xref: /dpdk/drivers/net/sfc/sfc_ev.c (revision 55509e3a49fb28317c1e56a534cdcc4a3849df79)
1 /* SPDX-License-Identifier: BSD-3-Clause
2  *
3  * Copyright(c) 2019-2020 Xilinx, Inc.
4  * Copyright(c) 2016-2019 Solarflare Communications Inc.
5  *
6  * This software was jointly developed between OKTET Labs (under contract
7  * for Solarflare) and Solarflare Communications, Inc.
8  */
9 
10 #include <rte_debug.h>
11 #include <rte_cycles.h>
12 #include <rte_alarm.h>
13 #include <rte_branch_prediction.h>
14 
15 #include "efx.h"
16 
17 #include "sfc.h"
18 #include "sfc_debug.h"
19 #include "sfc_log.h"
20 #include "sfc_ev.h"
21 #include "sfc_rx.h"
22 #include "sfc_tx.h"
23 #include "sfc_kvargs.h"
24 
25 
26 /* Initial delay when waiting for event queue init complete event */
27 #define SFC_EVQ_INIT_BACKOFF_START_US	(1)
28 /* Maximum delay between event queue polling attempts */
29 #define SFC_EVQ_INIT_BACKOFF_MAX_US	(10 * 1000)
30 /* Event queue init approx timeout */
31 #define SFC_EVQ_INIT_TIMEOUT_US		(2 * US_PER_S)
32 
33 /* Management event queue polling period in microseconds */
34 #define SFC_MGMT_EV_QPOLL_PERIOD_US	(US_PER_S)
35 
36 static const char *
37 sfc_evq_type2str(enum sfc_evq_type type)
38 {
39 	switch (type) {
40 	case SFC_EVQ_TYPE_MGMT:
41 		return "mgmt-evq";
42 	case SFC_EVQ_TYPE_RX:
43 		return "rx-evq";
44 	case SFC_EVQ_TYPE_TX:
45 		return "tx-evq";
46 	default:
47 		SFC_ASSERT(B_FALSE);
48 		return NULL;
49 	}
50 }
51 
52 static boolean_t
53 sfc_ev_initialized(void *arg)
54 {
55 	struct sfc_evq *evq = arg;
56 
57 	/* Init done events may be duplicated on SFN7xxx (SFC bug 31631) */
58 	SFC_ASSERT(evq->init_state == SFC_EVQ_STARTING ||
59 		   evq->init_state == SFC_EVQ_STARTED);
60 
61 	evq->init_state = SFC_EVQ_STARTED;
62 
63 	return B_FALSE;
64 }
65 
66 static boolean_t
67 sfc_ev_nop_rx(void *arg, uint32_t label, uint32_t id,
68 	      uint32_t size, uint16_t flags)
69 {
70 	struct sfc_evq *evq = arg;
71 
72 	sfc_err(evq->sa,
73 		"EVQ %u unexpected Rx event label=%u id=%#x size=%u flags=%#x",
74 		evq->evq_index, label, id, size, flags);
75 	return B_TRUE;
76 }
77 
78 static boolean_t
79 sfc_ev_efx_rx(void *arg, __rte_unused uint32_t label, uint32_t id,
80 	      uint32_t size, uint16_t flags)
81 {
82 	struct sfc_evq *evq = arg;
83 	struct sfc_efx_rxq *rxq;
84 	unsigned int stop;
85 	unsigned int pending_id;
86 	unsigned int delta;
87 	unsigned int i;
88 	struct sfc_efx_rx_sw_desc *rxd;
89 
90 	if (unlikely(evq->exception))
91 		goto done;
92 
93 	rxq = sfc_efx_rxq_by_dp_rxq(evq->dp_rxq);
94 
95 	SFC_ASSERT(rxq != NULL);
96 	SFC_ASSERT(rxq->evq == evq);
97 	SFC_ASSERT(rxq->flags & SFC_EFX_RXQ_FLAG_STARTED);
98 
99 	stop = (id + 1) & rxq->ptr_mask;
100 	pending_id = rxq->pending & rxq->ptr_mask;
101 	delta = (stop >= pending_id) ? (stop - pending_id) :
102 		(rxq->ptr_mask + 1 - pending_id + stop);
103 
104 	if (delta == 0) {
105 		/*
106 		 * Rx event with no new descriptors done and zero length
107 		 * is used to abort scattered packet when there is no room
108 		 * for the tail.
109 		 */
110 		if (unlikely(size != 0)) {
111 			evq->exception = B_TRUE;
112 			sfc_err(evq->sa,
113 				"EVQ %u RxQ %u invalid RX abort "
114 				"(id=%#x size=%u flags=%#x); needs restart",
115 				evq->evq_index, rxq->dp.dpq.queue_id,
116 				id, size, flags);
117 			goto done;
118 		}
119 
120 		/* Add discard flag to the first fragment */
121 		rxq->sw_desc[pending_id].flags |= EFX_DISCARD;
122 		/* Remove continue flag from the last fragment */
123 		rxq->sw_desc[id].flags &= ~EFX_PKT_CONT;
124 	} else if (unlikely(delta > rxq->batch_max)) {
125 		evq->exception = B_TRUE;
126 
127 		sfc_err(evq->sa,
128 			"EVQ %u RxQ %u completion out of order "
129 			"(id=%#x delta=%u flags=%#x); needs restart",
130 			evq->evq_index, rxq->dp.dpq.queue_id,
131 			id, delta, flags);
132 
133 		goto done;
134 	}
135 
136 	for (i = pending_id; i != stop; i = (i + 1) & rxq->ptr_mask) {
137 		rxd = &rxq->sw_desc[i];
138 
139 		rxd->flags = flags;
140 
141 		SFC_ASSERT(size < (1 << 16));
142 		rxd->size = (uint16_t)size;
143 	}
144 
145 	rxq->pending += delta;
146 
147 done:
148 	return B_FALSE;
149 }
150 
151 static boolean_t
152 sfc_ev_dp_rx(void *arg, __rte_unused uint32_t label, uint32_t id,
153 	     __rte_unused uint32_t size, __rte_unused uint16_t flags)
154 {
155 	struct sfc_evq *evq = arg;
156 	struct sfc_dp_rxq *dp_rxq;
157 
158 	dp_rxq = evq->dp_rxq;
159 	SFC_ASSERT(dp_rxq != NULL);
160 
161 	SFC_ASSERT(evq->sa->priv.dp_rx->qrx_ev != NULL);
162 	return evq->sa->priv.dp_rx->qrx_ev(dp_rxq, id);
163 }
164 
165 static boolean_t
166 sfc_ev_nop_rx_packets(void *arg, uint32_t label, unsigned int num_packets,
167 		      uint32_t flags)
168 {
169 	struct sfc_evq *evq = arg;
170 
171 	sfc_err(evq->sa,
172 		"EVQ %u unexpected Rx packets event label=%u num=%u flags=%#x",
173 		evq->evq_index, label, num_packets, flags);
174 	return B_TRUE;
175 }
176 
177 static boolean_t
178 sfc_ev_dp_rx_packets(void *arg, __rte_unused uint32_t label,
179 		     unsigned int num_packets, __rte_unused uint32_t flags)
180 {
181 	struct sfc_evq *evq = arg;
182 	struct sfc_dp_rxq *dp_rxq;
183 
184 	dp_rxq = evq->dp_rxq;
185 	SFC_ASSERT(dp_rxq != NULL);
186 
187 	SFC_ASSERT(evq->sa->priv.dp_rx->qrx_ev != NULL);
188 	return evq->sa->priv.dp_rx->qrx_ev(dp_rxq, num_packets);
189 }
190 
191 static boolean_t
192 sfc_ev_nop_rx_ps(void *arg, uint32_t label, uint32_t id,
193 		 uint32_t pkt_count, uint16_t flags)
194 {
195 	struct sfc_evq *evq = arg;
196 
197 	sfc_err(evq->sa,
198 		"EVQ %u unexpected packed stream Rx event label=%u id=%#x pkt_count=%u flags=%#x",
199 		evq->evq_index, label, id, pkt_count, flags);
200 	return B_TRUE;
201 }
202 
203 /* It is not actually used on datapath, but required on RxQ flush */
204 static boolean_t
205 sfc_ev_dp_rx_ps(void *arg, __rte_unused uint32_t label, uint32_t id,
206 		__rte_unused uint32_t pkt_count, __rte_unused uint16_t flags)
207 {
208 	struct sfc_evq *evq = arg;
209 	struct sfc_dp_rxq *dp_rxq;
210 
211 	dp_rxq = evq->dp_rxq;
212 	SFC_ASSERT(dp_rxq != NULL);
213 
214 	if (evq->sa->priv.dp_rx->qrx_ps_ev != NULL)
215 		return evq->sa->priv.dp_rx->qrx_ps_ev(dp_rxq, id);
216 	else
217 		return B_FALSE;
218 }
219 
220 static boolean_t
221 sfc_ev_nop_tx(void *arg, uint32_t label, uint32_t id)
222 {
223 	struct sfc_evq *evq = arg;
224 
225 	sfc_err(evq->sa, "EVQ %u unexpected Tx event label=%u id=%#x",
226 		evq->evq_index, label, id);
227 	return B_TRUE;
228 }
229 
230 static boolean_t
231 sfc_ev_tx(void *arg, __rte_unused uint32_t label, uint32_t id)
232 {
233 	struct sfc_evq *evq = arg;
234 	struct sfc_dp_txq *dp_txq;
235 	struct sfc_efx_txq *txq;
236 	unsigned int stop;
237 	unsigned int delta;
238 
239 	dp_txq = evq->dp_txq;
240 	SFC_ASSERT(dp_txq != NULL);
241 
242 	txq = sfc_efx_txq_by_dp_txq(dp_txq);
243 	SFC_ASSERT(txq->evq == evq);
244 
245 	if (unlikely((txq->flags & SFC_EFX_TXQ_FLAG_STARTED) == 0))
246 		goto done;
247 
248 	stop = (id + 1) & txq->ptr_mask;
249 	id = txq->pending & txq->ptr_mask;
250 
251 	delta = (stop >= id) ? (stop - id) : (txq->ptr_mask + 1 - id + stop);
252 
253 	txq->pending += delta;
254 
255 done:
256 	return B_FALSE;
257 }
258 
259 static boolean_t
260 sfc_ev_dp_tx(void *arg, __rte_unused uint32_t label, uint32_t id)
261 {
262 	struct sfc_evq *evq = arg;
263 	struct sfc_dp_txq *dp_txq;
264 
265 	dp_txq = evq->dp_txq;
266 	SFC_ASSERT(dp_txq != NULL);
267 
268 	SFC_ASSERT(evq->sa->priv.dp_tx->qtx_ev != NULL);
269 	return evq->sa->priv.dp_tx->qtx_ev(dp_txq, id);
270 }
271 
272 static boolean_t
273 sfc_ev_nop_tx_ndescs(void *arg, uint32_t label, unsigned int ndescs)
274 {
275 	struct sfc_evq *evq = arg;
276 
277 	sfc_err(evq->sa, "EVQ %u unexpected Tx event label=%u ndescs=%#x",
278 		evq->evq_index, label, ndescs);
279 	return B_TRUE;
280 }
281 
282 static boolean_t
283 sfc_ev_dp_tx_ndescs(void *arg, __rte_unused uint32_t label,
284 		      unsigned int ndescs)
285 {
286 	struct sfc_evq *evq = arg;
287 	struct sfc_dp_txq *dp_txq;
288 
289 	dp_txq = evq->dp_txq;
290 	SFC_ASSERT(dp_txq != NULL);
291 
292 	SFC_ASSERT(evq->sa->priv.dp_tx->qtx_ev != NULL);
293 	return evq->sa->priv.dp_tx->qtx_ev(dp_txq, ndescs);
294 }
295 
296 static boolean_t
297 sfc_ev_exception(void *arg, uint32_t code, __rte_unused uint32_t data)
298 {
299 	struct sfc_evq *evq = arg;
300 
301 	if (code == EFX_EXCEPTION_UNKNOWN_SENSOREVT)
302 		return B_FALSE;
303 
304 	evq->exception = B_TRUE;
305 	sfc_warn(evq->sa,
306 		 "hardware exception %s (code=%u, data=%#x) on EVQ %u;"
307 		 " needs recovery",
308 		 (code == EFX_EXCEPTION_RX_RECOVERY) ? "RX_RECOVERY" :
309 		 (code == EFX_EXCEPTION_RX_DSC_ERROR) ? "RX_DSC_ERROR" :
310 		 (code == EFX_EXCEPTION_TX_DSC_ERROR) ? "TX_DSC_ERROR" :
311 		 (code == EFX_EXCEPTION_FWALERT_SRAM) ? "FWALERT_SRAM" :
312 		 (code == EFX_EXCEPTION_UNKNOWN_FWALERT) ? "UNKNOWN_FWALERT" :
313 		 (code == EFX_EXCEPTION_RX_ERROR) ? "RX_ERROR" :
314 		 (code == EFX_EXCEPTION_TX_ERROR) ? "TX_ERROR" :
315 		 (code == EFX_EXCEPTION_EV_ERROR) ? "EV_ERROR" :
316 		 "UNKNOWN",
317 		 code, data, evq->evq_index);
318 
319 	return B_TRUE;
320 }
321 
322 static boolean_t
323 sfc_ev_nop_rxq_flush_done(void *arg, uint32_t rxq_hw_index)
324 {
325 	struct sfc_evq *evq = arg;
326 
327 	sfc_err(evq->sa, "EVQ %u unexpected RxQ %u flush done",
328 		evq->evq_index, rxq_hw_index);
329 	return B_TRUE;
330 }
331 
332 static boolean_t
333 sfc_ev_rxq_flush_done(void *arg, __rte_unused uint32_t rxq_hw_index)
334 {
335 	struct sfc_evq *evq = arg;
336 	struct sfc_dp_rxq *dp_rxq;
337 	struct sfc_rxq *rxq;
338 
339 	dp_rxq = evq->dp_rxq;
340 	SFC_ASSERT(dp_rxq != NULL);
341 
342 	rxq = sfc_rxq_by_dp_rxq(dp_rxq);
343 	SFC_ASSERT(rxq != NULL);
344 	SFC_ASSERT(rxq->hw_index == rxq_hw_index);
345 	SFC_ASSERT(rxq->evq == evq);
346 	RTE_SET_USED(rxq);
347 
348 	sfc_rx_qflush_done(sfc_rxq_info_by_dp_rxq(dp_rxq));
349 
350 	return B_FALSE;
351 }
352 
353 static boolean_t
354 sfc_ev_nop_rxq_flush_failed(void *arg, uint32_t rxq_hw_index)
355 {
356 	struct sfc_evq *evq = arg;
357 
358 	sfc_err(evq->sa, "EVQ %u unexpected RxQ %u flush failed",
359 		evq->evq_index, rxq_hw_index);
360 	return B_TRUE;
361 }
362 
363 static boolean_t
364 sfc_ev_rxq_flush_failed(void *arg, __rte_unused uint32_t rxq_hw_index)
365 {
366 	struct sfc_evq *evq = arg;
367 	struct sfc_dp_rxq *dp_rxq;
368 	struct sfc_rxq *rxq;
369 
370 	dp_rxq = evq->dp_rxq;
371 	SFC_ASSERT(dp_rxq != NULL);
372 
373 	rxq = sfc_rxq_by_dp_rxq(dp_rxq);
374 	SFC_ASSERT(rxq != NULL);
375 	SFC_ASSERT(rxq->hw_index == rxq_hw_index);
376 	SFC_ASSERT(rxq->evq == evq);
377 	RTE_SET_USED(rxq);
378 
379 	sfc_rx_qflush_failed(sfc_rxq_info_by_dp_rxq(dp_rxq));
380 
381 	return B_FALSE;
382 }
383 
384 static boolean_t
385 sfc_ev_nop_txq_flush_done(void *arg, uint32_t txq_hw_index)
386 {
387 	struct sfc_evq *evq = arg;
388 
389 	sfc_err(evq->sa, "EVQ %u unexpected TxQ %u flush done",
390 		evq->evq_index, txq_hw_index);
391 	return B_TRUE;
392 }
393 
394 static boolean_t
395 sfc_ev_txq_flush_done(void *arg, __rte_unused uint32_t txq_hw_index)
396 {
397 	struct sfc_evq *evq = arg;
398 	struct sfc_dp_txq *dp_txq;
399 	struct sfc_txq *txq;
400 
401 	dp_txq = evq->dp_txq;
402 	SFC_ASSERT(dp_txq != NULL);
403 
404 	txq = sfc_txq_by_dp_txq(dp_txq);
405 	SFC_ASSERT(txq != NULL);
406 	SFC_ASSERT(txq->hw_index == txq_hw_index);
407 	SFC_ASSERT(txq->evq == evq);
408 	RTE_SET_USED(txq);
409 
410 	sfc_tx_qflush_done(sfc_txq_info_by_dp_txq(dp_txq));
411 
412 	return B_FALSE;
413 }
414 
415 static boolean_t
416 sfc_ev_software(void *arg, uint16_t magic)
417 {
418 	struct sfc_evq *evq = arg;
419 
420 	sfc_err(evq->sa, "EVQ %u unexpected software event magic=%#.4x",
421 		evq->evq_index, magic);
422 	return B_TRUE;
423 }
424 
425 static boolean_t
426 sfc_ev_sram(void *arg, uint32_t code)
427 {
428 	struct sfc_evq *evq = arg;
429 
430 	sfc_err(evq->sa, "EVQ %u unexpected SRAM event code=%u",
431 		evq->evq_index, code);
432 	return B_TRUE;
433 }
434 
435 static boolean_t
436 sfc_ev_wake_up(void *arg, uint32_t index)
437 {
438 	struct sfc_evq *evq = arg;
439 
440 	sfc_err(evq->sa, "EVQ %u unexpected wake up event index=%u",
441 		evq->evq_index, index);
442 	return B_TRUE;
443 }
444 
445 static boolean_t
446 sfc_ev_timer(void *arg, uint32_t index)
447 {
448 	struct sfc_evq *evq = arg;
449 
450 	sfc_err(evq->sa, "EVQ %u unexpected timer event index=%u",
451 		evq->evq_index, index);
452 	return B_TRUE;
453 }
454 
455 static boolean_t
456 sfc_ev_nop_link_change(void *arg, __rte_unused efx_link_mode_t link_mode)
457 {
458 	struct sfc_evq *evq = arg;
459 
460 	sfc_err(evq->sa, "EVQ %u unexpected link change event",
461 		evq->evq_index);
462 	return B_TRUE;
463 }
464 
465 static boolean_t
466 sfc_ev_link_change(void *arg, efx_link_mode_t link_mode)
467 {
468 	struct sfc_evq *evq = arg;
469 	struct sfc_adapter *sa = evq->sa;
470 	struct rte_eth_link new_link;
471 
472 	sfc_port_link_mode_to_info(link_mode, &new_link);
473 	if (rte_eth_linkstatus_set(sa->eth_dev, &new_link) == 0)
474 		evq->sa->port.lsc_seq++;
475 
476 	return B_FALSE;
477 }
478 
479 static const efx_ev_callbacks_t sfc_ev_callbacks = {
480 	.eec_initialized	= sfc_ev_initialized,
481 	.eec_rx			= sfc_ev_nop_rx,
482 	.eec_rx_packets		= sfc_ev_nop_rx_packets,
483 	.eec_rx_ps		= sfc_ev_nop_rx_ps,
484 	.eec_tx			= sfc_ev_nop_tx,
485 	.eec_tx_ndescs		= sfc_ev_nop_tx_ndescs,
486 	.eec_exception		= sfc_ev_exception,
487 	.eec_rxq_flush_done	= sfc_ev_nop_rxq_flush_done,
488 	.eec_rxq_flush_failed	= sfc_ev_nop_rxq_flush_failed,
489 	.eec_txq_flush_done	= sfc_ev_nop_txq_flush_done,
490 	.eec_software		= sfc_ev_software,
491 	.eec_sram		= sfc_ev_sram,
492 	.eec_wake_up		= sfc_ev_wake_up,
493 	.eec_timer		= sfc_ev_timer,
494 	.eec_link_change	= sfc_ev_link_change,
495 };
496 
497 static const efx_ev_callbacks_t sfc_ev_callbacks_efx_rx = {
498 	.eec_initialized	= sfc_ev_initialized,
499 	.eec_rx			= sfc_ev_efx_rx,
500 	.eec_rx_packets		= sfc_ev_nop_rx_packets,
501 	.eec_rx_ps		= sfc_ev_nop_rx_ps,
502 	.eec_tx			= sfc_ev_nop_tx,
503 	.eec_tx_ndescs		= sfc_ev_nop_tx_ndescs,
504 	.eec_exception		= sfc_ev_exception,
505 	.eec_rxq_flush_done	= sfc_ev_rxq_flush_done,
506 	.eec_rxq_flush_failed	= sfc_ev_rxq_flush_failed,
507 	.eec_txq_flush_done	= sfc_ev_nop_txq_flush_done,
508 	.eec_software		= sfc_ev_software,
509 	.eec_sram		= sfc_ev_sram,
510 	.eec_wake_up		= sfc_ev_wake_up,
511 	.eec_timer		= sfc_ev_timer,
512 	.eec_link_change	= sfc_ev_nop_link_change,
513 };
514 
515 static const efx_ev_callbacks_t sfc_ev_callbacks_dp_rx = {
516 	.eec_initialized	= sfc_ev_initialized,
517 	.eec_rx			= sfc_ev_dp_rx,
518 	.eec_rx_packets		= sfc_ev_dp_rx_packets,
519 	.eec_rx_ps		= sfc_ev_dp_rx_ps,
520 	.eec_tx			= sfc_ev_nop_tx,
521 	.eec_tx_ndescs		= sfc_ev_nop_tx_ndescs,
522 	.eec_exception		= sfc_ev_exception,
523 	.eec_rxq_flush_done	= sfc_ev_rxq_flush_done,
524 	.eec_rxq_flush_failed	= sfc_ev_rxq_flush_failed,
525 	.eec_txq_flush_done	= sfc_ev_nop_txq_flush_done,
526 	.eec_software		= sfc_ev_software,
527 	.eec_sram		= sfc_ev_sram,
528 	.eec_wake_up		= sfc_ev_wake_up,
529 	.eec_timer		= sfc_ev_timer,
530 	.eec_link_change	= sfc_ev_nop_link_change,
531 };
532 
533 static const efx_ev_callbacks_t sfc_ev_callbacks_efx_tx = {
534 	.eec_initialized	= sfc_ev_initialized,
535 	.eec_rx			= sfc_ev_nop_rx,
536 	.eec_rx_packets		= sfc_ev_nop_rx_packets,
537 	.eec_rx_ps		= sfc_ev_nop_rx_ps,
538 	.eec_tx			= sfc_ev_tx,
539 	.eec_tx_ndescs		= sfc_ev_nop_tx_ndescs,
540 	.eec_exception		= sfc_ev_exception,
541 	.eec_rxq_flush_done	= sfc_ev_nop_rxq_flush_done,
542 	.eec_rxq_flush_failed	= sfc_ev_nop_rxq_flush_failed,
543 	.eec_txq_flush_done	= sfc_ev_txq_flush_done,
544 	.eec_software		= sfc_ev_software,
545 	.eec_sram		= sfc_ev_sram,
546 	.eec_wake_up		= sfc_ev_wake_up,
547 	.eec_timer		= sfc_ev_timer,
548 	.eec_link_change	= sfc_ev_nop_link_change,
549 };
550 
551 static const efx_ev_callbacks_t sfc_ev_callbacks_dp_tx = {
552 	.eec_initialized	= sfc_ev_initialized,
553 	.eec_rx			= sfc_ev_nop_rx,
554 	.eec_rx_packets		= sfc_ev_nop_rx_packets,
555 	.eec_rx_ps		= sfc_ev_nop_rx_ps,
556 	.eec_tx			= sfc_ev_dp_tx,
557 	.eec_tx_ndescs		= sfc_ev_dp_tx_ndescs,
558 	.eec_exception		= sfc_ev_exception,
559 	.eec_rxq_flush_done	= sfc_ev_nop_rxq_flush_done,
560 	.eec_rxq_flush_failed	= sfc_ev_nop_rxq_flush_failed,
561 	.eec_txq_flush_done	= sfc_ev_txq_flush_done,
562 	.eec_software		= sfc_ev_software,
563 	.eec_sram		= sfc_ev_sram,
564 	.eec_wake_up		= sfc_ev_wake_up,
565 	.eec_timer		= sfc_ev_timer,
566 	.eec_link_change	= sfc_ev_nop_link_change,
567 };
568 
569 
570 void
571 sfc_ev_qpoll(struct sfc_evq *evq)
572 {
573 	SFC_ASSERT(evq->init_state == SFC_EVQ_STARTED ||
574 		   evq->init_state == SFC_EVQ_STARTING);
575 
576 	/* Synchronize the DMA memory for reading not required */
577 
578 	efx_ev_qpoll(evq->common, &evq->read_ptr, evq->callbacks, evq);
579 
580 	if (unlikely(evq->exception) && sfc_adapter_trylock(evq->sa)) {
581 		struct sfc_adapter *sa = evq->sa;
582 		int rc;
583 
584 		if (evq->dp_rxq != NULL) {
585 			unsigned int rxq_sw_index;
586 
587 			rxq_sw_index = evq->dp_rxq->dpq.queue_id;
588 
589 			sfc_warn(sa,
590 				 "restart RxQ %u because of exception on its EvQ %u",
591 				 rxq_sw_index, evq->evq_index);
592 
593 			sfc_rx_qstop(sa, rxq_sw_index);
594 			rc = sfc_rx_qstart(sa, rxq_sw_index);
595 			if (rc != 0)
596 				sfc_err(sa, "cannot restart RxQ %u",
597 					rxq_sw_index);
598 		}
599 
600 		if (evq->dp_txq != NULL) {
601 			unsigned int txq_sw_index;
602 
603 			txq_sw_index = evq->dp_txq->dpq.queue_id;
604 
605 			sfc_warn(sa,
606 				 "restart TxQ %u because of exception on its EvQ %u",
607 				 txq_sw_index, evq->evq_index);
608 
609 			sfc_tx_qstop(sa, txq_sw_index);
610 			rc = sfc_tx_qstart(sa, txq_sw_index);
611 			if (rc != 0)
612 				sfc_err(sa, "cannot restart TxQ %u",
613 					txq_sw_index);
614 		}
615 
616 		if (evq->exception)
617 			sfc_panic(sa, "unrecoverable exception on EvQ %u",
618 				  evq->evq_index);
619 
620 		sfc_adapter_unlock(sa);
621 	}
622 
623 	/* Poll-mode driver does not re-prime the event queue for interrupts */
624 }
625 
626 void
627 sfc_ev_mgmt_qpoll(struct sfc_adapter *sa)
628 {
629 	if (rte_spinlock_trylock(&sa->mgmt_evq_lock)) {
630 		if (sa->mgmt_evq_running)
631 			sfc_ev_qpoll(sa->mgmt_evq);
632 
633 		rte_spinlock_unlock(&sa->mgmt_evq_lock);
634 	}
635 }
636 
637 int
638 sfc_ev_qprime(struct sfc_evq *evq)
639 {
640 	SFC_ASSERT(evq->init_state == SFC_EVQ_STARTED);
641 	return efx_ev_qprime(evq->common, evq->read_ptr);
642 }
643 
644 /* Event queue HW index allocation scheme is described in sfc_ev.h. */
645 int
646 sfc_ev_qstart(struct sfc_evq *evq, unsigned int hw_index)
647 {
648 	struct sfc_adapter *sa = evq->sa;
649 	efsys_mem_t *esmp;
650 	uint32_t evq_flags = sa->evq_flags;
651 	unsigned int total_delay_us;
652 	unsigned int delay_us;
653 	int rc;
654 
655 	sfc_log_init(sa, "hw_index=%u", hw_index);
656 
657 	esmp = &evq->mem;
658 
659 	evq->evq_index = hw_index;
660 
661 	/* Clear all events */
662 	(void)memset((void *)esmp->esm_base, 0xff,
663 		     efx_evq_size(sa->nic, evq->entries, evq_flags));
664 
665 	if ((sa->intr.lsc_intr && hw_index == sa->mgmt_evq_index) ||
666 	    (sa->intr.rxq_intr && evq->dp_rxq != NULL))
667 		evq_flags |= EFX_EVQ_FLAGS_NOTIFY_INTERRUPT;
668 	else
669 		evq_flags |= EFX_EVQ_FLAGS_NOTIFY_DISABLED;
670 
671 	evq->init_state = SFC_EVQ_STARTING;
672 
673 	/* Create the common code event queue */
674 	rc = efx_ev_qcreate(sa->nic, hw_index, esmp, evq->entries,
675 			    0 /* unused on EF10 */, 0, evq_flags,
676 			    &evq->common);
677 	if (rc != 0)
678 		goto fail_ev_qcreate;
679 
680 	SFC_ASSERT(evq->dp_rxq == NULL || evq->dp_txq == NULL);
681 	if (evq->dp_rxq != 0) {
682 		if (strcmp(sa->priv.dp_rx->dp.name,
683 			   SFC_KVARG_DATAPATH_EFX) == 0)
684 			evq->callbacks = &sfc_ev_callbacks_efx_rx;
685 		else
686 			evq->callbacks = &sfc_ev_callbacks_dp_rx;
687 	} else if (evq->dp_txq != 0) {
688 		if (strcmp(sa->priv.dp_tx->dp.name,
689 			   SFC_KVARG_DATAPATH_EFX) == 0)
690 			evq->callbacks = &sfc_ev_callbacks_efx_tx;
691 		else
692 			evq->callbacks = &sfc_ev_callbacks_dp_tx;
693 	} else {
694 		evq->callbacks = &sfc_ev_callbacks;
695 	}
696 
697 	/*
698 	 * Poll once to ensure that eec_initialized callback is invoked in
699 	 * case if the hardware does not support INIT_DONE events. If the
700 	 * hardware supports INIT_DONE events, this will do nothing, and the
701 	 * corresponding event will be processed by sfc_ev_qpoll() below.
702 	 */
703 	efx_ev_qcreate_check_init_done(evq->common, evq->callbacks, evq);
704 
705 	/* Wait for the initialization event */
706 	total_delay_us = 0;
707 	delay_us = SFC_EVQ_INIT_BACKOFF_START_US;
708 	do {
709 		(void)sfc_ev_qpoll(evq);
710 
711 		/* Check to see if the initialization complete indication
712 		 * posted by the hardware.
713 		 */
714 		if (evq->init_state == SFC_EVQ_STARTED)
715 			goto done;
716 
717 		/* Give event queue some time to init */
718 		rte_delay_us(delay_us);
719 
720 		total_delay_us += delay_us;
721 
722 		/* Exponential backoff */
723 		delay_us *= 2;
724 		if (delay_us > SFC_EVQ_INIT_BACKOFF_MAX_US)
725 			delay_us = SFC_EVQ_INIT_BACKOFF_MAX_US;
726 
727 	} while (total_delay_us < SFC_EVQ_INIT_TIMEOUT_US);
728 
729 	rc = ETIMEDOUT;
730 	goto fail_timedout;
731 
732 done:
733 	return 0;
734 
735 fail_timedout:
736 	efx_ev_qdestroy(evq->common);
737 
738 fail_ev_qcreate:
739 	evq->init_state = SFC_EVQ_INITIALIZED;
740 	sfc_log_init(sa, "failed %d", rc);
741 	return rc;
742 }
743 
744 void
745 sfc_ev_qstop(struct sfc_evq *evq)
746 {
747 	if (evq == NULL)
748 		return;
749 
750 	sfc_log_init(evq->sa, "hw_index=%u", evq->evq_index);
751 
752 	if (evq->init_state != SFC_EVQ_STARTED)
753 		return;
754 
755 	evq->init_state = SFC_EVQ_INITIALIZED;
756 	evq->callbacks = NULL;
757 	evq->read_ptr = 0;
758 	evq->exception = B_FALSE;
759 
760 	efx_ev_qdestroy(evq->common);
761 
762 	evq->evq_index = 0;
763 }
764 
765 static void
766 sfc_ev_mgmt_periodic_qpoll(void *arg)
767 {
768 	struct sfc_adapter *sa = arg;
769 	int rc;
770 
771 	sfc_ev_mgmt_qpoll(sa);
772 
773 	rc = rte_eal_alarm_set(SFC_MGMT_EV_QPOLL_PERIOD_US,
774 			       sfc_ev_mgmt_periodic_qpoll, sa);
775 	if (rc == -ENOTSUP) {
776 		sfc_warn(sa, "alarms are not supported");
777 		sfc_warn(sa, "management EVQ must be polled indirectly using no-wait link status update");
778 	} else if (rc != 0) {
779 		sfc_err(sa,
780 			"cannot rearm management EVQ polling alarm (rc=%d)",
781 			rc);
782 	}
783 }
784 
785 static void
786 sfc_ev_mgmt_periodic_qpoll_start(struct sfc_adapter *sa)
787 {
788 	sfc_ev_mgmt_periodic_qpoll(sa);
789 }
790 
791 static void
792 sfc_ev_mgmt_periodic_qpoll_stop(struct sfc_adapter *sa)
793 {
794 	rte_eal_alarm_cancel(sfc_ev_mgmt_periodic_qpoll, sa);
795 }
796 
797 int
798 sfc_ev_start(struct sfc_adapter *sa)
799 {
800 	int rc;
801 
802 	sfc_log_init(sa, "entry");
803 
804 	rc = efx_ev_init(sa->nic);
805 	if (rc != 0)
806 		goto fail_ev_init;
807 
808 	/* Start management EVQ used for global events */
809 
810 	/*
811 	 * Management event queue start polls the queue, but it cannot
812 	 * interfere with other polling contexts since mgmt_evq_running
813 	 * is false yet.
814 	 */
815 	rc = sfc_ev_qstart(sa->mgmt_evq, sa->mgmt_evq_index);
816 	if (rc != 0)
817 		goto fail_mgmt_evq_start;
818 
819 	rte_spinlock_lock(&sa->mgmt_evq_lock);
820 	sa->mgmt_evq_running = true;
821 	rte_spinlock_unlock(&sa->mgmt_evq_lock);
822 
823 	if (sa->intr.lsc_intr) {
824 		rc = sfc_ev_qprime(sa->mgmt_evq);
825 		if (rc != 0)
826 			goto fail_mgmt_evq_prime;
827 	}
828 
829 	/*
830 	 * Start management EVQ polling. If interrupts are disabled
831 	 * (not used), it is required to process link status change
832 	 * and other device level events to avoid unrecoverable
833 	 * error because the event queue overflow.
834 	 */
835 	sfc_ev_mgmt_periodic_qpoll_start(sa);
836 
837 	/*
838 	 * Rx/Tx event queues are started/stopped when corresponding
839 	 * Rx/Tx queue is started/stopped.
840 	 */
841 
842 	return 0;
843 
844 fail_mgmt_evq_prime:
845 	sfc_ev_qstop(sa->mgmt_evq);
846 
847 fail_mgmt_evq_start:
848 	efx_ev_fini(sa->nic);
849 
850 fail_ev_init:
851 	sfc_log_init(sa, "failed %d", rc);
852 	return rc;
853 }
854 
855 void
856 sfc_ev_stop(struct sfc_adapter *sa)
857 {
858 	sfc_log_init(sa, "entry");
859 
860 	sfc_ev_mgmt_periodic_qpoll_stop(sa);
861 
862 	rte_spinlock_lock(&sa->mgmt_evq_lock);
863 	sa->mgmt_evq_running = false;
864 	rte_spinlock_unlock(&sa->mgmt_evq_lock);
865 
866 	sfc_ev_qstop(sa->mgmt_evq);
867 
868 	efx_ev_fini(sa->nic);
869 }
870 
871 int
872 sfc_ev_qinit(struct sfc_adapter *sa,
873 	     enum sfc_evq_type type, unsigned int type_index,
874 	     unsigned int entries, int socket_id, struct sfc_evq **evqp)
875 {
876 	struct sfc_evq *evq;
877 	int rc;
878 
879 	sfc_log_init(sa, "type=%s type_index=%u",
880 		     sfc_evq_type2str(type), type_index);
881 
882 	SFC_ASSERT(rte_is_power_of_2(entries));
883 
884 	rc = ENOMEM;
885 	evq = rte_zmalloc_socket("sfc-evq", sizeof(*evq), RTE_CACHE_LINE_SIZE,
886 				 socket_id);
887 	if (evq == NULL)
888 		goto fail_evq_alloc;
889 
890 	evq->sa = sa;
891 	evq->type = type;
892 	evq->entries = entries;
893 
894 	/* Allocate DMA space */
895 	rc = sfc_dma_alloc(sa, sfc_evq_type2str(type), type_index,
896 			   efx_evq_size(sa->nic, evq->entries, sa->evq_flags),
897 			   socket_id, &evq->mem);
898 	if (rc != 0)
899 		goto fail_dma_alloc;
900 
901 	evq->init_state = SFC_EVQ_INITIALIZED;
902 
903 	sa->evq_count++;
904 
905 	*evqp = evq;
906 
907 	return 0;
908 
909 fail_dma_alloc:
910 	rte_free(evq);
911 
912 fail_evq_alloc:
913 
914 	sfc_log_init(sa, "failed %d", rc);
915 	return rc;
916 }
917 
918 void
919 sfc_ev_qfini(struct sfc_evq *evq)
920 {
921 	struct sfc_adapter *sa = evq->sa;
922 
923 	SFC_ASSERT(evq->init_state == SFC_EVQ_INITIALIZED);
924 
925 	sfc_dma_free(sa, &evq->mem);
926 
927 	rte_free(evq);
928 
929 	SFC_ASSERT(sa->evq_count > 0);
930 	sa->evq_count--;
931 }
932 
933 static int
934 sfc_kvarg_perf_profile_handler(__rte_unused const char *key,
935 			       const char *value_str, void *opaque)
936 {
937 	uint32_t *value = opaque;
938 
939 	if (strcasecmp(value_str, SFC_KVARG_PERF_PROFILE_THROUGHPUT) == 0)
940 		*value = EFX_EVQ_FLAGS_TYPE_THROUGHPUT;
941 	else if (strcasecmp(value_str, SFC_KVARG_PERF_PROFILE_LOW_LATENCY) == 0)
942 		*value = EFX_EVQ_FLAGS_TYPE_LOW_LATENCY;
943 	else if (strcasecmp(value_str, SFC_KVARG_PERF_PROFILE_AUTO) == 0)
944 		*value = EFX_EVQ_FLAGS_TYPE_AUTO;
945 	else
946 		return -EINVAL;
947 
948 	return 0;
949 }
950 
951 int
952 sfc_ev_attach(struct sfc_adapter *sa)
953 {
954 	int rc;
955 
956 	sfc_log_init(sa, "entry");
957 
958 	sa->evq_flags = EFX_EVQ_FLAGS_TYPE_THROUGHPUT;
959 	rc = sfc_kvargs_process(sa, SFC_KVARG_PERF_PROFILE,
960 				sfc_kvarg_perf_profile_handler,
961 				&sa->evq_flags);
962 	if (rc != 0) {
963 		sfc_err(sa, "invalid %s parameter value",
964 			SFC_KVARG_PERF_PROFILE);
965 		goto fail_kvarg_perf_profile;
966 	}
967 
968 	sa->mgmt_evq_index = 0;
969 	rte_spinlock_init(&sa->mgmt_evq_lock);
970 
971 	rc = sfc_ev_qinit(sa, SFC_EVQ_TYPE_MGMT, 0, sa->evq_min_entries,
972 			  sa->socket_id, &sa->mgmt_evq);
973 	if (rc != 0)
974 		goto fail_mgmt_evq_init;
975 
976 	/*
977 	 * Rx/Tx event queues are created/destroyed when corresponding
978 	 * Rx/Tx queue is created/destroyed.
979 	 */
980 
981 	return 0;
982 
983 fail_mgmt_evq_init:
984 
985 fail_kvarg_perf_profile:
986 	sfc_log_init(sa, "failed %d", rc);
987 	return rc;
988 }
989 
990 void
991 sfc_ev_detach(struct sfc_adapter *sa)
992 {
993 	sfc_log_init(sa, "entry");
994 
995 	sfc_ev_qfini(sa->mgmt_evq);
996 
997 	if (sa->evq_count != 0)
998 		sfc_err(sa, "%u EvQs are not destroyed before detach",
999 			sa->evq_count);
1000 }
1001