1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * net/sched/sch_fq.c Fair Queue Packet Scheduler (per flow pacing)
4 *
5 * Copyright (C) 2013-2023 Eric Dumazet <edumazet@google.com>
6 *
7 * Meant to be mostly used for locally generated traffic :
8 * Fast classification depends on skb->sk being set before reaching us.
9 * If not, (router workload), we use rxhash as fallback, with 32 bits wide hash.
10 * All packets belonging to a socket are considered as a 'flow'.
11 *
12 * Flows are dynamically allocated and stored in a hash table of RB trees
13 * They are also part of one Round Robin 'queues' (new or old flows)
14 *
15 * Burst avoidance (aka pacing) capability :
16 *
17 * Transport (eg TCP) can set in sk->sk_pacing_rate a rate, enqueue a
18 * bunch of packets, and this packet scheduler adds delay between
19 * packets to respect rate limitation.
20 *
21 * enqueue() :
22 * - lookup one RB tree (out of 1024 or more) to find the flow.
23 * If non existent flow, create it, add it to the tree.
24 * Add skb to the per flow list of skb (fifo).
25 * - Use a special fifo for high prio packets
26 *
27 * dequeue() : serves flows in Round Robin
28 * Note : When a flow becomes empty, we do not immediately remove it from
29 * rb trees, for performance reasons (its expected to send additional packets,
30 * or SLAB cache will reuse socket for another flow)
31 */
32
33 #include <linux/module.h>
34 #include <linux/types.h>
35 #include <linux/kernel.h>
36 #include <linux/jiffies.h>
37 #include <linux/string.h>
38 #include <linux/in.h>
39 #include <linux/errno.h>
40 #include <linux/init.h>
41 #include <linux/skbuff.h>
42 #include <linux/slab.h>
43 #include <linux/rbtree.h>
44 #include <linux/hash.h>
45 #include <linux/prefetch.h>
46 #include <linux/vmalloc.h>
47 #include <net/netlink.h>
48 #include <net/pkt_sched.h>
49 #include <net/sock.h>
50 #include <net/tcp_states.h>
51 #include <net/tcp.h>
52
53 struct fq_skb_cb {
54 u64 time_to_send;
55 u8 band;
56 };
57
fq_skb_cb(struct sk_buff * skb)58 static inline struct fq_skb_cb *fq_skb_cb(struct sk_buff *skb)
59 {
60 qdisc_cb_private_validate(skb, sizeof(struct fq_skb_cb));
61 return (struct fq_skb_cb *)qdisc_skb_cb(skb)->data;
62 }
63
64 /*
65 * Per flow structure, dynamically allocated.
66 * If packets have monotically increasing time_to_send, they are placed in O(1)
67 * in linear list (head,tail), otherwise are placed in a rbtree (t_root).
68 */
69 struct fq_flow {
70 /* First cache line : used in fq_gc(), fq_enqueue(), fq_dequeue() */
71 struct rb_root t_root;
72 struct sk_buff *head; /* list of skbs for this flow : first skb */
73 union {
74 struct sk_buff *tail; /* last skb in the list */
75 unsigned long age; /* (jiffies | 1UL) when flow was emptied, for gc */
76 };
77 union {
78 struct rb_node fq_node; /* anchor in fq_root[] trees */
79 /* Following field is only used for q->internal,
80 * because q->internal is not hashed in fq_root[]
81 */
82 u64 stat_fastpath_packets;
83 };
84 struct sock *sk;
85 u32 socket_hash; /* sk_hash */
86 int qlen; /* number of packets in flow queue */
87
88 /* Second cache line */
89 int credit;
90 int band;
91 struct fq_flow *next; /* next pointer in RR lists */
92
93 struct rb_node rate_node; /* anchor in q->delayed tree */
94 u64 time_next_packet;
95 };
96
97 struct fq_flow_head {
98 struct fq_flow *first;
99 struct fq_flow *last;
100 };
101
102 struct fq_perband_flows {
103 struct fq_flow_head new_flows;
104 struct fq_flow_head old_flows;
105 int credit;
106 int quantum; /* based on band nr : 576KB, 192KB, 64KB */
107 };
108
109 #define FQ_PRIO2BAND_CRUMB_SIZE ((TC_PRIO_MAX + 1) >> 2)
110
111 struct fq_sched_data {
112 /* Read mostly cache line */
113
114 u64 offload_horizon;
115 u32 quantum;
116 u32 initial_quantum;
117 u32 flow_refill_delay;
118 u32 flow_plimit; /* max packets per flow */
119 unsigned long flow_max_rate; /* optional max rate per flow */
120 u64 ce_threshold;
121 u64 horizon; /* horizon in ns */
122 u32 orphan_mask; /* mask for orphaned skb */
123 u32 low_rate_threshold;
124 struct rb_root *fq_root;
125 u8 rate_enable;
126 u8 fq_trees_log;
127 u8 horizon_drop;
128 u8 prio2band[FQ_PRIO2BAND_CRUMB_SIZE];
129 u32 timer_slack; /* hrtimer slack in ns */
130
131 /* Read/Write fields. */
132
133 unsigned int band_nr; /* band being serviced in fq_dequeue() */
134
135 struct fq_perband_flows band_flows[FQ_BANDS];
136
137 struct fq_flow internal; /* fastpath queue. */
138 struct rb_root delayed; /* for rate limited flows */
139 u64 time_next_delayed_flow;
140 unsigned long unthrottle_latency_ns;
141
142 u32 band_pkt_count[FQ_BANDS];
143 u32 flows;
144 u32 inactive_flows; /* Flows with no packet to send. */
145 u32 throttled_flows;
146
147 u64 stat_throttled;
148 struct qdisc_watchdog watchdog;
149 u64 stat_gc_flows;
150
151 /* Seldom used fields. */
152
153 u64 stat_band_drops[FQ_BANDS];
154 u64 stat_ce_mark;
155 u64 stat_horizon_drops;
156 u64 stat_horizon_caps;
157 u64 stat_flows_plimit;
158 u64 stat_pkts_too_long;
159 u64 stat_allocation_errors;
160 };
161
162 /* return the i-th 2-bit value ("crumb") */
fq_prio2band(const u8 * prio2band,unsigned int prio)163 static u8 fq_prio2band(const u8 *prio2band, unsigned int prio)
164 {
165 return (READ_ONCE(prio2band[prio / 4]) >> (2 * (prio & 0x3))) & 0x3;
166 }
167
168 /*
169 * f->tail and f->age share the same location.
170 * We can use the low order bit to differentiate if this location points
171 * to a sk_buff or contains a jiffies value, if we force this value to be odd.
172 * This assumes f->tail low order bit must be 0 since alignof(struct sk_buff) >= 2
173 */
fq_flow_set_detached(struct fq_flow * f)174 static void fq_flow_set_detached(struct fq_flow *f)
175 {
176 f->age = jiffies | 1UL;
177 }
178
fq_flow_is_detached(const struct fq_flow * f)179 static bool fq_flow_is_detached(const struct fq_flow *f)
180 {
181 return !!(f->age & 1UL);
182 }
183
184 /* special value to mark a throttled flow (not on old/new list) */
185 static struct fq_flow throttled;
186
fq_flow_is_throttled(const struct fq_flow * f)187 static bool fq_flow_is_throttled(const struct fq_flow *f)
188 {
189 return f->next == &throttled;
190 }
191
192 enum new_flow {
193 NEW_FLOW,
194 OLD_FLOW
195 };
196
fq_flow_add_tail(struct fq_sched_data * q,struct fq_flow * flow,enum new_flow list_sel)197 static void fq_flow_add_tail(struct fq_sched_data *q, struct fq_flow *flow,
198 enum new_flow list_sel)
199 {
200 struct fq_perband_flows *pband = &q->band_flows[flow->band];
201 struct fq_flow_head *head = (list_sel == NEW_FLOW) ?
202 &pband->new_flows :
203 &pband->old_flows;
204
205 if (head->first)
206 head->last->next = flow;
207 else
208 head->first = flow;
209 head->last = flow;
210 flow->next = NULL;
211 }
212
fq_flow_unset_throttled(struct fq_sched_data * q,struct fq_flow * f)213 static void fq_flow_unset_throttled(struct fq_sched_data *q, struct fq_flow *f)
214 {
215 rb_erase(&f->rate_node, &q->delayed);
216 q->throttled_flows--;
217 fq_flow_add_tail(q, f, OLD_FLOW);
218 }
219
fq_flow_set_throttled(struct fq_sched_data * q,struct fq_flow * f)220 static void fq_flow_set_throttled(struct fq_sched_data *q, struct fq_flow *f)
221 {
222 struct rb_node **p = &q->delayed.rb_node, *parent = NULL;
223
224 while (*p) {
225 struct fq_flow *aux;
226
227 parent = *p;
228 aux = rb_entry(parent, struct fq_flow, rate_node);
229 if (f->time_next_packet >= aux->time_next_packet)
230 p = &parent->rb_right;
231 else
232 p = &parent->rb_left;
233 }
234 rb_link_node(&f->rate_node, parent, p);
235 rb_insert_color(&f->rate_node, &q->delayed);
236 q->throttled_flows++;
237 q->stat_throttled++;
238
239 f->next = &throttled;
240 if (q->time_next_delayed_flow > f->time_next_packet)
241 q->time_next_delayed_flow = f->time_next_packet;
242 }
243
244
245 static struct kmem_cache *fq_flow_cachep __read_mostly;
246
247
248 #define FQ_GC_AGE (3*HZ)
249
fq_gc_candidate(const struct fq_flow * f)250 static bool fq_gc_candidate(const struct fq_flow *f)
251 {
252 return fq_flow_is_detached(f) &&
253 time_after(jiffies, f->age + FQ_GC_AGE);
254 }
255
fq_gc(struct fq_sched_data * q,struct rb_root * root,struct sock * sk)256 static void fq_gc(struct fq_sched_data *q,
257 struct rb_root *root,
258 struct sock *sk)
259 {
260 struct fq_flow *f, *tofree = NULL;
261 struct rb_node **p, *parent;
262 int fcnt;
263
264 p = &root->rb_node;
265 parent = NULL;
266 while (*p) {
267 parent = *p;
268
269 f = rb_entry(parent, struct fq_flow, fq_node);
270 if (f->sk == sk)
271 break;
272
273 if (fq_gc_candidate(f)) {
274 f->next = tofree;
275 tofree = f;
276 }
277
278 if (f->sk > sk)
279 p = &parent->rb_right;
280 else
281 p = &parent->rb_left;
282 }
283
284 if (!tofree)
285 return;
286
287 fcnt = 0;
288 while (tofree) {
289 f = tofree;
290 tofree = f->next;
291 rb_erase(&f->fq_node, root);
292 kmem_cache_free(fq_flow_cachep, f);
293 fcnt++;
294 }
295 q->flows -= fcnt;
296 q->inactive_flows -= fcnt;
297 q->stat_gc_flows += fcnt;
298 }
299
300 /* Fast path can be used if :
301 * 1) Packet tstamp is in the past, or within the pacing offload horizon.
302 * 2) FQ qlen == 0 OR
303 * (no flow is currently eligible for transmit,
304 * AND fast path queue has less than 8 packets)
305 * 3) No SO_MAX_PACING_RATE on the socket (if any).
306 * 4) No @maxrate attribute on this qdisc,
307 *
308 * FQ can not use generic TCQ_F_CAN_BYPASS infrastructure.
309 */
fq_fastpath_check(const struct Qdisc * sch,struct sk_buff * skb,u64 now)310 static bool fq_fastpath_check(const struct Qdisc *sch, struct sk_buff *skb,
311 u64 now)
312 {
313 const struct fq_sched_data *q = qdisc_priv(sch);
314 const struct sock *sk;
315
316 if (fq_skb_cb(skb)->time_to_send > now + q->offload_horizon)
317 return false;
318
319 if (sch->q.qlen != 0) {
320 /* Even if some packets are stored in this qdisc,
321 * we can still enable fast path if all of them are
322 * scheduled in the future (ie no flows are eligible)
323 * or in the fast path queue.
324 */
325 if (q->flows != q->inactive_flows + q->throttled_flows)
326 return false;
327
328 /* Do not allow fast path queue to explode, we want Fair Queue mode
329 * under pressure.
330 */
331 if (q->internal.qlen >= 8)
332 return false;
333
334 /* Ordering invariants fall apart if some delayed flows
335 * are ready but we haven't serviced them, yet.
336 */
337 if (q->time_next_delayed_flow <= now + q->offload_horizon)
338 return false;
339 }
340
341 sk = skb->sk;
342 if (sk && sk_fullsock(sk) && !sk_is_tcp(sk) &&
343 sk->sk_max_pacing_rate != ~0UL)
344 return false;
345
346 if (q->flow_max_rate != ~0UL)
347 return false;
348
349 return true;
350 }
351
fq_classify(struct Qdisc * sch,struct sk_buff * skb,u64 now)352 static struct fq_flow *fq_classify(struct Qdisc *sch, struct sk_buff *skb,
353 u64 now)
354 {
355 struct fq_sched_data *q = qdisc_priv(sch);
356 struct rb_node **p, *parent;
357 struct sock *sk = skb->sk;
358 struct rb_root *root;
359 struct fq_flow *f;
360
361 /* SYNACK messages are attached to a TCP_NEW_SYN_RECV request socket
362 * or a listener (SYNCOOKIE mode)
363 * 1) request sockets are not full blown,
364 * they do not contain sk_pacing_rate
365 * 2) They are not part of a 'flow' yet
366 * 3) We do not want to rate limit them (eg SYNFLOOD attack),
367 * especially if the listener set SO_MAX_PACING_RATE
368 * 4) We pretend they are orphaned
369 * TCP can also associate TIME_WAIT sockets with RST or ACK packets.
370 */
371 if (!sk || sk_listener_or_tw(sk)) {
372 unsigned long hash = skb_get_hash(skb) & q->orphan_mask;
373
374 /* By forcing low order bit to 1, we make sure to not
375 * collide with a local flow (socket pointers are word aligned)
376 */
377 sk = (struct sock *)((hash << 1) | 1UL);
378 skb_orphan(skb);
379 } else if (sk->sk_state == TCP_CLOSE) {
380 unsigned long hash = skb_get_hash(skb) & q->orphan_mask;
381 /*
382 * Sockets in TCP_CLOSE are non connected.
383 * Typical use case is UDP sockets, they can send packets
384 * with sendto() to many different destinations.
385 * We probably could use a generic bit advertising
386 * non connected sockets, instead of sk_state == TCP_CLOSE,
387 * if we care enough.
388 */
389 sk = (struct sock *)((hash << 1) | 1UL);
390 }
391
392 if (fq_fastpath_check(sch, skb, now)) {
393 q->internal.stat_fastpath_packets++;
394 if (skb->sk == sk && q->rate_enable &&
395 READ_ONCE(sk->sk_pacing_status) != SK_PACING_FQ)
396 smp_store_release(&sk->sk_pacing_status,
397 SK_PACING_FQ);
398 return &q->internal;
399 }
400
401 root = &q->fq_root[hash_ptr(sk, q->fq_trees_log)];
402
403 fq_gc(q, root, sk);
404
405 p = &root->rb_node;
406 parent = NULL;
407 while (*p) {
408 parent = *p;
409
410 f = rb_entry(parent, struct fq_flow, fq_node);
411 if (f->sk == sk) {
412 /* socket might have been reallocated, so check
413 * if its sk_hash is the same.
414 * It not, we need to refill credit with
415 * initial quantum
416 */
417 if (unlikely(skb->sk == sk &&
418 f->socket_hash != sk->sk_hash)) {
419 f->credit = q->initial_quantum;
420 f->socket_hash = sk->sk_hash;
421 if (q->rate_enable)
422 smp_store_release(&sk->sk_pacing_status,
423 SK_PACING_FQ);
424 if (fq_flow_is_throttled(f))
425 fq_flow_unset_throttled(q, f);
426 f->time_next_packet = 0ULL;
427 }
428 return f;
429 }
430 if (f->sk > sk)
431 p = &parent->rb_right;
432 else
433 p = &parent->rb_left;
434 }
435
436 f = kmem_cache_zalloc(fq_flow_cachep, GFP_ATOMIC | __GFP_NOWARN);
437 if (unlikely(!f)) {
438 q->stat_allocation_errors++;
439 return &q->internal;
440 }
441 /* f->t_root is already zeroed after kmem_cache_zalloc() */
442
443 fq_flow_set_detached(f);
444 f->sk = sk;
445 if (skb->sk == sk) {
446 f->socket_hash = sk->sk_hash;
447 if (q->rate_enable)
448 smp_store_release(&sk->sk_pacing_status,
449 SK_PACING_FQ);
450 }
451 f->credit = q->initial_quantum;
452
453 rb_link_node(&f->fq_node, parent, p);
454 rb_insert_color(&f->fq_node, root);
455
456 q->flows++;
457 q->inactive_flows++;
458 return f;
459 }
460
fq_peek(struct fq_flow * flow)461 static struct sk_buff *fq_peek(struct fq_flow *flow)
462 {
463 struct sk_buff *skb = skb_rb_first(&flow->t_root);
464 struct sk_buff *head = flow->head;
465
466 if (!skb)
467 return head;
468
469 if (!head)
470 return skb;
471
472 if (fq_skb_cb(skb)->time_to_send < fq_skb_cb(head)->time_to_send)
473 return skb;
474 return head;
475 }
476
fq_erase_head(struct Qdisc * sch,struct fq_flow * flow,struct sk_buff * skb)477 static void fq_erase_head(struct Qdisc *sch, struct fq_flow *flow,
478 struct sk_buff *skb)
479 {
480 if (skb == flow->head) {
481 struct sk_buff *next = skb->next;
482
483 prefetch(next);
484 flow->head = next;
485 } else {
486 rb_erase(&skb->rbnode, &flow->t_root);
487 skb->dev = qdisc_dev(sch);
488 }
489 }
490
491 /* Remove one skb from flow queue.
492 * This skb must be the return value of prior fq_peek().
493 */
fq_dequeue_skb(struct Qdisc * sch,struct fq_flow * flow,struct sk_buff * skb)494 static void fq_dequeue_skb(struct Qdisc *sch, struct fq_flow *flow,
495 struct sk_buff *skb)
496 {
497 fq_erase_head(sch, flow, skb);
498 skb_mark_not_on_list(skb);
499 qdisc_qstats_backlog_dec(sch, skb);
500 sch->q.qlen--;
501 qdisc_bstats_update(sch, skb);
502 }
503
flow_queue_add(struct fq_flow * flow,struct sk_buff * skb)504 static void flow_queue_add(struct fq_flow *flow, struct sk_buff *skb)
505 {
506 struct rb_node **p, *parent;
507 struct sk_buff *head, *aux;
508
509 head = flow->head;
510 if (!head ||
511 fq_skb_cb(skb)->time_to_send >= fq_skb_cb(flow->tail)->time_to_send) {
512 if (!head)
513 flow->head = skb;
514 else
515 flow->tail->next = skb;
516 flow->tail = skb;
517 skb->next = NULL;
518 return;
519 }
520
521 p = &flow->t_root.rb_node;
522 parent = NULL;
523
524 while (*p) {
525 parent = *p;
526 aux = rb_to_skb(parent);
527 if (fq_skb_cb(skb)->time_to_send >= fq_skb_cb(aux)->time_to_send)
528 p = &parent->rb_right;
529 else
530 p = &parent->rb_left;
531 }
532 rb_link_node(&skb->rbnode, parent, p);
533 rb_insert_color(&skb->rbnode, &flow->t_root);
534 }
535
fq_packet_beyond_horizon(const struct sk_buff * skb,const struct fq_sched_data * q,u64 now)536 static bool fq_packet_beyond_horizon(const struct sk_buff *skb,
537 const struct fq_sched_data *q, u64 now)
538 {
539 return unlikely((s64)skb->tstamp > (s64)(now + q->horizon));
540 }
541
542 #define FQDR(reason) SKB_DROP_REASON_FQ_##reason
543
fq_enqueue(struct sk_buff * skb,struct Qdisc * sch,struct sk_buff ** to_free)544 static int fq_enqueue(struct sk_buff *skb, struct Qdisc *sch,
545 struct sk_buff **to_free)
546 {
547 struct fq_sched_data *q = qdisc_priv(sch);
548 struct fq_flow *f;
549 u64 now;
550 u8 band;
551
552 band = fq_prio2band(q->prio2band, skb->priority & TC_PRIO_MAX);
553 if (unlikely(q->band_pkt_count[band] >= sch->limit)) {
554 q->stat_band_drops[band]++;
555 return qdisc_drop_reason(skb, sch, to_free,
556 FQDR(BAND_LIMIT));
557 }
558
559 now = ktime_get_ns();
560 if (!skb->tstamp) {
561 fq_skb_cb(skb)->time_to_send = now;
562 } else {
563 /* Check if packet timestamp is too far in the future. */
564 if (fq_packet_beyond_horizon(skb, q, now)) {
565 if (q->horizon_drop) {
566 q->stat_horizon_drops++;
567 return qdisc_drop_reason(skb, sch, to_free,
568 FQDR(HORIZON_LIMIT));
569 }
570 q->stat_horizon_caps++;
571 skb->tstamp = now + q->horizon;
572 }
573 fq_skb_cb(skb)->time_to_send = skb->tstamp;
574 }
575
576 f = fq_classify(sch, skb, now);
577
578 if (f != &q->internal) {
579 if (unlikely(f->qlen >= q->flow_plimit)) {
580 q->stat_flows_plimit++;
581 return qdisc_drop_reason(skb, sch, to_free,
582 FQDR(FLOW_LIMIT));
583 }
584
585 if (fq_flow_is_detached(f)) {
586 fq_flow_add_tail(q, f, NEW_FLOW);
587 if (time_after(jiffies, f->age + q->flow_refill_delay))
588 f->credit = max_t(u32, f->credit, q->quantum);
589 }
590
591 f->band = band;
592 q->band_pkt_count[band]++;
593 fq_skb_cb(skb)->band = band;
594 if (f->qlen == 0)
595 q->inactive_flows--;
596 }
597
598 f->qlen++;
599 /* Note: this overwrites f->age */
600 flow_queue_add(f, skb);
601
602 qdisc_qstats_backlog_inc(sch, skb);
603 sch->q.qlen++;
604
605 return NET_XMIT_SUCCESS;
606 }
607 #undef FQDR
608
fq_check_throttled(struct fq_sched_data * q,u64 now)609 static void fq_check_throttled(struct fq_sched_data *q, u64 now)
610 {
611 unsigned long sample;
612 struct rb_node *p;
613
614 if (q->time_next_delayed_flow > now + q->offload_horizon)
615 return;
616
617 /* Update unthrottle latency EWMA.
618 * This is cheap and can help diagnosing timer/latency problems.
619 */
620 sample = (unsigned long)(now - q->time_next_delayed_flow);
621 if ((long)sample > 0) {
622 q->unthrottle_latency_ns -= q->unthrottle_latency_ns >> 3;
623 q->unthrottle_latency_ns += sample >> 3;
624 }
625 now += q->offload_horizon;
626
627 q->time_next_delayed_flow = ~0ULL;
628 while ((p = rb_first(&q->delayed)) != NULL) {
629 struct fq_flow *f = rb_entry(p, struct fq_flow, rate_node);
630
631 if (f->time_next_packet > now) {
632 q->time_next_delayed_flow = f->time_next_packet;
633 break;
634 }
635 fq_flow_unset_throttled(q, f);
636 }
637 }
638
fq_pband_head_select(struct fq_perband_flows * pband)639 static struct fq_flow_head *fq_pband_head_select(struct fq_perband_flows *pband)
640 {
641 if (pband->credit <= 0)
642 return NULL;
643
644 if (pband->new_flows.first)
645 return &pband->new_flows;
646
647 return pband->old_flows.first ? &pband->old_flows : NULL;
648 }
649
fq_dequeue(struct Qdisc * sch)650 static struct sk_buff *fq_dequeue(struct Qdisc *sch)
651 {
652 struct fq_sched_data *q = qdisc_priv(sch);
653 struct fq_perband_flows *pband;
654 struct fq_flow_head *head;
655 struct sk_buff *skb;
656 struct fq_flow *f;
657 unsigned long rate;
658 int retry;
659 u32 plen;
660 u64 now;
661
662 if (!sch->q.qlen)
663 return NULL;
664
665 skb = fq_peek(&q->internal);
666 if (skb) {
667 q->internal.qlen--;
668 fq_dequeue_skb(sch, &q->internal, skb);
669 goto out;
670 }
671
672 now = ktime_get_ns();
673 fq_check_throttled(q, now);
674 retry = 0;
675 pband = &q->band_flows[q->band_nr];
676 begin:
677 head = fq_pband_head_select(pband);
678 if (!head) {
679 while (++retry <= FQ_BANDS) {
680 if (++q->band_nr == FQ_BANDS)
681 q->band_nr = 0;
682 pband = &q->band_flows[q->band_nr];
683 pband->credit = min(pband->credit + pband->quantum,
684 pband->quantum);
685 if (pband->credit > 0)
686 goto begin;
687 retry = 0;
688 }
689 if (q->time_next_delayed_flow != ~0ULL)
690 qdisc_watchdog_schedule_range_ns(&q->watchdog,
691 q->time_next_delayed_flow,
692 q->timer_slack);
693 return NULL;
694 }
695 f = head->first;
696 retry = 0;
697 if (f->credit <= 0) {
698 f->credit += q->quantum;
699 head->first = f->next;
700 fq_flow_add_tail(q, f, OLD_FLOW);
701 goto begin;
702 }
703
704 skb = fq_peek(f);
705 if (skb) {
706 u64 time_next_packet = max_t(u64, fq_skb_cb(skb)->time_to_send,
707 f->time_next_packet);
708
709 if (now + q->offload_horizon < time_next_packet) {
710 head->first = f->next;
711 f->time_next_packet = time_next_packet;
712 fq_flow_set_throttled(q, f);
713 goto begin;
714 }
715 prefetch(&skb->end);
716 fq_dequeue_skb(sch, f, skb);
717 if (unlikely((s64)(now - time_next_packet - q->ce_threshold) > 0)) {
718 INET_ECN_set_ce(skb);
719 q->stat_ce_mark++;
720 }
721 if (--f->qlen == 0)
722 q->inactive_flows++;
723 q->band_pkt_count[fq_skb_cb(skb)->band]--;
724 } else {
725 head->first = f->next;
726 /* force a pass through old_flows to prevent starvation */
727 if (head == &pband->new_flows) {
728 fq_flow_add_tail(q, f, OLD_FLOW);
729 } else {
730 fq_flow_set_detached(f);
731 }
732 goto begin;
733 }
734 plen = qdisc_pkt_len(skb);
735 f->credit -= plen;
736 pband->credit -= plen;
737
738 if (!q->rate_enable)
739 goto out;
740
741 rate = q->flow_max_rate;
742
743 /* If EDT time was provided for this skb, we need to
744 * update f->time_next_packet only if this qdisc enforces
745 * a flow max rate.
746 */
747 if (!skb->tstamp) {
748 if (skb->sk)
749 rate = min(READ_ONCE(skb->sk->sk_pacing_rate), rate);
750
751 if (rate <= q->low_rate_threshold) {
752 f->credit = 0;
753 } else {
754 plen = max(plen, q->quantum);
755 if (f->credit > 0)
756 goto out;
757 }
758 }
759 if (rate != ~0UL) {
760 u64 len = (u64)plen * NSEC_PER_SEC;
761
762 if (likely(rate))
763 len = div64_ul(len, rate);
764 /* Since socket rate can change later,
765 * clamp the delay to 1 second.
766 * Really, providers of too big packets should be fixed !
767 */
768 if (unlikely(len > NSEC_PER_SEC)) {
769 len = NSEC_PER_SEC;
770 q->stat_pkts_too_long++;
771 }
772 /* Account for schedule/timers drifts.
773 * f->time_next_packet was set when prior packet was sent,
774 * and current time (@now) can be too late by tens of us.
775 */
776 if (f->time_next_packet)
777 len -= min(len/2, now - f->time_next_packet);
778 f->time_next_packet = now + len;
779 }
780 out:
781 return skb;
782 }
783
fq_flow_purge(struct fq_flow * flow)784 static void fq_flow_purge(struct fq_flow *flow)
785 {
786 struct rb_node *p = rb_first(&flow->t_root);
787
788 while (p) {
789 struct sk_buff *skb = rb_to_skb(p);
790
791 p = rb_next(p);
792 rb_erase(&skb->rbnode, &flow->t_root);
793 rtnl_kfree_skbs(skb, skb);
794 }
795 rtnl_kfree_skbs(flow->head, flow->tail);
796 flow->head = NULL;
797 flow->qlen = 0;
798 }
799
fq_reset(struct Qdisc * sch)800 static void fq_reset(struct Qdisc *sch)
801 {
802 struct fq_sched_data *q = qdisc_priv(sch);
803 struct rb_root *root;
804 struct rb_node *p;
805 struct fq_flow *f;
806 unsigned int idx;
807
808 sch->q.qlen = 0;
809 sch->qstats.backlog = 0;
810
811 fq_flow_purge(&q->internal);
812
813 if (!q->fq_root)
814 return;
815
816 for (idx = 0; idx < (1U << q->fq_trees_log); idx++) {
817 root = &q->fq_root[idx];
818 while ((p = rb_first(root)) != NULL) {
819 f = rb_entry(p, struct fq_flow, fq_node);
820 rb_erase(p, root);
821
822 fq_flow_purge(f);
823
824 kmem_cache_free(fq_flow_cachep, f);
825 }
826 }
827 for (idx = 0; idx < FQ_BANDS; idx++) {
828 q->band_flows[idx].new_flows.first = NULL;
829 q->band_flows[idx].old_flows.first = NULL;
830 q->band_pkt_count[idx] = 0;
831 }
832 q->delayed = RB_ROOT;
833 q->flows = 0;
834 q->inactive_flows = 0;
835 q->throttled_flows = 0;
836 }
837
fq_rehash(struct fq_sched_data * q,struct rb_root * old_array,u32 old_log,struct rb_root * new_array,u32 new_log)838 static void fq_rehash(struct fq_sched_data *q,
839 struct rb_root *old_array, u32 old_log,
840 struct rb_root *new_array, u32 new_log)
841 {
842 struct rb_node *op, **np, *parent;
843 struct rb_root *oroot, *nroot;
844 struct fq_flow *of, *nf;
845 int fcnt = 0;
846 u32 idx;
847
848 for (idx = 0; idx < (1U << old_log); idx++) {
849 oroot = &old_array[idx];
850 while ((op = rb_first(oroot)) != NULL) {
851 rb_erase(op, oroot);
852 of = rb_entry(op, struct fq_flow, fq_node);
853 if (fq_gc_candidate(of)) {
854 fcnt++;
855 kmem_cache_free(fq_flow_cachep, of);
856 continue;
857 }
858 nroot = &new_array[hash_ptr(of->sk, new_log)];
859
860 np = &nroot->rb_node;
861 parent = NULL;
862 while (*np) {
863 parent = *np;
864
865 nf = rb_entry(parent, struct fq_flow, fq_node);
866 BUG_ON(nf->sk == of->sk);
867
868 if (nf->sk > of->sk)
869 np = &parent->rb_right;
870 else
871 np = &parent->rb_left;
872 }
873
874 rb_link_node(&of->fq_node, parent, np);
875 rb_insert_color(&of->fq_node, nroot);
876 }
877 }
878 q->flows -= fcnt;
879 q->inactive_flows -= fcnt;
880 q->stat_gc_flows += fcnt;
881 }
882
fq_free(void * addr)883 static void fq_free(void *addr)
884 {
885 kvfree(addr);
886 }
887
fq_resize(struct Qdisc * sch,u32 log)888 static int fq_resize(struct Qdisc *sch, u32 log)
889 {
890 struct fq_sched_data *q = qdisc_priv(sch);
891 struct rb_root *array;
892 void *old_fq_root;
893 u32 idx;
894
895 if (q->fq_root && log == q->fq_trees_log)
896 return 0;
897
898 /* If XPS was setup, we can allocate memory on right NUMA node */
899 array = kvmalloc_node(sizeof(struct rb_root) << log, GFP_KERNEL | __GFP_RETRY_MAYFAIL,
900 netdev_queue_numa_node_read(sch->dev_queue));
901 if (!array)
902 return -ENOMEM;
903
904 for (idx = 0; idx < (1U << log); idx++)
905 array[idx] = RB_ROOT;
906
907 sch_tree_lock(sch);
908
909 old_fq_root = q->fq_root;
910 if (old_fq_root)
911 fq_rehash(q, old_fq_root, q->fq_trees_log, array, log);
912
913 q->fq_root = array;
914 WRITE_ONCE(q->fq_trees_log, log);
915
916 sch_tree_unlock(sch);
917
918 fq_free(old_fq_root);
919
920 return 0;
921 }
922
923 static const struct netlink_range_validation iq_range = {
924 .max = INT_MAX,
925 };
926
927 static const struct nla_policy fq_policy[TCA_FQ_MAX + 1] = {
928 [TCA_FQ_UNSPEC] = { .strict_start_type = TCA_FQ_TIMER_SLACK },
929
930 [TCA_FQ_PLIMIT] = { .type = NLA_U32 },
931 [TCA_FQ_FLOW_PLIMIT] = { .type = NLA_U32 },
932 [TCA_FQ_QUANTUM] = { .type = NLA_U32 },
933 [TCA_FQ_INITIAL_QUANTUM] = NLA_POLICY_FULL_RANGE(NLA_U32, &iq_range),
934 [TCA_FQ_RATE_ENABLE] = { .type = NLA_U32 },
935 [TCA_FQ_FLOW_DEFAULT_RATE] = { .type = NLA_U32 },
936 [TCA_FQ_FLOW_MAX_RATE] = { .type = NLA_U32 },
937 [TCA_FQ_BUCKETS_LOG] = { .type = NLA_U32 },
938 [TCA_FQ_FLOW_REFILL_DELAY] = { .type = NLA_U32 },
939 [TCA_FQ_ORPHAN_MASK] = { .type = NLA_U32 },
940 [TCA_FQ_LOW_RATE_THRESHOLD] = { .type = NLA_U32 },
941 [TCA_FQ_CE_THRESHOLD] = { .type = NLA_U32 },
942 [TCA_FQ_TIMER_SLACK] = { .type = NLA_U32 },
943 [TCA_FQ_HORIZON] = { .type = NLA_U32 },
944 [TCA_FQ_HORIZON_DROP] = { .type = NLA_U8 },
945 [TCA_FQ_PRIOMAP] = NLA_POLICY_EXACT_LEN(sizeof(struct tc_prio_qopt)),
946 [TCA_FQ_WEIGHTS] = NLA_POLICY_EXACT_LEN(FQ_BANDS * sizeof(s32)),
947 [TCA_FQ_OFFLOAD_HORIZON] = { .type = NLA_U32 },
948 };
949
950 /* compress a u8 array with all elems <= 3 to an array of 2-bit fields */
fq_prio2band_compress_crumb(const u8 * in,u8 * out)951 static void fq_prio2band_compress_crumb(const u8 *in, u8 *out)
952 {
953 const int num_elems = TC_PRIO_MAX + 1;
954 u8 tmp[FQ_PRIO2BAND_CRUMB_SIZE];
955 int i;
956
957 memset(tmp, 0, sizeof(tmp));
958 for (i = 0; i < num_elems; i++)
959 tmp[i / 4] |= in[i] << (2 * (i & 0x3));
960
961 for (i = 0; i < FQ_PRIO2BAND_CRUMB_SIZE; i++)
962 WRITE_ONCE(out[i], tmp[i]);
963 }
964
fq_prio2band_decompress_crumb(const u8 * in,u8 * out)965 static void fq_prio2band_decompress_crumb(const u8 *in, u8 *out)
966 {
967 const int num_elems = TC_PRIO_MAX + 1;
968 int i;
969
970 for (i = 0; i < num_elems; i++)
971 out[i] = fq_prio2band(in, i);
972 }
973
fq_load_weights(struct fq_sched_data * q,const struct nlattr * attr,struct netlink_ext_ack * extack)974 static int fq_load_weights(struct fq_sched_data *q,
975 const struct nlattr *attr,
976 struct netlink_ext_ack *extack)
977 {
978 s32 *weights = nla_data(attr);
979 int i;
980
981 for (i = 0; i < FQ_BANDS; i++) {
982 if (weights[i] < FQ_MIN_WEIGHT) {
983 NL_SET_ERR_MSG_FMT_MOD(extack, "Weight %d less that minimum allowed %d",
984 weights[i], FQ_MIN_WEIGHT);
985 return -EINVAL;
986 }
987 }
988 for (i = 0; i < FQ_BANDS; i++)
989 WRITE_ONCE(q->band_flows[i].quantum, weights[i]);
990 return 0;
991 }
992
fq_load_priomap(struct fq_sched_data * q,const struct nlattr * attr,struct netlink_ext_ack * extack)993 static int fq_load_priomap(struct fq_sched_data *q,
994 const struct nlattr *attr,
995 struct netlink_ext_ack *extack)
996 {
997 const struct tc_prio_qopt *map = nla_data(attr);
998 int i;
999
1000 if (map->bands != FQ_BANDS) {
1001 NL_SET_ERR_MSG_MOD(extack, "FQ only supports 3 bands");
1002 return -EINVAL;
1003 }
1004 for (i = 0; i < TC_PRIO_MAX + 1; i++) {
1005 if (map->priomap[i] >= FQ_BANDS) {
1006 NL_SET_ERR_MSG_FMT_MOD(extack, "FQ priomap field %d maps to a too high band %d",
1007 i, map->priomap[i]);
1008 return -EINVAL;
1009 }
1010 }
1011 fq_prio2band_compress_crumb(map->priomap, q->prio2band);
1012 return 0;
1013 }
1014
fq_change(struct Qdisc * sch,struct nlattr * opt,struct netlink_ext_ack * extack)1015 static int fq_change(struct Qdisc *sch, struct nlattr *opt,
1016 struct netlink_ext_ack *extack)
1017 {
1018 unsigned int dropped_pkts = 0, dropped_bytes = 0;
1019 struct fq_sched_data *q = qdisc_priv(sch);
1020 struct nlattr *tb[TCA_FQ_MAX + 1];
1021 u32 fq_log;
1022 int err;
1023
1024 err = nla_parse_nested_deprecated(tb, TCA_FQ_MAX, opt, fq_policy,
1025 NULL);
1026 if (err < 0)
1027 return err;
1028
1029 sch_tree_lock(sch);
1030
1031 fq_log = q->fq_trees_log;
1032
1033 if (tb[TCA_FQ_BUCKETS_LOG]) {
1034 u32 nval = nla_get_u32(tb[TCA_FQ_BUCKETS_LOG]);
1035
1036 if (nval >= 1 && nval <= ilog2(256*1024))
1037 fq_log = nval;
1038 else
1039 err = -EINVAL;
1040 }
1041 if (tb[TCA_FQ_PLIMIT])
1042 WRITE_ONCE(sch->limit,
1043 nla_get_u32(tb[TCA_FQ_PLIMIT]));
1044
1045 if (tb[TCA_FQ_FLOW_PLIMIT])
1046 WRITE_ONCE(q->flow_plimit,
1047 nla_get_u32(tb[TCA_FQ_FLOW_PLIMIT]));
1048
1049 if (tb[TCA_FQ_QUANTUM]) {
1050 u32 quantum = nla_get_u32(tb[TCA_FQ_QUANTUM]);
1051
1052 if (quantum > 0 && quantum <= (1 << 20)) {
1053 WRITE_ONCE(q->quantum, quantum);
1054 } else {
1055 NL_SET_ERR_MSG_MOD(extack, "invalid quantum");
1056 err = -EINVAL;
1057 }
1058 }
1059
1060 if (tb[TCA_FQ_INITIAL_QUANTUM])
1061 WRITE_ONCE(q->initial_quantum,
1062 nla_get_u32(tb[TCA_FQ_INITIAL_QUANTUM]));
1063
1064 if (tb[TCA_FQ_FLOW_DEFAULT_RATE])
1065 pr_warn_ratelimited("sch_fq: defrate %u ignored.\n",
1066 nla_get_u32(tb[TCA_FQ_FLOW_DEFAULT_RATE]));
1067
1068 if (tb[TCA_FQ_FLOW_MAX_RATE]) {
1069 u32 rate = nla_get_u32(tb[TCA_FQ_FLOW_MAX_RATE]);
1070
1071 WRITE_ONCE(q->flow_max_rate,
1072 (rate == ~0U) ? ~0UL : rate);
1073 }
1074 if (tb[TCA_FQ_LOW_RATE_THRESHOLD])
1075 WRITE_ONCE(q->low_rate_threshold,
1076 nla_get_u32(tb[TCA_FQ_LOW_RATE_THRESHOLD]));
1077
1078 if (tb[TCA_FQ_RATE_ENABLE]) {
1079 u32 enable = nla_get_u32(tb[TCA_FQ_RATE_ENABLE]);
1080
1081 if (enable <= 1)
1082 WRITE_ONCE(q->rate_enable,
1083 enable);
1084 else
1085 err = -EINVAL;
1086 }
1087
1088 if (tb[TCA_FQ_FLOW_REFILL_DELAY]) {
1089 u32 usecs_delay = nla_get_u32(tb[TCA_FQ_FLOW_REFILL_DELAY]) ;
1090
1091 WRITE_ONCE(q->flow_refill_delay,
1092 usecs_to_jiffies(usecs_delay));
1093 }
1094
1095 if (!err && tb[TCA_FQ_PRIOMAP])
1096 err = fq_load_priomap(q, tb[TCA_FQ_PRIOMAP], extack);
1097
1098 if (!err && tb[TCA_FQ_WEIGHTS])
1099 err = fq_load_weights(q, tb[TCA_FQ_WEIGHTS], extack);
1100
1101 if (tb[TCA_FQ_ORPHAN_MASK])
1102 WRITE_ONCE(q->orphan_mask,
1103 nla_get_u32(tb[TCA_FQ_ORPHAN_MASK]));
1104
1105 if (tb[TCA_FQ_CE_THRESHOLD])
1106 WRITE_ONCE(q->ce_threshold,
1107 (u64)NSEC_PER_USEC *
1108 nla_get_u32(tb[TCA_FQ_CE_THRESHOLD]));
1109
1110 if (tb[TCA_FQ_TIMER_SLACK])
1111 WRITE_ONCE(q->timer_slack,
1112 nla_get_u32(tb[TCA_FQ_TIMER_SLACK]));
1113
1114 if (tb[TCA_FQ_HORIZON])
1115 WRITE_ONCE(q->horizon,
1116 (u64)NSEC_PER_USEC *
1117 nla_get_u32(tb[TCA_FQ_HORIZON]));
1118
1119 if (tb[TCA_FQ_HORIZON_DROP])
1120 WRITE_ONCE(q->horizon_drop,
1121 nla_get_u8(tb[TCA_FQ_HORIZON_DROP]));
1122
1123 if (tb[TCA_FQ_OFFLOAD_HORIZON]) {
1124 u64 offload_horizon = (u64)NSEC_PER_USEC *
1125 nla_get_u32(tb[TCA_FQ_OFFLOAD_HORIZON]);
1126
1127 if (offload_horizon <= qdisc_dev(sch)->max_pacing_offload_horizon) {
1128 WRITE_ONCE(q->offload_horizon, offload_horizon);
1129 } else {
1130 NL_SET_ERR_MSG_MOD(extack, "invalid offload_horizon");
1131 err = -EINVAL;
1132 }
1133 }
1134 if (!err) {
1135
1136 sch_tree_unlock(sch);
1137 err = fq_resize(sch, fq_log);
1138 sch_tree_lock(sch);
1139 }
1140
1141 while (sch->q.qlen > sch->limit) {
1142 struct sk_buff *skb = qdisc_dequeue_internal(sch, false);
1143
1144 if (!skb)
1145 break;
1146
1147 dropped_pkts++;
1148 dropped_bytes += qdisc_pkt_len(skb);
1149 rtnl_kfree_skbs(skb, skb);
1150 }
1151 qdisc_tree_reduce_backlog(sch, dropped_pkts, dropped_bytes);
1152
1153 sch_tree_unlock(sch);
1154 return err;
1155 }
1156
fq_destroy(struct Qdisc * sch)1157 static void fq_destroy(struct Qdisc *sch)
1158 {
1159 struct fq_sched_data *q = qdisc_priv(sch);
1160
1161 fq_reset(sch);
1162 fq_free(q->fq_root);
1163 qdisc_watchdog_cancel(&q->watchdog);
1164 }
1165
fq_init(struct Qdisc * sch,struct nlattr * opt,struct netlink_ext_ack * extack)1166 static int fq_init(struct Qdisc *sch, struct nlattr *opt,
1167 struct netlink_ext_ack *extack)
1168 {
1169 struct fq_sched_data *q = qdisc_priv(sch);
1170 int i, err;
1171
1172 sch->limit = 10000;
1173 q->flow_plimit = 100;
1174 q->quantum = 2 * psched_mtu(qdisc_dev(sch));
1175 q->initial_quantum = 10 * psched_mtu(qdisc_dev(sch));
1176 q->flow_refill_delay = msecs_to_jiffies(40);
1177 q->flow_max_rate = ~0UL;
1178 q->time_next_delayed_flow = ~0ULL;
1179 q->rate_enable = 1;
1180 for (i = 0; i < FQ_BANDS; i++) {
1181 q->band_flows[i].new_flows.first = NULL;
1182 q->band_flows[i].old_flows.first = NULL;
1183 }
1184 q->band_flows[0].quantum = 9 << 16;
1185 q->band_flows[1].quantum = 3 << 16;
1186 q->band_flows[2].quantum = 1 << 16;
1187 q->delayed = RB_ROOT;
1188 q->fq_root = NULL;
1189 q->fq_trees_log = ilog2(1024);
1190 q->orphan_mask = 1024 - 1;
1191 q->low_rate_threshold = 550000 / 8;
1192
1193 q->timer_slack = 10 * NSEC_PER_USEC; /* 10 usec of hrtimer slack */
1194
1195 q->horizon = 10ULL * NSEC_PER_SEC; /* 10 seconds */
1196 q->horizon_drop = 1; /* by default, drop packets beyond horizon */
1197
1198 /* Default ce_threshold of 4294 seconds */
1199 q->ce_threshold = (u64)NSEC_PER_USEC * ~0U;
1200
1201 fq_prio2band_compress_crumb(sch_default_prio2band, q->prio2band);
1202 qdisc_watchdog_init_clockid(&q->watchdog, sch, CLOCK_MONOTONIC);
1203
1204 if (opt)
1205 err = fq_change(sch, opt, extack);
1206 else
1207 err = fq_resize(sch, q->fq_trees_log);
1208
1209 return err;
1210 }
1211
fq_dump(struct Qdisc * sch,struct sk_buff * skb)1212 static int fq_dump(struct Qdisc *sch, struct sk_buff *skb)
1213 {
1214 struct fq_sched_data *q = qdisc_priv(sch);
1215 struct tc_prio_qopt prio = {
1216 .bands = FQ_BANDS,
1217 };
1218 struct nlattr *opts;
1219 u64 offload_horizon;
1220 u64 ce_threshold;
1221 s32 weights[3];
1222 u64 horizon;
1223
1224 opts = nla_nest_start_noflag(skb, TCA_OPTIONS);
1225 if (opts == NULL)
1226 goto nla_put_failure;
1227
1228 /* TCA_FQ_FLOW_DEFAULT_RATE is not used anymore */
1229
1230 ce_threshold = READ_ONCE(q->ce_threshold);
1231 do_div(ce_threshold, NSEC_PER_USEC);
1232
1233 horizon = READ_ONCE(q->horizon);
1234 do_div(horizon, NSEC_PER_USEC);
1235
1236 offload_horizon = READ_ONCE(q->offload_horizon);
1237 do_div(offload_horizon, NSEC_PER_USEC);
1238
1239 if (nla_put_u32(skb, TCA_FQ_PLIMIT,
1240 READ_ONCE(sch->limit)) ||
1241 nla_put_u32(skb, TCA_FQ_FLOW_PLIMIT,
1242 READ_ONCE(q->flow_plimit)) ||
1243 nla_put_u32(skb, TCA_FQ_QUANTUM,
1244 READ_ONCE(q->quantum)) ||
1245 nla_put_u32(skb, TCA_FQ_INITIAL_QUANTUM,
1246 READ_ONCE(q->initial_quantum)) ||
1247 nla_put_u32(skb, TCA_FQ_RATE_ENABLE,
1248 READ_ONCE(q->rate_enable)) ||
1249 nla_put_u32(skb, TCA_FQ_FLOW_MAX_RATE,
1250 min_t(unsigned long,
1251 READ_ONCE(q->flow_max_rate), ~0U)) ||
1252 nla_put_u32(skb, TCA_FQ_FLOW_REFILL_DELAY,
1253 jiffies_to_usecs(READ_ONCE(q->flow_refill_delay))) ||
1254 nla_put_u32(skb, TCA_FQ_ORPHAN_MASK,
1255 READ_ONCE(q->orphan_mask)) ||
1256 nla_put_u32(skb, TCA_FQ_LOW_RATE_THRESHOLD,
1257 READ_ONCE(q->low_rate_threshold)) ||
1258 nla_put_u32(skb, TCA_FQ_CE_THRESHOLD, (u32)ce_threshold) ||
1259 nla_put_u32(skb, TCA_FQ_BUCKETS_LOG,
1260 READ_ONCE(q->fq_trees_log)) ||
1261 nla_put_u32(skb, TCA_FQ_TIMER_SLACK,
1262 READ_ONCE(q->timer_slack)) ||
1263 nla_put_u32(skb, TCA_FQ_HORIZON, (u32)horizon) ||
1264 nla_put_u32(skb, TCA_FQ_OFFLOAD_HORIZON, (u32)offload_horizon) ||
1265 nla_put_u8(skb, TCA_FQ_HORIZON_DROP,
1266 READ_ONCE(q->horizon_drop)))
1267 goto nla_put_failure;
1268
1269 fq_prio2band_decompress_crumb(q->prio2band, prio.priomap);
1270 if (nla_put(skb, TCA_FQ_PRIOMAP, sizeof(prio), &prio))
1271 goto nla_put_failure;
1272
1273 weights[0] = READ_ONCE(q->band_flows[0].quantum);
1274 weights[1] = READ_ONCE(q->band_flows[1].quantum);
1275 weights[2] = READ_ONCE(q->band_flows[2].quantum);
1276 if (nla_put(skb, TCA_FQ_WEIGHTS, sizeof(weights), &weights))
1277 goto nla_put_failure;
1278
1279 return nla_nest_end(skb, opts);
1280
1281 nla_put_failure:
1282 return -1;
1283 }
1284
fq_dump_stats(struct Qdisc * sch,struct gnet_dump * d)1285 static int fq_dump_stats(struct Qdisc *sch, struct gnet_dump *d)
1286 {
1287 struct fq_sched_data *q = qdisc_priv(sch);
1288 struct tc_fq_qd_stats st;
1289 int i;
1290
1291 st.pad = 0;
1292
1293 sch_tree_lock(sch);
1294
1295 st.gc_flows = q->stat_gc_flows;
1296 st.highprio_packets = 0;
1297 st.fastpath_packets = q->internal.stat_fastpath_packets;
1298 st.tcp_retrans = 0;
1299 st.throttled = q->stat_throttled;
1300 st.flows_plimit = q->stat_flows_plimit;
1301 st.pkts_too_long = q->stat_pkts_too_long;
1302 st.allocation_errors = q->stat_allocation_errors;
1303 st.time_next_delayed_flow = q->time_next_delayed_flow + q->timer_slack -
1304 ktime_get_ns();
1305 st.flows = q->flows;
1306 st.inactive_flows = q->inactive_flows;
1307 st.throttled_flows = q->throttled_flows;
1308 st.unthrottle_latency_ns = min_t(unsigned long,
1309 q->unthrottle_latency_ns, ~0U);
1310 st.ce_mark = q->stat_ce_mark;
1311 st.horizon_drops = q->stat_horizon_drops;
1312 st.horizon_caps = q->stat_horizon_caps;
1313 for (i = 0; i < FQ_BANDS; i++) {
1314 st.band_drops[i] = q->stat_band_drops[i];
1315 st.band_pkt_count[i] = q->band_pkt_count[i];
1316 }
1317 sch_tree_unlock(sch);
1318
1319 return gnet_stats_copy_app(d, &st, sizeof(st));
1320 }
1321
1322 static struct Qdisc_ops fq_qdisc_ops __read_mostly = {
1323 .id = "fq",
1324 .priv_size = sizeof(struct fq_sched_data),
1325
1326 .enqueue = fq_enqueue,
1327 .dequeue = fq_dequeue,
1328 .peek = qdisc_peek_dequeued,
1329 .init = fq_init,
1330 .reset = fq_reset,
1331 .destroy = fq_destroy,
1332 .change = fq_change,
1333 .dump = fq_dump,
1334 .dump_stats = fq_dump_stats,
1335 .owner = THIS_MODULE,
1336 };
1337 MODULE_ALIAS_NET_SCH("fq");
1338
fq_module_init(void)1339 static int __init fq_module_init(void)
1340 {
1341 int ret;
1342
1343 fq_flow_cachep = kmem_cache_create("fq_flow_cache",
1344 sizeof(struct fq_flow),
1345 0, SLAB_HWCACHE_ALIGN, NULL);
1346 if (!fq_flow_cachep)
1347 return -ENOMEM;
1348
1349 ret = register_qdisc(&fq_qdisc_ops);
1350 if (ret)
1351 kmem_cache_destroy(fq_flow_cachep);
1352 return ret;
1353 }
1354
fq_module_exit(void)1355 static void __exit fq_module_exit(void)
1356 {
1357 unregister_qdisc(&fq_qdisc_ops);
1358 kmem_cache_destroy(fq_flow_cachep);
1359 }
1360
1361 module_init(fq_module_init)
1362 module_exit(fq_module_exit)
1363 MODULE_AUTHOR("Eric Dumazet");
1364 MODULE_LICENSE("GPL");
1365 MODULE_DESCRIPTION("Fair Queue Packet Scheduler");
1366