1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * net/sched/sch_htb.c Hierarchical token bucket, feed tree version
4 *
5 * Authors: Martin Devera, <devik@cdi.cz>
6 *
7 * Credits (in time order) for older HTB versions:
8 * Stef Coene <stef.coene@docum.org>
9 * HTB support at LARTC mailing list
10 * Ondrej Kraus, <krauso@barr.cz>
11 * found missing INIT_QDISC(htb)
12 * Vladimir Smelhaus, Aamer Akhter, Bert Hubert
13 * helped a lot to locate nasty class stall bug
14 * Andi Kleen, Jamal Hadi, Bert Hubert
15 * code review and helpful comments on shaping
16 * Tomasz Wrona, <tw@eter.tym.pl>
17 * created test case so that I was able to fix nasty bug
18 * Wilfried Weissmann
19 * spotted bug in dequeue code and helped with fix
20 * Jiri Fojtasek
21 * fixed requeue routine
22 * and many others. thanks.
23 */
24 #include <linux/module.h>
25 #include <linux/moduleparam.h>
26 #include <linux/types.h>
27 #include <linux/kernel.h>
28 #include <linux/string.h>
29 #include <linux/errno.h>
30 #include <linux/skbuff.h>
31 #include <linux/list.h>
32 #include <linux/compiler.h>
33 #include <linux/rbtree.h>
34 #include <linux/workqueue.h>
35 #include <linux/slab.h>
36 #include <net/netlink.h>
37 #include <net/sch_generic.h>
38 #include <net/pkt_sched.h>
39 #include <net/pkt_cls.h>
40
41 /* HTB algorithm.
42 Author: devik@cdi.cz
43 ========================================================================
44 HTB is like TBF with multiple classes. It is also similar to CBQ because
45 it allows to assign priority to each class in hierarchy.
46 In fact it is another implementation of Floyd's formal sharing.
47
48 Levels:
49 Each class is assigned level. Leaf has ALWAYS level 0 and root
50 classes have level TC_HTB_MAXDEPTH-1. Interior nodes has level
51 one less than their parent.
52 */
53
54 static int htb_hysteresis __read_mostly = 0; /* whether to use mode hysteresis for speedup */
55 #define HTB_VER 0x30011 /* major must be matched with number supplied by TC as version */
56
57 #if HTB_VER >> 16 != TC_HTB_PROTOVER
58 #error "Mismatched sch_htb.c and pkt_sch.h"
59 #endif
60
61 /* Module parameter and sysfs export */
62 module_param (htb_hysteresis, int, 0640);
63 MODULE_PARM_DESC(htb_hysteresis, "Hysteresis mode, less CPU load, less accurate");
64
65 static int htb_rate_est = 0; /* htb classes have a default rate estimator */
66 module_param(htb_rate_est, int, 0640);
67 MODULE_PARM_DESC(htb_rate_est, "setup a default rate estimator (4sec 16sec) for htb classes");
68
69 /* used internaly to keep status of single class */
70 enum htb_cmode {
71 HTB_CANT_SEND, /* class can't send and can't borrow */
72 HTB_MAY_BORROW, /* class can't send but may borrow */
73 HTB_CAN_SEND /* class can send */
74 };
75
76 struct htb_prio {
77 union {
78 struct rb_root row;
79 struct rb_root feed;
80 };
81 struct rb_node *ptr;
82 /* When class changes from state 1->2 and disconnects from
83 * parent's feed then we lost ptr value and start from the
84 * first child again. Here we store classid of the
85 * last valid ptr (used when ptr is NULL).
86 */
87 u32 last_ptr_id;
88 };
89
90 /* interior & leaf nodes; props specific to leaves are marked L:
91 * To reduce false sharing, place mostly read fields at beginning,
92 * and mostly written ones at the end.
93 */
94 struct htb_class {
95 struct Qdisc_class_common common;
96 struct psched_ratecfg rate;
97 struct psched_ratecfg ceil;
98 s64 buffer, cbuffer;/* token bucket depth/rate */
99 s64 mbuffer; /* max wait time */
100 u32 prio; /* these two are used only by leaves... */
101 int quantum; /* but stored for parent-to-leaf return */
102
103 struct tcf_proto __rcu *filter_list; /* class attached filters */
104 struct tcf_block *block;
105
106 int level; /* our level (see above) */
107 unsigned int children;
108 struct htb_class *parent; /* parent class */
109
110 struct net_rate_estimator __rcu *rate_est;
111
112 /*
113 * Written often fields
114 */
115 struct gnet_stats_basic_sync bstats;
116 struct gnet_stats_basic_sync bstats_bias;
117 u32 xstats_lends;
118 u32 xstats_borrows;
119
120 /* token bucket parameters */
121 s64 tokens, ctokens;/* current number of tokens */
122 s64 t_c; /* checkpoint time */
123
124 union {
125 struct htb_class_leaf {
126 int deficit[TC_HTB_MAXDEPTH];
127 struct Qdisc *q;
128 struct netdev_queue *offload_queue;
129 } leaf;
130 struct htb_class_inner {
131 struct htb_prio clprio[TC_HTB_NUMPRIO];
132 } inner;
133 };
134 s64 pq_key;
135
136 int prio_activity; /* for which prios are we active */
137 enum htb_cmode cmode; /* current mode of the class */
138 struct rb_node pq_node; /* node for event queue */
139 struct rb_node node[TC_HTB_NUMPRIO]; /* node for self or feed tree */
140
141 unsigned int drops ____cacheline_aligned_in_smp;
142 unsigned int overlimits;
143 };
144
145 struct htb_level {
146 struct rb_root wait_pq;
147 struct htb_prio hprio[TC_HTB_NUMPRIO];
148 };
149
150 struct htb_sched {
151 struct Qdisc_class_hash clhash;
152 int defcls; /* class where unclassified flows go to */
153 int rate2quantum; /* quant = rate / rate2quantum */
154
155 /* filters for qdisc itself */
156 struct tcf_proto __rcu *filter_list;
157 struct tcf_block *block;
158
159 #define HTB_WARN_TOOMANYEVENTS 0x1
160 unsigned int warned; /* only one warning */
161 int direct_qlen;
162 struct work_struct work;
163
164 /* non shaped skbs; let them go directly thru */
165 struct qdisc_skb_head direct_queue;
166 u32 direct_pkts;
167 u32 overlimits;
168
169 struct qdisc_watchdog watchdog;
170
171 s64 now; /* cached dequeue time */
172
173 /* time of nearest event per level (row) */
174 s64 near_ev_cache[TC_HTB_MAXDEPTH];
175
176 int row_mask[TC_HTB_MAXDEPTH];
177
178 struct htb_level hlevel[TC_HTB_MAXDEPTH];
179
180 struct Qdisc **direct_qdiscs;
181 unsigned int num_direct_qdiscs;
182
183 bool offload;
184 };
185
186 /* find class in global hash table using given handle */
htb_find(u32 handle,struct Qdisc * sch)187 static inline struct htb_class *htb_find(u32 handle, struct Qdisc *sch)
188 {
189 struct htb_sched *q = qdisc_priv(sch);
190 struct Qdisc_class_common *clc;
191
192 clc = qdisc_class_find(&q->clhash, handle);
193 if (clc == NULL)
194 return NULL;
195 return container_of(clc, struct htb_class, common);
196 }
197
htb_search(struct Qdisc * sch,u32 handle)198 static unsigned long htb_search(struct Qdisc *sch, u32 handle)
199 {
200 return (unsigned long)htb_find(handle, sch);
201 }
202
203 #define HTB_DIRECT ((struct htb_class *)-1L)
204
205 /**
206 * htb_classify - classify a packet into class
207 * @skb: the socket buffer
208 * @sch: the active queue discipline
209 * @qerr: pointer for returned status code
210 *
211 * It returns NULL if the packet should be dropped or -1 if the packet
212 * should be passed directly thru. In all other cases leaf class is returned.
213 * We allow direct class selection by classid in priority. The we examine
214 * filters in qdisc and in inner nodes (if higher filter points to the inner
215 * node). If we end up with classid MAJOR:0 we enqueue the skb into special
216 * internal fifo (direct). These packets then go directly thru. If we still
217 * have no valid leaf we try to use MAJOR:default leaf. It still unsuccessful
218 * then finish and return direct queue.
219 */
htb_classify(struct sk_buff * skb,struct Qdisc * sch,int * qerr)220 static struct htb_class *htb_classify(struct sk_buff *skb, struct Qdisc *sch,
221 int *qerr)
222 {
223 struct htb_sched *q = qdisc_priv(sch);
224 struct htb_class *cl;
225 struct tcf_result res;
226 struct tcf_proto *tcf;
227 unsigned int hops = 0;
228 int result;
229
230 /* allow to select class by setting skb->priority to valid classid;
231 * note that nfmark can be used too by attaching filter fw with no
232 * rules in it
233 */
234 if (skb->priority == sch->handle)
235 return HTB_DIRECT; /* X:0 (direct flow) selected */
236 cl = htb_find(skb->priority, sch);
237 if (cl) {
238 if (cl->level == 0)
239 return cl;
240 /* Start with inner filter chain if a non-leaf class is selected */
241 tcf = rcu_dereference_bh(cl->filter_list);
242 } else {
243 tcf = rcu_dereference_bh(q->filter_list);
244 }
245
246 *qerr = NET_XMIT_SUCCESS | __NET_XMIT_BYPASS;
247 while (tcf && (result = tcf_classify_qdisc(skb, tcf, &res, false)) >= 0) {
248 #ifdef CONFIG_NET_CLS_ACT
249 switch (result) {
250 case TC_ACT_QUEUED:
251 case TC_ACT_STOLEN:
252 case TC_ACT_TRAP:
253 *qerr = NET_XMIT_SUCCESS | __NET_XMIT_STOLEN;
254 fallthrough;
255 case TC_ACT_SHOT:
256 return NULL;
257 }
258 #endif
259 cl = (void *)res.class;
260 if (!cl) {
261 if (res.classid == sch->handle)
262 return HTB_DIRECT; /* X:0 (direct flow) */
263 cl = htb_find(res.classid, sch);
264 if (!cl)
265 break; /* filter selected invalid classid */
266 }
267 if (!cl->level)
268 return cl; /* we hit leaf; return it */
269
270 if (++hops > TC_HTB_MAXDEPTH) {
271 pr_warn_ratelimited("htb: classify loop detected, dropping packet\n");
272 return NULL;
273 }
274 /* we have got inner class; apply inner filter chain */
275 tcf = rcu_dereference_bh(cl->filter_list);
276 }
277 /* classification failed; try to use default class */
278 cl = htb_find(TC_H_MAKE(TC_H_MAJ(sch->handle), q->defcls), sch);
279 if (!cl || cl->level)
280 return HTB_DIRECT; /* bad default .. this is safe bet */
281 return cl;
282 }
283
284 /**
285 * htb_add_to_id_tree - adds class to the round robin list
286 * @root: the root of the tree
287 * @cl: the class to add
288 * @prio: the give prio in class
289 *
290 * Routine adds class to the list (actually tree) sorted by classid.
291 * Make sure that class is not already on such list for given prio.
292 */
htb_add_to_id_tree(struct rb_root * root,struct htb_class * cl,int prio)293 static void htb_add_to_id_tree(struct rb_root *root,
294 struct htb_class *cl, int prio)
295 {
296 struct rb_node **p = &root->rb_node, *parent = NULL;
297
298 while (*p) {
299 struct htb_class *c;
300 parent = *p;
301 c = rb_entry(parent, struct htb_class, node[prio]);
302
303 if (cl->common.classid > c->common.classid)
304 p = &parent->rb_right;
305 else
306 p = &parent->rb_left;
307 }
308 rb_link_node(&cl->node[prio], parent, p);
309 rb_insert_color(&cl->node[prio], root);
310 }
311
312 /**
313 * htb_add_to_wait_tree - adds class to the event queue with delay
314 * @q: the priority event queue
315 * @cl: the class to add
316 * @delay: delay in microseconds
317 *
318 * The class is added to priority event queue to indicate that class will
319 * change its mode in cl->pq_key microseconds. Make sure that class is not
320 * already in the queue.
321 */
htb_add_to_wait_tree(struct htb_sched * q,struct htb_class * cl,s64 delay)322 static void htb_add_to_wait_tree(struct htb_sched *q,
323 struct htb_class *cl, s64 delay)
324 {
325 struct rb_node **p = &q->hlevel[cl->level].wait_pq.rb_node, *parent = NULL;
326
327 cl->pq_key = q->now + delay;
328 if (cl->pq_key == q->now)
329 cl->pq_key++;
330
331 /* update the nearest event cache */
332 if (q->near_ev_cache[cl->level] > cl->pq_key)
333 q->near_ev_cache[cl->level] = cl->pq_key;
334
335 while (*p) {
336 struct htb_class *c;
337 parent = *p;
338 c = rb_entry(parent, struct htb_class, pq_node);
339 if (cl->pq_key >= c->pq_key)
340 p = &parent->rb_right;
341 else
342 p = &parent->rb_left;
343 }
344 rb_link_node(&cl->pq_node, parent, p);
345 rb_insert_color(&cl->pq_node, &q->hlevel[cl->level].wait_pq);
346 }
347
348 /**
349 * htb_next_rb_node - finds next node in binary tree
350 * @n: the current node in binary tree
351 *
352 * When we are past last key we return NULL.
353 * Average complexity is 2 steps per call.
354 */
htb_next_rb_node(struct rb_node ** n)355 static inline void htb_next_rb_node(struct rb_node **n)
356 {
357 if (*n)
358 *n = rb_next(*n);
359 }
360
361 /**
362 * htb_add_class_to_row - add class to its row
363 * @q: the priority event queue
364 * @cl: the class to add
365 * @mask: the given priorities in class in bitmap
366 *
367 * The class is added to row at priorities marked in mask.
368 * It does nothing if mask == 0.
369 */
htb_add_class_to_row(struct htb_sched * q,struct htb_class * cl,int mask)370 static inline void htb_add_class_to_row(struct htb_sched *q,
371 struct htb_class *cl, int mask)
372 {
373 q->row_mask[cl->level] |= mask;
374 while (mask) {
375 int prio = ffz(~mask);
376 mask &= ~(1 << prio);
377 htb_add_to_id_tree(&q->hlevel[cl->level].hprio[prio].row, cl, prio);
378 }
379 }
380
381 /* If this triggers, it is a bug in this code, but it need not be fatal */
htb_safe_rb_erase(struct rb_node * rb,struct rb_root * root)382 static void htb_safe_rb_erase(struct rb_node *rb, struct rb_root *root)
383 {
384 if (RB_EMPTY_NODE(rb)) {
385 WARN_ON(1);
386 } else {
387 rb_erase(rb, root);
388 RB_CLEAR_NODE(rb);
389 }
390 }
391
392
393 /**
394 * htb_remove_class_from_row - removes class from its row
395 * @q: the priority event queue
396 * @cl: the class to add
397 * @mask: the given priorities in class in bitmap
398 *
399 * The class is removed from row at priorities marked in mask.
400 * It does nothing if mask == 0.
401 */
htb_remove_class_from_row(struct htb_sched * q,struct htb_class * cl,int mask)402 static inline void htb_remove_class_from_row(struct htb_sched *q,
403 struct htb_class *cl, int mask)
404 {
405 int m = 0;
406 struct htb_level *hlevel = &q->hlevel[cl->level];
407
408 while (mask) {
409 int prio = ffz(~mask);
410 struct htb_prio *hprio = &hlevel->hprio[prio];
411
412 mask &= ~(1 << prio);
413 if (hprio->ptr == cl->node + prio)
414 htb_next_rb_node(&hprio->ptr);
415
416 htb_safe_rb_erase(cl->node + prio, &hprio->row);
417 if (!hprio->row.rb_node)
418 m |= 1 << prio;
419 }
420 q->row_mask[cl->level] &= ~m;
421 }
422
423 /**
424 * htb_activate_prios - creates active classe's feed chain
425 * @q: the priority event queue
426 * @cl: the class to activate
427 *
428 * The class is connected to ancestors and/or appropriate rows
429 * for priorities it is participating on. cl->cmode must be new
430 * (activated) mode. It does nothing if cl->prio_activity == 0.
431 */
htb_activate_prios(struct htb_sched * q,struct htb_class * cl)432 static void htb_activate_prios(struct htb_sched *q, struct htb_class *cl)
433 {
434 struct htb_class *p = cl->parent;
435 long m, mask = cl->prio_activity;
436
437 while (cl->cmode == HTB_MAY_BORROW && p && mask) {
438 m = mask;
439 while (m) {
440 unsigned int prio = ffz(~m);
441
442 if (WARN_ON_ONCE(prio >= ARRAY_SIZE(p->inner.clprio)))
443 break;
444 m &= ~(1 << prio);
445
446 if (p->inner.clprio[prio].feed.rb_node)
447 /* parent already has its feed in use so that
448 * reset bit in mask as parent is already ok
449 */
450 mask &= ~(1 << prio);
451
452 htb_add_to_id_tree(&p->inner.clprio[prio].feed, cl, prio);
453 }
454 p->prio_activity |= mask;
455 cl = p;
456 p = cl->parent;
457
458 }
459 if (cl->cmode == HTB_CAN_SEND && mask)
460 htb_add_class_to_row(q, cl, mask);
461 }
462
463 /**
464 * htb_deactivate_prios - remove class from feed chain
465 * @q: the priority event queue
466 * @cl: the class to deactivate
467 *
468 * cl->cmode must represent old mode (before deactivation). It does
469 * nothing if cl->prio_activity == 0. Class is removed from all feed
470 * chains and rows.
471 */
htb_deactivate_prios(struct htb_sched * q,struct htb_class * cl)472 static void htb_deactivate_prios(struct htb_sched *q, struct htb_class *cl)
473 {
474 struct htb_class *p = cl->parent;
475 long m, mask = cl->prio_activity;
476
477 while (cl->cmode == HTB_MAY_BORROW && p && mask) {
478 m = mask;
479 mask = 0;
480 while (m) {
481 int prio = ffz(~m);
482 m &= ~(1 << prio);
483
484 if (p->inner.clprio[prio].ptr == cl->node + prio) {
485 /* we are removing child which is pointed to from
486 * parent feed - forget the pointer but remember
487 * classid
488 */
489 p->inner.clprio[prio].last_ptr_id = cl->common.classid;
490 p->inner.clprio[prio].ptr = NULL;
491 }
492
493 htb_safe_rb_erase(cl->node + prio,
494 &p->inner.clprio[prio].feed);
495
496 if (!p->inner.clprio[prio].feed.rb_node)
497 mask |= 1 << prio;
498 }
499
500 p->prio_activity &= ~mask;
501 cl = p;
502 p = cl->parent;
503
504 }
505 if (cl->cmode == HTB_CAN_SEND && mask)
506 htb_remove_class_from_row(q, cl, mask);
507 }
508
htb_lowater(const struct htb_class * cl)509 static inline s64 htb_lowater(const struct htb_class *cl)
510 {
511 if (htb_hysteresis)
512 return cl->cmode != HTB_CANT_SEND ? -cl->cbuffer : 0;
513 else
514 return 0;
515 }
htb_hiwater(const struct htb_class * cl)516 static inline s64 htb_hiwater(const struct htb_class *cl)
517 {
518 if (htb_hysteresis)
519 return cl->cmode == HTB_CAN_SEND ? -cl->buffer : 0;
520 else
521 return 0;
522 }
523
524
525 /**
526 * htb_class_mode - computes and returns current class mode
527 * @cl: the target class
528 * @diff: diff time in microseconds
529 *
530 * It computes cl's mode at time cl->t_c+diff and returns it. If mode
531 * is not HTB_CAN_SEND then cl->pq_key is updated to time difference
532 * from now to time when cl will change its state.
533 * Also it is worth to note that class mode doesn't change simply
534 * at cl->{c,}tokens == 0 but there can rather be hysteresis of
535 * 0 .. -cl->{c,}buffer range. It is meant to limit number of
536 * mode transitions per time unit. The speed gain is about 1/6.
537 */
538 static inline enum htb_cmode
htb_class_mode(struct htb_class * cl,s64 * diff)539 htb_class_mode(struct htb_class *cl, s64 *diff)
540 {
541 s64 toks;
542
543 if ((toks = (cl->ctokens + *diff)) < htb_lowater(cl)) {
544 *diff = -toks;
545 return HTB_CANT_SEND;
546 }
547
548 if ((toks = (cl->tokens + *diff)) >= htb_hiwater(cl))
549 return HTB_CAN_SEND;
550
551 *diff = -toks;
552 return HTB_MAY_BORROW;
553 }
554
555 /**
556 * htb_change_class_mode - changes classe's mode
557 * @q: the priority event queue
558 * @cl: the target class
559 * @diff: diff time in microseconds
560 *
561 * This should be the only way how to change classe's mode under normal
562 * circumstances. Routine will update feed lists linkage, change mode
563 * and add class to the wait event queue if appropriate. New mode should
564 * be different from old one and cl->pq_key has to be valid if changing
565 * to mode other than HTB_CAN_SEND (see htb_add_to_wait_tree).
566 */
567 static void
htb_change_class_mode(struct htb_sched * q,struct htb_class * cl,s64 * diff)568 htb_change_class_mode(struct htb_sched *q, struct htb_class *cl, s64 *diff)
569 {
570 enum htb_cmode new_mode = htb_class_mode(cl, diff);
571
572 if (new_mode == cl->cmode)
573 return;
574
575 if (new_mode == HTB_CANT_SEND) {
576 WRITE_ONCE(cl->overlimits, cl->overlimits + 1);
577 WRITE_ONCE(q->overlimits, q->overlimits + 1);
578 }
579
580 if (cl->prio_activity) { /* not necessary: speed optimization */
581 if (cl->cmode != HTB_CANT_SEND)
582 htb_deactivate_prios(q, cl);
583 cl->cmode = new_mode;
584 if (new_mode != HTB_CANT_SEND)
585 htb_activate_prios(q, cl);
586 } else
587 cl->cmode = new_mode;
588 }
589
590 /**
591 * htb_activate - inserts leaf cl into appropriate active feeds
592 * @q: the priority event queue
593 * @cl: the target class
594 *
595 * Routine learns (new) priority of leaf and activates feed chain
596 * for the prio. It can be called on already active leaf safely.
597 * It also adds leaf into droplist.
598 */
htb_activate(struct htb_sched * q,struct htb_class * cl)599 static inline void htb_activate(struct htb_sched *q, struct htb_class *cl)
600 {
601 WARN_ON(cl->level || !cl->leaf.q);
602
603 if (!cl->prio_activity) {
604 cl->prio_activity = 1 << cl->prio;
605 htb_activate_prios(q, cl);
606 }
607 }
608
609 /**
610 * htb_deactivate - remove leaf cl from active feeds
611 * @q: the priority event queue
612 * @cl: the target class
613 *
614 * Make sure that leaf is active. In the other words it can't be called
615 * with non-active leaf. It also removes class from the drop list.
616 */
htb_deactivate(struct htb_sched * q,struct htb_class * cl)617 static inline void htb_deactivate(struct htb_sched *q, struct htb_class *cl)
618 {
619 if (!cl->prio_activity)
620 return;
621 htb_deactivate_prios(q, cl);
622 cl->prio_activity = 0;
623 }
624
htb_enqueue(struct sk_buff * skb,struct Qdisc * sch,struct sk_buff ** to_free)625 static int htb_enqueue(struct sk_buff *skb, struct Qdisc *sch,
626 struct sk_buff **to_free)
627 {
628 int ret;
629 unsigned int len = qdisc_pkt_len(skb);
630 struct htb_sched *q = qdisc_priv(sch);
631 struct htb_class *cl = htb_classify(skb, sch, &ret);
632
633 if (cl == HTB_DIRECT) {
634 /* enqueue to helper queue */
635 if (q->direct_queue.qlen < q->direct_qlen) {
636 __qdisc_enqueue_tail(skb, &q->direct_queue);
637 WRITE_ONCE(q->direct_pkts, q->direct_pkts + 1);
638 } else {
639 return qdisc_drop(skb, sch, to_free);
640 }
641 } else if (!cl) {
642 if (ret & __NET_XMIT_BYPASS)
643 qdisc_qstats_drop(sch);
644 __qdisc_drop(skb, to_free);
645 return ret;
646 } else if ((ret = qdisc_enqueue(skb, cl->leaf.q,
647 to_free)) != NET_XMIT_SUCCESS) {
648 if (net_xmit_drop_count(ret)) {
649 qdisc_qstats_drop(sch);
650 WRITE_ONCE(cl->drops, cl->drops + 1);
651 }
652 return ret;
653 } else {
654 htb_activate(q, cl);
655 }
656
657 qstats_backlog_add(sch, len);
658 qdisc_qlen_inc(sch);
659 return NET_XMIT_SUCCESS;
660 }
661
htb_accnt_tokens(struct htb_class * cl,int bytes,s64 diff)662 static inline void htb_accnt_tokens(struct htb_class *cl, int bytes, s64 diff)
663 {
664 s64 toks = diff + cl->tokens;
665
666 if (toks > cl->buffer)
667 toks = cl->buffer;
668 toks -= (s64) psched_l2t_ns(&cl->rate, bytes);
669 if (toks <= -cl->mbuffer)
670 toks = 1 - cl->mbuffer;
671
672 WRITE_ONCE(cl->tokens, toks);
673 }
674
htb_accnt_ctokens(struct htb_class * cl,int bytes,s64 diff)675 static inline void htb_accnt_ctokens(struct htb_class *cl, int bytes, s64 diff)
676 {
677 s64 toks = diff + cl->ctokens;
678
679 if (toks > cl->cbuffer)
680 toks = cl->cbuffer;
681 toks -= (s64) psched_l2t_ns(&cl->ceil, bytes);
682 if (toks <= -cl->mbuffer)
683 toks = 1 - cl->mbuffer;
684
685 WRITE_ONCE(cl->ctokens, toks);
686 }
687
688 /**
689 * htb_charge_class - charges amount "bytes" to leaf and ancestors
690 * @q: the priority event queue
691 * @cl: the class to start iterate
692 * @level: the minimum level to account
693 * @skb: the socket buffer
694 *
695 * Routine assumes that packet "bytes" long was dequeued from leaf cl
696 * borrowing from "level". It accounts bytes to ceil leaky bucket for
697 * leaf and all ancestors and to rate bucket for ancestors at levels
698 * "level" and higher. It also handles possible change of mode resulting
699 * from the update. Note that mode can also increase here (MAY_BORROW to
700 * CAN_SEND) because we can use more precise clock that event queue here.
701 * In such case we remove class from event queue first.
702 */
htb_charge_class(struct htb_sched * q,struct htb_class * cl,int level,struct sk_buff * skb)703 static void htb_charge_class(struct htb_sched *q, struct htb_class *cl,
704 int level, struct sk_buff *skb)
705 {
706 int bytes = qdisc_pkt_len(skb);
707 enum htb_cmode old_mode;
708 s64 diff;
709
710 while (cl) {
711 diff = min_t(s64, q->now - cl->t_c, cl->mbuffer);
712 if (cl->level >= level) {
713 if (cl->level == level)
714 WRITE_ONCE(cl->xstats_lends, cl->xstats_lends + 1);
715 htb_accnt_tokens(cl, bytes, diff);
716 } else {
717 WRITE_ONCE(cl->xstats_borrows, cl->xstats_borrows + 1);
718 /* we moved t_c; update tokens */
719 WRITE_ONCE(cl->tokens, cl->tokens + diff);
720 }
721 htb_accnt_ctokens(cl, bytes, diff);
722 cl->t_c = q->now;
723
724 old_mode = cl->cmode;
725 diff = 0;
726 htb_change_class_mode(q, cl, &diff);
727 if (old_mode != cl->cmode) {
728 if (old_mode != HTB_CAN_SEND)
729 htb_safe_rb_erase(&cl->pq_node, &q->hlevel[cl->level].wait_pq);
730 if (cl->cmode != HTB_CAN_SEND)
731 htb_add_to_wait_tree(q, cl, diff);
732 }
733
734 /* update basic stats except for leaves which are already updated */
735 if (cl->level)
736 bstats_update(&cl->bstats, skb);
737
738 cl = cl->parent;
739 }
740 }
741
742 /**
743 * htb_do_events - make mode changes to classes at the level
744 * @q: the priority event queue
745 * @level: which wait_pq in 'q->hlevel'
746 * @start: start jiffies
747 *
748 * Scans event queue for pending events and applies them. Returns time of
749 * next pending event (0 for no event in pq, q->now for too many events).
750 * Note: Applied are events whose have cl->pq_key <= q->now.
751 */
htb_do_events(struct htb_sched * q,const int level,unsigned long start)752 static s64 htb_do_events(struct htb_sched *q, const int level,
753 unsigned long start)
754 {
755 /* don't run for longer than 2 jiffies; 2 is used instead of
756 * 1 to simplify things when jiffy is going to be incremented
757 * too soon
758 */
759 unsigned long stop_at = start + 2;
760 struct rb_root *wait_pq = &q->hlevel[level].wait_pq;
761
762 while (time_before(jiffies, stop_at)) {
763 struct htb_class *cl;
764 s64 diff;
765 struct rb_node *p = rb_first(wait_pq);
766
767 if (!p)
768 return 0;
769
770 cl = rb_entry(p, struct htb_class, pq_node);
771 if (cl->pq_key > q->now)
772 return cl->pq_key;
773
774 htb_safe_rb_erase(p, wait_pq);
775 diff = min_t(s64, q->now - cl->t_c, cl->mbuffer);
776 htb_change_class_mode(q, cl, &diff);
777 if (cl->cmode != HTB_CAN_SEND)
778 htb_add_to_wait_tree(q, cl, diff);
779 }
780
781 /* too much load - let's continue after a break for scheduling */
782 if (!(q->warned & HTB_WARN_TOOMANYEVENTS)) {
783 pr_warn("htb: too many events!\n");
784 q->warned |= HTB_WARN_TOOMANYEVENTS;
785 }
786
787 return q->now;
788 }
789
790 /* Returns class->node+prio from id-tree where classe's id is >= id. NULL
791 * is no such one exists.
792 */
htb_id_find_next_upper(int prio,struct rb_node * n,u32 id)793 static struct rb_node *htb_id_find_next_upper(int prio, struct rb_node *n,
794 u32 id)
795 {
796 struct rb_node *r = NULL;
797 while (n) {
798 struct htb_class *cl =
799 rb_entry(n, struct htb_class, node[prio]);
800
801 if (id > cl->common.classid) {
802 n = n->rb_right;
803 } else if (id < cl->common.classid) {
804 r = n;
805 n = n->rb_left;
806 } else {
807 return n;
808 }
809 }
810 return r;
811 }
812
813 /**
814 * htb_lookup_leaf - returns next leaf class in DRR order
815 * @hprio: the current one
816 * @prio: which prio in class
817 *
818 * Find leaf where current feed pointers points to.
819 */
htb_lookup_leaf(struct htb_prio * hprio,const int prio)820 static struct htb_class *htb_lookup_leaf(struct htb_prio *hprio, const int prio)
821 {
822 int i;
823 struct {
824 struct rb_node *root;
825 struct rb_node **pptr;
826 u32 *pid;
827 } stk[TC_HTB_MAXDEPTH], *sp = stk;
828
829 if (unlikely(!hprio->row.rb_node))
830 return NULL;
831
832 sp->root = hprio->row.rb_node;
833 sp->pptr = &hprio->ptr;
834 sp->pid = &hprio->last_ptr_id;
835
836 for (i = 0; i < 65535; i++) {
837 if (!*sp->pptr && *sp->pid) {
838 /* ptr was invalidated but id is valid - try to recover
839 * the original or next ptr
840 */
841 *sp->pptr =
842 htb_id_find_next_upper(prio, sp->root, *sp->pid);
843 }
844 *sp->pid = 0; /* ptr is valid now so that remove this hint as it
845 * can become out of date quickly
846 */
847 if (!*sp->pptr) { /* we are at right end; rewind & go up */
848 *sp->pptr = sp->root;
849 while ((*sp->pptr)->rb_left)
850 *sp->pptr = (*sp->pptr)->rb_left;
851 if (sp > stk) {
852 sp--;
853 if (!*sp->pptr) {
854 WARN_ON(1);
855 return NULL;
856 }
857 htb_next_rb_node(sp->pptr);
858 }
859 } else {
860 struct htb_class *cl;
861 struct htb_prio *clp;
862
863 cl = rb_entry(*sp->pptr, struct htb_class, node[prio]);
864 if (!cl->level)
865 return cl;
866 clp = &cl->inner.clprio[prio];
867 (++sp)->root = clp->feed.rb_node;
868 sp->pptr = &clp->ptr;
869 sp->pid = &clp->last_ptr_id;
870 }
871 }
872 WARN_ON(1);
873 return NULL;
874 }
875
876 /* dequeues packet at given priority and level; call only if
877 * you are sure that there is active class at prio/level
878 */
htb_dequeue_tree(struct htb_sched * q,const int prio,const int level)879 static struct sk_buff *htb_dequeue_tree(struct htb_sched *q, const int prio,
880 const int level)
881 {
882 struct sk_buff *skb = NULL;
883 struct htb_class *cl, *start;
884 struct htb_level *hlevel = &q->hlevel[level];
885 struct htb_prio *hprio = &hlevel->hprio[prio];
886
887 /* look initial class up in the row */
888 start = cl = htb_lookup_leaf(hprio, prio);
889
890 do {
891 next:
892 if (unlikely(!cl))
893 return NULL;
894
895 /* class can be empty - it is unlikely but can be true if leaf
896 * qdisc drops packets in enqueue routine or if someone used
897 * graft operation on the leaf since last dequeue;
898 * simply deactivate and skip such class
899 */
900 if (unlikely(cl->leaf.q->q.qlen == 0)) {
901 struct htb_class *next;
902 htb_deactivate(q, cl);
903
904 /* row/level might become empty */
905 if ((q->row_mask[level] & (1 << prio)) == 0)
906 return NULL;
907
908 next = htb_lookup_leaf(hprio, prio);
909
910 if (cl == start) /* fix start if we just deleted it */
911 start = next;
912 cl = next;
913 goto next;
914 }
915
916 skb = cl->leaf.q->dequeue(cl->leaf.q);
917 if (likely(skb != NULL))
918 break;
919
920 qdisc_warn_nonwc("htb", cl->leaf.q);
921 htb_next_rb_node(level ? &cl->parent->inner.clprio[prio].ptr:
922 &q->hlevel[0].hprio[prio].ptr);
923 cl = htb_lookup_leaf(hprio, prio);
924
925 } while (cl != start);
926
927 if (likely(skb != NULL)) {
928 bstats_update(&cl->bstats, skb);
929 cl->leaf.deficit[level] -= qdisc_pkt_len(skb);
930 if (cl->leaf.deficit[level] < 0) {
931 cl->leaf.deficit[level] += cl->quantum;
932 htb_next_rb_node(level ? &cl->parent->inner.clprio[prio].ptr :
933 &q->hlevel[0].hprio[prio].ptr);
934 }
935 /* this used to be after charge_class but this constelation
936 * gives us slightly better performance
937 */
938 if (!cl->leaf.q->q.qlen)
939 htb_deactivate(q, cl);
940 htb_charge_class(q, cl, level, skb);
941 }
942 return skb;
943 }
944
htb_dequeue(struct Qdisc * sch)945 static struct sk_buff *htb_dequeue(struct Qdisc *sch)
946 {
947 struct sk_buff *skb;
948 struct htb_sched *q = qdisc_priv(sch);
949 int level;
950 s64 next_event;
951 unsigned long start_at;
952
953 /* try to dequeue direct packets as high prio (!) to minimize cpu work */
954 skb = __qdisc_dequeue_head(&q->direct_queue);
955 if (skb != NULL) {
956 ok:
957 qdisc_bstats_update(sch, skb);
958 qdisc_qstats_backlog_dec(sch, skb);
959 qdisc_qlen_dec(sch);
960 return skb;
961 }
962
963 if (!sch->q.qlen)
964 goto fin;
965 q->now = ktime_get_ns();
966 start_at = jiffies;
967
968 next_event = q->now + 5LLU * NSEC_PER_SEC;
969
970 for (level = 0; level < TC_HTB_MAXDEPTH; level++) {
971 /* common case optimization - skip event handler quickly */
972 int m;
973 s64 event = q->near_ev_cache[level];
974
975 if (q->now >= event) {
976 event = htb_do_events(q, level, start_at);
977 if (!event)
978 event = q->now + NSEC_PER_SEC;
979 q->near_ev_cache[level] = event;
980 }
981
982 if (next_event > event)
983 next_event = event;
984
985 m = ~q->row_mask[level];
986 while (m != (int)(-1)) {
987 int prio = ffz(m);
988
989 m |= 1 << prio;
990 skb = htb_dequeue_tree(q, prio, level);
991 if (likely(skb != NULL))
992 goto ok;
993 }
994 }
995 if (likely(next_event > q->now))
996 qdisc_watchdog_schedule_ns(&q->watchdog, next_event);
997 else
998 schedule_work(&q->work);
999 fin:
1000 return skb;
1001 }
1002
1003 /* reset all classes */
1004 /* always caled under BH & queue lock */
htb_reset(struct Qdisc * sch)1005 static void htb_reset(struct Qdisc *sch)
1006 {
1007 struct htb_sched *q = qdisc_priv(sch);
1008 struct htb_class *cl;
1009 unsigned int i;
1010
1011 for (i = 0; i < q->clhash.hashsize; i++) {
1012 hlist_for_each_entry(cl, &q->clhash.hash[i], common.hnode) {
1013 if (cl->level)
1014 memset(&cl->inner, 0, sizeof(cl->inner));
1015 else {
1016 if (cl->leaf.q && !q->offload)
1017 qdisc_reset(cl->leaf.q);
1018 }
1019 cl->prio_activity = 0;
1020 cl->cmode = HTB_CAN_SEND;
1021 }
1022 }
1023 qdisc_watchdog_cancel(&q->watchdog);
1024 __qdisc_reset_queue(&q->direct_queue);
1025 memset(q->hlevel, 0, sizeof(q->hlevel));
1026 memset(q->row_mask, 0, sizeof(q->row_mask));
1027 }
1028
1029 static const struct nla_policy htb_policy[TCA_HTB_MAX + 1] = {
1030 [TCA_HTB_PARMS] = { .len = sizeof(struct tc_htb_opt) },
1031 [TCA_HTB_INIT] = { .len = sizeof(struct tc_htb_glob) },
1032 [TCA_HTB_CTAB] = { .type = NLA_BINARY, .len = TC_RTAB_SIZE },
1033 [TCA_HTB_RTAB] = { .type = NLA_BINARY, .len = TC_RTAB_SIZE },
1034 [TCA_HTB_DIRECT_QLEN] = { .type = NLA_U32 },
1035 [TCA_HTB_RATE64] = { .type = NLA_U64 },
1036 [TCA_HTB_CEIL64] = { .type = NLA_U64 },
1037 [TCA_HTB_OFFLOAD] = { .type = NLA_FLAG },
1038 };
1039
htb_work_func(struct work_struct * work)1040 static void htb_work_func(struct work_struct *work)
1041 {
1042 struct htb_sched *q = container_of(work, struct htb_sched, work);
1043 struct Qdisc *sch = q->watchdog.qdisc;
1044
1045 rcu_read_lock();
1046 __netif_schedule(qdisc_root(sch));
1047 rcu_read_unlock();
1048 }
1049
htb_offload(struct net_device * dev,struct tc_htb_qopt_offload * opt)1050 static int htb_offload(struct net_device *dev, struct tc_htb_qopt_offload *opt)
1051 {
1052 return dev->netdev_ops->ndo_setup_tc(dev, TC_SETUP_QDISC_HTB, opt);
1053 }
1054
htb_init(struct Qdisc * sch,struct nlattr * opt,struct netlink_ext_ack * extack)1055 static int htb_init(struct Qdisc *sch, struct nlattr *opt,
1056 struct netlink_ext_ack *extack)
1057 {
1058 struct net_device *dev = qdisc_dev(sch);
1059 struct tc_htb_qopt_offload offload_opt;
1060 struct htb_sched *q = qdisc_priv(sch);
1061 struct nlattr *tb[TCA_HTB_MAX + 1];
1062 struct tc_htb_glob *gopt;
1063 unsigned int ntx;
1064 bool offload;
1065 int err;
1066
1067 qdisc_watchdog_init(&q->watchdog, sch);
1068 INIT_WORK(&q->work, htb_work_func);
1069
1070 if (!opt)
1071 return -EINVAL;
1072
1073 err = tcf_block_get(&q->block, &q->filter_list, sch, extack);
1074 if (err)
1075 return err;
1076
1077 err = nla_parse_nested_deprecated(tb, TCA_HTB_MAX, opt, htb_policy,
1078 NULL);
1079 if (err < 0)
1080 return err;
1081
1082 if (!tb[TCA_HTB_INIT])
1083 return -EINVAL;
1084
1085 gopt = nla_data(tb[TCA_HTB_INIT]);
1086 if (gopt->version != HTB_VER >> 16)
1087 return -EINVAL;
1088
1089 offload = nla_get_flag(tb[TCA_HTB_OFFLOAD]);
1090
1091 if (offload) {
1092 if (sch->parent != TC_H_ROOT) {
1093 NL_SET_ERR_MSG(extack, "HTB must be the root qdisc to use offload");
1094 return -EOPNOTSUPP;
1095 }
1096
1097 if (!tc_can_offload(dev) || !dev->netdev_ops->ndo_setup_tc) {
1098 NL_SET_ERR_MSG(extack, "hw-tc-offload ethtool feature flag must be on");
1099 return -EOPNOTSUPP;
1100 }
1101
1102 q->num_direct_qdiscs = dev->real_num_tx_queues;
1103 q->direct_qdiscs = kzalloc_objs(*q->direct_qdiscs,
1104 q->num_direct_qdiscs);
1105 if (!q->direct_qdiscs)
1106 return -ENOMEM;
1107 }
1108
1109 err = qdisc_class_hash_init(&q->clhash);
1110 if (err < 0)
1111 return err;
1112
1113 if (tb[TCA_HTB_DIRECT_QLEN])
1114 q->direct_qlen = nla_get_u32(tb[TCA_HTB_DIRECT_QLEN]);
1115 else
1116 q->direct_qlen = qdisc_dev(sch)->tx_queue_len;
1117
1118 if ((q->rate2quantum = gopt->rate2quantum) < 1)
1119 q->rate2quantum = 1;
1120 q->defcls = gopt->defcls;
1121
1122 if (!offload)
1123 return 0;
1124
1125 for (ntx = 0; ntx < q->num_direct_qdiscs; ntx++) {
1126 struct netdev_queue *dev_queue = netdev_get_tx_queue(dev, ntx);
1127 struct Qdisc *qdisc;
1128
1129 qdisc = qdisc_create_dflt(dev_queue, &pfifo_qdisc_ops,
1130 TC_H_MAKE(sch->handle, 0), extack);
1131 if (!qdisc) {
1132 return -ENOMEM;
1133 }
1134
1135 q->direct_qdiscs[ntx] = qdisc;
1136 qdisc->flags |= TCQ_F_ONETXQUEUE | TCQ_F_NOPARENT;
1137 }
1138
1139 sch->flags |= TCQ_F_MQROOT;
1140
1141 offload_opt = (struct tc_htb_qopt_offload) {
1142 .command = TC_HTB_CREATE,
1143 .parent_classid = TC_H_MAJ(sch->handle) >> 16,
1144 .classid = TC_H_MIN(q->defcls),
1145 .extack = extack,
1146 };
1147 err = htb_offload(dev, &offload_opt);
1148 if (err)
1149 return err;
1150
1151 /* Defer this assignment, so that htb_destroy skips offload-related
1152 * parts (especially calling ndo_setup_tc) on errors.
1153 */
1154 q->offload = true;
1155 sch->flags |= TCQ_F_OFFLOADED;
1156
1157 return 0;
1158 }
1159
htb_attach_offload(struct Qdisc * sch)1160 static void htb_attach_offload(struct Qdisc *sch)
1161 {
1162 struct net_device *dev = qdisc_dev(sch);
1163 struct htb_sched *q = qdisc_priv(sch);
1164 unsigned int ntx;
1165
1166 for (ntx = 0; ntx < q->num_direct_qdiscs; ntx++) {
1167 struct Qdisc *old, *qdisc = q->direct_qdiscs[ntx];
1168
1169 old = dev_graft_qdisc(qdisc->dev_queue, qdisc);
1170 qdisc_put(old);
1171 qdisc_hash_add(qdisc, false);
1172 }
1173 for (ntx = q->num_direct_qdiscs; ntx < dev->num_tx_queues; ntx++) {
1174 struct netdev_queue *dev_queue = netdev_get_tx_queue(dev, ntx);
1175 struct Qdisc *old = dev_graft_qdisc(dev_queue, NULL);
1176
1177 qdisc_put(old);
1178 }
1179
1180 kfree(q->direct_qdiscs);
1181 q->direct_qdiscs = NULL;
1182 }
1183
htb_attach_software(struct Qdisc * sch)1184 static void htb_attach_software(struct Qdisc *sch)
1185 {
1186 struct net_device *dev = qdisc_dev(sch);
1187 unsigned int ntx;
1188
1189 /* Resemble qdisc_graft behavior. */
1190 for (ntx = 0; ntx < dev->num_tx_queues; ntx++) {
1191 struct netdev_queue *dev_queue = netdev_get_tx_queue(dev, ntx);
1192 struct Qdisc *old = dev_graft_qdisc(dev_queue, sch);
1193
1194 qdisc_refcount_inc(sch);
1195
1196 qdisc_put(old);
1197 }
1198 }
1199
htb_attach(struct Qdisc * sch)1200 static void htb_attach(struct Qdisc *sch)
1201 {
1202 struct htb_sched *q = qdisc_priv(sch);
1203
1204 if (q->offload)
1205 htb_attach_offload(sch);
1206 else
1207 htb_attach_software(sch);
1208 }
1209
htb_dump(struct Qdisc * sch,struct sk_buff * skb)1210 static int htb_dump(struct Qdisc *sch, struct sk_buff *skb)
1211 {
1212 struct htb_sched *q = qdisc_priv(sch);
1213 struct nlattr *nest;
1214 struct tc_htb_glob gopt;
1215
1216 sch->qstats.overlimits = READ_ONCE(q->overlimits);
1217 /* Its safe to not acquire qdisc lock. As we hold RTNL,
1218 * no change can happen on the qdisc parameters.
1219 */
1220
1221 gopt.direct_pkts = READ_ONCE(q->direct_pkts);
1222 gopt.version = HTB_VER;
1223 gopt.rate2quantum = q->rate2quantum;
1224 gopt.defcls = q->defcls;
1225 gopt.debug = 0;
1226
1227 nest = nla_nest_start_noflag(skb, TCA_OPTIONS);
1228 if (nest == NULL)
1229 goto nla_put_failure;
1230 if (nla_put(skb, TCA_HTB_INIT, sizeof(gopt), &gopt) ||
1231 nla_put_u32(skb, TCA_HTB_DIRECT_QLEN, q->direct_qlen))
1232 goto nla_put_failure;
1233 if (q->offload && nla_put_flag(skb, TCA_HTB_OFFLOAD))
1234 goto nla_put_failure;
1235
1236 return nla_nest_end(skb, nest);
1237
1238 nla_put_failure:
1239 nla_nest_cancel(skb, nest);
1240 return -1;
1241 }
1242
htb_dump_class(struct Qdisc * sch,unsigned long arg,struct sk_buff * skb,struct tcmsg * tcm)1243 static int htb_dump_class(struct Qdisc *sch, unsigned long arg,
1244 struct sk_buff *skb, struct tcmsg *tcm)
1245 {
1246 struct htb_class *cl = (struct htb_class *)arg;
1247 struct htb_sched *q = qdisc_priv(sch);
1248 struct nlattr *nest;
1249 struct tc_htb_opt opt;
1250
1251 /* Its safe to not acquire qdisc lock. As we hold RTNL,
1252 * no change can happen on the class parameters.
1253 */
1254 tcm->tcm_parent = cl->parent ? cl->parent->common.classid : TC_H_ROOT;
1255 tcm->tcm_handle = cl->common.classid;
1256 if (!cl->level && cl->leaf.q)
1257 tcm->tcm_info = cl->leaf.q->handle;
1258
1259 nest = nla_nest_start_noflag(skb, TCA_OPTIONS);
1260 if (nest == NULL)
1261 goto nla_put_failure;
1262
1263 memset(&opt, 0, sizeof(opt));
1264
1265 psched_ratecfg_getrate(&opt.rate, &cl->rate);
1266 opt.buffer = PSCHED_NS2TICKS(cl->buffer);
1267 psched_ratecfg_getrate(&opt.ceil, &cl->ceil);
1268 opt.cbuffer = PSCHED_NS2TICKS(cl->cbuffer);
1269 opt.quantum = cl->quantum;
1270 opt.prio = cl->prio;
1271 opt.level = cl->level;
1272 if (nla_put(skb, TCA_HTB_PARMS, sizeof(opt), &opt))
1273 goto nla_put_failure;
1274 if (q->offload && nla_put_flag(skb, TCA_HTB_OFFLOAD))
1275 goto nla_put_failure;
1276 if ((cl->rate.rate_bytes_ps >= (1ULL << 32)) &&
1277 nla_put_u64_64bit(skb, TCA_HTB_RATE64, cl->rate.rate_bytes_ps,
1278 TCA_HTB_PAD))
1279 goto nla_put_failure;
1280 if ((cl->ceil.rate_bytes_ps >= (1ULL << 32)) &&
1281 nla_put_u64_64bit(skb, TCA_HTB_CEIL64, cl->ceil.rate_bytes_ps,
1282 TCA_HTB_PAD))
1283 goto nla_put_failure;
1284
1285 return nla_nest_end(skb, nest);
1286
1287 nla_put_failure:
1288 nla_nest_cancel(skb, nest);
1289 return -1;
1290 }
1291
htb_offload_aggregate_stats(struct htb_sched * q,struct htb_class * cl)1292 static void htb_offload_aggregate_stats(struct htb_sched *q,
1293 struct htb_class *cl)
1294 {
1295 u64 bytes = 0, packets = 0;
1296 struct htb_class *c;
1297 unsigned int i;
1298
1299 for (i = 0; i < q->clhash.hashsize; i++) {
1300 hlist_for_each_entry(c, &q->clhash.hash[i], common.hnode) {
1301 struct htb_class *p = c;
1302
1303 while (p && p->level < cl->level)
1304 p = p->parent;
1305
1306 if (p != cl)
1307 continue;
1308
1309 bytes += u64_stats_read(&c->bstats_bias.bytes);
1310 packets += u64_stats_read(&c->bstats_bias.packets);
1311 if (c->level == 0) {
1312 bytes += u64_stats_read(&c->leaf.q->bstats.bytes);
1313 packets += u64_stats_read(&c->leaf.q->bstats.packets);
1314 }
1315 }
1316 }
1317 _bstats_set(&cl->bstats, bytes, packets);
1318 }
1319
1320 static int
htb_dump_class_stats(struct Qdisc * sch,unsigned long arg,struct gnet_dump * d)1321 htb_dump_class_stats(struct Qdisc *sch, unsigned long arg, struct gnet_dump *d)
1322 {
1323 struct htb_class *cl = (struct htb_class *)arg;
1324 struct htb_sched *q = qdisc_priv(sch);
1325 struct tc_htb_xstats xstats = {
1326 .lends = READ_ONCE(cl->xstats_lends),
1327 .borrows = READ_ONCE(cl->xstats_borrows),
1328 };
1329 struct gnet_stats_queue qs = {
1330 .drops = READ_ONCE(cl->drops),
1331 .overlimits = READ_ONCE(cl->overlimits),
1332 };
1333 __u32 qlen = 0;
1334
1335 if (!cl->level && cl->leaf.q)
1336 qdisc_qstats_qlen_backlog(cl->leaf.q, &qlen, &qs.backlog);
1337
1338 xstats.tokens = clamp_t(s64, PSCHED_NS2TICKS(READ_ONCE(cl->tokens)),
1339 INT_MIN, INT_MAX);
1340 xstats.ctokens = clamp_t(s64, PSCHED_NS2TICKS(READ_ONCE(cl->ctokens)),
1341 INT_MIN, INT_MAX);
1342
1343 if (q->offload) {
1344 spin_lock_bh(qdisc_lock(sch));
1345 if (!cl->level) {
1346 u64 bytes = 0, packets = 0;
1347
1348 if (cl->leaf.q) {
1349 bytes = u64_stats_read(&cl->leaf.q->bstats.bytes);
1350 packets = u64_stats_read(&cl->leaf.q->bstats.packets);
1351 }
1352 bytes += u64_stats_read(&cl->bstats_bias.bytes);
1353 packets += u64_stats_read(&cl->bstats_bias.packets);
1354 _bstats_set(&cl->bstats, bytes, packets);
1355 } else {
1356 htb_offload_aggregate_stats(q, cl);
1357 }
1358 spin_unlock_bh(qdisc_lock(sch));
1359 }
1360
1361 if (gnet_stats_copy_basic(d, NULL, &cl->bstats, true) < 0 ||
1362 gnet_stats_copy_rate_est(d, &cl->rate_est) < 0 ||
1363 gnet_stats_copy_queue(d, NULL, &qs, qlen) < 0)
1364 return -1;
1365
1366 return gnet_stats_copy_app(d, &xstats, sizeof(xstats));
1367 }
1368
1369 static struct netdev_queue *
htb_select_queue(struct Qdisc * sch,struct tcmsg * tcm)1370 htb_select_queue(struct Qdisc *sch, struct tcmsg *tcm)
1371 {
1372 struct net_device *dev = qdisc_dev(sch);
1373 struct tc_htb_qopt_offload offload_opt;
1374 struct htb_sched *q = qdisc_priv(sch);
1375 int err;
1376
1377 if (!q->offload)
1378 return sch->dev_queue;
1379
1380 offload_opt = (struct tc_htb_qopt_offload) {
1381 .command = TC_HTB_LEAF_QUERY_QUEUE,
1382 .classid = TC_H_MIN(tcm->tcm_parent),
1383 };
1384 err = htb_offload(dev, &offload_opt);
1385 if (err || offload_opt.qid >= dev->num_tx_queues)
1386 return NULL;
1387 return netdev_get_tx_queue(dev, offload_opt.qid);
1388 }
1389
1390 static struct Qdisc *
htb_graft_helper(struct netdev_queue * dev_queue,struct Qdisc * new_q)1391 htb_graft_helper(struct netdev_queue *dev_queue, struct Qdisc *new_q)
1392 {
1393 struct net_device *dev = dev_queue->dev;
1394 struct Qdisc *old_q;
1395
1396 if (dev->flags & IFF_UP)
1397 dev_deactivate(dev, false);
1398 old_q = dev_graft_qdisc(dev_queue, new_q);
1399 if (new_q)
1400 new_q->flags |= TCQ_F_ONETXQUEUE | TCQ_F_NOPARENT;
1401 if (dev->flags & IFF_UP)
1402 dev_activate(dev);
1403
1404 return old_q;
1405 }
1406
htb_offload_get_queue(struct htb_class * cl)1407 static struct netdev_queue *htb_offload_get_queue(struct htb_class *cl)
1408 {
1409 struct netdev_queue *queue;
1410
1411 queue = cl->leaf.offload_queue;
1412 if (!(cl->leaf.q->flags & TCQ_F_BUILTIN))
1413 WARN_ON(cl->leaf.q->dev_queue != queue);
1414
1415 return queue;
1416 }
1417
htb_offload_move_qdisc(struct Qdisc * sch,struct htb_class * cl_old,struct htb_class * cl_new,bool destroying)1418 static void htb_offload_move_qdisc(struct Qdisc *sch, struct htb_class *cl_old,
1419 struct htb_class *cl_new, bool destroying)
1420 {
1421 struct netdev_queue *queue_old, *queue_new;
1422 struct net_device *dev = qdisc_dev(sch);
1423
1424 queue_old = htb_offload_get_queue(cl_old);
1425 queue_new = htb_offload_get_queue(cl_new);
1426
1427 if (!destroying) {
1428 struct Qdisc *qdisc;
1429
1430 if (dev->flags & IFF_UP)
1431 dev_deactivate(dev, false);
1432 qdisc = dev_graft_qdisc(queue_old, NULL);
1433 WARN_ON(qdisc != cl_old->leaf.q);
1434 }
1435
1436 if (!(cl_old->leaf.q->flags & TCQ_F_BUILTIN))
1437 cl_old->leaf.q->dev_queue = queue_new;
1438 cl_old->leaf.offload_queue = queue_new;
1439
1440 if (!destroying) {
1441 struct Qdisc *qdisc;
1442
1443 qdisc = dev_graft_qdisc(queue_new, cl_old->leaf.q);
1444 if (dev->flags & IFF_UP)
1445 dev_activate(dev);
1446 WARN_ON(!(qdisc->flags & TCQ_F_BUILTIN));
1447 }
1448 }
1449
htb_graft(struct Qdisc * sch,unsigned long arg,struct Qdisc * new,struct Qdisc ** old,struct netlink_ext_ack * extack)1450 static int htb_graft(struct Qdisc *sch, unsigned long arg, struct Qdisc *new,
1451 struct Qdisc **old, struct netlink_ext_ack *extack)
1452 {
1453 struct netdev_queue *dev_queue = sch->dev_queue;
1454 struct htb_class *cl = (struct htb_class *)arg;
1455 struct htb_sched *q = qdisc_priv(sch);
1456 struct Qdisc *old_q;
1457
1458 if (cl->level)
1459 return -EINVAL;
1460
1461 if (q->offload)
1462 dev_queue = htb_offload_get_queue(cl);
1463
1464 if (!new) {
1465 new = qdisc_create_dflt(dev_queue, &pfifo_qdisc_ops,
1466 cl->common.classid, extack);
1467 if (!new)
1468 return -ENOBUFS;
1469 }
1470
1471 if (q->offload) {
1472 /* One ref for cl->leaf.q, the other for dev_queue->qdisc. */
1473 qdisc_refcount_inc(new);
1474 old_q = htb_graft_helper(dev_queue, new);
1475 }
1476
1477 *old = qdisc_replace(sch, new, &cl->leaf.q);
1478
1479 if (q->offload) {
1480 WARN_ON(old_q != *old);
1481 qdisc_put(old_q);
1482 }
1483
1484 return 0;
1485 }
1486
htb_leaf(struct Qdisc * sch,unsigned long arg)1487 static struct Qdisc *htb_leaf(struct Qdisc *sch, unsigned long arg)
1488 {
1489 struct htb_class *cl = (struct htb_class *)arg;
1490 return !cl->level ? cl->leaf.q : NULL;
1491 }
1492
htb_qlen_notify(struct Qdisc * sch,unsigned long arg)1493 static void htb_qlen_notify(struct Qdisc *sch, unsigned long arg)
1494 {
1495 struct htb_class *cl = (struct htb_class *)arg;
1496
1497 htb_deactivate(qdisc_priv(sch), cl);
1498 }
1499
htb_parent_last_child(struct htb_class * cl)1500 static inline int htb_parent_last_child(struct htb_class *cl)
1501 {
1502 if (!cl->parent)
1503 /* the root class */
1504 return 0;
1505 if (cl->parent->children > 1)
1506 /* not the last child */
1507 return 0;
1508 return 1;
1509 }
1510
htb_parent_to_leaf(struct Qdisc * sch,struct htb_class * cl,struct Qdisc * new_q)1511 static void htb_parent_to_leaf(struct Qdisc *sch, struct htb_class *cl,
1512 struct Qdisc *new_q)
1513 {
1514 struct htb_sched *q = qdisc_priv(sch);
1515 struct htb_class *parent = cl->parent;
1516
1517 WARN_ON(cl->level || !cl->leaf.q || cl->prio_activity);
1518
1519 if (parent->cmode != HTB_CAN_SEND)
1520 htb_safe_rb_erase(&parent->pq_node,
1521 &q->hlevel[parent->level].wait_pq);
1522
1523 parent->level = 0;
1524 memset(&parent->inner, 0, sizeof(parent->inner));
1525 parent->leaf.q = new_q ? new_q : &noop_qdisc;
1526 WRITE_ONCE(parent->tokens, parent->buffer);
1527 WRITE_ONCE(parent->ctokens, parent->cbuffer);
1528 parent->t_c = ktime_get_ns();
1529 parent->cmode = HTB_CAN_SEND;
1530 if (q->offload)
1531 parent->leaf.offload_queue = cl->leaf.offload_queue;
1532 }
1533
htb_parent_to_leaf_offload(struct Qdisc * sch,struct netdev_queue * dev_queue,struct Qdisc * new_q)1534 static void htb_parent_to_leaf_offload(struct Qdisc *sch,
1535 struct netdev_queue *dev_queue,
1536 struct Qdisc *new_q)
1537 {
1538 struct Qdisc *old_q;
1539
1540 /* One ref for cl->leaf.q, the other for dev_queue->qdisc. */
1541 if (new_q)
1542 qdisc_refcount_inc(new_q);
1543 old_q = htb_graft_helper(dev_queue, new_q);
1544 WARN_ON(!(old_q->flags & TCQ_F_BUILTIN));
1545 }
1546
htb_destroy_class_offload(struct Qdisc * sch,struct htb_class * cl,bool last_child,bool destroying,struct netlink_ext_ack * extack)1547 static int htb_destroy_class_offload(struct Qdisc *sch, struct htb_class *cl,
1548 bool last_child, bool destroying,
1549 struct netlink_ext_ack *extack)
1550 {
1551 struct tc_htb_qopt_offload offload_opt;
1552 struct netdev_queue *dev_queue;
1553 struct Qdisc *q = cl->leaf.q;
1554 struct Qdisc *old;
1555 int err;
1556
1557 if (cl->level)
1558 return -EINVAL;
1559
1560 WARN_ON(!q);
1561 dev_queue = htb_offload_get_queue(cl);
1562 /* When destroying, caller qdisc_graft grafts the new qdisc and invokes
1563 * qdisc_put for the qdisc being destroyed. htb_destroy_class_offload
1564 * does not need to graft or qdisc_put the qdisc being destroyed.
1565 */
1566 if (!destroying) {
1567 old = htb_graft_helper(dev_queue, NULL);
1568 /* Last qdisc grafted should be the same as cl->leaf.q when
1569 * calling htb_delete.
1570 */
1571 WARN_ON(old != q);
1572 }
1573
1574 if (cl->parent) {
1575 _bstats_update(&cl->parent->bstats_bias,
1576 u64_stats_read(&q->bstats.bytes),
1577 u64_stats_read(&q->bstats.packets));
1578 }
1579
1580 offload_opt = (struct tc_htb_qopt_offload) {
1581 .command = !last_child ? TC_HTB_LEAF_DEL :
1582 destroying ? TC_HTB_LEAF_DEL_LAST_FORCE :
1583 TC_HTB_LEAF_DEL_LAST,
1584 .classid = cl->common.classid,
1585 .extack = extack,
1586 };
1587 err = htb_offload(qdisc_dev(sch), &offload_opt);
1588
1589 if (!destroying) {
1590 if (!err)
1591 qdisc_put(old);
1592 else
1593 htb_graft_helper(dev_queue, old);
1594 }
1595
1596 if (last_child)
1597 return err;
1598
1599 if (!err && offload_opt.classid != TC_H_MIN(cl->common.classid)) {
1600 u32 classid = TC_H_MAJ(sch->handle) |
1601 TC_H_MIN(offload_opt.classid);
1602 struct htb_class *moved_cl = htb_find(classid, sch);
1603
1604 htb_offload_move_qdisc(sch, moved_cl, cl, destroying);
1605 }
1606
1607 return err;
1608 }
1609
htb_destroy_class(struct Qdisc * sch,struct htb_class * cl)1610 static void htb_destroy_class(struct Qdisc *sch, struct htb_class *cl)
1611 {
1612 if (!cl->level) {
1613 WARN_ON(!cl->leaf.q);
1614 qdisc_put(cl->leaf.q);
1615 }
1616 gen_kill_estimator(&cl->rate_est);
1617 tcf_block_put(cl->block);
1618 kfree(cl);
1619 }
1620
htb_destroy(struct Qdisc * sch)1621 static void htb_destroy(struct Qdisc *sch)
1622 {
1623 struct net_device *dev = qdisc_dev(sch);
1624 struct tc_htb_qopt_offload offload_opt;
1625 struct htb_sched *q = qdisc_priv(sch);
1626 struct hlist_node *next;
1627 bool nonempty, changed;
1628 struct htb_class *cl;
1629 unsigned int i;
1630
1631 cancel_work_sync(&q->work);
1632 qdisc_watchdog_cancel(&q->watchdog);
1633 /* This line used to be after htb_destroy_class call below
1634 * and surprisingly it worked in 2.4. But it must precede it
1635 * because filter need its target class alive to be able to call
1636 * unbind_filter on it (without Oops).
1637 */
1638 tcf_block_put(q->block);
1639
1640 for (i = 0; i < q->clhash.hashsize; i++) {
1641 hlist_for_each_entry(cl, &q->clhash.hash[i], common.hnode) {
1642 tcf_block_put(cl->block);
1643 cl->block = NULL;
1644 }
1645 }
1646
1647 do {
1648 nonempty = false;
1649 changed = false;
1650 for (i = 0; i < q->clhash.hashsize; i++) {
1651 hlist_for_each_entry_safe(cl, next, &q->clhash.hash[i],
1652 common.hnode) {
1653 bool last_child;
1654
1655 if (!q->offload) {
1656 htb_destroy_class(sch, cl);
1657 continue;
1658 }
1659
1660 nonempty = true;
1661
1662 if (cl->level)
1663 continue;
1664
1665 changed = true;
1666
1667 last_child = htb_parent_last_child(cl);
1668 htb_destroy_class_offload(sch, cl, last_child,
1669 true, NULL);
1670 qdisc_class_hash_remove(&q->clhash,
1671 &cl->common);
1672 if (cl->parent)
1673 cl->parent->children--;
1674 if (last_child)
1675 htb_parent_to_leaf(sch, cl, NULL);
1676 htb_destroy_class(sch, cl);
1677 }
1678 }
1679 } while (changed);
1680 WARN_ON(nonempty);
1681
1682 qdisc_class_hash_destroy(&q->clhash);
1683 __qdisc_reset_queue(&q->direct_queue);
1684
1685 if (q->offload) {
1686 offload_opt = (struct tc_htb_qopt_offload) {
1687 .command = TC_HTB_DESTROY,
1688 };
1689 htb_offload(dev, &offload_opt);
1690 }
1691
1692 if (!q->direct_qdiscs)
1693 return;
1694 for (i = 0; i < q->num_direct_qdiscs && q->direct_qdiscs[i]; i++)
1695 qdisc_put(q->direct_qdiscs[i]);
1696 kfree(q->direct_qdiscs);
1697 }
1698
htb_delete(struct Qdisc * sch,unsigned long arg,struct netlink_ext_ack * extack)1699 static int htb_delete(struct Qdisc *sch, unsigned long arg,
1700 struct netlink_ext_ack *extack)
1701 {
1702 struct htb_sched *q = qdisc_priv(sch);
1703 struct htb_class *cl = (struct htb_class *)arg;
1704 struct Qdisc *new_q = NULL;
1705 int last_child = 0;
1706 int err;
1707
1708 /* TODO: why don't allow to delete subtree ? references ? does
1709 * tc subsys guarantee us that in htb_destroy it holds no class
1710 * refs so that we can remove children safely there ?
1711 */
1712 if (cl->children || qdisc_class_in_use(&cl->common)) {
1713 NL_SET_ERR_MSG(extack, "HTB class in use");
1714 return -EBUSY;
1715 }
1716
1717 if (!cl->level && htb_parent_last_child(cl))
1718 last_child = 1;
1719
1720 if (q->offload) {
1721 err = htb_destroy_class_offload(sch, cl, last_child, false,
1722 extack);
1723 if (err)
1724 return err;
1725 }
1726
1727 if (last_child) {
1728 struct netdev_queue *dev_queue = sch->dev_queue;
1729
1730 if (q->offload)
1731 dev_queue = htb_offload_get_queue(cl);
1732
1733 new_q = qdisc_create_dflt(dev_queue, &pfifo_qdisc_ops,
1734 cl->parent->common.classid,
1735 NULL);
1736 if (q->offload)
1737 htb_parent_to_leaf_offload(sch, dev_queue, new_q);
1738 }
1739
1740 sch_tree_lock(sch);
1741
1742 if (!cl->level)
1743 qdisc_purge_queue(cl->leaf.q);
1744
1745 /* delete from hash and active; remainder in destroy_class */
1746 qdisc_class_hash_remove(&q->clhash, &cl->common);
1747 if (cl->parent)
1748 cl->parent->children--;
1749
1750 htb_deactivate(q, cl);
1751
1752 if (cl->cmode != HTB_CAN_SEND)
1753 htb_safe_rb_erase(&cl->pq_node,
1754 &q->hlevel[cl->level].wait_pq);
1755
1756 if (last_child)
1757 htb_parent_to_leaf(sch, cl, new_q);
1758
1759 sch_tree_unlock(sch);
1760
1761 htb_destroy_class(sch, cl);
1762 return 0;
1763 }
1764
htb_change_class(struct Qdisc * sch,u32 classid,u32 parentid,struct nlattr ** tca,unsigned long * arg,struct netlink_ext_ack * extack)1765 static int htb_change_class(struct Qdisc *sch, u32 classid,
1766 u32 parentid, struct nlattr **tca,
1767 unsigned long *arg, struct netlink_ext_ack *extack)
1768 {
1769 int err = -EINVAL;
1770 struct htb_sched *q = qdisc_priv(sch);
1771 struct htb_class *cl = (struct htb_class *)*arg, *parent;
1772 struct tc_htb_qopt_offload offload_opt;
1773 struct nlattr *opt = tca[TCA_OPTIONS];
1774 struct nlattr *tb[TCA_HTB_MAX + 1];
1775 struct Qdisc *parent_qdisc = NULL;
1776 struct netdev_queue *dev_queue;
1777 struct tc_htb_opt *hopt;
1778 u64 rate64, ceil64;
1779 int warn = 0;
1780
1781 /* extract all subattrs from opt attr */
1782 if (!opt)
1783 goto failure;
1784
1785 err = nla_parse_nested_deprecated(tb, TCA_HTB_MAX, opt, htb_policy,
1786 extack);
1787 if (err < 0)
1788 goto failure;
1789
1790 err = -EINVAL;
1791 if (tb[TCA_HTB_PARMS] == NULL)
1792 goto failure;
1793
1794 parent = parentid == TC_H_ROOT ? NULL : htb_find(parentid, sch);
1795
1796 hopt = nla_data(tb[TCA_HTB_PARMS]);
1797 if (!hopt->rate.rate || !hopt->ceil.rate)
1798 goto failure;
1799
1800 if (q->offload) {
1801 /* Options not supported by the offload. */
1802 if (hopt->rate.overhead || hopt->ceil.overhead) {
1803 NL_SET_ERR_MSG(extack, "HTB offload doesn't support the overhead parameter");
1804 goto failure;
1805 }
1806 if (hopt->rate.mpu || hopt->ceil.mpu) {
1807 NL_SET_ERR_MSG(extack, "HTB offload doesn't support the mpu parameter");
1808 goto failure;
1809 }
1810 }
1811
1812 /* Keeping backward compatible with rate_table based iproute2 tc */
1813 if (hopt->rate.linklayer == TC_LINKLAYER_UNAWARE)
1814 qdisc_put_rtab(qdisc_get_rtab(&hopt->rate, tb[TCA_HTB_RTAB],
1815 NULL));
1816
1817 if (hopt->ceil.linklayer == TC_LINKLAYER_UNAWARE)
1818 qdisc_put_rtab(qdisc_get_rtab(&hopt->ceil, tb[TCA_HTB_CTAB],
1819 NULL));
1820
1821 rate64 = nla_get_u64_default(tb[TCA_HTB_RATE64], 0);
1822 ceil64 = nla_get_u64_default(tb[TCA_HTB_CEIL64], 0);
1823
1824 if (!cl) { /* new class */
1825 struct net_device *dev = qdisc_dev(sch);
1826 struct Qdisc *new_q, *old_q;
1827 int prio;
1828 struct {
1829 struct nlattr nla;
1830 struct gnet_estimator opt;
1831 } est = {
1832 .nla = {
1833 .nla_len = nla_attr_size(sizeof(est.opt)),
1834 .nla_type = TCA_RATE,
1835 },
1836 .opt = {
1837 /* 4s interval, 16s averaging constant */
1838 .interval = 2,
1839 .ewma_log = 2,
1840 },
1841 };
1842
1843 /* check for valid classid */
1844 if (!classid || TC_H_MAJ(classid ^ sch->handle) ||
1845 htb_find(classid, sch))
1846 goto failure;
1847
1848 /* check maximal depth */
1849 if (parent && parent->parent && parent->parent->level < 2) {
1850 NL_SET_ERR_MSG_MOD(extack, "tree is too deep");
1851 goto failure;
1852 }
1853 err = -ENOBUFS;
1854 cl = kzalloc_obj(*cl);
1855 if (!cl)
1856 goto failure;
1857
1858 gnet_stats_basic_sync_init(&cl->bstats);
1859 gnet_stats_basic_sync_init(&cl->bstats_bias);
1860
1861 err = tcf_block_get(&cl->block, &cl->filter_list, sch, extack);
1862 if (err) {
1863 kfree(cl);
1864 goto failure;
1865 }
1866 if (htb_rate_est || tca[TCA_RATE]) {
1867 err = gen_new_estimator(&cl->bstats, NULL,
1868 &cl->rate_est,
1869 NULL,
1870 true,
1871 tca[TCA_RATE] ? : &est.nla);
1872 if (err)
1873 goto err_block_put;
1874 }
1875
1876 cl->children = 0;
1877 RB_CLEAR_NODE(&cl->pq_node);
1878
1879 for (prio = 0; prio < TC_HTB_NUMPRIO; prio++)
1880 RB_CLEAR_NODE(&cl->node[prio]);
1881
1882 cl->common.classid = classid;
1883
1884 /* Make sure nothing interrupts us in between of two
1885 * ndo_setup_tc calls.
1886 */
1887 ASSERT_RTNL();
1888
1889 /* create leaf qdisc early because it uses kmalloc(GFP_KERNEL)
1890 * so that can't be used inside of sch_tree_lock
1891 * -- thanks to Karlis Peisenieks
1892 */
1893 if (!q->offload) {
1894 dev_queue = sch->dev_queue;
1895 } else if (!(parent && !parent->level)) {
1896 /* Assign a dev_queue to this classid. */
1897 offload_opt = (struct tc_htb_qopt_offload) {
1898 .command = TC_HTB_LEAF_ALLOC_QUEUE,
1899 .classid = cl->common.classid,
1900 .parent_classid = parent ?
1901 TC_H_MIN(parent->common.classid) :
1902 TC_HTB_CLASSID_ROOT,
1903 .rate = max_t(u64, hopt->rate.rate, rate64),
1904 .ceil = max_t(u64, hopt->ceil.rate, ceil64),
1905 .prio = hopt->prio,
1906 .quantum = hopt->quantum,
1907 .extack = extack,
1908 };
1909 err = htb_offload(dev, &offload_opt);
1910 if (err) {
1911 NL_SET_ERR_MSG_WEAK(extack,
1912 "Failed to offload TC_HTB_LEAF_ALLOC_QUEUE");
1913 goto err_kill_estimator;
1914 }
1915 dev_queue = netdev_get_tx_queue(dev, offload_opt.qid);
1916 } else { /* First child. */
1917 dev_queue = htb_offload_get_queue(parent);
1918 old_q = htb_graft_helper(dev_queue, NULL);
1919 WARN_ON(old_q != parent->leaf.q);
1920 offload_opt = (struct tc_htb_qopt_offload) {
1921 .command = TC_HTB_LEAF_TO_INNER,
1922 .classid = cl->common.classid,
1923 .parent_classid =
1924 TC_H_MIN(parent->common.classid),
1925 .rate = max_t(u64, hopt->rate.rate, rate64),
1926 .ceil = max_t(u64, hopt->ceil.rate, ceil64),
1927 .prio = hopt->prio,
1928 .quantum = hopt->quantum,
1929 .extack = extack,
1930 };
1931 err = htb_offload(dev, &offload_opt);
1932 if (err) {
1933 NL_SET_ERR_MSG_WEAK(extack,
1934 "Failed to offload TC_HTB_LEAF_TO_INNER");
1935 htb_graft_helper(dev_queue, old_q);
1936 goto err_kill_estimator;
1937 }
1938 _bstats_update(&parent->bstats_bias,
1939 u64_stats_read(&old_q->bstats.bytes),
1940 u64_stats_read(&old_q->bstats.packets));
1941 qdisc_put(old_q);
1942 }
1943 new_q = qdisc_create_dflt(dev_queue, &pfifo_qdisc_ops,
1944 classid, NULL);
1945 if (q->offload) {
1946 /* One ref for cl->leaf.q, the other for dev_queue->qdisc. */
1947 if (new_q)
1948 qdisc_refcount_inc(new_q);
1949 old_q = htb_graft_helper(dev_queue, new_q);
1950 /* No qdisc_put needed. */
1951 WARN_ON(!(old_q->flags & TCQ_F_BUILTIN));
1952 }
1953 sch_tree_lock(sch);
1954 if (parent && !parent->level) {
1955 /* turn parent into inner node */
1956 qdisc_purge_queue(parent->leaf.q);
1957 parent_qdisc = parent->leaf.q;
1958 htb_deactivate(q, parent);
1959
1960 /* remove from evt list because of level change */
1961 if (parent->cmode != HTB_CAN_SEND) {
1962 htb_safe_rb_erase(&parent->pq_node, &q->hlevel[0].wait_pq);
1963 parent->cmode = HTB_CAN_SEND;
1964 }
1965 parent->level = (parent->parent ? parent->parent->level
1966 : TC_HTB_MAXDEPTH) - 1;
1967 memset(&parent->inner, 0, sizeof(parent->inner));
1968 }
1969
1970 /* leaf (we) needs elementary qdisc */
1971 cl->leaf.q = new_q ? new_q : &noop_qdisc;
1972 if (q->offload)
1973 cl->leaf.offload_queue = dev_queue;
1974
1975 cl->parent = parent;
1976
1977 /* set class to be in HTB_CAN_SEND state */
1978 cl->tokens = PSCHED_TICKS2NS(hopt->buffer);
1979 cl->ctokens = PSCHED_TICKS2NS(hopt->cbuffer);
1980 cl->mbuffer = 60ULL * NSEC_PER_SEC; /* 1min */
1981 cl->t_c = ktime_get_ns();
1982 cl->cmode = HTB_CAN_SEND;
1983
1984 /* attach to the hash list and parent's family */
1985 qdisc_class_hash_insert(&q->clhash, &cl->common);
1986 if (parent)
1987 parent->children++;
1988 if (cl->leaf.q != &noop_qdisc)
1989 qdisc_hash_add(cl->leaf.q, true);
1990 } else {
1991 if (tca[TCA_RATE]) {
1992 err = gen_replace_estimator(&cl->bstats, NULL,
1993 &cl->rate_est,
1994 NULL,
1995 true,
1996 tca[TCA_RATE]);
1997 if (err)
1998 return err;
1999 }
2000
2001 if (q->offload) {
2002 struct net_device *dev = qdisc_dev(sch);
2003
2004 offload_opt = (struct tc_htb_qopt_offload) {
2005 .command = TC_HTB_NODE_MODIFY,
2006 .classid = cl->common.classid,
2007 .rate = max_t(u64, hopt->rate.rate, rate64),
2008 .ceil = max_t(u64, hopt->ceil.rate, ceil64),
2009 .prio = hopt->prio,
2010 .quantum = hopt->quantum,
2011 .extack = extack,
2012 };
2013 err = htb_offload(dev, &offload_opt);
2014 if (err)
2015 /* Estimator was replaced, and rollback may fail
2016 * as well, so we don't try to recover it, and
2017 * the estimator won't work property with the
2018 * offload anyway, because bstats are updated
2019 * only when the stats are queried.
2020 */
2021 return err;
2022 }
2023
2024 sch_tree_lock(sch);
2025 }
2026
2027 psched_ratecfg_precompute(&cl->rate, &hopt->rate, rate64);
2028 psched_ratecfg_precompute(&cl->ceil, &hopt->ceil, ceil64);
2029
2030 /* it used to be a nasty bug here, we have to check that node
2031 * is really leaf before changing cl->leaf !
2032 */
2033 if (!cl->level) {
2034 u64 quantum = cl->rate.rate_bytes_ps;
2035
2036 do_div(quantum, q->rate2quantum);
2037 cl->quantum = min_t(u64, quantum, INT_MAX);
2038
2039 if (!hopt->quantum && cl->quantum < 1000) {
2040 warn = -1;
2041 cl->quantum = 1000;
2042 }
2043 if (!hopt->quantum && cl->quantum > 200000) {
2044 warn = 1;
2045 cl->quantum = 200000;
2046 }
2047 if (hopt->quantum)
2048 cl->quantum = hopt->quantum;
2049 if ((cl->prio = hopt->prio) >= TC_HTB_NUMPRIO)
2050 cl->prio = TC_HTB_NUMPRIO - 1;
2051 }
2052
2053 cl->buffer = PSCHED_TICKS2NS(hopt->buffer);
2054 cl->cbuffer = PSCHED_TICKS2NS(hopt->cbuffer);
2055
2056 sch_tree_unlock(sch);
2057 qdisc_put(parent_qdisc);
2058
2059 if (warn)
2060 NL_SET_ERR_MSG_FMT_MOD(extack,
2061 "quantum of class %X is %s. Consider r2q change.",
2062 cl->common.classid, (warn == -1 ? "small" : "big"));
2063
2064 qdisc_class_hash_grow(sch, &q->clhash);
2065
2066 *arg = (unsigned long)cl;
2067 return 0;
2068
2069 err_kill_estimator:
2070 gen_kill_estimator(&cl->rate_est);
2071 err_block_put:
2072 tcf_block_put(cl->block);
2073 kfree(cl);
2074 failure:
2075 return err;
2076 }
2077
htb_tcf_block(struct Qdisc * sch,unsigned long arg,struct netlink_ext_ack * extack)2078 static struct tcf_block *htb_tcf_block(struct Qdisc *sch, unsigned long arg,
2079 struct netlink_ext_ack *extack)
2080 {
2081 struct htb_sched *q = qdisc_priv(sch);
2082 struct htb_class *cl = (struct htb_class *)arg;
2083
2084 return cl ? cl->block : q->block;
2085 }
2086
htb_bind_filter(struct Qdisc * sch,unsigned long parent,u32 classid)2087 static unsigned long htb_bind_filter(struct Qdisc *sch, unsigned long parent,
2088 u32 classid)
2089 {
2090 struct htb_class *cl = htb_find(classid, sch);
2091
2092 /*if (cl && !cl->level) return 0;
2093 * The line above used to be there to prevent attaching filters to
2094 * leaves. But at least tc_index filter uses this just to get class
2095 * for other reasons so that we have to allow for it.
2096 * ----
2097 * 19.6.2002 As Werner explained it is ok - bind filter is just
2098 * another way to "lock" the class - unlike "get" this lock can
2099 * be broken by class during destroy IIUC.
2100 */
2101 if (cl)
2102 qdisc_class_get(&cl->common);
2103 return (unsigned long)cl;
2104 }
2105
htb_unbind_filter(struct Qdisc * sch,unsigned long arg)2106 static void htb_unbind_filter(struct Qdisc *sch, unsigned long arg)
2107 {
2108 struct htb_class *cl = (struct htb_class *)arg;
2109
2110 qdisc_class_put(&cl->common);
2111 }
2112
htb_walk(struct Qdisc * sch,struct qdisc_walker * arg)2113 static void htb_walk(struct Qdisc *sch, struct qdisc_walker *arg)
2114 {
2115 struct htb_sched *q = qdisc_priv(sch);
2116 struct htb_class *cl;
2117 unsigned int i;
2118
2119 if (arg->stop)
2120 return;
2121
2122 for (i = 0; i < q->clhash.hashsize; i++) {
2123 hlist_for_each_entry(cl, &q->clhash.hash[i], common.hnode) {
2124 if (!tc_qdisc_stats_dump(sch, (unsigned long)cl, arg))
2125 return;
2126 }
2127 }
2128 }
2129
2130 static const struct Qdisc_class_ops htb_class_ops = {
2131 .select_queue = htb_select_queue,
2132 .graft = htb_graft,
2133 .leaf = htb_leaf,
2134 .qlen_notify = htb_qlen_notify,
2135 .find = htb_search,
2136 .change = htb_change_class,
2137 .delete = htb_delete,
2138 .walk = htb_walk,
2139 .tcf_block = htb_tcf_block,
2140 .bind_tcf = htb_bind_filter,
2141 .unbind_tcf = htb_unbind_filter,
2142 .dump = htb_dump_class,
2143 .dump_stats = htb_dump_class_stats,
2144 };
2145
2146 static struct Qdisc_ops htb_qdisc_ops __read_mostly = {
2147 .cl_ops = &htb_class_ops,
2148 .id = "htb",
2149 .priv_size = sizeof(struct htb_sched),
2150 .enqueue = htb_enqueue,
2151 .dequeue = htb_dequeue,
2152 .peek = qdisc_peek_dequeued,
2153 .init = htb_init,
2154 .attach = htb_attach,
2155 .reset = htb_reset,
2156 .destroy = htb_destroy,
2157 .dump = htb_dump,
2158 .owner = THIS_MODULE,
2159 };
2160 MODULE_ALIAS_NET_SCH("htb");
2161
htb_module_init(void)2162 static int __init htb_module_init(void)
2163 {
2164 return register_qdisc(&htb_qdisc_ops);
2165 }
htb_module_exit(void)2166 static void __exit htb_module_exit(void)
2167 {
2168 unregister_qdisc(&htb_qdisc_ops);
2169 }
2170
2171 module_init(htb_module_init)
2172 module_exit(htb_module_exit)
2173 MODULE_LICENSE("GPL");
2174 MODULE_DESCRIPTION("Hierarchical Token Bucket scheduler");
2175