1 // SPDX-License-Identifier: GPL-2.0
2
3 /* net/sched/sch_taprio.c Time Aware Priority Scheduler
4 *
5 * Authors: Vinicius Costa Gomes <vinicius.gomes@intel.com>
6 *
7 */
8
9 #include <linux/ethtool.h>
10 #include <linux/ethtool_netlink.h>
11 #include <linux/types.h>
12 #include <linux/slab.h>
13 #include <linux/kernel.h>
14 #include <linux/string.h>
15 #include <linux/list.h>
16 #include <linux/errno.h>
17 #include <linux/skbuff.h>
18 #include <linux/math64.h>
19 #include <linux/module.h>
20 #include <linux/spinlock.h>
21 #include <linux/rcupdate.h>
22 #include <linux/time.h>
23 #include <net/gso.h>
24 #include <net/netlink.h>
25 #include <net/pkt_sched.h>
26 #include <net/pkt_cls.h>
27 #include <net/sch_generic.h>
28 #include <net/sock.h>
29 #include <net/tcp.h>
30
31 #define TAPRIO_STAT_NOT_SET (~0ULL)
32
33 #include "sch_mqprio_lib.h"
34
35 static LIST_HEAD(taprio_list);
36 static struct static_key_false taprio_have_broken_mqprio;
37 static struct static_key_false taprio_have_working_mqprio;
38
39 #define TAPRIO_ALL_GATES_OPEN -1
40
41 #define TXTIME_ASSIST_IS_ENABLED(flags) ((flags) & TCA_TAPRIO_ATTR_FLAG_TXTIME_ASSIST)
42 #define FULL_OFFLOAD_IS_ENABLED(flags) ((flags) & TCA_TAPRIO_ATTR_FLAG_FULL_OFFLOAD)
43 #define TAPRIO_SUPPORTED_FLAGS \
44 (TCA_TAPRIO_ATTR_FLAG_TXTIME_ASSIST | TCA_TAPRIO_ATTR_FLAG_FULL_OFFLOAD)
45 #define TAPRIO_FLAGS_INVALID U32_MAX
46 /* Minimum value for picos_per_byte to ensure non-zero duration
47 * for minimum-sized Ethernet frames (ETH_ZLEN = 60).
48 * 60 * 17 > PSEC_PER_NSEC (1000)
49 */
50 #define TAPRIO_PICOS_PER_BYTE_MIN 17
51
52 struct sched_entry {
53 /* Durations between this GCL entry and the GCL entry where the
54 * respective traffic class gate closes
55 */
56 u64 gate_duration[TC_MAX_QUEUE];
57 atomic_t budget[TC_MAX_QUEUE];
58 /* The qdisc makes some effort so that no packet leaves
59 * after this time
60 */
61 ktime_t gate_close_time[TC_MAX_QUEUE];
62 struct list_head list;
63 /* Used to calculate when to advance the schedule */
64 ktime_t end_time;
65 ktime_t next_txtime;
66 int index;
67 u32 gate_mask;
68 u32 interval;
69 u8 command;
70 };
71
72 struct sched_gate_list {
73 /* Longest non-zero contiguous gate durations per traffic class,
74 * or 0 if a traffic class gate never opens during the schedule.
75 */
76 u64 max_open_gate_duration[TC_MAX_QUEUE];
77 u32 max_frm_len[TC_MAX_QUEUE]; /* for the fast path */
78 u32 max_sdu[TC_MAX_QUEUE]; /* for dump */
79 struct rcu_head rcu;
80 struct list_head entries;
81 size_t num_entries;
82 ktime_t cycle_end_time;
83 s64 cycle_time;
84 s64 cycle_time_extension;
85 s64 base_time;
86 };
87
88 struct taprio_sched {
89 struct Qdisc **qdiscs;
90 struct Qdisc *root;
91 u32 flags;
92 enum tk_offsets tk_offset;
93 int clockid;
94 bool offloaded;
95 bool detected_mqprio;
96 bool broken_mqprio;
97 atomic64_t picos_per_byte; /* Using picoseconds because for 10Gbps+
98 * speeds it's sub-nanoseconds per byte
99 */
100
101 /* Protects the update side of the RCU protected current_entry */
102 spinlock_t current_entry_lock;
103 struct sched_entry __rcu *current_entry;
104 struct sched_gate_list __rcu *oper_sched;
105 struct sched_gate_list __rcu *admin_sched;
106 struct hrtimer advance_timer;
107 struct list_head taprio_list;
108 int cur_txq[TC_MAX_QUEUE];
109 u32 max_sdu[TC_MAX_QUEUE]; /* save info from the user */
110 u32 fp[TC_QOPT_MAX_QUEUE]; /* only for dump and offloading */
111 u32 txtime_delay;
112 };
113
114 struct __tc_taprio_qopt_offload {
115 refcount_t users;
116 struct tc_taprio_qopt_offload offload;
117 };
118
taprio_calculate_gate_durations(struct taprio_sched * q,struct sched_gate_list * sched)119 static void taprio_calculate_gate_durations(struct taprio_sched *q,
120 struct sched_gate_list *sched)
121 {
122 struct net_device *dev = qdisc_dev(q->root);
123 int num_tc = netdev_get_num_tc(dev);
124 struct sched_entry *entry, *cur;
125 int tc;
126
127 list_for_each_entry(entry, &sched->entries, list) {
128 u32 gates_still_open = entry->gate_mask;
129
130 /* For each traffic class, calculate each open gate duration,
131 * starting at this schedule entry and ending at the schedule
132 * entry containing a gate close event for that TC.
133 */
134 cur = entry;
135
136 do {
137 if (!gates_still_open)
138 break;
139
140 for (tc = 0; tc < num_tc; tc++) {
141 if (!(gates_still_open & BIT(tc)))
142 continue;
143
144 if (cur->gate_mask & BIT(tc))
145 entry->gate_duration[tc] += cur->interval;
146 else
147 gates_still_open &= ~BIT(tc);
148 }
149
150 cur = list_next_entry_circular(cur, &sched->entries, list);
151 } while (cur != entry);
152
153 /* Keep track of the maximum gate duration for each traffic
154 * class, taking care to not confuse a traffic class which is
155 * temporarily closed with one that is always closed.
156 */
157 for (tc = 0; tc < num_tc; tc++)
158 if (entry->gate_duration[tc] &&
159 sched->max_open_gate_duration[tc] < entry->gate_duration[tc])
160 sched->max_open_gate_duration[tc] = entry->gate_duration[tc];
161 }
162 }
163
taprio_entry_allows_tx(ktime_t skb_end_time,struct sched_entry * entry,int tc)164 static bool taprio_entry_allows_tx(ktime_t skb_end_time,
165 struct sched_entry *entry, int tc)
166 {
167 return ktime_before(skb_end_time, entry->gate_close_time[tc]);
168 }
169
sched_base_time(const struct sched_gate_list * sched)170 static ktime_t sched_base_time(const struct sched_gate_list *sched)
171 {
172 if (!sched)
173 return KTIME_MAX;
174
175 return ns_to_ktime(sched->base_time);
176 }
177
taprio_mono_to_any(const struct taprio_sched * q,ktime_t mono)178 static ktime_t taprio_mono_to_any(const struct taprio_sched *q, ktime_t mono)
179 {
180 /* This pairs with WRITE_ONCE() in taprio_parse_clockid() */
181 enum tk_offsets tk_offset = READ_ONCE(q->tk_offset);
182
183 switch (tk_offset) {
184 case TK_OFFS_MAX:
185 return mono;
186 default:
187 return ktime_mono_to_any(mono, tk_offset);
188 }
189 }
190
taprio_get_time(const struct taprio_sched * q)191 static ktime_t taprio_get_time(const struct taprio_sched *q)
192 {
193 return taprio_mono_to_any(q, ktime_get());
194 }
195
taprio_free_sched_cb(struct rcu_head * head)196 static void taprio_free_sched_cb(struct rcu_head *head)
197 {
198 struct sched_gate_list *sched = container_of(head, struct sched_gate_list, rcu);
199 struct sched_entry *entry, *n;
200
201 list_for_each_entry_safe(entry, n, &sched->entries, list) {
202 list_del(&entry->list);
203 kfree(entry);
204 }
205
206 kfree(sched);
207 }
208
switch_schedules(struct taprio_sched * q,struct sched_gate_list ** admin,struct sched_gate_list ** oper)209 static void switch_schedules(struct taprio_sched *q,
210 struct sched_gate_list **admin,
211 struct sched_gate_list **oper)
212 {
213 rcu_assign_pointer(q->oper_sched, *admin);
214 rcu_assign_pointer(q->admin_sched, NULL);
215
216 if (*oper)
217 call_rcu(&(*oper)->rcu, taprio_free_sched_cb);
218
219 *oper = *admin;
220 *admin = NULL;
221 }
222
223 /* Get how much time has been already elapsed in the current cycle. */
get_cycle_time_elapsed(struct sched_gate_list * sched,ktime_t time)224 static s32 get_cycle_time_elapsed(struct sched_gate_list *sched, ktime_t time)
225 {
226 ktime_t time_since_sched_start;
227 s32 time_elapsed;
228
229 time_since_sched_start = ktime_sub(time, sched->base_time);
230 div_s64_rem(time_since_sched_start, sched->cycle_time, &time_elapsed);
231
232 return time_elapsed;
233 }
234
get_interval_end_time(struct sched_gate_list * sched,struct sched_gate_list * admin,struct sched_entry * entry,ktime_t intv_start)235 static ktime_t get_interval_end_time(struct sched_gate_list *sched,
236 struct sched_gate_list *admin,
237 struct sched_entry *entry,
238 ktime_t intv_start)
239 {
240 s32 cycle_elapsed = get_cycle_time_elapsed(sched, intv_start);
241 ktime_t intv_end, cycle_ext_end, cycle_end;
242
243 cycle_end = ktime_add_ns(intv_start, sched->cycle_time - cycle_elapsed);
244 intv_end = ktime_add_ns(intv_start, entry->interval);
245 cycle_ext_end = ktime_add(cycle_end, sched->cycle_time_extension);
246
247 if (ktime_before(intv_end, cycle_end))
248 return intv_end;
249 else if (admin && admin != sched &&
250 ktime_after(admin->base_time, cycle_end) &&
251 ktime_before(admin->base_time, cycle_ext_end))
252 return admin->base_time;
253 else
254 return cycle_end;
255 }
256
length_to_duration(struct taprio_sched * q,int len)257 static int length_to_duration(struct taprio_sched *q, int len)
258 {
259 return div_u64(len * atomic64_read(&q->picos_per_byte), PSEC_PER_NSEC);
260 }
261
duration_to_length(struct taprio_sched * q,u64 duration)262 static int duration_to_length(struct taprio_sched *q, u64 duration)
263 {
264 return div_u64(duration * PSEC_PER_NSEC, atomic64_read(&q->picos_per_byte));
265 }
266
267 /* Sets sched->max_sdu[] and sched->max_frm_len[] to the minimum between the
268 * q->max_sdu[] requested by the user and the max_sdu dynamically determined by
269 * the maximum open gate durations at the given link speed.
270 */
taprio_update_queue_max_sdu(struct taprio_sched * q,struct sched_gate_list * sched,struct qdisc_size_table * stab)271 static void taprio_update_queue_max_sdu(struct taprio_sched *q,
272 struct sched_gate_list *sched,
273 struct qdisc_size_table *stab)
274 {
275 struct net_device *dev = qdisc_dev(q->root);
276 int num_tc = netdev_get_num_tc(dev);
277 u32 max_sdu_from_user;
278 u32 max_sdu_dynamic;
279 u32 max_sdu;
280 int tc;
281
282 for (tc = 0; tc < num_tc; tc++) {
283 max_sdu_from_user = q->max_sdu[tc] ?: U32_MAX;
284
285 /* TC gate never closes => keep the queueMaxSDU
286 * selected by the user
287 */
288 if (sched->max_open_gate_duration[tc] == sched->cycle_time) {
289 max_sdu_dynamic = U32_MAX;
290 } else {
291 u32 max_frm_len;
292
293 max_frm_len = duration_to_length(q, sched->max_open_gate_duration[tc]);
294 /* Compensate for L1 overhead from size table,
295 * but don't let the frame size go negative
296 */
297 if (stab) {
298 max_frm_len -= stab->szopts.overhead;
299 max_frm_len = max_t(int, max_frm_len,
300 dev->hard_header_len + 1);
301 }
302 max_sdu_dynamic = max_frm_len - dev->hard_header_len;
303 if (max_sdu_dynamic > dev->max_mtu)
304 max_sdu_dynamic = U32_MAX;
305 }
306
307 max_sdu = min(max_sdu_dynamic, max_sdu_from_user);
308
309 if (max_sdu != U32_MAX) {
310 sched->max_frm_len[tc] = max_sdu + dev->hard_header_len;
311 sched->max_sdu[tc] = max_sdu;
312 } else {
313 sched->max_frm_len[tc] = U32_MAX; /* never oversized */
314 sched->max_sdu[tc] = 0;
315 }
316 }
317 }
318
319 /* Returns the entry corresponding to next available interval. If
320 * validate_interval is set, it only validates whether the timestamp occurs
321 * when the gate corresponding to the skb's traffic class is open.
322 */
find_entry_to_transmit(struct sk_buff * skb,struct Qdisc * sch,struct sched_gate_list * sched,struct sched_gate_list * admin,ktime_t time,ktime_t * interval_start,ktime_t * interval_end,bool validate_interval)323 static struct sched_entry *find_entry_to_transmit(struct sk_buff *skb,
324 struct Qdisc *sch,
325 struct sched_gate_list *sched,
326 struct sched_gate_list *admin,
327 ktime_t time,
328 ktime_t *interval_start,
329 ktime_t *interval_end,
330 bool validate_interval)
331 {
332 ktime_t curr_intv_start, curr_intv_end, cycle_end, packet_transmit_time;
333 ktime_t earliest_txtime = KTIME_MAX, txtime, cycle, transmit_end_time;
334 struct sched_entry *entry = NULL, *entry_found = NULL;
335 struct taprio_sched *q = qdisc_priv(sch);
336 struct net_device *dev = qdisc_dev(sch);
337 bool entry_available = false;
338 s32 cycle_elapsed;
339 int tc, n;
340
341 tc = netdev_get_prio_tc_map(dev, skb->priority);
342 packet_transmit_time = length_to_duration(q, qdisc_pkt_len(skb));
343
344 *interval_start = 0;
345 *interval_end = 0;
346
347 if (!sched)
348 return NULL;
349
350 cycle = sched->cycle_time;
351 cycle_elapsed = get_cycle_time_elapsed(sched, time);
352 curr_intv_end = ktime_sub_ns(time, cycle_elapsed);
353 cycle_end = ktime_add_ns(curr_intv_end, cycle);
354
355 list_for_each_entry(entry, &sched->entries, list) {
356 curr_intv_start = curr_intv_end;
357 curr_intv_end = get_interval_end_time(sched, admin, entry,
358 curr_intv_start);
359
360 if (ktime_after(curr_intv_start, cycle_end))
361 break;
362
363 if (!(entry->gate_mask & BIT(tc)) ||
364 packet_transmit_time > entry->interval)
365 continue;
366
367 txtime = entry->next_txtime;
368
369 if (ktime_before(txtime, time) || validate_interval) {
370 transmit_end_time = ktime_add_ns(time, packet_transmit_time);
371 if ((ktime_before(curr_intv_start, time) &&
372 ktime_before(transmit_end_time, curr_intv_end)) ||
373 (ktime_after(curr_intv_start, time) && !validate_interval)) {
374 entry_found = entry;
375 *interval_start = curr_intv_start;
376 *interval_end = curr_intv_end;
377 break;
378 } else if (!entry_available && !validate_interval) {
379 /* Here, we are just trying to find out the
380 * first available interval in the next cycle.
381 */
382 entry_available = true;
383 entry_found = entry;
384 *interval_start = ktime_add_ns(curr_intv_start, cycle);
385 *interval_end = ktime_add_ns(curr_intv_end, cycle);
386 }
387 } else if (ktime_before(txtime, earliest_txtime) &&
388 !entry_available) {
389 earliest_txtime = txtime;
390 entry_found = entry;
391 n = div_s64(ktime_sub(txtime, curr_intv_start), cycle);
392 *interval_start = ktime_add(curr_intv_start, n * cycle);
393 *interval_end = ktime_add(curr_intv_end, n * cycle);
394 }
395 }
396
397 return entry_found;
398 }
399
is_valid_interval(struct sk_buff * skb,struct Qdisc * sch)400 static bool is_valid_interval(struct sk_buff *skb, struct Qdisc *sch)
401 {
402 struct taprio_sched *q = qdisc_priv(sch);
403 struct sched_gate_list *sched, *admin;
404 ktime_t interval_start, interval_end;
405 struct sched_entry *entry;
406
407 rcu_read_lock();
408 sched = rcu_dereference(q->oper_sched);
409 admin = rcu_dereference(q->admin_sched);
410
411 entry = find_entry_to_transmit(skb, sch, sched, admin, skb->tstamp,
412 &interval_start, &interval_end, true);
413 rcu_read_unlock();
414
415 return entry;
416 }
417
418 /* This returns the tstamp value set by TCP in terms of the set clock. */
get_tcp_tstamp(struct taprio_sched * q,struct sk_buff * skb)419 static ktime_t get_tcp_tstamp(struct taprio_sched *q, struct sk_buff *skb)
420 {
421 unsigned int offset = skb_network_offset(skb);
422 const struct ipv6hdr *ipv6h;
423 const struct iphdr *iph;
424 struct ipv6hdr _ipv6h;
425
426 ipv6h = skb_header_pointer(skb, offset, sizeof(_ipv6h), &_ipv6h);
427 if (!ipv6h)
428 return 0;
429
430 if (ipv6h->version == 4) {
431 iph = (struct iphdr *)ipv6h;
432 offset += iph->ihl * 4;
433
434 /* special-case 6in4 tunnelling, as that is a common way to get
435 * v6 connectivity in the home
436 */
437 if (iph->protocol == IPPROTO_IPV6) {
438 ipv6h = skb_header_pointer(skb, offset,
439 sizeof(_ipv6h), &_ipv6h);
440
441 if (!ipv6h || ipv6h->nexthdr != IPPROTO_TCP)
442 return 0;
443 } else if (iph->protocol != IPPROTO_TCP) {
444 return 0;
445 }
446 } else if (ipv6h->version == 6 && ipv6h->nexthdr != IPPROTO_TCP) {
447 return 0;
448 }
449
450 return taprio_mono_to_any(q, skb->skb_mstamp_ns);
451 }
452
453 /* There are a few scenarios where we will have to modify the txtime from
454 * what is read from next_txtime in sched_entry. They are:
455 * 1. If txtime is in the past,
456 * a. The gate for the traffic class is currently open and packet can be
457 * transmitted before it closes, schedule the packet right away.
458 * b. If the gate corresponding to the traffic class is going to open later
459 * in the cycle, set the txtime of packet to the interval start.
460 * 2. If txtime is in the future, there are packets corresponding to the
461 * current traffic class waiting to be transmitted. So, the following
462 * possibilities exist:
463 * a. We can transmit the packet before the window containing the txtime
464 * closes.
465 * b. The window might close before the transmission can be completed
466 * successfully. So, schedule the packet in the next open window.
467 */
get_packet_txtime(struct sk_buff * skb,struct Qdisc * sch)468 static long get_packet_txtime(struct sk_buff *skb, struct Qdisc *sch)
469 {
470 ktime_t transmit_end_time, interval_end, interval_start, tcp_tstamp;
471 struct taprio_sched *q = qdisc_priv(sch);
472 struct sched_gate_list *sched, *admin;
473 ktime_t minimum_time, now, txtime;
474 int len, packet_transmit_time;
475 struct sched_entry *entry;
476 bool sched_changed;
477
478 now = taprio_get_time(q);
479 minimum_time = ktime_add_ns(now, q->txtime_delay);
480
481 tcp_tstamp = get_tcp_tstamp(q, skb);
482 minimum_time = max_t(ktime_t, minimum_time, tcp_tstamp);
483
484 rcu_read_lock();
485 admin = rcu_dereference(q->admin_sched);
486 sched = rcu_dereference(q->oper_sched);
487 if (admin && ktime_after(minimum_time, admin->base_time))
488 switch_schedules(q, &admin, &sched);
489
490 /* Until the schedule starts, all the queues are open */
491 if (!sched || ktime_before(minimum_time, sched->base_time)) {
492 txtime = minimum_time;
493 goto done;
494 }
495
496 len = qdisc_pkt_len(skb);
497 packet_transmit_time = length_to_duration(q, len);
498
499 do {
500 sched_changed = false;
501
502 entry = find_entry_to_transmit(skb, sch, sched, admin,
503 minimum_time,
504 &interval_start, &interval_end,
505 false);
506 if (!entry) {
507 txtime = 0;
508 goto done;
509 }
510
511 txtime = entry->next_txtime;
512 txtime = max_t(ktime_t, txtime, minimum_time);
513 txtime = max_t(ktime_t, txtime, interval_start);
514
515 if (admin && admin != sched &&
516 ktime_after(txtime, admin->base_time)) {
517 sched = admin;
518 sched_changed = true;
519 continue;
520 }
521
522 transmit_end_time = ktime_add(txtime, packet_transmit_time);
523 minimum_time = transmit_end_time;
524
525 /* Update the txtime of current entry to the next time it's
526 * interval starts.
527 */
528 if (ktime_after(transmit_end_time, interval_end))
529 entry->next_txtime = ktime_add(interval_start, sched->cycle_time);
530 } while (sched_changed || ktime_after(transmit_end_time, interval_end));
531
532 entry->next_txtime = transmit_end_time;
533
534 done:
535 rcu_read_unlock();
536 return txtime;
537 }
538
539 /* Devices with full offload are expected to honor this in hardware */
taprio_skb_exceeds_queue_max_sdu(struct Qdisc * sch,struct sk_buff * skb)540 static bool taprio_skb_exceeds_queue_max_sdu(struct Qdisc *sch,
541 struct sk_buff *skb)
542 {
543 struct taprio_sched *q = qdisc_priv(sch);
544 struct net_device *dev = qdisc_dev(sch);
545 struct sched_gate_list *sched;
546 int prio = skb->priority;
547 bool exceeds = false;
548 u8 tc;
549
550 tc = netdev_get_prio_tc_map(dev, prio);
551
552 rcu_read_lock();
553 sched = rcu_dereference(q->oper_sched);
554 if (sched && skb->len > sched->max_frm_len[tc])
555 exceeds = true;
556 rcu_read_unlock();
557
558 return exceeds;
559 }
560
taprio_enqueue_one(struct sk_buff * skb,struct Qdisc * sch,struct Qdisc * child,struct sk_buff ** to_free)561 static int taprio_enqueue_one(struct sk_buff *skb, struct Qdisc *sch,
562 struct Qdisc *child, struct sk_buff **to_free)
563 {
564 struct taprio_sched *q = qdisc_priv(sch);
565
566 /* sk_flags are only safe to use on full sockets. */
567 if (skb->sk && sk_fullsock(skb->sk) && sock_flag(skb->sk, SOCK_TXTIME)) {
568 if (!is_valid_interval(skb, sch))
569 return qdisc_drop(skb, sch, to_free);
570 } else if (TXTIME_ASSIST_IS_ENABLED(q->flags)) {
571 skb->tstamp = get_packet_txtime(skb, sch);
572 if (!skb->tstamp)
573 return qdisc_drop(skb, sch, to_free);
574 }
575
576 qdisc_qstats_backlog_inc(sch, skb);
577 sch->q.qlen++;
578
579 return qdisc_enqueue(skb, child, to_free);
580 }
581
taprio_enqueue_segmented(struct sk_buff * skb,struct Qdisc * sch,struct Qdisc * child,struct sk_buff ** to_free)582 static int taprio_enqueue_segmented(struct sk_buff *skb, struct Qdisc *sch,
583 struct Qdisc *child,
584 struct sk_buff **to_free)
585 {
586 unsigned int slen = 0, numsegs = 0, len = qdisc_pkt_len(skb);
587 netdev_features_t features = netif_skb_features(skb);
588 struct sk_buff *segs, *nskb;
589 int ret;
590
591 segs = skb_gso_segment(skb, features & ~NETIF_F_GSO_MASK);
592 if (IS_ERR_OR_NULL(segs))
593 return qdisc_drop(skb, sch, to_free);
594
595 skb_list_walk_safe(segs, segs, nskb) {
596 skb_mark_not_on_list(segs);
597 qdisc_skb_cb(segs)->pkt_len = segs->len;
598 qdisc_skb_cb(segs)->pkt_segs = 1;
599 slen += segs->len;
600
601 /* FIXME: we should be segmenting to a smaller size
602 * rather than dropping these
603 */
604 if (taprio_skb_exceeds_queue_max_sdu(sch, segs))
605 ret = qdisc_drop(segs, sch, to_free);
606 else
607 ret = taprio_enqueue_one(segs, sch, child, to_free);
608
609 if (ret != NET_XMIT_SUCCESS) {
610 if (net_xmit_drop_count(ret))
611 qdisc_qstats_drop(sch);
612 } else {
613 numsegs++;
614 }
615 }
616
617 if (numsegs > 1)
618 qdisc_tree_reduce_backlog(sch, 1 - numsegs, len - slen);
619 consume_skb(skb);
620
621 return numsegs > 0 ? NET_XMIT_SUCCESS : NET_XMIT_DROP;
622 }
623
624 /* Will not be called in the full offload case, since the TX queues are
625 * attached to the Qdisc created using qdisc_create_dflt()
626 */
taprio_enqueue(struct sk_buff * skb,struct Qdisc * sch,struct sk_buff ** to_free)627 static int taprio_enqueue(struct sk_buff *skb, struct Qdisc *sch,
628 struct sk_buff **to_free)
629 {
630 struct taprio_sched *q = qdisc_priv(sch);
631 struct Qdisc *child;
632 int queue;
633
634 queue = skb_get_queue_mapping(skb);
635
636 child = q->qdiscs[queue];
637 if (unlikely(child == &noop_qdisc))
638 return qdisc_drop(skb, sch, to_free);
639
640 if (taprio_skb_exceeds_queue_max_sdu(sch, skb)) {
641 /* Large packets might not be transmitted when the transmission
642 * duration exceeds any configured interval. Therefore, segment
643 * the skb into smaller chunks. Drivers with full offload are
644 * expected to handle this in hardware.
645 */
646 if (skb_is_gso(skb))
647 return taprio_enqueue_segmented(skb, sch, child,
648 to_free);
649
650 return qdisc_drop(skb, sch, to_free);
651 }
652
653 return taprio_enqueue_one(skb, sch, child, to_free);
654 }
655
taprio_peek(struct Qdisc * sch)656 static struct sk_buff *taprio_peek(struct Qdisc *sch)
657 {
658 WARN_ONCE(1, "taprio only supports operating as root qdisc, peek() not implemented");
659 return NULL;
660 }
661
taprio_set_budgets(struct taprio_sched * q,struct sched_gate_list * sched,struct sched_entry * entry)662 static void taprio_set_budgets(struct taprio_sched *q,
663 struct sched_gate_list *sched,
664 struct sched_entry *entry)
665 {
666 struct net_device *dev = qdisc_dev(q->root);
667 int num_tc = netdev_get_num_tc(dev);
668 int tc, budget;
669
670 for (tc = 0; tc < num_tc; tc++) {
671 /* Traffic classes which never close have infinite budget */
672 if (entry->gate_duration[tc] == sched->cycle_time)
673 budget = INT_MAX;
674 else
675 budget = div64_u64((u64)entry->gate_duration[tc] * PSEC_PER_NSEC,
676 atomic64_read(&q->picos_per_byte));
677
678 atomic_set(&entry->budget[tc], budget);
679 }
680 }
681
682 /* When an skb is sent, it consumes from the budget of all traffic classes */
taprio_update_budgets(struct sched_entry * entry,size_t len,int tc_consumed,int num_tc)683 static int taprio_update_budgets(struct sched_entry *entry, size_t len,
684 int tc_consumed, int num_tc)
685 {
686 int tc, budget, new_budget = 0;
687
688 for (tc = 0; tc < num_tc; tc++) {
689 budget = atomic_read(&entry->budget[tc]);
690 /* Don't consume from infinite budget */
691 if (budget == INT_MAX) {
692 if (tc == tc_consumed)
693 new_budget = budget;
694 continue;
695 }
696
697 if (tc == tc_consumed)
698 new_budget = atomic_sub_return(len, &entry->budget[tc]);
699 else
700 atomic_sub(len, &entry->budget[tc]);
701 }
702
703 return new_budget;
704 }
705
taprio_dequeue_from_txq(struct Qdisc * sch,int txq,struct sched_entry * entry,u32 gate_mask)706 static struct sk_buff *taprio_dequeue_from_txq(struct Qdisc *sch, int txq,
707 struct sched_entry *entry,
708 u32 gate_mask)
709 {
710 struct taprio_sched *q = qdisc_priv(sch);
711 struct net_device *dev = qdisc_dev(sch);
712 struct Qdisc *child = q->qdiscs[txq];
713 int num_tc = netdev_get_num_tc(dev);
714 struct sk_buff *skb;
715 ktime_t guard;
716 int prio;
717 int len;
718 u8 tc;
719
720 if (unlikely(child == &noop_qdisc))
721 return NULL;
722
723 if (TXTIME_ASSIST_IS_ENABLED(q->flags))
724 goto skip_peek_checks;
725
726 skb = child->ops->peek(child);
727 if (!skb)
728 return NULL;
729
730 prio = skb->priority;
731 tc = netdev_get_prio_tc_map(dev, prio);
732
733 if (!(gate_mask & BIT(tc)))
734 return NULL;
735
736 len = qdisc_pkt_len(skb);
737 guard = ktime_add_ns(taprio_get_time(q), length_to_duration(q, len));
738
739 /* In the case that there's no gate entry, there's no
740 * guard band ...
741 */
742 if (gate_mask != TAPRIO_ALL_GATES_OPEN &&
743 !taprio_entry_allows_tx(guard, entry, tc))
744 return NULL;
745
746 /* ... and no budget. */
747 if (gate_mask != TAPRIO_ALL_GATES_OPEN &&
748 taprio_update_budgets(entry, len, tc, num_tc) < 0)
749 return NULL;
750
751 skip_peek_checks:
752 skb = child->ops->dequeue(child);
753 if (unlikely(!skb))
754 return NULL;
755
756 qdisc_bstats_update(sch, skb);
757 qdisc_qstats_backlog_dec(sch, skb);
758 sch->q.qlen--;
759
760 return skb;
761 }
762
taprio_next_tc_txq(struct net_device * dev,int tc,int * txq)763 static void taprio_next_tc_txq(struct net_device *dev, int tc, int *txq)
764 {
765 int offset = dev->tc_to_txq[tc].offset;
766 int count = dev->tc_to_txq[tc].count;
767
768 (*txq)++;
769 if (*txq == offset + count)
770 *txq = offset;
771 }
772
773 /* Prioritize higher traffic classes, and select among TXQs belonging to the
774 * same TC using round robin
775 */
taprio_dequeue_tc_priority(struct Qdisc * sch,struct sched_entry * entry,u32 gate_mask)776 static struct sk_buff *taprio_dequeue_tc_priority(struct Qdisc *sch,
777 struct sched_entry *entry,
778 u32 gate_mask)
779 {
780 struct taprio_sched *q = qdisc_priv(sch);
781 struct net_device *dev = qdisc_dev(sch);
782 int num_tc = netdev_get_num_tc(dev);
783 struct sk_buff *skb;
784 int tc;
785
786 for (tc = num_tc - 1; tc >= 0; tc--) {
787 int first_txq = q->cur_txq[tc];
788
789 if (!(gate_mask & BIT(tc)))
790 continue;
791
792 do {
793 skb = taprio_dequeue_from_txq(sch, q->cur_txq[tc],
794 entry, gate_mask);
795
796 taprio_next_tc_txq(dev, tc, &q->cur_txq[tc]);
797
798 if (q->cur_txq[tc] >= dev->num_tx_queues)
799 q->cur_txq[tc] = first_txq;
800
801 if (skb)
802 return skb;
803 } while (q->cur_txq[tc] != first_txq);
804 }
805
806 return NULL;
807 }
808
809 /* Broken way of prioritizing smaller TXQ indices and ignoring the traffic
810 * class other than to determine whether the gate is open or not
811 */
taprio_dequeue_txq_priority(struct Qdisc * sch,struct sched_entry * entry,u32 gate_mask)812 static struct sk_buff *taprio_dequeue_txq_priority(struct Qdisc *sch,
813 struct sched_entry *entry,
814 u32 gate_mask)
815 {
816 struct net_device *dev = qdisc_dev(sch);
817 struct sk_buff *skb;
818 int i;
819
820 for (i = 0; i < dev->num_tx_queues; i++) {
821 skb = taprio_dequeue_from_txq(sch, i, entry, gate_mask);
822 if (skb)
823 return skb;
824 }
825
826 return NULL;
827 }
828
829 /* Will not be called in the full offload case, since the TX queues are
830 * attached to the Qdisc created using qdisc_create_dflt()
831 */
taprio_dequeue(struct Qdisc * sch)832 static struct sk_buff *taprio_dequeue(struct Qdisc *sch)
833 {
834 struct taprio_sched *q = qdisc_priv(sch);
835 struct sk_buff *skb = NULL;
836 struct sched_entry *entry;
837 u32 gate_mask;
838
839 rcu_read_lock();
840 entry = rcu_dereference(q->current_entry);
841 /* if there's no entry, it means that the schedule didn't
842 * start yet, so force all gates to be open, this is in
843 * accordance to IEEE 802.1Qbv-2015 Section 8.6.9.4.5
844 * "AdminGateStates"
845 */
846 gate_mask = entry ? entry->gate_mask : TAPRIO_ALL_GATES_OPEN;
847 if (!gate_mask)
848 goto done;
849
850 if (static_branch_unlikely(&taprio_have_broken_mqprio) &&
851 !static_branch_likely(&taprio_have_working_mqprio)) {
852 /* Single NIC kind which is broken */
853 skb = taprio_dequeue_txq_priority(sch, entry, gate_mask);
854 } else if (static_branch_likely(&taprio_have_working_mqprio) &&
855 !static_branch_unlikely(&taprio_have_broken_mqprio)) {
856 /* Single NIC kind which prioritizes properly */
857 skb = taprio_dequeue_tc_priority(sch, entry, gate_mask);
858 } else {
859 /* Mixed NIC kinds present in system, need dynamic testing */
860 if (q->broken_mqprio)
861 skb = taprio_dequeue_txq_priority(sch, entry, gate_mask);
862 else
863 skb = taprio_dequeue_tc_priority(sch, entry, gate_mask);
864 }
865
866 done:
867 rcu_read_unlock();
868
869 return skb;
870 }
871
should_restart_cycle(const struct sched_gate_list * oper,const struct sched_entry * entry)872 static bool should_restart_cycle(const struct sched_gate_list *oper,
873 const struct sched_entry *entry)
874 {
875 if (list_is_last(&entry->list, &oper->entries))
876 return true;
877
878 if (ktime_compare(entry->end_time, oper->cycle_end_time) == 0)
879 return true;
880
881 return false;
882 }
883
should_change_schedules(const struct sched_gate_list * admin,const struct sched_gate_list * oper,ktime_t end_time)884 static bool should_change_schedules(const struct sched_gate_list *admin,
885 const struct sched_gate_list *oper,
886 ktime_t end_time)
887 {
888 ktime_t next_base_time, extension_time;
889
890 if (!admin)
891 return false;
892
893 next_base_time = sched_base_time(admin);
894
895 /* This is the simple case, the end_time would fall after
896 * the next schedule base_time.
897 */
898 if (ktime_compare(next_base_time, end_time) <= 0)
899 return true;
900
901 /* This is the cycle_time_extension case, if the end_time
902 * plus the amount that can be extended would fall after the
903 * next schedule base_time, we can extend the current schedule
904 * for that amount.
905 */
906 extension_time = ktime_add_ns(end_time, oper->cycle_time_extension);
907
908 /* FIXME: the IEEE 802.1Q-2018 Specification isn't clear about
909 * how precisely the extension should be made. So after
910 * conformance testing, this logic may change.
911 */
912 if (ktime_compare(next_base_time, extension_time) <= 0)
913 return true;
914
915 return false;
916 }
917
advance_sched(struct hrtimer * timer)918 static enum hrtimer_restart advance_sched(struct hrtimer *timer)
919 {
920 struct taprio_sched *q = container_of(timer, struct taprio_sched,
921 advance_timer);
922 struct net_device *dev = qdisc_dev(q->root);
923 struct sched_gate_list *oper, *admin;
924 int num_tc = netdev_get_num_tc(dev);
925 struct sched_entry *entry, *next;
926 struct Qdisc *sch = q->root;
927 ktime_t end_time;
928 int tc;
929
930 spin_lock(&q->current_entry_lock);
931 entry = rcu_dereference_protected(q->current_entry,
932 lockdep_is_held(&q->current_entry_lock));
933 oper = rcu_dereference_protected(q->oper_sched,
934 lockdep_is_held(&q->current_entry_lock));
935 admin = rcu_dereference_protected(q->admin_sched,
936 lockdep_is_held(&q->current_entry_lock));
937
938 if (!oper)
939 switch_schedules(q, &admin, &oper);
940
941 /* This can happen in two cases: 1. this is the very first run
942 * of this function (i.e. we weren't running any schedule
943 * previously); 2. The previous schedule just ended. The first
944 * entry of all schedules are pre-calculated during the
945 * schedule initialization.
946 */
947 if (unlikely(!entry || entry->end_time == oper->base_time)) {
948 next = list_first_entry(&oper->entries, struct sched_entry,
949 list);
950 end_time = next->end_time;
951 goto first_run;
952 }
953
954 if (should_restart_cycle(oper, entry)) {
955 next = list_first_entry(&oper->entries, struct sched_entry,
956 list);
957 oper->cycle_end_time = ktime_add_ns(oper->cycle_end_time,
958 oper->cycle_time);
959 } else {
960 next = list_next_entry(entry, list);
961 }
962
963 end_time = ktime_add_ns(entry->end_time, next->interval);
964 end_time = min_t(ktime_t, end_time, oper->cycle_end_time);
965
966 for (tc = 0; tc < num_tc; tc++) {
967 if (next->gate_duration[tc] == oper->cycle_time)
968 next->gate_close_time[tc] = KTIME_MAX;
969 else
970 next->gate_close_time[tc] = ktime_add_ns(entry->end_time,
971 next->gate_duration[tc]);
972 }
973
974 if (should_change_schedules(admin, oper, end_time)) {
975 switch_schedules(q, &admin, &oper);
976 /* After changing schedules, the next entry is the first one
977 * in the new schedule, with a pre-calculated end_time.
978 */
979 next = list_first_entry(&oper->entries, struct sched_entry, list);
980 end_time = next->end_time;
981 }
982
983 next->end_time = end_time;
984 taprio_set_budgets(q, oper, next);
985
986 first_run:
987 rcu_assign_pointer(q->current_entry, next);
988 spin_unlock(&q->current_entry_lock);
989
990 hrtimer_set_expires(&q->advance_timer, end_time);
991
992 rcu_read_lock();
993 __netif_schedule(sch);
994 rcu_read_unlock();
995
996 return HRTIMER_RESTART;
997 }
998
999 static const struct nla_policy entry_policy[TCA_TAPRIO_SCHED_ENTRY_MAX + 1] = {
1000 [TCA_TAPRIO_SCHED_ENTRY_INDEX] = { .type = NLA_U32 },
1001 [TCA_TAPRIO_SCHED_ENTRY_CMD] = { .type = NLA_U8 },
1002 [TCA_TAPRIO_SCHED_ENTRY_GATE_MASK] = { .type = NLA_U32 },
1003 [TCA_TAPRIO_SCHED_ENTRY_INTERVAL] = { .type = NLA_U32 },
1004 };
1005
1006 static const struct nla_policy taprio_tc_policy[TCA_TAPRIO_TC_ENTRY_MAX + 1] = {
1007 [TCA_TAPRIO_TC_ENTRY_INDEX] = NLA_POLICY_MAX(NLA_U32,
1008 TC_QOPT_MAX_QUEUE - 1),
1009 [TCA_TAPRIO_TC_ENTRY_MAX_SDU] = { .type = NLA_U32 },
1010 [TCA_TAPRIO_TC_ENTRY_FP] = NLA_POLICY_RANGE(NLA_U32,
1011 TC_FP_EXPRESS,
1012 TC_FP_PREEMPTIBLE),
1013 };
1014
1015 static const struct netlink_range_validation_signed taprio_cycle_time_range = {
1016 .min = 0,
1017 .max = INT_MAX,
1018 };
1019
1020 static const struct nla_policy taprio_policy[TCA_TAPRIO_ATTR_MAX + 1] = {
1021 [TCA_TAPRIO_ATTR_PRIOMAP] = {
1022 .len = sizeof(struct tc_mqprio_qopt)
1023 },
1024 [TCA_TAPRIO_ATTR_SCHED_ENTRY_LIST] = { .type = NLA_NESTED },
1025 [TCA_TAPRIO_ATTR_SCHED_BASE_TIME] = { .type = NLA_S64 },
1026 [TCA_TAPRIO_ATTR_SCHED_SINGLE_ENTRY] = { .type = NLA_NESTED },
1027 [TCA_TAPRIO_ATTR_SCHED_CLOCKID] = { .type = NLA_S32 },
1028 [TCA_TAPRIO_ATTR_SCHED_CYCLE_TIME] =
1029 NLA_POLICY_FULL_RANGE_SIGNED(NLA_S64, &taprio_cycle_time_range),
1030 [TCA_TAPRIO_ATTR_SCHED_CYCLE_TIME_EXTENSION] = { .type = NLA_S64 },
1031 [TCA_TAPRIO_ATTR_FLAGS] =
1032 NLA_POLICY_MASK(NLA_U32, TAPRIO_SUPPORTED_FLAGS),
1033 [TCA_TAPRIO_ATTR_TXTIME_DELAY] = { .type = NLA_U32 },
1034 [TCA_TAPRIO_ATTR_TC_ENTRY] = { .type = NLA_NESTED },
1035 };
1036
fill_sched_entry(struct taprio_sched * q,struct nlattr ** tb,struct sched_entry * entry,struct netlink_ext_ack * extack)1037 static int fill_sched_entry(struct taprio_sched *q, struct nlattr **tb,
1038 struct sched_entry *entry,
1039 struct netlink_ext_ack *extack)
1040 {
1041 int min_duration = length_to_duration(q, ETH_ZLEN);
1042 u32 interval = 0;
1043
1044 if (tb[TCA_TAPRIO_SCHED_ENTRY_CMD])
1045 entry->command = nla_get_u8(
1046 tb[TCA_TAPRIO_SCHED_ENTRY_CMD]);
1047
1048 if (tb[TCA_TAPRIO_SCHED_ENTRY_GATE_MASK])
1049 entry->gate_mask = nla_get_u32(
1050 tb[TCA_TAPRIO_SCHED_ENTRY_GATE_MASK]);
1051
1052 if (tb[TCA_TAPRIO_SCHED_ENTRY_INTERVAL])
1053 interval = nla_get_u32(
1054 tb[TCA_TAPRIO_SCHED_ENTRY_INTERVAL]);
1055
1056 /* The interval should allow at least the minimum ethernet
1057 * frame to go out.
1058 */
1059 if (interval < min_duration) {
1060 NL_SET_ERR_MSG(extack, "Invalid interval for schedule entry");
1061 return -EINVAL;
1062 }
1063
1064 entry->interval = interval;
1065
1066 return 0;
1067 }
1068
parse_sched_entry(struct taprio_sched * q,struct nlattr * n,struct sched_entry * entry,int index,struct netlink_ext_ack * extack)1069 static int parse_sched_entry(struct taprio_sched *q, struct nlattr *n,
1070 struct sched_entry *entry, int index,
1071 struct netlink_ext_ack *extack)
1072 {
1073 struct nlattr *tb[TCA_TAPRIO_SCHED_ENTRY_MAX + 1] = { };
1074 int err;
1075
1076 err = nla_parse_nested_deprecated(tb, TCA_TAPRIO_SCHED_ENTRY_MAX, n,
1077 entry_policy, NULL);
1078 if (err < 0) {
1079 NL_SET_ERR_MSG(extack, "Could not parse nested entry");
1080 return -EINVAL;
1081 }
1082
1083 entry->index = index;
1084
1085 return fill_sched_entry(q, tb, entry, extack);
1086 }
1087
parse_sched_list(struct taprio_sched * q,struct nlattr * list,struct sched_gate_list * sched,struct netlink_ext_ack * extack)1088 static int parse_sched_list(struct taprio_sched *q, struct nlattr *list,
1089 struct sched_gate_list *sched,
1090 struct netlink_ext_ack *extack)
1091 {
1092 struct nlattr *n;
1093 int err, rem;
1094 int i = 0;
1095
1096 if (!list)
1097 return -EINVAL;
1098
1099 nla_for_each_nested(n, list, rem) {
1100 struct sched_entry *entry;
1101
1102 if (nla_type(n) != TCA_TAPRIO_SCHED_ENTRY) {
1103 NL_SET_ERR_MSG(extack, "Attribute is not of type 'entry'");
1104 continue;
1105 }
1106
1107 entry = kzalloc_obj(*entry);
1108 if (!entry) {
1109 NL_SET_ERR_MSG(extack, "Not enough memory for entry");
1110 return -ENOMEM;
1111 }
1112
1113 err = parse_sched_entry(q, n, entry, i, extack);
1114 if (err < 0) {
1115 kfree(entry);
1116 return err;
1117 }
1118
1119 list_add_tail(&entry->list, &sched->entries);
1120 i++;
1121 }
1122
1123 sched->num_entries = i;
1124
1125 return i;
1126 }
1127
parse_taprio_schedule(struct taprio_sched * q,struct nlattr ** tb,struct sched_gate_list * new,struct netlink_ext_ack * extack)1128 static int parse_taprio_schedule(struct taprio_sched *q, struct nlattr **tb,
1129 struct sched_gate_list *new,
1130 struct netlink_ext_ack *extack)
1131 {
1132 int err = 0;
1133
1134 if (tb[TCA_TAPRIO_ATTR_SCHED_SINGLE_ENTRY]) {
1135 NL_SET_ERR_MSG(extack, "Adding a single entry is not supported");
1136 return -ENOTSUPP;
1137 }
1138
1139 if (tb[TCA_TAPRIO_ATTR_SCHED_BASE_TIME])
1140 new->base_time = nla_get_s64(tb[TCA_TAPRIO_ATTR_SCHED_BASE_TIME]);
1141
1142 if (tb[TCA_TAPRIO_ATTR_SCHED_CYCLE_TIME_EXTENSION])
1143 new->cycle_time_extension = nla_get_s64(tb[TCA_TAPRIO_ATTR_SCHED_CYCLE_TIME_EXTENSION]);
1144
1145 if (tb[TCA_TAPRIO_ATTR_SCHED_CYCLE_TIME])
1146 new->cycle_time = nla_get_s64(tb[TCA_TAPRIO_ATTR_SCHED_CYCLE_TIME]);
1147
1148 if (tb[TCA_TAPRIO_ATTR_SCHED_ENTRY_LIST])
1149 err = parse_sched_list(q, tb[TCA_TAPRIO_ATTR_SCHED_ENTRY_LIST],
1150 new, extack);
1151 if (err < 0)
1152 return err;
1153
1154 if (!new->cycle_time) {
1155 struct sched_entry *entry;
1156 ktime_t cycle = 0;
1157
1158 list_for_each_entry(entry, &new->entries, list)
1159 cycle = ktime_add_ns(cycle, entry->interval);
1160
1161 if (cycle < 0 || cycle > INT_MAX) {
1162 NL_SET_ERR_MSG(extack, "'cycle_time' is too big");
1163 return -EINVAL;
1164 }
1165
1166 new->cycle_time = cycle;
1167 }
1168
1169 if (new->cycle_time < new->num_entries * length_to_duration(q, ETH_ZLEN)) {
1170 NL_SET_ERR_MSG(extack, "'cycle_time' is too small");
1171 return -EINVAL;
1172 }
1173
1174 taprio_calculate_gate_durations(q, new);
1175
1176 return 0;
1177 }
1178
taprio_parse_mqprio_opt(struct net_device * dev,struct tc_mqprio_qopt * qopt,struct netlink_ext_ack * extack,u32 taprio_flags)1179 static int taprio_parse_mqprio_opt(struct net_device *dev,
1180 struct tc_mqprio_qopt *qopt,
1181 struct netlink_ext_ack *extack,
1182 u32 taprio_flags)
1183 {
1184 bool allow_overlapping_txqs = TXTIME_ASSIST_IS_ENABLED(taprio_flags);
1185
1186 if (!qopt) {
1187 if (!dev->num_tc) {
1188 NL_SET_ERR_MSG(extack, "'mqprio' configuration is necessary");
1189 return -EINVAL;
1190 }
1191 return 0;
1192 }
1193
1194 /* taprio imposes that traffic classes map 1:n to tx queues */
1195 if (qopt->num_tc > dev->num_tx_queues) {
1196 NL_SET_ERR_MSG(extack, "Number of traffic classes is greater than number of HW queues");
1197 return -EINVAL;
1198 }
1199
1200 /* For some reason, in txtime-assist mode, we allow TXQ ranges for
1201 * different TCs to overlap, and just validate the TXQ ranges.
1202 */
1203 return mqprio_validate_qopt(dev, qopt, true, allow_overlapping_txqs,
1204 extack);
1205 }
1206
taprio_get_start_time(struct Qdisc * sch,struct sched_gate_list * sched,ktime_t * start)1207 static int taprio_get_start_time(struct Qdisc *sch,
1208 struct sched_gate_list *sched,
1209 ktime_t *start)
1210 {
1211 struct taprio_sched *q = qdisc_priv(sch);
1212 ktime_t now, base, cycle;
1213 s64 n;
1214
1215 base = sched_base_time(sched);
1216 now = taprio_get_time(q);
1217
1218 if (ktime_after(base, now)) {
1219 *start = base;
1220 return 0;
1221 }
1222
1223 cycle = sched->cycle_time;
1224
1225 /* The qdisc is expected to have at least one sched_entry. Moreover,
1226 * any entry must have 'interval' > 0. Thus if the cycle time is zero,
1227 * something went really wrong. In that case, we should warn about this
1228 * inconsistent state and return error.
1229 */
1230 if (WARN_ON(!cycle))
1231 return -EFAULT;
1232
1233 /* Schedule the start time for the beginning of the next
1234 * cycle.
1235 */
1236 n = div64_s64(ktime_sub_ns(now, base), cycle);
1237 *start = ktime_add_ns(base, (n + 1) * cycle);
1238 return 0;
1239 }
1240
setup_first_end_time(struct taprio_sched * q,struct sched_gate_list * sched,ktime_t base)1241 static void setup_first_end_time(struct taprio_sched *q,
1242 struct sched_gate_list *sched, ktime_t base)
1243 {
1244 struct net_device *dev = qdisc_dev(q->root);
1245 int num_tc = netdev_get_num_tc(dev);
1246 struct sched_entry *first;
1247 ktime_t cycle;
1248 int tc;
1249
1250 first = list_first_entry(&sched->entries,
1251 struct sched_entry, list);
1252
1253 cycle = sched->cycle_time;
1254
1255 /* FIXME: find a better place to do this */
1256 sched->cycle_end_time = ktime_add_ns(base, cycle);
1257
1258 first->end_time = ktime_add_ns(base, first->interval);
1259 taprio_set_budgets(q, sched, first);
1260
1261 for (tc = 0; tc < num_tc; tc++) {
1262 if (first->gate_duration[tc] == sched->cycle_time)
1263 first->gate_close_time[tc] = KTIME_MAX;
1264 else
1265 first->gate_close_time[tc] = ktime_add_ns(base, first->gate_duration[tc]);
1266 }
1267
1268 rcu_assign_pointer(q->current_entry, NULL);
1269 }
1270
taprio_start_sched(struct Qdisc * sch,ktime_t start,struct sched_gate_list * new)1271 static void taprio_start_sched(struct Qdisc *sch,
1272 ktime_t start, struct sched_gate_list *new)
1273 {
1274 struct taprio_sched *q = qdisc_priv(sch);
1275 ktime_t expires;
1276
1277 if (FULL_OFFLOAD_IS_ENABLED(q->flags))
1278 return;
1279
1280 expires = hrtimer_get_expires(&q->advance_timer);
1281 if (expires == 0)
1282 expires = KTIME_MAX;
1283
1284 /* If the new schedule starts before the next expiration, we
1285 * reprogram it to the earliest one, so we change the admin
1286 * schedule to the operational one at the right time.
1287 */
1288 start = min_t(ktime_t, start, expires);
1289
1290 hrtimer_start(&q->advance_timer, start, HRTIMER_MODE_ABS);
1291 }
1292
taprio_set_picos_per_byte(struct net_device * dev,struct taprio_sched * q,struct netlink_ext_ack * extack)1293 static void taprio_set_picos_per_byte(struct net_device *dev,
1294 struct taprio_sched *q,
1295 struct netlink_ext_ack *extack)
1296 {
1297 struct ethtool_link_ksettings ecmd;
1298 int speed = SPEED_10;
1299 int picos_per_byte;
1300 int err;
1301
1302 err = __ethtool_get_link_ksettings(dev, &ecmd);
1303 if (err < 0)
1304 goto skip;
1305
1306 if (ecmd.base.speed && ecmd.base.speed != SPEED_UNKNOWN)
1307 speed = ecmd.base.speed;
1308
1309 skip:
1310 picos_per_byte = (USEC_PER_SEC * 8) / speed;
1311 if (picos_per_byte < TAPRIO_PICOS_PER_BYTE_MIN) {
1312 if (!extack)
1313 pr_warn("Link speed %d is too high. Schedule may be inaccurate.\n",
1314 speed);
1315 NL_SET_ERR_MSG_FMT_MOD(extack,
1316 "Link speed %d is too high. Schedule may be inaccurate.",
1317 speed);
1318 picos_per_byte = TAPRIO_PICOS_PER_BYTE_MIN;
1319 }
1320
1321 atomic64_set(&q->picos_per_byte, picos_per_byte);
1322 netdev_dbg(dev, "taprio: set %s's picos_per_byte to: %lld, linkspeed: %d\n",
1323 dev->name, (long long)atomic64_read(&q->picos_per_byte),
1324 ecmd.base.speed);
1325 }
1326
taprio_dev_notifier(struct notifier_block * nb,unsigned long event,void * ptr)1327 static int taprio_dev_notifier(struct notifier_block *nb, unsigned long event,
1328 void *ptr)
1329 {
1330 struct net_device *dev = netdev_notifier_info_to_dev(ptr);
1331 struct sched_gate_list *oper, *admin;
1332 struct qdisc_size_table *stab;
1333 struct taprio_sched *q;
1334
1335 ASSERT_RTNL();
1336
1337 if (event != NETDEV_UP && event != NETDEV_CHANGE)
1338 return NOTIFY_DONE;
1339
1340 list_for_each_entry(q, &taprio_list, taprio_list) {
1341 if (dev != qdisc_dev(q->root))
1342 continue;
1343
1344 taprio_set_picos_per_byte(dev, q, NULL);
1345
1346 stab = rtnl_dereference(q->root->stab);
1347
1348 rcu_read_lock();
1349 oper = rcu_dereference(q->oper_sched);
1350 if (oper)
1351 taprio_update_queue_max_sdu(q, oper, stab);
1352
1353 admin = rcu_dereference(q->admin_sched);
1354 if (admin)
1355 taprio_update_queue_max_sdu(q, admin, stab);
1356 rcu_read_unlock();
1357
1358 break;
1359 }
1360
1361 return NOTIFY_DONE;
1362 }
1363
setup_txtime(struct taprio_sched * q,struct sched_gate_list * sched,ktime_t base)1364 static void setup_txtime(struct taprio_sched *q,
1365 struct sched_gate_list *sched, ktime_t base)
1366 {
1367 struct sched_entry *entry;
1368 u64 interval = 0;
1369
1370 list_for_each_entry(entry, &sched->entries, list) {
1371 entry->next_txtime = ktime_add_ns(base, interval);
1372 interval += entry->interval;
1373 }
1374 }
1375
taprio_offload_alloc(int num_entries)1376 static struct tc_taprio_qopt_offload *taprio_offload_alloc(int num_entries)
1377 {
1378 struct __tc_taprio_qopt_offload *__offload;
1379
1380 __offload = kzalloc_flex(*__offload, offload.entries, num_entries);
1381 if (!__offload)
1382 return NULL;
1383
1384 refcount_set(&__offload->users, 1);
1385
1386 return &__offload->offload;
1387 }
1388
taprio_offload_get(struct tc_taprio_qopt_offload * offload)1389 struct tc_taprio_qopt_offload *taprio_offload_get(struct tc_taprio_qopt_offload
1390 *offload)
1391 {
1392 struct __tc_taprio_qopt_offload *__offload;
1393
1394 __offload = container_of(offload, struct __tc_taprio_qopt_offload,
1395 offload);
1396
1397 refcount_inc(&__offload->users);
1398
1399 return offload;
1400 }
1401 EXPORT_SYMBOL_GPL(taprio_offload_get);
1402
taprio_offload_free(struct tc_taprio_qopt_offload * offload)1403 void taprio_offload_free(struct tc_taprio_qopt_offload *offload)
1404 {
1405 struct __tc_taprio_qopt_offload *__offload;
1406
1407 __offload = container_of(offload, struct __tc_taprio_qopt_offload,
1408 offload);
1409
1410 if (!refcount_dec_and_test(&__offload->users))
1411 return;
1412
1413 kfree(__offload);
1414 }
1415 EXPORT_SYMBOL_GPL(taprio_offload_free);
1416
1417 /* The function will only serve to keep the pointers to the "oper" and "admin"
1418 * schedules valid in relation to their base times, so when calling dump() the
1419 * users looks at the right schedules.
1420 * When using full offload, the admin configuration is promoted to oper at the
1421 * base_time in the PHC time domain. But because the system time is not
1422 * necessarily in sync with that, we can't just trigger a hrtimer to call
1423 * switch_schedules at the right hardware time.
1424 * At the moment we call this by hand right away from taprio, but in the future
1425 * it will be useful to create a mechanism for drivers to notify taprio of the
1426 * offload state (PENDING, ACTIVE, INACTIVE) so it can be visible in dump().
1427 * This is left as TODO.
1428 */
taprio_offload_config_changed(struct taprio_sched * q)1429 static void taprio_offload_config_changed(struct taprio_sched *q)
1430 {
1431 struct sched_gate_list *oper, *admin;
1432
1433 oper = rtnl_dereference(q->oper_sched);
1434 admin = rtnl_dereference(q->admin_sched);
1435
1436 switch_schedules(q, &admin, &oper);
1437 }
1438
tc_map_to_queue_mask(struct net_device * dev,u32 tc_mask)1439 static u32 tc_map_to_queue_mask(struct net_device *dev, u32 tc_mask)
1440 {
1441 u32 i, queue_mask = 0;
1442
1443 for (i = 0; i < dev->num_tc; i++) {
1444 u32 offset, count;
1445
1446 if (!(tc_mask & BIT(i)))
1447 continue;
1448
1449 offset = dev->tc_to_txq[i].offset;
1450 count = dev->tc_to_txq[i].count;
1451
1452 queue_mask |= GENMASK(offset + count - 1, offset);
1453 }
1454
1455 return queue_mask;
1456 }
1457
taprio_sched_to_offload(struct net_device * dev,struct sched_gate_list * sched,struct tc_taprio_qopt_offload * offload,const struct tc_taprio_caps * caps)1458 static void taprio_sched_to_offload(struct net_device *dev,
1459 struct sched_gate_list *sched,
1460 struct tc_taprio_qopt_offload *offload,
1461 const struct tc_taprio_caps *caps)
1462 {
1463 struct sched_entry *entry;
1464 int i = 0;
1465
1466 offload->base_time = sched->base_time;
1467 offload->cycle_time = sched->cycle_time;
1468 offload->cycle_time_extension = sched->cycle_time_extension;
1469
1470 list_for_each_entry(entry, &sched->entries, list) {
1471 struct tc_taprio_sched_entry *e = &offload->entries[i];
1472
1473 e->command = entry->command;
1474 e->interval = entry->interval;
1475 if (caps->gate_mask_per_txq)
1476 e->gate_mask = tc_map_to_queue_mask(dev,
1477 entry->gate_mask);
1478 else
1479 e->gate_mask = entry->gate_mask;
1480
1481 i++;
1482 }
1483
1484 offload->num_entries = i;
1485 }
1486
taprio_detect_broken_mqprio(struct taprio_sched * q)1487 static void taprio_detect_broken_mqprio(struct taprio_sched *q)
1488 {
1489 struct net_device *dev = qdisc_dev(q->root);
1490 struct tc_taprio_caps caps;
1491
1492 qdisc_offload_query_caps(dev, TC_SETUP_QDISC_TAPRIO,
1493 &caps, sizeof(caps));
1494
1495 q->broken_mqprio = caps.broken_mqprio;
1496 if (q->broken_mqprio)
1497 static_branch_inc(&taprio_have_broken_mqprio);
1498 else
1499 static_branch_inc(&taprio_have_working_mqprio);
1500
1501 q->detected_mqprio = true;
1502 }
1503
taprio_cleanup_broken_mqprio(struct taprio_sched * q)1504 static void taprio_cleanup_broken_mqprio(struct taprio_sched *q)
1505 {
1506 if (!q->detected_mqprio)
1507 return;
1508
1509 if (q->broken_mqprio)
1510 static_branch_dec(&taprio_have_broken_mqprio);
1511 else
1512 static_branch_dec(&taprio_have_working_mqprio);
1513 }
1514
taprio_enable_offload(struct net_device * dev,struct taprio_sched * q,struct sched_gate_list * sched,struct netlink_ext_ack * extack)1515 static int taprio_enable_offload(struct net_device *dev,
1516 struct taprio_sched *q,
1517 struct sched_gate_list *sched,
1518 struct netlink_ext_ack *extack)
1519 {
1520 const struct net_device_ops *ops = dev->netdev_ops;
1521 struct tc_taprio_qopt_offload *offload;
1522 struct tc_taprio_caps caps;
1523 int tc, err = 0;
1524
1525 if (!ops->ndo_setup_tc) {
1526 NL_SET_ERR_MSG(extack,
1527 "Device does not support taprio offload");
1528 return -EOPNOTSUPP;
1529 }
1530
1531 qdisc_offload_query_caps(dev, TC_SETUP_QDISC_TAPRIO,
1532 &caps, sizeof(caps));
1533
1534 if (!caps.supports_queue_max_sdu) {
1535 for (tc = 0; tc < TC_MAX_QUEUE; tc++) {
1536 if (q->max_sdu[tc]) {
1537 NL_SET_ERR_MSG_MOD(extack,
1538 "Device does not handle queueMaxSDU");
1539 return -EOPNOTSUPP;
1540 }
1541 }
1542 }
1543
1544 offload = taprio_offload_alloc(sched->num_entries);
1545 if (!offload) {
1546 NL_SET_ERR_MSG(extack,
1547 "Not enough memory for enabling offload mode");
1548 return -ENOMEM;
1549 }
1550 offload->cmd = TAPRIO_CMD_REPLACE;
1551 offload->extack = extack;
1552 mqprio_qopt_reconstruct(dev, &offload->mqprio.qopt);
1553 offload->mqprio.extack = extack;
1554 taprio_sched_to_offload(dev, sched, offload, &caps);
1555 mqprio_fp_to_offload(q->fp, &offload->mqprio);
1556
1557 for (tc = 0; tc < TC_MAX_QUEUE; tc++)
1558 offload->max_sdu[tc] = q->max_sdu[tc];
1559
1560 err = ops->ndo_setup_tc(dev, TC_SETUP_QDISC_TAPRIO, offload);
1561 if (err < 0) {
1562 NL_SET_ERR_MSG_WEAK(extack,
1563 "Device failed to setup taprio offload");
1564 goto done;
1565 }
1566
1567 q->offloaded = true;
1568
1569 done:
1570 /* The offload structure may linger around via a reference taken by the
1571 * device driver, so clear up the netlink extack pointer so that the
1572 * driver isn't tempted to dereference data which stopped being valid
1573 */
1574 offload->extack = NULL;
1575 offload->mqprio.extack = NULL;
1576 taprio_offload_free(offload);
1577
1578 return err;
1579 }
1580
taprio_disable_offload(struct net_device * dev,struct taprio_sched * q,struct netlink_ext_ack * extack)1581 static int taprio_disable_offload(struct net_device *dev,
1582 struct taprio_sched *q,
1583 struct netlink_ext_ack *extack)
1584 {
1585 const struct net_device_ops *ops = dev->netdev_ops;
1586 struct tc_taprio_qopt_offload *offload;
1587 int err;
1588
1589 if (!q->offloaded)
1590 return 0;
1591
1592 offload = taprio_offload_alloc(0);
1593 if (!offload) {
1594 NL_SET_ERR_MSG(extack,
1595 "Not enough memory to disable offload mode");
1596 return -ENOMEM;
1597 }
1598 offload->cmd = TAPRIO_CMD_DESTROY;
1599
1600 err = ops->ndo_setup_tc(dev, TC_SETUP_QDISC_TAPRIO, offload);
1601 if (err < 0) {
1602 NL_SET_ERR_MSG(extack,
1603 "Device failed to disable offload");
1604 goto out;
1605 }
1606
1607 q->offloaded = false;
1608
1609 out:
1610 taprio_offload_free(offload);
1611
1612 return err;
1613 }
1614
1615 /* If full offload is enabled, the only possible clockid is the net device's
1616 * PHC. For that reason, specifying a clockid through netlink is incorrect.
1617 * For txtime-assist, it is implicitly assumed that the device's PHC is kept
1618 * in sync with the specified clockid via a user space daemon such as phc2sys.
1619 * For both software taprio and txtime-assist, the clockid is used for the
1620 * hrtimer that advances the schedule and hence mandatory.
1621 */
taprio_parse_clockid(struct Qdisc * sch,struct nlattr ** tb,struct netlink_ext_ack * extack)1622 static int taprio_parse_clockid(struct Qdisc *sch, struct nlattr **tb,
1623 struct netlink_ext_ack *extack)
1624 {
1625 struct taprio_sched *q = qdisc_priv(sch);
1626 struct net_device *dev = qdisc_dev(sch);
1627 int err = -EINVAL;
1628
1629 if (FULL_OFFLOAD_IS_ENABLED(q->flags)) {
1630 const struct ethtool_ops *ops = dev->ethtool_ops;
1631 struct kernel_ethtool_ts_info info = {
1632 .cmd = ETHTOOL_GET_TS_INFO,
1633 .phc_index = -1,
1634 };
1635
1636 if (tb[TCA_TAPRIO_ATTR_SCHED_CLOCKID]) {
1637 NL_SET_ERR_MSG(extack,
1638 "The 'clockid' cannot be specified for full offload");
1639 goto out;
1640 }
1641
1642 if (ops && ops->get_ts_info)
1643 err = ops->get_ts_info(dev, &info);
1644
1645 if (err || info.phc_index < 0) {
1646 NL_SET_ERR_MSG(extack,
1647 "Device does not have a PTP clock");
1648 err = -ENOTSUPP;
1649 goto out;
1650 }
1651 } else if (tb[TCA_TAPRIO_ATTR_SCHED_CLOCKID]) {
1652 int clockid = nla_get_s32(tb[TCA_TAPRIO_ATTR_SCHED_CLOCKID]);
1653 enum tk_offsets tk_offset;
1654
1655 /* We only support static clockids and we don't allow
1656 * for it to be modified after the first init.
1657 */
1658 if (clockid < 0 ||
1659 (q->clockid != -1 && q->clockid != clockid)) {
1660 NL_SET_ERR_MSG(extack,
1661 "Changing the 'clockid' of a running schedule is not supported");
1662 err = -ENOTSUPP;
1663 goto out;
1664 }
1665
1666 switch (clockid) {
1667 case CLOCK_REALTIME:
1668 tk_offset = TK_OFFS_REAL;
1669 break;
1670 case CLOCK_MONOTONIC:
1671 tk_offset = TK_OFFS_MAX;
1672 break;
1673 case CLOCK_BOOTTIME:
1674 tk_offset = TK_OFFS_BOOT;
1675 break;
1676 case CLOCK_TAI:
1677 tk_offset = TK_OFFS_TAI;
1678 break;
1679 default:
1680 NL_SET_ERR_MSG(extack, "Invalid 'clockid'");
1681 err = -EINVAL;
1682 goto out;
1683 }
1684 /* This pairs with READ_ONCE() in taprio_mono_to_any */
1685 WRITE_ONCE(q->tk_offset, tk_offset);
1686
1687 q->clockid = clockid;
1688 } else {
1689 NL_SET_ERR_MSG(extack, "Specifying a 'clockid' is mandatory");
1690 goto out;
1691 }
1692
1693 /* Everything went ok, return success. */
1694 err = 0;
1695
1696 out:
1697 return err;
1698 }
1699
taprio_parse_tc_entry(struct Qdisc * sch,struct nlattr * opt,u32 max_sdu[TC_QOPT_MAX_QUEUE],u32 fp[TC_QOPT_MAX_QUEUE],unsigned long * seen_tcs,struct netlink_ext_ack * extack)1700 static int taprio_parse_tc_entry(struct Qdisc *sch,
1701 struct nlattr *opt,
1702 u32 max_sdu[TC_QOPT_MAX_QUEUE],
1703 u32 fp[TC_QOPT_MAX_QUEUE],
1704 unsigned long *seen_tcs,
1705 struct netlink_ext_ack *extack)
1706 {
1707 struct nlattr *tb[TCA_TAPRIO_TC_ENTRY_MAX + 1] = { };
1708 struct net_device *dev = qdisc_dev(sch);
1709 int err, tc;
1710 u32 val;
1711
1712 err = nla_parse_nested(tb, TCA_TAPRIO_TC_ENTRY_MAX, opt,
1713 taprio_tc_policy, extack);
1714 if (err < 0)
1715 return err;
1716
1717 if (NL_REQ_ATTR_CHECK(extack, opt, tb, TCA_TAPRIO_TC_ENTRY_INDEX)) {
1718 NL_SET_ERR_MSG_MOD(extack, "TC entry index missing");
1719 return -EINVAL;
1720 }
1721
1722 tc = nla_get_u32(tb[TCA_TAPRIO_TC_ENTRY_INDEX]);
1723 if (*seen_tcs & BIT(tc)) {
1724 NL_SET_ERR_MSG_ATTR(extack, tb[TCA_TAPRIO_TC_ENTRY_INDEX],
1725 "Duplicate tc entry");
1726 return -EINVAL;
1727 }
1728
1729 *seen_tcs |= BIT(tc);
1730
1731 if (tb[TCA_TAPRIO_TC_ENTRY_MAX_SDU]) {
1732 val = nla_get_u32(tb[TCA_TAPRIO_TC_ENTRY_MAX_SDU]);
1733 if (val > dev->max_mtu) {
1734 NL_SET_ERR_MSG_MOD(extack, "TC max SDU exceeds device max MTU");
1735 return -ERANGE;
1736 }
1737
1738 max_sdu[tc] = val;
1739 }
1740
1741 if (tb[TCA_TAPRIO_TC_ENTRY_FP])
1742 fp[tc] = nla_get_u32(tb[TCA_TAPRIO_TC_ENTRY_FP]);
1743
1744 return 0;
1745 }
1746
taprio_parse_tc_entries(struct Qdisc * sch,struct nlattr * opt,struct netlink_ext_ack * extack)1747 static int taprio_parse_tc_entries(struct Qdisc *sch,
1748 struct nlattr *opt,
1749 struct netlink_ext_ack *extack)
1750 {
1751 struct taprio_sched *q = qdisc_priv(sch);
1752 struct net_device *dev = qdisc_dev(sch);
1753 u32 max_sdu[TC_QOPT_MAX_QUEUE];
1754 bool have_preemption = false;
1755 unsigned long seen_tcs = 0;
1756 u32 fp[TC_QOPT_MAX_QUEUE];
1757 struct nlattr *n;
1758 int tc, rem;
1759 int err = 0;
1760
1761 for (tc = 0; tc < TC_QOPT_MAX_QUEUE; tc++) {
1762 max_sdu[tc] = q->max_sdu[tc];
1763 fp[tc] = q->fp[tc];
1764 }
1765
1766 nla_for_each_nested_type(n, TCA_TAPRIO_ATTR_TC_ENTRY, opt, rem) {
1767 err = taprio_parse_tc_entry(sch, n, max_sdu, fp, &seen_tcs,
1768 extack);
1769 if (err)
1770 return err;
1771 }
1772
1773 for (tc = 0; tc < TC_QOPT_MAX_QUEUE; tc++) {
1774 q->max_sdu[tc] = max_sdu[tc];
1775 q->fp[tc] = fp[tc];
1776 if (fp[tc] != TC_FP_EXPRESS)
1777 have_preemption = true;
1778 }
1779
1780 if (have_preemption) {
1781 if (!FULL_OFFLOAD_IS_ENABLED(q->flags)) {
1782 NL_SET_ERR_MSG(extack,
1783 "Preemption only supported with full offload");
1784 return -EOPNOTSUPP;
1785 }
1786
1787 if (!ethtool_dev_mm_supported(dev)) {
1788 NL_SET_ERR_MSG(extack,
1789 "Device does not support preemption");
1790 return -EOPNOTSUPP;
1791 }
1792 }
1793
1794 return err;
1795 }
1796
taprio_mqprio_cmp(const struct net_device * dev,const struct tc_mqprio_qopt * mqprio)1797 static int taprio_mqprio_cmp(const struct net_device *dev,
1798 const struct tc_mqprio_qopt *mqprio)
1799 {
1800 int i;
1801
1802 if (!mqprio || mqprio->num_tc != dev->num_tc)
1803 return -1;
1804
1805 for (i = 0; i < mqprio->num_tc; i++)
1806 if (dev->tc_to_txq[i].count != mqprio->count[i] ||
1807 dev->tc_to_txq[i].offset != mqprio->offset[i])
1808 return -1;
1809
1810 for (i = 0; i <= TC_BITMASK; i++)
1811 if (dev->prio_tc_map[i] != mqprio->prio_tc_map[i])
1812 return -1;
1813
1814 return 0;
1815 }
1816
taprio_change(struct Qdisc * sch,struct nlattr * opt,struct netlink_ext_ack * extack)1817 static int taprio_change(struct Qdisc *sch, struct nlattr *opt,
1818 struct netlink_ext_ack *extack)
1819 {
1820 struct qdisc_size_table *stab = rtnl_dereference(sch->stab);
1821 struct nlattr *tb[TCA_TAPRIO_ATTR_MAX + 1] = { };
1822 struct sched_gate_list *oper, *admin, *new_admin;
1823 struct taprio_sched *q = qdisc_priv(sch);
1824 struct net_device *dev = qdisc_dev(sch);
1825 struct tc_mqprio_qopt *mqprio = NULL;
1826 unsigned long flags;
1827 u32 taprio_flags;
1828 ktime_t start;
1829 int i, err;
1830
1831 err = nla_parse_nested_deprecated(tb, TCA_TAPRIO_ATTR_MAX, opt,
1832 taprio_policy, extack);
1833 if (err < 0)
1834 return err;
1835
1836 if (tb[TCA_TAPRIO_ATTR_PRIOMAP])
1837 mqprio = nla_data(tb[TCA_TAPRIO_ATTR_PRIOMAP]);
1838
1839 /* The semantics of the 'flags' argument in relation to 'change()'
1840 * requests, are interpreted following two rules (which are applied in
1841 * this order): (1) an omitted 'flags' argument is interpreted as
1842 * zero; (2) the 'flags' of a "running" taprio instance cannot be
1843 * changed.
1844 */
1845 taprio_flags = nla_get_u32_default(tb[TCA_TAPRIO_ATTR_FLAGS], 0);
1846
1847 /* txtime-assist and full offload are mutually exclusive */
1848 if ((taprio_flags & TCA_TAPRIO_ATTR_FLAG_TXTIME_ASSIST) &&
1849 (taprio_flags & TCA_TAPRIO_ATTR_FLAG_FULL_OFFLOAD)) {
1850 NL_SET_ERR_MSG_ATTR(extack, tb[TCA_TAPRIO_ATTR_FLAGS],
1851 "TXTIME_ASSIST and FULL_OFFLOAD are mutually exclusive");
1852 return -EINVAL;
1853 }
1854
1855 if (q->flags != TAPRIO_FLAGS_INVALID && q->flags != taprio_flags) {
1856 NL_SET_ERR_MSG_MOD(extack,
1857 "Changing 'flags' of a running schedule is not supported");
1858 return -EOPNOTSUPP;
1859 }
1860 q->flags = taprio_flags;
1861
1862 /* Needed for length_to_duration() during netlink attribute parsing */
1863 taprio_set_picos_per_byte(dev, q, extack);
1864
1865 err = taprio_parse_mqprio_opt(dev, mqprio, extack, q->flags);
1866 if (err < 0)
1867 return err;
1868
1869 err = taprio_parse_tc_entries(sch, opt, extack);
1870 if (err)
1871 return err;
1872
1873 new_admin = kzalloc_obj(*new_admin);
1874 if (!new_admin) {
1875 NL_SET_ERR_MSG(extack, "Not enough memory for a new schedule");
1876 return -ENOMEM;
1877 }
1878 INIT_LIST_HEAD(&new_admin->entries);
1879
1880 oper = rtnl_dereference(q->oper_sched);
1881 admin = rtnl_dereference(q->admin_sched);
1882
1883 /* no changes - no new mqprio settings */
1884 if (!taprio_mqprio_cmp(dev, mqprio))
1885 mqprio = NULL;
1886
1887 if (mqprio && (oper || admin)) {
1888 NL_SET_ERR_MSG(extack, "Changing the traffic mapping of a running schedule is not supported");
1889 err = -ENOTSUPP;
1890 goto free_sched;
1891 }
1892
1893 if (mqprio) {
1894 err = netdev_set_num_tc(dev, mqprio->num_tc);
1895 if (err)
1896 goto free_sched;
1897 for (i = 0; i < mqprio->num_tc; i++) {
1898 netdev_set_tc_queue(dev, i,
1899 mqprio->count[i],
1900 mqprio->offset[i]);
1901 q->cur_txq[i] = mqprio->offset[i];
1902 }
1903
1904 /* Always use supplied priority mappings */
1905 for (i = 0; i <= TC_BITMASK; i++)
1906 netdev_set_prio_tc_map(dev, i,
1907 mqprio->prio_tc_map[i]);
1908 }
1909
1910 err = parse_taprio_schedule(q, tb, new_admin, extack);
1911 if (err < 0)
1912 goto free_sched;
1913
1914 if (new_admin->num_entries == 0) {
1915 NL_SET_ERR_MSG(extack, "There should be at least one entry in the schedule");
1916 err = -EINVAL;
1917 goto free_sched;
1918 }
1919
1920 err = taprio_parse_clockid(sch, tb, extack);
1921 if (err < 0)
1922 goto free_sched;
1923
1924 taprio_update_queue_max_sdu(q, new_admin, stab);
1925
1926 if (FULL_OFFLOAD_IS_ENABLED(q->flags))
1927 err = taprio_enable_offload(dev, q, new_admin, extack);
1928 else
1929 err = taprio_disable_offload(dev, q, extack);
1930 if (err)
1931 goto free_sched;
1932
1933 /* Protects against enqueue()/dequeue() */
1934 spin_lock_bh(qdisc_lock(sch));
1935
1936 if (tb[TCA_TAPRIO_ATTR_TXTIME_DELAY]) {
1937 if (!TXTIME_ASSIST_IS_ENABLED(q->flags)) {
1938 NL_SET_ERR_MSG_MOD(extack, "txtime-delay can only be set when txtime-assist mode is enabled");
1939 err = -EINVAL;
1940 goto unlock;
1941 }
1942
1943 q->txtime_delay = nla_get_u32(tb[TCA_TAPRIO_ATTR_TXTIME_DELAY]);
1944 }
1945
1946 if (!TXTIME_ASSIST_IS_ENABLED(q->flags) &&
1947 !FULL_OFFLOAD_IS_ENABLED(q->flags) &&
1948 !hrtimer_active(&q->advance_timer)) {
1949 hrtimer_setup(&q->advance_timer, advance_sched, q->clockid, HRTIMER_MODE_ABS);
1950 }
1951
1952 err = taprio_get_start_time(sch, new_admin, &start);
1953 if (err < 0) {
1954 NL_SET_ERR_MSG(extack, "Internal error: failed get start time");
1955 goto unlock;
1956 }
1957
1958 setup_txtime(q, new_admin, start);
1959
1960 if (TXTIME_ASSIST_IS_ENABLED(q->flags)) {
1961 if (!oper) {
1962 rcu_assign_pointer(q->oper_sched, new_admin);
1963 err = 0;
1964 new_admin = NULL;
1965 goto unlock;
1966 }
1967
1968 /* Not going to race against advance_sched(), but still */
1969 admin = rcu_replace_pointer(q->admin_sched, new_admin,
1970 lockdep_rtnl_is_held());
1971 if (admin)
1972 call_rcu(&admin->rcu, taprio_free_sched_cb);
1973 } else {
1974 setup_first_end_time(q, new_admin, start);
1975
1976 /* Protects against advance_sched() */
1977 spin_lock_irqsave(&q->current_entry_lock, flags);
1978
1979 taprio_start_sched(sch, start, new_admin);
1980
1981 admin = rcu_replace_pointer(q->admin_sched, new_admin,
1982 lockdep_rtnl_is_held());
1983 if (admin)
1984 call_rcu(&admin->rcu, taprio_free_sched_cb);
1985
1986 spin_unlock_irqrestore(&q->current_entry_lock, flags);
1987
1988 if (FULL_OFFLOAD_IS_ENABLED(q->flags))
1989 taprio_offload_config_changed(q);
1990 }
1991
1992 new_admin = NULL;
1993 err = 0;
1994
1995 if (!stab)
1996 NL_SET_ERR_MSG_MOD(extack,
1997 "Size table not specified, frame length estimations may be inaccurate");
1998
1999 unlock:
2000 spin_unlock_bh(qdisc_lock(sch));
2001
2002 free_sched:
2003 if (new_admin)
2004 call_rcu(&new_admin->rcu, taprio_free_sched_cb);
2005
2006 return err;
2007 }
2008
taprio_reset(struct Qdisc * sch)2009 static void taprio_reset(struct Qdisc *sch)
2010 {
2011 struct taprio_sched *q = qdisc_priv(sch);
2012 struct net_device *dev = qdisc_dev(sch);
2013 int i;
2014
2015 hrtimer_cancel(&q->advance_timer);
2016
2017 if (q->qdiscs) {
2018 for (i = 0; i < dev->num_tx_queues; i++)
2019 if (q->qdiscs[i])
2020 qdisc_reset(q->qdiscs[i]);
2021 }
2022 }
2023
taprio_destroy(struct Qdisc * sch)2024 static void taprio_destroy(struct Qdisc *sch)
2025 {
2026 struct taprio_sched *q = qdisc_priv(sch);
2027 struct net_device *dev = qdisc_dev(sch);
2028 struct sched_gate_list *oper, *admin;
2029 unsigned int i;
2030
2031 list_del(&q->taprio_list);
2032
2033 /* Note that taprio_reset() might not be called if an error
2034 * happens in qdisc_create(), after taprio_init() has been called.
2035 */
2036 hrtimer_cancel(&q->advance_timer);
2037 qdisc_synchronize(sch);
2038
2039 taprio_disable_offload(dev, q, NULL);
2040
2041 if (q->qdiscs) {
2042 for (i = 0; i < dev->num_tx_queues; i++)
2043 qdisc_put(q->qdiscs[i]);
2044
2045 kfree(q->qdiscs);
2046 }
2047 q->qdiscs = NULL;
2048
2049 netdev_reset_tc(dev);
2050
2051 oper = rtnl_dereference(q->oper_sched);
2052 admin = rtnl_dereference(q->admin_sched);
2053
2054 if (oper)
2055 call_rcu(&oper->rcu, taprio_free_sched_cb);
2056
2057 if (admin)
2058 call_rcu(&admin->rcu, taprio_free_sched_cb);
2059
2060 taprio_cleanup_broken_mqprio(q);
2061 }
2062
taprio_init(struct Qdisc * sch,struct nlattr * opt,struct netlink_ext_ack * extack)2063 static int taprio_init(struct Qdisc *sch, struct nlattr *opt,
2064 struct netlink_ext_ack *extack)
2065 {
2066 struct taprio_sched *q = qdisc_priv(sch);
2067 struct net_device *dev = qdisc_dev(sch);
2068 int i, tc;
2069
2070 spin_lock_init(&q->current_entry_lock);
2071
2072 hrtimer_setup(&q->advance_timer, advance_sched, CLOCK_TAI, HRTIMER_MODE_ABS);
2073
2074 q->root = sch;
2075
2076 /* We only support static clockids. Use an invalid value as default
2077 * and get the valid one on taprio_change().
2078 */
2079 q->clockid = -1;
2080 q->flags = TAPRIO_FLAGS_INVALID;
2081
2082 list_add(&q->taprio_list, &taprio_list);
2083
2084 if (sch->parent != TC_H_ROOT) {
2085 NL_SET_ERR_MSG_MOD(extack, "Can only be attached as root qdisc");
2086 return -EOPNOTSUPP;
2087 }
2088
2089 if (!netif_is_multiqueue(dev)) {
2090 NL_SET_ERR_MSG_MOD(extack, "Multi-queue device is required");
2091 return -EOPNOTSUPP;
2092 }
2093
2094 q->qdiscs = kzalloc_objs(q->qdiscs[0], dev->num_tx_queues);
2095 if (!q->qdiscs)
2096 return -ENOMEM;
2097
2098 if (!opt)
2099 return -EINVAL;
2100
2101 for (i = 0; i < dev->num_tx_queues; i++) {
2102 struct netdev_queue *dev_queue;
2103 struct Qdisc *qdisc;
2104
2105 dev_queue = netdev_get_tx_queue(dev, i);
2106 qdisc = qdisc_create_dflt(dev_queue,
2107 &pfifo_qdisc_ops,
2108 TC_H_MAKE(TC_H_MAJ(sch->handle),
2109 TC_H_MIN(i + 1)),
2110 extack);
2111 if (!qdisc)
2112 return -ENOMEM;
2113
2114 if (i < dev->real_num_tx_queues)
2115 qdisc_hash_add(qdisc, false);
2116
2117 q->qdiscs[i] = qdisc;
2118 }
2119
2120 for (tc = 0; tc < TC_QOPT_MAX_QUEUE; tc++)
2121 q->fp[tc] = TC_FP_EXPRESS;
2122
2123 taprio_detect_broken_mqprio(q);
2124
2125 return taprio_change(sch, opt, extack);
2126 }
2127
taprio_attach(struct Qdisc * sch)2128 static void taprio_attach(struct Qdisc *sch)
2129 {
2130 struct taprio_sched *q = qdisc_priv(sch);
2131 struct net_device *dev = qdisc_dev(sch);
2132 unsigned int ntx;
2133
2134 /* Attach underlying qdisc */
2135 for (ntx = 0; ntx < dev->num_tx_queues; ntx++) {
2136 struct netdev_queue *dev_queue = netdev_get_tx_queue(dev, ntx);
2137 struct Qdisc *old, *dev_queue_qdisc;
2138
2139 if (FULL_OFFLOAD_IS_ENABLED(q->flags)) {
2140 struct Qdisc *qdisc = q->qdiscs[ntx];
2141
2142 /* In offload mode, the root taprio qdisc is bypassed
2143 * and the netdev TX queues see the children directly
2144 */
2145 qdisc->flags |= TCQ_F_ONETXQUEUE | TCQ_F_NOPARENT;
2146 dev_queue_qdisc = qdisc;
2147 } else {
2148 /* In software mode, attach the root taprio qdisc
2149 * to all netdev TX queues, so that dev_qdisc_enqueue()
2150 * goes through taprio_enqueue().
2151 */
2152 dev_queue_qdisc = sch;
2153 }
2154 old = dev_graft_qdisc(dev_queue, dev_queue_qdisc);
2155 /* The qdisc's refcount requires to be elevated once
2156 * for each netdev TX queue it is grafted onto
2157 */
2158 qdisc_refcount_inc(dev_queue_qdisc);
2159 if (old)
2160 qdisc_put(old);
2161 }
2162 }
2163
taprio_queue_get(struct Qdisc * sch,unsigned long cl)2164 static struct netdev_queue *taprio_queue_get(struct Qdisc *sch,
2165 unsigned long cl)
2166 {
2167 struct net_device *dev = qdisc_dev(sch);
2168 unsigned long ntx = cl - 1;
2169
2170 if (ntx >= dev->num_tx_queues)
2171 return NULL;
2172
2173 return netdev_get_tx_queue(dev, ntx);
2174 }
2175
taprio_graft(struct Qdisc * sch,unsigned long cl,struct Qdisc * new,struct Qdisc ** old,struct netlink_ext_ack * extack)2176 static int taprio_graft(struct Qdisc *sch, unsigned long cl,
2177 struct Qdisc *new, struct Qdisc **old,
2178 struct netlink_ext_ack *extack)
2179 {
2180 struct taprio_sched *q = qdisc_priv(sch);
2181 struct net_device *dev = qdisc_dev(sch);
2182 struct netdev_queue *dev_queue = taprio_queue_get(sch, cl);
2183
2184 if (!dev_queue)
2185 return -EINVAL;
2186
2187 if (!new)
2188 new = &noop_qdisc;
2189
2190 if (dev->flags & IFF_UP)
2191 dev_deactivate(dev, false);
2192
2193 /* In offload mode, the child Qdisc is directly attached to the netdev
2194 * TX queue, and thus, we need to keep its refcount elevated in order
2195 * to counteract qdisc_graft()'s call to qdisc_put() once per TX queue.
2196 * However, save the reference to the new qdisc in the private array in
2197 * both software and offload cases, to have an up-to-date reference to
2198 * our children.
2199 */
2200 *old = q->qdiscs[cl - 1];
2201 if (FULL_OFFLOAD_IS_ENABLED(q->flags)) {
2202 WARN_ON_ONCE(dev_graft_qdisc(dev_queue, new) != *old);
2203 if (new != &noop_qdisc)
2204 qdisc_refcount_inc(new);
2205 if (*old && *old != &noop_qdisc)
2206 qdisc_put(*old);
2207 }
2208
2209 q->qdiscs[cl - 1] = new;
2210 if (new != &noop_qdisc)
2211 new->flags |= TCQ_F_ONETXQUEUE | TCQ_F_NOPARENT;
2212
2213 if (dev->flags & IFF_UP)
2214 dev_activate(dev);
2215
2216 return 0;
2217 }
2218
dump_entry(struct sk_buff * msg,const struct sched_entry * entry)2219 static int dump_entry(struct sk_buff *msg,
2220 const struct sched_entry *entry)
2221 {
2222 struct nlattr *item;
2223
2224 item = nla_nest_start_noflag(msg, TCA_TAPRIO_SCHED_ENTRY);
2225 if (!item)
2226 return -ENOSPC;
2227
2228 if (nla_put_u32(msg, TCA_TAPRIO_SCHED_ENTRY_INDEX, entry->index))
2229 goto nla_put_failure;
2230
2231 if (nla_put_u8(msg, TCA_TAPRIO_SCHED_ENTRY_CMD, entry->command))
2232 goto nla_put_failure;
2233
2234 if (nla_put_u32(msg, TCA_TAPRIO_SCHED_ENTRY_GATE_MASK,
2235 entry->gate_mask))
2236 goto nla_put_failure;
2237
2238 if (nla_put_u32(msg, TCA_TAPRIO_SCHED_ENTRY_INTERVAL,
2239 entry->interval))
2240 goto nla_put_failure;
2241
2242 return nla_nest_end(msg, item);
2243
2244 nla_put_failure:
2245 nla_nest_cancel(msg, item);
2246 return -1;
2247 }
2248
dump_schedule(struct sk_buff * msg,const struct sched_gate_list * root)2249 static int dump_schedule(struct sk_buff *msg,
2250 const struct sched_gate_list *root)
2251 {
2252 struct nlattr *entry_list;
2253 struct sched_entry *entry;
2254
2255 if (nla_put_s64(msg, TCA_TAPRIO_ATTR_SCHED_BASE_TIME,
2256 root->base_time, TCA_TAPRIO_PAD))
2257 return -1;
2258
2259 if (nla_put_s64(msg, TCA_TAPRIO_ATTR_SCHED_CYCLE_TIME,
2260 root->cycle_time, TCA_TAPRIO_PAD))
2261 return -1;
2262
2263 if (nla_put_s64(msg, TCA_TAPRIO_ATTR_SCHED_CYCLE_TIME_EXTENSION,
2264 root->cycle_time_extension, TCA_TAPRIO_PAD))
2265 return -1;
2266
2267 entry_list = nla_nest_start_noflag(msg,
2268 TCA_TAPRIO_ATTR_SCHED_ENTRY_LIST);
2269 if (!entry_list)
2270 goto error_nest;
2271
2272 list_for_each_entry(entry, &root->entries, list) {
2273 if (dump_entry(msg, entry) < 0)
2274 goto error_nest;
2275 }
2276
2277 nla_nest_end(msg, entry_list);
2278 return 0;
2279
2280 error_nest:
2281 nla_nest_cancel(msg, entry_list);
2282 return -1;
2283 }
2284
taprio_dump_tc_entries(struct sk_buff * skb,struct taprio_sched * q,struct sched_gate_list * sched)2285 static int taprio_dump_tc_entries(struct sk_buff *skb,
2286 struct taprio_sched *q,
2287 struct sched_gate_list *sched)
2288 {
2289 struct nlattr *n;
2290 int tc;
2291
2292 for (tc = 0; tc < TC_MAX_QUEUE; tc++) {
2293 n = nla_nest_start(skb, TCA_TAPRIO_ATTR_TC_ENTRY);
2294 if (!n)
2295 return -EMSGSIZE;
2296
2297 if (nla_put_u32(skb, TCA_TAPRIO_TC_ENTRY_INDEX, tc))
2298 goto nla_put_failure;
2299
2300 if (nla_put_u32(skb, TCA_TAPRIO_TC_ENTRY_MAX_SDU,
2301 sched->max_sdu[tc]))
2302 goto nla_put_failure;
2303
2304 if (nla_put_u32(skb, TCA_TAPRIO_TC_ENTRY_FP, q->fp[tc]))
2305 goto nla_put_failure;
2306
2307 nla_nest_end(skb, n);
2308 }
2309
2310 return 0;
2311
2312 nla_put_failure:
2313 nla_nest_cancel(skb, n);
2314 return -EMSGSIZE;
2315 }
2316
taprio_put_stat(struct sk_buff * skb,u64 val,u16 attrtype)2317 static int taprio_put_stat(struct sk_buff *skb, u64 val, u16 attrtype)
2318 {
2319 if (val == TAPRIO_STAT_NOT_SET)
2320 return 0;
2321 if (nla_put_u64_64bit(skb, attrtype, val, TCA_TAPRIO_OFFLOAD_STATS_PAD))
2322 return -EMSGSIZE;
2323 return 0;
2324 }
2325
taprio_dump_xstats(struct Qdisc * sch,struct gnet_dump * d,struct tc_taprio_qopt_offload * offload,struct tc_taprio_qopt_stats * stats)2326 static int taprio_dump_xstats(struct Qdisc *sch, struct gnet_dump *d,
2327 struct tc_taprio_qopt_offload *offload,
2328 struct tc_taprio_qopt_stats *stats)
2329 {
2330 struct net_device *dev = qdisc_dev(sch);
2331 const struct net_device_ops *ops;
2332 struct sk_buff *skb = d->skb;
2333 struct nlattr *xstats;
2334 int err;
2335
2336 ops = qdisc_dev(sch)->netdev_ops;
2337
2338 /* FIXME I could use qdisc_offload_dump_helper(), but that messes
2339 * with sch->flags depending on whether the device reports taprio
2340 * stats, and I'm not sure whether that's a good idea, considering
2341 * that stats are optional to the offload itself
2342 */
2343 if (!ops->ndo_setup_tc)
2344 return 0;
2345
2346 memset(stats, 0xff, sizeof(*stats));
2347
2348 err = ops->ndo_setup_tc(dev, TC_SETUP_QDISC_TAPRIO, offload);
2349 if (err == -EOPNOTSUPP)
2350 return 0;
2351 if (err)
2352 return err;
2353
2354 xstats = nla_nest_start(skb, TCA_STATS_APP);
2355 if (!xstats)
2356 goto err;
2357
2358 if (taprio_put_stat(skb, stats->window_drops,
2359 TCA_TAPRIO_OFFLOAD_STATS_WINDOW_DROPS) ||
2360 taprio_put_stat(skb, stats->tx_overruns,
2361 TCA_TAPRIO_OFFLOAD_STATS_TX_OVERRUNS))
2362 goto err_cancel;
2363
2364 nla_nest_end(skb, xstats);
2365
2366 return 0;
2367
2368 err_cancel:
2369 nla_nest_cancel(skb, xstats);
2370 err:
2371 return -EMSGSIZE;
2372 }
2373
taprio_dump_stats(struct Qdisc * sch,struct gnet_dump * d)2374 static int taprio_dump_stats(struct Qdisc *sch, struct gnet_dump *d)
2375 {
2376 struct tc_taprio_qopt_offload offload = {
2377 .cmd = TAPRIO_CMD_STATS,
2378 };
2379
2380 return taprio_dump_xstats(sch, d, &offload, &offload.stats);
2381 }
2382
taprio_dump(struct Qdisc * sch,struct sk_buff * skb)2383 static int taprio_dump(struct Qdisc *sch, struct sk_buff *skb)
2384 {
2385 struct taprio_sched *q = qdisc_priv(sch);
2386 struct net_device *dev = qdisc_dev(sch);
2387 struct sched_gate_list *oper, *admin;
2388 struct tc_mqprio_qopt opt = { 0 };
2389 struct nlattr *nest, *sched_nest;
2390
2391 mqprio_qopt_reconstruct(dev, &opt);
2392
2393 nest = nla_nest_start_noflag(skb, TCA_OPTIONS);
2394 if (!nest)
2395 goto start_error;
2396
2397 if (nla_put(skb, TCA_TAPRIO_ATTR_PRIOMAP, sizeof(opt), &opt))
2398 goto options_error;
2399
2400 if (!FULL_OFFLOAD_IS_ENABLED(q->flags) &&
2401 nla_put_s32(skb, TCA_TAPRIO_ATTR_SCHED_CLOCKID, q->clockid))
2402 goto options_error;
2403
2404 if (q->flags && nla_put_u32(skb, TCA_TAPRIO_ATTR_FLAGS, q->flags))
2405 goto options_error;
2406
2407 if (q->txtime_delay &&
2408 nla_put_u32(skb, TCA_TAPRIO_ATTR_TXTIME_DELAY, q->txtime_delay))
2409 goto options_error;
2410
2411 rcu_read_lock();
2412
2413 oper = rtnl_dereference(q->oper_sched);
2414 admin = rtnl_dereference(q->admin_sched);
2415
2416 if (oper && taprio_dump_tc_entries(skb, q, oper))
2417 goto options_error_rcu;
2418
2419 if (oper && dump_schedule(skb, oper))
2420 goto options_error_rcu;
2421
2422 if (!admin)
2423 goto done;
2424
2425 sched_nest = nla_nest_start_noflag(skb, TCA_TAPRIO_ATTR_ADMIN_SCHED);
2426 if (!sched_nest)
2427 goto options_error_rcu;
2428
2429 if (dump_schedule(skb, admin))
2430 goto admin_error;
2431
2432 nla_nest_end(skb, sched_nest);
2433
2434 done:
2435 rcu_read_unlock();
2436 return nla_nest_end(skb, nest);
2437
2438 admin_error:
2439 nla_nest_cancel(skb, sched_nest);
2440
2441 options_error_rcu:
2442 rcu_read_unlock();
2443
2444 options_error:
2445 nla_nest_cancel(skb, nest);
2446
2447 start_error:
2448 return -ENOSPC;
2449 }
2450
taprio_leaf(struct Qdisc * sch,unsigned long cl)2451 static struct Qdisc *taprio_leaf(struct Qdisc *sch, unsigned long cl)
2452 {
2453 struct taprio_sched *q = qdisc_priv(sch);
2454 struct net_device *dev = qdisc_dev(sch);
2455 unsigned int ntx = cl - 1;
2456
2457 if (ntx >= dev->num_tx_queues)
2458 return NULL;
2459
2460 return q->qdiscs[ntx];
2461 }
2462
taprio_find(struct Qdisc * sch,u32 classid)2463 static unsigned long taprio_find(struct Qdisc *sch, u32 classid)
2464 {
2465 unsigned int ntx = TC_H_MIN(classid);
2466
2467 if (!taprio_queue_get(sch, ntx))
2468 return 0;
2469 return ntx;
2470 }
2471
taprio_dump_class(struct Qdisc * sch,unsigned long cl,struct sk_buff * skb,struct tcmsg * tcm)2472 static int taprio_dump_class(struct Qdisc *sch, unsigned long cl,
2473 struct sk_buff *skb, struct tcmsg *tcm)
2474 {
2475 struct Qdisc *child = taprio_leaf(sch, cl);
2476
2477 tcm->tcm_parent = TC_H_ROOT;
2478 tcm->tcm_handle |= TC_H_MIN(cl);
2479 tcm->tcm_info = child->handle;
2480
2481 return 0;
2482 }
2483
taprio_dump_class_stats(struct Qdisc * sch,unsigned long cl,struct gnet_dump * d)2484 static int taprio_dump_class_stats(struct Qdisc *sch, unsigned long cl,
2485 struct gnet_dump *d)
2486 __releases(d->lock)
2487 __acquires(d->lock)
2488 {
2489 struct Qdisc *child = taprio_leaf(sch, cl);
2490 struct tc_taprio_qopt_offload offload = {
2491 .cmd = TAPRIO_CMD_QUEUE_STATS,
2492 .queue_stats = {
2493 .queue = cl - 1,
2494 },
2495 };
2496
2497 if (gnet_stats_copy_basic(d, NULL, &child->bstats, true) < 0 ||
2498 qdisc_qstats_copy(d, child) < 0)
2499 return -1;
2500
2501 return taprio_dump_xstats(sch, d, &offload, &offload.queue_stats.stats);
2502 }
2503
taprio_walk(struct Qdisc * sch,struct qdisc_walker * arg)2504 static void taprio_walk(struct Qdisc *sch, struct qdisc_walker *arg)
2505 {
2506 struct net_device *dev = qdisc_dev(sch);
2507 unsigned long ntx;
2508
2509 if (arg->stop)
2510 return;
2511
2512 arg->count = arg->skip;
2513 for (ntx = arg->skip; ntx < dev->num_tx_queues; ntx++) {
2514 if (!tc_qdisc_stats_dump(sch, ntx + 1, arg))
2515 break;
2516 }
2517 }
2518
taprio_select_queue(struct Qdisc * sch,struct tcmsg * tcm)2519 static struct netdev_queue *taprio_select_queue(struct Qdisc *sch,
2520 struct tcmsg *tcm)
2521 {
2522 return taprio_queue_get(sch, TC_H_MIN(tcm->tcm_parent));
2523 }
2524
2525 static const struct Qdisc_class_ops taprio_class_ops = {
2526 .graft = taprio_graft,
2527 .leaf = taprio_leaf,
2528 .find = taprio_find,
2529 .walk = taprio_walk,
2530 .dump = taprio_dump_class,
2531 .dump_stats = taprio_dump_class_stats,
2532 .select_queue = taprio_select_queue,
2533 };
2534
2535 static struct Qdisc_ops taprio_qdisc_ops __read_mostly = {
2536 .cl_ops = &taprio_class_ops,
2537 .id = "taprio",
2538 .priv_size = sizeof(struct taprio_sched),
2539 .init = taprio_init,
2540 .change = taprio_change,
2541 .destroy = taprio_destroy,
2542 .reset = taprio_reset,
2543 .attach = taprio_attach,
2544 .peek = taprio_peek,
2545 .dequeue = taprio_dequeue,
2546 .enqueue = taprio_enqueue,
2547 .dump = taprio_dump,
2548 .dump_stats = taprio_dump_stats,
2549 .owner = THIS_MODULE,
2550 };
2551 MODULE_ALIAS_NET_SCH("taprio");
2552
2553 static struct notifier_block taprio_device_notifier = {
2554 .notifier_call = taprio_dev_notifier,
2555 };
2556
taprio_module_init(void)2557 static int __init taprio_module_init(void)
2558 {
2559 int err = register_netdevice_notifier(&taprio_device_notifier);
2560
2561 if (err)
2562 return err;
2563
2564 return register_qdisc(&taprio_qdisc_ops);
2565 }
2566
taprio_module_exit(void)2567 static void __exit taprio_module_exit(void)
2568 {
2569 unregister_qdisc(&taprio_qdisc_ops);
2570 unregister_netdevice_notifier(&taprio_device_notifier);
2571 }
2572
2573 module_init(taprio_module_init);
2574 module_exit(taprio_module_exit);
2575 MODULE_LICENSE("GPL");
2576 MODULE_DESCRIPTION("Time Aware Priority qdisc");
2577