1 // SPDX-License-Identifier: GPL-2.0
2 /* Marvell RVU Ethernet driver
3 *
4 * Copyright (C) 2020 Marvell.
5 *
6 */
7
8 #include <linux/interrupt.h>
9 #include <linux/pci.h>
10 #include <net/page_pool/helpers.h>
11 #include <net/tso.h>
12 #include <linux/bitfield.h>
13 #include <linux/dcbnl.h>
14 #include <net/xfrm.h>
15
16 #include "otx2_reg.h"
17 #include "otx2_common.h"
18 #include "otx2_struct.h"
19 #include "cn10k.h"
20 #include "otx2_xsk.h"
21
otx2_is_pfc_enabled(struct otx2_nic * pfvf)22 static bool otx2_is_pfc_enabled(struct otx2_nic *pfvf)
23 {
24 return IS_ENABLED(CONFIG_DCB) && !!pfvf->pfc_en;
25 }
26
otx2_nix_rq_op_stats(struct queue_stats * stats,struct otx2_nic * pfvf,int qidx)27 static void otx2_nix_rq_op_stats(struct queue_stats *stats,
28 struct otx2_nic *pfvf, int qidx)
29 {
30 u64 incr = (u64)qidx << 32;
31 void __iomem *ptr;
32
33 ptr = otx2_get_regaddr(pfvf, NIX_LF_RQ_OP_OCTS);
34 stats->bytes = otx2_atomic64_add(incr, ptr);
35
36 ptr = otx2_get_regaddr(pfvf, NIX_LF_RQ_OP_PKTS);
37 stats->pkts = otx2_atomic64_add(incr, ptr);
38 }
39
otx2_nix_sq_op_stats(struct queue_stats * stats,struct otx2_nic * pfvf,int qidx)40 static void otx2_nix_sq_op_stats(struct queue_stats *stats,
41 struct otx2_nic *pfvf, int qidx)
42 {
43 u64 incr = (u64)qidx << 32;
44 void __iomem *ptr;
45
46 ptr = otx2_get_regaddr(pfvf, NIX_LF_SQ_OP_OCTS);
47 stats->bytes = otx2_atomic64_add(incr, ptr);
48
49 ptr = otx2_get_regaddr(pfvf, NIX_LF_SQ_OP_PKTS);
50 stats->pkts = otx2_atomic64_add(incr, ptr);
51 }
52
otx2_update_lmac_stats(struct otx2_nic * pfvf)53 void otx2_update_lmac_stats(struct otx2_nic *pfvf)
54 {
55 struct msg_req *req;
56
57 if (!netif_running(pfvf->netdev))
58 return;
59
60 mutex_lock(&pfvf->mbox.lock);
61 req = otx2_mbox_alloc_msg_cgx_stats(&pfvf->mbox);
62 if (!req) {
63 mutex_unlock(&pfvf->mbox.lock);
64 return;
65 }
66
67 otx2_sync_mbox_msg(&pfvf->mbox);
68 mutex_unlock(&pfvf->mbox.lock);
69 }
70
otx2_update_lmac_fec_stats(struct otx2_nic * pfvf)71 void otx2_update_lmac_fec_stats(struct otx2_nic *pfvf)
72 {
73 struct msg_req *req;
74
75 if (!netif_running(pfvf->netdev))
76 return;
77 mutex_lock(&pfvf->mbox.lock);
78 req = otx2_mbox_alloc_msg_cgx_fec_stats(&pfvf->mbox);
79 if (req)
80 otx2_sync_mbox_msg(&pfvf->mbox);
81 mutex_unlock(&pfvf->mbox.lock);
82 }
83
otx2_update_rq_stats(struct otx2_nic * pfvf,int qidx)84 int otx2_update_rq_stats(struct otx2_nic *pfvf, int qidx)
85 {
86 struct otx2_rcv_queue *rq = &pfvf->qset.rq[qidx];
87
88 if (!pfvf->qset.rq)
89 return 0;
90
91 otx2_nix_rq_op_stats(&rq->stats, pfvf, qidx);
92 return 1;
93 }
94 EXPORT_SYMBOL(otx2_update_rq_stats);
95
otx2_update_sq_stats(struct otx2_nic * pfvf,int qidx)96 int otx2_update_sq_stats(struct otx2_nic *pfvf, int qidx)
97 {
98 struct otx2_snd_queue *sq = &pfvf->qset.sq[qidx];
99
100 if (!pfvf->qset.sq)
101 return 0;
102
103 if (qidx >= pfvf->hw.non_qos_queues) {
104 if (!test_bit(qidx - pfvf->hw.non_qos_queues, pfvf->qos.qos_sq_bmap))
105 return 0;
106 }
107
108 otx2_nix_sq_op_stats(&sq->stats, pfvf, qidx);
109 return 1;
110 }
111 EXPORT_SYMBOL(otx2_update_sq_stats);
112
otx2_get_dev_stats(struct otx2_nic * pfvf)113 void otx2_get_dev_stats(struct otx2_nic *pfvf)
114 {
115 struct otx2_dev_stats *dev_stats = &pfvf->hw.dev_stats;
116
117 dev_stats->rx_bytes = OTX2_GET_RX_STATS(RX_OCTS);
118 dev_stats->rx_drops = OTX2_GET_RX_STATS(RX_DROP);
119 dev_stats->rx_bcast_frames = OTX2_GET_RX_STATS(RX_BCAST);
120 dev_stats->rx_mcast_frames = OTX2_GET_RX_STATS(RX_MCAST);
121 dev_stats->rx_ucast_frames = OTX2_GET_RX_STATS(RX_UCAST);
122 dev_stats->rx_frames = dev_stats->rx_bcast_frames +
123 dev_stats->rx_mcast_frames +
124 dev_stats->rx_ucast_frames;
125
126 dev_stats->tx_bytes = OTX2_GET_TX_STATS(TX_OCTS);
127 dev_stats->tx_drops = OTX2_GET_TX_STATS(TX_DROP) +
128 (unsigned long)atomic_long_read(&dev_stats->tx_discards);
129
130 dev_stats->tx_bcast_frames = OTX2_GET_TX_STATS(TX_BCAST);
131 dev_stats->tx_mcast_frames = OTX2_GET_TX_STATS(TX_MCAST);
132 dev_stats->tx_ucast_frames = OTX2_GET_TX_STATS(TX_UCAST);
133 dev_stats->tx_frames = dev_stats->tx_bcast_frames +
134 dev_stats->tx_mcast_frames +
135 dev_stats->tx_ucast_frames;
136 }
137
otx2_get_stats64(struct net_device * netdev,struct rtnl_link_stats64 * stats)138 void otx2_get_stats64(struct net_device *netdev,
139 struct rtnl_link_stats64 *stats)
140 {
141 struct otx2_nic *pfvf = netdev_priv(netdev);
142 struct otx2_dev_stats *dev_stats;
143
144 otx2_get_dev_stats(pfvf);
145
146 dev_stats = &pfvf->hw.dev_stats;
147 stats->rx_bytes = dev_stats->rx_bytes;
148 stats->rx_packets = dev_stats->rx_frames;
149 stats->rx_dropped = dev_stats->rx_drops;
150 stats->multicast = dev_stats->rx_mcast_frames;
151
152 stats->tx_bytes = dev_stats->tx_bytes;
153 stats->tx_packets = dev_stats->tx_frames;
154 stats->tx_dropped = dev_stats->tx_drops;
155 }
156 EXPORT_SYMBOL(otx2_get_stats64);
157
158 /* Sync MAC address with RVU AF */
otx2_hw_set_mac_addr(struct otx2_nic * pfvf,u8 * mac)159 static int otx2_hw_set_mac_addr(struct otx2_nic *pfvf, u8 *mac)
160 {
161 struct nix_set_mac_addr *req;
162 int err;
163
164 mutex_lock(&pfvf->mbox.lock);
165 req = otx2_mbox_alloc_msg_nix_set_mac_addr(&pfvf->mbox);
166 if (!req) {
167 mutex_unlock(&pfvf->mbox.lock);
168 return -ENOMEM;
169 }
170
171 ether_addr_copy(req->mac_addr, mac);
172
173 err = otx2_sync_mbox_msg(&pfvf->mbox);
174 mutex_unlock(&pfvf->mbox.lock);
175 return err;
176 }
177
otx2_hw_get_mac_addr(struct otx2_nic * pfvf,struct net_device * netdev)178 static int otx2_hw_get_mac_addr(struct otx2_nic *pfvf,
179 struct net_device *netdev)
180 {
181 struct nix_get_mac_addr_rsp *rsp;
182 struct mbox_msghdr *msghdr;
183 struct msg_req *req;
184 int err;
185
186 mutex_lock(&pfvf->mbox.lock);
187 req = otx2_mbox_alloc_msg_nix_get_mac_addr(&pfvf->mbox);
188 if (!req) {
189 mutex_unlock(&pfvf->mbox.lock);
190 return -ENOMEM;
191 }
192
193 err = otx2_sync_mbox_msg(&pfvf->mbox);
194 if (err) {
195 mutex_unlock(&pfvf->mbox.lock);
196 return err;
197 }
198
199 msghdr = otx2_mbox_get_rsp(&pfvf->mbox.mbox, 0, &req->hdr);
200 if (IS_ERR(msghdr)) {
201 mutex_unlock(&pfvf->mbox.lock);
202 return PTR_ERR(msghdr);
203 }
204 rsp = (struct nix_get_mac_addr_rsp *)msghdr;
205 eth_hw_addr_set(netdev, rsp->mac_addr);
206 mutex_unlock(&pfvf->mbox.lock);
207
208 return 0;
209 }
210
otx2_set_mac_address(struct net_device * netdev,void * p)211 int otx2_set_mac_address(struct net_device *netdev, void *p)
212 {
213 struct otx2_nic *pfvf = netdev_priv(netdev);
214 struct sockaddr *addr = p;
215
216 if (!is_valid_ether_addr(addr->sa_data))
217 return -EADDRNOTAVAIL;
218
219 if (!otx2_hw_set_mac_addr(pfvf, addr->sa_data)) {
220 eth_hw_addr_set(netdev, addr->sa_data);
221 /* update dmac field in vlan offload rule */
222 if (netif_running(netdev) &&
223 pfvf->flags & OTX2_FLAG_RX_VLAN_SUPPORT)
224 otx2_install_rxvlan_offload_flow(pfvf);
225 /* update dmac address in ntuple and DMAC filter list */
226 if (pfvf->flags & OTX2_FLAG_DMACFLTR_SUPPORT)
227 otx2_dmacflt_update_pfmac_flow(pfvf);
228 } else {
229 return -EPERM;
230 }
231
232 return 0;
233 }
234 EXPORT_SYMBOL(otx2_set_mac_address);
235
otx2_hw_set_mtu(struct otx2_nic * pfvf,int mtu)236 int otx2_hw_set_mtu(struct otx2_nic *pfvf, int mtu)
237 {
238 struct nix_frs_cfg *req;
239 u16 maxlen;
240 int err;
241
242 maxlen = pfvf->hw.max_mtu + OTX2_ETH_HLEN + OTX2_HW_TIMESTAMP_LEN;
243
244 mutex_lock(&pfvf->mbox.lock);
245 req = otx2_mbox_alloc_msg_nix_set_hw_frs(&pfvf->mbox);
246 if (!req) {
247 mutex_unlock(&pfvf->mbox.lock);
248 return -ENOMEM;
249 }
250
251 req->maxlen = mtu + OTX2_ETH_HLEN + OTX2_HW_TIMESTAMP_LEN;
252
253 /* Use max receive length supported by hardware for loopback devices */
254 if (is_otx2_lbkvf(pfvf->pdev))
255 req->maxlen = maxlen;
256
257 err = otx2_sync_mbox_msg(&pfvf->mbox);
258 mutex_unlock(&pfvf->mbox.lock);
259 return err;
260 }
261 EXPORT_SYMBOL(otx2_hw_set_mtu);
262
otx2_config_pause_frm(struct otx2_nic * pfvf)263 int otx2_config_pause_frm(struct otx2_nic *pfvf)
264 {
265 struct cgx_pause_frm_cfg *req;
266 int err;
267
268 if (is_otx2_lbkvf(pfvf->pdev) || is_otx2_sdp_rep(pfvf->pdev))
269 return 0;
270
271 mutex_lock(&pfvf->mbox.lock);
272 req = otx2_mbox_alloc_msg_cgx_cfg_pause_frm(&pfvf->mbox);
273 if (!req) {
274 err = -ENOMEM;
275 goto unlock;
276 }
277
278 req->rx_pause = !!(pfvf->flags & OTX2_FLAG_RX_PAUSE_ENABLED);
279 req->tx_pause = !!(pfvf->flags & OTX2_FLAG_TX_PAUSE_ENABLED);
280 req->set = 1;
281
282 err = otx2_sync_mbox_msg(&pfvf->mbox);
283 unlock:
284 mutex_unlock(&pfvf->mbox.lock);
285 return err;
286 }
287 EXPORT_SYMBOL(otx2_config_pause_frm);
288
otx2_set_flowkey_cfg(struct otx2_nic * pfvf)289 int otx2_set_flowkey_cfg(struct otx2_nic *pfvf)
290 {
291 struct otx2_rss_info *rss = &pfvf->hw.rss_info;
292 struct nix_rss_flowkey_cfg_rsp *rsp;
293 struct nix_rss_flowkey_cfg *req;
294 int err;
295
296 mutex_lock(&pfvf->mbox.lock);
297 req = otx2_mbox_alloc_msg_nix_rss_flowkey_cfg(&pfvf->mbox);
298 if (!req) {
299 mutex_unlock(&pfvf->mbox.lock);
300 return -ENOMEM;
301 }
302 req->mcam_index = -1; /* Default or reserved index */
303 req->flowkey_cfg = rss->flowkey_cfg;
304 req->group = DEFAULT_RSS_CONTEXT_GROUP;
305
306 err = otx2_sync_mbox_msg(&pfvf->mbox);
307 if (err)
308 goto fail;
309
310 rsp = (struct nix_rss_flowkey_cfg_rsp *)
311 otx2_mbox_get_rsp(&pfvf->mbox.mbox, 0, &req->hdr);
312 if (IS_ERR(rsp)) {
313 err = PTR_ERR(rsp);
314 goto fail;
315 }
316
317 pfvf->hw.flowkey_alg_idx = rsp->alg_idx;
318 fail:
319 mutex_unlock(&pfvf->mbox.lock);
320 return err;
321 }
322
otx2_set_rss_table(struct otx2_nic * pfvf,int ctx_id,const u32 * ind_tbl)323 int otx2_set_rss_table(struct otx2_nic *pfvf, int ctx_id, const u32 *ind_tbl)
324 {
325 struct otx2_rss_info *rss = &pfvf->hw.rss_info;
326 const int index = rss->rss_size * ctx_id;
327 struct mbox *mbox = &pfvf->mbox;
328 struct nix_aq_enq_req *aq;
329 int idx, err;
330
331 mutex_lock(&mbox->lock);
332 ind_tbl = ind_tbl ?: rss->ind_tbl;
333 /* Get memory to put this msg */
334 for (idx = 0; idx < rss->rss_size; idx++) {
335 /* Ignore the queue if AF_XDP zero copy is enabled */
336 if (pfvf->af_xdp_zc_qidx &&
337 test_bit(ind_tbl[idx], pfvf->af_xdp_zc_qidx))
338 continue;
339
340 aq = otx2_mbox_alloc_msg_nix_aq_enq(mbox);
341 if (!aq) {
342 /* The shared memory buffer can be full.
343 * Flush it and retry
344 */
345 err = otx2_sync_mbox_msg(mbox);
346 if (err) {
347 mutex_unlock(&mbox->lock);
348 return err;
349 }
350 aq = otx2_mbox_alloc_msg_nix_aq_enq(mbox);
351 if (!aq) {
352 mutex_unlock(&mbox->lock);
353 return -ENOMEM;
354 }
355 }
356
357 aq->rss.rq = ind_tbl[idx];
358
359 /* Fill AQ info */
360 aq->qidx = index + idx;
361 aq->ctype = NIX_AQ_CTYPE_RSS;
362 aq->op = NIX_AQ_INSTOP_INIT;
363 }
364 err = otx2_sync_mbox_msg(mbox);
365 mutex_unlock(&mbox->lock);
366 return err;
367 }
368
otx2_set_rss_key(struct otx2_nic * pfvf)369 void otx2_set_rss_key(struct otx2_nic *pfvf)
370 {
371 struct otx2_rss_info *rss = &pfvf->hw.rss_info;
372 u64 *key = (u64 *)&rss->key[4];
373 int idx;
374
375 /* 352bit or 44byte key needs to be configured as below
376 * NIX_LF_RX_SECRETX0 = key<351:288>
377 * NIX_LF_RX_SECRETX1 = key<287:224>
378 * NIX_LF_RX_SECRETX2 = key<223:160>
379 * NIX_LF_RX_SECRETX3 = key<159:96>
380 * NIX_LF_RX_SECRETX4 = key<95:32>
381 * NIX_LF_RX_SECRETX5<63:32> = key<31:0>
382 */
383 otx2_write64(pfvf, NIX_LF_RX_SECRETX(5),
384 (u64)(*((u32 *)&rss->key)) << 32);
385 idx = sizeof(rss->key) / sizeof(u64);
386 while (idx > 0) {
387 idx--;
388 otx2_write64(pfvf, NIX_LF_RX_SECRETX(idx), *key++);
389 }
390 }
391
otx2_rss_init(struct otx2_nic * pfvf)392 int otx2_rss_init(struct otx2_nic *pfvf)
393 {
394 struct otx2_rss_info *rss = &pfvf->hw.rss_info;
395 int idx, ret = 0;
396
397 rss->rss_size = sizeof(*rss->ind_tbl);
398
399 /* Init RSS key if it is not setup already */
400 if (!rss->enable)
401 netdev_rss_key_fill(rss->key, sizeof(rss->key));
402 otx2_set_rss_key(pfvf);
403
404 if (!netif_is_rxfh_configured(pfvf->netdev))
405 for (idx = 0; idx < rss->rss_size; idx++)
406 rss->ind_tbl[idx] =
407 ethtool_rxfh_indir_default(idx,
408 pfvf->hw.rx_queues);
409
410 ret = otx2_set_rss_table(pfvf, DEFAULT_RSS_CONTEXT_GROUP, NULL);
411 if (ret)
412 return ret;
413
414 /* Flowkey or hash config to be used for generating flow tag */
415 rss->flowkey_cfg = rss->enable ? rss->flowkey_cfg :
416 NIX_FLOW_KEY_TYPE_IPV4 | NIX_FLOW_KEY_TYPE_IPV6 |
417 NIX_FLOW_KEY_TYPE_TCP | NIX_FLOW_KEY_TYPE_UDP |
418 NIX_FLOW_KEY_TYPE_SCTP | NIX_FLOW_KEY_TYPE_VLAN |
419 NIX_FLOW_KEY_TYPE_IPV4_PROTO;
420
421 ret = otx2_set_flowkey_cfg(pfvf);
422 if (ret)
423 return ret;
424
425 rss->enable = true;
426 return 0;
427 }
428
429 /* Setup UDP segmentation algorithm in HW */
otx2_setup_udp_segmentation(struct nix_lso_format_cfg * lso,bool v4)430 static void otx2_setup_udp_segmentation(struct nix_lso_format_cfg *lso, bool v4)
431 {
432 struct nix_lso_format *field;
433
434 field = (struct nix_lso_format *)&lso->fields[0];
435 lso->field_mask = GENMASK(18, 0);
436
437 /* IP's Length field */
438 field->layer = NIX_TXLAYER_OL3;
439 /* In ipv4, length field is at offset 2 bytes, for ipv6 it's 4 */
440 field->offset = v4 ? 2 : 4;
441 field->sizem1 = 1; /* i.e 2 bytes */
442 field->alg = NIX_LSOALG_ADD_PAYLEN;
443 field++;
444
445 /* No ID field in IPv6 header */
446 if (v4) {
447 /* Increment IPID */
448 field->layer = NIX_TXLAYER_OL3;
449 field->offset = 4;
450 field->sizem1 = 1; /* i.e 2 bytes */
451 field->alg = NIX_LSOALG_ADD_SEGNUM;
452 field++;
453 }
454
455 /* Update length in UDP header */
456 field->layer = NIX_TXLAYER_OL4;
457 field->offset = 4;
458 field->sizem1 = 1;
459 field->alg = NIX_LSOALG_ADD_PAYLEN;
460 }
461
462 /* Setup segmentation algorithms in HW and retrieve algorithm index */
otx2_setup_segmentation(struct otx2_nic * pfvf)463 void otx2_setup_segmentation(struct otx2_nic *pfvf)
464 {
465 struct nix_lso_format_cfg_rsp *rsp;
466 struct nix_lso_format_cfg *lso;
467 struct otx2_hw *hw = &pfvf->hw;
468 int err;
469
470 mutex_lock(&pfvf->mbox.lock);
471
472 /* UDPv4 segmentation */
473 lso = otx2_mbox_alloc_msg_nix_lso_format_cfg(&pfvf->mbox);
474 if (!lso)
475 goto fail;
476
477 /* Setup UDP/IP header fields that HW should update per segment */
478 otx2_setup_udp_segmentation(lso, true);
479
480 err = otx2_sync_mbox_msg(&pfvf->mbox);
481 if (err)
482 goto fail;
483
484 rsp = (struct nix_lso_format_cfg_rsp *)
485 otx2_mbox_get_rsp(&pfvf->mbox.mbox, 0, &lso->hdr);
486 if (IS_ERR(rsp))
487 goto fail;
488
489 hw->lso_udpv4_idx = rsp->lso_format_idx;
490
491 /* UDPv6 segmentation */
492 lso = otx2_mbox_alloc_msg_nix_lso_format_cfg(&pfvf->mbox);
493 if (!lso)
494 goto fail;
495
496 /* Setup UDP/IP header fields that HW should update per segment */
497 otx2_setup_udp_segmentation(lso, false);
498
499 err = otx2_sync_mbox_msg(&pfvf->mbox);
500 if (err)
501 goto fail;
502
503 rsp = (struct nix_lso_format_cfg_rsp *)
504 otx2_mbox_get_rsp(&pfvf->mbox.mbox, 0, &lso->hdr);
505 if (IS_ERR(rsp))
506 goto fail;
507
508 hw->lso_udpv6_idx = rsp->lso_format_idx;
509 mutex_unlock(&pfvf->mbox.lock);
510 return;
511 fail:
512 mutex_unlock(&pfvf->mbox.lock);
513 netdev_info(pfvf->netdev,
514 "Failed to get LSO index for UDP GSO offload, disabling\n");
515 pfvf->netdev->hw_features &= ~NETIF_F_GSO_UDP_L4;
516 }
517
otx2_config_irq_coalescing(struct otx2_nic * pfvf,int qidx)518 void otx2_config_irq_coalescing(struct otx2_nic *pfvf, int qidx)
519 {
520 /* Configure CQE interrupt coalescing parameters
521 *
522 * HW triggers an irq when ECOUNT > cq_ecount_wait, hence
523 * set 1 less than cq_ecount_wait. And cq_time_wait is in
524 * usecs, convert that to 100ns count.
525 */
526 otx2_write64(pfvf, NIX_LF_CINTX_WAIT(qidx),
527 ((u64)(pfvf->hw.cq_time_wait * 10) << 48) |
528 ((u64)pfvf->hw.cq_qcount_wait << 32) |
529 (pfvf->hw.cq_ecount_wait - 1));
530 }
531
otx2_alloc_pool_buf(struct otx2_nic * pfvf,struct otx2_pool * pool,dma_addr_t * dma)532 static int otx2_alloc_pool_buf(struct otx2_nic *pfvf, struct otx2_pool *pool,
533 dma_addr_t *dma)
534 {
535 unsigned int offset = 0;
536 struct page *page;
537 size_t sz;
538
539 sz = SKB_DATA_ALIGN(pool->rbsize);
540 sz = ALIGN(sz, OTX2_ALIGN);
541
542 page = page_pool_alloc_frag(pool->page_pool, &offset, sz, GFP_ATOMIC);
543 if (unlikely(!page))
544 return -ENOMEM;
545
546 *dma = page_pool_get_dma_addr(page) + offset;
547 return 0;
548 }
549
__otx2_alloc_rbuf(struct otx2_nic * pfvf,struct otx2_pool * pool,dma_addr_t * dma,int qidx,int idx)550 static int __otx2_alloc_rbuf(struct otx2_nic *pfvf, struct otx2_pool *pool,
551 dma_addr_t *dma, int qidx, int idx)
552 {
553 u8 *buf;
554
555 if (pool->xsk_pool)
556 return otx2_xsk_pool_alloc_buf(pfvf, pool, dma, idx);
557
558 if (pool->page_pool)
559 return otx2_alloc_pool_buf(pfvf, pool, dma);
560
561 buf = napi_alloc_frag_align(pool->rbsize, OTX2_ALIGN);
562 if (unlikely(!buf))
563 return -ENOMEM;
564
565 *dma = dma_map_single_attrs(pfvf->dev, buf, pool->rbsize,
566 DMA_FROM_DEVICE, DMA_ATTR_SKIP_CPU_SYNC);
567 if (unlikely(dma_mapping_error(pfvf->dev, *dma))) {
568 page_frag_free(buf);
569 return -ENOMEM;
570 }
571
572 return 0;
573 }
574
otx2_alloc_rbuf(struct otx2_nic * pfvf,struct otx2_pool * pool,dma_addr_t * dma,int qidx,int idx)575 int otx2_alloc_rbuf(struct otx2_nic *pfvf, struct otx2_pool *pool,
576 dma_addr_t *dma, int qidx, int idx)
577 {
578 int ret;
579
580 local_bh_disable();
581 ret = __otx2_alloc_rbuf(pfvf, pool, dma, qidx, idx);
582 local_bh_enable();
583 return ret;
584 }
585
otx2_alloc_buffer(struct otx2_nic * pfvf,struct otx2_cq_queue * cq,dma_addr_t * dma)586 int otx2_alloc_buffer(struct otx2_nic *pfvf, struct otx2_cq_queue *cq,
587 dma_addr_t *dma)
588 {
589 if (unlikely(__otx2_alloc_rbuf(pfvf, cq->rbpool, dma,
590 cq->cq_idx, cq->pool_ptrs - 1)))
591 return -ENOMEM;
592 return 0;
593 }
594
otx2_tx_timeout(struct net_device * netdev,unsigned int txq)595 void otx2_tx_timeout(struct net_device *netdev, unsigned int txq)
596 {
597 struct otx2_nic *pfvf = netdev_priv(netdev);
598
599 schedule_work(&pfvf->reset_task);
600 }
601 EXPORT_SYMBOL(otx2_tx_timeout);
602
otx2_get_mac_from_af(struct net_device * netdev)603 void otx2_get_mac_from_af(struct net_device *netdev)
604 {
605 struct otx2_nic *pfvf = netdev_priv(netdev);
606 int err;
607
608 err = otx2_hw_get_mac_addr(pfvf, netdev);
609 if (err)
610 dev_warn(pfvf->dev, "Failed to read mac from hardware\n");
611
612 /* If AF doesn't provide a valid MAC, generate a random one */
613 if (!is_valid_ether_addr(netdev->dev_addr))
614 eth_hw_addr_random(netdev);
615 }
616 EXPORT_SYMBOL(otx2_get_mac_from_af);
617
otx2_txschq_config(struct otx2_nic * pfvf,int lvl,int prio,bool txschq_for_pfc)618 int otx2_txschq_config(struct otx2_nic *pfvf, int lvl, int prio, bool txschq_for_pfc)
619 {
620 u16 (*schq_list)[MAX_TXSCHQ_PER_FUNC];
621 struct otx2_hw *hw = &pfvf->hw;
622 struct nix_txschq_config *req;
623 u64 schq, parent;
624 u64 dwrr_val;
625
626 dwrr_val = mtu_to_dwrr_weight(pfvf, pfvf->tx_max_pktlen);
627
628 req = otx2_mbox_alloc_msg_nix_txschq_cfg(&pfvf->mbox);
629 if (!req)
630 return -ENOMEM;
631
632 req->lvl = lvl;
633 req->num_regs = 1;
634
635 schq_list = hw->txschq_list;
636 #ifdef CONFIG_DCB
637 if (txschq_for_pfc)
638 schq_list = pfvf->pfc_schq_list;
639 #endif
640
641 schq = schq_list[lvl][prio];
642 /* Set topology e.t.c configuration */
643 if (lvl == NIX_TXSCH_LVL_SMQ) {
644 req->reg[0] = NIX_AF_SMQX_CFG(schq);
645 req->regval[0] = ((u64)pfvf->tx_max_pktlen << 8) | OTX2_MIN_MTU;
646 req->regval[0] |= (0x20ULL << 51) | (0x80ULL << 39) |
647 (0x2ULL << 36);
648 /* Set link type for DWRR MTU selection on CN10K silicons */
649 if (!is_dev_otx2(pfvf->pdev))
650 req->regval[0] |= FIELD_PREP(GENMASK_ULL(58, 57),
651 (u64)hw->smq_link_type);
652 req->num_regs++;
653 /* MDQ config */
654 parent = schq_list[NIX_TXSCH_LVL_TL4][prio];
655 req->reg[1] = NIX_AF_MDQX_PARENT(schq);
656 req->regval[1] = parent << 16;
657 req->num_regs++;
658 /* Set DWRR quantum */
659 req->reg[2] = NIX_AF_MDQX_SCHEDULE(schq);
660 req->regval[2] = dwrr_val;
661 } else if (lvl == NIX_TXSCH_LVL_TL4) {
662 int sdp_chan = hw->tx_chan_base + prio;
663
664 if (is_otx2_sdp_rep(pfvf->pdev))
665 prio = 0;
666 parent = schq_list[NIX_TXSCH_LVL_TL3][prio];
667 req->reg[0] = NIX_AF_TL4X_PARENT(schq);
668 req->regval[0] = (u64)parent << 16;
669 req->num_regs++;
670 req->reg[1] = NIX_AF_TL4X_SCHEDULE(schq);
671 req->regval[1] = dwrr_val;
672 if (is_otx2_sdp_rep(pfvf->pdev)) {
673 req->num_regs++;
674 req->reg[2] = NIX_AF_TL4X_SDP_LINK_CFG(schq);
675 req->regval[2] = BIT_ULL(12) | BIT_ULL(13) |
676 (sdp_chan & 0xff);
677 }
678 } else if (lvl == NIX_TXSCH_LVL_TL3) {
679 parent = schq_list[NIX_TXSCH_LVL_TL2][prio];
680 req->reg[0] = NIX_AF_TL3X_PARENT(schq);
681 req->regval[0] = (u64)parent << 16;
682 req->num_regs++;
683 req->reg[1] = NIX_AF_TL3X_SCHEDULE(schq);
684 req->regval[1] = dwrr_val;
685 if (lvl == hw->txschq_link_cfg_lvl &&
686 !is_otx2_sdp_rep(pfvf->pdev)) {
687 req->num_regs++;
688 req->reg[2] = NIX_AF_TL3_TL2X_LINKX_CFG(schq, hw->tx_link);
689 /* Enable this queue and backpressure
690 * and set relative channel
691 */
692 req->regval[2] = BIT_ULL(13) | BIT_ULL(12) | prio;
693 }
694 } else if (lvl == NIX_TXSCH_LVL_TL2) {
695 parent = schq_list[NIX_TXSCH_LVL_TL1][prio];
696 req->reg[0] = NIX_AF_TL2X_PARENT(schq);
697 req->regval[0] = (u64)parent << 16;
698
699 req->num_regs++;
700 req->reg[1] = NIX_AF_TL2X_SCHEDULE(schq);
701 req->regval[1] = (u64)hw->txschq_aggr_lvl_rr_prio << 24 | dwrr_val;
702
703 if (lvl == hw->txschq_link_cfg_lvl &&
704 !is_otx2_sdp_rep(pfvf->pdev)) {
705 req->num_regs++;
706 req->reg[2] = NIX_AF_TL3_TL2X_LINKX_CFG(schq, hw->tx_link);
707 /* Enable this queue and backpressure
708 * and set relative channel
709 */
710 req->regval[2] = BIT_ULL(13) | BIT_ULL(12) | prio;
711 }
712 } else if (lvl == NIX_TXSCH_LVL_TL1) {
713 /* Default config for TL1.
714 * For VF this is always ignored.
715 */
716
717 /* On CN10K, if RR_WEIGHT is greater than 16384, HW will
718 * clip it to 16384, so configuring a 24bit max value
719 * will work on both OTx2 and CN10K.
720 */
721 req->reg[0] = NIX_AF_TL1X_SCHEDULE(schq);
722 req->regval[0] = TXSCH_TL1_DFLT_RR_QTM;
723
724 req->num_regs++;
725 req->reg[1] = NIX_AF_TL1X_TOPOLOGY(schq);
726 req->regval[1] = hw->txschq_aggr_lvl_rr_prio << 1;
727
728 req->num_regs++;
729 req->reg[2] = NIX_AF_TL1X_CIR(schq);
730 req->regval[2] = 0;
731 }
732
733 return otx2_sync_mbox_msg(&pfvf->mbox);
734 }
735 EXPORT_SYMBOL(otx2_txschq_config);
736
otx2_smq_flush(struct otx2_nic * pfvf,int smq)737 int otx2_smq_flush(struct otx2_nic *pfvf, int smq)
738 {
739 struct nix_txschq_config *req;
740 int rc;
741
742 mutex_lock(&pfvf->mbox.lock);
743
744 req = otx2_mbox_alloc_msg_nix_txschq_cfg(&pfvf->mbox);
745 if (!req) {
746 mutex_unlock(&pfvf->mbox.lock);
747 return -ENOMEM;
748 }
749
750 req->lvl = NIX_TXSCH_LVL_SMQ;
751 req->reg[0] = NIX_AF_SMQX_CFG(smq);
752 req->regval[0] |= BIT_ULL(49);
753 req->num_regs++;
754
755 rc = otx2_sync_mbox_msg(&pfvf->mbox);
756 mutex_unlock(&pfvf->mbox.lock);
757 return rc;
758 }
759 EXPORT_SYMBOL(otx2_smq_flush);
760
otx2_txsch_alloc(struct otx2_nic * pfvf)761 int otx2_txsch_alloc(struct otx2_nic *pfvf)
762 {
763 int chan_cnt = pfvf->hw.tx_chan_cnt;
764 struct nix_txsch_alloc_req *req;
765 struct nix_txsch_alloc_rsp *rsp;
766 int lvl, schq, rc;
767
768 /* Get memory to put this msg */
769 req = otx2_mbox_alloc_msg_nix_txsch_alloc(&pfvf->mbox);
770 if (!req)
771 return -ENOMEM;
772
773 /* Request one schq per level */
774 for (lvl = 0; lvl < NIX_TXSCH_LVL_CNT; lvl++)
775 req->schq[lvl] = 1;
776
777 if (is_otx2_sdp_rep(pfvf->pdev) && chan_cnt > 1) {
778 req->schq[NIX_TXSCH_LVL_SMQ] = chan_cnt;
779 req->schq[NIX_TXSCH_LVL_TL4] = chan_cnt;
780 }
781
782 rc = otx2_sync_mbox_msg(&pfvf->mbox);
783 if (rc)
784 return rc;
785
786 rsp = (struct nix_txsch_alloc_rsp *)
787 otx2_mbox_get_rsp(&pfvf->mbox.mbox, 0, &req->hdr);
788 if (IS_ERR(rsp))
789 return PTR_ERR(rsp);
790
791 /* Setup transmit scheduler list */
792 for (lvl = 0; lvl < NIX_TXSCH_LVL_CNT; lvl++) {
793 pfvf->hw.txschq_cnt[lvl] = rsp->schq[lvl];
794 for (schq = 0; schq < rsp->schq[lvl]; schq++)
795 pfvf->hw.txschq_list[lvl][schq] =
796 rsp->schq_list[lvl][schq];
797 }
798
799 pfvf->hw.txschq_link_cfg_lvl = rsp->link_cfg_lvl;
800 pfvf->hw.txschq_aggr_lvl_rr_prio = rsp->aggr_lvl_rr_prio;
801
802 return 0;
803 }
804
otx2_txschq_free_one(struct otx2_nic * pfvf,u16 lvl,u16 schq)805 void otx2_txschq_free_one(struct otx2_nic *pfvf, u16 lvl, u16 schq)
806 {
807 struct nix_txsch_free_req *free_req;
808 int err;
809
810 mutex_lock(&pfvf->mbox.lock);
811
812 free_req = otx2_mbox_alloc_msg_nix_txsch_free(&pfvf->mbox);
813 if (!free_req) {
814 mutex_unlock(&pfvf->mbox.lock);
815 netdev_err(pfvf->netdev,
816 "Failed alloc txschq free req\n");
817 return;
818 }
819
820 free_req->schq_lvl = lvl;
821 free_req->schq = schq;
822
823 err = otx2_sync_mbox_msg(&pfvf->mbox);
824 if (err) {
825 netdev_err(pfvf->netdev,
826 "Failed stop txschq %d at level %d\n", schq, lvl);
827 }
828
829 mutex_unlock(&pfvf->mbox.lock);
830 }
831 EXPORT_SYMBOL(otx2_txschq_free_one);
832
otx2_txschq_stop(struct otx2_nic * pfvf)833 void otx2_txschq_stop(struct otx2_nic *pfvf)
834 {
835 int lvl, schq, idx;
836
837 /* free non QOS TLx nodes */
838 for (lvl = 0; lvl < NIX_TXSCH_LVL_CNT; lvl++) {
839 for (idx = 0; idx < pfvf->hw.txschq_cnt[lvl]; idx++) {
840 otx2_txschq_free_one(pfvf, lvl,
841 pfvf->hw.txschq_list[lvl][idx]);
842 }
843 }
844
845 /* Clear the txschq list */
846 for (lvl = 0; lvl < NIX_TXSCH_LVL_CNT; lvl++) {
847 for (schq = 0; schq < MAX_TXSCHQ_PER_FUNC; schq++)
848 pfvf->hw.txschq_list[lvl][schq] = 0;
849 }
850
851 }
852
otx2_sqb_flush(struct otx2_nic * pfvf)853 void otx2_sqb_flush(struct otx2_nic *pfvf)
854 {
855 int qidx, sqe_tail, sqe_head;
856 struct otx2_snd_queue *sq;
857 void __iomem *ptr;
858 u64 incr, val;
859
860 ptr = otx2_get_regaddr(pfvf, NIX_LF_SQ_OP_STATUS);
861 for (qidx = 0; qidx < otx2_get_total_tx_queues(pfvf); qidx++) {
862 sq = &pfvf->qset.sq[qidx];
863 if (!sq->sqb_ptrs)
864 continue;
865
866 incr = (u64)qidx << 32;
867 val = otx2_atomic64_add(incr, ptr);
868 sqe_head = (val >> 20) & 0x3F;
869 sqe_tail = (val >> 28) & 0x3F;
870 if (sqe_head != sqe_tail)
871 usleep_range(50, 60);
872 }
873 }
874
875 /* RED and drop levels of CQ on packet reception.
876 * For CQ level is measure of emptiness ( 0x0 = full, 255 = empty).
877 */
878 #define RQ_PASS_LVL_CQ(skid, qsize) ((((skid) + 16) * 256) / (qsize))
879 #define RQ_DROP_LVL_CQ(skid, qsize) (((skid) * 256) / (qsize))
880
881 /* RED and drop levels of AURA for packet reception.
882 * For AURA level is measure of fullness (0x0 = empty, 255 = full).
883 * Eg: For RQ length 1K, for pass/drop level 204/230.
884 * RED accepts pkts if free pointers > 102 & <= 205.
885 * Drops pkts if free pointers < 102.
886 */
887 #define RQ_BP_LVL_AURA (255 - ((85 * 256) / 100)) /* BP when 85% is full */
888 #define RQ_PASS_LVL_AURA (255 - ((95 * 256) / 100)) /* RED when 95% is full */
889 #define RQ_DROP_LVL_AURA (255 - ((99 * 256) / 100)) /* Drop when 99% is full */
890
otx2_rq_init(struct otx2_nic * pfvf,u16 qidx,u16 lpb_aura)891 int otx2_rq_init(struct otx2_nic *pfvf, u16 qidx, u16 lpb_aura)
892 {
893 struct otx2_qset *qset = &pfvf->qset;
894 struct nix_aq_enq_req *aq;
895
896 /* Get memory to put this msg */
897 aq = otx2_mbox_alloc_msg_nix_aq_enq(&pfvf->mbox);
898 if (!aq)
899 return -ENOMEM;
900
901 aq->rq.cq = qidx;
902 aq->rq.ena = 1;
903 aq->rq.pb_caching = 1;
904 aq->rq.lpb_aura = lpb_aura; /* Use large packet buffer aura */
905 aq->rq.lpb_sizem1 = (DMA_BUFFER_LEN(pfvf->rbsize) / 8) - 1;
906 aq->rq.xqe_imm_size = 0; /* Copying of packet to CQE not needed */
907 aq->rq.flow_tagw = 32; /* Copy full 32bit flow_tag to CQE header */
908 aq->rq.qint_idx = 0;
909 aq->rq.lpb_drop_ena = 1; /* Enable RED dropping for AURA */
910 aq->rq.xqe_drop_ena = 1; /* Enable RED dropping for CQ/SSO */
911 aq->rq.xqe_pass = RQ_PASS_LVL_CQ(pfvf->hw.rq_skid, qset->rqe_cnt);
912 aq->rq.xqe_drop = RQ_DROP_LVL_CQ(pfvf->hw.rq_skid, qset->rqe_cnt);
913 aq->rq.lpb_aura_pass = RQ_PASS_LVL_AURA;
914 aq->rq.lpb_aura_drop = RQ_DROP_LVL_AURA;
915
916 /* Fill AQ info */
917 aq->qidx = qidx;
918 aq->ctype = NIX_AQ_CTYPE_RQ;
919 aq->op = NIX_AQ_INSTOP_INIT;
920
921 return otx2_sync_mbox_msg(&pfvf->mbox);
922 }
923
otx2_sq_aq_init(void * dev,u16 qidx,u8 chan_offset,u16 sqb_aura)924 int otx2_sq_aq_init(void *dev, u16 qidx, u8 chan_offset, u16 sqb_aura)
925 {
926 struct otx2_nic *pfvf = dev;
927 struct otx2_snd_queue *sq;
928 struct nix_aq_enq_req *aq;
929
930 sq = &pfvf->qset.sq[qidx];
931 sq->lmt_addr = (__force u64 *)(pfvf->reg_base + LMT_LF_LMTLINEX(qidx));
932 /* Get memory to put this msg */
933 aq = otx2_mbox_alloc_msg_nix_aq_enq(&pfvf->mbox);
934 if (!aq)
935 return -ENOMEM;
936
937 aq->sq.cq = pfvf->hw.rx_queues + qidx;
938 aq->sq.max_sqe_size = NIX_MAXSQESZ_W16; /* 128 byte */
939 aq->sq.cq_ena = 1;
940 aq->sq.ena = 1;
941 aq->sq.smq = otx2_get_smq_idx(pfvf, qidx);
942 aq->sq.smq_rr_quantum = mtu_to_dwrr_weight(pfvf, pfvf->tx_max_pktlen);
943 aq->sq.default_chan = pfvf->hw.tx_chan_base + chan_offset;
944 aq->sq.sqe_stype = NIX_STYPE_STF; /* Cache SQB */
945 aq->sq.sqb_aura = sqb_aura;
946 aq->sq.sq_int_ena = NIX_SQINT_BITS;
947 aq->sq.qint_idx = 0;
948 /* Due pipelining impact minimum 2000 unused SQ CQE's
949 * need to maintain to avoid CQ overflow.
950 */
951 aq->sq.cq_limit = ((SEND_CQ_SKID * 256) / (pfvf->qset.sqe_cnt));
952
953 /* Fill AQ info */
954 aq->qidx = qidx;
955 aq->ctype = NIX_AQ_CTYPE_SQ;
956 aq->op = NIX_AQ_INSTOP_INIT;
957
958 return otx2_sync_mbox_msg(&pfvf->mbox);
959 }
960
otx2_sq_init(struct otx2_nic * pfvf,u16 qidx,u16 sqb_aura)961 int otx2_sq_init(struct otx2_nic *pfvf, u16 qidx, u16 sqb_aura)
962 {
963 struct otx2_qset *qset = &pfvf->qset;
964 struct otx2_snd_queue *sq;
965 struct otx2_pool *pool;
966 u8 chan_offset;
967 int err;
968
969 pool = &pfvf->qset.pool[sqb_aura];
970 sq = &qset->sq[qidx];
971 sq->sqe_size = NIX_SQESZ_W16 ? 64 : 128;
972 sq->sqe_cnt = qset->sqe_cnt;
973
974 err = qmem_alloc(pfvf->dev, &sq->sqe, 1, sq->sqe_size);
975 if (err)
976 return err;
977
978 /* Allocate memory for NIX SQE (which includes NIX SG) and CPT SG.
979 * SG of NIX and CPT are same in size. Allocate memory for CPT SG
980 * same as NIX SQE for base address alignment.
981 * Layout of a NIX SQE and CPT SG entry:
982 * -----------------------------
983 * | CPT Scatter Gather |
984 * | (SQE SIZE) |
985 * | |
986 * -----------------------------
987 * | NIX SQE |
988 * | (SQE SIZE) |
989 * | |
990 * -----------------------------
991 */
992 err = qmem_alloc(pfvf->dev, &sq->sqe_ring, qset->sqe_cnt,
993 sq->sqe_size * 2);
994 if (err)
995 return err;
996
997 err = qmem_alloc(pfvf->dev, &sq->cpt_resp, qset->sqe_cnt, 64);
998 if (err)
999 return err;
1000
1001 if (qidx < pfvf->hw.tx_queues) {
1002 err = qmem_alloc(pfvf->dev, &sq->tso_hdrs, qset->sqe_cnt,
1003 TSO_HEADER_SIZE);
1004 if (err)
1005 return err;
1006 }
1007
1008 sq->sqe_base = sq->sqe->base;
1009 sq->sg = kzalloc_objs(struct sg_list, qset->sqe_cnt);
1010 if (!sq->sg)
1011 return -ENOMEM;
1012
1013 if (pfvf->ptp && qidx < pfvf->hw.tx_queues) {
1014 err = qmem_alloc(pfvf->dev, &sq->timestamps, qset->sqe_cnt,
1015 sizeof(*sq->timestamps));
1016 if (err) {
1017 kfree(sq->sg);
1018 sq->sg = NULL;
1019 return err;
1020 }
1021 }
1022
1023 sq->head = 0;
1024 sq->cons_head = 0;
1025 sq->sqe_per_sqb = (pfvf->hw.sqb_size / sq->sqe_size) - 1;
1026 sq->num_sqbs = (qset->sqe_cnt + sq->sqe_per_sqb) / sq->sqe_per_sqb;
1027 /* Set SQE threshold to 10% of total SQEs */
1028 sq->sqe_thresh = ((sq->num_sqbs * sq->sqe_per_sqb) * 10) / 100;
1029 sq->aura_id = sqb_aura;
1030 sq->aura_fc_addr = pool->fc_addr->base;
1031 sq->io_addr = (__force u64)otx2_get_regaddr(pfvf, NIX_LF_OP_SENDX(0));
1032
1033 sq->stats.bytes = 0;
1034 sq->stats.pkts = 0;
1035 /* Attach XSK_BUFF_POOL to XDP queue */
1036 if (qidx > pfvf->hw.xdp_queues)
1037 otx2_attach_xsk_buff(pfvf, sq, (qidx - pfvf->hw.xdp_queues));
1038
1039 chan_offset = qidx % pfvf->hw.tx_chan_cnt;
1040 err = pfvf->hw_ops->sq_aq_init(pfvf, qidx, chan_offset, sqb_aura);
1041 if (err) {
1042 kfree(sq->sg);
1043 sq->sg = NULL;
1044 return err;
1045 }
1046
1047 return 0;
1048
1049 }
1050
otx2_cq_init(struct otx2_nic * pfvf,u16 qidx)1051 int otx2_cq_init(struct otx2_nic *pfvf, u16 qidx)
1052 {
1053 struct otx2_qset *qset = &pfvf->qset;
1054 int err, pool_id, non_xdp_queues;
1055 struct nix_aq_enq_req *aq;
1056 struct otx2_cq_queue *cq;
1057 struct otx2_pool *pool;
1058
1059 cq = &qset->cq[qidx];
1060 cq->cq_idx = qidx;
1061 non_xdp_queues = pfvf->hw.rx_queues + pfvf->hw.tx_queues;
1062 if (qidx < pfvf->hw.rx_queues) {
1063 cq->cq_type = CQ_RX;
1064 cq->cint_idx = qidx;
1065 cq->cqe_cnt = qset->rqe_cnt;
1066 if (pfvf->xdp_prog) {
1067 xdp_rxq_info_reg(&cq->xdp_rxq, pfvf->netdev, qidx, 0);
1068 pool = &qset->pool[qidx];
1069 if (pool->xsk_pool) {
1070 xdp_rxq_info_reg_mem_model(&cq->xdp_rxq,
1071 MEM_TYPE_XSK_BUFF_POOL,
1072 NULL);
1073 xsk_pool_set_rxq_info(pool->xsk_pool, &cq->xdp_rxq);
1074 } else if (pool->page_pool) {
1075 xdp_rxq_info_reg_mem_model(&cq->xdp_rxq,
1076 MEM_TYPE_PAGE_POOL,
1077 pool->page_pool);
1078 }
1079 }
1080 } else if (qidx < non_xdp_queues) {
1081 cq->cq_type = CQ_TX;
1082 cq->cint_idx = qidx - pfvf->hw.rx_queues;
1083 cq->cqe_cnt = qset->sqe_cnt;
1084 } else {
1085 if (pfvf->hw.xdp_queues &&
1086 qidx < non_xdp_queues + pfvf->hw.xdp_queues) {
1087 cq->cq_type = CQ_XDP;
1088 cq->cint_idx = qidx - non_xdp_queues;
1089 cq->cqe_cnt = qset->sqe_cnt;
1090 } else {
1091 cq->cq_type = CQ_QOS;
1092 cq->cint_idx = qidx - non_xdp_queues -
1093 pfvf->hw.xdp_queues;
1094 cq->cqe_cnt = qset->sqe_cnt;
1095 }
1096 }
1097 cq->cqe_size = pfvf->qset.xqe_size;
1098
1099 /* Allocate memory for CQEs */
1100 err = qmem_alloc(pfvf->dev, &cq->cqe, cq->cqe_cnt, cq->cqe_size);
1101 if (err)
1102 return err;
1103
1104 /* Save CQE CPU base for faster reference */
1105 cq->cqe_base = cq->cqe->base;
1106 /* In case where all RQs auras point to single pool,
1107 * all CQs receive buffer pool also point to same pool.
1108 */
1109 pool_id = ((cq->cq_type == CQ_RX) &&
1110 (pfvf->hw.rqpool_cnt != pfvf->hw.rx_queues)) ? 0 : qidx;
1111 cq->rbpool = &qset->pool[pool_id];
1112 cq->refill_task_sched = false;
1113
1114 /* Get memory to put this msg */
1115 aq = otx2_mbox_alloc_msg_nix_aq_enq(&pfvf->mbox);
1116 if (!aq)
1117 return -ENOMEM;
1118
1119 aq->cq.ena = 1;
1120 aq->cq.qsize = Q_SIZE(cq->cqe_cnt, 4);
1121 aq->cq.caching = 1;
1122 aq->cq.base = cq->cqe->iova;
1123 aq->cq.cint_idx = cq->cint_idx;
1124 aq->cq.cq_err_int_ena = NIX_CQERRINT_BITS;
1125 aq->cq.qint_idx = 0;
1126 aq->cq.avg_level = 255;
1127
1128 if (qidx < pfvf->hw.rx_queues) {
1129 aq->cq.drop = RQ_DROP_LVL_CQ(pfvf->hw.rq_skid, cq->cqe_cnt);
1130 aq->cq.drop_ena = 1;
1131
1132 if (!is_otx2_lbkvf(pfvf->pdev)) {
1133 /* Enable receive CQ backpressure */
1134 aq->cq.bp_ena = 1;
1135 #ifdef CONFIG_DCB
1136 aq->cq.bpid = pfvf->bpid[pfvf->queue_to_pfc_map[qidx]];
1137 #else
1138 aq->cq.bpid = pfvf->bpid[0];
1139 #endif
1140
1141 /* Set backpressure level is same as cq pass level */
1142 aq->cq.bp = RQ_PASS_LVL_CQ(pfvf->hw.rq_skid, qset->rqe_cnt);
1143 }
1144 }
1145
1146 /* Fill AQ info */
1147 aq->qidx = qidx;
1148 aq->ctype = NIX_AQ_CTYPE_CQ;
1149 aq->op = NIX_AQ_INSTOP_INIT;
1150
1151 return otx2_sync_mbox_msg(&pfvf->mbox);
1152 }
1153
otx2_pool_refill_task(struct work_struct * work)1154 static void otx2_pool_refill_task(struct work_struct *work)
1155 {
1156 struct otx2_cq_queue *cq;
1157 struct refill_work *wrk;
1158 struct otx2_nic *pfvf;
1159 int qidx;
1160
1161 wrk = container_of(work, struct refill_work, pool_refill_work.work);
1162 pfvf = wrk->pf;
1163 qidx = wrk - pfvf->refill_wrk;
1164 cq = &pfvf->qset.cq[qidx];
1165
1166 cq->refill_task_sched = false;
1167
1168 local_bh_disable();
1169 napi_schedule(wrk->napi);
1170 local_bh_enable();
1171 }
1172
otx2_config_nix_queues(struct otx2_nic * pfvf)1173 int otx2_config_nix_queues(struct otx2_nic *pfvf)
1174 {
1175 int qidx, err;
1176
1177 /* Initialize RX queues */
1178 for (qidx = 0; qidx < pfvf->hw.rx_queues; qidx++) {
1179 u16 lpb_aura = otx2_get_pool_idx(pfvf, AURA_NIX_RQ, qidx);
1180
1181 err = otx2_rq_init(pfvf, qidx, lpb_aura);
1182 if (err)
1183 return err;
1184 }
1185
1186 /* Initialize TX queues */
1187 for (qidx = 0; qidx < pfvf->hw.non_qos_queues; qidx++) {
1188 u16 sqb_aura = otx2_get_pool_idx(pfvf, AURA_NIX_SQ, qidx);
1189
1190 err = otx2_sq_init(pfvf, qidx, sqb_aura);
1191 if (err)
1192 return err;
1193 }
1194
1195 /* Initialize completion queues */
1196 for (qidx = 0; qidx < pfvf->qset.cq_cnt; qidx++) {
1197 err = otx2_cq_init(pfvf, qidx);
1198 if (err)
1199 return err;
1200 }
1201
1202 pfvf->cq_op_addr = (__force u64 *)otx2_get_regaddr(pfvf,
1203 NIX_LF_CQ_OP_STATUS);
1204
1205 /* Initialize work queue for receive buffer refill */
1206 pfvf->refill_wrk = devm_kcalloc(pfvf->dev, pfvf->qset.cq_cnt,
1207 sizeof(struct refill_work), GFP_KERNEL);
1208 if (!pfvf->refill_wrk)
1209 return -ENOMEM;
1210
1211 for (qidx = 0; qidx < pfvf->qset.cq_cnt; qidx++) {
1212 pfvf->refill_wrk[qidx].pf = pfvf;
1213 INIT_DELAYED_WORK(&pfvf->refill_wrk[qidx].pool_refill_work,
1214 otx2_pool_refill_task);
1215 }
1216 return 0;
1217 }
1218
otx2_config_nix(struct otx2_nic * pfvf)1219 int otx2_config_nix(struct otx2_nic *pfvf)
1220 {
1221 struct nix_lf_alloc_req *nixlf;
1222 struct nix_lf_alloc_rsp *rsp;
1223 int err;
1224
1225 pfvf->qset.xqe_size = pfvf->hw.xqe_size;
1226
1227 /* Get memory to put this msg */
1228 nixlf = otx2_mbox_alloc_msg_nix_lf_alloc(&pfvf->mbox);
1229 if (!nixlf)
1230 return -ENOMEM;
1231
1232 /* Set RQ/SQ/CQ counts */
1233 nixlf->rq_cnt = pfvf->hw.rx_queues;
1234 nixlf->sq_cnt = otx2_get_total_tx_queues(pfvf);
1235 nixlf->cq_cnt = pfvf->qset.cq_cnt;
1236 nixlf->rss_sz = MAX_RSS_INDIR_TBL_SIZE;
1237 nixlf->rss_grps = MAX_RSS_GROUPS;
1238 nixlf->xqe_sz = pfvf->hw.xqe_size == 128 ? NIX_XQESZ_W16 : NIX_XQESZ_W64;
1239 /* We don't know absolute NPA LF idx attached.
1240 * AF will replace 'RVU_DEFAULT_PF_FUNC' with
1241 * NPA LF attached to this RVU PF/VF.
1242 */
1243 nixlf->npa_func = RVU_DEFAULT_PF_FUNC;
1244 /* Disable alignment pad, enable L2 length check,
1245 * enable L4 TCP/UDP checksum verification.
1246 */
1247 nixlf->rx_cfg = BIT_ULL(33) | BIT_ULL(35) | BIT_ULL(37);
1248
1249 err = otx2_sync_mbox_msg(&pfvf->mbox);
1250 if (err)
1251 return err;
1252
1253 rsp = (struct nix_lf_alloc_rsp *)otx2_mbox_get_rsp(&pfvf->mbox.mbox, 0,
1254 &nixlf->hdr);
1255 if (IS_ERR(rsp))
1256 return PTR_ERR(rsp);
1257
1258 if (rsp->qints < 1)
1259 return -ENXIO;
1260
1261 return rsp->hdr.rc;
1262 }
1263
otx2_sq_free_sqbs(struct otx2_nic * pfvf)1264 void otx2_sq_free_sqbs(struct otx2_nic *pfvf)
1265 {
1266 struct otx2_qset *qset = &pfvf->qset;
1267 struct otx2_hw *hw = &pfvf->hw;
1268 struct otx2_snd_queue *sq;
1269 int sqb, qidx;
1270 u64 iova, pa;
1271
1272 for (qidx = 0; qidx < otx2_get_total_tx_queues(pfvf); qidx++) {
1273 sq = &qset->sq[qidx];
1274 if (!sq->sqb_ptrs)
1275 continue;
1276 for (sqb = 0; sqb < sq->sqb_count; sqb++) {
1277 if (!sq->sqb_ptrs[sqb])
1278 continue;
1279 iova = sq->sqb_ptrs[sqb];
1280 pa = otx2_iova_to_phys(pfvf->iommu_domain, iova);
1281 dma_unmap_page_attrs(pfvf->dev, iova, hw->sqb_size,
1282 DMA_FROM_DEVICE,
1283 DMA_ATTR_SKIP_CPU_SYNC);
1284 put_page(virt_to_page(phys_to_virt(pa)));
1285 }
1286 sq->sqb_count = 0;
1287 }
1288 }
1289
otx2_free_bufs(struct otx2_nic * pfvf,struct otx2_pool * pool,u64 iova,int size)1290 void otx2_free_bufs(struct otx2_nic *pfvf, struct otx2_pool *pool,
1291 u64 iova, int size)
1292 {
1293 struct page *page;
1294 u64 pa;
1295
1296 pa = otx2_iova_to_phys(pfvf->iommu_domain, iova);
1297 page = virt_to_head_page(phys_to_virt(pa));
1298 if (pool->page_pool) {
1299 page_pool_put_full_page(pool->page_pool, page, true);
1300 } else if (pool->xsk_pool) {
1301 /* Note: No way of identifying xdp_buff */
1302 } else {
1303 dma_unmap_page_attrs(pfvf->dev, iova, size,
1304 DMA_FROM_DEVICE,
1305 DMA_ATTR_SKIP_CPU_SYNC);
1306
1307 put_page(page);
1308 }
1309 }
1310
otx2_free_aura_ptr(struct otx2_nic * pfvf,int type)1311 void otx2_free_aura_ptr(struct otx2_nic *pfvf, int type)
1312 {
1313 int pool_id, pool_start = 0, pool_end = 0, size = 0;
1314 struct otx2_pool *pool;
1315 u64 iova;
1316 int idx;
1317
1318 if (type == AURA_NIX_SQ) {
1319 pool_start = otx2_get_pool_idx(pfvf, type, 0);
1320 pool_end = pool_start + pfvf->hw.sqpool_cnt;
1321 size = pfvf->hw.sqb_size;
1322 }
1323 if (type == AURA_NIX_RQ) {
1324 pool_start = otx2_get_pool_idx(pfvf, type, 0);
1325 pool_end = pfvf->hw.rqpool_cnt;
1326 size = pfvf->rbsize;
1327 }
1328
1329 /* Free SQB and RQB pointers from the aura pool */
1330 for (pool_id = pool_start; pool_id < pool_end; pool_id++) {
1331 pool = &pfvf->qset.pool[pool_id];
1332 iova = otx2_aura_allocptr(pfvf, pool_id);
1333 while (iova) {
1334 if (type == AURA_NIX_RQ)
1335 iova -= OTX2_HEAD_ROOM;
1336 otx2_free_bufs(pfvf, pool, iova, size);
1337 iova = otx2_aura_allocptr(pfvf, pool_id);
1338 }
1339
1340 for (idx = 0 ; idx < pool->xdp_cnt; idx++) {
1341 if (!pool->xdp[idx])
1342 continue;
1343
1344 xsk_buff_free(pool->xdp[idx]);
1345 }
1346 }
1347 }
1348
otx2_aura_pool_free(struct otx2_nic * pfvf)1349 void otx2_aura_pool_free(struct otx2_nic *pfvf)
1350 {
1351 struct otx2_pool *pool;
1352 int pool_id;
1353
1354 if (!pfvf->qset.pool)
1355 return;
1356
1357 for (pool_id = 0; pool_id < pfvf->hw.pool_cnt; pool_id++) {
1358 pool = &pfvf->qset.pool[pool_id];
1359 qmem_free(pfvf->dev, pool->stack);
1360 qmem_free(pfvf->dev, pool->fc_addr);
1361 page_pool_destroy(pool->page_pool);
1362 devm_kfree(pfvf->dev, pool->xdp);
1363 pool->xsk_pool = NULL;
1364 }
1365 devm_kfree(pfvf->dev, pfvf->qset.pool);
1366 pfvf->qset.pool = NULL;
1367 }
1368
otx2_aura_init(struct otx2_nic * pfvf,int aura_id,int pool_id,int numptrs)1369 int otx2_aura_init(struct otx2_nic *pfvf, int aura_id,
1370 int pool_id, int numptrs)
1371 {
1372 return pfvf->hw_ops->aura_aq_init(pfvf, aura_id, pool_id,
1373 numptrs);
1374 }
1375
otx2_aura_aq_init(struct otx2_nic * pfvf,int aura_id,int pool_id,int numptrs)1376 int otx2_aura_aq_init(struct otx2_nic *pfvf, int aura_id,
1377 int pool_id, int numptrs)
1378 {
1379 struct npa_aq_enq_req *aq;
1380 struct otx2_pool *pool;
1381 int err;
1382
1383 pool = &pfvf->qset.pool[pool_id];
1384
1385 /* Allocate memory for HW to update Aura count.
1386 * Alloc one cache line, so that it fits all FC_STYPE modes.
1387 */
1388 if (!pool->fc_addr) {
1389 err = qmem_alloc(pfvf->dev, &pool->fc_addr, 1, OTX2_ALIGN);
1390 if (err)
1391 return err;
1392 }
1393
1394 /* Initialize this aura's context via AF */
1395 aq = otx2_mbox_alloc_msg_npa_aq_enq(&pfvf->mbox);
1396 if (!aq) {
1397 /* Shared mbox memory buffer is full, flush it and retry */
1398 err = otx2_sync_mbox_msg(&pfvf->mbox);
1399 if (err)
1400 return err;
1401 aq = otx2_mbox_alloc_msg_npa_aq_enq(&pfvf->mbox);
1402 if (!aq)
1403 return -ENOMEM;
1404 }
1405
1406 aq->aura_id = aura_id;
1407 /* Will be filled by AF with correct pool context address */
1408 aq->aura.pool_addr = pool_id;
1409 aq->aura.pool_caching = 1;
1410 aq->aura.shift = ilog2(numptrs) - 8;
1411 aq->aura.count = numptrs;
1412 aq->aura.limit = numptrs;
1413 aq->aura.avg_level = 255;
1414 aq->aura.ena = 1;
1415 aq->aura.fc_ena = 1;
1416 aq->aura.fc_addr = pool->fc_addr->iova;
1417 aq->aura.fc_hyst_bits = 0; /* Store count on all updates */
1418
1419 /* Enable backpressure for RQ aura */
1420 if (aura_id < pfvf->hw.rqpool_cnt && !is_otx2_lbkvf(pfvf->pdev)) {
1421 aq->aura.bp_ena = 0;
1422 /* If NIX1 LF is attached then specify NIX1_RX.
1423 *
1424 * Below NPA_AURA_S[BP_ENA] is set according to the
1425 * NPA_BPINTF_E enumeration given as:
1426 * 0x0 + a*0x1 where 'a' is 0 for NIX0_RX and 1 for NIX1_RX so
1427 * NIX0_RX is 0x0 + 0*0x1 = 0
1428 * NIX1_RX is 0x0 + 1*0x1 = 1
1429 * But in HRM it is given that
1430 * "NPA_AURA_S[BP_ENA](w1[33:32]) - Enable aura backpressure to
1431 * NIX-RX based on [BP] level. One bit per NIX-RX; index
1432 * enumerated by NPA_BPINTF_E."
1433 */
1434 if (pfvf->nix_blkaddr == BLKADDR_NIX1)
1435 aq->aura.bp_ena = 1;
1436 #ifdef CONFIG_DCB
1437 aq->aura.nix0_bpid = pfvf->bpid[pfvf->queue_to_pfc_map[aura_id]];
1438 #else
1439 aq->aura.nix0_bpid = pfvf->bpid[0];
1440 #endif
1441
1442 /* Set backpressure level for RQ's Aura */
1443 aq->aura.bp = RQ_BP_LVL_AURA;
1444 }
1445
1446 /* Fill AQ info */
1447 aq->ctype = NPA_AQ_CTYPE_AURA;
1448 aq->op = NPA_AQ_INSTOP_INIT;
1449
1450 return 0;
1451 }
1452
otx2_pool_init(struct otx2_nic * pfvf,u16 pool_id,int stack_pages,int numptrs,int buf_size,int type)1453 int otx2_pool_init(struct otx2_nic *pfvf, u16 pool_id,
1454 int stack_pages, int numptrs, int buf_size, int type)
1455 {
1456 return pfvf->hw_ops->pool_aq_init(pfvf, pool_id, stack_pages, numptrs,
1457 buf_size, type);
1458 }
1459
otx2_pool_aq_init(struct otx2_nic * pfvf,u16 pool_id,int stack_pages,int numptrs,int buf_size,int type)1460 int otx2_pool_aq_init(struct otx2_nic *pfvf, u16 pool_id,
1461 int stack_pages, int numptrs, int buf_size, int type)
1462 {
1463 struct page_pool_params pp_params = { 0 };
1464 struct xsk_buff_pool *xsk_pool;
1465 struct npa_aq_enq_req *aq;
1466 struct otx2_pool *pool;
1467 int err;
1468
1469 pool = &pfvf->qset.pool[pool_id];
1470 /* Alloc memory for stack which is used to store buffer pointers */
1471 err = qmem_alloc(pfvf->dev, &pool->stack,
1472 stack_pages, pfvf->hw.stack_pg_bytes);
1473 if (err)
1474 return err;
1475
1476 pool->rbsize = buf_size;
1477
1478 /* Initialize this pool's context via AF */
1479 aq = otx2_mbox_alloc_msg_npa_aq_enq(&pfvf->mbox);
1480 if (!aq) {
1481 /* Shared mbox memory buffer is full, flush it and retry */
1482 err = otx2_sync_mbox_msg(&pfvf->mbox);
1483 if (err) {
1484 qmem_free(pfvf->dev, pool->stack);
1485 pool->stack = NULL;
1486 return err;
1487 }
1488 aq = otx2_mbox_alloc_msg_npa_aq_enq(&pfvf->mbox);
1489 if (!aq) {
1490 qmem_free(pfvf->dev, pool->stack);
1491 pool->stack = NULL;
1492 return -ENOMEM;
1493 }
1494 }
1495
1496 aq->aura_id = pool_id;
1497 aq->pool.stack_base = pool->stack->iova;
1498 aq->pool.stack_caching = 1;
1499 aq->pool.ena = 1;
1500 aq->pool.buf_size = buf_size / 128;
1501 aq->pool.stack_max_pages = stack_pages;
1502 aq->pool.shift = ilog2(numptrs) - 8;
1503 aq->pool.ptr_start = 0;
1504 aq->pool.ptr_end = ~0ULL;
1505
1506 /* Fill AQ info */
1507 aq->ctype = NPA_AQ_CTYPE_POOL;
1508 aq->op = NPA_AQ_INSTOP_INIT;
1509
1510 if (type != AURA_NIX_RQ)
1511 return 0;
1512
1513 if (!pfvf->af_xdp_zc_qidx ||
1514 !test_bit(pool_id, pfvf->af_xdp_zc_qidx)) {
1515 pp_params.order = get_order(buf_size);
1516 pp_params.flags = PP_FLAG_DMA_MAP;
1517 pp_params.pool_size = min(OTX2_PAGE_POOL_SZ, numptrs);
1518 pp_params.nid = NUMA_NO_NODE;
1519 pp_params.dev = pfvf->dev;
1520 pp_params.dma_dir = DMA_FROM_DEVICE;
1521 pp_params.netdev = pfvf->netdev;
1522 pool->page_pool = page_pool_create(&pp_params);
1523 if (IS_ERR(pool->page_pool)) {
1524 netdev_err(pfvf->netdev, "Creation of page pool failed\n");
1525 return PTR_ERR(pool->page_pool);
1526 }
1527 return 0;
1528 }
1529
1530 /* Set XSK pool to support AF_XDP zero-copy */
1531 xsk_pool = xsk_get_pool_from_qid(pfvf->netdev, pool_id);
1532 if (xsk_pool) {
1533 pool->xsk_pool = xsk_pool;
1534 pool->xdp_cnt = numptrs;
1535 pool->xdp = devm_kcalloc(pfvf->dev,
1536 numptrs, sizeof(struct xdp_buff *), GFP_KERNEL);
1537 if (!pool->xdp)
1538 return -ENOMEM;
1539 }
1540
1541 return 0;
1542 }
1543
otx2_sq_aura_pool_init(struct otx2_nic * pfvf)1544 int otx2_sq_aura_pool_init(struct otx2_nic *pfvf)
1545 {
1546 int qidx, pool_id, stack_pages, num_sqbs;
1547 struct otx2_qset *qset = &pfvf->qset;
1548 struct otx2_hw *hw = &pfvf->hw;
1549 struct otx2_snd_queue *sq;
1550 struct otx2_pool *pool;
1551 dma_addr_t bufptr;
1552 int err, ptr;
1553
1554 /* Calculate number of SQBs needed.
1555 *
1556 * For a 128byte SQE, and 4K size SQB, 31 SQEs will fit in one SQB.
1557 * Last SQE is used for pointing to next SQB.
1558 */
1559 num_sqbs = (hw->sqb_size / 128) - 1;
1560 num_sqbs = (qset->sqe_cnt + num_sqbs) / num_sqbs;
1561
1562 /* Get no of stack pages needed */
1563 stack_pages =
1564 (num_sqbs + hw->stack_pg_ptrs - 1) / hw->stack_pg_ptrs;
1565
1566 for (qidx = 0; qidx < hw->non_qos_queues; qidx++) {
1567 pool_id = otx2_get_pool_idx(pfvf, AURA_NIX_SQ, qidx);
1568 /* Initialize aura context */
1569 err = otx2_aura_init(pfvf, pool_id, pool_id, num_sqbs);
1570 if (err)
1571 goto fail;
1572
1573 /* Initialize pool context */
1574 err = otx2_pool_init(pfvf, pool_id, stack_pages,
1575 num_sqbs, hw->sqb_size, AURA_NIX_SQ);
1576 if (err)
1577 goto fail;
1578 }
1579
1580 /* Flush accumulated messages */
1581 err = otx2_sync_mbox_msg(&pfvf->mbox);
1582 if (err)
1583 goto fail;
1584
1585 /* Allocate pointers and free them to aura/pool */
1586 for (qidx = 0; qidx < hw->non_qos_queues; qidx++) {
1587 pool_id = otx2_get_pool_idx(pfvf, AURA_NIX_SQ, qidx);
1588 pool = &pfvf->qset.pool[pool_id];
1589
1590 sq = &qset->sq[qidx];
1591 sq->sqb_count = 0;
1592 sq->sqb_ptrs = kzalloc_objs(*sq->sqb_ptrs, num_sqbs);
1593 if (!sq->sqb_ptrs) {
1594 err = -ENOMEM;
1595 goto err_mem;
1596 }
1597
1598 for (ptr = 0; ptr < num_sqbs; ptr++) {
1599 err = otx2_alloc_rbuf(pfvf, pool, &bufptr, pool_id, ptr);
1600 if (err) {
1601 if (pool->xsk_pool) {
1602 ptr--;
1603 while (ptr >= 0) {
1604 xsk_buff_free(pool->xdp[ptr]);
1605 ptr--;
1606 }
1607 }
1608 goto err_mem;
1609 }
1610
1611 pfvf->hw_ops->aura_freeptr(pfvf, pool_id, bufptr);
1612 sq->sqb_ptrs[sq->sqb_count++] = (u64)bufptr;
1613 }
1614 }
1615
1616 err_mem:
1617 return err ? -ENOMEM : 0;
1618
1619 fail:
1620 otx2_mbox_reset(&pfvf->mbox.mbox, 0);
1621 otx2_aura_pool_free(pfvf);
1622 return err;
1623 }
1624
otx2_rq_aura_pool_init(struct otx2_nic * pfvf)1625 int otx2_rq_aura_pool_init(struct otx2_nic *pfvf)
1626 {
1627 struct otx2_hw *hw = &pfvf->hw;
1628 int stack_pages, pool_id, rq;
1629 struct otx2_pool *pool;
1630 int err, ptr, num_ptrs;
1631 dma_addr_t bufptr;
1632
1633 num_ptrs = pfvf->qset.rqe_cnt;
1634
1635 stack_pages =
1636 (num_ptrs + hw->stack_pg_ptrs - 1) / hw->stack_pg_ptrs;
1637
1638 for (rq = 0; rq < hw->rx_queues; rq++) {
1639 pool_id = otx2_get_pool_idx(pfvf, AURA_NIX_RQ, rq);
1640 /* Initialize aura context */
1641 err = otx2_aura_init(pfvf, pool_id, pool_id, num_ptrs);
1642 if (err)
1643 goto fail;
1644 }
1645 for (pool_id = 0; pool_id < hw->rqpool_cnt; pool_id++) {
1646 err = otx2_pool_init(pfvf, pool_id, stack_pages,
1647 num_ptrs, pfvf->rbsize, AURA_NIX_RQ);
1648 if (err)
1649 goto fail;
1650 }
1651
1652 /* Flush accumulated messages */
1653 err = otx2_sync_mbox_msg(&pfvf->mbox);
1654 if (err)
1655 goto fail;
1656
1657 /* Allocate pointers and free them to aura/pool */
1658 for (pool_id = 0; pool_id < hw->rqpool_cnt; pool_id++) {
1659 pool = &pfvf->qset.pool[pool_id];
1660
1661 for (ptr = 0; ptr < num_ptrs; ptr++) {
1662 err = otx2_alloc_rbuf(pfvf, pool, &bufptr, pool_id, ptr);
1663 if (err) {
1664 if (pool->xsk_pool) {
1665 while (ptr)
1666 xsk_buff_free(pool->xdp[--ptr]);
1667 }
1668 return -ENOMEM;
1669 }
1670
1671 pfvf->hw_ops->aura_freeptr(pfvf, pool_id,
1672 pool->xsk_pool ? bufptr :
1673 bufptr + OTX2_HEAD_ROOM);
1674 }
1675 }
1676 return 0;
1677 fail:
1678 otx2_mbox_reset(&pfvf->mbox.mbox, 0);
1679 otx2_aura_pool_free(pfvf);
1680 return err;
1681 }
1682
otx2_config_npa(struct otx2_nic * pfvf)1683 int otx2_config_npa(struct otx2_nic *pfvf)
1684 {
1685 struct otx2_qset *qset = &pfvf->qset;
1686 struct npa_lf_alloc_req *npalf;
1687 struct otx2_hw *hw = &pfvf->hw;
1688 int aura_cnt;
1689
1690 /* Pool - Stack of free buffer pointers
1691 * Aura - Alloc/frees pointers from/to pool for NIX DMA.
1692 */
1693
1694 if (!hw->pool_cnt)
1695 return -EINVAL;
1696
1697 qset->pool = devm_kcalloc(pfvf->dev, hw->pool_cnt,
1698 sizeof(struct otx2_pool), GFP_KERNEL);
1699 if (!qset->pool)
1700 return -ENOMEM;
1701
1702 /* Get memory to put this msg */
1703 npalf = otx2_mbox_alloc_msg_npa_lf_alloc(&pfvf->mbox);
1704 if (!npalf)
1705 return -ENOMEM;
1706
1707 /* Set aura and pool counts */
1708 npalf->nr_pools = hw->pool_cnt;
1709 aura_cnt = ilog2(roundup_pow_of_two(hw->pool_cnt));
1710 npalf->aura_sz = (aura_cnt >= ilog2(128)) ? (aura_cnt - 6) : 1;
1711
1712 return otx2_sync_mbox_msg(&pfvf->mbox);
1713 }
1714
otx2_detach_resources(struct mbox * mbox)1715 int otx2_detach_resources(struct mbox *mbox)
1716 {
1717 struct rsrc_detach *detach;
1718
1719 mutex_lock(&mbox->lock);
1720 detach = otx2_mbox_alloc_msg_detach_resources(mbox);
1721 if (!detach) {
1722 mutex_unlock(&mbox->lock);
1723 return -ENOMEM;
1724 }
1725
1726 /* detach all */
1727 detach->partial = false;
1728
1729 /* Send detach request to AF */
1730 otx2_sync_mbox_msg(mbox);
1731 mutex_unlock(&mbox->lock);
1732 return 0;
1733 }
1734 EXPORT_SYMBOL(otx2_detach_resources);
1735
otx2_attach_npa_nix(struct otx2_nic * pfvf)1736 int otx2_attach_npa_nix(struct otx2_nic *pfvf)
1737 {
1738 struct rsrc_attach *attach;
1739 struct msg_req *msix;
1740 int err;
1741
1742 mutex_lock(&pfvf->mbox.lock);
1743 /* Get memory to put this msg */
1744 attach = otx2_mbox_alloc_msg_attach_resources(&pfvf->mbox);
1745 if (!attach) {
1746 mutex_unlock(&pfvf->mbox.lock);
1747 return -ENOMEM;
1748 }
1749
1750 attach->npalf = true;
1751 attach->nixlf = true;
1752
1753 /* Send attach request to AF */
1754 err = otx2_sync_mbox_msg(&pfvf->mbox);
1755 if (err) {
1756 mutex_unlock(&pfvf->mbox.lock);
1757 return err;
1758 }
1759
1760 pfvf->nix_blkaddr = BLKADDR_NIX0;
1761
1762 /* If the platform has two NIX blocks then LF may be
1763 * allocated from NIX1.
1764 */
1765 if (otx2_read64(pfvf, RVU_PF_BLOCK_ADDRX_DISC(BLKADDR_NIX1)) & 0x1FFULL)
1766 pfvf->nix_blkaddr = BLKADDR_NIX1;
1767
1768 /* Get NPA and NIX MSIX vector offsets */
1769 msix = otx2_mbox_alloc_msg_msix_offset(&pfvf->mbox);
1770 if (!msix) {
1771 mutex_unlock(&pfvf->mbox.lock);
1772 return -ENOMEM;
1773 }
1774
1775 err = otx2_sync_mbox_msg(&pfvf->mbox);
1776 if (err) {
1777 mutex_unlock(&pfvf->mbox.lock);
1778 return err;
1779 }
1780 mutex_unlock(&pfvf->mbox.lock);
1781
1782 if (pfvf->hw.npa_msixoff == MSIX_VECTOR_INVALID ||
1783 pfvf->hw.nix_msixoff == MSIX_VECTOR_INVALID) {
1784 dev_err(pfvf->dev,
1785 "RVUPF: Invalid MSIX vector offset for NPA/NIX\n");
1786 return -EINVAL;
1787 }
1788
1789 return 0;
1790 }
1791 EXPORT_SYMBOL(otx2_attach_npa_nix);
1792
otx2_ctx_disable(struct mbox * mbox,int type,bool npa)1793 void otx2_ctx_disable(struct mbox *mbox, int type, bool npa)
1794 {
1795 struct hwctx_disable_req *req;
1796
1797 mutex_lock(&mbox->lock);
1798 /* Request AQ to disable this context */
1799 if (npa)
1800 req = otx2_mbox_alloc_msg_npa_hwctx_disable(mbox);
1801 else
1802 req = otx2_mbox_alloc_msg_nix_hwctx_disable(mbox);
1803
1804 if (!req) {
1805 mutex_unlock(&mbox->lock);
1806 return;
1807 }
1808
1809 req->ctype = type;
1810
1811 if (otx2_sync_mbox_msg(mbox))
1812 dev_err(mbox->pfvf->dev, "%s failed to disable context\n",
1813 __func__);
1814
1815 mutex_unlock(&mbox->lock);
1816 }
1817
otx2_nix_config_bp(struct otx2_nic * pfvf,bool enable)1818 int otx2_nix_config_bp(struct otx2_nic *pfvf, bool enable)
1819 {
1820 struct nix_bp_cfg_req *req;
1821
1822 if (enable)
1823 req = otx2_mbox_alloc_msg_nix_bp_enable(&pfvf->mbox);
1824 else
1825 req = otx2_mbox_alloc_msg_nix_bp_disable(&pfvf->mbox);
1826
1827 if (!req)
1828 return -ENOMEM;
1829
1830 req->chan_base = 0;
1831 if (otx2_is_pfc_enabled(pfvf)) {
1832 req->chan_cnt = IEEE_8021QAZ_MAX_TCS;
1833 req->bpid_per_chan = 1;
1834 } else {
1835 req->chan_cnt = pfvf->hw.rx_chan_cnt;
1836 req->bpid_per_chan = 0;
1837 }
1838
1839 return otx2_sync_mbox_msg(&pfvf->mbox);
1840 }
1841 EXPORT_SYMBOL(otx2_nix_config_bp);
1842
otx2_nix_cpt_config_bp(struct otx2_nic * pfvf,bool enable)1843 int otx2_nix_cpt_config_bp(struct otx2_nic *pfvf, bool enable)
1844 {
1845 struct nix_bp_cfg_req *req;
1846
1847 if (enable)
1848 req = otx2_mbox_alloc_msg_nix_cpt_bp_enable(&pfvf->mbox);
1849 else
1850 req = otx2_mbox_alloc_msg_nix_cpt_bp_disable(&pfvf->mbox);
1851
1852 if (!req)
1853 return -ENOMEM;
1854
1855 req->chan_base = 0;
1856 if (otx2_is_pfc_enabled(pfvf)) {
1857 req->chan_cnt = IEEE_8021QAZ_MAX_TCS;
1858 req->bpid_per_chan = 1;
1859 } else {
1860 req->chan_cnt = pfvf->hw.rx_chan_cnt;
1861 req->bpid_per_chan = 0;
1862 }
1863
1864 return otx2_sync_mbox_msg(&pfvf->mbox);
1865 }
1866 EXPORT_SYMBOL(otx2_nix_cpt_config_bp);
1867
1868 /* Mbox message handlers */
mbox_handler_cgx_stats(struct otx2_nic * pfvf,struct cgx_stats_rsp * rsp)1869 void mbox_handler_cgx_stats(struct otx2_nic *pfvf,
1870 struct cgx_stats_rsp *rsp)
1871 {
1872 int id;
1873
1874 for (id = 0; id < CGX_RX_STATS_COUNT; id++)
1875 pfvf->hw.cgx_rx_stats[id] = rsp->rx_stats[id];
1876 for (id = 0; id < CGX_TX_STATS_COUNT; id++)
1877 pfvf->hw.cgx_tx_stats[id] = rsp->tx_stats[id];
1878 }
1879
mbox_handler_cgx_fec_stats(struct otx2_nic * pfvf,struct cgx_fec_stats_rsp * rsp)1880 void mbox_handler_cgx_fec_stats(struct otx2_nic *pfvf,
1881 struct cgx_fec_stats_rsp *rsp)
1882 {
1883 pfvf->hw.cgx_fec_corr_blks += rsp->fec_corr_blks;
1884 pfvf->hw.cgx_fec_uncorr_blks += rsp->fec_uncorr_blks;
1885 }
1886
mbox_handler_npa_lf_alloc(struct otx2_nic * pfvf,struct npa_lf_alloc_rsp * rsp)1887 void mbox_handler_npa_lf_alloc(struct otx2_nic *pfvf,
1888 struct npa_lf_alloc_rsp *rsp)
1889 {
1890 pfvf->hw.stack_pg_ptrs = rsp->stack_pg_ptrs;
1891 pfvf->hw.stack_pg_bytes = rsp->stack_pg_bytes;
1892 }
1893 EXPORT_SYMBOL(mbox_handler_npa_lf_alloc);
1894
mbox_handler_nix_lf_alloc(struct otx2_nic * pfvf,struct nix_lf_alloc_rsp * rsp)1895 void mbox_handler_nix_lf_alloc(struct otx2_nic *pfvf,
1896 struct nix_lf_alloc_rsp *rsp)
1897 {
1898 pfvf->hw.sqb_size = rsp->sqb_size;
1899 pfvf->hw.rx_chan_base = rsp->rx_chan_base;
1900 pfvf->hw.tx_chan_base = rsp->tx_chan_base;
1901 pfvf->hw.rx_chan_cnt = rsp->rx_chan_cnt;
1902 pfvf->hw.tx_chan_cnt = rsp->tx_chan_cnt;
1903 pfvf->hw.lso_tsov4_idx = rsp->lso_tsov4_idx;
1904 pfvf->hw.lso_tsov6_idx = rsp->lso_tsov6_idx;
1905 pfvf->hw.cgx_links = rsp->cgx_links;
1906 pfvf->hw.lbk_links = rsp->lbk_links;
1907 pfvf->hw.tx_link = rsp->tx_link;
1908 }
1909 EXPORT_SYMBOL(mbox_handler_nix_lf_alloc);
1910
mbox_handler_msix_offset(struct otx2_nic * pfvf,struct msix_offset_rsp * rsp)1911 void mbox_handler_msix_offset(struct otx2_nic *pfvf,
1912 struct msix_offset_rsp *rsp)
1913 {
1914 pfvf->hw.npa_msixoff = rsp->npa_msixoff;
1915 pfvf->hw.nix_msixoff = rsp->nix_msixoff;
1916 }
1917 EXPORT_SYMBOL(mbox_handler_msix_offset);
1918
mbox_handler_nix_bp_enable(struct otx2_nic * pfvf,struct nix_bp_cfg_rsp * rsp)1919 void mbox_handler_nix_bp_enable(struct otx2_nic *pfvf,
1920 struct nix_bp_cfg_rsp *rsp)
1921 {
1922 int chan, chan_id;
1923
1924 for (chan = 0; chan < rsp->chan_cnt; chan++) {
1925 chan_id = ((rsp->chan_bpid[chan] >> 10) & 0x7F);
1926 pfvf->bpid[chan_id] = rsp->chan_bpid[chan] & 0x3FF;
1927 }
1928 }
1929 EXPORT_SYMBOL(mbox_handler_nix_bp_enable);
1930
otx2_free_cints(struct otx2_nic * pfvf,int n)1931 void otx2_free_cints(struct otx2_nic *pfvf, int n)
1932 {
1933 struct otx2_qset *qset = &pfvf->qset;
1934 struct otx2_hw *hw = &pfvf->hw;
1935 int irq, qidx;
1936
1937 for (qidx = 0, irq = hw->nix_msixoff + NIX_LF_CINT_VEC_START;
1938 qidx < n;
1939 qidx++, irq++) {
1940 int vector = pci_irq_vector(pfvf->pdev, irq);
1941
1942 irq_set_affinity_hint(vector, NULL);
1943 free_cpumask_var(hw->affinity_mask[irq]);
1944 free_irq(vector, &qset->napi[qidx]);
1945 }
1946 }
1947 EXPORT_SYMBOL(otx2_free_cints);
1948
otx2_set_cints_affinity(struct otx2_nic * pfvf)1949 void otx2_set_cints_affinity(struct otx2_nic *pfvf)
1950 {
1951 struct otx2_hw *hw = &pfvf->hw;
1952 int vec, cpu, irq, cint;
1953
1954 vec = hw->nix_msixoff + NIX_LF_CINT_VEC_START;
1955 cpu = cpumask_first(cpu_online_mask);
1956
1957 /* CQ interrupts */
1958 for (cint = 0; cint < pfvf->hw.cint_cnt; cint++, vec++) {
1959 if (!alloc_cpumask_var(&hw->affinity_mask[vec], GFP_KERNEL))
1960 return;
1961
1962 cpumask_set_cpu(cpu, hw->affinity_mask[vec]);
1963
1964 irq = pci_irq_vector(pfvf->pdev, vec);
1965 irq_set_affinity_hint(irq, hw->affinity_mask[vec]);
1966
1967 cpu = cpumask_next(cpu, cpu_online_mask);
1968 if (unlikely(cpu >= nr_cpu_ids))
1969 cpu = 0;
1970 }
1971 }
1972
get_dwrr_mtu(struct otx2_nic * pfvf,struct nix_hw_info * hw)1973 static u32 get_dwrr_mtu(struct otx2_nic *pfvf, struct nix_hw_info *hw)
1974 {
1975 if (is_otx2_lbkvf(pfvf->pdev)) {
1976 pfvf->hw.smq_link_type = SMQ_LINK_TYPE_LBK;
1977 return hw->lbk_dwrr_mtu;
1978 }
1979
1980 pfvf->hw.smq_link_type = SMQ_LINK_TYPE_RPM;
1981 return hw->rpm_dwrr_mtu;
1982 }
1983
otx2_get_max_mtu(struct otx2_nic * pfvf)1984 u16 otx2_get_max_mtu(struct otx2_nic *pfvf)
1985 {
1986 struct nix_hw_info *rsp;
1987 struct msg_req *req;
1988 u16 max_mtu;
1989 int rc;
1990
1991 mutex_lock(&pfvf->mbox.lock);
1992
1993 req = otx2_mbox_alloc_msg_nix_get_hw_info(&pfvf->mbox);
1994 if (!req) {
1995 rc = -ENOMEM;
1996 goto out;
1997 }
1998
1999 rc = otx2_sync_mbox_msg(&pfvf->mbox);
2000 if (!rc) {
2001 rsp = (struct nix_hw_info *)
2002 otx2_mbox_get_rsp(&pfvf->mbox.mbox, 0, &req->hdr);
2003 if (IS_ERR(rsp)) {
2004 rc = PTR_ERR(rsp);
2005 goto out;
2006 }
2007
2008 /* HW counts VLAN insertion bytes (8 for double tag)
2009 * irrespective of whether SQE is requesting to insert VLAN
2010 * in the packet or not. Hence these 8 bytes have to be
2011 * discounted from max packet size otherwise HW will throw
2012 * SMQ errors
2013 */
2014 max_mtu = rsp->max_mtu - 8 - OTX2_ETH_HLEN;
2015
2016 /* Also save DWRR MTU, needed for DWRR weight calculation */
2017 pfvf->hw.dwrr_mtu = get_dwrr_mtu(pfvf, rsp);
2018 if (!pfvf->hw.dwrr_mtu)
2019 pfvf->hw.dwrr_mtu = 1;
2020 }
2021
2022 out:
2023 mutex_unlock(&pfvf->mbox.lock);
2024 if (rc) {
2025 dev_warn(pfvf->dev,
2026 "Failed to get MTU from hardware setting default value(1500)\n");
2027 max_mtu = 1500;
2028 }
2029 return max_mtu;
2030 }
2031 EXPORT_SYMBOL(otx2_get_max_mtu);
2032
otx2_handle_ntuple_tc_features(struct net_device * netdev,netdev_features_t features)2033 int otx2_handle_ntuple_tc_features(struct net_device *netdev, netdev_features_t features)
2034 {
2035 netdev_features_t changed = features ^ netdev->features;
2036 struct otx2_nic *pfvf = netdev_priv(netdev);
2037 bool ntuple = !!(features & NETIF_F_NTUPLE);
2038 bool tc = !!(features & NETIF_F_HW_TC);
2039
2040 if ((changed & NETIF_F_NTUPLE) && !ntuple)
2041 otx2_destroy_ntuple_flows(pfvf);
2042
2043 if ((changed & NETIF_F_NTUPLE) && ntuple) {
2044 if (!pfvf->flow_cfg->max_flows) {
2045 netdev_err(netdev,
2046 "Can't enable NTUPLE, MCAM entries not allocated\n");
2047 return -EINVAL;
2048 }
2049 }
2050
2051 if ((changed & NETIF_F_HW_TC) && !tc &&
2052 otx2_tc_flower_rule_cnt(pfvf)) {
2053 netdev_err(netdev, "Can't disable TC hardware offload while flows are active\n");
2054 return -EBUSY;
2055 }
2056
2057 if ((changed & NETIF_F_NTUPLE) && ntuple &&
2058 otx2_tc_flower_rule_cnt(pfvf) && !(changed & NETIF_F_HW_TC)) {
2059 netdev_err(netdev,
2060 "Can't enable NTUPLE when TC flower offload is active, disable TC rules and retry\n");
2061 return -EINVAL;
2062 }
2063
2064 return 0;
2065 }
2066 EXPORT_SYMBOL(otx2_handle_ntuple_tc_features);
2067
otx2_set_hw_capabilities(struct otx2_nic * pfvf)2068 int otx2_set_hw_capabilities(struct otx2_nic *pfvf)
2069 {
2070 struct mbox *mbox = &pfvf->mbox;
2071 struct otx2_hw *hw = &pfvf->hw;
2072 struct get_hw_cap_rsp *rsp;
2073 struct msg_req *req;
2074 int ret = -ENOMEM;
2075
2076 mutex_lock(&mbox->lock);
2077
2078 req = otx2_mbox_alloc_msg_get_hw_cap(mbox);
2079 if (!req)
2080 goto fail;
2081
2082 ret = otx2_sync_mbox_msg(mbox);
2083 if (ret)
2084 goto fail;
2085
2086 rsp = (struct get_hw_cap_rsp *)otx2_mbox_get_rsp(&pfvf->mbox.mbox,
2087 0, &req->hdr);
2088 if (IS_ERR(rsp)) {
2089 ret = -EINVAL;
2090 goto fail;
2091 }
2092
2093 if (rsp->hw_caps & HW_CAP_MACSEC)
2094 __set_bit(CN10K_HW_MACSEC, &hw->cap_flag);
2095
2096 mutex_unlock(&mbox->lock);
2097
2098 return 0;
2099 fail:
2100 dev_err(pfvf->dev, "Cannot get MACSEC capability from AF\n");
2101 mutex_unlock(&mbox->lock);
2102 return ret;
2103 }
2104
2105 #define M(_name, _id, _fn_name, _req_type, _rsp_type) \
2106 int __weak \
2107 otx2_mbox_up_handler_ ## _fn_name(struct otx2_nic *pfvf, \
2108 struct _req_type *req, \
2109 struct _rsp_type *rsp) \
2110 { \
2111 /* Nothing to do here */ \
2112 return 0; \
2113 } \
2114 EXPORT_SYMBOL(otx2_mbox_up_handler_ ## _fn_name);
2115 MBOX_UP_CGX_MESSAGES
2116 MBOX_UP_MCS_MESSAGES
2117 #undef M
2118
otx2_dma_map_skb_frag(struct otx2_nic * pfvf,struct sk_buff * skb,int seg,int * len)2119 dma_addr_t otx2_dma_map_skb_frag(struct otx2_nic *pfvf,
2120 struct sk_buff *skb, int seg, int *len)
2121 {
2122 enum dma_data_direction dir = DMA_TO_DEVICE;
2123 const skb_frag_t *frag;
2124 struct page *page;
2125 int offset;
2126
2127 /* Crypto hardware need write permission for ipsec crypto offload */
2128 if (unlikely(xfrm_offload(skb))) {
2129 dir = DMA_BIDIRECTIONAL;
2130 skb = skb_unshare(skb, GFP_ATOMIC);
2131 }
2132
2133 /* First segment is always skb->data */
2134 if (!seg) {
2135 page = virt_to_page(skb->data);
2136 offset = offset_in_page(skb->data);
2137 *len = skb_headlen(skb);
2138 } else {
2139 frag = &skb_shinfo(skb)->frags[seg - 1];
2140 page = skb_frag_page(frag);
2141 offset = skb_frag_off(frag);
2142 *len = skb_frag_size(frag);
2143 }
2144 return otx2_dma_map_page(pfvf, page, offset, *len, dir);
2145 }
2146
otx2_dma_unmap_skb_frags(struct otx2_nic * pfvf,struct sg_list * sg)2147 void otx2_dma_unmap_skb_frags(struct otx2_nic *pfvf, struct sg_list *sg)
2148 {
2149 enum dma_data_direction dir = DMA_TO_DEVICE;
2150 struct sk_buff *skb = NULL;
2151 int seg;
2152
2153 skb = (struct sk_buff *)sg->skb;
2154 if (unlikely(xfrm_offload(skb)))
2155 dir = DMA_BIDIRECTIONAL;
2156
2157 for (seg = 0; seg < sg->num_segs; seg++) {
2158 otx2_dma_unmap_page(pfvf, sg->dma_addr[seg],
2159 sg->size[seg], dir);
2160 }
2161 sg->num_segs = 0;
2162 }
2163