1 // SPDX-License-Identifier: (LGPL-2.1 OR BSD-2-Clause) 2 3 /* 4 * Common eBPF ELF object loading operations. 5 * 6 * Copyright (C) 2013-2015 Alexei Starovoitov <ast@kernel.org> 7 * Copyright (C) 2015 Wang Nan <wangnan0@huawei.com> 8 * Copyright (C) 2015 Huawei Inc. 9 * Copyright (C) 2017 Nicira, Inc. 10 * Copyright (C) 2019 Isovalent, Inc. 11 */ 12 13 #ifndef _GNU_SOURCE 14 #define _GNU_SOURCE 15 #endif 16 #include <stdlib.h> 17 #include <stdio.h> 18 #include <stdarg.h> 19 #include <libgen.h> 20 #include <inttypes.h> 21 #include <limits.h> 22 #include <string.h> 23 #include <unistd.h> 24 #include <endian.h> 25 #include <fcntl.h> 26 #include <errno.h> 27 #include <ctype.h> 28 #include <asm/unistd.h> 29 #include <linux/err.h> 30 #include <linux/kernel.h> 31 #include <linux/bpf.h> 32 #include <linux/btf.h> 33 #include <linux/filter.h> 34 #include <linux/limits.h> 35 #include <linux/perf_event.h> 36 #include <linux/bpf_perf_event.h> 37 #include <linux/ring_buffer.h> 38 #include <sys/epoll.h> 39 #include <sys/ioctl.h> 40 #include <sys/mman.h> 41 #include <sys/stat.h> 42 #include <sys/types.h> 43 #include <sys/vfs.h> 44 #include <sys/utsname.h> 45 #include <sys/resource.h> 46 #include <libelf.h> 47 #include <gelf.h> 48 #include <zlib.h> 49 50 #include "libbpf.h" 51 #include "bpf.h" 52 #include "btf.h" 53 #include "libbpf_internal.h" 54 #include "hashmap.h" 55 #include "bpf_gen_internal.h" 56 #include "zip.h" 57 58 #ifndef BPF_FS_MAGIC 59 #define BPF_FS_MAGIC 0xcafe4a11 60 #endif 61 62 #define MAX_EVENT_NAME_LEN 64 63 64 #define BPF_FS_DEFAULT_PATH "/sys/fs/bpf" 65 66 #define BPF_INSN_SZ (sizeof(struct bpf_insn)) 67 68 /* vsprintf() in __base_pr() uses nonliteral format string. It may break 69 * compilation if user enables corresponding warning. Disable it explicitly. 70 */ 71 #pragma GCC diagnostic ignored "-Wformat-nonliteral" 72 73 #define __printf(a, b) __attribute__((format(printf, a, b))) 74 75 static struct bpf_map *bpf_object__add_map(struct bpf_object *obj); 76 static bool prog_is_subprog(const struct bpf_object *obj, const struct bpf_program *prog); 77 static int map_set_def_max_entries(struct bpf_map *map); 78 79 static const char * const attach_type_name[] = { 80 [BPF_CGROUP_INET_INGRESS] = "cgroup_inet_ingress", 81 [BPF_CGROUP_INET_EGRESS] = "cgroup_inet_egress", 82 [BPF_CGROUP_INET_SOCK_CREATE] = "cgroup_inet_sock_create", 83 [BPF_CGROUP_INET_SOCK_RELEASE] = "cgroup_inet_sock_release", 84 [BPF_CGROUP_SOCK_OPS] = "cgroup_sock_ops", 85 [BPF_CGROUP_DEVICE] = "cgroup_device", 86 [BPF_CGROUP_INET4_BIND] = "cgroup_inet4_bind", 87 [BPF_CGROUP_INET6_BIND] = "cgroup_inet6_bind", 88 [BPF_CGROUP_INET4_CONNECT] = "cgroup_inet4_connect", 89 [BPF_CGROUP_INET6_CONNECT] = "cgroup_inet6_connect", 90 [BPF_CGROUP_UNIX_CONNECT] = "cgroup_unix_connect", 91 [BPF_CGROUP_INET4_POST_BIND] = "cgroup_inet4_post_bind", 92 [BPF_CGROUP_INET6_POST_BIND] = "cgroup_inet6_post_bind", 93 [BPF_CGROUP_INET4_GETPEERNAME] = "cgroup_inet4_getpeername", 94 [BPF_CGROUP_INET6_GETPEERNAME] = "cgroup_inet6_getpeername", 95 [BPF_CGROUP_UNIX_GETPEERNAME] = "cgroup_unix_getpeername", 96 [BPF_CGROUP_INET4_GETSOCKNAME] = "cgroup_inet4_getsockname", 97 [BPF_CGROUP_INET6_GETSOCKNAME] = "cgroup_inet6_getsockname", 98 [BPF_CGROUP_UNIX_GETSOCKNAME] = "cgroup_unix_getsockname", 99 [BPF_CGROUP_UDP4_SENDMSG] = "cgroup_udp4_sendmsg", 100 [BPF_CGROUP_UDP6_SENDMSG] = "cgroup_udp6_sendmsg", 101 [BPF_CGROUP_UNIX_SENDMSG] = "cgroup_unix_sendmsg", 102 [BPF_CGROUP_SYSCTL] = "cgroup_sysctl", 103 [BPF_CGROUP_UDP4_RECVMSG] = "cgroup_udp4_recvmsg", 104 [BPF_CGROUP_UDP6_RECVMSG] = "cgroup_udp6_recvmsg", 105 [BPF_CGROUP_UNIX_RECVMSG] = "cgroup_unix_recvmsg", 106 [BPF_CGROUP_GETSOCKOPT] = "cgroup_getsockopt", 107 [BPF_CGROUP_SETSOCKOPT] = "cgroup_setsockopt", 108 [BPF_SK_SKB_STREAM_PARSER] = "sk_skb_stream_parser", 109 [BPF_SK_SKB_STREAM_VERDICT] = "sk_skb_stream_verdict", 110 [BPF_SK_SKB_VERDICT] = "sk_skb_verdict", 111 [BPF_SK_MSG_VERDICT] = "sk_msg_verdict", 112 [BPF_LIRC_MODE2] = "lirc_mode2", 113 [BPF_FLOW_DISSECTOR] = "flow_dissector", 114 [BPF_TRACE_RAW_TP] = "trace_raw_tp", 115 [BPF_TRACE_FENTRY] = "trace_fentry", 116 [BPF_TRACE_FEXIT] = "trace_fexit", 117 [BPF_MODIFY_RETURN] = "modify_return", 118 [BPF_TRACE_FSESSION] = "trace_fsession", 119 [BPF_LSM_MAC] = "lsm_mac", 120 [BPF_LSM_CGROUP] = "lsm_cgroup", 121 [BPF_SK_LOOKUP] = "sk_lookup", 122 [BPF_TRACE_ITER] = "trace_iter", 123 [BPF_XDP_DEVMAP] = "xdp_devmap", 124 [BPF_XDP_CPUMAP] = "xdp_cpumap", 125 [BPF_XDP] = "xdp", 126 [BPF_SK_REUSEPORT_SELECT] = "sk_reuseport_select", 127 [BPF_SK_REUSEPORT_SELECT_OR_MIGRATE] = "sk_reuseport_select_or_migrate", 128 [BPF_PERF_EVENT] = "perf_event", 129 [BPF_TRACE_KPROBE_MULTI] = "trace_kprobe_multi", 130 [BPF_STRUCT_OPS] = "struct_ops", 131 [BPF_NETFILTER] = "netfilter", 132 [BPF_TCX_INGRESS] = "tcx_ingress", 133 [BPF_TCX_EGRESS] = "tcx_egress", 134 [BPF_TRACE_UPROBE_MULTI] = "trace_uprobe_multi", 135 [BPF_NETKIT_PRIMARY] = "netkit_primary", 136 [BPF_NETKIT_PEER] = "netkit_peer", 137 [BPF_TRACE_KPROBE_SESSION] = "trace_kprobe_session", 138 [BPF_TRACE_UPROBE_SESSION] = "trace_uprobe_session", 139 [BPF_TRACE_FENTRY_MULTI] = "trace_fentry_multi", 140 [BPF_TRACE_FEXIT_MULTI] = "trace_fexit_multi", 141 [BPF_TRACE_FSESSION_MULTI] = "trace_fsession_multi", 142 }; 143 144 static const char * const link_type_name[] = { 145 [BPF_LINK_TYPE_UNSPEC] = "unspec", 146 [BPF_LINK_TYPE_RAW_TRACEPOINT] = "raw_tracepoint", 147 [BPF_LINK_TYPE_TRACING] = "tracing", 148 [BPF_LINK_TYPE_CGROUP] = "cgroup", 149 [BPF_LINK_TYPE_ITER] = "iter", 150 [BPF_LINK_TYPE_NETNS] = "netns", 151 [BPF_LINK_TYPE_XDP] = "xdp", 152 [BPF_LINK_TYPE_PERF_EVENT] = "perf_event", 153 [BPF_LINK_TYPE_KPROBE_MULTI] = "kprobe_multi", 154 [BPF_LINK_TYPE_STRUCT_OPS] = "struct_ops", 155 [BPF_LINK_TYPE_NETFILTER] = "netfilter", 156 [BPF_LINK_TYPE_TCX] = "tcx", 157 [BPF_LINK_TYPE_UPROBE_MULTI] = "uprobe_multi", 158 [BPF_LINK_TYPE_NETKIT] = "netkit", 159 [BPF_LINK_TYPE_SOCKMAP] = "sockmap", 160 [BPF_LINK_TYPE_TRACING_MULTI] = "tracing_multi", 161 }; 162 163 static const char * const map_type_name[] = { 164 [BPF_MAP_TYPE_UNSPEC] = "unspec", 165 [BPF_MAP_TYPE_HASH] = "hash", 166 [BPF_MAP_TYPE_ARRAY] = "array", 167 [BPF_MAP_TYPE_PROG_ARRAY] = "prog_array", 168 [BPF_MAP_TYPE_PERF_EVENT_ARRAY] = "perf_event_array", 169 [BPF_MAP_TYPE_PERCPU_HASH] = "percpu_hash", 170 [BPF_MAP_TYPE_PERCPU_ARRAY] = "percpu_array", 171 [BPF_MAP_TYPE_STACK_TRACE] = "stack_trace", 172 [BPF_MAP_TYPE_CGROUP_ARRAY] = "cgroup_array", 173 [BPF_MAP_TYPE_LRU_HASH] = "lru_hash", 174 [BPF_MAP_TYPE_LRU_PERCPU_HASH] = "lru_percpu_hash", 175 [BPF_MAP_TYPE_LPM_TRIE] = "lpm_trie", 176 [BPF_MAP_TYPE_ARRAY_OF_MAPS] = "array_of_maps", 177 [BPF_MAP_TYPE_HASH_OF_MAPS] = "hash_of_maps", 178 [BPF_MAP_TYPE_DEVMAP] = "devmap", 179 [BPF_MAP_TYPE_DEVMAP_HASH] = "devmap_hash", 180 [BPF_MAP_TYPE_SOCKMAP] = "sockmap", 181 [BPF_MAP_TYPE_CPUMAP] = "cpumap", 182 [BPF_MAP_TYPE_XSKMAP] = "xskmap", 183 [BPF_MAP_TYPE_SOCKHASH] = "sockhash", 184 [BPF_MAP_TYPE_CGROUP_STORAGE] = "cgroup_storage", 185 [BPF_MAP_TYPE_REUSEPORT_SOCKARRAY] = "reuseport_sockarray", 186 [BPF_MAP_TYPE_PERCPU_CGROUP_STORAGE] = "percpu_cgroup_storage", 187 [BPF_MAP_TYPE_QUEUE] = "queue", 188 [BPF_MAP_TYPE_STACK] = "stack", 189 [BPF_MAP_TYPE_SK_STORAGE] = "sk_storage", 190 [BPF_MAP_TYPE_STRUCT_OPS] = "struct_ops", 191 [BPF_MAP_TYPE_RINGBUF] = "ringbuf", 192 [BPF_MAP_TYPE_INODE_STORAGE] = "inode_storage", 193 [BPF_MAP_TYPE_TASK_STORAGE] = "task_storage", 194 [BPF_MAP_TYPE_BLOOM_FILTER] = "bloom_filter", 195 [BPF_MAP_TYPE_USER_RINGBUF] = "user_ringbuf", 196 [BPF_MAP_TYPE_CGRP_STORAGE] = "cgrp_storage", 197 [BPF_MAP_TYPE_ARENA] = "arena", 198 [BPF_MAP_TYPE_INSN_ARRAY] = "insn_array", 199 [BPF_MAP_TYPE_RHASH] = "rhash", 200 }; 201 202 static const char * const prog_type_name[] = { 203 [BPF_PROG_TYPE_UNSPEC] = "unspec", 204 [BPF_PROG_TYPE_SOCKET_FILTER] = "socket_filter", 205 [BPF_PROG_TYPE_KPROBE] = "kprobe", 206 [BPF_PROG_TYPE_SCHED_CLS] = "sched_cls", 207 [BPF_PROG_TYPE_SCHED_ACT] = "sched_act", 208 [BPF_PROG_TYPE_TRACEPOINT] = "tracepoint", 209 [BPF_PROG_TYPE_XDP] = "xdp", 210 [BPF_PROG_TYPE_PERF_EVENT] = "perf_event", 211 [BPF_PROG_TYPE_CGROUP_SKB] = "cgroup_skb", 212 [BPF_PROG_TYPE_CGROUP_SOCK] = "cgroup_sock", 213 [BPF_PROG_TYPE_LWT_IN] = "lwt_in", 214 [BPF_PROG_TYPE_LWT_OUT] = "lwt_out", 215 [BPF_PROG_TYPE_LWT_XMIT] = "lwt_xmit", 216 [BPF_PROG_TYPE_SOCK_OPS] = "sock_ops", 217 [BPF_PROG_TYPE_SK_SKB] = "sk_skb", 218 [BPF_PROG_TYPE_CGROUP_DEVICE] = "cgroup_device", 219 [BPF_PROG_TYPE_SK_MSG] = "sk_msg", 220 [BPF_PROG_TYPE_RAW_TRACEPOINT] = "raw_tracepoint", 221 [BPF_PROG_TYPE_CGROUP_SOCK_ADDR] = "cgroup_sock_addr", 222 [BPF_PROG_TYPE_LWT_SEG6LOCAL] = "lwt_seg6local", 223 [BPF_PROG_TYPE_LIRC_MODE2] = "lirc_mode2", 224 [BPF_PROG_TYPE_SK_REUSEPORT] = "sk_reuseport", 225 [BPF_PROG_TYPE_FLOW_DISSECTOR] = "flow_dissector", 226 [BPF_PROG_TYPE_CGROUP_SYSCTL] = "cgroup_sysctl", 227 [BPF_PROG_TYPE_RAW_TRACEPOINT_WRITABLE] = "raw_tracepoint_writable", 228 [BPF_PROG_TYPE_CGROUP_SOCKOPT] = "cgroup_sockopt", 229 [BPF_PROG_TYPE_TRACING] = "tracing", 230 [BPF_PROG_TYPE_STRUCT_OPS] = "struct_ops", 231 [BPF_PROG_TYPE_EXT] = "ext", 232 [BPF_PROG_TYPE_LSM] = "lsm", 233 [BPF_PROG_TYPE_SK_LOOKUP] = "sk_lookup", 234 [BPF_PROG_TYPE_SYSCALL] = "syscall", 235 [BPF_PROG_TYPE_NETFILTER] = "netfilter", 236 }; 237 238 static int __base_pr(enum libbpf_print_level level, const char *format, 239 va_list args) 240 { 241 const char *env_var = "LIBBPF_LOG_LEVEL"; 242 static enum libbpf_print_level min_level = LIBBPF_INFO; 243 static bool initialized; 244 245 if (!initialized) { 246 char *verbosity; 247 248 initialized = true; 249 verbosity = getenv(env_var); 250 if (verbosity) { 251 if (strcasecmp(verbosity, "warn") == 0) 252 min_level = LIBBPF_WARN; 253 else if (strcasecmp(verbosity, "debug") == 0) 254 min_level = LIBBPF_DEBUG; 255 else if (strcasecmp(verbosity, "info") == 0) 256 min_level = LIBBPF_INFO; 257 else 258 fprintf(stderr, "libbpf: unrecognized '%s' envvar value: '%s', should be one of 'warn', 'debug', or 'info'.\n", 259 env_var, verbosity); 260 } 261 } 262 263 /* if too verbose, skip logging */ 264 if (level > min_level) 265 return 0; 266 267 return vfprintf(stderr, format, args); 268 } 269 270 static libbpf_print_fn_t __libbpf_pr = __base_pr; 271 272 libbpf_print_fn_t libbpf_set_print(libbpf_print_fn_t fn) 273 { 274 libbpf_print_fn_t old_print_fn; 275 276 old_print_fn = __atomic_exchange_n(&__libbpf_pr, fn, __ATOMIC_RELAXED); 277 278 return old_print_fn; 279 } 280 281 __printf(2, 3) 282 void libbpf_print(enum libbpf_print_level level, const char *format, ...) 283 { 284 va_list args; 285 int old_errno; 286 libbpf_print_fn_t print_fn; 287 288 print_fn = __atomic_load_n(&__libbpf_pr, __ATOMIC_RELAXED); 289 if (!print_fn) 290 return; 291 292 old_errno = errno; 293 294 va_start(args, format); 295 print_fn(level, format, args); 296 va_end(args); 297 298 errno = old_errno; 299 } 300 301 static void pr_perm_msg(int err) 302 { 303 struct rlimit limit; 304 char buf[100]; 305 306 if (err != -EPERM || geteuid() != 0) 307 return; 308 309 err = getrlimit(RLIMIT_MEMLOCK, &limit); 310 if (err) 311 return; 312 313 if (limit.rlim_cur == RLIM_INFINITY) 314 return; 315 316 if (limit.rlim_cur < 1024) 317 snprintf(buf, sizeof(buf), "%zu bytes", (size_t)limit.rlim_cur); 318 else if (limit.rlim_cur < 1024*1024) 319 snprintf(buf, sizeof(buf), "%.1f KiB", (double)limit.rlim_cur / 1024); 320 else 321 snprintf(buf, sizeof(buf), "%.1f MiB", (double)limit.rlim_cur / (1024*1024)); 322 323 pr_warn("permission error while running as root; try raising 'ulimit -l'? current value: %s\n", 324 buf); 325 } 326 327 /* Copied from tools/perf/util/util.h */ 328 #ifndef zfree 329 # define zfree(ptr) ({ free(*ptr); *ptr = NULL; }) 330 #endif 331 332 #ifndef zclose 333 # define zclose(fd) ({ \ 334 int ___err = 0; \ 335 if ((fd) >= 0) \ 336 ___err = close((fd)); \ 337 fd = -1; \ 338 ___err; }) 339 #endif 340 341 static inline __u64 ptr_to_u64(const void *ptr) 342 { 343 return (__u64) (unsigned long) ptr; 344 } 345 346 int libbpf_set_strict_mode(enum libbpf_strict_mode mode) 347 { 348 /* as of v1.0 libbpf_set_strict_mode() is a no-op */ 349 return 0; 350 } 351 352 __u32 libbpf_major_version(void) 353 { 354 return LIBBPF_MAJOR_VERSION; 355 } 356 357 __u32 libbpf_minor_version(void) 358 { 359 return LIBBPF_MINOR_VERSION; 360 } 361 362 const char *libbpf_version_string(void) 363 { 364 #define __S(X) #X 365 #define _S(X) __S(X) 366 return "v" _S(LIBBPF_MAJOR_VERSION) "." _S(LIBBPF_MINOR_VERSION); 367 #undef _S 368 #undef __S 369 } 370 371 enum reloc_type { 372 RELO_LD64, 373 RELO_CALL, 374 RELO_DATA, 375 RELO_EXTERN_LD64, 376 RELO_EXTERN_CALL, 377 RELO_SUBPROG_ADDR, 378 RELO_CORE, 379 RELO_INSN_ARRAY, 380 }; 381 382 struct reloc_desc { 383 enum reloc_type type; 384 int insn_idx; 385 union { 386 const struct bpf_core_relo *core_relo; /* used when type == RELO_CORE */ 387 struct { 388 int map_idx; 389 unsigned int sym_off; 390 /* 391 * The following two fields can be unionized, as the 392 * ext_idx field is used for extern symbols, and the 393 * sym_size is used for jump tables, which are never 394 * extern 395 */ 396 union { 397 int ext_idx; 398 int sym_size; 399 }; 400 }; 401 }; 402 }; 403 404 /* stored as sec_def->cookie for all libbpf-supported SEC()s */ 405 enum sec_def_flags { 406 SEC_NONE = 0, 407 /* expected_attach_type is optional, if kernel doesn't support that */ 408 SEC_EXP_ATTACH_OPT = 1, 409 /* legacy, only used by libbpf_get_type_names() and 410 * libbpf_attach_type_by_name(), not used by libbpf itself at all. 411 * This used to be associated with cgroup (and few other) BPF programs 412 * that were attachable through BPF_PROG_ATTACH command. Pretty 413 * meaningless nowadays, though. 414 */ 415 SEC_ATTACHABLE = 2, 416 SEC_ATTACHABLE_OPT = SEC_ATTACHABLE | SEC_EXP_ATTACH_OPT, 417 /* attachment target is specified through BTF ID in either kernel or 418 * other BPF program's BTF object 419 */ 420 SEC_ATTACH_BTF = 4, 421 /* BPF program type allows sleeping/blocking in kernel */ 422 SEC_SLEEPABLE = 8, 423 /* BPF program support non-linear XDP buffer */ 424 SEC_XDP_FRAGS = 16, 425 /* Setup proper attach type for usdt probes. */ 426 SEC_USDT = 32, 427 }; 428 429 struct bpf_sec_def { 430 char *sec; 431 enum bpf_prog_type prog_type; 432 enum bpf_attach_type expected_attach_type; 433 long cookie; 434 int handler_id; 435 436 libbpf_prog_setup_fn_t prog_setup_fn; 437 libbpf_prog_prepare_load_fn_t prog_prepare_load_fn; 438 libbpf_prog_attach_fn_t prog_attach_fn; 439 }; 440 441 struct bpf_light_subprog { 442 __u32 sec_insn_off; 443 __u32 sub_insn_off; 444 }; 445 446 /* 447 * bpf_prog should be a better name but it has been used in 448 * linux/filter.h. 449 */ 450 struct bpf_program { 451 char *name; 452 char *sec_name; 453 size_t sec_idx; 454 const struct bpf_sec_def *sec_def; 455 /* this program's instruction offset (in number of instructions) 456 * within its containing ELF section 457 */ 458 size_t sec_insn_off; 459 /* number of original instructions in ELF section belonging to this 460 * program, not taking into account subprogram instructions possible 461 * appended later during relocation 462 */ 463 size_t sec_insn_cnt; 464 /* Offset (in number of instructions) of the start of instruction 465 * belonging to this BPF program within its containing main BPF 466 * program. For the entry-point (main) BPF program, this is always 467 * zero. For a sub-program, this gets reset before each of main BPF 468 * programs are processed and relocated and is used to determined 469 * whether sub-program was already appended to the main program, and 470 * if yes, at which instruction offset. 471 */ 472 size_t sub_insn_off; 473 474 /* instructions that belong to BPF program; insns[0] is located at 475 * sec_insn_off instruction within its ELF section in ELF file, so 476 * when mapping ELF file instruction index to the local instruction, 477 * one needs to subtract sec_insn_off; and vice versa. 478 */ 479 struct bpf_insn *insns; 480 /* actual number of instruction in this BPF program's image; for 481 * entry-point BPF programs this includes the size of main program 482 * itself plus all the used sub-programs, appended at the end 483 */ 484 size_t insns_cnt; 485 486 struct reloc_desc *reloc_desc; 487 int nr_reloc; 488 489 /* BPF verifier log settings */ 490 char *log_buf; 491 size_t log_size; 492 __u32 log_level; 493 494 struct bpf_object *obj; 495 496 int fd; 497 bool autoload; 498 bool autoattach; 499 bool sym_global; 500 bool mark_btf_static; 501 enum bpf_prog_type type; 502 enum bpf_attach_type expected_attach_type; 503 int exception_cb_idx; 504 505 int prog_ifindex; 506 __u32 attach_btf_obj_fd; 507 __u32 attach_btf_id; 508 __u32 attach_prog_fd; 509 510 void *func_info; 511 __u32 func_info_rec_size; 512 __u32 func_info_cnt; 513 514 void *line_info; 515 __u32 line_info_rec_size; 516 __u32 line_info_cnt; 517 __u32 prog_flags; 518 __u8 hash[SHA256_DIGEST_LENGTH]; 519 520 struct bpf_light_subprog *subprogs; 521 __u32 subprog_cnt; 522 }; 523 524 struct bpf_struct_ops { 525 struct bpf_program **progs; 526 __u32 *kern_func_off; 527 /* e.g. struct tcp_congestion_ops in bpf_prog's btf format */ 528 void *data; 529 /* e.g. struct bpf_struct_ops_tcp_congestion_ops in 530 * btf_vmlinux's format. 531 * struct bpf_struct_ops_tcp_congestion_ops { 532 * [... some other kernel fields ...] 533 * struct tcp_congestion_ops data; 534 * } 535 * kern_vdata-size == sizeof(struct bpf_struct_ops_tcp_congestion_ops) 536 * bpf_map__init_kern_struct_ops() will populate the "kern_vdata" 537 * from "data". 538 */ 539 void *kern_vdata; 540 __u32 type_id; 541 }; 542 543 #define DATA_SEC ".data" 544 #define PERCPU_SEC ".percpu" 545 #define BSS_SEC ".bss" 546 #define RODATA_SEC ".rodata" 547 #define KCONFIG_SEC ".kconfig" 548 #define KSYMS_SEC ".ksyms" 549 #define STRUCT_OPS_SEC ".struct_ops" 550 #define STRUCT_OPS_LINK_SEC ".struct_ops.link" 551 #define ARENA_SEC ".addr_space.1" 552 553 enum libbpf_map_type { 554 LIBBPF_MAP_UNSPEC, 555 LIBBPF_MAP_DATA, 556 LIBBPF_MAP_BSS, 557 LIBBPF_MAP_RODATA, 558 LIBBPF_MAP_KCONFIG, 559 LIBBPF_MAP_PERCPU, 560 }; 561 562 struct bpf_map_def { 563 unsigned int type; 564 unsigned int key_size; 565 unsigned int value_size; 566 unsigned int max_entries; 567 unsigned int map_flags; 568 }; 569 570 struct bpf_map { 571 struct bpf_object *obj; 572 char *name; 573 /* real_name is defined for special internal maps (.rodata*, 574 * .data*, .bss, .kconfig) and preserves their original ELF section 575 * name. This is important to be able to find corresponding BTF 576 * DATASEC information. 577 */ 578 char *real_name; 579 int fd; 580 int sec_idx; 581 size_t sec_offset; 582 int map_ifindex; 583 int inner_map_fd; 584 struct bpf_map_def def; 585 __u32 numa_node; 586 __u32 btf_var_idx; 587 int mod_btf_fd; 588 __u32 btf_key_type_id; 589 __u32 btf_value_type_id; 590 __u32 btf_vmlinux_value_type_id; 591 enum libbpf_map_type libbpf_type; 592 void *mmaped; 593 struct bpf_struct_ops *st_ops; 594 struct bpf_map *inner_map; 595 void **init_slots; 596 int init_slots_sz; 597 char *pin_path; 598 bool pinned; 599 bool reused; 600 bool autocreate; 601 bool autoattach; 602 __u64 map_extra; 603 struct bpf_program *excl_prog; 604 }; 605 606 enum extern_type { 607 EXT_UNKNOWN, 608 EXT_KCFG, 609 EXT_KSYM, 610 }; 611 612 enum kcfg_type { 613 KCFG_UNKNOWN, 614 KCFG_CHAR, 615 KCFG_BOOL, 616 KCFG_INT, 617 KCFG_TRISTATE, 618 KCFG_CHAR_ARR, 619 }; 620 621 struct extern_desc { 622 enum extern_type type; 623 int sym_idx; 624 int btf_id; 625 int sec_btf_id; 626 char *name; 627 char *essent_name; 628 bool is_set; 629 bool is_weak; 630 union { 631 struct { 632 enum kcfg_type type; 633 int sz; 634 int align; 635 int data_off; 636 bool is_signed; 637 } kcfg; 638 struct { 639 unsigned long long addr; 640 641 /* target btf_id of the corresponding kernel var. */ 642 int kernel_btf_obj_fd; 643 int kernel_btf_id; 644 645 /* local btf_id of the ksym extern's type. */ 646 __u32 type_id; 647 /* BTF fd index to be patched in for insn->off, this is 648 * 0 for vmlinux BTF, index in obj->fd_array for module 649 * BTF 650 */ 651 __s16 btf_fd_idx; 652 } ksym; 653 }; 654 }; 655 656 struct module_btf { 657 struct btf *btf; 658 char *name; 659 __u32 id; 660 int fd; 661 int fd_array_idx; 662 }; 663 664 enum sec_type { 665 SEC_UNUSED = 0, 666 SEC_RELO, 667 SEC_BSS, 668 SEC_DATA, 669 SEC_RODATA, 670 SEC_ST_OPS, 671 SEC_PERCPU, 672 }; 673 674 struct elf_sec_desc { 675 enum sec_type sec_type; 676 Elf64_Shdr *shdr; 677 Elf_Data *data; 678 }; 679 680 struct elf_state { 681 int fd; 682 const void *obj_buf; 683 size_t obj_buf_sz; 684 Elf *elf; 685 Elf64_Ehdr *ehdr; 686 Elf_Data *symbols; 687 Elf_Data *arena_data; 688 size_t shstrndx; /* section index for section name strings */ 689 size_t strtabidx; 690 struct elf_sec_desc *secs; 691 size_t sec_cnt; 692 int btf_maps_shndx; 693 __u32 btf_maps_sec_btf_id; 694 int text_shndx; 695 int symbols_shndx; 696 bool has_st_ops; 697 int arena_data_shndx; 698 int jumptables_data_shndx; 699 }; 700 701 struct usdt_manager; 702 703 enum bpf_object_state { 704 OBJ_OPEN, 705 OBJ_PREPARED, 706 OBJ_LOADED, 707 }; 708 709 struct bpf_object { 710 char name[BPF_OBJ_NAME_LEN]; 711 char license[64]; 712 __u32 kern_version; 713 714 enum bpf_object_state state; 715 struct bpf_program *programs; 716 size_t nr_programs; 717 struct bpf_map *maps; 718 size_t nr_maps; 719 size_t maps_cap; 720 721 char *kconfig; 722 struct extern_desc *externs; 723 int nr_extern; 724 int kconfig_map_idx; 725 726 bool has_subcalls; 727 bool has_rodata; 728 729 struct bpf_gen *gen_loader; 730 731 /* Information when doing ELF related work. Only valid if efile.elf is not NULL */ 732 struct elf_state efile; 733 734 unsigned char byteorder; 735 736 struct btf *btf; 737 struct btf_ext *btf_ext; 738 739 /* Parse and load BTF vmlinux if any of the programs in the object need 740 * it at load time. 741 */ 742 struct btf *btf_vmlinux; 743 /* Path to the custom BTF to be used for BPF CO-RE relocations as an 744 * override for vmlinux BTF. 745 */ 746 char *btf_custom_path; 747 /* vmlinux BTF override for CO-RE relocations */ 748 struct btf *btf_vmlinux_override; 749 /* Lazily initialized kernel module BTFs */ 750 struct module_btf *btf_modules; 751 bool btf_modules_loaded; 752 size_t btf_module_cnt; 753 size_t btf_module_cap; 754 755 /* optional log settings passed to BPF_BTF_LOAD and BPF_PROG_LOAD commands */ 756 char *log_buf; 757 size_t log_size; 758 __u32 log_level; 759 760 int *fd_array; 761 size_t fd_array_cap; 762 size_t fd_array_cnt; 763 764 struct usdt_manager *usdt_man; 765 766 int arena_map_idx; 767 void *arena_data; 768 size_t arena_data_sz; 769 size_t arena_data_off; 770 771 void *jumptables_data; 772 size_t jumptables_data_sz; 773 774 struct { 775 struct bpf_program *prog; 776 unsigned int sym_off; 777 int fd; 778 } *jumptable_maps; 779 size_t jumptable_map_cnt; 780 781 struct kern_feature_cache *feat_cache; 782 char *token_path; 783 int token_fd; 784 785 char path[]; 786 }; 787 788 static const char *elf_sym_str(const struct bpf_object *obj, size_t off); 789 static const char *elf_sec_str(const struct bpf_object *obj, size_t off); 790 static Elf_Scn *elf_sec_by_idx(const struct bpf_object *obj, size_t idx); 791 static Elf_Scn *elf_sec_by_name(const struct bpf_object *obj, const char *name); 792 static Elf64_Shdr *elf_sec_hdr(const struct bpf_object *obj, Elf_Scn *scn); 793 static const char *elf_sec_name(const struct bpf_object *obj, Elf_Scn *scn); 794 static Elf_Data *elf_sec_data(const struct bpf_object *obj, Elf_Scn *scn); 795 static Elf64_Sym *elf_sym_by_idx(const struct bpf_object *obj, size_t idx); 796 static Elf64_Rel *elf_rel_by_idx(Elf_Data *data, size_t idx); 797 798 void bpf_program__unload(struct bpf_program *prog) 799 { 800 if (!prog) 801 return; 802 803 zclose(prog->fd); 804 805 zfree(&prog->func_info); 806 zfree(&prog->line_info); 807 zfree(&prog->subprogs); 808 } 809 810 static void bpf_program__exit(struct bpf_program *prog) 811 { 812 if (!prog) 813 return; 814 815 bpf_program__unload(prog); 816 zfree(&prog->name); 817 zfree(&prog->sec_name); 818 zfree(&prog->insns); 819 zfree(&prog->reloc_desc); 820 821 prog->nr_reloc = 0; 822 prog->insns_cnt = 0; 823 prog->sec_idx = -1; 824 } 825 826 static bool insn_is_subprog_call(const struct bpf_insn *insn) 827 { 828 return BPF_CLASS(insn->code) == BPF_JMP && 829 BPF_OP(insn->code) == BPF_CALL && 830 BPF_SRC(insn->code) == BPF_K && 831 insn->src_reg == BPF_PSEUDO_CALL && 832 insn->dst_reg == 0 && 833 insn->off == 0; 834 } 835 836 static bool is_call_insn(const struct bpf_insn *insn) 837 { 838 return insn->code == (BPF_JMP | BPF_CALL); 839 } 840 841 static bool insn_is_pseudo_func(struct bpf_insn *insn) 842 { 843 return is_ldimm64_insn(insn) && insn->src_reg == BPF_PSEUDO_FUNC; 844 } 845 846 static int 847 bpf_object__init_prog(struct bpf_object *obj, struct bpf_program *prog, 848 const char *name, size_t sec_idx, const char *sec_name, 849 size_t sec_off, void *insn_data, size_t insn_data_sz) 850 { 851 if (insn_data_sz == 0 || insn_data_sz % BPF_INSN_SZ || sec_off % BPF_INSN_SZ) { 852 pr_warn("sec '%s': corrupted program '%s', offset %zu, size %zu\n", 853 sec_name, name, sec_off, insn_data_sz); 854 return -EINVAL; 855 } 856 857 memset(prog, 0, sizeof(*prog)); 858 prog->obj = obj; 859 860 prog->sec_idx = sec_idx; 861 prog->sec_insn_off = sec_off / BPF_INSN_SZ; 862 prog->sec_insn_cnt = insn_data_sz / BPF_INSN_SZ; 863 /* insns_cnt can later be increased by appending used subprograms */ 864 prog->insns_cnt = prog->sec_insn_cnt; 865 866 prog->type = BPF_PROG_TYPE_UNSPEC; 867 prog->fd = -1; 868 prog->exception_cb_idx = -1; 869 870 /* libbpf's convention for SEC("?abc...") is that it's just like 871 * SEC("abc...") but the corresponding bpf_program starts out with 872 * autoload set to false. 873 */ 874 if (sec_name[0] == '?') { 875 prog->autoload = false; 876 /* from now on forget there was ? in section name */ 877 sec_name++; 878 } else { 879 prog->autoload = true; 880 } 881 882 prog->autoattach = true; 883 884 /* inherit object's log_level */ 885 prog->log_level = obj->log_level; 886 887 prog->sec_name = strdup(sec_name); 888 if (!prog->sec_name) 889 goto errout; 890 891 prog->name = strdup(name); 892 if (!prog->name) 893 goto errout; 894 895 prog->insns = malloc(insn_data_sz); 896 if (!prog->insns) 897 goto errout; 898 memcpy(prog->insns, insn_data, insn_data_sz); 899 900 return 0; 901 errout: 902 pr_warn("sec '%s': failed to allocate memory for prog '%s'\n", sec_name, name); 903 bpf_program__exit(prog); 904 return -ENOMEM; 905 } 906 907 static int 908 bpf_object__add_programs(struct bpf_object *obj, Elf_Data *sec_data, 909 const char *sec_name, int sec_idx) 910 { 911 Elf_Data *symbols = obj->efile.symbols; 912 struct bpf_program *prog, *progs; 913 void *data = sec_data->d_buf; 914 size_t sec_sz = sec_data->d_size, sec_off, prog_sz, nr_syms; 915 int nr_progs, err, i; 916 const char *name; 917 Elf64_Sym *sym; 918 919 progs = obj->programs; 920 nr_progs = obj->nr_programs; 921 nr_syms = symbols->d_size / sizeof(Elf64_Sym); 922 923 for (i = 0; i < nr_syms; i++) { 924 sym = elf_sym_by_idx(obj, i); 925 926 if (sym->st_shndx != sec_idx) 927 continue; 928 if (ELF64_ST_TYPE(sym->st_info) != STT_FUNC) 929 continue; 930 931 prog_sz = sym->st_size; 932 sec_off = sym->st_value; 933 934 name = elf_sym_str(obj, sym->st_name); 935 if (!name) { 936 pr_warn("sec '%s': failed to get symbol name for offset %zu\n", 937 sec_name, sec_off); 938 return -LIBBPF_ERRNO__FORMAT; 939 } 940 941 if (sec_off + prog_sz > sec_sz || sec_off + prog_sz < sec_off) { 942 pr_warn("sec '%s': program at offset %zu crosses section boundary\n", 943 sec_name, sec_off); 944 return -LIBBPF_ERRNO__FORMAT; 945 } 946 947 if (sec_idx != obj->efile.text_shndx && ELF64_ST_BIND(sym->st_info) == STB_LOCAL) { 948 pr_warn("sec '%s': program '%s' is static and not supported\n", sec_name, name); 949 return -ENOTSUP; 950 } 951 952 pr_debug("sec '%s': found program '%s' at insn offset %zu (%zu bytes), code size %zu insns (%zu bytes)\n", 953 sec_name, name, sec_off / BPF_INSN_SZ, sec_off, prog_sz / BPF_INSN_SZ, prog_sz); 954 955 progs = libbpf_reallocarray(progs, nr_progs + 1, sizeof(*progs)); 956 if (!progs) { 957 /* 958 * In this case the original obj->programs 959 * is still valid, so don't need special treat for 960 * bpf_close_object(). 961 */ 962 pr_warn("sec '%s': failed to alloc memory for new program '%s'\n", 963 sec_name, name); 964 return -ENOMEM; 965 } 966 obj->programs = progs; 967 968 prog = &progs[nr_progs]; 969 970 err = bpf_object__init_prog(obj, prog, name, sec_idx, sec_name, 971 sec_off, data + sec_off, prog_sz); 972 if (err) 973 return err; 974 975 if (ELF64_ST_BIND(sym->st_info) != STB_LOCAL) 976 prog->sym_global = true; 977 978 /* if function is a global/weak symbol, but has restricted 979 * (STV_HIDDEN or STV_INTERNAL) visibility, mark its BTF FUNC 980 * as static to enable more permissive BPF verification mode 981 * with more outside context available to BPF verifier 982 */ 983 if (prog->sym_global && (ELF64_ST_VISIBILITY(sym->st_other) == STV_HIDDEN 984 || ELF64_ST_VISIBILITY(sym->st_other) == STV_INTERNAL)) 985 prog->mark_btf_static = true; 986 987 nr_progs++; 988 obj->nr_programs = nr_progs; 989 } 990 991 return 0; 992 } 993 994 static void bpf_object_bswap_progs(struct bpf_object *obj) 995 { 996 struct bpf_program *prog = obj->programs; 997 struct bpf_insn *insn; 998 int p, i; 999 1000 for (p = 0; p < obj->nr_programs; p++, prog++) { 1001 insn = prog->insns; 1002 for (i = 0; i < prog->insns_cnt; i++, insn++) 1003 bpf_insn_bswap(insn); 1004 } 1005 pr_debug("converted %zu BPF programs to native byte order\n", obj->nr_programs); 1006 } 1007 1008 static const struct btf_member * 1009 find_member_by_offset(const struct btf_type *t, __u32 bit_offset) 1010 { 1011 struct btf_member *m; 1012 int i; 1013 1014 for (i = 0, m = btf_members(t); i < btf_vlen(t); i++, m++) { 1015 if (btf_member_bit_offset(t, i) == bit_offset) 1016 return m; 1017 } 1018 1019 return NULL; 1020 } 1021 1022 static const struct btf_member * 1023 find_member_by_name(const struct btf *btf, const struct btf_type *t, 1024 const char *name) 1025 { 1026 struct btf_member *m; 1027 int i; 1028 1029 for (i = 0, m = btf_members(t); i < btf_vlen(t); i++, m++) { 1030 if (!strcmp(btf__name_by_offset(btf, m->name_off), name)) 1031 return m; 1032 } 1033 1034 return NULL; 1035 } 1036 1037 static int find_ksym_btf_id(struct bpf_object *obj, const char *ksym_name, 1038 __u16 kind, struct btf **res_btf, 1039 struct module_btf **res_mod_btf); 1040 1041 #define STRUCT_OPS_VALUE_PREFIX "bpf_struct_ops_" 1042 static int find_btf_by_prefix_kind(const struct btf *btf, const char *prefix, 1043 const char *name, __u32 kind); 1044 1045 static int 1046 find_struct_ops_kern_types(struct bpf_object *obj, const char *tname_raw, 1047 struct module_btf **mod_btf, 1048 const struct btf_type **type, __u32 *type_id, 1049 const struct btf_type **vtype, __u32 *vtype_id, 1050 const struct btf_member **data_member) 1051 { 1052 const struct btf_type *kern_type, *kern_vtype; 1053 const struct btf_member *kern_data_member; 1054 struct btf *btf = NULL; 1055 __s32 kern_vtype_id, kern_type_id; 1056 char tname[192], stname[256]; 1057 __u32 i; 1058 1059 snprintf(tname, sizeof(tname), "%.*s", 1060 (int)bpf_core_essential_name_len(tname_raw), tname_raw); 1061 1062 snprintf(stname, sizeof(stname), "%s%s", STRUCT_OPS_VALUE_PREFIX, tname); 1063 1064 /* Look for the corresponding "map_value" type that will be used 1065 * in map_update(BPF_MAP_TYPE_STRUCT_OPS) first, figure out the btf 1066 * and the mod_btf. 1067 * For example, find "struct bpf_struct_ops_tcp_congestion_ops". 1068 */ 1069 kern_vtype_id = find_ksym_btf_id(obj, stname, BTF_KIND_STRUCT, &btf, mod_btf); 1070 if (kern_vtype_id < 0) { 1071 pr_warn("struct_ops init_kern: struct %s is not found in kernel BTF\n", stname); 1072 return kern_vtype_id; 1073 } 1074 kern_vtype = btf__type_by_id(btf, kern_vtype_id); 1075 1076 kern_type_id = btf__find_by_name_kind(btf, tname, BTF_KIND_STRUCT); 1077 if (kern_type_id < 0) { 1078 pr_warn("struct_ops init_kern: struct %s is not found in kernel BTF\n", tname); 1079 return kern_type_id; 1080 } 1081 kern_type = btf__type_by_id(btf, kern_type_id); 1082 1083 /* Find "struct tcp_congestion_ops" from 1084 * struct bpf_struct_ops_tcp_congestion_ops { 1085 * [ ... ] 1086 * struct tcp_congestion_ops data; 1087 * } 1088 */ 1089 kern_data_member = btf_members(kern_vtype); 1090 for (i = 0; i < btf_vlen(kern_vtype); i++, kern_data_member++) { 1091 if (kern_data_member->type == kern_type_id) 1092 break; 1093 } 1094 if (i == btf_vlen(kern_vtype)) { 1095 pr_warn("struct_ops init_kern: struct %s data is not found in struct %s\n", 1096 tname, stname); 1097 return -EINVAL; 1098 } 1099 1100 *type = kern_type; 1101 *type_id = kern_type_id; 1102 *vtype = kern_vtype; 1103 *vtype_id = kern_vtype_id; 1104 *data_member = kern_data_member; 1105 1106 return 0; 1107 } 1108 1109 static bool bpf_map__is_struct_ops(const struct bpf_map *map) 1110 { 1111 return map->def.type == BPF_MAP_TYPE_STRUCT_OPS; 1112 } 1113 1114 static bool is_valid_st_ops_program(struct bpf_object *obj, 1115 const struct bpf_program *prog) 1116 { 1117 int i; 1118 1119 for (i = 0; i < obj->nr_programs; i++) { 1120 if (&obj->programs[i] == prog) 1121 return prog->type == BPF_PROG_TYPE_STRUCT_OPS; 1122 } 1123 1124 return false; 1125 } 1126 1127 /* For each struct_ops program P, referenced from some struct_ops map M, 1128 * enable P.autoload if there are Ms for which M.autocreate is true, 1129 * disable P.autoload if for all Ms M.autocreate is false. 1130 * Don't change P.autoload for programs that are not referenced from any maps. 1131 */ 1132 static int bpf_object_adjust_struct_ops_autoload(struct bpf_object *obj) 1133 { 1134 struct bpf_program *prog, *slot_prog; 1135 struct bpf_map *map; 1136 int i, j, k, vlen; 1137 1138 for (i = 0; i < obj->nr_programs; ++i) { 1139 int should_load = false; 1140 int use_cnt = 0; 1141 1142 prog = &obj->programs[i]; 1143 if (prog->type != BPF_PROG_TYPE_STRUCT_OPS) 1144 continue; 1145 1146 for (j = 0; j < obj->nr_maps; ++j) { 1147 const struct btf_type *type; 1148 1149 map = &obj->maps[j]; 1150 if (!bpf_map__is_struct_ops(map)) 1151 continue; 1152 1153 type = btf__type_by_id(obj->btf, map->st_ops->type_id); 1154 vlen = btf_vlen(type); 1155 for (k = 0; k < vlen; ++k) { 1156 slot_prog = map->st_ops->progs[k]; 1157 if (prog != slot_prog) 1158 continue; 1159 1160 use_cnt++; 1161 if (map->autocreate) 1162 should_load = true; 1163 } 1164 } 1165 if (use_cnt) 1166 prog->autoload = should_load; 1167 } 1168 1169 return 0; 1170 } 1171 1172 /* Init the map's fields that depend on kern_btf */ 1173 static int bpf_map__init_kern_struct_ops(struct bpf_map *map) 1174 { 1175 const struct btf_member *member, *kern_member, *kern_data_member; 1176 const struct btf_type *type, *kern_type, *kern_vtype; 1177 __u32 i, kern_type_id, kern_vtype_id, kern_data_off; 1178 struct bpf_object *obj = map->obj; 1179 const struct btf *btf = obj->btf; 1180 struct bpf_struct_ops *st_ops; 1181 const struct btf *kern_btf; 1182 struct module_btf *mod_btf = NULL; 1183 void *data, *kern_data; 1184 const char *tname; 1185 int err; 1186 1187 st_ops = map->st_ops; 1188 type = btf__type_by_id(btf, st_ops->type_id); 1189 tname = btf__name_by_offset(btf, type->name_off); 1190 err = find_struct_ops_kern_types(obj, tname, &mod_btf, 1191 &kern_type, &kern_type_id, 1192 &kern_vtype, &kern_vtype_id, 1193 &kern_data_member); 1194 if (err) 1195 return err; 1196 1197 kern_btf = mod_btf ? mod_btf->btf : obj->btf_vmlinux; 1198 1199 pr_debug("struct_ops init_kern %s: type_id:%u kern_type_id:%u kern_vtype_id:%u\n", 1200 map->name, st_ops->type_id, kern_type_id, kern_vtype_id); 1201 1202 map->mod_btf_fd = mod_btf ? mod_btf->fd : -1; 1203 map->def.value_size = kern_vtype->size; 1204 map->btf_vmlinux_value_type_id = kern_vtype_id; 1205 1206 st_ops->kern_vdata = calloc(1, kern_vtype->size); 1207 if (!st_ops->kern_vdata) 1208 return -ENOMEM; 1209 1210 data = st_ops->data; 1211 kern_data_off = kern_data_member->offset / 8; 1212 kern_data = st_ops->kern_vdata + kern_data_off; 1213 1214 member = btf_members(type); 1215 for (i = 0; i < btf_vlen(type); i++, member++) { 1216 const struct btf_type *mtype, *kern_mtype; 1217 __u32 mtype_id, kern_mtype_id; 1218 void *mdata, *kern_mdata; 1219 struct bpf_program *prog; 1220 __s64 msize, kern_msize; 1221 __u32 moff, kern_moff; 1222 __u32 kern_member_idx; 1223 const char *mname; 1224 1225 mname = btf__name_by_offset(btf, member->name_off); 1226 moff = member->offset / 8; 1227 mdata = data + moff; 1228 msize = btf__resolve_size(btf, member->type); 1229 if (msize < 0) { 1230 pr_warn("struct_ops init_kern %s: failed to resolve the size of member %s\n", 1231 map->name, mname); 1232 return msize; 1233 } 1234 1235 kern_member = find_member_by_name(kern_btf, kern_type, mname); 1236 if (!kern_member) { 1237 if (!libbpf_is_mem_zeroed(mdata, msize)) { 1238 pr_warn("struct_ops init_kern %s: Cannot find member %s in kernel BTF\n", 1239 map->name, mname); 1240 return -ENOTSUP; 1241 } 1242 1243 if (st_ops->progs[i]) { 1244 /* If we had declaratively set struct_ops callback, we need to 1245 * force its autoload to false, because it doesn't have 1246 * a chance of succeeding from POV of the current struct_ops map. 1247 * If this program is still referenced somewhere else, though, 1248 * then bpf_object_adjust_struct_ops_autoload() will update its 1249 * autoload accordingly. 1250 */ 1251 st_ops->progs[i]->autoload = false; 1252 st_ops->progs[i] = NULL; 1253 } 1254 1255 /* Skip all-zero/NULL fields if they are not present in the kernel BTF */ 1256 pr_info("struct_ops %s: member %s not found in kernel, skipping it as it's set to zero\n", 1257 map->name, mname); 1258 continue; 1259 } 1260 1261 kern_member_idx = kern_member - btf_members(kern_type); 1262 if (btf_member_bitfield_size(type, i) || 1263 btf_member_bitfield_size(kern_type, kern_member_idx)) { 1264 pr_warn("struct_ops init_kern %s: bitfield %s is not supported\n", 1265 map->name, mname); 1266 return -ENOTSUP; 1267 } 1268 1269 kern_moff = kern_member->offset / 8; 1270 kern_mdata = kern_data + kern_moff; 1271 1272 mtype = skip_mods_and_typedefs(btf, member->type, &mtype_id); 1273 kern_mtype = skip_mods_and_typedefs(kern_btf, kern_member->type, 1274 &kern_mtype_id); 1275 if (BTF_INFO_KIND(mtype->info) != 1276 BTF_INFO_KIND(kern_mtype->info)) { 1277 pr_warn("struct_ops init_kern %s: Unmatched member type %s %u != %u(kernel)\n", 1278 map->name, mname, BTF_INFO_KIND(mtype->info), 1279 BTF_INFO_KIND(kern_mtype->info)); 1280 return -ENOTSUP; 1281 } 1282 1283 if (btf_is_ptr(mtype)) { 1284 prog = *(void **)mdata; 1285 /* just like for !kern_member case above, reset declaratively 1286 * set (at compile time) program's autload to false, 1287 * if user replaced it with another program or NULL 1288 */ 1289 if (st_ops->progs[i] && st_ops->progs[i] != prog) 1290 st_ops->progs[i]->autoload = false; 1291 1292 /* Update the value from the shadow type */ 1293 st_ops->progs[i] = prog; 1294 if (!prog) 1295 continue; 1296 1297 if (!is_valid_st_ops_program(obj, prog)) { 1298 pr_warn("struct_ops init_kern %s: member %s is not a struct_ops program\n", 1299 map->name, mname); 1300 return -ENOTSUP; 1301 } 1302 1303 kern_mtype = skip_mods_and_typedefs(kern_btf, 1304 kern_mtype->type, 1305 &kern_mtype_id); 1306 1307 /* mtype->type must be a func_proto which was 1308 * guaranteed in bpf_object__collect_st_ops_relos(), 1309 * so only check kern_mtype for func_proto here. 1310 */ 1311 if (!btf_is_func_proto(kern_mtype)) { 1312 pr_warn("struct_ops init_kern %s: kernel member %s is not a func ptr\n", 1313 map->name, mname); 1314 return -ENOTSUP; 1315 } 1316 1317 if (mod_btf) 1318 prog->attach_btf_obj_fd = mod_btf->fd; 1319 1320 /* if we haven't yet processed this BPF program, record proper 1321 * attach_btf_id and member_idx 1322 */ 1323 if (!prog->attach_btf_id) { 1324 prog->attach_btf_id = kern_type_id; 1325 prog->expected_attach_type = kern_member_idx; 1326 } 1327 1328 /* struct_ops BPF prog can be re-used between multiple 1329 * .struct_ops & .struct_ops.link as long as it's the 1330 * same struct_ops struct definition and the same 1331 * function pointer field 1332 */ 1333 if (prog->attach_btf_id != kern_type_id) { 1334 pr_warn("struct_ops init_kern %s func ptr %s: invalid reuse of prog %s in sec %s with type %u: attach_btf_id %u != kern_type_id %u\n", 1335 map->name, mname, prog->name, prog->sec_name, prog->type, 1336 prog->attach_btf_id, kern_type_id); 1337 return -EINVAL; 1338 } 1339 if (prog->expected_attach_type != kern_member_idx) { 1340 pr_warn("struct_ops init_kern %s func ptr %s: invalid reuse of prog %s in sec %s with type %u: expected_attach_type %u != kern_member_idx %u\n", 1341 map->name, mname, prog->name, prog->sec_name, prog->type, 1342 prog->expected_attach_type, kern_member_idx); 1343 return -EINVAL; 1344 } 1345 1346 st_ops->kern_func_off[i] = kern_data_off + kern_moff; 1347 1348 pr_debug("struct_ops init_kern %s: func ptr %s is set to prog %s from data(+%u) to kern_data(+%u)\n", 1349 map->name, mname, prog->name, moff, 1350 kern_moff); 1351 1352 continue; 1353 } 1354 1355 kern_msize = btf__resolve_size(kern_btf, kern_mtype_id); 1356 if (kern_msize < 0 || msize != kern_msize) { 1357 pr_warn("struct_ops init_kern %s: Error in size of member %s: %zd != %zd(kernel)\n", 1358 map->name, mname, (ssize_t)msize, 1359 (ssize_t)kern_msize); 1360 return -ENOTSUP; 1361 } 1362 1363 pr_debug("struct_ops init_kern %s: copy %s %u bytes from data(+%u) to kern_data(+%u)\n", 1364 map->name, mname, (unsigned int)msize, 1365 moff, kern_moff); 1366 memcpy(kern_mdata, mdata, msize); 1367 } 1368 1369 return 0; 1370 } 1371 1372 static int bpf_object__init_kern_struct_ops_maps(struct bpf_object *obj) 1373 { 1374 struct bpf_map *map; 1375 size_t i; 1376 int err; 1377 1378 for (i = 0; i < obj->nr_maps; i++) { 1379 map = &obj->maps[i]; 1380 1381 if (!bpf_map__is_struct_ops(map)) 1382 continue; 1383 1384 if (!map->autocreate) 1385 continue; 1386 1387 err = bpf_map__init_kern_struct_ops(map); 1388 if (err) 1389 return err; 1390 } 1391 1392 return 0; 1393 } 1394 1395 static int init_struct_ops_maps(struct bpf_object *obj, const char *sec_name, 1396 int shndx, Elf_Data *data) 1397 { 1398 const struct btf_type *type, *datasec; 1399 const struct btf_var_secinfo *vsi; 1400 struct bpf_struct_ops *st_ops; 1401 const char *tname, *var_name; 1402 __s32 type_id, datasec_id; 1403 const struct btf *btf; 1404 struct bpf_map *map; 1405 __u32 i; 1406 1407 if (shndx == -1) 1408 return 0; 1409 1410 btf = obj->btf; 1411 datasec_id = btf__find_by_name_kind(btf, sec_name, 1412 BTF_KIND_DATASEC); 1413 if (datasec_id < 0) { 1414 pr_warn("struct_ops init: DATASEC %s not found\n", 1415 sec_name); 1416 return -EINVAL; 1417 } 1418 1419 datasec = btf__type_by_id(btf, datasec_id); 1420 vsi = btf_var_secinfos(datasec); 1421 for (i = 0; i < btf_vlen(datasec); i++, vsi++) { 1422 type = btf__type_by_id(obj->btf, vsi->type); 1423 var_name = btf__name_by_offset(obj->btf, type->name_off); 1424 1425 type_id = btf__resolve_type(obj->btf, vsi->type); 1426 if (type_id < 0) { 1427 pr_warn("struct_ops init: Cannot resolve var type_id %u in DATASEC %s\n", 1428 vsi->type, sec_name); 1429 return -EINVAL; 1430 } 1431 1432 type = btf__type_by_id(obj->btf, type_id); 1433 tname = btf__name_by_offset(obj->btf, type->name_off); 1434 if (!tname[0]) { 1435 pr_warn("struct_ops init: anonymous type is not supported\n"); 1436 return -ENOTSUP; 1437 } 1438 if (!btf_is_struct(type)) { 1439 pr_warn("struct_ops init: %s is not a struct\n", tname); 1440 return -EINVAL; 1441 } 1442 1443 map = bpf_object__add_map(obj); 1444 if (IS_ERR(map)) 1445 return PTR_ERR(map); 1446 1447 map->sec_idx = shndx; 1448 map->sec_offset = vsi->offset; 1449 map->name = strdup(var_name); 1450 if (!map->name) 1451 return -ENOMEM; 1452 map->btf_value_type_id = type_id; 1453 1454 /* Follow same convention as for programs autoload: 1455 * SEC("?.struct_ops") means map is not created by default. 1456 */ 1457 if (sec_name[0] == '?') { 1458 map->autocreate = false; 1459 /* from now on forget there was ? in section name */ 1460 sec_name++; 1461 } 1462 1463 map->def.type = BPF_MAP_TYPE_STRUCT_OPS; 1464 map->def.key_size = sizeof(int); 1465 map->def.value_size = type->size; 1466 map->def.max_entries = 1; 1467 map->def.map_flags = strcmp(sec_name, STRUCT_OPS_LINK_SEC) == 0 ? BPF_F_LINK : 0; 1468 map->autoattach = true; 1469 1470 map->st_ops = calloc(1, sizeof(*map->st_ops)); 1471 if (!map->st_ops) 1472 return -ENOMEM; 1473 st_ops = map->st_ops; 1474 st_ops->data = malloc(type->size); 1475 st_ops->progs = calloc(btf_vlen(type), sizeof(*st_ops->progs)); 1476 st_ops->kern_func_off = malloc(btf_vlen(type) * 1477 sizeof(*st_ops->kern_func_off)); 1478 if (!st_ops->data || !st_ops->progs || !st_ops->kern_func_off) 1479 return -ENOMEM; 1480 1481 if (vsi->offset + type->size > data->d_size) { 1482 pr_warn("struct_ops init: var %s is beyond the end of DATASEC %s\n", 1483 var_name, sec_name); 1484 return -EINVAL; 1485 } 1486 1487 memcpy(st_ops->data, 1488 data->d_buf + vsi->offset, 1489 type->size); 1490 st_ops->type_id = type_id; 1491 1492 pr_debug("struct_ops init: struct %s(type_id=%d) %s found at offset %u\n", 1493 tname, type_id, var_name, vsi->offset); 1494 } 1495 1496 return 0; 1497 } 1498 1499 static int bpf_object_init_struct_ops(struct bpf_object *obj) 1500 { 1501 const char *sec_name; 1502 int sec_idx, err; 1503 1504 for (sec_idx = 0; sec_idx < obj->efile.sec_cnt; ++sec_idx) { 1505 struct elf_sec_desc *desc = &obj->efile.secs[sec_idx]; 1506 1507 if (desc->sec_type != SEC_ST_OPS) 1508 continue; 1509 1510 sec_name = elf_sec_name(obj, elf_sec_by_idx(obj, sec_idx)); 1511 if (!sec_name) 1512 return -LIBBPF_ERRNO__FORMAT; 1513 1514 err = init_struct_ops_maps(obj, sec_name, sec_idx, desc->data); 1515 if (err) 1516 return err; 1517 } 1518 1519 return 0; 1520 } 1521 1522 static struct bpf_object *bpf_object__new(const char *path, 1523 const void *obj_buf, 1524 size_t obj_buf_sz, 1525 const char *obj_name) 1526 { 1527 struct bpf_object *obj; 1528 char *end; 1529 1530 obj = calloc(1, sizeof(struct bpf_object) + strlen(path) + 1); 1531 if (!obj) { 1532 pr_warn("alloc memory failed for %s\n", path); 1533 return ERR_PTR(-ENOMEM); 1534 } 1535 1536 strcpy(obj->path, path); 1537 if (obj_name) { 1538 libbpf_strlcpy(obj->name, obj_name, sizeof(obj->name)); 1539 } else { 1540 /* Using basename() GNU version which doesn't modify arg. */ 1541 libbpf_strlcpy(obj->name, basename((void *)path), sizeof(obj->name)); 1542 end = strchr(obj->name, '.'); 1543 if (end) 1544 *end = 0; 1545 } 1546 1547 obj->efile.fd = -1; 1548 /* 1549 * Caller of this function should also call 1550 * bpf_object__elf_finish() after data collection to return 1551 * obj_buf to user. If not, we should duplicate the buffer to 1552 * avoid user freeing them before elf finish. 1553 */ 1554 obj->efile.obj_buf = obj_buf; 1555 obj->efile.obj_buf_sz = obj_buf_sz; 1556 obj->efile.btf_maps_shndx = -1; 1557 obj->kconfig_map_idx = -1; 1558 obj->arena_map_idx = -1; 1559 1560 obj->kern_version = get_kernel_version(); 1561 obj->state = OBJ_OPEN; 1562 1563 return obj; 1564 } 1565 1566 static void bpf_object__elf_finish(struct bpf_object *obj) 1567 { 1568 if (!obj->efile.elf) 1569 return; 1570 1571 elf_end(obj->efile.elf); 1572 obj->efile.elf = NULL; 1573 obj->efile.ehdr = NULL; 1574 obj->efile.symbols = NULL; 1575 obj->efile.arena_data = NULL; 1576 1577 zfree(&obj->efile.secs); 1578 obj->efile.sec_cnt = 0; 1579 zclose(obj->efile.fd); 1580 obj->efile.obj_buf = NULL; 1581 obj->efile.obj_buf_sz = 0; 1582 } 1583 1584 static int bpf_object__elf_init(struct bpf_object *obj) 1585 { 1586 Elf64_Ehdr *ehdr; 1587 int err = 0; 1588 Elf *elf; 1589 1590 if (obj->efile.elf) { 1591 pr_warn("elf: init internal error\n"); 1592 return -LIBBPF_ERRNO__LIBELF; 1593 } 1594 1595 if (obj->efile.obj_buf_sz > 0) { 1596 /* obj_buf should have been validated by bpf_object__open_mem(). */ 1597 elf = elf_memory((char *)obj->efile.obj_buf, obj->efile.obj_buf_sz); 1598 } else { 1599 obj->efile.fd = open(obj->path, O_RDONLY | O_CLOEXEC); 1600 if (obj->efile.fd < 0) { 1601 err = -errno; 1602 pr_warn("elf: failed to open %s: %s\n", obj->path, errstr(err)); 1603 return err; 1604 } 1605 1606 elf = elf_begin(obj->efile.fd, ELF_C_READ_MMAP, NULL); 1607 } 1608 1609 if (!elf) { 1610 pr_warn("elf: failed to open %s as ELF file: %s\n", obj->path, elf_errmsg(-1)); 1611 err = -LIBBPF_ERRNO__LIBELF; 1612 goto errout; 1613 } 1614 1615 obj->efile.elf = elf; 1616 1617 if (elf_kind(elf) != ELF_K_ELF) { 1618 err = -LIBBPF_ERRNO__FORMAT; 1619 pr_warn("elf: '%s' is not a proper ELF object\n", obj->path); 1620 goto errout; 1621 } 1622 1623 if (gelf_getclass(elf) != ELFCLASS64) { 1624 err = -LIBBPF_ERRNO__FORMAT; 1625 pr_warn("elf: '%s' is not a 64-bit ELF object\n", obj->path); 1626 goto errout; 1627 } 1628 1629 obj->efile.ehdr = ehdr = elf64_getehdr(elf); 1630 if (!obj->efile.ehdr) { 1631 pr_warn("elf: failed to get ELF header from %s: %s\n", obj->path, elf_errmsg(-1)); 1632 err = -LIBBPF_ERRNO__FORMAT; 1633 goto errout; 1634 } 1635 1636 /* Validate ELF object endianness... */ 1637 if (ehdr->e_ident[EI_DATA] != ELFDATA2LSB && 1638 ehdr->e_ident[EI_DATA] != ELFDATA2MSB) { 1639 err = -LIBBPF_ERRNO__ENDIAN; 1640 pr_warn("elf: '%s' has unknown byte order\n", obj->path); 1641 goto errout; 1642 } 1643 /* and save after bpf_object_open() frees ELF data */ 1644 obj->byteorder = ehdr->e_ident[EI_DATA]; 1645 1646 if (elf_getshdrstrndx(elf, &obj->efile.shstrndx)) { 1647 pr_warn("elf: failed to get section names section index for %s: %s\n", 1648 obj->path, elf_errmsg(-1)); 1649 err = -LIBBPF_ERRNO__FORMAT; 1650 goto errout; 1651 } 1652 1653 /* ELF is corrupted/truncated, avoid calling elf_strptr. */ 1654 if (!elf_rawdata(elf_getscn(elf, obj->efile.shstrndx), NULL)) { 1655 pr_warn("elf: failed to get section names strings from %s: %s\n", 1656 obj->path, elf_errmsg(-1)); 1657 err = -LIBBPF_ERRNO__FORMAT; 1658 goto errout; 1659 } 1660 1661 /* Old LLVM set e_machine to EM_NONE */ 1662 if (ehdr->e_type != ET_REL || (ehdr->e_machine && ehdr->e_machine != EM_BPF)) { 1663 pr_warn("elf: %s is not a valid eBPF object file\n", obj->path); 1664 err = -LIBBPF_ERRNO__FORMAT; 1665 goto errout; 1666 } 1667 1668 return 0; 1669 errout: 1670 bpf_object__elf_finish(obj); 1671 return err; 1672 } 1673 1674 static bool is_native_endianness(struct bpf_object *obj) 1675 { 1676 #if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__ 1677 return obj->byteorder == ELFDATA2LSB; 1678 #elif __BYTE_ORDER__ == __ORDER_BIG_ENDIAN__ 1679 return obj->byteorder == ELFDATA2MSB; 1680 #else 1681 # error "Unrecognized __BYTE_ORDER__" 1682 #endif 1683 } 1684 1685 static int 1686 bpf_object__init_license(struct bpf_object *obj, void *data, size_t size) 1687 { 1688 if (!data) { 1689 pr_warn("invalid license section in %s\n", obj->path); 1690 return -LIBBPF_ERRNO__FORMAT; 1691 } 1692 /* libbpf_strlcpy() only copies first N - 1 bytes, so size + 1 won't 1693 * go over allowed ELF data section buffer 1694 */ 1695 libbpf_strlcpy(obj->license, data, min(size + 1, sizeof(obj->license))); 1696 pr_debug("license of %s is %s\n", obj->path, obj->license); 1697 return 0; 1698 } 1699 1700 static int 1701 bpf_object__init_kversion(struct bpf_object *obj, void *data, size_t size) 1702 { 1703 __u32 kver; 1704 1705 if (!data || size != sizeof(kver)) { 1706 pr_warn("invalid kver section in %s\n", obj->path); 1707 return -LIBBPF_ERRNO__FORMAT; 1708 } 1709 memcpy(&kver, data, sizeof(kver)); 1710 obj->kern_version = kver; 1711 pr_debug("kernel version of %s is %x\n", obj->path, obj->kern_version); 1712 return 0; 1713 } 1714 1715 static bool bpf_map_type__is_map_in_map(enum bpf_map_type type) 1716 { 1717 if (type == BPF_MAP_TYPE_ARRAY_OF_MAPS || 1718 type == BPF_MAP_TYPE_HASH_OF_MAPS) 1719 return true; 1720 return false; 1721 } 1722 1723 static int find_elf_sec_sz(const struct bpf_object *obj, const char *name, __u32 *size) 1724 { 1725 Elf_Data *data; 1726 Elf_Scn *scn; 1727 1728 if (!name) 1729 return -EINVAL; 1730 1731 scn = elf_sec_by_name(obj, name); 1732 data = elf_sec_data(obj, scn); 1733 if (data) { 1734 *size = data->d_size; 1735 return 0; /* found it */ 1736 } 1737 1738 return -ENOENT; 1739 } 1740 1741 static Elf64_Sym *find_elf_var_sym(const struct bpf_object *obj, const char *name) 1742 { 1743 Elf_Data *symbols = obj->efile.symbols; 1744 const char *sname; 1745 size_t si; 1746 1747 for (si = 0; si < symbols->d_size / sizeof(Elf64_Sym); si++) { 1748 Elf64_Sym *sym = elf_sym_by_idx(obj, si); 1749 1750 if (ELF64_ST_TYPE(sym->st_info) != STT_OBJECT) 1751 continue; 1752 1753 if (ELF64_ST_BIND(sym->st_info) != STB_GLOBAL && 1754 ELF64_ST_BIND(sym->st_info) != STB_WEAK) 1755 continue; 1756 1757 sname = elf_sym_str(obj, sym->st_name); 1758 if (!sname) { 1759 pr_warn("failed to get sym name string for var %s\n", name); 1760 return ERR_PTR(-EIO); 1761 } 1762 if (strcmp(name, sname) == 0) 1763 return sym; 1764 } 1765 1766 return ERR_PTR(-ENOENT); 1767 } 1768 1769 #ifndef MFD_CLOEXEC 1770 #define MFD_CLOEXEC 0x0001U 1771 #endif 1772 #ifndef MFD_NOEXEC_SEAL 1773 #define MFD_NOEXEC_SEAL 0x0008U 1774 #endif 1775 1776 static int create_placeholder_fd(void) 1777 { 1778 unsigned int flags = MFD_CLOEXEC | MFD_NOEXEC_SEAL; 1779 const char *name = "libbpf-placeholder-fd"; 1780 int fd; 1781 1782 fd = ensure_good_fd(sys_memfd_create(name, flags)); 1783 if (fd >= 0) 1784 return fd; 1785 else if (errno != EINVAL) 1786 return -errno; 1787 1788 /* Possibly running on kernel without MFD_NOEXEC_SEAL */ 1789 fd = ensure_good_fd(sys_memfd_create(name, flags & ~MFD_NOEXEC_SEAL)); 1790 if (fd < 0) 1791 return -errno; 1792 return fd; 1793 } 1794 1795 static struct bpf_map *bpf_object__add_map(struct bpf_object *obj) 1796 { 1797 struct bpf_map *map; 1798 int err; 1799 1800 err = libbpf_ensure_mem((void **)&obj->maps, &obj->maps_cap, 1801 sizeof(*obj->maps), obj->nr_maps + 1); 1802 if (err) 1803 return ERR_PTR(err); 1804 1805 map = &obj->maps[obj->nr_maps++]; 1806 map->obj = obj; 1807 /* Preallocate map FD without actually creating BPF map just yet. 1808 * These map FD "placeholders" will be reused later without changing 1809 * FD value when map is actually created in the kernel. 1810 * 1811 * This is useful to be able to perform BPF program relocations 1812 * without having to create BPF maps before that step. This allows us 1813 * to finalize and load BTF very late in BPF object's loading phase, 1814 * right before BPF maps have to be created and BPF programs have to 1815 * be loaded. By having these map FD placeholders we can perform all 1816 * the sanitizations, relocations, and any other adjustments before we 1817 * start creating actual BPF kernel objects (BTF, maps, progs). 1818 */ 1819 map->fd = create_placeholder_fd(); 1820 if (map->fd < 0) 1821 return ERR_PTR(map->fd); 1822 map->inner_map_fd = -1; 1823 map->autocreate = true; 1824 1825 return map; 1826 } 1827 1828 static size_t array_map_mmap_sz(unsigned int value_sz, unsigned int max_entries) 1829 { 1830 const long page_sz = sysconf(_SC_PAGE_SIZE); 1831 size_t map_sz; 1832 1833 map_sz = (size_t)roundup(value_sz, 8) * max_entries; 1834 map_sz = roundup(map_sz, page_sz); 1835 return map_sz; 1836 } 1837 1838 static size_t bpf_map_mmap_sz(const struct bpf_map *map) 1839 { 1840 const long page_sz = sysconf(_SC_PAGE_SIZE); 1841 1842 switch (map->def.type) { 1843 case BPF_MAP_TYPE_ARRAY: 1844 case BPF_MAP_TYPE_PERCPU_ARRAY: 1845 return array_map_mmap_sz(map->def.value_size, map->def.max_entries); 1846 case BPF_MAP_TYPE_ARENA: 1847 return page_sz * map->def.max_entries; 1848 default: 1849 return 0; /* not supported */ 1850 } 1851 } 1852 1853 static int bpf_map_mmap_resize(struct bpf_map *map, size_t old_sz, size_t new_sz) 1854 { 1855 void *mmaped; 1856 1857 if (!map->mmaped) 1858 return -EINVAL; 1859 1860 if (old_sz == new_sz) 1861 return 0; 1862 1863 mmaped = mmap(NULL, new_sz, PROT_READ | PROT_WRITE, MAP_SHARED | MAP_ANONYMOUS, -1, 0); 1864 if (mmaped == MAP_FAILED) 1865 return -errno; 1866 1867 memcpy(mmaped, map->mmaped, min(old_sz, new_sz)); 1868 munmap(map->mmaped, old_sz); 1869 map->mmaped = mmaped; 1870 return 0; 1871 } 1872 1873 static char *internal_map_name(struct bpf_object *obj, const char *real_name, 1874 enum libbpf_map_type type) 1875 { 1876 char map_name[BPF_OBJ_NAME_LEN], *p; 1877 int pfx_len, sfx_len = max((size_t)7, strlen(real_name)); 1878 1879 /* This is one of the more confusing parts of libbpf for various 1880 * reasons, some of which are historical. The original idea for naming 1881 * internal names was to include as much of BPF object name prefix as 1882 * possible, so that it can be distinguished from similar internal 1883 * maps of a different BPF object. 1884 * As an example, let's say we have bpf_object named 'my_object_name' 1885 * and internal map corresponding to '.rodata' ELF section. The final 1886 * map name advertised to user and to the kernel will be 1887 * 'my_objec.rodata', taking first 8 characters of object name and 1888 * entire 7 characters of '.rodata'. 1889 * Somewhat confusingly, if internal map ELF section name is shorter 1890 * than 7 characters, e.g., '.bss', we still reserve 7 characters 1891 * for the suffix, even though we only have 4 actual characters, and 1892 * resulting map will be called 'my_objec.bss', not even using all 15 1893 * characters allowed by the kernel. Oh well, at least the truncated 1894 * object name is somewhat consistent in this case. But if the map 1895 * name is '.kconfig', we'll still have entirety of '.kconfig' added 1896 * (8 chars) and thus will be left with only first 7 characters of the 1897 * object name ('my_obje'). Happy guessing, user, that the final map 1898 * name will be "my_obje.kconfig". 1899 * Now, with libbpf starting to support arbitrarily named .rodata.* 1900 * and .data.* data sections, it's possible that ELF section name is 1901 * longer than allowed 15 chars, so we now need to be careful to take 1902 * only up to 15 first characters of ELF name, taking no BPF object 1903 * name characters at all. So '.rodata.abracadabra' will result in 1904 * '.rodata.abracad' kernel and user-visible name. 1905 * We need to keep this convoluted logic intact for .data, .bss and 1906 * .rodata maps, but for new custom .data.custom and .rodata.custom 1907 * maps we use their ELF names as is, not prepending bpf_object name 1908 * in front. We still need to truncate them to 15 characters for the 1909 * kernel. Full name can be recovered for such maps by using DATASEC 1910 * BTF type associated with such map's value type, though. 1911 */ 1912 if (sfx_len >= BPF_OBJ_NAME_LEN) 1913 sfx_len = BPF_OBJ_NAME_LEN - 1; 1914 1915 /* 1916 * Don't prefix the bpf_object name if this is a custom dot map 1917 * (containing two or more dots) or a percpu data map. 1918 */ 1919 if (strchr(real_name + 1, '.') != NULL || type == LIBBPF_MAP_PERCPU) 1920 pfx_len = 0; 1921 else 1922 pfx_len = min((size_t)BPF_OBJ_NAME_LEN - sfx_len - 1, strlen(obj->name)); 1923 1924 snprintf(map_name, sizeof(map_name), "%.*s%.*s", pfx_len, obj->name, 1925 sfx_len, real_name); 1926 1927 /* sanities map name to characters allowed by kernel */ 1928 for (p = map_name; *p && p < map_name + sizeof(map_name); p++) 1929 if (!isalnum(*p) && *p != '_' && *p != '.') 1930 *p = '_'; 1931 1932 return strdup(map_name); 1933 } 1934 1935 static int 1936 map_fill_btf_type_info(struct bpf_object *obj, struct bpf_map *map); 1937 1938 /* Internal BPF map is mmap()'able only if at least one of corresponding 1939 * DATASEC's VARs are to be exposed through BPF skeleton. I.e., it's a GLOBAL 1940 * variable and it's not marked as __hidden (which turns it into, effectively, 1941 * a STATIC variable). 1942 */ 1943 static bool map_is_mmapable(struct bpf_object *obj, struct bpf_map *map) 1944 { 1945 const struct btf_type *t, *vt; 1946 struct btf_var_secinfo *vsi; 1947 int i, n; 1948 1949 if (!map->btf_value_type_id) 1950 return false; 1951 1952 /* 1953 * The internal PERCPU maps are not mmapable because the underlying 1954 * percpu_array maps do not have mmap support. 1955 */ 1956 if (map->libbpf_type == LIBBPF_MAP_PERCPU) 1957 return false; 1958 1959 t = btf__type_by_id(obj->btf, map->btf_value_type_id); 1960 if (!btf_is_datasec(t)) 1961 return false; 1962 1963 vsi = btf_var_secinfos(t); 1964 for (i = 0, n = btf_vlen(t); i < n; i++, vsi++) { 1965 vt = btf__type_by_id(obj->btf, vsi->type); 1966 if (!btf_is_var(vt)) 1967 continue; 1968 1969 if (btf_var(vt)->linkage != BTF_VAR_STATIC) 1970 return true; 1971 } 1972 1973 return false; 1974 } 1975 1976 static int 1977 bpf_object__init_internal_map(struct bpf_object *obj, enum libbpf_map_type type, 1978 const char *real_name, int sec_idx, void *data, size_t data_sz) 1979 { 1980 bool is_percpu = type == LIBBPF_MAP_PERCPU; 1981 struct bpf_map_def *def; 1982 struct bpf_map *map; 1983 size_t mmap_sz; 1984 int err; 1985 1986 map = bpf_object__add_map(obj); 1987 if (IS_ERR(map)) 1988 return PTR_ERR(map); 1989 1990 map->libbpf_type = type; 1991 map->sec_idx = sec_idx; 1992 map->sec_offset = 0; 1993 map->real_name = strdup(real_name); 1994 map->name = internal_map_name(obj, real_name, type); 1995 if (!map->real_name || !map->name) { 1996 zfree(&map->real_name); 1997 zfree(&map->name); 1998 return -ENOMEM; 1999 } 2000 2001 def = &map->def; 2002 def->type = is_percpu ? BPF_MAP_TYPE_PERCPU_ARRAY : BPF_MAP_TYPE_ARRAY; 2003 def->key_size = sizeof(int); 2004 def->value_size = data_sz; 2005 def->max_entries = 1; 2006 def->map_flags = type == LIBBPF_MAP_RODATA || type == LIBBPF_MAP_KCONFIG 2007 ? BPF_F_RDONLY_PROG : 0; 2008 2009 /* failures are fine because of maps like .rodata.str1.1 */ 2010 (void) map_fill_btf_type_info(obj, map); 2011 2012 if (map_is_mmapable(obj, map)) 2013 def->map_flags |= BPF_F_MMAPABLE; 2014 2015 pr_debug("map '%s' (global %sdata): at sec_idx %d, offset %zu, flags %x.\n", 2016 map->name, is_percpu ? "percpu " : "", map->sec_idx, 2017 map->sec_offset, def->map_flags); 2018 2019 mmap_sz = bpf_map_mmap_sz(map); 2020 map->mmaped = mmap(NULL, mmap_sz, PROT_READ | PROT_WRITE, 2021 MAP_SHARED | MAP_ANONYMOUS, -1, 0); 2022 if (map->mmaped == MAP_FAILED) { 2023 err = -errno; 2024 map->mmaped = NULL; 2025 pr_warn("failed to alloc map '%s' content buffer: %s\n", map->name, errstr(err)); 2026 zfree(&map->real_name); 2027 zfree(&map->name); 2028 return err; 2029 } 2030 2031 if (data) 2032 memcpy(map->mmaped, data, data_sz); 2033 2034 pr_debug("map %td is \"%s\"\n", map - obj->maps, map->name); 2035 return 0; 2036 } 2037 2038 static int bpf_object__init_global_data_maps(struct bpf_object *obj) 2039 { 2040 struct elf_sec_desc *sec_desc; 2041 const char *sec_name; 2042 int err = 0, sec_idx; 2043 2044 /* 2045 * Populate obj->maps with libbpf internal maps. 2046 */ 2047 for (sec_idx = 1; sec_idx < obj->efile.sec_cnt; sec_idx++) { 2048 sec_desc = &obj->efile.secs[sec_idx]; 2049 2050 /* Skip recognized sections with size 0. */ 2051 if (!sec_desc->data || sec_desc->data->d_size == 0) 2052 continue; 2053 2054 switch (sec_desc->sec_type) { 2055 case SEC_DATA: 2056 sec_name = elf_sec_name(obj, elf_sec_by_idx(obj, sec_idx)); 2057 err = bpf_object__init_internal_map(obj, LIBBPF_MAP_DATA, 2058 sec_name, sec_idx, 2059 sec_desc->data->d_buf, 2060 sec_desc->data->d_size); 2061 break; 2062 case SEC_RODATA: 2063 obj->has_rodata = true; 2064 sec_name = elf_sec_name(obj, elf_sec_by_idx(obj, sec_idx)); 2065 err = bpf_object__init_internal_map(obj, LIBBPF_MAP_RODATA, 2066 sec_name, sec_idx, 2067 sec_desc->data->d_buf, 2068 sec_desc->data->d_size); 2069 break; 2070 case SEC_BSS: 2071 sec_name = elf_sec_name(obj, elf_sec_by_idx(obj, sec_idx)); 2072 err = bpf_object__init_internal_map(obj, LIBBPF_MAP_BSS, 2073 sec_name, sec_idx, 2074 NULL, 2075 sec_desc->data->d_size); 2076 break; 2077 case SEC_PERCPU: 2078 sec_name = elf_sec_name(obj, elf_sec_by_idx(obj, sec_idx)); 2079 err = bpf_object__init_internal_map(obj, LIBBPF_MAP_PERCPU, 2080 sec_name, sec_idx, 2081 sec_desc->data->d_buf, 2082 sec_desc->data->d_size); 2083 break; 2084 default: 2085 /* skip */ 2086 break; 2087 } 2088 if (err) 2089 return err; 2090 } 2091 return 0; 2092 } 2093 2094 2095 static struct extern_desc *find_extern_by_name(const struct bpf_object *obj, 2096 const void *name) 2097 { 2098 int i; 2099 2100 for (i = 0; i < obj->nr_extern; i++) { 2101 if (strcmp(obj->externs[i].name, name) == 0) 2102 return &obj->externs[i]; 2103 } 2104 return NULL; 2105 } 2106 2107 static struct extern_desc *find_extern_by_name_with_len(const struct bpf_object *obj, 2108 const void *name, int len) 2109 { 2110 const char *ext_name; 2111 int i; 2112 2113 for (i = 0; i < obj->nr_extern; i++) { 2114 ext_name = obj->externs[i].name; 2115 if (strlen(ext_name) == len && strncmp(ext_name, name, len) == 0) 2116 return &obj->externs[i]; 2117 } 2118 return NULL; 2119 } 2120 2121 static int set_kcfg_value_tri(struct extern_desc *ext, void *ext_val, 2122 char value) 2123 { 2124 switch (ext->kcfg.type) { 2125 case KCFG_BOOL: 2126 if (value == 'm') { 2127 pr_warn("extern (kcfg) '%s': value '%c' implies tristate or char type\n", 2128 ext->name, value); 2129 return -EINVAL; 2130 } 2131 *(bool *)ext_val = value == 'y' ? true : false; 2132 break; 2133 case KCFG_TRISTATE: 2134 if (value == 'y') 2135 *(enum libbpf_tristate *)ext_val = TRI_YES; 2136 else if (value == 'm') 2137 *(enum libbpf_tristate *)ext_val = TRI_MODULE; 2138 else /* value == 'n' */ 2139 *(enum libbpf_tristate *)ext_val = TRI_NO; 2140 break; 2141 case KCFG_CHAR: 2142 *(char *)ext_val = value; 2143 break; 2144 case KCFG_UNKNOWN: 2145 case KCFG_INT: 2146 case KCFG_CHAR_ARR: 2147 default: 2148 pr_warn("extern (kcfg) '%s': value '%c' implies bool, tristate, or char type\n", 2149 ext->name, value); 2150 return -EINVAL; 2151 } 2152 ext->is_set = true; 2153 return 0; 2154 } 2155 2156 static int set_kcfg_value_str(struct extern_desc *ext, char *ext_val, 2157 const char *value) 2158 { 2159 size_t len; 2160 2161 if (ext->kcfg.type != KCFG_CHAR_ARR) { 2162 pr_warn("extern (kcfg) '%s': value '%s' implies char array type\n", 2163 ext->name, value); 2164 return -EINVAL; 2165 } 2166 2167 len = strlen(value); 2168 if (len < 2 || value[len - 1] != '"') { 2169 pr_warn("extern (kcfg) '%s': invalid string config '%s'\n", 2170 ext->name, value); 2171 return -EINVAL; 2172 } 2173 2174 /* strip quotes */ 2175 len -= 2; 2176 if (len >= ext->kcfg.sz) { 2177 pr_warn("extern (kcfg) '%s': long string '%s' of (%zu bytes) truncated to %d bytes\n", 2178 ext->name, value, len, ext->kcfg.sz - 1); 2179 len = ext->kcfg.sz - 1; 2180 } 2181 memcpy(ext_val, value + 1, len); 2182 ext_val[len] = '\0'; 2183 ext->is_set = true; 2184 return 0; 2185 } 2186 2187 static int parse_u64(const char *value, __u64 *res) 2188 { 2189 char *value_end; 2190 int err; 2191 2192 errno = 0; 2193 *res = strtoull(value, &value_end, 0); 2194 if (errno) { 2195 err = -errno; 2196 pr_warn("failed to parse '%s': %s\n", value, errstr(err)); 2197 return err; 2198 } 2199 if (*value_end) { 2200 pr_warn("failed to parse '%s' as integer completely\n", value); 2201 return -EINVAL; 2202 } 2203 return 0; 2204 } 2205 2206 static bool is_kcfg_value_in_range(const struct extern_desc *ext, __u64 v) 2207 { 2208 int bit_sz = ext->kcfg.sz * 8; 2209 2210 if (ext->kcfg.sz == 8) 2211 return true; 2212 2213 /* Validate that value stored in u64 fits in integer of `ext->sz` 2214 * bytes size without any loss of information. If the target integer 2215 * is signed, we rely on the following limits of integer type of 2216 * Y bits and subsequent transformation: 2217 * 2218 * -2^(Y-1) <= X <= 2^(Y-1) - 1 2219 * 0 <= X + 2^(Y-1) <= 2^Y - 1 2220 * 0 <= X + 2^(Y-1) < 2^Y 2221 * 2222 * For unsigned target integer, check that all the (64 - Y) bits are 2223 * zero. 2224 */ 2225 if (ext->kcfg.is_signed) 2226 return v + (1ULL << (bit_sz - 1)) < (1ULL << bit_sz); 2227 else 2228 return (v >> bit_sz) == 0; 2229 } 2230 2231 static int set_kcfg_value_num(struct extern_desc *ext, void *ext_val, 2232 __u64 value) 2233 { 2234 if (ext->kcfg.type != KCFG_INT && ext->kcfg.type != KCFG_CHAR && 2235 ext->kcfg.type != KCFG_BOOL) { 2236 pr_warn("extern (kcfg) '%s': value '%llu' implies integer, char, or boolean type\n", 2237 ext->name, (unsigned long long)value); 2238 return -EINVAL; 2239 } 2240 if (ext->kcfg.type == KCFG_BOOL && value > 1) { 2241 pr_warn("extern (kcfg) '%s': value '%llu' isn't boolean compatible\n", 2242 ext->name, (unsigned long long)value); 2243 return -EINVAL; 2244 2245 } 2246 if (!is_kcfg_value_in_range(ext, value)) { 2247 pr_warn("extern (kcfg) '%s': value '%llu' doesn't fit in %d bytes\n", 2248 ext->name, (unsigned long long)value, ext->kcfg.sz); 2249 return -ERANGE; 2250 } 2251 switch (ext->kcfg.sz) { 2252 case 1: 2253 *(__u8 *)ext_val = value; 2254 break; 2255 case 2: 2256 *(__u16 *)ext_val = value; 2257 break; 2258 case 4: 2259 *(__u32 *)ext_val = value; 2260 break; 2261 case 8: 2262 *(__u64 *)ext_val = value; 2263 break; 2264 default: 2265 return -EINVAL; 2266 } 2267 ext->is_set = true; 2268 return 0; 2269 } 2270 2271 static int bpf_object__process_kconfig_line(struct bpf_object *obj, 2272 char *buf, void *data) 2273 { 2274 struct extern_desc *ext; 2275 char *sep, *value; 2276 int len, err = 0; 2277 void *ext_val; 2278 __u64 num; 2279 2280 if (!str_has_pfx(buf, "CONFIG_")) 2281 return 0; 2282 2283 sep = strchr(buf, '='); 2284 if (!sep) { 2285 pr_warn("failed to parse '%s': no separator\n", buf); 2286 return -EINVAL; 2287 } 2288 2289 /* Trim ending '\n' */ 2290 len = strlen(buf); 2291 if (buf[len - 1] == '\n') 2292 buf[len - 1] = '\0'; 2293 /* Split on '=' and ensure that a value is present. */ 2294 *sep = '\0'; 2295 if (!sep[1]) { 2296 *sep = '='; 2297 pr_warn("failed to parse '%s': no value\n", buf); 2298 return -EINVAL; 2299 } 2300 2301 ext = find_extern_by_name(obj, buf); 2302 if (!ext || ext->is_set) 2303 return 0; 2304 2305 ext_val = data + ext->kcfg.data_off; 2306 value = sep + 1; 2307 2308 switch (*value) { 2309 case 'y': case 'n': case 'm': 2310 err = set_kcfg_value_tri(ext, ext_val, *value); 2311 break; 2312 case '"': 2313 err = set_kcfg_value_str(ext, ext_val, value); 2314 break; 2315 default: 2316 /* assume integer */ 2317 err = parse_u64(value, &num); 2318 if (err) { 2319 pr_warn("extern (kcfg) '%s': value '%s' isn't a valid integer\n", ext->name, value); 2320 return err; 2321 } 2322 if (ext->kcfg.type != KCFG_INT && ext->kcfg.type != KCFG_CHAR) { 2323 pr_warn("extern (kcfg) '%s': value '%s' implies integer type\n", ext->name, value); 2324 return -EINVAL; 2325 } 2326 err = set_kcfg_value_num(ext, ext_val, num); 2327 break; 2328 } 2329 if (err) 2330 return err; 2331 pr_debug("extern (kcfg) '%s': set to %s\n", ext->name, value); 2332 return 0; 2333 } 2334 2335 static int bpf_object__read_kconfig_file(struct bpf_object *obj, void *data) 2336 { 2337 char buf[PATH_MAX]; 2338 struct utsname uts; 2339 int len, err = 0; 2340 gzFile file; 2341 2342 uname(&uts); 2343 len = snprintf(buf, PATH_MAX, "/boot/config-%s", uts.release); 2344 if (len < 0) 2345 return -EINVAL; 2346 else if (len >= PATH_MAX) 2347 return -ENAMETOOLONG; 2348 2349 /* gzopen also accepts uncompressed files. */ 2350 file = gzopen(buf, "re"); 2351 if (!file) 2352 file = gzopen("/proc/config.gz", "re"); 2353 2354 if (!file) { 2355 pr_warn("failed to open system Kconfig\n"); 2356 return -ENOENT; 2357 } 2358 2359 while (gzgets(file, buf, sizeof(buf))) { 2360 err = bpf_object__process_kconfig_line(obj, buf, data); 2361 if (err) { 2362 pr_warn("error parsing system Kconfig line '%s': %s\n", 2363 buf, errstr(err)); 2364 goto out; 2365 } 2366 } 2367 2368 out: 2369 gzclose(file); 2370 return err; 2371 } 2372 2373 static int bpf_object__read_kconfig_mem(struct bpf_object *obj, 2374 const char *config, void *data) 2375 { 2376 char buf[PATH_MAX]; 2377 int err = 0; 2378 FILE *file; 2379 2380 file = fmemopen((void *)config, strlen(config), "r"); 2381 if (!file) { 2382 err = -errno; 2383 pr_warn("failed to open in-memory Kconfig: %s\n", errstr(err)); 2384 return err; 2385 } 2386 2387 while (fgets(buf, sizeof(buf), file)) { 2388 err = bpf_object__process_kconfig_line(obj, buf, data); 2389 if (err) { 2390 pr_warn("error parsing in-memory Kconfig line '%s': %s\n", 2391 buf, errstr(err)); 2392 break; 2393 } 2394 } 2395 2396 fclose(file); 2397 return err; 2398 } 2399 2400 static int bpf_object__init_kconfig_map(struct bpf_object *obj) 2401 { 2402 struct extern_desc *last_ext = NULL, *ext; 2403 size_t map_sz; 2404 int i, err; 2405 2406 for (i = 0; i < obj->nr_extern; i++) { 2407 ext = &obj->externs[i]; 2408 if (ext->type == EXT_KCFG) 2409 last_ext = ext; 2410 } 2411 2412 if (!last_ext) 2413 return 0; 2414 2415 map_sz = last_ext->kcfg.data_off + last_ext->kcfg.sz; 2416 err = bpf_object__init_internal_map(obj, LIBBPF_MAP_KCONFIG, 2417 ".kconfig", obj->efile.symbols_shndx, 2418 NULL, map_sz); 2419 if (err) 2420 return err; 2421 2422 obj->kconfig_map_idx = obj->nr_maps - 1; 2423 2424 return 0; 2425 } 2426 2427 const struct btf_type * 2428 skip_mods_and_typedefs(const struct btf *btf, __u32 id, __u32 *res_id) 2429 { 2430 const struct btf_type *t = btf__type_by_id(btf, id); 2431 2432 if (res_id) 2433 *res_id = id; 2434 2435 while (btf_is_mod(t) || btf_is_typedef(t)) { 2436 if (res_id) 2437 *res_id = t->type; 2438 t = btf__type_by_id(btf, t->type); 2439 } 2440 2441 return t; 2442 } 2443 2444 static const struct btf_type * 2445 resolve_func_ptr(const struct btf *btf, __u32 id, __u32 *res_id) 2446 { 2447 const struct btf_type *t; 2448 2449 t = skip_mods_and_typedefs(btf, id, NULL); 2450 if (!btf_is_ptr(t)) 2451 return NULL; 2452 2453 t = skip_mods_and_typedefs(btf, t->type, res_id); 2454 2455 return btf_is_func_proto(t) ? t : NULL; 2456 } 2457 2458 static const char *__btf_kind_str(__u16 kind) 2459 { 2460 switch (kind) { 2461 case BTF_KIND_UNKN: return "void"; 2462 case BTF_KIND_INT: return "int"; 2463 case BTF_KIND_PTR: return "ptr"; 2464 case BTF_KIND_ARRAY: return "array"; 2465 case BTF_KIND_STRUCT: return "struct"; 2466 case BTF_KIND_UNION: return "union"; 2467 case BTF_KIND_ENUM: return "enum"; 2468 case BTF_KIND_FWD: return "fwd"; 2469 case BTF_KIND_TYPEDEF: return "typedef"; 2470 case BTF_KIND_VOLATILE: return "volatile"; 2471 case BTF_KIND_CONST: return "const"; 2472 case BTF_KIND_RESTRICT: return "restrict"; 2473 case BTF_KIND_FUNC: return "func"; 2474 case BTF_KIND_FUNC_PROTO: return "func_proto"; 2475 case BTF_KIND_VAR: return "var"; 2476 case BTF_KIND_DATASEC: return "datasec"; 2477 case BTF_KIND_FLOAT: return "float"; 2478 case BTF_KIND_DECL_TAG: return "decl_tag"; 2479 case BTF_KIND_TYPE_TAG: return "type_tag"; 2480 case BTF_KIND_ENUM64: return "enum64"; 2481 default: return "unknown"; 2482 } 2483 } 2484 2485 const char *btf_kind_str(const struct btf_type *t) 2486 { 2487 return __btf_kind_str(btf_kind(t)); 2488 } 2489 2490 /* 2491 * Fetch integer attribute of BTF map definition. Such attributes are 2492 * represented using a pointer to an array, in which dimensionality of array 2493 * encodes specified integer value. E.g., int (*type)[BPF_MAP_TYPE_ARRAY]; 2494 * encodes `type => BPF_MAP_TYPE_ARRAY` key/value pair completely using BTF 2495 * type definition, while using only sizeof(void *) space in ELF data section. 2496 */ 2497 static bool get_map_field_int(const char *map_name, const struct btf *btf, 2498 const struct btf_member *m, __u32 *res) 2499 { 2500 const struct btf_type *t = skip_mods_and_typedefs(btf, m->type, NULL); 2501 const char *name = btf__name_by_offset(btf, m->name_off); 2502 const struct btf_array *arr_info; 2503 const struct btf_type *arr_t; 2504 2505 if (!btf_is_ptr(t)) { 2506 pr_warn("map '%s': attr '%s': expected PTR, got %s.\n", 2507 map_name, name, btf_kind_str(t)); 2508 return false; 2509 } 2510 2511 arr_t = btf__type_by_id(btf, t->type); 2512 if (!arr_t) { 2513 pr_warn("map '%s': attr '%s': type [%u] not found.\n", 2514 map_name, name, t->type); 2515 return false; 2516 } 2517 if (!btf_is_array(arr_t)) { 2518 pr_warn("map '%s': attr '%s': expected ARRAY, got %s.\n", 2519 map_name, name, btf_kind_str(arr_t)); 2520 return false; 2521 } 2522 arr_info = btf_array(arr_t); 2523 *res = arr_info->nelems; 2524 return true; 2525 } 2526 2527 static bool get_map_field_long(const char *map_name, const struct btf *btf, 2528 const struct btf_member *m, __u64 *res) 2529 { 2530 const struct btf_type *t = skip_mods_and_typedefs(btf, m->type, NULL); 2531 const char *name = btf__name_by_offset(btf, m->name_off); 2532 2533 if (btf_is_ptr(t)) { 2534 __u32 res32; 2535 bool ret; 2536 2537 ret = get_map_field_int(map_name, btf, m, &res32); 2538 if (ret) 2539 *res = (__u64)res32; 2540 return ret; 2541 } 2542 2543 if (!btf_is_enum(t) && !btf_is_enum64(t)) { 2544 pr_warn("map '%s': attr '%s': expected ENUM or ENUM64, got %s.\n", 2545 map_name, name, btf_kind_str(t)); 2546 return false; 2547 } 2548 2549 if (btf_vlen(t) != 1) { 2550 pr_warn("map '%s': attr '%s': invalid __ulong\n", 2551 map_name, name); 2552 return false; 2553 } 2554 2555 if (btf_is_enum(t)) { 2556 const struct btf_enum *e = btf_enum(t); 2557 2558 *res = e->val; 2559 } else { 2560 const struct btf_enum64 *e = btf_enum64(t); 2561 2562 *res = btf_enum64_value(e); 2563 } 2564 return true; 2565 } 2566 2567 static int pathname_concat(char *buf, size_t buf_sz, const char *path, const char *name) 2568 { 2569 int len; 2570 2571 len = snprintf(buf, buf_sz, "%s/%s", path, name); 2572 if (len < 0) 2573 return -EINVAL; 2574 if (len >= buf_sz) 2575 return -ENAMETOOLONG; 2576 2577 return 0; 2578 } 2579 2580 static int build_map_pin_path(struct bpf_map *map, const char *path) 2581 { 2582 char buf[PATH_MAX]; 2583 int err; 2584 2585 if (!path) 2586 path = BPF_FS_DEFAULT_PATH; 2587 2588 err = pathname_concat(buf, sizeof(buf), path, bpf_map__name(map)); 2589 if (err) 2590 return err; 2591 2592 return bpf_map__set_pin_path(map, buf); 2593 } 2594 2595 /* should match definition in bpf_helpers.h */ 2596 enum libbpf_pin_type { 2597 LIBBPF_PIN_NONE, 2598 /* PIN_BY_NAME: pin maps by name (in /sys/fs/bpf by default) */ 2599 LIBBPF_PIN_BY_NAME, 2600 }; 2601 2602 int parse_btf_map_def(const char *map_name, struct btf *btf, 2603 const struct btf_type *def_t, bool strict, 2604 struct btf_map_def *map_def, struct btf_map_def *inner_def) 2605 { 2606 const struct btf_type *t; 2607 const struct btf_member *m; 2608 bool is_inner = inner_def == NULL; 2609 int vlen, i; 2610 2611 vlen = btf_vlen(def_t); 2612 m = btf_members(def_t); 2613 for (i = 0; i < vlen; i++, m++) { 2614 const char *name = btf__name_by_offset(btf, m->name_off); 2615 2616 if (!name) { 2617 pr_warn("map '%s': invalid field #%d.\n", map_name, i); 2618 return -EINVAL; 2619 } 2620 if (strcmp(name, "type") == 0) { 2621 if (!get_map_field_int(map_name, btf, m, &map_def->map_type)) 2622 return -EINVAL; 2623 map_def->parts |= MAP_DEF_MAP_TYPE; 2624 } else if (strcmp(name, "max_entries") == 0) { 2625 if (!get_map_field_int(map_name, btf, m, &map_def->max_entries)) 2626 return -EINVAL; 2627 map_def->parts |= MAP_DEF_MAX_ENTRIES; 2628 } else if (strcmp(name, "map_flags") == 0) { 2629 if (!get_map_field_int(map_name, btf, m, &map_def->map_flags)) 2630 return -EINVAL; 2631 map_def->parts |= MAP_DEF_MAP_FLAGS; 2632 } else if (strcmp(name, "numa_node") == 0) { 2633 if (!get_map_field_int(map_name, btf, m, &map_def->numa_node)) 2634 return -EINVAL; 2635 map_def->parts |= MAP_DEF_NUMA_NODE; 2636 } else if (strcmp(name, "key_size") == 0) { 2637 __u32 sz; 2638 2639 if (!get_map_field_int(map_name, btf, m, &sz)) 2640 return -EINVAL; 2641 if (map_def->key_size && map_def->key_size != sz) { 2642 pr_warn("map '%s': conflicting key size %u != %u.\n", 2643 map_name, map_def->key_size, sz); 2644 return -EINVAL; 2645 } 2646 map_def->key_size = sz; 2647 map_def->parts |= MAP_DEF_KEY_SIZE; 2648 } else if (strcmp(name, "key") == 0) { 2649 __s64 sz; 2650 2651 t = btf__type_by_id(btf, m->type); 2652 if (!t) { 2653 pr_warn("map '%s': key type [%u] not found.\n", 2654 map_name, m->type); 2655 return -EINVAL; 2656 } 2657 if (!btf_is_ptr(t)) { 2658 pr_warn("map '%s': key spec is not PTR: %s.\n", 2659 map_name, btf_kind_str(t)); 2660 return -EINVAL; 2661 } 2662 sz = btf__resolve_size(btf, t->type); 2663 if (sz < 0) { 2664 pr_warn("map '%s': can't determine key size for type [%u]: %zd.\n", 2665 map_name, t->type, (ssize_t)sz); 2666 return sz; 2667 } 2668 if (map_def->key_size && map_def->key_size != sz) { 2669 pr_warn("map '%s': conflicting key size %u != %zd.\n", 2670 map_name, map_def->key_size, (ssize_t)sz); 2671 return -EINVAL; 2672 } 2673 map_def->key_size = sz; 2674 map_def->key_type_id = t->type; 2675 map_def->parts |= MAP_DEF_KEY_SIZE | MAP_DEF_KEY_TYPE; 2676 } else if (strcmp(name, "value_size") == 0) { 2677 __u32 sz; 2678 2679 if (!get_map_field_int(map_name, btf, m, &sz)) 2680 return -EINVAL; 2681 if (map_def->value_size && map_def->value_size != sz) { 2682 pr_warn("map '%s': conflicting value size %u != %u.\n", 2683 map_name, map_def->value_size, sz); 2684 return -EINVAL; 2685 } 2686 map_def->value_size = sz; 2687 map_def->parts |= MAP_DEF_VALUE_SIZE; 2688 } else if (strcmp(name, "value") == 0) { 2689 __s64 sz; 2690 2691 t = btf__type_by_id(btf, m->type); 2692 if (!t) { 2693 pr_warn("map '%s': value type [%u] not found.\n", 2694 map_name, m->type); 2695 return -EINVAL; 2696 } 2697 if (!btf_is_ptr(t)) { 2698 pr_warn("map '%s': value spec is not PTR: %s.\n", 2699 map_name, btf_kind_str(t)); 2700 return -EINVAL; 2701 } 2702 sz = btf__resolve_size(btf, t->type); 2703 if (sz < 0) { 2704 pr_warn("map '%s': can't determine value size for type [%u]: %zd.\n", 2705 map_name, t->type, (ssize_t)sz); 2706 return sz; 2707 } 2708 if (map_def->value_size && map_def->value_size != sz) { 2709 pr_warn("map '%s': conflicting value size %u != %zd.\n", 2710 map_name, map_def->value_size, (ssize_t)sz); 2711 return -EINVAL; 2712 } 2713 map_def->value_size = sz; 2714 map_def->value_type_id = t->type; 2715 map_def->parts |= MAP_DEF_VALUE_SIZE | MAP_DEF_VALUE_TYPE; 2716 } 2717 else if (strcmp(name, "values") == 0) { 2718 bool is_map_in_map = bpf_map_type__is_map_in_map(map_def->map_type); 2719 bool is_prog_array = map_def->map_type == BPF_MAP_TYPE_PROG_ARRAY; 2720 const char *desc = is_map_in_map ? "map-in-map inner" : "prog-array value"; 2721 char inner_map_name[128]; 2722 int err; 2723 2724 if (is_inner) { 2725 pr_warn("map '%s': multi-level inner maps not supported.\n", 2726 map_name); 2727 return -ENOTSUP; 2728 } 2729 if (i != vlen - 1) { 2730 pr_warn("map '%s': '%s' member should be last.\n", 2731 map_name, name); 2732 return -EINVAL; 2733 } 2734 if (!is_map_in_map && !is_prog_array) { 2735 pr_warn("map '%s': should be map-in-map or prog-array.\n", 2736 map_name); 2737 return -ENOTSUP; 2738 } 2739 if (map_def->value_size && map_def->value_size != 4) { 2740 pr_warn("map '%s': conflicting value size %u != 4.\n", 2741 map_name, map_def->value_size); 2742 return -EINVAL; 2743 } 2744 map_def->value_size = 4; 2745 t = btf__type_by_id(btf, m->type); 2746 if (!t) { 2747 pr_warn("map '%s': %s type [%u] not found.\n", 2748 map_name, desc, m->type); 2749 return -EINVAL; 2750 } 2751 if (!btf_is_array(t) || btf_array(t)->nelems) { 2752 pr_warn("map '%s': %s spec is not a zero-sized array.\n", 2753 map_name, desc); 2754 return -EINVAL; 2755 } 2756 t = skip_mods_and_typedefs(btf, btf_array(t)->type, NULL); 2757 if (!btf_is_ptr(t)) { 2758 pr_warn("map '%s': %s def is of unexpected kind %s.\n", 2759 map_name, desc, btf_kind_str(t)); 2760 return -EINVAL; 2761 } 2762 t = skip_mods_and_typedefs(btf, t->type, NULL); 2763 if (is_prog_array) { 2764 if (!btf_is_func_proto(t)) { 2765 pr_warn("map '%s': prog-array value def is of unexpected kind %s.\n", 2766 map_name, btf_kind_str(t)); 2767 return -EINVAL; 2768 } 2769 continue; 2770 } 2771 if (!btf_is_struct(t)) { 2772 pr_warn("map '%s': map-in-map inner def is of unexpected kind %s.\n", 2773 map_name, btf_kind_str(t)); 2774 return -EINVAL; 2775 } 2776 2777 snprintf(inner_map_name, sizeof(inner_map_name), "%s.inner", map_name); 2778 err = parse_btf_map_def(inner_map_name, btf, t, strict, inner_def, NULL); 2779 if (err) 2780 return err; 2781 2782 map_def->parts |= MAP_DEF_INNER_MAP; 2783 } else if (strcmp(name, "pinning") == 0) { 2784 __u32 val; 2785 2786 if (is_inner) { 2787 pr_warn("map '%s': inner def can't be pinned.\n", map_name); 2788 return -EINVAL; 2789 } 2790 if (!get_map_field_int(map_name, btf, m, &val)) 2791 return -EINVAL; 2792 if (val != LIBBPF_PIN_NONE && val != LIBBPF_PIN_BY_NAME) { 2793 pr_warn("map '%s': invalid pinning value %u.\n", 2794 map_name, val); 2795 return -EINVAL; 2796 } 2797 map_def->pinning = val; 2798 map_def->parts |= MAP_DEF_PINNING; 2799 } else if (strcmp(name, "map_extra") == 0) { 2800 __u64 map_extra; 2801 2802 if (!get_map_field_long(map_name, btf, m, &map_extra)) 2803 return -EINVAL; 2804 map_def->map_extra = map_extra; 2805 map_def->parts |= MAP_DEF_MAP_EXTRA; 2806 } else { 2807 if (strict) { 2808 pr_warn("map '%s': unknown field '%s'.\n", map_name, name); 2809 return -ENOTSUP; 2810 } 2811 pr_debug("map '%s': ignoring unknown field '%s'.\n", map_name, name); 2812 } 2813 } 2814 2815 if (map_def->map_type == BPF_MAP_TYPE_UNSPEC) { 2816 pr_warn("map '%s': map type isn't specified.\n", map_name); 2817 return -EINVAL; 2818 } 2819 2820 return 0; 2821 } 2822 2823 static size_t adjust_ringbuf_sz(size_t sz) 2824 { 2825 __u32 page_sz = sysconf(_SC_PAGE_SIZE); 2826 __u32 mul; 2827 2828 /* if user forgot to set any size, make sure they see error */ 2829 if (sz == 0) 2830 return 0; 2831 /* Kernel expects BPF_MAP_TYPE_RINGBUF's max_entries to be 2832 * a power-of-2 multiple of kernel's page size. If user diligently 2833 * satisfied these conditions, pass the size through. 2834 */ 2835 if ((sz % page_sz) == 0 && is_pow_of_2(sz / page_sz)) 2836 return sz; 2837 2838 /* Otherwise find closest (page_sz * power_of_2) product bigger than 2839 * user-set size to satisfy both user size request and kernel 2840 * requirements and substitute correct max_entries for map creation. 2841 */ 2842 for (mul = 1; mul <= UINT_MAX / page_sz; mul <<= 1) { 2843 if (mul * page_sz > sz) 2844 return mul * page_sz; 2845 } 2846 2847 /* if it's impossible to satisfy the conditions (i.e., user size is 2848 * very close to UINT_MAX but is not a power-of-2 multiple of 2849 * page_size) then just return original size and let kernel reject it 2850 */ 2851 return sz; 2852 } 2853 2854 static bool map_is_ringbuf(const struct bpf_map *map) 2855 { 2856 return map->def.type == BPF_MAP_TYPE_RINGBUF || 2857 map->def.type == BPF_MAP_TYPE_USER_RINGBUF; 2858 } 2859 2860 static void fill_map_from_def(struct bpf_map *map, const struct btf_map_def *def) 2861 { 2862 map->def.type = def->map_type; 2863 map->def.key_size = def->key_size; 2864 map->def.value_size = def->value_size; 2865 map->def.max_entries = def->max_entries; 2866 map->def.map_flags = def->map_flags; 2867 map->map_extra = def->map_extra; 2868 2869 map->numa_node = def->numa_node; 2870 map->btf_key_type_id = def->key_type_id; 2871 map->btf_value_type_id = def->value_type_id; 2872 2873 /* auto-adjust BPF ringbuf map max_entries to be a multiple of page size */ 2874 if (map_is_ringbuf(map)) 2875 map->def.max_entries = adjust_ringbuf_sz(map->def.max_entries); 2876 2877 if (def->parts & MAP_DEF_MAP_TYPE) 2878 pr_debug("map '%s': found type = %u.\n", map->name, def->map_type); 2879 2880 if (def->parts & MAP_DEF_KEY_TYPE) 2881 pr_debug("map '%s': found key [%u], sz = %u.\n", 2882 map->name, def->key_type_id, def->key_size); 2883 else if (def->parts & MAP_DEF_KEY_SIZE) 2884 pr_debug("map '%s': found key_size = %u.\n", map->name, def->key_size); 2885 2886 if (def->parts & MAP_DEF_VALUE_TYPE) 2887 pr_debug("map '%s': found value [%u], sz = %u.\n", 2888 map->name, def->value_type_id, def->value_size); 2889 else if (def->parts & MAP_DEF_VALUE_SIZE) 2890 pr_debug("map '%s': found value_size = %u.\n", map->name, def->value_size); 2891 2892 if (def->parts & MAP_DEF_MAX_ENTRIES) 2893 pr_debug("map '%s': found max_entries = %u.\n", map->name, def->max_entries); 2894 if (def->parts & MAP_DEF_MAP_FLAGS) 2895 pr_debug("map '%s': found map_flags = 0x%x.\n", map->name, def->map_flags); 2896 if (def->parts & MAP_DEF_MAP_EXTRA) 2897 pr_debug("map '%s': found map_extra = 0x%llx.\n", map->name, 2898 (unsigned long long)def->map_extra); 2899 if (def->parts & MAP_DEF_PINNING) 2900 pr_debug("map '%s': found pinning = %u.\n", map->name, def->pinning); 2901 if (def->parts & MAP_DEF_NUMA_NODE) 2902 pr_debug("map '%s': found numa_node = %u.\n", map->name, def->numa_node); 2903 2904 if (def->parts & MAP_DEF_INNER_MAP) 2905 pr_debug("map '%s': found inner map definition.\n", map->name); 2906 } 2907 2908 static const char *btf_var_linkage_str(__u32 linkage) 2909 { 2910 switch (linkage) { 2911 case BTF_VAR_STATIC: return "static"; 2912 case BTF_VAR_GLOBAL_ALLOCATED: return "global"; 2913 case BTF_VAR_GLOBAL_EXTERN: return "extern"; 2914 default: return "unknown"; 2915 } 2916 } 2917 2918 static int bpf_object__init_user_btf_map(struct bpf_object *obj, 2919 const struct btf_type *sec, 2920 int var_idx, int sec_idx, 2921 const Elf_Data *data, bool strict, 2922 const char *pin_root_path) 2923 { 2924 struct btf_map_def map_def = {}, inner_def = {}; 2925 const struct btf_type *var, *def; 2926 const struct btf_var_secinfo *vi; 2927 const struct btf_var *var_extra; 2928 const char *map_name; 2929 struct bpf_map *map; 2930 int err; 2931 2932 vi = btf_var_secinfos(sec) + var_idx; 2933 var = btf__type_by_id(obj->btf, vi->type); 2934 var_extra = btf_var(var); 2935 map_name = btf__name_by_offset(obj->btf, var->name_off); 2936 2937 if (str_is_empty(map_name)) { 2938 pr_warn("map #%d: empty name.\n", var_idx); 2939 return -EINVAL; 2940 } 2941 if ((__u64)vi->offset + vi->size > data->d_size) { 2942 pr_warn("map '%s' BTF data is corrupted.\n", map_name); 2943 return -EINVAL; 2944 } 2945 if (!btf_is_var(var)) { 2946 pr_warn("map '%s': unexpected var kind %s.\n", 2947 map_name, btf_kind_str(var)); 2948 return -EINVAL; 2949 } 2950 if (var_extra->linkage != BTF_VAR_GLOBAL_ALLOCATED) { 2951 pr_warn("map '%s': unsupported map linkage %s.\n", 2952 map_name, btf_var_linkage_str(var_extra->linkage)); 2953 return -EOPNOTSUPP; 2954 } 2955 2956 def = skip_mods_and_typedefs(obj->btf, var->type, NULL); 2957 if (!btf_is_struct(def)) { 2958 pr_warn("map '%s': unexpected def kind %s.\n", 2959 map_name, btf_kind_str(var)); 2960 return -EINVAL; 2961 } 2962 if (def->size > vi->size) { 2963 pr_warn("map '%s': invalid def size.\n", map_name); 2964 return -EINVAL; 2965 } 2966 2967 map = bpf_object__add_map(obj); 2968 if (IS_ERR(map)) 2969 return PTR_ERR(map); 2970 map->name = strdup(map_name); 2971 if (!map->name) { 2972 pr_warn("map '%s': failed to alloc map name.\n", map_name); 2973 return -ENOMEM; 2974 } 2975 map->libbpf_type = LIBBPF_MAP_UNSPEC; 2976 map->def.type = BPF_MAP_TYPE_UNSPEC; 2977 map->sec_idx = sec_idx; 2978 map->sec_offset = vi->offset; 2979 map->btf_var_idx = var_idx; 2980 pr_debug("map '%s': at sec_idx %d, offset %zu.\n", 2981 map_name, map->sec_idx, map->sec_offset); 2982 2983 err = parse_btf_map_def(map->name, obj->btf, def, strict, &map_def, &inner_def); 2984 if (err) 2985 return err; 2986 2987 fill_map_from_def(map, &map_def); 2988 2989 if (map_def.pinning == LIBBPF_PIN_BY_NAME) { 2990 err = build_map_pin_path(map, pin_root_path); 2991 if (err) { 2992 pr_warn("map '%s': couldn't build pin path.\n", map->name); 2993 return err; 2994 } 2995 } 2996 2997 if (map_def.parts & MAP_DEF_INNER_MAP) { 2998 map->inner_map = calloc(1, sizeof(*map->inner_map)); 2999 if (!map->inner_map) 3000 return -ENOMEM; 3001 map->inner_map->fd = create_placeholder_fd(); 3002 if (map->inner_map->fd < 0) 3003 return map->inner_map->fd; 3004 map->inner_map->sec_idx = sec_idx; 3005 map->inner_map->name = malloc(strlen(map_name) + sizeof(".inner") + 1); 3006 if (!map->inner_map->name) 3007 return -ENOMEM; 3008 sprintf(map->inner_map->name, "%s.inner", map_name); 3009 3010 fill_map_from_def(map->inner_map, &inner_def); 3011 } 3012 3013 err = map_fill_btf_type_info(obj, map); 3014 if (err) 3015 return err; 3016 3017 return 0; 3018 } 3019 3020 static int init_arena_map_data(struct bpf_object *obj, struct bpf_map *map, 3021 const char *sec_name, int sec_idx, 3022 void *data, size_t data_sz) 3023 { 3024 const long page_sz = sysconf(_SC_PAGE_SIZE); 3025 const size_t data_alloc_sz = roundup(data_sz, page_sz); 3026 size_t mmap_sz; 3027 3028 mmap_sz = bpf_map_mmap_sz(map); 3029 if (data_alloc_sz > mmap_sz) { 3030 pr_warn("elf: sec '%s': declared ARENA map size (%zu) is too small to hold global __arena variables of size %zu\n", 3031 sec_name, mmap_sz, data_sz); 3032 return -E2BIG; 3033 } 3034 3035 obj->arena_data = malloc(data_sz); 3036 if (!obj->arena_data) 3037 return -ENOMEM; 3038 memcpy(obj->arena_data, data, data_sz); 3039 obj->arena_data_sz = data_sz; 3040 3041 /* make bpf_map__init_value() work for ARENA maps */ 3042 map->mmaped = obj->arena_data; 3043 3044 return 0; 3045 } 3046 3047 static int bpf_object__init_user_btf_maps(struct bpf_object *obj, bool strict, 3048 const char *pin_root_path) 3049 { 3050 const struct btf_type *sec = NULL; 3051 int nr_types, i, vlen, err; 3052 const struct btf_type *t; 3053 const char *name; 3054 Elf_Data *data; 3055 Elf_Scn *scn; 3056 3057 if (obj->efile.btf_maps_shndx < 0) 3058 return 0; 3059 3060 scn = elf_sec_by_idx(obj, obj->efile.btf_maps_shndx); 3061 data = elf_sec_data(obj, scn); 3062 if (!data) { 3063 pr_warn("elf: failed to get %s map definitions for %s\n", 3064 MAPS_ELF_SEC, obj->path); 3065 return -EINVAL; 3066 } 3067 3068 nr_types = btf__type_cnt(obj->btf); 3069 for (i = 1; i < nr_types; i++) { 3070 t = btf__type_by_id(obj->btf, i); 3071 if (!btf_is_datasec(t)) 3072 continue; 3073 name = btf__name_by_offset(obj->btf, t->name_off); 3074 if (strcmp(name, MAPS_ELF_SEC) == 0) { 3075 sec = t; 3076 obj->efile.btf_maps_sec_btf_id = i; 3077 break; 3078 } 3079 } 3080 3081 if (!sec) { 3082 pr_warn("DATASEC '%s' not found.\n", MAPS_ELF_SEC); 3083 return -ENOENT; 3084 } 3085 3086 vlen = btf_vlen(sec); 3087 for (i = 0; i < vlen; i++) { 3088 err = bpf_object__init_user_btf_map(obj, sec, i, 3089 obj->efile.btf_maps_shndx, 3090 data, strict, 3091 pin_root_path); 3092 if (err) 3093 return err; 3094 } 3095 3096 for (i = 0; i < obj->nr_maps; i++) { 3097 struct bpf_map *map = &obj->maps[i]; 3098 3099 if (map->def.type != BPF_MAP_TYPE_ARENA) 3100 continue; 3101 3102 if (obj->arena_map_idx >= 0) { 3103 pr_warn("map '%s': only single ARENA map is supported (map '%s' is also ARENA)\n", 3104 map->name, obj->maps[obj->arena_map_idx].name); 3105 return -EINVAL; 3106 } 3107 obj->arena_map_idx = i; 3108 3109 if (obj->efile.arena_data) { 3110 err = init_arena_map_data(obj, map, ARENA_SEC, obj->efile.arena_data_shndx, 3111 obj->efile.arena_data->d_buf, 3112 obj->efile.arena_data->d_size); 3113 if (err) 3114 return err; 3115 } 3116 } 3117 if (obj->efile.arena_data && obj->arena_map_idx < 0) { 3118 pr_warn("elf: sec '%s': to use global __arena variables the ARENA map should be explicitly declared in SEC(\".maps\")\n", 3119 ARENA_SEC); 3120 return -ENOENT; 3121 } 3122 3123 return 0; 3124 } 3125 3126 static int bpf_object__init_maps(struct bpf_object *obj, 3127 const struct bpf_object_open_opts *opts) 3128 { 3129 const char *pin_root_path; 3130 bool strict; 3131 int err = 0; 3132 3133 strict = !OPTS_GET(opts, relaxed_maps, false); 3134 pin_root_path = OPTS_GET(opts, pin_root_path, NULL); 3135 3136 err = bpf_object__init_user_btf_maps(obj, strict, pin_root_path); 3137 err = err ?: bpf_object__init_global_data_maps(obj); 3138 err = err ?: bpf_object__init_kconfig_map(obj); 3139 err = err ?: bpf_object_init_struct_ops(obj); 3140 3141 return err; 3142 } 3143 3144 static bool section_have_execinstr(struct bpf_object *obj, int idx) 3145 { 3146 Elf64_Shdr *sh; 3147 3148 sh = elf_sec_hdr(obj, elf_sec_by_idx(obj, idx)); 3149 if (!sh) 3150 return false; 3151 3152 return sh->sh_flags & SHF_EXECINSTR; 3153 } 3154 3155 static bool starts_with_qmark(const char *s) 3156 { 3157 return s && s[0] == '?'; 3158 } 3159 3160 static bool btf_needs_sanitization(struct bpf_object *obj) 3161 { 3162 bool has_func_global = kernel_supports(obj, FEAT_BTF_GLOBAL_FUNC); 3163 bool has_datasec = kernel_supports(obj, FEAT_BTF_DATASEC); 3164 bool has_float = kernel_supports(obj, FEAT_BTF_FLOAT); 3165 bool has_func = kernel_supports(obj, FEAT_BTF_FUNC); 3166 bool has_decl_tag = kernel_supports(obj, FEAT_BTF_DECL_TAG); 3167 bool has_type_tag = kernel_supports(obj, FEAT_BTF_TYPE_TAG); 3168 bool has_enum64 = kernel_supports(obj, FEAT_BTF_ENUM64); 3169 bool has_qmark_datasec = kernel_supports(obj, FEAT_BTF_QMARK_DATASEC); 3170 bool has_layout = kernel_supports(obj, FEAT_BTF_LAYOUT); 3171 3172 return !has_func || !has_datasec || !has_func_global || !has_float || 3173 !has_decl_tag || !has_type_tag || !has_enum64 || !has_qmark_datasec || 3174 !has_layout; 3175 } 3176 3177 struct btf *bpf_object__sanitize_btf(struct bpf_object *obj, struct btf *orig_btf) 3178 { 3179 bool has_func_global = kernel_supports(obj, FEAT_BTF_GLOBAL_FUNC); 3180 bool has_datasec = kernel_supports(obj, FEAT_BTF_DATASEC); 3181 bool has_float = kernel_supports(obj, FEAT_BTF_FLOAT); 3182 bool has_func = kernel_supports(obj, FEAT_BTF_FUNC); 3183 bool has_decl_tag = kernel_supports(obj, FEAT_BTF_DECL_TAG); 3184 bool has_type_tag = kernel_supports(obj, FEAT_BTF_TYPE_TAG); 3185 bool has_enum64 = kernel_supports(obj, FEAT_BTF_ENUM64); 3186 bool has_qmark_datasec = kernel_supports(obj, FEAT_BTF_QMARK_DATASEC); 3187 bool has_layout = kernel_supports(obj, FEAT_BTF_LAYOUT); 3188 int enum64_placeholder_id = 0; 3189 const struct btf_header *hdr; 3190 struct btf *btf = NULL; 3191 const void *raw_data; 3192 struct btf_type *t; 3193 int i, j, vlen; 3194 __u32 sz; 3195 int err; 3196 3197 /* clone BTF to sanitize a copy and leave the original intact */ 3198 raw_data = btf__raw_data(orig_btf, &sz); 3199 if (!raw_data) 3200 return ERR_PTR(-ENOMEM); 3201 /* btf_header() gives us endian-safe header info */ 3202 hdr = btf_header(orig_btf); 3203 3204 if (!has_layout && hdr->hdr_len >= sizeof(struct btf_header) && 3205 (hdr->layout_len != 0 || hdr->layout_off != 0)) { 3206 const struct btf_header *old_hdr = raw_data; 3207 struct btf_header *new_hdr; 3208 void *new_raw_data; 3209 __u32 new_str_off; 3210 3211 /* 3212 * Need to rewrite BTF to exclude layout information and 3213 * move string section to immediately after types. 3214 */ 3215 new_raw_data = malloc(sz); 3216 if (!new_raw_data) 3217 return ERR_PTR(-ENOMEM); 3218 3219 memcpy(new_raw_data, raw_data, sz); 3220 new_hdr = new_raw_data; 3221 new_hdr->layout_off = 0; 3222 new_hdr->layout_len = 0; 3223 new_str_off = hdr->type_off + hdr->type_len; 3224 /* Handle swapped endian case */ 3225 if (old_hdr->magic != hdr->magic) 3226 new_hdr->str_off = bswap_32(new_str_off); 3227 else 3228 new_hdr->str_off = new_str_off; 3229 3230 memmove(new_raw_data + hdr->hdr_len + new_str_off, 3231 new_raw_data + hdr->hdr_len + hdr->str_off, 3232 hdr->str_len); 3233 sz = hdr->hdr_len + hdr->type_off + hdr->type_len + hdr->str_len; 3234 btf = btf__new(new_raw_data, sz); 3235 free(new_raw_data); 3236 } else { 3237 btf = btf__new(raw_data, sz); 3238 } 3239 err = libbpf_get_error(btf); 3240 if (err) 3241 return ERR_PTR(err); 3242 3243 /* enforce 8-byte pointers for BPF-targeted BTFs */ 3244 btf__set_pointer_size(btf, 8); 3245 3246 for (i = 1; i < btf__type_cnt(btf); i++) { 3247 t = (struct btf_type *)btf__type_by_id(btf, i); 3248 3249 if ((!has_datasec && btf_is_var(t)) || (!has_decl_tag && btf_is_decl_tag(t))) { 3250 /* replace VAR/DECL_TAG with INT */ 3251 t->info = BTF_INFO_ENC(BTF_KIND_INT, 0, 0); 3252 /* 3253 * using size = 1 is the safest choice, 4 will be too 3254 * big and cause kernel BTF validation failure if 3255 * original variable took less than 4 bytes 3256 */ 3257 t->size = 1; 3258 *(int *)(t + 1) = BTF_INT_ENC(0, 0, 8); 3259 } else if (!has_datasec && btf_is_datasec(t)) { 3260 /* replace DATASEC with STRUCT */ 3261 const struct btf_var_secinfo *v = btf_var_secinfos(t); 3262 struct btf_member *m = btf_members(t); 3263 struct btf_type *vt; 3264 char *name; 3265 3266 name = (char *)btf__name_by_offset(btf, t->name_off); 3267 while (*name) { 3268 if (*name == '.' || *name == '?') 3269 *name = '_'; 3270 name++; 3271 } 3272 3273 vlen = btf_vlen(t); 3274 t->info = BTF_INFO_ENC(BTF_KIND_STRUCT, 0, vlen); 3275 for (j = 0; j < vlen; j++, v++, m++) { 3276 /* order of field assignments is important */ 3277 m->offset = v->offset * 8; 3278 m->type = v->type; 3279 /* preserve variable name as member name */ 3280 vt = (void *)btf__type_by_id(btf, v->type); 3281 m->name_off = vt->name_off; 3282 } 3283 } else if (!has_qmark_datasec && btf_is_datasec(t) && 3284 starts_with_qmark(btf__name_by_offset(btf, t->name_off))) { 3285 /* replace '?' prefix with '_' for DATASEC names */ 3286 char *name; 3287 3288 name = (char *)btf__name_by_offset(btf, t->name_off); 3289 if (name[0] == '?') 3290 name[0] = '_'; 3291 } else if (!has_func && btf_is_func_proto(t)) { 3292 /* replace FUNC_PROTO with ENUM */ 3293 vlen = btf_vlen(t); 3294 t->info = BTF_INFO_ENC(BTF_KIND_ENUM, 0, vlen); 3295 t->size = sizeof(__u32); /* kernel enforced */ 3296 } else if (!has_func && btf_is_func(t)) { 3297 /* replace FUNC with TYPEDEF */ 3298 t->info = BTF_INFO_ENC(BTF_KIND_TYPEDEF, 0, 0); 3299 } else if (!has_func_global && btf_is_func(t)) { 3300 /* replace BTF_FUNC_GLOBAL with BTF_FUNC_STATIC */ 3301 t->info = BTF_INFO_ENC(BTF_KIND_FUNC, 0, 0); 3302 } else if (!has_float && btf_is_float(t)) { 3303 /* replace FLOAT with an equally-sized empty STRUCT; 3304 * since C compilers do not accept e.g. "float" as a 3305 * valid struct name, make it anonymous 3306 */ 3307 t->name_off = 0; 3308 t->info = BTF_INFO_ENC(BTF_KIND_STRUCT, 0, 0); 3309 } else if (!has_type_tag && btf_is_type_tag(t)) { 3310 /* replace TYPE_TAG with a CONST */ 3311 t->name_off = 0; 3312 t->info = BTF_INFO_ENC(BTF_KIND_CONST, 0, 0); 3313 } else if (!has_enum64 && btf_is_enum(t)) { 3314 /* clear the kflag */ 3315 t->info = btf_type_info(btf_kind(t), btf_vlen(t), false); 3316 } else if (!has_enum64 && btf_is_enum64(t)) { 3317 /* replace ENUM64 with a union */ 3318 struct btf_member *m; 3319 3320 if (enum64_placeholder_id == 0) { 3321 enum64_placeholder_id = btf__add_int(btf, "enum64_placeholder", 1, 0); 3322 if (enum64_placeholder_id < 0) { 3323 btf__free(btf); 3324 return ERR_PTR(enum64_placeholder_id); 3325 } 3326 t = (struct btf_type *)btf__type_by_id(btf, i); 3327 } 3328 3329 m = btf_members(t); 3330 vlen = btf_vlen(t); 3331 t->info = BTF_INFO_ENC(BTF_KIND_UNION, 0, vlen); 3332 for (j = 0; j < vlen; j++, m++) { 3333 m->type = enum64_placeholder_id; 3334 m->offset = 0; 3335 } 3336 } 3337 } 3338 3339 return btf; 3340 } 3341 3342 static bool libbpf_needs_btf(const struct bpf_object *obj) 3343 { 3344 return obj->efile.btf_maps_shndx >= 0 || 3345 obj->efile.has_st_ops || 3346 obj->nr_extern > 0; 3347 } 3348 3349 static bool kernel_needs_btf(const struct bpf_object *obj) 3350 { 3351 return obj->efile.has_st_ops; 3352 } 3353 3354 static int bpf_object__init_btf(struct bpf_object *obj, 3355 Elf_Data *btf_data, 3356 Elf_Data *btf_ext_data) 3357 { 3358 int err = -ENOENT; 3359 3360 if (btf_data) { 3361 obj->btf = btf__new(btf_data->d_buf, btf_data->d_size); 3362 err = libbpf_get_error(obj->btf); 3363 if (err) { 3364 obj->btf = NULL; 3365 pr_warn("Error loading ELF section %s: %s.\n", BTF_ELF_SEC, errstr(err)); 3366 goto out; 3367 } 3368 /* enforce 8-byte pointers for BPF-targeted BTFs */ 3369 btf__set_pointer_size(obj->btf, 8); 3370 } 3371 if (btf_ext_data) { 3372 struct btf_ext_info *ext_segs[3]; 3373 int seg_num, sec_num; 3374 3375 if (!obj->btf) { 3376 pr_debug("Ignore ELF section %s because its depending ELF section %s is not found.\n", 3377 BTF_EXT_ELF_SEC, BTF_ELF_SEC); 3378 goto out; 3379 } 3380 obj->btf_ext = btf_ext__new(btf_ext_data->d_buf, btf_ext_data->d_size); 3381 err = libbpf_get_error(obj->btf_ext); 3382 if (err) { 3383 pr_warn("Error loading ELF section %s: %s. Ignored and continue.\n", 3384 BTF_EXT_ELF_SEC, errstr(err)); 3385 obj->btf_ext = NULL; 3386 goto out; 3387 } 3388 3389 /* setup .BTF.ext to ELF section mapping */ 3390 ext_segs[0] = &obj->btf_ext->func_info; 3391 ext_segs[1] = &obj->btf_ext->line_info; 3392 ext_segs[2] = &obj->btf_ext->core_relo_info; 3393 for (seg_num = 0; seg_num < ARRAY_SIZE(ext_segs); seg_num++) { 3394 struct btf_ext_info *seg = ext_segs[seg_num]; 3395 const struct btf_ext_info_sec *sec; 3396 const char *sec_name; 3397 Elf_Scn *scn; 3398 3399 if (seg->sec_cnt == 0) 3400 continue; 3401 3402 seg->sec_idxs = calloc(seg->sec_cnt, sizeof(*seg->sec_idxs)); 3403 if (!seg->sec_idxs) { 3404 err = -ENOMEM; 3405 goto out; 3406 } 3407 3408 sec_num = 0; 3409 for_each_btf_ext_sec(seg, sec) { 3410 /* preventively increment index to avoid doing 3411 * this before every continue below 3412 */ 3413 sec_num++; 3414 3415 sec_name = btf__name_by_offset(obj->btf, sec->sec_name_off); 3416 if (str_is_empty(sec_name)) 3417 continue; 3418 scn = elf_sec_by_name(obj, sec_name); 3419 if (!scn) 3420 continue; 3421 3422 seg->sec_idxs[sec_num - 1] = elf_ndxscn(scn); 3423 } 3424 } 3425 } 3426 out: 3427 if (err && libbpf_needs_btf(obj)) { 3428 pr_warn("BTF is required, but is missing or corrupted.\n"); 3429 return err; 3430 } 3431 return 0; 3432 } 3433 3434 static int compare_vsi_off(const void *_a, const void *_b) 3435 { 3436 const struct btf_var_secinfo *a = _a; 3437 const struct btf_var_secinfo *b = _b; 3438 3439 return a->offset - b->offset; 3440 } 3441 3442 static int btf_fixup_datasec(struct bpf_object *obj, struct btf *btf, 3443 struct btf_type *t) 3444 { 3445 __u32 size = 0, i, vars = btf_vlen(t); 3446 const char *sec_name = btf__name_by_offset(btf, t->name_off); 3447 struct btf_var_secinfo *vsi; 3448 bool fixup_offsets = false; 3449 int err; 3450 3451 if (!sec_name) { 3452 pr_debug("No name found in string section for DATASEC kind.\n"); 3453 return -ENOENT; 3454 } 3455 3456 /* Extern-backing datasecs (.ksyms, .kconfig) have their size and 3457 * variable offsets set at the previous step. Further, not every 3458 * extern BTF VAR has corresponding ELF symbol preserved, so we skip 3459 * all fixups altogether for such sections and go straight to sorting 3460 * VARs within their DATASEC. 3461 */ 3462 if (strcmp(sec_name, KCONFIG_SEC) == 0 || strcmp(sec_name, KSYMS_SEC) == 0) 3463 goto sort_vars; 3464 3465 /* Clang leaves DATASEC size and VAR offsets as zeroes, so we need to 3466 * fix this up. But BPF static linker already fixes this up and fills 3467 * all the sizes and offsets during static linking. So this step has 3468 * to be optional. But the STV_HIDDEN handling is non-optional for any 3469 * non-extern DATASEC, so the variable fixup loop below handles both 3470 * functions at the same time, paying the cost of BTF VAR <-> ELF 3471 * symbol matching just once. 3472 */ 3473 if (t->size == 0) { 3474 err = find_elf_sec_sz(obj, sec_name, &size); 3475 if (err || !size) { 3476 pr_debug("sec '%s': failed to determine size from ELF: size %u, err %s\n", 3477 sec_name, size, errstr(err)); 3478 return -ENOENT; 3479 } 3480 3481 t->size = size; 3482 fixup_offsets = true; 3483 } 3484 3485 for (i = 0, vsi = btf_var_secinfos(t); i < vars; i++, vsi++) { 3486 const struct btf_type *t_var; 3487 struct btf_var *var; 3488 const char *var_name; 3489 Elf64_Sym *sym; 3490 3491 t_var = btf__type_by_id(btf, vsi->type); 3492 if (!t_var || !btf_is_var(t_var)) { 3493 pr_debug("sec '%s': unexpected non-VAR type found\n", sec_name); 3494 return -EINVAL; 3495 } 3496 3497 var = btf_var(t_var); 3498 if (var->linkage == BTF_VAR_STATIC || var->linkage == BTF_VAR_GLOBAL_EXTERN) 3499 continue; 3500 3501 var_name = btf__name_by_offset(btf, t_var->name_off); 3502 if (!var_name) { 3503 pr_debug("sec '%s': failed to find name of DATASEC's member #%u\n", 3504 sec_name, i); 3505 return -ENOENT; 3506 } 3507 3508 sym = find_elf_var_sym(obj, var_name); 3509 if (IS_ERR(sym)) { 3510 pr_debug("sec '%s': failed to find ELF symbol for VAR '%s'\n", 3511 sec_name, var_name); 3512 return -ENOENT; 3513 } 3514 3515 if (fixup_offsets) 3516 vsi->offset = sym->st_value; 3517 3518 /* if variable is a global/weak symbol, but has restricted 3519 * (STV_HIDDEN or STV_INTERNAL) visibility, mark its BTF VAR 3520 * as static. This follows similar logic for functions (BPF 3521 * subprogs) and influences libbpf's further decisions about 3522 * whether to make global data BPF array maps as 3523 * BPF_F_MMAPABLE. 3524 */ 3525 if (ELF64_ST_VISIBILITY(sym->st_other) == STV_HIDDEN 3526 || ELF64_ST_VISIBILITY(sym->st_other) == STV_INTERNAL) 3527 var->linkage = BTF_VAR_STATIC; 3528 } 3529 3530 sort_vars: 3531 qsort(btf_var_secinfos(t), vars, sizeof(*vsi), compare_vsi_off); 3532 return 0; 3533 } 3534 3535 static int bpf_object_fixup_btf(struct bpf_object *obj) 3536 { 3537 int i, n, err = 0; 3538 3539 if (!obj->btf) 3540 return 0; 3541 3542 n = btf__type_cnt(obj->btf); 3543 for (i = 1; i < n; i++) { 3544 struct btf_type *t = btf_type_by_id(obj->btf, i); 3545 3546 /* Loader needs to fix up some of the things compiler 3547 * couldn't get its hands on while emitting BTF. This 3548 * is section size and global variable offset. We use 3549 * the info from the ELF itself for this purpose. 3550 */ 3551 if (btf_is_datasec(t)) { 3552 err = btf_fixup_datasec(obj, obj->btf, t); 3553 if (err) 3554 return err; 3555 } 3556 } 3557 3558 return 0; 3559 } 3560 3561 static bool prog_needs_vmlinux_btf(struct bpf_program *prog) 3562 { 3563 if (prog->type == BPF_PROG_TYPE_STRUCT_OPS || 3564 prog->type == BPF_PROG_TYPE_LSM) 3565 return true; 3566 3567 /* BPF_PROG_TYPE_TRACING programs which do not attach to other programs 3568 * also need vmlinux BTF 3569 */ 3570 if (prog->type == BPF_PROG_TYPE_TRACING && !prog->attach_prog_fd) 3571 return true; 3572 3573 return false; 3574 } 3575 3576 static bool map_needs_vmlinux_btf(struct bpf_map *map) 3577 { 3578 return bpf_map__is_struct_ops(map); 3579 } 3580 3581 static bool obj_needs_vmlinux_btf(const struct bpf_object *obj) 3582 { 3583 struct bpf_program *prog; 3584 struct bpf_map *map; 3585 int i; 3586 3587 /* CO-RE relocations need kernel BTF, only when btf_custom_path 3588 * is not specified 3589 */ 3590 if (obj->btf_ext && obj->btf_ext->core_relo_info.len && !obj->btf_custom_path) 3591 return true; 3592 3593 /* Support for typed ksyms needs kernel BTF */ 3594 for (i = 0; i < obj->nr_extern; i++) { 3595 const struct extern_desc *ext; 3596 3597 ext = &obj->externs[i]; 3598 if (ext->type == EXT_KSYM && ext->ksym.type_id) 3599 return true; 3600 } 3601 3602 bpf_object__for_each_program(prog, obj) { 3603 if (!prog->autoload) 3604 continue; 3605 if (prog_needs_vmlinux_btf(prog)) 3606 return true; 3607 } 3608 3609 bpf_object__for_each_map(map, obj) { 3610 if (map_needs_vmlinux_btf(map)) 3611 return true; 3612 } 3613 3614 return false; 3615 } 3616 3617 static int bpf_object__load_vmlinux_btf(struct bpf_object *obj, bool force) 3618 { 3619 int err; 3620 3621 /* btf_vmlinux could be loaded earlier */ 3622 if (obj->btf_vmlinux || obj->gen_loader) 3623 return 0; 3624 3625 if (!force && !obj_needs_vmlinux_btf(obj)) 3626 return 0; 3627 3628 obj->btf_vmlinux = btf__load_vmlinux_btf(); 3629 err = libbpf_get_error(obj->btf_vmlinux); 3630 if (err) { 3631 pr_warn("Error loading vmlinux BTF: %s\n", errstr(err)); 3632 obj->btf_vmlinux = NULL; 3633 return err; 3634 } 3635 return 0; 3636 } 3637 3638 static int bpf_object__sanitize_and_load_btf(struct bpf_object *obj) 3639 { 3640 struct btf *kern_btf = obj->btf; 3641 bool btf_mandatory, sanitize; 3642 int i, err = 0; 3643 3644 if (!obj->btf) 3645 return 0; 3646 3647 if (!kernel_supports(obj, FEAT_BTF)) { 3648 if (kernel_needs_btf(obj)) { 3649 err = -EOPNOTSUPP; 3650 goto report; 3651 } 3652 pr_debug("Kernel doesn't support BTF, skipping uploading it.\n"); 3653 return 0; 3654 } 3655 3656 /* Even though some subprogs are global/weak, user might prefer more 3657 * permissive BPF verification process that BPF verifier performs for 3658 * static functions, taking into account more context from the caller 3659 * functions. In such case, they need to mark such subprogs with 3660 * __attribute__((visibility("hidden"))) and libbpf will adjust 3661 * corresponding FUNC BTF type to be marked as static and trigger more 3662 * involved BPF verification process. 3663 */ 3664 for (i = 0; i < obj->nr_programs; i++) { 3665 struct bpf_program *prog = &obj->programs[i]; 3666 struct btf_type *t; 3667 const char *name; 3668 int j, n; 3669 3670 if (!prog->mark_btf_static || !prog_is_subprog(obj, prog)) 3671 continue; 3672 3673 n = btf__type_cnt(obj->btf); 3674 for (j = 1; j < n; j++) { 3675 t = btf_type_by_id(obj->btf, j); 3676 if (!btf_is_func(t) || btf_func_linkage(t) != BTF_FUNC_GLOBAL) 3677 continue; 3678 3679 name = btf__str_by_offset(obj->btf, t->name_off); 3680 if (strcmp(name, prog->name) != 0) 3681 continue; 3682 3683 t->info = btf_type_info(BTF_KIND_FUNC, BTF_FUNC_STATIC, 0); 3684 break; 3685 } 3686 } 3687 3688 sanitize = btf_needs_sanitization(obj); 3689 if (sanitize) { 3690 kern_btf = bpf_object__sanitize_btf(obj, obj->btf); 3691 if (IS_ERR(kern_btf)) 3692 return PTR_ERR(kern_btf); 3693 } 3694 3695 if (obj->gen_loader) { 3696 __u32 raw_size = 0; 3697 const void *raw_data = btf__raw_data(kern_btf, &raw_size); 3698 3699 if (!raw_data) 3700 return -ENOMEM; 3701 bpf_gen__load_btf(obj->gen_loader, raw_data, raw_size); 3702 /* Pretend to have valid FD to pass various fd >= 0 checks. 3703 * This fd == 0 will not be used with any syscall and will be reset to -1 eventually. 3704 */ 3705 btf__set_fd(kern_btf, 0); 3706 } else { 3707 /* currently BPF_BTF_LOAD only supports log_level 1 */ 3708 err = btf_load_into_kernel(kern_btf, obj->log_buf, obj->log_size, 3709 obj->log_level ? 1 : 0, obj->token_fd); 3710 } 3711 if (sanitize) { 3712 if (!err) { 3713 /* move fd to libbpf's BTF */ 3714 btf__set_fd(obj->btf, btf__fd(kern_btf)); 3715 btf__set_fd(kern_btf, -1); 3716 } 3717 btf__free(kern_btf); 3718 } 3719 report: 3720 if (err) { 3721 btf_mandatory = kernel_needs_btf(obj); 3722 if (btf_mandatory) { 3723 pr_warn("Error loading .BTF into kernel: %s. BTF is mandatory, can't proceed.\n", 3724 errstr(err)); 3725 } else { 3726 pr_info("Error loading .BTF into kernel: %s. BTF is optional, ignoring.\n", 3727 errstr(err)); 3728 err = 0; 3729 } 3730 } 3731 return err; 3732 } 3733 3734 static const char *elf_sym_str(const struct bpf_object *obj, size_t off) 3735 { 3736 const char *name; 3737 3738 name = elf_strptr(obj->efile.elf, obj->efile.strtabidx, off); 3739 if (!name) { 3740 pr_warn("elf: failed to get section name string at offset %zu from %s: %s\n", 3741 off, obj->path, elf_errmsg(-1)); 3742 return NULL; 3743 } 3744 3745 return name; 3746 } 3747 3748 static const char *elf_sec_str(const struct bpf_object *obj, size_t off) 3749 { 3750 const char *name; 3751 3752 name = elf_strptr(obj->efile.elf, obj->efile.shstrndx, off); 3753 if (!name) { 3754 pr_warn("elf: failed to get section name string at offset %zu from %s: %s\n", 3755 off, obj->path, elf_errmsg(-1)); 3756 return NULL; 3757 } 3758 3759 return name; 3760 } 3761 3762 static Elf_Scn *elf_sec_by_idx(const struct bpf_object *obj, size_t idx) 3763 { 3764 Elf_Scn *scn; 3765 3766 scn = elf_getscn(obj->efile.elf, idx); 3767 if (!scn) { 3768 pr_warn("elf: failed to get section(%zu) from %s: %s\n", 3769 idx, obj->path, elf_errmsg(-1)); 3770 return NULL; 3771 } 3772 return scn; 3773 } 3774 3775 static Elf_Scn *elf_sec_by_name(const struct bpf_object *obj, const char *name) 3776 { 3777 Elf_Scn *scn = NULL; 3778 Elf *elf = obj->efile.elf; 3779 const char *sec_name; 3780 3781 while ((scn = elf_nextscn(elf, scn)) != NULL) { 3782 sec_name = elf_sec_name(obj, scn); 3783 if (!sec_name) 3784 return NULL; 3785 3786 if (strcmp(sec_name, name) != 0) 3787 continue; 3788 3789 return scn; 3790 } 3791 return NULL; 3792 } 3793 3794 static Elf64_Shdr *elf_sec_hdr(const struct bpf_object *obj, Elf_Scn *scn) 3795 { 3796 Elf64_Shdr *shdr; 3797 3798 if (!scn) 3799 return NULL; 3800 3801 shdr = elf64_getshdr(scn); 3802 if (!shdr) { 3803 pr_warn("elf: failed to get section(%zu) header from %s: %s\n", 3804 elf_ndxscn(scn), obj->path, elf_errmsg(-1)); 3805 return NULL; 3806 } 3807 3808 return shdr; 3809 } 3810 3811 static const char *elf_sec_name(const struct bpf_object *obj, Elf_Scn *scn) 3812 { 3813 const char *name; 3814 Elf64_Shdr *sh; 3815 3816 if (!scn) 3817 return NULL; 3818 3819 sh = elf_sec_hdr(obj, scn); 3820 if (!sh) 3821 return NULL; 3822 3823 name = elf_sec_str(obj, sh->sh_name); 3824 if (!name) { 3825 pr_warn("elf: failed to get section(%zu) name from %s: %s\n", 3826 elf_ndxscn(scn), obj->path, elf_errmsg(-1)); 3827 return NULL; 3828 } 3829 3830 return name; 3831 } 3832 3833 static Elf_Data *elf_sec_data(const struct bpf_object *obj, Elf_Scn *scn) 3834 { 3835 Elf_Data *data; 3836 3837 if (!scn) 3838 return NULL; 3839 3840 data = elf_getdata(scn, 0); 3841 if (!data) { 3842 pr_warn("elf: failed to get section(%zu) %s data from %s: %s\n", 3843 elf_ndxscn(scn), elf_sec_name(obj, scn) ?: "<?>", 3844 obj->path, elf_errmsg(-1)); 3845 return NULL; 3846 } 3847 3848 return data; 3849 } 3850 3851 static Elf64_Sym *elf_sym_by_idx(const struct bpf_object *obj, size_t idx) 3852 { 3853 if (idx >= obj->efile.symbols->d_size / sizeof(Elf64_Sym)) 3854 return NULL; 3855 3856 return (Elf64_Sym *)obj->efile.symbols->d_buf + idx; 3857 } 3858 3859 static Elf64_Rel *elf_rel_by_idx(Elf_Data *data, size_t idx) 3860 { 3861 if (idx >= data->d_size / sizeof(Elf64_Rel)) 3862 return NULL; 3863 3864 return (Elf64_Rel *)data->d_buf + idx; 3865 } 3866 3867 static bool is_sec_name_dwarf(const char *name) 3868 { 3869 /* approximation, but the actual list is too long */ 3870 return str_has_pfx(name, ".debug_"); 3871 } 3872 3873 static bool ignore_elf_section(Elf64_Shdr *hdr, const char *name) 3874 { 3875 /* no special handling of .strtab */ 3876 if (hdr->sh_type == SHT_STRTAB) 3877 return true; 3878 3879 /* ignore .llvm_addrsig section as well */ 3880 if (hdr->sh_type == SHT_LLVM_ADDRSIG) 3881 return true; 3882 3883 /* no subprograms will lead to an empty .text section, ignore it */ 3884 if (hdr->sh_type == SHT_PROGBITS && hdr->sh_size == 0 && 3885 strcmp(name, ".text") == 0) 3886 return true; 3887 3888 /* DWARF sections */ 3889 if (is_sec_name_dwarf(name)) 3890 return true; 3891 3892 if (str_has_pfx(name, ".rel")) { 3893 name += sizeof(".rel") - 1; 3894 /* DWARF section relocations */ 3895 if (is_sec_name_dwarf(name)) 3896 return true; 3897 3898 /* .BTF and .BTF.ext don't need relocations */ 3899 if (strcmp(name, BTF_ELF_SEC) == 0 || 3900 strcmp(name, BTF_EXT_ELF_SEC) == 0) 3901 return true; 3902 } 3903 3904 return false; 3905 } 3906 3907 static int cmp_progs(const void *_a, const void *_b) 3908 { 3909 const struct bpf_program *a = _a; 3910 const struct bpf_program *b = _b; 3911 3912 if (a->sec_idx != b->sec_idx) 3913 return a->sec_idx < b->sec_idx ? -1 : 1; 3914 3915 /* sec_insn_off can't be the same within the section */ 3916 return a->sec_insn_off < b->sec_insn_off ? -1 : 1; 3917 } 3918 3919 static int bpf_object__elf_collect(struct bpf_object *obj) 3920 { 3921 struct elf_sec_desc *sec_desc; 3922 Elf *elf = obj->efile.elf; 3923 Elf_Data *btf_ext_data = NULL; 3924 Elf_Data *btf_data = NULL; 3925 int idx = 0, err = 0; 3926 const char *name; 3927 Elf_Data *data; 3928 Elf_Scn *scn; 3929 Elf64_Shdr *sh; 3930 3931 /* ELF section indices are 0-based, but sec #0 is special "invalid" 3932 * section. Since section count retrieved by elf_getshdrnum() does 3933 * include sec #0, it is already the necessary size of an array to keep 3934 * all the sections. 3935 */ 3936 if (elf_getshdrnum(obj->efile.elf, &obj->efile.sec_cnt)) { 3937 pr_warn("elf: failed to get the number of sections for %s: %s\n", 3938 obj->path, elf_errmsg(-1)); 3939 return -LIBBPF_ERRNO__FORMAT; 3940 } 3941 obj->efile.secs = calloc(obj->efile.sec_cnt, sizeof(*obj->efile.secs)); 3942 if (!obj->efile.secs) 3943 return -ENOMEM; 3944 3945 /* a bunch of ELF parsing functionality depends on processing symbols, 3946 * so do the first pass and find the symbol table 3947 */ 3948 scn = NULL; 3949 while ((scn = elf_nextscn(elf, scn)) != NULL) { 3950 sh = elf_sec_hdr(obj, scn); 3951 if (!sh) 3952 return -LIBBPF_ERRNO__FORMAT; 3953 3954 if (sh->sh_type == SHT_SYMTAB) { 3955 if (obj->efile.symbols) { 3956 pr_warn("elf: multiple symbol tables in %s\n", obj->path); 3957 return -LIBBPF_ERRNO__FORMAT; 3958 } 3959 3960 data = elf_sec_data(obj, scn); 3961 if (!data) 3962 return -LIBBPF_ERRNO__FORMAT; 3963 3964 idx = elf_ndxscn(scn); 3965 3966 obj->efile.symbols = data; 3967 obj->efile.symbols_shndx = idx; 3968 obj->efile.strtabidx = sh->sh_link; 3969 } 3970 } 3971 3972 if (!obj->efile.symbols) { 3973 pr_warn("elf: couldn't find symbol table in %s, stripped object file?\n", 3974 obj->path); 3975 return -ENOENT; 3976 } 3977 3978 scn = NULL; 3979 while ((scn = elf_nextscn(elf, scn)) != NULL) { 3980 idx = elf_ndxscn(scn); 3981 sec_desc = &obj->efile.secs[idx]; 3982 3983 sh = elf_sec_hdr(obj, scn); 3984 if (!sh) 3985 return -LIBBPF_ERRNO__FORMAT; 3986 3987 name = elf_sec_str(obj, sh->sh_name); 3988 if (!name) 3989 return -LIBBPF_ERRNO__FORMAT; 3990 3991 if (ignore_elf_section(sh, name)) 3992 continue; 3993 3994 data = elf_sec_data(obj, scn); 3995 if (!data) 3996 return -LIBBPF_ERRNO__FORMAT; 3997 3998 pr_debug("elf: section(%d) %s, size %lu, link %d, flags %lx, type=%d\n", 3999 idx, name, (unsigned long)data->d_size, 4000 (int)sh->sh_link, (unsigned long)sh->sh_flags, 4001 (int)sh->sh_type); 4002 4003 if (strcmp(name, "license") == 0) { 4004 err = bpf_object__init_license(obj, data->d_buf, data->d_size); 4005 if (err) 4006 return err; 4007 } else if (strcmp(name, "version") == 0) { 4008 err = bpf_object__init_kversion(obj, data->d_buf, data->d_size); 4009 if (err) 4010 return err; 4011 } else if (strcmp(name, "maps") == 0) { 4012 pr_warn("elf: legacy map definitions in 'maps' section are not supported by libbpf v1.0+\n"); 4013 return -ENOTSUP; 4014 } else if (strcmp(name, MAPS_ELF_SEC) == 0) { 4015 obj->efile.btf_maps_shndx = idx; 4016 } else if (strcmp(name, BTF_ELF_SEC) == 0) { 4017 if (sh->sh_type != SHT_PROGBITS) 4018 return -LIBBPF_ERRNO__FORMAT; 4019 btf_data = data; 4020 } else if (strcmp(name, BTF_EXT_ELF_SEC) == 0) { 4021 if (sh->sh_type != SHT_PROGBITS) 4022 return -LIBBPF_ERRNO__FORMAT; 4023 btf_ext_data = data; 4024 } else if (sh->sh_type == SHT_SYMTAB) { 4025 /* already processed during the first pass above */ 4026 } else if (sh->sh_type == SHT_PROGBITS && data->d_size > 0) { 4027 if (sh->sh_flags & SHF_EXECINSTR) { 4028 if (strcmp(name, ".text") == 0) 4029 obj->efile.text_shndx = idx; 4030 err = bpf_object__add_programs(obj, data, name, idx); 4031 if (err) 4032 return err; 4033 } else if (strcmp(name, DATA_SEC) == 0 || 4034 str_has_pfx(name, DATA_SEC ".")) { 4035 sec_desc->sec_type = SEC_DATA; 4036 sec_desc->shdr = sh; 4037 sec_desc->data = data; 4038 } else if (strcmp(name, RODATA_SEC) == 0 || 4039 str_has_pfx(name, RODATA_SEC ".")) { 4040 sec_desc->sec_type = SEC_RODATA; 4041 sec_desc->shdr = sh; 4042 sec_desc->data = data; 4043 } else if (strcmp(name, PERCPU_SEC) == 0 || 4044 str_has_pfx(name, PERCPU_SEC ".")) { 4045 sec_desc->sec_type = SEC_PERCPU; 4046 sec_desc->shdr = sh; 4047 sec_desc->data = data; 4048 } else if (strcmp(name, STRUCT_OPS_SEC) == 0 || 4049 strcmp(name, STRUCT_OPS_LINK_SEC) == 0 || 4050 strcmp(name, "?" STRUCT_OPS_SEC) == 0 || 4051 strcmp(name, "?" STRUCT_OPS_LINK_SEC) == 0) { 4052 sec_desc->sec_type = SEC_ST_OPS; 4053 sec_desc->shdr = sh; 4054 sec_desc->data = data; 4055 obj->efile.has_st_ops = true; 4056 } else if (strcmp(name, ARENA_SEC) == 0) { 4057 obj->efile.arena_data = data; 4058 obj->efile.arena_data_shndx = idx; 4059 } else if (strcmp(name, JUMPTABLES_SEC) == 0) { 4060 obj->jumptables_data = malloc(data->d_size); 4061 if (!obj->jumptables_data) 4062 return -ENOMEM; 4063 memcpy(obj->jumptables_data, data->d_buf, data->d_size); 4064 obj->jumptables_data_sz = data->d_size; 4065 obj->efile.jumptables_data_shndx = idx; 4066 } else { 4067 pr_info("elf: skipping unrecognized data section(%d) %s\n", 4068 idx, name); 4069 } 4070 } else if (sh->sh_type == SHT_REL) { 4071 int targ_sec_idx = sh->sh_info; /* points to other section */ 4072 4073 if (sh->sh_entsize != sizeof(Elf64_Rel) || 4074 targ_sec_idx >= obj->efile.sec_cnt) 4075 return -LIBBPF_ERRNO__FORMAT; 4076 4077 /* Only do relo for section with exec instructions */ 4078 if (!section_have_execinstr(obj, targ_sec_idx) && 4079 strcmp(name, ".rel" STRUCT_OPS_SEC) && 4080 strcmp(name, ".rel" STRUCT_OPS_LINK_SEC) && 4081 strcmp(name, ".rel?" STRUCT_OPS_SEC) && 4082 strcmp(name, ".rel?" STRUCT_OPS_LINK_SEC) && 4083 strcmp(name, ".rel" MAPS_ELF_SEC)) { 4084 pr_info("elf: skipping relo section(%d) %s for section(%d) %s\n", 4085 idx, name, targ_sec_idx, 4086 elf_sec_name(obj, elf_sec_by_idx(obj, targ_sec_idx)) ?: "<?>"); 4087 continue; 4088 } 4089 4090 sec_desc->sec_type = SEC_RELO; 4091 sec_desc->shdr = sh; 4092 sec_desc->data = data; 4093 } else if (sh->sh_type == SHT_NOBITS && (strcmp(name, BSS_SEC) == 0 || 4094 str_has_pfx(name, BSS_SEC "."))) { 4095 sec_desc->sec_type = SEC_BSS; 4096 sec_desc->shdr = sh; 4097 sec_desc->data = data; 4098 } else { 4099 pr_info("elf: skipping section(%d) %s (size %zu)\n", idx, name, 4100 (size_t)sh->sh_size); 4101 } 4102 } 4103 4104 if (!obj->efile.strtabidx || obj->efile.strtabidx > idx) { 4105 pr_warn("elf: symbol strings section missing or invalid in %s\n", obj->path); 4106 return -LIBBPF_ERRNO__FORMAT; 4107 } 4108 4109 /* change BPF program insns to native endianness for introspection */ 4110 if (!is_native_endianness(obj)) 4111 bpf_object_bswap_progs(obj); 4112 4113 /* sort BPF programs by section name and in-section instruction offset 4114 * for faster search 4115 */ 4116 if (obj->nr_programs) 4117 qsort(obj->programs, obj->nr_programs, sizeof(*obj->programs), cmp_progs); 4118 4119 return bpf_object__init_btf(obj, btf_data, btf_ext_data); 4120 } 4121 4122 static bool sym_is_extern(const Elf64_Sym *sym) 4123 { 4124 int bind = ELF64_ST_BIND(sym->st_info); 4125 /* externs are symbols w/ type=NOTYPE, bind=GLOBAL|WEAK, section=UND */ 4126 return sym->st_shndx == SHN_UNDEF && 4127 (bind == STB_GLOBAL || bind == STB_WEAK) && 4128 ELF64_ST_TYPE(sym->st_info) == STT_NOTYPE; 4129 } 4130 4131 static bool sym_is_subprog(const Elf64_Sym *sym, int text_shndx) 4132 { 4133 int bind = ELF64_ST_BIND(sym->st_info); 4134 int type = ELF64_ST_TYPE(sym->st_info); 4135 4136 /* in .text section */ 4137 if (sym->st_shndx != text_shndx) 4138 return false; 4139 4140 /* local function */ 4141 if (bind == STB_LOCAL && type == STT_SECTION) 4142 return true; 4143 4144 /* global function */ 4145 return (bind == STB_GLOBAL || bind == STB_WEAK) && type == STT_FUNC; 4146 } 4147 4148 static int find_extern_btf_id(const struct btf *btf, const char *ext_name) 4149 { 4150 const struct btf_type *t; 4151 const char *tname; 4152 int i, n; 4153 4154 if (!btf) 4155 return -ESRCH; 4156 4157 n = btf__type_cnt(btf); 4158 for (i = 1; i < n; i++) { 4159 t = btf__type_by_id(btf, i); 4160 4161 if (!btf_is_var(t) && !btf_is_func(t)) 4162 continue; 4163 4164 tname = btf__name_by_offset(btf, t->name_off); 4165 if (strcmp(tname, ext_name)) 4166 continue; 4167 4168 if (btf_is_var(t) && 4169 btf_var(t)->linkage != BTF_VAR_GLOBAL_EXTERN) 4170 return -EINVAL; 4171 4172 if (btf_is_func(t) && btf_func_linkage(t) != BTF_FUNC_EXTERN) 4173 return -EINVAL; 4174 4175 return i; 4176 } 4177 4178 return -ENOENT; 4179 } 4180 4181 static int find_extern_sec_btf_id(struct btf *btf, int ext_btf_id) { 4182 const struct btf_var_secinfo *vs; 4183 const struct btf_type *t; 4184 int i, j, n; 4185 4186 if (!btf) 4187 return -ESRCH; 4188 4189 n = btf__type_cnt(btf); 4190 for (i = 1; i < n; i++) { 4191 t = btf__type_by_id(btf, i); 4192 4193 if (!btf_is_datasec(t)) 4194 continue; 4195 4196 vs = btf_var_secinfos(t); 4197 for (j = 0; j < btf_vlen(t); j++, vs++) { 4198 if (vs->type == ext_btf_id) 4199 return i; 4200 } 4201 } 4202 4203 return -ENOENT; 4204 } 4205 4206 static enum kcfg_type find_kcfg_type(const struct btf *btf, int id, 4207 bool *is_signed) 4208 { 4209 const struct btf_type *t; 4210 const char *name; 4211 4212 t = skip_mods_and_typedefs(btf, id, NULL); 4213 name = btf__name_by_offset(btf, t->name_off); 4214 4215 if (is_signed) 4216 *is_signed = false; 4217 switch (btf_kind(t)) { 4218 case BTF_KIND_INT: { 4219 int enc = btf_int_encoding(t); 4220 4221 if (enc & BTF_INT_BOOL) 4222 return t->size == 1 ? KCFG_BOOL : KCFG_UNKNOWN; 4223 if (is_signed) 4224 *is_signed = enc & BTF_INT_SIGNED; 4225 if (t->size == 1) 4226 return KCFG_CHAR; 4227 if (t->size < 1 || t->size > 8 || (t->size & (t->size - 1))) 4228 return KCFG_UNKNOWN; 4229 return KCFG_INT; 4230 } 4231 case BTF_KIND_ENUM: 4232 if (t->size != 4) 4233 return KCFG_UNKNOWN; 4234 if (strcmp(name, "libbpf_tristate")) 4235 return KCFG_UNKNOWN; 4236 return KCFG_TRISTATE; 4237 case BTF_KIND_ENUM64: 4238 if (strcmp(name, "libbpf_tristate")) 4239 return KCFG_UNKNOWN; 4240 return KCFG_TRISTATE; 4241 case BTF_KIND_ARRAY: 4242 if (btf_array(t)->nelems == 0) 4243 return KCFG_UNKNOWN; 4244 if (find_kcfg_type(btf, btf_array(t)->type, NULL) != KCFG_CHAR) 4245 return KCFG_UNKNOWN; 4246 return KCFG_CHAR_ARR; 4247 default: 4248 return KCFG_UNKNOWN; 4249 } 4250 } 4251 4252 static int cmp_externs(const void *_a, const void *_b) 4253 { 4254 const struct extern_desc *a = _a; 4255 const struct extern_desc *b = _b; 4256 4257 if (a->type != b->type) 4258 return a->type < b->type ? -1 : 1; 4259 4260 if (a->type == EXT_KCFG) { 4261 /* descending order by alignment requirements */ 4262 if (a->kcfg.align != b->kcfg.align) 4263 return a->kcfg.align > b->kcfg.align ? -1 : 1; 4264 /* ascending order by size, within same alignment class */ 4265 if (a->kcfg.sz != b->kcfg.sz) 4266 return a->kcfg.sz < b->kcfg.sz ? -1 : 1; 4267 } 4268 4269 /* resolve ties by name */ 4270 return strcmp(a->name, b->name); 4271 } 4272 4273 static int find_int_btf_id(const struct btf *btf) 4274 { 4275 const struct btf_type *t; 4276 int i, n; 4277 4278 n = btf__type_cnt(btf); 4279 for (i = 1; i < n; i++) { 4280 t = btf__type_by_id(btf, i); 4281 4282 if (btf_is_int(t) && btf_int_bits(t) == 32) 4283 return i; 4284 } 4285 4286 return 0; 4287 } 4288 4289 static int add_dummy_ksym_var(struct btf *btf) 4290 { 4291 int i, int_btf_id, sec_btf_id, dummy_var_btf_id; 4292 const struct btf_var_secinfo *vs; 4293 const struct btf_type *sec; 4294 4295 if (!btf) 4296 return 0; 4297 4298 sec_btf_id = btf__find_by_name_kind(btf, KSYMS_SEC, 4299 BTF_KIND_DATASEC); 4300 if (sec_btf_id < 0) 4301 return 0; 4302 4303 sec = btf__type_by_id(btf, sec_btf_id); 4304 vs = btf_var_secinfos(sec); 4305 for (i = 0; i < btf_vlen(sec); i++, vs++) { 4306 const struct btf_type *vt; 4307 4308 vt = btf__type_by_id(btf, vs->type); 4309 if (btf_is_func(vt)) 4310 break; 4311 } 4312 4313 /* No func in ksyms sec. No need to add dummy var. */ 4314 if (i == btf_vlen(sec)) 4315 return 0; 4316 4317 int_btf_id = find_int_btf_id(btf); 4318 dummy_var_btf_id = btf__add_var(btf, 4319 "dummy_ksym", 4320 BTF_VAR_GLOBAL_ALLOCATED, 4321 int_btf_id); 4322 if (dummy_var_btf_id < 0) 4323 pr_warn("cannot create a dummy_ksym var\n"); 4324 4325 return dummy_var_btf_id; 4326 } 4327 4328 static int bpf_object__collect_externs(struct bpf_object *obj) 4329 { 4330 struct btf_type *sec, *kcfg_sec = NULL, *ksym_sec = NULL; 4331 const struct btf_type *t; 4332 struct extern_desc *ext; 4333 int i, n, off, dummy_var_btf_id; 4334 const char *ext_name, *sec_name; 4335 size_t ext_essent_len; 4336 Elf_Scn *scn; 4337 Elf64_Shdr *sh; 4338 4339 if (!obj->efile.symbols) 4340 return 0; 4341 4342 scn = elf_sec_by_idx(obj, obj->efile.symbols_shndx); 4343 sh = elf_sec_hdr(obj, scn); 4344 if (!sh || sh->sh_entsize != sizeof(Elf64_Sym)) 4345 return -LIBBPF_ERRNO__FORMAT; 4346 4347 dummy_var_btf_id = add_dummy_ksym_var(obj->btf); 4348 if (dummy_var_btf_id < 0) 4349 return dummy_var_btf_id; 4350 4351 n = sh->sh_size / sh->sh_entsize; 4352 pr_debug("looking for externs among %d symbols...\n", n); 4353 4354 for (i = 0; i < n; i++) { 4355 Elf64_Sym *sym = elf_sym_by_idx(obj, i); 4356 4357 if (!sym) 4358 return -LIBBPF_ERRNO__FORMAT; 4359 if (!sym_is_extern(sym)) 4360 continue; 4361 ext_name = elf_sym_str(obj, sym->st_name); 4362 if (str_is_empty(ext_name)) 4363 continue; 4364 4365 ext = obj->externs; 4366 ext = libbpf_reallocarray(ext, obj->nr_extern + 1, sizeof(*ext)); 4367 if (!ext) 4368 return -ENOMEM; 4369 obj->externs = ext; 4370 ext = &ext[obj->nr_extern]; 4371 memset(ext, 0, sizeof(*ext)); 4372 obj->nr_extern++; 4373 4374 ext->btf_id = find_extern_btf_id(obj->btf, ext_name); 4375 if (ext->btf_id <= 0) { 4376 pr_warn("failed to find BTF for extern '%s': %d\n", 4377 ext_name, ext->btf_id); 4378 return ext->btf_id; 4379 } 4380 t = btf__type_by_id(obj->btf, ext->btf_id); 4381 ext->name = strdup(btf__name_by_offset(obj->btf, t->name_off)); 4382 if (!ext->name) 4383 return -ENOMEM; 4384 ext->sym_idx = i; 4385 ext->is_weak = ELF64_ST_BIND(sym->st_info) == STB_WEAK; 4386 4387 ext_essent_len = bpf_core_essential_name_len(ext->name); 4388 ext->essent_name = NULL; 4389 if (ext_essent_len != strlen(ext->name)) { 4390 ext->essent_name = strndup(ext->name, ext_essent_len); 4391 if (!ext->essent_name) 4392 return -ENOMEM; 4393 } 4394 4395 ext->sec_btf_id = find_extern_sec_btf_id(obj->btf, ext->btf_id); 4396 if (ext->sec_btf_id <= 0) { 4397 pr_warn("failed to find BTF for extern '%s' [%d] section: %d\n", 4398 ext_name, ext->btf_id, ext->sec_btf_id); 4399 return ext->sec_btf_id; 4400 } 4401 sec = (void *)btf__type_by_id(obj->btf, ext->sec_btf_id); 4402 sec_name = btf__name_by_offset(obj->btf, sec->name_off); 4403 4404 if (strcmp(sec_name, KCONFIG_SEC) == 0) { 4405 if (btf_is_func(t)) { 4406 pr_warn("extern function %s is unsupported under %s section\n", 4407 ext->name, KCONFIG_SEC); 4408 return -ENOTSUP; 4409 } 4410 kcfg_sec = sec; 4411 ext->type = EXT_KCFG; 4412 ext->kcfg.sz = btf__resolve_size(obj->btf, t->type); 4413 if (ext->kcfg.sz <= 0) { 4414 pr_warn("failed to resolve size of extern (kcfg) '%s': %d\n", 4415 ext_name, ext->kcfg.sz); 4416 return ext->kcfg.sz; 4417 } 4418 ext->kcfg.align = btf__align_of(obj->btf, t->type); 4419 if (ext->kcfg.align <= 0) { 4420 pr_warn("failed to determine alignment of extern (kcfg) '%s': %d\n", 4421 ext_name, ext->kcfg.align); 4422 return -EINVAL; 4423 } 4424 ext->kcfg.type = find_kcfg_type(obj->btf, t->type, 4425 &ext->kcfg.is_signed); 4426 if (ext->kcfg.type == KCFG_UNKNOWN) { 4427 pr_warn("extern (kcfg) '%s': type is unsupported\n", ext_name); 4428 return -ENOTSUP; 4429 } 4430 } else if (strcmp(sec_name, KSYMS_SEC) == 0) { 4431 ksym_sec = sec; 4432 ext->type = EXT_KSYM; 4433 skip_mods_and_typedefs(obj->btf, t->type, 4434 &ext->ksym.type_id); 4435 } else { 4436 pr_warn("unrecognized extern section '%s'\n", sec_name); 4437 return -ENOTSUP; 4438 } 4439 } 4440 pr_debug("collected %d externs total\n", obj->nr_extern); 4441 4442 if (!obj->nr_extern) 4443 return 0; 4444 4445 /* sort externs by type, for kcfg ones also by (align, size, name) */ 4446 qsort(obj->externs, obj->nr_extern, sizeof(*ext), cmp_externs); 4447 4448 /* for .ksyms section, we need to turn all externs into allocated 4449 * variables in BTF to pass kernel verification; we do this by 4450 * pretending that each extern is a 8-byte variable 4451 */ 4452 if (ksym_sec) { 4453 /* find existing 4-byte integer type in BTF to use for fake 4454 * extern variables in DATASEC 4455 */ 4456 int int_btf_id = find_int_btf_id(obj->btf); 4457 /* For extern function, a dummy_var added earlier 4458 * will be used to replace the vs->type and 4459 * its name string will be used to refill 4460 * the missing param's name. 4461 */ 4462 const struct btf_type *dummy_var; 4463 4464 dummy_var = btf__type_by_id(obj->btf, dummy_var_btf_id); 4465 for (i = 0; i < obj->nr_extern; i++) { 4466 ext = &obj->externs[i]; 4467 if (ext->type != EXT_KSYM) 4468 continue; 4469 pr_debug("extern (ksym) #%d: symbol %d, name %s\n", 4470 i, ext->sym_idx, ext->name); 4471 } 4472 4473 sec = ksym_sec; 4474 n = btf_vlen(sec); 4475 for (i = 0, off = 0; i < n; i++, off += sizeof(int)) { 4476 struct btf_var_secinfo *vs = btf_var_secinfos(sec) + i; 4477 struct btf_type *vt; 4478 4479 vt = (void *)btf__type_by_id(obj->btf, vs->type); 4480 ext_name = btf__name_by_offset(obj->btf, vt->name_off); 4481 ext = find_extern_by_name(obj, ext_name); 4482 if (!ext) { 4483 pr_warn("failed to find extern definition for BTF %s '%s'\n", 4484 btf_kind_str(vt), ext_name); 4485 return -ESRCH; 4486 } 4487 if (btf_is_func(vt)) { 4488 const struct btf_type *func_proto; 4489 struct btf_param *param; 4490 int j; 4491 4492 func_proto = btf__type_by_id(obj->btf, 4493 vt->type); 4494 param = btf_params(func_proto); 4495 /* Reuse the dummy_var string if the 4496 * func proto does not have param name. 4497 */ 4498 for (j = 0; j < btf_vlen(func_proto); j++) 4499 if (param[j].type && !param[j].name_off) 4500 param[j].name_off = 4501 dummy_var->name_off; 4502 vs->type = dummy_var_btf_id; 4503 vt->info &= ~0xffff; 4504 vt->info |= BTF_FUNC_GLOBAL; 4505 } else { 4506 btf_var(vt)->linkage = BTF_VAR_GLOBAL_ALLOCATED; 4507 vt->type = int_btf_id; 4508 } 4509 vs->offset = off; 4510 vs->size = sizeof(int); 4511 } 4512 sec->size = off; 4513 } 4514 4515 if (kcfg_sec) { 4516 sec = kcfg_sec; 4517 /* for kcfg externs calculate their offsets within a .kconfig map */ 4518 off = 0; 4519 for (i = 0; i < obj->nr_extern; i++) { 4520 ext = &obj->externs[i]; 4521 if (ext->type != EXT_KCFG) 4522 continue; 4523 4524 ext->kcfg.data_off = roundup(off, ext->kcfg.align); 4525 off = ext->kcfg.data_off + ext->kcfg.sz; 4526 pr_debug("extern (kcfg) #%d: symbol %d, off %d, name %s\n", 4527 i, ext->sym_idx, ext->kcfg.data_off, ext->name); 4528 } 4529 sec->size = off; 4530 n = btf_vlen(sec); 4531 for (i = 0; i < n; i++) { 4532 struct btf_var_secinfo *vs = btf_var_secinfos(sec) + i; 4533 4534 t = btf__type_by_id(obj->btf, vs->type); 4535 ext_name = btf__name_by_offset(obj->btf, t->name_off); 4536 ext = find_extern_by_name(obj, ext_name); 4537 if (!ext) { 4538 pr_warn("failed to find extern definition for BTF var '%s'\n", 4539 ext_name); 4540 return -ESRCH; 4541 } 4542 btf_var(t)->linkage = BTF_VAR_GLOBAL_ALLOCATED; 4543 vs->offset = ext->kcfg.data_off; 4544 } 4545 } 4546 return 0; 4547 } 4548 4549 static bool prog_is_subprog(const struct bpf_object *obj, const struct bpf_program *prog) 4550 { 4551 return prog->sec_idx == obj->efile.text_shndx; 4552 } 4553 4554 struct bpf_program * 4555 bpf_object__find_program_by_name(const struct bpf_object *obj, 4556 const char *name) 4557 { 4558 struct bpf_program *prog; 4559 4560 bpf_object__for_each_program(prog, obj) { 4561 if (prog_is_subprog(obj, prog)) 4562 continue; 4563 if (!strcmp(prog->name, name)) 4564 return prog; 4565 } 4566 return errno = ENOENT, NULL; 4567 } 4568 4569 static bool bpf_object__shndx_is_data(const struct bpf_object *obj, 4570 int shndx) 4571 { 4572 switch (obj->efile.secs[shndx].sec_type) { 4573 case SEC_BSS: 4574 case SEC_DATA: 4575 case SEC_RODATA: 4576 case SEC_PERCPU: 4577 return true; 4578 default: 4579 return false; 4580 } 4581 } 4582 4583 static bool bpf_object__shndx_is_maps(const struct bpf_object *obj, 4584 int shndx) 4585 { 4586 return shndx == obj->efile.btf_maps_shndx; 4587 } 4588 4589 static enum libbpf_map_type 4590 bpf_object__section_to_libbpf_map_type(const struct bpf_object *obj, int shndx) 4591 { 4592 if (shndx == obj->efile.symbols_shndx) 4593 return LIBBPF_MAP_KCONFIG; 4594 4595 switch (obj->efile.secs[shndx].sec_type) { 4596 case SEC_BSS: 4597 return LIBBPF_MAP_BSS; 4598 case SEC_DATA: 4599 return LIBBPF_MAP_DATA; 4600 case SEC_RODATA: 4601 return LIBBPF_MAP_RODATA; 4602 case SEC_PERCPU: 4603 return LIBBPF_MAP_PERCPU; 4604 default: 4605 return LIBBPF_MAP_UNSPEC; 4606 } 4607 } 4608 4609 static int bpf_prog_compute_hash(struct bpf_program *prog) 4610 { 4611 struct bpf_insn *purged; 4612 int i, err = 0; 4613 4614 purged = calloc(prog->insns_cnt, BPF_INSN_SZ); 4615 if (!purged) 4616 return -ENOMEM; 4617 4618 /* If relocations have been done, the map_fd needs to be 4619 * discarded for the digest calculation. 4620 */ 4621 for (i = 0; i < prog->insns_cnt; i++) { 4622 purged[i] = prog->insns[i]; 4623 if (purged[i].code == (BPF_LD | BPF_IMM | BPF_DW) && 4624 (purged[i].src_reg == BPF_PSEUDO_MAP_FD || 4625 purged[i].src_reg == BPF_PSEUDO_MAP_VALUE)) { 4626 purged[i].imm = 0; 4627 i++; 4628 if (i >= prog->insns_cnt || 4629 prog->insns[i].code != 0 || 4630 prog->insns[i].dst_reg != 0 || 4631 prog->insns[i].src_reg != 0 || 4632 prog->insns[i].off != 0) { 4633 err = -EINVAL; 4634 goto out; 4635 } 4636 purged[i] = prog->insns[i]; 4637 purged[i].imm = 0; 4638 } 4639 } 4640 libbpf_sha256(purged, prog->insns_cnt * sizeof(struct bpf_insn), 4641 prog->hash); 4642 out: 4643 free(purged); 4644 return err; 4645 } 4646 4647 static int bpf_program__record_reloc(struct bpf_program *prog, 4648 struct reloc_desc *reloc_desc, 4649 __u32 insn_idx, const char *sym_name, 4650 const Elf64_Sym *sym, const Elf64_Rel *rel) 4651 { 4652 struct bpf_insn *insn = &prog->insns[insn_idx]; 4653 size_t map_idx, nr_maps = prog->obj->nr_maps; 4654 struct bpf_object *obj = prog->obj; 4655 __u32 shdr_idx = sym->st_shndx; 4656 enum libbpf_map_type type; 4657 const char *sym_sec_name; 4658 struct bpf_map *map; 4659 4660 if (!is_call_insn(insn) && !is_ldimm64_insn(insn)) { 4661 pr_warn("prog '%s': invalid relo against '%s' for insns[%u].code 0x%x\n", 4662 prog->name, sym_name, insn_idx, insn->code); 4663 return -LIBBPF_ERRNO__RELOC; 4664 } 4665 4666 if (sym_is_extern(sym)) { 4667 int sym_idx = ELF64_R_SYM(rel->r_info); 4668 int i, n = obj->nr_extern; 4669 struct extern_desc *ext; 4670 4671 for (i = 0; i < n; i++) { 4672 ext = &obj->externs[i]; 4673 if (ext->sym_idx == sym_idx) 4674 break; 4675 } 4676 if (i >= n) { 4677 pr_warn("prog '%s': extern relo failed to find extern for '%s' (%d)\n", 4678 prog->name, sym_name, sym_idx); 4679 return -LIBBPF_ERRNO__RELOC; 4680 } 4681 pr_debug("prog '%s': found extern #%d '%s' (sym %d) for insn #%u\n", 4682 prog->name, i, ext->name, ext->sym_idx, insn_idx); 4683 if (insn->code == (BPF_JMP | BPF_CALL)) 4684 reloc_desc->type = RELO_EXTERN_CALL; 4685 else 4686 reloc_desc->type = RELO_EXTERN_LD64; 4687 reloc_desc->insn_idx = insn_idx; 4688 reloc_desc->ext_idx = i; 4689 return 0; 4690 } 4691 4692 /* sub-program call relocation */ 4693 if (is_call_insn(insn)) { 4694 if (insn->src_reg != BPF_PSEUDO_CALL) { 4695 pr_warn("prog '%s': incorrect bpf_call opcode\n", prog->name); 4696 return -LIBBPF_ERRNO__RELOC; 4697 } 4698 /* text_shndx can be 0, if no default "main" program exists */ 4699 if (!shdr_idx || shdr_idx != obj->efile.text_shndx) { 4700 sym_sec_name = elf_sec_name(obj, elf_sec_by_idx(obj, shdr_idx)); 4701 pr_warn("prog '%s': bad call relo against '%s' in section '%s'\n", 4702 prog->name, sym_name, sym_sec_name); 4703 return -LIBBPF_ERRNO__RELOC; 4704 } 4705 if (sym->st_value % BPF_INSN_SZ) { 4706 pr_warn("prog '%s': bad call relo against '%s' at offset %zu\n", 4707 prog->name, sym_name, (size_t)sym->st_value); 4708 return -LIBBPF_ERRNO__RELOC; 4709 } 4710 reloc_desc->type = RELO_CALL; 4711 reloc_desc->insn_idx = insn_idx; 4712 reloc_desc->sym_off = sym->st_value; 4713 return 0; 4714 } 4715 4716 if (!shdr_idx || shdr_idx >= SHN_LORESERVE) { 4717 pr_warn("prog '%s': invalid relo against '%s' in special section 0x%x; forgot to initialize global var?..\n", 4718 prog->name, sym_name, shdr_idx); 4719 return -LIBBPF_ERRNO__RELOC; 4720 } 4721 4722 /* loading subprog addresses */ 4723 if (sym_is_subprog(sym, obj->efile.text_shndx)) { 4724 /* global_func: sym->st_value = offset in the section, insn->imm = 0. 4725 * local_func: sym->st_value = 0, insn->imm = offset in the section. 4726 */ 4727 if ((sym->st_value % BPF_INSN_SZ) || (insn->imm % BPF_INSN_SZ)) { 4728 pr_warn("prog '%s': bad subprog addr relo against '%s' at offset %zu+%d\n", 4729 prog->name, sym_name, (size_t)sym->st_value, insn->imm); 4730 return -LIBBPF_ERRNO__RELOC; 4731 } 4732 4733 reloc_desc->type = RELO_SUBPROG_ADDR; 4734 reloc_desc->insn_idx = insn_idx; 4735 reloc_desc->sym_off = sym->st_value; 4736 return 0; 4737 } 4738 4739 type = bpf_object__section_to_libbpf_map_type(obj, shdr_idx); 4740 sym_sec_name = elf_sec_name(obj, elf_sec_by_idx(obj, shdr_idx)); 4741 4742 /* arena data relocation */ 4743 if (shdr_idx == obj->efile.arena_data_shndx) { 4744 if (obj->arena_map_idx < 0) { 4745 pr_warn("prog '%s': bad arena data relocation at insn %u, no arena maps defined\n", 4746 prog->name, insn_idx); 4747 return -LIBBPF_ERRNO__RELOC; 4748 } 4749 reloc_desc->type = RELO_DATA; 4750 reloc_desc->insn_idx = insn_idx; 4751 reloc_desc->map_idx = obj->arena_map_idx; 4752 reloc_desc->sym_off = sym->st_value; 4753 4754 map = &obj->maps[obj->arena_map_idx]; 4755 pr_debug("prog '%s': found arena map %d (%s, sec %d, off %zu) for insn %u\n", 4756 prog->name, obj->arena_map_idx, map->name, map->sec_idx, 4757 map->sec_offset, insn_idx); 4758 return 0; 4759 } 4760 4761 /* jump table data relocation */ 4762 if (shdr_idx == obj->efile.jumptables_data_shndx) { 4763 reloc_desc->type = RELO_INSN_ARRAY; 4764 reloc_desc->insn_idx = insn_idx; 4765 reloc_desc->map_idx = -1; 4766 reloc_desc->sym_off = sym->st_value; 4767 reloc_desc->sym_size = sym->st_size; 4768 return 0; 4769 } 4770 4771 /* generic map reference relocation */ 4772 if (type == LIBBPF_MAP_UNSPEC) { 4773 if (!bpf_object__shndx_is_maps(obj, shdr_idx)) { 4774 pr_warn("prog '%s': bad map relo against '%s' in section '%s'\n", 4775 prog->name, sym_name, sym_sec_name); 4776 return -LIBBPF_ERRNO__RELOC; 4777 } 4778 for (map_idx = 0; map_idx < nr_maps; map_idx++) { 4779 map = &obj->maps[map_idx]; 4780 if (map->libbpf_type != type || 4781 map->sec_idx != sym->st_shndx || 4782 map->sec_offset != sym->st_value) 4783 continue; 4784 pr_debug("prog '%s': found map %zu (%s, sec %d, off %zu) for insn #%u\n", 4785 prog->name, map_idx, map->name, map->sec_idx, 4786 map->sec_offset, insn_idx); 4787 break; 4788 } 4789 if (map_idx >= nr_maps) { 4790 pr_warn("prog '%s': map relo failed to find map for section '%s', off %zu\n", 4791 prog->name, sym_sec_name, (size_t)sym->st_value); 4792 return -LIBBPF_ERRNO__RELOC; 4793 } 4794 reloc_desc->type = RELO_LD64; 4795 reloc_desc->insn_idx = insn_idx; 4796 reloc_desc->map_idx = map_idx; 4797 reloc_desc->sym_off = 0; /* sym->st_value determines map_idx */ 4798 return 0; 4799 } 4800 4801 /* global data map relocation */ 4802 if (!bpf_object__shndx_is_data(obj, shdr_idx)) { 4803 pr_warn("prog '%s': bad data relo against section '%s'\n", 4804 prog->name, sym_sec_name); 4805 return -LIBBPF_ERRNO__RELOC; 4806 } 4807 for (map_idx = 0; map_idx < nr_maps; map_idx++) { 4808 map = &obj->maps[map_idx]; 4809 if (map->libbpf_type != type || map->sec_idx != sym->st_shndx) 4810 continue; 4811 pr_debug("prog '%s': found data map %zu (%s, sec %d, off %zu) for insn %u\n", 4812 prog->name, map_idx, map->name, map->sec_idx, 4813 map->sec_offset, insn_idx); 4814 break; 4815 } 4816 if (map_idx >= nr_maps) { 4817 pr_warn("prog '%s': data relo failed to find map for section '%s'\n", 4818 prog->name, sym_sec_name); 4819 return -LIBBPF_ERRNO__RELOC; 4820 } 4821 4822 reloc_desc->type = RELO_DATA; 4823 reloc_desc->insn_idx = insn_idx; 4824 reloc_desc->map_idx = map_idx; 4825 reloc_desc->sym_off = sym->st_value; 4826 return 0; 4827 } 4828 4829 static bool prog_contains_insn(const struct bpf_program *prog, size_t insn_idx) 4830 { 4831 return insn_idx >= prog->sec_insn_off && 4832 insn_idx < prog->sec_insn_off + prog->sec_insn_cnt; 4833 } 4834 4835 static struct bpf_program *find_prog_by_sec_insn(const struct bpf_object *obj, 4836 size_t sec_idx, size_t insn_idx) 4837 { 4838 int l = 0, r = obj->nr_programs - 1, m; 4839 struct bpf_program *prog; 4840 4841 if (!obj->nr_programs) 4842 return NULL; 4843 4844 while (l < r) { 4845 m = l + (r - l + 1) / 2; 4846 prog = &obj->programs[m]; 4847 4848 if (prog->sec_idx < sec_idx || 4849 (prog->sec_idx == sec_idx && prog->sec_insn_off <= insn_idx)) 4850 l = m; 4851 else 4852 r = m - 1; 4853 } 4854 /* matching program could be at index l, but it still might be the 4855 * wrong one, so we need to double check conditions for the last time 4856 */ 4857 prog = &obj->programs[l]; 4858 if (prog->sec_idx == sec_idx && prog_contains_insn(prog, insn_idx)) 4859 return prog; 4860 return NULL; 4861 } 4862 4863 static int 4864 bpf_object__collect_prog_relos(struct bpf_object *obj, Elf64_Shdr *shdr, Elf_Data *data) 4865 { 4866 const char *relo_sec_name, *sec_name; 4867 size_t sec_idx = shdr->sh_info, sym_idx; 4868 struct bpf_program *prog; 4869 struct reloc_desc *relos; 4870 int err, i, nrels; 4871 const char *sym_name; 4872 __u32 insn_idx; 4873 Elf_Scn *scn; 4874 Elf_Data *scn_data; 4875 Elf64_Sym *sym; 4876 Elf64_Rel *rel; 4877 4878 if (sec_idx >= obj->efile.sec_cnt) 4879 return -EINVAL; 4880 4881 scn = elf_sec_by_idx(obj, sec_idx); 4882 scn_data = elf_sec_data(obj, scn); 4883 if (!scn_data) 4884 return -LIBBPF_ERRNO__FORMAT; 4885 4886 relo_sec_name = elf_sec_str(obj, shdr->sh_name); 4887 sec_name = elf_sec_name(obj, scn); 4888 if (!relo_sec_name || !sec_name) 4889 return -EINVAL; 4890 4891 pr_debug("sec '%s': collecting relocation for section(%zu) '%s'\n", 4892 relo_sec_name, sec_idx, sec_name); 4893 nrels = shdr->sh_size / shdr->sh_entsize; 4894 4895 for (i = 0; i < nrels; i++) { 4896 rel = elf_rel_by_idx(data, i); 4897 if (!rel) { 4898 pr_warn("sec '%s': failed to get relo #%d\n", relo_sec_name, i); 4899 return -LIBBPF_ERRNO__FORMAT; 4900 } 4901 4902 sym_idx = ELF64_R_SYM(rel->r_info); 4903 sym = elf_sym_by_idx(obj, sym_idx); 4904 if (!sym) { 4905 pr_warn("sec '%s': symbol #%zu not found for relo #%d\n", 4906 relo_sec_name, sym_idx, i); 4907 return -LIBBPF_ERRNO__FORMAT; 4908 } 4909 4910 if (sym->st_shndx >= obj->efile.sec_cnt) { 4911 pr_warn("sec '%s': corrupted symbol #%zu pointing to invalid section #%zu for relo #%d\n", 4912 relo_sec_name, sym_idx, (size_t)sym->st_shndx, i); 4913 return -LIBBPF_ERRNO__FORMAT; 4914 } 4915 4916 if (rel->r_offset % BPF_INSN_SZ || rel->r_offset >= scn_data->d_size) { 4917 pr_warn("sec '%s': invalid offset 0x%zx for relo #%d\n", 4918 relo_sec_name, (size_t)rel->r_offset, i); 4919 return -LIBBPF_ERRNO__FORMAT; 4920 } 4921 4922 insn_idx = rel->r_offset / BPF_INSN_SZ; 4923 /* relocations against static functions are recorded as 4924 * relocations against the section that contains a function; 4925 * in such case, symbol will be STT_SECTION and sym.st_name 4926 * will point to empty string (0), so fetch section name 4927 * instead 4928 */ 4929 if (ELF64_ST_TYPE(sym->st_info) == STT_SECTION && sym->st_name == 0) 4930 sym_name = elf_sec_name(obj, elf_sec_by_idx(obj, sym->st_shndx)); 4931 else 4932 sym_name = elf_sym_str(obj, sym->st_name); 4933 sym_name = sym_name ?: "<?"; 4934 4935 pr_debug("sec '%s': relo #%d: insn #%u against '%s'\n", 4936 relo_sec_name, i, insn_idx, sym_name); 4937 4938 prog = find_prog_by_sec_insn(obj, sec_idx, insn_idx); 4939 if (!prog) { 4940 pr_debug("sec '%s': relo #%d: couldn't find program in section '%s' for insn #%u, probably overridden weak function, skipping...\n", 4941 relo_sec_name, i, sec_name, insn_idx); 4942 continue; 4943 } 4944 4945 relos = libbpf_reallocarray(prog->reloc_desc, 4946 prog->nr_reloc + 1, sizeof(*relos)); 4947 if (!relos) 4948 return -ENOMEM; 4949 prog->reloc_desc = relos; 4950 4951 /* adjust insn_idx to local BPF program frame of reference */ 4952 insn_idx -= prog->sec_insn_off; 4953 err = bpf_program__record_reloc(prog, &relos[prog->nr_reloc], 4954 insn_idx, sym_name, sym, rel); 4955 if (err) 4956 return err; 4957 4958 prog->nr_reloc++; 4959 } 4960 return 0; 4961 } 4962 4963 static int map_fill_btf_type_info(struct bpf_object *obj, struct bpf_map *map) 4964 { 4965 int id; 4966 4967 if (!obj->btf) 4968 return -ENOENT; 4969 4970 /* if it's BTF-defined map, we don't need to search for type IDs. 4971 * For struct_ops map, it does not need btf_key_type_id and 4972 * btf_value_type_id. 4973 */ 4974 if (map->sec_idx == obj->efile.btf_maps_shndx || bpf_map__is_struct_ops(map)) 4975 return 0; 4976 4977 /* 4978 * LLVM annotates global data differently in BTF, that is, 4979 * only as '.data', '.bss', '.percpu' or '.rodata'. 4980 */ 4981 if (!bpf_map__is_internal(map)) 4982 return -ENOENT; 4983 4984 id = btf__find_by_name(obj->btf, map->real_name); 4985 if (id < 0) 4986 return id; 4987 4988 map->btf_key_type_id = 0; 4989 map->btf_value_type_id = id; 4990 return 0; 4991 } 4992 4993 static int bpf_get_map_info_from_fdinfo(int fd, struct bpf_map_info *info) 4994 { 4995 char file[PATH_MAX], buff[4096]; 4996 FILE *fp; 4997 __u32 val; 4998 int err; 4999 5000 snprintf(file, sizeof(file), "/proc/%d/fdinfo/%d", getpid(), fd); 5001 memset(info, 0, sizeof(*info)); 5002 5003 fp = fopen(file, "re"); 5004 if (!fp) { 5005 err = -errno; 5006 pr_warn("failed to open %s: %s. No procfs support?\n", file, 5007 errstr(err)); 5008 return err; 5009 } 5010 5011 while (fgets(buff, sizeof(buff), fp)) { 5012 if (sscanf(buff, "map_type:\t%u", &val) == 1) 5013 info->type = val; 5014 else if (sscanf(buff, "key_size:\t%u", &val) == 1) 5015 info->key_size = val; 5016 else if (sscanf(buff, "value_size:\t%u", &val) == 1) 5017 info->value_size = val; 5018 else if (sscanf(buff, "max_entries:\t%u", &val) == 1) 5019 info->max_entries = val; 5020 else if (sscanf(buff, "map_flags:\t%x", &val) == 1) 5021 info->map_flags = val; 5022 } 5023 5024 fclose(fp); 5025 5026 return 0; 5027 } 5028 5029 static bool map_is_created(const struct bpf_map *map) 5030 { 5031 return map->obj->state >= OBJ_PREPARED || map->reused; 5032 } 5033 5034 bool bpf_map__autocreate(const struct bpf_map *map) 5035 { 5036 return map->autocreate; 5037 } 5038 5039 int bpf_map__set_autocreate(struct bpf_map *map, bool autocreate) 5040 { 5041 if (map_is_created(map)) 5042 return libbpf_err(-EBUSY); 5043 5044 map->autocreate = autocreate; 5045 return 0; 5046 } 5047 5048 int bpf_map__set_autoattach(struct bpf_map *map, bool autoattach) 5049 { 5050 if (!bpf_map__is_struct_ops(map)) 5051 return libbpf_err(-EINVAL); 5052 5053 map->autoattach = autoattach; 5054 return 0; 5055 } 5056 5057 bool bpf_map__autoattach(const struct bpf_map *map) 5058 { 5059 return map->autoattach; 5060 } 5061 5062 int bpf_map__reuse_fd(struct bpf_map *map, int fd) 5063 { 5064 struct bpf_map_info info; 5065 __u32 len = sizeof(info), name_len; 5066 int new_fd, err; 5067 char *new_name; 5068 5069 memset(&info, 0, len); 5070 err = bpf_map_get_info_by_fd(fd, &info, &len); 5071 if (err && errno == EINVAL) 5072 err = bpf_get_map_info_from_fdinfo(fd, &info); 5073 if (err) 5074 return libbpf_err(err); 5075 5076 name_len = strlen(info.name); 5077 if (name_len == BPF_OBJ_NAME_LEN - 1 && strncmp(map->name, info.name, name_len) == 0) 5078 new_name = strdup(map->name); 5079 else 5080 new_name = strdup(info.name); 5081 5082 if (!new_name) 5083 return libbpf_err(-errno); 5084 5085 /* 5086 * Like dup(), but make sure new FD is >= 3 and has O_CLOEXEC set. 5087 * This is similar to what we do in ensure_good_fd(), but without 5088 * closing original FD. 5089 */ 5090 new_fd = fcntl(fd, F_DUPFD_CLOEXEC, 3); 5091 if (new_fd < 0) { 5092 err = -errno; 5093 goto err_free_new_name; 5094 } 5095 5096 err = reuse_fd(map->fd, new_fd); 5097 if (err) 5098 goto err_free_new_name; 5099 5100 free(map->name); 5101 5102 map->name = new_name; 5103 map->def.type = info.type; 5104 map->def.key_size = info.key_size; 5105 map->def.value_size = info.value_size; 5106 map->def.max_entries = info.max_entries; 5107 map->def.map_flags = info.map_flags; 5108 map->btf_key_type_id = info.btf_key_type_id; 5109 map->btf_value_type_id = info.btf_value_type_id; 5110 map->reused = true; 5111 map->map_extra = info.map_extra; 5112 5113 return 0; 5114 5115 err_free_new_name: 5116 free(new_name); 5117 return libbpf_err(err); 5118 } 5119 5120 __u32 bpf_map__max_entries(const struct bpf_map *map) 5121 { 5122 return map->def.max_entries; 5123 } 5124 5125 struct bpf_map *bpf_map__inner_map(struct bpf_map *map) 5126 { 5127 if (!bpf_map_type__is_map_in_map(map->def.type)) 5128 return errno = EINVAL, NULL; 5129 5130 return map->inner_map; 5131 } 5132 5133 int bpf_map__set_max_entries(struct bpf_map *map, __u32 max_entries) 5134 { 5135 if (map_is_created(map)) 5136 return libbpf_err(-EBUSY); 5137 5138 map->def.max_entries = max_entries; 5139 5140 /* auto-adjust BPF ringbuf map max_entries to be a multiple of page size */ 5141 if (map_is_ringbuf(map)) 5142 map->def.max_entries = adjust_ringbuf_sz(map->def.max_entries); 5143 5144 return 0; 5145 } 5146 5147 static int bpf_object_prepare_token(struct bpf_object *obj) 5148 { 5149 const char *bpffs_path; 5150 int bpffs_fd = -1, token_fd, err; 5151 bool mandatory; 5152 enum libbpf_print_level level; 5153 5154 /* token is explicitly prevented */ 5155 if (obj->token_path && obj->token_path[0] == '\0') { 5156 pr_debug("object '%s': token is prevented, skipping...\n", obj->name); 5157 return 0; 5158 } 5159 5160 mandatory = obj->token_path != NULL; 5161 level = mandatory ? LIBBPF_WARN : LIBBPF_DEBUG; 5162 5163 bpffs_path = obj->token_path ?: BPF_FS_DEFAULT_PATH; 5164 bpffs_fd = open(bpffs_path, O_DIRECTORY, O_RDWR); 5165 if (bpffs_fd < 0) { 5166 err = -errno; 5167 __pr(level, "object '%s': failed (%s) to open BPF FS mount at '%s'%s\n", 5168 obj->name, errstr(err), bpffs_path, 5169 mandatory ? "" : ", skipping optional step..."); 5170 return mandatory ? err : 0; 5171 } 5172 5173 token_fd = bpf_token_create(bpffs_fd, 0); 5174 close(bpffs_fd); 5175 if (token_fd < 0) { 5176 if (!mandatory && token_fd == -ENOENT) { 5177 pr_debug("object '%s': BPF FS at '%s' doesn't have BPF token delegation set up, skipping...\n", 5178 obj->name, bpffs_path); 5179 return 0; 5180 } 5181 __pr(level, "object '%s': failed (%d) to create BPF token from '%s'%s\n", 5182 obj->name, token_fd, bpffs_path, 5183 mandatory ? "" : ", skipping optional step..."); 5184 return mandatory ? token_fd : 0; 5185 } 5186 5187 obj->feat_cache = calloc(1, sizeof(*obj->feat_cache)); 5188 if (!obj->feat_cache) { 5189 close(token_fd); 5190 return -ENOMEM; 5191 } 5192 5193 obj->token_fd = token_fd; 5194 obj->feat_cache->token_fd = token_fd; 5195 5196 return 0; 5197 } 5198 5199 static int 5200 bpf_object__probe_loading(struct bpf_object *obj) 5201 { 5202 struct bpf_insn insns[] = { 5203 BPF_MOV64_IMM(BPF_REG_0, 0), 5204 BPF_EXIT_INSN(), 5205 }; 5206 int ret, insn_cnt = ARRAY_SIZE(insns); 5207 5208 if (obj->gen_loader || obj->token_fd) 5209 return 0; 5210 5211 ret = bump_rlimit_memlock(); 5212 if (ret) 5213 pr_warn("Failed to bump RLIMIT_MEMLOCK (err = %s), you might need to do it explicitly!\n", 5214 errstr(ret)); 5215 5216 /* make sure basic loading works */ 5217 ret = bpf_prog_load(BPF_PROG_TYPE_SOCKET_FILTER, NULL, "GPL", insns, insn_cnt, NULL); 5218 if (ret < 0) 5219 ret = bpf_prog_load(BPF_PROG_TYPE_TRACEPOINT, NULL, "GPL", insns, insn_cnt, NULL); 5220 if (ret < 0) { 5221 ret = errno; 5222 pr_warn("Error in %s(): %s. Couldn't load trivial BPF program. Make sure your kernel supports BPF (CONFIG_BPF_SYSCALL=y) and/or that RLIMIT_MEMLOCK is set to big enough value.\n", 5223 __func__, errstr(ret)); 5224 return -ret; 5225 } 5226 close(ret); 5227 5228 return 0; 5229 } 5230 5231 bool kernel_supports(const struct bpf_object *obj, enum kern_feature_id feat_id) 5232 { 5233 if (obj->gen_loader) 5234 /* To generate loader program assume the latest kernel 5235 * to avoid doing extra prog_load, map_create syscalls. 5236 */ 5237 return true; 5238 5239 if (obj->feat_cache) 5240 return feat_supported(obj->feat_cache, feat_id); 5241 5242 return feat_supported(NULL, feat_id); 5243 } 5244 5245 /* Used in testing to simulate missing features. */ 5246 void bpf_object_set_feat_cache(struct bpf_object *obj, struct kern_feature_cache *cache) 5247 { 5248 if (obj->feat_cache) 5249 free(obj->feat_cache); 5250 obj->feat_cache = cache; 5251 } 5252 5253 static bool map_is_reuse_compat(const struct bpf_map *map, int map_fd) 5254 { 5255 struct bpf_map_info map_info; 5256 __u32 map_info_len = sizeof(map_info); 5257 int err; 5258 5259 memset(&map_info, 0, map_info_len); 5260 err = bpf_map_get_info_by_fd(map_fd, &map_info, &map_info_len); 5261 if (err && errno == EINVAL) 5262 err = bpf_get_map_info_from_fdinfo(map_fd, &map_info); 5263 if (err) { 5264 pr_warn("failed to get map info for map FD %d: %s\n", map_fd, 5265 errstr(err)); 5266 return false; 5267 } 5268 5269 /* 5270 * bpf_get_map_info_by_fd() for DEVMAP will always return flags with 5271 * BPF_F_RDONLY_PROG set, but it generally is not set at map creation time. 5272 * Thus, ignore the BPF_F_RDONLY_PROG flag in the flags returned from 5273 * bpf_get_map_info_by_fd() when checking for compatibility with an 5274 * existing DEVMAP. 5275 */ 5276 if (map->def.type == BPF_MAP_TYPE_DEVMAP || map->def.type == BPF_MAP_TYPE_DEVMAP_HASH) 5277 map_info.map_flags &= ~BPF_F_RDONLY_PROG; 5278 5279 return (map_info.type == map->def.type && 5280 map_info.key_size == map->def.key_size && 5281 map_info.value_size == map->def.value_size && 5282 map_info.max_entries == map->def.max_entries && 5283 map_info.map_flags == map->def.map_flags && 5284 map_info.map_extra == map->map_extra); 5285 } 5286 5287 static int 5288 bpf_object__reuse_map(struct bpf_map *map) 5289 { 5290 int err, pin_fd; 5291 5292 pin_fd = bpf_obj_get(map->pin_path); 5293 if (pin_fd < 0) { 5294 err = -errno; 5295 if (err == -ENOENT) { 5296 pr_debug("found no pinned map to reuse at '%s'\n", 5297 map->pin_path); 5298 return 0; 5299 } 5300 5301 pr_warn("couldn't retrieve pinned map '%s': %s\n", 5302 map->pin_path, errstr(err)); 5303 return err; 5304 } 5305 5306 if (!map_is_reuse_compat(map, pin_fd)) { 5307 pr_warn("couldn't reuse pinned map at '%s': parameter mismatch\n", 5308 map->pin_path); 5309 close(pin_fd); 5310 return -EINVAL; 5311 } 5312 5313 err = bpf_map__reuse_fd(map, pin_fd); 5314 close(pin_fd); 5315 if (err) 5316 return err; 5317 5318 map->pinned = true; 5319 pr_debug("reused pinned map at '%s'\n", map->pin_path); 5320 5321 return 0; 5322 } 5323 5324 static int 5325 bpf_object__populate_internal_map(struct bpf_object *obj, struct bpf_map *map) 5326 { 5327 enum libbpf_map_type map_type = map->libbpf_type; 5328 bool is_percpu = map_type == LIBBPF_MAP_PERCPU; 5329 const __u64 update_flags = is_percpu ? BPF_F_ALL_CPUS : 0; 5330 int err, zero = 0; 5331 size_t mmap_sz; 5332 5333 if (obj->gen_loader) { 5334 bpf_gen__map_update_elem(obj->gen_loader, map - obj->maps, 5335 map->mmaped, map->def.value_size, update_flags); 5336 if (map_type == LIBBPF_MAP_RODATA || map_type == LIBBPF_MAP_KCONFIG) 5337 bpf_gen__map_freeze(obj->gen_loader, map - obj->maps); 5338 return 0; 5339 } 5340 5341 err = bpf_map_update_elem(map->fd, &zero, map->mmaped, update_flags); 5342 if (err) { 5343 err = -errno; 5344 pr_warn("map '%s': failed to set initial contents: %s\n", 5345 bpf_map__name(map), errstr(err)); 5346 return err; 5347 } 5348 5349 /* Freeze .rodata and .kconfig map as read-only from syscall side. */ 5350 if (map_type == LIBBPF_MAP_RODATA || map_type == LIBBPF_MAP_KCONFIG) { 5351 err = bpf_map_freeze(map->fd); 5352 if (err) { 5353 err = -errno; 5354 pr_warn("map '%s': failed to freeze as read-only: %s\n", 5355 bpf_map__name(map), errstr(err)); 5356 return err; 5357 } 5358 } 5359 5360 /* Remap anonymous mmap()-ed "map initialization image" as 5361 * a BPF map-backed mmap()-ed memory, but preserving the same 5362 * memory address. This will cause kernel to change process' 5363 * page table to point to a different piece of kernel memory, 5364 * but from userspace point of view memory address (and its 5365 * contents, being identical at this point) will stay the 5366 * same. This mapping will be released by bpf_object__close() 5367 * as per normal clean up procedure. 5368 */ 5369 mmap_sz = bpf_map_mmap_sz(map); 5370 if (map->def.map_flags & BPF_F_MMAPABLE) { 5371 void *mmaped; 5372 int prot; 5373 5374 if (map->def.map_flags & BPF_F_RDONLY_PROG) 5375 prot = PROT_READ; 5376 else 5377 prot = PROT_READ | PROT_WRITE; 5378 mmaped = mmap(map->mmaped, mmap_sz, prot, MAP_SHARED | MAP_FIXED, map->fd, 0); 5379 if (mmaped == MAP_FAILED) { 5380 err = -errno; 5381 pr_warn("map '%s': failed to re-mmap() contents: %s\n", 5382 bpf_map__name(map), errstr(err)); 5383 return err; 5384 } 5385 map->mmaped = mmaped; 5386 } else if (is_percpu) { 5387 if (mprotect(map->mmaped, mmap_sz, PROT_READ)) { 5388 err = -errno; 5389 pr_warn("map '%s': failed to mprotect() contents: %s\n", 5390 bpf_map__name(map), errstr(err)); 5391 return err; 5392 } 5393 } else if (map->mmaped) { 5394 munmap(map->mmaped, mmap_sz); 5395 map->mmaped = NULL; 5396 } 5397 5398 return 0; 5399 } 5400 5401 static void bpf_map__destroy(struct bpf_map *map); 5402 5403 static int bpf_object__create_map(struct bpf_object *obj, struct bpf_map *map, bool is_inner) 5404 { 5405 LIBBPF_OPTS(bpf_map_create_opts, create_attr); 5406 struct bpf_map_def *def = &map->def; 5407 const char *map_name = NULL; 5408 int err = 0, map_fd; 5409 5410 if (kernel_supports(obj, FEAT_PROG_NAME)) 5411 map_name = map->name; 5412 create_attr.map_ifindex = map->map_ifindex; 5413 create_attr.map_flags = def->map_flags; 5414 create_attr.numa_node = map->numa_node; 5415 create_attr.map_extra = map->map_extra; 5416 create_attr.token_fd = obj->token_fd; 5417 if (obj->token_fd) 5418 create_attr.map_flags |= BPF_F_TOKEN_FD; 5419 if (map->excl_prog) { 5420 err = bpf_prog_compute_hash(map->excl_prog); 5421 if (err) 5422 return err; 5423 5424 create_attr.excl_prog_hash = map->excl_prog->hash; 5425 create_attr.excl_prog_hash_size = SHA256_DIGEST_LENGTH; 5426 } 5427 5428 if (bpf_map__is_struct_ops(map)) { 5429 create_attr.btf_vmlinux_value_type_id = map->btf_vmlinux_value_type_id; 5430 if (map->mod_btf_fd >= 0) { 5431 create_attr.value_type_btf_obj_fd = map->mod_btf_fd; 5432 create_attr.map_flags |= BPF_F_VTYPE_BTF_OBJ_FD; 5433 } 5434 } 5435 5436 if (obj->btf && btf__fd(obj->btf) >= 0) { 5437 create_attr.btf_fd = btf__fd(obj->btf); 5438 create_attr.btf_key_type_id = map->btf_key_type_id; 5439 create_attr.btf_value_type_id = map->btf_value_type_id; 5440 } 5441 5442 if (bpf_map_type__is_map_in_map(def->type)) { 5443 if (map->inner_map) { 5444 err = map_set_def_max_entries(map->inner_map); 5445 if (err) 5446 return err; 5447 err = bpf_object__create_map(obj, map->inner_map, true); 5448 if (err) { 5449 pr_warn("map '%s': failed to create inner map: %s\n", 5450 map->name, errstr(err)); 5451 return err; 5452 } 5453 map->inner_map_fd = map->inner_map->fd; 5454 } 5455 if (map->inner_map_fd >= 0) 5456 create_attr.inner_map_fd = map->inner_map_fd; 5457 } 5458 5459 switch (def->type) { 5460 case BPF_MAP_TYPE_PERF_EVENT_ARRAY: 5461 case BPF_MAP_TYPE_CGROUP_ARRAY: 5462 case BPF_MAP_TYPE_STACK_TRACE: 5463 case BPF_MAP_TYPE_ARRAY_OF_MAPS: 5464 case BPF_MAP_TYPE_HASH_OF_MAPS: 5465 case BPF_MAP_TYPE_DEVMAP: 5466 case BPF_MAP_TYPE_DEVMAP_HASH: 5467 case BPF_MAP_TYPE_CPUMAP: 5468 case BPF_MAP_TYPE_XSKMAP: 5469 case BPF_MAP_TYPE_SOCKMAP: 5470 case BPF_MAP_TYPE_SOCKHASH: 5471 case BPF_MAP_TYPE_QUEUE: 5472 case BPF_MAP_TYPE_STACK: 5473 case BPF_MAP_TYPE_ARENA: 5474 create_attr.btf_fd = 0; 5475 create_attr.btf_key_type_id = 0; 5476 create_attr.btf_value_type_id = 0; 5477 map->btf_key_type_id = 0; 5478 map->btf_value_type_id = 0; 5479 break; 5480 case BPF_MAP_TYPE_STRUCT_OPS: 5481 create_attr.btf_value_type_id = 0; 5482 break; 5483 default: 5484 break; 5485 } 5486 5487 if (obj->gen_loader) { 5488 bpf_gen__map_create(obj->gen_loader, def->type, map_name, 5489 def->key_size, def->value_size, def->max_entries, 5490 &create_attr, is_inner ? -1 : map - obj->maps); 5491 /* We keep pretenting we have valid FD to pass various fd >= 0 5492 * checks by just keeping original placeholder FDs in place. 5493 * See bpf_object__add_map() comment. 5494 * This placeholder fd will not be used with any syscall and 5495 * will be reset to -1 eventually. 5496 */ 5497 map_fd = map->fd; 5498 } else { 5499 map_fd = bpf_map_create(def->type, map_name, 5500 def->key_size, def->value_size, 5501 def->max_entries, &create_attr); 5502 } 5503 if (map_fd < 0 && (create_attr.btf_key_type_id || create_attr.btf_value_type_id)) { 5504 err = -errno; 5505 pr_warn("Error in bpf_create_map_xattr(%s): %s. Retrying without BTF.\n", 5506 map->name, errstr(err)); 5507 create_attr.btf_fd = 0; 5508 create_attr.btf_key_type_id = 0; 5509 create_attr.btf_value_type_id = 0; 5510 map->btf_key_type_id = 0; 5511 map->btf_value_type_id = 0; 5512 map_fd = bpf_map_create(def->type, map_name, 5513 def->key_size, def->value_size, 5514 def->max_entries, &create_attr); 5515 } 5516 5517 if (bpf_map_type__is_map_in_map(def->type) && map->inner_map) { 5518 if (obj->gen_loader) 5519 map->inner_map->fd = -1; 5520 bpf_map__destroy(map->inner_map); 5521 zfree(&map->inner_map); 5522 } 5523 5524 if (map_fd < 0) 5525 return map_fd; 5526 5527 /* obj->gen_loader case, prevent reuse_fd() from closing map_fd */ 5528 if (map->fd == map_fd) 5529 return 0; 5530 5531 /* Keep placeholder FD value but now point it to the BPF map object. 5532 * This way everything that relied on this map's FD (e.g., relocated 5533 * ldimm64 instructions) will stay valid and won't need adjustments. 5534 * map->fd stays valid but now point to what map_fd points to. 5535 */ 5536 return reuse_fd(map->fd, map_fd); 5537 } 5538 5539 static int init_map_in_map_slots(struct bpf_object *obj, struct bpf_map *map) 5540 { 5541 const struct bpf_map *targ_map; 5542 unsigned int i; 5543 int fd, err = 0; 5544 5545 for (i = 0; i < map->init_slots_sz; i++) { 5546 if (!map->init_slots[i]) 5547 continue; 5548 5549 targ_map = map->init_slots[i]; 5550 fd = targ_map->fd; 5551 5552 if (obj->gen_loader) { 5553 bpf_gen__populate_outer_map(obj->gen_loader, 5554 map - obj->maps, i, 5555 targ_map - obj->maps); 5556 } else { 5557 err = bpf_map_update_elem(map->fd, &i, &fd, 0); 5558 } 5559 if (err) { 5560 err = -errno; 5561 pr_warn("map '%s': failed to initialize slot [%u] to map '%s' fd=%d: %s\n", 5562 map->name, i, targ_map->name, fd, errstr(err)); 5563 return err; 5564 } 5565 pr_debug("map '%s': slot [%u] set to map '%s' fd=%d\n", 5566 map->name, i, targ_map->name, fd); 5567 } 5568 5569 zfree(&map->init_slots); 5570 map->init_slots_sz = 0; 5571 5572 return 0; 5573 } 5574 5575 static int init_prog_array_slots(struct bpf_object *obj, struct bpf_map *map) 5576 { 5577 const struct bpf_program *targ_prog; 5578 unsigned int i; 5579 int fd, err; 5580 5581 if (obj->gen_loader) 5582 return -ENOTSUP; 5583 5584 for (i = 0; i < map->init_slots_sz; i++) { 5585 if (!map->init_slots[i]) 5586 continue; 5587 5588 targ_prog = map->init_slots[i]; 5589 fd = bpf_program__fd(targ_prog); 5590 5591 err = bpf_map_update_elem(map->fd, &i, &fd, 0); 5592 if (err) { 5593 err = -errno; 5594 pr_warn("map '%s': failed to initialize slot [%u] to prog '%s' fd=%d: %s\n", 5595 map->name, i, targ_prog->name, fd, errstr(err)); 5596 return err; 5597 } 5598 pr_debug("map '%s': slot [%u] set to prog '%s' fd=%d\n", 5599 map->name, i, targ_prog->name, fd); 5600 } 5601 5602 zfree(&map->init_slots); 5603 map->init_slots_sz = 0; 5604 5605 return 0; 5606 } 5607 5608 static int bpf_object_init_prog_arrays(struct bpf_object *obj) 5609 { 5610 struct bpf_map *map; 5611 int i, err; 5612 5613 for (i = 0; i < obj->nr_maps; i++) { 5614 map = &obj->maps[i]; 5615 5616 if (!map->init_slots_sz || map->def.type != BPF_MAP_TYPE_PROG_ARRAY) 5617 continue; 5618 5619 err = init_prog_array_slots(obj, map); 5620 if (err < 0) 5621 return err; 5622 } 5623 return 0; 5624 } 5625 5626 static int map_set_def_max_entries(struct bpf_map *map) 5627 { 5628 if (map->def.type == BPF_MAP_TYPE_PERF_EVENT_ARRAY && !map->def.max_entries) { 5629 int nr_cpus; 5630 5631 nr_cpus = libbpf_num_possible_cpus(); 5632 if (nr_cpus < 0) { 5633 pr_warn("map '%s': failed to determine number of system CPUs: %d\n", 5634 map->name, nr_cpus); 5635 return nr_cpus; 5636 } 5637 pr_debug("map '%s': setting size to %d\n", map->name, nr_cpus); 5638 map->def.max_entries = nr_cpus; 5639 } 5640 5641 return 0; 5642 } 5643 5644 static int 5645 bpf_object__create_maps(struct bpf_object *obj) 5646 { 5647 struct bpf_map *map; 5648 unsigned int i, j; 5649 int err; 5650 bool retried; 5651 5652 for (i = 0; i < obj->nr_maps; i++) { 5653 map = &obj->maps[i]; 5654 5655 /* To support old kernels, we skip creating global data maps 5656 * (.rodata, .data, .kconfig, etc); later on, during program 5657 * loading, if we detect that at least one of the to-be-loaded 5658 * programs is referencing any global data map, we'll error 5659 * out with program name and relocation index logged. 5660 * This approach allows to accommodate Clang emitting 5661 * unnecessary .rodata.str1.1 sections for string literals, 5662 * but also it allows to have CO-RE applications that use 5663 * global variables in some of BPF programs, but not others. 5664 * If those global variable-using programs are not loaded at 5665 * runtime due to bpf_program__set_autoload(prog, false), 5666 * bpf_object loading will succeed just fine even on old 5667 * kernels. 5668 * Same skipping applies to percpu data. 5669 */ 5670 if (bpf_map__is_internal(map)) { 5671 bool is_percpu = map->libbpf_type == LIBBPF_MAP_PERCPU; 5672 enum kern_feature_id feat_id; 5673 5674 feat_id = is_percpu ? FEAT_PERCPU_DATA : FEAT_GLOBAL_DATA; 5675 if (!kernel_supports(obj, feat_id)) 5676 map->autocreate = false; 5677 } 5678 5679 if (!map->autocreate) { 5680 pr_debug("map '%s': skipped auto-creating...\n", map->name); 5681 continue; 5682 } 5683 5684 err = map_set_def_max_entries(map); 5685 if (err) 5686 goto err_out; 5687 5688 retried = false; 5689 retry: 5690 if (map->pin_path) { 5691 err = bpf_object__reuse_map(map); 5692 if (err) { 5693 pr_warn("map '%s': error reusing pinned map\n", 5694 map->name); 5695 goto err_out; 5696 } 5697 if (retried && map->fd < 0) { 5698 pr_warn("map '%s': cannot find pinned map\n", 5699 map->name); 5700 err = -ENOENT; 5701 goto err_out; 5702 } 5703 } 5704 5705 if (map->reused) { 5706 pr_debug("map '%s': skipping creation (preset fd=%d)\n", 5707 map->name, map->fd); 5708 } else { 5709 err = bpf_object__create_map(obj, map, false); 5710 if (err) 5711 goto err_out; 5712 5713 pr_debug("map '%s': created successfully, fd=%d\n", 5714 map->name, map->fd); 5715 5716 if (bpf_map__is_internal(map)) { 5717 err = bpf_object__populate_internal_map(obj, map); 5718 if (err < 0) 5719 goto err_out; 5720 } else if (map->def.type == BPF_MAP_TYPE_ARENA) { 5721 map->mmaped = mmap((void *)(long)map->map_extra, 5722 bpf_map_mmap_sz(map), PROT_READ | PROT_WRITE, 5723 map->map_extra ? MAP_SHARED | MAP_FIXED : MAP_SHARED, 5724 map->fd, 0); 5725 if (map->mmaped == MAP_FAILED) { 5726 err = -errno; 5727 map->mmaped = NULL; 5728 pr_warn("map '%s': failed to mmap arena: %s\n", 5729 map->name, errstr(err)); 5730 return err; 5731 } 5732 if (obj->arena_data) { 5733 memcpy(map->mmaped + obj->arena_data_off, obj->arena_data, 5734 obj->arena_data_sz); 5735 zfree(&obj->arena_data); 5736 } 5737 } 5738 if (map->init_slots_sz && map->def.type != BPF_MAP_TYPE_PROG_ARRAY) { 5739 err = init_map_in_map_slots(obj, map); 5740 if (err < 0) 5741 goto err_out; 5742 } 5743 } 5744 5745 if (map->pin_path && !map->pinned) { 5746 err = bpf_map__pin(map, NULL); 5747 if (err) { 5748 if (!retried && err == -EEXIST) { 5749 retried = true; 5750 goto retry; 5751 } 5752 pr_warn("map '%s': failed to auto-pin at '%s': %s\n", 5753 map->name, map->pin_path, errstr(err)); 5754 goto err_out; 5755 } 5756 } 5757 } 5758 5759 return 0; 5760 5761 err_out: 5762 pr_warn("map '%s': failed to create: %s\n", map->name, errstr(err)); 5763 pr_perm_msg(err); 5764 for (j = 0; j < i; j++) 5765 zclose(obj->maps[j].fd); 5766 return err; 5767 } 5768 5769 static bool bpf_core_is_flavor_sep(const char *s) 5770 { 5771 /* check X___Y name pattern, where X and Y are not underscores */ 5772 return s[0] != '_' && /* X */ 5773 s[1] == '_' && s[2] == '_' && s[3] == '_' && /* ___ */ 5774 s[4] != '_'; /* Y */ 5775 } 5776 5777 /* Given 'some_struct_name___with_flavor' return the length of a name prefix 5778 * before last triple underscore. Struct name part after last triple 5779 * underscore is ignored by BPF CO-RE relocation during relocation matching. 5780 */ 5781 size_t bpf_core_essential_name_len(const char *name) 5782 { 5783 size_t n = strlen(name); 5784 int i; 5785 5786 for (i = n - 5; i >= 0; i--) { 5787 if (bpf_core_is_flavor_sep(name + i)) 5788 return i + 1; 5789 } 5790 return n; 5791 } 5792 5793 void bpf_core_free_cands(struct bpf_core_cand_list *cands) 5794 { 5795 if (!cands) 5796 return; 5797 5798 free(cands->cands); 5799 free(cands); 5800 } 5801 5802 int bpf_core_add_cands(struct bpf_core_cand *local_cand, 5803 size_t local_essent_len, 5804 const struct btf *targ_btf, 5805 const char *targ_btf_name, 5806 int targ_start_id, 5807 struct bpf_core_cand_list *cands) 5808 { 5809 struct bpf_core_cand *new_cands, *cand; 5810 const struct btf_type *t, *local_t; 5811 const char *targ_name, *local_name; 5812 size_t targ_essent_len; 5813 int n, i; 5814 5815 local_t = btf__type_by_id(local_cand->btf, local_cand->id); 5816 local_name = btf__str_by_offset(local_cand->btf, local_t->name_off); 5817 5818 n = btf__type_cnt(targ_btf); 5819 for (i = targ_start_id; i < n; i++) { 5820 t = btf__type_by_id(targ_btf, i); 5821 if (!btf_kind_core_compat(t, local_t)) 5822 continue; 5823 5824 targ_name = btf__name_by_offset(targ_btf, t->name_off); 5825 if (str_is_empty(targ_name)) 5826 continue; 5827 5828 targ_essent_len = bpf_core_essential_name_len(targ_name); 5829 if (targ_essent_len != local_essent_len) 5830 continue; 5831 5832 if (strncmp(local_name, targ_name, local_essent_len) != 0) 5833 continue; 5834 5835 pr_debug("CO-RE relocating [%u] %s %s: found target candidate [%d] %s %s in [%s]\n", 5836 local_cand->id, btf_kind_str(local_t), 5837 local_name, i, btf_kind_str(t), targ_name, 5838 targ_btf_name); 5839 new_cands = libbpf_reallocarray(cands->cands, cands->len + 1, 5840 sizeof(*cands->cands)); 5841 if (!new_cands) 5842 return -ENOMEM; 5843 5844 cand = &new_cands[cands->len]; 5845 cand->btf = targ_btf; 5846 cand->id = i; 5847 5848 cands->cands = new_cands; 5849 cands->len++; 5850 } 5851 return 0; 5852 } 5853 5854 static int load_module_btfs(struct bpf_object *obj) 5855 { 5856 struct bpf_btf_info info; 5857 struct module_btf *mod_btf; 5858 struct btf *btf; 5859 char name[64]; 5860 __u32 id = 0, len; 5861 int err, fd; 5862 5863 if (obj->btf_modules_loaded) 5864 return 0; 5865 5866 if (obj->gen_loader) 5867 return 0; 5868 5869 /* don't do this again, even if we find no module BTFs */ 5870 obj->btf_modules_loaded = true; 5871 5872 /* kernel too old to support module BTFs */ 5873 if (!kernel_supports(obj, FEAT_MODULE_BTF)) 5874 return 0; 5875 5876 while (true) { 5877 err = bpf_btf_get_next_id(id, &id); 5878 if (err && errno == ENOENT) 5879 return 0; 5880 if (err && errno == EPERM) { 5881 pr_debug("skipping module BTFs loading, missing privileges\n"); 5882 return 0; 5883 } 5884 if (err) { 5885 err = -errno; 5886 pr_warn("failed to iterate BTF objects: %s\n", errstr(err)); 5887 return err; 5888 } 5889 5890 fd = bpf_btf_get_fd_by_id(id); 5891 if (fd < 0) { 5892 if (errno == ENOENT) 5893 continue; /* expected race: BTF was unloaded */ 5894 err = -errno; 5895 pr_warn("failed to get BTF object #%u FD: %s\n", id, errstr(err)); 5896 return err; 5897 } 5898 5899 len = sizeof(info); 5900 memset(&info, 0, sizeof(info)); 5901 info.name = ptr_to_u64(name); 5902 info.name_len = sizeof(name); 5903 5904 btf = NULL; 5905 err = bpf_btf_get_info_by_fd(fd, &info, &len); 5906 if (err) { 5907 err = -errno; 5908 pr_warn("failed to get BTF object #%u info: %s\n", id, errstr(err)); 5909 break; 5910 } 5911 5912 /* ignore non-module BTFs */ 5913 if (!info.kernel_btf || strcmp(name, "vmlinux") == 0) { 5914 close(fd); 5915 continue; 5916 } 5917 5918 btf = btf_get_from_fd(fd, obj->btf_vmlinux); 5919 err = libbpf_get_error(btf); 5920 if (err) { 5921 pr_warn("failed to load module [%s]'s BTF object #%u: %s\n", 5922 name, id, errstr(err)); 5923 break; 5924 } 5925 5926 err = libbpf_ensure_mem((void **)&obj->btf_modules, &obj->btf_module_cap, 5927 sizeof(*obj->btf_modules), obj->btf_module_cnt + 1); 5928 if (err) 5929 break; 5930 5931 mod_btf = &obj->btf_modules[obj->btf_module_cnt]; 5932 5933 mod_btf->btf = btf; 5934 mod_btf->id = id; 5935 mod_btf->fd = fd; 5936 mod_btf->name = strdup(name); 5937 if (!mod_btf->name) { 5938 err = -ENOMEM; 5939 break; 5940 } 5941 obj->btf_module_cnt++; 5942 } 5943 5944 if (err) { 5945 btf__free(btf); 5946 close(fd); 5947 } 5948 return err; 5949 } 5950 5951 static struct bpf_core_cand_list * 5952 bpf_core_find_cands(struct bpf_object *obj, const struct btf *local_btf, __u32 local_type_id) 5953 { 5954 struct bpf_core_cand local_cand = {}; 5955 struct bpf_core_cand_list *cands; 5956 const struct btf *main_btf; 5957 const struct btf_type *local_t; 5958 const char *local_name; 5959 size_t local_essent_len; 5960 int err, i; 5961 5962 local_cand.btf = local_btf; 5963 local_cand.id = local_type_id; 5964 local_t = btf__type_by_id(local_btf, local_type_id); 5965 if (!local_t) 5966 return ERR_PTR(-EINVAL); 5967 5968 local_name = btf__name_by_offset(local_btf, local_t->name_off); 5969 if (str_is_empty(local_name)) 5970 return ERR_PTR(-EINVAL); 5971 local_essent_len = bpf_core_essential_name_len(local_name); 5972 5973 cands = calloc(1, sizeof(*cands)); 5974 if (!cands) 5975 return ERR_PTR(-ENOMEM); 5976 5977 /* Attempt to find target candidates in vmlinux BTF first */ 5978 main_btf = obj->btf_vmlinux_override ?: obj->btf_vmlinux; 5979 err = bpf_core_add_cands(&local_cand, local_essent_len, main_btf, "vmlinux", 1, cands); 5980 if (err) 5981 goto err_out; 5982 5983 /* if vmlinux BTF has any candidate, don't got for module BTFs */ 5984 if (cands->len) 5985 return cands; 5986 5987 /* if vmlinux BTF was overridden, don't attempt to load module BTFs */ 5988 if (obj->btf_vmlinux_override) 5989 return cands; 5990 5991 /* now look through module BTFs, trying to still find candidates */ 5992 err = load_module_btfs(obj); 5993 if (err) 5994 goto err_out; 5995 5996 for (i = 0; i < obj->btf_module_cnt; i++) { 5997 err = bpf_core_add_cands(&local_cand, local_essent_len, 5998 obj->btf_modules[i].btf, 5999 obj->btf_modules[i].name, 6000 btf__type_cnt(obj->btf_vmlinux), 6001 cands); 6002 if (err) 6003 goto err_out; 6004 } 6005 6006 return cands; 6007 err_out: 6008 bpf_core_free_cands(cands); 6009 return ERR_PTR(err); 6010 } 6011 6012 /* Check local and target types for compatibility. This check is used for 6013 * type-based CO-RE relocations and follow slightly different rules than 6014 * field-based relocations. This function assumes that root types were already 6015 * checked for name match. Beyond that initial root-level name check, names 6016 * are completely ignored. Compatibility rules are as follows: 6017 * - any two STRUCTs/UNIONs/FWDs/ENUMs/INTs are considered compatible, but 6018 * kind should match for local and target types (i.e., STRUCT is not 6019 * compatible with UNION); 6020 * - for ENUMs, the size is ignored; 6021 * - for INT, size and signedness are ignored; 6022 * - for ARRAY, dimensionality is ignored, element types are checked for 6023 * compatibility recursively; 6024 * - CONST/VOLATILE/RESTRICT modifiers are ignored; 6025 * - TYPEDEFs/PTRs are compatible if types they pointing to are compatible; 6026 * - FUNC_PROTOs are compatible if they have compatible signature: same 6027 * number of input args and compatible return and argument types. 6028 * These rules are not set in stone and probably will be adjusted as we get 6029 * more experience with using BPF CO-RE relocations. 6030 */ 6031 int bpf_core_types_are_compat(const struct btf *local_btf, __u32 local_id, 6032 const struct btf *targ_btf, __u32 targ_id) 6033 { 6034 return __bpf_core_types_are_compat(local_btf, local_id, targ_btf, targ_id, 32); 6035 } 6036 6037 int bpf_core_types_match(const struct btf *local_btf, __u32 local_id, 6038 const struct btf *targ_btf, __u32 targ_id) 6039 { 6040 return __bpf_core_types_match(local_btf, local_id, targ_btf, targ_id, false, 32); 6041 } 6042 6043 static size_t bpf_core_hash_fn(const long key, void *ctx) 6044 { 6045 return key; 6046 } 6047 6048 static bool bpf_core_equal_fn(const long k1, const long k2, void *ctx) 6049 { 6050 return k1 == k2; 6051 } 6052 6053 static int record_relo_core(struct bpf_program *prog, 6054 const struct bpf_core_relo *core_relo, int insn_idx) 6055 { 6056 struct reloc_desc *relos, *relo; 6057 6058 relos = libbpf_reallocarray(prog->reloc_desc, 6059 prog->nr_reloc + 1, sizeof(*relos)); 6060 if (!relos) 6061 return -ENOMEM; 6062 relo = &relos[prog->nr_reloc]; 6063 relo->type = RELO_CORE; 6064 relo->insn_idx = insn_idx; 6065 relo->core_relo = core_relo; 6066 prog->reloc_desc = relos; 6067 prog->nr_reloc++; 6068 return 0; 6069 } 6070 6071 static const struct bpf_core_relo *find_relo_core(struct bpf_program *prog, int insn_idx) 6072 { 6073 struct reloc_desc *relo; 6074 int i; 6075 6076 for (i = 0; i < prog->nr_reloc; i++) { 6077 relo = &prog->reloc_desc[i]; 6078 if (relo->type != RELO_CORE || relo->insn_idx != insn_idx) 6079 continue; 6080 6081 return relo->core_relo; 6082 } 6083 6084 return NULL; 6085 } 6086 6087 static int bpf_core_resolve_relo(struct bpf_program *prog, 6088 const struct bpf_core_relo *relo, 6089 int relo_idx, 6090 const struct btf *local_btf, 6091 struct hashmap *cand_cache, 6092 struct bpf_core_relo_res *targ_res) 6093 { 6094 struct bpf_core_spec specs_scratch[3] = {}; 6095 struct bpf_core_cand_list *cands = NULL; 6096 const char *prog_name = prog->name; 6097 const struct btf_type *local_type; 6098 const char *local_name; 6099 __u32 local_id = relo->type_id; 6100 int err; 6101 6102 local_type = btf__type_by_id(local_btf, local_id); 6103 if (!local_type) 6104 return -EINVAL; 6105 6106 local_name = btf__name_by_offset(local_btf, local_type->name_off); 6107 if (!local_name) 6108 return -EINVAL; 6109 6110 if (relo->kind != BPF_CORE_TYPE_ID_LOCAL && 6111 !hashmap__find(cand_cache, local_id, &cands)) { 6112 cands = bpf_core_find_cands(prog->obj, local_btf, local_id); 6113 if (IS_ERR(cands)) { 6114 pr_warn("prog '%s': relo #%d: target candidate search failed for [%u] %s %s: %ld\n", 6115 prog_name, relo_idx, local_id, btf_kind_str(local_type), 6116 local_name, PTR_ERR(cands)); 6117 return PTR_ERR(cands); 6118 } 6119 err = hashmap__set(cand_cache, local_id, cands, NULL, NULL); 6120 if (err) { 6121 bpf_core_free_cands(cands); 6122 return err; 6123 } 6124 } 6125 6126 return bpf_core_calc_relo_insn(prog_name, relo, relo_idx, local_btf, cands, specs_scratch, 6127 targ_res); 6128 } 6129 6130 static int 6131 bpf_object__relocate_core(struct bpf_object *obj, const char *targ_btf_path) 6132 { 6133 const struct btf_ext_info_sec *sec; 6134 struct bpf_core_relo_res targ_res; 6135 const struct bpf_core_relo *rec; 6136 const struct btf_ext_info *seg; 6137 struct hashmap_entry *entry; 6138 struct hashmap *cand_cache = NULL; 6139 struct bpf_program *prog; 6140 struct bpf_insn *insn; 6141 const char *sec_name; 6142 int i, err = 0, insn_idx, sec_idx, sec_num; 6143 6144 if (obj->btf_ext->core_relo_info.len == 0) 6145 return 0; 6146 6147 if (targ_btf_path) { 6148 obj->btf_vmlinux_override = btf__parse(targ_btf_path, NULL); 6149 err = libbpf_get_error(obj->btf_vmlinux_override); 6150 if (err) { 6151 pr_warn("failed to parse target BTF: %s\n", errstr(err)); 6152 return err; 6153 } 6154 } 6155 6156 cand_cache = hashmap__new(bpf_core_hash_fn, bpf_core_equal_fn, NULL); 6157 if (IS_ERR(cand_cache)) { 6158 err = PTR_ERR(cand_cache); 6159 goto out; 6160 } 6161 6162 seg = &obj->btf_ext->core_relo_info; 6163 sec_num = 0; 6164 for_each_btf_ext_sec(seg, sec) { 6165 sec_idx = seg->sec_idxs[sec_num]; 6166 sec_num++; 6167 6168 sec_name = btf__name_by_offset(obj->btf, sec->sec_name_off); 6169 if (str_is_empty(sec_name)) { 6170 err = -EINVAL; 6171 goto out; 6172 } 6173 6174 pr_debug("sec '%s': found %u CO-RE relocations\n", sec_name, sec->num_info); 6175 6176 for_each_btf_ext_rec(seg, sec, i, rec) { 6177 if (rec->insn_off % BPF_INSN_SZ) 6178 return -EINVAL; 6179 insn_idx = rec->insn_off / BPF_INSN_SZ; 6180 prog = find_prog_by_sec_insn(obj, sec_idx, insn_idx); 6181 if (!prog) { 6182 /* When __weak subprog is "overridden" by another instance 6183 * of the subprog from a different object file, linker still 6184 * appends all the .BTF.ext info that used to belong to that 6185 * eliminated subprogram. 6186 * This is similar to what x86-64 linker does for relocations. 6187 * So just ignore such relocations just like we ignore 6188 * subprog instructions when discovering subprograms. 6189 */ 6190 pr_debug("sec '%s': skipping CO-RE relocation #%d for insn #%d belonging to eliminated weak subprogram\n", 6191 sec_name, i, insn_idx); 6192 continue; 6193 } 6194 /* no need to apply CO-RE relocation if the program is 6195 * not going to be loaded 6196 */ 6197 if (!prog->autoload) 6198 continue; 6199 6200 /* adjust insn_idx from section frame of reference to the local 6201 * program's frame of reference; (sub-)program code is not yet 6202 * relocated, so it's enough to just subtract in-section offset 6203 */ 6204 insn_idx = insn_idx - prog->sec_insn_off; 6205 if (insn_idx >= prog->insns_cnt) 6206 return -EINVAL; 6207 insn = &prog->insns[insn_idx]; 6208 6209 err = record_relo_core(prog, rec, insn_idx); 6210 if (err) { 6211 pr_warn("prog '%s': relo #%d: failed to record relocation: %s\n", 6212 prog->name, i, errstr(err)); 6213 goto out; 6214 } 6215 6216 if (prog->obj->gen_loader) 6217 continue; 6218 6219 err = bpf_core_resolve_relo(prog, rec, i, obj->btf, cand_cache, &targ_res); 6220 if (err) { 6221 pr_warn("prog '%s': relo #%d: failed to relocate: %s\n", 6222 prog->name, i, errstr(err)); 6223 goto out; 6224 } 6225 6226 err = bpf_core_patch_insn(prog->name, insn, insn_idx, rec, i, &targ_res); 6227 if (err) { 6228 pr_warn("prog '%s': relo #%d: failed to patch insn #%d: %s\n", 6229 prog->name, i, insn_idx, errstr(err)); 6230 goto out; 6231 } 6232 } 6233 } 6234 6235 out: 6236 /* obj->btf_vmlinux and module BTFs are freed after object load */ 6237 btf__free(obj->btf_vmlinux_override); 6238 obj->btf_vmlinux_override = NULL; 6239 6240 if (!IS_ERR_OR_NULL(cand_cache)) { 6241 hashmap__for_each_entry(cand_cache, entry, i) { 6242 bpf_core_free_cands(entry->pvalue); 6243 } 6244 hashmap__free(cand_cache); 6245 } 6246 return err; 6247 } 6248 6249 /* base map load ldimm64 special constant, used also for log fixup logic */ 6250 #define POISON_LDIMM64_MAP_BASE 2001000000 6251 #define POISON_LDIMM64_MAP_PFX "200100" 6252 6253 static void poison_map_ldimm64(struct bpf_program *prog, int relo_idx, 6254 int insn_idx, struct bpf_insn *insn, 6255 int map_idx, const struct bpf_map *map) 6256 { 6257 int i; 6258 6259 pr_debug("prog '%s': relo #%d: poisoning insn #%d that loads map #%d '%s'\n", 6260 prog->name, relo_idx, insn_idx, map_idx, map->name); 6261 6262 /* we turn single ldimm64 into two identical invalid calls */ 6263 for (i = 0; i < 2; i++) { 6264 insn->code = BPF_JMP | BPF_CALL; 6265 insn->dst_reg = 0; 6266 insn->src_reg = 0; 6267 insn->off = 0; 6268 /* if this instruction is reachable (not a dead code), 6269 * verifier will complain with something like: 6270 * invalid func unknown#2001000123 6271 * where lower 123 is map index into obj->maps[] array 6272 */ 6273 insn->imm = POISON_LDIMM64_MAP_BASE + map_idx; 6274 6275 insn++; 6276 } 6277 } 6278 6279 /* unresolved kfunc call special constant, used also for log fixup logic */ 6280 #define POISON_CALL_KFUNC_BASE 2002000000 6281 #define POISON_CALL_KFUNC_PFX "2002" 6282 6283 static void poison_kfunc_call(struct bpf_program *prog, int relo_idx, 6284 int insn_idx, struct bpf_insn *insn, 6285 int ext_idx, const struct extern_desc *ext) 6286 { 6287 pr_debug("prog '%s': relo #%d: poisoning insn #%d that calls kfunc '%s'\n", 6288 prog->name, relo_idx, insn_idx, ext->name); 6289 6290 /* we turn kfunc call into invalid helper call with identifiable constant */ 6291 insn->code = BPF_JMP | BPF_CALL; 6292 insn->dst_reg = 0; 6293 insn->src_reg = 0; 6294 insn->off = 0; 6295 /* if this instruction is reachable (not a dead code), 6296 * verifier will complain with something like: 6297 * invalid func unknown#2001000123 6298 * where lower 123 is extern index into obj->externs[] array 6299 */ 6300 insn->imm = POISON_CALL_KFUNC_BASE + ext_idx; 6301 } 6302 6303 static int find_jt_map(struct bpf_object *obj, struct bpf_program *prog, unsigned int sym_off) 6304 { 6305 size_t i; 6306 6307 for (i = 0; i < obj->jumptable_map_cnt; i++) { 6308 /* 6309 * This might happen that same offset is used for two different 6310 * programs (as jump tables can be the same). However, for 6311 * different programs different maps should be created. 6312 */ 6313 if (obj->jumptable_maps[i].sym_off == sym_off && 6314 obj->jumptable_maps[i].prog == prog) 6315 return obj->jumptable_maps[i].fd; 6316 } 6317 6318 return -ENOENT; 6319 } 6320 6321 static int add_jt_map(struct bpf_object *obj, struct bpf_program *prog, unsigned int sym_off, int map_fd) 6322 { 6323 size_t cnt = obj->jumptable_map_cnt; 6324 size_t size = sizeof(obj->jumptable_maps[0]); 6325 void *tmp; 6326 6327 tmp = libbpf_reallocarray(obj->jumptable_maps, cnt + 1, size); 6328 if (!tmp) 6329 return -ENOMEM; 6330 6331 obj->jumptable_maps = tmp; 6332 obj->jumptable_maps[cnt].prog = prog; 6333 obj->jumptable_maps[cnt].sym_off = sym_off; 6334 obj->jumptable_maps[cnt].fd = map_fd; 6335 obj->jumptable_map_cnt++; 6336 6337 return 0; 6338 } 6339 6340 static int find_subprog_idx(struct bpf_program *prog, int insn_idx) 6341 { 6342 int i; 6343 6344 for (i = prog->subprog_cnt - 1; i >= 0; i--) { 6345 if (insn_idx >= prog->subprogs[i].sub_insn_off) 6346 return i; 6347 } 6348 6349 return -1; 6350 } 6351 6352 static int create_jt_map(struct bpf_object *obj, struct bpf_program *prog, struct reloc_desc *relo) 6353 { 6354 const __u32 jt_entry_size = 8; 6355 unsigned int sym_off = relo->sym_off; 6356 int jt_size = relo->sym_size; 6357 __u32 max_entries = jt_size / jt_entry_size; 6358 __u32 value_size = sizeof(struct bpf_insn_array_value); 6359 struct bpf_insn_array_value val = {}; 6360 int subprog_idx; 6361 int map_fd, err; 6362 __u64 insn_off; 6363 __u64 *jt; 6364 __u32 i; 6365 6366 map_fd = find_jt_map(obj, prog, sym_off); 6367 if (map_fd >= 0) 6368 return map_fd; 6369 6370 if (sym_off % jt_entry_size) { 6371 pr_warn("map '.jumptables': jumptable start %u should be multiple of %u\n", 6372 sym_off, jt_entry_size); 6373 return -EINVAL; 6374 } 6375 6376 if (jt_size % jt_entry_size) { 6377 pr_warn("map '.jumptables': jumptable size %d should be multiple of %u\n", 6378 jt_size, jt_entry_size); 6379 return -EINVAL; 6380 } 6381 6382 map_fd = bpf_map_create(BPF_MAP_TYPE_INSN_ARRAY, ".jumptables", 6383 4, value_size, max_entries, NULL); 6384 if (map_fd < 0) 6385 return map_fd; 6386 6387 if (!obj->jumptables_data) { 6388 pr_warn("map '.jumptables': ELF file is missing jump table data\n"); 6389 err = -EINVAL; 6390 goto err_close; 6391 } 6392 if (sym_off + jt_size > obj->jumptables_data_sz) { 6393 pr_warn("map '.jumptables': jumptables_data size is %zu, trying to access %u\n", 6394 obj->jumptables_data_sz, sym_off + jt_size); 6395 err = -EINVAL; 6396 goto err_close; 6397 } 6398 6399 subprog_idx = -1; /* main program */ 6400 if (relo->insn_idx < 0 || relo->insn_idx >= prog->insns_cnt) { 6401 pr_warn("map '.jumptables': invalid instruction index %d\n", relo->insn_idx); 6402 err = -EINVAL; 6403 goto err_close; 6404 } 6405 if (prog->subprogs) 6406 subprog_idx = find_subprog_idx(prog, relo->insn_idx); 6407 6408 jt = (__u64 *)(obj->jumptables_data + sym_off); 6409 for (i = 0; i < max_entries; i++) { 6410 /* 6411 * The offset should be made to be relative to the beginning of 6412 * the main function, not the subfunction. 6413 */ 6414 insn_off = jt[i]/sizeof(struct bpf_insn); 6415 if (subprog_idx >= 0) { 6416 insn_off -= prog->subprogs[subprog_idx].sec_insn_off; 6417 insn_off += prog->subprogs[subprog_idx].sub_insn_off; 6418 } else { 6419 insn_off -= prog->sec_insn_off; 6420 } 6421 6422 /* 6423 * LLVM-generated jump tables contain u64 records, however 6424 * should contain values that fit in u32. 6425 */ 6426 if (insn_off > UINT32_MAX) { 6427 pr_warn("map '.jumptables': invalid jump table value 0x%llx at offset %u\n", 6428 (unsigned long long)jt[i], sym_off + i * jt_entry_size); 6429 err = -EINVAL; 6430 goto err_close; 6431 } 6432 6433 val.orig_off = insn_off; 6434 err = bpf_map_update_elem(map_fd, &i, &val, 0); 6435 if (err) 6436 goto err_close; 6437 } 6438 6439 err = bpf_map_freeze(map_fd); 6440 if (err) 6441 goto err_close; 6442 6443 err = add_jt_map(obj, prog, sym_off, map_fd); 6444 if (err) 6445 goto err_close; 6446 6447 return map_fd; 6448 6449 err_close: 6450 close(map_fd); 6451 return err; 6452 } 6453 6454 /* Relocate data references within program code: 6455 * - map references; 6456 * - global variable references; 6457 * - extern references. 6458 */ 6459 static int 6460 bpf_object__relocate_data(struct bpf_object *obj, struct bpf_program *prog) 6461 { 6462 int i; 6463 6464 for (i = 0; i < prog->nr_reloc; i++) { 6465 struct reloc_desc *relo = &prog->reloc_desc[i]; 6466 struct bpf_insn *insn = &prog->insns[relo->insn_idx]; 6467 const struct bpf_map *map; 6468 struct extern_desc *ext; 6469 6470 switch (relo->type) { 6471 case RELO_LD64: 6472 map = &obj->maps[relo->map_idx]; 6473 if (obj->gen_loader) { 6474 insn[0].src_reg = BPF_PSEUDO_MAP_IDX; 6475 insn[0].imm = relo->map_idx; 6476 } else if (map->autocreate) { 6477 insn[0].src_reg = BPF_PSEUDO_MAP_FD; 6478 insn[0].imm = map->fd; 6479 } else { 6480 poison_map_ldimm64(prog, i, relo->insn_idx, insn, 6481 relo->map_idx, map); 6482 } 6483 break; 6484 case RELO_DATA: 6485 map = &obj->maps[relo->map_idx]; 6486 insn[1].imm = insn[0].imm + relo->sym_off; 6487 6488 if (relo->map_idx == obj->arena_map_idx) 6489 insn[1].imm += obj->arena_data_off; 6490 6491 if (obj->gen_loader) { 6492 insn[0].src_reg = BPF_PSEUDO_MAP_IDX_VALUE; 6493 insn[0].imm = relo->map_idx; 6494 } else if (map->autocreate) { 6495 insn[0].src_reg = BPF_PSEUDO_MAP_VALUE; 6496 insn[0].imm = map->fd; 6497 } else { 6498 poison_map_ldimm64(prog, i, relo->insn_idx, insn, 6499 relo->map_idx, map); 6500 } 6501 break; 6502 case RELO_EXTERN_LD64: 6503 ext = &obj->externs[relo->ext_idx]; 6504 if (ext->type == EXT_KCFG) { 6505 if (obj->gen_loader) { 6506 insn[0].src_reg = BPF_PSEUDO_MAP_IDX_VALUE; 6507 insn[0].imm = obj->kconfig_map_idx; 6508 } else { 6509 insn[0].src_reg = BPF_PSEUDO_MAP_VALUE; 6510 insn[0].imm = obj->maps[obj->kconfig_map_idx].fd; 6511 } 6512 insn[1].imm = ext->kcfg.data_off; 6513 } else /* EXT_KSYM */ { 6514 if (ext->ksym.type_id && ext->is_set) { /* typed ksyms */ 6515 insn[0].src_reg = BPF_PSEUDO_BTF_ID; 6516 insn[0].imm = ext->ksym.kernel_btf_id; 6517 insn[1].imm = ext->ksym.kernel_btf_obj_fd; 6518 } else { /* typeless ksyms or unresolved typed ksyms */ 6519 insn[0].imm = (__u32)ext->ksym.addr; 6520 insn[1].imm = ext->ksym.addr >> 32; 6521 } 6522 } 6523 break; 6524 case RELO_EXTERN_CALL: 6525 ext = &obj->externs[relo->ext_idx]; 6526 insn[0].src_reg = BPF_PSEUDO_KFUNC_CALL; 6527 if (ext->is_set) { 6528 insn[0].imm = ext->ksym.kernel_btf_id; 6529 insn[0].off = ext->ksym.btf_fd_idx; 6530 } else { /* unresolved weak kfunc call */ 6531 poison_kfunc_call(prog, i, relo->insn_idx, insn, 6532 relo->ext_idx, ext); 6533 } 6534 break; 6535 case RELO_SUBPROG_ADDR: 6536 if (insn[0].src_reg != BPF_PSEUDO_FUNC) { 6537 pr_warn("prog '%s': relo #%d: bad insn\n", 6538 prog->name, i); 6539 return -EINVAL; 6540 } 6541 /* handled already */ 6542 break; 6543 case RELO_CALL: 6544 /* handled already */ 6545 break; 6546 case RELO_CORE: 6547 /* will be handled by bpf_program_record_relos() */ 6548 break; 6549 case RELO_INSN_ARRAY: { 6550 int map_fd; 6551 6552 map_fd = create_jt_map(obj, prog, relo); 6553 if (map_fd < 0) { 6554 pr_warn("prog '%s': relo #%d: can't create jump table: sym_off %u\n", 6555 prog->name, i, relo->sym_off); 6556 return map_fd; 6557 } 6558 insn[0].src_reg = BPF_PSEUDO_MAP_VALUE; 6559 insn->imm = map_fd; 6560 insn->off = 0; 6561 } 6562 break; 6563 default: 6564 pr_warn("prog '%s': relo #%d: bad relo type %u\n", 6565 prog->name, i, relo->type); 6566 return -EINVAL; 6567 } 6568 } 6569 6570 return 0; 6571 } 6572 6573 static int adjust_prog_btf_ext_info(const struct bpf_object *obj, 6574 const struct bpf_program *prog, 6575 const struct btf_ext_info *ext_info, 6576 void **prog_info, __u32 *prog_rec_cnt, 6577 __u32 *prog_rec_sz) 6578 { 6579 void *copy_start = NULL, *copy_end = NULL; 6580 void *rec, *rec_end, *new_prog_info; 6581 const struct btf_ext_info_sec *sec; 6582 size_t old_sz, new_sz; 6583 int i, sec_num, sec_idx, off_adj; 6584 6585 sec_num = 0; 6586 for_each_btf_ext_sec(ext_info, sec) { 6587 sec_idx = ext_info->sec_idxs[sec_num]; 6588 sec_num++; 6589 if (prog->sec_idx != sec_idx) 6590 continue; 6591 6592 for_each_btf_ext_rec(ext_info, sec, i, rec) { 6593 __u32 insn_off = *(__u32 *)rec / BPF_INSN_SZ; 6594 6595 if (insn_off < prog->sec_insn_off) 6596 continue; 6597 if (insn_off >= prog->sec_insn_off + prog->sec_insn_cnt) 6598 break; 6599 6600 if (!copy_start) 6601 copy_start = rec; 6602 copy_end = rec + ext_info->rec_size; 6603 } 6604 6605 if (!copy_start) 6606 return -ENOENT; 6607 6608 /* append func/line info of a given (sub-)program to the main 6609 * program func/line info 6610 */ 6611 old_sz = (size_t)(*prog_rec_cnt) * ext_info->rec_size; 6612 new_sz = old_sz + (copy_end - copy_start); 6613 new_prog_info = realloc(*prog_info, new_sz); 6614 if (!new_prog_info) 6615 return -ENOMEM; 6616 *prog_info = new_prog_info; 6617 *prog_rec_cnt = new_sz / ext_info->rec_size; 6618 memcpy(new_prog_info + old_sz, copy_start, copy_end - copy_start); 6619 6620 /* Kernel instruction offsets are in units of 8-byte 6621 * instructions, while .BTF.ext instruction offsets generated 6622 * by Clang are in units of bytes. So convert Clang offsets 6623 * into kernel offsets and adjust offset according to program 6624 * relocated position. 6625 */ 6626 off_adj = prog->sub_insn_off - prog->sec_insn_off; 6627 rec = new_prog_info + old_sz; 6628 rec_end = new_prog_info + new_sz; 6629 for (; rec < rec_end; rec += ext_info->rec_size) { 6630 __u32 *insn_off = rec; 6631 6632 *insn_off = *insn_off / BPF_INSN_SZ + off_adj; 6633 } 6634 *prog_rec_sz = ext_info->rec_size; 6635 return 0; 6636 } 6637 6638 return -ENOENT; 6639 } 6640 6641 static int 6642 reloc_prog_func_and_line_info(const struct bpf_object *obj, 6643 struct bpf_program *main_prog, 6644 const struct bpf_program *prog) 6645 { 6646 int err; 6647 6648 /* no .BTF.ext relocation if .BTF.ext is missing or kernel doesn't 6649 * support func/line info 6650 */ 6651 if (!obj->btf_ext || !kernel_supports(obj, FEAT_BTF_FUNC)) 6652 return 0; 6653 6654 /* only attempt func info relocation if main program's func_info 6655 * relocation was successful 6656 */ 6657 if (main_prog != prog && !main_prog->func_info) 6658 goto line_info; 6659 6660 err = adjust_prog_btf_ext_info(obj, prog, &obj->btf_ext->func_info, 6661 &main_prog->func_info, 6662 &main_prog->func_info_cnt, 6663 &main_prog->func_info_rec_size); 6664 if (err) { 6665 if (err != -ENOENT) { 6666 pr_warn("prog '%s': error relocating .BTF.ext function info: %s\n", 6667 prog->name, errstr(err)); 6668 return err; 6669 } 6670 if (main_prog->func_info) { 6671 /* 6672 * Some info has already been found but has problem 6673 * in the last btf_ext reloc. Must have to error out. 6674 */ 6675 pr_warn("prog '%s': missing .BTF.ext function info.\n", prog->name); 6676 return err; 6677 } 6678 /* Have problem loading the very first info. Ignore the rest. */ 6679 pr_warn("prog '%s': missing .BTF.ext function info for the main program, skipping all of .BTF.ext func info.\n", 6680 prog->name); 6681 } 6682 6683 line_info: 6684 /* don't relocate line info if main program's relocation failed */ 6685 if (main_prog != prog && !main_prog->line_info) 6686 return 0; 6687 6688 err = adjust_prog_btf_ext_info(obj, prog, &obj->btf_ext->line_info, 6689 &main_prog->line_info, 6690 &main_prog->line_info_cnt, 6691 &main_prog->line_info_rec_size); 6692 if (err) { 6693 if (err != -ENOENT) { 6694 pr_warn("prog '%s': error relocating .BTF.ext line info: %s\n", 6695 prog->name, errstr(err)); 6696 return err; 6697 } 6698 if (main_prog->line_info) { 6699 /* 6700 * Some info has already been found but has problem 6701 * in the last btf_ext reloc. Must have to error out. 6702 */ 6703 pr_warn("prog '%s': missing .BTF.ext line info.\n", prog->name); 6704 return err; 6705 } 6706 /* Have problem loading the very first info. Ignore the rest. */ 6707 pr_warn("prog '%s': missing .BTF.ext line info for the main program, skipping all of .BTF.ext line info.\n", 6708 prog->name); 6709 } 6710 return 0; 6711 } 6712 6713 static int cmp_relo_by_insn_idx(const void *key, const void *elem) 6714 { 6715 size_t insn_idx = *(const size_t *)key; 6716 const struct reloc_desc *relo = elem; 6717 6718 if (insn_idx == relo->insn_idx) 6719 return 0; 6720 return insn_idx < relo->insn_idx ? -1 : 1; 6721 } 6722 6723 static struct reloc_desc *find_prog_insn_relo(const struct bpf_program *prog, size_t insn_idx) 6724 { 6725 if (!prog->nr_reloc) 6726 return NULL; 6727 return bsearch(&insn_idx, prog->reloc_desc, prog->nr_reloc, 6728 sizeof(*prog->reloc_desc), cmp_relo_by_insn_idx); 6729 } 6730 6731 static int append_subprog_relos(struct bpf_program *main_prog, struct bpf_program *subprog) 6732 { 6733 int new_cnt = main_prog->nr_reloc + subprog->nr_reloc; 6734 struct reloc_desc *relos; 6735 int i; 6736 6737 if (main_prog == subprog) 6738 return 0; 6739 relos = libbpf_reallocarray(main_prog->reloc_desc, new_cnt, sizeof(*relos)); 6740 /* if new count is zero, reallocarray can return a valid NULL result; 6741 * in this case the previous pointer will be freed, so we *have to* 6742 * reassign old pointer to the new value (even if it's NULL) 6743 */ 6744 if (!relos && new_cnt) 6745 return -ENOMEM; 6746 if (subprog->nr_reloc) 6747 memcpy(relos + main_prog->nr_reloc, subprog->reloc_desc, 6748 sizeof(*relos) * subprog->nr_reloc); 6749 6750 for (i = main_prog->nr_reloc; i < new_cnt; i++) 6751 relos[i].insn_idx += subprog->sub_insn_off; 6752 /* After insn_idx adjustment the 'relos' array is still sorted 6753 * by insn_idx and doesn't break bsearch. 6754 */ 6755 main_prog->reloc_desc = relos; 6756 main_prog->nr_reloc = new_cnt; 6757 return 0; 6758 } 6759 6760 static int save_subprog_offsets(struct bpf_program *main_prog, struct bpf_program *subprog) 6761 { 6762 size_t size = sizeof(main_prog->subprogs[0]); 6763 int cnt = main_prog->subprog_cnt; 6764 void *tmp; 6765 6766 tmp = libbpf_reallocarray(main_prog->subprogs, cnt + 1, size); 6767 if (!tmp) 6768 return -ENOMEM; 6769 6770 main_prog->subprogs = tmp; 6771 main_prog->subprogs[cnt].sec_insn_off = subprog->sec_insn_off; 6772 main_prog->subprogs[cnt].sub_insn_off = subprog->sub_insn_off; 6773 main_prog->subprog_cnt++; 6774 6775 return 0; 6776 } 6777 6778 static int 6779 bpf_object__append_subprog_code(struct bpf_object *obj, struct bpf_program *main_prog, 6780 struct bpf_program *subprog) 6781 { 6782 struct bpf_insn *insns; 6783 size_t new_cnt; 6784 int err; 6785 6786 subprog->sub_insn_off = main_prog->insns_cnt; 6787 6788 new_cnt = main_prog->insns_cnt + subprog->insns_cnt; 6789 insns = libbpf_reallocarray(main_prog->insns, new_cnt, sizeof(*insns)); 6790 if (!insns) { 6791 pr_warn("prog '%s': failed to realloc prog code\n", main_prog->name); 6792 return -ENOMEM; 6793 } 6794 main_prog->insns = insns; 6795 main_prog->insns_cnt = new_cnt; 6796 6797 memcpy(main_prog->insns + subprog->sub_insn_off, subprog->insns, 6798 subprog->insns_cnt * sizeof(*insns)); 6799 6800 pr_debug("prog '%s': added %zu insns from sub-prog '%s'\n", 6801 main_prog->name, subprog->insns_cnt, subprog->name); 6802 6803 /* The subprog insns are now appended. Append its relos too. */ 6804 err = append_subprog_relos(main_prog, subprog); 6805 if (err) 6806 return err; 6807 6808 err = save_subprog_offsets(main_prog, subprog); 6809 if (err) { 6810 pr_warn("prog '%s': failed to add subprog offsets: %s\n", 6811 main_prog->name, errstr(err)); 6812 return err; 6813 } 6814 6815 return 0; 6816 } 6817 6818 static int 6819 bpf_object__reloc_code(struct bpf_object *obj, struct bpf_program *main_prog, 6820 struct bpf_program *prog) 6821 { 6822 size_t sub_insn_idx, insn_idx; 6823 struct bpf_program *subprog; 6824 struct reloc_desc *relo; 6825 struct bpf_insn *insn; 6826 int err; 6827 6828 err = reloc_prog_func_and_line_info(obj, main_prog, prog); 6829 if (err) 6830 return err; 6831 6832 for (insn_idx = 0; insn_idx < prog->sec_insn_cnt; insn_idx++) { 6833 insn = &main_prog->insns[prog->sub_insn_off + insn_idx]; 6834 if (!insn_is_subprog_call(insn) && !insn_is_pseudo_func(insn)) 6835 continue; 6836 6837 relo = find_prog_insn_relo(prog, insn_idx); 6838 if (relo && relo->type == RELO_EXTERN_CALL) 6839 /* kfunc relocations will be handled later 6840 * in bpf_object__relocate_data() 6841 */ 6842 continue; 6843 if (relo && relo->type != RELO_CALL && relo->type != RELO_SUBPROG_ADDR) { 6844 pr_warn("prog '%s': unexpected relo for insn #%zu, type %u\n", 6845 prog->name, insn_idx, relo->type); 6846 return -LIBBPF_ERRNO__RELOC; 6847 } 6848 if (relo) { 6849 /* sub-program instruction index is a combination of 6850 * an offset of a symbol pointed to by relocation and 6851 * call instruction's imm field; for global functions, 6852 * call always has imm = -1, but for static functions 6853 * relocation is against STT_SECTION and insn->imm 6854 * points to a start of a static function 6855 * 6856 * for subprog addr relocation, the relo->sym_off + insn->imm is 6857 * the byte offset in the corresponding section. 6858 */ 6859 if (relo->type == RELO_CALL) 6860 sub_insn_idx = relo->sym_off / BPF_INSN_SZ + insn->imm + 1; 6861 else 6862 sub_insn_idx = (relo->sym_off + insn->imm) / BPF_INSN_SZ; 6863 } else if (insn_is_pseudo_func(insn)) { 6864 /* 6865 * RELO_SUBPROG_ADDR relo is always emitted even if both 6866 * functions are in the same section, so it shouldn't reach here. 6867 */ 6868 pr_warn("prog '%s': missing subprog addr relo for insn #%zu\n", 6869 prog->name, insn_idx); 6870 return -LIBBPF_ERRNO__RELOC; 6871 } else { 6872 /* if subprogram call is to a static function within 6873 * the same ELF section, there won't be any relocation 6874 * emitted, but it also means there is no additional 6875 * offset necessary, insns->imm is relative to 6876 * instruction's original position within the section 6877 */ 6878 sub_insn_idx = prog->sec_insn_off + insn_idx + insn->imm + 1; 6879 } 6880 6881 /* we enforce that sub-programs should be in .text section */ 6882 subprog = find_prog_by_sec_insn(obj, obj->efile.text_shndx, sub_insn_idx); 6883 if (!subprog) { 6884 pr_warn("prog '%s': no .text section found yet sub-program call exists\n", 6885 prog->name); 6886 return -LIBBPF_ERRNO__RELOC; 6887 } 6888 6889 /* if it's the first call instruction calling into this 6890 * subprogram (meaning this subprog hasn't been processed 6891 * yet) within the context of current main program: 6892 * - append it at the end of main program's instructions blog; 6893 * - process is recursively, while current program is put on hold; 6894 * - if that subprogram calls some other not yet processes 6895 * subprogram, same thing will happen recursively until 6896 * there are no more unprocesses subprograms left to append 6897 * and relocate. 6898 */ 6899 if (subprog->sub_insn_off == 0) { 6900 err = bpf_object__append_subprog_code(obj, main_prog, subprog); 6901 if (err) 6902 return err; 6903 err = bpf_object__reloc_code(obj, main_prog, subprog); 6904 if (err) 6905 return err; 6906 } 6907 6908 /* main_prog->insns memory could have been re-allocated, so 6909 * calculate pointer again 6910 */ 6911 insn = &main_prog->insns[prog->sub_insn_off + insn_idx]; 6912 /* calculate correct instruction position within current main 6913 * prog; each main prog can have a different set of 6914 * subprograms appended (potentially in different order as 6915 * well), so position of any subprog can be different for 6916 * different main programs 6917 */ 6918 insn->imm = subprog->sub_insn_off - (prog->sub_insn_off + insn_idx) - 1; 6919 6920 pr_debug("prog '%s': insn #%zu relocated, imm %d points to subprog '%s' (now at %zu offset)\n", 6921 prog->name, insn_idx, insn->imm, subprog->name, subprog->sub_insn_off); 6922 } 6923 6924 return 0; 6925 } 6926 6927 /* 6928 * Relocate sub-program calls. 6929 * 6930 * Algorithm operates as follows. Each entry-point BPF program (referred to as 6931 * main prog) is processed separately. For each subprog (non-entry functions, 6932 * that can be called from either entry progs or other subprogs) gets their 6933 * sub_insn_off reset to zero. This serves as indicator that this subprogram 6934 * hasn't been yet appended and relocated within current main prog. Once its 6935 * relocated, sub_insn_off will point at the position within current main prog 6936 * where given subprog was appended. This will further be used to relocate all 6937 * the call instructions jumping into this subprog. 6938 * 6939 * We start with main program and process all call instructions. If the call 6940 * is into a subprog that hasn't been processed (i.e., subprog->sub_insn_off 6941 * is zero), subprog instructions are appended at the end of main program's 6942 * instruction array. Then main program is "put on hold" while we recursively 6943 * process newly appended subprogram. If that subprogram calls into another 6944 * subprogram that hasn't been appended, new subprogram is appended again to 6945 * the *main* prog's instructions (subprog's instructions are always left 6946 * untouched, as they need to be in unmodified state for subsequent main progs 6947 * and subprog instructions are always sent only as part of a main prog) and 6948 * the process continues recursively. Once all the subprogs called from a main 6949 * prog or any of its subprogs are appended (and relocated), all their 6950 * positions within finalized instructions array are known, so it's easy to 6951 * rewrite call instructions with correct relative offsets, corresponding to 6952 * desired target subprog. 6953 * 6954 * Its important to realize that some subprogs might not be called from some 6955 * main prog and any of its called/used subprogs. Those will keep their 6956 * subprog->sub_insn_off as zero at all times and won't be appended to current 6957 * main prog and won't be relocated within the context of current main prog. 6958 * They might still be used from other main progs later. 6959 * 6960 * Visually this process can be shown as below. Suppose we have two main 6961 * programs mainA and mainB and BPF object contains three subprogs: subA, 6962 * subB, and subC. mainA calls only subA, mainB calls only subC, but subA and 6963 * subC both call subB: 6964 * 6965 * +--------+ +-------+ 6966 * | v v | 6967 * +--+---+ +--+-+-+ +---+--+ 6968 * | subA | | subB | | subC | 6969 * +--+---+ +------+ +---+--+ 6970 * ^ ^ 6971 * | | 6972 * +---+-------+ +------+----+ 6973 * | mainA | | mainB | 6974 * +-----------+ +-----------+ 6975 * 6976 * We'll start relocating mainA, will find subA, append it and start 6977 * processing sub A recursively: 6978 * 6979 * +-----------+------+ 6980 * | mainA | subA | 6981 * +-----------+------+ 6982 * 6983 * At this point we notice that subB is used from subA, so we append it and 6984 * relocate (there are no further subcalls from subB): 6985 * 6986 * +-----------+------+------+ 6987 * | mainA | subA | subB | 6988 * +-----------+------+------+ 6989 * 6990 * At this point, we relocate subA calls, then go one level up and finish with 6991 * relocation mainA calls. mainA is done. 6992 * 6993 * For mainB process is similar but results in different order. We start with 6994 * mainB and skip subA and subB, as mainB never calls them (at least 6995 * directly), but we see subC is needed, so we append and start processing it: 6996 * 6997 * +-----------+------+ 6998 * | mainB | subC | 6999 * +-----------+------+ 7000 * Now we see subC needs subB, so we go back to it, append and relocate it: 7001 * 7002 * +-----------+------+------+ 7003 * | mainB | subC | subB | 7004 * +-----------+------+------+ 7005 * 7006 * At this point we unwind recursion, relocate calls in subC, then in mainB. 7007 */ 7008 static int 7009 bpf_object__relocate_calls(struct bpf_object *obj, struct bpf_program *prog) 7010 { 7011 struct bpf_program *subprog; 7012 int i, err; 7013 7014 /* mark all subprogs as not relocated (yet) within the context of 7015 * current main program 7016 */ 7017 for (i = 0; i < obj->nr_programs; i++) { 7018 subprog = &obj->programs[i]; 7019 if (!prog_is_subprog(obj, subprog)) 7020 continue; 7021 7022 subprog->sub_insn_off = 0; 7023 } 7024 7025 err = bpf_object__reloc_code(obj, prog, prog); 7026 if (err) 7027 return err; 7028 7029 return 0; 7030 } 7031 7032 static void 7033 bpf_object__free_relocs(struct bpf_object *obj) 7034 { 7035 struct bpf_program *prog; 7036 int i; 7037 7038 /* free up relocation descriptors */ 7039 for (i = 0; i < obj->nr_programs; i++) { 7040 prog = &obj->programs[i]; 7041 zfree(&prog->reloc_desc); 7042 prog->nr_reloc = 0; 7043 } 7044 } 7045 7046 static int cmp_relocs(const void *_a, const void *_b) 7047 { 7048 const struct reloc_desc *a = _a; 7049 const struct reloc_desc *b = _b; 7050 7051 if (a->insn_idx != b->insn_idx) 7052 return a->insn_idx < b->insn_idx ? -1 : 1; 7053 7054 /* no two relocations should have the same insn_idx, but ... */ 7055 if (a->type != b->type) 7056 return a->type < b->type ? -1 : 1; 7057 7058 return 0; 7059 } 7060 7061 static void bpf_object__sort_relos(struct bpf_object *obj) 7062 { 7063 int i; 7064 7065 for (i = 0; i < obj->nr_programs; i++) { 7066 struct bpf_program *p = &obj->programs[i]; 7067 7068 if (!p->nr_reloc) 7069 continue; 7070 7071 qsort(p->reloc_desc, p->nr_reloc, sizeof(*p->reloc_desc), cmp_relocs); 7072 } 7073 } 7074 7075 static int bpf_prog_assign_exc_cb(struct bpf_object *obj, struct bpf_program *prog) 7076 { 7077 const char *str = "exception_callback:"; 7078 size_t pfx_len = strlen(str); 7079 int i, j, n; 7080 7081 if (!obj->btf || !kernel_supports(obj, FEAT_BTF_DECL_TAG)) 7082 return 0; 7083 7084 n = btf__type_cnt(obj->btf); 7085 for (i = 1; i < n; i++) { 7086 const char *name; 7087 struct btf_type *t; 7088 7089 t = btf_type_by_id(obj->btf, i); 7090 if (!btf_is_decl_tag(t) || btf_decl_tag(t)->component_idx != -1) 7091 continue; 7092 7093 name = btf__str_by_offset(obj->btf, t->name_off); 7094 if (strncmp(name, str, pfx_len) != 0) 7095 continue; 7096 7097 t = btf_type_by_id(obj->btf, t->type); 7098 if (!btf_is_func(t) || btf_func_linkage(t) != BTF_FUNC_GLOBAL) { 7099 pr_warn("prog '%s': exception_callback:<value> decl tag not applied to the main program\n", 7100 prog->name); 7101 return -EINVAL; 7102 } 7103 if (strcmp(prog->name, btf__str_by_offset(obj->btf, t->name_off)) != 0) 7104 continue; 7105 /* Multiple callbacks are specified for the same prog, 7106 * the verifier will eventually return an error for this 7107 * case, hence simply skip appending a subprog. 7108 */ 7109 if (prog->exception_cb_idx >= 0) { 7110 prog->exception_cb_idx = -1; 7111 break; 7112 } 7113 7114 name += pfx_len; 7115 if (str_is_empty(name)) { 7116 pr_warn("prog '%s': exception_callback:<value> decl tag contains empty value\n", 7117 prog->name); 7118 return -EINVAL; 7119 } 7120 7121 for (j = 0; j < obj->nr_programs; j++) { 7122 struct bpf_program *subprog = &obj->programs[j]; 7123 7124 if (!prog_is_subprog(obj, subprog)) 7125 continue; 7126 if (strcmp(name, subprog->name) != 0) 7127 continue; 7128 /* Enforce non-hidden, as from verifier point of 7129 * view it expects global functions, whereas the 7130 * mark_btf_static fixes up linkage as static. 7131 */ 7132 if (!subprog->sym_global || subprog->mark_btf_static) { 7133 pr_warn("prog '%s': exception callback %s must be a global non-hidden function\n", 7134 prog->name, subprog->name); 7135 return -EINVAL; 7136 } 7137 /* Let's see if we already saw a static exception callback with the same name */ 7138 if (prog->exception_cb_idx >= 0) { 7139 pr_warn("prog '%s': multiple subprogs with same name as exception callback '%s'\n", 7140 prog->name, subprog->name); 7141 return -EINVAL; 7142 } 7143 prog->exception_cb_idx = j; 7144 break; 7145 } 7146 7147 if (prog->exception_cb_idx >= 0) 7148 continue; 7149 7150 pr_warn("prog '%s': cannot find exception callback '%s'\n", prog->name, name); 7151 return -ENOENT; 7152 } 7153 7154 return 0; 7155 } 7156 7157 static struct { 7158 enum bpf_prog_type prog_type; 7159 const char *ctx_name; 7160 } global_ctx_map[] = { 7161 { BPF_PROG_TYPE_CGROUP_DEVICE, "bpf_cgroup_dev_ctx" }, 7162 { BPF_PROG_TYPE_CGROUP_SKB, "__sk_buff" }, 7163 { BPF_PROG_TYPE_CGROUP_SOCK, "bpf_sock" }, 7164 { BPF_PROG_TYPE_CGROUP_SOCK_ADDR, "bpf_sock_addr" }, 7165 { BPF_PROG_TYPE_CGROUP_SOCKOPT, "bpf_sockopt" }, 7166 { BPF_PROG_TYPE_CGROUP_SYSCTL, "bpf_sysctl" }, 7167 { BPF_PROG_TYPE_FLOW_DISSECTOR, "__sk_buff" }, 7168 { BPF_PROG_TYPE_KPROBE, "bpf_user_pt_regs_t" }, 7169 { BPF_PROG_TYPE_LWT_IN, "__sk_buff" }, 7170 { BPF_PROG_TYPE_LWT_OUT, "__sk_buff" }, 7171 { BPF_PROG_TYPE_LWT_SEG6LOCAL, "__sk_buff" }, 7172 { BPF_PROG_TYPE_LWT_XMIT, "__sk_buff" }, 7173 { BPF_PROG_TYPE_NETFILTER, "bpf_nf_ctx" }, 7174 { BPF_PROG_TYPE_PERF_EVENT, "bpf_perf_event_data" }, 7175 { BPF_PROG_TYPE_RAW_TRACEPOINT, "bpf_raw_tracepoint_args" }, 7176 { BPF_PROG_TYPE_RAW_TRACEPOINT_WRITABLE, "bpf_raw_tracepoint_args" }, 7177 { BPF_PROG_TYPE_SCHED_ACT, "__sk_buff" }, 7178 { BPF_PROG_TYPE_SCHED_CLS, "__sk_buff" }, 7179 { BPF_PROG_TYPE_SK_LOOKUP, "bpf_sk_lookup" }, 7180 { BPF_PROG_TYPE_SK_MSG, "sk_msg_md" }, 7181 { BPF_PROG_TYPE_SK_REUSEPORT, "sk_reuseport_md" }, 7182 { BPF_PROG_TYPE_SK_SKB, "__sk_buff" }, 7183 { BPF_PROG_TYPE_SOCK_OPS, "bpf_sock_ops" }, 7184 { BPF_PROG_TYPE_SOCKET_FILTER, "__sk_buff" }, 7185 { BPF_PROG_TYPE_XDP, "xdp_md" }, 7186 /* all other program types don't have "named" context structs */ 7187 }; 7188 7189 /* forward declarations for arch-specific underlying types of bpf_user_pt_regs_t typedef, 7190 * for below __builtin_types_compatible_p() checks; 7191 * with this approach we don't need any extra arch-specific #ifdef guards 7192 */ 7193 struct pt_regs; 7194 struct user_pt_regs; 7195 struct user_regs_struct; 7196 7197 static bool need_func_arg_type_fixup(const struct btf *btf, const struct bpf_program *prog, 7198 const char *subprog_name, int arg_idx, 7199 int arg_type_id, const char *ctx_name) 7200 { 7201 const struct btf_type *t; 7202 const char *tname; 7203 7204 /* check if existing parameter already matches verifier expectations */ 7205 t = skip_mods_and_typedefs(btf, arg_type_id, NULL); 7206 if (!btf_is_ptr(t)) 7207 goto out_warn; 7208 7209 /* typedef bpf_user_pt_regs_t is a special PITA case, valid for kprobe 7210 * and perf_event programs, so check this case early on and forget 7211 * about it for subsequent checks 7212 */ 7213 while (btf_is_mod(t)) 7214 t = btf__type_by_id(btf, t->type); 7215 if (btf_is_typedef(t) && 7216 (prog->type == BPF_PROG_TYPE_KPROBE || prog->type == BPF_PROG_TYPE_PERF_EVENT)) { 7217 tname = btf__str_by_offset(btf, t->name_off) ?: "<anon>"; 7218 if (strcmp(tname, "bpf_user_pt_regs_t") == 0) 7219 return false; /* canonical type for kprobe/perf_event */ 7220 } 7221 7222 /* now we can ignore typedefs moving forward */ 7223 t = skip_mods_and_typedefs(btf, t->type, NULL); 7224 7225 /* if it's `void *`, definitely fix up BTF info */ 7226 if (btf_is_void(t)) 7227 return true; 7228 7229 /* if it's already proper canonical type, no need to fix up */ 7230 tname = btf__str_by_offset(btf, t->name_off) ?: "<anon>"; 7231 if (btf_is_struct(t) && strcmp(tname, ctx_name) == 0) 7232 return false; 7233 7234 /* special cases */ 7235 switch (prog->type) { 7236 case BPF_PROG_TYPE_KPROBE: 7237 /* `struct pt_regs *` is expected, but we need to fix up */ 7238 if (btf_is_struct(t) && strcmp(tname, "pt_regs") == 0) 7239 return true; 7240 break; 7241 case BPF_PROG_TYPE_PERF_EVENT: 7242 if (__builtin_types_compatible_p(bpf_user_pt_regs_t, struct pt_regs) && 7243 btf_is_struct(t) && strcmp(tname, "pt_regs") == 0) 7244 return true; 7245 if (__builtin_types_compatible_p(bpf_user_pt_regs_t, struct user_pt_regs) && 7246 btf_is_struct(t) && strcmp(tname, "user_pt_regs") == 0) 7247 return true; 7248 if (__builtin_types_compatible_p(bpf_user_pt_regs_t, struct user_regs_struct) && 7249 btf_is_struct(t) && strcmp(tname, "user_regs_struct") == 0) 7250 return true; 7251 break; 7252 case BPF_PROG_TYPE_RAW_TRACEPOINT: 7253 case BPF_PROG_TYPE_RAW_TRACEPOINT_WRITABLE: 7254 /* allow u64* as ctx */ 7255 if (btf_is_int(t) && t->size == 8) 7256 return true; 7257 break; 7258 default: 7259 break; 7260 } 7261 7262 out_warn: 7263 pr_warn("prog '%s': subprog '%s' arg#%d is expected to be of `struct %s *` type\n", 7264 prog->name, subprog_name, arg_idx, ctx_name); 7265 return false; 7266 } 7267 7268 static int clone_func_btf_info(struct btf *btf, int orig_fn_id, struct bpf_program *prog) 7269 { 7270 int fn_id, fn_proto_id, ret_type_id, orig_proto_id; 7271 int i, err, arg_cnt, fn_name_off, linkage; 7272 struct btf_type *fn_t, *fn_proto_t, *t; 7273 struct btf_param *p; 7274 7275 /* caller already validated FUNC -> FUNC_PROTO validity */ 7276 fn_t = btf_type_by_id(btf, orig_fn_id); 7277 fn_proto_t = btf_type_by_id(btf, fn_t->type); 7278 7279 /* Note that each btf__add_xxx() operation invalidates 7280 * all btf_type and string pointers, so we need to be 7281 * very careful when cloning BTF types. BTF type 7282 * pointers have to be always refetched. And to avoid 7283 * problems with invalidated string pointers, we 7284 * add empty strings initially, then just fix up 7285 * name_off offsets in place. Offsets are stable for 7286 * existing strings, so that works out. 7287 */ 7288 fn_name_off = fn_t->name_off; /* we are about to invalidate fn_t */ 7289 linkage = btf_func_linkage(fn_t); 7290 orig_proto_id = fn_t->type; /* original FUNC_PROTO ID */ 7291 ret_type_id = fn_proto_t->type; /* fn_proto_t will be invalidated */ 7292 arg_cnt = btf_vlen(fn_proto_t); 7293 7294 /* clone FUNC_PROTO and its params */ 7295 fn_proto_id = btf__add_func_proto(btf, ret_type_id); 7296 if (fn_proto_id < 0) 7297 return -EINVAL; 7298 7299 for (i = 0; i < arg_cnt; i++) { 7300 int name_off; 7301 7302 /* copy original parameter data */ 7303 t = btf_type_by_id(btf, orig_proto_id); 7304 p = &btf_params(t)[i]; 7305 name_off = p->name_off; 7306 7307 err = btf__add_func_param(btf, "", p->type); 7308 if (err) 7309 return err; 7310 7311 fn_proto_t = btf_type_by_id(btf, fn_proto_id); 7312 p = &btf_params(fn_proto_t)[i]; 7313 p->name_off = name_off; /* use remembered str offset */ 7314 } 7315 7316 /* clone FUNC now, btf__add_func() enforces non-empty name, so use 7317 * entry program's name as a placeholder, which we replace immediately 7318 * with original name_off 7319 */ 7320 fn_id = btf__add_func(btf, prog->name, linkage, fn_proto_id); 7321 if (fn_id < 0) 7322 return -EINVAL; 7323 7324 fn_t = btf_type_by_id(btf, fn_id); 7325 fn_t->name_off = fn_name_off; /* reuse original string */ 7326 7327 return fn_id; 7328 } 7329 7330 /* Check if main program or global subprog's function prototype has `arg:ctx` 7331 * argument tags, and, if necessary, substitute correct type to match what BPF 7332 * verifier would expect, taking into account specific program type. This 7333 * allows to support __arg_ctx tag transparently on old kernels that don't yet 7334 * have a native support for it in the verifier, making user's life much 7335 * easier. 7336 */ 7337 static int bpf_program_fixup_func_info(struct bpf_object *obj, struct bpf_program *prog) 7338 { 7339 const char *ctx_name = NULL, *ctx_tag = "arg:ctx", *fn_name; 7340 struct bpf_func_info_min *func_rec; 7341 struct btf_type *fn_t, *fn_proto_t; 7342 struct btf *btf = obj->btf; 7343 const struct btf_type *t; 7344 struct btf_param *p; 7345 int ptr_id = 0, struct_id, tag_id, orig_fn_id; 7346 int i, n, arg_idx, arg_cnt, err, rec_idx; 7347 int *orig_ids; 7348 7349 /* no .BTF.ext, no problem */ 7350 if (!obj->btf_ext || !prog->func_info) 7351 return 0; 7352 7353 /* don't do any fix ups if kernel natively supports __arg_ctx */ 7354 if (kernel_supports(obj, FEAT_ARG_CTX_TAG)) 7355 return 0; 7356 7357 /* some BPF program types just don't have named context structs, so 7358 * this fallback mechanism doesn't work for them 7359 */ 7360 for (i = 0; i < ARRAY_SIZE(global_ctx_map); i++) { 7361 if (global_ctx_map[i].prog_type != prog->type) 7362 continue; 7363 ctx_name = global_ctx_map[i].ctx_name; 7364 break; 7365 } 7366 if (!ctx_name) 7367 return 0; 7368 7369 /* remember original func BTF IDs to detect if we already cloned them */ 7370 orig_ids = calloc(prog->func_info_cnt, sizeof(*orig_ids)); 7371 if (!orig_ids) 7372 return -ENOMEM; 7373 for (i = 0; i < prog->func_info_cnt; i++) { 7374 func_rec = prog->func_info + prog->func_info_rec_size * i; 7375 orig_ids[i] = func_rec->type_id; 7376 } 7377 7378 /* go through each DECL_TAG with "arg:ctx" and see if it points to one 7379 * of our subprogs; if yes and subprog is global and needs adjustment, 7380 * clone and adjust FUNC -> FUNC_PROTO combo 7381 */ 7382 for (i = 1, n = btf__type_cnt(btf); i < n; i++) { 7383 /* only DECL_TAG with "arg:ctx" value are interesting */ 7384 t = btf__type_by_id(btf, i); 7385 if (!btf_is_decl_tag(t)) 7386 continue; 7387 if (strcmp(btf__str_by_offset(btf, t->name_off), ctx_tag) != 0) 7388 continue; 7389 7390 /* only global funcs need adjustment, if at all */ 7391 orig_fn_id = t->type; 7392 fn_t = btf_type_by_id(btf, orig_fn_id); 7393 if (!btf_is_func(fn_t) || btf_func_linkage(fn_t) != BTF_FUNC_GLOBAL) 7394 continue; 7395 7396 /* sanity check FUNC -> FUNC_PROTO chain, just in case */ 7397 fn_proto_t = btf_type_by_id(btf, fn_t->type); 7398 if (!fn_proto_t || !btf_is_func_proto(fn_proto_t)) 7399 continue; 7400 7401 /* find corresponding func_info record */ 7402 func_rec = NULL; 7403 for (rec_idx = 0; rec_idx < prog->func_info_cnt; rec_idx++) { 7404 if (orig_ids[rec_idx] == t->type) { 7405 func_rec = prog->func_info + prog->func_info_rec_size * rec_idx; 7406 break; 7407 } 7408 } 7409 /* current main program doesn't call into this subprog */ 7410 if (!func_rec) 7411 continue; 7412 7413 /* some more sanity checking of DECL_TAG */ 7414 arg_cnt = btf_vlen(fn_proto_t); 7415 arg_idx = btf_decl_tag(t)->component_idx; 7416 if (arg_idx < 0 || arg_idx >= arg_cnt) 7417 continue; 7418 7419 /* check if we should fix up argument type */ 7420 p = &btf_params(fn_proto_t)[arg_idx]; 7421 fn_name = btf__str_by_offset(btf, fn_t->name_off) ?: "<anon>"; 7422 if (!need_func_arg_type_fixup(btf, prog, fn_name, arg_idx, p->type, ctx_name)) 7423 continue; 7424 7425 /* clone fn/fn_proto, unless we already did it for another arg */ 7426 if (func_rec->type_id == orig_fn_id) { 7427 int fn_id; 7428 7429 fn_id = clone_func_btf_info(btf, orig_fn_id, prog); 7430 if (fn_id < 0) { 7431 err = fn_id; 7432 goto err_out; 7433 } 7434 7435 /* point func_info record to a cloned FUNC type */ 7436 func_rec->type_id = fn_id; 7437 } 7438 7439 /* create PTR -> STRUCT type chain to mark PTR_TO_CTX argument; 7440 * we do it just once per main BPF program, as all global 7441 * funcs share the same program type, so need only PTR -> 7442 * STRUCT type chain 7443 */ 7444 if (ptr_id == 0) { 7445 struct_id = btf__add_struct(btf, ctx_name, 0); 7446 ptr_id = btf__add_ptr(btf, struct_id); 7447 if (ptr_id < 0 || struct_id < 0) { 7448 err = -EINVAL; 7449 goto err_out; 7450 } 7451 } 7452 7453 /* for completeness, clone DECL_TAG and point it to cloned param */ 7454 tag_id = btf__add_decl_tag(btf, ctx_tag, func_rec->type_id, arg_idx); 7455 if (tag_id < 0) { 7456 err = -EINVAL; 7457 goto err_out; 7458 } 7459 7460 /* all the BTF manipulations invalidated pointers, refetch them */ 7461 fn_t = btf_type_by_id(btf, func_rec->type_id); 7462 fn_proto_t = btf_type_by_id(btf, fn_t->type); 7463 7464 /* fix up type ID pointed to by param */ 7465 p = &btf_params(fn_proto_t)[arg_idx]; 7466 p->type = ptr_id; 7467 } 7468 7469 free(orig_ids); 7470 return 0; 7471 err_out: 7472 free(orig_ids); 7473 return err; 7474 } 7475 7476 static int bpf_object__relocate(struct bpf_object *obj, const char *targ_btf_path) 7477 { 7478 struct bpf_program *prog; 7479 size_t i, j; 7480 int err; 7481 7482 if (obj->btf_ext) { 7483 err = bpf_object__relocate_core(obj, targ_btf_path); 7484 if (err) { 7485 pr_warn("failed to perform CO-RE relocations: %s\n", 7486 errstr(err)); 7487 return err; 7488 } 7489 bpf_object__sort_relos(obj); 7490 } 7491 7492 /* place globals at the end of the arena (if supported) */ 7493 if (obj->arena_map_idx >= 0 && kernel_supports(obj, FEAT_LDIMM64_FULL_RANGE_OFF)) { 7494 struct bpf_map *arena_map = &obj->maps[obj->arena_map_idx]; 7495 7496 obj->arena_data_off = bpf_map_mmap_sz(arena_map) - 7497 roundup(obj->arena_data_sz, sysconf(_SC_PAGE_SIZE)); 7498 } 7499 7500 /* Before relocating calls pre-process relocations and mark 7501 * few ld_imm64 instructions that points to subprogs. 7502 * Otherwise bpf_object__reloc_code() later would have to consider 7503 * all ld_imm64 insns as relocation candidates. That would 7504 * reduce relocation speed, since amount of find_prog_insn_relo() 7505 * would increase and most of them will fail to find a relo. 7506 */ 7507 for (i = 0; i < obj->nr_programs; i++) { 7508 prog = &obj->programs[i]; 7509 for (j = 0; j < prog->nr_reloc; j++) { 7510 struct reloc_desc *relo = &prog->reloc_desc[j]; 7511 struct bpf_insn *insn = &prog->insns[relo->insn_idx]; 7512 7513 /* mark the insn, so it's recognized by insn_is_pseudo_func() */ 7514 if (relo->type == RELO_SUBPROG_ADDR) 7515 insn[0].src_reg = BPF_PSEUDO_FUNC; 7516 } 7517 } 7518 7519 /* relocate subprogram calls and append used subprograms to main 7520 * programs; each copy of subprogram code needs to be relocated 7521 * differently for each main program, because its code location might 7522 * have changed. 7523 * Append subprog relos to main programs to allow data relos to be 7524 * processed after text is completely relocated. 7525 */ 7526 for (i = 0; i < obj->nr_programs; i++) { 7527 prog = &obj->programs[i]; 7528 /* sub-program's sub-calls are relocated within the context of 7529 * its main program only 7530 */ 7531 if (prog_is_subprog(obj, prog)) 7532 continue; 7533 if (!prog->autoload) 7534 continue; 7535 7536 err = bpf_object__relocate_calls(obj, prog); 7537 if (err) { 7538 pr_warn("prog '%s': failed to relocate calls: %s\n", 7539 prog->name, errstr(err)); 7540 return err; 7541 } 7542 7543 err = bpf_prog_assign_exc_cb(obj, prog); 7544 if (err) 7545 return err; 7546 /* Now, also append exception callback if it has not been done already. */ 7547 if (prog->exception_cb_idx >= 0) { 7548 struct bpf_program *subprog = &obj->programs[prog->exception_cb_idx]; 7549 7550 /* Calling exception callback directly is disallowed, which the 7551 * verifier will reject later. In case it was processed already, 7552 * we can skip this step, otherwise for all other valid cases we 7553 * have to append exception callback now. 7554 */ 7555 if (subprog->sub_insn_off == 0) { 7556 err = bpf_object__append_subprog_code(obj, prog, subprog); 7557 if (err) 7558 return err; 7559 err = bpf_object__reloc_code(obj, prog, subprog); 7560 if (err) 7561 return err; 7562 } 7563 } 7564 } 7565 for (i = 0; i < obj->nr_programs; i++) { 7566 prog = &obj->programs[i]; 7567 if (prog_is_subprog(obj, prog)) 7568 continue; 7569 if (!prog->autoload) 7570 continue; 7571 7572 /* Process data relos for main programs */ 7573 err = bpf_object__relocate_data(obj, prog); 7574 if (err) { 7575 pr_warn("prog '%s': failed to relocate data references: %s\n", 7576 prog->name, errstr(err)); 7577 return err; 7578 } 7579 7580 /* Fix up .BTF.ext information, if necessary */ 7581 err = bpf_program_fixup_func_info(obj, prog); 7582 if (err) { 7583 pr_warn("prog '%s': failed to perform .BTF.ext fix ups: %s\n", 7584 prog->name, errstr(err)); 7585 return err; 7586 } 7587 } 7588 7589 return 0; 7590 } 7591 7592 static int bpf_object__collect_st_ops_relos(struct bpf_object *obj, 7593 Elf64_Shdr *shdr, Elf_Data *data); 7594 7595 static int bpf_object__collect_map_relos(struct bpf_object *obj, 7596 Elf64_Shdr *shdr, Elf_Data *data) 7597 { 7598 const int bpf_ptr_sz = 8, host_ptr_sz = sizeof(void *); 7599 int i, j, nrels, new_sz; 7600 const struct btf_var_secinfo *vi = NULL; 7601 const struct btf_type *sec, *var, *def; 7602 struct bpf_map *map = NULL, *targ_map = NULL; 7603 struct bpf_program *targ_prog = NULL; 7604 bool is_prog_array, is_map_in_map; 7605 const struct btf_member *member; 7606 const char *name, *mname, *type; 7607 unsigned int moff; 7608 Elf64_Sym *sym; 7609 Elf64_Rel *rel; 7610 void *tmp; 7611 7612 if (!obj->efile.btf_maps_sec_btf_id || !obj->btf) 7613 return -EINVAL; 7614 sec = btf__type_by_id(obj->btf, obj->efile.btf_maps_sec_btf_id); 7615 if (!sec) 7616 return -EINVAL; 7617 7618 nrels = shdr->sh_size / shdr->sh_entsize; 7619 for (i = 0; i < nrels; i++) { 7620 rel = elf_rel_by_idx(data, i); 7621 if (!rel) { 7622 pr_warn(".maps relo #%d: failed to get ELF relo\n", i); 7623 return -LIBBPF_ERRNO__FORMAT; 7624 } 7625 7626 sym = elf_sym_by_idx(obj, ELF64_R_SYM(rel->r_info)); 7627 if (!sym) { 7628 pr_warn(".maps relo #%d: symbol %zx not found\n", 7629 i, (size_t)ELF64_R_SYM(rel->r_info)); 7630 return -LIBBPF_ERRNO__FORMAT; 7631 } 7632 name = elf_sym_str(obj, sym->st_name) ?: "<?>"; 7633 7634 pr_debug(".maps relo #%d: for %zd value %zu rel->r_offset %zu name %u ('%s')\n", 7635 i, (ssize_t)(rel->r_info >> 32), (size_t)sym->st_value, 7636 (size_t)rel->r_offset, sym->st_name, name); 7637 7638 for (j = 0; j < obj->nr_maps; j++) { 7639 map = &obj->maps[j]; 7640 if (map->sec_idx != obj->efile.btf_maps_shndx) 7641 continue; 7642 7643 vi = btf_var_secinfos(sec) + map->btf_var_idx; 7644 if (vi->offset <= rel->r_offset && 7645 rel->r_offset + bpf_ptr_sz <= vi->offset + vi->size) 7646 break; 7647 } 7648 if (j == obj->nr_maps) { 7649 pr_warn(".maps relo #%d: cannot find map '%s' at rel->r_offset %zu\n", 7650 i, name, (size_t)rel->r_offset); 7651 return -EINVAL; 7652 } 7653 7654 is_map_in_map = bpf_map_type__is_map_in_map(map->def.type); 7655 is_prog_array = map->def.type == BPF_MAP_TYPE_PROG_ARRAY; 7656 type = is_map_in_map ? "map" : "prog"; 7657 if (is_map_in_map) { 7658 if (sym->st_shndx != obj->efile.btf_maps_shndx) { 7659 pr_warn(".maps relo #%d: '%s' isn't a BTF-defined map\n", 7660 i, name); 7661 return -LIBBPF_ERRNO__RELOC; 7662 } 7663 if (map->def.type == BPF_MAP_TYPE_HASH_OF_MAPS && 7664 map->def.key_size != sizeof(int)) { 7665 pr_warn(".maps relo #%d: hash-of-maps '%s' should have key size %zu.\n", 7666 i, map->name, sizeof(int)); 7667 return -EINVAL; 7668 } 7669 targ_map = bpf_object__find_map_by_name(obj, name); 7670 if (!targ_map) { 7671 pr_warn(".maps relo #%d: '%s' isn't a valid map reference\n", 7672 i, name); 7673 return -ESRCH; 7674 } 7675 } else if (is_prog_array) { 7676 targ_prog = bpf_object__find_program_by_name(obj, name); 7677 if (!targ_prog) { 7678 pr_warn(".maps relo #%d: '%s' isn't a valid program reference\n", 7679 i, name); 7680 return -ESRCH; 7681 } 7682 if (targ_prog->sec_idx != sym->st_shndx || 7683 targ_prog->sec_insn_off * 8 != sym->st_value || 7684 prog_is_subprog(obj, targ_prog)) { 7685 pr_warn(".maps relo #%d: '%s' isn't an entry-point program\n", 7686 i, name); 7687 return -LIBBPF_ERRNO__RELOC; 7688 } 7689 } else { 7690 return -EINVAL; 7691 } 7692 7693 var = btf__type_by_id(obj->btf, vi->type); 7694 def = skip_mods_and_typedefs(obj->btf, var->type, NULL); 7695 if (btf_vlen(def) == 0) 7696 return -EINVAL; 7697 member = btf_members(def) + btf_vlen(def) - 1; 7698 mname = btf__name_by_offset(obj->btf, member->name_off); 7699 if (strcmp(mname, "values")) 7700 return -EINVAL; 7701 7702 moff = btf_member_bit_offset(def, btf_vlen(def) - 1) / 8; 7703 if (rel->r_offset - vi->offset < moff) 7704 return -EINVAL; 7705 7706 moff = rel->r_offset - vi->offset - moff; 7707 /* here we use BPF pointer size, which is always 64 bit, as we 7708 * are parsing ELF that was built for BPF target 7709 */ 7710 if (moff % bpf_ptr_sz) 7711 return -EINVAL; 7712 moff /= bpf_ptr_sz; 7713 if (moff >= map->init_slots_sz) { 7714 new_sz = moff + 1; 7715 tmp = libbpf_reallocarray(map->init_slots, new_sz, host_ptr_sz); 7716 if (!tmp) 7717 return -ENOMEM; 7718 map->init_slots = tmp; 7719 memset(map->init_slots + map->init_slots_sz, 0, 7720 (new_sz - map->init_slots_sz) * host_ptr_sz); 7721 map->init_slots_sz = new_sz; 7722 } 7723 map->init_slots[moff] = is_map_in_map ? (void *)targ_map : (void *)targ_prog; 7724 7725 pr_debug(".maps relo #%d: map '%s' slot [%u] points to %s '%s'\n", 7726 i, map->name, moff, type, name); 7727 } 7728 7729 return 0; 7730 } 7731 7732 static int bpf_object__collect_relos(struct bpf_object *obj) 7733 { 7734 int i, err; 7735 7736 for (i = 0; i < obj->efile.sec_cnt; i++) { 7737 struct elf_sec_desc *sec_desc = &obj->efile.secs[i]; 7738 Elf64_Shdr *shdr; 7739 Elf_Data *data; 7740 int idx; 7741 7742 if (sec_desc->sec_type != SEC_RELO) 7743 continue; 7744 7745 shdr = sec_desc->shdr; 7746 data = sec_desc->data; 7747 idx = shdr->sh_info; 7748 7749 if (shdr->sh_type != SHT_REL || idx < 0 || idx >= obj->efile.sec_cnt) { 7750 pr_warn("internal error at %d\n", __LINE__); 7751 return -LIBBPF_ERRNO__INTERNAL; 7752 } 7753 7754 if (obj->efile.secs[idx].sec_type == SEC_ST_OPS) 7755 err = bpf_object__collect_st_ops_relos(obj, shdr, data); 7756 else if (idx == obj->efile.btf_maps_shndx) 7757 err = bpf_object__collect_map_relos(obj, shdr, data); 7758 else 7759 err = bpf_object__collect_prog_relos(obj, shdr, data); 7760 if (err) 7761 return err; 7762 } 7763 7764 bpf_object__sort_relos(obj); 7765 return 0; 7766 } 7767 7768 static bool insn_is_helper_call(struct bpf_insn *insn, enum bpf_func_id *func_id) 7769 { 7770 if (BPF_CLASS(insn->code) == BPF_JMP && 7771 BPF_OP(insn->code) == BPF_CALL && 7772 BPF_SRC(insn->code) == BPF_K && 7773 insn->src_reg == 0 && 7774 insn->dst_reg == 0) { 7775 *func_id = insn->imm; 7776 return true; 7777 } 7778 return false; 7779 } 7780 7781 static int bpf_object__sanitize_prog(struct bpf_object *obj, struct bpf_program *prog) 7782 { 7783 struct bpf_insn *insn = prog->insns; 7784 enum bpf_func_id func_id; 7785 int i; 7786 7787 if (obj->gen_loader) 7788 return 0; 7789 7790 for (i = 0; i < prog->insns_cnt; i++, insn++) { 7791 if (!insn_is_helper_call(insn, &func_id)) 7792 continue; 7793 7794 /* on kernels that don't yet support 7795 * bpf_probe_read_{kernel,user}[_str] helpers, fall back 7796 * to bpf_probe_read() which works well for old kernels 7797 */ 7798 switch (func_id) { 7799 case BPF_FUNC_probe_read_kernel: 7800 case BPF_FUNC_probe_read_user: 7801 if (!kernel_supports(obj, FEAT_PROBE_READ_KERN)) 7802 insn->imm = BPF_FUNC_probe_read; 7803 break; 7804 case BPF_FUNC_probe_read_kernel_str: 7805 case BPF_FUNC_probe_read_user_str: 7806 if (!kernel_supports(obj, FEAT_PROBE_READ_KERN)) 7807 insn->imm = BPF_FUNC_probe_read_str; 7808 break; 7809 default: 7810 break; 7811 } 7812 } 7813 return 0; 7814 } 7815 7816 static int libbpf_find_attach_btf_id(struct bpf_program *prog, const char *attach_name, 7817 int *btf_obj_fd, int *btf_type_id); 7818 7819 static inline bool is_tracing_multi(enum bpf_attach_type type) 7820 { 7821 return type == BPF_TRACE_FENTRY_MULTI || type == BPF_TRACE_FEXIT_MULTI || 7822 type == BPF_TRACE_FSESSION_MULTI; 7823 } 7824 7825 static const struct module_btf *find_attach_module(struct bpf_object *obj, const char *attach) 7826 { 7827 const char *sep, *mod_name = NULL; 7828 int i, mod_len, err; 7829 7830 /* 7831 * We expect attach string in the form of either 7832 * - function_pattern or 7833 * - <module>:function_pattern 7834 */ 7835 sep = strchr(attach, ':'); 7836 if (sep) { 7837 mod_name = attach; 7838 mod_len = sep - mod_name; 7839 } 7840 if (!mod_name) 7841 return NULL; 7842 7843 err = load_module_btfs(obj); 7844 if (err) 7845 return NULL; 7846 7847 for (i = 0; i < obj->btf_module_cnt; i++) { 7848 const struct module_btf *mod = &obj->btf_modules[i]; 7849 7850 if (strncmp(mod->name, mod_name, mod_len) == 0 && mod->name[mod_len] == '\0') 7851 return mod; 7852 } 7853 return NULL; 7854 } 7855 7856 static int tracing_multi_mod_fd(struct bpf_program *prog, int *btf_obj_fd) 7857 { 7858 const char *attach_name, *sep; 7859 const struct module_btf *mod; 7860 7861 *btf_obj_fd = 0; 7862 attach_name = strchr(prog->sec_name, '/'); 7863 7864 /* Program with no details in spec, using kernel btf. */ 7865 if (!attach_name) 7866 return 0; 7867 7868 /* Program with no module section, using kernel btf. */ 7869 sep = strchr(++attach_name, ':'); 7870 if (!sep) 7871 return 0; 7872 7873 /* Program with module specified, get its btf fd. */ 7874 mod = find_attach_module(prog->obj, attach_name); 7875 if (!mod) 7876 return -EINVAL; 7877 7878 *btf_obj_fd = mod->fd; 7879 return 0; 7880 } 7881 7882 /* this is called as prog->sec_def->prog_prepare_load_fn for libbpf-supported sec_defs */ 7883 static int libbpf_prepare_prog_load(struct bpf_program *prog, 7884 struct bpf_prog_load_opts *opts, long cookie) 7885 { 7886 enum sec_def_flags def = cookie; 7887 7888 /* old kernels might not support specifying expected_attach_type */ 7889 if ((def & SEC_EXP_ATTACH_OPT) && !kernel_supports(prog->obj, FEAT_EXP_ATTACH_TYPE)) 7890 opts->expected_attach_type = 0; 7891 7892 if (def & SEC_SLEEPABLE) 7893 opts->prog_flags |= BPF_F_SLEEPABLE; 7894 7895 if (prog->type == BPF_PROG_TYPE_XDP && (def & SEC_XDP_FRAGS)) 7896 opts->prog_flags |= BPF_F_XDP_HAS_FRAGS; 7897 7898 /* special check for usdt to use uprobe_multi link */ 7899 if ((def & SEC_USDT) && kernel_supports(prog->obj, FEAT_UPROBE_MULTI_LINK)) { 7900 /* for BPF_TRACE_UPROBE_MULTI, user might want to query expected_attach_type 7901 * in prog, and expected_attach_type we set in kernel is from opts, so we 7902 * update both. 7903 */ 7904 prog->expected_attach_type = BPF_TRACE_UPROBE_MULTI; 7905 opts->expected_attach_type = BPF_TRACE_UPROBE_MULTI; 7906 } 7907 7908 if ((def & SEC_ATTACH_BTF) && !prog->attach_btf_id) { 7909 int btf_obj_fd = 0, btf_type_id = 0, err; 7910 const char *attach_name; 7911 7912 attach_name = strchr(prog->sec_name, '/'); 7913 if (!attach_name) { 7914 /* if BPF program is annotated with just SEC("fentry") 7915 * (or similar) without declaratively specifying 7916 * target, then it is expected that target will be 7917 * specified with bpf_program__set_attach_target() at 7918 * runtime before BPF object load step. If not, then 7919 * there is nothing to load into the kernel as BPF 7920 * verifier won't be able to validate BPF program 7921 * correctness anyways. 7922 */ 7923 pr_warn("prog '%s': no BTF-based attach target is specified, use bpf_program__set_attach_target()\n", 7924 prog->name); 7925 return -EINVAL; 7926 } 7927 attach_name++; /* skip over / */ 7928 7929 err = libbpf_find_attach_btf_id(prog, attach_name, &btf_obj_fd, &btf_type_id); 7930 if (err) 7931 return err; 7932 7933 /* cache resolved BTF FD and BTF type ID in the prog */ 7934 prog->attach_btf_obj_fd = btf_obj_fd; 7935 prog->attach_btf_id = btf_type_id; 7936 7937 /* but by now libbpf common logic is not utilizing 7938 * prog->attach_btf_obj_fd/prog->attach_btf_id anymore because 7939 * this callback is called after opts were populated by 7940 * libbpf, so this callback has to update opts explicitly here 7941 */ 7942 opts->attach_btf_obj_fd = btf_obj_fd; 7943 opts->attach_btf_id = btf_type_id; 7944 } 7945 7946 if (is_tracing_multi(prog->expected_attach_type)) { 7947 int err, btf_obj_fd = 0; 7948 7949 err = tracing_multi_mod_fd(prog, &btf_obj_fd); 7950 if (err < 0) 7951 return err; 7952 7953 prog->attach_btf_obj_fd = btf_obj_fd; 7954 opts->attach_btf_obj_fd = btf_obj_fd; 7955 } 7956 7957 return 0; 7958 } 7959 7960 static void fixup_verifier_log(struct bpf_program *prog, char *buf, size_t buf_sz); 7961 7962 static int bpf_object_load_prog(struct bpf_object *obj, struct bpf_program *prog, 7963 struct bpf_insn *insns, int insns_cnt, 7964 const char *license, __u32 kern_version, int *prog_fd) 7965 { 7966 LIBBPF_OPTS(bpf_prog_load_opts, load_attr); 7967 const char *prog_name = NULL; 7968 size_t log_buf_size = 0; 7969 char *log_buf = NULL, *tmp; 7970 bool own_log_buf = true; 7971 __u32 log_level = prog->log_level; 7972 int ret, err; 7973 7974 /* Be more helpful by rejecting programs that can't be validated early 7975 * with more meaningful and actionable error message. 7976 */ 7977 switch (prog->type) { 7978 case BPF_PROG_TYPE_UNSPEC: 7979 /* 7980 * The program type must be set. Most likely we couldn't find a proper 7981 * section definition at load time, and thus we didn't infer the type. 7982 */ 7983 pr_warn("prog '%s': missing BPF prog type, check ELF section name '%s'\n", 7984 prog->name, prog->sec_name); 7985 return -EINVAL; 7986 case BPF_PROG_TYPE_STRUCT_OPS: 7987 if (prog->attach_btf_id == 0) { 7988 pr_warn("prog '%s': SEC(\"struct_ops\") program isn't referenced anywhere, did you forget to use it?\n", 7989 prog->name); 7990 return -EINVAL; 7991 } 7992 break; 7993 default: 7994 break; 7995 } 7996 7997 if (!insns || !insns_cnt) 7998 return -EINVAL; 7999 8000 if (kernel_supports(obj, FEAT_PROG_NAME)) 8001 prog_name = prog->name; 8002 load_attr.attach_prog_fd = prog->attach_prog_fd; 8003 load_attr.attach_btf_obj_fd = prog->attach_btf_obj_fd; 8004 load_attr.attach_btf_id = prog->attach_btf_id; 8005 load_attr.kern_version = kern_version; 8006 load_attr.prog_ifindex = prog->prog_ifindex; 8007 load_attr.expected_attach_type = prog->expected_attach_type; 8008 8009 /* specify func_info/line_info only if kernel supports them */ 8010 if (obj->btf && btf__fd(obj->btf) >= 0 && kernel_supports(obj, FEAT_BTF_FUNC)) { 8011 load_attr.prog_btf_fd = btf__fd(obj->btf); 8012 load_attr.func_info = prog->func_info; 8013 load_attr.func_info_rec_size = prog->func_info_rec_size; 8014 load_attr.func_info_cnt = prog->func_info_cnt; 8015 load_attr.line_info = prog->line_info; 8016 load_attr.line_info_rec_size = prog->line_info_rec_size; 8017 load_attr.line_info_cnt = prog->line_info_cnt; 8018 } 8019 load_attr.log_level = log_level; 8020 load_attr.prog_flags = prog->prog_flags; 8021 load_attr.fd_array = obj->fd_array; 8022 8023 load_attr.token_fd = obj->token_fd; 8024 if (obj->token_fd) 8025 load_attr.prog_flags |= BPF_F_TOKEN_FD; 8026 8027 /* adjust load_attr if sec_def provides custom preload callback */ 8028 if (prog->sec_def && prog->sec_def->prog_prepare_load_fn) { 8029 err = prog->sec_def->prog_prepare_load_fn(prog, &load_attr, prog->sec_def->cookie); 8030 if (err < 0) { 8031 pr_warn("prog '%s': failed to prepare load attributes: %s\n", 8032 prog->name, errstr(err)); 8033 return err; 8034 } 8035 insns = prog->insns; 8036 insns_cnt = prog->insns_cnt; 8037 } 8038 8039 if (obj->gen_loader) { 8040 bpf_gen__prog_load(obj->gen_loader, prog->type, prog->name, 8041 license, insns, insns_cnt, &load_attr, 8042 prog - obj->programs); 8043 *prog_fd = -1; 8044 return 0; 8045 } 8046 8047 retry_load: 8048 /* if log_level is zero, we don't request logs initially even if 8049 * custom log_buf is specified; if the program load fails, then we'll 8050 * bump log_level to 1 and use either custom log_buf or we'll allocate 8051 * our own and retry the load to get details on what failed 8052 */ 8053 if (log_level) { 8054 if (prog->log_buf) { 8055 log_buf = prog->log_buf; 8056 log_buf_size = prog->log_size; 8057 own_log_buf = false; 8058 } else if (obj->log_buf) { 8059 log_buf = obj->log_buf; 8060 log_buf_size = obj->log_size; 8061 own_log_buf = false; 8062 } else { 8063 log_buf_size = max((size_t)BPF_LOG_BUF_SIZE, log_buf_size * 2); 8064 tmp = realloc(log_buf, log_buf_size); 8065 if (!tmp) { 8066 ret = -ENOMEM; 8067 goto out; 8068 } 8069 log_buf = tmp; 8070 log_buf[0] = '\0'; 8071 own_log_buf = true; 8072 } 8073 } 8074 8075 load_attr.log_buf = log_buf; 8076 load_attr.log_size = log_buf_size; 8077 load_attr.log_level = log_level; 8078 8079 ret = bpf_prog_load(prog->type, prog_name, license, insns, insns_cnt, &load_attr); 8080 if (ret >= 0) { 8081 if (log_level && own_log_buf) { 8082 pr_debug("prog '%s': -- BEGIN PROG LOAD LOG --\n%s-- END PROG LOAD LOG --\n", 8083 prog->name, log_buf); 8084 } 8085 8086 if (obj->has_rodata && kernel_supports(obj, FEAT_PROG_BIND_MAP)) { 8087 struct bpf_map *map; 8088 int i; 8089 8090 for (i = 0; i < obj->nr_maps; i++) { 8091 map = &prog->obj->maps[i]; 8092 if (map->libbpf_type != LIBBPF_MAP_RODATA) 8093 continue; 8094 8095 if (bpf_prog_bind_map(ret, map->fd, NULL)) { 8096 pr_warn("prog '%s': failed to bind map '%s': %s\n", 8097 prog->name, map->real_name, errstr(errno)); 8098 /* Don't fail hard if can't bind rodata. */ 8099 } 8100 } 8101 } 8102 8103 *prog_fd = ret; 8104 ret = 0; 8105 goto out; 8106 } 8107 8108 if (log_level == 0) { 8109 log_level = 1; 8110 goto retry_load; 8111 } 8112 /* On ENOSPC, increase log buffer size and retry, unless custom 8113 * log_buf is specified. 8114 * Be careful to not overflow u32, though. Kernel's log buf size limit 8115 * isn't part of UAPI so it can always be bumped to full 4GB. So don't 8116 * multiply by 2 unless we are sure we'll fit within 32 bits. 8117 * Currently, we'll get -EINVAL when we reach (UINT_MAX >> 2). 8118 */ 8119 if (own_log_buf && errno == ENOSPC && log_buf_size <= UINT_MAX / 2) 8120 goto retry_load; 8121 8122 ret = -errno; 8123 8124 /* post-process verifier log to improve error descriptions */ 8125 fixup_verifier_log(prog, log_buf, log_buf_size); 8126 8127 pr_warn("prog '%s': BPF program load failed: %s\n", prog->name, errstr(errno)); 8128 pr_perm_msg(ret); 8129 8130 if (own_log_buf && log_buf && log_buf[0] != '\0') { 8131 pr_warn("prog '%s': -- BEGIN PROG LOAD LOG --\n%s-- END PROG LOAD LOG --\n", 8132 prog->name, log_buf); 8133 } 8134 8135 out: 8136 if (own_log_buf) 8137 free(log_buf); 8138 return ret; 8139 } 8140 8141 static char *find_prev_line(char *buf, char *cur) 8142 { 8143 char *p; 8144 8145 if (cur == buf) /* end of a log buf */ 8146 return NULL; 8147 8148 p = cur - 1; 8149 while (p - 1 >= buf && *(p - 1) != '\n') 8150 p--; 8151 8152 return p; 8153 } 8154 8155 static void patch_log(char *buf, size_t buf_sz, size_t log_sz, 8156 char *orig, size_t orig_sz, const char *patch) 8157 { 8158 /* size of the remaining log content to the right from the to-be-replaced part */ 8159 size_t rem_sz = (buf + log_sz) - (orig + orig_sz); 8160 size_t patch_sz = strlen(patch); 8161 8162 if (patch_sz != orig_sz) { 8163 /* If patch line(s) are longer than original piece of verifier log, 8164 * shift log contents by (patch_sz - orig_sz) bytes to the right 8165 * starting from after to-be-replaced part of the log. 8166 * 8167 * If patch line(s) are shorter than original piece of verifier log, 8168 * shift log contents by (orig_sz - patch_sz) bytes to the left 8169 * starting from after to-be-replaced part of the log 8170 * 8171 * We need to be careful about not overflowing available 8172 * buf_sz capacity. If that's the case, we'll truncate the end 8173 * of the original log, as necessary. 8174 */ 8175 if (patch_sz > orig_sz) { 8176 if (orig + patch_sz >= buf + buf_sz) { 8177 /* patch is big enough to cover remaining space completely */ 8178 patch_sz -= (orig + patch_sz) - (buf + buf_sz) + 1; 8179 rem_sz = 0; 8180 } else if (patch_sz - orig_sz > buf_sz - log_sz) { 8181 /* patch causes part of remaining log to be truncated */ 8182 rem_sz -= (patch_sz - orig_sz) - (buf_sz - log_sz); 8183 } 8184 } 8185 /* shift remaining log to the right by calculated amount */ 8186 memmove(orig + patch_sz, orig + orig_sz, rem_sz); 8187 } 8188 8189 memcpy(orig, patch, patch_sz); 8190 } 8191 8192 static void fixup_log_failed_core_relo(struct bpf_program *prog, 8193 char *buf, size_t buf_sz, size_t log_sz, 8194 char *line1, char *line2, char *line3) 8195 { 8196 /* Expected log for failed and not properly guarded CO-RE relocation: 8197 * line1 -> 123: (85) call unknown#195896080 8198 * line2 -> invalid func unknown#195896080 8199 * line3 -> <anything else or end of buffer> 8200 * 8201 * "123" is the index of the instruction that was poisoned. We extract 8202 * instruction index to find corresponding CO-RE relocation and 8203 * replace this part of the log with more relevant information about 8204 * failed CO-RE relocation. 8205 */ 8206 const struct bpf_core_relo *relo; 8207 struct bpf_core_spec spec; 8208 char patch[512], spec_buf[256]; 8209 int insn_idx, err, spec_len; 8210 8211 if (sscanf(line1, "%d: (%*d) call unknown#195896080\n", &insn_idx) != 1) 8212 return; 8213 8214 relo = find_relo_core(prog, insn_idx); 8215 if (!relo) 8216 return; 8217 8218 err = bpf_core_parse_spec(prog->name, prog->obj->btf, relo, &spec); 8219 if (err) 8220 return; 8221 8222 spec_len = bpf_core_format_spec(spec_buf, sizeof(spec_buf), &spec); 8223 snprintf(patch, sizeof(patch), 8224 "%d: <invalid CO-RE relocation>\n" 8225 "failed to resolve CO-RE relocation %s%s\n", 8226 insn_idx, spec_buf, spec_len >= sizeof(spec_buf) ? "..." : ""); 8227 8228 patch_log(buf, buf_sz, log_sz, line1, line3 - line1, patch); 8229 } 8230 8231 static void fixup_log_missing_map_load(struct bpf_program *prog, 8232 char *buf, size_t buf_sz, size_t log_sz, 8233 char *line1, char *line2, char *line3) 8234 { 8235 /* Expected log for failed and not properly guarded map reference: 8236 * line1 -> 123: (85) call unknown#2001000345 8237 * line2 -> invalid func unknown#2001000345 8238 * line3 -> <anything else or end of buffer> 8239 * 8240 * "123" is the index of the instruction that was poisoned. 8241 * "345" in "2001000345" is a map index in obj->maps to fetch map name. 8242 */ 8243 struct bpf_object *obj = prog->obj; 8244 const struct bpf_map *map; 8245 int insn_idx, map_idx; 8246 char patch[128]; 8247 8248 if (sscanf(line1, "%d: (%*d) call unknown#%d\n", &insn_idx, &map_idx) != 2) 8249 return; 8250 8251 map_idx -= POISON_LDIMM64_MAP_BASE; 8252 if (map_idx < 0 || map_idx >= obj->nr_maps) 8253 return; 8254 map = &obj->maps[map_idx]; 8255 8256 snprintf(patch, sizeof(patch), 8257 "%d: <invalid BPF map reference>\n" 8258 "BPF map '%s' is referenced but wasn't created\n", 8259 insn_idx, map->name); 8260 8261 patch_log(buf, buf_sz, log_sz, line1, line3 - line1, patch); 8262 } 8263 8264 static void fixup_log_missing_kfunc_call(struct bpf_program *prog, 8265 char *buf, size_t buf_sz, size_t log_sz, 8266 char *line1, char *line2, char *line3) 8267 { 8268 /* Expected log for failed and not properly guarded kfunc call: 8269 * line1 -> 123: (85) call unknown#2002000345 8270 * line2 -> invalid func unknown#2002000345 8271 * line3 -> <anything else or end of buffer> 8272 * 8273 * "123" is the index of the instruction that was poisoned. 8274 * "345" in "2002000345" is an extern index in obj->externs to fetch kfunc name. 8275 */ 8276 struct bpf_object *obj = prog->obj; 8277 const struct extern_desc *ext; 8278 int insn_idx, ext_idx; 8279 char patch[128]; 8280 8281 if (sscanf(line1, "%d: (%*d) call unknown#%d\n", &insn_idx, &ext_idx) != 2) 8282 return; 8283 8284 ext_idx -= POISON_CALL_KFUNC_BASE; 8285 if (ext_idx < 0 || ext_idx >= obj->nr_extern) 8286 return; 8287 ext = &obj->externs[ext_idx]; 8288 8289 snprintf(patch, sizeof(patch), 8290 "%d: <invalid kfunc call>\n" 8291 "kfunc '%s' is referenced but wasn't resolved\n", 8292 insn_idx, ext->name); 8293 8294 patch_log(buf, buf_sz, log_sz, line1, line3 - line1, patch); 8295 } 8296 8297 static void fixup_verifier_log(struct bpf_program *prog, char *buf, size_t buf_sz) 8298 { 8299 /* look for familiar error patterns in last N lines of the log */ 8300 const size_t max_last_line_cnt = 10; 8301 char *prev_line, *cur_line, *next_line; 8302 size_t log_sz; 8303 int i; 8304 8305 if (!buf) 8306 return; 8307 8308 log_sz = strlen(buf) + 1; 8309 next_line = buf + log_sz - 1; 8310 8311 for (i = 0; i < max_last_line_cnt; i++, next_line = cur_line) { 8312 cur_line = find_prev_line(buf, next_line); 8313 if (!cur_line) 8314 return; 8315 8316 if (str_has_pfx(cur_line, "invalid func unknown#195896080\n")) { 8317 prev_line = find_prev_line(buf, cur_line); 8318 if (!prev_line) 8319 continue; 8320 8321 /* failed CO-RE relocation case */ 8322 fixup_log_failed_core_relo(prog, buf, buf_sz, log_sz, 8323 prev_line, cur_line, next_line); 8324 return; 8325 } else if (str_has_pfx(cur_line, "invalid func unknown#"POISON_LDIMM64_MAP_PFX)) { 8326 prev_line = find_prev_line(buf, cur_line); 8327 if (!prev_line) 8328 continue; 8329 8330 /* reference to uncreated BPF map */ 8331 fixup_log_missing_map_load(prog, buf, buf_sz, log_sz, 8332 prev_line, cur_line, next_line); 8333 return; 8334 } else if (str_has_pfx(cur_line, "invalid func unknown#"POISON_CALL_KFUNC_PFX)) { 8335 prev_line = find_prev_line(buf, cur_line); 8336 if (!prev_line) 8337 continue; 8338 8339 /* reference to unresolved kfunc */ 8340 fixup_log_missing_kfunc_call(prog, buf, buf_sz, log_sz, 8341 prev_line, cur_line, next_line); 8342 return; 8343 } 8344 } 8345 } 8346 8347 static int bpf_program_record_relos(struct bpf_program *prog) 8348 { 8349 struct bpf_object *obj = prog->obj; 8350 int i; 8351 8352 for (i = 0; i < prog->nr_reloc; i++) { 8353 struct reloc_desc *relo = &prog->reloc_desc[i]; 8354 struct extern_desc *ext = &obj->externs[relo->ext_idx]; 8355 int kind; 8356 8357 switch (relo->type) { 8358 case RELO_EXTERN_LD64: 8359 if (ext->type != EXT_KSYM) 8360 continue; 8361 kind = btf_is_var(btf__type_by_id(obj->btf, ext->btf_id)) ? 8362 BTF_KIND_VAR : BTF_KIND_FUNC; 8363 bpf_gen__record_extern(obj->gen_loader, ext->name, 8364 ext->is_weak, !ext->ksym.type_id, 8365 true, kind, relo->insn_idx); 8366 break; 8367 case RELO_EXTERN_CALL: 8368 bpf_gen__record_extern(obj->gen_loader, ext->name, 8369 ext->is_weak, false, false, BTF_KIND_FUNC, 8370 relo->insn_idx); 8371 break; 8372 case RELO_CORE: { 8373 struct bpf_core_relo cr = { 8374 .insn_off = relo->insn_idx * 8, 8375 .type_id = relo->core_relo->type_id, 8376 .access_str_off = relo->core_relo->access_str_off, 8377 .kind = relo->core_relo->kind, 8378 }; 8379 8380 bpf_gen__record_relo_core(obj->gen_loader, &cr); 8381 break; 8382 } 8383 default: 8384 continue; 8385 } 8386 } 8387 return 0; 8388 } 8389 8390 static int 8391 bpf_object__load_progs(struct bpf_object *obj, int log_level) 8392 { 8393 struct bpf_program *prog; 8394 size_t i; 8395 int err; 8396 8397 for (i = 0; i < obj->nr_programs; i++) { 8398 prog = &obj->programs[i]; 8399 if (prog_is_subprog(obj, prog)) 8400 continue; 8401 if (!prog->autoload) { 8402 pr_debug("prog '%s': skipped loading\n", prog->name); 8403 continue; 8404 } 8405 prog->log_level |= log_level; 8406 8407 if (obj->gen_loader) 8408 bpf_program_record_relos(prog); 8409 8410 err = bpf_object_load_prog(obj, prog, prog->insns, prog->insns_cnt, 8411 obj->license, obj->kern_version, &prog->fd); 8412 if (err) { 8413 pr_warn("prog '%s': failed to load: %s\n", prog->name, errstr(err)); 8414 return err; 8415 } 8416 } 8417 8418 bpf_object__free_relocs(obj); 8419 return 0; 8420 } 8421 8422 static int bpf_object_prepare_progs(struct bpf_object *obj) 8423 { 8424 struct bpf_program *prog; 8425 size_t i; 8426 int err; 8427 8428 for (i = 0; i < obj->nr_programs; i++) { 8429 prog = &obj->programs[i]; 8430 err = bpf_object__sanitize_prog(obj, prog); 8431 if (err) 8432 return err; 8433 } 8434 return 0; 8435 } 8436 8437 static const struct bpf_sec_def *find_sec_def(const char *sec_name); 8438 8439 static int bpf_object_init_progs(struct bpf_object *obj, const struct bpf_object_open_opts *opts) 8440 { 8441 struct bpf_program *prog; 8442 int err; 8443 8444 bpf_object__for_each_program(prog, obj) { 8445 prog->sec_def = find_sec_def(prog->sec_name); 8446 if (!prog->sec_def) { 8447 /* couldn't guess, but user might manually specify */ 8448 pr_debug("prog '%s': unrecognized ELF section name '%s'\n", 8449 prog->name, prog->sec_name); 8450 continue; 8451 } 8452 8453 prog->type = prog->sec_def->prog_type; 8454 prog->expected_attach_type = prog->sec_def->expected_attach_type; 8455 8456 /* sec_def can have custom callback which should be called 8457 * after bpf_program is initialized to adjust its properties 8458 */ 8459 if (prog->sec_def->prog_setup_fn) { 8460 err = prog->sec_def->prog_setup_fn(prog, prog->sec_def->cookie); 8461 if (err < 0) { 8462 pr_warn("prog '%s': failed to initialize: %s\n", 8463 prog->name, errstr(err)); 8464 return err; 8465 } 8466 } 8467 } 8468 8469 return 0; 8470 } 8471 8472 static struct bpf_object *bpf_object_open(const char *path, const void *obj_buf, size_t obj_buf_sz, 8473 const char *obj_name, 8474 const struct bpf_object_open_opts *opts) 8475 { 8476 const char *kconfig, *btf_tmp_path, *token_path; 8477 struct bpf_object *obj; 8478 int err; 8479 char *log_buf; 8480 size_t log_size; 8481 __u32 log_level; 8482 8483 if (obj_buf && !obj_name) 8484 return ERR_PTR(-EINVAL); 8485 8486 if (elf_version(EV_CURRENT) == EV_NONE) { 8487 pr_warn("failed to init libelf for %s\n", 8488 path ? : "(mem buf)"); 8489 return ERR_PTR(-LIBBPF_ERRNO__LIBELF); 8490 } 8491 8492 if (!OPTS_VALID(opts, bpf_object_open_opts)) 8493 return ERR_PTR(-EINVAL); 8494 8495 obj_name = OPTS_GET(opts, object_name, NULL) ?: obj_name; 8496 if (obj_buf) { 8497 path = obj_name; 8498 pr_debug("loading object '%s' from buffer\n", obj_name); 8499 } else { 8500 pr_debug("loading object from %s\n", path); 8501 } 8502 8503 log_buf = OPTS_GET(opts, kernel_log_buf, NULL); 8504 log_size = OPTS_GET(opts, kernel_log_size, 0); 8505 log_level = OPTS_GET(opts, kernel_log_level, 0); 8506 if (log_size > UINT_MAX) 8507 return ERR_PTR(-EINVAL); 8508 if (log_size && !log_buf) 8509 return ERR_PTR(-EINVAL); 8510 8511 token_path = OPTS_GET(opts, bpf_token_path, NULL); 8512 /* if user didn't specify bpf_token_path explicitly, check if 8513 * LIBBPF_BPF_TOKEN_PATH envvar was set and treat it as bpf_token_path 8514 * option 8515 */ 8516 if (!token_path) 8517 token_path = getenv("LIBBPF_BPF_TOKEN_PATH"); 8518 if (token_path && strlen(token_path) >= PATH_MAX) 8519 return ERR_PTR(-ENAMETOOLONG); 8520 8521 obj = bpf_object__new(path, obj_buf, obj_buf_sz, obj_name); 8522 if (IS_ERR(obj)) 8523 return obj; 8524 8525 obj->log_buf = log_buf; 8526 obj->log_size = log_size; 8527 obj->log_level = log_level; 8528 8529 if (token_path) { 8530 obj->token_path = strdup(token_path); 8531 if (!obj->token_path) { 8532 err = -ENOMEM; 8533 goto out; 8534 } 8535 } 8536 8537 btf_tmp_path = OPTS_GET(opts, btf_custom_path, NULL); 8538 if (btf_tmp_path) { 8539 if (strlen(btf_tmp_path) >= PATH_MAX) { 8540 err = -ENAMETOOLONG; 8541 goto out; 8542 } 8543 obj->btf_custom_path = strdup(btf_tmp_path); 8544 if (!obj->btf_custom_path) { 8545 err = -ENOMEM; 8546 goto out; 8547 } 8548 } 8549 8550 kconfig = OPTS_GET(opts, kconfig, NULL); 8551 if (kconfig) { 8552 obj->kconfig = strdup(kconfig); 8553 if (!obj->kconfig) { 8554 err = -ENOMEM; 8555 goto out; 8556 } 8557 } 8558 8559 err = bpf_object__elf_init(obj); 8560 err = err ? : bpf_object__elf_collect(obj); 8561 err = err ? : bpf_object__collect_externs(obj); 8562 err = err ? : bpf_object_fixup_btf(obj); 8563 err = err ? : bpf_object__init_maps(obj, opts); 8564 err = err ? : bpf_object_init_progs(obj, opts); 8565 err = err ? : bpf_object__collect_relos(obj); 8566 if (err) 8567 goto out; 8568 8569 bpf_object__elf_finish(obj); 8570 8571 return obj; 8572 out: 8573 bpf_object__close(obj); 8574 return ERR_PTR(err); 8575 } 8576 8577 struct bpf_object * 8578 bpf_object__open_file(const char *path, const struct bpf_object_open_opts *opts) 8579 { 8580 if (!path) 8581 return libbpf_err_ptr(-EINVAL); 8582 8583 return libbpf_ptr(bpf_object_open(path, NULL, 0, NULL, opts)); 8584 } 8585 8586 struct bpf_object *bpf_object__open(const char *path) 8587 { 8588 return bpf_object__open_file(path, NULL); 8589 } 8590 8591 struct bpf_object * 8592 bpf_object__open_mem(const void *obj_buf, size_t obj_buf_sz, 8593 const struct bpf_object_open_opts *opts) 8594 { 8595 char tmp_name[64]; 8596 8597 if (!obj_buf || obj_buf_sz == 0) 8598 return libbpf_err_ptr(-EINVAL); 8599 8600 /* create a (quite useless) default "name" for this memory buffer object */ 8601 snprintf(tmp_name, sizeof(tmp_name), "%lx-%zx", (unsigned long)obj_buf, obj_buf_sz); 8602 8603 return libbpf_ptr(bpf_object_open(NULL, obj_buf, obj_buf_sz, tmp_name, opts)); 8604 } 8605 8606 static int bpf_object_unload(struct bpf_object *obj) 8607 { 8608 size_t i; 8609 8610 if (!obj) 8611 return libbpf_err(-EINVAL); 8612 8613 for (i = 0; i < obj->nr_maps; i++) { 8614 zclose(obj->maps[i].fd); 8615 if (obj->maps[i].st_ops) 8616 zfree(&obj->maps[i].st_ops->kern_vdata); 8617 } 8618 8619 for (i = 0; i < obj->nr_programs; i++) 8620 bpf_program__unload(&obj->programs[i]); 8621 8622 return 0; 8623 } 8624 8625 static int bpf_object__sanitize_maps(struct bpf_object *obj) 8626 { 8627 struct bpf_map *m; 8628 8629 bpf_object__for_each_map(m, obj) { 8630 if (!bpf_map__is_internal(m)) 8631 continue; 8632 if (!kernel_supports(obj, FEAT_ARRAY_MMAP)) 8633 m->def.map_flags &= ~BPF_F_MMAPABLE; 8634 } 8635 8636 return 0; 8637 } 8638 8639 typedef int (*kallsyms_cb_t)(unsigned long long sym_addr, char sym_type, 8640 const char *sym_name, void *ctx); 8641 8642 static int libbpf_kallsyms_parse(kallsyms_cb_t cb, void *ctx) 8643 { 8644 char sym_type, sym_name[500]; 8645 unsigned long long sym_addr; 8646 int ret, err = 0; 8647 FILE *f; 8648 8649 f = fopen("/proc/kallsyms", "re"); 8650 if (!f) { 8651 err = -errno; 8652 pr_warn("failed to open /proc/kallsyms: %s\n", errstr(err)); 8653 return err; 8654 } 8655 8656 while (true) { 8657 ret = fscanf(f, "%llx %c %499s%*[^\n]\n", 8658 &sym_addr, &sym_type, sym_name); 8659 if (ret == EOF && feof(f)) 8660 break; 8661 if (ret != 3) { 8662 pr_warn("failed to read kallsyms entry: %d\n", ret); 8663 err = -EINVAL; 8664 break; 8665 } 8666 8667 err = cb(sym_addr, sym_type, sym_name, ctx); 8668 if (err) 8669 break; 8670 } 8671 8672 fclose(f); 8673 return err; 8674 } 8675 8676 static int kallsyms_cb(unsigned long long sym_addr, char sym_type, 8677 const char *sym_name, void *ctx) 8678 { 8679 struct bpf_object *obj = ctx; 8680 const struct btf_type *t; 8681 struct extern_desc *ext; 8682 const char *res; 8683 8684 res = strstr(sym_name, ".llvm."); 8685 if (sym_type == 'd' && res) 8686 ext = find_extern_by_name_with_len(obj, sym_name, res - sym_name); 8687 else 8688 ext = find_extern_by_name(obj, sym_name); 8689 if (!ext || ext->type != EXT_KSYM) 8690 return 0; 8691 8692 t = btf__type_by_id(obj->btf, ext->btf_id); 8693 if (!btf_is_var(t)) 8694 return 0; 8695 8696 if (ext->is_set && ext->ksym.addr != sym_addr) { 8697 pr_warn("extern (ksym) '%s': resolution is ambiguous: 0x%llx or 0x%llx\n", 8698 sym_name, ext->ksym.addr, sym_addr); 8699 return -EINVAL; 8700 } 8701 if (!ext->is_set) { 8702 ext->is_set = true; 8703 ext->ksym.addr = sym_addr; 8704 pr_debug("extern (ksym) '%s': set to 0x%llx\n", sym_name, sym_addr); 8705 } 8706 return 0; 8707 } 8708 8709 static int bpf_object__read_kallsyms_file(struct bpf_object *obj) 8710 { 8711 return libbpf_kallsyms_parse(kallsyms_cb, obj); 8712 } 8713 8714 static int find_ksym_btf_id(struct bpf_object *obj, const char *ksym_name, 8715 __u16 kind, struct btf **res_btf, 8716 struct module_btf **res_mod_btf) 8717 { 8718 struct module_btf *mod_btf; 8719 struct btf *btf; 8720 int i, id, err; 8721 8722 btf = obj->btf_vmlinux; 8723 mod_btf = NULL; 8724 id = btf__find_by_name_kind(btf, ksym_name, kind); 8725 8726 if (id == -ENOENT) { 8727 err = load_module_btfs(obj); 8728 if (err) 8729 return err; 8730 8731 for (i = 0; i < obj->btf_module_cnt; i++) { 8732 /* we assume module_btf's BTF FD is always >0 */ 8733 mod_btf = &obj->btf_modules[i]; 8734 btf = mod_btf->btf; 8735 id = btf__find_by_name_kind_own(btf, ksym_name, kind); 8736 if (id != -ENOENT) 8737 break; 8738 } 8739 } 8740 if (id <= 0) 8741 return -ESRCH; 8742 8743 *res_btf = btf; 8744 *res_mod_btf = mod_btf; 8745 return id; 8746 } 8747 8748 static int bpf_object__resolve_ksym_var_btf_id(struct bpf_object *obj, 8749 struct extern_desc *ext) 8750 { 8751 const struct btf_type *targ_var, *targ_type; 8752 __u32 targ_type_id, local_type_id; 8753 struct module_btf *mod_btf = NULL; 8754 const char *targ_var_name; 8755 struct btf *btf = NULL; 8756 int id, err; 8757 8758 id = find_ksym_btf_id(obj, ext->name, BTF_KIND_VAR, &btf, &mod_btf); 8759 if (id < 0) { 8760 if (id == -ESRCH && ext->is_weak) 8761 return 0; 8762 pr_warn("extern (var ksym) '%s': not found in kernel BTF\n", 8763 ext->name); 8764 return id; 8765 } 8766 8767 /* find local type_id */ 8768 local_type_id = ext->ksym.type_id; 8769 8770 /* find target type_id */ 8771 targ_var = btf__type_by_id(btf, id); 8772 targ_var_name = btf__name_by_offset(btf, targ_var->name_off); 8773 targ_type = skip_mods_and_typedefs(btf, targ_var->type, &targ_type_id); 8774 8775 err = bpf_core_types_are_compat(obj->btf, local_type_id, 8776 btf, targ_type_id); 8777 if (err <= 0) { 8778 const struct btf_type *local_type; 8779 const char *targ_name, *local_name; 8780 8781 local_type = btf__type_by_id(obj->btf, local_type_id); 8782 local_name = btf__name_by_offset(obj->btf, local_type->name_off); 8783 targ_name = btf__name_by_offset(btf, targ_type->name_off); 8784 8785 pr_warn("extern (var ksym) '%s': incompatible types, expected [%u] %s %s, but kernel has [%u] %s %s\n", 8786 ext->name, local_type_id, 8787 btf_kind_str(local_type), local_name, targ_type_id, 8788 btf_kind_str(targ_type), targ_name); 8789 return -EINVAL; 8790 } 8791 8792 ext->is_set = true; 8793 ext->ksym.kernel_btf_obj_fd = mod_btf ? mod_btf->fd : 0; 8794 ext->ksym.kernel_btf_id = id; 8795 pr_debug("extern (var ksym) '%s': resolved to [%d] %s %s\n", 8796 ext->name, id, btf_kind_str(targ_var), targ_var_name); 8797 8798 return 0; 8799 } 8800 8801 static int bpf_object__resolve_ksym_func_btf_id(struct bpf_object *obj, 8802 struct extern_desc *ext) 8803 { 8804 int local_func_proto_id, kfunc_proto_id, kfunc_id; 8805 struct module_btf *mod_btf = NULL; 8806 const struct btf_type *kern_func; 8807 struct btf *kern_btf = NULL; 8808 int ret; 8809 8810 local_func_proto_id = ext->ksym.type_id; 8811 8812 kfunc_id = find_ksym_btf_id(obj, ext->essent_name ?: ext->name, BTF_KIND_FUNC, &kern_btf, 8813 &mod_btf); 8814 if (kfunc_id < 0) { 8815 if (kfunc_id == -ESRCH && ext->is_weak) 8816 return 0; 8817 pr_warn("extern (func ksym) '%s': not found in kernel or module BTFs\n", 8818 ext->name); 8819 return kfunc_id; 8820 } 8821 8822 kern_func = btf__type_by_id(kern_btf, kfunc_id); 8823 kfunc_proto_id = kern_func->type; 8824 8825 ret = bpf_core_types_are_compat(obj->btf, local_func_proto_id, 8826 kern_btf, kfunc_proto_id); 8827 if (ret <= 0) { 8828 if (ext->is_weak) 8829 return 0; 8830 8831 pr_warn("extern (func ksym) '%s': func_proto [%d] incompatible with %s [%d]\n", 8832 ext->name, local_func_proto_id, 8833 mod_btf ? mod_btf->name : "vmlinux", kfunc_proto_id); 8834 return -EINVAL; 8835 } 8836 8837 /* set index for module BTF fd in fd_array, if unset */ 8838 if (mod_btf && !mod_btf->fd_array_idx) { 8839 /* insn->off is s16 */ 8840 if (obj->fd_array_cnt == INT16_MAX) { 8841 pr_warn("extern (func ksym) '%s': module BTF fd index %d too big to fit in bpf_insn offset\n", 8842 ext->name, mod_btf->fd_array_idx); 8843 return -E2BIG; 8844 } 8845 /* Cannot use index 0 for module BTF fd */ 8846 if (!obj->fd_array_cnt) 8847 obj->fd_array_cnt = 1; 8848 8849 ret = libbpf_ensure_mem((void **)&obj->fd_array, &obj->fd_array_cap, sizeof(int), 8850 obj->fd_array_cnt + 1); 8851 if (ret) 8852 return ret; 8853 mod_btf->fd_array_idx = obj->fd_array_cnt; 8854 /* we assume module BTF FD is always >0 */ 8855 obj->fd_array[obj->fd_array_cnt++] = mod_btf->fd; 8856 } 8857 8858 ext->is_set = true; 8859 ext->ksym.kernel_btf_id = kfunc_id; 8860 ext->ksym.btf_fd_idx = mod_btf ? mod_btf->fd_array_idx : 0; 8861 /* Also set kernel_btf_obj_fd to make sure that bpf_object__relocate_data() 8862 * populates FD into ld_imm64 insn when it's used to point to kfunc. 8863 * {kernel_btf_id, btf_fd_idx} -> fixup bpf_call. 8864 * {kernel_btf_id, kernel_btf_obj_fd} -> fixup ld_imm64. 8865 */ 8866 ext->ksym.kernel_btf_obj_fd = mod_btf ? mod_btf->fd : 0; 8867 pr_debug("extern (func ksym) '%s': resolved to %s [%d]\n", 8868 ext->name, mod_btf ? mod_btf->name : "vmlinux", kfunc_id); 8869 8870 return 0; 8871 } 8872 8873 static int bpf_object__resolve_ksyms_btf_id(struct bpf_object *obj) 8874 { 8875 const struct btf_type *t; 8876 struct extern_desc *ext; 8877 int i, err; 8878 8879 for (i = 0; i < obj->nr_extern; i++) { 8880 ext = &obj->externs[i]; 8881 if (ext->type != EXT_KSYM || !ext->ksym.type_id) 8882 continue; 8883 8884 if (obj->gen_loader) { 8885 ext->is_set = true; 8886 ext->ksym.kernel_btf_obj_fd = 0; 8887 ext->ksym.kernel_btf_id = 0; 8888 continue; 8889 } 8890 t = btf__type_by_id(obj->btf, ext->btf_id); 8891 if (btf_is_var(t)) 8892 err = bpf_object__resolve_ksym_var_btf_id(obj, ext); 8893 else 8894 err = bpf_object__resolve_ksym_func_btf_id(obj, ext); 8895 if (err) 8896 return err; 8897 } 8898 return 0; 8899 } 8900 8901 static int bpf_object__resolve_externs(struct bpf_object *obj, 8902 const char *extra_kconfig) 8903 { 8904 bool need_config = false, need_kallsyms = false; 8905 bool need_vmlinux_btf = false; 8906 struct extern_desc *ext; 8907 void *kcfg_data = NULL; 8908 int err, i; 8909 8910 if (obj->nr_extern == 0) 8911 return 0; 8912 8913 if (obj->kconfig_map_idx >= 0) 8914 kcfg_data = obj->maps[obj->kconfig_map_idx].mmaped; 8915 8916 for (i = 0; i < obj->nr_extern; i++) { 8917 ext = &obj->externs[i]; 8918 8919 if (ext->type == EXT_KSYM) { 8920 if (ext->ksym.type_id) 8921 need_vmlinux_btf = true; 8922 else 8923 need_kallsyms = true; 8924 continue; 8925 } else if (ext->type == EXT_KCFG) { 8926 void *ext_ptr = kcfg_data + ext->kcfg.data_off; 8927 __u64 value = 0; 8928 8929 /* Kconfig externs need actual /proc/config.gz */ 8930 if (str_has_pfx(ext->name, "CONFIG_")) { 8931 need_config = true; 8932 continue; 8933 } 8934 8935 /* Virtual kcfg externs are customly handled by libbpf */ 8936 if (strcmp(ext->name, "LINUX_KERNEL_VERSION") == 0) { 8937 value = get_kernel_version(); 8938 if (!value) { 8939 pr_warn("extern (kcfg) '%s': failed to get kernel version\n", ext->name); 8940 return -EINVAL; 8941 } 8942 } else if (strcmp(ext->name, "LINUX_HAS_BPF_COOKIE") == 0) { 8943 value = kernel_supports(obj, FEAT_BPF_COOKIE); 8944 } else if (strcmp(ext->name, "LINUX_HAS_SYSCALL_WRAPPER") == 0) { 8945 value = kernel_supports(obj, FEAT_SYSCALL_WRAPPER); 8946 } else if (!str_has_pfx(ext->name, "LINUX_") || !ext->is_weak) { 8947 /* Currently libbpf supports only CONFIG_ and LINUX_ prefixed 8948 * __kconfig externs, where LINUX_ ones are virtual and filled out 8949 * customly by libbpf (their values don't come from Kconfig). 8950 * If LINUX_xxx variable is not recognized by libbpf, but is marked 8951 * __weak, it defaults to zero value, just like for CONFIG_xxx 8952 * externs. 8953 */ 8954 pr_warn("extern (kcfg) '%s': unrecognized virtual extern\n", ext->name); 8955 return -EINVAL; 8956 } 8957 8958 err = set_kcfg_value_num(ext, ext_ptr, value); 8959 if (err) 8960 return err; 8961 pr_debug("extern (kcfg) '%s': set to 0x%llx\n", 8962 ext->name, (unsigned long long)value); 8963 } else { 8964 pr_warn("extern '%s': unrecognized extern kind\n", ext->name); 8965 return -EINVAL; 8966 } 8967 } 8968 if (need_config && extra_kconfig) { 8969 err = bpf_object__read_kconfig_mem(obj, extra_kconfig, kcfg_data); 8970 if (err) 8971 return -EINVAL; 8972 need_config = false; 8973 for (i = 0; i < obj->nr_extern; i++) { 8974 ext = &obj->externs[i]; 8975 if (ext->type == EXT_KCFG && !ext->is_set) { 8976 need_config = true; 8977 break; 8978 } 8979 } 8980 } 8981 if (need_config) { 8982 err = bpf_object__read_kconfig_file(obj, kcfg_data); 8983 if (err) 8984 return -EINVAL; 8985 } 8986 if (need_kallsyms) { 8987 err = bpf_object__read_kallsyms_file(obj); 8988 if (err) 8989 return -EINVAL; 8990 } 8991 if (need_vmlinux_btf) { 8992 err = bpf_object__resolve_ksyms_btf_id(obj); 8993 if (err) 8994 return -EINVAL; 8995 } 8996 for (i = 0; i < obj->nr_extern; i++) { 8997 ext = &obj->externs[i]; 8998 8999 if (!ext->is_set && !ext->is_weak) { 9000 pr_warn("extern '%s' (strong): not resolved\n", ext->name); 9001 return -ESRCH; 9002 } else if (!ext->is_set) { 9003 pr_debug("extern '%s' (weak): not resolved, defaulting to zero\n", 9004 ext->name); 9005 } 9006 } 9007 9008 return 0; 9009 } 9010 9011 static void bpf_map_prepare_vdata(const struct bpf_map *map) 9012 { 9013 const struct btf_type *type; 9014 struct bpf_struct_ops *st_ops; 9015 __u32 i; 9016 9017 st_ops = map->st_ops; 9018 type = btf__type_by_id(map->obj->btf, st_ops->type_id); 9019 for (i = 0; i < btf_vlen(type); i++) { 9020 struct bpf_program *prog = st_ops->progs[i]; 9021 void *kern_data; 9022 int prog_fd; 9023 9024 if (!prog) 9025 continue; 9026 9027 prog_fd = bpf_program__fd(prog); 9028 kern_data = st_ops->kern_vdata + st_ops->kern_func_off[i]; 9029 *(unsigned long *)kern_data = prog_fd; 9030 } 9031 } 9032 9033 static int bpf_object_prepare_struct_ops(struct bpf_object *obj) 9034 { 9035 struct bpf_map *map; 9036 int i; 9037 9038 for (i = 0; i < obj->nr_maps; i++) { 9039 map = &obj->maps[i]; 9040 9041 if (!bpf_map__is_struct_ops(map)) 9042 continue; 9043 9044 if (!map->autocreate) 9045 continue; 9046 9047 bpf_map_prepare_vdata(map); 9048 } 9049 9050 return 0; 9051 } 9052 9053 static void bpf_object_unpin(struct bpf_object *obj) 9054 { 9055 int i; 9056 9057 /* unpin any maps that were auto-pinned during load */ 9058 for (i = 0; i < obj->nr_maps; i++) 9059 if (obj->maps[i].pinned && !obj->maps[i].reused) 9060 bpf_map__unpin(&obj->maps[i], NULL); 9061 } 9062 9063 static void bpf_object_cleanup_btf(struct bpf_object *obj) 9064 { 9065 int i; 9066 9067 /* clean up module BTFs */ 9068 for (i = 0; i < obj->btf_module_cnt; i++) { 9069 close(obj->btf_modules[i].fd); 9070 btf__free(obj->btf_modules[i].btf); 9071 free(obj->btf_modules[i].name); 9072 } 9073 obj->btf_module_cnt = 0; 9074 obj->btf_module_cap = 0; 9075 obj->btf_modules_loaded = false; 9076 zfree(&obj->btf_modules); 9077 9078 /* clean up vmlinux BTF */ 9079 btf__free(obj->btf_vmlinux); 9080 obj->btf_vmlinux = NULL; 9081 } 9082 9083 static void bpf_object_post_load_cleanup(struct bpf_object *obj) 9084 { 9085 /* clean up fd_array */ 9086 zfree(&obj->fd_array); 9087 9088 /* clean up BTF */ 9089 bpf_object_cleanup_btf(obj); 9090 } 9091 9092 static int bpf_object_prepare(struct bpf_object *obj, const char *target_btf_path) 9093 { 9094 int err; 9095 9096 if (obj->state >= OBJ_PREPARED) { 9097 pr_warn("object '%s': prepare loading can't be attempted twice\n", obj->name); 9098 return -EINVAL; 9099 } 9100 9101 err = bpf_object_prepare_token(obj); 9102 err = err ? : bpf_object__probe_loading(obj); 9103 err = err ? : bpf_object__load_vmlinux_btf(obj, false); 9104 err = err ? : bpf_object__resolve_externs(obj, obj->kconfig); 9105 err = err ? : bpf_object__sanitize_maps(obj); 9106 err = err ? : bpf_object__init_kern_struct_ops_maps(obj); 9107 err = err ? : bpf_object_adjust_struct_ops_autoload(obj); 9108 err = err ? : bpf_object__relocate(obj, obj->btf_custom_path ? : target_btf_path); 9109 err = err ? : bpf_object__sanitize_and_load_btf(obj); 9110 err = err ? : bpf_object__create_maps(obj); 9111 err = err ? : bpf_object_prepare_progs(obj); 9112 9113 if (err) { 9114 bpf_object_unpin(obj); 9115 bpf_object_unload(obj); 9116 obj->state = OBJ_LOADED; 9117 return err; 9118 } 9119 9120 obj->state = OBJ_PREPARED; 9121 return 0; 9122 } 9123 9124 static int bpf_object_load(struct bpf_object *obj, int extra_log_level, const char *target_btf_path) 9125 { 9126 int err; 9127 9128 if (!obj) 9129 return libbpf_err(-EINVAL); 9130 9131 if (obj->state >= OBJ_LOADED) { 9132 pr_warn("object '%s': load can't be attempted twice\n", obj->name); 9133 return libbpf_err(-EINVAL); 9134 } 9135 9136 /* Disallow kernel loading programs of non-native endianness but 9137 * permit cross-endian creation of "light skeleton". 9138 */ 9139 if (obj->gen_loader) { 9140 bpf_gen__init(obj->gen_loader, extra_log_level, obj->nr_programs, obj->nr_maps); 9141 } else if (!is_native_endianness(obj)) { 9142 pr_warn("object '%s': loading non-native endianness is unsupported\n", obj->name); 9143 return libbpf_err(-LIBBPF_ERRNO__ENDIAN); 9144 } 9145 9146 if (obj->state < OBJ_PREPARED) { 9147 err = bpf_object_prepare(obj, target_btf_path); 9148 if (err) 9149 return libbpf_err(err); 9150 } 9151 err = bpf_object__load_progs(obj, extra_log_level); 9152 err = err ? : bpf_object_init_prog_arrays(obj); 9153 err = err ? : bpf_object_prepare_struct_ops(obj); 9154 9155 if (obj->gen_loader) { 9156 /* reset FDs */ 9157 if (obj->btf) 9158 btf__set_fd(obj->btf, -1); 9159 if (!err) 9160 err = bpf_gen__finish(obj->gen_loader, obj->nr_programs, obj->nr_maps); 9161 } 9162 9163 bpf_object_post_load_cleanup(obj); 9164 obj->state = OBJ_LOADED; /* doesn't matter if successfully or not */ 9165 9166 if (err) { 9167 bpf_object_unpin(obj); 9168 bpf_object_unload(obj); 9169 pr_warn("failed to load object '%s'\n", obj->path); 9170 return libbpf_err(err); 9171 } 9172 9173 return 0; 9174 } 9175 9176 int bpf_object__prepare(struct bpf_object *obj) 9177 { 9178 return libbpf_err(bpf_object_prepare(obj, NULL)); 9179 } 9180 9181 int bpf_object__load(struct bpf_object *obj) 9182 { 9183 return bpf_object_load(obj, 0, NULL); 9184 } 9185 9186 static int make_parent_dir(const char *path) 9187 { 9188 char *dname, *dir; 9189 int err = 0; 9190 9191 dname = strdup(path); 9192 if (dname == NULL) 9193 return -ENOMEM; 9194 9195 dir = dirname(dname); 9196 if (mkdir(dir, 0700) && errno != EEXIST) 9197 err = -errno; 9198 9199 free(dname); 9200 if (err) { 9201 pr_warn("failed to mkdir %s: %s\n", path, errstr(err)); 9202 } 9203 return err; 9204 } 9205 9206 static int check_path(const char *path) 9207 { 9208 struct statfs st_fs; 9209 char *dname, *dir; 9210 int err = 0; 9211 9212 if (path == NULL) 9213 return -EINVAL; 9214 9215 dname = strdup(path); 9216 if (dname == NULL) 9217 return -ENOMEM; 9218 9219 dir = dirname(dname); 9220 if (statfs(dir, &st_fs)) { 9221 pr_warn("failed to statfs %s: %s\n", dir, errstr(errno)); 9222 err = -errno; 9223 } 9224 free(dname); 9225 9226 if (!err && st_fs.f_type != BPF_FS_MAGIC) { 9227 pr_warn("specified path %s is not on BPF FS\n", path); 9228 err = -EINVAL; 9229 } 9230 9231 return err; 9232 } 9233 9234 int bpf_program__pin(struct bpf_program *prog, const char *path) 9235 { 9236 int err; 9237 9238 if (prog->fd < 0) { 9239 pr_warn("prog '%s': can't pin program that wasn't loaded\n", prog->name); 9240 return libbpf_err(-EINVAL); 9241 } 9242 9243 err = make_parent_dir(path); 9244 if (err) 9245 return libbpf_err(err); 9246 9247 err = check_path(path); 9248 if (err) 9249 return libbpf_err(err); 9250 9251 if (bpf_obj_pin(prog->fd, path)) { 9252 err = -errno; 9253 pr_warn("prog '%s': failed to pin at '%s': %s\n", prog->name, path, errstr(err)); 9254 return libbpf_err(err); 9255 } 9256 9257 pr_debug("prog '%s': pinned at '%s'\n", prog->name, path); 9258 return 0; 9259 } 9260 9261 int bpf_program__unpin(struct bpf_program *prog, const char *path) 9262 { 9263 int err; 9264 9265 if (prog->fd < 0) { 9266 pr_warn("prog '%s': can't unpin program that wasn't loaded\n", prog->name); 9267 return libbpf_err(-EINVAL); 9268 } 9269 9270 err = check_path(path); 9271 if (err) 9272 return libbpf_err(err); 9273 9274 err = unlink(path); 9275 if (err) 9276 return libbpf_err(-errno); 9277 9278 pr_debug("prog '%s': unpinned from '%s'\n", prog->name, path); 9279 return 0; 9280 } 9281 9282 int bpf_map__pin(struct bpf_map *map, const char *path) 9283 { 9284 int err; 9285 9286 if (map == NULL) { 9287 pr_warn("invalid map pointer\n"); 9288 return libbpf_err(-EINVAL); 9289 } 9290 9291 if (map->fd < 0) { 9292 pr_warn("map '%s': can't pin BPF map without FD (was it created?)\n", map->name); 9293 return libbpf_err(-EINVAL); 9294 } 9295 9296 if (map->pin_path) { 9297 if (path && strcmp(path, map->pin_path)) { 9298 pr_warn("map '%s' already has pin path '%s' different from '%s'\n", 9299 bpf_map__name(map), map->pin_path, path); 9300 return libbpf_err(-EINVAL); 9301 } else if (map->pinned) { 9302 pr_debug("map '%s' already pinned at '%s'; not re-pinning\n", 9303 bpf_map__name(map), map->pin_path); 9304 return 0; 9305 } 9306 } else { 9307 if (!path) { 9308 pr_warn("missing a path to pin map '%s' at\n", 9309 bpf_map__name(map)); 9310 return libbpf_err(-EINVAL); 9311 } else if (map->pinned) { 9312 pr_warn("map '%s' already pinned\n", bpf_map__name(map)); 9313 return libbpf_err(-EEXIST); 9314 } 9315 9316 map->pin_path = strdup(path); 9317 if (!map->pin_path) { 9318 err = -errno; 9319 goto out_err; 9320 } 9321 } 9322 9323 err = make_parent_dir(map->pin_path); 9324 if (err) 9325 return libbpf_err(err); 9326 9327 err = check_path(map->pin_path); 9328 if (err) 9329 return libbpf_err(err); 9330 9331 if (bpf_obj_pin(map->fd, map->pin_path)) { 9332 err = -errno; 9333 goto out_err; 9334 } 9335 9336 map->pinned = true; 9337 pr_debug("pinned map '%s'\n", map->pin_path); 9338 9339 return 0; 9340 9341 out_err: 9342 pr_warn("failed to pin map: %s\n", errstr(err)); 9343 return libbpf_err(err); 9344 } 9345 9346 int bpf_map__unpin(struct bpf_map *map, const char *path) 9347 { 9348 int err; 9349 9350 if (map == NULL) { 9351 pr_warn("invalid map pointer\n"); 9352 return libbpf_err(-EINVAL); 9353 } 9354 9355 if (map->pin_path) { 9356 if (path && strcmp(path, map->pin_path)) { 9357 pr_warn("map '%s' already has pin path '%s' different from '%s'\n", 9358 bpf_map__name(map), map->pin_path, path); 9359 return libbpf_err(-EINVAL); 9360 } 9361 path = map->pin_path; 9362 } else if (!path) { 9363 pr_warn("no path to unpin map '%s' from\n", 9364 bpf_map__name(map)); 9365 return libbpf_err(-EINVAL); 9366 } 9367 9368 err = check_path(path); 9369 if (err) 9370 return libbpf_err(err); 9371 9372 err = unlink(path); 9373 if (err != 0) 9374 return libbpf_err(-errno); 9375 9376 map->pinned = false; 9377 pr_debug("unpinned map '%s' from '%s'\n", bpf_map__name(map), path); 9378 9379 return 0; 9380 } 9381 9382 int bpf_map__set_pin_path(struct bpf_map *map, const char *path) 9383 { 9384 char *new = NULL; 9385 9386 if (path) { 9387 new = strdup(path); 9388 if (!new) 9389 return libbpf_err(-errno); 9390 } 9391 9392 free(map->pin_path); 9393 map->pin_path = new; 9394 return 0; 9395 } 9396 9397 __alias(bpf_map__pin_path) 9398 const char *bpf_map__get_pin_path(const struct bpf_map *map); 9399 9400 const char *bpf_map__pin_path(const struct bpf_map *map) 9401 { 9402 return map->pin_path; 9403 } 9404 9405 bool bpf_map__is_pinned(const struct bpf_map *map) 9406 { 9407 return map->pinned; 9408 } 9409 9410 static void sanitize_pin_path(char *s) 9411 { 9412 /* bpffs disallows periods in path names */ 9413 while (*s) { 9414 if (*s == '.') 9415 *s = '_'; 9416 s++; 9417 } 9418 } 9419 9420 int bpf_object__pin_maps(struct bpf_object *obj, const char *path) 9421 { 9422 struct bpf_map *map; 9423 int err; 9424 9425 if (!obj) 9426 return libbpf_err(-ENOENT); 9427 9428 if (obj->state < OBJ_PREPARED) { 9429 pr_warn("object not yet loaded; load it first\n"); 9430 return libbpf_err(-ENOENT); 9431 } 9432 9433 bpf_object__for_each_map(map, obj) { 9434 char *pin_path = NULL; 9435 char buf[PATH_MAX]; 9436 9437 if (!map->autocreate) 9438 continue; 9439 9440 if (path) { 9441 err = pathname_concat(buf, sizeof(buf), path, bpf_map__name(map)); 9442 if (err) 9443 goto err_unpin_maps; 9444 sanitize_pin_path(buf); 9445 pin_path = buf; 9446 } else if (!map->pin_path) { 9447 continue; 9448 } 9449 9450 err = bpf_map__pin(map, pin_path); 9451 if (err) 9452 goto err_unpin_maps; 9453 } 9454 9455 return 0; 9456 9457 err_unpin_maps: 9458 while ((map = bpf_object__prev_map(obj, map))) { 9459 if (!map->pin_path) 9460 continue; 9461 9462 bpf_map__unpin(map, NULL); 9463 } 9464 9465 return libbpf_err(err); 9466 } 9467 9468 int bpf_object__unpin_maps(struct bpf_object *obj, const char *path) 9469 { 9470 struct bpf_map *map; 9471 int err; 9472 9473 if (!obj) 9474 return libbpf_err(-ENOENT); 9475 9476 bpf_object__for_each_map(map, obj) { 9477 char *pin_path = NULL; 9478 char buf[PATH_MAX]; 9479 9480 if (path) { 9481 err = pathname_concat(buf, sizeof(buf), path, bpf_map__name(map)); 9482 if (err) 9483 return libbpf_err(err); 9484 sanitize_pin_path(buf); 9485 pin_path = buf; 9486 } else if (!map->pin_path) { 9487 continue; 9488 } 9489 9490 err = bpf_map__unpin(map, pin_path); 9491 if (err) 9492 return libbpf_err(err); 9493 } 9494 9495 return 0; 9496 } 9497 9498 int bpf_object__pin_programs(struct bpf_object *obj, const char *path) 9499 { 9500 struct bpf_program *prog; 9501 char buf[PATH_MAX]; 9502 int err; 9503 9504 if (!obj) 9505 return libbpf_err(-ENOENT); 9506 9507 if (obj->state < OBJ_LOADED) { 9508 pr_warn("object not yet loaded; load it first\n"); 9509 return libbpf_err(-ENOENT); 9510 } 9511 9512 bpf_object__for_each_program(prog, obj) { 9513 err = pathname_concat(buf, sizeof(buf), path, prog->name); 9514 if (err) 9515 goto err_unpin_programs; 9516 9517 err = bpf_program__pin(prog, buf); 9518 if (err) 9519 goto err_unpin_programs; 9520 } 9521 9522 return 0; 9523 9524 err_unpin_programs: 9525 while ((prog = bpf_object__prev_program(obj, prog))) { 9526 if (pathname_concat(buf, sizeof(buf), path, prog->name)) 9527 continue; 9528 9529 bpf_program__unpin(prog, buf); 9530 } 9531 9532 return libbpf_err(err); 9533 } 9534 9535 int bpf_object__unpin_programs(struct bpf_object *obj, const char *path) 9536 { 9537 struct bpf_program *prog; 9538 int err; 9539 9540 if (!obj) 9541 return libbpf_err(-ENOENT); 9542 9543 bpf_object__for_each_program(prog, obj) { 9544 char buf[PATH_MAX]; 9545 9546 err = pathname_concat(buf, sizeof(buf), path, prog->name); 9547 if (err) 9548 return libbpf_err(err); 9549 9550 err = bpf_program__unpin(prog, buf); 9551 if (err) 9552 return libbpf_err(err); 9553 } 9554 9555 return 0; 9556 } 9557 9558 int bpf_object__pin(struct bpf_object *obj, const char *path) 9559 { 9560 int err; 9561 9562 err = bpf_object__pin_maps(obj, path); 9563 if (err) 9564 return libbpf_err(err); 9565 9566 err = bpf_object__pin_programs(obj, path); 9567 if (err) { 9568 bpf_object__unpin_maps(obj, path); 9569 return libbpf_err(err); 9570 } 9571 9572 return 0; 9573 } 9574 9575 int bpf_object__unpin(struct bpf_object *obj, const char *path) 9576 { 9577 int err; 9578 9579 err = bpf_object__unpin_programs(obj, path); 9580 if (err) 9581 return libbpf_err(err); 9582 9583 err = bpf_object__unpin_maps(obj, path); 9584 if (err) 9585 return libbpf_err(err); 9586 9587 return 0; 9588 } 9589 9590 static void bpf_map__destroy(struct bpf_map *map) 9591 { 9592 if (map->inner_map) { 9593 bpf_map__destroy(map->inner_map); 9594 zfree(&map->inner_map); 9595 } 9596 9597 zfree(&map->init_slots); 9598 map->init_slots_sz = 0; 9599 9600 if (map->mmaped && map->mmaped != map->obj->arena_data) 9601 munmap(map->mmaped, bpf_map_mmap_sz(map)); 9602 map->mmaped = NULL; 9603 9604 if (map->st_ops) { 9605 zfree(&map->st_ops->data); 9606 zfree(&map->st_ops->progs); 9607 zfree(&map->st_ops->kern_func_off); 9608 zfree(&map->st_ops); 9609 } 9610 9611 zfree(&map->name); 9612 zfree(&map->real_name); 9613 zfree(&map->pin_path); 9614 9615 if (map->fd >= 0) 9616 zclose(map->fd); 9617 } 9618 9619 void bpf_object__close(struct bpf_object *obj) 9620 { 9621 size_t i; 9622 9623 if (IS_ERR_OR_NULL(obj)) 9624 return; 9625 9626 /* 9627 * if user called bpf_object__prepare() without ever getting to 9628 * bpf_object__load(), we need to clean up stuff that is normally 9629 * cleaned up at the end of loading step 9630 */ 9631 bpf_object_post_load_cleanup(obj); 9632 9633 usdt_manager_free(obj->usdt_man); 9634 obj->usdt_man = NULL; 9635 9636 bpf_gen__free(obj->gen_loader); 9637 bpf_object__elf_finish(obj); 9638 bpf_object_unload(obj); 9639 btf__free(obj->btf); 9640 btf__free(obj->btf_vmlinux); 9641 btf_ext__free(obj->btf_ext); 9642 9643 for (i = 0; i < obj->nr_maps; i++) 9644 bpf_map__destroy(&obj->maps[i]); 9645 9646 zfree(&obj->btf_custom_path); 9647 zfree(&obj->kconfig); 9648 9649 for (i = 0; i < obj->nr_extern; i++) { 9650 zfree(&obj->externs[i].name); 9651 zfree(&obj->externs[i].essent_name); 9652 } 9653 9654 zfree(&obj->externs); 9655 obj->nr_extern = 0; 9656 9657 zfree(&obj->maps); 9658 obj->nr_maps = 0; 9659 9660 if (obj->programs && obj->nr_programs) { 9661 for (i = 0; i < obj->nr_programs; i++) 9662 bpf_program__exit(&obj->programs[i]); 9663 } 9664 zfree(&obj->programs); 9665 9666 zfree(&obj->feat_cache); 9667 zfree(&obj->token_path); 9668 if (obj->token_fd > 0) 9669 close(obj->token_fd); 9670 9671 zfree(&obj->arena_data); 9672 9673 zfree(&obj->jumptables_data); 9674 obj->jumptables_data_sz = 0; 9675 9676 for (i = 0; i < obj->jumptable_map_cnt; i++) 9677 close(obj->jumptable_maps[i].fd); 9678 zfree(&obj->jumptable_maps); 9679 9680 free(obj); 9681 } 9682 9683 const char *bpf_object__name(const struct bpf_object *obj) 9684 { 9685 return obj ? obj->name : libbpf_err_ptr(-EINVAL); 9686 } 9687 9688 unsigned int bpf_object__kversion(const struct bpf_object *obj) 9689 { 9690 return obj ? obj->kern_version : 0; 9691 } 9692 9693 int bpf_object__token_fd(const struct bpf_object *obj) 9694 { 9695 return obj->token_fd ?: -1; 9696 } 9697 9698 struct btf *bpf_object__btf(const struct bpf_object *obj) 9699 { 9700 return obj ? obj->btf : NULL; 9701 } 9702 9703 int bpf_object__btf_fd(const struct bpf_object *obj) 9704 { 9705 return obj->btf ? btf__fd(obj->btf) : -1; 9706 } 9707 9708 int bpf_object__set_kversion(struct bpf_object *obj, __u32 kern_version) 9709 { 9710 if (obj->state >= OBJ_LOADED) 9711 return libbpf_err(-EINVAL); 9712 9713 obj->kern_version = kern_version; 9714 9715 return 0; 9716 } 9717 9718 int bpf_object__gen_loader(struct bpf_object *obj, struct gen_loader_opts *opts) 9719 { 9720 struct bpf_gen *gen; 9721 9722 if (!opts) 9723 return libbpf_err(-EFAULT); 9724 if (!OPTS_VALID(opts, gen_loader_opts)) 9725 return libbpf_err(-EINVAL); 9726 gen = calloc(1, sizeof(*gen)); 9727 if (!gen) 9728 return libbpf_err(-ENOMEM); 9729 gen->opts = opts; 9730 gen->swapped_endian = !is_native_endianness(obj); 9731 obj->gen_loader = gen; 9732 return 0; 9733 } 9734 9735 static struct bpf_program * 9736 __bpf_program__iter(const struct bpf_program *p, const struct bpf_object *obj, 9737 bool forward) 9738 { 9739 size_t nr_programs = obj->nr_programs; 9740 ssize_t idx; 9741 9742 if (!nr_programs) 9743 return NULL; 9744 9745 if (!p) 9746 /* Iter from the beginning */ 9747 return forward ? &obj->programs[0] : 9748 &obj->programs[nr_programs - 1]; 9749 9750 if (p->obj != obj) { 9751 pr_warn("error: program handler doesn't match object\n"); 9752 return errno = EINVAL, NULL; 9753 } 9754 9755 idx = (p - obj->programs) + (forward ? 1 : -1); 9756 if (idx >= obj->nr_programs || idx < 0) 9757 return NULL; 9758 return &obj->programs[idx]; 9759 } 9760 9761 struct bpf_program * 9762 bpf_object__next_program(const struct bpf_object *obj, struct bpf_program *prev) 9763 { 9764 struct bpf_program *prog = prev; 9765 9766 do { 9767 prog = __bpf_program__iter(prog, obj, true); 9768 } while (prog && prog_is_subprog(obj, prog)); 9769 9770 return prog; 9771 } 9772 9773 struct bpf_program * 9774 bpf_object__prev_program(const struct bpf_object *obj, struct bpf_program *next) 9775 { 9776 struct bpf_program *prog = next; 9777 9778 do { 9779 prog = __bpf_program__iter(prog, obj, false); 9780 } while (prog && prog_is_subprog(obj, prog)); 9781 9782 return prog; 9783 } 9784 9785 void bpf_program__set_ifindex(struct bpf_program *prog, __u32 ifindex) 9786 { 9787 prog->prog_ifindex = ifindex; 9788 } 9789 9790 const char *bpf_program__name(const struct bpf_program *prog) 9791 { 9792 return prog->name; 9793 } 9794 9795 const char *bpf_program__section_name(const struct bpf_program *prog) 9796 { 9797 return prog->sec_name; 9798 } 9799 9800 bool bpf_program__autoload(const struct bpf_program *prog) 9801 { 9802 return prog->autoload; 9803 } 9804 9805 int bpf_program__set_autoload(struct bpf_program *prog, bool autoload) 9806 { 9807 if (prog->obj->state >= OBJ_LOADED) 9808 return libbpf_err(-EINVAL); 9809 9810 prog->autoload = autoload; 9811 return 0; 9812 } 9813 9814 bool bpf_program__autoattach(const struct bpf_program *prog) 9815 { 9816 return prog->autoattach; 9817 } 9818 9819 void bpf_program__set_autoattach(struct bpf_program *prog, bool autoattach) 9820 { 9821 prog->autoattach = autoattach; 9822 } 9823 9824 const struct bpf_insn *bpf_program__insns(const struct bpf_program *prog) 9825 { 9826 return prog->insns; 9827 } 9828 9829 size_t bpf_program__insn_cnt(const struct bpf_program *prog) 9830 { 9831 return prog->insns_cnt; 9832 } 9833 9834 int bpf_program__set_insns(struct bpf_program *prog, 9835 struct bpf_insn *new_insns, size_t new_insn_cnt) 9836 { 9837 struct bpf_insn *insns; 9838 9839 if (prog->obj->state >= OBJ_LOADED) 9840 return libbpf_err(-EBUSY); 9841 9842 insns = libbpf_reallocarray(prog->insns, new_insn_cnt, sizeof(*insns)); 9843 /* NULL is a valid return from reallocarray if the new count is zero */ 9844 if (!insns && new_insn_cnt) { 9845 pr_warn("prog '%s': failed to realloc prog code\n", prog->name); 9846 return libbpf_err(-ENOMEM); 9847 } 9848 memcpy(insns, new_insns, new_insn_cnt * sizeof(*insns)); 9849 9850 prog->insns = insns; 9851 prog->insns_cnt = new_insn_cnt; 9852 return 0; 9853 } 9854 9855 int bpf_program__fd(const struct bpf_program *prog) 9856 { 9857 if (!prog) 9858 return libbpf_err(-EINVAL); 9859 9860 if (prog->fd < 0) 9861 return libbpf_err(-ENOENT); 9862 9863 return prog->fd; 9864 } 9865 9866 __alias(bpf_program__type) 9867 enum bpf_prog_type bpf_program__get_type(const struct bpf_program *prog); 9868 9869 enum bpf_prog_type bpf_program__type(const struct bpf_program *prog) 9870 { 9871 return prog->type; 9872 } 9873 9874 static size_t custom_sec_def_cnt; 9875 static struct bpf_sec_def *custom_sec_defs; 9876 static struct bpf_sec_def custom_fallback_def; 9877 static bool has_custom_fallback_def; 9878 static int last_custom_sec_def_handler_id; 9879 9880 int bpf_program__set_type(struct bpf_program *prog, enum bpf_prog_type type) 9881 { 9882 if (prog->obj->state >= OBJ_LOADED) 9883 return libbpf_err(-EBUSY); 9884 9885 /* if type is not changed, do nothing */ 9886 if (prog->type == type) 9887 return 0; 9888 9889 prog->type = type; 9890 9891 /* If a program type was changed, we need to reset associated SEC() 9892 * handler, as it will be invalid now. The only exception is a generic 9893 * fallback handler, which by definition is program type-agnostic and 9894 * is a catch-all custom handler, optionally set by the application, 9895 * so should be able to handle any type of BPF program. 9896 */ 9897 if (prog->sec_def != &custom_fallback_def) 9898 prog->sec_def = NULL; 9899 return 0; 9900 } 9901 9902 __alias(bpf_program__expected_attach_type) 9903 enum bpf_attach_type bpf_program__get_expected_attach_type(const struct bpf_program *prog); 9904 9905 enum bpf_attach_type bpf_program__expected_attach_type(const struct bpf_program *prog) 9906 { 9907 return prog->expected_attach_type; 9908 } 9909 9910 int bpf_program__set_expected_attach_type(struct bpf_program *prog, 9911 enum bpf_attach_type type) 9912 { 9913 if (prog->obj->state >= OBJ_LOADED) 9914 return libbpf_err(-EBUSY); 9915 9916 prog->expected_attach_type = type; 9917 return 0; 9918 } 9919 9920 __u32 bpf_program__flags(const struct bpf_program *prog) 9921 { 9922 return prog->prog_flags; 9923 } 9924 9925 int bpf_program__set_flags(struct bpf_program *prog, __u32 flags) 9926 { 9927 if (prog->obj->state >= OBJ_LOADED) 9928 return libbpf_err(-EBUSY); 9929 9930 prog->prog_flags = flags; 9931 return 0; 9932 } 9933 9934 __u32 bpf_program__log_level(const struct bpf_program *prog) 9935 { 9936 return prog->log_level; 9937 } 9938 9939 int bpf_program__set_log_level(struct bpf_program *prog, __u32 log_level) 9940 { 9941 if (prog->obj->state >= OBJ_LOADED) 9942 return libbpf_err(-EBUSY); 9943 9944 prog->log_level = log_level; 9945 return 0; 9946 } 9947 9948 const char *bpf_program__log_buf(const struct bpf_program *prog, size_t *log_size) 9949 { 9950 *log_size = prog->log_size; 9951 return prog->log_buf; 9952 } 9953 9954 int bpf_program__set_log_buf(struct bpf_program *prog, char *log_buf, size_t log_size) 9955 { 9956 if (log_size && !log_buf) 9957 return libbpf_err(-EINVAL); 9958 if (prog->log_size > UINT_MAX) 9959 return libbpf_err(-EINVAL); 9960 if (prog->obj->state >= OBJ_LOADED) 9961 return libbpf_err(-EBUSY); 9962 9963 prog->log_buf = log_buf; 9964 prog->log_size = log_size; 9965 return 0; 9966 } 9967 9968 struct bpf_func_info *bpf_program__func_info(const struct bpf_program *prog) 9969 { 9970 if (prog->func_info_rec_size != sizeof(struct bpf_func_info)) 9971 return libbpf_err_ptr(-EOPNOTSUPP); 9972 return prog->func_info; 9973 } 9974 9975 __u32 bpf_program__func_info_cnt(const struct bpf_program *prog) 9976 { 9977 return prog->func_info_cnt; 9978 } 9979 9980 struct bpf_line_info *bpf_program__line_info(const struct bpf_program *prog) 9981 { 9982 if (prog->line_info_rec_size != sizeof(struct bpf_line_info)) 9983 return libbpf_err_ptr(-EOPNOTSUPP); 9984 return prog->line_info; 9985 } 9986 9987 __u32 bpf_program__line_info_cnt(const struct bpf_program *prog) 9988 { 9989 return prog->line_info_cnt; 9990 } 9991 9992 int bpf_program__clone(struct bpf_program *prog, const struct bpf_prog_load_opts *opts) 9993 { 9994 LIBBPF_OPTS(bpf_prog_load_opts, attr); 9995 struct bpf_object *obj; 9996 const void *info; 9997 __u32 info_cnt, info_rec_size; 9998 int err, fd, prog_btf_fd; 9999 10000 if (!prog) 10001 return libbpf_err(-EINVAL); 10002 10003 if (!OPTS_VALID(opts, bpf_prog_load_opts)) 10004 return libbpf_err(-EINVAL); 10005 10006 obj = prog->obj; 10007 if (obj->state < OBJ_PREPARED) 10008 return libbpf_err(-EINVAL); 10009 10010 /* 10011 * Caller-provided opts take priority; fall back to 10012 * prog/object defaults when the caller leaves them zero. 10013 */ 10014 attr.attach_prog_fd = OPTS_GET(opts, attach_prog_fd, 0) ?: prog->attach_prog_fd; 10015 attr.prog_flags = OPTS_GET(opts, prog_flags, 0) ?: prog->prog_flags; 10016 attr.prog_ifindex = OPTS_GET(opts, prog_ifindex, 0) ?: prog->prog_ifindex; 10017 attr.kern_version = OPTS_GET(opts, kern_version, 0) ?: obj->kern_version; 10018 attr.fd_array = OPTS_GET(opts, fd_array, NULL) ?: obj->fd_array; 10019 attr.fd_array_cnt = OPTS_GET(opts, fd_array_cnt, 0) ?: obj->fd_array_cnt; 10020 attr.token_fd = OPTS_GET(opts, token_fd, 0) ?: obj->token_fd; 10021 if (attr.token_fd) 10022 attr.prog_flags |= BPF_F_TOKEN_FD; 10023 10024 prog_btf_fd = OPTS_GET(opts, prog_btf_fd, 0); 10025 if (!prog_btf_fd && obj->btf) 10026 prog_btf_fd = btf__fd(obj->btf); 10027 10028 /* BTF func/line info: only pass if kernel supports it */ 10029 if (kernel_supports(obj, FEAT_BTF_FUNC) && prog_btf_fd > 0) { 10030 attr.prog_btf_fd = prog_btf_fd; 10031 10032 /* func_info/line_info triples: all-or-nothing from caller */ 10033 info = OPTS_GET(opts, func_info, NULL); 10034 info_cnt = OPTS_GET(opts, func_info_cnt, 0); 10035 info_rec_size = OPTS_GET(opts, func_info_rec_size, 0); 10036 if (!!info != !!info_cnt || !!info != !!info_rec_size) { 10037 pr_warn("prog '%s': func_info, func_info_cnt, and func_info_rec_size must all be specified or all omitted\n", 10038 prog->name); 10039 return libbpf_err(-EINVAL); 10040 } 10041 attr.func_info = info ?: prog->func_info; 10042 attr.func_info_cnt = info ? info_cnt : prog->func_info_cnt; 10043 attr.func_info_rec_size = info ? info_rec_size : prog->func_info_rec_size; 10044 10045 info = OPTS_GET(opts, line_info, NULL); 10046 info_cnt = OPTS_GET(opts, line_info_cnt, 0); 10047 info_rec_size = OPTS_GET(opts, line_info_rec_size, 0); 10048 if (!!info != !!info_cnt || !!info != !!info_rec_size) { 10049 pr_warn("prog '%s': line_info, line_info_cnt, and line_info_rec_size must all be specified or all omitted\n", 10050 prog->name); 10051 return libbpf_err(-EINVAL); 10052 } 10053 attr.line_info = info ?: prog->line_info; 10054 attr.line_info_cnt = info ? info_cnt : prog->line_info_cnt; 10055 attr.line_info_rec_size = info ? info_rec_size : prog->line_info_rec_size; 10056 } 10057 10058 /* Logging is caller-controlled; no fallback to prog/obj log settings */ 10059 attr.log_buf = OPTS_GET(opts, log_buf, NULL); 10060 attr.log_size = OPTS_GET(opts, log_size, 0); 10061 attr.log_level = OPTS_GET(opts, log_level, 0); 10062 10063 /* 10064 * Fields below may be mutated by prog_prepare_load_fn: 10065 * Seed them from prog/obj defaults here; 10066 * Later override with caller-provided opts. 10067 */ 10068 attr.expected_attach_type = prog->expected_attach_type; 10069 attr.attach_btf_id = prog->attach_btf_id; 10070 attr.attach_btf_obj_fd = prog->attach_btf_obj_fd; 10071 10072 if (prog->sec_def && prog->sec_def->prog_prepare_load_fn) { 10073 err = prog->sec_def->prog_prepare_load_fn(prog, &attr, prog->sec_def->cookie); 10074 if (err) 10075 return libbpf_err(err); 10076 } 10077 10078 /* Re-apply caller overrides for output fields */ 10079 if (OPTS_GET(opts, expected_attach_type, 0)) 10080 attr.expected_attach_type = OPTS_GET(opts, expected_attach_type, 0); 10081 if (OPTS_GET(opts, attach_btf_id, 0)) 10082 attr.attach_btf_id = OPTS_GET(opts, attach_btf_id, 0); 10083 if (OPTS_GET(opts, attach_btf_obj_fd, 0)) 10084 attr.attach_btf_obj_fd = OPTS_GET(opts, attach_btf_obj_fd, 0); 10085 10086 /* 10087 * Unlike bpf_object_load_prog(), we intentionally do not call bpf_prog_bind_map() 10088 * for RODATA maps here to avoid mutating the object's state. Callers can bind the 10089 * required maps themselves using bpf_prog_bind_map(). 10090 */ 10091 fd = bpf_prog_load(prog->type, prog->name, obj->license, prog->insns, prog->insns_cnt, 10092 &attr); 10093 10094 return libbpf_err(fd); 10095 } 10096 10097 #define SEC_DEF(sec_pfx, ptype, atype, flags, ...) { \ 10098 .sec = (char *)sec_pfx, \ 10099 .prog_type = BPF_PROG_TYPE_##ptype, \ 10100 .expected_attach_type = atype, \ 10101 .cookie = (long)(flags), \ 10102 .prog_prepare_load_fn = libbpf_prepare_prog_load, \ 10103 __VA_ARGS__ \ 10104 } 10105 10106 static int attach_kprobe(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10107 static int attach_uprobe(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10108 static int attach_ksyscall(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10109 static int attach_usdt(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10110 static int attach_tp(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10111 static int attach_raw_tp(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10112 static int attach_trace(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10113 static int attach_kprobe_multi(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10114 static int attach_kprobe_session(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10115 static int attach_uprobe_multi(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10116 static int attach_lsm(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10117 static int attach_iter(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10118 static int attach_tracing_multi(const struct bpf_program *prog, long cookie, struct bpf_link **link); 10119 10120 static const struct bpf_sec_def section_defs[] = { 10121 SEC_DEF("socket", SOCKET_FILTER, 0, SEC_NONE), 10122 SEC_DEF("sk_reuseport/migrate", SK_REUSEPORT, BPF_SK_REUSEPORT_SELECT_OR_MIGRATE, SEC_ATTACHABLE), 10123 SEC_DEF("sk_reuseport", SK_REUSEPORT, BPF_SK_REUSEPORT_SELECT, SEC_ATTACHABLE), 10124 SEC_DEF("kprobe+", KPROBE, 0, SEC_NONE, attach_kprobe), 10125 SEC_DEF("uprobe+", KPROBE, 0, SEC_NONE, attach_uprobe), 10126 SEC_DEF("uprobe.s+", KPROBE, 0, SEC_SLEEPABLE, attach_uprobe), 10127 SEC_DEF("kretprobe+", KPROBE, 0, SEC_NONE, attach_kprobe), 10128 SEC_DEF("uretprobe+", KPROBE, 0, SEC_NONE, attach_uprobe), 10129 SEC_DEF("uretprobe.s+", KPROBE, 0, SEC_SLEEPABLE, attach_uprobe), 10130 SEC_DEF("kprobe.multi+", KPROBE, BPF_TRACE_KPROBE_MULTI, SEC_NONE, attach_kprobe_multi), 10131 SEC_DEF("kretprobe.multi+", KPROBE, BPF_TRACE_KPROBE_MULTI, SEC_NONE, attach_kprobe_multi), 10132 SEC_DEF("kprobe.session+", KPROBE, BPF_TRACE_KPROBE_SESSION, SEC_NONE, attach_kprobe_session), 10133 SEC_DEF("uprobe.multi+", KPROBE, BPF_TRACE_UPROBE_MULTI, SEC_NONE, attach_uprobe_multi), 10134 SEC_DEF("uretprobe.multi+", KPROBE, BPF_TRACE_UPROBE_MULTI, SEC_NONE, attach_uprobe_multi), 10135 SEC_DEF("uprobe.session+", KPROBE, BPF_TRACE_UPROBE_SESSION, SEC_NONE, attach_uprobe_multi), 10136 SEC_DEF("uprobe.multi.s+", KPROBE, BPF_TRACE_UPROBE_MULTI, SEC_SLEEPABLE, attach_uprobe_multi), 10137 SEC_DEF("uretprobe.multi.s+", KPROBE, BPF_TRACE_UPROBE_MULTI, SEC_SLEEPABLE, attach_uprobe_multi), 10138 SEC_DEF("uprobe.session.s+", KPROBE, BPF_TRACE_UPROBE_SESSION, SEC_SLEEPABLE, attach_uprobe_multi), 10139 SEC_DEF("ksyscall+", KPROBE, 0, SEC_NONE, attach_ksyscall), 10140 SEC_DEF("kretsyscall+", KPROBE, 0, SEC_NONE, attach_ksyscall), 10141 SEC_DEF("usdt+", KPROBE, 0, SEC_USDT, attach_usdt), 10142 SEC_DEF("usdt.s+", KPROBE, 0, SEC_USDT | SEC_SLEEPABLE, attach_usdt), 10143 SEC_DEF("tc/ingress", SCHED_CLS, BPF_TCX_INGRESS, SEC_NONE), /* alias for tcx */ 10144 SEC_DEF("tc/egress", SCHED_CLS, BPF_TCX_EGRESS, SEC_NONE), /* alias for tcx */ 10145 SEC_DEF("tcx/ingress", SCHED_CLS, BPF_TCX_INGRESS, SEC_NONE), 10146 SEC_DEF("tcx/egress", SCHED_CLS, BPF_TCX_EGRESS, SEC_NONE), 10147 SEC_DEF("tc", SCHED_CLS, 0, SEC_NONE), /* deprecated / legacy, use tcx */ 10148 SEC_DEF("classifier", SCHED_CLS, 0, SEC_NONE), /* deprecated / legacy, use tcx */ 10149 SEC_DEF("action", SCHED_ACT, 0, SEC_NONE), /* deprecated / legacy, use tcx */ 10150 SEC_DEF("netkit/primary", SCHED_CLS, BPF_NETKIT_PRIMARY, SEC_NONE), 10151 SEC_DEF("netkit/peer", SCHED_CLS, BPF_NETKIT_PEER, SEC_NONE), 10152 SEC_DEF("tracepoint+", TRACEPOINT, 0, SEC_NONE, attach_tp), 10153 SEC_DEF("tp+", TRACEPOINT, 0, SEC_NONE, attach_tp), 10154 SEC_DEF("tracepoint.s+", TRACEPOINT, 0, SEC_SLEEPABLE, attach_tp), 10155 SEC_DEF("tp.s+", TRACEPOINT, 0, SEC_SLEEPABLE, attach_tp), 10156 SEC_DEF("raw_tracepoint+", RAW_TRACEPOINT, 0, SEC_NONE, attach_raw_tp), 10157 SEC_DEF("raw_tp+", RAW_TRACEPOINT, 0, SEC_NONE, attach_raw_tp), 10158 SEC_DEF("raw_tracepoint.s+", RAW_TRACEPOINT, 0, SEC_SLEEPABLE, attach_raw_tp), 10159 SEC_DEF("raw_tp.s+", RAW_TRACEPOINT, 0, SEC_SLEEPABLE, attach_raw_tp), 10160 SEC_DEF("raw_tracepoint.w+", RAW_TRACEPOINT_WRITABLE, 0, SEC_NONE, attach_raw_tp), 10161 SEC_DEF("raw_tp.w+", RAW_TRACEPOINT_WRITABLE, 0, SEC_NONE, attach_raw_tp), 10162 SEC_DEF("tp_btf+", TRACING, BPF_TRACE_RAW_TP, SEC_ATTACH_BTF, attach_trace), 10163 SEC_DEF("tp_btf.s+", TRACING, BPF_TRACE_RAW_TP, SEC_ATTACH_BTF | SEC_SLEEPABLE, attach_trace), 10164 SEC_DEF("fentry+", TRACING, BPF_TRACE_FENTRY, SEC_ATTACH_BTF, attach_trace), 10165 SEC_DEF("fmod_ret+", TRACING, BPF_MODIFY_RETURN, SEC_ATTACH_BTF, attach_trace), 10166 SEC_DEF("fexit+", TRACING, BPF_TRACE_FEXIT, SEC_ATTACH_BTF, attach_trace), 10167 SEC_DEF("fentry.s+", TRACING, BPF_TRACE_FENTRY, SEC_ATTACH_BTF | SEC_SLEEPABLE, attach_trace), 10168 SEC_DEF("fmod_ret.s+", TRACING, BPF_MODIFY_RETURN, SEC_ATTACH_BTF | SEC_SLEEPABLE, attach_trace), 10169 SEC_DEF("fexit.s+", TRACING, BPF_TRACE_FEXIT, SEC_ATTACH_BTF | SEC_SLEEPABLE, attach_trace), 10170 SEC_DEF("fsession+", TRACING, BPF_TRACE_FSESSION, SEC_ATTACH_BTF, attach_trace), 10171 SEC_DEF("fsession.s+", TRACING, BPF_TRACE_FSESSION, SEC_ATTACH_BTF | SEC_SLEEPABLE, attach_trace), 10172 SEC_DEF("fsession.multi+", TRACING, BPF_TRACE_FSESSION_MULTI, 0, attach_tracing_multi), 10173 SEC_DEF("fsession.multi.s+", TRACING, BPF_TRACE_FSESSION_MULTI, SEC_SLEEPABLE, attach_tracing_multi), 10174 SEC_DEF("fentry.multi+", TRACING, BPF_TRACE_FENTRY_MULTI, 0, attach_tracing_multi), 10175 SEC_DEF("fexit.multi+", TRACING, BPF_TRACE_FEXIT_MULTI, 0, attach_tracing_multi), 10176 SEC_DEF("fentry.multi.s+", TRACING, BPF_TRACE_FENTRY_MULTI, SEC_SLEEPABLE, attach_tracing_multi), 10177 SEC_DEF("fexit.multi.s+", TRACING, BPF_TRACE_FEXIT_MULTI, SEC_SLEEPABLE, attach_tracing_multi), 10178 SEC_DEF("freplace+", EXT, 0, SEC_ATTACH_BTF, attach_trace), 10179 SEC_DEF("lsm+", LSM, BPF_LSM_MAC, SEC_ATTACH_BTF, attach_lsm), 10180 SEC_DEF("lsm.s+", LSM, BPF_LSM_MAC, SEC_ATTACH_BTF | SEC_SLEEPABLE, attach_lsm), 10181 SEC_DEF("lsm_cgroup+", LSM, BPF_LSM_CGROUP, SEC_ATTACH_BTF), 10182 SEC_DEF("iter+", TRACING, BPF_TRACE_ITER, SEC_ATTACH_BTF, attach_iter), 10183 SEC_DEF("iter.s+", TRACING, BPF_TRACE_ITER, SEC_ATTACH_BTF | SEC_SLEEPABLE, attach_iter), 10184 SEC_DEF("syscall", SYSCALL, 0, SEC_SLEEPABLE), 10185 SEC_DEF("xdp.frags/devmap", XDP, BPF_XDP_DEVMAP, SEC_XDP_FRAGS), 10186 SEC_DEF("xdp/devmap", XDP, BPF_XDP_DEVMAP, SEC_ATTACHABLE), 10187 SEC_DEF("xdp.frags/cpumap", XDP, BPF_XDP_CPUMAP, SEC_XDP_FRAGS), 10188 SEC_DEF("xdp/cpumap", XDP, BPF_XDP_CPUMAP, SEC_ATTACHABLE), 10189 SEC_DEF("xdp.frags", XDP, BPF_XDP, SEC_XDP_FRAGS), 10190 SEC_DEF("xdp", XDP, BPF_XDP, SEC_ATTACHABLE_OPT), 10191 SEC_DEF("perf_event", PERF_EVENT, 0, SEC_NONE), 10192 SEC_DEF("lwt_in", LWT_IN, 0, SEC_NONE), 10193 SEC_DEF("lwt_out", LWT_OUT, 0, SEC_NONE), 10194 SEC_DEF("lwt_xmit", LWT_XMIT, 0, SEC_NONE), 10195 SEC_DEF("lwt_seg6local", LWT_SEG6LOCAL, 0, SEC_NONE), 10196 SEC_DEF("sockops", SOCK_OPS, BPF_CGROUP_SOCK_OPS, SEC_ATTACHABLE_OPT), 10197 SEC_DEF("sk_skb/stream_parser", SK_SKB, BPF_SK_SKB_STREAM_PARSER, SEC_ATTACHABLE_OPT), 10198 SEC_DEF("sk_skb/stream_verdict",SK_SKB, BPF_SK_SKB_STREAM_VERDICT, SEC_ATTACHABLE_OPT), 10199 SEC_DEF("sk_skb/verdict", SK_SKB, BPF_SK_SKB_VERDICT, SEC_ATTACHABLE_OPT), 10200 SEC_DEF("sk_skb", SK_SKB, 0, SEC_NONE), 10201 SEC_DEF("sk_msg", SK_MSG, BPF_SK_MSG_VERDICT, SEC_ATTACHABLE_OPT), 10202 SEC_DEF("lirc_mode2", LIRC_MODE2, BPF_LIRC_MODE2, SEC_ATTACHABLE_OPT), 10203 SEC_DEF("flow_dissector", FLOW_DISSECTOR, BPF_FLOW_DISSECTOR, SEC_ATTACHABLE_OPT), 10204 SEC_DEF("cgroup_skb/ingress", CGROUP_SKB, BPF_CGROUP_INET_INGRESS, SEC_ATTACHABLE_OPT), 10205 SEC_DEF("cgroup_skb/egress", CGROUP_SKB, BPF_CGROUP_INET_EGRESS, SEC_ATTACHABLE_OPT), 10206 SEC_DEF("cgroup/skb", CGROUP_SKB, 0, SEC_NONE), 10207 SEC_DEF("cgroup/sock_create", CGROUP_SOCK, BPF_CGROUP_INET_SOCK_CREATE, SEC_ATTACHABLE), 10208 SEC_DEF("cgroup/sock_release", CGROUP_SOCK, BPF_CGROUP_INET_SOCK_RELEASE, SEC_ATTACHABLE), 10209 SEC_DEF("cgroup/sock", CGROUP_SOCK, BPF_CGROUP_INET_SOCK_CREATE, SEC_ATTACHABLE_OPT), 10210 SEC_DEF("cgroup/post_bind4", CGROUP_SOCK, BPF_CGROUP_INET4_POST_BIND, SEC_ATTACHABLE), 10211 SEC_DEF("cgroup/post_bind6", CGROUP_SOCK, BPF_CGROUP_INET6_POST_BIND, SEC_ATTACHABLE), 10212 SEC_DEF("cgroup/bind4", CGROUP_SOCK_ADDR, BPF_CGROUP_INET4_BIND, SEC_ATTACHABLE), 10213 SEC_DEF("cgroup/bind6", CGROUP_SOCK_ADDR, BPF_CGROUP_INET6_BIND, SEC_ATTACHABLE), 10214 SEC_DEF("cgroup/connect4", CGROUP_SOCK_ADDR, BPF_CGROUP_INET4_CONNECT, SEC_ATTACHABLE), 10215 SEC_DEF("cgroup/connect6", CGROUP_SOCK_ADDR, BPF_CGROUP_INET6_CONNECT, SEC_ATTACHABLE), 10216 SEC_DEF("cgroup/connect_unix", CGROUP_SOCK_ADDR, BPF_CGROUP_UNIX_CONNECT, SEC_ATTACHABLE), 10217 SEC_DEF("cgroup/sendmsg4", CGROUP_SOCK_ADDR, BPF_CGROUP_UDP4_SENDMSG, SEC_ATTACHABLE), 10218 SEC_DEF("cgroup/sendmsg6", CGROUP_SOCK_ADDR, BPF_CGROUP_UDP6_SENDMSG, SEC_ATTACHABLE), 10219 SEC_DEF("cgroup/sendmsg_unix", CGROUP_SOCK_ADDR, BPF_CGROUP_UNIX_SENDMSG, SEC_ATTACHABLE), 10220 SEC_DEF("cgroup/recvmsg4", CGROUP_SOCK_ADDR, BPF_CGROUP_UDP4_RECVMSG, SEC_ATTACHABLE), 10221 SEC_DEF("cgroup/recvmsg6", CGROUP_SOCK_ADDR, BPF_CGROUP_UDP6_RECVMSG, SEC_ATTACHABLE), 10222 SEC_DEF("cgroup/recvmsg_unix", CGROUP_SOCK_ADDR, BPF_CGROUP_UNIX_RECVMSG, SEC_ATTACHABLE), 10223 SEC_DEF("cgroup/getpeername4", CGROUP_SOCK_ADDR, BPF_CGROUP_INET4_GETPEERNAME, SEC_ATTACHABLE), 10224 SEC_DEF("cgroup/getpeername6", CGROUP_SOCK_ADDR, BPF_CGROUP_INET6_GETPEERNAME, SEC_ATTACHABLE), 10225 SEC_DEF("cgroup/getpeername_unix", CGROUP_SOCK_ADDR, BPF_CGROUP_UNIX_GETPEERNAME, SEC_ATTACHABLE), 10226 SEC_DEF("cgroup/getsockname4", CGROUP_SOCK_ADDR, BPF_CGROUP_INET4_GETSOCKNAME, SEC_ATTACHABLE), 10227 SEC_DEF("cgroup/getsockname6", CGROUP_SOCK_ADDR, BPF_CGROUP_INET6_GETSOCKNAME, SEC_ATTACHABLE), 10228 SEC_DEF("cgroup/getsockname_unix", CGROUP_SOCK_ADDR, BPF_CGROUP_UNIX_GETSOCKNAME, SEC_ATTACHABLE), 10229 SEC_DEF("cgroup/sysctl", CGROUP_SYSCTL, BPF_CGROUP_SYSCTL, SEC_ATTACHABLE), 10230 SEC_DEF("cgroup/getsockopt", CGROUP_SOCKOPT, BPF_CGROUP_GETSOCKOPT, SEC_ATTACHABLE), 10231 SEC_DEF("cgroup/setsockopt", CGROUP_SOCKOPT, BPF_CGROUP_SETSOCKOPT, SEC_ATTACHABLE), 10232 SEC_DEF("cgroup/dev", CGROUP_DEVICE, BPF_CGROUP_DEVICE, SEC_ATTACHABLE_OPT), 10233 SEC_DEF("struct_ops+", STRUCT_OPS, 0, SEC_NONE), 10234 SEC_DEF("struct_ops.s+", STRUCT_OPS, 0, SEC_SLEEPABLE), 10235 SEC_DEF("sk_lookup", SK_LOOKUP, BPF_SK_LOOKUP, SEC_ATTACHABLE), 10236 SEC_DEF("netfilter", NETFILTER, BPF_NETFILTER, SEC_NONE), 10237 }; 10238 10239 int libbpf_register_prog_handler(const char *sec, 10240 enum bpf_prog_type prog_type, 10241 enum bpf_attach_type exp_attach_type, 10242 const struct libbpf_prog_handler_opts *opts) 10243 { 10244 struct bpf_sec_def *sec_def; 10245 10246 if (!OPTS_VALID(opts, libbpf_prog_handler_opts)) 10247 return libbpf_err(-EINVAL); 10248 10249 if (last_custom_sec_def_handler_id == INT_MAX) /* prevent overflow */ 10250 return libbpf_err(-E2BIG); 10251 10252 if (sec) { 10253 sec_def = libbpf_reallocarray(custom_sec_defs, custom_sec_def_cnt + 1, 10254 sizeof(*sec_def)); 10255 if (!sec_def) 10256 return libbpf_err(-ENOMEM); 10257 10258 custom_sec_defs = sec_def; 10259 sec_def = &custom_sec_defs[custom_sec_def_cnt]; 10260 } else { 10261 if (has_custom_fallback_def) 10262 return libbpf_err(-EBUSY); 10263 10264 sec_def = &custom_fallback_def; 10265 } 10266 10267 sec_def->sec = sec ? strdup(sec) : NULL; 10268 if (sec && !sec_def->sec) 10269 return libbpf_err(-ENOMEM); 10270 10271 sec_def->prog_type = prog_type; 10272 sec_def->expected_attach_type = exp_attach_type; 10273 sec_def->cookie = OPTS_GET(opts, cookie, 0); 10274 10275 sec_def->prog_setup_fn = OPTS_GET(opts, prog_setup_fn, NULL); 10276 sec_def->prog_prepare_load_fn = OPTS_GET(opts, prog_prepare_load_fn, NULL); 10277 sec_def->prog_attach_fn = OPTS_GET(opts, prog_attach_fn, NULL); 10278 10279 sec_def->handler_id = ++last_custom_sec_def_handler_id; 10280 10281 if (sec) 10282 custom_sec_def_cnt++; 10283 else 10284 has_custom_fallback_def = true; 10285 10286 return sec_def->handler_id; 10287 } 10288 10289 int libbpf_unregister_prog_handler(int handler_id) 10290 { 10291 struct bpf_sec_def *sec_defs; 10292 int i; 10293 10294 if (handler_id <= 0) 10295 return libbpf_err(-EINVAL); 10296 10297 if (has_custom_fallback_def && custom_fallback_def.handler_id == handler_id) { 10298 memset(&custom_fallback_def, 0, sizeof(custom_fallback_def)); 10299 has_custom_fallback_def = false; 10300 return 0; 10301 } 10302 10303 for (i = 0; i < custom_sec_def_cnt; i++) { 10304 if (custom_sec_defs[i].handler_id == handler_id) 10305 break; 10306 } 10307 10308 if (i == custom_sec_def_cnt) 10309 return libbpf_err(-ENOENT); 10310 10311 free(custom_sec_defs[i].sec); 10312 for (i = i + 1; i < custom_sec_def_cnt; i++) 10313 custom_sec_defs[i - 1] = custom_sec_defs[i]; 10314 custom_sec_def_cnt--; 10315 10316 /* try to shrink the array, but it's ok if we couldn't */ 10317 sec_defs = libbpf_reallocarray(custom_sec_defs, custom_sec_def_cnt, sizeof(*sec_defs)); 10318 /* if new count is zero, reallocarray can return a valid NULL result; 10319 * in this case the previous pointer will be freed, so we *have to* 10320 * reassign old pointer to the new value (even if it's NULL) 10321 */ 10322 if (sec_defs || custom_sec_def_cnt == 0) 10323 custom_sec_defs = sec_defs; 10324 10325 return 0; 10326 } 10327 10328 static bool sec_def_matches(const struct bpf_sec_def *sec_def, const char *sec_name) 10329 { 10330 size_t len = strlen(sec_def->sec); 10331 10332 /* "type/" always has to have proper SEC("type/extras") form */ 10333 if (sec_def->sec[len - 1] == '/') { 10334 if (str_has_pfx(sec_name, sec_def->sec)) 10335 return true; 10336 return false; 10337 } 10338 10339 /* "type+" means it can be either exact SEC("type") or 10340 * well-formed SEC("type/extras") with proper '/' separator 10341 */ 10342 if (sec_def->sec[len - 1] == '+') { 10343 len--; 10344 /* not even a prefix */ 10345 if (strncmp(sec_name, sec_def->sec, len) != 0) 10346 return false; 10347 /* exact match or has '/' separator */ 10348 if (sec_name[len] == '\0' || sec_name[len] == '/') 10349 return true; 10350 return false; 10351 } 10352 10353 return strcmp(sec_name, sec_def->sec) == 0; 10354 } 10355 10356 static const struct bpf_sec_def *find_sec_def(const char *sec_name) 10357 { 10358 const struct bpf_sec_def *sec_def; 10359 int i, n; 10360 10361 n = custom_sec_def_cnt; 10362 for (i = 0; i < n; i++) { 10363 sec_def = &custom_sec_defs[i]; 10364 if (sec_def_matches(sec_def, sec_name)) 10365 return sec_def; 10366 } 10367 10368 n = ARRAY_SIZE(section_defs); 10369 for (i = 0; i < n; i++) { 10370 sec_def = §ion_defs[i]; 10371 if (sec_def_matches(sec_def, sec_name)) 10372 return sec_def; 10373 } 10374 10375 if (has_custom_fallback_def) 10376 return &custom_fallback_def; 10377 10378 return NULL; 10379 } 10380 10381 #define MAX_TYPE_NAME_SIZE 32 10382 10383 static char *libbpf_get_type_names(bool attach_type) 10384 { 10385 int i, len = ARRAY_SIZE(section_defs) * MAX_TYPE_NAME_SIZE; 10386 char *buf; 10387 10388 buf = malloc(len); 10389 if (!buf) 10390 return NULL; 10391 10392 buf[0] = '\0'; 10393 /* Forge string buf with all available names */ 10394 for (i = 0; i < ARRAY_SIZE(section_defs); i++) { 10395 const struct bpf_sec_def *sec_def = §ion_defs[i]; 10396 10397 if (attach_type) { 10398 if (sec_def->prog_prepare_load_fn != libbpf_prepare_prog_load) 10399 continue; 10400 10401 if (!(sec_def->cookie & SEC_ATTACHABLE)) 10402 continue; 10403 } 10404 10405 if (strlen(buf) + strlen(section_defs[i].sec) + 2 > len) { 10406 free(buf); 10407 return NULL; 10408 } 10409 strcat(buf, " "); 10410 strcat(buf, section_defs[i].sec); 10411 } 10412 10413 return buf; 10414 } 10415 10416 int libbpf_prog_type_by_name(const char *name, enum bpf_prog_type *prog_type, 10417 enum bpf_attach_type *expected_attach_type) 10418 { 10419 const struct bpf_sec_def *sec_def; 10420 char *type_names; 10421 10422 if (!name) 10423 return libbpf_err(-EINVAL); 10424 10425 sec_def = find_sec_def(name); 10426 if (sec_def) { 10427 *prog_type = sec_def->prog_type; 10428 *expected_attach_type = sec_def->expected_attach_type; 10429 return 0; 10430 } 10431 10432 pr_debug("failed to guess program type from ELF section '%s'\n", name); 10433 type_names = libbpf_get_type_names(false); 10434 if (type_names != NULL) { 10435 pr_debug("supported section(type) names are:%s\n", type_names); 10436 free(type_names); 10437 } 10438 10439 return libbpf_err(-ESRCH); 10440 } 10441 10442 const char *libbpf_bpf_attach_type_str(enum bpf_attach_type t) 10443 { 10444 if (t < 0 || t >= ARRAY_SIZE(attach_type_name)) 10445 return NULL; 10446 10447 return attach_type_name[t]; 10448 } 10449 10450 const char *libbpf_bpf_link_type_str(enum bpf_link_type t) 10451 { 10452 if (t < 0 || t >= ARRAY_SIZE(link_type_name)) 10453 return NULL; 10454 10455 return link_type_name[t]; 10456 } 10457 10458 const char *libbpf_bpf_map_type_str(enum bpf_map_type t) 10459 { 10460 if (t < 0 || t >= ARRAY_SIZE(map_type_name)) 10461 return NULL; 10462 10463 return map_type_name[t]; 10464 } 10465 10466 const char *libbpf_bpf_prog_type_str(enum bpf_prog_type t) 10467 { 10468 if (t < 0 || t >= ARRAY_SIZE(prog_type_name)) 10469 return NULL; 10470 10471 return prog_type_name[t]; 10472 } 10473 10474 static struct bpf_map *find_struct_ops_map_by_offset(struct bpf_object *obj, 10475 int sec_idx, 10476 size_t offset) 10477 { 10478 struct bpf_map *map; 10479 size_t i; 10480 10481 for (i = 0; i < obj->nr_maps; i++) { 10482 map = &obj->maps[i]; 10483 if (!bpf_map__is_struct_ops(map)) 10484 continue; 10485 if (map->sec_idx == sec_idx && 10486 map->sec_offset <= offset && 10487 offset - map->sec_offset < map->def.value_size) 10488 return map; 10489 } 10490 10491 return NULL; 10492 } 10493 10494 /* Collect the reloc from ELF, populate the st_ops->progs[], and update 10495 * st_ops->data for shadow type. 10496 */ 10497 static int bpf_object__collect_st_ops_relos(struct bpf_object *obj, 10498 Elf64_Shdr *shdr, Elf_Data *data) 10499 { 10500 const struct btf_type *type; 10501 const struct btf_member *member; 10502 struct bpf_struct_ops *st_ops; 10503 struct bpf_program *prog; 10504 unsigned int shdr_idx; 10505 const struct btf *btf; 10506 struct bpf_map *map; 10507 unsigned int moff, insn_idx; 10508 const char *name; 10509 __u32 member_idx; 10510 Elf64_Sym *sym; 10511 Elf64_Rel *rel; 10512 int i, nrels; 10513 10514 btf = obj->btf; 10515 nrels = shdr->sh_size / shdr->sh_entsize; 10516 for (i = 0; i < nrels; i++) { 10517 rel = elf_rel_by_idx(data, i); 10518 if (!rel) { 10519 pr_warn("struct_ops reloc: failed to get %d reloc\n", i); 10520 return -LIBBPF_ERRNO__FORMAT; 10521 } 10522 10523 sym = elf_sym_by_idx(obj, ELF64_R_SYM(rel->r_info)); 10524 if (!sym) { 10525 pr_warn("struct_ops reloc: symbol %zx not found\n", 10526 (size_t)ELF64_R_SYM(rel->r_info)); 10527 return -LIBBPF_ERRNO__FORMAT; 10528 } 10529 10530 name = elf_sym_str(obj, sym->st_name) ?: "<?>"; 10531 map = find_struct_ops_map_by_offset(obj, shdr->sh_info, rel->r_offset); 10532 if (!map) { 10533 pr_warn("struct_ops reloc: cannot find map at rel->r_offset %zu\n", 10534 (size_t)rel->r_offset); 10535 return -EINVAL; 10536 } 10537 10538 moff = rel->r_offset - map->sec_offset; 10539 shdr_idx = sym->st_shndx; 10540 st_ops = map->st_ops; 10541 pr_debug("struct_ops reloc %s: for %lld value %lld shdr_idx %u rel->r_offset %zu map->sec_offset %zu name %u (\'%s\')\n", 10542 map->name, 10543 (long long)(rel->r_info >> 32), 10544 (long long)sym->st_value, 10545 shdr_idx, (size_t)rel->r_offset, 10546 map->sec_offset, sym->st_name, name); 10547 10548 if (shdr_idx >= SHN_LORESERVE) { 10549 pr_warn("struct_ops reloc %s: rel->r_offset %zu shdr_idx %u unsupported non-static function\n", 10550 map->name, (size_t)rel->r_offset, shdr_idx); 10551 return -LIBBPF_ERRNO__RELOC; 10552 } 10553 if (sym->st_value % BPF_INSN_SZ) { 10554 pr_warn("struct_ops reloc %s: invalid target program offset %llu\n", 10555 map->name, (unsigned long long)sym->st_value); 10556 return -LIBBPF_ERRNO__FORMAT; 10557 } 10558 insn_idx = sym->st_value / BPF_INSN_SZ; 10559 10560 type = btf__type_by_id(btf, st_ops->type_id); 10561 member = find_member_by_offset(type, moff * 8); 10562 if (!member) { 10563 pr_warn("struct_ops reloc %s: cannot find member at moff %u\n", 10564 map->name, moff); 10565 return -EINVAL; 10566 } 10567 member_idx = member - btf_members(type); 10568 name = btf__name_by_offset(btf, member->name_off); 10569 10570 if (!resolve_func_ptr(btf, member->type, NULL)) { 10571 pr_warn("struct_ops reloc %s: cannot relocate non func ptr %s\n", 10572 map->name, name); 10573 return -EINVAL; 10574 } 10575 10576 prog = find_prog_by_sec_insn(obj, shdr_idx, insn_idx); 10577 if (!prog) { 10578 pr_warn("struct_ops reloc %s: cannot find prog at shdr_idx %u to relocate func ptr %s\n", 10579 map->name, shdr_idx, name); 10580 return -EINVAL; 10581 } 10582 10583 /* prevent the use of BPF prog with invalid type */ 10584 if (prog->type != BPF_PROG_TYPE_STRUCT_OPS) { 10585 pr_warn("struct_ops reloc %s: prog %s is not struct_ops BPF program\n", 10586 map->name, prog->name); 10587 return -EINVAL; 10588 } 10589 10590 st_ops->progs[member_idx] = prog; 10591 10592 /* st_ops->data will be exposed to users, being returned by 10593 * bpf_map__initial_value() as a pointer to the shadow 10594 * type. All function pointers in the original struct type 10595 * should be converted to a pointer to struct bpf_program 10596 * in the shadow type. 10597 */ 10598 *((struct bpf_program **)(st_ops->data + moff)) = prog; 10599 } 10600 10601 return 0; 10602 } 10603 10604 #define BTF_TRACE_PREFIX "btf_trace_" 10605 #define BTF_LSM_PREFIX "bpf_lsm_" 10606 #define BTF_ITER_PREFIX "bpf_iter_" 10607 #define BTF_MAX_NAME_SIZE 128 10608 10609 void btf_get_kernel_prefix_kind(enum bpf_attach_type attach_type, 10610 const char **prefix, int *kind) 10611 { 10612 switch (attach_type) { 10613 case BPF_TRACE_RAW_TP: 10614 *prefix = BTF_TRACE_PREFIX; 10615 *kind = BTF_KIND_TYPEDEF; 10616 break; 10617 case BPF_LSM_MAC: 10618 case BPF_LSM_CGROUP: 10619 *prefix = BTF_LSM_PREFIX; 10620 *kind = BTF_KIND_FUNC; 10621 break; 10622 case BPF_TRACE_ITER: 10623 *prefix = BTF_ITER_PREFIX; 10624 *kind = BTF_KIND_FUNC; 10625 break; 10626 default: 10627 *prefix = ""; 10628 *kind = BTF_KIND_FUNC; 10629 } 10630 } 10631 10632 static int find_btf_by_prefix_kind(const struct btf *btf, const char *prefix, 10633 const char *name, __u32 kind) 10634 { 10635 char btf_type_name[BTF_MAX_NAME_SIZE]; 10636 int ret; 10637 10638 ret = snprintf(btf_type_name, sizeof(btf_type_name), 10639 "%s%s", prefix, name); 10640 /* snprintf returns the number of characters written excluding the 10641 * terminating null. So, if >= BTF_MAX_NAME_SIZE are written, it 10642 * indicates truncation. 10643 */ 10644 if (ret < 0 || ret >= sizeof(btf_type_name)) 10645 return -ENAMETOOLONG; 10646 return btf__find_by_name_kind(btf, btf_type_name, kind); 10647 } 10648 10649 static inline int find_attach_btf_id(struct btf *btf, const char *name, 10650 enum bpf_attach_type attach_type) 10651 { 10652 const char *prefix; 10653 int kind; 10654 10655 btf_get_kernel_prefix_kind(attach_type, &prefix, &kind); 10656 return find_btf_by_prefix_kind(btf, prefix, name, kind); 10657 } 10658 10659 int libbpf_find_vmlinux_btf_id(const char *name, 10660 enum bpf_attach_type attach_type) 10661 { 10662 struct btf *btf; 10663 int err; 10664 10665 btf = btf__load_vmlinux_btf(); 10666 err = libbpf_get_error(btf); 10667 if (err) { 10668 pr_warn("vmlinux BTF is not found\n"); 10669 return libbpf_err(err); 10670 } 10671 10672 err = find_attach_btf_id(btf, name, attach_type); 10673 if (err <= 0) 10674 pr_warn("%s is not found in vmlinux BTF\n", name); 10675 10676 btf__free(btf); 10677 return libbpf_err(err); 10678 } 10679 10680 static int libbpf_find_prog_btf_id(const char *name, __u32 attach_prog_fd, int token_fd) 10681 { 10682 struct bpf_prog_info info; 10683 __u32 info_len = sizeof(info); 10684 struct btf *btf; 10685 int err; 10686 10687 memset(&info, 0, info_len); 10688 err = bpf_prog_get_info_by_fd(attach_prog_fd, &info, &info_len); 10689 if (err) { 10690 pr_warn("failed bpf_prog_get_info_by_fd for FD %u: %s\n", 10691 attach_prog_fd, errstr(err)); 10692 return err; 10693 } 10694 10695 err = -EINVAL; 10696 if (!info.btf_id) { 10697 pr_warn("The target program doesn't have BTF\n"); 10698 goto out; 10699 } 10700 btf = btf_load_from_kernel(info.btf_id, NULL, token_fd); 10701 err = libbpf_get_error(btf); 10702 if (err) { 10703 pr_warn("Failed to get BTF %u of the program: %s\n", info.btf_id, errstr(err)); 10704 goto out; 10705 } 10706 err = btf__find_by_name_kind(btf, name, BTF_KIND_FUNC); 10707 btf__free(btf); 10708 if (err <= 0) { 10709 pr_warn("%s is not found in prog's BTF\n", name); 10710 goto out; 10711 } 10712 out: 10713 return err; 10714 } 10715 10716 static int find_kernel_btf_id(struct bpf_object *obj, const char *attach_name, 10717 enum bpf_attach_type attach_type, 10718 int *btf_obj_fd, int *btf_type_id) 10719 { 10720 int ret, i, mod_len = 0; 10721 const char *fn_name, *mod_name = NULL; 10722 10723 fn_name = strchr(attach_name, ':'); 10724 if (fn_name) { 10725 mod_name = attach_name; 10726 mod_len = fn_name - mod_name; 10727 fn_name++; 10728 } 10729 10730 if (!mod_name || strncmp(mod_name, "vmlinux", mod_len) == 0) { 10731 ret = find_attach_btf_id(obj->btf_vmlinux, 10732 mod_name ? fn_name : attach_name, 10733 attach_type); 10734 if (ret > 0) { 10735 *btf_obj_fd = 0; /* vmlinux BTF */ 10736 *btf_type_id = ret; 10737 return 0; 10738 } 10739 if (ret != -ENOENT) 10740 return ret; 10741 } 10742 10743 ret = load_module_btfs(obj); 10744 if (ret) 10745 return ret; 10746 10747 for (i = 0; i < obj->btf_module_cnt; i++) { 10748 const struct module_btf *mod = &obj->btf_modules[i]; 10749 10750 if (mod_name && strncmp(mod->name, mod_name, mod_len) != 0) 10751 continue; 10752 10753 ret = find_attach_btf_id(mod->btf, 10754 mod_name ? fn_name : attach_name, 10755 attach_type); 10756 if (ret > 0) { 10757 *btf_obj_fd = mod->fd; 10758 *btf_type_id = ret; 10759 return 0; 10760 } 10761 if (ret == -ENOENT) 10762 continue; 10763 10764 return ret; 10765 } 10766 10767 return -ESRCH; 10768 } 10769 10770 static int libbpf_find_attach_btf_id(struct bpf_program *prog, const char *attach_name, 10771 int *btf_obj_fd, int *btf_type_id) 10772 { 10773 enum bpf_attach_type attach_type = prog->expected_attach_type; 10774 __u32 attach_prog_fd = prog->attach_prog_fd; 10775 int err = 0; 10776 10777 /* BPF program's BTF ID */ 10778 if (prog->type == BPF_PROG_TYPE_EXT || attach_prog_fd) { 10779 if (!attach_prog_fd) { 10780 pr_warn("prog '%s': attach program FD is not set\n", prog->name); 10781 return -EINVAL; 10782 } 10783 err = libbpf_find_prog_btf_id(attach_name, attach_prog_fd, prog->obj->token_fd); 10784 if (err < 0) { 10785 pr_warn("prog '%s': failed to find BPF program (FD %u) BTF ID for '%s': %s\n", 10786 prog->name, attach_prog_fd, attach_name, errstr(err)); 10787 return err; 10788 } 10789 *btf_obj_fd = 0; 10790 *btf_type_id = err; 10791 return 0; 10792 } 10793 10794 /* kernel/module BTF ID */ 10795 if (prog->obj->gen_loader) { 10796 bpf_gen__record_attach_target(prog->obj->gen_loader, attach_name, attach_type); 10797 *btf_obj_fd = 0; 10798 *btf_type_id = 1; 10799 } else { 10800 err = find_kernel_btf_id(prog->obj, attach_name, 10801 attach_type, btf_obj_fd, 10802 btf_type_id); 10803 } 10804 if (err) { 10805 pr_warn("prog '%s': failed to find kernel BTF type ID of '%s': %s\n", 10806 prog->name, attach_name, errstr(err)); 10807 return err; 10808 } 10809 return 0; 10810 } 10811 10812 int libbpf_attach_type_by_name(const char *name, 10813 enum bpf_attach_type *attach_type) 10814 { 10815 char *type_names; 10816 const struct bpf_sec_def *sec_def; 10817 10818 if (!name) 10819 return libbpf_err(-EINVAL); 10820 10821 sec_def = find_sec_def(name); 10822 if (!sec_def) { 10823 pr_debug("failed to guess attach type based on ELF section name '%s'\n", name); 10824 type_names = libbpf_get_type_names(true); 10825 if (type_names != NULL) { 10826 pr_debug("attachable section(type) names are:%s\n", type_names); 10827 free(type_names); 10828 } 10829 10830 return libbpf_err(-EINVAL); 10831 } 10832 10833 if (sec_def->prog_prepare_load_fn != libbpf_prepare_prog_load) 10834 return libbpf_err(-EINVAL); 10835 if (!(sec_def->cookie & SEC_ATTACHABLE)) 10836 return libbpf_err(-EINVAL); 10837 10838 *attach_type = sec_def->expected_attach_type; 10839 return 0; 10840 } 10841 10842 int bpf_map__fd(const struct bpf_map *map) 10843 { 10844 if (!map) 10845 return libbpf_err(-EINVAL); 10846 if (!map_is_created(map)) 10847 return -1; 10848 return map->fd; 10849 } 10850 10851 static bool map_uses_real_name(const struct bpf_map *map) 10852 { 10853 /* Since libbpf started to support custom .data.* and .rodata.* maps, 10854 * their user-visible name differs from kernel-visible name. Users see 10855 * such map's corresponding ELF section name as a map name. 10856 * This check distinguishes .data/.rodata from .data.* and .rodata.* 10857 * maps to know which name has to be returned to the user. 10858 * Map name of the custom .percpu.* maps might be truncated to 10859 * BPF_OBJ_NAME_LEN-1 chars in internal_map_name(). Hence, percpu data 10860 * maps must use real name for their user-visible name. 10861 */ 10862 if (map->libbpf_type == LIBBPF_MAP_DATA && strcmp(map->real_name, DATA_SEC) != 0) 10863 return true; 10864 if (map->libbpf_type == LIBBPF_MAP_RODATA && strcmp(map->real_name, RODATA_SEC) != 0) 10865 return true; 10866 if (map->libbpf_type == LIBBPF_MAP_PERCPU) 10867 return true; 10868 return false; 10869 } 10870 10871 const char *bpf_map__name(const struct bpf_map *map) 10872 { 10873 if (!map) 10874 return NULL; 10875 10876 if (map_uses_real_name(map)) 10877 return map->real_name; 10878 10879 return map->name; 10880 } 10881 10882 enum bpf_map_type bpf_map__type(const struct bpf_map *map) 10883 { 10884 return map->def.type; 10885 } 10886 10887 int bpf_map__set_type(struct bpf_map *map, enum bpf_map_type type) 10888 { 10889 if (map_is_created(map)) 10890 return libbpf_err(-EBUSY); 10891 map->def.type = type; 10892 return 0; 10893 } 10894 10895 __u32 bpf_map__map_flags(const struct bpf_map *map) 10896 { 10897 return map->def.map_flags; 10898 } 10899 10900 int bpf_map__set_map_flags(struct bpf_map *map, __u32 flags) 10901 { 10902 if (map_is_created(map)) 10903 return libbpf_err(-EBUSY); 10904 map->def.map_flags = flags; 10905 return 0; 10906 } 10907 10908 __u64 bpf_map__map_extra(const struct bpf_map *map) 10909 { 10910 return map->map_extra; 10911 } 10912 10913 int bpf_map__set_map_extra(struct bpf_map *map, __u64 map_extra) 10914 { 10915 if (map_is_created(map)) 10916 return libbpf_err(-EBUSY); 10917 map->map_extra = map_extra; 10918 return 0; 10919 } 10920 10921 __u32 bpf_map__numa_node(const struct bpf_map *map) 10922 { 10923 return map->numa_node; 10924 } 10925 10926 int bpf_map__set_numa_node(struct bpf_map *map, __u32 numa_node) 10927 { 10928 if (map_is_created(map)) 10929 return libbpf_err(-EBUSY); 10930 map->numa_node = numa_node; 10931 return 0; 10932 } 10933 10934 __u32 bpf_map__key_size(const struct bpf_map *map) 10935 { 10936 return map->def.key_size; 10937 } 10938 10939 int bpf_map__set_key_size(struct bpf_map *map, __u32 size) 10940 { 10941 if (map_is_created(map)) 10942 return libbpf_err(-EBUSY); 10943 map->def.key_size = size; 10944 return 0; 10945 } 10946 10947 __u32 bpf_map__value_size(const struct bpf_map *map) 10948 { 10949 return map->def.value_size; 10950 } 10951 10952 static int map_btf_datasec_resize(struct bpf_map *map, __u32 size) 10953 { 10954 struct btf *btf; 10955 struct btf_type *datasec_type, *var_type; 10956 struct btf_var_secinfo *var; 10957 const struct btf_type *array_type; 10958 const struct btf_array *array; 10959 int vlen, element_sz, new_array_id; 10960 __u32 nr_elements; 10961 10962 /* check btf existence */ 10963 btf = bpf_object__btf(map->obj); 10964 if (!btf) 10965 return -ENOENT; 10966 10967 /* verify map is datasec */ 10968 datasec_type = btf_type_by_id(btf, bpf_map__btf_value_type_id(map)); 10969 if (!btf_is_datasec(datasec_type)) { 10970 pr_warn("map '%s': cannot be resized, map value type is not a datasec\n", 10971 bpf_map__name(map)); 10972 return -EINVAL; 10973 } 10974 10975 /* verify datasec has at least one var */ 10976 vlen = btf_vlen(datasec_type); 10977 if (vlen == 0) { 10978 pr_warn("map '%s': cannot be resized, map value datasec is empty\n", 10979 bpf_map__name(map)); 10980 return -EINVAL; 10981 } 10982 10983 /* verify last var in the datasec is an array */ 10984 var = &btf_var_secinfos(datasec_type)[vlen - 1]; 10985 var_type = btf_type_by_id(btf, var->type); 10986 array_type = skip_mods_and_typedefs(btf, var_type->type, NULL); 10987 if (!btf_is_array(array_type)) { 10988 pr_warn("map '%s': cannot be resized, last var must be an array\n", 10989 bpf_map__name(map)); 10990 return -EINVAL; 10991 } 10992 10993 /* verify request size aligns with array */ 10994 array = btf_array(array_type); 10995 element_sz = btf__resolve_size(btf, array->type); 10996 if (element_sz <= 0 || (size - var->offset) % element_sz != 0) { 10997 pr_warn("map '%s': cannot be resized, element size (%d) doesn't align with new total size (%u)\n", 10998 bpf_map__name(map), element_sz, size); 10999 return -EINVAL; 11000 } 11001 11002 /* create a new array based on the existing array, but with new length */ 11003 nr_elements = (size - var->offset) / element_sz; 11004 new_array_id = btf__add_array(btf, array->index_type, array->type, nr_elements); 11005 if (new_array_id < 0) 11006 return new_array_id; 11007 11008 /* adding a new btf type invalidates existing pointers to btf objects, 11009 * so refresh pointers before proceeding 11010 */ 11011 datasec_type = btf_type_by_id(btf, map->btf_value_type_id); 11012 var = &btf_var_secinfos(datasec_type)[vlen - 1]; 11013 var_type = btf_type_by_id(btf, var->type); 11014 11015 /* finally update btf info */ 11016 datasec_type->size = size; 11017 var->size = size - var->offset; 11018 var_type->type = new_array_id; 11019 11020 return 0; 11021 } 11022 11023 int bpf_map__set_value_size(struct bpf_map *map, __u32 size) 11024 { 11025 if (map_is_created(map)) 11026 return libbpf_err(-EBUSY); 11027 11028 if (map->mmaped) { 11029 size_t mmap_old_sz, mmap_new_sz; 11030 int err; 11031 11032 if (map->def.type != BPF_MAP_TYPE_ARRAY && 11033 map->def.type != BPF_MAP_TYPE_PERCPU_ARRAY) 11034 return libbpf_err(-EOPNOTSUPP); 11035 11036 mmap_old_sz = bpf_map_mmap_sz(map); 11037 mmap_new_sz = array_map_mmap_sz(size, map->def.max_entries); 11038 err = bpf_map_mmap_resize(map, mmap_old_sz, mmap_new_sz); 11039 if (err) { 11040 pr_warn("map '%s': failed to resize memory-mapped region: %s\n", 11041 bpf_map__name(map), errstr(err)); 11042 return libbpf_err(err); 11043 } 11044 err = map_btf_datasec_resize(map, size); 11045 if (err && err != -ENOENT) { 11046 pr_warn("map '%s': failed to adjust resized BTF, clearing BTF key/value info: %s\n", 11047 bpf_map__name(map), errstr(err)); 11048 map->btf_value_type_id = 0; 11049 map->btf_key_type_id = 0; 11050 } 11051 } 11052 11053 map->def.value_size = size; 11054 return 0; 11055 } 11056 11057 __u32 bpf_map__btf_key_type_id(const struct bpf_map *map) 11058 { 11059 return map ? map->btf_key_type_id : 0; 11060 } 11061 11062 __u32 bpf_map__btf_value_type_id(const struct bpf_map *map) 11063 { 11064 return map ? map->btf_value_type_id : 0; 11065 } 11066 11067 int bpf_map__set_initial_value(struct bpf_map *map, 11068 const void *data, size_t size) 11069 { 11070 size_t actual_sz; 11071 11072 if (map_is_created(map)) 11073 return libbpf_err(-EBUSY); 11074 11075 if (!map->mmaped || map->libbpf_type == LIBBPF_MAP_KCONFIG) 11076 return libbpf_err(-EINVAL); 11077 11078 if (map->def.type == BPF_MAP_TYPE_ARENA) 11079 actual_sz = map->obj->arena_data_sz; 11080 else 11081 actual_sz = map->def.value_size; 11082 if (size != actual_sz) 11083 return libbpf_err(-EINVAL); 11084 11085 memcpy(map->mmaped, data, size); 11086 return 0; 11087 } 11088 11089 void *bpf_map__initial_value(const struct bpf_map *map, size_t *psize) 11090 { 11091 if (bpf_map__is_struct_ops(map)) { 11092 if (psize) 11093 *psize = map->def.value_size; 11094 return map->st_ops->data; 11095 } 11096 11097 if (!map->mmaped) 11098 return NULL; 11099 11100 if (map->def.type == BPF_MAP_TYPE_ARENA) 11101 *psize = map->obj->arena_data_sz; 11102 else 11103 *psize = map->def.value_size; 11104 11105 return map->mmaped; 11106 } 11107 11108 bool bpf_map__is_internal(const struct bpf_map *map) 11109 { 11110 return map->libbpf_type != LIBBPF_MAP_UNSPEC; 11111 } 11112 11113 __u32 bpf_map__ifindex(const struct bpf_map *map) 11114 { 11115 return map->map_ifindex; 11116 } 11117 11118 int bpf_map__set_ifindex(struct bpf_map *map, __u32 ifindex) 11119 { 11120 if (map_is_created(map)) 11121 return libbpf_err(-EBUSY); 11122 map->map_ifindex = ifindex; 11123 return 0; 11124 } 11125 11126 int bpf_map__set_inner_map_fd(struct bpf_map *map, int fd) 11127 { 11128 if (!bpf_map_type__is_map_in_map(map->def.type)) { 11129 pr_warn("error: unsupported map type\n"); 11130 return libbpf_err(-EINVAL); 11131 } 11132 if (map->inner_map_fd != -1) { 11133 pr_warn("error: inner_map_fd already specified\n"); 11134 return libbpf_err(-EINVAL); 11135 } 11136 if (map->inner_map) { 11137 bpf_map__destroy(map->inner_map); 11138 zfree(&map->inner_map); 11139 } 11140 map->inner_map_fd = fd; 11141 return 0; 11142 } 11143 11144 int bpf_map__set_exclusive_program(struct bpf_map *map, struct bpf_program *prog) 11145 { 11146 if (map_is_created(map)) { 11147 pr_warn("exclusive programs must be set before map creation\n"); 11148 return libbpf_err(-EINVAL); 11149 } 11150 11151 if (map->obj != prog->obj) { 11152 pr_warn("excl_prog and map must be from the same bpf object\n"); 11153 return libbpf_err(-EINVAL); 11154 } 11155 11156 map->excl_prog = prog; 11157 return 0; 11158 } 11159 11160 struct bpf_program *bpf_map__exclusive_program(struct bpf_map *map) 11161 { 11162 return map->excl_prog; 11163 } 11164 11165 static struct bpf_map * 11166 __bpf_map__iter(const struct bpf_map *m, const struct bpf_object *obj, int i) 11167 { 11168 ssize_t idx; 11169 struct bpf_map *s, *e; 11170 11171 if (!obj || !obj->maps) 11172 return errno = EINVAL, NULL; 11173 11174 s = obj->maps; 11175 e = obj->maps + obj->nr_maps; 11176 11177 if ((m < s) || (m >= e)) { 11178 pr_warn("error in %s: map handler doesn't belong to object\n", 11179 __func__); 11180 return errno = EINVAL, NULL; 11181 } 11182 11183 idx = (m - obj->maps) + i; 11184 if (idx >= obj->nr_maps || idx < 0) 11185 return NULL; 11186 return &obj->maps[idx]; 11187 } 11188 11189 struct bpf_map * 11190 bpf_object__next_map(const struct bpf_object *obj, const struct bpf_map *prev) 11191 { 11192 if (prev == NULL && obj != NULL) 11193 return obj->maps; 11194 11195 return __bpf_map__iter(prev, obj, 1); 11196 } 11197 11198 struct bpf_map * 11199 bpf_object__prev_map(const struct bpf_object *obj, const struct bpf_map *next) 11200 { 11201 if (next == NULL && obj != NULL) { 11202 if (!obj->nr_maps) 11203 return NULL; 11204 return obj->maps + obj->nr_maps - 1; 11205 } 11206 11207 return __bpf_map__iter(next, obj, -1); 11208 } 11209 11210 struct bpf_map * 11211 bpf_object__find_map_by_name(const struct bpf_object *obj, const char *name) 11212 { 11213 struct bpf_map *pos; 11214 11215 bpf_object__for_each_map(pos, obj) { 11216 /* if it's a special internal map name (which always starts 11217 * with dot) then check if that special name matches the 11218 * real map name (ELF section name) 11219 */ 11220 if (name[0] == '.') { 11221 if (pos->real_name && strcmp(pos->real_name, name) == 0) 11222 return pos; 11223 continue; 11224 } 11225 /* otherwise map name has to be an exact match */ 11226 if (map_uses_real_name(pos)) { 11227 if (strcmp(pos->real_name, name) == 0) 11228 return pos; 11229 continue; 11230 } 11231 if (strcmp(pos->name, name) == 0) 11232 return pos; 11233 } 11234 return errno = ENOENT, NULL; 11235 } 11236 11237 int 11238 bpf_object__find_map_fd_by_name(const struct bpf_object *obj, const char *name) 11239 { 11240 return bpf_map__fd(bpf_object__find_map_by_name(obj, name)); 11241 } 11242 11243 static int validate_map_op(const struct bpf_map *map, size_t key_sz, 11244 size_t value_sz, bool check_value_sz, __u64 flags) 11245 { 11246 if (!map_is_created(map)) /* map is not yet created */ 11247 return -ENOENT; 11248 11249 if (map->def.key_size != key_sz) { 11250 pr_warn("map '%s': unexpected key size %zu provided, expected %u\n", 11251 map->name, key_sz, map->def.key_size); 11252 return -EINVAL; 11253 } 11254 11255 if (map->fd < 0) { 11256 pr_warn("map '%s': can't use BPF map without FD (was it created?)\n", map->name); 11257 return -EINVAL; 11258 } 11259 11260 if (!check_value_sz) 11261 return 0; 11262 11263 switch (map->def.type) { 11264 case BPF_MAP_TYPE_PERCPU_ARRAY: 11265 case BPF_MAP_TYPE_PERCPU_HASH: 11266 case BPF_MAP_TYPE_LRU_PERCPU_HASH: 11267 case BPF_MAP_TYPE_PERCPU_CGROUP_STORAGE: { 11268 int num_cpu = libbpf_num_possible_cpus(); 11269 size_t elem_sz = roundup(map->def.value_size, 8); 11270 11271 if (flags & (BPF_F_CPU | BPF_F_ALL_CPUS)) { 11272 if ((flags & BPF_F_CPU) && (flags & BPF_F_ALL_CPUS)) { 11273 pr_warn("map '%s': BPF_F_CPU and BPF_F_ALL_CPUS are mutually exclusive\n", 11274 map->name); 11275 return -EINVAL; 11276 } 11277 if (map->def.value_size != value_sz) { 11278 pr_warn("map '%s': unexpected value size %zu provided for either BPF_F_CPU or BPF_F_ALL_CPUS, expected %u\n", 11279 map->name, value_sz, map->def.value_size); 11280 return -EINVAL; 11281 } 11282 break; 11283 } 11284 11285 if (value_sz != num_cpu * elem_sz) { 11286 pr_warn("map '%s': unexpected value size %zu provided for per-CPU map, expected %d * %zu = %zu\n", 11287 map->name, value_sz, num_cpu, elem_sz, num_cpu * elem_sz); 11288 return -EINVAL; 11289 } 11290 break; 11291 } 11292 default: 11293 if (map->def.value_size != value_sz) { 11294 pr_warn("map '%s': unexpected value size %zu provided, expected %u\n", 11295 map->name, value_sz, map->def.value_size); 11296 return -EINVAL; 11297 } 11298 break; 11299 } 11300 return 0; 11301 } 11302 11303 int bpf_map__lookup_elem(const struct bpf_map *map, 11304 const void *key, size_t key_sz, 11305 void *value, size_t value_sz, __u64 flags) 11306 { 11307 int err; 11308 11309 err = validate_map_op(map, key_sz, value_sz, true, flags); 11310 if (err) 11311 return libbpf_err(err); 11312 11313 return bpf_map_lookup_elem_flags(map->fd, key, value, flags); 11314 } 11315 11316 int bpf_map__update_elem(const struct bpf_map *map, 11317 const void *key, size_t key_sz, 11318 const void *value, size_t value_sz, __u64 flags) 11319 { 11320 int err; 11321 11322 err = validate_map_op(map, key_sz, value_sz, true, flags); 11323 if (err) 11324 return libbpf_err(err); 11325 11326 return bpf_map_update_elem(map->fd, key, value, flags); 11327 } 11328 11329 int bpf_map__delete_elem(const struct bpf_map *map, 11330 const void *key, size_t key_sz, __u64 flags) 11331 { 11332 int err; 11333 11334 err = validate_map_op(map, key_sz, 0, false /* check_value_sz */, flags); 11335 if (err) 11336 return libbpf_err(err); 11337 11338 return bpf_map_delete_elem_flags(map->fd, key, flags); 11339 } 11340 11341 int bpf_map__lookup_and_delete_elem(const struct bpf_map *map, 11342 const void *key, size_t key_sz, 11343 void *value, size_t value_sz, __u64 flags) 11344 { 11345 int err; 11346 11347 err = validate_map_op(map, key_sz, value_sz, true, flags); 11348 if (err) 11349 return libbpf_err(err); 11350 11351 return bpf_map_lookup_and_delete_elem_flags(map->fd, key, value, flags); 11352 } 11353 11354 int bpf_map__get_next_key(const struct bpf_map *map, 11355 const void *cur_key, void *next_key, size_t key_sz) 11356 { 11357 int err; 11358 11359 err = validate_map_op(map, key_sz, 0, false /* check_value_sz */, 0); 11360 if (err) 11361 return libbpf_err(err); 11362 11363 return bpf_map_get_next_key(map->fd, cur_key, next_key); 11364 } 11365 11366 long libbpf_get_error(const void *ptr) 11367 { 11368 if (!IS_ERR_OR_NULL(ptr)) 11369 return 0; 11370 11371 if (IS_ERR(ptr)) 11372 errno = -PTR_ERR(ptr); 11373 11374 /* If ptr == NULL, then errno should be already set by the failing 11375 * API, because libbpf never returns NULL on success and it now always 11376 * sets errno on error. So no extra errno handling for ptr == NULL 11377 * case. 11378 */ 11379 return -errno; 11380 } 11381 11382 /* Replace link's underlying BPF program with the new one */ 11383 int bpf_link__update_program(struct bpf_link *link, struct bpf_program *prog) 11384 { 11385 int ret; 11386 int prog_fd = bpf_program__fd(prog); 11387 11388 if (prog_fd < 0) { 11389 pr_warn("prog '%s': can't use BPF program without FD (was it loaded?)\n", 11390 prog->name); 11391 return libbpf_err(-EINVAL); 11392 } 11393 11394 ret = bpf_link_update(bpf_link__fd(link), prog_fd, NULL); 11395 return libbpf_err_errno(ret); 11396 } 11397 11398 /* Release "ownership" of underlying BPF resource (typically, BPF program 11399 * attached to some BPF hook, e.g., tracepoint, kprobe, etc). Disconnected 11400 * link, when destructed through bpf_link__destroy() call won't attempt to 11401 * detach/unregisted that BPF resource. This is useful in situations where, 11402 * say, attached BPF program has to outlive userspace program that attached it 11403 * in the system. Depending on type of BPF program, though, there might be 11404 * additional steps (like pinning BPF program in BPF FS) necessary to ensure 11405 * exit of userspace program doesn't trigger automatic detachment and clean up 11406 * inside the kernel. 11407 */ 11408 void bpf_link__disconnect(struct bpf_link *link) 11409 { 11410 link->disconnected = true; 11411 } 11412 11413 int bpf_link__destroy(struct bpf_link *link) 11414 { 11415 int err = 0; 11416 11417 if (IS_ERR_OR_NULL(link)) 11418 return 0; 11419 11420 if (!link->disconnected && link->detach) 11421 err = link->detach(link); 11422 if (link->pin_path) 11423 free(link->pin_path); 11424 if (link->dealloc) 11425 link->dealloc(link); 11426 else 11427 free(link); 11428 11429 return libbpf_err(err); 11430 } 11431 11432 int bpf_link__fd(const struct bpf_link *link) 11433 { 11434 return link->fd; 11435 } 11436 11437 const char *bpf_link__pin_path(const struct bpf_link *link) 11438 { 11439 return link->pin_path; 11440 } 11441 11442 static int bpf_link__detach_fd(struct bpf_link *link) 11443 { 11444 return libbpf_err_errno(close(link->fd)); 11445 } 11446 11447 struct bpf_link *bpf_link__open(const char *path) 11448 { 11449 struct bpf_link *link; 11450 int fd; 11451 11452 fd = bpf_obj_get(path); 11453 if (fd < 0) { 11454 fd = -errno; 11455 pr_warn("failed to open link at %s: %d\n", path, fd); 11456 return libbpf_err_ptr(fd); 11457 } 11458 11459 link = calloc(1, sizeof(*link)); 11460 if (!link) { 11461 close(fd); 11462 return libbpf_err_ptr(-ENOMEM); 11463 } 11464 link->detach = &bpf_link__detach_fd; 11465 link->fd = fd; 11466 11467 link->pin_path = strdup(path); 11468 if (!link->pin_path) { 11469 bpf_link__destroy(link); 11470 return libbpf_err_ptr(-ENOMEM); 11471 } 11472 11473 return link; 11474 } 11475 11476 int bpf_link__detach(struct bpf_link *link) 11477 { 11478 return bpf_link_detach(link->fd) ? -errno : 0; 11479 } 11480 11481 int bpf_link__pin(struct bpf_link *link, const char *path) 11482 { 11483 int err; 11484 11485 if (link->pin_path) 11486 return libbpf_err(-EBUSY); 11487 err = make_parent_dir(path); 11488 if (err) 11489 return libbpf_err(err); 11490 err = check_path(path); 11491 if (err) 11492 return libbpf_err(err); 11493 11494 link->pin_path = strdup(path); 11495 if (!link->pin_path) 11496 return libbpf_err(-ENOMEM); 11497 11498 if (bpf_obj_pin(link->fd, link->pin_path)) { 11499 err = -errno; 11500 zfree(&link->pin_path); 11501 return libbpf_err(err); 11502 } 11503 11504 pr_debug("link fd=%d: pinned at %s\n", link->fd, link->pin_path); 11505 return 0; 11506 } 11507 11508 int bpf_link__unpin(struct bpf_link *link) 11509 { 11510 int err; 11511 11512 if (!link->pin_path) 11513 return libbpf_err(-EINVAL); 11514 11515 err = unlink(link->pin_path); 11516 if (err != 0) 11517 return -errno; 11518 11519 pr_debug("link fd=%d: unpinned from %s\n", link->fd, link->pin_path); 11520 zfree(&link->pin_path); 11521 return 0; 11522 } 11523 11524 struct bpf_link_perf { 11525 struct bpf_link link; 11526 int perf_event_fd; 11527 /* legacy kprobe support: keep track of probe identifier and type */ 11528 char *legacy_probe_name; 11529 bool legacy_is_kprobe; 11530 bool legacy_is_retprobe; 11531 }; 11532 11533 static int remove_kprobe_event_legacy(const char *probe_name, bool retprobe); 11534 static int remove_uprobe_event_legacy(const char *probe_name, bool retprobe); 11535 11536 static int bpf_link_perf_detach(struct bpf_link *link) 11537 { 11538 struct bpf_link_perf *perf_link = container_of(link, struct bpf_link_perf, link); 11539 int err = 0; 11540 11541 if (ioctl(perf_link->perf_event_fd, PERF_EVENT_IOC_DISABLE, 0) < 0) 11542 err = -errno; 11543 11544 if (perf_link->perf_event_fd != link->fd) 11545 close(perf_link->perf_event_fd); 11546 close(link->fd); 11547 11548 /* legacy uprobe/kprobe needs to be removed after perf event fd closure */ 11549 if (perf_link->legacy_probe_name) { 11550 if (perf_link->legacy_is_kprobe) { 11551 err = remove_kprobe_event_legacy(perf_link->legacy_probe_name, 11552 perf_link->legacy_is_retprobe); 11553 } else { 11554 err = remove_uprobe_event_legacy(perf_link->legacy_probe_name, 11555 perf_link->legacy_is_retprobe); 11556 } 11557 } 11558 11559 return err; 11560 } 11561 11562 static void bpf_link_perf_dealloc(struct bpf_link *link) 11563 { 11564 struct bpf_link_perf *perf_link = container_of(link, struct bpf_link_perf, link); 11565 11566 free(perf_link->legacy_probe_name); 11567 free(perf_link); 11568 } 11569 11570 struct bpf_link *bpf_program__attach_perf_event_opts(const struct bpf_program *prog, int pfd, 11571 const struct bpf_perf_event_opts *opts) 11572 { 11573 struct bpf_link_perf *link; 11574 int prog_fd, link_fd = -1, err; 11575 bool force_ioctl_attach; 11576 11577 if (!OPTS_VALID(opts, bpf_perf_event_opts)) 11578 return libbpf_err_ptr(-EINVAL); 11579 11580 if (pfd < 0) { 11581 pr_warn("prog '%s': invalid perf event FD %d\n", 11582 prog->name, pfd); 11583 return libbpf_err_ptr(-EINVAL); 11584 } 11585 prog_fd = bpf_program__fd(prog); 11586 if (prog_fd < 0) { 11587 pr_warn("prog '%s': can't attach BPF program without FD (was it loaded?)\n", 11588 prog->name); 11589 return libbpf_err_ptr(-EINVAL); 11590 } 11591 11592 link = calloc(1, sizeof(*link)); 11593 if (!link) 11594 return libbpf_err_ptr(-ENOMEM); 11595 link->link.detach = &bpf_link_perf_detach; 11596 link->link.dealloc = &bpf_link_perf_dealloc; 11597 link->perf_event_fd = pfd; 11598 11599 force_ioctl_attach = OPTS_GET(opts, force_ioctl_attach, false); 11600 if (kernel_supports(prog->obj, FEAT_PERF_LINK) && !force_ioctl_attach) { 11601 DECLARE_LIBBPF_OPTS(bpf_link_create_opts, link_opts, 11602 .perf_event.bpf_cookie = OPTS_GET(opts, bpf_cookie, 0)); 11603 11604 link_fd = bpf_link_create(prog_fd, pfd, BPF_PERF_EVENT, &link_opts); 11605 if (link_fd < 0) { 11606 err = -errno; 11607 pr_warn("prog '%s': failed to create BPF link for perf_event FD %d: %s\n", 11608 prog->name, pfd, errstr(err)); 11609 goto err_out; 11610 } 11611 link->link.fd = link_fd; 11612 } else { 11613 if (OPTS_GET(opts, bpf_cookie, 0)) { 11614 pr_warn("prog '%s': user context value is not supported\n", prog->name); 11615 err = -EOPNOTSUPP; 11616 goto err_out; 11617 } 11618 11619 if (ioctl(pfd, PERF_EVENT_IOC_SET_BPF, prog_fd) < 0) { 11620 err = -errno; 11621 pr_warn("prog '%s': failed to attach to perf_event FD %d: %s\n", 11622 prog->name, pfd, errstr(err)); 11623 if (err == -EPROTO) 11624 pr_warn("prog '%s': try add PERF_SAMPLE_CALLCHAIN to or remove exclude_callchain_[kernel|user] from pfd %d\n", 11625 prog->name, pfd); 11626 goto err_out; 11627 } 11628 link->link.fd = pfd; 11629 } 11630 11631 if (!OPTS_GET(opts, dont_enable, false)) { 11632 if (ioctl(pfd, PERF_EVENT_IOC_ENABLE, 0) < 0) { 11633 err = -errno; 11634 pr_warn("prog '%s': failed to enable perf_event FD %d: %s\n", 11635 prog->name, pfd, errstr(err)); 11636 goto err_out; 11637 } 11638 } 11639 11640 return &link->link; 11641 err_out: 11642 if (link_fd >= 0) 11643 close(link_fd); 11644 free(link); 11645 return libbpf_err_ptr(err); 11646 } 11647 11648 struct bpf_link *bpf_program__attach_perf_event(const struct bpf_program *prog, int pfd) 11649 { 11650 return bpf_program__attach_perf_event_opts(prog, pfd, NULL); 11651 } 11652 11653 /* 11654 * this function is expected to parse integer in the range of [0, 2^31-1] from 11655 * given file using scanf format string fmt. If actual parsed value is 11656 * negative, the result might be indistinguishable from error 11657 */ 11658 static int parse_uint_from_file(const char *file, const char *fmt) 11659 { 11660 int err, ret; 11661 FILE *f; 11662 11663 f = fopen(file, "re"); 11664 if (!f) { 11665 err = -errno; 11666 pr_debug("failed to open '%s': %s\n", file, errstr(err)); 11667 return err; 11668 } 11669 err = fscanf(f, fmt, &ret); 11670 if (err != 1) { 11671 err = err == EOF ? -EIO : -errno; 11672 pr_debug("failed to parse '%s': %s\n", file, errstr(err)); 11673 fclose(f); 11674 return err; 11675 } 11676 fclose(f); 11677 return ret; 11678 } 11679 11680 static int determine_kprobe_perf_type(void) 11681 { 11682 const char *file = "/sys/bus/event_source/devices/kprobe/type"; 11683 11684 return parse_uint_from_file(file, "%d\n"); 11685 } 11686 11687 static int determine_uprobe_perf_type(void) 11688 { 11689 const char *file = "/sys/bus/event_source/devices/uprobe/type"; 11690 11691 return parse_uint_from_file(file, "%d\n"); 11692 } 11693 11694 static int determine_kprobe_retprobe_bit(void) 11695 { 11696 const char *file = "/sys/bus/event_source/devices/kprobe/format/retprobe"; 11697 11698 return parse_uint_from_file(file, "config:%d\n"); 11699 } 11700 11701 static int determine_uprobe_retprobe_bit(void) 11702 { 11703 const char *file = "/sys/bus/event_source/devices/uprobe/format/retprobe"; 11704 11705 return parse_uint_from_file(file, "config:%d\n"); 11706 } 11707 11708 #define PERF_UPROBE_REF_CTR_OFFSET_BITS 32 11709 #define PERF_UPROBE_REF_CTR_OFFSET_SHIFT 32 11710 11711 static int perf_event_open_probe(bool uprobe, bool retprobe, const char *name, 11712 uint64_t offset, int pid, size_t ref_ctr_off) 11713 { 11714 const size_t attr_sz = sizeof(struct perf_event_attr); 11715 struct perf_event_attr attr; 11716 int type, pfd; 11717 11718 if ((__u64)ref_ctr_off >= (1ULL << PERF_UPROBE_REF_CTR_OFFSET_BITS)) 11719 return -EINVAL; 11720 11721 memset(&attr, 0, attr_sz); 11722 11723 type = uprobe ? determine_uprobe_perf_type() 11724 : determine_kprobe_perf_type(); 11725 if (type < 0) { 11726 pr_warn("failed to determine %s perf type: %s\n", 11727 uprobe ? "uprobe" : "kprobe", 11728 errstr(type)); 11729 return type; 11730 } 11731 if (retprobe) { 11732 int bit = uprobe ? determine_uprobe_retprobe_bit() 11733 : determine_kprobe_retprobe_bit(); 11734 11735 if (bit < 0) { 11736 pr_warn("failed to determine %s retprobe bit: %s\n", 11737 uprobe ? "uprobe" : "kprobe", 11738 errstr(bit)); 11739 return bit; 11740 } 11741 attr.config |= 1 << bit; 11742 } 11743 attr.size = attr_sz; 11744 attr.type = type; 11745 attr.config |= (__u64)ref_ctr_off << PERF_UPROBE_REF_CTR_OFFSET_SHIFT; 11746 attr.config1 = ptr_to_u64(name); /* kprobe_func or uprobe_path */ 11747 attr.config2 = offset; /* kprobe_addr or probe_offset */ 11748 11749 /* pid filter is meaningful only for uprobes */ 11750 pfd = syscall(__NR_perf_event_open, &attr, 11751 pid < 0 ? -1 : pid /* pid */, 11752 pid == -1 ? 0 : -1 /* cpu */, 11753 -1 /* group_fd */, PERF_FLAG_FD_CLOEXEC); 11754 return pfd >= 0 ? pfd : -errno; 11755 } 11756 11757 static int append_to_file(const char *file, const char *fmt, ...) 11758 { 11759 int fd, n, err = 0; 11760 va_list ap; 11761 char buf[1024]; 11762 11763 va_start(ap, fmt); 11764 n = vsnprintf(buf, sizeof(buf), fmt, ap); 11765 va_end(ap); 11766 11767 if (n < 0 || n >= sizeof(buf)) 11768 return -EINVAL; 11769 11770 fd = open(file, O_WRONLY | O_APPEND | O_CLOEXEC, 0); 11771 if (fd < 0) 11772 return -errno; 11773 11774 if (write(fd, buf, n) < 0) 11775 err = -errno; 11776 11777 close(fd); 11778 return err; 11779 } 11780 11781 #define DEBUGFS "/sys/kernel/debug/tracing" 11782 #define TRACEFS "/sys/kernel/tracing" 11783 11784 static bool use_debugfs(void) 11785 { 11786 static int has_debugfs = -1; 11787 11788 if (has_debugfs < 0) 11789 has_debugfs = faccessat(AT_FDCWD, DEBUGFS, F_OK, AT_EACCESS) == 0; 11790 11791 return has_debugfs == 1; 11792 } 11793 11794 static const char *tracefs_path(void) 11795 { 11796 return use_debugfs() ? DEBUGFS : TRACEFS; 11797 } 11798 11799 static const char *tracefs_kprobe_events(void) 11800 { 11801 return use_debugfs() ? DEBUGFS"/kprobe_events" : TRACEFS"/kprobe_events"; 11802 } 11803 11804 static const char *tracefs_uprobe_events(void) 11805 { 11806 return use_debugfs() ? DEBUGFS"/uprobe_events" : TRACEFS"/uprobe_events"; 11807 } 11808 11809 static const char *tracefs_available_filter_functions(void) 11810 { 11811 return use_debugfs() ? DEBUGFS"/available_filter_functions" 11812 : TRACEFS"/available_filter_functions"; 11813 } 11814 11815 static const char *tracefs_available_filter_functions_addrs(void) 11816 { 11817 return use_debugfs() ? DEBUGFS"/available_filter_functions_addrs" 11818 : TRACEFS"/available_filter_functions_addrs"; 11819 } 11820 11821 static void gen_probe_legacy_event_name(char *buf, size_t buf_sz, 11822 const char *name, size_t offset) 11823 { 11824 static int index = 0; 11825 int i; 11826 11827 snprintf(buf, buf_sz, "libbpf_%d_%d_%s_0x%zx", getpid(), 11828 __sync_fetch_and_add(&index, 1), name, offset); 11829 11830 /* sanitize name in the probe name */ 11831 for (i = 0; buf[i]; i++) { 11832 if (!isalnum(buf[i])) 11833 buf[i] = '_'; 11834 } 11835 } 11836 11837 static int add_kprobe_event_legacy(const char *probe_name, bool retprobe, 11838 const char *kfunc_name, size_t offset) 11839 { 11840 return append_to_file(tracefs_kprobe_events(), "%c:%s/%s %s+0x%zx", 11841 retprobe ? 'r' : 'p', 11842 retprobe ? "kretprobes" : "kprobes", 11843 probe_name, kfunc_name, offset); 11844 } 11845 11846 static int remove_kprobe_event_legacy(const char *probe_name, bool retprobe) 11847 { 11848 return append_to_file(tracefs_kprobe_events(), "-:%s/%s", 11849 retprobe ? "kretprobes" : "kprobes", probe_name); 11850 } 11851 11852 static int determine_kprobe_perf_type_legacy(const char *probe_name, bool retprobe) 11853 { 11854 char file[256]; 11855 11856 snprintf(file, sizeof(file), "%s/events/%s/%s/id", 11857 tracefs_path(), retprobe ? "kretprobes" : "kprobes", probe_name); 11858 11859 return parse_uint_from_file(file, "%d\n"); 11860 } 11861 11862 static int perf_event_kprobe_open_legacy(const char *probe_name, bool retprobe, 11863 const char *kfunc_name, size_t offset, int pid) 11864 { 11865 const size_t attr_sz = sizeof(struct perf_event_attr); 11866 struct perf_event_attr attr; 11867 int type, pfd, err; 11868 11869 err = add_kprobe_event_legacy(probe_name, retprobe, kfunc_name, offset); 11870 if (err < 0) { 11871 pr_warn("failed to add legacy kprobe event for '%s+0x%zx': %s\n", 11872 kfunc_name, offset, 11873 errstr(err)); 11874 return err; 11875 } 11876 type = determine_kprobe_perf_type_legacy(probe_name, retprobe); 11877 if (type < 0) { 11878 err = type; 11879 pr_warn("failed to determine legacy kprobe event id for '%s+0x%zx': %s\n", 11880 kfunc_name, offset, 11881 errstr(err)); 11882 goto err_clean_legacy; 11883 } 11884 11885 memset(&attr, 0, attr_sz); 11886 attr.size = attr_sz; 11887 attr.config = type; 11888 attr.type = PERF_TYPE_TRACEPOINT; 11889 11890 pfd = syscall(__NR_perf_event_open, &attr, 11891 pid < 0 ? -1 : pid, /* pid */ 11892 pid == -1 ? 0 : -1, /* cpu */ 11893 -1 /* group_fd */, PERF_FLAG_FD_CLOEXEC); 11894 if (pfd < 0) { 11895 err = -errno; 11896 pr_warn("legacy kprobe perf_event_open() failed: %s\n", 11897 errstr(err)); 11898 goto err_clean_legacy; 11899 } 11900 return pfd; 11901 11902 err_clean_legacy: 11903 /* Clear the newly added legacy kprobe_event */ 11904 remove_kprobe_event_legacy(probe_name, retprobe); 11905 return err; 11906 } 11907 11908 static const char *arch_specific_syscall_pfx(void) 11909 { 11910 #if defined(__x86_64__) 11911 return "x64"; 11912 #elif defined(__i386__) 11913 return "ia32"; 11914 #elif defined(__s390x__) 11915 return "s390x"; 11916 #elif defined(__arm__) 11917 return "arm"; 11918 #elif defined(__aarch64__) 11919 return "arm64"; 11920 #elif defined(__mips__) 11921 return "mips"; 11922 #elif defined(__riscv) 11923 return "riscv"; 11924 #elif defined(__powerpc__) 11925 return "powerpc"; 11926 #elif defined(__powerpc64__) 11927 return "powerpc64"; 11928 #else 11929 return NULL; 11930 #endif 11931 } 11932 11933 int probe_kern_syscall_wrapper(int token_fd) 11934 { 11935 char syscall_name[64]; 11936 const char *ksys_pfx; 11937 11938 ksys_pfx = arch_specific_syscall_pfx(); 11939 if (!ksys_pfx) 11940 return 0; 11941 11942 snprintf(syscall_name, sizeof(syscall_name), "__%s_sys_bpf", ksys_pfx); 11943 11944 if (determine_kprobe_perf_type() >= 0) { 11945 int pfd; 11946 11947 pfd = perf_event_open_probe(false, false, syscall_name, 0, getpid(), 0); 11948 if (pfd >= 0) 11949 close(pfd); 11950 11951 return pfd >= 0 ? 1 : 0; 11952 } else { /* legacy mode */ 11953 char probe_name[MAX_EVENT_NAME_LEN]; 11954 11955 gen_probe_legacy_event_name(probe_name, sizeof(probe_name), syscall_name, 0); 11956 if (add_kprobe_event_legacy(probe_name, false, syscall_name, 0) < 0) 11957 return 0; 11958 11959 (void)remove_kprobe_event_legacy(probe_name, false); 11960 return 1; 11961 } 11962 } 11963 11964 struct bpf_link * 11965 bpf_program__attach_kprobe_opts(const struct bpf_program *prog, 11966 const char *func_name, 11967 const struct bpf_kprobe_opts *opts) 11968 { 11969 DECLARE_LIBBPF_OPTS(bpf_perf_event_opts, pe_opts); 11970 enum probe_attach_mode attach_mode; 11971 char *legacy_probe = NULL; 11972 struct bpf_link *link; 11973 size_t offset; 11974 bool retprobe, legacy; 11975 int pfd, err; 11976 11977 if (!OPTS_VALID(opts, bpf_kprobe_opts)) 11978 return libbpf_err_ptr(-EINVAL); 11979 11980 attach_mode = OPTS_GET(opts, attach_mode, PROBE_ATTACH_MODE_DEFAULT); 11981 retprobe = OPTS_GET(opts, retprobe, false); 11982 offset = OPTS_GET(opts, offset, 0); 11983 pe_opts.bpf_cookie = OPTS_GET(opts, bpf_cookie, 0); 11984 11985 legacy = determine_kprobe_perf_type() < 0; 11986 switch (attach_mode) { 11987 case PROBE_ATTACH_MODE_LEGACY: 11988 legacy = true; 11989 pe_opts.force_ioctl_attach = true; 11990 break; 11991 case PROBE_ATTACH_MODE_PERF: 11992 if (legacy) 11993 return libbpf_err_ptr(-ENOTSUP); 11994 pe_opts.force_ioctl_attach = true; 11995 break; 11996 case PROBE_ATTACH_MODE_LINK: 11997 if (legacy || !kernel_supports(prog->obj, FEAT_PERF_LINK)) 11998 return libbpf_err_ptr(-ENOTSUP); 11999 break; 12000 case PROBE_ATTACH_MODE_DEFAULT: 12001 break; 12002 default: 12003 return libbpf_err_ptr(-EINVAL); 12004 } 12005 if (!func_name && legacy) 12006 return libbpf_err_ptr(-EOPNOTSUPP); 12007 12008 if (!legacy) { 12009 pfd = perf_event_open_probe(false /* uprobe */, retprobe, 12010 func_name, offset, 12011 -1 /* pid */, 0 /* ref_ctr_off */); 12012 } else { 12013 char probe_name[MAX_EVENT_NAME_LEN]; 12014 12015 gen_probe_legacy_event_name(probe_name, sizeof(probe_name), 12016 func_name, offset); 12017 12018 legacy_probe = strdup(probe_name); 12019 if (!legacy_probe) 12020 return libbpf_err_ptr(-ENOMEM); 12021 12022 pfd = perf_event_kprobe_open_legacy(legacy_probe, retprobe, func_name, 12023 offset, -1 /* pid */); 12024 } 12025 if (pfd < 0) { 12026 err = pfd; 12027 pr_warn("prog '%s': failed to create %s '%s%s0x%zx' perf event: %s\n", 12028 prog->name, retprobe ? "kretprobe" : "kprobe", 12029 func_name ?: "", func_name ? "+" : "", 12030 offset, errstr(err)); 12031 goto err_out; 12032 } 12033 link = bpf_program__attach_perf_event_opts(prog, pfd, &pe_opts); 12034 err = libbpf_get_error(link); 12035 if (err) { 12036 close(pfd); 12037 pr_warn("prog '%s': failed to attach to %s '%s%s0x%zx': %s\n", 12038 prog->name, retprobe ? "kretprobe" : "kprobe", 12039 func_name ?: "", func_name ? "+" : "", 12040 offset, errstr(err)); 12041 goto err_clean_legacy; 12042 } 12043 if (legacy) { 12044 struct bpf_link_perf *perf_link = container_of(link, struct bpf_link_perf, link); 12045 12046 perf_link->legacy_probe_name = legacy_probe; 12047 perf_link->legacy_is_kprobe = true; 12048 perf_link->legacy_is_retprobe = retprobe; 12049 } 12050 12051 return link; 12052 12053 err_clean_legacy: 12054 if (legacy) 12055 remove_kprobe_event_legacy(legacy_probe, retprobe); 12056 err_out: 12057 free(legacy_probe); 12058 return libbpf_err_ptr(err); 12059 } 12060 12061 struct bpf_link *bpf_program__attach_kprobe(const struct bpf_program *prog, 12062 bool retprobe, 12063 const char *func_name) 12064 { 12065 DECLARE_LIBBPF_OPTS(bpf_kprobe_opts, opts, 12066 .retprobe = retprobe, 12067 ); 12068 12069 return bpf_program__attach_kprobe_opts(prog, func_name, &opts); 12070 } 12071 12072 struct bpf_link *bpf_program__attach_ksyscall(const struct bpf_program *prog, 12073 const char *syscall_name, 12074 const struct bpf_ksyscall_opts *opts) 12075 { 12076 LIBBPF_OPTS(bpf_kprobe_opts, kprobe_opts); 12077 char func_name[128]; 12078 12079 if (!OPTS_VALID(opts, bpf_ksyscall_opts)) 12080 return libbpf_err_ptr(-EINVAL); 12081 12082 if (kernel_supports(prog->obj, FEAT_SYSCALL_WRAPPER)) { 12083 /* arch_specific_syscall_pfx() should never return NULL here 12084 * because it is guarded by kernel_supports(). However, since 12085 * compiler does not know that we have an explicit conditional 12086 * as well. 12087 */ 12088 snprintf(func_name, sizeof(func_name), "__%s_sys_%s", 12089 arch_specific_syscall_pfx() ? : "", syscall_name); 12090 } else { 12091 snprintf(func_name, sizeof(func_name), "__se_sys_%s", syscall_name); 12092 } 12093 12094 kprobe_opts.retprobe = OPTS_GET(opts, retprobe, false); 12095 kprobe_opts.bpf_cookie = OPTS_GET(opts, bpf_cookie, 0); 12096 12097 return bpf_program__attach_kprobe_opts(prog, func_name, &kprobe_opts); 12098 } 12099 12100 /* Adapted from perf/util/string.c */ 12101 bool glob_match(const char *str, const char *pat) 12102 { 12103 while (*str && *pat && *pat != '*') { 12104 if (*pat == '?') { /* Matches any single character */ 12105 str++; 12106 pat++; 12107 continue; 12108 } 12109 if (*str != *pat) 12110 return false; 12111 str++; 12112 pat++; 12113 } 12114 /* Check wild card */ 12115 if (*pat == '*') { 12116 while (*pat == '*') 12117 pat++; 12118 if (!*pat) /* Tail wild card matches all */ 12119 return true; 12120 while (*str) 12121 if (glob_match(str++, pat)) 12122 return true; 12123 } 12124 return !*str && !*pat; 12125 } 12126 12127 struct kprobe_multi_resolve { 12128 const char *pattern; 12129 unsigned long *addrs; 12130 size_t cap; 12131 size_t cnt; 12132 }; 12133 12134 struct avail_kallsyms_data { 12135 char **syms; 12136 size_t cnt; 12137 struct kprobe_multi_resolve *res; 12138 }; 12139 12140 static int avail_func_cmp(const void *a, const void *b) 12141 { 12142 return strcmp(*(const char **)a, *(const char **)b); 12143 } 12144 12145 static int avail_kallsyms_cb(unsigned long long sym_addr, char sym_type, 12146 const char *sym_name, void *ctx) 12147 { 12148 struct avail_kallsyms_data *data = ctx; 12149 struct kprobe_multi_resolve *res = data->res; 12150 int err; 12151 12152 if (!glob_match(sym_name, res->pattern)) 12153 return 0; 12154 12155 if (!bsearch(&sym_name, data->syms, data->cnt, sizeof(*data->syms), avail_func_cmp)) { 12156 /* Some versions of kernel strip out .llvm.<hash> suffix from 12157 * function names reported in available_filter_functions, but 12158 * don't do so for kallsyms. While this is clearly a kernel 12159 * bug (fixed by [0]) we try to accommodate that in libbpf to 12160 * make multi-kprobe usability a bit better: if no match is 12161 * found, we will strip .llvm. suffix and try one more time. 12162 * 12163 * [0] fb6a421fb615 ("kallsyms: Match symbols exactly with CONFIG_LTO_CLANG") 12164 */ 12165 char sym_trim[256], *psym_trim = sym_trim; 12166 const char *sym_sfx; 12167 12168 if (!(sym_sfx = strstr(sym_name, ".llvm."))) 12169 return 0; 12170 12171 /* psym_trim vs sym_trim dance is done to avoid pointer vs array 12172 * coercion differences and get proper `const char **` pointer 12173 * which avail_func_cmp() expects 12174 */ 12175 snprintf(sym_trim, sizeof(sym_trim), "%.*s", (int)(sym_sfx - sym_name), sym_name); 12176 if (!bsearch(&psym_trim, data->syms, data->cnt, sizeof(*data->syms), avail_func_cmp)) 12177 return 0; 12178 } 12179 12180 err = libbpf_ensure_mem((void **)&res->addrs, &res->cap, sizeof(*res->addrs), res->cnt + 1); 12181 if (err) 12182 return err; 12183 12184 res->addrs[res->cnt++] = (unsigned long)sym_addr; 12185 return 0; 12186 } 12187 12188 static int libbpf_available_kallsyms_parse(struct kprobe_multi_resolve *res) 12189 { 12190 const char *available_functions_file = tracefs_available_filter_functions(); 12191 struct avail_kallsyms_data data; 12192 char sym_name[500]; 12193 FILE *f; 12194 int err = 0, ret, i; 12195 char **syms = NULL; 12196 size_t cap = 0, cnt = 0; 12197 12198 f = fopen(available_functions_file, "re"); 12199 if (!f) { 12200 err = -errno; 12201 pr_warn("failed to open %s: %s\n", available_functions_file, errstr(err)); 12202 return err; 12203 } 12204 12205 while (true) { 12206 char *name; 12207 12208 ret = fscanf(f, "%499s%*[^\n]\n", sym_name); 12209 if (ret == EOF && feof(f)) 12210 break; 12211 12212 if (ret != 1) { 12213 pr_warn("failed to parse available_filter_functions entry: %d\n", ret); 12214 err = -EINVAL; 12215 goto cleanup; 12216 } 12217 12218 if (!glob_match(sym_name, res->pattern)) 12219 continue; 12220 12221 err = libbpf_ensure_mem((void **)&syms, &cap, sizeof(*syms), cnt + 1); 12222 if (err) 12223 goto cleanup; 12224 12225 name = strdup(sym_name); 12226 if (!name) { 12227 err = -errno; 12228 goto cleanup; 12229 } 12230 12231 syms[cnt++] = name; 12232 } 12233 12234 /* no entries found, bail out */ 12235 if (cnt == 0) { 12236 err = -ENOENT; 12237 goto cleanup; 12238 } 12239 12240 /* sort available functions */ 12241 qsort(syms, cnt, sizeof(*syms), avail_func_cmp); 12242 12243 data.syms = syms; 12244 data.res = res; 12245 data.cnt = cnt; 12246 libbpf_kallsyms_parse(avail_kallsyms_cb, &data); 12247 12248 if (res->cnt == 0) 12249 err = -ENOENT; 12250 12251 cleanup: 12252 for (i = 0; i < cnt; i++) 12253 free((char *)syms[i]); 12254 free(syms); 12255 12256 fclose(f); 12257 return err; 12258 } 12259 12260 static bool has_available_filter_functions_addrs(void) 12261 { 12262 return access(tracefs_available_filter_functions_addrs(), R_OK) != -1; 12263 } 12264 12265 static int libbpf_available_kprobes_parse(struct kprobe_multi_resolve *res) 12266 { 12267 const char *available_path = tracefs_available_filter_functions_addrs(); 12268 char sym_name[500]; 12269 FILE *f; 12270 int ret, err = 0; 12271 unsigned long long sym_addr; 12272 12273 f = fopen(available_path, "re"); 12274 if (!f) { 12275 err = -errno; 12276 pr_warn("failed to open %s: %s\n", available_path, errstr(err)); 12277 return err; 12278 } 12279 12280 while (true) { 12281 ret = fscanf(f, "%llx %499s%*[^\n]\n", &sym_addr, sym_name); 12282 if (ret == EOF && feof(f)) 12283 break; 12284 12285 if (ret != 2) { 12286 pr_warn("failed to parse available_filter_functions_addrs entry: %d\n", 12287 ret); 12288 err = -EINVAL; 12289 goto cleanup; 12290 } 12291 12292 if (!glob_match(sym_name, res->pattern)) 12293 continue; 12294 12295 err = libbpf_ensure_mem((void **)&res->addrs, &res->cap, 12296 sizeof(*res->addrs), res->cnt + 1); 12297 if (err) 12298 goto cleanup; 12299 12300 res->addrs[res->cnt++] = (unsigned long)sym_addr; 12301 } 12302 12303 if (res->cnt == 0) 12304 err = -ENOENT; 12305 12306 cleanup: 12307 fclose(f); 12308 return err; 12309 } 12310 12311 struct bpf_link * 12312 bpf_program__attach_kprobe_multi_opts(const struct bpf_program *prog, 12313 const char *pattern, 12314 const struct bpf_kprobe_multi_opts *opts) 12315 { 12316 LIBBPF_OPTS(bpf_link_create_opts, lopts); 12317 struct kprobe_multi_resolve res = { 12318 .pattern = pattern, 12319 }; 12320 enum bpf_attach_type attach_type; 12321 struct bpf_link *link = NULL; 12322 const unsigned long *addrs; 12323 int err, link_fd, prog_fd; 12324 bool retprobe, session, unique_match; 12325 const __u64 *cookies; 12326 const char **syms; 12327 size_t cnt; 12328 12329 if (!OPTS_VALID(opts, bpf_kprobe_multi_opts)) 12330 return libbpf_err_ptr(-EINVAL); 12331 12332 prog_fd = bpf_program__fd(prog); 12333 if (prog_fd < 0) { 12334 pr_warn("prog '%s': can't attach BPF program without FD (was it loaded?)\n", 12335 prog->name); 12336 return libbpf_err_ptr(-EINVAL); 12337 } 12338 12339 syms = OPTS_GET(opts, syms, false); 12340 addrs = OPTS_GET(opts, addrs, false); 12341 cnt = OPTS_GET(opts, cnt, false); 12342 cookies = OPTS_GET(opts, cookies, false); 12343 unique_match = OPTS_GET(opts, unique_match, false); 12344 12345 if (!pattern && !addrs && !syms) 12346 return libbpf_err_ptr(-EINVAL); 12347 if (pattern && (addrs || syms || cookies || cnt)) 12348 return libbpf_err_ptr(-EINVAL); 12349 if (!pattern && !cnt) 12350 return libbpf_err_ptr(-EINVAL); 12351 if (!pattern && unique_match) 12352 return libbpf_err_ptr(-EINVAL); 12353 if (addrs && syms) 12354 return libbpf_err_ptr(-EINVAL); 12355 12356 /* 12357 * Exact function name (no wildcards) without unique_match: 12358 * bypass kallsyms parsing and pass the symbol directly to the 12359 * kernel via syms[] array. When unique_match is set, fall 12360 * through to the slow path which detects duplicate symbols. 12361 */ 12362 if (pattern && !strpbrk(pattern, "*?") && !unique_match) { 12363 syms = &pattern; 12364 cnt = 1; 12365 } else if (pattern) { 12366 if (has_available_filter_functions_addrs()) 12367 err = libbpf_available_kprobes_parse(&res); 12368 else 12369 err = libbpf_available_kallsyms_parse(&res); 12370 if (err) 12371 goto error; 12372 12373 if (unique_match && res.cnt != 1) { 12374 pr_warn("prog '%s': failed to find a unique match for '%s' (%zu matches)\n", 12375 prog->name, pattern, res.cnt); 12376 err = -EINVAL; 12377 goto error; 12378 } 12379 12380 addrs = res.addrs; 12381 cnt = res.cnt; 12382 } 12383 12384 retprobe = OPTS_GET(opts, retprobe, false); 12385 session = OPTS_GET(opts, session, false); 12386 12387 if (retprobe && session) 12388 return libbpf_err_ptr(-EINVAL); 12389 12390 attach_type = session ? BPF_TRACE_KPROBE_SESSION : BPF_TRACE_KPROBE_MULTI; 12391 12392 lopts.kprobe_multi.syms = syms; 12393 lopts.kprobe_multi.addrs = addrs; 12394 lopts.kprobe_multi.cookies = cookies; 12395 lopts.kprobe_multi.cnt = cnt; 12396 lopts.kprobe_multi.flags = retprobe ? BPF_F_KPROBE_MULTI_RETURN : 0; 12397 12398 link = calloc(1, sizeof(*link)); 12399 if (!link) { 12400 err = -ENOMEM; 12401 goto error; 12402 } 12403 link->detach = &bpf_link__detach_fd; 12404 12405 link_fd = bpf_link_create(prog_fd, 0, attach_type, &lopts); 12406 if (link_fd < 0) { 12407 err = -errno; 12408 /* 12409 * Normalize error code: when exact name bypasses kallsyms 12410 * parsing, kernel returns ESRCH from ftrace_lookup_symbols(). 12411 * Convert to ENOENT for API consistency with the pattern 12412 * matching path which returns ENOENT from userspace. 12413 */ 12414 if (err == -ESRCH) 12415 err = -ENOENT; 12416 pr_warn("prog '%s': failed to attach: %s\n", 12417 prog->name, errstr(err)); 12418 goto error; 12419 } 12420 link->fd = link_fd; 12421 free(res.addrs); 12422 return link; 12423 12424 error: 12425 free(link); 12426 free(res.addrs); 12427 return libbpf_err_ptr(err); 12428 } 12429 12430 static int attach_kprobe(const struct bpf_program *prog, long cookie, struct bpf_link **link) 12431 { 12432 DECLARE_LIBBPF_OPTS(bpf_kprobe_opts, opts); 12433 long offset = 0; 12434 const char *func_name; 12435 char *func; 12436 int n; 12437 12438 *link = NULL; 12439 12440 /* no auto-attach for SEC("kprobe") and SEC("kretprobe") */ 12441 if (strcmp(prog->sec_name, "kprobe") == 0 || strcmp(prog->sec_name, "kretprobe") == 0) 12442 return 0; 12443 12444 opts.retprobe = str_has_pfx(prog->sec_name, "kretprobe/"); 12445 if (opts.retprobe) 12446 func_name = prog->sec_name + sizeof("kretprobe/") - 1; 12447 else 12448 func_name = prog->sec_name + sizeof("kprobe/") - 1; 12449 12450 n = sscanf(func_name, "%m[a-zA-Z0-9_.]+%li", &func, &offset); 12451 if (n < 1) { 12452 pr_warn("kprobe name is invalid: %s\n", func_name); 12453 return -EINVAL; 12454 } 12455 12456 if (offset < 0) { 12457 free(func); 12458 pr_warn("kprobe offset must be a non-negative integer: %li\n", offset); 12459 return -EINVAL; 12460 } 12461 12462 if (opts.retprobe && offset != 0) { 12463 free(func); 12464 pr_warn("kretprobes do not support offset specification\n"); 12465 return -EINVAL; 12466 } 12467 12468 opts.offset = offset; 12469 *link = bpf_program__attach_kprobe_opts(prog, func, &opts); 12470 free(func); 12471 return libbpf_get_error(*link); 12472 } 12473 12474 static int attach_ksyscall(const struct bpf_program *prog, long cookie, struct bpf_link **link) 12475 { 12476 LIBBPF_OPTS(bpf_ksyscall_opts, opts); 12477 const char *syscall_name; 12478 12479 *link = NULL; 12480 12481 /* no auto-attach for SEC("ksyscall") and SEC("kretsyscall") */ 12482 if (strcmp(prog->sec_name, "ksyscall") == 0 || strcmp(prog->sec_name, "kretsyscall") == 0) 12483 return 0; 12484 12485 opts.retprobe = str_has_pfx(prog->sec_name, "kretsyscall/"); 12486 if (opts.retprobe) 12487 syscall_name = prog->sec_name + sizeof("kretsyscall/") - 1; 12488 else 12489 syscall_name = prog->sec_name + sizeof("ksyscall/") - 1; 12490 12491 *link = bpf_program__attach_ksyscall(prog, syscall_name, &opts); 12492 return *link ? 0 : -errno; 12493 } 12494 12495 static int attach_kprobe_multi(const struct bpf_program *prog, long cookie, struct bpf_link **link) 12496 { 12497 LIBBPF_OPTS(bpf_kprobe_multi_opts, opts); 12498 const char *spec; 12499 char *pattern; 12500 int n; 12501 12502 *link = NULL; 12503 12504 /* no auto-attach for SEC("kprobe.multi") and SEC("kretprobe.multi") */ 12505 if (strcmp(prog->sec_name, "kprobe.multi") == 0 || 12506 strcmp(prog->sec_name, "kretprobe.multi") == 0) 12507 return 0; 12508 12509 opts.retprobe = str_has_pfx(prog->sec_name, "kretprobe.multi/"); 12510 if (opts.retprobe) 12511 spec = prog->sec_name + sizeof("kretprobe.multi/") - 1; 12512 else 12513 spec = prog->sec_name + sizeof("kprobe.multi/") - 1; 12514 12515 n = sscanf(spec, "%m[a-zA-Z0-9_.*?]", &pattern); 12516 if (n < 1) { 12517 pr_warn("kprobe multi pattern is invalid: %s\n", spec); 12518 return -EINVAL; 12519 } 12520 12521 *link = bpf_program__attach_kprobe_multi_opts(prog, pattern, &opts); 12522 free(pattern); 12523 return libbpf_get_error(*link); 12524 } 12525 12526 static int attach_kprobe_session(const struct bpf_program *prog, long cookie, 12527 struct bpf_link **link) 12528 { 12529 LIBBPF_OPTS(bpf_kprobe_multi_opts, opts, .session = true); 12530 const char *spec; 12531 char *pattern; 12532 int n; 12533 12534 *link = NULL; 12535 12536 /* no auto-attach for SEC("kprobe.session") */ 12537 if (strcmp(prog->sec_name, "kprobe.session") == 0) 12538 return 0; 12539 12540 spec = prog->sec_name + sizeof("kprobe.session/") - 1; 12541 n = sscanf(spec, "%m[a-zA-Z0-9_.*?]", &pattern); 12542 if (n < 1) { 12543 pr_warn("kprobe session pattern is invalid: %s\n", spec); 12544 return -EINVAL; 12545 } 12546 12547 *link = bpf_program__attach_kprobe_multi_opts(prog, pattern, &opts); 12548 free(pattern); 12549 return *link ? 0 : -errno; 12550 } 12551 12552 static int attach_uprobe_multi(const struct bpf_program *prog, long cookie, struct bpf_link **link) 12553 { 12554 char *probe_type = NULL, *binary_path = NULL, *func_name = NULL; 12555 LIBBPF_OPTS(bpf_uprobe_multi_opts, opts); 12556 int n, ret = -EINVAL; 12557 12558 *link = NULL; 12559 12560 n = sscanf(prog->sec_name, "%m[^/]/%m[^:]:%m[^\n]", 12561 &probe_type, &binary_path, &func_name); 12562 switch (n) { 12563 case 1: 12564 /* handle SEC("u[ret]probe") - format is valid, but auto-attach is impossible. */ 12565 ret = 0; 12566 break; 12567 case 3: 12568 opts.session = str_has_pfx(probe_type, "uprobe.session"); 12569 opts.retprobe = str_has_pfx(probe_type, "uretprobe.multi"); 12570 12571 *link = bpf_program__attach_uprobe_multi(prog, -1, binary_path, func_name, &opts); 12572 ret = libbpf_get_error(*link); 12573 break; 12574 default: 12575 pr_warn("prog '%s': invalid format of section definition '%s'\n", prog->name, 12576 prog->sec_name); 12577 break; 12578 } 12579 free(probe_type); 12580 free(binary_path); 12581 free(func_name); 12582 return ret; 12583 } 12584 12585 #define MAX_BPF_FUNC_ARGS 12 12586 12587 static bool btf_type_is_modifier(const struct btf_type *t) 12588 { 12589 switch (BTF_INFO_KIND(t->info)) { 12590 case BTF_KIND_TYPEDEF: 12591 case BTF_KIND_VOLATILE: 12592 case BTF_KIND_CONST: 12593 case BTF_KIND_RESTRICT: 12594 case BTF_KIND_TYPE_TAG: 12595 return true; 12596 default: 12597 return false; 12598 } 12599 } 12600 12601 #define MAX_RESOLVE_DEPTH 32 12602 12603 static int btf_get_type_size(const struct btf *btf, __u32 type_id, 12604 const struct btf_type **ret_type) 12605 { 12606 const struct btf_type *t; 12607 int i; 12608 12609 *ret_type = btf__type_by_id(btf, 0); 12610 if (!type_id) 12611 return 0; 12612 t = btf__type_by_id(btf, type_id); 12613 for (i = 0; i < MAX_RESOLVE_DEPTH && t && btf_type_is_modifier(t); i++) 12614 t = btf__type_by_id(btf, t->type); 12615 if (!t || i == MAX_RESOLVE_DEPTH) 12616 return -EINVAL; 12617 *ret_type = t; 12618 if (btf_is_ptr(t)) 12619 return btf__pointer_size(btf); 12620 if (btf_is_int(t) || btf_is_any_enum(t) || btf_is_struct(t) || btf_is_union(t)) 12621 return t->size; 12622 return -EINVAL; 12623 } 12624 12625 bool btf_type_is_traceable_func(const struct btf *btf, const struct btf_type *t) 12626 { 12627 const struct btf_param *args; 12628 const struct btf_type *proto; 12629 __u32 i, nargs; 12630 int ret; 12631 12632 if (!btf_is_func(t)) 12633 return false; 12634 proto = btf__type_by_id(btf, t->type); 12635 if (!proto || !btf_is_func_proto(proto)) 12636 return false; 12637 12638 args = (const struct btf_param *)(proto + 1); 12639 nargs = btf_vlen(proto); 12640 if (nargs > MAX_BPF_FUNC_ARGS) 12641 return false; 12642 12643 /* No support for struct return type. */ 12644 ret = btf_get_type_size(btf, proto->type, &t); 12645 if (ret < 0 || btf_is_struct(t) || btf_is_union(t)) 12646 return false; 12647 12648 for (i = 0; i < nargs; i++) { 12649 /* No support for variable args. */ 12650 if (i == nargs - 1 && args[i].type == 0) 12651 return false; 12652 ret = btf_get_type_size(btf, args[i].type, &t); 12653 /* No support of struct argument size greater than 16 bytes. */ 12654 if (ret < 0 || ret > 16) 12655 return false; 12656 /* No support for void argument. */ 12657 if (ret == 0) 12658 return false; 12659 } 12660 12661 return true; 12662 } 12663 12664 static int 12665 collect_btf_func_ids_by_glob(const struct btf *btf, const char *pattern, __u32 **ids) 12666 { 12667 __u32 type_id, nr_types = btf__type_cnt(btf); 12668 size_t cap = 0, cnt = 0; 12669 12670 if (!pattern) 12671 return -EINVAL; 12672 12673 for (type_id = 1; type_id < nr_types; type_id++) { 12674 const struct btf_type *t = btf__type_by_id(btf, type_id); 12675 const char *name; 12676 int err; 12677 12678 if (btf_kind(t) != BTF_KIND_FUNC) 12679 continue; 12680 name = btf__name_by_offset(btf, t->name_off); 12681 if (!name) 12682 continue; 12683 12684 if (!glob_match(name, pattern)) 12685 continue; 12686 if (!btf_type_is_traceable_func(btf, t)) 12687 continue; 12688 12689 err = libbpf_ensure_mem((void **) ids, &cap, sizeof(**ids), cnt + 1); 12690 if (err) { 12691 free(*ids); 12692 return -ENOMEM; 12693 } 12694 (*ids)[cnt++] = type_id; 12695 } 12696 12697 return cnt; 12698 } 12699 12700 static int collect_func_ids_by_glob(const struct bpf_program *prog, const char *pattern, __u32 **ids) 12701 { 12702 struct bpf_object *obj = prog->obj; 12703 const struct module_btf *mod; 12704 struct btf *btf = NULL; 12705 const char *sep; 12706 int err; 12707 12708 err = bpf_object__load_vmlinux_btf(obj, true); 12709 if (err) 12710 return err; 12711 12712 /* In case we have module specified, we will find its btf and use that. */ 12713 sep = strchr(pattern, ':'); 12714 if (sep) { 12715 mod = find_attach_module(obj, pattern); 12716 if (!mod) { 12717 err = -EINVAL; 12718 goto cleanup; 12719 } 12720 btf = mod->btf; 12721 pattern = sep + 1; 12722 } else { 12723 /* Program is loaded for kernel module. */ 12724 if (prog->attach_btf_obj_fd) { 12725 err = -EINVAL; 12726 goto cleanup; 12727 } 12728 btf = obj->btf_vmlinux; 12729 } 12730 12731 err = collect_btf_func_ids_by_glob(btf, pattern, ids); 12732 12733 cleanup: 12734 bpf_object_cleanup_btf(obj); 12735 return err; 12736 } 12737 12738 struct bpf_link * 12739 bpf_program__attach_tracing_multi(const struct bpf_program *prog, const char *pattern, 12740 const struct bpf_tracing_multi_opts *opts) 12741 { 12742 LIBBPF_OPTS(bpf_link_create_opts, lopts); 12743 int prog_fd, link_fd, err, cnt; 12744 __u32 *free_ids = NULL; 12745 struct bpf_link *link; 12746 const __u64 *cookies; 12747 const __u32 *ids; 12748 12749 if (!OPTS_VALID(opts, bpf_tracing_multi_opts)) 12750 return libbpf_err_ptr(-EINVAL); 12751 12752 prog_fd = bpf_program__fd(prog); 12753 if (prog_fd < 0) { 12754 pr_warn("prog '%s': can't attach BPF program without FD (was it loaded?)\n", 12755 prog->name); 12756 return libbpf_err_ptr(-EINVAL); 12757 } 12758 12759 cnt = OPTS_GET(opts, cnt, 0); 12760 ids = OPTS_GET(opts, ids, NULL); 12761 cookies = OPTS_GET(opts, cookies, NULL); 12762 12763 if (!!ids != !!cnt) 12764 return libbpf_err_ptr(-EINVAL); 12765 if (pattern && (ids || cookies)) 12766 return libbpf_err_ptr(-EINVAL); 12767 if (!pattern && !ids) 12768 return libbpf_err_ptr(-EINVAL); 12769 12770 if (pattern) { 12771 cnt = collect_func_ids_by_glob(prog, pattern, &free_ids); 12772 if (cnt < 0) 12773 return libbpf_err_ptr(cnt); 12774 if (cnt == 0) 12775 return libbpf_err_ptr(-EINVAL); 12776 ids = (const __u32 *) free_ids; 12777 } 12778 12779 lopts.tracing_multi.ids = ids; 12780 lopts.tracing_multi.cookies = cookies; 12781 lopts.tracing_multi.cnt = cnt; 12782 12783 link = calloc(1, sizeof(*link)); 12784 if (!link) { 12785 err = -ENOMEM; 12786 goto error; 12787 } 12788 link->detach = &bpf_link__detach_fd; 12789 12790 link_fd = bpf_link_create(prog_fd, 0, prog->expected_attach_type, &lopts); 12791 if (link_fd < 0) { 12792 err = -errno; 12793 pr_warn("prog '%s': failed to attach: %s\n", prog->name, errstr(err)); 12794 goto error; 12795 } 12796 link->fd = link_fd; 12797 free(free_ids); 12798 return link; 12799 12800 error: 12801 free(link); 12802 free(free_ids); 12803 return libbpf_err_ptr(err); 12804 } 12805 12806 static int attach_tracing_multi(const struct bpf_program *prog, long cookie, struct bpf_link **link) 12807 { 12808 static const char *const prefixes[] = { 12809 "fentry.multi", 12810 "fexit.multi", 12811 "fsession.multi", 12812 "fentry.multi.s", 12813 "fexit.multi.s", 12814 "fsession.multi.s", 12815 }; 12816 const char *spec = NULL; 12817 char *pattern; 12818 size_t i; 12819 int n; 12820 12821 *link = NULL; 12822 12823 for (i = 0; i < ARRAY_SIZE(prefixes); i++) { 12824 size_t pfx_len; 12825 12826 if (!str_has_pfx(prog->sec_name, prefixes[i])) 12827 continue; 12828 12829 pfx_len = strlen(prefixes[i]); 12830 /* no auto-attach case of, e.g., SEC("fentry.multi") */ 12831 if (prog->sec_name[pfx_len] == '\0') 12832 return 0; 12833 12834 if (prog->sec_name[pfx_len] != '/') 12835 continue; 12836 12837 spec = prog->sec_name + pfx_len + 1; 12838 break; 12839 } 12840 12841 if (!spec) { 12842 pr_warn("prog '%s': invalid section name '%s'\n", 12843 prog->name, prog->sec_name); 12844 return -EINVAL; 12845 } 12846 12847 n = sscanf(spec, "%m[a-zA-Z0-9_.*?:]", &pattern); 12848 if (n < 1) { 12849 pr_warn("tracing multi pattern is invalid: %s\n", spec); 12850 return -EINVAL; 12851 } 12852 12853 *link = bpf_program__attach_tracing_multi(prog, pattern, NULL); 12854 free(pattern); 12855 return libbpf_get_error(*link); 12856 } 12857 12858 static inline int add_uprobe_event_legacy(const char *probe_name, bool retprobe, 12859 const char *binary_path, size_t offset) 12860 { 12861 return append_to_file(tracefs_uprobe_events(), "%c:%s/%s %s:0x%zx", 12862 retprobe ? 'r' : 'p', 12863 retprobe ? "uretprobes" : "uprobes", 12864 probe_name, binary_path, offset); 12865 } 12866 12867 static inline int remove_uprobe_event_legacy(const char *probe_name, bool retprobe) 12868 { 12869 return append_to_file(tracefs_uprobe_events(), "-:%s/%s", 12870 retprobe ? "uretprobes" : "uprobes", probe_name); 12871 } 12872 12873 static int determine_uprobe_perf_type_legacy(const char *probe_name, bool retprobe) 12874 { 12875 char file[512]; 12876 12877 snprintf(file, sizeof(file), "%s/events/%s/%s/id", 12878 tracefs_path(), retprobe ? "uretprobes" : "uprobes", probe_name); 12879 12880 return parse_uint_from_file(file, "%d\n"); 12881 } 12882 12883 static int perf_event_uprobe_open_legacy(const char *probe_name, bool retprobe, 12884 const char *binary_path, size_t offset, int pid) 12885 { 12886 const size_t attr_sz = sizeof(struct perf_event_attr); 12887 struct perf_event_attr attr; 12888 int type, pfd, err; 12889 12890 err = add_uprobe_event_legacy(probe_name, retprobe, binary_path, offset); 12891 if (err < 0) { 12892 pr_warn("failed to add legacy uprobe event for %s:0x%zx: %s\n", 12893 binary_path, (size_t)offset, errstr(err)); 12894 return err; 12895 } 12896 type = determine_uprobe_perf_type_legacy(probe_name, retprobe); 12897 if (type < 0) { 12898 err = type; 12899 pr_warn("failed to determine legacy uprobe event id for %s:0x%zx: %s\n", 12900 binary_path, offset, errstr(err)); 12901 goto err_clean_legacy; 12902 } 12903 12904 memset(&attr, 0, attr_sz); 12905 attr.size = attr_sz; 12906 attr.config = type; 12907 attr.type = PERF_TYPE_TRACEPOINT; 12908 12909 pfd = syscall(__NR_perf_event_open, &attr, 12910 pid < 0 ? -1 : pid, /* pid */ 12911 pid == -1 ? 0 : -1, /* cpu */ 12912 -1 /* group_fd */, PERF_FLAG_FD_CLOEXEC); 12913 if (pfd < 0) { 12914 err = -errno; 12915 pr_warn("legacy uprobe perf_event_open() failed: %s\n", errstr(err)); 12916 goto err_clean_legacy; 12917 } 12918 return pfd; 12919 12920 err_clean_legacy: 12921 /* Clear the newly added legacy uprobe_event */ 12922 remove_uprobe_event_legacy(probe_name, retprobe); 12923 return err; 12924 } 12925 12926 /* Find offset of function name in archive specified by path. Currently 12927 * supported are .zip files that do not compress their contents, as used on 12928 * Android in the form of APKs, for example. "file_name" is the name of the ELF 12929 * file inside the archive. "func_name" matches symbol name or name@@LIB for 12930 * library functions. 12931 * 12932 * An overview of the APK format specifically provided here: 12933 * https://en.wikipedia.org/w/index.php?title=Apk_(file_format)&oldid=1139099120#Package_contents 12934 */ 12935 static long elf_find_func_offset_from_archive(const char *archive_path, const char *file_name, 12936 const char *func_name) 12937 { 12938 struct zip_archive *archive; 12939 struct zip_entry entry; 12940 long ret; 12941 Elf *elf; 12942 12943 archive = zip_archive_open(archive_path); 12944 if (IS_ERR(archive)) { 12945 ret = PTR_ERR(archive); 12946 pr_warn("zip: failed to open %s: %ld\n", archive_path, ret); 12947 return ret; 12948 } 12949 12950 ret = zip_archive_find_entry(archive, file_name, &entry); 12951 if (ret) { 12952 pr_warn("zip: could not find archive member %s in %s: %ld\n", file_name, 12953 archive_path, ret); 12954 goto out; 12955 } 12956 pr_debug("zip: found entry for %s in %s at 0x%lx\n", file_name, archive_path, 12957 (unsigned long)entry.data_offset); 12958 12959 if (entry.compression) { 12960 pr_warn("zip: entry %s of %s is compressed and cannot be handled\n", file_name, 12961 archive_path); 12962 ret = -LIBBPF_ERRNO__FORMAT; 12963 goto out; 12964 } 12965 12966 elf = elf_memory((void *)entry.data, entry.data_length); 12967 if (!elf) { 12968 pr_warn("elf: could not read elf file %s from %s: %s\n", file_name, archive_path, 12969 elf_errmsg(-1)); 12970 ret = -LIBBPF_ERRNO__LIBELF; 12971 goto out; 12972 } 12973 12974 ret = elf_find_func_offset(elf, file_name, func_name); 12975 if (ret > 0) { 12976 pr_debug("elf: symbol address match for %s of %s in %s: 0x%x + 0x%lx = 0x%lx\n", 12977 func_name, file_name, archive_path, entry.data_offset, (unsigned long)ret, 12978 (unsigned long)(ret + entry.data_offset)); 12979 ret += entry.data_offset; 12980 } 12981 elf_end(elf); 12982 12983 out: 12984 zip_archive_close(archive); 12985 return ret; 12986 } 12987 12988 static const char *arch_specific_lib_paths(void) 12989 { 12990 /* 12991 * Based on https://packages.debian.org/sid/libc6. 12992 * 12993 * Assume that the traced program is built for the same architecture 12994 * as libbpf, which should cover the vast majority of cases. 12995 */ 12996 #if defined(__x86_64__) 12997 return "/lib/x86_64-linux-gnu"; 12998 #elif defined(__i386__) 12999 return "/lib/i386-linux-gnu"; 13000 #elif defined(__s390x__) 13001 return "/lib/s390x-linux-gnu"; 13002 #elif defined(__arm__) && defined(__SOFTFP__) 13003 return "/lib/arm-linux-gnueabi"; 13004 #elif defined(__arm__) && !defined(__SOFTFP__) 13005 return "/lib/arm-linux-gnueabihf"; 13006 #elif defined(__aarch64__) 13007 return "/lib/aarch64-linux-gnu"; 13008 #elif defined(__mips__) && defined(__MIPSEL__) && _MIPS_SZLONG == 64 13009 return "/lib/mips64el-linux-gnuabi64"; 13010 #elif defined(__mips__) && defined(__MIPSEL__) && _MIPS_SZLONG == 32 13011 return "/lib/mipsel-linux-gnu"; 13012 #elif defined(__powerpc64__) && __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__ 13013 return "/lib/powerpc64le-linux-gnu"; 13014 #elif defined(__sparc__) && defined(__arch64__) 13015 return "/lib/sparc64-linux-gnu"; 13016 #elif defined(__riscv) && __riscv_xlen == 64 13017 return "/lib/riscv64-linux-gnu"; 13018 #else 13019 return NULL; 13020 #endif 13021 } 13022 13023 /* Get full path to program/shared library. */ 13024 static int resolve_full_path(const char *file, char *result, size_t result_sz) 13025 { 13026 const char *search_paths[4] = {}; 13027 int i, perm; 13028 13029 if (str_has_sfx(file, ".so") || strstr(file, ".so.")) { 13030 search_paths[0] = getenv("LD_LIBRARY_PATH"); 13031 search_paths[1] = "/usr/lib64:/usr/lib"; 13032 search_paths[2] = arch_specific_lib_paths(); 13033 search_paths[3] = "/lib64:/lib"; 13034 perm = R_OK; 13035 } else { 13036 search_paths[0] = getenv("PATH"); 13037 search_paths[1] = "/usr/bin:/usr/sbin"; 13038 perm = R_OK | X_OK; 13039 } 13040 13041 for (i = 0; i < ARRAY_SIZE(search_paths); i++) { 13042 const char *s; 13043 13044 if (!search_paths[i]) 13045 continue; 13046 for (s = search_paths[i]; s != NULL; s = strchr(s, ':')) { 13047 const char *next_path; 13048 int seg_len; 13049 13050 if (s[0] == ':') 13051 s++; 13052 next_path = strchr(s, ':'); 13053 seg_len = next_path ? next_path - s : strlen(s); 13054 if (!seg_len) 13055 continue; 13056 snprintf(result, result_sz, "%.*s/%s", seg_len, s, file); 13057 /* ensure it has required permissions */ 13058 if (faccessat(AT_FDCWD, result, perm, AT_EACCESS) < 0) 13059 continue; 13060 pr_debug("resolved '%s' to '%s'\n", file, result); 13061 return 0; 13062 } 13063 } 13064 return -ENOENT; 13065 } 13066 13067 struct bpf_link * 13068 bpf_program__attach_uprobe_multi(const struct bpf_program *prog, 13069 pid_t pid, 13070 const char *path, 13071 const char *func_pattern, 13072 const struct bpf_uprobe_multi_opts *opts) 13073 { 13074 const unsigned long *ref_ctr_offsets = NULL, *offsets = NULL; 13075 LIBBPF_OPTS(bpf_link_create_opts, lopts); 13076 unsigned long *resolved_offsets = NULL; 13077 enum bpf_attach_type attach_type; 13078 int err = 0, link_fd, prog_fd; 13079 struct bpf_link *link = NULL; 13080 char full_path[PATH_MAX]; 13081 bool retprobe, session; 13082 const __u64 *cookies; 13083 const char **syms; 13084 size_t cnt; 13085 13086 if (!OPTS_VALID(opts, bpf_uprobe_multi_opts)) 13087 return libbpf_err_ptr(-EINVAL); 13088 13089 prog_fd = bpf_program__fd(prog); 13090 if (prog_fd < 0) { 13091 pr_warn("prog '%s': can't attach BPF program without FD (was it loaded?)\n", 13092 prog->name); 13093 return libbpf_err_ptr(-EINVAL); 13094 } 13095 13096 syms = OPTS_GET(opts, syms, NULL); 13097 offsets = OPTS_GET(opts, offsets, NULL); 13098 ref_ctr_offsets = OPTS_GET(opts, ref_ctr_offsets, NULL); 13099 cookies = OPTS_GET(opts, cookies, NULL); 13100 cnt = OPTS_GET(opts, cnt, 0); 13101 retprobe = OPTS_GET(opts, retprobe, false); 13102 session = OPTS_GET(opts, session, false); 13103 13104 /* 13105 * User can specify 2 mutually exclusive set of inputs: 13106 * 13107 * 1) use only path/func_pattern/pid arguments 13108 * 13109 * 2) use path/pid with allowed combinations of: 13110 * syms/offsets/ref_ctr_offsets/cookies/cnt 13111 * 13112 * - syms and offsets are mutually exclusive 13113 * - ref_ctr_offsets and cookies are optional 13114 * 13115 * Any other usage results in error. 13116 */ 13117 13118 if (!path) 13119 return libbpf_err_ptr(-EINVAL); 13120 if (!func_pattern && cnt == 0) 13121 return libbpf_err_ptr(-EINVAL); 13122 13123 if (func_pattern) { 13124 if (syms || offsets || ref_ctr_offsets || cookies || cnt) 13125 return libbpf_err_ptr(-EINVAL); 13126 } else { 13127 if (!!syms == !!offsets) 13128 return libbpf_err_ptr(-EINVAL); 13129 } 13130 13131 if (retprobe && session) 13132 return libbpf_err_ptr(-EINVAL); 13133 13134 if (func_pattern) { 13135 if (!strchr(path, '/')) { 13136 err = resolve_full_path(path, full_path, sizeof(full_path)); 13137 if (err) { 13138 pr_warn("prog '%s': failed to resolve full path for '%s': %s\n", 13139 prog->name, path, errstr(err)); 13140 return libbpf_err_ptr(err); 13141 } 13142 path = full_path; 13143 } 13144 13145 err = elf_resolve_pattern_offsets(path, func_pattern, 13146 &resolved_offsets, &cnt); 13147 if (err < 0) 13148 return libbpf_err_ptr(err); 13149 offsets = resolved_offsets; 13150 } else if (syms) { 13151 err = elf_resolve_syms_offsets(path, cnt, syms, &resolved_offsets, STT_FUNC); 13152 if (err < 0) 13153 return libbpf_err_ptr(err); 13154 offsets = resolved_offsets; 13155 } 13156 13157 attach_type = session ? BPF_TRACE_UPROBE_SESSION : BPF_TRACE_UPROBE_MULTI; 13158 13159 lopts.uprobe_multi.path = path; 13160 lopts.uprobe_multi.offsets = offsets; 13161 lopts.uprobe_multi.ref_ctr_offsets = ref_ctr_offsets; 13162 lopts.uprobe_multi.cookies = cookies; 13163 lopts.uprobe_multi.cnt = cnt; 13164 lopts.uprobe_multi.flags = retprobe ? BPF_F_UPROBE_MULTI_RETURN : 0; 13165 13166 if (pid == 0) 13167 pid = getpid(); 13168 if (pid > 0) 13169 lopts.uprobe_multi.pid = pid; 13170 13171 link = calloc(1, sizeof(*link)); 13172 if (!link) { 13173 err = -ENOMEM; 13174 goto error; 13175 } 13176 link->detach = &bpf_link__detach_fd; 13177 13178 link_fd = bpf_link_create(prog_fd, 0, attach_type, &lopts); 13179 if (link_fd < 0) { 13180 err = -errno; 13181 pr_warn("prog '%s': failed to attach multi-uprobe: %s\n", 13182 prog->name, errstr(err)); 13183 goto error; 13184 } 13185 link->fd = link_fd; 13186 free(resolved_offsets); 13187 return link; 13188 13189 error: 13190 free(resolved_offsets); 13191 free(link); 13192 return libbpf_err_ptr(err); 13193 } 13194 13195 LIBBPF_API struct bpf_link * 13196 bpf_program__attach_uprobe_opts(const struct bpf_program *prog, pid_t pid, 13197 const char *binary_path, size_t func_offset, 13198 const struct bpf_uprobe_opts *opts) 13199 { 13200 const char *archive_path = NULL, *archive_sep = NULL; 13201 char *legacy_probe = NULL; 13202 DECLARE_LIBBPF_OPTS(bpf_perf_event_opts, pe_opts); 13203 enum probe_attach_mode attach_mode; 13204 char full_path[PATH_MAX]; 13205 struct bpf_link *link; 13206 size_t ref_ctr_off; 13207 int pfd, err; 13208 bool retprobe, legacy; 13209 const char *func_name; 13210 13211 if (!OPTS_VALID(opts, bpf_uprobe_opts)) 13212 return libbpf_err_ptr(-EINVAL); 13213 13214 attach_mode = OPTS_GET(opts, attach_mode, PROBE_ATTACH_MODE_DEFAULT); 13215 retprobe = OPTS_GET(opts, retprobe, false); 13216 ref_ctr_off = OPTS_GET(opts, ref_ctr_offset, 0); 13217 pe_opts.bpf_cookie = OPTS_GET(opts, bpf_cookie, 0); 13218 13219 if (!binary_path) 13220 return libbpf_err_ptr(-EINVAL); 13221 13222 /* Check if "binary_path" refers to an archive. */ 13223 archive_sep = strstr(binary_path, "!/"); 13224 if (archive_sep) { 13225 full_path[0] = '\0'; 13226 libbpf_strlcpy(full_path, binary_path, 13227 min(sizeof(full_path), (size_t)(archive_sep - binary_path + 1))); 13228 archive_path = full_path; 13229 binary_path = archive_sep + 2; 13230 } else if (!strchr(binary_path, '/')) { 13231 err = resolve_full_path(binary_path, full_path, sizeof(full_path)); 13232 if (err) { 13233 pr_warn("prog '%s': failed to resolve full path for '%s': %s\n", 13234 prog->name, binary_path, errstr(err)); 13235 return libbpf_err_ptr(err); 13236 } 13237 binary_path = full_path; 13238 } 13239 func_name = OPTS_GET(opts, func_name, NULL); 13240 if (func_name) { 13241 long sym_off; 13242 13243 if (archive_path) { 13244 sym_off = elf_find_func_offset_from_archive(archive_path, binary_path, 13245 func_name); 13246 binary_path = archive_path; 13247 } else { 13248 sym_off = elf_find_func_offset_from_file(binary_path, func_name); 13249 } 13250 if (sym_off < 0) 13251 return libbpf_err_ptr(sym_off); 13252 func_offset += sym_off; 13253 } 13254 13255 legacy = determine_uprobe_perf_type() < 0; 13256 switch (attach_mode) { 13257 case PROBE_ATTACH_MODE_LEGACY: 13258 legacy = true; 13259 pe_opts.force_ioctl_attach = true; 13260 break; 13261 case PROBE_ATTACH_MODE_PERF: 13262 if (legacy) 13263 return libbpf_err_ptr(-ENOTSUP); 13264 pe_opts.force_ioctl_attach = true; 13265 break; 13266 case PROBE_ATTACH_MODE_LINK: 13267 if (legacy || !kernel_supports(prog->obj, FEAT_PERF_LINK)) 13268 return libbpf_err_ptr(-ENOTSUP); 13269 break; 13270 case PROBE_ATTACH_MODE_DEFAULT: 13271 break; 13272 default: 13273 return libbpf_err_ptr(-EINVAL); 13274 } 13275 13276 if (!legacy) { 13277 pfd = perf_event_open_probe(true /* uprobe */, retprobe, binary_path, 13278 func_offset, pid, ref_ctr_off); 13279 } else { 13280 char probe_name[MAX_EVENT_NAME_LEN]; 13281 13282 if (ref_ctr_off) 13283 return libbpf_err_ptr(-EINVAL); 13284 13285 gen_probe_legacy_event_name(probe_name, sizeof(probe_name), 13286 strrchr(binary_path, '/') ? : binary_path, 13287 func_offset); 13288 13289 legacy_probe = strdup(probe_name); 13290 if (!legacy_probe) 13291 return libbpf_err_ptr(-ENOMEM); 13292 13293 pfd = perf_event_uprobe_open_legacy(legacy_probe, retprobe, 13294 binary_path, func_offset, pid); 13295 } 13296 if (pfd < 0) { 13297 err = pfd; 13298 pr_warn("prog '%s': failed to create %s '%s:0x%zx' perf event: %s\n", 13299 prog->name, retprobe ? "uretprobe" : "uprobe", 13300 binary_path, func_offset, 13301 errstr(err)); 13302 goto err_out; 13303 } 13304 13305 link = bpf_program__attach_perf_event_opts(prog, pfd, &pe_opts); 13306 err = libbpf_get_error(link); 13307 if (err) { 13308 close(pfd); 13309 pr_warn("prog '%s': failed to attach to %s '%s:0x%zx': %s\n", 13310 prog->name, retprobe ? "uretprobe" : "uprobe", 13311 binary_path, func_offset, 13312 errstr(err)); 13313 goto err_clean_legacy; 13314 } 13315 if (legacy) { 13316 struct bpf_link_perf *perf_link = container_of(link, struct bpf_link_perf, link); 13317 13318 perf_link->legacy_probe_name = legacy_probe; 13319 perf_link->legacy_is_kprobe = false; 13320 perf_link->legacy_is_retprobe = retprobe; 13321 } 13322 return link; 13323 13324 err_clean_legacy: 13325 if (legacy) 13326 remove_uprobe_event_legacy(legacy_probe, retprobe); 13327 err_out: 13328 free(legacy_probe); 13329 return libbpf_err_ptr(err); 13330 } 13331 13332 /* Format of u[ret]probe section definition supporting auto-attach: 13333 * u[ret]probe/binary:function[+offset] 13334 * 13335 * binary can be an absolute/relative path or a filename; the latter is resolved to a 13336 * full binary path via bpf_program__attach_uprobe_opts. 13337 * 13338 * Specifying uprobe+ ensures we carry out strict matching; either "uprobe" must be 13339 * specified (and auto-attach is not possible) or the above format is specified for 13340 * auto-attach. 13341 */ 13342 static int attach_uprobe(const struct bpf_program *prog, long cookie, struct bpf_link **link) 13343 { 13344 DECLARE_LIBBPF_OPTS(bpf_uprobe_opts, opts); 13345 char *probe_type = NULL, *binary_path = NULL, *func_name = NULL, *func_off; 13346 int n, c, ret = -EINVAL; 13347 long offset = 0; 13348 13349 *link = NULL; 13350 13351 n = sscanf(prog->sec_name, "%m[^/]/%m[^:]:%m[^\n]", 13352 &probe_type, &binary_path, &func_name); 13353 switch (n) { 13354 case 1: 13355 /* handle SEC("u[ret]probe") - format is valid, but auto-attach is impossible. */ 13356 ret = 0; 13357 break; 13358 case 2: 13359 pr_warn("prog '%s': section '%s' missing ':function[+offset]' specification\n", 13360 prog->name, prog->sec_name); 13361 break; 13362 case 3: 13363 /* check if user specifies `+offset`, if yes, this should be 13364 * the last part of the string, make sure sscanf read to EOL 13365 */ 13366 func_off = strrchr(func_name, '+'); 13367 if (func_off) { 13368 n = sscanf(func_off, "+%li%n", &offset, &c); 13369 if (n == 1 && *(func_off + c) == '\0') 13370 func_off[0] = '\0'; 13371 else 13372 offset = 0; 13373 } 13374 opts.retprobe = strcmp(probe_type, "uretprobe") == 0 || 13375 strcmp(probe_type, "uretprobe.s") == 0; 13376 if (opts.retprobe && offset != 0) { 13377 pr_warn("prog '%s': uretprobes do not support offset specification\n", 13378 prog->name); 13379 break; 13380 } 13381 opts.func_name = func_name; 13382 *link = bpf_program__attach_uprobe_opts(prog, -1, binary_path, offset, &opts); 13383 ret = libbpf_get_error(*link); 13384 break; 13385 default: 13386 pr_warn("prog '%s': invalid format of section definition '%s'\n", prog->name, 13387 prog->sec_name); 13388 break; 13389 } 13390 free(probe_type); 13391 free(binary_path); 13392 free(func_name); 13393 13394 return ret; 13395 } 13396 13397 struct bpf_link *bpf_program__attach_uprobe(const struct bpf_program *prog, 13398 bool retprobe, pid_t pid, 13399 const char *binary_path, 13400 size_t func_offset) 13401 { 13402 DECLARE_LIBBPF_OPTS(bpf_uprobe_opts, opts, .retprobe = retprobe); 13403 13404 return bpf_program__attach_uprobe_opts(prog, pid, binary_path, func_offset, &opts); 13405 } 13406 13407 struct bpf_link *bpf_program__attach_usdt(const struct bpf_program *prog, 13408 pid_t pid, const char *binary_path, 13409 const char *usdt_provider, const char *usdt_name, 13410 const struct bpf_usdt_opts *opts) 13411 { 13412 char resolved_path[512]; 13413 struct bpf_object *obj = prog->obj; 13414 struct bpf_link *link; 13415 __u64 usdt_cookie; 13416 int err; 13417 13418 if (!OPTS_VALID(opts, bpf_uprobe_opts)) 13419 return libbpf_err_ptr(-EINVAL); 13420 13421 if (bpf_program__fd(prog) < 0) { 13422 pr_warn("prog '%s': can't attach BPF program without FD (was it loaded?)\n", 13423 prog->name); 13424 return libbpf_err_ptr(-EINVAL); 13425 } 13426 13427 if (!binary_path) 13428 return libbpf_err_ptr(-EINVAL); 13429 13430 if (!strchr(binary_path, '/')) { 13431 err = resolve_full_path(binary_path, resolved_path, sizeof(resolved_path)); 13432 if (err) { 13433 pr_warn("prog '%s': failed to resolve full path for '%s': %s\n", 13434 prog->name, binary_path, errstr(err)); 13435 return libbpf_err_ptr(err); 13436 } 13437 binary_path = resolved_path; 13438 } 13439 13440 /* USDT manager is instantiated lazily on first USDT attach. It will 13441 * be destroyed together with BPF object in bpf_object__close(). 13442 */ 13443 if (IS_ERR(obj->usdt_man)) 13444 return libbpf_ptr(obj->usdt_man); 13445 if (!obj->usdt_man) { 13446 obj->usdt_man = usdt_manager_new(obj); 13447 if (IS_ERR(obj->usdt_man)) 13448 return libbpf_ptr(obj->usdt_man); 13449 } 13450 13451 usdt_cookie = OPTS_GET(opts, usdt_cookie, 0); 13452 link = usdt_manager_attach_usdt(obj->usdt_man, prog, pid, binary_path, 13453 usdt_provider, usdt_name, usdt_cookie); 13454 err = libbpf_get_error(link); 13455 if (err) 13456 return libbpf_err_ptr(err); 13457 return link; 13458 } 13459 13460 static int attach_usdt(const struct bpf_program *prog, long cookie, struct bpf_link **link) 13461 { 13462 char *path = NULL, *provider = NULL, *name = NULL; 13463 const char *sec_name; 13464 int n, err; 13465 13466 sec_name = bpf_program__section_name(prog); 13467 if (strcmp(sec_name, "usdt") == 0) { 13468 /* no auto-attach for just SEC("usdt") */ 13469 *link = NULL; 13470 return 0; 13471 } 13472 13473 n = sscanf(sec_name, "usdt/%m[^:]:%m[^:]:%m[^:]", &path, &provider, &name); 13474 if (n != 3) { 13475 pr_warn("invalid section '%s', expected SEC(\"usdt/<path>:<provider>:<name>\")\n", 13476 sec_name); 13477 err = -EINVAL; 13478 } else { 13479 *link = bpf_program__attach_usdt(prog, -1 /* any process */, path, 13480 provider, name, NULL); 13481 err = libbpf_get_error(*link); 13482 } 13483 free(path); 13484 free(provider); 13485 free(name); 13486 return err; 13487 } 13488 13489 static int determine_tracepoint_id(const char *tp_category, 13490 const char *tp_name) 13491 { 13492 char file[PATH_MAX]; 13493 int ret; 13494 13495 ret = snprintf(file, sizeof(file), "%s/events/%s/%s/id", 13496 tracefs_path(), tp_category, tp_name); 13497 if (ret < 0) 13498 return -errno; 13499 if (ret >= sizeof(file)) { 13500 pr_debug("tracepoint %s/%s path is too long\n", 13501 tp_category, tp_name); 13502 return -E2BIG; 13503 } 13504 return parse_uint_from_file(file, "%d\n"); 13505 } 13506 13507 static int perf_event_open_tracepoint(const char *tp_category, 13508 const char *tp_name) 13509 { 13510 const size_t attr_sz = sizeof(struct perf_event_attr); 13511 struct perf_event_attr attr; 13512 int tp_id, pfd, err; 13513 13514 tp_id = determine_tracepoint_id(tp_category, tp_name); 13515 if (tp_id < 0) { 13516 pr_warn("failed to determine tracepoint '%s/%s' perf event ID: %s\n", 13517 tp_category, tp_name, 13518 errstr(tp_id)); 13519 return tp_id; 13520 } 13521 13522 memset(&attr, 0, attr_sz); 13523 attr.type = PERF_TYPE_TRACEPOINT; 13524 attr.size = attr_sz; 13525 attr.config = tp_id; 13526 13527 pfd = syscall(__NR_perf_event_open, &attr, -1 /* pid */, 0 /* cpu */, 13528 -1 /* group_fd */, PERF_FLAG_FD_CLOEXEC); 13529 if (pfd < 0) { 13530 err = -errno; 13531 pr_warn("tracepoint '%s/%s' perf_event_open() failed: %s\n", 13532 tp_category, tp_name, 13533 errstr(err)); 13534 return err; 13535 } 13536 return pfd; 13537 } 13538 13539 struct bpf_link *bpf_program__attach_tracepoint_opts(const struct bpf_program *prog, 13540 const char *tp_category, 13541 const char *tp_name, 13542 const struct bpf_tracepoint_opts *opts) 13543 { 13544 DECLARE_LIBBPF_OPTS(bpf_perf_event_opts, pe_opts); 13545 struct bpf_link *link; 13546 int pfd, err; 13547 13548 if (!OPTS_VALID(opts, bpf_tracepoint_opts)) 13549 return libbpf_err_ptr(-EINVAL); 13550 13551 pe_opts.bpf_cookie = OPTS_GET(opts, bpf_cookie, 0); 13552 13553 pfd = perf_event_open_tracepoint(tp_category, tp_name); 13554 if (pfd < 0) { 13555 pr_warn("prog '%s': failed to create tracepoint '%s/%s' perf event: %s\n", 13556 prog->name, tp_category, tp_name, 13557 errstr(pfd)); 13558 return libbpf_err_ptr(pfd); 13559 } 13560 link = bpf_program__attach_perf_event_opts(prog, pfd, &pe_opts); 13561 err = libbpf_get_error(link); 13562 if (err) { 13563 close(pfd); 13564 pr_warn("prog '%s': failed to attach to tracepoint '%s/%s': %s\n", 13565 prog->name, tp_category, tp_name, 13566 errstr(err)); 13567 return libbpf_err_ptr(err); 13568 } 13569 return link; 13570 } 13571 13572 struct bpf_link *bpf_program__attach_tracepoint(const struct bpf_program *prog, 13573 const char *tp_category, 13574 const char *tp_name) 13575 { 13576 return bpf_program__attach_tracepoint_opts(prog, tp_category, tp_name, NULL); 13577 } 13578 13579 /* 13580 * Match section name against a prefix array. Returns pointer past 13581 * "prefix/" on match, empty string for bare sections (exact prefix 13582 * match), or NULL if no prefix matches. 13583 */ 13584 static const char *sec_name_match_prefix(const char *sec_name, 13585 const char *const *prefixes, 13586 size_t n) 13587 { 13588 size_t i; 13589 13590 for (i = 0; i < n; i++) { 13591 size_t pfx_len; 13592 13593 if (!str_has_pfx(sec_name, prefixes[i])) 13594 continue; 13595 13596 pfx_len = strlen(prefixes[i]); 13597 if (sec_name[pfx_len] == '\0') 13598 return sec_name + pfx_len; 13599 13600 if (sec_name[pfx_len] != '/' || sec_name[pfx_len + 1] == '\0') 13601 continue; 13602 13603 return sec_name + pfx_len + 1; 13604 } 13605 return NULL; 13606 } 13607 13608 static int attach_tp(const struct bpf_program *prog, long cookie, struct bpf_link **link) 13609 { 13610 static const char *const prefixes[] = { 13611 "tp.s", 13612 "tp", 13613 "tracepoint.s", 13614 "tracepoint", 13615 }; 13616 char *sec_name, *tp_cat, *tp_name; 13617 const char *match; 13618 13619 *link = NULL; 13620 13621 match = sec_name_match_prefix(prog->sec_name, prefixes, ARRAY_SIZE(prefixes)); 13622 if (!match) { 13623 pr_warn("prog '%s': invalid section name '%s'\n", prog->name, prog->sec_name); 13624 return -EINVAL; 13625 } 13626 if (!match[0]) /* bare section name no autoattach */ 13627 return 0; 13628 13629 sec_name = strdup(prog->sec_name); 13630 if (!sec_name) 13631 return -ENOMEM; 13632 13633 tp_cat = sec_name + (match - prog->sec_name); 13634 tp_name = strchr(tp_cat, '/'); 13635 if (!tp_name) { 13636 free(sec_name); 13637 return -EINVAL; 13638 } 13639 *tp_name = '\0'; 13640 tp_name++; 13641 13642 *link = bpf_program__attach_tracepoint(prog, tp_cat, tp_name); 13643 free(sec_name); 13644 return libbpf_get_error(*link); 13645 } 13646 13647 struct bpf_link * 13648 bpf_program__attach_raw_tracepoint_opts(const struct bpf_program *prog, 13649 const char *tp_name, 13650 struct bpf_raw_tracepoint_opts *opts) 13651 { 13652 LIBBPF_OPTS(bpf_raw_tp_opts, raw_opts); 13653 struct bpf_link *link; 13654 int prog_fd, pfd; 13655 13656 if (!OPTS_VALID(opts, bpf_raw_tracepoint_opts)) 13657 return libbpf_err_ptr(-EINVAL); 13658 13659 prog_fd = bpf_program__fd(prog); 13660 if (prog_fd < 0) { 13661 pr_warn("prog '%s': can't attach before loaded\n", prog->name); 13662 return libbpf_err_ptr(-EINVAL); 13663 } 13664 13665 link = calloc(1, sizeof(*link)); 13666 if (!link) 13667 return libbpf_err_ptr(-ENOMEM); 13668 link->detach = &bpf_link__detach_fd; 13669 13670 raw_opts.tp_name = tp_name; 13671 raw_opts.cookie = OPTS_GET(opts, cookie, 0); 13672 pfd = bpf_raw_tracepoint_open_opts(prog_fd, &raw_opts); 13673 if (pfd < 0) { 13674 pfd = -errno; 13675 free(link); 13676 pr_warn("prog '%s': failed to attach to raw tracepoint '%s': %s\n", 13677 prog->name, tp_name, errstr(pfd)); 13678 return libbpf_err_ptr(pfd); 13679 } 13680 link->fd = pfd; 13681 return link; 13682 } 13683 13684 struct bpf_link *bpf_program__attach_raw_tracepoint(const struct bpf_program *prog, 13685 const char *tp_name) 13686 { 13687 return bpf_program__attach_raw_tracepoint_opts(prog, tp_name, NULL); 13688 } 13689 13690 static int attach_raw_tp(const struct bpf_program *prog, long cookie, struct bpf_link **link) 13691 { 13692 static const char *const prefixes[] = { 13693 "raw_tp", 13694 "raw_tracepoint", 13695 "raw_tp.w", 13696 "raw_tracepoint.w", 13697 "raw_tp.s", 13698 "raw_tracepoint.s", 13699 }; 13700 const char *match; 13701 13702 *link = NULL; 13703 13704 match = sec_name_match_prefix(prog->sec_name, prefixes, ARRAY_SIZE(prefixes)); 13705 if (!match) { 13706 pr_warn("prog '%s': invalid section name '%s'\n", prog->name, prog->sec_name); 13707 return -EINVAL; 13708 } 13709 if (!match[0]) 13710 return 0; 13711 13712 *link = bpf_program__attach_raw_tracepoint(prog, match); 13713 return libbpf_get_error(*link); 13714 } 13715 13716 /* Common logic for all BPF program types that attach to a btf_id */ 13717 static struct bpf_link *bpf_program__attach_btf_id(const struct bpf_program *prog, 13718 const struct bpf_trace_opts *opts) 13719 { 13720 LIBBPF_OPTS(bpf_link_create_opts, link_opts); 13721 struct bpf_link *link; 13722 int prog_fd, pfd; 13723 13724 if (!OPTS_VALID(opts, bpf_trace_opts)) 13725 return libbpf_err_ptr(-EINVAL); 13726 13727 prog_fd = bpf_program__fd(prog); 13728 if (prog_fd < 0) { 13729 pr_warn("prog '%s': can't attach before loaded\n", prog->name); 13730 return libbpf_err_ptr(-EINVAL); 13731 } 13732 13733 link = calloc(1, sizeof(*link)); 13734 if (!link) 13735 return libbpf_err_ptr(-ENOMEM); 13736 link->detach = &bpf_link__detach_fd; 13737 13738 /* libbpf is smart enough to redirect to BPF_RAW_TRACEPOINT_OPEN on old kernels */ 13739 link_opts.tracing.cookie = OPTS_GET(opts, cookie, 0); 13740 pfd = bpf_link_create(prog_fd, 0, bpf_program__expected_attach_type(prog), &link_opts); 13741 if (pfd < 0) { 13742 pfd = -errno; 13743 free(link); 13744 pr_warn("prog '%s': failed to attach: %s\n", 13745 prog->name, errstr(pfd)); 13746 return libbpf_err_ptr(pfd); 13747 } 13748 link->fd = pfd; 13749 return link; 13750 } 13751 13752 struct bpf_link *bpf_program__attach_trace(const struct bpf_program *prog) 13753 { 13754 return bpf_program__attach_btf_id(prog, NULL); 13755 } 13756 13757 struct bpf_link *bpf_program__attach_trace_opts(const struct bpf_program *prog, 13758 const struct bpf_trace_opts *opts) 13759 { 13760 return bpf_program__attach_btf_id(prog, opts); 13761 } 13762 13763 struct bpf_link *bpf_program__attach_lsm(const struct bpf_program *prog) 13764 { 13765 return bpf_program__attach_btf_id(prog, NULL); 13766 } 13767 13768 static int attach_trace(const struct bpf_program *prog, long cookie, struct bpf_link **link) 13769 { 13770 *link = bpf_program__attach_trace(prog); 13771 return libbpf_get_error(*link); 13772 } 13773 13774 static int attach_lsm(const struct bpf_program *prog, long cookie, struct bpf_link **link) 13775 { 13776 *link = bpf_program__attach_lsm(prog); 13777 return libbpf_get_error(*link); 13778 } 13779 13780 static struct bpf_link * 13781 bpf_program_attach_fd(const struct bpf_program *prog, 13782 int target_fd, const char *target_name, 13783 const struct bpf_link_create_opts *opts) 13784 { 13785 enum bpf_attach_type attach_type; 13786 struct bpf_link *link; 13787 int prog_fd, link_fd; 13788 13789 prog_fd = bpf_program__fd(prog); 13790 if (prog_fd < 0) { 13791 pr_warn("prog '%s': can't attach before loaded\n", prog->name); 13792 return libbpf_err_ptr(-EINVAL); 13793 } 13794 13795 link = calloc(1, sizeof(*link)); 13796 if (!link) 13797 return libbpf_err_ptr(-ENOMEM); 13798 link->detach = &bpf_link__detach_fd; 13799 13800 attach_type = bpf_program__expected_attach_type(prog); 13801 link_fd = bpf_link_create(prog_fd, target_fd, attach_type, opts); 13802 if (link_fd < 0) { 13803 link_fd = -errno; 13804 free(link); 13805 pr_warn("prog '%s': failed to attach to %s: %s\n", 13806 prog->name, target_name, 13807 errstr(link_fd)); 13808 return libbpf_err_ptr(link_fd); 13809 } 13810 link->fd = link_fd; 13811 return link; 13812 } 13813 13814 struct bpf_link * 13815 bpf_program__attach_cgroup(const struct bpf_program *prog, int cgroup_fd) 13816 { 13817 return bpf_program_attach_fd(prog, cgroup_fd, "cgroup", NULL); 13818 } 13819 13820 struct bpf_link * 13821 bpf_program__attach_netns(const struct bpf_program *prog, int netns_fd) 13822 { 13823 return bpf_program_attach_fd(prog, netns_fd, "netns", NULL); 13824 } 13825 13826 struct bpf_link * 13827 bpf_program__attach_sockmap(const struct bpf_program *prog, int map_fd) 13828 { 13829 return bpf_program_attach_fd(prog, map_fd, "sockmap", NULL); 13830 } 13831 13832 struct bpf_link *bpf_program__attach_xdp(const struct bpf_program *prog, int ifindex) 13833 { 13834 /* target_fd/target_ifindex use the same field in LINK_CREATE */ 13835 return bpf_program_attach_fd(prog, ifindex, "xdp", NULL); 13836 } 13837 13838 struct bpf_link * 13839 bpf_program__attach_cgroup_opts(const struct bpf_program *prog, int cgroup_fd, 13840 const struct bpf_cgroup_opts *opts) 13841 { 13842 LIBBPF_OPTS(bpf_link_create_opts, link_create_opts); 13843 __u32 relative_id; 13844 int relative_fd; 13845 13846 if (!OPTS_VALID(opts, bpf_cgroup_opts)) 13847 return libbpf_err_ptr(-EINVAL); 13848 13849 relative_id = OPTS_GET(opts, relative_id, 0); 13850 relative_fd = OPTS_GET(opts, relative_fd, 0); 13851 13852 if (relative_fd && relative_id) { 13853 pr_warn("prog '%s': relative_fd and relative_id cannot be set at the same time\n", 13854 prog->name); 13855 return libbpf_err_ptr(-EINVAL); 13856 } 13857 13858 link_create_opts.cgroup.expected_revision = OPTS_GET(opts, expected_revision, 0); 13859 link_create_opts.cgroup.relative_fd = relative_fd; 13860 link_create_opts.cgroup.relative_id = relative_id; 13861 link_create_opts.flags = OPTS_GET(opts, flags, 0); 13862 13863 return bpf_program_attach_fd(prog, cgroup_fd, "cgroup", &link_create_opts); 13864 } 13865 13866 struct bpf_link * 13867 bpf_program__attach_tcx(const struct bpf_program *prog, int ifindex, 13868 const struct bpf_tcx_opts *opts) 13869 { 13870 LIBBPF_OPTS(bpf_link_create_opts, link_create_opts); 13871 __u32 relative_id; 13872 int relative_fd; 13873 13874 if (!OPTS_VALID(opts, bpf_tcx_opts)) 13875 return libbpf_err_ptr(-EINVAL); 13876 13877 relative_id = OPTS_GET(opts, relative_id, 0); 13878 relative_fd = OPTS_GET(opts, relative_fd, 0); 13879 13880 /* validate we don't have unexpected combinations of non-zero fields */ 13881 if (!ifindex) { 13882 pr_warn("prog '%s': target netdevice ifindex cannot be zero\n", 13883 prog->name); 13884 return libbpf_err_ptr(-EINVAL); 13885 } 13886 if (relative_fd && relative_id) { 13887 pr_warn("prog '%s': relative_fd and relative_id cannot be set at the same time\n", 13888 prog->name); 13889 return libbpf_err_ptr(-EINVAL); 13890 } 13891 13892 link_create_opts.tcx.expected_revision = OPTS_GET(opts, expected_revision, 0); 13893 link_create_opts.tcx.relative_fd = relative_fd; 13894 link_create_opts.tcx.relative_id = relative_id; 13895 link_create_opts.flags = OPTS_GET(opts, flags, 0); 13896 13897 /* target_fd/target_ifindex use the same field in LINK_CREATE */ 13898 return bpf_program_attach_fd(prog, ifindex, "tcx", &link_create_opts); 13899 } 13900 13901 struct bpf_link * 13902 bpf_program__attach_netkit(const struct bpf_program *prog, int ifindex, 13903 const struct bpf_netkit_opts *opts) 13904 { 13905 LIBBPF_OPTS(bpf_link_create_opts, link_create_opts); 13906 __u32 relative_id; 13907 int relative_fd; 13908 13909 if (!OPTS_VALID(opts, bpf_netkit_opts)) 13910 return libbpf_err_ptr(-EINVAL); 13911 13912 relative_id = OPTS_GET(opts, relative_id, 0); 13913 relative_fd = OPTS_GET(opts, relative_fd, 0); 13914 13915 /* validate we don't have unexpected combinations of non-zero fields */ 13916 if (!ifindex) { 13917 pr_warn("prog '%s': target netdevice ifindex cannot be zero\n", 13918 prog->name); 13919 return libbpf_err_ptr(-EINVAL); 13920 } 13921 if (relative_fd && relative_id) { 13922 pr_warn("prog '%s': relative_fd and relative_id cannot be set at the same time\n", 13923 prog->name); 13924 return libbpf_err_ptr(-EINVAL); 13925 } 13926 13927 link_create_opts.netkit.expected_revision = OPTS_GET(opts, expected_revision, 0); 13928 link_create_opts.netkit.relative_fd = relative_fd; 13929 link_create_opts.netkit.relative_id = relative_id; 13930 link_create_opts.flags = OPTS_GET(opts, flags, 0); 13931 13932 return bpf_program_attach_fd(prog, ifindex, "netkit", &link_create_opts); 13933 } 13934 13935 struct bpf_link *bpf_program__attach_freplace(const struct bpf_program *prog, 13936 int target_fd, 13937 const char *attach_func_name) 13938 { 13939 int btf_id; 13940 13941 if (!!target_fd != !!attach_func_name) { 13942 pr_warn("prog '%s': supply none or both of target_fd and attach_func_name\n", 13943 prog->name); 13944 return libbpf_err_ptr(-EINVAL); 13945 } 13946 13947 if (prog->type != BPF_PROG_TYPE_EXT) { 13948 pr_warn("prog '%s': only BPF_PROG_TYPE_EXT can attach as freplace\n", 13949 prog->name); 13950 return libbpf_err_ptr(-EINVAL); 13951 } 13952 13953 if (target_fd) { 13954 LIBBPF_OPTS(bpf_link_create_opts, target_opts); 13955 13956 btf_id = libbpf_find_prog_btf_id(attach_func_name, target_fd, prog->obj->token_fd); 13957 if (btf_id < 0) 13958 return libbpf_err_ptr(btf_id); 13959 13960 target_opts.target_btf_id = btf_id; 13961 13962 return bpf_program_attach_fd(prog, target_fd, "freplace", 13963 &target_opts); 13964 } else { 13965 /* no target, so use raw_tracepoint_open for compatibility 13966 * with old kernels 13967 */ 13968 return bpf_program__attach_trace(prog); 13969 } 13970 } 13971 13972 struct bpf_link * 13973 bpf_program__attach_iter(const struct bpf_program *prog, 13974 const struct bpf_iter_attach_opts *opts) 13975 { 13976 DECLARE_LIBBPF_OPTS(bpf_link_create_opts, link_create_opts); 13977 struct bpf_link *link; 13978 int prog_fd, link_fd; 13979 __u32 target_fd = 0; 13980 13981 if (!OPTS_VALID(opts, bpf_iter_attach_opts)) 13982 return libbpf_err_ptr(-EINVAL); 13983 13984 link_create_opts.iter_info = OPTS_GET(opts, link_info, (void *)0); 13985 link_create_opts.iter_info_len = OPTS_GET(opts, link_info_len, 0); 13986 13987 prog_fd = bpf_program__fd(prog); 13988 if (prog_fd < 0) { 13989 pr_warn("prog '%s': can't attach before loaded\n", prog->name); 13990 return libbpf_err_ptr(-EINVAL); 13991 } 13992 13993 link = calloc(1, sizeof(*link)); 13994 if (!link) 13995 return libbpf_err_ptr(-ENOMEM); 13996 link->detach = &bpf_link__detach_fd; 13997 13998 link_fd = bpf_link_create(prog_fd, target_fd, BPF_TRACE_ITER, 13999 &link_create_opts); 14000 if (link_fd < 0) { 14001 link_fd = -errno; 14002 free(link); 14003 pr_warn("prog '%s': failed to attach to iterator: %s\n", 14004 prog->name, errstr(link_fd)); 14005 return libbpf_err_ptr(link_fd); 14006 } 14007 link->fd = link_fd; 14008 return link; 14009 } 14010 14011 static int attach_iter(const struct bpf_program *prog, long cookie, struct bpf_link **link) 14012 { 14013 *link = bpf_program__attach_iter(prog, NULL); 14014 return libbpf_get_error(*link); 14015 } 14016 14017 struct bpf_link *bpf_program__attach_netfilter(const struct bpf_program *prog, 14018 const struct bpf_netfilter_opts *opts) 14019 { 14020 LIBBPF_OPTS(bpf_link_create_opts, lopts); 14021 struct bpf_link *link; 14022 int prog_fd, link_fd; 14023 14024 if (!OPTS_VALID(opts, bpf_netfilter_opts)) 14025 return libbpf_err_ptr(-EINVAL); 14026 14027 prog_fd = bpf_program__fd(prog); 14028 if (prog_fd < 0) { 14029 pr_warn("prog '%s': can't attach before loaded\n", prog->name); 14030 return libbpf_err_ptr(-EINVAL); 14031 } 14032 14033 link = calloc(1, sizeof(*link)); 14034 if (!link) 14035 return libbpf_err_ptr(-ENOMEM); 14036 14037 link->detach = &bpf_link__detach_fd; 14038 14039 lopts.netfilter.pf = OPTS_GET(opts, pf, 0); 14040 lopts.netfilter.hooknum = OPTS_GET(opts, hooknum, 0); 14041 lopts.netfilter.priority = OPTS_GET(opts, priority, 0); 14042 lopts.netfilter.flags = OPTS_GET(opts, flags, 0); 14043 14044 link_fd = bpf_link_create(prog_fd, 0, BPF_NETFILTER, &lopts); 14045 if (link_fd < 0) { 14046 link_fd = -errno; 14047 free(link); 14048 pr_warn("prog '%s': failed to attach to netfilter: %s\n", 14049 prog->name, errstr(link_fd)); 14050 return libbpf_err_ptr(link_fd); 14051 } 14052 link->fd = link_fd; 14053 14054 return link; 14055 } 14056 14057 struct bpf_link *bpf_program__attach(const struct bpf_program *prog) 14058 { 14059 struct bpf_link *link = NULL; 14060 int err; 14061 14062 if (!prog->sec_def || !prog->sec_def->prog_attach_fn) 14063 return libbpf_err_ptr(-EOPNOTSUPP); 14064 14065 if (bpf_program__fd(prog) < 0) { 14066 pr_warn("prog '%s': can't attach BPF program without FD (was it loaded?)\n", 14067 prog->name); 14068 return libbpf_err_ptr(-EINVAL); 14069 } 14070 14071 err = prog->sec_def->prog_attach_fn(prog, prog->sec_def->cookie, &link); 14072 if (err) 14073 return libbpf_err_ptr(err); 14074 14075 /* When calling bpf_program__attach() explicitly, auto-attach support 14076 * is expected to work, so NULL returned link is considered an error. 14077 * This is different for skeleton's attach, see comment in 14078 * bpf_object__attach_skeleton(). 14079 */ 14080 if (!link) 14081 return libbpf_err_ptr(-EOPNOTSUPP); 14082 14083 return link; 14084 } 14085 14086 struct bpf_link_struct_ops { 14087 struct bpf_link link; 14088 int map_fd; 14089 }; 14090 14091 static int bpf_link__detach_struct_ops(struct bpf_link *link) 14092 { 14093 struct bpf_link_struct_ops *st_link; 14094 __u32 zero = 0; 14095 14096 st_link = container_of(link, struct bpf_link_struct_ops, link); 14097 14098 if (st_link->map_fd < 0) 14099 /* w/o a real link */ 14100 return bpf_map_delete_elem(link->fd, &zero); 14101 14102 return close(link->fd); 14103 } 14104 14105 struct bpf_link *bpf_map__attach_struct_ops(const struct bpf_map *map) 14106 { 14107 struct bpf_link_struct_ops *link; 14108 __u32 zero = 0; 14109 int err, fd; 14110 14111 if (!bpf_map__is_struct_ops(map)) { 14112 pr_warn("map '%s': can't attach non-struct_ops map\n", map->name); 14113 return libbpf_err_ptr(-EINVAL); 14114 } 14115 14116 if (map->fd < 0) { 14117 pr_warn("map '%s': can't attach BPF map without FD (was it created?)\n", map->name); 14118 return libbpf_err_ptr(-EINVAL); 14119 } 14120 14121 link = calloc(1, sizeof(*link)); 14122 if (!link) 14123 return libbpf_err_ptr(-EINVAL); 14124 14125 /* kern_vdata should be prepared during the loading phase. */ 14126 err = bpf_map_update_elem(map->fd, &zero, map->st_ops->kern_vdata, 0); 14127 /* It can be EBUSY if the map has been used to create or 14128 * update a link before. We don't allow updating the value of 14129 * a struct_ops once it is set. That ensures that the value 14130 * never changed. So, it is safe to skip EBUSY. 14131 */ 14132 if (err && (!(map->def.map_flags & BPF_F_LINK) || err != -EBUSY)) { 14133 free(link); 14134 return libbpf_err_ptr(err); 14135 } 14136 14137 link->link.detach = bpf_link__detach_struct_ops; 14138 14139 if (!(map->def.map_flags & BPF_F_LINK)) { 14140 /* w/o a real link */ 14141 link->link.fd = map->fd; 14142 link->map_fd = -1; 14143 return &link->link; 14144 } 14145 14146 fd = bpf_link_create(map->fd, 0, BPF_STRUCT_OPS, NULL); 14147 if (fd < 0) { 14148 free(link); 14149 return libbpf_err_ptr(fd); 14150 } 14151 14152 link->link.fd = fd; 14153 link->map_fd = map->fd; 14154 14155 return &link->link; 14156 } 14157 14158 /* 14159 * Swap the back struct_ops of a link with a new struct_ops map. 14160 */ 14161 int bpf_link__update_map(struct bpf_link *link, const struct bpf_map *map) 14162 { 14163 struct bpf_link_struct_ops *st_ops_link; 14164 __u32 zero = 0; 14165 int err; 14166 14167 if (!bpf_map__is_struct_ops(map)) 14168 return libbpf_err(-EINVAL); 14169 14170 if (map->fd < 0) { 14171 pr_warn("map '%s': can't use BPF map without FD (was it created?)\n", map->name); 14172 return libbpf_err(-EINVAL); 14173 } 14174 14175 st_ops_link = container_of(link, struct bpf_link_struct_ops, link); 14176 /* Ensure the type of a link is correct */ 14177 if (st_ops_link->map_fd < 0) 14178 return libbpf_err(-EINVAL); 14179 14180 err = bpf_map_update_elem(map->fd, &zero, map->st_ops->kern_vdata, 0); 14181 /* It can be EBUSY if the map has been used to create or 14182 * update a link before. We don't allow updating the value of 14183 * a struct_ops once it is set. That ensures that the value 14184 * never changed. So, it is safe to skip EBUSY. 14185 */ 14186 if (err && err != -EBUSY) 14187 return err; 14188 14189 err = bpf_link_update(link->fd, map->fd, NULL); 14190 if (err < 0) 14191 return err; 14192 14193 st_ops_link->map_fd = map->fd; 14194 14195 return 0; 14196 } 14197 14198 typedef enum bpf_perf_event_ret (*bpf_perf_event_print_t)(struct perf_event_header *hdr, 14199 void *private_data); 14200 14201 static enum bpf_perf_event_ret 14202 perf_event_read_simple(void *mmap_mem, size_t mmap_size, size_t page_size, 14203 void **copy_mem, size_t *copy_size, 14204 bpf_perf_event_print_t fn, void *private_data) 14205 { 14206 struct perf_event_mmap_page *header = mmap_mem; 14207 __u64 data_head = ring_buffer_read_head(header); 14208 __u64 data_tail = header->data_tail; 14209 void *base = ((__u8 *)header) + page_size; 14210 int ret = LIBBPF_PERF_EVENT_CONT; 14211 struct perf_event_header *ehdr; 14212 size_t ehdr_size; 14213 14214 while (data_head != data_tail) { 14215 ehdr = base + (data_tail & (mmap_size - 1)); 14216 ehdr_size = ehdr->size; 14217 14218 if (((void *)ehdr) + ehdr_size > base + mmap_size) { 14219 void *copy_start = ehdr; 14220 size_t len_first = base + mmap_size - copy_start; 14221 size_t len_second = ehdr_size - len_first; 14222 14223 if (*copy_size < ehdr_size) { 14224 free(*copy_mem); 14225 *copy_mem = malloc(ehdr_size); 14226 if (!*copy_mem) { 14227 *copy_size = 0; 14228 ret = LIBBPF_PERF_EVENT_ERROR; 14229 break; 14230 } 14231 *copy_size = ehdr_size; 14232 } 14233 14234 memcpy(*copy_mem, copy_start, len_first); 14235 memcpy(*copy_mem + len_first, base, len_second); 14236 ehdr = *copy_mem; 14237 } 14238 14239 ret = fn(ehdr, private_data); 14240 data_tail += ehdr_size; 14241 if (ret != LIBBPF_PERF_EVENT_CONT) 14242 break; 14243 } 14244 14245 ring_buffer_write_tail(header, data_tail); 14246 return libbpf_err(ret); 14247 } 14248 14249 struct perf_buffer; 14250 14251 struct perf_buffer_params { 14252 struct perf_event_attr *attr; 14253 /* if event_cb is specified, it takes precedence */ 14254 perf_buffer_event_fn event_cb; 14255 /* sample_cb and lost_cb are higher-level common-case callbacks */ 14256 perf_buffer_sample_fn sample_cb; 14257 perf_buffer_lost_fn lost_cb; 14258 void *ctx; 14259 int cpu_cnt; 14260 int *cpus; 14261 int *map_keys; 14262 }; 14263 14264 struct perf_cpu_buf { 14265 struct perf_buffer *pb; 14266 void *base; /* mmap()'ed memory */ 14267 void *buf; /* for reconstructing segmented data */ 14268 size_t buf_size; 14269 int fd; 14270 int cpu; 14271 int map_key; 14272 }; 14273 14274 struct perf_buffer { 14275 perf_buffer_event_fn event_cb; 14276 perf_buffer_sample_fn sample_cb; 14277 perf_buffer_lost_fn lost_cb; 14278 void *ctx; /* passed into callbacks */ 14279 14280 size_t page_size; 14281 size_t mmap_size; 14282 struct perf_cpu_buf **cpu_bufs; 14283 struct epoll_event *events; 14284 int cpu_cnt; /* number of allocated CPU buffers */ 14285 int epoll_fd; /* perf event FD */ 14286 int map_fd; /* BPF_MAP_TYPE_PERF_EVENT_ARRAY BPF map FD */ 14287 }; 14288 14289 static void perf_buffer__free_cpu_buf(struct perf_buffer *pb, 14290 struct perf_cpu_buf *cpu_buf) 14291 { 14292 if (!cpu_buf) 14293 return; 14294 if (cpu_buf->base && 14295 munmap(cpu_buf->base, pb->mmap_size + pb->page_size)) 14296 pr_warn("failed to munmap cpu_buf #%d\n", cpu_buf->cpu); 14297 if (cpu_buf->fd >= 0) { 14298 ioctl(cpu_buf->fd, PERF_EVENT_IOC_DISABLE, 0); 14299 close(cpu_buf->fd); 14300 } 14301 free(cpu_buf->buf); 14302 free(cpu_buf); 14303 } 14304 14305 void perf_buffer__free(struct perf_buffer *pb) 14306 { 14307 int i; 14308 14309 if (IS_ERR_OR_NULL(pb)) 14310 return; 14311 if (pb->cpu_bufs) { 14312 for (i = 0; i < pb->cpu_cnt; i++) { 14313 struct perf_cpu_buf *cpu_buf = pb->cpu_bufs[i]; 14314 14315 if (!cpu_buf) 14316 continue; 14317 14318 bpf_map_delete_elem(pb->map_fd, &cpu_buf->map_key); 14319 perf_buffer__free_cpu_buf(pb, cpu_buf); 14320 } 14321 free(pb->cpu_bufs); 14322 } 14323 if (pb->epoll_fd >= 0) 14324 close(pb->epoll_fd); 14325 free(pb->events); 14326 free(pb); 14327 } 14328 14329 static struct perf_cpu_buf * 14330 perf_buffer__open_cpu_buf(struct perf_buffer *pb, struct perf_event_attr *attr, 14331 int cpu, int map_key) 14332 { 14333 struct perf_cpu_buf *cpu_buf; 14334 int err; 14335 14336 cpu_buf = calloc(1, sizeof(*cpu_buf)); 14337 if (!cpu_buf) 14338 return ERR_PTR(-ENOMEM); 14339 14340 cpu_buf->pb = pb; 14341 cpu_buf->cpu = cpu; 14342 cpu_buf->map_key = map_key; 14343 14344 cpu_buf->fd = syscall(__NR_perf_event_open, attr, -1 /* pid */, cpu, 14345 -1, PERF_FLAG_FD_CLOEXEC); 14346 if (cpu_buf->fd < 0) { 14347 err = -errno; 14348 pr_warn("failed to open perf buffer event on cpu #%d: %s\n", 14349 cpu, errstr(err)); 14350 goto error; 14351 } 14352 14353 cpu_buf->base = mmap(NULL, pb->mmap_size + pb->page_size, 14354 PROT_READ | PROT_WRITE, MAP_SHARED, 14355 cpu_buf->fd, 0); 14356 if (cpu_buf->base == MAP_FAILED) { 14357 cpu_buf->base = NULL; 14358 err = -errno; 14359 pr_warn("failed to mmap perf buffer on cpu #%d: %s\n", 14360 cpu, errstr(err)); 14361 goto error; 14362 } 14363 14364 if (ioctl(cpu_buf->fd, PERF_EVENT_IOC_ENABLE, 0) < 0) { 14365 err = -errno; 14366 pr_warn("failed to enable perf buffer event on cpu #%d: %s\n", 14367 cpu, errstr(err)); 14368 goto error; 14369 } 14370 14371 return cpu_buf; 14372 14373 error: 14374 perf_buffer__free_cpu_buf(pb, cpu_buf); 14375 return (struct perf_cpu_buf *)ERR_PTR(err); 14376 } 14377 14378 static struct perf_buffer *__perf_buffer__new(int map_fd, size_t page_cnt, 14379 struct perf_buffer_params *p); 14380 14381 struct perf_buffer *perf_buffer__new(int map_fd, size_t page_cnt, 14382 perf_buffer_sample_fn sample_cb, 14383 perf_buffer_lost_fn lost_cb, 14384 void *ctx, 14385 const struct perf_buffer_opts *opts) 14386 { 14387 const size_t attr_sz = sizeof(struct perf_event_attr); 14388 struct perf_buffer_params p = {}; 14389 struct perf_event_attr attr; 14390 __u32 sample_period; 14391 14392 if (!OPTS_VALID(opts, perf_buffer_opts)) 14393 return libbpf_err_ptr(-EINVAL); 14394 14395 sample_period = OPTS_GET(opts, sample_period, 1); 14396 if (!sample_period) 14397 sample_period = 1; 14398 14399 memset(&attr, 0, attr_sz); 14400 attr.size = attr_sz; 14401 attr.config = PERF_COUNT_SW_BPF_OUTPUT; 14402 attr.type = PERF_TYPE_SOFTWARE; 14403 attr.sample_type = PERF_SAMPLE_RAW; 14404 attr.wakeup_events = sample_period; 14405 14406 p.attr = &attr; 14407 p.sample_cb = sample_cb; 14408 p.lost_cb = lost_cb; 14409 p.ctx = ctx; 14410 14411 return libbpf_ptr(__perf_buffer__new(map_fd, page_cnt, &p)); 14412 } 14413 14414 struct perf_buffer *perf_buffer__new_raw(int map_fd, size_t page_cnt, 14415 struct perf_event_attr *attr, 14416 perf_buffer_event_fn event_cb, void *ctx, 14417 const struct perf_buffer_raw_opts *opts) 14418 { 14419 struct perf_buffer_params p = {}; 14420 14421 if (!attr) 14422 return libbpf_err_ptr(-EINVAL); 14423 14424 if (!OPTS_VALID(opts, perf_buffer_raw_opts)) 14425 return libbpf_err_ptr(-EINVAL); 14426 14427 p.attr = attr; 14428 p.event_cb = event_cb; 14429 p.ctx = ctx; 14430 p.cpu_cnt = OPTS_GET(opts, cpu_cnt, 0); 14431 p.cpus = OPTS_GET(opts, cpus, NULL); 14432 p.map_keys = OPTS_GET(opts, map_keys, NULL); 14433 14434 return libbpf_ptr(__perf_buffer__new(map_fd, page_cnt, &p)); 14435 } 14436 14437 static struct perf_buffer *__perf_buffer__new(int map_fd, size_t page_cnt, 14438 struct perf_buffer_params *p) 14439 { 14440 const char *online_cpus_file = "/sys/devices/system/cpu/online"; 14441 struct bpf_map_info map; 14442 struct perf_buffer *pb; 14443 bool *online = NULL; 14444 __u32 map_info_len; 14445 int err, i, j, n; 14446 14447 if (page_cnt == 0 || (page_cnt & (page_cnt - 1))) { 14448 pr_warn("page count should be power of two, but is %zu\n", 14449 page_cnt); 14450 return ERR_PTR(-EINVAL); 14451 } 14452 14453 /* best-effort sanity checks */ 14454 memset(&map, 0, sizeof(map)); 14455 map_info_len = sizeof(map); 14456 err = bpf_map_get_info_by_fd(map_fd, &map, &map_info_len); 14457 if (err) { 14458 err = -errno; 14459 /* if BPF_OBJ_GET_INFO_BY_FD is supported, will return 14460 * -EBADFD, -EFAULT, or -E2BIG on real error 14461 */ 14462 if (err != -EINVAL) { 14463 pr_warn("failed to get map info for map FD %d: %s\n", 14464 map_fd, errstr(err)); 14465 return ERR_PTR(err); 14466 } 14467 pr_debug("failed to get map info for FD %d; API not supported? Ignoring...\n", 14468 map_fd); 14469 } else { 14470 if (map.type != BPF_MAP_TYPE_PERF_EVENT_ARRAY) { 14471 pr_warn("map '%s' should be BPF_MAP_TYPE_PERF_EVENT_ARRAY\n", 14472 map.name); 14473 return ERR_PTR(-EINVAL); 14474 } 14475 } 14476 14477 pb = calloc(1, sizeof(*pb)); 14478 if (!pb) 14479 return ERR_PTR(-ENOMEM); 14480 14481 pb->event_cb = p->event_cb; 14482 pb->sample_cb = p->sample_cb; 14483 pb->lost_cb = p->lost_cb; 14484 pb->ctx = p->ctx; 14485 14486 pb->page_size = getpagesize(); 14487 pb->mmap_size = pb->page_size * page_cnt; 14488 pb->map_fd = map_fd; 14489 14490 pb->epoll_fd = epoll_create1(EPOLL_CLOEXEC); 14491 if (pb->epoll_fd < 0) { 14492 err = -errno; 14493 pr_warn("failed to create epoll instance: %s\n", 14494 errstr(err)); 14495 goto error; 14496 } 14497 14498 if (p->cpu_cnt > 0) { 14499 pb->cpu_cnt = p->cpu_cnt; 14500 } else { 14501 pb->cpu_cnt = libbpf_num_possible_cpus(); 14502 if (pb->cpu_cnt < 0) { 14503 err = pb->cpu_cnt; 14504 goto error; 14505 } 14506 if (map.max_entries && map.max_entries < pb->cpu_cnt) 14507 pb->cpu_cnt = map.max_entries; 14508 } 14509 14510 pb->events = calloc(pb->cpu_cnt, sizeof(*pb->events)); 14511 if (!pb->events) { 14512 err = -ENOMEM; 14513 pr_warn("failed to allocate events: out of memory\n"); 14514 goto error; 14515 } 14516 pb->cpu_bufs = calloc(pb->cpu_cnt, sizeof(*pb->cpu_bufs)); 14517 if (!pb->cpu_bufs) { 14518 err = -ENOMEM; 14519 pr_warn("failed to allocate buffers: out of memory\n"); 14520 goto error; 14521 } 14522 14523 err = parse_cpu_mask_file(online_cpus_file, &online, &n); 14524 if (err) { 14525 pr_warn("failed to get online CPU mask: %s\n", errstr(err)); 14526 goto error; 14527 } 14528 14529 for (i = 0, j = 0; i < pb->cpu_cnt; i++) { 14530 struct perf_cpu_buf *cpu_buf; 14531 int cpu, map_key; 14532 14533 cpu = p->cpu_cnt > 0 ? p->cpus[i] : i; 14534 map_key = p->cpu_cnt > 0 ? p->map_keys[i] : i; 14535 14536 /* in case user didn't explicitly requested particular CPUs to 14537 * be attached to, skip offline/not present CPUs 14538 */ 14539 if (p->cpu_cnt <= 0 && (cpu >= n || !online[cpu])) 14540 continue; 14541 14542 cpu_buf = perf_buffer__open_cpu_buf(pb, p->attr, cpu, map_key); 14543 if (IS_ERR(cpu_buf)) { 14544 err = PTR_ERR(cpu_buf); 14545 goto error; 14546 } 14547 14548 pb->cpu_bufs[j] = cpu_buf; 14549 14550 err = bpf_map_update_elem(pb->map_fd, &map_key, 14551 &cpu_buf->fd, 0); 14552 if (err) { 14553 err = -errno; 14554 pr_warn("failed to set cpu #%d, key %d -> perf FD %d: %s\n", 14555 cpu, map_key, cpu_buf->fd, 14556 errstr(err)); 14557 goto error; 14558 } 14559 14560 pb->events[j].events = EPOLLIN; 14561 pb->events[j].data.ptr = cpu_buf; 14562 if (epoll_ctl(pb->epoll_fd, EPOLL_CTL_ADD, cpu_buf->fd, 14563 &pb->events[j]) < 0) { 14564 err = -errno; 14565 pr_warn("failed to epoll_ctl cpu #%d perf FD %d: %s\n", 14566 cpu, cpu_buf->fd, 14567 errstr(err)); 14568 goto error; 14569 } 14570 j++; 14571 } 14572 pb->cpu_cnt = j; 14573 free(online); 14574 14575 return pb; 14576 14577 error: 14578 free(online); 14579 if (pb) 14580 perf_buffer__free(pb); 14581 return ERR_PTR(err); 14582 } 14583 14584 struct perf_sample_raw { 14585 struct perf_event_header header; 14586 uint32_t size; 14587 char data[]; 14588 }; 14589 14590 struct perf_sample_lost { 14591 struct perf_event_header header; 14592 uint64_t id; 14593 uint64_t lost; 14594 uint64_t sample_id; 14595 }; 14596 14597 static enum bpf_perf_event_ret 14598 perf_buffer__process_record(struct perf_event_header *e, void *ctx) 14599 { 14600 struct perf_cpu_buf *cpu_buf = ctx; 14601 struct perf_buffer *pb = cpu_buf->pb; 14602 void *data = e; 14603 14604 /* user wants full control over parsing perf event */ 14605 if (pb->event_cb) 14606 return pb->event_cb(pb->ctx, cpu_buf->cpu, e); 14607 14608 switch (e->type) { 14609 case PERF_RECORD_SAMPLE: { 14610 struct perf_sample_raw *s = data; 14611 14612 if (pb->sample_cb) 14613 pb->sample_cb(pb->ctx, cpu_buf->cpu, s->data, s->size); 14614 break; 14615 } 14616 case PERF_RECORD_LOST: { 14617 struct perf_sample_lost *s = data; 14618 14619 if (pb->lost_cb) 14620 pb->lost_cb(pb->ctx, cpu_buf->cpu, s->lost); 14621 break; 14622 } 14623 default: 14624 pr_warn("unknown perf sample type %u\n", e->type); 14625 return LIBBPF_PERF_EVENT_ERROR; 14626 } 14627 return LIBBPF_PERF_EVENT_CONT; 14628 } 14629 14630 static int perf_buffer__process_records(struct perf_buffer *pb, 14631 struct perf_cpu_buf *cpu_buf) 14632 { 14633 enum bpf_perf_event_ret ret; 14634 14635 ret = perf_event_read_simple(cpu_buf->base, pb->mmap_size, 14636 pb->page_size, &cpu_buf->buf, 14637 &cpu_buf->buf_size, 14638 perf_buffer__process_record, cpu_buf); 14639 if (ret != LIBBPF_PERF_EVENT_CONT) 14640 return ret; 14641 return 0; 14642 } 14643 14644 int perf_buffer__epoll_fd(const struct perf_buffer *pb) 14645 { 14646 return pb->epoll_fd; 14647 } 14648 14649 int perf_buffer__poll(struct perf_buffer *pb, int timeout_ms) 14650 { 14651 int i, cnt, err; 14652 14653 cnt = epoll_wait(pb->epoll_fd, pb->events, pb->cpu_cnt, timeout_ms); 14654 if (cnt < 0) 14655 return -errno; 14656 14657 for (i = 0; i < cnt; i++) { 14658 struct perf_cpu_buf *cpu_buf = pb->events[i].data.ptr; 14659 14660 err = perf_buffer__process_records(pb, cpu_buf); 14661 if (err) { 14662 pr_warn("error while processing records: %s\n", errstr(err)); 14663 return libbpf_err(err); 14664 } 14665 } 14666 return cnt; 14667 } 14668 14669 /* Return number of PERF_EVENT_ARRAY map slots set up by this perf_buffer 14670 * manager. 14671 */ 14672 size_t perf_buffer__buffer_cnt(const struct perf_buffer *pb) 14673 { 14674 return pb->cpu_cnt; 14675 } 14676 14677 /* 14678 * Return perf_event FD of a ring buffer in *buf_idx* slot of 14679 * PERF_EVENT_ARRAY BPF map. This FD can be polled for new data using 14680 * select()/poll()/epoll() Linux syscalls. 14681 */ 14682 int perf_buffer__buffer_fd(const struct perf_buffer *pb, size_t buf_idx) 14683 { 14684 struct perf_cpu_buf *cpu_buf; 14685 14686 if (buf_idx >= pb->cpu_cnt) 14687 return libbpf_err(-EINVAL); 14688 14689 cpu_buf = pb->cpu_bufs[buf_idx]; 14690 if (!cpu_buf) 14691 return libbpf_err(-ENOENT); 14692 14693 return cpu_buf->fd; 14694 } 14695 14696 int perf_buffer__buffer(struct perf_buffer *pb, int buf_idx, void **buf, size_t *buf_size) 14697 { 14698 struct perf_cpu_buf *cpu_buf; 14699 14700 if (buf_idx >= pb->cpu_cnt) 14701 return libbpf_err(-EINVAL); 14702 14703 cpu_buf = pb->cpu_bufs[buf_idx]; 14704 if (!cpu_buf) 14705 return libbpf_err(-ENOENT); 14706 14707 *buf = cpu_buf->base; 14708 *buf_size = pb->mmap_size; 14709 return 0; 14710 } 14711 14712 /* 14713 * Consume data from perf ring buffer corresponding to slot *buf_idx* in 14714 * PERF_EVENT_ARRAY BPF map without waiting/polling. If there is no data to 14715 * consume, do nothing and return success. 14716 * Returns: 14717 * - 0 on success; 14718 * - <0 on failure. 14719 */ 14720 int perf_buffer__consume_buffer(struct perf_buffer *pb, size_t buf_idx) 14721 { 14722 struct perf_cpu_buf *cpu_buf; 14723 14724 if (buf_idx >= pb->cpu_cnt) 14725 return libbpf_err(-EINVAL); 14726 14727 cpu_buf = pb->cpu_bufs[buf_idx]; 14728 if (!cpu_buf) 14729 return libbpf_err(-ENOENT); 14730 14731 return perf_buffer__process_records(pb, cpu_buf); 14732 } 14733 14734 int perf_buffer__consume(struct perf_buffer *pb) 14735 { 14736 int i, err; 14737 14738 for (i = 0; i < pb->cpu_cnt; i++) { 14739 struct perf_cpu_buf *cpu_buf = pb->cpu_bufs[i]; 14740 14741 if (!cpu_buf) 14742 continue; 14743 14744 err = perf_buffer__process_records(pb, cpu_buf); 14745 if (err) { 14746 pr_warn("perf_buffer: failed to process records in buffer #%d: %s\n", 14747 i, errstr(err)); 14748 return libbpf_err(err); 14749 } 14750 } 14751 return 0; 14752 } 14753 14754 int bpf_program__set_attach_target(struct bpf_program *prog, 14755 int attach_prog_fd, 14756 const char *attach_func_name) 14757 { 14758 int btf_obj_fd = 0, btf_id = 0, err; 14759 14760 if (!prog || attach_prog_fd < 0) 14761 return libbpf_err(-EINVAL); 14762 14763 if (prog->obj->state >= OBJ_LOADED) 14764 return libbpf_err(-EINVAL); 14765 14766 if (attach_prog_fd && !attach_func_name) { 14767 /* Store attach_prog_fd. The BTF ID will be resolved later during 14768 * the normal object/program load phase. 14769 */ 14770 prog->attach_prog_fd = attach_prog_fd; 14771 return 0; 14772 } 14773 14774 if (attach_prog_fd) { 14775 btf_id = libbpf_find_prog_btf_id(attach_func_name, 14776 attach_prog_fd, prog->obj->token_fd); 14777 if (btf_id < 0) 14778 return libbpf_err(btf_id); 14779 } else { 14780 if (!attach_func_name) 14781 return libbpf_err(-EINVAL); 14782 14783 /* load btf_vmlinux, if not yet */ 14784 err = bpf_object__load_vmlinux_btf(prog->obj, true); 14785 if (err) 14786 return libbpf_err(err); 14787 err = find_kernel_btf_id(prog->obj, attach_func_name, 14788 prog->expected_attach_type, 14789 &btf_obj_fd, &btf_id); 14790 if (err) 14791 return libbpf_err(err); 14792 } 14793 14794 prog->attach_btf_id = btf_id; 14795 prog->attach_btf_obj_fd = btf_obj_fd; 14796 prog->attach_prog_fd = attach_prog_fd; 14797 return 0; 14798 } 14799 14800 int bpf_program__assoc_struct_ops(struct bpf_program *prog, struct bpf_map *map, 14801 struct bpf_prog_assoc_struct_ops_opts *opts) 14802 { 14803 int prog_fd, map_fd; 14804 14805 prog_fd = bpf_program__fd(prog); 14806 if (prog_fd < 0) { 14807 pr_warn("prog '%s': can't associate BPF program without FD (was it loaded?)\n", 14808 prog->name); 14809 return libbpf_err(-EINVAL); 14810 } 14811 14812 if (prog->type == BPF_PROG_TYPE_STRUCT_OPS) { 14813 pr_warn("prog '%s': can't associate struct_ops program\n", prog->name); 14814 return libbpf_err(-EINVAL); 14815 } 14816 14817 map_fd = bpf_map__fd(map); 14818 if (map_fd < 0) { 14819 pr_warn("map '%s': can't associate BPF map without FD (was it created?)\n", map->name); 14820 return libbpf_err(-EINVAL); 14821 } 14822 14823 if (!bpf_map__is_struct_ops(map)) { 14824 pr_warn("map '%s': can't associate non-struct_ops map\n", map->name); 14825 return libbpf_err(-EINVAL); 14826 } 14827 14828 return bpf_prog_assoc_struct_ops(prog_fd, map_fd, opts); 14829 } 14830 14831 int parse_cpu_mask_str(const char *s, bool **mask, int *mask_sz) 14832 { 14833 int err = 0, n, len, start, end = -1; 14834 bool *tmp; 14835 14836 *mask = NULL; 14837 *mask_sz = 0; 14838 14839 /* Each sub string separated by ',' has format \d+-\d+ or \d+ */ 14840 while (*s) { 14841 if (*s == ',' || *s == '\n') { 14842 s++; 14843 continue; 14844 } 14845 n = sscanf(s, "%d%n-%d%n", &start, &len, &end, &len); 14846 if (n <= 0 || n > 2) { 14847 pr_warn("Failed to get CPU range %s: %d\n", s, n); 14848 err = -EINVAL; 14849 goto cleanup; 14850 } else if (n == 1) { 14851 end = start; 14852 } 14853 if (start < 0 || start > end) { 14854 pr_warn("Invalid CPU range [%d,%d] in %s\n", 14855 start, end, s); 14856 err = -EINVAL; 14857 goto cleanup; 14858 } 14859 tmp = realloc(*mask, end + 1); 14860 if (!tmp) { 14861 err = -ENOMEM; 14862 goto cleanup; 14863 } 14864 *mask = tmp; 14865 memset(tmp + *mask_sz, 0, start - *mask_sz); 14866 memset(tmp + start, 1, end - start + 1); 14867 *mask_sz = end + 1; 14868 s += len; 14869 } 14870 if (!*mask_sz) { 14871 pr_warn("Empty CPU range\n"); 14872 return -EINVAL; 14873 } 14874 return 0; 14875 cleanup: 14876 free(*mask); 14877 *mask = NULL; 14878 return err; 14879 } 14880 14881 int parse_cpu_mask_file(const char *fcpu, bool **mask, int *mask_sz) 14882 { 14883 int fd, err = 0, len; 14884 char buf[128]; 14885 14886 fd = open(fcpu, O_RDONLY | O_CLOEXEC); 14887 if (fd < 0) { 14888 err = -errno; 14889 pr_warn("Failed to open cpu mask file %s: %s\n", fcpu, errstr(err)); 14890 return err; 14891 } 14892 len = read(fd, buf, sizeof(buf)); 14893 close(fd); 14894 if (len <= 0) { 14895 err = len ? -errno : -EINVAL; 14896 pr_warn("Failed to read cpu mask from %s: %s\n", fcpu, errstr(err)); 14897 return err; 14898 } 14899 if (len >= sizeof(buf)) { 14900 pr_warn("CPU mask is too big in file %s\n", fcpu); 14901 return -E2BIG; 14902 } 14903 buf[len] = '\0'; 14904 14905 return parse_cpu_mask_str(buf, mask, mask_sz); 14906 } 14907 14908 int libbpf_num_possible_cpus(void) 14909 { 14910 static const char *fcpu = "/sys/devices/system/cpu/possible"; 14911 static int cpus; 14912 int err, n, i, tmp_cpus; 14913 bool *mask; 14914 14915 tmp_cpus = READ_ONCE(cpus); 14916 if (tmp_cpus > 0) 14917 return tmp_cpus; 14918 14919 err = parse_cpu_mask_file(fcpu, &mask, &n); 14920 if (err) 14921 return libbpf_err(err); 14922 14923 tmp_cpus = 0; 14924 for (i = 0; i < n; i++) { 14925 if (mask[i]) 14926 tmp_cpus++; 14927 } 14928 free(mask); 14929 14930 WRITE_ONCE(cpus, tmp_cpus); 14931 return tmp_cpus; 14932 } 14933 14934 static int populate_skeleton_maps(const struct bpf_object *obj, 14935 struct bpf_map_skeleton *maps, 14936 size_t map_cnt, size_t map_skel_sz) 14937 { 14938 int i; 14939 14940 for (i = 0; i < map_cnt; i++) { 14941 struct bpf_map_skeleton *map_skel = (void *)maps + i * map_skel_sz; 14942 struct bpf_map **map = map_skel->map; 14943 const char *name = map_skel->name; 14944 void **mmaped = map_skel->mmaped; 14945 14946 *map = bpf_object__find_map_by_name(obj, name); 14947 if (!*map) { 14948 pr_warn("failed to find skeleton map '%s'\n", name); 14949 return -ESRCH; 14950 } 14951 14952 /* externs shouldn't be pre-setup from user code */ 14953 if (mmaped && (*map)->libbpf_type != LIBBPF_MAP_KCONFIG) 14954 *mmaped = (*map)->mmaped; 14955 } 14956 return 0; 14957 } 14958 14959 static int populate_skeleton_progs(const struct bpf_object *obj, 14960 struct bpf_prog_skeleton *progs, 14961 size_t prog_cnt, size_t prog_skel_sz) 14962 { 14963 int i; 14964 14965 for (i = 0; i < prog_cnt; i++) { 14966 struct bpf_prog_skeleton *prog_skel = (void *)progs + i * prog_skel_sz; 14967 struct bpf_program **prog = prog_skel->prog; 14968 const char *name = prog_skel->name; 14969 14970 *prog = bpf_object__find_program_by_name(obj, name); 14971 if (!*prog) { 14972 pr_warn("failed to find skeleton program '%s'\n", name); 14973 return -ESRCH; 14974 } 14975 } 14976 return 0; 14977 } 14978 14979 int bpf_object__open_skeleton(struct bpf_object_skeleton *s, 14980 const struct bpf_object_open_opts *opts) 14981 { 14982 struct bpf_object *obj; 14983 int err; 14984 14985 obj = bpf_object_open(NULL, s->data, s->data_sz, s->name, opts); 14986 if (IS_ERR(obj)) { 14987 err = PTR_ERR(obj); 14988 pr_warn("failed to initialize skeleton BPF object '%s': %s\n", 14989 s->name, errstr(err)); 14990 return libbpf_err(err); 14991 } 14992 14993 *s->obj = obj; 14994 err = populate_skeleton_maps(obj, s->maps, s->map_cnt, s->map_skel_sz); 14995 if (err) { 14996 pr_warn("failed to populate skeleton maps for '%s': %s\n", s->name, errstr(err)); 14997 return libbpf_err(err); 14998 } 14999 15000 err = populate_skeleton_progs(obj, s->progs, s->prog_cnt, s->prog_skel_sz); 15001 if (err) { 15002 pr_warn("failed to populate skeleton progs for '%s': %s\n", s->name, errstr(err)); 15003 return libbpf_err(err); 15004 } 15005 15006 return 0; 15007 } 15008 15009 int bpf_object__open_subskeleton(struct bpf_object_subskeleton *s) 15010 { 15011 int err, len, var_idx, i; 15012 const char *var_name; 15013 const struct bpf_map *map; 15014 struct btf *btf; 15015 __u32 map_type_id; 15016 const struct btf_type *map_type, *var_type; 15017 const struct bpf_var_skeleton *var_skel; 15018 struct btf_var_secinfo *var; 15019 15020 if (!s->obj) 15021 return libbpf_err(-EINVAL); 15022 15023 btf = bpf_object__btf(s->obj); 15024 if (!btf) { 15025 pr_warn("subskeletons require BTF at runtime (object %s)\n", 15026 bpf_object__name(s->obj)); 15027 return libbpf_err(-errno); 15028 } 15029 15030 err = populate_skeleton_maps(s->obj, s->maps, s->map_cnt, s->map_skel_sz); 15031 if (err) { 15032 pr_warn("failed to populate subskeleton maps: %s\n", errstr(err)); 15033 return libbpf_err(err); 15034 } 15035 15036 err = populate_skeleton_progs(s->obj, s->progs, s->prog_cnt, s->prog_skel_sz); 15037 if (err) { 15038 pr_warn("failed to populate subskeleton maps: %s\n", errstr(err)); 15039 return libbpf_err(err); 15040 } 15041 15042 for (var_idx = 0; var_idx < s->var_cnt; var_idx++) { 15043 var_skel = (void *)s->vars + var_idx * s->var_skel_sz; 15044 map = *var_skel->map; 15045 map_type_id = bpf_map__btf_value_type_id(map); 15046 map_type = btf__type_by_id(btf, map_type_id); 15047 15048 if (!btf_is_datasec(map_type)) { 15049 pr_warn("type for map '%1$s' is not a datasec: %2$s\n", 15050 bpf_map__name(map), 15051 __btf_kind_str(btf_kind(map_type))); 15052 return libbpf_err(-EINVAL); 15053 } 15054 15055 len = btf_vlen(map_type); 15056 var = btf_var_secinfos(map_type); 15057 for (i = 0; i < len; i++, var++) { 15058 var_type = btf__type_by_id(btf, var->type); 15059 var_name = btf__name_by_offset(btf, var_type->name_off); 15060 if (strcmp(var_name, var_skel->name) == 0) { 15061 *var_skel->addr = map->mmaped + var->offset; 15062 break; 15063 } 15064 } 15065 } 15066 return 0; 15067 } 15068 15069 void bpf_object__destroy_subskeleton(struct bpf_object_subskeleton *s) 15070 { 15071 if (!s) 15072 return; 15073 free(s->maps); 15074 free(s->progs); 15075 free(s->vars); 15076 free(s); 15077 } 15078 15079 int bpf_object__load_skeleton(struct bpf_object_skeleton *s) 15080 { 15081 int i, err; 15082 15083 err = bpf_object__load(*s->obj); 15084 if (err) { 15085 pr_warn("failed to load BPF skeleton '%s': %s\n", s->name, errstr(err)); 15086 return libbpf_err(err); 15087 } 15088 15089 for (i = 0; i < s->map_cnt; i++) { 15090 struct bpf_map_skeleton *map_skel = (void *)s->maps + i * s->map_skel_sz; 15091 struct bpf_map *map = *map_skel->map; 15092 15093 if (!map_skel->mmaped) 15094 continue; 15095 15096 if (map->def.type == BPF_MAP_TYPE_ARENA) 15097 *map_skel->mmaped = map->mmaped + map->obj->arena_data_off; 15098 else 15099 *map_skel->mmaped = map->mmaped; 15100 } 15101 15102 return 0; 15103 } 15104 15105 int bpf_object__attach_skeleton(struct bpf_object_skeleton *s) 15106 { 15107 int i, err; 15108 15109 for (i = 0; i < s->prog_cnt; i++) { 15110 struct bpf_prog_skeleton *prog_skel = (void *)s->progs + i * s->prog_skel_sz; 15111 struct bpf_program *prog = *prog_skel->prog; 15112 struct bpf_link **link = prog_skel->link; 15113 15114 if (!prog->autoload || !prog->autoattach) 15115 continue; 15116 15117 /* auto-attaching not supported for this program */ 15118 if (!prog->sec_def || !prog->sec_def->prog_attach_fn) 15119 continue; 15120 15121 /* if user already set the link manually, don't attempt auto-attach */ 15122 if (*link) 15123 continue; 15124 15125 err = prog->sec_def->prog_attach_fn(prog, prog->sec_def->cookie, link); 15126 if (err) { 15127 pr_warn("prog '%s': failed to auto-attach: %s\n", 15128 bpf_program__name(prog), errstr(err)); 15129 return libbpf_err(err); 15130 } 15131 15132 /* It's possible that for some SEC() definitions auto-attach 15133 * is supported in some cases (e.g., if definition completely 15134 * specifies target information), but is not in other cases. 15135 * SEC("uprobe") is one such case. If user specified target 15136 * binary and function name, such BPF program can be 15137 * auto-attached. But if not, it shouldn't trigger skeleton's 15138 * attach to fail. It should just be skipped. 15139 * attach_fn signals such case with returning 0 (no error) and 15140 * setting link to NULL. 15141 */ 15142 } 15143 15144 15145 for (i = 0; i < s->map_cnt; i++) { 15146 struct bpf_map_skeleton *map_skel = (void *)s->maps + i * s->map_skel_sz; 15147 struct bpf_map *map = *map_skel->map; 15148 struct bpf_link **link; 15149 15150 if (!map->autocreate || !map->autoattach) 15151 continue; 15152 15153 /* only struct_ops maps can be attached */ 15154 if (!bpf_map__is_struct_ops(map)) 15155 continue; 15156 15157 /* skeleton is created with earlier version of bpftool, notify user */ 15158 if (s->map_skel_sz < offsetofend(struct bpf_map_skeleton, link)) { 15159 pr_warn("map '%s': BPF skeleton version is old, skipping map auto-attachment...\n", 15160 bpf_map__name(map)); 15161 continue; 15162 } 15163 15164 link = map_skel->link; 15165 if (!link) { 15166 pr_warn("map '%s': BPF map skeleton link is uninitialized\n", 15167 bpf_map__name(map)); 15168 continue; 15169 } 15170 15171 if (*link) 15172 continue; 15173 15174 *link = bpf_map__attach_struct_ops(map); 15175 if (!*link) { 15176 err = -errno; 15177 pr_warn("map '%s': failed to auto-attach: %s\n", 15178 bpf_map__name(map), errstr(err)); 15179 return libbpf_err(err); 15180 } 15181 } 15182 15183 return 0; 15184 } 15185 15186 void bpf_object__detach_skeleton(struct bpf_object_skeleton *s) 15187 { 15188 int i; 15189 15190 for (i = 0; i < s->prog_cnt; i++) { 15191 struct bpf_prog_skeleton *prog_skel = (void *)s->progs + i * s->prog_skel_sz; 15192 struct bpf_link **link = prog_skel->link; 15193 15194 bpf_link__destroy(*link); 15195 *link = NULL; 15196 } 15197 15198 if (s->map_skel_sz < sizeof(struct bpf_map_skeleton)) 15199 return; 15200 15201 for (i = 0; i < s->map_cnt; i++) { 15202 struct bpf_map_skeleton *map_skel = (void *)s->maps + i * s->map_skel_sz; 15203 struct bpf_link **link = map_skel->link; 15204 15205 if (link) { 15206 bpf_link__destroy(*link); 15207 *link = NULL; 15208 } 15209 } 15210 } 15211 15212 void bpf_object__destroy_skeleton(struct bpf_object_skeleton *s) 15213 { 15214 if (!s) 15215 return; 15216 15217 bpf_object__detach_skeleton(s); 15218 if (s->obj) 15219 bpf_object__close(*s->obj); 15220 free(s->maps); 15221 free(s->progs); 15222 free(s); 15223 } 15224