1 /* Callgraph handling code. 2 Copyright (C) 2003-2013 Free Software Foundation, Inc. 3 Contributed by Jan Hubicka 4 5 This file is part of GCC. 6 7 GCC is free software; you can redistribute it and/or modify it under 8 the terms of the GNU General Public License as published by the Free 9 Software Foundation; either version 3, or (at your option) any later 10 version. 11 12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY 13 WARRANTY; without even the implied warranty of MERCHANTABILITY or 14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License 15 for more details. 16 17 You should have received a copy of the GNU General Public License 18 along with GCC; see the file COPYING3. If not see 19 <http://www.gnu.org/licenses/>. */ 20 21 /* This file contains basic routines manipulating call graph 22 23 The call-graph is a data structure designed for intra-procedural optimization. 24 It represents a multi-graph where nodes are functions and edges are call sites. */ 25 26 #include "config.h" 27 #include "system.h" 28 #include "coretypes.h" 29 #include "tm.h" 30 #include "tree.h" 31 #include "tree-inline.h" 32 #include "langhooks.h" 33 #include "hashtab.h" 34 #include "toplev.h" 35 #include "flags.h" 36 #include "ggc.h" 37 #include "debug.h" 38 #include "target.h" 39 #include "basic-block.h" 40 #include "cgraph.h" 41 #include "intl.h" 42 #include "gimple.h" 43 #include "timevar.h" 44 #include "dumpfile.h" 45 #include "tree-flow.h" 46 #include "value-prof.h" 47 #include "except.h" 48 #include "diagnostic-core.h" 49 #include "rtl.h" 50 #include "ipa-utils.h" 51 #include "lto-streamer.h" 52 #include "ipa-inline.h" 53 #include "cfgloop.h" 54 #include "gimple-pretty-print.h" 55 56 /* FIXME: Only for PROP_loops, but cgraph shouldn't have to know about this. */ 57 #include "tree-pass.h" 58 59 static void cgraph_node_remove_callers (struct cgraph_node *node); 60 static inline void cgraph_edge_remove_caller (struct cgraph_edge *e); 61 static inline void cgraph_edge_remove_callee (struct cgraph_edge *e); 62 63 /* Queue of cgraph nodes scheduled to be lowered. */ 64 symtab_node x_cgraph_nodes_queue; 65 #define cgraph_nodes_queue ((struct cgraph_node *)x_cgraph_nodes_queue) 66 67 /* Number of nodes in existence. */ 68 int cgraph_n_nodes; 69 70 /* Maximal uid used in cgraph nodes. */ 71 int cgraph_max_uid; 72 73 /* Maximal uid used in cgraph edges. */ 74 int cgraph_edge_max_uid; 75 76 /* Set when whole unit has been analyzed so we can access global info. */ 77 bool cgraph_global_info_ready = false; 78 79 /* What state callgraph is in right now. */ 80 enum cgraph_state cgraph_state = CGRAPH_STATE_PARSING; 81 82 /* Set when the cgraph is fully build and the basic flags are computed. */ 83 bool cgraph_function_flags_ready = false; 84 85 /* List of hooks triggered on cgraph_edge events. */ 86 struct cgraph_edge_hook_list { 87 cgraph_edge_hook hook; 88 void *data; 89 struct cgraph_edge_hook_list *next; 90 }; 91 92 /* List of hooks triggered on cgraph_node events. */ 93 struct cgraph_node_hook_list { 94 cgraph_node_hook hook; 95 void *data; 96 struct cgraph_node_hook_list *next; 97 }; 98 99 /* List of hooks triggered on events involving two cgraph_edges. */ 100 struct cgraph_2edge_hook_list { 101 cgraph_2edge_hook hook; 102 void *data; 103 struct cgraph_2edge_hook_list *next; 104 }; 105 106 /* List of hooks triggered on events involving two cgraph_nodes. */ 107 struct cgraph_2node_hook_list { 108 cgraph_2node_hook hook; 109 void *data; 110 struct cgraph_2node_hook_list *next; 111 }; 112 113 /* List of hooks triggered when an edge is removed. */ 114 struct cgraph_edge_hook_list *first_cgraph_edge_removal_hook; 115 /* List of hooks triggered when a node is removed. */ 116 struct cgraph_node_hook_list *first_cgraph_node_removal_hook; 117 /* List of hooks triggered when an edge is duplicated. */ 118 struct cgraph_2edge_hook_list *first_cgraph_edge_duplicated_hook; 119 /* List of hooks triggered when a node is duplicated. */ 120 struct cgraph_2node_hook_list *first_cgraph_node_duplicated_hook; 121 /* List of hooks triggered when an function is inserted. */ 122 struct cgraph_node_hook_list *first_cgraph_function_insertion_hook; 123 124 /* Head of a linked list of unused (freed) call graph nodes. 125 Do not GTY((delete)) this list so UIDs gets reliably recycled. */ 126 static GTY(()) struct cgraph_node *free_nodes; 127 /* Head of a linked list of unused (freed) call graph edges. 128 Do not GTY((delete)) this list so UIDs gets reliably recycled. */ 129 static GTY(()) struct cgraph_edge *free_edges; 130 131 /* Did procss_same_body_aliases run? */ 132 bool same_body_aliases_done; 133 134 /* Map a cgraph_node to cgraph_function_version_info using this htab. 135 The cgraph_function_version_info has a THIS_NODE field that is the 136 corresponding cgraph_node.. */ 137 138 static htab_t GTY((param_is (struct cgraph_function_version_info *))) 139 cgraph_fnver_htab = NULL; 140 141 /* Hash function for cgraph_fnver_htab. */ 142 static hashval_t 143 cgraph_fnver_htab_hash (const void *ptr) 144 { 145 int uid = ((const struct cgraph_function_version_info *)ptr)->this_node->uid; 146 return (hashval_t)(uid); 147 } 148 149 /* eq function for cgraph_fnver_htab. */ 150 static int 151 cgraph_fnver_htab_eq (const void *p1, const void *p2) 152 { 153 const struct cgraph_function_version_info *n1 154 = (const struct cgraph_function_version_info *)p1; 155 const struct cgraph_function_version_info *n2 156 = (const struct cgraph_function_version_info *)p2; 157 158 return n1->this_node->uid == n2->this_node->uid; 159 } 160 161 /* Mark as GC root all allocated nodes. */ 162 static GTY(()) struct cgraph_function_version_info * 163 version_info_node = NULL; 164 165 /* Get the cgraph_function_version_info node corresponding to node. */ 166 struct cgraph_function_version_info * 167 get_cgraph_node_version (struct cgraph_node *node) 168 { 169 struct cgraph_function_version_info *ret; 170 struct cgraph_function_version_info key; 171 key.this_node = node; 172 173 if (cgraph_fnver_htab == NULL) 174 return NULL; 175 176 ret = (struct cgraph_function_version_info *) 177 htab_find (cgraph_fnver_htab, &key); 178 179 return ret; 180 } 181 182 /* Insert a new cgraph_function_version_info node into cgraph_fnver_htab 183 corresponding to cgraph_node NODE. */ 184 struct cgraph_function_version_info * 185 insert_new_cgraph_node_version (struct cgraph_node *node) 186 { 187 void **slot; 188 189 version_info_node = NULL; 190 version_info_node = ggc_alloc_cleared_cgraph_function_version_info (); 191 version_info_node->this_node = node; 192 193 if (cgraph_fnver_htab == NULL) 194 cgraph_fnver_htab = htab_create_ggc (2, cgraph_fnver_htab_hash, 195 cgraph_fnver_htab_eq, NULL); 196 197 slot = htab_find_slot (cgraph_fnver_htab, version_info_node, INSERT); 198 gcc_assert (slot != NULL); 199 *slot = version_info_node; 200 return version_info_node; 201 } 202 203 /* Remove the cgraph_function_version_info and cgraph_node for DECL. This 204 DECL is a duplicate declaration. */ 205 void 206 delete_function_version (tree decl) 207 { 208 struct cgraph_node *decl_node = cgraph_get_node (decl); 209 struct cgraph_function_version_info *decl_v = NULL; 210 211 if (decl_node == NULL) 212 return; 213 214 decl_v = get_cgraph_node_version (decl_node); 215 216 if (decl_v == NULL) 217 return; 218 219 if (decl_v->prev != NULL) 220 decl_v->prev->next = decl_v->next; 221 222 if (decl_v->next != NULL) 223 decl_v->next->prev = decl_v->prev; 224 225 if (cgraph_fnver_htab != NULL) 226 htab_remove_elt (cgraph_fnver_htab, decl_v); 227 228 cgraph_remove_node (decl_node); 229 } 230 231 /* Record that DECL1 and DECL2 are semantically identical function 232 versions. */ 233 void 234 record_function_versions (tree decl1, tree decl2) 235 { 236 struct cgraph_node *decl1_node = cgraph_get_create_node (decl1); 237 struct cgraph_node *decl2_node = cgraph_get_create_node (decl2); 238 struct cgraph_function_version_info *decl1_v = NULL; 239 struct cgraph_function_version_info *decl2_v = NULL; 240 struct cgraph_function_version_info *before; 241 struct cgraph_function_version_info *after; 242 243 gcc_assert (decl1_node != NULL && decl2_node != NULL); 244 decl1_v = get_cgraph_node_version (decl1_node); 245 decl2_v = get_cgraph_node_version (decl2_node); 246 247 if (decl1_v != NULL && decl2_v != NULL) 248 return; 249 250 if (decl1_v == NULL) 251 decl1_v = insert_new_cgraph_node_version (decl1_node); 252 253 if (decl2_v == NULL) 254 decl2_v = insert_new_cgraph_node_version (decl2_node); 255 256 /* Chain decl2_v and decl1_v. All semantically identical versions 257 will be chained together. */ 258 259 before = decl1_v; 260 after = decl2_v; 261 262 while (before->next != NULL) 263 before = before->next; 264 265 while (after->prev != NULL) 266 after= after->prev; 267 268 before->next = after; 269 after->prev = before; 270 } 271 272 /* Macros to access the next item in the list of free cgraph nodes and 273 edges. */ 274 #define NEXT_FREE_NODE(NODE) cgraph ((NODE)->symbol.next) 275 #define SET_NEXT_FREE_NODE(NODE,NODE2) ((NODE))->symbol.next = (symtab_node)NODE2 276 #define NEXT_FREE_EDGE(EDGE) (EDGE)->prev_caller 277 278 /* Register HOOK to be called with DATA on each removed edge. */ 279 struct cgraph_edge_hook_list * 280 cgraph_add_edge_removal_hook (cgraph_edge_hook hook, void *data) 281 { 282 struct cgraph_edge_hook_list *entry; 283 struct cgraph_edge_hook_list **ptr = &first_cgraph_edge_removal_hook; 284 285 entry = (struct cgraph_edge_hook_list *) xmalloc (sizeof (*entry)); 286 entry->hook = hook; 287 entry->data = data; 288 entry->next = NULL; 289 while (*ptr) 290 ptr = &(*ptr)->next; 291 *ptr = entry; 292 return entry; 293 } 294 295 /* Remove ENTRY from the list of hooks called on removing edges. */ 296 void 297 cgraph_remove_edge_removal_hook (struct cgraph_edge_hook_list *entry) 298 { 299 struct cgraph_edge_hook_list **ptr = &first_cgraph_edge_removal_hook; 300 301 while (*ptr != entry) 302 ptr = &(*ptr)->next; 303 *ptr = entry->next; 304 free (entry); 305 } 306 307 /* Call all edge removal hooks. */ 308 static void 309 cgraph_call_edge_removal_hooks (struct cgraph_edge *e) 310 { 311 struct cgraph_edge_hook_list *entry = first_cgraph_edge_removal_hook; 312 while (entry) 313 { 314 entry->hook (e, entry->data); 315 entry = entry->next; 316 } 317 } 318 319 /* Register HOOK to be called with DATA on each removed node. */ 320 struct cgraph_node_hook_list * 321 cgraph_add_node_removal_hook (cgraph_node_hook hook, void *data) 322 { 323 struct cgraph_node_hook_list *entry; 324 struct cgraph_node_hook_list **ptr = &first_cgraph_node_removal_hook; 325 326 entry = (struct cgraph_node_hook_list *) xmalloc (sizeof (*entry)); 327 entry->hook = hook; 328 entry->data = data; 329 entry->next = NULL; 330 while (*ptr) 331 ptr = &(*ptr)->next; 332 *ptr = entry; 333 return entry; 334 } 335 336 /* Remove ENTRY from the list of hooks called on removing nodes. */ 337 void 338 cgraph_remove_node_removal_hook (struct cgraph_node_hook_list *entry) 339 { 340 struct cgraph_node_hook_list **ptr = &first_cgraph_node_removal_hook; 341 342 while (*ptr != entry) 343 ptr = &(*ptr)->next; 344 *ptr = entry->next; 345 free (entry); 346 } 347 348 /* Call all node removal hooks. */ 349 static void 350 cgraph_call_node_removal_hooks (struct cgraph_node *node) 351 { 352 struct cgraph_node_hook_list *entry = first_cgraph_node_removal_hook; 353 while (entry) 354 { 355 entry->hook (node, entry->data); 356 entry = entry->next; 357 } 358 } 359 360 /* Register HOOK to be called with DATA on each inserted node. */ 361 struct cgraph_node_hook_list * 362 cgraph_add_function_insertion_hook (cgraph_node_hook hook, void *data) 363 { 364 struct cgraph_node_hook_list *entry; 365 struct cgraph_node_hook_list **ptr = &first_cgraph_function_insertion_hook; 366 367 entry = (struct cgraph_node_hook_list *) xmalloc (sizeof (*entry)); 368 entry->hook = hook; 369 entry->data = data; 370 entry->next = NULL; 371 while (*ptr) 372 ptr = &(*ptr)->next; 373 *ptr = entry; 374 return entry; 375 } 376 377 /* Remove ENTRY from the list of hooks called on inserted nodes. */ 378 void 379 cgraph_remove_function_insertion_hook (struct cgraph_node_hook_list *entry) 380 { 381 struct cgraph_node_hook_list **ptr = &first_cgraph_function_insertion_hook; 382 383 while (*ptr != entry) 384 ptr = &(*ptr)->next; 385 *ptr = entry->next; 386 free (entry); 387 } 388 389 /* Call all node insertion hooks. */ 390 void 391 cgraph_call_function_insertion_hooks (struct cgraph_node *node) 392 { 393 struct cgraph_node_hook_list *entry = first_cgraph_function_insertion_hook; 394 while (entry) 395 { 396 entry->hook (node, entry->data); 397 entry = entry->next; 398 } 399 } 400 401 /* Register HOOK to be called with DATA on each duplicated edge. */ 402 struct cgraph_2edge_hook_list * 403 cgraph_add_edge_duplication_hook (cgraph_2edge_hook hook, void *data) 404 { 405 struct cgraph_2edge_hook_list *entry; 406 struct cgraph_2edge_hook_list **ptr = &first_cgraph_edge_duplicated_hook; 407 408 entry = (struct cgraph_2edge_hook_list *) xmalloc (sizeof (*entry)); 409 entry->hook = hook; 410 entry->data = data; 411 entry->next = NULL; 412 while (*ptr) 413 ptr = &(*ptr)->next; 414 *ptr = entry; 415 return entry; 416 } 417 418 /* Remove ENTRY from the list of hooks called on duplicating edges. */ 419 void 420 cgraph_remove_edge_duplication_hook (struct cgraph_2edge_hook_list *entry) 421 { 422 struct cgraph_2edge_hook_list **ptr = &first_cgraph_edge_duplicated_hook; 423 424 while (*ptr != entry) 425 ptr = &(*ptr)->next; 426 *ptr = entry->next; 427 free (entry); 428 } 429 430 /* Call all edge duplication hooks. */ 431 void 432 cgraph_call_edge_duplication_hooks (struct cgraph_edge *cs1, 433 struct cgraph_edge *cs2) 434 { 435 struct cgraph_2edge_hook_list *entry = first_cgraph_edge_duplicated_hook; 436 while (entry) 437 { 438 entry->hook (cs1, cs2, entry->data); 439 entry = entry->next; 440 } 441 } 442 443 /* Register HOOK to be called with DATA on each duplicated node. */ 444 struct cgraph_2node_hook_list * 445 cgraph_add_node_duplication_hook (cgraph_2node_hook hook, void *data) 446 { 447 struct cgraph_2node_hook_list *entry; 448 struct cgraph_2node_hook_list **ptr = &first_cgraph_node_duplicated_hook; 449 450 entry = (struct cgraph_2node_hook_list *) xmalloc (sizeof (*entry)); 451 entry->hook = hook; 452 entry->data = data; 453 entry->next = NULL; 454 while (*ptr) 455 ptr = &(*ptr)->next; 456 *ptr = entry; 457 return entry; 458 } 459 460 /* Remove ENTRY from the list of hooks called on duplicating nodes. */ 461 void 462 cgraph_remove_node_duplication_hook (struct cgraph_2node_hook_list *entry) 463 { 464 struct cgraph_2node_hook_list **ptr = &first_cgraph_node_duplicated_hook; 465 466 while (*ptr != entry) 467 ptr = &(*ptr)->next; 468 *ptr = entry->next; 469 free (entry); 470 } 471 472 /* Call all node duplication hooks. */ 473 void 474 cgraph_call_node_duplication_hooks (struct cgraph_node *node1, 475 struct cgraph_node *node2) 476 { 477 struct cgraph_2node_hook_list *entry = first_cgraph_node_duplicated_hook; 478 while (entry) 479 { 480 entry->hook (node1, node2, entry->data); 481 entry = entry->next; 482 } 483 } 484 485 /* Allocate new callgraph node. */ 486 487 static inline struct cgraph_node * 488 cgraph_allocate_node (void) 489 { 490 struct cgraph_node *node; 491 492 if (free_nodes) 493 { 494 node = free_nodes; 495 free_nodes = NEXT_FREE_NODE (node); 496 } 497 else 498 { 499 node = ggc_alloc_cleared_cgraph_node (); 500 node->uid = cgraph_max_uid++; 501 } 502 503 return node; 504 } 505 506 /* Allocate new callgraph node and insert it into basic data structures. */ 507 508 struct cgraph_node * 509 cgraph_create_empty_node (void) 510 { 511 struct cgraph_node *node = cgraph_allocate_node (); 512 513 node->symbol.type = SYMTAB_FUNCTION; 514 node->frequency = NODE_FREQUENCY_NORMAL; 515 node->count_materialization_scale = REG_BR_PROB_BASE; 516 cgraph_n_nodes++; 517 return node; 518 } 519 520 /* Return cgraph node assigned to DECL. Create new one when needed. */ 521 522 struct cgraph_node * 523 cgraph_create_node (tree decl) 524 { 525 struct cgraph_node *node = cgraph_create_empty_node (); 526 gcc_assert (TREE_CODE (decl) == FUNCTION_DECL); 527 528 node->symbol.decl = decl; 529 symtab_register_node ((symtab_node) node); 530 531 if (DECL_CONTEXT (decl) && TREE_CODE (DECL_CONTEXT (decl)) == FUNCTION_DECL) 532 { 533 node->origin = cgraph_get_create_node (DECL_CONTEXT (decl)); 534 node->next_nested = node->origin->nested; 535 node->origin->nested = node; 536 } 537 return node; 538 } 539 540 /* Try to find a call graph node for declaration DECL and if it does not exist, 541 create it. */ 542 543 struct cgraph_node * 544 cgraph_get_create_node (tree decl) 545 { 546 struct cgraph_node *node; 547 548 node = cgraph_get_node (decl); 549 if (node) 550 return node; 551 552 return cgraph_create_node (decl); 553 } 554 555 /* Mark ALIAS as an alias to DECL. DECL_NODE is cgraph node representing 556 the function body is associated with (not necessarily cgraph_node (DECL). */ 557 558 struct cgraph_node * 559 cgraph_create_function_alias (tree alias, tree decl) 560 { 561 struct cgraph_node *alias_node; 562 563 gcc_assert (TREE_CODE (decl) == FUNCTION_DECL); 564 gcc_assert (TREE_CODE (alias) == FUNCTION_DECL); 565 alias_node = cgraph_get_create_node (alias); 566 gcc_assert (!alias_node->local.finalized); 567 alias_node->thunk.alias = decl; 568 alias_node->local.finalized = true; 569 alias_node->alias = 1; 570 return alias_node; 571 } 572 573 /* Attempt to mark ALIAS as an alias to DECL. Return alias node if successful 574 and NULL otherwise. 575 Same body aliases are output whenever the body of DECL is output, 576 and cgraph_get_node (ALIAS) transparently returns cgraph_get_node (DECL). */ 577 578 struct cgraph_node * 579 cgraph_same_body_alias (struct cgraph_node *decl_node ATTRIBUTE_UNUSED, tree alias, tree decl) 580 { 581 struct cgraph_node *n; 582 #ifndef ASM_OUTPUT_DEF 583 /* If aliases aren't supported by the assembler, fail. */ 584 return NULL; 585 #endif 586 /* Langhooks can create same body aliases of symbols not defined. 587 Those are useless. Drop them on the floor. */ 588 if (cgraph_global_info_ready) 589 return NULL; 590 591 n = cgraph_create_function_alias (alias, decl); 592 n->same_body_alias = true; 593 if (same_body_aliases_done) 594 ipa_record_reference ((symtab_node)n, (symtab_node)cgraph_get_node (decl), 595 IPA_REF_ALIAS, NULL); 596 return n; 597 } 598 599 /* Add thunk alias into callgraph. The alias declaration is ALIAS and it 600 aliases DECL with an adjustments made into the first parameter. 601 See comments in thunk_adjust for detail on the parameters. */ 602 603 struct cgraph_node * 604 cgraph_add_thunk (struct cgraph_node *decl_node ATTRIBUTE_UNUSED, 605 tree alias, tree decl ATTRIBUTE_UNUSED, 606 bool this_adjusting, 607 HOST_WIDE_INT fixed_offset, HOST_WIDE_INT virtual_value, 608 tree virtual_offset, 609 tree real_alias) 610 { 611 struct cgraph_node *node; 612 613 node = cgraph_get_node (alias); 614 if (node) 615 { 616 gcc_assert (node->local.finalized); 617 gcc_assert (!node->alias); 618 gcc_assert (!node->thunk.thunk_p); 619 cgraph_remove_node (node); 620 } 621 622 node = cgraph_create_node (alias); 623 gcc_checking_assert (!virtual_offset 624 || tree_to_double_int (virtual_offset) == 625 double_int::from_shwi (virtual_value)); 626 node->thunk.fixed_offset = fixed_offset; 627 node->thunk.this_adjusting = this_adjusting; 628 node->thunk.virtual_value = virtual_value; 629 node->thunk.virtual_offset_p = virtual_offset != NULL; 630 node->thunk.alias = real_alias; 631 node->thunk.thunk_p = true; 632 node->local.finalized = true; 633 634 return node; 635 } 636 637 /* Return the cgraph node that has ASMNAME for its DECL_ASSEMBLER_NAME. 638 Return NULL if there's no such node. */ 639 640 struct cgraph_node * 641 cgraph_node_for_asm (tree asmname) 642 { 643 /* We do not want to look at inline clones. */ 644 for (symtab_node node = symtab_node_for_asm (asmname); 645 node; 646 node = node->symbol.next_sharing_asm_name) 647 { 648 cgraph_node *cn = dyn_cast <cgraph_node> (node); 649 if (cn && !cn->global.inlined_to) 650 return cn; 651 } 652 return NULL; 653 } 654 655 /* Returns a hash value for X (which really is a cgraph_edge). */ 656 657 static hashval_t 658 edge_hash (const void *x) 659 { 660 return htab_hash_pointer (((const struct cgraph_edge *) x)->call_stmt); 661 } 662 663 /* Return nonzero if the call_stmt of of cgraph_edge X is stmt *Y. */ 664 665 static int 666 edge_eq (const void *x, const void *y) 667 { 668 return ((const struct cgraph_edge *) x)->call_stmt == y; 669 } 670 671 /* Add call graph edge E to call site hash of its caller. */ 672 673 static inline void 674 cgraph_add_edge_to_call_site_hash (struct cgraph_edge *e) 675 { 676 void **slot; 677 slot = htab_find_slot_with_hash (e->caller->call_site_hash, 678 e->call_stmt, 679 htab_hash_pointer (e->call_stmt), 680 INSERT); 681 gcc_assert (!*slot); 682 *slot = e; 683 } 684 685 /* Return the callgraph edge representing the GIMPLE_CALL statement 686 CALL_STMT. */ 687 688 struct cgraph_edge * 689 cgraph_edge (struct cgraph_node *node, gimple call_stmt) 690 { 691 struct cgraph_edge *e, *e2; 692 int n = 0; 693 694 if (node->call_site_hash) 695 return (struct cgraph_edge *) 696 htab_find_with_hash (node->call_site_hash, call_stmt, 697 htab_hash_pointer (call_stmt)); 698 699 /* This loop may turn out to be performance problem. In such case adding 700 hashtables into call nodes with very many edges is probably best 701 solution. It is not good idea to add pointer into CALL_EXPR itself 702 because we want to make possible having multiple cgraph nodes representing 703 different clones of the same body before the body is actually cloned. */ 704 for (e = node->callees; e; e = e->next_callee) 705 { 706 if (e->call_stmt == call_stmt) 707 break; 708 n++; 709 } 710 711 if (!e) 712 for (e = node->indirect_calls; e; e = e->next_callee) 713 { 714 if (e->call_stmt == call_stmt) 715 break; 716 n++; 717 } 718 719 if (n > 100) 720 { 721 node->call_site_hash = htab_create_ggc (120, edge_hash, edge_eq, NULL); 722 for (e2 = node->callees; e2; e2 = e2->next_callee) 723 cgraph_add_edge_to_call_site_hash (e2); 724 for (e2 = node->indirect_calls; e2; e2 = e2->next_callee) 725 cgraph_add_edge_to_call_site_hash (e2); 726 } 727 728 return e; 729 } 730 731 732 /* Change field call_stmt of edge E to NEW_STMT. */ 733 734 void 735 cgraph_set_call_stmt (struct cgraph_edge *e, gimple new_stmt) 736 { 737 tree decl; 738 739 if (e->caller->call_site_hash) 740 { 741 htab_remove_elt_with_hash (e->caller->call_site_hash, 742 e->call_stmt, 743 htab_hash_pointer (e->call_stmt)); 744 } 745 746 e->call_stmt = new_stmt; 747 if (e->indirect_unknown_callee 748 && (decl = gimple_call_fndecl (new_stmt))) 749 { 750 /* Constant propagation (and possibly also inlining?) can turn an 751 indirect call into a direct one. */ 752 struct cgraph_node *new_callee = cgraph_get_node (decl); 753 754 gcc_checking_assert (new_callee); 755 cgraph_make_edge_direct (e, new_callee); 756 } 757 758 push_cfun (DECL_STRUCT_FUNCTION (e->caller->symbol.decl)); 759 e->can_throw_external = stmt_can_throw_external (new_stmt); 760 pop_cfun (); 761 if (e->caller->call_site_hash) 762 cgraph_add_edge_to_call_site_hash (e); 763 } 764 765 /* Allocate a cgraph_edge structure and fill it with data according to the 766 parameters of which only CALLEE can be NULL (when creating an indirect call 767 edge). */ 768 769 static struct cgraph_edge * 770 cgraph_create_edge_1 (struct cgraph_node *caller, struct cgraph_node *callee, 771 gimple call_stmt, gcov_type count, int freq) 772 { 773 struct cgraph_edge *edge; 774 775 /* LTO does not actually have access to the call_stmt since these 776 have not been loaded yet. */ 777 if (call_stmt) 778 { 779 /* This is a rather expensive check possibly triggering 780 construction of call stmt hashtable. */ 781 gcc_checking_assert (!cgraph_edge (caller, call_stmt)); 782 783 gcc_assert (is_gimple_call (call_stmt)); 784 } 785 786 if (free_edges) 787 { 788 edge = free_edges; 789 free_edges = NEXT_FREE_EDGE (edge); 790 } 791 else 792 { 793 edge = ggc_alloc_cgraph_edge (); 794 edge->uid = cgraph_edge_max_uid++; 795 } 796 797 edge->aux = NULL; 798 edge->caller = caller; 799 edge->callee = callee; 800 edge->prev_caller = NULL; 801 edge->next_caller = NULL; 802 edge->prev_callee = NULL; 803 edge->next_callee = NULL; 804 805 edge->count = count; 806 gcc_assert (count >= 0); 807 edge->frequency = freq; 808 gcc_assert (freq >= 0); 809 gcc_assert (freq <= CGRAPH_FREQ_MAX); 810 811 edge->call_stmt = call_stmt; 812 push_cfun (DECL_STRUCT_FUNCTION (caller->symbol.decl)); 813 edge->can_throw_external 814 = call_stmt ? stmt_can_throw_external (call_stmt) : false; 815 pop_cfun (); 816 if (call_stmt 817 && callee && callee->symbol.decl 818 && !gimple_check_call_matching_types (call_stmt, callee->symbol.decl)) 819 edge->call_stmt_cannot_inline_p = true; 820 else 821 edge->call_stmt_cannot_inline_p = false; 822 if (call_stmt && caller->call_site_hash) 823 cgraph_add_edge_to_call_site_hash (edge); 824 825 edge->indirect_info = NULL; 826 edge->indirect_inlining_edge = 0; 827 828 return edge; 829 } 830 831 /* Create edge from CALLER to CALLEE in the cgraph. */ 832 833 struct cgraph_edge * 834 cgraph_create_edge (struct cgraph_node *caller, struct cgraph_node *callee, 835 gimple call_stmt, gcov_type count, int freq) 836 { 837 struct cgraph_edge *edge = cgraph_create_edge_1 (caller, callee, call_stmt, 838 count, freq); 839 840 edge->indirect_unknown_callee = 0; 841 initialize_inline_failed (edge); 842 843 edge->next_caller = callee->callers; 844 if (callee->callers) 845 callee->callers->prev_caller = edge; 846 edge->next_callee = caller->callees; 847 if (caller->callees) 848 caller->callees->prev_callee = edge; 849 caller->callees = edge; 850 callee->callers = edge; 851 852 return edge; 853 } 854 855 /* Allocate cgraph_indirect_call_info and set its fields to default values. */ 856 857 struct cgraph_indirect_call_info * 858 cgraph_allocate_init_indirect_info (void) 859 { 860 struct cgraph_indirect_call_info *ii; 861 862 ii = ggc_alloc_cleared_cgraph_indirect_call_info (); 863 ii->param_index = -1; 864 return ii; 865 } 866 867 /* Create an indirect edge with a yet-undetermined callee where the call 868 statement destination is a formal parameter of the caller with index 869 PARAM_INDEX. */ 870 871 struct cgraph_edge * 872 cgraph_create_indirect_edge (struct cgraph_node *caller, gimple call_stmt, 873 int ecf_flags, 874 gcov_type count, int freq) 875 { 876 struct cgraph_edge *edge = cgraph_create_edge_1 (caller, NULL, call_stmt, 877 count, freq); 878 879 edge->indirect_unknown_callee = 1; 880 initialize_inline_failed (edge); 881 882 edge->indirect_info = cgraph_allocate_init_indirect_info (); 883 edge->indirect_info->ecf_flags = ecf_flags; 884 885 edge->next_callee = caller->indirect_calls; 886 if (caller->indirect_calls) 887 caller->indirect_calls->prev_callee = edge; 888 caller->indirect_calls = edge; 889 890 return edge; 891 } 892 893 /* Remove the edge E from the list of the callers of the callee. */ 894 895 static inline void 896 cgraph_edge_remove_callee (struct cgraph_edge *e) 897 { 898 gcc_assert (!e->indirect_unknown_callee); 899 if (e->prev_caller) 900 e->prev_caller->next_caller = e->next_caller; 901 if (e->next_caller) 902 e->next_caller->prev_caller = e->prev_caller; 903 if (!e->prev_caller) 904 e->callee->callers = e->next_caller; 905 } 906 907 /* Remove the edge E from the list of the callees of the caller. */ 908 909 static inline void 910 cgraph_edge_remove_caller (struct cgraph_edge *e) 911 { 912 if (e->prev_callee) 913 e->prev_callee->next_callee = e->next_callee; 914 if (e->next_callee) 915 e->next_callee->prev_callee = e->prev_callee; 916 if (!e->prev_callee) 917 { 918 if (e->indirect_unknown_callee) 919 e->caller->indirect_calls = e->next_callee; 920 else 921 e->caller->callees = e->next_callee; 922 } 923 if (e->caller->call_site_hash) 924 htab_remove_elt_with_hash (e->caller->call_site_hash, 925 e->call_stmt, 926 htab_hash_pointer (e->call_stmt)); 927 } 928 929 /* Put the edge onto the free list. */ 930 931 static void 932 cgraph_free_edge (struct cgraph_edge *e) 933 { 934 int uid = e->uid; 935 936 /* Clear out the edge so we do not dangle pointers. */ 937 memset (e, 0, sizeof (*e)); 938 e->uid = uid; 939 NEXT_FREE_EDGE (e) = free_edges; 940 free_edges = e; 941 } 942 943 /* Remove the edge E in the cgraph. */ 944 945 void 946 cgraph_remove_edge (struct cgraph_edge *e) 947 { 948 /* Call all edge removal hooks. */ 949 cgraph_call_edge_removal_hooks (e); 950 951 if (!e->indirect_unknown_callee) 952 /* Remove from callers list of the callee. */ 953 cgraph_edge_remove_callee (e); 954 955 /* Remove from callees list of the callers. */ 956 cgraph_edge_remove_caller (e); 957 958 /* Put the edge onto the free list. */ 959 cgraph_free_edge (e); 960 } 961 962 /* Set callee of call graph edge E and add it to the corresponding set of 963 callers. */ 964 965 static void 966 cgraph_set_edge_callee (struct cgraph_edge *e, struct cgraph_node *n) 967 { 968 e->prev_caller = NULL; 969 if (n->callers) 970 n->callers->prev_caller = e; 971 e->next_caller = n->callers; 972 n->callers = e; 973 e->callee = n; 974 } 975 976 /* Redirect callee of E to N. The function does not update underlying 977 call expression. */ 978 979 void 980 cgraph_redirect_edge_callee (struct cgraph_edge *e, struct cgraph_node *n) 981 { 982 /* Remove from callers list of the current callee. */ 983 cgraph_edge_remove_callee (e); 984 985 /* Insert to callers list of the new callee. */ 986 cgraph_set_edge_callee (e, n); 987 } 988 989 /* Make an indirect EDGE with an unknown callee an ordinary edge leading to 990 CALLEE. DELTA is an integer constant that is to be added to the this 991 pointer (first parameter) to compensate for skipping a thunk adjustment. */ 992 993 void 994 cgraph_make_edge_direct (struct cgraph_edge *edge, struct cgraph_node *callee) 995 { 996 edge->indirect_unknown_callee = 0; 997 998 /* Get the edge out of the indirect edge list. */ 999 if (edge->prev_callee) 1000 edge->prev_callee->next_callee = edge->next_callee; 1001 if (edge->next_callee) 1002 edge->next_callee->prev_callee = edge->prev_callee; 1003 if (!edge->prev_callee) 1004 edge->caller->indirect_calls = edge->next_callee; 1005 1006 /* Put it into the normal callee list */ 1007 edge->prev_callee = NULL; 1008 edge->next_callee = edge->caller->callees; 1009 if (edge->caller->callees) 1010 edge->caller->callees->prev_callee = edge; 1011 edge->caller->callees = edge; 1012 1013 /* Insert to callers list of the new callee. */ 1014 cgraph_set_edge_callee (edge, callee); 1015 1016 if (edge->call_stmt) 1017 edge->call_stmt_cannot_inline_p 1018 = !gimple_check_call_matching_types (edge->call_stmt, callee->symbol.decl); 1019 1020 /* We need to re-determine the inlining status of the edge. */ 1021 initialize_inline_failed (edge); 1022 } 1023 1024 /* If necessary, change the function declaration in the call statement 1025 associated with E so that it corresponds to the edge callee. */ 1026 1027 gimple 1028 cgraph_redirect_edge_call_stmt_to_callee (struct cgraph_edge *e) 1029 { 1030 tree decl = gimple_call_fndecl (e->call_stmt); 1031 gimple new_stmt; 1032 gimple_stmt_iterator gsi; 1033 #ifdef ENABLE_CHECKING 1034 struct cgraph_node *node; 1035 #endif 1036 1037 if (e->indirect_unknown_callee 1038 || decl == e->callee->symbol.decl) 1039 return e->call_stmt; 1040 1041 #ifdef ENABLE_CHECKING 1042 if (decl) 1043 { 1044 node = cgraph_get_node (decl); 1045 gcc_assert (!node || !node->clone.combined_args_to_skip); 1046 } 1047 #endif 1048 1049 if (cgraph_dump_file) 1050 { 1051 fprintf (cgraph_dump_file, "updating call of %s/%i -> %s/%i: ", 1052 xstrdup (cgraph_node_name (e->caller)), e->caller->uid, 1053 xstrdup (cgraph_node_name (e->callee)), e->callee->uid); 1054 print_gimple_stmt (cgraph_dump_file, e->call_stmt, 0, dump_flags); 1055 if (e->callee->clone.combined_args_to_skip) 1056 { 1057 fprintf (cgraph_dump_file, " combined args to skip: "); 1058 dump_bitmap (cgraph_dump_file, 1059 e->callee->clone.combined_args_to_skip); 1060 } 1061 } 1062 1063 if (e->callee->clone.combined_args_to_skip) 1064 { 1065 int lp_nr; 1066 1067 new_stmt 1068 = gimple_call_copy_skip_args (e->call_stmt, 1069 e->callee->clone.combined_args_to_skip); 1070 gimple_call_set_fndecl (new_stmt, e->callee->symbol.decl); 1071 gimple_call_set_fntype (new_stmt, gimple_call_fntype (e->call_stmt)); 1072 1073 if (gimple_vdef (new_stmt) 1074 && TREE_CODE (gimple_vdef (new_stmt)) == SSA_NAME) 1075 SSA_NAME_DEF_STMT (gimple_vdef (new_stmt)) = new_stmt; 1076 1077 gsi = gsi_for_stmt (e->call_stmt); 1078 gsi_replace (&gsi, new_stmt, false); 1079 /* We need to defer cleaning EH info on the new statement to 1080 fixup-cfg. We may not have dominator information at this point 1081 and thus would end up with unreachable blocks and have no way 1082 to communicate that we need to run CFG cleanup then. */ 1083 lp_nr = lookup_stmt_eh_lp (e->call_stmt); 1084 if (lp_nr != 0) 1085 { 1086 remove_stmt_from_eh_lp (e->call_stmt); 1087 add_stmt_to_eh_lp (new_stmt, lp_nr); 1088 } 1089 } 1090 else 1091 { 1092 new_stmt = e->call_stmt; 1093 gimple_call_set_fndecl (new_stmt, e->callee->symbol.decl); 1094 update_stmt (new_stmt); 1095 } 1096 1097 cgraph_set_call_stmt_including_clones (e->caller, e->call_stmt, new_stmt); 1098 1099 if (cgraph_dump_file) 1100 { 1101 fprintf (cgraph_dump_file, " updated to:"); 1102 print_gimple_stmt (cgraph_dump_file, e->call_stmt, 0, dump_flags); 1103 } 1104 return new_stmt; 1105 } 1106 1107 /* Update or remove the corresponding cgraph edge if a GIMPLE_CALL 1108 OLD_STMT changed into NEW_STMT. OLD_CALL is gimple_call_fndecl 1109 of OLD_STMT if it was previously call statement. 1110 If NEW_STMT is NULL, the call has been dropped without any 1111 replacement. */ 1112 1113 static void 1114 cgraph_update_edges_for_call_stmt_node (struct cgraph_node *node, 1115 gimple old_stmt, tree old_call, 1116 gimple new_stmt) 1117 { 1118 tree new_call = (new_stmt && is_gimple_call (new_stmt)) 1119 ? gimple_call_fndecl (new_stmt) : 0; 1120 1121 /* We are seeing indirect calls, then there is nothing to update. */ 1122 if (!new_call && !old_call) 1123 return; 1124 /* See if we turned indirect call into direct call or folded call to one builtin 1125 into different builtin. */ 1126 if (old_call != new_call) 1127 { 1128 struct cgraph_edge *e = cgraph_edge (node, old_stmt); 1129 struct cgraph_edge *ne = NULL; 1130 gcov_type count; 1131 int frequency; 1132 1133 if (e) 1134 { 1135 /* See if the edge is already there and has the correct callee. It 1136 might be so because of indirect inlining has already updated 1137 it. We also might've cloned and redirected the edge. */ 1138 if (new_call && e->callee) 1139 { 1140 struct cgraph_node *callee = e->callee; 1141 while (callee) 1142 { 1143 if (callee->symbol.decl == new_call 1144 || callee->former_clone_of == new_call) 1145 return; 1146 callee = callee->clone_of; 1147 } 1148 } 1149 1150 /* Otherwise remove edge and create new one; we can't simply redirect 1151 since function has changed, so inline plan and other information 1152 attached to edge is invalid. */ 1153 count = e->count; 1154 frequency = e->frequency; 1155 cgraph_remove_edge (e); 1156 } 1157 else if (new_call) 1158 { 1159 /* We are seeing new direct call; compute profile info based on BB. */ 1160 basic_block bb = gimple_bb (new_stmt); 1161 count = bb->count; 1162 frequency = compute_call_stmt_bb_frequency (current_function_decl, 1163 bb); 1164 } 1165 1166 if (new_call) 1167 { 1168 ne = cgraph_create_edge (node, cgraph_get_create_node (new_call), 1169 new_stmt, count, frequency); 1170 gcc_assert (ne->inline_failed); 1171 } 1172 } 1173 /* We only updated the call stmt; update pointer in cgraph edge.. */ 1174 else if (old_stmt != new_stmt) 1175 cgraph_set_call_stmt (cgraph_edge (node, old_stmt), new_stmt); 1176 } 1177 1178 /* Update or remove the corresponding cgraph edge if a GIMPLE_CALL 1179 OLD_STMT changed into NEW_STMT. OLD_DECL is gimple_call_fndecl 1180 of OLD_STMT before it was updated (updating can happen inplace). */ 1181 1182 void 1183 cgraph_update_edges_for_call_stmt (gimple old_stmt, tree old_decl, gimple new_stmt) 1184 { 1185 struct cgraph_node *orig = cgraph_get_node (cfun->decl); 1186 struct cgraph_node *node; 1187 1188 gcc_checking_assert (orig); 1189 cgraph_update_edges_for_call_stmt_node (orig, old_stmt, old_decl, new_stmt); 1190 if (orig->clones) 1191 for (node = orig->clones; node != orig;) 1192 { 1193 cgraph_update_edges_for_call_stmt_node (node, old_stmt, old_decl, new_stmt); 1194 if (node->clones) 1195 node = node->clones; 1196 else if (node->next_sibling_clone) 1197 node = node->next_sibling_clone; 1198 else 1199 { 1200 while (node != orig && !node->next_sibling_clone) 1201 node = node->clone_of; 1202 if (node != orig) 1203 node = node->next_sibling_clone; 1204 } 1205 } 1206 } 1207 1208 1209 /* Remove all callees from the node. */ 1210 1211 void 1212 cgraph_node_remove_callees (struct cgraph_node *node) 1213 { 1214 struct cgraph_edge *e, *f; 1215 1216 /* It is sufficient to remove the edges from the lists of callers of 1217 the callees. The callee list of the node can be zapped with one 1218 assignment. */ 1219 for (e = node->callees; e; e = f) 1220 { 1221 f = e->next_callee; 1222 cgraph_call_edge_removal_hooks (e); 1223 if (!e->indirect_unknown_callee) 1224 cgraph_edge_remove_callee (e); 1225 cgraph_free_edge (e); 1226 } 1227 for (e = node->indirect_calls; e; e = f) 1228 { 1229 f = e->next_callee; 1230 cgraph_call_edge_removal_hooks (e); 1231 if (!e->indirect_unknown_callee) 1232 cgraph_edge_remove_callee (e); 1233 cgraph_free_edge (e); 1234 } 1235 node->indirect_calls = NULL; 1236 node->callees = NULL; 1237 if (node->call_site_hash) 1238 { 1239 htab_delete (node->call_site_hash); 1240 node->call_site_hash = NULL; 1241 } 1242 } 1243 1244 /* Remove all callers from the node. */ 1245 1246 static void 1247 cgraph_node_remove_callers (struct cgraph_node *node) 1248 { 1249 struct cgraph_edge *e, *f; 1250 1251 /* It is sufficient to remove the edges from the lists of callees of 1252 the callers. The caller list of the node can be zapped with one 1253 assignment. */ 1254 for (e = node->callers; e; e = f) 1255 { 1256 f = e->next_caller; 1257 cgraph_call_edge_removal_hooks (e); 1258 cgraph_edge_remove_caller (e); 1259 cgraph_free_edge (e); 1260 } 1261 node->callers = NULL; 1262 } 1263 1264 /* Release memory used to represent body of function NODE. */ 1265 1266 void 1267 cgraph_release_function_body (struct cgraph_node *node) 1268 { 1269 if (DECL_STRUCT_FUNCTION (node->symbol.decl)) 1270 { 1271 push_cfun (DECL_STRUCT_FUNCTION (node->symbol.decl)); 1272 if (cfun->cfg 1273 && current_loops) 1274 { 1275 cfun->curr_properties &= ~PROP_loops; 1276 loop_optimizer_finalize (); 1277 } 1278 if (cfun->gimple_df) 1279 { 1280 delete_tree_ssa (); 1281 delete_tree_cfg_annotations (); 1282 cfun->eh = NULL; 1283 } 1284 if (cfun->cfg) 1285 { 1286 gcc_assert (dom_computed[0] == DOM_NONE); 1287 gcc_assert (dom_computed[1] == DOM_NONE); 1288 clear_edges (); 1289 } 1290 if (cfun->value_histograms) 1291 free_histograms (); 1292 pop_cfun(); 1293 gimple_set_body (node->symbol.decl, NULL); 1294 node->ipa_transforms_to_apply.release (); 1295 /* Struct function hangs a lot of data that would leak if we didn't 1296 removed all pointers to it. */ 1297 ggc_free (DECL_STRUCT_FUNCTION (node->symbol.decl)); 1298 DECL_STRUCT_FUNCTION (node->symbol.decl) = NULL; 1299 } 1300 DECL_SAVED_TREE (node->symbol.decl) = NULL; 1301 /* If the node is abstract and needed, then do not clear DECL_INITIAL 1302 of its associated function function declaration because it's 1303 needed to emit debug info later. */ 1304 if (!node->abstract_and_needed && DECL_INITIAL (node->symbol.decl)) 1305 DECL_INITIAL (node->symbol.decl) = error_mark_node; 1306 } 1307 1308 /* Remove the node from cgraph. */ 1309 1310 void 1311 cgraph_remove_node (struct cgraph_node *node) 1312 { 1313 struct cgraph_node *n; 1314 int uid = node->uid; 1315 1316 cgraph_call_node_removal_hooks (node); 1317 cgraph_node_remove_callers (node); 1318 cgraph_node_remove_callees (node); 1319 node->ipa_transforms_to_apply.release (); 1320 1321 /* Incremental inlining access removed nodes stored in the postorder list. 1322 */ 1323 node->symbol.force_output = false; 1324 for (n = node->nested; n; n = n->next_nested) 1325 n->origin = NULL; 1326 node->nested = NULL; 1327 if (node->origin) 1328 { 1329 struct cgraph_node **node2 = &node->origin->nested; 1330 1331 while (*node2 != node) 1332 node2 = &(*node2)->next_nested; 1333 *node2 = node->next_nested; 1334 } 1335 symtab_unregister_node ((symtab_node)node); 1336 if (node->prev_sibling_clone) 1337 node->prev_sibling_clone->next_sibling_clone = node->next_sibling_clone; 1338 else if (node->clone_of) 1339 node->clone_of->clones = node->next_sibling_clone; 1340 if (node->next_sibling_clone) 1341 node->next_sibling_clone->prev_sibling_clone = node->prev_sibling_clone; 1342 if (node->clones) 1343 { 1344 struct cgraph_node *n, *next; 1345 1346 if (node->clone_of) 1347 { 1348 for (n = node->clones; n->next_sibling_clone; n = n->next_sibling_clone) 1349 n->clone_of = node->clone_of; 1350 n->clone_of = node->clone_of; 1351 n->next_sibling_clone = node->clone_of->clones; 1352 if (node->clone_of->clones) 1353 node->clone_of->clones->prev_sibling_clone = n; 1354 node->clone_of->clones = node->clones; 1355 } 1356 else 1357 { 1358 /* We are removing node with clones. This makes clones inconsistent, 1359 but assume they will be removed subsequently and just keep clone 1360 tree intact. This can happen in unreachable function removal since 1361 we remove unreachable functions in random order, not by bottom-up 1362 walk of clone trees. */ 1363 for (n = node->clones; n; n = next) 1364 { 1365 next = n->next_sibling_clone; 1366 n->next_sibling_clone = NULL; 1367 n->prev_sibling_clone = NULL; 1368 n->clone_of = NULL; 1369 } 1370 } 1371 } 1372 1373 /* While all the clones are removed after being proceeded, the function 1374 itself is kept in the cgraph even after it is compiled. Check whether 1375 we are done with this body and reclaim it proactively if this is the case. 1376 */ 1377 n = cgraph_get_node (node->symbol.decl); 1378 if (!n 1379 || (!n->clones && !n->clone_of && !n->global.inlined_to 1380 && (cgraph_global_info_ready 1381 && (TREE_ASM_WRITTEN (n->symbol.decl) 1382 || DECL_EXTERNAL (n->symbol.decl) 1383 || !n->analyzed 1384 || n->symbol.in_other_partition)))) 1385 cgraph_release_function_body (node); 1386 1387 node->symbol.decl = NULL; 1388 if (node->call_site_hash) 1389 { 1390 htab_delete (node->call_site_hash); 1391 node->call_site_hash = NULL; 1392 } 1393 cgraph_n_nodes--; 1394 1395 /* Clear out the node to NULL all pointers and add the node to the free 1396 list. */ 1397 memset (node, 0, sizeof(*node)); 1398 node->symbol.type = SYMTAB_FUNCTION; 1399 node->uid = uid; 1400 SET_NEXT_FREE_NODE (node, free_nodes); 1401 free_nodes = node; 1402 } 1403 1404 /* Likewise indicate that a node is having address taken. */ 1405 1406 void 1407 cgraph_mark_address_taken_node (struct cgraph_node *node) 1408 { 1409 gcc_assert (!node->global.inlined_to); 1410 /* FIXME: address_taken flag is used both as a shortcut for testing whether 1411 IPA_REF_ADDR reference exists (and thus it should be set on node 1412 representing alias we take address of) and as a test whether address 1413 of the object was taken (and thus it should be set on node alias is 1414 referring to). We should remove the first use and the remove the 1415 following set. */ 1416 node->symbol.address_taken = 1; 1417 node = cgraph_function_or_thunk_node (node, NULL); 1418 node->symbol.address_taken = 1; 1419 } 1420 1421 /* Return local info for the compiled function. */ 1422 1423 struct cgraph_local_info * 1424 cgraph_local_info (tree decl) 1425 { 1426 struct cgraph_node *node; 1427 1428 gcc_assert (TREE_CODE (decl) == FUNCTION_DECL); 1429 node = cgraph_get_node (decl); 1430 if (!node) 1431 return NULL; 1432 return &node->local; 1433 } 1434 1435 /* Return local info for the compiled function. */ 1436 1437 struct cgraph_global_info * 1438 cgraph_global_info (tree decl) 1439 { 1440 struct cgraph_node *node; 1441 1442 gcc_assert (TREE_CODE (decl) == FUNCTION_DECL && cgraph_global_info_ready); 1443 node = cgraph_get_node (decl); 1444 if (!node) 1445 return NULL; 1446 return &node->global; 1447 } 1448 1449 /* Return local info for the compiled function. */ 1450 1451 struct cgraph_rtl_info * 1452 cgraph_rtl_info (tree decl) 1453 { 1454 struct cgraph_node *node; 1455 1456 gcc_assert (TREE_CODE (decl) == FUNCTION_DECL); 1457 node = cgraph_get_node (decl); 1458 if (!node 1459 || (decl != current_function_decl 1460 && !TREE_ASM_WRITTEN (node->symbol.decl))) 1461 return NULL; 1462 return &node->rtl; 1463 } 1464 1465 /* Return a string describing the failure REASON. */ 1466 1467 const char* 1468 cgraph_inline_failed_string (cgraph_inline_failed_t reason) 1469 { 1470 #undef DEFCIFCODE 1471 #define DEFCIFCODE(code, string) string, 1472 1473 static const char *cif_string_table[CIF_N_REASONS] = { 1474 #include "cif-code.def" 1475 }; 1476 1477 /* Signedness of an enum type is implementation defined, so cast it 1478 to unsigned before testing. */ 1479 gcc_assert ((unsigned) reason < CIF_N_REASONS); 1480 return cif_string_table[reason]; 1481 } 1482 1483 /* Names used to print out the availability enum. */ 1484 const char * const cgraph_availability_names[] = 1485 {"unset", "not_available", "overwritable", "available", "local"}; 1486 1487 1488 /* Dump call graph node NODE to file F. */ 1489 1490 void 1491 dump_cgraph_node (FILE *f, struct cgraph_node *node) 1492 { 1493 struct cgraph_edge *edge; 1494 int indirect_calls_count = 0; 1495 1496 dump_symtab_base (f, (symtab_node) node); 1497 1498 if (node->global.inlined_to) 1499 fprintf (f, " Function %s/%i is inline copy in %s/%i\n", 1500 xstrdup (cgraph_node_name (node)), 1501 node->symbol.order, 1502 xstrdup (cgraph_node_name (node->global.inlined_to)), 1503 node->global.inlined_to->symbol.order); 1504 if (node->clone_of) 1505 fprintf (f, " Clone of %s/%i\n", 1506 cgraph_node_asm_name (node->clone_of), 1507 node->clone_of->symbol.order); 1508 if (cgraph_function_flags_ready) 1509 fprintf (f, " Availability: %s\n", 1510 cgraph_availability_names [cgraph_function_body_availability (node)]); 1511 1512 fprintf (f, " Function flags:"); 1513 if (node->analyzed) 1514 fprintf (f, " analyzed"); 1515 if (node->count) 1516 fprintf (f, " executed "HOST_WIDEST_INT_PRINT_DEC"x", 1517 (HOST_WIDEST_INT)node->count); 1518 if (node->origin) 1519 fprintf (f, " nested in: %s", cgraph_node_asm_name (node->origin)); 1520 if (gimple_has_body_p (node->symbol.decl)) 1521 fprintf (f, " body"); 1522 if (node->process) 1523 fprintf (f, " process"); 1524 if (node->local.local) 1525 fprintf (f, " local"); 1526 if (node->local.finalized) 1527 fprintf (f, " finalized"); 1528 if (node->local.redefined_extern_inline) 1529 fprintf (f, " redefined_extern_inline"); 1530 if (node->only_called_at_startup) 1531 fprintf (f, " only_called_at_startup"); 1532 if (node->only_called_at_exit) 1533 fprintf (f, " only_called_at_exit"); 1534 else if (node->alias) 1535 fprintf (f, " alias"); 1536 if (node->tm_clone) 1537 fprintf (f, " tm_clone"); 1538 1539 fprintf (f, "\n"); 1540 1541 if (node->thunk.thunk_p) 1542 { 1543 fprintf (f, " Thunk of %s (asm: %s) fixed offset %i virtual value %i has " 1544 "virtual offset %i)\n", 1545 lang_hooks.decl_printable_name (node->thunk.alias, 2), 1546 IDENTIFIER_POINTER (DECL_ASSEMBLER_NAME (node->thunk.alias)), 1547 (int)node->thunk.fixed_offset, 1548 (int)node->thunk.virtual_value, 1549 (int)node->thunk.virtual_offset_p); 1550 } 1551 if (node->alias && node->thunk.alias) 1552 { 1553 fprintf (f, " Alias of %s", 1554 lang_hooks.decl_printable_name (node->thunk.alias, 2)); 1555 if (DECL_ASSEMBLER_NAME_SET_P (node->thunk.alias)) 1556 fprintf (f, " (asm: %s)", 1557 IDENTIFIER_POINTER (DECL_ASSEMBLER_NAME (node->thunk.alias))); 1558 fprintf (f, "\n"); 1559 } 1560 1561 fprintf (f, " Called by: "); 1562 1563 for (edge = node->callers; edge; edge = edge->next_caller) 1564 { 1565 fprintf (f, "%s/%i ", cgraph_node_asm_name (edge->caller), 1566 edge->caller->symbol.order); 1567 if (edge->count) 1568 fprintf (f, "("HOST_WIDEST_INT_PRINT_DEC"x) ", 1569 (HOST_WIDEST_INT)edge->count); 1570 if (edge->frequency) 1571 fprintf (f, "(%.2f per call) ", 1572 edge->frequency / (double)CGRAPH_FREQ_BASE); 1573 if (!edge->inline_failed) 1574 fprintf(f, "(inlined) "); 1575 if (edge->indirect_inlining_edge) 1576 fprintf(f, "(indirect_inlining) "); 1577 if (edge->can_throw_external) 1578 fprintf(f, "(can throw external) "); 1579 } 1580 1581 fprintf (f, "\n Calls: "); 1582 for (edge = node->callees; edge; edge = edge->next_callee) 1583 { 1584 fprintf (f, "%s/%i ", cgraph_node_asm_name (edge->callee), 1585 edge->callee->symbol.order); 1586 if (!edge->inline_failed) 1587 fprintf(f, "(inlined) "); 1588 if (edge->indirect_inlining_edge) 1589 fprintf(f, "(indirect_inlining) "); 1590 if (edge->count) 1591 fprintf (f, "("HOST_WIDEST_INT_PRINT_DEC"x) ", 1592 (HOST_WIDEST_INT)edge->count); 1593 if (edge->frequency) 1594 fprintf (f, "(%.2f per call) ", 1595 edge->frequency / (double)CGRAPH_FREQ_BASE); 1596 if (edge->can_throw_external) 1597 fprintf(f, "(can throw external) "); 1598 } 1599 fprintf (f, "\n"); 1600 1601 for (edge = node->indirect_calls; edge; edge = edge->next_callee) 1602 indirect_calls_count++; 1603 if (indirect_calls_count) 1604 fprintf (f, " Has %i outgoing edges for indirect calls.\n", 1605 indirect_calls_count); 1606 } 1607 1608 1609 /* Dump call graph node NODE to stderr. */ 1610 1611 DEBUG_FUNCTION void 1612 debug_cgraph_node (struct cgraph_node *node) 1613 { 1614 dump_cgraph_node (stderr, node); 1615 } 1616 1617 1618 /* Dump the callgraph to file F. */ 1619 1620 void 1621 dump_cgraph (FILE *f) 1622 { 1623 struct cgraph_node *node; 1624 1625 fprintf (f, "callgraph:\n\n"); 1626 FOR_EACH_FUNCTION (node) 1627 dump_cgraph_node (f, node); 1628 } 1629 1630 1631 /* Dump the call graph to stderr. */ 1632 1633 DEBUG_FUNCTION void 1634 debug_cgraph (void) 1635 { 1636 dump_cgraph (stderr); 1637 } 1638 1639 /* Return true when the DECL can possibly be inlined. */ 1640 bool 1641 cgraph_function_possibly_inlined_p (tree decl) 1642 { 1643 if (!cgraph_global_info_ready) 1644 return !DECL_UNINLINABLE (decl); 1645 return DECL_POSSIBLY_INLINED (decl); 1646 } 1647 1648 /* NODE is no longer nested function; update cgraph accordingly. */ 1649 void 1650 cgraph_unnest_node (struct cgraph_node *node) 1651 { 1652 struct cgraph_node **node2 = &node->origin->nested; 1653 gcc_assert (node->origin); 1654 1655 while (*node2 != node) 1656 node2 = &(*node2)->next_nested; 1657 *node2 = node->next_nested; 1658 node->origin = NULL; 1659 } 1660 1661 /* Return function availability. See cgraph.h for description of individual 1662 return values. */ 1663 enum availability 1664 cgraph_function_body_availability (struct cgraph_node *node) 1665 { 1666 enum availability avail; 1667 gcc_assert (cgraph_function_flags_ready); 1668 if (!node->analyzed) 1669 avail = AVAIL_NOT_AVAILABLE; 1670 else if (node->local.local) 1671 avail = AVAIL_LOCAL; 1672 else if (!node->symbol.externally_visible) 1673 avail = AVAIL_AVAILABLE; 1674 /* Inline functions are safe to be analyzed even if their symbol can 1675 be overwritten at runtime. It is not meaningful to enforce any sane 1676 behaviour on replacing inline function by different body. */ 1677 else if (DECL_DECLARED_INLINE_P (node->symbol.decl)) 1678 avail = AVAIL_AVAILABLE; 1679 1680 /* If the function can be overwritten, return OVERWRITABLE. Take 1681 care at least of two notable extensions - the COMDAT functions 1682 used to share template instantiations in C++ (this is symmetric 1683 to code cp_cannot_inline_tree_fn and probably shall be shared and 1684 the inlinability hooks completely eliminated). 1685 1686 ??? Does the C++ one definition rule allow us to always return 1687 AVAIL_AVAILABLE here? That would be good reason to preserve this 1688 bit. */ 1689 1690 else if (decl_replaceable_p (node->symbol.decl) 1691 && !DECL_EXTERNAL (node->symbol.decl)) 1692 avail = AVAIL_OVERWRITABLE; 1693 else avail = AVAIL_AVAILABLE; 1694 1695 return avail; 1696 } 1697 1698 /* Worker for cgraph_node_can_be_local_p. */ 1699 static bool 1700 cgraph_node_cannot_be_local_p_1 (struct cgraph_node *node, 1701 void *data ATTRIBUTE_UNUSED) 1702 { 1703 return !(!node->symbol.force_output 1704 && ((DECL_COMDAT (node->symbol.decl) 1705 && !node->symbol.same_comdat_group) 1706 || !node->symbol.externally_visible)); 1707 } 1708 1709 /* Return true if NODE can be made local for API change. 1710 Extern inline functions and C++ COMDAT functions can be made local 1711 at the expense of possible code size growth if function is used in multiple 1712 compilation units. */ 1713 bool 1714 cgraph_node_can_be_local_p (struct cgraph_node *node) 1715 { 1716 return (!node->symbol.address_taken 1717 && !cgraph_for_node_and_aliases (node, 1718 cgraph_node_cannot_be_local_p_1, 1719 NULL, true)); 1720 } 1721 1722 /* Call calback on NODE, thunks and aliases associated to NODE. 1723 When INCLUDE_OVERWRITABLE is false, overwritable aliases and thunks are 1724 skipped. */ 1725 1726 bool 1727 cgraph_for_node_thunks_and_aliases (struct cgraph_node *node, 1728 bool (*callback) (struct cgraph_node *, void *), 1729 void *data, 1730 bool include_overwritable) 1731 { 1732 struct cgraph_edge *e; 1733 int i; 1734 struct ipa_ref *ref; 1735 1736 if (callback (node, data)) 1737 return true; 1738 for (e = node->callers; e; e = e->next_caller) 1739 if (e->caller->thunk.thunk_p 1740 && (include_overwritable 1741 || cgraph_function_body_availability (e->caller) > AVAIL_OVERWRITABLE)) 1742 if (cgraph_for_node_thunks_and_aliases (e->caller, callback, data, 1743 include_overwritable)) 1744 return true; 1745 for (i = 0; ipa_ref_list_referring_iterate (&node->symbol.ref_list, i, ref); i++) 1746 if (ref->use == IPA_REF_ALIAS) 1747 { 1748 struct cgraph_node *alias = ipa_ref_referring_node (ref); 1749 if (include_overwritable 1750 || cgraph_function_body_availability (alias) > AVAIL_OVERWRITABLE) 1751 if (cgraph_for_node_thunks_and_aliases (alias, callback, data, 1752 include_overwritable)) 1753 return true; 1754 } 1755 return false; 1756 } 1757 1758 /* Call calback on NODE and aliases associated to NODE. 1759 When INCLUDE_OVERWRITABLE is false, overwritable aliases and thunks are 1760 skipped. */ 1761 1762 bool 1763 cgraph_for_node_and_aliases (struct cgraph_node *node, 1764 bool (*callback) (struct cgraph_node *, void *), 1765 void *data, 1766 bool include_overwritable) 1767 { 1768 int i; 1769 struct ipa_ref *ref; 1770 1771 if (callback (node, data)) 1772 return true; 1773 for (i = 0; ipa_ref_list_referring_iterate (&node->symbol.ref_list, i, ref); i++) 1774 if (ref->use == IPA_REF_ALIAS) 1775 { 1776 struct cgraph_node *alias = ipa_ref_referring_node (ref); 1777 if (include_overwritable 1778 || cgraph_function_body_availability (alias) > AVAIL_OVERWRITABLE) 1779 if (cgraph_for_node_and_aliases (alias, callback, data, 1780 include_overwritable)) 1781 return true; 1782 } 1783 return false; 1784 } 1785 1786 /* Worker to bring NODE local. */ 1787 1788 static bool 1789 cgraph_make_node_local_1 (struct cgraph_node *node, void *data ATTRIBUTE_UNUSED) 1790 { 1791 gcc_checking_assert (cgraph_node_can_be_local_p (node)); 1792 if (DECL_COMDAT (node->symbol.decl) || DECL_EXTERNAL (node->symbol.decl)) 1793 { 1794 symtab_make_decl_local (node->symbol.decl); 1795 1796 node->symbol.externally_visible = false; 1797 node->local.local = true; 1798 node->symbol.resolution = LDPR_PREVAILING_DEF_IRONLY; 1799 gcc_assert (cgraph_function_body_availability (node) == AVAIL_LOCAL); 1800 } 1801 return false; 1802 } 1803 1804 /* Bring NODE local. */ 1805 1806 void 1807 cgraph_make_node_local (struct cgraph_node *node) 1808 { 1809 cgraph_for_node_thunks_and_aliases (node, cgraph_make_node_local_1, 1810 NULL, true); 1811 } 1812 1813 /* Worker to set nothrow flag. */ 1814 1815 static bool 1816 cgraph_set_nothrow_flag_1 (struct cgraph_node *node, void *data) 1817 { 1818 struct cgraph_edge *e; 1819 1820 TREE_NOTHROW (node->symbol.decl) = data != NULL; 1821 1822 if (data != NULL) 1823 for (e = node->callers; e; e = e->next_caller) 1824 e->can_throw_external = false; 1825 return false; 1826 } 1827 1828 /* Set TREE_NOTHROW on NODE's decl and on aliases of NODE 1829 if any to NOTHROW. */ 1830 1831 void 1832 cgraph_set_nothrow_flag (struct cgraph_node *node, bool nothrow) 1833 { 1834 cgraph_for_node_thunks_and_aliases (node, cgraph_set_nothrow_flag_1, 1835 (void *)(size_t)nothrow, false); 1836 } 1837 1838 /* Worker to set const flag. */ 1839 1840 static bool 1841 cgraph_set_const_flag_1 (struct cgraph_node *node, void *data) 1842 { 1843 /* Static constructors and destructors without a side effect can be 1844 optimized out. */ 1845 if (data && !((size_t)data & 2)) 1846 { 1847 if (DECL_STATIC_CONSTRUCTOR (node->symbol.decl)) 1848 DECL_STATIC_CONSTRUCTOR (node->symbol.decl) = 0; 1849 if (DECL_STATIC_DESTRUCTOR (node->symbol.decl)) 1850 DECL_STATIC_DESTRUCTOR (node->symbol.decl) = 0; 1851 } 1852 TREE_READONLY (node->symbol.decl) = data != NULL; 1853 DECL_LOOPING_CONST_OR_PURE_P (node->symbol.decl) = ((size_t)data & 2) != 0; 1854 return false; 1855 } 1856 1857 /* Set TREE_READONLY on NODE's decl and on aliases of NODE 1858 if any to READONLY. */ 1859 1860 void 1861 cgraph_set_const_flag (struct cgraph_node *node, bool readonly, bool looping) 1862 { 1863 cgraph_for_node_thunks_and_aliases (node, cgraph_set_const_flag_1, 1864 (void *)(size_t)(readonly + (int)looping * 2), 1865 false); 1866 } 1867 1868 /* Worker to set pure flag. */ 1869 1870 static bool 1871 cgraph_set_pure_flag_1 (struct cgraph_node *node, void *data) 1872 { 1873 /* Static constructors and destructors without a side effect can be 1874 optimized out. */ 1875 if (data && !((size_t)data & 2)) 1876 { 1877 if (DECL_STATIC_CONSTRUCTOR (node->symbol.decl)) 1878 DECL_STATIC_CONSTRUCTOR (node->symbol.decl) = 0; 1879 if (DECL_STATIC_DESTRUCTOR (node->symbol.decl)) 1880 DECL_STATIC_DESTRUCTOR (node->symbol.decl) = 0; 1881 } 1882 DECL_PURE_P (node->symbol.decl) = data != NULL; 1883 DECL_LOOPING_CONST_OR_PURE_P (node->symbol.decl) = ((size_t)data & 2) != 0; 1884 return false; 1885 } 1886 1887 /* Set DECL_PURE_P on NODE's decl and on aliases of NODE 1888 if any to PURE. */ 1889 1890 void 1891 cgraph_set_pure_flag (struct cgraph_node *node, bool pure, bool looping) 1892 { 1893 cgraph_for_node_thunks_and_aliases (node, cgraph_set_pure_flag_1, 1894 (void *)(size_t)(pure + (int)looping * 2), 1895 false); 1896 } 1897 1898 /* Data used by cgraph_propagate_frequency. */ 1899 1900 struct cgraph_propagate_frequency_data 1901 { 1902 bool maybe_unlikely_executed; 1903 bool maybe_executed_once; 1904 bool only_called_at_startup; 1905 bool only_called_at_exit; 1906 }; 1907 1908 /* Worker for cgraph_propagate_frequency_1. */ 1909 1910 static bool 1911 cgraph_propagate_frequency_1 (struct cgraph_node *node, void *data) 1912 { 1913 struct cgraph_propagate_frequency_data *d; 1914 struct cgraph_edge *edge; 1915 1916 d = (struct cgraph_propagate_frequency_data *)data; 1917 for (edge = node->callers; 1918 edge && (d->maybe_unlikely_executed || d->maybe_executed_once 1919 || d->only_called_at_startup || d->only_called_at_exit); 1920 edge = edge->next_caller) 1921 { 1922 if (edge->caller != node) 1923 { 1924 d->only_called_at_startup &= edge->caller->only_called_at_startup; 1925 /* It makes sense to put main() together with the static constructors. 1926 It will be executed for sure, but rest of functions called from 1927 main are definitely not at startup only. */ 1928 if (MAIN_NAME_P (DECL_NAME (edge->caller->symbol.decl))) 1929 d->only_called_at_startup = 0; 1930 d->only_called_at_exit &= edge->caller->only_called_at_exit; 1931 } 1932 if (!edge->frequency) 1933 continue; 1934 switch (edge->caller->frequency) 1935 { 1936 case NODE_FREQUENCY_UNLIKELY_EXECUTED: 1937 break; 1938 case NODE_FREQUENCY_EXECUTED_ONCE: 1939 if (dump_file && (dump_flags & TDF_DETAILS)) 1940 fprintf (dump_file, " Called by %s that is executed once\n", 1941 cgraph_node_name (edge->caller)); 1942 d->maybe_unlikely_executed = false; 1943 if (inline_edge_summary (edge)->loop_depth) 1944 { 1945 d->maybe_executed_once = false; 1946 if (dump_file && (dump_flags & TDF_DETAILS)) 1947 fprintf (dump_file, " Called in loop\n"); 1948 } 1949 break; 1950 case NODE_FREQUENCY_HOT: 1951 case NODE_FREQUENCY_NORMAL: 1952 if (dump_file && (dump_flags & TDF_DETAILS)) 1953 fprintf (dump_file, " Called by %s that is normal or hot\n", 1954 cgraph_node_name (edge->caller)); 1955 d->maybe_unlikely_executed = false; 1956 d->maybe_executed_once = false; 1957 break; 1958 } 1959 } 1960 return edge != NULL; 1961 } 1962 1963 /* See if the frequency of NODE can be updated based on frequencies of its 1964 callers. */ 1965 bool 1966 cgraph_propagate_frequency (struct cgraph_node *node) 1967 { 1968 struct cgraph_propagate_frequency_data d = {true, true, true, true}; 1969 bool changed = false; 1970 1971 if (!node->local.local) 1972 return false; 1973 gcc_assert (node->analyzed); 1974 if (dump_file && (dump_flags & TDF_DETAILS)) 1975 fprintf (dump_file, "Processing frequency %s\n", cgraph_node_name (node)); 1976 1977 cgraph_for_node_and_aliases (node, cgraph_propagate_frequency_1, &d, true); 1978 1979 if ((d.only_called_at_startup && !d.only_called_at_exit) 1980 && !node->only_called_at_startup) 1981 { 1982 node->only_called_at_startup = true; 1983 if (dump_file) 1984 fprintf (dump_file, "Node %s promoted to only called at startup.\n", 1985 cgraph_node_name (node)); 1986 changed = true; 1987 } 1988 if ((d.only_called_at_exit && !d.only_called_at_startup) 1989 && !node->only_called_at_exit) 1990 { 1991 node->only_called_at_exit = true; 1992 if (dump_file) 1993 fprintf (dump_file, "Node %s promoted to only called at exit.\n", 1994 cgraph_node_name (node)); 1995 changed = true; 1996 } 1997 /* These come either from profile or user hints; never update them. */ 1998 if (node->frequency == NODE_FREQUENCY_HOT 1999 || node->frequency == NODE_FREQUENCY_UNLIKELY_EXECUTED) 2000 return changed; 2001 if (d.maybe_unlikely_executed) 2002 { 2003 node->frequency = NODE_FREQUENCY_UNLIKELY_EXECUTED; 2004 if (dump_file) 2005 fprintf (dump_file, "Node %s promoted to unlikely executed.\n", 2006 cgraph_node_name (node)); 2007 changed = true; 2008 } 2009 else if (d.maybe_executed_once && node->frequency != NODE_FREQUENCY_EXECUTED_ONCE) 2010 { 2011 node->frequency = NODE_FREQUENCY_EXECUTED_ONCE; 2012 if (dump_file) 2013 fprintf (dump_file, "Node %s promoted to executed once.\n", 2014 cgraph_node_name (node)); 2015 changed = true; 2016 } 2017 return changed; 2018 } 2019 2020 /* Return true when NODE can not return or throw and thus 2021 it is safe to ignore its side effects for IPA analysis. */ 2022 2023 bool 2024 cgraph_node_cannot_return (struct cgraph_node *node) 2025 { 2026 int flags = flags_from_decl_or_type (node->symbol.decl); 2027 if (!flag_exceptions) 2028 return (flags & ECF_NORETURN) != 0; 2029 else 2030 return ((flags & (ECF_NORETURN | ECF_NOTHROW)) 2031 == (ECF_NORETURN | ECF_NOTHROW)); 2032 } 2033 2034 /* Return true when call of E can not lead to return from caller 2035 and thus it is safe to ignore its side effects for IPA analysis 2036 when computing side effects of the caller. 2037 FIXME: We could actually mark all edges that have no reaching 2038 patch to EXIT_BLOCK_PTR or throw to get better results. */ 2039 bool 2040 cgraph_edge_cannot_lead_to_return (struct cgraph_edge *e) 2041 { 2042 if (cgraph_node_cannot_return (e->caller)) 2043 return true; 2044 if (e->indirect_unknown_callee) 2045 { 2046 int flags = e->indirect_info->ecf_flags; 2047 if (!flag_exceptions) 2048 return (flags & ECF_NORETURN) != 0; 2049 else 2050 return ((flags & (ECF_NORETURN | ECF_NOTHROW)) 2051 == (ECF_NORETURN | ECF_NOTHROW)); 2052 } 2053 else 2054 return cgraph_node_cannot_return (e->callee); 2055 } 2056 2057 /* Return true when function NODE can be removed from callgraph 2058 if all direct calls are eliminated. */ 2059 2060 bool 2061 cgraph_can_remove_if_no_direct_calls_and_refs_p (struct cgraph_node *node) 2062 { 2063 gcc_assert (!node->global.inlined_to); 2064 /* Extern inlines can always go, we will use the external definition. */ 2065 if (DECL_EXTERNAL (node->symbol.decl)) 2066 return true; 2067 /* When function is needed, we can not remove it. */ 2068 if (node->symbol.force_output || node->symbol.used_from_other_partition) 2069 return false; 2070 if (DECL_STATIC_CONSTRUCTOR (node->symbol.decl) 2071 || DECL_STATIC_DESTRUCTOR (node->symbol.decl)) 2072 return false; 2073 /* Only COMDAT functions can be removed if externally visible. */ 2074 if (node->symbol.externally_visible 2075 && (!DECL_COMDAT (node->symbol.decl) 2076 || symtab_used_from_object_file_p ((symtab_node) node))) 2077 return false; 2078 return true; 2079 } 2080 2081 /* Worker for cgraph_can_remove_if_no_direct_calls_p. */ 2082 2083 static bool 2084 nonremovable_p (struct cgraph_node *node, void *data ATTRIBUTE_UNUSED) 2085 { 2086 return !cgraph_can_remove_if_no_direct_calls_and_refs_p (node); 2087 } 2088 2089 /* Return true when function NODE and its aliases can be removed from callgraph 2090 if all direct calls are eliminated. */ 2091 2092 bool 2093 cgraph_can_remove_if_no_direct_calls_p (struct cgraph_node *node) 2094 { 2095 /* Extern inlines can always go, we will use the external definition. */ 2096 if (DECL_EXTERNAL (node->symbol.decl)) 2097 return true; 2098 if (node->symbol.address_taken) 2099 return false; 2100 return !cgraph_for_node_and_aliases (node, nonremovable_p, NULL, true); 2101 } 2102 2103 /* Worker for cgraph_can_remove_if_no_direct_calls_p. */ 2104 2105 static bool 2106 used_from_object_file_p (struct cgraph_node *node, void *data ATTRIBUTE_UNUSED) 2107 { 2108 return symtab_used_from_object_file_p ((symtab_node) node); 2109 } 2110 2111 /* Return true when function NODE can be expected to be removed 2112 from program when direct calls in this compilation unit are removed. 2113 2114 As a special case COMDAT functions are 2115 cgraph_can_remove_if_no_direct_calls_p while the are not 2116 cgraph_only_called_directly_p (it is possible they are called from other 2117 unit) 2118 2119 This function behaves as cgraph_only_called_directly_p because eliminating 2120 all uses of COMDAT function does not make it necessarily disappear from 2121 the program unless we are compiling whole program or we do LTO. In this 2122 case we know we win since dynamic linking will not really discard the 2123 linkonce section. */ 2124 2125 bool 2126 cgraph_will_be_removed_from_program_if_no_direct_calls (struct cgraph_node *node) 2127 { 2128 gcc_assert (!node->global.inlined_to); 2129 if (cgraph_for_node_and_aliases (node, used_from_object_file_p, NULL, true)) 2130 return false; 2131 if (!in_lto_p && !flag_whole_program) 2132 return cgraph_only_called_directly_p (node); 2133 else 2134 { 2135 if (DECL_EXTERNAL (node->symbol.decl)) 2136 return true; 2137 return cgraph_can_remove_if_no_direct_calls_p (node); 2138 } 2139 } 2140 2141 2142 /* Worker for cgraph_only_called_directly_p. */ 2143 2144 static bool 2145 cgraph_not_only_called_directly_p_1 (struct cgraph_node *node, void *data ATTRIBUTE_UNUSED) 2146 { 2147 return !cgraph_only_called_directly_or_aliased_p (node); 2148 } 2149 2150 /* Return true when function NODE and all its aliases are only called 2151 directly. 2152 i.e. it is not externally visible, address was not taken and 2153 it is not used in any other non-standard way. */ 2154 2155 bool 2156 cgraph_only_called_directly_p (struct cgraph_node *node) 2157 { 2158 gcc_assert (cgraph_function_or_thunk_node (node, NULL) == node); 2159 return !cgraph_for_node_and_aliases (node, cgraph_not_only_called_directly_p_1, 2160 NULL, true); 2161 } 2162 2163 2164 /* Collect all callers of NODE. Worker for collect_callers_of_node. */ 2165 2166 static bool 2167 collect_callers_of_node_1 (struct cgraph_node *node, void *data) 2168 { 2169 vec<cgraph_edge_p> *redirect_callers = (vec<cgraph_edge_p> *)data; 2170 struct cgraph_edge *cs; 2171 enum availability avail; 2172 cgraph_function_or_thunk_node (node, &avail); 2173 2174 if (avail > AVAIL_OVERWRITABLE) 2175 for (cs = node->callers; cs != NULL; cs = cs->next_caller) 2176 if (!cs->indirect_inlining_edge) 2177 redirect_callers->safe_push (cs); 2178 return false; 2179 } 2180 2181 /* Collect all callers of NODE and its aliases that are known to lead to NODE 2182 (i.e. are not overwritable). */ 2183 2184 vec<cgraph_edge_p> 2185 collect_callers_of_node (struct cgraph_node *node) 2186 { 2187 vec<cgraph_edge_p> redirect_callers = vNULL; 2188 cgraph_for_node_and_aliases (node, collect_callers_of_node_1, 2189 &redirect_callers, false); 2190 return redirect_callers; 2191 } 2192 2193 /* Return TRUE if NODE2 is equivalent to NODE or its clone. */ 2194 static bool 2195 clone_of_p (struct cgraph_node *node, struct cgraph_node *node2) 2196 { 2197 node = cgraph_function_or_thunk_node (node, NULL); 2198 node2 = cgraph_function_or_thunk_node (node2, NULL); 2199 while (node != node2 && node2) 2200 node2 = node2->clone_of; 2201 return node2 != NULL; 2202 } 2203 2204 /* Verify edge E count and frequency. */ 2205 2206 static bool 2207 verify_edge_count_and_frequency (struct cgraph_edge *e) 2208 { 2209 bool error_found = false; 2210 if (e->count < 0) 2211 { 2212 error ("caller edge count is negative"); 2213 error_found = true; 2214 } 2215 if (e->frequency < 0) 2216 { 2217 error ("caller edge frequency is negative"); 2218 error_found = true; 2219 } 2220 if (e->frequency > CGRAPH_FREQ_MAX) 2221 { 2222 error ("caller edge frequency is too large"); 2223 error_found = true; 2224 } 2225 if (gimple_has_body_p (e->caller->symbol.decl) 2226 && !e->caller->global.inlined_to 2227 /* FIXME: Inline-analysis sets frequency to 0 when edge is optimized out. 2228 Remove this once edges are actually removed from the function at that time. */ 2229 && (e->frequency 2230 || (inline_edge_summary_vec.exists () 2231 && ((inline_edge_summary_vec.length () <= (unsigned) e->uid) 2232 || !inline_edge_summary (e)->predicate))) 2233 && (e->frequency 2234 != compute_call_stmt_bb_frequency (e->caller->symbol.decl, 2235 gimple_bb (e->call_stmt)))) 2236 { 2237 error ("caller edge frequency %i does not match BB frequency %i", 2238 e->frequency, 2239 compute_call_stmt_bb_frequency (e->caller->symbol.decl, 2240 gimple_bb (e->call_stmt))); 2241 error_found = true; 2242 } 2243 return error_found; 2244 } 2245 2246 /* Switch to THIS_CFUN if needed and print STMT to stderr. */ 2247 static void 2248 cgraph_debug_gimple_stmt (struct function *this_cfun, gimple stmt) 2249 { 2250 bool fndecl_was_null = false; 2251 /* debug_gimple_stmt needs correct cfun */ 2252 if (cfun != this_cfun) 2253 set_cfun (this_cfun); 2254 /* ...and an actual current_function_decl */ 2255 if (!current_function_decl) 2256 { 2257 current_function_decl = this_cfun->decl; 2258 fndecl_was_null = true; 2259 } 2260 debug_gimple_stmt (stmt); 2261 if (fndecl_was_null) 2262 current_function_decl = NULL; 2263 } 2264 2265 /* Verify that call graph edge E corresponds to DECL from the associated 2266 statement. Return true if the verification should fail. */ 2267 2268 static bool 2269 verify_edge_corresponds_to_fndecl (struct cgraph_edge *e, tree decl) 2270 { 2271 struct cgraph_node *node; 2272 2273 if (!decl || e->callee->global.inlined_to) 2274 return false; 2275 node = cgraph_get_node (decl); 2276 2277 /* We do not know if a node from a different partition is an alias or what it 2278 aliases and therefore cannot do the former_clone_of check reliably. */ 2279 if (!node || node->symbol.in_other_partition) 2280 return false; 2281 node = cgraph_function_or_thunk_node (node, NULL); 2282 2283 if ((e->callee->former_clone_of != node->symbol.decl 2284 && (!node->same_body_alias 2285 || e->callee->former_clone_of != node->thunk.alias)) 2286 /* IPA-CP sometimes redirect edge to clone and then back to the former 2287 function. This ping-pong has to go, eventually. */ 2288 && (node != cgraph_function_or_thunk_node (e->callee, NULL)) 2289 && !clone_of_p (node, e->callee) 2290 /* If decl is a same body alias of some other decl, allow e->callee to be 2291 a clone of a clone of that other decl too. */ 2292 && (!node->same_body_alias 2293 || !clone_of_p (cgraph_get_node (node->thunk.alias), e->callee))) 2294 return true; 2295 else 2296 return false; 2297 } 2298 2299 /* Verify cgraph nodes of given cgraph node. */ 2300 DEBUG_FUNCTION void 2301 verify_cgraph_node (struct cgraph_node *node) 2302 { 2303 struct cgraph_edge *e; 2304 struct function *this_cfun = DECL_STRUCT_FUNCTION (node->symbol.decl); 2305 basic_block this_block; 2306 gimple_stmt_iterator gsi; 2307 bool error_found = false; 2308 2309 if (seen_error ()) 2310 return; 2311 2312 timevar_push (TV_CGRAPH_VERIFY); 2313 error_found |= verify_symtab_base ((symtab_node) node); 2314 for (e = node->callees; e; e = e->next_callee) 2315 if (e->aux) 2316 { 2317 error ("aux field set for edge %s->%s", 2318 identifier_to_locale (cgraph_node_name (e->caller)), 2319 identifier_to_locale (cgraph_node_name (e->callee))); 2320 error_found = true; 2321 } 2322 if (node->count < 0) 2323 { 2324 error ("execution count is negative"); 2325 error_found = true; 2326 } 2327 if (node->global.inlined_to && node->symbol.same_comdat_group) 2328 { 2329 error ("inline clone in same comdat group list"); 2330 error_found = true; 2331 } 2332 if (node->global.inlined_to && node->symbol.externally_visible) 2333 { 2334 error ("externally visible inline clone"); 2335 error_found = true; 2336 } 2337 if (node->global.inlined_to && node->symbol.address_taken) 2338 { 2339 error ("inline clone with address taken"); 2340 error_found = true; 2341 } 2342 if (node->global.inlined_to && node->symbol.force_output) 2343 { 2344 error ("inline clone is forced to output"); 2345 error_found = true; 2346 } 2347 for (e = node->indirect_calls; e; e = e->next_callee) 2348 { 2349 if (e->aux) 2350 { 2351 error ("aux field set for indirect edge from %s", 2352 identifier_to_locale (cgraph_node_name (e->caller))); 2353 error_found = true; 2354 } 2355 if (!e->indirect_unknown_callee 2356 || !e->indirect_info) 2357 { 2358 error ("An indirect edge from %s is not marked as indirect or has " 2359 "associated indirect_info, the corresponding statement is: ", 2360 identifier_to_locale (cgraph_node_name (e->caller))); 2361 cgraph_debug_gimple_stmt (this_cfun, e->call_stmt); 2362 error_found = true; 2363 } 2364 } 2365 for (e = node->callers; e; e = e->next_caller) 2366 { 2367 if (verify_edge_count_and_frequency (e)) 2368 error_found = true; 2369 if (!e->inline_failed) 2370 { 2371 if (node->global.inlined_to 2372 != (e->caller->global.inlined_to 2373 ? e->caller->global.inlined_to : e->caller)) 2374 { 2375 error ("inlined_to pointer is wrong"); 2376 error_found = true; 2377 } 2378 if (node->callers->next_caller) 2379 { 2380 error ("multiple inline callers"); 2381 error_found = true; 2382 } 2383 } 2384 else 2385 if (node->global.inlined_to) 2386 { 2387 error ("inlined_to pointer set for noninline callers"); 2388 error_found = true; 2389 } 2390 } 2391 for (e = node->indirect_calls; e; e = e->next_callee) 2392 if (verify_edge_count_and_frequency (e)) 2393 error_found = true; 2394 if (!node->callers && node->global.inlined_to) 2395 { 2396 error ("inlined_to pointer is set but no predecessors found"); 2397 error_found = true; 2398 } 2399 if (node->global.inlined_to == node) 2400 { 2401 error ("inlined_to pointer refers to itself"); 2402 error_found = true; 2403 } 2404 2405 if (node->clone_of) 2406 { 2407 struct cgraph_node *n; 2408 for (n = node->clone_of->clones; n; n = n->next_sibling_clone) 2409 if (n == node) 2410 break; 2411 if (!n) 2412 { 2413 error ("node has wrong clone_of"); 2414 error_found = true; 2415 } 2416 } 2417 if (node->clones) 2418 { 2419 struct cgraph_node *n; 2420 for (n = node->clones; n; n = n->next_sibling_clone) 2421 if (n->clone_of != node) 2422 break; 2423 if (n) 2424 { 2425 error ("node has wrong clone list"); 2426 error_found = true; 2427 } 2428 } 2429 if ((node->prev_sibling_clone || node->next_sibling_clone) && !node->clone_of) 2430 { 2431 error ("node is in clone list but it is not clone"); 2432 error_found = true; 2433 } 2434 if (!node->prev_sibling_clone && node->clone_of && node->clone_of->clones != node) 2435 { 2436 error ("node has wrong prev_clone pointer"); 2437 error_found = true; 2438 } 2439 if (node->prev_sibling_clone && node->prev_sibling_clone->next_sibling_clone != node) 2440 { 2441 error ("double linked list of clones corrupted"); 2442 error_found = true; 2443 } 2444 2445 if (node->analyzed && node->alias) 2446 { 2447 bool ref_found = false; 2448 int i; 2449 struct ipa_ref *ref; 2450 2451 if (node->callees) 2452 { 2453 error ("Alias has call edges"); 2454 error_found = true; 2455 } 2456 for (i = 0; ipa_ref_list_reference_iterate (&node->symbol.ref_list, 2457 i, ref); i++) 2458 if (ref->use != IPA_REF_ALIAS) 2459 { 2460 error ("Alias has non-alias reference"); 2461 error_found = true; 2462 } 2463 else if (ref_found) 2464 { 2465 error ("Alias has more than one alias reference"); 2466 error_found = true; 2467 } 2468 else 2469 ref_found = true; 2470 if (!ref_found) 2471 { 2472 error ("Analyzed alias has no reference"); 2473 error_found = true; 2474 } 2475 } 2476 if (node->analyzed && node->thunk.thunk_p) 2477 { 2478 if (!node->callees) 2479 { 2480 error ("No edge out of thunk node"); 2481 error_found = true; 2482 } 2483 else if (node->callees->next_callee) 2484 { 2485 error ("More than one edge out of thunk node"); 2486 error_found = true; 2487 } 2488 if (gimple_has_body_p (node->symbol.decl)) 2489 { 2490 error ("Thunk is not supposed to have body"); 2491 error_found = true; 2492 } 2493 } 2494 else if (node->analyzed && gimple_has_body_p (node->symbol.decl) 2495 && !TREE_ASM_WRITTEN (node->symbol.decl) 2496 && (!DECL_EXTERNAL (node->symbol.decl) || node->global.inlined_to) 2497 && !flag_wpa) 2498 { 2499 if (this_cfun->cfg) 2500 { 2501 /* Reach the trees by walking over the CFG, and note the 2502 enclosing basic-blocks in the call edges. */ 2503 FOR_EACH_BB_FN (this_block, this_cfun) 2504 for (gsi = gsi_start_bb (this_block); 2505 !gsi_end_p (gsi); 2506 gsi_next (&gsi)) 2507 { 2508 gimple stmt = gsi_stmt (gsi); 2509 if (is_gimple_call (stmt)) 2510 { 2511 struct cgraph_edge *e = cgraph_edge (node, stmt); 2512 tree decl = gimple_call_fndecl (stmt); 2513 if (e) 2514 { 2515 if (e->aux) 2516 { 2517 error ("shared call_stmt:"); 2518 cgraph_debug_gimple_stmt (this_cfun, stmt); 2519 error_found = true; 2520 } 2521 if (!e->indirect_unknown_callee) 2522 { 2523 if (verify_edge_corresponds_to_fndecl (e, decl)) 2524 { 2525 error ("edge points to wrong declaration:"); 2526 debug_tree (e->callee->symbol.decl); 2527 fprintf (stderr," Instead of:"); 2528 debug_tree (decl); 2529 error_found = true; 2530 } 2531 } 2532 else if (decl) 2533 { 2534 error ("an indirect edge with unknown callee " 2535 "corresponding to a call_stmt with " 2536 "a known declaration:"); 2537 error_found = true; 2538 cgraph_debug_gimple_stmt (this_cfun, e->call_stmt); 2539 } 2540 e->aux = (void *)1; 2541 } 2542 else if (decl) 2543 { 2544 error ("missing callgraph edge for call stmt:"); 2545 cgraph_debug_gimple_stmt (this_cfun, stmt); 2546 error_found = true; 2547 } 2548 } 2549 } 2550 } 2551 else 2552 /* No CFG available?! */ 2553 gcc_unreachable (); 2554 2555 for (e = node->callees; e; e = e->next_callee) 2556 { 2557 if (!e->aux) 2558 { 2559 error ("edge %s->%s has no corresponding call_stmt", 2560 identifier_to_locale (cgraph_node_name (e->caller)), 2561 identifier_to_locale (cgraph_node_name (e->callee))); 2562 cgraph_debug_gimple_stmt (this_cfun, e->call_stmt); 2563 error_found = true; 2564 } 2565 e->aux = 0; 2566 } 2567 for (e = node->indirect_calls; e; e = e->next_callee) 2568 { 2569 if (!e->aux) 2570 { 2571 error ("an indirect edge from %s has no corresponding call_stmt", 2572 identifier_to_locale (cgraph_node_name (e->caller))); 2573 cgraph_debug_gimple_stmt (this_cfun, e->call_stmt); 2574 error_found = true; 2575 } 2576 e->aux = 0; 2577 } 2578 } 2579 if (error_found) 2580 { 2581 dump_cgraph_node (stderr, node); 2582 internal_error ("verify_cgraph_node failed"); 2583 } 2584 timevar_pop (TV_CGRAPH_VERIFY); 2585 } 2586 2587 /* Verify whole cgraph structure. */ 2588 DEBUG_FUNCTION void 2589 verify_cgraph (void) 2590 { 2591 struct cgraph_node *node; 2592 2593 if (seen_error ()) 2594 return; 2595 2596 FOR_EACH_FUNCTION (node) 2597 verify_cgraph_node (node); 2598 } 2599 2600 /* Create external decl node for DECL. 2601 The difference i nbetween cgraph_get_create_node and 2602 cgraph_get_create_real_symbol_node is that cgraph_get_create_node 2603 may return inline clone, while cgraph_get_create_real_symbol_node 2604 will create a new node in this case. 2605 FIXME: This function should be removed once clones are put out of decl 2606 hash. */ 2607 2608 struct cgraph_node * 2609 cgraph_get_create_real_symbol_node (tree decl) 2610 { 2611 struct cgraph_node *first_clone = cgraph_get_node (decl); 2612 struct cgraph_node *node; 2613 /* create symbol table node. even if inline clone exists, we can not take 2614 it as a target of non-inlined call. */ 2615 node = cgraph_get_node (decl); 2616 if (node && !node->global.inlined_to) 2617 return node; 2618 2619 node = cgraph_create_node (decl); 2620 2621 /* ok, we previously inlined the function, then removed the offline copy and 2622 now we want it back for external call. this can happen when devirtualizing 2623 while inlining function called once that happens after extern inlined and 2624 virtuals are already removed. in this case introduce the external node 2625 and make it available for call. */ 2626 if (first_clone) 2627 { 2628 first_clone->clone_of = node; 2629 node->clones = first_clone; 2630 symtab_prevail_in_asm_name_hash ((symtab_node) node); 2631 symtab_insert_node_to_hashtable ((symtab_node) node); 2632 if (dump_file) 2633 fprintf (dump_file, "Introduced new external node " 2634 "(%s/%i) and turned into root of the clone tree.\n", 2635 xstrdup (cgraph_node_name (node)), node->uid); 2636 } 2637 else if (dump_file) 2638 fprintf (dump_file, "Introduced new external node " 2639 "(%s/%i).\n", xstrdup (cgraph_node_name (node)), node->uid); 2640 return node; 2641 } 2642 #include "gt-cgraph.h" 2643