Add testcase of PR c++/92542, already fixed.
[official-gcc.git] / gcc / ipa-prop.c
blob12cdb95cf2ab7bea181b774af6b2213ec1c76bc8
1 /* Interprocedural analyses.
2 Copyright (C) 2005-2020 Free Software Foundation, Inc.
4 This file is part of GCC.
6 GCC is free software; you can redistribute it and/or modify it under
7 the terms of the GNU General Public License as published by the Free
8 Software Foundation; either version 3, or (at your option) any later
9 version.
11 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
12 WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
14 for more details.
16 You should have received a copy of the GNU General Public License
17 along with GCC; see the file COPYING3. If not see
18 <http://www.gnu.org/licenses/>. */
20 #include "config.h"
21 #include "system.h"
22 #include "coretypes.h"
23 #include "backend.h"
24 #include "rtl.h"
25 #include "tree.h"
26 #include "gimple.h"
27 #include "alloc-pool.h"
28 #include "tree-pass.h"
29 #include "ssa.h"
30 #include "tree-streamer.h"
31 #include "cgraph.h"
32 #include "diagnostic.h"
33 #include "fold-const.h"
34 #include "gimple-fold.h"
35 #include "tree-eh.h"
36 #include "calls.h"
37 #include "stor-layout.h"
38 #include "print-tree.h"
39 #include "gimplify.h"
40 #include "gimple-iterator.h"
41 #include "gimplify-me.h"
42 #include "gimple-walk.h"
43 #include "symbol-summary.h"
44 #include "ipa-prop.h"
45 #include "tree-cfg.h"
46 #include "tree-dfa.h"
47 #include "tree-inline.h"
48 #include "ipa-fnsummary.h"
49 #include "gimple-pretty-print.h"
50 #include "ipa-utils.h"
51 #include "dbgcnt.h"
52 #include "domwalk.h"
53 #include "builtins.h"
54 #include "tree-cfgcleanup.h"
56 /* Function summary where the parameter infos are actually stored. */
57 ipa_node_params_t *ipa_node_params_sum = NULL;
59 function_summary <ipcp_transformation *> *ipcp_transformation_sum = NULL;
61 /* Edge summary for IPA-CP edge information. */
62 ipa_edge_args_sum_t *ipa_edge_args_sum;
64 /* Traits for a hash table for reusing already existing ipa_bits. */
66 struct ipa_bit_ggc_hash_traits : public ggc_cache_remove <ipa_bits *>
68 typedef ipa_bits *value_type;
69 typedef ipa_bits *compare_type;
70 static hashval_t
71 hash (const ipa_bits *p)
73 hashval_t t = (hashval_t) p->value.to_shwi ();
74 return iterative_hash_host_wide_int (p->mask.to_shwi (), t);
76 static bool
77 equal (const ipa_bits *a, const ipa_bits *b)
79 return a->value == b->value && a->mask == b->mask;
81 static const bool empty_zero_p = true;
82 static void
83 mark_empty (ipa_bits *&p)
85 p = NULL;
87 static bool
88 is_empty (const ipa_bits *p)
90 return p == NULL;
92 static bool
93 is_deleted (const ipa_bits *p)
95 return p == reinterpret_cast<const ipa_bits *> (1);
97 static void
98 mark_deleted (ipa_bits *&p)
100 p = reinterpret_cast<ipa_bits *> (1);
104 /* Hash table for avoid repeated allocations of equal ipa_bits. */
105 static GTY ((cache)) hash_table<ipa_bit_ggc_hash_traits> *ipa_bits_hash_table;
107 /* Traits for a hash table for reusing value_ranges used for IPA. Note that
108 the equiv bitmap is not hashed and is expected to be NULL. */
110 struct ipa_vr_ggc_hash_traits : public ggc_cache_remove <value_range *>
112 typedef value_range *value_type;
113 typedef value_range *compare_type;
114 static hashval_t
115 hash (const value_range *p)
117 inchash::hash hstate (p->kind ());
118 inchash::add_expr (p->min (), hstate);
119 inchash::add_expr (p->max (), hstate);
120 return hstate.end ();
122 static bool
123 equal (const value_range *a, const value_range *b)
125 return a->equal_p (*b);
127 static const bool empty_zero_p = true;
128 static void
129 mark_empty (value_range *&p)
131 p = NULL;
133 static bool
134 is_empty (const value_range *p)
136 return p == NULL;
138 static bool
139 is_deleted (const value_range *p)
141 return p == reinterpret_cast<const value_range *> (1);
143 static void
144 mark_deleted (value_range *&p)
146 p = reinterpret_cast<value_range *> (1);
150 /* Hash table for avoid repeated allocations of equal value_ranges. */
151 static GTY ((cache)) hash_table<ipa_vr_ggc_hash_traits> *ipa_vr_hash_table;
153 /* Holders of ipa cgraph hooks: */
154 static struct cgraph_node_hook_list *function_insertion_hook_holder;
156 /* Description of a reference to an IPA constant. */
157 struct ipa_cst_ref_desc
159 /* Edge that corresponds to the statement which took the reference. */
160 struct cgraph_edge *cs;
161 /* Linked list of duplicates created when call graph edges are cloned. */
162 struct ipa_cst_ref_desc *next_duplicate;
163 /* Number of references in IPA structures, IPA_UNDESCRIBED_USE if the value
164 if out of control. */
165 int refcount;
168 /* Allocation pool for reference descriptions. */
170 static object_allocator<ipa_cst_ref_desc> ipa_refdesc_pool
171 ("IPA-PROP ref descriptions");
173 /* Return true if DECL_FUNCTION_SPECIFIC_OPTIMIZATION of the decl associated
174 with NODE should prevent us from analyzing it for the purposes of IPA-CP. */
176 static bool
177 ipa_func_spec_opts_forbid_analysis_p (struct cgraph_node *node)
179 tree fs_opts = DECL_FUNCTION_SPECIFIC_OPTIMIZATION (node->decl);
181 if (!fs_opts)
182 return false;
183 return !opt_for_fn (node->decl, optimize) || !opt_for_fn (node->decl, flag_ipa_cp);
186 /* Return index of the formal whose tree is PTREE in function which corresponds
187 to INFO. */
189 static int
190 ipa_get_param_decl_index_1 (vec<ipa_param_descriptor, va_gc> *descriptors,
191 tree ptree)
193 int i, count;
195 count = vec_safe_length (descriptors);
196 for (i = 0; i < count; i++)
197 if ((*descriptors)[i].decl_or_type == ptree)
198 return i;
200 return -1;
203 /* Return index of the formal whose tree is PTREE in function which corresponds
204 to INFO. */
207 ipa_get_param_decl_index (class ipa_node_params *info, tree ptree)
209 return ipa_get_param_decl_index_1 (info->descriptors, ptree);
212 /* Populate the param_decl field in parameter DESCRIPTORS that correspond to
213 NODE. */
215 static void
216 ipa_populate_param_decls (struct cgraph_node *node,
217 vec<ipa_param_descriptor, va_gc> &descriptors)
219 tree fndecl;
220 tree fnargs;
221 tree parm;
222 int param_num;
224 fndecl = node->decl;
225 gcc_assert (gimple_has_body_p (fndecl));
226 fnargs = DECL_ARGUMENTS (fndecl);
227 param_num = 0;
228 for (parm = fnargs; parm; parm = DECL_CHAIN (parm))
230 descriptors[param_num].decl_or_type = parm;
231 unsigned int cost = estimate_move_cost (TREE_TYPE (parm), true);
232 descriptors[param_num].move_cost = cost;
233 /* Watch overflow, move_cost is a bitfield. */
234 gcc_checking_assert (cost == descriptors[param_num].move_cost);
235 param_num++;
239 /* Return how many formal parameters FNDECL has. */
242 count_formal_params (tree fndecl)
244 tree parm;
245 int count = 0;
246 gcc_assert (gimple_has_body_p (fndecl));
248 for (parm = DECL_ARGUMENTS (fndecl); parm; parm = DECL_CHAIN (parm))
249 count++;
251 return count;
254 /* Return the declaration of Ith formal parameter of the function corresponding
255 to INFO. Note there is no setter function as this array is built just once
256 using ipa_initialize_node_params. */
258 void
259 ipa_dump_param (FILE *file, class ipa_node_params *info, int i)
261 fprintf (file, "param #%i", i);
262 if ((*info->descriptors)[i].decl_or_type)
264 fprintf (file, " ");
265 print_generic_expr (file, (*info->descriptors)[i].decl_or_type);
269 /* If necessary, allocate vector of parameter descriptors in info of NODE.
270 Return true if they were allocated, false if not. */
272 static bool
273 ipa_alloc_node_params (struct cgraph_node *node, int param_count)
275 class ipa_node_params *info = IPA_NODE_REF_GET_CREATE (node);
277 if (!info->descriptors && param_count)
279 vec_safe_grow_cleared (info->descriptors, param_count);
280 return true;
282 else
283 return false;
286 /* Initialize the ipa_node_params structure associated with NODE by counting
287 the function parameters, creating the descriptors and populating their
288 param_decls. */
290 void
291 ipa_initialize_node_params (struct cgraph_node *node)
293 class ipa_node_params *info = IPA_NODE_REF_GET_CREATE (node);
295 if (!info->descriptors
296 && ipa_alloc_node_params (node, count_formal_params (node->decl)))
297 ipa_populate_param_decls (node, *info->descriptors);
300 /* Print the jump functions associated with call graph edge CS to file F. */
302 static void
303 ipa_print_node_jump_functions_for_edge (FILE *f, struct cgraph_edge *cs)
305 int i, count;
307 count = ipa_get_cs_argument_count (IPA_EDGE_REF (cs));
308 for (i = 0; i < count; i++)
310 struct ipa_jump_func *jump_func;
311 enum jump_func_type type;
313 jump_func = ipa_get_ith_jump_func (IPA_EDGE_REF (cs), i);
314 type = jump_func->type;
316 fprintf (f, " param %d: ", i);
317 if (type == IPA_JF_UNKNOWN)
318 fprintf (f, "UNKNOWN\n");
319 else if (type == IPA_JF_CONST)
321 tree val = jump_func->value.constant.value;
322 fprintf (f, "CONST: ");
323 print_generic_expr (f, val);
324 if (TREE_CODE (val) == ADDR_EXPR
325 && TREE_CODE (TREE_OPERAND (val, 0)) == CONST_DECL)
327 fprintf (f, " -> ");
328 print_generic_expr (f, DECL_INITIAL (TREE_OPERAND (val, 0)));
330 fprintf (f, "\n");
332 else if (type == IPA_JF_PASS_THROUGH)
334 fprintf (f, "PASS THROUGH: ");
335 fprintf (f, "%d, op %s",
336 jump_func->value.pass_through.formal_id,
337 get_tree_code_name(jump_func->value.pass_through.operation));
338 if (jump_func->value.pass_through.operation != NOP_EXPR)
340 fprintf (f, " ");
341 print_generic_expr (f, jump_func->value.pass_through.operand);
343 if (jump_func->value.pass_through.agg_preserved)
344 fprintf (f, ", agg_preserved");
345 fprintf (f, "\n");
347 else if (type == IPA_JF_ANCESTOR)
349 fprintf (f, "ANCESTOR: ");
350 fprintf (f, "%d, offset " HOST_WIDE_INT_PRINT_DEC,
351 jump_func->value.ancestor.formal_id,
352 jump_func->value.ancestor.offset);
353 if (jump_func->value.ancestor.agg_preserved)
354 fprintf (f, ", agg_preserved");
355 fprintf (f, "\n");
358 if (jump_func->agg.items)
360 struct ipa_agg_jf_item *item;
361 int j;
363 fprintf (f, " Aggregate passed by %s:\n",
364 jump_func->agg.by_ref ? "reference" : "value");
365 FOR_EACH_VEC_ELT (*jump_func->agg.items, j, item)
367 fprintf (f, " offset: " HOST_WIDE_INT_PRINT_DEC ", ",
368 item->offset);
369 fprintf (f, "type: ");
370 print_generic_expr (f, item->type);
371 fprintf (f, ", ");
372 if (item->jftype == IPA_JF_PASS_THROUGH)
373 fprintf (f, "PASS THROUGH: %d,",
374 item->value.pass_through.formal_id);
375 else if (item->jftype == IPA_JF_LOAD_AGG)
377 fprintf (f, "LOAD AGG: %d",
378 item->value.pass_through.formal_id);
379 fprintf (f, " [offset: " HOST_WIDE_INT_PRINT_DEC ", by %s],",
380 item->value.load_agg.offset,
381 item->value.load_agg.by_ref ? "reference"
382 : "value");
385 if (item->jftype == IPA_JF_PASS_THROUGH
386 || item->jftype == IPA_JF_LOAD_AGG)
388 fprintf (f, " op %s",
389 get_tree_code_name (item->value.pass_through.operation));
390 if (item->value.pass_through.operation != NOP_EXPR)
392 fprintf (f, " ");
393 print_generic_expr (f, item->value.pass_through.operand);
396 else if (item->jftype == IPA_JF_CONST)
398 fprintf (f, "CONST: ");
399 print_generic_expr (f, item->value.constant);
401 else if (item->jftype == IPA_JF_UNKNOWN)
402 fprintf (f, "UNKNOWN: " HOST_WIDE_INT_PRINT_DEC " bits",
403 tree_to_uhwi (TYPE_SIZE (item->type)));
404 fprintf (f, "\n");
408 class ipa_polymorphic_call_context *ctx
409 = ipa_get_ith_polymorhic_call_context (IPA_EDGE_REF (cs), i);
410 if (ctx && !ctx->useless_p ())
412 fprintf (f, " Context: ");
413 ctx->dump (dump_file);
416 if (jump_func->bits)
418 fprintf (f, " value: ");
419 print_hex (jump_func->bits->value, f);
420 fprintf (f, ", mask: ");
421 print_hex (jump_func->bits->mask, f);
422 fprintf (f, "\n");
424 else
425 fprintf (f, " Unknown bits\n");
427 if (jump_func->m_vr)
429 fprintf (f, " VR ");
430 fprintf (f, "%s[",
431 (jump_func->m_vr->kind () == VR_ANTI_RANGE) ? "~" : "");
432 print_decs (wi::to_wide (jump_func->m_vr->min ()), f);
433 fprintf (f, ", ");
434 print_decs (wi::to_wide (jump_func->m_vr->max ()), f);
435 fprintf (f, "]\n");
437 else
438 fprintf (f, " Unknown VR\n");
443 /* Print the jump functions of all arguments on all call graph edges going from
444 NODE to file F. */
446 void
447 ipa_print_node_jump_functions (FILE *f, struct cgraph_node *node)
449 struct cgraph_edge *cs;
451 fprintf (f, " Jump functions of caller %s:\n", node->dump_name ());
452 for (cs = node->callees; cs; cs = cs->next_callee)
455 fprintf (f, " callsite %s -> %s : \n",
456 node->dump_name (),
457 cs->callee->dump_name ());
458 if (!ipa_edge_args_info_available_for_edge_p (cs))
459 fprintf (f, " no arg info\n");
460 else
461 ipa_print_node_jump_functions_for_edge (f, cs);
464 for (cs = node->indirect_calls; cs; cs = cs->next_callee)
466 class cgraph_indirect_call_info *ii;
468 ii = cs->indirect_info;
469 if (ii->agg_contents)
470 fprintf (f, " indirect %s callsite, calling param %i, "
471 "offset " HOST_WIDE_INT_PRINT_DEC ", %s",
472 ii->member_ptr ? "member ptr" : "aggregate",
473 ii->param_index, ii->offset,
474 ii->by_ref ? "by reference" : "by_value");
475 else
476 fprintf (f, " indirect %s callsite, calling param %i, "
477 "offset " HOST_WIDE_INT_PRINT_DEC,
478 ii->polymorphic ? "polymorphic" : "simple", ii->param_index,
479 ii->offset);
481 if (cs->call_stmt)
483 fprintf (f, ", for stmt ");
484 print_gimple_stmt (f, cs->call_stmt, 0, TDF_SLIM);
486 else
487 fprintf (f, "\n");
488 if (ii->polymorphic)
489 ii->context.dump (f);
490 if (!ipa_edge_args_info_available_for_edge_p (cs))
491 fprintf (f, " no arg info\n");
492 else
493 ipa_print_node_jump_functions_for_edge (f, cs);
497 /* Print ipa_jump_func data structures of all nodes in the call graph to F. */
499 void
500 ipa_print_all_jump_functions (FILE *f)
502 struct cgraph_node *node;
504 fprintf (f, "\nJump functions:\n");
505 FOR_EACH_FUNCTION (node)
507 ipa_print_node_jump_functions (f, node);
511 /* Set jfunc to be a know-really nothing jump function. */
513 static void
514 ipa_set_jf_unknown (struct ipa_jump_func *jfunc)
516 jfunc->type = IPA_JF_UNKNOWN;
519 /* Set JFUNC to be a copy of another jmp (to be used by jump function
520 combination code). The two functions will share their rdesc. */
522 static void
523 ipa_set_jf_cst_copy (struct ipa_jump_func *dst,
524 struct ipa_jump_func *src)
527 gcc_checking_assert (src->type == IPA_JF_CONST);
528 dst->type = IPA_JF_CONST;
529 dst->value.constant = src->value.constant;
532 /* Set JFUNC to be a constant jmp function. */
534 static void
535 ipa_set_jf_constant (struct ipa_jump_func *jfunc, tree constant,
536 struct cgraph_edge *cs)
538 jfunc->type = IPA_JF_CONST;
539 jfunc->value.constant.value = unshare_expr_without_location (constant);
541 if (TREE_CODE (constant) == ADDR_EXPR
542 && TREE_CODE (TREE_OPERAND (constant, 0)) == FUNCTION_DECL)
544 struct ipa_cst_ref_desc *rdesc;
546 rdesc = ipa_refdesc_pool.allocate ();
547 rdesc->cs = cs;
548 rdesc->next_duplicate = NULL;
549 rdesc->refcount = 1;
550 jfunc->value.constant.rdesc = rdesc;
552 else
553 jfunc->value.constant.rdesc = NULL;
556 /* Set JFUNC to be a simple pass-through jump function. */
557 static void
558 ipa_set_jf_simple_pass_through (struct ipa_jump_func *jfunc, int formal_id,
559 bool agg_preserved)
561 jfunc->type = IPA_JF_PASS_THROUGH;
562 jfunc->value.pass_through.operand = NULL_TREE;
563 jfunc->value.pass_through.formal_id = formal_id;
564 jfunc->value.pass_through.operation = NOP_EXPR;
565 jfunc->value.pass_through.agg_preserved = agg_preserved;
568 /* Set JFUNC to be an unary pass through jump function. */
570 static void
571 ipa_set_jf_unary_pass_through (struct ipa_jump_func *jfunc, int formal_id,
572 enum tree_code operation)
574 jfunc->type = IPA_JF_PASS_THROUGH;
575 jfunc->value.pass_through.operand = NULL_TREE;
576 jfunc->value.pass_through.formal_id = formal_id;
577 jfunc->value.pass_through.operation = operation;
578 jfunc->value.pass_through.agg_preserved = false;
580 /* Set JFUNC to be an arithmetic pass through jump function. */
582 static void
583 ipa_set_jf_arith_pass_through (struct ipa_jump_func *jfunc, int formal_id,
584 tree operand, enum tree_code operation)
586 jfunc->type = IPA_JF_PASS_THROUGH;
587 jfunc->value.pass_through.operand = unshare_expr_without_location (operand);
588 jfunc->value.pass_through.formal_id = formal_id;
589 jfunc->value.pass_through.operation = operation;
590 jfunc->value.pass_through.agg_preserved = false;
593 /* Set JFUNC to be an ancestor jump function. */
595 static void
596 ipa_set_ancestor_jf (struct ipa_jump_func *jfunc, HOST_WIDE_INT offset,
597 int formal_id, bool agg_preserved)
599 jfunc->type = IPA_JF_ANCESTOR;
600 jfunc->value.ancestor.formal_id = formal_id;
601 jfunc->value.ancestor.offset = offset;
602 jfunc->value.ancestor.agg_preserved = agg_preserved;
605 /* Get IPA BB information about the given BB. FBI is the context of analyzis
606 of this function body. */
608 static struct ipa_bb_info *
609 ipa_get_bb_info (struct ipa_func_body_info *fbi, basic_block bb)
611 gcc_checking_assert (fbi);
612 return &fbi->bb_infos[bb->index];
615 /* Structure to be passed in between detect_type_change and
616 check_stmt_for_type_change. */
618 struct prop_type_change_info
620 /* Offset into the object where there is the virtual method pointer we are
621 looking for. */
622 HOST_WIDE_INT offset;
623 /* The declaration or SSA_NAME pointer of the base that we are checking for
624 type change. */
625 tree object;
626 /* Set to true if dynamic type change has been detected. */
627 bool type_maybe_changed;
630 /* Return true if STMT can modify a virtual method table pointer.
632 This function makes special assumptions about both constructors and
633 destructors which are all the functions that are allowed to alter the VMT
634 pointers. It assumes that destructors begin with assignment into all VMT
635 pointers and that constructors essentially look in the following way:
637 1) The very first thing they do is that they call constructors of ancestor
638 sub-objects that have them.
640 2) Then VMT pointers of this and all its ancestors is set to new values
641 corresponding to the type corresponding to the constructor.
643 3) Only afterwards, other stuff such as constructor of member sub-objects
644 and the code written by the user is run. Only this may include calling
645 virtual functions, directly or indirectly.
647 There is no way to call a constructor of an ancestor sub-object in any
648 other way.
650 This means that we do not have to care whether constructors get the correct
651 type information because they will always change it (in fact, if we define
652 the type to be given by the VMT pointer, it is undefined).
654 The most important fact to derive from the above is that if, for some
655 statement in the section 3, we try to detect whether the dynamic type has
656 changed, we can safely ignore all calls as we examine the function body
657 backwards until we reach statements in section 2 because these calls cannot
658 be ancestor constructors or destructors (if the input is not bogus) and so
659 do not change the dynamic type (this holds true only for automatically
660 allocated objects but at the moment we devirtualize only these). We then
661 must detect that statements in section 2 change the dynamic type and can try
662 to derive the new type. That is enough and we can stop, we will never see
663 the calls into constructors of sub-objects in this code. Therefore we can
664 safely ignore all call statements that we traverse.
667 static bool
668 stmt_may_be_vtbl_ptr_store (gimple *stmt)
670 if (is_gimple_call (stmt))
671 return false;
672 if (gimple_clobber_p (stmt))
673 return false;
674 else if (is_gimple_assign (stmt))
676 tree lhs = gimple_assign_lhs (stmt);
678 if (!AGGREGATE_TYPE_P (TREE_TYPE (lhs)))
680 if (flag_strict_aliasing
681 && !POINTER_TYPE_P (TREE_TYPE (lhs)))
682 return false;
684 if (TREE_CODE (lhs) == COMPONENT_REF
685 && !DECL_VIRTUAL_P (TREE_OPERAND (lhs, 1)))
686 return false;
687 /* In the future we might want to use get_ref_base_and_extent to find
688 if there is a field corresponding to the offset and if so, proceed
689 almost like if it was a component ref. */
692 return true;
695 /* Callback of walk_aliased_vdefs and a helper function for detect_type_change
696 to check whether a particular statement may modify the virtual table
697 pointerIt stores its result into DATA, which points to a
698 prop_type_change_info structure. */
700 static bool
701 check_stmt_for_type_change (ao_ref *ao ATTRIBUTE_UNUSED, tree vdef, void *data)
703 gimple *stmt = SSA_NAME_DEF_STMT (vdef);
704 struct prop_type_change_info *tci = (struct prop_type_change_info *) data;
706 if (stmt_may_be_vtbl_ptr_store (stmt))
708 tci->type_maybe_changed = true;
709 return true;
711 else
712 return false;
715 /* See if ARG is PARAM_DECl describing instance passed by pointer
716 or reference in FUNCTION. Return false if the dynamic type may change
717 in between beggining of the function until CALL is invoked.
719 Generally functions are not allowed to change type of such instances,
720 but they call destructors. We assume that methods cannot destroy the THIS
721 pointer. Also as a special cases, constructor and destructors may change
722 type of the THIS pointer. */
724 static bool
725 param_type_may_change_p (tree function, tree arg, gimple *call)
727 /* Pure functions cannot do any changes on the dynamic type;
728 that require writting to memory. */
729 if (flags_from_decl_or_type (function) & (ECF_PURE | ECF_CONST))
730 return false;
731 /* We need to check if we are within inlined consturctor
732 or destructor (ideally we would have way to check that the
733 inline cdtor is actually working on ARG, but we don't have
734 easy tie on this, so punt on all non-pure cdtors.
735 We may also record the types of cdtors and once we know type
736 of the instance match them.
738 Also code unification optimizations may merge calls from
739 different blocks making return values unreliable. So
740 do nothing during late optimization. */
741 if (DECL_STRUCT_FUNCTION (function)->after_inlining)
742 return true;
743 if (TREE_CODE (arg) == SSA_NAME
744 && SSA_NAME_IS_DEFAULT_DEF (arg)
745 && TREE_CODE (SSA_NAME_VAR (arg)) == PARM_DECL)
747 /* Normal (non-THIS) argument. */
748 if ((SSA_NAME_VAR (arg) != DECL_ARGUMENTS (function)
749 || TREE_CODE (TREE_TYPE (function)) != METHOD_TYPE)
750 /* THIS pointer of an method - here we want to watch constructors
751 and destructors as those definitely may change the dynamic
752 type. */
753 || (TREE_CODE (TREE_TYPE (function)) == METHOD_TYPE
754 && !DECL_CXX_CONSTRUCTOR_P (function)
755 && !DECL_CXX_DESTRUCTOR_P (function)
756 && (SSA_NAME_VAR (arg) == DECL_ARGUMENTS (function))))
758 /* Walk the inline stack and watch out for ctors/dtors. */
759 for (tree block = gimple_block (call); block && TREE_CODE (block) == BLOCK;
760 block = BLOCK_SUPERCONTEXT (block))
761 if (inlined_polymorphic_ctor_dtor_block_p (block, false))
762 return true;
763 return false;
766 return true;
769 /* Detect whether the dynamic type of ARG of COMP_TYPE has changed (before
770 callsite CALL) by looking for assignments to its virtual table pointer. If
771 it is, return true. ARG is the object itself (not a pointer
772 to it, unless dereferenced). BASE is the base of the memory access as
773 returned by get_ref_base_and_extent, as is the offset.
775 This is helper function for detect_type_change and detect_type_change_ssa
776 that does the heavy work which is usually unnecesary. */
778 static bool
779 detect_type_change_from_memory_writes (ipa_func_body_info *fbi, tree arg,
780 tree base, tree comp_type, gcall *call,
781 HOST_WIDE_INT offset)
783 struct prop_type_change_info tci;
784 ao_ref ao;
786 gcc_checking_assert (DECL_P (arg)
787 || TREE_CODE (arg) == MEM_REF
788 || handled_component_p (arg));
790 comp_type = TYPE_MAIN_VARIANT (comp_type);
792 /* Const calls cannot call virtual methods through VMT and so type changes do
793 not matter. */
794 if (!flag_devirtualize || !gimple_vuse (call)
795 /* Be sure expected_type is polymorphic. */
796 || !comp_type
797 || TREE_CODE (comp_type) != RECORD_TYPE
798 || !TYPE_BINFO (TYPE_MAIN_VARIANT (comp_type))
799 || !BINFO_VTABLE (TYPE_BINFO (TYPE_MAIN_VARIANT (comp_type))))
800 return true;
802 ao_ref_init (&ao, arg);
803 ao.base = base;
804 ao.offset = offset;
805 ao.size = POINTER_SIZE;
806 ao.max_size = ao.size;
808 tci.offset = offset;
809 tci.object = get_base_address (arg);
810 tci.type_maybe_changed = false;
812 int walked
813 = walk_aliased_vdefs (&ao, gimple_vuse (call), check_stmt_for_type_change,
814 &tci, NULL, NULL, fbi->aa_walk_budget + 1);
816 if (walked >= 0 && !tci.type_maybe_changed)
817 return false;
819 return true;
822 /* Detect whether the dynamic type of ARG of COMP_TYPE may have changed.
823 If it is, return true. ARG is the object itself (not a pointer
824 to it, unless dereferenced). BASE is the base of the memory access as
825 returned by get_ref_base_and_extent, as is the offset. */
827 static bool
828 detect_type_change (ipa_func_body_info *fbi, tree arg, tree base,
829 tree comp_type, gcall *call,
830 HOST_WIDE_INT offset)
832 if (!flag_devirtualize)
833 return false;
835 if (TREE_CODE (base) == MEM_REF
836 && !param_type_may_change_p (current_function_decl,
837 TREE_OPERAND (base, 0),
838 call))
839 return false;
840 return detect_type_change_from_memory_writes (fbi, arg, base, comp_type,
841 call, offset);
844 /* Like detect_type_change but ARG is supposed to be a non-dereferenced pointer
845 SSA name (its dereference will become the base and the offset is assumed to
846 be zero). */
848 static bool
849 detect_type_change_ssa (ipa_func_body_info *fbi, tree arg, tree comp_type,
850 gcall *call)
852 gcc_checking_assert (TREE_CODE (arg) == SSA_NAME);
853 if (!flag_devirtualize
854 || !POINTER_TYPE_P (TREE_TYPE (arg)))
855 return false;
857 if (!param_type_may_change_p (current_function_decl, arg, call))
858 return false;
860 arg = build2 (MEM_REF, ptr_type_node, arg,
861 build_int_cst (ptr_type_node, 0));
863 return detect_type_change_from_memory_writes (fbi, arg, arg, comp_type,
864 call, 0);
867 /* Callback of walk_aliased_vdefs. Flags that it has been invoked to the
868 boolean variable pointed to by DATA. */
870 static bool
871 mark_modified (ao_ref *ao ATTRIBUTE_UNUSED, tree vdef ATTRIBUTE_UNUSED,
872 void *data)
874 bool *b = (bool *) data;
875 *b = true;
876 return true;
879 /* Find the nearest valid aa status for parameter specified by INDEX that
880 dominates BB. */
882 static struct ipa_param_aa_status *
883 find_dominating_aa_status (struct ipa_func_body_info *fbi, basic_block bb,
884 int index)
886 while (true)
888 bb = get_immediate_dominator (CDI_DOMINATORS, bb);
889 if (!bb)
890 return NULL;
891 struct ipa_bb_info *bi = ipa_get_bb_info (fbi, bb);
892 if (!bi->param_aa_statuses.is_empty ()
893 && bi->param_aa_statuses[index].valid)
894 return &bi->param_aa_statuses[index];
898 /* Get AA status structure for the given BB and parameter with INDEX. Allocate
899 structures and/or intialize the result with a dominating description as
900 necessary. */
902 static struct ipa_param_aa_status *
903 parm_bb_aa_status_for_bb (struct ipa_func_body_info *fbi, basic_block bb,
904 int index)
906 gcc_checking_assert (fbi);
907 struct ipa_bb_info *bi = ipa_get_bb_info (fbi, bb);
908 if (bi->param_aa_statuses.is_empty ())
909 bi->param_aa_statuses.safe_grow_cleared (fbi->param_count);
910 struct ipa_param_aa_status *paa = &bi->param_aa_statuses[index];
911 if (!paa->valid)
913 gcc_checking_assert (!paa->parm_modified
914 && !paa->ref_modified
915 && !paa->pt_modified);
916 struct ipa_param_aa_status *dom_paa;
917 dom_paa = find_dominating_aa_status (fbi, bb, index);
918 if (dom_paa)
919 *paa = *dom_paa;
920 else
921 paa->valid = true;
924 return paa;
927 /* Return true if a load from a formal parameter PARM_LOAD is known to retrieve
928 a value known not to be modified in this function before reaching the
929 statement STMT. FBI holds information about the function we have so far
930 gathered but do not survive the summary building stage. */
932 static bool
933 parm_preserved_before_stmt_p (struct ipa_func_body_info *fbi, int index,
934 gimple *stmt, tree parm_load)
936 struct ipa_param_aa_status *paa;
937 bool modified = false;
938 ao_ref refd;
940 tree base = get_base_address (parm_load);
941 gcc_assert (TREE_CODE (base) == PARM_DECL);
942 if (TREE_READONLY (base))
943 return true;
945 gcc_checking_assert (fbi);
946 paa = parm_bb_aa_status_for_bb (fbi, gimple_bb (stmt), index);
947 if (paa->parm_modified)
948 return false;
950 gcc_checking_assert (gimple_vuse (stmt) != NULL_TREE);
951 ao_ref_init (&refd, parm_load);
952 int walked = walk_aliased_vdefs (&refd, gimple_vuse (stmt), mark_modified,
953 &modified, NULL, NULL,
954 fbi->aa_walk_budget + 1);
955 if (walked < 0)
957 modified = true;
958 if (fbi)
959 fbi->aa_walk_budget = 0;
961 else if (fbi)
962 fbi->aa_walk_budget -= walked;
963 if (paa && modified)
964 paa->parm_modified = true;
965 return !modified;
968 /* If STMT is an assignment that loads a value from an parameter declaration,
969 return the index of the parameter in ipa_node_params which has not been
970 modified. Otherwise return -1. */
972 static int
973 load_from_unmodified_param (struct ipa_func_body_info *fbi,
974 vec<ipa_param_descriptor, va_gc> *descriptors,
975 gimple *stmt)
977 int index;
978 tree op1;
980 if (!gimple_assign_single_p (stmt))
981 return -1;
983 op1 = gimple_assign_rhs1 (stmt);
984 if (TREE_CODE (op1) != PARM_DECL)
985 return -1;
987 index = ipa_get_param_decl_index_1 (descriptors, op1);
988 if (index < 0
989 || !parm_preserved_before_stmt_p (fbi, index, stmt, op1))
990 return -1;
992 return index;
995 /* Return true if memory reference REF (which must be a load through parameter
996 with INDEX) loads data that are known to be unmodified in this function
997 before reaching statement STMT. */
999 static bool
1000 parm_ref_data_preserved_p (struct ipa_func_body_info *fbi,
1001 int index, gimple *stmt, tree ref)
1003 struct ipa_param_aa_status *paa;
1004 bool modified = false;
1005 ao_ref refd;
1007 gcc_checking_assert (fbi);
1008 paa = parm_bb_aa_status_for_bb (fbi, gimple_bb (stmt), index);
1009 if (paa->ref_modified)
1010 return false;
1012 gcc_checking_assert (gimple_vuse (stmt));
1013 ao_ref_init (&refd, ref);
1014 int walked = walk_aliased_vdefs (&refd, gimple_vuse (stmt), mark_modified,
1015 &modified, NULL, NULL,
1016 fbi->aa_walk_budget + 1);
1017 if (walked < 0)
1019 modified = true;
1020 fbi->aa_walk_budget = 0;
1022 else
1023 fbi->aa_walk_budget -= walked;
1024 if (modified)
1025 paa->ref_modified = true;
1026 return !modified;
1029 /* Return true if the data pointed to by PARM (which is a parameter with INDEX)
1030 is known to be unmodified in this function before reaching call statement
1031 CALL into which it is passed. FBI describes the function body. */
1033 static bool
1034 parm_ref_data_pass_through_p (struct ipa_func_body_info *fbi, int index,
1035 gimple *call, tree parm)
1037 bool modified = false;
1038 ao_ref refd;
1040 /* It's unnecessary to calculate anything about memory contnets for a const
1041 function because it is not goin to use it. But do not cache the result
1042 either. Also, no such calculations for non-pointers. */
1043 if (!gimple_vuse (call)
1044 || !POINTER_TYPE_P (TREE_TYPE (parm)))
1045 return false;
1047 struct ipa_param_aa_status *paa = parm_bb_aa_status_for_bb (fbi,
1048 gimple_bb (call),
1049 index);
1050 if (paa->pt_modified)
1051 return false;
1053 ao_ref_init_from_ptr_and_size (&refd, parm, NULL_TREE);
1054 int walked = walk_aliased_vdefs (&refd, gimple_vuse (call), mark_modified,
1055 &modified, NULL, NULL,
1056 fbi->aa_walk_budget + 1);
1057 if (walked < 0)
1059 fbi->aa_walk_budget = 0;
1060 modified = true;
1062 else
1063 fbi->aa_walk_budget -= walked;
1064 if (modified)
1065 paa->pt_modified = true;
1066 return !modified;
1069 /* Return true if we can prove that OP is a memory reference loading
1070 data from an aggregate passed as a parameter.
1072 The function works in two modes. If GUARANTEED_UNMODIFIED is NULL, it return
1073 false if it cannot prove that the value has not been modified before the
1074 load in STMT. If GUARANTEED_UNMODIFIED is not NULL, it will return true even
1075 if it cannot prove the value has not been modified, in that case it will
1076 store false to *GUARANTEED_UNMODIFIED, otherwise it will store true there.
1078 INFO and PARMS_AINFO describe parameters of the current function (but the
1079 latter can be NULL), STMT is the load statement. If function returns true,
1080 *INDEX_P, *OFFSET_P and *BY_REF is filled with the parameter index, offset
1081 within the aggregate and whether it is a load from a value passed by
1082 reference respectively. */
1084 bool
1085 ipa_load_from_parm_agg (struct ipa_func_body_info *fbi,
1086 vec<ipa_param_descriptor, va_gc> *descriptors,
1087 gimple *stmt, tree op, int *index_p,
1088 HOST_WIDE_INT *offset_p, poly_int64 *size_p,
1089 bool *by_ref_p, bool *guaranteed_unmodified)
1091 int index;
1092 HOST_WIDE_INT size;
1093 bool reverse;
1094 tree base = get_ref_base_and_extent_hwi (op, offset_p, &size, &reverse);
1096 if (!base)
1097 return false;
1099 if (DECL_P (base))
1101 int index = ipa_get_param_decl_index_1 (descriptors, base);
1102 if (index >= 0
1103 && parm_preserved_before_stmt_p (fbi, index, stmt, op))
1105 *index_p = index;
1106 *by_ref_p = false;
1107 if (size_p)
1108 *size_p = size;
1109 if (guaranteed_unmodified)
1110 *guaranteed_unmodified = true;
1111 return true;
1113 return false;
1116 if (TREE_CODE (base) != MEM_REF
1117 || TREE_CODE (TREE_OPERAND (base, 0)) != SSA_NAME
1118 || !integer_zerop (TREE_OPERAND (base, 1)))
1119 return false;
1121 if (SSA_NAME_IS_DEFAULT_DEF (TREE_OPERAND (base, 0)))
1123 tree parm = SSA_NAME_VAR (TREE_OPERAND (base, 0));
1124 index = ipa_get_param_decl_index_1 (descriptors, parm);
1126 else
1128 /* This branch catches situations where a pointer parameter is not a
1129 gimple register, for example:
1131 void hip7(S*) (struct S * p)
1133 void (*<T2e4>) (struct S *) D.1867;
1134 struct S * p.1;
1136 <bb 2>:
1137 p.1_1 = p;
1138 D.1867_2 = p.1_1->f;
1139 D.1867_2 ();
1140 gdp = &p;
1143 gimple *def = SSA_NAME_DEF_STMT (TREE_OPERAND (base, 0));
1144 index = load_from_unmodified_param (fbi, descriptors, def);
1147 if (index >= 0)
1149 bool data_preserved = parm_ref_data_preserved_p (fbi, index, stmt, op);
1150 if (!data_preserved && !guaranteed_unmodified)
1151 return false;
1153 *index_p = index;
1154 *by_ref_p = true;
1155 if (size_p)
1156 *size_p = size;
1157 if (guaranteed_unmodified)
1158 *guaranteed_unmodified = data_preserved;
1159 return true;
1161 return false;
1164 /* If STMT is an assignment that loads a value from a parameter declaration,
1165 or from an aggregate passed as the parameter either by value or reference,
1166 return the index of the parameter in ipa_node_params. Otherwise return -1.
1168 FBI holds gathered information about the function. INFO describes
1169 parameters of the function, STMT is the assignment statement. If it is a
1170 memory load from an aggregate, *OFFSET_P is filled with offset within the
1171 aggregate, and *BY_REF_P specifies whether the aggregate is passed by
1172 reference. */
1174 static int
1175 load_from_unmodified_param_or_agg (struct ipa_func_body_info *fbi,
1176 class ipa_node_params *info,
1177 gimple *stmt,
1178 HOST_WIDE_INT *offset_p,
1179 bool *by_ref_p)
1181 int index = load_from_unmodified_param (fbi, info->descriptors, stmt);
1182 poly_int64 size;
1184 /* Load value from a parameter declaration. */
1185 if (index >= 0)
1187 *offset_p = -1;
1188 return index;
1191 if (!gimple_assign_load_p (stmt))
1192 return -1;
1194 tree rhs = gimple_assign_rhs1 (stmt);
1196 /* Skip memory reference containing VIEW_CONVERT_EXPR. */
1197 for (tree t = rhs; handled_component_p (t); t = TREE_OPERAND (t, 0))
1198 if (TREE_CODE (t) == VIEW_CONVERT_EXPR)
1199 return -1;
1201 /* Skip memory reference containing bit-field. */
1202 if (TREE_CODE (rhs) == BIT_FIELD_REF
1203 || contains_bitfld_component_ref_p (rhs))
1204 return -1;
1206 if (!ipa_load_from_parm_agg (fbi, info->descriptors, stmt, rhs, &index,
1207 offset_p, &size, by_ref_p))
1208 return -1;
1210 gcc_assert (!maybe_ne (tree_to_poly_int64 (TYPE_SIZE (TREE_TYPE (rhs))),
1211 size));
1212 if (!*by_ref_p)
1214 tree param_type = ipa_get_type (info, index);
1216 if (!param_type || !AGGREGATE_TYPE_P (param_type))
1217 return -1;
1219 else if (TREE_THIS_VOLATILE (rhs))
1220 return -1;
1222 return index;
1225 /* Given that an actual argument is an SSA_NAME (given in NAME) and is a result
1226 of an assignment statement STMT, try to determine whether we are actually
1227 handling any of the following cases and construct an appropriate jump
1228 function into JFUNC if so:
1230 1) The passed value is loaded from a formal parameter which is not a gimple
1231 register (most probably because it is addressable, the value has to be
1232 scalar) and we can guarantee the value has not changed. This case can
1233 therefore be described by a simple pass-through jump function. For example:
1235 foo (int a)
1237 int a.0;
1239 a.0_2 = a;
1240 bar (a.0_2);
1242 2) The passed value can be described by a simple arithmetic pass-through
1243 jump function. E.g.
1245 foo (int a)
1247 int D.2064;
1249 D.2064_4 = a.1(D) + 4;
1250 bar (D.2064_4);
1252 This case can also occur in combination of the previous one, e.g.:
1254 foo (int a, int z)
1256 int a.0;
1257 int D.2064;
1259 a.0_3 = a;
1260 D.2064_4 = a.0_3 + 4;
1261 foo (D.2064_4);
1263 3) The passed value is an address of an object within another one (which
1264 also passed by reference). Such situations are described by an ancestor
1265 jump function and describe situations such as:
1267 B::foo() (struct B * const this)
1269 struct A * D.1845;
1271 D.1845_2 = &this_1(D)->D.1748;
1272 A::bar (D.1845_2);
1274 INFO is the structure describing individual parameters access different
1275 stages of IPA optimizations. PARMS_AINFO contains the information that is
1276 only needed for intraprocedural analysis. */
1278 static void
1279 compute_complex_assign_jump_func (struct ipa_func_body_info *fbi,
1280 class ipa_node_params *info,
1281 struct ipa_jump_func *jfunc,
1282 gcall *call, gimple *stmt, tree name,
1283 tree param_type)
1285 HOST_WIDE_INT offset, size;
1286 tree op1, tc_ssa, base, ssa;
1287 bool reverse;
1288 int index;
1290 op1 = gimple_assign_rhs1 (stmt);
1292 if (TREE_CODE (op1) == SSA_NAME)
1294 if (SSA_NAME_IS_DEFAULT_DEF (op1))
1295 index = ipa_get_param_decl_index (info, SSA_NAME_VAR (op1));
1296 else
1297 index = load_from_unmodified_param (fbi, info->descriptors,
1298 SSA_NAME_DEF_STMT (op1));
1299 tc_ssa = op1;
1301 else
1303 index = load_from_unmodified_param (fbi, info->descriptors, stmt);
1304 tc_ssa = gimple_assign_lhs (stmt);
1307 if (index >= 0)
1309 switch (gimple_assign_rhs_class (stmt))
1311 case GIMPLE_BINARY_RHS:
1313 tree op2 = gimple_assign_rhs2 (stmt);
1314 if (!is_gimple_ip_invariant (op2)
1315 || ((TREE_CODE_CLASS (gimple_assign_rhs_code (stmt))
1316 != tcc_comparison)
1317 && !useless_type_conversion_p (TREE_TYPE (name),
1318 TREE_TYPE (op1))))
1319 return;
1321 ipa_set_jf_arith_pass_through (jfunc, index, op2,
1322 gimple_assign_rhs_code (stmt));
1323 break;
1325 case GIMPLE_SINGLE_RHS:
1327 bool agg_p = parm_ref_data_pass_through_p (fbi, index, call,
1328 tc_ssa);
1329 ipa_set_jf_simple_pass_through (jfunc, index, agg_p);
1330 break;
1332 case GIMPLE_UNARY_RHS:
1333 if (!CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (stmt)))
1334 ipa_set_jf_unary_pass_through (jfunc, index,
1335 gimple_assign_rhs_code (stmt));
1336 default:;
1338 return;
1341 if (TREE_CODE (op1) != ADDR_EXPR)
1342 return;
1343 op1 = TREE_OPERAND (op1, 0);
1344 if (TREE_CODE (TREE_TYPE (op1)) != RECORD_TYPE)
1345 return;
1346 base = get_ref_base_and_extent_hwi (op1, &offset, &size, &reverse);
1347 offset_int mem_offset;
1348 if (!base
1349 || TREE_CODE (base) != MEM_REF
1350 || !mem_ref_offset (base).is_constant (&mem_offset))
1351 return;
1352 offset += mem_offset.to_short_addr () * BITS_PER_UNIT;
1353 ssa = TREE_OPERAND (base, 0);
1354 if (TREE_CODE (ssa) != SSA_NAME
1355 || !SSA_NAME_IS_DEFAULT_DEF (ssa)
1356 || offset < 0)
1357 return;
1359 /* Dynamic types are changed in constructors and destructors. */
1360 index = ipa_get_param_decl_index (info, SSA_NAME_VAR (ssa));
1361 if (index >= 0 && param_type && POINTER_TYPE_P (param_type))
1362 ipa_set_ancestor_jf (jfunc, offset, index,
1363 parm_ref_data_pass_through_p (fbi, index, call, ssa));
1366 /* Extract the base, offset and MEM_REF expression from a statement ASSIGN if
1367 it looks like:
1369 iftmp.1_3 = &obj_2(D)->D.1762;
1371 The base of the MEM_REF must be a default definition SSA NAME of a
1372 parameter. Return NULL_TREE if it looks otherwise. If case of success, the
1373 whole MEM_REF expression is returned and the offset calculated from any
1374 handled components and the MEM_REF itself is stored into *OFFSET. The whole
1375 RHS stripped off the ADDR_EXPR is stored into *OBJ_P. */
1377 static tree
1378 get_ancestor_addr_info (gimple *assign, tree *obj_p, HOST_WIDE_INT *offset)
1380 HOST_WIDE_INT size;
1381 tree expr, parm, obj;
1382 bool reverse;
1384 if (!gimple_assign_single_p (assign))
1385 return NULL_TREE;
1386 expr = gimple_assign_rhs1 (assign);
1388 if (TREE_CODE (expr) != ADDR_EXPR)
1389 return NULL_TREE;
1390 expr = TREE_OPERAND (expr, 0);
1391 obj = expr;
1392 expr = get_ref_base_and_extent_hwi (expr, offset, &size, &reverse);
1394 offset_int mem_offset;
1395 if (!expr
1396 || TREE_CODE (expr) != MEM_REF
1397 || !mem_ref_offset (expr).is_constant (&mem_offset))
1398 return NULL_TREE;
1399 parm = TREE_OPERAND (expr, 0);
1400 if (TREE_CODE (parm) != SSA_NAME
1401 || !SSA_NAME_IS_DEFAULT_DEF (parm)
1402 || TREE_CODE (SSA_NAME_VAR (parm)) != PARM_DECL)
1403 return NULL_TREE;
1405 *offset += mem_offset.to_short_addr () * BITS_PER_UNIT;
1406 *obj_p = obj;
1407 return expr;
1411 /* Given that an actual argument is an SSA_NAME that is a result of a phi
1412 statement PHI, try to find out whether NAME is in fact a
1413 multiple-inheritance typecast from a descendant into an ancestor of a formal
1414 parameter and thus can be described by an ancestor jump function and if so,
1415 write the appropriate function into JFUNC.
1417 Essentially we want to match the following pattern:
1419 if (obj_2(D) != 0B)
1420 goto <bb 3>;
1421 else
1422 goto <bb 4>;
1424 <bb 3>:
1425 iftmp.1_3 = &obj_2(D)->D.1762;
1427 <bb 4>:
1428 # iftmp.1_1 = PHI <iftmp.1_3(3), 0B(2)>
1429 D.1879_6 = middleman_1 (iftmp.1_1, i_5(D));
1430 return D.1879_6; */
1432 static void
1433 compute_complex_ancestor_jump_func (struct ipa_func_body_info *fbi,
1434 class ipa_node_params *info,
1435 struct ipa_jump_func *jfunc,
1436 gcall *call, gphi *phi)
1438 HOST_WIDE_INT offset;
1439 gimple *assign, *cond;
1440 basic_block phi_bb, assign_bb, cond_bb;
1441 tree tmp, parm, expr, obj;
1442 int index, i;
1444 if (gimple_phi_num_args (phi) != 2)
1445 return;
1447 if (integer_zerop (PHI_ARG_DEF (phi, 1)))
1448 tmp = PHI_ARG_DEF (phi, 0);
1449 else if (integer_zerop (PHI_ARG_DEF (phi, 0)))
1450 tmp = PHI_ARG_DEF (phi, 1);
1451 else
1452 return;
1453 if (TREE_CODE (tmp) != SSA_NAME
1454 || SSA_NAME_IS_DEFAULT_DEF (tmp)
1455 || !POINTER_TYPE_P (TREE_TYPE (tmp))
1456 || TREE_CODE (TREE_TYPE (TREE_TYPE (tmp))) != RECORD_TYPE)
1457 return;
1459 assign = SSA_NAME_DEF_STMT (tmp);
1460 assign_bb = gimple_bb (assign);
1461 if (!single_pred_p (assign_bb))
1462 return;
1463 expr = get_ancestor_addr_info (assign, &obj, &offset);
1464 if (!expr)
1465 return;
1466 parm = TREE_OPERAND (expr, 0);
1467 index = ipa_get_param_decl_index (info, SSA_NAME_VAR (parm));
1468 if (index < 0)
1469 return;
1471 cond_bb = single_pred (assign_bb);
1472 cond = last_stmt (cond_bb);
1473 if (!cond
1474 || gimple_code (cond) != GIMPLE_COND
1475 || gimple_cond_code (cond) != NE_EXPR
1476 || gimple_cond_lhs (cond) != parm
1477 || !integer_zerop (gimple_cond_rhs (cond)))
1478 return;
1480 phi_bb = gimple_bb (phi);
1481 for (i = 0; i < 2; i++)
1483 basic_block pred = EDGE_PRED (phi_bb, i)->src;
1484 if (pred != assign_bb && pred != cond_bb)
1485 return;
1488 ipa_set_ancestor_jf (jfunc, offset, index,
1489 parm_ref_data_pass_through_p (fbi, index, call, parm));
1492 /* Inspect the given TYPE and return true iff it has the same structure (the
1493 same number of fields of the same types) as a C++ member pointer. If
1494 METHOD_PTR and DELTA are non-NULL, store the trees representing the
1495 corresponding fields there. */
1497 static bool
1498 type_like_member_ptr_p (tree type, tree *method_ptr, tree *delta)
1500 tree fld;
1502 if (TREE_CODE (type) != RECORD_TYPE)
1503 return false;
1505 fld = TYPE_FIELDS (type);
1506 if (!fld || !POINTER_TYPE_P (TREE_TYPE (fld))
1507 || TREE_CODE (TREE_TYPE (TREE_TYPE (fld))) != METHOD_TYPE
1508 || !tree_fits_uhwi_p (DECL_FIELD_OFFSET (fld)))
1509 return false;
1511 if (method_ptr)
1512 *method_ptr = fld;
1514 fld = DECL_CHAIN (fld);
1515 if (!fld || INTEGRAL_TYPE_P (fld)
1516 || !tree_fits_uhwi_p (DECL_FIELD_OFFSET (fld)))
1517 return false;
1518 if (delta)
1519 *delta = fld;
1521 if (DECL_CHAIN (fld))
1522 return false;
1524 return true;
1527 /* If RHS is an SSA_NAME and it is defined by a simple copy assign statement,
1528 return the rhs of its defining statement, and this statement is stored in
1529 *RHS_STMT. Otherwise return RHS as it is. */
1531 static inline tree
1532 get_ssa_def_if_simple_copy (tree rhs, gimple **rhs_stmt)
1534 while (TREE_CODE (rhs) == SSA_NAME && !SSA_NAME_IS_DEFAULT_DEF (rhs))
1536 gimple *def_stmt = SSA_NAME_DEF_STMT (rhs);
1538 if (gimple_assign_single_p (def_stmt))
1539 rhs = gimple_assign_rhs1 (def_stmt);
1540 else
1541 break;
1542 *rhs_stmt = def_stmt;
1544 return rhs;
1547 /* Simple linked list, describing contents of an aggregate before call. */
1549 struct ipa_known_agg_contents_list
1551 /* Offset and size of the described part of the aggregate. */
1552 HOST_WIDE_INT offset, size;
1554 /* Type of the described part of the aggregate. */
1555 tree type;
1557 /* Known constant value or jump function data describing contents. */
1558 struct ipa_load_agg_data value;
1560 /* Pointer to the next structure in the list. */
1561 struct ipa_known_agg_contents_list *next;
1564 /* Add an aggregate content item into a linked list of
1565 ipa_known_agg_contents_list structure, in which all elements
1566 are sorted ascendingly by offset. */
1568 static inline void
1569 add_to_agg_contents_list (struct ipa_known_agg_contents_list **plist,
1570 struct ipa_known_agg_contents_list *item)
1572 struct ipa_known_agg_contents_list *list = *plist;
1574 for (; list; list = list->next)
1576 if (list->offset >= item->offset)
1577 break;
1579 plist = &list->next;
1582 item->next = list;
1583 *plist = item;
1586 /* Check whether a given aggregate content is clobbered by certain element in
1587 a linked list of ipa_known_agg_contents_list. */
1589 static inline bool
1590 clobber_by_agg_contents_list_p (struct ipa_known_agg_contents_list *list,
1591 struct ipa_known_agg_contents_list *item)
1593 for (; list; list = list->next)
1595 if (list->offset >= item->offset)
1596 return list->offset < item->offset + item->size;
1598 if (list->offset + list->size > item->offset)
1599 return true;
1602 return false;
1605 /* Build aggregate jump function from LIST, assuming there are exactly
1606 VALUE_COUNT entries there and that offset of the passed argument
1607 is ARG_OFFSET and store it into JFUNC. */
1609 static void
1610 build_agg_jump_func_from_list (struct ipa_known_agg_contents_list *list,
1611 int value_count, HOST_WIDE_INT arg_offset,
1612 struct ipa_jump_func *jfunc)
1614 vec_alloc (jfunc->agg.items, value_count);
1615 for (; list; list = list->next)
1617 struct ipa_agg_jf_item item;
1618 tree operand = list->value.pass_through.operand;
1620 if (list->value.pass_through.formal_id >= 0)
1622 /* Content value is derived from some formal paramerter. */
1623 if (list->value.offset >= 0)
1624 item.jftype = IPA_JF_LOAD_AGG;
1625 else
1626 item.jftype = IPA_JF_PASS_THROUGH;
1628 item.value.load_agg = list->value;
1629 if (operand)
1630 item.value.pass_through.operand
1631 = unshare_expr_without_location (operand);
1633 else if (operand)
1635 /* Content value is known constant. */
1636 item.jftype = IPA_JF_CONST;
1637 item.value.constant = unshare_expr_without_location (operand);
1639 else
1640 continue;
1642 item.type = list->type;
1643 gcc_assert (tree_to_shwi (TYPE_SIZE (list->type)) == list->size);
1645 item.offset = list->offset - arg_offset;
1646 gcc_assert ((item.offset % BITS_PER_UNIT) == 0);
1648 jfunc->agg.items->quick_push (item);
1652 /* Given an assignment statement STMT, try to collect information into
1653 AGG_VALUE that will be used to construct jump function for RHS of the
1654 assignment, from which content value of an aggregate part comes.
1656 Besides constant and simple pass-through jump functions, also try to
1657 identify whether it matches the following pattern that can be described by
1658 a load-value-from-aggregate jump function, which is a derivative of simple
1659 pass-through jump function.
1661 foo (int *p)
1665 *(q_5 + 4) = *(p_3(D) + 28) op 1;
1666 bar (q_5);
1669 Here IPA_LOAD_AGG_DATA data structure is informative enough to describe
1670 constant, simple pass-through and load-vale-from-aggregate. If value
1671 is constant, it will be kept in field OPERAND, and field FORMAL_ID is
1672 set to -1. For simple pass-through and load-value-from-aggregate, field
1673 FORMAL_ID specifies the related formal parameter index, and field
1674 OFFSET can be used to distinguish them, -1 means simple pass-through,
1675 otherwise means load-value-from-aggregate. */
1677 static void
1678 analyze_agg_content_value (struct ipa_func_body_info *fbi,
1679 struct ipa_load_agg_data *agg_value,
1680 gimple *stmt)
1682 tree lhs = gimple_assign_lhs (stmt);
1683 tree rhs1 = gimple_assign_rhs1 (stmt);
1684 enum tree_code code;
1685 int index = -1;
1687 /* Initialize jump function data for the aggregate part. */
1688 memset (agg_value, 0, sizeof (*agg_value));
1689 agg_value->pass_through.operation = NOP_EXPR;
1690 agg_value->pass_through.formal_id = -1;
1691 agg_value->offset = -1;
1693 if (AGGREGATE_TYPE_P (TREE_TYPE (lhs)) /* TODO: Support aggregate type. */
1694 || TREE_THIS_VOLATILE (lhs)
1695 || TREE_CODE (lhs) == BIT_FIELD_REF
1696 || contains_bitfld_component_ref_p (lhs))
1697 return;
1699 /* Skip SSA copies. */
1700 while (gimple_assign_rhs_class (stmt) == GIMPLE_SINGLE_RHS)
1702 if (TREE_CODE (rhs1) != SSA_NAME || SSA_NAME_IS_DEFAULT_DEF (rhs1))
1703 break;
1705 stmt = SSA_NAME_DEF_STMT (rhs1);
1706 if (!is_gimple_assign (stmt))
1707 return;
1709 rhs1 = gimple_assign_rhs1 (stmt);
1712 code = gimple_assign_rhs_code (stmt);
1713 switch (gimple_assign_rhs_class (stmt))
1715 case GIMPLE_SINGLE_RHS:
1716 if (is_gimple_ip_invariant (rhs1))
1718 agg_value->pass_through.operand = rhs1;
1719 return;
1721 code = NOP_EXPR;
1722 break;
1724 case GIMPLE_UNARY_RHS:
1725 /* NOTE: A GIMPLE_UNARY_RHS operation might not be tcc_unary
1726 (truth_not_expr is example), GIMPLE_BINARY_RHS does not imply
1727 tcc_binary, this subtleness is somewhat misleading.
1729 Since tcc_unary is widely used in IPA-CP code to check an operation
1730 with one operand, here we only allow tc_unary operation to avoid
1731 possible problem. Then we can use (opclass == tc_unary) or not to
1732 distinguish unary and binary. */
1733 if (TREE_CODE_CLASS (code) != tcc_unary || CONVERT_EXPR_CODE_P (code))
1734 return;
1736 rhs1 = get_ssa_def_if_simple_copy (rhs1, &stmt);
1737 break;
1739 case GIMPLE_BINARY_RHS:
1741 gimple *rhs1_stmt = stmt;
1742 gimple *rhs2_stmt = stmt;
1743 tree rhs2 = gimple_assign_rhs2 (stmt);
1745 rhs1 = get_ssa_def_if_simple_copy (rhs1, &rhs1_stmt);
1746 rhs2 = get_ssa_def_if_simple_copy (rhs2, &rhs2_stmt);
1748 if (is_gimple_ip_invariant (rhs2))
1750 agg_value->pass_through.operand = rhs2;
1751 stmt = rhs1_stmt;
1753 else if (is_gimple_ip_invariant (rhs1))
1755 if (TREE_CODE_CLASS (code) == tcc_comparison)
1756 code = swap_tree_comparison (code);
1757 else if (!commutative_tree_code (code))
1758 return;
1760 agg_value->pass_through.operand = rhs1;
1761 stmt = rhs2_stmt;
1762 rhs1 = rhs2;
1764 else
1765 return;
1767 if (TREE_CODE_CLASS (code) != tcc_comparison
1768 && !useless_type_conversion_p (TREE_TYPE (lhs), TREE_TYPE (rhs1)))
1769 return;
1771 break;
1773 default:
1774 return;
1777 if (TREE_CODE (rhs1) != SSA_NAME)
1778 index = load_from_unmodified_param_or_agg (fbi, fbi->info, stmt,
1779 &agg_value->offset,
1780 &agg_value->by_ref);
1781 else if (SSA_NAME_IS_DEFAULT_DEF (rhs1))
1782 index = ipa_get_param_decl_index (fbi->info, SSA_NAME_VAR (rhs1));
1784 if (index >= 0)
1786 if (agg_value->offset >= 0)
1787 agg_value->type = TREE_TYPE (rhs1);
1788 agg_value->pass_through.formal_id = index;
1789 agg_value->pass_through.operation = code;
1791 else
1792 agg_value->pass_through.operand = NULL_TREE;
1795 /* If STMT is a memory store to the object whose address is BASE, extract
1796 information (offset, size, and value) into CONTENT, and return true,
1797 otherwise we conservatively assume the whole object is modified with
1798 unknown content, and return false. CHECK_REF means that access to object
1799 is expected to be in form of MEM_REF expression. */
1801 static bool
1802 extract_mem_content (struct ipa_func_body_info *fbi,
1803 gimple *stmt, tree base, bool check_ref,
1804 struct ipa_known_agg_contents_list *content)
1806 HOST_WIDE_INT lhs_offset, lhs_size;
1807 bool reverse;
1809 if (!is_gimple_assign (stmt))
1810 return false;
1812 tree lhs = gimple_assign_lhs (stmt);
1813 tree lhs_base = get_ref_base_and_extent_hwi (lhs, &lhs_offset, &lhs_size,
1814 &reverse);
1815 if (!lhs_base)
1816 return false;
1818 if (check_ref)
1820 if (TREE_CODE (lhs_base) != MEM_REF
1821 || TREE_OPERAND (lhs_base, 0) != base
1822 || !integer_zerop (TREE_OPERAND (lhs_base, 1)))
1823 return false;
1825 else if (lhs_base != base)
1826 return false;
1828 content->offset = lhs_offset;
1829 content->size = lhs_size;
1830 content->type = TREE_TYPE (lhs);
1831 content->next = NULL;
1833 analyze_agg_content_value (fbi, &content->value, stmt);
1834 return true;
1837 /* Traverse statements from CALL backwards, scanning whether an aggregate given
1838 in ARG is filled in constants or values that are derived from caller's
1839 formal parameter in the way described by some kinds of jump functions. FBI
1840 is the context of the caller function for interprocedural analysis. ARG can
1841 either be an aggregate expression or a pointer to an aggregate. ARG_TYPE is
1842 the type of the aggregate, JFUNC is the jump function for the aggregate. */
1844 static void
1845 determine_known_aggregate_parts (struct ipa_func_body_info *fbi,
1846 gcall *call, tree arg,
1847 tree arg_type,
1848 struct ipa_jump_func *jfunc)
1850 struct ipa_known_agg_contents_list *list = NULL, *all_list = NULL;
1851 bitmap visited = NULL;
1852 int item_count = 0, value_count = 0;
1853 HOST_WIDE_INT arg_offset, arg_size;
1854 tree arg_base;
1855 bool check_ref, by_ref;
1856 ao_ref r;
1857 int max_agg_items = opt_for_fn (fbi->node->decl, param_ipa_max_agg_items);
1859 if (max_agg_items == 0)
1860 return;
1862 /* The function operates in three stages. First, we prepare check_ref, r,
1863 arg_base and arg_offset based on what is actually passed as an actual
1864 argument. */
1866 if (POINTER_TYPE_P (arg_type))
1868 by_ref = true;
1869 if (TREE_CODE (arg) == SSA_NAME)
1871 tree type_size;
1872 if (!tree_fits_uhwi_p (TYPE_SIZE (TREE_TYPE (arg_type)))
1873 || !POINTER_TYPE_P (TREE_TYPE (arg)))
1874 return;
1875 check_ref = true;
1876 arg_base = arg;
1877 arg_offset = 0;
1878 type_size = TYPE_SIZE (TREE_TYPE (arg_type));
1879 arg_size = tree_to_uhwi (type_size);
1880 ao_ref_init_from_ptr_and_size (&r, arg_base, NULL_TREE);
1882 else if (TREE_CODE (arg) == ADDR_EXPR)
1884 bool reverse;
1886 arg = TREE_OPERAND (arg, 0);
1887 arg_base = get_ref_base_and_extent_hwi (arg, &arg_offset,
1888 &arg_size, &reverse);
1889 if (!arg_base)
1890 return;
1891 if (DECL_P (arg_base))
1893 check_ref = false;
1894 ao_ref_init (&r, arg_base);
1896 else
1897 return;
1899 else
1900 return;
1902 else
1904 bool reverse;
1906 gcc_checking_assert (AGGREGATE_TYPE_P (TREE_TYPE (arg)));
1908 by_ref = false;
1909 check_ref = false;
1910 arg_base = get_ref_base_and_extent_hwi (arg, &arg_offset,
1911 &arg_size, &reverse);
1912 if (!arg_base)
1913 return;
1915 ao_ref_init (&r, arg);
1918 /* Second stage traverses virtual SSA web backwards starting from the call
1919 statement, only looks at individual dominating virtual operand (its
1920 definition dominates the call), as long as it is confident that content
1921 of the aggregate is affected by definition of the virtual operand, it
1922 builds a sorted linked list of ipa_agg_jf_list describing that. */
1924 for (tree dom_vuse = gimple_vuse (call); dom_vuse;)
1926 gimple *stmt = SSA_NAME_DEF_STMT (dom_vuse);
1928 if (gimple_code (stmt) == GIMPLE_PHI)
1930 dom_vuse = get_continuation_for_phi (stmt, &r, true,
1931 fbi->aa_walk_budget,
1932 &visited, false, NULL, NULL);
1933 continue;
1936 if (stmt_may_clobber_ref_p_1 (stmt, &r))
1938 struct ipa_known_agg_contents_list *content
1939 = XALLOCA (struct ipa_known_agg_contents_list);
1941 if (!extract_mem_content (fbi, stmt, arg_base, check_ref, content))
1942 break;
1944 /* Now we get a dominating virtual operand, and need to check
1945 whether its value is clobbered any other dominating one. */
1946 if ((content->value.pass_through.formal_id >= 0
1947 || content->value.pass_through.operand)
1948 && !clobber_by_agg_contents_list_p (all_list, content))
1950 struct ipa_known_agg_contents_list *copy
1951 = XALLOCA (struct ipa_known_agg_contents_list);
1953 /* Add to the list consisting of only dominating virtual
1954 operands, whose definitions can finally reach the call. */
1955 add_to_agg_contents_list (&list, (*copy = *content, copy));
1957 if (++value_count == max_agg_items)
1958 break;
1961 /* Add to the list consisting of all dominating virtual operands. */
1962 add_to_agg_contents_list (&all_list, content);
1964 if (++item_count == 2 * max_agg_items)
1965 break;
1967 dom_vuse = gimple_vuse (stmt);
1970 if (visited)
1971 BITMAP_FREE (visited);
1973 /* Third stage just goes over the list and creates an appropriate vector of
1974 ipa_agg_jf_item structures out of it, of course only if there are
1975 any meaningful items to begin with. */
1977 if (value_count)
1979 jfunc->agg.by_ref = by_ref;
1980 build_agg_jump_func_from_list (list, value_count, arg_offset, jfunc);
1985 /* Return the Ith param type of callee associated with call graph
1986 edge E. */
1988 tree
1989 ipa_get_callee_param_type (struct cgraph_edge *e, int i)
1991 int n;
1992 tree type = (e->callee
1993 ? TREE_TYPE (e->callee->decl)
1994 : gimple_call_fntype (e->call_stmt));
1995 tree t = TYPE_ARG_TYPES (type);
1997 for (n = 0; n < i; n++)
1999 if (!t)
2000 break;
2001 t = TREE_CHAIN (t);
2003 if (t)
2004 return TREE_VALUE (t);
2005 if (!e->callee)
2006 return NULL;
2007 t = DECL_ARGUMENTS (e->callee->decl);
2008 for (n = 0; n < i; n++)
2010 if (!t)
2011 return NULL;
2012 t = TREE_CHAIN (t);
2014 if (t)
2015 return TREE_TYPE (t);
2016 return NULL;
2019 /* Return ipa_bits with VALUE and MASK values, which can be either a newly
2020 allocated structure or a previously existing one shared with other jump
2021 functions and/or transformation summaries. */
2023 ipa_bits *
2024 ipa_get_ipa_bits_for_value (const widest_int &value, const widest_int &mask)
2026 ipa_bits tmp;
2027 tmp.value = value;
2028 tmp.mask = mask;
2030 ipa_bits **slot = ipa_bits_hash_table->find_slot (&tmp, INSERT);
2031 if (*slot)
2032 return *slot;
2034 ipa_bits *res = ggc_alloc<ipa_bits> ();
2035 res->value = value;
2036 res->mask = mask;
2037 *slot = res;
2039 return res;
2042 /* Assign to JF a pointer to ipa_bits structure with VALUE and MASK. Use hash
2043 table in order to avoid creating multiple same ipa_bits structures. */
2045 static void
2046 ipa_set_jfunc_bits (ipa_jump_func *jf, const widest_int &value,
2047 const widest_int &mask)
2049 jf->bits = ipa_get_ipa_bits_for_value (value, mask);
2052 /* Return a pointer to a value_range just like *TMP, but either find it in
2053 ipa_vr_hash_table or allocate it in GC memory. TMP->equiv must be NULL. */
2055 static value_range *
2056 ipa_get_value_range (value_range *tmp)
2058 value_range **slot = ipa_vr_hash_table->find_slot (tmp, INSERT);
2059 if (*slot)
2060 return *slot;
2062 value_range *vr = ggc_alloc<value_range> ();
2063 *vr = *tmp;
2064 *slot = vr;
2066 return vr;
2069 /* Return a pointer to a value range consisting of TYPE, MIN, MAX and an empty
2070 equiv set. Use hash table in order to avoid creating multiple same copies of
2071 value_ranges. */
2073 static value_range *
2074 ipa_get_value_range (enum value_range_kind kind, tree min, tree max)
2076 value_range tmp (min, max, kind);
2077 return ipa_get_value_range (&tmp);
2080 /* Assign to JF a pointer to a value_range structure with TYPE, MIN and MAX and
2081 a NULL equiv bitmap. Use hash table in order to avoid creating multiple
2082 same value_range structures. */
2084 static void
2085 ipa_set_jfunc_vr (ipa_jump_func *jf, enum value_range_kind type,
2086 tree min, tree max)
2088 jf->m_vr = ipa_get_value_range (type, min, max);
2091 /* Assign to JF a pointer to a value_range just like TMP but either fetch a
2092 copy from ipa_vr_hash_table or allocate a new on in GC memory. */
2094 static void
2095 ipa_set_jfunc_vr (ipa_jump_func *jf, value_range *tmp)
2097 jf->m_vr = ipa_get_value_range (tmp);
2100 /* Compute jump function for all arguments of callsite CS and insert the
2101 information in the jump_functions array in the ipa_edge_args corresponding
2102 to this callsite. */
2104 static void
2105 ipa_compute_jump_functions_for_edge (struct ipa_func_body_info *fbi,
2106 struct cgraph_edge *cs)
2108 class ipa_node_params *info = IPA_NODE_REF (cs->caller);
2109 class ipa_edge_args *args = IPA_EDGE_REF_GET_CREATE (cs);
2110 gcall *call = cs->call_stmt;
2111 int n, arg_num = gimple_call_num_args (call);
2112 bool useful_context = false;
2114 if (arg_num == 0 || args->jump_functions)
2115 return;
2116 vec_safe_grow_cleared (args->jump_functions, arg_num);
2117 if (flag_devirtualize)
2118 vec_safe_grow_cleared (args->polymorphic_call_contexts, arg_num);
2120 if (gimple_call_internal_p (call))
2121 return;
2122 if (ipa_func_spec_opts_forbid_analysis_p (cs->caller))
2123 return;
2125 for (n = 0; n < arg_num; n++)
2127 struct ipa_jump_func *jfunc = ipa_get_ith_jump_func (args, n);
2128 tree arg = gimple_call_arg (call, n);
2129 tree param_type = ipa_get_callee_param_type (cs, n);
2130 if (flag_devirtualize && POINTER_TYPE_P (TREE_TYPE (arg)))
2132 tree instance;
2133 class ipa_polymorphic_call_context context (cs->caller->decl,
2134 arg, cs->call_stmt,
2135 &instance);
2136 context.get_dynamic_type (instance, arg, NULL, cs->call_stmt,
2137 &fbi->aa_walk_budget);
2138 *ipa_get_ith_polymorhic_call_context (args, n) = context;
2139 if (!context.useless_p ())
2140 useful_context = true;
2143 if (POINTER_TYPE_P (TREE_TYPE (arg)))
2145 bool addr_nonzero = false;
2146 bool strict_overflow = false;
2148 if (TREE_CODE (arg) == SSA_NAME
2149 && param_type
2150 && get_ptr_nonnull (arg))
2151 addr_nonzero = true;
2152 else if (tree_single_nonzero_warnv_p (arg, &strict_overflow))
2153 addr_nonzero = true;
2155 if (addr_nonzero)
2157 tree z = build_int_cst (TREE_TYPE (arg), 0);
2158 ipa_set_jfunc_vr (jfunc, VR_ANTI_RANGE, z, z);
2160 else
2161 gcc_assert (!jfunc->m_vr);
2163 else
2165 wide_int min, max;
2166 value_range_kind kind;
2167 if (TREE_CODE (arg) == SSA_NAME
2168 && param_type
2169 && (kind = get_range_info (arg, &min, &max))
2170 && (kind == VR_RANGE || kind == VR_ANTI_RANGE))
2172 value_range resvr;
2173 value_range tmpvr (wide_int_to_tree (TREE_TYPE (arg), min),
2174 wide_int_to_tree (TREE_TYPE (arg), max),
2175 kind);
2176 range_fold_unary_expr (&resvr, NOP_EXPR, param_type,
2177 &tmpvr, TREE_TYPE (arg));
2178 if (!resvr.undefined_p () && !resvr.varying_p ())
2179 ipa_set_jfunc_vr (jfunc, &resvr);
2180 else
2181 gcc_assert (!jfunc->m_vr);
2183 else
2184 gcc_assert (!jfunc->m_vr);
2187 if (INTEGRAL_TYPE_P (TREE_TYPE (arg))
2188 && (TREE_CODE (arg) == SSA_NAME || TREE_CODE (arg) == INTEGER_CST))
2190 if (TREE_CODE (arg) == SSA_NAME)
2191 ipa_set_jfunc_bits (jfunc, 0,
2192 widest_int::from (get_nonzero_bits (arg),
2193 TYPE_SIGN (TREE_TYPE (arg))));
2194 else
2195 ipa_set_jfunc_bits (jfunc, wi::to_widest (arg), 0);
2197 else if (POINTER_TYPE_P (TREE_TYPE (arg)))
2199 unsigned HOST_WIDE_INT bitpos;
2200 unsigned align;
2202 get_pointer_alignment_1 (arg, &align, &bitpos);
2203 widest_int mask = wi::bit_and_not
2204 (wi::mask<widest_int> (TYPE_PRECISION (TREE_TYPE (arg)), false),
2205 align / BITS_PER_UNIT - 1);
2206 widest_int value = bitpos / BITS_PER_UNIT;
2207 ipa_set_jfunc_bits (jfunc, value, mask);
2209 else
2210 gcc_assert (!jfunc->bits);
2212 if (is_gimple_ip_invariant (arg)
2213 || (VAR_P (arg)
2214 && is_global_var (arg)
2215 && TREE_READONLY (arg)))
2216 ipa_set_jf_constant (jfunc, arg, cs);
2217 else if (!is_gimple_reg_type (TREE_TYPE (arg))
2218 && TREE_CODE (arg) == PARM_DECL)
2220 int index = ipa_get_param_decl_index (info, arg);
2222 gcc_assert (index >=0);
2223 /* Aggregate passed by value, check for pass-through, otherwise we
2224 will attempt to fill in aggregate contents later in this
2225 for cycle. */
2226 if (parm_preserved_before_stmt_p (fbi, index, call, arg))
2228 ipa_set_jf_simple_pass_through (jfunc, index, false);
2229 continue;
2232 else if (TREE_CODE (arg) == SSA_NAME)
2234 if (SSA_NAME_IS_DEFAULT_DEF (arg))
2236 int index = ipa_get_param_decl_index (info, SSA_NAME_VAR (arg));
2237 if (index >= 0)
2239 bool agg_p;
2240 agg_p = parm_ref_data_pass_through_p (fbi, index, call, arg);
2241 ipa_set_jf_simple_pass_through (jfunc, index, agg_p);
2244 else
2246 gimple *stmt = SSA_NAME_DEF_STMT (arg);
2247 if (is_gimple_assign (stmt))
2248 compute_complex_assign_jump_func (fbi, info, jfunc,
2249 call, stmt, arg, param_type);
2250 else if (gimple_code (stmt) == GIMPLE_PHI)
2251 compute_complex_ancestor_jump_func (fbi, info, jfunc,
2252 call,
2253 as_a <gphi *> (stmt));
2257 /* If ARG is pointer, we cannot use its type to determine the type of aggregate
2258 passed (because type conversions are ignored in gimple). Usually we can
2259 safely get type from function declaration, but in case of K&R prototypes or
2260 variadic functions we can try our luck with type of the pointer passed.
2261 TODO: Since we look for actual initialization of the memory object, we may better
2262 work out the type based on the memory stores we find. */
2263 if (!param_type)
2264 param_type = TREE_TYPE (arg);
2266 if ((jfunc->type != IPA_JF_PASS_THROUGH
2267 || !ipa_get_jf_pass_through_agg_preserved (jfunc))
2268 && (jfunc->type != IPA_JF_ANCESTOR
2269 || !ipa_get_jf_ancestor_agg_preserved (jfunc))
2270 && (AGGREGATE_TYPE_P (TREE_TYPE (arg))
2271 || POINTER_TYPE_P (param_type)))
2272 determine_known_aggregate_parts (fbi, call, arg, param_type, jfunc);
2274 if (!useful_context)
2275 vec_free (args->polymorphic_call_contexts);
2278 /* Compute jump functions for all edges - both direct and indirect - outgoing
2279 from BB. */
2281 static void
2282 ipa_compute_jump_functions_for_bb (struct ipa_func_body_info *fbi, basic_block bb)
2284 struct ipa_bb_info *bi = ipa_get_bb_info (fbi, bb);
2285 int i;
2286 struct cgraph_edge *cs;
2288 FOR_EACH_VEC_ELT_REVERSE (bi->cg_edges, i, cs)
2290 struct cgraph_node *callee = cs->callee;
2292 if (callee)
2294 callee = callee->ultimate_alias_target ();
2295 /* We do not need to bother analyzing calls to unknown functions
2296 unless they may become known during lto/whopr. */
2297 if (!callee->definition && !flag_lto)
2298 continue;
2300 ipa_compute_jump_functions_for_edge (fbi, cs);
2304 /* If STMT looks like a statement loading a value from a member pointer formal
2305 parameter, return that parameter and store the offset of the field to
2306 *OFFSET_P, if it is non-NULL. Otherwise return NULL (but *OFFSET_P still
2307 might be clobbered). If USE_DELTA, then we look for a use of the delta
2308 field rather than the pfn. */
2310 static tree
2311 ipa_get_stmt_member_ptr_load_param (gimple *stmt, bool use_delta,
2312 HOST_WIDE_INT *offset_p)
2314 tree rhs, rec, ref_field, ref_offset, fld, ptr_field, delta_field;
2316 if (!gimple_assign_single_p (stmt))
2317 return NULL_TREE;
2319 rhs = gimple_assign_rhs1 (stmt);
2320 if (TREE_CODE (rhs) == COMPONENT_REF)
2322 ref_field = TREE_OPERAND (rhs, 1);
2323 rhs = TREE_OPERAND (rhs, 0);
2325 else
2326 ref_field = NULL_TREE;
2327 if (TREE_CODE (rhs) != MEM_REF)
2328 return NULL_TREE;
2329 rec = TREE_OPERAND (rhs, 0);
2330 if (TREE_CODE (rec) != ADDR_EXPR)
2331 return NULL_TREE;
2332 rec = TREE_OPERAND (rec, 0);
2333 if (TREE_CODE (rec) != PARM_DECL
2334 || !type_like_member_ptr_p (TREE_TYPE (rec), &ptr_field, &delta_field))
2335 return NULL_TREE;
2336 ref_offset = TREE_OPERAND (rhs, 1);
2338 if (use_delta)
2339 fld = delta_field;
2340 else
2341 fld = ptr_field;
2342 if (offset_p)
2343 *offset_p = int_bit_position (fld);
2345 if (ref_field)
2347 if (integer_nonzerop (ref_offset))
2348 return NULL_TREE;
2349 return ref_field == fld ? rec : NULL_TREE;
2351 else
2352 return tree_int_cst_equal (byte_position (fld), ref_offset) ? rec
2353 : NULL_TREE;
2356 /* Returns true iff T is an SSA_NAME defined by a statement. */
2358 static bool
2359 ipa_is_ssa_with_stmt_def (tree t)
2361 if (TREE_CODE (t) == SSA_NAME
2362 && !SSA_NAME_IS_DEFAULT_DEF (t))
2363 return true;
2364 else
2365 return false;
2368 /* Find the indirect call graph edge corresponding to STMT and mark it as a
2369 call to a parameter number PARAM_INDEX. NODE is the caller. Return the
2370 indirect call graph edge.
2371 If POLYMORPHIC is true record is as a destination of polymorphic call. */
2373 static struct cgraph_edge *
2374 ipa_note_param_call (struct cgraph_node *node, int param_index,
2375 gcall *stmt, bool polymorphic)
2377 struct cgraph_edge *cs;
2379 cs = node->get_edge (stmt);
2380 cs->indirect_info->param_index = param_index;
2381 cs->indirect_info->agg_contents = 0;
2382 cs->indirect_info->member_ptr = 0;
2383 cs->indirect_info->guaranteed_unmodified = 0;
2384 ipa_set_param_used_by_indirect_call (IPA_NODE_REF (node),
2385 param_index, true);
2386 if (cs->indirect_info->polymorphic || polymorphic)
2387 ipa_set_param_used_by_polymorphic_call
2388 (IPA_NODE_REF (node), param_index, true);
2389 return cs;
2392 /* Analyze the CALL and examine uses of formal parameters of the caller NODE
2393 (described by INFO). PARMS_AINFO is a pointer to a vector containing
2394 intermediate information about each formal parameter. Currently it checks
2395 whether the call calls a pointer that is a formal parameter and if so, the
2396 parameter is marked with the called flag and an indirect call graph edge
2397 describing the call is created. This is very simple for ordinary pointers
2398 represented in SSA but not-so-nice when it comes to member pointers. The
2399 ugly part of this function does nothing more than trying to match the
2400 pattern of such a call. An example of such a pattern is the gimple dump
2401 below, the call is on the last line:
2403 <bb 2>:
2404 f$__delta_5 = f.__delta;
2405 f$__pfn_24 = f.__pfn;
2408 <bb 2>:
2409 f$__delta_5 = MEM[(struct *)&f];
2410 f$__pfn_24 = MEM[(struct *)&f + 4B];
2412 and a few lines below:
2414 <bb 5>
2415 D.2496_3 = (int) f$__pfn_24;
2416 D.2497_4 = D.2496_3 & 1;
2417 if (D.2497_4 != 0)
2418 goto <bb 3>;
2419 else
2420 goto <bb 4>;
2422 <bb 6>:
2423 D.2500_7 = (unsigned int) f$__delta_5;
2424 D.2501_8 = &S + D.2500_7;
2425 D.2502_9 = (int (*__vtbl_ptr_type) (void) * *) D.2501_8;
2426 D.2503_10 = *D.2502_9;
2427 D.2504_12 = f$__pfn_24 + -1;
2428 D.2505_13 = (unsigned int) D.2504_12;
2429 D.2506_14 = D.2503_10 + D.2505_13;
2430 D.2507_15 = *D.2506_14;
2431 iftmp.11_16 = (String:: *) D.2507_15;
2433 <bb 7>:
2434 # iftmp.11_1 = PHI <iftmp.11_16(3), f$__pfn_24(2)>
2435 D.2500_19 = (unsigned int) f$__delta_5;
2436 D.2508_20 = &S + D.2500_19;
2437 D.2493_21 = iftmp.11_1 (D.2508_20, 4);
2439 Such patterns are results of simple calls to a member pointer:
2441 int doprinting (int (MyString::* f)(int) const)
2443 MyString S ("somestring");
2445 return (S.*f)(4);
2448 Moreover, the function also looks for called pointers loaded from aggregates
2449 passed by value or reference. */
2451 static void
2452 ipa_analyze_indirect_call_uses (struct ipa_func_body_info *fbi, gcall *call,
2453 tree target)
2455 class ipa_node_params *info = fbi->info;
2456 HOST_WIDE_INT offset;
2457 bool by_ref;
2459 if (SSA_NAME_IS_DEFAULT_DEF (target))
2461 tree var = SSA_NAME_VAR (target);
2462 int index = ipa_get_param_decl_index (info, var);
2463 if (index >= 0)
2464 ipa_note_param_call (fbi->node, index, call, false);
2465 return;
2468 int index;
2469 gimple *def = SSA_NAME_DEF_STMT (target);
2470 bool guaranteed_unmodified;
2471 if (gimple_assign_single_p (def)
2472 && ipa_load_from_parm_agg (fbi, info->descriptors, def,
2473 gimple_assign_rhs1 (def), &index, &offset,
2474 NULL, &by_ref, &guaranteed_unmodified))
2476 struct cgraph_edge *cs = ipa_note_param_call (fbi->node, index,
2477 call, false);
2478 cs->indirect_info->offset = offset;
2479 cs->indirect_info->agg_contents = 1;
2480 cs->indirect_info->by_ref = by_ref;
2481 cs->indirect_info->guaranteed_unmodified = guaranteed_unmodified;
2482 return;
2485 /* Now we need to try to match the complex pattern of calling a member
2486 pointer. */
2487 if (gimple_code (def) != GIMPLE_PHI
2488 || gimple_phi_num_args (def) != 2
2489 || !POINTER_TYPE_P (TREE_TYPE (target))
2490 || TREE_CODE (TREE_TYPE (TREE_TYPE (target))) != METHOD_TYPE)
2491 return;
2493 /* First, we need to check whether one of these is a load from a member
2494 pointer that is a parameter to this function. */
2495 tree n1 = PHI_ARG_DEF (def, 0);
2496 tree n2 = PHI_ARG_DEF (def, 1);
2497 if (!ipa_is_ssa_with_stmt_def (n1) || !ipa_is_ssa_with_stmt_def (n2))
2498 return;
2499 gimple *d1 = SSA_NAME_DEF_STMT (n1);
2500 gimple *d2 = SSA_NAME_DEF_STMT (n2);
2502 tree rec;
2503 basic_block bb, virt_bb;
2504 basic_block join = gimple_bb (def);
2505 if ((rec = ipa_get_stmt_member_ptr_load_param (d1, false, &offset)))
2507 if (ipa_get_stmt_member_ptr_load_param (d2, false, NULL))
2508 return;
2510 bb = EDGE_PRED (join, 0)->src;
2511 virt_bb = gimple_bb (d2);
2513 else if ((rec = ipa_get_stmt_member_ptr_load_param (d2, false, &offset)))
2515 bb = EDGE_PRED (join, 1)->src;
2516 virt_bb = gimple_bb (d1);
2518 else
2519 return;
2521 /* Second, we need to check that the basic blocks are laid out in the way
2522 corresponding to the pattern. */
2524 if (!single_pred_p (virt_bb) || !single_succ_p (virt_bb)
2525 || single_pred (virt_bb) != bb
2526 || single_succ (virt_bb) != join)
2527 return;
2529 /* Third, let's see that the branching is done depending on the least
2530 significant bit of the pfn. */
2532 gimple *branch = last_stmt (bb);
2533 if (!branch || gimple_code (branch) != GIMPLE_COND)
2534 return;
2536 if ((gimple_cond_code (branch) != NE_EXPR
2537 && gimple_cond_code (branch) != EQ_EXPR)
2538 || !integer_zerop (gimple_cond_rhs (branch)))
2539 return;
2541 tree cond = gimple_cond_lhs (branch);
2542 if (!ipa_is_ssa_with_stmt_def (cond))
2543 return;
2545 def = SSA_NAME_DEF_STMT (cond);
2546 if (!is_gimple_assign (def)
2547 || gimple_assign_rhs_code (def) != BIT_AND_EXPR
2548 || !integer_onep (gimple_assign_rhs2 (def)))
2549 return;
2551 cond = gimple_assign_rhs1 (def);
2552 if (!ipa_is_ssa_with_stmt_def (cond))
2553 return;
2555 def = SSA_NAME_DEF_STMT (cond);
2557 if (is_gimple_assign (def)
2558 && CONVERT_EXPR_CODE_P (gimple_assign_rhs_code (def)))
2560 cond = gimple_assign_rhs1 (def);
2561 if (!ipa_is_ssa_with_stmt_def (cond))
2562 return;
2563 def = SSA_NAME_DEF_STMT (cond);
2566 tree rec2;
2567 rec2 = ipa_get_stmt_member_ptr_load_param (def,
2568 (TARGET_PTRMEMFUNC_VBIT_LOCATION
2569 == ptrmemfunc_vbit_in_delta),
2570 NULL);
2571 if (rec != rec2)
2572 return;
2574 index = ipa_get_param_decl_index (info, rec);
2575 if (index >= 0
2576 && parm_preserved_before_stmt_p (fbi, index, call, rec))
2578 struct cgraph_edge *cs = ipa_note_param_call (fbi->node, index,
2579 call, false);
2580 cs->indirect_info->offset = offset;
2581 cs->indirect_info->agg_contents = 1;
2582 cs->indirect_info->member_ptr = 1;
2583 cs->indirect_info->guaranteed_unmodified = 1;
2586 return;
2589 /* Analyze a CALL to an OBJ_TYPE_REF which is passed in TARGET and if the
2590 object referenced in the expression is a formal parameter of the caller
2591 FBI->node (described by FBI->info), create a call note for the
2592 statement. */
2594 static void
2595 ipa_analyze_virtual_call_uses (struct ipa_func_body_info *fbi,
2596 gcall *call, tree target)
2598 tree obj = OBJ_TYPE_REF_OBJECT (target);
2599 int index;
2600 HOST_WIDE_INT anc_offset;
2602 if (!flag_devirtualize)
2603 return;
2605 if (TREE_CODE (obj) != SSA_NAME)
2606 return;
2608 class ipa_node_params *info = fbi->info;
2609 if (SSA_NAME_IS_DEFAULT_DEF (obj))
2611 if (TREE_CODE (SSA_NAME_VAR (obj)) != PARM_DECL)
2612 return;
2614 anc_offset = 0;
2615 index = ipa_get_param_decl_index (info, SSA_NAME_VAR (obj));
2616 gcc_assert (index >= 0);
2617 if (detect_type_change_ssa (fbi, obj, obj_type_ref_class (target),
2618 call))
2619 return;
2621 else
2623 gimple *stmt = SSA_NAME_DEF_STMT (obj);
2624 tree expr;
2626 expr = get_ancestor_addr_info (stmt, &obj, &anc_offset);
2627 if (!expr)
2628 return;
2629 index = ipa_get_param_decl_index (info,
2630 SSA_NAME_VAR (TREE_OPERAND (expr, 0)));
2631 gcc_assert (index >= 0);
2632 if (detect_type_change (fbi, obj, expr, obj_type_ref_class (target),
2633 call, anc_offset))
2634 return;
2637 struct cgraph_edge *cs = ipa_note_param_call (fbi->node, index,
2638 call, true);
2639 class cgraph_indirect_call_info *ii = cs->indirect_info;
2640 ii->offset = anc_offset;
2641 ii->otr_token = tree_to_uhwi (OBJ_TYPE_REF_TOKEN (target));
2642 ii->otr_type = obj_type_ref_class (target);
2643 ii->polymorphic = 1;
2646 /* Analyze a call statement CALL whether and how it utilizes formal parameters
2647 of the caller (described by INFO). PARMS_AINFO is a pointer to a vector
2648 containing intermediate information about each formal parameter. */
2650 static void
2651 ipa_analyze_call_uses (struct ipa_func_body_info *fbi, gcall *call)
2653 tree target = gimple_call_fn (call);
2655 if (!target
2656 || (TREE_CODE (target) != SSA_NAME
2657 && !virtual_method_call_p (target)))
2658 return;
2660 struct cgraph_edge *cs = fbi->node->get_edge (call);
2661 /* If we previously turned the call into a direct call, there is
2662 no need to analyze. */
2663 if (cs && !cs->indirect_unknown_callee)
2664 return;
2666 if (cs->indirect_info->polymorphic && flag_devirtualize)
2668 tree instance;
2669 tree target = gimple_call_fn (call);
2670 ipa_polymorphic_call_context context (current_function_decl,
2671 target, call, &instance);
2673 gcc_checking_assert (cs->indirect_info->otr_type
2674 == obj_type_ref_class (target));
2675 gcc_checking_assert (cs->indirect_info->otr_token
2676 == tree_to_shwi (OBJ_TYPE_REF_TOKEN (target)));
2678 cs->indirect_info->vptr_changed
2679 = !context.get_dynamic_type (instance,
2680 OBJ_TYPE_REF_OBJECT (target),
2681 obj_type_ref_class (target), call,
2682 &fbi->aa_walk_budget);
2683 cs->indirect_info->context = context;
2686 if (TREE_CODE (target) == SSA_NAME)
2687 ipa_analyze_indirect_call_uses (fbi, call, target);
2688 else if (virtual_method_call_p (target))
2689 ipa_analyze_virtual_call_uses (fbi, call, target);
2693 /* Analyze the call statement STMT with respect to formal parameters (described
2694 in INFO) of caller given by FBI->NODE. Currently it only checks whether
2695 formal parameters are called. */
2697 static void
2698 ipa_analyze_stmt_uses (struct ipa_func_body_info *fbi, gimple *stmt)
2700 if (is_gimple_call (stmt))
2701 ipa_analyze_call_uses (fbi, as_a <gcall *> (stmt));
2704 /* Callback of walk_stmt_load_store_addr_ops for the visit_load.
2705 If OP is a parameter declaration, mark it as used in the info structure
2706 passed in DATA. */
2708 static bool
2709 visit_ref_for_mod_analysis (gimple *, tree op, tree, void *data)
2711 class ipa_node_params *info = (class ipa_node_params *) data;
2713 op = get_base_address (op);
2714 if (op
2715 && TREE_CODE (op) == PARM_DECL)
2717 int index = ipa_get_param_decl_index (info, op);
2718 gcc_assert (index >= 0);
2719 ipa_set_param_used (info, index, true);
2722 return false;
2725 /* Scan the statements in BB and inspect the uses of formal parameters. Store
2726 the findings in various structures of the associated ipa_node_params
2727 structure, such as parameter flags, notes etc. FBI holds various data about
2728 the function being analyzed. */
2730 static void
2731 ipa_analyze_params_uses_in_bb (struct ipa_func_body_info *fbi, basic_block bb)
2733 gimple_stmt_iterator gsi;
2734 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
2736 gimple *stmt = gsi_stmt (gsi);
2738 if (is_gimple_debug (stmt))
2739 continue;
2741 ipa_analyze_stmt_uses (fbi, stmt);
2742 walk_stmt_load_store_addr_ops (stmt, fbi->info,
2743 visit_ref_for_mod_analysis,
2744 visit_ref_for_mod_analysis,
2745 visit_ref_for_mod_analysis);
2747 for (gsi = gsi_start_phis (bb); !gsi_end_p (gsi); gsi_next (&gsi))
2748 walk_stmt_load_store_addr_ops (gsi_stmt (gsi), fbi->info,
2749 visit_ref_for_mod_analysis,
2750 visit_ref_for_mod_analysis,
2751 visit_ref_for_mod_analysis);
2754 /* Calculate controlled uses of parameters of NODE. */
2756 static void
2757 ipa_analyze_controlled_uses (struct cgraph_node *node)
2759 class ipa_node_params *info = IPA_NODE_REF (node);
2761 for (int i = 0; i < ipa_get_param_count (info); i++)
2763 tree parm = ipa_get_param (info, i);
2764 int controlled_uses = 0;
2766 /* For SSA regs see if parameter is used. For non-SSA we compute
2767 the flag during modification analysis. */
2768 if (is_gimple_reg (parm))
2770 tree ddef = ssa_default_def (DECL_STRUCT_FUNCTION (node->decl),
2771 parm);
2772 if (ddef && !has_zero_uses (ddef))
2774 imm_use_iterator imm_iter;
2775 use_operand_p use_p;
2777 ipa_set_param_used (info, i, true);
2778 FOR_EACH_IMM_USE_FAST (use_p, imm_iter, ddef)
2779 if (!is_gimple_call (USE_STMT (use_p)))
2781 if (!is_gimple_debug (USE_STMT (use_p)))
2783 controlled_uses = IPA_UNDESCRIBED_USE;
2784 break;
2787 else
2788 controlled_uses++;
2790 else
2791 controlled_uses = 0;
2793 else
2794 controlled_uses = IPA_UNDESCRIBED_USE;
2795 ipa_set_controlled_uses (info, i, controlled_uses);
2799 /* Free stuff in BI. */
2801 static void
2802 free_ipa_bb_info (struct ipa_bb_info *bi)
2804 bi->cg_edges.release ();
2805 bi->param_aa_statuses.release ();
2808 /* Dominator walker driving the analysis. */
2810 class analysis_dom_walker : public dom_walker
2812 public:
2813 analysis_dom_walker (struct ipa_func_body_info *fbi)
2814 : dom_walker (CDI_DOMINATORS), m_fbi (fbi) {}
2816 virtual edge before_dom_children (basic_block);
2818 private:
2819 struct ipa_func_body_info *m_fbi;
2822 edge
2823 analysis_dom_walker::before_dom_children (basic_block bb)
2825 ipa_analyze_params_uses_in_bb (m_fbi, bb);
2826 ipa_compute_jump_functions_for_bb (m_fbi, bb);
2827 return NULL;
2830 /* Release body info FBI. */
2832 void
2833 ipa_release_body_info (struct ipa_func_body_info *fbi)
2835 int i;
2836 struct ipa_bb_info *bi;
2838 FOR_EACH_VEC_ELT (fbi->bb_infos, i, bi)
2839 free_ipa_bb_info (bi);
2840 fbi->bb_infos.release ();
2843 /* Initialize the array describing properties of formal parameters
2844 of NODE, analyze their uses and compute jump functions associated
2845 with actual arguments of calls from within NODE. */
2847 void
2848 ipa_analyze_node (struct cgraph_node *node)
2850 struct ipa_func_body_info fbi;
2851 class ipa_node_params *info;
2853 ipa_check_create_node_params ();
2854 ipa_check_create_edge_args ();
2855 info = IPA_NODE_REF_GET_CREATE (node);
2857 if (info->analysis_done)
2858 return;
2859 info->analysis_done = 1;
2861 if (ipa_func_spec_opts_forbid_analysis_p (node))
2863 for (int i = 0; i < ipa_get_param_count (info); i++)
2865 ipa_set_param_used (info, i, true);
2866 ipa_set_controlled_uses (info, i, IPA_UNDESCRIBED_USE);
2868 return;
2871 struct function *func = DECL_STRUCT_FUNCTION (node->decl);
2872 push_cfun (func);
2873 calculate_dominance_info (CDI_DOMINATORS);
2874 ipa_initialize_node_params (node);
2875 ipa_analyze_controlled_uses (node);
2877 fbi.node = node;
2878 fbi.info = IPA_NODE_REF (node);
2879 fbi.bb_infos = vNULL;
2880 fbi.bb_infos.safe_grow_cleared (last_basic_block_for_fn (cfun));
2881 fbi.param_count = ipa_get_param_count (info);
2882 fbi.aa_walk_budget = opt_for_fn (node->decl, param_ipa_max_aa_steps);
2884 for (struct cgraph_edge *cs = node->callees; cs; cs = cs->next_callee)
2886 ipa_bb_info *bi = ipa_get_bb_info (&fbi, gimple_bb (cs->call_stmt));
2887 bi->cg_edges.safe_push (cs);
2890 for (struct cgraph_edge *cs = node->indirect_calls; cs; cs = cs->next_callee)
2892 ipa_bb_info *bi = ipa_get_bb_info (&fbi, gimple_bb (cs->call_stmt));
2893 bi->cg_edges.safe_push (cs);
2896 analysis_dom_walker (&fbi).walk (ENTRY_BLOCK_PTR_FOR_FN (cfun));
2898 ipa_release_body_info (&fbi);
2899 free_dominance_info (CDI_DOMINATORS);
2900 pop_cfun ();
2903 /* Update the jump functions associated with call graph edge E when the call
2904 graph edge CS is being inlined, assuming that E->caller is already (possibly
2905 indirectly) inlined into CS->callee and that E has not been inlined. */
2907 static void
2908 update_jump_functions_after_inlining (struct cgraph_edge *cs,
2909 struct cgraph_edge *e)
2911 class ipa_edge_args *top = IPA_EDGE_REF (cs);
2912 class ipa_edge_args *args = IPA_EDGE_REF (e);
2913 if (!args)
2914 return;
2915 int count = ipa_get_cs_argument_count (args);
2916 int i;
2918 for (i = 0; i < count; i++)
2920 struct ipa_jump_func *dst = ipa_get_ith_jump_func (args, i);
2921 class ipa_polymorphic_call_context *dst_ctx
2922 = ipa_get_ith_polymorhic_call_context (args, i);
2924 if (dst->agg.items)
2926 struct ipa_agg_jf_item *item;
2927 int j;
2929 FOR_EACH_VEC_ELT (*dst->agg.items, j, item)
2931 int dst_fid;
2932 struct ipa_jump_func *src;
2934 if (item->jftype != IPA_JF_PASS_THROUGH
2935 && item->jftype != IPA_JF_LOAD_AGG)
2936 continue;
2938 dst_fid = item->value.pass_through.formal_id;
2939 if (!top || dst_fid >= ipa_get_cs_argument_count (top))
2941 item->jftype = IPA_JF_UNKNOWN;
2942 continue;
2945 item->value.pass_through.formal_id = -1;
2946 src = ipa_get_ith_jump_func (top, dst_fid);
2947 if (src->type == IPA_JF_CONST)
2949 if (item->jftype == IPA_JF_PASS_THROUGH
2950 && item->value.pass_through.operation == NOP_EXPR)
2952 item->jftype = IPA_JF_CONST;
2953 item->value.constant = src->value.constant.value;
2954 continue;
2957 else if (src->type == IPA_JF_PASS_THROUGH
2958 && src->value.pass_through.operation == NOP_EXPR)
2960 if (item->jftype == IPA_JF_PASS_THROUGH
2961 || !item->value.load_agg.by_ref
2962 || src->value.pass_through.agg_preserved)
2963 item->value.pass_through.formal_id
2964 = src->value.pass_through.formal_id;
2966 else if (src->type == IPA_JF_ANCESTOR)
2968 if (item->jftype == IPA_JF_PASS_THROUGH)
2970 if (!src->value.ancestor.offset)
2971 item->value.pass_through.formal_id
2972 = src->value.ancestor.formal_id;
2974 else if (src->value.ancestor.agg_preserved)
2976 gcc_checking_assert (item->value.load_agg.by_ref);
2978 item->value.pass_through.formal_id
2979 = src->value.ancestor.formal_id;
2980 item->value.load_agg.offset
2981 += src->value.ancestor.offset;
2985 if (item->value.pass_through.formal_id < 0)
2986 item->jftype = IPA_JF_UNKNOWN;
2990 if (!top)
2992 ipa_set_jf_unknown (dst);
2993 continue;
2996 if (dst->type == IPA_JF_ANCESTOR)
2998 struct ipa_jump_func *src;
2999 int dst_fid = dst->value.ancestor.formal_id;
3000 class ipa_polymorphic_call_context *src_ctx
3001 = ipa_get_ith_polymorhic_call_context (top, dst_fid);
3003 /* Variable number of arguments can cause havoc if we try to access
3004 one that does not exist in the inlined edge. So make sure we
3005 don't. */
3006 if (dst_fid >= ipa_get_cs_argument_count (top))
3008 ipa_set_jf_unknown (dst);
3009 continue;
3012 src = ipa_get_ith_jump_func (top, dst_fid);
3014 if (src_ctx && !src_ctx->useless_p ())
3016 class ipa_polymorphic_call_context ctx = *src_ctx;
3018 /* TODO: Make type preserved safe WRT contexts. */
3019 if (!ipa_get_jf_ancestor_type_preserved (dst))
3020 ctx.possible_dynamic_type_change (e->in_polymorphic_cdtor);
3021 ctx.offset_by (dst->value.ancestor.offset);
3022 if (!ctx.useless_p ())
3024 if (!dst_ctx)
3026 vec_safe_grow_cleared (args->polymorphic_call_contexts,
3027 count);
3028 dst_ctx = ipa_get_ith_polymorhic_call_context (args, i);
3031 dst_ctx->combine_with (ctx);
3035 /* Parameter and argument in ancestor jump function must be pointer
3036 type, which means access to aggregate must be by-reference. */
3037 gcc_assert (!src->agg.items || src->agg.by_ref);
3039 if (src->agg.items && dst->value.ancestor.agg_preserved)
3041 struct ipa_agg_jf_item *item;
3042 int j;
3044 /* Currently we do not produce clobber aggregate jump functions,
3045 replace with merging when we do. */
3046 gcc_assert (!dst->agg.items);
3048 dst->agg.items = vec_safe_copy (src->agg.items);
3049 dst->agg.by_ref = src->agg.by_ref;
3050 FOR_EACH_VEC_SAFE_ELT (dst->agg.items, j, item)
3051 item->offset -= dst->value.ancestor.offset;
3054 if (src->type == IPA_JF_PASS_THROUGH
3055 && src->value.pass_through.operation == NOP_EXPR)
3057 dst->value.ancestor.formal_id = src->value.pass_through.formal_id;
3058 dst->value.ancestor.agg_preserved &=
3059 src->value.pass_through.agg_preserved;
3061 else if (src->type == IPA_JF_ANCESTOR)
3063 dst->value.ancestor.formal_id = src->value.ancestor.formal_id;
3064 dst->value.ancestor.offset += src->value.ancestor.offset;
3065 dst->value.ancestor.agg_preserved &=
3066 src->value.ancestor.agg_preserved;
3068 else
3069 ipa_set_jf_unknown (dst);
3071 else if (dst->type == IPA_JF_PASS_THROUGH)
3073 struct ipa_jump_func *src;
3074 /* We must check range due to calls with variable number of arguments
3075 and we cannot combine jump functions with operations. */
3076 if (dst->value.pass_through.operation == NOP_EXPR
3077 && (top && dst->value.pass_through.formal_id
3078 < ipa_get_cs_argument_count (top)))
3080 int dst_fid = dst->value.pass_through.formal_id;
3081 src = ipa_get_ith_jump_func (top, dst_fid);
3082 bool dst_agg_p = ipa_get_jf_pass_through_agg_preserved (dst);
3083 class ipa_polymorphic_call_context *src_ctx
3084 = ipa_get_ith_polymorhic_call_context (top, dst_fid);
3086 if (src_ctx && !src_ctx->useless_p ())
3088 class ipa_polymorphic_call_context ctx = *src_ctx;
3090 /* TODO: Make type preserved safe WRT contexts. */
3091 if (!ipa_get_jf_pass_through_type_preserved (dst))
3092 ctx.possible_dynamic_type_change (e->in_polymorphic_cdtor);
3093 if (!ctx.useless_p ())
3095 if (!dst_ctx)
3097 vec_safe_grow_cleared (args->polymorphic_call_contexts,
3098 count);
3099 dst_ctx = ipa_get_ith_polymorhic_call_context (args, i);
3101 dst_ctx->combine_with (ctx);
3104 switch (src->type)
3106 case IPA_JF_UNKNOWN:
3107 ipa_set_jf_unknown (dst);
3108 break;
3109 case IPA_JF_CONST:
3110 ipa_set_jf_cst_copy (dst, src);
3111 break;
3113 case IPA_JF_PASS_THROUGH:
3115 int formal_id = ipa_get_jf_pass_through_formal_id (src);
3116 enum tree_code operation;
3117 operation = ipa_get_jf_pass_through_operation (src);
3119 if (operation == NOP_EXPR)
3121 bool agg_p;
3122 agg_p = dst_agg_p
3123 && ipa_get_jf_pass_through_agg_preserved (src);
3124 ipa_set_jf_simple_pass_through (dst, formal_id, agg_p);
3126 else if (TREE_CODE_CLASS (operation) == tcc_unary)
3127 ipa_set_jf_unary_pass_through (dst, formal_id, operation);
3128 else
3130 tree operand = ipa_get_jf_pass_through_operand (src);
3131 ipa_set_jf_arith_pass_through (dst, formal_id, operand,
3132 operation);
3134 break;
3136 case IPA_JF_ANCESTOR:
3138 bool agg_p;
3139 agg_p = dst_agg_p
3140 && ipa_get_jf_ancestor_agg_preserved (src);
3141 ipa_set_ancestor_jf (dst,
3142 ipa_get_jf_ancestor_offset (src),
3143 ipa_get_jf_ancestor_formal_id (src),
3144 agg_p);
3145 break;
3147 default:
3148 gcc_unreachable ();
3151 if (src->agg.items
3152 && (dst_agg_p || !src->agg.by_ref))
3154 /* Currently we do not produce clobber aggregate jump
3155 functions, replace with merging when we do. */
3156 gcc_assert (!dst->agg.items);
3158 dst->agg.by_ref = src->agg.by_ref;
3159 dst->agg.items = vec_safe_copy (src->agg.items);
3162 else
3163 ipa_set_jf_unknown (dst);
3168 /* If TARGET is an addr_expr of a function declaration, make it the
3169 (SPECULATIVE)destination of an indirect edge IE and return the edge.
3170 Otherwise, return NULL. */
3172 struct cgraph_edge *
3173 ipa_make_edge_direct_to_target (struct cgraph_edge *ie, tree target,
3174 bool speculative)
3176 struct cgraph_node *callee;
3177 bool unreachable = false;
3179 if (TREE_CODE (target) == ADDR_EXPR)
3180 target = TREE_OPERAND (target, 0);
3181 if (TREE_CODE (target) != FUNCTION_DECL)
3183 target = canonicalize_constructor_val (target, NULL);
3184 if (!target || TREE_CODE (target) != FUNCTION_DECL)
3186 /* Member pointer call that goes through a VMT lookup. */
3187 if (ie->indirect_info->member_ptr
3188 /* Or if target is not an invariant expression and we do not
3189 know if it will evaulate to function at runtime.
3190 This can happen when folding through &VAR, where &VAR
3191 is IP invariant, but VAR itself is not.
3193 TODO: Revisit this when GCC 5 is branched. It seems that
3194 member_ptr check is not needed and that we may try to fold
3195 the expression and see if VAR is readonly. */
3196 || !is_gimple_ip_invariant (target))
3198 if (dump_enabled_p ())
3200 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS, ie->call_stmt,
3201 "discovered direct call non-invariant %s\n",
3202 ie->caller->dump_name ());
3204 return NULL;
3208 if (dump_enabled_p ())
3210 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS, ie->call_stmt,
3211 "discovered direct call to non-function in %s, "
3212 "making it __builtin_unreachable\n",
3213 ie->caller->dump_name ());
3216 target = builtin_decl_implicit (BUILT_IN_UNREACHABLE);
3217 callee = cgraph_node::get_create (target);
3218 unreachable = true;
3220 else
3221 callee = cgraph_node::get (target);
3223 else
3224 callee = cgraph_node::get (target);
3226 /* Because may-edges are not explicitely represented and vtable may be external,
3227 we may create the first reference to the object in the unit. */
3228 if (!callee || callee->inlined_to)
3231 /* We are better to ensure we can refer to it.
3232 In the case of static functions we are out of luck, since we already
3233 removed its body. In the case of public functions we may or may
3234 not introduce the reference. */
3235 if (!canonicalize_constructor_val (target, NULL)
3236 || !TREE_PUBLIC (target))
3238 if (dump_file)
3239 fprintf (dump_file, "ipa-prop: Discovered call to a known target "
3240 "(%s -> %s) but cannot refer to it. Giving up.\n",
3241 ie->caller->dump_name (),
3242 ie->callee->dump_name ());
3243 return NULL;
3245 callee = cgraph_node::get_create (target);
3248 /* If the edge is already speculated. */
3249 if (speculative && ie->speculative)
3251 struct cgraph_edge *e2;
3252 struct ipa_ref *ref;
3253 ie->speculative_call_info (e2, ie, ref);
3254 if (e2->callee->ultimate_alias_target ()
3255 != callee->ultimate_alias_target ())
3257 if (dump_file)
3258 fprintf (dump_file, "ipa-prop: Discovered call to a speculative "
3259 "target (%s -> %s) but the call is already "
3260 "speculated to %s. Giving up.\n",
3261 ie->caller->dump_name (), callee->dump_name (),
3262 e2->callee->dump_name ());
3264 else
3266 if (dump_file)
3267 fprintf (dump_file, "ipa-prop: Discovered call to a speculative target "
3268 "(%s -> %s) this agree with previous speculation.\n",
3269 ie->caller->dump_name (), callee->dump_name ());
3271 return NULL;
3274 if (!dbg_cnt (devirt))
3275 return NULL;
3277 ipa_check_create_node_params ();
3279 /* We cannot make edges to inline clones. It is bug that someone removed
3280 the cgraph node too early. */
3281 gcc_assert (!callee->inlined_to);
3283 if (dump_file && !unreachable)
3285 fprintf (dump_file, "ipa-prop: Discovered %s call to a %s target "
3286 "(%s -> %s), for stmt ",
3287 ie->indirect_info->polymorphic ? "a virtual" : "an indirect",
3288 speculative ? "speculative" : "known",
3289 ie->caller->dump_name (),
3290 callee->dump_name ());
3291 if (ie->call_stmt)
3292 print_gimple_stmt (dump_file, ie->call_stmt, 2, TDF_SLIM);
3293 else
3294 fprintf (dump_file, "with uid %i\n", ie->lto_stmt_uid);
3296 if (dump_enabled_p ())
3298 dump_printf_loc (MSG_OPTIMIZED_LOCATIONS, ie->call_stmt,
3299 "converting indirect call in %s to direct call to %s\n",
3300 ie->caller->dump_name (), callee->dump_name ());
3302 if (!speculative)
3304 struct cgraph_edge *orig = ie;
3305 ie = cgraph_edge::make_direct (ie, callee);
3306 /* If we resolved speculative edge the cost is already up to date
3307 for direct call (adjusted by inline_edge_duplication_hook). */
3308 if (ie == orig)
3310 ipa_call_summary *es = ipa_call_summaries->get (ie);
3311 es->call_stmt_size -= (eni_size_weights.indirect_call_cost
3312 - eni_size_weights.call_cost);
3313 es->call_stmt_time -= (eni_time_weights.indirect_call_cost
3314 - eni_time_weights.call_cost);
3317 else
3319 if (!callee->can_be_discarded_p ())
3321 cgraph_node *alias;
3322 alias = dyn_cast<cgraph_node *> (callee->noninterposable_alias ());
3323 if (alias)
3324 callee = alias;
3326 /* make_speculative will update ie's cost to direct call cost. */
3327 ie = ie->make_speculative
3328 (callee, ie->count.apply_scale (8, 10));
3331 return ie;
3334 /* Attempt to locate an interprocedural constant at a given REQ_OFFSET in
3335 CONSTRUCTOR and return it. Return NULL if the search fails for some
3336 reason. */
3338 static tree
3339 find_constructor_constant_at_offset (tree constructor, HOST_WIDE_INT req_offset)
3341 tree type = TREE_TYPE (constructor);
3342 if (TREE_CODE (type) != ARRAY_TYPE
3343 && TREE_CODE (type) != RECORD_TYPE)
3344 return NULL;
3346 unsigned ix;
3347 tree index, val;
3348 FOR_EACH_CONSTRUCTOR_ELT (CONSTRUCTOR_ELTS (constructor), ix, index, val)
3350 HOST_WIDE_INT elt_offset;
3351 if (TREE_CODE (type) == ARRAY_TYPE)
3353 offset_int off;
3354 tree unit_size = TYPE_SIZE_UNIT (TREE_TYPE (type));
3355 gcc_assert (TREE_CODE (unit_size) == INTEGER_CST);
3357 if (index)
3359 if (TREE_CODE (index) == RANGE_EXPR)
3360 off = wi::to_offset (TREE_OPERAND (index, 0));
3361 else
3362 off = wi::to_offset (index);
3363 if (TYPE_DOMAIN (type) && TYPE_MIN_VALUE (TYPE_DOMAIN (type)))
3365 tree low_bound = TYPE_MIN_VALUE (TYPE_DOMAIN (type));
3366 gcc_assert (TREE_CODE (unit_size) == INTEGER_CST);
3367 off = wi::sext (off - wi::to_offset (low_bound),
3368 TYPE_PRECISION (TREE_TYPE (index)));
3370 off *= wi::to_offset (unit_size);
3371 /* ??? Handle more than just the first index of a
3372 RANGE_EXPR. */
3374 else
3375 off = wi::to_offset (unit_size) * ix;
3377 off = wi::lshift (off, LOG2_BITS_PER_UNIT);
3378 if (!wi::fits_shwi_p (off) || wi::neg_p (off))
3379 continue;
3380 elt_offset = off.to_shwi ();
3382 else if (TREE_CODE (type) == RECORD_TYPE)
3384 gcc_checking_assert (index && TREE_CODE (index) == FIELD_DECL);
3385 if (DECL_BIT_FIELD (index))
3386 continue;
3387 elt_offset = int_bit_position (index);
3389 else
3390 gcc_unreachable ();
3392 if (elt_offset > req_offset)
3393 return NULL;
3395 if (TREE_CODE (val) == CONSTRUCTOR)
3396 return find_constructor_constant_at_offset (val,
3397 req_offset - elt_offset);
3399 if (elt_offset == req_offset
3400 && is_gimple_reg_type (TREE_TYPE (val))
3401 && is_gimple_ip_invariant (val))
3402 return val;
3404 return NULL;
3407 /* Check whether SCALAR could be used to look up an aggregate interprocedural
3408 invariant from a static constructor and if so, return it. Otherwise return
3409 NULL. */
3411 static tree
3412 ipa_find_agg_cst_from_init (tree scalar, HOST_WIDE_INT offset, bool by_ref)
3414 if (by_ref)
3416 if (TREE_CODE (scalar) != ADDR_EXPR)
3417 return NULL;
3418 scalar = TREE_OPERAND (scalar, 0);
3421 if (!VAR_P (scalar)
3422 || !is_global_var (scalar)
3423 || !TREE_READONLY (scalar)
3424 || !DECL_INITIAL (scalar)
3425 || TREE_CODE (DECL_INITIAL (scalar)) != CONSTRUCTOR)
3426 return NULL;
3428 return find_constructor_constant_at_offset (DECL_INITIAL (scalar), offset);
3431 /* Retrieve value from AGG, a set of known offset/value for an aggregate or
3432 static initializer of SCALAR (which can be NULL) for the given OFFSET or
3433 return NULL if there is none. BY_REF specifies whether the value has to be
3434 passed by reference or by value. If FROM_GLOBAL_CONSTANT is non-NULL, then
3435 the boolean it points to is set to true if the value comes from an
3436 initializer of a constant. */
3438 tree
3439 ipa_find_agg_cst_for_param (struct ipa_agg_value_set *agg, tree scalar,
3440 HOST_WIDE_INT offset, bool by_ref,
3441 bool *from_global_constant)
3443 struct ipa_agg_value *item;
3444 int i;
3446 if (scalar)
3448 tree res = ipa_find_agg_cst_from_init (scalar, offset, by_ref);
3449 if (res)
3451 if (from_global_constant)
3452 *from_global_constant = true;
3453 return res;
3457 if (!agg
3458 || by_ref != agg->by_ref)
3459 return NULL;
3461 FOR_EACH_VEC_ELT (agg->items, i, item)
3462 if (item->offset == offset)
3464 /* Currently we do not have clobber values, return NULL for them once
3465 we do. */
3466 gcc_checking_assert (is_gimple_ip_invariant (item->value));
3467 if (from_global_constant)
3468 *from_global_constant = false;
3469 return item->value;
3471 return NULL;
3474 /* Remove a reference to SYMBOL from the list of references of a node given by
3475 reference description RDESC. Return true if the reference has been
3476 successfully found and removed. */
3478 static bool
3479 remove_described_reference (symtab_node *symbol, struct ipa_cst_ref_desc *rdesc)
3481 struct ipa_ref *to_del;
3482 struct cgraph_edge *origin;
3484 origin = rdesc->cs;
3485 if (!origin)
3486 return false;
3487 to_del = origin->caller->find_reference (symbol, origin->call_stmt,
3488 origin->lto_stmt_uid);
3489 if (!to_del)
3490 return false;
3492 to_del->remove_reference ();
3493 if (dump_file)
3494 fprintf (dump_file, "ipa-prop: Removed a reference from %s to %s.\n",
3495 origin->caller->dump_name (), symbol->dump_name ());
3496 return true;
3499 /* If JFUNC has a reference description with refcount different from
3500 IPA_UNDESCRIBED_USE, return the reference description, otherwise return
3501 NULL. JFUNC must be a constant jump function. */
3503 static struct ipa_cst_ref_desc *
3504 jfunc_rdesc_usable (struct ipa_jump_func *jfunc)
3506 struct ipa_cst_ref_desc *rdesc = ipa_get_jf_constant_rdesc (jfunc);
3507 if (rdesc && rdesc->refcount != IPA_UNDESCRIBED_USE)
3508 return rdesc;
3509 else
3510 return NULL;
3513 /* If the value of constant jump function JFUNC is an address of a function
3514 declaration, return the associated call graph node. Otherwise return
3515 NULL. */
3517 static cgraph_node *
3518 cgraph_node_for_jfunc (struct ipa_jump_func *jfunc)
3520 gcc_checking_assert (jfunc->type == IPA_JF_CONST);
3521 tree cst = ipa_get_jf_constant (jfunc);
3522 if (TREE_CODE (cst) != ADDR_EXPR
3523 || TREE_CODE (TREE_OPERAND (cst, 0)) != FUNCTION_DECL)
3524 return NULL;
3526 return cgraph_node::get (TREE_OPERAND (cst, 0));
3530 /* If JFUNC is a constant jump function with a usable rdesc, decrement its
3531 refcount and if it hits zero, remove reference to SYMBOL from the caller of
3532 the edge specified in the rdesc. Return false if either the symbol or the
3533 reference could not be found, otherwise return true. */
3535 static bool
3536 try_decrement_rdesc_refcount (struct ipa_jump_func *jfunc)
3538 struct ipa_cst_ref_desc *rdesc;
3539 if (jfunc->type == IPA_JF_CONST
3540 && (rdesc = jfunc_rdesc_usable (jfunc))
3541 && --rdesc->refcount == 0)
3543 symtab_node *symbol = cgraph_node_for_jfunc (jfunc);
3544 if (!symbol)
3545 return false;
3547 return remove_described_reference (symbol, rdesc);
3549 return true;
3552 /* Try to find a destination for indirect edge IE that corresponds to a simple
3553 call or a call of a member function pointer and where the destination is a
3554 pointer formal parameter described by jump function JFUNC. TARGET_TYPE is
3555 the type of the parameter to which the result of JFUNC is passed. If it can
3556 be determined, return the newly direct edge, otherwise return NULL.
3557 NEW_ROOT and NEW_ROOT_INFO is the node and its info that JFUNC lattices are
3558 relative to. */
3560 static struct cgraph_edge *
3561 try_make_edge_direct_simple_call (struct cgraph_edge *ie,
3562 struct ipa_jump_func *jfunc, tree target_type,
3563 struct cgraph_node *new_root,
3564 class ipa_node_params *new_root_info)
3566 struct cgraph_edge *cs;
3567 tree target;
3568 bool agg_contents = ie->indirect_info->agg_contents;
3569 tree scalar = ipa_value_from_jfunc (new_root_info, jfunc, target_type);
3570 if (agg_contents)
3572 bool from_global_constant;
3573 ipa_agg_value_set agg = ipa_agg_value_set_from_jfunc (new_root_info,
3574 new_root,
3575 &jfunc->agg);
3576 target = ipa_find_agg_cst_for_param (&agg, scalar,
3577 ie->indirect_info->offset,
3578 ie->indirect_info->by_ref,
3579 &from_global_constant);
3580 agg.release ();
3581 if (target
3582 && !from_global_constant
3583 && !ie->indirect_info->guaranteed_unmodified)
3584 return NULL;
3586 else
3587 target = scalar;
3588 if (!target)
3589 return NULL;
3590 cs = ipa_make_edge_direct_to_target (ie, target);
3592 if (cs && !agg_contents)
3594 bool ok;
3595 gcc_checking_assert (cs->callee
3596 && (cs != ie
3597 || jfunc->type != IPA_JF_CONST
3598 || !cgraph_node_for_jfunc (jfunc)
3599 || cs->callee == cgraph_node_for_jfunc (jfunc)));
3600 ok = try_decrement_rdesc_refcount (jfunc);
3601 gcc_checking_assert (ok);
3604 return cs;
3607 /* Return the target to be used in cases of impossible devirtualization. IE
3608 and target (the latter can be NULL) are dumped when dumping is enabled. */
3610 tree
3611 ipa_impossible_devirt_target (struct cgraph_edge *ie, tree target)
3613 if (dump_file)
3615 if (target)
3616 fprintf (dump_file,
3617 "Type inconsistent devirtualization: %s->%s\n",
3618 ie->caller->dump_name (),
3619 IDENTIFIER_POINTER (DECL_ASSEMBLER_NAME (target)));
3620 else
3621 fprintf (dump_file,
3622 "No devirtualization target in %s\n",
3623 ie->caller->dump_name ());
3625 tree new_target = builtin_decl_implicit (BUILT_IN_UNREACHABLE);
3626 cgraph_node::get_create (new_target);
3627 return new_target;
3630 /* Try to find a destination for indirect edge IE that corresponds to a virtual
3631 call based on a formal parameter which is described by jump function JFUNC
3632 and if it can be determined, make it direct and return the direct edge.
3633 Otherwise, return NULL. CTX describes the polymorphic context that the
3634 parameter the call is based on brings along with it. NEW_ROOT and
3635 NEW_ROOT_INFO is the node and its info that JFUNC lattices are relative
3636 to. */
3638 static struct cgraph_edge *
3639 try_make_edge_direct_virtual_call (struct cgraph_edge *ie,
3640 struct ipa_jump_func *jfunc,
3641 class ipa_polymorphic_call_context ctx,
3642 struct cgraph_node *new_root,
3643 class ipa_node_params *new_root_info)
3645 tree target = NULL;
3646 bool speculative = false;
3648 if (!opt_for_fn (ie->caller->decl, flag_devirtualize))
3649 return NULL;
3651 gcc_assert (!ie->indirect_info->by_ref);
3653 /* Try to do lookup via known virtual table pointer value. */
3654 if (!ie->indirect_info->vptr_changed
3655 || opt_for_fn (ie->caller->decl, flag_devirtualize_speculatively))
3657 tree vtable;
3658 unsigned HOST_WIDE_INT offset;
3659 tree scalar = (jfunc->type == IPA_JF_CONST) ? ipa_get_jf_constant (jfunc)
3660 : NULL;
3661 ipa_agg_value_set agg = ipa_agg_value_set_from_jfunc (new_root_info,
3662 new_root,
3663 &jfunc->agg);
3664 tree t = ipa_find_agg_cst_for_param (&agg, scalar,
3665 ie->indirect_info->offset,
3666 true);
3667 agg.release ();
3668 if (t && vtable_pointer_value_to_vtable (t, &vtable, &offset))
3670 bool can_refer;
3671 t = gimple_get_virt_method_for_vtable (ie->indirect_info->otr_token,
3672 vtable, offset, &can_refer);
3673 if (can_refer)
3675 if (!t
3676 || fndecl_built_in_p (t, BUILT_IN_UNREACHABLE)
3677 || !possible_polymorphic_call_target_p
3678 (ie, cgraph_node::get (t)))
3680 /* Do not speculate builtin_unreachable, it is stupid! */
3681 if (!ie->indirect_info->vptr_changed)
3682 target = ipa_impossible_devirt_target (ie, target);
3683 else
3684 target = NULL;
3686 else
3688 target = t;
3689 speculative = ie->indirect_info->vptr_changed;
3695 ipa_polymorphic_call_context ie_context (ie);
3696 vec <cgraph_node *>targets;
3697 bool final;
3699 ctx.offset_by (ie->indirect_info->offset);
3700 if (ie->indirect_info->vptr_changed)
3701 ctx.possible_dynamic_type_change (ie->in_polymorphic_cdtor,
3702 ie->indirect_info->otr_type);
3703 ctx.combine_with (ie_context, ie->indirect_info->otr_type);
3704 targets = possible_polymorphic_call_targets
3705 (ie->indirect_info->otr_type,
3706 ie->indirect_info->otr_token,
3707 ctx, &final);
3708 if (final && targets.length () <= 1)
3710 speculative = false;
3711 if (targets.length () == 1)
3712 target = targets[0]->decl;
3713 else
3714 target = ipa_impossible_devirt_target (ie, NULL_TREE);
3716 else if (!target && opt_for_fn (ie->caller->decl, flag_devirtualize_speculatively)
3717 && !ie->speculative && ie->maybe_hot_p ())
3719 cgraph_node *n;
3720 n = try_speculative_devirtualization (ie->indirect_info->otr_type,
3721 ie->indirect_info->otr_token,
3722 ie->indirect_info->context);
3723 if (n)
3725 target = n->decl;
3726 speculative = true;
3730 if (target)
3732 if (!possible_polymorphic_call_target_p
3733 (ie, cgraph_node::get_create (target)))
3735 if (speculative)
3736 return NULL;
3737 target = ipa_impossible_devirt_target (ie, target);
3739 return ipa_make_edge_direct_to_target (ie, target, speculative);
3741 else
3742 return NULL;
3745 /* Update the param called notes associated with NODE when CS is being inlined,
3746 assuming NODE is (potentially indirectly) inlined into CS->callee.
3747 Moreover, if the callee is discovered to be constant, create a new cgraph
3748 edge for it. Newly discovered indirect edges will be added to *NEW_EDGES,
3749 unless NEW_EDGES is NULL. Return true iff a new edge(s) were created. */
3751 static bool
3752 update_indirect_edges_after_inlining (struct cgraph_edge *cs,
3753 struct cgraph_node *node,
3754 vec<cgraph_edge *> *new_edges)
3756 class ipa_edge_args *top;
3757 struct cgraph_edge *ie, *next_ie, *new_direct_edge;
3758 struct cgraph_node *new_root;
3759 class ipa_node_params *new_root_info, *inlined_node_info;
3760 bool res = false;
3762 ipa_check_create_edge_args ();
3763 top = IPA_EDGE_REF (cs);
3764 new_root = cs->caller->inlined_to
3765 ? cs->caller->inlined_to : cs->caller;
3766 new_root_info = IPA_NODE_REF (new_root);
3767 inlined_node_info = IPA_NODE_REF (cs->callee->function_symbol ());
3769 for (ie = node->indirect_calls; ie; ie = next_ie)
3771 class cgraph_indirect_call_info *ici = ie->indirect_info;
3772 struct ipa_jump_func *jfunc;
3773 int param_index;
3774 cgraph_node *spec_target = NULL;
3776 next_ie = ie->next_callee;
3778 if (ici->param_index == -1)
3779 continue;
3781 /* We must check range due to calls with variable number of arguments: */
3782 if (!top || ici->param_index >= ipa_get_cs_argument_count (top))
3784 ici->param_index = -1;
3785 continue;
3788 param_index = ici->param_index;
3789 jfunc = ipa_get_ith_jump_func (top, param_index);
3791 if (ie->speculative)
3793 struct cgraph_edge *de;
3794 struct ipa_ref *ref;
3795 ie->speculative_call_info (de, ie, ref);
3796 spec_target = de->callee;
3799 if (!opt_for_fn (node->decl, flag_indirect_inlining))
3800 new_direct_edge = NULL;
3801 else if (ici->polymorphic)
3803 ipa_polymorphic_call_context ctx;
3804 ctx = ipa_context_from_jfunc (new_root_info, cs, param_index, jfunc);
3805 new_direct_edge = try_make_edge_direct_virtual_call (ie, jfunc, ctx,
3806 new_root,
3807 new_root_info);
3809 else
3811 tree target_type = ipa_get_type (inlined_node_info, param_index);
3812 new_direct_edge = try_make_edge_direct_simple_call (ie, jfunc,
3813 target_type,
3814 new_root,
3815 new_root_info);
3818 /* If speculation was removed, then we need to do nothing. */
3819 if (new_direct_edge && new_direct_edge != ie
3820 && new_direct_edge->callee == spec_target)
3822 new_direct_edge->indirect_inlining_edge = 1;
3823 top = IPA_EDGE_REF (cs);
3824 res = true;
3825 if (!new_direct_edge->speculative)
3826 continue;
3828 else if (new_direct_edge)
3830 new_direct_edge->indirect_inlining_edge = 1;
3831 if (new_edges)
3833 new_edges->safe_push (new_direct_edge);
3834 res = true;
3836 top = IPA_EDGE_REF (cs);
3837 /* If speculative edge was introduced we still need to update
3838 call info of the indirect edge. */
3839 if (!new_direct_edge->speculative)
3840 continue;
3842 if (jfunc->type == IPA_JF_PASS_THROUGH
3843 && ipa_get_jf_pass_through_operation (jfunc) == NOP_EXPR)
3845 if (ici->agg_contents
3846 && !ipa_get_jf_pass_through_agg_preserved (jfunc)
3847 && !ici->polymorphic)
3848 ici->param_index = -1;
3849 else
3851 ici->param_index = ipa_get_jf_pass_through_formal_id (jfunc);
3852 if (ici->polymorphic
3853 && !ipa_get_jf_pass_through_type_preserved (jfunc))
3854 ici->vptr_changed = true;
3855 ipa_set_param_used_by_indirect_call (new_root_info,
3856 ici->param_index, true);
3857 if (ici->polymorphic)
3858 ipa_set_param_used_by_polymorphic_call (new_root_info,
3859 ici->param_index, true);
3862 else if (jfunc->type == IPA_JF_ANCESTOR)
3864 if (ici->agg_contents
3865 && !ipa_get_jf_ancestor_agg_preserved (jfunc)
3866 && !ici->polymorphic)
3867 ici->param_index = -1;
3868 else
3870 ici->param_index = ipa_get_jf_ancestor_formal_id (jfunc);
3871 ici->offset += ipa_get_jf_ancestor_offset (jfunc);
3872 if (ici->polymorphic
3873 && !ipa_get_jf_ancestor_type_preserved (jfunc))
3874 ici->vptr_changed = true;
3875 ipa_set_param_used_by_indirect_call (new_root_info,
3876 ici->param_index, true);
3877 if (ici->polymorphic)
3878 ipa_set_param_used_by_polymorphic_call (new_root_info,
3879 ici->param_index, true);
3882 else
3883 /* Either we can find a destination for this edge now or never. */
3884 ici->param_index = -1;
3887 return res;
3890 /* Recursively traverse subtree of NODE (including node) made of inlined
3891 cgraph_edges when CS has been inlined and invoke
3892 update_indirect_edges_after_inlining on all nodes and
3893 update_jump_functions_after_inlining on all non-inlined edges that lead out
3894 of this subtree. Newly discovered indirect edges will be added to
3895 *NEW_EDGES, unless NEW_EDGES is NULL. Return true iff a new edge(s) were
3896 created. */
3898 static bool
3899 propagate_info_to_inlined_callees (struct cgraph_edge *cs,
3900 struct cgraph_node *node,
3901 vec<cgraph_edge *> *new_edges)
3903 struct cgraph_edge *e;
3904 bool res;
3906 res = update_indirect_edges_after_inlining (cs, node, new_edges);
3908 for (e = node->callees; e; e = e->next_callee)
3909 if (!e->inline_failed)
3910 res |= propagate_info_to_inlined_callees (cs, e->callee, new_edges);
3911 else
3912 update_jump_functions_after_inlining (cs, e);
3913 for (e = node->indirect_calls; e; e = e->next_callee)
3914 update_jump_functions_after_inlining (cs, e);
3916 return res;
3919 /* Combine two controlled uses counts as done during inlining. */
3921 static int
3922 combine_controlled_uses_counters (int c, int d)
3924 if (c == IPA_UNDESCRIBED_USE || d == IPA_UNDESCRIBED_USE)
3925 return IPA_UNDESCRIBED_USE;
3926 else
3927 return c + d - 1;
3930 /* Propagate number of controlled users from CS->caleee to the new root of the
3931 tree of inlined nodes. */
3933 static void
3934 propagate_controlled_uses (struct cgraph_edge *cs)
3936 class ipa_edge_args *args = IPA_EDGE_REF (cs);
3937 if (!args)
3938 return;
3939 struct cgraph_node *new_root = cs->caller->inlined_to
3940 ? cs->caller->inlined_to : cs->caller;
3941 class ipa_node_params *new_root_info = IPA_NODE_REF (new_root);
3942 class ipa_node_params *old_root_info = IPA_NODE_REF (cs->callee);
3943 int count, i;
3945 if (!old_root_info)
3946 return;
3948 count = MIN (ipa_get_cs_argument_count (args),
3949 ipa_get_param_count (old_root_info));
3950 for (i = 0; i < count; i++)
3952 struct ipa_jump_func *jf = ipa_get_ith_jump_func (args, i);
3953 struct ipa_cst_ref_desc *rdesc;
3955 if (jf->type == IPA_JF_PASS_THROUGH)
3957 int src_idx, c, d;
3958 src_idx = ipa_get_jf_pass_through_formal_id (jf);
3959 c = ipa_get_controlled_uses (new_root_info, src_idx);
3960 d = ipa_get_controlled_uses (old_root_info, i);
3962 gcc_checking_assert (ipa_get_jf_pass_through_operation (jf)
3963 == NOP_EXPR || c == IPA_UNDESCRIBED_USE);
3964 c = combine_controlled_uses_counters (c, d);
3965 ipa_set_controlled_uses (new_root_info, src_idx, c);
3966 if (c == 0 && new_root_info->ipcp_orig_node)
3968 struct cgraph_node *n;
3969 struct ipa_ref *ref;
3970 tree t = new_root_info->known_csts[src_idx];
3972 if (t && TREE_CODE (t) == ADDR_EXPR
3973 && TREE_CODE (TREE_OPERAND (t, 0)) == FUNCTION_DECL
3974 && (n = cgraph_node::get (TREE_OPERAND (t, 0)))
3975 && (ref = new_root->find_reference (n, NULL, 0)))
3977 if (dump_file)
3978 fprintf (dump_file, "ipa-prop: Removing cloning-created "
3979 "reference from %s to %s.\n",
3980 new_root->dump_name (),
3981 n->dump_name ());
3982 ref->remove_reference ();
3986 else if (jf->type == IPA_JF_CONST
3987 && (rdesc = jfunc_rdesc_usable (jf)))
3989 int d = ipa_get_controlled_uses (old_root_info, i);
3990 int c = rdesc->refcount;
3991 rdesc->refcount = combine_controlled_uses_counters (c, d);
3992 if (rdesc->refcount == 0)
3994 tree cst = ipa_get_jf_constant (jf);
3995 struct cgraph_node *n;
3996 gcc_checking_assert (TREE_CODE (cst) == ADDR_EXPR
3997 && TREE_CODE (TREE_OPERAND (cst, 0))
3998 == FUNCTION_DECL);
3999 n = cgraph_node::get (TREE_OPERAND (cst, 0));
4000 if (n)
4002 struct cgraph_node *clone;
4003 bool ok;
4004 ok = remove_described_reference (n, rdesc);
4005 gcc_checking_assert (ok);
4007 clone = cs->caller;
4008 while (clone->inlined_to
4009 && clone->ipcp_clone
4010 && clone != rdesc->cs->caller)
4012 struct ipa_ref *ref;
4013 ref = clone->find_reference (n, NULL, 0);
4014 if (ref)
4016 if (dump_file)
4017 fprintf (dump_file, "ipa-prop: Removing "
4018 "cloning-created reference "
4019 "from %s to %s.\n",
4020 clone->dump_name (),
4021 n->dump_name ());
4022 ref->remove_reference ();
4024 clone = clone->callers->caller;
4031 for (i = ipa_get_param_count (old_root_info);
4032 i < ipa_get_cs_argument_count (args);
4033 i++)
4035 struct ipa_jump_func *jf = ipa_get_ith_jump_func (args, i);
4037 if (jf->type == IPA_JF_CONST)
4039 struct ipa_cst_ref_desc *rdesc = jfunc_rdesc_usable (jf);
4040 if (rdesc)
4041 rdesc->refcount = IPA_UNDESCRIBED_USE;
4043 else if (jf->type == IPA_JF_PASS_THROUGH)
4044 ipa_set_controlled_uses (new_root_info,
4045 jf->value.pass_through.formal_id,
4046 IPA_UNDESCRIBED_USE);
4050 /* Update jump functions and call note functions on inlining the call site CS.
4051 CS is expected to lead to a node already cloned by
4052 cgraph_clone_inline_nodes. Newly discovered indirect edges will be added to
4053 *NEW_EDGES, unless NEW_EDGES is NULL. Return true iff a new edge(s) were +
4054 created. */
4056 bool
4057 ipa_propagate_indirect_call_infos (struct cgraph_edge *cs,
4058 vec<cgraph_edge *> *new_edges)
4060 bool changed;
4061 /* Do nothing if the preparation phase has not been carried out yet
4062 (i.e. during early inlining). */
4063 if (!ipa_node_params_sum)
4064 return false;
4065 gcc_assert (ipa_edge_args_sum);
4067 propagate_controlled_uses (cs);
4068 changed = propagate_info_to_inlined_callees (cs, cs->callee, new_edges);
4069 ipa_node_params_sum->remove (cs->callee);
4071 class ipa_edge_args *args = IPA_EDGE_REF (cs);
4072 if (args)
4074 bool ok = true;
4075 if (args->jump_functions)
4077 struct ipa_jump_func *jf;
4078 int i;
4079 FOR_EACH_VEC_ELT (*args->jump_functions, i, jf)
4080 if (jf->type == IPA_JF_CONST
4081 && ipa_get_jf_constant_rdesc (jf))
4083 ok = false;
4084 break;
4087 if (ok)
4088 ipa_edge_args_sum->remove (cs);
4090 if (ipcp_transformation_sum)
4091 ipcp_transformation_sum->remove (cs->callee);
4093 return changed;
4096 /* Ensure that array of edge arguments infos is big enough to accommodate a
4097 structure for all edges and reallocates it if not. Also, allocate
4098 associated hash tables is they do not already exist. */
4100 void
4101 ipa_check_create_edge_args (void)
4103 if (!ipa_edge_args_sum)
4104 ipa_edge_args_sum
4105 = (new (ggc_alloc_no_dtor<ipa_edge_args_sum_t> ())
4106 ipa_edge_args_sum_t (symtab, true));
4107 if (!ipa_bits_hash_table)
4108 ipa_bits_hash_table = hash_table<ipa_bit_ggc_hash_traits>::create_ggc (37);
4109 if (!ipa_vr_hash_table)
4110 ipa_vr_hash_table = hash_table<ipa_vr_ggc_hash_traits>::create_ggc (37);
4113 /* Free all ipa_edge structures. */
4115 void
4116 ipa_free_all_edge_args (void)
4118 if (!ipa_edge_args_sum)
4119 return;
4121 ggc_delete (ipa_edge_args_sum);
4122 ipa_edge_args_sum = NULL;
4125 /* Free all ipa_node_params structures. */
4127 void
4128 ipa_free_all_node_params (void)
4130 ggc_delete (ipa_node_params_sum);
4131 ipa_node_params_sum = NULL;
4134 /* Initialize IPA CP transformation summary and also allocate any necessary hash
4135 tables if they do not already exist. */
4137 void
4138 ipcp_transformation_initialize (void)
4140 if (!ipa_bits_hash_table)
4141 ipa_bits_hash_table = hash_table<ipa_bit_ggc_hash_traits>::create_ggc (37);
4142 if (!ipa_vr_hash_table)
4143 ipa_vr_hash_table = hash_table<ipa_vr_ggc_hash_traits>::create_ggc (37);
4144 if (ipcp_transformation_sum == NULL)
4145 ipcp_transformation_sum = ipcp_transformation_t::create_ggc (symtab);
4148 /* Release the IPA CP transformation summary. */
4150 void
4151 ipcp_free_transformation_sum (void)
4153 if (!ipcp_transformation_sum)
4154 return;
4156 ipcp_transformation_sum->~function_summary<ipcp_transformation *> ();
4157 ggc_free (ipcp_transformation_sum);
4158 ipcp_transformation_sum = NULL;
4161 /* Set the aggregate replacements of NODE to be AGGVALS. */
4163 void
4164 ipa_set_node_agg_value_chain (struct cgraph_node *node,
4165 struct ipa_agg_replacement_value *aggvals)
4167 ipcp_transformation_initialize ();
4168 ipcp_transformation *s = ipcp_transformation_sum->get_create (node);
4169 s->agg_values = aggvals;
4172 /* Hook that is called by cgraph.c when an edge is removed. Adjust reference
4173 count data structures accordingly. */
4175 void
4176 ipa_edge_args_sum_t::remove (cgraph_edge *cs, ipa_edge_args *args)
4178 if (args->jump_functions)
4180 struct ipa_jump_func *jf;
4181 int i;
4182 FOR_EACH_VEC_ELT (*args->jump_functions, i, jf)
4184 struct ipa_cst_ref_desc *rdesc;
4185 try_decrement_rdesc_refcount (jf);
4186 if (jf->type == IPA_JF_CONST
4187 && (rdesc = ipa_get_jf_constant_rdesc (jf))
4188 && rdesc->cs == cs)
4189 rdesc->cs = NULL;
4194 /* Method invoked when an edge is duplicated. Copy ipa_edge_args and adjust
4195 reference count data strucutres accordingly. */
4197 void
4198 ipa_edge_args_sum_t::duplicate (cgraph_edge *src, cgraph_edge *dst,
4199 ipa_edge_args *old_args, ipa_edge_args *new_args)
4201 unsigned int i;
4203 new_args->jump_functions = vec_safe_copy (old_args->jump_functions);
4204 if (old_args->polymorphic_call_contexts)
4205 new_args->polymorphic_call_contexts
4206 = vec_safe_copy (old_args->polymorphic_call_contexts);
4208 for (i = 0; i < vec_safe_length (old_args->jump_functions); i++)
4210 struct ipa_jump_func *src_jf = ipa_get_ith_jump_func (old_args, i);
4211 struct ipa_jump_func *dst_jf = ipa_get_ith_jump_func (new_args, i);
4213 dst_jf->agg.items = vec_safe_copy (dst_jf->agg.items);
4215 if (src_jf->type == IPA_JF_CONST)
4217 struct ipa_cst_ref_desc *src_rdesc = jfunc_rdesc_usable (src_jf);
4219 if (!src_rdesc)
4220 dst_jf->value.constant.rdesc = NULL;
4221 else if (src->caller == dst->caller)
4223 struct ipa_ref *ref;
4224 symtab_node *n = cgraph_node_for_jfunc (src_jf);
4225 gcc_checking_assert (n);
4226 ref = src->caller->find_reference (n, src->call_stmt,
4227 src->lto_stmt_uid);
4228 gcc_checking_assert (ref);
4229 dst->caller->clone_reference (ref, ref->stmt);
4231 struct ipa_cst_ref_desc *dst_rdesc = ipa_refdesc_pool.allocate ();
4232 dst_rdesc->cs = dst;
4233 dst_rdesc->refcount = src_rdesc->refcount;
4234 dst_rdesc->next_duplicate = NULL;
4235 dst_jf->value.constant.rdesc = dst_rdesc;
4237 else if (src_rdesc->cs == src)
4239 struct ipa_cst_ref_desc *dst_rdesc = ipa_refdesc_pool.allocate ();
4240 dst_rdesc->cs = dst;
4241 dst_rdesc->refcount = src_rdesc->refcount;
4242 dst_rdesc->next_duplicate = src_rdesc->next_duplicate;
4243 src_rdesc->next_duplicate = dst_rdesc;
4244 dst_jf->value.constant.rdesc = dst_rdesc;
4246 else
4248 struct ipa_cst_ref_desc *dst_rdesc;
4249 /* This can happen during inlining, when a JFUNC can refer to a
4250 reference taken in a function up in the tree of inline clones.
4251 We need to find the duplicate that refers to our tree of
4252 inline clones. */
4254 gcc_assert (dst->caller->inlined_to);
4255 for (dst_rdesc = src_rdesc->next_duplicate;
4256 dst_rdesc;
4257 dst_rdesc = dst_rdesc->next_duplicate)
4259 struct cgraph_node *top;
4260 top = dst_rdesc->cs->caller->inlined_to
4261 ? dst_rdesc->cs->caller->inlined_to
4262 : dst_rdesc->cs->caller;
4263 if (dst->caller->inlined_to == top)
4264 break;
4266 gcc_assert (dst_rdesc);
4267 dst_jf->value.constant.rdesc = dst_rdesc;
4270 else if (dst_jf->type == IPA_JF_PASS_THROUGH
4271 && src->caller == dst->caller)
4273 struct cgraph_node *inline_root = dst->caller->inlined_to
4274 ? dst->caller->inlined_to : dst->caller;
4275 class ipa_node_params *root_info = IPA_NODE_REF (inline_root);
4276 int idx = ipa_get_jf_pass_through_formal_id (dst_jf);
4278 int c = ipa_get_controlled_uses (root_info, idx);
4279 if (c != IPA_UNDESCRIBED_USE)
4281 c++;
4282 ipa_set_controlled_uses (root_info, idx, c);
4288 /* Analyze newly added function into callgraph. */
4290 static void
4291 ipa_add_new_function (cgraph_node *node, void *data ATTRIBUTE_UNUSED)
4293 if (node->has_gimple_body_p ())
4294 ipa_analyze_node (node);
4297 /* Hook that is called by summary when a node is duplicated. */
4299 void
4300 ipa_node_params_t::duplicate(cgraph_node *src, cgraph_node *dst,
4301 ipa_node_params *old_info,
4302 ipa_node_params *new_info)
4304 ipa_agg_replacement_value *old_av, *new_av;
4306 new_info->descriptors = vec_safe_copy (old_info->descriptors);
4307 new_info->lattices = NULL;
4308 new_info->ipcp_orig_node = old_info->ipcp_orig_node;
4309 new_info->known_csts = old_info->known_csts.copy ();
4310 new_info->known_contexts = old_info->known_contexts.copy ();
4312 new_info->analysis_done = old_info->analysis_done;
4313 new_info->node_enqueued = old_info->node_enqueued;
4314 new_info->versionable = old_info->versionable;
4316 old_av = ipa_get_agg_replacements_for_node (src);
4317 if (old_av)
4319 new_av = NULL;
4320 while (old_av)
4322 struct ipa_agg_replacement_value *v;
4324 v = ggc_alloc<ipa_agg_replacement_value> ();
4325 memcpy (v, old_av, sizeof (*v));
4326 v->next = new_av;
4327 new_av = v;
4328 old_av = old_av->next;
4330 ipa_set_node_agg_value_chain (dst, new_av);
4334 /* Duplication of ipcp transformation summaries. */
4336 void
4337 ipcp_transformation_t::duplicate(cgraph_node *, cgraph_node *dst,
4338 ipcp_transformation *src_trans,
4339 ipcp_transformation *dst_trans)
4341 /* Avoid redundant work of duplicating vectors we will never use. */
4342 if (dst->inlined_to)
4343 return;
4344 dst_trans->bits = vec_safe_copy (src_trans->bits);
4345 dst_trans->m_vr = vec_safe_copy (src_trans->m_vr);
4346 ipa_agg_replacement_value *agg = src_trans->agg_values,
4347 **aggptr = &dst_trans->agg_values;
4348 while (agg)
4350 *aggptr = ggc_alloc<ipa_agg_replacement_value> ();
4351 **aggptr = *agg;
4352 agg = agg->next;
4353 aggptr = &(*aggptr)->next;
4357 /* Register our cgraph hooks if they are not already there. */
4359 void
4360 ipa_register_cgraph_hooks (void)
4362 ipa_check_create_node_params ();
4363 ipa_check_create_edge_args ();
4365 function_insertion_hook_holder =
4366 symtab->add_cgraph_insertion_hook (&ipa_add_new_function, NULL);
4369 /* Unregister our cgraph hooks if they are not already there. */
4371 static void
4372 ipa_unregister_cgraph_hooks (void)
4374 symtab->remove_cgraph_insertion_hook (function_insertion_hook_holder);
4375 function_insertion_hook_holder = NULL;
4378 /* Free all ipa_node_params and all ipa_edge_args structures if they are no
4379 longer needed after ipa-cp. */
4381 void
4382 ipa_free_all_structures_after_ipa_cp (void)
4384 if (!optimize && !in_lto_p)
4386 ipa_free_all_edge_args ();
4387 ipa_free_all_node_params ();
4388 ipcp_sources_pool.release ();
4389 ipcp_cst_values_pool.release ();
4390 ipcp_poly_ctx_values_pool.release ();
4391 ipcp_agg_lattice_pool.release ();
4392 ipa_unregister_cgraph_hooks ();
4393 ipa_refdesc_pool.release ();
4397 /* Free all ipa_node_params and all ipa_edge_args structures if they are no
4398 longer needed after indirect inlining. */
4400 void
4401 ipa_free_all_structures_after_iinln (void)
4403 ipa_free_all_edge_args ();
4404 ipa_free_all_node_params ();
4405 ipa_unregister_cgraph_hooks ();
4406 ipcp_sources_pool.release ();
4407 ipcp_cst_values_pool.release ();
4408 ipcp_poly_ctx_values_pool.release ();
4409 ipcp_agg_lattice_pool.release ();
4410 ipa_refdesc_pool.release ();
4413 /* Print ipa_tree_map data structures of all functions in the
4414 callgraph to F. */
4416 void
4417 ipa_print_node_params (FILE *f, struct cgraph_node *node)
4419 int i, count;
4420 class ipa_node_params *info;
4422 if (!node->definition)
4423 return;
4424 info = IPA_NODE_REF (node);
4425 fprintf (f, " function %s parameter descriptors:\n", node->dump_name ());
4426 if (!info)
4428 fprintf (f, " no params return\n");
4429 return;
4431 count = ipa_get_param_count (info);
4432 for (i = 0; i < count; i++)
4434 int c;
4436 fprintf (f, " ");
4437 ipa_dump_param (f, info, i);
4438 if (ipa_is_param_used (info, i))
4439 fprintf (f, " used");
4440 if (ipa_is_param_used_by_ipa_predicates (info, i))
4441 fprintf (f, " used_by_ipa_predicates");
4442 if (ipa_is_param_used_by_indirect_call (info, i))
4443 fprintf (f, " used_by_indirect_call");
4444 if (ipa_is_param_used_by_polymorphic_call (info, i))
4445 fprintf (f, " used_by_polymorphic_call");
4446 c = ipa_get_controlled_uses (info, i);
4447 if (c == IPA_UNDESCRIBED_USE)
4448 fprintf (f, " undescribed_use");
4449 else
4450 fprintf (f, " controlled_uses=%i", c);
4451 fprintf (f, "\n");
4455 /* Print ipa_tree_map data structures of all functions in the
4456 callgraph to F. */
4458 void
4459 ipa_print_all_params (FILE * f)
4461 struct cgraph_node *node;
4463 fprintf (f, "\nFunction parameters:\n");
4464 FOR_EACH_FUNCTION (node)
4465 ipa_print_node_params (f, node);
4468 /* Dump the AV linked list. */
4470 void
4471 ipa_dump_agg_replacement_values (FILE *f, struct ipa_agg_replacement_value *av)
4473 bool comma = false;
4474 fprintf (f, " Aggregate replacements:");
4475 for (; av; av = av->next)
4477 fprintf (f, "%s %i[" HOST_WIDE_INT_PRINT_DEC "]=", comma ? "," : "",
4478 av->index, av->offset);
4479 print_generic_expr (f, av->value);
4480 comma = true;
4482 fprintf (f, "\n");
4485 /* Stream out jump function JUMP_FUNC to OB. */
4487 static void
4488 ipa_write_jump_function (struct output_block *ob,
4489 struct ipa_jump_func *jump_func)
4491 struct ipa_agg_jf_item *item;
4492 struct bitpack_d bp;
4493 int i, count;
4494 int flag = 0;
4496 /* ADDR_EXPRs are very comon IP invariants; save some streamer data
4497 as well as WPA memory by handling them specially. */
4498 if (jump_func->type == IPA_JF_CONST
4499 && TREE_CODE (jump_func->value.constant.value) == ADDR_EXPR)
4500 flag = 1;
4502 streamer_write_uhwi (ob, jump_func->type * 2 + flag);
4503 switch (jump_func->type)
4505 case IPA_JF_UNKNOWN:
4506 break;
4507 case IPA_JF_CONST:
4508 gcc_assert (
4509 EXPR_LOCATION (jump_func->value.constant.value) == UNKNOWN_LOCATION);
4510 stream_write_tree (ob,
4511 flag
4512 ? TREE_OPERAND (jump_func->value.constant.value, 0)
4513 : jump_func->value.constant.value, true);
4514 break;
4515 case IPA_JF_PASS_THROUGH:
4516 streamer_write_uhwi (ob, jump_func->value.pass_through.operation);
4517 if (jump_func->value.pass_through.operation == NOP_EXPR)
4519 streamer_write_uhwi (ob, jump_func->value.pass_through.formal_id);
4520 bp = bitpack_create (ob->main_stream);
4521 bp_pack_value (&bp, jump_func->value.pass_through.agg_preserved, 1);
4522 streamer_write_bitpack (&bp);
4524 else if (TREE_CODE_CLASS (jump_func->value.pass_through.operation)
4525 == tcc_unary)
4526 streamer_write_uhwi (ob, jump_func->value.pass_through.formal_id);
4527 else
4529 stream_write_tree (ob, jump_func->value.pass_through.operand, true);
4530 streamer_write_uhwi (ob, jump_func->value.pass_through.formal_id);
4532 break;
4533 case IPA_JF_ANCESTOR:
4534 streamer_write_uhwi (ob, jump_func->value.ancestor.offset);
4535 streamer_write_uhwi (ob, jump_func->value.ancestor.formal_id);
4536 bp = bitpack_create (ob->main_stream);
4537 bp_pack_value (&bp, jump_func->value.ancestor.agg_preserved, 1);
4538 streamer_write_bitpack (&bp);
4539 break;
4540 default:
4541 fatal_error (UNKNOWN_LOCATION, "invalid jump function in LTO stream");
4544 count = vec_safe_length (jump_func->agg.items);
4545 streamer_write_uhwi (ob, count);
4546 if (count)
4548 bp = bitpack_create (ob->main_stream);
4549 bp_pack_value (&bp, jump_func->agg.by_ref, 1);
4550 streamer_write_bitpack (&bp);
4553 FOR_EACH_VEC_SAFE_ELT (jump_func->agg.items, i, item)
4555 stream_write_tree (ob, item->type, true);
4556 streamer_write_uhwi (ob, item->offset);
4557 streamer_write_uhwi (ob, item->jftype);
4558 switch (item->jftype)
4560 case IPA_JF_UNKNOWN:
4561 break;
4562 case IPA_JF_CONST:
4563 stream_write_tree (ob, item->value.constant, true);
4564 break;
4565 case IPA_JF_PASS_THROUGH:
4566 case IPA_JF_LOAD_AGG:
4567 streamer_write_uhwi (ob, item->value.pass_through.operation);
4568 streamer_write_uhwi (ob, item->value.pass_through.formal_id);
4569 if (TREE_CODE_CLASS (item->value.pass_through.operation)
4570 != tcc_unary)
4571 stream_write_tree (ob, item->value.pass_through.operand, true);
4572 if (item->jftype == IPA_JF_LOAD_AGG)
4574 stream_write_tree (ob, item->value.load_agg.type, true);
4575 streamer_write_uhwi (ob, item->value.load_agg.offset);
4576 bp = bitpack_create (ob->main_stream);
4577 bp_pack_value (&bp, item->value.load_agg.by_ref, 1);
4578 streamer_write_bitpack (&bp);
4580 break;
4581 default:
4582 fatal_error (UNKNOWN_LOCATION,
4583 "invalid jump function in LTO stream");
4587 bp = bitpack_create (ob->main_stream);
4588 bp_pack_value (&bp, !!jump_func->bits, 1);
4589 streamer_write_bitpack (&bp);
4590 if (jump_func->bits)
4592 streamer_write_widest_int (ob, jump_func->bits->value);
4593 streamer_write_widest_int (ob, jump_func->bits->mask);
4595 bp_pack_value (&bp, !!jump_func->m_vr, 1);
4596 streamer_write_bitpack (&bp);
4597 if (jump_func->m_vr)
4599 streamer_write_enum (ob->main_stream, value_rang_type,
4600 VR_LAST, jump_func->m_vr->kind ());
4601 stream_write_tree (ob, jump_func->m_vr->min (), true);
4602 stream_write_tree (ob, jump_func->m_vr->max (), true);
4606 /* Read in jump function JUMP_FUNC from IB. */
4608 static void
4609 ipa_read_jump_function (class lto_input_block *ib,
4610 struct ipa_jump_func *jump_func,
4611 struct cgraph_edge *cs,
4612 class data_in *data_in,
4613 bool prevails)
4615 enum jump_func_type jftype;
4616 enum tree_code operation;
4617 int i, count;
4618 int val = streamer_read_uhwi (ib);
4619 bool flag = val & 1;
4621 jftype = (enum jump_func_type) (val / 2);
4622 switch (jftype)
4624 case IPA_JF_UNKNOWN:
4625 ipa_set_jf_unknown (jump_func);
4626 break;
4627 case IPA_JF_CONST:
4629 tree t = stream_read_tree (ib, data_in);
4630 if (flag && prevails)
4631 t = build_fold_addr_expr (t);
4632 ipa_set_jf_constant (jump_func, t, cs);
4634 break;
4635 case IPA_JF_PASS_THROUGH:
4636 operation = (enum tree_code) streamer_read_uhwi (ib);
4637 if (operation == NOP_EXPR)
4639 int formal_id = streamer_read_uhwi (ib);
4640 struct bitpack_d bp = streamer_read_bitpack (ib);
4641 bool agg_preserved = bp_unpack_value (&bp, 1);
4642 ipa_set_jf_simple_pass_through (jump_func, formal_id, agg_preserved);
4644 else if (TREE_CODE_CLASS (operation) == tcc_unary)
4646 int formal_id = streamer_read_uhwi (ib);
4647 ipa_set_jf_unary_pass_through (jump_func, formal_id, operation);
4649 else
4651 tree operand = stream_read_tree (ib, data_in);
4652 int formal_id = streamer_read_uhwi (ib);
4653 ipa_set_jf_arith_pass_through (jump_func, formal_id, operand,
4654 operation);
4656 break;
4657 case IPA_JF_ANCESTOR:
4659 HOST_WIDE_INT offset = streamer_read_uhwi (ib);
4660 int formal_id = streamer_read_uhwi (ib);
4661 struct bitpack_d bp = streamer_read_bitpack (ib);
4662 bool agg_preserved = bp_unpack_value (&bp, 1);
4663 ipa_set_ancestor_jf (jump_func, offset, formal_id, agg_preserved);
4664 break;
4666 default:
4667 fatal_error (UNKNOWN_LOCATION, "invalid jump function in LTO stream");
4670 count = streamer_read_uhwi (ib);
4671 if (prevails)
4672 vec_alloc (jump_func->agg.items, count);
4673 if (count)
4675 struct bitpack_d bp = streamer_read_bitpack (ib);
4676 jump_func->agg.by_ref = bp_unpack_value (&bp, 1);
4678 for (i = 0; i < count; i++)
4680 struct ipa_agg_jf_item item;
4681 item.type = stream_read_tree (ib, data_in);
4682 item.offset = streamer_read_uhwi (ib);
4683 item.jftype = (enum jump_func_type) streamer_read_uhwi (ib);
4685 switch (item.jftype)
4687 case IPA_JF_UNKNOWN:
4688 break;
4689 case IPA_JF_CONST:
4690 item.value.constant = stream_read_tree (ib, data_in);
4691 break;
4692 case IPA_JF_PASS_THROUGH:
4693 case IPA_JF_LOAD_AGG:
4694 operation = (enum tree_code) streamer_read_uhwi (ib);
4695 item.value.pass_through.operation = operation;
4696 item.value.pass_through.formal_id = streamer_read_uhwi (ib);
4697 if (TREE_CODE_CLASS (operation) == tcc_unary)
4698 item.value.pass_through.operand = NULL_TREE;
4699 else
4700 item.value.pass_through.operand = stream_read_tree (ib, data_in);
4701 if (item.jftype == IPA_JF_LOAD_AGG)
4703 struct bitpack_d bp;
4704 item.value.load_agg.type = stream_read_tree (ib, data_in);
4705 item.value.load_agg.offset = streamer_read_uhwi (ib);
4706 bp = streamer_read_bitpack (ib);
4707 item.value.load_agg.by_ref = bp_unpack_value (&bp, 1);
4709 break;
4710 default:
4711 fatal_error (UNKNOWN_LOCATION,
4712 "invalid jump function in LTO stream");
4714 if (prevails)
4715 jump_func->agg.items->quick_push (item);
4718 struct bitpack_d bp = streamer_read_bitpack (ib);
4719 bool bits_known = bp_unpack_value (&bp, 1);
4720 if (bits_known)
4722 widest_int value = streamer_read_widest_int (ib);
4723 widest_int mask = streamer_read_widest_int (ib);
4724 if (prevails)
4725 ipa_set_jfunc_bits (jump_func, value, mask);
4727 else
4728 jump_func->bits = NULL;
4730 struct bitpack_d vr_bp = streamer_read_bitpack (ib);
4731 bool vr_known = bp_unpack_value (&vr_bp, 1);
4732 if (vr_known)
4734 enum value_range_kind type = streamer_read_enum (ib, value_range_kind,
4735 VR_LAST);
4736 tree min = stream_read_tree (ib, data_in);
4737 tree max = stream_read_tree (ib, data_in);
4738 if (prevails)
4739 ipa_set_jfunc_vr (jump_func, type, min, max);
4741 else
4742 jump_func->m_vr = NULL;
4745 /* Stream out parts of cgraph_indirect_call_info corresponding to CS that are
4746 relevant to indirect inlining to OB. */
4748 static void
4749 ipa_write_indirect_edge_info (struct output_block *ob,
4750 struct cgraph_edge *cs)
4752 class cgraph_indirect_call_info *ii = cs->indirect_info;
4753 struct bitpack_d bp;
4755 streamer_write_hwi (ob, ii->param_index);
4756 bp = bitpack_create (ob->main_stream);
4757 bp_pack_value (&bp, ii->polymorphic, 1);
4758 bp_pack_value (&bp, ii->agg_contents, 1);
4759 bp_pack_value (&bp, ii->member_ptr, 1);
4760 bp_pack_value (&bp, ii->by_ref, 1);
4761 bp_pack_value (&bp, ii->guaranteed_unmodified, 1);
4762 bp_pack_value (&bp, ii->vptr_changed, 1);
4763 streamer_write_bitpack (&bp);
4764 if (ii->agg_contents || ii->polymorphic)
4765 streamer_write_hwi (ob, ii->offset);
4766 else
4767 gcc_assert (ii->offset == 0);
4769 if (ii->polymorphic)
4771 streamer_write_hwi (ob, ii->otr_token);
4772 stream_write_tree (ob, ii->otr_type, true);
4773 ii->context.stream_out (ob);
4777 /* Read in parts of cgraph_indirect_call_info corresponding to CS that are
4778 relevant to indirect inlining from IB. */
4780 static void
4781 ipa_read_indirect_edge_info (class lto_input_block *ib,
4782 class data_in *data_in,
4783 struct cgraph_edge *cs,
4784 class ipa_node_params *info)
4786 class cgraph_indirect_call_info *ii = cs->indirect_info;
4787 struct bitpack_d bp;
4789 ii->param_index = (int) streamer_read_hwi (ib);
4790 bp = streamer_read_bitpack (ib);
4791 ii->polymorphic = bp_unpack_value (&bp, 1);
4792 ii->agg_contents = bp_unpack_value (&bp, 1);
4793 ii->member_ptr = bp_unpack_value (&bp, 1);
4794 ii->by_ref = bp_unpack_value (&bp, 1);
4795 ii->guaranteed_unmodified = bp_unpack_value (&bp, 1);
4796 ii->vptr_changed = bp_unpack_value (&bp, 1);
4797 if (ii->agg_contents || ii->polymorphic)
4798 ii->offset = (HOST_WIDE_INT) streamer_read_hwi (ib);
4799 else
4800 ii->offset = 0;
4801 if (ii->polymorphic)
4803 ii->otr_token = (HOST_WIDE_INT) streamer_read_hwi (ib);
4804 ii->otr_type = stream_read_tree (ib, data_in);
4805 ii->context.stream_in (ib, data_in);
4807 if (info && ii->param_index >= 0)
4809 if (ii->polymorphic)
4810 ipa_set_param_used_by_polymorphic_call (info,
4811 ii->param_index , true);
4812 ipa_set_param_used_by_indirect_call (info,
4813 ii->param_index, true);
4817 /* Stream out NODE info to OB. */
4819 static void
4820 ipa_write_node_info (struct output_block *ob, struct cgraph_node *node)
4822 int node_ref;
4823 lto_symtab_encoder_t encoder;
4824 class ipa_node_params *info = IPA_NODE_REF (node);
4825 int j;
4826 struct cgraph_edge *e;
4827 struct bitpack_d bp;
4829 encoder = ob->decl_state->symtab_node_encoder;
4830 node_ref = lto_symtab_encoder_encode (encoder, node);
4831 streamer_write_uhwi (ob, node_ref);
4833 streamer_write_uhwi (ob, ipa_get_param_count (info));
4834 for (j = 0; j < ipa_get_param_count (info); j++)
4835 streamer_write_uhwi (ob, ipa_get_param_move_cost (info, j));
4836 bp = bitpack_create (ob->main_stream);
4837 gcc_assert (info->analysis_done
4838 || ipa_get_param_count (info) == 0);
4839 gcc_assert (!info->node_enqueued);
4840 gcc_assert (!info->ipcp_orig_node);
4841 for (j = 0; j < ipa_get_param_count (info); j++)
4842 bp_pack_value (&bp, ipa_is_param_used (info, j), 1);
4843 streamer_write_bitpack (&bp);
4844 for (j = 0; j < ipa_get_param_count (info); j++)
4846 streamer_write_hwi (ob, ipa_get_controlled_uses (info, j));
4847 stream_write_tree (ob, ipa_get_type (info, j), true);
4849 for (e = node->callees; e; e = e->next_callee)
4851 class ipa_edge_args *args = IPA_EDGE_REF (e);
4853 if (!args)
4855 streamer_write_uhwi (ob, 0);
4856 continue;
4859 streamer_write_uhwi (ob,
4860 ipa_get_cs_argument_count (args) * 2
4861 + (args->polymorphic_call_contexts != NULL));
4862 for (j = 0; j < ipa_get_cs_argument_count (args); j++)
4864 ipa_write_jump_function (ob, ipa_get_ith_jump_func (args, j));
4865 if (args->polymorphic_call_contexts != NULL)
4866 ipa_get_ith_polymorhic_call_context (args, j)->stream_out (ob);
4869 for (e = node->indirect_calls; e; e = e->next_callee)
4871 class ipa_edge_args *args = IPA_EDGE_REF (e);
4872 if (!args)
4873 streamer_write_uhwi (ob, 0);
4874 else
4876 streamer_write_uhwi (ob,
4877 ipa_get_cs_argument_count (args) * 2
4878 + (args->polymorphic_call_contexts != NULL));
4879 for (j = 0; j < ipa_get_cs_argument_count (args); j++)
4881 ipa_write_jump_function (ob, ipa_get_ith_jump_func (args, j));
4882 if (args->polymorphic_call_contexts != NULL)
4883 ipa_get_ith_polymorhic_call_context (args, j)->stream_out (ob);
4886 ipa_write_indirect_edge_info (ob, e);
4890 /* Stream in edge E from IB. */
4892 static void
4893 ipa_read_edge_info (class lto_input_block *ib,
4894 class data_in *data_in,
4895 struct cgraph_edge *e, bool prevails)
4897 int count = streamer_read_uhwi (ib);
4898 bool contexts_computed = count & 1;
4900 count /= 2;
4901 if (!count)
4902 return;
4903 if (prevails && e->possibly_call_in_translation_unit_p ())
4905 class ipa_edge_args *args = IPA_EDGE_REF_GET_CREATE (e);
4906 vec_safe_grow_cleared (args->jump_functions, count);
4907 if (contexts_computed)
4908 vec_safe_grow_cleared (args->polymorphic_call_contexts, count);
4909 for (int k = 0; k < count; k++)
4911 ipa_read_jump_function (ib, ipa_get_ith_jump_func (args, k), e,
4912 data_in, prevails);
4913 if (contexts_computed)
4914 ipa_get_ith_polymorhic_call_context (args, k)->stream_in
4915 (ib, data_in);
4918 else
4920 for (int k = 0; k < count; k++)
4922 struct ipa_jump_func dummy;
4923 ipa_read_jump_function (ib, &dummy, e,
4924 data_in, prevails);
4925 if (contexts_computed)
4927 class ipa_polymorphic_call_context ctx;
4928 ctx.stream_in (ib, data_in);
4934 /* Stream in NODE info from IB. */
4936 static void
4937 ipa_read_node_info (class lto_input_block *ib, struct cgraph_node *node,
4938 class data_in *data_in)
4940 int k;
4941 struct cgraph_edge *e;
4942 struct bitpack_d bp;
4943 bool prevails = node->prevailing_p ();
4944 class ipa_node_params *info = prevails
4945 ? IPA_NODE_REF_GET_CREATE (node) : NULL;
4947 int param_count = streamer_read_uhwi (ib);
4948 if (prevails)
4950 ipa_alloc_node_params (node, param_count);
4951 for (k = 0; k < param_count; k++)
4952 (*info->descriptors)[k].move_cost = streamer_read_uhwi (ib);
4953 if (ipa_get_param_count (info) != 0)
4954 info->analysis_done = true;
4955 info->node_enqueued = false;
4957 else
4958 for (k = 0; k < param_count; k++)
4959 streamer_read_uhwi (ib);
4961 bp = streamer_read_bitpack (ib);
4962 for (k = 0; k < param_count; k++)
4964 bool used = bp_unpack_value (&bp, 1);
4966 if (prevails)
4967 ipa_set_param_used (info, k, used);
4969 for (k = 0; k < param_count; k++)
4971 int nuses = streamer_read_hwi (ib);
4972 tree type = stream_read_tree (ib, data_in);
4974 if (prevails)
4976 ipa_set_controlled_uses (info, k, nuses);
4977 (*info->descriptors)[k].decl_or_type = type;
4980 for (e = node->callees; e; e = e->next_callee)
4981 ipa_read_edge_info (ib, data_in, e, prevails);
4982 for (e = node->indirect_calls; e; e = e->next_callee)
4984 ipa_read_edge_info (ib, data_in, e, prevails);
4985 ipa_read_indirect_edge_info (ib, data_in, e, info);
4989 /* Write jump functions for nodes in SET. */
4991 void
4992 ipa_prop_write_jump_functions (void)
4994 struct cgraph_node *node;
4995 struct output_block *ob;
4996 unsigned int count = 0;
4997 lto_symtab_encoder_iterator lsei;
4998 lto_symtab_encoder_t encoder;
5000 if (!ipa_node_params_sum || !ipa_edge_args_sum)
5001 return;
5003 ob = create_output_block (LTO_section_jump_functions);
5004 encoder = ob->decl_state->symtab_node_encoder;
5005 ob->symbol = NULL;
5006 for (lsei = lsei_start_function_in_partition (encoder); !lsei_end_p (lsei);
5007 lsei_next_function_in_partition (&lsei))
5009 node = lsei_cgraph_node (lsei);
5010 if (node->has_gimple_body_p ()
5011 && IPA_NODE_REF (node) != NULL)
5012 count++;
5015 streamer_write_uhwi (ob, count);
5017 /* Process all of the functions. */
5018 for (lsei = lsei_start_function_in_partition (encoder); !lsei_end_p (lsei);
5019 lsei_next_function_in_partition (&lsei))
5021 node = lsei_cgraph_node (lsei);
5022 if (node->has_gimple_body_p ()
5023 && IPA_NODE_REF (node) != NULL)
5024 ipa_write_node_info (ob, node);
5026 streamer_write_char_stream (ob->main_stream, 0);
5027 produce_asm (ob, NULL);
5028 destroy_output_block (ob);
5031 /* Read section in file FILE_DATA of length LEN with data DATA. */
5033 static void
5034 ipa_prop_read_section (struct lto_file_decl_data *file_data, const char *data,
5035 size_t len)
5037 const struct lto_function_header *header =
5038 (const struct lto_function_header *) data;
5039 const int cfg_offset = sizeof (struct lto_function_header);
5040 const int main_offset = cfg_offset + header->cfg_size;
5041 const int string_offset = main_offset + header->main_size;
5042 class data_in *data_in;
5043 unsigned int i;
5044 unsigned int count;
5046 lto_input_block ib_main ((const char *) data + main_offset,
5047 header->main_size, file_data->mode_table);
5049 data_in =
5050 lto_data_in_create (file_data, (const char *) data + string_offset,
5051 header->string_size, vNULL);
5052 count = streamer_read_uhwi (&ib_main);
5054 for (i = 0; i < count; i++)
5056 unsigned int index;
5057 struct cgraph_node *node;
5058 lto_symtab_encoder_t encoder;
5060 index = streamer_read_uhwi (&ib_main);
5061 encoder = file_data->symtab_node_encoder;
5062 node = dyn_cast<cgraph_node *> (lto_symtab_encoder_deref (encoder,
5063 index));
5064 gcc_assert (node->definition);
5065 ipa_read_node_info (&ib_main, node, data_in);
5067 lto_free_section_data (file_data, LTO_section_jump_functions, NULL, data,
5068 len);
5069 lto_data_in_delete (data_in);
5072 /* Read ipcp jump functions. */
5074 void
5075 ipa_prop_read_jump_functions (void)
5077 struct lto_file_decl_data **file_data_vec = lto_get_file_decl_data ();
5078 struct lto_file_decl_data *file_data;
5079 unsigned int j = 0;
5081 ipa_check_create_node_params ();
5082 ipa_check_create_edge_args ();
5083 ipa_register_cgraph_hooks ();
5085 while ((file_data = file_data_vec[j++]))
5087 size_t len;
5088 const char *data
5089 = lto_get_summary_section_data (file_data, LTO_section_jump_functions,
5090 &len);
5091 if (data)
5092 ipa_prop_read_section (file_data, data, len);
5096 void
5097 write_ipcp_transformation_info (output_block *ob, cgraph_node *node)
5099 int node_ref;
5100 unsigned int count = 0;
5101 lto_symtab_encoder_t encoder;
5102 struct ipa_agg_replacement_value *aggvals, *av;
5104 aggvals = ipa_get_agg_replacements_for_node (node);
5105 encoder = ob->decl_state->symtab_node_encoder;
5106 node_ref = lto_symtab_encoder_encode (encoder, node);
5107 streamer_write_uhwi (ob, node_ref);
5109 for (av = aggvals; av; av = av->next)
5110 count++;
5111 streamer_write_uhwi (ob, count);
5113 for (av = aggvals; av; av = av->next)
5115 struct bitpack_d bp;
5117 streamer_write_uhwi (ob, av->offset);
5118 streamer_write_uhwi (ob, av->index);
5119 stream_write_tree (ob, av->value, true);
5121 bp = bitpack_create (ob->main_stream);
5122 bp_pack_value (&bp, av->by_ref, 1);
5123 streamer_write_bitpack (&bp);
5126 ipcp_transformation *ts = ipcp_get_transformation_summary (node);
5127 if (ts && vec_safe_length (ts->m_vr) > 0)
5129 count = ts->m_vr->length ();
5130 streamer_write_uhwi (ob, count);
5131 for (unsigned i = 0; i < count; ++i)
5133 struct bitpack_d bp;
5134 ipa_vr *parm_vr = &(*ts->m_vr)[i];
5135 bp = bitpack_create (ob->main_stream);
5136 bp_pack_value (&bp, parm_vr->known, 1);
5137 streamer_write_bitpack (&bp);
5138 if (parm_vr->known)
5140 streamer_write_enum (ob->main_stream, value_rang_type,
5141 VR_LAST, parm_vr->type);
5142 streamer_write_wide_int (ob, parm_vr->min);
5143 streamer_write_wide_int (ob, parm_vr->max);
5147 else
5148 streamer_write_uhwi (ob, 0);
5150 if (ts && vec_safe_length (ts->bits) > 0)
5152 count = ts->bits->length ();
5153 streamer_write_uhwi (ob, count);
5155 for (unsigned i = 0; i < count; ++i)
5157 const ipa_bits *bits_jfunc = (*ts->bits)[i];
5158 struct bitpack_d bp = bitpack_create (ob->main_stream);
5159 bp_pack_value (&bp, !!bits_jfunc, 1);
5160 streamer_write_bitpack (&bp);
5161 if (bits_jfunc)
5163 streamer_write_widest_int (ob, bits_jfunc->value);
5164 streamer_write_widest_int (ob, bits_jfunc->mask);
5168 else
5169 streamer_write_uhwi (ob, 0);
5172 /* Stream in the aggregate value replacement chain for NODE from IB. */
5174 static void
5175 read_ipcp_transformation_info (lto_input_block *ib, cgraph_node *node,
5176 data_in *data_in)
5178 struct ipa_agg_replacement_value *aggvals = NULL;
5179 unsigned int count, i;
5181 count = streamer_read_uhwi (ib);
5182 for (i = 0; i <count; i++)
5184 struct ipa_agg_replacement_value *av;
5185 struct bitpack_d bp;
5187 av = ggc_alloc<ipa_agg_replacement_value> ();
5188 av->offset = streamer_read_uhwi (ib);
5189 av->index = streamer_read_uhwi (ib);
5190 av->value = stream_read_tree (ib, data_in);
5191 bp = streamer_read_bitpack (ib);
5192 av->by_ref = bp_unpack_value (&bp, 1);
5193 av->next = aggvals;
5194 aggvals = av;
5196 ipa_set_node_agg_value_chain (node, aggvals);
5198 count = streamer_read_uhwi (ib);
5199 if (count > 0)
5201 ipcp_transformation_initialize ();
5202 ipcp_transformation *ts = ipcp_transformation_sum->get_create (node);
5203 vec_safe_grow_cleared (ts->m_vr, count);
5204 for (i = 0; i < count; i++)
5206 ipa_vr *parm_vr;
5207 parm_vr = &(*ts->m_vr)[i];
5208 struct bitpack_d bp;
5209 bp = streamer_read_bitpack (ib);
5210 parm_vr->known = bp_unpack_value (&bp, 1);
5211 if (parm_vr->known)
5213 parm_vr->type = streamer_read_enum (ib, value_range_kind,
5214 VR_LAST);
5215 parm_vr->min = streamer_read_wide_int (ib);
5216 parm_vr->max = streamer_read_wide_int (ib);
5220 count = streamer_read_uhwi (ib);
5221 if (count > 0)
5223 ipcp_transformation_initialize ();
5224 ipcp_transformation *ts = ipcp_transformation_sum->get_create (node);
5225 vec_safe_grow_cleared (ts->bits, count);
5227 for (i = 0; i < count; i++)
5229 struct bitpack_d bp = streamer_read_bitpack (ib);
5230 bool known = bp_unpack_value (&bp, 1);
5231 if (known)
5233 const widest_int value = streamer_read_widest_int (ib);
5234 const widest_int mask = streamer_read_widest_int (ib);
5235 ipa_bits *bits
5236 = ipa_get_ipa_bits_for_value (value, mask);
5237 (*ts->bits)[i] = bits;
5243 /* Write all aggregate replacement for nodes in set. */
5245 void
5246 ipcp_write_transformation_summaries (void)
5248 struct cgraph_node *node;
5249 struct output_block *ob;
5250 unsigned int count = 0;
5251 lto_symtab_encoder_iterator lsei;
5252 lto_symtab_encoder_t encoder;
5254 ob = create_output_block (LTO_section_ipcp_transform);
5255 encoder = ob->decl_state->symtab_node_encoder;
5256 ob->symbol = NULL;
5257 for (lsei = lsei_start_function_in_partition (encoder); !lsei_end_p (lsei);
5258 lsei_next_function_in_partition (&lsei))
5260 node = lsei_cgraph_node (lsei);
5261 if (node->has_gimple_body_p ())
5262 count++;
5265 streamer_write_uhwi (ob, count);
5267 for (lsei = lsei_start_function_in_partition (encoder); !lsei_end_p (lsei);
5268 lsei_next_function_in_partition (&lsei))
5270 node = lsei_cgraph_node (lsei);
5271 if (node->has_gimple_body_p ())
5272 write_ipcp_transformation_info (ob, node);
5274 streamer_write_char_stream (ob->main_stream, 0);
5275 produce_asm (ob, NULL);
5276 destroy_output_block (ob);
5279 /* Read replacements section in file FILE_DATA of length LEN with data
5280 DATA. */
5282 static void
5283 read_replacements_section (struct lto_file_decl_data *file_data,
5284 const char *data,
5285 size_t len)
5287 const struct lto_function_header *header =
5288 (const struct lto_function_header *) data;
5289 const int cfg_offset = sizeof (struct lto_function_header);
5290 const int main_offset = cfg_offset + header->cfg_size;
5291 const int string_offset = main_offset + header->main_size;
5292 class data_in *data_in;
5293 unsigned int i;
5294 unsigned int count;
5296 lto_input_block ib_main ((const char *) data + main_offset,
5297 header->main_size, file_data->mode_table);
5299 data_in = lto_data_in_create (file_data, (const char *) data + string_offset,
5300 header->string_size, vNULL);
5301 count = streamer_read_uhwi (&ib_main);
5303 for (i = 0; i < count; i++)
5305 unsigned int index;
5306 struct cgraph_node *node;
5307 lto_symtab_encoder_t encoder;
5309 index = streamer_read_uhwi (&ib_main);
5310 encoder = file_data->symtab_node_encoder;
5311 node = dyn_cast<cgraph_node *> (lto_symtab_encoder_deref (encoder,
5312 index));
5313 gcc_assert (node->definition);
5314 read_ipcp_transformation_info (&ib_main, node, data_in);
5316 lto_free_section_data (file_data, LTO_section_jump_functions, NULL, data,
5317 len);
5318 lto_data_in_delete (data_in);
5321 /* Read IPA-CP aggregate replacements. */
5323 void
5324 ipcp_read_transformation_summaries (void)
5326 struct lto_file_decl_data **file_data_vec = lto_get_file_decl_data ();
5327 struct lto_file_decl_data *file_data;
5328 unsigned int j = 0;
5330 while ((file_data = file_data_vec[j++]))
5332 size_t len;
5333 const char *data
5334 = lto_get_summary_section_data (file_data, LTO_section_ipcp_transform,
5335 &len);
5336 if (data)
5337 read_replacements_section (file_data, data, len);
5341 /* Adjust the aggregate replacements in AGGVAL to reflect parameters skipped in
5342 NODE. */
5344 static void
5345 adjust_agg_replacement_values (struct cgraph_node *node,
5346 struct ipa_agg_replacement_value *aggval)
5348 struct ipa_agg_replacement_value *v;
5350 if (!node->clone.param_adjustments)
5351 return;
5353 auto_vec<int, 16> new_indices;
5354 node->clone.param_adjustments->get_updated_indices (&new_indices);
5355 for (v = aggval; v; v = v->next)
5357 gcc_checking_assert (v->index >= 0);
5359 if ((unsigned) v->index < new_indices.length ())
5360 v->index = new_indices[v->index];
5361 else
5362 /* This can happen if we know about a constant passed by reference by
5363 an argument which is never actually used for anything, let alone
5364 loading that constant. */
5365 v->index = -1;
5369 /* Dominator walker driving the ipcp modification phase. */
5371 class ipcp_modif_dom_walker : public dom_walker
5373 public:
5374 ipcp_modif_dom_walker (struct ipa_func_body_info *fbi,
5375 vec<ipa_param_descriptor, va_gc> *descs,
5376 struct ipa_agg_replacement_value *av,
5377 bool *sc, bool *cc)
5378 : dom_walker (CDI_DOMINATORS), m_fbi (fbi), m_descriptors (descs),
5379 m_aggval (av), m_something_changed (sc), m_cfg_changed (cc) {}
5381 virtual edge before_dom_children (basic_block);
5383 private:
5384 struct ipa_func_body_info *m_fbi;
5385 vec<ipa_param_descriptor, va_gc> *m_descriptors;
5386 struct ipa_agg_replacement_value *m_aggval;
5387 bool *m_something_changed, *m_cfg_changed;
5390 edge
5391 ipcp_modif_dom_walker::before_dom_children (basic_block bb)
5393 gimple_stmt_iterator gsi;
5394 for (gsi = gsi_start_bb (bb); !gsi_end_p (gsi); gsi_next (&gsi))
5396 struct ipa_agg_replacement_value *v;
5397 gimple *stmt = gsi_stmt (gsi);
5398 tree rhs, val, t;
5399 HOST_WIDE_INT offset;
5400 poly_int64 size;
5401 int index;
5402 bool by_ref, vce;
5404 if (!gimple_assign_load_p (stmt))
5405 continue;
5406 rhs = gimple_assign_rhs1 (stmt);
5407 if (!is_gimple_reg_type (TREE_TYPE (rhs)))
5408 continue;
5410 vce = false;
5411 t = rhs;
5412 while (handled_component_p (t))
5414 /* V_C_E can do things like convert an array of integers to one
5415 bigger integer and similar things we do not handle below. */
5416 if (TREE_CODE (t) == VIEW_CONVERT_EXPR)
5418 vce = true;
5419 break;
5421 t = TREE_OPERAND (t, 0);
5423 if (vce)
5424 continue;
5426 if (!ipa_load_from_parm_agg (m_fbi, m_descriptors, stmt, rhs, &index,
5427 &offset, &size, &by_ref))
5428 continue;
5429 for (v = m_aggval; v; v = v->next)
5430 if (v->index == index
5431 && v->offset == offset)
5432 break;
5433 if (!v
5434 || v->by_ref != by_ref
5435 || maybe_ne (tree_to_poly_int64 (TYPE_SIZE (TREE_TYPE (v->value))),
5436 size))
5437 continue;
5439 gcc_checking_assert (is_gimple_ip_invariant (v->value));
5440 if (!useless_type_conversion_p (TREE_TYPE (rhs), TREE_TYPE (v->value)))
5442 if (fold_convertible_p (TREE_TYPE (rhs), v->value))
5443 val = fold_build1 (NOP_EXPR, TREE_TYPE (rhs), v->value);
5444 else if (TYPE_SIZE (TREE_TYPE (rhs))
5445 == TYPE_SIZE (TREE_TYPE (v->value)))
5446 val = fold_build1 (VIEW_CONVERT_EXPR, TREE_TYPE (rhs), v->value);
5447 else
5449 if (dump_file)
5451 fprintf (dump_file, " const ");
5452 print_generic_expr (dump_file, v->value);
5453 fprintf (dump_file, " can't be converted to type of ");
5454 print_generic_expr (dump_file, rhs);
5455 fprintf (dump_file, "\n");
5457 continue;
5460 else
5461 val = v->value;
5463 if (dump_file && (dump_flags & TDF_DETAILS))
5465 fprintf (dump_file, "Modifying stmt:\n ");
5466 print_gimple_stmt (dump_file, stmt, 0);
5468 gimple_assign_set_rhs_from_tree (&gsi, val);
5469 update_stmt (stmt);
5471 if (dump_file && (dump_flags & TDF_DETAILS))
5473 fprintf (dump_file, "into:\n ");
5474 print_gimple_stmt (dump_file, stmt, 0);
5475 fprintf (dump_file, "\n");
5478 *m_something_changed = true;
5479 if (maybe_clean_eh_stmt (stmt)
5480 && gimple_purge_dead_eh_edges (gimple_bb (stmt)))
5481 *m_cfg_changed = true;
5483 return NULL;
5486 /* Return true if we have recorded VALUE and MASK about PARM.
5487 Set VALUE and MASk accordingly. */
5489 bool
5490 ipcp_get_parm_bits (tree parm, tree *value, widest_int *mask)
5492 cgraph_node *cnode = cgraph_node::get (current_function_decl);
5493 ipcp_transformation *ts = ipcp_get_transformation_summary (cnode);
5494 if (!ts || vec_safe_length (ts->bits) == 0)
5495 return false;
5497 int i = 0;
5498 for (tree p = DECL_ARGUMENTS (current_function_decl);
5499 p != parm; p = DECL_CHAIN (p))
5501 i++;
5502 /* Ignore static chain. */
5503 if (!p)
5504 return false;
5507 if (cnode->clone.param_adjustments)
5509 i = cnode->clone.param_adjustments->get_original_index (i);
5510 if (i < 0)
5511 return false;
5514 vec<ipa_bits *, va_gc> &bits = *ts->bits;
5515 if (!bits[i])
5516 return false;
5517 *mask = bits[i]->mask;
5518 *value = wide_int_to_tree (TREE_TYPE (parm), bits[i]->value);
5519 return true;
5523 /* Update bits info of formal parameters as described in
5524 ipcp_transformation. */
5526 static void
5527 ipcp_update_bits (struct cgraph_node *node)
5529 ipcp_transformation *ts = ipcp_get_transformation_summary (node);
5531 if (!ts || vec_safe_length (ts->bits) == 0)
5532 return;
5533 vec<ipa_bits *, va_gc> &bits = *ts->bits;
5534 unsigned count = bits.length ();
5535 if (!count)
5536 return;
5538 auto_vec<int, 16> new_indices;
5539 bool need_remapping = false;
5540 if (node->clone.param_adjustments)
5542 node->clone.param_adjustments->get_updated_indices (&new_indices);
5543 need_remapping = true;
5545 auto_vec <tree, 16> parm_decls;
5546 push_function_arg_decls (&parm_decls, node->decl);
5548 for (unsigned i = 0; i < count; ++i)
5550 tree parm;
5551 if (need_remapping)
5553 if (i >= new_indices.length ())
5554 continue;
5555 int idx = new_indices[i];
5556 if (idx < 0)
5557 continue;
5558 parm = parm_decls[idx];
5560 else
5561 parm = parm_decls[i];
5562 gcc_checking_assert (parm);
5565 if (!bits[i]
5566 || !(INTEGRAL_TYPE_P (TREE_TYPE (parm))
5567 || POINTER_TYPE_P (TREE_TYPE (parm)))
5568 || !is_gimple_reg (parm))
5569 continue;
5571 tree ddef = ssa_default_def (DECL_STRUCT_FUNCTION (node->decl), parm);
5572 if (!ddef)
5573 continue;
5575 if (dump_file)
5577 fprintf (dump_file, "Adjusting mask for param %u to ", i);
5578 print_hex (bits[i]->mask, dump_file);
5579 fprintf (dump_file, "\n");
5582 if (INTEGRAL_TYPE_P (TREE_TYPE (ddef)))
5584 unsigned prec = TYPE_PRECISION (TREE_TYPE (ddef));
5585 signop sgn = TYPE_SIGN (TREE_TYPE (ddef));
5587 wide_int nonzero_bits = wide_int::from (bits[i]->mask, prec, UNSIGNED)
5588 | wide_int::from (bits[i]->value, prec, sgn);
5589 set_nonzero_bits (ddef, nonzero_bits);
5591 else
5593 unsigned tem = bits[i]->mask.to_uhwi ();
5594 unsigned HOST_WIDE_INT bitpos = bits[i]->value.to_uhwi ();
5595 unsigned align = tem & -tem;
5596 unsigned misalign = bitpos & (align - 1);
5598 if (align > 1)
5600 if (dump_file)
5601 fprintf (dump_file, "Adjusting align: %u, misalign: %u\n", align, misalign);
5603 unsigned old_align, old_misalign;
5604 struct ptr_info_def *pi = get_ptr_info (ddef);
5605 bool old_known = get_ptr_info_alignment (pi, &old_align, &old_misalign);
5607 if (old_known
5608 && old_align > align)
5610 if (dump_file)
5612 fprintf (dump_file, "But alignment was already %u.\n", old_align);
5613 if ((old_misalign & (align - 1)) != misalign)
5614 fprintf (dump_file, "old_misalign (%u) and misalign (%u) mismatch\n",
5615 old_misalign, misalign);
5617 continue;
5620 if (old_known
5621 && ((misalign & (old_align - 1)) != old_misalign)
5622 && dump_file)
5623 fprintf (dump_file, "old_misalign (%u) and misalign (%u) mismatch\n",
5624 old_misalign, misalign);
5626 set_ptr_info_alignment (pi, align, misalign);
5632 bool
5633 ipa_vr::nonzero_p (tree expr_type) const
5635 if (type == VR_ANTI_RANGE && wi::eq_p (min, 0) && wi::eq_p (max, 0))
5636 return true;
5638 unsigned prec = TYPE_PRECISION (expr_type);
5639 return (type == VR_RANGE
5640 && TYPE_UNSIGNED (expr_type)
5641 && wi::eq_p (min, wi::one (prec))
5642 && wi::eq_p (max, wi::max_value (prec, TYPE_SIGN (expr_type))));
5645 /* Update value range of formal parameters as described in
5646 ipcp_transformation. */
5648 static void
5649 ipcp_update_vr (struct cgraph_node *node)
5651 ipcp_transformation *ts = ipcp_get_transformation_summary (node);
5652 if (!ts || vec_safe_length (ts->m_vr) == 0)
5653 return;
5654 const vec<ipa_vr, va_gc> &vr = *ts->m_vr;
5655 unsigned count = vr.length ();
5656 if (!count)
5657 return;
5659 auto_vec<int, 16> new_indices;
5660 bool need_remapping = false;
5661 if (node->clone.param_adjustments)
5663 node->clone.param_adjustments->get_updated_indices (&new_indices);
5664 need_remapping = true;
5666 auto_vec <tree, 16> parm_decls;
5667 push_function_arg_decls (&parm_decls, node->decl);
5669 for (unsigned i = 0; i < count; ++i)
5671 tree parm;
5672 int remapped_idx;
5673 if (need_remapping)
5675 if (i >= new_indices.length ())
5676 continue;
5677 remapped_idx = new_indices[i];
5678 if (remapped_idx < 0)
5679 continue;
5681 else
5682 remapped_idx = i;
5684 parm = parm_decls[remapped_idx];
5686 gcc_checking_assert (parm);
5687 tree ddef = ssa_default_def (DECL_STRUCT_FUNCTION (node->decl), parm);
5689 if (!ddef || !is_gimple_reg (parm))
5690 continue;
5692 if (vr[i].known
5693 && (vr[i].type == VR_RANGE || vr[i].type == VR_ANTI_RANGE))
5695 tree type = TREE_TYPE (ddef);
5696 unsigned prec = TYPE_PRECISION (type);
5697 if (INTEGRAL_TYPE_P (TREE_TYPE (ddef)))
5699 if (dump_file)
5701 fprintf (dump_file, "Setting value range of param %u "
5702 "(now %i) ", i, remapped_idx);
5703 fprintf (dump_file, "%s[",
5704 (vr[i].type == VR_ANTI_RANGE) ? "~" : "");
5705 print_decs (vr[i].min, dump_file);
5706 fprintf (dump_file, ", ");
5707 print_decs (vr[i].max, dump_file);
5708 fprintf (dump_file, "]\n");
5710 set_range_info (ddef, vr[i].type,
5711 wide_int_storage::from (vr[i].min, prec,
5712 TYPE_SIGN (type)),
5713 wide_int_storage::from (vr[i].max, prec,
5714 TYPE_SIGN (type)));
5716 else if (POINTER_TYPE_P (TREE_TYPE (ddef))
5717 && vr[i].nonzero_p (TREE_TYPE (ddef)))
5719 if (dump_file)
5720 fprintf (dump_file, "Setting nonnull for %u\n", i);
5721 set_ptr_nonnull (ddef);
5727 /* IPCP transformation phase doing propagation of aggregate values. */
5729 unsigned int
5730 ipcp_transform_function (struct cgraph_node *node)
5732 vec<ipa_param_descriptor, va_gc> *descriptors = NULL;
5733 struct ipa_func_body_info fbi;
5734 struct ipa_agg_replacement_value *aggval;
5735 int param_count;
5736 bool cfg_changed = false, something_changed = false;
5738 gcc_checking_assert (cfun);
5739 gcc_checking_assert (current_function_decl);
5741 if (dump_file)
5742 fprintf (dump_file, "Modification phase of node %s\n",
5743 node->dump_name ());
5745 ipcp_update_bits (node);
5746 ipcp_update_vr (node);
5747 aggval = ipa_get_agg_replacements_for_node (node);
5748 if (!aggval)
5749 return 0;
5750 param_count = count_formal_params (node->decl);
5751 if (param_count == 0)
5752 return 0;
5753 adjust_agg_replacement_values (node, aggval);
5754 if (dump_file)
5755 ipa_dump_agg_replacement_values (dump_file, aggval);
5757 fbi.node = node;
5758 fbi.info = NULL;
5759 fbi.bb_infos = vNULL;
5760 fbi.bb_infos.safe_grow_cleared (last_basic_block_for_fn (cfun));
5761 fbi.param_count = param_count;
5762 fbi.aa_walk_budget = opt_for_fn (node->decl, param_ipa_max_aa_steps);
5764 vec_safe_grow_cleared (descriptors, param_count);
5765 ipa_populate_param_decls (node, *descriptors);
5766 calculate_dominance_info (CDI_DOMINATORS);
5767 ipcp_modif_dom_walker (&fbi, descriptors, aggval, &something_changed,
5768 &cfg_changed).walk (ENTRY_BLOCK_PTR_FOR_FN (cfun));
5770 int i;
5771 struct ipa_bb_info *bi;
5772 FOR_EACH_VEC_ELT (fbi.bb_infos, i, bi)
5773 free_ipa_bb_info (bi);
5774 fbi.bb_infos.release ();
5775 free_dominance_info (CDI_DOMINATORS);
5777 ipcp_transformation *s = ipcp_transformation_sum->get (node);
5778 s->agg_values = NULL;
5779 s->bits = NULL;
5780 s->m_vr = NULL;
5782 vec_free (descriptors);
5784 if (!something_changed)
5785 return 0;
5787 if (cfg_changed)
5788 delete_unreachable_blocks_update_callgraph (node, false);
5790 return TODO_update_ssa_only_virtuals;
5794 /* Return true if OTHER describes same agg value. */
5795 bool
5796 ipa_agg_value::equal_to (const ipa_agg_value &other)
5798 return offset == other.offset
5799 && operand_equal_p (value, other.value, 0);
5801 #include "gt-ipa-prop.h"