1 // SPDX-License-Identifier: (LGPL-2.1 OR BSD-2-Clause) 2 /* 3 * BPF static linker 4 * 5 * Copyright (c) 2021 Facebook 6 */ 7 #include <stdbool.h> 8 #include <stddef.h> 9 #include <stdio.h> 10 #include <stdlib.h> 11 #include <string.h> 12 #include <unistd.h> 13 #include <errno.h> 14 #include <linux/err.h> 15 #include <linux/btf.h> 16 #include <elf.h> 17 #include <libelf.h> 18 #include <gelf.h> 19 #include <fcntl.h> 20 #include "libbpf.h" 21 #include "btf.h" 22 #include "libbpf_internal.h" 23 #include "strset.h" 24 25 #define BTF_EXTERN_SEC ".extern" 26 27 struct src_sec { 28 const char *sec_name; 29 /* positional (not necessarily ELF) index in an array of sections */ 30 int id; 31 /* positional (not necessarily ELF) index of a matching section in a final object file */ 32 int dst_id; 33 /* section data offset in a matching output section */ 34 int dst_off; 35 /* whether section is omitted from the final ELF file */ 36 bool skipped; 37 /* whether section is an ephemeral section, not mapped to an ELF section */ 38 bool ephemeral; 39 40 /* ELF info */ 41 size_t sec_idx; 42 Elf_Scn *scn; 43 Elf64_Shdr *shdr; 44 Elf_Data *data; 45 46 /* corresponding BTF DATASEC type ID */ 47 int sec_type_id; 48 }; 49 50 struct src_obj { 51 const char *filename; 52 int fd; 53 Elf *elf; 54 /* Section header strings section index */ 55 size_t shstrs_sec_idx; 56 /* SYMTAB section index */ 57 size_t symtab_sec_idx; 58 59 struct btf *btf; 60 struct btf_ext *btf_ext; 61 62 /* List of sections (including ephemeral). Slot zero is unused. */ 63 struct src_sec *secs; 64 int sec_cnt; 65 66 /* mapping of symbol indices from src to dst ELF */ 67 int *sym_map; 68 /* mapping from the src BTF type IDs to dst ones */ 69 int *btf_type_map; 70 }; 71 72 /* single .BTF.ext data section */ 73 struct btf_ext_sec_data { 74 size_t rec_cnt; 75 __u32 rec_sz; 76 void *recs; 77 }; 78 79 struct glob_sym { 80 /* ELF symbol index */ 81 int sym_idx; 82 /* associated section id for .ksyms, .kconfig, etc, but not .extern */ 83 int sec_id; 84 /* extern name offset in STRTAB */ 85 int name_off; 86 /* optional associated BTF type ID */ 87 int btf_id; 88 /* BTF type ID to which VAR/FUNC type is pointing to; used for 89 * rewriting types when extern VAR/FUNC is resolved to a concrete 90 * definition 91 */ 92 int underlying_btf_id; 93 /* sec_var index in the corresponding dst_sec, if exists */ 94 int var_idx; 95 96 /* extern or resolved/global symbol */ 97 bool is_extern; 98 /* weak or strong symbol, never goes back from strong to weak */ 99 bool is_weak; 100 }; 101 102 struct dst_sec { 103 char *sec_name; 104 /* positional (not necessarily ELF) index in an array of sections */ 105 int id; 106 107 bool ephemeral; 108 109 /* ELF info */ 110 size_t sec_idx; 111 Elf_Scn *scn; 112 Elf64_Shdr *shdr; 113 Elf_Data *data; 114 115 /* final output section size */ 116 int sec_sz; 117 /* final output contents of the section */ 118 void *raw_data; 119 120 /* corresponding STT_SECTION symbol index in SYMTAB */ 121 int sec_sym_idx; 122 123 /* section's DATASEC variable info, emitted on BTF finalization */ 124 bool has_btf; 125 int sec_var_cnt; 126 struct btf_var_secinfo *sec_vars; 127 128 /* section's .BTF.ext data */ 129 struct btf_ext_sec_data func_info; 130 struct btf_ext_sec_data line_info; 131 struct btf_ext_sec_data core_relo_info; 132 }; 133 134 struct bpf_linker { 135 char *filename; 136 int fd; 137 Elf *elf; 138 Elf64_Ehdr *elf_hdr; 139 140 /* Output sections metadata */ 141 struct dst_sec *secs; 142 int sec_cnt; 143 144 struct strset *strtab_strs; /* STRTAB unique strings */ 145 size_t strtab_sec_idx; /* STRTAB section index */ 146 size_t symtab_sec_idx; /* SYMTAB section index */ 147 148 struct btf *btf; 149 struct btf_ext *btf_ext; 150 151 /* global (including extern) ELF symbols */ 152 int glob_sym_cnt; 153 struct glob_sym *glob_syms; 154 }; 155 156 #define pr_warn_elf(fmt, ...) \ 157 libbpf_print(LIBBPF_WARN, "libbpf: " fmt ": %s\n", ##__VA_ARGS__, elf_errmsg(-1)) 158 159 static int init_output_elf(struct bpf_linker *linker, const char *file); 160 161 static int linker_load_obj_file(struct bpf_linker *linker, const char *filename, 162 const struct bpf_linker_file_opts *opts, 163 struct src_obj *obj); 164 static int linker_sanity_check_elf(struct src_obj *obj); 165 static int linker_sanity_check_elf_symtab(struct src_obj *obj, struct src_sec *sec); 166 static int linker_sanity_check_elf_relos(struct src_obj *obj, struct src_sec *sec); 167 static int linker_sanity_check_btf(struct src_obj *obj); 168 static int linker_sanity_check_btf_ext(struct src_obj *obj); 169 static int linker_fixup_btf(struct src_obj *obj); 170 static int linker_append_sec_data(struct bpf_linker *linker, struct src_obj *obj); 171 static int linker_append_elf_syms(struct bpf_linker *linker, struct src_obj *obj); 172 static int linker_append_elf_sym(struct bpf_linker *linker, struct src_obj *obj, 173 Elf64_Sym *sym, const char *sym_name, int src_sym_idx); 174 static int linker_append_elf_relos(struct bpf_linker *linker, struct src_obj *obj); 175 static int linker_append_btf(struct bpf_linker *linker, struct src_obj *obj); 176 static int linker_append_btf_ext(struct bpf_linker *linker, struct src_obj *obj); 177 178 static int finalize_btf(struct bpf_linker *linker); 179 static int finalize_btf_ext(struct bpf_linker *linker); 180 181 void bpf_linker__free(struct bpf_linker *linker) 182 { 183 int i; 184 185 if (!linker) 186 return; 187 188 free(linker->filename); 189 190 if (linker->elf) 191 elf_end(linker->elf); 192 193 if (linker->fd >= 0) 194 close(linker->fd); 195 196 strset__free(linker->strtab_strs); 197 198 btf__free(linker->btf); 199 btf_ext__free(linker->btf_ext); 200 201 for (i = 1; i < linker->sec_cnt; i++) { 202 struct dst_sec *sec = &linker->secs[i]; 203 204 free(sec->sec_name); 205 free(sec->raw_data); 206 free(sec->sec_vars); 207 208 free(sec->func_info.recs); 209 free(sec->line_info.recs); 210 free(sec->core_relo_info.recs); 211 } 212 free(linker->secs); 213 214 free(linker); 215 } 216 217 struct bpf_linker *bpf_linker__new(const char *filename, struct bpf_linker_opts *opts) 218 { 219 struct bpf_linker *linker; 220 int err; 221 222 if (!OPTS_VALID(opts, bpf_linker_opts)) 223 return NULL; 224 225 if (elf_version(EV_CURRENT) == EV_NONE) { 226 pr_warn_elf("libelf initialization failed"); 227 return NULL; 228 } 229 230 linker = calloc(1, sizeof(*linker)); 231 if (!linker) 232 return NULL; 233 234 linker->fd = -1; 235 236 err = init_output_elf(linker, filename); 237 if (err) 238 goto err_out; 239 240 return linker; 241 242 err_out: 243 bpf_linker__free(linker); 244 return NULL; 245 } 246 247 static struct dst_sec *add_dst_sec(struct bpf_linker *linker, const char *sec_name) 248 { 249 struct dst_sec *secs = linker->secs, *sec; 250 size_t new_cnt = linker->sec_cnt ? linker->sec_cnt + 1 : 2; 251 252 secs = libbpf_reallocarray(secs, new_cnt, sizeof(*secs)); 253 if (!secs) 254 return NULL; 255 256 /* zero out newly allocated memory */ 257 memset(secs + linker->sec_cnt, 0, (new_cnt - linker->sec_cnt) * sizeof(*secs)); 258 259 linker->secs = secs; 260 linker->sec_cnt = new_cnt; 261 262 sec = &linker->secs[new_cnt - 1]; 263 sec->id = new_cnt - 1; 264 sec->sec_name = strdup(sec_name); 265 if (!sec->sec_name) 266 return NULL; 267 268 return sec; 269 } 270 271 static Elf64_Sym *add_new_sym(struct bpf_linker *linker, size_t *sym_idx) 272 { 273 struct dst_sec *symtab = &linker->secs[linker->symtab_sec_idx]; 274 Elf64_Sym *syms, *sym; 275 size_t sym_cnt = symtab->sec_sz / sizeof(*sym); 276 277 syms = libbpf_reallocarray(symtab->raw_data, sym_cnt + 1, sizeof(*sym)); 278 if (!syms) 279 return NULL; 280 281 sym = &syms[sym_cnt]; 282 memset(sym, 0, sizeof(*sym)); 283 284 symtab->raw_data = syms; 285 symtab->sec_sz += sizeof(*sym); 286 symtab->shdr->sh_size += sizeof(*sym); 287 symtab->data->d_size += sizeof(*sym); 288 289 if (sym_idx) 290 *sym_idx = sym_cnt; 291 292 return sym; 293 } 294 295 static int init_output_elf(struct bpf_linker *linker, const char *file) 296 { 297 int err, str_off; 298 Elf64_Sym *init_sym; 299 struct dst_sec *sec; 300 301 linker->filename = strdup(file); 302 if (!linker->filename) 303 return -ENOMEM; 304 305 linker->fd = open(file, O_WRONLY | O_CREAT | O_TRUNC, 0644); 306 if (linker->fd < 0) { 307 err = -errno; 308 pr_warn("failed to create '%s': %d\n", file, err); 309 return err; 310 } 311 312 linker->elf = elf_begin(linker->fd, ELF_C_WRITE, NULL); 313 if (!linker->elf) { 314 pr_warn_elf("failed to create ELF object"); 315 return -EINVAL; 316 } 317 318 /* ELF header */ 319 linker->elf_hdr = elf64_newehdr(linker->elf); 320 if (!linker->elf_hdr) { 321 pr_warn_elf("failed to create ELF header"); 322 return -EINVAL; 323 } 324 325 linker->elf_hdr->e_machine = EM_BPF; 326 linker->elf_hdr->e_type = ET_REL; 327 #if __BYTE_ORDER == __LITTLE_ENDIAN 328 linker->elf_hdr->e_ident[EI_DATA] = ELFDATA2LSB; 329 #elif __BYTE_ORDER == __BIG_ENDIAN 330 linker->elf_hdr->e_ident[EI_DATA] = ELFDATA2MSB; 331 #else 332 #error "Unknown __BYTE_ORDER" 333 #endif 334 335 /* STRTAB */ 336 /* initialize strset with an empty string to conform to ELF */ 337 linker->strtab_strs = strset__new(INT_MAX, "", sizeof("")); 338 if (libbpf_get_error(linker->strtab_strs)) 339 return libbpf_get_error(linker->strtab_strs); 340 341 sec = add_dst_sec(linker, ".strtab"); 342 if (!sec) 343 return -ENOMEM; 344 345 sec->scn = elf_newscn(linker->elf); 346 if (!sec->scn) { 347 pr_warn_elf("failed to create STRTAB section"); 348 return -EINVAL; 349 } 350 351 sec->shdr = elf64_getshdr(sec->scn); 352 if (!sec->shdr) 353 return -EINVAL; 354 355 sec->data = elf_newdata(sec->scn); 356 if (!sec->data) { 357 pr_warn_elf("failed to create STRTAB data"); 358 return -EINVAL; 359 } 360 361 str_off = strset__add_str(linker->strtab_strs, sec->sec_name); 362 if (str_off < 0) 363 return str_off; 364 365 sec->sec_idx = elf_ndxscn(sec->scn); 366 linker->elf_hdr->e_shstrndx = sec->sec_idx; 367 linker->strtab_sec_idx = sec->sec_idx; 368 369 sec->shdr->sh_name = str_off; 370 sec->shdr->sh_type = SHT_STRTAB; 371 sec->shdr->sh_flags = SHF_STRINGS; 372 sec->shdr->sh_offset = 0; 373 sec->shdr->sh_link = 0; 374 sec->shdr->sh_info = 0; 375 sec->shdr->sh_addralign = 1; 376 sec->shdr->sh_size = sec->sec_sz = 0; 377 sec->shdr->sh_entsize = 0; 378 379 /* SYMTAB */ 380 sec = add_dst_sec(linker, ".symtab"); 381 if (!sec) 382 return -ENOMEM; 383 384 sec->scn = elf_newscn(linker->elf); 385 if (!sec->scn) { 386 pr_warn_elf("failed to create SYMTAB section"); 387 return -EINVAL; 388 } 389 390 sec->shdr = elf64_getshdr(sec->scn); 391 if (!sec->shdr) 392 return -EINVAL; 393 394 sec->data = elf_newdata(sec->scn); 395 if (!sec->data) { 396 pr_warn_elf("failed to create SYMTAB data"); 397 return -EINVAL; 398 } 399 400 str_off = strset__add_str(linker->strtab_strs, sec->sec_name); 401 if (str_off < 0) 402 return str_off; 403 404 sec->sec_idx = elf_ndxscn(sec->scn); 405 linker->symtab_sec_idx = sec->sec_idx; 406 407 sec->shdr->sh_name = str_off; 408 sec->shdr->sh_type = SHT_SYMTAB; 409 sec->shdr->sh_flags = 0; 410 sec->shdr->sh_offset = 0; 411 sec->shdr->sh_link = linker->strtab_sec_idx; 412 /* sh_info should be one greater than the index of the last local 413 * symbol (i.e., binding is STB_LOCAL). But why and who cares? 414 */ 415 sec->shdr->sh_info = 0; 416 sec->shdr->sh_addralign = 8; 417 sec->shdr->sh_entsize = sizeof(Elf64_Sym); 418 419 /* .BTF */ 420 linker->btf = btf__new_empty(); 421 err = libbpf_get_error(linker->btf); 422 if (err) 423 return err; 424 425 /* add the special all-zero symbol */ 426 init_sym = add_new_sym(linker, NULL); 427 if (!init_sym) 428 return -EINVAL; 429 430 init_sym->st_name = 0; 431 init_sym->st_info = 0; 432 init_sym->st_other = 0; 433 init_sym->st_shndx = SHN_UNDEF; 434 init_sym->st_value = 0; 435 init_sym->st_size = 0; 436 437 return 0; 438 } 439 440 int bpf_linker__add_file(struct bpf_linker *linker, const char *filename, 441 const struct bpf_linker_file_opts *opts) 442 { 443 struct src_obj obj = {}; 444 int err = 0; 445 446 if (!OPTS_VALID(opts, bpf_linker_file_opts)) 447 return -EINVAL; 448 449 if (!linker->elf) 450 return -EINVAL; 451 452 err = err ?: linker_load_obj_file(linker, filename, opts, &obj); 453 err = err ?: linker_append_sec_data(linker, &obj); 454 err = err ?: linker_append_elf_syms(linker, &obj); 455 err = err ?: linker_append_elf_relos(linker, &obj); 456 err = err ?: linker_append_btf(linker, &obj); 457 err = err ?: linker_append_btf_ext(linker, &obj); 458 459 /* free up src_obj resources */ 460 free(obj.btf_type_map); 461 btf__free(obj.btf); 462 btf_ext__free(obj.btf_ext); 463 free(obj.secs); 464 free(obj.sym_map); 465 if (obj.elf) 466 elf_end(obj.elf); 467 if (obj.fd >= 0) 468 close(obj.fd); 469 470 return err; 471 } 472 473 static bool is_dwarf_sec_name(const char *name) 474 { 475 /* approximation, but the actual list is too long */ 476 return strncmp(name, ".debug_", sizeof(".debug_") - 1) == 0; 477 } 478 479 static bool is_ignored_sec(struct src_sec *sec) 480 { 481 Elf64_Shdr *shdr = sec->shdr; 482 const char *name = sec->sec_name; 483 484 /* no special handling of .strtab */ 485 if (shdr->sh_type == SHT_STRTAB) 486 return true; 487 488 /* ignore .llvm_addrsig section as well */ 489 if (shdr->sh_type == SHT_LLVM_ADDRSIG) 490 return true; 491 492 /* no subprograms will lead to an empty .text section, ignore it */ 493 if (shdr->sh_type == SHT_PROGBITS && shdr->sh_size == 0 && 494 strcmp(sec->sec_name, ".text") == 0) 495 return true; 496 497 /* DWARF sections */ 498 if (is_dwarf_sec_name(sec->sec_name)) 499 return true; 500 501 if (strncmp(name, ".rel", sizeof(".rel") - 1) == 0) { 502 name += sizeof(".rel") - 1; 503 /* DWARF section relocations */ 504 if (is_dwarf_sec_name(name)) 505 return true; 506 507 /* .BTF and .BTF.ext don't need relocations */ 508 if (strcmp(name, BTF_ELF_SEC) == 0 || 509 strcmp(name, BTF_EXT_ELF_SEC) == 0) 510 return true; 511 } 512 513 return false; 514 } 515 516 static struct src_sec *add_src_sec(struct src_obj *obj, const char *sec_name) 517 { 518 struct src_sec *secs = obj->secs, *sec; 519 size_t new_cnt = obj->sec_cnt ? obj->sec_cnt + 1 : 2; 520 521 secs = libbpf_reallocarray(secs, new_cnt, sizeof(*secs)); 522 if (!secs) 523 return NULL; 524 525 /* zero out newly allocated memory */ 526 memset(secs + obj->sec_cnt, 0, (new_cnt - obj->sec_cnt) * sizeof(*secs)); 527 528 obj->secs = secs; 529 obj->sec_cnt = new_cnt; 530 531 sec = &obj->secs[new_cnt - 1]; 532 sec->id = new_cnt - 1; 533 sec->sec_name = sec_name; 534 535 return sec; 536 } 537 538 static int linker_load_obj_file(struct bpf_linker *linker, const char *filename, 539 const struct bpf_linker_file_opts *opts, 540 struct src_obj *obj) 541 { 542 #if __BYTE_ORDER == __LITTLE_ENDIAN 543 const int host_endianness = ELFDATA2LSB; 544 #elif __BYTE_ORDER == __BIG_ENDIAN 545 const int host_endianness = ELFDATA2MSB; 546 #else 547 #error "Unknown __BYTE_ORDER" 548 #endif 549 int err = 0; 550 Elf_Scn *scn; 551 Elf_Data *data; 552 Elf64_Ehdr *ehdr; 553 Elf64_Shdr *shdr; 554 struct src_sec *sec; 555 556 pr_debug("linker: adding object file '%s'...\n", filename); 557 558 obj->filename = filename; 559 560 obj->fd = open(filename, O_RDONLY); 561 if (obj->fd < 0) { 562 err = -errno; 563 pr_warn("failed to open file '%s': %d\n", filename, err); 564 return err; 565 } 566 obj->elf = elf_begin(obj->fd, ELF_C_READ_MMAP, NULL); 567 if (!obj->elf) { 568 err = -errno; 569 pr_warn_elf("failed to parse ELF file '%s'", filename); 570 return err; 571 } 572 573 /* Sanity check ELF file high-level properties */ 574 ehdr = elf64_getehdr(obj->elf); 575 if (!ehdr) { 576 err = -errno; 577 pr_warn_elf("failed to get ELF header for %s", filename); 578 return err; 579 } 580 if (ehdr->e_ident[EI_DATA] != host_endianness) { 581 err = -EOPNOTSUPP; 582 pr_warn_elf("unsupported byte order of ELF file %s", filename); 583 return err; 584 } 585 if (ehdr->e_type != ET_REL 586 || ehdr->e_machine != EM_BPF 587 || ehdr->e_ident[EI_CLASS] != ELFCLASS64) { 588 err = -EOPNOTSUPP; 589 pr_warn_elf("unsupported kind of ELF file %s", filename); 590 return err; 591 } 592 593 if (elf_getshdrstrndx(obj->elf, &obj->shstrs_sec_idx)) { 594 err = -errno; 595 pr_warn_elf("failed to get SHSTRTAB section index for %s", filename); 596 return err; 597 } 598 599 scn = NULL; 600 while ((scn = elf_nextscn(obj->elf, scn)) != NULL) { 601 size_t sec_idx = elf_ndxscn(scn); 602 const char *sec_name; 603 604 shdr = elf64_getshdr(scn); 605 if (!shdr) { 606 err = -errno; 607 pr_warn_elf("failed to get section #%zu header for %s", 608 sec_idx, filename); 609 return err; 610 } 611 612 sec_name = elf_strptr(obj->elf, obj->shstrs_sec_idx, shdr->sh_name); 613 if (!sec_name) { 614 err = -errno; 615 pr_warn_elf("failed to get section #%zu name for %s", 616 sec_idx, filename); 617 return err; 618 } 619 620 data = elf_getdata(scn, 0); 621 if (!data) { 622 err = -errno; 623 pr_warn_elf("failed to get section #%zu (%s) data from %s", 624 sec_idx, sec_name, filename); 625 return err; 626 } 627 628 sec = add_src_sec(obj, sec_name); 629 if (!sec) 630 return -ENOMEM; 631 632 sec->scn = scn; 633 sec->shdr = shdr; 634 sec->data = data; 635 sec->sec_idx = elf_ndxscn(scn); 636 637 if (is_ignored_sec(sec)) { 638 sec->skipped = true; 639 continue; 640 } 641 642 switch (shdr->sh_type) { 643 case SHT_SYMTAB: 644 if (obj->symtab_sec_idx) { 645 err = -EOPNOTSUPP; 646 pr_warn("multiple SYMTAB sections found, not supported\n"); 647 return err; 648 } 649 obj->symtab_sec_idx = sec_idx; 650 break; 651 case SHT_STRTAB: 652 /* we'll construct our own string table */ 653 break; 654 case SHT_PROGBITS: 655 if (strcmp(sec_name, BTF_ELF_SEC) == 0) { 656 obj->btf = btf__new(data->d_buf, shdr->sh_size); 657 err = libbpf_get_error(obj->btf); 658 if (err) { 659 pr_warn("failed to parse .BTF from %s: %d\n", filename, err); 660 return err; 661 } 662 sec->skipped = true; 663 continue; 664 } 665 if (strcmp(sec_name, BTF_EXT_ELF_SEC) == 0) { 666 obj->btf_ext = btf_ext__new(data->d_buf, shdr->sh_size); 667 err = libbpf_get_error(obj->btf_ext); 668 if (err) { 669 pr_warn("failed to parse .BTF.ext from '%s': %d\n", filename, err); 670 return err; 671 } 672 sec->skipped = true; 673 continue; 674 } 675 676 /* data & code */ 677 break; 678 case SHT_NOBITS: 679 /* BSS */ 680 break; 681 case SHT_REL: 682 /* relocations */ 683 break; 684 default: 685 pr_warn("unrecognized section #%zu (%s) in %s\n", 686 sec_idx, sec_name, filename); 687 err = -EINVAL; 688 return err; 689 } 690 } 691 692 err = err ?: linker_sanity_check_elf(obj); 693 err = err ?: linker_sanity_check_btf(obj); 694 err = err ?: linker_sanity_check_btf_ext(obj); 695 err = err ?: linker_fixup_btf(obj); 696 697 return err; 698 } 699 700 static bool is_pow_of_2(size_t x) 701 { 702 return x && (x & (x - 1)) == 0; 703 } 704 705 static int linker_sanity_check_elf(struct src_obj *obj) 706 { 707 struct src_sec *sec; 708 int i, err; 709 710 if (!obj->symtab_sec_idx) { 711 pr_warn("ELF is missing SYMTAB section in %s\n", obj->filename); 712 return -EINVAL; 713 } 714 if (!obj->shstrs_sec_idx) { 715 pr_warn("ELF is missing section headers STRTAB section in %s\n", obj->filename); 716 return -EINVAL; 717 } 718 719 for (i = 1; i < obj->sec_cnt; i++) { 720 sec = &obj->secs[i]; 721 722 if (sec->sec_name[0] == '\0') { 723 pr_warn("ELF section #%zu has empty name in %s\n", sec->sec_idx, obj->filename); 724 return -EINVAL; 725 } 726 727 if (sec->shdr->sh_addralign && !is_pow_of_2(sec->shdr->sh_addralign)) 728 return -EINVAL; 729 if (sec->shdr->sh_addralign != sec->data->d_align) 730 return -EINVAL; 731 732 if (sec->shdr->sh_size != sec->data->d_size) 733 return -EINVAL; 734 735 switch (sec->shdr->sh_type) { 736 case SHT_SYMTAB: 737 err = linker_sanity_check_elf_symtab(obj, sec); 738 if (err) 739 return err; 740 break; 741 case SHT_STRTAB: 742 break; 743 case SHT_PROGBITS: 744 if (sec->shdr->sh_flags & SHF_EXECINSTR) { 745 if (sec->shdr->sh_size % sizeof(struct bpf_insn) != 0) 746 return -EINVAL; 747 } 748 break; 749 case SHT_NOBITS: 750 break; 751 case SHT_REL: 752 err = linker_sanity_check_elf_relos(obj, sec); 753 if (err) 754 return err; 755 break; 756 case SHT_LLVM_ADDRSIG: 757 break; 758 default: 759 pr_warn("ELF section #%zu (%s) has unrecognized type %zu in %s\n", 760 sec->sec_idx, sec->sec_name, (size_t)sec->shdr->sh_type, obj->filename); 761 return -EINVAL; 762 } 763 } 764 765 return 0; 766 } 767 768 static int linker_sanity_check_elf_symtab(struct src_obj *obj, struct src_sec *sec) 769 { 770 struct src_sec *link_sec; 771 Elf64_Sym *sym; 772 int i, n; 773 774 if (sec->shdr->sh_entsize != sizeof(Elf64_Sym)) 775 return -EINVAL; 776 if (sec->shdr->sh_size % sec->shdr->sh_entsize != 0) 777 return -EINVAL; 778 779 if (!sec->shdr->sh_link || sec->shdr->sh_link >= obj->sec_cnt) { 780 pr_warn("ELF SYMTAB section #%zu points to missing STRTAB section #%zu in %s\n", 781 sec->sec_idx, (size_t)sec->shdr->sh_link, obj->filename); 782 return -EINVAL; 783 } 784 link_sec = &obj->secs[sec->shdr->sh_link]; 785 if (link_sec->shdr->sh_type != SHT_STRTAB) { 786 pr_warn("ELF SYMTAB section #%zu points to invalid STRTAB section #%zu in %s\n", 787 sec->sec_idx, (size_t)sec->shdr->sh_link, obj->filename); 788 return -EINVAL; 789 } 790 791 n = sec->shdr->sh_size / sec->shdr->sh_entsize; 792 sym = sec->data->d_buf; 793 for (i = 0; i < n; i++, sym++) { 794 int sym_type = ELF64_ST_TYPE(sym->st_info); 795 int sym_bind = ELF64_ST_BIND(sym->st_info); 796 int sym_vis = ELF64_ST_VISIBILITY(sym->st_other); 797 798 if (i == 0) { 799 if (sym->st_name != 0 || sym->st_info != 0 800 || sym->st_other != 0 || sym->st_shndx != 0 801 || sym->st_value != 0 || sym->st_size != 0) { 802 pr_warn("ELF sym #0 is invalid in %s\n", obj->filename); 803 return -EINVAL; 804 } 805 continue; 806 } 807 if (sym_bind != STB_LOCAL && sym_bind != STB_GLOBAL && sym_bind != STB_WEAK) { 808 pr_warn("ELF sym #%d in section #%zu has unsupported symbol binding %d\n", 809 i, sec->sec_idx, sym_bind); 810 return -EINVAL; 811 } 812 if (sym_vis != STV_DEFAULT && sym_vis != STV_HIDDEN) { 813 pr_warn("ELF sym #%d in section #%zu has unsupported symbol visibility %d\n", 814 i, sec->sec_idx, sym_vis); 815 return -EINVAL; 816 } 817 if (sym->st_shndx == 0) { 818 if (sym_type != STT_NOTYPE || sym_bind == STB_LOCAL 819 || sym->st_value != 0 || sym->st_size != 0) { 820 pr_warn("ELF sym #%d is invalid extern symbol in %s\n", 821 i, obj->filename); 822 823 return -EINVAL; 824 } 825 continue; 826 } 827 if (sym->st_shndx < SHN_LORESERVE && sym->st_shndx >= obj->sec_cnt) { 828 pr_warn("ELF sym #%d in section #%zu points to missing section #%zu in %s\n", 829 i, sec->sec_idx, (size_t)sym->st_shndx, obj->filename); 830 return -EINVAL; 831 } 832 if (sym_type == STT_SECTION) { 833 if (sym->st_value != 0) 834 return -EINVAL; 835 continue; 836 } 837 } 838 839 return 0; 840 } 841 842 static int linker_sanity_check_elf_relos(struct src_obj *obj, struct src_sec *sec) 843 { 844 struct src_sec *link_sec, *sym_sec; 845 Elf64_Rel *relo; 846 int i, n; 847 848 if (sec->shdr->sh_entsize != sizeof(Elf64_Rel)) 849 return -EINVAL; 850 if (sec->shdr->sh_size % sec->shdr->sh_entsize != 0) 851 return -EINVAL; 852 853 /* SHT_REL's sh_link should point to SYMTAB */ 854 if (sec->shdr->sh_link != obj->symtab_sec_idx) { 855 pr_warn("ELF relo section #%zu points to invalid SYMTAB section #%zu in %s\n", 856 sec->sec_idx, (size_t)sec->shdr->sh_link, obj->filename); 857 return -EINVAL; 858 } 859 860 /* SHT_REL's sh_info points to relocated section */ 861 if (!sec->shdr->sh_info || sec->shdr->sh_info >= obj->sec_cnt) { 862 pr_warn("ELF relo section #%zu points to missing section #%zu in %s\n", 863 sec->sec_idx, (size_t)sec->shdr->sh_info, obj->filename); 864 return -EINVAL; 865 } 866 link_sec = &obj->secs[sec->shdr->sh_info]; 867 868 /* .rel<secname> -> <secname> pattern is followed */ 869 if (strncmp(sec->sec_name, ".rel", sizeof(".rel") - 1) != 0 870 || strcmp(sec->sec_name + sizeof(".rel") - 1, link_sec->sec_name) != 0) { 871 pr_warn("ELF relo section #%zu name has invalid name in %s\n", 872 sec->sec_idx, obj->filename); 873 return -EINVAL; 874 } 875 876 /* don't further validate relocations for ignored sections */ 877 if (link_sec->skipped) 878 return 0; 879 880 /* relocatable section is data or instructions */ 881 if (link_sec->shdr->sh_type != SHT_PROGBITS && link_sec->shdr->sh_type != SHT_NOBITS) { 882 pr_warn("ELF relo section #%zu points to invalid section #%zu in %s\n", 883 sec->sec_idx, (size_t)sec->shdr->sh_info, obj->filename); 884 return -EINVAL; 885 } 886 887 /* check sanity of each relocation */ 888 n = sec->shdr->sh_size / sec->shdr->sh_entsize; 889 relo = sec->data->d_buf; 890 sym_sec = &obj->secs[obj->symtab_sec_idx]; 891 for (i = 0; i < n; i++, relo++) { 892 size_t sym_idx = ELF64_R_SYM(relo->r_info); 893 size_t sym_type = ELF64_R_TYPE(relo->r_info); 894 895 if (sym_type != R_BPF_64_64 && sym_type != R_BPF_64_32) { 896 pr_warn("ELF relo #%d in section #%zu has unexpected type %zu in %s\n", 897 i, sec->sec_idx, sym_type, obj->filename); 898 return -EINVAL; 899 } 900 901 if (!sym_idx || sym_idx * sizeof(Elf64_Sym) >= sym_sec->shdr->sh_size) { 902 pr_warn("ELF relo #%d in section #%zu points to invalid symbol #%zu in %s\n", 903 i, sec->sec_idx, sym_idx, obj->filename); 904 return -EINVAL; 905 } 906 907 if (link_sec->shdr->sh_flags & SHF_EXECINSTR) { 908 if (relo->r_offset % sizeof(struct bpf_insn) != 0) { 909 pr_warn("ELF relo #%d in section #%zu points to missing symbol #%zu in %s\n", 910 i, sec->sec_idx, sym_idx, obj->filename); 911 return -EINVAL; 912 } 913 } 914 } 915 916 return 0; 917 } 918 919 static int check_btf_type_id(__u32 *type_id, void *ctx) 920 { 921 struct btf *btf = ctx; 922 923 if (*type_id > btf__get_nr_types(btf)) 924 return -EINVAL; 925 926 return 0; 927 } 928 929 static int check_btf_str_off(__u32 *str_off, void *ctx) 930 { 931 struct btf *btf = ctx; 932 const char *s; 933 934 s = btf__str_by_offset(btf, *str_off); 935 936 if (!s) 937 return -EINVAL; 938 939 return 0; 940 } 941 942 static int linker_sanity_check_btf(struct src_obj *obj) 943 { 944 struct btf_type *t; 945 int i, n, err = 0; 946 947 if (!obj->btf) 948 return 0; 949 950 n = btf__get_nr_types(obj->btf); 951 for (i = 1; i <= n; i++) { 952 t = btf_type_by_id(obj->btf, i); 953 954 err = err ?: btf_type_visit_type_ids(t, check_btf_type_id, obj->btf); 955 err = err ?: btf_type_visit_str_offs(t, check_btf_str_off, obj->btf); 956 if (err) 957 return err; 958 } 959 960 return 0; 961 } 962 963 static int linker_sanity_check_btf_ext(struct src_obj *obj) 964 { 965 int err = 0; 966 967 if (!obj->btf_ext) 968 return 0; 969 970 /* can't use .BTF.ext without .BTF */ 971 if (!obj->btf) 972 return -EINVAL; 973 974 err = err ?: btf_ext_visit_type_ids(obj->btf_ext, check_btf_type_id, obj->btf); 975 err = err ?: btf_ext_visit_str_offs(obj->btf_ext, check_btf_str_off, obj->btf); 976 if (err) 977 return err; 978 979 return 0; 980 } 981 982 static int init_sec(struct bpf_linker *linker, struct dst_sec *dst_sec, struct src_sec *src_sec) 983 { 984 Elf_Scn *scn; 985 Elf_Data *data; 986 Elf64_Shdr *shdr; 987 int name_off; 988 989 dst_sec->sec_sz = 0; 990 dst_sec->sec_idx = 0; 991 dst_sec->ephemeral = src_sec->ephemeral; 992 993 /* ephemeral sections are just thin section shells lacking most parts */ 994 if (src_sec->ephemeral) 995 return 0; 996 997 scn = elf_newscn(linker->elf); 998 if (!scn) 999 return -ENOMEM; 1000 data = elf_newdata(scn); 1001 if (!data) 1002 return -ENOMEM; 1003 shdr = elf64_getshdr(scn); 1004 if (!shdr) 1005 return -ENOMEM; 1006 1007 dst_sec->scn = scn; 1008 dst_sec->shdr = shdr; 1009 dst_sec->data = data; 1010 dst_sec->sec_idx = elf_ndxscn(scn); 1011 1012 name_off = strset__add_str(linker->strtab_strs, src_sec->sec_name); 1013 if (name_off < 0) 1014 return name_off; 1015 1016 shdr->sh_name = name_off; 1017 shdr->sh_type = src_sec->shdr->sh_type; 1018 shdr->sh_flags = src_sec->shdr->sh_flags; 1019 shdr->sh_size = 0; 1020 /* sh_link and sh_info have different meaning for different types of 1021 * sections, so we leave it up to the caller code to fill them in, if 1022 * necessary 1023 */ 1024 shdr->sh_link = 0; 1025 shdr->sh_info = 0; 1026 shdr->sh_addralign = src_sec->shdr->sh_addralign; 1027 shdr->sh_entsize = src_sec->shdr->sh_entsize; 1028 1029 data->d_type = src_sec->data->d_type; 1030 data->d_size = 0; 1031 data->d_buf = NULL; 1032 data->d_align = src_sec->data->d_align; 1033 data->d_off = 0; 1034 1035 return 0; 1036 } 1037 1038 static struct dst_sec *find_dst_sec_by_name(struct bpf_linker *linker, const char *sec_name) 1039 { 1040 struct dst_sec *sec; 1041 int i; 1042 1043 for (i = 1; i < linker->sec_cnt; i++) { 1044 sec = &linker->secs[i]; 1045 1046 if (strcmp(sec->sec_name, sec_name) == 0) 1047 return sec; 1048 } 1049 1050 return NULL; 1051 } 1052 1053 static bool secs_match(struct dst_sec *dst, struct src_sec *src) 1054 { 1055 if (dst->ephemeral || src->ephemeral) 1056 return true; 1057 1058 if (dst->shdr->sh_type != src->shdr->sh_type) { 1059 pr_warn("sec %s types mismatch\n", dst->sec_name); 1060 return false; 1061 } 1062 if (dst->shdr->sh_flags != src->shdr->sh_flags) { 1063 pr_warn("sec %s flags mismatch\n", dst->sec_name); 1064 return false; 1065 } 1066 if (dst->shdr->sh_entsize != src->shdr->sh_entsize) { 1067 pr_warn("sec %s entsize mismatch\n", dst->sec_name); 1068 return false; 1069 } 1070 1071 return true; 1072 } 1073 1074 static bool sec_content_is_same(struct dst_sec *dst_sec, struct src_sec *src_sec) 1075 { 1076 if (dst_sec->sec_sz != src_sec->shdr->sh_size) 1077 return false; 1078 if (memcmp(dst_sec->raw_data, src_sec->data->d_buf, dst_sec->sec_sz) != 0) 1079 return false; 1080 return true; 1081 } 1082 1083 static int extend_sec(struct bpf_linker *linker, struct dst_sec *dst, struct src_sec *src) 1084 { 1085 void *tmp; 1086 size_t dst_align, src_align; 1087 size_t dst_align_sz, dst_final_sz; 1088 int err; 1089 1090 /* Ephemeral source section doesn't contribute anything to ELF 1091 * section data. 1092 */ 1093 if (src->ephemeral) 1094 return 0; 1095 1096 /* Some sections (like .maps) can contain both externs (and thus be 1097 * ephemeral) and non-externs (map definitions). So it's possible that 1098 * it has to be "upgraded" from ephemeral to non-ephemeral when the 1099 * first non-ephemeral entity appears. In such case, we add ELF 1100 * section, data, etc. 1101 */ 1102 if (dst->ephemeral) { 1103 err = init_sec(linker, dst, src); 1104 if (err) 1105 return err; 1106 } 1107 1108 dst_align = dst->shdr->sh_addralign; 1109 src_align = src->shdr->sh_addralign; 1110 if (dst_align == 0) 1111 dst_align = 1; 1112 if (dst_align < src_align) 1113 dst_align = src_align; 1114 1115 dst_align_sz = (dst->sec_sz + dst_align - 1) / dst_align * dst_align; 1116 1117 /* no need to re-align final size */ 1118 dst_final_sz = dst_align_sz + src->shdr->sh_size; 1119 1120 if (src->shdr->sh_type != SHT_NOBITS) { 1121 tmp = realloc(dst->raw_data, dst_final_sz); 1122 if (!tmp) 1123 return -ENOMEM; 1124 dst->raw_data = tmp; 1125 1126 /* pad dst section, if it's alignment forced size increase */ 1127 memset(dst->raw_data + dst->sec_sz, 0, dst_align_sz - dst->sec_sz); 1128 /* now copy src data at a properly aligned offset */ 1129 memcpy(dst->raw_data + dst_align_sz, src->data->d_buf, src->shdr->sh_size); 1130 } 1131 1132 dst->sec_sz = dst_final_sz; 1133 dst->shdr->sh_size = dst_final_sz; 1134 dst->data->d_size = dst_final_sz; 1135 1136 dst->shdr->sh_addralign = dst_align; 1137 dst->data->d_align = dst_align; 1138 1139 src->dst_off = dst_align_sz; 1140 1141 return 0; 1142 } 1143 1144 static bool is_data_sec(struct src_sec *sec) 1145 { 1146 if (!sec || sec->skipped) 1147 return false; 1148 /* ephemeral sections are data sections, e.g., .kconfig, .ksyms */ 1149 if (sec->ephemeral) 1150 return true; 1151 return sec->shdr->sh_type == SHT_PROGBITS || sec->shdr->sh_type == SHT_NOBITS; 1152 } 1153 1154 static bool is_relo_sec(struct src_sec *sec) 1155 { 1156 if (!sec || sec->skipped || sec->ephemeral) 1157 return false; 1158 return sec->shdr->sh_type == SHT_REL; 1159 } 1160 1161 static int linker_append_sec_data(struct bpf_linker *linker, struct src_obj *obj) 1162 { 1163 int i, err; 1164 1165 for (i = 1; i < obj->sec_cnt; i++) { 1166 struct src_sec *src_sec; 1167 struct dst_sec *dst_sec; 1168 1169 src_sec = &obj->secs[i]; 1170 if (!is_data_sec(src_sec)) 1171 continue; 1172 1173 dst_sec = find_dst_sec_by_name(linker, src_sec->sec_name); 1174 if (!dst_sec) { 1175 dst_sec = add_dst_sec(linker, src_sec->sec_name); 1176 if (!dst_sec) 1177 return -ENOMEM; 1178 err = init_sec(linker, dst_sec, src_sec); 1179 if (err) { 1180 pr_warn("failed to init section '%s'\n", src_sec->sec_name); 1181 return err; 1182 } 1183 } else { 1184 if (!secs_match(dst_sec, src_sec)) { 1185 pr_warn("ELF sections %s are incompatible\n", src_sec->sec_name); 1186 return -1; 1187 } 1188 1189 /* "license" and "version" sections are deduped */ 1190 if (strcmp(src_sec->sec_name, "license") == 0 1191 || strcmp(src_sec->sec_name, "version") == 0) { 1192 if (!sec_content_is_same(dst_sec, src_sec)) { 1193 pr_warn("non-identical contents of section '%s' are not supported\n", src_sec->sec_name); 1194 return -EINVAL; 1195 } 1196 src_sec->skipped = true; 1197 src_sec->dst_id = dst_sec->id; 1198 continue; 1199 } 1200 } 1201 1202 /* record mapped section index */ 1203 src_sec->dst_id = dst_sec->id; 1204 1205 err = extend_sec(linker, dst_sec, src_sec); 1206 if (err) 1207 return err; 1208 } 1209 1210 return 0; 1211 } 1212 1213 static int linker_append_elf_syms(struct bpf_linker *linker, struct src_obj *obj) 1214 { 1215 struct src_sec *symtab = &obj->secs[obj->symtab_sec_idx]; 1216 Elf64_Sym *sym = symtab->data->d_buf; 1217 int i, n = symtab->shdr->sh_size / symtab->shdr->sh_entsize, err; 1218 int str_sec_idx = symtab->shdr->sh_link; 1219 const char *sym_name; 1220 1221 obj->sym_map = calloc(n + 1, sizeof(*obj->sym_map)); 1222 if (!obj->sym_map) 1223 return -ENOMEM; 1224 1225 for (i = 0; i < n; i++, sym++) { 1226 /* We already validated all-zero symbol #0 and we already 1227 * appended it preventively to the final SYMTAB, so skip it. 1228 */ 1229 if (i == 0) 1230 continue; 1231 1232 sym_name = elf_strptr(obj->elf, str_sec_idx, sym->st_name); 1233 if (!sym_name) { 1234 pr_warn("can't fetch symbol name for symbol #%d in '%s'\n", i, obj->filename); 1235 return -EINVAL; 1236 } 1237 1238 err = linker_append_elf_sym(linker, obj, sym, sym_name, i); 1239 if (err) 1240 return err; 1241 } 1242 1243 return 0; 1244 } 1245 1246 static Elf64_Sym *get_sym_by_idx(struct bpf_linker *linker, size_t sym_idx) 1247 { 1248 struct dst_sec *symtab = &linker->secs[linker->symtab_sec_idx]; 1249 Elf64_Sym *syms = symtab->raw_data; 1250 1251 return &syms[sym_idx]; 1252 } 1253 1254 static struct glob_sym *find_glob_sym(struct bpf_linker *linker, const char *sym_name) 1255 { 1256 struct glob_sym *glob_sym; 1257 const char *name; 1258 int i; 1259 1260 for (i = 0; i < linker->glob_sym_cnt; i++) { 1261 glob_sym = &linker->glob_syms[i]; 1262 name = strset__data(linker->strtab_strs) + glob_sym->name_off; 1263 1264 if (strcmp(name, sym_name) == 0) 1265 return glob_sym; 1266 } 1267 1268 return NULL; 1269 } 1270 1271 static struct glob_sym *add_glob_sym(struct bpf_linker *linker) 1272 { 1273 struct glob_sym *syms, *sym; 1274 1275 syms = libbpf_reallocarray(linker->glob_syms, linker->glob_sym_cnt + 1, 1276 sizeof(*linker->glob_syms)); 1277 if (!syms) 1278 return NULL; 1279 1280 sym = &syms[linker->glob_sym_cnt]; 1281 memset(sym, 0, sizeof(*sym)); 1282 sym->var_idx = -1; 1283 1284 linker->glob_syms = syms; 1285 linker->glob_sym_cnt++; 1286 1287 return sym; 1288 } 1289 1290 static bool glob_sym_btf_matches(const char *sym_name, bool exact, 1291 const struct btf *btf1, __u32 id1, 1292 const struct btf *btf2, __u32 id2) 1293 { 1294 const struct btf_type *t1, *t2; 1295 bool is_static1, is_static2; 1296 const char *n1, *n2; 1297 int i, n; 1298 1299 recur: 1300 n1 = n2 = NULL; 1301 t1 = skip_mods_and_typedefs(btf1, id1, &id1); 1302 t2 = skip_mods_and_typedefs(btf2, id2, &id2); 1303 1304 /* check if only one side is FWD, otherwise handle with common logic */ 1305 if (!exact && btf_is_fwd(t1) != btf_is_fwd(t2)) { 1306 n1 = btf__str_by_offset(btf1, t1->name_off); 1307 n2 = btf__str_by_offset(btf2, t2->name_off); 1308 if (strcmp(n1, n2) != 0) { 1309 pr_warn("global '%s': incompatible forward declaration names '%s' and '%s'\n", 1310 sym_name, n1, n2); 1311 return false; 1312 } 1313 /* validate if FWD kind matches concrete kind */ 1314 if (btf_is_fwd(t1)) { 1315 if (btf_kflag(t1) && btf_is_union(t2)) 1316 return true; 1317 if (!btf_kflag(t1) && btf_is_struct(t2)) 1318 return true; 1319 pr_warn("global '%s': incompatible %s forward declaration and concrete kind %s\n", 1320 sym_name, btf_kflag(t1) ? "union" : "struct", btf_kind_str(t2)); 1321 } else { 1322 if (btf_kflag(t2) && btf_is_union(t1)) 1323 return true; 1324 if (!btf_kflag(t2) && btf_is_struct(t1)) 1325 return true; 1326 pr_warn("global '%s': incompatible %s forward declaration and concrete kind %s\n", 1327 sym_name, btf_kflag(t2) ? "union" : "struct", btf_kind_str(t1)); 1328 } 1329 return false; 1330 } 1331 1332 if (btf_kind(t1) != btf_kind(t2)) { 1333 pr_warn("global '%s': incompatible BTF kinds %s and %s\n", 1334 sym_name, btf_kind_str(t1), btf_kind_str(t2)); 1335 return false; 1336 } 1337 1338 switch (btf_kind(t1)) { 1339 case BTF_KIND_STRUCT: 1340 case BTF_KIND_UNION: 1341 case BTF_KIND_ENUM: 1342 case BTF_KIND_FWD: 1343 case BTF_KIND_FUNC: 1344 case BTF_KIND_VAR: 1345 n1 = btf__str_by_offset(btf1, t1->name_off); 1346 n2 = btf__str_by_offset(btf2, t2->name_off); 1347 if (strcmp(n1, n2) != 0) { 1348 pr_warn("global '%s': incompatible %s names '%s' and '%s'\n", 1349 sym_name, btf_kind_str(t1), n1, n2); 1350 return false; 1351 } 1352 break; 1353 default: 1354 break; 1355 } 1356 1357 switch (btf_kind(t1)) { 1358 case BTF_KIND_UNKN: /* void */ 1359 case BTF_KIND_FWD: 1360 return true; 1361 case BTF_KIND_INT: 1362 case BTF_KIND_FLOAT: 1363 case BTF_KIND_ENUM: 1364 /* ignore encoding for int and enum values for enum */ 1365 if (t1->size != t2->size) { 1366 pr_warn("global '%s': incompatible %s '%s' size %u and %u\n", 1367 sym_name, btf_kind_str(t1), n1, t1->size, t2->size); 1368 return false; 1369 } 1370 return true; 1371 case BTF_KIND_PTR: 1372 /* just validate overall shape of the referenced type, so no 1373 * contents comparison for struct/union, and allowd fwd vs 1374 * struct/union 1375 */ 1376 exact = false; 1377 id1 = t1->type; 1378 id2 = t2->type; 1379 goto recur; 1380 case BTF_KIND_ARRAY: 1381 /* ignore index type and array size */ 1382 id1 = btf_array(t1)->type; 1383 id2 = btf_array(t2)->type; 1384 goto recur; 1385 case BTF_KIND_FUNC: 1386 /* extern and global linkages are compatible */ 1387 is_static1 = btf_func_linkage(t1) == BTF_FUNC_STATIC; 1388 is_static2 = btf_func_linkage(t2) == BTF_FUNC_STATIC; 1389 if (is_static1 != is_static2) { 1390 pr_warn("global '%s': incompatible func '%s' linkage\n", sym_name, n1); 1391 return false; 1392 } 1393 1394 id1 = t1->type; 1395 id2 = t2->type; 1396 goto recur; 1397 case BTF_KIND_VAR: 1398 /* extern and global linkages are compatible */ 1399 is_static1 = btf_var(t1)->linkage == BTF_VAR_STATIC; 1400 is_static2 = btf_var(t2)->linkage == BTF_VAR_STATIC; 1401 if (is_static1 != is_static2) { 1402 pr_warn("global '%s': incompatible var '%s' linkage\n", sym_name, n1); 1403 return false; 1404 } 1405 1406 id1 = t1->type; 1407 id2 = t2->type; 1408 goto recur; 1409 case BTF_KIND_STRUCT: 1410 case BTF_KIND_UNION: { 1411 const struct btf_member *m1, *m2; 1412 1413 if (!exact) 1414 return true; 1415 1416 if (btf_vlen(t1) != btf_vlen(t2)) { 1417 pr_warn("global '%s': incompatible number of %s fields %u and %u\n", 1418 sym_name, btf_kind_str(t1), btf_vlen(t1), btf_vlen(t2)); 1419 return false; 1420 } 1421 1422 n = btf_vlen(t1); 1423 m1 = btf_members(t1); 1424 m2 = btf_members(t2); 1425 for (i = 0; i < n; i++, m1++, m2++) { 1426 n1 = btf__str_by_offset(btf1, m1->name_off); 1427 n2 = btf__str_by_offset(btf2, m2->name_off); 1428 if (strcmp(n1, n2) != 0) { 1429 pr_warn("global '%s': incompatible field #%d names '%s' and '%s'\n", 1430 sym_name, i, n1, n2); 1431 return false; 1432 } 1433 if (m1->offset != m2->offset) { 1434 pr_warn("global '%s': incompatible field #%d ('%s') offsets\n", 1435 sym_name, i, n1); 1436 return false; 1437 } 1438 if (!glob_sym_btf_matches(sym_name, exact, btf1, m1->type, btf2, m2->type)) 1439 return false; 1440 } 1441 1442 return true; 1443 } 1444 case BTF_KIND_FUNC_PROTO: { 1445 const struct btf_param *m1, *m2; 1446 1447 if (btf_vlen(t1) != btf_vlen(t2)) { 1448 pr_warn("global '%s': incompatible number of %s params %u and %u\n", 1449 sym_name, btf_kind_str(t1), btf_vlen(t1), btf_vlen(t2)); 1450 return false; 1451 } 1452 1453 n = btf_vlen(t1); 1454 m1 = btf_params(t1); 1455 m2 = btf_params(t2); 1456 for (i = 0; i < n; i++, m1++, m2++) { 1457 /* ignore func arg names */ 1458 if (!glob_sym_btf_matches(sym_name, exact, btf1, m1->type, btf2, m2->type)) 1459 return false; 1460 } 1461 1462 /* now check return type as well */ 1463 id1 = t1->type; 1464 id2 = t2->type; 1465 goto recur; 1466 } 1467 1468 /* skip_mods_and_typedefs() make this impossible */ 1469 case BTF_KIND_TYPEDEF: 1470 case BTF_KIND_VOLATILE: 1471 case BTF_KIND_CONST: 1472 case BTF_KIND_RESTRICT: 1473 /* DATASECs are never compared with each other */ 1474 case BTF_KIND_DATASEC: 1475 default: 1476 pr_warn("global '%s': unsupported BTF kind %s\n", 1477 sym_name, btf_kind_str(t1)); 1478 return false; 1479 } 1480 } 1481 1482 static bool map_defs_match(const char *sym_name, 1483 const struct btf *main_btf, 1484 const struct btf_map_def *main_def, 1485 const struct btf_map_def *main_inner_def, 1486 const struct btf *extra_btf, 1487 const struct btf_map_def *extra_def, 1488 const struct btf_map_def *extra_inner_def) 1489 { 1490 const char *reason; 1491 1492 if (main_def->map_type != extra_def->map_type) { 1493 reason = "type"; 1494 goto mismatch; 1495 } 1496 1497 /* check key type/size match */ 1498 if (main_def->key_size != extra_def->key_size) { 1499 reason = "key_size"; 1500 goto mismatch; 1501 } 1502 if (!!main_def->key_type_id != !!extra_def->key_type_id) { 1503 reason = "key type"; 1504 goto mismatch; 1505 } 1506 if ((main_def->parts & MAP_DEF_KEY_TYPE) 1507 && !glob_sym_btf_matches(sym_name, true /*exact*/, 1508 main_btf, main_def->key_type_id, 1509 extra_btf, extra_def->key_type_id)) { 1510 reason = "key type"; 1511 goto mismatch; 1512 } 1513 1514 /* validate value type/size match */ 1515 if (main_def->value_size != extra_def->value_size) { 1516 reason = "value_size"; 1517 goto mismatch; 1518 } 1519 if (!!main_def->value_type_id != !!extra_def->value_type_id) { 1520 reason = "value type"; 1521 goto mismatch; 1522 } 1523 if ((main_def->parts & MAP_DEF_VALUE_TYPE) 1524 && !glob_sym_btf_matches(sym_name, true /*exact*/, 1525 main_btf, main_def->value_type_id, 1526 extra_btf, extra_def->value_type_id)) { 1527 reason = "key type"; 1528 goto mismatch; 1529 } 1530 1531 if (main_def->max_entries != extra_def->max_entries) { 1532 reason = "max_entries"; 1533 goto mismatch; 1534 } 1535 if (main_def->map_flags != extra_def->map_flags) { 1536 reason = "map_flags"; 1537 goto mismatch; 1538 } 1539 if (main_def->numa_node != extra_def->numa_node) { 1540 reason = "numa_node"; 1541 goto mismatch; 1542 } 1543 if (main_def->pinning != extra_def->pinning) { 1544 reason = "pinning"; 1545 goto mismatch; 1546 } 1547 1548 if ((main_def->parts & MAP_DEF_INNER_MAP) != (extra_def->parts & MAP_DEF_INNER_MAP)) { 1549 reason = "inner map"; 1550 goto mismatch; 1551 } 1552 1553 if (main_def->parts & MAP_DEF_INNER_MAP) { 1554 char inner_map_name[128]; 1555 1556 snprintf(inner_map_name, sizeof(inner_map_name), "%s.inner", sym_name); 1557 1558 return map_defs_match(inner_map_name, 1559 main_btf, main_inner_def, NULL, 1560 extra_btf, extra_inner_def, NULL); 1561 } 1562 1563 return true; 1564 1565 mismatch: 1566 pr_warn("global '%s': map %s mismatch\n", sym_name, reason); 1567 return false; 1568 } 1569 1570 static bool glob_map_defs_match(const char *sym_name, 1571 struct bpf_linker *linker, struct glob_sym *glob_sym, 1572 struct src_obj *obj, Elf64_Sym *sym, int btf_id) 1573 { 1574 struct btf_map_def dst_def = {}, dst_inner_def = {}; 1575 struct btf_map_def src_def = {}, src_inner_def = {}; 1576 const struct btf_type *t; 1577 int err; 1578 1579 t = btf__type_by_id(obj->btf, btf_id); 1580 if (!btf_is_var(t)) { 1581 pr_warn("global '%s': invalid map definition type [%d]\n", sym_name, btf_id); 1582 return false; 1583 } 1584 t = skip_mods_and_typedefs(obj->btf, t->type, NULL); 1585 1586 err = parse_btf_map_def(sym_name, obj->btf, t, true /*strict*/, &src_def, &src_inner_def); 1587 if (err) { 1588 pr_warn("global '%s': invalid map definition\n", sym_name); 1589 return false; 1590 } 1591 1592 /* re-parse existing map definition */ 1593 t = btf__type_by_id(linker->btf, glob_sym->btf_id); 1594 t = skip_mods_and_typedefs(linker->btf, t->type, NULL); 1595 err = parse_btf_map_def(sym_name, linker->btf, t, true /*strict*/, &dst_def, &dst_inner_def); 1596 if (err) { 1597 /* this should not happen, because we already validated it */ 1598 pr_warn("global '%s': invalid dst map definition\n", sym_name); 1599 return false; 1600 } 1601 1602 /* Currently extern map definition has to be complete and match 1603 * concrete map definition exactly. This restriction might be lifted 1604 * in the future. 1605 */ 1606 return map_defs_match(sym_name, linker->btf, &dst_def, &dst_inner_def, 1607 obj->btf, &src_def, &src_inner_def); 1608 } 1609 1610 static bool glob_syms_match(const char *sym_name, 1611 struct bpf_linker *linker, struct glob_sym *glob_sym, 1612 struct src_obj *obj, Elf64_Sym *sym, size_t sym_idx, int btf_id) 1613 { 1614 const struct btf_type *src_t; 1615 1616 /* if we are dealing with externs, BTF types describing both global 1617 * and extern VARs/FUNCs should be completely present in all files 1618 */ 1619 if (!glob_sym->btf_id || !btf_id) { 1620 pr_warn("BTF info is missing for global symbol '%s'\n", sym_name); 1621 return false; 1622 } 1623 1624 src_t = btf__type_by_id(obj->btf, btf_id); 1625 if (!btf_is_var(src_t) && !btf_is_func(src_t)) { 1626 pr_warn("only extern variables and functions are supported, but got '%s' for '%s'\n", 1627 btf_kind_str(src_t), sym_name); 1628 return false; 1629 } 1630 1631 /* deal with .maps definitions specially */ 1632 if (glob_sym->sec_id && strcmp(linker->secs[glob_sym->sec_id].sec_name, MAPS_ELF_SEC) == 0) 1633 return glob_map_defs_match(sym_name, linker, glob_sym, obj, sym, btf_id); 1634 1635 if (!glob_sym_btf_matches(sym_name, true /*exact*/, 1636 linker->btf, glob_sym->btf_id, obj->btf, btf_id)) 1637 return false; 1638 1639 return true; 1640 } 1641 1642 static bool btf_is_non_static(const struct btf_type *t) 1643 { 1644 return (btf_is_var(t) && btf_var(t)->linkage != BTF_VAR_STATIC) 1645 || (btf_is_func(t) && btf_func_linkage(t) != BTF_FUNC_STATIC); 1646 } 1647 1648 static int find_glob_sym_btf(struct src_obj *obj, Elf64_Sym *sym, const char *sym_name, 1649 int *out_btf_sec_id, int *out_btf_id) 1650 { 1651 int i, j, n = btf__get_nr_types(obj->btf), m, btf_id = 0; 1652 const struct btf_type *t; 1653 const struct btf_var_secinfo *vi; 1654 const char *name; 1655 1656 for (i = 1; i <= n; i++) { 1657 t = btf__type_by_id(obj->btf, i); 1658 1659 /* some global and extern FUNCs and VARs might not be associated with any 1660 * DATASEC, so try to detect them in the same pass 1661 */ 1662 if (btf_is_non_static(t)) { 1663 name = btf__str_by_offset(obj->btf, t->name_off); 1664 if (strcmp(name, sym_name) != 0) 1665 continue; 1666 1667 /* remember and still try to find DATASEC */ 1668 btf_id = i; 1669 continue; 1670 } 1671 1672 if (!btf_is_datasec(t)) 1673 continue; 1674 1675 vi = btf_var_secinfos(t); 1676 for (j = 0, m = btf_vlen(t); j < m; j++, vi++) { 1677 t = btf__type_by_id(obj->btf, vi->type); 1678 name = btf__str_by_offset(obj->btf, t->name_off); 1679 1680 if (strcmp(name, sym_name) != 0) 1681 continue; 1682 if (btf_is_var(t) && btf_var(t)->linkage == BTF_VAR_STATIC) 1683 continue; 1684 if (btf_is_func(t) && btf_func_linkage(t) == BTF_FUNC_STATIC) 1685 continue; 1686 1687 if (btf_id && btf_id != vi->type) { 1688 pr_warn("global/extern '%s' BTF is ambiguous: both types #%d and #%u match\n", 1689 sym_name, btf_id, vi->type); 1690 return -EINVAL; 1691 } 1692 1693 *out_btf_sec_id = i; 1694 *out_btf_id = vi->type; 1695 1696 return 0; 1697 } 1698 } 1699 1700 /* free-floating extern or global FUNC */ 1701 if (btf_id) { 1702 *out_btf_sec_id = 0; 1703 *out_btf_id = btf_id; 1704 return 0; 1705 } 1706 1707 pr_warn("failed to find BTF info for global/extern symbol '%s'\n", sym_name); 1708 return -ENOENT; 1709 } 1710 1711 static struct src_sec *find_src_sec_by_name(struct src_obj *obj, const char *sec_name) 1712 { 1713 struct src_sec *sec; 1714 int i; 1715 1716 for (i = 1; i < obj->sec_cnt; i++) { 1717 sec = &obj->secs[i]; 1718 1719 if (strcmp(sec->sec_name, sec_name) == 0) 1720 return sec; 1721 } 1722 1723 return NULL; 1724 } 1725 1726 static int complete_extern_btf_info(struct btf *dst_btf, int dst_id, 1727 struct btf *src_btf, int src_id) 1728 { 1729 struct btf_type *dst_t = btf_type_by_id(dst_btf, dst_id); 1730 struct btf_type *src_t = btf_type_by_id(src_btf, src_id); 1731 struct btf_param *src_p, *dst_p; 1732 const char *s; 1733 int i, n, off; 1734 1735 /* We already made sure that source and destination types (FUNC or 1736 * VAR) match in terms of types and argument names. 1737 */ 1738 if (btf_is_var(dst_t)) { 1739 btf_var(dst_t)->linkage = BTF_VAR_GLOBAL_ALLOCATED; 1740 return 0; 1741 } 1742 1743 dst_t->info = btf_type_info(BTF_KIND_FUNC, BTF_FUNC_GLOBAL, 0); 1744 1745 /* now onto FUNC_PROTO types */ 1746 src_t = btf_type_by_id(src_btf, src_t->type); 1747 dst_t = btf_type_by_id(dst_btf, dst_t->type); 1748 1749 /* Fill in all the argument names, which for extern FUNCs are missing. 1750 * We'll end up with two copies of FUNCs/VARs for externs, but that 1751 * will be taken care of by BTF dedup at the very end. 1752 * It might be that BTF types for extern in one file has less/more BTF 1753 * information (e.g., FWD instead of full STRUCT/UNION information), 1754 * but that should be (in most cases, subject to BTF dedup rules) 1755 * handled and resolved by BTF dedup algorithm as well, so we won't 1756 * worry about it. Our only job is to make sure that argument names 1757 * are populated on both sides, otherwise BTF dedup will pedantically 1758 * consider them different. 1759 */ 1760 src_p = btf_params(src_t); 1761 dst_p = btf_params(dst_t); 1762 for (i = 0, n = btf_vlen(dst_t); i < n; i++, src_p++, dst_p++) { 1763 if (!src_p->name_off) 1764 continue; 1765 1766 /* src_btf has more complete info, so add name to dst_btf */ 1767 s = btf__str_by_offset(src_btf, src_p->name_off); 1768 off = btf__add_str(dst_btf, s); 1769 if (off < 0) 1770 return off; 1771 dst_p->name_off = off; 1772 } 1773 return 0; 1774 } 1775 1776 static void sym_update_bind(Elf64_Sym *sym, int sym_bind) 1777 { 1778 sym->st_info = ELF64_ST_INFO(sym_bind, ELF64_ST_TYPE(sym->st_info)); 1779 } 1780 1781 static void sym_update_type(Elf64_Sym *sym, int sym_type) 1782 { 1783 sym->st_info = ELF64_ST_INFO(ELF64_ST_BIND(sym->st_info), sym_type); 1784 } 1785 1786 static void sym_update_visibility(Elf64_Sym *sym, int sym_vis) 1787 { 1788 /* libelf doesn't provide setters for ST_VISIBILITY, 1789 * but it is stored in the lower 2 bits of st_other 1790 */ 1791 sym->st_other &= ~0x03; 1792 sym->st_other |= sym_vis; 1793 } 1794 1795 static int linker_append_elf_sym(struct bpf_linker *linker, struct src_obj *obj, 1796 Elf64_Sym *sym, const char *sym_name, int src_sym_idx) 1797 { 1798 struct src_sec *src_sec = NULL; 1799 struct dst_sec *dst_sec = NULL; 1800 struct glob_sym *glob_sym = NULL; 1801 int name_off, sym_type, sym_bind, sym_vis, err; 1802 int btf_sec_id = 0, btf_id = 0; 1803 size_t dst_sym_idx; 1804 Elf64_Sym *dst_sym; 1805 bool sym_is_extern; 1806 1807 sym_type = ELF64_ST_TYPE(sym->st_info); 1808 sym_bind = ELF64_ST_BIND(sym->st_info); 1809 sym_vis = ELF64_ST_VISIBILITY(sym->st_other); 1810 sym_is_extern = sym->st_shndx == SHN_UNDEF; 1811 1812 if (sym_is_extern) { 1813 if (!obj->btf) { 1814 pr_warn("externs without BTF info are not supported\n"); 1815 return -ENOTSUP; 1816 } 1817 } else if (sym->st_shndx < SHN_LORESERVE) { 1818 src_sec = &obj->secs[sym->st_shndx]; 1819 if (src_sec->skipped) 1820 return 0; 1821 dst_sec = &linker->secs[src_sec->dst_id]; 1822 1823 /* allow only one STT_SECTION symbol per section */ 1824 if (sym_type == STT_SECTION && dst_sec->sec_sym_idx) { 1825 obj->sym_map[src_sym_idx] = dst_sec->sec_sym_idx; 1826 return 0; 1827 } 1828 } 1829 1830 if (sym_bind == STB_LOCAL) 1831 goto add_sym; 1832 1833 /* find matching BTF info */ 1834 err = find_glob_sym_btf(obj, sym, sym_name, &btf_sec_id, &btf_id); 1835 if (err) 1836 return err; 1837 1838 if (sym_is_extern && btf_sec_id) { 1839 const char *sec_name = NULL; 1840 const struct btf_type *t; 1841 1842 t = btf__type_by_id(obj->btf, btf_sec_id); 1843 sec_name = btf__str_by_offset(obj->btf, t->name_off); 1844 1845 /* Clang puts unannotated extern vars into 1846 * '.extern' BTF DATASEC. Treat them the same 1847 * as unannotated extern funcs (which are 1848 * currently not put into any DATASECs). 1849 * Those don't have associated src_sec/dst_sec. 1850 */ 1851 if (strcmp(sec_name, BTF_EXTERN_SEC) != 0) { 1852 src_sec = find_src_sec_by_name(obj, sec_name); 1853 if (!src_sec) { 1854 pr_warn("failed to find matching ELF sec '%s'\n", sec_name); 1855 return -ENOENT; 1856 } 1857 dst_sec = &linker->secs[src_sec->dst_id]; 1858 } 1859 } 1860 1861 glob_sym = find_glob_sym(linker, sym_name); 1862 if (glob_sym) { 1863 /* Preventively resolve to existing symbol. This is 1864 * needed for further relocation symbol remapping in 1865 * the next step of linking. 1866 */ 1867 obj->sym_map[src_sym_idx] = glob_sym->sym_idx; 1868 1869 /* If both symbols are non-externs, at least one of 1870 * them has to be STB_WEAK, otherwise they are in 1871 * a conflict with each other. 1872 */ 1873 if (!sym_is_extern && !glob_sym->is_extern 1874 && !glob_sym->is_weak && sym_bind != STB_WEAK) { 1875 pr_warn("conflicting non-weak symbol #%d (%s) definition in '%s'\n", 1876 src_sym_idx, sym_name, obj->filename); 1877 return -EINVAL; 1878 } 1879 1880 if (!glob_syms_match(sym_name, linker, glob_sym, obj, sym, src_sym_idx, btf_id)) 1881 return -EINVAL; 1882 1883 dst_sym = get_sym_by_idx(linker, glob_sym->sym_idx); 1884 1885 /* If new symbol is strong, then force dst_sym to be strong as 1886 * well; this way a mix of weak and non-weak extern 1887 * definitions will end up being strong. 1888 */ 1889 if (sym_bind == STB_GLOBAL) { 1890 /* We still need to preserve type (NOTYPE or 1891 * OBJECT/FUNC, depending on whether the symbol is 1892 * extern or not) 1893 */ 1894 sym_update_bind(dst_sym, STB_GLOBAL); 1895 glob_sym->is_weak = false; 1896 } 1897 1898 /* Non-default visibility is "contaminating", with stricter 1899 * visibility overwriting more permissive ones, even if more 1900 * permissive visibility comes from just an extern definition. 1901 * Currently only STV_DEFAULT and STV_HIDDEN are allowed and 1902 * ensured by ELF symbol sanity checks above. 1903 */ 1904 if (sym_vis > ELF64_ST_VISIBILITY(dst_sym->st_other)) 1905 sym_update_visibility(dst_sym, sym_vis); 1906 1907 /* If the new symbol is extern, then regardless if 1908 * existing symbol is extern or resolved global, just 1909 * keep the existing one untouched. 1910 */ 1911 if (sym_is_extern) 1912 return 0; 1913 1914 /* If existing symbol is a strong resolved symbol, bail out, 1915 * because we lost resolution battle have nothing to 1916 * contribute. We already checked abover that there is no 1917 * strong-strong conflict. We also already tightened binding 1918 * and visibility, so nothing else to contribute at that point. 1919 */ 1920 if (!glob_sym->is_extern && sym_bind == STB_WEAK) 1921 return 0; 1922 1923 /* At this point, new symbol is strong non-extern, 1924 * so overwrite glob_sym with new symbol information. 1925 * Preserve binding and visibility. 1926 */ 1927 sym_update_type(dst_sym, sym_type); 1928 dst_sym->st_shndx = dst_sec->sec_idx; 1929 dst_sym->st_value = src_sec->dst_off + sym->st_value; 1930 dst_sym->st_size = sym->st_size; 1931 1932 /* see comment below about dst_sec->id vs dst_sec->sec_idx */ 1933 glob_sym->sec_id = dst_sec->id; 1934 glob_sym->is_extern = false; 1935 1936 if (complete_extern_btf_info(linker->btf, glob_sym->btf_id, 1937 obj->btf, btf_id)) 1938 return -EINVAL; 1939 1940 /* request updating VAR's/FUNC's underlying BTF type when appending BTF type */ 1941 glob_sym->underlying_btf_id = 0; 1942 1943 obj->sym_map[src_sym_idx] = glob_sym->sym_idx; 1944 return 0; 1945 } 1946 1947 add_sym: 1948 name_off = strset__add_str(linker->strtab_strs, sym_name); 1949 if (name_off < 0) 1950 return name_off; 1951 1952 dst_sym = add_new_sym(linker, &dst_sym_idx); 1953 if (!dst_sym) 1954 return -ENOMEM; 1955 1956 dst_sym->st_name = name_off; 1957 dst_sym->st_info = sym->st_info; 1958 dst_sym->st_other = sym->st_other; 1959 dst_sym->st_shndx = dst_sec ? dst_sec->sec_idx : sym->st_shndx; 1960 dst_sym->st_value = (src_sec ? src_sec->dst_off : 0) + sym->st_value; 1961 dst_sym->st_size = sym->st_size; 1962 1963 obj->sym_map[src_sym_idx] = dst_sym_idx; 1964 1965 if (sym_type == STT_SECTION && dst_sym) { 1966 dst_sec->sec_sym_idx = dst_sym_idx; 1967 dst_sym->st_value = 0; 1968 } 1969 1970 if (sym_bind != STB_LOCAL) { 1971 glob_sym = add_glob_sym(linker); 1972 if (!glob_sym) 1973 return -ENOMEM; 1974 1975 glob_sym->sym_idx = dst_sym_idx; 1976 /* we use dst_sec->id (and not dst_sec->sec_idx), because 1977 * ephemeral sections (.kconfig, .ksyms, etc) don't have 1978 * sec_idx (as they don't have corresponding ELF section), but 1979 * still have id. .extern doesn't have even ephemeral section 1980 * associated with it, so dst_sec->id == dst_sec->sec_idx == 0. 1981 */ 1982 glob_sym->sec_id = dst_sec ? dst_sec->id : 0; 1983 glob_sym->name_off = name_off; 1984 /* we will fill btf_id in during BTF merging step */ 1985 glob_sym->btf_id = 0; 1986 glob_sym->is_extern = sym_is_extern; 1987 glob_sym->is_weak = sym_bind == STB_WEAK; 1988 } 1989 1990 return 0; 1991 } 1992 1993 static int linker_append_elf_relos(struct bpf_linker *linker, struct src_obj *obj) 1994 { 1995 struct src_sec *src_symtab = &obj->secs[obj->symtab_sec_idx]; 1996 struct dst_sec *dst_symtab = &linker->secs[linker->symtab_sec_idx]; 1997 int i, err; 1998 1999 for (i = 1; i < obj->sec_cnt; i++) { 2000 struct src_sec *src_sec, *src_linked_sec; 2001 struct dst_sec *dst_sec, *dst_linked_sec; 2002 Elf64_Rel *src_rel, *dst_rel; 2003 int j, n; 2004 2005 src_sec = &obj->secs[i]; 2006 if (!is_relo_sec(src_sec)) 2007 continue; 2008 2009 /* shdr->sh_info points to relocatable section */ 2010 src_linked_sec = &obj->secs[src_sec->shdr->sh_info]; 2011 if (src_linked_sec->skipped) 2012 continue; 2013 2014 dst_sec = find_dst_sec_by_name(linker, src_sec->sec_name); 2015 if (!dst_sec) { 2016 dst_sec = add_dst_sec(linker, src_sec->sec_name); 2017 if (!dst_sec) 2018 return -ENOMEM; 2019 err = init_sec(linker, dst_sec, src_sec); 2020 if (err) { 2021 pr_warn("failed to init section '%s'\n", src_sec->sec_name); 2022 return err; 2023 } 2024 } else if (!secs_match(dst_sec, src_sec)) { 2025 pr_warn("sections %s are not compatible\n", src_sec->sec_name); 2026 return -1; 2027 } 2028 2029 /* shdr->sh_link points to SYMTAB */ 2030 dst_sec->shdr->sh_link = linker->symtab_sec_idx; 2031 2032 /* shdr->sh_info points to relocated section */ 2033 dst_linked_sec = &linker->secs[src_linked_sec->dst_id]; 2034 dst_sec->shdr->sh_info = dst_linked_sec->sec_idx; 2035 2036 src_sec->dst_id = dst_sec->id; 2037 err = extend_sec(linker, dst_sec, src_sec); 2038 if (err) 2039 return err; 2040 2041 src_rel = src_sec->data->d_buf; 2042 dst_rel = dst_sec->raw_data + src_sec->dst_off; 2043 n = src_sec->shdr->sh_size / src_sec->shdr->sh_entsize; 2044 for (j = 0; j < n; j++, src_rel++, dst_rel++) { 2045 size_t src_sym_idx = ELF64_R_SYM(src_rel->r_info); 2046 size_t sym_type = ELF64_R_TYPE(src_rel->r_info); 2047 Elf64_Sym *src_sym, *dst_sym; 2048 size_t dst_sym_idx; 2049 2050 src_sym_idx = ELF64_R_SYM(src_rel->r_info); 2051 src_sym = src_symtab->data->d_buf + sizeof(*src_sym) * src_sym_idx; 2052 2053 dst_sym_idx = obj->sym_map[src_sym_idx]; 2054 dst_sym = dst_symtab->raw_data + sizeof(*dst_sym) * dst_sym_idx; 2055 dst_rel->r_offset += src_linked_sec->dst_off; 2056 sym_type = ELF64_R_TYPE(src_rel->r_info); 2057 dst_rel->r_info = ELF64_R_INFO(dst_sym_idx, sym_type); 2058 2059 if (ELF64_ST_TYPE(src_sym->st_info) == STT_SECTION) { 2060 struct src_sec *sec = &obj->secs[src_sym->st_shndx]; 2061 struct bpf_insn *insn; 2062 2063 if (src_linked_sec->shdr->sh_flags & SHF_EXECINSTR) { 2064 /* calls to the very first static function inside 2065 * .text section at offset 0 will 2066 * reference section symbol, not the 2067 * function symbol. Fix that up, 2068 * otherwise it won't be possible to 2069 * relocate calls to two different 2070 * static functions with the same name 2071 * (rom two different object files) 2072 */ 2073 insn = dst_linked_sec->raw_data + dst_rel->r_offset; 2074 if (insn->code == (BPF_JMP | BPF_CALL)) 2075 insn->imm += sec->dst_off / sizeof(struct bpf_insn); 2076 else 2077 insn->imm += sec->dst_off; 2078 } else { 2079 pr_warn("relocation against STT_SECTION in non-exec section is not supported!\n"); 2080 return -EINVAL; 2081 } 2082 } 2083 2084 } 2085 } 2086 2087 return 0; 2088 } 2089 2090 static Elf64_Sym *find_sym_by_name(struct src_obj *obj, size_t sec_idx, 2091 int sym_type, const char *sym_name) 2092 { 2093 struct src_sec *symtab = &obj->secs[obj->symtab_sec_idx]; 2094 Elf64_Sym *sym = symtab->data->d_buf; 2095 int i, n = symtab->shdr->sh_size / symtab->shdr->sh_entsize; 2096 int str_sec_idx = symtab->shdr->sh_link; 2097 const char *name; 2098 2099 for (i = 0; i < n; i++, sym++) { 2100 if (sym->st_shndx != sec_idx) 2101 continue; 2102 if (ELF64_ST_TYPE(sym->st_info) != sym_type) 2103 continue; 2104 2105 name = elf_strptr(obj->elf, str_sec_idx, sym->st_name); 2106 if (!name) 2107 return NULL; 2108 2109 if (strcmp(sym_name, name) != 0) 2110 continue; 2111 2112 return sym; 2113 } 2114 2115 return NULL; 2116 } 2117 2118 static int linker_fixup_btf(struct src_obj *obj) 2119 { 2120 const char *sec_name; 2121 struct src_sec *sec; 2122 int i, j, n, m; 2123 2124 if (!obj->btf) 2125 return 0; 2126 2127 n = btf__get_nr_types(obj->btf); 2128 for (i = 1; i <= n; i++) { 2129 struct btf_var_secinfo *vi; 2130 struct btf_type *t; 2131 2132 t = btf_type_by_id(obj->btf, i); 2133 if (btf_kind(t) != BTF_KIND_DATASEC) 2134 continue; 2135 2136 sec_name = btf__str_by_offset(obj->btf, t->name_off); 2137 sec = find_src_sec_by_name(obj, sec_name); 2138 if (sec) { 2139 /* record actual section size, unless ephemeral */ 2140 if (sec->shdr) 2141 t->size = sec->shdr->sh_size; 2142 } else { 2143 /* BTF can have some sections that are not represented 2144 * in ELF, e.g., .kconfig, .ksyms, .extern, which are used 2145 * for special extern variables. 2146 * 2147 * For all but one such special (ephemeral) 2148 * sections, we pre-create "section shells" to be able 2149 * to keep track of extra per-section metadata later 2150 * (e.g., those BTF extern variables). 2151 * 2152 * .extern is even more special, though, because it 2153 * contains extern variables that need to be resolved 2154 * by static linker, not libbpf and kernel. When such 2155 * externs are resolved, we are going to remove them 2156 * from .extern BTF section and might end up not 2157 * needing it at all. Each resolved extern should have 2158 * matching non-extern VAR/FUNC in other sections. 2159 * 2160 * We do support leaving some of the externs 2161 * unresolved, though, to support cases of building 2162 * libraries, which will later be linked against final 2163 * BPF applications. So if at finalization we still 2164 * see unresolved externs, we'll create .extern 2165 * section on our own. 2166 */ 2167 if (strcmp(sec_name, BTF_EXTERN_SEC) == 0) 2168 continue; 2169 2170 sec = add_src_sec(obj, sec_name); 2171 if (!sec) 2172 return -ENOMEM; 2173 2174 sec->ephemeral = true; 2175 sec->sec_idx = 0; /* will match UNDEF shndx in ELF */ 2176 } 2177 2178 /* remember ELF section and its BTF type ID match */ 2179 sec->sec_type_id = i; 2180 2181 /* fix up variable offsets */ 2182 vi = btf_var_secinfos(t); 2183 for (j = 0, m = btf_vlen(t); j < m; j++, vi++) { 2184 const struct btf_type *vt = btf__type_by_id(obj->btf, vi->type); 2185 const char *var_name = btf__str_by_offset(obj->btf, vt->name_off); 2186 int var_linkage = btf_var(vt)->linkage; 2187 Elf64_Sym *sym; 2188 2189 /* no need to patch up static or extern vars */ 2190 if (var_linkage != BTF_VAR_GLOBAL_ALLOCATED) 2191 continue; 2192 2193 sym = find_sym_by_name(obj, sec->sec_idx, STT_OBJECT, var_name); 2194 if (!sym) { 2195 pr_warn("failed to find symbol for variable '%s' in section '%s'\n", var_name, sec_name); 2196 return -ENOENT; 2197 } 2198 2199 vi->offset = sym->st_value; 2200 } 2201 } 2202 2203 return 0; 2204 } 2205 2206 static int remap_type_id(__u32 *type_id, void *ctx) 2207 { 2208 int *id_map = ctx; 2209 int new_id = id_map[*type_id]; 2210 2211 /* Error out if the type wasn't remapped. Ignore VOID which stays VOID. */ 2212 if (new_id == 0 && *type_id != 0) { 2213 pr_warn("failed to find new ID mapping for original BTF type ID %u\n", *type_id); 2214 return -EINVAL; 2215 } 2216 2217 *type_id = id_map[*type_id]; 2218 2219 return 0; 2220 } 2221 2222 static int linker_append_btf(struct bpf_linker *linker, struct src_obj *obj) 2223 { 2224 const struct btf_type *t; 2225 int i, j, n, start_id, id; 2226 const char *name; 2227 2228 if (!obj->btf) 2229 return 0; 2230 2231 start_id = btf__get_nr_types(linker->btf) + 1; 2232 n = btf__get_nr_types(obj->btf); 2233 2234 obj->btf_type_map = calloc(n + 1, sizeof(int)); 2235 if (!obj->btf_type_map) 2236 return -ENOMEM; 2237 2238 for (i = 1; i <= n; i++) { 2239 struct glob_sym *glob_sym = NULL; 2240 2241 t = btf__type_by_id(obj->btf, i); 2242 2243 /* DATASECs are handled specially below */ 2244 if (btf_kind(t) == BTF_KIND_DATASEC) 2245 continue; 2246 2247 if (btf_is_non_static(t)) { 2248 /* there should be glob_sym already */ 2249 name = btf__str_by_offset(obj->btf, t->name_off); 2250 glob_sym = find_glob_sym(linker, name); 2251 2252 /* VARs without corresponding glob_sym are those that 2253 * belong to skipped/deduplicated sections (i.e., 2254 * license and version), so just skip them 2255 */ 2256 if (!glob_sym) 2257 continue; 2258 2259 /* linker_append_elf_sym() might have requested 2260 * updating underlying type ID, if extern was resolved 2261 * to strong symbol or weak got upgraded to non-weak 2262 */ 2263 if (glob_sym->underlying_btf_id == 0) 2264 glob_sym->underlying_btf_id = -t->type; 2265 2266 /* globals from previous object files that match our 2267 * VAR/FUNC already have a corresponding associated 2268 * BTF type, so just make sure to use it 2269 */ 2270 if (glob_sym->btf_id) { 2271 /* reuse existing BTF type for global var/func */ 2272 obj->btf_type_map[i] = glob_sym->btf_id; 2273 continue; 2274 } 2275 } 2276 2277 id = btf__add_type(linker->btf, obj->btf, t); 2278 if (id < 0) { 2279 pr_warn("failed to append BTF type #%d from file '%s'\n", i, obj->filename); 2280 return id; 2281 } 2282 2283 obj->btf_type_map[i] = id; 2284 2285 /* record just appended BTF type for var/func */ 2286 if (glob_sym) { 2287 glob_sym->btf_id = id; 2288 glob_sym->underlying_btf_id = -t->type; 2289 } 2290 } 2291 2292 /* remap all the types except DATASECs */ 2293 n = btf__get_nr_types(linker->btf); 2294 for (i = start_id; i <= n; i++) { 2295 struct btf_type *dst_t = btf_type_by_id(linker->btf, i); 2296 2297 if (btf_type_visit_type_ids(dst_t, remap_type_id, obj->btf_type_map)) 2298 return -EINVAL; 2299 } 2300 2301 /* Rewrite VAR/FUNC underlying types (i.e., FUNC's FUNC_PROTO and VAR's 2302 * actual type), if necessary 2303 */ 2304 for (i = 0; i < linker->glob_sym_cnt; i++) { 2305 struct glob_sym *glob_sym = &linker->glob_syms[i]; 2306 struct btf_type *glob_t; 2307 2308 if (glob_sym->underlying_btf_id >= 0) 2309 continue; 2310 2311 glob_sym->underlying_btf_id = obj->btf_type_map[-glob_sym->underlying_btf_id]; 2312 2313 glob_t = btf_type_by_id(linker->btf, glob_sym->btf_id); 2314 glob_t->type = glob_sym->underlying_btf_id; 2315 } 2316 2317 /* append DATASEC info */ 2318 for (i = 1; i < obj->sec_cnt; i++) { 2319 struct src_sec *src_sec; 2320 struct dst_sec *dst_sec; 2321 const struct btf_var_secinfo *src_var; 2322 struct btf_var_secinfo *dst_var; 2323 2324 src_sec = &obj->secs[i]; 2325 if (!src_sec->sec_type_id || src_sec->skipped) 2326 continue; 2327 dst_sec = &linker->secs[src_sec->dst_id]; 2328 2329 /* Mark section as having BTF regardless of the presence of 2330 * variables. In some cases compiler might generate empty BTF 2331 * with no variables information. E.g., when promoting local 2332 * array/structure variable initial values and BPF object 2333 * file otherwise has no read-only static variables in 2334 * .rodata. We need to preserve such empty BTF and just set 2335 * correct section size. 2336 */ 2337 dst_sec->has_btf = true; 2338 2339 t = btf__type_by_id(obj->btf, src_sec->sec_type_id); 2340 src_var = btf_var_secinfos(t); 2341 n = btf_vlen(t); 2342 for (j = 0; j < n; j++, src_var++) { 2343 void *sec_vars = dst_sec->sec_vars; 2344 int new_id = obj->btf_type_map[src_var->type]; 2345 struct glob_sym *glob_sym = NULL; 2346 2347 t = btf_type_by_id(linker->btf, new_id); 2348 if (btf_is_non_static(t)) { 2349 name = btf__str_by_offset(linker->btf, t->name_off); 2350 glob_sym = find_glob_sym(linker, name); 2351 if (glob_sym->sec_id != dst_sec->id) { 2352 pr_warn("global '%s': section mismatch %d vs %d\n", 2353 name, glob_sym->sec_id, dst_sec->id); 2354 return -EINVAL; 2355 } 2356 } 2357 2358 /* If there is already a member (VAR or FUNC) mapped 2359 * to the same type, don't add a duplicate entry. 2360 * This will happen when multiple object files define 2361 * the same extern VARs/FUNCs. 2362 */ 2363 if (glob_sym && glob_sym->var_idx >= 0) { 2364 __s64 sz; 2365 2366 dst_var = &dst_sec->sec_vars[glob_sym->var_idx]; 2367 /* Because underlying BTF type might have 2368 * changed, so might its size have changed, so 2369 * re-calculate and update it in sec_var. 2370 */ 2371 sz = btf__resolve_size(linker->btf, glob_sym->underlying_btf_id); 2372 if (sz < 0) { 2373 pr_warn("global '%s': failed to resolve size of underlying type: %d\n", 2374 name, (int)sz); 2375 return -EINVAL; 2376 } 2377 dst_var->size = sz; 2378 continue; 2379 } 2380 2381 sec_vars = libbpf_reallocarray(sec_vars, 2382 dst_sec->sec_var_cnt + 1, 2383 sizeof(*dst_sec->sec_vars)); 2384 if (!sec_vars) 2385 return -ENOMEM; 2386 2387 dst_sec->sec_vars = sec_vars; 2388 dst_sec->sec_var_cnt++; 2389 2390 dst_var = &dst_sec->sec_vars[dst_sec->sec_var_cnt - 1]; 2391 dst_var->type = obj->btf_type_map[src_var->type]; 2392 dst_var->size = src_var->size; 2393 dst_var->offset = src_sec->dst_off + src_var->offset; 2394 2395 if (glob_sym) 2396 glob_sym->var_idx = dst_sec->sec_var_cnt - 1; 2397 } 2398 } 2399 2400 return 0; 2401 } 2402 2403 static void *add_btf_ext_rec(struct btf_ext_sec_data *ext_data, const void *src_rec) 2404 { 2405 void *tmp; 2406 2407 tmp = libbpf_reallocarray(ext_data->recs, ext_data->rec_cnt + 1, ext_data->rec_sz); 2408 if (!tmp) 2409 return NULL; 2410 ext_data->recs = tmp; 2411 2412 tmp += ext_data->rec_cnt * ext_data->rec_sz; 2413 memcpy(tmp, src_rec, ext_data->rec_sz); 2414 2415 ext_data->rec_cnt++; 2416 2417 return tmp; 2418 } 2419 2420 static int linker_append_btf_ext(struct bpf_linker *linker, struct src_obj *obj) 2421 { 2422 const struct btf_ext_info_sec *ext_sec; 2423 const char *sec_name, *s; 2424 struct src_sec *src_sec; 2425 struct dst_sec *dst_sec; 2426 int rec_sz, str_off, i; 2427 2428 if (!obj->btf_ext) 2429 return 0; 2430 2431 rec_sz = obj->btf_ext->func_info.rec_size; 2432 for_each_btf_ext_sec(&obj->btf_ext->func_info, ext_sec) { 2433 struct bpf_func_info_min *src_rec, *dst_rec; 2434 2435 sec_name = btf__name_by_offset(obj->btf, ext_sec->sec_name_off); 2436 src_sec = find_src_sec_by_name(obj, sec_name); 2437 if (!src_sec) { 2438 pr_warn("can't find section '%s' referenced from .BTF.ext\n", sec_name); 2439 return -EINVAL; 2440 } 2441 dst_sec = &linker->secs[src_sec->dst_id]; 2442 2443 if (dst_sec->func_info.rec_sz == 0) 2444 dst_sec->func_info.rec_sz = rec_sz; 2445 if (dst_sec->func_info.rec_sz != rec_sz) { 2446 pr_warn("incompatible .BTF.ext record sizes for section '%s'\n", sec_name); 2447 return -EINVAL; 2448 } 2449 2450 for_each_btf_ext_rec(&obj->btf_ext->func_info, ext_sec, i, src_rec) { 2451 dst_rec = add_btf_ext_rec(&dst_sec->func_info, src_rec); 2452 if (!dst_rec) 2453 return -ENOMEM; 2454 2455 dst_rec->insn_off += src_sec->dst_off; 2456 dst_rec->type_id = obj->btf_type_map[dst_rec->type_id]; 2457 } 2458 } 2459 2460 rec_sz = obj->btf_ext->line_info.rec_size; 2461 for_each_btf_ext_sec(&obj->btf_ext->line_info, ext_sec) { 2462 struct bpf_line_info_min *src_rec, *dst_rec; 2463 2464 sec_name = btf__name_by_offset(obj->btf, ext_sec->sec_name_off); 2465 src_sec = find_src_sec_by_name(obj, sec_name); 2466 if (!src_sec) { 2467 pr_warn("can't find section '%s' referenced from .BTF.ext\n", sec_name); 2468 return -EINVAL; 2469 } 2470 dst_sec = &linker->secs[src_sec->dst_id]; 2471 2472 if (dst_sec->line_info.rec_sz == 0) 2473 dst_sec->line_info.rec_sz = rec_sz; 2474 if (dst_sec->line_info.rec_sz != rec_sz) { 2475 pr_warn("incompatible .BTF.ext record sizes for section '%s'\n", sec_name); 2476 return -EINVAL; 2477 } 2478 2479 for_each_btf_ext_rec(&obj->btf_ext->line_info, ext_sec, i, src_rec) { 2480 dst_rec = add_btf_ext_rec(&dst_sec->line_info, src_rec); 2481 if (!dst_rec) 2482 return -ENOMEM; 2483 2484 dst_rec->insn_off += src_sec->dst_off; 2485 2486 s = btf__str_by_offset(obj->btf, src_rec->file_name_off); 2487 str_off = btf__add_str(linker->btf, s); 2488 if (str_off < 0) 2489 return -ENOMEM; 2490 dst_rec->file_name_off = str_off; 2491 2492 s = btf__str_by_offset(obj->btf, src_rec->line_off); 2493 str_off = btf__add_str(linker->btf, s); 2494 if (str_off < 0) 2495 return -ENOMEM; 2496 dst_rec->line_off = str_off; 2497 2498 /* dst_rec->line_col is fine */ 2499 } 2500 } 2501 2502 rec_sz = obj->btf_ext->core_relo_info.rec_size; 2503 for_each_btf_ext_sec(&obj->btf_ext->core_relo_info, ext_sec) { 2504 struct bpf_core_relo *src_rec, *dst_rec; 2505 2506 sec_name = btf__name_by_offset(obj->btf, ext_sec->sec_name_off); 2507 src_sec = find_src_sec_by_name(obj, sec_name); 2508 if (!src_sec) { 2509 pr_warn("can't find section '%s' referenced from .BTF.ext\n", sec_name); 2510 return -EINVAL; 2511 } 2512 dst_sec = &linker->secs[src_sec->dst_id]; 2513 2514 if (dst_sec->core_relo_info.rec_sz == 0) 2515 dst_sec->core_relo_info.rec_sz = rec_sz; 2516 if (dst_sec->core_relo_info.rec_sz != rec_sz) { 2517 pr_warn("incompatible .BTF.ext record sizes for section '%s'\n", sec_name); 2518 return -EINVAL; 2519 } 2520 2521 for_each_btf_ext_rec(&obj->btf_ext->core_relo_info, ext_sec, i, src_rec) { 2522 dst_rec = add_btf_ext_rec(&dst_sec->core_relo_info, src_rec); 2523 if (!dst_rec) 2524 return -ENOMEM; 2525 2526 dst_rec->insn_off += src_sec->dst_off; 2527 dst_rec->type_id = obj->btf_type_map[dst_rec->type_id]; 2528 2529 s = btf__str_by_offset(obj->btf, src_rec->access_str_off); 2530 str_off = btf__add_str(linker->btf, s); 2531 if (str_off < 0) 2532 return -ENOMEM; 2533 dst_rec->access_str_off = str_off; 2534 2535 /* dst_rec->kind is fine */ 2536 } 2537 } 2538 2539 return 0; 2540 } 2541 2542 int bpf_linker__finalize(struct bpf_linker *linker) 2543 { 2544 struct dst_sec *sec; 2545 size_t strs_sz; 2546 const void *strs; 2547 int err, i; 2548 2549 if (!linker->elf) 2550 return -EINVAL; 2551 2552 err = finalize_btf(linker); 2553 if (err) 2554 return err; 2555 2556 /* Finalize strings */ 2557 strs_sz = strset__data_size(linker->strtab_strs); 2558 strs = strset__data(linker->strtab_strs); 2559 2560 sec = &linker->secs[linker->strtab_sec_idx]; 2561 sec->data->d_align = 1; 2562 sec->data->d_off = 0LL; 2563 sec->data->d_buf = (void *)strs; 2564 sec->data->d_type = ELF_T_BYTE; 2565 sec->data->d_size = strs_sz; 2566 sec->shdr->sh_size = strs_sz; 2567 2568 for (i = 1; i < linker->sec_cnt; i++) { 2569 sec = &linker->secs[i]; 2570 2571 /* STRTAB is handled specially above */ 2572 if (sec->sec_idx == linker->strtab_sec_idx) 2573 continue; 2574 2575 /* special ephemeral sections (.ksyms, .kconfig, etc) */ 2576 if (!sec->scn) 2577 continue; 2578 2579 sec->data->d_buf = sec->raw_data; 2580 } 2581 2582 /* Finalize ELF layout */ 2583 if (elf_update(linker->elf, ELF_C_NULL) < 0) { 2584 err = -errno; 2585 pr_warn_elf("failed to finalize ELF layout"); 2586 return err; 2587 } 2588 2589 /* Write out final ELF contents */ 2590 if (elf_update(linker->elf, ELF_C_WRITE) < 0) { 2591 err = -errno; 2592 pr_warn_elf("failed to write ELF contents"); 2593 return err; 2594 } 2595 2596 elf_end(linker->elf); 2597 close(linker->fd); 2598 2599 linker->elf = NULL; 2600 linker->fd = -1; 2601 2602 return 0; 2603 } 2604 2605 static int emit_elf_data_sec(struct bpf_linker *linker, const char *sec_name, 2606 size_t align, const void *raw_data, size_t raw_sz) 2607 { 2608 Elf_Scn *scn; 2609 Elf_Data *data; 2610 Elf64_Shdr *shdr; 2611 int name_off; 2612 2613 name_off = strset__add_str(linker->strtab_strs, sec_name); 2614 if (name_off < 0) 2615 return name_off; 2616 2617 scn = elf_newscn(linker->elf); 2618 if (!scn) 2619 return -ENOMEM; 2620 data = elf_newdata(scn); 2621 if (!data) 2622 return -ENOMEM; 2623 shdr = elf64_getshdr(scn); 2624 if (!shdr) 2625 return -EINVAL; 2626 2627 shdr->sh_name = name_off; 2628 shdr->sh_type = SHT_PROGBITS; 2629 shdr->sh_flags = 0; 2630 shdr->sh_size = raw_sz; 2631 shdr->sh_link = 0; 2632 shdr->sh_info = 0; 2633 shdr->sh_addralign = align; 2634 shdr->sh_entsize = 0; 2635 2636 data->d_type = ELF_T_BYTE; 2637 data->d_size = raw_sz; 2638 data->d_buf = (void *)raw_data; 2639 data->d_align = align; 2640 data->d_off = 0; 2641 2642 return 0; 2643 } 2644 2645 static int finalize_btf(struct bpf_linker *linker) 2646 { 2647 struct btf *btf = linker->btf; 2648 const void *raw_data; 2649 int i, j, id, err; 2650 __u32 raw_sz; 2651 2652 /* bail out if no BTF data was produced */ 2653 if (btf__get_nr_types(linker->btf) == 0) 2654 return 0; 2655 2656 for (i = 1; i < linker->sec_cnt; i++) { 2657 struct dst_sec *sec = &linker->secs[i]; 2658 2659 if (!sec->has_btf) 2660 continue; 2661 2662 id = btf__add_datasec(btf, sec->sec_name, sec->sec_sz); 2663 if (id < 0) { 2664 pr_warn("failed to add consolidated BTF type for datasec '%s': %d\n", 2665 sec->sec_name, id); 2666 return id; 2667 } 2668 2669 for (j = 0; j < sec->sec_var_cnt; j++) { 2670 struct btf_var_secinfo *vi = &sec->sec_vars[j]; 2671 2672 if (btf__add_datasec_var_info(btf, vi->type, vi->offset, vi->size)) 2673 return -EINVAL; 2674 } 2675 } 2676 2677 err = finalize_btf_ext(linker); 2678 if (err) { 2679 pr_warn(".BTF.ext generation failed: %d\n", err); 2680 return err; 2681 } 2682 2683 err = btf__dedup(linker->btf, linker->btf_ext, NULL); 2684 if (err) { 2685 pr_warn("BTF dedup failed: %d\n", err); 2686 return err; 2687 } 2688 2689 /* Emit .BTF section */ 2690 raw_data = btf__get_raw_data(linker->btf, &raw_sz); 2691 if (!raw_data) 2692 return -ENOMEM; 2693 2694 err = emit_elf_data_sec(linker, BTF_ELF_SEC, 8, raw_data, raw_sz); 2695 if (err) { 2696 pr_warn("failed to write out .BTF ELF section: %d\n", err); 2697 return err; 2698 } 2699 2700 /* Emit .BTF.ext section */ 2701 if (linker->btf_ext) { 2702 raw_data = btf_ext__get_raw_data(linker->btf_ext, &raw_sz); 2703 if (!raw_data) 2704 return -ENOMEM; 2705 2706 err = emit_elf_data_sec(linker, BTF_EXT_ELF_SEC, 8, raw_data, raw_sz); 2707 if (err) { 2708 pr_warn("failed to write out .BTF.ext ELF section: %d\n", err); 2709 return err; 2710 } 2711 } 2712 2713 return 0; 2714 } 2715 2716 static int emit_btf_ext_data(struct bpf_linker *linker, void *output, 2717 const char *sec_name, struct btf_ext_sec_data *sec_data) 2718 { 2719 struct btf_ext_info_sec *sec_info; 2720 void *cur = output; 2721 int str_off; 2722 size_t sz; 2723 2724 if (!sec_data->rec_cnt) 2725 return 0; 2726 2727 str_off = btf__add_str(linker->btf, sec_name); 2728 if (str_off < 0) 2729 return -ENOMEM; 2730 2731 sec_info = cur; 2732 sec_info->sec_name_off = str_off; 2733 sec_info->num_info = sec_data->rec_cnt; 2734 cur += sizeof(struct btf_ext_info_sec); 2735 2736 sz = sec_data->rec_cnt * sec_data->rec_sz; 2737 memcpy(cur, sec_data->recs, sz); 2738 cur += sz; 2739 2740 return cur - output; 2741 } 2742 2743 static int finalize_btf_ext(struct bpf_linker *linker) 2744 { 2745 size_t funcs_sz = 0, lines_sz = 0, core_relos_sz = 0, total_sz = 0; 2746 size_t func_rec_sz = 0, line_rec_sz = 0, core_relo_rec_sz = 0; 2747 struct btf_ext_header *hdr; 2748 void *data, *cur; 2749 int i, err, sz; 2750 2751 /* validate that all sections have the same .BTF.ext record sizes 2752 * and calculate total data size for each type of data (func info, 2753 * line info, core relos) 2754 */ 2755 for (i = 1; i < linker->sec_cnt; i++) { 2756 struct dst_sec *sec = &linker->secs[i]; 2757 2758 if (sec->func_info.rec_cnt) { 2759 if (func_rec_sz == 0) 2760 func_rec_sz = sec->func_info.rec_sz; 2761 if (func_rec_sz != sec->func_info.rec_sz) { 2762 pr_warn("mismatch in func_info record size %zu != %u\n", 2763 func_rec_sz, sec->func_info.rec_sz); 2764 return -EINVAL; 2765 } 2766 2767 funcs_sz += sizeof(struct btf_ext_info_sec) + func_rec_sz * sec->func_info.rec_cnt; 2768 } 2769 if (sec->line_info.rec_cnt) { 2770 if (line_rec_sz == 0) 2771 line_rec_sz = sec->line_info.rec_sz; 2772 if (line_rec_sz != sec->line_info.rec_sz) { 2773 pr_warn("mismatch in line_info record size %zu != %u\n", 2774 line_rec_sz, sec->line_info.rec_sz); 2775 return -EINVAL; 2776 } 2777 2778 lines_sz += sizeof(struct btf_ext_info_sec) + line_rec_sz * sec->line_info.rec_cnt; 2779 } 2780 if (sec->core_relo_info.rec_cnt) { 2781 if (core_relo_rec_sz == 0) 2782 core_relo_rec_sz = sec->core_relo_info.rec_sz; 2783 if (core_relo_rec_sz != sec->core_relo_info.rec_sz) { 2784 pr_warn("mismatch in core_relo_info record size %zu != %u\n", 2785 core_relo_rec_sz, sec->core_relo_info.rec_sz); 2786 return -EINVAL; 2787 } 2788 2789 core_relos_sz += sizeof(struct btf_ext_info_sec) + core_relo_rec_sz * sec->core_relo_info.rec_cnt; 2790 } 2791 } 2792 2793 if (!funcs_sz && !lines_sz && !core_relos_sz) 2794 return 0; 2795 2796 total_sz += sizeof(struct btf_ext_header); 2797 if (funcs_sz) { 2798 funcs_sz += sizeof(__u32); /* record size prefix */ 2799 total_sz += funcs_sz; 2800 } 2801 if (lines_sz) { 2802 lines_sz += sizeof(__u32); /* record size prefix */ 2803 total_sz += lines_sz; 2804 } 2805 if (core_relos_sz) { 2806 core_relos_sz += sizeof(__u32); /* record size prefix */ 2807 total_sz += core_relos_sz; 2808 } 2809 2810 cur = data = calloc(1, total_sz); 2811 if (!data) 2812 return -ENOMEM; 2813 2814 hdr = cur; 2815 hdr->magic = BTF_MAGIC; 2816 hdr->version = BTF_VERSION; 2817 hdr->flags = 0; 2818 hdr->hdr_len = sizeof(struct btf_ext_header); 2819 cur += sizeof(struct btf_ext_header); 2820 2821 /* All offsets are in bytes relative to the end of this header */ 2822 hdr->func_info_off = 0; 2823 hdr->func_info_len = funcs_sz; 2824 hdr->line_info_off = funcs_sz; 2825 hdr->line_info_len = lines_sz; 2826 hdr->core_relo_off = funcs_sz + lines_sz; 2827 hdr->core_relo_len = core_relos_sz; 2828 2829 if (funcs_sz) { 2830 *(__u32 *)cur = func_rec_sz; 2831 cur += sizeof(__u32); 2832 2833 for (i = 1; i < linker->sec_cnt; i++) { 2834 struct dst_sec *sec = &linker->secs[i]; 2835 2836 sz = emit_btf_ext_data(linker, cur, sec->sec_name, &sec->func_info); 2837 if (sz < 0) { 2838 err = sz; 2839 goto out; 2840 } 2841 2842 cur += sz; 2843 } 2844 } 2845 2846 if (lines_sz) { 2847 *(__u32 *)cur = line_rec_sz; 2848 cur += sizeof(__u32); 2849 2850 for (i = 1; i < linker->sec_cnt; i++) { 2851 struct dst_sec *sec = &linker->secs[i]; 2852 2853 sz = emit_btf_ext_data(linker, cur, sec->sec_name, &sec->line_info); 2854 if (sz < 0) { 2855 err = sz; 2856 goto out; 2857 } 2858 2859 cur += sz; 2860 } 2861 } 2862 2863 if (core_relos_sz) { 2864 *(__u32 *)cur = core_relo_rec_sz; 2865 cur += sizeof(__u32); 2866 2867 for (i = 1; i < linker->sec_cnt; i++) { 2868 struct dst_sec *sec = &linker->secs[i]; 2869 2870 sz = emit_btf_ext_data(linker, cur, sec->sec_name, &sec->core_relo_info); 2871 if (sz < 0) { 2872 err = sz; 2873 goto out; 2874 } 2875 2876 cur += sz; 2877 } 2878 } 2879 2880 linker->btf_ext = btf_ext__new(data, total_sz); 2881 err = libbpf_get_error(linker->btf_ext); 2882 if (err) { 2883 linker->btf_ext = NULL; 2884 pr_warn("failed to parse final .BTF.ext data: %d\n", err); 2885 goto out; 2886 } 2887 2888 out: 2889 free(data); 2890 return err; 2891 } 2892