11bc38b8fSAlexei Starovoitov // SPDX-License-Identifier: (LGPL-2.1 OR BSD-2-Clause) 28a138aedSMartin KaFai Lau /* Copyright (c) 2018 Facebook */ 38a138aedSMartin KaFai Lau 4cdb2f920SArnaldo Carvalho de Melo #include <endian.h> 596408c43SYonghong Song #include <stdio.h> 68a138aedSMartin KaFai Lau #include <stdlib.h> 78a138aedSMartin KaFai Lau #include <string.h> 8e6c64855SAndrii Nakryiko #include <fcntl.h> 98a138aedSMartin KaFai Lau #include <unistd.h> 108a138aedSMartin KaFai Lau #include <errno.h> 118a138aedSMartin KaFai Lau #include <linux/err.h> 128a138aedSMartin KaFai Lau #include <linux/btf.h> 13e6c64855SAndrii Nakryiko #include <gelf.h> 148a138aedSMartin KaFai Lau #include "btf.h" 158a138aedSMartin KaFai Lau #include "bpf.h" 168461ef8bSYonghong Song #include "libbpf.h" 17d72386feSAndrii Nakryiko #include "libbpf_internal.h" 182fc3fc0bSAndrii Nakryiko #include "hashmap.h" 198a138aedSMartin KaFai Lau 205aab392cSAndrii Nakryiko #define BTF_MAX_NR_TYPES 0x7fffffff 215aab392cSAndrii Nakryiko #define BTF_MAX_STR_OFFSET 0x7fffffff 228a138aedSMartin KaFai Lau 238a138aedSMartin KaFai Lau static struct btf_type btf_void; 248a138aedSMartin KaFai Lau 258a138aedSMartin KaFai Lau struct btf { 268a138aedSMartin KaFai Lau union { 278a138aedSMartin KaFai Lau struct btf_header *hdr; 288a138aedSMartin KaFai Lau void *data; 298a138aedSMartin KaFai Lau }; 308a138aedSMartin KaFai Lau struct btf_type **types; 318a138aedSMartin KaFai Lau const char *strings; 328a138aedSMartin KaFai Lau void *nohdr_data; 335b891af7SMartin KaFai Lau __u32 nr_types; 345b891af7SMartin KaFai Lau __u32 types_size; 355b891af7SMartin KaFai Lau __u32 data_size; 368a138aedSMartin KaFai Lau int fd; 378a138aedSMartin KaFai Lau }; 388a138aedSMartin KaFai Lau 39d7f5b5e0SYonghong Song static inline __u64 ptr_to_u64(const void *ptr) 40d7f5b5e0SYonghong Song { 41d7f5b5e0SYonghong Song return (__u64) (unsigned long) ptr; 42d7f5b5e0SYonghong Song } 43d7f5b5e0SYonghong Song 448a138aedSMartin KaFai Lau static int btf_add_type(struct btf *btf, struct btf_type *t) 458a138aedSMartin KaFai Lau { 468a138aedSMartin KaFai Lau if (btf->types_size - btf->nr_types < 2) { 478a138aedSMartin KaFai Lau struct btf_type **new_types; 485b891af7SMartin KaFai Lau __u32 expand_by, new_size; 498a138aedSMartin KaFai Lau 508a138aedSMartin KaFai Lau if (btf->types_size == BTF_MAX_NR_TYPES) 518a138aedSMartin KaFai Lau return -E2BIG; 528a138aedSMartin KaFai Lau 538a138aedSMartin KaFai Lau expand_by = max(btf->types_size >> 2, 16); 548a138aedSMartin KaFai Lau new_size = min(BTF_MAX_NR_TYPES, btf->types_size + expand_by); 558a138aedSMartin KaFai Lau 568a138aedSMartin KaFai Lau new_types = realloc(btf->types, sizeof(*new_types) * new_size); 578a138aedSMartin KaFai Lau if (!new_types) 588a138aedSMartin KaFai Lau return -ENOMEM; 598a138aedSMartin KaFai Lau 608a138aedSMartin KaFai Lau if (btf->nr_types == 0) 618a138aedSMartin KaFai Lau new_types[0] = &btf_void; 628a138aedSMartin KaFai Lau 638a138aedSMartin KaFai Lau btf->types = new_types; 648a138aedSMartin KaFai Lau btf->types_size = new_size; 658a138aedSMartin KaFai Lau } 668a138aedSMartin KaFai Lau 678a138aedSMartin KaFai Lau btf->types[++(btf->nr_types)] = t; 688a138aedSMartin KaFai Lau 698a138aedSMartin KaFai Lau return 0; 708a138aedSMartin KaFai Lau } 718a138aedSMartin KaFai Lau 728461ef8bSYonghong Song static int btf_parse_hdr(struct btf *btf) 738a138aedSMartin KaFai Lau { 748a138aedSMartin KaFai Lau const struct btf_header *hdr = btf->hdr; 755b891af7SMartin KaFai Lau __u32 meta_left; 768a138aedSMartin KaFai Lau 778a138aedSMartin KaFai Lau if (btf->data_size < sizeof(struct btf_header)) { 788461ef8bSYonghong Song pr_debug("BTF header not found\n"); 798a138aedSMartin KaFai Lau return -EINVAL; 808a138aedSMartin KaFai Lau } 818a138aedSMartin KaFai Lau 828a138aedSMartin KaFai Lau if (hdr->magic != BTF_MAGIC) { 838461ef8bSYonghong Song pr_debug("Invalid BTF magic:%x\n", hdr->magic); 848a138aedSMartin KaFai Lau return -EINVAL; 858a138aedSMartin KaFai Lau } 868a138aedSMartin KaFai Lau 878a138aedSMartin KaFai Lau if (hdr->version != BTF_VERSION) { 888461ef8bSYonghong Song pr_debug("Unsupported BTF version:%u\n", hdr->version); 898a138aedSMartin KaFai Lau return -ENOTSUP; 908a138aedSMartin KaFai Lau } 918a138aedSMartin KaFai Lau 928a138aedSMartin KaFai Lau if (hdr->flags) { 938461ef8bSYonghong Song pr_debug("Unsupported BTF flags:%x\n", hdr->flags); 948a138aedSMartin KaFai Lau return -ENOTSUP; 958a138aedSMartin KaFai Lau } 968a138aedSMartin KaFai Lau 978a138aedSMartin KaFai Lau meta_left = btf->data_size - sizeof(*hdr); 988a138aedSMartin KaFai Lau if (!meta_left) { 998461ef8bSYonghong Song pr_debug("BTF has no data\n"); 1008a138aedSMartin KaFai Lau return -EINVAL; 1018a138aedSMartin KaFai Lau } 1028a138aedSMartin KaFai Lau 1038a138aedSMartin KaFai Lau if (meta_left < hdr->type_off) { 1048461ef8bSYonghong Song pr_debug("Invalid BTF type section offset:%u\n", hdr->type_off); 1058a138aedSMartin KaFai Lau return -EINVAL; 1068a138aedSMartin KaFai Lau } 1078a138aedSMartin KaFai Lau 1088a138aedSMartin KaFai Lau if (meta_left < hdr->str_off) { 1098461ef8bSYonghong Song pr_debug("Invalid BTF string section offset:%u\n", hdr->str_off); 1108a138aedSMartin KaFai Lau return -EINVAL; 1118a138aedSMartin KaFai Lau } 1128a138aedSMartin KaFai Lau 1138a138aedSMartin KaFai Lau if (hdr->type_off >= hdr->str_off) { 1148461ef8bSYonghong Song pr_debug("BTF type section offset >= string section offset. No type?\n"); 1158a138aedSMartin KaFai Lau return -EINVAL; 1168a138aedSMartin KaFai Lau } 1178a138aedSMartin KaFai Lau 1188a138aedSMartin KaFai Lau if (hdr->type_off & 0x02) { 1198461ef8bSYonghong Song pr_debug("BTF type section is not aligned to 4 bytes\n"); 1208a138aedSMartin KaFai Lau return -EINVAL; 1218a138aedSMartin KaFai Lau } 1228a138aedSMartin KaFai Lau 1238a138aedSMartin KaFai Lau btf->nohdr_data = btf->hdr + 1; 1248a138aedSMartin KaFai Lau 1258a138aedSMartin KaFai Lau return 0; 1268a138aedSMartin KaFai Lau } 1278a138aedSMartin KaFai Lau 1288461ef8bSYonghong Song static int btf_parse_str_sec(struct btf *btf) 1298a138aedSMartin KaFai Lau { 1308a138aedSMartin KaFai Lau const struct btf_header *hdr = btf->hdr; 1318a138aedSMartin KaFai Lau const char *start = btf->nohdr_data + hdr->str_off; 1328a138aedSMartin KaFai Lau const char *end = start + btf->hdr->str_len; 1338a138aedSMartin KaFai Lau 1345aab392cSAndrii Nakryiko if (!hdr->str_len || hdr->str_len - 1 > BTF_MAX_STR_OFFSET || 1358a138aedSMartin KaFai Lau start[0] || end[-1]) { 1368461ef8bSYonghong Song pr_debug("Invalid BTF string section\n"); 1378a138aedSMartin KaFai Lau return -EINVAL; 1388a138aedSMartin KaFai Lau } 1398a138aedSMartin KaFai Lau 1408a138aedSMartin KaFai Lau btf->strings = start; 1418a138aedSMartin KaFai Lau 1428a138aedSMartin KaFai Lau return 0; 1438a138aedSMartin KaFai Lau } 1448a138aedSMartin KaFai Lau 14569eaab04SAndrii Nakryiko static int btf_type_size(struct btf_type *t) 14669eaab04SAndrii Nakryiko { 14769eaab04SAndrii Nakryiko int base_size = sizeof(struct btf_type); 148b03bc685SAndrii Nakryiko __u16 vlen = btf_vlen(t); 14969eaab04SAndrii Nakryiko 150b03bc685SAndrii Nakryiko switch (btf_kind(t)) { 15169eaab04SAndrii Nakryiko case BTF_KIND_FWD: 15269eaab04SAndrii Nakryiko case BTF_KIND_CONST: 15369eaab04SAndrii Nakryiko case BTF_KIND_VOLATILE: 15469eaab04SAndrii Nakryiko case BTF_KIND_RESTRICT: 15569eaab04SAndrii Nakryiko case BTF_KIND_PTR: 15669eaab04SAndrii Nakryiko case BTF_KIND_TYPEDEF: 15769eaab04SAndrii Nakryiko case BTF_KIND_FUNC: 15869eaab04SAndrii Nakryiko return base_size; 15969eaab04SAndrii Nakryiko case BTF_KIND_INT: 16069eaab04SAndrii Nakryiko return base_size + sizeof(__u32); 16169eaab04SAndrii Nakryiko case BTF_KIND_ENUM: 16269eaab04SAndrii Nakryiko return base_size + vlen * sizeof(struct btf_enum); 16369eaab04SAndrii Nakryiko case BTF_KIND_ARRAY: 16469eaab04SAndrii Nakryiko return base_size + sizeof(struct btf_array); 16569eaab04SAndrii Nakryiko case BTF_KIND_STRUCT: 16669eaab04SAndrii Nakryiko case BTF_KIND_UNION: 16769eaab04SAndrii Nakryiko return base_size + vlen * sizeof(struct btf_member); 16869eaab04SAndrii Nakryiko case BTF_KIND_FUNC_PROTO: 16969eaab04SAndrii Nakryiko return base_size + vlen * sizeof(struct btf_param); 1701713d68bSDaniel Borkmann case BTF_KIND_VAR: 1711713d68bSDaniel Borkmann return base_size + sizeof(struct btf_var); 1721713d68bSDaniel Borkmann case BTF_KIND_DATASEC: 1731713d68bSDaniel Borkmann return base_size + vlen * sizeof(struct btf_var_secinfo); 17469eaab04SAndrii Nakryiko default: 175b03bc685SAndrii Nakryiko pr_debug("Unsupported BTF_KIND:%u\n", btf_kind(t)); 17669eaab04SAndrii Nakryiko return -EINVAL; 17769eaab04SAndrii Nakryiko } 17869eaab04SAndrii Nakryiko } 17969eaab04SAndrii Nakryiko 1808461ef8bSYonghong Song static int btf_parse_type_sec(struct btf *btf) 1818a138aedSMartin KaFai Lau { 1828a138aedSMartin KaFai Lau struct btf_header *hdr = btf->hdr; 1838a138aedSMartin KaFai Lau void *nohdr_data = btf->nohdr_data; 1848a138aedSMartin KaFai Lau void *next_type = nohdr_data + hdr->type_off; 1858a138aedSMartin KaFai Lau void *end_type = nohdr_data + hdr->str_off; 1868a138aedSMartin KaFai Lau 1878a138aedSMartin KaFai Lau while (next_type < end_type) { 1888a138aedSMartin KaFai Lau struct btf_type *t = next_type; 18969eaab04SAndrii Nakryiko int type_size; 1908a138aedSMartin KaFai Lau int err; 1918a138aedSMartin KaFai Lau 19269eaab04SAndrii Nakryiko type_size = btf_type_size(t); 19369eaab04SAndrii Nakryiko if (type_size < 0) 19469eaab04SAndrii Nakryiko return type_size; 19569eaab04SAndrii Nakryiko next_type += type_size; 1968a138aedSMartin KaFai Lau err = btf_add_type(btf, t); 1978a138aedSMartin KaFai Lau if (err) 1988a138aedSMartin KaFai Lau return err; 1998a138aedSMartin KaFai Lau } 2008a138aedSMartin KaFai Lau 2018a138aedSMartin KaFai Lau return 0; 2028a138aedSMartin KaFai Lau } 2038a138aedSMartin KaFai Lau 2049c651127SAndrii Nakryiko __u32 btf__get_nr_types(const struct btf *btf) 2059c651127SAndrii Nakryiko { 2069c651127SAndrii Nakryiko return btf->nr_types; 2079c651127SAndrii Nakryiko } 2089c651127SAndrii Nakryiko 20938d5d3b3SMartin KaFai Lau const struct btf_type *btf__type_by_id(const struct btf *btf, __u32 type_id) 2108a138aedSMartin KaFai Lau { 2118a138aedSMartin KaFai Lau if (type_id > btf->nr_types) 2128a138aedSMartin KaFai Lau return NULL; 2138a138aedSMartin KaFai Lau 2148a138aedSMartin KaFai Lau return btf->types[type_id]; 2158a138aedSMartin KaFai Lau } 2168a138aedSMartin KaFai Lau 2178a138aedSMartin KaFai Lau static bool btf_type_is_void(const struct btf_type *t) 2188a138aedSMartin KaFai Lau { 219b03bc685SAndrii Nakryiko return t == &btf_void || btf_is_fwd(t); 2208a138aedSMartin KaFai Lau } 2218a138aedSMartin KaFai Lau 2228a138aedSMartin KaFai Lau static bool btf_type_is_void_or_null(const struct btf_type *t) 2238a138aedSMartin KaFai Lau { 2248a138aedSMartin KaFai Lau return !t || btf_type_is_void(t); 2258a138aedSMartin KaFai Lau } 2268a138aedSMartin KaFai Lau 2278a138aedSMartin KaFai Lau #define MAX_RESOLVE_DEPTH 32 2288a138aedSMartin KaFai Lau 2295b891af7SMartin KaFai Lau __s64 btf__resolve_size(const struct btf *btf, __u32 type_id) 2308a138aedSMartin KaFai Lau { 2318a138aedSMartin KaFai Lau const struct btf_array *array; 2328a138aedSMartin KaFai Lau const struct btf_type *t; 2335b891af7SMartin KaFai Lau __u32 nelems = 1; 2345b891af7SMartin KaFai Lau __s64 size = -1; 2358a138aedSMartin KaFai Lau int i; 2368a138aedSMartin KaFai Lau 23792b57121SOkash Khawaja t = btf__type_by_id(btf, type_id); 2388a138aedSMartin KaFai Lau for (i = 0; i < MAX_RESOLVE_DEPTH && !btf_type_is_void_or_null(t); 2398a138aedSMartin KaFai Lau i++) { 240b03bc685SAndrii Nakryiko switch (btf_kind(t)) { 24169eaab04SAndrii Nakryiko case BTF_KIND_INT: 24269eaab04SAndrii Nakryiko case BTF_KIND_STRUCT: 24369eaab04SAndrii Nakryiko case BTF_KIND_UNION: 24469eaab04SAndrii Nakryiko case BTF_KIND_ENUM: 2451713d68bSDaniel Borkmann case BTF_KIND_DATASEC: 24669eaab04SAndrii Nakryiko size = t->size; 24769eaab04SAndrii Nakryiko goto done; 24869eaab04SAndrii Nakryiko case BTF_KIND_PTR: 24969eaab04SAndrii Nakryiko size = sizeof(void *); 25069eaab04SAndrii Nakryiko goto done; 2518a138aedSMartin KaFai Lau case BTF_KIND_TYPEDEF: 2528a138aedSMartin KaFai Lau case BTF_KIND_VOLATILE: 2538a138aedSMartin KaFai Lau case BTF_KIND_CONST: 2548a138aedSMartin KaFai Lau case BTF_KIND_RESTRICT: 2551713d68bSDaniel Borkmann case BTF_KIND_VAR: 2568a138aedSMartin KaFai Lau type_id = t->type; 2578a138aedSMartin KaFai Lau break; 2588a138aedSMartin KaFai Lau case BTF_KIND_ARRAY: 259b03bc685SAndrii Nakryiko array = btf_array(t); 2608a138aedSMartin KaFai Lau if (nelems && array->nelems > UINT32_MAX / nelems) 2618a138aedSMartin KaFai Lau return -E2BIG; 2628a138aedSMartin KaFai Lau nelems *= array->nelems; 2638a138aedSMartin KaFai Lau type_id = array->type; 2648a138aedSMartin KaFai Lau break; 2658a138aedSMartin KaFai Lau default: 2668a138aedSMartin KaFai Lau return -EINVAL; 2678a138aedSMartin KaFai Lau } 2688a138aedSMartin KaFai Lau 26992b57121SOkash Khawaja t = btf__type_by_id(btf, type_id); 2708a138aedSMartin KaFai Lau } 2718a138aedSMartin KaFai Lau 272994021a7SAndrii Nakryiko done: 2738a138aedSMartin KaFai Lau if (size < 0) 2748a138aedSMartin KaFai Lau return -EINVAL; 2758a138aedSMartin KaFai Lau if (nelems && size > UINT32_MAX / nelems) 2768a138aedSMartin KaFai Lau return -E2BIG; 2778a138aedSMartin KaFai Lau 2788a138aedSMartin KaFai Lau return nelems * size; 2798a138aedSMartin KaFai Lau } 2808a138aedSMartin KaFai Lau 28192b57121SOkash Khawaja int btf__resolve_type(const struct btf *btf, __u32 type_id) 28292b57121SOkash Khawaja { 28392b57121SOkash Khawaja const struct btf_type *t; 28492b57121SOkash Khawaja int depth = 0; 28592b57121SOkash Khawaja 28692b57121SOkash Khawaja t = btf__type_by_id(btf, type_id); 28792b57121SOkash Khawaja while (depth < MAX_RESOLVE_DEPTH && 28892b57121SOkash Khawaja !btf_type_is_void_or_null(t) && 289b03bc685SAndrii Nakryiko (btf_is_mod(t) || btf_is_typedef(t) || btf_is_var(t))) { 29092b57121SOkash Khawaja type_id = t->type; 29192b57121SOkash Khawaja t = btf__type_by_id(btf, type_id); 29292b57121SOkash Khawaja depth++; 29392b57121SOkash Khawaja } 29492b57121SOkash Khawaja 29592b57121SOkash Khawaja if (depth == MAX_RESOLVE_DEPTH || btf_type_is_void_or_null(t)) 29692b57121SOkash Khawaja return -EINVAL; 29792b57121SOkash Khawaja 29892b57121SOkash Khawaja return type_id; 29992b57121SOkash Khawaja } 30092b57121SOkash Khawaja 3015b891af7SMartin KaFai Lau __s32 btf__find_by_name(const struct btf *btf, const char *type_name) 3028a138aedSMartin KaFai Lau { 3035b891af7SMartin KaFai Lau __u32 i; 3048a138aedSMartin KaFai Lau 3058a138aedSMartin KaFai Lau if (!strcmp(type_name, "void")) 3068a138aedSMartin KaFai Lau return 0; 3078a138aedSMartin KaFai Lau 3088a138aedSMartin KaFai Lau for (i = 1; i <= btf->nr_types; i++) { 3098a138aedSMartin KaFai Lau const struct btf_type *t = btf->types[i]; 31092b57121SOkash Khawaja const char *name = btf__name_by_offset(btf, t->name_off); 3118a138aedSMartin KaFai Lau 3128a138aedSMartin KaFai Lau if (name && !strcmp(type_name, name)) 3138a138aedSMartin KaFai Lau return i; 3148a138aedSMartin KaFai Lau } 3158a138aedSMartin KaFai Lau 3168a138aedSMartin KaFai Lau return -ENOENT; 3178a138aedSMartin KaFai Lau } 3188a138aedSMartin KaFai Lau 319*1442e287SAlexei Starovoitov __s32 btf__find_by_name_kind(const struct btf *btf, const char *type_name, 320*1442e287SAlexei Starovoitov __u32 kind) 321*1442e287SAlexei Starovoitov { 322*1442e287SAlexei Starovoitov __u32 i; 323*1442e287SAlexei Starovoitov 324*1442e287SAlexei Starovoitov if (kind == BTF_KIND_UNKN || !strcmp(type_name, "void")) 325*1442e287SAlexei Starovoitov return 0; 326*1442e287SAlexei Starovoitov 327*1442e287SAlexei Starovoitov for (i = 1; i <= btf->nr_types; i++) { 328*1442e287SAlexei Starovoitov const struct btf_type *t = btf->types[i]; 329*1442e287SAlexei Starovoitov const char *name; 330*1442e287SAlexei Starovoitov 331*1442e287SAlexei Starovoitov if (btf_kind(t) != kind) 332*1442e287SAlexei Starovoitov continue; 333*1442e287SAlexei Starovoitov name = btf__name_by_offset(btf, t->name_off); 334*1442e287SAlexei Starovoitov if (name && !strcmp(type_name, name)) 335*1442e287SAlexei Starovoitov return i; 336*1442e287SAlexei Starovoitov } 337*1442e287SAlexei Starovoitov 338*1442e287SAlexei Starovoitov return -ENOENT; 339*1442e287SAlexei Starovoitov } 340*1442e287SAlexei Starovoitov 3418a138aedSMartin KaFai Lau void btf__free(struct btf *btf) 3428a138aedSMartin KaFai Lau { 3438a138aedSMartin KaFai Lau if (!btf) 3448a138aedSMartin KaFai Lau return; 3458a138aedSMartin KaFai Lau 3468a138aedSMartin KaFai Lau if (btf->fd != -1) 3478a138aedSMartin KaFai Lau close(btf->fd); 3488a138aedSMartin KaFai Lau 3498a138aedSMartin KaFai Lau free(btf->data); 3508a138aedSMartin KaFai Lau free(btf->types); 3518a138aedSMartin KaFai Lau free(btf); 3528a138aedSMartin KaFai Lau } 3538a138aedSMartin KaFai Lau 3548461ef8bSYonghong Song struct btf *btf__new(__u8 *data, __u32 size) 3558a138aedSMartin KaFai Lau { 3568a138aedSMartin KaFai Lau struct btf *btf; 3578a138aedSMartin KaFai Lau int err; 3588a138aedSMartin KaFai Lau 3598a138aedSMartin KaFai Lau btf = calloc(1, sizeof(struct btf)); 3608a138aedSMartin KaFai Lau if (!btf) 3618a138aedSMartin KaFai Lau return ERR_PTR(-ENOMEM); 3628a138aedSMartin KaFai Lau 3638a138aedSMartin KaFai Lau btf->fd = -1; 3648a138aedSMartin KaFai Lau 3658a138aedSMartin KaFai Lau btf->data = malloc(size); 3668a138aedSMartin KaFai Lau if (!btf->data) { 3678a138aedSMartin KaFai Lau err = -ENOMEM; 3688a138aedSMartin KaFai Lau goto done; 3698a138aedSMartin KaFai Lau } 3708a138aedSMartin KaFai Lau 3718a138aedSMartin KaFai Lau memcpy(btf->data, data, size); 3728a138aedSMartin KaFai Lau btf->data_size = size; 3738a138aedSMartin KaFai Lau 3748461ef8bSYonghong Song err = btf_parse_hdr(btf); 3758a138aedSMartin KaFai Lau if (err) 3768a138aedSMartin KaFai Lau goto done; 3778a138aedSMartin KaFai Lau 3788461ef8bSYonghong Song err = btf_parse_str_sec(btf); 3798a138aedSMartin KaFai Lau if (err) 3808a138aedSMartin KaFai Lau goto done; 3818a138aedSMartin KaFai Lau 3828461ef8bSYonghong Song err = btf_parse_type_sec(btf); 3838a138aedSMartin KaFai Lau 3848a138aedSMartin KaFai Lau done: 3858a138aedSMartin KaFai Lau if (err) { 3868a138aedSMartin KaFai Lau btf__free(btf); 3878a138aedSMartin KaFai Lau return ERR_PTR(err); 3888a138aedSMartin KaFai Lau } 3898a138aedSMartin KaFai Lau 3908a138aedSMartin KaFai Lau return btf; 3918a138aedSMartin KaFai Lau } 3928a138aedSMartin KaFai Lau 393e6c64855SAndrii Nakryiko static bool btf_check_endianness(const GElf_Ehdr *ehdr) 394e6c64855SAndrii Nakryiko { 395cdb2f920SArnaldo Carvalho de Melo #if __BYTE_ORDER == __LITTLE_ENDIAN 396e6c64855SAndrii Nakryiko return ehdr->e_ident[EI_DATA] == ELFDATA2LSB; 397cdb2f920SArnaldo Carvalho de Melo #elif __BYTE_ORDER == __BIG_ENDIAN 398e6c64855SAndrii Nakryiko return ehdr->e_ident[EI_DATA] == ELFDATA2MSB; 399e6c64855SAndrii Nakryiko #else 400e6c64855SAndrii Nakryiko # error "Unrecognized __BYTE_ORDER__" 401e6c64855SAndrii Nakryiko #endif 402e6c64855SAndrii Nakryiko } 403e6c64855SAndrii Nakryiko 404e6c64855SAndrii Nakryiko struct btf *btf__parse_elf(const char *path, struct btf_ext **btf_ext) 405e6c64855SAndrii Nakryiko { 406e6c64855SAndrii Nakryiko Elf_Data *btf_data = NULL, *btf_ext_data = NULL; 407e6c64855SAndrii Nakryiko int err = 0, fd = -1, idx = 0; 408e6c64855SAndrii Nakryiko struct btf *btf = NULL; 409e6c64855SAndrii Nakryiko Elf_Scn *scn = NULL; 410e6c64855SAndrii Nakryiko Elf *elf = NULL; 411e6c64855SAndrii Nakryiko GElf_Ehdr ehdr; 412e6c64855SAndrii Nakryiko 413e6c64855SAndrii Nakryiko if (elf_version(EV_CURRENT) == EV_NONE) { 414be18010eSKefeng Wang pr_warn("failed to init libelf for %s\n", path); 415e6c64855SAndrii Nakryiko return ERR_PTR(-LIBBPF_ERRNO__LIBELF); 416e6c64855SAndrii Nakryiko } 417e6c64855SAndrii Nakryiko 418e6c64855SAndrii Nakryiko fd = open(path, O_RDONLY); 419e6c64855SAndrii Nakryiko if (fd < 0) { 420e6c64855SAndrii Nakryiko err = -errno; 421be18010eSKefeng Wang pr_warn("failed to open %s: %s\n", path, strerror(errno)); 422e6c64855SAndrii Nakryiko return ERR_PTR(err); 423e6c64855SAndrii Nakryiko } 424e6c64855SAndrii Nakryiko 425e6c64855SAndrii Nakryiko err = -LIBBPF_ERRNO__FORMAT; 426e6c64855SAndrii Nakryiko 427e6c64855SAndrii Nakryiko elf = elf_begin(fd, ELF_C_READ, NULL); 428e6c64855SAndrii Nakryiko if (!elf) { 429be18010eSKefeng Wang pr_warn("failed to open %s as ELF file\n", path); 430e6c64855SAndrii Nakryiko goto done; 431e6c64855SAndrii Nakryiko } 432e6c64855SAndrii Nakryiko if (!gelf_getehdr(elf, &ehdr)) { 433be18010eSKefeng Wang pr_warn("failed to get EHDR from %s\n", path); 434e6c64855SAndrii Nakryiko goto done; 435e6c64855SAndrii Nakryiko } 436e6c64855SAndrii Nakryiko if (!btf_check_endianness(&ehdr)) { 437be18010eSKefeng Wang pr_warn("non-native ELF endianness is not supported\n"); 438e6c64855SAndrii Nakryiko goto done; 439e6c64855SAndrii Nakryiko } 440e6c64855SAndrii Nakryiko if (!elf_rawdata(elf_getscn(elf, ehdr.e_shstrndx), NULL)) { 441be18010eSKefeng Wang pr_warn("failed to get e_shstrndx from %s\n", path); 442e6c64855SAndrii Nakryiko goto done; 443e6c64855SAndrii Nakryiko } 444e6c64855SAndrii Nakryiko 445e6c64855SAndrii Nakryiko while ((scn = elf_nextscn(elf, scn)) != NULL) { 446e6c64855SAndrii Nakryiko GElf_Shdr sh; 447e6c64855SAndrii Nakryiko char *name; 448e6c64855SAndrii Nakryiko 449e6c64855SAndrii Nakryiko idx++; 450e6c64855SAndrii Nakryiko if (gelf_getshdr(scn, &sh) != &sh) { 451be18010eSKefeng Wang pr_warn("failed to get section(%d) header from %s\n", 452e6c64855SAndrii Nakryiko idx, path); 453e6c64855SAndrii Nakryiko goto done; 454e6c64855SAndrii Nakryiko } 455e6c64855SAndrii Nakryiko name = elf_strptr(elf, ehdr.e_shstrndx, sh.sh_name); 456e6c64855SAndrii Nakryiko if (!name) { 457be18010eSKefeng Wang pr_warn("failed to get section(%d) name from %s\n", 458e6c64855SAndrii Nakryiko idx, path); 459e6c64855SAndrii Nakryiko goto done; 460e6c64855SAndrii Nakryiko } 461e6c64855SAndrii Nakryiko if (strcmp(name, BTF_ELF_SEC) == 0) { 462e6c64855SAndrii Nakryiko btf_data = elf_getdata(scn, 0); 463e6c64855SAndrii Nakryiko if (!btf_data) { 464be18010eSKefeng Wang pr_warn("failed to get section(%d, %s) data from %s\n", 465e6c64855SAndrii Nakryiko idx, name, path); 466e6c64855SAndrii Nakryiko goto done; 467e6c64855SAndrii Nakryiko } 468e6c64855SAndrii Nakryiko continue; 469e6c64855SAndrii Nakryiko } else if (btf_ext && strcmp(name, BTF_EXT_ELF_SEC) == 0) { 470e6c64855SAndrii Nakryiko btf_ext_data = elf_getdata(scn, 0); 471e6c64855SAndrii Nakryiko if (!btf_ext_data) { 472be18010eSKefeng Wang pr_warn("failed to get section(%d, %s) data from %s\n", 473e6c64855SAndrii Nakryiko idx, name, path); 474e6c64855SAndrii Nakryiko goto done; 475e6c64855SAndrii Nakryiko } 476e6c64855SAndrii Nakryiko continue; 477e6c64855SAndrii Nakryiko } 478e6c64855SAndrii Nakryiko } 479e6c64855SAndrii Nakryiko 480e6c64855SAndrii Nakryiko err = 0; 481e6c64855SAndrii Nakryiko 482e6c64855SAndrii Nakryiko if (!btf_data) { 483e6c64855SAndrii Nakryiko err = -ENOENT; 484e6c64855SAndrii Nakryiko goto done; 485e6c64855SAndrii Nakryiko } 486e6c64855SAndrii Nakryiko btf = btf__new(btf_data->d_buf, btf_data->d_size); 487e6c64855SAndrii Nakryiko if (IS_ERR(btf)) 488e6c64855SAndrii Nakryiko goto done; 489e6c64855SAndrii Nakryiko 490e6c64855SAndrii Nakryiko if (btf_ext && btf_ext_data) { 491e6c64855SAndrii Nakryiko *btf_ext = btf_ext__new(btf_ext_data->d_buf, 492e6c64855SAndrii Nakryiko btf_ext_data->d_size); 493e6c64855SAndrii Nakryiko if (IS_ERR(*btf_ext)) 494e6c64855SAndrii Nakryiko goto done; 495e6c64855SAndrii Nakryiko } else if (btf_ext) { 496e6c64855SAndrii Nakryiko *btf_ext = NULL; 497e6c64855SAndrii Nakryiko } 498e6c64855SAndrii Nakryiko done: 499e6c64855SAndrii Nakryiko if (elf) 500e6c64855SAndrii Nakryiko elf_end(elf); 501e6c64855SAndrii Nakryiko close(fd); 502e6c64855SAndrii Nakryiko 503e6c64855SAndrii Nakryiko if (err) 504e6c64855SAndrii Nakryiko return ERR_PTR(err); 505e6c64855SAndrii Nakryiko /* 506e6c64855SAndrii Nakryiko * btf is always parsed before btf_ext, so no need to clean up 507e6c64855SAndrii Nakryiko * btf_ext, if btf loading failed 508e6c64855SAndrii Nakryiko */ 509e6c64855SAndrii Nakryiko if (IS_ERR(btf)) 510e6c64855SAndrii Nakryiko return btf; 511e6c64855SAndrii Nakryiko if (btf_ext && IS_ERR(*btf_ext)) { 512e6c64855SAndrii Nakryiko btf__free(btf); 513e6c64855SAndrii Nakryiko err = PTR_ERR(*btf_ext); 514e6c64855SAndrii Nakryiko return ERR_PTR(err); 515e6c64855SAndrii Nakryiko } 516e6c64855SAndrii Nakryiko return btf; 517e6c64855SAndrii Nakryiko } 518e6c64855SAndrii Nakryiko 5191713d68bSDaniel Borkmann static int compare_vsi_off(const void *_a, const void *_b) 5201713d68bSDaniel Borkmann { 5211713d68bSDaniel Borkmann const struct btf_var_secinfo *a = _a; 5221713d68bSDaniel Borkmann const struct btf_var_secinfo *b = _b; 5231713d68bSDaniel Borkmann 5241713d68bSDaniel Borkmann return a->offset - b->offset; 5251713d68bSDaniel Borkmann } 5261713d68bSDaniel Borkmann 5271713d68bSDaniel Borkmann static int btf_fixup_datasec(struct bpf_object *obj, struct btf *btf, 5281713d68bSDaniel Borkmann struct btf_type *t) 5291713d68bSDaniel Borkmann { 530b03bc685SAndrii Nakryiko __u32 size = 0, off = 0, i, vars = btf_vlen(t); 5311713d68bSDaniel Borkmann const char *name = btf__name_by_offset(btf, t->name_off); 5321713d68bSDaniel Borkmann const struct btf_type *t_var; 5331713d68bSDaniel Borkmann struct btf_var_secinfo *vsi; 534b03bc685SAndrii Nakryiko const struct btf_var *var; 5351713d68bSDaniel Borkmann int ret; 5361713d68bSDaniel Borkmann 5371713d68bSDaniel Borkmann if (!name) { 5381713d68bSDaniel Borkmann pr_debug("No name found in string section for DATASEC kind.\n"); 5391713d68bSDaniel Borkmann return -ENOENT; 5401713d68bSDaniel Borkmann } 5411713d68bSDaniel Borkmann 5421713d68bSDaniel Borkmann ret = bpf_object__section_size(obj, name, &size); 5431713d68bSDaniel Borkmann if (ret || !size || (t->size && t->size != size)) { 5441713d68bSDaniel Borkmann pr_debug("Invalid size for section %s: %u bytes\n", name, size); 5451713d68bSDaniel Borkmann return -ENOENT; 5461713d68bSDaniel Borkmann } 5471713d68bSDaniel Borkmann 5481713d68bSDaniel Borkmann t->size = size; 5491713d68bSDaniel Borkmann 550b03bc685SAndrii Nakryiko for (i = 0, vsi = btf_var_secinfos(t); i < vars; i++, vsi++) { 5511713d68bSDaniel Borkmann t_var = btf__type_by_id(btf, vsi->type); 552b03bc685SAndrii Nakryiko var = btf_var(t_var); 5531713d68bSDaniel Borkmann 554b03bc685SAndrii Nakryiko if (!btf_is_var(t_var)) { 5551713d68bSDaniel Borkmann pr_debug("Non-VAR type seen in section %s\n", name); 5561713d68bSDaniel Borkmann return -EINVAL; 5571713d68bSDaniel Borkmann } 5581713d68bSDaniel Borkmann 5591713d68bSDaniel Borkmann if (var->linkage == BTF_VAR_STATIC) 5601713d68bSDaniel Borkmann continue; 5611713d68bSDaniel Borkmann 5621713d68bSDaniel Borkmann name = btf__name_by_offset(btf, t_var->name_off); 5631713d68bSDaniel Borkmann if (!name) { 5641713d68bSDaniel Borkmann pr_debug("No name found in string section for VAR kind\n"); 5651713d68bSDaniel Borkmann return -ENOENT; 5661713d68bSDaniel Borkmann } 5671713d68bSDaniel Borkmann 5681713d68bSDaniel Borkmann ret = bpf_object__variable_offset(obj, name, &off); 5691713d68bSDaniel Borkmann if (ret) { 570b03bc685SAndrii Nakryiko pr_debug("No offset found in symbol table for VAR %s\n", 571b03bc685SAndrii Nakryiko name); 5721713d68bSDaniel Borkmann return -ENOENT; 5731713d68bSDaniel Borkmann } 5741713d68bSDaniel Borkmann 5751713d68bSDaniel Borkmann vsi->offset = off; 5761713d68bSDaniel Borkmann } 5771713d68bSDaniel Borkmann 5781713d68bSDaniel Borkmann qsort(t + 1, vars, sizeof(*vsi), compare_vsi_off); 5791713d68bSDaniel Borkmann return 0; 5801713d68bSDaniel Borkmann } 5811713d68bSDaniel Borkmann 5821713d68bSDaniel Borkmann int btf__finalize_data(struct bpf_object *obj, struct btf *btf) 5831713d68bSDaniel Borkmann { 5841713d68bSDaniel Borkmann int err = 0; 5851713d68bSDaniel Borkmann __u32 i; 5861713d68bSDaniel Borkmann 5871713d68bSDaniel Borkmann for (i = 1; i <= btf->nr_types; i++) { 5881713d68bSDaniel Borkmann struct btf_type *t = btf->types[i]; 5891713d68bSDaniel Borkmann 5901713d68bSDaniel Borkmann /* Loader needs to fix up some of the things compiler 5911713d68bSDaniel Borkmann * couldn't get its hands on while emitting BTF. This 5921713d68bSDaniel Borkmann * is section size and global variable offset. We use 5931713d68bSDaniel Borkmann * the info from the ELF itself for this purpose. 5941713d68bSDaniel Borkmann */ 595b03bc685SAndrii Nakryiko if (btf_is_datasec(t)) { 5961713d68bSDaniel Borkmann err = btf_fixup_datasec(obj, btf, t); 5971713d68bSDaniel Borkmann if (err) 5981713d68bSDaniel Borkmann break; 5991713d68bSDaniel Borkmann } 6001713d68bSDaniel Borkmann } 6011713d68bSDaniel Borkmann 6021713d68bSDaniel Borkmann return err; 6031713d68bSDaniel Borkmann } 6041713d68bSDaniel Borkmann 605d29d87f7SAndrii Nakryiko int btf__load(struct btf *btf) 606d29d87f7SAndrii Nakryiko { 607d29d87f7SAndrii Nakryiko __u32 log_buf_size = BPF_LOG_BUF_SIZE; 608d29d87f7SAndrii Nakryiko char *log_buf = NULL; 609d29d87f7SAndrii Nakryiko int err = 0; 610d29d87f7SAndrii Nakryiko 611d29d87f7SAndrii Nakryiko if (btf->fd >= 0) 612d29d87f7SAndrii Nakryiko return -EEXIST; 613d29d87f7SAndrii Nakryiko 614d29d87f7SAndrii Nakryiko log_buf = malloc(log_buf_size); 615d29d87f7SAndrii Nakryiko if (!log_buf) 616d29d87f7SAndrii Nakryiko return -ENOMEM; 617d29d87f7SAndrii Nakryiko 618d29d87f7SAndrii Nakryiko *log_buf = 0; 619d29d87f7SAndrii Nakryiko 620d29d87f7SAndrii Nakryiko btf->fd = bpf_load_btf(btf->data, btf->data_size, 621d29d87f7SAndrii Nakryiko log_buf, log_buf_size, false); 622d29d87f7SAndrii Nakryiko if (btf->fd < 0) { 623d29d87f7SAndrii Nakryiko err = -errno; 624be18010eSKefeng Wang pr_warn("Error loading BTF: %s(%d)\n", strerror(errno), errno); 625d29d87f7SAndrii Nakryiko if (*log_buf) 626be18010eSKefeng Wang pr_warn("%s\n", log_buf); 627d29d87f7SAndrii Nakryiko goto done; 628d29d87f7SAndrii Nakryiko } 629d29d87f7SAndrii Nakryiko 630d29d87f7SAndrii Nakryiko done: 631d29d87f7SAndrii Nakryiko free(log_buf); 632d29d87f7SAndrii Nakryiko return err; 633d29d87f7SAndrii Nakryiko } 634d29d87f7SAndrii Nakryiko 6358a138aedSMartin KaFai Lau int btf__fd(const struct btf *btf) 6368a138aedSMartin KaFai Lau { 6378a138aedSMartin KaFai Lau return btf->fd; 6388a138aedSMartin KaFai Lau } 63992b57121SOkash Khawaja 64002c87446SAndrii Nakryiko const void *btf__get_raw_data(const struct btf *btf, __u32 *size) 64102c87446SAndrii Nakryiko { 64202c87446SAndrii Nakryiko *size = btf->data_size; 64302c87446SAndrii Nakryiko return btf->data; 64402c87446SAndrii Nakryiko } 64502c87446SAndrii Nakryiko 64692b57121SOkash Khawaja const char *btf__name_by_offset(const struct btf *btf, __u32 offset) 64792b57121SOkash Khawaja { 64892b57121SOkash Khawaja if (offset < btf->hdr->str_len) 64992b57121SOkash Khawaja return &btf->strings[offset]; 65092b57121SOkash Khawaja else 65192b57121SOkash Khawaja return NULL; 65292b57121SOkash Khawaja } 6532993e051SYonghong Song 6541d2f44caSMartin KaFai Lau int btf__get_from_id(__u32 id, struct btf **btf) 655d7f5b5e0SYonghong Song { 656d7f5b5e0SYonghong Song struct bpf_btf_info btf_info = { 0 }; 657d7f5b5e0SYonghong Song __u32 len = sizeof(btf_info); 658d7f5b5e0SYonghong Song __u32 last_size; 659d7f5b5e0SYonghong Song int btf_fd; 660d7f5b5e0SYonghong Song void *ptr; 661d7f5b5e0SYonghong Song int err; 662d7f5b5e0SYonghong Song 663d7f5b5e0SYonghong Song err = 0; 664d7f5b5e0SYonghong Song *btf = NULL; 665d7f5b5e0SYonghong Song btf_fd = bpf_btf_get_fd_by_id(id); 666d7f5b5e0SYonghong Song if (btf_fd < 0) 667d7f5b5e0SYonghong Song return 0; 668d7f5b5e0SYonghong Song 669d7f5b5e0SYonghong Song /* we won't know btf_size until we call bpf_obj_get_info_by_fd(). so 670d7f5b5e0SYonghong Song * let's start with a sane default - 4KiB here - and resize it only if 671d7f5b5e0SYonghong Song * bpf_obj_get_info_by_fd() needs a bigger buffer. 672d7f5b5e0SYonghong Song */ 673d7f5b5e0SYonghong Song btf_info.btf_size = 4096; 674d7f5b5e0SYonghong Song last_size = btf_info.btf_size; 675d7f5b5e0SYonghong Song ptr = malloc(last_size); 676d7f5b5e0SYonghong Song if (!ptr) { 677d7f5b5e0SYonghong Song err = -ENOMEM; 678d7f5b5e0SYonghong Song goto exit_free; 679d7f5b5e0SYonghong Song } 680d7f5b5e0SYonghong Song 6811ad9cbb8SAndrii Nakryiko memset(ptr, 0, last_size); 682d7f5b5e0SYonghong Song btf_info.btf = ptr_to_u64(ptr); 683d7f5b5e0SYonghong Song err = bpf_obj_get_info_by_fd(btf_fd, &btf_info, &len); 684d7f5b5e0SYonghong Song 685d7f5b5e0SYonghong Song if (!err && btf_info.btf_size > last_size) { 686d7f5b5e0SYonghong Song void *temp_ptr; 687d7f5b5e0SYonghong Song 688d7f5b5e0SYonghong Song last_size = btf_info.btf_size; 689d7f5b5e0SYonghong Song temp_ptr = realloc(ptr, last_size); 690d7f5b5e0SYonghong Song if (!temp_ptr) { 691d7f5b5e0SYonghong Song err = -ENOMEM; 692d7f5b5e0SYonghong Song goto exit_free; 693d7f5b5e0SYonghong Song } 694d7f5b5e0SYonghong Song ptr = temp_ptr; 6951ad9cbb8SAndrii Nakryiko memset(ptr, 0, last_size); 696d7f5b5e0SYonghong Song btf_info.btf = ptr_to_u64(ptr); 697d7f5b5e0SYonghong Song err = bpf_obj_get_info_by_fd(btf_fd, &btf_info, &len); 698d7f5b5e0SYonghong Song } 699d7f5b5e0SYonghong Song 700d7f5b5e0SYonghong Song if (err || btf_info.btf_size > last_size) { 701d7f5b5e0SYonghong Song err = errno; 702d7f5b5e0SYonghong Song goto exit_free; 703d7f5b5e0SYonghong Song } 704d7f5b5e0SYonghong Song 7058461ef8bSYonghong Song *btf = btf__new((__u8 *)(long)btf_info.btf, btf_info.btf_size); 706d7f5b5e0SYonghong Song if (IS_ERR(*btf)) { 707d7f5b5e0SYonghong Song err = PTR_ERR(*btf); 708d7f5b5e0SYonghong Song *btf = NULL; 709d7f5b5e0SYonghong Song } 710d7f5b5e0SYonghong Song 711d7f5b5e0SYonghong Song exit_free: 712d7f5b5e0SYonghong Song close(btf_fd); 713d7f5b5e0SYonghong Song free(ptr); 714d7f5b5e0SYonghong Song 715d7f5b5e0SYonghong Song return err; 716d7f5b5e0SYonghong Song } 717d7f5b5e0SYonghong Song 718a6c109a6SYonghong Song int btf__get_map_kv_tids(const struct btf *btf, const char *map_name, 71996408c43SYonghong Song __u32 expected_key_size, __u32 expected_value_size, 72096408c43SYonghong Song __u32 *key_type_id, __u32 *value_type_id) 72196408c43SYonghong Song { 72296408c43SYonghong Song const struct btf_type *container_type; 72396408c43SYonghong Song const struct btf_member *key, *value; 72496408c43SYonghong Song const size_t max_name = 256; 72596408c43SYonghong Song char container_name[max_name]; 72696408c43SYonghong Song __s64 key_size, value_size; 72796408c43SYonghong Song __s32 container_id; 72896408c43SYonghong Song 72996408c43SYonghong Song if (snprintf(container_name, max_name, "____btf_map_%s", map_name) == 73096408c43SYonghong Song max_name) { 731be18010eSKefeng Wang pr_warn("map:%s length of '____btf_map_%s' is too long\n", 73296408c43SYonghong Song map_name, map_name); 73396408c43SYonghong Song return -EINVAL; 73496408c43SYonghong Song } 73596408c43SYonghong Song 73696408c43SYonghong Song container_id = btf__find_by_name(btf, container_name); 73796408c43SYonghong Song if (container_id < 0) { 738f7748e29SYonghong Song pr_debug("map:%s container_name:%s cannot be found in BTF. Missing BPF_ANNOTATE_KV_PAIR?\n", 73996408c43SYonghong Song map_name, container_name); 74096408c43SYonghong Song return container_id; 74196408c43SYonghong Song } 74296408c43SYonghong Song 74396408c43SYonghong Song container_type = btf__type_by_id(btf, container_id); 74496408c43SYonghong Song if (!container_type) { 745be18010eSKefeng Wang pr_warn("map:%s cannot find BTF type for container_id:%u\n", 74696408c43SYonghong Song map_name, container_id); 74796408c43SYonghong Song return -EINVAL; 74896408c43SYonghong Song } 74996408c43SYonghong Song 750b03bc685SAndrii Nakryiko if (!btf_is_struct(container_type) || btf_vlen(container_type) < 2) { 751be18010eSKefeng Wang pr_warn("map:%s container_name:%s is an invalid container struct\n", 75296408c43SYonghong Song map_name, container_name); 75396408c43SYonghong Song return -EINVAL; 75496408c43SYonghong Song } 75596408c43SYonghong Song 756b03bc685SAndrii Nakryiko key = btf_members(container_type); 75796408c43SYonghong Song value = key + 1; 75896408c43SYonghong Song 75996408c43SYonghong Song key_size = btf__resolve_size(btf, key->type); 76096408c43SYonghong Song if (key_size < 0) { 761be18010eSKefeng Wang pr_warn("map:%s invalid BTF key_type_size\n", map_name); 76296408c43SYonghong Song return key_size; 76396408c43SYonghong Song } 76496408c43SYonghong Song 76596408c43SYonghong Song if (expected_key_size != key_size) { 766be18010eSKefeng Wang pr_warn("map:%s btf_key_type_size:%u != map_def_key_size:%u\n", 76796408c43SYonghong Song map_name, (__u32)key_size, expected_key_size); 76896408c43SYonghong Song return -EINVAL; 76996408c43SYonghong Song } 77096408c43SYonghong Song 77196408c43SYonghong Song value_size = btf__resolve_size(btf, value->type); 77296408c43SYonghong Song if (value_size < 0) { 773be18010eSKefeng Wang pr_warn("map:%s invalid BTF value_type_size\n", map_name); 77496408c43SYonghong Song return value_size; 77596408c43SYonghong Song } 77696408c43SYonghong Song 77796408c43SYonghong Song if (expected_value_size != value_size) { 778be18010eSKefeng Wang pr_warn("map:%s btf_value_type_size:%u != map_def_value_size:%u\n", 77996408c43SYonghong Song map_name, (__u32)value_size, expected_value_size); 78096408c43SYonghong Song return -EINVAL; 78196408c43SYonghong Song } 78296408c43SYonghong Song 78396408c43SYonghong Song *key_type_id = key->type; 78496408c43SYonghong Song *value_type_id = value->type; 78596408c43SYonghong Song 78696408c43SYonghong Song return 0; 78796408c43SYonghong Song } 78896408c43SYonghong Song 789ae4ab4b4SAndrii Nakryiko struct btf_ext_sec_setup_param { 7903d650141SMartin KaFai Lau __u32 off; 7913d650141SMartin KaFai Lau __u32 len; 7923d650141SMartin KaFai Lau __u32 min_rec_size; 7933d650141SMartin KaFai Lau struct btf_ext_info *ext_info; 7943d650141SMartin KaFai Lau const char *desc; 7953d650141SMartin KaFai Lau }; 7963d650141SMartin KaFai Lau 797ae4ab4b4SAndrii Nakryiko static int btf_ext_setup_info(struct btf_ext *btf_ext, 798ae4ab4b4SAndrii Nakryiko struct btf_ext_sec_setup_param *ext_sec) 7992993e051SYonghong Song { 8003d650141SMartin KaFai Lau const struct btf_ext_info_sec *sinfo; 8013d650141SMartin KaFai Lau struct btf_ext_info *ext_info; 802f0187f0bSMartin KaFai Lau __u32 info_left, record_size; 803f0187f0bSMartin KaFai Lau /* The start of the info sec (including the __u32 record_size). */ 804ae4ab4b4SAndrii Nakryiko void *info; 805f0187f0bSMartin KaFai Lau 8064cedc0daSAndrii Nakryiko if (ext_sec->len == 0) 8074cedc0daSAndrii Nakryiko return 0; 8084cedc0daSAndrii Nakryiko 8093d650141SMartin KaFai Lau if (ext_sec->off & 0x03) { 8108461ef8bSYonghong Song pr_debug(".BTF.ext %s section is not aligned to 4 bytes\n", 8113d650141SMartin KaFai Lau ext_sec->desc); 812f0187f0bSMartin KaFai Lau return -EINVAL; 813f0187f0bSMartin KaFai Lau } 814f0187f0bSMartin KaFai Lau 815ae4ab4b4SAndrii Nakryiko info = btf_ext->data + btf_ext->hdr->hdr_len + ext_sec->off; 816ae4ab4b4SAndrii Nakryiko info_left = ext_sec->len; 817ae4ab4b4SAndrii Nakryiko 818ae4ab4b4SAndrii Nakryiko if (btf_ext->data + btf_ext->data_size < info + ext_sec->len) { 8198461ef8bSYonghong Song pr_debug("%s section (off:%u len:%u) is beyond the end of the ELF section .BTF.ext\n", 8203d650141SMartin KaFai Lau ext_sec->desc, ext_sec->off, ext_sec->len); 821f0187f0bSMartin KaFai Lau return -EINVAL; 822f0187f0bSMartin KaFai Lau } 823f0187f0bSMartin KaFai Lau 8243d650141SMartin KaFai Lau /* At least a record size */ 825f0187f0bSMartin KaFai Lau if (info_left < sizeof(__u32)) { 8268461ef8bSYonghong Song pr_debug(".BTF.ext %s record size not found\n", ext_sec->desc); 8272993e051SYonghong Song return -EINVAL; 8282993e051SYonghong Song } 8292993e051SYonghong Song 830f0187f0bSMartin KaFai Lau /* The record size needs to meet the minimum standard */ 831f0187f0bSMartin KaFai Lau record_size = *(__u32 *)info; 8323d650141SMartin KaFai Lau if (record_size < ext_sec->min_rec_size || 833f0187f0bSMartin KaFai Lau record_size & 0x03) { 8348461ef8bSYonghong Song pr_debug("%s section in .BTF.ext has invalid record size %u\n", 8353d650141SMartin KaFai Lau ext_sec->desc, record_size); 8362993e051SYonghong Song return -EINVAL; 8372993e051SYonghong Song } 8382993e051SYonghong Song 839f0187f0bSMartin KaFai Lau sinfo = info + sizeof(__u32); 840f0187f0bSMartin KaFai Lau info_left -= sizeof(__u32); 8412993e051SYonghong Song 8423d650141SMartin KaFai Lau /* If no records, return failure now so .BTF.ext won't be used. */ 843f0187f0bSMartin KaFai Lau if (!info_left) { 8448461ef8bSYonghong Song pr_debug("%s section in .BTF.ext has no records", ext_sec->desc); 8452993e051SYonghong Song return -EINVAL; 8462993e051SYonghong Song } 8472993e051SYonghong Song 848f0187f0bSMartin KaFai Lau while (info_left) { 8493d650141SMartin KaFai Lau unsigned int sec_hdrlen = sizeof(struct btf_ext_info_sec); 850f0187f0bSMartin KaFai Lau __u64 total_record_size; 851f0187f0bSMartin KaFai Lau __u32 num_records; 852f0187f0bSMartin KaFai Lau 853f0187f0bSMartin KaFai Lau if (info_left < sec_hdrlen) { 8548461ef8bSYonghong Song pr_debug("%s section header is not found in .BTF.ext\n", 8553d650141SMartin KaFai Lau ext_sec->desc); 8562993e051SYonghong Song return -EINVAL; 8572993e051SYonghong Song } 8582993e051SYonghong Song 8593d650141SMartin KaFai Lau num_records = sinfo->num_info; 8602993e051SYonghong Song if (num_records == 0) { 8618461ef8bSYonghong Song pr_debug("%s section has incorrect num_records in .BTF.ext\n", 8623d650141SMartin KaFai Lau ext_sec->desc); 8632993e051SYonghong Song return -EINVAL; 8642993e051SYonghong Song } 8652993e051SYonghong Song 8662993e051SYonghong Song total_record_size = sec_hdrlen + 8672993e051SYonghong Song (__u64)num_records * record_size; 868f0187f0bSMartin KaFai Lau if (info_left < total_record_size) { 8698461ef8bSYonghong Song pr_debug("%s section has incorrect num_records in .BTF.ext\n", 8703d650141SMartin KaFai Lau ext_sec->desc); 8712993e051SYonghong Song return -EINVAL; 8722993e051SYonghong Song } 8732993e051SYonghong Song 874f0187f0bSMartin KaFai Lau info_left -= total_record_size; 8752993e051SYonghong Song sinfo = (void *)sinfo + total_record_size; 8762993e051SYonghong Song } 8772993e051SYonghong Song 8783d650141SMartin KaFai Lau ext_info = ext_sec->ext_info; 8793d650141SMartin KaFai Lau ext_info->len = ext_sec->len - sizeof(__u32); 8803d650141SMartin KaFai Lau ext_info->rec_size = record_size; 881ae4ab4b4SAndrii Nakryiko ext_info->info = info + sizeof(__u32); 882f0187f0bSMartin KaFai Lau 8832993e051SYonghong Song return 0; 8842993e051SYonghong Song } 8852993e051SYonghong Song 886ae4ab4b4SAndrii Nakryiko static int btf_ext_setup_func_info(struct btf_ext *btf_ext) 8873d650141SMartin KaFai Lau { 888ae4ab4b4SAndrii Nakryiko struct btf_ext_sec_setup_param param = { 889ae4ab4b4SAndrii Nakryiko .off = btf_ext->hdr->func_info_off, 890ae4ab4b4SAndrii Nakryiko .len = btf_ext->hdr->func_info_len, 8913d650141SMartin KaFai Lau .min_rec_size = sizeof(struct bpf_func_info_min), 8923d650141SMartin KaFai Lau .ext_info = &btf_ext->func_info, 8933d650141SMartin KaFai Lau .desc = "func_info" 8943d650141SMartin KaFai Lau }; 8953d650141SMartin KaFai Lau 896ae4ab4b4SAndrii Nakryiko return btf_ext_setup_info(btf_ext, ¶m); 8973d650141SMartin KaFai Lau } 8983d650141SMartin KaFai Lau 899ae4ab4b4SAndrii Nakryiko static int btf_ext_setup_line_info(struct btf_ext *btf_ext) 9003d650141SMartin KaFai Lau { 901ae4ab4b4SAndrii Nakryiko struct btf_ext_sec_setup_param param = { 902ae4ab4b4SAndrii Nakryiko .off = btf_ext->hdr->line_info_off, 903ae4ab4b4SAndrii Nakryiko .len = btf_ext->hdr->line_info_len, 9043d650141SMartin KaFai Lau .min_rec_size = sizeof(struct bpf_line_info_min), 9053d650141SMartin KaFai Lau .ext_info = &btf_ext->line_info, 9063d650141SMartin KaFai Lau .desc = "line_info", 9073d650141SMartin KaFai Lau }; 9083d650141SMartin KaFai Lau 909ae4ab4b4SAndrii Nakryiko return btf_ext_setup_info(btf_ext, ¶m); 9103d650141SMartin KaFai Lau } 9113d650141SMartin KaFai Lau 912511bb008SAndrii Nakryiko static int btf_ext_setup_field_reloc(struct btf_ext *btf_ext) 9134cedc0daSAndrii Nakryiko { 9144cedc0daSAndrii Nakryiko struct btf_ext_sec_setup_param param = { 915511bb008SAndrii Nakryiko .off = btf_ext->hdr->field_reloc_off, 916511bb008SAndrii Nakryiko .len = btf_ext->hdr->field_reloc_len, 917511bb008SAndrii Nakryiko .min_rec_size = sizeof(struct bpf_field_reloc), 918511bb008SAndrii Nakryiko .ext_info = &btf_ext->field_reloc_info, 919511bb008SAndrii Nakryiko .desc = "field_reloc", 9204cedc0daSAndrii Nakryiko }; 9214cedc0daSAndrii Nakryiko 9224cedc0daSAndrii Nakryiko return btf_ext_setup_info(btf_ext, ¶m); 9234cedc0daSAndrii Nakryiko } 9244cedc0daSAndrii Nakryiko 9258461ef8bSYonghong Song static int btf_ext_parse_hdr(__u8 *data, __u32 data_size) 9262993e051SYonghong Song { 9272993e051SYonghong Song const struct btf_ext_header *hdr = (struct btf_ext_header *)data; 9282993e051SYonghong Song 9294cedc0daSAndrii Nakryiko if (data_size < offsetofend(struct btf_ext_header, hdr_len) || 9302993e051SYonghong Song data_size < hdr->hdr_len) { 9318461ef8bSYonghong Song pr_debug("BTF.ext header not found"); 9322993e051SYonghong Song return -EINVAL; 9332993e051SYonghong Song } 9342993e051SYonghong Song 9352993e051SYonghong Song if (hdr->magic != BTF_MAGIC) { 9368461ef8bSYonghong Song pr_debug("Invalid BTF.ext magic:%x\n", hdr->magic); 9372993e051SYonghong Song return -EINVAL; 9382993e051SYonghong Song } 9392993e051SYonghong Song 9402993e051SYonghong Song if (hdr->version != BTF_VERSION) { 9418461ef8bSYonghong Song pr_debug("Unsupported BTF.ext version:%u\n", hdr->version); 9422993e051SYonghong Song return -ENOTSUP; 9432993e051SYonghong Song } 9442993e051SYonghong Song 9452993e051SYonghong Song if (hdr->flags) { 9468461ef8bSYonghong Song pr_debug("Unsupported BTF.ext flags:%x\n", hdr->flags); 9472993e051SYonghong Song return -ENOTSUP; 9482993e051SYonghong Song } 9492993e051SYonghong Song 950f0187f0bSMartin KaFai Lau if (data_size == hdr->hdr_len) { 9518461ef8bSYonghong Song pr_debug("BTF.ext has no data\n"); 9522993e051SYonghong Song return -EINVAL; 9532993e051SYonghong Song } 9542993e051SYonghong Song 955f0187f0bSMartin KaFai Lau return 0; 9562993e051SYonghong Song } 9572993e051SYonghong Song 9582993e051SYonghong Song void btf_ext__free(struct btf_ext *btf_ext) 9592993e051SYonghong Song { 9602993e051SYonghong Song if (!btf_ext) 9612993e051SYonghong Song return; 962ae4ab4b4SAndrii Nakryiko free(btf_ext->data); 9632993e051SYonghong Song free(btf_ext); 9642993e051SYonghong Song } 9652993e051SYonghong Song 9668461ef8bSYonghong Song struct btf_ext *btf_ext__new(__u8 *data, __u32 size) 9672993e051SYonghong Song { 9682993e051SYonghong Song struct btf_ext *btf_ext; 9692993e051SYonghong Song int err; 9702993e051SYonghong Song 9718461ef8bSYonghong Song err = btf_ext_parse_hdr(data, size); 9722993e051SYonghong Song if (err) 9732993e051SYonghong Song return ERR_PTR(err); 9742993e051SYonghong Song 9752993e051SYonghong Song btf_ext = calloc(1, sizeof(struct btf_ext)); 9762993e051SYonghong Song if (!btf_ext) 9772993e051SYonghong Song return ERR_PTR(-ENOMEM); 9782993e051SYonghong Song 979ae4ab4b4SAndrii Nakryiko btf_ext->data_size = size; 980ae4ab4b4SAndrii Nakryiko btf_ext->data = malloc(size); 981ae4ab4b4SAndrii Nakryiko if (!btf_ext->data) { 982ae4ab4b4SAndrii Nakryiko err = -ENOMEM; 983ae4ab4b4SAndrii Nakryiko goto done; 9842993e051SYonghong Song } 985ae4ab4b4SAndrii Nakryiko memcpy(btf_ext->data, data, size); 9862993e051SYonghong Song 9874cedc0daSAndrii Nakryiko if (btf_ext->hdr->hdr_len < 9884cedc0daSAndrii Nakryiko offsetofend(struct btf_ext_header, line_info_len)) 9894cedc0daSAndrii Nakryiko goto done; 990ae4ab4b4SAndrii Nakryiko err = btf_ext_setup_func_info(btf_ext); 991ae4ab4b4SAndrii Nakryiko if (err) 992ae4ab4b4SAndrii Nakryiko goto done; 993ae4ab4b4SAndrii Nakryiko 994ae4ab4b4SAndrii Nakryiko err = btf_ext_setup_line_info(btf_ext); 995ae4ab4b4SAndrii Nakryiko if (err) 996ae4ab4b4SAndrii Nakryiko goto done; 997ae4ab4b4SAndrii Nakryiko 9984cedc0daSAndrii Nakryiko if (btf_ext->hdr->hdr_len < 999511bb008SAndrii Nakryiko offsetofend(struct btf_ext_header, field_reloc_len)) 10004cedc0daSAndrii Nakryiko goto done; 1001511bb008SAndrii Nakryiko err = btf_ext_setup_field_reloc(btf_ext); 10024cedc0daSAndrii Nakryiko if (err) 10034cedc0daSAndrii Nakryiko goto done; 10044cedc0daSAndrii Nakryiko 1005ae4ab4b4SAndrii Nakryiko done: 10063d650141SMartin KaFai Lau if (err) { 10073d650141SMartin KaFai Lau btf_ext__free(btf_ext); 10083d650141SMartin KaFai Lau return ERR_PTR(err); 10093d650141SMartin KaFai Lau } 10103d650141SMartin KaFai Lau 10112993e051SYonghong Song return btf_ext; 10122993e051SYonghong Song } 10132993e051SYonghong Song 1014ae4ab4b4SAndrii Nakryiko const void *btf_ext__get_raw_data(const struct btf_ext *btf_ext, __u32 *size) 1015ae4ab4b4SAndrii Nakryiko { 1016ae4ab4b4SAndrii Nakryiko *size = btf_ext->data_size; 1017ae4ab4b4SAndrii Nakryiko return btf_ext->data; 1018ae4ab4b4SAndrii Nakryiko } 1019ae4ab4b4SAndrii Nakryiko 10203d650141SMartin KaFai Lau static int btf_ext_reloc_info(const struct btf *btf, 10213d650141SMartin KaFai Lau const struct btf_ext_info *ext_info, 10222993e051SYonghong Song const char *sec_name, __u32 insns_cnt, 10233d650141SMartin KaFai Lau void **info, __u32 *cnt) 10242993e051SYonghong Song { 10253d650141SMartin KaFai Lau __u32 sec_hdrlen = sizeof(struct btf_ext_info_sec); 10263d650141SMartin KaFai Lau __u32 i, record_size, existing_len, records_len; 10273d650141SMartin KaFai Lau struct btf_ext_info_sec *sinfo; 10282993e051SYonghong Song const char *info_sec_name; 10292993e051SYonghong Song __u64 remain_len; 10302993e051SYonghong Song void *data; 10312993e051SYonghong Song 10323d650141SMartin KaFai Lau record_size = ext_info->rec_size; 10333d650141SMartin KaFai Lau sinfo = ext_info->info; 10343d650141SMartin KaFai Lau remain_len = ext_info->len; 10352993e051SYonghong Song while (remain_len > 0) { 10363d650141SMartin KaFai Lau records_len = sinfo->num_info * record_size; 10372993e051SYonghong Song info_sec_name = btf__name_by_offset(btf, sinfo->sec_name_off); 10382993e051SYonghong Song if (strcmp(info_sec_name, sec_name)) { 10392993e051SYonghong Song remain_len -= sec_hdrlen + records_len; 10402993e051SYonghong Song sinfo = (void *)sinfo + sec_hdrlen + records_len; 10412993e051SYonghong Song continue; 10422993e051SYonghong Song } 10432993e051SYonghong Song 10443d650141SMartin KaFai Lau existing_len = (*cnt) * record_size; 10453d650141SMartin KaFai Lau data = realloc(*info, existing_len + records_len); 10462993e051SYonghong Song if (!data) 10472993e051SYonghong Song return -ENOMEM; 10482993e051SYonghong Song 10493d650141SMartin KaFai Lau memcpy(data + existing_len, sinfo->data, records_len); 105084ecc1f9SMartin KaFai Lau /* adjust insn_off only, the rest data will be passed 10512993e051SYonghong Song * to the kernel. 10522993e051SYonghong Song */ 10533d650141SMartin KaFai Lau for (i = 0; i < sinfo->num_info; i++) { 10543d650141SMartin KaFai Lau __u32 *insn_off; 10552993e051SYonghong Song 10563d650141SMartin KaFai Lau insn_off = data + existing_len + (i * record_size); 10573d650141SMartin KaFai Lau *insn_off = *insn_off / sizeof(struct bpf_insn) + 10582993e051SYonghong Song insns_cnt; 10592993e051SYonghong Song } 10603d650141SMartin KaFai Lau *info = data; 10613d650141SMartin KaFai Lau *cnt += sinfo->num_info; 10622993e051SYonghong Song return 0; 10632993e051SYonghong Song } 10642993e051SYonghong Song 1065f0187f0bSMartin KaFai Lau return -ENOENT; 1066f0187f0bSMartin KaFai Lau } 1067f0187f0bSMartin KaFai Lau 1068ae4ab4b4SAndrii Nakryiko int btf_ext__reloc_func_info(const struct btf *btf, 1069ae4ab4b4SAndrii Nakryiko const struct btf_ext *btf_ext, 10703d650141SMartin KaFai Lau const char *sec_name, __u32 insns_cnt, 10713d650141SMartin KaFai Lau void **func_info, __u32 *cnt) 10723d650141SMartin KaFai Lau { 10733d650141SMartin KaFai Lau return btf_ext_reloc_info(btf, &btf_ext->func_info, sec_name, 10743d650141SMartin KaFai Lau insns_cnt, func_info, cnt); 10753d650141SMartin KaFai Lau } 10763d650141SMartin KaFai Lau 1077ae4ab4b4SAndrii Nakryiko int btf_ext__reloc_line_info(const struct btf *btf, 1078ae4ab4b4SAndrii Nakryiko const struct btf_ext *btf_ext, 10793d650141SMartin KaFai Lau const char *sec_name, __u32 insns_cnt, 10803d650141SMartin KaFai Lau void **line_info, __u32 *cnt) 10813d650141SMartin KaFai Lau { 10823d650141SMartin KaFai Lau return btf_ext_reloc_info(btf, &btf_ext->line_info, sec_name, 10833d650141SMartin KaFai Lau insns_cnt, line_info, cnt); 10843d650141SMartin KaFai Lau } 10853d650141SMartin KaFai Lau 1086f0187f0bSMartin KaFai Lau __u32 btf_ext__func_info_rec_size(const struct btf_ext *btf_ext) 1087f0187f0bSMartin KaFai Lau { 10883d650141SMartin KaFai Lau return btf_ext->func_info.rec_size; 10893d650141SMartin KaFai Lau } 10903d650141SMartin KaFai Lau 10913d650141SMartin KaFai Lau __u32 btf_ext__line_info_rec_size(const struct btf_ext *btf_ext) 10923d650141SMartin KaFai Lau { 10933d650141SMartin KaFai Lau return btf_ext->line_info.rec_size; 10942993e051SYonghong Song } 1095d5caef5bSAndrii Nakryiko 1096d5caef5bSAndrii Nakryiko struct btf_dedup; 1097d5caef5bSAndrii Nakryiko 1098d5caef5bSAndrii Nakryiko static struct btf_dedup *btf_dedup_new(struct btf *btf, struct btf_ext *btf_ext, 1099d5caef5bSAndrii Nakryiko const struct btf_dedup_opts *opts); 1100d5caef5bSAndrii Nakryiko static void btf_dedup_free(struct btf_dedup *d); 1101d5caef5bSAndrii Nakryiko static int btf_dedup_strings(struct btf_dedup *d); 1102d5caef5bSAndrii Nakryiko static int btf_dedup_prim_types(struct btf_dedup *d); 1103d5caef5bSAndrii Nakryiko static int btf_dedup_struct_types(struct btf_dedup *d); 1104d5caef5bSAndrii Nakryiko static int btf_dedup_ref_types(struct btf_dedup *d); 1105d5caef5bSAndrii Nakryiko static int btf_dedup_compact_types(struct btf_dedup *d); 1106d5caef5bSAndrii Nakryiko static int btf_dedup_remap_types(struct btf_dedup *d); 1107d5caef5bSAndrii Nakryiko 1108d5caef5bSAndrii Nakryiko /* 1109d5caef5bSAndrii Nakryiko * Deduplicate BTF types and strings. 1110d5caef5bSAndrii Nakryiko * 1111d5caef5bSAndrii Nakryiko * BTF dedup algorithm takes as an input `struct btf` representing `.BTF` ELF 1112d5caef5bSAndrii Nakryiko * section with all BTF type descriptors and string data. It overwrites that 1113d5caef5bSAndrii Nakryiko * memory in-place with deduplicated types and strings without any loss of 1114d5caef5bSAndrii Nakryiko * information. If optional `struct btf_ext` representing '.BTF.ext' ELF section 1115d5caef5bSAndrii Nakryiko * is provided, all the strings referenced from .BTF.ext section are honored 1116d5caef5bSAndrii Nakryiko * and updated to point to the right offsets after deduplication. 1117d5caef5bSAndrii Nakryiko * 1118d5caef5bSAndrii Nakryiko * If function returns with error, type/string data might be garbled and should 1119d5caef5bSAndrii Nakryiko * be discarded. 1120d5caef5bSAndrii Nakryiko * 1121d5caef5bSAndrii Nakryiko * More verbose and detailed description of both problem btf_dedup is solving, 1122d5caef5bSAndrii Nakryiko * as well as solution could be found at: 1123d5caef5bSAndrii Nakryiko * https://facebookmicrosites.github.io/bpf/blog/2018/11/14/btf-enhancement.html 1124d5caef5bSAndrii Nakryiko * 1125d5caef5bSAndrii Nakryiko * Problem description and justification 1126d5caef5bSAndrii Nakryiko * ===================================== 1127d5caef5bSAndrii Nakryiko * 1128d5caef5bSAndrii Nakryiko * BTF type information is typically emitted either as a result of conversion 1129d5caef5bSAndrii Nakryiko * from DWARF to BTF or directly by compiler. In both cases, each compilation 1130d5caef5bSAndrii Nakryiko * unit contains information about a subset of all the types that are used 1131d5caef5bSAndrii Nakryiko * in an application. These subsets are frequently overlapping and contain a lot 1132d5caef5bSAndrii Nakryiko * of duplicated information when later concatenated together into a single 1133d5caef5bSAndrii Nakryiko * binary. This algorithm ensures that each unique type is represented by single 1134d5caef5bSAndrii Nakryiko * BTF type descriptor, greatly reducing resulting size of BTF data. 1135d5caef5bSAndrii Nakryiko * 1136d5caef5bSAndrii Nakryiko * Compilation unit isolation and subsequent duplication of data is not the only 1137d5caef5bSAndrii Nakryiko * problem. The same type hierarchy (e.g., struct and all the type that struct 1138d5caef5bSAndrii Nakryiko * references) in different compilation units can be represented in BTF to 1139d5caef5bSAndrii Nakryiko * various degrees of completeness (or, rather, incompleteness) due to 1140d5caef5bSAndrii Nakryiko * struct/union forward declarations. 1141d5caef5bSAndrii Nakryiko * 1142d5caef5bSAndrii Nakryiko * Let's take a look at an example, that we'll use to better understand the 1143d5caef5bSAndrii Nakryiko * problem (and solution). Suppose we have two compilation units, each using 1144d5caef5bSAndrii Nakryiko * same `struct S`, but each of them having incomplete type information about 1145d5caef5bSAndrii Nakryiko * struct's fields: 1146d5caef5bSAndrii Nakryiko * 1147d5caef5bSAndrii Nakryiko * // CU #1: 1148d5caef5bSAndrii Nakryiko * struct S; 1149d5caef5bSAndrii Nakryiko * struct A { 1150d5caef5bSAndrii Nakryiko * int a; 1151d5caef5bSAndrii Nakryiko * struct A* self; 1152d5caef5bSAndrii Nakryiko * struct S* parent; 1153d5caef5bSAndrii Nakryiko * }; 1154d5caef5bSAndrii Nakryiko * struct B; 1155d5caef5bSAndrii Nakryiko * struct S { 1156d5caef5bSAndrii Nakryiko * struct A* a_ptr; 1157d5caef5bSAndrii Nakryiko * struct B* b_ptr; 1158d5caef5bSAndrii Nakryiko * }; 1159d5caef5bSAndrii Nakryiko * 1160d5caef5bSAndrii Nakryiko * // CU #2: 1161d5caef5bSAndrii Nakryiko * struct S; 1162d5caef5bSAndrii Nakryiko * struct A; 1163d5caef5bSAndrii Nakryiko * struct B { 1164d5caef5bSAndrii Nakryiko * int b; 1165d5caef5bSAndrii Nakryiko * struct B* self; 1166d5caef5bSAndrii Nakryiko * struct S* parent; 1167d5caef5bSAndrii Nakryiko * }; 1168d5caef5bSAndrii Nakryiko * struct S { 1169d5caef5bSAndrii Nakryiko * struct A* a_ptr; 1170d5caef5bSAndrii Nakryiko * struct B* b_ptr; 1171d5caef5bSAndrii Nakryiko * }; 1172d5caef5bSAndrii Nakryiko * 1173d5caef5bSAndrii Nakryiko * In case of CU #1, BTF data will know only that `struct B` exist (but no 1174d5caef5bSAndrii Nakryiko * more), but will know the complete type information about `struct A`. While 1175d5caef5bSAndrii Nakryiko * for CU #2, it will know full type information about `struct B`, but will 1176d5caef5bSAndrii Nakryiko * only know about forward declaration of `struct A` (in BTF terms, it will 1177d5caef5bSAndrii Nakryiko * have `BTF_KIND_FWD` type descriptor with name `B`). 1178d5caef5bSAndrii Nakryiko * 1179d5caef5bSAndrii Nakryiko * This compilation unit isolation means that it's possible that there is no 1180d5caef5bSAndrii Nakryiko * single CU with complete type information describing structs `S`, `A`, and 1181d5caef5bSAndrii Nakryiko * `B`. Also, we might get tons of duplicated and redundant type information. 1182d5caef5bSAndrii Nakryiko * 1183d5caef5bSAndrii Nakryiko * Additional complication we need to keep in mind comes from the fact that 1184d5caef5bSAndrii Nakryiko * types, in general, can form graphs containing cycles, not just DAGs. 1185d5caef5bSAndrii Nakryiko * 1186d5caef5bSAndrii Nakryiko * While algorithm does deduplication, it also merges and resolves type 1187d5caef5bSAndrii Nakryiko * information (unless disabled throught `struct btf_opts`), whenever possible. 1188d5caef5bSAndrii Nakryiko * E.g., in the example above with two compilation units having partial type 1189d5caef5bSAndrii Nakryiko * information for structs `A` and `B`, the output of algorithm will emit 1190d5caef5bSAndrii Nakryiko * a single copy of each BTF type that describes structs `A`, `B`, and `S` 1191d5caef5bSAndrii Nakryiko * (as well as type information for `int` and pointers), as if they were defined 1192d5caef5bSAndrii Nakryiko * in a single compilation unit as: 1193d5caef5bSAndrii Nakryiko * 1194d5caef5bSAndrii Nakryiko * struct A { 1195d5caef5bSAndrii Nakryiko * int a; 1196d5caef5bSAndrii Nakryiko * struct A* self; 1197d5caef5bSAndrii Nakryiko * struct S* parent; 1198d5caef5bSAndrii Nakryiko * }; 1199d5caef5bSAndrii Nakryiko * struct B { 1200d5caef5bSAndrii Nakryiko * int b; 1201d5caef5bSAndrii Nakryiko * struct B* self; 1202d5caef5bSAndrii Nakryiko * struct S* parent; 1203d5caef5bSAndrii Nakryiko * }; 1204d5caef5bSAndrii Nakryiko * struct S { 1205d5caef5bSAndrii Nakryiko * struct A* a_ptr; 1206d5caef5bSAndrii Nakryiko * struct B* b_ptr; 1207d5caef5bSAndrii Nakryiko * }; 1208d5caef5bSAndrii Nakryiko * 1209d5caef5bSAndrii Nakryiko * Algorithm summary 1210d5caef5bSAndrii Nakryiko * ================= 1211d5caef5bSAndrii Nakryiko * 1212d5caef5bSAndrii Nakryiko * Algorithm completes its work in 6 separate passes: 1213d5caef5bSAndrii Nakryiko * 1214d5caef5bSAndrii Nakryiko * 1. Strings deduplication. 1215d5caef5bSAndrii Nakryiko * 2. Primitive types deduplication (int, enum, fwd). 1216d5caef5bSAndrii Nakryiko * 3. Struct/union types deduplication. 1217d5caef5bSAndrii Nakryiko * 4. Reference types deduplication (pointers, typedefs, arrays, funcs, func 1218d5caef5bSAndrii Nakryiko * protos, and const/volatile/restrict modifiers). 1219d5caef5bSAndrii Nakryiko * 5. Types compaction. 1220d5caef5bSAndrii Nakryiko * 6. Types remapping. 1221d5caef5bSAndrii Nakryiko * 1222d5caef5bSAndrii Nakryiko * Algorithm determines canonical type descriptor, which is a single 1223d5caef5bSAndrii Nakryiko * representative type for each truly unique type. This canonical type is the 1224d5caef5bSAndrii Nakryiko * one that will go into final deduplicated BTF type information. For 1225d5caef5bSAndrii Nakryiko * struct/unions, it is also the type that algorithm will merge additional type 1226d5caef5bSAndrii Nakryiko * information into (while resolving FWDs), as it discovers it from data in 1227d5caef5bSAndrii Nakryiko * other CUs. Each input BTF type eventually gets either mapped to itself, if 1228d5caef5bSAndrii Nakryiko * that type is canonical, or to some other type, if that type is equivalent 1229d5caef5bSAndrii Nakryiko * and was chosen as canonical representative. This mapping is stored in 1230d5caef5bSAndrii Nakryiko * `btf_dedup->map` array. This map is also used to record STRUCT/UNION that 1231d5caef5bSAndrii Nakryiko * FWD type got resolved to. 1232d5caef5bSAndrii Nakryiko * 1233d5caef5bSAndrii Nakryiko * To facilitate fast discovery of canonical types, we also maintain canonical 1234d5caef5bSAndrii Nakryiko * index (`btf_dedup->dedup_table`), which maps type descriptor's signature hash 1235d5caef5bSAndrii Nakryiko * (i.e., hashed kind, name, size, fields, etc) into a list of canonical types 1236d5caef5bSAndrii Nakryiko * that match that signature. With sufficiently good choice of type signature 1237d5caef5bSAndrii Nakryiko * hashing function, we can limit number of canonical types for each unique type 1238d5caef5bSAndrii Nakryiko * signature to a very small number, allowing to find canonical type for any 1239d5caef5bSAndrii Nakryiko * duplicated type very quickly. 1240d5caef5bSAndrii Nakryiko * 1241d5caef5bSAndrii Nakryiko * Struct/union deduplication is the most critical part and algorithm for 1242d5caef5bSAndrii Nakryiko * deduplicating structs/unions is described in greater details in comments for 1243d5caef5bSAndrii Nakryiko * `btf_dedup_is_equiv` function. 1244d5caef5bSAndrii Nakryiko */ 1245d5caef5bSAndrii Nakryiko int btf__dedup(struct btf *btf, struct btf_ext *btf_ext, 1246d5caef5bSAndrii Nakryiko const struct btf_dedup_opts *opts) 1247d5caef5bSAndrii Nakryiko { 1248d5caef5bSAndrii Nakryiko struct btf_dedup *d = btf_dedup_new(btf, btf_ext, opts); 1249d5caef5bSAndrii Nakryiko int err; 1250d5caef5bSAndrii Nakryiko 1251d5caef5bSAndrii Nakryiko if (IS_ERR(d)) { 1252d5caef5bSAndrii Nakryiko pr_debug("btf_dedup_new failed: %ld", PTR_ERR(d)); 1253d5caef5bSAndrii Nakryiko return -EINVAL; 1254d5caef5bSAndrii Nakryiko } 1255d5caef5bSAndrii Nakryiko 1256d5caef5bSAndrii Nakryiko err = btf_dedup_strings(d); 1257d5caef5bSAndrii Nakryiko if (err < 0) { 1258d5caef5bSAndrii Nakryiko pr_debug("btf_dedup_strings failed:%d\n", err); 1259d5caef5bSAndrii Nakryiko goto done; 1260d5caef5bSAndrii Nakryiko } 1261d5caef5bSAndrii Nakryiko err = btf_dedup_prim_types(d); 1262d5caef5bSAndrii Nakryiko if (err < 0) { 1263d5caef5bSAndrii Nakryiko pr_debug("btf_dedup_prim_types failed:%d\n", err); 1264d5caef5bSAndrii Nakryiko goto done; 1265d5caef5bSAndrii Nakryiko } 1266d5caef5bSAndrii Nakryiko err = btf_dedup_struct_types(d); 1267d5caef5bSAndrii Nakryiko if (err < 0) { 1268d5caef5bSAndrii Nakryiko pr_debug("btf_dedup_struct_types failed:%d\n", err); 1269d5caef5bSAndrii Nakryiko goto done; 1270d5caef5bSAndrii Nakryiko } 1271d5caef5bSAndrii Nakryiko err = btf_dedup_ref_types(d); 1272d5caef5bSAndrii Nakryiko if (err < 0) { 1273d5caef5bSAndrii Nakryiko pr_debug("btf_dedup_ref_types failed:%d\n", err); 1274d5caef5bSAndrii Nakryiko goto done; 1275d5caef5bSAndrii Nakryiko } 1276d5caef5bSAndrii Nakryiko err = btf_dedup_compact_types(d); 1277d5caef5bSAndrii Nakryiko if (err < 0) { 1278d5caef5bSAndrii Nakryiko pr_debug("btf_dedup_compact_types failed:%d\n", err); 1279d5caef5bSAndrii Nakryiko goto done; 1280d5caef5bSAndrii Nakryiko } 1281d5caef5bSAndrii Nakryiko err = btf_dedup_remap_types(d); 1282d5caef5bSAndrii Nakryiko if (err < 0) { 1283d5caef5bSAndrii Nakryiko pr_debug("btf_dedup_remap_types failed:%d\n", err); 1284d5caef5bSAndrii Nakryiko goto done; 1285d5caef5bSAndrii Nakryiko } 1286d5caef5bSAndrii Nakryiko 1287d5caef5bSAndrii Nakryiko done: 1288d5caef5bSAndrii Nakryiko btf_dedup_free(d); 1289d5caef5bSAndrii Nakryiko return err; 1290d5caef5bSAndrii Nakryiko } 1291d5caef5bSAndrii Nakryiko 1292d5caef5bSAndrii Nakryiko #define BTF_UNPROCESSED_ID ((__u32)-1) 1293d5caef5bSAndrii Nakryiko #define BTF_IN_PROGRESS_ID ((__u32)-2) 1294d5caef5bSAndrii Nakryiko 1295d5caef5bSAndrii Nakryiko struct btf_dedup { 1296d5caef5bSAndrii Nakryiko /* .BTF section to be deduped in-place */ 1297d5caef5bSAndrii Nakryiko struct btf *btf; 1298d5caef5bSAndrii Nakryiko /* 1299d5caef5bSAndrii Nakryiko * Optional .BTF.ext section. When provided, any strings referenced 1300d5caef5bSAndrii Nakryiko * from it will be taken into account when deduping strings 1301d5caef5bSAndrii Nakryiko */ 1302d5caef5bSAndrii Nakryiko struct btf_ext *btf_ext; 1303d5caef5bSAndrii Nakryiko /* 1304d5caef5bSAndrii Nakryiko * This is a map from any type's signature hash to a list of possible 1305d5caef5bSAndrii Nakryiko * canonical representative type candidates. Hash collisions are 1306d5caef5bSAndrii Nakryiko * ignored, so even types of various kinds can share same list of 1307d5caef5bSAndrii Nakryiko * candidates, which is fine because we rely on subsequent 1308d5caef5bSAndrii Nakryiko * btf_xxx_equal() checks to authoritatively verify type equality. 1309d5caef5bSAndrii Nakryiko */ 13102fc3fc0bSAndrii Nakryiko struct hashmap *dedup_table; 1311d5caef5bSAndrii Nakryiko /* Canonical types map */ 1312d5caef5bSAndrii Nakryiko __u32 *map; 1313d5caef5bSAndrii Nakryiko /* Hypothetical mapping, used during type graph equivalence checks */ 1314d5caef5bSAndrii Nakryiko __u32 *hypot_map; 1315d5caef5bSAndrii Nakryiko __u32 *hypot_list; 1316d5caef5bSAndrii Nakryiko size_t hypot_cnt; 1317d5caef5bSAndrii Nakryiko size_t hypot_cap; 1318d5caef5bSAndrii Nakryiko /* Various option modifying behavior of algorithm */ 1319d5caef5bSAndrii Nakryiko struct btf_dedup_opts opts; 1320d5caef5bSAndrii Nakryiko }; 1321d5caef5bSAndrii Nakryiko 1322d5caef5bSAndrii Nakryiko struct btf_str_ptr { 1323d5caef5bSAndrii Nakryiko const char *str; 1324d5caef5bSAndrii Nakryiko __u32 new_off; 1325d5caef5bSAndrii Nakryiko bool used; 1326d5caef5bSAndrii Nakryiko }; 1327d5caef5bSAndrii Nakryiko 1328d5caef5bSAndrii Nakryiko struct btf_str_ptrs { 1329d5caef5bSAndrii Nakryiko struct btf_str_ptr *ptrs; 1330d5caef5bSAndrii Nakryiko const char *data; 1331d5caef5bSAndrii Nakryiko __u32 cnt; 1332d5caef5bSAndrii Nakryiko __u32 cap; 1333d5caef5bSAndrii Nakryiko }; 1334d5caef5bSAndrii Nakryiko 13352fc3fc0bSAndrii Nakryiko static long hash_combine(long h, long value) 1336d5caef5bSAndrii Nakryiko { 13372fc3fc0bSAndrii Nakryiko return h * 31 + value; 1338d5caef5bSAndrii Nakryiko } 1339d5caef5bSAndrii Nakryiko 13402fc3fc0bSAndrii Nakryiko #define for_each_dedup_cand(d, node, hash) \ 13412fc3fc0bSAndrii Nakryiko hashmap__for_each_key_entry(d->dedup_table, node, (void *)hash) 1342d5caef5bSAndrii Nakryiko 13432fc3fc0bSAndrii Nakryiko static int btf_dedup_table_add(struct btf_dedup *d, long hash, __u32 type_id) 1344d5caef5bSAndrii Nakryiko { 13452fc3fc0bSAndrii Nakryiko return hashmap__append(d->dedup_table, 13462fc3fc0bSAndrii Nakryiko (void *)hash, (void *)(long)type_id); 1347d5caef5bSAndrii Nakryiko } 1348d5caef5bSAndrii Nakryiko 1349d5caef5bSAndrii Nakryiko static int btf_dedup_hypot_map_add(struct btf_dedup *d, 1350d5caef5bSAndrii Nakryiko __u32 from_id, __u32 to_id) 1351d5caef5bSAndrii Nakryiko { 1352d5caef5bSAndrii Nakryiko if (d->hypot_cnt == d->hypot_cap) { 1353d5caef5bSAndrii Nakryiko __u32 *new_list; 1354d5caef5bSAndrii Nakryiko 1355d5caef5bSAndrii Nakryiko d->hypot_cap += max(16, d->hypot_cap / 2); 1356d5caef5bSAndrii Nakryiko new_list = realloc(d->hypot_list, sizeof(__u32) * d->hypot_cap); 1357d5caef5bSAndrii Nakryiko if (!new_list) 1358d5caef5bSAndrii Nakryiko return -ENOMEM; 1359d5caef5bSAndrii Nakryiko d->hypot_list = new_list; 1360d5caef5bSAndrii Nakryiko } 1361d5caef5bSAndrii Nakryiko d->hypot_list[d->hypot_cnt++] = from_id; 1362d5caef5bSAndrii Nakryiko d->hypot_map[from_id] = to_id; 1363d5caef5bSAndrii Nakryiko return 0; 1364d5caef5bSAndrii Nakryiko } 1365d5caef5bSAndrii Nakryiko 1366d5caef5bSAndrii Nakryiko static void btf_dedup_clear_hypot_map(struct btf_dedup *d) 1367d5caef5bSAndrii Nakryiko { 1368d5caef5bSAndrii Nakryiko int i; 1369d5caef5bSAndrii Nakryiko 1370d5caef5bSAndrii Nakryiko for (i = 0; i < d->hypot_cnt; i++) 1371d5caef5bSAndrii Nakryiko d->hypot_map[d->hypot_list[i]] = BTF_UNPROCESSED_ID; 1372d5caef5bSAndrii Nakryiko d->hypot_cnt = 0; 1373d5caef5bSAndrii Nakryiko } 1374d5caef5bSAndrii Nakryiko 1375d5caef5bSAndrii Nakryiko static void btf_dedup_free(struct btf_dedup *d) 1376d5caef5bSAndrii Nakryiko { 13772fc3fc0bSAndrii Nakryiko hashmap__free(d->dedup_table); 13782fc3fc0bSAndrii Nakryiko d->dedup_table = NULL; 1379d5caef5bSAndrii Nakryiko 1380d5caef5bSAndrii Nakryiko free(d->map); 1381d5caef5bSAndrii Nakryiko d->map = NULL; 1382d5caef5bSAndrii Nakryiko 1383d5caef5bSAndrii Nakryiko free(d->hypot_map); 1384d5caef5bSAndrii Nakryiko d->hypot_map = NULL; 1385d5caef5bSAndrii Nakryiko 1386d5caef5bSAndrii Nakryiko free(d->hypot_list); 1387d5caef5bSAndrii Nakryiko d->hypot_list = NULL; 1388d5caef5bSAndrii Nakryiko 1389d5caef5bSAndrii Nakryiko free(d); 1390d5caef5bSAndrii Nakryiko } 1391d5caef5bSAndrii Nakryiko 13922fc3fc0bSAndrii Nakryiko static size_t btf_dedup_identity_hash_fn(const void *key, void *ctx) 139351edf5f6SAndrii Nakryiko { 13942fc3fc0bSAndrii Nakryiko return (size_t)key; 139551edf5f6SAndrii Nakryiko } 139651edf5f6SAndrii Nakryiko 13972fc3fc0bSAndrii Nakryiko static size_t btf_dedup_collision_hash_fn(const void *key, void *ctx) 13982fc3fc0bSAndrii Nakryiko { 13992fc3fc0bSAndrii Nakryiko return 0; 14002fc3fc0bSAndrii Nakryiko } 14012fc3fc0bSAndrii Nakryiko 14022fc3fc0bSAndrii Nakryiko static bool btf_dedup_equal_fn(const void *k1, const void *k2, void *ctx) 14032fc3fc0bSAndrii Nakryiko { 14042fc3fc0bSAndrii Nakryiko return k1 == k2; 14052fc3fc0bSAndrii Nakryiko } 140651edf5f6SAndrii Nakryiko 1407d5caef5bSAndrii Nakryiko static struct btf_dedup *btf_dedup_new(struct btf *btf, struct btf_ext *btf_ext, 1408d5caef5bSAndrii Nakryiko const struct btf_dedup_opts *opts) 1409d5caef5bSAndrii Nakryiko { 1410d5caef5bSAndrii Nakryiko struct btf_dedup *d = calloc(1, sizeof(struct btf_dedup)); 14112fc3fc0bSAndrii Nakryiko hashmap_hash_fn hash_fn = btf_dedup_identity_hash_fn; 1412d5caef5bSAndrii Nakryiko int i, err = 0; 1413d5caef5bSAndrii Nakryiko 1414d5caef5bSAndrii Nakryiko if (!d) 1415d5caef5bSAndrii Nakryiko return ERR_PTR(-ENOMEM); 1416d5caef5bSAndrii Nakryiko 141751edf5f6SAndrii Nakryiko d->opts.dont_resolve_fwds = opts && opts->dont_resolve_fwds; 14182fc3fc0bSAndrii Nakryiko /* dedup_table_size is now used only to force collisions in tests */ 14192fc3fc0bSAndrii Nakryiko if (opts && opts->dedup_table_size == 1) 14202fc3fc0bSAndrii Nakryiko hash_fn = btf_dedup_collision_hash_fn; 142151edf5f6SAndrii Nakryiko 1422d5caef5bSAndrii Nakryiko d->btf = btf; 1423d5caef5bSAndrii Nakryiko d->btf_ext = btf_ext; 1424d5caef5bSAndrii Nakryiko 14252fc3fc0bSAndrii Nakryiko d->dedup_table = hashmap__new(hash_fn, btf_dedup_equal_fn, NULL); 14262fc3fc0bSAndrii Nakryiko if (IS_ERR(d->dedup_table)) { 14272fc3fc0bSAndrii Nakryiko err = PTR_ERR(d->dedup_table); 14282fc3fc0bSAndrii Nakryiko d->dedup_table = NULL; 1429d5caef5bSAndrii Nakryiko goto done; 1430d5caef5bSAndrii Nakryiko } 1431d5caef5bSAndrii Nakryiko 1432d5caef5bSAndrii Nakryiko d->map = malloc(sizeof(__u32) * (1 + btf->nr_types)); 1433d5caef5bSAndrii Nakryiko if (!d->map) { 1434d5caef5bSAndrii Nakryiko err = -ENOMEM; 1435d5caef5bSAndrii Nakryiko goto done; 1436d5caef5bSAndrii Nakryiko } 1437d5caef5bSAndrii Nakryiko /* special BTF "void" type is made canonical immediately */ 1438d5caef5bSAndrii Nakryiko d->map[0] = 0; 1439189cf5a4SAndrii Nakryiko for (i = 1; i <= btf->nr_types; i++) { 1440189cf5a4SAndrii Nakryiko struct btf_type *t = d->btf->types[i]; 1441189cf5a4SAndrii Nakryiko 1442189cf5a4SAndrii Nakryiko /* VAR and DATASEC are never deduped and are self-canonical */ 1443b03bc685SAndrii Nakryiko if (btf_is_var(t) || btf_is_datasec(t)) 1444189cf5a4SAndrii Nakryiko d->map[i] = i; 1445189cf5a4SAndrii Nakryiko else 1446d5caef5bSAndrii Nakryiko d->map[i] = BTF_UNPROCESSED_ID; 1447189cf5a4SAndrii Nakryiko } 1448d5caef5bSAndrii Nakryiko 1449d5caef5bSAndrii Nakryiko d->hypot_map = malloc(sizeof(__u32) * (1 + btf->nr_types)); 1450d5caef5bSAndrii Nakryiko if (!d->hypot_map) { 1451d5caef5bSAndrii Nakryiko err = -ENOMEM; 1452d5caef5bSAndrii Nakryiko goto done; 1453d5caef5bSAndrii Nakryiko } 1454d5caef5bSAndrii Nakryiko for (i = 0; i <= btf->nr_types; i++) 1455d5caef5bSAndrii Nakryiko d->hypot_map[i] = BTF_UNPROCESSED_ID; 1456d5caef5bSAndrii Nakryiko 1457d5caef5bSAndrii Nakryiko done: 1458d5caef5bSAndrii Nakryiko if (err) { 1459d5caef5bSAndrii Nakryiko btf_dedup_free(d); 1460d5caef5bSAndrii Nakryiko return ERR_PTR(err); 1461d5caef5bSAndrii Nakryiko } 1462d5caef5bSAndrii Nakryiko 1463d5caef5bSAndrii Nakryiko return d; 1464d5caef5bSAndrii Nakryiko } 1465d5caef5bSAndrii Nakryiko 1466d5caef5bSAndrii Nakryiko typedef int (*str_off_fn_t)(__u32 *str_off_ptr, void *ctx); 1467d5caef5bSAndrii Nakryiko 1468d5caef5bSAndrii Nakryiko /* 1469d5caef5bSAndrii Nakryiko * Iterate over all possible places in .BTF and .BTF.ext that can reference 1470d5caef5bSAndrii Nakryiko * string and pass pointer to it to a provided callback `fn`. 1471d5caef5bSAndrii Nakryiko */ 1472d5caef5bSAndrii Nakryiko static int btf_for_each_str_off(struct btf_dedup *d, str_off_fn_t fn, void *ctx) 1473d5caef5bSAndrii Nakryiko { 1474d5caef5bSAndrii Nakryiko void *line_data_cur, *line_data_end; 1475d5caef5bSAndrii Nakryiko int i, j, r, rec_size; 1476d5caef5bSAndrii Nakryiko struct btf_type *t; 1477d5caef5bSAndrii Nakryiko 1478d5caef5bSAndrii Nakryiko for (i = 1; i <= d->btf->nr_types; i++) { 1479d5caef5bSAndrii Nakryiko t = d->btf->types[i]; 1480d5caef5bSAndrii Nakryiko r = fn(&t->name_off, ctx); 1481d5caef5bSAndrii Nakryiko if (r) 1482d5caef5bSAndrii Nakryiko return r; 1483d5caef5bSAndrii Nakryiko 1484b03bc685SAndrii Nakryiko switch (btf_kind(t)) { 1485d5caef5bSAndrii Nakryiko case BTF_KIND_STRUCT: 1486d5caef5bSAndrii Nakryiko case BTF_KIND_UNION: { 1487b03bc685SAndrii Nakryiko struct btf_member *m = btf_members(t); 1488b03bc685SAndrii Nakryiko __u16 vlen = btf_vlen(t); 1489d5caef5bSAndrii Nakryiko 1490d5caef5bSAndrii Nakryiko for (j = 0; j < vlen; j++) { 1491d5caef5bSAndrii Nakryiko r = fn(&m->name_off, ctx); 1492d5caef5bSAndrii Nakryiko if (r) 1493d5caef5bSAndrii Nakryiko return r; 1494d5caef5bSAndrii Nakryiko m++; 1495d5caef5bSAndrii Nakryiko } 1496d5caef5bSAndrii Nakryiko break; 1497d5caef5bSAndrii Nakryiko } 1498d5caef5bSAndrii Nakryiko case BTF_KIND_ENUM: { 1499b03bc685SAndrii Nakryiko struct btf_enum *m = btf_enum(t); 1500b03bc685SAndrii Nakryiko __u16 vlen = btf_vlen(t); 1501d5caef5bSAndrii Nakryiko 1502d5caef5bSAndrii Nakryiko for (j = 0; j < vlen; j++) { 1503d5caef5bSAndrii Nakryiko r = fn(&m->name_off, ctx); 1504d5caef5bSAndrii Nakryiko if (r) 1505d5caef5bSAndrii Nakryiko return r; 1506d5caef5bSAndrii Nakryiko m++; 1507d5caef5bSAndrii Nakryiko } 1508d5caef5bSAndrii Nakryiko break; 1509d5caef5bSAndrii Nakryiko } 1510d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC_PROTO: { 1511b03bc685SAndrii Nakryiko struct btf_param *m = btf_params(t); 1512b03bc685SAndrii Nakryiko __u16 vlen = btf_vlen(t); 1513d5caef5bSAndrii Nakryiko 1514d5caef5bSAndrii Nakryiko for (j = 0; j < vlen; j++) { 1515d5caef5bSAndrii Nakryiko r = fn(&m->name_off, ctx); 1516d5caef5bSAndrii Nakryiko if (r) 1517d5caef5bSAndrii Nakryiko return r; 1518d5caef5bSAndrii Nakryiko m++; 1519d5caef5bSAndrii Nakryiko } 1520d5caef5bSAndrii Nakryiko break; 1521d5caef5bSAndrii Nakryiko } 1522d5caef5bSAndrii Nakryiko default: 1523d5caef5bSAndrii Nakryiko break; 1524d5caef5bSAndrii Nakryiko } 1525d5caef5bSAndrii Nakryiko } 1526d5caef5bSAndrii Nakryiko 1527d5caef5bSAndrii Nakryiko if (!d->btf_ext) 1528d5caef5bSAndrii Nakryiko return 0; 1529d5caef5bSAndrii Nakryiko 1530d5caef5bSAndrii Nakryiko line_data_cur = d->btf_ext->line_info.info; 1531d5caef5bSAndrii Nakryiko line_data_end = d->btf_ext->line_info.info + d->btf_ext->line_info.len; 1532d5caef5bSAndrii Nakryiko rec_size = d->btf_ext->line_info.rec_size; 1533d5caef5bSAndrii Nakryiko 1534d5caef5bSAndrii Nakryiko while (line_data_cur < line_data_end) { 1535d5caef5bSAndrii Nakryiko struct btf_ext_info_sec *sec = line_data_cur; 1536d5caef5bSAndrii Nakryiko struct bpf_line_info_min *line_info; 1537d5caef5bSAndrii Nakryiko __u32 num_info = sec->num_info; 1538d5caef5bSAndrii Nakryiko 1539d5caef5bSAndrii Nakryiko r = fn(&sec->sec_name_off, ctx); 1540d5caef5bSAndrii Nakryiko if (r) 1541d5caef5bSAndrii Nakryiko return r; 1542d5caef5bSAndrii Nakryiko 1543d5caef5bSAndrii Nakryiko line_data_cur += sizeof(struct btf_ext_info_sec); 1544d5caef5bSAndrii Nakryiko for (i = 0; i < num_info; i++) { 1545d5caef5bSAndrii Nakryiko line_info = line_data_cur; 1546d5caef5bSAndrii Nakryiko r = fn(&line_info->file_name_off, ctx); 1547d5caef5bSAndrii Nakryiko if (r) 1548d5caef5bSAndrii Nakryiko return r; 1549d5caef5bSAndrii Nakryiko r = fn(&line_info->line_off, ctx); 1550d5caef5bSAndrii Nakryiko if (r) 1551d5caef5bSAndrii Nakryiko return r; 1552d5caef5bSAndrii Nakryiko line_data_cur += rec_size; 1553d5caef5bSAndrii Nakryiko } 1554d5caef5bSAndrii Nakryiko } 1555d5caef5bSAndrii Nakryiko 1556d5caef5bSAndrii Nakryiko return 0; 1557d5caef5bSAndrii Nakryiko } 1558d5caef5bSAndrii Nakryiko 1559d5caef5bSAndrii Nakryiko static int str_sort_by_content(const void *a1, const void *a2) 1560d5caef5bSAndrii Nakryiko { 1561d5caef5bSAndrii Nakryiko const struct btf_str_ptr *p1 = a1; 1562d5caef5bSAndrii Nakryiko const struct btf_str_ptr *p2 = a2; 1563d5caef5bSAndrii Nakryiko 1564d5caef5bSAndrii Nakryiko return strcmp(p1->str, p2->str); 1565d5caef5bSAndrii Nakryiko } 1566d5caef5bSAndrii Nakryiko 1567d5caef5bSAndrii Nakryiko static int str_sort_by_offset(const void *a1, const void *a2) 1568d5caef5bSAndrii Nakryiko { 1569d5caef5bSAndrii Nakryiko const struct btf_str_ptr *p1 = a1; 1570d5caef5bSAndrii Nakryiko const struct btf_str_ptr *p2 = a2; 1571d5caef5bSAndrii Nakryiko 1572d5caef5bSAndrii Nakryiko if (p1->str != p2->str) 1573d5caef5bSAndrii Nakryiko return p1->str < p2->str ? -1 : 1; 1574d5caef5bSAndrii Nakryiko return 0; 1575d5caef5bSAndrii Nakryiko } 1576d5caef5bSAndrii Nakryiko 1577d5caef5bSAndrii Nakryiko static int btf_dedup_str_ptr_cmp(const void *str_ptr, const void *pelem) 1578d5caef5bSAndrii Nakryiko { 1579d5caef5bSAndrii Nakryiko const struct btf_str_ptr *p = pelem; 1580d5caef5bSAndrii Nakryiko 1581d5caef5bSAndrii Nakryiko if (str_ptr != p->str) 1582d5caef5bSAndrii Nakryiko return (const char *)str_ptr < p->str ? -1 : 1; 1583d5caef5bSAndrii Nakryiko return 0; 1584d5caef5bSAndrii Nakryiko } 1585d5caef5bSAndrii Nakryiko 1586d5caef5bSAndrii Nakryiko static int btf_str_mark_as_used(__u32 *str_off_ptr, void *ctx) 1587d5caef5bSAndrii Nakryiko { 1588d5caef5bSAndrii Nakryiko struct btf_str_ptrs *strs; 1589d5caef5bSAndrii Nakryiko struct btf_str_ptr *s; 1590d5caef5bSAndrii Nakryiko 1591d5caef5bSAndrii Nakryiko if (*str_off_ptr == 0) 1592d5caef5bSAndrii Nakryiko return 0; 1593d5caef5bSAndrii Nakryiko 1594d5caef5bSAndrii Nakryiko strs = ctx; 1595d5caef5bSAndrii Nakryiko s = bsearch(strs->data + *str_off_ptr, strs->ptrs, strs->cnt, 1596d5caef5bSAndrii Nakryiko sizeof(struct btf_str_ptr), btf_dedup_str_ptr_cmp); 1597d5caef5bSAndrii Nakryiko if (!s) 1598d5caef5bSAndrii Nakryiko return -EINVAL; 1599d5caef5bSAndrii Nakryiko s->used = true; 1600d5caef5bSAndrii Nakryiko return 0; 1601d5caef5bSAndrii Nakryiko } 1602d5caef5bSAndrii Nakryiko 1603d5caef5bSAndrii Nakryiko static int btf_str_remap_offset(__u32 *str_off_ptr, void *ctx) 1604d5caef5bSAndrii Nakryiko { 1605d5caef5bSAndrii Nakryiko struct btf_str_ptrs *strs; 1606d5caef5bSAndrii Nakryiko struct btf_str_ptr *s; 1607d5caef5bSAndrii Nakryiko 1608d5caef5bSAndrii Nakryiko if (*str_off_ptr == 0) 1609d5caef5bSAndrii Nakryiko return 0; 1610d5caef5bSAndrii Nakryiko 1611d5caef5bSAndrii Nakryiko strs = ctx; 1612d5caef5bSAndrii Nakryiko s = bsearch(strs->data + *str_off_ptr, strs->ptrs, strs->cnt, 1613d5caef5bSAndrii Nakryiko sizeof(struct btf_str_ptr), btf_dedup_str_ptr_cmp); 1614d5caef5bSAndrii Nakryiko if (!s) 1615d5caef5bSAndrii Nakryiko return -EINVAL; 1616d5caef5bSAndrii Nakryiko *str_off_ptr = s->new_off; 1617d5caef5bSAndrii Nakryiko return 0; 1618d5caef5bSAndrii Nakryiko } 1619d5caef5bSAndrii Nakryiko 1620d5caef5bSAndrii Nakryiko /* 1621d5caef5bSAndrii Nakryiko * Dedup string and filter out those that are not referenced from either .BTF 1622d5caef5bSAndrii Nakryiko * or .BTF.ext (if provided) sections. 1623d5caef5bSAndrii Nakryiko * 1624d5caef5bSAndrii Nakryiko * This is done by building index of all strings in BTF's string section, 1625d5caef5bSAndrii Nakryiko * then iterating over all entities that can reference strings (e.g., type 1626d5caef5bSAndrii Nakryiko * names, struct field names, .BTF.ext line info, etc) and marking corresponding 1627d5caef5bSAndrii Nakryiko * strings as used. After that all used strings are deduped and compacted into 1628d5caef5bSAndrii Nakryiko * sequential blob of memory and new offsets are calculated. Then all the string 1629d5caef5bSAndrii Nakryiko * references are iterated again and rewritten using new offsets. 1630d5caef5bSAndrii Nakryiko */ 1631d5caef5bSAndrii Nakryiko static int btf_dedup_strings(struct btf_dedup *d) 1632d5caef5bSAndrii Nakryiko { 1633d5caef5bSAndrii Nakryiko const struct btf_header *hdr = d->btf->hdr; 1634d5caef5bSAndrii Nakryiko char *start = (char *)d->btf->nohdr_data + hdr->str_off; 1635d5caef5bSAndrii Nakryiko char *end = start + d->btf->hdr->str_len; 1636d5caef5bSAndrii Nakryiko char *p = start, *tmp_strs = NULL; 1637d5caef5bSAndrii Nakryiko struct btf_str_ptrs strs = { 1638d5caef5bSAndrii Nakryiko .cnt = 0, 1639d5caef5bSAndrii Nakryiko .cap = 0, 1640d5caef5bSAndrii Nakryiko .ptrs = NULL, 1641d5caef5bSAndrii Nakryiko .data = start, 1642d5caef5bSAndrii Nakryiko }; 1643d5caef5bSAndrii Nakryiko int i, j, err = 0, grp_idx; 1644d5caef5bSAndrii Nakryiko bool grp_used; 1645d5caef5bSAndrii Nakryiko 1646d5caef5bSAndrii Nakryiko /* build index of all strings */ 1647d5caef5bSAndrii Nakryiko while (p < end) { 1648d5caef5bSAndrii Nakryiko if (strs.cnt + 1 > strs.cap) { 1649d5caef5bSAndrii Nakryiko struct btf_str_ptr *new_ptrs; 1650d5caef5bSAndrii Nakryiko 1651d5caef5bSAndrii Nakryiko strs.cap += max(strs.cnt / 2, 16); 1652d5caef5bSAndrii Nakryiko new_ptrs = realloc(strs.ptrs, 1653d5caef5bSAndrii Nakryiko sizeof(strs.ptrs[0]) * strs.cap); 1654d5caef5bSAndrii Nakryiko if (!new_ptrs) { 1655d5caef5bSAndrii Nakryiko err = -ENOMEM; 1656d5caef5bSAndrii Nakryiko goto done; 1657d5caef5bSAndrii Nakryiko } 1658d5caef5bSAndrii Nakryiko strs.ptrs = new_ptrs; 1659d5caef5bSAndrii Nakryiko } 1660d5caef5bSAndrii Nakryiko 1661d5caef5bSAndrii Nakryiko strs.ptrs[strs.cnt].str = p; 1662d5caef5bSAndrii Nakryiko strs.ptrs[strs.cnt].used = false; 1663d5caef5bSAndrii Nakryiko 1664d5caef5bSAndrii Nakryiko p += strlen(p) + 1; 1665d5caef5bSAndrii Nakryiko strs.cnt++; 1666d5caef5bSAndrii Nakryiko } 1667d5caef5bSAndrii Nakryiko 1668d5caef5bSAndrii Nakryiko /* temporary storage for deduplicated strings */ 1669d5caef5bSAndrii Nakryiko tmp_strs = malloc(d->btf->hdr->str_len); 1670d5caef5bSAndrii Nakryiko if (!tmp_strs) { 1671d5caef5bSAndrii Nakryiko err = -ENOMEM; 1672d5caef5bSAndrii Nakryiko goto done; 1673d5caef5bSAndrii Nakryiko } 1674d5caef5bSAndrii Nakryiko 1675d5caef5bSAndrii Nakryiko /* mark all used strings */ 1676d5caef5bSAndrii Nakryiko strs.ptrs[0].used = true; 1677d5caef5bSAndrii Nakryiko err = btf_for_each_str_off(d, btf_str_mark_as_used, &strs); 1678d5caef5bSAndrii Nakryiko if (err) 1679d5caef5bSAndrii Nakryiko goto done; 1680d5caef5bSAndrii Nakryiko 1681d5caef5bSAndrii Nakryiko /* sort strings by context, so that we can identify duplicates */ 1682d5caef5bSAndrii Nakryiko qsort(strs.ptrs, strs.cnt, sizeof(strs.ptrs[0]), str_sort_by_content); 1683d5caef5bSAndrii Nakryiko 1684d5caef5bSAndrii Nakryiko /* 1685d5caef5bSAndrii Nakryiko * iterate groups of equal strings and if any instance in a group was 1686d5caef5bSAndrii Nakryiko * referenced, emit single instance and remember new offset 1687d5caef5bSAndrii Nakryiko */ 1688d5caef5bSAndrii Nakryiko p = tmp_strs; 1689d5caef5bSAndrii Nakryiko grp_idx = 0; 1690d5caef5bSAndrii Nakryiko grp_used = strs.ptrs[0].used; 1691d5caef5bSAndrii Nakryiko /* iterate past end to avoid code duplication after loop */ 1692d5caef5bSAndrii Nakryiko for (i = 1; i <= strs.cnt; i++) { 1693d5caef5bSAndrii Nakryiko /* 1694d5caef5bSAndrii Nakryiko * when i == strs.cnt, we want to skip string comparison and go 1695d5caef5bSAndrii Nakryiko * straight to handling last group of strings (otherwise we'd 1696d5caef5bSAndrii Nakryiko * need to handle last group after the loop w/ duplicated code) 1697d5caef5bSAndrii Nakryiko */ 1698d5caef5bSAndrii Nakryiko if (i < strs.cnt && 1699d5caef5bSAndrii Nakryiko !strcmp(strs.ptrs[i].str, strs.ptrs[grp_idx].str)) { 1700d5caef5bSAndrii Nakryiko grp_used = grp_used || strs.ptrs[i].used; 1701d5caef5bSAndrii Nakryiko continue; 1702d5caef5bSAndrii Nakryiko } 1703d5caef5bSAndrii Nakryiko 1704d5caef5bSAndrii Nakryiko /* 1705d5caef5bSAndrii Nakryiko * this check would have been required after the loop to handle 1706d5caef5bSAndrii Nakryiko * last group of strings, but due to <= condition in a loop 1707d5caef5bSAndrii Nakryiko * we avoid that duplication 1708d5caef5bSAndrii Nakryiko */ 1709d5caef5bSAndrii Nakryiko if (grp_used) { 1710d5caef5bSAndrii Nakryiko int new_off = p - tmp_strs; 1711d5caef5bSAndrii Nakryiko __u32 len = strlen(strs.ptrs[grp_idx].str); 1712d5caef5bSAndrii Nakryiko 1713d5caef5bSAndrii Nakryiko memmove(p, strs.ptrs[grp_idx].str, len + 1); 1714d5caef5bSAndrii Nakryiko for (j = grp_idx; j < i; j++) 1715d5caef5bSAndrii Nakryiko strs.ptrs[j].new_off = new_off; 1716d5caef5bSAndrii Nakryiko p += len + 1; 1717d5caef5bSAndrii Nakryiko } 1718d5caef5bSAndrii Nakryiko 1719d5caef5bSAndrii Nakryiko if (i < strs.cnt) { 1720d5caef5bSAndrii Nakryiko grp_idx = i; 1721d5caef5bSAndrii Nakryiko grp_used = strs.ptrs[i].used; 1722d5caef5bSAndrii Nakryiko } 1723d5caef5bSAndrii Nakryiko } 1724d5caef5bSAndrii Nakryiko 1725d5caef5bSAndrii Nakryiko /* replace original strings with deduped ones */ 1726d5caef5bSAndrii Nakryiko d->btf->hdr->str_len = p - tmp_strs; 1727d5caef5bSAndrii Nakryiko memmove(start, tmp_strs, d->btf->hdr->str_len); 1728d5caef5bSAndrii Nakryiko end = start + d->btf->hdr->str_len; 1729d5caef5bSAndrii Nakryiko 1730d5caef5bSAndrii Nakryiko /* restore original order for further binary search lookups */ 1731d5caef5bSAndrii Nakryiko qsort(strs.ptrs, strs.cnt, sizeof(strs.ptrs[0]), str_sort_by_offset); 1732d5caef5bSAndrii Nakryiko 1733d5caef5bSAndrii Nakryiko /* remap string offsets */ 1734d5caef5bSAndrii Nakryiko err = btf_for_each_str_off(d, btf_str_remap_offset, &strs); 1735d5caef5bSAndrii Nakryiko if (err) 1736d5caef5bSAndrii Nakryiko goto done; 1737d5caef5bSAndrii Nakryiko 1738d5caef5bSAndrii Nakryiko d->btf->hdr->str_len = end - start; 1739d5caef5bSAndrii Nakryiko 1740d5caef5bSAndrii Nakryiko done: 1741d5caef5bSAndrii Nakryiko free(tmp_strs); 1742d5caef5bSAndrii Nakryiko free(strs.ptrs); 1743d5caef5bSAndrii Nakryiko return err; 1744d5caef5bSAndrii Nakryiko } 1745d5caef5bSAndrii Nakryiko 17462fc3fc0bSAndrii Nakryiko static long btf_hash_common(struct btf_type *t) 1747d5caef5bSAndrii Nakryiko { 17482fc3fc0bSAndrii Nakryiko long h; 1749d5caef5bSAndrii Nakryiko 1750d5caef5bSAndrii Nakryiko h = hash_combine(0, t->name_off); 1751d5caef5bSAndrii Nakryiko h = hash_combine(h, t->info); 1752d5caef5bSAndrii Nakryiko h = hash_combine(h, t->size); 1753d5caef5bSAndrii Nakryiko return h; 1754d5caef5bSAndrii Nakryiko } 1755d5caef5bSAndrii Nakryiko 1756d5caef5bSAndrii Nakryiko static bool btf_equal_common(struct btf_type *t1, struct btf_type *t2) 1757d5caef5bSAndrii Nakryiko { 1758d5caef5bSAndrii Nakryiko return t1->name_off == t2->name_off && 1759d5caef5bSAndrii Nakryiko t1->info == t2->info && 1760d5caef5bSAndrii Nakryiko t1->size == t2->size; 1761d5caef5bSAndrii Nakryiko } 1762d5caef5bSAndrii Nakryiko 1763d5caef5bSAndrii Nakryiko /* Calculate type signature hash of INT. */ 17642fc3fc0bSAndrii Nakryiko static long btf_hash_int(struct btf_type *t) 1765d5caef5bSAndrii Nakryiko { 1766d5caef5bSAndrii Nakryiko __u32 info = *(__u32 *)(t + 1); 17672fc3fc0bSAndrii Nakryiko long h; 1768d5caef5bSAndrii Nakryiko 1769d5caef5bSAndrii Nakryiko h = btf_hash_common(t); 1770d5caef5bSAndrii Nakryiko h = hash_combine(h, info); 1771d5caef5bSAndrii Nakryiko return h; 1772d5caef5bSAndrii Nakryiko } 1773d5caef5bSAndrii Nakryiko 1774d5caef5bSAndrii Nakryiko /* Check structural equality of two INTs. */ 1775d5caef5bSAndrii Nakryiko static bool btf_equal_int(struct btf_type *t1, struct btf_type *t2) 1776d5caef5bSAndrii Nakryiko { 1777d5caef5bSAndrii Nakryiko __u32 info1, info2; 1778d5caef5bSAndrii Nakryiko 1779d5caef5bSAndrii Nakryiko if (!btf_equal_common(t1, t2)) 1780d5caef5bSAndrii Nakryiko return false; 1781d5caef5bSAndrii Nakryiko info1 = *(__u32 *)(t1 + 1); 1782d5caef5bSAndrii Nakryiko info2 = *(__u32 *)(t2 + 1); 1783d5caef5bSAndrii Nakryiko return info1 == info2; 1784d5caef5bSAndrii Nakryiko } 1785d5caef5bSAndrii Nakryiko 1786d5caef5bSAndrii Nakryiko /* Calculate type signature hash of ENUM. */ 17872fc3fc0bSAndrii Nakryiko static long btf_hash_enum(struct btf_type *t) 1788d5caef5bSAndrii Nakryiko { 17892fc3fc0bSAndrii Nakryiko long h; 1790d5caef5bSAndrii Nakryiko 17919768095bSAndrii Nakryiko /* don't hash vlen and enum members to support enum fwd resolving */ 17929768095bSAndrii Nakryiko h = hash_combine(0, t->name_off); 17939768095bSAndrii Nakryiko h = hash_combine(h, t->info & ~0xffff); 17949768095bSAndrii Nakryiko h = hash_combine(h, t->size); 1795d5caef5bSAndrii Nakryiko return h; 1796d5caef5bSAndrii Nakryiko } 1797d5caef5bSAndrii Nakryiko 1798d5caef5bSAndrii Nakryiko /* Check structural equality of two ENUMs. */ 1799d5caef5bSAndrii Nakryiko static bool btf_equal_enum(struct btf_type *t1, struct btf_type *t2) 1800d5caef5bSAndrii Nakryiko { 1801b03bc685SAndrii Nakryiko const struct btf_enum *m1, *m2; 1802d5caef5bSAndrii Nakryiko __u16 vlen; 1803d5caef5bSAndrii Nakryiko int i; 1804d5caef5bSAndrii Nakryiko 1805d5caef5bSAndrii Nakryiko if (!btf_equal_common(t1, t2)) 1806d5caef5bSAndrii Nakryiko return false; 1807d5caef5bSAndrii Nakryiko 1808b03bc685SAndrii Nakryiko vlen = btf_vlen(t1); 1809b03bc685SAndrii Nakryiko m1 = btf_enum(t1); 1810b03bc685SAndrii Nakryiko m2 = btf_enum(t2); 1811d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 1812d5caef5bSAndrii Nakryiko if (m1->name_off != m2->name_off || m1->val != m2->val) 1813d5caef5bSAndrii Nakryiko return false; 1814d5caef5bSAndrii Nakryiko m1++; 1815d5caef5bSAndrii Nakryiko m2++; 1816d5caef5bSAndrii Nakryiko } 1817d5caef5bSAndrii Nakryiko return true; 1818d5caef5bSAndrii Nakryiko } 1819d5caef5bSAndrii Nakryiko 18209768095bSAndrii Nakryiko static inline bool btf_is_enum_fwd(struct btf_type *t) 18219768095bSAndrii Nakryiko { 1822b03bc685SAndrii Nakryiko return btf_is_enum(t) && btf_vlen(t) == 0; 18239768095bSAndrii Nakryiko } 18249768095bSAndrii Nakryiko 18259768095bSAndrii Nakryiko static bool btf_compat_enum(struct btf_type *t1, struct btf_type *t2) 18269768095bSAndrii Nakryiko { 18279768095bSAndrii Nakryiko if (!btf_is_enum_fwd(t1) && !btf_is_enum_fwd(t2)) 18289768095bSAndrii Nakryiko return btf_equal_enum(t1, t2); 18299768095bSAndrii Nakryiko /* ignore vlen when comparing */ 18309768095bSAndrii Nakryiko return t1->name_off == t2->name_off && 18319768095bSAndrii Nakryiko (t1->info & ~0xffff) == (t2->info & ~0xffff) && 18329768095bSAndrii Nakryiko t1->size == t2->size; 18339768095bSAndrii Nakryiko } 18349768095bSAndrii Nakryiko 1835d5caef5bSAndrii Nakryiko /* 1836d5caef5bSAndrii Nakryiko * Calculate type signature hash of STRUCT/UNION, ignoring referenced type IDs, 1837d5caef5bSAndrii Nakryiko * as referenced type IDs equivalence is established separately during type 1838d5caef5bSAndrii Nakryiko * graph equivalence check algorithm. 1839d5caef5bSAndrii Nakryiko */ 18402fc3fc0bSAndrii Nakryiko static long btf_hash_struct(struct btf_type *t) 1841d5caef5bSAndrii Nakryiko { 1842b03bc685SAndrii Nakryiko const struct btf_member *member = btf_members(t); 1843b03bc685SAndrii Nakryiko __u32 vlen = btf_vlen(t); 18442fc3fc0bSAndrii Nakryiko long h = btf_hash_common(t); 1845d5caef5bSAndrii Nakryiko int i; 1846d5caef5bSAndrii Nakryiko 1847d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 1848d5caef5bSAndrii Nakryiko h = hash_combine(h, member->name_off); 1849d5caef5bSAndrii Nakryiko h = hash_combine(h, member->offset); 1850d5caef5bSAndrii Nakryiko /* no hashing of referenced type ID, it can be unresolved yet */ 1851d5caef5bSAndrii Nakryiko member++; 1852d5caef5bSAndrii Nakryiko } 1853d5caef5bSAndrii Nakryiko return h; 1854d5caef5bSAndrii Nakryiko } 1855d5caef5bSAndrii Nakryiko 1856d5caef5bSAndrii Nakryiko /* 1857d5caef5bSAndrii Nakryiko * Check structural compatibility of two FUNC_PROTOs, ignoring referenced type 1858d5caef5bSAndrii Nakryiko * IDs. This check is performed during type graph equivalence check and 1859d5caef5bSAndrii Nakryiko * referenced types equivalence is checked separately. 1860d5caef5bSAndrii Nakryiko */ 186191097fbeSAndrii Nakryiko static bool btf_shallow_equal_struct(struct btf_type *t1, struct btf_type *t2) 1862d5caef5bSAndrii Nakryiko { 1863b03bc685SAndrii Nakryiko const struct btf_member *m1, *m2; 1864d5caef5bSAndrii Nakryiko __u16 vlen; 1865d5caef5bSAndrii Nakryiko int i; 1866d5caef5bSAndrii Nakryiko 1867d5caef5bSAndrii Nakryiko if (!btf_equal_common(t1, t2)) 1868d5caef5bSAndrii Nakryiko return false; 1869d5caef5bSAndrii Nakryiko 1870b03bc685SAndrii Nakryiko vlen = btf_vlen(t1); 1871b03bc685SAndrii Nakryiko m1 = btf_members(t1); 1872b03bc685SAndrii Nakryiko m2 = btf_members(t2); 1873d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 1874d5caef5bSAndrii Nakryiko if (m1->name_off != m2->name_off || m1->offset != m2->offset) 1875d5caef5bSAndrii Nakryiko return false; 1876d5caef5bSAndrii Nakryiko m1++; 1877d5caef5bSAndrii Nakryiko m2++; 1878d5caef5bSAndrii Nakryiko } 1879d5caef5bSAndrii Nakryiko return true; 1880d5caef5bSAndrii Nakryiko } 1881d5caef5bSAndrii Nakryiko 1882d5caef5bSAndrii Nakryiko /* 1883d5caef5bSAndrii Nakryiko * Calculate type signature hash of ARRAY, including referenced type IDs, 1884d5caef5bSAndrii Nakryiko * under assumption that they were already resolved to canonical type IDs and 1885d5caef5bSAndrii Nakryiko * are not going to change. 1886d5caef5bSAndrii Nakryiko */ 18872fc3fc0bSAndrii Nakryiko static long btf_hash_array(struct btf_type *t) 1888d5caef5bSAndrii Nakryiko { 1889b03bc685SAndrii Nakryiko const struct btf_array *info = btf_array(t); 18902fc3fc0bSAndrii Nakryiko long h = btf_hash_common(t); 1891d5caef5bSAndrii Nakryiko 1892d5caef5bSAndrii Nakryiko h = hash_combine(h, info->type); 1893d5caef5bSAndrii Nakryiko h = hash_combine(h, info->index_type); 1894d5caef5bSAndrii Nakryiko h = hash_combine(h, info->nelems); 1895d5caef5bSAndrii Nakryiko return h; 1896d5caef5bSAndrii Nakryiko } 1897d5caef5bSAndrii Nakryiko 1898d5caef5bSAndrii Nakryiko /* 1899d5caef5bSAndrii Nakryiko * Check exact equality of two ARRAYs, taking into account referenced 1900d5caef5bSAndrii Nakryiko * type IDs, under assumption that they were already resolved to canonical 1901d5caef5bSAndrii Nakryiko * type IDs and are not going to change. 1902d5caef5bSAndrii Nakryiko * This function is called during reference types deduplication to compare 1903d5caef5bSAndrii Nakryiko * ARRAY to potential canonical representative. 1904d5caef5bSAndrii Nakryiko */ 1905d5caef5bSAndrii Nakryiko static bool btf_equal_array(struct btf_type *t1, struct btf_type *t2) 1906d5caef5bSAndrii Nakryiko { 1907b03bc685SAndrii Nakryiko const struct btf_array *info1, *info2; 1908d5caef5bSAndrii Nakryiko 1909d5caef5bSAndrii Nakryiko if (!btf_equal_common(t1, t2)) 1910d5caef5bSAndrii Nakryiko return false; 1911d5caef5bSAndrii Nakryiko 1912b03bc685SAndrii Nakryiko info1 = btf_array(t1); 1913b03bc685SAndrii Nakryiko info2 = btf_array(t2); 1914d5caef5bSAndrii Nakryiko return info1->type == info2->type && 1915d5caef5bSAndrii Nakryiko info1->index_type == info2->index_type && 1916d5caef5bSAndrii Nakryiko info1->nelems == info2->nelems; 1917d5caef5bSAndrii Nakryiko } 1918d5caef5bSAndrii Nakryiko 1919d5caef5bSAndrii Nakryiko /* 1920d5caef5bSAndrii Nakryiko * Check structural compatibility of two ARRAYs, ignoring referenced type 1921d5caef5bSAndrii Nakryiko * IDs. This check is performed during type graph equivalence check and 1922d5caef5bSAndrii Nakryiko * referenced types equivalence is checked separately. 1923d5caef5bSAndrii Nakryiko */ 1924d5caef5bSAndrii Nakryiko static bool btf_compat_array(struct btf_type *t1, struct btf_type *t2) 1925d5caef5bSAndrii Nakryiko { 1926d5caef5bSAndrii Nakryiko if (!btf_equal_common(t1, t2)) 1927d5caef5bSAndrii Nakryiko return false; 1928d5caef5bSAndrii Nakryiko 1929b03bc685SAndrii Nakryiko return btf_array(t1)->nelems == btf_array(t2)->nelems; 1930d5caef5bSAndrii Nakryiko } 1931d5caef5bSAndrii Nakryiko 1932d5caef5bSAndrii Nakryiko /* 1933d5caef5bSAndrii Nakryiko * Calculate type signature hash of FUNC_PROTO, including referenced type IDs, 1934d5caef5bSAndrii Nakryiko * under assumption that they were already resolved to canonical type IDs and 1935d5caef5bSAndrii Nakryiko * are not going to change. 1936d5caef5bSAndrii Nakryiko */ 19372fc3fc0bSAndrii Nakryiko static long btf_hash_fnproto(struct btf_type *t) 1938d5caef5bSAndrii Nakryiko { 1939b03bc685SAndrii Nakryiko const struct btf_param *member = btf_params(t); 1940b03bc685SAndrii Nakryiko __u16 vlen = btf_vlen(t); 19412fc3fc0bSAndrii Nakryiko long h = btf_hash_common(t); 1942d5caef5bSAndrii Nakryiko int i; 1943d5caef5bSAndrii Nakryiko 1944d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 1945d5caef5bSAndrii Nakryiko h = hash_combine(h, member->name_off); 1946d5caef5bSAndrii Nakryiko h = hash_combine(h, member->type); 1947d5caef5bSAndrii Nakryiko member++; 1948d5caef5bSAndrii Nakryiko } 1949d5caef5bSAndrii Nakryiko return h; 1950d5caef5bSAndrii Nakryiko } 1951d5caef5bSAndrii Nakryiko 1952d5caef5bSAndrii Nakryiko /* 1953d5caef5bSAndrii Nakryiko * Check exact equality of two FUNC_PROTOs, taking into account referenced 1954d5caef5bSAndrii Nakryiko * type IDs, under assumption that they were already resolved to canonical 1955d5caef5bSAndrii Nakryiko * type IDs and are not going to change. 1956d5caef5bSAndrii Nakryiko * This function is called during reference types deduplication to compare 1957d5caef5bSAndrii Nakryiko * FUNC_PROTO to potential canonical representative. 1958d5caef5bSAndrii Nakryiko */ 19592fc3fc0bSAndrii Nakryiko static bool btf_equal_fnproto(struct btf_type *t1, struct btf_type *t2) 1960d5caef5bSAndrii Nakryiko { 1961b03bc685SAndrii Nakryiko const struct btf_param *m1, *m2; 1962d5caef5bSAndrii Nakryiko __u16 vlen; 1963d5caef5bSAndrii Nakryiko int i; 1964d5caef5bSAndrii Nakryiko 1965d5caef5bSAndrii Nakryiko if (!btf_equal_common(t1, t2)) 1966d5caef5bSAndrii Nakryiko return false; 1967d5caef5bSAndrii Nakryiko 1968b03bc685SAndrii Nakryiko vlen = btf_vlen(t1); 1969b03bc685SAndrii Nakryiko m1 = btf_params(t1); 1970b03bc685SAndrii Nakryiko m2 = btf_params(t2); 1971d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 1972d5caef5bSAndrii Nakryiko if (m1->name_off != m2->name_off || m1->type != m2->type) 1973d5caef5bSAndrii Nakryiko return false; 1974d5caef5bSAndrii Nakryiko m1++; 1975d5caef5bSAndrii Nakryiko m2++; 1976d5caef5bSAndrii Nakryiko } 1977d5caef5bSAndrii Nakryiko return true; 1978d5caef5bSAndrii Nakryiko } 1979d5caef5bSAndrii Nakryiko 1980d5caef5bSAndrii Nakryiko /* 1981d5caef5bSAndrii Nakryiko * Check structural compatibility of two FUNC_PROTOs, ignoring referenced type 1982d5caef5bSAndrii Nakryiko * IDs. This check is performed during type graph equivalence check and 1983d5caef5bSAndrii Nakryiko * referenced types equivalence is checked separately. 1984d5caef5bSAndrii Nakryiko */ 19852fc3fc0bSAndrii Nakryiko static bool btf_compat_fnproto(struct btf_type *t1, struct btf_type *t2) 1986d5caef5bSAndrii Nakryiko { 1987b03bc685SAndrii Nakryiko const struct btf_param *m1, *m2; 1988d5caef5bSAndrii Nakryiko __u16 vlen; 1989d5caef5bSAndrii Nakryiko int i; 1990d5caef5bSAndrii Nakryiko 1991d5caef5bSAndrii Nakryiko /* skip return type ID */ 1992d5caef5bSAndrii Nakryiko if (t1->name_off != t2->name_off || t1->info != t2->info) 1993d5caef5bSAndrii Nakryiko return false; 1994d5caef5bSAndrii Nakryiko 1995b03bc685SAndrii Nakryiko vlen = btf_vlen(t1); 1996b03bc685SAndrii Nakryiko m1 = btf_params(t1); 1997b03bc685SAndrii Nakryiko m2 = btf_params(t2); 1998d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 1999d5caef5bSAndrii Nakryiko if (m1->name_off != m2->name_off) 2000d5caef5bSAndrii Nakryiko return false; 2001d5caef5bSAndrii Nakryiko m1++; 2002d5caef5bSAndrii Nakryiko m2++; 2003d5caef5bSAndrii Nakryiko } 2004d5caef5bSAndrii Nakryiko return true; 2005d5caef5bSAndrii Nakryiko } 2006d5caef5bSAndrii Nakryiko 2007d5caef5bSAndrii Nakryiko /* 2008d5caef5bSAndrii Nakryiko * Deduplicate primitive types, that can't reference other types, by calculating 2009d5caef5bSAndrii Nakryiko * their type signature hash and comparing them with any possible canonical 2010d5caef5bSAndrii Nakryiko * candidate. If no canonical candidate matches, type itself is marked as 2011d5caef5bSAndrii Nakryiko * canonical and is added into `btf_dedup->dedup_table` as another candidate. 2012d5caef5bSAndrii Nakryiko */ 2013d5caef5bSAndrii Nakryiko static int btf_dedup_prim_type(struct btf_dedup *d, __u32 type_id) 2014d5caef5bSAndrii Nakryiko { 2015d5caef5bSAndrii Nakryiko struct btf_type *t = d->btf->types[type_id]; 20162fc3fc0bSAndrii Nakryiko struct hashmap_entry *hash_entry; 2017d5caef5bSAndrii Nakryiko struct btf_type *cand; 2018d5caef5bSAndrii Nakryiko /* if we don't find equivalent type, then we are canonical */ 2019d5caef5bSAndrii Nakryiko __u32 new_id = type_id; 20202fc3fc0bSAndrii Nakryiko __u32 cand_id; 20212fc3fc0bSAndrii Nakryiko long h; 2022d5caef5bSAndrii Nakryiko 2023b03bc685SAndrii Nakryiko switch (btf_kind(t)) { 2024d5caef5bSAndrii Nakryiko case BTF_KIND_CONST: 2025d5caef5bSAndrii Nakryiko case BTF_KIND_VOLATILE: 2026d5caef5bSAndrii Nakryiko case BTF_KIND_RESTRICT: 2027d5caef5bSAndrii Nakryiko case BTF_KIND_PTR: 2028d5caef5bSAndrii Nakryiko case BTF_KIND_TYPEDEF: 2029d5caef5bSAndrii Nakryiko case BTF_KIND_ARRAY: 2030d5caef5bSAndrii Nakryiko case BTF_KIND_STRUCT: 2031d5caef5bSAndrii Nakryiko case BTF_KIND_UNION: 2032d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC: 2033d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC_PROTO: 2034189cf5a4SAndrii Nakryiko case BTF_KIND_VAR: 2035189cf5a4SAndrii Nakryiko case BTF_KIND_DATASEC: 2036d5caef5bSAndrii Nakryiko return 0; 2037d5caef5bSAndrii Nakryiko 2038d5caef5bSAndrii Nakryiko case BTF_KIND_INT: 2039d5caef5bSAndrii Nakryiko h = btf_hash_int(t); 20402fc3fc0bSAndrii Nakryiko for_each_dedup_cand(d, hash_entry, h) { 20412fc3fc0bSAndrii Nakryiko cand_id = (__u32)(long)hash_entry->value; 20422fc3fc0bSAndrii Nakryiko cand = d->btf->types[cand_id]; 2043d5caef5bSAndrii Nakryiko if (btf_equal_int(t, cand)) { 20442fc3fc0bSAndrii Nakryiko new_id = cand_id; 2045d5caef5bSAndrii Nakryiko break; 2046d5caef5bSAndrii Nakryiko } 2047d5caef5bSAndrii Nakryiko } 2048d5caef5bSAndrii Nakryiko break; 2049d5caef5bSAndrii Nakryiko 2050d5caef5bSAndrii Nakryiko case BTF_KIND_ENUM: 2051d5caef5bSAndrii Nakryiko h = btf_hash_enum(t); 20522fc3fc0bSAndrii Nakryiko for_each_dedup_cand(d, hash_entry, h) { 20532fc3fc0bSAndrii Nakryiko cand_id = (__u32)(long)hash_entry->value; 20542fc3fc0bSAndrii Nakryiko cand = d->btf->types[cand_id]; 2055d5caef5bSAndrii Nakryiko if (btf_equal_enum(t, cand)) { 20562fc3fc0bSAndrii Nakryiko new_id = cand_id; 2057d5caef5bSAndrii Nakryiko break; 2058d5caef5bSAndrii Nakryiko } 20599768095bSAndrii Nakryiko if (d->opts.dont_resolve_fwds) 20609768095bSAndrii Nakryiko continue; 20619768095bSAndrii Nakryiko if (btf_compat_enum(t, cand)) { 20629768095bSAndrii Nakryiko if (btf_is_enum_fwd(t)) { 20639768095bSAndrii Nakryiko /* resolve fwd to full enum */ 20642fc3fc0bSAndrii Nakryiko new_id = cand_id; 20659768095bSAndrii Nakryiko break; 20669768095bSAndrii Nakryiko } 20679768095bSAndrii Nakryiko /* resolve canonical enum fwd to full enum */ 20682fc3fc0bSAndrii Nakryiko d->map[cand_id] = type_id; 20699768095bSAndrii Nakryiko } 2070d5caef5bSAndrii Nakryiko } 2071d5caef5bSAndrii Nakryiko break; 2072d5caef5bSAndrii Nakryiko 2073d5caef5bSAndrii Nakryiko case BTF_KIND_FWD: 2074d5caef5bSAndrii Nakryiko h = btf_hash_common(t); 20752fc3fc0bSAndrii Nakryiko for_each_dedup_cand(d, hash_entry, h) { 20762fc3fc0bSAndrii Nakryiko cand_id = (__u32)(long)hash_entry->value; 20772fc3fc0bSAndrii Nakryiko cand = d->btf->types[cand_id]; 2078d5caef5bSAndrii Nakryiko if (btf_equal_common(t, cand)) { 20792fc3fc0bSAndrii Nakryiko new_id = cand_id; 2080d5caef5bSAndrii Nakryiko break; 2081d5caef5bSAndrii Nakryiko } 2082d5caef5bSAndrii Nakryiko } 2083d5caef5bSAndrii Nakryiko break; 2084d5caef5bSAndrii Nakryiko 2085d5caef5bSAndrii Nakryiko default: 2086d5caef5bSAndrii Nakryiko return -EINVAL; 2087d5caef5bSAndrii Nakryiko } 2088d5caef5bSAndrii Nakryiko 2089d5caef5bSAndrii Nakryiko d->map[type_id] = new_id; 2090d5caef5bSAndrii Nakryiko if (type_id == new_id && btf_dedup_table_add(d, h, type_id)) 2091d5caef5bSAndrii Nakryiko return -ENOMEM; 2092d5caef5bSAndrii Nakryiko 2093d5caef5bSAndrii Nakryiko return 0; 2094d5caef5bSAndrii Nakryiko } 2095d5caef5bSAndrii Nakryiko 2096d5caef5bSAndrii Nakryiko static int btf_dedup_prim_types(struct btf_dedup *d) 2097d5caef5bSAndrii Nakryiko { 2098d5caef5bSAndrii Nakryiko int i, err; 2099d5caef5bSAndrii Nakryiko 2100d5caef5bSAndrii Nakryiko for (i = 1; i <= d->btf->nr_types; i++) { 2101d5caef5bSAndrii Nakryiko err = btf_dedup_prim_type(d, i); 2102d5caef5bSAndrii Nakryiko if (err) 2103d5caef5bSAndrii Nakryiko return err; 2104d5caef5bSAndrii Nakryiko } 2105d5caef5bSAndrii Nakryiko return 0; 2106d5caef5bSAndrii Nakryiko } 2107d5caef5bSAndrii Nakryiko 2108d5caef5bSAndrii Nakryiko /* 2109d5caef5bSAndrii Nakryiko * Check whether type is already mapped into canonical one (could be to itself). 2110d5caef5bSAndrii Nakryiko */ 2111d5caef5bSAndrii Nakryiko static inline bool is_type_mapped(struct btf_dedup *d, uint32_t type_id) 2112d5caef5bSAndrii Nakryiko { 21135aab392cSAndrii Nakryiko return d->map[type_id] <= BTF_MAX_NR_TYPES; 2114d5caef5bSAndrii Nakryiko } 2115d5caef5bSAndrii Nakryiko 2116d5caef5bSAndrii Nakryiko /* 2117d5caef5bSAndrii Nakryiko * Resolve type ID into its canonical type ID, if any; otherwise return original 2118d5caef5bSAndrii Nakryiko * type ID. If type is FWD and is resolved into STRUCT/UNION already, follow 2119d5caef5bSAndrii Nakryiko * STRUCT/UNION link and resolve it into canonical type ID as well. 2120d5caef5bSAndrii Nakryiko */ 2121d5caef5bSAndrii Nakryiko static inline __u32 resolve_type_id(struct btf_dedup *d, __u32 type_id) 2122d5caef5bSAndrii Nakryiko { 2123d5caef5bSAndrii Nakryiko while (is_type_mapped(d, type_id) && d->map[type_id] != type_id) 2124d5caef5bSAndrii Nakryiko type_id = d->map[type_id]; 2125d5caef5bSAndrii Nakryiko return type_id; 2126d5caef5bSAndrii Nakryiko } 2127d5caef5bSAndrii Nakryiko 2128d5caef5bSAndrii Nakryiko /* 2129d5caef5bSAndrii Nakryiko * Resolve FWD to underlying STRUCT/UNION, if any; otherwise return original 2130d5caef5bSAndrii Nakryiko * type ID. 2131d5caef5bSAndrii Nakryiko */ 2132d5caef5bSAndrii Nakryiko static uint32_t resolve_fwd_id(struct btf_dedup *d, uint32_t type_id) 2133d5caef5bSAndrii Nakryiko { 2134d5caef5bSAndrii Nakryiko __u32 orig_type_id = type_id; 2135d5caef5bSAndrii Nakryiko 2136b03bc685SAndrii Nakryiko if (!btf_is_fwd(d->btf->types[type_id])) 2137d5caef5bSAndrii Nakryiko return type_id; 2138d5caef5bSAndrii Nakryiko 2139d5caef5bSAndrii Nakryiko while (is_type_mapped(d, type_id) && d->map[type_id] != type_id) 2140d5caef5bSAndrii Nakryiko type_id = d->map[type_id]; 2141d5caef5bSAndrii Nakryiko 2142b03bc685SAndrii Nakryiko if (!btf_is_fwd(d->btf->types[type_id])) 2143d5caef5bSAndrii Nakryiko return type_id; 2144d5caef5bSAndrii Nakryiko 2145d5caef5bSAndrii Nakryiko return orig_type_id; 2146d5caef5bSAndrii Nakryiko } 2147d5caef5bSAndrii Nakryiko 2148d5caef5bSAndrii Nakryiko 2149d5caef5bSAndrii Nakryiko static inline __u16 btf_fwd_kind(struct btf_type *t) 2150d5caef5bSAndrii Nakryiko { 2151b03bc685SAndrii Nakryiko return btf_kflag(t) ? BTF_KIND_UNION : BTF_KIND_STRUCT; 2152d5caef5bSAndrii Nakryiko } 2153d5caef5bSAndrii Nakryiko 2154d5caef5bSAndrii Nakryiko /* 2155d5caef5bSAndrii Nakryiko * Check equivalence of BTF type graph formed by candidate struct/union (we'll 2156d5caef5bSAndrii Nakryiko * call it "candidate graph" in this description for brevity) to a type graph 2157d5caef5bSAndrii Nakryiko * formed by (potential) canonical struct/union ("canonical graph" for brevity 2158d5caef5bSAndrii Nakryiko * here, though keep in mind that not all types in canonical graph are 2159d5caef5bSAndrii Nakryiko * necessarily canonical representatives themselves, some of them might be 2160d5caef5bSAndrii Nakryiko * duplicates or its uniqueness might not have been established yet). 2161d5caef5bSAndrii Nakryiko * Returns: 2162d5caef5bSAndrii Nakryiko * - >0, if type graphs are equivalent; 2163d5caef5bSAndrii Nakryiko * - 0, if not equivalent; 2164d5caef5bSAndrii Nakryiko * - <0, on error. 2165d5caef5bSAndrii Nakryiko * 2166d5caef5bSAndrii Nakryiko * Algorithm performs side-by-side DFS traversal of both type graphs and checks 2167d5caef5bSAndrii Nakryiko * equivalence of BTF types at each step. If at any point BTF types in candidate 2168d5caef5bSAndrii Nakryiko * and canonical graphs are not compatible structurally, whole graphs are 2169d5caef5bSAndrii Nakryiko * incompatible. If types are structurally equivalent (i.e., all information 2170d5caef5bSAndrii Nakryiko * except referenced type IDs is exactly the same), a mapping from `canon_id` to 2171d5caef5bSAndrii Nakryiko * a `cand_id` is recored in hypothetical mapping (`btf_dedup->hypot_map`). 2172d5caef5bSAndrii Nakryiko * If a type references other types, then those referenced types are checked 2173d5caef5bSAndrii Nakryiko * for equivalence recursively. 2174d5caef5bSAndrii Nakryiko * 2175d5caef5bSAndrii Nakryiko * During DFS traversal, if we find that for current `canon_id` type we 2176d5caef5bSAndrii Nakryiko * already have some mapping in hypothetical map, we check for two possible 2177d5caef5bSAndrii Nakryiko * situations: 2178d5caef5bSAndrii Nakryiko * - `canon_id` is mapped to exactly the same type as `cand_id`. This will 2179d5caef5bSAndrii Nakryiko * happen when type graphs have cycles. In this case we assume those two 2180d5caef5bSAndrii Nakryiko * types are equivalent. 2181d5caef5bSAndrii Nakryiko * - `canon_id` is mapped to different type. This is contradiction in our 2182d5caef5bSAndrii Nakryiko * hypothetical mapping, because same graph in canonical graph corresponds 2183d5caef5bSAndrii Nakryiko * to two different types in candidate graph, which for equivalent type 2184d5caef5bSAndrii Nakryiko * graphs shouldn't happen. This condition terminates equivalence check 2185d5caef5bSAndrii Nakryiko * with negative result. 2186d5caef5bSAndrii Nakryiko * 2187d5caef5bSAndrii Nakryiko * If type graphs traversal exhausts types to check and find no contradiction, 2188d5caef5bSAndrii Nakryiko * then type graphs are equivalent. 2189d5caef5bSAndrii Nakryiko * 2190d5caef5bSAndrii Nakryiko * When checking types for equivalence, there is one special case: FWD types. 2191d5caef5bSAndrii Nakryiko * If FWD type resolution is allowed and one of the types (either from canonical 2192d5caef5bSAndrii Nakryiko * or candidate graph) is FWD and other is STRUCT/UNION (depending on FWD's kind 2193d5caef5bSAndrii Nakryiko * flag) and their names match, hypothetical mapping is updated to point from 2194d5caef5bSAndrii Nakryiko * FWD to STRUCT/UNION. If graphs will be determined as equivalent successfully, 2195d5caef5bSAndrii Nakryiko * this mapping will be used to record FWD -> STRUCT/UNION mapping permanently. 2196d5caef5bSAndrii Nakryiko * 2197d5caef5bSAndrii Nakryiko * Technically, this could lead to incorrect FWD to STRUCT/UNION resolution, 2198d5caef5bSAndrii Nakryiko * if there are two exactly named (or anonymous) structs/unions that are 2199d5caef5bSAndrii Nakryiko * compatible structurally, one of which has FWD field, while other is concrete 2200d5caef5bSAndrii Nakryiko * STRUCT/UNION, but according to C sources they are different structs/unions 2201d5caef5bSAndrii Nakryiko * that are referencing different types with the same name. This is extremely 2202d5caef5bSAndrii Nakryiko * unlikely to happen, but btf_dedup API allows to disable FWD resolution if 2203d5caef5bSAndrii Nakryiko * this logic is causing problems. 2204d5caef5bSAndrii Nakryiko * 2205d5caef5bSAndrii Nakryiko * Doing FWD resolution means that both candidate and/or canonical graphs can 2206d5caef5bSAndrii Nakryiko * consists of portions of the graph that come from multiple compilation units. 2207d5caef5bSAndrii Nakryiko * This is due to the fact that types within single compilation unit are always 2208d5caef5bSAndrii Nakryiko * deduplicated and FWDs are already resolved, if referenced struct/union 2209d5caef5bSAndrii Nakryiko * definiton is available. So, if we had unresolved FWD and found corresponding 2210d5caef5bSAndrii Nakryiko * STRUCT/UNION, they will be from different compilation units. This 2211d5caef5bSAndrii Nakryiko * consequently means that when we "link" FWD to corresponding STRUCT/UNION, 2212d5caef5bSAndrii Nakryiko * type graph will likely have at least two different BTF types that describe 2213d5caef5bSAndrii Nakryiko * same type (e.g., most probably there will be two different BTF types for the 2214d5caef5bSAndrii Nakryiko * same 'int' primitive type) and could even have "overlapping" parts of type 2215d5caef5bSAndrii Nakryiko * graph that describe same subset of types. 2216d5caef5bSAndrii Nakryiko * 2217d5caef5bSAndrii Nakryiko * This in turn means that our assumption that each type in canonical graph 2218d5caef5bSAndrii Nakryiko * must correspond to exactly one type in candidate graph might not hold 2219d5caef5bSAndrii Nakryiko * anymore and will make it harder to detect contradictions using hypothetical 2220d5caef5bSAndrii Nakryiko * map. To handle this problem, we allow to follow FWD -> STRUCT/UNION 2221d5caef5bSAndrii Nakryiko * resolution only in canonical graph. FWDs in candidate graphs are never 2222d5caef5bSAndrii Nakryiko * resolved. To see why it's OK, let's check all possible situations w.r.t. FWDs 2223d5caef5bSAndrii Nakryiko * that can occur: 2224d5caef5bSAndrii Nakryiko * - Both types in canonical and candidate graphs are FWDs. If they are 2225d5caef5bSAndrii Nakryiko * structurally equivalent, then they can either be both resolved to the 2226d5caef5bSAndrii Nakryiko * same STRUCT/UNION or not resolved at all. In both cases they are 2227d5caef5bSAndrii Nakryiko * equivalent and there is no need to resolve FWD on candidate side. 2228d5caef5bSAndrii Nakryiko * - Both types in canonical and candidate graphs are concrete STRUCT/UNION, 2229d5caef5bSAndrii Nakryiko * so nothing to resolve as well, algorithm will check equivalence anyway. 2230d5caef5bSAndrii Nakryiko * - Type in canonical graph is FWD, while type in candidate is concrete 2231d5caef5bSAndrii Nakryiko * STRUCT/UNION. In this case candidate graph comes from single compilation 2232d5caef5bSAndrii Nakryiko * unit, so there is exactly one BTF type for each unique C type. After 2233d5caef5bSAndrii Nakryiko * resolving FWD into STRUCT/UNION, there might be more than one BTF type 2234d5caef5bSAndrii Nakryiko * in canonical graph mapping to single BTF type in candidate graph, but 2235d5caef5bSAndrii Nakryiko * because hypothetical mapping maps from canonical to candidate types, it's 2236d5caef5bSAndrii Nakryiko * alright, and we still maintain the property of having single `canon_id` 2237d5caef5bSAndrii Nakryiko * mapping to single `cand_id` (there could be two different `canon_id` 2238d5caef5bSAndrii Nakryiko * mapped to the same `cand_id`, but it's not contradictory). 2239d5caef5bSAndrii Nakryiko * - Type in canonical graph is concrete STRUCT/UNION, while type in candidate 2240d5caef5bSAndrii Nakryiko * graph is FWD. In this case we are just going to check compatibility of 2241d5caef5bSAndrii Nakryiko * STRUCT/UNION and corresponding FWD, and if they are compatible, we'll 2242d5caef5bSAndrii Nakryiko * assume that whatever STRUCT/UNION FWD resolves to must be equivalent to 2243d5caef5bSAndrii Nakryiko * a concrete STRUCT/UNION from canonical graph. If the rest of type graphs 2244d5caef5bSAndrii Nakryiko * turn out equivalent, we'll re-resolve FWD to concrete STRUCT/UNION from 2245d5caef5bSAndrii Nakryiko * canonical graph. 2246d5caef5bSAndrii Nakryiko */ 2247d5caef5bSAndrii Nakryiko static int btf_dedup_is_equiv(struct btf_dedup *d, __u32 cand_id, 2248d5caef5bSAndrii Nakryiko __u32 canon_id) 2249d5caef5bSAndrii Nakryiko { 2250d5caef5bSAndrii Nakryiko struct btf_type *cand_type; 2251d5caef5bSAndrii Nakryiko struct btf_type *canon_type; 2252d5caef5bSAndrii Nakryiko __u32 hypot_type_id; 2253d5caef5bSAndrii Nakryiko __u16 cand_kind; 2254d5caef5bSAndrii Nakryiko __u16 canon_kind; 2255d5caef5bSAndrii Nakryiko int i, eq; 2256d5caef5bSAndrii Nakryiko 2257d5caef5bSAndrii Nakryiko /* if both resolve to the same canonical, they must be equivalent */ 2258d5caef5bSAndrii Nakryiko if (resolve_type_id(d, cand_id) == resolve_type_id(d, canon_id)) 2259d5caef5bSAndrii Nakryiko return 1; 2260d5caef5bSAndrii Nakryiko 2261d5caef5bSAndrii Nakryiko canon_id = resolve_fwd_id(d, canon_id); 2262d5caef5bSAndrii Nakryiko 2263d5caef5bSAndrii Nakryiko hypot_type_id = d->hypot_map[canon_id]; 22645aab392cSAndrii Nakryiko if (hypot_type_id <= BTF_MAX_NR_TYPES) 2265d5caef5bSAndrii Nakryiko return hypot_type_id == cand_id; 2266d5caef5bSAndrii Nakryiko 2267d5caef5bSAndrii Nakryiko if (btf_dedup_hypot_map_add(d, canon_id, cand_id)) 2268d5caef5bSAndrii Nakryiko return -ENOMEM; 2269d5caef5bSAndrii Nakryiko 2270d5caef5bSAndrii Nakryiko cand_type = d->btf->types[cand_id]; 2271d5caef5bSAndrii Nakryiko canon_type = d->btf->types[canon_id]; 2272b03bc685SAndrii Nakryiko cand_kind = btf_kind(cand_type); 2273b03bc685SAndrii Nakryiko canon_kind = btf_kind(canon_type); 2274d5caef5bSAndrii Nakryiko 2275d5caef5bSAndrii Nakryiko if (cand_type->name_off != canon_type->name_off) 2276d5caef5bSAndrii Nakryiko return 0; 2277d5caef5bSAndrii Nakryiko 2278d5caef5bSAndrii Nakryiko /* FWD <--> STRUCT/UNION equivalence check, if enabled */ 2279d5caef5bSAndrii Nakryiko if (!d->opts.dont_resolve_fwds 2280d5caef5bSAndrii Nakryiko && (cand_kind == BTF_KIND_FWD || canon_kind == BTF_KIND_FWD) 2281d5caef5bSAndrii Nakryiko && cand_kind != canon_kind) { 2282d5caef5bSAndrii Nakryiko __u16 real_kind; 2283d5caef5bSAndrii Nakryiko __u16 fwd_kind; 2284d5caef5bSAndrii Nakryiko 2285d5caef5bSAndrii Nakryiko if (cand_kind == BTF_KIND_FWD) { 2286d5caef5bSAndrii Nakryiko real_kind = canon_kind; 2287d5caef5bSAndrii Nakryiko fwd_kind = btf_fwd_kind(cand_type); 2288d5caef5bSAndrii Nakryiko } else { 2289d5caef5bSAndrii Nakryiko real_kind = cand_kind; 2290d5caef5bSAndrii Nakryiko fwd_kind = btf_fwd_kind(canon_type); 2291d5caef5bSAndrii Nakryiko } 2292d5caef5bSAndrii Nakryiko return fwd_kind == real_kind; 2293d5caef5bSAndrii Nakryiko } 2294d5caef5bSAndrii Nakryiko 22959ec71c1cSAndrii Nakryiko if (cand_kind != canon_kind) 22969ec71c1cSAndrii Nakryiko return 0; 22979ec71c1cSAndrii Nakryiko 2298d5caef5bSAndrii Nakryiko switch (cand_kind) { 2299d5caef5bSAndrii Nakryiko case BTF_KIND_INT: 2300d5caef5bSAndrii Nakryiko return btf_equal_int(cand_type, canon_type); 2301d5caef5bSAndrii Nakryiko 2302d5caef5bSAndrii Nakryiko case BTF_KIND_ENUM: 23039768095bSAndrii Nakryiko if (d->opts.dont_resolve_fwds) 2304d5caef5bSAndrii Nakryiko return btf_equal_enum(cand_type, canon_type); 23059768095bSAndrii Nakryiko else 23069768095bSAndrii Nakryiko return btf_compat_enum(cand_type, canon_type); 2307d5caef5bSAndrii Nakryiko 2308d5caef5bSAndrii Nakryiko case BTF_KIND_FWD: 2309d5caef5bSAndrii Nakryiko return btf_equal_common(cand_type, canon_type); 2310d5caef5bSAndrii Nakryiko 2311d5caef5bSAndrii Nakryiko case BTF_KIND_CONST: 2312d5caef5bSAndrii Nakryiko case BTF_KIND_VOLATILE: 2313d5caef5bSAndrii Nakryiko case BTF_KIND_RESTRICT: 2314d5caef5bSAndrii Nakryiko case BTF_KIND_PTR: 2315d5caef5bSAndrii Nakryiko case BTF_KIND_TYPEDEF: 2316d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC: 23179768095bSAndrii Nakryiko if (cand_type->info != canon_type->info) 23189768095bSAndrii Nakryiko return 0; 2319d5caef5bSAndrii Nakryiko return btf_dedup_is_equiv(d, cand_type->type, canon_type->type); 2320d5caef5bSAndrii Nakryiko 2321d5caef5bSAndrii Nakryiko case BTF_KIND_ARRAY: { 2322b03bc685SAndrii Nakryiko const struct btf_array *cand_arr, *canon_arr; 2323d5caef5bSAndrii Nakryiko 2324d5caef5bSAndrii Nakryiko if (!btf_compat_array(cand_type, canon_type)) 2325d5caef5bSAndrii Nakryiko return 0; 2326b03bc685SAndrii Nakryiko cand_arr = btf_array(cand_type); 2327b03bc685SAndrii Nakryiko canon_arr = btf_array(canon_type); 2328d5caef5bSAndrii Nakryiko eq = btf_dedup_is_equiv(d, 2329d5caef5bSAndrii Nakryiko cand_arr->index_type, canon_arr->index_type); 2330d5caef5bSAndrii Nakryiko if (eq <= 0) 2331d5caef5bSAndrii Nakryiko return eq; 2332d5caef5bSAndrii Nakryiko return btf_dedup_is_equiv(d, cand_arr->type, canon_arr->type); 2333d5caef5bSAndrii Nakryiko } 2334d5caef5bSAndrii Nakryiko 2335d5caef5bSAndrii Nakryiko case BTF_KIND_STRUCT: 2336d5caef5bSAndrii Nakryiko case BTF_KIND_UNION: { 2337b03bc685SAndrii Nakryiko const struct btf_member *cand_m, *canon_m; 2338d5caef5bSAndrii Nakryiko __u16 vlen; 2339d5caef5bSAndrii Nakryiko 234091097fbeSAndrii Nakryiko if (!btf_shallow_equal_struct(cand_type, canon_type)) 2341d5caef5bSAndrii Nakryiko return 0; 2342b03bc685SAndrii Nakryiko vlen = btf_vlen(cand_type); 2343b03bc685SAndrii Nakryiko cand_m = btf_members(cand_type); 2344b03bc685SAndrii Nakryiko canon_m = btf_members(canon_type); 2345d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 2346d5caef5bSAndrii Nakryiko eq = btf_dedup_is_equiv(d, cand_m->type, canon_m->type); 2347d5caef5bSAndrii Nakryiko if (eq <= 0) 2348d5caef5bSAndrii Nakryiko return eq; 2349d5caef5bSAndrii Nakryiko cand_m++; 2350d5caef5bSAndrii Nakryiko canon_m++; 2351d5caef5bSAndrii Nakryiko } 2352d5caef5bSAndrii Nakryiko 2353d5caef5bSAndrii Nakryiko return 1; 2354d5caef5bSAndrii Nakryiko } 2355d5caef5bSAndrii Nakryiko 2356d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC_PROTO: { 2357b03bc685SAndrii Nakryiko const struct btf_param *cand_p, *canon_p; 2358d5caef5bSAndrii Nakryiko __u16 vlen; 2359d5caef5bSAndrii Nakryiko 2360d5caef5bSAndrii Nakryiko if (!btf_compat_fnproto(cand_type, canon_type)) 2361d5caef5bSAndrii Nakryiko return 0; 2362d5caef5bSAndrii Nakryiko eq = btf_dedup_is_equiv(d, cand_type->type, canon_type->type); 2363d5caef5bSAndrii Nakryiko if (eq <= 0) 2364d5caef5bSAndrii Nakryiko return eq; 2365b03bc685SAndrii Nakryiko vlen = btf_vlen(cand_type); 2366b03bc685SAndrii Nakryiko cand_p = btf_params(cand_type); 2367b03bc685SAndrii Nakryiko canon_p = btf_params(canon_type); 2368d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 2369d5caef5bSAndrii Nakryiko eq = btf_dedup_is_equiv(d, cand_p->type, canon_p->type); 2370d5caef5bSAndrii Nakryiko if (eq <= 0) 2371d5caef5bSAndrii Nakryiko return eq; 2372d5caef5bSAndrii Nakryiko cand_p++; 2373d5caef5bSAndrii Nakryiko canon_p++; 2374d5caef5bSAndrii Nakryiko } 2375d5caef5bSAndrii Nakryiko return 1; 2376d5caef5bSAndrii Nakryiko } 2377d5caef5bSAndrii Nakryiko 2378d5caef5bSAndrii Nakryiko default: 2379d5caef5bSAndrii Nakryiko return -EINVAL; 2380d5caef5bSAndrii Nakryiko } 2381d5caef5bSAndrii Nakryiko return 0; 2382d5caef5bSAndrii Nakryiko } 2383d5caef5bSAndrii Nakryiko 2384d5caef5bSAndrii Nakryiko /* 2385d5caef5bSAndrii Nakryiko * Use hypothetical mapping, produced by successful type graph equivalence 2386d5caef5bSAndrii Nakryiko * check, to augment existing struct/union canonical mapping, where possible. 2387d5caef5bSAndrii Nakryiko * 2388d5caef5bSAndrii Nakryiko * If BTF_KIND_FWD resolution is allowed, this mapping is also used to record 2389d5caef5bSAndrii Nakryiko * FWD -> STRUCT/UNION correspondence as well. FWD resolution is bidirectional: 2390d5caef5bSAndrii Nakryiko * it doesn't matter if FWD type was part of canonical graph or candidate one, 2391d5caef5bSAndrii Nakryiko * we are recording the mapping anyway. As opposed to carefulness required 2392d5caef5bSAndrii Nakryiko * for struct/union correspondence mapping (described below), for FWD resolution 2393d5caef5bSAndrii Nakryiko * it's not important, as by the time that FWD type (reference type) will be 2394d5caef5bSAndrii Nakryiko * deduplicated all structs/unions will be deduped already anyway. 2395d5caef5bSAndrii Nakryiko * 2396d5caef5bSAndrii Nakryiko * Recording STRUCT/UNION mapping is purely a performance optimization and is 2397d5caef5bSAndrii Nakryiko * not required for correctness. It needs to be done carefully to ensure that 2398d5caef5bSAndrii Nakryiko * struct/union from candidate's type graph is not mapped into corresponding 2399d5caef5bSAndrii Nakryiko * struct/union from canonical type graph that itself hasn't been resolved into 2400d5caef5bSAndrii Nakryiko * canonical representative. The only guarantee we have is that canonical 2401d5caef5bSAndrii Nakryiko * struct/union was determined as canonical and that won't change. But any 2402d5caef5bSAndrii Nakryiko * types referenced through that struct/union fields could have been not yet 2403d5caef5bSAndrii Nakryiko * resolved, so in case like that it's too early to establish any kind of 2404d5caef5bSAndrii Nakryiko * correspondence between structs/unions. 2405d5caef5bSAndrii Nakryiko * 2406d5caef5bSAndrii Nakryiko * No canonical correspondence is derived for primitive types (they are already 2407d5caef5bSAndrii Nakryiko * deduplicated completely already anyway) or reference types (they rely on 2408d5caef5bSAndrii Nakryiko * stability of struct/union canonical relationship for equivalence checks). 2409d5caef5bSAndrii Nakryiko */ 2410d5caef5bSAndrii Nakryiko static void btf_dedup_merge_hypot_map(struct btf_dedup *d) 2411d5caef5bSAndrii Nakryiko { 2412d5caef5bSAndrii Nakryiko __u32 cand_type_id, targ_type_id; 2413d5caef5bSAndrii Nakryiko __u16 t_kind, c_kind; 2414d5caef5bSAndrii Nakryiko __u32 t_id, c_id; 2415d5caef5bSAndrii Nakryiko int i; 2416d5caef5bSAndrii Nakryiko 2417d5caef5bSAndrii Nakryiko for (i = 0; i < d->hypot_cnt; i++) { 2418d5caef5bSAndrii Nakryiko cand_type_id = d->hypot_list[i]; 2419d5caef5bSAndrii Nakryiko targ_type_id = d->hypot_map[cand_type_id]; 2420d5caef5bSAndrii Nakryiko t_id = resolve_type_id(d, targ_type_id); 2421d5caef5bSAndrii Nakryiko c_id = resolve_type_id(d, cand_type_id); 2422b03bc685SAndrii Nakryiko t_kind = btf_kind(d->btf->types[t_id]); 2423b03bc685SAndrii Nakryiko c_kind = btf_kind(d->btf->types[c_id]); 2424d5caef5bSAndrii Nakryiko /* 2425d5caef5bSAndrii Nakryiko * Resolve FWD into STRUCT/UNION. 2426d5caef5bSAndrii Nakryiko * It's ok to resolve FWD into STRUCT/UNION that's not yet 2427d5caef5bSAndrii Nakryiko * mapped to canonical representative (as opposed to 2428d5caef5bSAndrii Nakryiko * STRUCT/UNION <--> STRUCT/UNION mapping logic below), because 2429d5caef5bSAndrii Nakryiko * eventually that struct is going to be mapped and all resolved 2430d5caef5bSAndrii Nakryiko * FWDs will automatically resolve to correct canonical 2431d5caef5bSAndrii Nakryiko * representative. This will happen before ref type deduping, 2432d5caef5bSAndrii Nakryiko * which critically depends on stability of these mapping. This 2433d5caef5bSAndrii Nakryiko * stability is not a requirement for STRUCT/UNION equivalence 2434d5caef5bSAndrii Nakryiko * checks, though. 2435d5caef5bSAndrii Nakryiko */ 2436d5caef5bSAndrii Nakryiko if (t_kind != BTF_KIND_FWD && c_kind == BTF_KIND_FWD) 2437d5caef5bSAndrii Nakryiko d->map[c_id] = t_id; 2438d5caef5bSAndrii Nakryiko else if (t_kind == BTF_KIND_FWD && c_kind != BTF_KIND_FWD) 2439d5caef5bSAndrii Nakryiko d->map[t_id] = c_id; 2440d5caef5bSAndrii Nakryiko 2441d5caef5bSAndrii Nakryiko if ((t_kind == BTF_KIND_STRUCT || t_kind == BTF_KIND_UNION) && 2442d5caef5bSAndrii Nakryiko c_kind != BTF_KIND_FWD && 2443d5caef5bSAndrii Nakryiko is_type_mapped(d, c_id) && 2444d5caef5bSAndrii Nakryiko !is_type_mapped(d, t_id)) { 2445d5caef5bSAndrii Nakryiko /* 2446d5caef5bSAndrii Nakryiko * as a perf optimization, we can map struct/union 2447d5caef5bSAndrii Nakryiko * that's part of type graph we just verified for 2448d5caef5bSAndrii Nakryiko * equivalence. We can do that for struct/union that has 2449d5caef5bSAndrii Nakryiko * canonical representative only, though. 2450d5caef5bSAndrii Nakryiko */ 2451d5caef5bSAndrii Nakryiko d->map[t_id] = c_id; 2452d5caef5bSAndrii Nakryiko } 2453d5caef5bSAndrii Nakryiko } 2454d5caef5bSAndrii Nakryiko } 2455d5caef5bSAndrii Nakryiko 2456d5caef5bSAndrii Nakryiko /* 2457d5caef5bSAndrii Nakryiko * Deduplicate struct/union types. 2458d5caef5bSAndrii Nakryiko * 2459d5caef5bSAndrii Nakryiko * For each struct/union type its type signature hash is calculated, taking 2460d5caef5bSAndrii Nakryiko * into account type's name, size, number, order and names of fields, but 2461d5caef5bSAndrii Nakryiko * ignoring type ID's referenced from fields, because they might not be deduped 2462d5caef5bSAndrii Nakryiko * completely until after reference types deduplication phase. This type hash 2463d5caef5bSAndrii Nakryiko * is used to iterate over all potential canonical types, sharing same hash. 2464d5caef5bSAndrii Nakryiko * For each canonical candidate we check whether type graphs that they form 2465d5caef5bSAndrii Nakryiko * (through referenced types in fields and so on) are equivalent using algorithm 2466d5caef5bSAndrii Nakryiko * implemented in `btf_dedup_is_equiv`. If such equivalence is found and 2467d5caef5bSAndrii Nakryiko * BTF_KIND_FWD resolution is allowed, then hypothetical mapping 2468d5caef5bSAndrii Nakryiko * (btf_dedup->hypot_map) produced by aforementioned type graph equivalence 2469d5caef5bSAndrii Nakryiko * algorithm is used to record FWD -> STRUCT/UNION mapping. It's also used to 2470d5caef5bSAndrii Nakryiko * potentially map other structs/unions to their canonical representatives, 2471d5caef5bSAndrii Nakryiko * if such relationship hasn't yet been established. This speeds up algorithm 2472d5caef5bSAndrii Nakryiko * by eliminating some of the duplicate work. 2473d5caef5bSAndrii Nakryiko * 2474d5caef5bSAndrii Nakryiko * If no matching canonical representative was found, struct/union is marked 2475d5caef5bSAndrii Nakryiko * as canonical for itself and is added into btf_dedup->dedup_table hash map 2476d5caef5bSAndrii Nakryiko * for further look ups. 2477d5caef5bSAndrii Nakryiko */ 2478d5caef5bSAndrii Nakryiko static int btf_dedup_struct_type(struct btf_dedup *d, __u32 type_id) 2479d5caef5bSAndrii Nakryiko { 248091097fbeSAndrii Nakryiko struct btf_type *cand_type, *t; 24812fc3fc0bSAndrii Nakryiko struct hashmap_entry *hash_entry; 2482d5caef5bSAndrii Nakryiko /* if we don't find equivalent type, then we are canonical */ 2483d5caef5bSAndrii Nakryiko __u32 new_id = type_id; 2484d5caef5bSAndrii Nakryiko __u16 kind; 24852fc3fc0bSAndrii Nakryiko long h; 2486d5caef5bSAndrii Nakryiko 2487d5caef5bSAndrii Nakryiko /* already deduped or is in process of deduping (loop detected) */ 24885aab392cSAndrii Nakryiko if (d->map[type_id] <= BTF_MAX_NR_TYPES) 2489d5caef5bSAndrii Nakryiko return 0; 2490d5caef5bSAndrii Nakryiko 2491d5caef5bSAndrii Nakryiko t = d->btf->types[type_id]; 2492b03bc685SAndrii Nakryiko kind = btf_kind(t); 2493d5caef5bSAndrii Nakryiko 2494d5caef5bSAndrii Nakryiko if (kind != BTF_KIND_STRUCT && kind != BTF_KIND_UNION) 2495d5caef5bSAndrii Nakryiko return 0; 2496d5caef5bSAndrii Nakryiko 2497d5caef5bSAndrii Nakryiko h = btf_hash_struct(t); 24982fc3fc0bSAndrii Nakryiko for_each_dedup_cand(d, hash_entry, h) { 24992fc3fc0bSAndrii Nakryiko __u32 cand_id = (__u32)(long)hash_entry->value; 2500d5caef5bSAndrii Nakryiko int eq; 2501d5caef5bSAndrii Nakryiko 250291097fbeSAndrii Nakryiko /* 250391097fbeSAndrii Nakryiko * Even though btf_dedup_is_equiv() checks for 250491097fbeSAndrii Nakryiko * btf_shallow_equal_struct() internally when checking two 250591097fbeSAndrii Nakryiko * structs (unions) for equivalence, we need to guard here 250691097fbeSAndrii Nakryiko * from picking matching FWD type as a dedup candidate. 250791097fbeSAndrii Nakryiko * This can happen due to hash collision. In such case just 250891097fbeSAndrii Nakryiko * relying on btf_dedup_is_equiv() would lead to potentially 250991097fbeSAndrii Nakryiko * creating a loop (FWD -> STRUCT and STRUCT -> FWD), because 251091097fbeSAndrii Nakryiko * FWD and compatible STRUCT/UNION are considered equivalent. 251191097fbeSAndrii Nakryiko */ 25122fc3fc0bSAndrii Nakryiko cand_type = d->btf->types[cand_id]; 251391097fbeSAndrii Nakryiko if (!btf_shallow_equal_struct(t, cand_type)) 251491097fbeSAndrii Nakryiko continue; 251591097fbeSAndrii Nakryiko 2516d5caef5bSAndrii Nakryiko btf_dedup_clear_hypot_map(d); 25172fc3fc0bSAndrii Nakryiko eq = btf_dedup_is_equiv(d, type_id, cand_id); 2518d5caef5bSAndrii Nakryiko if (eq < 0) 2519d5caef5bSAndrii Nakryiko return eq; 2520d5caef5bSAndrii Nakryiko if (!eq) 2521d5caef5bSAndrii Nakryiko continue; 25222fc3fc0bSAndrii Nakryiko new_id = cand_id; 2523d5caef5bSAndrii Nakryiko btf_dedup_merge_hypot_map(d); 2524d5caef5bSAndrii Nakryiko break; 2525d5caef5bSAndrii Nakryiko } 2526d5caef5bSAndrii Nakryiko 2527d5caef5bSAndrii Nakryiko d->map[type_id] = new_id; 2528d5caef5bSAndrii Nakryiko if (type_id == new_id && btf_dedup_table_add(d, h, type_id)) 2529d5caef5bSAndrii Nakryiko return -ENOMEM; 2530d5caef5bSAndrii Nakryiko 2531d5caef5bSAndrii Nakryiko return 0; 2532d5caef5bSAndrii Nakryiko } 2533d5caef5bSAndrii Nakryiko 2534d5caef5bSAndrii Nakryiko static int btf_dedup_struct_types(struct btf_dedup *d) 2535d5caef5bSAndrii Nakryiko { 2536d5caef5bSAndrii Nakryiko int i, err; 2537d5caef5bSAndrii Nakryiko 2538d5caef5bSAndrii Nakryiko for (i = 1; i <= d->btf->nr_types; i++) { 2539d5caef5bSAndrii Nakryiko err = btf_dedup_struct_type(d, i); 2540d5caef5bSAndrii Nakryiko if (err) 2541d5caef5bSAndrii Nakryiko return err; 2542d5caef5bSAndrii Nakryiko } 2543d5caef5bSAndrii Nakryiko return 0; 2544d5caef5bSAndrii Nakryiko } 2545d5caef5bSAndrii Nakryiko 2546d5caef5bSAndrii Nakryiko /* 2547d5caef5bSAndrii Nakryiko * Deduplicate reference type. 2548d5caef5bSAndrii Nakryiko * 2549d5caef5bSAndrii Nakryiko * Once all primitive and struct/union types got deduplicated, we can easily 2550d5caef5bSAndrii Nakryiko * deduplicate all other (reference) BTF types. This is done in two steps: 2551d5caef5bSAndrii Nakryiko * 2552d5caef5bSAndrii Nakryiko * 1. Resolve all referenced type IDs into their canonical type IDs. This 2553d5caef5bSAndrii Nakryiko * resolution can be done either immediately for primitive or struct/union types 2554d5caef5bSAndrii Nakryiko * (because they were deduped in previous two phases) or recursively for 2555d5caef5bSAndrii Nakryiko * reference types. Recursion will always terminate at either primitive or 2556d5caef5bSAndrii Nakryiko * struct/union type, at which point we can "unwind" chain of reference types 2557d5caef5bSAndrii Nakryiko * one by one. There is no danger of encountering cycles because in C type 2558d5caef5bSAndrii Nakryiko * system the only way to form type cycle is through struct/union, so any chain 2559d5caef5bSAndrii Nakryiko * of reference types, even those taking part in a type cycle, will inevitably 2560d5caef5bSAndrii Nakryiko * reach struct/union at some point. 2561d5caef5bSAndrii Nakryiko * 2562d5caef5bSAndrii Nakryiko * 2. Once all referenced type IDs are resolved into canonical ones, BTF type 2563d5caef5bSAndrii Nakryiko * becomes "stable", in the sense that no further deduplication will cause 2564d5caef5bSAndrii Nakryiko * any changes to it. With that, it's now possible to calculate type's signature 2565d5caef5bSAndrii Nakryiko * hash (this time taking into account referenced type IDs) and loop over all 2566d5caef5bSAndrii Nakryiko * potential canonical representatives. If no match was found, current type 2567d5caef5bSAndrii Nakryiko * will become canonical representative of itself and will be added into 2568d5caef5bSAndrii Nakryiko * btf_dedup->dedup_table as another possible canonical representative. 2569d5caef5bSAndrii Nakryiko */ 2570d5caef5bSAndrii Nakryiko static int btf_dedup_ref_type(struct btf_dedup *d, __u32 type_id) 2571d5caef5bSAndrii Nakryiko { 25722fc3fc0bSAndrii Nakryiko struct hashmap_entry *hash_entry; 25732fc3fc0bSAndrii Nakryiko __u32 new_id = type_id, cand_id; 2574d5caef5bSAndrii Nakryiko struct btf_type *t, *cand; 2575d5caef5bSAndrii Nakryiko /* if we don't find equivalent type, then we are representative type */ 25763d8669e6SDan Carpenter int ref_type_id; 25772fc3fc0bSAndrii Nakryiko long h; 2578d5caef5bSAndrii Nakryiko 2579d5caef5bSAndrii Nakryiko if (d->map[type_id] == BTF_IN_PROGRESS_ID) 2580d5caef5bSAndrii Nakryiko return -ELOOP; 25815aab392cSAndrii Nakryiko if (d->map[type_id] <= BTF_MAX_NR_TYPES) 2582d5caef5bSAndrii Nakryiko return resolve_type_id(d, type_id); 2583d5caef5bSAndrii Nakryiko 2584d5caef5bSAndrii Nakryiko t = d->btf->types[type_id]; 2585d5caef5bSAndrii Nakryiko d->map[type_id] = BTF_IN_PROGRESS_ID; 2586d5caef5bSAndrii Nakryiko 2587b03bc685SAndrii Nakryiko switch (btf_kind(t)) { 2588d5caef5bSAndrii Nakryiko case BTF_KIND_CONST: 2589d5caef5bSAndrii Nakryiko case BTF_KIND_VOLATILE: 2590d5caef5bSAndrii Nakryiko case BTF_KIND_RESTRICT: 2591d5caef5bSAndrii Nakryiko case BTF_KIND_PTR: 2592d5caef5bSAndrii Nakryiko case BTF_KIND_TYPEDEF: 2593d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC: 2594d5caef5bSAndrii Nakryiko ref_type_id = btf_dedup_ref_type(d, t->type); 2595d5caef5bSAndrii Nakryiko if (ref_type_id < 0) 2596d5caef5bSAndrii Nakryiko return ref_type_id; 2597d5caef5bSAndrii Nakryiko t->type = ref_type_id; 2598d5caef5bSAndrii Nakryiko 2599d5caef5bSAndrii Nakryiko h = btf_hash_common(t); 26002fc3fc0bSAndrii Nakryiko for_each_dedup_cand(d, hash_entry, h) { 26012fc3fc0bSAndrii Nakryiko cand_id = (__u32)(long)hash_entry->value; 26022fc3fc0bSAndrii Nakryiko cand = d->btf->types[cand_id]; 2603d5caef5bSAndrii Nakryiko if (btf_equal_common(t, cand)) { 26042fc3fc0bSAndrii Nakryiko new_id = cand_id; 2605d5caef5bSAndrii Nakryiko break; 2606d5caef5bSAndrii Nakryiko } 2607d5caef5bSAndrii Nakryiko } 2608d5caef5bSAndrii Nakryiko break; 2609d5caef5bSAndrii Nakryiko 2610d5caef5bSAndrii Nakryiko case BTF_KIND_ARRAY: { 2611b03bc685SAndrii Nakryiko struct btf_array *info = btf_array(t); 2612d5caef5bSAndrii Nakryiko 2613d5caef5bSAndrii Nakryiko ref_type_id = btf_dedup_ref_type(d, info->type); 2614d5caef5bSAndrii Nakryiko if (ref_type_id < 0) 2615d5caef5bSAndrii Nakryiko return ref_type_id; 2616d5caef5bSAndrii Nakryiko info->type = ref_type_id; 2617d5caef5bSAndrii Nakryiko 2618d5caef5bSAndrii Nakryiko ref_type_id = btf_dedup_ref_type(d, info->index_type); 2619d5caef5bSAndrii Nakryiko if (ref_type_id < 0) 2620d5caef5bSAndrii Nakryiko return ref_type_id; 2621d5caef5bSAndrii Nakryiko info->index_type = ref_type_id; 2622d5caef5bSAndrii Nakryiko 2623d5caef5bSAndrii Nakryiko h = btf_hash_array(t); 26242fc3fc0bSAndrii Nakryiko for_each_dedup_cand(d, hash_entry, h) { 26252fc3fc0bSAndrii Nakryiko cand_id = (__u32)(long)hash_entry->value; 26262fc3fc0bSAndrii Nakryiko cand = d->btf->types[cand_id]; 2627d5caef5bSAndrii Nakryiko if (btf_equal_array(t, cand)) { 26282fc3fc0bSAndrii Nakryiko new_id = cand_id; 2629d5caef5bSAndrii Nakryiko break; 2630d5caef5bSAndrii Nakryiko } 2631d5caef5bSAndrii Nakryiko } 2632d5caef5bSAndrii Nakryiko break; 2633d5caef5bSAndrii Nakryiko } 2634d5caef5bSAndrii Nakryiko 2635d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC_PROTO: { 2636d5caef5bSAndrii Nakryiko struct btf_param *param; 2637d5caef5bSAndrii Nakryiko __u16 vlen; 2638d5caef5bSAndrii Nakryiko int i; 2639d5caef5bSAndrii Nakryiko 2640d5caef5bSAndrii Nakryiko ref_type_id = btf_dedup_ref_type(d, t->type); 2641d5caef5bSAndrii Nakryiko if (ref_type_id < 0) 2642d5caef5bSAndrii Nakryiko return ref_type_id; 2643d5caef5bSAndrii Nakryiko t->type = ref_type_id; 2644d5caef5bSAndrii Nakryiko 2645b03bc685SAndrii Nakryiko vlen = btf_vlen(t); 2646b03bc685SAndrii Nakryiko param = btf_params(t); 2647d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 2648d5caef5bSAndrii Nakryiko ref_type_id = btf_dedup_ref_type(d, param->type); 2649d5caef5bSAndrii Nakryiko if (ref_type_id < 0) 2650d5caef5bSAndrii Nakryiko return ref_type_id; 2651d5caef5bSAndrii Nakryiko param->type = ref_type_id; 2652d5caef5bSAndrii Nakryiko param++; 2653d5caef5bSAndrii Nakryiko } 2654d5caef5bSAndrii Nakryiko 2655d5caef5bSAndrii Nakryiko h = btf_hash_fnproto(t); 26562fc3fc0bSAndrii Nakryiko for_each_dedup_cand(d, hash_entry, h) { 26572fc3fc0bSAndrii Nakryiko cand_id = (__u32)(long)hash_entry->value; 26582fc3fc0bSAndrii Nakryiko cand = d->btf->types[cand_id]; 2659d5caef5bSAndrii Nakryiko if (btf_equal_fnproto(t, cand)) { 26602fc3fc0bSAndrii Nakryiko new_id = cand_id; 2661d5caef5bSAndrii Nakryiko break; 2662d5caef5bSAndrii Nakryiko } 2663d5caef5bSAndrii Nakryiko } 2664d5caef5bSAndrii Nakryiko break; 2665d5caef5bSAndrii Nakryiko } 2666d5caef5bSAndrii Nakryiko 2667d5caef5bSAndrii Nakryiko default: 2668d5caef5bSAndrii Nakryiko return -EINVAL; 2669d5caef5bSAndrii Nakryiko } 2670d5caef5bSAndrii Nakryiko 2671d5caef5bSAndrii Nakryiko d->map[type_id] = new_id; 2672d5caef5bSAndrii Nakryiko if (type_id == new_id && btf_dedup_table_add(d, h, type_id)) 2673d5caef5bSAndrii Nakryiko return -ENOMEM; 2674d5caef5bSAndrii Nakryiko 2675d5caef5bSAndrii Nakryiko return new_id; 2676d5caef5bSAndrii Nakryiko } 2677d5caef5bSAndrii Nakryiko 2678d5caef5bSAndrii Nakryiko static int btf_dedup_ref_types(struct btf_dedup *d) 2679d5caef5bSAndrii Nakryiko { 2680d5caef5bSAndrii Nakryiko int i, err; 2681d5caef5bSAndrii Nakryiko 2682d5caef5bSAndrii Nakryiko for (i = 1; i <= d->btf->nr_types; i++) { 2683d5caef5bSAndrii Nakryiko err = btf_dedup_ref_type(d, i); 2684d5caef5bSAndrii Nakryiko if (err < 0) 2685d5caef5bSAndrii Nakryiko return err; 2686d5caef5bSAndrii Nakryiko } 26872fc3fc0bSAndrii Nakryiko /* we won't need d->dedup_table anymore */ 26882fc3fc0bSAndrii Nakryiko hashmap__free(d->dedup_table); 26892fc3fc0bSAndrii Nakryiko d->dedup_table = NULL; 2690d5caef5bSAndrii Nakryiko return 0; 2691d5caef5bSAndrii Nakryiko } 2692d5caef5bSAndrii Nakryiko 2693d5caef5bSAndrii Nakryiko /* 2694d5caef5bSAndrii Nakryiko * Compact types. 2695d5caef5bSAndrii Nakryiko * 2696d5caef5bSAndrii Nakryiko * After we established for each type its corresponding canonical representative 2697d5caef5bSAndrii Nakryiko * type, we now can eliminate types that are not canonical and leave only 2698d5caef5bSAndrii Nakryiko * canonical ones layed out sequentially in memory by copying them over 2699d5caef5bSAndrii Nakryiko * duplicates. During compaction btf_dedup->hypot_map array is reused to store 2700d5caef5bSAndrii Nakryiko * a map from original type ID to a new compacted type ID, which will be used 2701d5caef5bSAndrii Nakryiko * during next phase to "fix up" type IDs, referenced from struct/union and 2702d5caef5bSAndrii Nakryiko * reference types. 2703d5caef5bSAndrii Nakryiko */ 2704d5caef5bSAndrii Nakryiko static int btf_dedup_compact_types(struct btf_dedup *d) 2705d5caef5bSAndrii Nakryiko { 2706d5caef5bSAndrii Nakryiko struct btf_type **new_types; 2707d5caef5bSAndrii Nakryiko __u32 next_type_id = 1; 2708d5caef5bSAndrii Nakryiko char *types_start, *p; 2709d5caef5bSAndrii Nakryiko int i, len; 2710d5caef5bSAndrii Nakryiko 2711d5caef5bSAndrii Nakryiko /* we are going to reuse hypot_map to store compaction remapping */ 2712d5caef5bSAndrii Nakryiko d->hypot_map[0] = 0; 2713d5caef5bSAndrii Nakryiko for (i = 1; i <= d->btf->nr_types; i++) 2714d5caef5bSAndrii Nakryiko d->hypot_map[i] = BTF_UNPROCESSED_ID; 2715d5caef5bSAndrii Nakryiko 2716d5caef5bSAndrii Nakryiko types_start = d->btf->nohdr_data + d->btf->hdr->type_off; 2717d5caef5bSAndrii Nakryiko p = types_start; 2718d5caef5bSAndrii Nakryiko 2719d5caef5bSAndrii Nakryiko for (i = 1; i <= d->btf->nr_types; i++) { 2720d5caef5bSAndrii Nakryiko if (d->map[i] != i) 2721d5caef5bSAndrii Nakryiko continue; 2722d5caef5bSAndrii Nakryiko 2723d5caef5bSAndrii Nakryiko len = btf_type_size(d->btf->types[i]); 2724d5caef5bSAndrii Nakryiko if (len < 0) 2725d5caef5bSAndrii Nakryiko return len; 2726d5caef5bSAndrii Nakryiko 2727d5caef5bSAndrii Nakryiko memmove(p, d->btf->types[i], len); 2728d5caef5bSAndrii Nakryiko d->hypot_map[i] = next_type_id; 2729d5caef5bSAndrii Nakryiko d->btf->types[next_type_id] = (struct btf_type *)p; 2730d5caef5bSAndrii Nakryiko p += len; 2731d5caef5bSAndrii Nakryiko next_type_id++; 2732d5caef5bSAndrii Nakryiko } 2733d5caef5bSAndrii Nakryiko 2734d5caef5bSAndrii Nakryiko /* shrink struct btf's internal types index and update btf_header */ 2735d5caef5bSAndrii Nakryiko d->btf->nr_types = next_type_id - 1; 2736d5caef5bSAndrii Nakryiko d->btf->types_size = d->btf->nr_types; 2737d5caef5bSAndrii Nakryiko d->btf->hdr->type_len = p - types_start; 2738d5caef5bSAndrii Nakryiko new_types = realloc(d->btf->types, 2739d5caef5bSAndrii Nakryiko (1 + d->btf->nr_types) * sizeof(struct btf_type *)); 2740d5caef5bSAndrii Nakryiko if (!new_types) 2741d5caef5bSAndrii Nakryiko return -ENOMEM; 2742d5caef5bSAndrii Nakryiko d->btf->types = new_types; 2743d5caef5bSAndrii Nakryiko 2744d5caef5bSAndrii Nakryiko /* make sure string section follows type information without gaps */ 2745d5caef5bSAndrii Nakryiko d->btf->hdr->str_off = p - (char *)d->btf->nohdr_data; 2746d5caef5bSAndrii Nakryiko memmove(p, d->btf->strings, d->btf->hdr->str_len); 2747d5caef5bSAndrii Nakryiko d->btf->strings = p; 2748d5caef5bSAndrii Nakryiko p += d->btf->hdr->str_len; 2749d5caef5bSAndrii Nakryiko 2750d5caef5bSAndrii Nakryiko d->btf->data_size = p - (char *)d->btf->data; 2751d5caef5bSAndrii Nakryiko return 0; 2752d5caef5bSAndrii Nakryiko } 2753d5caef5bSAndrii Nakryiko 2754d5caef5bSAndrii Nakryiko /* 2755d5caef5bSAndrii Nakryiko * Figure out final (deduplicated and compacted) type ID for provided original 2756d5caef5bSAndrii Nakryiko * `type_id` by first resolving it into corresponding canonical type ID and 2757d5caef5bSAndrii Nakryiko * then mapping it to a deduplicated type ID, stored in btf_dedup->hypot_map, 2758d5caef5bSAndrii Nakryiko * which is populated during compaction phase. 2759d5caef5bSAndrii Nakryiko */ 2760d5caef5bSAndrii Nakryiko static int btf_dedup_remap_type_id(struct btf_dedup *d, __u32 type_id) 2761d5caef5bSAndrii Nakryiko { 2762d5caef5bSAndrii Nakryiko __u32 resolved_type_id, new_type_id; 2763d5caef5bSAndrii Nakryiko 2764d5caef5bSAndrii Nakryiko resolved_type_id = resolve_type_id(d, type_id); 2765d5caef5bSAndrii Nakryiko new_type_id = d->hypot_map[resolved_type_id]; 27665aab392cSAndrii Nakryiko if (new_type_id > BTF_MAX_NR_TYPES) 2767d5caef5bSAndrii Nakryiko return -EINVAL; 2768d5caef5bSAndrii Nakryiko return new_type_id; 2769d5caef5bSAndrii Nakryiko } 2770d5caef5bSAndrii Nakryiko 2771d5caef5bSAndrii Nakryiko /* 2772d5caef5bSAndrii Nakryiko * Remap referenced type IDs into deduped type IDs. 2773d5caef5bSAndrii Nakryiko * 2774d5caef5bSAndrii Nakryiko * After BTF types are deduplicated and compacted, their final type IDs may 2775d5caef5bSAndrii Nakryiko * differ from original ones. The map from original to a corresponding 2776d5caef5bSAndrii Nakryiko * deduped type ID is stored in btf_dedup->hypot_map and is populated during 2777d5caef5bSAndrii Nakryiko * compaction phase. During remapping phase we are rewriting all type IDs 2778d5caef5bSAndrii Nakryiko * referenced from any BTF type (e.g., struct fields, func proto args, etc) to 2779d5caef5bSAndrii Nakryiko * their final deduped type IDs. 2780d5caef5bSAndrii Nakryiko */ 2781d5caef5bSAndrii Nakryiko static int btf_dedup_remap_type(struct btf_dedup *d, __u32 type_id) 2782d5caef5bSAndrii Nakryiko { 2783d5caef5bSAndrii Nakryiko struct btf_type *t = d->btf->types[type_id]; 2784d5caef5bSAndrii Nakryiko int i, r; 2785d5caef5bSAndrii Nakryiko 2786b03bc685SAndrii Nakryiko switch (btf_kind(t)) { 2787d5caef5bSAndrii Nakryiko case BTF_KIND_INT: 2788d5caef5bSAndrii Nakryiko case BTF_KIND_ENUM: 2789d5caef5bSAndrii Nakryiko break; 2790d5caef5bSAndrii Nakryiko 2791d5caef5bSAndrii Nakryiko case BTF_KIND_FWD: 2792d5caef5bSAndrii Nakryiko case BTF_KIND_CONST: 2793d5caef5bSAndrii Nakryiko case BTF_KIND_VOLATILE: 2794d5caef5bSAndrii Nakryiko case BTF_KIND_RESTRICT: 2795d5caef5bSAndrii Nakryiko case BTF_KIND_PTR: 2796d5caef5bSAndrii Nakryiko case BTF_KIND_TYPEDEF: 2797d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC: 2798189cf5a4SAndrii Nakryiko case BTF_KIND_VAR: 2799d5caef5bSAndrii Nakryiko r = btf_dedup_remap_type_id(d, t->type); 2800d5caef5bSAndrii Nakryiko if (r < 0) 2801d5caef5bSAndrii Nakryiko return r; 2802d5caef5bSAndrii Nakryiko t->type = r; 2803d5caef5bSAndrii Nakryiko break; 2804d5caef5bSAndrii Nakryiko 2805d5caef5bSAndrii Nakryiko case BTF_KIND_ARRAY: { 2806b03bc685SAndrii Nakryiko struct btf_array *arr_info = btf_array(t); 2807d5caef5bSAndrii Nakryiko 2808d5caef5bSAndrii Nakryiko r = btf_dedup_remap_type_id(d, arr_info->type); 2809d5caef5bSAndrii Nakryiko if (r < 0) 2810d5caef5bSAndrii Nakryiko return r; 2811d5caef5bSAndrii Nakryiko arr_info->type = r; 2812d5caef5bSAndrii Nakryiko r = btf_dedup_remap_type_id(d, arr_info->index_type); 2813d5caef5bSAndrii Nakryiko if (r < 0) 2814d5caef5bSAndrii Nakryiko return r; 2815d5caef5bSAndrii Nakryiko arr_info->index_type = r; 2816d5caef5bSAndrii Nakryiko break; 2817d5caef5bSAndrii Nakryiko } 2818d5caef5bSAndrii Nakryiko 2819d5caef5bSAndrii Nakryiko case BTF_KIND_STRUCT: 2820d5caef5bSAndrii Nakryiko case BTF_KIND_UNION: { 2821b03bc685SAndrii Nakryiko struct btf_member *member = btf_members(t); 2822b03bc685SAndrii Nakryiko __u16 vlen = btf_vlen(t); 2823d5caef5bSAndrii Nakryiko 2824d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 2825d5caef5bSAndrii Nakryiko r = btf_dedup_remap_type_id(d, member->type); 2826d5caef5bSAndrii Nakryiko if (r < 0) 2827d5caef5bSAndrii Nakryiko return r; 2828d5caef5bSAndrii Nakryiko member->type = r; 2829d5caef5bSAndrii Nakryiko member++; 2830d5caef5bSAndrii Nakryiko } 2831d5caef5bSAndrii Nakryiko break; 2832d5caef5bSAndrii Nakryiko } 2833d5caef5bSAndrii Nakryiko 2834d5caef5bSAndrii Nakryiko case BTF_KIND_FUNC_PROTO: { 2835b03bc685SAndrii Nakryiko struct btf_param *param = btf_params(t); 2836b03bc685SAndrii Nakryiko __u16 vlen = btf_vlen(t); 2837d5caef5bSAndrii Nakryiko 2838d5caef5bSAndrii Nakryiko r = btf_dedup_remap_type_id(d, t->type); 2839d5caef5bSAndrii Nakryiko if (r < 0) 2840d5caef5bSAndrii Nakryiko return r; 2841d5caef5bSAndrii Nakryiko t->type = r; 2842d5caef5bSAndrii Nakryiko 2843d5caef5bSAndrii Nakryiko for (i = 0; i < vlen; i++) { 2844d5caef5bSAndrii Nakryiko r = btf_dedup_remap_type_id(d, param->type); 2845d5caef5bSAndrii Nakryiko if (r < 0) 2846d5caef5bSAndrii Nakryiko return r; 2847d5caef5bSAndrii Nakryiko param->type = r; 2848d5caef5bSAndrii Nakryiko param++; 2849d5caef5bSAndrii Nakryiko } 2850d5caef5bSAndrii Nakryiko break; 2851d5caef5bSAndrii Nakryiko } 2852d5caef5bSAndrii Nakryiko 2853189cf5a4SAndrii Nakryiko case BTF_KIND_DATASEC: { 2854b03bc685SAndrii Nakryiko struct btf_var_secinfo *var = btf_var_secinfos(t); 2855b03bc685SAndrii Nakryiko __u16 vlen = btf_vlen(t); 2856189cf5a4SAndrii Nakryiko 2857189cf5a4SAndrii Nakryiko for (i = 0; i < vlen; i++) { 2858189cf5a4SAndrii Nakryiko r = btf_dedup_remap_type_id(d, var->type); 2859189cf5a4SAndrii Nakryiko if (r < 0) 2860189cf5a4SAndrii Nakryiko return r; 2861189cf5a4SAndrii Nakryiko var->type = r; 2862189cf5a4SAndrii Nakryiko var++; 2863189cf5a4SAndrii Nakryiko } 2864189cf5a4SAndrii Nakryiko break; 2865189cf5a4SAndrii Nakryiko } 2866189cf5a4SAndrii Nakryiko 2867d5caef5bSAndrii Nakryiko default: 2868d5caef5bSAndrii Nakryiko return -EINVAL; 2869d5caef5bSAndrii Nakryiko } 2870d5caef5bSAndrii Nakryiko 2871d5caef5bSAndrii Nakryiko return 0; 2872d5caef5bSAndrii Nakryiko } 2873d5caef5bSAndrii Nakryiko 2874d5caef5bSAndrii Nakryiko static int btf_dedup_remap_types(struct btf_dedup *d) 2875d5caef5bSAndrii Nakryiko { 2876d5caef5bSAndrii Nakryiko int i, r; 2877d5caef5bSAndrii Nakryiko 2878d5caef5bSAndrii Nakryiko for (i = 1; i <= d->btf->nr_types; i++) { 2879d5caef5bSAndrii Nakryiko r = btf_dedup_remap_type(d, i); 2880d5caef5bSAndrii Nakryiko if (r < 0) 2881d5caef5bSAndrii Nakryiko return r; 2882d5caef5bSAndrii Nakryiko } 2883d5caef5bSAndrii Nakryiko return 0; 2884d5caef5bSAndrii Nakryiko } 2885