1 // SPDX-License-Identifier: GPL-2.0-only
2 /* bpf/cpumap.c
3 *
4 * Copyright (c) 2017 Jesper Dangaard Brouer, Red Hat Inc.
5 */
6
7 /**
8 * DOC: cpu map
9 * The 'cpumap' is primarily used as a backend map for XDP BPF helper
10 * call bpf_redirect_map() and XDP_REDIRECT action, like 'devmap'.
11 *
12 * Unlike devmap which redirects XDP frames out to another NIC device,
13 * this map type redirects raw XDP frames to another CPU. The remote
14 * CPU will do SKB-allocation and call the normal network stack.
15 */
16 /*
17 * This is a scalability and isolation mechanism, that allow
18 * separating the early driver network XDP layer, from the rest of the
19 * netstack, and assigning dedicated CPUs for this stage. This
20 * basically allows for 10G wirespeed pre-filtering via bpf.
21 */
22 #include <linux/bitops.h>
23 #include <linux/bpf.h>
24 #include <linux/filter.h>
25 #include <linux/ptr_ring.h>
26 #include <net/xdp.h>
27 #include <net/hotdata.h>
28
29 #include <linux/sched.h>
30 #include <linux/workqueue.h>
31 #include <linux/kthread.h>
32 #include <linux/local_lock.h>
33 #include <linux/completion.h>
34 #include <trace/events/xdp.h>
35 #include <linux/btf_ids.h>
36
37 #include <linux/netdevice.h>
38 #include <net/gro.h>
39
40 /* General idea: XDP packets getting XDP redirected to another CPU,
41 * will maximum be stored/queued for one driver ->poll() call. It is
42 * guaranteed that queueing the frame and the flush operation happen on
43 * same CPU. Thus, cpu_map_flush operation can deduct via this_cpu_ptr()
44 * which queue in bpf_cpu_map_entry contains packets.
45 */
46
47 #define CPU_MAP_BULK_SIZE 8 /* 8 == one cacheline on 64-bit archs */
48 struct bpf_cpu_map_entry;
49 struct bpf_cpu_map;
50
51 struct xdp_bulk_queue {
52 void *q[CPU_MAP_BULK_SIZE];
53 struct list_head flush_node;
54 struct bpf_cpu_map_entry *obj;
55 unsigned int count;
56 local_lock_t bq_lock;
57 };
58
59 /* Struct for every remote "destination" CPU in map */
60 struct bpf_cpu_map_entry {
61 u32 cpu; /* kthread CPU and map index */
62 int map_id; /* Back reference to map */
63
64 /* XDP can run multiple RX-ring queues, need __percpu enqueue store */
65 struct xdp_bulk_queue __percpu *bulkq;
66
67 /* Queue with potential multi-producers, and single-consumer kthread */
68 struct ptr_ring *queue;
69 struct task_struct *kthread;
70
71 struct bpf_cpumap_val value;
72 struct bpf_prog *prog;
73 struct gro_node gro;
74
75 struct completion kthread_running;
76 struct rcu_work free_work;
77 };
78
79 struct bpf_cpu_map {
80 struct bpf_map map;
81 /* Below members specific for map type */
82 struct bpf_cpu_map_entry __rcu **cpu_map;
83 };
84
cpu_map_alloc(union bpf_attr * attr)85 static struct bpf_map *cpu_map_alloc(union bpf_attr *attr)
86 {
87 u32 value_size = attr->value_size;
88 struct bpf_cpu_map *cmap;
89
90 /* check sanity of attributes */
91 if (attr->max_entries == 0 || attr->key_size != 4 ||
92 (value_size != offsetofend(struct bpf_cpumap_val, qsize) &&
93 value_size != offsetofend(struct bpf_cpumap_val, bpf_prog.fd)) ||
94 attr->map_flags & ~BPF_F_NUMA_NODE)
95 return ERR_PTR(-EINVAL);
96
97 /* Pre-limit array size based on NR_CPUS, not final CPU check */
98 if (attr->max_entries > NR_CPUS)
99 return ERR_PTR(-E2BIG);
100
101 cmap = bpf_map_area_alloc(sizeof(*cmap), NUMA_NO_NODE);
102 if (!cmap)
103 return ERR_PTR(-ENOMEM);
104
105 bpf_map_init_from_attr(&cmap->map, attr);
106
107 /* Alloc array for possible remote "destination" CPUs */
108 cmap->cpu_map = bpf_map_area_alloc(cmap->map.max_entries *
109 sizeof(struct bpf_cpu_map_entry *),
110 cmap->map.numa_node);
111 if (!cmap->cpu_map) {
112 bpf_map_area_free(cmap);
113 return ERR_PTR(-ENOMEM);
114 }
115
116 return &cmap->map;
117 }
118
__cpu_map_ring_cleanup(struct ptr_ring * ring)119 static void __cpu_map_ring_cleanup(struct ptr_ring *ring)
120 {
121 /* The tear-down procedure should have made sure that queue is
122 * empty. See __cpu_map_entry_replace() and work-queue
123 * invoked cpu_map_kthread_stop(). Catch any broken behaviour
124 * gracefully and warn once.
125 */
126 void *ptr;
127
128 while ((ptr = ptr_ring_consume(ring))) {
129 WARN_ON_ONCE(1);
130 if (unlikely(__ptr_test_bit(0, &ptr))) {
131 __ptr_clear_bit(0, &ptr);
132 kfree_skb(ptr);
133 continue;
134 }
135 xdp_return_frame(ptr);
136 }
137 }
138
cpu_map_bpf_prog_run_skb(struct bpf_cpu_map_entry * rcpu,void ** skbs,u32 skb_n,struct xdp_cpumap_stats * stats)139 static u32 cpu_map_bpf_prog_run_skb(struct bpf_cpu_map_entry *rcpu,
140 void **skbs, u32 skb_n,
141 struct xdp_cpumap_stats *stats)
142 {
143 struct xdp_buff xdp;
144 u32 act, pass = 0;
145 int err;
146
147 for (u32 i = 0; i < skb_n; i++) {
148 struct sk_buff *skb = skbs[i];
149
150 act = bpf_prog_run_generic_xdp(skb, &xdp, rcpu->prog);
151 switch (act) {
152 case XDP_PASS:
153 skbs[pass++] = skb;
154 break;
155 case XDP_REDIRECT:
156 err = xdp_do_generic_redirect(skb->dev, skb, &xdp,
157 rcpu->prog);
158 if (unlikely(err)) {
159 kfree_skb(skb);
160 stats->drop++;
161 } else {
162 stats->redirect++;
163 }
164 break;
165 default:
166 bpf_warn_invalid_xdp_action(NULL, rcpu->prog, act);
167 fallthrough;
168 case XDP_ABORTED:
169 trace_xdp_exception(skb->dev, rcpu->prog, act);
170 fallthrough;
171 case XDP_DROP:
172 napi_consume_skb(skb, true);
173 stats->drop++;
174 break;
175 }
176 }
177
178 stats->pass += pass;
179
180 return pass;
181 }
182
cpu_map_bpf_prog_run_xdp(struct bpf_cpu_map_entry * rcpu,void ** frames,int n,struct xdp_cpumap_stats * stats)183 static int cpu_map_bpf_prog_run_xdp(struct bpf_cpu_map_entry *rcpu,
184 void **frames, int n,
185 struct xdp_cpumap_stats *stats)
186 {
187 struct xdp_rxq_info rxq = {};
188 struct xdp_buff xdp;
189 int i, nframes = 0;
190
191 xdp.rxq = &rxq;
192
193 for (i = 0; i < n; i++) {
194 struct xdp_frame *xdpf = frames[i];
195 u32 act;
196 int err;
197
198 rxq.dev = xdpf->dev_rx;
199 rxq.mem.type = xdpf->mem_type;
200 /* TODO: report queue_index to xdp_rxq_info */
201
202 xdp_convert_frame_to_buff(xdpf, &xdp);
203
204 act = bpf_prog_run_xdp(rcpu->prog, &xdp);
205 switch (act) {
206 case XDP_PASS:
207 err = xdp_update_frame_from_buff(&xdp, xdpf);
208 if (err < 0) {
209 xdp_return_frame(xdpf);
210 stats->drop++;
211 } else {
212 frames[nframes++] = xdpf;
213 }
214 break;
215 case XDP_REDIRECT:
216 err = xdp_do_redirect(xdpf->dev_rx, &xdp,
217 rcpu->prog);
218 if (unlikely(err)) {
219 xdp_return_frame(xdpf);
220 stats->drop++;
221 } else {
222 stats->redirect++;
223 }
224 break;
225 default:
226 bpf_warn_invalid_xdp_action(NULL, rcpu->prog, act);
227 fallthrough;
228 case XDP_DROP:
229 xdp_return_frame(xdpf);
230 stats->drop++;
231 break;
232 }
233 }
234
235 stats->pass += nframes;
236
237 return nframes;
238 }
239
240 #define CPUMAP_BATCH 8
241
242 struct cpu_map_ret {
243 u32 xdp_n;
244 u32 skb_n;
245 };
246
cpu_map_bpf_prog_run(struct bpf_cpu_map_entry * rcpu,void ** frames,void ** skbs,struct cpu_map_ret * ret,struct xdp_cpumap_stats * stats)247 static void cpu_map_bpf_prog_run(struct bpf_cpu_map_entry *rcpu, void **frames,
248 void **skbs, struct cpu_map_ret *ret,
249 struct xdp_cpumap_stats *stats)
250 {
251 struct bpf_net_context __bpf_net_ctx, *bpf_net_ctx;
252
253 if (!rcpu->prog)
254 goto out;
255
256 rcu_read_lock();
257 bpf_net_ctx = bpf_net_ctx_set(&__bpf_net_ctx);
258 xdp_set_return_frame_no_direct();
259
260 ret->xdp_n = cpu_map_bpf_prog_run_xdp(rcpu, frames, ret->xdp_n, stats);
261 if (unlikely(ret->skb_n))
262 ret->skb_n = cpu_map_bpf_prog_run_skb(rcpu, skbs, ret->skb_n,
263 stats);
264
265 if (stats->redirect)
266 xdp_do_flush();
267
268 xdp_clear_return_frame_no_direct();
269 bpf_net_ctx_clear(bpf_net_ctx);
270 rcu_read_unlock();
271
272 out:
273 if (unlikely(ret->skb_n) && ret->xdp_n)
274 memmove(&skbs[ret->xdp_n], skbs, ret->skb_n * sizeof(*skbs));
275 }
276
cpu_map_gro_flush(struct bpf_cpu_map_entry * rcpu,bool empty)277 static void cpu_map_gro_flush(struct bpf_cpu_map_entry *rcpu, bool empty)
278 {
279 /*
280 * If the ring is not empty, there'll be a new iteration soon, and we
281 * only need to do a full flush if a tick is long (> 1 ms).
282 * If the ring is empty, to not hold GRO packets in the stack for too
283 * long, do a full flush.
284 * This is equivalent to how NAPI decides whether to perform a full
285 * flush.
286 */
287 gro_flush_normal(&rcpu->gro, !empty && HZ >= 1000);
288 }
289
cpu_map_kthread_run(void * data)290 static int cpu_map_kthread_run(void *data)
291 {
292 struct bpf_cpu_map_entry *rcpu = data;
293 unsigned long last_qs = jiffies;
294 u32 packets = 0;
295
296 complete(&rcpu->kthread_running);
297 set_current_state(TASK_INTERRUPTIBLE);
298
299 /* When kthread gives stop order, then rcpu have been disconnected
300 * from map, thus no new packets can enter. Remaining in-flight
301 * per CPU stored packets are flushed to this queue. Wait honoring
302 * kthread_stop signal until queue is empty.
303 */
304 while (!kthread_should_stop() || !__ptr_ring_empty(rcpu->queue)) {
305 struct xdp_cpumap_stats stats = {}; /* zero stats */
306 unsigned int kmem_alloc_drops = 0, sched = 0;
307 struct cpu_map_ret ret = { };
308 void *frames[CPUMAP_BATCH];
309 void *skbs[CPUMAP_BATCH];
310 u32 i, n, m;
311 bool empty;
312
313 /* Release CPU reschedule checks */
314 if (__ptr_ring_empty(rcpu->queue)) {
315 set_current_state(TASK_INTERRUPTIBLE);
316 /* Recheck to avoid lost wake-up */
317 if (__ptr_ring_empty(rcpu->queue)) {
318 schedule();
319 sched = 1;
320 last_qs = jiffies;
321 } else {
322 __set_current_state(TASK_RUNNING);
323 }
324 } else {
325 rcu_softirq_qs_periodic(last_qs);
326 sched = cond_resched();
327 }
328
329 /*
330 * The bpf_cpu_map_entry is single consumer, with this
331 * kthread CPU pinned. Lockless access to ptr_ring
332 * consume side valid as no-resize allowed of queue.
333 */
334 n = __ptr_ring_consume_batched(rcpu->queue, frames,
335 CPUMAP_BATCH);
336 for (i = 0; i < n; i++) {
337 void *f = frames[i];
338 struct page *page;
339
340 if (unlikely(__ptr_test_bit(0, &f))) {
341 struct sk_buff *skb = f;
342
343 __ptr_clear_bit(0, &skb);
344 skbs[ret.skb_n++] = skb;
345 continue;
346 }
347
348 frames[ret.xdp_n++] = f;
349 page = virt_to_page(f);
350
351 /* Bring struct page memory area to curr CPU. Read by
352 * build_skb_around via page_is_pfmemalloc(), and when
353 * freed written by page_frag_free call.
354 */
355 prefetchw(page);
356 }
357
358 local_bh_disable();
359
360 /* Support running another XDP prog on this CPU */
361 cpu_map_bpf_prog_run(rcpu, frames, skbs, &ret, &stats);
362 if (!ret.xdp_n)
363 goto stats;
364
365 m = napi_skb_cache_get_bulk(skbs, ret.xdp_n);
366 if (unlikely(m < ret.xdp_n)) {
367 for (i = m; i < ret.xdp_n; i++)
368 xdp_return_frame(frames[i]);
369
370 if (ret.skb_n)
371 memmove(&skbs[m], &skbs[ret.xdp_n],
372 ret.skb_n * sizeof(*skbs));
373
374 kmem_alloc_drops += ret.xdp_n - m;
375 ret.xdp_n = m;
376 }
377
378 for (i = 0; i < ret.xdp_n; i++) {
379 struct xdp_frame *xdpf = frames[i];
380
381 /* Can fail only when !skb -- already handled above */
382 __xdp_build_skb_from_frame(xdpf, skbs[i], xdpf->dev_rx);
383 }
384
385 stats:
386 /* Feedback loop via tracepoint.
387 * NB: keep before recv to allow measuring enqueue/dequeue latency.
388 */
389 trace_xdp_cpumap_kthread(rcpu->map_id, n, kmem_alloc_drops,
390 sched, &stats);
391
392 for (i = 0; i < ret.xdp_n + ret.skb_n; i++)
393 gro_receive_skb(&rcpu->gro, skbs[i]);
394
395 /* Flush either every 64 packets or in case of empty ring */
396 packets += n;
397 empty = __ptr_ring_empty(rcpu->queue);
398 if (packets >= NAPI_POLL_WEIGHT || empty) {
399 cpu_map_gro_flush(rcpu, empty);
400 packets = 0;
401 }
402
403 local_bh_enable(); /* resched point, may call do_softirq() */
404 }
405 __set_current_state(TASK_RUNNING);
406
407 return 0;
408 }
409
__cpu_map_load_bpf_program(struct bpf_cpu_map_entry * rcpu,struct bpf_map * map,int fd)410 static int __cpu_map_load_bpf_program(struct bpf_cpu_map_entry *rcpu,
411 struct bpf_map *map, int fd)
412 {
413 struct bpf_prog *prog;
414
415 prog = bpf_prog_get_type(fd, BPF_PROG_TYPE_XDP);
416 if (IS_ERR(prog))
417 return PTR_ERR(prog);
418
419 if (prog->expected_attach_type != BPF_XDP_CPUMAP ||
420 !bpf_prog_map_compatible(map, prog)) {
421 bpf_prog_put(prog);
422 return -EINVAL;
423 }
424
425 rcpu->value.bpf_prog.id = prog->aux->id;
426 rcpu->prog = prog;
427
428 return 0;
429 }
430
431 static struct bpf_cpu_map_entry *
__cpu_map_entry_alloc(struct bpf_map * map,struct bpf_cpumap_val * value,u32 cpu)432 __cpu_map_entry_alloc(struct bpf_map *map, struct bpf_cpumap_val *value,
433 u32 cpu)
434 {
435 int numa, err = -ENOMEM, i, fd = value->bpf_prog.fd;
436 gfp_t gfp = GFP_KERNEL | __GFP_NOWARN;
437 struct bpf_cpu_map_entry *rcpu;
438 struct xdp_bulk_queue *bq;
439
440 /* Have map->numa_node, but choose node of redirect target CPU */
441 numa = cpu_to_node(cpu);
442
443 rcpu = bpf_map_kmalloc_node(map, sizeof(*rcpu), gfp | __GFP_ZERO, numa);
444 if (!rcpu)
445 return ERR_PTR(err);
446
447 /* Alloc percpu bulkq */
448 rcpu->bulkq = bpf_map_alloc_percpu(map, sizeof(*rcpu->bulkq),
449 sizeof(void *), gfp);
450 if (!rcpu->bulkq)
451 goto free_rcu;
452
453 for_each_possible_cpu(i) {
454 bq = per_cpu_ptr(rcpu->bulkq, i);
455 bq->obj = rcpu;
456 local_lock_init(&bq->bq_lock);
457 }
458
459 /* Alloc queue */
460 rcpu->queue = bpf_map_kmalloc_node(map, sizeof(*rcpu->queue), gfp,
461 numa);
462 if (!rcpu->queue)
463 goto free_bulkq;
464
465 err = ptr_ring_init(rcpu->queue, value->qsize, gfp);
466 if (err)
467 goto free_queue;
468
469 rcpu->cpu = cpu;
470 rcpu->map_id = map->id;
471 rcpu->value.qsize = value->qsize;
472 gro_init(&rcpu->gro);
473
474 if (fd > 0) {
475 err = __cpu_map_load_bpf_program(rcpu, map, fd);
476 if (err)
477 goto free_ptr_ring;
478 }
479
480 /* Setup kthread */
481 init_completion(&rcpu->kthread_running);
482 rcpu->kthread = kthread_create_on_node(cpu_map_kthread_run, rcpu, numa,
483 "cpumap/%d/map:%d", cpu,
484 map->id);
485 if (IS_ERR(rcpu->kthread)) {
486 err = PTR_ERR(rcpu->kthread);
487 goto free_prog;
488 }
489
490 /* Make sure kthread runs on a single CPU */
491 kthread_bind(rcpu->kthread, cpu);
492 wake_up_process(rcpu->kthread);
493
494 /* Make sure kthread has been running, so kthread_stop() will not
495 * stop the kthread prematurely and all pending frames or skbs
496 * will be handled by the kthread before kthread_stop() returns.
497 */
498 wait_for_completion(&rcpu->kthread_running);
499
500 return rcpu;
501
502 free_prog:
503 if (rcpu->prog)
504 bpf_prog_put(rcpu->prog);
505 free_ptr_ring:
506 gro_cleanup(&rcpu->gro);
507 ptr_ring_cleanup(rcpu->queue, NULL);
508 free_queue:
509 kfree(rcpu->queue);
510 free_bulkq:
511 free_percpu(rcpu->bulkq);
512 free_rcu:
513 kfree(rcpu);
514 return ERR_PTR(err);
515 }
516
__cpu_map_entry_free(struct work_struct * work)517 static void __cpu_map_entry_free(struct work_struct *work)
518 {
519 struct bpf_cpu_map_entry *rcpu;
520
521 /* This cpu_map_entry have been disconnected from map and one
522 * RCU grace-period have elapsed. Thus, XDP cannot queue any
523 * new packets and cannot change/set flush_needed that can
524 * find this entry.
525 */
526 rcpu = container_of(to_rcu_work(work), struct bpf_cpu_map_entry, free_work);
527
528 /* kthread_stop will wake_up_process and wait for it to complete.
529 * cpu_map_kthread_run() makes sure the pointer ring is empty
530 * before exiting.
531 */
532 kthread_stop(rcpu->kthread);
533
534 if (rcpu->prog)
535 bpf_prog_put(rcpu->prog);
536 gro_cleanup(&rcpu->gro);
537 /* The queue should be empty at this point */
538 __cpu_map_ring_cleanup(rcpu->queue);
539 ptr_ring_cleanup(rcpu->queue, NULL);
540 kfree(rcpu->queue);
541 free_percpu(rcpu->bulkq);
542 kfree(rcpu);
543 }
544
545 /* After the xchg of the bpf_cpu_map_entry pointer, we need to make sure the old
546 * entry is no longer in use before freeing. We use queue_rcu_work() to call
547 * __cpu_map_entry_free() in a separate workqueue after waiting for an RCU grace
548 * period. This means that (a) all pending enqueue and flush operations have
549 * completed (because of the RCU callback), and (b) we are in a workqueue
550 * context where we can stop the kthread and wait for it to exit before freeing
551 * everything.
552 */
__cpu_map_entry_replace(struct bpf_cpu_map * cmap,u32 key_cpu,struct bpf_cpu_map_entry * rcpu)553 static void __cpu_map_entry_replace(struct bpf_cpu_map *cmap,
554 u32 key_cpu, struct bpf_cpu_map_entry *rcpu)
555 {
556 struct bpf_cpu_map_entry *old_rcpu;
557
558 old_rcpu = unrcu_pointer(xchg(&cmap->cpu_map[key_cpu], RCU_INITIALIZER(rcpu)));
559 if (old_rcpu) {
560 INIT_RCU_WORK(&old_rcpu->free_work, __cpu_map_entry_free);
561 queue_rcu_work(system_percpu_wq, &old_rcpu->free_work);
562 }
563 }
564
cpu_map_delete_elem(struct bpf_map * map,void * key)565 static long cpu_map_delete_elem(struct bpf_map *map, void *key)
566 {
567 struct bpf_cpu_map *cmap = container_of(map, struct bpf_cpu_map, map);
568 u32 key_cpu = *(u32 *)key;
569
570 if (key_cpu >= map->max_entries)
571 return -EINVAL;
572
573 /* notice caller map_delete_elem() uses rcu_read_lock() */
574 __cpu_map_entry_replace(cmap, key_cpu, NULL);
575 return 0;
576 }
577
cpu_map_update_elem(struct bpf_map * map,void * key,void * value,u64 map_flags)578 static long cpu_map_update_elem(struct bpf_map *map, void *key, void *value,
579 u64 map_flags)
580 {
581 struct bpf_cpu_map *cmap = container_of(map, struct bpf_cpu_map, map);
582 struct bpf_cpumap_val cpumap_value = {};
583 struct bpf_cpu_map_entry *rcpu;
584 /* Array index key correspond to CPU number */
585 u32 key_cpu = *(u32 *)key;
586
587 memcpy(&cpumap_value, value, map->value_size);
588
589 if (unlikely(map_flags > BPF_EXIST))
590 return -EINVAL;
591 if (unlikely(key_cpu >= cmap->map.max_entries))
592 return -E2BIG;
593 if (unlikely(map_flags == BPF_NOEXIST))
594 return -EEXIST;
595 if (unlikely(cpumap_value.qsize > 16384)) /* sanity limit on qsize */
596 return -EOVERFLOW;
597
598 /* Make sure CPU is a valid possible cpu */
599 if (key_cpu >= nr_cpumask_bits || !cpu_possible(key_cpu))
600 return -ENODEV;
601
602 if (cpumap_value.qsize == 0) {
603 rcpu = NULL; /* Same as deleting */
604 } else {
605 /* Updating qsize cause re-allocation of bpf_cpu_map_entry */
606 rcpu = __cpu_map_entry_alloc(map, &cpumap_value, key_cpu);
607 if (IS_ERR(rcpu))
608 return PTR_ERR(rcpu);
609 }
610 rcu_read_lock();
611 __cpu_map_entry_replace(cmap, key_cpu, rcpu);
612 rcu_read_unlock();
613 return 0;
614 }
615
cpu_map_free(struct bpf_map * map)616 static void cpu_map_free(struct bpf_map *map)
617 {
618 struct bpf_cpu_map *cmap = container_of(map, struct bpf_cpu_map, map);
619 u32 i;
620
621 /* At this point bpf_prog->aux->refcnt == 0 and this map->refcnt == 0,
622 * so the bpf programs (can be more than one that used this map) were
623 * disconnected from events. Wait for outstanding critical sections in
624 * these programs to complete. synchronize_rcu() below not only
625 * guarantees no further "XDP/bpf-side" reads against
626 * bpf_cpu_map->cpu_map, but also ensure pending flush operations
627 * (if any) are completed.
628 */
629 synchronize_rcu();
630
631 /* The only possible user of bpf_cpu_map_entry is
632 * cpu_map_kthread_run().
633 */
634 for (i = 0; i < cmap->map.max_entries; i++) {
635 struct bpf_cpu_map_entry *rcpu;
636
637 rcpu = rcu_dereference_raw(cmap->cpu_map[i]);
638 if (!rcpu)
639 continue;
640
641 /* Stop kthread and cleanup entry directly */
642 __cpu_map_entry_free(&rcpu->free_work.work);
643 }
644 bpf_map_area_free(cmap->cpu_map);
645 bpf_map_area_free(cmap);
646 }
647
648 /* Elements are kept alive by RCU; either by rcu_read_lock() (from syscall) or
649 * by local_bh_disable() (from XDP calls inside NAPI). The
650 * rcu_read_lock_bh_held() below makes lockdep accept both.
651 */
__cpu_map_lookup_elem(struct bpf_map * map,u32 key)652 static void *__cpu_map_lookup_elem(struct bpf_map *map, u32 key)
653 {
654 struct bpf_cpu_map *cmap = container_of(map, struct bpf_cpu_map, map);
655 struct bpf_cpu_map_entry *rcpu;
656
657 if (key >= map->max_entries)
658 return NULL;
659
660 rcpu = rcu_dereference_check(cmap->cpu_map[key],
661 rcu_read_lock_bh_held());
662 return rcpu;
663 }
664
cpu_map_lookup_elem(struct bpf_map * map,void * key)665 static void *cpu_map_lookup_elem(struct bpf_map *map, void *key)
666 {
667 struct bpf_cpu_map_entry *rcpu =
668 __cpu_map_lookup_elem(map, *(u32 *)key);
669
670 return rcpu ? &rcpu->value : NULL;
671 }
672
cpu_map_get_next_key(struct bpf_map * map,void * key,void * next_key)673 static int cpu_map_get_next_key(struct bpf_map *map, void *key, void *next_key)
674 {
675 struct bpf_cpu_map *cmap = container_of(map, struct bpf_cpu_map, map);
676 u32 index = key ? *(u32 *)key : U32_MAX;
677 u32 *next = next_key;
678
679 if (index >= cmap->map.max_entries) {
680 *next = 0;
681 return 0;
682 }
683
684 if (index == cmap->map.max_entries - 1)
685 return -ENOENT;
686 *next = index + 1;
687 return 0;
688 }
689
cpu_map_redirect(struct bpf_map * map,u64 index,u64 flags)690 static long cpu_map_redirect(struct bpf_map *map, u64 index, u64 flags)
691 {
692 return __bpf_xdp_redirect_map(map, index, flags, 0,
693 __cpu_map_lookup_elem);
694 }
695
cpu_map_mem_usage(const struct bpf_map * map)696 static u64 cpu_map_mem_usage(const struct bpf_map *map)
697 {
698 u64 usage = sizeof(struct bpf_cpu_map);
699
700 /* Currently the dynamically allocated elements are not counted */
701 usage += (u64)map->max_entries * sizeof(struct bpf_cpu_map_entry *);
702 return usage;
703 }
704
705 BTF_ID_LIST_SINGLE(cpu_map_btf_ids, struct, bpf_cpu_map)
706 const struct bpf_map_ops cpu_map_ops = {
707 .map_meta_equal = bpf_map_meta_equal,
708 .map_alloc = cpu_map_alloc,
709 .map_free = cpu_map_free,
710 .map_delete_elem = cpu_map_delete_elem,
711 .map_update_elem = cpu_map_update_elem,
712 .map_lookup_elem = cpu_map_lookup_elem,
713 .map_get_next_key = cpu_map_get_next_key,
714 .map_check_btf = map_check_no_btf,
715 .map_mem_usage = cpu_map_mem_usage,
716 .map_btf_id = &cpu_map_btf_ids[0],
717 .map_redirect = cpu_map_redirect,
718 };
719
bq_flush_to_queue(struct xdp_bulk_queue * bq)720 static void bq_flush_to_queue(struct xdp_bulk_queue *bq)
721 {
722 struct bpf_cpu_map_entry *rcpu = bq->obj;
723 unsigned int processed = 0, drops = 0;
724 const int to_cpu = rcpu->cpu;
725 struct ptr_ring *q;
726 int i;
727
728 lockdep_assert_held(&bq->bq_lock);
729
730 if (unlikely(!bq->count))
731 return;
732
733 q = rcpu->queue;
734 spin_lock(&q->producer_lock);
735
736 for (i = 0; i < bq->count; i++) {
737 struct xdp_frame *xdpf = bq->q[i];
738 int err;
739
740 err = __ptr_ring_produce(q, xdpf);
741 if (err) {
742 drops++;
743 xdp_return_frame_rx_napi(xdpf);
744 }
745 processed++;
746 }
747 bq->count = 0;
748 spin_unlock(&q->producer_lock);
749
750 __list_del_clearprev(&bq->flush_node);
751
752 /* Feedback loop via tracepoints */
753 trace_xdp_cpumap_enqueue(rcpu->map_id, processed, drops, to_cpu);
754 }
755
756 /* Runs under RCU-read-side, plus in softirq under NAPI protection.
757 * Thus, safe percpu variable access. PREEMPT_RT relies on
758 * local_lock_nested_bh() to serialise access to the per-CPU bq.
759 */
bq_enqueue(struct bpf_cpu_map_entry * rcpu,struct xdp_frame * xdpf)760 static void bq_enqueue(struct bpf_cpu_map_entry *rcpu, struct xdp_frame *xdpf)
761 {
762 struct xdp_bulk_queue *bq;
763
764 local_lock_nested_bh(&rcpu->bulkq->bq_lock);
765 bq = this_cpu_ptr(rcpu->bulkq);
766
767 if (unlikely(bq->count == CPU_MAP_BULK_SIZE))
768 bq_flush_to_queue(bq);
769
770 /* Notice, xdp_buff/page MUST be queued here, long enough for
771 * driver to code invoking us to finished, due to driver
772 * (e.g. ixgbe) recycle tricks based on page-refcnt.
773 *
774 * Thus, incoming xdp_frame is always queued here (else we race
775 * with another CPU on page-refcnt and remaining driver code).
776 * Queue time is very short, as driver will invoke flush
777 * operation, when completing napi->poll call.
778 */
779 bq->q[bq->count++] = xdpf;
780
781 if (!bq->flush_node.prev) {
782 struct list_head *flush_list = bpf_net_ctx_get_cpu_map_flush_list();
783
784 list_add(&bq->flush_node, flush_list);
785 }
786
787 local_unlock_nested_bh(&rcpu->bulkq->bq_lock);
788 }
789
cpu_map_enqueue(struct bpf_cpu_map_entry * rcpu,struct xdp_frame * xdpf,struct net_device * dev_rx)790 int cpu_map_enqueue(struct bpf_cpu_map_entry *rcpu, struct xdp_frame *xdpf,
791 struct net_device *dev_rx)
792 {
793 /* Info needed when constructing SKB on remote CPU */
794 xdpf->dev_rx = dev_rx;
795
796 bq_enqueue(rcpu, xdpf);
797 return 0;
798 }
799
cpu_map_generic_redirect(struct bpf_cpu_map_entry * rcpu,struct sk_buff * skb)800 int cpu_map_generic_redirect(struct bpf_cpu_map_entry *rcpu,
801 struct sk_buff *skb)
802 {
803 int ret;
804
805 __skb_pull(skb, skb->mac_len);
806 skb_set_redirected(skb, false);
807 __ptr_set_bit(0, &skb);
808
809 ret = ptr_ring_produce(rcpu->queue, skb);
810 if (ret < 0)
811 goto trace;
812
813 wake_up_process(rcpu->kthread);
814 trace:
815 trace_xdp_cpumap_enqueue(rcpu->map_id, !ret, !!ret, rcpu->cpu);
816 return ret;
817 }
818
__cpu_map_flush(struct list_head * flush_list)819 void __cpu_map_flush(struct list_head *flush_list)
820 {
821 struct xdp_bulk_queue *bq, *tmp;
822
823 list_for_each_entry_safe(bq, tmp, flush_list, flush_node) {
824 local_lock_nested_bh(&bq->obj->bulkq->bq_lock);
825 bq_flush_to_queue(bq);
826 local_unlock_nested_bh(&bq->obj->bulkq->bq_lock);
827
828 /* If already running, costs spin_lock_irqsave + smb_mb */
829 wake_up_process(bq->obj->kthread);
830 }
831 }
832