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e2be04c7 1/* SPDX-License-Identifier: GPL-2.0 WITH Linux-syscall-note */
daedfb22
AS
2/* Copyright (c) 2011-2014 PLUMgrid, http://plumgrid.com
3 *
4 * This program is free software; you can redistribute it and/or
5 * modify it under the terms of version 2 of the GNU General Public
6 * License as published by the Free Software Foundation.
7 */
8#ifndef _UAPI__LINUX_BPF_H__
9#define _UAPI__LINUX_BPF_H__
10
11#include <linux/types.h>
c15952dc 12#include <linux/bpf_common.h>
daedfb22
AS
13
14/* Extended instruction set based on top of classic BPF */
15
16/* instruction classes */
17#define BPF_ALU64 0x07 /* alu mode in double word width */
18
19/* ld/ldx fields */
cb5f7334 20#define BPF_DW 0x18 /* double word (64-bit) */
daedfb22
AS
21#define BPF_XADD 0xc0 /* exclusive add */
22
23/* alu/jmp fields */
24#define BPF_MOV 0xb0 /* mov reg to reg */
25#define BPF_ARSH 0xc0 /* sign extending arithmetic shift right */
26
27/* change endianness of a register */
28#define BPF_END 0xd0 /* flags for endianness conversion: */
29#define BPF_TO_LE 0x00 /* convert to little-endian */
30#define BPF_TO_BE 0x08 /* convert to big-endian */
31#define BPF_FROM_LE BPF_TO_LE
32#define BPF_FROM_BE BPF_TO_BE
33
92b31a9a 34/* jmp encodings */
daedfb22 35#define BPF_JNE 0x50 /* jump != */
92b31a9a
DB
36#define BPF_JLT 0xa0 /* LT is unsigned, '<' */
37#define BPF_JLE 0xb0 /* LE is unsigned, '<=' */
daedfb22
AS
38#define BPF_JSGT 0x60 /* SGT is signed '>', GT in x86 */
39#define BPF_JSGE 0x70 /* SGE is signed '>=', GE in x86 */
92b31a9a
DB
40#define BPF_JSLT 0xc0 /* SLT is signed, '<' */
41#define BPF_JSLE 0xd0 /* SLE is signed, '<=' */
daedfb22
AS
42#define BPF_CALL 0x80 /* function call */
43#define BPF_EXIT 0x90 /* function return */
44
45/* Register numbers */
46enum {
47 BPF_REG_0 = 0,
48 BPF_REG_1,
49 BPF_REG_2,
50 BPF_REG_3,
51 BPF_REG_4,
52 BPF_REG_5,
53 BPF_REG_6,
54 BPF_REG_7,
55 BPF_REG_8,
56 BPF_REG_9,
57 BPF_REG_10,
58 __MAX_BPF_REG,
59};
60
61/* BPF has 10 general purpose 64-bit registers and stack frame. */
62#define MAX_BPF_REG __MAX_BPF_REG
63
64struct bpf_insn {
65 __u8 code; /* opcode */
66 __u8 dst_reg:4; /* dest register */
67 __u8 src_reg:4; /* source register */
68 __s16 off; /* signed offset */
69 __s32 imm; /* signed immediate constant */
70};
71
b95a5c4d
DM
72/* Key of an a BPF_MAP_TYPE_LPM_TRIE entry */
73struct bpf_lpm_trie_key {
74 __u32 prefixlen; /* up to 32 for AF_INET, 128 for AF_INET6 */
75 __u8 data[0]; /* Arbitrary size */
76};
77
de9cbbaa
RG
78struct bpf_cgroup_storage_key {
79 __u64 cgroup_inode_id; /* cgroup inode id */
80 __u32 attach_type; /* program attach type */
81};
82
b2197755 83/* BPF syscall commands, see bpf(2) man-page for details. */
99c55f7d 84enum bpf_cmd {
99c55f7d 85 BPF_MAP_CREATE,
db20fd2b 86 BPF_MAP_LOOKUP_ELEM,
db20fd2b 87 BPF_MAP_UPDATE_ELEM,
db20fd2b 88 BPF_MAP_DELETE_ELEM,
db20fd2b 89 BPF_MAP_GET_NEXT_KEY,
09756af4 90 BPF_PROG_LOAD,
b2197755
DB
91 BPF_OBJ_PIN,
92 BPF_OBJ_GET,
f4324551
DM
93 BPF_PROG_ATTACH,
94 BPF_PROG_DETACH,
1cf1cae9 95 BPF_PROG_TEST_RUN,
34ad5580
MKL
96 BPF_PROG_GET_NEXT_ID,
97 BPF_MAP_GET_NEXT_ID,
b16d9aa4 98 BPF_PROG_GET_FD_BY_ID,
bd5f5f4e 99 BPF_MAP_GET_FD_BY_ID,
1e270976 100 BPF_OBJ_GET_INFO_BY_FD,
468e2f64 101 BPF_PROG_QUERY,
c4f6699d 102 BPF_RAW_TRACEPOINT_OPEN,
f56a653c 103 BPF_BTF_LOAD,
78958fca 104 BPF_BTF_GET_FD_BY_ID,
41bdc4b4 105 BPF_TASK_FD_QUERY,
bd513cd0 106 BPF_MAP_LOOKUP_AND_DELETE_ELEM,
99c55f7d
AS
107};
108
109enum bpf_map_type {
110 BPF_MAP_TYPE_UNSPEC,
0f8e4bd8 111 BPF_MAP_TYPE_HASH,
28fbcfa0 112 BPF_MAP_TYPE_ARRAY,
04fd61ab 113 BPF_MAP_TYPE_PROG_ARRAY,
ea317b26 114 BPF_MAP_TYPE_PERF_EVENT_ARRAY,
824bd0ce 115 BPF_MAP_TYPE_PERCPU_HASH,
a10423b8 116 BPF_MAP_TYPE_PERCPU_ARRAY,
d5a3b1f6 117 BPF_MAP_TYPE_STACK_TRACE,
4ed8ec52 118 BPF_MAP_TYPE_CGROUP_ARRAY,
29ba732a 119 BPF_MAP_TYPE_LRU_HASH,
8f844938 120 BPF_MAP_TYPE_LRU_PERCPU_HASH,
b95a5c4d 121 BPF_MAP_TYPE_LPM_TRIE,
56f668df 122 BPF_MAP_TYPE_ARRAY_OF_MAPS,
bcc6b1b7 123 BPF_MAP_TYPE_HASH_OF_MAPS,
546ac1ff 124 BPF_MAP_TYPE_DEVMAP,
174a79ff 125 BPF_MAP_TYPE_SOCKMAP,
6710e112 126 BPF_MAP_TYPE_CPUMAP,
fbfc504a 127 BPF_MAP_TYPE_XSKMAP,
81110384 128 BPF_MAP_TYPE_SOCKHASH,
de9cbbaa 129 BPF_MAP_TYPE_CGROUP_STORAGE,
5dc4c4b7 130 BPF_MAP_TYPE_REUSEPORT_SOCKARRAY,
b741f163 131 BPF_MAP_TYPE_PERCPU_CGROUP_STORAGE,
f1a2e44a
MV
132 BPF_MAP_TYPE_QUEUE,
133 BPF_MAP_TYPE_STACK,
99c55f7d
AS
134};
135
09756af4
AS
136enum bpf_prog_type {
137 BPF_PROG_TYPE_UNSPEC,
ddd872bc 138 BPF_PROG_TYPE_SOCKET_FILTER,
2541517c 139 BPF_PROG_TYPE_KPROBE,
96be4325 140 BPF_PROG_TYPE_SCHED_CLS,
94caee8c 141 BPF_PROG_TYPE_SCHED_ACT,
98b5c2c6 142 BPF_PROG_TYPE_TRACEPOINT,
6a773a15 143 BPF_PROG_TYPE_XDP,
0515e599 144 BPF_PROG_TYPE_PERF_EVENT,
0e33661d 145 BPF_PROG_TYPE_CGROUP_SKB,
61023658 146 BPF_PROG_TYPE_CGROUP_SOCK,
3a0af8fd
TG
147 BPF_PROG_TYPE_LWT_IN,
148 BPF_PROG_TYPE_LWT_OUT,
149 BPF_PROG_TYPE_LWT_XMIT,
40304b2a 150 BPF_PROG_TYPE_SOCK_OPS,
b005fd18 151 BPF_PROG_TYPE_SK_SKB,
ebc614f6 152 BPF_PROG_TYPE_CGROUP_DEVICE,
4f738adb 153 BPF_PROG_TYPE_SK_MSG,
c4f6699d 154 BPF_PROG_TYPE_RAW_TRACEPOINT,
4fbac77d 155 BPF_PROG_TYPE_CGROUP_SOCK_ADDR,
004d4b27 156 BPF_PROG_TYPE_LWT_SEG6LOCAL,
f4364dcf 157 BPF_PROG_TYPE_LIRC_MODE2,
2dbb9b9e 158 BPF_PROG_TYPE_SK_REUSEPORT,
d58e468b 159 BPF_PROG_TYPE_FLOW_DISSECTOR,
09756af4
AS
160};
161
0e33661d
DM
162enum bpf_attach_type {
163 BPF_CGROUP_INET_INGRESS,
164 BPF_CGROUP_INET_EGRESS,
61023658 165 BPF_CGROUP_INET_SOCK_CREATE,
40304b2a 166 BPF_CGROUP_SOCK_OPS,
464bc0fd
JF
167 BPF_SK_SKB_STREAM_PARSER,
168 BPF_SK_SKB_STREAM_VERDICT,
ebc614f6 169 BPF_CGROUP_DEVICE,
4f738adb 170 BPF_SK_MSG_VERDICT,
4fbac77d
AI
171 BPF_CGROUP_INET4_BIND,
172 BPF_CGROUP_INET6_BIND,
d74bad4e
AI
173 BPF_CGROUP_INET4_CONNECT,
174 BPF_CGROUP_INET6_CONNECT,
aac3fc32
AI
175 BPF_CGROUP_INET4_POST_BIND,
176 BPF_CGROUP_INET6_POST_BIND,
1cedee13
AI
177 BPF_CGROUP_UDP4_SENDMSG,
178 BPF_CGROUP_UDP6_SENDMSG,
f4364dcf 179 BPF_LIRC_MODE2,
d58e468b 180 BPF_FLOW_DISSECTOR,
0e33661d
DM
181 __MAX_BPF_ATTACH_TYPE
182};
183
184#define MAX_BPF_ATTACH_TYPE __MAX_BPF_ATTACH_TYPE
185
324bda9e
AS
186/* cgroup-bpf attach flags used in BPF_PROG_ATTACH command
187 *
188 * NONE(default): No further bpf programs allowed in the subtree.
189 *
190 * BPF_F_ALLOW_OVERRIDE: If a sub-cgroup installs some bpf program,
191 * the program in this cgroup yields to sub-cgroup program.
192 *
193 * BPF_F_ALLOW_MULTI: If a sub-cgroup installs some bpf program,
194 * that cgroup program gets run in addition to the program in this cgroup.
195 *
196 * Only one program is allowed to be attached to a cgroup with
197 * NONE or BPF_F_ALLOW_OVERRIDE flag.
198 * Attaching another program on top of NONE or BPF_F_ALLOW_OVERRIDE will
199 * release old program and attach the new one. Attach flags has to match.
200 *
201 * Multiple programs are allowed to be attached to a cgroup with
202 * BPF_F_ALLOW_MULTI flag. They are executed in FIFO order
203 * (those that were attached first, run first)
204 * The programs of sub-cgroup are executed first, then programs of
205 * this cgroup and then programs of parent cgroup.
206 * When children program makes decision (like picking TCP CA or sock bind)
207 * parent program has a chance to override it.
208 *
209 * A cgroup with MULTI or OVERRIDE flag allows any attach flags in sub-cgroups.
210 * A cgroup with NONE doesn't allow any programs in sub-cgroups.
211 * Ex1:
212 * cgrp1 (MULTI progs A, B) ->
213 * cgrp2 (OVERRIDE prog C) ->
214 * cgrp3 (MULTI prog D) ->
215 * cgrp4 (OVERRIDE prog E) ->
216 * cgrp5 (NONE prog F)
217 * the event in cgrp5 triggers execution of F,D,A,B in that order.
218 * if prog F is detached, the execution is E,D,A,B
219 * if prog F and D are detached, the execution is E,A,B
220 * if prog F, E and D are detached, the execution is C,A,B
221 *
222 * All eligible programs are executed regardless of return code from
223 * earlier programs.
7f677633
AS
224 */
225#define BPF_F_ALLOW_OVERRIDE (1U << 0)
324bda9e 226#define BPF_F_ALLOW_MULTI (1U << 1)
7f677633 227
e07b98d9
DM
228/* If BPF_F_STRICT_ALIGNMENT is used in BPF_PROG_LOAD command, the
229 * verifier will perform strict alignment checking as if the kernel
230 * has been built with CONFIG_EFFICIENT_UNALIGNED_ACCESS not set,
231 * and NET_IP_ALIGN defined to 2.
232 */
233#define BPF_F_STRICT_ALIGNMENT (1U << 0)
234
cc8b0b92 235/* when bpf_ldimm64->src_reg == BPF_PSEUDO_MAP_FD, bpf_ldimm64->imm == fd */
f1a66f85
DB
236#define BPF_PSEUDO_MAP_FD 1
237
cc8b0b92
AS
238/* when bpf_call->src_reg == BPF_PSEUDO_CALL, bpf_call->imm == pc-relative
239 * offset to another bpf function
240 */
241#define BPF_PSEUDO_CALL 1
242
3274f520
AS
243/* flags for BPF_MAP_UPDATE_ELEM command */
244#define BPF_ANY 0 /* create new element or update existing */
245#define BPF_NOEXIST 1 /* create new element if it didn't exist */
246#define BPF_EXIST 2 /* update existing element */
247
96eabe7a 248/* flags for BPF_MAP_CREATE command */
6c905981 249#define BPF_F_NO_PREALLOC (1U << 0)
29ba732a 250/* Instead of having one common LRU list in the
8f844938 251 * BPF_MAP_TYPE_LRU_[PERCPU_]HASH map, use a percpu LRU list
29ba732a
MKL
252 * which can scale and perform better.
253 * Note, the LRU nodes (including free nodes) cannot be moved
254 * across different LRU lists.
255 */
256#define BPF_F_NO_COMMON_LRU (1U << 1)
96eabe7a
MKL
257/* Specify numa node during map creation */
258#define BPF_F_NUMA_NODE (1U << 2)
6c905981 259
cb4d2b3f
MKL
260#define BPF_OBJ_NAME_LEN 16U
261
6e71b04a
CF
262/* Flags for accessing BPF object */
263#define BPF_F_RDONLY (1U << 3)
264#define BPF_F_WRONLY (1U << 4)
265
615755a7
SL
266/* Flag for stack_map, store build_id+offset instead of pointer */
267#define BPF_F_STACK_BUILD_ID (1U << 5)
268
96b3b6c9
LB
269/* Zero-initialize hash function seed. This should only be used for testing. */
270#define BPF_F_ZERO_SEED (1U << 6)
271
2f183360
LB
272/* flags for BPF_PROG_QUERY */
273#define BPF_F_QUERY_EFFECTIVE (1U << 0)
274
615755a7
SL
275enum bpf_stack_build_id_status {
276 /* user space need an empty entry to identify end of a trace */
277 BPF_STACK_BUILD_ID_EMPTY = 0,
278 /* with valid build_id and offset */
279 BPF_STACK_BUILD_ID_VALID = 1,
280 /* couldn't get build_id, fallback to ip */
281 BPF_STACK_BUILD_ID_IP = 2,
282};
283
284#define BPF_BUILD_ID_SIZE 20
285struct bpf_stack_build_id {
286 __s32 status;
287 unsigned char build_id[BPF_BUILD_ID_SIZE];
288 union {
289 __u64 offset;
290 __u64 ip;
291 };
292};
293
99c55f7d
AS
294union bpf_attr {
295 struct { /* anonymous struct used by BPF_MAP_CREATE command */
296 __u32 map_type; /* one of enum bpf_map_type */
297 __u32 key_size; /* size of key in bytes */
298 __u32 value_size; /* size of value in bytes */
299 __u32 max_entries; /* max number of entries in a map */
96eabe7a
MKL
300 __u32 map_flags; /* BPF_MAP_CREATE related
301 * flags defined above.
302 */
56f668df 303 __u32 inner_map_fd; /* fd pointing to the inner map */
96eabe7a
MKL
304 __u32 numa_node; /* numa node (effective only if
305 * BPF_F_NUMA_NODE is set).
306 */
067cae47 307 char map_name[BPF_OBJ_NAME_LEN];
a3884572 308 __u32 map_ifindex; /* ifindex of netdev to create on */
a26ca7c9 309 __u32 btf_fd; /* fd pointing to a BTF type data */
9b2cf328
MKL
310 __u32 btf_key_type_id; /* BTF type_id of the key */
311 __u32 btf_value_type_id; /* BTF type_id of the value */
99c55f7d 312 };
db20fd2b
AS
313
314 struct { /* anonymous struct used by BPF_MAP_*_ELEM commands */
315 __u32 map_fd;
316 __aligned_u64 key;
317 union {
318 __aligned_u64 value;
319 __aligned_u64 next_key;
320 };
3274f520 321 __u64 flags;
db20fd2b 322 };
09756af4
AS
323
324 struct { /* anonymous struct used by BPF_PROG_LOAD command */
325 __u32 prog_type; /* one of enum bpf_prog_type */
326 __u32 insn_cnt;
327 __aligned_u64 insns;
328 __aligned_u64 license;
cbd35700
AS
329 __u32 log_level; /* verbosity level of verifier */
330 __u32 log_size; /* size of user buffer */
331 __aligned_u64 log_buf; /* user supplied buffer */
2541517c 332 __u32 kern_version; /* checked when prog_type=kprobe */
e07b98d9 333 __u32 prog_flags;
067cae47 334 char prog_name[BPF_OBJ_NAME_LEN];
1f6f4cb7 335 __u32 prog_ifindex; /* ifindex of netdev to prep for */
5e43f899
AI
336 /* For some prog types expected attach type must be known at
337 * load time to verify attach type specific parts of prog
338 * (context accesses, allowed helpers, etc).
339 */
340 __u32 expected_attach_type;
09756af4 341 };
b2197755
DB
342
343 struct { /* anonymous struct used by BPF_OBJ_* commands */
344 __aligned_u64 pathname;
345 __u32 bpf_fd;
6e71b04a 346 __u32 file_flags;
b2197755 347 };
f4324551
DM
348
349 struct { /* anonymous struct used by BPF_PROG_ATTACH/DETACH commands */
350 __u32 target_fd; /* container object to attach to */
351 __u32 attach_bpf_fd; /* eBPF program to attach */
352 __u32 attach_type;
7f677633 353 __u32 attach_flags;
f4324551 354 };
1cf1cae9
AS
355
356 struct { /* anonymous struct used by BPF_PROG_TEST_RUN command */
357 __u32 prog_fd;
358 __u32 retval;
359 __u32 data_size_in;
360 __u32 data_size_out;
361 __aligned_u64 data_in;
362 __aligned_u64 data_out;
363 __u32 repeat;
364 __u32 duration;
365 } test;
34ad5580 366
b16d9aa4
MKL
367 struct { /* anonymous struct used by BPF_*_GET_*_ID */
368 union {
369 __u32 start_id;
370 __u32 prog_id;
bd5f5f4e 371 __u32 map_id;
78958fca 372 __u32 btf_id;
b16d9aa4 373 };
34ad5580 374 __u32 next_id;
6e71b04a 375 __u32 open_flags;
34ad5580 376 };
1e270976
MKL
377
378 struct { /* anonymous struct used by BPF_OBJ_GET_INFO_BY_FD */
379 __u32 bpf_fd;
380 __u32 info_len;
381 __aligned_u64 info;
382 } info;
468e2f64
AS
383
384 struct { /* anonymous struct used by BPF_PROG_QUERY command */
385 __u32 target_fd; /* container object to query */
386 __u32 attach_type;
387 __u32 query_flags;
388 __u32 attach_flags;
389 __aligned_u64 prog_ids;
390 __u32 prog_cnt;
391 } query;
c4f6699d
AS
392
393 struct {
394 __u64 name;
395 __u32 prog_fd;
396 } raw_tracepoint;
f56a653c
MKL
397
398 struct { /* anonymous struct for BPF_BTF_LOAD */
399 __aligned_u64 btf;
400 __aligned_u64 btf_log_buf;
401 __u32 btf_size;
402 __u32 btf_log_size;
403 __u32 btf_log_level;
404 };
41bdc4b4
YS
405
406 struct {
407 __u32 pid; /* input: pid */
408 __u32 fd; /* input: fd */
409 __u32 flags; /* input: flags */
410 __u32 buf_len; /* input/output: buf len */
411 __aligned_u64 buf; /* input/output:
412 * tp_name for tracepoint
413 * symbol for kprobe
414 * filename for uprobe
415 */
416 __u32 prog_id; /* output: prod_id */
417 __u32 fd_type; /* output: BPF_FD_TYPE_* */
418 __u64 probe_offset; /* output: probe_offset */
419 __u64 probe_addr; /* output: probe_addr */
420 } task_fd_query;
99c55f7d
AS
421} __attribute__((aligned(8)));
422
56a092c8
QM
423/* The description below is an attempt at providing documentation to eBPF
424 * developers about the multiple available eBPF helper functions. It can be
425 * parsed and used to produce a manual page. The workflow is the following,
426 * and requires the rst2man utility:
427 *
428 * $ ./scripts/bpf_helpers_doc.py \
429 * --filename include/uapi/linux/bpf.h > /tmp/bpf-helpers.rst
430 * $ rst2man /tmp/bpf-helpers.rst > /tmp/bpf-helpers.7
431 * $ man /tmp/bpf-helpers.7
432 *
433 * Note that in order to produce this external documentation, some RST
434 * formatting is used in the descriptions to get "bold" and "italics" in
435 * manual pages. Also note that the few trailing white spaces are
436 * intentional, removing them would break paragraphs for rst2man.
437 *
438 * Start of BPF helper function descriptions:
ad4a5223
QM
439 *
440 * void *bpf_map_lookup_elem(struct bpf_map *map, const void *key)
441 * Description
442 * Perform a lookup in *map* for an entry associated to *key*.
443 * Return
444 * Map value associated to *key*, or **NULL** if no entry was
445 * found.
446 *
447 * int bpf_map_update_elem(struct bpf_map *map, const void *key, const void *value, u64 flags)
448 * Description
449 * Add or update the value of the entry associated to *key* in
450 * *map* with *value*. *flags* is one of:
451 *
452 * **BPF_NOEXIST**
453 * The entry for *key* must not exist in the map.
454 * **BPF_EXIST**
455 * The entry for *key* must already exist in the map.
456 * **BPF_ANY**
457 * No condition on the existence of the entry for *key*.
458 *
459 * Flag value **BPF_NOEXIST** cannot be used for maps of types
460 * **BPF_MAP_TYPE_ARRAY** or **BPF_MAP_TYPE_PERCPU_ARRAY** (all
461 * elements always exist), the helper would return an error.
462 * Return
463 * 0 on success, or a negative error in case of failure.
464 *
465 * int bpf_map_delete_elem(struct bpf_map *map, const void *key)
466 * Description
467 * Delete entry with *key* from *map*.
468 * Return
469 * 0 on success, or a negative error in case of failure.
470 *
f1a2e44a
MV
471 * int bpf_map_push_elem(struct bpf_map *map, const void *value, u64 flags)
472 * Description
473 * Push an element *value* in *map*. *flags* is one of:
474 *
475 * **BPF_EXIST**
476 * If the queue/stack is full, the oldest element is removed to
477 * make room for this.
478 * Return
479 * 0 on success, or a negative error in case of failure.
480 *
481 * int bpf_map_pop_elem(struct bpf_map *map, void *value)
482 * Description
483 * Pop an element from *map*.
484 * Return
485 * 0 on success, or a negative error in case of failure.
486 *
487 * int bpf_map_peek_elem(struct bpf_map *map, void *value)
488 * Description
489 * Get an element from *map* without removing it.
490 * Return
491 * 0 on success, or a negative error in case of failure.
492 *
ad4a5223
QM
493 * int bpf_probe_read(void *dst, u32 size, const void *src)
494 * Description
495 * For tracing programs, safely attempt to read *size* bytes from
496 * address *src* and store the data in *dst*.
497 * Return
498 * 0 on success, or a negative error in case of failure.
499 *
500 * u64 bpf_ktime_get_ns(void)
501 * Description
502 * Return the time elapsed since system boot, in nanoseconds.
503 * Return
504 * Current *ktime*.
505 *
506 * int bpf_trace_printk(const char *fmt, u32 fmt_size, ...)
507 * Description
508 * This helper is a "printk()-like" facility for debugging. It
509 * prints a message defined by format *fmt* (of size *fmt_size*)
510 * to file *\/sys/kernel/debug/tracing/trace* from DebugFS, if
511 * available. It can take up to three additional **u64**
512 * arguments (as an eBPF helpers, the total number of arguments is
513 * limited to five).
514 *
515 * Each time the helper is called, it appends a line to the trace.
516 * The format of the trace is customizable, and the exact output
517 * one will get depends on the options set in
518 * *\/sys/kernel/debug/tracing/trace_options* (see also the
519 * *README* file under the same directory). However, it usually
520 * defaults to something like:
521 *
522 * ::
523 *
524 * telnet-470 [001] .N.. 419421.045894: 0x00000001: <formatted msg>
525 *
526 * In the above:
527 *
528 * * ``telnet`` is the name of the current task.
529 * * ``470`` is the PID of the current task.
530 * * ``001`` is the CPU number on which the task is
531 * running.
532 * * In ``.N..``, each character refers to a set of
533 * options (whether irqs are enabled, scheduling
534 * options, whether hard/softirqs are running, level of
535 * preempt_disabled respectively). **N** means that
536 * **TIF_NEED_RESCHED** and **PREEMPT_NEED_RESCHED**
537 * are set.
538 * * ``419421.045894`` is a timestamp.
539 * * ``0x00000001`` is a fake value used by BPF for the
540 * instruction pointer register.
541 * * ``<formatted msg>`` is the message formatted with
542 * *fmt*.
543 *
544 * The conversion specifiers supported by *fmt* are similar, but
545 * more limited than for printk(). They are **%d**, **%i**,
546 * **%u**, **%x**, **%ld**, **%li**, **%lu**, **%lx**, **%lld**,
547 * **%lli**, **%llu**, **%llx**, **%p**, **%s**. No modifier (size
548 * of field, padding with zeroes, etc.) is available, and the
549 * helper will return **-EINVAL** (but print nothing) if it
550 * encounters an unknown specifier.
551 *
552 * Also, note that **bpf_trace_printk**\ () is slow, and should
553 * only be used for debugging purposes. For this reason, a notice
554 * bloc (spanning several lines) is printed to kernel logs and
555 * states that the helper should not be used "for production use"
556 * the first time this helper is used (or more precisely, when
557 * **trace_printk**\ () buffers are allocated). For passing values
558 * to user space, perf events should be preferred.
559 * Return
560 * The number of bytes written to the buffer, or a negative error
561 * in case of failure.
562 *
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563 * u32 bpf_get_prandom_u32(void)
564 * Description
565 * Get a pseudo-random number.
566 *
567 * From a security point of view, this helper uses its own
568 * pseudo-random internal state, and cannot be used to infer the
569 * seed of other random functions in the kernel. However, it is
570 * essential to note that the generator used by the helper is not
571 * cryptographically secure.
572 * Return
573 * A random 32-bit unsigned value.
574 *
575 * u32 bpf_get_smp_processor_id(void)
576 * Description
577 * Get the SMP (symmetric multiprocessing) processor id. Note that
578 * all programs run with preemption disabled, which means that the
579 * SMP processor id is stable during all the execution of the
580 * program.
581 * Return
582 * The SMP id of the processor running the program.
583 *
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584 * int bpf_skb_store_bytes(struct sk_buff *skb, u32 offset, const void *from, u32 len, u64 flags)
585 * Description
586 * Store *len* bytes from address *from* into the packet
587 * associated to *skb*, at *offset*. *flags* are a combination of
588 * **BPF_F_RECOMPUTE_CSUM** (automatically recompute the
589 * checksum for the packet after storing the bytes) and
590 * **BPF_F_INVALIDATE_HASH** (set *skb*\ **->hash**, *skb*\
591 * **->swhash** and *skb*\ **->l4hash** to 0).
592 *
593 * A call to this helper is susceptible to change the underlaying
594 * packet buffer. Therefore, at load time, all checks on pointers
595 * previously done by the verifier are invalidated and must be
596 * performed again, if the helper is used in combination with
597 * direct packet access.
598 * Return
599 * 0 on success, or a negative error in case of failure.
600 *
601 * int bpf_l3_csum_replace(struct sk_buff *skb, u32 offset, u64 from, u64 to, u64 size)
602 * Description
603 * Recompute the layer 3 (e.g. IP) checksum for the packet
604 * associated to *skb*. Computation is incremental, so the helper
605 * must know the former value of the header field that was
606 * modified (*from*), the new value of this field (*to*), and the
607 * number of bytes (2 or 4) for this field, stored in *size*.
608 * Alternatively, it is possible to store the difference between
609 * the previous and the new values of the header field in *to*, by
610 * setting *from* and *size* to 0. For both methods, *offset*
611 * indicates the location of the IP checksum within the packet.
612 *
613 * This helper works in combination with **bpf_csum_diff**\ (),
614 * which does not update the checksum in-place, but offers more
615 * flexibility and can handle sizes larger than 2 or 4 for the
616 * checksum to update.
617 *
618 * A call to this helper is susceptible to change the underlaying
619 * packet buffer. Therefore, at load time, all checks on pointers
620 * previously done by the verifier are invalidated and must be
621 * performed again, if the helper is used in combination with
622 * direct packet access.
623 * Return
624 * 0 on success, or a negative error in case of failure.
625 *
626 * int bpf_l4_csum_replace(struct sk_buff *skb, u32 offset, u64 from, u64 to, u64 flags)
627 * Description
628 * Recompute the layer 4 (e.g. TCP, UDP or ICMP) checksum for the
629 * packet associated to *skb*. Computation is incremental, so the
630 * helper must know the former value of the header field that was
631 * modified (*from*), the new value of this field (*to*), and the
632 * number of bytes (2 or 4) for this field, stored on the lowest
633 * four bits of *flags*. Alternatively, it is possible to store
634 * the difference between the previous and the new values of the
635 * header field in *to*, by setting *from* and the four lowest
636 * bits of *flags* to 0. For both methods, *offset* indicates the
637 * location of the IP checksum within the packet. In addition to
638 * the size of the field, *flags* can be added (bitwise OR) actual
639 * flags. With **BPF_F_MARK_MANGLED_0**, a null checksum is left
640 * untouched (unless **BPF_F_MARK_ENFORCE** is added as well), and
641 * for updates resulting in a null checksum the value is set to
642 * **CSUM_MANGLED_0** instead. Flag **BPF_F_PSEUDO_HDR** indicates
643 * the checksum is to be computed against a pseudo-header.
644 *
645 * This helper works in combination with **bpf_csum_diff**\ (),
646 * which does not update the checksum in-place, but offers more
647 * flexibility and can handle sizes larger than 2 or 4 for the
648 * checksum to update.
649 *
650 * A call to this helper is susceptible to change the underlaying
651 * packet buffer. Therefore, at load time, all checks on pointers
652 * previously done by the verifier are invalidated and must be
653 * performed again, if the helper is used in combination with
654 * direct packet access.
655 * Return
656 * 0 on success, or a negative error in case of failure.
657 *
658 * int bpf_tail_call(void *ctx, struct bpf_map *prog_array_map, u32 index)
659 * Description
660 * This special helper is used to trigger a "tail call", or in
661 * other words, to jump into another eBPF program. The same stack
662 * frame is used (but values on stack and in registers for the
663 * caller are not accessible to the callee). This mechanism allows
664 * for program chaining, either for raising the maximum number of
665 * available eBPF instructions, or to execute given programs in
666 * conditional blocks. For security reasons, there is an upper
667 * limit to the number of successive tail calls that can be
668 * performed.
669 *
670 * Upon call of this helper, the program attempts to jump into a
671 * program referenced at index *index* in *prog_array_map*, a
672 * special map of type **BPF_MAP_TYPE_PROG_ARRAY**, and passes
673 * *ctx*, a pointer to the context.
674 *
675 * If the call succeeds, the kernel immediately runs the first
676 * instruction of the new program. This is not a function call,
677 * and it never returns to the previous program. If the call
678 * fails, then the helper has no effect, and the caller continues
679 * to run its subsequent instructions. A call can fail if the
680 * destination program for the jump does not exist (i.e. *index*
681 * is superior to the number of entries in *prog_array_map*), or
682 * if the maximum number of tail calls has been reached for this
683 * chain of programs. This limit is defined in the kernel by the
684 * macro **MAX_TAIL_CALL_CNT** (not accessible to user space),
685 * which is currently set to 32.
686 * Return
687 * 0 on success, or a negative error in case of failure.
688 *
689 * int bpf_clone_redirect(struct sk_buff *skb, u32 ifindex, u64 flags)
690 * Description
691 * Clone and redirect the packet associated to *skb* to another
692 * net device of index *ifindex*. Both ingress and egress
693 * interfaces can be used for redirection. The **BPF_F_INGRESS**
694 * value in *flags* is used to make the distinction (ingress path
695 * is selected if the flag is present, egress path otherwise).
696 * This is the only flag supported for now.
697 *
698 * In comparison with **bpf_redirect**\ () helper,
699 * **bpf_clone_redirect**\ () has the associated cost of
700 * duplicating the packet buffer, but this can be executed out of
701 * the eBPF program. Conversely, **bpf_redirect**\ () is more
702 * efficient, but it is handled through an action code where the
703 * redirection happens only after the eBPF program has returned.
704 *
705 * A call to this helper is susceptible to change the underlaying
706 * packet buffer. Therefore, at load time, all checks on pointers
707 * previously done by the verifier are invalidated and must be
708 * performed again, if the helper is used in combination with
709 * direct packet access.
710 * Return
711 * 0 on success, or a negative error in case of failure.
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712 *
713 * u64 bpf_get_current_pid_tgid(void)
714 * Return
715 * A 64-bit integer containing the current tgid and pid, and
716 * created as such:
717 * *current_task*\ **->tgid << 32 \|**
718 * *current_task*\ **->pid**.
719 *
720 * u64 bpf_get_current_uid_gid(void)
721 * Return
722 * A 64-bit integer containing the current GID and UID, and
723 * created as such: *current_gid* **<< 32 \|** *current_uid*.
724 *
725 * int bpf_get_current_comm(char *buf, u32 size_of_buf)
726 * Description
727 * Copy the **comm** attribute of the current task into *buf* of
728 * *size_of_buf*. The **comm** attribute contains the name of
729 * the executable (excluding the path) for the current task. The
730 * *size_of_buf* must be strictly positive. On success, the
731 * helper makes sure that the *buf* is NUL-terminated. On failure,
732 * it is filled with zeroes.
733 * Return
734 * 0 on success, or a negative error in case of failure.
735 *
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736 * u32 bpf_get_cgroup_classid(struct sk_buff *skb)
737 * Description
738 * Retrieve the classid for the current task, i.e. for the net_cls
739 * cgroup to which *skb* belongs.
740 *
741 * This helper can be used on TC egress path, but not on ingress.
742 *
743 * The net_cls cgroup provides an interface to tag network packets
744 * based on a user-provided identifier for all traffic coming from
745 * the tasks belonging to the related cgroup. See also the related
746 * kernel documentation, available from the Linux sources in file
747 * *Documentation/cgroup-v1/net_cls.txt*.
748 *
749 * The Linux kernel has two versions for cgroups: there are
750 * cgroups v1 and cgroups v2. Both are available to users, who can
751 * use a mixture of them, but note that the net_cls cgroup is for
752 * cgroup v1 only. This makes it incompatible with BPF programs
753 * run on cgroups, which is a cgroup-v2-only feature (a socket can
754 * only hold data for one version of cgroups at a time).
755 *
756 * This helper is only available is the kernel was compiled with
757 * the **CONFIG_CGROUP_NET_CLASSID** configuration option set to
758 * "**y**" or to "**m**".
759 * Return
760 * The classid, or 0 for the default unconfigured classid.
761 *
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762 * int bpf_skb_vlan_push(struct sk_buff *skb, __be16 vlan_proto, u16 vlan_tci)
763 * Description
764 * Push a *vlan_tci* (VLAN tag control information) of protocol
765 * *vlan_proto* to the packet associated to *skb*, then update
766 * the checksum. Note that if *vlan_proto* is different from
767 * **ETH_P_8021Q** and **ETH_P_8021AD**, it is considered to
768 * be **ETH_P_8021Q**.
769 *
770 * A call to this helper is susceptible to change the underlaying
771 * packet buffer. Therefore, at load time, all checks on pointers
772 * previously done by the verifier are invalidated and must be
773 * performed again, if the helper is used in combination with
774 * direct packet access.
775 * Return
776 * 0 on success, or a negative error in case of failure.
777 *
778 * int bpf_skb_vlan_pop(struct sk_buff *skb)
779 * Description
780 * Pop a VLAN header from the packet associated to *skb*.
781 *
782 * A call to this helper is susceptible to change the underlaying
783 * packet buffer. Therefore, at load time, all checks on pointers
784 * previously done by the verifier are invalidated and must be
785 * performed again, if the helper is used in combination with
786 * direct packet access.
787 * Return
788 * 0 on success, or a negative error in case of failure.
789 *
790 * int bpf_skb_get_tunnel_key(struct sk_buff *skb, struct bpf_tunnel_key *key, u32 size, u64 flags)
791 * Description
792 * Get tunnel metadata. This helper takes a pointer *key* to an
793 * empty **struct bpf_tunnel_key** of **size**, that will be
794 * filled with tunnel metadata for the packet associated to *skb*.
795 * The *flags* can be set to **BPF_F_TUNINFO_IPV6**, which
796 * indicates that the tunnel is based on IPv6 protocol instead of
797 * IPv4.
798 *
799 * The **struct bpf_tunnel_key** is an object that generalizes the
800 * principal parameters used by various tunneling protocols into a
801 * single struct. This way, it can be used to easily make a
802 * decision based on the contents of the encapsulation header,
803 * "summarized" in this struct. In particular, it holds the IP
804 * address of the remote end (IPv4 or IPv6, depending on the case)
805 * in *key*\ **->remote_ipv4** or *key*\ **->remote_ipv6**. Also,
806 * this struct exposes the *key*\ **->tunnel_id**, which is
807 * generally mapped to a VNI (Virtual Network Identifier), making
808 * it programmable together with the **bpf_skb_set_tunnel_key**\
809 * () helper.
810 *
811 * Let's imagine that the following code is part of a program
812 * attached to the TC ingress interface, on one end of a GRE
813 * tunnel, and is supposed to filter out all messages coming from
814 * remote ends with IPv4 address other than 10.0.0.1:
815 *
816 * ::
817 *
818 * int ret;
819 * struct bpf_tunnel_key key = {};
820 *
821 * ret = bpf_skb_get_tunnel_key(skb, &key, sizeof(key), 0);
822 * if (ret < 0)
823 * return TC_ACT_SHOT; // drop packet
824 *
825 * if (key.remote_ipv4 != 0x0a000001)
826 * return TC_ACT_SHOT; // drop packet
827 *
828 * return TC_ACT_OK; // accept packet
829 *
830 * This interface can also be used with all encapsulation devices
831 * that can operate in "collect metadata" mode: instead of having
832 * one network device per specific configuration, the "collect
833 * metadata" mode only requires a single device where the
834 * configuration can be extracted from this helper.
835 *
836 * This can be used together with various tunnels such as VXLan,
837 * Geneve, GRE or IP in IP (IPIP).
838 * Return
839 * 0 on success, or a negative error in case of failure.
840 *
841 * int bpf_skb_set_tunnel_key(struct sk_buff *skb, struct bpf_tunnel_key *key, u32 size, u64 flags)
842 * Description
843 * Populate tunnel metadata for packet associated to *skb.* The
844 * tunnel metadata is set to the contents of *key*, of *size*. The
845 * *flags* can be set to a combination of the following values:
846 *
847 * **BPF_F_TUNINFO_IPV6**
848 * Indicate that the tunnel is based on IPv6 protocol
849 * instead of IPv4.
850 * **BPF_F_ZERO_CSUM_TX**
851 * For IPv4 packets, add a flag to tunnel metadata
852 * indicating that checksum computation should be skipped
853 * and checksum set to zeroes.
854 * **BPF_F_DONT_FRAGMENT**
855 * Add a flag to tunnel metadata indicating that the
856 * packet should not be fragmented.
857 * **BPF_F_SEQ_NUMBER**
858 * Add a flag to tunnel metadata indicating that a
859 * sequence number should be added to tunnel header before
860 * sending the packet. This flag was added for GRE
861 * encapsulation, but might be used with other protocols
862 * as well in the future.
863 *
864 * Here is a typical usage on the transmit path:
865 *
866 * ::
867 *
868 * struct bpf_tunnel_key key;
869 * populate key ...
870 * bpf_skb_set_tunnel_key(skb, &key, sizeof(key), 0);
871 * bpf_clone_redirect(skb, vxlan_dev_ifindex, 0);
872 *
873 * See also the description of the **bpf_skb_get_tunnel_key**\ ()
874 * helper for additional information.
875 * Return
876 * 0 on success, or a negative error in case of failure.
877 *
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878 * u64 bpf_perf_event_read(struct bpf_map *map, u64 flags)
879 * Description
880 * Read the value of a perf event counter. This helper relies on a
881 * *map* of type **BPF_MAP_TYPE_PERF_EVENT_ARRAY**. The nature of
882 * the perf event counter is selected when *map* is updated with
883 * perf event file descriptors. The *map* is an array whose size
884 * is the number of available CPUs, and each cell contains a value
885 * relative to one CPU. The value to retrieve is indicated by
886 * *flags*, that contains the index of the CPU to look up, masked
887 * with **BPF_F_INDEX_MASK**. Alternatively, *flags* can be set to
888 * **BPF_F_CURRENT_CPU** to indicate that the value for the
889 * current CPU should be retrieved.
890 *
891 * Note that before Linux 4.13, only hardware perf event can be
892 * retrieved.
893 *
894 * Also, be aware that the newer helper
895 * **bpf_perf_event_read_value**\ () is recommended over
3bd5a09b 896 * **bpf_perf_event_read**\ () in general. The latter has some ABI
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897 * quirks where error and counter value are used as a return code
898 * (which is wrong to do since ranges may overlap). This issue is
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899 * fixed with **bpf_perf_event_read_value**\ (), which at the same
900 * time provides more features over the **bpf_perf_event_read**\
901 * () interface. Please refer to the description of
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902 * **bpf_perf_event_read_value**\ () for details.
903 * Return
904 * The value of the perf event counter read from the map, or a
905 * negative error code in case of failure.
906 *
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907 * int bpf_redirect(u32 ifindex, u64 flags)
908 * Description
909 * Redirect the packet to another net device of index *ifindex*.
910 * This helper is somewhat similar to **bpf_clone_redirect**\
911 * (), except that the packet is not cloned, which provides
912 * increased performance.
913 *
914 * Except for XDP, both ingress and egress interfaces can be used
915 * for redirection. The **BPF_F_INGRESS** value in *flags* is used
916 * to make the distinction (ingress path is selected if the flag
917 * is present, egress path otherwise). Currently, XDP only
918 * supports redirection to the egress interface, and accepts no
919 * flag at all.
920 *
921 * The same effect can be attained with the more generic
922 * **bpf_redirect_map**\ (), which requires specific maps to be
923 * used but offers better performance.
924 * Return
925 * For XDP, the helper returns **XDP_REDIRECT** on success or
926 * **XDP_ABORTED** on error. For other program types, the values
927 * are **TC_ACT_REDIRECT** on success or **TC_ACT_SHOT** on
928 * error.
929 *
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930 * u32 bpf_get_route_realm(struct sk_buff *skb)
931 * Description
932 * Retrieve the realm or the route, that is to say the
933 * **tclassid** field of the destination for the *skb*. The
934 * indentifier retrieved is a user-provided tag, similar to the
935 * one used with the net_cls cgroup (see description for
936 * **bpf_get_cgroup_classid**\ () helper), but here this tag is
937 * held by a route (a destination entry), not by a task.
938 *
939 * Retrieving this identifier works with the clsact TC egress hook
940 * (see also **tc-bpf(8)**), or alternatively on conventional
941 * classful egress qdiscs, but not on TC ingress path. In case of
942 * clsact TC egress hook, this has the advantage that, internally,
943 * the destination entry has not been dropped yet in the transmit
944 * path. Therefore, the destination entry does not need to be
945 * artificially held via **netif_keep_dst**\ () for a classful
946 * qdisc until the *skb* is freed.
947 *
948 * This helper is available only if the kernel was compiled with
949 * **CONFIG_IP_ROUTE_CLASSID** configuration option.
950 * Return
951 * The realm of the route for the packet associated to *skb*, or 0
952 * if none was found.
953 *
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954 * int bpf_perf_event_output(struct pt_reg *ctx, struct bpf_map *map, u64 flags, void *data, u64 size)
955 * Description
956 * Write raw *data* blob into a special BPF perf event held by
957 * *map* of type **BPF_MAP_TYPE_PERF_EVENT_ARRAY**. This perf
958 * event must have the following attributes: **PERF_SAMPLE_RAW**
959 * as **sample_type**, **PERF_TYPE_SOFTWARE** as **type**, and
960 * **PERF_COUNT_SW_BPF_OUTPUT** as **config**.
961 *
962 * The *flags* are used to indicate the index in *map* for which
963 * the value must be put, masked with **BPF_F_INDEX_MASK**.
964 * Alternatively, *flags* can be set to **BPF_F_CURRENT_CPU**
965 * to indicate that the index of the current CPU core should be
966 * used.
967 *
968 * The value to write, of *size*, is passed through eBPF stack and
969 * pointed by *data*.
970 *
971 * The context of the program *ctx* needs also be passed to the
972 * helper.
973 *
974 * On user space, a program willing to read the values needs to
975 * call **perf_event_open**\ () on the perf event (either for
976 * one or for all CPUs) and to store the file descriptor into the
977 * *map*. This must be done before the eBPF program can send data
978 * into it. An example is available in file
979 * *samples/bpf/trace_output_user.c* in the Linux kernel source
980 * tree (the eBPF program counterpart is in
981 * *samples/bpf/trace_output_kern.c*).
982 *
983 * **bpf_perf_event_output**\ () achieves better performance
984 * than **bpf_trace_printk**\ () for sharing data with user
985 * space, and is much better suitable for streaming data from eBPF
986 * programs.
987 *
988 * Note that this helper is not restricted to tracing use cases
989 * and can be used with programs attached to TC or XDP as well,
990 * where it allows for passing data to user space listeners. Data
991 * can be:
992 *
993 * * Only custom structs,
994 * * Only the packet payload, or
995 * * A combination of both.
996 * Return
997 * 0 on success, or a negative error in case of failure.
998 *
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999 * int bpf_skb_load_bytes(const struct sk_buff *skb, u32 offset, void *to, u32 len)
1000 * Description
1001 * This helper was provided as an easy way to load data from a
1002 * packet. It can be used to load *len* bytes from *offset* from
1003 * the packet associated to *skb*, into the buffer pointed by
1004 * *to*.
1005 *
1006 * Since Linux 4.7, usage of this helper has mostly been replaced
1007 * by "direct packet access", enabling packet data to be
1008 * manipulated with *skb*\ **->data** and *skb*\ **->data_end**
1009 * pointing respectively to the first byte of packet data and to
1010 * the byte after the last byte of packet data. However, it
1011 * remains useful if one wishes to read large quantities of data
1012 * at once from a packet into the eBPF stack.
1013 * Return
1014 * 0 on success, or a negative error in case of failure.
1015 *
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1016 * int bpf_get_stackid(struct pt_reg *ctx, struct bpf_map *map, u64 flags)
1017 * Description
1018 * Walk a user or a kernel stack and return its id. To achieve
1019 * this, the helper needs *ctx*, which is a pointer to the context
1020 * on which the tracing program is executed, and a pointer to a
1021 * *map* of type **BPF_MAP_TYPE_STACK_TRACE**.
1022 *
1023 * The last argument, *flags*, holds the number of stack frames to
1024 * skip (from 0 to 255), masked with
1025 * **BPF_F_SKIP_FIELD_MASK**. The next bits can be used to set
1026 * a combination of the following flags:
1027 *
1028 * **BPF_F_USER_STACK**
1029 * Collect a user space stack instead of a kernel stack.
1030 * **BPF_F_FAST_STACK_CMP**
1031 * Compare stacks by hash only.
1032 * **BPF_F_REUSE_STACKID**
1033 * If two different stacks hash into the same *stackid*,
1034 * discard the old one.
1035 *
1036 * The stack id retrieved is a 32 bit long integer handle which
1037 * can be further combined with other data (including other stack
1038 * ids) and used as a key into maps. This can be useful for
1039 * generating a variety of graphs (such as flame graphs or off-cpu
1040 * graphs).
1041 *
1042 * For walking a stack, this helper is an improvement over
1043 * **bpf_probe_read**\ (), which can be used with unrolled loops
1044 * but is not efficient and consumes a lot of eBPF instructions.
1045 * Instead, **bpf_get_stackid**\ () can collect up to
1046 * **PERF_MAX_STACK_DEPTH** both kernel and user frames. Note that
1047 * this limit can be controlled with the **sysctl** program, and
1048 * that it should be manually increased in order to profile long
1049 * user stacks (such as stacks for Java programs). To do so, use:
1050 *
1051 * ::
1052 *
1053 * # sysctl kernel.perf_event_max_stack=<new value>
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1054 * Return
1055 * The positive or null stack id on success, or a negative error
1056 * in case of failure.
1057 *
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1058 * s64 bpf_csum_diff(__be32 *from, u32 from_size, __be32 *to, u32 to_size, __wsum seed)
1059 * Description
1060 * Compute a checksum difference, from the raw buffer pointed by
1061 * *from*, of length *from_size* (that must be a multiple of 4),
1062 * towards the raw buffer pointed by *to*, of size *to_size*
1063 * (same remark). An optional *seed* can be added to the value
1064 * (this can be cascaded, the seed may come from a previous call
1065 * to the helper).
1066 *
1067 * This is flexible enough to be used in several ways:
1068 *
1069 * * With *from_size* == 0, *to_size* > 0 and *seed* set to
1070 * checksum, it can be used when pushing new data.
1071 * * With *from_size* > 0, *to_size* == 0 and *seed* set to
1072 * checksum, it can be used when removing data from a packet.
1073 * * With *from_size* > 0, *to_size* > 0 and *seed* set to 0, it
1074 * can be used to compute a diff. Note that *from_size* and
1075 * *to_size* do not need to be equal.
1076 *
1077 * This helper can be used in combination with
1078 * **bpf_l3_csum_replace**\ () and **bpf_l4_csum_replace**\ (), to
1079 * which one can feed in the difference computed with
1080 * **bpf_csum_diff**\ ().
1081 * Return
1082 * The checksum result, or a negative error code in case of
1083 * failure.
1084 *
1085 * int bpf_skb_get_tunnel_opt(struct sk_buff *skb, u8 *opt, u32 size)
1086 * Description
1087 * Retrieve tunnel options metadata for the packet associated to
1088 * *skb*, and store the raw tunnel option data to the buffer *opt*
1089 * of *size*.
1090 *
1091 * This helper can be used with encapsulation devices that can
1092 * operate in "collect metadata" mode (please refer to the related
1093 * note in the description of **bpf_skb_get_tunnel_key**\ () for
1094 * more details). A particular example where this can be used is
1095 * in combination with the Geneve encapsulation protocol, where it
1096 * allows for pushing (with **bpf_skb_get_tunnel_opt**\ () helper)
1097 * and retrieving arbitrary TLVs (Type-Length-Value headers) from
1098 * the eBPF program. This allows for full customization of these
1099 * headers.
1100 * Return
1101 * The size of the option data retrieved.
1102 *
1103 * int bpf_skb_set_tunnel_opt(struct sk_buff *skb, u8 *opt, u32 size)
1104 * Description
1105 * Set tunnel options metadata for the packet associated to *skb*
1106 * to the option data contained in the raw buffer *opt* of *size*.
1107 *
1108 * See also the description of the **bpf_skb_get_tunnel_opt**\ ()
1109 * helper for additional information.
1110 * Return
1111 * 0 on success, or a negative error in case of failure.
1112 *
1113 * int bpf_skb_change_proto(struct sk_buff *skb, __be16 proto, u64 flags)
1114 * Description
1115 * Change the protocol of the *skb* to *proto*. Currently
1116 * supported are transition from IPv4 to IPv6, and from IPv6 to
1117 * IPv4. The helper takes care of the groundwork for the
1118 * transition, including resizing the socket buffer. The eBPF
1119 * program is expected to fill the new headers, if any, via
1120 * **skb_store_bytes**\ () and to recompute the checksums with
1121 * **bpf_l3_csum_replace**\ () and **bpf_l4_csum_replace**\
1122 * (). The main case for this helper is to perform NAT64
1123 * operations out of an eBPF program.
1124 *
1125 * Internally, the GSO type is marked as dodgy so that headers are
1126 * checked and segments are recalculated by the GSO/GRO engine.
1127 * The size for GSO target is adapted as well.
1128 *
1129 * All values for *flags* are reserved for future usage, and must
1130 * be left at zero.
1131 *
1132 * A call to this helper is susceptible to change the underlaying
1133 * packet buffer. Therefore, at load time, all checks on pointers
1134 * previously done by the verifier are invalidated and must be
1135 * performed again, if the helper is used in combination with
1136 * direct packet access.
1137 * Return
1138 * 0 on success, or a negative error in case of failure.
1139 *
1140 * int bpf_skb_change_type(struct sk_buff *skb, u32 type)
1141 * Description
1142 * Change the packet type for the packet associated to *skb*. This
1143 * comes down to setting *skb*\ **->pkt_type** to *type*, except
1144 * the eBPF program does not have a write access to *skb*\
1145 * **->pkt_type** beside this helper. Using a helper here allows
1146 * for graceful handling of errors.
1147 *
1148 * The major use case is to change incoming *skb*s to
1149 * **PACKET_HOST** in a programmatic way instead of having to
1150 * recirculate via **redirect**\ (..., **BPF_F_INGRESS**), for
1151 * example.
1152 *
1153 * Note that *type* only allows certain values. At this time, they
1154 * are:
1155 *
1156 * **PACKET_HOST**
1157 * Packet is for us.
1158 * **PACKET_BROADCAST**
1159 * Send packet to all.
1160 * **PACKET_MULTICAST**
1161 * Send packet to group.
1162 * **PACKET_OTHERHOST**
1163 * Send packet to someone else.
1164 * Return
1165 * 0 on success, or a negative error in case of failure.
1166 *
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QM
1167 * int bpf_skb_under_cgroup(struct sk_buff *skb, struct bpf_map *map, u32 index)
1168 * Description
1169 * Check whether *skb* is a descendant of the cgroup2 held by
1170 * *map* of type **BPF_MAP_TYPE_CGROUP_ARRAY**, at *index*.
1171 * Return
1172 * The return value depends on the result of the test, and can be:
1173 *
1174 * * 0, if the *skb* failed the cgroup2 descendant test.
1175 * * 1, if the *skb* succeeded the cgroup2 descendant test.
1176 * * A negative error code, if an error occurred.
1177 *
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QM
1178 * u32 bpf_get_hash_recalc(struct sk_buff *skb)
1179 * Description
1180 * Retrieve the hash of the packet, *skb*\ **->hash**. If it is
1181 * not set, in particular if the hash was cleared due to mangling,
1182 * recompute this hash. Later accesses to the hash can be done
1183 * directly with *skb*\ **->hash**.
1184 *
1185 * Calling **bpf_set_hash_invalid**\ (), changing a packet
1186 * prototype with **bpf_skb_change_proto**\ (), or calling
1187 * **bpf_skb_store_bytes**\ () with the
1188 * **BPF_F_INVALIDATE_HASH** are actions susceptible to clear
1189 * the hash and to trigger a new computation for the next call to
1190 * **bpf_get_hash_recalc**\ ().
1191 * Return
1192 * The 32-bit hash.
1193 *
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QM
1194 * u64 bpf_get_current_task(void)
1195 * Return
1196 * A pointer to the current task struct.
fa15601a 1197 *
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QM
1198 * int bpf_probe_write_user(void *dst, const void *src, u32 len)
1199 * Description
1200 * Attempt in a safe way to write *len* bytes from the buffer
1201 * *src* to *dst* in memory. It only works for threads that are in
1202 * user context, and *dst* must be a valid user space address.
1203 *
1204 * This helper should not be used to implement any kind of
1205 * security mechanism because of TOC-TOU attacks, but rather to
1206 * debug, divert, and manipulate execution of semi-cooperative
1207 * processes.
1208 *
1209 * Keep in mind that this feature is meant for experiments, and it
1210 * has a risk of crashing the system and running programs.
1211 * Therefore, when an eBPF program using this helper is attached,
1212 * a warning including PID and process name is printed to kernel
1213 * logs.
1214 * Return
1215 * 0 on success, or a negative error in case of failure.
1216 *
1217 * int bpf_current_task_under_cgroup(struct bpf_map *map, u32 index)
1218 * Description
1219 * Check whether the probe is being run is the context of a given
1220 * subset of the cgroup2 hierarchy. The cgroup2 to test is held by
1221 * *map* of type **BPF_MAP_TYPE_CGROUP_ARRAY**, at *index*.
1222 * Return
1223 * The return value depends on the result of the test, and can be:
1224 *
1225 * * 0, if the *skb* task belongs to the cgroup2.
1226 * * 1, if the *skb* task does not belong to the cgroup2.
1227 * * A negative error code, if an error occurred.
1228 *
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1229 * int bpf_skb_change_tail(struct sk_buff *skb, u32 len, u64 flags)
1230 * Description
1231 * Resize (trim or grow) the packet associated to *skb* to the
1232 * new *len*. The *flags* are reserved for future usage, and must
1233 * be left at zero.
1234 *
1235 * The basic idea is that the helper performs the needed work to
1236 * change the size of the packet, then the eBPF program rewrites
1237 * the rest via helpers like **bpf_skb_store_bytes**\ (),
1238 * **bpf_l3_csum_replace**\ (), **bpf_l3_csum_replace**\ ()
1239 * and others. This helper is a slow path utility intended for
1240 * replies with control messages. And because it is targeted for
1241 * slow path, the helper itself can afford to be slow: it
1242 * implicitly linearizes, unclones and drops offloads from the
1243 * *skb*.
1244 *
1245 * A call to this helper is susceptible to change the underlaying
1246 * packet buffer. Therefore, at load time, all checks on pointers
1247 * previously done by the verifier are invalidated and must be
1248 * performed again, if the helper is used in combination with
1249 * direct packet access.
1250 * Return
1251 * 0 on success, or a negative error in case of failure.
1252 *
1253 * int bpf_skb_pull_data(struct sk_buff *skb, u32 len)
1254 * Description
1255 * Pull in non-linear data in case the *skb* is non-linear and not
1256 * all of *len* are part of the linear section. Make *len* bytes
1257 * from *skb* readable and writable. If a zero value is passed for
1258 * *len*, then the whole length of the *skb* is pulled.
1259 *
1260 * This helper is only needed for reading and writing with direct
1261 * packet access.
1262 *
1263 * For direct packet access, testing that offsets to access
1264 * are within packet boundaries (test on *skb*\ **->data_end**) is
1265 * susceptible to fail if offsets are invalid, or if the requested
1266 * data is in non-linear parts of the *skb*. On failure the
1267 * program can just bail out, or in the case of a non-linear
1268 * buffer, use a helper to make the data available. The
1269 * **bpf_skb_load_bytes**\ () helper is a first solution to access
1270 * the data. Another one consists in using **bpf_skb_pull_data**
1271 * to pull in once the non-linear parts, then retesting and
1272 * eventually access the data.
1273 *
1274 * At the same time, this also makes sure the *skb* is uncloned,
1275 * which is a necessary condition for direct write. As this needs
1276 * to be an invariant for the write part only, the verifier
1277 * detects writes and adds a prologue that is calling
1278 * **bpf_skb_pull_data()** to effectively unclone the *skb* from
1279 * the very beginning in case it is indeed cloned.
1280 *
1281 * A call to this helper is susceptible to change the underlaying
1282 * packet buffer. Therefore, at load time, all checks on pointers
1283 * previously done by the verifier are invalidated and must be
1284 * performed again, if the helper is used in combination with
1285 * direct packet access.
1286 * Return
1287 * 0 on success, or a negative error in case of failure.
1288 *
1289 * s64 bpf_csum_update(struct sk_buff *skb, __wsum csum)
1290 * Description
1291 * Add the checksum *csum* into *skb*\ **->csum** in case the
1292 * driver has supplied a checksum for the entire packet into that
1293 * field. Return an error otherwise. This helper is intended to be
1294 * used in combination with **bpf_csum_diff**\ (), in particular
1295 * when the checksum needs to be updated after data has been
1296 * written into the packet through direct packet access.
1297 * Return
1298 * The checksum on success, or a negative error code in case of
1299 * failure.
1300 *
1301 * void bpf_set_hash_invalid(struct sk_buff *skb)
1302 * Description
1303 * Invalidate the current *skb*\ **->hash**. It can be used after
1304 * mangling on headers through direct packet access, in order to
1305 * indicate that the hash is outdated and to trigger a
1306 * recalculation the next time the kernel tries to access this
1307 * hash or when the **bpf_get_hash_recalc**\ () helper is called.
1308 *
1309 * int bpf_get_numa_node_id(void)
1310 * Description
1311 * Return the id of the current NUMA node. The primary use case
1312 * for this helper is the selection of sockets for the local NUMA
1313 * node, when the program is attached to sockets using the
1314 * **SO_ATTACH_REUSEPORT_EBPF** option (see also **socket(7)**),
1315 * but the helper is also available to other eBPF program types,
1316 * similarly to **bpf_get_smp_processor_id**\ ().
1317 * Return
1318 * The id of current NUMA node.
1319 *
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QM
1320 * int bpf_skb_change_head(struct sk_buff *skb, u32 len, u64 flags)
1321 * Description
1322 * Grows headroom of packet associated to *skb* and adjusts the
1323 * offset of the MAC header accordingly, adding *len* bytes of
1324 * space. It automatically extends and reallocates memory as
1325 * required.
1326 *
1327 * This helper can be used on a layer 3 *skb* to push a MAC header
1328 * for redirection into a layer 2 device.
1329 *
1330 * All values for *flags* are reserved for future usage, and must
1331 * be left at zero.
1332 *
1333 * A call to this helper is susceptible to change the underlaying
1334 * packet buffer. Therefore, at load time, all checks on pointers
1335 * previously done by the verifier are invalidated and must be
1336 * performed again, if the helper is used in combination with
1337 * direct packet access.
1338 * Return
1339 * 0 on success, or a negative error in case of failure.
1340 *
1341 * int bpf_xdp_adjust_head(struct xdp_buff *xdp_md, int delta)
1342 * Description
1343 * Adjust (move) *xdp_md*\ **->data** by *delta* bytes. Note that
1344 * it is possible to use a negative value for *delta*. This helper
1345 * can be used to prepare the packet for pushing or popping
1346 * headers.
1347 *
1348 * A call to this helper is susceptible to change the underlaying
1349 * packet buffer. Therefore, at load time, all checks on pointers
1350 * previously done by the verifier are invalidated and must be
1351 * performed again, if the helper is used in combination with
1352 * direct packet access.
1353 * Return
1354 * 0 on success, or a negative error in case of failure.
1355 *
1356 * int bpf_probe_read_str(void *dst, int size, const void *unsafe_ptr)
1357 * Description
1358 * Copy a NUL terminated string from an unsafe address
1359 * *unsafe_ptr* to *dst*. The *size* should include the
1360 * terminating NUL byte. In case the string length is smaller than
1361 * *size*, the target is not padded with further NUL bytes. If the
1362 * string length is larger than *size*, just *size*-1 bytes are
1363 * copied and the last byte is set to NUL.
1364 *
1365 * On success, the length of the copied string is returned. This
1366 * makes this helper useful in tracing programs for reading
1367 * strings, and more importantly to get its length at runtime. See
1368 * the following snippet:
1369 *
1370 * ::
1371 *
1372 * SEC("kprobe/sys_open")
1373 * void bpf_sys_open(struct pt_regs *ctx)
1374 * {
1375 * char buf[PATHLEN]; // PATHLEN is defined to 256
1376 * int res = bpf_probe_read_str(buf, sizeof(buf),
1377 * ctx->di);
1378 *
1379 * // Consume buf, for example push it to
1380 * // userspace via bpf_perf_event_output(); we
1381 * // can use res (the string length) as event
1382 * // size, after checking its boundaries.
1383 * }
1384 *
1385 * In comparison, using **bpf_probe_read()** helper here instead
1386 * to read the string would require to estimate the length at
1387 * compile time, and would often result in copying more memory
1388 * than necessary.
1389 *
1390 * Another useful use case is when parsing individual process
1391 * arguments or individual environment variables navigating
1392 * *current*\ **->mm->arg_start** and *current*\
1393 * **->mm->env_start**: using this helper and the return value,
1394 * one can quickly iterate at the right offset of the memory area.
1395 * Return
1396 * On success, the strictly positive length of the string,
1397 * including the trailing NUL character. On error, a negative
1398 * value.
1399 *
1400 * u64 bpf_get_socket_cookie(struct sk_buff *skb)
1401 * Description
1402 * If the **struct sk_buff** pointed by *skb* has a known socket,
1403 * retrieve the cookie (generated by the kernel) of this socket.
1404 * If no cookie has been set yet, generate a new cookie. Once
1405 * generated, the socket cookie remains stable for the life of the
1406 * socket. This helper can be useful for monitoring per socket
1407 * networking traffic statistics as it provides a unique socket
1408 * identifier per namespace.
1409 * Return
1410 * A 8-byte long non-decreasing number on success, or 0 if the
1411 * socket field is missing inside *skb*.
1412 *
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1413 * u64 bpf_get_socket_cookie(struct bpf_sock_addr *ctx)
1414 * Description
1415 * Equivalent to bpf_get_socket_cookie() helper that accepts
1416 * *skb*, but gets socket from **struct bpf_sock_addr** contex.
1417 * Return
1418 * A 8-byte long non-decreasing number.
1419 *
1420 * u64 bpf_get_socket_cookie(struct bpf_sock_ops *ctx)
1421 * Description
1422 * Equivalent to bpf_get_socket_cookie() helper that accepts
1423 * *skb*, but gets socket from **struct bpf_sock_ops** contex.
1424 * Return
1425 * A 8-byte long non-decreasing number.
1426 *
c6b5fb86
QM
1427 * u32 bpf_get_socket_uid(struct sk_buff *skb)
1428 * Return
1429 * The owner UID of the socket associated to *skb*. If the socket
1430 * is **NULL**, or if it is not a full socket (i.e. if it is a
1431 * time-wait or a request socket instead), **overflowuid** value
1432 * is returned (note that **overflowuid** might also be the actual
1433 * UID value for the socket).
1434 *
fa15601a
QM
1435 * u32 bpf_set_hash(struct sk_buff *skb, u32 hash)
1436 * Description
1437 * Set the full hash for *skb* (set the field *skb*\ **->hash**)
1438 * to value *hash*.
1439 * Return
1440 * 0
1441 *
a3ef8e9a 1442 * int bpf_setsockopt(struct bpf_sock_ops *bpf_socket, int level, int optname, char *optval, int optlen)
7aa79a86
QM
1443 * Description
1444 * Emulate a call to **setsockopt()** on the socket associated to
1445 * *bpf_socket*, which must be a full socket. The *level* at
1446 * which the option resides and the name *optname* of the option
1447 * must be specified, see **setsockopt(2)** for more information.
1448 * The option value of length *optlen* is pointed by *optval*.
1449 *
1450 * This helper actually implements a subset of **setsockopt()**.
1451 * It supports the following *level*\ s:
1452 *
1453 * * **SOL_SOCKET**, which supports the following *optname*\ s:
1454 * **SO_RCVBUF**, **SO_SNDBUF**, **SO_MAX_PACING_RATE**,
1455 * **SO_PRIORITY**, **SO_RCVLOWAT**, **SO_MARK**.
1456 * * **IPPROTO_TCP**, which supports the following *optname*\ s:
1457 * **TCP_CONGESTION**, **TCP_BPF_IW**,
1458 * **TCP_BPF_SNDCWND_CLAMP**.
1459 * * **IPPROTO_IP**, which supports *optname* **IP_TOS**.
1460 * * **IPPROTO_IPV6**, which supports *optname* **IPV6_TCLASS**.
1461 * Return
1462 * 0 on success, or a negative error in case of failure.
1463 *
b55cbc8d 1464 * int bpf_skb_adjust_room(struct sk_buff *skb, s32 len_diff, u32 mode, u64 flags)
fa15601a
QM
1465 * Description
1466 * Grow or shrink the room for data in the packet associated to
1467 * *skb* by *len_diff*, and according to the selected *mode*.
1468 *
1469 * There is a single supported mode at this time:
1470 *
1471 * * **BPF_ADJ_ROOM_NET**: Adjust room at the network layer
1472 * (room space is added or removed below the layer 3 header).
1473 *
1474 * All values for *flags* are reserved for future usage, and must
1475 * be left at zero.
1476 *
1477 * A call to this helper is susceptible to change the underlaying
1478 * packet buffer. Therefore, at load time, all checks on pointers
1479 * previously done by the verifier are invalidated and must be
1480 * performed again, if the helper is used in combination with
1481 * direct packet access.
1482 * Return
1483 * 0 on success, or a negative error in case of failure.
1484 *
ab127040
QM
1485 * int bpf_redirect_map(struct bpf_map *map, u32 key, u64 flags)
1486 * Description
1487 * Redirect the packet to the endpoint referenced by *map* at
1488 * index *key*. Depending on its type, this *map* can contain
1489 * references to net devices (for forwarding packets through other
1490 * ports), or to CPUs (for redirecting XDP frames to another CPU;
1491 * but this is only implemented for native XDP (with driver
1492 * support) as of this writing).
1493 *
1494 * All values for *flags* are reserved for future usage, and must
1495 * be left at zero.
1496 *
1497 * When used to redirect packets to net devices, this helper
1498 * provides a high performance increase over **bpf_redirect**\ ().
1499 * This is due to various implementation details of the underlying
1500 * mechanisms, one of which is the fact that **bpf_redirect_map**\
1501 * () tries to send packet as a "bulk" to the device.
1502 * Return
1503 * **XDP_REDIRECT** on success, or **XDP_ABORTED** on error.
1504 *
1505 * int bpf_sk_redirect_map(struct bpf_map *map, u32 key, u64 flags)
1506 * Description
1507 * Redirect the packet to the socket referenced by *map* (of type
1508 * **BPF_MAP_TYPE_SOCKMAP**) at index *key*. Both ingress and
1509 * egress interfaces can be used for redirection. The
1510 * **BPF_F_INGRESS** value in *flags* is used to make the
1511 * distinction (ingress path is selected if the flag is present,
1512 * egress path otherwise). This is the only flag supported for now.
1513 * Return
1514 * **SK_PASS** on success, or **SK_DROP** on error.
1515 *
a3ef8e9a 1516 * int bpf_sock_map_update(struct bpf_sock_ops *skops, struct bpf_map *map, void *key, u64 flags)
ab127040
QM
1517 * Description
1518 * Add an entry to, or update a *map* referencing sockets. The
1519 * *skops* is used as a new value for the entry associated to
1520 * *key*. *flags* is one of:
1521 *
1522 * **BPF_NOEXIST**
1523 * The entry for *key* must not exist in the map.
1524 * **BPF_EXIST**
1525 * The entry for *key* must already exist in the map.
1526 * **BPF_ANY**
1527 * No condition on the existence of the entry for *key*.
1528 *
1529 * If the *map* has eBPF programs (parser and verdict), those will
1530 * be inherited by the socket being added. If the socket is
1531 * already attached to eBPF programs, this results in an error.
1532 * Return
1533 * 0 on success, or a negative error in case of failure.
1534 *
fa15601a
QM
1535 * int bpf_xdp_adjust_meta(struct xdp_buff *xdp_md, int delta)
1536 * Description
1537 * Adjust the address pointed by *xdp_md*\ **->data_meta** by
1538 * *delta* (which can be positive or negative). Note that this
1539 * operation modifies the address stored in *xdp_md*\ **->data**,
1540 * so the latter must be loaded only after the helper has been
1541 * called.
1542 *
1543 * The use of *xdp_md*\ **->data_meta** is optional and programs
1544 * are not required to use it. The rationale is that when the
1545 * packet is processed with XDP (e.g. as DoS filter), it is
1546 * possible to push further meta data along with it before passing
1547 * to the stack, and to give the guarantee that an ingress eBPF
1548 * program attached as a TC classifier on the same device can pick
1549 * this up for further post-processing. Since TC works with socket
1550 * buffers, it remains possible to set from XDP the **mark** or
1551 * **priority** pointers, or other pointers for the socket buffer.
1552 * Having this scratch space generic and programmable allows for
1553 * more flexibility as the user is free to store whatever meta
1554 * data they need.
1555 *
1556 * A call to this helper is susceptible to change the underlaying
1557 * packet buffer. Therefore, at load time, all checks on pointers
1558 * previously done by the verifier are invalidated and must be
1559 * performed again, if the helper is used in combination with
1560 * direct packet access.
1561 * Return
1562 * 0 on success, or a negative error in case of failure.
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QM
1563 *
1564 * int bpf_perf_event_read_value(struct bpf_map *map, u64 flags, struct bpf_perf_event_value *buf, u32 buf_size)
1565 * Description
1566 * Read the value of a perf event counter, and store it into *buf*
1567 * of size *buf_size*. This helper relies on a *map* of type
1568 * **BPF_MAP_TYPE_PERF_EVENT_ARRAY**. The nature of the perf event
1569 * counter is selected when *map* is updated with perf event file
1570 * descriptors. The *map* is an array whose size is the number of
1571 * available CPUs, and each cell contains a value relative to one
1572 * CPU. The value to retrieve is indicated by *flags*, that
1573 * contains the index of the CPU to look up, masked with
1574 * **BPF_F_INDEX_MASK**. Alternatively, *flags* can be set to
1575 * **BPF_F_CURRENT_CPU** to indicate that the value for the
1576 * current CPU should be retrieved.
1577 *
1578 * This helper behaves in a way close to
1579 * **bpf_perf_event_read**\ () helper, save that instead of
1580 * just returning the value observed, it fills the *buf*
1581 * structure. This allows for additional data to be retrieved: in
1582 * particular, the enabled and running times (in *buf*\
1583 * **->enabled** and *buf*\ **->running**, respectively) are
1584 * copied. In general, **bpf_perf_event_read_value**\ () is
1585 * recommended over **bpf_perf_event_read**\ (), which has some
1586 * ABI issues and provides fewer functionalities.
1587 *
1588 * These values are interesting, because hardware PMU (Performance
1589 * Monitoring Unit) counters are limited resources. When there are
1590 * more PMU based perf events opened than available counters,
1591 * kernel will multiplex these events so each event gets certain
1592 * percentage (but not all) of the PMU time. In case that
1593 * multiplexing happens, the number of samples or counter value
1594 * will not reflect the case compared to when no multiplexing
1595 * occurs. This makes comparison between different runs difficult.
1596 * Typically, the counter value should be normalized before
1597 * comparing to other experiments. The usual normalization is done
1598 * as follows.
1599 *
1600 * ::
1601 *
1602 * normalized_counter = counter * t_enabled / t_running
1603 *
1604 * Where t_enabled is the time enabled for event and t_running is
1605 * the time running for event since last normalization. The
1606 * enabled and running times are accumulated since the perf event
1607 * open. To achieve scaling factor between two invocations of an
1608 * eBPF program, users can can use CPU id as the key (which is
1609 * typical for perf array usage model) to remember the previous
1610 * value and do the calculation inside the eBPF program.
1611 * Return
1612 * 0 on success, or a negative error in case of failure.
1613 *
a3ef8e9a 1614 * int bpf_perf_prog_read_value(struct bpf_perf_event_data *ctx, struct bpf_perf_event_value *buf, u32 buf_size)
7aa79a86
QM
1615 * Description
1616 * For en eBPF program attached to a perf event, retrieve the
1617 * value of the event counter associated to *ctx* and store it in
1618 * the structure pointed by *buf* and of size *buf_size*. Enabled
1619 * and running times are also stored in the structure (see
1620 * description of helper **bpf_perf_event_read_value**\ () for
1621 * more details).
1622 * Return
1623 * 0 on success, or a negative error in case of failure.
1624 *
a3ef8e9a 1625 * int bpf_getsockopt(struct bpf_sock_ops *bpf_socket, int level, int optname, char *optval, int optlen)
7aa79a86
QM
1626 * Description
1627 * Emulate a call to **getsockopt()** on the socket associated to
1628 * *bpf_socket*, which must be a full socket. The *level* at
1629 * which the option resides and the name *optname* of the option
1630 * must be specified, see **getsockopt(2)** for more information.
1631 * The retrieved value is stored in the structure pointed by
1632 * *opval* and of length *optlen*.
1633 *
1634 * This helper actually implements a subset of **getsockopt()**.
1635 * It supports the following *level*\ s:
1636 *
1637 * * **IPPROTO_TCP**, which supports *optname*
1638 * **TCP_CONGESTION**.
1639 * * **IPPROTO_IP**, which supports *optname* **IP_TOS**.
1640 * * **IPPROTO_IPV6**, which supports *optname* **IPV6_TCLASS**.
1641 * Return
1642 * 0 on success, or a negative error in case of failure.
1643 *
1644 * int bpf_override_return(struct pt_reg *regs, u64 rc)
1645 * Description
1646 * Used for error injection, this helper uses kprobes to override
1647 * the return value of the probed function, and to set it to *rc*.
1648 * The first argument is the context *regs* on which the kprobe
1649 * works.
1650 *
1651 * This helper works by setting setting the PC (program counter)
1652 * to an override function which is run in place of the original
1653 * probed function. This means the probed function is not run at
1654 * all. The replacement function just returns with the required
1655 * value.
1656 *
1657 * This helper has security implications, and thus is subject to
1658 * restrictions. It is only available if the kernel was compiled
1659 * with the **CONFIG_BPF_KPROBE_OVERRIDE** configuration
1660 * option, and in this case it only works on functions tagged with
1661 * **ALLOW_ERROR_INJECTION** in the kernel code.
1662 *
1663 * Also, the helper is only available for the architectures having
1664 * the CONFIG_FUNCTION_ERROR_INJECTION option. As of this writing,
1665 * x86 architecture is the only one to support this feature.
1666 * Return
1667 * 0
1668 *
a3ef8e9a 1669 * int bpf_sock_ops_cb_flags_set(struct bpf_sock_ops *bpf_sock, int argval)
7aa79a86
QM
1670 * Description
1671 * Attempt to set the value of the **bpf_sock_ops_cb_flags** field
1672 * for the full TCP socket associated to *bpf_sock_ops* to
1673 * *argval*.
1674 *
1675 * The primary use of this field is to determine if there should
1676 * be calls to eBPF programs of type
1677 * **BPF_PROG_TYPE_SOCK_OPS** at various points in the TCP
1678 * code. A program of the same type can change its value, per
1679 * connection and as necessary, when the connection is
1680 * established. This field is directly accessible for reading, but
1681 * this helper must be used for updates in order to return an
1682 * error if an eBPF program tries to set a callback that is not
1683 * supported in the current kernel.
1684 *
1685 * The supported callback values that *argval* can combine are:
1686 *
1687 * * **BPF_SOCK_OPS_RTO_CB_FLAG** (retransmission time out)
1688 * * **BPF_SOCK_OPS_RETRANS_CB_FLAG** (retransmission)
1689 * * **BPF_SOCK_OPS_STATE_CB_FLAG** (TCP state change)
1690 *
1691 * Here are some examples of where one could call such eBPF
1692 * program:
1693 *
1694 * * When RTO fires.
1695 * * When a packet is retransmitted.
1696 * * When the connection terminates.
1697 * * When a packet is sent.
1698 * * When a packet is received.
1699 * Return
1700 * Code **-EINVAL** if the socket is not a full TCP socket;
1701 * otherwise, a positive number containing the bits that could not
1702 * be set is returned (which comes down to 0 if all bits were set
1703 * as required).
1704 *
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QM
1705 * int bpf_msg_redirect_map(struct sk_msg_buff *msg, struct bpf_map *map, u32 key, u64 flags)
1706 * Description
1707 * This helper is used in programs implementing policies at the
1708 * socket level. If the message *msg* is allowed to pass (i.e. if
1709 * the verdict eBPF program returns **SK_PASS**), redirect it to
1710 * the socket referenced by *map* (of type
1711 * **BPF_MAP_TYPE_SOCKMAP**) at index *key*. Both ingress and
1712 * egress interfaces can be used for redirection. The
1713 * **BPF_F_INGRESS** value in *flags* is used to make the
1714 * distinction (ingress path is selected if the flag is present,
1715 * egress path otherwise). This is the only flag supported for now.
1716 * Return
1717 * **SK_PASS** on success, or **SK_DROP** on error.
1718 *
1719 * int bpf_msg_apply_bytes(struct sk_msg_buff *msg, u32 bytes)
1720 * Description
1721 * For socket policies, apply the verdict of the eBPF program to
1722 * the next *bytes* (number of bytes) of message *msg*.
1723 *
1724 * For example, this helper can be used in the following cases:
1725 *
1726 * * A single **sendmsg**\ () or **sendfile**\ () system call
1727 * contains multiple logical messages that the eBPF program is
1728 * supposed to read and for which it should apply a verdict.
1729 * * An eBPF program only cares to read the first *bytes* of a
1730 * *msg*. If the message has a large payload, then setting up
1731 * and calling the eBPF program repeatedly for all bytes, even
1732 * though the verdict is already known, would create unnecessary
1733 * overhead.
1734 *
1735 * When called from within an eBPF program, the helper sets a
1736 * counter internal to the BPF infrastructure, that is used to
1737 * apply the last verdict to the next *bytes*. If *bytes* is
1738 * smaller than the current data being processed from a
1739 * **sendmsg**\ () or **sendfile**\ () system call, the first
1740 * *bytes* will be sent and the eBPF program will be re-run with
1741 * the pointer for start of data pointing to byte number *bytes*
1742 * **+ 1**. If *bytes* is larger than the current data being
1743 * processed, then the eBPF verdict will be applied to multiple
1744 * **sendmsg**\ () or **sendfile**\ () calls until *bytes* are
1745 * consumed.
1746 *
1747 * Note that if a socket closes with the internal counter holding
1748 * a non-zero value, this is not a problem because data is not
1749 * being buffered for *bytes* and is sent as it is received.
1750 * Return
1751 * 0
1752 *
1753 * int bpf_msg_cork_bytes(struct sk_msg_buff *msg, u32 bytes)
1754 * Description
1755 * For socket policies, prevent the execution of the verdict eBPF
1756 * program for message *msg* until *bytes* (byte number) have been
1757 * accumulated.
1758 *
1759 * This can be used when one needs a specific number of bytes
1760 * before a verdict can be assigned, even if the data spans
1761 * multiple **sendmsg**\ () or **sendfile**\ () calls. The extreme
1762 * case would be a user calling **sendmsg**\ () repeatedly with
1763 * 1-byte long message segments. Obviously, this is bad for
1764 * performance, but it is still valid. If the eBPF program needs
1765 * *bytes* bytes to validate a header, this helper can be used to
1766 * prevent the eBPF program to be called again until *bytes* have
1767 * been accumulated.
1768 * Return
1769 * 0
1770 *
1771 * int bpf_msg_pull_data(struct sk_msg_buff *msg, u32 start, u32 end, u64 flags)
1772 * Description
1773 * For socket policies, pull in non-linear data from user space
1774 * for *msg* and set pointers *msg*\ **->data** and *msg*\
1775 * **->data_end** to *start* and *end* bytes offsets into *msg*,
1776 * respectively.
1777 *
1778 * If a program of type **BPF_PROG_TYPE_SK_MSG** is run on a
1779 * *msg* it can only parse data that the (**data**, **data_end**)
1780 * pointers have already consumed. For **sendmsg**\ () hooks this
1781 * is likely the first scatterlist element. But for calls relying
1782 * on the **sendpage** handler (e.g. **sendfile**\ ()) this will
1783 * be the range (**0**, **0**) because the data is shared with
1784 * user space and by default the objective is to avoid allowing
1785 * user space to modify data while (or after) eBPF verdict is
1786 * being decided. This helper can be used to pull in data and to
1787 * set the start and end pointer to given values. Data will be
1788 * copied if necessary (i.e. if data was not linear and if start
1789 * and end pointers do not point to the same chunk).
1790 *
1791 * A call to this helper is susceptible to change the underlaying
1792 * packet buffer. Therefore, at load time, all checks on pointers
1793 * previously done by the verifier are invalidated and must be
1794 * performed again, if the helper is used in combination with
1795 * direct packet access.
1796 *
1797 * All values for *flags* are reserved for future usage, and must
1798 * be left at zero.
1799 * Return
1800 * 0 on success, or a negative error in case of failure.
1801 *
a3ef8e9a 1802 * int bpf_bind(struct bpf_sock_addr *ctx, struct sockaddr *addr, int addr_len)
7aa79a86
QM
1803 * Description
1804 * Bind the socket associated to *ctx* to the address pointed by
1805 * *addr*, of length *addr_len*. This allows for making outgoing
1806 * connection from the desired IP address, which can be useful for
1807 * example when all processes inside a cgroup should use one
1808 * single IP address on a host that has multiple IP configured.
1809 *
1810 * This helper works for IPv4 and IPv6, TCP and UDP sockets. The
1811 * domain (*addr*\ **->sa_family**) must be **AF_INET** (or
1812 * **AF_INET6**). Looking for a free port to bind to can be
1813 * expensive, therefore binding to port is not permitted by the
1814 * helper: *addr*\ **->sin_port** (or **sin6_port**, respectively)
1815 * must be set to zero.
1816 * Return
1817 * 0 on success, or a negative error in case of failure.
2d020dd7
QM
1818 *
1819 * int bpf_xdp_adjust_tail(struct xdp_buff *xdp_md, int delta)
1820 * Description
1821 * Adjust (move) *xdp_md*\ **->data_end** by *delta* bytes. It is
1822 * only possible to shrink the packet as of this writing,
1823 * therefore *delta* must be a negative integer.
1824 *
1825 * A call to this helper is susceptible to change the underlaying
1826 * packet buffer. Therefore, at load time, all checks on pointers
1827 * previously done by the verifier are invalidated and must be
1828 * performed again, if the helper is used in combination with
1829 * direct packet access.
1830 * Return
1831 * 0 on success, or a negative error in case of failure.
1832 *
1833 * int bpf_skb_get_xfrm_state(struct sk_buff *skb, u32 index, struct bpf_xfrm_state *xfrm_state, u32 size, u64 flags)
1834 * Description
1835 * Retrieve the XFRM state (IP transform framework, see also
1836 * **ip-xfrm(8)**) at *index* in XFRM "security path" for *skb*.
1837 *
1838 * The retrieved value is stored in the **struct bpf_xfrm_state**
1839 * pointed by *xfrm_state* and of length *size*.
1840 *
1841 * All values for *flags* are reserved for future usage, and must
1842 * be left at zero.
1843 *
1844 * This helper is available only if the kernel was compiled with
1845 * **CONFIG_XFRM** configuration option.
1846 * Return
1847 * 0 on success, or a negative error in case of failure.
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YS
1848 *
1849 * int bpf_get_stack(struct pt_regs *regs, void *buf, u32 size, u64 flags)
1850 * Description
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QM
1851 * Return a user or a kernel stack in bpf program provided buffer.
1852 * To achieve this, the helper needs *ctx*, which is a pointer
1853 * to the context on which the tracing program is executed.
1854 * To store the stacktrace, the bpf program provides *buf* with
1855 * a nonnegative *size*.
1856 *
1857 * The last argument, *flags*, holds the number of stack frames to
1858 * skip (from 0 to 255), masked with
1859 * **BPF_F_SKIP_FIELD_MASK**. The next bits can be used to set
1860 * the following flags:
1861 *
1862 * **BPF_F_USER_STACK**
1863 * Collect a user space stack instead of a kernel stack.
1864 * **BPF_F_USER_BUILD_ID**
1865 * Collect buildid+offset instead of ips for user stack,
1866 * only valid if **BPF_F_USER_STACK** is also specified.
1867 *
1868 * **bpf_get_stack**\ () can collect up to
1869 * **PERF_MAX_STACK_DEPTH** both kernel and user frames, subject
1870 * to sufficient large buffer size. Note that
1871 * this limit can be controlled with the **sysctl** program, and
1872 * that it should be manually increased in order to profile long
1873 * user stacks (such as stacks for Java programs). To do so, use:
1874 *
1875 * ::
1876 *
1877 * # sysctl kernel.perf_event_max_stack=<new value>
c195651e 1878 * Return
7a279e93
QM
1879 * A non-negative value equal to or less than *size* on success,
1880 * or a negative error in case of failure.
4e1ec56c 1881 *
2bae79d2 1882 * int bpf_skb_load_bytes_relative(const struct sk_buff *skb, u32 offset, void *to, u32 len, u32 start_header)
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DB
1883 * Description
1884 * This helper is similar to **bpf_skb_load_bytes**\ () in that
1885 * it provides an easy way to load *len* bytes from *offset*
1886 * from the packet associated to *skb*, into the buffer pointed
1887 * by *to*. The difference to **bpf_skb_load_bytes**\ () is that
1888 * a fifth argument *start_header* exists in order to select a
1889 * base offset to start from. *start_header* can be one of:
1890 *
1891 * **BPF_HDR_START_MAC**
1892 * Base offset to load data from is *skb*'s mac header.
1893 * **BPF_HDR_START_NET**
1894 * Base offset to load data from is *skb*'s network header.
1895 *
1896 * In general, "direct packet access" is the preferred method to
1897 * access packet data, however, this helper is in particular useful
1898 * in socket filters where *skb*\ **->data** does not always point
1899 * to the start of the mac header and where "direct packet access"
1900 * is not available.
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DB
1901 * Return
1902 * 0 on success, or a negative error in case of failure.
1903 *
87f5fc7e
DA
1904 * int bpf_fib_lookup(void *ctx, struct bpf_fib_lookup *params, int plen, u32 flags)
1905 * Description
1906 * Do FIB lookup in kernel tables using parameters in *params*.
1907 * If lookup is successful and result shows packet is to be
1908 * forwarded, the neighbor tables are searched for the nexthop.
1909 * If successful (ie., FIB lookup shows forwarding and nexthop
fa898d76
DA
1910 * is resolved), the nexthop address is returned in ipv4_dst
1911 * or ipv6_dst based on family, smac is set to mac address of
1912 * egress device, dmac is set to nexthop mac address, rt_metric
4c79579b
DA
1913 * is set to metric from route (IPv4/IPv6 only), and ifindex
1914 * is set to the device index of the nexthop from the FIB lookup.
87f5fc7e
DA
1915 *
1916 * *plen* argument is the size of the passed in struct.
7a279e93
QM
1917 * *flags* argument can be a combination of one or more of the
1918 * following values:
87f5fc7e 1919 *
7a279e93
QM
1920 * **BPF_FIB_LOOKUP_DIRECT**
1921 * Do a direct table lookup vs full lookup using FIB
1922 * rules.
1923 * **BPF_FIB_LOOKUP_OUTPUT**
1924 * Perform lookup from an egress perspective (default is
1925 * ingress).
87f5fc7e
DA
1926 *
1927 * *ctx* is either **struct xdp_md** for XDP programs or
1928 * **struct sk_buff** tc cls_act programs.
87f5fc7e 1929 * Return
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DA
1930 * * < 0 if any input argument is invalid
1931 * * 0 on success (packet is forwarded, nexthop neighbor exists)
1932 * * > 0 one of **BPF_FIB_LKUP_RET_** codes explaining why the
2bae79d2 1933 * packet is not forwarded or needs assist from full stack
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JF
1934 *
1935 * int bpf_sock_hash_update(struct bpf_sock_ops_kern *skops, struct bpf_map *map, void *key, u64 flags)
1936 * Description
1937 * Add an entry to, or update a sockhash *map* referencing sockets.
1938 * The *skops* is used as a new value for the entry associated to
1939 * *key*. *flags* is one of:
1940 *
1941 * **BPF_NOEXIST**
1942 * The entry for *key* must not exist in the map.
1943 * **BPF_EXIST**
1944 * The entry for *key* must already exist in the map.
1945 * **BPF_ANY**
1946 * No condition on the existence of the entry for *key*.
1947 *
1948 * If the *map* has eBPF programs (parser and verdict), those will
1949 * be inherited by the socket being added. If the socket is
1950 * already attached to eBPF programs, this results in an error.
1951 * Return
1952 * 0 on success, or a negative error in case of failure.
1953 *
1954 * int bpf_msg_redirect_hash(struct sk_msg_buff *msg, struct bpf_map *map, void *key, u64 flags)
1955 * Description
1956 * This helper is used in programs implementing policies at the
1957 * socket level. If the message *msg* is allowed to pass (i.e. if
1958 * the verdict eBPF program returns **SK_PASS**), redirect it to
1959 * the socket referenced by *map* (of type
1960 * **BPF_MAP_TYPE_SOCKHASH**) using hash *key*. Both ingress and
1961 * egress interfaces can be used for redirection. The
1962 * **BPF_F_INGRESS** value in *flags* is used to make the
1963 * distinction (ingress path is selected if the flag is present,
1964 * egress path otherwise). This is the only flag supported for now.
1965 * Return
1966 * **SK_PASS** on success, or **SK_DROP** on error.
1967 *
1968 * int bpf_sk_redirect_hash(struct sk_buff *skb, struct bpf_map *map, void *key, u64 flags)
1969 * Description
1970 * This helper is used in programs implementing policies at the
1971 * skb socket level. If the sk_buff *skb* is allowed to pass (i.e.
1972 * if the verdeict eBPF program returns **SK_PASS**), redirect it
1973 * to the socket referenced by *map* (of type
1974 * **BPF_MAP_TYPE_SOCKHASH**) using hash *key*. Both ingress and
1975 * egress interfaces can be used for redirection. The
1976 * **BPF_F_INGRESS** value in *flags* is used to make the
1977 * distinction (ingress path is selected if the flag is present,
1978 * egress otherwise). This is the only flag supported for now.
1979 * Return
1980 * **SK_PASS** on success, or **SK_DROP** on error.
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MX
1981 *
1982 * int bpf_lwt_push_encap(struct sk_buff *skb, u32 type, void *hdr, u32 len)
1983 * Description
1984 * Encapsulate the packet associated to *skb* within a Layer 3
1985 * protocol header. This header is provided in the buffer at
1986 * address *hdr*, with *len* its size in bytes. *type* indicates
1987 * the protocol of the header and can be one of:
1988 *
1989 * **BPF_LWT_ENCAP_SEG6**
1990 * IPv6 encapsulation with Segment Routing Header
1991 * (**struct ipv6_sr_hdr**). *hdr* only contains the SRH,
1992 * the IPv6 header is computed by the kernel.
1993 * **BPF_LWT_ENCAP_SEG6_INLINE**
1994 * Only works if *skb* contains an IPv6 packet. Insert a
1995 * Segment Routing Header (**struct ipv6_sr_hdr**) inside
1996 * the IPv6 header.
1997 *
1998 * A call to this helper is susceptible to change the underlaying
1999 * packet buffer. Therefore, at load time, all checks on pointers
2000 * previously done by the verifier are invalidated and must be
2001 * performed again, if the helper is used in combination with
2002 * direct packet access.
2003 * Return
2004 * 0 on success, or a negative error in case of failure.
2005 *
2006 * int bpf_lwt_seg6_store_bytes(struct sk_buff *skb, u32 offset, const void *from, u32 len)
2007 * Description
2008 * Store *len* bytes from address *from* into the packet
2009 * associated to *skb*, at *offset*. Only the flags, tag and TLVs
2010 * inside the outermost IPv6 Segment Routing Header can be
2011 * modified through this helper.
2012 *
2013 * A call to this helper is susceptible to change the underlaying
2014 * packet buffer. Therefore, at load time, all checks on pointers
2015 * previously done by the verifier are invalidated and must be
2016 * performed again, if the helper is used in combination with
2017 * direct packet access.
2018 * Return
2019 * 0 on success, or a negative error in case of failure.
2020 *
2021 * int bpf_lwt_seg6_adjust_srh(struct sk_buff *skb, u32 offset, s32 delta)
2022 * Description
2023 * Adjust the size allocated to TLVs in the outermost IPv6
2024 * Segment Routing Header contained in the packet associated to
2025 * *skb*, at position *offset* by *delta* bytes. Only offsets
2026 * after the segments are accepted. *delta* can be as well
2027 * positive (growing) as negative (shrinking).
2028 *
2029 * A call to this helper is susceptible to change the underlaying
2030 * packet buffer. Therefore, at load time, all checks on pointers
2031 * previously done by the verifier are invalidated and must be
2032 * performed again, if the helper is used in combination with
2033 * direct packet access.
2034 * Return
2035 * 0 on success, or a negative error in case of failure.
2036 *
2037 * int bpf_lwt_seg6_action(struct sk_buff *skb, u32 action, void *param, u32 param_len)
2038 * Description
2039 * Apply an IPv6 Segment Routing action of type *action* to the
2040 * packet associated to *skb*. Each action takes a parameter
2041 * contained at address *param*, and of length *param_len* bytes.
2042 * *action* can be one of:
2043 *
2044 * **SEG6_LOCAL_ACTION_END_X**
2045 * End.X action: Endpoint with Layer-3 cross-connect.
2046 * Type of *param*: **struct in6_addr**.
2047 * **SEG6_LOCAL_ACTION_END_T**
2048 * End.T action: Endpoint with specific IPv6 table lookup.
2049 * Type of *param*: **int**.
2050 * **SEG6_LOCAL_ACTION_END_B6**
2051 * End.B6 action: Endpoint bound to an SRv6 policy.
2052 * Type of param: **struct ipv6_sr_hdr**.
2053 * **SEG6_LOCAL_ACTION_END_B6_ENCAP**
2054 * End.B6.Encap action: Endpoint bound to an SRv6
2055 * encapsulation policy.
2056 * Type of param: **struct ipv6_sr_hdr**.
2057 *
2058 * A call to this helper is susceptible to change the underlaying
2059 * packet buffer. Therefore, at load time, all checks on pointers
2060 * previously done by the verifier are invalidated and must be
2061 * performed again, if the helper is used in combination with
2062 * direct packet access.
2063 * Return
2064 * 0 on success, or a negative error in case of failure.
f4364dcf
SY
2065 *
2066 * int bpf_rc_keydown(void *ctx, u32 protocol, u64 scancode, u32 toggle)
2067 * Description
2068 * This helper is used in programs implementing IR decoding, to
2069 * report a successfully decoded key press with *scancode*,
2070 * *toggle* value in the given *protocol*. The scancode will be
2071 * translated to a keycode using the rc keymap, and reported as
2072 * an input key down event. After a period a key up event is
2073 * generated. This period can be extended by calling either
2074 * **bpf_rc_keydown** () again with the same values, or calling
2075 * **bpf_rc_repeat** ().
2076 *
2077 * Some protocols include a toggle bit, in case the button was
2078 * released and pressed again between consecutive scancodes.
2079 *
2080 * The *ctx* should point to the lirc sample as passed into
2081 * the program.
2082 *
2083 * The *protocol* is the decoded protocol number (see
2084 * **enum rc_proto** for some predefined values).
2085 *
2086 * This helper is only available is the kernel was compiled with
2087 * the **CONFIG_BPF_LIRC_MODE2** configuration option set to
2088 * "**y**".
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SY
2089 * Return
2090 * 0
2091 *
2092 * int bpf_rc_repeat(void *ctx)
2093 * Description
2094 * This helper is used in programs implementing IR decoding, to
2095 * report a successfully decoded repeat key message. This delays
2096 * the generation of a key up event for previously generated
2097 * key down event.
2098 *
2099 * Some IR protocols like NEC have a special IR message for
2100 * repeating last button, for when a button is held down.
2101 *
2102 * The *ctx* should point to the lirc sample as passed into
2103 * the program.
2104 *
2105 * This helper is only available is the kernel was compiled with
2106 * the **CONFIG_BPF_LIRC_MODE2** configuration option set to
2107 * "**y**".
f4364dcf
SY
2108 * Return
2109 * 0
cb20b08e
DB
2110 *
2111 * uint64_t bpf_skb_cgroup_id(struct sk_buff *skb)
2112 * Description
2113 * Return the cgroup v2 id of the socket associated with the *skb*.
2114 * This is roughly similar to the **bpf_get_cgroup_classid**\ ()
2115 * helper for cgroup v1 by providing a tag resp. identifier that
2116 * can be matched on or used for map lookups e.g. to implement
2117 * policy. The cgroup v2 id of a given path in the hierarchy is
2118 * exposed in user space through the f_handle API in order to get
2119 * to the same 64-bit id.
2120 *
2121 * This helper can be used on TC egress path, but not on ingress,
2122 * and is available only if the kernel was compiled with the
2123 * **CONFIG_SOCK_CGROUP_DATA** configuration option.
2124 * Return
2125 * The id is returned or 0 in case the id could not be retrieved.
bf6fa2c8 2126 *
77236281
AI
2127 * u64 bpf_skb_ancestor_cgroup_id(struct sk_buff *skb, int ancestor_level)
2128 * Description
2129 * Return id of cgroup v2 that is ancestor of cgroup associated
2130 * with the *skb* at the *ancestor_level*. The root cgroup is at
2131 * *ancestor_level* zero and each step down the hierarchy
2132 * increments the level. If *ancestor_level* == level of cgroup
2133 * associated with *skb*, then return value will be same as that
2134 * of **bpf_skb_cgroup_id**\ ().
2135 *
2136 * The helper is useful to implement policies based on cgroups
2137 * that are upper in hierarchy than immediate cgroup associated
2138 * with *skb*.
2139 *
2140 * The format of returned id and helper limitations are same as in
2141 * **bpf_skb_cgroup_id**\ ().
2142 * Return
2143 * The id is returned or 0 in case the id could not be retrieved.
2144 *
bf6fa2c8
YS
2145 * u64 bpf_get_current_cgroup_id(void)
2146 * Return
2147 * A 64-bit integer containing the current cgroup id based
2148 * on the cgroup within which the current task is running.
cd339431
RG
2149 *
2150 * void* get_local_storage(void *map, u64 flags)
2151 * Description
2152 * Get the pointer to the local storage area.
2153 * The type and the size of the local storage is defined
2154 * by the *map* argument.
2155 * The *flags* meaning is specific for each map type,
2156 * and has to be 0 for cgroup local storage.
2157 *
2158 * Depending on the bpf program type, a local storage area
2159 * can be shared between multiple instances of the bpf program,
2160 * running simultaneously.
2161 *
2162 * A user should care about the synchronization by himself.
2163 * For example, by using the BPF_STX_XADD instruction to alter
2164 * the shared data.
2165 * Return
2166 * Pointer to the local storage area.
2dbb9b9e
MKL
2167 *
2168 * int bpf_sk_select_reuseport(struct sk_reuseport_md *reuse, struct bpf_map *map, void *key, u64 flags)
2169 * Description
2170 * Select a SO_REUSEPORT sk from a BPF_MAP_TYPE_REUSEPORT_ARRAY map
2171 * It checks the selected sk is matching the incoming
2172 * request in the skb.
2173 * Return
2174 * 0 on success, or a negative error in case of failure.
6acc9b43
JS
2175 *
2176 * struct bpf_sock *bpf_sk_lookup_tcp(void *ctx, struct bpf_sock_tuple *tuple, u32 tuple_size, u32 netns, u64 flags)
2177 * Description
2178 * Look for TCP socket matching *tuple*, optionally in a child
2179 * network namespace *netns*. The return value must be checked,
2180 * and if non-NULL, released via **bpf_sk_release**\ ().
2181 *
2182 * The *ctx* should point to the context of the program, such as
2183 * the skb or socket (depending on the hook in use). This is used
2184 * to determine the base network namespace for the lookup.
2185 *
2186 * *tuple_size* must be one of:
2187 *
2188 * **sizeof**\ (*tuple*\ **->ipv4**)
2189 * Look for an IPv4 socket.
2190 * **sizeof**\ (*tuple*\ **->ipv6**)
2191 * Look for an IPv6 socket.
2192 *
2193 * If the *netns* is zero, then the socket lookup table in the
2194 * netns associated with the *ctx* will be used. For the TC hooks,
2195 * this in the netns of the device in the skb. For socket hooks,
2196 * this in the netns of the socket. If *netns* is non-zero, then
2197 * it specifies the ID of the netns relative to the netns
2198 * associated with the *ctx*.
2199 *
2200 * All values for *flags* are reserved for future usage, and must
2201 * be left at zero.
2202 *
2203 * This helper is available only if the kernel was compiled with
2204 * **CONFIG_NET** configuration option.
2205 * Return
2206 * Pointer to *struct bpf_sock*, or NULL in case of failure.
c8123ead
NH
2207 * For sockets with reuseport option, *struct bpf_sock*
2208 * return is from reuse->socks[] using hash of the packet.
6acc9b43
JS
2209 *
2210 * struct bpf_sock *bpf_sk_lookup_udp(void *ctx, struct bpf_sock_tuple *tuple, u32 tuple_size, u32 netns, u64 flags)
2211 * Description
2212 * Look for UDP socket matching *tuple*, optionally in a child
2213 * network namespace *netns*. The return value must be checked,
2214 * and if non-NULL, released via **bpf_sk_release**\ ().
2215 *
2216 * The *ctx* should point to the context of the program, such as
2217 * the skb or socket (depending on the hook in use). This is used
2218 * to determine the base network namespace for the lookup.
2219 *
2220 * *tuple_size* must be one of:
2221 *
2222 * **sizeof**\ (*tuple*\ **->ipv4**)
2223 * Look for an IPv4 socket.
2224 * **sizeof**\ (*tuple*\ **->ipv6**)
2225 * Look for an IPv6 socket.
2226 *
2227 * If the *netns* is zero, then the socket lookup table in the
2228 * netns associated with the *ctx* will be used. For the TC hooks,
2229 * this in the netns of the device in the skb. For socket hooks,
2230 * this in the netns of the socket. If *netns* is non-zero, then
2231 * it specifies the ID of the netns relative to the netns
2232 * associated with the *ctx*.
2233 *
2234 * All values for *flags* are reserved for future usage, and must
2235 * be left at zero.
2236 *
2237 * This helper is available only if the kernel was compiled with
2238 * **CONFIG_NET** configuration option.
2239 * Return
2240 * Pointer to *struct bpf_sock*, or NULL in case of failure.
c8123ead
NH
2241 * For sockets with reuseport option, *struct bpf_sock*
2242 * return is from reuse->socks[] using hash of the packet.
6acc9b43
JS
2243 *
2244 * int bpf_sk_release(struct bpf_sock *sk)
2245 * Description
2246 * Release the reference held by *sock*. *sock* must be a non-NULL
2247 * pointer that was returned from bpf_sk_lookup_xxx\ ().
2248 * Return
2249 * 0 on success, or a negative error in case of failure.
6fff607e
JF
2250 *
2251 * int bpf_msg_push_data(struct sk_buff *skb, u32 start, u32 len, u64 flags)
2252 * Description
2253 * For socket policies, insert *len* bytes into msg at offset
2254 * *start*.
2255 *
2256 * If a program of type **BPF_PROG_TYPE_SK_MSG** is run on a
2257 * *msg* it may want to insert metadata or options into the msg.
2258 * This can later be read and used by any of the lower layer BPF
2259 * hooks.
2260 *
2261 * This helper may fail if under memory pressure (a malloc
2262 * fails) in these cases BPF programs will get an appropriate
2263 * error and BPF programs will need to handle them.
2264 *
2265 * Return
2266 * 0 on success, or a negative error in case of failure.
ebb676da
TG
2267 */
2268#define __BPF_FUNC_MAPPER(FN) \
2269 FN(unspec), \
2270 FN(map_lookup_elem), \
2271 FN(map_update_elem), \
2272 FN(map_delete_elem), \
2273 FN(probe_read), \
2274 FN(ktime_get_ns), \
2275 FN(trace_printk), \
2276 FN(get_prandom_u32), \
2277 FN(get_smp_processor_id), \
2278 FN(skb_store_bytes), \
2279 FN(l3_csum_replace), \
2280 FN(l4_csum_replace), \
2281 FN(tail_call), \
2282 FN(clone_redirect), \
2283 FN(get_current_pid_tgid), \
2284 FN(get_current_uid_gid), \
2285 FN(get_current_comm), \
2286 FN(get_cgroup_classid), \
2287 FN(skb_vlan_push), \
2288 FN(skb_vlan_pop), \
2289 FN(skb_get_tunnel_key), \
2290 FN(skb_set_tunnel_key), \
2291 FN(perf_event_read), \
2292 FN(redirect), \
2293 FN(get_route_realm), \
2294 FN(perf_event_output), \
2295 FN(skb_load_bytes), \
2296 FN(get_stackid), \
2297 FN(csum_diff), \
2298 FN(skb_get_tunnel_opt), \
2299 FN(skb_set_tunnel_opt), \
2300 FN(skb_change_proto), \
2301 FN(skb_change_type), \
2302 FN(skb_under_cgroup), \
2303 FN(get_hash_recalc), \
2304 FN(get_current_task), \
2305 FN(probe_write_user), \
2306 FN(current_task_under_cgroup), \
2307 FN(skb_change_tail), \
2308 FN(skb_pull_data), \
2309 FN(csum_update), \
2310 FN(set_hash_invalid), \
3a0af8fd 2311 FN(get_numa_node_id), \
17bedab2 2312 FN(skb_change_head), \
a5e8c070 2313 FN(xdp_adjust_head), \
91b8270f 2314 FN(probe_read_str), \
6acc5c29 2315 FN(get_socket_cookie), \
ded092cd 2316 FN(get_socket_uid), \
8c4b4c7e 2317 FN(set_hash), \
2be7e212 2318 FN(setsockopt), \
97f91a7c 2319 FN(skb_adjust_room), \
174a79ff
JF
2320 FN(redirect_map), \
2321 FN(sk_redirect_map), \
2322 FN(sock_map_update), \
908432ca 2323 FN(xdp_adjust_meta), \
4bebdc7a 2324 FN(perf_event_read_value), \
cd86d1fd 2325 FN(perf_prog_read_value), \
9802d865 2326 FN(getsockopt), \
b13d8807 2327 FN(override_return), \
4f738adb 2328 FN(sock_ops_cb_flags_set), \
2a100317 2329 FN(msg_redirect_map), \
91843d54 2330 FN(msg_apply_bytes), \
015632bb 2331 FN(msg_cork_bytes), \
d74bad4e 2332 FN(msg_pull_data), \
b32cc5b9 2333 FN(bind), \
12bed760 2334 FN(xdp_adjust_tail), \
c195651e 2335 FN(skb_get_xfrm_state), \
4e1ec56c 2336 FN(get_stack), \
87f5fc7e 2337 FN(skb_load_bytes_relative), \
81110384
JF
2338 FN(fib_lookup), \
2339 FN(sock_hash_update), \
2340 FN(msg_redirect_hash), \
fe94cc29
MX
2341 FN(sk_redirect_hash), \
2342 FN(lwt_push_encap), \
2343 FN(lwt_seg6_store_bytes), \
2344 FN(lwt_seg6_adjust_srh), \
f4364dcf
SY
2345 FN(lwt_seg6_action), \
2346 FN(rc_repeat), \
cb20b08e 2347 FN(rc_keydown), \
bf6fa2c8 2348 FN(skb_cgroup_id), \
cd339431 2349 FN(get_current_cgroup_id), \
2dbb9b9e 2350 FN(get_local_storage), \
77236281 2351 FN(sk_select_reuseport), \
6acc9b43
JS
2352 FN(skb_ancestor_cgroup_id), \
2353 FN(sk_lookup_tcp), \
2354 FN(sk_lookup_udp), \
f1a2e44a
MV
2355 FN(sk_release), \
2356 FN(map_push_elem), \
2357 FN(map_pop_elem), \
6fff607e
JF
2358 FN(map_peek_elem), \
2359 FN(msg_push_data),
ebb676da 2360
09756af4
AS
2361/* integer value in 'imm' field of BPF_CALL instruction selects which helper
2362 * function eBPF program intends to call
2363 */
ebb676da 2364#define __BPF_ENUM_FN(x) BPF_FUNC_ ## x
09756af4 2365enum bpf_func_id {
ebb676da 2366 __BPF_FUNC_MAPPER(__BPF_ENUM_FN)
09756af4
AS
2367 __BPF_FUNC_MAX_ID,
2368};
ebb676da 2369#undef __BPF_ENUM_FN
09756af4 2370
781c53bc
DB
2371/* All flags used by eBPF helper functions, placed here. */
2372
2373/* BPF_FUNC_skb_store_bytes flags. */
2374#define BPF_F_RECOMPUTE_CSUM (1ULL << 0)
8afd54c8 2375#define BPF_F_INVALIDATE_HASH (1ULL << 1)
781c53bc
DB
2376
2377/* BPF_FUNC_l3_csum_replace and BPF_FUNC_l4_csum_replace flags.
2378 * First 4 bits are for passing the header field size.
2379 */
2380#define BPF_F_HDR_FIELD_MASK 0xfULL
2381
2382/* BPF_FUNC_l4_csum_replace flags. */
2383#define BPF_F_PSEUDO_HDR (1ULL << 4)
2f72959a 2384#define BPF_F_MARK_MANGLED_0 (1ULL << 5)
d1b662ad 2385#define BPF_F_MARK_ENFORCE (1ULL << 6)
781c53bc
DB
2386
2387/* BPF_FUNC_clone_redirect and BPF_FUNC_redirect flags. */
2388#define BPF_F_INGRESS (1ULL << 0)
2389
c6c33454
DB
2390/* BPF_FUNC_skb_set_tunnel_key and BPF_FUNC_skb_get_tunnel_key flags. */
2391#define BPF_F_TUNINFO_IPV6 (1ULL << 0)
2392
c195651e 2393/* flags for both BPF_FUNC_get_stackid and BPF_FUNC_get_stack. */
d5a3b1f6
AS
2394#define BPF_F_SKIP_FIELD_MASK 0xffULL
2395#define BPF_F_USER_STACK (1ULL << 8)
c195651e 2396/* flags used by BPF_FUNC_get_stackid only. */
d5a3b1f6
AS
2397#define BPF_F_FAST_STACK_CMP (1ULL << 9)
2398#define BPF_F_REUSE_STACKID (1ULL << 10)
c195651e
YS
2399/* flags used by BPF_FUNC_get_stack only. */
2400#define BPF_F_USER_BUILD_ID (1ULL << 11)
d5a3b1f6 2401
2da897e5
DB
2402/* BPF_FUNC_skb_set_tunnel_key flags. */
2403#define BPF_F_ZERO_CSUM_TX (1ULL << 1)
22080870 2404#define BPF_F_DONT_FRAGMENT (1ULL << 2)
77a5196a 2405#define BPF_F_SEQ_NUMBER (1ULL << 3)
2da897e5 2406
908432ca
YS
2407/* BPF_FUNC_perf_event_output, BPF_FUNC_perf_event_read and
2408 * BPF_FUNC_perf_event_read_value flags.
2409 */
1e33759c
DB
2410#define BPF_F_INDEX_MASK 0xffffffffULL
2411#define BPF_F_CURRENT_CPU BPF_F_INDEX_MASK
555c8a86
DB
2412/* BPF_FUNC_perf_event_output for sk_buff input context. */
2413#define BPF_F_CTXLEN_MASK (0xfffffULL << 32)
1e33759c 2414
2be7e212
DB
2415/* Mode for BPF_FUNC_skb_adjust_room helper. */
2416enum bpf_adj_room_mode {
2417 BPF_ADJ_ROOM_NET,
2418};
2419
4e1ec56c
DB
2420/* Mode for BPF_FUNC_skb_load_bytes_relative helper. */
2421enum bpf_hdr_start_off {
2422 BPF_HDR_START_MAC,
2423 BPF_HDR_START_NET,
2424};
2425
fe94cc29
MX
2426/* Encapsulation type for BPF_FUNC_lwt_push_encap helper. */
2427enum bpf_lwt_encap_mode {
2428 BPF_LWT_ENCAP_SEG6,
2429 BPF_LWT_ENCAP_SEG6_INLINE
2430};
2431
9bac3d6d
AS
2432/* user accessible mirror of in-kernel sk_buff.
2433 * new fields can only be added to the end of this structure
2434 */
2435struct __sk_buff {
2436 __u32 len;
2437 __u32 pkt_type;
2438 __u32 mark;
2439 __u32 queue_mapping;
c2497395
AS
2440 __u32 protocol;
2441 __u32 vlan_present;
2442 __u32 vlan_tci;
27cd5452 2443 __u32 vlan_proto;
bcad5718 2444 __u32 priority;
37e82c2f
AS
2445 __u32 ingress_ifindex;
2446 __u32 ifindex;
d691f9e8
AS
2447 __u32 tc_index;
2448 __u32 cb[5];
ba7591d8 2449 __u32 hash;
045efa82 2450 __u32 tc_classid;
969bf05e
AS
2451 __u32 data;
2452 __u32 data_end;
b1d9fc41 2453 __u32 napi_id;
8a31db56 2454
de8f3a83 2455 /* Accessed by BPF_PROG_TYPE_sk_skb types from here to ... */
8a31db56
JF
2456 __u32 family;
2457 __u32 remote_ip4; /* Stored in network byte order */
2458 __u32 local_ip4; /* Stored in network byte order */
2459 __u32 remote_ip6[4]; /* Stored in network byte order */
2460 __u32 local_ip6[4]; /* Stored in network byte order */
2461 __u32 remote_port; /* Stored in network byte order */
2462 __u32 local_port; /* stored in host byte order */
de8f3a83
DB
2463 /* ... here. */
2464
2465 __u32 data_meta;
d58e468b 2466 struct bpf_flow_keys *flow_keys;
9bac3d6d
AS
2467};
2468
d3aa45ce
AS
2469struct bpf_tunnel_key {
2470 __u32 tunnel_id;
c6c33454
DB
2471 union {
2472 __u32 remote_ipv4;
2473 __u32 remote_ipv6[4];
2474 };
2475 __u8 tunnel_tos;
2476 __u8 tunnel_ttl;
1fbc2e0c 2477 __u16 tunnel_ext; /* Padding, future use. */
4018ab18 2478 __u32 tunnel_label;
d3aa45ce
AS
2479};
2480
12bed760
EB
2481/* user accessible mirror of in-kernel xfrm_state.
2482 * new fields can only be added to the end of this structure
2483 */
2484struct bpf_xfrm_state {
2485 __u32 reqid;
2486 __u32 spi; /* Stored in network byte order */
2487 __u16 family;
1fbc2e0c 2488 __u16 ext; /* Padding, future use. */
12bed760
EB
2489 union {
2490 __u32 remote_ipv4; /* Stored in network byte order */
2491 __u32 remote_ipv6[4]; /* Stored in network byte order */
2492 };
2493};
2494
3a0af8fd
TG
2495/* Generic BPF return codes which all BPF program types may support.
2496 * The values are binary compatible with their TC_ACT_* counter-part to
2497 * provide backwards compatibility with existing SCHED_CLS and SCHED_ACT
2498 * programs.
2499 *
2500 * XDP is handled seprately, see XDP_*.
2501 */
2502enum bpf_ret_code {
2503 BPF_OK = 0,
2504 /* 1 reserved */
2505 BPF_DROP = 2,
2506 /* 3-6 reserved */
2507 BPF_REDIRECT = 7,
2508 /* >127 are reserved for prog type specific return codes */
2509};
2510
61023658
DA
2511struct bpf_sock {
2512 __u32 bound_dev_if;
aa4c1037
DA
2513 __u32 family;
2514 __u32 type;
2515 __u32 protocol;
482dca93
DA
2516 __u32 mark;
2517 __u32 priority;
aac3fc32
AI
2518 __u32 src_ip4; /* Allows 1,2,4-byte read.
2519 * Stored in network byte order.
2520 */
2521 __u32 src_ip6[4]; /* Allows 1,2,4-byte read.
2522 * Stored in network byte order.
2523 */
2524 __u32 src_port; /* Allows 4-byte read.
2525 * Stored in host byte order
2526 */
61023658
DA
2527};
2528
6acc9b43
JS
2529struct bpf_sock_tuple {
2530 union {
2531 struct {
2532 __be32 saddr;
2533 __be32 daddr;
2534 __be16 sport;
2535 __be16 dport;
2536 } ipv4;
2537 struct {
2538 __be32 saddr[4];
2539 __be32 daddr[4];
2540 __be16 sport;
2541 __be16 dport;
2542 } ipv6;
2543 };
2544};
2545
17bedab2
MKL
2546#define XDP_PACKET_HEADROOM 256
2547
6a773a15
BB
2548/* User return codes for XDP prog type.
2549 * A valid XDP program must return one of these defined values. All other
9beb8bed
DB
2550 * return codes are reserved for future use. Unknown return codes will
2551 * result in packet drops and a warning via bpf_warn_invalid_xdp_action().
6a773a15
BB
2552 */
2553enum xdp_action {
2554 XDP_ABORTED = 0,
2555 XDP_DROP,
2556 XDP_PASS,
6ce96ca3 2557 XDP_TX,
814abfab 2558 XDP_REDIRECT,
6a773a15
BB
2559};
2560
2561/* user accessible metadata for XDP packet hook
2562 * new fields must be added to the end of this structure
2563 */
2564struct xdp_md {
2565 __u32 data;
2566 __u32 data_end;
de8f3a83 2567 __u32 data_meta;
daaf24c6 2568 /* Below access go through struct xdp_rxq_info */
02dd3291
JDB
2569 __u32 ingress_ifindex; /* rxq->dev->ifindex */
2570 __u32 rx_queue_index; /* rxq->queue_index */
6a773a15
BB
2571};
2572
174a79ff 2573enum sk_action {
bfa64075
JF
2574 SK_DROP = 0,
2575 SK_PASS,
174a79ff
JF
2576};
2577
4f738adb
JF
2578/* user accessible metadata for SK_MSG packet hook, new fields must
2579 * be added to the end of this structure
2580 */
2581struct sk_msg_md {
2582 void *data;
2583 void *data_end;
303def35
JF
2584
2585 __u32 family;
2586 __u32 remote_ip4; /* Stored in network byte order */
2587 __u32 local_ip4; /* Stored in network byte order */
2588 __u32 remote_ip6[4]; /* Stored in network byte order */
2589 __u32 local_ip6[4]; /* Stored in network byte order */
2590 __u32 remote_port; /* Stored in network byte order */
2591 __u32 local_port; /* stored in host byte order */
4f738adb
JF
2592};
2593
2dbb9b9e
MKL
2594struct sk_reuseport_md {
2595 /*
2596 * Start of directly accessible data. It begins from
2597 * the tcp/udp header.
2598 */
2599 void *data;
2600 void *data_end; /* End of directly accessible data */
2601 /*
2602 * Total length of packet (starting from the tcp/udp header).
2603 * Note that the directly accessible bytes (data_end - data)
2604 * could be less than this "len". Those bytes could be
2605 * indirectly read by a helper "bpf_skb_load_bytes()".
2606 */
2607 __u32 len;
2608 /*
2609 * Eth protocol in the mac header (network byte order). e.g.
2610 * ETH_P_IP(0x0800) and ETH_P_IPV6(0x86DD)
2611 */
2612 __u32 eth_protocol;
2613 __u32 ip_protocol; /* IP protocol. e.g. IPPROTO_TCP, IPPROTO_UDP */
2614 __u32 bind_inany; /* Is sock bound to an INANY address? */
2615 __u32 hash; /* A hash of the packet 4 tuples */
2616};
2617
1e270976
MKL
2618#define BPF_TAG_SIZE 8
2619
2620struct bpf_prog_info {
2621 __u32 type;
2622 __u32 id;
2623 __u8 tag[BPF_TAG_SIZE];
2624 __u32 jited_prog_len;
2625 __u32 xlated_prog_len;
2626 __aligned_u64 jited_prog_insns;
2627 __aligned_u64 xlated_prog_insns;
cb4d2b3f
MKL
2628 __u64 load_time; /* ns since boottime */
2629 __u32 created_by_uid;
2630 __u32 nr_map_ids;
2631 __aligned_u64 map_ids;
067cae47 2632 char name[BPF_OBJ_NAME_LEN];
675fc275 2633 __u32 ifindex;
b85fab0e 2634 __u32 gpl_compatible:1;
675fc275
JK
2635 __u64 netns_dev;
2636 __u64 netns_ino;
dbecd738 2637 __u32 nr_jited_ksyms;
815581c1 2638 __u32 nr_jited_func_lens;
dbecd738 2639 __aligned_u64 jited_ksyms;
815581c1 2640 __aligned_u64 jited_func_lens;
1e270976
MKL
2641} __attribute__((aligned(8)));
2642
2643struct bpf_map_info {
2644 __u32 type;
2645 __u32 id;
2646 __u32 key_size;
2647 __u32 value_size;
2648 __u32 max_entries;
2649 __u32 map_flags;
067cae47 2650 char name[BPF_OBJ_NAME_LEN];
52775b33 2651 __u32 ifindex;
36f9814a 2652 __u32 :32;
52775b33
JK
2653 __u64 netns_dev;
2654 __u64 netns_ino;
78958fca 2655 __u32 btf_id;
9b2cf328
MKL
2656 __u32 btf_key_type_id;
2657 __u32 btf_value_type_id;
1e270976
MKL
2658} __attribute__((aligned(8)));
2659
62dab84c
MKL
2660struct bpf_btf_info {
2661 __aligned_u64 btf;
2662 __u32 btf_size;
2663 __u32 id;
2664} __attribute__((aligned(8)));
2665
4fbac77d
AI
2666/* User bpf_sock_addr struct to access socket fields and sockaddr struct passed
2667 * by user and intended to be used by socket (e.g. to bind to, depends on
2668 * attach attach type).
2669 */
2670struct bpf_sock_addr {
2671 __u32 user_family; /* Allows 4-byte read, but no write. */
2672 __u32 user_ip4; /* Allows 1,2,4-byte read and 4-byte write.
2673 * Stored in network byte order.
2674 */
2675 __u32 user_ip6[4]; /* Allows 1,2,4-byte read an 4-byte write.
2676 * Stored in network byte order.
2677 */
2678 __u32 user_port; /* Allows 4-byte read and write.
2679 * Stored in network byte order
2680 */
2681 __u32 family; /* Allows 4-byte read, but no write */
2682 __u32 type; /* Allows 4-byte read, but no write */
2683 __u32 protocol; /* Allows 4-byte read, but no write */
1cedee13
AI
2684 __u32 msg_src_ip4; /* Allows 1,2,4-byte read an 4-byte write.
2685 * Stored in network byte order.
2686 */
2687 __u32 msg_src_ip6[4]; /* Allows 1,2,4-byte read an 4-byte write.
2688 * Stored in network byte order.
2689 */
4fbac77d
AI
2690};
2691
40304b2a
LB
2692/* User bpf_sock_ops struct to access socket values and specify request ops
2693 * and their replies.
2694 * Some of this fields are in network (bigendian) byte order and may need
2695 * to be converted before use (bpf_ntohl() defined in samples/bpf/bpf_endian.h).
2696 * New fields can only be added at the end of this structure
2697 */
2698struct bpf_sock_ops {
2699 __u32 op;
2700 union {
de525be2
LB
2701 __u32 args[4]; /* Optionally passed to bpf program */
2702 __u32 reply; /* Returned by bpf program */
2703 __u32 replylong[4]; /* Optionally returned by bpf prog */
40304b2a
LB
2704 };
2705 __u32 family;
2706 __u32 remote_ip4; /* Stored in network byte order */
2707 __u32 local_ip4; /* Stored in network byte order */
2708 __u32 remote_ip6[4]; /* Stored in network byte order */
2709 __u32 local_ip6[4]; /* Stored in network byte order */
2710 __u32 remote_port; /* Stored in network byte order */
2711 __u32 local_port; /* stored in host byte order */
f19397a5
LB
2712 __u32 is_fullsock; /* Some TCP fields are only valid if
2713 * there is a full socket. If not, the
2714 * fields read as zero.
2715 */
2716 __u32 snd_cwnd;
2717 __u32 srtt_us; /* Averaged RTT << 3 in usecs */
b13d8807 2718 __u32 bpf_sock_ops_cb_flags; /* flags defined in uapi/linux/tcp.h */
44f0e430
LB
2719 __u32 state;
2720 __u32 rtt_min;
2721 __u32 snd_ssthresh;
2722 __u32 rcv_nxt;
2723 __u32 snd_nxt;
2724 __u32 snd_una;
2725 __u32 mss_cache;
2726 __u32 ecn_flags;
2727 __u32 rate_delivered;
2728 __u32 rate_interval_us;
2729 __u32 packets_out;
2730 __u32 retrans_out;
2731 __u32 total_retrans;
2732 __u32 segs_in;
2733 __u32 data_segs_in;
2734 __u32 segs_out;
2735 __u32 data_segs_out;
2736 __u32 lost_out;
2737 __u32 sacked_out;
2738 __u32 sk_txhash;
2739 __u64 bytes_received;
2740 __u64 bytes_acked;
40304b2a
LB
2741};
2742
b13d8807 2743/* Definitions for bpf_sock_ops_cb_flags */
f89013f6 2744#define BPF_SOCK_OPS_RTO_CB_FLAG (1<<0)
a31ad29e 2745#define BPF_SOCK_OPS_RETRANS_CB_FLAG (1<<1)
d4487491
LB
2746#define BPF_SOCK_OPS_STATE_CB_FLAG (1<<2)
2747#define BPF_SOCK_OPS_ALL_CB_FLAGS 0x7 /* Mask of all currently
b13d8807
LB
2748 * supported cb flags
2749 */
2750
40304b2a
LB
2751/* List of known BPF sock_ops operators.
2752 * New entries can only be added at the end
2753 */
2754enum {
2755 BPF_SOCK_OPS_VOID,
8550f328
LB
2756 BPF_SOCK_OPS_TIMEOUT_INIT, /* Should return SYN-RTO value to use or
2757 * -1 if default value should be used
2758 */
13d3b1eb
LB
2759 BPF_SOCK_OPS_RWND_INIT, /* Should return initial advertized
2760 * window (in packets) or -1 if default
2761 * value should be used
2762 */
9872a4bd
LB
2763 BPF_SOCK_OPS_TCP_CONNECT_CB, /* Calls BPF program right before an
2764 * active connection is initialized
2765 */
2766 BPF_SOCK_OPS_ACTIVE_ESTABLISHED_CB, /* Calls BPF program when an
2767 * active connection is
2768 * established
2769 */
2770 BPF_SOCK_OPS_PASSIVE_ESTABLISHED_CB, /* Calls BPF program when a
2771 * passive connection is
2772 * established
2773 */
91b5b21c
LB
2774 BPF_SOCK_OPS_NEEDS_ECN, /* If connection's congestion control
2775 * needs ECN
2776 */
e6546ef6
LB
2777 BPF_SOCK_OPS_BASE_RTT, /* Get base RTT. The correct value is
2778 * based on the path and may be
2779 * dependent on the congestion control
2780 * algorithm. In general it indicates
2781 * a congestion threshold. RTTs above
2782 * this indicate congestion
2783 */
f89013f6
LB
2784 BPF_SOCK_OPS_RTO_CB, /* Called when an RTO has triggered.
2785 * Arg1: value of icsk_retransmits
2786 * Arg2: value of icsk_rto
2787 * Arg3: whether RTO has expired
2788 */
a31ad29e
LB
2789 BPF_SOCK_OPS_RETRANS_CB, /* Called when skb is retransmitted.
2790 * Arg1: sequence number of 1st byte
2791 * Arg2: # segments
2792 * Arg3: return value of
2793 * tcp_transmit_skb (0 => success)
2794 */
d4487491
LB
2795 BPF_SOCK_OPS_STATE_CB, /* Called when TCP changes state.
2796 * Arg1: old_state
2797 * Arg2: new_state
2798 */
f333ee0c
AI
2799 BPF_SOCK_OPS_TCP_LISTEN_CB, /* Called on listen(2), right after
2800 * socket transition to LISTEN state.
2801 */
d4487491
LB
2802};
2803
2804/* List of TCP states. There is a build check in net/ipv4/tcp.c to detect
2805 * changes between the TCP and BPF versions. Ideally this should never happen.
2806 * If it does, we need to add code to convert them before calling
2807 * the BPF sock_ops function.
2808 */
2809enum {
2810 BPF_TCP_ESTABLISHED = 1,
2811 BPF_TCP_SYN_SENT,
2812 BPF_TCP_SYN_RECV,
2813 BPF_TCP_FIN_WAIT1,
2814 BPF_TCP_FIN_WAIT2,
2815 BPF_TCP_TIME_WAIT,
2816 BPF_TCP_CLOSE,
2817 BPF_TCP_CLOSE_WAIT,
2818 BPF_TCP_LAST_ACK,
2819 BPF_TCP_LISTEN,
2820 BPF_TCP_CLOSING, /* Now a valid state */
2821 BPF_TCP_NEW_SYN_RECV,
2822
2823 BPF_TCP_MAX_STATES /* Leave at the end! */
40304b2a
LB
2824};
2825
fc747810 2826#define TCP_BPF_IW 1001 /* Set TCP initial congestion window */
13bf9641 2827#define TCP_BPF_SNDCWND_CLAMP 1002 /* Set sndcwnd_clamp */
fc747810 2828
908432ca
YS
2829struct bpf_perf_event_value {
2830 __u64 counter;
2831 __u64 enabled;
2832 __u64 running;
2833};
2834
ebc614f6
RG
2835#define BPF_DEVCG_ACC_MKNOD (1ULL << 0)
2836#define BPF_DEVCG_ACC_READ (1ULL << 1)
2837#define BPF_DEVCG_ACC_WRITE (1ULL << 2)
2838
2839#define BPF_DEVCG_DEV_BLOCK (1ULL << 0)
2840#define BPF_DEVCG_DEV_CHAR (1ULL << 1)
2841
2842struct bpf_cgroup_dev_ctx {
06ef0ccb
YS
2843 /* access_type encoded as (BPF_DEVCG_ACC_* << 16) | BPF_DEVCG_DEV_* */
2844 __u32 access_type;
ebc614f6
RG
2845 __u32 major;
2846 __u32 minor;
2847};
2848
c4f6699d
AS
2849struct bpf_raw_tracepoint_args {
2850 __u64 args[0];
2851};
2852
87f5fc7e
DA
2853/* DIRECT: Skip the FIB rules and go to FIB table associated with device
2854 * OUTPUT: Do lookup from egress perspective; default is ingress
2855 */
2856#define BPF_FIB_LOOKUP_DIRECT BIT(0)
2857#define BPF_FIB_LOOKUP_OUTPUT BIT(1)
2858
4c79579b
DA
2859enum {
2860 BPF_FIB_LKUP_RET_SUCCESS, /* lookup successful */
2861 BPF_FIB_LKUP_RET_BLACKHOLE, /* dest is blackholed; can be dropped */
2862 BPF_FIB_LKUP_RET_UNREACHABLE, /* dest is unreachable; can be dropped */
2863 BPF_FIB_LKUP_RET_PROHIBIT, /* dest not allowed; can be dropped */
2864 BPF_FIB_LKUP_RET_NOT_FWDED, /* packet is not forwarded */
2865 BPF_FIB_LKUP_RET_FWD_DISABLED, /* fwding is not enabled on ingress */
2866 BPF_FIB_LKUP_RET_UNSUPP_LWT, /* fwd requires encapsulation */
2867 BPF_FIB_LKUP_RET_NO_NEIGH, /* no neighbor entry for nh */
2868 BPF_FIB_LKUP_RET_FRAG_NEEDED, /* fragmentation required to fwd */
2869};
2870
87f5fc7e 2871struct bpf_fib_lookup {
fa898d76
DA
2872 /* input: network family for lookup (AF_INET, AF_INET6)
2873 * output: network family of egress nexthop
2874 */
2875 __u8 family;
87f5fc7e
DA
2876
2877 /* set if lookup is to consider L4 data - e.g., FIB rules */
2878 __u8 l4_protocol;
2879 __be16 sport;
2880 __be16 dport;
2881
2882 /* total length of packet from network header - used for MTU check */
2883 __u16 tot_len;
4c79579b
DA
2884
2885 /* input: L3 device index for lookup
2886 * output: device index from FIB lookup
2887 */
2888 __u32 ifindex;
87f5fc7e
DA
2889
2890 union {
2891 /* inputs to lookup */
2892 __u8 tos; /* AF_INET */
bd3a08aa 2893 __be32 flowinfo; /* AF_INET6, flow_label + priority */
87f5fc7e 2894
fa898d76
DA
2895 /* output: metric of fib result (IPv4/IPv6 only) */
2896 __u32 rt_metric;
87f5fc7e
DA
2897 };
2898
2899 union {
87f5fc7e
DA
2900 __be32 ipv4_src;
2901 __u32 ipv6_src[4]; /* in6_addr; network order */
2902 };
2903
fa898d76
DA
2904 /* input to bpf_fib_lookup, ipv{4,6}_dst is destination address in
2905 * network header. output: bpf_fib_lookup sets to gateway address
2906 * if FIB lookup returns gateway route
87f5fc7e
DA
2907 */
2908 union {
87f5fc7e
DA
2909 __be32 ipv4_dst;
2910 __u32 ipv6_dst[4]; /* in6_addr; network order */
2911 };
2912
2913 /* output */
2914 __be16 h_vlan_proto;
2915 __be16 h_vlan_TCI;
2916 __u8 smac[6]; /* ETH_ALEN */
2917 __u8 dmac[6]; /* ETH_ALEN */
2918};
2919
41bdc4b4
YS
2920enum bpf_task_fd_type {
2921 BPF_FD_TYPE_RAW_TRACEPOINT, /* tp name */
2922 BPF_FD_TYPE_TRACEPOINT, /* tp name */
2923 BPF_FD_TYPE_KPROBE, /* (symbol + offset) or addr */
2924 BPF_FD_TYPE_KRETPROBE, /* (symbol + offset) or addr */
2925 BPF_FD_TYPE_UPROBE, /* filename + offset */
2926 BPF_FD_TYPE_URETPROBE, /* filename + offset */
2927};
2928
d58e468b
PP
2929struct bpf_flow_keys {
2930 __u16 nhoff;
2931 __u16 thoff;
2932 __u16 addr_proto; /* ETH_P_* of valid addrs */
2933 __u8 is_frag;
2934 __u8 is_first_frag;
2935 __u8 is_encap;
2936 __u8 ip_proto;
2937 __be16 n_proto;
2938 __be16 sport;
2939 __be16 dport;
2940 union {
2941 struct {
2942 __be32 ipv4_src;
2943 __be32 ipv4_dst;
2944 };
2945 struct {
2946 __u32 ipv6_src[4]; /* in6_addr; network order */
2947 __u32 ipv6_dst[4]; /* in6_addr; network order */
2948 };
2949 };
2950};
2951
daedfb22 2952#endif /* _UAPI__LINUX_BPF_H__ */