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1 /*
2 * VRF functions.
3 * Copyright (C) 2014 6WIND S.A.
4 *
5 * This file is part of GNU Zebra.
6 *
7 * GNU Zebra is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License as published
9 * by the Free Software Foundation; either version 2, or (at your
10 * option) any later version.
11 *
12 * GNU Zebra is distributed in the hope that it will be useful, but
13 * WITHOUT ANY WARRANTY; without even the implied warranty of
14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
15 * General Public License for more details.
16 *
17 * You should have received a copy of the GNU General Public License along
18 * with this program; see the file COPYING; if not, write to the Free Software
19 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
20 */
21
22 #include <zebra.h>
23
24 /* for basename */
25 #include <libgen.h>
26
27 #include "if.h"
28 #include "vrf.h"
29 #include "vrf_int.h"
30 #include "prefix.h"
31 #include "table.h"
32 #include "log.h"
33 #include "memory.h"
34 #include "command.h"
35 #include "ns.h"
36 #include "privs.h"
37 #include "nexthop_group.h"
38 #include "lib_errors.h"
39
40 /* default VRF ID value used when VRF backend is not NETNS */
41 #define VRF_DEFAULT_INTERNAL 0
42 #define VRF_DEFAULT_NAME_INTERNAL "default"
43
44 DEFINE_MTYPE_STATIC(LIB, VRF, "VRF")
45 DEFINE_MTYPE_STATIC(LIB, VRF_BITMAP, "VRF bit-map")
46
47 DEFINE_QOBJ_TYPE(vrf)
48
49 static __inline int vrf_id_compare(const struct vrf *, const struct vrf *);
50 static __inline int vrf_name_compare(const struct vrf *, const struct vrf *);
51
52 RB_GENERATE(vrf_id_head, vrf, id_entry, vrf_id_compare);
53 RB_GENERATE(vrf_name_head, vrf, name_entry, vrf_name_compare);
54
55 struct vrf_id_head vrfs_by_id = RB_INITIALIZER(&vrfs_by_id);
56 struct vrf_name_head vrfs_by_name = RB_INITIALIZER(&vrfs_by_name);
57
58 static int vrf_backend;
59 static int vrf_backend_configured;
60 static struct zebra_privs_t *vrf_daemon_privs;
61 static char vrf_default_name[VRF_NAMSIZ] = VRF_DEFAULT_NAME_INTERNAL;
62
63 /*
64 * Turn on/off debug code
65 * for vrf.
66 */
67 static int debug_vrf = 0;
68
69 /* Holding VRF hooks */
70 struct vrf_master {
71 int (*vrf_new_hook)(struct vrf *);
72 int (*vrf_delete_hook)(struct vrf *);
73 int (*vrf_enable_hook)(struct vrf *);
74 int (*vrf_disable_hook)(struct vrf *);
75 int (*vrf_update_name_hook)(struct vrf *vrf);
76 } vrf_master = {
77 0,
78 };
79
80 static int vrf_is_enabled(struct vrf *vrf);
81
82 /* VRF list existance check by name. */
83 struct vrf *vrf_lookup_by_name(const char *name)
84 {
85 struct vrf vrf;
86 strlcpy(vrf.name, name, sizeof(vrf.name));
87 return (RB_FIND(vrf_name_head, &vrfs_by_name, &vrf));
88 }
89
90 static __inline int vrf_id_compare(const struct vrf *a, const struct vrf *b)
91 {
92 return (a->vrf_id - b->vrf_id);
93 }
94
95 static int vrf_name_compare(const struct vrf *a, const struct vrf *b)
96 {
97 return strcmp(a->name, b->name);
98 }
99
100 /* if ns_id is different and not VRF_UNKNOWN,
101 * then update vrf identifier, and enable VRF
102 */
103 static void vrf_update_vrf_id(ns_id_t ns_id, void *opaqueptr)
104 {
105 ns_id_t vrf_id = (vrf_id_t)ns_id;
106 vrf_id_t old_vrf_id;
107 struct vrf *vrf = (struct vrf *)opaqueptr;
108
109 if (!vrf)
110 return;
111 old_vrf_id = vrf->vrf_id;
112 if (vrf_id == vrf->vrf_id)
113 return;
114 if (vrf->vrf_id != VRF_UNKNOWN)
115 RB_REMOVE(vrf_id_head, &vrfs_by_id, vrf);
116 vrf->vrf_id = vrf_id;
117 RB_INSERT(vrf_id_head, &vrfs_by_id, vrf);
118 if (old_vrf_id == VRF_UNKNOWN)
119 vrf_enable((struct vrf *)vrf);
120 }
121
122 int vrf_switch_to_netns(vrf_id_t vrf_id)
123 {
124 char *name;
125 struct vrf *vrf = vrf_lookup_by_id(vrf_id);
126
127 /* VRF is default VRF. silently ignore */
128 if (!vrf || vrf->vrf_id == VRF_DEFAULT)
129 return 1; /* 1 = default */
130 /* VRF has no NETNS backend. silently ignore */
131 if (vrf->data.l.netns_name[0] == '\0')
132 return 2; /* 2 = no netns */
133 name = ns_netns_pathname(NULL, vrf->data.l.netns_name);
134 if (debug_vrf)
135 zlog_debug("VRF_SWITCH: %s(%u)", name, vrf->vrf_id);
136 return ns_switch_to_netns(name);
137 }
138
139 int vrf_switchback_to_initial(void)
140 {
141 int ret = ns_switchback_to_initial();
142
143 if (ret == 0 && debug_vrf)
144 zlog_debug("VRF_SWITCHBACK");
145 return ret;
146 }
147
148 /* Get a VRF. If not found, create one.
149 * Arg:
150 * name - The name of the vrf. May be NULL if unknown.
151 * vrf_id - The vrf_id of the vrf. May be VRF_UNKNOWN if unknown
152 * Description: Please note that this routine can be called with just the name
153 * and 0 vrf-id
154 */
155 struct vrf *vrf_get(vrf_id_t vrf_id, const char *name)
156 {
157 struct vrf *vrf = NULL;
158 int new = 0;
159
160 if (debug_vrf)
161 zlog_debug("VRF_GET: %s(%u)", name == NULL ? "(NULL)" : name,
162 vrf_id);
163
164 /* Nothing to see, move along here */
165 if (!name && vrf_id == VRF_UNKNOWN)
166 return NULL;
167
168 /* attempt to find already available VRF
169 */
170 if (name)
171 vrf = vrf_lookup_by_name(name);
172 if (vrf && vrf_id != VRF_UNKNOWN
173 && vrf->vrf_id != VRF_UNKNOWN
174 && vrf->vrf_id != vrf_id) {
175 zlog_debug("VRF_GET: avoid %s creation(%u), same name exists (%u)",
176 name, vrf_id, vrf->vrf_id);
177 return NULL;
178 }
179 /* Try to find VRF both by ID and name */
180 if (!vrf && vrf_id != VRF_UNKNOWN)
181 vrf = vrf_lookup_by_id(vrf_id);
182
183 if (vrf == NULL) {
184 vrf = XCALLOC(MTYPE_VRF, sizeof(struct vrf));
185 vrf->vrf_id = VRF_UNKNOWN;
186 QOBJ_REG(vrf, vrf);
187 new = 1;
188
189 if (debug_vrf)
190 zlog_debug("VRF(%u) %s is created.", vrf_id,
191 (name) ? name : "(NULL)");
192 }
193
194 /* Set identifier */
195 if (vrf_id != VRF_UNKNOWN && vrf->vrf_id == VRF_UNKNOWN) {
196 vrf->vrf_id = vrf_id;
197 RB_INSERT(vrf_id_head, &vrfs_by_id, vrf);
198 }
199
200 /* Set name */
201 if (name && vrf->name[0] != '\0' && strcmp(name, vrf->name)) {
202 RB_REMOVE(vrf_name_head, &vrfs_by_name, vrf);
203 strlcpy(vrf->name, name, sizeof(vrf->name));
204 RB_INSERT(vrf_name_head, &vrfs_by_name, vrf);
205 } else if (name && vrf->name[0] == '\0') {
206 strlcpy(vrf->name, name, sizeof(vrf->name));
207 RB_INSERT(vrf_name_head, &vrfs_by_name, vrf);
208 }
209 if (new &&vrf_master.vrf_new_hook)
210 (*vrf_master.vrf_new_hook)(vrf);
211
212 return vrf;
213 }
214
215 /* Delete a VRF. This is called when the underlying VRF goes away, a
216 * pre-configured VRF is deleted or when shutting down (vrf_terminate()).
217 */
218 void vrf_delete(struct vrf *vrf)
219 {
220 if (debug_vrf)
221 zlog_debug("VRF %u is to be deleted.", vrf->vrf_id);
222
223 if (vrf_is_enabled(vrf))
224 vrf_disable(vrf);
225
226 /* If the VRF is user configured, it'll stick around, just remove
227 * the ID mapping. Interfaces assigned to this VRF should've been
228 * removed already as part of the VRF going down.
229 */
230 if (vrf_is_user_cfged(vrf)) {
231 if (vrf->vrf_id != VRF_UNKNOWN) {
232 /* Delete any VRF interfaces - should be only
233 * the VRF itself, other interfaces should've
234 * been moved out of the VRF.
235 */
236 if_terminate(vrf);
237 RB_REMOVE(vrf_id_head, &vrfs_by_id, vrf);
238 vrf->vrf_id = VRF_UNKNOWN;
239 }
240 return;
241 }
242
243 if (vrf_master.vrf_delete_hook)
244 (*vrf_master.vrf_delete_hook)(vrf);
245
246 QOBJ_UNREG(vrf);
247 if_terminate(vrf);
248
249 if (vrf->vrf_id != VRF_UNKNOWN)
250 RB_REMOVE(vrf_id_head, &vrfs_by_id, vrf);
251 if (vrf->name[0] != '\0')
252 RB_REMOVE(vrf_name_head, &vrfs_by_name, vrf);
253
254 XFREE(MTYPE_VRF, vrf);
255 }
256
257 /* Look up a VRF by identifier. */
258 struct vrf *vrf_lookup_by_id(vrf_id_t vrf_id)
259 {
260 struct vrf vrf;
261 vrf.vrf_id = vrf_id;
262 return (RB_FIND(vrf_id_head, &vrfs_by_id, &vrf));
263 }
264
265 /*
266 * Enable a VRF - that is, let the VRF be ready to use.
267 * The VRF_ENABLE_HOOK callback will be called to inform
268 * that they can allocate resources in this VRF.
269 *
270 * RETURN: 1 - enabled successfully; otherwise, 0.
271 */
272 int vrf_enable(struct vrf *vrf)
273 {
274 if (vrf_is_enabled(vrf))
275 return 1;
276
277 if (debug_vrf)
278 zlog_debug("VRF %u is enabled.", vrf->vrf_id);
279
280 SET_FLAG(vrf->status, VRF_ACTIVE);
281
282 if (vrf_master.vrf_enable_hook)
283 (*vrf_master.vrf_enable_hook)(vrf);
284
285 /*
286 * If we have any nexthop group entries that
287 * are awaiting vrf initialization then
288 * let's let people know about it
289 */
290 nexthop_group_enable_vrf(vrf);
291
292 return 1;
293 }
294
295 /*
296 * Disable a VRF - that is, let the VRF be unusable.
297 * The VRF_DELETE_HOOK callback will be called to inform
298 * that they must release the resources in the VRF.
299 */
300 void vrf_disable(struct vrf *vrf)
301 {
302 if (!vrf_is_enabled(vrf))
303 return;
304
305 UNSET_FLAG(vrf->status, VRF_ACTIVE);
306
307 if (debug_vrf)
308 zlog_debug("VRF %u is to be disabled.", vrf->vrf_id);
309
310 /* Till now, nothing to be done for the default VRF. */
311 // Pending: see why this statement.
312
313 if (vrf_master.vrf_disable_hook)
314 (*vrf_master.vrf_disable_hook)(vrf);
315 }
316
317 const char *vrf_id_to_name(vrf_id_t vrf_id)
318 {
319 struct vrf *vrf;
320
321 vrf = vrf_lookup_by_id(vrf_id);
322 if (vrf)
323 return vrf->name;
324
325 return "n/a";
326 }
327
328 vrf_id_t vrf_name_to_id(const char *name)
329 {
330 struct vrf *vrf;
331 vrf_id_t vrf_id = VRF_DEFAULT; // Pending: need a way to return invalid
332 // id/ routine not used.
333
334 if (!name)
335 return vrf_id;
336 vrf = vrf_lookup_by_name(name);
337 if (vrf)
338 vrf_id = vrf->vrf_id;
339
340 return vrf_id;
341 }
342
343 /* Get the data pointer of the specified VRF. If not found, create one. */
344 void *vrf_info_get(vrf_id_t vrf_id)
345 {
346 struct vrf *vrf = vrf_get(vrf_id, NULL);
347 return vrf->info;
348 }
349
350 /* Look up the data pointer of the specified VRF. */
351 void *vrf_info_lookup(vrf_id_t vrf_id)
352 {
353 struct vrf *vrf = vrf_lookup_by_id(vrf_id);
354 return vrf ? vrf->info : NULL;
355 }
356
357 /*
358 * VRF hash for storing set or not.
359 */
360 struct vrf_bit_set {
361 vrf_id_t vrf_id;
362 bool set;
363 };
364
365 static unsigned int vrf_hash_bitmap_key(void *data)
366 {
367 struct vrf_bit_set *bit = data;
368
369 return bit->vrf_id;
370 }
371
372 static bool vrf_hash_bitmap_cmp(const void *a, const void *b)
373 {
374 const struct vrf_bit_set *bit1 = a;
375 const struct vrf_bit_set *bit2 = b;
376
377 return bit1->vrf_id == bit2->vrf_id;
378 }
379
380 static void *vrf_hash_bitmap_alloc(void *data)
381 {
382 struct vrf_bit_set *copy = data;
383 struct vrf_bit_set *bit;
384
385 bit = XMALLOC(MTYPE_VRF_BITMAP, sizeof(*bit));
386 bit->vrf_id = copy->vrf_id;
387
388 return bit;
389 }
390
391 static void vrf_hash_bitmap_free(void *data)
392 {
393 struct vrf_bit_set *bit = data;
394
395 XFREE(MTYPE_VRF_BITMAP, bit);
396 }
397
398 vrf_bitmap_t vrf_bitmap_init(void)
399 {
400 return hash_create_size(32, vrf_hash_bitmap_key, vrf_hash_bitmap_cmp,
401 "VRF BIT HASH");
402 }
403
404 void vrf_bitmap_free(vrf_bitmap_t bmap)
405 {
406 struct hash *vrf_hash = bmap;
407
408 if (vrf_hash == NULL)
409 return;
410
411 hash_clean(vrf_hash, vrf_hash_bitmap_free);
412 hash_free(vrf_hash);
413 }
414
415 void vrf_bitmap_set(vrf_bitmap_t bmap, vrf_id_t vrf_id)
416 {
417 struct vrf_bit_set lookup = { .vrf_id = vrf_id };
418 struct hash *vrf_hash = bmap;
419 struct vrf_bit_set *bit;
420
421 if (vrf_hash == NULL || vrf_id == VRF_UNKNOWN)
422 return;
423
424 bit = hash_get(vrf_hash, &lookup, vrf_hash_bitmap_alloc);
425 bit->set = true;
426 }
427
428 void vrf_bitmap_unset(vrf_bitmap_t bmap, vrf_id_t vrf_id)
429 {
430 struct vrf_bit_set lookup = { .vrf_id = vrf_id };
431 struct hash *vrf_hash = bmap;
432 struct vrf_bit_set *bit;
433
434 if (vrf_hash == NULL || vrf_id == VRF_UNKNOWN)
435 return;
436
437 bit = hash_get(vrf_hash, &lookup, vrf_hash_bitmap_alloc);
438 bit->set = false;
439 }
440
441 int vrf_bitmap_check(vrf_bitmap_t bmap, vrf_id_t vrf_id)
442 {
443 struct vrf_bit_set lookup = { .vrf_id = vrf_id };
444 struct hash *vrf_hash = bmap;
445 struct vrf_bit_set *bit;
446
447 if (vrf_hash == NULL || vrf_id == VRF_UNKNOWN)
448 return 0;
449
450 bit = hash_lookup(vrf_hash, &lookup);
451 if (bit)
452 return bit->set;
453
454 return 0;
455 }
456
457 static void vrf_autocomplete(vector comps, struct cmd_token *token)
458 {
459 struct vrf *vrf = NULL;
460
461 RB_FOREACH (vrf, vrf_name_head, &vrfs_by_name)
462 vector_set(comps, XSTRDUP(MTYPE_COMPLETION, vrf->name));
463 }
464
465 static const struct cmd_variable_handler vrf_var_handlers[] = {
466 {
467 .varname = "vrf",
468 .completions = vrf_autocomplete,
469 },
470 {.completions = NULL},
471 };
472
473 /* Initialize VRF module. */
474 void vrf_init(int (*create)(struct vrf *), int (*enable)(struct vrf *),
475 int (*disable)(struct vrf *), int (*destroy)(struct vrf *),
476 int ((*update)(struct vrf *)))
477 {
478 struct vrf *default_vrf;
479
480 /* initialise NS, in case VRF backend if NETNS */
481 ns_init();
482 if (debug_vrf)
483 zlog_debug("%s: Initializing VRF subsystem",
484 __PRETTY_FUNCTION__);
485
486 vrf_master.vrf_new_hook = create;
487 vrf_master.vrf_enable_hook = enable;
488 vrf_master.vrf_disable_hook = disable;
489 vrf_master.vrf_delete_hook = destroy;
490 vrf_master.vrf_update_name_hook = update;
491
492 /* The default VRF always exists. */
493 default_vrf = vrf_get(VRF_DEFAULT, VRF_DEFAULT_NAME);
494 if (!default_vrf) {
495 flog_err(EC_LIB_VRF_START,
496 "vrf_init: failed to create the default VRF!");
497 exit(1);
498 }
499 if (vrf_is_backend_netns()) {
500 struct ns *ns;
501
502 strlcpy(default_vrf->data.l.netns_name,
503 VRF_DEFAULT_NAME, NS_NAMSIZ);
504 ns = ns_lookup(ns_get_default_id());
505 ns->vrf_ctxt = default_vrf;
506 default_vrf->ns_ctxt = ns;
507 }
508
509 /* Enable the default VRF. */
510 if (!vrf_enable(default_vrf)) {
511 flog_err(EC_LIB_VRF_START,
512 "vrf_init: failed to enable the default VRF!");
513 exit(1);
514 }
515
516 cmd_variable_handler_register(vrf_var_handlers);
517 }
518
519 /* Terminate VRF module. */
520 void vrf_terminate(void)
521 {
522 struct vrf *vrf;
523
524 if (debug_vrf)
525 zlog_debug("%s: Shutting down vrf subsystem",
526 __PRETTY_FUNCTION__);
527
528 while (!RB_EMPTY(vrf_id_head, &vrfs_by_id)) {
529 vrf = RB_ROOT(vrf_id_head, &vrfs_by_id);
530
531 /* Clear configured flag and invoke delete. */
532 UNSET_FLAG(vrf->status, VRF_CONFIGURED);
533 vrf_delete(vrf);
534 }
535
536 while (!RB_EMPTY(vrf_name_head, &vrfs_by_name)) {
537 vrf = RB_ROOT(vrf_name_head, &vrfs_by_name);
538
539 /* Clear configured flag and invoke delete. */
540 UNSET_FLAG(vrf->status, VRF_CONFIGURED);
541 vrf_delete(vrf);
542 }
543 }
544
545 /* Create a socket for the VRF. */
546 int vrf_socket(int domain, int type, int protocol, vrf_id_t vrf_id,
547 const char *interfacename)
548 {
549 int ret, save_errno, ret2;
550
551 ret = vrf_switch_to_netns(vrf_id);
552 if (ret < 0)
553 flog_err_sys(EC_LIB_SOCKET, "%s: Can't switch to VRF %u (%s)",
554 __func__, vrf_id, safe_strerror(errno));
555
556 ret = socket(domain, type, protocol);
557 save_errno = errno;
558 ret2 = vrf_switchback_to_initial();
559 if (ret2 < 0)
560 flog_err_sys(EC_LIB_SOCKET,
561 "%s: Can't switchback from VRF %u (%s)", __func__,
562 vrf_id, safe_strerror(errno));
563 errno = save_errno;
564 if (ret <= 0)
565 return ret;
566 ret2 = vrf_bind(vrf_id, ret, interfacename);
567 if (ret2 < 0) {
568 close(ret);
569 ret = ret2;
570 }
571 return ret;
572 }
573
574 int vrf_is_backend_netns(void)
575 {
576 return (vrf_backend == VRF_BACKEND_NETNS);
577 }
578
579 int vrf_get_backend(void)
580 {
581 if (!vrf_backend_configured)
582 return VRF_BACKEND_UNKNOWN;
583 return vrf_backend;
584 }
585
586 void vrf_configure_backend(int vrf_backend_netns)
587 {
588 vrf_backend = vrf_backend_netns;
589 vrf_backend_configured = 1;
590 }
591
592 int vrf_handler_create(struct vty *vty, const char *vrfname,
593 struct vrf **vrf)
594 {
595 struct vrf *vrfp;
596
597 if (strlen(vrfname) > VRF_NAMSIZ) {
598 if (vty)
599 vty_out(vty,
600 "%% VRF name %s invalid: length exceeds %d bytes\n",
601 vrfname, VRF_NAMSIZ);
602 else
603 flog_warn(
604 EC_LIB_VRF_LENGTH,
605 "%% VRF name %s invalid: length exceeds %d bytes\n",
606 vrfname, VRF_NAMSIZ);
607 return CMD_WARNING_CONFIG_FAILED;
608 }
609
610 vrfp = vrf_get(VRF_UNKNOWN, vrfname);
611
612 if (vty)
613 VTY_PUSH_CONTEXT(VRF_NODE, vrfp);
614
615 if (vrf)
616 *vrf = vrfp;
617 return CMD_SUCCESS;
618 }
619
620 int vrf_netns_handler_create(struct vty *vty, struct vrf *vrf, char *pathname,
621 ns_id_t ns_id, ns_id_t internal_ns_id)
622 {
623 struct ns *ns = NULL;
624
625 if (!vrf)
626 return CMD_WARNING_CONFIG_FAILED;
627 if (vrf->vrf_id != VRF_UNKNOWN && vrf->ns_ctxt == NULL) {
628 if (vty)
629 vty_out(vty,
630 "VRF %u is already configured with VRF %s\n",
631 vrf->vrf_id, vrf->name);
632 else
633 zlog_info("VRF %u is already configured with VRF %s",
634 vrf->vrf_id, vrf->name);
635 return CMD_WARNING_CONFIG_FAILED;
636 }
637 if (vrf->ns_ctxt != NULL) {
638 ns = (struct ns *)vrf->ns_ctxt;
639 if (!strcmp(ns->name, pathname)) {
640 if (vty)
641 vty_out(vty,
642 "VRF %u already configured with NETNS %s\n",
643 vrf->vrf_id, ns->name);
644 else
645 zlog_info(
646 "VRF %u already configured with NETNS %s",
647 vrf->vrf_id, ns->name);
648 return CMD_WARNING_CONFIG_FAILED;
649 }
650 }
651 ns = ns_lookup_name(pathname);
652 if (ns && ns->vrf_ctxt) {
653 struct vrf *vrf2 = (struct vrf *)ns->vrf_ctxt;
654
655 if (vrf2 == vrf)
656 return CMD_SUCCESS;
657 if (vty)
658 vty_out(vty,
659 "NS %s is already configured"
660 " with VRF %u(%s)\n",
661 ns->name, vrf2->vrf_id, vrf2->name);
662 else
663 zlog_info("NS %s is already configured with VRF %u(%s)",
664 ns->name, vrf2->vrf_id, vrf2->name);
665 return CMD_WARNING_CONFIG_FAILED;
666 }
667 ns = ns_get_created(ns, pathname, ns_id);
668 ns->internal_ns_id = internal_ns_id;
669 ns->vrf_ctxt = (void *)vrf;
670 vrf->ns_ctxt = (void *)ns;
671 /* update VRF netns NAME */
672 strlcpy(vrf->data.l.netns_name, basename(pathname), NS_NAMSIZ);
673
674 if (!ns_enable(ns, vrf_update_vrf_id)) {
675 if (vty)
676 vty_out(vty, "Can not associate NS %u with NETNS %s\n",
677 ns->ns_id, ns->name);
678 else
679 zlog_info("Can not associate NS %u with NETNS %s",
680 ns->ns_id, ns->name);
681 return CMD_WARNING_CONFIG_FAILED;
682 }
683
684 return CMD_SUCCESS;
685 }
686
687 /* vrf CLI commands */
688 DEFUN_NOSH(vrf_exit,
689 vrf_exit_cmd,
690 "exit-vrf",
691 "Exit current mode and down to previous mode\n")
692 {
693 /* We have to set vrf context to default vrf */
694 VTY_PUSH_CONTEXT(VRF_NODE, vrf_get(VRF_DEFAULT, VRF_DEFAULT_NAME));
695 vty->node = CONFIG_NODE;
696 return CMD_SUCCESS;
697 }
698
699 DEFUN_NOSH (vrf,
700 vrf_cmd,
701 "vrf NAME",
702 "Select a VRF to configure\n"
703 "VRF's name\n")
704 {
705 int idx_name = 1;
706 const char *vrfname = argv[idx_name]->arg;
707
708 return vrf_handler_create(vty, vrfname, NULL);
709 }
710
711 DEFUN (no_vrf,
712 no_vrf_cmd,
713 "no vrf NAME",
714 NO_STR
715 "Delete a pseudo VRF's configuration\n"
716 "VRF's name\n")
717 {
718 const char *vrfname = argv[2]->arg;
719
720 struct vrf *vrfp;
721
722 vrfp = vrf_lookup_by_name(vrfname);
723
724 if (vrfp == NULL) {
725 vty_out(vty, "%% VRF %s does not exist\n", vrfname);
726 return CMD_WARNING_CONFIG_FAILED;
727 }
728
729 if (CHECK_FLAG(vrfp->status, VRF_ACTIVE)) {
730 vty_out(vty, "%% Only inactive VRFs can be deleted\n");
731 return CMD_WARNING_CONFIG_FAILED;
732 }
733
734 /* Clear configured flag and invoke delete. */
735 UNSET_FLAG(vrfp->status, VRF_CONFIGURED);
736 vrf_delete(vrfp);
737
738 return CMD_SUCCESS;
739 }
740
741
742 struct cmd_node vrf_node = {VRF_NODE, "%s(config-vrf)# ", 1};
743
744 DEFUN_NOSH (vrf_netns,
745 vrf_netns_cmd,
746 "netns NAME",
747 "Attach VRF to a Namespace\n"
748 "The file name in " NS_RUN_DIR ", or a full pathname\n")
749 {
750 int idx_name = 1, ret;
751 char *pathname = ns_netns_pathname(vty, argv[idx_name]->arg);
752
753 VTY_DECLVAR_CONTEXT(vrf, vrf);
754
755 if (!pathname)
756 return CMD_WARNING_CONFIG_FAILED;
757
758 frr_elevate_privs(vrf_daemon_privs) {
759 ret = vrf_netns_handler_create(vty, vrf, pathname,
760 NS_UNKNOWN, NS_UNKNOWN);
761 }
762 return ret;
763 }
764
765 DEFUN_NOSH (no_vrf_netns,
766 no_vrf_netns_cmd,
767 "no netns [NAME]",
768 NO_STR
769 "Detach VRF from a Namespace\n"
770 "The file name in " NS_RUN_DIR ", or a full pathname\n")
771 {
772 struct ns *ns = NULL;
773
774 VTY_DECLVAR_CONTEXT(vrf, vrf);
775
776 if (!vrf_is_backend_netns()) {
777 vty_out(vty, "VRF backend is not Netns. Aborting\n");
778 return CMD_WARNING_CONFIG_FAILED;
779 }
780 if (!vrf->ns_ctxt) {
781 vty_out(vty, "VRF %s(%u) is not configured with NetNS\n",
782 vrf->name, vrf->vrf_id);
783 return CMD_WARNING_CONFIG_FAILED;
784 }
785
786 ns = (struct ns *)vrf->ns_ctxt;
787
788 ns->vrf_ctxt = NULL;
789 vrf_disable(vrf);
790 /* vrf ID from VRF is necessary for Zebra
791 * so that propagate to other clients is done
792 */
793 ns_delete(ns);
794 vrf->ns_ctxt = NULL;
795 return CMD_SUCCESS;
796 }
797
798 /*
799 * Debug CLI for vrf's
800 */
801 DEFUN (vrf_debug,
802 vrf_debug_cmd,
803 "debug vrf",
804 DEBUG_STR
805 "VRF Debugging\n")
806 {
807 debug_vrf = 1;
808
809 return CMD_SUCCESS;
810 }
811
812 DEFUN (no_vrf_debug,
813 no_vrf_debug_cmd,
814 "no debug vrf",
815 NO_STR
816 DEBUG_STR
817 "VRF Debugging\n")
818 {
819 debug_vrf = 0;
820
821 return CMD_SUCCESS;
822 }
823
824 static int vrf_write_host(struct vty *vty)
825 {
826 if (debug_vrf)
827 vty_out(vty, "debug vrf\n");
828
829 return 1;
830 }
831
832 static struct cmd_node vrf_debug_node = {VRF_DEBUG_NODE, "", 1};
833
834 void vrf_install_commands(void)
835 {
836 install_node(&vrf_debug_node, vrf_write_host);
837
838 install_element(CONFIG_NODE, &vrf_debug_cmd);
839 install_element(ENABLE_NODE, &vrf_debug_cmd);
840 install_element(CONFIG_NODE, &no_vrf_debug_cmd);
841 install_element(ENABLE_NODE, &no_vrf_debug_cmd);
842 }
843
844 void vrf_cmd_init(int (*writefunc)(struct vty *vty),
845 struct zebra_privs_t *daemon_privs)
846 {
847 install_element(CONFIG_NODE, &vrf_cmd);
848 install_element(CONFIG_NODE, &no_vrf_cmd);
849 install_node(&vrf_node, writefunc);
850 install_default(VRF_NODE);
851 install_element(VRF_NODE, &vrf_exit_cmd);
852 if (vrf_is_backend_netns() && ns_have_netns()) {
853 /* Install NS commands. */
854 vrf_daemon_privs = daemon_privs;
855 install_element(VRF_NODE, &vrf_netns_cmd);
856 install_element(VRF_NODE, &no_vrf_netns_cmd);
857 }
858 }
859
860 void vrf_set_default_name(const char *default_name, bool force)
861 {
862 struct vrf *def_vrf;
863 struct vrf *vrf_with_default_name = NULL;
864 static bool def_vrf_forced;
865
866 def_vrf = vrf_lookup_by_id(VRF_DEFAULT);
867 assert(default_name);
868 if (def_vrf && !force && def_vrf_forced) {
869 zlog_debug("VRF: %s, avoid changing name to %s, previously forced (%u)",
870 def_vrf->name, default_name,
871 def_vrf->vrf_id);
872 return;
873 }
874 if (vrf_with_default_name && vrf_with_default_name != def_vrf) {
875 /* vrf name already used by an other VRF */
876 zlog_debug("VRF: %s, avoid changing name to %s, same name exists (%u)",
877 vrf_with_default_name->name, default_name,
878 vrf_with_default_name->vrf_id);
879 return;
880 }
881 snprintf(vrf_default_name, VRF_NAMSIZ, "%s", default_name);
882 if (def_vrf) {
883 if (force)
884 def_vrf_forced = true;
885 RB_REMOVE(vrf_name_head, &vrfs_by_name, def_vrf);
886 strlcpy(def_vrf->data.l.netns_name,
887 vrf_default_name, NS_NAMSIZ);
888 strlcpy(def_vrf->name, vrf_default_name, sizeof(def_vrf->name));
889 RB_INSERT(vrf_name_head, &vrfs_by_name, def_vrf);
890 if (vrf_master.vrf_update_name_hook)
891 (*vrf_master.vrf_update_name_hook)(def_vrf);
892 }
893 }
894
895 const char *vrf_get_default_name(void)
896 {
897 return vrf_default_name;
898 }
899
900 vrf_id_t vrf_get_default_id(void)
901 {
902 /* backend netns is only known by zebra
903 * for other daemons, we return VRF_DEFAULT_INTERNAL
904 */
905 if (vrf_is_backend_netns())
906 return ns_get_default_id();
907 else
908 return VRF_DEFAULT_INTERNAL;
909 }
910
911 int vrf_bind(vrf_id_t vrf_id, int fd, const char *name)
912 {
913 int ret = 0;
914
915 if (fd < 0 || name == NULL)
916 return fd;
917 if (vrf_is_backend_netns())
918 return fd;
919 #ifdef SO_BINDTODEVICE
920 ret = setsockopt(fd, SOL_SOCKET, SO_BINDTODEVICE, name, strlen(name)+1);
921 if (ret < 0)
922 zlog_debug("bind to interface %s failed, errno=%d", name,
923 errno);
924 #endif /* SO_BINDTODEVICE */
925 return ret;
926 }
927 int vrf_getaddrinfo(const char *node, const char *service,
928 const struct addrinfo *hints, struct addrinfo **res,
929 vrf_id_t vrf_id)
930 {
931 int ret, ret2, save_errno;
932
933 ret = vrf_switch_to_netns(vrf_id);
934 if (ret < 0)
935 flog_err_sys(EC_LIB_SOCKET, "%s: Can't switch to VRF %u (%s)",
936 __func__, vrf_id, safe_strerror(errno));
937 ret = getaddrinfo(node, service, hints, res);
938 save_errno = errno;
939 ret2 = vrf_switchback_to_initial();
940 if (ret2 < 0)
941 flog_err_sys(EC_LIB_SOCKET,
942 "%s: Can't switchback from VRF %u (%s)", __func__,
943 vrf_id, safe_strerror(errno));
944 errno = save_errno;
945 return ret;
946 }
947
948 int vrf_ioctl(vrf_id_t vrf_id, int d, unsigned long request, char *params)
949 {
950 int ret, saved_errno, rc;
951
952 ret = vrf_switch_to_netns(vrf_id);
953 if (ret < 0) {
954 flog_err_sys(EC_LIB_SOCKET, "%s: Can't switch to VRF %u (%s)",
955 __func__, vrf_id, safe_strerror(errno));
956 return 0;
957 }
958 rc = ioctl(d, request, params);
959 saved_errno = errno;
960 ret = vrf_switchback_to_initial();
961 if (ret < 0)
962 flog_err_sys(EC_LIB_SOCKET,
963 "%s: Can't switchback from VRF %u (%s)", __func__,
964 vrf_id, safe_strerror(errno));
965 errno = saved_errno;
966 return rc;
967 }
968
969 int vrf_sockunion_socket(const union sockunion *su, vrf_id_t vrf_id,
970 const char *interfacename)
971 {
972 int ret, save_errno, ret2;
973
974 ret = vrf_switch_to_netns(vrf_id);
975 if (ret < 0)
976 flog_err_sys(EC_LIB_SOCKET, "%s: Can't switch to VRF %u (%s)",
977 __func__, vrf_id, safe_strerror(errno));
978 ret = sockunion_socket(su);
979 save_errno = errno;
980 ret2 = vrf_switchback_to_initial();
981 if (ret2 < 0)
982 flog_err_sys(EC_LIB_SOCKET,
983 "%s: Can't switchback from VRF %u (%s)", __func__,
984 vrf_id, safe_strerror(errno));
985 errno = save_errno;
986
987 if (ret <= 0)
988 return ret;
989 ret2 = vrf_bind(vrf_id, ret, interfacename);
990 if (ret2 < 0) {
991 close(ret);
992 ret = ret2;
993 }
994 return ret;
995 }
996
997 vrf_id_t vrf_generate_id(void)
998 {
999 static int vrf_id_local;
1000
1001 return ++vrf_id_local;
1002 }