree ddecl
= NULL_TREE
, origin
= DECL_ORIGIN (adj
->base
), arg
;
4092 arg
= gimple_call_arg (stmt
, adj
->base_index
);
4093 if (!useless_type_conversion_p (TREE_TYPE (origin
), TREE_TYPE (arg
)))
4095 if (!fold_convertible_p (TREE_TYPE (origin
), arg
))
4097 arg
= fold_convert_loc (gimple_location (stmt
),
4098 TREE_TYPE (origin
), arg
);
4100 if (debug_args
== NULL
)
4101 debug_args
= decl_debug_args_insert (callee_decl
);
4102 for (ix
= 0; vec_safe_iterate (*debug_args
, ix
, &ddecl
); ix
+= 2)
4103 if (ddecl
== origin
)
4105 ddecl
= (**debug_args
)[ix
+ 1];
4110 ddecl
= make_node (DEBUG_EXPR_DECL
);
4111 DECL_ARTIFICIAL (ddecl
) = 1;
4112 TREE_TYPE (ddecl
) = TREE_TYPE (origin
);
4113 DECL_MODE (ddecl
) = DECL_MODE (origin
);
4115 vec_safe_push (*debug_args
, origin
);
4116 vec_safe_push (*debug_args
, ddecl
);
4118 def_temp
= gimple_build_debug_bind (ddecl
, unshare_expr (arg
), stmt
);
4119 gsi_insert_before (&gsi
, def_temp
, GSI_SAME_STMT
);
4123 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
4125 fprintf (dump_file
, "replacing stmt:");
4126 print_gimple_stmt (dump_file
, gsi_stmt (gsi
), 0, 0);
4129 new_stmt
= gimple_build_call_vec (callee_decl
, vargs
);
4131 if (gimple_call_lhs (stmt
))
4132 gimple_call_set_lhs (new_stmt
, gimple_call_lhs (stmt
));
4134 gimple_set_block (new_stmt
, gimple_block (stmt
));
4135 if (gimple_has_location (stmt
))
4136 gimple_set_location (new_stmt
, gimple_location (stmt
));
4137 gimple_call_set_chain (new_stmt
, gimple_call_chain (stmt
));
4138 gimple_call_copy_flags (new_stmt
, stmt
);
4139 if (gimple_in_ssa_p (cfun
))
4141 gimple_set_vuse (new_stmt
, gimple_vuse (stmt
));
4142 if (gimple_vdef (stmt
))
4144 gimple_set_vdef (new_stmt
, gimple_vdef (stmt
));
4145 SSA_NAME_DEF_STMT (gimple_vdef (new_stmt
)) = new_stmt
;
4149 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
4151 fprintf (dump_file
, "with stmt:");
4152 print_gimple_stmt (dump_file
, new_stmt
, 0, 0);
4153 fprintf (dump_file
, "\n");
4155 gsi_replace (&gsi
, new_stmt
, true);
4157 cs
->set_call_stmt (new_stmt
);
4160 current_node
->record_stmt_references (gsi_stmt (gsi
));
4163 while (gsi_stmt (gsi
) != gsi_stmt (prev_gsi
));
4166 /* If the expression *EXPR should be replaced by a reduction of a parameter, do
4167 so. ADJUSTMENTS is a pointer to a vector of adjustments. CONVERT
4168 specifies whether the function should care about type incompatibility the
4169 current and new expressions. If it is false, the function will leave
4170 incompatibility issues to the caller. Return true iff the expression
4174 ipa_modify_expr (tree
*expr
, bool convert
,
4175 ipa_parm_adjustment_vec adjustments
)
4177 struct ipa_parm_adjustment
*cand
4178 = ipa_get_adjustment_candidate (&expr
, &convert
, adjustments
, false);
4184 src
= build_simple_mem_ref (cand
->new_decl
);
4186 src
= cand
->new_decl
;
4188 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
4190 fprintf (dump_file
, "About to replace expr ");
4191 print_generic_expr (dump_file
, *expr
, 0);
4192 fprintf (dump_file
, " with ");
4193 print_generic_expr (dump_file
, src
, 0);
4194 fprintf (dump_file
, "\n");
4197 if (convert
&& !useless_type_conversion_p (TREE_TYPE (*expr
), cand
->type
))
4199 tree vce
= build1 (VIEW_CONVERT_EXPR
, TREE_TYPE (*expr
), src
);
4207 /* If T is an SSA_NAME, return NULL if it is not a default def or
4208 return its base variable if it is. If IGNORE_DEFAULT_DEF is true,
4209 the base variable is always returned, regardless if it is a default
4210 def. Return T if it is not an SSA_NAME. */
4213 get_ssa_base_param (tree t
, bool ignore_default_def
)
4215 if (TREE_CODE (t
) == SSA_NAME
)
4217 if (ignore_default_def
|| SSA_NAME_IS_DEFAULT_DEF (t
))
4218 return SSA_NAME_VAR (t
);
4225 /* Given an expression, return an adjustment entry specifying the
4226 transformation to be done on EXPR. If no suitable adjustment entry
4227 was found, returns NULL.
4229 If IGNORE_DEFAULT_DEF is set, consider SSA_NAMEs which are not a
4230 default def, otherwise bail on them.
4232 If CONVERT is non-NULL, this function will set *CONVERT if the
4233 expression provided is a component reference. ADJUSTMENTS is the
4234 adjustments vector. */
4236 ipa_parm_adjustment
*
4237 ipa_get_adjustment_candidate (tree
**expr
, bool *convert
,
4238 ipa_parm_adjustment_vec adjustments
,
4239 bool ignore_default_def
)
4241 if (TREE_CODE (**expr
) == BIT_FIELD_REF
4242 || TREE_CODE (**expr
) == IMAGPART_EXPR
4243 || TREE_CODE (**expr
) == REALPART_EXPR
)
4245 *expr
= &TREE_OPERAND (**expr
, 0);
4250 HOST_WIDE_INT offset
, size
, max_size
;
4251 tree base
= get_ref_base_and_extent (**expr
, &offset
, &size
, &max_size
);
4252 if (!base
|| size
== -1 || max_size
== -1)
4255 if (TREE_CODE (base
) == MEM_REF
)
4257 offset
+= mem_ref_offset (base
).to_short_addr () * BITS_PER_UNIT
;
4258 base
= TREE_OPERAND (base
, 0);
4261 base
= get_ssa_base_param (base
, ignore_default_def
);
4262 if (!base
|| TREE_CODE (base
) != PARM_DECL
)
4265 struct ipa_parm_adjustment
*cand
= NULL
;
4266 unsigned int len
= adjustments
.length ();
4267 for (unsigned i
= 0; i
< len
; i
++)
4269 struct ipa_parm_adjustment
*adj
= &adjustments
[i
];
4271 if (adj
->base
== base
4272 && (adj
->offset
== offset
|| adj
->op
== IPA_PARM_OP_REMOVE
))
4279 if (!cand
|| cand
->op
== IPA_PARM_OP_COPY
|| cand
->op
== IPA_PARM_OP_REMOVE
)
4284 /* Return true iff BASE_INDEX is in ADJUSTMENTS more than once. */
4287 index_in_adjustments_multiple_times_p (int base_index
,
4288 ipa_parm_adjustment_vec adjustments
)
4290 int i
, len
= adjustments
.length ();
4293 for (i
= 0; i
< len
; i
++)
4295 struct ipa_parm_adjustment
*adj
;
4296 adj
= &adjustments
[i
];
4298 if (adj
->base_index
== base_index
)
4310 /* Return adjustments that should have the same effect on function parameters
4311 and call arguments as if they were first changed according to adjustments in
4312 INNER and then by adjustments in OUTER. */
4314 ipa_parm_adjustment_vec
4315 ipa_combine_adjustments (ipa_parm_adjustment_vec inner
,
4316 ipa_parm_adjustment_vec outer
)
4318 int i
, outlen
= outer
.length ();
4319 int inlen
= inner
.length ();
4321 ipa_parm_adjustment_vec adjustments
, tmp
;
4324 for (i
= 0; i
< inlen
; i
++)
4326 struct ipa_parm_adjustment
*n
;
4329 if (n
->op
== IPA_PARM_OP_REMOVE
)
4333 /* FIXME: Handling of new arguments are not implemented yet. */
4334 gcc_assert (n
->op
!= IPA_PARM_OP_NEW
);
4335 tmp
.quick_push (*n
);
4339 adjustments
.create (outlen
+ removals
);
4340 for (i
= 0; i
< outlen
; i
++)
4342 struct ipa_parm_adjustment r
;
4343 struct ipa_parm_adjustment
*out
= &outer
[i
];
4344 struct ipa_parm_adjustment
*in
= &tmp
[out
->base_index
];
4346 memset (&r
, 0, sizeof (r
));
4347 gcc_assert (in
->op
!= IPA_PARM_OP_REMOVE
);
4348 if (out
->op
== IPA_PARM_OP_REMOVE
)
4350 if (!index_in_adjustments_multiple_times_p (in
->base_index
, tmp
))
4352 r
.op
= IPA_PARM_OP_REMOVE
;
4353 adjustments
.quick_push (r
);
4359 /* FIXME: Handling of new arguments are not implemented yet. */
4360 gcc_assert (out
->op
!= IPA_PARM_OP_NEW
);
4363 r
.base_index
= in
->base_index
;
4366 /* FIXME: Create nonlocal value too. */
4368 if (in
->op
== IPA_PARM_OP_COPY
&& out
->op
== IPA_PARM_OP_COPY
)
4369 r
.op
= IPA_PARM_OP_COPY
;
4370 else if (in
->op
== IPA_PARM_OP_COPY
)
4371 r
.offset
= out
->offset
;
4372 else if (out
->op
== IPA_PARM_OP_COPY
)
4373 r
.offset
= in
->offset
;
4375 r
.offset
= in
->offset
+ out
->offset
;
4376 adjustments
.quick_push (r
);
4379 for (i
= 0; i
< inlen
; i
++)
4381 struct ipa_parm_adjustment
*n
= &inner
[i
];
4383 if (n
->op
== IPA_PARM_OP_REMOVE
)
4384 adjustments
.quick_push (*n
);
4391 /* Dump the adjustments in the vector ADJUSTMENTS to dump_file in a human
4392 friendly way, assuming they are meant to be applied to FNDECL. */
4395 ipa_dump_param_adjustments (FILE *file
, ipa_parm_adjustment_vec adjustments
,
4398 int i
, len
= adjustments
.length ();
4400 vec
<tree
> parms
= ipa_get_vector_of_formal_parms (fndecl
);
4402 fprintf (file
, "IPA param adjustments: ");
4403 for (i
= 0; i
< len
; i
++)
4405 struct ipa_parm_adjustment
*adj
;
4406 adj
= &adjustments
[i
];
4409 fprintf (file
, " ");
4413 fprintf (file
, "%i. base_index: %i - ", i
, adj
->base_index
);
4414 print_generic_expr (file
, parms
[adj
->base_index
], 0);
4417 fprintf (file
, ", base: ");
4418 print_generic_expr (file
, adj
->base
, 0);
4422 fprintf (file
, ", new_decl: ");
4423 print_generic_expr (file
, adj
->new_decl
, 0);
4425 if (adj
->new_ssa_base
)
4427 fprintf (file
, ", new_ssa_base: ");
4428 print_generic_expr (file
, adj
->new_ssa_base
, 0);
4431 if (adj
->op
== IPA_PARM_OP_COPY
)
4432 fprintf (file
, ", copy_param");
4433 else if (adj
->op
== IPA_PARM_OP_REMOVE
)
4434 fprintf (file
, ", remove_param");
4436 fprintf (file
, ", offset %li", (long) adj
->offset
);
4438 fprintf (file
, ", by_ref");
4439 print_node_brief (file
, ", type: ", adj
->type
, 0);
4440 fprintf (file
, "\n");
4445 /* Dump the AV linked list. */
4448 ipa_dump_agg_replacement_values (FILE *f
, struct ipa_agg_replacement_value
*av
)
4451 fprintf (f
, " Aggregate replacements:");
4452 for (; av
; av
= av
->next
)
4454 fprintf (f
, "%s %i[" HOST_WIDE_INT_PRINT_DEC
"]=", comma
? "," : "",
4455 av
->index
, av
->offset
);
4456 print_generic_expr (f
, av
->value
, 0);
4462 /* Stream out jump function JUMP_FUNC to OB. */
4465 ipa_write_jump_function (struct output_block
*ob
,
4466 struct ipa_jump_func
*jump_func
)
4468 struct ipa_agg_jf_item
*item
;
4469 struct bitpack_d bp
;
4472 streamer_write_uhwi (ob
, jump_func
->type
);
4473 switch (jump_func
->type
)
4475 case IPA_JF_UNKNOWN
:
4479 EXPR_LOCATION (jump_func
->value
.constant
.value
) == UNKNOWN_LOCATION
);
4480 stream_write_tree (ob
, jump_func
->value
.constant
.value
, true);
4482 case IPA_JF_PASS_THROUGH
:
4483 streamer_write_uhwi (ob
, jump_func
->value
.pass_through
.operation
);
4484 if (jump_func
->value
.pass_through
.operation
== NOP_EXPR
)
4486 streamer_write_uhwi (ob
, jump_func
->value
.pass_through
.formal_id
);
4487 bp
= bitpack_create (ob
->main_stream
);
4488 bp_pack_value (&bp
, jump_func
->value
.pass_through
.agg_preserved
, 1);
4489 streamer_write_bitpack (&bp
);
4493 stream_write_tree (ob
, jump_func
->value
.pass_through
.operand
, true);
4494 streamer_write_uhwi (ob
, jump_func
->value
.pass_through
.formal_id
);
4497 case IPA_JF_ANCESTOR
:
4498 streamer_write_uhwi (ob
, jump_func
->value
.ancestor
.offset
);
4499 streamer_write_uhwi (ob
, jump_func
->value
.ancestor
.formal_id
);
4500 bp
= bitpack_create (ob
->main_stream
);
4501 bp_pack_value (&bp
, jump_func
->value
.ancestor
.agg_preserved
, 1);
4502 streamer_write_bitpack (&bp
);
4506 count
= vec_safe_length (jump_func
->agg
.items
);
4507 streamer_write_uhwi (ob
, count
);
4510 bp
= bitpack_create (ob
->main_stream
);
4511 bp_pack_value (&bp
, jump_func
->agg
.by_ref
, 1);
4512 streamer_write_bitpack (&bp
);
4515 FOR_EACH_VEC_SAFE_ELT (jump_func
->agg
.items
, i
, item
)
4517 streamer_write_uhwi (ob
, item
->offset
);
4518 stream_write_tree (ob
, item
->value
, true);
4521 bp
= bitpack_create (ob
->main_stream
);
4522 bp_pack_value (&bp
, jump_func
->alignment
.known
, 1);
4523 streamer_write_bitpack (&bp
);
4524 if (jump_func
->alignment
.known
)
4526 streamer_write_uhwi (ob
, jump_func
->alignment
.align
);
4527 streamer_write_uhwi (ob
, jump_func
->alignment
.misalign
);
4531 /* Read in jump function JUMP_FUNC from IB. */
4534 ipa_read_jump_function (struct lto_input_block
*ib
,
4535 struct ipa_jump_func
*jump_func
,
4536 struct cgraph_edge
*cs
,
4537 struct data_in
*data_in
)
4539 enum jump_func_type jftype
;
4540 enum tree_code operation
;
4543 jftype
= (enum jump_func_type
) streamer_read_uhwi (ib
);
4546 case IPA_JF_UNKNOWN
:
4547 ipa_set_jf_unknown (jump_func
);
4550 ipa_set_jf_constant (jump_func
, stream_read_tree (ib
, data_in
), cs
);
4552 case IPA_JF_PASS_THROUGH
:
4553 operation
= (enum tree_code
) streamer_read_uhwi (ib
);
4554 if (operation
== NOP_EXPR
)
4556 int formal_id
= streamer_read_uhwi (ib
);
4557 struct bitpack_d bp
= streamer_read_bitpack (ib
);
4558 bool agg_preserved
= bp_unpack_value (&bp
, 1);
4559 ipa_set_jf_simple_pass_through (jump_func
, formal_id
, agg_preserved
);
4563 tree operand
= stream_read_tree (ib
, data_in
);
4564 int formal_id
= streamer_read_uhwi (ib
);
4565 ipa_set_jf_arith_pass_through (jump_func
, formal_id
, operand
,
4569 case IPA_JF_ANCESTOR
:
4571 HOST_WIDE_INT offset
= streamer_read_uhwi (ib
);
4572 int formal_id
= streamer_read_uhwi (ib
);
4573 struct bitpack_d bp
= streamer_read_bitpack (ib
);
4574 bool agg_preserved
= bp_unpack_value (&bp
, 1);
4575 ipa_set_ancestor_jf (jump_func
, offset
, formal_id
, agg_preserved
);
4580 count
= streamer_read_uhwi (ib
);
4581 vec_alloc (jump_func
->agg
.items
, count
);
4584 struct bitpack_d bp
= streamer_read_bitpack (ib
);
4585 jump_func
->agg
.by_ref
= bp_unpack_value (&bp
, 1);
4587 for (i
= 0; i
< count
; i
++)
4589 struct ipa_agg_jf_item item
;
4590 item
.offset
= streamer_read_uhwi (ib
);
4591 item
.value
= stream_read_tree (ib
, data_in
);
4592 jump_func
->agg
.items
->quick_push (item
);
4595 struct bitpack_d bp
= streamer_read_bitpack (ib
);
4596 bool alignment_known
= bp_unpack_value (&bp
, 1);
4597 if (alignment_known
)
4599 jump_func
->alignment
.known
= true;
4600 jump_func
->alignment
.align
= streamer_read_uhwi (ib
);
4601 jump_func
->alignment
.misalign
= streamer_read_uhwi (ib
);
4604 jump_func
->alignment
.known
= false;
4607 /* Stream out parts of cgraph_indirect_call_info corresponding to CS that are
4608 relevant to indirect inlining to OB. */
4611 ipa_write_indirect_edge_info (struct output_block
*ob
,
4612 struct cgraph_edge
*cs
)
4614 struct cgraph_indirect_call_info
*ii
= cs
->indirect_info
;
4615 struct bitpack_d bp
;
4617 streamer_write_hwi (ob
, ii
->param_index
);
4618 bp
= bitpack_create (ob
->main_stream
);
4619 bp_pack_value (&bp
, ii
->polymorphic
, 1);
4620 bp_pack_value (&bp
, ii
->agg_contents
, 1);
4621 bp_pack_value (&bp
, ii
->member_ptr
, 1);
4622 bp_pack_value (&bp
, ii
->by_ref
, 1);
4623 bp_pack_value (&bp
, ii
->vptr_changed
, 1);
4624 streamer_write_bitpack (&bp
);
4625 if (ii
->agg_contents
|| ii
->polymorphic
)
4626 streamer_write_hwi (ob
, ii
->offset
);
4628 gcc_assert (ii
->offset
== 0);
4630 if (ii
->polymorphic
)
4632 streamer_write_hwi (ob
, ii
->otr_token
);
4633 stream_write_tree (ob
, ii
->otr_type
, true);
4634 ii
->context
.stream_out (ob
);
4638 /* Read in parts of cgraph_indirect_call_info corresponding to CS that are
4639 relevant to indirect inlining from IB. */
4642 ipa_read_indirect_edge_info (struct lto_input_block
*ib
,
4643 struct data_in
*data_in
,
4644 struct cgraph_edge
*cs
)
4646 struct cgraph_indirect_call_info
*ii
= cs
->indirect_info
;
4647 struct bitpack_d bp
;
4649 ii
->param_index
= (int) streamer_read_hwi (ib
);
4650 bp
= streamer_read_bitpack (ib
);
4651 ii
->polymorphic
= bp_unpack_value (&bp
, 1);
4652 ii
->agg_contents
= bp_unpack_value (&bp
, 1);
4653 ii
->member_ptr
= bp_unpack_value (&bp
, 1);
4654 ii
->by_ref
= bp_unpack_value (&bp
, 1);
4655 ii
->vptr_changed
= bp_unpack_value (&bp
, 1);
4656 if (ii
->agg_contents
|| ii
->polymorphic
)
4657 ii
->offset
= (HOST_WIDE_INT
) streamer_read_hwi (ib
);
4660 if (ii
->polymorphic
)
4662 ii
->otr_token
= (HOST_WIDE_INT
) streamer_read_hwi (ib
);
4663 ii
->otr_type
= stream_read_tree (ib
, data_in
);
4664 ii
->context
.stream_in (ib
, data_in
);
4668 /* Stream out NODE info to OB. */
4671 ipa_write_node_info (struct output_block
*ob
, struct cgraph_node
*node
)
4674 lto_symtab_encoder_t encoder
;
4675 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
4677 struct cgraph_edge
*e
;
4678 struct bitpack_d bp
;
4680 encoder
= ob
->decl_state
->symtab_node_encoder
;
4681 node_ref
= lto_symtab_encoder_encode (encoder
, node
);
4682 streamer_write_uhwi (ob
, node_ref
);
4684 streamer_write_uhwi (ob
, ipa_get_param_count (info
));
4685 for (j
= 0; j
< ipa_get_param_count (info
); j
++)
4686 streamer_write_uhwi (ob
, ipa_get_param_move_cost (info
, j
));
4687 bp
= bitpack_create (ob
->main_stream
);
4688 gcc_assert (info
->analysis_done
4689 || ipa_get_param_count (info
) == 0);
4690 gcc_assert (!info
->node_enqueued
);
4691 gcc_assert (!info
->ipcp_orig_node
);
4692 for (j
= 0; j
< ipa_get_param_count (info
); j
++)
4693 bp_pack_value (&bp
, ipa_is_param_used (info
, j
), 1);
4694 streamer_write_bitpack (&bp
);
4695 for (j
= 0; j
< ipa_get_param_count (info
); j
++)
4696 streamer_write_hwi (ob
, ipa_get_controlled_uses (info
, j
));
4697 for (e
= node
->callees
; e
; e
= e
->next_callee
)
4699 struct ipa_edge_args
*args
= IPA_EDGE_REF (e
);
4701 streamer_write_uhwi (ob
,
4702 ipa_get_cs_argument_count (args
) * 2
4703 + (args
->polymorphic_call_contexts
!= NULL
));
4704 for (j
= 0; j
< ipa_get_cs_argument_count (args
); j
++)
4706 ipa_write_jump_function (ob
, ipa_get_ith_jump_func (args
, j
));
4707 if (args
->polymorphic_call_contexts
!= NULL
)
4708 ipa_get_ith_polymorhic_call_context (args
, j
)->stream_out (ob
);
4711 for (e
= node
->indirect_calls
; e
; e
= e
->next_callee
)
4713 struct ipa_edge_args
*args
= IPA_EDGE_REF (e
);
4715 streamer_write_uhwi (ob
,
4716 ipa_get_cs_argument_count (args
) * 2
4717 + (args
->polymorphic_call_contexts
!= NULL
));
4718 for (j
= 0; j
< ipa_get_cs_argument_count (args
); j
++)
4720 ipa_write_jump_function (ob
, ipa_get_ith_jump_func (args
, j
));
4721 if (args
->polymorphic_call_contexts
!= NULL
)
4722 ipa_get_ith_polymorhic_call_context (args
, j
)->stream_out (ob
);
4724 ipa_write_indirect_edge_info (ob
, e
);
4728 /* Stream in NODE info from IB. */
4731 ipa_read_node_info (struct lto_input_block
*ib
, struct cgraph_node
*node
,
4732 struct data_in
*data_in
)
4734 struct ipa_node_params
*info
= IPA_NODE_REF (node
);
4736 struct cgraph_edge
*e
;
4737 struct bitpack_d bp
;
4739 ipa_alloc_node_params (node
, streamer_read_uhwi (ib
));
4741 for (k
= 0; k
< ipa_get_param_count (info
); k
++)
4742 info
->descriptors
[k
].move_cost
= streamer_read_uhwi (ib
);
4744 bp
= streamer_read_bitpack (ib
);
4745 if (ipa_get_param_count (info
) != 0)
4746 info
->analysis_done
= true;
4747 info
->node_enqueued
= false;
4748 for (k
= 0; k
< ipa_get_param_count (info
); k
++)
4749 ipa_set_param_used (info
, k
, bp_unpack_value (&bp
, 1));
4750 for (k
= 0; k
< ipa_get_param_count (info
); k
++)
4751 ipa_set_controlled_uses (info
, k
, streamer_read_hwi (ib
));
4752 for (e
= node
->callees
; e
; e
= e
->next_callee
)
4754 struct ipa_edge_args
*args
= IPA_EDGE_REF (e
);
4755 int count
= streamer_read_uhwi (ib
);
4756 bool contexts_computed
= count
& 1;
4761 vec_safe_grow_cleared (args
->jump_functions
, count
);
4762 if (contexts_computed
)
4763 vec_safe_grow_cleared (args
->polymorphic_call_contexts
, count
);
4765 for (k
= 0; k
< ipa_get_cs_argument_count (args
); k
++)
4767 ipa_read_jump_function (ib
, ipa_get_ith_jump_func (args
, k
), e
,
4769 if (contexts_computed
)
4770 ipa_get_ith_polymorhic_call_context (args
, k
)->stream_in (ib
, data_in
);
4773 for (e
= node
->indirect_calls
; e
; e
= e
->next_callee
)
4775 struct ipa_edge_args
*args
= IPA_EDGE_REF (e
);
4776 int count
= streamer_read_uhwi (ib
);
4777 bool contexts_computed
= count
& 1;
4782 vec_safe_grow_cleared (args
->jump_functions
, count
);
4783 if (contexts_computed
)
4784 vec_safe_grow_cleared (args
->polymorphic_call_contexts
, count
);
4785 for (k
= 0; k
< ipa_get_cs_argument_count (args
); k
++)
4787 ipa_read_jump_function (ib
, ipa_get_ith_jump_func (args
, k
), e
,
4789 if (contexts_computed
)
4790 ipa_get_ith_polymorhic_call_context (args
, k
)->stream_in (ib
, data_in
);
4793 ipa_read_indirect_edge_info (ib
, data_in
, e
);
4797 /* Write jump functions for nodes in SET. */
4800 ipa_prop_write_jump_functions (void)
4802 struct cgraph_node
*node
;
4803 struct output_block
*ob
;
4804 unsigned int count
= 0;
4805 lto_symtab_encoder_iterator lsei
;
4806 lto_symtab_encoder_t encoder
;
4808 if (!ipa_node_params_sum
)
4811 ob
= create_output_block (LTO_section_jump_functions
);
4812 encoder
= ob
->decl_state
->symtab_node_encoder
;
4814 for (lsei
= lsei_start_function_in_partition (encoder
); !lsei_end_p (lsei
);
4815 lsei_next_function_in_partition (&lsei
))
4817 node
= lsei_cgraph_node (lsei
);
4818 if (node
->has_gimple_body_p ()
4819 && IPA_NODE_REF (node
) != NULL
)
4823 streamer_write_uhwi (ob
, count
);
4825 /* Process all of the functions. */
4826 for (lsei
= lsei_start_function_in_partition (encoder
); !lsei_end_p (lsei
);
4827 lsei_next_function_in_partition (&lsei
))
4829 node
= lsei_cgraph_node (lsei
);
4830 if (node
->has_gimple_body_p ()
4831 && IPA_NODE_REF (node
) != NULL
)
4832 ipa_write_node_info (ob
, node
);
4834 streamer_write_char_stream (ob
->main_stream
, 0);
4835 produce_asm (ob
, NULL
);
4836 destroy_output_block (ob
);
4839 /* Read section in file FILE_DATA of length LEN with data DATA. */
4842 ipa_prop_read_section (struct lto_file_decl_data
*file_data
, const char *data
,
4845 const struct lto_function_header
*header
=
4846 (const struct lto_function_header
*) data
;
4847 const int cfg_offset
= sizeof (struct lto_function_header
);
4848 const int main_offset
= cfg_offset
+ header
->cfg_size
;
4849 const int string_offset
= main_offset
+ header
->main_size
;
4850 struct data_in
*data_in
;
4854 lto_input_block
ib_main ((const char *) data
+ main_offset
,
4855 header
->main_size
, file_data
->mode_table
);
4858 lto_data_in_create (file_data
, (const char *) data
+ string_offset
,
4859 header
->string_size
, vNULL
);
4860 count
= streamer_read_uhwi (&ib_main
);
4862 for (i
= 0; i
< count
; i
++)
4865 struct cgraph_node
*node
;
4866 lto_symtab_encoder_t encoder
;
4868 index
= streamer_read_uhwi (&ib_main
);
4869 encoder
= file_data
->symtab_node_encoder
;
4870 node
= dyn_cast
<cgraph_node
*> (lto_symtab_encoder_deref (encoder
,
4872 gcc_assert (node
->definition
);
4873 ipa_read_node_info (&ib_main
, node
, data_in
);
4875 lto_free_section_data (file_data
, LTO_section_jump_functions
, NULL
, data
,
4877 lto_data_in_delete (data_in
);
4880 /* Read ipcp jump functions. */
4883 ipa_prop_read_jump_functions (void)
4885 struct lto_file_decl_data
**file_data_vec
= lto_get_file_decl_data ();
4886 struct lto_file_decl_data
*file_data
;
4889 ipa_check_create_node_params ();
4890 ipa_check_create_edge_args ();
4891 ipa_register_cgraph_hooks ();
4893 while ((file_data
= file_data_vec
[j
++]))
4896 const char *data
= lto_get_section_data (file_data
, LTO_section_jump_functions
, NULL
, &len
);
4899 ipa_prop_read_section (file_data
, data
, len
);
4903 /* After merging units, we can get mismatch in argument counts.
4904 Also decl merging might've rendered parameter lists obsolete.
4905 Also compute called_with_variable_arg info. */
4908 ipa_update_after_lto_read (void)
4910 ipa_check_create_node_params ();
4911 ipa_check_create_edge_args ();
4915 write_ipcp_transformation_info (output_block
*ob
, cgraph_node
*node
)
4918 unsigned int count
= 0;
4919 lto_symtab_encoder_t encoder
;
4920 struct ipa_agg_replacement_value
*aggvals
, *av
;
4922 aggvals
= ipa_get_agg_replacements_for_node (node
);
4923 encoder
= ob
->decl_state
->symtab_node_encoder
;
4924 node_ref
= lto_symtab_encoder_encode (encoder
, node
);
4925 streamer_write_uhwi (ob
, node_ref
);
4927 for (av
= aggvals
; av
; av
= av
->next
)
4929 streamer_write_uhwi (ob
, count
);
4931 for (av
= aggvals
; av
; av
= av
->next
)
4933 struct bitpack_d bp
;
4935 streamer_write_uhwi (ob
, av
->offset
);
4936 streamer_write_uhwi (ob
, av
->index
);
4937 stream_write_tree (ob
, av
->value
, true);
4939 bp
= bitpack_create (ob
->main_stream
);
4940 bp_pack_value (&bp
, av
->by_ref
, 1);
4941 streamer_write_bitpack (&bp
);
4944 ipcp_transformation_summary
*ts
= ipcp_get_transformation_summary (node
);
4945 if (ts
&& vec_safe_length (ts
->alignments
) > 0)
4947 count
= ts
->alignments
->length ();
4949 streamer_write_uhwi (ob
, count
);
4950 for (unsigned i
= 0; i
< count
; ++i
)
4952 ipa_alignment
*parm_al
= &(*ts
->alignments
)[i
];
4954 struct bitpack_d bp
;
4955 bp
= bitpack_create (ob
->main_stream
);
4956 bp_pack_value (&bp
, parm_al
->known
, 1);
4957 streamer_write_bitpack (&bp
);
4960 streamer_write_uhwi (ob
, parm_al
->align
);
4961 streamer_write_hwi_in_range (ob
->main_stream
, 0, parm_al
->align
,
4967 streamer_write_uhwi (ob
, 0);
4970 /* Stream in the aggregate value replacement chain for NODE from IB. */
4973 read_ipcp_transformation_info (lto_input_block
*ib
, cgraph_node
*node
,
4976 struct ipa_agg_replacement_value
*aggvals
= NULL
;
4977 unsigned int count
, i
;
4979 count
= streamer_read_uhwi (ib
);
4980 for (i
= 0; i
<count
; i
++)
4982 struct ipa_agg_replacement_value
*av
;
4983 struct bitpack_d bp
;
4985 av
= ggc_alloc
<ipa_agg_replacement_value
> ();
4986 av
->offset
= streamer_read_uhwi (ib
);
4987 av
->index
= streamer_read_uhwi (ib
);
4988 av
->value
= stream_read_tree (ib
, data_in
);
4989 bp
= streamer_read_bitpack (ib
);
4990 av
->by_ref
= bp_unpack_value (&bp
, 1);
4994 ipa_set_node_agg_value_chain (node
, aggvals
);
4996 count
= streamer_read_uhwi (ib
);
4999 ipcp_grow_transformations_if_necessary ();
5001 ipcp_transformation_summary
*ts
= ipcp_get_transformation_summary (node
);
5002 vec_safe_grow_cleared (ts
->alignments
, count
);
5004 for (i
= 0; i
< count
; i
++)
5006 ipa_alignment
*parm_al
;
5007 parm_al
= &(*ts
->alignments
)[i
];
5008 struct bitpack_d bp
;
5009 bp
= streamer_read_bitpack (ib
);
5010 parm_al
->known
= bp_unpack_value (&bp
, 1);
5013 parm_al
->align
= streamer_read_uhwi (ib
);
5015 = streamer_read_hwi_in_range (ib
, "ipa-prop misalign",
5022 /* Write all aggregate replacement for nodes in set. */
5025 ipcp_write_transformation_summaries (void)
5027 struct cgraph_node
*node
;
5028 struct output_block
*ob
;
5029 unsigned int count
= 0;
5030 lto_symtab_encoder_iterator lsei
;
5031 lto_symtab_encoder_t encoder
;
5033 ob
= create_output_block (LTO_section_ipcp_transform
);
5034 encoder
= ob
->decl_state
->symtab_node_encoder
;
5036 for (lsei
= lsei_start_function_in_partition (encoder
); !lsei_end_p (lsei
);
5037 lsei_next_function_in_partition (&lsei
))
5039 node
= lsei_cgraph_node (lsei
);
5040 if (node
->has_gimple_body_p ())
5044 streamer_write_uhwi (ob
, count
);
5046 for (lsei
= lsei_start_function_in_partition (encoder
); !lsei_end_p (lsei
);
5047 lsei_next_function_in_partition (&lsei
))
5049 node
= lsei_cgraph_node (lsei
);
5050 if (node
->has_gimple_body_p ())
5051 write_ipcp_transformation_info (ob
, node
);
5053 streamer_write_char_stream (ob
->main_stream
, 0);
5054 produce_asm (ob
, NULL
);
5055 destroy_output_block (ob
);
5058 /* Read replacements section in file FILE_DATA of length LEN with data
5062 read_replacements_section (struct lto_file_decl_data
*file_data
,
5066 const struct lto_function_header
*header
=
5067 (const struct lto_function_header
*) data
;
5068 const int cfg_offset
= sizeof (struct lto_function_header
);
5069 const int main_offset
= cfg_offset
+ header
->cfg_size
;
5070 const int string_offset
= main_offset
+ header
->main_size
;
5071 struct data_in
*data_in
;
5075 lto_input_block
ib_main ((const char *) data
+ main_offset
,
5076 header
->main_size
, file_data
->mode_table
);
5078 data_in
= lto_data_in_create (file_data
, (const char *) data
+ string_offset
,
5079 header
->string_size
, vNULL
);
5080 count
= streamer_read_uhwi (&ib_main
);
5082 for (i
= 0; i
< count
; i
++)
5085 struct cgraph_node
*node
;
5086 lto_symtab_encoder_t encoder
;
5088 index
= streamer_read_uhwi (&ib_main
);
5089 encoder
= file_data
->symtab_node_encoder
;
5090 node
= dyn_cast
<cgraph_node
*> (lto_symtab_encoder_deref (encoder
,
5092 gcc_assert (node
->definition
);
5093 read_ipcp_transformation_info (&ib_main
, node
, data_in
);
5095 lto_free_section_data (file_data
, LTO_section_jump_functions
, NULL
, data
,
5097 lto_data_in_delete (data_in
);
5100 /* Read IPA-CP aggregate replacements. */
5103 ipcp_read_transformation_summaries (void)
5105 struct lto_file_decl_data
**file_data_vec
= lto_get_file_decl_data ();
5106 struct lto_file_decl_data
*file_data
;
5109 while ((file_data
= file_data_vec
[j
++]))
5112 const char *data
= lto_get_section_data (file_data
,
5113 LTO_section_ipcp_transform
,
5116 read_replacements_section (file_data
, data
, len
);
5120 /* Adjust the aggregate replacements in AGGVAL to reflect parameters skipped in
5124 adjust_agg_replacement_values (struct cgraph_node
*node
,
5125 struct ipa_agg_replacement_value
*aggval
)
5127 struct ipa_agg_replacement_value
*v
;
5128 int i
, c
= 0, d
= 0, *adj
;
5130 if (!node
->clone
.combined_args_to_skip
)
5133 for (v
= aggval
; v
; v
= v
->next
)
5135 gcc_assert (v
->index
>= 0);
5141 adj
= XALLOCAVEC (int, c
);
5142 for (i
= 0; i
< c
; i
++)
5143 if (bitmap_bit_p (node
->clone
.combined_args_to_skip
, i
))
5151 for (v
= aggval
; v
; v
= v
->next
)
5152 v
->index
= adj
[v
->index
];
5155 /* Dominator walker driving the ipcp modification phase. */
5157 class ipcp_modif_dom_walker
: public dom_walker
5160 ipcp_modif_dom_walker (struct func_body_info
*fbi
,
5161 vec
<ipa_param_descriptor
> descs
,
5162 struct ipa_agg_replacement_value
*av
,
5164 : dom_walker (CDI_DOMINATORS
), m_fbi (fbi
), m_descriptors (descs
),
5165 m_aggval (av
), m_something_changed (sc
), m_cfg_changed (cc
) {}
5167 virtual void before_dom_children (basic_block
);
5170 struct func_body_info
*m_fbi
;
5171 vec
<ipa_param_descriptor
> m_descriptors
;
5172 struct ipa_agg_replacement_value
*m_aggval
;
5173 bool *m_something_changed
, *m_cfg_changed
;
5177 ipcp_modif_dom_walker::before_dom_children (basic_block bb
)
5179 gimple_stmt_iterator gsi
;
5180 for (gsi
= gsi_start_bb (bb
); !gsi_end_p (gsi
); gsi_next (&gsi
))
5182 struct ipa_agg_replacement_value
*v
;
5183 gimple stmt
= gsi_stmt (gsi
);
5185 HOST_WIDE_INT offset
, size
;
5189 if (!gimple_assign_load_p (stmt
))
5191 rhs
= gimple_assign_rhs1 (stmt
);
5192 if (!is_gimple_reg_type (TREE_TYPE (rhs
)))
5197 while (handled_component_p (t
))
5199 /* V_C_E can do things like convert an array of integers to one
5200 bigger integer and similar things we do not handle below. */
5201 if (TREE_CODE (rhs
) == VIEW_CONVERT_EXPR
)
5206 t
= TREE_OPERAND (t
, 0);
5211 if (!ipa_load_from_parm_agg_1 (m_fbi
, m_descriptors
, stmt
, rhs
, &index
,
5212 &offset
, &size
, &by_ref
))
5214 for (v
= m_aggval
; v
; v
= v
->next
)
5215 if (v
->index
== index
5216 && v
->offset
== offset
)
5219 || v
->by_ref
!= by_ref
5220 || tree_to_shwi (TYPE_SIZE (TREE_TYPE (v
->value
))) != size
)
5223 gcc_checking_assert (is_gimple_ip_invariant (v
->value
));
5224 if (!useless_type_conversion_p (TREE_TYPE (rhs
), TREE_TYPE (v
->value
)))
5226 if (fold_convertible_p (TREE_TYPE (rhs
), v
->value
))
5227 val
= fold_build1 (NOP_EXPR
, TREE_TYPE (rhs
), v
->value
);
5228 else if (TYPE_SIZE (TREE_TYPE (rhs
))
5229 == TYPE_SIZE (TREE_TYPE (v
->value
)))
5230 val
= fold_build1 (VIEW_CONVERT_EXPR
, TREE_TYPE (rhs
), v
->value
);
5235 fprintf (dump_file
, " const ");
5236 print_generic_expr (dump_file
, v
->value
, 0);
5237 fprintf (dump_file
, " can't be converted to type of ");
5238 print_generic_expr (dump_file
, rhs
, 0);
5239 fprintf (dump_file
, "\n");
5247 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
5249 fprintf (dump_file
, "Modifying stmt:\n ");
5250 print_gimple_stmt (dump_file
, stmt
, 0, 0);
5252 gimple_assign_set_rhs_from_tree (&gsi
, val
);
5255 if (dump_file
&& (dump_flags
& TDF_DETAILS
))
5257 fprintf (dump_file
, "into:\n ");
5258 print_gimple_stmt (dump_file
, stmt
, 0, 0);
5259 fprintf (dump_file
, "\n");
5262 *m_something_changed
= true;
5263 if (maybe_clean_eh_stmt (stmt
)
5264 && gimple_purge_dead_eh_edges (gimple_bb (stmt
)))
5265 *m_cfg_changed
= true;
5270 /* Update alignment of formal parameters as described in
5271 ipcp_transformation_summary. */
5274 ipcp_update_alignments (struct cgraph_node
*node
)
5276 tree fndecl
= node
->decl
;
5277 tree parm
= DECL_ARGUMENTS (fndecl
);
5278 tree next_parm
= parm
;
5279 ipcp_transformation_summary
*ts
= ipcp_get_transformation_summary (node
);
5280 if (!ts
|| vec_safe_length (ts
->alignments
) == 0)
5282 const vec
<ipa_alignment
, va_gc
> &alignments
= *ts
->alignments
;
5283 unsigned count
= alignments
.length ();
5285 for (unsigned i
= 0; i
< count
; ++i
, parm
= next_parm
)
5287 if (node
->clone
.combined_args_to_skip
5288 && bitmap_bit_p (node
->clone
.combined_args_to_skip
, i
))
5290 gcc_checking_assert (parm
);
5291 next_parm
= DECL_CHAIN (parm
);
5293 if (!alignments
[i
].known
|| !is_gimple_reg (parm
))
5295 tree ddef
= ssa_default_def (DECL_STRUCT_FUNCTION (node
->decl
), parm
);
5300 fprintf (dump_file
, " Adjusting alignment of param %u to %u, "
5301 "misalignment to %u\n", i
, alignments
[i
].align
,
5302 alignments
[i
].misalign
);
5304 struct ptr_info_def
*pi
= get_ptr_info (ddef
);
5305 gcc_checking_assert (pi
);
5307 unsigned old_misalign
;
5308 bool old_known
= get_ptr_info_alignment (pi
, &old_align
, &old_misalign
);
5311 && old_align
>= alignments
[i
].align
)
5314 fprintf (dump_file
, " But the alignment was already %u.\n",
5318 set_ptr_info_alignment (pi
, alignments
[i
].align
, alignments
[i
].misalign
);
5322 /* IPCP transformation phase doing propagation of aggregate values. */
5325 ipcp_transform_function (struct cgraph_node
*node
)
5327 vec
<ipa_param_descriptor
> descriptors
= vNULL
;
5328 struct func_body_info fbi
;
5329 struct ipa_agg_replacement_value
*aggval
;
5331 bool cfg_changed
= false, something_changed
= false;
5333 gcc_checking_assert (cfun
);
5334 gcc_checking_assert (current_function_decl
);
5337 fprintf (dump_file
, "Modification phase of node %s/%i\n",
5338 node
->name (), node
->order
);
5340 ipcp_update_alignments (node
);
5341 aggval
= ipa_get_agg_replacements_for_node (node
);
5344 param_count
= count_formal_params (node
->decl
);
5345 if (param_count
== 0)
5347 adjust_agg_replacement_values (node
, aggval
);
5349 ipa_dump_agg_replacement_values (dump_file
, aggval
);
5353 fbi
.bb_infos
= vNULL
;
5354 fbi
.bb_infos
.safe_grow_cleared (last_basic_block_for_fn (cfun
));
5355 fbi
.param_count
= param_count
;
5358 descriptors
.safe_grow_cleared (param_count
);
5359 ipa_populate_param_decls (node
, descriptors
);
5360 calculate_dominance_info (CDI_DOMINATORS
);
5361 ipcp_modif_dom_walker (&fbi
, descriptors
, aggval
, &something_changed
,
5362 &cfg_changed
).walk (ENTRY_BLOCK_PTR_FOR_FN (cfun
));
5365 struct ipa_bb_info
*bi
;
5366 FOR_EACH_VEC_ELT (fbi
.bb_infos
, i
, bi
)
5367 free_ipa_bb_info (bi
);
5368 fbi
.bb_infos
.release ();
5369 free_dominance_info (CDI_DOMINATORS
);
5370 (*ipcp_transformations
)[node
->uid
].agg_values
= NULL
;
5371 (*ipcp_transformations
)[node
->uid
].alignments
= NULL
;
5372 descriptors
.release ();
5374 if (!something_changed
)
5376 else if (cfg_changed
)
5377 return TODO_update_ssa_only_virtuals
| TODO_cleanup_cfg
;
5379 return TODO_update_ssa_only_virtuals
;