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systemd / systemd / 19216561377

09 Nov 2025 09:05PM UTC coverage: 72.411%. Remained the same
19216561377

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yuwata
profile: skip setting PS0 when PROMPT_COMMAND= is cleared

Fixes #39639.

307180 of 424218 relevant lines covered (72.41%)

1105533.99 hits per line

Source File
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81.36
/src/basic/socket-util.c
1
/* SPDX-License-Identifier: LGPL-2.1-or-later */
2

3
#include <fcntl.h>
4
#include <linux/if.h>
5
#include <linux/if_arp.h>
6
#include <mqueue.h>
7
#include <net/if.h>
8
#include <netdb.h>
9
#include <netinet/ip.h>
10
#include <poll.h>
11
#include <stdio.h>
12
#include <sys/ioctl.h>
13
#include <unistd.h>
14

15
#include "alloc-util.h"
16
#include "errno-util.h"
17
#include "escape.h"
18
#include "fd-util.h"
19
#include "format-ifname.h"
20
#include "format-util.h"
21
#include "in-addr-util.h"
22
#include "io-util.h"
23
#include "log.h"
24
#include "memory-util.h"
25
#include "parse-util.h"
26
#include "path-util.h"
27
#include "pidref.h"
28
#include "process-util.h"
29
#include "random-util.h"
30
#include "socket-util.h"
31
#include "sparse-endian.h"
32
#include "string-table.h"
33
#include "string-util.h"
34
#include "strv.h"
35
#include "sysctl-util.h"
36

37
#if ENABLE_IDN
38
#  define IDN_FLAGS NI_IDN
39
#else
40
#  define IDN_FLAGS 0
41
#endif
42

43
static const char* const socket_address_type_table[] = {
44
        [SOCK_STREAM] =    "Stream",
45
        [SOCK_DGRAM] =     "Datagram",
46
        [SOCK_RAW] =       "Raw",
47
        [SOCK_RDM] =       "ReliableDatagram",
48
        [SOCK_SEQPACKET] = "SequentialPacket",
49
        [SOCK_DCCP] =      "DatagramCongestionControl",
50
};
51

52
DEFINE_STRING_TABLE_LOOKUP(socket_address_type, int);
×
53

54
int socket_address_verify(const SocketAddress *a, bool strict) {
8,216✔
55
        assert(a);
8,216✔
56

57
        /* With 'strict' we enforce additional sanity constraints which are not set by the standard,
58
         * but should only apply to sockets we create ourselves. */
59

60
        switch (socket_address_family(a)) {
8,216✔
61

62
        case AF_INET:
27✔
63
                if (a->size != sizeof(struct sockaddr_in))
27✔
64
                        return -EINVAL;
65

66
                if (a->sockaddr.in.sin_port == 0)
27✔
67
                        return -EINVAL;
68

69
                if (!IN_SET(a->type, 0, SOCK_STREAM, SOCK_DGRAM))
27✔
70
                        return -EINVAL;
1✔
71

72
                return 0;
73

74
        case AF_INET6:
31✔
75
                if (a->size != sizeof(struct sockaddr_in6))
31✔
76
                        return -EINVAL;
77

78
                if (a->sockaddr.in6.sin6_port == 0)
31✔
79
                        return -EINVAL;
80

81
                if (!IN_SET(a->type, 0, SOCK_STREAM, SOCK_DGRAM))
31✔
82
                        return -EINVAL;
×
83

84
                return 0;
85

86
        case AF_UNIX:
7,741✔
87
                if (a->size < offsetof(struct sockaddr_un, sun_path))
7,741✔
88
                        return -EINVAL;
89
                if (a->size > sizeof(struct sockaddr_un) + !strict)
7,741✔
90
                        /* If !strict, allow one extra byte, since getsockname() on Linux will append
91
                         * a NUL byte if we have path sockets that are above sun_path's full size. */
92
                        return -EINVAL;
93

94
                if (a->size > offsetof(struct sockaddr_un, sun_path) &&
7,741✔
95
                    a->sockaddr.un.sun_path[0] != 0 &&
7,741✔
96
                    strict) {
97
                        /* Only validate file system sockets here, and only in strict mode */
98
                        const char *e;
3,301✔
99

100
                        e = memchr(a->sockaddr.un.sun_path, 0, sizeof(a->sockaddr.un.sun_path));
3,301✔
101
                        if (e) {
3,301✔
102
                                /* If there's an embedded NUL byte, make sure the size of the socket address matches it */
103
                                if (a->size != offsetof(struct sockaddr_un, sun_path) + (e - a->sockaddr.un.sun_path) + 1)
3,301✔
104
                                        return -EINVAL;
105
                        } else {
106
                                /* If there's no embedded NUL byte, then the size needs to match the whole
107
                                 * structure or the structure with one extra NUL byte suffixed. (Yeah, Linux is awful,
108
                                 * and considers both equivalent: getsockname() even extends sockaddr_un beyond its
109
                                 * size if the path is non NUL terminated.) */
110
                                if (!IN_SET(a->size, sizeof(a->sockaddr.un.sun_path), sizeof(a->sockaddr.un.sun_path)+1))
×
111
                                        return -EINVAL;
112
                        }
113
                }
114

115
                if (!IN_SET(a->type, 0, SOCK_STREAM, SOCK_DGRAM, SOCK_SEQPACKET))
7,741✔
116
                        return -EINVAL;
×
117

118
                return 0;
119

120
        case AF_NETLINK:
332✔
121

122
                if (a->size != sizeof(struct sockaddr_nl))
332✔
123
                        return -EINVAL;
124

125
                if (!IN_SET(a->type, 0, SOCK_RAW, SOCK_DGRAM))
332✔
126
                        return -EINVAL;
×
127

128
                return 0;
129

130
        case AF_VSOCK:
68✔
131
                if (a->size != sizeof(struct sockaddr_vm))
68✔
132
                        return -EINVAL;
133

134
                if (!IN_SET(a->type, 0, SOCK_STREAM, SOCK_DGRAM))
68✔
135
                        return -EINVAL;
×
136

137
                return 0;
138

139
        default:
140
                return -EAFNOSUPPORT;
141
        }
142
}
143

144
int socket_address_print(const SocketAddress *a, char **ret) {
1,601✔
145
        int r;
1,601✔
146

147
        assert(a);
1,601✔
148
        assert(ret);
1,601✔
149

150
        r = socket_address_verify(a, false); /* We do non-strict validation, because we want to be
1,601✔
151
                                              * able to pretty-print any socket the kernel considers
152
                                              * valid. We still need to do validation to know if we
153
                                              * can meaningfully print the address. */
154
        if (r < 0)
1,601✔
155
                return r;
156

157
        if (socket_address_family(a) == AF_NETLINK) {
1,601✔
158
                _cleanup_free_ char *sfamily = NULL;
113✔
159

160
                r = netlink_family_to_string_alloc(a->protocol, &sfamily);
113✔
161
                if (r < 0)
113✔
162
                        return r;
163

164
                r = asprintf(ret, "%s %u", sfamily, a->sockaddr.nl.nl_groups);
113✔
165
                if (r < 0)
113✔
166
                        return -ENOMEM;
167

168
                return 0;
113✔
169
        }
170

171
        return sockaddr_pretty(&a->sockaddr.sa, a->size, false, true, ret);
1,488✔
172
}
173

174
bool socket_address_can_accept(const SocketAddress *a) {
6,084✔
175
        assert(a);
6,084✔
176

177
        return
6,084✔
178
                IN_SET(a->type, SOCK_STREAM, SOCK_SEQPACKET);
6,084✔
179
}
180

181
bool socket_address_equal(const SocketAddress *a, const SocketAddress *b) {
1,599✔
182
        assert(a);
1,599✔
183
        assert(b);
1,599✔
184

185
        /* Invalid addresses are unequal to all */
186
        if (socket_address_verify(a, false) < 0 ||
3,198✔
187
            socket_address_verify(b, false) < 0)
1,599✔
188
                return false;
189

190
        if (a->type != b->type)
1,598✔
191
                return false;
192

193
        if (socket_address_family(a) != socket_address_family(b))
1,597✔
194
                return false;
195

196
        switch (socket_address_family(a)) {
1,595✔
197

198
        case AF_INET:
6✔
199
                if (a->sockaddr.in.sin_addr.s_addr != b->sockaddr.in.sin_addr.s_addr)
6✔
200
                        return false;
201

202
                if (a->sockaddr.in.sin_port != b->sockaddr.in.sin_port)
5✔
203
                        return false;
1✔
204

205
                break;
206

207
        case AF_INET6:
2✔
208
                if (memcmp(&a->sockaddr.in6.sin6_addr, &b->sockaddr.in6.sin6_addr, sizeof(a->sockaddr.in6.sin6_addr)) != 0)
2✔
209
                        return false;
210

211
                if (a->sockaddr.in6.sin6_port != b->sockaddr.in6.sin6_port)
2✔
212
                        return false;
×
213

214
                break;
215

216
        case AF_UNIX:
1,490✔
217
                if (a->size <= offsetof(struct sockaddr_un, sun_path) ||
1,490✔
218
                    b->size <= offsetof(struct sockaddr_un, sun_path))
1,490✔
219
                        return false;
220

221
                if ((a->sockaddr.un.sun_path[0] == 0) != (b->sockaddr.un.sun_path[0] == 0))
1,490✔
222
                        return false;
223

224
                if (a->sockaddr.un.sun_path[0]) {
1,335✔
225
                        if (!path_equal_or_inode_same(a->sockaddr.un.sun_path, b->sockaddr.un.sun_path, 0))
1,333✔
226
                                return false;
245✔
227
                } else {
228
                        if (a->size != b->size)
2✔
229
                                return false;
230

231
                        if (memcmp(a->sockaddr.un.sun_path, b->sockaddr.un.sun_path, a->size) != 0)
2✔
232
                                return false;
×
233
                }
234

235
                break;
236

237
        case AF_NETLINK:
78✔
238
                if (a->protocol != b->protocol)
78✔
239
                        return false;
240

241
                if (a->sockaddr.nl.nl_groups != b->sockaddr.nl.nl_groups)
78✔
242
                        return false;
1✔
243

244
                break;
245

246
        case AF_VSOCK:
19✔
247
                if (a->sockaddr.vm.svm_cid != b->sockaddr.vm.svm_cid)
19✔
248
                        return false;
249

250
                if (a->sockaddr.vm.svm_port != b->sockaddr.vm.svm_port)
18✔
251
                        return false;
1✔
252

253
                break;
254

255
        default:
256
                /* Cannot compare, so we assume the addresses are different */
257
                return false;
258
        }
259

260
        return true;
261
}
262

263
const char* socket_address_get_path(const SocketAddress *a) {
13,993✔
264
        assert(a);
13,993✔
265

266
        if (socket_address_family(a) != AF_UNIX)
13,993✔
267
                return NULL;
268

269
        if (a->sockaddr.un.sun_path[0] == 0)
13,502✔
270
                return NULL;
271

272
        /* Note that this is only safe because we know that there's an extra NUL byte after the sockaddr_un
273
         * structure. On Linux AF_UNIX file system socket addresses don't have to be NUL terminated if they take up the
274
         * full sun_path space. */
275
        assert_cc(sizeof(union sockaddr_union) >= sizeof(struct sockaddr_un)+1);
13,501✔
276
        return a->sockaddr.un.sun_path;
13,501✔
277
}
278

279
bool socket_ipv6_is_supported(void) {
145,375✔
280
        static int cached = -1;
145,375✔
281

282
        if (cached < 0) {
145,375✔
283

284
                if (access("/proc/net/if_inet6", F_OK) < 0) {
1,084✔
285

286
                        if (errno != ENOENT) {
×
287
                                log_debug_errno(errno, "Unexpected error when checking whether /proc/net/if_inet6 exists: %m");
×
288
                                return false;
×
289
                        }
290

291
                        cached = false;
×
292
                } else
293
                        cached = true;
1,084✔
294
        }
295

296
        return cached;
145,375✔
297
}
298

299
bool socket_ipv6_is_enabled(void) {
107,635✔
300
        _cleanup_free_ char *v = NULL;
107,635✔
301
        int r;
107,635✔
302

303
        /* Much like socket_ipv6_is_supported(), but also checks that the sysctl that disables IPv6 on all
304
         * interfaces isn't turned on */
305

306
        if (!socket_ipv6_is_supported())
107,635✔
307
                return false;
308

309
        r = sysctl_read_ip_property(AF_INET6, "all", "disable_ipv6", &v);
107,635✔
310
        if (r < 0) {
107,635✔
311
                log_debug_errno(r, "Unexpected error reading 'net.ipv6.conf.all.disable_ipv6' sysctl: %m");
×
312
                return true;
×
313
        }
314

315
        r = parse_boolean(v);
107,635✔
316
        if (r < 0) {
107,635✔
317
                log_debug_errno(r, "Failed to pare 'net.ipv6.conf.all.disable_ipv6' sysctl: %m");
×
318
                return true;
×
319
        }
320

321
        return !r;
107,635✔
322
}
323

324
bool socket_address_matches_fd(const SocketAddress *a, int fd) {
513✔
325
        SocketAddress b;
513✔
326
        socklen_t solen;
513✔
327

328
        assert(a);
513✔
329
        assert(fd >= 0);
513✔
330

331
        b.size = sizeof(b.sockaddr);
513✔
332
        if (getsockname(fd, &b.sockaddr.sa, &b.size) < 0)
513✔
333
                return false;
513✔
334

335
        if (b.sockaddr.sa.sa_family != a->sockaddr.sa.sa_family)
513✔
336
                return false;
337

338
        solen = sizeof(b.type);
463✔
339
        if (getsockopt(fd, SOL_SOCKET, SO_TYPE, &b.type, &solen) < 0)
463✔
340
                return false;
341

342
        if (b.type != a->type)
463✔
343
                return false;
344

345
        if (a->protocol != 0)  {
400✔
346
                solen = sizeof(b.protocol);
×
347
                if (getsockopt(fd, SOL_SOCKET, SO_PROTOCOL, &b.protocol, &solen) < 0)
×
348
                        return false;
349

350
                if (b.protocol != a->protocol)
×
351
                        return false;
352
        }
353

354
        return socket_address_equal(a, &b);
400✔
355
}
356

357
int sockaddr_port(const struct sockaddr *_sa, unsigned *ret_port) {
×
358
        const union sockaddr_union *sa = (const union sockaddr_union*) _sa;
×
359

360
        /* Note, this returns the port as 'unsigned' rather than 'uint16_t', as AF_VSOCK knows larger ports */
361

362
        assert(sa);
×
363

364
        switch (sa->sa.sa_family) {
×
365

366
        case AF_INET:
×
367
                *ret_port = be16toh(sa->in.sin_port);
×
368
                return 0;
×
369

370
        case AF_INET6:
×
371
                *ret_port = be16toh(sa->in6.sin6_port);
×
372
                return 0;
×
373

374
        case AF_VSOCK:
×
375
                *ret_port = sa->vm.svm_port;
×
376
                return 0;
×
377

378
        default:
379
                return -EAFNOSUPPORT;
380
        }
381
}
382

383
const union in_addr_union *sockaddr_in_addr(const struct sockaddr *_sa) {
334✔
384
        const union sockaddr_union *sa = (const union sockaddr_union*) _sa;
334✔
385

386
        if (!sa)
334✔
387
                return NULL;
388

389
        switch (sa->sa.sa_family) {
334✔
390

391
        case AF_INET:
260✔
392
                return (const union in_addr_union*) &sa->in.sin_addr;
260✔
393

394
        case AF_INET6:
74✔
395
                return (const union in_addr_union*) &sa->in6.sin6_addr;
74✔
396

397
        default:
398
                return NULL;
399
        }
400
}
401

402
int sockaddr_set_in_addr(
866✔
403
                union sockaddr_union *u,
404
                int family,
405
                const union in_addr_union *a,
406
                uint16_t port) {
407

408
        assert(u);
866✔
409
        assert(a);
866✔
410

411
        switch (family) {
866✔
412

413
        case AF_INET:
851✔
414
                u->in = (struct sockaddr_in) {
851✔
415
                        .sin_family = AF_INET,
416
                        .sin_addr = a->in,
851✔
417
                        .sin_port = htobe16(port),
851✔
418
                };
419

420
                return 0;
851✔
421

422
        case AF_INET6:
15✔
423
                u->in6 = (struct sockaddr_in6) {
15✔
424
                        .sin6_family = AF_INET6,
425
                        .sin6_addr = a->in6,
15✔
426
                        .sin6_port = htobe16(port),
15✔
427
                };
428

429
                return 0;
15✔
430

431
        default:
432
                return -EAFNOSUPPORT;
433

434
        }
435
}
436

437
int sockaddr_pretty(
8,344✔
438
                const struct sockaddr *_sa,
439
                socklen_t salen,
440
                bool translate_ipv6,
441
                bool include_port,
442
                char **ret) {
443

444
        union sockaddr_union *sa = (union sockaddr_union*) _sa;
8,344✔
445
        char *p;
8,344✔
446
        int r;
8,344✔
447

448
        assert(sa);
8,344✔
449
        assert(salen >= sizeof(sa->sa.sa_family));
8,344✔
450
        assert(ret);
8,344✔
451

452
        switch (sa->sa.sa_family) {
8,344✔
453

454
        case AF_INET: {
158✔
455
                uint32_t a;
158✔
456

457
                a = be32toh(sa->in.sin_addr.s_addr);
158✔
458

459
                if (include_port)
158✔
460
                        r = asprintf(&p,
158✔
461
                                     "%u.%u.%u.%u:%u",
462
                                     a >> 24, (a >> 16) & 0xFF, (a >> 8) & 0xFF, a & 0xFF,
463
                                     be16toh(sa->in.sin_port));
158✔
464
                else
465
                        r = asprintf(&p,
×
466
                                     "%u.%u.%u.%u",
467
                                     a >> 24, (a >> 16) & 0xFF, (a >> 8) & 0xFF, a & 0xFF);
468
                if (r < 0)
158✔
469
                        return -ENOMEM;
8,344✔
470
                break;
471
        }
472

473
        case AF_INET6: {
18✔
474
                static const unsigned char ipv4_prefix[] = {
18✔
475
                        0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0xFF, 0xFF
476
                };
477

478
                if (translate_ipv6 &&
18✔
479
                    memcmp(&sa->in6.sin6_addr, ipv4_prefix, sizeof(ipv4_prefix)) == 0) {
9✔
480
                        const uint8_t *a = sa->in6.sin6_addr.s6_addr+12;
×
481
                        if (include_port)
×
482
                                r = asprintf(&p,
×
483
                                             "%u.%u.%u.%u:%u",
484
                                             a[0], a[1], a[2], a[3],
×
485
                                             be16toh(sa->in6.sin6_port));
×
486
                        else
487
                                r = asprintf(&p,
×
488
                                             "%u.%u.%u.%u",
489
                                             a[0], a[1], a[2], a[3]);
×
490
                        if (r < 0)
×
491
                                return -ENOMEM;
492
                } else {
493
                        const char *a = IN6_ADDR_TO_STRING(&sa->in6.sin6_addr);
18✔
494

495
                        if (include_port) {
18✔
496
                                if (asprintf(&p,
17✔
497
                                             "[%s]:%u%s%s",
498
                                             a,
499
                                             be16toh(sa->in6.sin6_port),
17✔
500
                                             sa->in6.sin6_scope_id != 0 ? "%" : "",
17✔
501
                                             FORMAT_IFNAME_FULL(sa->in6.sin6_scope_id, FORMAT_IFNAME_IFINDEX)) < 0)
17✔
502
                                        return -ENOMEM;
×
503
                        } else {
504
                                if (sa->in6.sin6_scope_id != 0)
1✔
505
                                        p = strjoin(a, "%", FORMAT_IFNAME_FULL(sa->in6.sin6_scope_id, FORMAT_IFNAME_IFINDEX));
×
506
                                else
507
                                        p = strdup(a);
1✔
508
                                if (!p)
1✔
509
                                        return -ENOMEM;
510
                        }
511
                }
512

513
                break;
514
        }
515

516
        case AF_UNIX:
8,146✔
517
                if (salen <= offsetof(struct sockaddr_un, sun_path) ||
8,146✔
518
                    (sa->un.sun_path[0] == 0 && salen == offsetof(struct sockaddr_un, sun_path) + 1))
8,144✔
519
                        /* The name must have at least one character (and the leading NUL does not count) */
520
                        p = strdup("<unnamed>");
4✔
521
                else {
522
                        /* Note that we calculate the path pointer here through the .un_buffer[] field, in order to
523
                         * outtrick bounds checking tools such as ubsan, which are too smart for their own good: on
524
                         * Linux the kernel may return sun_path[] data one byte longer than the declared size of the
525
                         * field. */
526
                        char *path = (char*) sa->un_buffer + offsetof(struct sockaddr_un, sun_path);
8,142✔
527
                        size_t path_len = salen - offsetof(struct sockaddr_un, sun_path);
8,142✔
528

529
                        if (path[0] == 0) {
8,142✔
530
                                /* Abstract socket. When parsing address information from, we
531
                                 * explicitly reject overly long paths and paths with embedded NULs.
532
                                 * But we might get such a socket from the outside. Let's return
533
                                 * something meaningful and printable in this case. */
534

535
                                _cleanup_free_ char *e = NULL;
8✔
536

537
                                e = cescape_length(path + 1, path_len - 1);
8✔
538
                                if (!e)
8✔
539
                                        return -ENOMEM;
×
540

541
                                p = strjoin("@", e);
8✔
542
                        } else {
543
                                if (path[path_len - 1] == '\0')
8,134✔
544
                                        /* We expect a terminating NUL and don't print it */
545
                                        path_len--;
8,133✔
546

547
                                p = cescape_length(path, path_len);
8,134✔
548
                        }
549
                }
550
                if (!p)
8,146✔
551
                        return -ENOMEM;
552

553
                break;
554

555
        case AF_VSOCK:
22✔
556
                if (include_port) {
22✔
557
                        if (sa->vm.svm_cid == VMADDR_CID_ANY)
22✔
558
                                r = asprintf(&p, "vsock::%u", sa->vm.svm_port);
19✔
559
                        else
560
                                r = asprintf(&p, "vsock:%u:%u", sa->vm.svm_cid, sa->vm.svm_port);
3✔
561
                } else
562
                        r = asprintf(&p, "vsock:%u", sa->vm.svm_cid);
×
563
                if (r < 0)
22✔
564
                        return -ENOMEM;
565
                break;
566

567
        default:
568
                return -EOPNOTSUPP;
569
        }
570

571
        *ret = p;
8,344✔
572
        return 0;
8,344✔
573
}
574

575
int getpeername_pretty(int fd, bool include_port, char **ret) {
3✔
576
        union sockaddr_union sa;
3✔
577
        socklen_t salen = sizeof(sa);
3✔
578
        int r;
3✔
579

580
        assert(fd >= 0);
3✔
581
        assert(ret);
3✔
582

583
        if (getpeername(fd, &sa.sa, &salen) < 0)
3✔
584
                return -errno;
×
585

586
        if (sa.sa.sa_family == AF_UNIX) {
3✔
587
                struct ucred ucred = UCRED_INVALID;
2✔
588

589
                /* UNIX connection sockets are anonymous, so let's use
590
                 * PID/UID as pretty credentials instead */
591

592
                r = getpeercred(fd, &ucred);
2✔
593
                if (r < 0)
2✔
594
                        return r;
2✔
595

596
                if (asprintf(ret, "PID "PID_FMT"/UID "UID_FMT, ucred.pid, ucred.uid) < 0)
2✔
597
                        return -ENOMEM;
598

599
                return 0;
2✔
600
        }
601

602
        /* For remote sockets we translate IPv6 addresses back to IPv4
603
         * if applicable, since that's nicer. */
604

605
        return sockaddr_pretty(&sa.sa, salen, true, include_port, ret);
1✔
606
}
607

608
int getsockname_pretty(int fd, char **ret) {
2✔
609
        union sockaddr_union sa;
2✔
610
        socklen_t salen = sizeof(sa);
2✔
611

612
        assert(fd >= 0);
2✔
613
        assert(ret);
2✔
614

615
        if (getsockname(fd, &sa.sa, &salen) < 0)
2✔
616
                return -errno;
×
617

618
        /* For local sockets we do not translate IPv6 addresses back
619
         * to IPv6 if applicable, since this is usually used for
620
         * listening sockets where the difference between IPv4 and
621
         * IPv6 matters. */
622

623
        return sockaddr_pretty(&sa.sa, salen, false, true, ret);
2✔
624
}
625

626
int socknameinfo_pretty(const struct sockaddr *sa, socklen_t salen, char **ret) {
×
627
        char host[NI_MAXHOST];
×
628
        int r;
×
629

630
        assert(sa);
×
631
        assert(salen >= sizeof(sa_family_t));
×
632
        assert(ret);
×
633

634
        r = getnameinfo(sa, salen, host, sizeof(host), /* service= */ NULL, /* service_len= */ 0, IDN_FLAGS);
×
635
        if (r != 0) {
×
636
                if (r == EAI_MEMORY)
×
637
                        return log_oom_debug();
×
638
                if (r == EAI_SYSTEM)
×
639
                        log_debug_errno(errno, "getnameinfo() failed, ignoring: %m");
×
640
                else
641
                        log_debug("getnameinfo() failed, ignoring: %s", gai_strerror(r));
×
642

643
                return sockaddr_pretty(sa, salen, /* translate_ipv6= */ true, /* include_port= */ true, ret);
×
644
        }
645

646
        return strdup_to(ret, host);
×
647
}
648

649
static const char* const netlink_family_table[] = {
650
        [NETLINK_ROUTE]          = "route",
651
        [NETLINK_FIREWALL]       = "firewall",
652
        [NETLINK_INET_DIAG]      = "inet-diag",
653
        [NETLINK_NFLOG]          = "nflog",
654
        [NETLINK_XFRM]           = "xfrm",
655
        [NETLINK_SELINUX]        = "selinux",
656
        [NETLINK_ISCSI]          = "iscsi",
657
        [NETLINK_AUDIT]          = "audit",
658
        [NETLINK_FIB_LOOKUP]     = "fib-lookup",
659
        [NETLINK_CONNECTOR]      = "connector",
660
        [NETLINK_NETFILTER]      = "netfilter",
661
        [NETLINK_IP6_FW]         = "ip6-fw",
662
        [NETLINK_DNRTMSG]        = "dnrtmsg",
663
        [NETLINK_KOBJECT_UEVENT] = "kobject-uevent",
664
        [NETLINK_GENERIC]        = "generic",
665
        [NETLINK_SCSITRANSPORT]  = "scsitransport",
666
        [NETLINK_ECRYPTFS]       = "ecryptfs",
667
        [NETLINK_RDMA]           = "rdma",
668
};
669

670
DEFINE_STRING_TABLE_LOOKUP_WITH_FALLBACK(netlink_family, int, INT_MAX);
511✔
671

672
static const char* const socket_address_bind_ipv6_only_table[_SOCKET_ADDRESS_BIND_IPV6_ONLY_MAX] = {
673
        [SOCKET_ADDRESS_DEFAULT] = "default",
674
        [SOCKET_ADDRESS_BOTH] = "both",
675
        [SOCKET_ADDRESS_IPV6_ONLY] = "ipv6-only"
676
};
677

678
DEFINE_STRING_TABLE_LOOKUP(socket_address_bind_ipv6_only, SocketAddressBindIPv6Only);
132✔
679

680
SocketAddressBindIPv6Only socket_address_bind_ipv6_only_or_bool_from_string(const char *n) {
×
681
        int r;
×
682

683
        r = parse_boolean(n);
×
684
        if (r > 0)
×
685
                return SOCKET_ADDRESS_IPV6_ONLY;
686
        if (r == 0)
×
687
                return SOCKET_ADDRESS_BOTH;
688

689
        return socket_address_bind_ipv6_only_from_string(n);
×
690
}
691

692
bool sockaddr_equal(const union sockaddr_union *a, const union sockaddr_union *b) {
659✔
693
        assert(a);
659✔
694
        assert(b);
659✔
695

696
        if (a->sa.sa_family != b->sa.sa_family)
659✔
697
                return false;
698

699
        if (a->sa.sa_family == AF_INET)
658✔
700
                return a->in.sin_addr.s_addr == b->in.sin_addr.s_addr;
4✔
701

702
        if (a->sa.sa_family == AF_INET6)
654✔
703
                return memcmp(&a->in6.sin6_addr, &b->in6.sin6_addr, sizeof(a->in6.sin6_addr)) == 0;
1✔
704

705
        if (a->sa.sa_family == AF_VSOCK)
653✔
706
                return a->vm.svm_cid == b->vm.svm_cid;
1✔
707

708
        return false;
709
}
710

711
int fd_set_sndbuf(int fd, size_t n, bool increase) {
391,426✔
712
        int r, value;
391,426✔
713
        socklen_t l = sizeof(value);
391,426✔
714

715
        if (n > INT_MAX)
391,426✔
716
                return -ERANGE;
391,426✔
717

718
        r = getsockopt(fd, SOL_SOCKET, SO_SNDBUF, &value, &l);
391,426✔
719
        if (r >= 0 && l == sizeof(value) && increase ? (size_t) value >= n*2 : (size_t) value == n*2)
391,426✔
720
                return 0;
721

722
        /* First, try to set the buffer size with SO_SNDBUF. */
723
        r = setsockopt_int(fd, SOL_SOCKET, SO_SNDBUF, n);
391,426✔
724
        if (r < 0)
391,426✔
725
                return r;
726

727
        /* SO_SNDBUF above may set to the kernel limit, instead of the requested size.
728
         * So, we need to check the actual buffer size here. */
729
        l = sizeof(value);
391,426✔
730
        r = getsockopt(fd, SOL_SOCKET, SO_SNDBUF, &value, &l);
391,426✔
731
        if (r >= 0 && l == sizeof(value) && increase ? (size_t) value >= n*2 : (size_t) value == n*2)
391,426✔
732
                return 1;
733

734
        /* If we have the privileges we will ignore the kernel limit. */
735
        r = setsockopt_int(fd, SOL_SOCKET, SO_SNDBUFFORCE, n);
391,426✔
736
        if (r < 0)
391,426✔
737
                return r;
26,671✔
738

739
        return 1;
740
}
741

742
int fd_set_rcvbuf(int fd, size_t n, bool increase) {
29,807✔
743
        int r, value;
29,807✔
744
        socklen_t l = sizeof(value);
29,807✔
745

746
        if (n > INT_MAX)
29,807✔
747
                return -ERANGE;
29,807✔
748

749
        r = getsockopt(fd, SOL_SOCKET, SO_RCVBUF, &value, &l);
29,807✔
750
        if (r >= 0 && l == sizeof(value) && increase ? (size_t) value >= n*2 : (size_t) value == n*2)
29,807✔
751
                return 0;
752

753
        /* First, try to set the buffer size with SO_RCVBUF. */
754
        r = setsockopt_int(fd, SOL_SOCKET, SO_RCVBUF, n);
29,806✔
755
        if (r < 0)
29,806✔
756
                return r;
757

758
        /* SO_RCVBUF above may set to the kernel limit, instead of the requested size.
759
         * So, we need to check the actual buffer size here. */
760
        l = sizeof(value);
29,806✔
761
        r = getsockopt(fd, SOL_SOCKET, SO_RCVBUF, &value, &l);
29,806✔
762
        if (r >= 0 && l == sizeof(value) && increase ? (size_t) value >= n*2 : (size_t) value == n*2)
29,806✔
763
                return 1;
764

765
        /* If we have the privileges we will ignore the kernel limit. */
766
        r = setsockopt_int(fd, SOL_SOCKET, SO_RCVBUFFORCE, n);
29,806✔
767
        if (r < 0)
29,806✔
768
                return r;
5,486✔
769

770
        return 1;
771
}
772

773
static const char* const ip_tos_table[] = {
774
        [IPTOS_LOWDELAY]    = "low-delay",
775
        [IPTOS_THROUGHPUT]  = "throughput",
776
        [IPTOS_RELIABILITY] = "reliability",
777
        [IPTOS_LOWCOST]     = "low-cost",
778
};
779

780
DEFINE_STRING_TABLE_LOOKUP_WITH_FALLBACK(ip_tos, int, 0xff);
5✔
781

782
bool ifname_valid_char(char a) {
479,121✔
783
        if ((unsigned char) a >= 127U)
479,121✔
784
                return false;
785

786
        if ((unsigned char) a <= 32U)
479,121✔
787
                return false;
788

789
        if (IN_SET(a,
479,117✔
790
                   ':',  /* colons are used by the legacy "alias" interface logic */
791
                   '/',  /* slashes cannot work, since we need to use network interfaces in sysfs paths, and in paths slashes are separators */
792
                   '%')) /* %d is used in the kernel's weird foo%d format string naming feature which we really really don't want to ever run into by accident */
793
                return false;
10✔
794

795
        return true;
796
}
797

798
bool ifname_valid_full(const char *p, IfnameValidFlags flags) {
136,621✔
799
        bool numeric = true;
136,621✔
800

801
        /* Checks whether a network interface name is valid. This is inspired by dev_valid_name() in the kernel sources
802
         * but slightly stricter, as we only allow non-control, non-space ASCII characters in the interface name. We
803
         * also don't permit names that only container numbers, to avoid confusion with numeric interface indexes. */
804

805
        assert(!(flags & ~_IFNAME_VALID_ALL));
136,621✔
806

807
        if (isempty(p))
136,621✔
808
                return false;
809

810
        /* A valid ifindex? If so, it's valid iff IFNAME_VALID_NUMERIC is set */
811
        if (parse_ifindex(p) >= 0)
131,940✔
812
                return flags & IFNAME_VALID_NUMERIC;
57✔
813

814
        if (flags & IFNAME_VALID_ALTERNATIVE) {
131,883✔
815
                if (strlen(p) >= ALTIFNAMSIZ)
13,204✔
816
                        return false;
817
        } else {
818
                if (strlen(p) >= IFNAMSIZ)
118,679✔
819
                        return false;
820
        }
821

822
        if (dot_or_dot_dot(p))
131,876✔
823
                return false;
824

825
        /* Let's refuse "all" and "default" as interface name, to avoid collisions with the special sysctl
826
         * directories /proc/sys/net/{ipv4,ipv6}/conf/{all,default} */
827
        if (!FLAGS_SET(flags, IFNAME_VALID_SPECIAL) && STR_IN_SET(p, "all", "default"))
131,874✔
828
                return false;
×
829

830
        for (const char *t = p; *t; t++) {
603,893✔
831
                if (!ifname_valid_char(*t))
472,033✔
832
                        return false;
833

834
                numeric = numeric && ascii_isdigit(*t);
603,883✔
835
        }
836

837
        /* It's fully numeric but didn't parse as valid ifindex above? if so, it must be too large or zero or
838
         * so, let's refuse that. */
839
        if (numeric)
131,860✔
840
                return false;
2✔
841

842
        return true;
843
}
844

845
bool address_label_valid(const char *p) {
44✔
846

847
        if (isempty(p))
44✔
848
                return false;
849

850
        if (strlen(p) >= IFNAMSIZ)
44✔
851
                return false;
852

853
        while (*p) {
376✔
854
                if ((uint8_t) *p >= 127U)
332✔
855
                        return false;
856

857
                if ((uint8_t) *p <= 31U)
332✔
858
                        return false;
859
                p++;
332✔
860
        }
861

862
        return true;
863
}
864

865
int getpeercred(int fd, struct ucred *ucred) {
81,910✔
866
        socklen_t n = sizeof(struct ucred);
81,910✔
867
        struct ucred u;
81,910✔
868

869
        assert(fd >= 0);
81,910✔
870
        assert(ucred);
81,910✔
871

872
        if (getsockopt(fd, SOL_SOCKET, SO_PEERCRED, &u, &n) < 0)
81,910✔
873
                return -errno;
×
874

875
        if (n != sizeof(struct ucred))
81,910✔
876
                return -EIO;
877

878
        /* Check if the data is actually useful and not suppressed due to namespacing issues */
879
        if (!pid_is_valid(u.pid))
81,910✔
880
                return -ENODATA;
881

882
        /* Note that we don't check UID/GID here, as namespace translation works differently there: instead of
883
         * receiving in "invalid" user/group we get the overflow UID/GID. */
884

885
        *ucred = u;
81,910✔
886
        return 0;
81,910✔
887
}
888

889
int getpeersec(int fd, char **ret) {
17,725✔
890
        _cleanup_free_ char *s = NULL;
35,450✔
891
        socklen_t n = 64;
17,725✔
892

893
        assert(fd >= 0);
17,725✔
894
        assert(ret);
17,725✔
895

896
        for (;;) {
17,725✔
897
                s = new0(char, n+1);
17,725✔
898
                if (!s)
17,725✔
899
                        return -ENOMEM;
900

901
                if (getsockopt(fd, SOL_SOCKET, SO_PEERSEC, s, &n) >= 0) {
17,725✔
902
                        s[n] = 0;
7,437✔
903
                        break;
7,437✔
904
                }
905

906
                if (errno != ERANGE)
10,288✔
907
                        return -errno;
10,288✔
908

909
                s = mfree(s);
×
910
        }
911

912
        if (isempty(s))
7,437✔
913
                return -EOPNOTSUPP;
914

915
        *ret = TAKE_PTR(s);
7,437✔
916

917
        return 0;
7,437✔
918
}
919

920
int getpeergroups(int fd, gid_t **ret) {
17,726✔
921
        socklen_t n = sizeof(gid_t) * 64U;
17,726✔
922
        _cleanup_free_ gid_t *d = NULL;
17,726✔
923

924
        assert(fd >= 0);
17,726✔
925
        assert(ret);
17,726✔
926

927
        long ngroups_max = sysconf(_SC_NGROUPS_MAX);
17,726✔
928
        if (ngroups_max > 0)
17,726✔
929
                n = MAX(n, sizeof(gid_t) * (socklen_t) ngroups_max);
17,726✔
930

931
        for (;;) {
17,726✔
932
                d = malloc(n);
17,726✔
933
                if (!d)
17,726✔
934
                        return -ENOMEM;
935

936
                if (getsockopt(fd, SOL_SOCKET, SO_PEERGROUPS, d, &n) >= 0)
17,726✔
937
                        break;
938

939
                if (errno != ERANGE)
×
940
                        return -errno;
×
941

942
                d = mfree(d);
×
943
        }
944

945
        assert_se(n % sizeof(gid_t) == 0);
17,726✔
946
        n /= sizeof(gid_t);
17,726✔
947

948
        if (n > INT_MAX)
17,726✔
949
                return -E2BIG;
950

951
        *ret = TAKE_PTR(d);
17,726✔
952

953
        return (int) n;
17,726✔
954
}
955

956
int getpeerpidfd(int fd) {
18,140✔
957
        socklen_t n = sizeof(int);
18,140✔
958
        int pidfd = -EBADF;
18,140✔
959

960
        assert(fd >= 0);
18,140✔
961

962
        if (getsockopt(fd, SOL_SOCKET, SO_PEERPIDFD, &pidfd, &n) < 0)
18,140✔
963
                return -errno;
×
964

965
        if (n != sizeof(int))
18,140✔
966
                return -EIO;
967

968
        return pidfd;
18,140✔
969
}
970

971
int getpeerpidref(int fd, PidRef *ret) {
4✔
972
        int r;
4✔
973

974
        assert(fd >= 0);
4✔
975
        assert(ret);
4✔
976

977
        int pidfd = getpeerpidfd(fd);
4✔
978
        if (pidfd < 0) {
4✔
979
                if (!ERRNO_IS_NEG_NOT_SUPPORTED(pidfd))
×
980
                        return pidfd;
×
981

982
                struct ucred ucred;
×
983
                r = getpeercred(fd, &ucred);
×
984
                if (r < 0)
×
985
                        return r;
986

987
                return pidref_set_pid(ret, ucred.pid);
×
988
        }
989

990
        return pidref_set_pidfd_consume(ret, pidfd);
4✔
991
}
992

993
ssize_t send_many_fds_iov_sa(
1✔
994
                int transport_fd,
995
                int *fds_array, size_t n_fds_array,
996
                const struct iovec *iov, size_t iovlen,
997
                const struct sockaddr *sa, socklen_t len,
998
                int flags) {
999

1000
        _cleanup_free_ struct cmsghdr *cmsg = NULL;
1✔
1001
        struct msghdr mh = {
1✔
1002
                .msg_name = (struct sockaddr*) sa,
1003
                .msg_namelen = len,
1004
                .msg_iov = (struct iovec *)iov,
1005
                .msg_iovlen = iovlen,
1006
        };
1007
        ssize_t k;
1✔
1008

1009
        assert(transport_fd >= 0);
1✔
1010
        assert(fds_array || n_fds_array == 0);
1✔
1011

1012
        /* The kernel will reject sending more than SCM_MAX_FD FDs at once */
1013
        if (n_fds_array > SCM_MAX_FD)
1✔
1014
                return -E2BIG;
1015

1016
        /* We need either an FD array or data to send. If there's nothing, return an error. */
1017
        if (n_fds_array == 0 && !iov)
1✔
1018
                return -EINVAL;
1019

1020
        if (n_fds_array > 0) {
1✔
1021
                mh.msg_controllen = CMSG_SPACE(sizeof(int) * n_fds_array);
1✔
1022
                mh.msg_control = cmsg = malloc(mh.msg_controllen);
1✔
1023
                if (!cmsg)
1✔
1024
                        return -ENOMEM;
1025

1026
                *cmsg = (struct cmsghdr) {
1✔
1027
                        .cmsg_len = CMSG_LEN(sizeof(int) * n_fds_array),
1✔
1028
                        .cmsg_level = SOL_SOCKET,
1029
                        .cmsg_type = SCM_RIGHTS,
1030
                };
1031
                memcpy(CMSG_DATA(cmsg), fds_array, sizeof(int) * n_fds_array);
1✔
1032
        }
1033
        k = sendmsg(transport_fd, &mh, MSG_NOSIGNAL | flags);
1✔
1034
        if (k < 0)
1✔
1035
                return (ssize_t) -errno;
×
1036

1037
        return k;
1038
}
1039

1040
ssize_t send_one_fd_iov_sa(
905✔
1041
                int transport_fd,
1042
                int fd,
1043
                const struct iovec *iov, size_t iovlen,
1044
                const struct sockaddr *sa, socklen_t len,
1045
                int flags) {
1046

1047
        CMSG_BUFFER_TYPE(CMSG_SPACE(sizeof(int))) control = {};
905✔
1048
        struct msghdr mh = {
905✔
1049
                .msg_name = (struct sockaddr*) sa,
1050
                .msg_namelen = len,
1051
                .msg_iov = (struct iovec *)iov,
1052
                .msg_iovlen = iovlen,
1053
        };
1054
        ssize_t k;
905✔
1055

1056
        assert(transport_fd >= 0);
905✔
1057

1058
        /*
1059
         * We need either an FD or data to send.
1060
         * If there's nothing, return an error.
1061
         */
1062
        if (fd < 0 && !iov)
905✔
1063
                return -EINVAL;
905✔
1064

1065
        if (fd >= 0) {
904✔
1066
                struct cmsghdr *cmsg;
902✔
1067

1068
                mh.msg_control = &control;
902✔
1069
                mh.msg_controllen = sizeof(control);
902✔
1070

1071
                cmsg = CMSG_FIRSTHDR(&mh);
902✔
1072
                cmsg->cmsg_level = SOL_SOCKET;
902✔
1073
                cmsg->cmsg_type = SCM_RIGHTS;
902✔
1074
                cmsg->cmsg_len = CMSG_LEN(sizeof(int));
902✔
1075
                memcpy(CMSG_DATA(cmsg), &fd, sizeof(int));
902✔
1076
        }
1077
        k = sendmsg(transport_fd, &mh, MSG_NOSIGNAL | flags);
904✔
1078
        if (k < 0)
904✔
1079
                return (ssize_t) -errno;
×
1080

1081
        return k;
1082
}
1083

1084
int send_one_fd_sa(
6✔
1085
                int transport_fd,
1086
                int fd,
1087
                const struct sockaddr *sa, socklen_t len,
1088
                int flags) {
1089

1090
        assert(fd >= 0);
6✔
1091

1092
        return (int) send_one_fd_iov_sa(transport_fd, fd, NULL, 0, sa, len, flags);
6✔
1093
}
1094

1095
ssize_t receive_many_fds_iov(
1✔
1096
                int transport_fd,
1097
                struct iovec *iov, size_t iovlen,
1098
                int **ret_fds_array, size_t *ret_n_fds_array,
1099
                int flags) {
1100

1101
        CMSG_BUFFER_TYPE(CMSG_SPACE(sizeof(int) * SCM_MAX_FD)) control;
1✔
1102
        struct msghdr mh = {
1✔
1103
                .msg_control = &control,
1104
                .msg_controllen = sizeof(control),
1105
                .msg_iov = iov,
1106
                .msg_iovlen = iovlen,
1107
        };
1108
        _cleanup_free_ int *fds_array = NULL;
1✔
1109
        size_t n_fds_array = 0;
1✔
1110
        struct cmsghdr *cmsg;
1✔
1111
        ssize_t k;
1✔
1112

1113
        assert(transport_fd >= 0);
1✔
1114
        assert(ret_fds_array);
1✔
1115
        assert(ret_n_fds_array);
1✔
1116

1117
        /*
1118
         * Receive many FDs via @transport_fd. We don't care for the transport-type. We retrieve all the FDs
1119
         * at once. This is best used in combination with send_many_fds().
1120
         */
1121

1122
        k = recvmsg_safe(transport_fd, &mh, MSG_CMSG_CLOEXEC | flags);
1✔
1123
        if (k < 0)
1✔
1124
                return k;
1125

1126
        CMSG_FOREACH(cmsg, &mh)
4✔
1127
                if (cmsg->cmsg_level == SOL_SOCKET && cmsg->cmsg_type == SCM_RIGHTS) {
1✔
1128
                        size_t n = (cmsg->cmsg_len - CMSG_LEN(0)) / sizeof(int);
1✔
1129

1130
                        if (!GREEDY_REALLOC_APPEND(fds_array, n_fds_array, CMSG_TYPED_DATA(cmsg, int), n)) {
1✔
1131
                                cmsg_close_all(&mh);
×
1132
                                return -ENOMEM;
1133
                        }
1134
                }
1135

1136
        if (n_fds_array == 0) {
1✔
1137
                cmsg_close_all(&mh);
×
1138

1139
                /* If didn't receive an FD or any data, return an error. */
1140
                if (k == 0)
×
1141
                        return -EIO;
1142
        }
1143

1144
        *ret_fds_array = TAKE_PTR(fds_array);
1✔
1145
        *ret_n_fds_array = n_fds_array;
1✔
1146

1147
        return k;
1✔
1148
}
1149

1150
int receive_many_fds(int transport_fd, int **ret_fds_array, size_t *ret_n_fds_array, int flags) {
×
1151
        ssize_t k;
×
1152

1153
        k = receive_many_fds_iov(transport_fd, NULL, 0, ret_fds_array, ret_n_fds_array, flags);
×
1154
        if (k == 0)
×
1155
                return 0;
1156

1157
        /* k must be negative, since receive_many_fds_iov() only returns a positive value if data was received
1158
         * through the iov. */
1159
        assert(k < 0);
×
1160
        return (int) k;
×
1161
}
1162

1163
ssize_t receive_one_fd_iov(
5,302✔
1164
                int transport_fd,
1165
                struct iovec *iov, size_t iovlen,
1166
                int flags,
1167
                int *ret_fd) {
1168

1169
        CMSG_BUFFER_TYPE(CMSG_SPACE(sizeof(int))) control;
5,302✔
1170
        struct msghdr mh = {
5,302✔
1171
                .msg_control = &control,
1172
                .msg_controllen = sizeof(control),
1173
                .msg_iov = iov,
1174
                .msg_iovlen = iovlen,
1175
        };
1176
        struct cmsghdr *found;
5,302✔
1177
        ssize_t k;
5,302✔
1178

1179
        assert(transport_fd >= 0);
5,302✔
1180
        assert(ret_fd);
5,302✔
1181

1182
        /*
1183
         * Receive a single FD via @transport_fd. We don't care for
1184
         * the transport-type. We retrieve a single FD at most, so for
1185
         * packet-based transports, the caller must ensure to send
1186
         * only a single FD per packet.  This is best used in
1187
         * combination with send_one_fd().
1188
         */
1189

1190
        k = recvmsg_safe(transport_fd, &mh, MSG_CMSG_CLOEXEC | flags);
5,302✔
1191
        if (k < 0)
5,302✔
1192
                return k;
5,302✔
1193

1194
        found = cmsg_find(&mh, SOL_SOCKET, SCM_RIGHTS, CMSG_LEN(sizeof(int)));
5,106✔
1195
        if (!found) {
5,106✔
1196
                cmsg_close_all(&mh);
1,542✔
1197

1198
                /* If didn't receive an FD or any data, return an error. */
1199
                if (k == 0)
1,542✔
1200
                        return -EIO;
1201
        }
1202

1203
        if (found)
3,565✔
1204
                *ret_fd = *CMSG_TYPED_DATA(found, int);
3,564✔
1205
        else
1206
                *ret_fd = -EBADF;
1✔
1207

1208
        return k;
1209
}
1210

1211
int receive_one_fd(int transport_fd, int flags) {
781✔
1212
        int fd;
781✔
1213
        ssize_t k;
781✔
1214

1215
        k = receive_one_fd_iov(transport_fd, NULL, 0, flags, &fd);
781✔
1216
        if (k == 0)
781✔
1217
                return fd;
702✔
1218

1219
        /* k must be negative, since receive_one_fd_iov() only returns
1220
         * a positive value if data was received through the iov. */
1221
        assert(k < 0);
79✔
1222
        return (int) k;
79✔
1223
}
1224

1225
ssize_t next_datagram_size_fd(int fd) {
193,344✔
1226
        ssize_t l;
193,344✔
1227
        int k;
193,344✔
1228

1229
        /* This is a bit like FIONREAD/SIOCINQ, however a bit more powerful. The difference being: recv(MSG_PEEK) will
1230
         * actually cause the next datagram in the queue to be validated regarding checksums, which FIONREAD doesn't
1231
         * do. This difference is actually of major importance as we need to be sure that the size returned here
1232
         * actually matches what we will read with recvmsg() next, as otherwise we might end up allocating a buffer of
1233
         * the wrong size. */
1234

1235
        l = recv(fd, NULL, 0, MSG_PEEK|MSG_TRUNC);
193,344✔
1236
        if (l < 0) {
193,344✔
1237
                if (IN_SET(errno, EOPNOTSUPP, EFAULT))
575✔
1238
                        goto fallback;
×
1239

1240
                return -errno;
575✔
1241
        }
1242
        if (l == 0)
192,769✔
1243
                goto fallback;
67✔
1244

1245
        return l;
1246

1247
fallback:
67✔
1248
        k = 0;
67✔
1249

1250
        /* Some sockets (AF_PACKET) do not support null-sized recv() with MSG_TRUNC set, let's fall back to FIONREAD
1251
         * for them. Checksums don't matter for raw sockets anyway, hence this should be fine. */
1252

1253
        if (ioctl(fd, FIONREAD, &k) < 0)
67✔
1254
                return -errno;
×
1255

1256
        return (ssize_t) k;
67✔
1257
}
1258

1259
/* Put a limit on how many times will attempt to call accept4(). We loop
1260
 * only on "transient" errors, but let's make sure we don't loop forever. */
1261
#define MAX_FLUSH_ITERATIONS 1024
1262

1263
int flush_accept(int fd) {
12✔
1264

1265
        int r, b;
12✔
1266
        socklen_t l = sizeof(b);
12✔
1267

1268
        /* Similar to flush_fd() but flushes all incoming connections by accepting and immediately closing
1269
         * them. */
1270

1271
        if (getsockopt(fd, SOL_SOCKET, SO_ACCEPTCONN, &b, &l) < 0)
12✔
1272
                return -errno;
×
1273

1274
        assert(l == sizeof(b));
12✔
1275
        if (!b) /* Let's check if this socket accepts connections before calling accept(). accept4() can
12✔
1276
                 * return EOPNOTSUPP if the fd is not a listening socket, which we should treat as a fatal
1277
                 * error, or in case the incoming TCP connection triggered a network issue, which we want to
1278
                 * treat as a transient error. Thus, let's rule out the first reason for EOPNOTSUPP early, so
1279
                 * we can loop safely on transient errors below. */
1280
                return -ENOTTY;
1281

1282
        for (unsigned iteration = 0;; iteration++) {
2✔
1283
                int cfd;
6✔
1284

1285
                r = fd_wait_for_event(fd, POLLIN, 0);
6✔
1286
                if (r < 0) {
6✔
1287
                        if (r == -EINTR)
×
1288
                                continue;
×
1289

1290
                        return r;
1291
                }
1292
                if (r == 0)
6✔
1293
                        return 0;
1294

1295
                if (iteration >= MAX_FLUSH_ITERATIONS)
2✔
1296
                        return log_debug_errno(SYNTHETIC_ERRNO(EBUSY),
×
1297
                                               "Failed to flush connections within " STRINGIFY(MAX_FLUSH_ITERATIONS) " iterations.");
1298

1299
                cfd = accept4(fd, NULL, NULL, SOCK_NONBLOCK|SOCK_CLOEXEC);
2✔
1300
                if (cfd < 0) {
2✔
1301
                        if (errno == EAGAIN)
×
1302
                                return 0;
1303

1304
                        if (ERRNO_IS_ACCEPT_AGAIN(errno))
×
1305
                                continue;
×
1306

1307
                        return -errno;
×
1308
                }
1309

1310
                safe_close(cfd);
2✔
1311
        }
1312
}
1313

1314
ssize_t flush_mqueue(int fd) {
×
1315
        _cleanup_free_ char *buf = NULL;
×
1316
        struct mq_attr attr;
×
1317
        ssize_t count = 0;
×
1318
        int r;
×
1319

1320
        assert(fd >= 0);
×
1321

1322
        /* Similar to flush_fd() but flushes all messages from a POSIX message queue. */
1323

1324
        for (;;) {
×
1325
                ssize_t l;
×
1326

1327
                r = fd_wait_for_event(fd, POLLIN, /* timeout= */ 0);
×
1328
                if (r < 0) {
×
1329
                        if (r == -EINTR)
×
1330
                                continue;
×
1331

1332
                        return r;
×
1333
                }
1334
                if (r == 0)
×
1335
                        return count;
1336

1337
                if (!buf) {
×
1338
                        /* Buffer must be at least as large as mq_msgsize. */
1339
                        if (mq_getattr(fd, &attr) < 0)
×
1340
                                return -errno;
×
1341

1342
                        buf = malloc(attr.mq_msgsize);
×
1343
                        if (!buf)
×
1344
                                return -ENOMEM;
1345
                }
1346

1347
                l = mq_receive(fd, buf, attr.mq_msgsize, /* msg_prio = */ NULL);
×
1348
                if (l < 0) {
×
1349
                        if (errno == EINTR)
×
1350
                                continue;
×
1351

1352
                        if (errno == EAGAIN)
×
1353
                                return count;
1354

1355
                        return -errno;
×
1356
                }
1357

1358
                count += l;
×
1359
        }
1360
}
1361

1362
struct cmsghdr* cmsg_find(struct msghdr *mh, int level, int type, socklen_t length) {
389,139✔
1363
        struct cmsghdr *cmsg;
389,139✔
1364

1365
        assert(mh);
389,139✔
1366

1367
        CMSG_FOREACH(cmsg, mh)
778,882✔
1368
                if (cmsg->cmsg_level == level &&
350,971✔
1369
                    cmsg->cmsg_type == type &&
350,669✔
1370
                    (length == (socklen_t) -1 || length == cmsg->cmsg_len))
350,127✔
1371
                        return cmsg;
1372

1373
        return NULL;
1374
}
1375

1376
void* cmsg_find_and_copy_data(struct msghdr *mh, int level, int type, void *buf, size_t buf_len) {
339✔
1377
        struct cmsghdr *cmsg;
339✔
1378

1379
        assert(mh);
339✔
1380
        assert(buf);
339✔
1381
        assert(buf_len > 0);
339✔
1382

1383
        /* This is similar to cmsg_find_data(), but copy the found data to buf. This should be typically used
1384
         * when reading possibly unaligned data such as timestamp, as time_t is 64-bit and size_t is 32-bit on
1385
         * RISCV32. See issue #27241. */
1386

1387
        cmsg = cmsg_find(mh, level, type, CMSG_LEN(buf_len));
339✔
1388
        if (!cmsg)
339✔
1389
                return NULL;
1390

1391
        return memcpy_safe(buf, CMSG_DATA(cmsg), buf_len);
332✔
1392
}
1393

1394
size_t sockaddr_ll_len(const struct sockaddr_ll *sa) {
343✔
1395
        /* Certain hardware address types (e.g Infiniband) do not fit into sll_addr
1396
         * (8 bytes) and run over the structure. This function returns the correct size that
1397
         * must be passed to kernel. */
1398

1399
        assert(sa->sll_family == AF_PACKET);
343✔
1400

1401
        size_t mac_len = sizeof(sa->sll_addr);
343✔
1402

1403
        if (be16toh(sa->sll_hatype) == ARPHRD_ETHER)
343✔
1404
                mac_len = MAX(mac_len, (size_t) ETH_ALEN);
343✔
1405
        if (be16toh(sa->sll_hatype) == ARPHRD_INFINIBAND)
343✔
1406
                mac_len = MAX(mac_len, (size_t) INFINIBAND_ALEN);
×
1407

1408
        return offsetof(struct sockaddr_ll, sll_addr) + mac_len;
343✔
1409
}
1410

1411
size_t sockaddr_un_len(const struct sockaddr_un *sa) {
2,557✔
1412
        /* Covers only file system and abstract AF_UNIX socket addresses, but not unnamed socket addresses. */
1413

1414
        assert(sa->sun_family == AF_UNIX);
2,557✔
1415

1416
        return offsetof(struct sockaddr_un, sun_path) +
7,671✔
1417
                (sa->sun_path[0] == 0 ?
2,557✔
1418
                        1 + strnlen(sa->sun_path+1, sizeof(sa->sun_path)-1) :
610✔
1419
                        strnlen(sa->sun_path, sizeof(sa->sun_path))+1);
1,947✔
1420
}
1421

1422
size_t sockaddr_len(const union sockaddr_union *sa) {
215✔
1423
        switch (sa->sa.sa_family) {
215✔
1424
        case AF_INET:
1425
                return sizeof(struct sockaddr_in);
1426
        case AF_INET6:
57✔
1427
                return sizeof(struct sockaddr_in6);
57✔
1428
        case AF_UNIX:
3✔
1429
                return sockaddr_un_len(&sa->un);
3✔
1430
        case AF_PACKET:
×
1431
                return sockaddr_ll_len(&sa->ll);
×
1432
        case AF_NETLINK:
×
1433
                return sizeof(struct sockaddr_nl);
×
1434
        case AF_VSOCK:
1435
                return sizeof(struct sockaddr_vm);
1436
        default:
×
1437
                assert_not_reached();
×
1438
        }
1439
}
1440

1441
int socket_ioctl_fd(void) {
4,782✔
1442
        int fd;
4,782✔
1443

1444
        /* Create a socket to invoke the various network interface ioctl()s on. Traditionally only AF_INET was good for
1445
         * that. Since kernel 4.6 AF_NETLINK works for this too. We first try to use AF_INET hence, but if that's not
1446
         * available (for example, because it is made unavailable via SECCOMP or such), we'll fall back to the more
1447
         * generic AF_NETLINK. */
1448

1449
        fd = socket(AF_INET, SOCK_DGRAM|SOCK_CLOEXEC, 0);
4,782✔
1450
        if (fd < 0)
4,782✔
1451
                fd = socket(AF_NETLINK, SOCK_RAW|SOCK_CLOEXEC, NETLINK_GENERIC);
×
1452
        if (fd < 0)
×
1453
                return -errno;
×
1454

1455
        return fd;
1456
}
1457

1458
int sockaddr_un_unlink(const struct sockaddr_un *sa) {
1,408✔
1459
        const char *p, * nul;
1,408✔
1460

1461
        assert(sa);
1,408✔
1462

1463
        if (sa->sun_family != AF_UNIX)
1,408✔
1464
                return -EPROTOTYPE;
1465

1466
        if (sa->sun_path[0] == 0) /* Nothing to do for abstract sockets */
1,408✔
1467
                return 0;
1468

1469
        /* The path in .sun_path is not necessarily NUL terminated. Let's fix that. */
1470
        nul = memchr(sa->sun_path, 0, sizeof(sa->sun_path));
1,408✔
1471
        if (nul)
1,408✔
1472
                p = sa->sun_path;
1473
        else
1474
                p = memdupa_suffix0(sa->sun_path, sizeof(sa->sun_path));
×
1475

1476
        if (unlink(p) < 0)
1,408✔
1477
                return -errno;
1,090✔
1478

1479
        return 1;
1480
}
1481

1482
int sockaddr_un_set_path(struct sockaddr_un *ret, const char *path) {
401,633✔
1483
        size_t l;
401,633✔
1484

1485
        assert(ret);
401,633✔
1486
        assert(path);
401,633✔
1487

1488
        /* Initialize ret->sun_path from the specified argument. This will interpret paths starting with '@' as
1489
         * abstract namespace sockets, and those starting with '/' as regular filesystem sockets. It won't accept
1490
         * anything else (i.e. no relative paths), to avoid ambiguities. Note that this function cannot be used to
1491
         * reference paths in the abstract namespace that include NUL bytes in the name. */
1492

1493
        l = strlen(path);
401,633✔
1494
        if (l < 2)
401,633✔
1495
                return -EINVAL;
1496
        if (!IN_SET(path[0], '/', '@'))
401,632✔
1497
                return -EINVAL;
1498

1499
        /* Don't allow paths larger than the space in sockaddr_un. Note that we are a tiny bit more restrictive than
1500
         * the kernel is: we insist on NUL termination (both for abstract namespace and regular file system socket
1501
         * addresses!), which the kernel doesn't. We do this to reduce chance of incompatibility with other apps that
1502
         * do not expect non-NUL terminated file system path. */
1503
        if (l+1 > sizeof(ret->sun_path))
401,632✔
1504
                return path[0] == '@' ? -EINVAL : -ENAMETOOLONG; /* return a recognizable error if this is
2✔
1505
                                                                  * too long to fit into a sockaddr_un, but
1506
                                                                  * is a file system path, and thus might be
1507
                                                                  * connectible via O_PATH indirection. */
1508

1509
        *ret = (struct sockaddr_un) {
401,630✔
1510
                .sun_family = AF_UNIX,
1511
        };
1512

1513
        if (path[0] == '@') {
401,630✔
1514
                /* Abstract namespace socket */
1515
                memcpy(ret->sun_path + 1, path + 1, l); /* copy *with* trailing NUL byte */
202,141✔
1516
                return (int) (offsetof(struct sockaddr_un, sun_path) + l); /* 🔥 *don't* 🔥 include trailing NUL in size */
202,141✔
1517

1518
        } else {
1519
                assert(path[0] == '/');
199,489✔
1520

1521
                /* File system socket */
1522
                memcpy(ret->sun_path, path, l + 1); /* copy *with* trailing NUL byte */
199,489✔
1523
                return (int) (offsetof(struct sockaddr_un, sun_path) + l + 1); /* include trailing NUL in size */
199,489✔
1524
        }
1525
}
1526

1527
int getsockopt_int(int fd, int level, int optname, int *ret) {
14,517✔
1528
        int v;
14,517✔
1529
        socklen_t sl = sizeof(v);
14,517✔
1530

1531
        assert(fd >= 0);
14,517✔
1532
        assert(ret);
14,517✔
1533

1534
        if (getsockopt(fd, level, optname, &v, &sl) < 0)
14,517✔
1535
                return negative_errno();
56✔
1536
        if (sl != sizeof(v))
14,461✔
1537
                return -EIO;
1538

1539
        *ret = v;
14,461✔
1540
        return 0;
14,461✔
1541
}
1542

1543
int socket_bind_to_ifname(int fd, const char *ifname) {
1✔
1544
        assert(fd >= 0);
1✔
1545

1546
        /* Call with NULL to drop binding */
1547

1548
        return RET_NERRNO(setsockopt(fd, SOL_SOCKET, SO_BINDTODEVICE, ifname, strlen_ptr(ifname)));
2✔
1549
}
1550

1551
int socket_bind_to_ifindex(int fd, int ifindex) {
811✔
1552
        assert(fd >= 0);
811✔
1553

1554
        if (ifindex <= 0)
811✔
1555
                /* Drop binding */
1556
                return RET_NERRNO(setsockopt(fd, SOL_SOCKET, SO_BINDTODEVICE, NULL, 0));
56✔
1557

1558
        return setsockopt_int(fd, SOL_SOCKET, SO_BINDTOIFINDEX, ifindex);
755✔
1559
}
1560

1561
int socket_autobind(int fd, char **ret_name) {
249✔
1562
        _cleanup_free_ char *name = NULL;
249✔
1563
        uint64_t random;
249✔
1564
        int r;
249✔
1565

1566
        /* Generate a random abstract socket name and bind fd to it. This is modeled after the kernel
1567
         * "autobind" feature, but uses 64-bit random number internally. */
1568

1569
        assert(fd >= 0);
249✔
1570

1571
        random = random_u64();
249✔
1572

1573
        if (asprintf(&name, "@%" PRIu64, random) < 0)
249✔
1574
                return -ENOMEM;
1575

1576
        union sockaddr_union sa;
249✔
1577
        assert_cc(DECIMAL_STR_MAX(uint64_t) < sizeof(sa.un.sun_path));
249✔
1578

1579
        r = sockaddr_un_set_path(&sa.un, name);
249✔
1580
        if (r < 0)
249✔
1581
                return r;
1582

1583
        if (bind(fd, &sa.sa, r) < 0)
249✔
1584
                return -errno;
×
1585

1586
        if (ret_name)
249✔
1587
                *ret_name = TAKE_PTR(name);
247✔
1588
        return 0;
1589
}
1590

1591
ssize_t recvmsg_safe(int sockfd, struct msghdr *msg, int flags) {
3,290,109✔
1592
        ssize_t n;
3,290,109✔
1593

1594
        /* A wrapper around recvmsg() that checks for MSG_CTRUNC and MSG_TRUNC, and turns them into an error,
1595
         * in a reasonably safe way, closing any received fds in the error path.
1596
         *
1597
         * Note that unlike our usual coding style this might modify *msg on failure. */
1598

1599
        assert(sockfd >= 0);
3,290,109✔
1600
        assert(msg);
3,290,109✔
1601

1602
        n = recvmsg(sockfd, msg, flags);
3,290,109✔
1603
        if (n < 0)
3,290,109✔
1604
                return -errno;
325,224✔
1605

1606
        if (FLAGS_SET(msg->msg_flags, MSG_CTRUNC) ||
2,964,885✔
1607
            (!FLAGS_SET(flags, MSG_PEEK) && FLAGS_SET(msg->msg_flags, MSG_TRUNC))) {
2,964,885✔
1608
                cmsg_close_all(msg);
×
1609
                return FLAGS_SET(msg->msg_flags, MSG_CTRUNC) ? -ECHRNG : -EXFULL;
×
1610
        }
1611

1612
        return n;
1613
}
1614

1615
int socket_get_family(int fd) {
115,998✔
1616
        int af;
115,998✔
1617
        socklen_t sl = sizeof(af);
115,998✔
1618

1619
        if (getsockopt(fd, SOL_SOCKET, SO_DOMAIN, &af, &sl) < 0)
115,998✔
1620
                return -errno;
×
1621

1622
        if (sl != sizeof(af))
115,998✔
1623
                return -EINVAL;
1624

1625
        return af;
115,998✔
1626
}
1627

1628
int socket_set_recvpktinfo(int fd, int af, bool b) {
12,663✔
1629

1630
        if (af == AF_UNSPEC) {
12,663✔
1631
                af = socket_get_family(fd);
×
1632
                if (af < 0)
×
1633
                        return af;
1634
        }
1635

1636
        switch (af) {
12,663✔
1637

1638
        case AF_INET:
6,739✔
1639
                return setsockopt_int(fd, IPPROTO_IP, IP_PKTINFO, b);
6,739✔
1640

1641
        case AF_INET6:
5,889✔
1642
                return setsockopt_int(fd, IPPROTO_IPV6, IPV6_RECVPKTINFO, b);
5,889✔
1643

1644
        case AF_NETLINK:
35✔
1645
                return setsockopt_int(fd, SOL_NETLINK, NETLINK_PKTINFO, b);
35✔
1646

1647
        case AF_PACKET:
×
1648
                return setsockopt_int(fd, SOL_PACKET, PACKET_AUXDATA, b);
×
1649

1650
        default:
1651
                return -EAFNOSUPPORT;
1652
        }
1653
}
1654

1655
int socket_set_unicast_if(int fd, int af, int ifi) {
126✔
1656
        be32_t ifindex_be = htobe32(ifi);
126✔
1657

1658
        if (af == AF_UNSPEC) {
126✔
1659
                af = socket_get_family(fd);
×
1660
                if (af < 0)
×
1661
                        return af;
126✔
1662
        }
1663

1664
        switch (af) {
126✔
1665

1666
        case AF_INET:
82✔
1667
                return RET_NERRNO(setsockopt(fd, IPPROTO_IP, IP_UNICAST_IF, &ifindex_be, sizeof(ifindex_be)));
82✔
1668

1669
        case AF_INET6:
44✔
1670
                return RET_NERRNO(setsockopt(fd, IPPROTO_IPV6, IPV6_UNICAST_IF, &ifindex_be, sizeof(ifindex_be)));
44✔
1671

1672
        default:
1673
                return -EAFNOSUPPORT;
1674
        }
1675
}
1676

1677
int socket_set_option(int fd, int af, int opt_ipv4, int opt_ipv6, int val) {
25,113✔
1678
        if (af == AF_UNSPEC) {
25,113✔
1679
                af = socket_get_family(fd);
×
1680
                if (af < 0)
×
1681
                        return af;
1682
        }
1683

1684
        switch (af) {
25,113✔
1685

1686
        case AF_INET:
13,326✔
1687
                return setsockopt_int(fd, IPPROTO_IP, opt_ipv4, val);
13,326✔
1688

1689
        case AF_INET6:
11,787✔
1690
                return setsockopt_int(fd, IPPROTO_IPV6, opt_ipv6, val);
11,787✔
1691

1692
        default:
1693
                return -EAFNOSUPPORT;
1694
        }
1695
}
1696

1697
int socket_get_mtu(int fd, int af, size_t *ret) {
750✔
1698
        int mtu, r;
750✔
1699

1700
        if (af == AF_UNSPEC) {
750✔
1701
                af = socket_get_family(fd);
×
1702
                if (af < 0)
×
1703
                        return af;
750✔
1704
        }
1705

1706
        switch (af) {
750✔
1707

1708
        case AF_INET:
306✔
1709
                r = getsockopt_int(fd, IPPROTO_IP, IP_MTU, &mtu);
306✔
1710
                break;
1711

1712
        case AF_INET6:
444✔
1713
                r = getsockopt_int(fd, IPPROTO_IPV6, IPV6_MTU, &mtu);
444✔
1714
                break;
1715

1716
        default:
1717
                return -EAFNOSUPPORT;
1718
        }
1719

1720
        if (r < 0)
750✔
1721
                return r;
1722
        if (mtu <= 0)
694✔
1723
                return -EINVAL;
1724

1725
        *ret = (size_t) mtu;
694✔
1726
        return 0;
694✔
1727
}
1728

1729
static int connect_unix_path_simple(int fd, const char *path) {
165,182✔
1730
        union sockaddr_union sa = {
165,182✔
1731
                .un.sun_family = AF_UNIX,
1732
        };
1733
        size_t l;
165,182✔
1734

1735
        assert(fd >= 0);
165,182✔
1736
        assert(path);
165,182✔
1737

1738
        l = strlen(path);
165,182✔
1739
        assert(l > 0);
165,182✔
1740
        assert(l < sizeof(sa.un.sun_path));
165,182✔
1741

1742
        memcpy(sa.un.sun_path, path, l + 1);
165,182✔
1743
        return RET_NERRNO(connect(fd, &sa.sa, offsetof(struct sockaddr_un, sun_path) + l + 1));
165,182✔
1744
}
1745

1746
static int connect_unix_inode(int fd, int inode_fd) {
14✔
1747
        assert(fd >= 0);
14✔
1748
        assert(inode_fd >= 0);
14✔
1749

1750
        return connect_unix_path_simple(fd, FORMAT_PROC_FD_PATH(inode_fd));
14✔
1751
}
1752

1753
int connect_unix_path(int fd, int dir_fd, const char *path) {
165,182✔
1754
        _cleanup_close_ int inode_fd = -EBADF;
165,182✔
1755

1756
        assert(fd >= 0);
165,182✔
1757
        assert(dir_fd == AT_FDCWD || dir_fd >= 0);
165,182✔
1758

1759
        /* Connects to the specified AF_UNIX socket in the file system. Works around the 108 byte size limit
1760
         * in sockaddr_un, by going via O_PATH if needed. This hence works for any kind of path. */
1761

1762
        if (!path)
165,182✔
1763
                return connect_unix_inode(fd, dir_fd); /* If no path is specified, then dir_fd refers to the socket inode to connect to. */
1✔
1764

1765
        /* Refuse zero length path early, to make sure AF_UNIX stack won't mistake this for an abstract
1766
         * namespace path, since first char is NUL */
1767
        if (isempty(path))
330,363✔
1768
                return -EINVAL;
1769

1770
        /* Shortcut for the simple case */
1771
        if (dir_fd == AT_FDCWD && strlen(path) < sizeof_field(struct sockaddr_un, sun_path))
165,181✔
1772
                return connect_unix_path_simple(fd, path);
165,168✔
1773

1774
        /* If dir_fd is specified, then we need to go the indirect O_PATH route, because connectat() does not
1775
         * exist. If the path is too long, we also need to take the indirect route, since we can't fit this
1776
         * into a sockaddr_un directly. */
1777

1778
        inode_fd = openat(dir_fd, path, O_PATH|O_CLOEXEC);
13✔
1779
        if (inode_fd < 0)
13✔
1780
                return -errno;
×
1781

1782
        return connect_unix_inode(fd, inode_fd);
13✔
1783
}
1784

1785
int socket_address_parse_unix(SocketAddress *ret_address, const char *s) {
211,045✔
1786
        struct sockaddr_un un;
211,045✔
1787
        int r;
211,045✔
1788

1789
        assert(ret_address);
211,045✔
1790
        assert(s);
211,045✔
1791

1792
        if (!IN_SET(*s, '/', '@'))
211,045✔
1793
                return -EPROTO;
211,045✔
1794

1795
        r = sockaddr_un_set_path(&un, s);
210,607✔
1796
        if (r < 0)
210,607✔
1797
                return r;
1798

1799
        *ret_address = (SocketAddress) {
210,605✔
1800
                .sockaddr.un = un,
1801
                .size = r,
1802
        };
1803

1804
        return 0;
210,605✔
1805
}
1806

1807
int socket_address_equal_unix(const char *a, const char *b) {
652✔
1808
        SocketAddress socket_a, socket_b;
652✔
1809
        int r;
652✔
1810

1811
        assert(a);
652✔
1812
        assert(b);
652✔
1813

1814
        r = socket_address_parse_unix(&socket_a, a);
652✔
1815
        if (r < 0)
652✔
1816
                return r;
652✔
1817

1818
        r = socket_address_parse_unix(&socket_b, b);
652✔
1819
        if (r < 0)
652✔
1820
                return r;
1821

1822
        return sockaddr_equal(&socket_a.sockaddr, &socket_b.sockaddr);
652✔
1823
}
1824

1825
int vsock_parse_port(const char *s, unsigned *ret) {
367✔
1826
        int r;
367✔
1827

1828
        assert(ret);
367✔
1829

1830
        if (!s)
367✔
1831
                return -EINVAL;
367✔
1832

1833
        unsigned u;
367✔
1834
        r = safe_atou(s, &u);
367✔
1835
        if (r < 0)
367✔
1836
                return r;
1837

1838
        /* Port 0 is apparently valid and not special in AF_VSOCK (unlike on IP). But VMADDR_PORT_ANY
1839
         * (UINT32_MAX) is. Hence refuse that. */
1840

1841
        if (u == VMADDR_PORT_ANY)
364✔
1842
                return -EINVAL;
1843

1844
        *ret = u;
364✔
1845
        return 0;
364✔
1846
}
1847

1848
int vsock_parse_cid(const char *s, unsigned *ret) {
327✔
1849
        assert(ret);
327✔
1850

1851
        if (!s)
327✔
1852
                return -EINVAL;
1853

1854
        /* Parsed an AF_VSOCK "CID". This is a 32bit entity, and the usual type is "unsigned". We recognize
1855
         * the three special CIDs as strings, and otherwise parse the numeric CIDs. */
1856

1857
        if (streq(s, "hypervisor"))
327✔
1858
                *ret = VMADDR_CID_HYPERVISOR;
×
1859
        else if (streq(s, "local"))
327✔
1860
                *ret = VMADDR_CID_LOCAL;
×
1861
        else if (streq(s, "host"))
327✔
1862
                *ret = VMADDR_CID_HOST;
×
1863
        else
1864
                return safe_atou(s, ret);
327✔
1865

1866
        return 0;
1867
}
1868

1869
int socket_address_parse_vsock(SocketAddress *ret_address, const char *s) {
438✔
1870
        /* AF_VSOCK socket in vsock:cid:port notation */
1871
        _cleanup_free_ char *n = NULL;
438✔
1872
        char *e, *cid_start;
438✔
1873
        unsigned port, cid;
438✔
1874
        int type, r;
438✔
1875

1876
        assert(ret_address);
438✔
1877
        assert(s);
438✔
1878

1879
        if ((cid_start = startswith(s, "vsock:")))
438✔
1880
                type = 0;
1881
        else if ((cid_start = startswith(s, "vsock-dgram:")))
386✔
1882
                type = SOCK_DGRAM;
1883
        else if ((cid_start = startswith(s, "vsock-seqpacket:")))
386✔
1884
                type = SOCK_SEQPACKET;
1885
        else if ((cid_start = startswith(s, "vsock-stream:")))
386✔
1886
                type = SOCK_STREAM;
1887
        else
1888
                return -EPROTO;
1889

1890
        e = strchr(cid_start, ':');
369✔
1891
        if (!e)
369✔
1892
                return -EINVAL;
1893

1894
        r = vsock_parse_port(e+1, &port);
367✔
1895
        if (r < 0)
367✔
1896
                return r;
1897

1898
        n = strndup(cid_start, e - cid_start);
364✔
1899
        if (!n)
364✔
1900
                return -ENOMEM;
1901

1902
        if (isempty(n))
364✔
1903
                cid = VMADDR_CID_ANY;
37✔
1904
        else {
1905
                r = vsock_parse_cid(n, &cid);
327✔
1906
                if (r < 0)
327✔
1907
                        return r;
1908
        }
1909

1910
        *ret_address = (SocketAddress) {
361✔
1911
                .sockaddr.vm = {
1912
                        .svm_family = AF_VSOCK,
1913
                        .svm_cid = cid,
1914
                        .svm_port = port,
1915
                },
1916
                .type = type,
1917
                .size = sizeof(struct sockaddr_vm),
1918
        };
1919

1920
        return 0;
361✔
1921
}
1922

1923
int vsock_get_local_cid(unsigned *ret) {
81✔
1924
        _cleanup_close_ int vsock_fd = -EBADF;
81✔
1925

1926
        vsock_fd = open("/dev/vsock", O_RDONLY|O_CLOEXEC);
81✔
1927
        if (vsock_fd < 0)
81✔
1928
                return log_debug_errno(errno, "Failed to open %s: %m", "/dev/vsock");
16✔
1929

1930
        unsigned tmp;
65✔
1931
        if (ioctl(vsock_fd, IOCTL_VM_SOCKETS_GET_LOCAL_CID, &tmp) < 0)
65✔
1932
                return log_debug_errno(errno, "Failed to query local AF_VSOCK CID: %m");
×
1933
        log_debug("Local AF_VSOCK CID: %u", tmp);
65✔
1934

1935
        /* If ret == NULL, we're just want to check if AF_VSOCK is available, so accept
1936
         * any address. Otherwise, filter out special addresses that are cannot be used
1937
         * to identify _this_ machine from the outside. */
1938
        if (ret && IN_SET(tmp, VMADDR_CID_LOCAL, VMADDR_CID_HOST))
65✔
1939
                return log_debug_errno(SYNTHETIC_ERRNO(EADDRNOTAVAIL),
×
1940
                                       "IOCTL_VM_SOCKETS_GET_LOCAL_CID returned special value (%u), ignoring.", tmp);
1941

1942
        if (ret)
62✔
1943
                *ret = tmp;
62✔
1944
        return 0;
1945
}
1946

1947
int netlink_socket_get_multicast_groups(int fd, size_t *ret_len, uint32_t **ret_groups) {
13,767✔
1948
        _cleanup_free_ uint32_t *groups = NULL;
27,534✔
1949
        socklen_t len = 0, old_len;
13,767✔
1950

1951
        assert(fd >= 0);
13,767✔
1952

1953
        if (getsockopt(fd, SOL_NETLINK, NETLINK_LIST_MEMBERSHIPS, NULL, &len) < 0)
13,767✔
1954
                return -errno;
×
1955

1956
        if (len == 0)
13,767✔
1957
                goto finalize;
13,330✔
1958

1959
        groups = new0(uint32_t, len);
437✔
1960
        if (!groups)
437✔
1961
                return -ENOMEM;
1962

1963
        old_len = len;
437✔
1964

1965
        if (getsockopt(fd, SOL_NETLINK, NETLINK_LIST_MEMBERSHIPS, groups, &len) < 0)
437✔
1966
                return -errno;
×
1967

1968
        if (old_len != len)
437✔
1969
                return -EIO;
1970

1971
finalize:
437✔
1972
        if (ret_len)
13,767✔
1973
                *ret_len = len;
13,767✔
1974
        if (ret_groups)
13,767✔
1975
                *ret_groups = TAKE_PTR(groups);
13,767✔
1976

1977
        return 0;
1978
}
1979

1980
int socket_get_cookie(int fd, uint64_t *ret) {
185✔
1981
        assert(fd >= 0);
185✔
1982

1983
        uint64_t cookie = 0;
185✔
1984
        socklen_t cookie_len = sizeof(cookie);
185✔
1985
        if (getsockopt(fd, SOL_SOCKET, SO_COOKIE, &cookie, &cookie_len) < 0)
185✔
1986
                return -errno;
×
1987

1988
        assert(cookie_len == sizeof(cookie));
185✔
1989
        if (ret)
185✔
1990
                *ret = cookie;
185✔
1991

1992
        return 0;
1993
}
1994

1995
void cmsg_close_all(struct msghdr *mh) {
106,722✔
1996
        assert(mh);
106,722✔
1997

1998
        struct cmsghdr *cmsg;
106,722✔
1999
        CMSG_FOREACH(cmsg, mh) {
352,970✔
2000
                if (cmsg->cmsg_level != SOL_SOCKET)
69,763✔
2001
                        continue;
×
2002

2003
                if (cmsg->cmsg_type == SCM_RIGHTS)
69,763✔
2004
                        close_many(CMSG_TYPED_DATA(cmsg, int),
×
2005
                                   (cmsg->cmsg_len - CMSG_LEN(0)) / sizeof(int));
×
2006
                else if (cmsg->cmsg_type == SCM_PIDFD) {
69,763✔
2007
                        assert(cmsg->cmsg_len == CMSG_LEN(sizeof(int)));
×
2008
                        safe_close(*CMSG_TYPED_DATA(cmsg, int));
×
2009
                }
2010
        }
2011
}
106,722✔
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