1 // SPDX-License-Identifier: (GPL-2.0 OR MIT)
2 /*
3 * Copyright (c) 2018 Synopsys, Inc. and/or its affiliates.
4 * stmmac TC Handling (HW only)
5 */
6
7 #include <net/pkt_cls.h>
8 #include <net/tc_act/tc_gact.h>
9 #include "common.h"
10 #include "dwmac4.h"
11 #include "dwmac5.h"
12 #include "stmmac.h"
13
tc_fill_all_pass_entry(struct stmmac_tc_entry * entry)14 static void tc_fill_all_pass_entry(struct stmmac_tc_entry *entry)
15 {
16 memset(entry, 0, sizeof(*entry));
17 entry->in_use = true;
18 entry->is_last = true;
19 entry->is_frag = false;
20 entry->prio = ~0x0;
21 entry->handle = 0;
22 entry->val.match_data = 0x0;
23 entry->val.match_en = 0x0;
24 entry->val.af = 1;
25 entry->val.dma_ch_no = 0x0;
26 }
27
tc_find_entry(struct stmmac_priv * priv,struct tc_cls_u32_offload * cls,bool free)28 static struct stmmac_tc_entry *tc_find_entry(struct stmmac_priv *priv,
29 struct tc_cls_u32_offload *cls,
30 bool free)
31 {
32 struct stmmac_tc_entry *entry, *first = NULL, *dup = NULL;
33 u32 loc = cls->knode.handle;
34 int i;
35
36 for (i = 0; i < priv->tc_entries_max; i++) {
37 entry = &priv->tc_entries[i];
38 if (!entry->in_use && !first && free)
39 first = entry;
40 if ((entry->handle == loc) && !free && !entry->is_frag)
41 dup = entry;
42 }
43
44 if (dup)
45 return dup;
46 if (first) {
47 first->handle = loc;
48 first->in_use = true;
49
50 /* Reset HW values */
51 memset(&first->val, 0, sizeof(first->val));
52 }
53
54 return first;
55 }
56
tc_fill_actions(struct stmmac_tc_entry * entry,struct stmmac_tc_entry * frag,struct tc_cls_u32_offload * cls)57 static int tc_fill_actions(struct stmmac_tc_entry *entry,
58 struct stmmac_tc_entry *frag,
59 struct tc_cls_u32_offload *cls)
60 {
61 struct stmmac_tc_entry *action_entry = entry;
62 const struct tc_action *act;
63 struct tcf_exts *exts;
64 int i;
65
66 exts = cls->knode.exts;
67 if (!tcf_exts_has_actions(exts))
68 return -EINVAL;
69 if (frag)
70 action_entry = frag;
71
72 tcf_exts_for_each_action(i, act, exts) {
73 /* Accept */
74 if (is_tcf_gact_ok(act)) {
75 action_entry->val.af = 1;
76 break;
77 }
78 /* Drop */
79 if (is_tcf_gact_shot(act)) {
80 action_entry->val.rf = 1;
81 break;
82 }
83
84 /* Unsupported */
85 return -EINVAL;
86 }
87
88 return 0;
89 }
90
tc_fill_entry(struct stmmac_priv * priv,struct tc_cls_u32_offload * cls)91 static int tc_fill_entry(struct stmmac_priv *priv,
92 struct tc_cls_u32_offload *cls)
93 {
94 struct stmmac_tc_entry *entry, *frag = NULL;
95 struct tc_u32_sel *sel = cls->knode.sel;
96 u32 off, data, mask, real_off, rem;
97 u32 prio = cls->common.prio << 16;
98 int ret;
99
100 /* Only 1 match per entry */
101 if (sel->nkeys <= 0 || sel->nkeys > 1)
102 return -EINVAL;
103
104 off = sel->keys[0].off << sel->offshift;
105 data = sel->keys[0].val;
106 mask = sel->keys[0].mask;
107
108 switch (ntohs(cls->common.protocol)) {
109 case ETH_P_ALL:
110 break;
111 case ETH_P_IP:
112 off += ETH_HLEN;
113 break;
114 default:
115 return -EINVAL;
116 }
117
118 if (off > priv->tc_off_max)
119 return -EINVAL;
120
121 real_off = off / 4;
122 rem = off % 4;
123
124 entry = tc_find_entry(priv, cls, true);
125 if (!entry)
126 return -EINVAL;
127
128 if (rem) {
129 frag = tc_find_entry(priv, cls, true);
130 if (!frag) {
131 ret = -EINVAL;
132 goto err_unuse;
133 }
134
135 entry->frag_ptr = frag;
136 entry->val.match_en = (mask << (rem * 8)) &
137 GENMASK(31, rem * 8);
138 entry->val.match_data = (data << (rem * 8)) &
139 GENMASK(31, rem * 8);
140 entry->val.frame_offset = real_off;
141 entry->prio = prio;
142
143 frag->val.match_en = (mask >> (rem * 8)) &
144 GENMASK(rem * 8 - 1, 0);
145 frag->val.match_data = (data >> (rem * 8)) &
146 GENMASK(rem * 8 - 1, 0);
147 frag->val.frame_offset = real_off + 1;
148 frag->prio = prio;
149 frag->is_frag = true;
150 } else {
151 entry->frag_ptr = NULL;
152 entry->val.match_en = mask;
153 entry->val.match_data = data;
154 entry->val.frame_offset = real_off;
155 entry->prio = prio;
156 }
157
158 ret = tc_fill_actions(entry, frag, cls);
159 if (ret)
160 goto err_unuse;
161
162 return 0;
163
164 err_unuse:
165 if (frag)
166 frag->in_use = false;
167 entry->in_use = false;
168 return ret;
169 }
170
tc_unfill_entry(struct stmmac_priv * priv,struct tc_cls_u32_offload * cls)171 static void tc_unfill_entry(struct stmmac_priv *priv,
172 struct tc_cls_u32_offload *cls)
173 {
174 struct stmmac_tc_entry *entry;
175
176 entry = tc_find_entry(priv, cls, false);
177 if (!entry)
178 return;
179
180 entry->in_use = false;
181 if (entry->frag_ptr) {
182 entry = entry->frag_ptr;
183 entry->is_frag = false;
184 entry->in_use = false;
185 }
186 }
187
tc_config_knode(struct stmmac_priv * priv,struct tc_cls_u32_offload * cls)188 static int tc_config_knode(struct stmmac_priv *priv,
189 struct tc_cls_u32_offload *cls)
190 {
191 int ret;
192
193 ret = tc_fill_entry(priv, cls);
194 if (ret)
195 return ret;
196
197 ret = stmmac_rxp_config(priv, priv->hw->pcsr, priv->tc_entries,
198 priv->tc_entries_max);
199 if (ret)
200 goto err_unfill;
201
202 return 0;
203
204 err_unfill:
205 tc_unfill_entry(priv, cls);
206 return ret;
207 }
208
tc_delete_knode(struct stmmac_priv * priv,struct tc_cls_u32_offload * cls)209 static int tc_delete_knode(struct stmmac_priv *priv,
210 struct tc_cls_u32_offload *cls)
211 {
212 /* Set entry and fragments as not used */
213 tc_unfill_entry(priv, cls);
214
215 return stmmac_rxp_config(priv, priv->hw->pcsr, priv->tc_entries,
216 priv->tc_entries_max);
217 }
218
tc_setup_cls_u32(struct stmmac_priv * priv,struct tc_cls_u32_offload * cls)219 static int tc_setup_cls_u32(struct stmmac_priv *priv,
220 struct tc_cls_u32_offload *cls)
221 {
222 switch (cls->command) {
223 case TC_CLSU32_REPLACE_KNODE:
224 tc_unfill_entry(priv, cls);
225 fallthrough;
226 case TC_CLSU32_NEW_KNODE:
227 return tc_config_knode(priv, cls);
228 case TC_CLSU32_DELETE_KNODE:
229 return tc_delete_knode(priv, cls);
230 default:
231 return -EOPNOTSUPP;
232 }
233 }
234
tc_rfs_init(struct stmmac_priv * priv)235 static int tc_rfs_init(struct stmmac_priv *priv)
236 {
237 int i;
238
239 priv->rfs_entries_max[STMMAC_RFS_T_VLAN] = 8;
240 priv->rfs_entries_max[STMMAC_RFS_T_LLDP] = 1;
241 priv->rfs_entries_max[STMMAC_RFS_T_1588] = 1;
242
243 for (i = 0; i < STMMAC_RFS_T_MAX; i++)
244 priv->rfs_entries_total += priv->rfs_entries_max[i];
245
246 priv->rfs_entries = devm_kcalloc(priv->device,
247 priv->rfs_entries_total,
248 sizeof(*priv->rfs_entries),
249 GFP_KERNEL);
250 if (!priv->rfs_entries)
251 return -ENOMEM;
252
253 dev_info(priv->device, "Enabled RFS Flow TC (entries=%d)\n",
254 priv->rfs_entries_total);
255
256 return 0;
257 }
258
tc_init(struct stmmac_priv * priv)259 static int tc_init(struct stmmac_priv *priv)
260 {
261 struct dma_features *dma_cap = &priv->dma_cap;
262 unsigned int count;
263 int ret, i;
264
265 priv->flow_entries_max = dma_cap->l3l4fnum;
266 if (priv->flow_entries_max) {
267 priv->flow_entries = devm_kcalloc(priv->device,
268 priv->flow_entries_max,
269 sizeof(*priv->flow_entries),
270 GFP_KERNEL);
271 if (!priv->flow_entries)
272 return -ENOMEM;
273
274 for (i = 0; i < priv->flow_entries_max; i++)
275 priv->flow_entries[i].idx = i;
276
277 dev_info(priv->device, "Enabled L3L4 Flow TC (entries=%d)\n",
278 priv->flow_entries_max);
279 }
280
281 ret = tc_rfs_init(priv);
282 if (ret)
283 return -ENOMEM;
284
285 /* Fail silently as we can still use remaining features, e.g. CBS */
286 if (!dma_cap->frpsel)
287 return 0;
288
289 switch (dma_cap->frpbs) {
290 case 0x0:
291 priv->tc_off_max = 64;
292 break;
293 case 0x1:
294 priv->tc_off_max = 128;
295 break;
296 case 0x2:
297 priv->tc_off_max = 256;
298 break;
299 default:
300 return -EINVAL;
301 }
302
303 switch (dma_cap->frpes) {
304 case 0x0:
305 count = 64;
306 break;
307 case 0x1:
308 count = 128;
309 break;
310 case 0x2:
311 count = 256;
312 break;
313 default:
314 return -EINVAL;
315 }
316
317 /* Reserve one last filter which lets all pass */
318 priv->tc_entries_max = count;
319 priv->tc_entries = devm_kcalloc(priv->device,
320 count, sizeof(*priv->tc_entries), GFP_KERNEL);
321 if (!priv->tc_entries)
322 return -ENOMEM;
323
324 tc_fill_all_pass_entry(&priv->tc_entries[count - 1]);
325
326 dev_info(priv->device, "Enabling HW TC (entries=%d, max_off=%d)\n",
327 priv->tc_entries_max, priv->tc_off_max);
328
329 return 0;
330 }
331
tc_setup_cbs(struct stmmac_priv * priv,struct tc_cbs_qopt_offload * qopt)332 static int tc_setup_cbs(struct stmmac_priv *priv,
333 struct tc_cbs_qopt_offload *qopt)
334 {
335 u32 tx_queues_count = priv->plat->tx_queues_to_use;
336 s64 port_transmit_rate_kbps;
337 u32 queue = qopt->queue;
338 u32 mode_to_use;
339 u64 value;
340 u32 ptr;
341 int ret;
342
343 /* Queue 0 is not AVB capable */
344 if (queue <= 0 || queue >= tx_queues_count)
345 return -EINVAL;
346 if (!priv->dma_cap.av)
347 return -EOPNOTSUPP;
348
349 port_transmit_rate_kbps = qopt->idleslope - qopt->sendslope;
350
351 if (qopt->enable) {
352 /* Port Transmit Rate and Speed Divider */
353 switch (div_s64(port_transmit_rate_kbps, 1000)) {
354 case SPEED_10000:
355 case SPEED_5000:
356 ptr = 32;
357 break;
358 case SPEED_2500:
359 case SPEED_1000:
360 ptr = 8;
361 break;
362 case SPEED_100:
363 ptr = 4;
364 break;
365 default:
366 netdev_err(priv->dev,
367 "Invalid portTransmitRate %lld (idleSlope - sendSlope)\n",
368 port_transmit_rate_kbps);
369 return -EINVAL;
370 }
371 } else {
372 ptr = 0;
373 }
374
375 mode_to_use = priv->plat->tx_queues_cfg[queue].mode_to_use;
376 if (mode_to_use == MTL_QUEUE_DCB && qopt->enable) {
377 ret = stmmac_dma_qmode(priv, priv->ioaddr, queue, MTL_QUEUE_AVB);
378 if (ret)
379 return ret;
380
381 priv->plat->tx_queues_cfg[queue].mode_to_use = MTL_QUEUE_AVB;
382 } else if (!qopt->enable) {
383 ret = stmmac_dma_qmode(priv, priv->ioaddr, queue,
384 MTL_QUEUE_DCB);
385 if (ret)
386 return ret;
387
388 priv->plat->tx_queues_cfg[queue].mode_to_use = MTL_QUEUE_DCB;
389 return 0;
390 }
391
392 /* Final adjustments for HW */
393 value = div_s64(qopt->idleslope * 1024ll * ptr, port_transmit_rate_kbps);
394 priv->plat->tx_queues_cfg[queue].idle_slope = value & GENMASK(31, 0);
395
396 value = div_s64(-qopt->sendslope * 1024ll * ptr, port_transmit_rate_kbps);
397 priv->plat->tx_queues_cfg[queue].send_slope = value & GENMASK(31, 0);
398
399 value = qopt->hicredit * 1024ll * 8;
400 priv->plat->tx_queues_cfg[queue].high_credit = value & GENMASK(31, 0);
401
402 value = qopt->locredit * 1024ll * 8;
403 priv->plat->tx_queues_cfg[queue].low_credit = value & GENMASK(31, 0);
404
405 ret = stmmac_config_cbs(priv, priv->hw,
406 priv->plat->tx_queues_cfg[queue].send_slope,
407 priv->plat->tx_queues_cfg[queue].idle_slope,
408 priv->plat->tx_queues_cfg[queue].high_credit,
409 priv->plat->tx_queues_cfg[queue].low_credit,
410 queue);
411 if (ret)
412 return ret;
413
414 dev_info(priv->device, "CBS queue %d: send %d, idle %d, hi %d, lo %d\n",
415 queue, qopt->sendslope, qopt->idleslope,
416 qopt->hicredit, qopt->locredit);
417 return 0;
418 }
419
tc_parse_flow_actions(struct stmmac_priv * priv,struct flow_action * action,struct stmmac_flow_entry * entry,struct netlink_ext_ack * extack)420 static int tc_parse_flow_actions(struct stmmac_priv *priv,
421 struct flow_action *action,
422 struct stmmac_flow_entry *entry,
423 struct netlink_ext_ack *extack)
424 {
425 struct flow_action_entry *act;
426 int i;
427
428 if (!flow_action_has_entries(action))
429 return -EINVAL;
430
431 if (!flow_action_basic_hw_stats_check(action, extack))
432 return -EOPNOTSUPP;
433
434 flow_action_for_each(i, act, action) {
435 switch (act->id) {
436 case FLOW_ACTION_DROP:
437 entry->action |= STMMAC_FLOW_ACTION_DROP;
438 return 0;
439 default:
440 break;
441 }
442 }
443
444 /* Nothing to do, maybe inverse filter ? */
445 return 0;
446 }
447
448 #define ETHER_TYPE_FULL_MASK cpu_to_be16(~0)
449 #define IP_PROTO_FULL_MASK 0xFF
450
tc_add_basic_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls,struct stmmac_flow_entry * entry)451 static int tc_add_basic_flow(struct stmmac_priv *priv,
452 struct flow_cls_offload *cls,
453 struct stmmac_flow_entry *entry)
454 {
455 struct flow_rule *rule = flow_cls_offload_flow_rule(cls);
456 struct flow_dissector *dissector = rule->match.dissector;
457 struct flow_match_basic match;
458
459 /* Nothing to do here */
460 if (!dissector_uses_key(dissector, FLOW_DISSECTOR_KEY_BASIC))
461 return -EINVAL;
462
463 flow_rule_match_basic(rule, &match);
464
465 /* Both network proto and transport proto not present in the key */
466 if (!match.mask || !(match.mask->n_proto || match.mask->ip_proto)) {
467 NL_SET_ERR_MSG_MOD(cls->common.extack,
468 "filter must specify network or transport protocol");
469 return -EOPNOTSUPP;
470 }
471
472 /* If the proto is present in the key and is not full mask */
473 if ((match.mask->n_proto && match.mask->n_proto != ETHER_TYPE_FULL_MASK) ||
474 (match.mask->ip_proto && match.mask->ip_proto != IP_PROTO_FULL_MASK)) {
475 NL_SET_ERR_MSG_MOD(cls->common.extack,
476 "only full protocol mask is supported");
477 return -EOPNOTSUPP;
478 }
479
480 /* Network proto is present in the key and is not IPv4 */
481 if (match.mask->n_proto && match.key->n_proto != cpu_to_be16(ETH_P_IP)) {
482 NL_SET_ERR_MSG_MOD(cls->common.extack,
483 "only IPv4 network protocol is supported");
484 return -EOPNOTSUPP;
485 }
486
487 /* Transport proto is present in the key and is not TCP or UDP */
488 if (match.mask->ip_proto &&
489 match.key->ip_proto != IPPROTO_TCP &&
490 match.key->ip_proto != IPPROTO_UDP) {
491 NL_SET_ERR_MSG_MOD(cls->common.extack,
492 "only TCP and UDP transport protocols are supported");
493 return -EOPNOTSUPP;
494 }
495
496 entry->ip_proto = match.key->ip_proto;
497 return 0;
498 }
499
tc_add_ip4_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls,struct stmmac_flow_entry * entry)500 static int tc_add_ip4_flow(struct stmmac_priv *priv,
501 struct flow_cls_offload *cls,
502 struct stmmac_flow_entry *entry)
503 {
504 struct flow_rule *rule = flow_cls_offload_flow_rule(cls);
505 struct flow_dissector *dissector = rule->match.dissector;
506 bool inv = entry->action & STMMAC_FLOW_ACTION_DROP;
507 struct flow_match_ipv4_addrs match;
508 u32 hw_match;
509 int ret;
510
511 /* Nothing to do here */
512 if (!dissector_uses_key(dissector, FLOW_DISSECTOR_KEY_IPV4_ADDRS))
513 return -EINVAL;
514
515 flow_rule_match_ipv4_addrs(rule, &match);
516 hw_match = ntohl(match.key->src) & ntohl(match.mask->src);
517 if (hw_match) {
518 ret = stmmac_config_l3_filter(priv, priv->hw, entry->idx, true,
519 false, true, inv, hw_match);
520 if (ret)
521 return ret;
522 }
523
524 hw_match = ntohl(match.key->dst) & ntohl(match.mask->dst);
525 if (hw_match) {
526 ret = stmmac_config_l3_filter(priv, priv->hw, entry->idx, true,
527 false, false, inv, hw_match);
528 if (ret)
529 return ret;
530 }
531
532 return 0;
533 }
534
tc_add_ports_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls,struct stmmac_flow_entry * entry)535 static int tc_add_ports_flow(struct stmmac_priv *priv,
536 struct flow_cls_offload *cls,
537 struct stmmac_flow_entry *entry)
538 {
539 struct flow_rule *rule = flow_cls_offload_flow_rule(cls);
540 struct flow_dissector *dissector = rule->match.dissector;
541 bool inv = entry->action & STMMAC_FLOW_ACTION_DROP;
542 struct flow_match_ports match;
543 u32 hw_match;
544 bool is_udp;
545 int ret;
546
547 /* Nothing to do here */
548 if (!dissector_uses_key(dissector, FLOW_DISSECTOR_KEY_PORTS))
549 return -EINVAL;
550
551 switch (entry->ip_proto) {
552 case IPPROTO_TCP:
553 is_udp = false;
554 break;
555 case IPPROTO_UDP:
556 is_udp = true;
557 break;
558 default:
559 return -EINVAL;
560 }
561
562 flow_rule_match_ports(rule, &match);
563
564 hw_match = ntohs(match.key->src) & ntohs(match.mask->src);
565 if (hw_match) {
566 ret = stmmac_config_l4_filter(priv, priv->hw, entry->idx, true,
567 is_udp, true, inv, hw_match);
568 if (ret)
569 return ret;
570 }
571
572 hw_match = ntohs(match.key->dst) & ntohs(match.mask->dst);
573 if (hw_match) {
574 ret = stmmac_config_l4_filter(priv, priv->hw, entry->idx, true,
575 is_udp, false, inv, hw_match);
576 if (ret)
577 return ret;
578 }
579
580 entry->is_l4 = true;
581 return 0;
582 }
583
tc_find_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls,bool get_free)584 static struct stmmac_flow_entry *tc_find_flow(struct stmmac_priv *priv,
585 struct flow_cls_offload *cls,
586 bool get_free)
587 {
588 int i;
589
590 for (i = 0; i < priv->flow_entries_max; i++) {
591 struct stmmac_flow_entry *entry = &priv->flow_entries[i];
592
593 if (entry->cookie == cls->cookie)
594 return entry;
595 if (get_free && (entry->in_use == false))
596 return entry;
597 }
598
599 return NULL;
600 }
601
602 static struct {
603 int (*fn)(struct stmmac_priv *priv, struct flow_cls_offload *cls,
604 struct stmmac_flow_entry *entry);
605 } tc_flow_parsers[] = {
606 { .fn = tc_add_basic_flow },
607 { .fn = tc_add_ip4_flow },
608 { .fn = tc_add_ports_flow },
609 };
610
tc_add_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls)611 static int tc_add_flow(struct stmmac_priv *priv,
612 struct flow_cls_offload *cls)
613 {
614 struct stmmac_flow_entry *entry = tc_find_flow(priv, cls, false);
615 struct flow_rule *rule = flow_cls_offload_flow_rule(cls);
616 int i, ret;
617
618 if (!entry) {
619 entry = tc_find_flow(priv, cls, true);
620 if (!entry)
621 return -ENOENT;
622 }
623
624 ret = tc_parse_flow_actions(priv, &rule->action, entry,
625 cls->common.extack);
626 if (ret)
627 return ret;
628
629 for (i = 0; i < ARRAY_SIZE(tc_flow_parsers); i++) {
630 ret = tc_flow_parsers[i].fn(priv, cls, entry);
631 if (!ret)
632 entry->in_use = true;
633 else if (ret == -EOPNOTSUPP)
634 return ret;
635 }
636
637 if (!entry->in_use)
638 return -EINVAL;
639
640 entry->cookie = cls->cookie;
641 return 0;
642 }
643
tc_del_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls)644 static int tc_del_flow(struct stmmac_priv *priv,
645 struct flow_cls_offload *cls)
646 {
647 struct stmmac_flow_entry *entry = tc_find_flow(priv, cls, false);
648 int ret;
649
650 if (!entry || !entry->in_use)
651 return -ENOENT;
652
653 if (entry->is_l4) {
654 ret = stmmac_config_l4_filter(priv, priv->hw, entry->idx, false,
655 false, false, false, 0);
656 } else {
657 ret = stmmac_config_l3_filter(priv, priv->hw, entry->idx, false,
658 false, false, false, 0);
659 }
660
661 entry->in_use = false;
662 entry->cookie = 0;
663 entry->is_l4 = false;
664 entry->action = 0;
665 return ret;
666 }
667
tc_find_rfs(struct stmmac_priv * priv,struct flow_cls_offload * cls,bool get_free)668 static struct stmmac_rfs_entry *tc_find_rfs(struct stmmac_priv *priv,
669 struct flow_cls_offload *cls,
670 bool get_free)
671 {
672 int i;
673
674 for (i = 0; i < priv->rfs_entries_total; i++) {
675 struct stmmac_rfs_entry *entry = &priv->rfs_entries[i];
676
677 if (entry->cookie == cls->cookie)
678 return entry;
679 if (get_free && entry->in_use == false)
680 return entry;
681 }
682
683 return NULL;
684 }
685
686 #define VLAN_PRIO_FULL_MASK (0x07)
687
tc_add_vlan_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls)688 static int tc_add_vlan_flow(struct stmmac_priv *priv,
689 struct flow_cls_offload *cls)
690 {
691 struct stmmac_rfs_entry *entry = tc_find_rfs(priv, cls, false);
692 struct flow_rule *rule = flow_cls_offload_flow_rule(cls);
693 struct flow_dissector *dissector = rule->match.dissector;
694 int tc = tc_classid_to_hwtc(priv->dev, cls->classid);
695 struct flow_match_vlan match;
696
697 if (!entry) {
698 entry = tc_find_rfs(priv, cls, true);
699 if (!entry)
700 return -ENOENT;
701 }
702
703 if (priv->rfs_entries_cnt[STMMAC_RFS_T_VLAN] >=
704 priv->rfs_entries_max[STMMAC_RFS_T_VLAN])
705 return -ENOENT;
706
707 /* Nothing to do here */
708 if (!dissector_uses_key(dissector, FLOW_DISSECTOR_KEY_VLAN))
709 return -EINVAL;
710
711 if (tc < 0) {
712 netdev_err(priv->dev, "Invalid traffic class\n");
713 return -EINVAL;
714 }
715
716 flow_rule_match_vlan(rule, &match);
717
718 if (match.mask->vlan_priority) {
719 u32 prio;
720
721 if (match.mask->vlan_priority != VLAN_PRIO_FULL_MASK) {
722 netdev_err(priv->dev, "Only full mask is supported for VLAN priority");
723 return -EINVAL;
724 }
725
726 prio = BIT(match.key->vlan_priority);
727 stmmac_rx_queue_prio(priv, priv->hw, prio, tc);
728
729 entry->in_use = true;
730 entry->cookie = cls->cookie;
731 entry->tc = tc;
732 entry->type = STMMAC_RFS_T_VLAN;
733 priv->rfs_entries_cnt[STMMAC_RFS_T_VLAN]++;
734 }
735
736 return 0;
737 }
738
tc_del_vlan_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls)739 static int tc_del_vlan_flow(struct stmmac_priv *priv,
740 struct flow_cls_offload *cls)
741 {
742 struct stmmac_rfs_entry *entry = tc_find_rfs(priv, cls, false);
743
744 if (!entry || !entry->in_use || entry->type != STMMAC_RFS_T_VLAN)
745 return -ENOENT;
746
747 stmmac_rx_queue_prio(priv, priv->hw, 0, entry->tc);
748
749 entry->in_use = false;
750 entry->cookie = 0;
751 entry->tc = 0;
752 entry->type = 0;
753
754 priv->rfs_entries_cnt[STMMAC_RFS_T_VLAN]--;
755
756 return 0;
757 }
758
tc_add_ethtype_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls)759 static int tc_add_ethtype_flow(struct stmmac_priv *priv,
760 struct flow_cls_offload *cls)
761 {
762 struct stmmac_rfs_entry *entry = tc_find_rfs(priv, cls, false);
763 struct flow_rule *rule = flow_cls_offload_flow_rule(cls);
764 struct flow_dissector *dissector = rule->match.dissector;
765 int tc = tc_classid_to_hwtc(priv->dev, cls->classid);
766 struct flow_match_basic match;
767
768 if (!entry) {
769 entry = tc_find_rfs(priv, cls, true);
770 if (!entry)
771 return -ENOENT;
772 }
773
774 /* Nothing to do here */
775 if (!dissector_uses_key(dissector, FLOW_DISSECTOR_KEY_BASIC))
776 return -EINVAL;
777
778 if (tc < 0) {
779 netdev_err(priv->dev, "Invalid traffic class\n");
780 return -EINVAL;
781 }
782
783 flow_rule_match_basic(rule, &match);
784
785 if (match.mask->n_proto) {
786 u16 etype = ntohs(match.key->n_proto);
787
788 if (match.mask->n_proto != ETHER_TYPE_FULL_MASK) {
789 netdev_err(priv->dev, "Only full mask is supported for EthType filter");
790 return -EINVAL;
791 }
792 switch (etype) {
793 case ETH_P_LLDP:
794 if (priv->rfs_entries_cnt[STMMAC_RFS_T_LLDP] >=
795 priv->rfs_entries_max[STMMAC_RFS_T_LLDP])
796 return -ENOENT;
797
798 entry->type = STMMAC_RFS_T_LLDP;
799 priv->rfs_entries_cnt[STMMAC_RFS_T_LLDP]++;
800
801 stmmac_rx_queue_routing(priv, priv->hw,
802 PACKET_DCBCPQ, tc);
803 break;
804 case ETH_P_1588:
805 if (priv->rfs_entries_cnt[STMMAC_RFS_T_1588] >=
806 priv->rfs_entries_max[STMMAC_RFS_T_1588])
807 return -ENOENT;
808
809 entry->type = STMMAC_RFS_T_1588;
810 priv->rfs_entries_cnt[STMMAC_RFS_T_1588]++;
811
812 stmmac_rx_queue_routing(priv, priv->hw,
813 PACKET_PTPQ, tc);
814 break;
815 default:
816 netdev_err(priv->dev, "EthType(0x%x) is not supported", etype);
817 return -EINVAL;
818 }
819
820 entry->in_use = true;
821 entry->cookie = cls->cookie;
822 entry->tc = tc;
823 entry->etype = etype;
824
825 return 0;
826 }
827
828 return -EINVAL;
829 }
830
tc_del_ethtype_flow(struct stmmac_priv * priv,struct flow_cls_offload * cls)831 static int tc_del_ethtype_flow(struct stmmac_priv *priv,
832 struct flow_cls_offload *cls)
833 {
834 struct stmmac_rfs_entry *entry = tc_find_rfs(priv, cls, false);
835
836 if (!entry || !entry->in_use ||
837 entry->type < STMMAC_RFS_T_LLDP ||
838 entry->type > STMMAC_RFS_T_1588)
839 return -ENOENT;
840
841 switch (entry->etype) {
842 case ETH_P_LLDP:
843 stmmac_rx_queue_routing(priv, priv->hw,
844 PACKET_DCBCPQ, 0);
845 priv->rfs_entries_cnt[STMMAC_RFS_T_LLDP]--;
846 break;
847 case ETH_P_1588:
848 stmmac_rx_queue_routing(priv, priv->hw,
849 PACKET_PTPQ, 0);
850 priv->rfs_entries_cnt[STMMAC_RFS_T_1588]--;
851 break;
852 default:
853 netdev_err(priv->dev, "EthType(0x%x) is not supported",
854 entry->etype);
855 return -EINVAL;
856 }
857
858 entry->in_use = false;
859 entry->cookie = 0;
860 entry->tc = 0;
861 entry->etype = 0;
862 entry->type = 0;
863
864 return 0;
865 }
866
tc_add_flow_cls(struct stmmac_priv * priv,struct flow_cls_offload * cls)867 static int tc_add_flow_cls(struct stmmac_priv *priv,
868 struct flow_cls_offload *cls)
869 {
870 int ret;
871
872 ret = tc_add_flow(priv, cls);
873 if (!ret)
874 return ret;
875
876 ret = tc_add_ethtype_flow(priv, cls);
877 if (!ret)
878 return ret;
879
880 return tc_add_vlan_flow(priv, cls);
881 }
882
tc_del_flow_cls(struct stmmac_priv * priv,struct flow_cls_offload * cls)883 static int tc_del_flow_cls(struct stmmac_priv *priv,
884 struct flow_cls_offload *cls)
885 {
886 int ret;
887
888 ret = tc_del_flow(priv, cls);
889 if (!ret)
890 return ret;
891
892 ret = tc_del_ethtype_flow(priv, cls);
893 if (!ret)
894 return ret;
895
896 return tc_del_vlan_flow(priv, cls);
897 }
898
tc_setup_cls(struct stmmac_priv * priv,struct flow_cls_offload * cls)899 static int tc_setup_cls(struct stmmac_priv *priv,
900 struct flow_cls_offload *cls)
901 {
902 int ret = 0;
903
904 /* When RSS is enabled, the filtering will be bypassed */
905 if (priv->rss.enable)
906 return -EBUSY;
907
908 switch (cls->command) {
909 case FLOW_CLS_REPLACE:
910 ret = tc_add_flow_cls(priv, cls);
911 break;
912 case FLOW_CLS_DESTROY:
913 ret = tc_del_flow_cls(priv, cls);
914 break;
915 default:
916 return -EOPNOTSUPP;
917 }
918
919 return ret;
920 }
921
stmmac_calc_tas_basetime(ktime_t old_base_time,ktime_t current_time,u64 cycle_time)922 struct timespec64 stmmac_calc_tas_basetime(ktime_t old_base_time,
923 ktime_t current_time,
924 u64 cycle_time)
925 {
926 struct timespec64 time;
927
928 if (ktime_after(old_base_time, current_time)) {
929 time = ktime_to_timespec64(old_base_time);
930 } else {
931 s64 n;
932 ktime_t base_time;
933
934 n = div64_s64(ktime_sub_ns(current_time, old_base_time),
935 cycle_time);
936 base_time = ktime_add_ns(old_base_time,
937 (n + 1) * cycle_time);
938
939 time = ktime_to_timespec64(base_time);
940 }
941
942 return time;
943 }
944
tc_taprio_map_maxsdu_txq(struct stmmac_priv * priv,struct tc_taprio_qopt_offload * qopt)945 static void tc_taprio_map_maxsdu_txq(struct stmmac_priv *priv,
946 struct tc_taprio_qopt_offload *qopt)
947 {
948 u32 num_tc = qopt->mqprio.qopt.num_tc;
949 u32 offset, count, i, j;
950
951 /* QueueMaxSDU received from the driver corresponds to the Linux traffic
952 * class. Map queueMaxSDU per Linux traffic class to DWMAC Tx queues.
953 */
954 for (i = 0; i < num_tc; i++) {
955 if (!qopt->max_sdu[i])
956 continue;
957
958 offset = qopt->mqprio.qopt.offset[i];
959 count = qopt->mqprio.qopt.count[i];
960
961 for (j = offset; j < offset + count; j++)
962 priv->est->max_sdu[j] = qopt->max_sdu[i] + ETH_HLEN - ETH_TLEN;
963 }
964 }
965
tc_taprio_configure(struct stmmac_priv * priv,struct tc_taprio_qopt_offload * qopt)966 static int tc_taprio_configure(struct stmmac_priv *priv,
967 struct tc_taprio_qopt_offload *qopt)
968 {
969 u32 size, wid = priv->dma_cap.estwid, dep = priv->dma_cap.estdep;
970 struct netlink_ext_ack *extack = qopt->mqprio.extack;
971 struct timespec64 time, current_time, qopt_time;
972 ktime_t current_time_ns;
973 int err, i, ret = 0;
974 u64 ctr;
975
976 if (qopt->base_time < 0)
977 return -ERANGE;
978
979 if (!priv->dma_cap.estsel)
980 return -EOPNOTSUPP;
981
982 switch (wid) {
983 case 0x1:
984 wid = 16;
985 break;
986 case 0x2:
987 wid = 20;
988 break;
989 case 0x3:
990 wid = 24;
991 break;
992 default:
993 return -EOPNOTSUPP;
994 }
995
996 switch (dep) {
997 case 0x1:
998 dep = 64;
999 break;
1000 case 0x2:
1001 dep = 128;
1002 break;
1003 case 0x3:
1004 dep = 256;
1005 break;
1006 case 0x4:
1007 dep = 512;
1008 break;
1009 case 0x5:
1010 dep = 1024;
1011 break;
1012 default:
1013 return -EOPNOTSUPP;
1014 }
1015
1016 if (qopt->cmd == TAPRIO_CMD_DESTROY)
1017 goto disable;
1018
1019 if (qopt->num_entries > dep)
1020 return -EINVAL;
1021 if (!qopt->cycle_time)
1022 return -ERANGE;
1023 if (qopt->cycle_time_extension >= BIT(wid + 7))
1024 return -ERANGE;
1025
1026 if (!priv->est) {
1027 priv->est = devm_kzalloc(priv->device, sizeof(*priv->est),
1028 GFP_KERNEL);
1029 if (!priv->est)
1030 return -ENOMEM;
1031
1032 mutex_init(&priv->est_lock);
1033 } else {
1034 mutex_lock(&priv->est_lock);
1035 memset(priv->est, 0, sizeof(*priv->est));
1036 mutex_unlock(&priv->est_lock);
1037 }
1038
1039 size = qopt->num_entries;
1040
1041 mutex_lock(&priv->est_lock);
1042 priv->est->gcl_size = size;
1043 priv->est->enable = qopt->cmd == TAPRIO_CMD_REPLACE;
1044 mutex_unlock(&priv->est_lock);
1045
1046 for (i = 0; i < size; i++) {
1047 s64 delta_ns = qopt->entries[i].interval;
1048 u32 gates = qopt->entries[i].gate_mask;
1049
1050 if (delta_ns > GENMASK(wid - 1, 0))
1051 return -ERANGE;
1052 if (gates > GENMASK(31 - wid, 0))
1053 return -ERANGE;
1054
1055 switch (qopt->entries[i].command) {
1056 case TC_TAPRIO_CMD_SET_GATES:
1057 break;
1058 case TC_TAPRIO_CMD_SET_AND_HOLD:
1059 gates |= BIT(0);
1060 break;
1061 case TC_TAPRIO_CMD_SET_AND_RELEASE:
1062 gates &= ~BIT(0);
1063 break;
1064 default:
1065 return -EOPNOTSUPP;
1066 }
1067
1068 priv->est->gcl[i] = delta_ns | (gates << wid);
1069 }
1070
1071 mutex_lock(&priv->est_lock);
1072 /* Adjust for real system time */
1073 priv->ptp_clock_ops.gettime64(&priv->ptp_clock_ops, ¤t_time);
1074 current_time_ns = timespec64_to_ktime(current_time);
1075 time = stmmac_calc_tas_basetime(qopt->base_time, current_time_ns,
1076 qopt->cycle_time);
1077
1078 priv->est->btr[0] = (u32)time.tv_nsec;
1079 priv->est->btr[1] = (u32)time.tv_sec;
1080
1081 qopt_time = ktime_to_timespec64(qopt->base_time);
1082 priv->est->btr_reserve[0] = (u32)qopt_time.tv_nsec;
1083 priv->est->btr_reserve[1] = (u32)qopt_time.tv_sec;
1084
1085 ctr = qopt->cycle_time;
1086 priv->est->ctr[0] = do_div(ctr, NSEC_PER_SEC);
1087 priv->est->ctr[1] = (u32)ctr;
1088
1089 priv->est->ter = qopt->cycle_time_extension;
1090
1091 tc_taprio_map_maxsdu_txq(priv, qopt);
1092
1093 ret = stmmac_est_configure(priv, priv, priv->est,
1094 priv->plat->clk_ptp_rate);
1095 mutex_unlock(&priv->est_lock);
1096 if (ret) {
1097 netdev_err(priv->dev, "failed to configure EST\n");
1098 goto disable;
1099 }
1100
1101 ret = stmmac_fpe_map_preemption_class(priv, priv->dev, extack,
1102 qopt->mqprio.preemptible_tcs);
1103 if (ret)
1104 goto disable;
1105
1106 return 0;
1107
1108 disable:
1109 if (priv->est) {
1110 mutex_lock(&priv->est_lock);
1111 priv->est->enable = false;
1112 stmmac_est_configure(priv, priv, priv->est,
1113 priv->plat->clk_ptp_rate);
1114 /* Reset taprio status */
1115 for (i = 0; i < priv->plat->tx_queues_to_use; i++) {
1116 priv->xstats.max_sdu_txq_drop[i] = 0;
1117 priv->xstats.mtl_est_txq_hlbf[i] = 0;
1118 priv->xstats.mtl_est_txq_hlbs[i] = 0;
1119 }
1120 mutex_unlock(&priv->est_lock);
1121 }
1122
1123 err = stmmac_fpe_map_preemption_class(priv, priv->dev, extack, 0);
1124
1125 return qopt->cmd == TAPRIO_CMD_DESTROY ? err : ret;
1126 }
1127
tc_taprio_stats(struct stmmac_priv * priv,struct tc_taprio_qopt_offload * qopt)1128 static void tc_taprio_stats(struct stmmac_priv *priv,
1129 struct tc_taprio_qopt_offload *qopt)
1130 {
1131 u64 window_drops = 0;
1132 int i = 0;
1133
1134 for (i = 0; i < priv->plat->tx_queues_to_use; i++)
1135 window_drops += priv->xstats.max_sdu_txq_drop[i] +
1136 priv->xstats.mtl_est_txq_hlbf[i] +
1137 priv->xstats.mtl_est_txq_hlbs[i];
1138 qopt->stats.window_drops = window_drops;
1139
1140 /* Transmission overrun doesn't happen for stmmac, hence always 0 */
1141 qopt->stats.tx_overruns = 0;
1142 }
1143
tc_taprio_queue_stats(struct stmmac_priv * priv,struct tc_taprio_qopt_offload * qopt)1144 static void tc_taprio_queue_stats(struct stmmac_priv *priv,
1145 struct tc_taprio_qopt_offload *qopt)
1146 {
1147 struct tc_taprio_qopt_queue_stats *q_stats = &qopt->queue_stats;
1148 int queue = qopt->queue_stats.queue;
1149
1150 q_stats->stats.window_drops = priv->xstats.max_sdu_txq_drop[queue] +
1151 priv->xstats.mtl_est_txq_hlbf[queue] +
1152 priv->xstats.mtl_est_txq_hlbs[queue];
1153
1154 /* Transmission overrun doesn't happen for stmmac, hence always 0 */
1155 q_stats->stats.tx_overruns = 0;
1156 }
1157
tc_setup_taprio(struct stmmac_priv * priv,struct tc_taprio_qopt_offload * qopt)1158 static int tc_setup_taprio(struct stmmac_priv *priv,
1159 struct tc_taprio_qopt_offload *qopt)
1160 {
1161 int err = 0;
1162
1163 switch (qopt->cmd) {
1164 case TAPRIO_CMD_REPLACE:
1165 case TAPRIO_CMD_DESTROY:
1166 err = tc_taprio_configure(priv, qopt);
1167 break;
1168 case TAPRIO_CMD_STATS:
1169 tc_taprio_stats(priv, qopt);
1170 break;
1171 case TAPRIO_CMD_QUEUE_STATS:
1172 tc_taprio_queue_stats(priv, qopt);
1173 break;
1174 default:
1175 err = -EOPNOTSUPP;
1176 }
1177
1178 return err;
1179 }
1180
tc_setup_taprio_without_fpe(struct stmmac_priv * priv,struct tc_taprio_qopt_offload * qopt)1181 static int tc_setup_taprio_without_fpe(struct stmmac_priv *priv,
1182 struct tc_taprio_qopt_offload *qopt)
1183 {
1184 if (!qopt->mqprio.preemptible_tcs)
1185 return tc_setup_taprio(priv, qopt);
1186
1187 NL_SET_ERR_MSG_MOD(qopt->mqprio.extack,
1188 "taprio with FPE is not implemented for this MAC");
1189
1190 return -EOPNOTSUPP;
1191 }
1192
tc_setup_etf(struct stmmac_priv * priv,struct tc_etf_qopt_offload * qopt)1193 static int tc_setup_etf(struct stmmac_priv *priv,
1194 struct tc_etf_qopt_offload *qopt)
1195 {
1196 if (!priv->dma_cap.tbssel)
1197 return -EOPNOTSUPP;
1198 if (qopt->queue >= priv->plat->tx_queues_to_use)
1199 return -EINVAL;
1200 if (!(priv->dma_conf.tx_queue[qopt->queue].tbs & STMMAC_TBS_AVAIL))
1201 return -EINVAL;
1202
1203 if (qopt->enable)
1204 priv->dma_conf.tx_queue[qopt->queue].tbs |= STMMAC_TBS_EN;
1205 else
1206 priv->dma_conf.tx_queue[qopt->queue].tbs &= ~STMMAC_TBS_EN;
1207
1208 netdev_info(priv->dev, "%s ETF for Queue %d\n",
1209 qopt->enable ? "enabled" : "disabled", qopt->queue);
1210 return 0;
1211 }
1212
tc_query_caps(struct stmmac_priv * priv,struct tc_query_caps_base * base)1213 static int tc_query_caps(struct stmmac_priv *priv,
1214 struct tc_query_caps_base *base)
1215 {
1216 switch (base->type) {
1217 case TC_SETUP_QDISC_MQPRIO: {
1218 struct tc_mqprio_caps *caps = base->caps;
1219
1220 caps->validate_queue_counts = true;
1221
1222 return 0;
1223 }
1224 case TC_SETUP_QDISC_TAPRIO: {
1225 struct tc_taprio_caps *caps = base->caps;
1226
1227 if (!priv->dma_cap.estsel)
1228 return -EOPNOTSUPP;
1229
1230 caps->gate_mask_per_txq = true;
1231 caps->supports_queue_max_sdu = true;
1232
1233 return 0;
1234 }
1235 default:
1236 return -EOPNOTSUPP;
1237 }
1238 }
1239
stmmac_set_ndev_tcs(struct net_device * ndev,u8 ntc,struct netdev_tc_txq * tc_to_txq)1240 static int stmmac_set_ndev_tcs(struct net_device *ndev, u8 ntc,
1241 struct netdev_tc_txq *tc_to_txq)
1242 {
1243 int i, err;
1244
1245 netdev_reset_tc(ndev);
1246 if (!ntc)
1247 return 0;
1248
1249 err = netdev_set_num_tc(ndev, ntc);
1250 if (err)
1251 return err;
1252
1253 for (i = 0; i < ntc; i++) {
1254 u16 count, offset;
1255
1256 count = tc_to_txq[i].count;
1257 offset = tc_to_txq[i].offset;
1258 netdev_set_tc_queue(ndev, i, count, offset);
1259 }
1260
1261 return 0;
1262 }
1263
stmmac_reset_tc_mqprio(struct net_device * ndev,struct netlink_ext_ack * extack)1264 static int stmmac_reset_tc_mqprio(struct net_device *ndev,
1265 struct netlink_ext_ack *extack)
1266 {
1267 struct stmmac_priv *priv = netdev_priv(ndev);
1268
1269 netdev_reset_tc(ndev);
1270 netif_set_real_num_tx_queues(ndev, priv->plat->tx_queues_to_use);
1271
1272 return stmmac_fpe_map_preemption_class(priv, ndev, extack, 0);
1273 }
1274
tc_setup_dwmac510_mqprio(struct stmmac_priv * priv,struct tc_mqprio_qopt_offload * mqprio)1275 static int tc_setup_dwmac510_mqprio(struct stmmac_priv *priv,
1276 struct tc_mqprio_qopt_offload *mqprio)
1277 {
1278 unsigned int ndev_num_tx_queues, num_tx_queues = 0;
1279 struct netdev_tc_txq ndev_tc_to_txq[TC_MAX_QUEUE];
1280 struct netdev_tc_txq tc_to_txq[TC_MAX_QUEUE] = {};
1281 struct netlink_ext_ack *extack = mqprio->extack;
1282 struct tc_mqprio_qopt *qopt = &mqprio->qopt;
1283 struct net_device *ndev = priv->dev;
1284 u8 ndev_prio_tc_map[TC_BITMASK + 1];
1285 int i, err, ndev_ntc;
1286
1287 if (!qopt->num_tc)
1288 return stmmac_reset_tc_mqprio(ndev, extack);
1289
1290 if (qopt->num_tc > ARRAY_SIZE(tc_to_txq))
1291 return -EINVAL;
1292
1293 /* save current tc values for reset */
1294 ndev_ntc = netdev_get_num_tc(ndev);
1295 for (i = 0; i < ARRAY_SIZE(ndev->tc_to_txq); i++)
1296 ndev_tc_to_txq[i].combined =
1297 READ_ONCE(ndev->tc_to_txq[i].combined);
1298 for (i = 0; i < ARRAY_SIZE(ndev_prio_tc_map); i++)
1299 ndev_prio_tc_map[i] = READ_ONCE(ndev->prio_tc_map[i]);
1300
1301 for (i = 0; i < qopt->num_tc; i++) {
1302 tc_to_txq[i] = (struct netdev_tc_txq) {
1303 .count = qopt->count[i],
1304 .offset = qopt->offset[i],
1305 };
1306 num_tx_queues += qopt->count[i];
1307 }
1308
1309 err = stmmac_set_ndev_tcs(ndev, qopt->num_tc, tc_to_txq);
1310 if (err)
1311 goto error_reset_tc;
1312
1313 ndev_num_tx_queues = ndev->real_num_tx_queues;
1314 err = netif_set_real_num_tx_queues(ndev, num_tx_queues);
1315 if (err)
1316 goto error_reset_tc;
1317
1318 err = stmmac_fpe_map_preemption_class(priv, ndev, extack,
1319 mqprio->preemptible_tcs);
1320 if (err)
1321 goto error_reset_num_tx_queues;
1322
1323 return 0;
1324
1325 error_reset_num_tx_queues:
1326 if (netif_set_real_num_tx_queues(ndev, ndev_num_tx_queues))
1327 netdev_warn(ndev, "Failed to restore %u TX queues\n",
1328 ndev_num_tx_queues);
1329 error_reset_tc:
1330 stmmac_set_ndev_tcs(ndev, ndev_ntc, ndev_tc_to_txq);
1331 for (i = 0; i < ARRAY_SIZE(ndev_prio_tc_map); i++)
1332 netdev_set_prio_tc_map(ndev, i, ndev_prio_tc_map[i]);
1333
1334 return err;
1335 }
1336
tc_setup_mqprio_unimplemented(struct stmmac_priv * priv,struct tc_mqprio_qopt_offload * mqprio)1337 static int tc_setup_mqprio_unimplemented(struct stmmac_priv *priv,
1338 struct tc_mqprio_qopt_offload *mqprio)
1339 {
1340 NL_SET_ERR_MSG_MOD(mqprio->extack,
1341 "mqprio HW offload is not implemented for this MAC");
1342 return -EOPNOTSUPP;
1343 }
1344
1345 const struct stmmac_tc_ops dwmac4_tc_ops = {
1346 .init = tc_init,
1347 .setup_cls_u32 = tc_setup_cls_u32,
1348 .setup_cbs = tc_setup_cbs,
1349 .setup_cls = tc_setup_cls,
1350 .setup_taprio = tc_setup_taprio_without_fpe,
1351 .setup_etf = tc_setup_etf,
1352 .query_caps = tc_query_caps,
1353 .setup_mqprio = tc_setup_mqprio_unimplemented,
1354 };
1355
1356 const struct stmmac_tc_ops dwmac510_tc_ops = {
1357 .init = tc_init,
1358 .setup_cls_u32 = tc_setup_cls_u32,
1359 .setup_cbs = tc_setup_cbs,
1360 .setup_cls = tc_setup_cls,
1361 .setup_taprio = tc_setup_taprio,
1362 .setup_etf = tc_setup_etf,
1363 .query_caps = tc_query_caps,
1364 .setup_mqprio = tc_setup_dwmac510_mqprio,
1365 };
1366