xref: /freebsd/sys/dev/sfxge/sfxge_tx.c (revision ec0e626bafb335b30c499d06066997f54b10c092)
1 /*-
2  * Copyright (c) 2010-2011 Solarflare Communications, Inc.
3  * All rights reserved.
4  *
5  * This software was developed in part by Philip Paeps under contract for
6  * Solarflare Communications, Inc.
7  *
8  * Redistribution and use in source and binary forms, with or without
9  * modification, are permitted provided that the following conditions
10  * are met:
11  * 1. Redistributions of source code must retain the above copyright
12  *    notice, this list of conditions and the following disclaimer.
13  * 2. Redistributions in binary form must reproduce the above copyright
14  *    notice, this list of conditions and the following disclaimer in the
15  *    documentation and/or other materials provided with the distribution.
16  *
17  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
18  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
19  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
20  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
21  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
22  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
23  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
24  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
25  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
26  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
27  * SUCH DAMAGE.
28  */
29 
30 /* Theory of operation:
31  *
32  * Tx queues allocation and mapping
33  *
34  * One Tx queue with enabled checksum offload is allocated per Rx channel
35  * (event queue).  Also 2 Tx queues (one without checksum offload and one
36  * with IP checksum offload only) are allocated and bound to event queue 0.
37  * sfxge_txq_type is used as Tx queue label.
38  *
39  * So, event queue plus label mapping to Tx queue index is:
40  *	if event queue index is 0, TxQ-index = TxQ-label * [0..SFXGE_TXQ_NTYPES)
41  *	else TxQ-index = SFXGE_TXQ_NTYPES + EvQ-index - 1
42  * See sfxge_get_txq_by_label() sfxge_ev.c
43  */
44 
45 #include <sys/cdefs.h>
46 __FBSDID("$FreeBSD$");
47 
48 #include <sys/types.h>
49 #include <sys/mbuf.h>
50 #include <sys/smp.h>
51 #include <sys/socket.h>
52 #include <sys/sysctl.h>
53 #include <sys/syslog.h>
54 
55 #include <net/bpf.h>
56 #include <net/ethernet.h>
57 #include <net/if.h>
58 #include <net/if_vlan_var.h>
59 
60 #include <netinet/in.h>
61 #include <netinet/ip.h>
62 #include <netinet/ip6.h>
63 #include <netinet/tcp.h>
64 
65 #include "common/efx.h"
66 
67 #include "sfxge.h"
68 #include "sfxge_tx.h"
69 
70 /*
71  * Estimate maximum number of Tx descriptors required for TSO packet.
72  * With minimum MSS and maximum mbuf length we might need more (even
73  * than a ring-ful of descriptors), but this should not happen in
74  * practice except due to deliberate attack.  In that case we will
75  * truncate the output at a packet boundary.
76  */
77 #define	SFXGE_TSO_MAX_DESC						\
78 	(SFXGE_TSO_MAX_SEGS * 2 + SFXGE_TX_MAPPING_MAX_SEG - 1)
79 
80 /*
81  * Set the block level to ensure there is space to generate a
82  * large number of descriptors for TSO.
83  */
84 #define	SFXGE_TXQ_BLOCK_LEVEL(_entries)					\
85 	(EFX_TXQ_LIMIT(_entries) - SFXGE_TSO_MAX_DESC)
86 
87 #ifdef SFXGE_HAVE_MQ
88 
89 #define	SFXGE_PARAM_TX_DPL_GET_MAX	SFXGE_PARAM(tx_dpl_get_max)
90 static int sfxge_tx_dpl_get_max = SFXGE_TX_DPL_GET_PKT_LIMIT_DEFAULT;
91 TUNABLE_INT(SFXGE_PARAM_TX_DPL_GET_MAX, &sfxge_tx_dpl_get_max);
92 SYSCTL_INT(_hw_sfxge, OID_AUTO, tx_dpl_get_max, CTLFLAG_RDTUN,
93 	   &sfxge_tx_dpl_get_max, 0,
94 	   "Maximum number of any packets in deferred packet get-list");
95 
96 #define	SFXGE_PARAM_TX_DPL_GET_NON_TCP_MAX \
97 	SFXGE_PARAM(tx_dpl_get_non_tcp_max)
98 static int sfxge_tx_dpl_get_non_tcp_max =
99 	SFXGE_TX_DPL_GET_NON_TCP_PKT_LIMIT_DEFAULT;
100 TUNABLE_INT(SFXGE_PARAM_TX_DPL_GET_NON_TCP_MAX, &sfxge_tx_dpl_get_non_tcp_max);
101 SYSCTL_INT(_hw_sfxge, OID_AUTO, tx_dpl_get_non_tcp_max, CTLFLAG_RDTUN,
102 	   &sfxge_tx_dpl_get_non_tcp_max, 0,
103 	   "Maximum number of non-TCP packets in deferred packet get-list");
104 
105 #define	SFXGE_PARAM_TX_DPL_PUT_MAX	SFXGE_PARAM(tx_dpl_put_max)
106 static int sfxge_tx_dpl_put_max = SFXGE_TX_DPL_PUT_PKT_LIMIT_DEFAULT;
107 TUNABLE_INT(SFXGE_PARAM_TX_DPL_PUT_MAX, &sfxge_tx_dpl_put_max);
108 SYSCTL_INT(_hw_sfxge, OID_AUTO, tx_dpl_put_max, CTLFLAG_RDTUN,
109 	   &sfxge_tx_dpl_put_max, 0,
110 	   "Maximum number of any packets in deferred packet put-list");
111 
112 #endif
113 
114 
115 /* Forward declarations. */
116 static void sfxge_tx_qdpl_service(struct sfxge_txq *txq);
117 static void sfxge_tx_qlist_post(struct sfxge_txq *txq);
118 static void sfxge_tx_qunblock(struct sfxge_txq *txq);
119 static int sfxge_tx_queue_tso(struct sfxge_txq *txq, struct mbuf *mbuf,
120 			      const bus_dma_segment_t *dma_seg, int n_dma_seg);
121 
122 void
123 sfxge_tx_qcomplete(struct sfxge_txq *txq, struct sfxge_evq *evq)
124 {
125 	unsigned int completed;
126 
127 	SFXGE_EVQ_LOCK_ASSERT_OWNED(evq);
128 
129 	completed = txq->completed;
130 	while (completed != txq->pending) {
131 		struct sfxge_tx_mapping *stmp;
132 		unsigned int id;
133 
134 		id = completed++ & txq->ptr_mask;
135 
136 		stmp = &txq->stmp[id];
137 		if (stmp->flags & TX_BUF_UNMAP) {
138 			bus_dmamap_unload(txq->packet_dma_tag, stmp->map);
139 			if (stmp->flags & TX_BUF_MBUF) {
140 				struct mbuf *m = stmp->u.mbuf;
141 				do
142 					m = m_free(m);
143 				while (m != NULL);
144 			} else {
145 				free(stmp->u.heap_buf, M_SFXGE);
146 			}
147 			stmp->flags = 0;
148 		}
149 	}
150 	txq->completed = completed;
151 
152 	/* Check whether we need to unblock the queue. */
153 	mb();
154 	if (txq->blocked) {
155 		unsigned int level;
156 
157 		level = txq->added - txq->completed;
158 		if (level <= SFXGE_TXQ_UNBLOCK_LEVEL(txq->entries))
159 			sfxge_tx_qunblock(txq);
160 	}
161 }
162 
163 #ifdef SFXGE_HAVE_MQ
164 
165 static unsigned int
166 sfxge_is_mbuf_non_tcp(struct mbuf *mbuf)
167 {
168 	/* Absense of TCP checksum flags does not mean that it is non-TCP
169 	 * but it should be true if user wants to achieve high throughput.
170 	 */
171 	return (!(mbuf->m_pkthdr.csum_flags & (CSUM_IP_TCP | CSUM_IP6_TCP)));
172 }
173 
174 /*
175  * Reorder the put list and append it to the get list.
176  */
177 static void
178 sfxge_tx_qdpl_swizzle(struct sfxge_txq *txq)
179 {
180 	struct sfxge_tx_dpl *stdp;
181 	struct mbuf *mbuf, *get_next, **get_tailp;
182 	volatile uintptr_t *putp;
183 	uintptr_t put;
184 	unsigned int count;
185 	unsigned int non_tcp_count;
186 
187 	SFXGE_TXQ_LOCK_ASSERT_OWNED(txq);
188 
189 	stdp = &txq->dpl;
190 
191 	/* Acquire the put list. */
192 	putp = &stdp->std_put;
193 	put = atomic_readandclear_ptr(putp);
194 	mbuf = (void *)put;
195 
196 	if (mbuf == NULL)
197 		return;
198 
199 	/* Reverse the put list. */
200 	get_tailp = &mbuf->m_nextpkt;
201 	get_next = NULL;
202 
203 	count = 0;
204 	non_tcp_count = 0;
205 	do {
206 		struct mbuf *put_next;
207 
208 		non_tcp_count += sfxge_is_mbuf_non_tcp(mbuf);
209 		put_next = mbuf->m_nextpkt;
210 		mbuf->m_nextpkt = get_next;
211 		get_next = mbuf;
212 		mbuf = put_next;
213 
214 		count++;
215 	} while (mbuf != NULL);
216 
217 	if (count > stdp->std_put_hiwat)
218 		stdp->std_put_hiwat = count;
219 
220 	/* Append the reversed put list to the get list. */
221 	KASSERT(*get_tailp == NULL, ("*get_tailp != NULL"));
222 	*stdp->std_getp = get_next;
223 	stdp->std_getp = get_tailp;
224 	stdp->std_get_count += count;
225 	stdp->std_get_non_tcp_count += non_tcp_count;
226 }
227 
228 #endif /* SFXGE_HAVE_MQ */
229 
230 static void
231 sfxge_tx_qreap(struct sfxge_txq *txq)
232 {
233 	SFXGE_TXQ_LOCK_ASSERT_OWNED(txq);
234 
235 	txq->reaped = txq->completed;
236 }
237 
238 static void
239 sfxge_tx_qlist_post(struct sfxge_txq *txq)
240 {
241 	unsigned int old_added;
242 	unsigned int level;
243 	int rc;
244 
245 	SFXGE_TXQ_LOCK_ASSERT_OWNED(txq);
246 
247 	KASSERT(txq->n_pend_desc != 0, ("txq->n_pend_desc == 0"));
248 	KASSERT(txq->n_pend_desc <= SFXGE_TSO_MAX_DESC,
249 		("txq->n_pend_desc too large"));
250 	KASSERT(!txq->blocked, ("txq->blocked"));
251 
252 	old_added = txq->added;
253 
254 	/* Post the fragment list. */
255 	rc = efx_tx_qpost(txq->common, txq->pend_desc, txq->n_pend_desc,
256 			  txq->reaped, &txq->added);
257 	KASSERT(rc == 0, ("efx_tx_qpost() failed"));
258 
259 	/* If efx_tx_qpost() had to refragment, our information about
260 	 * buffers to free may be associated with the wrong
261 	 * descriptors.
262 	 */
263 	KASSERT(txq->added - old_added == txq->n_pend_desc,
264 		("efx_tx_qpost() refragmented descriptors"));
265 
266 	level = txq->added - txq->reaped;
267 	KASSERT(level <= txq->entries, ("overfilled TX queue"));
268 
269 	/* Clear the fragment list. */
270 	txq->n_pend_desc = 0;
271 
272 	/* Have we reached the block level? */
273 	if (level < SFXGE_TXQ_BLOCK_LEVEL(txq->entries))
274 		return;
275 
276 	/* Reap, and check again */
277 	sfxge_tx_qreap(txq);
278 	level = txq->added - txq->reaped;
279 	if (level < SFXGE_TXQ_BLOCK_LEVEL(txq->entries))
280 		return;
281 
282 	txq->blocked = 1;
283 
284 	/*
285 	 * Avoid a race with completion interrupt handling that could leave
286 	 * the queue blocked.
287 	 */
288 	mb();
289 	sfxge_tx_qreap(txq);
290 	level = txq->added - txq->reaped;
291 	if (level < SFXGE_TXQ_BLOCK_LEVEL(txq->entries)) {
292 		mb();
293 		txq->blocked = 0;
294 	}
295 }
296 
297 static int sfxge_tx_queue_mbuf(struct sfxge_txq *txq, struct mbuf *mbuf)
298 {
299 	bus_dmamap_t *used_map;
300 	bus_dmamap_t map;
301 	bus_dma_segment_t dma_seg[SFXGE_TX_MAPPING_MAX_SEG];
302 	unsigned int id;
303 	struct sfxge_tx_mapping *stmp;
304 	efx_buffer_t *desc;
305 	int n_dma_seg;
306 	int rc;
307 	int i;
308 
309 	KASSERT(!txq->blocked, ("txq->blocked"));
310 
311 	if (mbuf->m_pkthdr.csum_flags & CSUM_TSO)
312 		prefetch_read_many(mbuf->m_data);
313 
314 	if (__predict_false(txq->init_state != SFXGE_TXQ_STARTED)) {
315 		rc = EINTR;
316 		goto reject;
317 	}
318 
319 	/* Load the packet for DMA. */
320 	id = txq->added & txq->ptr_mask;
321 	stmp = &txq->stmp[id];
322 	rc = bus_dmamap_load_mbuf_sg(txq->packet_dma_tag, stmp->map,
323 				     mbuf, dma_seg, &n_dma_seg, 0);
324 	if (rc == EFBIG) {
325 		/* Try again. */
326 		struct mbuf *new_mbuf = m_collapse(mbuf, M_NOWAIT,
327 						   SFXGE_TX_MAPPING_MAX_SEG);
328 		if (new_mbuf == NULL)
329 			goto reject;
330 		++txq->collapses;
331 		mbuf = new_mbuf;
332 		rc = bus_dmamap_load_mbuf_sg(txq->packet_dma_tag,
333 					     stmp->map, mbuf,
334 					     dma_seg, &n_dma_seg, 0);
335 	}
336 	if (rc != 0)
337 		goto reject;
338 
339 	/* Make the packet visible to the hardware. */
340 	bus_dmamap_sync(txq->packet_dma_tag, stmp->map, BUS_DMASYNC_PREWRITE);
341 
342 	used_map = &stmp->map;
343 
344 	if (mbuf->m_pkthdr.csum_flags & CSUM_TSO) {
345 		rc = sfxge_tx_queue_tso(txq, mbuf, dma_seg, n_dma_seg);
346 		if (rc < 0)
347 			goto reject_mapped;
348 		stmp = &txq->stmp[rc];
349 	} else {
350 		/* Add the mapping to the fragment list, and set flags
351 		 * for the buffer.
352 		 */
353 		i = 0;
354 		for (;;) {
355 			desc = &txq->pend_desc[i];
356 			desc->eb_addr = dma_seg[i].ds_addr;
357 			desc->eb_size = dma_seg[i].ds_len;
358 			if (i == n_dma_seg - 1) {
359 				desc->eb_eop = 1;
360 				break;
361 			}
362 			desc->eb_eop = 0;
363 			i++;
364 
365 			stmp->flags = 0;
366 			if (__predict_false(stmp ==
367 					    &txq->stmp[txq->ptr_mask]))
368 				stmp = &txq->stmp[0];
369 			else
370 				stmp++;
371 		}
372 		txq->n_pend_desc = n_dma_seg;
373 	}
374 
375 	/*
376 	 * If the mapping required more than one descriptor
377 	 * then we need to associate the DMA map with the last
378 	 * descriptor, not the first.
379 	 */
380 	if (used_map != &stmp->map) {
381 		map = stmp->map;
382 		stmp->map = *used_map;
383 		*used_map = map;
384 	}
385 
386 	stmp->u.mbuf = mbuf;
387 	stmp->flags = TX_BUF_UNMAP | TX_BUF_MBUF;
388 
389 	/* Post the fragment list. */
390 	sfxge_tx_qlist_post(txq);
391 
392 	return (0);
393 
394 reject_mapped:
395 	bus_dmamap_unload(txq->packet_dma_tag, *used_map);
396 reject:
397 	/* Drop the packet on the floor. */
398 	m_freem(mbuf);
399 	++txq->drops;
400 
401 	return (rc);
402 }
403 
404 #ifdef SFXGE_HAVE_MQ
405 
406 /*
407  * Drain the deferred packet list into the transmit queue.
408  */
409 static void
410 sfxge_tx_qdpl_drain(struct sfxge_txq *txq)
411 {
412 	struct sfxge_softc *sc;
413 	struct sfxge_tx_dpl *stdp;
414 	struct mbuf *mbuf, *next;
415 	unsigned int count;
416 	unsigned int non_tcp_count;
417 	unsigned int pushed;
418 	int rc;
419 
420 	SFXGE_TXQ_LOCK_ASSERT_OWNED(txq);
421 
422 	sc = txq->sc;
423 	stdp = &txq->dpl;
424 	pushed = txq->added;
425 
426 	if (__predict_true(txq->init_state == SFXGE_TXQ_STARTED)) {
427 		prefetch_read_many(sc->enp);
428 		prefetch_read_many(txq->common);
429 	}
430 
431 	mbuf = stdp->std_get;
432 	count = stdp->std_get_count;
433 	non_tcp_count = stdp->std_get_non_tcp_count;
434 
435 	if (count > stdp->std_get_hiwat)
436 		stdp->std_get_hiwat = count;
437 
438 	while (count != 0) {
439 		KASSERT(mbuf != NULL, ("mbuf == NULL"));
440 
441 		next = mbuf->m_nextpkt;
442 		mbuf->m_nextpkt = NULL;
443 
444 		ETHER_BPF_MTAP(sc->ifnet, mbuf); /* packet capture */
445 
446 		if (next != NULL)
447 			prefetch_read_many(next);
448 
449 		rc = sfxge_tx_queue_mbuf(txq, mbuf);
450 		--count;
451 		non_tcp_count -= sfxge_is_mbuf_non_tcp(mbuf);
452 		mbuf = next;
453 		if (rc != 0)
454 			continue;
455 
456 		if (txq->blocked)
457 			break;
458 
459 		/* Push the fragments to the hardware in batches. */
460 		if (txq->added - pushed >= SFXGE_TX_BATCH) {
461 			efx_tx_qpush(txq->common, txq->added);
462 			pushed = txq->added;
463 		}
464 	}
465 
466 	if (count == 0) {
467 		KASSERT(mbuf == NULL, ("mbuf != NULL"));
468 		KASSERT(non_tcp_count == 0,
469 			("inconsistent TCP/non-TCP detection"));
470 		stdp->std_get = NULL;
471 		stdp->std_get_count = 0;
472 		stdp->std_get_non_tcp_count = 0;
473 		stdp->std_getp = &stdp->std_get;
474 	} else {
475 		stdp->std_get = mbuf;
476 		stdp->std_get_count = count;
477 		stdp->std_get_non_tcp_count = non_tcp_count;
478 	}
479 
480 	if (txq->added != pushed)
481 		efx_tx_qpush(txq->common, txq->added);
482 
483 	KASSERT(txq->blocked || stdp->std_get_count == 0,
484 		("queue unblocked but count is non-zero"));
485 }
486 
487 #define	SFXGE_TX_QDPL_PENDING(_txq)					\
488 	((_txq)->dpl.std_put != 0)
489 
490 /*
491  * Service the deferred packet list.
492  *
493  * NOTE: drops the txq mutex!
494  */
495 static void
496 sfxge_tx_qdpl_service(struct sfxge_txq *txq)
497 {
498 	SFXGE_TXQ_LOCK_ASSERT_OWNED(txq);
499 
500 	do {
501 		if (SFXGE_TX_QDPL_PENDING(txq))
502 			sfxge_tx_qdpl_swizzle(txq);
503 
504 		if (!txq->blocked)
505 			sfxge_tx_qdpl_drain(txq);
506 
507 		SFXGE_TXQ_UNLOCK(txq);
508 	} while (SFXGE_TX_QDPL_PENDING(txq) &&
509 		 SFXGE_TXQ_TRYLOCK(txq));
510 }
511 
512 /*
513  * Put a packet on the deferred packet list.
514  *
515  * If we are called with the txq lock held, we put the packet on the "get
516  * list", otherwise we atomically push it on the "put list".  The swizzle
517  * function takes care of ordering.
518  *
519  * The length of the put list is bounded by SFXGE_TX_MAX_DEFERRED.  We
520  * overload the csum_data field in the mbuf to keep track of this length
521  * because there is no cheap alternative to avoid races.
522  */
523 static int
524 sfxge_tx_qdpl_put(struct sfxge_txq *txq, struct mbuf *mbuf, int locked)
525 {
526 	struct sfxge_tx_dpl *stdp;
527 
528 	stdp = &txq->dpl;
529 
530 	KASSERT(mbuf->m_nextpkt == NULL, ("mbuf->m_nextpkt != NULL"));
531 
532 	if (locked) {
533 		SFXGE_TXQ_LOCK_ASSERT_OWNED(txq);
534 
535 		sfxge_tx_qdpl_swizzle(txq);
536 
537 		if (stdp->std_get_count >= stdp->std_get_max) {
538 			txq->get_overflow++;
539 			return (ENOBUFS);
540 		}
541 		if (sfxge_is_mbuf_non_tcp(mbuf)) {
542 			if (stdp->std_get_non_tcp_count >=
543 			    stdp->std_get_non_tcp_max) {
544 				txq->get_non_tcp_overflow++;
545 				return (ENOBUFS);
546 			}
547 			stdp->std_get_non_tcp_count++;
548 		}
549 
550 		*(stdp->std_getp) = mbuf;
551 		stdp->std_getp = &mbuf->m_nextpkt;
552 		stdp->std_get_count++;
553 	} else {
554 		volatile uintptr_t *putp;
555 		uintptr_t old;
556 		uintptr_t new;
557 		unsigned old_len;
558 
559 		putp = &stdp->std_put;
560 		new = (uintptr_t)mbuf;
561 
562 		do {
563 			old = *putp;
564 			if (old != 0) {
565 				struct mbuf *mp = (struct mbuf *)old;
566 				old_len = mp->m_pkthdr.csum_data;
567 			} else
568 				old_len = 0;
569 			if (old_len >= stdp->std_put_max) {
570 				atomic_add_long(&txq->put_overflow, 1);
571 				return (ENOBUFS);
572 			}
573 			mbuf->m_pkthdr.csum_data = old_len + 1;
574 			mbuf->m_nextpkt = (void *)old;
575 		} while (atomic_cmpset_ptr(putp, old, new) == 0);
576 	}
577 
578 	return (0);
579 }
580 
581 /*
582  * Called from if_transmit - will try to grab the txq lock and enqueue to the
583  * put list if it succeeds, otherwise try to push onto the defer list if space.
584  */
585 int
586 sfxge_tx_packet_add(struct sfxge_txq *txq, struct mbuf *m)
587 {
588 	int locked;
589 	int rc;
590 
591 	if (!SFXGE_LINK_UP(txq->sc)) {
592 		rc = ENETDOWN;
593 		atomic_add_long(&txq->netdown_drops, 1);
594 		goto fail;
595 	}
596 
597 	/*
598 	 * Try to grab the txq lock.  If we are able to get the lock,
599 	 * the packet will be appended to the "get list" of the deferred
600 	 * packet list.  Otherwise, it will be pushed on the "put list".
601 	 */
602 	locked = SFXGE_TXQ_TRYLOCK(txq);
603 
604 	if (sfxge_tx_qdpl_put(txq, m, locked) != 0) {
605 		if (locked)
606 			SFXGE_TXQ_UNLOCK(txq);
607 		rc = ENOBUFS;
608 		goto fail;
609 	}
610 
611 	/*
612 	 * Try to grab the lock again.
613 	 *
614 	 * If we are able to get the lock, we need to process the deferred
615 	 * packet list.  If we are not able to get the lock, another thread
616 	 * is processing the list.
617 	 */
618 	if (!locked)
619 		locked = SFXGE_TXQ_TRYLOCK(txq);
620 
621 	if (locked) {
622 		/* Try to service the list. */
623 		sfxge_tx_qdpl_service(txq);
624 		/* Lock has been dropped. */
625 	}
626 
627 	return (0);
628 
629 fail:
630 	m_freem(m);
631 	return (rc);
632 }
633 
634 static void
635 sfxge_tx_qdpl_flush(struct sfxge_txq *txq)
636 {
637 	struct sfxge_tx_dpl *stdp = &txq->dpl;
638 	struct mbuf *mbuf, *next;
639 
640 	SFXGE_TXQ_LOCK(txq);
641 
642 	sfxge_tx_qdpl_swizzle(txq);
643 	for (mbuf = stdp->std_get; mbuf != NULL; mbuf = next) {
644 		next = mbuf->m_nextpkt;
645 		m_freem(mbuf);
646 	}
647 	stdp->std_get = NULL;
648 	stdp->std_get_count = 0;
649 	stdp->std_get_non_tcp_count = 0;
650 	stdp->std_getp = &stdp->std_get;
651 
652 	SFXGE_TXQ_UNLOCK(txq);
653 }
654 
655 void
656 sfxge_if_qflush(struct ifnet *ifp)
657 {
658 	struct sfxge_softc *sc;
659 	int i;
660 
661 	sc = ifp->if_softc;
662 
663 	for (i = 0; i < sc->txq_count; i++)
664 		sfxge_tx_qdpl_flush(sc->txq[i]);
665 }
666 
667 /*
668  * TX start -- called by the stack.
669  */
670 int
671 sfxge_if_transmit(struct ifnet *ifp, struct mbuf *m)
672 {
673 	struct sfxge_softc *sc;
674 	struct sfxge_txq *txq;
675 	int rc;
676 
677 	sc = (struct sfxge_softc *)ifp->if_softc;
678 
679 	KASSERT(ifp->if_flags & IFF_UP, ("interface not up"));
680 
681 	/* Pick the desired transmit queue. */
682 	if (m->m_pkthdr.csum_flags & (CSUM_DELAY_DATA | CSUM_TSO)) {
683 		int index = 0;
684 
685 		/* check if flowid is set */
686 		if (M_HASHTYPE_GET(m) != M_HASHTYPE_NONE) {
687 			uint32_t hash = m->m_pkthdr.flowid;
688 
689 			index = sc->rx_indir_table[hash % SFXGE_RX_SCALE_MAX];
690 		}
691 		txq = sc->txq[SFXGE_TXQ_IP_TCP_UDP_CKSUM + index];
692 	} else if (m->m_pkthdr.csum_flags & CSUM_DELAY_IP) {
693 		txq = sc->txq[SFXGE_TXQ_IP_CKSUM];
694 	} else {
695 		txq = sc->txq[SFXGE_TXQ_NON_CKSUM];
696 	}
697 
698 	rc = sfxge_tx_packet_add(txq, m);
699 
700 	return (rc);
701 }
702 
703 #else /* !SFXGE_HAVE_MQ */
704 
705 static void sfxge_if_start_locked(struct ifnet *ifp)
706 {
707 	struct sfxge_softc *sc = ifp->if_softc;
708 	struct sfxge_txq *txq;
709 	struct mbuf *mbuf;
710 	unsigned int pushed[SFXGE_TXQ_NTYPES];
711 	unsigned int q_index;
712 
713 	if ((ifp->if_drv_flags & (IFF_DRV_RUNNING|IFF_DRV_OACTIVE)) !=
714 	    IFF_DRV_RUNNING)
715 		return;
716 
717 	if (!sc->port.link_up)
718 		return;
719 
720 	for (q_index = 0; q_index < SFXGE_TXQ_NTYPES; q_index++) {
721 		txq = sc->txq[q_index];
722 		pushed[q_index] = txq->added;
723 	}
724 
725 	while (!IFQ_DRV_IS_EMPTY(&ifp->if_snd)) {
726 		IFQ_DRV_DEQUEUE(&ifp->if_snd, mbuf);
727 		if (mbuf == NULL)
728 			break;
729 
730 		ETHER_BPF_MTAP(ifp, mbuf); /* packet capture */
731 
732 		/* Pick the desired transmit queue. */
733 		if (mbuf->m_pkthdr.csum_flags & (CSUM_DELAY_DATA | CSUM_TSO))
734 			q_index = SFXGE_TXQ_IP_TCP_UDP_CKSUM;
735 		else if (mbuf->m_pkthdr.csum_flags & CSUM_DELAY_IP)
736 			q_index = SFXGE_TXQ_IP_CKSUM;
737 		else
738 			q_index = SFXGE_TXQ_NON_CKSUM;
739 		txq = sc->txq[q_index];
740 
741 		if (sfxge_tx_queue_mbuf(txq, mbuf) != 0)
742 			continue;
743 
744 		if (txq->blocked) {
745 			ifp->if_drv_flags |= IFF_DRV_OACTIVE;
746 			break;
747 		}
748 
749 		/* Push the fragments to the hardware in batches. */
750 		if (txq->added - pushed[q_index] >= SFXGE_TX_BATCH) {
751 			efx_tx_qpush(txq->common, txq->added);
752 			pushed[q_index] = txq->added;
753 		}
754 	}
755 
756 	for (q_index = 0; q_index < SFXGE_TXQ_NTYPES; q_index++) {
757 		txq = sc->txq[q_index];
758 		if (txq->added != pushed[q_index])
759 			efx_tx_qpush(txq->common, txq->added);
760 	}
761 }
762 
763 void sfxge_if_start(struct ifnet *ifp)
764 {
765 	struct sfxge_softc *sc = ifp->if_softc;
766 
767 	SFXGE_TXQ_LOCK(sc->txq[0]);
768 	sfxge_if_start_locked(ifp);
769 	SFXGE_TXQ_UNLOCK(sc->txq[0]);
770 }
771 
772 static void
773 sfxge_tx_qdpl_service(struct sfxge_txq *txq)
774 {
775 	struct ifnet *ifp = txq->sc->ifnet;
776 
777 	SFXGE_TXQ_LOCK_ASSERT_OWNED(txq);
778 	ifp->if_drv_flags &= ~IFF_DRV_OACTIVE;
779 	sfxge_if_start_locked(ifp);
780 	SFXGE_TXQ_UNLOCK(txq);
781 }
782 
783 #endif /* SFXGE_HAVE_MQ */
784 
785 /*
786  * Software "TSO".  Not quite as good as doing it in hardware, but
787  * still faster than segmenting in the stack.
788  */
789 
790 struct sfxge_tso_state {
791 	/* Output position */
792 	unsigned out_len;	/* Remaining length in current segment */
793 	unsigned seqnum;	/* Current sequence number */
794 	unsigned packet_space;	/* Remaining space in current packet */
795 
796 	/* Input position */
797 	uint64_t dma_addr;	/* DMA address of current position */
798 	unsigned in_len;	/* Remaining length in current mbuf */
799 
800 	const struct mbuf *mbuf; /* Input mbuf (head of chain) */
801 	u_short protocol;	/* Network protocol (after VLAN decap) */
802 	ssize_t nh_off;		/* Offset of network header */
803 	ssize_t tcph_off;	/* Offset of TCP header */
804 	unsigned header_len;	/* Number of bytes of header */
805 	unsigned seg_size;	/* TCP segment size */
806 };
807 
808 static const struct ip *tso_iph(const struct sfxge_tso_state *tso)
809 {
810 	KASSERT(tso->protocol == htons(ETHERTYPE_IP),
811 		("tso_iph() in non-IPv4 state"));
812 	return (const struct ip *)(tso->mbuf->m_data + tso->nh_off);
813 }
814 static __unused const struct ip6_hdr *tso_ip6h(const struct sfxge_tso_state *tso)
815 {
816 	KASSERT(tso->protocol == htons(ETHERTYPE_IPV6),
817 		("tso_ip6h() in non-IPv6 state"));
818 	return (const struct ip6_hdr *)(tso->mbuf->m_data + tso->nh_off);
819 }
820 static const struct tcphdr *tso_tcph(const struct sfxge_tso_state *tso)
821 {
822 	return (const struct tcphdr *)(tso->mbuf->m_data + tso->tcph_off);
823 }
824 
825 /* Size of preallocated TSO header buffers.  Larger blocks must be
826  * allocated from the heap.
827  */
828 #define	TSOH_STD_SIZE	128
829 
830 /* At most half the descriptors in the queue at any time will refer to
831  * a TSO header buffer, since they must always be followed by a
832  * payload descriptor referring to an mbuf.
833  */
834 #define	TSOH_COUNT(_txq_entries)	((_txq_entries) / 2u)
835 #define	TSOH_PER_PAGE	(PAGE_SIZE / TSOH_STD_SIZE)
836 #define	TSOH_PAGE_COUNT(_txq_entries)	\
837 	((TSOH_COUNT(_txq_entries) + TSOH_PER_PAGE - 1) / TSOH_PER_PAGE)
838 
839 static int tso_init(struct sfxge_txq *txq)
840 {
841 	struct sfxge_softc *sc = txq->sc;
842 	unsigned int tsoh_page_count = TSOH_PAGE_COUNT(sc->txq_entries);
843 	int i, rc;
844 
845 	/* Allocate TSO header buffers */
846 	txq->tsoh_buffer = malloc(tsoh_page_count * sizeof(txq->tsoh_buffer[0]),
847 				  M_SFXGE, M_WAITOK);
848 
849 	for (i = 0; i < tsoh_page_count; i++) {
850 		rc = sfxge_dma_alloc(sc, PAGE_SIZE, &txq->tsoh_buffer[i]);
851 		if (rc != 0)
852 			goto fail;
853 	}
854 
855 	return (0);
856 
857 fail:
858 	while (i-- > 0)
859 		sfxge_dma_free(&txq->tsoh_buffer[i]);
860 	free(txq->tsoh_buffer, M_SFXGE);
861 	txq->tsoh_buffer = NULL;
862 	return (rc);
863 }
864 
865 static void tso_fini(struct sfxge_txq *txq)
866 {
867 	int i;
868 
869 	if (txq->tsoh_buffer != NULL) {
870 		for (i = 0; i < TSOH_PAGE_COUNT(txq->sc->txq_entries); i++)
871 			sfxge_dma_free(&txq->tsoh_buffer[i]);
872 		free(txq->tsoh_buffer, M_SFXGE);
873 	}
874 }
875 
876 static void tso_start(struct sfxge_tso_state *tso, struct mbuf *mbuf)
877 {
878 	struct ether_header *eh = mtod(mbuf, struct ether_header *);
879 	const struct tcphdr *th;
880 	struct tcphdr th_copy;
881 
882 	tso->mbuf = mbuf;
883 
884 	/* Find network protocol and header */
885 	tso->protocol = eh->ether_type;
886 	if (tso->protocol == htons(ETHERTYPE_VLAN)) {
887 		struct ether_vlan_header *veh =
888 			mtod(mbuf, struct ether_vlan_header *);
889 		tso->protocol = veh->evl_proto;
890 		tso->nh_off = sizeof(*veh);
891 	} else {
892 		tso->nh_off = sizeof(*eh);
893 	}
894 
895 	/* Find TCP header */
896 	if (tso->protocol == htons(ETHERTYPE_IP)) {
897 		KASSERT(tso_iph(tso)->ip_p == IPPROTO_TCP,
898 			("TSO required on non-TCP packet"));
899 		tso->tcph_off = tso->nh_off + 4 * tso_iph(tso)->ip_hl;
900 	} else {
901 		KASSERT(tso->protocol == htons(ETHERTYPE_IPV6),
902 			("TSO required on non-IP packet"));
903 		KASSERT(tso_ip6h(tso)->ip6_nxt == IPPROTO_TCP,
904 			("TSO required on non-TCP packet"));
905 		tso->tcph_off = tso->nh_off + sizeof(struct ip6_hdr);
906 	}
907 
908 	KASSERT(mbuf->m_len >= tso->tcph_off,
909 		("network header is fragmented in mbuf"));
910 	/* We need TCP header including flags (window is the next) */
911 	if (mbuf->m_len < tso->tcph_off + offsetof(struct tcphdr, th_win)) {
912 		m_copydata(tso->mbuf, tso->tcph_off, sizeof(th_copy),
913 			   (caddr_t)&th_copy);
914 		th = &th_copy;
915 	} else {
916 		th = tso_tcph(tso);
917 	}
918 
919 	tso->header_len = tso->tcph_off + 4 * th->th_off;
920 	tso->seg_size = mbuf->m_pkthdr.tso_segsz;
921 
922 	tso->seqnum = ntohl(th->th_seq);
923 
924 	/* These flags must not be duplicated */
925 	KASSERT(!(th->th_flags & (TH_URG | TH_SYN | TH_RST)),
926 		("incompatible TCP flag on TSO packet"));
927 
928 	tso->out_len = mbuf->m_pkthdr.len - tso->header_len;
929 }
930 
931 /*
932  * tso_fill_packet_with_fragment - form descriptors for the current fragment
933  *
934  * Form descriptors for the current fragment, until we reach the end
935  * of fragment or end-of-packet.  Return 0 on success, 1 if not enough
936  * space.
937  */
938 static void tso_fill_packet_with_fragment(struct sfxge_txq *txq,
939 					  struct sfxge_tso_state *tso)
940 {
941 	efx_buffer_t *desc;
942 	int n;
943 
944 	if (tso->in_len == 0 || tso->packet_space == 0)
945 		return;
946 
947 	KASSERT(tso->in_len > 0, ("TSO input length went negative"));
948 	KASSERT(tso->packet_space > 0, ("TSO packet space went negative"));
949 
950 	n = min(tso->in_len, tso->packet_space);
951 
952 	tso->packet_space -= n;
953 	tso->out_len -= n;
954 	tso->in_len -= n;
955 
956 	desc = &txq->pend_desc[txq->n_pend_desc++];
957 	desc->eb_addr = tso->dma_addr;
958 	desc->eb_size = n;
959 	desc->eb_eop = tso->out_len == 0 || tso->packet_space == 0;
960 
961 	tso->dma_addr += n;
962 }
963 
964 /* Callback from bus_dmamap_load() for long TSO headers. */
965 static void tso_map_long_header(void *dma_addr_ret,
966 				bus_dma_segment_t *segs, int nseg,
967 				int error)
968 {
969 	*(uint64_t *)dma_addr_ret = ((__predict_true(error == 0) &&
970 				      __predict_true(nseg == 1)) ?
971 				     segs->ds_addr : 0);
972 }
973 
974 /*
975  * tso_start_new_packet - generate a new header and prepare for the new packet
976  *
977  * Generate a new header and prepare for the new packet.  Return 0 on
978  * success, or an error code if failed to alloc header.
979  */
980 static int tso_start_new_packet(struct sfxge_txq *txq,
981 				struct sfxge_tso_state *tso,
982 				unsigned int id)
983 {
984 	struct sfxge_tx_mapping *stmp = &txq->stmp[id];
985 	struct tcphdr *tsoh_th;
986 	unsigned ip_length;
987 	caddr_t header;
988 	uint64_t dma_addr;
989 	bus_dmamap_t map;
990 	efx_buffer_t *desc;
991 	int rc;
992 
993 	/* Allocate a DMA-mapped header buffer. */
994 	if (__predict_true(tso->header_len <= TSOH_STD_SIZE)) {
995 		unsigned int page_index = (id / 2) / TSOH_PER_PAGE;
996 		unsigned int buf_index = (id / 2) % TSOH_PER_PAGE;
997 
998 		header = (txq->tsoh_buffer[page_index].esm_base +
999 			  buf_index * TSOH_STD_SIZE);
1000 		dma_addr = (txq->tsoh_buffer[page_index].esm_addr +
1001 			    buf_index * TSOH_STD_SIZE);
1002 		map = txq->tsoh_buffer[page_index].esm_map;
1003 
1004 		stmp->flags = 0;
1005 	} else {
1006 		/* We cannot use bus_dmamem_alloc() as that may sleep */
1007 		header = malloc(tso->header_len, M_SFXGE, M_NOWAIT);
1008 		if (__predict_false(!header))
1009 			return (ENOMEM);
1010 		rc = bus_dmamap_load(txq->packet_dma_tag, stmp->map,
1011 				     header, tso->header_len,
1012 				     tso_map_long_header, &dma_addr,
1013 				     BUS_DMA_NOWAIT);
1014 		if (__predict_false(dma_addr == 0)) {
1015 			if (rc == 0) {
1016 				/* Succeeded but got >1 segment */
1017 				bus_dmamap_unload(txq->packet_dma_tag,
1018 						  stmp->map);
1019 				rc = EINVAL;
1020 			}
1021 			free(header, M_SFXGE);
1022 			return (rc);
1023 		}
1024 		map = stmp->map;
1025 
1026 		txq->tso_long_headers++;
1027 		stmp->u.heap_buf = header;
1028 		stmp->flags = TX_BUF_UNMAP;
1029 	}
1030 
1031 	tsoh_th = (struct tcphdr *)(header + tso->tcph_off);
1032 
1033 	/* Copy and update the headers. */
1034 	m_copydata(tso->mbuf, 0, tso->header_len, header);
1035 
1036 	tsoh_th->th_seq = htonl(tso->seqnum);
1037 	tso->seqnum += tso->seg_size;
1038 	if (tso->out_len > tso->seg_size) {
1039 		/* This packet will not finish the TSO burst. */
1040 		ip_length = tso->header_len - tso->nh_off + tso->seg_size;
1041 		tsoh_th->th_flags &= ~(TH_FIN | TH_PUSH);
1042 	} else {
1043 		/* This packet will be the last in the TSO burst. */
1044 		ip_length = tso->header_len - tso->nh_off + tso->out_len;
1045 	}
1046 
1047 	if (tso->protocol == htons(ETHERTYPE_IP)) {
1048 		struct ip *tsoh_iph = (struct ip *)(header + tso->nh_off);
1049 		tsoh_iph->ip_len = htons(ip_length);
1050 		/* XXX We should increment ip_id, but FreeBSD doesn't
1051 		 * currently allocate extra IDs for multiple segments.
1052 		 */
1053 	} else {
1054 		struct ip6_hdr *tsoh_iph =
1055 			(struct ip6_hdr *)(header + tso->nh_off);
1056 		tsoh_iph->ip6_plen = htons(ip_length - sizeof(*tsoh_iph));
1057 	}
1058 
1059 	/* Make the header visible to the hardware. */
1060 	bus_dmamap_sync(txq->packet_dma_tag, map, BUS_DMASYNC_PREWRITE);
1061 
1062 	tso->packet_space = tso->seg_size;
1063 	txq->tso_packets++;
1064 
1065 	/* Form a descriptor for this header. */
1066 	desc = &txq->pend_desc[txq->n_pend_desc++];
1067 	desc->eb_addr = dma_addr;
1068 	desc->eb_size = tso->header_len;
1069 	desc->eb_eop = 0;
1070 
1071 	return (0);
1072 }
1073 
1074 static int
1075 sfxge_tx_queue_tso(struct sfxge_txq *txq, struct mbuf *mbuf,
1076 		   const bus_dma_segment_t *dma_seg, int n_dma_seg)
1077 {
1078 	struct sfxge_tso_state tso;
1079 	unsigned int id, next_id;
1080 	unsigned skipped = 0;
1081 
1082 	tso_start(&tso, mbuf);
1083 
1084 	while (dma_seg->ds_len + skipped <= tso.header_len) {
1085 		skipped += dma_seg->ds_len;
1086 		--n_dma_seg;
1087 		KASSERT(n_dma_seg, ("no payload found in TSO packet"));
1088 		++dma_seg;
1089 	}
1090 	tso.in_len = dma_seg->ds_len + (tso.header_len - skipped);
1091 	tso.dma_addr = dma_seg->ds_addr + (tso.header_len - skipped);
1092 
1093 	id = txq->added & txq->ptr_mask;
1094 	if (__predict_false(tso_start_new_packet(txq, &tso, id)))
1095 		return (-1);
1096 
1097 	while (1) {
1098 		id = (id + 1) & txq->ptr_mask;
1099 		tso_fill_packet_with_fragment(txq, &tso);
1100 
1101 		/* Move onto the next fragment? */
1102 		if (tso.in_len == 0) {
1103 			--n_dma_seg;
1104 			if (n_dma_seg == 0)
1105 				break;
1106 			++dma_seg;
1107 			tso.in_len = dma_seg->ds_len;
1108 			tso.dma_addr = dma_seg->ds_addr;
1109 		}
1110 
1111 		/* End of packet? */
1112 		if (tso.packet_space == 0) {
1113 			/* If the queue is now full due to tiny MSS,
1114 			 * or we can't create another header, discard
1115 			 * the remainder of the input mbuf but do not
1116 			 * roll back the work we have done.
1117 			 */
1118 			if (txq->n_pend_desc + 1 /* header */ + n_dma_seg >
1119 			    SFXGE_TSO_MAX_DESC) {
1120 				txq->tso_pdrop_too_many++;
1121 				break;
1122 			}
1123 			next_id = (id + 1) & txq->ptr_mask;
1124 			if (__predict_false(tso_start_new_packet(txq, &tso,
1125 								 next_id))) {
1126 				txq->tso_pdrop_no_rsrc++;
1127 				break;
1128 			}
1129 			id = next_id;
1130 		}
1131 	}
1132 
1133 	txq->tso_bursts++;
1134 	return (id);
1135 }
1136 
1137 static void
1138 sfxge_tx_qunblock(struct sfxge_txq *txq)
1139 {
1140 	struct sfxge_softc *sc;
1141 	struct sfxge_evq *evq;
1142 
1143 	sc = txq->sc;
1144 	evq = sc->evq[txq->evq_index];
1145 
1146 	SFXGE_EVQ_LOCK_ASSERT_OWNED(evq);
1147 
1148 	if (__predict_false(txq->init_state != SFXGE_TXQ_STARTED))
1149 		return;
1150 
1151 	SFXGE_TXQ_LOCK(txq);
1152 
1153 	if (txq->blocked) {
1154 		unsigned int level;
1155 
1156 		level = txq->added - txq->completed;
1157 		if (level <= SFXGE_TXQ_UNBLOCK_LEVEL(txq->entries)) {
1158 			/* reaped must be in sync with blocked */
1159 			sfxge_tx_qreap(txq);
1160 			txq->blocked = 0;
1161 		}
1162 	}
1163 
1164 	sfxge_tx_qdpl_service(txq);
1165 	/* note: lock has been dropped */
1166 }
1167 
1168 void
1169 sfxge_tx_qflush_done(struct sfxge_txq *txq)
1170 {
1171 
1172 	txq->flush_state = SFXGE_FLUSH_DONE;
1173 }
1174 
1175 static void
1176 sfxge_tx_qstop(struct sfxge_softc *sc, unsigned int index)
1177 {
1178 	struct sfxge_txq *txq;
1179 	struct sfxge_evq *evq;
1180 	unsigned int count;
1181 
1182 	txq = sc->txq[index];
1183 	evq = sc->evq[txq->evq_index];
1184 
1185 	SFXGE_TXQ_LOCK(txq);
1186 
1187 	KASSERT(txq->init_state == SFXGE_TXQ_STARTED,
1188 	    ("txq->init_state != SFXGE_TXQ_STARTED"));
1189 
1190 	txq->init_state = SFXGE_TXQ_INITIALIZED;
1191 	txq->flush_state = SFXGE_FLUSH_PENDING;
1192 
1193 	/* Flush the transmit queue. */
1194 	efx_tx_qflush(txq->common);
1195 
1196 	SFXGE_TXQ_UNLOCK(txq);
1197 
1198 	count = 0;
1199 	do {
1200 		/* Spin for 100ms. */
1201 		DELAY(100000);
1202 
1203 		if (txq->flush_state != SFXGE_FLUSH_PENDING)
1204 			break;
1205 	} while (++count < 20);
1206 
1207 	SFXGE_EVQ_LOCK(evq);
1208 	SFXGE_TXQ_LOCK(txq);
1209 
1210 	KASSERT(txq->flush_state != SFXGE_FLUSH_FAILED,
1211 	    ("txq->flush_state == SFXGE_FLUSH_FAILED"));
1212 
1213 	txq->flush_state = SFXGE_FLUSH_DONE;
1214 
1215 	txq->blocked = 0;
1216 	txq->pending = txq->added;
1217 
1218 	sfxge_tx_qcomplete(txq, evq);
1219 	KASSERT(txq->completed == txq->added,
1220 	    ("txq->completed != txq->added"));
1221 
1222 	sfxge_tx_qreap(txq);
1223 	KASSERT(txq->reaped == txq->completed,
1224 	    ("txq->reaped != txq->completed"));
1225 
1226 	txq->added = 0;
1227 	txq->pending = 0;
1228 	txq->completed = 0;
1229 	txq->reaped = 0;
1230 
1231 	/* Destroy the common code transmit queue. */
1232 	efx_tx_qdestroy(txq->common);
1233 	txq->common = NULL;
1234 
1235 	efx_sram_buf_tbl_clear(sc->enp, txq->buf_base_id,
1236 	    EFX_TXQ_NBUFS(sc->txq_entries));
1237 
1238 	SFXGE_EVQ_UNLOCK(evq);
1239 	SFXGE_TXQ_UNLOCK(txq);
1240 }
1241 
1242 static int
1243 sfxge_tx_qstart(struct sfxge_softc *sc, unsigned int index)
1244 {
1245 	struct sfxge_txq *txq;
1246 	efsys_mem_t *esmp;
1247 	uint16_t flags;
1248 	struct sfxge_evq *evq;
1249 	int rc;
1250 
1251 	txq = sc->txq[index];
1252 	esmp = &txq->mem;
1253 	evq = sc->evq[txq->evq_index];
1254 
1255 	KASSERT(txq->init_state == SFXGE_TXQ_INITIALIZED,
1256 	    ("txq->init_state != SFXGE_TXQ_INITIALIZED"));
1257 	KASSERT(evq->init_state == SFXGE_EVQ_STARTED,
1258 	    ("evq->init_state != SFXGE_EVQ_STARTED"));
1259 
1260 	/* Program the buffer table. */
1261 	if ((rc = efx_sram_buf_tbl_set(sc->enp, txq->buf_base_id, esmp,
1262 	    EFX_TXQ_NBUFS(sc->txq_entries))) != 0)
1263 		return (rc);
1264 
1265 	/* Determine the kind of queue we are creating. */
1266 	switch (txq->type) {
1267 	case SFXGE_TXQ_NON_CKSUM:
1268 		flags = 0;
1269 		break;
1270 	case SFXGE_TXQ_IP_CKSUM:
1271 		flags = EFX_CKSUM_IPV4;
1272 		break;
1273 	case SFXGE_TXQ_IP_TCP_UDP_CKSUM:
1274 		flags = EFX_CKSUM_IPV4 | EFX_CKSUM_TCPUDP;
1275 		break;
1276 	default:
1277 		KASSERT(0, ("Impossible TX queue"));
1278 		flags = 0;
1279 		break;
1280 	}
1281 
1282 	/* Create the common code transmit queue. */
1283 	if ((rc = efx_tx_qcreate(sc->enp, index, txq->type, esmp,
1284 	    sc->txq_entries, txq->buf_base_id, flags, evq->common,
1285 	    &txq->common)) != 0)
1286 		goto fail;
1287 
1288 	SFXGE_TXQ_LOCK(txq);
1289 
1290 	/* Enable the transmit queue. */
1291 	efx_tx_qenable(txq->common);
1292 
1293 	txq->init_state = SFXGE_TXQ_STARTED;
1294 
1295 	SFXGE_TXQ_UNLOCK(txq);
1296 
1297 	return (0);
1298 
1299 fail:
1300 	efx_sram_buf_tbl_clear(sc->enp, txq->buf_base_id,
1301 	    EFX_TXQ_NBUFS(sc->txq_entries));
1302 	return (rc);
1303 }
1304 
1305 void
1306 sfxge_tx_stop(struct sfxge_softc *sc)
1307 {
1308 	int index;
1309 
1310 	index = sc->txq_count;
1311 	while (--index >= 0)
1312 		sfxge_tx_qstop(sc, index);
1313 
1314 	/* Tear down the transmit module */
1315 	efx_tx_fini(sc->enp);
1316 }
1317 
1318 int
1319 sfxge_tx_start(struct sfxge_softc *sc)
1320 {
1321 	int index;
1322 	int rc;
1323 
1324 	/* Initialize the common code transmit module. */
1325 	if ((rc = efx_tx_init(sc->enp)) != 0)
1326 		return (rc);
1327 
1328 	for (index = 0; index < sc->txq_count; index++) {
1329 		if ((rc = sfxge_tx_qstart(sc, index)) != 0)
1330 			goto fail;
1331 	}
1332 
1333 	return (0);
1334 
1335 fail:
1336 	while (--index >= 0)
1337 		sfxge_tx_qstop(sc, index);
1338 
1339 	efx_tx_fini(sc->enp);
1340 
1341 	return (rc);
1342 }
1343 
1344 /**
1345  * Destroy a transmit queue.
1346  */
1347 static void
1348 sfxge_tx_qfini(struct sfxge_softc *sc, unsigned int index)
1349 {
1350 	struct sfxge_txq *txq;
1351 	unsigned int nmaps;
1352 
1353 	txq = sc->txq[index];
1354 
1355 	KASSERT(txq->init_state == SFXGE_TXQ_INITIALIZED,
1356 	    ("txq->init_state != SFXGE_TXQ_INITIALIZED"));
1357 
1358 	if (txq->type == SFXGE_TXQ_IP_TCP_UDP_CKSUM)
1359 		tso_fini(txq);
1360 
1361 	/* Free the context arrays. */
1362 	free(txq->pend_desc, M_SFXGE);
1363 	nmaps = sc->txq_entries;
1364 	while (nmaps-- != 0)
1365 		bus_dmamap_destroy(txq->packet_dma_tag, txq->stmp[nmaps].map);
1366 	free(txq->stmp, M_SFXGE);
1367 
1368 	/* Release DMA memory mapping. */
1369 	sfxge_dma_free(&txq->mem);
1370 
1371 	sc->txq[index] = NULL;
1372 
1373 #ifdef SFXGE_HAVE_MQ
1374 	SFXGE_TXQ_LOCK_DESTROY(txq);
1375 #endif
1376 
1377 	free(txq, M_SFXGE);
1378 }
1379 
1380 static int
1381 sfxge_tx_qinit(struct sfxge_softc *sc, unsigned int txq_index,
1382     enum sfxge_txq_type type, unsigned int evq_index)
1383 {
1384 	char name[16];
1385 	struct sysctl_ctx_list *ctx = device_get_sysctl_ctx(sc->dev);
1386 	struct sysctl_oid *txq_node;
1387 	struct sfxge_txq *txq;
1388 	struct sfxge_evq *evq;
1389 #ifdef SFXGE_HAVE_MQ
1390 	struct sfxge_tx_dpl *stdp;
1391 	struct sysctl_oid *dpl_node;
1392 #endif
1393 	efsys_mem_t *esmp;
1394 	unsigned int nmaps;
1395 	int rc;
1396 
1397 	txq = malloc(sizeof(struct sfxge_txq), M_SFXGE, M_ZERO | M_WAITOK);
1398 	txq->sc = sc;
1399 	txq->entries = sc->txq_entries;
1400 	txq->ptr_mask = txq->entries - 1;
1401 
1402 	sc->txq[txq_index] = txq;
1403 	esmp = &txq->mem;
1404 
1405 	evq = sc->evq[evq_index];
1406 
1407 	/* Allocate and zero DMA space for the descriptor ring. */
1408 	if ((rc = sfxge_dma_alloc(sc, EFX_TXQ_SIZE(sc->txq_entries), esmp)) != 0)
1409 		return (rc);
1410 
1411 	/* Allocate buffer table entries. */
1412 	sfxge_sram_buf_tbl_alloc(sc, EFX_TXQ_NBUFS(sc->txq_entries),
1413 				 &txq->buf_base_id);
1414 
1415 	/* Create a DMA tag for packet mappings. */
1416 	if (bus_dma_tag_create(sc->parent_dma_tag, 1, 0x1000,
1417 	    MIN(0x3FFFFFFFFFFFUL, BUS_SPACE_MAXADDR), BUS_SPACE_MAXADDR, NULL,
1418 	    NULL, 0x11000, SFXGE_TX_MAPPING_MAX_SEG, 0x1000, 0, NULL, NULL,
1419 	    &txq->packet_dma_tag) != 0) {
1420 		device_printf(sc->dev, "Couldn't allocate txq DMA tag\n");
1421 		rc = ENOMEM;
1422 		goto fail;
1423 	}
1424 
1425 	/* Allocate pending descriptor array for batching writes. */
1426 	txq->pend_desc = malloc(sizeof(efx_buffer_t) * sc->txq_entries,
1427 				M_SFXGE, M_ZERO | M_WAITOK);
1428 
1429 	/* Allocate and initialise mbuf DMA mapping array. */
1430 	txq->stmp = malloc(sizeof(struct sfxge_tx_mapping) * sc->txq_entries,
1431 	    M_SFXGE, M_ZERO | M_WAITOK);
1432 	for (nmaps = 0; nmaps < sc->txq_entries; nmaps++) {
1433 		rc = bus_dmamap_create(txq->packet_dma_tag, 0,
1434 				       &txq->stmp[nmaps].map);
1435 		if (rc != 0)
1436 			goto fail2;
1437 	}
1438 
1439 	snprintf(name, sizeof(name), "%u", txq_index);
1440 	txq_node = SYSCTL_ADD_NODE(ctx, SYSCTL_CHILDREN(sc->txqs_node),
1441 				   OID_AUTO, name, CTLFLAG_RD, NULL, "");
1442 	if (txq_node == NULL) {
1443 		rc = ENOMEM;
1444 		goto fail_txq_node;
1445 	}
1446 
1447 	if (type == SFXGE_TXQ_IP_TCP_UDP_CKSUM &&
1448 	    (rc = tso_init(txq)) != 0)
1449 		goto fail3;
1450 
1451 #ifdef SFXGE_HAVE_MQ
1452 	if (sfxge_tx_dpl_get_max <= 0) {
1453 		log(LOG_ERR, "%s=%d must be greater than 0",
1454 		    SFXGE_PARAM_TX_DPL_GET_MAX, sfxge_tx_dpl_get_max);
1455 		rc = EINVAL;
1456 		goto fail_tx_dpl_get_max;
1457 	}
1458 	if (sfxge_tx_dpl_get_non_tcp_max <= 0) {
1459 		log(LOG_ERR, "%s=%d must be greater than 0",
1460 		    SFXGE_PARAM_TX_DPL_GET_NON_TCP_MAX,
1461 		    sfxge_tx_dpl_get_non_tcp_max);
1462 		rc = EINVAL;
1463 		goto fail_tx_dpl_get_max;
1464 	}
1465 	if (sfxge_tx_dpl_put_max < 0) {
1466 		log(LOG_ERR, "%s=%d must be greater or equal to 0",
1467 		    SFXGE_PARAM_TX_DPL_PUT_MAX, sfxge_tx_dpl_put_max);
1468 		rc = EINVAL;
1469 		goto fail_tx_dpl_put_max;
1470 	}
1471 
1472 	/* Initialize the deferred packet list. */
1473 	stdp = &txq->dpl;
1474 	stdp->std_put_max = sfxge_tx_dpl_put_max;
1475 	stdp->std_get_max = sfxge_tx_dpl_get_max;
1476 	stdp->std_get_non_tcp_max = sfxge_tx_dpl_get_non_tcp_max;
1477 	stdp->std_getp = &stdp->std_get;
1478 
1479 	SFXGE_TXQ_LOCK_INIT(txq, device_get_nameunit(sc->dev), txq_index);
1480 
1481 	dpl_node = SYSCTL_ADD_NODE(ctx, SYSCTL_CHILDREN(txq_node), OID_AUTO,
1482 				   "dpl", CTLFLAG_RD, NULL,
1483 				   "Deferred packet list statistics");
1484 	if (dpl_node == NULL) {
1485 		rc = ENOMEM;
1486 		goto fail_dpl_node;
1487 	}
1488 
1489 	SYSCTL_ADD_UINT(ctx, SYSCTL_CHILDREN(dpl_node), OID_AUTO,
1490 			"get_count", CTLFLAG_RD | CTLFLAG_STATS,
1491 			&stdp->std_get_count, 0, "");
1492 	SYSCTL_ADD_UINT(ctx, SYSCTL_CHILDREN(dpl_node), OID_AUTO,
1493 			"get_non_tcp_count", CTLFLAG_RD | CTLFLAG_STATS,
1494 			&stdp->std_get_non_tcp_count, 0, "");
1495 	SYSCTL_ADD_UINT(ctx, SYSCTL_CHILDREN(dpl_node), OID_AUTO,
1496 			"get_hiwat", CTLFLAG_RD | CTLFLAG_STATS,
1497 			&stdp->std_get_hiwat, 0, "");
1498 	SYSCTL_ADD_UINT(ctx, SYSCTL_CHILDREN(dpl_node), OID_AUTO,
1499 			"put_hiwat", CTLFLAG_RD | CTLFLAG_STATS,
1500 			&stdp->std_put_hiwat, 0, "");
1501 #endif
1502 
1503 	txq->type = type;
1504 	txq->evq_index = evq_index;
1505 	txq->txq_index = txq_index;
1506 	txq->init_state = SFXGE_TXQ_INITIALIZED;
1507 
1508 	return (0);
1509 
1510 fail_dpl_node:
1511 fail_tx_dpl_put_max:
1512 fail_tx_dpl_get_max:
1513 fail3:
1514 fail_txq_node:
1515 	free(txq->pend_desc, M_SFXGE);
1516 fail2:
1517 	while (nmaps-- != 0)
1518 		bus_dmamap_destroy(txq->packet_dma_tag, txq->stmp[nmaps].map);
1519 	free(txq->stmp, M_SFXGE);
1520 	bus_dma_tag_destroy(txq->packet_dma_tag);
1521 
1522 fail:
1523 	sfxge_dma_free(esmp);
1524 
1525 	return (rc);
1526 }
1527 
1528 static const struct {
1529 	const char *name;
1530 	size_t offset;
1531 } sfxge_tx_stats[] = {
1532 #define	SFXGE_TX_STAT(name, member) \
1533 	{ #name, offsetof(struct sfxge_txq, member) }
1534 	SFXGE_TX_STAT(tso_bursts, tso_bursts),
1535 	SFXGE_TX_STAT(tso_packets, tso_packets),
1536 	SFXGE_TX_STAT(tso_long_headers, tso_long_headers),
1537 	SFXGE_TX_STAT(tso_pdrop_too_many, tso_pdrop_too_many),
1538 	SFXGE_TX_STAT(tso_pdrop_no_rsrc, tso_pdrop_no_rsrc),
1539 	SFXGE_TX_STAT(tx_collapses, collapses),
1540 	SFXGE_TX_STAT(tx_drops, drops),
1541 	SFXGE_TX_STAT(tx_get_overflow, get_overflow),
1542 	SFXGE_TX_STAT(tx_get_non_tcp_overflow, get_non_tcp_overflow),
1543 	SFXGE_TX_STAT(tx_put_overflow, put_overflow),
1544 	SFXGE_TX_STAT(tx_netdown_drops, netdown_drops),
1545 };
1546 
1547 static int
1548 sfxge_tx_stat_handler(SYSCTL_HANDLER_ARGS)
1549 {
1550 	struct sfxge_softc *sc = arg1;
1551 	unsigned int id = arg2;
1552 	unsigned long sum;
1553 	unsigned int index;
1554 
1555 	/* Sum across all TX queues */
1556 	sum = 0;
1557 	for (index = 0; index < sc->txq_count; index++)
1558 		sum += *(unsigned long *)((caddr_t)sc->txq[index] +
1559 					  sfxge_tx_stats[id].offset);
1560 
1561 	return (SYSCTL_OUT(req, &sum, sizeof(sum)));
1562 }
1563 
1564 static void
1565 sfxge_tx_stat_init(struct sfxge_softc *sc)
1566 {
1567 	struct sysctl_ctx_list *ctx = device_get_sysctl_ctx(sc->dev);
1568 	struct sysctl_oid_list *stat_list;
1569 	unsigned int id;
1570 
1571 	stat_list = SYSCTL_CHILDREN(sc->stats_node);
1572 
1573 	for (id = 0; id < nitems(sfxge_tx_stats); id++) {
1574 		SYSCTL_ADD_PROC(
1575 			ctx, stat_list,
1576 			OID_AUTO, sfxge_tx_stats[id].name,
1577 			CTLTYPE_ULONG|CTLFLAG_RD,
1578 			sc, id, sfxge_tx_stat_handler, "LU",
1579 			"");
1580 	}
1581 }
1582 
1583 uint64_t
1584 sfxge_tx_get_drops(struct sfxge_softc *sc)
1585 {
1586 	unsigned int index;
1587 	uint64_t drops = 0;
1588 	struct sfxge_txq *txq;
1589 
1590 	/* Sum across all TX queues */
1591 	for (index = 0; index < sc->txq_count; index++) {
1592 		txq = sc->txq[index];
1593 		/*
1594 		 * In theory, txq->put_overflow and txq->netdown_drops
1595 		 * should use atomic operation and other should be
1596 		 * obtained under txq lock, but it is just statistics.
1597 		 */
1598 		drops += txq->drops + txq->get_overflow +
1599 			 txq->get_non_tcp_overflow +
1600 			 txq->put_overflow + txq->netdown_drops +
1601 			 txq->tso_pdrop_too_many + txq->tso_pdrop_no_rsrc;
1602 	}
1603 	return (drops);
1604 }
1605 
1606 void
1607 sfxge_tx_fini(struct sfxge_softc *sc)
1608 {
1609 	int index;
1610 
1611 	index = sc->txq_count;
1612 	while (--index >= 0)
1613 		sfxge_tx_qfini(sc, index);
1614 
1615 	sc->txq_count = 0;
1616 }
1617 
1618 
1619 int
1620 sfxge_tx_init(struct sfxge_softc *sc)
1621 {
1622 	struct sfxge_intr *intr;
1623 	int index;
1624 	int rc;
1625 
1626 	intr = &sc->intr;
1627 
1628 	KASSERT(intr->state == SFXGE_INTR_INITIALIZED,
1629 	    ("intr->state != SFXGE_INTR_INITIALIZED"));
1630 
1631 #ifdef SFXGE_HAVE_MQ
1632 	sc->txq_count = SFXGE_TXQ_NTYPES - 1 + sc->intr.n_alloc;
1633 #else
1634 	sc->txq_count = SFXGE_TXQ_NTYPES;
1635 #endif
1636 
1637 	sc->txqs_node = SYSCTL_ADD_NODE(
1638 		device_get_sysctl_ctx(sc->dev),
1639 		SYSCTL_CHILDREN(device_get_sysctl_tree(sc->dev)),
1640 		OID_AUTO, "txq", CTLFLAG_RD, NULL, "Tx queues");
1641 	if (sc->txqs_node == NULL) {
1642 		rc = ENOMEM;
1643 		goto fail_txq_node;
1644 	}
1645 
1646 	/* Initialize the transmit queues */
1647 	if ((rc = sfxge_tx_qinit(sc, SFXGE_TXQ_NON_CKSUM,
1648 	    SFXGE_TXQ_NON_CKSUM, 0)) != 0)
1649 		goto fail;
1650 
1651 	if ((rc = sfxge_tx_qinit(sc, SFXGE_TXQ_IP_CKSUM,
1652 	    SFXGE_TXQ_IP_CKSUM, 0)) != 0)
1653 		goto fail2;
1654 
1655 	for (index = 0;
1656 	     index < sc->txq_count - SFXGE_TXQ_NTYPES + 1;
1657 	     index++) {
1658 		if ((rc = sfxge_tx_qinit(sc, SFXGE_TXQ_NTYPES - 1 + index,
1659 		    SFXGE_TXQ_IP_TCP_UDP_CKSUM, index)) != 0)
1660 			goto fail3;
1661 	}
1662 
1663 	sfxge_tx_stat_init(sc);
1664 
1665 	return (0);
1666 
1667 fail3:
1668 	while (--index >= 0)
1669 		sfxge_tx_qfini(sc, SFXGE_TXQ_IP_TCP_UDP_CKSUM + index);
1670 
1671 	sfxge_tx_qfini(sc, SFXGE_TXQ_IP_CKSUM);
1672 
1673 fail2:
1674 	sfxge_tx_qfini(sc, SFXGE_TXQ_NON_CKSUM);
1675 
1676 fail:
1677 fail_txq_node:
1678 	sc->txq_count = 0;
1679 	return (rc);
1680 }
1681