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1 /*
2 * Zebra dataplane layer.
3 * Copyright (c) 2018 Volta Networks, Inc.
4 *
5 * This program is free software; you can redistribute it and/or modify
6 * it under the terms of the GNU General Public License as published by
7 * the Free Software Foundation; either version 2 of the License, or
8 * (at your option) any later version.
9 *
10 * This program is distributed in the hope that it will be useful, but
11 * WITHOUT ANY WARRANTY; without even the implied warranty of
12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
13 * General Public License for more details.
14 *
15 * You should have received a copy of the GNU General Public License along
16 * with this program; see the file COPYING; if not, write to the Free Software
17 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
18 */
19
20 #ifdef HAVE_CONFIG_H
21 #include "config.h"
22 #endif
23
24 #include "lib/libfrr.h"
25 #include "lib/debug.h"
26 #include "lib/frratomic.h"
27 #include "lib/frr_pthread.h"
28 #include "lib/memory.h"
29 #include "lib/queue.h"
30 #include "lib/zebra.h"
31 #include "zebra/zebra_router.h"
32 #include "zebra/zebra_memory.h"
33 #include "zebra/zebra_router.h"
34 #include "zebra/zebra_dplane.h"
35 #include "zebra/rt.h"
36 #include "zebra/debug.h"
37
38 /* Memory type for context blocks */
39 DEFINE_MTYPE_STATIC(ZEBRA, DP_CTX, "Zebra DPlane Ctx")
40 DEFINE_MTYPE_STATIC(ZEBRA, DP_PROV, "Zebra DPlane Provider")
41
42 #ifndef AOK
43 # define AOK 0
44 #endif
45
46 /* Enable test dataplane provider */
47 /*#define DPLANE_TEST_PROVIDER 1 */
48
49 /* Default value for max queued incoming updates */
50 const uint32_t DPLANE_DEFAULT_MAX_QUEUED = 200;
51
52 /* Default value for new work per cycle */
53 const uint32_t DPLANE_DEFAULT_NEW_WORK = 100;
54
55 /* Validation check macro for context blocks */
56 /* #define DPLANE_DEBUG 1 */
57
58 #ifdef DPLANE_DEBUG
59
60 # define DPLANE_CTX_VALID(p) \
61 assert((p) != NULL)
62
63 #else
64
65 # define DPLANE_CTX_VALID(p)
66
67 #endif /* DPLANE_DEBUG */
68
69 /*
70 * Nexthop information captured for nexthop/nexthop group updates
71 */
72 struct dplane_nexthop_info {
73 uint32_t id;
74 afi_t afi;
75 vrf_id_t vrf_id;
76 int type;
77
78 struct nexthop_group ng;
79 struct nh_grp nh_grp[MULTIPATH_NUM];
80 uint8_t nh_grp_count;
81 };
82
83 /*
84 * Route information captured for route updates.
85 */
86 struct dplane_route_info {
87
88 /* Dest and (optional) source prefixes */
89 struct prefix zd_dest;
90 struct prefix zd_src;
91
92 afi_t zd_afi;
93 safi_t zd_safi;
94
95 int zd_type;
96 int zd_old_type;
97
98 route_tag_t zd_tag;
99 route_tag_t zd_old_tag;
100 uint32_t zd_metric;
101 uint32_t zd_old_metric;
102
103 uint16_t zd_instance;
104 uint16_t zd_old_instance;
105
106 uint8_t zd_distance;
107 uint8_t zd_old_distance;
108
109 uint32_t zd_mtu;
110 uint32_t zd_nexthop_mtu;
111
112 /* Nexthop hash entry info */
113 struct dplane_nexthop_info nhe;
114
115 /* Nexthops */
116 struct nexthop_group zd_ng;
117
118 /* "Previous" nexthops, used only in route updates without netlink */
119 struct nexthop_group zd_old_ng;
120
121 /* TODO -- use fixed array of nexthops, to avoid mallocs? */
122
123 };
124
125 /*
126 * Pseudowire info for the dataplane
127 */
128 struct dplane_pw_info {
129 int type;
130 int af;
131 int status;
132 uint32_t flags;
133 union g_addr dest;
134 mpls_label_t local_label;
135 mpls_label_t remote_label;
136
137 /* Nexthops */
138 struct nexthop_group nhg;
139
140 union pw_protocol_fields fields;
141 };
142
143 /*
144 * Interface/prefix info for the dataplane
145 */
146 struct dplane_intf_info {
147
148 uint32_t metric;
149 uint32_t flags;
150
151 #define DPLANE_INTF_CONNECTED (1 << 0) /* Connected peer, p2p */
152 #define DPLANE_INTF_SECONDARY (1 << 1)
153 #define DPLANE_INTF_BROADCAST (1 << 2)
154 #define DPLANE_INTF_HAS_DEST DPLANE_INTF_CONNECTED
155 #define DPLANE_INTF_HAS_LABEL (1 << 4)
156
157 /* Interface address/prefix */
158 struct prefix prefix;
159
160 /* Dest address, for p2p, or broadcast prefix */
161 struct prefix dest_prefix;
162
163 char *label;
164 char label_buf[32];
165 };
166
167 /*
168 * EVPN MAC address info for the dataplane.
169 */
170 struct dplane_mac_info {
171 vlanid_t vid;
172 ifindex_t br_ifindex;
173 struct ethaddr mac;
174 struct in_addr vtep_ip;
175 bool is_sticky;
176
177 };
178
179 /*
180 * EVPN neighbor info for the dataplane
181 */
182 struct dplane_neigh_info {
183 struct ipaddr ip_addr;
184 struct ethaddr mac;
185 uint32_t flags;
186 uint16_t state;
187 };
188
189 /*
190 * The context block used to exchange info about route updates across
191 * the boundary between the zebra main context (and pthread) and the
192 * dataplane layer (and pthread).
193 */
194 struct zebra_dplane_ctx {
195
196 /* Operation code */
197 enum dplane_op_e zd_op;
198
199 /* Status on return */
200 enum zebra_dplane_result zd_status;
201
202 /* Dplane provider id */
203 uint32_t zd_provider;
204
205 /* Flags - used by providers, e.g. */
206 int zd_flags;
207
208 bool zd_is_update;
209
210 uint32_t zd_seq;
211 uint32_t zd_old_seq;
212
213 /* Some updates may be generated by notifications: allow the
214 * plugin to notice and ignore results from its own notifications.
215 */
216 uint32_t zd_notif_provider;
217
218 /* TODO -- internal/sub-operation status? */
219 enum zebra_dplane_result zd_remote_status;
220 enum zebra_dplane_result zd_kernel_status;
221
222 vrf_id_t zd_vrf_id;
223 uint32_t zd_table_id;
224
225 char zd_ifname[INTERFACE_NAMSIZ];
226 ifindex_t zd_ifindex;
227
228 /* Support info for different kinds of updates */
229 union {
230 struct dplane_route_info rinfo;
231 zebra_lsp_t lsp;
232 struct dplane_pw_info pw;
233 struct dplane_intf_info intf;
234 struct dplane_mac_info macinfo;
235 struct dplane_neigh_info neigh;
236 } u;
237
238 /* Namespace info, used especially for netlink kernel communication */
239 struct zebra_dplane_info zd_ns_info;
240
241 /* Embedded list linkage */
242 TAILQ_ENTRY(zebra_dplane_ctx) zd_q_entries;
243 };
244
245 /* Flag that can be set by a pre-kernel provider as a signal that an update
246 * should bypass the kernel.
247 */
248 #define DPLANE_CTX_FLAG_NO_KERNEL 0x01
249
250
251 /*
252 * Registration block for one dataplane provider.
253 */
254 struct zebra_dplane_provider {
255 /* Name */
256 char dp_name[DPLANE_PROVIDER_NAMELEN + 1];
257
258 /* Priority, for ordering among providers */
259 uint8_t dp_priority;
260
261 /* Id value */
262 uint32_t dp_id;
263
264 /* Mutex */
265 pthread_mutex_t dp_mutex;
266
267 /* Plugin-provided extra data */
268 void *dp_data;
269
270 /* Flags */
271 int dp_flags;
272
273 int (*dp_start)(struct zebra_dplane_provider *prov);
274
275 int (*dp_fp)(struct zebra_dplane_provider *prov);
276
277 int (*dp_fini)(struct zebra_dplane_provider *prov, bool early_p);
278
279 _Atomic uint32_t dp_in_counter;
280 _Atomic uint32_t dp_in_queued;
281 _Atomic uint32_t dp_in_max;
282 _Atomic uint32_t dp_out_counter;
283 _Atomic uint32_t dp_out_queued;
284 _Atomic uint32_t dp_out_max;
285 _Atomic uint32_t dp_error_counter;
286
287 /* Queue of contexts inbound to the provider */
288 struct dplane_ctx_q dp_ctx_in_q;
289
290 /* Queue of completed contexts outbound from the provider back
291 * towards the dataplane module.
292 */
293 struct dplane_ctx_q dp_ctx_out_q;
294
295 /* Embedded list linkage for provider objects */
296 TAILQ_ENTRY(zebra_dplane_provider) dp_prov_link;
297 };
298
299 /*
300 * Globals
301 */
302 static struct zebra_dplane_globals {
303 /* Mutex to control access to dataplane components */
304 pthread_mutex_t dg_mutex;
305
306 /* Results callback registered by zebra 'core' */
307 int (*dg_results_cb)(struct dplane_ctx_q *ctxlist);
308
309 /* Sentinel for beginning of shutdown */
310 volatile bool dg_is_shutdown;
311
312 /* Sentinel for end of shutdown */
313 volatile bool dg_run;
314
315 /* Update context queue inbound to the dataplane */
316 TAILQ_HEAD(zdg_ctx_q, zebra_dplane_ctx) dg_update_ctx_q;
317
318 /* Ordered list of providers */
319 TAILQ_HEAD(zdg_prov_q, zebra_dplane_provider) dg_providers_q;
320
321 /* Counter used to assign internal ids to providers */
322 uint32_t dg_provider_id;
323
324 /* Limit number of pending, unprocessed updates */
325 _Atomic uint32_t dg_max_queued_updates;
326
327 /* Control whether system route notifications should be produced. */
328 bool dg_sys_route_notifs;
329
330 /* Limit number of new updates dequeued at once, to pace an
331 * incoming burst.
332 */
333 uint32_t dg_updates_per_cycle;
334
335 _Atomic uint32_t dg_routes_in;
336 _Atomic uint32_t dg_routes_queued;
337 _Atomic uint32_t dg_routes_queued_max;
338 _Atomic uint32_t dg_route_errors;
339 _Atomic uint32_t dg_other_errors;
340
341 _Atomic uint32_t dg_nexthops_in;
342 _Atomic uint32_t dg_nexthop_errors;
343
344 _Atomic uint32_t dg_lsps_in;
345 _Atomic uint32_t dg_lsp_errors;
346
347 _Atomic uint32_t dg_pws_in;
348 _Atomic uint32_t dg_pw_errors;
349
350 _Atomic uint32_t dg_intf_addrs_in;
351 _Atomic uint32_t dg_intf_addr_errors;
352
353 _Atomic uint32_t dg_macs_in;
354 _Atomic uint32_t dg_mac_errors;
355
356 _Atomic uint32_t dg_neighs_in;
357 _Atomic uint32_t dg_neigh_errors;
358
359 _Atomic uint32_t dg_update_yields;
360
361 /* Dataplane pthread */
362 struct frr_pthread *dg_pthread;
363
364 /* Event-delivery context 'master' for the dplane */
365 struct thread_master *dg_master;
366
367 /* Event/'thread' pointer for queued updates */
368 struct thread *dg_t_update;
369
370 /* Event pointer for pending shutdown check loop */
371 struct thread *dg_t_shutdown_check;
372
373 } zdplane_info;
374
375 /*
376 * Lock and unlock for interactions with the zebra 'core' pthread
377 */
378 #define DPLANE_LOCK() pthread_mutex_lock(&zdplane_info.dg_mutex)
379 #define DPLANE_UNLOCK() pthread_mutex_unlock(&zdplane_info.dg_mutex)
380
381
382 /*
383 * Lock and unlock for individual providers
384 */
385 #define DPLANE_PROV_LOCK(p) pthread_mutex_lock(&((p)->dp_mutex))
386 #define DPLANE_PROV_UNLOCK(p) pthread_mutex_unlock(&((p)->dp_mutex))
387
388 /* Prototypes */
389 static int dplane_thread_loop(struct thread *event);
390 static void dplane_info_from_zns(struct zebra_dplane_info *ns_info,
391 struct zebra_ns *zns);
392 static enum zebra_dplane_result lsp_update_internal(zebra_lsp_t *lsp,
393 enum dplane_op_e op);
394 static enum zebra_dplane_result pw_update_internal(struct zebra_pw *pw,
395 enum dplane_op_e op);
396 static enum zebra_dplane_result intf_addr_update_internal(
397 const struct interface *ifp, const struct connected *ifc,
398 enum dplane_op_e op);
399 static enum zebra_dplane_result mac_update_internal(
400 enum dplane_op_e op, const struct interface *ifp,
401 const struct interface *br_ifp,
402 vlanid_t vid, const struct ethaddr *mac,
403 struct in_addr vtep_ip, bool sticky);
404 static enum zebra_dplane_result neigh_update_internal(
405 enum dplane_op_e op,
406 const struct interface *ifp,
407 const struct ethaddr *mac,
408 const struct ipaddr *ip,
409 uint32_t flags, uint16_t state);
410
411 /*
412 * Public APIs
413 */
414
415 /* Obtain thread_master for dataplane thread */
416 struct thread_master *dplane_get_thread_master(void)
417 {
418 return zdplane_info.dg_master;
419 }
420
421 /*
422 * Allocate a dataplane update context
423 */
424 struct zebra_dplane_ctx *dplane_ctx_alloc(void)
425 {
426 struct zebra_dplane_ctx *p;
427
428 /* TODO -- just alloc'ing memory, but would like to maintain
429 * a pool
430 */
431 p = XCALLOC(MTYPE_DP_CTX, sizeof(struct zebra_dplane_ctx));
432
433 return p;
434 }
435
436 /* Enable system route notifications */
437 void dplane_enable_sys_route_notifs(void)
438 {
439 zdplane_info.dg_sys_route_notifs = true;
440 }
441
442 /*
443 * Free a dataplane results context.
444 */
445 static void dplane_ctx_free(struct zebra_dplane_ctx **pctx)
446 {
447 if (pctx == NULL)
448 return;
449
450 DPLANE_CTX_VALID(*pctx);
451
452 /* TODO -- just freeing memory, but would like to maintain
453 * a pool
454 */
455
456 /* Some internal allocations may need to be freed, depending on
457 * the type of info captured in the ctx.
458 */
459 switch ((*pctx)->zd_op) {
460 case DPLANE_OP_ROUTE_INSTALL:
461 case DPLANE_OP_ROUTE_UPDATE:
462 case DPLANE_OP_ROUTE_DELETE:
463 case DPLANE_OP_SYS_ROUTE_ADD:
464 case DPLANE_OP_SYS_ROUTE_DELETE:
465 case DPLANE_OP_ROUTE_NOTIFY:
466
467 /* Free allocated nexthops */
468 if ((*pctx)->u.rinfo.zd_ng.nexthop) {
469 /* This deals with recursive nexthops too */
470 nexthops_free((*pctx)->u.rinfo.zd_ng.nexthop);
471
472 (*pctx)->u.rinfo.zd_ng.nexthop = NULL;
473 }
474
475 if ((*pctx)->u.rinfo.zd_old_ng.nexthop) {
476 /* This deals with recursive nexthops too */
477 nexthops_free((*pctx)->u.rinfo.zd_old_ng.nexthop);
478
479 (*pctx)->u.rinfo.zd_old_ng.nexthop = NULL;
480 }
481
482 break;
483
484 case DPLANE_OP_NH_INSTALL:
485 case DPLANE_OP_NH_UPDATE:
486 case DPLANE_OP_NH_DELETE: {
487 if ((*pctx)->u.rinfo.nhe.ng.nexthop) {
488 /* This deals with recursive nexthops too */
489 nexthops_free((*pctx)->u.rinfo.nhe.ng.nexthop);
490
491 (*pctx)->u.rinfo.nhe.ng.nexthop = NULL;
492 }
493 break;
494 }
495
496 case DPLANE_OP_LSP_INSTALL:
497 case DPLANE_OP_LSP_UPDATE:
498 case DPLANE_OP_LSP_DELETE:
499 case DPLANE_OP_LSP_NOTIFY:
500 {
501 zebra_nhlfe_t *nhlfe, *next;
502
503 /* Free allocated NHLFEs */
504 for (nhlfe = (*pctx)->u.lsp.nhlfe_list; nhlfe; nhlfe = next) {
505 next = nhlfe->next;
506
507 zebra_mpls_nhlfe_del(nhlfe);
508 }
509
510 /* Clear pointers in lsp struct, in case we're cacheing
511 * free context structs.
512 */
513 (*pctx)->u.lsp.nhlfe_list = NULL;
514 (*pctx)->u.lsp.best_nhlfe = NULL;
515
516 break;
517 }
518
519 case DPLANE_OP_PW_INSTALL:
520 case DPLANE_OP_PW_UNINSTALL:
521 /* Free allocated nexthops */
522 if ((*pctx)->u.pw.nhg.nexthop) {
523 /* This deals with recursive nexthops too */
524 nexthops_free((*pctx)->u.pw.nhg.nexthop);
525
526 (*pctx)->u.pw.nhg.nexthop = NULL;
527 }
528 break;
529
530 case DPLANE_OP_ADDR_INSTALL:
531 case DPLANE_OP_ADDR_UNINSTALL:
532 /* Maybe free label string, if allocated */
533 if ((*pctx)->u.intf.label != NULL &&
534 (*pctx)->u.intf.label != (*pctx)->u.intf.label_buf) {
535 free((*pctx)->u.intf.label);
536 (*pctx)->u.intf.label = NULL;
537 }
538 break;
539
540 case DPLANE_OP_MAC_INSTALL:
541 case DPLANE_OP_MAC_DELETE:
542 case DPLANE_OP_NEIGH_INSTALL:
543 case DPLANE_OP_NEIGH_UPDATE:
544 case DPLANE_OP_NEIGH_DELETE:
545 case DPLANE_OP_VTEP_ADD:
546 case DPLANE_OP_VTEP_DELETE:
547 case DPLANE_OP_NONE:
548 break;
549 }
550
551 XFREE(MTYPE_DP_CTX, *pctx);
552 *pctx = NULL;
553 }
554
555 /*
556 * Return a context block to the dplane module after processing
557 */
558 void dplane_ctx_fini(struct zebra_dplane_ctx **pctx)
559 {
560 /* TODO -- maintain pool; for now, just free */
561 dplane_ctx_free(pctx);
562 }
563
564 /* Enqueue a context block */
565 void dplane_ctx_enqueue_tail(struct dplane_ctx_q *q,
566 const struct zebra_dplane_ctx *ctx)
567 {
568 TAILQ_INSERT_TAIL(q, (struct zebra_dplane_ctx *)ctx, zd_q_entries);
569 }
570
571 /* Append a list of context blocks to another list */
572 void dplane_ctx_list_append(struct dplane_ctx_q *to_list,
573 struct dplane_ctx_q *from_list)
574 {
575 if (TAILQ_FIRST(from_list)) {
576 TAILQ_CONCAT(to_list, from_list, zd_q_entries);
577
578 /* And clear 'from' list */
579 TAILQ_INIT(from_list);
580 }
581 }
582
583 /* Dequeue a context block from the head of a list */
584 struct zebra_dplane_ctx *dplane_ctx_dequeue(struct dplane_ctx_q *q)
585 {
586 struct zebra_dplane_ctx *ctx = TAILQ_FIRST(q);
587
588 if (ctx)
589 TAILQ_REMOVE(q, ctx, zd_q_entries);
590
591 return ctx;
592 }
593
594 /*
595 * Accessors for information from the context object
596 */
597 enum zebra_dplane_result dplane_ctx_get_status(
598 const struct zebra_dplane_ctx *ctx)
599 {
600 DPLANE_CTX_VALID(ctx);
601
602 return ctx->zd_status;
603 }
604
605 void dplane_ctx_set_status(struct zebra_dplane_ctx *ctx,
606 enum zebra_dplane_result status)
607 {
608 DPLANE_CTX_VALID(ctx);
609
610 ctx->zd_status = status;
611 }
612
613 /* Retrieve last/current provider id */
614 uint32_t dplane_ctx_get_provider(const struct zebra_dplane_ctx *ctx)
615 {
616 DPLANE_CTX_VALID(ctx);
617 return ctx->zd_provider;
618 }
619
620 /* Providers run before the kernel can control whether a kernel
621 * update should be done.
622 */
623 void dplane_ctx_set_skip_kernel(struct zebra_dplane_ctx *ctx)
624 {
625 DPLANE_CTX_VALID(ctx);
626
627 SET_FLAG(ctx->zd_flags, DPLANE_CTX_FLAG_NO_KERNEL);
628 }
629
630 bool dplane_ctx_is_skip_kernel(const struct zebra_dplane_ctx *ctx)
631 {
632 DPLANE_CTX_VALID(ctx);
633
634 return CHECK_FLAG(ctx->zd_flags, DPLANE_CTX_FLAG_NO_KERNEL);
635 }
636
637 void dplane_ctx_set_op(struct zebra_dplane_ctx *ctx, enum dplane_op_e op)
638 {
639 DPLANE_CTX_VALID(ctx);
640 ctx->zd_op = op;
641 }
642
643 enum dplane_op_e dplane_ctx_get_op(const struct zebra_dplane_ctx *ctx)
644 {
645 DPLANE_CTX_VALID(ctx);
646
647 return ctx->zd_op;
648 }
649
650 const char *dplane_op2str(enum dplane_op_e op)
651 {
652 const char *ret = "UNKNOWN";
653
654 switch (op) {
655 case DPLANE_OP_NONE:
656 ret = "NONE";
657 break;
658
659 /* Route update */
660 case DPLANE_OP_ROUTE_INSTALL:
661 ret = "ROUTE_INSTALL";
662 break;
663 case DPLANE_OP_ROUTE_UPDATE:
664 ret = "ROUTE_UPDATE";
665 break;
666 case DPLANE_OP_ROUTE_DELETE:
667 ret = "ROUTE_DELETE";
668 break;
669 case DPLANE_OP_ROUTE_NOTIFY:
670 ret = "ROUTE_NOTIFY";
671 break;
672
673 /* Nexthop update */
674 case DPLANE_OP_NH_INSTALL:
675 ret = "NH_INSTALL";
676 break;
677 case DPLANE_OP_NH_UPDATE:
678 ret = "NH_UPDATE";
679 break;
680 case DPLANE_OP_NH_DELETE:
681 ret = "NH_DELETE";
682 break;
683
684 case DPLANE_OP_LSP_INSTALL:
685 ret = "LSP_INSTALL";
686 break;
687 case DPLANE_OP_LSP_UPDATE:
688 ret = "LSP_UPDATE";
689 break;
690 case DPLANE_OP_LSP_DELETE:
691 ret = "LSP_DELETE";
692 break;
693 case DPLANE_OP_LSP_NOTIFY:
694 ret = "LSP_NOTIFY";
695 break;
696
697 case DPLANE_OP_PW_INSTALL:
698 ret = "PW_INSTALL";
699 break;
700 case DPLANE_OP_PW_UNINSTALL:
701 ret = "PW_UNINSTALL";
702 break;
703
704 case DPLANE_OP_SYS_ROUTE_ADD:
705 ret = "SYS_ROUTE_ADD";
706 break;
707 case DPLANE_OP_SYS_ROUTE_DELETE:
708 ret = "SYS_ROUTE_DEL";
709 break;
710
711 case DPLANE_OP_ADDR_INSTALL:
712 ret = "ADDR_INSTALL";
713 break;
714 case DPLANE_OP_ADDR_UNINSTALL:
715 ret = "ADDR_UNINSTALL";
716 break;
717
718 case DPLANE_OP_MAC_INSTALL:
719 ret = "MAC_INSTALL";
720 break;
721 case DPLANE_OP_MAC_DELETE:
722 ret = "MAC_DELETE";
723 break;
724
725 case DPLANE_OP_NEIGH_INSTALL:
726 ret = "NEIGH_INSTALL";
727 break;
728 case DPLANE_OP_NEIGH_UPDATE:
729 ret = "NEIGH_UPDATE";
730 break;
731 case DPLANE_OP_NEIGH_DELETE:
732 ret = "NEIGH_DELETE";
733 break;
734 case DPLANE_OP_VTEP_ADD:
735 ret = "VTEP_ADD";
736 break;
737 case DPLANE_OP_VTEP_DELETE:
738 ret = "VTEP_DELETE";
739 break;
740 }
741
742 return ret;
743 }
744
745 const char *dplane_res2str(enum zebra_dplane_result res)
746 {
747 const char *ret = "<Unknown>";
748
749 switch (res) {
750 case ZEBRA_DPLANE_REQUEST_FAILURE:
751 ret = "FAILURE";
752 break;
753 case ZEBRA_DPLANE_REQUEST_QUEUED:
754 ret = "QUEUED";
755 break;
756 case ZEBRA_DPLANE_REQUEST_SUCCESS:
757 ret = "SUCCESS";
758 break;
759 }
760
761 return ret;
762 }
763
764 void dplane_ctx_set_dest(struct zebra_dplane_ctx *ctx,
765 const struct prefix *dest)
766 {
767 DPLANE_CTX_VALID(ctx);
768
769 prefix_copy(&(ctx->u.rinfo.zd_dest), dest);
770 }
771
772 const struct prefix *dplane_ctx_get_dest(const struct zebra_dplane_ctx *ctx)
773 {
774 DPLANE_CTX_VALID(ctx);
775
776 return &(ctx->u.rinfo.zd_dest);
777 }
778
779 void dplane_ctx_set_src(struct zebra_dplane_ctx *ctx, const struct prefix *src)
780 {
781 DPLANE_CTX_VALID(ctx);
782
783 if (src)
784 prefix_copy(&(ctx->u.rinfo.zd_src), src);
785 else
786 memset(&(ctx->u.rinfo.zd_src), 0, sizeof(struct prefix));
787 }
788
789 /* Source prefix is a little special - return NULL for "no src prefix" */
790 const struct prefix *dplane_ctx_get_src(const struct zebra_dplane_ctx *ctx)
791 {
792 DPLANE_CTX_VALID(ctx);
793
794 if (ctx->u.rinfo.zd_src.prefixlen == 0 &&
795 IN6_IS_ADDR_UNSPECIFIED(&(ctx->u.rinfo.zd_src.u.prefix6))) {
796 return NULL;
797 } else {
798 return &(ctx->u.rinfo.zd_src);
799 }
800 }
801
802 bool dplane_ctx_is_update(const struct zebra_dplane_ctx *ctx)
803 {
804 DPLANE_CTX_VALID(ctx);
805
806 return ctx->zd_is_update;
807 }
808
809 uint32_t dplane_ctx_get_seq(const struct zebra_dplane_ctx *ctx)
810 {
811 DPLANE_CTX_VALID(ctx);
812
813 return ctx->zd_seq;
814 }
815
816 uint32_t dplane_ctx_get_old_seq(const struct zebra_dplane_ctx *ctx)
817 {
818 DPLANE_CTX_VALID(ctx);
819
820 return ctx->zd_old_seq;
821 }
822
823 void dplane_ctx_set_vrf(struct zebra_dplane_ctx *ctx, vrf_id_t vrf)
824 {
825 DPLANE_CTX_VALID(ctx);
826
827 ctx->zd_vrf_id = vrf;
828 }
829
830 vrf_id_t dplane_ctx_get_vrf(const struct zebra_dplane_ctx *ctx)
831 {
832 DPLANE_CTX_VALID(ctx);
833
834 return ctx->zd_vrf_id;
835 }
836
837 bool dplane_ctx_is_from_notif(const struct zebra_dplane_ctx *ctx)
838 {
839 DPLANE_CTX_VALID(ctx);
840
841 return (ctx->zd_notif_provider != 0);
842 }
843
844 uint32_t dplane_ctx_get_notif_provider(const struct zebra_dplane_ctx *ctx)
845 {
846 DPLANE_CTX_VALID(ctx);
847
848 return ctx->zd_notif_provider;
849 }
850
851 void dplane_ctx_set_notif_provider(struct zebra_dplane_ctx *ctx,
852 uint32_t id)
853 {
854 DPLANE_CTX_VALID(ctx);
855
856 ctx->zd_notif_provider = id;
857 }
858 const char *dplane_ctx_get_ifname(const struct zebra_dplane_ctx *ctx)
859 {
860 DPLANE_CTX_VALID(ctx);
861
862 return ctx->zd_ifname;
863 }
864
865 ifindex_t dplane_ctx_get_ifindex(const struct zebra_dplane_ctx *ctx)
866 {
867 DPLANE_CTX_VALID(ctx);
868
869 return ctx->zd_ifindex;
870 }
871
872 void dplane_ctx_set_type(struct zebra_dplane_ctx *ctx, int type)
873 {
874 DPLANE_CTX_VALID(ctx);
875
876 ctx->u.rinfo.zd_type = type;
877 }
878
879 int dplane_ctx_get_type(const struct zebra_dplane_ctx *ctx)
880 {
881 DPLANE_CTX_VALID(ctx);
882
883 return ctx->u.rinfo.zd_type;
884 }
885
886 int dplane_ctx_get_old_type(const struct zebra_dplane_ctx *ctx)
887 {
888 DPLANE_CTX_VALID(ctx);
889
890 return ctx->u.rinfo.zd_old_type;
891 }
892
893 void dplane_ctx_set_afi(struct zebra_dplane_ctx *ctx, afi_t afi)
894 {
895 DPLANE_CTX_VALID(ctx);
896
897 ctx->u.rinfo.zd_afi = afi;
898 }
899
900 afi_t dplane_ctx_get_afi(const struct zebra_dplane_ctx *ctx)
901 {
902 DPLANE_CTX_VALID(ctx);
903
904 return ctx->u.rinfo.zd_afi;
905 }
906
907 void dplane_ctx_set_safi(struct zebra_dplane_ctx *ctx, safi_t safi)
908 {
909 DPLANE_CTX_VALID(ctx);
910
911 ctx->u.rinfo.zd_safi = safi;
912 }
913
914 safi_t dplane_ctx_get_safi(const struct zebra_dplane_ctx *ctx)
915 {
916 DPLANE_CTX_VALID(ctx);
917
918 return ctx->u.rinfo.zd_safi;
919 }
920
921 void dplane_ctx_set_table(struct zebra_dplane_ctx *ctx, uint32_t table)
922 {
923 DPLANE_CTX_VALID(ctx);
924
925 ctx->zd_table_id = table;
926 }
927
928 uint32_t dplane_ctx_get_table(const struct zebra_dplane_ctx *ctx)
929 {
930 DPLANE_CTX_VALID(ctx);
931
932 return ctx->zd_table_id;
933 }
934
935 route_tag_t dplane_ctx_get_tag(const struct zebra_dplane_ctx *ctx)
936 {
937 DPLANE_CTX_VALID(ctx);
938
939 return ctx->u.rinfo.zd_tag;
940 }
941
942 void dplane_ctx_set_tag(struct zebra_dplane_ctx *ctx, route_tag_t tag)
943 {
944 DPLANE_CTX_VALID(ctx);
945
946 ctx->u.rinfo.zd_tag = tag;
947 }
948
949 route_tag_t dplane_ctx_get_old_tag(const struct zebra_dplane_ctx *ctx)
950 {
951 DPLANE_CTX_VALID(ctx);
952
953 return ctx->u.rinfo.zd_old_tag;
954 }
955
956 uint16_t dplane_ctx_get_instance(const struct zebra_dplane_ctx *ctx)
957 {
958 DPLANE_CTX_VALID(ctx);
959
960 return ctx->u.rinfo.zd_instance;
961 }
962
963 void dplane_ctx_set_instance(struct zebra_dplane_ctx *ctx, uint16_t instance)
964 {
965 DPLANE_CTX_VALID(ctx);
966
967 ctx->u.rinfo.zd_instance = instance;
968 }
969
970 uint16_t dplane_ctx_get_old_instance(const struct zebra_dplane_ctx *ctx)
971 {
972 DPLANE_CTX_VALID(ctx);
973
974 return ctx->u.rinfo.zd_old_instance;
975 }
976
977 uint32_t dplane_ctx_get_metric(const struct zebra_dplane_ctx *ctx)
978 {
979 DPLANE_CTX_VALID(ctx);
980
981 return ctx->u.rinfo.zd_metric;
982 }
983
984 uint32_t dplane_ctx_get_old_metric(const struct zebra_dplane_ctx *ctx)
985 {
986 DPLANE_CTX_VALID(ctx);
987
988 return ctx->u.rinfo.zd_old_metric;
989 }
990
991 uint32_t dplane_ctx_get_mtu(const struct zebra_dplane_ctx *ctx)
992 {
993 DPLANE_CTX_VALID(ctx);
994
995 return ctx->u.rinfo.zd_mtu;
996 }
997
998 uint32_t dplane_ctx_get_nh_mtu(const struct zebra_dplane_ctx *ctx)
999 {
1000 DPLANE_CTX_VALID(ctx);
1001
1002 return ctx->u.rinfo.zd_nexthop_mtu;
1003 }
1004
1005 uint8_t dplane_ctx_get_distance(const struct zebra_dplane_ctx *ctx)
1006 {
1007 DPLANE_CTX_VALID(ctx);
1008
1009 return ctx->u.rinfo.zd_distance;
1010 }
1011
1012 void dplane_ctx_set_distance(struct zebra_dplane_ctx *ctx, uint8_t distance)
1013 {
1014 DPLANE_CTX_VALID(ctx);
1015
1016 ctx->u.rinfo.zd_distance = distance;
1017 }
1018
1019 uint8_t dplane_ctx_get_old_distance(const struct zebra_dplane_ctx *ctx)
1020 {
1021 DPLANE_CTX_VALID(ctx);
1022
1023 return ctx->u.rinfo.zd_old_distance;
1024 }
1025
1026 void dplane_ctx_set_nexthops(struct zebra_dplane_ctx *ctx, struct nexthop *nh)
1027 {
1028 DPLANE_CTX_VALID(ctx);
1029
1030 if (ctx->u.rinfo.zd_ng.nexthop) {
1031 nexthops_free(ctx->u.rinfo.zd_ng.nexthop);
1032 ctx->u.rinfo.zd_ng.nexthop = NULL;
1033 }
1034 copy_nexthops(&(ctx->u.rinfo.zd_ng.nexthop), nh, NULL);
1035 }
1036
1037 const struct nexthop_group *dplane_ctx_get_ng(
1038 const struct zebra_dplane_ctx *ctx)
1039 {
1040 DPLANE_CTX_VALID(ctx);
1041
1042 return &(ctx->u.rinfo.zd_ng);
1043 }
1044
1045 const struct nexthop_group *dplane_ctx_get_old_ng(
1046 const struct zebra_dplane_ctx *ctx)
1047 {
1048 DPLANE_CTX_VALID(ctx);
1049
1050 return &(ctx->u.rinfo.zd_old_ng);
1051 }
1052
1053 const struct zebra_dplane_info *dplane_ctx_get_ns(
1054 const struct zebra_dplane_ctx *ctx)
1055 {
1056 DPLANE_CTX_VALID(ctx);
1057
1058 return &(ctx->zd_ns_info);
1059 }
1060
1061 /* Accessors for nexthop information */
1062 uint32_t dplane_ctx_get_nhe_id(const struct zebra_dplane_ctx *ctx)
1063 {
1064 DPLANE_CTX_VALID(ctx);
1065 return ctx->u.rinfo.nhe.id;
1066 }
1067
1068 afi_t dplane_ctx_get_nhe_afi(const struct zebra_dplane_ctx *ctx)
1069 {
1070 DPLANE_CTX_VALID(ctx);
1071 return ctx->u.rinfo.nhe.afi;
1072 }
1073
1074 vrf_id_t dplane_ctx_get_nhe_vrf_id(const struct zebra_dplane_ctx *ctx)
1075 {
1076 DPLANE_CTX_VALID(ctx);
1077 return ctx->u.rinfo.nhe.vrf_id;
1078 }
1079
1080 int dplane_ctx_get_nhe_type(const struct zebra_dplane_ctx *ctx)
1081 {
1082 DPLANE_CTX_VALID(ctx);
1083 return ctx->u.rinfo.nhe.type;
1084 }
1085
1086 const struct nexthop_group *
1087 dplane_ctx_get_nhe_ng(const struct zebra_dplane_ctx *ctx)
1088 {
1089 DPLANE_CTX_VALID(ctx);
1090 return &(ctx->u.rinfo.nhe.ng);
1091 }
1092
1093 const struct nh_grp *
1094 dplane_ctx_get_nhe_nh_grp(const struct zebra_dplane_ctx *ctx)
1095 {
1096 DPLANE_CTX_VALID(ctx);
1097 return ctx->u.rinfo.nhe.nh_grp;
1098 }
1099
1100 uint8_t dplane_ctx_get_nhe_nh_grp_count(const struct zebra_dplane_ctx *ctx)
1101 {
1102 DPLANE_CTX_VALID(ctx);
1103 return ctx->u.rinfo.nhe.nh_grp_count;
1104 }
1105
1106 /* Accessors for LSP information */
1107
1108 mpls_label_t dplane_ctx_get_in_label(const struct zebra_dplane_ctx *ctx)
1109 {
1110 DPLANE_CTX_VALID(ctx);
1111
1112 return ctx->u.lsp.ile.in_label;
1113 }
1114
1115 void dplane_ctx_set_in_label(struct zebra_dplane_ctx *ctx, mpls_label_t label)
1116 {
1117 DPLANE_CTX_VALID(ctx);
1118
1119 ctx->u.lsp.ile.in_label = label;
1120 }
1121
1122 uint8_t dplane_ctx_get_addr_family(const struct zebra_dplane_ctx *ctx)
1123 {
1124 DPLANE_CTX_VALID(ctx);
1125
1126 return ctx->u.lsp.addr_family;
1127 }
1128
1129 void dplane_ctx_set_addr_family(struct zebra_dplane_ctx *ctx,
1130 uint8_t family)
1131 {
1132 DPLANE_CTX_VALID(ctx);
1133
1134 ctx->u.lsp.addr_family = family;
1135 }
1136
1137 uint32_t dplane_ctx_get_lsp_flags(const struct zebra_dplane_ctx *ctx)
1138 {
1139 DPLANE_CTX_VALID(ctx);
1140
1141 return ctx->u.lsp.flags;
1142 }
1143
1144 void dplane_ctx_set_lsp_flags(struct zebra_dplane_ctx *ctx,
1145 uint32_t flags)
1146 {
1147 DPLANE_CTX_VALID(ctx);
1148
1149 ctx->u.lsp.flags = flags;
1150 }
1151
1152 const zebra_nhlfe_t *dplane_ctx_get_nhlfe(const struct zebra_dplane_ctx *ctx)
1153 {
1154 DPLANE_CTX_VALID(ctx);
1155
1156 return ctx->u.lsp.nhlfe_list;
1157 }
1158
1159 zebra_nhlfe_t *dplane_ctx_add_nhlfe(struct zebra_dplane_ctx *ctx,
1160 enum lsp_types_t lsp_type,
1161 enum nexthop_types_t nh_type,
1162 union g_addr *gate,
1163 ifindex_t ifindex,
1164 mpls_label_t out_label)
1165 {
1166 zebra_nhlfe_t *nhlfe;
1167
1168 DPLANE_CTX_VALID(ctx);
1169
1170 nhlfe = zebra_mpls_lsp_add_nhlfe(&(ctx->u.lsp),
1171 lsp_type, nh_type, gate,
1172 ifindex, out_label);
1173
1174 return nhlfe;
1175 }
1176
1177 const zebra_nhlfe_t *
1178 dplane_ctx_get_best_nhlfe(const struct zebra_dplane_ctx *ctx)
1179 {
1180 DPLANE_CTX_VALID(ctx);
1181
1182 return ctx->u.lsp.best_nhlfe;
1183 }
1184
1185 const zebra_nhlfe_t *
1186 dplane_ctx_set_best_nhlfe(struct zebra_dplane_ctx *ctx,
1187 zebra_nhlfe_t *nhlfe)
1188 {
1189 DPLANE_CTX_VALID(ctx);
1190
1191 ctx->u.lsp.best_nhlfe = nhlfe;
1192 return ctx->u.lsp.best_nhlfe;
1193 }
1194
1195 uint32_t dplane_ctx_get_lsp_num_ecmp(const struct zebra_dplane_ctx *ctx)
1196 {
1197 DPLANE_CTX_VALID(ctx);
1198
1199 return ctx->u.lsp.num_ecmp;
1200 }
1201
1202 mpls_label_t dplane_ctx_get_pw_local_label(const struct zebra_dplane_ctx *ctx)
1203 {
1204 DPLANE_CTX_VALID(ctx);
1205
1206 return ctx->u.pw.local_label;
1207 }
1208
1209 mpls_label_t dplane_ctx_get_pw_remote_label(const struct zebra_dplane_ctx *ctx)
1210 {
1211 DPLANE_CTX_VALID(ctx);
1212
1213 return ctx->u.pw.remote_label;
1214 }
1215
1216 int dplane_ctx_get_pw_type(const struct zebra_dplane_ctx *ctx)
1217 {
1218 DPLANE_CTX_VALID(ctx);
1219
1220 return ctx->u.pw.type;
1221 }
1222
1223 int dplane_ctx_get_pw_af(const struct zebra_dplane_ctx *ctx)
1224 {
1225 DPLANE_CTX_VALID(ctx);
1226
1227 return ctx->u.pw.af;
1228 }
1229
1230 uint32_t dplane_ctx_get_pw_flags(const struct zebra_dplane_ctx *ctx)
1231 {
1232 DPLANE_CTX_VALID(ctx);
1233
1234 return ctx->u.pw.flags;
1235 }
1236
1237 int dplane_ctx_get_pw_status(const struct zebra_dplane_ctx *ctx)
1238 {
1239 DPLANE_CTX_VALID(ctx);
1240
1241 return ctx->u.pw.status;
1242 }
1243
1244 const union g_addr *dplane_ctx_get_pw_dest(
1245 const struct zebra_dplane_ctx *ctx)
1246 {
1247 DPLANE_CTX_VALID(ctx);
1248
1249 return &(ctx->u.pw.dest);
1250 }
1251
1252 const union pw_protocol_fields *dplane_ctx_get_pw_proto(
1253 const struct zebra_dplane_ctx *ctx)
1254 {
1255 DPLANE_CTX_VALID(ctx);
1256
1257 return &(ctx->u.pw.fields);
1258 }
1259
1260 const struct nexthop_group *
1261 dplane_ctx_get_pw_nhg(const struct zebra_dplane_ctx *ctx)
1262 {
1263 DPLANE_CTX_VALID(ctx);
1264
1265 return &(ctx->u.pw.nhg);
1266 }
1267
1268 /* Accessors for interface information */
1269 uint32_t dplane_ctx_get_intf_metric(const struct zebra_dplane_ctx *ctx)
1270 {
1271 DPLANE_CTX_VALID(ctx);
1272
1273 return ctx->u.intf.metric;
1274 }
1275
1276 /* Is interface addr p2p? */
1277 bool dplane_ctx_intf_is_connected(const struct zebra_dplane_ctx *ctx)
1278 {
1279 DPLANE_CTX_VALID(ctx);
1280
1281 return (ctx->u.intf.flags & DPLANE_INTF_CONNECTED);
1282 }
1283
1284 bool dplane_ctx_intf_is_secondary(const struct zebra_dplane_ctx *ctx)
1285 {
1286 DPLANE_CTX_VALID(ctx);
1287
1288 return (ctx->u.intf.flags & DPLANE_INTF_SECONDARY);
1289 }
1290
1291 bool dplane_ctx_intf_is_broadcast(const struct zebra_dplane_ctx *ctx)
1292 {
1293 DPLANE_CTX_VALID(ctx);
1294
1295 return (ctx->u.intf.flags & DPLANE_INTF_BROADCAST);
1296 }
1297
1298 const struct prefix *dplane_ctx_get_intf_addr(
1299 const struct zebra_dplane_ctx *ctx)
1300 {
1301 DPLANE_CTX_VALID(ctx);
1302
1303 return &(ctx->u.intf.prefix);
1304 }
1305
1306 bool dplane_ctx_intf_has_dest(const struct zebra_dplane_ctx *ctx)
1307 {
1308 DPLANE_CTX_VALID(ctx);
1309
1310 return (ctx->u.intf.flags & DPLANE_INTF_HAS_DEST);
1311 }
1312
1313 const struct prefix *dplane_ctx_get_intf_dest(
1314 const struct zebra_dplane_ctx *ctx)
1315 {
1316 DPLANE_CTX_VALID(ctx);
1317
1318 if (ctx->u.intf.flags & DPLANE_INTF_HAS_DEST)
1319 return &(ctx->u.intf.dest_prefix);
1320 else
1321 return NULL;
1322 }
1323
1324 bool dplane_ctx_intf_has_label(const struct zebra_dplane_ctx *ctx)
1325 {
1326 DPLANE_CTX_VALID(ctx);
1327
1328 return (ctx->u.intf.flags & DPLANE_INTF_HAS_LABEL);
1329 }
1330
1331 const char *dplane_ctx_get_intf_label(const struct zebra_dplane_ctx *ctx)
1332 {
1333 DPLANE_CTX_VALID(ctx);
1334
1335 return ctx->u.intf.label;
1336 }
1337
1338 /* Accessors for MAC information */
1339 vlanid_t dplane_ctx_mac_get_vlan(const struct zebra_dplane_ctx *ctx)
1340 {
1341 DPLANE_CTX_VALID(ctx);
1342 return ctx->u.macinfo.vid;
1343 }
1344
1345 bool dplane_ctx_mac_is_sticky(const struct zebra_dplane_ctx *ctx)
1346 {
1347 DPLANE_CTX_VALID(ctx);
1348 return ctx->u.macinfo.is_sticky;
1349 }
1350
1351 const struct ethaddr *dplane_ctx_mac_get_addr(
1352 const struct zebra_dplane_ctx *ctx)
1353 {
1354 DPLANE_CTX_VALID(ctx);
1355 return &(ctx->u.macinfo.mac);
1356 }
1357
1358 const struct in_addr *dplane_ctx_mac_get_vtep_ip(
1359 const struct zebra_dplane_ctx *ctx)
1360 {
1361 DPLANE_CTX_VALID(ctx);
1362 return &(ctx->u.macinfo.vtep_ip);
1363 }
1364
1365 ifindex_t dplane_ctx_mac_get_br_ifindex(const struct zebra_dplane_ctx *ctx)
1366 {
1367 DPLANE_CTX_VALID(ctx);
1368 return ctx->u.macinfo.br_ifindex;
1369 }
1370
1371 /* Accessors for neighbor information */
1372 const struct ipaddr *dplane_ctx_neigh_get_ipaddr(
1373 const struct zebra_dplane_ctx *ctx)
1374 {
1375 DPLANE_CTX_VALID(ctx);
1376 return &(ctx->u.neigh.ip_addr);
1377 }
1378
1379 const struct ethaddr *dplane_ctx_neigh_get_mac(
1380 const struct zebra_dplane_ctx *ctx)
1381 {
1382 DPLANE_CTX_VALID(ctx);
1383 return &(ctx->u.neigh.mac);
1384 }
1385
1386 uint32_t dplane_ctx_neigh_get_flags(const struct zebra_dplane_ctx *ctx)
1387 {
1388 DPLANE_CTX_VALID(ctx);
1389 return ctx->u.neigh.flags;
1390 }
1391
1392 uint16_t dplane_ctx_neigh_get_state(const struct zebra_dplane_ctx *ctx)
1393 {
1394 DPLANE_CTX_VALID(ctx);
1395 return ctx->u.neigh.state;
1396 }
1397
1398 /*
1399 * End of dplane context accessors
1400 */
1401
1402
1403 /*
1404 * Retrieve the limit on the number of pending, unprocessed updates.
1405 */
1406 uint32_t dplane_get_in_queue_limit(void)
1407 {
1408 return atomic_load_explicit(&zdplane_info.dg_max_queued_updates,
1409 memory_order_relaxed);
1410 }
1411
1412 /*
1413 * Configure limit on the number of pending, queued updates.
1414 */
1415 void dplane_set_in_queue_limit(uint32_t limit, bool set)
1416 {
1417 /* Reset to default on 'unset' */
1418 if (!set)
1419 limit = DPLANE_DEFAULT_MAX_QUEUED;
1420
1421 atomic_store_explicit(&zdplane_info.dg_max_queued_updates, limit,
1422 memory_order_relaxed);
1423 }
1424
1425 /*
1426 * Retrieve the current queue depth of incoming, unprocessed updates
1427 */
1428 uint32_t dplane_get_in_queue_len(void)
1429 {
1430 return atomic_load_explicit(&zdplane_info.dg_routes_queued,
1431 memory_order_seq_cst);
1432 }
1433
1434 /*
1435 * Common dataplane context init with zebra namespace info.
1436 */
1437 static int dplane_ctx_ns_init(struct zebra_dplane_ctx *ctx,
1438 struct zebra_ns *zns,
1439 bool is_update)
1440 {
1441 dplane_info_from_zns(&(ctx->zd_ns_info), zns);
1442
1443 #if defined(HAVE_NETLINK)
1444 /* Increment message counter after copying to context struct - may need
1445 * two messages in some 'update' cases.
1446 */
1447 if (is_update)
1448 zns->netlink_dplane.seq += 2;
1449 else
1450 zns->netlink_dplane.seq++;
1451 #endif /* HAVE_NETLINK */
1452
1453 return AOK;
1454 }
1455
1456 /*
1457 * Initialize a context block for a route update from zebra data structs.
1458 */
1459 static int dplane_ctx_route_init(struct zebra_dplane_ctx *ctx,
1460 enum dplane_op_e op,
1461 struct route_node *rn,
1462 struct route_entry *re)
1463 {
1464 int ret = EINVAL;
1465 const struct route_table *table = NULL;
1466 const rib_table_info_t *info;
1467 const struct prefix *p, *src_p;
1468 struct zebra_ns *zns;
1469 struct zebra_vrf *zvrf;
1470 struct nexthop *nexthop;
1471
1472 if (!ctx || !rn || !re)
1473 goto done;
1474
1475 ctx->zd_op = op;
1476 ctx->zd_status = ZEBRA_DPLANE_REQUEST_SUCCESS;
1477
1478 ctx->u.rinfo.zd_type = re->type;
1479 ctx->u.rinfo.zd_old_type = re->type;
1480
1481 /* Prefixes: dest, and optional source */
1482 srcdest_rnode_prefixes(rn, &p, &src_p);
1483
1484 prefix_copy(&(ctx->u.rinfo.zd_dest), p);
1485
1486 if (src_p)
1487 prefix_copy(&(ctx->u.rinfo.zd_src), src_p);
1488 else
1489 memset(&(ctx->u.rinfo.zd_src), 0, sizeof(ctx->u.rinfo.zd_src));
1490
1491 ctx->zd_table_id = re->table;
1492
1493 ctx->u.rinfo.zd_metric = re->metric;
1494 ctx->u.rinfo.zd_old_metric = re->metric;
1495 ctx->zd_vrf_id = re->vrf_id;
1496 ctx->u.rinfo.zd_mtu = re->mtu;
1497 ctx->u.rinfo.zd_nexthop_mtu = re->nexthop_mtu;
1498 ctx->u.rinfo.zd_instance = re->instance;
1499 ctx->u.rinfo.zd_tag = re->tag;
1500 ctx->u.rinfo.zd_old_tag = re->tag;
1501 ctx->u.rinfo.zd_distance = re->distance;
1502
1503 table = srcdest_rnode_table(rn);
1504 info = table->info;
1505
1506 ctx->u.rinfo.zd_afi = info->afi;
1507 ctx->u.rinfo.zd_safi = info->safi;
1508
1509 /* Copy nexthops; recursive info is included too */
1510 copy_nexthops(&(ctx->u.rinfo.zd_ng.nexthop), re->ng->nexthop, NULL);
1511
1512 /* Ensure that the dplane's nexthops flags are clear. */
1513 for (ALL_NEXTHOPS(ctx->u.rinfo.zd_ng, nexthop))
1514 UNSET_FLAG(nexthop->flags, NEXTHOP_FLAG_FIB);
1515
1516 /* Don't need some info when capturing a system notification */
1517 if (op == DPLANE_OP_SYS_ROUTE_ADD ||
1518 op == DPLANE_OP_SYS_ROUTE_DELETE) {
1519 ret = AOK;
1520 goto done;
1521 }
1522
1523 /* Extract ns info - can't use pointers to 'core' structs */
1524 zvrf = vrf_info_lookup(re->vrf_id);
1525 zns = zvrf->zns;
1526 dplane_ctx_ns_init(ctx, zns, (op == DPLANE_OP_ROUTE_UPDATE));
1527
1528 #ifdef HAVE_NETLINK
1529 if (re->nhe_id) {
1530 struct nhg_hash_entry *nhe =
1531 zebra_nhg_resolve(zebra_nhg_lookup_id(re->nhe_id));
1532
1533 ctx->u.rinfo.nhe.id = nhe->id;
1534 /*
1535 * Check if the nhe is installed/queued before doing anything
1536 * with this route.
1537 */
1538 if (!CHECK_FLAG(nhe->flags, NEXTHOP_GROUP_INSTALLED)
1539 && !CHECK_FLAG(nhe->flags, NEXTHOP_GROUP_QUEUED)) {
1540 ret = ENOENT;
1541 goto done;
1542 }
1543 }
1544 #endif /* HAVE_NETLINK */
1545
1546 /* Trying out the sequence number idea, so we can try to detect
1547 * when a result is stale.
1548 */
1549 re->dplane_sequence = zebra_router_get_next_sequence();
1550 ctx->zd_seq = re->dplane_sequence;
1551
1552 ret = AOK;
1553
1554 done:
1555 return ret;
1556 }
1557
1558 /**
1559 * dplane_ctx_nexthop_init() - Initialize a context block for a nexthop update
1560 *
1561 * @ctx: Dataplane context to init
1562 * @op: Operation being performed
1563 * @nhe: Nexthop group hash entry
1564 *
1565 * Return: Result status
1566 */
1567 static int dplane_ctx_nexthop_init(struct zebra_dplane_ctx *ctx,
1568 enum dplane_op_e op,
1569 struct nhg_hash_entry *nhe)
1570 {
1571 struct zebra_ns *zns = NULL;
1572
1573 int ret = EINVAL;
1574
1575 if (!ctx || !nhe)
1576 goto done;
1577
1578 ctx->zd_op = op;
1579 ctx->zd_status = ZEBRA_DPLANE_REQUEST_SUCCESS;
1580
1581 /* Copy over nhe info */
1582 ctx->u.rinfo.nhe.id = nhe->id;
1583 ctx->u.rinfo.nhe.afi = nhe->afi;
1584 ctx->u.rinfo.nhe.vrf_id = nhe->vrf_id;
1585 ctx->u.rinfo.nhe.type = nhe->type;
1586
1587 nexthop_group_copy(&(ctx->u.rinfo.nhe.ng), nhe->nhg);
1588
1589 /* If its a group, convert it to a grp array of ids */
1590 if (!zebra_nhg_depends_is_empty(nhe)
1591 && !CHECK_FLAG(nhe->flags, NEXTHOP_GROUP_RECURSIVE))
1592 ctx->u.rinfo.nhe.nh_grp_count = zebra_nhg_nhe2grp(
1593 ctx->u.rinfo.nhe.nh_grp, nhe, MULTIPATH_NUM);
1594
1595 zns = ((struct zebra_vrf *)vrf_info_lookup(nhe->vrf_id))->zns;
1596
1597 /*
1598 * TODO: Might not need to mark this as an update, since
1599 * it probably won't require two messages
1600 */
1601 dplane_ctx_ns_init(ctx, zns, (op == DPLANE_OP_NH_UPDATE));
1602
1603 ret = AOK;
1604
1605 done:
1606 return ret;
1607 }
1608
1609 /*
1610 * Capture information for an LSP update in a dplane context.
1611 */
1612 static int dplane_ctx_lsp_init(struct zebra_dplane_ctx *ctx,
1613 enum dplane_op_e op,
1614 zebra_lsp_t *lsp)
1615 {
1616 int ret = AOK;
1617 zebra_nhlfe_t *nhlfe, *new_nhlfe;
1618
1619 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
1620 zlog_debug("init dplane ctx %s: in-label %u ecmp# %d",
1621 dplane_op2str(op), lsp->ile.in_label,
1622 lsp->num_ecmp);
1623
1624 ctx->zd_op = op;
1625 ctx->zd_status = ZEBRA_DPLANE_REQUEST_SUCCESS;
1626
1627 /* Capture namespace info */
1628 dplane_ctx_ns_init(ctx, zebra_ns_lookup(NS_DEFAULT),
1629 (op == DPLANE_OP_LSP_UPDATE));
1630
1631 memset(&ctx->u.lsp, 0, sizeof(ctx->u.lsp));
1632
1633 ctx->u.lsp.ile = lsp->ile;
1634 ctx->u.lsp.addr_family = lsp->addr_family;
1635 ctx->u.lsp.num_ecmp = lsp->num_ecmp;
1636 ctx->u.lsp.flags = lsp->flags;
1637
1638 /* Copy source LSP's nhlfes, and capture 'best' nhlfe */
1639 for (nhlfe = lsp->nhlfe_list; nhlfe; nhlfe = nhlfe->next) {
1640 /* Not sure if this is meaningful... */
1641 if (nhlfe->nexthop == NULL)
1642 continue;
1643
1644 new_nhlfe =
1645 zebra_mpls_lsp_add_nhlfe(
1646 &(ctx->u.lsp),
1647 nhlfe->type,
1648 nhlfe->nexthop->type,
1649 &(nhlfe->nexthop->gate),
1650 nhlfe->nexthop->ifindex,
1651 nhlfe->nexthop->nh_label->label[0]);
1652
1653 if (new_nhlfe == NULL || new_nhlfe->nexthop == NULL) {
1654 ret = ENOMEM;
1655 break;
1656 }
1657
1658 /* Need to copy flags too */
1659 new_nhlfe->flags = nhlfe->flags;
1660 new_nhlfe->nexthop->flags = nhlfe->nexthop->flags;
1661
1662 if (nhlfe == lsp->best_nhlfe)
1663 ctx->u.lsp.best_nhlfe = new_nhlfe;
1664 }
1665
1666 /* On error the ctx will be cleaned-up, so we don't need to
1667 * deal with any allocated nhlfe or nexthop structs here.
1668 */
1669
1670 return ret;
1671 }
1672
1673 /*
1674 * Capture information for an LSP update in a dplane context.
1675 */
1676 static int dplane_ctx_pw_init(struct zebra_dplane_ctx *ctx,
1677 enum dplane_op_e op,
1678 struct zebra_pw *pw)
1679 {
1680 struct prefix p;
1681 afi_t afi;
1682 struct route_table *table;
1683 struct route_node *rn;
1684 struct route_entry *re;
1685
1686 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
1687 zlog_debug("init dplane ctx %s: pw '%s', loc %u, rem %u",
1688 dplane_op2str(op), pw->ifname, pw->local_label,
1689 pw->remote_label);
1690
1691 ctx->zd_op = op;
1692 ctx->zd_status = ZEBRA_DPLANE_REQUEST_SUCCESS;
1693
1694 /* Capture namespace info: no netlink support as of 12/18,
1695 * but just in case...
1696 */
1697 dplane_ctx_ns_init(ctx, zebra_ns_lookup(NS_DEFAULT), false);
1698
1699 memset(&ctx->u.pw, 0, sizeof(ctx->u.pw));
1700
1701 /* This name appears to be c-string, so we use string copy. */
1702 strlcpy(ctx->zd_ifname, pw->ifname, sizeof(ctx->zd_ifname));
1703
1704 ctx->zd_vrf_id = pw->vrf_id;
1705 ctx->zd_ifindex = pw->ifindex;
1706 ctx->u.pw.type = pw->type;
1707 ctx->u.pw.af = pw->af;
1708 ctx->u.pw.local_label = pw->local_label;
1709 ctx->u.pw.remote_label = pw->remote_label;
1710 ctx->u.pw.flags = pw->flags;
1711
1712 ctx->u.pw.dest = pw->nexthop;
1713
1714 ctx->u.pw.fields = pw->data;
1715
1716 /* Capture nexthop info for the pw destination. We need to look
1717 * up and use zebra datastructs, but we're running in the zebra
1718 * pthread here so that should be ok.
1719 */
1720 memcpy(&p.u, &pw->nexthop, sizeof(pw->nexthop));
1721 p.family = pw->af;
1722 p.prefixlen = ((pw->af == AF_INET) ?
1723 IPV4_MAX_PREFIXLEN : IPV6_MAX_PREFIXLEN);
1724
1725 afi = (pw->af == AF_INET) ? AFI_IP : AFI_IP6;
1726 table = zebra_vrf_table(afi, SAFI_UNICAST, pw->vrf_id);
1727 if (table) {
1728 rn = route_node_match(table, &p);
1729 if (rn) {
1730 RNODE_FOREACH_RE(rn, re) {
1731 if (CHECK_FLAG(re->flags, ZEBRA_FLAG_SELECTED))
1732 break;
1733 }
1734
1735 if (re)
1736 copy_nexthops(&(ctx->u.pw.nhg.nexthop),
1737 re->ng->nexthop, NULL);
1738
1739 route_unlock_node(rn);
1740 }
1741 }
1742
1743 return AOK;
1744 }
1745
1746 /*
1747 * Enqueue a new update,
1748 * and ensure an event is active for the dataplane pthread.
1749 */
1750 static int dplane_update_enqueue(struct zebra_dplane_ctx *ctx)
1751 {
1752 int ret = EINVAL;
1753 uint32_t high, curr;
1754
1755 /* Enqueue for processing by the dataplane pthread */
1756 DPLANE_LOCK();
1757 {
1758 TAILQ_INSERT_TAIL(&zdplane_info.dg_update_ctx_q, ctx,
1759 zd_q_entries);
1760 }
1761 DPLANE_UNLOCK();
1762
1763 curr = atomic_add_fetch_explicit(
1764 #ifdef __clang__
1765 /* TODO -- issue with the clang atomic/intrinsics currently;
1766 * casting away the 'Atomic'-ness of the variable works.
1767 */
1768 (uint32_t *)&(zdplane_info.dg_routes_queued),
1769 #else
1770 &(zdplane_info.dg_routes_queued),
1771 #endif
1772 1, memory_order_seq_cst);
1773
1774 /* Maybe update high-water counter also */
1775 high = atomic_load_explicit(&zdplane_info.dg_routes_queued_max,
1776 memory_order_seq_cst);
1777 while (high < curr) {
1778 if (atomic_compare_exchange_weak_explicit(
1779 &zdplane_info.dg_routes_queued_max,
1780 &high, curr,
1781 memory_order_seq_cst,
1782 memory_order_seq_cst))
1783 break;
1784 }
1785
1786 /* Ensure that an event for the dataplane thread is active */
1787 ret = dplane_provider_work_ready();
1788
1789 return ret;
1790 }
1791
1792 /*
1793 * Utility that prepares a route update and enqueues it for processing
1794 */
1795 static enum zebra_dplane_result
1796 dplane_route_update_internal(struct route_node *rn,
1797 struct route_entry *re,
1798 struct route_entry *old_re,
1799 enum dplane_op_e op)
1800 {
1801 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
1802 int ret = EINVAL;
1803 struct zebra_dplane_ctx *ctx = NULL;
1804
1805 /* Obtain context block */
1806 ctx = dplane_ctx_alloc();
1807
1808 /* Init context with info from zebra data structs */
1809 ret = dplane_ctx_route_init(ctx, op, rn, re);
1810 if (ret == AOK) {
1811 /* Capture some extra info for update case
1812 * where there's a different 'old' route.
1813 */
1814 if ((op == DPLANE_OP_ROUTE_UPDATE) &&
1815 old_re && (old_re != re)) {
1816 ctx->zd_is_update = true;
1817
1818 old_re->dplane_sequence =
1819 zebra_router_get_next_sequence();
1820 ctx->zd_old_seq = old_re->dplane_sequence;
1821
1822 ctx->u.rinfo.zd_old_tag = old_re->tag;
1823 ctx->u.rinfo.zd_old_type = old_re->type;
1824 ctx->u.rinfo.zd_old_instance = old_re->instance;
1825 ctx->u.rinfo.zd_old_distance = old_re->distance;
1826 ctx->u.rinfo.zd_old_metric = old_re->metric;
1827
1828 #ifndef HAVE_NETLINK
1829 /* For bsd, capture previous re's nexthops too, sigh.
1830 * We'll need these to do per-nexthop deletes.
1831 */
1832 copy_nexthops(&(ctx->u.rinfo.zd_old_ng.nexthop),
1833 old_re->ng.nexthop, NULL);
1834 #endif /* !HAVE_NETLINK */
1835 }
1836
1837 /* Enqueue context for processing */
1838 ret = dplane_update_enqueue(ctx);
1839 }
1840
1841 /* Update counter */
1842 atomic_fetch_add_explicit(&zdplane_info.dg_routes_in, 1,
1843 memory_order_relaxed);
1844
1845 if (ret == AOK)
1846 result = ZEBRA_DPLANE_REQUEST_QUEUED;
1847 else {
1848 if (ret == ENOENT)
1849 result = ZEBRA_DPLANE_REQUEST_SUCCESS;
1850 else
1851 atomic_fetch_add_explicit(&zdplane_info.dg_route_errors,
1852 1, memory_order_relaxed);
1853 if (ctx)
1854 dplane_ctx_free(&ctx);
1855 }
1856
1857 return result;
1858 }
1859
1860 /**
1861 * dplane_nexthop_update_internal() - Helper for enqueuing nexthop changes
1862 *
1863 * @nhe: Nexthop group hash entry where the change occured
1864 * @op: The operation to be enqued
1865 *
1866 * Return: Result of the change
1867 */
1868 static enum zebra_dplane_result
1869 dplane_nexthop_update_internal(struct nhg_hash_entry *nhe, enum dplane_op_e op)
1870 {
1871 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
1872 int ret = EINVAL;
1873 struct zebra_dplane_ctx *ctx = NULL;
1874
1875 /* Obtain context block */
1876 ctx = dplane_ctx_alloc();
1877 if (!ctx) {
1878 ret = ENOMEM;
1879 goto done;
1880 }
1881
1882 ret = dplane_ctx_nexthop_init(ctx, op, nhe);
1883 if (ret == AOK)
1884 ret = dplane_update_enqueue(ctx);
1885
1886 done:
1887 /* Update counter */
1888 atomic_fetch_add_explicit(&zdplane_info.dg_nexthops_in, 1,
1889 memory_order_relaxed);
1890
1891 if (ret == AOK)
1892 result = ZEBRA_DPLANE_REQUEST_QUEUED;
1893 else {
1894 atomic_fetch_add_explicit(&zdplane_info.dg_nexthop_errors, 1,
1895 memory_order_relaxed);
1896 if (ctx)
1897 dplane_ctx_free(&ctx);
1898 }
1899
1900 return result;
1901 }
1902
1903 /*
1904 * Enqueue a route 'add' for the dataplane.
1905 */
1906 enum zebra_dplane_result dplane_route_add(struct route_node *rn,
1907 struct route_entry *re)
1908 {
1909 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
1910
1911 if (rn == NULL || re == NULL)
1912 goto done;
1913
1914 ret = dplane_route_update_internal(rn, re, NULL,
1915 DPLANE_OP_ROUTE_INSTALL);
1916
1917 done:
1918 return ret;
1919 }
1920
1921 /*
1922 * Enqueue a route update for the dataplane.
1923 */
1924 enum zebra_dplane_result dplane_route_update(struct route_node *rn,
1925 struct route_entry *re,
1926 struct route_entry *old_re)
1927 {
1928 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
1929
1930 if (rn == NULL || re == NULL)
1931 goto done;
1932
1933 ret = dplane_route_update_internal(rn, re, old_re,
1934 DPLANE_OP_ROUTE_UPDATE);
1935 done:
1936 return ret;
1937 }
1938
1939 /*
1940 * Enqueue a route removal for the dataplane.
1941 */
1942 enum zebra_dplane_result dplane_route_delete(struct route_node *rn,
1943 struct route_entry *re)
1944 {
1945 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
1946
1947 if (rn == NULL || re == NULL)
1948 goto done;
1949
1950 ret = dplane_route_update_internal(rn, re, NULL,
1951 DPLANE_OP_ROUTE_DELETE);
1952
1953 done:
1954 return ret;
1955 }
1956
1957 /*
1958 * Notify the dplane when system/connected routes change.
1959 */
1960 enum zebra_dplane_result dplane_sys_route_add(struct route_node *rn,
1961 struct route_entry *re)
1962 {
1963 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
1964
1965 /* Ignore this event unless a provider plugin has requested it. */
1966 if (!zdplane_info.dg_sys_route_notifs) {
1967 ret = ZEBRA_DPLANE_REQUEST_SUCCESS;
1968 goto done;
1969 }
1970
1971 if (rn == NULL || re == NULL)
1972 goto done;
1973
1974 ret = dplane_route_update_internal(rn, re, NULL,
1975 DPLANE_OP_SYS_ROUTE_ADD);
1976
1977 done:
1978 return ret;
1979 }
1980
1981 /*
1982 * Notify the dplane when system/connected routes are deleted.
1983 */
1984 enum zebra_dplane_result dplane_sys_route_del(struct route_node *rn,
1985 struct route_entry *re)
1986 {
1987 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
1988
1989 /* Ignore this event unless a provider plugin has requested it. */
1990 if (!zdplane_info.dg_sys_route_notifs) {
1991 ret = ZEBRA_DPLANE_REQUEST_SUCCESS;
1992 goto done;
1993 }
1994
1995 if (rn == NULL || re == NULL)
1996 goto done;
1997
1998 ret = dplane_route_update_internal(rn, re, NULL,
1999 DPLANE_OP_SYS_ROUTE_DELETE);
2000
2001 done:
2002 return ret;
2003 }
2004
2005 /*
2006 * Update from an async notification, to bring other fibs up-to-date.
2007 */
2008 enum zebra_dplane_result
2009 dplane_route_notif_update(struct route_node *rn,
2010 struct route_entry *re,
2011 enum dplane_op_e op,
2012 struct zebra_dplane_ctx *ctx)
2013 {
2014 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
2015 struct zebra_dplane_ctx *new_ctx = NULL;
2016 struct nexthop *nexthop;
2017
2018 if (rn == NULL || re == NULL)
2019 goto done;
2020
2021 new_ctx = dplane_ctx_alloc();
2022 if (new_ctx == NULL)
2023 goto done;
2024
2025 /* Init context with info from zebra data structs */
2026 dplane_ctx_route_init(new_ctx, op, rn, re);
2027
2028 /* For add/update, need to adjust the nexthops so that we match
2029 * the notification state, which may not be the route-entry/RIB
2030 * state.
2031 */
2032 if (op == DPLANE_OP_ROUTE_UPDATE ||
2033 op == DPLANE_OP_ROUTE_INSTALL) {
2034
2035 nexthops_free(new_ctx->u.rinfo.zd_ng.nexthop);
2036 new_ctx->u.rinfo.zd_ng.nexthop = NULL;
2037
2038 copy_nexthops(&(new_ctx->u.rinfo.zd_ng.nexthop),
2039 (rib_active_nhg(re))->nexthop, NULL);
2040
2041 for (ALL_NEXTHOPS(new_ctx->u.rinfo.zd_ng, nexthop))
2042 UNSET_FLAG(nexthop->flags, NEXTHOP_FLAG_FIB);
2043
2044 }
2045
2046 /* Capture info about the source of the notification, in 'ctx' */
2047 dplane_ctx_set_notif_provider(new_ctx,
2048 dplane_ctx_get_notif_provider(ctx));
2049
2050 dplane_update_enqueue(new_ctx);
2051
2052 ret = ZEBRA_DPLANE_REQUEST_QUEUED;
2053
2054 done:
2055 return ret;
2056 }
2057
2058 /*
2059 * Enqueue a nexthop add for the dataplane.
2060 */
2061 enum zebra_dplane_result dplane_nexthop_add(struct nhg_hash_entry *nhe)
2062 {
2063 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
2064
2065 if (nhe)
2066 ret = dplane_nexthop_update_internal(nhe, DPLANE_OP_NH_INSTALL);
2067 return ret;
2068 }
2069
2070 /*
2071 * Enqueue a nexthop update for the dataplane.
2072 *
2073 * Might not need this func since zebra's nexthop objects should be immutable?
2074 */
2075 enum zebra_dplane_result dplane_nexthop_update(struct nhg_hash_entry *nhe)
2076 {
2077 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
2078
2079 if (nhe)
2080 ret = dplane_nexthop_update_internal(nhe, DPLANE_OP_NH_UPDATE);
2081 return ret;
2082 }
2083
2084 /*
2085 * Enqueue a nexthop removal for the dataplane.
2086 */
2087 enum zebra_dplane_result dplane_nexthop_delete(struct nhg_hash_entry *nhe)
2088 {
2089 enum zebra_dplane_result ret = ZEBRA_DPLANE_REQUEST_FAILURE;
2090
2091 if (nhe)
2092 ret = dplane_nexthop_update_internal(nhe, DPLANE_OP_NH_DELETE);
2093
2094 return ret;
2095 }
2096
2097 /*
2098 * Enqueue LSP add for the dataplane.
2099 */
2100 enum zebra_dplane_result dplane_lsp_add(zebra_lsp_t *lsp)
2101 {
2102 enum zebra_dplane_result ret =
2103 lsp_update_internal(lsp, DPLANE_OP_LSP_INSTALL);
2104
2105 return ret;
2106 }
2107
2108 /*
2109 * Enqueue LSP update for the dataplane.
2110 */
2111 enum zebra_dplane_result dplane_lsp_update(zebra_lsp_t *lsp)
2112 {
2113 enum zebra_dplane_result ret =
2114 lsp_update_internal(lsp, DPLANE_OP_LSP_UPDATE);
2115
2116 return ret;
2117 }
2118
2119 /*
2120 * Enqueue LSP delete for the dataplane.
2121 */
2122 enum zebra_dplane_result dplane_lsp_delete(zebra_lsp_t *lsp)
2123 {
2124 enum zebra_dplane_result ret =
2125 lsp_update_internal(lsp, DPLANE_OP_LSP_DELETE);
2126
2127 return ret;
2128 }
2129
2130 /* Update or un-install resulting from an async notification */
2131 enum zebra_dplane_result
2132 dplane_lsp_notif_update(zebra_lsp_t *lsp,
2133 enum dplane_op_e op,
2134 struct zebra_dplane_ctx *notif_ctx)
2135 {
2136 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
2137 int ret = EINVAL;
2138 struct zebra_dplane_ctx *ctx = NULL;
2139
2140 /* Obtain context block */
2141 ctx = dplane_ctx_alloc();
2142 if (ctx == NULL) {
2143 ret = ENOMEM;
2144 goto done;
2145 }
2146
2147 ret = dplane_ctx_lsp_init(ctx, op, lsp);
2148 if (ret != AOK)
2149 goto done;
2150
2151 /* Capture info about the source of the notification */
2152 dplane_ctx_set_notif_provider(
2153 ctx,
2154 dplane_ctx_get_notif_provider(notif_ctx));
2155
2156 ret = dplane_update_enqueue(ctx);
2157
2158 done:
2159 /* Update counter */
2160 atomic_fetch_add_explicit(&zdplane_info.dg_lsps_in, 1,
2161 memory_order_relaxed);
2162
2163 if (ret == AOK)
2164 result = ZEBRA_DPLANE_REQUEST_QUEUED;
2165 else {
2166 atomic_fetch_add_explicit(&zdplane_info.dg_lsp_errors, 1,
2167 memory_order_relaxed);
2168 if (ctx)
2169 dplane_ctx_free(&ctx);
2170 }
2171 return result;
2172 }
2173
2174 /*
2175 * Enqueue pseudowire install for the dataplane.
2176 */
2177 enum zebra_dplane_result dplane_pw_install(struct zebra_pw *pw)
2178 {
2179 return pw_update_internal(pw, DPLANE_OP_PW_INSTALL);
2180 }
2181
2182 /*
2183 * Enqueue pseudowire un-install for the dataplane.
2184 */
2185 enum zebra_dplane_result dplane_pw_uninstall(struct zebra_pw *pw)
2186 {
2187 return pw_update_internal(pw, DPLANE_OP_PW_UNINSTALL);
2188 }
2189
2190 /*
2191 * Common internal LSP update utility
2192 */
2193 static enum zebra_dplane_result lsp_update_internal(zebra_lsp_t *lsp,
2194 enum dplane_op_e op)
2195 {
2196 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
2197 int ret = EINVAL;
2198 struct zebra_dplane_ctx *ctx = NULL;
2199
2200 /* Obtain context block */
2201 ctx = dplane_ctx_alloc();
2202
2203 ret = dplane_ctx_lsp_init(ctx, op, lsp);
2204 if (ret != AOK)
2205 goto done;
2206
2207 ret = dplane_update_enqueue(ctx);
2208
2209 done:
2210 /* Update counter */
2211 atomic_fetch_add_explicit(&zdplane_info.dg_lsps_in, 1,
2212 memory_order_relaxed);
2213
2214 if (ret == AOK)
2215 result = ZEBRA_DPLANE_REQUEST_QUEUED;
2216 else {
2217 atomic_fetch_add_explicit(&zdplane_info.dg_lsp_errors, 1,
2218 memory_order_relaxed);
2219 dplane_ctx_free(&ctx);
2220 }
2221
2222 return result;
2223 }
2224
2225 /*
2226 * Internal, common handler for pseudowire updates.
2227 */
2228 static enum zebra_dplane_result pw_update_internal(struct zebra_pw *pw,
2229 enum dplane_op_e op)
2230 {
2231 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
2232 int ret;
2233 struct zebra_dplane_ctx *ctx = NULL;
2234
2235 ctx = dplane_ctx_alloc();
2236
2237 ret = dplane_ctx_pw_init(ctx, op, pw);
2238 if (ret != AOK)
2239 goto done;
2240
2241 ret = dplane_update_enqueue(ctx);
2242
2243 done:
2244 /* Update counter */
2245 atomic_fetch_add_explicit(&zdplane_info.dg_pws_in, 1,
2246 memory_order_relaxed);
2247
2248 if (ret == AOK)
2249 result = ZEBRA_DPLANE_REQUEST_QUEUED;
2250 else {
2251 atomic_fetch_add_explicit(&zdplane_info.dg_pw_errors, 1,
2252 memory_order_relaxed);
2253 dplane_ctx_free(&ctx);
2254 }
2255
2256 return result;
2257 }
2258
2259 /*
2260 * Enqueue interface address add for the dataplane.
2261 */
2262 enum zebra_dplane_result dplane_intf_addr_set(const struct interface *ifp,
2263 const struct connected *ifc)
2264 {
2265 #if !defined(HAVE_NETLINK) && defined(HAVE_STRUCT_IFALIASREQ)
2266 /* Extra checks for this OS path. */
2267
2268 /* Don't configure PtP addresses on broadcast ifs or reverse */
2269 if (!(ifp->flags & IFF_POINTOPOINT) != !CONNECTED_PEER(ifc)) {
2270 if (IS_ZEBRA_DEBUG_KERNEL || IS_ZEBRA_DEBUG_DPLANE)
2271 zlog_debug("Failed to set intf addr: mismatch p2p and connected");
2272
2273 return ZEBRA_DPLANE_REQUEST_FAILURE;
2274 }
2275
2276 /* Ensure that no existing installed v4 route conflicts with
2277 * the new interface prefix. This check must be done in the
2278 * zebra pthread context, and any route delete (if needed)
2279 * is enqueued before the interface address programming attempt.
2280 */
2281 if (ifc->address->family == AF_INET) {
2282 struct prefix_ipv4 *p;
2283
2284 p = (struct prefix_ipv4 *)ifc->address;
2285 rib_lookup_and_pushup(p, ifp->vrf_id);
2286 }
2287 #endif
2288
2289 return intf_addr_update_internal(ifp, ifc, DPLANE_OP_ADDR_INSTALL);
2290 }
2291
2292 /*
2293 * Enqueue interface address remove/uninstall for the dataplane.
2294 */
2295 enum zebra_dplane_result dplane_intf_addr_unset(const struct interface *ifp,
2296 const struct connected *ifc)
2297 {
2298 return intf_addr_update_internal(ifp, ifc, DPLANE_OP_ADDR_UNINSTALL);
2299 }
2300
2301 static enum zebra_dplane_result intf_addr_update_internal(
2302 const struct interface *ifp, const struct connected *ifc,
2303 enum dplane_op_e op)
2304 {
2305 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
2306 int ret = EINVAL;
2307 struct zebra_dplane_ctx *ctx = NULL;
2308 struct zebra_ns *zns;
2309
2310 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL) {
2311 char addr_str[PREFIX_STRLEN];
2312
2313 prefix2str(ifc->address, addr_str, sizeof(addr_str));
2314
2315 zlog_debug("init intf ctx %s: idx %d, addr %u:%s",
2316 dplane_op2str(op), ifp->ifindex, ifp->vrf_id,
2317 addr_str);
2318 }
2319
2320 ctx = dplane_ctx_alloc();
2321
2322 ctx->zd_op = op;
2323 ctx->zd_status = ZEBRA_DPLANE_REQUEST_SUCCESS;
2324 ctx->zd_vrf_id = ifp->vrf_id;
2325
2326 zns = zebra_ns_lookup(ifp->vrf_id);
2327 dplane_ctx_ns_init(ctx, zns, false);
2328
2329 /* Init the interface-addr-specific area */
2330 memset(&ctx->u.intf, 0, sizeof(ctx->u.intf));
2331
2332 strlcpy(ctx->zd_ifname, ifp->name, sizeof(ctx->zd_ifname));
2333 ctx->zd_ifindex = ifp->ifindex;
2334 ctx->u.intf.prefix = *(ifc->address);
2335
2336 if (if_is_broadcast(ifp))
2337 ctx->u.intf.flags |= DPLANE_INTF_BROADCAST;
2338
2339 if (CONNECTED_PEER(ifc)) {
2340 ctx->u.intf.dest_prefix = *(ifc->destination);
2341 ctx->u.intf.flags |=
2342 (DPLANE_INTF_CONNECTED | DPLANE_INTF_HAS_DEST);
2343 }
2344
2345 if (CHECK_FLAG(ifc->flags, ZEBRA_IFA_SECONDARY))
2346 ctx->u.intf.flags |= DPLANE_INTF_SECONDARY;
2347
2348 if (ifc->label) {
2349 size_t len;
2350
2351 ctx->u.intf.flags |= DPLANE_INTF_HAS_LABEL;
2352
2353 /* Use embedded buffer if it's adequate; else allocate. */
2354 len = strlen(ifc->label);
2355
2356 if (len < sizeof(ctx->u.intf.label_buf)) {
2357 strlcpy(ctx->u.intf.label_buf, ifc->label,
2358 sizeof(ctx->u.intf.label_buf));
2359 ctx->u.intf.label = ctx->u.intf.label_buf;
2360 } else {
2361 ctx->u.intf.label = strdup(ifc->label);
2362 }
2363 }
2364
2365 ret = dplane_update_enqueue(ctx);
2366
2367 /* Increment counter */
2368 atomic_fetch_add_explicit(&zdplane_info.dg_intf_addrs_in, 1,
2369 memory_order_relaxed);
2370
2371 if (ret == AOK)
2372 result = ZEBRA_DPLANE_REQUEST_QUEUED;
2373 else {
2374 /* Error counter */
2375 atomic_fetch_add_explicit(&zdplane_info.dg_intf_addr_errors,
2376 1, memory_order_relaxed);
2377 dplane_ctx_free(&ctx);
2378 }
2379
2380 return result;
2381 }
2382
2383 /*
2384 * Enqueue vxlan/evpn mac add (or update).
2385 */
2386 enum zebra_dplane_result dplane_mac_add(const struct interface *ifp,
2387 const struct interface *bridge_ifp,
2388 vlanid_t vid,
2389 const struct ethaddr *mac,
2390 struct in_addr vtep_ip,
2391 bool sticky)
2392 {
2393 enum zebra_dplane_result result;
2394
2395 /* Use common helper api */
2396 result = mac_update_internal(DPLANE_OP_MAC_INSTALL, ifp, bridge_ifp,
2397 vid, mac, vtep_ip, sticky);
2398 return result;
2399 }
2400
2401 /*
2402 * Enqueue vxlan/evpn mac delete.
2403 */
2404 enum zebra_dplane_result dplane_mac_del(const struct interface *ifp,
2405 const struct interface *bridge_ifp,
2406 vlanid_t vid,
2407 const struct ethaddr *mac,
2408 struct in_addr vtep_ip)
2409 {
2410 enum zebra_dplane_result result;
2411
2412 /* Use common helper api */
2413 result = mac_update_internal(DPLANE_OP_MAC_DELETE, ifp, bridge_ifp,
2414 vid, mac, vtep_ip, false);
2415 return result;
2416 }
2417
2418 /*
2419 * Common helper api for MAC address/vxlan updates
2420 */
2421 static enum zebra_dplane_result
2422 mac_update_internal(enum dplane_op_e op,
2423 const struct interface *ifp,
2424 const struct interface *br_ifp,
2425 vlanid_t vid,
2426 const struct ethaddr *mac,
2427 struct in_addr vtep_ip,
2428 bool sticky)
2429 {
2430 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
2431 int ret;
2432 struct zebra_dplane_ctx *ctx = NULL;
2433 struct zebra_ns *zns;
2434
2435 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL) {
2436 char buf1[ETHER_ADDR_STRLEN], buf2[PREFIX_STRLEN];
2437
2438 zlog_debug("init mac ctx %s: mac %s, ifp %s, vtep %s",
2439 dplane_op2str(op),
2440 prefix_mac2str(mac, buf1, sizeof(buf1)),
2441 ifp->name,
2442 inet_ntop(AF_INET, &vtep_ip, buf2, sizeof(buf2)));
2443 }
2444
2445 ctx = dplane_ctx_alloc();
2446
2447 ctx->zd_op = op;
2448 ctx->zd_status = ZEBRA_DPLANE_REQUEST_SUCCESS;
2449 ctx->zd_vrf_id = ifp->vrf_id;
2450
2451 zns = zebra_ns_lookup(ifp->vrf_id);
2452 dplane_ctx_ns_init(ctx, zns, false);
2453
2454 strlcpy(ctx->zd_ifname, ifp->name, sizeof(ctx->zd_ifname));
2455 ctx->zd_ifindex = ifp->ifindex;
2456
2457 /* Init the mac-specific data area */
2458 memset(&ctx->u.macinfo, 0, sizeof(ctx->u.macinfo));
2459
2460 ctx->u.macinfo.br_ifindex = br_ifp->ifindex;
2461 ctx->u.macinfo.vtep_ip = vtep_ip;
2462 ctx->u.macinfo.mac = *mac;
2463 ctx->u.macinfo.vid = vid;
2464 ctx->u.macinfo.is_sticky = sticky;
2465
2466 /* Enqueue for processing on the dplane pthread */
2467 ret = dplane_update_enqueue(ctx);
2468
2469 /* Increment counter */
2470 atomic_fetch_add_explicit(&zdplane_info.dg_macs_in, 1,
2471 memory_order_relaxed);
2472
2473 if (ret == AOK)
2474 result = ZEBRA_DPLANE_REQUEST_QUEUED;
2475 else {
2476 /* Error counter */
2477 atomic_fetch_add_explicit(&zdplane_info.dg_mac_errors, 1,
2478 memory_order_relaxed);
2479 dplane_ctx_free(&ctx);
2480 }
2481
2482 return result;
2483 }
2484
2485 /*
2486 * Enqueue evpn neighbor add for the dataplane.
2487 */
2488 enum zebra_dplane_result dplane_neigh_add(const struct interface *ifp,
2489 const struct ipaddr *ip,
2490 const struct ethaddr *mac,
2491 uint32_t flags)
2492 {
2493 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
2494
2495 result = neigh_update_internal(DPLANE_OP_NEIGH_INSTALL,
2496 ifp, mac, ip, flags, 0);
2497
2498 return result;
2499 }
2500
2501 /*
2502 * Enqueue evpn neighbor update for the dataplane.
2503 */
2504 enum zebra_dplane_result dplane_neigh_update(const struct interface *ifp,
2505 const struct ipaddr *ip,
2506 const struct ethaddr *mac)
2507 {
2508 enum zebra_dplane_result result;
2509
2510 result = neigh_update_internal(DPLANE_OP_NEIGH_UPDATE,
2511 ifp, mac, ip, 0, DPLANE_NUD_PROBE);
2512
2513 return result;
2514 }
2515
2516 /*
2517 * Enqueue evpn neighbor delete for the dataplane.
2518 */
2519 enum zebra_dplane_result dplane_neigh_delete(const struct interface *ifp,
2520 const struct ipaddr *ip)
2521 {
2522 enum zebra_dplane_result result;
2523
2524 result = neigh_update_internal(DPLANE_OP_NEIGH_DELETE,
2525 ifp, NULL, ip, 0, 0);
2526
2527 return result;
2528 }
2529
2530 /*
2531 * Enqueue evpn VTEP add for the dataplane.
2532 */
2533 enum zebra_dplane_result dplane_vtep_add(const struct interface *ifp,
2534 const struct in_addr *ip,
2535 vni_t vni)
2536 {
2537 enum zebra_dplane_result result;
2538 struct ethaddr mac = { {0, 0, 0, 0, 0, 0} };
2539 struct ipaddr addr;
2540
2541 if (IS_ZEBRA_DEBUG_VXLAN)
2542 zlog_debug("Install %s into flood list for VNI %u intf %s(%u)",
2543 inet_ntoa(*ip), vni, ifp->name, ifp->ifindex);
2544
2545 SET_IPADDR_V4(&addr);
2546 addr.ipaddr_v4 = *ip;
2547
2548 result = neigh_update_internal(DPLANE_OP_VTEP_ADD,
2549 ifp, &mac, &addr, 0, 0);
2550
2551 return result;
2552 }
2553
2554 /*
2555 * Enqueue evpn VTEP add for the dataplane.
2556 */
2557 enum zebra_dplane_result dplane_vtep_delete(const struct interface *ifp,
2558 const struct in_addr *ip,
2559 vni_t vni)
2560 {
2561 enum zebra_dplane_result result;
2562 struct ethaddr mac = { {0, 0, 0, 0, 0, 0} };
2563 struct ipaddr addr;
2564
2565 if (IS_ZEBRA_DEBUG_VXLAN)
2566 zlog_debug(
2567 "Uninstall %s from flood list for VNI %u intf %s(%u)",
2568 inet_ntoa(*ip), vni, ifp->name, ifp->ifindex);
2569
2570 SET_IPADDR_V4(&addr);
2571 addr.ipaddr_v4 = *ip;
2572
2573 result = neigh_update_internal(DPLANE_OP_VTEP_DELETE,
2574 ifp, &mac, &addr, 0, 0);
2575
2576 return result;
2577 }
2578
2579 /*
2580 * Common helper api for evpn neighbor updates
2581 */
2582 static enum zebra_dplane_result
2583 neigh_update_internal(enum dplane_op_e op,
2584 const struct interface *ifp,
2585 const struct ethaddr *mac,
2586 const struct ipaddr *ip,
2587 uint32_t flags, uint16_t state)
2588 {
2589 enum zebra_dplane_result result = ZEBRA_DPLANE_REQUEST_FAILURE;
2590 int ret;
2591 struct zebra_dplane_ctx *ctx = NULL;
2592 struct zebra_ns *zns;
2593
2594 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL) {
2595 char buf1[ETHER_ADDR_STRLEN], buf2[PREFIX_STRLEN];
2596
2597 zlog_debug("init neigh ctx %s: ifp %s, mac %s, ip %s",
2598 dplane_op2str(op),
2599 prefix_mac2str(mac, buf1, sizeof(buf1)),
2600 ifp->name,
2601 ipaddr2str(ip, buf2, sizeof(buf2)));
2602 }
2603
2604 ctx = dplane_ctx_alloc();
2605
2606 ctx->zd_op = op;
2607 ctx->zd_status = ZEBRA_DPLANE_REQUEST_SUCCESS;
2608 ctx->zd_vrf_id = ifp->vrf_id;
2609
2610 zns = zebra_ns_lookup(ifp->vrf_id);
2611 dplane_ctx_ns_init(ctx, zns, false);
2612
2613 strlcpy(ctx->zd_ifname, ifp->name, sizeof(ctx->zd_ifname));
2614 ctx->zd_ifindex = ifp->ifindex;
2615
2616 /* Init the neighbor-specific data area */
2617 memset(&ctx->u.neigh, 0, sizeof(ctx->u.neigh));
2618
2619 ctx->u.neigh.ip_addr = *ip;
2620 if (mac)
2621 ctx->u.neigh.mac = *mac;
2622 ctx->u.neigh.flags = flags;
2623 ctx->u.neigh.state = state;
2624
2625 /* Enqueue for processing on the dplane pthread */
2626 ret = dplane_update_enqueue(ctx);
2627
2628 /* Increment counter */
2629 atomic_fetch_add_explicit(&zdplane_info.dg_neighs_in, 1,
2630 memory_order_relaxed);
2631
2632 if (ret == AOK)
2633 result = ZEBRA_DPLANE_REQUEST_QUEUED;
2634 else {
2635 /* Error counter */
2636 atomic_fetch_add_explicit(&zdplane_info.dg_neigh_errors, 1,
2637 memory_order_relaxed);
2638 dplane_ctx_free(&ctx);
2639 }
2640
2641 return result;
2642 }
2643
2644 /*
2645 * Handler for 'show dplane'
2646 */
2647 int dplane_show_helper(struct vty *vty, bool detailed)
2648 {
2649 uint64_t queued, queue_max, limit, errs, incoming, yields,
2650 other_errs;
2651
2652 /* Using atomics because counters are being changed in different
2653 * pthread contexts.
2654 */
2655 incoming = atomic_load_explicit(&zdplane_info.dg_routes_in,
2656 memory_order_relaxed);
2657 limit = atomic_load_explicit(&zdplane_info.dg_max_queued_updates,
2658 memory_order_relaxed);
2659 queued = atomic_load_explicit(&zdplane_info.dg_routes_queued,
2660 memory_order_relaxed);
2661 queue_max = atomic_load_explicit(&zdplane_info.dg_routes_queued_max,
2662 memory_order_relaxed);
2663 errs = atomic_load_explicit(&zdplane_info.dg_route_errors,
2664 memory_order_relaxed);
2665 yields = atomic_load_explicit(&zdplane_info.dg_update_yields,
2666 memory_order_relaxed);
2667 other_errs = atomic_load_explicit(&zdplane_info.dg_other_errors,
2668 memory_order_relaxed);
2669
2670 vty_out(vty, "Zebra dataplane:\nRoute updates: %"PRIu64"\n",
2671 incoming);
2672 vty_out(vty, "Route update errors: %"PRIu64"\n", errs);
2673 vty_out(vty, "Other errors : %"PRIu64"\n", other_errs);
2674 vty_out(vty, "Route update queue limit: %"PRIu64"\n", limit);
2675 vty_out(vty, "Route update queue depth: %"PRIu64"\n", queued);
2676 vty_out(vty, "Route update queue max: %"PRIu64"\n", queue_max);
2677 vty_out(vty, "Dplane update yields: %"PRIu64"\n", yields);
2678
2679 incoming = atomic_load_explicit(&zdplane_info.dg_lsps_in,
2680 memory_order_relaxed);
2681 errs = atomic_load_explicit(&zdplane_info.dg_lsp_errors,
2682 memory_order_relaxed);
2683 vty_out(vty, "LSP updates: %"PRIu64"\n", incoming);
2684 vty_out(vty, "LSP update errors: %"PRIu64"\n", errs);
2685
2686 incoming = atomic_load_explicit(&zdplane_info.dg_pws_in,
2687 memory_order_relaxed);
2688 errs = atomic_load_explicit(&zdplane_info.dg_pw_errors,
2689 memory_order_relaxed);
2690 vty_out(vty, "PW updates: %"PRIu64"\n", incoming);
2691 vty_out(vty, "PW update errors: %"PRIu64"\n", errs);
2692
2693 incoming = atomic_load_explicit(&zdplane_info.dg_intf_addrs_in,
2694 memory_order_relaxed);
2695 errs = atomic_load_explicit(&zdplane_info.dg_intf_addr_errors,
2696 memory_order_relaxed);
2697 vty_out(vty, "Intf addr updates: %"PRIu64"\n", incoming);
2698 vty_out(vty, "Intf addr errors: %"PRIu64"\n", errs);
2699
2700 incoming = atomic_load_explicit(&zdplane_info.dg_macs_in,
2701 memory_order_relaxed);
2702 errs = atomic_load_explicit(&zdplane_info.dg_mac_errors,
2703 memory_order_relaxed);
2704 vty_out(vty, "EVPN MAC updates: %"PRIu64"\n", incoming);
2705 vty_out(vty, "EVPN MAC errors: %"PRIu64"\n", errs);
2706
2707 incoming = atomic_load_explicit(&zdplane_info.dg_neighs_in,
2708 memory_order_relaxed);
2709 errs = atomic_load_explicit(&zdplane_info.dg_neigh_errors,
2710 memory_order_relaxed);
2711 vty_out(vty, "EVPN neigh updates: %"PRIu64"\n", incoming);
2712 vty_out(vty, "EVPN neigh errors: %"PRIu64"\n", errs);
2713
2714 return CMD_SUCCESS;
2715 }
2716
2717 /*
2718 * Handler for 'show dplane providers'
2719 */
2720 int dplane_show_provs_helper(struct vty *vty, bool detailed)
2721 {
2722 struct zebra_dplane_provider *prov;
2723 uint64_t in, in_max, out, out_max;
2724
2725 vty_out(vty, "Zebra dataplane providers:\n");
2726
2727 DPLANE_LOCK();
2728 prov = TAILQ_FIRST(&zdplane_info.dg_providers_q);
2729 DPLANE_UNLOCK();
2730
2731 /* Show counters, useful info from each registered provider */
2732 while (prov) {
2733
2734 in = atomic_load_explicit(&prov->dp_in_counter,
2735 memory_order_relaxed);
2736 in_max = atomic_load_explicit(&prov->dp_in_max,
2737 memory_order_relaxed);
2738 out = atomic_load_explicit(&prov->dp_out_counter,
2739 memory_order_relaxed);
2740 out_max = atomic_load_explicit(&prov->dp_out_max,
2741 memory_order_relaxed);
2742
2743 vty_out(vty, "%s (%u): in: %"PRIu64", q_max: %"PRIu64", "
2744 "out: %"PRIu64", q_max: %"PRIu64"\n",
2745 prov->dp_name, prov->dp_id, in, in_max, out, out_max);
2746
2747 DPLANE_LOCK();
2748 prov = TAILQ_NEXT(prov, dp_prov_link);
2749 DPLANE_UNLOCK();
2750 }
2751
2752 return CMD_SUCCESS;
2753 }
2754
2755 /*
2756 * Helper for 'show run' etc.
2757 */
2758 int dplane_config_write_helper(struct vty *vty)
2759 {
2760 if (zdplane_info.dg_max_queued_updates != DPLANE_DEFAULT_MAX_QUEUED)
2761 vty_out(vty, "zebra dplane limit %u\n",
2762 zdplane_info.dg_max_queued_updates);
2763
2764 return 0;
2765 }
2766
2767 /*
2768 * Provider registration
2769 */
2770 int dplane_provider_register(const char *name,
2771 enum dplane_provider_prio prio,
2772 int flags,
2773 int (*start_fp)(struct zebra_dplane_provider *),
2774 int (*fp)(struct zebra_dplane_provider *),
2775 int (*fini_fp)(struct zebra_dplane_provider *,
2776 bool early),
2777 void *data,
2778 struct zebra_dplane_provider **prov_p)
2779 {
2780 int ret = 0;
2781 struct zebra_dplane_provider *p = NULL, *last;
2782
2783 /* Validate */
2784 if (fp == NULL) {
2785 ret = EINVAL;
2786 goto done;
2787 }
2788
2789 if (prio <= DPLANE_PRIO_NONE ||
2790 prio > DPLANE_PRIO_LAST) {
2791 ret = EINVAL;
2792 goto done;
2793 }
2794
2795 /* Allocate and init new provider struct */
2796 p = XCALLOC(MTYPE_DP_PROV, sizeof(struct zebra_dplane_provider));
2797
2798 pthread_mutex_init(&(p->dp_mutex), NULL);
2799 TAILQ_INIT(&(p->dp_ctx_in_q));
2800 TAILQ_INIT(&(p->dp_ctx_out_q));
2801
2802 p->dp_priority = prio;
2803 p->dp_fp = fp;
2804 p->dp_start = start_fp;
2805 p->dp_fini = fini_fp;
2806 p->dp_data = data;
2807
2808 /* Lock - the dplane pthread may be running */
2809 DPLANE_LOCK();
2810
2811 p->dp_id = ++zdplane_info.dg_provider_id;
2812
2813 if (name)
2814 strlcpy(p->dp_name, name, DPLANE_PROVIDER_NAMELEN);
2815 else
2816 snprintf(p->dp_name, DPLANE_PROVIDER_NAMELEN,
2817 "provider-%u", p->dp_id);
2818
2819 /* Insert into list ordered by priority */
2820 TAILQ_FOREACH(last, &zdplane_info.dg_providers_q, dp_prov_link) {
2821 if (last->dp_priority > p->dp_priority)
2822 break;
2823 }
2824
2825 if (last)
2826 TAILQ_INSERT_BEFORE(last, p, dp_prov_link);
2827 else
2828 TAILQ_INSERT_TAIL(&zdplane_info.dg_providers_q, p,
2829 dp_prov_link);
2830
2831 /* And unlock */
2832 DPLANE_UNLOCK();
2833
2834 if (IS_ZEBRA_DEBUG_DPLANE)
2835 zlog_debug("dplane: registered new provider '%s' (%u), prio %d",
2836 p->dp_name, p->dp_id, p->dp_priority);
2837
2838 done:
2839 if (prov_p)
2840 *prov_p = p;
2841
2842 return ret;
2843 }
2844
2845 /* Accessors for provider attributes */
2846 const char *dplane_provider_get_name(const struct zebra_dplane_provider *prov)
2847 {
2848 return prov->dp_name;
2849 }
2850
2851 uint32_t dplane_provider_get_id(const struct zebra_dplane_provider *prov)
2852 {
2853 return prov->dp_id;
2854 }
2855
2856 void *dplane_provider_get_data(const struct zebra_dplane_provider *prov)
2857 {
2858 return prov->dp_data;
2859 }
2860
2861 int dplane_provider_get_work_limit(const struct zebra_dplane_provider *prov)
2862 {
2863 return zdplane_info.dg_updates_per_cycle;
2864 }
2865
2866 /* Lock/unlock a provider's mutex - iff the provider was registered with
2867 * the THREADED flag.
2868 */
2869 void dplane_provider_lock(struct zebra_dplane_provider *prov)
2870 {
2871 if (dplane_provider_is_threaded(prov))
2872 DPLANE_PROV_LOCK(prov);
2873 }
2874
2875 void dplane_provider_unlock(struct zebra_dplane_provider *prov)
2876 {
2877 if (dplane_provider_is_threaded(prov))
2878 DPLANE_PROV_UNLOCK(prov);
2879 }
2880
2881 /*
2882 * Dequeue and maintain associated counter
2883 */
2884 struct zebra_dplane_ctx *dplane_provider_dequeue_in_ctx(
2885 struct zebra_dplane_provider *prov)
2886 {
2887 struct zebra_dplane_ctx *ctx = NULL;
2888
2889 dplane_provider_lock(prov);
2890
2891 ctx = TAILQ_FIRST(&(prov->dp_ctx_in_q));
2892 if (ctx) {
2893 TAILQ_REMOVE(&(prov->dp_ctx_in_q), ctx, zd_q_entries);
2894
2895 atomic_fetch_sub_explicit(&prov->dp_in_queued, 1,
2896 memory_order_relaxed);
2897 }
2898
2899 dplane_provider_unlock(prov);
2900
2901 return ctx;
2902 }
2903
2904 /*
2905 * Dequeue work to a list, return count
2906 */
2907 int dplane_provider_dequeue_in_list(struct zebra_dplane_provider *prov,
2908 struct dplane_ctx_q *listp)
2909 {
2910 int limit, ret;
2911 struct zebra_dplane_ctx *ctx;
2912
2913 limit = zdplane_info.dg_updates_per_cycle;
2914
2915 dplane_provider_lock(prov);
2916
2917 for (ret = 0; ret < limit; ret++) {
2918 ctx = TAILQ_FIRST(&(prov->dp_ctx_in_q));
2919 if (ctx) {
2920 TAILQ_REMOVE(&(prov->dp_ctx_in_q), ctx, zd_q_entries);
2921
2922 TAILQ_INSERT_TAIL(listp, ctx, zd_q_entries);
2923 } else {
2924 break;
2925 }
2926 }
2927
2928 if (ret > 0)
2929 atomic_fetch_sub_explicit(&prov->dp_in_queued, ret,
2930 memory_order_relaxed);
2931
2932 dplane_provider_unlock(prov);
2933
2934 return ret;
2935 }
2936
2937 /*
2938 * Enqueue and maintain associated counter
2939 */
2940 void dplane_provider_enqueue_out_ctx(struct zebra_dplane_provider *prov,
2941 struct zebra_dplane_ctx *ctx)
2942 {
2943 dplane_provider_lock(prov);
2944
2945 TAILQ_INSERT_TAIL(&(prov->dp_ctx_out_q), ctx,
2946 zd_q_entries);
2947
2948 dplane_provider_unlock(prov);
2949
2950 atomic_fetch_add_explicit(&(prov->dp_out_counter), 1,
2951 memory_order_relaxed);
2952 }
2953
2954 /*
2955 * Accessor for provider object
2956 */
2957 bool dplane_provider_is_threaded(const struct zebra_dplane_provider *prov)
2958 {
2959 return (prov->dp_flags & DPLANE_PROV_FLAG_THREADED);
2960 }
2961
2962 /*
2963 * Internal helper that copies information from a zebra ns object; this is
2964 * called in the zebra main pthread context as part of dplane ctx init.
2965 */
2966 static void dplane_info_from_zns(struct zebra_dplane_info *ns_info,
2967 struct zebra_ns *zns)
2968 {
2969 ns_info->ns_id = zns->ns_id;
2970
2971 #if defined(HAVE_NETLINK)
2972 ns_info->is_cmd = true;
2973 ns_info->nls = zns->netlink_dplane;
2974 #endif /* NETLINK */
2975 }
2976
2977 /*
2978 * Provider api to signal that work/events are available
2979 * for the dataplane pthread.
2980 */
2981 int dplane_provider_work_ready(void)
2982 {
2983 /* Note that during zebra startup, we may be offered work before
2984 * the dataplane pthread (and thread-master) are ready. We want to
2985 * enqueue the work, but the event-scheduling machinery may not be
2986 * available.
2987 */
2988 if (zdplane_info.dg_run) {
2989 thread_add_event(zdplane_info.dg_master,
2990 dplane_thread_loop, NULL, 0,
2991 &zdplane_info.dg_t_update);
2992 }
2993
2994 return AOK;
2995 }
2996
2997 /*
2998 * Enqueue a context directly to zebra main.
2999 */
3000 void dplane_provider_enqueue_to_zebra(struct zebra_dplane_ctx *ctx)
3001 {
3002 struct dplane_ctx_q temp_list;
3003
3004 /* Zebra's api takes a list, so we need to use a temporary list */
3005 TAILQ_INIT(&temp_list);
3006
3007 TAILQ_INSERT_TAIL(&temp_list, ctx, zd_q_entries);
3008 (zdplane_info.dg_results_cb)(&temp_list);
3009 }
3010
3011 /*
3012 * Kernel dataplane provider
3013 */
3014
3015 /*
3016 * Handler for kernel LSP updates
3017 */
3018 static enum zebra_dplane_result
3019 kernel_dplane_lsp_update(struct zebra_dplane_ctx *ctx)
3020 {
3021 enum zebra_dplane_result res;
3022
3023 /* Call into the synchronous kernel-facing code here */
3024 res = kernel_lsp_update(ctx);
3025
3026 if (res != ZEBRA_DPLANE_REQUEST_SUCCESS)
3027 atomic_fetch_add_explicit(
3028 &zdplane_info.dg_lsp_errors, 1,
3029 memory_order_relaxed);
3030
3031 return res;
3032 }
3033
3034 /*
3035 * Handler for kernel pseudowire updates
3036 */
3037 static enum zebra_dplane_result
3038 kernel_dplane_pw_update(struct zebra_dplane_ctx *ctx)
3039 {
3040 enum zebra_dplane_result res;
3041
3042 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3043 zlog_debug("Dplane pw %s: op %s af %d loc: %u rem: %u",
3044 dplane_ctx_get_ifname(ctx),
3045 dplane_op2str(ctx->zd_op),
3046 dplane_ctx_get_pw_af(ctx),
3047 dplane_ctx_get_pw_local_label(ctx),
3048 dplane_ctx_get_pw_remote_label(ctx));
3049
3050 res = kernel_pw_update(ctx);
3051
3052 if (res != ZEBRA_DPLANE_REQUEST_SUCCESS)
3053 atomic_fetch_add_explicit(
3054 &zdplane_info.dg_pw_errors, 1,
3055 memory_order_relaxed);
3056
3057 return res;
3058 }
3059
3060 /*
3061 * Handler for kernel route updates
3062 */
3063 static enum zebra_dplane_result
3064 kernel_dplane_route_update(struct zebra_dplane_ctx *ctx)
3065 {
3066 enum zebra_dplane_result res;
3067
3068 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL) {
3069 char dest_str[PREFIX_STRLEN];
3070
3071 prefix2str(dplane_ctx_get_dest(ctx),
3072 dest_str, sizeof(dest_str));
3073
3074 zlog_debug("%u:%s Dplane route update ctx %p op %s",
3075 dplane_ctx_get_vrf(ctx), dest_str,
3076 ctx, dplane_op2str(dplane_ctx_get_op(ctx)));
3077 }
3078
3079 /* Call into the synchronous kernel-facing code here */
3080 res = kernel_route_update(ctx);
3081
3082 if (res != ZEBRA_DPLANE_REQUEST_SUCCESS)
3083 atomic_fetch_add_explicit(
3084 &zdplane_info.dg_route_errors, 1,
3085 memory_order_relaxed);
3086
3087 return res;
3088 }
3089
3090 /*
3091 * Handler for kernel-facing interface address updates
3092 */
3093 static enum zebra_dplane_result
3094 kernel_dplane_address_update(struct zebra_dplane_ctx *ctx)
3095 {
3096 enum zebra_dplane_result res;
3097
3098 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL) {
3099 char dest_str[PREFIX_STRLEN];
3100
3101 prefix2str(dplane_ctx_get_intf_addr(ctx), dest_str,
3102 sizeof(dest_str));
3103
3104 zlog_debug("Dplane intf %s, idx %u, addr %s",
3105 dplane_op2str(dplane_ctx_get_op(ctx)),
3106 dplane_ctx_get_ifindex(ctx), dest_str);
3107 }
3108
3109 res = kernel_address_update_ctx(ctx);
3110
3111 if (res != ZEBRA_DPLANE_REQUEST_SUCCESS)
3112 atomic_fetch_add_explicit(&zdplane_info.dg_intf_addr_errors,
3113 1, memory_order_relaxed);
3114
3115 return res;
3116 }
3117
3118 /**
3119 * kernel_dplane_nexthop_update() - Handler for kernel nexthop updates
3120 *
3121 * @ctx: Dataplane context
3122 *
3123 * Return: Dataplane result flag
3124 */
3125 static enum zebra_dplane_result
3126 kernel_dplane_nexthop_update(struct zebra_dplane_ctx *ctx)
3127 {
3128 enum zebra_dplane_result res;
3129
3130 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL) {
3131 zlog_debug("ID (%u) Dplane nexthop update ctx %p op %s",
3132 dplane_ctx_get_nhe_id(ctx), ctx,
3133 dplane_op2str(dplane_ctx_get_op(ctx)));
3134 }
3135
3136 res = kernel_nexthop_update(ctx);
3137
3138 if (res != ZEBRA_DPLANE_REQUEST_SUCCESS)
3139 atomic_fetch_add_explicit(&zdplane_info.dg_nexthop_errors, 1,
3140 memory_order_relaxed);
3141
3142 return res;
3143 }
3144
3145 /*
3146 * Handler for kernel-facing EVPN MAC address updates
3147 */
3148 static enum zebra_dplane_result
3149 kernel_dplane_mac_update(struct zebra_dplane_ctx *ctx)
3150 {
3151 enum zebra_dplane_result res;
3152
3153 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL) {
3154 char buf[ETHER_ADDR_STRLEN];
3155
3156 prefix_mac2str(dplane_ctx_mac_get_addr(ctx), buf,
3157 sizeof(buf));
3158
3159 zlog_debug("Dplane %s, mac %s, ifindex %u",
3160 dplane_op2str(dplane_ctx_get_op(ctx)),
3161 buf, dplane_ctx_get_ifindex(ctx));
3162 }
3163
3164 res = kernel_mac_update_ctx(ctx);
3165
3166 if (res != ZEBRA_DPLANE_REQUEST_SUCCESS)
3167 atomic_fetch_add_explicit(&zdplane_info.dg_mac_errors,
3168 1, memory_order_relaxed);
3169
3170 return res;
3171 }
3172
3173 /*
3174 * Handler for kernel-facing EVPN neighbor updates
3175 */
3176 static enum zebra_dplane_result
3177 kernel_dplane_neigh_update(struct zebra_dplane_ctx *ctx)
3178 {
3179 enum zebra_dplane_result res;
3180
3181 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL) {
3182 char buf[PREFIX_STRLEN];
3183
3184 ipaddr2str(dplane_ctx_neigh_get_ipaddr(ctx), buf,
3185 sizeof(buf));
3186
3187 zlog_debug("Dplane %s, ip %s, ifindex %u",
3188 dplane_op2str(dplane_ctx_get_op(ctx)),
3189 buf, dplane_ctx_get_ifindex(ctx));
3190 }
3191
3192 res = kernel_neigh_update_ctx(ctx);
3193
3194 if (res != ZEBRA_DPLANE_REQUEST_SUCCESS)
3195 atomic_fetch_add_explicit(&zdplane_info.dg_neigh_errors,
3196 1, memory_order_relaxed);
3197
3198 return res;
3199 }
3200
3201 /*
3202 * Kernel provider callback
3203 */
3204 static int kernel_dplane_process_func(struct zebra_dplane_provider *prov)
3205 {
3206 enum zebra_dplane_result res;
3207 struct zebra_dplane_ctx *ctx;
3208 int counter, limit;
3209
3210 limit = dplane_provider_get_work_limit(prov);
3211
3212 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3213 zlog_debug("dplane provider '%s': processing",
3214 dplane_provider_get_name(prov));
3215
3216 for (counter = 0; counter < limit; counter++) {
3217
3218 ctx = dplane_provider_dequeue_in_ctx(prov);
3219 if (ctx == NULL)
3220 break;
3221
3222 /* A previous provider plugin may have asked to skip the
3223 * kernel update.
3224 */
3225 if (dplane_ctx_is_skip_kernel(ctx)) {
3226 res = ZEBRA_DPLANE_REQUEST_SUCCESS;
3227 goto skip_one;
3228 }
3229
3230 /* Dispatch to appropriate kernel-facing apis */
3231 switch (dplane_ctx_get_op(ctx)) {
3232
3233 case DPLANE_OP_ROUTE_INSTALL:
3234 case DPLANE_OP_ROUTE_UPDATE:
3235 case DPLANE_OP_ROUTE_DELETE:
3236 res = kernel_dplane_route_update(ctx);
3237 break;
3238
3239 case DPLANE_OP_NH_INSTALL:
3240 case DPLANE_OP_NH_UPDATE:
3241 case DPLANE_OP_NH_DELETE:
3242 res = kernel_dplane_nexthop_update(ctx);
3243 break;
3244
3245 case DPLANE_OP_LSP_INSTALL:
3246 case DPLANE_OP_LSP_UPDATE:
3247 case DPLANE_OP_LSP_DELETE:
3248 res = kernel_dplane_lsp_update(ctx);
3249 break;
3250
3251 case DPLANE_OP_PW_INSTALL:
3252 case DPLANE_OP_PW_UNINSTALL:
3253 res = kernel_dplane_pw_update(ctx);
3254 break;
3255
3256 case DPLANE_OP_ADDR_INSTALL:
3257 case DPLANE_OP_ADDR_UNINSTALL:
3258 res = kernel_dplane_address_update(ctx);
3259 break;
3260
3261 case DPLANE_OP_MAC_INSTALL:
3262 case DPLANE_OP_MAC_DELETE:
3263 res = kernel_dplane_mac_update(ctx);
3264 break;
3265
3266 case DPLANE_OP_NEIGH_INSTALL:
3267 case DPLANE_OP_NEIGH_UPDATE:
3268 case DPLANE_OP_NEIGH_DELETE:
3269 case DPLANE_OP_VTEP_ADD:
3270 case DPLANE_OP_VTEP_DELETE:
3271 res = kernel_dplane_neigh_update(ctx);
3272 break;
3273
3274 /* Ignore 'notifications' - no-op */
3275 case DPLANE_OP_SYS_ROUTE_ADD:
3276 case DPLANE_OP_SYS_ROUTE_DELETE:
3277 case DPLANE_OP_ROUTE_NOTIFY:
3278 case DPLANE_OP_LSP_NOTIFY:
3279 res = ZEBRA_DPLANE_REQUEST_SUCCESS;
3280 break;
3281
3282 default:
3283 atomic_fetch_add_explicit(
3284 &zdplane_info.dg_other_errors, 1,
3285 memory_order_relaxed);
3286
3287 res = ZEBRA_DPLANE_REQUEST_FAILURE;
3288 break;
3289 }
3290
3291 skip_one:
3292 dplane_ctx_set_status(ctx, res);
3293
3294 dplane_provider_enqueue_out_ctx(prov, ctx);
3295 }
3296
3297 /* Ensure that we'll run the work loop again if there's still
3298 * more work to do.
3299 */
3300 if (counter >= limit) {
3301 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3302 zlog_debug("dplane provider '%s' reached max updates %d",
3303 dplane_provider_get_name(prov), counter);
3304
3305 atomic_fetch_add_explicit(&zdplane_info.dg_update_yields,
3306 1, memory_order_relaxed);
3307
3308 dplane_provider_work_ready();
3309 }
3310
3311 return 0;
3312 }
3313
3314 #if DPLANE_TEST_PROVIDER
3315
3316 /*
3317 * Test dataplane provider plugin
3318 */
3319
3320 /*
3321 * Test provider process callback
3322 */
3323 static int test_dplane_process_func(struct zebra_dplane_provider *prov)
3324 {
3325 struct zebra_dplane_ctx *ctx;
3326 int counter, limit;
3327
3328 /* Just moving from 'in' queue to 'out' queue */
3329
3330 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3331 zlog_debug("dplane provider '%s': processing",
3332 dplane_provider_get_name(prov));
3333
3334 limit = dplane_provider_get_work_limit(prov);
3335
3336 for (counter = 0; counter < limit; counter++) {
3337
3338 ctx = dplane_provider_dequeue_in_ctx(prov);
3339 if (ctx == NULL)
3340 break;
3341
3342 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3343 zlog_debug("dplane provider '%s': op %s",
3344 dplane_provider_get_name(prov),
3345 dplane_op2str(dplane_ctx_get_op(ctx)));
3346
3347 dplane_ctx_set_status(ctx, ZEBRA_DPLANE_REQUEST_SUCCESS);
3348
3349 dplane_provider_enqueue_out_ctx(prov, ctx);
3350 }
3351
3352 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3353 zlog_debug("dplane provider '%s': processed %d",
3354 dplane_provider_get_name(prov), counter);
3355
3356 /* Ensure that we'll run the work loop again if there's still
3357 * more work to do.
3358 */
3359 if (counter >= limit)
3360 dplane_provider_work_ready();
3361
3362 return 0;
3363 }
3364
3365 /*
3366 * Test provider shutdown/fini callback
3367 */
3368 static int test_dplane_shutdown_func(struct zebra_dplane_provider *prov,
3369 bool early)
3370 {
3371 if (IS_ZEBRA_DEBUG_DPLANE)
3372 zlog_debug("dplane provider '%s': %sshutdown",
3373 dplane_provider_get_name(prov),
3374 early ? "early " : "");
3375
3376 return 0;
3377 }
3378 #endif /* DPLANE_TEST_PROVIDER */
3379
3380 /*
3381 * Register default kernel provider
3382 */
3383 static void dplane_provider_init(void)
3384 {
3385 int ret;
3386
3387 ret = dplane_provider_register("Kernel",
3388 DPLANE_PRIO_KERNEL,
3389 DPLANE_PROV_FLAGS_DEFAULT, NULL,
3390 kernel_dplane_process_func,
3391 NULL,
3392 NULL, NULL);
3393
3394 if (ret != AOK)
3395 zlog_err("Unable to register kernel dplane provider: %d",
3396 ret);
3397
3398 #if DPLANE_TEST_PROVIDER
3399 /* Optional test provider ... */
3400 ret = dplane_provider_register("Test",
3401 DPLANE_PRIO_PRE_KERNEL,
3402 DPLANE_PROV_FLAGS_DEFAULT, NULL,
3403 test_dplane_process_func,
3404 test_dplane_shutdown_func,
3405 NULL /* data */, NULL);
3406
3407 if (ret != AOK)
3408 zlog_err("Unable to register test dplane provider: %d",
3409 ret);
3410 #endif /* DPLANE_TEST_PROVIDER */
3411 }
3412
3413 /* Indicates zebra shutdown/exit is in progress. Some operations may be
3414 * simplified or skipped during shutdown processing.
3415 */
3416 bool dplane_is_in_shutdown(void)
3417 {
3418 return zdplane_info.dg_is_shutdown;
3419 }
3420
3421 /*
3422 * Early or pre-shutdown, de-init notification api. This runs pretty
3423 * early during zebra shutdown, as a signal to stop new work and prepare
3424 * for updates generated by shutdown/cleanup activity, as zebra tries to
3425 * remove everything it's responsible for.
3426 * NB: This runs in the main zebra pthread context.
3427 */
3428 void zebra_dplane_pre_finish(void)
3429 {
3430 if (IS_ZEBRA_DEBUG_DPLANE)
3431 zlog_debug("Zebra dataplane pre-fini called");
3432
3433 zdplane_info.dg_is_shutdown = true;
3434
3435 /* TODO -- Notify provider(s) of pending shutdown */
3436 }
3437
3438 /*
3439 * Utility to determine whether work remains enqueued within the dplane;
3440 * used during system shutdown processing.
3441 */
3442 static bool dplane_work_pending(void)
3443 {
3444 bool ret = false;
3445 struct zebra_dplane_ctx *ctx;
3446 struct zebra_dplane_provider *prov;
3447
3448 /* TODO -- just checking incoming/pending work for now, must check
3449 * providers
3450 */
3451 DPLANE_LOCK();
3452 {
3453 ctx = TAILQ_FIRST(&zdplane_info.dg_update_ctx_q);
3454 prov = TAILQ_FIRST(&zdplane_info.dg_providers_q);
3455 }
3456 DPLANE_UNLOCK();
3457
3458 if (ctx != NULL) {
3459 ret = true;
3460 goto done;
3461 }
3462
3463 while (prov) {
3464
3465 dplane_provider_lock(prov);
3466
3467 ctx = TAILQ_FIRST(&(prov->dp_ctx_in_q));
3468 if (ctx == NULL)
3469 ctx = TAILQ_FIRST(&(prov->dp_ctx_out_q));
3470
3471 dplane_provider_unlock(prov);
3472
3473 if (ctx != NULL)
3474 break;
3475
3476 DPLANE_LOCK();
3477 prov = TAILQ_NEXT(prov, dp_prov_link);
3478 DPLANE_UNLOCK();
3479 }
3480
3481 if (ctx != NULL)
3482 ret = true;
3483
3484 done:
3485 return ret;
3486 }
3487
3488 /*
3489 * Shutdown-time intermediate callback, used to determine when all pending
3490 * in-flight updates are done. If there's still work to do, reschedules itself.
3491 * If all work is done, schedules an event to the main zebra thread for
3492 * final zebra shutdown.
3493 * This runs in the dplane pthread context.
3494 */
3495 static int dplane_check_shutdown_status(struct thread *event)
3496 {
3497 if (IS_ZEBRA_DEBUG_DPLANE)
3498 zlog_debug("Zebra dataplane shutdown status check called");
3499
3500 if (dplane_work_pending()) {
3501 /* Reschedule dplane check on a short timer */
3502 thread_add_timer_msec(zdplane_info.dg_master,
3503 dplane_check_shutdown_status,
3504 NULL, 100,
3505 &zdplane_info.dg_t_shutdown_check);
3506
3507 /* TODO - give up and stop waiting after a short time? */
3508
3509 } else {
3510 /* We appear to be done - schedule a final callback event
3511 * for the zebra main pthread.
3512 */
3513 thread_add_event(zrouter.master, zebra_finalize, NULL, 0, NULL);
3514 }
3515
3516 return 0;
3517 }
3518
3519 /*
3520 * Shutdown, de-init api. This runs pretty late during shutdown,
3521 * after zebra has tried to free/remove/uninstall all routes during shutdown.
3522 * At this point, dplane work may still remain to be done, so we can't just
3523 * blindly terminate. If there's still work to do, we'll periodically check
3524 * and when done, we'll enqueue a task to the zebra main thread for final
3525 * termination processing.
3526 *
3527 * NB: This runs in the main zebra thread context.
3528 */
3529 void zebra_dplane_finish(void)
3530 {
3531 if (IS_ZEBRA_DEBUG_DPLANE)
3532 zlog_debug("Zebra dataplane fini called");
3533
3534 thread_add_event(zdplane_info.dg_master,
3535 dplane_check_shutdown_status, NULL, 0,
3536 &zdplane_info.dg_t_shutdown_check);
3537 }
3538
3539 /*
3540 * Main dataplane pthread event loop. The thread takes new incoming work
3541 * and offers it to the first provider. It then iterates through the
3542 * providers, taking complete work from each one and offering it
3543 * to the next in order. At each step, a limited number of updates are
3544 * processed during a cycle in order to provide some fairness.
3545 *
3546 * This loop through the providers is only run once, so that the dataplane
3547 * pthread can look for other pending work - such as i/o work on behalf of
3548 * providers.
3549 */
3550 static int dplane_thread_loop(struct thread *event)
3551 {
3552 struct dplane_ctx_q work_list;
3553 struct dplane_ctx_q error_list;
3554 struct zebra_dplane_provider *prov;
3555 struct zebra_dplane_ctx *ctx, *tctx;
3556 int limit, counter, error_counter;
3557 uint64_t curr, high;
3558
3559 /* Capture work limit per cycle */
3560 limit = zdplane_info.dg_updates_per_cycle;
3561
3562 /* Init temporary lists used to move contexts among providers */
3563 TAILQ_INIT(&work_list);
3564 TAILQ_INIT(&error_list);
3565 error_counter = 0;
3566
3567 /* Check for zebra shutdown */
3568 if (!zdplane_info.dg_run)
3569 goto done;
3570
3571 /* Dequeue some incoming work from zebra (if any) onto the temporary
3572 * working list.
3573 */
3574 DPLANE_LOCK();
3575
3576 /* Locate initial registered provider */
3577 prov = TAILQ_FIRST(&zdplane_info.dg_providers_q);
3578
3579 /* Move new work from incoming list to temp list */
3580 for (counter = 0; counter < limit; counter++) {
3581 ctx = TAILQ_FIRST(&zdplane_info.dg_update_ctx_q);
3582 if (ctx) {
3583 TAILQ_REMOVE(&zdplane_info.dg_update_ctx_q, ctx,
3584 zd_q_entries);
3585
3586 ctx->zd_provider = prov->dp_id;
3587
3588 TAILQ_INSERT_TAIL(&work_list, ctx, zd_q_entries);
3589 } else {
3590 break;
3591 }
3592 }
3593
3594 DPLANE_UNLOCK();
3595
3596 atomic_fetch_sub_explicit(&zdplane_info.dg_routes_queued, counter,
3597 memory_order_relaxed);
3598
3599 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3600 zlog_debug("dplane: incoming new work counter: %d", counter);
3601
3602 /* Iterate through the registered providers, offering new incoming
3603 * work. If the provider has outgoing work in its queue, take that
3604 * work for the next provider
3605 */
3606 while (prov) {
3607
3608 /* At each iteration, the temporary work list has 'counter'
3609 * items.
3610 */
3611 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3612 zlog_debug("dplane enqueues %d new work to provider '%s'",
3613 counter, dplane_provider_get_name(prov));
3614
3615 /* Capture current provider id in each context; check for
3616 * error status.
3617 */
3618 TAILQ_FOREACH_SAFE(ctx, &work_list, zd_q_entries, tctx) {
3619 if (dplane_ctx_get_status(ctx) ==
3620 ZEBRA_DPLANE_REQUEST_SUCCESS) {
3621 ctx->zd_provider = prov->dp_id;
3622 } else {
3623 /*
3624 * TODO -- improve error-handling: recirc
3625 * errors backwards so that providers can
3626 * 'undo' their work (if they want to)
3627 */
3628
3629 /* Move to error list; will be returned
3630 * zebra main.
3631 */
3632 TAILQ_REMOVE(&work_list, ctx, zd_q_entries);
3633 TAILQ_INSERT_TAIL(&error_list,
3634 ctx, zd_q_entries);
3635 error_counter++;
3636 }
3637 }
3638
3639 /* Enqueue new work to the provider */
3640 dplane_provider_lock(prov);
3641
3642 if (TAILQ_FIRST(&work_list))
3643 TAILQ_CONCAT(&(prov->dp_ctx_in_q), &work_list,
3644 zd_q_entries);
3645
3646 atomic_fetch_add_explicit(&prov->dp_in_counter, counter,
3647 memory_order_relaxed);
3648 atomic_fetch_add_explicit(&prov->dp_in_queued, counter,
3649 memory_order_relaxed);
3650 curr = atomic_load_explicit(&prov->dp_in_queued,
3651 memory_order_relaxed);
3652 high = atomic_load_explicit(&prov->dp_in_max,
3653 memory_order_relaxed);
3654 if (curr > high)
3655 atomic_store_explicit(&prov->dp_in_max, curr,
3656 memory_order_relaxed);
3657
3658 dplane_provider_unlock(prov);
3659
3660 /* Reset the temp list (though the 'concat' may have done this
3661 * already), and the counter
3662 */
3663 TAILQ_INIT(&work_list);
3664 counter = 0;
3665
3666 /* Call into the provider code. Note that this is
3667 * unconditional: we offer to do work even if we don't enqueue
3668 * any _new_ work.
3669 */
3670 (*prov->dp_fp)(prov);
3671
3672 /* Check for zebra shutdown */
3673 if (!zdplane_info.dg_run)
3674 break;
3675
3676 /* Dequeue completed work from the provider */
3677 dplane_provider_lock(prov);
3678
3679 while (counter < limit) {
3680 ctx = TAILQ_FIRST(&(prov->dp_ctx_out_q));
3681 if (ctx) {
3682 TAILQ_REMOVE(&(prov->dp_ctx_out_q), ctx,
3683 zd_q_entries);
3684
3685 TAILQ_INSERT_TAIL(&work_list,
3686 ctx, zd_q_entries);
3687 counter++;
3688 } else
3689 break;
3690 }
3691
3692 dplane_provider_unlock(prov);
3693
3694 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3695 zlog_debug("dplane dequeues %d completed work from provider %s",
3696 counter, dplane_provider_get_name(prov));
3697
3698 /* Locate next provider */
3699 DPLANE_LOCK();
3700 prov = TAILQ_NEXT(prov, dp_prov_link);
3701 DPLANE_UNLOCK();
3702 }
3703
3704 /* After all providers have been serviced, enqueue any completed
3705 * work and any errors back to zebra so it can process the results.
3706 */
3707 if (IS_ZEBRA_DEBUG_DPLANE_DETAIL)
3708 zlog_debug("dplane has %d completed, %d errors, for zebra main",
3709 counter, error_counter);
3710
3711 /*
3712 * Hand lists through the api to zebra main,
3713 * to reduce the number of lock/unlock cycles
3714 */
3715
3716 /* Call through to zebra main */
3717 (zdplane_info.dg_results_cb)(&error_list);
3718
3719 TAILQ_INIT(&error_list);
3720
3721 /* Call through to zebra main */
3722 (zdplane_info.dg_results_cb)(&work_list);
3723
3724 TAILQ_INIT(&work_list);
3725
3726 done:
3727 return 0;
3728 }
3729
3730 /*
3731 * Final phase of shutdown, after all work enqueued to dplane has been
3732 * processed. This is called from the zebra main pthread context.
3733 */
3734 void zebra_dplane_shutdown(void)
3735 {
3736 if (IS_ZEBRA_DEBUG_DPLANE)
3737 zlog_debug("Zebra dataplane shutdown called");
3738
3739 /* Stop dplane thread, if it's running */
3740
3741 zdplane_info.dg_run = false;
3742
3743 THREAD_OFF(zdplane_info.dg_t_update);
3744
3745 frr_pthread_stop(zdplane_info.dg_pthread, NULL);
3746
3747 /* Destroy pthread */
3748 frr_pthread_destroy(zdplane_info.dg_pthread);
3749 zdplane_info.dg_pthread = NULL;
3750 zdplane_info.dg_master = NULL;
3751
3752 /* TODO -- Notify provider(s) of final shutdown */
3753
3754 /* TODO -- Clean-up provider objects */
3755
3756 /* TODO -- Clean queue(s), free memory */
3757 }
3758
3759 /*
3760 * Initialize the dataplane module during startup, internal/private version
3761 */
3762 static void zebra_dplane_init_internal(void)
3763 {
3764 memset(&zdplane_info, 0, sizeof(zdplane_info));
3765
3766 pthread_mutex_init(&zdplane_info.dg_mutex, NULL);
3767
3768 TAILQ_INIT(&zdplane_info.dg_update_ctx_q);
3769 TAILQ_INIT(&zdplane_info.dg_providers_q);
3770
3771 zdplane_info.dg_updates_per_cycle = DPLANE_DEFAULT_NEW_WORK;
3772
3773 zdplane_info.dg_max_queued_updates = DPLANE_DEFAULT_MAX_QUEUED;
3774
3775 /* Register default kernel 'provider' during init */
3776 dplane_provider_init();
3777 }
3778
3779 /*
3780 * Start the dataplane pthread. This step needs to be run later than the
3781 * 'init' step, in case zebra has fork-ed.
3782 */
3783 void zebra_dplane_start(void)
3784 {
3785 struct zebra_dplane_provider *prov;
3786 struct frr_pthread_attr pattr = {
3787 .start = frr_pthread_attr_default.start,
3788 .stop = frr_pthread_attr_default.stop
3789 };
3790
3791 /* Start dataplane pthread */
3792
3793 zdplane_info.dg_pthread = frr_pthread_new(&pattr, "Zebra dplane thread",
3794 "zebra_dplane");
3795
3796 zdplane_info.dg_master = zdplane_info.dg_pthread->master;
3797
3798 zdplane_info.dg_run = true;
3799
3800 /* Enqueue an initial event for the dataplane pthread */
3801 thread_add_event(zdplane_info.dg_master, dplane_thread_loop, NULL, 0,
3802 &zdplane_info.dg_t_update);
3803
3804 /* Call start callbacks for registered providers */
3805
3806 DPLANE_LOCK();
3807 prov = TAILQ_FIRST(&zdplane_info.dg_providers_q);
3808 DPLANE_UNLOCK();
3809
3810 while (prov) {
3811
3812 if (prov->dp_start)
3813 (prov->dp_start)(prov);
3814
3815 /* Locate next provider */
3816 DPLANE_LOCK();
3817 prov = TAILQ_NEXT(prov, dp_prov_link);
3818 DPLANE_UNLOCK();
3819 }
3820
3821 frr_pthread_run(zdplane_info.dg_pthread, NULL);
3822 }
3823
3824 /*
3825 * Initialize the dataplane module at startup; called by zebra rib_init()
3826 */
3827 void zebra_dplane_init(int (*results_fp)(struct dplane_ctx_q *))
3828 {
3829 zebra_dplane_init_internal();
3830 zdplane_info.dg_results_cb = results_fp;
3831 }