1 // SPDX-License-Identifier: (LGPL-2.1 OR BSD-2-Clause) 2 /* Copyright (c) 2018 Facebook */ 3 4 #include <byteswap.h> 5 #include <endian.h> 6 #include <stdio.h> 7 #include <stdlib.h> 8 #include <string.h> 9 #include <fcntl.h> 10 #include <unistd.h> 11 #include <errno.h> 12 #include <sys/utsname.h> 13 #include <sys/param.h> 14 #include <sys/stat.h> 15 #include <sys/mman.h> 16 #include <linux/kernel.h> 17 #include <linux/err.h> 18 #include <linux/btf.h> 19 #include <gelf.h> 20 #include "btf.h" 21 #include "bpf.h" 22 #include "libbpf.h" 23 #include "libbpf_internal.h" 24 #include "hashmap.h" 25 #include "strset.h" 26 27 #define BTF_MAX_NR_TYPES 0x7fffffffU 28 #define BTF_MAX_STR_OFFSET 0x7fffffffU 29 30 static struct btf_type btf_void; 31 32 /* 33 * Describe how kinds are laid out; some have a singular element following the "struct btf_type", 34 * some have BTF_INFO_VLEN(t->info) elements. Specify sizes for both. Flags are currently unused. 35 * Kind layout can be optionally added to the BTF representation in a dedicated section to 36 * facilitate parsing. New kinds must be added here. 37 */ 38 static struct btf_layout layouts[NR_BTF_KINDS] = { 39 /* singular element size vlen element(s) size flags */ 40 [BTF_KIND_UNKN] = { 0, 0, 0 }, 41 [BTF_KIND_INT] = { sizeof(__u32), 0, 0 }, 42 [BTF_KIND_PTR] = { 0, 0, 0 }, 43 [BTF_KIND_ARRAY] = { sizeof(struct btf_array), 0, 0 }, 44 [BTF_KIND_STRUCT] = { 0, sizeof(struct btf_member), 0 }, 45 [BTF_KIND_UNION] = { 0, sizeof(struct btf_member), 0 }, 46 [BTF_KIND_ENUM] = { 0, sizeof(struct btf_enum), 0 }, 47 [BTF_KIND_FWD] = { 0, 0, 0 }, 48 [BTF_KIND_TYPEDEF] = { 0, 0, 0 }, 49 [BTF_KIND_VOLATILE] = { 0, 0, 0 }, 50 [BTF_KIND_CONST] = { 0, 0, 0 }, 51 [BTF_KIND_RESTRICT] = { 0, 0, 0 }, 52 [BTF_KIND_FUNC] = { 0, 0, 0 }, 53 [BTF_KIND_FUNC_PROTO] = { 0, sizeof(struct btf_param), 0 }, 54 [BTF_KIND_VAR] = { sizeof(struct btf_var), 0, 0 }, 55 [BTF_KIND_DATASEC] = { 0, sizeof(struct btf_var_secinfo), 0 }, 56 [BTF_KIND_FLOAT] = { 0, 0, 0 }, 57 [BTF_KIND_DECL_TAG] = { sizeof(struct btf_decl_tag), 0, 0 }, 58 [BTF_KIND_TYPE_TAG] = { 0, 0, 0 }, 59 [BTF_KIND_ENUM64] = { 0, sizeof(struct btf_enum64), 0 }, 60 }; 61 62 struct btf { 63 /* raw BTF data in native endianness */ 64 void *raw_data; 65 /* raw BTF data in non-native endianness */ 66 void *raw_data_swapped; 67 __u32 raw_size; 68 /* whether target endianness differs from the native one */ 69 bool swapped_endian; 70 71 /* 72 * When BTF is loaded from an ELF or raw memory it is stored 73 * in a contiguous memory block. The type_data, layout and strs_data 74 * point inside that memory region to their respective parts of BTF 75 * representation: 76 * 77 * +----------------------------------------+---------------+ 78 * | Header | Types | Optional layout | Strings | 79 * +--------------------------------------------------------+ 80 * ^ ^ ^ ^ 81 * | | | | 82 * raw_data | | | 83 * types_data-+ | | 84 * layout---------------+ | 85 * strs_data--------------------------------+ 86 * 87 * A separate struct btf_header is embedded as btf->hdr, 88 * and header information is copied into it. This allows us 89 * to handle header data for various header formats; the original, 90 * the extended header with layout info, etc. 91 * 92 * If BTF data is later modified, e.g., due to types added or 93 * removed, BTF deduplication performed, etc, this contiguous 94 * representation is broken up into four independent memory 95 * regions. 96 * 97 * raw_data is nulled out at that point, but can be later allocated 98 * and cached again if user calls btf__raw_data(), at which point 99 * raw_data will contain a contiguous copy of header, types, optional 100 * layout and strings. layout optionally points to a 101 * btf_layout array - this allows us to encode information about 102 * the kinds known at encoding time. If layout is NULL no 103 * layout information is encoded. 104 * 105 * +----------+ +---------+ +-----------+ +-----------+ 106 * | Header | | Types | | Layout | | Strings | 107 * +----------+ +---------+ +-----------+ +-----------+ 108 * ^ ^ ^ ^ 109 * | | | | 110 * hdr | | | 111 * types_data----+ | | 112 * layout---------------------+ | 113 * strset__data(strs_set)---------------------+ 114 * 115 * +----------+---------+-------------------+-----------+ 116 * | Header | Types | Optional Layout | Strings | 117 * raw_data----->+----------+---------+-------------------+-----------+ 118 */ 119 struct btf_header hdr; 120 121 void *types_data; 122 size_t types_data_cap; /* used size stored in hdr->type_len */ 123 124 /* type ID to `struct btf_type *` lookup index 125 * type_offs[0] corresponds to the first non-VOID type: 126 * - for base BTF it's type [1]; 127 * - for split BTF it's the first non-base BTF type. 128 */ 129 __u32 *type_offs; 130 size_t type_offs_cap; 131 /* number of types in this BTF instance: 132 * - doesn't include special [0] void type; 133 * - for split BTF counts number of types added on top of base BTF. 134 */ 135 __u32 nr_types; 136 /* the start IDs of named types in sorted BTF */ 137 int named_start_id; 138 /* if not NULL, points to the base BTF on top of which the current 139 * split BTF is based 140 */ 141 struct btf *base_btf; 142 /* BTF type ID of the first type in this BTF instance: 143 * - for base BTF it's equal to 1; 144 * - for split BTF it's equal to biggest type ID of base BTF plus 1. 145 */ 146 int start_id; 147 /* logical string offset of this BTF instance: 148 * - for base BTF it's equal to 0; 149 * - for split BTF it's equal to total size of base BTF's string section size. 150 */ 151 int start_str_off; 152 153 /* only one of strs_data or strs_set can be non-NULL, depending on 154 * whether BTF is in a modifiable state (strs_set is used) or not 155 * (strs_data points inside raw_data) 156 */ 157 void *strs_data; 158 /* a set of unique strings */ 159 struct strset *strs_set; 160 /* whether strings are already deduplicated */ 161 bool strs_deduped; 162 163 /* whether base_btf should be freed in btf_free for this instance */ 164 bool owns_base; 165 166 /* whether raw_data is a (read-only) mmap */ 167 bool raw_data_is_mmap; 168 169 /* is BTF modifiable? i.e. is it split into separate sections as described above? */ 170 bool modifiable; 171 /* does BTF have header information we do not support? If so, disallow 172 * modification. 173 */ 174 bool has_hdr_extra; 175 /* Points either at raw kind layout data in parsed BTF (if present), or 176 * at an allocated kind layout array when BTF is modifiable. 177 */ 178 void *layout; 179 180 /* BTF object FD, if loaded into kernel */ 181 int fd; 182 183 /* Pointer size (in bytes) for a target architecture of this BTF */ 184 int ptr_sz; 185 }; 186 187 static inline __u64 ptr_to_u64(const void *ptr) 188 { 189 return (__u64) (unsigned long) ptr; 190 } 191 192 /* Ensure given dynamically allocated memory region pointed to by *data* with 193 * capacity of *cap_cnt* elements each taking *elem_sz* bytes has enough 194 * memory to accommodate *add_cnt* new elements, assuming *cur_cnt* elements 195 * are already used. At most *max_cnt* elements can be ever allocated. 196 * If necessary, memory is reallocated and all existing data is copied over, 197 * new pointer to the memory region is stored at *data, new memory region 198 * capacity (in number of elements) is stored in *cap. 199 * On success, memory pointer to the beginning of unused memory is returned. 200 * On error, NULL is returned. 201 */ 202 void *libbpf_add_mem(void **data, size_t *cap_cnt, size_t elem_sz, 203 size_t cur_cnt, size_t max_cnt, size_t add_cnt) 204 { 205 size_t new_cnt; 206 void *new_data; 207 208 if (cur_cnt + add_cnt <= *cap_cnt) 209 return *data + cur_cnt * elem_sz; 210 211 /* requested more than the set limit */ 212 if (cur_cnt + add_cnt > max_cnt) 213 return NULL; 214 215 new_cnt = *cap_cnt; 216 new_cnt += new_cnt / 4; /* expand by 25% */ 217 if (new_cnt < 16) /* but at least 16 elements */ 218 new_cnt = 16; 219 if (new_cnt > max_cnt) /* but not exceeding a set limit */ 220 new_cnt = max_cnt; 221 if (new_cnt < cur_cnt + add_cnt) /* also ensure we have enough memory */ 222 new_cnt = cur_cnt + add_cnt; 223 224 new_data = libbpf_reallocarray(*data, new_cnt, elem_sz); 225 if (!new_data) 226 return NULL; 227 228 /* zero out newly allocated portion of memory */ 229 memset(new_data + (*cap_cnt) * elem_sz, 0, (new_cnt - *cap_cnt) * elem_sz); 230 231 *data = new_data; 232 *cap_cnt = new_cnt; 233 return new_data + cur_cnt * elem_sz; 234 } 235 236 /* Ensure given dynamically allocated memory region has enough allocated space 237 * to accommodate *need_cnt* elements of size *elem_sz* bytes each 238 */ 239 int libbpf_ensure_mem(void **data, size_t *cap_cnt, size_t elem_sz, size_t need_cnt) 240 { 241 void *p; 242 243 if (need_cnt <= *cap_cnt) 244 return 0; 245 246 p = libbpf_add_mem(data, cap_cnt, elem_sz, *cap_cnt, SIZE_MAX, need_cnt - *cap_cnt); 247 if (!p) 248 return -ENOMEM; 249 250 return 0; 251 } 252 253 static void *btf_add_type_offs_mem(struct btf *btf, size_t add_cnt) 254 { 255 return libbpf_add_mem((void **)&btf->type_offs, &btf->type_offs_cap, sizeof(__u32), 256 btf->nr_types, BTF_MAX_NR_TYPES, add_cnt); 257 } 258 259 static int btf_add_type_idx_entry(struct btf *btf, __u32 type_off) 260 { 261 __u32 *p; 262 263 p = btf_add_type_offs_mem(btf, 1); 264 if (!p) 265 return -ENOMEM; 266 267 *p = type_off; 268 return 0; 269 } 270 271 static void btf_bswap_hdr(struct btf_header *h, __u32 hdr_len) 272 { 273 h->magic = bswap_16(h->magic); 274 h->hdr_len = bswap_32(h->hdr_len); 275 h->type_off = bswap_32(h->type_off); 276 h->type_len = bswap_32(h->type_len); 277 h->str_off = bswap_32(h->str_off); 278 h->str_len = bswap_32(h->str_len); 279 /* May be operating on raw data with hdr_len that does not include below fields */ 280 if (hdr_len >= sizeof(struct btf_header)) { 281 h->layout_off = bswap_32(h->layout_off); 282 h->layout_len = bswap_32(h->layout_len); 283 } 284 } 285 286 static int btf_parse_hdr(struct btf *btf) 287 { 288 struct btf_header *hdr = btf->raw_data; 289 __u32 hdr_len, meta_left; 290 291 if (btf->raw_size < offsetofend(struct btf_header, str_len)) { 292 pr_debug("BTF header not found\n"); 293 return -EINVAL; 294 } 295 296 hdr_len = hdr->hdr_len; 297 298 if (hdr->magic == bswap_16(BTF_MAGIC)) { 299 btf->swapped_endian = true; 300 hdr_len = bswap_32(hdr->hdr_len); 301 if (hdr_len < offsetofend(struct btf_header, str_len)) { 302 pr_warn("Can't load BTF with non-native endianness due to unsupported header length %u\n", 303 hdr_len); 304 return -ENOTSUP; 305 } 306 } else if (hdr->magic != BTF_MAGIC) { 307 pr_debug("Invalid BTF magic: %x\n", hdr->magic); 308 return -EINVAL; 309 } 310 311 if (btf->raw_size < hdr_len) { 312 pr_debug("BTF header len %u larger than data size %u\n", 313 hdr_len, btf->raw_size); 314 return -EINVAL; 315 } 316 317 if (btf->swapped_endian) 318 btf_bswap_hdr(hdr, hdr_len); 319 320 memcpy(&btf->hdr, hdr, min((size_t)hdr_len, sizeof(struct btf_header))); 321 322 /* If unknown header data is found, modification is prohibited in 323 * btf_ensure_modifiable(). 324 */ 325 if (hdr_len > sizeof(struct btf_header)) { 326 __u8 *h = (__u8 *)hdr; 327 __u32 i; 328 329 for (i = sizeof(struct btf_header); i < hdr_len; i++) { 330 if (!h[i]) 331 continue; 332 btf->has_hdr_extra = true; 333 pr_debug("Unknown BTF header data at offset %u; modification is disallowed\n", 334 i); 335 break; 336 } 337 } 338 339 meta_left = btf->raw_size - hdr_len; 340 if (meta_left < (long long)btf->hdr.str_off + btf->hdr.str_len) { 341 pr_debug("Invalid BTF total size: %u\n", btf->raw_size); 342 return -EINVAL; 343 } 344 345 if ((long long)btf->hdr.type_off + btf->hdr.type_len > btf->hdr.str_off) { 346 pr_debug("Invalid BTF data sections layout: type data at %u + %u, strings data at %u + %u\n", 347 btf->hdr.type_off, btf->hdr.type_len, btf->hdr.str_off, 348 btf->hdr.str_len); 349 return -EINVAL; 350 } 351 352 if (btf->hdr.type_off % 4) { 353 pr_debug("BTF type section is not aligned to 4 bytes\n"); 354 return -EINVAL; 355 } 356 357 if (btf->hdr.layout_len == 0) 358 return 0; 359 360 /* optional layout section sits between types and strings */ 361 if (btf->hdr.layout_off % 4) { 362 pr_debug("BTF layout section is not aligned to 4 bytes\n"); 363 return -EINVAL; 364 } 365 if (btf->hdr.layout_off < (long long)btf->hdr.type_off + btf->hdr.type_len) { 366 pr_debug("Invalid BTF data sections layout: type data at %u + %u, layout data at %u + %u\n", 367 btf->hdr.type_off, btf->hdr.type_len, 368 btf->hdr.layout_off, btf->hdr.layout_len); 369 return -EINVAL; 370 } 371 if ((long long)btf->hdr.layout_off + btf->hdr.layout_len > btf->hdr.str_off || 372 btf->hdr.layout_off > btf->hdr.str_off) { 373 pr_debug("Invalid BTF data sections layout: layout data at %u + %u, strings data at %u\n", 374 btf->hdr.layout_off, btf->hdr.layout_len, btf->hdr.str_off); 375 return -EINVAL; 376 } 377 return 0; 378 } 379 380 static int btf_parse_str_sec(struct btf *btf) 381 { 382 const char *start = btf->strs_data; 383 const char *end = start + btf->hdr.str_len; 384 385 if (btf->base_btf && btf->hdr.str_len == 0) 386 return 0; 387 if (!btf->hdr.str_len || btf->hdr.str_len - 1 > BTF_MAX_STR_OFFSET || end[-1]) { 388 pr_debug("Invalid BTF string section\n"); 389 return -EINVAL; 390 } 391 if (!btf->base_btf && start[0]) { 392 pr_debug("Malformed BTF string section, did you forget to provide base BTF?\n"); 393 return -EINVAL; 394 } 395 return 0; 396 } 397 398 static int btf_parse_layout_sec(struct btf *btf) 399 { 400 if (!btf->hdr.layout_len) 401 return 0; 402 403 if (btf->hdr.layout_len % sizeof(struct btf_layout) != 0) { 404 pr_debug("Invalid BTF kind layout section\n"); 405 return -EINVAL; 406 } 407 btf->layout = btf->raw_data + btf->hdr.hdr_len + btf->hdr.layout_off; 408 409 if (btf->swapped_endian) { 410 struct btf_layout *l, *end = btf->layout + btf->hdr.layout_len; 411 412 for (l = btf->layout; l < end; l++) 413 l->flags = bswap_16(l->flags); 414 } 415 416 return 0; 417 } 418 419 /* for unknown kinds, consult kind layout. */ 420 static int btf_type_size_unknown(const struct btf *btf, const struct btf_type *t) 421 { 422 __u32 l_cnt = btf->hdr.layout_len / sizeof(struct btf_layout); 423 struct btf_layout *l = btf->layout; 424 __u32 vlen = btf_vlen(t); 425 __u32 kind = btf_kind(t); 426 427 /* Fall back to base BTF if needed as they share layout information */ 428 if (!l) { 429 struct btf *base_btf = btf->base_btf; 430 431 if (base_btf) { 432 l = base_btf->layout; 433 l_cnt = base_btf->hdr.layout_len / sizeof(struct btf_layout); 434 } 435 } 436 if (!l || kind >= l_cnt) { 437 pr_debug("Unsupported BTF_KIND: %u\n", btf_kind(t)); 438 return -EINVAL; 439 } 440 if (l[kind].info_sz % 4) { 441 pr_debug("Unsupported info_sz %u for kind %u\n", 442 l[kind].info_sz, kind); 443 return -EINVAL; 444 } 445 if (l[kind].elem_sz % 4) { 446 pr_debug("Unsupported elem_sz %u for kind %u\n", 447 l[kind].elem_sz, kind); 448 return -EINVAL; 449 } 450 451 return sizeof(struct btf_type) + l[kind].info_sz + vlen * l[kind].elem_sz; 452 } 453 454 static int btf_type_size(const struct btf *btf, const struct btf_type *t) 455 { 456 const int base_size = sizeof(struct btf_type); 457 __u32 vlen = btf_vlen(t); 458 459 switch (btf_kind(t)) { 460 case BTF_KIND_FWD: 461 case BTF_KIND_CONST: 462 case BTF_KIND_VOLATILE: 463 case BTF_KIND_RESTRICT: 464 case BTF_KIND_PTR: 465 case BTF_KIND_TYPEDEF: 466 case BTF_KIND_FUNC: 467 case BTF_KIND_FLOAT: 468 case BTF_KIND_TYPE_TAG: 469 return base_size; 470 case BTF_KIND_INT: 471 return base_size + sizeof(__u32); 472 case BTF_KIND_ENUM: 473 return base_size + vlen * sizeof(struct btf_enum); 474 case BTF_KIND_ENUM64: 475 return base_size + vlen * sizeof(struct btf_enum64); 476 case BTF_KIND_ARRAY: 477 return base_size + sizeof(struct btf_array); 478 case BTF_KIND_STRUCT: 479 case BTF_KIND_UNION: 480 return base_size + vlen * sizeof(struct btf_member); 481 case BTF_KIND_FUNC_PROTO: 482 return base_size + vlen * sizeof(struct btf_param); 483 case BTF_KIND_VAR: 484 return base_size + sizeof(struct btf_var); 485 case BTF_KIND_DATASEC: 486 return base_size + vlen * sizeof(struct btf_var_secinfo); 487 case BTF_KIND_DECL_TAG: 488 return base_size + sizeof(struct btf_decl_tag); 489 default: 490 return btf_type_size_unknown(btf, t); 491 } 492 } 493 494 static void btf_bswap_type_base(struct btf_type *t) 495 { 496 t->name_off = bswap_32(t->name_off); 497 t->info = bswap_32(t->info); 498 t->type = bswap_32(t->type); 499 } 500 501 static int btf_bswap_type_rest(struct btf_type *t) 502 { 503 struct btf_var_secinfo *v; 504 struct btf_enum64 *e64; 505 struct btf_member *m; 506 struct btf_array *a; 507 struct btf_param *p; 508 struct btf_enum *e; 509 __u32 vlen = btf_vlen(t); 510 int i; 511 512 switch (btf_kind(t)) { 513 case BTF_KIND_FWD: 514 case BTF_KIND_CONST: 515 case BTF_KIND_VOLATILE: 516 case BTF_KIND_RESTRICT: 517 case BTF_KIND_PTR: 518 case BTF_KIND_TYPEDEF: 519 case BTF_KIND_FUNC: 520 case BTF_KIND_FLOAT: 521 case BTF_KIND_TYPE_TAG: 522 return 0; 523 case BTF_KIND_INT: 524 *(__u32 *)(t + 1) = bswap_32(*(__u32 *)(t + 1)); 525 return 0; 526 case BTF_KIND_ENUM: 527 for (i = 0, e = btf_enum(t); i < vlen; i++, e++) { 528 e->name_off = bswap_32(e->name_off); 529 e->val = bswap_32(e->val); 530 } 531 return 0; 532 case BTF_KIND_ENUM64: 533 for (i = 0, e64 = btf_enum64(t); i < vlen; i++, e64++) { 534 e64->name_off = bswap_32(e64->name_off); 535 e64->val_lo32 = bswap_32(e64->val_lo32); 536 e64->val_hi32 = bswap_32(e64->val_hi32); 537 } 538 return 0; 539 case BTF_KIND_ARRAY: 540 a = btf_array(t); 541 a->type = bswap_32(a->type); 542 a->index_type = bswap_32(a->index_type); 543 a->nelems = bswap_32(a->nelems); 544 return 0; 545 case BTF_KIND_STRUCT: 546 case BTF_KIND_UNION: 547 for (i = 0, m = btf_members(t); i < vlen; i++, m++) { 548 m->name_off = bswap_32(m->name_off); 549 m->type = bswap_32(m->type); 550 m->offset = bswap_32(m->offset); 551 } 552 return 0; 553 case BTF_KIND_FUNC_PROTO: 554 for (i = 0, p = btf_params(t); i < vlen; i++, p++) { 555 p->name_off = bswap_32(p->name_off); 556 p->type = bswap_32(p->type); 557 } 558 return 0; 559 case BTF_KIND_VAR: 560 btf_var(t)->linkage = bswap_32(btf_var(t)->linkage); 561 return 0; 562 case BTF_KIND_DATASEC: 563 for (i = 0, v = btf_var_secinfos(t); i < vlen; i++, v++) { 564 v->type = bswap_32(v->type); 565 v->offset = bswap_32(v->offset); 566 v->size = bswap_32(v->size); 567 } 568 return 0; 569 case BTF_KIND_DECL_TAG: 570 btf_decl_tag(t)->component_idx = bswap_32(btf_decl_tag(t)->component_idx); 571 return 0; 572 default: 573 pr_debug("Unsupported BTF_KIND:%u\n", btf_kind(t)); 574 return -EINVAL; 575 } 576 } 577 578 static int btf_parse_type_sec(struct btf *btf) 579 { 580 void *next_type = btf->types_data; 581 void *end_type = next_type + btf->hdr.type_len; 582 int err, type_size; 583 584 while (next_type + sizeof(struct btf_type) <= end_type) { 585 if (btf->swapped_endian) 586 btf_bswap_type_base(next_type); 587 588 type_size = btf_type_size(btf, next_type); 589 if (type_size < 0) 590 return type_size; 591 if (next_type + type_size > end_type) { 592 pr_warn("BTF type [%u] is malformed\n", btf->start_id + btf->nr_types); 593 return -EINVAL; 594 } 595 596 if (btf->swapped_endian && btf_bswap_type_rest(next_type)) 597 return -EINVAL; 598 599 err = btf_add_type_idx_entry(btf, next_type - btf->types_data); 600 if (err) 601 return err; 602 603 next_type += type_size; 604 btf->nr_types++; 605 } 606 607 if (next_type != end_type) { 608 pr_warn("BTF types data is malformed\n"); 609 return -EINVAL; 610 } 611 612 return 0; 613 } 614 615 static int btf_validate_str(const struct btf *btf, __u32 str_off, const char *what, __u32 type_id) 616 { 617 const char *s; 618 619 s = btf__str_by_offset(btf, str_off); 620 if (!s) { 621 pr_warn("btf: type [%u]: invalid %s (string offset %u)\n", type_id, what, str_off); 622 return -EINVAL; 623 } 624 625 return 0; 626 } 627 628 static int btf_validate_id(const struct btf *btf, __u32 id, __u32 ctx_id) 629 { 630 const struct btf_type *t; 631 632 t = btf__type_by_id(btf, id); 633 if (!t) { 634 pr_warn("btf: type [%u]: invalid referenced type ID %u\n", ctx_id, id); 635 return -EINVAL; 636 } 637 638 return 0; 639 } 640 641 static int btf_validate_type(const struct btf *btf, const struct btf_type *t, __u32 id) 642 { 643 __u32 kind = btf_kind(t); 644 int err, i, n; 645 646 err = btf_validate_str(btf, t->name_off, "type name", id); 647 if (err) 648 return err; 649 650 switch (kind) { 651 case BTF_KIND_UNKN: 652 case BTF_KIND_INT: 653 case BTF_KIND_FWD: 654 case BTF_KIND_FLOAT: 655 break; 656 case BTF_KIND_PTR: 657 case BTF_KIND_TYPEDEF: 658 case BTF_KIND_VOLATILE: 659 case BTF_KIND_CONST: 660 case BTF_KIND_RESTRICT: 661 case BTF_KIND_VAR: 662 case BTF_KIND_DECL_TAG: 663 case BTF_KIND_TYPE_TAG: 664 err = btf_validate_id(btf, t->type, id); 665 if (err) 666 return err; 667 break; 668 case BTF_KIND_ARRAY: { 669 const struct btf_array *a = btf_array(t); 670 671 err = btf_validate_id(btf, a->type, id); 672 err = err ?: btf_validate_id(btf, a->index_type, id); 673 if (err) 674 return err; 675 break; 676 } 677 case BTF_KIND_STRUCT: 678 case BTF_KIND_UNION: { 679 const struct btf_member *m = btf_members(t); 680 681 n = btf_vlen(t); 682 for (i = 0; i < n; i++, m++) { 683 err = btf_validate_str(btf, m->name_off, "field name", id); 684 err = err ?: btf_validate_id(btf, m->type, id); 685 if (err) 686 return err; 687 } 688 break; 689 } 690 case BTF_KIND_ENUM: { 691 const struct btf_enum *m = btf_enum(t); 692 693 n = btf_vlen(t); 694 for (i = 0; i < n; i++, m++) { 695 err = btf_validate_str(btf, m->name_off, "enum name", id); 696 if (err) 697 return err; 698 } 699 break; 700 } 701 case BTF_KIND_ENUM64: { 702 const struct btf_enum64 *m = btf_enum64(t); 703 704 n = btf_vlen(t); 705 for (i = 0; i < n; i++, m++) { 706 err = btf_validate_str(btf, m->name_off, "enum name", id); 707 if (err) 708 return err; 709 } 710 break; 711 } 712 case BTF_KIND_FUNC: { 713 const struct btf_type *ft; 714 715 err = btf_validate_id(btf, t->type, id); 716 if (err) 717 return err; 718 ft = btf__type_by_id(btf, t->type); 719 if (btf_kind(ft) != BTF_KIND_FUNC_PROTO) { 720 pr_warn("btf: type [%u]: referenced type [%u] is not FUNC_PROTO\n", id, t->type); 721 return -EINVAL; 722 } 723 break; 724 } 725 case BTF_KIND_FUNC_PROTO: { 726 const struct btf_param *m = btf_params(t); 727 728 n = btf_vlen(t); 729 for (i = 0; i < n; i++, m++) { 730 err = btf_validate_str(btf, m->name_off, "param name", id); 731 err = err ?: btf_validate_id(btf, m->type, id); 732 if (err) 733 return err; 734 } 735 break; 736 } 737 case BTF_KIND_DATASEC: { 738 const struct btf_var_secinfo *m = btf_var_secinfos(t); 739 740 n = btf_vlen(t); 741 for (i = 0; i < n; i++, m++) { 742 err = btf_validate_id(btf, m->type, id); 743 if (err) 744 return err; 745 } 746 break; 747 } 748 default: 749 /* Kind may be represented in kind layout information. */ 750 if (btf_type_size_unknown(btf, t) < 0) { 751 pr_warn("btf: type [%u]: unrecognized kind %u\n", id, kind); 752 return -EINVAL; 753 } 754 break; 755 } 756 return 0; 757 } 758 759 /* Validate basic sanity of BTF. It's intentionally less thorough than 760 * kernel's validation and validates only properties of BTF that libbpf relies 761 * on to be correct (e.g., valid type IDs, valid string offsets, etc) 762 */ 763 static int btf_sanity_check(const struct btf *btf) 764 { 765 const struct btf_type *t; 766 __u32 i, n = btf__type_cnt(btf); 767 int err; 768 769 for (i = btf->start_id; i < n; i++) { 770 t = btf_type_by_id(btf, i); 771 err = btf_validate_type(btf, t, i); 772 if (err) 773 return err; 774 } 775 return 0; 776 } 777 778 __u32 btf__type_cnt(const struct btf *btf) 779 { 780 return btf->start_id + btf->nr_types; 781 } 782 783 const struct btf *btf__base_btf(const struct btf *btf) 784 { 785 return btf->base_btf; 786 } 787 788 /* internal helper returning non-const pointer to a type */ 789 struct btf_type *btf_type_by_id(const struct btf *btf, __u32 type_id) 790 { 791 if (type_id == 0) 792 return &btf_void; 793 if (type_id < btf->start_id) 794 return btf_type_by_id(btf->base_btf, type_id); 795 return btf->types_data + btf->type_offs[type_id - btf->start_id]; 796 } 797 798 const struct btf_type *btf__type_by_id(const struct btf *btf, __u32 type_id) 799 { 800 if (type_id >= btf->start_id + btf->nr_types) 801 return errno = EINVAL, NULL; 802 return btf_type_by_id((struct btf *)btf, type_id); 803 } 804 805 static int determine_ptr_size(const struct btf *btf) 806 { 807 static const char * const long_aliases[] = { 808 "long", 809 "long int", 810 "int long", 811 "unsigned long", 812 "long unsigned", 813 "unsigned long int", 814 "unsigned int long", 815 "long unsigned int", 816 "long int unsigned", 817 "int unsigned long", 818 "int long unsigned", 819 }; 820 const struct btf_type *t; 821 const char *name; 822 int i, j, n; 823 824 if (btf->base_btf && btf->base_btf->ptr_sz > 0) 825 return btf->base_btf->ptr_sz; 826 827 n = btf__type_cnt(btf); 828 for (i = 1; i < n; i++) { 829 t = btf__type_by_id(btf, i); 830 if (!btf_is_int(t)) 831 continue; 832 833 if (t->size != 4 && t->size != 8) 834 continue; 835 836 name = btf__name_by_offset(btf, t->name_off); 837 if (!name) 838 continue; 839 840 for (j = 0; j < ARRAY_SIZE(long_aliases); j++) { 841 if (strcmp(name, long_aliases[j]) == 0) 842 return t->size; 843 } 844 } 845 846 return -1; 847 } 848 849 static size_t btf_ptr_sz(const struct btf *btf) 850 { 851 if (!btf->ptr_sz) 852 ((struct btf *)btf)->ptr_sz = determine_ptr_size(btf); 853 return btf->ptr_sz < 0 ? sizeof(void *) : btf->ptr_sz; 854 } 855 856 /* Return pointer size this BTF instance assumes. The size is heuristically 857 * determined by looking for 'long' or 'unsigned long' integer type and 858 * recording its size in bytes. If BTF type information doesn't have any such 859 * type, this function returns 0. In the latter case, native architecture's 860 * pointer size is assumed, so will be either 4 or 8, depending on 861 * architecture that libbpf was compiled for. It's possible to override 862 * guessed value by using btf__set_pointer_size() API. 863 */ 864 size_t btf__pointer_size(const struct btf *btf) 865 { 866 if (!btf->ptr_sz) 867 ((struct btf *)btf)->ptr_sz = determine_ptr_size(btf); 868 869 if (btf->ptr_sz < 0) 870 /* not enough BTF type info to guess */ 871 return 0; 872 873 return btf->ptr_sz; 874 } 875 876 /* Override or set pointer size in bytes. Only values of 4 and 8 are 877 * supported. 878 */ 879 int btf__set_pointer_size(struct btf *btf, size_t ptr_sz) 880 { 881 if (ptr_sz != 4 && ptr_sz != 8) 882 return libbpf_err(-EINVAL); 883 btf->ptr_sz = ptr_sz; 884 return 0; 885 } 886 887 static bool is_host_big_endian(void) 888 { 889 #if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__ 890 return false; 891 #elif __BYTE_ORDER__ == __ORDER_BIG_ENDIAN__ 892 return true; 893 #else 894 # error "Unrecognized __BYTE_ORDER__" 895 #endif 896 } 897 898 enum btf_endianness btf__endianness(const struct btf *btf) 899 { 900 if (is_host_big_endian()) 901 return btf->swapped_endian ? BTF_LITTLE_ENDIAN : BTF_BIG_ENDIAN; 902 else 903 return btf->swapped_endian ? BTF_BIG_ENDIAN : BTF_LITTLE_ENDIAN; 904 } 905 906 int btf__set_endianness(struct btf *btf, enum btf_endianness endian) 907 { 908 if (endian != BTF_LITTLE_ENDIAN && endian != BTF_BIG_ENDIAN) 909 return libbpf_err(-EINVAL); 910 911 btf->swapped_endian = is_host_big_endian() != (endian == BTF_BIG_ENDIAN); 912 if (!btf->swapped_endian) { 913 free(btf->raw_data_swapped); 914 btf->raw_data_swapped = NULL; 915 } 916 return 0; 917 } 918 919 static bool btf_type_is_void(const struct btf_type *t) 920 { 921 return t == &btf_void || btf_is_fwd(t); 922 } 923 924 static bool btf_type_is_void_or_null(const struct btf_type *t) 925 { 926 return !t || btf_type_is_void(t); 927 } 928 929 #define MAX_RESOLVE_DEPTH 32 930 931 __s64 btf__resolve_size(const struct btf *btf, __u32 type_id) 932 { 933 const struct btf_array *array; 934 const struct btf_type *t; 935 __u32 nelems = 1; 936 __s64 size = -1; 937 int i; 938 939 t = btf__type_by_id(btf, type_id); 940 for (i = 0; i < MAX_RESOLVE_DEPTH && !btf_type_is_void_or_null(t); i++) { 941 switch (btf_kind(t)) { 942 case BTF_KIND_INT: 943 case BTF_KIND_STRUCT: 944 case BTF_KIND_UNION: 945 case BTF_KIND_ENUM: 946 case BTF_KIND_ENUM64: 947 case BTF_KIND_DATASEC: 948 case BTF_KIND_FLOAT: 949 size = t->size; 950 goto done; 951 case BTF_KIND_PTR: 952 size = btf_ptr_sz(btf); 953 goto done; 954 case BTF_KIND_TYPEDEF: 955 case BTF_KIND_VOLATILE: 956 case BTF_KIND_CONST: 957 case BTF_KIND_RESTRICT: 958 case BTF_KIND_VAR: 959 case BTF_KIND_DECL_TAG: 960 case BTF_KIND_TYPE_TAG: 961 type_id = t->type; 962 break; 963 case BTF_KIND_ARRAY: 964 array = btf_array(t); 965 if (nelems && array->nelems > UINT32_MAX / nelems) 966 return libbpf_err(-E2BIG); 967 nelems *= array->nelems; 968 type_id = array->type; 969 break; 970 default: 971 return libbpf_err(-EINVAL); 972 } 973 974 t = btf__type_by_id(btf, type_id); 975 } 976 977 done: 978 if (size < 0) 979 return libbpf_err(-EINVAL); 980 if (nelems && size > UINT32_MAX / nelems) 981 return libbpf_err(-E2BIG); 982 983 return nelems * size; 984 } 985 986 int btf__align_of(const struct btf *btf, __u32 id) 987 { 988 const struct btf_type *t = btf__type_by_id(btf, id); 989 __u16 kind = btf_kind(t); 990 991 switch (kind) { 992 case BTF_KIND_INT: 993 case BTF_KIND_ENUM: 994 case BTF_KIND_ENUM64: 995 case BTF_KIND_FLOAT: 996 return min(btf_ptr_sz(btf), (size_t)t->size); 997 case BTF_KIND_PTR: 998 return btf_ptr_sz(btf); 999 case BTF_KIND_TYPEDEF: 1000 case BTF_KIND_VOLATILE: 1001 case BTF_KIND_CONST: 1002 case BTF_KIND_RESTRICT: 1003 case BTF_KIND_TYPE_TAG: 1004 return btf__align_of(btf, t->type); 1005 case BTF_KIND_ARRAY: 1006 return btf__align_of(btf, btf_array(t)->type); 1007 case BTF_KIND_STRUCT: 1008 case BTF_KIND_UNION: { 1009 const struct btf_member *m = btf_members(t); 1010 __u32 vlen = btf_vlen(t); 1011 int i, max_align = 1, align; 1012 1013 for (i = 0; i < vlen; i++, m++) { 1014 align = btf__align_of(btf, m->type); 1015 if (align <= 0) 1016 return libbpf_err(align); 1017 max_align = max(max_align, align); 1018 1019 /* if field offset isn't aligned according to field 1020 * type's alignment, then struct must be packed 1021 */ 1022 if (btf_member_bitfield_size(t, i) == 0 && 1023 (m->offset % (8 * align)) != 0) 1024 return 1; 1025 } 1026 1027 /* if struct/union size isn't a multiple of its alignment, 1028 * then struct must be packed 1029 */ 1030 if ((t->size % max_align) != 0) 1031 return 1; 1032 1033 return max_align; 1034 } 1035 default: 1036 pr_warn("unsupported BTF_KIND:%u\n", btf_kind(t)); 1037 return errno = EINVAL, 0; 1038 } 1039 } 1040 1041 int btf__resolve_type(const struct btf *btf, __u32 type_id) 1042 { 1043 const struct btf_type *t; 1044 int depth = 0; 1045 1046 t = btf__type_by_id(btf, type_id); 1047 while (depth < MAX_RESOLVE_DEPTH && 1048 !btf_type_is_void_or_null(t) && 1049 (btf_is_mod(t) || btf_is_typedef(t) || btf_is_var(t))) { 1050 type_id = t->type; 1051 t = btf__type_by_id(btf, type_id); 1052 depth++; 1053 } 1054 1055 if (depth == MAX_RESOLVE_DEPTH || btf_type_is_void_or_null(t)) 1056 return libbpf_err(-EINVAL); 1057 1058 return type_id; 1059 } 1060 1061 static void btf_check_sorted(struct btf *btf) 1062 { 1063 __u32 i, n, named_start_id = 0; 1064 1065 n = btf__type_cnt(btf); 1066 for (i = btf->start_id + 1; i < n; i++) { 1067 struct btf_type *ta = btf_type_by_id(btf, i - 1); 1068 struct btf_type *tb = btf_type_by_id(btf, i); 1069 const char *na = btf__str_by_offset(btf, ta->name_off); 1070 const char *nb = btf__str_by_offset(btf, tb->name_off); 1071 1072 if (strcmp(na, nb) > 0) 1073 return; 1074 1075 if (named_start_id == 0 && na[0] != '\0') 1076 named_start_id = i - 1; 1077 if (named_start_id == 0 && nb[0] != '\0') 1078 named_start_id = i; 1079 } 1080 1081 if (named_start_id) 1082 btf->named_start_id = named_start_id; 1083 } 1084 1085 static __s32 btf_find_type_by_name_bsearch(const struct btf *btf, const char *name, 1086 __s32 start_id) 1087 { 1088 const struct btf_type *t; 1089 const char *tname; 1090 __s32 l, r, m; 1091 1092 l = start_id; 1093 r = btf__type_cnt(btf) - 1; 1094 while (l <= r) { 1095 m = l + (r - l) / 2; 1096 t = btf_type_by_id(btf, m); 1097 tname = btf__str_by_offset(btf, t->name_off); 1098 if (strcmp(tname, name) >= 0) { 1099 if (l == r) 1100 return r; 1101 r = m; 1102 } else { 1103 l = m + 1; 1104 } 1105 } 1106 1107 return btf__type_cnt(btf); 1108 } 1109 1110 static __s32 btf_find_by_name_kind(const struct btf *btf, int start_id, 1111 const char *type_name, __s32 kind) 1112 { 1113 __u32 nr_types = btf__type_cnt(btf); 1114 const struct btf_type *t; 1115 const char *tname; 1116 __s32 id; 1117 1118 if (start_id < btf->start_id) { 1119 id = btf_find_by_name_kind(btf->base_btf, start_id, 1120 type_name, kind); 1121 if (id >= 0) 1122 return id; 1123 start_id = btf->start_id; 1124 } 1125 1126 if (kind == BTF_KIND_UNKN || strcmp(type_name, "void") == 0) 1127 return 0; 1128 1129 if (btf->named_start_id > 0 && type_name[0]) { 1130 start_id = max(start_id, btf->named_start_id); 1131 id = btf_find_type_by_name_bsearch(btf, type_name, start_id); 1132 for (; id < nr_types; id++) { 1133 t = btf__type_by_id(btf, id); 1134 tname = btf__str_by_offset(btf, t->name_off); 1135 if (strcmp(tname, type_name) != 0) 1136 return libbpf_err(-ENOENT); 1137 if (kind < 0 || btf_kind(t) == kind) 1138 return id; 1139 } 1140 } else { 1141 for (id = start_id; id < nr_types; id++) { 1142 t = btf_type_by_id(btf, id); 1143 if (kind > 0 && btf_kind(t) != kind) 1144 continue; 1145 tname = btf__str_by_offset(btf, t->name_off); 1146 if (strcmp(tname, type_name) == 0) 1147 return id; 1148 } 1149 } 1150 1151 return libbpf_err(-ENOENT); 1152 } 1153 1154 /* the kind value of -1 indicates that kind matching should be skipped */ 1155 __s32 btf__find_by_name(const struct btf *btf, const char *type_name) 1156 { 1157 return btf_find_by_name_kind(btf, 1, type_name, -1); 1158 } 1159 1160 __s32 btf__find_by_name_kind_own(const struct btf *btf, const char *type_name, 1161 __u32 kind) 1162 { 1163 return btf_find_by_name_kind(btf, btf->start_id, type_name, kind); 1164 } 1165 1166 __s32 btf__find_by_name_kind(const struct btf *btf, const char *type_name, 1167 __u32 kind) 1168 { 1169 return btf_find_by_name_kind(btf, 1, type_name, kind); 1170 } 1171 1172 static bool btf_is_modifiable(const struct btf *btf) 1173 { 1174 /* BTF is modifiable if split into multiple sections */ 1175 return btf->modifiable; 1176 } 1177 1178 static void btf_free_raw_data(struct btf *btf) 1179 { 1180 if (btf->raw_data_is_mmap) { 1181 munmap(btf->raw_data, btf->raw_size); 1182 btf->raw_data_is_mmap = false; 1183 } else { 1184 free(btf->raw_data); 1185 } 1186 btf->raw_data = NULL; 1187 } 1188 1189 void btf__free(struct btf *btf) 1190 { 1191 if (IS_ERR_OR_NULL(btf)) 1192 return; 1193 1194 if (btf->fd >= 0) 1195 close(btf->fd); 1196 1197 if (btf_is_modifiable(btf)) { 1198 /* if BTF was modified after loading, it will have a split 1199 * in-memory representation for types, strings and layout 1200 * sections, so we need to free all of them individually. It 1201 * might still have a cached contiguous raw data present, 1202 * which will be unconditionally freed below. 1203 */ 1204 free(btf->types_data); 1205 strset__free(btf->strs_set); 1206 free(btf->layout); 1207 } 1208 btf_free_raw_data(btf); 1209 free(btf->raw_data_swapped); 1210 free(btf->type_offs); 1211 if (btf->owns_base) 1212 btf__free(btf->base_btf); 1213 free(btf); 1214 } 1215 1216 static struct btf *btf_new_empty(struct btf_new_opts *opts) 1217 { 1218 bool add_layout = OPTS_GET(opts, add_layout, false); 1219 struct btf *base_btf = OPTS_GET(opts, base_btf, NULL); 1220 struct btf_header *hdr; 1221 struct btf *btf; 1222 1223 btf = calloc(1, sizeof(*btf)); 1224 if (!btf) 1225 return ERR_PTR(-ENOMEM); 1226 1227 btf->nr_types = 0; 1228 btf->start_id = 1; 1229 btf->start_str_off = 0; 1230 btf->fd = -1; 1231 btf->ptr_sz = sizeof(void *); 1232 btf->swapped_endian = false; 1233 btf->named_start_id = 0; 1234 1235 if (base_btf) { 1236 btf->base_btf = base_btf; 1237 btf->start_id = btf__type_cnt(base_btf); 1238 btf->start_str_off = base_btf->hdr.str_len + base_btf->start_str_off; 1239 btf->swapped_endian = base_btf->swapped_endian; 1240 } 1241 1242 /* +1 for empty string at offset 0 */ 1243 btf->raw_size = sizeof(struct btf_header) + (base_btf ? 0 : 1); 1244 if (add_layout) 1245 btf->raw_size += sizeof(layouts); 1246 btf->raw_data = calloc(1, btf->raw_size); 1247 if (!btf->raw_data) { 1248 free(btf); 1249 return ERR_PTR(-ENOMEM); 1250 } 1251 1252 hdr = btf->raw_data; 1253 hdr->hdr_len = sizeof(struct btf_header); 1254 hdr->magic = BTF_MAGIC; 1255 hdr->version = BTF_VERSION; 1256 1257 btf->types_data = btf->raw_data + hdr->hdr_len; 1258 btf->strs_data = btf->raw_data + hdr->hdr_len; 1259 hdr->str_len = base_btf ? 0 : 1; /* empty string at offset 0 */ 1260 1261 if (add_layout) { 1262 hdr->layout_len = sizeof(layouts); 1263 btf->layout = layouts; 1264 /* 1265 * No need to swap endianness here as btf_get_raw_data() 1266 * will do this for us if btf->swapped_endian is true. 1267 */ 1268 memcpy(btf->raw_data + hdr->hdr_len, layouts, sizeof(layouts)); 1269 btf->strs_data += sizeof(layouts); 1270 hdr->str_off += sizeof(layouts); 1271 } 1272 1273 memcpy(&btf->hdr, hdr, sizeof(*hdr)); 1274 1275 return btf; 1276 } 1277 1278 struct btf *btf__new_empty(void) 1279 { 1280 return libbpf_ptr(btf_new_empty(NULL)); 1281 } 1282 1283 struct btf *btf__new_empty_split(struct btf *base_btf) 1284 { 1285 LIBBPF_OPTS(btf_new_opts, opts); 1286 1287 opts.base_btf = base_btf; 1288 1289 return libbpf_ptr(btf_new_empty(&opts)); 1290 } 1291 1292 struct btf *btf__new_empty_opts(struct btf_new_opts *opts) 1293 { 1294 if (!OPTS_VALID(opts, btf_new_opts)) 1295 return libbpf_err_ptr(-EINVAL); 1296 1297 return libbpf_ptr(btf_new_empty(opts)); 1298 } 1299 1300 static struct btf *btf_new(const void *data, __u32 size, struct btf *base_btf, bool is_mmap) 1301 { 1302 struct btf *btf; 1303 int err; 1304 1305 btf = calloc(1, sizeof(struct btf)); 1306 if (!btf) 1307 return ERR_PTR(-ENOMEM); 1308 1309 btf->nr_types = 0; 1310 btf->start_id = 1; 1311 btf->start_str_off = 0; 1312 btf->fd = -1; 1313 btf->named_start_id = 0; 1314 1315 if (base_btf) { 1316 btf->base_btf = base_btf; 1317 btf->start_id = btf__type_cnt(base_btf); 1318 btf->start_str_off = base_btf->hdr.str_len + base_btf->start_str_off; 1319 } 1320 1321 if (is_mmap) { 1322 btf->raw_data = (void *)data; 1323 btf->raw_data_is_mmap = true; 1324 } else { 1325 btf->raw_data = malloc(size); 1326 if (!btf->raw_data) { 1327 err = -ENOMEM; 1328 goto done; 1329 } 1330 memcpy(btf->raw_data, data, size); 1331 } 1332 1333 btf->raw_size = size; 1334 1335 err = btf_parse_hdr(btf); 1336 if (err) 1337 goto done; 1338 1339 btf->strs_data = btf->raw_data + btf->hdr.hdr_len + btf->hdr.str_off; 1340 btf->types_data = btf->raw_data + btf->hdr.hdr_len + btf->hdr.type_off; 1341 1342 err = btf_parse_str_sec(btf); 1343 err = err ?: btf_parse_layout_sec(btf); 1344 err = err ?: btf_parse_type_sec(btf); 1345 err = err ?: btf_sanity_check(btf); 1346 if (err) 1347 goto done; 1348 btf_check_sorted(btf); 1349 1350 done: 1351 if (err) { 1352 btf__free(btf); 1353 return ERR_PTR(err); 1354 } 1355 1356 return btf; 1357 } 1358 1359 struct btf *btf__new(const void *data, __u32 size) 1360 { 1361 return libbpf_ptr(btf_new(data, size, NULL, false)); 1362 } 1363 1364 struct btf *btf__new_split(const void *data, __u32 size, struct btf *base_btf) 1365 { 1366 return libbpf_ptr(btf_new(data, size, base_btf, false)); 1367 } 1368 1369 struct btf_elf_secs { 1370 Elf_Data *btf_data; 1371 Elf_Data *btf_ext_data; 1372 Elf_Data *btf_base_data; 1373 }; 1374 1375 static int btf_find_elf_sections(Elf *elf, const char *path, struct btf_elf_secs *secs) 1376 { 1377 Elf_Scn *scn = NULL; 1378 Elf_Data *data; 1379 GElf_Ehdr ehdr; 1380 size_t shstrndx; 1381 int idx = 0; 1382 1383 if (!gelf_getehdr(elf, &ehdr)) { 1384 pr_warn("failed to get EHDR from %s\n", path); 1385 goto err; 1386 } 1387 1388 if (elf_getshdrstrndx(elf, &shstrndx)) { 1389 pr_warn("failed to get section names section index for %s\n", 1390 path); 1391 goto err; 1392 } 1393 1394 if (!elf_rawdata(elf_getscn(elf, shstrndx), NULL)) { 1395 pr_warn("failed to get e_shstrndx from %s\n", path); 1396 goto err; 1397 } 1398 1399 while ((scn = elf_nextscn(elf, scn)) != NULL) { 1400 Elf_Data **field; 1401 GElf_Shdr sh; 1402 char *name; 1403 1404 idx++; 1405 if (gelf_getshdr(scn, &sh) != &sh) { 1406 pr_warn("failed to get section(%d) header from %s\n", 1407 idx, path); 1408 goto err; 1409 } 1410 name = elf_strptr(elf, shstrndx, sh.sh_name); 1411 if (!name) { 1412 pr_warn("failed to get section(%d) name from %s\n", 1413 idx, path); 1414 goto err; 1415 } 1416 1417 if (strcmp(name, BTF_ELF_SEC) == 0) 1418 field = &secs->btf_data; 1419 else if (strcmp(name, BTF_EXT_ELF_SEC) == 0) 1420 field = &secs->btf_ext_data; 1421 else if (strcmp(name, BTF_BASE_ELF_SEC) == 0) 1422 field = &secs->btf_base_data; 1423 else 1424 continue; 1425 1426 if (sh.sh_type != SHT_PROGBITS) { 1427 pr_warn("unexpected section type (%u) of section(%d, %s) from %s\n", 1428 sh.sh_type, idx, name, path); 1429 goto err; 1430 } 1431 1432 data = elf_getdata(scn, 0); 1433 if (!data) { 1434 pr_warn("failed to get section(%d, %s) data from %s\n", 1435 idx, name, path); 1436 goto err; 1437 } 1438 *field = data; 1439 } 1440 1441 return 0; 1442 1443 err: 1444 return -LIBBPF_ERRNO__FORMAT; 1445 } 1446 1447 static struct btf *btf_parse_elf(const char *path, struct btf *base_btf, 1448 struct btf_ext **btf_ext) 1449 { 1450 struct btf_elf_secs secs = {}; 1451 struct btf *dist_base_btf = NULL; 1452 struct btf *btf = NULL; 1453 int err = 0, fd = -1; 1454 Elf *elf = NULL; 1455 1456 if (elf_version(EV_CURRENT) == EV_NONE) { 1457 pr_warn("failed to init libelf for %s\n", path); 1458 return ERR_PTR(-LIBBPF_ERRNO__LIBELF); 1459 } 1460 1461 fd = open(path, O_RDONLY | O_CLOEXEC); 1462 if (fd < 0) { 1463 err = -errno; 1464 pr_warn("failed to open %s: %s\n", path, errstr(err)); 1465 return ERR_PTR(err); 1466 } 1467 1468 elf = elf_begin(fd, ELF_C_READ, NULL); 1469 if (!elf) { 1470 err = -LIBBPF_ERRNO__FORMAT; 1471 pr_warn("failed to open %s as ELF file\n", path); 1472 goto done; 1473 } 1474 1475 err = btf_find_elf_sections(elf, path, &secs); 1476 if (err) 1477 goto done; 1478 1479 if (!secs.btf_data) { 1480 pr_warn("failed to find '%s' ELF section in %s\n", BTF_ELF_SEC, path); 1481 err = -ENODATA; 1482 goto done; 1483 } 1484 1485 if (secs.btf_base_data) { 1486 dist_base_btf = btf_new(secs.btf_base_data->d_buf, secs.btf_base_data->d_size, 1487 NULL, false); 1488 if (IS_ERR(dist_base_btf)) { 1489 err = PTR_ERR(dist_base_btf); 1490 dist_base_btf = NULL; 1491 goto done; 1492 } 1493 } 1494 1495 btf = btf_new(secs.btf_data->d_buf, secs.btf_data->d_size, 1496 dist_base_btf ?: base_btf, false); 1497 if (IS_ERR(btf)) { 1498 err = PTR_ERR(btf); 1499 goto done; 1500 } 1501 if (dist_base_btf && base_btf) { 1502 err = btf__relocate(btf, base_btf); 1503 if (err) 1504 goto done; 1505 btf__free(dist_base_btf); 1506 dist_base_btf = NULL; 1507 } 1508 1509 switch (gelf_getclass(elf)) { 1510 case ELFCLASS32: 1511 btf__set_pointer_size(btf, 4); 1512 break; 1513 case ELFCLASS64: 1514 btf__set_pointer_size(btf, 8); 1515 break; 1516 default: 1517 pr_warn("failed to get ELF class (bitness) for %s\n", path); 1518 break; 1519 } 1520 1521 if (btf_ext && secs.btf_ext_data) { 1522 *btf_ext = btf_ext__new(secs.btf_ext_data->d_buf, secs.btf_ext_data->d_size); 1523 if (!*btf_ext) { 1524 err = -errno; 1525 goto done; 1526 } 1527 } else if (btf_ext) { 1528 *btf_ext = NULL; 1529 } 1530 1531 if (dist_base_btf) 1532 btf->owns_base = true; 1533 done: 1534 if (elf) 1535 elf_end(elf); 1536 close(fd); 1537 1538 if (!err) 1539 return btf; 1540 1541 if (btf_ext) 1542 btf_ext__free(*btf_ext); 1543 btf__free(dist_base_btf); 1544 btf__free(btf); 1545 1546 return ERR_PTR(err); 1547 } 1548 1549 struct btf *btf__parse_elf(const char *path, struct btf_ext **btf_ext) 1550 { 1551 return libbpf_ptr(btf_parse_elf(path, NULL, btf_ext)); 1552 } 1553 1554 struct btf *btf__parse_elf_split(const char *path, struct btf *base_btf) 1555 { 1556 return libbpf_ptr(btf_parse_elf(path, base_btf, NULL)); 1557 } 1558 1559 static struct btf *btf_parse_raw(const char *path, struct btf *base_btf) 1560 { 1561 struct btf *btf = NULL; 1562 void *data = NULL; 1563 FILE *f = NULL; 1564 __u16 magic; 1565 int err = 0; 1566 long sz; 1567 1568 f = fopen(path, "rbe"); 1569 if (!f) { 1570 err = -errno; 1571 goto err_out; 1572 } 1573 1574 /* check BTF magic */ 1575 if (fread(&magic, 1, sizeof(magic), f) < sizeof(magic)) { 1576 err = -EIO; 1577 goto err_out; 1578 } 1579 if (magic != BTF_MAGIC && magic != bswap_16(BTF_MAGIC)) { 1580 /* definitely not a raw BTF */ 1581 err = -EPROTO; 1582 goto err_out; 1583 } 1584 1585 /* get file size */ 1586 if (fseek(f, 0, SEEK_END)) { 1587 err = -errno; 1588 goto err_out; 1589 } 1590 sz = ftell(f); 1591 if (sz < 0) { 1592 err = -errno; 1593 goto err_out; 1594 } 1595 /* rewind to the start */ 1596 if (fseek(f, 0, SEEK_SET)) { 1597 err = -errno; 1598 goto err_out; 1599 } 1600 1601 /* pre-alloc memory and read all of BTF data */ 1602 data = malloc(sz); 1603 if (!data) { 1604 err = -ENOMEM; 1605 goto err_out; 1606 } 1607 if (fread(data, 1, sz, f) < sz) { 1608 err = -EIO; 1609 goto err_out; 1610 } 1611 1612 /* finally parse BTF data */ 1613 btf = btf_new(data, sz, base_btf, false); 1614 1615 err_out: 1616 free(data); 1617 if (f) 1618 fclose(f); 1619 return err ? ERR_PTR(err) : btf; 1620 } 1621 1622 struct btf *btf__parse_raw(const char *path) 1623 { 1624 return libbpf_ptr(btf_parse_raw(path, NULL)); 1625 } 1626 1627 struct btf *btf__parse_raw_split(const char *path, struct btf *base_btf) 1628 { 1629 return libbpf_ptr(btf_parse_raw(path, base_btf)); 1630 } 1631 1632 static struct btf *btf_parse_raw_mmap(const char *path, struct btf *base_btf) 1633 { 1634 struct stat st; 1635 void *data; 1636 struct btf *btf; 1637 int fd, err; 1638 1639 fd = open(path, O_RDONLY); 1640 if (fd < 0) 1641 return ERR_PTR(-errno); 1642 1643 if (fstat(fd, &st) < 0) { 1644 err = -errno; 1645 close(fd); 1646 return ERR_PTR(err); 1647 } 1648 1649 data = mmap(NULL, st.st_size, PROT_READ, MAP_PRIVATE, fd, 0); 1650 err = -errno; 1651 close(fd); 1652 1653 if (data == MAP_FAILED) 1654 return ERR_PTR(err); 1655 1656 btf = btf_new(data, st.st_size, base_btf, true); 1657 if (IS_ERR(btf)) 1658 munmap(data, st.st_size); 1659 1660 return btf; 1661 } 1662 1663 static struct btf *btf_parse(const char *path, struct btf *base_btf, struct btf_ext **btf_ext) 1664 { 1665 struct btf *btf; 1666 int err; 1667 1668 if (btf_ext) 1669 *btf_ext = NULL; 1670 1671 btf = btf_parse_raw(path, base_btf); 1672 err = libbpf_get_error(btf); 1673 if (!err) 1674 return btf; 1675 if (err != -EPROTO) 1676 return ERR_PTR(err); 1677 return btf_parse_elf(path, base_btf, btf_ext); 1678 } 1679 1680 struct btf *btf__parse(const char *path, struct btf_ext **btf_ext) 1681 { 1682 return libbpf_ptr(btf_parse(path, NULL, btf_ext)); 1683 } 1684 1685 struct btf *btf__parse_split(const char *path, struct btf *base_btf) 1686 { 1687 return libbpf_ptr(btf_parse(path, base_btf, NULL)); 1688 } 1689 1690 static void *btf_get_raw_data(const struct btf *btf, __u32 *size, bool swap_endian); 1691 1692 int btf_load_into_kernel(struct btf *btf, 1693 char *log_buf, size_t log_sz, __u32 log_level, 1694 int token_fd) 1695 { 1696 LIBBPF_OPTS(bpf_btf_load_opts, opts); 1697 __u32 buf_sz = 0, raw_size; 1698 char *buf = NULL, *tmp; 1699 void *raw_data; 1700 int err = 0; 1701 1702 if (btf->fd >= 0) 1703 return libbpf_err(-EEXIST); 1704 if (log_sz && !log_buf) 1705 return libbpf_err(-EINVAL); 1706 1707 /* cache native raw data representation */ 1708 raw_data = btf_get_raw_data(btf, &raw_size, false); 1709 if (!raw_data) { 1710 err = -ENOMEM; 1711 goto done; 1712 } 1713 btf->raw_size = raw_size; 1714 btf->raw_data = raw_data; 1715 1716 retry_load: 1717 /* if log_level is 0, we won't provide log_buf/log_size to the kernel, 1718 * initially. Only if BTF loading fails, we bump log_level to 1 and 1719 * retry, using either auto-allocated or custom log_buf. This way 1720 * non-NULL custom log_buf provides a buffer just in case, but hopes 1721 * for successful load and no need for log_buf. 1722 */ 1723 if (log_level) { 1724 /* if caller didn't provide custom log_buf, we'll keep 1725 * allocating our own progressively bigger buffers for BTF 1726 * verification log 1727 */ 1728 if (!log_buf) { 1729 buf_sz = max((__u32)BPF_LOG_BUF_SIZE, buf_sz * 2); 1730 tmp = realloc(buf, buf_sz); 1731 if (!tmp) { 1732 err = -ENOMEM; 1733 goto done; 1734 } 1735 buf = tmp; 1736 buf[0] = '\0'; 1737 } 1738 1739 opts.log_buf = log_buf ? log_buf : buf; 1740 opts.log_size = log_buf ? log_sz : buf_sz; 1741 opts.log_level = log_level; 1742 } 1743 1744 opts.token_fd = token_fd; 1745 if (token_fd) 1746 opts.btf_flags |= BPF_F_TOKEN_FD; 1747 1748 btf->fd = bpf_btf_load(raw_data, raw_size, &opts); 1749 if (btf->fd < 0) { 1750 /* time to turn on verbose mode and try again */ 1751 if (log_level == 0) { 1752 log_level = 1; 1753 goto retry_load; 1754 } 1755 /* only retry if caller didn't provide custom log_buf, but 1756 * make sure we can never overflow buf_sz 1757 */ 1758 if (!log_buf && errno == ENOSPC && buf_sz <= UINT_MAX / 2) 1759 goto retry_load; 1760 1761 err = -errno; 1762 pr_warn("BTF loading error: %s\n", errstr(err)); 1763 /* don't print out contents of custom log_buf */ 1764 if (!log_buf && buf[0]) 1765 pr_warn("-- BEGIN BTF LOAD LOG ---\n%s\n-- END BTF LOAD LOG --\n", buf); 1766 } 1767 1768 done: 1769 free(buf); 1770 return libbpf_err(err); 1771 } 1772 1773 int btf__load_into_kernel(struct btf *btf) 1774 { 1775 return btf_load_into_kernel(btf, NULL, 0, 0, 0); 1776 } 1777 1778 int btf__fd(const struct btf *btf) 1779 { 1780 return btf->fd; 1781 } 1782 1783 void btf__set_fd(struct btf *btf, int fd) 1784 { 1785 btf->fd = fd; 1786 } 1787 1788 static const void *btf_strs_data(const struct btf *btf) 1789 { 1790 return btf->strs_data ? btf->strs_data : strset__data(btf->strs_set); 1791 } 1792 1793 static void *btf_get_raw_data(const struct btf *btf, __u32 *size, bool swap_endian) 1794 { 1795 const struct btf_header *hdr = &btf->hdr; 1796 struct btf_type *t; 1797 void *data, *p; 1798 __u32 data_sz; 1799 int i; 1800 1801 data = swap_endian ? btf->raw_data_swapped : btf->raw_data; 1802 if (data) { 1803 *size = btf->raw_size; 1804 return data; 1805 } 1806 1807 data_sz = hdr->hdr_len + hdr->type_len + hdr->str_len; 1808 if (btf->layout) 1809 data_sz += hdr->layout_len; 1810 1811 data = calloc(1, data_sz); 1812 if (!data) 1813 return NULL; 1814 p = data; 1815 1816 memcpy(p, hdr, min((__u32)sizeof(struct btf_header), hdr->hdr_len)); 1817 if (swap_endian) 1818 btf_bswap_hdr(p, hdr->hdr_len); 1819 p += hdr->hdr_len; 1820 1821 memcpy(p, btf->types_data, hdr->type_len); 1822 if (swap_endian) { 1823 for (i = 0; i < btf->nr_types; i++) { 1824 t = p + btf->type_offs[i]; 1825 /* btf_bswap_type_rest() relies on native t->info, so 1826 * we swap base type info after we swapped all the 1827 * additional information 1828 */ 1829 if (btf_bswap_type_rest(t)) 1830 goto err_out; 1831 btf_bswap_type_base(t); 1832 } 1833 } 1834 p += hdr->type_len; 1835 1836 if (btf->layout) { 1837 memcpy(p, btf->layout, hdr->layout_len); 1838 if (swap_endian) { 1839 struct btf_layout *l, *end = p + hdr->layout_len; 1840 1841 for (l = p; l < end ; l++) 1842 l->flags = bswap_16(l->flags); 1843 } 1844 p += hdr->layout_len; 1845 } 1846 1847 memcpy(p, btf_strs_data(btf), hdr->str_len); 1848 1849 *size = data_sz; 1850 return data; 1851 err_out: 1852 free(data); 1853 return NULL; 1854 } 1855 1856 const void *btf__raw_data(const struct btf *btf_ro, __u32 *size) 1857 { 1858 struct btf *btf = (struct btf *)btf_ro; 1859 __u32 data_sz; 1860 void *data; 1861 1862 data = btf_get_raw_data(btf, &data_sz, btf->swapped_endian); 1863 if (!data) 1864 return errno = ENOMEM, NULL; 1865 1866 btf->raw_size = data_sz; 1867 if (btf->swapped_endian) 1868 btf->raw_data_swapped = data; 1869 else 1870 btf->raw_data = data; 1871 *size = data_sz; 1872 return data; 1873 } 1874 1875 __attribute__((alias("btf__raw_data"))) 1876 const void *btf__get_raw_data(const struct btf *btf, __u32 *size); 1877 1878 const char *btf__str_by_offset(const struct btf *btf, __u32 offset) 1879 { 1880 if (offset < btf->start_str_off) 1881 return btf__str_by_offset(btf->base_btf, offset); 1882 else if (offset - btf->start_str_off < btf->hdr.str_len) 1883 return btf_strs_data(btf) + (offset - btf->start_str_off); 1884 else 1885 return errno = EINVAL, NULL; 1886 } 1887 1888 const char *btf__name_by_offset(const struct btf *btf, __u32 offset) 1889 { 1890 return btf__str_by_offset(btf, offset); 1891 } 1892 1893 struct btf *btf_get_from_fd(int btf_fd, struct btf *base_btf) 1894 { 1895 struct bpf_btf_info btf_info; 1896 __u32 len = sizeof(btf_info); 1897 __u32 last_size; 1898 struct btf *btf; 1899 void *ptr; 1900 int err; 1901 1902 /* we won't know btf_size until we call bpf_btf_get_info_by_fd(). so 1903 * let's start with a sane default - 4KiB here - and resize it only if 1904 * bpf_btf_get_info_by_fd() needs a bigger buffer. 1905 */ 1906 last_size = 4096; 1907 ptr = malloc(last_size); 1908 if (!ptr) 1909 return ERR_PTR(-ENOMEM); 1910 1911 memset(&btf_info, 0, sizeof(btf_info)); 1912 btf_info.btf = ptr_to_u64(ptr); 1913 btf_info.btf_size = last_size; 1914 err = bpf_btf_get_info_by_fd(btf_fd, &btf_info, &len); 1915 1916 if (!err && btf_info.btf_size > last_size) { 1917 void *temp_ptr; 1918 1919 last_size = btf_info.btf_size; 1920 temp_ptr = realloc(ptr, last_size); 1921 if (!temp_ptr) { 1922 btf = ERR_PTR(-ENOMEM); 1923 goto exit_free; 1924 } 1925 ptr = temp_ptr; 1926 1927 len = sizeof(btf_info); 1928 memset(&btf_info, 0, sizeof(btf_info)); 1929 btf_info.btf = ptr_to_u64(ptr); 1930 btf_info.btf_size = last_size; 1931 1932 err = bpf_btf_get_info_by_fd(btf_fd, &btf_info, &len); 1933 } 1934 1935 if (err || btf_info.btf_size > last_size) { 1936 btf = err ? ERR_PTR(-errno) : ERR_PTR(-E2BIG); 1937 goto exit_free; 1938 } 1939 1940 btf = btf_new(ptr, btf_info.btf_size, base_btf, false); 1941 1942 exit_free: 1943 free(ptr); 1944 return btf; 1945 } 1946 1947 struct btf *btf_load_from_kernel(__u32 id, struct btf *base_btf, int token_fd) 1948 { 1949 struct btf *btf; 1950 int btf_fd; 1951 LIBBPF_OPTS(bpf_get_fd_by_id_opts, opts); 1952 1953 if (token_fd) { 1954 opts.open_flags |= BPF_F_TOKEN_FD; 1955 opts.token_fd = token_fd; 1956 } 1957 1958 btf_fd = bpf_btf_get_fd_by_id_opts(id, &opts); 1959 if (btf_fd < 0) 1960 return libbpf_err_ptr(-errno); 1961 1962 btf = btf_get_from_fd(btf_fd, base_btf); 1963 close(btf_fd); 1964 1965 return libbpf_ptr(btf); 1966 } 1967 1968 struct btf *btf__load_from_kernel_by_id_split(__u32 id, struct btf *base_btf) 1969 { 1970 return btf_load_from_kernel(id, base_btf, 0); 1971 } 1972 1973 struct btf *btf__load_from_kernel_by_id(__u32 id) 1974 { 1975 return btf__load_from_kernel_by_id_split(id, NULL); 1976 } 1977 1978 static void btf_invalidate_raw_data(struct btf *btf) 1979 { 1980 if (btf->raw_data) 1981 btf_free_raw_data(btf); 1982 if (btf->raw_data_swapped) { 1983 free(btf->raw_data_swapped); 1984 btf->raw_data_swapped = NULL; 1985 } 1986 btf->named_start_id = 0; 1987 } 1988 1989 /* Ensure BTF is ready to be modified (by splitting into a three memory 1990 * regions for types, strings and layout. Also invalidate cached 1991 * raw_data, if any. 1992 */ 1993 static int btf_ensure_modifiable(struct btf *btf) 1994 { 1995 void *types, *layout = NULL; 1996 struct strset *set = NULL; 1997 int err = -ENOMEM; 1998 1999 if (btf_is_modifiable(btf)) { 2000 /* any BTF modification invalidates raw_data */ 2001 btf_invalidate_raw_data(btf); 2002 return 0; 2003 } 2004 2005 if (btf->has_hdr_extra) { 2006 /* Additional BTF header data was found; not safe to modify. */ 2007 return -EOPNOTSUPP; 2008 } 2009 2010 /* split raw data into memory regions; btf->hdr is done already. */ 2011 types = malloc(btf->hdr.type_len); 2012 if (!types) 2013 goto err_out; 2014 memcpy(types, btf->types_data, btf->hdr.type_len); 2015 2016 if (btf->hdr.layout_len) { 2017 layout = malloc(btf->hdr.layout_len); 2018 if (!layout) 2019 goto err_out; 2020 memcpy(layout, btf->raw_data + btf->hdr.hdr_len + btf->hdr.layout_off, 2021 btf->hdr.layout_len); 2022 } 2023 2024 /* build lookup index for all strings */ 2025 set = strset__new(BTF_MAX_STR_OFFSET, btf->strs_data, btf->hdr.str_len); 2026 if (IS_ERR(set)) { 2027 err = PTR_ERR(set); 2028 goto err_out; 2029 } 2030 2031 /* only when everything was successful, update internal state */ 2032 btf->types_data = types; 2033 btf->types_data_cap = btf->hdr.type_len; 2034 btf->strs_data = NULL; 2035 btf->strs_set = set; 2036 if (layout) 2037 btf->layout = layout; 2038 /* if BTF was created from scratch, all strings are guaranteed to be 2039 * unique and deduplicated 2040 */ 2041 if (btf->hdr.str_len == 0) 2042 btf->strs_deduped = true; 2043 if (!btf->base_btf && btf->hdr.str_len == 1) 2044 btf->strs_deduped = true; 2045 2046 /* invalidate raw_data representation */ 2047 btf_invalidate_raw_data(btf); 2048 2049 btf->modifiable = true; 2050 2051 return 0; 2052 2053 err_out: 2054 strset__free(set); 2055 free(types); 2056 free(layout); 2057 return err; 2058 } 2059 2060 /* Find an offset in BTF string section that corresponds to a given string *s*. 2061 * Returns: 2062 * - >0 offset into string section, if string is found; 2063 * - -ENOENT, if string is not in the string section; 2064 * - <0, on any other error. 2065 */ 2066 int btf__find_str(struct btf *btf, const char *s) 2067 { 2068 int off; 2069 int err; 2070 2071 if (btf->base_btf) { 2072 off = btf__find_str(btf->base_btf, s); 2073 if (off != -ENOENT) 2074 return off; 2075 } 2076 2077 /* BTF needs to be in a modifiable state to build string lookup index */ 2078 err = btf_ensure_modifiable(btf); 2079 if (err) 2080 return libbpf_err(err); 2081 2082 off = strset__find_str(btf->strs_set, s); 2083 if (off < 0) 2084 return libbpf_err(off); 2085 2086 return btf->start_str_off + off; 2087 } 2088 2089 /* Add a string s to the BTF string section. 2090 * Returns: 2091 * - > 0 offset into string section, on success; 2092 * - < 0, on error. 2093 */ 2094 int btf__add_str(struct btf *btf, const char *s) 2095 { 2096 int off; 2097 int err; 2098 2099 if (btf->base_btf) { 2100 off = btf__find_str(btf->base_btf, s); 2101 if (off != -ENOENT) 2102 return off; 2103 } 2104 2105 err = btf_ensure_modifiable(btf); 2106 if (err) 2107 return libbpf_err(err); 2108 2109 off = strset__add_str(btf->strs_set, s); 2110 if (off < 0) 2111 return libbpf_err(off); 2112 2113 btf->hdr.str_len = strset__data_size(btf->strs_set); 2114 2115 return btf->start_str_off + off; 2116 } 2117 2118 static void *btf_add_type_mem(struct btf *btf, size_t add_sz) 2119 { 2120 return libbpf_add_mem(&btf->types_data, &btf->types_data_cap, 1, 2121 btf->hdr.type_len, UINT_MAX, add_sz); 2122 } 2123 2124 static int btf_type_inc_vlen(struct btf_type *t) 2125 { 2126 if (btf_vlen(t) == BTF_MAX_VLEN) 2127 return -ENOSPC; 2128 t->info = btf_type_info(btf_kind(t), btf_vlen(t) + 1, btf_kflag(t)); 2129 return 0; 2130 } 2131 2132 static void btf_hdr_update_type_len(struct btf *btf, int new_len) 2133 { 2134 btf->hdr.type_len = new_len; 2135 if (btf->layout) { 2136 btf->hdr.layout_off = btf->hdr.type_off + new_len; 2137 btf->hdr.str_off = btf->hdr.layout_off + btf->hdr.layout_len; 2138 } else { 2139 btf->hdr.str_off = btf->hdr.type_off + new_len; 2140 } 2141 } 2142 2143 static void btf_hdr_update_str_len(struct btf *btf, int new_len) 2144 { 2145 btf->hdr.str_len = new_len; 2146 } 2147 2148 static int btf_commit_type(struct btf *btf, int data_sz) 2149 { 2150 int err; 2151 2152 err = btf_add_type_idx_entry(btf, btf->hdr.type_len); 2153 if (err) 2154 return libbpf_err(err); 2155 2156 btf_hdr_update_type_len(btf, btf->hdr.type_len + data_sz); 2157 btf->nr_types++; 2158 return btf->start_id + btf->nr_types - 1; 2159 } 2160 2161 struct btf_pipe { 2162 const struct btf *src; 2163 struct btf *dst; 2164 struct hashmap *str_off_map; /* map string offsets from src to dst */ 2165 }; 2166 2167 static int btf_rewrite_str(struct btf_pipe *p, __u32 *str_off) 2168 { 2169 long mapped_off; 2170 int off, err; 2171 2172 if (!*str_off) /* nothing to do for empty strings */ 2173 return 0; 2174 2175 if (p->str_off_map && 2176 hashmap__find(p->str_off_map, *str_off, &mapped_off)) { 2177 *str_off = mapped_off; 2178 return 0; 2179 } 2180 2181 off = btf__add_str(p->dst, btf__str_by_offset(p->src, *str_off)); 2182 if (off < 0) 2183 return off; 2184 2185 /* Remember string mapping from src to dst. It avoids 2186 * performing expensive string comparisons. 2187 */ 2188 if (p->str_off_map) { 2189 err = hashmap__append(p->str_off_map, *str_off, off); 2190 if (err) 2191 return err; 2192 } 2193 2194 *str_off = off; 2195 return 0; 2196 } 2197 2198 static int btf_add_type(struct btf_pipe *p, const struct btf_type *src_type) 2199 { 2200 struct btf_field_iter it; 2201 struct btf_type *t; 2202 __u32 *str_off; 2203 int sz, err; 2204 2205 sz = btf_type_size(p->src, src_type); 2206 if (sz < 0) 2207 return libbpf_err(sz); 2208 2209 /* deconstruct BTF, if necessary, and invalidate raw_data */ 2210 err = btf_ensure_modifiable(p->dst); 2211 if (err) 2212 return libbpf_err(err); 2213 2214 t = btf_add_type_mem(p->dst, sz); 2215 if (!t) 2216 return libbpf_err(-ENOMEM); 2217 2218 memcpy(t, src_type, sz); 2219 2220 err = btf_field_iter_init(&it, t, BTF_FIELD_ITER_STRS); 2221 if (err) 2222 return libbpf_err(err); 2223 2224 while ((str_off = btf_field_iter_next(&it))) { 2225 err = btf_rewrite_str(p, str_off); 2226 if (err) 2227 return libbpf_err(err); 2228 } 2229 2230 return btf_commit_type(p->dst, sz); 2231 } 2232 2233 int btf__add_type(struct btf *btf, const struct btf *src_btf, const struct btf_type *src_type) 2234 { 2235 struct btf_pipe p = { .src = src_btf, .dst = btf }; 2236 2237 return btf_add_type(&p, src_type); 2238 } 2239 2240 static size_t btf_dedup_identity_hash_fn(long key, void *ctx); 2241 static bool btf_dedup_equal_fn(long k1, long k2, void *ctx); 2242 2243 int btf__add_btf(struct btf *btf, const struct btf *src_btf) 2244 { 2245 struct btf_pipe p = { .src = src_btf, .dst = btf }; 2246 int data_sz, sz, cnt, i, err, old_strs_len; 2247 __u32 src_start_id; 2248 __u32 *off; 2249 void *t; 2250 2251 /* 2252 * When appending split BTF, the destination must share the same base 2253 * BTF so that base type ID references remain valid. 2254 */ 2255 if (src_btf->base_btf && src_btf->base_btf != btf->base_btf) 2256 return libbpf_err(-EOPNOTSUPP); 2257 2258 src_start_id = src_btf->base_btf ? btf__type_cnt(src_btf->base_btf) : 1; 2259 2260 /* deconstruct BTF, if necessary, and invalidate raw_data */ 2261 err = btf_ensure_modifiable(btf); 2262 if (err) 2263 return libbpf_err(err); 2264 2265 /* remember original strings section size if we have to roll back 2266 * partial strings section changes 2267 */ 2268 old_strs_len = btf->hdr.str_len; 2269 2270 data_sz = src_btf->hdr.type_len; 2271 cnt = src_btf->nr_types; 2272 2273 /* pre-allocate enough memory for new types */ 2274 t = btf_add_type_mem(btf, data_sz); 2275 if (!t) 2276 return libbpf_err(-ENOMEM); 2277 2278 /* pre-allocate enough memory for type offset index for new types */ 2279 off = btf_add_type_offs_mem(btf, cnt); 2280 if (!off) 2281 return libbpf_err(-ENOMEM); 2282 2283 /* Map the string offsets from src_btf to the offsets from btf to improve performance */ 2284 p.str_off_map = hashmap__new(btf_dedup_identity_hash_fn, btf_dedup_equal_fn, NULL); 2285 if (IS_ERR(p.str_off_map)) 2286 return libbpf_err(-ENOMEM); 2287 2288 /* bulk copy types data for all types from src_btf */ 2289 memcpy(t, src_btf->types_data, data_sz); 2290 2291 for (i = 0; i < cnt; i++) { 2292 struct btf_field_iter it; 2293 __u32 *type_id, *str_off; 2294 2295 sz = btf_type_size(src_btf, t); 2296 if (sz < 0) { 2297 /* unlikely, has to be corrupted src_btf */ 2298 err = sz; 2299 goto err_out; 2300 } 2301 2302 /* fill out type ID to type offset mapping for lookups by type ID */ 2303 *off = t - btf->types_data; 2304 2305 /* add, dedup, and remap strings referenced by this BTF type */ 2306 err = btf_field_iter_init(&it, t, BTF_FIELD_ITER_STRS); 2307 if (err) 2308 goto err_out; 2309 while ((str_off = btf_field_iter_next(&it))) { 2310 /* don't remap strings from shared base BTF */ 2311 if (*str_off < src_btf->start_str_off) 2312 continue; 2313 err = btf_rewrite_str(&p, str_off); 2314 if (err) 2315 goto err_out; 2316 } 2317 2318 /* remap all type IDs referenced from this BTF type */ 2319 err = btf_field_iter_init(&it, t, BTF_FIELD_ITER_IDS); 2320 if (err) 2321 goto err_out; 2322 2323 while ((type_id = btf_field_iter_next(&it))) { 2324 if (!*type_id) /* nothing to do for VOID references */ 2325 continue; 2326 2327 /* don't remap types from shared base BTF */ 2328 if (*type_id < src_start_id) 2329 continue; 2330 2331 *type_id += btf->start_id + btf->nr_types - src_start_id; 2332 } 2333 2334 /* go to next type data and type offset index entry */ 2335 t += sz; 2336 off++; 2337 } 2338 2339 /* Up until now any of the copied type data was effectively invisible, 2340 * so if we exited early before this point due to error, BTF would be 2341 * effectively unmodified. There would be extra internal memory 2342 * pre-allocated, but it would not be available for querying. But now 2343 * that we've copied and rewritten all the data successfully, we can 2344 * update type count and various internal offsets and sizes to 2345 * "commit" the changes and made them visible to the outside world. 2346 */ 2347 btf_hdr_update_type_len(btf, btf->hdr.type_len + data_sz); 2348 btf->nr_types += cnt; 2349 2350 hashmap__free(p.str_off_map); 2351 2352 /* return type ID of the first added BTF type */ 2353 return btf->start_id + btf->nr_types - cnt; 2354 err_out: 2355 /* zero out preallocated memory as if it was just allocated with 2356 * libbpf_add_mem() 2357 */ 2358 memset(btf->types_data + btf->hdr.type_len, 0, data_sz); 2359 if (btf->strs_data) 2360 memset(btf->strs_data + old_strs_len, 0, btf->hdr.str_len - old_strs_len); 2361 2362 /* and now restore original strings section size; types data size 2363 * wasn't modified, so doesn't need restoring, see big comment above 2364 */ 2365 btf_hdr_update_str_len(btf, old_strs_len); 2366 2367 hashmap__free(p.str_off_map); 2368 2369 return libbpf_err(err); 2370 } 2371 2372 /* 2373 * Append new BTF_KIND_INT type with: 2374 * - *name* - non-empty, non-NULL type name; 2375 * - *sz* - power-of-2 (1, 2, 4, ..) size of the type, in bytes; 2376 * - encoding is a combination of BTF_INT_SIGNED, BTF_INT_CHAR, BTF_INT_BOOL. 2377 * Returns: 2378 * - >0, type ID of newly added BTF type; 2379 * - <0, on error. 2380 */ 2381 int btf__add_int(struct btf *btf, const char *name, size_t byte_sz, int encoding) 2382 { 2383 struct btf_type *t; 2384 int sz, name_off; 2385 int err; 2386 2387 /* non-empty name */ 2388 if (str_is_empty(name)) 2389 return libbpf_err(-EINVAL); 2390 /* byte_sz must be power of 2 */ 2391 if (!byte_sz || (byte_sz & (byte_sz - 1)) || byte_sz > 16) 2392 return libbpf_err(-EINVAL); 2393 if (encoding & ~(BTF_INT_SIGNED | BTF_INT_CHAR | BTF_INT_BOOL)) 2394 return libbpf_err(-EINVAL); 2395 2396 /* deconstruct BTF, if necessary, and invalidate raw_data */ 2397 err = btf_ensure_modifiable(btf); 2398 if (err) 2399 return libbpf_err(err); 2400 2401 sz = sizeof(struct btf_type) + sizeof(int); 2402 t = btf_add_type_mem(btf, sz); 2403 if (!t) 2404 return libbpf_err(-ENOMEM); 2405 2406 /* if something goes wrong later, we might end up with an extra string, 2407 * but that shouldn't be a problem, because BTF can't be constructed 2408 * completely anyway and will most probably be just discarded 2409 */ 2410 name_off = btf__add_str(btf, name); 2411 if (name_off < 0) 2412 return name_off; 2413 2414 t->name_off = name_off; 2415 t->info = btf_type_info(BTF_KIND_INT, 0, 0); 2416 t->size = byte_sz; 2417 /* set INT info, we don't allow setting legacy bit offset/size */ 2418 *(__u32 *)(t + 1) = (encoding << 24) | (byte_sz * 8); 2419 2420 return btf_commit_type(btf, sz); 2421 } 2422 2423 /* 2424 * Append new BTF_KIND_FLOAT type with: 2425 * - *name* - non-empty, non-NULL type name; 2426 * - *sz* - size of the type, in bytes; 2427 * Returns: 2428 * - >0, type ID of newly added BTF type; 2429 * - <0, on error. 2430 */ 2431 int btf__add_float(struct btf *btf, const char *name, size_t byte_sz) 2432 { 2433 struct btf_type *t; 2434 int sz, name_off; 2435 int err; 2436 2437 /* non-empty name */ 2438 if (str_is_empty(name)) 2439 return libbpf_err(-EINVAL); 2440 2441 /* byte_sz must be one of the explicitly allowed values */ 2442 if (byte_sz != 2 && byte_sz != 4 && byte_sz != 8 && byte_sz != 12 && 2443 byte_sz != 16) 2444 return libbpf_err(-EINVAL); 2445 2446 err = btf_ensure_modifiable(btf); 2447 if (err) 2448 return libbpf_err(err); 2449 2450 sz = sizeof(struct btf_type); 2451 t = btf_add_type_mem(btf, sz); 2452 if (!t) 2453 return libbpf_err(-ENOMEM); 2454 2455 name_off = btf__add_str(btf, name); 2456 if (name_off < 0) 2457 return name_off; 2458 2459 t->name_off = name_off; 2460 t->info = btf_type_info(BTF_KIND_FLOAT, 0, 0); 2461 t->size = byte_sz; 2462 2463 return btf_commit_type(btf, sz); 2464 } 2465 2466 /* it's completely legal to append BTF types with type IDs pointing forward to 2467 * types that haven't been appended yet, so we only make sure that id looks 2468 * sane, we can't guarantee that ID will always be valid 2469 */ 2470 static int validate_type_id(int id) 2471 { 2472 if (id < 0 || id > BTF_MAX_NR_TYPES) 2473 return -EINVAL; 2474 return 0; 2475 } 2476 2477 /* generic append function for PTR, TYPEDEF, CONST/VOLATILE/RESTRICT */ 2478 static int btf_add_ref_kind(struct btf *btf, int kind, const char *name, int ref_type_id, int kflag) 2479 { 2480 struct btf_type *t; 2481 int sz, name_off = 0; 2482 int err; 2483 2484 if (validate_type_id(ref_type_id)) 2485 return libbpf_err(-EINVAL); 2486 2487 err = btf_ensure_modifiable(btf); 2488 if (err) 2489 return libbpf_err(err); 2490 2491 sz = sizeof(struct btf_type); 2492 t = btf_add_type_mem(btf, sz); 2493 if (!t) 2494 return libbpf_err(-ENOMEM); 2495 2496 if (!str_is_empty(name)) { 2497 name_off = btf__add_str(btf, name); 2498 if (name_off < 0) 2499 return name_off; 2500 } 2501 2502 t->name_off = name_off; 2503 t->info = btf_type_info(kind, 0, kflag); 2504 t->type = ref_type_id; 2505 2506 return btf_commit_type(btf, sz); 2507 } 2508 2509 /* 2510 * Append new BTF_KIND_PTR type with: 2511 * - *ref_type_id* - referenced type ID, it might not exist yet; 2512 * Returns: 2513 * - >0, type ID of newly added BTF type; 2514 * - <0, on error. 2515 */ 2516 int btf__add_ptr(struct btf *btf, int ref_type_id) 2517 { 2518 return btf_add_ref_kind(btf, BTF_KIND_PTR, NULL, ref_type_id, 0); 2519 } 2520 2521 /* 2522 * Append new BTF_KIND_ARRAY type with: 2523 * - *index_type_id* - type ID of the type describing array index; 2524 * - *elem_type_id* - type ID of the type describing array element; 2525 * - *nr_elems* - the size of the array; 2526 * Returns: 2527 * - >0, type ID of newly added BTF type; 2528 * - <0, on error. 2529 */ 2530 int btf__add_array(struct btf *btf, int index_type_id, int elem_type_id, __u32 nr_elems) 2531 { 2532 struct btf_type *t; 2533 struct btf_array *a; 2534 int err; 2535 int sz; 2536 2537 if (validate_type_id(index_type_id) || validate_type_id(elem_type_id)) 2538 return libbpf_err(-EINVAL); 2539 2540 err = btf_ensure_modifiable(btf); 2541 if (err) 2542 return libbpf_err(err); 2543 2544 sz = sizeof(struct btf_type) + sizeof(struct btf_array); 2545 t = btf_add_type_mem(btf, sz); 2546 if (!t) 2547 return libbpf_err(-ENOMEM); 2548 2549 t->name_off = 0; 2550 t->info = btf_type_info(BTF_KIND_ARRAY, 0, 0); 2551 t->size = 0; 2552 2553 a = btf_array(t); 2554 a->type = elem_type_id; 2555 a->index_type = index_type_id; 2556 a->nelems = nr_elems; 2557 2558 return btf_commit_type(btf, sz); 2559 } 2560 2561 /* generic STRUCT/UNION append function */ 2562 static int btf_add_composite(struct btf *btf, int kind, const char *name, __u32 bytes_sz) 2563 { 2564 struct btf_type *t; 2565 int sz, name_off = 0; 2566 int err; 2567 2568 err = btf_ensure_modifiable(btf); 2569 if (err) 2570 return libbpf_err(err); 2571 2572 sz = sizeof(struct btf_type); 2573 t = btf_add_type_mem(btf, sz); 2574 if (!t) 2575 return libbpf_err(-ENOMEM); 2576 2577 if (!str_is_empty(name)) { 2578 name_off = btf__add_str(btf, name); 2579 if (name_off < 0) 2580 return name_off; 2581 } 2582 2583 /* start out with vlen=0 and no kflag; this will be adjusted when 2584 * adding each member 2585 */ 2586 t->name_off = name_off; 2587 t->info = btf_type_info(kind, 0, 0); 2588 t->size = bytes_sz; 2589 2590 return btf_commit_type(btf, sz); 2591 } 2592 2593 /* 2594 * Append new BTF_KIND_STRUCT type with: 2595 * - *name* - name of the struct, can be NULL or empty for anonymous structs; 2596 * - *byte_sz* - size of the struct, in bytes; 2597 * 2598 * Struct initially has no fields in it. Fields can be added by 2599 * btf__add_field() right after btf__add_struct() succeeds. 2600 * 2601 * Returns: 2602 * - >0, type ID of newly added BTF type; 2603 * - <0, on error. 2604 */ 2605 int btf__add_struct(struct btf *btf, const char *name, __u32 byte_sz) 2606 { 2607 return btf_add_composite(btf, BTF_KIND_STRUCT, name, byte_sz); 2608 } 2609 2610 /* 2611 * Append new BTF_KIND_UNION type with: 2612 * - *name* - name of the union, can be NULL or empty for anonymous union; 2613 * - *byte_sz* - size of the union, in bytes; 2614 * 2615 * Union initially has no fields in it. Fields can be added by 2616 * btf__add_field() right after btf__add_union() succeeds. All fields 2617 * should have *bit_offset* of 0. 2618 * 2619 * Returns: 2620 * - >0, type ID of newly added BTF type; 2621 * - <0, on error. 2622 */ 2623 int btf__add_union(struct btf *btf, const char *name, __u32 byte_sz) 2624 { 2625 return btf_add_composite(btf, BTF_KIND_UNION, name, byte_sz); 2626 } 2627 2628 static struct btf_type *btf_last_type(struct btf *btf) 2629 { 2630 return btf_type_by_id(btf, btf__type_cnt(btf) - 1); 2631 } 2632 2633 /* 2634 * Append new field for the current STRUCT/UNION type with: 2635 * - *name* - name of the field, can be NULL or empty for anonymous field; 2636 * - *type_id* - type ID for the type describing field type; 2637 * - *bit_offset* - bit offset of the start of the field within struct/union; 2638 * - *bit_size* - bit size of a bitfield, 0 for non-bitfield fields; 2639 * Returns: 2640 * - 0, on success; 2641 * - <0, on error. 2642 */ 2643 int btf__add_field(struct btf *btf, const char *name, int type_id, 2644 __u32 bit_offset, __u32 bit_size) 2645 { 2646 struct btf_type *t; 2647 struct btf_member *m; 2648 bool is_bitfield; 2649 int sz, name_off = 0; 2650 int err; 2651 2652 /* last type should be union/struct */ 2653 if (btf->nr_types == 0) 2654 return libbpf_err(-EINVAL); 2655 t = btf_last_type(btf); 2656 if (!btf_is_composite(t)) 2657 return libbpf_err(-EINVAL); 2658 if (btf_vlen(t) == BTF_MAX_VLEN) 2659 return libbpf_err(-ENOSPC); 2660 2661 if (validate_type_id(type_id)) 2662 return libbpf_err(-EINVAL); 2663 /* best-effort bit field offset/size enforcement */ 2664 is_bitfield = bit_size || (bit_offset % 8 != 0); 2665 if (is_bitfield && (bit_size == 0 || bit_size > 255 || bit_offset > 0xffffff)) 2666 return libbpf_err(-EINVAL); 2667 2668 /* only offset 0 is allowed for unions */ 2669 if (btf_is_union(t) && bit_offset) 2670 return libbpf_err(-EINVAL); 2671 2672 /* decompose and invalidate raw data */ 2673 err = btf_ensure_modifiable(btf); 2674 if (err) 2675 return libbpf_err(err); 2676 2677 sz = sizeof(struct btf_member); 2678 m = btf_add_type_mem(btf, sz); 2679 if (!m) 2680 return libbpf_err(-ENOMEM); 2681 2682 if (!str_is_empty(name)) { 2683 name_off = btf__add_str(btf, name); 2684 if (name_off < 0) 2685 return name_off; 2686 } 2687 2688 m->name_off = name_off; 2689 m->type = type_id; 2690 m->offset = bit_offset | (bit_size << 24); 2691 2692 /* btf_add_type_mem can invalidate t pointer */ 2693 t = btf_last_type(btf); 2694 2695 /* update parent type's vlen and kflag */ 2696 t->info = btf_type_info(btf_kind(t), btf_vlen(t) + 1, is_bitfield || btf_kflag(t)); 2697 2698 btf_hdr_update_type_len(btf, btf->hdr.type_len + sz); 2699 return 0; 2700 } 2701 2702 static int btf_add_enum_common(struct btf *btf, const char *name, __u32 byte_sz, 2703 bool is_signed, __u8 kind) 2704 { 2705 struct btf_type *t; 2706 int sz, name_off = 0; 2707 int err; 2708 2709 /* byte_sz must be power of 2 */ 2710 if (!byte_sz || (byte_sz & (byte_sz - 1)) || byte_sz > 8) 2711 return libbpf_err(-EINVAL); 2712 2713 err = btf_ensure_modifiable(btf); 2714 if (err) 2715 return libbpf_err(err); 2716 2717 sz = sizeof(struct btf_type); 2718 t = btf_add_type_mem(btf, sz); 2719 if (!t) 2720 return libbpf_err(-ENOMEM); 2721 2722 if (!str_is_empty(name)) { 2723 name_off = btf__add_str(btf, name); 2724 if (name_off < 0) 2725 return name_off; 2726 } 2727 2728 /* start out with vlen=0; it will be adjusted when adding enum values */ 2729 t->name_off = name_off; 2730 t->info = btf_type_info(kind, 0, is_signed); 2731 t->size = byte_sz; 2732 2733 return btf_commit_type(btf, sz); 2734 } 2735 2736 /* 2737 * Append new BTF_KIND_ENUM type with: 2738 * - *name* - name of the enum, can be NULL or empty for anonymous enums; 2739 * - *byte_sz* - size of the enum, in bytes. 2740 * 2741 * Enum initially has no enum values in it (and corresponds to enum forward 2742 * declaration). Enumerator values can be added by btf__add_enum_value() 2743 * immediately after btf__add_enum() succeeds. 2744 * 2745 * Returns: 2746 * - >0, type ID of newly added BTF type; 2747 * - <0, on error. 2748 */ 2749 int btf__add_enum(struct btf *btf, const char *name, __u32 byte_sz) 2750 { 2751 /* 2752 * set the signedness to be unsigned, it will change to signed 2753 * if any later enumerator is negative. 2754 */ 2755 return btf_add_enum_common(btf, name, byte_sz, false, BTF_KIND_ENUM); 2756 } 2757 2758 /* 2759 * Append new enum value for the current ENUM type with: 2760 * - *name* - name of the enumerator value, can't be NULL or empty; 2761 * - *value* - integer value corresponding to enum value *name*; 2762 * Returns: 2763 * - 0, on success; 2764 * - <0, on error. 2765 */ 2766 int btf__add_enum_value(struct btf *btf, const char *name, __s64 value) 2767 { 2768 struct btf_type *t; 2769 struct btf_enum *v; 2770 int sz, name_off; 2771 int err; 2772 2773 /* last type should be BTF_KIND_ENUM */ 2774 if (btf->nr_types == 0) 2775 return libbpf_err(-EINVAL); 2776 t = btf_last_type(btf); 2777 if (!btf_is_enum(t)) 2778 return libbpf_err(-EINVAL); 2779 2780 /* non-empty name */ 2781 if (str_is_empty(name)) 2782 return libbpf_err(-EINVAL); 2783 if (value < INT_MIN || value > UINT_MAX) 2784 return libbpf_err(-E2BIG); 2785 2786 /* decompose and invalidate raw data */ 2787 err = btf_ensure_modifiable(btf); 2788 if (err) 2789 return libbpf_err(err); 2790 2791 sz = sizeof(struct btf_enum); 2792 v = btf_add_type_mem(btf, sz); 2793 if (!v) 2794 return libbpf_err(-ENOMEM); 2795 2796 name_off = btf__add_str(btf, name); 2797 if (name_off < 0) 2798 return name_off; 2799 2800 v->name_off = name_off; 2801 v->val = value; 2802 2803 /* update parent type's vlen */ 2804 t = btf_last_type(btf); 2805 err = btf_type_inc_vlen(t); 2806 if (err) 2807 return libbpf_err(err); 2808 2809 /* if negative value, set signedness to signed */ 2810 if (value < 0) 2811 t->info = btf_type_info(btf_kind(t), btf_vlen(t), true); 2812 2813 btf_hdr_update_type_len(btf, btf->hdr.type_len + sz); 2814 return 0; 2815 } 2816 2817 /* 2818 * Append new BTF_KIND_ENUM64 type with: 2819 * - *name* - name of the enum, can be NULL or empty for anonymous enums; 2820 * - *byte_sz* - size of the enum, in bytes. 2821 * - *is_signed* - whether the enum values are signed or not; 2822 * 2823 * Enum initially has no enum values in it (and corresponds to enum forward 2824 * declaration). Enumerator values can be added by btf__add_enum64_value() 2825 * immediately after btf__add_enum64() succeeds. 2826 * 2827 * Returns: 2828 * - >0, type ID of newly added BTF type; 2829 * - <0, on error. 2830 */ 2831 int btf__add_enum64(struct btf *btf, const char *name, __u32 byte_sz, 2832 bool is_signed) 2833 { 2834 return btf_add_enum_common(btf, name, byte_sz, is_signed, 2835 BTF_KIND_ENUM64); 2836 } 2837 2838 /* 2839 * Append new enum value for the current ENUM64 type with: 2840 * - *name* - name of the enumerator value, can't be NULL or empty; 2841 * - *value* - integer value corresponding to enum value *name*; 2842 * Returns: 2843 * - 0, on success; 2844 * - <0, on error. 2845 */ 2846 int btf__add_enum64_value(struct btf *btf, const char *name, __u64 value) 2847 { 2848 struct btf_enum64 *v; 2849 struct btf_type *t; 2850 int sz, name_off; 2851 int err; 2852 2853 /* last type should be BTF_KIND_ENUM64 */ 2854 if (btf->nr_types == 0) 2855 return libbpf_err(-EINVAL); 2856 t = btf_last_type(btf); 2857 if (!btf_is_enum64(t)) 2858 return libbpf_err(-EINVAL); 2859 2860 /* non-empty name */ 2861 if (str_is_empty(name)) 2862 return libbpf_err(-EINVAL); 2863 2864 /* decompose and invalidate raw data */ 2865 err = btf_ensure_modifiable(btf); 2866 if (err) 2867 return libbpf_err(err); 2868 2869 sz = sizeof(struct btf_enum64); 2870 v = btf_add_type_mem(btf, sz); 2871 if (!v) 2872 return libbpf_err(-ENOMEM); 2873 2874 name_off = btf__add_str(btf, name); 2875 if (name_off < 0) 2876 return name_off; 2877 2878 v->name_off = name_off; 2879 v->val_lo32 = (__u32)value; 2880 v->val_hi32 = value >> 32; 2881 2882 /* update parent type's vlen */ 2883 t = btf_last_type(btf); 2884 err = btf_type_inc_vlen(t); 2885 if (err) 2886 return libbpf_err(err); 2887 2888 btf_hdr_update_type_len(btf, btf->hdr.type_len + sz); 2889 return 0; 2890 } 2891 2892 /* 2893 * Append new BTF_KIND_FWD type with: 2894 * - *name*, non-empty/non-NULL name; 2895 * - *fwd_kind*, kind of forward declaration, one of BTF_FWD_STRUCT, 2896 * BTF_FWD_UNION, or BTF_FWD_ENUM; 2897 * Returns: 2898 * - >0, type ID of newly added BTF type; 2899 * - <0, on error. 2900 */ 2901 int btf__add_fwd(struct btf *btf, const char *name, enum btf_fwd_kind fwd_kind) 2902 { 2903 if (str_is_empty(name)) 2904 return libbpf_err(-EINVAL); 2905 2906 switch (fwd_kind) { 2907 case BTF_FWD_STRUCT: 2908 case BTF_FWD_UNION: { 2909 struct btf_type *t; 2910 int id; 2911 2912 id = btf_add_ref_kind(btf, BTF_KIND_FWD, name, 0, 0); 2913 if (id <= 0) 2914 return id; 2915 t = btf_type_by_id(btf, id); 2916 t->info = btf_type_info(BTF_KIND_FWD, 0, fwd_kind == BTF_FWD_UNION); 2917 return id; 2918 } 2919 case BTF_FWD_ENUM: 2920 /* enum forward in BTF currently is just an enum with no enum 2921 * values; we also assume a standard 4-byte size for it 2922 */ 2923 return btf__add_enum(btf, name, sizeof(int)); 2924 default: 2925 return libbpf_err(-EINVAL); 2926 } 2927 } 2928 2929 /* 2930 * Append new BTF_KING_TYPEDEF type with: 2931 * - *name*, non-empty/non-NULL name; 2932 * - *ref_type_id* - referenced type ID, it might not exist yet; 2933 * Returns: 2934 * - >0, type ID of newly added BTF type; 2935 * - <0, on error. 2936 */ 2937 int btf__add_typedef(struct btf *btf, const char *name, int ref_type_id) 2938 { 2939 if (str_is_empty(name)) 2940 return libbpf_err(-EINVAL); 2941 2942 return btf_add_ref_kind(btf, BTF_KIND_TYPEDEF, name, ref_type_id, 0); 2943 } 2944 2945 /* 2946 * Append new BTF_KIND_VOLATILE type with: 2947 * - *ref_type_id* - referenced type ID, it might not exist yet; 2948 * Returns: 2949 * - >0, type ID of newly added BTF type; 2950 * - <0, on error. 2951 */ 2952 int btf__add_volatile(struct btf *btf, int ref_type_id) 2953 { 2954 return btf_add_ref_kind(btf, BTF_KIND_VOLATILE, NULL, ref_type_id, 0); 2955 } 2956 2957 /* 2958 * Append new BTF_KIND_CONST type with: 2959 * - *ref_type_id* - referenced type ID, it might not exist yet; 2960 * Returns: 2961 * - >0, type ID of newly added BTF type; 2962 * - <0, on error. 2963 */ 2964 int btf__add_const(struct btf *btf, int ref_type_id) 2965 { 2966 return btf_add_ref_kind(btf, BTF_KIND_CONST, NULL, ref_type_id, 0); 2967 } 2968 2969 /* 2970 * Append new BTF_KIND_RESTRICT type with: 2971 * - *ref_type_id* - referenced type ID, it might not exist yet; 2972 * Returns: 2973 * - >0, type ID of newly added BTF type; 2974 * - <0, on error. 2975 */ 2976 int btf__add_restrict(struct btf *btf, int ref_type_id) 2977 { 2978 return btf_add_ref_kind(btf, BTF_KIND_RESTRICT, NULL, ref_type_id, 0); 2979 } 2980 2981 /* 2982 * Append new BTF_KIND_TYPE_TAG type with: 2983 * - *value*, non-empty/non-NULL tag value; 2984 * - *ref_type_id* - referenced type ID, it might not exist yet; 2985 * Returns: 2986 * - >0, type ID of newly added BTF type; 2987 * - <0, on error. 2988 */ 2989 int btf__add_type_tag(struct btf *btf, const char *value, int ref_type_id) 2990 { 2991 if (str_is_empty(value)) 2992 return libbpf_err(-EINVAL); 2993 2994 return btf_add_ref_kind(btf, BTF_KIND_TYPE_TAG, value, ref_type_id, 0); 2995 } 2996 2997 /* 2998 * Append new BTF_KIND_TYPE_TAG type with: 2999 * - *value*, non-empty/non-NULL tag value; 3000 * - *ref_type_id* - referenced type ID, it might not exist yet; 3001 * Set info->kflag to 1, indicating this tag is an __attribute__ 3002 * Returns: 3003 * - >0, type ID of newly added BTF type; 3004 * - <0, on error. 3005 */ 3006 int btf__add_type_attr(struct btf *btf, const char *value, int ref_type_id) 3007 { 3008 if (str_is_empty(value)) 3009 return libbpf_err(-EINVAL); 3010 3011 return btf_add_ref_kind(btf, BTF_KIND_TYPE_TAG, value, ref_type_id, 1); 3012 } 3013 3014 /* 3015 * Append new BTF_KIND_FUNC type with: 3016 * - *name*, non-empty/non-NULL name; 3017 * - *proto_type_id* - FUNC_PROTO's type ID, it might not exist yet; 3018 * Returns: 3019 * - >0, type ID of newly added BTF type; 3020 * - <0, on error. 3021 */ 3022 int btf__add_func(struct btf *btf, const char *name, 3023 enum btf_func_linkage linkage, int proto_type_id) 3024 { 3025 int id; 3026 3027 if (str_is_empty(name)) 3028 return libbpf_err(-EINVAL); 3029 if (linkage != BTF_FUNC_STATIC && linkage != BTF_FUNC_GLOBAL && 3030 linkage != BTF_FUNC_EXTERN) 3031 return libbpf_err(-EINVAL); 3032 3033 id = btf_add_ref_kind(btf, BTF_KIND_FUNC, name, proto_type_id, 0); 3034 if (id > 0) { 3035 struct btf_type *t = btf_type_by_id(btf, id); 3036 3037 t->info = btf_type_info(BTF_KIND_FUNC, linkage, 0); 3038 } 3039 return libbpf_err(id); 3040 } 3041 3042 /* 3043 * Append new BTF_KIND_FUNC_PROTO with: 3044 * - *ret_type_id* - type ID for return result of a function. 3045 * 3046 * Function prototype initially has no arguments, but they can be added by 3047 * btf__add_func_param() one by one, immediately after 3048 * btf__add_func_proto() succeeded. 3049 * 3050 * Returns: 3051 * - >0, type ID of newly added BTF type; 3052 * - <0, on error. 3053 */ 3054 int btf__add_func_proto(struct btf *btf, int ret_type_id) 3055 { 3056 struct btf_type *t; 3057 int err; 3058 int sz; 3059 3060 if (validate_type_id(ret_type_id)) 3061 return libbpf_err(-EINVAL); 3062 3063 err = btf_ensure_modifiable(btf); 3064 if (err) 3065 return libbpf_err(err); 3066 3067 sz = sizeof(struct btf_type); 3068 t = btf_add_type_mem(btf, sz); 3069 if (!t) 3070 return libbpf_err(-ENOMEM); 3071 3072 /* start out with vlen=0; this will be adjusted when adding enum 3073 * values, if necessary 3074 */ 3075 t->name_off = 0; 3076 t->info = btf_type_info(BTF_KIND_FUNC_PROTO, 0, 0); 3077 t->type = ret_type_id; 3078 3079 return btf_commit_type(btf, sz); 3080 } 3081 3082 /* 3083 * Append new function parameter for current FUNC_PROTO type with: 3084 * - *name* - parameter name, can be NULL or empty; 3085 * - *type_id* - type ID describing the type of the parameter. 3086 * Returns: 3087 * - 0, on success; 3088 * - <0, on error. 3089 */ 3090 int btf__add_func_param(struct btf *btf, const char *name, int type_id) 3091 { 3092 struct btf_type *t; 3093 struct btf_param *p; 3094 int sz, name_off = 0; 3095 int err; 3096 3097 if (validate_type_id(type_id)) 3098 return libbpf_err(-EINVAL); 3099 3100 /* last type should be BTF_KIND_FUNC_PROTO */ 3101 if (btf->nr_types == 0) 3102 return libbpf_err(-EINVAL); 3103 t = btf_last_type(btf); 3104 if (!btf_is_func_proto(t)) 3105 return libbpf_err(-EINVAL); 3106 3107 /* decompose and invalidate raw data */ 3108 err = btf_ensure_modifiable(btf); 3109 if (err) 3110 return libbpf_err(err); 3111 3112 sz = sizeof(struct btf_param); 3113 p = btf_add_type_mem(btf, sz); 3114 if (!p) 3115 return libbpf_err(-ENOMEM); 3116 3117 if (!str_is_empty(name)) { 3118 name_off = btf__add_str(btf, name); 3119 if (name_off < 0) 3120 return name_off; 3121 } 3122 3123 p->name_off = name_off; 3124 p->type = type_id; 3125 3126 /* update parent type's vlen */ 3127 t = btf_last_type(btf); 3128 err = btf_type_inc_vlen(t); 3129 if (err) 3130 return libbpf_err(err); 3131 3132 btf_hdr_update_type_len(btf, btf->hdr.type_len + sz); 3133 return 0; 3134 } 3135 3136 /* 3137 * Append new BTF_KIND_VAR type with: 3138 * - *name* - non-empty/non-NULL name; 3139 * - *linkage* - variable linkage, one of BTF_VAR_STATIC, 3140 * BTF_VAR_GLOBAL_ALLOCATED, or BTF_VAR_GLOBAL_EXTERN; 3141 * - *type_id* - type ID of the type describing the type of the variable. 3142 * Returns: 3143 * - >0, type ID of newly added BTF type; 3144 * - <0, on error. 3145 */ 3146 int btf__add_var(struct btf *btf, const char *name, int linkage, int type_id) 3147 { 3148 struct btf_type *t; 3149 struct btf_var *v; 3150 int sz, name_off; 3151 int err; 3152 3153 /* non-empty name */ 3154 if (str_is_empty(name)) 3155 return libbpf_err(-EINVAL); 3156 if (linkage != BTF_VAR_STATIC && linkage != BTF_VAR_GLOBAL_ALLOCATED && 3157 linkage != BTF_VAR_GLOBAL_EXTERN) 3158 return libbpf_err(-EINVAL); 3159 if (validate_type_id(type_id)) 3160 return libbpf_err(-EINVAL); 3161 3162 /* deconstruct BTF, if necessary, and invalidate raw_data */ 3163 err = btf_ensure_modifiable(btf); 3164 if (err) 3165 return libbpf_err(err); 3166 3167 sz = sizeof(struct btf_type) + sizeof(struct btf_var); 3168 t = btf_add_type_mem(btf, sz); 3169 if (!t) 3170 return libbpf_err(-ENOMEM); 3171 3172 name_off = btf__add_str(btf, name); 3173 if (name_off < 0) 3174 return name_off; 3175 3176 t->name_off = name_off; 3177 t->info = btf_type_info(BTF_KIND_VAR, 0, 0); 3178 t->type = type_id; 3179 3180 v = btf_var(t); 3181 v->linkage = linkage; 3182 3183 return btf_commit_type(btf, sz); 3184 } 3185 3186 /* 3187 * Append new BTF_KIND_DATASEC type with: 3188 * - *name* - non-empty/non-NULL name; 3189 * - *byte_sz* - data section size, in bytes. 3190 * 3191 * Data section is initially empty. Variables info can be added with 3192 * btf__add_datasec_var_info() calls, after btf__add_datasec() succeeds. 3193 * 3194 * Returns: 3195 * - >0, type ID of newly added BTF type; 3196 * - <0, on error. 3197 */ 3198 int btf__add_datasec(struct btf *btf, const char *name, __u32 byte_sz) 3199 { 3200 struct btf_type *t; 3201 int sz, name_off; 3202 int err; 3203 3204 /* non-empty name */ 3205 if (str_is_empty(name)) 3206 return libbpf_err(-EINVAL); 3207 3208 err = btf_ensure_modifiable(btf); 3209 if (err) 3210 return libbpf_err(err); 3211 3212 sz = sizeof(struct btf_type); 3213 t = btf_add_type_mem(btf, sz); 3214 if (!t) 3215 return libbpf_err(-ENOMEM); 3216 3217 name_off = btf__add_str(btf, name); 3218 if (name_off < 0) 3219 return name_off; 3220 3221 /* start with vlen=0, which will be update as var_secinfos are added */ 3222 t->name_off = name_off; 3223 t->info = btf_type_info(BTF_KIND_DATASEC, 0, 0); 3224 t->size = byte_sz; 3225 3226 return btf_commit_type(btf, sz); 3227 } 3228 3229 /* 3230 * Append new data section variable information entry for current DATASEC type: 3231 * - *var_type_id* - type ID, describing type of the variable; 3232 * - *offset* - variable offset within data section, in bytes; 3233 * - *byte_sz* - variable size, in bytes. 3234 * 3235 * Returns: 3236 * - 0, on success; 3237 * - <0, on error. 3238 */ 3239 int btf__add_datasec_var_info(struct btf *btf, int var_type_id, __u32 offset, __u32 byte_sz) 3240 { 3241 struct btf_type *t; 3242 struct btf_var_secinfo *v; 3243 int err; 3244 int sz; 3245 3246 /* last type should be BTF_KIND_DATASEC */ 3247 if (btf->nr_types == 0) 3248 return libbpf_err(-EINVAL); 3249 t = btf_last_type(btf); 3250 if (!btf_is_datasec(t)) 3251 return libbpf_err(-EINVAL); 3252 3253 if (validate_type_id(var_type_id)) 3254 return libbpf_err(-EINVAL); 3255 3256 /* decompose and invalidate raw data */ 3257 err = btf_ensure_modifiable(btf); 3258 if (err) 3259 return libbpf_err(err); 3260 3261 sz = sizeof(struct btf_var_secinfo); 3262 v = btf_add_type_mem(btf, sz); 3263 if (!v) 3264 return libbpf_err(-ENOMEM); 3265 3266 v->type = var_type_id; 3267 v->offset = offset; 3268 v->size = byte_sz; 3269 3270 /* update parent type's vlen */ 3271 t = btf_last_type(btf); 3272 err = btf_type_inc_vlen(t); 3273 if (err) 3274 return libbpf_err(err); 3275 3276 btf_hdr_update_type_len(btf, btf->hdr.type_len + sz); 3277 return 0; 3278 } 3279 3280 static int btf_add_decl_tag(struct btf *btf, const char *value, int ref_type_id, 3281 int component_idx, int kflag) 3282 { 3283 struct btf_type *t; 3284 int sz, value_off; 3285 int err; 3286 3287 if (str_is_empty(value) || component_idx < -1) 3288 return libbpf_err(-EINVAL); 3289 3290 if (validate_type_id(ref_type_id)) 3291 return libbpf_err(-EINVAL); 3292 3293 err = btf_ensure_modifiable(btf); 3294 if (err) 3295 return libbpf_err(err); 3296 3297 sz = sizeof(struct btf_type) + sizeof(struct btf_decl_tag); 3298 t = btf_add_type_mem(btf, sz); 3299 if (!t) 3300 return libbpf_err(-ENOMEM); 3301 3302 value_off = btf__add_str(btf, value); 3303 if (value_off < 0) 3304 return value_off; 3305 3306 t->name_off = value_off; 3307 t->info = btf_type_info(BTF_KIND_DECL_TAG, 0, kflag); 3308 t->type = ref_type_id; 3309 btf_decl_tag(t)->component_idx = component_idx; 3310 3311 return btf_commit_type(btf, sz); 3312 } 3313 3314 /* 3315 * Append new BTF_KIND_DECL_TAG type with: 3316 * - *value* - non-empty/non-NULL string; 3317 * - *ref_type_id* - referenced type ID, it might not exist yet; 3318 * - *component_idx* - -1 for tagging reference type, otherwise struct/union 3319 * member or function argument index; 3320 * Returns: 3321 * - >0, type ID of newly added BTF type; 3322 * - <0, on error. 3323 */ 3324 int btf__add_decl_tag(struct btf *btf, const char *value, int ref_type_id, 3325 int component_idx) 3326 { 3327 return btf_add_decl_tag(btf, value, ref_type_id, component_idx, 0); 3328 } 3329 3330 /* 3331 * Append new BTF_KIND_DECL_TAG type with: 3332 * - *value* - non-empty/non-NULL string; 3333 * - *ref_type_id* - referenced type ID, it might not exist yet; 3334 * - *component_idx* - -1 for tagging reference type, otherwise struct/union 3335 * member or function argument index; 3336 * Set info->kflag to 1, indicating this tag is an __attribute__ 3337 * Returns: 3338 * - >0, type ID of newly added BTF type; 3339 * - <0, on error. 3340 */ 3341 int btf__add_decl_attr(struct btf *btf, const char *value, int ref_type_id, 3342 int component_idx) 3343 { 3344 return btf_add_decl_tag(btf, value, ref_type_id, component_idx, 1); 3345 } 3346 3347 struct btf_ext_sec_info_param { 3348 __u32 off; 3349 __u32 len; 3350 __u32 min_rec_size; 3351 struct btf_ext_info *ext_info; 3352 const char *desc; 3353 }; 3354 3355 /* 3356 * Parse a single info subsection of the BTF.ext info data: 3357 * - validate subsection structure and elements 3358 * - save info subsection start and sizing details in struct btf_ext 3359 * - endian-independent operation, for calling before byte-swapping 3360 */ 3361 static int btf_ext_parse_sec_info(struct btf_ext *btf_ext, 3362 struct btf_ext_sec_info_param *ext_sec, 3363 bool is_native) 3364 { 3365 const struct btf_ext_info_sec *sinfo; 3366 struct btf_ext_info *ext_info; 3367 __u32 info_left, record_size; 3368 size_t sec_cnt = 0; 3369 void *info; 3370 3371 if (ext_sec->len == 0) 3372 return 0; 3373 3374 if (ext_sec->off & 0x03) { 3375 pr_debug(".BTF.ext %s section is not aligned to 4 bytes\n", 3376 ext_sec->desc); 3377 return -EINVAL; 3378 } 3379 3380 /* The start of the info sec (including the __u32 record_size). */ 3381 info = btf_ext->data + btf_ext->hdr->hdr_len + ext_sec->off; 3382 info_left = ext_sec->len; 3383 3384 if (btf_ext->data + btf_ext->data_size < info + ext_sec->len) { 3385 pr_debug("%s section (off:%u len:%u) is beyond the end of the ELF section .BTF.ext\n", 3386 ext_sec->desc, ext_sec->off, ext_sec->len); 3387 return -EINVAL; 3388 } 3389 3390 /* At least a record size */ 3391 if (info_left < sizeof(__u32)) { 3392 pr_debug(".BTF.ext %s record size not found\n", ext_sec->desc); 3393 return -EINVAL; 3394 } 3395 3396 /* The record size needs to meet either the minimum standard or, when 3397 * handling non-native endianness data, the exact standard so as 3398 * to allow safe byte-swapping. 3399 */ 3400 record_size = is_native ? *(__u32 *)info : bswap_32(*(__u32 *)info); 3401 if (record_size < ext_sec->min_rec_size || 3402 (!is_native && record_size != ext_sec->min_rec_size) || 3403 record_size & 0x03) { 3404 pr_debug("%s section in .BTF.ext has invalid record size %u\n", 3405 ext_sec->desc, record_size); 3406 return -EINVAL; 3407 } 3408 3409 sinfo = info + sizeof(__u32); 3410 info_left -= sizeof(__u32); 3411 3412 /* If no records, return failure now so .BTF.ext won't be used. */ 3413 if (!info_left) { 3414 pr_debug("%s section in .BTF.ext has no records\n", ext_sec->desc); 3415 return -EINVAL; 3416 } 3417 3418 while (info_left) { 3419 unsigned int sec_hdrlen = sizeof(struct btf_ext_info_sec); 3420 __u64 total_record_size; 3421 __u32 num_records; 3422 3423 if (info_left < sec_hdrlen) { 3424 pr_debug("%s section header is not found in .BTF.ext\n", 3425 ext_sec->desc); 3426 return -EINVAL; 3427 } 3428 3429 num_records = is_native ? sinfo->num_info : bswap_32(sinfo->num_info); 3430 if (num_records == 0) { 3431 pr_debug("%s section has incorrect num_records in .BTF.ext\n", 3432 ext_sec->desc); 3433 return -EINVAL; 3434 } 3435 3436 total_record_size = sec_hdrlen + (__u64)num_records * record_size; 3437 if (info_left < total_record_size) { 3438 pr_debug("%s section has incorrect num_records in .BTF.ext\n", 3439 ext_sec->desc); 3440 return -EINVAL; 3441 } 3442 3443 info_left -= total_record_size; 3444 sinfo = (void *)sinfo + total_record_size; 3445 sec_cnt++; 3446 } 3447 3448 ext_info = ext_sec->ext_info; 3449 ext_info->len = ext_sec->len - sizeof(__u32); 3450 ext_info->rec_size = record_size; 3451 ext_info->info = info + sizeof(__u32); 3452 ext_info->sec_cnt = sec_cnt; 3453 3454 return 0; 3455 } 3456 3457 /* Parse all info secs in the BTF.ext info data */ 3458 static int btf_ext_parse_info(struct btf_ext *btf_ext, bool is_native) 3459 { 3460 struct btf_ext_sec_info_param func_info = { 3461 .off = btf_ext->hdr->func_info_off, 3462 .len = btf_ext->hdr->func_info_len, 3463 .min_rec_size = sizeof(struct bpf_func_info_min), 3464 .ext_info = &btf_ext->func_info, 3465 .desc = "func_info" 3466 }; 3467 struct btf_ext_sec_info_param line_info = { 3468 .off = btf_ext->hdr->line_info_off, 3469 .len = btf_ext->hdr->line_info_len, 3470 .min_rec_size = sizeof(struct bpf_line_info_min), 3471 .ext_info = &btf_ext->line_info, 3472 .desc = "line_info", 3473 }; 3474 struct btf_ext_sec_info_param core_relo = { 3475 .min_rec_size = sizeof(struct bpf_core_relo), 3476 .ext_info = &btf_ext->core_relo_info, 3477 .desc = "core_relo", 3478 }; 3479 int err; 3480 3481 err = btf_ext_parse_sec_info(btf_ext, &func_info, is_native); 3482 if (err) 3483 return err; 3484 3485 err = btf_ext_parse_sec_info(btf_ext, &line_info, is_native); 3486 if (err) 3487 return err; 3488 3489 if (btf_ext->hdr->hdr_len < offsetofend(struct btf_ext_header, core_relo_len)) 3490 return 0; /* skip core relos parsing */ 3491 3492 core_relo.off = btf_ext->hdr->core_relo_off; 3493 core_relo.len = btf_ext->hdr->core_relo_len; 3494 err = btf_ext_parse_sec_info(btf_ext, &core_relo, is_native); 3495 if (err) 3496 return err; 3497 3498 return 0; 3499 } 3500 3501 /* Swap byte-order of BTF.ext header with any endianness */ 3502 static void btf_ext_bswap_hdr(struct btf_ext_header *h) 3503 { 3504 bool is_native = h->magic == BTF_MAGIC; 3505 __u32 hdr_len; 3506 3507 hdr_len = is_native ? h->hdr_len : bswap_32(h->hdr_len); 3508 3509 h->magic = bswap_16(h->magic); 3510 h->hdr_len = bswap_32(h->hdr_len); 3511 h->func_info_off = bswap_32(h->func_info_off); 3512 h->func_info_len = bswap_32(h->func_info_len); 3513 h->line_info_off = bswap_32(h->line_info_off); 3514 h->line_info_len = bswap_32(h->line_info_len); 3515 3516 if (hdr_len < offsetofend(struct btf_ext_header, core_relo_len)) 3517 return; 3518 3519 h->core_relo_off = bswap_32(h->core_relo_off); 3520 h->core_relo_len = bswap_32(h->core_relo_len); 3521 } 3522 3523 /* Swap byte-order of generic info subsection */ 3524 static void btf_ext_bswap_info_sec(void *info, __u32 len, bool is_native, 3525 info_rec_bswap_fn bswap_fn) 3526 { 3527 struct btf_ext_info_sec *sec; 3528 __u32 info_left, rec_size, *rs; 3529 3530 if (len == 0) 3531 return; 3532 3533 rs = info; /* info record size */ 3534 rec_size = is_native ? *rs : bswap_32(*rs); 3535 *rs = bswap_32(*rs); 3536 3537 sec = info + sizeof(__u32); /* info sec #1 */ 3538 info_left = len - sizeof(__u32); 3539 while (info_left) { 3540 unsigned int sec_hdrlen = sizeof(struct btf_ext_info_sec); 3541 __u32 i, num_recs; 3542 void *p; 3543 3544 num_recs = is_native ? sec->num_info : bswap_32(sec->num_info); 3545 sec->sec_name_off = bswap_32(sec->sec_name_off); 3546 sec->num_info = bswap_32(sec->num_info); 3547 p = sec->data; /* info rec #1 */ 3548 for (i = 0; i < num_recs; i++, p += rec_size) 3549 bswap_fn(p); 3550 sec = p; 3551 info_left -= sec_hdrlen + (__u64)rec_size * num_recs; 3552 } 3553 } 3554 3555 /* 3556 * Swap byte-order of all info data in a BTF.ext section 3557 * - requires BTF.ext hdr in native endianness 3558 */ 3559 static void btf_ext_bswap_info(struct btf_ext *btf_ext, void *data) 3560 { 3561 const bool is_native = btf_ext->swapped_endian; 3562 const struct btf_ext_header *h = data; 3563 void *info; 3564 3565 /* Swap func_info subsection byte-order */ 3566 info = data + h->hdr_len + h->func_info_off; 3567 btf_ext_bswap_info_sec(info, h->func_info_len, is_native, 3568 (info_rec_bswap_fn)bpf_func_info_bswap); 3569 3570 /* Swap line_info subsection byte-order */ 3571 info = data + h->hdr_len + h->line_info_off; 3572 btf_ext_bswap_info_sec(info, h->line_info_len, is_native, 3573 (info_rec_bswap_fn)bpf_line_info_bswap); 3574 3575 /* Swap core_relo subsection byte-order (if present) */ 3576 if (h->hdr_len < offsetofend(struct btf_ext_header, core_relo_len)) 3577 return; 3578 3579 info = data + h->hdr_len + h->core_relo_off; 3580 btf_ext_bswap_info_sec(info, h->core_relo_len, is_native, 3581 (info_rec_bswap_fn)bpf_core_relo_bswap); 3582 } 3583 3584 /* Parse hdr data and info sections: check and convert to native endianness */ 3585 static int btf_ext_parse(struct btf_ext *btf_ext) 3586 { 3587 __u32 hdr_len, data_size = btf_ext->data_size; 3588 struct btf_ext_header *hdr = btf_ext->hdr; 3589 bool swapped_endian = false; 3590 int err; 3591 3592 if (data_size < offsetofend(struct btf_ext_header, hdr_len)) { 3593 pr_debug("BTF.ext header too short\n"); 3594 return -EINVAL; 3595 } 3596 3597 hdr_len = hdr->hdr_len; 3598 if (hdr->magic == bswap_16(BTF_MAGIC)) { 3599 swapped_endian = true; 3600 hdr_len = bswap_32(hdr_len); 3601 } else if (hdr->magic != BTF_MAGIC) { 3602 pr_debug("Invalid BTF.ext magic:%x\n", hdr->magic); 3603 return -EINVAL; 3604 } 3605 3606 /* Ensure known version of structs, current BTF_VERSION == 1 */ 3607 if (hdr->version != 1) { 3608 pr_debug("Unsupported BTF.ext version:%u\n", hdr->version); 3609 return -ENOTSUP; 3610 } 3611 3612 if (hdr->flags) { 3613 pr_debug("Unsupported BTF.ext flags:%x\n", hdr->flags); 3614 return -ENOTSUP; 3615 } 3616 3617 if (data_size < hdr_len) { 3618 pr_debug("BTF.ext header not found\n"); 3619 return -EINVAL; 3620 } else if (data_size == hdr_len) { 3621 pr_debug("BTF.ext has no data\n"); 3622 return -EINVAL; 3623 } 3624 3625 /* Verify mandatory hdr info details present */ 3626 if (hdr_len < offsetofend(struct btf_ext_header, line_info_len)) { 3627 pr_warn("BTF.ext header missing func_info, line_info\n"); 3628 return -EINVAL; 3629 } 3630 3631 /* Keep hdr native byte-order in memory for introspection */ 3632 if (swapped_endian) 3633 btf_ext_bswap_hdr(btf_ext->hdr); 3634 3635 /* Validate info subsections and cache key metadata */ 3636 err = btf_ext_parse_info(btf_ext, !swapped_endian); 3637 if (err) 3638 return err; 3639 3640 /* Keep infos native byte-order in memory for introspection */ 3641 if (swapped_endian) 3642 btf_ext_bswap_info(btf_ext, btf_ext->data); 3643 3644 /* 3645 * Set btf_ext->swapped_endian only after all header and info data has 3646 * been swapped, helping bswap functions determine if their data are 3647 * in native byte-order when called. 3648 */ 3649 btf_ext->swapped_endian = swapped_endian; 3650 return 0; 3651 } 3652 3653 void btf_ext__free(struct btf_ext *btf_ext) 3654 { 3655 if (IS_ERR_OR_NULL(btf_ext)) 3656 return; 3657 free(btf_ext->func_info.sec_idxs); 3658 free(btf_ext->line_info.sec_idxs); 3659 free(btf_ext->core_relo_info.sec_idxs); 3660 free(btf_ext->data); 3661 free(btf_ext->data_swapped); 3662 free(btf_ext); 3663 } 3664 3665 struct btf_ext *btf_ext__new(const __u8 *data, __u32 size) 3666 { 3667 struct btf_ext *btf_ext; 3668 int err; 3669 3670 btf_ext = calloc(1, sizeof(struct btf_ext)); 3671 if (!btf_ext) 3672 return libbpf_err_ptr(-ENOMEM); 3673 3674 btf_ext->data_size = size; 3675 btf_ext->data = malloc(size); 3676 if (!btf_ext->data) { 3677 err = -ENOMEM; 3678 goto done; 3679 } 3680 memcpy(btf_ext->data, data, size); 3681 3682 err = btf_ext_parse(btf_ext); 3683 3684 done: 3685 if (err) { 3686 btf_ext__free(btf_ext); 3687 return libbpf_err_ptr(err); 3688 } 3689 3690 return btf_ext; 3691 } 3692 3693 static void *btf_ext_raw_data(const struct btf_ext *btf_ext_ro, bool swap_endian) 3694 { 3695 struct btf_ext *btf_ext = (struct btf_ext *)btf_ext_ro; 3696 const __u32 data_sz = btf_ext->data_size; 3697 void *data; 3698 3699 /* Return native data (always present) or swapped data if present */ 3700 if (!swap_endian) 3701 return btf_ext->data; 3702 else if (btf_ext->data_swapped) 3703 return btf_ext->data_swapped; 3704 3705 /* Recreate missing swapped data, then cache and return */ 3706 data = calloc(1, data_sz); 3707 if (!data) 3708 return NULL; 3709 memcpy(data, btf_ext->data, data_sz); 3710 3711 btf_ext_bswap_info(btf_ext, data); 3712 btf_ext_bswap_hdr(data); 3713 btf_ext->data_swapped = data; 3714 return data; 3715 } 3716 3717 const void *btf_ext__raw_data(const struct btf_ext *btf_ext, __u32 *size) 3718 { 3719 void *data; 3720 3721 data = btf_ext_raw_data(btf_ext, btf_ext->swapped_endian); 3722 if (!data) 3723 return errno = ENOMEM, NULL; 3724 3725 *size = btf_ext->data_size; 3726 return data; 3727 } 3728 3729 __attribute__((alias("btf_ext__raw_data"))) 3730 const void *btf_ext__get_raw_data(const struct btf_ext *btf_ext, __u32 *size); 3731 3732 enum btf_endianness btf_ext__endianness(const struct btf_ext *btf_ext) 3733 { 3734 if (is_host_big_endian()) 3735 return btf_ext->swapped_endian ? BTF_LITTLE_ENDIAN : BTF_BIG_ENDIAN; 3736 else 3737 return btf_ext->swapped_endian ? BTF_BIG_ENDIAN : BTF_LITTLE_ENDIAN; 3738 } 3739 3740 int btf_ext__set_endianness(struct btf_ext *btf_ext, enum btf_endianness endian) 3741 { 3742 if (endian != BTF_LITTLE_ENDIAN && endian != BTF_BIG_ENDIAN) 3743 return libbpf_err(-EINVAL); 3744 3745 btf_ext->swapped_endian = is_host_big_endian() != (endian == BTF_BIG_ENDIAN); 3746 3747 if (!btf_ext->swapped_endian) { 3748 free(btf_ext->data_swapped); 3749 btf_ext->data_swapped = NULL; 3750 } 3751 return 0; 3752 } 3753 3754 struct btf_dedup; 3755 3756 static struct btf_dedup *btf_dedup_new(struct btf *btf, const struct btf_dedup_opts *opts); 3757 static void btf_dedup_free(struct btf_dedup *d); 3758 static int btf_dedup_prep(struct btf_dedup *d); 3759 static int btf_dedup_strings(struct btf_dedup *d); 3760 static int btf_dedup_prim_types(struct btf_dedup *d); 3761 static int btf_dedup_struct_types(struct btf_dedup *d); 3762 static int btf_dedup_ref_types(struct btf_dedup *d); 3763 static int btf_dedup_resolve_fwds(struct btf_dedup *d); 3764 static int btf_dedup_compact_types(struct btf_dedup *d); 3765 static int btf_dedup_remap_types(struct btf_dedup *d); 3766 3767 /* 3768 * Deduplicate BTF types and strings. 3769 * 3770 * BTF dedup algorithm takes as an input `struct btf` representing `.BTF` ELF 3771 * section with all BTF type descriptors and string data. It overwrites that 3772 * memory in-place with deduplicated types and strings without any loss of 3773 * information. If optional `struct btf_ext` representing '.BTF.ext' ELF section 3774 * is provided, all the strings referenced from .BTF.ext section are honored 3775 * and updated to point to the right offsets after deduplication. 3776 * 3777 * If function returns with error, type/string data might be garbled and should 3778 * be discarded. 3779 * 3780 * More verbose and detailed description of both problem btf_dedup is solving, 3781 * as well as solution could be found at: 3782 * https://facebookmicrosites.github.io/bpf/blog/2018/11/14/btf-enhancement.html 3783 * 3784 * Problem description and justification 3785 * ===================================== 3786 * 3787 * BTF type information is typically emitted either as a result of conversion 3788 * from DWARF to BTF or directly by compiler. In both cases, each compilation 3789 * unit contains information about a subset of all the types that are used 3790 * in an application. These subsets are frequently overlapping and contain a lot 3791 * of duplicated information when later concatenated together into a single 3792 * binary. This algorithm ensures that each unique type is represented by single 3793 * BTF type descriptor, greatly reducing resulting size of BTF data. 3794 * 3795 * Compilation unit isolation and subsequent duplication of data is not the only 3796 * problem. The same type hierarchy (e.g., struct and all the type that struct 3797 * references) in different compilation units can be represented in BTF to 3798 * various degrees of completeness (or, rather, incompleteness) due to 3799 * struct/union forward declarations. 3800 * 3801 * Let's take a look at an example, that we'll use to better understand the 3802 * problem (and solution). Suppose we have two compilation units, each using 3803 * same `struct S`, but each of them having incomplete type information about 3804 * struct's fields: 3805 * 3806 * // CU #1: 3807 * struct S; 3808 * struct A { 3809 * int a; 3810 * struct A* self; 3811 * struct S* parent; 3812 * }; 3813 * struct B; 3814 * struct S { 3815 * struct A* a_ptr; 3816 * struct B* b_ptr; 3817 * }; 3818 * 3819 * // CU #2: 3820 * struct S; 3821 * struct A; 3822 * struct B { 3823 * int b; 3824 * struct B* self; 3825 * struct S* parent; 3826 * }; 3827 * struct S { 3828 * struct A* a_ptr; 3829 * struct B* b_ptr; 3830 * }; 3831 * 3832 * In case of CU #1, BTF data will know only that `struct B` exist (but no 3833 * more), but will know the complete type information about `struct A`. While 3834 * for CU #2, it will know full type information about `struct B`, but will 3835 * only know about forward declaration of `struct A` (in BTF terms, it will 3836 * have `BTF_KIND_FWD` type descriptor with name `B`). 3837 * 3838 * This compilation unit isolation means that it's possible that there is no 3839 * single CU with complete type information describing structs `S`, `A`, and 3840 * `B`. Also, we might get tons of duplicated and redundant type information. 3841 * 3842 * Additional complication we need to keep in mind comes from the fact that 3843 * types, in general, can form graphs containing cycles, not just DAGs. 3844 * 3845 * While algorithm does deduplication, it also merges and resolves type 3846 * information (unless disabled throught `struct btf_opts`), whenever possible. 3847 * E.g., in the example above with two compilation units having partial type 3848 * information for structs `A` and `B`, the output of algorithm will emit 3849 * a single copy of each BTF type that describes structs `A`, `B`, and `S` 3850 * (as well as type information for `int` and pointers), as if they were defined 3851 * in a single compilation unit as: 3852 * 3853 * struct A { 3854 * int a; 3855 * struct A* self; 3856 * struct S* parent; 3857 * }; 3858 * struct B { 3859 * int b; 3860 * struct B* self; 3861 * struct S* parent; 3862 * }; 3863 * struct S { 3864 * struct A* a_ptr; 3865 * struct B* b_ptr; 3866 * }; 3867 * 3868 * Algorithm summary 3869 * ================= 3870 * 3871 * Algorithm completes its work in 7 separate passes: 3872 * 3873 * 1. Strings deduplication. 3874 * 2. Primitive types deduplication (int, enum, fwd). 3875 * 3. Struct/union types deduplication. 3876 * 4. Resolve unambiguous forward declarations. 3877 * 5. Reference types deduplication (pointers, typedefs, arrays, funcs, func 3878 * protos, and const/volatile/restrict modifiers). 3879 * 6. Types compaction. 3880 * 7. Types remapping. 3881 * 3882 * Algorithm determines canonical type descriptor, which is a single 3883 * representative type for each truly unique type. This canonical type is the 3884 * one that will go into final deduplicated BTF type information. For 3885 * struct/unions, it is also the type that algorithm will merge additional type 3886 * information into (while resolving FWDs), as it discovers it from data in 3887 * other CUs. Each input BTF type eventually gets either mapped to itself, if 3888 * that type is canonical, or to some other type, if that type is equivalent 3889 * and was chosen as canonical representative. This mapping is stored in 3890 * `btf_dedup->map` array. This map is also used to record STRUCT/UNION that 3891 * FWD type got resolved to. 3892 * 3893 * To facilitate fast discovery of canonical types, we also maintain canonical 3894 * index (`btf_dedup->dedup_table`), which maps type descriptor's signature hash 3895 * (i.e., hashed kind, name, size, fields, etc) into a list of canonical types 3896 * that match that signature. With sufficiently good choice of type signature 3897 * hashing function, we can limit number of canonical types for each unique type 3898 * signature to a very small number, allowing to find canonical type for any 3899 * duplicated type very quickly. 3900 * 3901 * Struct/union deduplication is the most critical part and algorithm for 3902 * deduplicating structs/unions is described in greater details in comments for 3903 * `btf_dedup_is_equiv` function. 3904 */ 3905 int btf__dedup(struct btf *btf, const struct btf_dedup_opts *opts) 3906 { 3907 struct btf_dedup *d; 3908 int err; 3909 3910 if (!OPTS_VALID(opts, btf_dedup_opts)) 3911 return libbpf_err(-EINVAL); 3912 3913 d = btf_dedup_new(btf, opts); 3914 if (IS_ERR(d)) { 3915 pr_debug("btf_dedup_new failed: %ld\n", PTR_ERR(d)); 3916 return libbpf_err(-EINVAL); 3917 } 3918 3919 err = btf_ensure_modifiable(btf); 3920 if (err) 3921 goto done; 3922 3923 err = btf_dedup_prep(d); 3924 if (err) { 3925 pr_debug("btf_dedup_prep failed: %s\n", errstr(err)); 3926 goto done; 3927 } 3928 err = btf_dedup_strings(d); 3929 if (err < 0) { 3930 pr_debug("btf_dedup_strings failed: %s\n", errstr(err)); 3931 goto done; 3932 } 3933 err = btf_dedup_prim_types(d); 3934 if (err < 0) { 3935 pr_debug("btf_dedup_prim_types failed: %s\n", errstr(err)); 3936 goto done; 3937 } 3938 err = btf_dedup_struct_types(d); 3939 if (err < 0) { 3940 pr_debug("btf_dedup_struct_types failed: %s\n", errstr(err)); 3941 goto done; 3942 } 3943 err = btf_dedup_resolve_fwds(d); 3944 if (err < 0) { 3945 pr_debug("btf_dedup_resolve_fwds failed: %s\n", errstr(err)); 3946 goto done; 3947 } 3948 err = btf_dedup_ref_types(d); 3949 if (err < 0) { 3950 pr_debug("btf_dedup_ref_types failed: %s\n", errstr(err)); 3951 goto done; 3952 } 3953 err = btf_dedup_compact_types(d); 3954 if (err < 0) { 3955 pr_debug("btf_dedup_compact_types failed: %s\n", errstr(err)); 3956 goto done; 3957 } 3958 err = btf_dedup_remap_types(d); 3959 if (err < 0) { 3960 pr_debug("btf_dedup_remap_types failed: %s\n", errstr(err)); 3961 goto done; 3962 } 3963 3964 done: 3965 btf_dedup_free(d); 3966 return libbpf_err(err); 3967 } 3968 3969 #define BTF_UNPROCESSED_ID ((__u32)-1) 3970 #define BTF_IN_PROGRESS_ID ((__u32)-2) 3971 3972 struct btf_dedup { 3973 /* .BTF section to be deduped in-place */ 3974 struct btf *btf; 3975 /* 3976 * Optional .BTF.ext section. When provided, any strings referenced 3977 * from it will be taken into account when deduping strings 3978 */ 3979 struct btf_ext *btf_ext; 3980 /* 3981 * This is a map from any type's signature hash to a list of possible 3982 * canonical representative type candidates. Hash collisions are 3983 * ignored, so even types of various kinds can share same list of 3984 * candidates, which is fine because we rely on subsequent 3985 * btf_xxx_equal() checks to authoritatively verify type equality. 3986 */ 3987 struct hashmap *dedup_table; 3988 /* Canonical types map */ 3989 __u32 *map; 3990 /* Hypothetical mapping, used during type graph equivalence checks */ 3991 __u32 *hypot_map; 3992 __u32 *hypot_list; 3993 size_t hypot_cnt; 3994 size_t hypot_cap; 3995 /* Whether hypothetical mapping, if successful, would need to adjust 3996 * already canonicalized types (due to a new forward declaration to 3997 * concrete type resolution). In such case, during split BTF dedup 3998 * candidate type would still be considered as different, because base 3999 * BTF is considered to be immutable. 4000 */ 4001 bool hypot_adjust_canon; 4002 /* Various option modifying behavior of algorithm */ 4003 struct btf_dedup_opts opts; 4004 /* temporary strings deduplication state */ 4005 struct strset *strs_set; 4006 }; 4007 4008 static unsigned long hash_combine(unsigned long h, unsigned long value) 4009 { 4010 return h * 31 + value; 4011 } 4012 4013 #define for_each_dedup_cand(d, node, hash) \ 4014 hashmap__for_each_key_entry(d->dedup_table, node, hash) 4015 4016 static int btf_dedup_table_add(struct btf_dedup *d, long hash, __u32 type_id) 4017 { 4018 return hashmap__append(d->dedup_table, hash, type_id); 4019 } 4020 4021 static int btf_dedup_hypot_map_add(struct btf_dedup *d, 4022 __u32 from_id, __u32 to_id) 4023 { 4024 if (d->hypot_cnt == d->hypot_cap) { 4025 __u32 *new_list; 4026 4027 d->hypot_cap += max((size_t)16, d->hypot_cap / 2); 4028 new_list = libbpf_reallocarray(d->hypot_list, d->hypot_cap, sizeof(__u32)); 4029 if (!new_list) 4030 return -ENOMEM; 4031 d->hypot_list = new_list; 4032 } 4033 d->hypot_list[d->hypot_cnt++] = from_id; 4034 d->hypot_map[from_id] = to_id; 4035 return 0; 4036 } 4037 4038 static void btf_dedup_clear_hypot_map(struct btf_dedup *d) 4039 { 4040 int i; 4041 4042 for (i = 0; i < d->hypot_cnt; i++) 4043 d->hypot_map[d->hypot_list[i]] = BTF_UNPROCESSED_ID; 4044 d->hypot_cnt = 0; 4045 d->hypot_adjust_canon = false; 4046 } 4047 4048 static void btf_dedup_free(struct btf_dedup *d) 4049 { 4050 hashmap__free(d->dedup_table); 4051 d->dedup_table = NULL; 4052 4053 free(d->map); 4054 d->map = NULL; 4055 4056 free(d->hypot_map); 4057 d->hypot_map = NULL; 4058 4059 free(d->hypot_list); 4060 d->hypot_list = NULL; 4061 4062 free(d); 4063 } 4064 4065 static size_t btf_dedup_identity_hash_fn(long key, void *ctx) 4066 { 4067 return key; 4068 } 4069 4070 static size_t btf_dedup_collision_hash_fn(long key, void *ctx) 4071 { 4072 return 0; 4073 } 4074 4075 static bool btf_dedup_equal_fn(long k1, long k2, void *ctx) 4076 { 4077 return k1 == k2; 4078 } 4079 4080 static struct btf_dedup *btf_dedup_new(struct btf *btf, const struct btf_dedup_opts *opts) 4081 { 4082 struct btf_dedup *d = calloc(1, sizeof(struct btf_dedup)); 4083 hashmap_hash_fn hash_fn = btf_dedup_identity_hash_fn; 4084 int i, err = 0, type_cnt; 4085 4086 if (!d) 4087 return ERR_PTR(-ENOMEM); 4088 4089 if (OPTS_GET(opts, force_collisions, false)) 4090 hash_fn = btf_dedup_collision_hash_fn; 4091 4092 d->btf = btf; 4093 d->btf_ext = OPTS_GET(opts, btf_ext, NULL); 4094 4095 d->dedup_table = hashmap__new(hash_fn, btf_dedup_equal_fn, NULL); 4096 if (IS_ERR(d->dedup_table)) { 4097 err = PTR_ERR(d->dedup_table); 4098 d->dedup_table = NULL; 4099 goto done; 4100 } 4101 4102 type_cnt = btf__type_cnt(btf); 4103 d->map = malloc(sizeof(__u32) * type_cnt); 4104 if (!d->map) { 4105 err = -ENOMEM; 4106 goto done; 4107 } 4108 /* special BTF "void" type is made canonical immediately */ 4109 d->map[0] = 0; 4110 for (i = 1; i < type_cnt; i++) { 4111 struct btf_type *t = btf_type_by_id(d->btf, i); 4112 4113 /* VAR and DATASEC are never deduped and are self-canonical */ 4114 if (btf_is_var(t) || btf_is_datasec(t)) 4115 d->map[i] = i; 4116 else 4117 d->map[i] = BTF_UNPROCESSED_ID; 4118 } 4119 4120 d->hypot_map = malloc(sizeof(__u32) * type_cnt); 4121 if (!d->hypot_map) { 4122 err = -ENOMEM; 4123 goto done; 4124 } 4125 for (i = 0; i < type_cnt; i++) 4126 d->hypot_map[i] = BTF_UNPROCESSED_ID; 4127 4128 done: 4129 if (err) { 4130 btf_dedup_free(d); 4131 return ERR_PTR(err); 4132 } 4133 4134 return d; 4135 } 4136 4137 /* 4138 * Iterate over all possible places in .BTF and .BTF.ext that can reference 4139 * string and pass pointer to it to a provided callback `fn`. 4140 */ 4141 static int btf_for_each_str_off(struct btf_dedup *d, str_off_visit_fn fn, void *ctx) 4142 { 4143 int i, r; 4144 4145 for (i = 0; i < d->btf->nr_types; i++) { 4146 struct btf_field_iter it; 4147 struct btf_type *t = btf_type_by_id(d->btf, d->btf->start_id + i); 4148 __u32 *str_off; 4149 4150 r = btf_field_iter_init(&it, t, BTF_FIELD_ITER_STRS); 4151 if (r) 4152 return r; 4153 4154 while ((str_off = btf_field_iter_next(&it))) { 4155 r = fn(str_off, ctx); 4156 if (r) 4157 return r; 4158 } 4159 } 4160 4161 if (!d->btf_ext) 4162 return 0; 4163 4164 r = btf_ext_visit_str_offs(d->btf_ext, fn, ctx); 4165 if (r) 4166 return r; 4167 4168 return 0; 4169 } 4170 4171 static int strs_dedup_remap_str_off(__u32 *str_off_ptr, void *ctx) 4172 { 4173 struct btf_dedup *d = ctx; 4174 __u32 str_off = *str_off_ptr; 4175 const char *s; 4176 int off, err; 4177 4178 /* don't touch empty string or string in main BTF */ 4179 if (str_off == 0 || str_off < d->btf->start_str_off) 4180 return 0; 4181 4182 s = btf__str_by_offset(d->btf, str_off); 4183 if (d->btf->base_btf) { 4184 err = btf__find_str(d->btf->base_btf, s); 4185 if (err >= 0) { 4186 *str_off_ptr = err; 4187 return 0; 4188 } 4189 if (err != -ENOENT) 4190 return err; 4191 } 4192 4193 off = strset__add_str(d->strs_set, s); 4194 if (off < 0) 4195 return off; 4196 4197 *str_off_ptr = d->btf->start_str_off + off; 4198 return 0; 4199 } 4200 4201 /* 4202 * Dedup string and filter out those that are not referenced from either .BTF 4203 * or .BTF.ext (if provided) sections. 4204 * 4205 * This is done by building index of all strings in BTF's string section, 4206 * then iterating over all entities that can reference strings (e.g., type 4207 * names, struct field names, .BTF.ext line info, etc) and marking corresponding 4208 * strings as used. After that all used strings are deduped and compacted into 4209 * sequential blob of memory and new offsets are calculated. Then all the string 4210 * references are iterated again and rewritten using new offsets. 4211 */ 4212 static int btf_dedup_strings(struct btf_dedup *d) 4213 { 4214 int err; 4215 4216 if (d->btf->strs_deduped) 4217 return 0; 4218 4219 d->strs_set = strset__new(BTF_MAX_STR_OFFSET, NULL, 0); 4220 if (IS_ERR(d->strs_set)) { 4221 err = PTR_ERR(d->strs_set); 4222 goto err_out; 4223 } 4224 4225 if (!d->btf->base_btf) { 4226 /* insert empty string; we won't be looking it up during strings 4227 * dedup, but it's good to have it for generic BTF string lookups 4228 */ 4229 err = strset__add_str(d->strs_set, ""); 4230 if (err < 0) 4231 goto err_out; 4232 } 4233 4234 /* remap string offsets */ 4235 err = btf_for_each_str_off(d, strs_dedup_remap_str_off, d); 4236 if (err) 4237 goto err_out; 4238 4239 /* replace BTF string data and hash with deduped ones */ 4240 strset__free(d->btf->strs_set); 4241 btf_hdr_update_str_len(d->btf, strset__data_size(d->strs_set)); 4242 d->btf->strs_set = d->strs_set; 4243 d->strs_set = NULL; 4244 d->btf->strs_deduped = true; 4245 return 0; 4246 4247 err_out: 4248 strset__free(d->strs_set); 4249 d->strs_set = NULL; 4250 4251 return err; 4252 } 4253 4254 /* 4255 * Calculate type signature hash of TYPEDEF, ignoring referenced type IDs, 4256 * as referenced type IDs equivalence is established separately during type 4257 * graph equivalence check algorithm. 4258 */ 4259 static long btf_hash_typedef(struct btf_type *t) 4260 { 4261 long h; 4262 4263 h = hash_combine(0, t->name_off); 4264 h = hash_combine(h, t->info); 4265 return h; 4266 } 4267 4268 static long btf_hash_common(struct btf_type *t) 4269 { 4270 long h; 4271 4272 h = hash_combine(0, t->name_off); 4273 h = hash_combine(h, t->info); 4274 h = hash_combine(h, t->size); 4275 return h; 4276 } 4277 4278 static bool btf_equal_common(struct btf_type *t1, struct btf_type *t2) 4279 { 4280 return t1->name_off == t2->name_off && 4281 t1->info == t2->info && 4282 t1->size == t2->size; 4283 } 4284 4285 /* Check structural compatibility of two TYPEDEF. */ 4286 static bool btf_equal_typedef(struct btf_type *t1, struct btf_type *t2) 4287 { 4288 return t1->name_off == t2->name_off && 4289 t1->info == t2->info; 4290 } 4291 4292 /* Calculate type signature hash of INT or TAG. */ 4293 static long btf_hash_int_decl_tag(struct btf_type *t) 4294 { 4295 __u32 info = *(__u32 *)(t + 1); 4296 long h; 4297 4298 h = btf_hash_common(t); 4299 h = hash_combine(h, info); 4300 return h; 4301 } 4302 4303 /* Check structural equality of two INTs or TAGs. */ 4304 static bool btf_equal_int_tag(struct btf_type *t1, struct btf_type *t2) 4305 { 4306 __u32 info1, info2; 4307 4308 if (!btf_equal_common(t1, t2)) 4309 return false; 4310 info1 = *(__u32 *)(t1 + 1); 4311 info2 = *(__u32 *)(t2 + 1); 4312 return info1 == info2; 4313 } 4314 4315 /* Calculate type signature hash of ENUM/ENUM64. */ 4316 static long btf_hash_enum(struct btf_type *t) 4317 { 4318 long h; 4319 4320 /* don't hash vlen, enum members and size to support enum fwd resolving */ 4321 h = hash_combine(0, t->name_off); 4322 return h; 4323 } 4324 4325 static bool btf_equal_enum_members(struct btf_type *t1, struct btf_type *t2) 4326 { 4327 const struct btf_enum *m1, *m2; 4328 __u32 vlen; 4329 int i; 4330 4331 vlen = btf_vlen(t1); 4332 m1 = btf_enum(t1); 4333 m2 = btf_enum(t2); 4334 for (i = 0; i < vlen; i++) { 4335 if (m1->name_off != m2->name_off || m1->val != m2->val) 4336 return false; 4337 m1++; 4338 m2++; 4339 } 4340 return true; 4341 } 4342 4343 static bool btf_equal_enum64_members(struct btf_type *t1, struct btf_type *t2) 4344 { 4345 const struct btf_enum64 *m1, *m2; 4346 __u32 vlen; 4347 int i; 4348 4349 vlen = btf_vlen(t1); 4350 m1 = btf_enum64(t1); 4351 m2 = btf_enum64(t2); 4352 for (i = 0; i < vlen; i++) { 4353 if (m1->name_off != m2->name_off || m1->val_lo32 != m2->val_lo32 || 4354 m1->val_hi32 != m2->val_hi32) 4355 return false; 4356 m1++; 4357 m2++; 4358 } 4359 return true; 4360 } 4361 4362 /* Check structural equality of two ENUMs or ENUM64s. */ 4363 static bool btf_equal_enum(struct btf_type *t1, struct btf_type *t2) 4364 { 4365 if (!btf_equal_common(t1, t2)) 4366 return false; 4367 4368 /* t1 & t2 kinds are identical because of btf_equal_common */ 4369 if (btf_kind(t1) == BTF_KIND_ENUM) 4370 return btf_equal_enum_members(t1, t2); 4371 else 4372 return btf_equal_enum64_members(t1, t2); 4373 } 4374 4375 static inline bool btf_is_enum_fwd(struct btf_type *t) 4376 { 4377 return btf_is_any_enum(t) && btf_vlen(t) == 0; 4378 } 4379 4380 static bool btf_compat_enum(struct btf_type *t1, struct btf_type *t2) 4381 { 4382 if (!btf_is_enum_fwd(t1) && !btf_is_enum_fwd(t2)) 4383 return btf_equal_enum(t1, t2); 4384 /* At this point either t1 or t2 or both are forward declarations, thus: 4385 * - skip comparing vlen because it is zero for forward declarations; 4386 * - skip comparing size to allow enum forward declarations 4387 * to be compatible with enum64 full declarations; 4388 * - skip comparing kind for the same reason. 4389 */ 4390 return t1->name_off == t2->name_off && 4391 btf_is_any_enum(t1) && btf_is_any_enum(t2); 4392 } 4393 4394 /* 4395 * Calculate type signature hash of STRUCT/UNION, ignoring referenced type IDs, 4396 * as referenced type IDs equivalence is established separately during type 4397 * graph equivalence check algorithm. 4398 */ 4399 static long btf_hash_struct(struct btf_type *t) 4400 { 4401 const struct btf_member *member = btf_members(t); 4402 __u32 vlen = btf_vlen(t); 4403 long h = btf_hash_common(t); 4404 int i; 4405 4406 for (i = 0; i < vlen; i++) { 4407 h = hash_combine(h, member->name_off); 4408 h = hash_combine(h, member->offset); 4409 /* no hashing of referenced type ID, it can be unresolved yet */ 4410 member++; 4411 } 4412 return h; 4413 } 4414 4415 /* 4416 * Check structural compatibility of two STRUCTs/UNIONs, ignoring referenced 4417 * type IDs. This check is performed during type graph equivalence check and 4418 * referenced types equivalence is checked separately. 4419 */ 4420 static bool btf_shallow_equal_struct(struct btf_type *t1, struct btf_type *t2) 4421 { 4422 const struct btf_member *m1, *m2; 4423 __u32 vlen; 4424 int i; 4425 4426 if (!btf_equal_common(t1, t2)) 4427 return false; 4428 4429 vlen = btf_vlen(t1); 4430 m1 = btf_members(t1); 4431 m2 = btf_members(t2); 4432 for (i = 0; i < vlen; i++) { 4433 if (m1->name_off != m2->name_off || m1->offset != m2->offset) 4434 return false; 4435 m1++; 4436 m2++; 4437 } 4438 return true; 4439 } 4440 4441 /* 4442 * Calculate type signature hash of ARRAY, including referenced type IDs, 4443 * under assumption that they were already resolved to canonical type IDs and 4444 * are not going to change. 4445 */ 4446 static long btf_hash_array(struct btf_type *t) 4447 { 4448 const struct btf_array *info = btf_array(t); 4449 long h = btf_hash_common(t); 4450 4451 h = hash_combine(h, info->type); 4452 h = hash_combine(h, info->index_type); 4453 h = hash_combine(h, info->nelems); 4454 return h; 4455 } 4456 4457 /* 4458 * Check exact equality of two ARRAYs, taking into account referenced 4459 * type IDs, under assumption that they were already resolved to canonical 4460 * type IDs and are not going to change. 4461 * This function is called during reference types deduplication to compare 4462 * ARRAY to potential canonical representative. 4463 */ 4464 static bool btf_equal_array(struct btf_type *t1, struct btf_type *t2) 4465 { 4466 const struct btf_array *info1, *info2; 4467 4468 if (!btf_equal_common(t1, t2)) 4469 return false; 4470 4471 info1 = btf_array(t1); 4472 info2 = btf_array(t2); 4473 return info1->type == info2->type && 4474 info1->index_type == info2->index_type && 4475 info1->nelems == info2->nelems; 4476 } 4477 4478 /* 4479 * Check structural compatibility of two ARRAYs, ignoring referenced type 4480 * IDs. This check is performed during type graph equivalence check and 4481 * referenced types equivalence is checked separately. 4482 */ 4483 static bool btf_compat_array(struct btf_type *t1, struct btf_type *t2) 4484 { 4485 if (!btf_equal_common(t1, t2)) 4486 return false; 4487 4488 return btf_array(t1)->nelems == btf_array(t2)->nelems; 4489 } 4490 4491 /* 4492 * Calculate type signature hash of FUNC_PROTO, including referenced type IDs, 4493 * under assumption that they were already resolved to canonical type IDs and 4494 * are not going to change. 4495 */ 4496 static long btf_hash_fnproto(struct btf_type *t) 4497 { 4498 const struct btf_param *member = btf_params(t); 4499 __u32 vlen = btf_vlen(t); 4500 long h = btf_hash_common(t); 4501 int i; 4502 4503 for (i = 0; i < vlen; i++) { 4504 h = hash_combine(h, member->name_off); 4505 h = hash_combine(h, member->type); 4506 member++; 4507 } 4508 return h; 4509 } 4510 4511 /* 4512 * Check exact equality of two FUNC_PROTOs, taking into account referenced 4513 * type IDs, under assumption that they were already resolved to canonical 4514 * type IDs and are not going to change. 4515 * This function is called during reference types deduplication to compare 4516 * FUNC_PROTO to potential canonical representative. 4517 */ 4518 static bool btf_equal_fnproto(struct btf_type *t1, struct btf_type *t2) 4519 { 4520 const struct btf_param *m1, *m2; 4521 __u32 vlen; 4522 int i; 4523 4524 if (!btf_equal_common(t1, t2)) 4525 return false; 4526 4527 vlen = btf_vlen(t1); 4528 m1 = btf_params(t1); 4529 m2 = btf_params(t2); 4530 for (i = 0; i < vlen; i++) { 4531 if (m1->name_off != m2->name_off || m1->type != m2->type) 4532 return false; 4533 m1++; 4534 m2++; 4535 } 4536 return true; 4537 } 4538 4539 /* 4540 * Check structural compatibility of two FUNC_PROTOs, ignoring referenced type 4541 * IDs. This check is performed during type graph equivalence check and 4542 * referenced types equivalence is checked separately. 4543 */ 4544 static bool btf_compat_fnproto(struct btf_type *t1, struct btf_type *t2) 4545 { 4546 const struct btf_param *m1, *m2; 4547 __u32 vlen; 4548 int i; 4549 4550 /* skip return type ID */ 4551 if (t1->name_off != t2->name_off || t1->info != t2->info) 4552 return false; 4553 4554 vlen = btf_vlen(t1); 4555 m1 = btf_params(t1); 4556 m2 = btf_params(t2); 4557 for (i = 0; i < vlen; i++) { 4558 if (m1->name_off != m2->name_off) 4559 return false; 4560 m1++; 4561 m2++; 4562 } 4563 return true; 4564 } 4565 4566 /* Prepare split BTF for deduplication by calculating hashes of base BTF's 4567 * types and initializing the rest of the state (canonical type mapping) for 4568 * the fixed base BTF part. 4569 */ 4570 static int btf_dedup_prep(struct btf_dedup *d) 4571 { 4572 struct btf_type *t; 4573 int type_id; 4574 long h; 4575 4576 if (!d->btf->base_btf) 4577 return 0; 4578 4579 for (type_id = 1; type_id < d->btf->start_id; type_id++) { 4580 t = btf_type_by_id(d->btf, type_id); 4581 4582 /* all base BTF types are self-canonical by definition */ 4583 d->map[type_id] = type_id; 4584 4585 switch (btf_kind(t)) { 4586 case BTF_KIND_VAR: 4587 case BTF_KIND_DATASEC: 4588 /* VAR and DATASEC are never hash/deduplicated */ 4589 continue; 4590 case BTF_KIND_CONST: 4591 case BTF_KIND_VOLATILE: 4592 case BTF_KIND_RESTRICT: 4593 case BTF_KIND_PTR: 4594 case BTF_KIND_FWD: 4595 case BTF_KIND_FUNC: 4596 case BTF_KIND_FLOAT: 4597 case BTF_KIND_TYPE_TAG: 4598 h = btf_hash_common(t); 4599 break; 4600 case BTF_KIND_TYPEDEF: 4601 h = btf_hash_typedef(t); 4602 break; 4603 case BTF_KIND_INT: 4604 case BTF_KIND_DECL_TAG: 4605 h = btf_hash_int_decl_tag(t); 4606 break; 4607 case BTF_KIND_ENUM: 4608 case BTF_KIND_ENUM64: 4609 h = btf_hash_enum(t); 4610 break; 4611 case BTF_KIND_STRUCT: 4612 case BTF_KIND_UNION: 4613 h = btf_hash_struct(t); 4614 break; 4615 case BTF_KIND_ARRAY: 4616 h = btf_hash_array(t); 4617 break; 4618 case BTF_KIND_FUNC_PROTO: 4619 h = btf_hash_fnproto(t); 4620 break; 4621 default: 4622 pr_debug("unknown kind %d for type [%d]\n", btf_kind(t), type_id); 4623 return -EINVAL; 4624 } 4625 if (btf_dedup_table_add(d, h, type_id)) 4626 return -ENOMEM; 4627 } 4628 4629 return 0; 4630 } 4631 4632 /* 4633 * Deduplicate primitive types, that can't reference other types, by calculating 4634 * their type signature hash and comparing them with any possible canonical 4635 * candidate. If no canonical candidate matches, type itself is marked as 4636 * canonical and is added into `btf_dedup->dedup_table` as another candidate. 4637 */ 4638 static int btf_dedup_prim_type(struct btf_dedup *d, __u32 type_id) 4639 { 4640 struct btf_type *t = btf_type_by_id(d->btf, type_id); 4641 struct hashmap_entry *hash_entry; 4642 struct btf_type *cand; 4643 /* if we don't find equivalent type, then we are canonical */ 4644 __u32 new_id = type_id; 4645 __u32 cand_id; 4646 long h; 4647 4648 switch (btf_kind(t)) { 4649 case BTF_KIND_CONST: 4650 case BTF_KIND_VOLATILE: 4651 case BTF_KIND_RESTRICT: 4652 case BTF_KIND_PTR: 4653 case BTF_KIND_TYPEDEF: 4654 case BTF_KIND_ARRAY: 4655 case BTF_KIND_STRUCT: 4656 case BTF_KIND_UNION: 4657 case BTF_KIND_FUNC: 4658 case BTF_KIND_FUNC_PROTO: 4659 case BTF_KIND_VAR: 4660 case BTF_KIND_DATASEC: 4661 case BTF_KIND_DECL_TAG: 4662 case BTF_KIND_TYPE_TAG: 4663 return 0; 4664 4665 case BTF_KIND_INT: 4666 h = btf_hash_int_decl_tag(t); 4667 for_each_dedup_cand(d, hash_entry, h) { 4668 cand_id = hash_entry->value; 4669 cand = btf_type_by_id(d->btf, cand_id); 4670 if (btf_equal_int_tag(t, cand)) { 4671 new_id = cand_id; 4672 break; 4673 } 4674 } 4675 break; 4676 4677 case BTF_KIND_ENUM: 4678 case BTF_KIND_ENUM64: 4679 h = btf_hash_enum(t); 4680 for_each_dedup_cand(d, hash_entry, h) { 4681 cand_id = hash_entry->value; 4682 cand = btf_type_by_id(d->btf, cand_id); 4683 if (btf_equal_enum(t, cand)) { 4684 new_id = cand_id; 4685 break; 4686 } 4687 if (btf_compat_enum(t, cand)) { 4688 if (btf_is_enum_fwd(t)) { 4689 /* resolve fwd to full enum */ 4690 new_id = cand_id; 4691 break; 4692 } 4693 /* resolve canonical enum fwd to full enum */ 4694 d->map[cand_id] = type_id; 4695 } 4696 } 4697 break; 4698 4699 case BTF_KIND_FWD: 4700 case BTF_KIND_FLOAT: 4701 h = btf_hash_common(t); 4702 for_each_dedup_cand(d, hash_entry, h) { 4703 cand_id = hash_entry->value; 4704 cand = btf_type_by_id(d->btf, cand_id); 4705 if (btf_equal_common(t, cand)) { 4706 new_id = cand_id; 4707 break; 4708 } 4709 } 4710 break; 4711 4712 default: 4713 return -EINVAL; 4714 } 4715 4716 d->map[type_id] = new_id; 4717 if (type_id == new_id && btf_dedup_table_add(d, h, type_id)) 4718 return -ENOMEM; 4719 4720 return 0; 4721 } 4722 4723 static int btf_dedup_prim_types(struct btf_dedup *d) 4724 { 4725 int i, err; 4726 4727 for (i = 0; i < d->btf->nr_types; i++) { 4728 err = btf_dedup_prim_type(d, d->btf->start_id + i); 4729 if (err) 4730 return err; 4731 } 4732 return 0; 4733 } 4734 4735 /* 4736 * Check whether type is already mapped into canonical one (could be to itself). 4737 */ 4738 static inline bool is_type_mapped(struct btf_dedup *d, uint32_t type_id) 4739 { 4740 return d->map[type_id] <= BTF_MAX_NR_TYPES; 4741 } 4742 4743 /* 4744 * Resolve type ID into its canonical type ID, if any; otherwise return original 4745 * type ID. If type is FWD and is resolved into STRUCT/UNION already, follow 4746 * STRUCT/UNION link and resolve it into canonical type ID as well. 4747 */ 4748 static inline __u32 resolve_type_id(struct btf_dedup *d, __u32 type_id) 4749 { 4750 while (is_type_mapped(d, type_id) && d->map[type_id] != type_id) 4751 type_id = d->map[type_id]; 4752 return type_id; 4753 } 4754 4755 /* 4756 * Resolve FWD to underlying STRUCT/UNION, if any; otherwise return original 4757 * type ID. 4758 */ 4759 static uint32_t resolve_fwd_id(struct btf_dedup *d, uint32_t type_id) 4760 { 4761 __u32 orig_type_id = type_id; 4762 4763 if (!btf_is_fwd(btf__type_by_id(d->btf, type_id))) 4764 return type_id; 4765 4766 while (is_type_mapped(d, type_id) && d->map[type_id] != type_id) 4767 type_id = d->map[type_id]; 4768 4769 if (!btf_is_fwd(btf__type_by_id(d->btf, type_id))) 4770 return type_id; 4771 4772 return orig_type_id; 4773 } 4774 4775 4776 static inline __u16 btf_fwd_kind(struct btf_type *t) 4777 { 4778 return btf_kflag(t) ? BTF_KIND_UNION : BTF_KIND_STRUCT; 4779 } 4780 4781 static bool btf_dedup_identical_types(struct btf_dedup *d, __u32 id1, __u32 id2, int depth) 4782 { 4783 struct btf_type *t1, *t2; 4784 int k1, k2; 4785 recur: 4786 t1 = btf_type_by_id(d->btf, id1); 4787 t2 = btf_type_by_id(d->btf, id2); 4788 if (depth <= 0) { 4789 pr_debug("Reached depth limit for identical type comparison for '%s'/'%s'\n", 4790 btf__name_by_offset(d->btf, t1->name_off), 4791 btf__name_by_offset(d->btf, t2->name_off)); 4792 return false; 4793 } 4794 4795 k1 = btf_kind(t1); 4796 k2 = btf_kind(t2); 4797 if (k1 != k2) 4798 return false; 4799 4800 switch (k1) { 4801 case BTF_KIND_UNKN: /* VOID */ 4802 return true; 4803 case BTF_KIND_INT: 4804 return btf_equal_int_tag(t1, t2); 4805 case BTF_KIND_ENUM: 4806 case BTF_KIND_ENUM64: 4807 return btf_compat_enum(t1, t2); 4808 case BTF_KIND_FWD: 4809 case BTF_KIND_FLOAT: 4810 return btf_equal_common(t1, t2); 4811 case BTF_KIND_CONST: 4812 case BTF_KIND_VOLATILE: 4813 case BTF_KIND_RESTRICT: 4814 case BTF_KIND_PTR: 4815 case BTF_KIND_TYPEDEF: 4816 case BTF_KIND_FUNC: 4817 case BTF_KIND_TYPE_TAG: 4818 if (t1->info != t2->info || t1->name_off != t2->name_off) 4819 return false; 4820 id1 = t1->type; 4821 id2 = t2->type; 4822 goto recur; 4823 case BTF_KIND_ARRAY: { 4824 struct btf_array *a1, *a2; 4825 4826 if (!btf_compat_array(t1, t2)) 4827 return false; 4828 4829 a1 = btf_array(t1); 4830 a2 = btf_array(t1); 4831 4832 if (a1->index_type != a2->index_type && 4833 !btf_dedup_identical_types(d, a1->index_type, a2->index_type, depth - 1)) 4834 return false; 4835 4836 if (a1->type != a2->type && 4837 !btf_dedup_identical_types(d, a1->type, a2->type, depth - 1)) 4838 return false; 4839 4840 return true; 4841 } 4842 case BTF_KIND_STRUCT: 4843 case BTF_KIND_UNION: { 4844 const struct btf_member *m1, *m2; 4845 int i, n; 4846 4847 if (!btf_shallow_equal_struct(t1, t2)) 4848 return false; 4849 4850 m1 = btf_members(t1); 4851 m2 = btf_members(t2); 4852 for (i = 0, n = btf_vlen(t1); i < n; i++, m1++, m2++) { 4853 if (m1->type == m2->type) 4854 continue; 4855 if (!btf_dedup_identical_types(d, m1->type, m2->type, depth - 1)) { 4856 if (t1->name_off) { 4857 pr_debug("%s '%s' size=%u vlen=%u id1[%u] id2[%u] shallow-equal but not identical for field#%d '%s'\n", 4858 k1 == BTF_KIND_STRUCT ? "STRUCT" : "UNION", 4859 btf__name_by_offset(d->btf, t1->name_off), 4860 t1->size, btf_vlen(t1), id1, id2, i, 4861 btf__name_by_offset(d->btf, m1->name_off)); 4862 } 4863 return false; 4864 } 4865 } 4866 return true; 4867 } 4868 case BTF_KIND_FUNC_PROTO: { 4869 const struct btf_param *p1, *p2; 4870 int i, n; 4871 4872 if (!btf_compat_fnproto(t1, t2)) 4873 return false; 4874 4875 if (t1->type != t2->type && 4876 !btf_dedup_identical_types(d, t1->type, t2->type, depth - 1)) 4877 return false; 4878 4879 p1 = btf_params(t1); 4880 p2 = btf_params(t2); 4881 for (i = 0, n = btf_vlen(t1); i < n; i++, p1++, p2++) { 4882 if (p1->type == p2->type) 4883 continue; 4884 if (!btf_dedup_identical_types(d, p1->type, p2->type, depth - 1)) 4885 return false; 4886 } 4887 return true; 4888 } 4889 default: 4890 return false; 4891 } 4892 } 4893 4894 4895 /* 4896 * Check equivalence of BTF type graph formed by candidate struct/union (we'll 4897 * call it "candidate graph" in this description for brevity) to a type graph 4898 * formed by (potential) canonical struct/union ("canonical graph" for brevity 4899 * here, though keep in mind that not all types in canonical graph are 4900 * necessarily canonical representatives themselves, some of them might be 4901 * duplicates or its uniqueness might not have been established yet). 4902 * Returns: 4903 * - >0, if type graphs are equivalent; 4904 * - 0, if not equivalent; 4905 * - <0, on error. 4906 * 4907 * Algorithm performs side-by-side DFS traversal of both type graphs and checks 4908 * equivalence of BTF types at each step. If at any point BTF types in candidate 4909 * and canonical graphs are not compatible structurally, whole graphs are 4910 * incompatible. If types are structurally equivalent (i.e., all information 4911 * except referenced type IDs is exactly the same), a mapping from `canon_id` to 4912 * a `cand_id` is recoded in hypothetical mapping (`btf_dedup->hypot_map`). 4913 * If a type references other types, then those referenced types are checked 4914 * for equivalence recursively. 4915 * 4916 * During DFS traversal, if we find that for current `canon_id` type we 4917 * already have some mapping in hypothetical map, we check for two possible 4918 * situations: 4919 * - `canon_id` is mapped to exactly the same type as `cand_id`. This will 4920 * happen when type graphs have cycles. In this case we assume those two 4921 * types are equivalent. 4922 * - `canon_id` is mapped to different type. This is contradiction in our 4923 * hypothetical mapping, because same graph in canonical graph corresponds 4924 * to two different types in candidate graph, which for equivalent type 4925 * graphs shouldn't happen. This condition terminates equivalence check 4926 * with negative result. 4927 * 4928 * If type graphs traversal exhausts types to check and find no contradiction, 4929 * then type graphs are equivalent. 4930 * 4931 * When checking types for equivalence, there is one special case: FWD types. 4932 * If FWD type resolution is allowed and one of the types (either from canonical 4933 * or candidate graph) is FWD and other is STRUCT/UNION (depending on FWD's kind 4934 * flag) and their names match, hypothetical mapping is updated to point from 4935 * FWD to STRUCT/UNION. If graphs will be determined as equivalent successfully, 4936 * this mapping will be used to record FWD -> STRUCT/UNION mapping permanently. 4937 * 4938 * Technically, this could lead to incorrect FWD to STRUCT/UNION resolution, 4939 * if there are two exactly named (or anonymous) structs/unions that are 4940 * compatible structurally, one of which has FWD field, while other is concrete 4941 * STRUCT/UNION, but according to C sources they are different structs/unions 4942 * that are referencing different types with the same name. This is extremely 4943 * unlikely to happen, but btf_dedup API allows to disable FWD resolution if 4944 * this logic is causing problems. 4945 * 4946 * Doing FWD resolution means that both candidate and/or canonical graphs can 4947 * consists of portions of the graph that come from multiple compilation units. 4948 * This is due to the fact that types within single compilation unit are always 4949 * deduplicated and FWDs are already resolved, if referenced struct/union 4950 * definition is available. So, if we had unresolved FWD and found corresponding 4951 * STRUCT/UNION, they will be from different compilation units. This 4952 * consequently means that when we "link" FWD to corresponding STRUCT/UNION, 4953 * type graph will likely have at least two different BTF types that describe 4954 * same type (e.g., most probably there will be two different BTF types for the 4955 * same 'int' primitive type) and could even have "overlapping" parts of type 4956 * graph that describe same subset of types. 4957 * 4958 * This in turn means that our assumption that each type in canonical graph 4959 * must correspond to exactly one type in candidate graph might not hold 4960 * anymore and will make it harder to detect contradictions using hypothetical 4961 * map. To handle this problem, we allow to follow FWD -> STRUCT/UNION 4962 * resolution only in canonical graph. FWDs in candidate graphs are never 4963 * resolved. To see why it's OK, let's check all possible situations w.r.t. FWDs 4964 * that can occur: 4965 * - Both types in canonical and candidate graphs are FWDs. If they are 4966 * structurally equivalent, then they can either be both resolved to the 4967 * same STRUCT/UNION or not resolved at all. In both cases they are 4968 * equivalent and there is no need to resolve FWD on candidate side. 4969 * - Both types in canonical and candidate graphs are concrete STRUCT/UNION, 4970 * so nothing to resolve as well, algorithm will check equivalence anyway. 4971 * - Type in canonical graph is FWD, while type in candidate is concrete 4972 * STRUCT/UNION. In this case candidate graph comes from single compilation 4973 * unit, so there is exactly one BTF type for each unique C type. After 4974 * resolving FWD into STRUCT/UNION, there might be more than one BTF type 4975 * in canonical graph mapping to single BTF type in candidate graph, but 4976 * because hypothetical mapping maps from canonical to candidate types, it's 4977 * alright, and we still maintain the property of having single `canon_id` 4978 * mapping to single `cand_id` (there could be two different `canon_id` 4979 * mapped to the same `cand_id`, but it's not contradictory). 4980 * - Type in canonical graph is concrete STRUCT/UNION, while type in candidate 4981 * graph is FWD. In this case we are just going to check compatibility of 4982 * STRUCT/UNION and corresponding FWD, and if they are compatible, we'll 4983 * assume that whatever STRUCT/UNION FWD resolves to must be equivalent to 4984 * a concrete STRUCT/UNION from canonical graph. If the rest of type graphs 4985 * turn out equivalent, we'll re-resolve FWD to concrete STRUCT/UNION from 4986 * canonical graph. 4987 */ 4988 static int btf_dedup_is_equiv(struct btf_dedup *d, __u32 cand_id, 4989 __u32 canon_id) 4990 { 4991 struct btf_type *cand_type; 4992 struct btf_type *canon_type; 4993 __u32 hypot_type_id; 4994 __u16 cand_kind; 4995 __u16 canon_kind; 4996 int i, eq; 4997 4998 /* if both resolve to the same canonical, they must be equivalent */ 4999 if (resolve_type_id(d, cand_id) == resolve_type_id(d, canon_id)) 5000 return 1; 5001 5002 canon_id = resolve_fwd_id(d, canon_id); 5003 5004 hypot_type_id = d->hypot_map[canon_id]; 5005 if (hypot_type_id <= BTF_MAX_NR_TYPES) { 5006 if (hypot_type_id == cand_id) 5007 return 1; 5008 /* In some cases compiler will generate different DWARF types 5009 * for *identical* array type definitions and use them for 5010 * different fields within the *same* struct. This breaks type 5011 * equivalence check, which makes an assumption that candidate 5012 * types sub-graph has a consistent and deduped-by-compiler 5013 * types within a single CU. And similar situation can happen 5014 * with struct/union sometimes, and event with pointers. 5015 * So accommodate cases like this doing a structural 5016 * comparison recursively, but avoiding being stuck in endless 5017 * loops by limiting the depth up to which we check. 5018 */ 5019 if (btf_dedup_identical_types(d, hypot_type_id, cand_id, 16)) 5020 return 1; 5021 return 0; 5022 } 5023 5024 if (btf_dedup_hypot_map_add(d, canon_id, cand_id)) 5025 return -ENOMEM; 5026 5027 cand_type = btf_type_by_id(d->btf, cand_id); 5028 canon_type = btf_type_by_id(d->btf, canon_id); 5029 cand_kind = btf_kind(cand_type); 5030 canon_kind = btf_kind(canon_type); 5031 5032 if (cand_type->name_off != canon_type->name_off) 5033 return 0; 5034 5035 /* FWD <--> STRUCT/UNION equivalence check, if enabled */ 5036 if ((cand_kind == BTF_KIND_FWD || canon_kind == BTF_KIND_FWD) 5037 && cand_kind != canon_kind) { 5038 __u16 real_kind; 5039 __u16 fwd_kind; 5040 5041 if (cand_kind == BTF_KIND_FWD) { 5042 real_kind = canon_kind; 5043 fwd_kind = btf_fwd_kind(cand_type); 5044 } else { 5045 real_kind = cand_kind; 5046 fwd_kind = btf_fwd_kind(canon_type); 5047 /* we'd need to resolve base FWD to STRUCT/UNION */ 5048 if (fwd_kind == real_kind && canon_id < d->btf->start_id) 5049 d->hypot_adjust_canon = true; 5050 } 5051 return fwd_kind == real_kind; 5052 } 5053 5054 if (cand_kind != canon_kind) 5055 return 0; 5056 5057 switch (cand_kind) { 5058 case BTF_KIND_INT: 5059 return btf_equal_int_tag(cand_type, canon_type); 5060 5061 case BTF_KIND_ENUM: 5062 case BTF_KIND_ENUM64: 5063 return btf_compat_enum(cand_type, canon_type); 5064 5065 case BTF_KIND_FWD: 5066 case BTF_KIND_FLOAT: 5067 return btf_equal_common(cand_type, canon_type); 5068 5069 case BTF_KIND_CONST: 5070 case BTF_KIND_VOLATILE: 5071 case BTF_KIND_RESTRICT: 5072 case BTF_KIND_PTR: 5073 case BTF_KIND_TYPEDEF: 5074 case BTF_KIND_FUNC: 5075 case BTF_KIND_TYPE_TAG: 5076 if (cand_type->info != canon_type->info) 5077 return 0; 5078 return btf_dedup_is_equiv(d, cand_type->type, canon_type->type); 5079 5080 case BTF_KIND_ARRAY: { 5081 const struct btf_array *cand_arr, *canon_arr; 5082 5083 if (!btf_compat_array(cand_type, canon_type)) 5084 return 0; 5085 cand_arr = btf_array(cand_type); 5086 canon_arr = btf_array(canon_type); 5087 eq = btf_dedup_is_equiv(d, cand_arr->index_type, canon_arr->index_type); 5088 if (eq <= 0) 5089 return eq; 5090 return btf_dedup_is_equiv(d, cand_arr->type, canon_arr->type); 5091 } 5092 5093 case BTF_KIND_STRUCT: 5094 case BTF_KIND_UNION: { 5095 const struct btf_member *cand_m, *canon_m; 5096 __u32 vlen; 5097 5098 if (!btf_shallow_equal_struct(cand_type, canon_type)) 5099 return 0; 5100 vlen = btf_vlen(cand_type); 5101 cand_m = btf_members(cand_type); 5102 canon_m = btf_members(canon_type); 5103 for (i = 0; i < vlen; i++) { 5104 eq = btf_dedup_is_equiv(d, cand_m->type, canon_m->type); 5105 if (eq <= 0) { 5106 if (cand_type->name_off) { 5107 pr_debug("%s '%s' size=%u vlen=%u cand_id[%u] canon_id[%u] shallow-equal but not equiv for field#%d '%s': %d\n", 5108 cand_kind == BTF_KIND_STRUCT ? "STRUCT" : "UNION", 5109 btf__name_by_offset(d->btf, cand_type->name_off), 5110 cand_type->size, vlen, cand_id, canon_id, i, 5111 btf__name_by_offset(d->btf, cand_m->name_off), eq); 5112 } 5113 return eq; 5114 } 5115 cand_m++; 5116 canon_m++; 5117 } 5118 5119 return 1; 5120 } 5121 5122 case BTF_KIND_FUNC_PROTO: { 5123 const struct btf_param *cand_p, *canon_p; 5124 __u32 vlen; 5125 5126 if (!btf_compat_fnproto(cand_type, canon_type)) 5127 return 0; 5128 eq = btf_dedup_is_equiv(d, cand_type->type, canon_type->type); 5129 if (eq <= 0) 5130 return eq; 5131 vlen = btf_vlen(cand_type); 5132 cand_p = btf_params(cand_type); 5133 canon_p = btf_params(canon_type); 5134 for (i = 0; i < vlen; i++) { 5135 eq = btf_dedup_is_equiv(d, cand_p->type, canon_p->type); 5136 if (eq <= 0) 5137 return eq; 5138 cand_p++; 5139 canon_p++; 5140 } 5141 return 1; 5142 } 5143 5144 default: 5145 return -EINVAL; 5146 } 5147 return 0; 5148 } 5149 5150 /* 5151 * Use hypothetical mapping, produced by successful type graph equivalence 5152 * check, to augment existing struct/union canonical mapping, where possible. 5153 * 5154 * If BTF_KIND_FWD resolution is allowed, this mapping is also used to record 5155 * FWD -> STRUCT/UNION correspondence as well. FWD resolution is bidirectional: 5156 * it doesn't matter if FWD type was part of canonical graph or candidate one, 5157 * we are recording the mapping anyway. As opposed to carefulness required 5158 * for struct/union correspondence mapping (described below), for FWD resolution 5159 * it's not important, as by the time that FWD type (reference type) will be 5160 * deduplicated all structs/unions will be deduped already anyway. 5161 * 5162 * Recording STRUCT/UNION mapping is purely a performance optimization and is 5163 * not required for correctness. It needs to be done carefully to ensure that 5164 * struct/union from candidate's type graph is not mapped into corresponding 5165 * struct/union from canonical type graph that itself hasn't been resolved into 5166 * canonical representative. The only guarantee we have is that canonical 5167 * struct/union was determined as canonical and that won't change. But any 5168 * types referenced through that struct/union fields could have been not yet 5169 * resolved, so in case like that it's too early to establish any kind of 5170 * correspondence between structs/unions. 5171 * 5172 * No canonical correspondence is derived for primitive types (they are already 5173 * deduplicated completely already anyway) or reference types (they rely on 5174 * stability of struct/union canonical relationship for equivalence checks). 5175 */ 5176 static void btf_dedup_merge_hypot_map(struct btf_dedup *d) 5177 { 5178 __u32 canon_type_id, targ_type_id; 5179 __u16 t_kind, c_kind; 5180 __u32 t_id, c_id; 5181 int i; 5182 5183 for (i = 0; i < d->hypot_cnt; i++) { 5184 canon_type_id = d->hypot_list[i]; 5185 targ_type_id = d->hypot_map[canon_type_id]; 5186 t_id = resolve_type_id(d, targ_type_id); 5187 c_id = resolve_type_id(d, canon_type_id); 5188 t_kind = btf_kind(btf__type_by_id(d->btf, t_id)); 5189 c_kind = btf_kind(btf__type_by_id(d->btf, c_id)); 5190 /* 5191 * Resolve FWD into STRUCT/UNION. 5192 * It's ok to resolve FWD into STRUCT/UNION that's not yet 5193 * mapped to canonical representative (as opposed to 5194 * STRUCT/UNION <--> STRUCT/UNION mapping logic below), because 5195 * eventually that struct is going to be mapped and all resolved 5196 * FWDs will automatically resolve to correct canonical 5197 * representative. This will happen before ref type deduping, 5198 * which critically depends on stability of these mapping. This 5199 * stability is not a requirement for STRUCT/UNION equivalence 5200 * checks, though. 5201 */ 5202 5203 /* if it's the split BTF case, we still need to point base FWD 5204 * to STRUCT/UNION in a split BTF, because FWDs from split BTF 5205 * will be resolved against base FWD. If we don't point base 5206 * canonical FWD to the resolved STRUCT/UNION, then all the 5207 * FWDs in split BTF won't be correctly resolved to a proper 5208 * STRUCT/UNION. 5209 */ 5210 if (t_kind != BTF_KIND_FWD && c_kind == BTF_KIND_FWD) 5211 d->map[c_id] = t_id; 5212 5213 /* if graph equivalence determined that we'd need to adjust 5214 * base canonical types, then we need to only point base FWDs 5215 * to STRUCTs/UNIONs and do no more modifications. For all 5216 * other purposes the type graphs were not equivalent. 5217 */ 5218 if (d->hypot_adjust_canon) 5219 continue; 5220 5221 if (t_kind == BTF_KIND_FWD && c_kind != BTF_KIND_FWD) 5222 d->map[t_id] = c_id; 5223 5224 if ((t_kind == BTF_KIND_STRUCT || t_kind == BTF_KIND_UNION) && 5225 c_kind != BTF_KIND_FWD && 5226 is_type_mapped(d, c_id) && 5227 !is_type_mapped(d, t_id)) { 5228 /* 5229 * as a perf optimization, we can map struct/union 5230 * that's part of type graph we just verified for 5231 * equivalence. We can do that for struct/union that has 5232 * canonical representative only, though. 5233 */ 5234 d->map[t_id] = c_id; 5235 } 5236 } 5237 } 5238 5239 static inline long btf_hash_by_kind(struct btf_type *t, __u16 kind) 5240 { 5241 if (kind == BTF_KIND_TYPEDEF) 5242 return btf_hash_typedef(t); 5243 else 5244 return btf_hash_struct(t); 5245 } 5246 5247 static inline bool btf_equal_by_kind(struct btf_type *t1, struct btf_type *t2, __u16 kind) 5248 { 5249 if (kind == BTF_KIND_TYPEDEF) 5250 return btf_equal_typedef(t1, t2); 5251 else 5252 return btf_shallow_equal_struct(t1, t2); 5253 } 5254 5255 /* 5256 * Deduplicate struct/union and typedef types. 5257 * 5258 * For each struct/union type its type signature hash is calculated, taking 5259 * into account type's name, size, number, order and names of fields, but 5260 * ignoring type ID's referenced from fields, because they might not be deduped 5261 * completely until after reference types deduplication phase. For each typedef 5262 * type, the hash is computed based on the type’s name and size. This type hash 5263 * is used to iterate over all potential canonical types, sharing same hash. 5264 * For each canonical candidate we check whether type graphs that they form 5265 * (through referenced types in fields and so on) are equivalent using algorithm 5266 * implemented in `btf_dedup_is_equiv`. If such equivalence is found and 5267 * BTF_KIND_FWD resolution is allowed, then hypothetical mapping 5268 * (btf_dedup->hypot_map) produced by aforementioned type graph equivalence 5269 * algorithm is used to record FWD -> STRUCT/UNION mapping. It's also used to 5270 * potentially map other structs/unions to their canonical representatives, 5271 * if such relationship hasn't yet been established. This speeds up algorithm 5272 * by eliminating some of the duplicate work. 5273 * 5274 * If no matching canonical representative was found, struct/union is marked 5275 * as canonical for itself and is added into btf_dedup->dedup_table hash map 5276 * for further look ups. 5277 */ 5278 static int btf_dedup_struct_type(struct btf_dedup *d, __u32 type_id) 5279 { 5280 struct btf_type *cand_type, *t; 5281 struct hashmap_entry *hash_entry; 5282 /* if we don't find equivalent type, then we are canonical */ 5283 __u32 new_id = type_id; 5284 __u16 kind; 5285 long h; 5286 5287 /* already deduped or is in process of deduping (loop detected) */ 5288 if (d->map[type_id] <= BTF_MAX_NR_TYPES) 5289 return 0; 5290 5291 t = btf_type_by_id(d->btf, type_id); 5292 kind = btf_kind(t); 5293 5294 if (kind != BTF_KIND_STRUCT && 5295 kind != BTF_KIND_UNION && 5296 kind != BTF_KIND_TYPEDEF) 5297 return 0; 5298 5299 h = btf_hash_by_kind(t, kind); 5300 for_each_dedup_cand(d, hash_entry, h) { 5301 __u32 cand_id = hash_entry->value; 5302 int eq; 5303 5304 /* 5305 * Even though btf_dedup_is_equiv() checks for 5306 * btf_equal_by_kind() internally when checking two 5307 * structs (unions) or typedefs for equivalence, we need to guard here 5308 * from picking matching FWD type as a dedup candidate. 5309 * This can happen due to hash collision. In such case just 5310 * relying on btf_dedup_is_equiv() would lead to potentially 5311 * creating a loop (FWD -> STRUCT and STRUCT -> FWD), because 5312 * FWD and compatible STRUCT/UNION are considered equivalent. 5313 */ 5314 cand_type = btf_type_by_id(d->btf, cand_id); 5315 if (!btf_equal_by_kind(t, cand_type, kind)) 5316 continue; 5317 5318 btf_dedup_clear_hypot_map(d); 5319 eq = btf_dedup_is_equiv(d, type_id, cand_id); 5320 if (eq < 0) 5321 return eq; 5322 if (!eq) 5323 continue; 5324 btf_dedup_merge_hypot_map(d); 5325 if (d->hypot_adjust_canon) /* not really equivalent */ 5326 continue; 5327 new_id = cand_id; 5328 break; 5329 } 5330 5331 d->map[type_id] = new_id; 5332 if (type_id == new_id && btf_dedup_table_add(d, h, type_id)) 5333 return -ENOMEM; 5334 5335 return 0; 5336 } 5337 5338 static int btf_dedup_struct_types(struct btf_dedup *d) 5339 { 5340 int i, err; 5341 5342 for (i = 0; i < d->btf->nr_types; i++) { 5343 err = btf_dedup_struct_type(d, d->btf->start_id + i); 5344 if (err) 5345 return err; 5346 } 5347 return 0; 5348 } 5349 5350 /* 5351 * Deduplicate reference type. 5352 * 5353 * Once all primitive, struct/union and typedef types got deduplicated, we can easily 5354 * deduplicate all other (reference) BTF types. This is done in two steps: 5355 * 5356 * 1. Resolve all referenced type IDs into their canonical type IDs. This 5357 * resolution can be done either immediately for primitive, struct/union, and typedef 5358 * types (because they were deduped in previous two phases) or recursively for 5359 * reference types. Recursion will always terminate at either primitive or 5360 * struct/union and typedef types, at which point we can "unwind" chain of reference 5361 * types one by one. There is no danger of encountering cycles in C, as the only way to 5362 * form a type cycle is through struct or union types. Go can form such cycles through 5363 * typedef. Thus, any chain of reference types, even those taking part in a type cycle, 5364 * will inevitably reach a struct/union or typedef type at some point. 5365 * 5366 * 2. Once all referenced type IDs are resolved into canonical ones, BTF type 5367 * becomes "stable", in the sense that no further deduplication will cause 5368 * any changes to it. With that, it's now possible to calculate type's signature 5369 * hash (this time taking into account referenced type IDs) and loop over all 5370 * potential canonical representatives. If no match was found, current type 5371 * will become canonical representative of itself and will be added into 5372 * btf_dedup->dedup_table as another possible canonical representative. 5373 */ 5374 static int btf_dedup_ref_type(struct btf_dedup *d, __u32 type_id) 5375 { 5376 struct hashmap_entry *hash_entry; 5377 __u32 new_id = type_id, cand_id; 5378 struct btf_type *t, *cand; 5379 /* if we don't find equivalent type, then we are representative type */ 5380 int ref_type_id; 5381 long h; 5382 5383 if (d->map[type_id] == BTF_IN_PROGRESS_ID) 5384 return -ELOOP; 5385 if (d->map[type_id] <= BTF_MAX_NR_TYPES) 5386 return resolve_type_id(d, type_id); 5387 5388 t = btf_type_by_id(d->btf, type_id); 5389 d->map[type_id] = BTF_IN_PROGRESS_ID; 5390 5391 switch (btf_kind(t)) { 5392 case BTF_KIND_CONST: 5393 case BTF_KIND_VOLATILE: 5394 case BTF_KIND_RESTRICT: 5395 case BTF_KIND_PTR: 5396 case BTF_KIND_FUNC: 5397 case BTF_KIND_TYPE_TAG: 5398 ref_type_id = btf_dedup_ref_type(d, t->type); 5399 if (ref_type_id < 0) 5400 return ref_type_id; 5401 t->type = ref_type_id; 5402 5403 h = btf_hash_common(t); 5404 for_each_dedup_cand(d, hash_entry, h) { 5405 cand_id = hash_entry->value; 5406 cand = btf_type_by_id(d->btf, cand_id); 5407 if (btf_equal_common(t, cand)) { 5408 new_id = cand_id; 5409 break; 5410 } 5411 } 5412 break; 5413 5414 case BTF_KIND_DECL_TAG: 5415 ref_type_id = btf_dedup_ref_type(d, t->type); 5416 if (ref_type_id < 0) 5417 return ref_type_id; 5418 t->type = ref_type_id; 5419 5420 h = btf_hash_int_decl_tag(t); 5421 for_each_dedup_cand(d, hash_entry, h) { 5422 cand_id = hash_entry->value; 5423 cand = btf_type_by_id(d->btf, cand_id); 5424 if (btf_equal_int_tag(t, cand)) { 5425 new_id = cand_id; 5426 break; 5427 } 5428 } 5429 break; 5430 5431 case BTF_KIND_ARRAY: { 5432 struct btf_array *info = btf_array(t); 5433 5434 ref_type_id = btf_dedup_ref_type(d, info->type); 5435 if (ref_type_id < 0) 5436 return ref_type_id; 5437 info->type = ref_type_id; 5438 5439 ref_type_id = btf_dedup_ref_type(d, info->index_type); 5440 if (ref_type_id < 0) 5441 return ref_type_id; 5442 info->index_type = ref_type_id; 5443 5444 h = btf_hash_array(t); 5445 for_each_dedup_cand(d, hash_entry, h) { 5446 cand_id = hash_entry->value; 5447 cand = btf_type_by_id(d->btf, cand_id); 5448 if (btf_equal_array(t, cand)) { 5449 new_id = cand_id; 5450 break; 5451 } 5452 } 5453 break; 5454 } 5455 5456 case BTF_KIND_FUNC_PROTO: { 5457 struct btf_param *param; 5458 __u32 vlen; 5459 int i; 5460 5461 ref_type_id = btf_dedup_ref_type(d, t->type); 5462 if (ref_type_id < 0) 5463 return ref_type_id; 5464 t->type = ref_type_id; 5465 5466 vlen = btf_vlen(t); 5467 param = btf_params(t); 5468 for (i = 0; i < vlen; i++) { 5469 ref_type_id = btf_dedup_ref_type(d, param->type); 5470 if (ref_type_id < 0) 5471 return ref_type_id; 5472 param->type = ref_type_id; 5473 param++; 5474 } 5475 5476 h = btf_hash_fnproto(t); 5477 for_each_dedup_cand(d, hash_entry, h) { 5478 cand_id = hash_entry->value; 5479 cand = btf_type_by_id(d->btf, cand_id); 5480 if (btf_equal_fnproto(t, cand)) { 5481 new_id = cand_id; 5482 break; 5483 } 5484 } 5485 break; 5486 } 5487 5488 default: 5489 return -EINVAL; 5490 } 5491 5492 d->map[type_id] = new_id; 5493 if (type_id == new_id && btf_dedup_table_add(d, h, type_id)) 5494 return -ENOMEM; 5495 5496 return new_id; 5497 } 5498 5499 static int btf_dedup_ref_types(struct btf_dedup *d) 5500 { 5501 int i, err; 5502 5503 for (i = 0; i < d->btf->nr_types; i++) { 5504 err = btf_dedup_ref_type(d, d->btf->start_id + i); 5505 if (err < 0) 5506 return err; 5507 } 5508 /* we won't need d->dedup_table anymore */ 5509 hashmap__free(d->dedup_table); 5510 d->dedup_table = NULL; 5511 return 0; 5512 } 5513 5514 /* 5515 * Collect a map from type names to type ids for all canonical structs 5516 * and unions. If the same name is shared by several canonical types 5517 * use a special value 0 to indicate this fact. 5518 */ 5519 static int btf_dedup_fill_unique_names_map(struct btf_dedup *d, struct hashmap *names_map) 5520 { 5521 __u32 nr_types = btf__type_cnt(d->btf); 5522 struct btf_type *t; 5523 __u32 type_id; 5524 __u16 kind; 5525 int err; 5526 5527 /* 5528 * Iterate over base and split module ids in order to get all 5529 * available structs in the map. 5530 */ 5531 for (type_id = 1; type_id < nr_types; ++type_id) { 5532 t = btf_type_by_id(d->btf, type_id); 5533 kind = btf_kind(t); 5534 5535 if (kind != BTF_KIND_STRUCT && kind != BTF_KIND_UNION) 5536 continue; 5537 5538 /* Skip non-canonical types */ 5539 if (type_id != d->map[type_id]) 5540 continue; 5541 5542 err = hashmap__add(names_map, t->name_off, type_id); 5543 if (err == -EEXIST) 5544 err = hashmap__set(names_map, t->name_off, 0, NULL, NULL); 5545 5546 if (err) 5547 return err; 5548 } 5549 5550 return 0; 5551 } 5552 5553 static int btf_dedup_resolve_fwd(struct btf_dedup *d, struct hashmap *names_map, __u32 type_id) 5554 { 5555 struct btf_type *t = btf_type_by_id(d->btf, type_id); 5556 enum btf_fwd_kind fwd_kind = btf_kflag(t); 5557 __u16 cand_kind, kind = btf_kind(t); 5558 struct btf_type *cand_t; 5559 uintptr_t cand_id; 5560 5561 if (kind != BTF_KIND_FWD) 5562 return 0; 5563 5564 /* Skip if this FWD already has a mapping */ 5565 if (type_id != d->map[type_id]) 5566 return 0; 5567 5568 if (!hashmap__find(names_map, t->name_off, &cand_id)) 5569 return 0; 5570 5571 /* Zero is a special value indicating that name is not unique */ 5572 if (!cand_id) 5573 return 0; 5574 5575 cand_t = btf_type_by_id(d->btf, cand_id); 5576 cand_kind = btf_kind(cand_t); 5577 if ((cand_kind == BTF_KIND_STRUCT && fwd_kind != BTF_FWD_STRUCT) || 5578 (cand_kind == BTF_KIND_UNION && fwd_kind != BTF_FWD_UNION)) 5579 return 0; 5580 5581 d->map[type_id] = cand_id; 5582 5583 return 0; 5584 } 5585 5586 /* 5587 * Resolve unambiguous forward declarations. 5588 * 5589 * The lion's share of all FWD declarations is resolved during 5590 * `btf_dedup_struct_types` phase when different type graphs are 5591 * compared against each other. However, if in some compilation unit a 5592 * FWD declaration is not a part of a type graph compared against 5593 * another type graph that declaration's canonical type would not be 5594 * changed. Example: 5595 * 5596 * CU #1: 5597 * 5598 * struct foo; 5599 * struct foo *some_global; 5600 * 5601 * CU #2: 5602 * 5603 * struct foo { int u; }; 5604 * struct foo *another_global; 5605 * 5606 * After `btf_dedup_struct_types` the BTF looks as follows: 5607 * 5608 * [1] STRUCT 'foo' size=4 vlen=1 ... 5609 * [2] INT 'int' size=4 ... 5610 * [3] PTR '(anon)' type_id=1 5611 * [4] FWD 'foo' fwd_kind=struct 5612 * [5] PTR '(anon)' type_id=4 5613 * 5614 * This pass assumes that such FWD declarations should be mapped to 5615 * structs or unions with identical name in case if the name is not 5616 * ambiguous. 5617 */ 5618 static int btf_dedup_resolve_fwds(struct btf_dedup *d) 5619 { 5620 int i, err; 5621 struct hashmap *names_map; 5622 5623 names_map = hashmap__new(btf_dedup_identity_hash_fn, btf_dedup_equal_fn, NULL); 5624 if (IS_ERR(names_map)) 5625 return PTR_ERR(names_map); 5626 5627 err = btf_dedup_fill_unique_names_map(d, names_map); 5628 if (err < 0) 5629 goto exit; 5630 5631 for (i = 0; i < d->btf->nr_types; i++) { 5632 err = btf_dedup_resolve_fwd(d, names_map, d->btf->start_id + i); 5633 if (err < 0) 5634 break; 5635 } 5636 5637 exit: 5638 hashmap__free(names_map); 5639 return err; 5640 } 5641 5642 /* 5643 * Compact types. 5644 * 5645 * After we established for each type its corresponding canonical representative 5646 * type, we now can eliminate types that are not canonical and leave only 5647 * canonical ones layed out sequentially in memory by copying them over 5648 * duplicates. During compaction btf_dedup->hypot_map array is reused to store 5649 * a map from original type ID to a new compacted type ID, which will be used 5650 * during next phase to "fix up" type IDs, referenced from struct/union and 5651 * reference types. 5652 */ 5653 static int btf_dedup_compact_types(struct btf_dedup *d) 5654 { 5655 __u32 *new_offs; 5656 __u32 next_type_id = d->btf->start_id; 5657 const struct btf_type *t; 5658 void *p; 5659 int i, id, len; 5660 5661 /* we are going to reuse hypot_map to store compaction remapping */ 5662 d->hypot_map[0] = 0; 5663 /* base BTF types are not renumbered */ 5664 for (id = 1; id < d->btf->start_id; id++) 5665 d->hypot_map[id] = id; 5666 for (i = 0, id = d->btf->start_id; i < d->btf->nr_types; i++, id++) 5667 d->hypot_map[id] = BTF_UNPROCESSED_ID; 5668 5669 p = d->btf->types_data; 5670 5671 for (i = 0, id = d->btf->start_id; i < d->btf->nr_types; i++, id++) { 5672 if (d->map[id] != id) 5673 continue; 5674 5675 t = btf__type_by_id(d->btf, id); 5676 len = btf_type_size(d->btf, t); 5677 if (len < 0) 5678 return len; 5679 5680 memmove(p, t, len); 5681 d->hypot_map[id] = next_type_id; 5682 d->btf->type_offs[next_type_id - d->btf->start_id] = p - d->btf->types_data; 5683 p += len; 5684 next_type_id++; 5685 } 5686 5687 /* shrink struct btf's internal types index and update btf_header */ 5688 d->btf->nr_types = next_type_id - d->btf->start_id; 5689 d->btf->type_offs_cap = d->btf->nr_types; 5690 d->btf->hdr.type_len = p - d->btf->types_data; 5691 new_offs = libbpf_reallocarray(d->btf->type_offs, d->btf->type_offs_cap, 5692 sizeof(*new_offs)); 5693 if (d->btf->type_offs_cap && !new_offs) 5694 return -ENOMEM; 5695 d->btf->type_offs = new_offs; 5696 if (d->btf->layout) 5697 d->btf->hdr.layout_off = d->btf->hdr.type_off + d->btf->hdr.type_len; 5698 d->btf->hdr.str_off = d->btf->hdr.type_off + d->btf->hdr.type_len + d->btf->hdr.layout_len; 5699 d->btf->raw_size = d->btf->hdr.hdr_len + d->btf->hdr.type_off + d->btf->hdr.type_len + 5700 d->btf->hdr.layout_len + d->btf->hdr.str_len; 5701 return 0; 5702 } 5703 5704 /* 5705 * Figure out final (deduplicated and compacted) type ID for provided original 5706 * `type_id` by first resolving it into corresponding canonical type ID and 5707 * then mapping it to a deduplicated type ID, stored in btf_dedup->hypot_map, 5708 * which is populated during compaction phase. 5709 */ 5710 static int btf_dedup_remap_type_id(__u32 *type_id, void *ctx) 5711 { 5712 struct btf_dedup *d = ctx; 5713 __u32 resolved_type_id, new_type_id; 5714 5715 resolved_type_id = resolve_type_id(d, *type_id); 5716 new_type_id = d->hypot_map[resolved_type_id]; 5717 if (new_type_id > BTF_MAX_NR_TYPES) 5718 return -EINVAL; 5719 5720 *type_id = new_type_id; 5721 return 0; 5722 } 5723 5724 /* 5725 * Remap referenced type IDs into deduped type IDs. 5726 * 5727 * After BTF types are deduplicated and compacted, their final type IDs may 5728 * differ from original ones. The map from original to a corresponding 5729 * deduped type ID is stored in btf_dedup->hypot_map and is populated during 5730 * compaction phase. During remapping phase we are rewriting all type IDs 5731 * referenced from any BTF type (e.g., struct fields, func proto args, etc) to 5732 * their final deduped type IDs. 5733 */ 5734 static int btf_dedup_remap_types(struct btf_dedup *d) 5735 { 5736 int i, r; 5737 5738 for (i = 0; i < d->btf->nr_types; i++) { 5739 struct btf_type *t = btf_type_by_id(d->btf, d->btf->start_id + i); 5740 struct btf_field_iter it; 5741 __u32 *type_id; 5742 5743 r = btf_field_iter_init(&it, t, BTF_FIELD_ITER_IDS); 5744 if (r) 5745 return r; 5746 5747 while ((type_id = btf_field_iter_next(&it))) { 5748 __u32 resolved_id, new_id; 5749 5750 resolved_id = resolve_type_id(d, *type_id); 5751 new_id = d->hypot_map[resolved_id]; 5752 if (new_id > BTF_MAX_NR_TYPES) 5753 return -EINVAL; 5754 5755 *type_id = new_id; 5756 } 5757 } 5758 5759 if (!d->btf_ext) 5760 return 0; 5761 5762 r = btf_ext_visit_type_ids(d->btf_ext, btf_dedup_remap_type_id, d); 5763 if (r) 5764 return r; 5765 5766 return 0; 5767 } 5768 5769 /* 5770 * Probe few well-known locations for vmlinux kernel image and try to load BTF 5771 * data out of it to use for target BTF. 5772 */ 5773 struct btf *btf__load_vmlinux_btf(void) 5774 { 5775 const char *sysfs_btf_path = "/sys/kernel/btf/vmlinux"; 5776 /* fall back locations, trying to find vmlinux on disk */ 5777 const char *locations[] = { 5778 "/boot/vmlinux-%1$s", 5779 "/lib/modules/%1$s/vmlinux-%1$s", 5780 "/lib/modules/%1$s/build/vmlinux", 5781 "/usr/lib/modules/%1$s/kernel/vmlinux", 5782 "/usr/lib/debug/boot/vmlinux-%1$s", 5783 "/usr/lib/debug/boot/vmlinux-%1$s.debug", 5784 "/usr/lib/debug/lib/modules/%1$s/vmlinux", 5785 }; 5786 char path[PATH_MAX + 1]; 5787 struct utsname buf; 5788 struct btf *btf; 5789 int i, err; 5790 5791 /* is canonical sysfs location accessible? */ 5792 if (faccessat(AT_FDCWD, sysfs_btf_path, F_OK, AT_EACCESS) < 0) { 5793 pr_warn("kernel BTF is missing at '%s', was CONFIG_DEBUG_INFO_BTF enabled?\n", 5794 sysfs_btf_path); 5795 } else { 5796 btf = btf_parse_raw_mmap(sysfs_btf_path, NULL); 5797 if (IS_ERR(btf)) 5798 btf = btf__parse(sysfs_btf_path, NULL); 5799 5800 if (!btf) { 5801 err = -errno; 5802 pr_warn("failed to read kernel BTF from '%s': %s\n", 5803 sysfs_btf_path, errstr(err)); 5804 return libbpf_err_ptr(err); 5805 } 5806 pr_debug("loaded kernel BTF from '%s'\n", sysfs_btf_path); 5807 return btf; 5808 } 5809 5810 /* try fallback locations */ 5811 uname(&buf); 5812 for (i = 0; i < ARRAY_SIZE(locations); i++) { 5813 snprintf(path, PATH_MAX, locations[i], buf.release); 5814 5815 if (faccessat(AT_FDCWD, path, R_OK, AT_EACCESS)) 5816 continue; 5817 5818 btf = btf__parse(path, NULL); 5819 err = libbpf_get_error(btf); 5820 pr_debug("loading kernel BTF '%s': %s\n", path, errstr(err)); 5821 if (err) 5822 continue; 5823 5824 return btf; 5825 } 5826 5827 pr_warn("failed to find valid kernel BTF\n"); 5828 return libbpf_err_ptr(-ESRCH); 5829 } 5830 5831 struct btf *libbpf_find_kernel_btf(void) __attribute__((alias("btf__load_vmlinux_btf"))); 5832 5833 struct btf *btf__load_module_btf(const char *module_name, struct btf *vmlinux_btf) 5834 { 5835 char path[80]; 5836 5837 snprintf(path, sizeof(path), "/sys/kernel/btf/%s", module_name); 5838 return btf__parse_split(path, vmlinux_btf); 5839 } 5840 5841 int btf_ext_visit_type_ids(struct btf_ext *btf_ext, type_id_visit_fn visit, void *ctx) 5842 { 5843 const struct btf_ext_info *seg; 5844 struct btf_ext_info_sec *sec; 5845 int i, err; 5846 5847 seg = &btf_ext->func_info; 5848 for_each_btf_ext_sec(seg, sec) { 5849 struct bpf_func_info_min *rec; 5850 5851 for_each_btf_ext_rec(seg, sec, i, rec) { 5852 err = visit(&rec->type_id, ctx); 5853 if (err < 0) 5854 return err; 5855 } 5856 } 5857 5858 seg = &btf_ext->core_relo_info; 5859 for_each_btf_ext_sec(seg, sec) { 5860 struct bpf_core_relo *rec; 5861 5862 for_each_btf_ext_rec(seg, sec, i, rec) { 5863 err = visit(&rec->type_id, ctx); 5864 if (err < 0) 5865 return err; 5866 } 5867 } 5868 5869 return 0; 5870 } 5871 5872 int btf_ext_visit_str_offs(struct btf_ext *btf_ext, str_off_visit_fn visit, void *ctx) 5873 { 5874 const struct btf_ext_info *seg; 5875 struct btf_ext_info_sec *sec; 5876 int i, err; 5877 5878 seg = &btf_ext->func_info; 5879 for_each_btf_ext_sec(seg, sec) { 5880 err = visit(&sec->sec_name_off, ctx); 5881 if (err) 5882 return err; 5883 } 5884 5885 seg = &btf_ext->line_info; 5886 for_each_btf_ext_sec(seg, sec) { 5887 struct bpf_line_info_min *rec; 5888 5889 err = visit(&sec->sec_name_off, ctx); 5890 if (err) 5891 return err; 5892 5893 for_each_btf_ext_rec(seg, sec, i, rec) { 5894 err = visit(&rec->file_name_off, ctx); 5895 if (err) 5896 return err; 5897 err = visit(&rec->line_off, ctx); 5898 if (err) 5899 return err; 5900 } 5901 } 5902 5903 seg = &btf_ext->core_relo_info; 5904 for_each_btf_ext_sec(seg, sec) { 5905 struct bpf_core_relo *rec; 5906 5907 err = visit(&sec->sec_name_off, ctx); 5908 if (err) 5909 return err; 5910 5911 for_each_btf_ext_rec(seg, sec, i, rec) { 5912 err = visit(&rec->access_str_off, ctx); 5913 if (err) 5914 return err; 5915 } 5916 } 5917 5918 return 0; 5919 } 5920 5921 struct btf_distill { 5922 struct btf_pipe pipe; 5923 int *id_map; 5924 unsigned int split_start_id; 5925 unsigned int split_start_str; 5926 int diff_id; 5927 }; 5928 5929 static int btf_add_distilled_type_ids(struct btf_distill *dist, __u32 i) 5930 { 5931 struct btf_type *split_t = btf_type_by_id(dist->pipe.src, i); 5932 struct btf_field_iter it; 5933 __u32 *id; 5934 int err; 5935 5936 err = btf_field_iter_init(&it, split_t, BTF_FIELD_ITER_IDS); 5937 if (err) 5938 return err; 5939 while ((id = btf_field_iter_next(&it))) { 5940 struct btf_type *base_t; 5941 5942 if (!*id) 5943 continue; 5944 /* split BTF id, not needed */ 5945 if (*id >= dist->split_start_id) 5946 continue; 5947 /* already added ? */ 5948 if (dist->id_map[*id] > 0) 5949 continue; 5950 5951 /* only a subset of base BTF types should be referenced from 5952 * split BTF; ensure nothing unexpected is referenced. 5953 */ 5954 base_t = btf_type_by_id(dist->pipe.src, *id); 5955 switch (btf_kind(base_t)) { 5956 case BTF_KIND_INT: 5957 case BTF_KIND_FLOAT: 5958 case BTF_KIND_FWD: 5959 case BTF_KIND_ARRAY: 5960 case BTF_KIND_STRUCT: 5961 case BTF_KIND_UNION: 5962 case BTF_KIND_TYPEDEF: 5963 case BTF_KIND_ENUM: 5964 case BTF_KIND_ENUM64: 5965 case BTF_KIND_PTR: 5966 case BTF_KIND_CONST: 5967 case BTF_KIND_RESTRICT: 5968 case BTF_KIND_VOLATILE: 5969 case BTF_KIND_FUNC_PROTO: 5970 case BTF_KIND_TYPE_TAG: 5971 dist->id_map[*id] = *id; 5972 break; 5973 default: 5974 pr_warn("unexpected reference to base type[%u] of kind [%u] when creating distilled base BTF.\n", 5975 *id, btf_kind(base_t)); 5976 return -EINVAL; 5977 } 5978 /* If a base type is used, ensure types it refers to are 5979 * marked as used also; so for example if we find a PTR to INT 5980 * we need both the PTR and INT. 5981 * 5982 * The only exception is named struct/unions, since distilled 5983 * base BTF composite types have no members. 5984 */ 5985 if (btf_is_composite(base_t) && base_t->name_off) 5986 continue; 5987 err = btf_add_distilled_type_ids(dist, *id); 5988 if (err) 5989 return err; 5990 } 5991 return 0; 5992 } 5993 5994 static int btf_add_distilled_types(struct btf_distill *dist) 5995 { 5996 bool adding_to_base = dist->pipe.dst->start_id == 1; 5997 int id = btf__type_cnt(dist->pipe.dst); 5998 struct btf_type *t; 5999 int i, err = 0; 6000 6001 6002 /* Add types for each of the required references to either distilled 6003 * base or split BTF, depending on type characteristics. 6004 */ 6005 for (i = 1; i < dist->split_start_id; i++) { 6006 const char *name; 6007 int kind; 6008 6009 if (!dist->id_map[i]) 6010 continue; 6011 t = btf_type_by_id(dist->pipe.src, i); 6012 kind = btf_kind(t); 6013 name = btf__name_by_offset(dist->pipe.src, t->name_off); 6014 6015 switch (kind) { 6016 case BTF_KIND_INT: 6017 case BTF_KIND_FLOAT: 6018 case BTF_KIND_FWD: 6019 /* Named int, float, fwd are added to base. */ 6020 if (!adding_to_base) 6021 continue; 6022 err = btf_add_type(&dist->pipe, t); 6023 break; 6024 case BTF_KIND_STRUCT: 6025 case BTF_KIND_UNION: 6026 /* Named struct/union are added to base as 0-vlen 6027 * struct/union of same size. Anonymous struct/unions 6028 * are added to split BTF as-is. 6029 */ 6030 if (adding_to_base) { 6031 if (!t->name_off) 6032 continue; 6033 err = btf_add_composite(dist->pipe.dst, kind, name, t->size); 6034 } else { 6035 if (t->name_off) 6036 continue; 6037 err = btf_add_type(&dist->pipe, t); 6038 } 6039 break; 6040 case BTF_KIND_ENUM: 6041 case BTF_KIND_ENUM64: 6042 /* Named enum[64]s are added to base as a sized 6043 * enum; relocation will match with appropriately-named 6044 * and sized enum or enum64. 6045 * 6046 * Anonymous enums are added to split BTF as-is. 6047 */ 6048 if (adding_to_base) { 6049 if (!t->name_off) 6050 continue; 6051 err = btf__add_enum(dist->pipe.dst, name, t->size); 6052 } else { 6053 if (t->name_off) 6054 continue; 6055 err = btf_add_type(&dist->pipe, t); 6056 } 6057 break; 6058 case BTF_KIND_ARRAY: 6059 case BTF_KIND_TYPEDEF: 6060 case BTF_KIND_PTR: 6061 case BTF_KIND_CONST: 6062 case BTF_KIND_RESTRICT: 6063 case BTF_KIND_VOLATILE: 6064 case BTF_KIND_FUNC_PROTO: 6065 case BTF_KIND_TYPE_TAG: 6066 /* All other types are added to split BTF. */ 6067 if (adding_to_base) 6068 continue; 6069 err = btf_add_type(&dist->pipe, t); 6070 break; 6071 default: 6072 pr_warn("unexpected kind when adding base type '%s'[%d] of kind [%d] to distilled base BTF.\n", 6073 name, i, kind); 6074 return -EINVAL; 6075 6076 } 6077 if (err < 0) 6078 break; 6079 dist->id_map[i] = id++; 6080 } 6081 return err; 6082 } 6083 6084 /* Split BTF ids without a mapping will be shifted downwards since distilled 6085 * base BTF is smaller than the original base BTF. For those that have a 6086 * mapping (either to base or updated split BTF), update the id based on 6087 * that mapping. 6088 */ 6089 static int btf_update_distilled_type_ids(struct btf_distill *dist, __u32 i) 6090 { 6091 struct btf_type *t = btf_type_by_id(dist->pipe.dst, i); 6092 struct btf_field_iter it; 6093 __u32 *id; 6094 int err; 6095 6096 err = btf_field_iter_init(&it, t, BTF_FIELD_ITER_IDS); 6097 if (err) 6098 return err; 6099 while ((id = btf_field_iter_next(&it))) { 6100 if (dist->id_map[*id]) 6101 *id = dist->id_map[*id]; 6102 else if (*id >= dist->split_start_id) 6103 *id -= dist->diff_id; 6104 } 6105 return 0; 6106 } 6107 6108 /* Create updated split BTF with distilled base BTF; distilled base BTF 6109 * consists of BTF information required to clarify the types that split 6110 * BTF refers to, omitting unneeded details. Specifically it will contain 6111 * base types and memberless definitions of named structs, unions and enumerated 6112 * types. Associated reference types like pointers, arrays and anonymous 6113 * structs, unions and enumerated types will be added to split BTF. 6114 * Size is recorded for named struct/unions to help guide matching to the 6115 * target base BTF during later relocation. 6116 * 6117 * The only case where structs, unions or enumerated types are fully represented 6118 * is when they are anonymous; in such cases, the anonymous type is added to 6119 * split BTF in full. 6120 * 6121 * We return newly-created split BTF where the split BTF refers to a newly-created 6122 * distilled base BTF. Both must be freed separately by the caller. 6123 */ 6124 int btf__distill_base(const struct btf *src_btf, struct btf **new_base_btf, 6125 struct btf **new_split_btf) 6126 { 6127 struct btf *new_base = NULL, *new_split = NULL; 6128 const struct btf *old_base; 6129 unsigned int n = btf__type_cnt(src_btf); 6130 struct btf_distill dist = {}; 6131 struct btf_type *t; 6132 int i, err = 0; 6133 6134 /* src BTF must be split BTF. */ 6135 old_base = btf__base_btf(src_btf); 6136 if (!new_base_btf || !new_split_btf || !old_base) 6137 return libbpf_err(-EINVAL); 6138 6139 new_base = btf__new_empty(); 6140 if (!new_base) 6141 return libbpf_err(-ENOMEM); 6142 6143 btf__set_endianness(new_base, btf__endianness(src_btf)); 6144 6145 dist.id_map = calloc(n, sizeof(*dist.id_map)); 6146 if (!dist.id_map) { 6147 err = -ENOMEM; 6148 goto done; 6149 } 6150 dist.pipe.src = src_btf; 6151 dist.pipe.dst = new_base; 6152 dist.pipe.str_off_map = hashmap__new(btf_dedup_identity_hash_fn, btf_dedup_equal_fn, NULL); 6153 if (IS_ERR(dist.pipe.str_off_map)) { 6154 err = -ENOMEM; 6155 goto done; 6156 } 6157 dist.split_start_id = btf__type_cnt(old_base); 6158 dist.split_start_str = old_base->hdr.str_len; 6159 6160 /* Pass over src split BTF; generate the list of base BTF type ids it 6161 * references; these will constitute our distilled BTF set to be 6162 * distributed over base and split BTF as appropriate. 6163 */ 6164 for (i = src_btf->start_id; i < n; i++) { 6165 err = btf_add_distilled_type_ids(&dist, i); 6166 if (err < 0) 6167 goto done; 6168 } 6169 /* Next add types for each of the required references to base BTF and split BTF 6170 * in turn. 6171 */ 6172 err = btf_add_distilled_types(&dist); 6173 if (err < 0) 6174 goto done; 6175 6176 /* Create new split BTF with distilled base BTF as its base; the final 6177 * state is split BTF with distilled base BTF that represents enough 6178 * about its base references to allow it to be relocated with the base 6179 * BTF available. 6180 */ 6181 new_split = btf__new_empty_split(new_base); 6182 if (!new_split) { 6183 err = -errno; 6184 goto done; 6185 } 6186 dist.pipe.dst = new_split; 6187 /* First add all split types */ 6188 for (i = src_btf->start_id; i < n; i++) { 6189 t = btf_type_by_id(src_btf, i); 6190 err = btf_add_type(&dist.pipe, t); 6191 if (err < 0) 6192 goto done; 6193 } 6194 /* Now add distilled types to split BTF that are not added to base. */ 6195 err = btf_add_distilled_types(&dist); 6196 if (err < 0) 6197 goto done; 6198 6199 /* All split BTF ids will be shifted downwards since there are less base 6200 * BTF ids in distilled base BTF. 6201 */ 6202 dist.diff_id = dist.split_start_id - btf__type_cnt(new_base); 6203 6204 n = btf__type_cnt(new_split); 6205 /* Now update base/split BTF ids. */ 6206 for (i = 1; i < n; i++) { 6207 err = btf_update_distilled_type_ids(&dist, i); 6208 if (err < 0) 6209 break; 6210 } 6211 done: 6212 free(dist.id_map); 6213 hashmap__free(dist.pipe.str_off_map); 6214 if (err) { 6215 btf__free(new_split); 6216 btf__free(new_base); 6217 return libbpf_err(err); 6218 } 6219 *new_base_btf = new_base; 6220 *new_split_btf = new_split; 6221 6222 return 0; 6223 } 6224 6225 const struct btf_header *btf_header(const struct btf *btf) 6226 { 6227 return &btf->hdr; 6228 } 6229 6230 void btf_set_base_btf(struct btf *btf, const struct btf *base_btf) 6231 { 6232 btf->base_btf = (struct btf *)base_btf; 6233 btf->start_id = btf__type_cnt(base_btf); 6234 btf->start_str_off = base_btf->hdr.str_len + base_btf->start_str_off; 6235 } 6236 6237 int btf__relocate(struct btf *btf, const struct btf *base_btf) 6238 { 6239 int err = btf_relocate(btf, base_btf, NULL); 6240 6241 if (!err) 6242 btf->owns_base = false; 6243 return libbpf_err(err); 6244 } 6245 6246 struct btf_permute { 6247 struct btf *btf; 6248 __u32 *id_map; 6249 __u32 start_offs; 6250 }; 6251 6252 /* Callback function to remap individual type ID references */ 6253 static int btf_permute_remap_type_id(__u32 *type_id, void *ctx) 6254 { 6255 struct btf_permute *p = ctx; 6256 __u32 new_id = *type_id; 6257 6258 /* refer to the base BTF or VOID type */ 6259 if (new_id < p->btf->start_id) 6260 return 0; 6261 6262 if (new_id >= btf__type_cnt(p->btf)) 6263 return -EINVAL; 6264 6265 *type_id = p->id_map[new_id - p->btf->start_id + p->start_offs]; 6266 return 0; 6267 } 6268 6269 int btf__permute(struct btf *btf, __u32 *id_map, __u32 id_map_cnt, 6270 const struct btf_permute_opts *opts) 6271 { 6272 struct btf_permute p; 6273 struct btf_ext *btf_ext; 6274 void *nt, *new_types = NULL; 6275 __u32 *order_map = NULL; 6276 int err = 0, i; 6277 __u32 n, id, start_offs = 0; 6278 6279 if (!OPTS_VALID(opts, btf_permute_opts)) 6280 return libbpf_err(-EINVAL); 6281 6282 if (btf__base_btf(btf)) { 6283 n = btf->nr_types; 6284 } else { 6285 if (id_map[0] != 0) 6286 return libbpf_err(-EINVAL); 6287 n = btf__type_cnt(btf); 6288 start_offs = 1; 6289 } 6290 6291 if (id_map_cnt != n) 6292 return libbpf_err(-EINVAL); 6293 6294 /* record the sequence of types */ 6295 order_map = calloc(id_map_cnt, sizeof(*id_map)); 6296 if (!order_map) { 6297 err = -ENOMEM; 6298 goto done; 6299 } 6300 6301 new_types = calloc(btf->hdr.type_len, 1); 6302 if (!new_types) { 6303 err = -ENOMEM; 6304 goto done; 6305 } 6306 6307 err = btf_ensure_modifiable(btf); 6308 if (err) 6309 goto done; 6310 6311 for (i = start_offs; i < id_map_cnt; i++) { 6312 id = id_map[i]; 6313 if (id < btf->start_id || id >= btf__type_cnt(btf)) { 6314 err = -EINVAL; 6315 goto done; 6316 } 6317 id -= btf->start_id - start_offs; 6318 /* cannot be mapped to the same ID */ 6319 if (order_map[id]) { 6320 err = -EINVAL; 6321 goto done; 6322 } 6323 order_map[id] = i + btf->start_id - start_offs; 6324 } 6325 6326 p.btf = btf; 6327 p.id_map = id_map; 6328 p.start_offs = start_offs; 6329 nt = new_types; 6330 for (i = start_offs; i < id_map_cnt; i++) { 6331 struct btf_field_iter it; 6332 const struct btf_type *t; 6333 __u32 *type_id; 6334 int type_size; 6335 6336 id = order_map[i]; 6337 t = btf__type_by_id(btf, id); 6338 type_size = btf_type_size(btf, t); 6339 memcpy(nt, t, type_size); 6340 6341 /* fix up referenced IDs for BTF */ 6342 err = btf_field_iter_init(&it, nt, BTF_FIELD_ITER_IDS); 6343 if (err) 6344 goto done; 6345 while ((type_id = btf_field_iter_next(&it))) { 6346 err = btf_permute_remap_type_id(type_id, &p); 6347 if (err) 6348 goto done; 6349 } 6350 6351 nt += type_size; 6352 } 6353 6354 /* fix up referenced IDs for btf_ext */ 6355 btf_ext = OPTS_GET(opts, btf_ext, NULL); 6356 if (btf_ext) { 6357 err = btf_ext_visit_type_ids(btf_ext, btf_permute_remap_type_id, &p); 6358 if (err) 6359 goto done; 6360 } 6361 6362 for (nt = new_types, i = 0; i < id_map_cnt - start_offs; i++) { 6363 btf->type_offs[i] = nt - new_types; 6364 nt += btf_type_size(btf, nt); 6365 } 6366 6367 free(order_map); 6368 free(btf->types_data); 6369 btf->types_data = new_types; 6370 return 0; 6371 6372 done: 6373 free(order_map); 6374 free(new_types); 6375 return libbpf_err(err); 6376 } 6377