1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * dwarf-aux.c : libdw auxiliary interfaces 4 */ 5 6 #include <errno.h> 7 #include <inttypes.h> 8 #include <stdbool.h> 9 #include <stdlib.h> 10 #include "debug.h" 11 #include "dwarf-aux.h" 12 #include "dwarf-regs.h" 13 #include "strbuf.h" 14 #include "string2.h" 15 16 /** 17 * cu_find_realpath - Find the realpath of the target file 18 * @cu_die: A DIE(dwarf information entry) of CU(compilation Unit) 19 * @fname: The tail filename of the target file 20 * 21 * Find the real(long) path of @fname in @cu_die. 22 */ 23 const char *cu_find_realpath(Dwarf_Die *cu_die, const char *fname) 24 { 25 Dwarf_Files *files; 26 size_t nfiles, i; 27 const char *src = NULL; 28 int ret; 29 30 if (!fname) 31 return NULL; 32 33 ret = dwarf_getsrcfiles(cu_die, &files, &nfiles); 34 if (ret != 0) 35 return NULL; 36 37 for (i = 0; i < nfiles; i++) { 38 src = dwarf_filesrc(files, i, NULL, NULL); 39 if (strtailcmp(src, fname) == 0) 40 break; 41 } 42 if (i == nfiles) 43 return NULL; 44 return src; 45 } 46 47 /** 48 * cu_get_comp_dir - Get the path of compilation directory 49 * @cu_die: a CU DIE 50 * 51 * Get the path of compilation directory of given @cu_die. 52 * Since this depends on DW_AT_comp_dir, older gcc will not 53 * embedded it. In that case, this returns NULL. 54 */ 55 const char *cu_get_comp_dir(Dwarf_Die *cu_die) 56 { 57 Dwarf_Attribute attr; 58 if (dwarf_attr(cu_die, DW_AT_comp_dir, &attr) == NULL) 59 return NULL; 60 return dwarf_formstring(&attr); 61 } 62 63 /* Unlike dwarf_getsrc_die(), cu_getsrc_die() only returns statement line */ 64 static Dwarf_Line *cu_getsrc_die(Dwarf_Die *cu_die, Dwarf_Addr addr) 65 { 66 Dwarf_Addr laddr; 67 Dwarf_Lines *lines; 68 Dwarf_Line *line; 69 size_t nlines, l, u, n; 70 bool flag; 71 72 if (dwarf_getsrclines(cu_die, &lines, &nlines) != 0 || 73 nlines == 0) 74 return NULL; 75 76 /* Lines are sorted by address, use binary search */ 77 l = 0; u = nlines - 1; 78 while (l < u) { 79 n = u - (u - l) / 2; 80 line = dwarf_onesrcline(lines, n); 81 if (!line || dwarf_lineaddr(line, &laddr) != 0) 82 return NULL; 83 if (addr < laddr) 84 u = n - 1; 85 else 86 l = n; 87 } 88 /* Going backward to find the lowest line */ 89 do { 90 line = dwarf_onesrcline(lines, --l); 91 if (!line || dwarf_lineaddr(line, &laddr) != 0) 92 return NULL; 93 } while (laddr == addr); 94 l++; 95 /* Going forward to find the statement line */ 96 do { 97 line = dwarf_onesrcline(lines, l++); 98 if (!line || dwarf_lineaddr(line, &laddr) != 0 || 99 dwarf_linebeginstatement(line, &flag) != 0) 100 return NULL; 101 if (laddr > addr) 102 return NULL; 103 } while (!flag); 104 105 return line; 106 } 107 108 /** 109 * cu_find_lineinfo - Get a line number and file name for given address 110 * @cu_die: a CU DIE 111 * @addr: An address 112 * @fname: a pointer which returns the file name string 113 * @lineno: a pointer which returns the line number 114 * 115 * Find a line number and file name for @addr in @cu_die. 116 */ 117 int cu_find_lineinfo(Dwarf_Die *cu_die, Dwarf_Addr addr, 118 const char **fname, int *lineno) 119 { 120 Dwarf_Line *line; 121 Dwarf_Die die_mem; 122 Dwarf_Addr faddr; 123 124 if (die_find_realfunc(cu_die, addr, &die_mem) 125 && die_entrypc(&die_mem, &faddr) == 0 && 126 faddr == addr) { 127 *fname = die_get_decl_file(&die_mem); 128 if (dwarf_decl_line(&die_mem, lineno) != 0) 129 return -ENOENT; 130 goto out; 131 } 132 133 line = cu_getsrc_die(cu_die, addr); 134 if (line && dwarf_lineno(line, lineno) == 0) { 135 *fname = dwarf_linesrc(line, NULL, NULL); 136 if (!*fname) 137 /* line number is useless without filename */ 138 *lineno = 0; 139 } 140 141 out: 142 return (*lineno && *fname) ? *lineno : -ENOENT; 143 } 144 145 static int __die_find_inline_cb(Dwarf_Die *die_mem, void *data); 146 147 /** 148 * cu_walk_functions_at - Walk on function DIEs at given address 149 * @cu_die: A CU DIE 150 * @addr: An address 151 * @callback: A callback which called with found DIEs 152 * @data: A user data 153 * 154 * Walk on function DIEs at given @addr in @cu_die. Passed DIEs 155 * should be subprogram or inlined-subroutines. 156 */ 157 int cu_walk_functions_at(Dwarf_Die *cu_die, Dwarf_Addr addr, 158 int (*callback)(Dwarf_Die *, void *), void *data) 159 { 160 Dwarf_Die die_mem; 161 Dwarf_Die *sc_die; 162 int ret = -ENOENT; 163 164 /* Inlined function could be recursive. Trace it until fail */ 165 for (sc_die = die_find_realfunc(cu_die, addr, &die_mem); 166 sc_die != NULL; 167 sc_die = die_find_child(sc_die, __die_find_inline_cb, &addr, 168 &die_mem)) { 169 ret = callback(sc_die, data); 170 if (ret) 171 break; 172 } 173 174 return ret; 175 } 176 177 /** 178 * die_get_linkage_name - Get the linkage name of the object 179 * @dw_die: A DIE of the object 180 * 181 * Get the linkage name attribute of given @dw_die. 182 * For C++ binary, the linkage name will be the mangled symbol. 183 */ 184 const char *die_get_linkage_name(Dwarf_Die *dw_die) 185 { 186 Dwarf_Attribute attr; 187 188 if (dwarf_attr_integrate(dw_die, DW_AT_linkage_name, &attr) == NULL) 189 return NULL; 190 return dwarf_formstring(&attr); 191 } 192 193 /** 194 * die_compare_name - Compare diename and tname 195 * @dw_die: a DIE 196 * @tname: a string of target name 197 * 198 * Compare the name of @dw_die and @tname. Return false if @dw_die has no name. 199 */ 200 bool die_compare_name(Dwarf_Die *dw_die, const char *tname) 201 { 202 const char *name; 203 204 name = dwarf_diename(dw_die); 205 return name ? (strcmp(tname, name) == 0) : false; 206 } 207 208 /** 209 * die_match_name - Match diename/linkage name and glob 210 * @dw_die: a DIE 211 * @glob: a string of target glob pattern 212 * 213 * Glob matching the name of @dw_die and @glob. Return false if matching fail. 214 * This also match linkage name. 215 */ 216 bool die_match_name(Dwarf_Die *dw_die, const char *glob) 217 { 218 const char *name; 219 220 name = dwarf_diename(dw_die); 221 if (name && strglobmatch(name, glob)) 222 return true; 223 /* fall back to check linkage name */ 224 name = die_get_linkage_name(dw_die); 225 if (name && strglobmatch(name, glob)) 226 return true; 227 228 return false; 229 } 230 231 /** 232 * die_get_call_lineno - Get callsite line number of inline-function instance 233 * @in_die: a DIE of an inlined function instance 234 * 235 * Get call-site line number of @in_die. This means from where the inline 236 * function is called. 237 */ 238 int die_get_call_lineno(Dwarf_Die *in_die) 239 { 240 Dwarf_Attribute attr; 241 Dwarf_Word ret; 242 243 if (!dwarf_attr(in_die, DW_AT_call_line, &attr)) 244 return -ENOENT; 245 246 dwarf_formudata(&attr, &ret); 247 return (int)ret; 248 } 249 250 /** 251 * die_get_type - Get type DIE 252 * @vr_die: a DIE of a variable 253 * @die_mem: where to store a type DIE 254 * 255 * Get a DIE of the type of given variable (@vr_die), and store 256 * it to die_mem. Return NULL if fails to get a type DIE. 257 */ 258 Dwarf_Die *die_get_type(Dwarf_Die *vr_die, Dwarf_Die *die_mem) 259 { 260 Dwarf_Attribute attr; 261 262 if (dwarf_attr_integrate(vr_die, DW_AT_type, &attr) && 263 dwarf_formref_die(&attr, die_mem)) 264 return die_mem; 265 else 266 return NULL; 267 } 268 269 /* Get a type die, but skip qualifiers */ 270 Dwarf_Die *__die_get_real_type(Dwarf_Die *vr_die, Dwarf_Die *die_mem) 271 { 272 int tag; 273 274 do { 275 vr_die = die_get_type(vr_die, die_mem); 276 if (!vr_die) 277 break; 278 tag = dwarf_tag(vr_die); 279 } while (tag == DW_TAG_const_type || 280 tag == DW_TAG_restrict_type || 281 tag == DW_TAG_volatile_type || 282 tag == DW_TAG_shared_type); 283 284 return vr_die; 285 } 286 287 /** 288 * die_get_real_type - Get a type die, but skip qualifiers and typedef 289 * @vr_die: a DIE of a variable 290 * @die_mem: where to store a type DIE 291 * 292 * Get a DIE of the type of given variable (@vr_die), and store 293 * it to die_mem. Return NULL if fails to get a type DIE. 294 * If the type is qualifiers (e.g. const) or typedef, this skips it 295 * and tries to find real type (structure or basic types, e.g. int). 296 */ 297 Dwarf_Die *die_get_real_type(Dwarf_Die *vr_die, Dwarf_Die *die_mem) 298 { 299 do { 300 vr_die = __die_get_real_type(vr_die, die_mem); 301 } while (vr_die && dwarf_tag(vr_die) == DW_TAG_typedef); 302 303 return vr_die; 304 } 305 306 /** 307 * die_get_pointer_type - Get a pointer/array type die 308 * @type_die: a DIE of a type 309 * @die_mem: where to store a type DIE 310 * 311 * Get a pointer/array type DIE from @type_die. If the type is a typedef or 312 * qualifier (const, volatile, etc.), follow the chain to find the underlying 313 * pointer type. 314 */ 315 Dwarf_Die *die_get_pointer_type(Dwarf_Die *type_die, Dwarf_Die *die_mem) 316 { 317 int tag; 318 319 do { 320 tag = dwarf_tag(type_die); 321 if (tag == DW_TAG_pointer_type || tag == DW_TAG_array_type) 322 return type_die; 323 if (tag != DW_TAG_typedef && tag != DW_TAG_const_type && 324 tag != DW_TAG_restrict_type && tag != DW_TAG_volatile_type && 325 tag != DW_TAG_shared_type) 326 return NULL; 327 type_die = die_get_type(type_die, die_mem); 328 } while (type_die); 329 330 return NULL; 331 } 332 333 /* Get attribute and translate it as a udata */ 334 static int die_get_attr_udata(Dwarf_Die *tp_die, unsigned int attr_name, 335 Dwarf_Word *result) 336 { 337 Dwarf_Attribute attr; 338 339 if (dwarf_attr_integrate(tp_die, attr_name, &attr) == NULL || 340 dwarf_formudata(&attr, result) != 0) 341 return -ENOENT; 342 343 return 0; 344 } 345 346 /** 347 * die_is_signed_type - Check whether a type DIE is signed or not 348 * @tp_die: a DIE of a type 349 * 350 * Get the encoding of @tp_die and return true if the encoding 351 * is signed. 352 */ 353 bool die_is_signed_type(Dwarf_Die *tp_die) 354 { 355 Dwarf_Word ret; 356 357 if (die_get_attr_udata(tp_die, DW_AT_encoding, &ret)) 358 return false; 359 360 return (ret == DW_ATE_signed_char || ret == DW_ATE_signed || 361 ret == DW_ATE_signed_fixed); 362 } 363 364 /** 365 * die_is_func_def - Ensure that this DIE is a subprogram and definition 366 * @dw_die: a DIE 367 * 368 * Ensure that this DIE is a subprogram and NOT a declaration. This 369 * returns true if @dw_die is a function definition. 370 **/ 371 bool die_is_func_def(Dwarf_Die *dw_die) 372 { 373 Dwarf_Attribute attr; 374 Dwarf_Addr addr = 0; 375 376 if (dwarf_tag(dw_die) != DW_TAG_subprogram) 377 return false; 378 379 if (dwarf_attr(dw_die, DW_AT_declaration, &attr)) 380 return false; 381 382 /* 383 * DW_AT_declaration can be lost from function declaration 384 * by gcc's bug #97060. 385 * So we need to check this subprogram DIE has DW_AT_inline 386 * or an entry address. 387 */ 388 if (!dwarf_attr(dw_die, DW_AT_inline, &attr) && 389 die_entrypc(dw_die, &addr) < 0) 390 return false; 391 392 return true; 393 } 394 395 /** 396 * die_entrypc - Returns entry PC (the lowest address) of a DIE 397 * @dw_die: a DIE 398 * @addr: where to store entry PC 399 * 400 * Since dwarf_entrypc() does not return entry PC if the DIE has only address 401 * range, we have to use this to retrieve the lowest address from the address 402 * range attribute. 403 */ 404 int die_entrypc(Dwarf_Die *dw_die, Dwarf_Addr *addr) 405 { 406 Dwarf_Addr base, end; 407 Dwarf_Attribute attr; 408 409 if (!addr) 410 return -EINVAL; 411 412 if (dwarf_entrypc(dw_die, addr) == 0) 413 return 0; 414 415 /* 416 * Since the dwarf_ranges() will return 0 if there is no 417 * DW_AT_ranges attribute, we should check it first. 418 */ 419 if (!dwarf_attr(dw_die, DW_AT_ranges, &attr)) 420 return -ENOENT; 421 422 return dwarf_ranges(dw_die, 0, &base, addr, &end) < 0 ? -ENOENT : 0; 423 } 424 425 /** 426 * die_is_func_instance - Ensure that this DIE is an instance of a subprogram 427 * @dw_die: a DIE 428 * 429 * Ensure that this DIE is an instance (which has an entry address). 430 * This returns true if @dw_die is a function instance. If not, the @dw_die 431 * must be a prototype. You can use die_walk_instances() to find actual 432 * instances. 433 **/ 434 bool die_is_func_instance(Dwarf_Die *dw_die) 435 { 436 Dwarf_Addr tmp; 437 Dwarf_Attribute attr_mem; 438 int tag = dwarf_tag(dw_die); 439 440 if (tag != DW_TAG_subprogram && 441 tag != DW_TAG_inlined_subroutine) 442 return false; 443 444 return dwarf_entrypc(dw_die, &tmp) == 0 || 445 dwarf_attr(dw_die, DW_AT_ranges, &attr_mem) != NULL; 446 } 447 448 /** 449 * die_get_data_member_location - Get the data-member offset 450 * @mb_die: a DIE of a member of a data structure 451 * @offs: The offset of the member in the data structure 452 * 453 * Get the offset of @mb_die in the data structure including @mb_die, and 454 * stores result offset to @offs. If any error occurs this returns errno. 455 */ 456 int die_get_data_member_location(Dwarf_Die *mb_die, Dwarf_Word *offs) 457 { 458 Dwarf_Attribute attr; 459 Dwarf_Op *expr; 460 size_t nexpr; 461 int ret; 462 463 if (dwarf_attr_integrate(mb_die, DW_AT_data_member_location, &attr) == NULL) 464 return -ENOENT; 465 466 if (dwarf_formudata(&attr, offs) != 0) { 467 /* DW_AT_data_member_location should be DW_OP_plus_uconst */ 468 ret = dwarf_getlocation(&attr, &expr, &nexpr); 469 if (ret < 0 || nexpr == 0) 470 return -ENOENT; 471 472 if (expr[0].atom != DW_OP_plus_uconst || nexpr != 1) { 473 pr_debug("Unable to get offset:Unexpected OP %x (%zd)\n", 474 expr[0].atom, nexpr); 475 return -ENOTSUP; 476 } 477 *offs = (Dwarf_Word)expr[0].number; 478 } 479 return 0; 480 } 481 482 /* Get the call file index number in CU DIE */ 483 static int die_get_call_fileno(Dwarf_Die *in_die) 484 { 485 Dwarf_Word idx; 486 487 if (die_get_attr_udata(in_die, DW_AT_call_file, &idx) == 0) 488 return (int)idx; 489 else 490 return -ENOENT; 491 } 492 493 /* Get the declared file index number in CU DIE */ 494 static int die_get_decl_fileno(Dwarf_Die *pdie) 495 { 496 Dwarf_Word idx; 497 498 if (die_get_attr_udata(pdie, DW_AT_decl_file, &idx) == 0) 499 return (int)idx; 500 else 501 return -ENOENT; 502 } 503 504 /* Return the file name by index */ 505 static const char *die_get_file_name(Dwarf_Die *dw_die, int idx) 506 { 507 Dwarf_Die cu_die; 508 Dwarf_Files *files; 509 Dwarf_Attribute attr_mem; 510 511 if (idx < 0 || !dwarf_attr_integrate(dw_die, DW_AT_decl_file, &attr_mem) || 512 !dwarf_cu_die(attr_mem.cu, &cu_die, NULL, NULL, NULL, NULL, NULL, NULL) || 513 dwarf_getsrcfiles(&cu_die, &files, NULL) != 0) 514 return NULL; 515 516 return dwarf_filesrc(files, idx, NULL, NULL); 517 } 518 519 /** 520 * die_get_call_file - Get callsite file name of inlined function instance 521 * @in_die: a DIE of an inlined function instance 522 * 523 * Get call-site file name of @in_die. This means from which file the inline 524 * function is called. 525 */ 526 const char *die_get_call_file(Dwarf_Die *in_die) 527 { 528 return die_get_file_name(in_die, die_get_call_fileno(in_die)); 529 } 530 531 /** 532 * die_get_decl_file - Find the declared file name of this DIE 533 * @dw_die: a DIE for something declared. 534 * 535 * Get declared file name of @dw_die. 536 * NOTE: Since some version of clang DWARF5 implementation incorrectly uses 537 * file index 0 for DW_AT_decl_file, die_get_decl_file() will return NULL for 538 * such cases. Use this function instead. 539 */ 540 const char *die_get_decl_file(Dwarf_Die *dw_die) 541 { 542 return die_get_file_name(dw_die, die_get_decl_fileno(dw_die)); 543 } 544 545 /** 546 * die_find_child - Generic DIE search function in DIE tree 547 * @rt_die: a root DIE 548 * @callback: a callback function 549 * @data: a user data passed to the callback function 550 * @die_mem: a buffer for result DIE 551 * 552 * Trace DIE tree from @rt_die and call @callback for each child DIE. 553 * If @callback returns DIE_FIND_CB_END, this stores the DIE into 554 * @die_mem and returns it. If @callback returns DIE_FIND_CB_CONTINUE, 555 * this continues to trace the tree. Optionally, @callback can return 556 * DIE_FIND_CB_CHILD and DIE_FIND_CB_SIBLING, those means trace only 557 * the children and trace only the siblings respectively. 558 * Returns NULL if @callback can't find any appropriate DIE. 559 */ 560 Dwarf_Die *die_find_child(Dwarf_Die *rt_die, 561 int (*callback)(Dwarf_Die *, void *), 562 void *data, Dwarf_Die *die_mem) 563 { 564 Dwarf_Die child_die; 565 int ret; 566 567 ret = dwarf_child(rt_die, die_mem); 568 if (ret != 0) 569 return NULL; 570 571 do { 572 ret = callback(die_mem, data); 573 if (ret == DIE_FIND_CB_END) 574 return die_mem; 575 576 if ((ret & DIE_FIND_CB_CHILD) && 577 die_find_child(die_mem, callback, data, &child_die)) { 578 memcpy(die_mem, &child_die, sizeof(Dwarf_Die)); 579 return die_mem; 580 } 581 } while ((ret & DIE_FIND_CB_SIBLING) && 582 dwarf_siblingof(die_mem, die_mem) == 0); 583 584 return NULL; 585 } 586 587 struct __addr_die_search_param { 588 Dwarf_Addr addr; 589 Dwarf_Die *die_mem; 590 }; 591 592 static int __die_search_func_tail_cb(Dwarf_Die *fn_die, void *data) 593 { 594 struct __addr_die_search_param *ad = data; 595 Dwarf_Addr addr = 0; 596 597 if (dwarf_tag(fn_die) == DW_TAG_subprogram && 598 !dwarf_highpc(fn_die, &addr) && 599 addr == ad->addr) { 600 memcpy(ad->die_mem, fn_die, sizeof(Dwarf_Die)); 601 return DWARF_CB_ABORT; 602 } 603 return DWARF_CB_OK; 604 } 605 606 /** 607 * die_find_tailfunc - Search for a non-inlined function with tail call at 608 * given address 609 * @cu_die: a CU DIE which including @addr 610 * @addr: target address 611 * @die_mem: a buffer for result DIE 612 * 613 * Search for a non-inlined function DIE with tail call at @addr. Stores the 614 * DIE to @die_mem and returns it if found. Returns NULL if failed. 615 */ 616 Dwarf_Die *die_find_tailfunc(Dwarf_Die *cu_die, Dwarf_Addr addr, 617 Dwarf_Die *die_mem) 618 { 619 struct __addr_die_search_param ad; 620 ad.addr = addr; 621 ad.die_mem = die_mem; 622 /* dwarf_getscopes can't find subprogram. */ 623 if (dwarf_getfuncs(cu_die, __die_search_func_tail_cb, &ad, 0) <= 0) 624 return NULL; 625 else 626 return die_mem; 627 } 628 629 /* die_find callback for non-inlined function search */ 630 static int __die_search_func_cb(Dwarf_Die *fn_die, void *data) 631 { 632 struct __addr_die_search_param *ad = data; 633 634 /* 635 * Since a declaration entry doesn't has given pc, this always returns 636 * function definition entry. 637 */ 638 if (dwarf_tag(fn_die) == DW_TAG_subprogram && 639 dwarf_haspc(fn_die, ad->addr)) { 640 memcpy(ad->die_mem, fn_die, sizeof(Dwarf_Die)); 641 return DWARF_CB_ABORT; 642 } 643 return DWARF_CB_OK; 644 } 645 646 /** 647 * die_find_realfunc - Search a non-inlined function at given address 648 * @cu_die: a CU DIE which including @addr 649 * @addr: target address 650 * @die_mem: a buffer for result DIE 651 * 652 * Search a non-inlined function DIE which includes @addr. Stores the 653 * DIE to @die_mem and returns it if found. Returns NULL if failed. 654 */ 655 Dwarf_Die *die_find_realfunc(Dwarf_Die *cu_die, Dwarf_Addr addr, 656 Dwarf_Die *die_mem) 657 { 658 struct __addr_die_search_param ad; 659 ad.addr = addr; 660 ad.die_mem = die_mem; 661 /* dwarf_getscopes can't find subprogram. */ 662 if (dwarf_getfuncs(cu_die, __die_search_func_cb, &ad, 0) <= 0) 663 return NULL; 664 else 665 return die_mem; 666 } 667 668 /* die_find callback for inline function search */ 669 static int __die_find_inline_cb(Dwarf_Die *die_mem, void *data) 670 { 671 Dwarf_Addr *addr = data; 672 673 if (dwarf_tag(die_mem) == DW_TAG_inlined_subroutine && 674 dwarf_haspc(die_mem, *addr)) 675 return DIE_FIND_CB_END; 676 677 return DIE_FIND_CB_CONTINUE; 678 } 679 680 /** 681 * die_find_top_inlinefunc - Search the top inlined function at given address 682 * @sp_die: a subprogram DIE which including @addr 683 * @addr: target address 684 * @die_mem: a buffer for result DIE 685 * 686 * Search an inlined function DIE which includes @addr. Stores the 687 * DIE to @die_mem and returns it if found. Returns NULL if failed. 688 * Even if several inlined functions are expanded recursively, this 689 * doesn't trace it down, and returns the topmost one. 690 */ 691 Dwarf_Die *die_find_top_inlinefunc(Dwarf_Die *sp_die, Dwarf_Addr addr, 692 Dwarf_Die *die_mem) 693 { 694 return die_find_child(sp_die, __die_find_inline_cb, &addr, die_mem); 695 } 696 697 /** 698 * die_find_inlinefunc - Search an inlined function at given address 699 * @sp_die: a subprogram DIE which including @addr 700 * @addr: target address 701 * @die_mem: a buffer for result DIE 702 * 703 * Search an inlined function DIE which includes @addr. Stores the 704 * DIE to @die_mem and returns it if found. Returns NULL if failed. 705 * If several inlined functions are expanded recursively, this trace 706 * it down and returns deepest one. 707 */ 708 Dwarf_Die *die_find_inlinefunc(Dwarf_Die *sp_die, Dwarf_Addr addr, 709 Dwarf_Die *die_mem) 710 { 711 Dwarf_Die tmp_die; 712 713 sp_die = die_find_child(sp_die, __die_find_inline_cb, &addr, &tmp_die); 714 if (!sp_die) 715 return NULL; 716 717 /* Inlined function could be recursive. Trace it until fail */ 718 while (sp_die) { 719 memcpy(die_mem, sp_die, sizeof(Dwarf_Die)); 720 sp_die = die_find_child(sp_die, __die_find_inline_cb, &addr, 721 &tmp_die); 722 } 723 724 return die_mem; 725 } 726 727 static int __die_find_func_rettype_cb(Dwarf_Die *die_mem, void *data) 728 { 729 const char *func_name; 730 731 if (dwarf_tag(die_mem) != DW_TAG_subprogram) 732 return DIE_FIND_CB_SIBLING; 733 734 func_name = dwarf_diename(die_mem); 735 if (func_name && !strcmp(func_name, data)) 736 return DIE_FIND_CB_END; 737 738 return DIE_FIND_CB_SIBLING; 739 } 740 741 /** 742 * die_find_func_rettype - Search a return type of function 743 * @cu_die: a CU DIE 744 * @name: target function name 745 * @die_mem: a buffer for result DIE 746 * 747 * Search a non-inlined function which matches to @name and stores the 748 * return type of the function to @die_mem and returns it if found. 749 * Returns NULL if failed. Note that it doesn't needs to find a 750 * definition of the function, so it doesn't match with address. 751 * Most likely, it can find a declaration at the top level. Thus the 752 * callback function continues to sibling entries only. 753 */ 754 Dwarf_Die *die_find_func_rettype(Dwarf_Die *cu_die, const char *name, 755 Dwarf_Die *die_mem) 756 { 757 Dwarf_Die tmp_die; 758 759 cu_die = die_find_child(cu_die, __die_find_func_rettype_cb, 760 (void *)name, &tmp_die); 761 if (!cu_die) 762 return NULL; 763 764 if (die_get_real_type(&tmp_die, die_mem) == NULL) 765 return NULL; 766 767 return die_mem; 768 } 769 770 struct __instance_walk_param { 771 void *addr; 772 int (*callback)(Dwarf_Die *, void *); 773 void *data; 774 int retval; 775 }; 776 777 static int __die_walk_instances_cb(Dwarf_Die *inst, void *data) 778 { 779 struct __instance_walk_param *iwp = data; 780 Dwarf_Attribute attr_mem; 781 Dwarf_Die origin_mem; 782 Dwarf_Attribute *attr; 783 Dwarf_Die *origin; 784 int tmp; 785 786 if (!die_is_func_instance(inst)) 787 return DIE_FIND_CB_CONTINUE; 788 789 attr = dwarf_attr(inst, DW_AT_abstract_origin, &attr_mem); 790 if (attr == NULL) 791 return DIE_FIND_CB_CONTINUE; 792 793 origin = dwarf_formref_die(attr, &origin_mem); 794 if (origin == NULL || origin->addr != iwp->addr) 795 return DIE_FIND_CB_CONTINUE; 796 797 /* Ignore redundant instances */ 798 if (dwarf_tag(inst) == DW_TAG_inlined_subroutine) { 799 if (dwarf_decl_line(origin, &tmp) == 0 && die_get_call_lineno(inst) == tmp) { 800 tmp = die_get_decl_fileno(origin); 801 if (die_get_call_fileno(inst) == tmp) 802 return DIE_FIND_CB_CONTINUE; 803 } 804 } 805 806 iwp->retval = iwp->callback(inst, iwp->data); 807 808 return (iwp->retval) ? DIE_FIND_CB_END : DIE_FIND_CB_CONTINUE; 809 } 810 811 /** 812 * die_walk_instances - Walk on instances of given DIE 813 * @or_die: an abstract original DIE 814 * @callback: a callback function which is called with instance DIE 815 * @data: user data 816 * 817 * Walk on the instances of give @in_die. @in_die must be an inlined function 818 * declaration. This returns the return value of @callback if it returns 819 * non-zero value, or -ENOENT if there is no instance. 820 */ 821 int die_walk_instances(Dwarf_Die *or_die, int (*callback)(Dwarf_Die *, void *), 822 void *data) 823 { 824 Dwarf_Die cu_die; 825 Dwarf_Die die_mem; 826 struct __instance_walk_param iwp = { 827 .addr = or_die->addr, 828 .callback = callback, 829 .data = data, 830 .retval = -ENOENT, 831 }; 832 833 if (dwarf_diecu(or_die, &cu_die, NULL, NULL) == NULL) 834 return -ENOENT; 835 836 die_find_child(&cu_die, __die_walk_instances_cb, &iwp, &die_mem); 837 838 return iwp.retval; 839 } 840 841 /* Line walker internal parameters */ 842 struct __line_walk_param { 843 bool recursive; 844 line_walk_callback_t callback; 845 void *data; 846 int retval; 847 }; 848 849 static int __die_walk_funclines_cb(Dwarf_Die *in_die, void *data) 850 { 851 struct __line_walk_param *lw = data; 852 Dwarf_Addr addr = 0; 853 const char *fname; 854 int lineno; 855 856 if (dwarf_tag(in_die) == DW_TAG_inlined_subroutine) { 857 fname = die_get_call_file(in_die); 858 lineno = die_get_call_lineno(in_die); 859 if (fname && lineno > 0 && die_entrypc(in_die, &addr) == 0) { 860 lw->retval = lw->callback(fname, lineno, addr, lw->data); 861 if (lw->retval != 0) 862 return DIE_FIND_CB_END; 863 } 864 if (!lw->recursive) 865 return DIE_FIND_CB_SIBLING; 866 } 867 868 if (addr) { 869 fname = die_get_decl_file(in_die); 870 if (fname && dwarf_decl_line(in_die, &lineno) == 0) { 871 lw->retval = lw->callback(fname, lineno, addr, lw->data); 872 if (lw->retval != 0) 873 return DIE_FIND_CB_END; 874 } 875 } 876 877 /* Continue to search nested inlined function call-sites */ 878 return DIE_FIND_CB_CONTINUE; 879 } 880 881 /* Walk on lines of blocks included in given DIE */ 882 static int __die_walk_funclines(Dwarf_Die *sp_die, bool recursive, 883 line_walk_callback_t callback, void *data) 884 { 885 struct __line_walk_param lw = { 886 .recursive = recursive, 887 .callback = callback, 888 .data = data, 889 .retval = 0, 890 }; 891 Dwarf_Die die_mem; 892 Dwarf_Addr addr; 893 const char *fname; 894 int lineno; 895 896 /* Handle function declaration line */ 897 fname = die_get_decl_file(sp_die); 898 if (fname && dwarf_decl_line(sp_die, &lineno) == 0 && 899 die_entrypc(sp_die, &addr) == 0) { 900 lw.retval = callback(fname, lineno, addr, data); 901 if (lw.retval != 0) 902 goto done; 903 } 904 die_find_child(sp_die, __die_walk_funclines_cb, &lw, &die_mem); 905 done: 906 return lw.retval; 907 } 908 909 static int __die_walk_culines_cb(Dwarf_Die *sp_die, void *data) 910 { 911 struct __line_walk_param *lw = data; 912 913 /* 914 * Since inlined function can include another inlined function in 915 * the same file, we need to walk in it recursively. 916 */ 917 lw->retval = __die_walk_funclines(sp_die, true, lw->callback, lw->data); 918 if (lw->retval != 0) 919 return DWARF_CB_ABORT; 920 921 return DWARF_CB_OK; 922 } 923 924 /** 925 * die_walk_lines - Walk on lines inside given DIE 926 * @rt_die: a root DIE (CU, subprogram or inlined_subroutine) 927 * @callback: callback routine 928 * @data: user data 929 * 930 * Walk on all lines inside given @rt_die and call @callback on each line. 931 * If the @rt_die is a function, walk only on the lines inside the function, 932 * otherwise @rt_die must be a CU DIE. 933 * Note that this walks not only dwarf line list, but also function entries 934 * and inline call-site. 935 */ 936 int die_walk_lines(Dwarf_Die *rt_die, line_walk_callback_t callback, void *data) 937 { 938 Dwarf_Lines *lines; 939 Dwarf_Line *line; 940 Dwarf_Addr addr; 941 const char *fname, *decf = NULL, *inf = NULL; 942 int lineno, ret = 0; 943 int decl = 0, inl; 944 Dwarf_Die die_mem, *cu_die; 945 size_t nlines, i; 946 bool flag; 947 948 /* Get the CU die */ 949 if (dwarf_tag(rt_die) != DW_TAG_compile_unit) { 950 cu_die = dwarf_diecu(rt_die, &die_mem, NULL, NULL); 951 dwarf_decl_line(rt_die, &decl); 952 decf = die_get_decl_file(rt_die); 953 } else 954 cu_die = rt_die; 955 if (!cu_die) { 956 pr_debug2("Failed to get CU from given DIE.\n"); 957 return -EINVAL; 958 } 959 960 /* Get lines list in the CU */ 961 if (dwarf_getsrclines(cu_die, &lines, &nlines) != 0) { 962 pr_debug2("Failed to get source lines on this CU.\n"); 963 return -ENOENT; 964 } 965 pr_debug2("Get %zd lines from this CU\n", nlines); 966 967 /* Walk on the lines on lines list */ 968 for (i = 0; i < nlines; i++) { 969 line = dwarf_onesrcline(lines, i); 970 if (line == NULL || 971 dwarf_lineno(line, &lineno) != 0 || 972 dwarf_lineaddr(line, &addr) != 0) { 973 pr_debug2("Failed to get line info. " 974 "Possible error in debuginfo.\n"); 975 continue; 976 } 977 /* Skip end-of-sequence */ 978 if (dwarf_lineendsequence(line, &flag) != 0 || flag) 979 continue; 980 /* Skip Non statement line-info */ 981 if (dwarf_linebeginstatement(line, &flag) != 0 || !flag) 982 continue; 983 /* Filter lines based on address */ 984 if (rt_die != cu_die) { 985 /* 986 * Address filtering 987 * The line is included in given function, and 988 * no inline block includes it. 989 */ 990 if (!dwarf_haspc(rt_die, addr)) 991 continue; 992 993 if (die_find_inlinefunc(rt_die, addr, &die_mem)) { 994 /* Call-site check */ 995 inf = die_get_call_file(&die_mem); 996 if ((inf == decf || (inf && decf && !strcmp(inf, decf))) && 997 die_get_call_lineno(&die_mem) == lineno) 998 goto found; 999 1000 if (dwarf_decl_line(&die_mem, &inl) != 0) 1001 inl = 0; 1002 if (inl != decl || 1003 decf != die_get_decl_file(&die_mem)) 1004 continue; 1005 } 1006 } 1007 found: 1008 /* Get source line */ 1009 fname = dwarf_linesrc(line, NULL, NULL); 1010 1011 ret = callback(fname, lineno, addr, data); 1012 if (ret != 0) 1013 return ret; 1014 } 1015 1016 /* 1017 * Dwarf lines doesn't include function declarations and inlined 1018 * subroutines. We have to check functions list or given function. 1019 */ 1020 if (rt_die != cu_die) 1021 /* 1022 * Don't need walk inlined functions recursively, because 1023 * inner inlined functions don't have the lines of the 1024 * specified function. 1025 */ 1026 ret = __die_walk_funclines(rt_die, false, callback, data); 1027 else { 1028 struct __line_walk_param param = { 1029 .callback = callback, 1030 .data = data, 1031 .retval = 0, 1032 }; 1033 if (dwarf_getfuncs(cu_die, __die_walk_culines_cb, ¶m, 0) < 0) 1034 ret = -EINVAL; 1035 else 1036 ret = param.retval; 1037 } 1038 1039 return ret; 1040 } 1041 1042 struct __find_variable_param { 1043 const char *name; 1044 Dwarf_Addr addr; 1045 }; 1046 1047 static int __die_find_variable_cb(Dwarf_Die *die_mem, void *data) 1048 { 1049 struct __find_variable_param *fvp = data; 1050 Dwarf_Attribute attr; 1051 int tag; 1052 1053 tag = dwarf_tag(die_mem); 1054 if ((tag == DW_TAG_formal_parameter || 1055 tag == DW_TAG_variable) && 1056 die_compare_name(die_mem, fvp->name) && 1057 /* 1058 * Does the DIE have location information or const value 1059 * or external instance? 1060 */ 1061 (dwarf_attr(die_mem, DW_AT_external, &attr) || 1062 dwarf_attr(die_mem, DW_AT_location, &attr) || 1063 dwarf_attr(die_mem, DW_AT_const_value, &attr))) 1064 return DIE_FIND_CB_END; 1065 if (dwarf_haspc(die_mem, fvp->addr)) 1066 return DIE_FIND_CB_CONTINUE; 1067 else 1068 return DIE_FIND_CB_SIBLING; 1069 } 1070 1071 /** 1072 * die_find_variable_at - Find a given name variable at given address 1073 * @sp_die: a function DIE 1074 * @name: variable name 1075 * @addr: address 1076 * @die_mem: a buffer for result DIE 1077 * 1078 * Find a variable DIE called @name at @addr in @sp_die. 1079 */ 1080 Dwarf_Die *die_find_variable_at(Dwarf_Die *sp_die, const char *name, 1081 Dwarf_Addr addr, Dwarf_Die *die_mem) 1082 { 1083 struct __find_variable_param fvp = { .name = name, .addr = addr}; 1084 1085 return die_find_child(sp_die, __die_find_variable_cb, (void *)&fvp, 1086 die_mem); 1087 } 1088 1089 static int __die_find_member_cb(Dwarf_Die *die_mem, void *data) 1090 { 1091 const char *name = data; 1092 1093 if (dwarf_tag(die_mem) == DW_TAG_member) { 1094 if (die_compare_name(die_mem, name)) 1095 return DIE_FIND_CB_END; 1096 else if (!dwarf_diename(die_mem)) { /* Unnamed structure */ 1097 Dwarf_Die type_die, tmp_die; 1098 if (die_get_type(die_mem, &type_die) && 1099 die_find_member(&type_die, name, &tmp_die)) 1100 return DIE_FIND_CB_END; 1101 } 1102 } 1103 return DIE_FIND_CB_SIBLING; 1104 } 1105 1106 /** 1107 * die_find_member - Find a given name member in a data structure 1108 * @st_die: a data structure type DIE 1109 * @name: member name 1110 * @die_mem: a buffer for result DIE 1111 * 1112 * Find a member DIE called @name in @st_die. 1113 */ 1114 Dwarf_Die *die_find_member(Dwarf_Die *st_die, const char *name, 1115 Dwarf_Die *die_mem) 1116 { 1117 return die_find_child(st_die, __die_find_member_cb, (void *)name, 1118 die_mem); 1119 } 1120 1121 /** 1122 * die_get_typename_from_type - Get the name of given type DIE 1123 * @type_die: a type DIE 1124 * @buf: a strbuf for result type name 1125 * 1126 * Get the name of @type_die and stores it to @buf. Return 0 if succeeded. 1127 * and Return -ENOENT if failed to find type name. 1128 * Note that the result will stores typedef name if possible, and stores 1129 * "*(function_type)" if the type is a function pointer. 1130 */ 1131 int die_get_typename_from_type(Dwarf_Die *type_die, struct strbuf *buf) 1132 { 1133 int tag, ret; 1134 const char *tmp = ""; 1135 1136 tag = dwarf_tag(type_die); 1137 if (tag == DW_TAG_pointer_type) 1138 tmp = "*"; 1139 else if (tag == DW_TAG_array_type) 1140 tmp = "[]"; 1141 else if (tag == DW_TAG_subroutine_type) { 1142 /* Function pointer */ 1143 return strbuf_add(buf, "(function_type)", 15); 1144 } else { 1145 const char *name = dwarf_diename(type_die); 1146 1147 if (tag == DW_TAG_union_type) 1148 tmp = "union "; 1149 else if (tag == DW_TAG_structure_type) 1150 tmp = "struct "; 1151 else if (tag == DW_TAG_enumeration_type) 1152 tmp = "enum "; 1153 else if (name == NULL) 1154 return -ENOENT; 1155 /* Write a base name */ 1156 return strbuf_addf(buf, "%s%s", tmp, name ?: ""); 1157 } 1158 ret = die_get_typename(type_die, buf); 1159 if (ret < 0) { 1160 /* void pointer has no type attribute */ 1161 if (tag == DW_TAG_pointer_type && ret == -ENOENT) 1162 return strbuf_addf(buf, "void*"); 1163 1164 return ret; 1165 } 1166 return strbuf_addstr(buf, tmp); 1167 } 1168 1169 /** 1170 * die_get_typename - Get the name of given variable DIE 1171 * @vr_die: a variable DIE 1172 * @buf: a strbuf for result type name 1173 * 1174 * Get the name of @vr_die and stores it to @buf. Return 0 if succeeded. 1175 * and Return -ENOENT if failed to find type name. 1176 * Note that the result will stores typedef name if possible, and stores 1177 * "*(function_type)" if the type is a function pointer. 1178 */ 1179 int die_get_typename(Dwarf_Die *vr_die, struct strbuf *buf) 1180 { 1181 Dwarf_Die type; 1182 1183 if (__die_get_real_type(vr_die, &type) == NULL) 1184 return -ENOENT; 1185 1186 return die_get_typename_from_type(&type, buf); 1187 } 1188 1189 /** 1190 * die_get_varname - Get the name and type of given variable DIE 1191 * @vr_die: a variable DIE 1192 * @buf: a strbuf for type and variable name 1193 * 1194 * Get the name and type of @vr_die and stores it in @buf as "type\tname". 1195 */ 1196 int die_get_varname(Dwarf_Die *vr_die, struct strbuf *buf) 1197 { 1198 int ret; 1199 1200 ret = die_get_typename(vr_die, buf); 1201 if (ret < 0) { 1202 pr_debug("Failed to get type, make it unknown.\n"); 1203 ret = strbuf_add(buf, "(unknown_type)", 14); 1204 } 1205 1206 return ret < 0 ? ret : strbuf_addf(buf, "\t%s", dwarf_diename(vr_die)); 1207 } 1208 1209 static int reg_from_dwarf_op(Dwarf_Op *op) 1210 { 1211 switch (op->atom) { 1212 case DW_OP_reg0 ... DW_OP_reg31: 1213 return op->atom - DW_OP_reg0; 1214 case DW_OP_breg0 ... DW_OP_breg31: 1215 return op->atom - DW_OP_breg0; 1216 case DW_OP_regx: 1217 case DW_OP_bregx: 1218 return op->number; 1219 case DW_OP_fbreg: 1220 return DWARF_REG_FB; 1221 default: 1222 break; 1223 } 1224 return -1; 1225 } 1226 1227 static int offset_from_dwarf_op(Dwarf_Op *op) 1228 { 1229 switch (op->atom) { 1230 case DW_OP_reg0 ... DW_OP_reg31: 1231 case DW_OP_regx: 1232 return 0; 1233 case DW_OP_breg0 ... DW_OP_breg31: 1234 case DW_OP_fbreg: 1235 return op->number; 1236 case DW_OP_bregx: 1237 return op->number2; 1238 default: 1239 break; 1240 } 1241 return -1; 1242 } 1243 1244 static bool check_allowed_ops(Dwarf_Op *ops, size_t nops) 1245 { 1246 /* The first op is checked separately */ 1247 ops++; 1248 nops--; 1249 1250 /* 1251 * It needs to make sure if the location expression matches to the given 1252 * register and offset exactly. Thus it rejects any complex expressions 1253 * and only allows a few of selected operators that doesn't change the 1254 * location. 1255 */ 1256 while (nops) { 1257 switch (ops->atom) { 1258 case DW_OP_stack_value: 1259 case DW_OP_deref_size: 1260 case DW_OP_deref: 1261 case DW_OP_piece: 1262 break; 1263 default: 1264 return false; 1265 } 1266 ops++; 1267 nops--; 1268 } 1269 return true; 1270 } 1271 1272 /** 1273 * die_get_var_innermost_scope - Get innermost scope range of given variable DIE 1274 * @sp_die: a subprogram DIE 1275 * @vr_die: a variable DIE 1276 * @buf: a strbuf for variable byte offset range 1277 * 1278 * Get the innermost scope range of @vr_die and stores it in @buf as 1279 * "@<function_name+[NN-NN,NN-NN]>". 1280 */ 1281 static int die_get_var_innermost_scope(Dwarf_Die *sp_die, Dwarf_Die *vr_die, 1282 struct strbuf *buf) 1283 { 1284 Dwarf_Die *scopes; 1285 int count; 1286 size_t offset = 0; 1287 Dwarf_Addr base; 1288 Dwarf_Addr start, end; 1289 Dwarf_Addr entry; 1290 int ret; 1291 bool first = true; 1292 const char *name; 1293 1294 ret = die_entrypc(sp_die, &entry); 1295 if (ret) 1296 return ret; 1297 1298 name = dwarf_diename(sp_die); 1299 if (!name) 1300 return -ENOENT; 1301 1302 count = dwarf_getscopes_die(vr_die, &scopes); 1303 1304 /* (*SCOPES)[1] is the DIE for the scope containing that scope */ 1305 if (count <= 1) { 1306 ret = -EINVAL; 1307 goto out; 1308 } 1309 1310 while ((offset = dwarf_ranges(&scopes[1], offset, &base, 1311 &start, &end)) > 0) { 1312 start -= entry; 1313 end -= entry; 1314 1315 if (first) { 1316 ret = strbuf_addf(buf, "@<%s+[%" PRIu64 "-%" PRIu64, 1317 name, start, end); 1318 first = false; 1319 } else { 1320 ret = strbuf_addf(buf, ",%" PRIu64 "-%" PRIu64, 1321 start, end); 1322 } 1323 if (ret < 0) 1324 goto out; 1325 } 1326 1327 if (!first) 1328 ret = strbuf_add(buf, "]>", 2); 1329 1330 out: 1331 free(scopes); 1332 return ret; 1333 } 1334 1335 /** 1336 * die_get_var_range - Get byte offset range of given variable DIE 1337 * @sp_die: a subprogram DIE 1338 * @vr_die: a variable DIE 1339 * @buf: a strbuf for type and variable name and byte offset range 1340 * 1341 * Get the byte offset range of @vr_die and stores it in @buf as 1342 * "@<function_name+[NN-NN,NN-NN]>". 1343 */ 1344 int die_get_var_range(Dwarf_Die *sp_die, Dwarf_Die *vr_die, struct strbuf *buf) 1345 { 1346 int ret = 0; 1347 Dwarf_Addr base; 1348 Dwarf_Addr start, end; 1349 Dwarf_Addr entry; 1350 Dwarf_Op *op; 1351 size_t nops; 1352 size_t offset = 0; 1353 Dwarf_Attribute attr; 1354 bool first = true; 1355 const char *name; 1356 1357 ret = die_entrypc(sp_die, &entry); 1358 if (ret) 1359 return ret; 1360 1361 name = dwarf_diename(sp_die); 1362 if (!name) 1363 return -ENOENT; 1364 1365 if (dwarf_attr(vr_die, DW_AT_location, &attr) == NULL) 1366 return -EINVAL; 1367 1368 while ((offset = dwarf_getlocations(&attr, offset, &base, 1369 &start, &end, &op, &nops)) > 0) { 1370 if (start == 0) { 1371 /* Single Location Descriptions */ 1372 ret = die_get_var_innermost_scope(sp_die, vr_die, buf); 1373 goto out; 1374 } 1375 1376 /* Location Lists */ 1377 start -= entry; 1378 end -= entry; 1379 if (first) { 1380 ret = strbuf_addf(buf, "@<%s+[%" PRIu64 "-%" PRIu64, 1381 name, start, end); 1382 first = false; 1383 } else { 1384 ret = strbuf_addf(buf, ",%" PRIu64 "-%" PRIu64, 1385 start, end); 1386 } 1387 if (ret < 0) 1388 goto out; 1389 } 1390 1391 if (!first) 1392 ret = strbuf_add(buf, "]>", 2); 1393 out: 1394 return ret; 1395 } 1396 1397 /* Interval parameters for __die_find_var_reg_cb() */ 1398 struct find_var_data { 1399 /* Target instruction address */ 1400 Dwarf_Addr pc; 1401 /* Target memory address (for global data) */ 1402 Dwarf_Addr addr; 1403 /* Target register */ 1404 unsigned reg; 1405 /* Access data type */ 1406 Dwarf_Die type; 1407 /* Access offset, set for global data */ 1408 int offset; 1409 /* True if the current register is the frame base */ 1410 bool is_fbreg; 1411 }; 1412 1413 /* Max number of registers DW_OP_regN supports */ 1414 #define DWARF_OP_DIRECT_REGS 32 1415 1416 static bool match_var_offset(Dwarf_Die *die_mem, struct find_var_data *data, 1417 s64 addr_offset, s64 addr_type, bool is_pointer) 1418 { 1419 Dwarf_Word size; 1420 Dwarf_Die ptr_die; 1421 Dwarf_Die *ptr_type; 1422 s64 offset = addr_offset - addr_type; 1423 1424 if (offset < 0) 1425 return false; 1426 1427 if (__die_get_real_type(die_mem, &data->type) == NULL) 1428 return false; 1429 1430 ptr_type = die_get_pointer_type(&data->type, &ptr_die); 1431 if (is_pointer && ptr_type) { 1432 /* Get the target type of the pointer */ 1433 if (__die_get_real_type(ptr_type, &data->type) == NULL) 1434 return false; 1435 } 1436 1437 if (offset == 0) { 1438 /* Update offset relative to the start of the variable */ 1439 data->offset = 0; 1440 return true; 1441 } 1442 1443 if (dwarf_aggregate_size(&data->type, &size) < 0) 1444 return false; 1445 1446 if ((u64)offset >= size) 1447 return false; 1448 1449 /* Update offset relative to the start of the variable */ 1450 data->offset = offset; 1451 return true; 1452 } 1453 1454 /** 1455 * is_breg_access_indirect - Check if breg based access implies type 1456 * dereference 1457 * @ops: DWARF operations array 1458 * @nops: Number of operations in @ops 1459 * 1460 * Returns true if the DWARF expression evaluates to the variable's 1461 * value, so the memory access on that register needs type dereference. 1462 * Returns false if the expression evaluates to the variable's address. 1463 * This is called after check_allowed_ops. 1464 */ 1465 static bool is_breg_access_indirect(Dwarf_Op *ops, size_t nops) 1466 { 1467 /* only the base register */ 1468 if (nops == 1) 1469 return false; 1470 1471 if (nops == 2 && ops[1].atom == DW_OP_stack_value) 1472 return true; 1473 1474 if (nops == 3 && (ops[1].atom == DW_OP_deref || 1475 ops[1].atom == DW_OP_deref_size) && 1476 ops[2].atom == DW_OP_stack_value) 1477 return false; 1478 /* unreachable, OP not supported */ 1479 return false; 1480 } 1481 1482 /* Only checks direct child DIEs in the given scope. */ 1483 static int __die_find_var_reg_cb(Dwarf_Die *die_mem, void *arg) 1484 { 1485 struct find_var_data *data = arg; 1486 int tag = dwarf_tag(die_mem); 1487 ptrdiff_t off = 0; 1488 Dwarf_Attribute attr; 1489 Dwarf_Addr base, start, end; 1490 Dwarf_Op *ops; 1491 size_t nops; 1492 1493 if (tag != DW_TAG_variable && tag != DW_TAG_formal_parameter) 1494 return DIE_FIND_CB_SIBLING; 1495 1496 if (dwarf_attr(die_mem, DW_AT_location, &attr) == NULL) 1497 return DIE_FIND_CB_SIBLING; 1498 1499 while ((off = dwarf_getlocations(&attr, off, &base, &start, &end, &ops, &nops)) > 0) { 1500 /* Assuming the location list is sorted by address */ 1501 if (end <= data->pc) 1502 continue; 1503 if (start > data->pc) 1504 break; 1505 1506 /* Local variables accessed using frame base register */ 1507 if (data->is_fbreg && ops->atom == DW_OP_fbreg && 1508 check_allowed_ops(ops, nops) && 1509 match_var_offset(die_mem, data, data->offset, ops->number, 1510 is_breg_access_indirect(ops, nops))) 1511 return DIE_FIND_CB_END; 1512 1513 /* Only match with a simple case */ 1514 if (data->reg < DWARF_OP_DIRECT_REGS) { 1515 /* pointer variables saved in a register 0 to 31 */ 1516 if (ops->atom == (DW_OP_reg0 + data->reg) && 1517 check_allowed_ops(ops, nops) && 1518 match_var_offset(die_mem, data, data->offset, 0, 1519 /*is_pointer=*/true)) 1520 return DIE_FIND_CB_END; 1521 1522 /* variables accessed by a register + offset */ 1523 if (ops->atom == (DW_OP_breg0 + data->reg) && 1524 check_allowed_ops(ops, nops) && 1525 match_var_offset(die_mem, data, data->offset, ops->number, 1526 is_breg_access_indirect(ops, nops))) 1527 return DIE_FIND_CB_END; 1528 } else { 1529 /* pointer variables saved in a register 32 or above */ 1530 if (ops->atom == DW_OP_regx && ops->number == data->reg && 1531 check_allowed_ops(ops, nops) && 1532 match_var_offset(die_mem, data, data->offset, 0, 1533 /*is_pointer=*/true)) 1534 return DIE_FIND_CB_END; 1535 1536 /* variables accessed by a register + offset */ 1537 if (ops->atom == DW_OP_bregx && data->reg == ops->number && 1538 check_allowed_ops(ops, nops) && 1539 match_var_offset(die_mem, data, data->offset, ops->number2, 1540 is_breg_access_indirect(ops, nops))) 1541 return DIE_FIND_CB_END; 1542 } 1543 } 1544 return DIE_FIND_CB_SIBLING; 1545 } 1546 1547 /** 1548 * die_find_variable_by_reg - Find a variable saved in a register 1549 * @sc_die: a scope DIE 1550 * @pc: the program address to find 1551 * @reg: the register number to find 1552 * @poffset: pointer to offset, will be updated for fbreg case 1553 * @is_fbreg: boolean value if the current register is the frame base 1554 * @die_mem: a buffer to save the resulting DIE 1555 * 1556 * Find the variable DIE accessed by the given register. It'll update the @offset 1557 * when the variable is in the stack. 1558 */ 1559 Dwarf_Die *die_find_variable_by_reg(Dwarf_Die *sc_die, Dwarf_Addr pc, int reg, 1560 Dwarf_Die *type_die, int *poffset, bool is_fbreg, 1561 Dwarf_Die *die_mem) 1562 { 1563 struct find_var_data data = { 1564 .pc = pc, 1565 .reg = reg, 1566 .offset = *poffset, 1567 .is_fbreg = is_fbreg, 1568 }; 1569 Dwarf_Die *result; 1570 1571 result = die_find_child(sc_die, __die_find_var_reg_cb, &data, die_mem); 1572 if (result) { 1573 *poffset = data.offset; 1574 *type_die = data.type; 1575 } 1576 return result; 1577 } 1578 1579 /* Only checks direct child DIEs in the given scope */ 1580 static int __die_find_var_addr_cb(Dwarf_Die *die_mem, void *arg) 1581 { 1582 struct find_var_data *data = arg; 1583 int tag = dwarf_tag(die_mem); 1584 ptrdiff_t off = 0; 1585 Dwarf_Attribute attr; 1586 Dwarf_Addr base, start, end; 1587 Dwarf_Op *ops; 1588 size_t nops; 1589 1590 if (tag != DW_TAG_variable) 1591 return DIE_FIND_CB_SIBLING; 1592 1593 if (dwarf_attr(die_mem, DW_AT_location, &attr) == NULL) 1594 return DIE_FIND_CB_SIBLING; 1595 1596 while ((off = dwarf_getlocations(&attr, off, &base, &start, &end, &ops, &nops)) > 0) { 1597 if (ops->atom != DW_OP_addr) 1598 continue; 1599 1600 if (check_allowed_ops(ops, nops) && 1601 match_var_offset(die_mem, data, data->addr, ops->number, 1602 /*is_pointer=*/false)) 1603 return DIE_FIND_CB_END; 1604 } 1605 return DIE_FIND_CB_SIBLING; 1606 } 1607 1608 /** 1609 * die_find_variable_by_addr - Find variable located at given address 1610 * @sc_die: a scope DIE 1611 * @addr: the data address to find 1612 * @die_mem: a buffer to save the resulting DIE 1613 * @offset: the offset in the resulting type 1614 * 1615 * Find the variable DIE located at the given address (in PC-relative mode). 1616 * This is usually for global variables. 1617 */ 1618 Dwarf_Die *die_find_variable_by_addr(Dwarf_Die *sc_die, Dwarf_Addr addr, 1619 Dwarf_Die *die_mem, Dwarf_Die *type_die, 1620 int *offset) 1621 { 1622 struct find_var_data data = { 1623 .addr = addr, 1624 }; 1625 Dwarf_Die *result; 1626 1627 result = die_find_child(sc_die, __die_find_var_addr_cb, &data, die_mem); 1628 if (result) { 1629 *offset = data.offset; 1630 *type_die = data.type; 1631 } 1632 return result; 1633 } 1634 1635 static int __die_collect_vars_cb(Dwarf_Die *die_mem, void *arg) 1636 { 1637 struct die_var_type **var_types = arg; 1638 Dwarf_Die type_die; 1639 int tag = dwarf_tag(die_mem); 1640 Dwarf_Attribute attr; 1641 Dwarf_Addr base, start, end = 0; 1642 Dwarf_Op *ops; 1643 size_t nops; 1644 struct die_var_type *vt; 1645 ptrdiff_t off; 1646 1647 if (tag != DW_TAG_variable && tag != DW_TAG_formal_parameter) 1648 return DIE_FIND_CB_SIBLING; 1649 1650 if (dwarf_attr(die_mem, DW_AT_location, &attr) == NULL) 1651 return DIE_FIND_CB_SIBLING; 1652 1653 if (__die_get_real_type(die_mem, &type_die) == NULL) 1654 return DIE_FIND_CB_SIBLING; 1655 1656 /* 1657 * Collect all location entries as variables may have different 1658 * locations across different address ranges. 1659 */ 1660 off = 0; 1661 while ((off = dwarf_getlocations(&attr, off, &base, &start, &end, &ops, &nops)) > 0) { 1662 if (!check_allowed_ops(ops, nops)) 1663 continue; 1664 1665 vt = malloc(sizeof(*vt)); 1666 if (vt == NULL) 1667 return DIE_FIND_CB_END; 1668 1669 /* Usually a register holds the value of a variable */ 1670 vt->is_reg_var_addr = false; 1671 1672 if (((ops->atom >= DW_OP_breg0 && ops->atom <= DW_OP_breg31) || 1673 ops->atom == DW_OP_bregx || ops->atom == DW_OP_fbreg) && 1674 !is_breg_access_indirect(ops, nops)) 1675 /* The register contains an address of the variable. */ 1676 vt->is_reg_var_addr = true; 1677 1678 vt->die_off = dwarf_dieoffset(&type_die); 1679 vt->addr = start; 1680 vt->end = end; 1681 vt->has_range = (end != 0 || start != 0); 1682 vt->reg = reg_from_dwarf_op(ops); 1683 vt->offset = offset_from_dwarf_op(ops); 1684 vt->next = *var_types; 1685 *var_types = vt; 1686 } 1687 1688 return DIE_FIND_CB_SIBLING; 1689 } 1690 1691 /** 1692 * die_collect_vars - Save all variables and parameters 1693 * @sc_die: a scope DIE 1694 * @var_types: a pointer to save the resulting list 1695 * 1696 * Save all variables and parameters in the @sc_die and save them to @var_types. 1697 * The @var_types is a singly-linked list containing type and location info. 1698 * Actual type can be retrieved using dwarf_offdie() with 'die_off' later. 1699 * 1700 * Callers should free @var_types. 1701 */ 1702 void die_collect_vars(Dwarf_Die *sc_die, struct die_var_type **var_types) 1703 { 1704 Dwarf_Die die_mem; 1705 1706 die_find_child(sc_die, __die_collect_vars_cb, (void *)var_types, &die_mem); 1707 } 1708 1709 static int __die_collect_global_vars_cb(Dwarf_Die *die_mem, void *arg) 1710 { 1711 struct die_var_type **var_types = arg; 1712 Dwarf_Die type_die; 1713 int tag = dwarf_tag(die_mem); 1714 Dwarf_Attribute attr; 1715 Dwarf_Addr base, start, end; 1716 Dwarf_Op *ops; 1717 size_t nops; 1718 struct die_var_type *vt; 1719 1720 if (tag != DW_TAG_variable) 1721 return DIE_FIND_CB_SIBLING; 1722 1723 if (dwarf_attr(die_mem, DW_AT_location, &attr) == NULL) 1724 return DIE_FIND_CB_SIBLING; 1725 1726 /* Only collect the location with an absolute address. */ 1727 if (dwarf_getlocations(&attr, 0, &base, &start, &end, &ops, &nops) <= 0) 1728 return DIE_FIND_CB_SIBLING; 1729 1730 if (ops->atom != DW_OP_addr) 1731 return DIE_FIND_CB_SIBLING; 1732 1733 if (!check_allowed_ops(ops, nops)) 1734 return DIE_FIND_CB_SIBLING; 1735 1736 if (die_get_real_type(die_mem, &type_die) == NULL) 1737 return DIE_FIND_CB_SIBLING; 1738 1739 vt = malloc(sizeof(*vt)); 1740 if (vt == NULL) 1741 return DIE_FIND_CB_END; 1742 1743 vt->die_off = dwarf_dieoffset(&type_die); 1744 vt->addr = ops->number; 1745 vt->end = 0; 1746 vt->has_range = false; 1747 vt->reg = -1; 1748 vt->offset = 0; 1749 vt->next = *var_types; 1750 *var_types = vt; 1751 1752 return DIE_FIND_CB_SIBLING; 1753 } 1754 1755 /** 1756 * die_collect_global_vars - Save all global variables 1757 * @cu_die: a CU DIE 1758 * @var_types: a pointer to save the resulting list 1759 * 1760 * Save all global variables in the @cu_die and save them to @var_types. 1761 * The @var_types is a singly-linked list containing type and location info. 1762 * Actual type can be retrieved using dwarf_offdie() with 'die_off' later. 1763 * 1764 * Callers should free @var_types. 1765 */ 1766 void die_collect_global_vars(Dwarf_Die *cu_die, struct die_var_type **var_types) 1767 { 1768 Dwarf_Die die_mem; 1769 1770 die_find_child(cu_die, __die_collect_global_vars_cb, (void *)var_types, &die_mem); 1771 } 1772 1773 /** 1774 * die_get_cfa - Get frame base information 1775 * @dwarf: a Dwarf info 1776 * @pc: program address 1777 * @preg: pointer for saved register 1778 * @poffset: pointer for saved offset 1779 * 1780 * This function gets register and offset for CFA (Canonical Frame Address) 1781 * by searching the CIE/FDE info. The CFA usually points to the start address 1782 * of the current stack frame and local variables can be located using an offset 1783 * from the CFA. The @preg and @poffset will be updated if it returns 0. 1784 */ 1785 int die_get_cfa(Dwarf *dwarf, u64 pc, int *preg, int *poffset) 1786 { 1787 Dwarf_CFI *cfi; 1788 Dwarf_Frame *frame = NULL; 1789 Dwarf_Op *ops = NULL; 1790 size_t nops; 1791 1792 cfi = dwarf_getcfi(dwarf); 1793 if (cfi == NULL) 1794 return -1; 1795 1796 if (!dwarf_cfi_addrframe(cfi, pc, &frame) && 1797 !dwarf_frame_cfa(frame, &ops, &nops) && 1798 check_allowed_ops(ops, nops)) { 1799 *preg = reg_from_dwarf_op(ops); 1800 *poffset = offset_from_dwarf_op(ops); 1801 return 0; 1802 } 1803 return -1; 1804 } 1805 1806 /* 1807 * die_has_loclist - Check if DW_AT_location of @vr_die is a location list 1808 * @vr_die: a variable DIE 1809 */ 1810 static bool die_has_loclist(Dwarf_Die *vr_die) 1811 { 1812 Dwarf_Attribute loc; 1813 int tag = dwarf_tag(vr_die); 1814 1815 if (tag != DW_TAG_formal_parameter && 1816 tag != DW_TAG_variable) 1817 return false; 1818 1819 return (dwarf_attr_integrate(vr_die, DW_AT_location, &loc) && 1820 dwarf_whatform(&loc) == DW_FORM_sec_offset); 1821 } 1822 1823 /* 1824 * die_is_optimized_target - Check if target program is compiled with 1825 * optimization 1826 * @cu_die: a CU DIE 1827 * 1828 * For any object in given CU whose DW_AT_location is a location list, 1829 * target program is compiled with optimization. This is applicable to 1830 * clang as well. 1831 */ 1832 bool die_is_optimized_target(Dwarf_Die *cu_die) 1833 { 1834 Dwarf_Die tmp_die; 1835 1836 if (die_has_loclist(cu_die)) 1837 return true; 1838 1839 if (!dwarf_child(cu_die, &tmp_die) && 1840 die_is_optimized_target(&tmp_die)) 1841 return true; 1842 1843 if (!dwarf_siblingof(cu_die, &tmp_die) && 1844 die_is_optimized_target(&tmp_die)) 1845 return true; 1846 1847 return false; 1848 } 1849 1850 /* 1851 * die_search_idx - Search index of given line address 1852 * @lines: Line records of single CU 1853 * @nr_lines: Number of @lines 1854 * @addr: address we are looking for 1855 * @idx: index to be set by this function (return value) 1856 * 1857 * Search for @addr by looping over every lines of CU. If address 1858 * matches, set index of that line in @idx. Note that single source 1859 * line can have multiple line records. i.e. single source line can 1860 * have multiple index. 1861 */ 1862 static bool die_search_idx(Dwarf_Lines *lines, unsigned long nr_lines, 1863 Dwarf_Addr addr, unsigned long *idx) 1864 { 1865 unsigned long i; 1866 Dwarf_Addr tmp; 1867 1868 for (i = 0; i < nr_lines; i++) { 1869 if (dwarf_lineaddr(dwarf_onesrcline(lines, i), &tmp)) 1870 return false; 1871 1872 if (tmp == addr) { 1873 *idx = i; 1874 return true; 1875 } 1876 } 1877 return false; 1878 } 1879 1880 /* 1881 * die_get_postprologue_addr - Search next address after function prologue 1882 * @entrypc_idx: entrypc index 1883 * @lines: Line records of single CU 1884 * @nr_lines: Number of @lines 1885 * @hignpc: high PC address of function 1886 * @postprologue_addr: Next address after function prologue (return value) 1887 * 1888 * Look for prologue-end marker. If there is no explicit marker, return 1889 * address of next line record or next source line. 1890 */ 1891 static bool die_get_postprologue_addr(unsigned long entrypc_idx, 1892 Dwarf_Lines *lines, 1893 unsigned long nr_lines, 1894 Dwarf_Addr highpc, 1895 Dwarf_Addr *postprologue_addr) 1896 { 1897 unsigned long i; 1898 int entrypc_lno, lno; 1899 Dwarf_Line *line; 1900 Dwarf_Addr addr; 1901 bool p_end; 1902 1903 /* entrypc_lno is actual source line number */ 1904 line = dwarf_onesrcline(lines, entrypc_idx); 1905 if (dwarf_lineno(line, &entrypc_lno)) 1906 return false; 1907 1908 for (i = entrypc_idx; i < nr_lines; i++) { 1909 line = dwarf_onesrcline(lines, i); 1910 1911 if (dwarf_lineaddr(line, &addr) || 1912 dwarf_lineno(line, &lno) || 1913 dwarf_lineprologueend(line, &p_end)) 1914 return false; 1915 1916 /* highpc is exclusive. [entrypc,highpc) */ 1917 if (addr >= highpc) 1918 break; 1919 1920 /* clang supports prologue-end marker */ 1921 if (p_end) 1922 break; 1923 1924 /* Actual next line in source */ 1925 if (lno != entrypc_lno) 1926 break; 1927 1928 /* 1929 * Single source line can have multiple line records. 1930 * For Example, 1931 * void foo() { printf("hello\n"); } 1932 * contains two line records. One points to declaration and 1933 * other points to printf() line. Variable 'lno' won't get 1934 * incremented in this case but 'i' will. 1935 */ 1936 if (i != entrypc_idx) 1937 break; 1938 } 1939 1940 if (dwarf_lineaddr(line, postprologue_addr) != 0) 1941 return false; 1942 if (*postprologue_addr >= highpc) { 1943 if (dwarf_lineaddr(dwarf_onesrcline(lines, i - 1), postprologue_addr) != 0) 1944 return false; 1945 } 1946 1947 return true; 1948 } 1949 1950 /* 1951 * die_skip_prologue - Use next address after prologue as probe location 1952 * @sp_die: a subprogram DIE 1953 * @cu_die: a CU DIE 1954 * @entrypc: entrypc of the function 1955 * 1956 * Function prologue prepares stack and registers before executing function 1957 * logic. When target program is compiled without optimization, function 1958 * parameter information is only valid after prologue. When we probe entrypc 1959 * of the function, and try to record function parameter, it contains 1960 * garbage value. 1961 */ 1962 void die_skip_prologue(Dwarf_Die *sp_die, Dwarf_Die *cu_die, 1963 Dwarf_Addr *entrypc) 1964 { 1965 size_t nr_lines = 0; 1966 unsigned long entrypc_idx = 0; 1967 Dwarf_Lines *lines = NULL; 1968 Dwarf_Addr postprologue_addr; 1969 Dwarf_Addr highpc; 1970 1971 if (dwarf_highpc(sp_die, &highpc)) 1972 return; 1973 1974 if (dwarf_getsrclines(cu_die, &lines, &nr_lines)) 1975 return; 1976 1977 if (!die_search_idx(lines, nr_lines, *entrypc, &entrypc_idx)) 1978 return; 1979 1980 if (!die_get_postprologue_addr(entrypc_idx, lines, nr_lines, 1981 highpc, &postprologue_addr)) 1982 return; 1983 1984 *entrypc = postprologue_addr; 1985 } 1986 1987 /* Internal parameters for __die_find_scope_cb() */ 1988 struct find_scope_data { 1989 /* Target instruction address */ 1990 Dwarf_Addr pc; 1991 /* Number of scopes found [output] */ 1992 int nr; 1993 /* Array of scopes found, 0 for the outermost one. [output] */ 1994 Dwarf_Die *scopes; 1995 }; 1996 1997 static int __die_find_scope_cb(Dwarf_Die *die_mem, void *arg) 1998 { 1999 struct find_scope_data *data = arg; 2000 int tag = dwarf_tag(die_mem); 2001 2002 if (dwarf_haspc(die_mem, data->pc)) { 2003 Dwarf_Die *tmp; 2004 2005 tmp = realloc(data->scopes, (data->nr + 1) * sizeof(*tmp)); 2006 if (tmp == NULL) 2007 return DIE_FIND_CB_END; 2008 2009 memcpy(tmp + data->nr, die_mem, sizeof(*die_mem)); 2010 data->scopes = tmp; 2011 data->nr++; 2012 return DIE_FIND_CB_CHILD; 2013 } 2014 2015 /* 2016 * If the DIE doesn't have the PC, we still need to check its children 2017 * and siblings if it's a container like a namespace. 2018 */ 2019 if (tag == DW_TAG_namespace) 2020 return DIE_FIND_CB_CONTINUE; 2021 2022 return DIE_FIND_CB_SIBLING; 2023 } 2024 2025 /** 2026 * die_get_scopes - Return a list of scopes including the address 2027 * @cu_die: a compile unit DIE 2028 * @pc: the address to find 2029 * @scopes: the array of DIEs for scopes (result) 2030 * 2031 * This function does the same as the dwarf_getscopes() but doesn't follow 2032 * the origins of inlined functions. It returns the number of scopes saved 2033 * in the @scopes argument. The outer scope will be saved first (index 0) and 2034 * the last one is the innermost scope at the @pc. 2035 */ 2036 int die_get_scopes(Dwarf_Die *cu_die, Dwarf_Addr pc, Dwarf_Die **scopes) 2037 { 2038 struct find_scope_data data = { 2039 .pc = pc, 2040 }; 2041 Dwarf_Die die_mem; 2042 2043 die_find_child(cu_die, __die_find_scope_cb, &data, &die_mem); 2044 2045 *scopes = data.scopes; 2046 return data.nr; 2047 } 2048 2049 static int __die_find_member_offset_cb(Dwarf_Die *die_mem, void *arg) 2050 { 2051 Dwarf_Die type_die; 2052 Dwarf_Word size, loc; 2053 Dwarf_Word offset = (long)arg; 2054 int tag = dwarf_tag(die_mem); 2055 2056 if (tag != DW_TAG_member) 2057 return DIE_FIND_CB_SIBLING; 2058 2059 /* Unions might not have location */ 2060 if (die_get_data_member_location(die_mem, &loc) < 0) { 2061 Dwarf_Attribute attr; 2062 2063 if (dwarf_attr_integrate(die_mem, DW_AT_data_bit_offset, &attr) && 2064 dwarf_formudata(&attr, &loc) == 0) 2065 loc /= 8; 2066 else 2067 loc = 0; 2068 } 2069 2070 if (offset == loc) 2071 return DIE_FIND_CB_END; 2072 2073 if (die_get_real_type(die_mem, &type_die) == NULL) { 2074 // TODO: add a pr_debug_dtp() later for this unlikely failure 2075 return DIE_FIND_CB_SIBLING; 2076 } 2077 2078 if (dwarf_aggregate_size(&type_die, &size) < 0) 2079 size = 0; 2080 2081 if (loc < offset && offset < (loc + size)) 2082 return DIE_FIND_CB_END; 2083 2084 return DIE_FIND_CB_SIBLING; 2085 } 2086 2087 /** 2088 * die_get_member_type - Return type info of struct member 2089 * @type_die: a type DIE 2090 * @offset: offset in the type 2091 * @die_mem: a buffer to save the resulting DIE 2092 * 2093 * This function returns a type of a member in @type_die where it's located at 2094 * @offset if it's a struct. For now, it just returns the first matching 2095 * member in a union. For other types, it'd return the given type directly 2096 * if it's within the size of the type or NULL otherwise. 2097 */ 2098 Dwarf_Die *die_get_member_type(Dwarf_Die *type_die, int offset, 2099 Dwarf_Die *die_mem) 2100 { 2101 Dwarf_Die *member; 2102 Dwarf_Die mb_type; 2103 int tag; 2104 2105 tag = dwarf_tag(type_die); 2106 /* If it's not a compound type, return the type directly */ 2107 if (tag != DW_TAG_structure_type && tag != DW_TAG_union_type) { 2108 Dwarf_Word size; 2109 2110 if (dwarf_aggregate_size(type_die, &size) < 0) 2111 size = 0; 2112 2113 if ((unsigned)offset >= size) 2114 return NULL; 2115 2116 *die_mem = *type_die; 2117 return die_mem; 2118 } 2119 2120 mb_type = *type_die; 2121 /* TODO: Handle union types better? */ 2122 while (tag == DW_TAG_structure_type || tag == DW_TAG_union_type) { 2123 member = die_find_child(&mb_type, __die_find_member_offset_cb, 2124 (void *)(long)offset, die_mem); 2125 if (member == NULL) 2126 return NULL; 2127 2128 if (die_get_real_type(member, &mb_type) == NULL) 2129 return NULL; 2130 2131 tag = dwarf_tag(&mb_type); 2132 2133 if (tag == DW_TAG_structure_type || tag == DW_TAG_union_type || 2134 tag == DW_TAG_array_type) { 2135 Dwarf_Word loc; 2136 2137 /* Update offset for the start of the member struct */ 2138 if (die_get_data_member_location(member, &loc) == 0) 2139 offset -= loc; 2140 } 2141 2142 /* Handle array types: resolve to the element type by one level */ 2143 if (tag == DW_TAG_array_type) { 2144 Dwarf_Word size; 2145 2146 if (die_get_real_type(&mb_type, &mb_type) == NULL) 2147 return NULL; 2148 2149 if (dwarf_aggregate_size(&mb_type, &size) < 0) 2150 return NULL; 2151 2152 offset = offset % size; 2153 tag = dwarf_tag(&mb_type); 2154 } 2155 } 2156 *die_mem = mb_type; 2157 return die_mem; 2158 } 2159 2160 /** 2161 * die_deref_ptr_type - Return type info for pointer access 2162 * @ptr_die: a pointer type DIE 2163 * @offset: access offset for the pointer 2164 * @die_mem: a buffer to save the resulting DIE 2165 * 2166 * This function follows the pointer in @ptr_die with given @offset 2167 * and saves the resulting type in @die_mem. If the pointer points 2168 * a struct type, actual member at the offset would be returned. 2169 */ 2170 Dwarf_Die *die_deref_ptr_type(Dwarf_Die *ptr_die, int offset, 2171 Dwarf_Die *die_mem) 2172 { 2173 Dwarf_Die type_die; 2174 2175 if (dwarf_tag(ptr_die) != DW_TAG_pointer_type) 2176 return NULL; 2177 2178 if (die_get_real_type(ptr_die, &type_die) == NULL) 2179 return NULL; 2180 2181 return die_get_member_type(&type_die, offset, die_mem); 2182 } 2183