1 // SPDX-License-Identifier: GPL-2.0
2 /* Copyright (c) Meta Platforms, Inc. and affiliates. */
3
4 #include <linux/bitfield.h>
5 #include <linux/iopoll.h>
6 #include <linux/pci.h>
7 #include <net/netdev_queues.h>
8 #include <net/page_pool/helpers.h>
9
10 #include "fbnic.h"
11 #include "fbnic_csr.h"
12 #include "fbnic_netdev.h"
13 #include "fbnic_txrx.h"
14
15 enum {
16 FBNIC_XMIT_CB_TS = 0x01,
17 };
18
19 struct fbnic_xmit_cb {
20 u32 bytecount;
21 u8 desc_count;
22 u8 flags;
23 int hw_head;
24 };
25
26 #define FBNIC_XMIT_CB(__skb) ((struct fbnic_xmit_cb *)((__skb)->cb))
27
fbnic_ring_csr_base(const struct fbnic_ring * ring)28 static u32 __iomem *fbnic_ring_csr_base(const struct fbnic_ring *ring)
29 {
30 unsigned long csr_base = (unsigned long)ring->doorbell;
31
32 csr_base &= ~(FBNIC_QUEUE_STRIDE * sizeof(u32) - 1);
33
34 return (u32 __iomem *)csr_base;
35 }
36
fbnic_ring_rd32(struct fbnic_ring * ring,unsigned int csr)37 static u32 fbnic_ring_rd32(struct fbnic_ring *ring, unsigned int csr)
38 {
39 u32 __iomem *csr_base = fbnic_ring_csr_base(ring);
40
41 return readl(csr_base + csr);
42 }
43
fbnic_ring_wr32(struct fbnic_ring * ring,unsigned int csr,u32 val)44 static void fbnic_ring_wr32(struct fbnic_ring *ring, unsigned int csr, u32 val)
45 {
46 u32 __iomem *csr_base = fbnic_ring_csr_base(ring);
47
48 writel(val, csr_base + csr);
49 }
50
51 /**
52 * fbnic_ts40_to_ns() - convert descriptor timestamp to PHC time
53 * @fbn: netdev priv of the FB NIC
54 * @ts40: timestamp read from a descriptor
55 *
56 * Return: u64 value of PHC time in nanoseconds
57 *
58 * Convert truncated 40 bit device timestamp as read from a descriptor
59 * to the full PHC time in nanoseconds.
60 */
fbnic_ts40_to_ns(struct fbnic_net * fbn,u64 ts40)61 static __maybe_unused u64 fbnic_ts40_to_ns(struct fbnic_net *fbn, u64 ts40)
62 {
63 unsigned int s;
64 u64 time_ns;
65 s64 offset;
66 u8 ts_top;
67 u32 high;
68
69 do {
70 s = u64_stats_fetch_begin(&fbn->time_seq);
71 offset = READ_ONCE(fbn->time_offset);
72 } while (u64_stats_fetch_retry(&fbn->time_seq, s));
73
74 high = READ_ONCE(fbn->time_high);
75
76 /* Bits 63..40 from periodic clock reads, 39..0 from ts40 */
77 time_ns = (u64)(high >> 8) << 40 | ts40;
78
79 /* Compare bits 32-39 between periodic reads and ts40,
80 * see if HW clock may have wrapped since last read. We are sure
81 * that periodic reads are always at least ~1 minute behind, so
82 * this logic works perfectly fine.
83 */
84 ts_top = ts40 >> 32;
85 if (ts_top < (u8)high && (u8)high - ts_top > U8_MAX / 2)
86 time_ns += 1ULL << 40;
87
88 return time_ns + offset;
89 }
90
fbnic_desc_unused(struct fbnic_ring * ring)91 static unsigned int fbnic_desc_unused(struct fbnic_ring *ring)
92 {
93 return (ring->head - ring->tail - 1) & ring->size_mask;
94 }
95
fbnic_desc_used(struct fbnic_ring * ring)96 static unsigned int fbnic_desc_used(struct fbnic_ring *ring)
97 {
98 return (ring->tail - ring->head) & ring->size_mask;
99 }
100
txring_txq(const struct net_device * dev,const struct fbnic_ring * ring)101 static struct netdev_queue *txring_txq(const struct net_device *dev,
102 const struct fbnic_ring *ring)
103 {
104 return netdev_get_tx_queue(dev, ring->q_idx);
105 }
106
fbnic_maybe_stop_tx(const struct net_device * dev,struct fbnic_ring * ring,const unsigned int size)107 static int fbnic_maybe_stop_tx(const struct net_device *dev,
108 struct fbnic_ring *ring,
109 const unsigned int size)
110 {
111 struct netdev_queue *txq = txring_txq(dev, ring);
112 int res;
113
114 res = netif_txq_maybe_stop(txq, fbnic_desc_unused(ring), size,
115 FBNIC_TX_DESC_WAKEUP);
116
117 return !res;
118 }
119
fbnic_tx_sent_queue(struct sk_buff * skb,struct fbnic_ring * ring)120 static bool fbnic_tx_sent_queue(struct sk_buff *skb, struct fbnic_ring *ring)
121 {
122 struct netdev_queue *dev_queue = txring_txq(skb->dev, ring);
123 unsigned int bytecount = FBNIC_XMIT_CB(skb)->bytecount;
124 bool xmit_more = netdev_xmit_more();
125
126 /* TBD: Request completion more often if xmit_more becomes large */
127
128 return __netdev_tx_sent_queue(dev_queue, bytecount, xmit_more);
129 }
130
fbnic_unmap_single_twd(struct device * dev,__le64 * twd)131 static void fbnic_unmap_single_twd(struct device *dev, __le64 *twd)
132 {
133 u64 raw_twd = le64_to_cpu(*twd);
134 unsigned int len;
135 dma_addr_t dma;
136
137 dma = FIELD_GET(FBNIC_TWD_ADDR_MASK, raw_twd);
138 len = FIELD_GET(FBNIC_TWD_LEN_MASK, raw_twd);
139
140 dma_unmap_single(dev, dma, len, DMA_TO_DEVICE);
141 }
142
fbnic_unmap_page_twd(struct device * dev,__le64 * twd)143 static void fbnic_unmap_page_twd(struct device *dev, __le64 *twd)
144 {
145 u64 raw_twd = le64_to_cpu(*twd);
146 unsigned int len;
147 dma_addr_t dma;
148
149 dma = FIELD_GET(FBNIC_TWD_ADDR_MASK, raw_twd);
150 len = FIELD_GET(FBNIC_TWD_LEN_MASK, raw_twd);
151
152 dma_unmap_page(dev, dma, len, DMA_TO_DEVICE);
153 }
154
155 #define FBNIC_TWD_TYPE(_type) \
156 cpu_to_le64(FIELD_PREP(FBNIC_TWD_TYPE_MASK, FBNIC_TWD_TYPE_##_type))
157
fbnic_tx_tstamp(struct sk_buff * skb)158 static bool fbnic_tx_tstamp(struct sk_buff *skb)
159 {
160 struct fbnic_net *fbn;
161
162 if (!unlikely(skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP))
163 return false;
164
165 fbn = netdev_priv(skb->dev);
166 if (fbn->hwtstamp_config.tx_type == HWTSTAMP_TX_OFF)
167 return false;
168
169 skb_shinfo(skb)->tx_flags |= SKBTX_IN_PROGRESS;
170 FBNIC_XMIT_CB(skb)->flags |= FBNIC_XMIT_CB_TS;
171 FBNIC_XMIT_CB(skb)->hw_head = -1;
172
173 return true;
174 }
175
176 static bool
fbnic_tx_offloads(struct fbnic_ring * ring,struct sk_buff * skb,__le64 * meta)177 fbnic_tx_offloads(struct fbnic_ring *ring, struct sk_buff *skb, __le64 *meta)
178 {
179 unsigned int l2len, i3len;
180
181 if (fbnic_tx_tstamp(skb))
182 *meta |= cpu_to_le64(FBNIC_TWD_FLAG_REQ_TS);
183
184 if (unlikely(skb->ip_summed != CHECKSUM_PARTIAL))
185 return false;
186
187 l2len = skb_mac_header_len(skb);
188 i3len = skb_checksum_start(skb) - skb_network_header(skb);
189
190 *meta |= cpu_to_le64(FIELD_PREP(FBNIC_TWD_CSUM_OFFSET_MASK,
191 skb->csum_offset / 2));
192
193 *meta |= cpu_to_le64(FBNIC_TWD_FLAG_REQ_CSO);
194
195 *meta |= cpu_to_le64(FIELD_PREP(FBNIC_TWD_L2_HLEN_MASK, l2len / 2) |
196 FIELD_PREP(FBNIC_TWD_L3_IHLEN_MASK, i3len / 2));
197 return false;
198 }
199
200 static void
fbnic_rx_csum(u64 rcd,struct sk_buff * skb,struct fbnic_ring * rcq)201 fbnic_rx_csum(u64 rcd, struct sk_buff *skb, struct fbnic_ring *rcq)
202 {
203 skb_checksum_none_assert(skb);
204
205 if (unlikely(!(skb->dev->features & NETIF_F_RXCSUM)))
206 return;
207
208 if (FIELD_GET(FBNIC_RCD_META_L4_CSUM_UNNECESSARY, rcd)) {
209 skb->ip_summed = CHECKSUM_UNNECESSARY;
210 } else {
211 u16 csum = FIELD_GET(FBNIC_RCD_META_L2_CSUM_MASK, rcd);
212
213 skb->ip_summed = CHECKSUM_COMPLETE;
214 skb->csum = (__force __wsum)csum;
215 }
216 }
217
218 static bool
fbnic_tx_map(struct fbnic_ring * ring,struct sk_buff * skb,__le64 * meta)219 fbnic_tx_map(struct fbnic_ring *ring, struct sk_buff *skb, __le64 *meta)
220 {
221 struct device *dev = skb->dev->dev.parent;
222 unsigned int tail = ring->tail, first;
223 unsigned int size, data_len;
224 skb_frag_t *frag;
225 dma_addr_t dma;
226 __le64 *twd;
227
228 ring->tx_buf[tail] = skb;
229
230 tail++;
231 tail &= ring->size_mask;
232 first = tail;
233
234 size = skb_headlen(skb);
235 data_len = skb->data_len;
236
237 if (size > FIELD_MAX(FBNIC_TWD_LEN_MASK))
238 goto dma_error;
239
240 dma = dma_map_single(dev, skb->data, size, DMA_TO_DEVICE);
241
242 for (frag = &skb_shinfo(skb)->frags[0];; frag++) {
243 twd = &ring->desc[tail];
244
245 if (dma_mapping_error(dev, dma))
246 goto dma_error;
247
248 *twd = cpu_to_le64(FIELD_PREP(FBNIC_TWD_ADDR_MASK, dma) |
249 FIELD_PREP(FBNIC_TWD_LEN_MASK, size) |
250 FIELD_PREP(FBNIC_TWD_TYPE_MASK,
251 FBNIC_TWD_TYPE_AL));
252
253 tail++;
254 tail &= ring->size_mask;
255
256 if (!data_len)
257 break;
258
259 size = skb_frag_size(frag);
260 data_len -= size;
261
262 if (size > FIELD_MAX(FBNIC_TWD_LEN_MASK))
263 goto dma_error;
264
265 dma = skb_frag_dma_map(dev, frag, 0, size, DMA_TO_DEVICE);
266 }
267
268 *twd |= FBNIC_TWD_TYPE(LAST_AL);
269
270 FBNIC_XMIT_CB(skb)->desc_count = ((twd - meta) + 1) & ring->size_mask;
271
272 ring->tail = tail;
273
274 /* Record SW timestamp */
275 skb_tx_timestamp(skb);
276
277 /* Verify there is room for another packet */
278 fbnic_maybe_stop_tx(skb->dev, ring, FBNIC_MAX_SKB_DESC);
279
280 if (fbnic_tx_sent_queue(skb, ring)) {
281 *meta |= cpu_to_le64(FBNIC_TWD_FLAG_REQ_COMPLETION);
282
283 /* Force DMA writes to flush before writing to tail */
284 dma_wmb();
285
286 writel(tail, ring->doorbell);
287 }
288
289 return false;
290 dma_error:
291 if (net_ratelimit())
292 netdev_err(skb->dev, "TX DMA map failed\n");
293
294 while (tail != first) {
295 tail--;
296 tail &= ring->size_mask;
297 twd = &ring->desc[tail];
298 if (tail == first)
299 fbnic_unmap_single_twd(dev, twd);
300 else
301 fbnic_unmap_page_twd(dev, twd);
302 }
303
304 return true;
305 }
306
307 #define FBNIC_MIN_FRAME_LEN 60
308
309 static netdev_tx_t
fbnic_xmit_frame_ring(struct sk_buff * skb,struct fbnic_ring * ring)310 fbnic_xmit_frame_ring(struct sk_buff *skb, struct fbnic_ring *ring)
311 {
312 __le64 *meta = &ring->desc[ring->tail];
313 u16 desc_needed;
314
315 if (skb_put_padto(skb, FBNIC_MIN_FRAME_LEN))
316 goto err_count;
317
318 /* Need: 1 descriptor per page,
319 * + 1 desc for skb_head,
320 * + 2 desc for metadata and timestamp metadata
321 * + 7 desc gap to keep tail from touching head
322 * otherwise try next time
323 */
324 desc_needed = skb_shinfo(skb)->nr_frags + 10;
325 if (fbnic_maybe_stop_tx(skb->dev, ring, desc_needed))
326 return NETDEV_TX_BUSY;
327
328 *meta = cpu_to_le64(FBNIC_TWD_FLAG_DEST_MAC);
329
330 /* Write all members within DWORD to condense this into 2 4B writes */
331 FBNIC_XMIT_CB(skb)->bytecount = skb->len;
332 FBNIC_XMIT_CB(skb)->desc_count = 0;
333
334 if (fbnic_tx_offloads(ring, skb, meta))
335 goto err_free;
336
337 if (fbnic_tx_map(ring, skb, meta))
338 goto err_free;
339
340 return NETDEV_TX_OK;
341
342 err_free:
343 dev_kfree_skb_any(skb);
344 err_count:
345 u64_stats_update_begin(&ring->stats.syncp);
346 ring->stats.dropped++;
347 u64_stats_update_end(&ring->stats.syncp);
348 return NETDEV_TX_OK;
349 }
350
fbnic_xmit_frame(struct sk_buff * skb,struct net_device * dev)351 netdev_tx_t fbnic_xmit_frame(struct sk_buff *skb, struct net_device *dev)
352 {
353 struct fbnic_net *fbn = netdev_priv(dev);
354 unsigned int q_map = skb->queue_mapping;
355
356 return fbnic_xmit_frame_ring(skb, fbn->tx[q_map]);
357 }
358
359 netdev_features_t
fbnic_features_check(struct sk_buff * skb,struct net_device * dev,netdev_features_t features)360 fbnic_features_check(struct sk_buff *skb, struct net_device *dev,
361 netdev_features_t features)
362 {
363 unsigned int l2len, l3len;
364
365 if (unlikely(skb->ip_summed != CHECKSUM_PARTIAL))
366 return features;
367
368 l2len = skb_mac_header_len(skb);
369 l3len = skb_checksum_start(skb) - skb_network_header(skb);
370
371 /* Check header lengths are multiple of 2.
372 * In case of 6in6 we support longer headers (IHLEN + OHLEN)
373 * but keep things simple for now, 512B is plenty.
374 */
375 if ((l2len | l3len | skb->csum_offset) % 2 ||
376 !FIELD_FIT(FBNIC_TWD_L2_HLEN_MASK, l2len / 2) ||
377 !FIELD_FIT(FBNIC_TWD_L3_IHLEN_MASK, l3len / 2) ||
378 !FIELD_FIT(FBNIC_TWD_CSUM_OFFSET_MASK, skb->csum_offset / 2))
379 return features & ~NETIF_F_CSUM_MASK;
380
381 return features;
382 }
383
fbnic_clean_twq0(struct fbnic_napi_vector * nv,int napi_budget,struct fbnic_ring * ring,bool discard,unsigned int hw_head)384 static void fbnic_clean_twq0(struct fbnic_napi_vector *nv, int napi_budget,
385 struct fbnic_ring *ring, bool discard,
386 unsigned int hw_head)
387 {
388 u64 total_bytes = 0, total_packets = 0, ts_lost = 0;
389 unsigned int head = ring->head;
390 struct netdev_queue *txq;
391 unsigned int clean_desc;
392
393 clean_desc = (hw_head - head) & ring->size_mask;
394
395 while (clean_desc) {
396 struct sk_buff *skb = ring->tx_buf[head];
397 unsigned int desc_cnt;
398
399 desc_cnt = FBNIC_XMIT_CB(skb)->desc_count;
400 if (desc_cnt > clean_desc)
401 break;
402
403 if (unlikely(FBNIC_XMIT_CB(skb)->flags & FBNIC_XMIT_CB_TS)) {
404 FBNIC_XMIT_CB(skb)->hw_head = hw_head;
405 if (likely(!discard))
406 break;
407 ts_lost++;
408 }
409
410 ring->tx_buf[head] = NULL;
411
412 clean_desc -= desc_cnt;
413
414 while (!(ring->desc[head] & FBNIC_TWD_TYPE(AL))) {
415 head++;
416 head &= ring->size_mask;
417 desc_cnt--;
418 }
419
420 fbnic_unmap_single_twd(nv->dev, &ring->desc[head]);
421 head++;
422 head &= ring->size_mask;
423 desc_cnt--;
424
425 while (desc_cnt--) {
426 fbnic_unmap_page_twd(nv->dev, &ring->desc[head]);
427 head++;
428 head &= ring->size_mask;
429 }
430
431 total_bytes += FBNIC_XMIT_CB(skb)->bytecount;
432 total_packets += 1;
433
434 napi_consume_skb(skb, napi_budget);
435 }
436
437 if (!total_bytes)
438 return;
439
440 ring->head = head;
441
442 txq = txring_txq(nv->napi.dev, ring);
443
444 if (unlikely(discard)) {
445 u64_stats_update_begin(&ring->stats.syncp);
446 ring->stats.dropped += total_packets;
447 ring->stats.ts_lost += ts_lost;
448 u64_stats_update_end(&ring->stats.syncp);
449
450 netdev_tx_completed_queue(txq, total_packets, total_bytes);
451 return;
452 }
453
454 u64_stats_update_begin(&ring->stats.syncp);
455 ring->stats.bytes += total_bytes;
456 ring->stats.packets += total_packets;
457 u64_stats_update_end(&ring->stats.syncp);
458
459 netif_txq_completed_wake(txq, total_packets, total_bytes,
460 fbnic_desc_unused(ring),
461 FBNIC_TX_DESC_WAKEUP);
462 }
463
fbnic_clean_tsq(struct fbnic_napi_vector * nv,struct fbnic_ring * ring,u64 tcd,int * ts_head,int * head0)464 static void fbnic_clean_tsq(struct fbnic_napi_vector *nv,
465 struct fbnic_ring *ring,
466 u64 tcd, int *ts_head, int *head0)
467 {
468 struct skb_shared_hwtstamps hwtstamp;
469 struct fbnic_net *fbn;
470 struct sk_buff *skb;
471 int head;
472 u64 ns;
473
474 head = (*ts_head < 0) ? ring->head : *ts_head;
475
476 do {
477 unsigned int desc_cnt;
478
479 if (head == ring->tail) {
480 if (unlikely(net_ratelimit()))
481 netdev_err(nv->napi.dev,
482 "Tx timestamp without matching packet\n");
483 return;
484 }
485
486 skb = ring->tx_buf[head];
487 desc_cnt = FBNIC_XMIT_CB(skb)->desc_count;
488
489 head += desc_cnt;
490 head &= ring->size_mask;
491 } while (!(FBNIC_XMIT_CB(skb)->flags & FBNIC_XMIT_CB_TS));
492
493 fbn = netdev_priv(nv->napi.dev);
494 ns = fbnic_ts40_to_ns(fbn, FIELD_GET(FBNIC_TCD_TYPE1_TS_MASK, tcd));
495
496 memset(&hwtstamp, 0, sizeof(hwtstamp));
497 hwtstamp.hwtstamp = ns_to_ktime(ns);
498
499 *ts_head = head;
500
501 FBNIC_XMIT_CB(skb)->flags &= ~FBNIC_XMIT_CB_TS;
502 if (*head0 < 0) {
503 head = FBNIC_XMIT_CB(skb)->hw_head;
504 if (head >= 0)
505 *head0 = head;
506 }
507
508 skb_tstamp_tx(skb, &hwtstamp);
509 u64_stats_update_begin(&ring->stats.syncp);
510 ring->stats.ts_packets++;
511 u64_stats_update_end(&ring->stats.syncp);
512 }
513
fbnic_page_pool_init(struct fbnic_ring * ring,unsigned int idx,struct page * page)514 static void fbnic_page_pool_init(struct fbnic_ring *ring, unsigned int idx,
515 struct page *page)
516 {
517 struct fbnic_rx_buf *rx_buf = &ring->rx_buf[idx];
518
519 page_pool_fragment_page(page, PAGECNT_BIAS_MAX);
520 rx_buf->pagecnt_bias = PAGECNT_BIAS_MAX;
521 rx_buf->page = page;
522 }
523
fbnic_page_pool_get(struct fbnic_ring * ring,unsigned int idx)524 static struct page *fbnic_page_pool_get(struct fbnic_ring *ring,
525 unsigned int idx)
526 {
527 struct fbnic_rx_buf *rx_buf = &ring->rx_buf[idx];
528
529 rx_buf->pagecnt_bias--;
530
531 return rx_buf->page;
532 }
533
fbnic_page_pool_drain(struct fbnic_ring * ring,unsigned int idx,struct fbnic_napi_vector * nv,int budget)534 static void fbnic_page_pool_drain(struct fbnic_ring *ring, unsigned int idx,
535 struct fbnic_napi_vector *nv, int budget)
536 {
537 struct fbnic_rx_buf *rx_buf = &ring->rx_buf[idx];
538 struct page *page = rx_buf->page;
539
540 if (!page_pool_unref_page(page, rx_buf->pagecnt_bias))
541 page_pool_put_unrefed_page(nv->page_pool, page, -1, !!budget);
542
543 rx_buf->page = NULL;
544 }
545
fbnic_clean_twq(struct fbnic_napi_vector * nv,int napi_budget,struct fbnic_q_triad * qt,s32 ts_head,s32 head0)546 static void fbnic_clean_twq(struct fbnic_napi_vector *nv, int napi_budget,
547 struct fbnic_q_triad *qt, s32 ts_head, s32 head0)
548 {
549 if (head0 >= 0)
550 fbnic_clean_twq0(nv, napi_budget, &qt->sub0, false, head0);
551 else if (ts_head >= 0)
552 fbnic_clean_twq0(nv, napi_budget, &qt->sub0, false, ts_head);
553 }
554
555 static void
fbnic_clean_tcq(struct fbnic_napi_vector * nv,struct fbnic_q_triad * qt,int napi_budget)556 fbnic_clean_tcq(struct fbnic_napi_vector *nv, struct fbnic_q_triad *qt,
557 int napi_budget)
558 {
559 struct fbnic_ring *cmpl = &qt->cmpl;
560 s32 head0 = -1, ts_head = -1;
561 __le64 *raw_tcd, done;
562 u32 head = cmpl->head;
563
564 done = (head & (cmpl->size_mask + 1)) ? 0 : cpu_to_le64(FBNIC_TCD_DONE);
565 raw_tcd = &cmpl->desc[head & cmpl->size_mask];
566
567 /* Walk the completion queue collecting the heads reported by NIC */
568 while ((*raw_tcd & cpu_to_le64(FBNIC_TCD_DONE)) == done) {
569 u64 tcd;
570
571 dma_rmb();
572
573 tcd = le64_to_cpu(*raw_tcd);
574
575 switch (FIELD_GET(FBNIC_TCD_TYPE_MASK, tcd)) {
576 case FBNIC_TCD_TYPE_0:
577 if (!(tcd & FBNIC_TCD_TWQ1))
578 head0 = FIELD_GET(FBNIC_TCD_TYPE0_HEAD0_MASK,
579 tcd);
580 /* Currently all err status bits are related to
581 * timestamps and as those have yet to be added
582 * they are skipped for now.
583 */
584 break;
585 case FBNIC_TCD_TYPE_1:
586 if (WARN_ON_ONCE(tcd & FBNIC_TCD_TWQ1))
587 break;
588
589 fbnic_clean_tsq(nv, &qt->sub0, tcd, &ts_head, &head0);
590 break;
591 default:
592 break;
593 }
594
595 raw_tcd++;
596 head++;
597 if (!(head & cmpl->size_mask)) {
598 done ^= cpu_to_le64(FBNIC_TCD_DONE);
599 raw_tcd = &cmpl->desc[0];
600 }
601 }
602
603 /* Record the current head/tail of the queue */
604 if (cmpl->head != head) {
605 cmpl->head = head;
606 writel(head & cmpl->size_mask, cmpl->doorbell);
607 }
608
609 /* Unmap and free processed buffers */
610 fbnic_clean_twq(nv, napi_budget, qt, ts_head, head0);
611 }
612
fbnic_clean_bdq(struct fbnic_napi_vector * nv,int napi_budget,struct fbnic_ring * ring,unsigned int hw_head)613 static void fbnic_clean_bdq(struct fbnic_napi_vector *nv, int napi_budget,
614 struct fbnic_ring *ring, unsigned int hw_head)
615 {
616 unsigned int head = ring->head;
617
618 if (head == hw_head)
619 return;
620
621 do {
622 fbnic_page_pool_drain(ring, head, nv, napi_budget);
623
624 head++;
625 head &= ring->size_mask;
626 } while (head != hw_head);
627
628 ring->head = head;
629 }
630
fbnic_bd_prep(struct fbnic_ring * bdq,u16 id,struct page * page)631 static void fbnic_bd_prep(struct fbnic_ring *bdq, u16 id, struct page *page)
632 {
633 __le64 *bdq_desc = &bdq->desc[id * FBNIC_BD_FRAG_COUNT];
634 dma_addr_t dma = page_pool_get_dma_addr(page);
635 u64 bd, i = FBNIC_BD_FRAG_COUNT;
636
637 bd = (FBNIC_BD_PAGE_ADDR_MASK & dma) |
638 FIELD_PREP(FBNIC_BD_PAGE_ID_MASK, id);
639
640 /* In the case that a page size is larger than 4K we will map a
641 * single page to multiple fragments. The fragments will be
642 * FBNIC_BD_FRAG_COUNT in size and the lower n bits will be use
643 * to indicate the individual fragment IDs.
644 */
645 do {
646 *bdq_desc = cpu_to_le64(bd);
647 bd += FIELD_PREP(FBNIC_BD_DESC_ADDR_MASK, 1) |
648 FIELD_PREP(FBNIC_BD_DESC_ID_MASK, 1);
649 } while (--i);
650 }
651
fbnic_fill_bdq(struct fbnic_napi_vector * nv,struct fbnic_ring * bdq)652 static void fbnic_fill_bdq(struct fbnic_napi_vector *nv, struct fbnic_ring *bdq)
653 {
654 unsigned int count = fbnic_desc_unused(bdq);
655 unsigned int i = bdq->tail;
656
657 if (!count)
658 return;
659
660 do {
661 struct page *page;
662
663 page = page_pool_dev_alloc_pages(nv->page_pool);
664 if (!page)
665 break;
666
667 fbnic_page_pool_init(bdq, i, page);
668 fbnic_bd_prep(bdq, i, page);
669
670 i++;
671 i &= bdq->size_mask;
672
673 count--;
674 } while (count);
675
676 if (bdq->tail != i) {
677 bdq->tail = i;
678
679 /* Force DMA writes to flush before writing to tail */
680 dma_wmb();
681
682 writel(i, bdq->doorbell);
683 }
684 }
685
fbnic_hdr_pg_start(unsigned int pg_off)686 static unsigned int fbnic_hdr_pg_start(unsigned int pg_off)
687 {
688 /* The headroom of the first header may be larger than FBNIC_RX_HROOM
689 * due to alignment. So account for that by just making the page
690 * offset 0 if we are starting at the first header.
691 */
692 if (ALIGN(FBNIC_RX_HROOM, 128) > FBNIC_RX_HROOM &&
693 pg_off == ALIGN(FBNIC_RX_HROOM, 128))
694 return 0;
695
696 return pg_off - FBNIC_RX_HROOM;
697 }
698
fbnic_hdr_pg_end(unsigned int pg_off,unsigned int len)699 static unsigned int fbnic_hdr_pg_end(unsigned int pg_off, unsigned int len)
700 {
701 /* Determine the end of the buffer by finding the start of the next
702 * and then subtracting the headroom from that frame.
703 */
704 pg_off += len + FBNIC_RX_TROOM + FBNIC_RX_HROOM;
705
706 return ALIGN(pg_off, 128) - FBNIC_RX_HROOM;
707 }
708
fbnic_pkt_prepare(struct fbnic_napi_vector * nv,u64 rcd,struct fbnic_pkt_buff * pkt,struct fbnic_q_triad * qt)709 static void fbnic_pkt_prepare(struct fbnic_napi_vector *nv, u64 rcd,
710 struct fbnic_pkt_buff *pkt,
711 struct fbnic_q_triad *qt)
712 {
713 unsigned int hdr_pg_idx = FIELD_GET(FBNIC_RCD_AL_BUFF_PAGE_MASK, rcd);
714 unsigned int hdr_pg_off = FIELD_GET(FBNIC_RCD_AL_BUFF_OFF_MASK, rcd);
715 struct page *page = fbnic_page_pool_get(&qt->sub0, hdr_pg_idx);
716 unsigned int len = FIELD_GET(FBNIC_RCD_AL_BUFF_LEN_MASK, rcd);
717 unsigned int frame_sz, hdr_pg_start, hdr_pg_end, headroom;
718 unsigned char *hdr_start;
719
720 /* data_hard_start should always be NULL when this is called */
721 WARN_ON_ONCE(pkt->buff.data_hard_start);
722
723 /* Short-cut the end calculation if we know page is fully consumed */
724 hdr_pg_end = FIELD_GET(FBNIC_RCD_AL_PAGE_FIN, rcd) ?
725 FBNIC_BD_FRAG_SIZE : fbnic_hdr_pg_end(hdr_pg_off, len);
726 hdr_pg_start = fbnic_hdr_pg_start(hdr_pg_off);
727
728 headroom = hdr_pg_off - hdr_pg_start + FBNIC_RX_PAD;
729 frame_sz = hdr_pg_end - hdr_pg_start;
730 xdp_init_buff(&pkt->buff, frame_sz, NULL);
731 hdr_pg_start += (FBNIC_RCD_AL_BUFF_FRAG_MASK & rcd) *
732 FBNIC_BD_FRAG_SIZE;
733
734 /* Sync DMA buffer */
735 dma_sync_single_range_for_cpu(nv->dev, page_pool_get_dma_addr(page),
736 hdr_pg_start, frame_sz,
737 DMA_BIDIRECTIONAL);
738
739 /* Build frame around buffer */
740 hdr_start = page_address(page) + hdr_pg_start;
741
742 xdp_prepare_buff(&pkt->buff, hdr_start, headroom,
743 len - FBNIC_RX_PAD, true);
744
745 pkt->data_truesize = 0;
746 pkt->data_len = 0;
747 pkt->nr_frags = 0;
748 }
749
fbnic_add_rx_frag(struct fbnic_napi_vector * nv,u64 rcd,struct fbnic_pkt_buff * pkt,struct fbnic_q_triad * qt)750 static void fbnic_add_rx_frag(struct fbnic_napi_vector *nv, u64 rcd,
751 struct fbnic_pkt_buff *pkt,
752 struct fbnic_q_triad *qt)
753 {
754 unsigned int pg_idx = FIELD_GET(FBNIC_RCD_AL_BUFF_PAGE_MASK, rcd);
755 unsigned int pg_off = FIELD_GET(FBNIC_RCD_AL_BUFF_OFF_MASK, rcd);
756 unsigned int len = FIELD_GET(FBNIC_RCD_AL_BUFF_LEN_MASK, rcd);
757 struct page *page = fbnic_page_pool_get(&qt->sub1, pg_idx);
758 struct skb_shared_info *shinfo;
759 unsigned int truesize;
760
761 truesize = FIELD_GET(FBNIC_RCD_AL_PAGE_FIN, rcd) ?
762 FBNIC_BD_FRAG_SIZE - pg_off : ALIGN(len, 128);
763
764 pg_off += (FBNIC_RCD_AL_BUFF_FRAG_MASK & rcd) *
765 FBNIC_BD_FRAG_SIZE;
766
767 /* Sync DMA buffer */
768 dma_sync_single_range_for_cpu(nv->dev, page_pool_get_dma_addr(page),
769 pg_off, truesize, DMA_BIDIRECTIONAL);
770
771 /* Add page to xdp shared info */
772 shinfo = xdp_get_shared_info_from_buff(&pkt->buff);
773
774 /* We use gso_segs to store truesize */
775 pkt->data_truesize += truesize;
776
777 __skb_fill_page_desc_noacc(shinfo, pkt->nr_frags++, page, pg_off, len);
778
779 /* Store data_len in gso_size */
780 pkt->data_len += len;
781 }
782
fbnic_put_pkt_buff(struct fbnic_napi_vector * nv,struct fbnic_pkt_buff * pkt,int budget)783 static void fbnic_put_pkt_buff(struct fbnic_napi_vector *nv,
784 struct fbnic_pkt_buff *pkt, int budget)
785 {
786 struct skb_shared_info *shinfo;
787 struct page *page;
788 int nr_frags;
789
790 if (!pkt->buff.data_hard_start)
791 return;
792
793 shinfo = xdp_get_shared_info_from_buff(&pkt->buff);
794 nr_frags = pkt->nr_frags;
795
796 while (nr_frags--) {
797 page = skb_frag_page(&shinfo->frags[nr_frags]);
798 page_pool_put_full_page(nv->page_pool, page, !!budget);
799 }
800
801 page = virt_to_page(pkt->buff.data_hard_start);
802 page_pool_put_full_page(nv->page_pool, page, !!budget);
803 }
804
fbnic_build_skb(struct fbnic_napi_vector * nv,struct fbnic_pkt_buff * pkt)805 static struct sk_buff *fbnic_build_skb(struct fbnic_napi_vector *nv,
806 struct fbnic_pkt_buff *pkt)
807 {
808 unsigned int nr_frags = pkt->nr_frags;
809 struct skb_shared_info *shinfo;
810 unsigned int truesize;
811 struct sk_buff *skb;
812
813 truesize = xdp_data_hard_end(&pkt->buff) + FBNIC_RX_TROOM -
814 pkt->buff.data_hard_start;
815
816 /* Build frame around buffer */
817 skb = napi_build_skb(pkt->buff.data_hard_start, truesize);
818 if (unlikely(!skb))
819 return NULL;
820
821 /* Push data pointer to start of data, put tail to end of data */
822 skb_reserve(skb, pkt->buff.data - pkt->buff.data_hard_start);
823 __skb_put(skb, pkt->buff.data_end - pkt->buff.data);
824
825 /* Add tracking for metadata at the start of the frame */
826 skb_metadata_set(skb, pkt->buff.data - pkt->buff.data_meta);
827
828 /* Add Rx frags */
829 if (nr_frags) {
830 /* Verify that shared info didn't move */
831 shinfo = xdp_get_shared_info_from_buff(&pkt->buff);
832 WARN_ON(skb_shinfo(skb) != shinfo);
833
834 skb->truesize += pkt->data_truesize;
835 skb->data_len += pkt->data_len;
836 shinfo->nr_frags = nr_frags;
837 skb->len += pkt->data_len;
838 }
839
840 skb_mark_for_recycle(skb);
841
842 /* Set MAC header specific fields */
843 skb->protocol = eth_type_trans(skb, nv->napi.dev);
844
845 /* Add timestamp if present */
846 if (pkt->hwtstamp)
847 skb_hwtstamps(skb)->hwtstamp = pkt->hwtstamp;
848
849 return skb;
850 }
851
fbnic_skb_hash_type(u64 rcd)852 static enum pkt_hash_types fbnic_skb_hash_type(u64 rcd)
853 {
854 return (FBNIC_RCD_META_L4_TYPE_MASK & rcd) ? PKT_HASH_TYPE_L4 :
855 (FBNIC_RCD_META_L3_TYPE_MASK & rcd) ? PKT_HASH_TYPE_L3 :
856 PKT_HASH_TYPE_L2;
857 }
858
fbnic_rx_tstamp(struct fbnic_napi_vector * nv,u64 rcd,struct fbnic_pkt_buff * pkt)859 static void fbnic_rx_tstamp(struct fbnic_napi_vector *nv, u64 rcd,
860 struct fbnic_pkt_buff *pkt)
861 {
862 struct fbnic_net *fbn;
863 u64 ns, ts;
864
865 if (!FIELD_GET(FBNIC_RCD_OPT_META_TS, rcd))
866 return;
867
868 fbn = netdev_priv(nv->napi.dev);
869 ts = FIELD_GET(FBNIC_RCD_OPT_META_TS_MASK, rcd);
870 ns = fbnic_ts40_to_ns(fbn, ts);
871
872 /* Add timestamp to shared info */
873 pkt->hwtstamp = ns_to_ktime(ns);
874 }
875
fbnic_populate_skb_fields(struct fbnic_napi_vector * nv,u64 rcd,struct sk_buff * skb,struct fbnic_q_triad * qt)876 static void fbnic_populate_skb_fields(struct fbnic_napi_vector *nv,
877 u64 rcd, struct sk_buff *skb,
878 struct fbnic_q_triad *qt)
879 {
880 struct net_device *netdev = nv->napi.dev;
881 struct fbnic_ring *rcq = &qt->cmpl;
882
883 fbnic_rx_csum(rcd, skb, rcq);
884
885 if (netdev->features & NETIF_F_RXHASH)
886 skb_set_hash(skb,
887 FIELD_GET(FBNIC_RCD_META_RSS_HASH_MASK, rcd),
888 fbnic_skb_hash_type(rcd));
889
890 skb_record_rx_queue(skb, rcq->q_idx);
891 }
892
fbnic_rcd_metadata_err(u64 rcd)893 static bool fbnic_rcd_metadata_err(u64 rcd)
894 {
895 return !!(FBNIC_RCD_META_UNCORRECTABLE_ERR_MASK & rcd);
896 }
897
fbnic_clean_rcq(struct fbnic_napi_vector * nv,struct fbnic_q_triad * qt,int budget)898 static int fbnic_clean_rcq(struct fbnic_napi_vector *nv,
899 struct fbnic_q_triad *qt, int budget)
900 {
901 unsigned int packets = 0, bytes = 0, dropped = 0;
902 struct fbnic_ring *rcq = &qt->cmpl;
903 struct fbnic_pkt_buff *pkt;
904 s32 head0 = -1, head1 = -1;
905 __le64 *raw_rcd, done;
906 u32 head = rcq->head;
907
908 done = (head & (rcq->size_mask + 1)) ? cpu_to_le64(FBNIC_RCD_DONE) : 0;
909 raw_rcd = &rcq->desc[head & rcq->size_mask];
910 pkt = rcq->pkt;
911
912 /* Walk the completion queue collecting the heads reported by NIC */
913 while (likely(packets < budget)) {
914 struct sk_buff *skb = ERR_PTR(-EINVAL);
915 u64 rcd;
916
917 if ((*raw_rcd & cpu_to_le64(FBNIC_RCD_DONE)) == done)
918 break;
919
920 dma_rmb();
921
922 rcd = le64_to_cpu(*raw_rcd);
923
924 switch (FIELD_GET(FBNIC_RCD_TYPE_MASK, rcd)) {
925 case FBNIC_RCD_TYPE_HDR_AL:
926 head0 = FIELD_GET(FBNIC_RCD_AL_BUFF_PAGE_MASK, rcd);
927 fbnic_pkt_prepare(nv, rcd, pkt, qt);
928
929 break;
930 case FBNIC_RCD_TYPE_PAY_AL:
931 head1 = FIELD_GET(FBNIC_RCD_AL_BUFF_PAGE_MASK, rcd);
932 fbnic_add_rx_frag(nv, rcd, pkt, qt);
933
934 break;
935 case FBNIC_RCD_TYPE_OPT_META:
936 /* Only type 0 is currently supported */
937 if (FIELD_GET(FBNIC_RCD_OPT_META_TYPE_MASK, rcd))
938 break;
939
940 fbnic_rx_tstamp(nv, rcd, pkt);
941
942 /* We currently ignore the action table index */
943 break;
944 case FBNIC_RCD_TYPE_META:
945 if (likely(!fbnic_rcd_metadata_err(rcd)))
946 skb = fbnic_build_skb(nv, pkt);
947
948 /* Populate skb and invalidate XDP */
949 if (!IS_ERR_OR_NULL(skb)) {
950 fbnic_populate_skb_fields(nv, rcd, skb, qt);
951
952 packets++;
953 bytes += skb->len;
954
955 napi_gro_receive(&nv->napi, skb);
956 } else {
957 dropped++;
958 fbnic_put_pkt_buff(nv, pkt, 1);
959 }
960
961 pkt->buff.data_hard_start = NULL;
962
963 break;
964 }
965
966 raw_rcd++;
967 head++;
968 if (!(head & rcq->size_mask)) {
969 done ^= cpu_to_le64(FBNIC_RCD_DONE);
970 raw_rcd = &rcq->desc[0];
971 }
972 }
973
974 u64_stats_update_begin(&rcq->stats.syncp);
975 rcq->stats.packets += packets;
976 rcq->stats.bytes += bytes;
977 /* Re-add ethernet header length (removed in fbnic_build_skb) */
978 rcq->stats.bytes += ETH_HLEN * packets;
979 rcq->stats.dropped += dropped;
980 u64_stats_update_end(&rcq->stats.syncp);
981
982 /* Unmap and free processed buffers */
983 if (head0 >= 0)
984 fbnic_clean_bdq(nv, budget, &qt->sub0, head0);
985 fbnic_fill_bdq(nv, &qt->sub0);
986
987 if (head1 >= 0)
988 fbnic_clean_bdq(nv, budget, &qt->sub1, head1);
989 fbnic_fill_bdq(nv, &qt->sub1);
990
991 /* Record the current head/tail of the queue */
992 if (rcq->head != head) {
993 rcq->head = head;
994 writel(head & rcq->size_mask, rcq->doorbell);
995 }
996
997 return packets;
998 }
999
fbnic_nv_irq_disable(struct fbnic_napi_vector * nv)1000 static void fbnic_nv_irq_disable(struct fbnic_napi_vector *nv)
1001 {
1002 struct fbnic_dev *fbd = nv->fbd;
1003 u32 v_idx = nv->v_idx;
1004
1005 fbnic_wr32(fbd, FBNIC_INTR_MASK_SET(v_idx / 32), 1 << (v_idx % 32));
1006 }
1007
fbnic_nv_irq_rearm(struct fbnic_napi_vector * nv)1008 static void fbnic_nv_irq_rearm(struct fbnic_napi_vector *nv)
1009 {
1010 struct fbnic_dev *fbd = nv->fbd;
1011 u32 v_idx = nv->v_idx;
1012
1013 fbnic_wr32(fbd, FBNIC_INTR_CQ_REARM(v_idx),
1014 FBNIC_INTR_CQ_REARM_INTR_UNMASK);
1015 }
1016
fbnic_poll(struct napi_struct * napi,int budget)1017 static int fbnic_poll(struct napi_struct *napi, int budget)
1018 {
1019 struct fbnic_napi_vector *nv = container_of(napi,
1020 struct fbnic_napi_vector,
1021 napi);
1022 int i, j, work_done = 0;
1023
1024 for (i = 0; i < nv->txt_count; i++)
1025 fbnic_clean_tcq(nv, &nv->qt[i], budget);
1026
1027 for (j = 0; j < nv->rxt_count; j++, i++)
1028 work_done += fbnic_clean_rcq(nv, &nv->qt[i], budget);
1029
1030 if (work_done >= budget)
1031 return budget;
1032
1033 if (likely(napi_complete_done(napi, work_done)))
1034 fbnic_nv_irq_rearm(nv);
1035
1036 return work_done;
1037 }
1038
fbnic_msix_clean_rings(int __always_unused irq,void * data)1039 irqreturn_t fbnic_msix_clean_rings(int __always_unused irq, void *data)
1040 {
1041 struct fbnic_napi_vector *nv = *(void **)data;
1042
1043 napi_schedule_irqoff(&nv->napi);
1044
1045 return IRQ_HANDLED;
1046 }
1047
fbnic_aggregate_ring_rx_counters(struct fbnic_net * fbn,struct fbnic_ring * rxr)1048 void fbnic_aggregate_ring_rx_counters(struct fbnic_net *fbn,
1049 struct fbnic_ring *rxr)
1050 {
1051 struct fbnic_queue_stats *stats = &rxr->stats;
1052
1053 /* Capture stats from queues before dissasociating them */
1054 fbn->rx_stats.bytes += stats->bytes;
1055 fbn->rx_stats.packets += stats->packets;
1056 fbn->rx_stats.dropped += stats->dropped;
1057 }
1058
fbnic_aggregate_ring_tx_counters(struct fbnic_net * fbn,struct fbnic_ring * txr)1059 void fbnic_aggregate_ring_tx_counters(struct fbnic_net *fbn,
1060 struct fbnic_ring *txr)
1061 {
1062 struct fbnic_queue_stats *stats = &txr->stats;
1063
1064 /* Capture stats from queues before dissasociating them */
1065 fbn->tx_stats.bytes += stats->bytes;
1066 fbn->tx_stats.packets += stats->packets;
1067 fbn->tx_stats.dropped += stats->dropped;
1068 fbn->tx_stats.ts_lost += stats->ts_lost;
1069 fbn->tx_stats.ts_packets += stats->ts_packets;
1070 }
1071
fbnic_remove_tx_ring(struct fbnic_net * fbn,struct fbnic_ring * txr)1072 static void fbnic_remove_tx_ring(struct fbnic_net *fbn,
1073 struct fbnic_ring *txr)
1074 {
1075 if (!(txr->flags & FBNIC_RING_F_STATS))
1076 return;
1077
1078 fbnic_aggregate_ring_tx_counters(fbn, txr);
1079
1080 /* Remove pointer to the Tx ring */
1081 WARN_ON(fbn->tx[txr->q_idx] && fbn->tx[txr->q_idx] != txr);
1082 fbn->tx[txr->q_idx] = NULL;
1083 }
1084
fbnic_remove_rx_ring(struct fbnic_net * fbn,struct fbnic_ring * rxr)1085 static void fbnic_remove_rx_ring(struct fbnic_net *fbn,
1086 struct fbnic_ring *rxr)
1087 {
1088 if (!(rxr->flags & FBNIC_RING_F_STATS))
1089 return;
1090
1091 fbnic_aggregate_ring_rx_counters(fbn, rxr);
1092
1093 /* Remove pointer to the Rx ring */
1094 WARN_ON(fbn->rx[rxr->q_idx] && fbn->rx[rxr->q_idx] != rxr);
1095 fbn->rx[rxr->q_idx] = NULL;
1096 }
1097
fbnic_free_napi_vector(struct fbnic_net * fbn,struct fbnic_napi_vector * nv)1098 static void fbnic_free_napi_vector(struct fbnic_net *fbn,
1099 struct fbnic_napi_vector *nv)
1100 {
1101 struct fbnic_dev *fbd = nv->fbd;
1102 int i, j;
1103
1104 for (i = 0; i < nv->txt_count; i++) {
1105 fbnic_remove_tx_ring(fbn, &nv->qt[i].sub0);
1106 fbnic_remove_tx_ring(fbn, &nv->qt[i].cmpl);
1107 }
1108
1109 for (j = 0; j < nv->rxt_count; j++, i++) {
1110 fbnic_remove_rx_ring(fbn, &nv->qt[i].sub0);
1111 fbnic_remove_rx_ring(fbn, &nv->qt[i].sub1);
1112 fbnic_remove_rx_ring(fbn, &nv->qt[i].cmpl);
1113 }
1114
1115 fbnic_napi_free_irq(fbd, nv);
1116 page_pool_destroy(nv->page_pool);
1117 netif_napi_del(&nv->napi);
1118 fbn->napi[fbnic_napi_idx(nv)] = NULL;
1119 kfree(nv);
1120 }
1121
fbnic_free_napi_vectors(struct fbnic_net * fbn)1122 void fbnic_free_napi_vectors(struct fbnic_net *fbn)
1123 {
1124 int i;
1125
1126 for (i = 0; i < fbn->num_napi; i++)
1127 if (fbn->napi[i])
1128 fbnic_free_napi_vector(fbn, fbn->napi[i]);
1129 }
1130
1131 #define FBNIC_PAGE_POOL_FLAGS \
1132 (PP_FLAG_DMA_MAP | PP_FLAG_DMA_SYNC_DEV)
1133
fbnic_alloc_nv_page_pool(struct fbnic_net * fbn,struct fbnic_napi_vector * nv)1134 static int fbnic_alloc_nv_page_pool(struct fbnic_net *fbn,
1135 struct fbnic_napi_vector *nv)
1136 {
1137 struct page_pool_params pp_params = {
1138 .order = 0,
1139 .flags = FBNIC_PAGE_POOL_FLAGS,
1140 .pool_size = (fbn->hpq_size + fbn->ppq_size) * nv->rxt_count,
1141 .nid = NUMA_NO_NODE,
1142 .dev = nv->dev,
1143 .dma_dir = DMA_BIDIRECTIONAL,
1144 .offset = 0,
1145 .max_len = PAGE_SIZE
1146 };
1147 struct page_pool *pp;
1148
1149 /* Page pool cannot exceed a size of 32768. This doesn't limit the
1150 * pages on the ring but the number we can have cached waiting on
1151 * the next use.
1152 *
1153 * TBD: Can this be reduced further? Would a multiple of
1154 * NAPI_POLL_WEIGHT possibly make more sense? The question is how
1155 * may pages do we need to hold in reserve to get the best return
1156 * without hogging too much system memory.
1157 */
1158 if (pp_params.pool_size > 32768)
1159 pp_params.pool_size = 32768;
1160
1161 pp = page_pool_create(&pp_params);
1162 if (IS_ERR(pp))
1163 return PTR_ERR(pp);
1164
1165 nv->page_pool = pp;
1166
1167 return 0;
1168 }
1169
fbnic_ring_init(struct fbnic_ring * ring,u32 __iomem * doorbell,int q_idx,u8 flags)1170 static void fbnic_ring_init(struct fbnic_ring *ring, u32 __iomem *doorbell,
1171 int q_idx, u8 flags)
1172 {
1173 u64_stats_init(&ring->stats.syncp);
1174 ring->doorbell = doorbell;
1175 ring->q_idx = q_idx;
1176 ring->flags = flags;
1177 }
1178
fbnic_alloc_napi_vector(struct fbnic_dev * fbd,struct fbnic_net * fbn,unsigned int v_count,unsigned int v_idx,unsigned int txq_count,unsigned int txq_idx,unsigned int rxq_count,unsigned int rxq_idx)1179 static int fbnic_alloc_napi_vector(struct fbnic_dev *fbd, struct fbnic_net *fbn,
1180 unsigned int v_count, unsigned int v_idx,
1181 unsigned int txq_count, unsigned int txq_idx,
1182 unsigned int rxq_count, unsigned int rxq_idx)
1183 {
1184 int txt_count = txq_count, rxt_count = rxq_count;
1185 u32 __iomem *uc_addr = fbd->uc_addr0;
1186 struct fbnic_napi_vector *nv;
1187 struct fbnic_q_triad *qt;
1188 int qt_count, err;
1189 u32 __iomem *db;
1190
1191 qt_count = txt_count + rxq_count;
1192 if (!qt_count)
1193 return -EINVAL;
1194
1195 /* If MMIO has already failed there are no rings to initialize */
1196 if (!uc_addr)
1197 return -EIO;
1198
1199 /* Allocate NAPI vector and queue triads */
1200 nv = kzalloc(struct_size(nv, qt, qt_count), GFP_KERNEL);
1201 if (!nv)
1202 return -ENOMEM;
1203
1204 /* Record queue triad counts */
1205 nv->txt_count = txt_count;
1206 nv->rxt_count = rxt_count;
1207
1208 /* Provide pointer back to fbnic and MSI-X vectors */
1209 nv->fbd = fbd;
1210 nv->v_idx = v_idx;
1211
1212 /* Tie napi to netdev */
1213 fbn->napi[fbnic_napi_idx(nv)] = nv;
1214 netif_napi_add(fbn->netdev, &nv->napi, fbnic_poll);
1215
1216 /* Record IRQ to NAPI struct */
1217 netif_napi_set_irq(&nv->napi,
1218 pci_irq_vector(to_pci_dev(fbd->dev), nv->v_idx));
1219
1220 /* Tie nv back to PCIe dev */
1221 nv->dev = fbd->dev;
1222
1223 /* Allocate page pool */
1224 if (rxq_count) {
1225 err = fbnic_alloc_nv_page_pool(fbn, nv);
1226 if (err)
1227 goto napi_del;
1228 }
1229
1230 /* Request the IRQ for napi vector */
1231 err = fbnic_napi_request_irq(fbd, nv);
1232 if (err)
1233 goto pp_destroy;
1234
1235 /* Initialize queue triads */
1236 qt = nv->qt;
1237
1238 while (txt_count) {
1239 /* Configure Tx queue */
1240 db = &uc_addr[FBNIC_QUEUE(txq_idx) + FBNIC_QUEUE_TWQ0_TAIL];
1241
1242 /* Assign Tx queue to netdev if applicable */
1243 if (txq_count > 0) {
1244 u8 flags = FBNIC_RING_F_CTX | FBNIC_RING_F_STATS;
1245
1246 fbnic_ring_init(&qt->sub0, db, txq_idx, flags);
1247 fbn->tx[txq_idx] = &qt->sub0;
1248 txq_count--;
1249 } else {
1250 fbnic_ring_init(&qt->sub0, db, 0,
1251 FBNIC_RING_F_DISABLED);
1252 }
1253
1254 /* Configure Tx completion queue */
1255 db = &uc_addr[FBNIC_QUEUE(txq_idx) + FBNIC_QUEUE_TCQ_HEAD];
1256 fbnic_ring_init(&qt->cmpl, db, 0, 0);
1257
1258 /* Update Tx queue index */
1259 txt_count--;
1260 txq_idx += v_count;
1261
1262 /* Move to next queue triad */
1263 qt++;
1264 }
1265
1266 while (rxt_count) {
1267 /* Configure header queue */
1268 db = &uc_addr[FBNIC_QUEUE(rxq_idx) + FBNIC_QUEUE_BDQ_HPQ_TAIL];
1269 fbnic_ring_init(&qt->sub0, db, 0, FBNIC_RING_F_CTX);
1270
1271 /* Configure payload queue */
1272 db = &uc_addr[FBNIC_QUEUE(rxq_idx) + FBNIC_QUEUE_BDQ_PPQ_TAIL];
1273 fbnic_ring_init(&qt->sub1, db, 0, FBNIC_RING_F_CTX);
1274
1275 /* Configure Rx completion queue */
1276 db = &uc_addr[FBNIC_QUEUE(rxq_idx) + FBNIC_QUEUE_RCQ_HEAD];
1277 fbnic_ring_init(&qt->cmpl, db, rxq_idx, FBNIC_RING_F_STATS);
1278 fbn->rx[rxq_idx] = &qt->cmpl;
1279
1280 /* Update Rx queue index */
1281 rxt_count--;
1282 rxq_idx += v_count;
1283
1284 /* Move to next queue triad */
1285 qt++;
1286 }
1287
1288 return 0;
1289
1290 pp_destroy:
1291 page_pool_destroy(nv->page_pool);
1292 napi_del:
1293 netif_napi_del(&nv->napi);
1294 fbn->napi[fbnic_napi_idx(nv)] = NULL;
1295 kfree(nv);
1296 return err;
1297 }
1298
fbnic_alloc_napi_vectors(struct fbnic_net * fbn)1299 int fbnic_alloc_napi_vectors(struct fbnic_net *fbn)
1300 {
1301 unsigned int txq_idx = 0, rxq_idx = 0, v_idx = FBNIC_NON_NAPI_VECTORS;
1302 unsigned int num_tx = fbn->num_tx_queues;
1303 unsigned int num_rx = fbn->num_rx_queues;
1304 unsigned int num_napi = fbn->num_napi;
1305 struct fbnic_dev *fbd = fbn->fbd;
1306 int err;
1307
1308 /* Allocate 1 Tx queue per napi vector */
1309 if (num_napi < FBNIC_MAX_TXQS && num_napi == num_tx + num_rx) {
1310 while (num_tx) {
1311 err = fbnic_alloc_napi_vector(fbd, fbn,
1312 num_napi, v_idx,
1313 1, txq_idx, 0, 0);
1314 if (err)
1315 goto free_vectors;
1316
1317 /* Update counts and index */
1318 num_tx--;
1319 txq_idx++;
1320
1321 v_idx++;
1322 }
1323 }
1324
1325 /* Allocate Tx/Rx queue pairs per vector, or allocate remaining Rx */
1326 while (num_rx | num_tx) {
1327 int tqpv = DIV_ROUND_UP(num_tx, num_napi - txq_idx);
1328 int rqpv = DIV_ROUND_UP(num_rx, num_napi - rxq_idx);
1329
1330 err = fbnic_alloc_napi_vector(fbd, fbn, num_napi, v_idx,
1331 tqpv, txq_idx, rqpv, rxq_idx);
1332 if (err)
1333 goto free_vectors;
1334
1335 /* Update counts and index */
1336 num_tx -= tqpv;
1337 txq_idx++;
1338
1339 num_rx -= rqpv;
1340 rxq_idx++;
1341
1342 v_idx++;
1343 }
1344
1345 return 0;
1346
1347 free_vectors:
1348 fbnic_free_napi_vectors(fbn);
1349
1350 return -ENOMEM;
1351 }
1352
fbnic_free_ring_resources(struct device * dev,struct fbnic_ring * ring)1353 static void fbnic_free_ring_resources(struct device *dev,
1354 struct fbnic_ring *ring)
1355 {
1356 kvfree(ring->buffer);
1357 ring->buffer = NULL;
1358
1359 /* If size is not set there are no descriptors present */
1360 if (!ring->size)
1361 return;
1362
1363 dma_free_coherent(dev, ring->size, ring->desc, ring->dma);
1364 ring->size_mask = 0;
1365 ring->size = 0;
1366 }
1367
fbnic_alloc_tx_ring_desc(struct fbnic_net * fbn,struct fbnic_ring * txr)1368 static int fbnic_alloc_tx_ring_desc(struct fbnic_net *fbn,
1369 struct fbnic_ring *txr)
1370 {
1371 struct device *dev = fbn->netdev->dev.parent;
1372 size_t size;
1373
1374 /* Round size up to nearest 4K */
1375 size = ALIGN(array_size(sizeof(*txr->desc), fbn->txq_size), 4096);
1376
1377 txr->desc = dma_alloc_coherent(dev, size, &txr->dma,
1378 GFP_KERNEL | __GFP_NOWARN);
1379 if (!txr->desc)
1380 return -ENOMEM;
1381
1382 /* txq_size should be a power of 2, so mask is just that -1 */
1383 txr->size_mask = fbn->txq_size - 1;
1384 txr->size = size;
1385
1386 return 0;
1387 }
1388
fbnic_alloc_tx_ring_buffer(struct fbnic_ring * txr)1389 static int fbnic_alloc_tx_ring_buffer(struct fbnic_ring *txr)
1390 {
1391 size_t size = array_size(sizeof(*txr->tx_buf), txr->size_mask + 1);
1392
1393 txr->tx_buf = kvzalloc(size, GFP_KERNEL | __GFP_NOWARN);
1394
1395 return txr->tx_buf ? 0 : -ENOMEM;
1396 }
1397
fbnic_alloc_tx_ring_resources(struct fbnic_net * fbn,struct fbnic_ring * txr)1398 static int fbnic_alloc_tx_ring_resources(struct fbnic_net *fbn,
1399 struct fbnic_ring *txr)
1400 {
1401 struct device *dev = fbn->netdev->dev.parent;
1402 int err;
1403
1404 if (txr->flags & FBNIC_RING_F_DISABLED)
1405 return 0;
1406
1407 err = fbnic_alloc_tx_ring_desc(fbn, txr);
1408 if (err)
1409 return err;
1410
1411 if (!(txr->flags & FBNIC_RING_F_CTX))
1412 return 0;
1413
1414 err = fbnic_alloc_tx_ring_buffer(txr);
1415 if (err)
1416 goto free_desc;
1417
1418 return 0;
1419
1420 free_desc:
1421 fbnic_free_ring_resources(dev, txr);
1422 return err;
1423 }
1424
fbnic_alloc_rx_ring_desc(struct fbnic_net * fbn,struct fbnic_ring * rxr)1425 static int fbnic_alloc_rx_ring_desc(struct fbnic_net *fbn,
1426 struct fbnic_ring *rxr)
1427 {
1428 struct device *dev = fbn->netdev->dev.parent;
1429 size_t desc_size = sizeof(*rxr->desc);
1430 u32 rxq_size;
1431 size_t size;
1432
1433 switch (rxr->doorbell - fbnic_ring_csr_base(rxr)) {
1434 case FBNIC_QUEUE_BDQ_HPQ_TAIL:
1435 rxq_size = fbn->hpq_size / FBNIC_BD_FRAG_COUNT;
1436 desc_size *= FBNIC_BD_FRAG_COUNT;
1437 break;
1438 case FBNIC_QUEUE_BDQ_PPQ_TAIL:
1439 rxq_size = fbn->ppq_size / FBNIC_BD_FRAG_COUNT;
1440 desc_size *= FBNIC_BD_FRAG_COUNT;
1441 break;
1442 case FBNIC_QUEUE_RCQ_HEAD:
1443 rxq_size = fbn->rcq_size;
1444 break;
1445 default:
1446 return -EINVAL;
1447 }
1448
1449 /* Round size up to nearest 4K */
1450 size = ALIGN(array_size(desc_size, rxq_size), 4096);
1451
1452 rxr->desc = dma_alloc_coherent(dev, size, &rxr->dma,
1453 GFP_KERNEL | __GFP_NOWARN);
1454 if (!rxr->desc)
1455 return -ENOMEM;
1456
1457 /* rxq_size should be a power of 2, so mask is just that -1 */
1458 rxr->size_mask = rxq_size - 1;
1459 rxr->size = size;
1460
1461 return 0;
1462 }
1463
fbnic_alloc_rx_ring_buffer(struct fbnic_ring * rxr)1464 static int fbnic_alloc_rx_ring_buffer(struct fbnic_ring *rxr)
1465 {
1466 size_t size = array_size(sizeof(*rxr->rx_buf), rxr->size_mask + 1);
1467
1468 if (rxr->flags & FBNIC_RING_F_CTX)
1469 size = sizeof(*rxr->rx_buf) * (rxr->size_mask + 1);
1470 else
1471 size = sizeof(*rxr->pkt);
1472
1473 rxr->rx_buf = kvzalloc(size, GFP_KERNEL | __GFP_NOWARN);
1474
1475 return rxr->rx_buf ? 0 : -ENOMEM;
1476 }
1477
fbnic_alloc_rx_ring_resources(struct fbnic_net * fbn,struct fbnic_ring * rxr)1478 static int fbnic_alloc_rx_ring_resources(struct fbnic_net *fbn,
1479 struct fbnic_ring *rxr)
1480 {
1481 struct device *dev = fbn->netdev->dev.parent;
1482 int err;
1483
1484 err = fbnic_alloc_rx_ring_desc(fbn, rxr);
1485 if (err)
1486 return err;
1487
1488 err = fbnic_alloc_rx_ring_buffer(rxr);
1489 if (err)
1490 goto free_desc;
1491
1492 return 0;
1493
1494 free_desc:
1495 fbnic_free_ring_resources(dev, rxr);
1496 return err;
1497 }
1498
fbnic_free_qt_resources(struct fbnic_net * fbn,struct fbnic_q_triad * qt)1499 static void fbnic_free_qt_resources(struct fbnic_net *fbn,
1500 struct fbnic_q_triad *qt)
1501 {
1502 struct device *dev = fbn->netdev->dev.parent;
1503
1504 fbnic_free_ring_resources(dev, &qt->cmpl);
1505 fbnic_free_ring_resources(dev, &qt->sub1);
1506 fbnic_free_ring_resources(dev, &qt->sub0);
1507 }
1508
fbnic_alloc_tx_qt_resources(struct fbnic_net * fbn,struct fbnic_q_triad * qt)1509 static int fbnic_alloc_tx_qt_resources(struct fbnic_net *fbn,
1510 struct fbnic_q_triad *qt)
1511 {
1512 struct device *dev = fbn->netdev->dev.parent;
1513 int err;
1514
1515 err = fbnic_alloc_tx_ring_resources(fbn, &qt->sub0);
1516 if (err)
1517 return err;
1518
1519 err = fbnic_alloc_tx_ring_resources(fbn, &qt->cmpl);
1520 if (err)
1521 goto free_sub1;
1522
1523 return 0;
1524
1525 free_sub1:
1526 fbnic_free_ring_resources(dev, &qt->sub0);
1527 return err;
1528 }
1529
fbnic_alloc_rx_qt_resources(struct fbnic_net * fbn,struct fbnic_q_triad * qt)1530 static int fbnic_alloc_rx_qt_resources(struct fbnic_net *fbn,
1531 struct fbnic_q_triad *qt)
1532 {
1533 struct device *dev = fbn->netdev->dev.parent;
1534 int err;
1535
1536 err = fbnic_alloc_rx_ring_resources(fbn, &qt->sub0);
1537 if (err)
1538 return err;
1539
1540 err = fbnic_alloc_rx_ring_resources(fbn, &qt->sub1);
1541 if (err)
1542 goto free_sub0;
1543
1544 err = fbnic_alloc_rx_ring_resources(fbn, &qt->cmpl);
1545 if (err)
1546 goto free_sub1;
1547
1548 return 0;
1549
1550 free_sub1:
1551 fbnic_free_ring_resources(dev, &qt->sub1);
1552 free_sub0:
1553 fbnic_free_ring_resources(dev, &qt->sub0);
1554 return err;
1555 }
1556
fbnic_free_nv_resources(struct fbnic_net * fbn,struct fbnic_napi_vector * nv)1557 static void fbnic_free_nv_resources(struct fbnic_net *fbn,
1558 struct fbnic_napi_vector *nv)
1559 {
1560 int i, j;
1561
1562 /* Free Tx Resources */
1563 for (i = 0; i < nv->txt_count; i++)
1564 fbnic_free_qt_resources(fbn, &nv->qt[i]);
1565
1566 for (j = 0; j < nv->rxt_count; j++, i++)
1567 fbnic_free_qt_resources(fbn, &nv->qt[i]);
1568 }
1569
fbnic_alloc_nv_resources(struct fbnic_net * fbn,struct fbnic_napi_vector * nv)1570 static int fbnic_alloc_nv_resources(struct fbnic_net *fbn,
1571 struct fbnic_napi_vector *nv)
1572 {
1573 int i, j, err;
1574
1575 /* Allocate Tx Resources */
1576 for (i = 0; i < nv->txt_count; i++) {
1577 err = fbnic_alloc_tx_qt_resources(fbn, &nv->qt[i]);
1578 if (err)
1579 goto free_resources;
1580 }
1581
1582 /* Allocate Rx Resources */
1583 for (j = 0; j < nv->rxt_count; j++, i++) {
1584 err = fbnic_alloc_rx_qt_resources(fbn, &nv->qt[i]);
1585 if (err)
1586 goto free_resources;
1587 }
1588
1589 return 0;
1590
1591 free_resources:
1592 while (i--)
1593 fbnic_free_qt_resources(fbn, &nv->qt[i]);
1594 return err;
1595 }
1596
fbnic_free_resources(struct fbnic_net * fbn)1597 void fbnic_free_resources(struct fbnic_net *fbn)
1598 {
1599 int i;
1600
1601 for (i = 0; i < fbn->num_napi; i++)
1602 fbnic_free_nv_resources(fbn, fbn->napi[i]);
1603 }
1604
fbnic_alloc_resources(struct fbnic_net * fbn)1605 int fbnic_alloc_resources(struct fbnic_net *fbn)
1606 {
1607 int i, err = -ENODEV;
1608
1609 for (i = 0; i < fbn->num_napi; i++) {
1610 err = fbnic_alloc_nv_resources(fbn, fbn->napi[i]);
1611 if (err)
1612 goto free_resources;
1613 }
1614
1615 return 0;
1616
1617 free_resources:
1618 while (i--)
1619 fbnic_free_nv_resources(fbn, fbn->napi[i]);
1620
1621 return err;
1622 }
1623
fbnic_set_netif_napi(struct fbnic_napi_vector * nv)1624 static void fbnic_set_netif_napi(struct fbnic_napi_vector *nv)
1625 {
1626 int i, j;
1627
1628 /* Associate Tx queue with NAPI */
1629 for (i = 0; i < nv->txt_count; i++) {
1630 struct fbnic_q_triad *qt = &nv->qt[i];
1631
1632 netif_queue_set_napi(nv->napi.dev, qt->sub0.q_idx,
1633 NETDEV_QUEUE_TYPE_TX, &nv->napi);
1634 }
1635
1636 /* Associate Rx queue with NAPI */
1637 for (j = 0; j < nv->rxt_count; j++, i++) {
1638 struct fbnic_q_triad *qt = &nv->qt[i];
1639
1640 netif_queue_set_napi(nv->napi.dev, qt->cmpl.q_idx,
1641 NETDEV_QUEUE_TYPE_RX, &nv->napi);
1642 }
1643 }
1644
fbnic_reset_netif_napi(struct fbnic_napi_vector * nv)1645 static void fbnic_reset_netif_napi(struct fbnic_napi_vector *nv)
1646 {
1647 int i, j;
1648
1649 /* Disassociate Tx queue from NAPI */
1650 for (i = 0; i < nv->txt_count; i++) {
1651 struct fbnic_q_triad *qt = &nv->qt[i];
1652
1653 netif_queue_set_napi(nv->napi.dev, qt->sub0.q_idx,
1654 NETDEV_QUEUE_TYPE_TX, NULL);
1655 }
1656
1657 /* Disassociate Rx queue from NAPI */
1658 for (j = 0; j < nv->rxt_count; j++, i++) {
1659 struct fbnic_q_triad *qt = &nv->qt[i];
1660
1661 netif_queue_set_napi(nv->napi.dev, qt->cmpl.q_idx,
1662 NETDEV_QUEUE_TYPE_RX, NULL);
1663 }
1664 }
1665
fbnic_set_netif_queues(struct fbnic_net * fbn)1666 int fbnic_set_netif_queues(struct fbnic_net *fbn)
1667 {
1668 int i, err;
1669
1670 err = netif_set_real_num_queues(fbn->netdev, fbn->num_tx_queues,
1671 fbn->num_rx_queues);
1672 if (err)
1673 return err;
1674
1675 for (i = 0; i < fbn->num_napi; i++)
1676 fbnic_set_netif_napi(fbn->napi[i]);
1677
1678 return 0;
1679 }
1680
fbnic_reset_netif_queues(struct fbnic_net * fbn)1681 void fbnic_reset_netif_queues(struct fbnic_net *fbn)
1682 {
1683 int i;
1684
1685 for (i = 0; i < fbn->num_napi; i++)
1686 fbnic_reset_netif_napi(fbn->napi[i]);
1687 }
1688
fbnic_disable_twq0(struct fbnic_ring * txr)1689 static void fbnic_disable_twq0(struct fbnic_ring *txr)
1690 {
1691 u32 twq_ctl = fbnic_ring_rd32(txr, FBNIC_QUEUE_TWQ0_CTL);
1692
1693 twq_ctl &= ~FBNIC_QUEUE_TWQ_CTL_ENABLE;
1694
1695 fbnic_ring_wr32(txr, FBNIC_QUEUE_TWQ0_CTL, twq_ctl);
1696 }
1697
fbnic_disable_tcq(struct fbnic_ring * txr)1698 static void fbnic_disable_tcq(struct fbnic_ring *txr)
1699 {
1700 fbnic_ring_wr32(txr, FBNIC_QUEUE_TCQ_CTL, 0);
1701 fbnic_ring_wr32(txr, FBNIC_QUEUE_TIM_MASK, FBNIC_QUEUE_TIM_MASK_MASK);
1702 }
1703
fbnic_disable_bdq(struct fbnic_ring * hpq,struct fbnic_ring * ppq)1704 static void fbnic_disable_bdq(struct fbnic_ring *hpq, struct fbnic_ring *ppq)
1705 {
1706 u32 bdq_ctl = fbnic_ring_rd32(hpq, FBNIC_QUEUE_BDQ_CTL);
1707
1708 bdq_ctl &= ~FBNIC_QUEUE_BDQ_CTL_ENABLE;
1709
1710 fbnic_ring_wr32(hpq, FBNIC_QUEUE_BDQ_CTL, bdq_ctl);
1711 }
1712
fbnic_disable_rcq(struct fbnic_ring * rxr)1713 static void fbnic_disable_rcq(struct fbnic_ring *rxr)
1714 {
1715 fbnic_ring_wr32(rxr, FBNIC_QUEUE_RCQ_CTL, 0);
1716 fbnic_ring_wr32(rxr, FBNIC_QUEUE_RIM_MASK, FBNIC_QUEUE_RIM_MASK_MASK);
1717 }
1718
fbnic_napi_disable(struct fbnic_net * fbn)1719 void fbnic_napi_disable(struct fbnic_net *fbn)
1720 {
1721 int i;
1722
1723 for (i = 0; i < fbn->num_napi; i++) {
1724 napi_disable(&fbn->napi[i]->napi);
1725
1726 fbnic_nv_irq_disable(fbn->napi[i]);
1727 }
1728 }
1729
fbnic_disable(struct fbnic_net * fbn)1730 void fbnic_disable(struct fbnic_net *fbn)
1731 {
1732 struct fbnic_dev *fbd = fbn->fbd;
1733 int i, j, t;
1734
1735 for (i = 0; i < fbn->num_napi; i++) {
1736 struct fbnic_napi_vector *nv = fbn->napi[i];
1737
1738 /* Disable Tx queue triads */
1739 for (t = 0; t < nv->txt_count; t++) {
1740 struct fbnic_q_triad *qt = &nv->qt[t];
1741
1742 fbnic_disable_twq0(&qt->sub0);
1743 fbnic_disable_tcq(&qt->cmpl);
1744 }
1745
1746 /* Disable Rx queue triads */
1747 for (j = 0; j < nv->rxt_count; j++, t++) {
1748 struct fbnic_q_triad *qt = &nv->qt[t];
1749
1750 fbnic_disable_bdq(&qt->sub0, &qt->sub1);
1751 fbnic_disable_rcq(&qt->cmpl);
1752 }
1753 }
1754
1755 fbnic_wrfl(fbd);
1756 }
1757
fbnic_tx_flush(struct fbnic_dev * fbd)1758 static void fbnic_tx_flush(struct fbnic_dev *fbd)
1759 {
1760 netdev_warn(fbd->netdev, "triggering Tx flush\n");
1761
1762 fbnic_rmw32(fbd, FBNIC_TMI_DROP_CTRL, FBNIC_TMI_DROP_CTRL_EN,
1763 FBNIC_TMI_DROP_CTRL_EN);
1764 }
1765
fbnic_tx_flush_off(struct fbnic_dev * fbd)1766 static void fbnic_tx_flush_off(struct fbnic_dev *fbd)
1767 {
1768 fbnic_rmw32(fbd, FBNIC_TMI_DROP_CTRL, FBNIC_TMI_DROP_CTRL_EN, 0);
1769 }
1770
1771 struct fbnic_idle_regs {
1772 u32 reg_base;
1773 u8 reg_cnt;
1774 };
1775
fbnic_all_idle(struct fbnic_dev * fbd,const struct fbnic_idle_regs * regs,unsigned int nregs)1776 static bool fbnic_all_idle(struct fbnic_dev *fbd,
1777 const struct fbnic_idle_regs *regs,
1778 unsigned int nregs)
1779 {
1780 unsigned int i, j;
1781
1782 for (i = 0; i < nregs; i++) {
1783 for (j = 0; j < regs[i].reg_cnt; j++) {
1784 if (fbnic_rd32(fbd, regs[i].reg_base + j) != ~0U)
1785 return false;
1786 }
1787 }
1788 return true;
1789 }
1790
fbnic_idle_dump(struct fbnic_dev * fbd,const struct fbnic_idle_regs * regs,unsigned int nregs,const char * dir,int err)1791 static void fbnic_idle_dump(struct fbnic_dev *fbd,
1792 const struct fbnic_idle_regs *regs,
1793 unsigned int nregs, const char *dir, int err)
1794 {
1795 unsigned int i, j;
1796
1797 netdev_err(fbd->netdev, "error waiting for %s idle %d\n", dir, err);
1798 for (i = 0; i < nregs; i++)
1799 for (j = 0; j < regs[i].reg_cnt; j++)
1800 netdev_err(fbd->netdev, "0x%04x: %08x\n",
1801 regs[i].reg_base + j,
1802 fbnic_rd32(fbd, regs[i].reg_base + j));
1803 }
1804
fbnic_wait_all_queues_idle(struct fbnic_dev * fbd,bool may_fail)1805 int fbnic_wait_all_queues_idle(struct fbnic_dev *fbd, bool may_fail)
1806 {
1807 static const struct fbnic_idle_regs tx[] = {
1808 { FBNIC_QM_TWQ_IDLE(0), FBNIC_QM_TWQ_IDLE_CNT, },
1809 { FBNIC_QM_TQS_IDLE(0), FBNIC_QM_TQS_IDLE_CNT, },
1810 { FBNIC_QM_TDE_IDLE(0), FBNIC_QM_TDE_IDLE_CNT, },
1811 { FBNIC_QM_TCQ_IDLE(0), FBNIC_QM_TCQ_IDLE_CNT, },
1812 }, rx[] = {
1813 { FBNIC_QM_HPQ_IDLE(0), FBNIC_QM_HPQ_IDLE_CNT, },
1814 { FBNIC_QM_PPQ_IDLE(0), FBNIC_QM_PPQ_IDLE_CNT, },
1815 { FBNIC_QM_RCQ_IDLE(0), FBNIC_QM_RCQ_IDLE_CNT, },
1816 };
1817 bool idle;
1818 int err;
1819
1820 err = read_poll_timeout_atomic(fbnic_all_idle, idle, idle, 2, 500000,
1821 false, fbd, tx, ARRAY_SIZE(tx));
1822 if (err == -ETIMEDOUT) {
1823 fbnic_tx_flush(fbd);
1824 err = read_poll_timeout_atomic(fbnic_all_idle, idle, idle,
1825 2, 500000, false,
1826 fbd, tx, ARRAY_SIZE(tx));
1827 fbnic_tx_flush_off(fbd);
1828 }
1829 if (err) {
1830 fbnic_idle_dump(fbd, tx, ARRAY_SIZE(tx), "Tx", err);
1831 if (may_fail)
1832 return err;
1833 }
1834
1835 err = read_poll_timeout_atomic(fbnic_all_idle, idle, idle, 2, 500000,
1836 false, fbd, rx, ARRAY_SIZE(rx));
1837 if (err)
1838 fbnic_idle_dump(fbd, rx, ARRAY_SIZE(rx), "Rx", err);
1839 return err;
1840 }
1841
fbnic_flush(struct fbnic_net * fbn)1842 void fbnic_flush(struct fbnic_net *fbn)
1843 {
1844 int i;
1845
1846 for (i = 0; i < fbn->num_napi; i++) {
1847 struct fbnic_napi_vector *nv = fbn->napi[i];
1848 int j, t;
1849
1850 /* Flush any processed Tx Queue Triads and drop the rest */
1851 for (t = 0; t < nv->txt_count; t++) {
1852 struct fbnic_q_triad *qt = &nv->qt[t];
1853 struct netdev_queue *tx_queue;
1854
1855 /* Clean the work queues of unprocessed work */
1856 fbnic_clean_twq0(nv, 0, &qt->sub0, true, qt->sub0.tail);
1857
1858 /* Reset completion queue descriptor ring */
1859 memset(qt->cmpl.desc, 0, qt->cmpl.size);
1860
1861 /* Nothing else to do if Tx queue is disabled */
1862 if (qt->sub0.flags & FBNIC_RING_F_DISABLED)
1863 continue;
1864
1865 /* Reset BQL associated with Tx queue */
1866 tx_queue = netdev_get_tx_queue(nv->napi.dev,
1867 qt->sub0.q_idx);
1868 netdev_tx_reset_queue(tx_queue);
1869 }
1870
1871 /* Flush any processed Rx Queue Triads and drop the rest */
1872 for (j = 0; j < nv->rxt_count; j++, t++) {
1873 struct fbnic_q_triad *qt = &nv->qt[t];
1874
1875 /* Clean the work queues of unprocessed work */
1876 fbnic_clean_bdq(nv, 0, &qt->sub0, qt->sub0.tail);
1877 fbnic_clean_bdq(nv, 0, &qt->sub1, qt->sub1.tail);
1878
1879 /* Reset completion queue descriptor ring */
1880 memset(qt->cmpl.desc, 0, qt->cmpl.size);
1881
1882 fbnic_put_pkt_buff(nv, qt->cmpl.pkt, 0);
1883 qt->cmpl.pkt->buff.data_hard_start = NULL;
1884 }
1885 }
1886 }
1887
fbnic_fill(struct fbnic_net * fbn)1888 void fbnic_fill(struct fbnic_net *fbn)
1889 {
1890 int i;
1891
1892 for (i = 0; i < fbn->num_napi; i++) {
1893 struct fbnic_napi_vector *nv = fbn->napi[i];
1894 int j, t;
1895
1896 /* Configure NAPI mapping and populate pages
1897 * in the BDQ rings to use for Rx
1898 */
1899 for (j = 0, t = nv->txt_count; j < nv->rxt_count; j++, t++) {
1900 struct fbnic_q_triad *qt = &nv->qt[t];
1901
1902 /* Populate the header and payload BDQs */
1903 fbnic_fill_bdq(nv, &qt->sub0);
1904 fbnic_fill_bdq(nv, &qt->sub1);
1905 }
1906 }
1907 }
1908
fbnic_enable_twq0(struct fbnic_ring * twq)1909 static void fbnic_enable_twq0(struct fbnic_ring *twq)
1910 {
1911 u32 log_size = fls(twq->size_mask);
1912
1913 if (!twq->size_mask)
1914 return;
1915
1916 /* Reset head/tail */
1917 fbnic_ring_wr32(twq, FBNIC_QUEUE_TWQ0_CTL, FBNIC_QUEUE_TWQ_CTL_RESET);
1918 twq->tail = 0;
1919 twq->head = 0;
1920
1921 /* Store descriptor ring address and size */
1922 fbnic_ring_wr32(twq, FBNIC_QUEUE_TWQ0_BAL, lower_32_bits(twq->dma));
1923 fbnic_ring_wr32(twq, FBNIC_QUEUE_TWQ0_BAH, upper_32_bits(twq->dma));
1924
1925 /* Write lower 4 bits of log size as 64K ring size is 0 */
1926 fbnic_ring_wr32(twq, FBNIC_QUEUE_TWQ0_SIZE, log_size & 0xf);
1927
1928 fbnic_ring_wr32(twq, FBNIC_QUEUE_TWQ0_CTL, FBNIC_QUEUE_TWQ_CTL_ENABLE);
1929 }
1930
fbnic_enable_tcq(struct fbnic_napi_vector * nv,struct fbnic_ring * tcq)1931 static void fbnic_enable_tcq(struct fbnic_napi_vector *nv,
1932 struct fbnic_ring *tcq)
1933 {
1934 u32 log_size = fls(tcq->size_mask);
1935
1936 if (!tcq->size_mask)
1937 return;
1938
1939 /* Reset head/tail */
1940 fbnic_ring_wr32(tcq, FBNIC_QUEUE_TCQ_CTL, FBNIC_QUEUE_TCQ_CTL_RESET);
1941 tcq->tail = 0;
1942 tcq->head = 0;
1943
1944 /* Store descriptor ring address and size */
1945 fbnic_ring_wr32(tcq, FBNIC_QUEUE_TCQ_BAL, lower_32_bits(tcq->dma));
1946 fbnic_ring_wr32(tcq, FBNIC_QUEUE_TCQ_BAH, upper_32_bits(tcq->dma));
1947
1948 /* Write lower 4 bits of log size as 64K ring size is 0 */
1949 fbnic_ring_wr32(tcq, FBNIC_QUEUE_TCQ_SIZE, log_size & 0xf);
1950
1951 /* Store interrupt information for the completion queue */
1952 fbnic_ring_wr32(tcq, FBNIC_QUEUE_TIM_CTL, nv->v_idx);
1953 fbnic_ring_wr32(tcq, FBNIC_QUEUE_TIM_THRESHOLD, tcq->size_mask / 2);
1954 fbnic_ring_wr32(tcq, FBNIC_QUEUE_TIM_MASK, 0);
1955
1956 /* Enable queue */
1957 fbnic_ring_wr32(tcq, FBNIC_QUEUE_TCQ_CTL, FBNIC_QUEUE_TCQ_CTL_ENABLE);
1958 }
1959
fbnic_enable_bdq(struct fbnic_ring * hpq,struct fbnic_ring * ppq)1960 static void fbnic_enable_bdq(struct fbnic_ring *hpq, struct fbnic_ring *ppq)
1961 {
1962 u32 bdq_ctl = FBNIC_QUEUE_BDQ_CTL_ENABLE;
1963 u32 log_size;
1964
1965 /* Reset head/tail */
1966 fbnic_ring_wr32(hpq, FBNIC_QUEUE_BDQ_CTL, FBNIC_QUEUE_BDQ_CTL_RESET);
1967 ppq->tail = 0;
1968 ppq->head = 0;
1969 hpq->tail = 0;
1970 hpq->head = 0;
1971
1972 log_size = fls(hpq->size_mask);
1973
1974 /* Store descriptor ring address and size */
1975 fbnic_ring_wr32(hpq, FBNIC_QUEUE_BDQ_HPQ_BAL, lower_32_bits(hpq->dma));
1976 fbnic_ring_wr32(hpq, FBNIC_QUEUE_BDQ_HPQ_BAH, upper_32_bits(hpq->dma));
1977
1978 /* Write lower 4 bits of log size as 64K ring size is 0 */
1979 fbnic_ring_wr32(hpq, FBNIC_QUEUE_BDQ_HPQ_SIZE, log_size & 0xf);
1980
1981 if (!ppq->size_mask)
1982 goto write_ctl;
1983
1984 log_size = fls(ppq->size_mask);
1985
1986 /* Add enabling of PPQ to BDQ control */
1987 bdq_ctl |= FBNIC_QUEUE_BDQ_CTL_PPQ_ENABLE;
1988
1989 /* Store descriptor ring address and size */
1990 fbnic_ring_wr32(ppq, FBNIC_QUEUE_BDQ_PPQ_BAL, lower_32_bits(ppq->dma));
1991 fbnic_ring_wr32(ppq, FBNIC_QUEUE_BDQ_PPQ_BAH, upper_32_bits(ppq->dma));
1992 fbnic_ring_wr32(ppq, FBNIC_QUEUE_BDQ_PPQ_SIZE, log_size & 0xf);
1993
1994 write_ctl:
1995 fbnic_ring_wr32(hpq, FBNIC_QUEUE_BDQ_CTL, bdq_ctl);
1996 }
1997
fbnic_config_drop_mode_rcq(struct fbnic_napi_vector * nv,struct fbnic_ring * rcq)1998 static void fbnic_config_drop_mode_rcq(struct fbnic_napi_vector *nv,
1999 struct fbnic_ring *rcq)
2000 {
2001 u32 drop_mode, rcq_ctl;
2002
2003 drop_mode = FBNIC_QUEUE_RDE_CTL0_DROP_IMMEDIATE;
2004
2005 /* Specify packet layout */
2006 rcq_ctl = FIELD_PREP(FBNIC_QUEUE_RDE_CTL0_DROP_MODE_MASK, drop_mode) |
2007 FIELD_PREP(FBNIC_QUEUE_RDE_CTL0_MIN_HROOM_MASK, FBNIC_RX_HROOM) |
2008 FIELD_PREP(FBNIC_QUEUE_RDE_CTL0_MIN_TROOM_MASK, FBNIC_RX_TROOM);
2009
2010 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RDE_CTL0, rcq_ctl);
2011 }
2012
fbnic_enable_rcq(struct fbnic_napi_vector * nv,struct fbnic_ring * rcq)2013 static void fbnic_enable_rcq(struct fbnic_napi_vector *nv,
2014 struct fbnic_ring *rcq)
2015 {
2016 u32 log_size = fls(rcq->size_mask);
2017 u32 rcq_ctl;
2018
2019 fbnic_config_drop_mode_rcq(nv, rcq);
2020
2021 rcq_ctl = FIELD_PREP(FBNIC_QUEUE_RDE_CTL1_PADLEN_MASK, FBNIC_RX_PAD) |
2022 FIELD_PREP(FBNIC_QUEUE_RDE_CTL1_MAX_HDR_MASK,
2023 FBNIC_RX_MAX_HDR) |
2024 FIELD_PREP(FBNIC_QUEUE_RDE_CTL1_PAYLD_OFF_MASK,
2025 FBNIC_RX_PAYLD_OFFSET) |
2026 FIELD_PREP(FBNIC_QUEUE_RDE_CTL1_PAYLD_PG_CL_MASK,
2027 FBNIC_RX_PAYLD_PG_CL);
2028 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RDE_CTL1, rcq_ctl);
2029
2030 /* Reset head/tail */
2031 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RCQ_CTL, FBNIC_QUEUE_RCQ_CTL_RESET);
2032 rcq->head = 0;
2033 rcq->tail = 0;
2034
2035 /* Store descriptor ring address and size */
2036 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RCQ_BAL, lower_32_bits(rcq->dma));
2037 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RCQ_BAH, upper_32_bits(rcq->dma));
2038
2039 /* Write lower 4 bits of log size as 64K ring size is 0 */
2040 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RCQ_SIZE, log_size & 0xf);
2041
2042 /* Store interrupt information for the completion queue */
2043 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RIM_CTL, nv->v_idx);
2044 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RIM_THRESHOLD, rcq->size_mask / 2);
2045 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RIM_MASK, 0);
2046
2047 /* Enable queue */
2048 fbnic_ring_wr32(rcq, FBNIC_QUEUE_RCQ_CTL, FBNIC_QUEUE_RCQ_CTL_ENABLE);
2049 }
2050
fbnic_enable(struct fbnic_net * fbn)2051 void fbnic_enable(struct fbnic_net *fbn)
2052 {
2053 struct fbnic_dev *fbd = fbn->fbd;
2054 int i;
2055
2056 for (i = 0; i < fbn->num_napi; i++) {
2057 struct fbnic_napi_vector *nv = fbn->napi[i];
2058 int j, t;
2059
2060 /* Setup Tx Queue Triads */
2061 for (t = 0; t < nv->txt_count; t++) {
2062 struct fbnic_q_triad *qt = &nv->qt[t];
2063
2064 fbnic_enable_twq0(&qt->sub0);
2065 fbnic_enable_tcq(nv, &qt->cmpl);
2066 }
2067
2068 /* Setup Rx Queue Triads */
2069 for (j = 0; j < nv->rxt_count; j++, t++) {
2070 struct fbnic_q_triad *qt = &nv->qt[t];
2071
2072 fbnic_enable_bdq(&qt->sub0, &qt->sub1);
2073 fbnic_config_drop_mode_rcq(nv, &qt->cmpl);
2074 fbnic_enable_rcq(nv, &qt->cmpl);
2075 }
2076 }
2077
2078 fbnic_wrfl(fbd);
2079 }
2080
fbnic_nv_irq_enable(struct fbnic_napi_vector * nv)2081 static void fbnic_nv_irq_enable(struct fbnic_napi_vector *nv)
2082 {
2083 struct fbnic_dev *fbd = nv->fbd;
2084 u32 val;
2085
2086 val = FBNIC_INTR_CQ_REARM_INTR_UNMASK;
2087
2088 fbnic_wr32(fbd, FBNIC_INTR_CQ_REARM(nv->v_idx), val);
2089 }
2090
fbnic_napi_enable(struct fbnic_net * fbn)2091 void fbnic_napi_enable(struct fbnic_net *fbn)
2092 {
2093 u32 irqs[FBNIC_MAX_MSIX_VECS / 32] = {};
2094 struct fbnic_dev *fbd = fbn->fbd;
2095 int i;
2096
2097 for (i = 0; i < fbn->num_napi; i++) {
2098 struct fbnic_napi_vector *nv = fbn->napi[i];
2099
2100 napi_enable(&nv->napi);
2101
2102 fbnic_nv_irq_enable(nv);
2103
2104 /* Record bit used for NAPI IRQs so we can
2105 * set the mask appropriately
2106 */
2107 irqs[nv->v_idx / 32] |= BIT(nv->v_idx % 32);
2108 }
2109
2110 /* Force the first interrupt on the device to guarantee
2111 * that any packets that may have been enqueued during the
2112 * bringup are processed.
2113 */
2114 for (i = 0; i < ARRAY_SIZE(irqs); i++) {
2115 if (!irqs[i])
2116 continue;
2117 fbnic_wr32(fbd, FBNIC_INTR_SET(i), irqs[i]);
2118 }
2119
2120 fbnic_wrfl(fbd);
2121 }
2122
fbnic_napi_depletion_check(struct net_device * netdev)2123 void fbnic_napi_depletion_check(struct net_device *netdev)
2124 {
2125 struct fbnic_net *fbn = netdev_priv(netdev);
2126 u32 irqs[FBNIC_MAX_MSIX_VECS / 32] = {};
2127 struct fbnic_dev *fbd = fbn->fbd;
2128 int i, j, t;
2129
2130 for (i = 0; i < fbn->num_napi; i++) {
2131 struct fbnic_napi_vector *nv = fbn->napi[i];
2132
2133 /* Find RQs which are completely out of pages */
2134 for (t = nv->txt_count, j = 0; j < nv->rxt_count; j++, t++) {
2135 /* Assume 4 pages is always enough to fit a packet
2136 * and therefore generate a completion and an IRQ.
2137 */
2138 if (fbnic_desc_used(&nv->qt[t].sub0) < 4 ||
2139 fbnic_desc_used(&nv->qt[t].sub1) < 4)
2140 irqs[nv->v_idx / 32] |= BIT(nv->v_idx % 32);
2141 }
2142 }
2143
2144 for (i = 0; i < ARRAY_SIZE(irqs); i++) {
2145 if (!irqs[i])
2146 continue;
2147 fbnic_wr32(fbd, FBNIC_INTR_MASK_CLEAR(i), irqs[i]);
2148 fbnic_wr32(fbd, FBNIC_INTR_SET(i), irqs[i]);
2149 }
2150
2151 fbnic_wrfl(fbd);
2152 }
2153