1 /*-
2 * SPDX-License-Identifier: BSD-3-Clause
3 *
4 * Copyright (c) 1982, 1986, 1988, 1993
5 * The Regents of the University of California.
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. Neither the name of the University nor the names of its contributors
17 * may be used to endorse or promote products derived from this software
18 * without specific prior written permission.
19 *
20 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
21 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
22 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
23 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
24 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
25 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
26 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
28 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
29 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
30 * SUCH DAMAGE.
31 */
32
33 #ifndef _SYS_MBUF_H_
34 #define _SYS_MBUF_H_
35
36 /* XXX: These includes suck. Sorry! */
37 #include <sys/queue.h>
38 #ifdef _KERNEL
39 #include <sys/systm.h>
40 #include <sys/refcount.h>
41 #include <vm/uma.h>
42
43 #include <sys/sdt.h>
44
45 #define MBUF_PROBE1(probe, arg0) \
46 SDT_PROBE1(sdt, , , probe, arg0)
47 #define MBUF_PROBE2(probe, arg0, arg1) \
48 SDT_PROBE2(sdt, , , probe, arg0, arg1)
49 #define MBUF_PROBE3(probe, arg0, arg1, arg2) \
50 SDT_PROBE3(sdt, , , probe, arg0, arg1, arg2)
51 #define MBUF_PROBE4(probe, arg0, arg1, arg2, arg3) \
52 SDT_PROBE4(sdt, , , probe, arg0, arg1, arg2, arg3)
53 #define MBUF_PROBE5(probe, arg0, arg1, arg2, arg3, arg4) \
54 SDT_PROBE5(sdt, , , probe, arg0, arg1, arg2, arg3, arg4)
55
56 SDT_PROBE_DECLARE(sdt, , , m__init);
57 SDT_PROBE_DECLARE(sdt, , , m__gethdr_raw);
58 SDT_PROBE_DECLARE(sdt, , , m__gethdr);
59 SDT_PROBE_DECLARE(sdt, , , m__get_raw);
60 SDT_PROBE_DECLARE(sdt, , , m__get);
61 SDT_PROBE_DECLARE(sdt, , , m__getcl);
62 SDT_PROBE_DECLARE(sdt, , , m__getjcl);
63 SDT_PROBE_DECLARE(sdt, , , m__clget);
64 SDT_PROBE_DECLARE(sdt, , , m__cljget);
65 SDT_PROBE_DECLARE(sdt, , , m__cljset);
66 SDT_PROBE_DECLARE(sdt, , , m__free);
67 SDT_PROBE_DECLARE(sdt, , , m__freem);
68 SDT_PROBE_DECLARE(sdt, , , m__freemp);
69
70 #endif /* _KERNEL */
71
72 /*
73 * Mbufs are of a single size, MSIZE (sys/param.h), which includes overhead.
74 * An mbuf may add a single "mbuf cluster" of size MCLBYTES (also in
75 * sys/param.h), which has no additional overhead and is used instead of the
76 * internal data area; this is done when at least MINCLSIZE of data must be
77 * stored. Additionally, it is possible to allocate a separate buffer
78 * externally and attach it to the mbuf in a way similar to that of mbuf
79 * clusters.
80 *
81 * NB: These calculation do not take actual compiler-induced alignment and
82 * padding inside the complete struct mbuf into account. Appropriate
83 * attention is required when changing members of struct mbuf.
84 *
85 * MLEN is data length in a normal mbuf.
86 * MHLEN is data length in an mbuf with pktheader.
87 * MINCLSIZE is a smallest amount of data that should be put into cluster.
88 *
89 * Compile-time assertions in uipc_mbuf.c test these values to ensure that
90 * they are sensible.
91 */
92 struct mbuf;
93 #define MHSIZE offsetof(struct mbuf, m_dat)
94 #define MPKTHSIZE offsetof(struct mbuf, m_pktdat)
95 #define MLEN ((int)(MSIZE - MHSIZE))
96 #define MHLEN ((int)(MSIZE - MPKTHSIZE))
97 #define MINCLSIZE (MHLEN + 1)
98 #define M_NODOM 255
99
100 #ifdef _KERNEL
101 /*-
102 * Macro for type conversion: convert mbuf pointer to data pointer of correct
103 * type:
104 *
105 * mtod(m, t) -- Convert mbuf pointer to data pointer of correct type.
106 * mtodo(m, o) -- Same as above but with offset 'o' into data.
107 */
108 #define mtod(m, t) ((t)((m)->m_data))
109 #define mtodo(m, o) ((void *)(((m)->m_data) + (o)))
110
111 /*
112 * Argument structure passed to UMA routines during mbuf and packet
113 * allocations.
114 */
115 struct mb_args {
116 int flags; /* Flags for mbuf being allocated */
117 short type; /* Type of mbuf being allocated */
118 };
119 #endif /* _KERNEL */
120
121 /*
122 * Packet tag structure (see below for details).
123 */
124 struct m_tag {
125 SLIST_ENTRY(m_tag) m_tag_link; /* List of packet tags */
126 u_int16_t m_tag_id; /* Tag ID */
127 u_int16_t m_tag_len; /* Length of data */
128 u_int32_t m_tag_cookie; /* ABI/Module ID */
129 void (*m_tag_free)(struct m_tag *);
130 };
131
132 /*
133 * Static network interface owned tag.
134 * Allocated through ifp->if_snd_tag_alloc().
135 */
136 struct if_snd_tag_sw;
137
138 struct m_snd_tag {
139 struct ifnet *ifp; /* network interface tag belongs to */
140 const struct if_snd_tag_sw *sw;
141 volatile u_int refcount;
142 };
143
144 /*
145 * Record/packet header in first mbuf of chain; valid only if M_PKTHDR is set.
146 * Size ILP32: 56
147 * LP64: 64
148 * Compile-time assertions in uipc_mbuf.c test these values to ensure that
149 * they are correct.
150 */
151 struct pkthdr {
152 union {
153 struct m_snd_tag *snd_tag; /* send tag, if any */
154 struct ifnet *rcvif; /* rcv interface */
155 struct {
156 uint16_t rcvidx; /* rcv interface index ... */
157 uint16_t rcvgen; /* ... and generation count */
158 };
159 };
160 union {
161 struct ifnet *leaf_rcvif; /* leaf rcv interface */
162 struct {
163 uint16_t leaf_rcvidx; /* leaf rcv interface index ... */
164 uint16_t leaf_rcvgen; /* ... and generation count */
165 };
166 };
167 SLIST_HEAD(packet_tags, m_tag) tags; /* list of packet tags */
168 int32_t len; /* total packet length */
169
170 /* Layer crossing persistent information. */
171 uint32_t flowid; /* packet's 4-tuple system */
172 uint32_t csum_flags; /* checksum and offload features */
173 uint16_t fibnum; /* this packet should use this fib */
174 uint8_t numa_domain; /* NUMA domain of recvd pkt */
175 uint8_t rsstype; /* hash type */
176 #if !defined(__LP64__)
177 uint32_t pad; /* pad for 64bit alignment */
178 #endif
179 union {
180 uint64_t rcv_tstmp; /* timestamp in ns */
181 struct {
182 uint8_t l2hlen; /* layer 2 hdr len */
183 uint8_t l3hlen; /* layer 3 hdr len */
184 uint8_t l4hlen; /* layer 4 hdr len */
185 uint8_t l5hlen; /* layer 5 hdr len */
186 uint8_t inner_l2hlen;
187 uint8_t inner_l3hlen;
188 uint8_t inner_l4hlen;
189 uint8_t inner_l5hlen;
190 };
191 };
192 union {
193 uint8_t eight[8];
194 uint16_t sixteen[4];
195 uint32_t thirtytwo[2];
196 uint64_t sixtyfour[1];
197 uintptr_t unintptr[1];
198 void *ptr;
199 } PH_per;
200
201 /* Layer specific non-persistent local storage for reassembly, etc. */
202 union {
203 union {
204 uint8_t eight[8];
205 uint16_t sixteen[4];
206 uint32_t thirtytwo[2];
207 uint64_t sixtyfour[1];
208 uintptr_t unintptr[1];
209 void *ptr;
210 } PH_loc;
211 /* Upon allocation: total packet memory consumption. */
212 u_int memlen;
213 };
214 };
215 #define ether_vtag PH_per.sixteen[0]
216 #define tcp_tun_port PH_per.sixteen[0] /* outbound */
217 #define vt_nrecs PH_per.sixteen[0] /* mld and v6-ND */
218 #define tso_segsz PH_per.sixteen[1] /* inbound after LRO */
219 #define lro_nsegs tso_segsz /* inbound after LRO */
220 #define csum_data PH_per.thirtytwo[1] /* inbound from hardware up */
221 #define lro_tcp_d_len PH_loc.sixteen[0] /* inbound during LRO (no reassembly) */
222 #define lro_tcp_d_csum PH_loc.sixteen[1] /* inbound during LRO (no reassembly) */
223 #define lro_tcp_h_off PH_loc.sixteen[2] /* inbound during LRO (no reassembly) */
224 #define lro_etype PH_loc.sixteen[3] /* inbound during LRO (no reassembly) */
225 /* Note PH_loc is used during IP reassembly (all 8 bytes as a ptr) */
226
227 /*
228 * TLS records for TLS 1.0-1.2 can have the following header lengths:
229 * - 5 (AES-CBC with implicit IV)
230 * - 21 (AES-CBC with explicit IV)
231 * - 13 (AES-GCM with 8 byte explicit IV)
232 */
233 #define MBUF_PEXT_HDR_LEN 23
234
235 /*
236 * TLS records for TLS 1.0-1.2 can have the following maximum trailer
237 * lengths:
238 * - 16 (AES-GCM)
239 * - 36 (AES-CBC with SHA1 and up to 16 bytes of padding)
240 * - 48 (AES-CBC with SHA2-256 and up to 16 bytes of padding)
241 * - 64 (AES-CBC with SHA2-384 and up to 16 bytes of padding)
242 */
243 #define MBUF_PEXT_TRAIL_LEN 64
244
245 #if defined(__LP64__)
246 #define MBUF_PEXT_MAX_PGS (40 / sizeof(vm_paddr_t))
247 #else
248 #define MBUF_PEXT_MAX_PGS (64 / sizeof(vm_paddr_t))
249 #endif
250
251 #define MBUF_PEXT_MAX_BYTES \
252 (MBUF_PEXT_MAX_PGS * PAGE_SIZE + MBUF_PEXT_HDR_LEN + MBUF_PEXT_TRAIL_LEN)
253
254 struct ktls_session;
255 struct socket;
256
257 /*
258 * Description of external storage mapped into mbuf; valid only if M_EXT is
259 * set.
260 * Size ILP32: 28
261 * LP64: 48
262 * Compile-time assertions in uipc_mbuf.c test these values to ensure that
263 * they are correct.
264 */
265 typedef void m_ext_free_t(struct mbuf *);
266 struct m_ext {
267 union {
268 /*
269 * If EXT_FLAG_EMBREF is set, then we use refcount in the
270 * mbuf, the 'ext_count' member. Otherwise, we have a
271 * shadow copy and we use pointer 'ext_cnt'. The original
272 * mbuf is responsible to carry the pointer to free routine
273 * and its arguments. They aren't copied into shadows in
274 * mb_dupcl() to avoid dereferencing next cachelines.
275 */
276 volatile u_int ext_count;
277 volatile u_int *ext_cnt;
278 };
279 uint32_t ext_size; /* size of buffer, for ext_free */
280 uint32_t ext_type:8, /* type of external storage */
281 ext_flags:24; /* external storage mbuf flags */
282 union {
283 struct {
284 /*
285 * Regular M_EXT mbuf:
286 * o ext_buf always points to the external buffer.
287 * o ext_free (below) and two optional arguments
288 * ext_arg1 and ext_arg2 store the free context for
289 * the external storage. They are set only in the
290 * refcount carrying mbuf, the one with
291 * EXT_FLAG_EMBREF flag, with exclusion for
292 * EXT_EXTREF type, where the free context is copied
293 * into all mbufs that use same external storage.
294 */
295 char *ext_buf; /* start of buffer */
296 #define m_ext_copylen offsetof(struct m_ext, ext_arg2)
297 void *ext_arg2;
298 };
299 struct {
300 /*
301 * Multi-page M_EXTPG mbuf:
302 * o extpg_pa - page vector.
303 * o extpg_trail and extpg_hdr - TLS trailer and
304 * header.
305 * Uses ext_free and may also use ext_arg1.
306 */
307 vm_paddr_t extpg_pa[MBUF_PEXT_MAX_PGS];
308 char extpg_trail[MBUF_PEXT_TRAIL_LEN];
309 char extpg_hdr[MBUF_PEXT_HDR_LEN];
310 /* Pretend these 3 fields are part of mbuf itself. */
311 #define m_epg_pa m_ext.extpg_pa
312 #define m_epg_trail m_ext.extpg_trail
313 #define m_epg_hdr m_ext.extpg_hdr
314 #define m_epg_ext_copylen offsetof(struct m_ext, ext_free)
315 };
316 };
317 /*
318 * Free method and optional argument pointer, both
319 * used by M_EXT and M_EXTPG.
320 */
321 m_ext_free_t *ext_free;
322 void *ext_arg1;
323 };
324
325 /*
326 * The core of the mbuf object along with some shortcut defines for practical
327 * purposes.
328 */
329 struct mbuf {
330 /*
331 * Header present at the beginning of every mbuf.
332 * Size ILP32: 24
333 * LP64: 32
334 * Compile-time assertions in uipc_mbuf.c test these values to ensure
335 * that they are correct.
336 */
337 union { /* next buffer in chain */
338 struct mbuf *m_next;
339 SLIST_ENTRY(mbuf) m_slist;
340 STAILQ_ENTRY(mbuf) m_stailq;
341 };
342 union { /* next chain in queue/record */
343 struct mbuf *m_nextpkt;
344 SLIST_ENTRY(mbuf) m_slistpkt;
345 STAILQ_ENTRY(mbuf) m_stailqpkt;
346 };
347 caddr_t m_data; /* location of data */
348 int32_t m_len; /* amount of data in this mbuf */
349 uint32_t m_type:8, /* type of data in this mbuf */
350 m_flags:24; /* flags; see below */
351 #if !defined(__LP64__)
352 uint32_t m_pad; /* pad for 64bit alignment */
353 #endif
354
355 /*
356 * A set of optional headers (packet header, external storage header)
357 * and internal data storage. Historically, these arrays were sized
358 * to MHLEN (space left after a packet header) and MLEN (space left
359 * after only a regular mbuf header); they are now variable size in
360 * order to support future work on variable-size mbufs.
361 */
362 union {
363 struct {
364 union {
365 /* M_PKTHDR set. */
366 struct pkthdr m_pkthdr;
367
368 /* M_EXTPG set.
369 * Multi-page M_EXTPG mbuf has its meta data
370 * split between the below anonymous structure
371 * and m_ext. It carries vector of pages,
372 * optional header and trailer char vectors
373 * and pointers to socket/TLS data.
374 */
375 #define m_epg_startcopy m_epg_npgs
376 #define m_epg_endcopy m_epg_stailq
377 struct {
378 /* Overall count of pages and count of
379 * pages with I/O pending. */
380 uint8_t m_epg_npgs;
381 uint8_t m_epg_nrdy;
382 /* TLS header and trailer lengths.
383 * The data itself resides in m_ext. */
384 uint8_t m_epg_hdrlen;
385 uint8_t m_epg_trllen;
386 /* Offset into 1st page and length of
387 * data in the last page. */
388 uint16_t m_epg_1st_off;
389 uint16_t m_epg_last_len;
390 uint8_t m_epg_flags;
391 #define EPG_FLAG_ANON 0x1 /* Data can be encrypted in place. */
392 #define EPG_FLAG_2FREE 0x2 /* Scheduled for free. */
393 uint8_t m_epg_record_type;
394 uint8_t __spare[2];
395 int m_epg_enc_cnt;
396 struct ktls_session *m_epg_tls;
397 struct socket *m_epg_so;
398 uint64_t m_epg_seqno;
399 STAILQ_ENTRY(mbuf) m_epg_stailq;
400 };
401 };
402 union {
403 /* M_EXT or M_EXTPG set. */
404 struct m_ext m_ext;
405 /* M_PKTHDR set, neither M_EXT nor M_EXTPG. */
406 char m_pktdat[0];
407 };
408 };
409 char m_dat[0]; /* !M_PKTHDR, !M_EXT */
410 };
411 };
412
413 #ifdef _KERNEL
414 static inline int
m_epg_pagelen(const struct mbuf * m,int pidx,int pgoff)415 m_epg_pagelen(const struct mbuf *m, int pidx, int pgoff)
416 {
417
418 KASSERT(pgoff == 0 || pidx == 0,
419 ("page %d with non-zero offset %d in %p", pidx, pgoff, m));
420
421 if (pidx == m->m_epg_npgs - 1) {
422 return (m->m_epg_last_len);
423 } else {
424 return (PAGE_SIZE - pgoff);
425 }
426 }
427
428 #ifdef INVARIANTS
429 #define MCHECK(ex, msg) KASSERT((ex), \
430 ("Multi page mbuf %p with " #msg " at %s:%d", \
431 m, __FILE__, __LINE__))
432 /*
433 * NB: This expects a non-empty buffer (npgs > 0 and
434 * last_pg_len > 0).
435 */
436 #define MBUF_EXT_PGS_ASSERT_SANITY(m) do { \
437 MCHECK(m->m_epg_npgs > 0, "no valid pages"); \
438 MCHECK(m->m_epg_npgs <= nitems(m->m_epg_pa), \
439 "too many pages"); \
440 MCHECK(m->m_epg_nrdy <= m->m_epg_npgs, \
441 "too many ready pages"); \
442 MCHECK(m->m_epg_1st_off < PAGE_SIZE, \
443 "too large page offset"); \
444 MCHECK(m->m_epg_last_len > 0, "zero last page length"); \
445 MCHECK(m->m_epg_last_len <= PAGE_SIZE, \
446 "too large last page length"); \
447 if (m->m_epg_npgs == 1) \
448 MCHECK(m->m_epg_1st_off + \
449 m->m_epg_last_len <= PAGE_SIZE, \
450 "single page too large"); \
451 MCHECK(m->m_epg_hdrlen <= sizeof(m->m_epg_hdr), \
452 "too large header length"); \
453 MCHECK(m->m_epg_trllen <= sizeof(m->m_epg_trail), \
454 "too large header length"); \
455 } while (0)
456 #else
457 #define MBUF_EXT_PGS_ASSERT_SANITY(m) do {} while (0)
458 #endif
459 #endif
460
461 /*
462 * mbuf flags of global significance and layer crossing.
463 * Those of only protocol/layer specific significance are to be mapped
464 * to M_PROTO[1-11] and cleared at layer handoff boundaries.
465 * NB: Limited to the lower 24 bits.
466 */
467 #define M_EXT 0x00000001 /* has associated external storage */
468 #define M_PKTHDR 0x00000002 /* start of record */
469 #define M_EOR 0x00000004 /* end of record */
470 #define M_RDONLY 0x00000008 /* associated data is marked read-only */
471 #define M_BCAST 0x00000010 /* send/received as link-level broadcast */
472 #define M_MCAST 0x00000020 /* send/received as link-level multicast */
473 #define M_PROMISC 0x00000040 /* packet was not for us */
474 #define M_VLANTAG 0x00000080 /* ether_vtag is valid */
475 #define M_EXTPG 0x00000100 /* has array of unmapped pages and TLS */
476 #define M_NOFREE 0x00000200 /* do not free mbuf, embedded in cluster */
477 #define M_TSTMP 0x00000400 /* rcv_tstmp field is valid */
478 #define M_TSTMP_HPREC 0x00000800 /* rcv_tstmp is high-prec, typically
479 hw-stamped on port (useful for IEEE 1588
480 and 802.1AS) */
481 #define M_TSTMP_LRO 0x00001000 /* Time LRO pushed in pkt is valid in (PH_loc) */
482
483 #define M_PROTO1 0x00002000 /* protocol-specific */
484 #define M_PROTO2 0x00004000 /* protocol-specific */
485 #define M_PROTO3 0x00008000 /* protocol-specific */
486 #define M_PROTO4 0x00010000 /* protocol-specific */
487 #define M_PROTO5 0x00020000 /* protocol-specific */
488 #define M_PROTO6 0x00040000 /* protocol-specific */
489 #define M_PROTO7 0x00080000 /* protocol-specific */
490 #define M_PROTO8 0x00100000 /* protocol-specific */
491 #define M_PROTO9 0x00200000 /* protocol-specific */
492 #define M_PROTO10 0x00400000 /* protocol-specific */
493 #define M_PROTO11 0x00800000 /* protocol-specific */
494
495 /*
496 * Flags to purge when crossing layers.
497 */
498 #define M_PROTOFLAGS \
499 (M_PROTO1|M_PROTO2|M_PROTO3|M_PROTO4|M_PROTO5|M_PROTO6|M_PROTO7|M_PROTO8|\
500 M_PROTO9|M_PROTO10|M_PROTO11)
501
502 /*
503 * Flags preserved when copying m_pkthdr.
504 */
505 #define M_COPYFLAGS \
506 (M_PKTHDR|M_EOR|M_RDONLY|M_BCAST|M_MCAST|M_PROMISC|M_VLANTAG|M_TSTMP| \
507 M_TSTMP_HPREC|M_TSTMP_LRO|M_PROTOFLAGS)
508
509 /*
510 * Flags preserved during demote.
511 */
512 #define M_DEMOTEFLAGS \
513 (M_EXT | M_RDONLY | M_NOFREE | M_EXTPG)
514
515 /*
516 * Mbuf flag description for use with printf(9) %b identifier.
517 */
518 #define M_FLAG_BITS \
519 "\20\1M_EXT\2M_PKTHDR\3M_EOR\4M_RDONLY\5M_BCAST\6M_MCAST" \
520 "\7M_PROMISC\10M_VLANTAG\11M_EXTPG\12M_NOFREE\13M_TSTMP\14M_TSTMP_HPREC\15M_TSTMP_LRO"
521 #define M_FLAG_PROTOBITS \
522 "\16M_PROTO1\17M_PROTO2\20M_PROTO3\21M_PROTO4" \
523 "\22M_PROTO5\23M_PROTO6\24M_PROTO7\25M_PROTO8\26M_PROTO9" \
524 "\27M_PROTO10\28M_PROTO11"
525 #define M_FLAG_PRINTF (M_FLAG_BITS M_FLAG_PROTOBITS)
526
527 /*
528 * Network interface cards are able to hash protocol fields (such as IPv4
529 * addresses and TCP port numbers) classify packets into flows. These flows
530 * can then be used to maintain ordering while delivering packets to the OS
531 * via parallel input queues, as well as to provide a stateless affinity
532 * model. NIC drivers can pass up the hash via m->m_pkthdr.flowid, and set
533 * m_flag fields to indicate how the hash should be interpreted by the
534 * network stack.
535 *
536 * Most NICs support RSS, which provides ordering and explicit affinity, and
537 * use the hash m_flag bits to indicate what header fields were covered by
538 * the hash. M_HASHTYPE_OPAQUE and M_HASHTYPE_OPAQUE_HASH can be set by non-
539 * RSS cards or configurations that provide an opaque flow identifier, allowing
540 * for ordering and distribution without explicit affinity. Additionally,
541 * M_HASHTYPE_OPAQUE_HASH indicates that the flow identifier has hash
542 * properties.
543 *
544 * The meaning of the IPV6_EX suffix:
545 * "o Home address from the home address option in the IPv6 destination
546 * options header. If the extension header is not present, use the Source
547 * IPv6 Address.
548 * o IPv6 address that is contained in the Routing-Header-Type-2 from the
549 * associated extension header. If the extension header is not present,
550 * use the Destination IPv6 Address."
551 * Quoted from:
552 * https://docs.microsoft.com/en-us/windows-hardware/drivers/network/rss-hashing-types#ndishashipv6ex
553 */
554 #define M_HASHTYPE_HASHPROP 0x80 /* has hash properties */
555 #define M_HASHTYPE_INNER 0x40 /* calculated from inner headers */
556 #define M_HASHTYPE_HASH(t) (M_HASHTYPE_HASHPROP | (t))
557 /* Microsoft RSS standard hash types */
558 #define M_HASHTYPE_NONE 0
559 #define M_HASHTYPE_RSS_IPV4 M_HASHTYPE_HASH(1) /* IPv4 2-tuple */
560 #define M_HASHTYPE_RSS_TCP_IPV4 M_HASHTYPE_HASH(2) /* TCPv4 4-tuple */
561 #define M_HASHTYPE_RSS_IPV6 M_HASHTYPE_HASH(3) /* IPv6 2-tuple */
562 #define M_HASHTYPE_RSS_TCP_IPV6 M_HASHTYPE_HASH(4) /* TCPv6 4-tuple */
563 #define M_HASHTYPE_RSS_IPV6_EX M_HASHTYPE_HASH(5) /* IPv6 2-tuple +
564 * ext hdrs */
565 #define M_HASHTYPE_RSS_TCP_IPV6_EX M_HASHTYPE_HASH(6) /* TCPv6 4-tuple +
566 * ext hdrs */
567 #define M_HASHTYPE_RSS_UDP_IPV4 M_HASHTYPE_HASH(7) /* IPv4 UDP 4-tuple*/
568 #define M_HASHTYPE_RSS_UDP_IPV6 M_HASHTYPE_HASH(9) /* IPv6 UDP 4-tuple*/
569 #define M_HASHTYPE_RSS_UDP_IPV6_EX M_HASHTYPE_HASH(10)/* IPv6 UDP 4-tuple +
570 * ext hdrs */
571
572 #define M_HASHTYPE_OPAQUE 0x3f /* ordering, not affinity */
573 #define M_HASHTYPE_OPAQUE_HASH M_HASHTYPE_HASH(M_HASHTYPE_OPAQUE)
574 /* ordering+hash, not affinity*/
575
576 #define M_HASHTYPE_CLEAR(m) ((m)->m_pkthdr.rsstype = 0)
577 #define M_HASHTYPE_GET(m) ((m)->m_pkthdr.rsstype & ~M_HASHTYPE_INNER)
578 #define M_HASHTYPE_SET(m, v) ((m)->m_pkthdr.rsstype = (v))
579 #define M_HASHTYPE_TEST(m, v) (M_HASHTYPE_GET(m) == (v))
580 #define M_HASHTYPE_ISHASH(m) \
581 (((m)->m_pkthdr.rsstype & M_HASHTYPE_HASHPROP) != 0)
582 #define M_HASHTYPE_ISHASH_TCP(m) \
583 (((m)->m_pkthdr.rsstype & (M_HASHTYPE_RSS_TCP_IPV4 | \
584 M_HASHTYPE_RSS_TCP_IPV6 | \
585 M_HASHTYPE_RSS_TCP_IPV6_EX)) != 0)
586 #define M_HASHTYPE_SETINNER(m) do { \
587 (m)->m_pkthdr.rsstype |= M_HASHTYPE_INNER; \
588 } while (0)
589
590 /*
591 * External mbuf storage buffer types.
592 */
593 #define EXT_CLUSTER 1 /* mbuf cluster */
594 #define EXT_SFBUF 2 /* sendfile(2)'s sf_buf */
595 #define EXT_JUMBOP 3 /* jumbo cluster page sized */
596 #define EXT_JUMBO9 4 /* jumbo cluster 9216 bytes */
597 #define EXT_JUMBO16 5 /* jumbo cluster 16184 bytes */
598 #define EXT_PACKET 6 /* mbuf+cluster from packet zone */
599 #define EXT_MBUF 7 /* external mbuf reference */
600 #define EXT_RXRING 8 /* data in NIC receive ring */
601 #define EXT_CTL 9 /* buffer from a ctl(4) backend */
602
603 #define EXT_VENDOR1 224 /* for vendor-internal use */
604 #define EXT_VENDOR2 225 /* for vendor-internal use */
605 #define EXT_VENDOR3 226 /* for vendor-internal use */
606 #define EXT_VENDOR4 227 /* for vendor-internal use */
607
608 #define EXT_EXP1 244 /* for experimental use */
609 #define EXT_EXP2 245 /* for experimental use */
610 #define EXT_EXP3 246 /* for experimental use */
611 #define EXT_EXP4 247 /* for experimental use */
612
613 #define EXT_NET_DRV 252 /* custom ext_buf provided by net driver(s) */
614 #define EXT_MOD_TYPE 253 /* custom module's ext_buf type */
615 #define EXT_DISPOSABLE 254 /* can throw this buffer away w/page flipping */
616 #define EXT_EXTREF 255 /* has externally maintained ext_cnt ptr */
617
618 /*
619 * Flags for external mbuf buffer types.
620 * NB: limited to the lower 24 bits.
621 */
622 #define EXT_FLAG_EMBREF 0x000001 /* embedded ext_count */
623 #define EXT_FLAG_EXTREF 0x000002 /* external ext_cnt, notyet */
624 #define EXT_FLAG_SFBUF_ANON 0x000004 /* sendfile buffer is mutable */
625
626 #define EXT_FLAG_NOFREE 0x000010 /* don't free mbuf to pool, notyet */
627
628 #define EXT_FLAG_VENDOR1 0x010000 /* These flags are vendor */
629 #define EXT_FLAG_VENDOR2 0x020000 /* or submodule specific, */
630 #define EXT_FLAG_VENDOR3 0x040000 /* not used by mbuf code. */
631 #define EXT_FLAG_VENDOR4 0x080000 /* Set/read by submodule. */
632
633 #define EXT_FLAG_EXP1 0x100000 /* for experimental use */
634 #define EXT_FLAG_EXP2 0x200000 /* for experimental use */
635 #define EXT_FLAG_EXP3 0x400000 /* for experimental use */
636 #define EXT_FLAG_EXP4 0x800000 /* for experimental use */
637
638 /*
639 * EXT flag description for use with printf(9) %b identifier.
640 */
641 #define EXT_FLAG_BITS \
642 "\20\1EXT_FLAG_EMBREF\2EXT_FLAG_EXTREF\5EXT_FLAG_NOFREE" \
643 "\21EXT_FLAG_VENDOR1\22EXT_FLAG_VENDOR2\23EXT_FLAG_VENDOR3" \
644 "\24EXT_FLAG_VENDOR4\25EXT_FLAG_EXP1\26EXT_FLAG_EXP2\27EXT_FLAG_EXP3" \
645 "\30EXT_FLAG_EXP4"
646
647 /*
648 * Flags indicating checksum, segmentation and other offload work to be
649 * done, or already done, by hardware or lower layers.
650 *
651 * Flags that are set by upper protocol layers requesting lower
652 * layers, or ideally the hardware, to perform these offloading tasks.
653 * Before passing packets to a network interface this field and its flags can
654 * be directly tested against ifnet if_hwassist. Note that the flags
655 * CSUM_IP_SCTP, CSUM_IP_TCP, and CSUM_IP_UDP can appear on input processing
656 * of SCTP, TCP, and UDP. In such a case the checksum will not be computed or
657 * validated by SCTP, TCP, or TCP, since the packet has not been on the wire.
658 *
659 * CSUM_INNER_<x> is the same as CSUM_<x> but it applies to the inner frame.
660 * The CSUM_ENCAP_<x> bits identify the outer encapsulation.
661 */
662 #define CSUM_IP 0x00000001 /* IP header checksum offload */
663 #define CSUM_IP_UDP 0x00000002 /* UDP checksum offload */
664 #define CSUM_IP_TCP 0x00000004 /* TCP checksum offload */
665 #define CSUM_IP_SCTP 0x00000008 /* SCTP checksum offload */
666 #define CSUM_IP_TSO 0x00000010 /* TCP segmentation offload */
667 #define CSUM_IP_ISCSI 0x00000020 /* iSCSI checksum offload */
668
669 #define CSUM_INNER_IP6_UDP 0x00000040
670 #define CSUM_INNER_IP6_TCP 0x00000080
671 #define CSUM_INNER_IP6_TSO 0x00000100
672 #define CSUM_IP6_UDP 0x00000200 /* UDP checksum offload */
673 #define CSUM_IP6_TCP 0x00000400 /* TCP checksum offload */
674 #define CSUM_IP6_SCTP 0x00000800 /* SCTP checksum offload */
675 #define CSUM_IP6_TSO 0x00001000 /* TCP segmentation offload */
676 #define CSUM_IP6_ISCSI 0x00002000 /* iSCSI checksum offload */
677
678 #define CSUM_INNER_IP 0x00004000
679 #define CSUM_INNER_IP_UDP 0x00008000
680 #define CSUM_INNER_IP_TCP 0x00010000
681 #define CSUM_INNER_IP_TSO 0x00020000
682
683 #define CSUM_ENCAP_VXLAN 0x00040000 /* VXLAN outer encapsulation */
684 #define CSUM_ENCAP_GENEVE 0x00080000 /* GENEVE outer encapsulation */
685
686 /* Flags used to indicate that the checksum was verified by hardware. */
687 #define CSUM_INNER_L3_CALC 0x00100000
688 #define CSUM_INNER_L3_VALID 0x00200000
689 #define CSUM_INNER_L4_CALC 0x00400000
690 #define CSUM_INNER_L4_VALID 0x00800000
691 #define CSUM_L3_CALC 0x01000000 /* calculated layer 3 csum */
692 #define CSUM_L3_VALID 0x02000000 /* checksum is correct */
693 #define CSUM_L4_CALC 0x04000000 /* calculated layer 4 csum */
694 #define CSUM_L4_VALID 0x08000000 /* checksum is correct */
695 #define CSUM_L5_CALC 0x10000000 /* calculated layer 5 csum */
696 #define CSUM_L5_VALID 0x20000000 /* checksum is correct */
697 #define CSUM_COALESCED 0x40000000 /* contains merged segments */
698
699 #define CSUM_SND_TAG 0x80000000 /* Packet header has send tag */
700
701 #define CSUM_FLAGS_TX (CSUM_IP | CSUM_IP_UDP | CSUM_IP_TCP | CSUM_IP_SCTP | \
702 CSUM_IP_TSO | CSUM_IP_ISCSI | CSUM_INNER_IP6_UDP | CSUM_INNER_IP6_TCP | \
703 CSUM_INNER_IP6_TSO | CSUM_IP6_UDP | CSUM_IP6_TCP | CSUM_IP6_SCTP | \
704 CSUM_IP6_TSO | CSUM_IP6_ISCSI | CSUM_INNER_IP | CSUM_INNER_IP_UDP | \
705 CSUM_INNER_IP_TCP | CSUM_INNER_IP_TSO | CSUM_ENCAP_VXLAN | \
706 CSUM_ENCAP_GENEVE | CSUM_SND_TAG)
707
708 #define CSUM_FLAGS_RX (CSUM_INNER_L3_CALC | CSUM_INNER_L3_VALID | \
709 CSUM_INNER_L4_CALC | CSUM_INNER_L4_VALID | CSUM_L3_CALC | CSUM_L3_VALID | \
710 CSUM_L4_CALC | CSUM_L4_VALID | CSUM_L5_CALC | CSUM_L5_VALID | \
711 CSUM_COALESCED)
712
713 /*
714 * CSUM flag description for use with printf(9) %b identifier.
715 */
716 #define CSUM_BITS \
717 "\20\1CSUM_IP\2CSUM_IP_UDP\3CSUM_IP_TCP\4CSUM_IP_SCTP\5CSUM_IP_TSO" \
718 "\6CSUM_IP_ISCSI\7CSUM_INNER_IP6_UDP\10CSUM_INNER_IP6_TCP" \
719 "\11CSUM_INNER_IP6_TSO\12CSUM_IP6_UDP\13CSUM_IP6_TCP\14CSUM_IP6_SCTP" \
720 "\15CSUM_IP6_TSO\16CSUM_IP6_ISCSI\17CSUM_INNER_IP\20CSUM_INNER_IP_UDP" \
721 "\21CSUM_INNER_IP_TCP\22CSUM_INNER_IP_TSO\23CSUM_ENCAP_VXLAN" \
722 "\24CSUM_ENCAP_GENEVE\25CSUM_INNER_L3_CALC\26CSUM_INNER_L3_VALID" \
723 "\27CSUM_INNER_L4_CALC\30CSUM_INNER_L4_VALID\31CSUM_L3_CALC" \
724 "\32CSUM_L3_VALID\33CSUM_L4_CALC\34CSUM_L4_VALID\35CSUM_L5_CALC" \
725 "\36CSUM_L5_VALID\37CSUM_COALESCED\40CSUM_SND_TAG"
726
727 /* CSUM flags compatibility mappings. */
728 #define CSUM_IP_CHECKED CSUM_L3_CALC
729 #define CSUM_IP_VALID CSUM_L3_VALID
730 #define CSUM_DATA_VALID CSUM_L4_VALID
731 #define CSUM_PSEUDO_HDR CSUM_L4_CALC
732 #define CSUM_SCTP_VALID CSUM_L4_VALID
733 #define CSUM_DELAY_DATA (CSUM_TCP|CSUM_UDP)
734 #define CSUM_DELAY_IP CSUM_IP /* Only v4, no v6 IP hdr csum */
735 #define CSUM_DELAY_DATA_IPV6 (CSUM_TCP_IPV6|CSUM_UDP_IPV6)
736 #define CSUM_DATA_VALID_IPV6 CSUM_DATA_VALID
737 #define CSUM_TCP CSUM_IP_TCP
738 #define CSUM_UDP CSUM_IP_UDP
739 #define CSUM_SCTP CSUM_IP_SCTP
740 #define CSUM_TSO (CSUM_IP_TSO|CSUM_IP6_TSO)
741 #define CSUM_INNER_TSO (CSUM_INNER_IP_TSO|CSUM_INNER_IP6_TSO)
742 #define CSUM_UDP_IPV6 CSUM_IP6_UDP
743 #define CSUM_TCP_IPV6 CSUM_IP6_TCP
744 #define CSUM_SCTP_IPV6 CSUM_IP6_SCTP
745 #define CSUM_TLS_MASK (CSUM_L5_CALC|CSUM_L5_VALID)
746 #define CSUM_TLS_DECRYPTED CSUM_L5_CALC
747
748 /*
749 * mbuf types describing the content of the mbuf (including external storage).
750 */
751 #define MT_NOTMBUF 0 /* USED INTERNALLY ONLY! Object is not mbuf */
752 #define MT_DATA 1 /* dynamic (data) allocation */
753 #define MT_HEADER MT_DATA /* packet header, use M_PKTHDR instead */
754
755 #define MT_VENDOR1 4 /* for vendor-internal use */
756 #define MT_VENDOR2 5 /* for vendor-internal use */
757 #define MT_VENDOR3 6 /* for vendor-internal use */
758 #define MT_VENDOR4 7 /* for vendor-internal use */
759
760 #define MT_SONAME 8 /* socket name */
761
762 #define MT_EXP1 9 /* for experimental use */
763 #define MT_EXP2 10 /* for experimental use */
764 #define MT_EXP3 11 /* for experimental use */
765 #define MT_EXP4 12 /* for experimental use */
766
767 #define MT_CONTROL 14 /* extra-data protocol message */
768 #define MT_EXTCONTROL 15 /* control message with externalized contents */
769 #define MT_OOBDATA 16 /* expedited data */
770
771 #define MT_NOINIT 255 /* Not a type but a flag to allocate
772 a non-initialized mbuf */
773
774 /*
775 * String names of mbuf-related UMA(9) and malloc(9) types. Exposed to
776 * !_KERNEL so that monitoring tools can look up the zones with
777 * libmemstat(3).
778 */
779 #define MBUF_MEM_NAME "mbuf"
780 #define MBUF_CLUSTER_MEM_NAME "mbuf_cluster"
781 #define MBUF_PACKET_MEM_NAME "mbuf_packet"
782 #define MBUF_JUMBOP_MEM_NAME "mbuf_jumbo_page"
783 #define MBUF_JUMBO9_MEM_NAME "mbuf_jumbo_9k"
784 #define MBUF_JUMBO16_MEM_NAME "mbuf_jumbo_16k"
785 #define MBUF_TAG_MEM_NAME "mbuf_tag"
786 #define MBUF_EXTREFCNT_MEM_NAME "mbuf_ext_refcnt"
787 #define MBUF_EXTPGS_MEM_NAME "mbuf_extpgs"
788
789 #ifdef _KERNEL
790 union if_snd_tag_alloc_params;
791
792 #define MBUF_CHECKSLEEP(how) do { \
793 if (how == M_WAITOK) \
794 WITNESS_WARN(WARN_GIANTOK | WARN_SLEEPOK, NULL, \
795 "Sleeping in \"%s\"", __func__); \
796 } while (0)
797
798 /*
799 * Network buffer allocation API
800 *
801 * The rest of it is defined in kern/kern_mbuf.c
802 */
803 extern uma_zone_t zone_mbuf;
804 extern uma_zone_t zone_clust;
805 extern uma_zone_t zone_pack;
806 extern uma_zone_t zone_jumbop;
807 extern uma_zone_t zone_jumbo9;
808 extern uma_zone_t zone_jumbo16;
809 extern uma_zone_t zone_extpgs;
810
811 void mb_dupcl(struct mbuf *, struct mbuf *);
812 void mb_free_ext(struct mbuf *);
813 void mb_free_extpg(struct mbuf *);
814 void mb_free_mext_pgs(struct mbuf *);
815 struct mbuf *mb_alloc_ext_pgs(int, m_ext_free_t, int);
816 struct mbuf *mb_alloc_ext_plus_pages(int, int);
817 struct mbuf *mb_mapped_to_unmapped(struct mbuf *, int, int, int,
818 struct mbuf **);
819 int mb_unmapped_compress(struct mbuf *m);
820 int mb_unmapped_to_ext(struct mbuf *m, struct mbuf **mres);
821 void mb_free_notready(struct mbuf *m, int count);
822 void m_adj(struct mbuf *, int);
823 void m_adj_decap(struct mbuf *, int);
824 int m_apply(struct mbuf *, int, int,
825 int (*)(void *, void *, u_int), void *);
826 int m_append(struct mbuf *, int, c_caddr_t);
827 void m_cat(struct mbuf *, struct mbuf *);
828 void m_catpkt(struct mbuf *, struct mbuf *);
829 int m_clget(struct mbuf *m, int how);
830 void *m_cljget(struct mbuf *m, int how, int size);
831 struct mbuf *m_collapse(struct mbuf *, int, int);
832 void m_copyback(struct mbuf *, int, int, c_caddr_t);
833 void m_copydata(const struct mbuf *, int, int, caddr_t);
834 struct mbuf *m_copym(struct mbuf *, int, int, int);
835 struct mbuf *m_copypacket(struct mbuf *, int);
836 void m_copy_pkthdr(struct mbuf *, struct mbuf *);
837 struct mbuf *m_copyup(struct mbuf *, int, int);
838 struct mbuf *m_defrag(struct mbuf *, int);
839 void m_demote_pkthdr(struct mbuf *);
840 void m_demote(struct mbuf *, int, int);
841 struct mbuf *m_devget(char *, int, int, struct ifnet *,
842 void (*)(char *, caddr_t, u_int));
843 void m_dispose_extcontrolm(struct mbuf *m);
844 struct mbuf *m_dup(const struct mbuf *, int);
845 int m_dup_pkthdr(struct mbuf *, const struct mbuf *, int);
846 void m_extadd(struct mbuf *, char *, u_int, m_ext_free_t,
847 void *, void *, int, int);
848 u_int m_fixhdr(struct mbuf *);
849 struct mbuf *m_fragment(struct mbuf *, int, int);
850 void m_freem(struct mbuf *);
851 void m_freemp(struct mbuf *);
852 void m_free_raw(struct mbuf *);
853 struct mbuf *m_get2(int, int, short, int);
854 struct mbuf *m_get3(int, int, short, int);
855 struct mbuf *m_getjcl(int, short, int, int);
856 struct mbuf *m_getm2(struct mbuf *, int, int, short, int);
857 struct mbuf *m_getptr(struct mbuf *, int, int *);
858 u_int m_length(struct mbuf *, struct mbuf **);
859 int m_mbuftouio(struct uio *, const struct mbuf *, int);
860 void m_move_pkthdr(struct mbuf *, struct mbuf *);
861 int m_pkthdr_init(struct mbuf *, int);
862 struct mbuf *m_prepend(struct mbuf *, int, int);
863 void m_print(const struct mbuf *, int);
864 struct mbuf *m_pulldown(struct mbuf *, int, int, int *);
865 struct mbuf *m_pullup(struct mbuf *, int);
866 int m_sanity(struct mbuf *, int);
867 struct mbuf *m_split(struct mbuf *, int, int);
868 struct mbuf *m_uiotombuf(struct uio *, int, int, int, int);
869 int m_unmapped_uiomove(const struct mbuf *, int, struct uio *,
870 int);
871 struct mbuf *m_unshare(struct mbuf *, int);
872 int m_snd_tag_alloc(struct ifnet *,
873 union if_snd_tag_alloc_params *, struct m_snd_tag **);
874 void m_snd_tag_init(struct m_snd_tag *, struct ifnet *,
875 const struct if_snd_tag_sw *);
876 void m_snd_tag_destroy(struct m_snd_tag *);
877 void m_rcvif_serialize(struct mbuf *);
878 struct ifnet *m_rcvif_restore(struct mbuf *);
879
880 static __inline int
m_gettype(int size)881 m_gettype(int size)
882 {
883 int type;
884
885 switch (size) {
886 case MSIZE:
887 type = EXT_MBUF;
888 break;
889 case MCLBYTES:
890 type = EXT_CLUSTER;
891 break;
892 #if MJUMPAGESIZE != MCLBYTES
893 case MJUMPAGESIZE:
894 type = EXT_JUMBOP;
895 break;
896 #endif
897 case MJUM9BYTES:
898 type = EXT_JUMBO9;
899 break;
900 case MJUM16BYTES:
901 type = EXT_JUMBO16;
902 break;
903 default:
904 panic("%s: invalid cluster size %d", __func__, size);
905 }
906
907 return (type);
908 }
909
910 /*
911 * Associated an external reference counted buffer with an mbuf.
912 */
913 static __inline void
m_extaddref(struct mbuf * m,char * buf,u_int size,u_int * ref_cnt,m_ext_free_t freef,void * arg1,void * arg2)914 m_extaddref(struct mbuf *m, char *buf, u_int size, u_int *ref_cnt,
915 m_ext_free_t freef, void *arg1, void *arg2)
916 {
917
918 KASSERT(ref_cnt != NULL, ("%s: ref_cnt not provided", __func__));
919
920 atomic_add_int(ref_cnt, 1);
921 m->m_flags |= M_EXT;
922 m->m_ext.ext_buf = buf;
923 m->m_ext.ext_cnt = ref_cnt;
924 m->m_data = m->m_ext.ext_buf;
925 m->m_ext.ext_size = size;
926 m->m_ext.ext_free = freef;
927 m->m_ext.ext_arg1 = arg1;
928 m->m_ext.ext_arg2 = arg2;
929 m->m_ext.ext_type = EXT_EXTREF;
930 m->m_ext.ext_flags = 0;
931 }
932
933 static __inline uma_zone_t
m_getzone(int size)934 m_getzone(int size)
935 {
936 uma_zone_t zone;
937
938 switch (size) {
939 case MCLBYTES:
940 zone = zone_clust;
941 break;
942 #if MJUMPAGESIZE != MCLBYTES
943 case MJUMPAGESIZE:
944 zone = zone_jumbop;
945 break;
946 #endif
947 case MJUM9BYTES:
948 zone = zone_jumbo9;
949 break;
950 case MJUM16BYTES:
951 zone = zone_jumbo16;
952 break;
953 default:
954 panic("%s: invalid cluster size %d", __func__, size);
955 }
956
957 return (zone);
958 }
959
960 /*
961 * Initialize an mbuf with linear storage.
962 *
963 * Inline because the consumer text overhead will be roughly the same to
964 * initialize or call a function with this many parameters and M_PKTHDR
965 * should go away with constant propagation for !MGETHDR.
966 */
967 static __inline int
m_init(struct mbuf * m,int how,short type,int flags)968 m_init(struct mbuf *m, int how, short type, int flags)
969 {
970 int error;
971
972 m->m_next = NULL;
973 m->m_nextpkt = NULL;
974 m->m_data = m->m_dat;
975 m->m_len = 0;
976 m->m_flags = flags;
977 m->m_type = type;
978 if (flags & M_PKTHDR)
979 error = m_pkthdr_init(m, how);
980 else
981 error = 0;
982
983 MBUF_PROBE5(m__init, m, how, type, flags, error);
984 return (error);
985 }
986
987 static __inline struct mbuf *
m_get_raw(int how,short type)988 m_get_raw(int how, short type)
989 {
990 struct mbuf *m;
991 struct mb_args args;
992
993 args.flags = 0;
994 args.type = type | MT_NOINIT;
995 m = uma_zalloc_arg(zone_mbuf, &args, how);
996 MBUF_PROBE3(m__get_raw, how, type, m);
997 return (m);
998 }
999
1000 static __inline struct mbuf *
m_get(int how,short type)1001 m_get(int how, short type)
1002 {
1003 struct mbuf *m;
1004 struct mb_args args;
1005
1006 args.flags = 0;
1007 args.type = type;
1008 m = uma_zalloc_arg(zone_mbuf, &args, how);
1009 MBUF_PROBE3(m__get, how, type, m);
1010 return (m);
1011 }
1012
1013 static __inline struct mbuf *
m_gethdr_raw(int how,short type)1014 m_gethdr_raw(int how, short type)
1015 {
1016 struct mbuf *m;
1017 struct mb_args args;
1018
1019 args.flags = M_PKTHDR;
1020 args.type = type | MT_NOINIT;
1021 m = uma_zalloc_arg(zone_mbuf, &args, how);
1022 MBUF_PROBE3(m__gethdr_raw, how, type, m);
1023 return (m);
1024 }
1025
1026 static __inline struct mbuf *
m_gethdr(int how,short type)1027 m_gethdr(int how, short type)
1028 {
1029 struct mbuf *m;
1030 struct mb_args args;
1031
1032 args.flags = M_PKTHDR;
1033 args.type = type;
1034 m = uma_zalloc_arg(zone_mbuf, &args, how);
1035 MBUF_PROBE3(m__gethdr, how, type, m);
1036 return (m);
1037 }
1038
1039 static __inline struct mbuf *
m_getcl(int how,short type,int flags)1040 m_getcl(int how, short type, int flags)
1041 {
1042 struct mbuf *m;
1043 struct mb_args args;
1044
1045 args.flags = flags;
1046 args.type = type;
1047 m = uma_zalloc_arg(zone_pack, &args, how);
1048 MBUF_PROBE4(m__getcl, how, type, flags, m);
1049 return (m);
1050 }
1051
1052 /*
1053 * XXX: m_cljset() is a dangerous API. One must attach only a new,
1054 * unreferenced cluster to an mbuf(9). It is not possible to assert
1055 * that, so care can be taken only by users of the API.
1056 */
1057 static __inline void
m_cljset(struct mbuf * m,void * cl,int type)1058 m_cljset(struct mbuf *m, void *cl, int type)
1059 {
1060 int size;
1061
1062 switch (type) {
1063 case EXT_CLUSTER:
1064 size = MCLBYTES;
1065 break;
1066 #if MJUMPAGESIZE != MCLBYTES
1067 case EXT_JUMBOP:
1068 size = MJUMPAGESIZE;
1069 break;
1070 #endif
1071 case EXT_JUMBO9:
1072 size = MJUM9BYTES;
1073 break;
1074 case EXT_JUMBO16:
1075 size = MJUM16BYTES;
1076 break;
1077 default:
1078 panic("%s: unknown cluster type %d", __func__, type);
1079 break;
1080 }
1081
1082 m->m_data = m->m_ext.ext_buf = cl;
1083 m->m_ext.ext_free = m->m_ext.ext_arg1 = m->m_ext.ext_arg2 = NULL;
1084 m->m_ext.ext_size = size;
1085 m->m_ext.ext_type = type;
1086 m->m_ext.ext_flags = EXT_FLAG_EMBREF;
1087 m->m_ext.ext_count = 1;
1088 m->m_flags |= M_EXT;
1089 MBUF_PROBE3(m__cljset, m, cl, type);
1090 }
1091
1092 static __inline void
m_chtype(struct mbuf * m,short new_type)1093 m_chtype(struct mbuf *m, short new_type)
1094 {
1095
1096 m->m_type = new_type;
1097 }
1098
1099 static __inline void
m_clrprotoflags(struct mbuf * m)1100 m_clrprotoflags(struct mbuf *m)
1101 {
1102
1103 while (m) {
1104 m->m_flags &= ~M_PROTOFLAGS;
1105 m = m->m_next;
1106 }
1107 }
1108
1109 static __inline struct mbuf *
m_last(struct mbuf * m)1110 m_last(struct mbuf *m)
1111 {
1112
1113 while (m->m_next)
1114 m = m->m_next;
1115 return (m);
1116 }
1117
1118 static inline u_int
m_extrefcnt(struct mbuf * m)1119 m_extrefcnt(struct mbuf *m)
1120 {
1121
1122 KASSERT(m->m_flags & M_EXT, ("%s: M_EXT missing for %p", __func__, m));
1123
1124 return ((m->m_ext.ext_flags & EXT_FLAG_EMBREF) ? m->m_ext.ext_count :
1125 *m->m_ext.ext_cnt);
1126 }
1127
1128 /*
1129 * mbuf, cluster, and external object allocation macros (for compatibility
1130 * purposes).
1131 */
1132 #define M_MOVE_PKTHDR(to, from) m_move_pkthdr((to), (from))
1133 #define MGET(m, how, type) ((m) = m_get((how), (type)))
1134 #define MGETHDR(m, how, type) ((m) = m_gethdr((how), (type)))
1135 #define MCLGET(m, how) m_clget((m), (how))
1136 #define MEXTADD(m, buf, size, free, arg1, arg2, flags, type) \
1137 m_extadd((m), (char *)(buf), (size), (free), (arg1), (arg2), \
1138 (flags), (type))
1139 #define m_getm(m, len, how, type) \
1140 m_getm2((m), (len), (how), (type), M_PKTHDR)
1141
1142 /*
1143 * Evaluate TRUE if it's safe to write to the mbuf m's data region (this can
1144 * be both the local data payload, or an external buffer area, depending on
1145 * whether M_EXT is set).
1146 */
1147 #define M_WRITABLE(m) (((m)->m_flags & (M_RDONLY | M_EXTPG)) == 0 && \
1148 (!(((m)->m_flags & M_EXT)) || \
1149 (m_extrefcnt(m) == 1)))
1150
1151 /* Check if the supplied mbuf has a packet header, or else panic. */
1152 #define M_ASSERTPKTHDR(m) \
1153 KASSERT((m) != NULL && (m)->m_flags & M_PKTHDR, \
1154 ("%s: no mbuf %p packet header!", __func__, (m)))
1155
1156 /* Check if the supplied mbuf has no send tag, or else panic. */
1157 #define M_ASSERT_NO_SND_TAG(m) \
1158 KASSERT((m) != NULL && (m)->m_flags & M_PKTHDR && \
1159 ((m)->m_pkthdr.csum_flags & CSUM_SND_TAG) == 0, \
1160 ("%s: receive mbuf %p has send tag!", __func__, (m)))
1161
1162 /* Check if mbuf is multipage. */
1163 #define M_ASSERTEXTPG(m) \
1164 KASSERT(((m)->m_flags & (M_EXTPG|M_PKTHDR)) == M_EXTPG, \
1165 ("%s: m %p is not multipage!", __func__, m))
1166
1167 /*
1168 * Ensure that the supplied mbuf is a valid, non-free mbuf.
1169 *
1170 * XXX: Broken at the moment. Need some UMA magic to make it work again.
1171 */
1172 #define M_ASSERTVALID(m) \
1173 KASSERT((((struct mbuf *)(m))->m_flags & 0) == 0, \
1174 ("%s: attempted use of a free mbuf %p!", __func__, (m)))
1175
1176 /* Check whether any mbuf in the chain is unmapped. */
1177 #ifdef INVARIANTS
1178 #define M_ASSERTMAPPED(m) do { \
1179 for (struct mbuf *__m = (m); __m != NULL; __m = __m->m_next) \
1180 KASSERT((__m->m_flags & M_EXTPG) == 0, \
1181 ("%s: chain %p contains an unmapped mbuf", __func__, (m)));\
1182 } while (0)
1183 #else
1184 #define M_ASSERTMAPPED(m) do {} while (0)
1185 #endif
1186
1187 /*
1188 * Return the address of the start of the buffer associated with an mbuf,
1189 * handling external storage, packet-header mbufs, and regular data mbufs.
1190 */
1191 #define M_START(m) \
1192 (((m)->m_flags & M_EXTPG) ? NULL : \
1193 ((m)->m_flags & M_EXT) ? (m)->m_ext.ext_buf : \
1194 ((m)->m_flags & M_PKTHDR) ? &(m)->m_pktdat[0] : \
1195 &(m)->m_dat[0])
1196
1197 /*
1198 * Return the size of the buffer associated with an mbuf, handling external
1199 * storage, packet-header mbufs, and regular data mbufs.
1200 */
1201 #define M_SIZE(m) \
1202 (((m)->m_flags & M_EXT) ? (m)->m_ext.ext_size : \
1203 ((m)->m_flags & M_PKTHDR) ? MHLEN : \
1204 MLEN)
1205
1206 /*
1207 * Set the m_data pointer of a newly allocated mbuf to place an object of the
1208 * specified size at the end of the mbuf, longword aligned.
1209 *
1210 * NB: Historically, we had M_ALIGN(), MH_ALIGN(), and MEXT_ALIGN() as
1211 * separate macros, each asserting that it was called at the proper moment.
1212 * This required callers to themselves test the storage type and call the
1213 * right one. Rather than require callers to be aware of those layout
1214 * decisions, we centralize here.
1215 */
1216 static __inline void
m_align(struct mbuf * m,int len)1217 m_align(struct mbuf *m, int len)
1218 {
1219 int adjust;
1220 KASSERT(m->m_data == M_START(m),
1221 ("%s: not a virgin mbuf %p", __func__, m));
1222
1223 adjust = M_SIZE(m) - len;
1224 m->m_data += adjust &~ (sizeof(long)-1);
1225 }
1226
1227 #define M_ALIGN(m, len) m_align(m, len)
1228 #define MH_ALIGN(m, len) m_align(m, len)
1229 #define MEXT_ALIGN(m, len) m_align(m, len)
1230
1231 /*
1232 * Compute the amount of space available before the current start of data in
1233 * an mbuf.
1234 *
1235 * The M_WRITABLE() is a temporary, conservative safety measure: the burden
1236 * of checking writability of the mbuf data area rests solely with the caller.
1237 *
1238 * NB: In previous versions, M_LEADINGSPACE() would only check M_WRITABLE()
1239 * for mbufs with external storage. We now allow mbuf-embedded data to be
1240 * read-only as well.
1241 */
1242 #define M_LEADINGSPACE(m) \
1243 (M_WRITABLE(m) ? ((m)->m_data - M_START(m)) : 0)
1244
1245 /*
1246 * So M_TRAILINGROOM() is for when you want to know how much space
1247 * would be there if it was writable. This can be used to
1248 * detect changes in mbufs by knowing the value at one point
1249 * and then being able to compare it later to the current M_TRAILINGROOM().
1250 * The TRAILINGSPACE() macro is not suitable for this since an mbuf
1251 * at one point might not be writable and then later it becomes writable
1252 * even though the space at the back of it has not changed.
1253 */
1254 #define M_TRAILINGROOM(m) ((M_START(m) + M_SIZE(m)) - ((m)->m_data + (m)->m_len))
1255 /*
1256 * Compute the amount of space available after the end of data in an mbuf.
1257 *
1258 * The M_WRITABLE() is a temporary, conservative safety measure: the burden
1259 * of checking writability of the mbuf data area rests solely with the caller.
1260 *
1261 * NB: In previous versions, M_TRAILINGSPACE() would only check M_WRITABLE()
1262 * for mbufs with external storage. We now allow mbuf-embedded data to be
1263 * read-only as well.
1264 */
1265 #define M_TRAILINGSPACE(m) (M_WRITABLE(m) ? M_TRAILINGROOM(m) : 0)
1266
1267 /*
1268 * Arrange to prepend space of size plen to mbuf m. If a new mbuf must be
1269 * allocated, how specifies whether to wait. If the allocation fails, the
1270 * original mbuf chain is freed and m is set to NULL.
1271 */
1272 #define M_PREPEND(m, plen, how) do { \
1273 struct mbuf **_mmp = &(m); \
1274 struct mbuf *_mm = *_mmp; \
1275 int _mplen = (plen); \
1276 int __mhow = (how); \
1277 \
1278 MBUF_CHECKSLEEP(how); \
1279 if (M_LEADINGSPACE(_mm) >= _mplen) { \
1280 _mm->m_data -= _mplen; \
1281 _mm->m_len += _mplen; \
1282 } else \
1283 _mm = m_prepend(_mm, _mplen, __mhow); \
1284 if (_mm != NULL && _mm->m_flags & M_PKTHDR) \
1285 _mm->m_pkthdr.len += _mplen; \
1286 *_mmp = _mm; \
1287 } while (0)
1288
1289 /*
1290 * Change mbuf to new type. This is a relatively expensive operation and
1291 * should be avoided.
1292 */
1293 #define MCHTYPE(m, t) m_chtype((m), (t))
1294
1295 /* Return the rcvif of a packet header. */
1296 static __inline struct ifnet *
m_rcvif(const struct mbuf * m)1297 m_rcvif(const struct mbuf *m)
1298 {
1299
1300 M_ASSERTPKTHDR(m);
1301 if (m->m_pkthdr.csum_flags & CSUM_SND_TAG)
1302 return (NULL);
1303 return (m->m_pkthdr.rcvif);
1304 }
1305
1306 /* Length to m_copy to copy all. */
1307 #define M_COPYALL 1000000000
1308
1309 extern u_int max_linkhdr; /* Largest link-level header */
1310 extern u_int max_hdr; /* Largest link + protocol header */
1311 extern u_int max_protohdr; /* Largest protocol header */
1312 void max_linkhdr_grow(u_int);
1313 void max_protohdr_grow(u_int);
1314
1315 extern int nmbclusters; /* Maximum number of clusters */
1316 extern bool mb_use_ext_pgs; /* Use ext_pgs for sendfile */
1317
1318 /*-
1319 * Network packets may have annotations attached by affixing a list of
1320 * "packet tags" to the pkthdr structure. Packet tags are dynamically
1321 * allocated semi-opaque data structures that have a fixed header
1322 * (struct m_tag) that specifies the size of the memory block and a
1323 * <cookie,type> pair that identifies it. The cookie is a 32-bit unique
1324 * unsigned value used to identify a module or ABI. By convention this value
1325 * is chosen as the date+time that the module is created, expressed as the
1326 * number of seconds since the epoch (e.g., using date -u +'%s'). The type
1327 * value is an ABI/module-specific value that identifies a particular
1328 * annotation and is private to the module. For compatibility with systems
1329 * like OpenBSD that define packet tags w/o an ABI/module cookie, the value
1330 * PACKET_ABI_COMPAT is used to implement m_tag_get and m_tag_find
1331 * compatibility shim functions and several tag types are defined below.
1332 * Users that do not require compatibility should use a private cookie value
1333 * so that packet tag-related definitions can be maintained privately.
1334 *
1335 * Note that the packet tag returned by m_tag_alloc has the default memory
1336 * alignment implemented by malloc. To reference private data one can use a
1337 * construct like:
1338 *
1339 * struct m_tag *mtag = m_tag_alloc(...);
1340 * struct foo *p = (struct foo *)(mtag+1);
1341 *
1342 * if the alignment of struct m_tag is sufficient for referencing members of
1343 * struct foo. Otherwise it is necessary to embed struct m_tag within the
1344 * private data structure to insure proper alignment; e.g.,
1345 *
1346 * struct foo {
1347 * struct m_tag tag;
1348 * ...
1349 * };
1350 * struct foo *p = (struct foo *) m_tag_alloc(...);
1351 * struct m_tag *mtag = &p->tag;
1352 */
1353
1354 /*
1355 * Persistent tags stay with an mbuf until the mbuf is reclaimed. Otherwise
1356 * tags are expected to ``vanish'' when they pass through a network
1357 * interface. For most interfaces this happens normally as the tags are
1358 * reclaimed when the mbuf is free'd. However in some special cases
1359 * reclaiming must be done manually. An example is packets that pass through
1360 * the loopback interface. Also, one must be careful to do this when
1361 * ``turning around'' packets (e.g., icmp_reflect).
1362 *
1363 * To mark a tag persistent bit-or this flag in when defining the tag id.
1364 * The tag will then be treated as described above.
1365 */
1366 #define MTAG_PERSISTENT 0x800
1367
1368 #define PACKET_TAG_NONE 0 /* Nadda */
1369
1370 /* Packet tags for use with PACKET_ABI_COMPAT. */
1371 #define PACKET_TAG_IPSEC_IN_DONE 1 /* IPsec applied, in */
1372 #define PACKET_TAG_IPSEC_OUT_DONE 2 /* IPsec applied, out */
1373 #define PACKET_TAG_IPSEC_IN_CRYPTO_DONE 3 /* NIC IPsec crypto done */
1374 #define PACKET_TAG_IPSEC_OUT_CRYPTO_NEEDED 4 /* NIC IPsec crypto req'ed */
1375 #define PACKET_TAG_IPSEC_IN_COULD_DO_CRYPTO 5 /* NIC notifies IPsec */
1376 #define PACKET_TAG_IPSEC_PENDING_TDB 6 /* Reminder to do IPsec */
1377 #define PACKET_TAG_BRIDGE 7 /* Bridge processing done */
1378 #define PACKET_TAG_GIF 8 /* GIF processing done */
1379 #define PACKET_TAG_GRE 9 /* GRE processing done */
1380 #define PACKET_TAG_IN_PACKET_CHECKSUM 10 /* NIC checksumming done */
1381 #define PACKET_TAG_ENCAP 11 /* Encap. processing */
1382 #define PACKET_TAG_IPSEC_SOCKET 12 /* IPSEC socket ref */
1383 #define PACKET_TAG_IPSEC_HISTORY 13 /* IPSEC history */
1384 #define PACKET_TAG_IPV6_INPUT 14 /* IPV6 input processing */
1385 #define PACKET_TAG_DUMMYNET 15 /* dummynet info */
1386 #define PACKET_TAG_DIVERT 17 /* divert info */
1387 #define PACKET_TAG_IPFORWARD 18 /* ipforward info */
1388 #define PACKET_TAG_MACLABEL (19 | MTAG_PERSISTENT) /* MAC label */
1389 #define PACKET_TAG_PF 21 /* PF/ALTQ information */
1390 /* was PACKET_TAG_RTSOCKFAM 25 rtsock sa family */
1391 #define PACKET_TAG_IPOPTIONS 27 /* Saved IP options */
1392 #define PACKET_TAG_CARP 28 /* CARP info */
1393 #define PACKET_TAG_IPSEC_NAT_T_PORTS 29 /* two uint16_t */
1394 #define PACKET_TAG_ND_OUTGOING 30 /* ND outgoing */
1395 #define PACKET_TAG_PF_REASSEMBLED 31
1396 #define PACKET_TAG_IPSEC_ACCEL_OUT 32 /* IPSEC accel out */
1397 #define PACKET_TAG_IPSEC_ACCEL_IN 33 /* IPSEC accel in */
1398 #define PACKET_TAG_OVPN 34 /* if_ovpn */
1399
1400 /* Specific cookies and tags. */
1401
1402 /* Packet tag routines. */
1403 struct m_tag *m_tag_alloc(uint32_t, uint16_t, int, int);
1404 void m_tag_delete(struct mbuf *, struct m_tag *);
1405 void m_tag_delete_chain(struct mbuf *, struct m_tag *);
1406 void m_tag_free_default(struct m_tag *);
1407 struct m_tag *m_tag_locate(struct mbuf *, uint32_t, uint16_t,
1408 struct m_tag *);
1409 struct m_tag *m_tag_copy(struct m_tag *, int);
1410 int m_tag_copy_chain(struct mbuf *, const struct mbuf *, int);
1411 void m_tag_delete_nonpersistent(struct mbuf *);
1412
1413 /*
1414 * Initialize the list of tags associated with an mbuf.
1415 */
1416 static __inline void
m_tag_init(struct mbuf * m)1417 m_tag_init(struct mbuf *m)
1418 {
1419
1420 SLIST_INIT(&m->m_pkthdr.tags);
1421 }
1422
1423 /*
1424 * Set up the contents of a tag. Note that this does not fill in the free
1425 * method; the caller is expected to do that.
1426 *
1427 * XXX probably should be called m_tag_init, but that was already taken.
1428 */
1429 static __inline void
m_tag_setup(struct m_tag * t,uint32_t cookie,uint16_t type,int len)1430 m_tag_setup(struct m_tag *t, uint32_t cookie, uint16_t type, int len)
1431 {
1432
1433 t->m_tag_id = type;
1434 t->m_tag_len = len;
1435 t->m_tag_cookie = cookie;
1436 }
1437
1438 /*
1439 * Reclaim resources associated with a tag.
1440 */
1441 static __inline void
m_tag_free(struct m_tag * t)1442 m_tag_free(struct m_tag *t)
1443 {
1444
1445 (*t->m_tag_free)(t);
1446 }
1447
1448 /*
1449 * Return the first tag associated with an mbuf.
1450 */
1451 static __inline struct m_tag *
m_tag_first(struct mbuf * m)1452 m_tag_first(struct mbuf *m)
1453 {
1454
1455 return (SLIST_FIRST(&m->m_pkthdr.tags));
1456 }
1457
1458 /*
1459 * Return the next tag in the list of tags associated with an mbuf.
1460 */
1461 static __inline struct m_tag *
m_tag_next(struct mbuf * m __unused,struct m_tag * t)1462 m_tag_next(struct mbuf *m __unused, struct m_tag *t)
1463 {
1464
1465 return (SLIST_NEXT(t, m_tag_link));
1466 }
1467
1468 /*
1469 * Prepend a tag to the list of tags associated with an mbuf.
1470 */
1471 static __inline void
m_tag_prepend(struct mbuf * m,struct m_tag * t)1472 m_tag_prepend(struct mbuf *m, struct m_tag *t)
1473 {
1474
1475 SLIST_INSERT_HEAD(&m->m_pkthdr.tags, t, m_tag_link);
1476 }
1477
1478 /*
1479 * Unlink a tag from the list of tags associated with an mbuf.
1480 */
1481 static __inline void
m_tag_unlink(struct mbuf * m,struct m_tag * t)1482 m_tag_unlink(struct mbuf *m, struct m_tag *t)
1483 {
1484
1485 SLIST_REMOVE(&m->m_pkthdr.tags, t, m_tag, m_tag_link);
1486 }
1487
1488 /* These are for OpenBSD compatibility. */
1489 #define MTAG_ABI_COMPAT 0 /* compatibility ABI */
1490
1491 static __inline struct m_tag *
m_tag_get(uint16_t type,int length,int wait)1492 m_tag_get(uint16_t type, int length, int wait)
1493 {
1494 return (m_tag_alloc(MTAG_ABI_COMPAT, type, length, wait));
1495 }
1496
1497 static __inline struct m_tag *
m_tag_find(struct mbuf * m,uint16_t type,struct m_tag * start)1498 m_tag_find(struct mbuf *m, uint16_t type, struct m_tag *start)
1499 {
1500 return (SLIST_EMPTY(&m->m_pkthdr.tags) ? (struct m_tag *)NULL :
1501 m_tag_locate(m, MTAG_ABI_COMPAT, type, start));
1502 }
1503
1504 static inline struct m_snd_tag *
m_snd_tag_ref(struct m_snd_tag * mst)1505 m_snd_tag_ref(struct m_snd_tag *mst)
1506 {
1507
1508 refcount_acquire(&mst->refcount);
1509 return (mst);
1510 }
1511
1512 static inline void
m_snd_tag_rele(struct m_snd_tag * mst)1513 m_snd_tag_rele(struct m_snd_tag *mst)
1514 {
1515
1516 if (refcount_release(&mst->refcount))
1517 m_snd_tag_destroy(mst);
1518 }
1519
1520 static __inline struct mbuf *
m_free(struct mbuf * m)1521 m_free(struct mbuf *m)
1522 {
1523 struct mbuf *n = m->m_next;
1524
1525 MBUF_PROBE1(m__free, m);
1526 if ((m->m_flags & (M_PKTHDR|M_NOFREE)) == (M_PKTHDR|M_NOFREE))
1527 m_tag_delete_chain(m, NULL);
1528 if (m->m_flags & M_PKTHDR && m->m_pkthdr.csum_flags & CSUM_SND_TAG)
1529 m_snd_tag_rele(m->m_pkthdr.snd_tag);
1530 if (m->m_flags & M_EXTPG)
1531 mb_free_extpg(m);
1532 else if (m->m_flags & M_EXT)
1533 mb_free_ext(m);
1534 else if ((m->m_flags & M_NOFREE) == 0)
1535 uma_zfree(zone_mbuf, m);
1536 return (n);
1537 }
1538
1539 static __inline int
rt_m_getfib(struct mbuf * m)1540 rt_m_getfib(struct mbuf *m)
1541 {
1542 KASSERT(m->m_flags & M_PKTHDR,
1543 ("%s: Attempt to get FIB from non header mbuf %p", __func__, m));
1544 return (m->m_pkthdr.fibnum);
1545 }
1546
1547 #define M_GETFIB(_m) rt_m_getfib(_m)
1548
1549 #define M_SETFIB(_m, _fib) do { \
1550 KASSERT((_m)->m_flags & M_PKTHDR, \
1551 ("%s: Attempt to set FIB on non header mbuf %p", __func__, (_m))); \
1552 ((_m)->m_pkthdr.fibnum) = (_fib); \
1553 } while (0)
1554
1555 /* flags passed as first argument for "m_xxx_tcpip_hash()" */
1556 #define MBUF_HASHFLAG_L2 (1 << 2)
1557 #define MBUF_HASHFLAG_L3 (1 << 3)
1558 #define MBUF_HASHFLAG_L4 (1 << 4)
1559
1560 /* mbuf hashing helper routines */
1561 uint32_t m_ether_tcpip_hash_init(void);
1562 uint32_t m_ether_tcpip_hash(const uint32_t, const struct mbuf *, uint32_t);
1563 uint32_t m_infiniband_tcpip_hash_init(void);
1564 uint32_t m_infiniband_tcpip_hash(const uint32_t, const struct mbuf *, uint32_t);
1565
1566 #ifdef MBUF_PROFILING
1567 void m_profile(struct mbuf *m);
1568 #define M_PROFILE(m) m_profile(m)
1569 #else
1570 #define M_PROFILE(m)
1571 #endif
1572
1573 /*
1574 * Structure describing a packet queue: mbufs linked by m_stailqpkt.
1575 * Does accounting of number of packets and has a cap.
1576 */
1577 struct mbufq {
1578 STAILQ_HEAD(, mbuf) mq_head;
1579 int mq_len;
1580 int mq_maxlen;
1581 };
1582
1583 static inline void
mbufq_init(struct mbufq * mq,int maxlen)1584 mbufq_init(struct mbufq *mq, int maxlen)
1585 {
1586
1587 STAILQ_INIT(&mq->mq_head);
1588 mq->mq_maxlen = maxlen;
1589 mq->mq_len = 0;
1590 }
1591
1592 static inline struct mbuf *
mbufq_flush(struct mbufq * mq)1593 mbufq_flush(struct mbufq *mq)
1594 {
1595 struct mbuf *m;
1596
1597 m = STAILQ_FIRST(&mq->mq_head);
1598 STAILQ_INIT(&mq->mq_head);
1599 mq->mq_len = 0;
1600 return (m);
1601 }
1602
1603 static inline void
mbufq_drain(struct mbufq * mq)1604 mbufq_drain(struct mbufq *mq)
1605 {
1606 struct mbuf *m, *n;
1607
1608 n = mbufq_flush(mq);
1609 while ((m = n) != NULL) {
1610 n = STAILQ_NEXT(m, m_stailqpkt);
1611 m_freem(m);
1612 }
1613 }
1614
1615 static inline struct mbuf *
mbufq_first(const struct mbufq * mq)1616 mbufq_first(const struct mbufq *mq)
1617 {
1618
1619 return (STAILQ_FIRST(&mq->mq_head));
1620 }
1621
1622 static inline struct mbuf *
mbufq_last(const struct mbufq * mq)1623 mbufq_last(const struct mbufq *mq)
1624 {
1625
1626 return (STAILQ_LAST(&mq->mq_head, mbuf, m_stailqpkt));
1627 }
1628
1629 static inline bool
mbufq_empty(const struct mbufq * mq)1630 mbufq_empty(const struct mbufq *mq)
1631 {
1632 return (mq->mq_len == 0);
1633 }
1634
1635 static inline int
mbufq_full(const struct mbufq * mq)1636 mbufq_full(const struct mbufq *mq)
1637 {
1638
1639 return (mq->mq_maxlen > 0 && mq->mq_len >= mq->mq_maxlen);
1640 }
1641
1642 static inline int
mbufq_len(const struct mbufq * mq)1643 mbufq_len(const struct mbufq *mq)
1644 {
1645
1646 return (mq->mq_len);
1647 }
1648
1649 static inline int
mbufq_enqueue(struct mbufq * mq,struct mbuf * m)1650 mbufq_enqueue(struct mbufq *mq, struct mbuf *m)
1651 {
1652
1653 if (mbufq_full(mq))
1654 return (ENOBUFS);
1655 STAILQ_INSERT_TAIL(&mq->mq_head, m, m_stailqpkt);
1656 mq->mq_len++;
1657 return (0);
1658 }
1659
1660 static inline void
mbufq_remove(struct mbufq * mq,struct mbuf * m)1661 mbufq_remove(struct mbufq *mq, struct mbuf *m)
1662 {
1663
1664 STAILQ_REMOVE(&mq->mq_head, m, mbuf, m_stailqpkt);
1665 mq->mq_len--;
1666 }
1667
1668 static inline struct mbuf *
mbufq_dequeue(struct mbufq * mq)1669 mbufq_dequeue(struct mbufq *mq)
1670 {
1671 struct mbuf *m;
1672
1673 m = STAILQ_FIRST(&mq->mq_head);
1674 if (m) {
1675 STAILQ_REMOVE_HEAD(&mq->mq_head, m_stailqpkt);
1676 m->m_nextpkt = NULL;
1677 mq->mq_len--;
1678 }
1679 return (m);
1680 }
1681
1682 static inline void
mbufq_prepend(struct mbufq * mq,struct mbuf * m)1683 mbufq_prepend(struct mbufq *mq, struct mbuf *m)
1684 {
1685
1686 STAILQ_INSERT_HEAD(&mq->mq_head, m, m_stailqpkt);
1687 mq->mq_len++;
1688 }
1689
1690 /*
1691 * Note: this doesn't enforce the maximum list size for dst.
1692 */
1693 static inline void
mbufq_concat(struct mbufq * mq_dst,struct mbufq * mq_src)1694 mbufq_concat(struct mbufq *mq_dst, struct mbufq *mq_src)
1695 {
1696
1697 mq_dst->mq_len += mq_src->mq_len;
1698 STAILQ_CONCAT(&mq_dst->mq_head, &mq_src->mq_head);
1699 mq_src->mq_len = 0;
1700 }
1701
1702 /*
1703 * Structure describing a chain of mbufs linked by m_stailq, also tracking
1704 * the pointer to the last. Also does accounting of data length and memory
1705 * usage.
1706 * To be used as an argument to mbuf chain allocation and manipulation KPIs,
1707 * and can be allocated on the stack of a caller. Kernel facilities may use
1708 * it internally as a most simple implementation of a stream data buffer.
1709 */
1710 struct mchain {
1711 STAILQ_HEAD(, mbuf) mc_q;
1712 u_int mc_len;
1713 u_int mc_mlen;
1714 };
1715
1716 #define MCHAIN_INITIALIZER(mc) \
1717 (struct mchain){ .mc_q = STAILQ_HEAD_INITIALIZER((mc)->mc_q) }
1718
1719 static inline struct mbuf *
mc_first(struct mchain * mc)1720 mc_first(struct mchain *mc)
1721 {
1722 return (STAILQ_FIRST(&mc->mc_q));
1723 }
1724
1725 static inline struct mbuf *
mc_last(struct mchain * mc)1726 mc_last(struct mchain *mc)
1727 {
1728 return (STAILQ_LAST(&mc->mc_q, mbuf, m_stailq));
1729 }
1730
1731 static inline bool
mc_empty(struct mchain * mc)1732 mc_empty(struct mchain *mc)
1733 {
1734 return (STAILQ_EMPTY(&mc->mc_q));
1735 }
1736
1737 /* Account addition of m to mc. */
1738 static inline void
mc_inc(struct mchain * mc,struct mbuf * m)1739 mc_inc(struct mchain *mc, struct mbuf *m)
1740 {
1741 mc->mc_len += m->m_len;
1742 mc->mc_mlen += MSIZE;
1743 if (m->m_flags & M_EXT)
1744 mc->mc_mlen += m->m_ext.ext_size;
1745 }
1746
1747 /* Account removal of m from mc. */
1748 static inline void
mc_dec(struct mchain * mc,struct mbuf * m)1749 mc_dec(struct mchain *mc, struct mbuf *m)
1750 {
1751 MPASS(mc->mc_len >= m->m_len);
1752 mc->mc_len -= m->m_len;
1753 MPASS(mc->mc_mlen >= MSIZE);
1754 mc->mc_mlen -= MSIZE;
1755 if (m->m_flags & M_EXT) {
1756 MPASS(mc->mc_mlen >= m->m_ext.ext_size);
1757 mc->mc_mlen -= m->m_ext.ext_size;
1758 }
1759 }
1760
1761 static inline void
mc_init(struct mchain * mc)1762 mc_init(struct mchain *mc)
1763 {
1764 STAILQ_INIT(&mc->mc_q);
1765 mc->mc_len = mc->mc_mlen = 0;
1766 }
1767
1768 /*
1769 * Get mchain from a classic mbuf chain linked by m_next. Two hacks here:
1770 * we use the fact that m_next is alias to m_stailq, we use internal queue(3)
1771 * fields.
1772 */
1773 static inline void
mc_init_m(struct mchain * mc,struct mbuf * m)1774 mc_init_m(struct mchain *mc, struct mbuf *m)
1775 {
1776 struct mbuf *last;
1777
1778 STAILQ_FIRST(&mc->mc_q) = m;
1779 mc->mc_len = mc->mc_mlen = 0;
1780 STAILQ_FOREACH(m, &mc->mc_q, m_stailq) {
1781 mc_inc(mc, m);
1782 last = m;
1783 }
1784 mc->mc_q.stqh_last = &STAILQ_NEXT(last, m_stailq);
1785 }
1786
1787 static inline void
mc_freem(struct mchain * mc)1788 mc_freem(struct mchain *mc)
1789 {
1790 if (!mc_empty(mc))
1791 m_freem(mc_first(mc));
1792 }
1793
1794 static inline void
mc_prepend(struct mchain * mc,struct mbuf * m)1795 mc_prepend(struct mchain *mc, struct mbuf *m)
1796 {
1797 STAILQ_INSERT_HEAD(&mc->mc_q, m, m_stailq);
1798 mc_inc(mc, m);
1799 }
1800
1801 static inline void
mc_append(struct mchain * mc,struct mbuf * m)1802 mc_append(struct mchain *mc, struct mbuf *m)
1803 {
1804 STAILQ_INSERT_TAIL(&mc->mc_q, m, m_stailq);
1805 mc_inc(mc, m);
1806 }
1807
1808 static inline void
mc_concat(struct mchain * head,struct mchain * tail)1809 mc_concat(struct mchain *head, struct mchain *tail)
1810 {
1811 STAILQ_CONCAT(&head->mc_q, &tail->mc_q);
1812 head->mc_len += tail->mc_len;
1813 head->mc_mlen += tail->mc_mlen;
1814 tail->mc_len = tail->mc_mlen = 0;
1815 }
1816
1817 /*
1818 * Note: STAILQ_REMOVE() is expensive. mc_remove_after() needs to be provided
1819 * as long as there consumers that would benefit from it.
1820 */
1821 static inline void
mc_remove(struct mchain * mc,struct mbuf * m)1822 mc_remove(struct mchain *mc, struct mbuf *m)
1823 {
1824 STAILQ_REMOVE(&mc->mc_q, m, mbuf, m_stailq);
1825 mc_dec(mc, m);
1826 }
1827
1828 int mc_get(struct mchain *, u_int, int, short, int);
1829 int mc_split(struct mchain *, struct mchain *, u_int, int);
1830 int mc_uiotomc(struct mchain *, struct uio *, u_int, u_int, int, int);
1831
1832 #ifdef _SYS_TIMESPEC_H_
1833 static inline void
mbuf_tstmp2timespec(struct mbuf * m,struct timespec * ts)1834 mbuf_tstmp2timespec(struct mbuf *m, struct timespec *ts)
1835 {
1836
1837 M_ASSERTPKTHDR(m);
1838 KASSERT((m->m_flags & (M_TSTMP|M_TSTMP_LRO)) != 0,
1839 ("%s: mbuf %p no M_TSTMP or M_TSTMP_LRO", __func__, m));
1840 ts->tv_sec = m->m_pkthdr.rcv_tstmp / 1000000000;
1841 ts->tv_nsec = m->m_pkthdr.rcv_tstmp % 1000000000;
1842 }
1843 #endif
1844
1845 static inline void
mbuf_tstmp2timeval(struct mbuf * m,struct timeval * tv)1846 mbuf_tstmp2timeval(struct mbuf *m, struct timeval *tv)
1847 {
1848
1849 M_ASSERTPKTHDR(m);
1850 KASSERT((m->m_flags & (M_TSTMP|M_TSTMP_LRO)) != 0,
1851 ("%s: mbuf %p no M_TSTMP or M_TSTMP_LRO", __func__, m));
1852 tv->tv_sec = m->m_pkthdr.rcv_tstmp / 1000000000;
1853 tv->tv_usec = (m->m_pkthdr.rcv_tstmp % 1000000000) / 1000;
1854 }
1855
1856 #ifdef DEBUGNET
1857 /* Invoked from the debugnet client code. */
1858 void debugnet_mbuf_drain(void);
1859 void debugnet_mbuf_start(void);
1860 void debugnet_mbuf_finish(void);
1861 void debugnet_mbuf_reinit(int nmbuf, int nclust, int clsize);
1862 #endif
1863
1864 static inline bool
mbuf_has_tls_session(struct mbuf * m)1865 mbuf_has_tls_session(struct mbuf *m)
1866 {
1867
1868 if (m->m_flags & M_EXTPG) {
1869 if (m->m_epg_tls != NULL) {
1870 return (true);
1871 }
1872 }
1873 return (false);
1874 }
1875
1876 #endif /* _KERNEL */
1877 #endif /* !_SYS_MBUF_H_ */
1878