1 /* SPDX-License-Identifier: GPL-2.0 */ 2 /* 3 * Convert sample address to data type using DWARF debug info. 4 * 5 * Written by Namhyung Kim <namhyung@kernel.org> 6 */ 7 #include <errno.h> 8 #include <stdio.h> 9 #include <stdlib.h> 10 #include <inttypes.h> 11 #include <linux/zalloc.h> 12 13 #include "annotate.h" 14 #include "annotate-data.h" 15 #include "debuginfo.h" 16 #include "debug.h" 17 #include "dso.h" 18 #include "dwarf-regs.h" 19 #include "evsel.h" 20 #include "evlist.h" 21 #include "map.h" 22 #include "map_symbol.h" 23 #include "sort.h" 24 #include "strbuf.h" 25 #include "symbol.h" 26 #include "symbol_conf.h" 27 #include "thread.h" 28 29 /* register number of the stack pointer */ 30 #define X86_REG_SP 7 31 32 static void delete_var_types(struct die_var_type *var_types); 33 34 #define pr_debug_dtp(fmt, ...) \ 35 do { \ 36 if (debug_type_profile) \ 37 pr_info(fmt, ##__VA_ARGS__); \ 38 else \ 39 pr_debug3(fmt, ##__VA_ARGS__); \ 40 } while (0) 41 42 void pr_debug_type_name(Dwarf_Die *die, enum type_state_kind kind) 43 { 44 struct strbuf sb; 45 char *str; 46 Dwarf_Word size = 0; 47 48 if (!debug_type_profile && verbose < 3) 49 return; 50 51 switch (kind) { 52 case TSR_KIND_INVALID: 53 pr_info("\n"); 54 return; 55 case TSR_KIND_PERCPU_BASE: 56 pr_info(" percpu base\n"); 57 return; 58 case TSR_KIND_CONST: 59 pr_info(" constant\n"); 60 return; 61 case TSR_KIND_PERCPU_POINTER: 62 pr_info(" percpu pointer"); 63 /* it also prints the type info */ 64 break; 65 case TSR_KIND_POINTER: 66 pr_info(" pointer"); 67 /* it also prints the type info */ 68 break; 69 case TSR_KIND_CANARY: 70 pr_info(" stack canary\n"); 71 return; 72 case TSR_KIND_TYPE: 73 default: 74 break; 75 } 76 77 dwarf_aggregate_size(die, &size); 78 79 strbuf_init(&sb, 32); 80 die_get_typename_from_type(die, &sb); 81 str = strbuf_detach(&sb, NULL); 82 pr_info(" type='%s' size=%#lx (die:%#lx)\n", 83 str, (long)size, (long)dwarf_dieoffset(die)); 84 free(str); 85 } 86 87 static void pr_debug_location(Dwarf_Die *die, u64 pc, int reg) 88 { 89 ptrdiff_t off = 0; 90 Dwarf_Attribute attr; 91 Dwarf_Addr base, start, end; 92 Dwarf_Op *ops; 93 size_t nops; 94 95 if (!debug_type_profile && verbose < 3) 96 return; 97 98 if (dwarf_attr(die, DW_AT_location, &attr) == NULL) 99 return; 100 101 while ((off = dwarf_getlocations(&attr, off, &base, &start, &end, &ops, &nops)) > 0) { 102 if (reg != DWARF_REG_PC && end <= pc) 103 continue; 104 if (reg != DWARF_REG_PC && start > pc) 105 break; 106 107 pr_info(" variable location: "); 108 switch (ops->atom) { 109 case DW_OP_reg0 ...DW_OP_reg31: 110 pr_info("reg%d\n", ops->atom - DW_OP_reg0); 111 break; 112 case DW_OP_breg0 ...DW_OP_breg31: 113 pr_info("base=reg%d, offset=%#lx\n", 114 ops->atom - DW_OP_breg0, (long)ops->number); 115 break; 116 case DW_OP_regx: 117 pr_info("reg%ld\n", (long)ops->number); 118 break; 119 case DW_OP_bregx: 120 pr_info("base=reg%ld, offset=%#lx\n", 121 (long)ops->number, (long)ops->number2); 122 break; 123 case DW_OP_fbreg: 124 pr_info("use frame base, offset=%#lx\n", (long)ops->number); 125 break; 126 case DW_OP_addr: 127 pr_info("address=%#lx\n", (long)ops->number); 128 break; 129 default: 130 pr_info("unknown: code=%#x, number=%#lx\n", 131 ops->atom, (long)ops->number); 132 break; 133 } 134 break; 135 } 136 } 137 138 static void pr_debug_scope(Dwarf_Die *scope_die) 139 { 140 int tag; 141 142 if (!debug_type_profile && verbose < 3) 143 return; 144 145 pr_info("(die:%lx) ", (long)dwarf_dieoffset(scope_die)); 146 147 tag = dwarf_tag(scope_die); 148 if (tag == DW_TAG_subprogram) 149 pr_info("[function] %s\n", dwarf_diename(scope_die)); 150 else if (tag == DW_TAG_inlined_subroutine) 151 pr_info("[inlined] %s\n", dwarf_diename(scope_die)); 152 else if (tag == DW_TAG_lexical_block) 153 pr_info("[block]\n"); 154 else 155 pr_info("[unknown] tag=%x\n", tag); 156 } 157 158 bool has_reg_type(struct type_state *state, int reg) 159 { 160 return (unsigned)reg < ARRAY_SIZE(state->regs); 161 } 162 163 static void init_type_state(struct type_state *state, struct arch *arch) 164 { 165 memset(state, 0, sizeof(*state)); 166 INIT_LIST_HEAD(&state->stack_vars); 167 168 if (arch__is(arch, "x86")) { 169 state->regs[0].caller_saved = true; 170 state->regs[1].caller_saved = true; 171 state->regs[2].caller_saved = true; 172 state->regs[4].caller_saved = true; 173 state->regs[5].caller_saved = true; 174 state->regs[8].caller_saved = true; 175 state->regs[9].caller_saved = true; 176 state->regs[10].caller_saved = true; 177 state->regs[11].caller_saved = true; 178 state->ret_reg = 0; 179 state->stack_reg = X86_REG_SP; 180 } 181 } 182 183 static void exit_type_state(struct type_state *state) 184 { 185 struct type_state_stack *stack, *tmp; 186 187 list_for_each_entry_safe(stack, tmp, &state->stack_vars, list) { 188 list_del(&stack->list); 189 free(stack); 190 } 191 } 192 193 /* 194 * Compare type name and size to maintain them in a tree. 195 * I'm not sure if DWARF would have information of a single type in many 196 * different places (compilation units). If not, it could compare the 197 * offset of the type entry in the .debug_info section. 198 */ 199 static int data_type_cmp(const void *_key, const struct rb_node *node) 200 { 201 const struct annotated_data_type *key = _key; 202 struct annotated_data_type *type; 203 204 type = rb_entry(node, struct annotated_data_type, node); 205 206 if (key->self.size != type->self.size) 207 return key->self.size - type->self.size; 208 return strcmp(key->self.type_name, type->self.type_name); 209 } 210 211 static bool data_type_less(struct rb_node *node_a, const struct rb_node *node_b) 212 { 213 struct annotated_data_type *a, *b; 214 215 a = rb_entry(node_a, struct annotated_data_type, node); 216 b = rb_entry(node_b, struct annotated_data_type, node); 217 218 if (a->self.size != b->self.size) 219 return a->self.size < b->self.size; 220 return strcmp(a->self.type_name, b->self.type_name) < 0; 221 } 222 223 /* Recursively add new members for struct/union */ 224 static int __add_member_cb(Dwarf_Die *die, void *arg) 225 { 226 struct annotated_member *parent = arg; 227 struct annotated_member *member; 228 Dwarf_Die member_type, die_mem; 229 Dwarf_Word size, loc, bit_size = 0; 230 Dwarf_Attribute attr; 231 struct strbuf sb; 232 int tag; 233 234 if (dwarf_tag(die) != DW_TAG_member) 235 return DIE_FIND_CB_SIBLING; 236 237 member = zalloc(sizeof(*member)); 238 if (member == NULL) 239 return DIE_FIND_CB_END; 240 241 strbuf_init(&sb, 32); 242 die_get_typename(die, &sb); 243 244 __die_get_real_type(die, &member_type); 245 if (dwarf_tag(&member_type) == DW_TAG_typedef) 246 die_get_real_type(&member_type, &die_mem); 247 else 248 die_mem = member_type; 249 250 if (dwarf_aggregate_size(&die_mem, &size) < 0) 251 size = 0; 252 253 if (dwarf_attr_integrate(die, DW_AT_data_member_location, &attr)) 254 dwarf_formudata(&attr, &loc); 255 else { 256 /* bitfield member */ 257 if (dwarf_attr_integrate(die, DW_AT_data_bit_offset, &attr) && 258 dwarf_formudata(&attr, &loc) == 0) 259 loc /= 8; 260 else 261 loc = 0; 262 263 if (dwarf_attr_integrate(die, DW_AT_bit_size, &attr) && 264 dwarf_formudata(&attr, &bit_size) == 0) 265 size = (bit_size + 7) / 8; 266 } 267 268 member->type_name = strbuf_detach(&sb, NULL); 269 /* member->var_name can be NULL */ 270 if (dwarf_diename(die)) { 271 if (bit_size) { 272 if (asprintf(&member->var_name, "%s:%ld", 273 dwarf_diename(die), (long)bit_size) < 0) 274 member->var_name = NULL; 275 } else { 276 member->var_name = strdup(dwarf_diename(die)); 277 } 278 279 if (member->var_name == NULL) { 280 free(member); 281 return DIE_FIND_CB_END; 282 } 283 } 284 member->size = size; 285 member->offset = loc + parent->offset; 286 INIT_LIST_HEAD(&member->children); 287 list_add_tail(&member->node, &parent->children); 288 289 tag = dwarf_tag(&die_mem); 290 switch (tag) { 291 case DW_TAG_structure_type: 292 case DW_TAG_union_type: 293 die_find_child(&die_mem, __add_member_cb, member, &die_mem); 294 break; 295 default: 296 break; 297 } 298 return DIE_FIND_CB_SIBLING; 299 } 300 301 static void add_member_types(struct annotated_data_type *parent, Dwarf_Die *type) 302 { 303 Dwarf_Die die_mem; 304 305 die_find_child(type, __add_member_cb, &parent->self, &die_mem); 306 } 307 308 static void delete_members(struct annotated_member *member) 309 { 310 struct annotated_member *child, *tmp; 311 312 list_for_each_entry_safe(child, tmp, &member->children, node) { 313 list_del(&child->node); 314 delete_members(child); 315 zfree(&child->type_name); 316 zfree(&child->var_name); 317 free(child); 318 } 319 } 320 321 static int fill_member_name(char *buf, size_t sz, struct annotated_member *m, 322 int offset, bool first) 323 { 324 struct annotated_member *child; 325 326 if (list_empty(&m->children)) 327 return 0; 328 329 list_for_each_entry(child, &m->children, node) { 330 int len; 331 332 if (offset < child->offset || offset >= child->offset + child->size) 333 continue; 334 335 /* It can have anonymous struct/union members */ 336 if (child->var_name) { 337 len = scnprintf(buf, sz, "%s%s", 338 first ? "" : ".", child->var_name); 339 first = false; 340 } else { 341 len = 0; 342 } 343 344 return fill_member_name(buf + len, sz - len, child, offset, first) + len; 345 } 346 return 0; 347 } 348 349 int annotated_data_type__get_member_name(struct annotated_data_type *adt, 350 char *buf, size_t sz, int member_offset) 351 { 352 return fill_member_name(buf, sz, &adt->self, member_offset, /*first=*/true); 353 } 354 355 static struct annotated_data_type *dso__findnew_data_type(struct dso *dso, 356 Dwarf_Die *type_die) 357 { 358 struct annotated_data_type *result = NULL; 359 struct annotated_data_type key; 360 struct rb_node *node; 361 struct strbuf sb; 362 char *type_name; 363 Dwarf_Word size; 364 365 strbuf_init(&sb, 32); 366 if (die_get_typename_from_type(type_die, &sb) < 0) 367 strbuf_add(&sb, "(unknown type)", 14); 368 type_name = strbuf_detach(&sb, NULL); 369 370 if (dwarf_tag(type_die) == DW_TAG_typedef) 371 die_get_real_type(type_die, type_die); 372 373 dwarf_aggregate_size(type_die, &size); 374 375 /* Check existing nodes in dso->data_types tree */ 376 key.self.type_name = type_name; 377 key.self.size = size; 378 node = rb_find(&key, dso__data_types(dso), data_type_cmp); 379 if (node) { 380 result = rb_entry(node, struct annotated_data_type, node); 381 free(type_name); 382 return result; 383 } 384 385 /* If not, add a new one */ 386 result = zalloc(sizeof(*result)); 387 if (result == NULL) { 388 free(type_name); 389 return NULL; 390 } 391 392 result->self.type_name = type_name; 393 result->self.size = size; 394 INIT_LIST_HEAD(&result->self.children); 395 396 if (symbol_conf.annotate_data_member) 397 add_member_types(result, type_die); 398 399 rb_add(&result->node, dso__data_types(dso), data_type_less); 400 return result; 401 } 402 403 static bool find_cu_die(struct debuginfo *di, u64 pc, Dwarf_Die *cu_die) 404 { 405 Dwarf_Off off, next_off; 406 size_t header_size; 407 408 if (dwarf_addrdie(di->dbg, pc, cu_die) != NULL) 409 return cu_die; 410 411 /* 412 * There are some kernels don't have full aranges and contain only a few 413 * aranges entries. Fallback to iterate all CU entries in .debug_info 414 * in case it's missing. 415 */ 416 off = 0; 417 while (dwarf_nextcu(di->dbg, off, &next_off, &header_size, 418 NULL, NULL, NULL) == 0) { 419 if (dwarf_offdie(di->dbg, off + header_size, cu_die) && 420 dwarf_haspc(cu_die, pc)) 421 return true; 422 423 off = next_off; 424 } 425 return false; 426 } 427 428 enum type_match_result { 429 PERF_TMR_UNKNOWN = 0, 430 PERF_TMR_OK, 431 PERF_TMR_NO_TYPE, 432 PERF_TMR_NO_POINTER, 433 PERF_TMR_NO_SIZE, 434 PERF_TMR_BAD_OFFSET, 435 PERF_TMR_BAIL_OUT, 436 }; 437 438 static const char *match_result_str(enum type_match_result tmr) 439 { 440 switch (tmr) { 441 case PERF_TMR_OK: 442 return "Good!"; 443 case PERF_TMR_NO_TYPE: 444 return "no type information"; 445 case PERF_TMR_NO_POINTER: 446 return "no/void pointer"; 447 case PERF_TMR_NO_SIZE: 448 return "type size is unknown"; 449 case PERF_TMR_BAD_OFFSET: 450 return "offset bigger than size"; 451 case PERF_TMR_UNKNOWN: 452 case PERF_TMR_BAIL_OUT: 453 default: 454 return "invalid state"; 455 } 456 } 457 458 static bool is_pointer_type(Dwarf_Die *type_die) 459 { 460 int tag = dwarf_tag(type_die); 461 462 return tag == DW_TAG_pointer_type || tag == DW_TAG_array_type; 463 } 464 465 static bool is_compound_type(Dwarf_Die *type_die) 466 { 467 int tag = dwarf_tag(type_die); 468 469 return tag == DW_TAG_structure_type || tag == DW_TAG_union_type; 470 } 471 472 /* returns if Type B has better information than Type A */ 473 static bool is_better_type(Dwarf_Die *type_a, Dwarf_Die *type_b) 474 { 475 Dwarf_Word size_a, size_b; 476 Dwarf_Die die_a, die_b; 477 478 /* pointer type is preferred */ 479 if (is_pointer_type(type_a) != is_pointer_type(type_b)) 480 return is_pointer_type(type_b); 481 482 if (is_pointer_type(type_b)) { 483 /* 484 * We want to compare the target type, but 'void *' can fail to 485 * get the target type. 486 */ 487 if (die_get_real_type(type_a, &die_a) == NULL) 488 return true; 489 if (die_get_real_type(type_b, &die_b) == NULL) 490 return false; 491 492 type_a = &die_a; 493 type_b = &die_b; 494 } 495 496 /* bigger type is preferred */ 497 if (dwarf_aggregate_size(type_a, &size_a) < 0 || 498 dwarf_aggregate_size(type_b, &size_b) < 0) 499 return false; 500 501 if (size_a != size_b) 502 return size_a < size_b; 503 504 /* struct or union is preferred */ 505 if (is_compound_type(type_a) != is_compound_type(type_b)) 506 return is_compound_type(type_b); 507 508 /* typedef is preferred */ 509 if (dwarf_tag(type_b) == DW_TAG_typedef) 510 return true; 511 512 return false; 513 } 514 515 /* The type info will be saved in @type_die */ 516 static enum type_match_result check_variable(struct data_loc_info *dloc, 517 Dwarf_Die *var_die, 518 Dwarf_Die *type_die, int reg, 519 int offset, bool is_fbreg) 520 { 521 Dwarf_Word size; 522 bool needs_pointer = true; 523 Dwarf_Die sized_type; 524 525 if (reg == DWARF_REG_PC) 526 needs_pointer = false; 527 else if (reg == dloc->fbreg || is_fbreg) 528 needs_pointer = false; 529 else if (arch__is(dloc->arch, "x86") && reg == X86_REG_SP) 530 needs_pointer = false; 531 532 /* Get the type of the variable */ 533 if (__die_get_real_type(var_die, type_die) == NULL) 534 return PERF_TMR_NO_TYPE; 535 536 /* 537 * Usually it expects a pointer type for a memory access. 538 * Convert to a real type it points to. But global variables 539 * and local variables are accessed directly without a pointer. 540 */ 541 if (needs_pointer) { 542 if (!is_pointer_type(type_die) || 543 __die_get_real_type(type_die, type_die) == NULL) 544 return PERF_TMR_NO_POINTER; 545 } 546 547 if (dwarf_tag(type_die) == DW_TAG_typedef) 548 die_get_real_type(type_die, &sized_type); 549 else 550 sized_type = *type_die; 551 552 /* Get the size of the actual type */ 553 if (dwarf_aggregate_size(&sized_type, &size) < 0) 554 return PERF_TMR_NO_SIZE; 555 556 /* Minimal sanity check */ 557 if ((unsigned)offset >= size) 558 return PERF_TMR_BAD_OFFSET; 559 560 return PERF_TMR_OK; 561 } 562 563 struct type_state_stack *find_stack_state(struct type_state *state, 564 int offset) 565 { 566 struct type_state_stack *stack; 567 568 list_for_each_entry(stack, &state->stack_vars, list) { 569 if (offset == stack->offset) 570 return stack; 571 572 if (stack->compound && stack->offset < offset && 573 offset < stack->offset + stack->size) 574 return stack; 575 } 576 return NULL; 577 } 578 579 void set_stack_state(struct type_state_stack *stack, int offset, u8 kind, 580 Dwarf_Die *type_die, int ptr_offset) 581 { 582 int tag; 583 Dwarf_Word size; 584 585 if (kind == TSR_KIND_POINTER) { 586 /* TODO: arch-dependent pointer size */ 587 size = sizeof(void *); 588 } 589 else if (dwarf_aggregate_size(type_die, &size) < 0) 590 size = 0; 591 592 stack->type = *type_die; 593 stack->size = size; 594 stack->offset = offset; 595 stack->ptr_offset = ptr_offset; 596 stack->kind = kind; 597 598 if (kind == TSR_KIND_POINTER) { 599 stack->compound = false; 600 return; 601 } 602 603 tag = dwarf_tag(type_die); 604 605 switch (tag) { 606 case DW_TAG_structure_type: 607 case DW_TAG_union_type: 608 stack->compound = (kind != TSR_KIND_PERCPU_POINTER); 609 break; 610 default: 611 stack->compound = false; 612 break; 613 } 614 } 615 616 struct type_state_stack *findnew_stack_state(struct type_state *state, 617 int offset, u8 kind, 618 Dwarf_Die *type_die, 619 int ptr_offset) 620 { 621 struct type_state_stack *stack = find_stack_state(state, offset); 622 623 if (stack) { 624 set_stack_state(stack, offset, kind, type_die, ptr_offset); 625 return stack; 626 } 627 628 stack = malloc(sizeof(*stack)); 629 if (stack) { 630 set_stack_state(stack, offset, kind, type_die, ptr_offset); 631 list_add(&stack->list, &state->stack_vars); 632 } 633 return stack; 634 } 635 636 /* Maintain a cache for quick global variable lookup */ 637 struct global_var_entry { 638 struct rb_node node; 639 char *name; 640 u64 start; 641 u64 end; 642 u64 die_offset; 643 }; 644 645 static int global_var_cmp(const void *_key, const struct rb_node *node) 646 { 647 const u64 addr = (uintptr_t)_key; 648 struct global_var_entry *gvar; 649 650 gvar = rb_entry(node, struct global_var_entry, node); 651 652 if (gvar->start <= addr && addr < gvar->end) 653 return 0; 654 return gvar->start > addr ? -1 : 1; 655 } 656 657 static bool global_var_less(struct rb_node *node_a, const struct rb_node *node_b) 658 { 659 struct global_var_entry *gvar_a, *gvar_b; 660 661 gvar_a = rb_entry(node_a, struct global_var_entry, node); 662 gvar_b = rb_entry(node_b, struct global_var_entry, node); 663 664 return gvar_a->start < gvar_b->start; 665 } 666 667 static struct global_var_entry *global_var__find(struct data_loc_info *dloc, u64 addr) 668 { 669 struct dso *dso = map__dso(dloc->ms->map); 670 struct rb_node *node; 671 672 node = rb_find((void *)(uintptr_t)addr, dso__global_vars(dso), global_var_cmp); 673 if (node == NULL) 674 return NULL; 675 676 return rb_entry(node, struct global_var_entry, node); 677 } 678 679 static bool global_var__add(struct data_loc_info *dloc, u64 addr, 680 const char *name, Dwarf_Die *type_die) 681 { 682 struct dso *dso = map__dso(dloc->ms->map); 683 struct global_var_entry *gvar; 684 Dwarf_Word size; 685 686 if (dwarf_aggregate_size(type_die, &size) < 0) 687 return false; 688 689 gvar = malloc(sizeof(*gvar)); 690 if (gvar == NULL) 691 return false; 692 693 gvar->name = name ? strdup(name) : NULL; 694 if (name && gvar->name == NULL) { 695 free(gvar); 696 return false; 697 } 698 699 gvar->start = addr; 700 gvar->end = addr + size; 701 gvar->die_offset = dwarf_dieoffset(type_die); 702 703 rb_add(&gvar->node, dso__global_vars(dso), global_var_less); 704 return true; 705 } 706 707 void global_var_type__tree_delete(struct rb_root *root) 708 { 709 struct global_var_entry *gvar; 710 711 while (!RB_EMPTY_ROOT(root)) { 712 struct rb_node *node = rb_first(root); 713 714 rb_erase(node, root); 715 gvar = rb_entry(node, struct global_var_entry, node); 716 zfree(&gvar->name); 717 free(gvar); 718 } 719 } 720 721 bool get_global_var_info(struct data_loc_info *dloc, u64 addr, 722 const char **var_name, int *var_offset) 723 { 724 struct addr_location al; 725 struct symbol *sym; 726 u64 mem_addr; 727 728 /* Kernel symbols might be relocated */ 729 mem_addr = addr + map__reloc(dloc->ms->map); 730 731 addr_location__init(&al); 732 sym = thread__find_symbol_fb(dloc->thread, dloc->cpumode, 733 mem_addr, &al); 734 if (sym) { 735 *var_name = sym->name; 736 /* Calculate type offset from the start of variable */ 737 *var_offset = mem_addr - map__unmap_ip(al.map, sym->start); 738 } else { 739 *var_name = NULL; 740 } 741 addr_location__exit(&al); 742 if (*var_name == NULL) 743 return false; 744 745 return true; 746 } 747 748 static void global_var__collect(struct data_loc_info *dloc) 749 { 750 Dwarf *dwarf = dloc->di->dbg; 751 Dwarf_Off off, next_off; 752 Dwarf_Die cu_die, type_die; 753 size_t header_size; 754 755 /* Iterate all CU and collect global variables that have no location in a register. */ 756 off = 0; 757 while (dwarf_nextcu(dwarf, off, &next_off, &header_size, 758 NULL, NULL, NULL) == 0) { 759 struct die_var_type *var_types = NULL; 760 struct die_var_type *pos; 761 762 if (dwarf_offdie(dwarf, off + header_size, &cu_die) == NULL) { 763 off = next_off; 764 continue; 765 } 766 767 die_collect_global_vars(&cu_die, &var_types); 768 769 for (pos = var_types; pos; pos = pos->next) { 770 const char *var_name = NULL; 771 int var_offset = 0; 772 773 if (pos->reg != -1) 774 continue; 775 776 if (!dwarf_offdie(dwarf, pos->die_off, &type_die)) 777 continue; 778 779 if (!get_global_var_info(dloc, pos->addr, &var_name, 780 &var_offset)) 781 continue; 782 783 if (var_offset != 0) 784 continue; 785 786 global_var__add(dloc, pos->addr, var_name, &type_die); 787 } 788 789 delete_var_types(var_types); 790 791 off = next_off; 792 } 793 } 794 795 bool get_global_var_type(Dwarf_Die *cu_die, struct data_loc_info *dloc, 796 u64 ip, u64 var_addr, int *var_offset, 797 Dwarf_Die *type_die) 798 { 799 u64 pc; 800 int offset; 801 const char *var_name = NULL; 802 struct global_var_entry *gvar; 803 struct dso *dso = map__dso(dloc->ms->map); 804 Dwarf_Die var_die; 805 806 if (RB_EMPTY_ROOT(dso__global_vars(dso))) 807 global_var__collect(dloc); 808 809 gvar = global_var__find(dloc, var_addr); 810 if (gvar) { 811 if (!dwarf_offdie(dloc->di->dbg, gvar->die_offset, type_die)) 812 return false; 813 814 *var_offset = var_addr - gvar->start; 815 return true; 816 } 817 818 /* Try to get the variable by address first */ 819 if (die_find_variable_by_addr(cu_die, var_addr, &var_die, &offset) && 820 check_variable(dloc, &var_die, type_die, DWARF_REG_PC, offset, 821 /*is_fbreg=*/false) == PERF_TMR_OK) { 822 var_name = dwarf_diename(&var_die); 823 *var_offset = offset; 824 goto ok; 825 } 826 827 if (!get_global_var_info(dloc, var_addr, &var_name, var_offset)) 828 return false; 829 830 pc = map__rip_2objdump(dloc->ms->map, ip); 831 832 /* Try to get the name of global variable */ 833 if (die_find_variable_at(cu_die, var_name, pc, &var_die) && 834 check_variable(dloc, &var_die, type_die, DWARF_REG_PC, *var_offset, 835 /*is_fbreg=*/false) == PERF_TMR_OK) 836 goto ok; 837 838 return false; 839 840 ok: 841 /* The address should point to the start of the variable */ 842 global_var__add(dloc, var_addr - *var_offset, var_name, type_die); 843 return true; 844 } 845 846 static bool die_is_same(Dwarf_Die *die_a, Dwarf_Die *die_b) 847 { 848 return (die_a->cu == die_b->cu) && (die_a->addr == die_b->addr); 849 } 850 851 /** 852 * update_var_state - Update type state using given variables 853 * @state: type state table 854 * @dloc: data location info 855 * @addr: instruction address to match with variable 856 * @insn_offset: instruction offset (for debug) 857 * @var_types: list of variables with type info 858 * 859 * This function fills the @state table using @var_types info. Each variable 860 * is used only at the given location and updates an entry in the table. 861 */ 862 static void update_var_state(struct type_state *state, struct data_loc_info *dloc, 863 u64 addr, u64 insn_offset, struct die_var_type *var_types) 864 { 865 Dwarf_Die mem_die; 866 struct die_var_type *var; 867 int fbreg = dloc->fbreg; 868 int fb_offset = 0; 869 870 if (dloc->fb_cfa) { 871 if (die_get_cfa(dloc->di->dbg, addr, &fbreg, &fb_offset) < 0) 872 fbreg = -1; 873 } 874 875 for (var = var_types; var != NULL; var = var->next) { 876 if (var->addr != addr) 877 continue; 878 /* Get the type DIE using the offset */ 879 if (!dwarf_offdie(dloc->di->dbg, var->die_off, &mem_die)) 880 continue; 881 882 if (var->reg == DWARF_REG_FB || var->reg == fbreg || var->reg == state->stack_reg) { 883 int offset = var->offset; 884 struct type_state_stack *stack; 885 886 /* If the reg location holds the pointer value, dereference the type */ 887 if (!var->is_reg_var_addr && is_pointer_type(&mem_die) && 888 __die_get_real_type(&mem_die, &mem_die) == NULL) 889 continue; 890 891 if (var->reg != DWARF_REG_FB) 892 offset -= fb_offset; 893 894 stack = find_stack_state(state, offset); 895 if (stack && stack->kind == TSR_KIND_TYPE && 896 !is_better_type(&stack->type, &mem_die)) 897 continue; 898 899 findnew_stack_state(state, offset, TSR_KIND_TYPE, 900 &mem_die, /*ptr_offset=*/0); 901 902 if (var->reg == state->stack_reg) { 903 pr_debug_dtp("var [%"PRIx64"] %#x(reg%d)", 904 insn_offset, offset, state->stack_reg); 905 } else { 906 pr_debug_dtp("var [%"PRIx64"] -%#x(stack)", 907 insn_offset, -offset); 908 } 909 pr_debug_type_name(&mem_die, TSR_KIND_TYPE); 910 } else if (has_reg_type(state, var->reg)) { 911 struct type_state_reg *reg; 912 Dwarf_Die orig_type; 913 914 reg = &state->regs[var->reg]; 915 916 if (reg->ok && reg->kind == TSR_KIND_TYPE && 917 (!is_better_type(®->type, &mem_die) || var->is_reg_var_addr)) 918 continue; 919 920 /* Handle address registers with TSR_KIND_POINTER */ 921 if (var->is_reg_var_addr) { 922 if (reg->ok && reg->kind == TSR_KIND_POINTER && 923 !is_better_type(®->type, &mem_die)) 924 continue; 925 926 reg->offset = -var->offset; 927 reg->type = mem_die; 928 reg->kind = TSR_KIND_POINTER; 929 reg->ok = true; 930 931 pr_debug_dtp("var [%"PRIx64"] reg%d addr offset %x", 932 insn_offset, var->reg, var->offset); 933 pr_debug_type_name(&mem_die, TSR_KIND_POINTER); 934 continue; 935 } 936 937 orig_type = reg->type; 938 /* 939 * var->offset + reg value is the beginning of the struct 940 * reg->offset is the offset the reg points 941 */ 942 reg->offset = -var->offset; 943 reg->type = mem_die; 944 reg->kind = TSR_KIND_TYPE; 945 reg->ok = true; 946 947 pr_debug_dtp("var [%"PRIx64"] reg%d offset %x", 948 insn_offset, var->reg, var->offset); 949 pr_debug_type_name(&mem_die, TSR_KIND_TYPE); 950 951 /* 952 * If this register is directly copied from another and it gets a 953 * better type, also update the type of the source register. This 954 * is usually the case of container_of() macro with offset of 0. 955 */ 956 if (has_reg_type(state, reg->copied_from)) { 957 struct type_state_reg *copy_reg; 958 959 copy_reg = &state->regs[reg->copied_from]; 960 961 /* TODO: check if type is compatible or embedded */ 962 if (!copy_reg->ok || (copy_reg->kind != TSR_KIND_TYPE) || 963 !die_is_same(©_reg->type, &orig_type) || 964 !is_better_type(©_reg->type, &mem_die)) 965 continue; 966 967 copy_reg->type = mem_die; 968 969 pr_debug_dtp("var [%"PRIx64"] copyback reg%d", 970 insn_offset, reg->copied_from); 971 pr_debug_type_name(&mem_die, TSR_KIND_TYPE); 972 } 973 } 974 } 975 } 976 977 /** 978 * update_insn_state - Update type state for an instruction 979 * @state: type state table 980 * @dloc: data location info 981 * @cu_die: compile unit debug entry 982 * @dl: disasm line for the instruction 983 * 984 * This function updates the @state table for the target operand of the 985 * instruction at @dl if it transfers the type like MOV on x86. Since it 986 * tracks the type, it won't care about the values like in arithmetic 987 * instructions like ADD/SUB/MUL/DIV and INC/DEC. 988 * 989 * Note that ops->reg2 is only available when both mem_ref and multi_regs 990 * are true. 991 */ 992 static void update_insn_state(struct type_state *state, struct data_loc_info *dloc, 993 Dwarf_Die *cu_die, struct disasm_line *dl) 994 { 995 if (dloc->arch->update_insn_state) 996 dloc->arch->update_insn_state(state, dloc, cu_die, dl); 997 } 998 999 /* 1000 * Prepend this_blocks (from the outer scope) to full_blocks, removing 1001 * duplicate disasm line. 1002 */ 1003 static void prepend_basic_blocks(struct list_head *this_blocks, 1004 struct list_head *full_blocks) 1005 { 1006 struct annotated_basic_block *first_bb, *last_bb; 1007 1008 last_bb = list_last_entry(this_blocks, typeof(*last_bb), list); 1009 first_bb = list_first_entry(full_blocks, typeof(*first_bb), list); 1010 1011 if (list_empty(full_blocks)) 1012 goto out; 1013 1014 /* Last insn in this_blocks should be same as first insn in full_blocks */ 1015 if (last_bb->end != first_bb->begin) { 1016 pr_debug("prepend basic blocks: mismatched disasm line %"PRIx64" -> %"PRIx64"\n", 1017 last_bb->end->al.offset, first_bb->begin->al.offset); 1018 goto out; 1019 } 1020 1021 /* Is the basic block have only one disasm_line? */ 1022 if (last_bb->begin == last_bb->end) { 1023 list_del(&last_bb->list); 1024 free(last_bb); 1025 goto out; 1026 } 1027 1028 /* Point to the insn before the last when adding this block to full_blocks */ 1029 last_bb->end = list_prev_entry(last_bb->end, al.node); 1030 1031 out: 1032 list_splice(this_blocks, full_blocks); 1033 } 1034 1035 static void delete_basic_blocks(struct list_head *basic_blocks) 1036 { 1037 struct annotated_basic_block *bb, *tmp; 1038 1039 list_for_each_entry_safe(bb, tmp, basic_blocks, list) { 1040 list_del(&bb->list); 1041 free(bb); 1042 } 1043 } 1044 1045 /* Make sure all variables have a valid start address */ 1046 static void fixup_var_address(struct die_var_type *var_types, u64 addr) 1047 { 1048 while (var_types) { 1049 /* 1050 * Some variables have no address range meaning it's always 1051 * available in the whole scope. Let's adjust the start 1052 * address to the start of the scope. 1053 */ 1054 if (var_types->addr == 0) 1055 var_types->addr = addr; 1056 1057 var_types = var_types->next; 1058 } 1059 } 1060 1061 static void delete_var_types(struct die_var_type *var_types) 1062 { 1063 while (var_types) { 1064 struct die_var_type *next = var_types->next; 1065 1066 free(var_types); 1067 var_types = next; 1068 } 1069 } 1070 1071 /* should match to is_stack_canary() in util/annotate.c */ 1072 static void setup_stack_canary(struct data_loc_info *dloc) 1073 { 1074 if (arch__is(dloc->arch, "x86")) { 1075 dloc->op->segment = INSN_SEG_X86_GS; 1076 dloc->op->imm = true; 1077 dloc->op->offset = 40; 1078 } 1079 } 1080 1081 /* 1082 * It's at the target address, check if it has a matching type. 1083 * It returns PERF_TMR_BAIL_OUT when it looks up per-cpu variables which 1084 * are similar to global variables and no additional info is needed. 1085 */ 1086 static enum type_match_result check_matching_type(struct type_state *state, 1087 struct data_loc_info *dloc, 1088 Dwarf_Die *cu_die, 1089 struct disasm_line *dl, 1090 Dwarf_Die *type_die) 1091 { 1092 Dwarf_Word size; 1093 u32 insn_offset = dl->al.offset; 1094 int reg = dloc->op->reg1; 1095 int offset = dloc->op->offset; 1096 const char *offset_sign = ""; 1097 bool retry = true; 1098 1099 if (offset < 0) { 1100 offset = -offset; 1101 offset_sign = "-"; 1102 } 1103 1104 again: 1105 pr_debug_dtp("chk [%x] reg%d offset=%s%#x ok=%d kind=%d ", 1106 insn_offset, reg, offset_sign, offset, 1107 state->regs[reg].ok, state->regs[reg].kind); 1108 1109 if (!state->regs[reg].ok) 1110 goto check_non_register; 1111 1112 if (state->regs[reg].kind == TSR_KIND_TYPE) { 1113 Dwarf_Die sized_type; 1114 struct strbuf sb; 1115 1116 strbuf_init(&sb, 32); 1117 die_get_typename_from_type(&state->regs[reg].type, &sb); 1118 pr_debug_dtp("(%s)", sb.buf); 1119 strbuf_release(&sb); 1120 1121 /* 1122 * Normal registers should hold a pointer (or array) to 1123 * dereference a memory location. 1124 */ 1125 if (!is_pointer_type(&state->regs[reg].type)) { 1126 if (dloc->op->offset < 0 && reg != state->stack_reg) 1127 goto check_kernel; 1128 1129 return PERF_TMR_NO_POINTER; 1130 } 1131 1132 /* Remove the pointer and get the target type */ 1133 if (__die_get_real_type(&state->regs[reg].type, type_die) == NULL) 1134 return PERF_TMR_NO_POINTER; 1135 1136 dloc->type_offset = dloc->op->offset + state->regs[reg].offset; 1137 1138 if (dwarf_tag(type_die) == DW_TAG_typedef) 1139 die_get_real_type(type_die, &sized_type); 1140 else 1141 sized_type = *type_die; 1142 1143 /* Get the size of the actual type */ 1144 if (dwarf_aggregate_size(&sized_type, &size) < 0 || 1145 (unsigned)dloc->type_offset >= size) 1146 return PERF_TMR_BAD_OFFSET; 1147 1148 return PERF_TMR_OK; 1149 } 1150 1151 if (state->regs[reg].kind == TSR_KIND_POINTER) { 1152 struct strbuf sb; 1153 1154 strbuf_init(&sb, 32); 1155 die_get_typename_from_type(&state->regs[reg].type, &sb); 1156 pr_debug_dtp("(ptr->%s)", sb.buf); 1157 strbuf_release(&sb); 1158 1159 /* 1160 * Register holds a pointer (address) to the target variable. 1161 * The type is the type of the variable it points to. 1162 */ 1163 *type_die = state->regs[reg].type; 1164 1165 dloc->type_offset = dloc->op->offset + state->regs[reg].offset; 1166 1167 /* Get the size of the actual type */ 1168 if (dwarf_aggregate_size(type_die, &size) < 0 || 1169 (unsigned)dloc->type_offset >= size) 1170 return PERF_TMR_BAD_OFFSET; 1171 1172 return PERF_TMR_OK; 1173 } 1174 1175 if (state->regs[reg].kind == TSR_KIND_PERCPU_POINTER) { 1176 pr_debug_dtp("percpu ptr"); 1177 1178 /* 1179 * It's actaully pointer but the address was calculated using 1180 * some arithmetic. So it points to the actual type already. 1181 */ 1182 *type_die = state->regs[reg].type; 1183 1184 dloc->type_offset = dloc->op->offset; 1185 1186 /* Get the size of the actual type */ 1187 if (dwarf_aggregate_size(type_die, &size) < 0 || 1188 (unsigned)dloc->type_offset >= size) 1189 return PERF_TMR_BAIL_OUT; 1190 1191 return PERF_TMR_OK; 1192 } 1193 1194 if (state->regs[reg].kind == TSR_KIND_CANARY) { 1195 pr_debug_dtp("stack canary"); 1196 1197 /* 1198 * This is a saved value of the stack canary which will be handled 1199 * in the outer logic when it returns failure here. Pretend it's 1200 * from the stack canary directly. 1201 */ 1202 setup_stack_canary(dloc); 1203 1204 return PERF_TMR_BAIL_OUT; 1205 } 1206 1207 if (state->regs[reg].kind == TSR_KIND_PERCPU_BASE) { 1208 u64 var_addr = dloc->op->offset; 1209 int var_offset; 1210 1211 pr_debug_dtp("percpu var"); 1212 1213 if (dloc->op->multi_regs) { 1214 int reg2 = dloc->op->reg2; 1215 1216 if (dloc->op->reg2 == reg) 1217 reg2 = dloc->op->reg1; 1218 1219 if (has_reg_type(state, reg2) && state->regs[reg2].ok && 1220 state->regs[reg2].kind == TSR_KIND_CONST) 1221 var_addr += state->regs[reg2].imm_value; 1222 } 1223 1224 if (get_global_var_type(cu_die, dloc, dloc->ip, var_addr, 1225 &var_offset, type_die)) { 1226 dloc->type_offset = var_offset; 1227 return PERF_TMR_OK; 1228 } 1229 /* No need to retry per-cpu (global) variables */ 1230 return PERF_TMR_BAIL_OUT; 1231 } 1232 1233 check_non_register: 1234 if (reg == dloc->fbreg || reg == state->stack_reg) { 1235 struct type_state_stack *stack; 1236 1237 pr_debug_dtp("%s", reg == dloc->fbreg ? "fbreg" : "stack"); 1238 1239 stack = find_stack_state(state, dloc->type_offset); 1240 if (stack == NULL) { 1241 if (retry) { 1242 pr_debug_dtp(" : retry\n"); 1243 retry = false; 1244 1245 /* update type info it's the first store to the stack */ 1246 update_insn_state(state, dloc, cu_die, dl); 1247 goto again; 1248 } 1249 return PERF_TMR_NO_TYPE; 1250 } 1251 1252 if (stack->kind == TSR_KIND_CANARY) { 1253 setup_stack_canary(dloc); 1254 return PERF_TMR_BAIL_OUT; 1255 } 1256 1257 if (stack->kind != TSR_KIND_TYPE) 1258 return PERF_TMR_NO_TYPE; 1259 1260 *type_die = stack->type; 1261 /* Update the type offset from the start of slot */ 1262 dloc->type_offset -= stack->offset; 1263 1264 return PERF_TMR_OK; 1265 } 1266 1267 if (dloc->fb_cfa) { 1268 struct type_state_stack *stack; 1269 u64 pc = map__rip_2objdump(dloc->ms->map, dloc->ip); 1270 int fbreg, fboff; 1271 1272 pr_debug_dtp("cfa"); 1273 1274 if (die_get_cfa(dloc->di->dbg, pc, &fbreg, &fboff) < 0) 1275 fbreg = -1; 1276 1277 if (reg != fbreg) 1278 return PERF_TMR_NO_TYPE; 1279 1280 stack = find_stack_state(state, dloc->type_offset - fboff); 1281 if (stack == NULL) { 1282 if (retry) { 1283 pr_debug_dtp(" : retry\n"); 1284 retry = false; 1285 1286 /* update type info it's the first store to the stack */ 1287 update_insn_state(state, dloc, cu_die, dl); 1288 goto again; 1289 } 1290 return PERF_TMR_NO_TYPE; 1291 } 1292 1293 if (stack->kind == TSR_KIND_CANARY) { 1294 setup_stack_canary(dloc); 1295 return PERF_TMR_BAIL_OUT; 1296 } 1297 1298 if (stack->kind != TSR_KIND_TYPE) 1299 return PERF_TMR_NO_TYPE; 1300 1301 *type_die = stack->type; 1302 /* Update the type offset from the start of slot */ 1303 dloc->type_offset -= fboff + stack->offset; 1304 1305 return PERF_TMR_OK; 1306 } 1307 1308 check_kernel: 1309 if (dso__kernel(map__dso(dloc->ms->map))) { 1310 u64 addr; 1311 1312 /* Direct this-cpu access like "%gs:0x34740" */ 1313 if (dloc->op->segment == INSN_SEG_X86_GS && dloc->op->imm && 1314 arch__is(dloc->arch, "x86")) { 1315 pr_debug_dtp("this-cpu var"); 1316 1317 addr = dloc->op->offset; 1318 1319 if (get_global_var_type(cu_die, dloc, dloc->ip, addr, 1320 &offset, type_die)) { 1321 dloc->type_offset = offset; 1322 return PERF_TMR_OK; 1323 } 1324 return PERF_TMR_BAIL_OUT; 1325 } 1326 1327 /* Access to global variable like "-0x7dcf0500(,%rdx,8)" */ 1328 if (dloc->op->offset < 0 && reg != state->stack_reg) { 1329 addr = (s64) dloc->op->offset; 1330 1331 if (get_global_var_type(cu_die, dloc, dloc->ip, addr, 1332 &offset, type_die)) { 1333 pr_debug_dtp("global var"); 1334 1335 dloc->type_offset = offset; 1336 return PERF_TMR_OK; 1337 } 1338 return PERF_TMR_BAIL_OUT; 1339 } 1340 } 1341 1342 return PERF_TMR_UNKNOWN; 1343 } 1344 1345 /* Iterate instructions in basic blocks and update type table */ 1346 static enum type_match_result find_data_type_insn(struct data_loc_info *dloc, 1347 struct list_head *basic_blocks, 1348 struct die_var_type *var_types, 1349 Dwarf_Die *cu_die, 1350 Dwarf_Die *type_die) 1351 { 1352 struct type_state state; 1353 struct symbol *sym = dloc->ms->sym; 1354 struct annotation *notes = symbol__annotation(sym); 1355 struct annotated_basic_block *bb; 1356 enum type_match_result ret = PERF_TMR_UNKNOWN; 1357 1358 init_type_state(&state, dloc->arch); 1359 1360 list_for_each_entry(bb, basic_blocks, list) { 1361 struct disasm_line *dl = bb->begin; 1362 1363 BUG_ON(bb->begin->al.offset == -1 || bb->end->al.offset == -1); 1364 1365 pr_debug_dtp("bb: [%"PRIx64" - %"PRIx64"]\n", 1366 bb->begin->al.offset, bb->end->al.offset); 1367 1368 list_for_each_entry_from(dl, ¬es->src->source, al.node) { 1369 u64 this_ip = sym->start + dl->al.offset; 1370 u64 addr = map__rip_2objdump(dloc->ms->map, this_ip); 1371 1372 /* Skip comment or debug info lines */ 1373 if (dl->al.offset == -1) 1374 continue; 1375 1376 /* Update variable type at this address */ 1377 update_var_state(&state, dloc, addr, dl->al.offset, var_types); 1378 1379 if (this_ip == dloc->ip) { 1380 ret = check_matching_type(&state, dloc, 1381 cu_die, dl, type_die); 1382 pr_debug_dtp(" : %s\n", match_result_str(ret)); 1383 goto out; 1384 } 1385 1386 /* Update type table after processing the instruction */ 1387 update_insn_state(&state, dloc, cu_die, dl); 1388 if (dl == bb->end) 1389 break; 1390 } 1391 } 1392 1393 out: 1394 exit_type_state(&state); 1395 return ret; 1396 } 1397 1398 static int arch_supports_insn_tracking(struct data_loc_info *dloc) 1399 { 1400 if ((arch__is(dloc->arch, "x86")) || (arch__is(dloc->arch, "powerpc"))) 1401 return 1; 1402 return 0; 1403 } 1404 1405 /* 1406 * Construct a list of basic blocks for each scope with variables and try to find 1407 * the data type by updating a type state table through instructions. 1408 */ 1409 static enum type_match_result find_data_type_block(struct data_loc_info *dloc, 1410 Dwarf_Die *cu_die, 1411 Dwarf_Die *scopes, 1412 int nr_scopes, 1413 Dwarf_Die *type_die) 1414 { 1415 LIST_HEAD(basic_blocks); 1416 struct die_var_type *var_types = NULL; 1417 u64 src_ip, dst_ip, prev_dst_ip; 1418 enum type_match_result ret = PERF_TMR_UNKNOWN; 1419 1420 /* TODO: other architecture support */ 1421 if (!arch_supports_insn_tracking(dloc)) 1422 return PERF_TMR_BAIL_OUT; 1423 1424 prev_dst_ip = dst_ip = dloc->ip; 1425 for (int i = nr_scopes - 1; i >= 0; i--) { 1426 Dwarf_Addr base, start, end; 1427 LIST_HEAD(this_blocks); 1428 1429 if (dwarf_ranges(&scopes[i], 0, &base, &start, &end) < 0) 1430 break; 1431 1432 pr_debug_dtp("scope: [%d/%d] ", i + 1, nr_scopes); 1433 pr_debug_scope(&scopes[i]); 1434 1435 src_ip = map__objdump_2rip(dloc->ms->map, start); 1436 1437 again: 1438 /* Get basic blocks for this scope */ 1439 if (annotate_get_basic_blocks(dloc->ms->sym, src_ip, dst_ip, 1440 &this_blocks) < 0) { 1441 /* Try previous block if they are not connected */ 1442 if (prev_dst_ip != dst_ip) { 1443 dst_ip = prev_dst_ip; 1444 goto again; 1445 } 1446 1447 pr_debug_dtp("cannot find a basic block from %"PRIx64" to %"PRIx64"\n", 1448 src_ip - dloc->ms->sym->start, 1449 dst_ip - dloc->ms->sym->start); 1450 continue; 1451 } 1452 prepend_basic_blocks(&this_blocks, &basic_blocks); 1453 1454 /* Get variable info for this scope and add to var_types list */ 1455 die_collect_vars(&scopes[i], &var_types); 1456 fixup_var_address(var_types, start); 1457 1458 /* Find from start of this scope to the target instruction */ 1459 ret = find_data_type_insn(dloc, &basic_blocks, var_types, 1460 cu_die, type_die); 1461 if (ret == PERF_TMR_OK) { 1462 char buf[64]; 1463 int offset = dloc->op->offset; 1464 const char *offset_sign = ""; 1465 1466 if (offset < 0) { 1467 offset = -offset; 1468 offset_sign = "-"; 1469 } 1470 1471 if (dloc->op->multi_regs) 1472 snprintf(buf, sizeof(buf), "reg%d, reg%d", 1473 dloc->op->reg1, dloc->op->reg2); 1474 else 1475 snprintf(buf, sizeof(buf), "reg%d", dloc->op->reg1); 1476 1477 pr_debug_dtp("found by insn track: %s%#x(%s) type-offset=%#x\n", 1478 offset_sign, offset, buf, dloc->type_offset); 1479 break; 1480 } 1481 1482 if (ret == PERF_TMR_BAIL_OUT) 1483 break; 1484 1485 /* Go up to the next scope and find blocks to the start */ 1486 prev_dst_ip = dst_ip; 1487 dst_ip = src_ip; 1488 } 1489 1490 delete_basic_blocks(&basic_blocks); 1491 delete_var_types(var_types); 1492 return ret; 1493 } 1494 1495 /* The result will be saved in @type_die */ 1496 static int find_data_type_die(struct data_loc_info *dloc, Dwarf_Die *type_die) 1497 { 1498 struct annotated_op_loc *loc = dloc->op; 1499 Dwarf_Die cu_die, var_die; 1500 Dwarf_Die *scopes = NULL; 1501 int reg, offset = loc->offset; 1502 int ret = -1; 1503 int i, nr_scopes; 1504 int fbreg = -1; 1505 int fb_offset = 0; 1506 bool is_fbreg = false; 1507 bool found = false; 1508 u64 pc; 1509 char buf[64]; 1510 enum type_match_result result = PERF_TMR_UNKNOWN; 1511 const char *offset_sign = ""; 1512 1513 if (dloc->op->multi_regs) 1514 snprintf(buf, sizeof(buf), "reg%d, reg%d", dloc->op->reg1, dloc->op->reg2); 1515 else if (dloc->op->reg1 == DWARF_REG_PC) 1516 snprintf(buf, sizeof(buf), "PC"); 1517 else 1518 snprintf(buf, sizeof(buf), "reg%d", dloc->op->reg1); 1519 1520 if (offset < 0) { 1521 offset = -offset; 1522 offset_sign = "-"; 1523 } 1524 1525 pr_debug_dtp("-----------------------------------------------------------\n"); 1526 pr_debug_dtp("find data type for %s%#x(%s) at %s+%#"PRIx64"\n", 1527 offset_sign, offset, buf, 1528 dloc->ms->sym->name, dloc->ip - dloc->ms->sym->start); 1529 1530 /* 1531 * IP is a relative instruction address from the start of the map, as 1532 * it can be randomized/relocated, it needs to translate to PC which is 1533 * a file address for DWARF processing. 1534 */ 1535 pc = map__rip_2objdump(dloc->ms->map, dloc->ip); 1536 1537 /* Get a compile_unit for this address */ 1538 if (!find_cu_die(dloc->di, pc, &cu_die)) { 1539 pr_debug_dtp("cannot find CU for address %"PRIx64"\n", pc); 1540 ann_data_stat.no_cuinfo++; 1541 return -1; 1542 } 1543 1544 reg = loc->reg1; 1545 offset = loc->offset; 1546 1547 pr_debug_dtp("CU for %s (die:%#lx)\n", 1548 dwarf_diename(&cu_die), (long)dwarf_dieoffset(&cu_die)); 1549 1550 if (reg == DWARF_REG_PC) { 1551 if (get_global_var_type(&cu_die, dloc, dloc->ip, dloc->var_addr, 1552 &offset, type_die)) { 1553 dloc->type_offset = offset; 1554 1555 pr_debug_dtp("found by addr=%#"PRIx64" type_offset=%#x\n", 1556 dloc->var_addr, offset); 1557 pr_debug_type_name(type_die, TSR_KIND_TYPE); 1558 found = true; 1559 goto out; 1560 } 1561 } 1562 1563 /* Get a list of nested scopes - i.e. (inlined) functions and blocks. */ 1564 nr_scopes = die_get_scopes(&cu_die, pc, &scopes); 1565 1566 if (reg != DWARF_REG_PC && dwarf_hasattr(&scopes[0], DW_AT_frame_base)) { 1567 Dwarf_Attribute attr; 1568 Dwarf_Block block; 1569 1570 /* Check if the 'reg' is assigned as frame base register */ 1571 if (dwarf_attr(&scopes[0], DW_AT_frame_base, &attr) != NULL && 1572 dwarf_formblock(&attr, &block) == 0 && block.length == 1) { 1573 switch (*block.data) { 1574 case DW_OP_reg0 ... DW_OP_reg31: 1575 fbreg = dloc->fbreg = *block.data - DW_OP_reg0; 1576 break; 1577 case DW_OP_call_frame_cfa: 1578 dloc->fb_cfa = true; 1579 if (die_get_cfa(dloc->di->dbg, pc, &fbreg, 1580 &fb_offset) < 0) 1581 fbreg = -1; 1582 break; 1583 default: 1584 break; 1585 } 1586 1587 pr_debug_dtp("frame base: cfa=%d fbreg=%d\n", 1588 dloc->fb_cfa, fbreg); 1589 } 1590 } 1591 1592 retry: 1593 is_fbreg = (reg == fbreg); 1594 if (is_fbreg) 1595 offset = loc->offset - fb_offset; 1596 1597 /* Search from the inner-most scope to the outer */ 1598 for (i = nr_scopes - 1; i >= 0; i--) { 1599 Dwarf_Die mem_die; 1600 int type_offset = offset; 1601 1602 if (reg == DWARF_REG_PC) { 1603 if (!die_find_variable_by_addr(&scopes[i], dloc->var_addr, 1604 &var_die, &type_offset)) 1605 continue; 1606 } else { 1607 /* Look up variables/parameters in this scope */ 1608 if (!die_find_variable_by_reg(&scopes[i], pc, reg, 1609 &type_offset, is_fbreg, &var_die)) 1610 continue; 1611 } 1612 1613 pr_debug_dtp("found \"%s\" (die: %#lx) in scope=%d/%d (die: %#lx) ", 1614 dwarf_diename(&var_die), (long)dwarf_dieoffset(&var_die), 1615 i+1, nr_scopes, (long)dwarf_dieoffset(&scopes[i])); 1616 1617 /* Found a variable, see if it's correct */ 1618 result = check_variable(dloc, &var_die, &mem_die, reg, type_offset, is_fbreg); 1619 if (result == PERF_TMR_OK) { 1620 if (reg == DWARF_REG_PC) { 1621 pr_debug_dtp("addr=%#"PRIx64" type_offset=%#x\n", 1622 dloc->var_addr, type_offset); 1623 } else if (reg == DWARF_REG_FB || is_fbreg) { 1624 pr_debug_dtp("stack_offset=%#x type_offset=%#x\n", 1625 fb_offset, type_offset); 1626 } else { 1627 pr_debug_dtp("type_offset=%#x\n", type_offset); 1628 } 1629 1630 if (!found || is_better_type(type_die, &mem_die)) { 1631 *type_die = mem_die; 1632 dloc->type_offset = type_offset; 1633 found = true; 1634 } 1635 } else { 1636 pr_debug_dtp("failed: %s\n", match_result_str(result)); 1637 } 1638 1639 pr_debug_location(&var_die, pc, reg); 1640 pr_debug_type_name(&mem_die, TSR_KIND_TYPE); 1641 } 1642 1643 if (!found && loc->multi_regs && reg == loc->reg1 && loc->reg1 != loc->reg2) { 1644 reg = loc->reg2; 1645 goto retry; 1646 } 1647 1648 if (!found && reg != DWARF_REG_PC) { 1649 result = find_data_type_block(dloc, &cu_die, scopes, 1650 nr_scopes, type_die); 1651 if (result == PERF_TMR_OK) { 1652 ann_data_stat.insn_track++; 1653 found = true; 1654 } 1655 } 1656 1657 out: 1658 pr_debug_dtp("final result: "); 1659 if (found) { 1660 pr_debug_type_name(type_die, TSR_KIND_TYPE); 1661 ret = 0; 1662 } else { 1663 switch (result) { 1664 case PERF_TMR_NO_TYPE: 1665 case PERF_TMR_NO_POINTER: 1666 pr_debug_dtp("%s\n", match_result_str(result)); 1667 ann_data_stat.no_typeinfo++; 1668 break; 1669 case PERF_TMR_NO_SIZE: 1670 pr_debug_dtp("%s\n", match_result_str(result)); 1671 ann_data_stat.invalid_size++; 1672 break; 1673 case PERF_TMR_BAD_OFFSET: 1674 pr_debug_dtp("%s\n", match_result_str(result)); 1675 ann_data_stat.bad_offset++; 1676 break; 1677 case PERF_TMR_UNKNOWN: 1678 case PERF_TMR_BAIL_OUT: 1679 case PERF_TMR_OK: /* should not reach here */ 1680 default: 1681 pr_debug_dtp("no variable found\n"); 1682 ann_data_stat.no_var++; 1683 break; 1684 } 1685 ret = -1; 1686 } 1687 1688 free(scopes); 1689 return ret; 1690 } 1691 1692 /** 1693 * find_data_type - Return a data type at the location 1694 * @dloc: data location 1695 * 1696 * This functions searches the debug information of the binary to get the data 1697 * type it accesses. The exact location is expressed by (ip, reg, offset) 1698 * for pointer variables or (ip, addr) for global variables. Note that global 1699 * variables might update the @dloc->type_offset after finding the start of the 1700 * variable. If it cannot find a global variable by address, it tried to find 1701 * a declaration of the variable using var_name. In that case, @dloc->offset 1702 * won't be updated. 1703 * 1704 * It return %NULL if not found. 1705 */ 1706 struct annotated_data_type *find_data_type(struct data_loc_info *dloc) 1707 { 1708 struct dso *dso = map__dso(dloc->ms->map); 1709 Dwarf_Die type_die; 1710 1711 /* 1712 * The type offset is the same as instruction offset by default. 1713 * But when finding a global variable, the offset won't be valid. 1714 */ 1715 dloc->type_offset = dloc->op->offset; 1716 1717 dloc->fbreg = -1; 1718 1719 if (find_data_type_die(dloc, &type_die) < 0) 1720 return NULL; 1721 1722 return dso__findnew_data_type(dso, &type_die); 1723 } 1724 1725 static int alloc_data_type_histograms(struct annotated_data_type *adt, int nr_entries) 1726 { 1727 int i; 1728 size_t sz = sizeof(struct type_hist); 1729 1730 sz += sizeof(struct type_hist_entry) * adt->self.size; 1731 1732 /* Allocate a table of pointers for each event */ 1733 adt->histograms = calloc(nr_entries, sizeof(*adt->histograms)); 1734 if (adt->histograms == NULL) 1735 return -ENOMEM; 1736 1737 /* 1738 * Each histogram is allocated for the whole size of the type. 1739 * TODO: Probably we can move the histogram to members. 1740 */ 1741 for (i = 0; i < nr_entries; i++) { 1742 adt->histograms[i] = zalloc(sz); 1743 if (adt->histograms[i] == NULL) 1744 goto err; 1745 } 1746 1747 adt->nr_histograms = nr_entries; 1748 return 0; 1749 1750 err: 1751 while (--i >= 0) 1752 zfree(&(adt->histograms[i])); 1753 zfree(&adt->histograms); 1754 return -ENOMEM; 1755 } 1756 1757 static void delete_data_type_histograms(struct annotated_data_type *adt) 1758 { 1759 for (int i = 0; i < adt->nr_histograms; i++) 1760 zfree(&(adt->histograms[i])); 1761 1762 zfree(&adt->histograms); 1763 adt->nr_histograms = 0; 1764 } 1765 1766 void annotated_data_type__tree_delete(struct rb_root *root) 1767 { 1768 struct annotated_data_type *pos; 1769 1770 while (!RB_EMPTY_ROOT(root)) { 1771 struct rb_node *node = rb_first(root); 1772 1773 rb_erase(node, root); 1774 pos = rb_entry(node, struct annotated_data_type, node); 1775 delete_members(&pos->self); 1776 delete_data_type_histograms(pos); 1777 zfree(&pos->self.type_name); 1778 free(pos); 1779 } 1780 } 1781 1782 /** 1783 * annotated_data_type__update_samples - Update histogram 1784 * @adt: Data type to update 1785 * @evsel: Event to update 1786 * @offset: Offset in the type 1787 * @nr_samples: Number of samples at this offset 1788 * @period: Event count at this offset 1789 * 1790 * This function updates type histogram at @ofs for @evsel. Samples are 1791 * aggregated before calling this function so it can be called with more 1792 * than one samples at a certain offset. 1793 */ 1794 int annotated_data_type__update_samples(struct annotated_data_type *adt, 1795 struct evsel *evsel, int offset, 1796 int nr_samples, u64 period) 1797 { 1798 struct type_hist *h; 1799 1800 if (adt == NULL) 1801 return 0; 1802 1803 if (adt->histograms == NULL) { 1804 int nr = evsel->evlist->core.nr_entries; 1805 1806 if (alloc_data_type_histograms(adt, nr) < 0) 1807 return -1; 1808 } 1809 1810 if (offset < 0 || offset >= adt->self.size) 1811 return -1; 1812 1813 h = adt->histograms[evsel->core.idx]; 1814 1815 h->nr_samples += nr_samples; 1816 h->addr[offset].nr_samples += nr_samples; 1817 h->period += period; 1818 h->addr[offset].period += period; 1819 return 0; 1820 } 1821 1822 static void print_annotated_data_header(struct hist_entry *he, struct evsel *evsel) 1823 { 1824 struct dso *dso = map__dso(he->ms.map); 1825 int nr_members = 1; 1826 int nr_samples = he->stat.nr_events; 1827 int width = 7; 1828 const char *val_hdr = "Percent"; 1829 1830 if (evsel__is_group_event(evsel)) { 1831 struct hist_entry *pair; 1832 1833 list_for_each_entry(pair, &he->pairs.head, pairs.node) 1834 nr_samples += pair->stat.nr_events; 1835 } 1836 1837 printf("Annotate type: '%s' in %s (%d samples):\n", 1838 he->mem_type->self.type_name, dso__name(dso), nr_samples); 1839 1840 if (evsel__is_group_event(evsel)) { 1841 struct evsel *pos; 1842 int i = 0; 1843 1844 nr_members = 0; 1845 for_each_group_evsel(pos, evsel) { 1846 if (symbol_conf.skip_empty && 1847 evsel__hists(pos)->stats.nr_samples == 0) 1848 continue; 1849 1850 printf(" event[%d] = %s\n", i++, pos->name); 1851 nr_members++; 1852 } 1853 } 1854 1855 if (symbol_conf.show_total_period) { 1856 width = 11; 1857 val_hdr = "Period"; 1858 } else if (symbol_conf.show_nr_samples) { 1859 width = 7; 1860 val_hdr = "Samples"; 1861 } 1862 1863 printf("============================================================================\n"); 1864 printf("%*s %10s %10s %s\n", (width + 1) * nr_members, val_hdr, 1865 "offset", "size", "field"); 1866 } 1867 1868 static void print_annotated_data_value(struct type_hist *h, u64 period, int nr_samples) 1869 { 1870 double percent = h->period ? (100.0 * period / h->period) : 0; 1871 const char *color = get_percent_color(percent); 1872 1873 if (symbol_conf.show_total_period) 1874 color_fprintf(stdout, color, " %11" PRIu64, period); 1875 else if (symbol_conf.show_nr_samples) 1876 color_fprintf(stdout, color, " %7d", nr_samples); 1877 else 1878 color_fprintf(stdout, color, " %7.2f", percent); 1879 } 1880 1881 static void print_annotated_data_type(struct annotated_data_type *mem_type, 1882 struct annotated_member *member, 1883 struct evsel *evsel, int indent) 1884 { 1885 struct annotated_member *child; 1886 struct type_hist *h = mem_type->histograms[evsel->core.idx]; 1887 int i, nr_events = 0, samples = 0; 1888 u64 period = 0; 1889 int width = symbol_conf.show_total_period ? 11 : 7; 1890 struct evsel *pos; 1891 1892 for_each_group_evsel(pos, evsel) { 1893 h = mem_type->histograms[pos->core.idx]; 1894 1895 if (symbol_conf.skip_empty && 1896 evsel__hists(pos)->stats.nr_samples == 0) 1897 continue; 1898 1899 samples = 0; 1900 period = 0; 1901 for (i = 0; i < member->size; i++) { 1902 samples += h->addr[member->offset + i].nr_samples; 1903 period += h->addr[member->offset + i].period; 1904 } 1905 print_annotated_data_value(h, period, samples); 1906 nr_events++; 1907 } 1908 1909 printf(" %#10x %#10x %*s%s\t%s", 1910 member->offset, member->size, indent, "", member->type_name, 1911 member->var_name ?: ""); 1912 1913 if (!list_empty(&member->children)) 1914 printf(" {\n"); 1915 1916 list_for_each_entry(child, &member->children, node) 1917 print_annotated_data_type(mem_type, child, evsel, indent + 4); 1918 1919 if (!list_empty(&member->children)) 1920 printf("%*s}", (width + 1) * nr_events + 24 + indent, ""); 1921 printf(";\n"); 1922 } 1923 1924 int hist_entry__annotate_data_tty(struct hist_entry *he, struct evsel *evsel) 1925 { 1926 print_annotated_data_header(he, evsel); 1927 print_annotated_data_type(he->mem_type, &he->mem_type->self, evsel, 0); 1928 printf("\n"); 1929 1930 /* move to the next entry */ 1931 return '>'; 1932 } 1933