ix_txrx.c revision 1.60 1 1.60 msaitoh /* $NetBSD: ix_txrx.c,v 1.60 2020/01/21 14:55:55 msaitoh Exp $ */
2 1.28 msaitoh
3 1.1 msaitoh /******************************************************************************
4 1.1 msaitoh
5 1.28 msaitoh Copyright (c) 2001-2017, Intel Corporation
6 1.1 msaitoh All rights reserved.
7 1.28 msaitoh
8 1.28 msaitoh Redistribution and use in source and binary forms, with or without
9 1.1 msaitoh modification, are permitted provided that the following conditions are met:
10 1.28 msaitoh
11 1.28 msaitoh 1. Redistributions of source code must retain the above copyright notice,
12 1.1 msaitoh this list of conditions and the following disclaimer.
13 1.28 msaitoh
14 1.28 msaitoh 2. Redistributions in binary form must reproduce the above copyright
15 1.28 msaitoh notice, this list of conditions and the following disclaimer in the
16 1.1 msaitoh documentation and/or other materials provided with the distribution.
17 1.28 msaitoh
18 1.28 msaitoh 3. Neither the name of the Intel Corporation nor the names of its
19 1.28 msaitoh contributors may be used to endorse or promote products derived from
20 1.1 msaitoh this software without specific prior written permission.
21 1.28 msaitoh
22 1.1 msaitoh THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
23 1.28 msaitoh AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 1.28 msaitoh IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 1.28 msaitoh ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
26 1.28 msaitoh LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
27 1.28 msaitoh CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
28 1.28 msaitoh SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
29 1.28 msaitoh INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
30 1.28 msaitoh CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
31 1.1 msaitoh ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
32 1.1 msaitoh POSSIBILITY OF SUCH DAMAGE.
33 1.1 msaitoh
34 1.1 msaitoh ******************************************************************************/
35 1.39 msaitoh /*$FreeBSD: head/sys/dev/ixgbe/ix_txrx.c 327031 2017-12-20 18:15:06Z erj $*/
36 1.28 msaitoh
37 1.1 msaitoh /*
38 1.1 msaitoh * Copyright (c) 2011 The NetBSD Foundation, Inc.
39 1.1 msaitoh * All rights reserved.
40 1.1 msaitoh *
41 1.1 msaitoh * This code is derived from software contributed to The NetBSD Foundation
42 1.1 msaitoh * by Coyote Point Systems, Inc.
43 1.1 msaitoh *
44 1.1 msaitoh * Redistribution and use in source and binary forms, with or without
45 1.1 msaitoh * modification, are permitted provided that the following conditions
46 1.1 msaitoh * are met:
47 1.1 msaitoh * 1. Redistributions of source code must retain the above copyright
48 1.1 msaitoh * notice, this list of conditions and the following disclaimer.
49 1.1 msaitoh * 2. Redistributions in binary form must reproduce the above copyright
50 1.1 msaitoh * notice, this list of conditions and the following disclaimer in the
51 1.1 msaitoh * documentation and/or other materials provided with the distribution.
52 1.1 msaitoh *
53 1.1 msaitoh * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
54 1.1 msaitoh * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
55 1.1 msaitoh * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
56 1.1 msaitoh * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
57 1.1 msaitoh * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
58 1.1 msaitoh * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
59 1.1 msaitoh * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
60 1.1 msaitoh * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
61 1.1 msaitoh * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
62 1.1 msaitoh * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
63 1.1 msaitoh * POSSIBILITY OF SUCH DAMAGE.
64 1.1 msaitoh */
65 1.1 msaitoh
66 1.8 msaitoh #include "opt_inet.h"
67 1.8 msaitoh #include "opt_inet6.h"
68 1.8 msaitoh
69 1.1 msaitoh #include "ixgbe.h"
70 1.1 msaitoh
71 1.1 msaitoh /*
72 1.28 msaitoh * HW RSC control:
73 1.28 msaitoh * this feature only works with
74 1.28 msaitoh * IPv4, and only on 82599 and later.
75 1.28 msaitoh * Also this will cause IP forwarding to
76 1.28 msaitoh * fail and that can't be controlled by
77 1.28 msaitoh * the stack as LRO can. For all these
78 1.28 msaitoh * reasons I've deemed it best to leave
79 1.28 msaitoh * this off and not bother with a tuneable
80 1.28 msaitoh * interface, this would need to be compiled
81 1.28 msaitoh * to enable.
82 1.28 msaitoh */
83 1.1 msaitoh static bool ixgbe_rsc_enable = FALSE;
84 1.1 msaitoh
85 1.3 msaitoh /*
86 1.28 msaitoh * For Flow Director: this is the
87 1.28 msaitoh * number of TX packets we sample
88 1.28 msaitoh * for the filter pool, this means
89 1.28 msaitoh * every 20th packet will be probed.
90 1.28 msaitoh *
91 1.28 msaitoh * This feature can be disabled by
92 1.28 msaitoh * setting this to 0.
93 1.28 msaitoh */
94 1.3 msaitoh static int atr_sample_rate = 20;
95 1.3 msaitoh
96 1.28 msaitoh /************************************************************************
97 1.3 msaitoh * Local Function prototypes
98 1.28 msaitoh ************************************************************************/
99 1.28 msaitoh static void ixgbe_setup_transmit_ring(struct tx_ring *);
100 1.28 msaitoh static void ixgbe_free_transmit_buffers(struct tx_ring *);
101 1.28 msaitoh static int ixgbe_setup_receive_ring(struct rx_ring *);
102 1.28 msaitoh static void ixgbe_free_receive_buffers(struct rx_ring *);
103 1.28 msaitoh static void ixgbe_rx_checksum(u32, struct mbuf *, u32,
104 1.28 msaitoh struct ixgbe_hw_stats *);
105 1.28 msaitoh static void ixgbe_refresh_mbufs(struct rx_ring *, int);
106 1.38 knakahar static void ixgbe_drain(struct ifnet *, struct tx_ring *);
107 1.28 msaitoh static int ixgbe_xmit(struct tx_ring *, struct mbuf *);
108 1.28 msaitoh static int ixgbe_tx_ctx_setup(struct tx_ring *,
109 1.28 msaitoh struct mbuf *, u32 *, u32 *);
110 1.28 msaitoh static int ixgbe_tso_setup(struct tx_ring *,
111 1.28 msaitoh struct mbuf *, u32 *, u32 *);
112 1.1 msaitoh static __inline void ixgbe_rx_discard(struct rx_ring *, int);
113 1.1 msaitoh static __inline void ixgbe_rx_input(struct rx_ring *, struct ifnet *,
114 1.28 msaitoh struct mbuf *, u32);
115 1.28 msaitoh static int ixgbe_dma_malloc(struct adapter *, bus_size_t,
116 1.28 msaitoh struct ixgbe_dma_alloc *, int);
117 1.28 msaitoh static void ixgbe_dma_free(struct adapter *, struct ixgbe_dma_alloc *);
118 1.1 msaitoh
119 1.1 msaitoh static void ixgbe_setup_hw_rsc(struct rx_ring *);
120 1.1 msaitoh
121 1.28 msaitoh /************************************************************************
122 1.28 msaitoh * ixgbe_legacy_start_locked - Transmit entry point
123 1.1 msaitoh *
124 1.28 msaitoh * Called by the stack to initiate a transmit.
125 1.28 msaitoh * The driver will remain in this routine as long as there are
126 1.28 msaitoh * packets to transmit and transmit resources are available.
127 1.28 msaitoh * In case resources are not available, the stack is notified
128 1.28 msaitoh * and the packet is requeued.
129 1.28 msaitoh ************************************************************************/
130 1.28 msaitoh int
131 1.28 msaitoh ixgbe_legacy_start_locked(struct ifnet *ifp, struct tx_ring *txr)
132 1.1 msaitoh {
133 1.45 msaitoh int rc;
134 1.1 msaitoh struct mbuf *m_head;
135 1.1 msaitoh struct adapter *adapter = txr->adapter;
136 1.1 msaitoh
137 1.1 msaitoh IXGBE_TX_LOCK_ASSERT(txr);
138 1.1 msaitoh
139 1.52 msaitoh if (adapter->link_active != LINK_STATE_UP) {
140 1.38 knakahar /*
141 1.38 knakahar * discard all packets buffered in IFQ to avoid
142 1.38 knakahar * sending old packets at next link up timing.
143 1.38 knakahar */
144 1.38 knakahar ixgbe_drain(ifp, txr);
145 1.38 knakahar return (ENETDOWN);
146 1.38 knakahar }
147 1.1 msaitoh if ((ifp->if_flags & IFF_RUNNING) == 0)
148 1.28 msaitoh return (ENETDOWN);
149 1.47 msaitoh if (txr->txr_no_space)
150 1.47 msaitoh return (ENETDOWN);
151 1.58 msaitoh
152 1.1 msaitoh while (!IFQ_IS_EMPTY(&ifp->if_snd)) {
153 1.1 msaitoh if (txr->tx_avail <= IXGBE_QUEUE_MIN_FREE)
154 1.1 msaitoh break;
155 1.1 msaitoh
156 1.1 msaitoh IFQ_POLL(&ifp->if_snd, m_head);
157 1.1 msaitoh if (m_head == NULL)
158 1.1 msaitoh break;
159 1.1 msaitoh
160 1.1 msaitoh if ((rc = ixgbe_xmit(txr, m_head)) == EAGAIN) {
161 1.1 msaitoh break;
162 1.1 msaitoh }
163 1.1 msaitoh IFQ_DEQUEUE(&ifp->if_snd, m_head);
164 1.1 msaitoh if (rc != 0) {
165 1.1 msaitoh m_freem(m_head);
166 1.1 msaitoh continue;
167 1.1 msaitoh }
168 1.1 msaitoh
169 1.1 msaitoh /* Send a copy of the frame to the BPF listener */
170 1.48 msaitoh bpf_mtap(ifp, m_head, BPF_D_OUT);
171 1.1 msaitoh }
172 1.44 msaitoh
173 1.28 msaitoh return IXGBE_SUCCESS;
174 1.28 msaitoh } /* ixgbe_legacy_start_locked */
175 1.28 msaitoh
176 1.28 msaitoh /************************************************************************
177 1.28 msaitoh * ixgbe_legacy_start
178 1.28 msaitoh *
179 1.28 msaitoh * Called by the stack, this always uses the first tx ring,
180 1.28 msaitoh * and should not be used with multiqueue tx enabled.
181 1.28 msaitoh ************************************************************************/
182 1.1 msaitoh void
183 1.28 msaitoh ixgbe_legacy_start(struct ifnet *ifp)
184 1.1 msaitoh {
185 1.1 msaitoh struct adapter *adapter = ifp->if_softc;
186 1.28 msaitoh struct tx_ring *txr = adapter->tx_rings;
187 1.1 msaitoh
188 1.1 msaitoh if (ifp->if_flags & IFF_RUNNING) {
189 1.1 msaitoh IXGBE_TX_LOCK(txr);
190 1.28 msaitoh ixgbe_legacy_start_locked(ifp, txr);
191 1.1 msaitoh IXGBE_TX_UNLOCK(txr);
192 1.1 msaitoh }
193 1.28 msaitoh } /* ixgbe_legacy_start */
194 1.1 msaitoh
195 1.28 msaitoh /************************************************************************
196 1.28 msaitoh * ixgbe_mq_start - Multiqueue Transmit Entry Point
197 1.28 msaitoh *
198 1.28 msaitoh * (if_transmit function)
199 1.28 msaitoh ************************************************************************/
200 1.1 msaitoh int
201 1.1 msaitoh ixgbe_mq_start(struct ifnet *ifp, struct mbuf *m)
202 1.1 msaitoh {
203 1.1 msaitoh struct adapter *adapter = ifp->if_softc;
204 1.1 msaitoh struct tx_ring *txr;
205 1.50 msaitoh int i;
206 1.28 msaitoh #ifdef RSS
207 1.1 msaitoh uint32_t bucket_id;
208 1.1 msaitoh #endif
209 1.1 msaitoh
210 1.1 msaitoh /*
211 1.1 msaitoh * When doing RSS, map it to the same outbound queue
212 1.1 msaitoh * as the incoming flow would be mapped to.
213 1.1 msaitoh *
214 1.1 msaitoh * If everything is setup correctly, it should be the
215 1.1 msaitoh * same bucket that the current CPU we're on is.
216 1.1 msaitoh */
217 1.28 msaitoh #ifdef RSS
218 1.1 msaitoh if (M_HASHTYPE_GET(m) != M_HASHTYPE_NONE) {
219 1.28 msaitoh if ((adapter->feat_en & IXGBE_FEATURE_RSS) &&
220 1.28 msaitoh (rss_hash2bucket(m->m_pkthdr.flowid, M_HASHTYPE_GET(m),
221 1.28 msaitoh &bucket_id) == 0)) {
222 1.1 msaitoh i = bucket_id % adapter->num_queues;
223 1.8 msaitoh #ifdef IXGBE_DEBUG
224 1.8 msaitoh if (bucket_id > adapter->num_queues)
225 1.28 msaitoh if_printf(ifp,
226 1.28 msaitoh "bucket_id (%d) > num_queues (%d)\n",
227 1.28 msaitoh bucket_id, adapter->num_queues);
228 1.8 msaitoh #endif
229 1.8 msaitoh } else
230 1.1 msaitoh i = m->m_pkthdr.flowid % adapter->num_queues;
231 1.3 msaitoh } else
232 1.28 msaitoh #endif /* 0 */
233 1.51 knakahar i = (cpu_index(curcpu()) % ncpu) % adapter->num_queues;
234 1.3 msaitoh
235 1.3 msaitoh /* Check for a hung queue and pick alternative */
236 1.54 msaitoh if (((1ULL << i) & adapter->active_queues) == 0)
237 1.18 msaitoh i = ffs64(adapter->active_queues);
238 1.1 msaitoh
239 1.1 msaitoh txr = &adapter->tx_rings[i];
240 1.1 msaitoh
241 1.50 msaitoh if (__predict_false(!pcq_put(txr->txr_interq, m))) {
242 1.18 msaitoh m_freem(m);
243 1.18 msaitoh txr->pcq_drops.ev_count++;
244 1.50 msaitoh return ENOBUFS;
245 1.18 msaitoh }
246 1.1 msaitoh if (IXGBE_TX_TRYLOCK(txr)) {
247 1.1 msaitoh ixgbe_mq_start_locked(ifp, txr);
248 1.1 msaitoh IXGBE_TX_UNLOCK(txr);
249 1.34 knakahar } else {
250 1.34 knakahar if (adapter->txrx_use_workqueue) {
251 1.44 msaitoh u_int *enqueued;
252 1.44 msaitoh
253 1.34 knakahar /*
254 1.34 knakahar * This function itself is not called in interrupt
255 1.34 knakahar * context, however it can be called in fast softint
256 1.34 knakahar * context right after receiving forwarding packets.
257 1.34 knakahar * So, it is required to protect workqueue from twice
258 1.34 knakahar * enqueuing when the machine uses both spontaneous
259 1.34 knakahar * packets and forwarding packets.
260 1.34 knakahar */
261 1.44 msaitoh enqueued = percpu_getref(adapter->txr_wq_enqueued);
262 1.34 knakahar if (*enqueued == 0) {
263 1.34 knakahar *enqueued = 1;
264 1.34 knakahar percpu_putref(adapter->txr_wq_enqueued);
265 1.44 msaitoh workqueue_enqueue(adapter->txr_wq,
266 1.44 msaitoh &txr->wq_cookie, curcpu());
267 1.34 knakahar } else
268 1.34 knakahar percpu_putref(adapter->txr_wq_enqueued);
269 1.56 knakahar } else {
270 1.56 knakahar kpreempt_disable();
271 1.34 knakahar softint_schedule(txr->txr_si);
272 1.56 knakahar kpreempt_enable();
273 1.56 knakahar }
274 1.34 knakahar }
275 1.1 msaitoh
276 1.1 msaitoh return (0);
277 1.28 msaitoh } /* ixgbe_mq_start */
278 1.1 msaitoh
279 1.28 msaitoh /************************************************************************
280 1.28 msaitoh * ixgbe_mq_start_locked
281 1.28 msaitoh ************************************************************************/
282 1.1 msaitoh int
283 1.1 msaitoh ixgbe_mq_start_locked(struct ifnet *ifp, struct tx_ring *txr)
284 1.1 msaitoh {
285 1.28 msaitoh struct mbuf *next;
286 1.28 msaitoh int enqueued = 0, err = 0;
287 1.1 msaitoh
288 1.52 msaitoh if (txr->adapter->link_active != LINK_STATE_UP) {
289 1.38 knakahar /*
290 1.38 knakahar * discard all packets buffered in txr_interq to avoid
291 1.38 knakahar * sending old packets at next link up timing.
292 1.38 knakahar */
293 1.38 knakahar ixgbe_drain(ifp, txr);
294 1.38 knakahar return (ENETDOWN);
295 1.38 knakahar }
296 1.28 msaitoh if ((ifp->if_flags & IFF_RUNNING) == 0)
297 1.28 msaitoh return (ENETDOWN);
298 1.47 msaitoh if (txr->txr_no_space)
299 1.47 msaitoh return (ENETDOWN);
300 1.1 msaitoh
301 1.1 msaitoh /* Process the queue */
302 1.18 msaitoh while ((next = pcq_get(txr->txr_interq)) != NULL) {
303 1.18 msaitoh if ((err = ixgbe_xmit(txr, next)) != 0) {
304 1.18 msaitoh m_freem(next);
305 1.18 msaitoh /* All errors are counted in ixgbe_xmit() */
306 1.1 msaitoh break;
307 1.1 msaitoh }
308 1.1 msaitoh enqueued++;
309 1.3 msaitoh #if __FreeBSD_version >= 1100036
310 1.4 msaitoh /*
311 1.4 msaitoh * Since we're looking at the tx ring, we can check
312 1.4 msaitoh * to see if we're a VF by examing our tail register
313 1.4 msaitoh * address.
314 1.4 msaitoh */
315 1.28 msaitoh if ((txr->adapter->feat_en & IXGBE_FEATURE_VF) &&
316 1.28 msaitoh (next->m_flags & M_MCAST))
317 1.3 msaitoh if_inc_counter(ifp, IFCOUNTER_OMCASTS, 1);
318 1.3 msaitoh #endif
319 1.1 msaitoh /* Send a copy of the frame to the BPF listener */
320 1.48 msaitoh bpf_mtap(ifp, next, BPF_D_OUT);
321 1.1 msaitoh if ((ifp->if_flags & IFF_RUNNING) == 0)
322 1.1 msaitoh break;
323 1.1 msaitoh }
324 1.1 msaitoh
325 1.28 msaitoh if (txr->tx_avail < IXGBE_TX_CLEANUP_THRESHOLD(txr->adapter))
326 1.1 msaitoh ixgbe_txeof(txr);
327 1.1 msaitoh
328 1.1 msaitoh return (err);
329 1.28 msaitoh } /* ixgbe_mq_start_locked */
330 1.1 msaitoh
331 1.28 msaitoh /************************************************************************
332 1.28 msaitoh * ixgbe_deferred_mq_start
333 1.28 msaitoh *
334 1.34 knakahar * Called from a softint and workqueue (indirectly) to drain queued
335 1.34 knakahar * transmit packets.
336 1.28 msaitoh ************************************************************************/
337 1.1 msaitoh void
338 1.18 msaitoh ixgbe_deferred_mq_start(void *arg)
339 1.1 msaitoh {
340 1.1 msaitoh struct tx_ring *txr = arg;
341 1.1 msaitoh struct adapter *adapter = txr->adapter;
342 1.28 msaitoh struct ifnet *ifp = adapter->ifp;
343 1.1 msaitoh
344 1.1 msaitoh IXGBE_TX_LOCK(txr);
345 1.18 msaitoh if (pcq_peek(txr->txr_interq) != NULL)
346 1.1 msaitoh ixgbe_mq_start_locked(ifp, txr);
347 1.1 msaitoh IXGBE_TX_UNLOCK(txr);
348 1.28 msaitoh } /* ixgbe_deferred_mq_start */
349 1.3 msaitoh
350 1.28 msaitoh /************************************************************************
351 1.34 knakahar * ixgbe_deferred_mq_start_work
352 1.34 knakahar *
353 1.34 knakahar * Called from a workqueue to drain queued transmit packets.
354 1.34 knakahar ************************************************************************/
355 1.34 knakahar void
356 1.34 knakahar ixgbe_deferred_mq_start_work(struct work *wk, void *arg)
357 1.34 knakahar {
358 1.34 knakahar struct tx_ring *txr = container_of(wk, struct tx_ring, wq_cookie);
359 1.34 knakahar struct adapter *adapter = txr->adapter;
360 1.34 knakahar u_int *enqueued = percpu_getref(adapter->txr_wq_enqueued);
361 1.34 knakahar *enqueued = 0;
362 1.34 knakahar percpu_putref(adapter->txr_wq_enqueued);
363 1.34 knakahar
364 1.34 knakahar ixgbe_deferred_mq_start(txr);
365 1.34 knakahar } /* ixgbe_deferred_mq_start */
366 1.34 knakahar
367 1.38 knakahar /************************************************************************
368 1.38 knakahar * ixgbe_drain_all
369 1.38 knakahar ************************************************************************/
370 1.38 knakahar void
371 1.38 knakahar ixgbe_drain_all(struct adapter *adapter)
372 1.38 knakahar {
373 1.38 knakahar struct ifnet *ifp = adapter->ifp;
374 1.38 knakahar struct ix_queue *que = adapter->queues;
375 1.38 knakahar
376 1.38 knakahar for (int i = 0; i < adapter->num_queues; i++, que++) {
377 1.38 knakahar struct tx_ring *txr = que->txr;
378 1.38 knakahar
379 1.38 knakahar IXGBE_TX_LOCK(txr);
380 1.38 knakahar ixgbe_drain(ifp, txr);
381 1.38 knakahar IXGBE_TX_UNLOCK(txr);
382 1.38 knakahar }
383 1.38 knakahar }
384 1.34 knakahar
385 1.34 knakahar /************************************************************************
386 1.28 msaitoh * ixgbe_xmit
387 1.1 msaitoh *
388 1.28 msaitoh * Maps the mbufs to tx descriptors, allowing the
389 1.28 msaitoh * TX engine to transmit the packets.
390 1.1 msaitoh *
391 1.28 msaitoh * Return 0 on success, positive on failure
392 1.28 msaitoh ************************************************************************/
393 1.1 msaitoh static int
394 1.1 msaitoh ixgbe_xmit(struct tx_ring *txr, struct mbuf *m_head)
395 1.1 msaitoh {
396 1.28 msaitoh struct adapter *adapter = txr->adapter;
397 1.28 msaitoh struct ixgbe_tx_buf *txbuf;
398 1.1 msaitoh union ixgbe_adv_tx_desc *txd = NULL;
399 1.28 msaitoh struct ifnet *ifp = adapter->ifp;
400 1.28 msaitoh int i, j, error;
401 1.28 msaitoh int first;
402 1.28 msaitoh u32 olinfo_status = 0, cmd_type_len;
403 1.28 msaitoh bool remap = TRUE;
404 1.28 msaitoh bus_dmamap_t map;
405 1.1 msaitoh
406 1.1 msaitoh /* Basic descriptor defines */
407 1.28 msaitoh cmd_type_len = (IXGBE_ADVTXD_DTYP_DATA |
408 1.1 msaitoh IXGBE_ADVTXD_DCMD_IFCS | IXGBE_ADVTXD_DCMD_DEXT);
409 1.1 msaitoh
410 1.29 knakahar if (vlan_has_tag(m_head))
411 1.28 msaitoh cmd_type_len |= IXGBE_ADVTXD_DCMD_VLE;
412 1.1 msaitoh
413 1.28 msaitoh /*
414 1.28 msaitoh * Important to capture the first descriptor
415 1.28 msaitoh * used because it will contain the index of
416 1.28 msaitoh * the one we tell the hardware to report back
417 1.28 msaitoh */
418 1.28 msaitoh first = txr->next_avail_desc;
419 1.1 msaitoh txbuf = &txr->tx_buffers[first];
420 1.1 msaitoh map = txbuf->map;
421 1.1 msaitoh
422 1.1 msaitoh /*
423 1.1 msaitoh * Map the packet for DMA.
424 1.1 msaitoh */
425 1.22 msaitoh retry:
426 1.28 msaitoh error = bus_dmamap_load_mbuf(txr->txtag->dt_dmat, map, m_head,
427 1.28 msaitoh BUS_DMA_NOWAIT);
428 1.1 msaitoh
429 1.1 msaitoh if (__predict_false(error)) {
430 1.22 msaitoh struct mbuf *m;
431 1.1 msaitoh
432 1.1 msaitoh switch (error) {
433 1.1 msaitoh case EAGAIN:
434 1.35 msaitoh txr->q_eagain_tx_dma_setup++;
435 1.1 msaitoh return EAGAIN;
436 1.1 msaitoh case ENOMEM:
437 1.35 msaitoh txr->q_enomem_tx_dma_setup++;
438 1.1 msaitoh return EAGAIN;
439 1.1 msaitoh case EFBIG:
440 1.22 msaitoh /* Try it again? - one try */
441 1.22 msaitoh if (remap == TRUE) {
442 1.22 msaitoh remap = FALSE;
443 1.22 msaitoh /*
444 1.22 msaitoh * XXX: m_defrag will choke on
445 1.22 msaitoh * non-MCLBYTES-sized clusters
446 1.22 msaitoh */
447 1.35 msaitoh txr->q_efbig_tx_dma_setup++;
448 1.22 msaitoh m = m_defrag(m_head, M_NOWAIT);
449 1.22 msaitoh if (m == NULL) {
450 1.35 msaitoh txr->q_mbuf_defrag_failed++;
451 1.22 msaitoh return ENOBUFS;
452 1.22 msaitoh }
453 1.22 msaitoh m_head = m;
454 1.22 msaitoh goto retry;
455 1.22 msaitoh } else {
456 1.35 msaitoh txr->q_efbig2_tx_dma_setup++;
457 1.22 msaitoh return error;
458 1.22 msaitoh }
459 1.1 msaitoh case EINVAL:
460 1.35 msaitoh txr->q_einval_tx_dma_setup++;
461 1.1 msaitoh return error;
462 1.1 msaitoh default:
463 1.35 msaitoh txr->q_other_tx_dma_setup++;
464 1.1 msaitoh return error;
465 1.1 msaitoh }
466 1.1 msaitoh }
467 1.1 msaitoh
468 1.1 msaitoh /* Make certain there are enough descriptors */
469 1.10 msaitoh if (txr->tx_avail < (map->dm_nsegs + 2)) {
470 1.47 msaitoh txr->txr_no_space = true;
471 1.1 msaitoh txr->no_desc_avail.ev_count++;
472 1.1 msaitoh ixgbe_dmamap_unload(txr->txtag, txbuf->map);
473 1.1 msaitoh return EAGAIN;
474 1.1 msaitoh }
475 1.1 msaitoh
476 1.1 msaitoh /*
477 1.4 msaitoh * Set up the appropriate offload context
478 1.4 msaitoh * this will consume the first descriptor
479 1.4 msaitoh */
480 1.1 msaitoh error = ixgbe_tx_ctx_setup(txr, m_head, &cmd_type_len, &olinfo_status);
481 1.1 msaitoh if (__predict_false(error)) {
482 1.1 msaitoh return (error);
483 1.1 msaitoh }
484 1.1 msaitoh
485 1.1 msaitoh /* Do the flow director magic */
486 1.28 msaitoh if ((adapter->feat_en & IXGBE_FEATURE_FDIR) &&
487 1.28 msaitoh (txr->atr_sample) && (!adapter->fdir_reinit)) {
488 1.1 msaitoh ++txr->atr_count;
489 1.1 msaitoh if (txr->atr_count >= atr_sample_rate) {
490 1.1 msaitoh ixgbe_atr(txr, m_head);
491 1.1 msaitoh txr->atr_count = 0;
492 1.1 msaitoh }
493 1.1 msaitoh }
494 1.1 msaitoh
495 1.8 msaitoh olinfo_status |= IXGBE_ADVTXD_CC;
496 1.1 msaitoh i = txr->next_avail_desc;
497 1.1 msaitoh for (j = 0; j < map->dm_nsegs; j++) {
498 1.1 msaitoh bus_size_t seglen;
499 1.1 msaitoh bus_addr_t segaddr;
500 1.1 msaitoh
501 1.1 msaitoh txbuf = &txr->tx_buffers[i];
502 1.1 msaitoh txd = &txr->tx_base[i];
503 1.1 msaitoh seglen = map->dm_segs[j].ds_len;
504 1.1 msaitoh segaddr = htole64(map->dm_segs[j].ds_addr);
505 1.1 msaitoh
506 1.1 msaitoh txd->read.buffer_addr = segaddr;
507 1.40 msaitoh txd->read.cmd_type_len = htole32(cmd_type_len | seglen);
508 1.1 msaitoh txd->read.olinfo_status = htole32(olinfo_status);
509 1.1 msaitoh
510 1.1 msaitoh if (++i == txr->num_desc)
511 1.1 msaitoh i = 0;
512 1.1 msaitoh }
513 1.1 msaitoh
514 1.28 msaitoh txd->read.cmd_type_len |= htole32(IXGBE_TXD_CMD_EOP | IXGBE_TXD_CMD_RS);
515 1.1 msaitoh txr->tx_avail -= map->dm_nsegs;
516 1.1 msaitoh txr->next_avail_desc = i;
517 1.1 msaitoh
518 1.1 msaitoh txbuf->m_head = m_head;
519 1.1 msaitoh /*
520 1.4 msaitoh * Here we swap the map so the last descriptor,
521 1.4 msaitoh * which gets the completion interrupt has the
522 1.4 msaitoh * real map, and the first descriptor gets the
523 1.4 msaitoh * unused map from this descriptor.
524 1.4 msaitoh */
525 1.1 msaitoh txr->tx_buffers[first].map = txbuf->map;
526 1.1 msaitoh txbuf->map = map;
527 1.1 msaitoh bus_dmamap_sync(txr->txtag->dt_dmat, map, 0, m_head->m_pkthdr.len,
528 1.1 msaitoh BUS_DMASYNC_PREWRITE);
529 1.1 msaitoh
530 1.28 msaitoh /* Set the EOP descriptor that will be marked done */
531 1.28 msaitoh txbuf = &txr->tx_buffers[first];
532 1.1 msaitoh txbuf->eop = txd;
533 1.1 msaitoh
534 1.28 msaitoh ixgbe_dmamap_sync(txr->txdma.dma_tag, txr->txdma.dma_map,
535 1.1 msaitoh BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
536 1.1 msaitoh /*
537 1.1 msaitoh * Advance the Transmit Descriptor Tail (Tdt), this tells the
538 1.1 msaitoh * hardware that this frame is available to transmit.
539 1.1 msaitoh */
540 1.1 msaitoh ++txr->total_packets.ev_count;
541 1.3 msaitoh IXGBE_WRITE_REG(&adapter->hw, txr->tail, i);
542 1.3 msaitoh
543 1.23 msaitoh /*
544 1.23 msaitoh * XXXX NOMPSAFE: ifp->if_data should be percpu.
545 1.23 msaitoh */
546 1.23 msaitoh ifp->if_obytes += m_head->m_pkthdr.len;
547 1.23 msaitoh if (m_head->m_flags & M_MCAST)
548 1.23 msaitoh ifp->if_omcasts++;
549 1.23 msaitoh
550 1.45 msaitoh /* Mark queue as having work */
551 1.45 msaitoh if (txr->busy == 0)
552 1.45 msaitoh txr->busy = 1;
553 1.45 msaitoh
554 1.28 msaitoh return (0);
555 1.28 msaitoh } /* ixgbe_xmit */
556 1.1 msaitoh
557 1.38 knakahar /************************************************************************
558 1.38 knakahar * ixgbe_drain
559 1.38 knakahar ************************************************************************/
560 1.38 knakahar static void
561 1.38 knakahar ixgbe_drain(struct ifnet *ifp, struct tx_ring *txr)
562 1.38 knakahar {
563 1.38 knakahar struct mbuf *m;
564 1.38 knakahar
565 1.38 knakahar IXGBE_TX_LOCK_ASSERT(txr);
566 1.38 knakahar
567 1.38 knakahar if (txr->me == 0) {
568 1.38 knakahar while (!IFQ_IS_EMPTY(&ifp->if_snd)) {
569 1.38 knakahar IFQ_DEQUEUE(&ifp->if_snd, m);
570 1.38 knakahar m_freem(m);
571 1.38 knakahar IF_DROP(&ifp->if_snd);
572 1.38 knakahar }
573 1.38 knakahar }
574 1.38 knakahar
575 1.38 knakahar while ((m = pcq_get(txr->txr_interq)) != NULL) {
576 1.38 knakahar m_freem(m);
577 1.38 knakahar txr->pcq_drops.ev_count++;
578 1.38 knakahar }
579 1.38 knakahar }
580 1.16 msaitoh
581 1.28 msaitoh /************************************************************************
582 1.28 msaitoh * ixgbe_allocate_transmit_buffers
583 1.1 msaitoh *
584 1.28 msaitoh * Allocate memory for tx_buffer structures. The tx_buffer stores all
585 1.28 msaitoh * the information needed to transmit a packet on the wire. This is
586 1.28 msaitoh * called only once at attach, setup is done every reset.
587 1.28 msaitoh ************************************************************************/
588 1.28 msaitoh static int
589 1.1 msaitoh ixgbe_allocate_transmit_buffers(struct tx_ring *txr)
590 1.1 msaitoh {
591 1.28 msaitoh struct adapter *adapter = txr->adapter;
592 1.28 msaitoh device_t dev = adapter->dev;
593 1.1 msaitoh struct ixgbe_tx_buf *txbuf;
594 1.28 msaitoh int error, i;
595 1.1 msaitoh
596 1.1 msaitoh /*
597 1.1 msaitoh * Setup DMA descriptor areas.
598 1.1 msaitoh */
599 1.28 msaitoh error = ixgbe_dma_tag_create(
600 1.28 msaitoh /* parent */ adapter->osdep.dmat,
601 1.28 msaitoh /* alignment */ 1,
602 1.28 msaitoh /* bounds */ 0,
603 1.28 msaitoh /* maxsize */ IXGBE_TSO_SIZE,
604 1.28 msaitoh /* nsegments */ adapter->num_segs,
605 1.28 msaitoh /* maxsegsize */ PAGE_SIZE,
606 1.28 msaitoh /* flags */ 0,
607 1.28 msaitoh &txr->txtag);
608 1.28 msaitoh if (error != 0) {
609 1.1 msaitoh aprint_error_dev(dev,"Unable to allocate TX DMA tag\n");
610 1.1 msaitoh goto fail;
611 1.1 msaitoh }
612 1.1 msaitoh
613 1.57 chs txr->tx_buffers = malloc(sizeof(struct ixgbe_tx_buf) *
614 1.57 chs adapter->num_tx_desc, M_DEVBUF, M_WAITOK | M_ZERO);
615 1.1 msaitoh
616 1.28 msaitoh /* Create the descriptor buffer dma maps */
617 1.1 msaitoh txbuf = txr->tx_buffers;
618 1.1 msaitoh for (i = 0; i < adapter->num_tx_desc; i++, txbuf++) {
619 1.1 msaitoh error = ixgbe_dmamap_create(txr->txtag, 0, &txbuf->map);
620 1.1 msaitoh if (error != 0) {
621 1.1 msaitoh aprint_error_dev(dev,
622 1.1 msaitoh "Unable to create TX DMA map (%d)\n", error);
623 1.1 msaitoh goto fail;
624 1.1 msaitoh }
625 1.1 msaitoh }
626 1.1 msaitoh
627 1.1 msaitoh return 0;
628 1.1 msaitoh fail:
629 1.1 msaitoh /* We free all, it handles case where we are in the middle */
630 1.15 msaitoh #if 0 /* XXX was FreeBSD */
631 1.1 msaitoh ixgbe_free_transmit_structures(adapter);
632 1.15 msaitoh #else
633 1.15 msaitoh ixgbe_free_transmit_buffers(txr);
634 1.15 msaitoh #endif
635 1.1 msaitoh return (error);
636 1.28 msaitoh } /* ixgbe_allocate_transmit_buffers */
637 1.1 msaitoh
638 1.28 msaitoh /************************************************************************
639 1.28 msaitoh * ixgbe_setup_transmit_ring - Initialize a transmit ring.
640 1.28 msaitoh ************************************************************************/
641 1.1 msaitoh static void
642 1.1 msaitoh ixgbe_setup_transmit_ring(struct tx_ring *txr)
643 1.1 msaitoh {
644 1.28 msaitoh struct adapter *adapter = txr->adapter;
645 1.28 msaitoh struct ixgbe_tx_buf *txbuf;
646 1.1 msaitoh #ifdef DEV_NETMAP
647 1.1 msaitoh struct netmap_adapter *na = NA(adapter->ifp);
648 1.28 msaitoh struct netmap_slot *slot;
649 1.1 msaitoh #endif /* DEV_NETMAP */
650 1.1 msaitoh
651 1.1 msaitoh /* Clear the old ring contents */
652 1.1 msaitoh IXGBE_TX_LOCK(txr);
653 1.28 msaitoh
654 1.1 msaitoh #ifdef DEV_NETMAP
655 1.28 msaitoh if (adapter->feat_en & IXGBE_FEATURE_NETMAP) {
656 1.28 msaitoh /*
657 1.28 msaitoh * (under lock): if in netmap mode, do some consistency
658 1.28 msaitoh * checks and set slot to entry 0 of the netmap ring.
659 1.28 msaitoh */
660 1.28 msaitoh slot = netmap_reset(na, NR_TX, txr->me, 0);
661 1.28 msaitoh }
662 1.1 msaitoh #endif /* DEV_NETMAP */
663 1.28 msaitoh
664 1.1 msaitoh bzero((void *)txr->tx_base,
665 1.28 msaitoh (sizeof(union ixgbe_adv_tx_desc)) * adapter->num_tx_desc);
666 1.1 msaitoh /* Reset indices */
667 1.1 msaitoh txr->next_avail_desc = 0;
668 1.1 msaitoh txr->next_to_clean = 0;
669 1.1 msaitoh
670 1.1 msaitoh /* Free any existing tx buffers. */
671 1.28 msaitoh txbuf = txr->tx_buffers;
672 1.5 msaitoh for (int i = 0; i < txr->num_desc; i++, txbuf++) {
673 1.1 msaitoh if (txbuf->m_head != NULL) {
674 1.1 msaitoh bus_dmamap_sync(txr->txtag->dt_dmat, txbuf->map,
675 1.1 msaitoh 0, txbuf->m_head->m_pkthdr.len,
676 1.1 msaitoh BUS_DMASYNC_POSTWRITE);
677 1.1 msaitoh ixgbe_dmamap_unload(txr->txtag, txbuf->map);
678 1.1 msaitoh m_freem(txbuf->m_head);
679 1.1 msaitoh txbuf->m_head = NULL;
680 1.1 msaitoh }
681 1.28 msaitoh
682 1.1 msaitoh #ifdef DEV_NETMAP
683 1.1 msaitoh /*
684 1.1 msaitoh * In netmap mode, set the map for the packet buffer.
685 1.1 msaitoh * NOTE: Some drivers (not this one) also need to set
686 1.1 msaitoh * the physical buffer address in the NIC ring.
687 1.1 msaitoh * Slots in the netmap ring (indexed by "si") are
688 1.1 msaitoh * kring->nkr_hwofs positions "ahead" wrt the
689 1.1 msaitoh * corresponding slot in the NIC ring. In some drivers
690 1.1 msaitoh * (not here) nkr_hwofs can be negative. Function
691 1.1 msaitoh * netmap_idx_n2k() handles wraparounds properly.
692 1.1 msaitoh */
693 1.28 msaitoh if ((adapter->feat_en & IXGBE_FEATURE_NETMAP) && slot) {
694 1.53 msaitoh int si = netmap_idx_n2k(na->tx_rings[txr->me], i);
695 1.5 msaitoh netmap_load_map(na, txr->txtag,
696 1.5 msaitoh txbuf->map, NMB(na, slot + si));
697 1.1 msaitoh }
698 1.1 msaitoh #endif /* DEV_NETMAP */
699 1.28 msaitoh
700 1.1 msaitoh /* Clear the EOP descriptor pointer */
701 1.1 msaitoh txbuf->eop = NULL;
702 1.28 msaitoh }
703 1.1 msaitoh
704 1.1 msaitoh /* Set the rate at which we sample packets */
705 1.28 msaitoh if (adapter->feat_en & IXGBE_FEATURE_FDIR)
706 1.1 msaitoh txr->atr_sample = atr_sample_rate;
707 1.1 msaitoh
708 1.1 msaitoh /* Set number of descriptors available */
709 1.1 msaitoh txr->tx_avail = adapter->num_tx_desc;
710 1.1 msaitoh
711 1.1 msaitoh ixgbe_dmamap_sync(txr->txdma.dma_tag, txr->txdma.dma_map,
712 1.1 msaitoh BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
713 1.1 msaitoh IXGBE_TX_UNLOCK(txr);
714 1.28 msaitoh } /* ixgbe_setup_transmit_ring */
715 1.1 msaitoh
716 1.28 msaitoh /************************************************************************
717 1.28 msaitoh * ixgbe_setup_transmit_structures - Initialize all transmit rings.
718 1.28 msaitoh ************************************************************************/
719 1.1 msaitoh int
720 1.1 msaitoh ixgbe_setup_transmit_structures(struct adapter *adapter)
721 1.1 msaitoh {
722 1.1 msaitoh struct tx_ring *txr = adapter->tx_rings;
723 1.1 msaitoh
724 1.1 msaitoh for (int i = 0; i < adapter->num_queues; i++, txr++)
725 1.1 msaitoh ixgbe_setup_transmit_ring(txr);
726 1.1 msaitoh
727 1.1 msaitoh return (0);
728 1.28 msaitoh } /* ixgbe_setup_transmit_structures */
729 1.1 msaitoh
730 1.28 msaitoh /************************************************************************
731 1.28 msaitoh * ixgbe_free_transmit_structures - Free all transmit rings.
732 1.28 msaitoh ************************************************************************/
733 1.1 msaitoh void
734 1.1 msaitoh ixgbe_free_transmit_structures(struct adapter *adapter)
735 1.1 msaitoh {
736 1.1 msaitoh struct tx_ring *txr = adapter->tx_rings;
737 1.1 msaitoh
738 1.1 msaitoh for (int i = 0; i < adapter->num_queues; i++, txr++) {
739 1.1 msaitoh ixgbe_free_transmit_buffers(txr);
740 1.1 msaitoh ixgbe_dma_free(adapter, &txr->txdma);
741 1.1 msaitoh IXGBE_TX_LOCK_DESTROY(txr);
742 1.1 msaitoh }
743 1.1 msaitoh free(adapter->tx_rings, M_DEVBUF);
744 1.28 msaitoh } /* ixgbe_free_transmit_structures */
745 1.1 msaitoh
746 1.28 msaitoh /************************************************************************
747 1.28 msaitoh * ixgbe_free_transmit_buffers
748 1.1 msaitoh *
749 1.28 msaitoh * Free transmit ring related data structures.
750 1.28 msaitoh ************************************************************************/
751 1.1 msaitoh static void
752 1.1 msaitoh ixgbe_free_transmit_buffers(struct tx_ring *txr)
753 1.1 msaitoh {
754 1.28 msaitoh struct adapter *adapter = txr->adapter;
755 1.1 msaitoh struct ixgbe_tx_buf *tx_buffer;
756 1.28 msaitoh int i;
757 1.1 msaitoh
758 1.14 msaitoh INIT_DEBUGOUT("ixgbe_free_transmit_buffers: begin");
759 1.1 msaitoh
760 1.1 msaitoh if (txr->tx_buffers == NULL)
761 1.1 msaitoh return;
762 1.1 msaitoh
763 1.1 msaitoh tx_buffer = txr->tx_buffers;
764 1.1 msaitoh for (i = 0; i < adapter->num_tx_desc; i++, tx_buffer++) {
765 1.1 msaitoh if (tx_buffer->m_head != NULL) {
766 1.1 msaitoh bus_dmamap_sync(txr->txtag->dt_dmat, tx_buffer->map,
767 1.1 msaitoh 0, tx_buffer->m_head->m_pkthdr.len,
768 1.1 msaitoh BUS_DMASYNC_POSTWRITE);
769 1.1 msaitoh ixgbe_dmamap_unload(txr->txtag, tx_buffer->map);
770 1.1 msaitoh m_freem(tx_buffer->m_head);
771 1.1 msaitoh tx_buffer->m_head = NULL;
772 1.1 msaitoh if (tx_buffer->map != NULL) {
773 1.1 msaitoh ixgbe_dmamap_destroy(txr->txtag,
774 1.1 msaitoh tx_buffer->map);
775 1.1 msaitoh tx_buffer->map = NULL;
776 1.1 msaitoh }
777 1.1 msaitoh } else if (tx_buffer->map != NULL) {
778 1.1 msaitoh ixgbe_dmamap_unload(txr->txtag, tx_buffer->map);
779 1.1 msaitoh ixgbe_dmamap_destroy(txr->txtag, tx_buffer->map);
780 1.1 msaitoh tx_buffer->map = NULL;
781 1.1 msaitoh }
782 1.1 msaitoh }
783 1.18 msaitoh if (txr->txr_interq != NULL) {
784 1.18 msaitoh struct mbuf *m;
785 1.18 msaitoh
786 1.18 msaitoh while ((m = pcq_get(txr->txr_interq)) != NULL)
787 1.18 msaitoh m_freem(m);
788 1.18 msaitoh pcq_destroy(txr->txr_interq);
789 1.18 msaitoh }
790 1.1 msaitoh if (txr->tx_buffers != NULL) {
791 1.1 msaitoh free(txr->tx_buffers, M_DEVBUF);
792 1.1 msaitoh txr->tx_buffers = NULL;
793 1.1 msaitoh }
794 1.1 msaitoh if (txr->txtag != NULL) {
795 1.1 msaitoh ixgbe_dma_tag_destroy(txr->txtag);
796 1.1 msaitoh txr->txtag = NULL;
797 1.1 msaitoh }
798 1.28 msaitoh } /* ixgbe_free_transmit_buffers */
799 1.1 msaitoh
800 1.28 msaitoh /************************************************************************
801 1.28 msaitoh * ixgbe_tx_ctx_setup
802 1.1 msaitoh *
803 1.28 msaitoh * Advanced Context Descriptor setup for VLAN, CSUM or TSO
804 1.28 msaitoh ************************************************************************/
805 1.1 msaitoh static int
806 1.1 msaitoh ixgbe_tx_ctx_setup(struct tx_ring *txr, struct mbuf *mp,
807 1.1 msaitoh u32 *cmd_type_len, u32 *olinfo_status)
808 1.1 msaitoh {
809 1.28 msaitoh struct adapter *adapter = txr->adapter;
810 1.1 msaitoh struct ixgbe_adv_tx_context_desc *TXD;
811 1.28 msaitoh struct ether_vlan_header *eh;
812 1.8 msaitoh #ifdef INET
813 1.28 msaitoh struct ip *ip;
814 1.8 msaitoh #endif
815 1.8 msaitoh #ifdef INET6
816 1.28 msaitoh struct ip6_hdr *ip6;
817 1.8 msaitoh #endif
818 1.28 msaitoh int ehdrlen, ip_hlen = 0;
819 1.28 msaitoh int offload = TRUE;
820 1.28 msaitoh int ctxd = txr->next_avail_desc;
821 1.28 msaitoh u32 vlan_macip_lens = 0;
822 1.28 msaitoh u32 type_tucmd_mlhl = 0;
823 1.28 msaitoh u16 vtag = 0;
824 1.28 msaitoh u16 etype;
825 1.28 msaitoh u8 ipproto = 0;
826 1.28 msaitoh char *l3d;
827 1.8 msaitoh
828 1.1 msaitoh
829 1.1 msaitoh /* First check if TSO is to be used */
830 1.28 msaitoh if (mp->m_pkthdr.csum_flags & (M_CSUM_TSOv4 | M_CSUM_TSOv6)) {
831 1.17 msaitoh int rv = ixgbe_tso_setup(txr, mp, cmd_type_len, olinfo_status);
832 1.17 msaitoh
833 1.21 msaitoh if (rv != 0)
834 1.17 msaitoh ++adapter->tso_err.ev_count;
835 1.21 msaitoh return rv;
836 1.17 msaitoh }
837 1.1 msaitoh
838 1.1 msaitoh if ((mp->m_pkthdr.csum_flags & M_CSUM_OFFLOAD) == 0)
839 1.1 msaitoh offload = FALSE;
840 1.1 msaitoh
841 1.1 msaitoh /* Indicate the whole packet as payload when not doing TSO */
842 1.28 msaitoh *olinfo_status |= mp->m_pkthdr.len << IXGBE_ADVTXD_PAYLEN_SHIFT;
843 1.1 msaitoh
844 1.1 msaitoh /* Now ready a context descriptor */
845 1.28 msaitoh TXD = (struct ixgbe_adv_tx_context_desc *)&txr->tx_base[ctxd];
846 1.1 msaitoh
847 1.1 msaitoh /*
848 1.28 msaitoh * In advanced descriptors the vlan tag must
849 1.28 msaitoh * be placed into the context descriptor. Hence
850 1.28 msaitoh * we need to make one even if not doing offloads.
851 1.28 msaitoh */
852 1.29 knakahar if (vlan_has_tag(mp)) {
853 1.29 knakahar vtag = htole16(vlan_get_tag(mp));
854 1.1 msaitoh vlan_macip_lens |= (vtag << IXGBE_ADVTXD_VLAN_SHIFT);
855 1.28 msaitoh } else if (!(txr->adapter->feat_en & IXGBE_FEATURE_NEEDS_CTXD) &&
856 1.28 msaitoh (offload == FALSE))
857 1.4 msaitoh return (0);
858 1.1 msaitoh
859 1.1 msaitoh /*
860 1.1 msaitoh * Determine where frame payload starts.
861 1.1 msaitoh * Jump over vlan headers if already present,
862 1.1 msaitoh * helpful for QinQ too.
863 1.1 msaitoh */
864 1.1 msaitoh KASSERT(mp->m_len >= offsetof(struct ether_vlan_header, evl_tag));
865 1.1 msaitoh eh = mtod(mp, struct ether_vlan_header *);
866 1.1 msaitoh if (eh->evl_encap_proto == htons(ETHERTYPE_VLAN)) {
867 1.1 msaitoh KASSERT(mp->m_len >= sizeof(struct ether_vlan_header));
868 1.1 msaitoh etype = ntohs(eh->evl_proto);
869 1.1 msaitoh ehdrlen = ETHER_HDR_LEN + ETHER_VLAN_ENCAP_LEN;
870 1.1 msaitoh } else {
871 1.1 msaitoh etype = ntohs(eh->evl_encap_proto);
872 1.1 msaitoh ehdrlen = ETHER_HDR_LEN;
873 1.1 msaitoh }
874 1.1 msaitoh
875 1.1 msaitoh /* Set the ether header length */
876 1.1 msaitoh vlan_macip_lens |= ehdrlen << IXGBE_ADVTXD_MACLEN_SHIFT;
877 1.1 msaitoh
878 1.3 msaitoh if (offload == FALSE)
879 1.3 msaitoh goto no_offloads;
880 1.3 msaitoh
881 1.8 msaitoh /*
882 1.28 msaitoh * If the first mbuf only includes the ethernet header,
883 1.28 msaitoh * jump to the next one
884 1.28 msaitoh * XXX: This assumes the stack splits mbufs containing headers
885 1.28 msaitoh * on header boundaries
886 1.8 msaitoh * XXX: And assumes the entire IP header is contained in one mbuf
887 1.8 msaitoh */
888 1.8 msaitoh if (mp->m_len == ehdrlen && mp->m_next)
889 1.8 msaitoh l3d = mtod(mp->m_next, char *);
890 1.8 msaitoh else
891 1.8 msaitoh l3d = mtod(mp, char *) + ehdrlen;
892 1.8 msaitoh
893 1.1 msaitoh switch (etype) {
894 1.9 msaitoh #ifdef INET
895 1.1 msaitoh case ETHERTYPE_IP:
896 1.8 msaitoh ip = (struct ip *)(l3d);
897 1.8 msaitoh ip_hlen = ip->ip_hl << 2;
898 1.8 msaitoh ipproto = ip->ip_p;
899 1.8 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_TUCMD_IPV4;
900 1.1 msaitoh KASSERT((mp->m_pkthdr.csum_flags & M_CSUM_IPv4) == 0 ||
901 1.8 msaitoh ip->ip_sum == 0);
902 1.1 msaitoh break;
903 1.9 msaitoh #endif
904 1.9 msaitoh #ifdef INET6
905 1.1 msaitoh case ETHERTYPE_IPV6:
906 1.8 msaitoh ip6 = (struct ip6_hdr *)(l3d);
907 1.8 msaitoh ip_hlen = sizeof(struct ip6_hdr);
908 1.8 msaitoh ipproto = ip6->ip6_nxt;
909 1.1 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_TUCMD_IPV6;
910 1.1 msaitoh break;
911 1.9 msaitoh #endif
912 1.1 msaitoh default:
913 1.11 msaitoh offload = false;
914 1.1 msaitoh break;
915 1.1 msaitoh }
916 1.1 msaitoh
917 1.1 msaitoh if ((mp->m_pkthdr.csum_flags & M_CSUM_IPv4) != 0)
918 1.1 msaitoh *olinfo_status |= IXGBE_TXD_POPTS_IXSM << 8;
919 1.1 msaitoh
920 1.1 msaitoh vlan_macip_lens |= ip_hlen;
921 1.1 msaitoh
922 1.8 msaitoh /* No support for offloads for non-L4 next headers */
923 1.8 msaitoh switch (ipproto) {
924 1.36 msaitoh case IPPROTO_TCP:
925 1.36 msaitoh if (mp->m_pkthdr.csum_flags &
926 1.36 msaitoh (M_CSUM_TCPv4 | M_CSUM_TCPv6))
927 1.36 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_TUCMD_L4T_TCP;
928 1.36 msaitoh else
929 1.36 msaitoh offload = false;
930 1.36 msaitoh break;
931 1.36 msaitoh case IPPROTO_UDP:
932 1.36 msaitoh if (mp->m_pkthdr.csum_flags &
933 1.36 msaitoh (M_CSUM_UDPv4 | M_CSUM_UDPv6))
934 1.36 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_TUCMD_L4T_UDP;
935 1.36 msaitoh else
936 1.11 msaitoh offload = false;
937 1.36 msaitoh break;
938 1.36 msaitoh default:
939 1.36 msaitoh offload = false;
940 1.36 msaitoh break;
941 1.8 msaitoh }
942 1.8 msaitoh
943 1.8 msaitoh if (offload) /* Insert L4 checksum into data descriptors */
944 1.1 msaitoh *olinfo_status |= IXGBE_TXD_POPTS_TXSM << 8;
945 1.1 msaitoh
946 1.3 msaitoh no_offloads:
947 1.3 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_DCMD_DEXT | IXGBE_ADVTXD_DTYP_CTXT;
948 1.3 msaitoh
949 1.1 msaitoh /* Now copy bits into descriptor */
950 1.1 msaitoh TXD->vlan_macip_lens = htole32(vlan_macip_lens);
951 1.1 msaitoh TXD->type_tucmd_mlhl = htole32(type_tucmd_mlhl);
952 1.1 msaitoh TXD->seqnum_seed = htole32(0);
953 1.1 msaitoh TXD->mss_l4len_idx = htole32(0);
954 1.1 msaitoh
955 1.1 msaitoh /* We've consumed the first desc, adjust counters */
956 1.1 msaitoh if (++ctxd == txr->num_desc)
957 1.1 msaitoh ctxd = 0;
958 1.1 msaitoh txr->next_avail_desc = ctxd;
959 1.1 msaitoh --txr->tx_avail;
960 1.1 msaitoh
961 1.28 msaitoh return (0);
962 1.28 msaitoh } /* ixgbe_tx_ctx_setup */
963 1.1 msaitoh
964 1.28 msaitoh /************************************************************************
965 1.28 msaitoh * ixgbe_tso_setup
966 1.1 msaitoh *
967 1.28 msaitoh * Setup work for hardware segmentation offload (TSO) on
968 1.28 msaitoh * adapters using advanced tx descriptors
969 1.28 msaitoh ************************************************************************/
970 1.1 msaitoh static int
971 1.28 msaitoh ixgbe_tso_setup(struct tx_ring *txr, struct mbuf *mp, u32 *cmd_type_len,
972 1.28 msaitoh u32 *olinfo_status)
973 1.1 msaitoh {
974 1.1 msaitoh struct ixgbe_adv_tx_context_desc *TXD;
975 1.28 msaitoh struct ether_vlan_header *eh;
976 1.1 msaitoh #ifdef INET6
977 1.28 msaitoh struct ip6_hdr *ip6;
978 1.1 msaitoh #endif
979 1.1 msaitoh #ifdef INET
980 1.28 msaitoh struct ip *ip;
981 1.1 msaitoh #endif
982 1.28 msaitoh struct tcphdr *th;
983 1.28 msaitoh int ctxd, ehdrlen, ip_hlen, tcp_hlen;
984 1.28 msaitoh u32 vlan_macip_lens = 0;
985 1.28 msaitoh u32 type_tucmd_mlhl = 0;
986 1.28 msaitoh u32 mss_l4len_idx = 0, paylen;
987 1.28 msaitoh u16 vtag = 0, eh_type;
988 1.1 msaitoh
989 1.1 msaitoh /*
990 1.1 msaitoh * Determine where frame payload starts.
991 1.1 msaitoh * Jump over vlan headers if already present
992 1.1 msaitoh */
993 1.1 msaitoh eh = mtod(mp, struct ether_vlan_header *);
994 1.1 msaitoh if (eh->evl_encap_proto == htons(ETHERTYPE_VLAN)) {
995 1.1 msaitoh ehdrlen = ETHER_HDR_LEN + ETHER_VLAN_ENCAP_LEN;
996 1.1 msaitoh eh_type = eh->evl_proto;
997 1.1 msaitoh } else {
998 1.1 msaitoh ehdrlen = ETHER_HDR_LEN;
999 1.1 msaitoh eh_type = eh->evl_encap_proto;
1000 1.1 msaitoh }
1001 1.1 msaitoh
1002 1.1 msaitoh switch (ntohs(eh_type)) {
1003 1.1 msaitoh #ifdef INET
1004 1.1 msaitoh case ETHERTYPE_IP:
1005 1.1 msaitoh ip = (struct ip *)(mp->m_data + ehdrlen);
1006 1.1 msaitoh if (ip->ip_p != IPPROTO_TCP)
1007 1.1 msaitoh return (ENXIO);
1008 1.1 msaitoh ip->ip_sum = 0;
1009 1.1 msaitoh ip_hlen = ip->ip_hl << 2;
1010 1.1 msaitoh th = (struct tcphdr *)((char *)ip + ip_hlen);
1011 1.1 msaitoh th->th_sum = in_cksum_phdr(ip->ip_src.s_addr,
1012 1.1 msaitoh ip->ip_dst.s_addr, htons(IPPROTO_TCP));
1013 1.1 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_TUCMD_IPV4;
1014 1.1 msaitoh /* Tell transmit desc to also do IPv4 checksum. */
1015 1.1 msaitoh *olinfo_status |= IXGBE_TXD_POPTS_IXSM << 8;
1016 1.1 msaitoh break;
1017 1.1 msaitoh #endif
1018 1.28 msaitoh #ifdef INET6
1019 1.28 msaitoh case ETHERTYPE_IPV6:
1020 1.28 msaitoh ip6 = (struct ip6_hdr *)(mp->m_data + ehdrlen);
1021 1.28 msaitoh /* XXX-BZ For now we do not pretend to support ext. hdrs. */
1022 1.28 msaitoh if (ip6->ip6_nxt != IPPROTO_TCP)
1023 1.28 msaitoh return (ENXIO);
1024 1.28 msaitoh ip_hlen = sizeof(struct ip6_hdr);
1025 1.28 msaitoh ip6 = (struct ip6_hdr *)(mp->m_data + ehdrlen);
1026 1.28 msaitoh th = (struct tcphdr *)((char *)ip6 + ip_hlen);
1027 1.28 msaitoh th->th_sum = in6_cksum_phdr(&ip6->ip6_src,
1028 1.28 msaitoh &ip6->ip6_dst, 0, htonl(IPPROTO_TCP));
1029 1.28 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_TUCMD_IPV6;
1030 1.28 msaitoh break;
1031 1.28 msaitoh #endif
1032 1.1 msaitoh default:
1033 1.1 msaitoh panic("%s: CSUM_TSO but no supported IP version (0x%04x)",
1034 1.1 msaitoh __func__, ntohs(eh_type));
1035 1.1 msaitoh break;
1036 1.1 msaitoh }
1037 1.1 msaitoh
1038 1.1 msaitoh ctxd = txr->next_avail_desc;
1039 1.28 msaitoh TXD = (struct ixgbe_adv_tx_context_desc *)&txr->tx_base[ctxd];
1040 1.1 msaitoh
1041 1.1 msaitoh tcp_hlen = th->th_off << 2;
1042 1.1 msaitoh
1043 1.1 msaitoh /* This is used in the transmit desc in encap */
1044 1.1 msaitoh paylen = mp->m_pkthdr.len - ehdrlen - ip_hlen - tcp_hlen;
1045 1.1 msaitoh
1046 1.1 msaitoh /* VLAN MACLEN IPLEN */
1047 1.29 knakahar if (vlan_has_tag(mp)) {
1048 1.29 knakahar vtag = htole16(vlan_get_tag(mp));
1049 1.28 msaitoh vlan_macip_lens |= (vtag << IXGBE_ADVTXD_VLAN_SHIFT);
1050 1.1 msaitoh }
1051 1.1 msaitoh
1052 1.1 msaitoh vlan_macip_lens |= ehdrlen << IXGBE_ADVTXD_MACLEN_SHIFT;
1053 1.1 msaitoh vlan_macip_lens |= ip_hlen;
1054 1.1 msaitoh TXD->vlan_macip_lens = htole32(vlan_macip_lens);
1055 1.1 msaitoh
1056 1.1 msaitoh /* ADV DTYPE TUCMD */
1057 1.1 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_DCMD_DEXT | IXGBE_ADVTXD_DTYP_CTXT;
1058 1.1 msaitoh type_tucmd_mlhl |= IXGBE_ADVTXD_TUCMD_L4T_TCP;
1059 1.1 msaitoh TXD->type_tucmd_mlhl = htole32(type_tucmd_mlhl);
1060 1.1 msaitoh
1061 1.1 msaitoh /* MSS L4LEN IDX */
1062 1.1 msaitoh mss_l4len_idx |= (mp->m_pkthdr.segsz << IXGBE_ADVTXD_MSS_SHIFT);
1063 1.1 msaitoh mss_l4len_idx |= (tcp_hlen << IXGBE_ADVTXD_L4LEN_SHIFT);
1064 1.1 msaitoh TXD->mss_l4len_idx = htole32(mss_l4len_idx);
1065 1.1 msaitoh
1066 1.1 msaitoh TXD->seqnum_seed = htole32(0);
1067 1.1 msaitoh
1068 1.1 msaitoh if (++ctxd == txr->num_desc)
1069 1.1 msaitoh ctxd = 0;
1070 1.1 msaitoh
1071 1.1 msaitoh txr->tx_avail--;
1072 1.1 msaitoh txr->next_avail_desc = ctxd;
1073 1.1 msaitoh *cmd_type_len |= IXGBE_ADVTXD_DCMD_TSE;
1074 1.1 msaitoh *olinfo_status |= IXGBE_TXD_POPTS_TXSM << 8;
1075 1.1 msaitoh *olinfo_status |= paylen << IXGBE_ADVTXD_PAYLEN_SHIFT;
1076 1.1 msaitoh ++txr->tso_tx.ev_count;
1077 1.28 msaitoh
1078 1.1 msaitoh return (0);
1079 1.28 msaitoh } /* ixgbe_tso_setup */
1080 1.1 msaitoh
1081 1.3 msaitoh
1082 1.28 msaitoh /************************************************************************
1083 1.28 msaitoh * ixgbe_txeof
1084 1.1 msaitoh *
1085 1.28 msaitoh * Examine each tx_buffer in the used queue. If the hardware is done
1086 1.28 msaitoh * processing the packet then free associated resources. The
1087 1.28 msaitoh * tx_buffer is put back on the free queue.
1088 1.28 msaitoh ************************************************************************/
1089 1.32 msaitoh bool
1090 1.1 msaitoh ixgbe_txeof(struct tx_ring *txr)
1091 1.1 msaitoh {
1092 1.1 msaitoh struct adapter *adapter = txr->adapter;
1093 1.1 msaitoh struct ifnet *ifp = adapter->ifp;
1094 1.28 msaitoh struct ixgbe_tx_buf *buf;
1095 1.28 msaitoh union ixgbe_adv_tx_desc *txd;
1096 1.1 msaitoh u32 work, processed = 0;
1097 1.7 msaitoh u32 limit = adapter->tx_process_limit;
1098 1.1 msaitoh
1099 1.1 msaitoh KASSERT(mutex_owned(&txr->tx_mtx));
1100 1.1 msaitoh
1101 1.1 msaitoh #ifdef DEV_NETMAP
1102 1.28 msaitoh if ((adapter->feat_en & IXGBE_FEATURE_NETMAP) &&
1103 1.28 msaitoh (adapter->ifp->if_capenable & IFCAP_NETMAP)) {
1104 1.28 msaitoh struct netmap_adapter *na = NA(adapter->ifp);
1105 1.53 msaitoh struct netmap_kring *kring = na->tx_rings[txr->me];
1106 1.1 msaitoh txd = txr->tx_base;
1107 1.1 msaitoh bus_dmamap_sync(txr->txdma.dma_tag, txr->txdma.dma_map,
1108 1.1 msaitoh BUS_DMASYNC_POSTREAD);
1109 1.1 msaitoh /*
1110 1.1 msaitoh * In netmap mode, all the work is done in the context
1111 1.1 msaitoh * of the client thread. Interrupt handlers only wake up
1112 1.1 msaitoh * clients, which may be sleeping on individual rings
1113 1.1 msaitoh * or on a global resource for all rings.
1114 1.1 msaitoh * To implement tx interrupt mitigation, we wake up the client
1115 1.1 msaitoh * thread roughly every half ring, even if the NIC interrupts
1116 1.1 msaitoh * more frequently. This is implemented as follows:
1117 1.1 msaitoh * - ixgbe_txsync() sets kring->nr_kflags with the index of
1118 1.1 msaitoh * the slot that should wake up the thread (nkr_num_slots
1119 1.1 msaitoh * means the user thread should not be woken up);
1120 1.1 msaitoh * - the driver ignores tx interrupts unless netmap_mitigate=0
1121 1.1 msaitoh * or the slot has the DD bit set.
1122 1.1 msaitoh */
1123 1.53 msaitoh if (kring->nr_kflags < kring->nkr_num_slots &&
1124 1.53 msaitoh txd[kring->nr_kflags].wb.status & IXGBE_TXD_STAT_DD) {
1125 1.1 msaitoh netmap_tx_irq(ifp, txr->me);
1126 1.1 msaitoh }
1127 1.32 msaitoh return false;
1128 1.1 msaitoh }
1129 1.1 msaitoh #endif /* DEV_NETMAP */
1130 1.1 msaitoh
1131 1.1 msaitoh if (txr->tx_avail == txr->num_desc) {
1132 1.45 msaitoh txr->busy = 0;
1133 1.32 msaitoh return false;
1134 1.1 msaitoh }
1135 1.1 msaitoh
1136 1.1 msaitoh /* Get work starting point */
1137 1.1 msaitoh work = txr->next_to_clean;
1138 1.1 msaitoh buf = &txr->tx_buffers[work];
1139 1.1 msaitoh txd = &txr->tx_base[work];
1140 1.1 msaitoh work -= txr->num_desc; /* The distance to ring end */
1141 1.28 msaitoh ixgbe_dmamap_sync(txr->txdma.dma_tag, txr->txdma.dma_map,
1142 1.1 msaitoh BUS_DMASYNC_POSTREAD);
1143 1.8 msaitoh
1144 1.1 msaitoh do {
1145 1.8 msaitoh union ixgbe_adv_tx_desc *eop = buf->eop;
1146 1.1 msaitoh if (eop == NULL) /* No work */
1147 1.1 msaitoh break;
1148 1.1 msaitoh
1149 1.1 msaitoh if ((eop->wb.status & IXGBE_TXD_STAT_DD) == 0)
1150 1.1 msaitoh break; /* I/O not complete */
1151 1.1 msaitoh
1152 1.1 msaitoh if (buf->m_head) {
1153 1.28 msaitoh txr->bytes += buf->m_head->m_pkthdr.len;
1154 1.28 msaitoh bus_dmamap_sync(txr->txtag->dt_dmat, buf->map,
1155 1.1 msaitoh 0, buf->m_head->m_pkthdr.len,
1156 1.1 msaitoh BUS_DMASYNC_POSTWRITE);
1157 1.28 msaitoh ixgbe_dmamap_unload(txr->txtag, buf->map);
1158 1.1 msaitoh m_freem(buf->m_head);
1159 1.1 msaitoh buf->m_head = NULL;
1160 1.1 msaitoh }
1161 1.1 msaitoh buf->eop = NULL;
1162 1.47 msaitoh txr->txr_no_space = false;
1163 1.1 msaitoh ++txr->tx_avail;
1164 1.1 msaitoh
1165 1.1 msaitoh /* We clean the range if multi segment */
1166 1.1 msaitoh while (txd != eop) {
1167 1.1 msaitoh ++txd;
1168 1.1 msaitoh ++buf;
1169 1.1 msaitoh ++work;
1170 1.1 msaitoh /* wrap the ring? */
1171 1.1 msaitoh if (__predict_false(!work)) {
1172 1.1 msaitoh work -= txr->num_desc;
1173 1.1 msaitoh buf = txr->tx_buffers;
1174 1.1 msaitoh txd = txr->tx_base;
1175 1.1 msaitoh }
1176 1.1 msaitoh if (buf->m_head) {
1177 1.1 msaitoh txr->bytes +=
1178 1.1 msaitoh buf->m_head->m_pkthdr.len;
1179 1.1 msaitoh bus_dmamap_sync(txr->txtag->dt_dmat,
1180 1.1 msaitoh buf->map,
1181 1.1 msaitoh 0, buf->m_head->m_pkthdr.len,
1182 1.1 msaitoh BUS_DMASYNC_POSTWRITE);
1183 1.1 msaitoh ixgbe_dmamap_unload(txr->txtag,
1184 1.1 msaitoh buf->map);
1185 1.1 msaitoh m_freem(buf->m_head);
1186 1.1 msaitoh buf->m_head = NULL;
1187 1.1 msaitoh }
1188 1.1 msaitoh ++txr->tx_avail;
1189 1.1 msaitoh buf->eop = NULL;
1190 1.1 msaitoh
1191 1.1 msaitoh }
1192 1.1 msaitoh ++txr->packets;
1193 1.1 msaitoh ++processed;
1194 1.1 msaitoh ++ifp->if_opackets;
1195 1.1 msaitoh
1196 1.1 msaitoh /* Try the next packet */
1197 1.1 msaitoh ++txd;
1198 1.1 msaitoh ++buf;
1199 1.1 msaitoh ++work;
1200 1.1 msaitoh /* reset with a wrap */
1201 1.1 msaitoh if (__predict_false(!work)) {
1202 1.1 msaitoh work -= txr->num_desc;
1203 1.1 msaitoh buf = txr->tx_buffers;
1204 1.1 msaitoh txd = txr->tx_base;
1205 1.1 msaitoh }
1206 1.1 msaitoh prefetch(txd);
1207 1.1 msaitoh } while (__predict_true(--limit));
1208 1.1 msaitoh
1209 1.1 msaitoh ixgbe_dmamap_sync(txr->txdma.dma_tag, txr->txdma.dma_map,
1210 1.1 msaitoh BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
1211 1.1 msaitoh
1212 1.1 msaitoh work += txr->num_desc;
1213 1.1 msaitoh txr->next_to_clean = work;
1214 1.1 msaitoh
1215 1.45 msaitoh /*
1216 1.45 msaitoh * Queue Hang detection, we know there's
1217 1.45 msaitoh * work outstanding or the first return
1218 1.45 msaitoh * would have been taken, so increment busy
1219 1.45 msaitoh * if nothing managed to get cleaned, then
1220 1.45 msaitoh * in local_timer it will be checked and
1221 1.45 msaitoh * marked as HUNG if it exceeds a MAX attempt.
1222 1.45 msaitoh */
1223 1.45 msaitoh if ((processed == 0) && (txr->busy != IXGBE_QUEUE_HUNG))
1224 1.45 msaitoh ++txr->busy;
1225 1.45 msaitoh /*
1226 1.45 msaitoh * If anything gets cleaned we reset state to 1,
1227 1.45 msaitoh * note this will turn off HUNG if its set.
1228 1.45 msaitoh */
1229 1.45 msaitoh if (processed)
1230 1.45 msaitoh txr->busy = 1;
1231 1.45 msaitoh
1232 1.43 msaitoh if (txr->tx_avail == txr->num_desc)
1233 1.45 msaitoh txr->busy = 0;
1234 1.43 msaitoh
1235 1.32 msaitoh return ((limit > 0) ? false : true);
1236 1.28 msaitoh } /* ixgbe_txeof */
1237 1.1 msaitoh
1238 1.28 msaitoh /************************************************************************
1239 1.28 msaitoh * ixgbe_rsc_count
1240 1.28 msaitoh *
1241 1.28 msaitoh * Used to detect a descriptor that has been merged by Hardware RSC.
1242 1.28 msaitoh ************************************************************************/
1243 1.1 msaitoh static inline u32
1244 1.1 msaitoh ixgbe_rsc_count(union ixgbe_adv_rx_desc *rx)
1245 1.1 msaitoh {
1246 1.1 msaitoh return (le32toh(rx->wb.lower.lo_dword.data) &
1247 1.1 msaitoh IXGBE_RXDADV_RSCCNT_MASK) >> IXGBE_RXDADV_RSCCNT_SHIFT;
1248 1.28 msaitoh } /* ixgbe_rsc_count */
1249 1.1 msaitoh
1250 1.28 msaitoh /************************************************************************
1251 1.28 msaitoh * ixgbe_setup_hw_rsc
1252 1.1 msaitoh *
1253 1.28 msaitoh * Initialize Hardware RSC (LRO) feature on 82599
1254 1.28 msaitoh * for an RX ring, this is toggled by the LRO capability
1255 1.28 msaitoh * even though it is transparent to the stack.
1256 1.28 msaitoh *
1257 1.28 msaitoh * NOTE: Since this HW feature only works with IPv4 and
1258 1.28 msaitoh * testing has shown soft LRO to be as effective,
1259 1.28 msaitoh * this feature will be disabled by default.
1260 1.28 msaitoh ************************************************************************/
1261 1.1 msaitoh static void
1262 1.1 msaitoh ixgbe_setup_hw_rsc(struct rx_ring *rxr)
1263 1.1 msaitoh {
1264 1.28 msaitoh struct adapter *adapter = rxr->adapter;
1265 1.28 msaitoh struct ixgbe_hw *hw = &adapter->hw;
1266 1.28 msaitoh u32 rscctrl, rdrxctl;
1267 1.1 msaitoh
1268 1.1 msaitoh /* If turning LRO/RSC off we need to disable it */
1269 1.1 msaitoh if ((adapter->ifp->if_capenable & IFCAP_LRO) == 0) {
1270 1.1 msaitoh rscctrl = IXGBE_READ_REG(hw, IXGBE_RSCCTL(rxr->me));
1271 1.1 msaitoh rscctrl &= ~IXGBE_RSCCTL_RSCEN;
1272 1.1 msaitoh return;
1273 1.1 msaitoh }
1274 1.1 msaitoh
1275 1.1 msaitoh rdrxctl = IXGBE_READ_REG(hw, IXGBE_RDRXCTL);
1276 1.1 msaitoh rdrxctl &= ~IXGBE_RDRXCTL_RSCFRSTSIZE;
1277 1.28 msaitoh #ifdef DEV_NETMAP
1278 1.28 msaitoh /* Always strip CRC unless Netmap disabled it */
1279 1.28 msaitoh if (!(adapter->feat_en & IXGBE_FEATURE_NETMAP) ||
1280 1.28 msaitoh !(adapter->ifp->if_capenable & IFCAP_NETMAP) ||
1281 1.28 msaitoh ix_crcstrip)
1282 1.1 msaitoh #endif /* DEV_NETMAP */
1283 1.28 msaitoh rdrxctl |= IXGBE_RDRXCTL_CRCSTRIP;
1284 1.1 msaitoh rdrxctl |= IXGBE_RDRXCTL_RSCACKC;
1285 1.1 msaitoh IXGBE_WRITE_REG(hw, IXGBE_RDRXCTL, rdrxctl);
1286 1.1 msaitoh
1287 1.1 msaitoh rscctrl = IXGBE_READ_REG(hw, IXGBE_RSCCTL(rxr->me));
1288 1.1 msaitoh rscctrl |= IXGBE_RSCCTL_RSCEN;
1289 1.1 msaitoh /*
1290 1.28 msaitoh * Limit the total number of descriptors that
1291 1.28 msaitoh * can be combined, so it does not exceed 64K
1292 1.28 msaitoh */
1293 1.1 msaitoh if (rxr->mbuf_sz == MCLBYTES)
1294 1.1 msaitoh rscctrl |= IXGBE_RSCCTL_MAXDESC_16;
1295 1.1 msaitoh else if (rxr->mbuf_sz == MJUMPAGESIZE)
1296 1.1 msaitoh rscctrl |= IXGBE_RSCCTL_MAXDESC_8;
1297 1.1 msaitoh else if (rxr->mbuf_sz == MJUM9BYTES)
1298 1.1 msaitoh rscctrl |= IXGBE_RSCCTL_MAXDESC_4;
1299 1.1 msaitoh else /* Using 16K cluster */
1300 1.1 msaitoh rscctrl |= IXGBE_RSCCTL_MAXDESC_1;
1301 1.1 msaitoh
1302 1.1 msaitoh IXGBE_WRITE_REG(hw, IXGBE_RSCCTL(rxr->me), rscctrl);
1303 1.1 msaitoh
1304 1.1 msaitoh /* Enable TCP header recognition */
1305 1.1 msaitoh IXGBE_WRITE_REG(hw, IXGBE_PSRTYPE(0),
1306 1.28 msaitoh (IXGBE_READ_REG(hw, IXGBE_PSRTYPE(0)) | IXGBE_PSRTYPE_TCPHDR));
1307 1.1 msaitoh
1308 1.1 msaitoh /* Disable RSC for ACK packets */
1309 1.1 msaitoh IXGBE_WRITE_REG(hw, IXGBE_RSCDBU,
1310 1.1 msaitoh (IXGBE_RSCDBU_RSCACKDIS | IXGBE_READ_REG(hw, IXGBE_RSCDBU)));
1311 1.1 msaitoh
1312 1.1 msaitoh rxr->hw_rsc = TRUE;
1313 1.28 msaitoh } /* ixgbe_setup_hw_rsc */
1314 1.8 msaitoh
1315 1.28 msaitoh /************************************************************************
1316 1.28 msaitoh * ixgbe_refresh_mbufs
1317 1.1 msaitoh *
1318 1.28 msaitoh * Refresh mbuf buffers for RX descriptor rings
1319 1.28 msaitoh * - now keeps its own state so discards due to resource
1320 1.28 msaitoh * exhaustion are unnecessary, if an mbuf cannot be obtained
1321 1.28 msaitoh * it just returns, keeping its placeholder, thus it can simply
1322 1.28 msaitoh * be recalled to try again.
1323 1.28 msaitoh ************************************************************************/
1324 1.1 msaitoh static void
1325 1.1 msaitoh ixgbe_refresh_mbufs(struct rx_ring *rxr, int limit)
1326 1.1 msaitoh {
1327 1.28 msaitoh struct adapter *adapter = rxr->adapter;
1328 1.28 msaitoh struct ixgbe_rx_buf *rxbuf;
1329 1.28 msaitoh struct mbuf *mp;
1330 1.28 msaitoh int i, j, error;
1331 1.28 msaitoh bool refreshed = false;
1332 1.1 msaitoh
1333 1.1 msaitoh i = j = rxr->next_to_refresh;
1334 1.1 msaitoh /* Control the loop with one beyond */
1335 1.1 msaitoh if (++j == rxr->num_desc)
1336 1.1 msaitoh j = 0;
1337 1.1 msaitoh
1338 1.1 msaitoh while (j != limit) {
1339 1.1 msaitoh rxbuf = &rxr->rx_buffers[i];
1340 1.1 msaitoh if (rxbuf->buf == NULL) {
1341 1.49 msaitoh mp = ixgbe_getjcl(&rxr->jcl_head, M_NOWAIT,
1342 1.1 msaitoh MT_DATA, M_PKTHDR, rxr->mbuf_sz);
1343 1.1 msaitoh if (mp == NULL) {
1344 1.1 msaitoh rxr->no_jmbuf.ev_count++;
1345 1.1 msaitoh goto update;
1346 1.1 msaitoh }
1347 1.1 msaitoh if (adapter->max_frame_size <= (MCLBYTES - ETHER_ALIGN))
1348 1.1 msaitoh m_adj(mp, ETHER_ALIGN);
1349 1.1 msaitoh } else
1350 1.1 msaitoh mp = rxbuf->buf;
1351 1.1 msaitoh
1352 1.1 msaitoh mp->m_pkthdr.len = mp->m_len = rxr->mbuf_sz;
1353 1.1 msaitoh
1354 1.1 msaitoh /* If we're dealing with an mbuf that was copied rather
1355 1.1 msaitoh * than replaced, there's no need to go through busdma.
1356 1.1 msaitoh */
1357 1.1 msaitoh if ((rxbuf->flags & IXGBE_RX_COPY) == 0) {
1358 1.1 msaitoh /* Get the memory mapping */
1359 1.4 msaitoh ixgbe_dmamap_unload(rxr->ptag, rxbuf->pmap);
1360 1.1 msaitoh error = bus_dmamap_load_mbuf(rxr->ptag->dt_dmat,
1361 1.1 msaitoh rxbuf->pmap, mp, BUS_DMA_NOWAIT);
1362 1.1 msaitoh if (error != 0) {
1363 1.55 msaitoh device_printf(adapter->dev, "Refresh mbufs: "
1364 1.55 msaitoh "payload dmamap load failure - %d\n",
1365 1.55 msaitoh error);
1366 1.1 msaitoh m_free(mp);
1367 1.1 msaitoh rxbuf->buf = NULL;
1368 1.1 msaitoh goto update;
1369 1.1 msaitoh }
1370 1.1 msaitoh rxbuf->buf = mp;
1371 1.1 msaitoh bus_dmamap_sync(rxr->ptag->dt_dmat, rxbuf->pmap,
1372 1.1 msaitoh 0, mp->m_pkthdr.len, BUS_DMASYNC_PREREAD);
1373 1.1 msaitoh rxbuf->addr = rxr->rx_base[i].read.pkt_addr =
1374 1.1 msaitoh htole64(rxbuf->pmap->dm_segs[0].ds_addr);
1375 1.1 msaitoh } else {
1376 1.1 msaitoh rxr->rx_base[i].read.pkt_addr = rxbuf->addr;
1377 1.1 msaitoh rxbuf->flags &= ~IXGBE_RX_COPY;
1378 1.1 msaitoh }
1379 1.1 msaitoh
1380 1.1 msaitoh refreshed = true;
1381 1.1 msaitoh /* Next is precalculated */
1382 1.1 msaitoh i = j;
1383 1.1 msaitoh rxr->next_to_refresh = i;
1384 1.1 msaitoh if (++j == rxr->num_desc)
1385 1.1 msaitoh j = 0;
1386 1.1 msaitoh }
1387 1.28 msaitoh
1388 1.1 msaitoh update:
1389 1.1 msaitoh if (refreshed) /* Update hardware tail index */
1390 1.28 msaitoh IXGBE_WRITE_REG(&adapter->hw, rxr->tail, rxr->next_to_refresh);
1391 1.28 msaitoh
1392 1.1 msaitoh return;
1393 1.28 msaitoh } /* ixgbe_refresh_mbufs */
1394 1.1 msaitoh
1395 1.28 msaitoh /************************************************************************
1396 1.28 msaitoh * ixgbe_allocate_receive_buffers
1397 1.1 msaitoh *
1398 1.28 msaitoh * Allocate memory for rx_buffer structures. Since we use one
1399 1.28 msaitoh * rx_buffer per received packet, the maximum number of rx_buffer's
1400 1.28 msaitoh * that we'll need is equal to the number of receive descriptors
1401 1.28 msaitoh * that we've allocated.
1402 1.28 msaitoh ************************************************************************/
1403 1.28 msaitoh static int
1404 1.1 msaitoh ixgbe_allocate_receive_buffers(struct rx_ring *rxr)
1405 1.1 msaitoh {
1406 1.53 msaitoh struct adapter *adapter = rxr->adapter;
1407 1.28 msaitoh device_t dev = adapter->dev;
1408 1.28 msaitoh struct ixgbe_rx_buf *rxbuf;
1409 1.28 msaitoh int bsize, error;
1410 1.1 msaitoh
1411 1.1 msaitoh bsize = sizeof(struct ixgbe_rx_buf) * rxr->num_desc;
1412 1.57 chs rxr->rx_buffers = malloc(bsize, M_DEVBUF, M_WAITOK | M_ZERO);
1413 1.1 msaitoh
1414 1.28 msaitoh error = ixgbe_dma_tag_create(
1415 1.28 msaitoh /* parent */ adapter->osdep.dmat,
1416 1.28 msaitoh /* alignment */ 1,
1417 1.28 msaitoh /* bounds */ 0,
1418 1.28 msaitoh /* maxsize */ MJUM16BYTES,
1419 1.28 msaitoh /* nsegments */ 1,
1420 1.28 msaitoh /* maxsegsize */ MJUM16BYTES,
1421 1.28 msaitoh /* flags */ 0,
1422 1.28 msaitoh &rxr->ptag);
1423 1.28 msaitoh if (error != 0) {
1424 1.1 msaitoh aprint_error_dev(dev, "Unable to create RX DMA tag\n");
1425 1.1 msaitoh goto fail;
1426 1.1 msaitoh }
1427 1.1 msaitoh
1428 1.5 msaitoh for (int i = 0; i < rxr->num_desc; i++, rxbuf++) {
1429 1.1 msaitoh rxbuf = &rxr->rx_buffers[i];
1430 1.4 msaitoh error = ixgbe_dmamap_create(rxr->ptag, 0, &rxbuf->pmap);
1431 1.1 msaitoh if (error) {
1432 1.1 msaitoh aprint_error_dev(dev, "Unable to create RX dma map\n");
1433 1.1 msaitoh goto fail;
1434 1.1 msaitoh }
1435 1.1 msaitoh }
1436 1.1 msaitoh
1437 1.1 msaitoh return (0);
1438 1.1 msaitoh
1439 1.1 msaitoh fail:
1440 1.1 msaitoh /* Frees all, but can handle partial completion */
1441 1.1 msaitoh ixgbe_free_receive_structures(adapter);
1442 1.28 msaitoh
1443 1.1 msaitoh return (error);
1444 1.28 msaitoh } /* ixgbe_allocate_receive_buffers */
1445 1.1 msaitoh
1446 1.28 msaitoh /************************************************************************
1447 1.30 msaitoh * ixgbe_free_receive_ring
1448 1.28 msaitoh ************************************************************************/
1449 1.28 msaitoh static void
1450 1.1 msaitoh ixgbe_free_receive_ring(struct rx_ring *rxr)
1451 1.27 msaitoh {
1452 1.5 msaitoh for (int i = 0; i < rxr->num_desc; i++) {
1453 1.27 msaitoh ixgbe_rx_discard(rxr, i);
1454 1.1 msaitoh }
1455 1.28 msaitoh } /* ixgbe_free_receive_ring */
1456 1.1 msaitoh
1457 1.28 msaitoh /************************************************************************
1458 1.28 msaitoh * ixgbe_setup_receive_ring
1459 1.1 msaitoh *
1460 1.28 msaitoh * Initialize a receive ring and its buffers.
1461 1.28 msaitoh ************************************************************************/
1462 1.1 msaitoh static int
1463 1.1 msaitoh ixgbe_setup_receive_ring(struct rx_ring *rxr)
1464 1.1 msaitoh {
1465 1.28 msaitoh struct adapter *adapter;
1466 1.28 msaitoh struct ixgbe_rx_buf *rxbuf;
1467 1.1 msaitoh #ifdef LRO
1468 1.28 msaitoh struct ifnet *ifp;
1469 1.28 msaitoh struct lro_ctrl *lro = &rxr->lro;
1470 1.1 msaitoh #endif /* LRO */
1471 1.1 msaitoh #ifdef DEV_NETMAP
1472 1.1 msaitoh struct netmap_adapter *na = NA(rxr->adapter->ifp);
1473 1.28 msaitoh struct netmap_slot *slot;
1474 1.1 msaitoh #endif /* DEV_NETMAP */
1475 1.28 msaitoh int rsize, error = 0;
1476 1.1 msaitoh
1477 1.1 msaitoh adapter = rxr->adapter;
1478 1.1 msaitoh #ifdef LRO
1479 1.1 msaitoh ifp = adapter->ifp;
1480 1.1 msaitoh #endif /* LRO */
1481 1.1 msaitoh
1482 1.1 msaitoh /* Clear the ring contents */
1483 1.1 msaitoh IXGBE_RX_LOCK(rxr);
1484 1.28 msaitoh
1485 1.1 msaitoh #ifdef DEV_NETMAP
1486 1.28 msaitoh if (adapter->feat_en & IXGBE_FEATURE_NETMAP)
1487 1.28 msaitoh slot = netmap_reset(na, NR_RX, rxr->me, 0);
1488 1.1 msaitoh #endif /* DEV_NETMAP */
1489 1.28 msaitoh
1490 1.1 msaitoh rsize = roundup2(adapter->num_rx_desc *
1491 1.1 msaitoh sizeof(union ixgbe_adv_rx_desc), DBA_ALIGN);
1492 1.1 msaitoh bzero((void *)rxr->rx_base, rsize);
1493 1.1 msaitoh /* Cache the size */
1494 1.1 msaitoh rxr->mbuf_sz = adapter->rx_mbuf_sz;
1495 1.1 msaitoh
1496 1.1 msaitoh /* Free current RX buffer structs and their mbufs */
1497 1.1 msaitoh ixgbe_free_receive_ring(rxr);
1498 1.1 msaitoh
1499 1.49 msaitoh IXGBE_RX_UNLOCK(rxr);
1500 1.49 msaitoh /*
1501 1.49 msaitoh * Now reinitialize our supply of jumbo mbufs. The number
1502 1.49 msaitoh * or size of jumbo mbufs may have changed.
1503 1.49 msaitoh * Assume all of rxr->ptag are the same.
1504 1.49 msaitoh */
1505 1.49 msaitoh ixgbe_jcl_reinit(adapter, rxr->ptag->dt_dmat, rxr,
1506 1.49 msaitoh (2 * adapter->num_rx_desc), adapter->rx_mbuf_sz);
1507 1.49 msaitoh
1508 1.49 msaitoh IXGBE_RX_LOCK(rxr);
1509 1.49 msaitoh
1510 1.1 msaitoh /* Now replenish the mbufs */
1511 1.1 msaitoh for (int j = 0; j != rxr->num_desc; ++j) {
1512 1.28 msaitoh struct mbuf *mp;
1513 1.1 msaitoh
1514 1.1 msaitoh rxbuf = &rxr->rx_buffers[j];
1515 1.28 msaitoh
1516 1.1 msaitoh #ifdef DEV_NETMAP
1517 1.1 msaitoh /*
1518 1.1 msaitoh * In netmap mode, fill the map and set the buffer
1519 1.1 msaitoh * address in the NIC ring, considering the offset
1520 1.1 msaitoh * between the netmap and NIC rings (see comment in
1521 1.1 msaitoh * ixgbe_setup_transmit_ring() ). No need to allocate
1522 1.1 msaitoh * an mbuf, so end the block with a continue;
1523 1.1 msaitoh */
1524 1.28 msaitoh if ((adapter->feat_en & IXGBE_FEATURE_NETMAP) && slot) {
1525 1.53 msaitoh int sj = netmap_idx_n2k(na->rx_rings[rxr->me], j);
1526 1.1 msaitoh uint64_t paddr;
1527 1.1 msaitoh void *addr;
1528 1.1 msaitoh
1529 1.1 msaitoh addr = PNMB(na, slot + sj, &paddr);
1530 1.1 msaitoh netmap_load_map(na, rxr->ptag, rxbuf->pmap, addr);
1531 1.1 msaitoh /* Update descriptor and the cached value */
1532 1.1 msaitoh rxr->rx_base[j].read.pkt_addr = htole64(paddr);
1533 1.1 msaitoh rxbuf->addr = htole64(paddr);
1534 1.1 msaitoh continue;
1535 1.1 msaitoh }
1536 1.1 msaitoh #endif /* DEV_NETMAP */
1537 1.28 msaitoh
1538 1.28 msaitoh rxbuf->flags = 0;
1539 1.49 msaitoh rxbuf->buf = ixgbe_getjcl(&rxr->jcl_head, M_NOWAIT,
1540 1.1 msaitoh MT_DATA, M_PKTHDR, adapter->rx_mbuf_sz);
1541 1.1 msaitoh if (rxbuf->buf == NULL) {
1542 1.1 msaitoh error = ENOBUFS;
1543 1.28 msaitoh goto fail;
1544 1.1 msaitoh }
1545 1.1 msaitoh mp = rxbuf->buf;
1546 1.1 msaitoh mp->m_pkthdr.len = mp->m_len = rxr->mbuf_sz;
1547 1.1 msaitoh /* Get the memory mapping */
1548 1.28 msaitoh error = bus_dmamap_load_mbuf(rxr->ptag->dt_dmat, rxbuf->pmap,
1549 1.28 msaitoh mp, BUS_DMA_NOWAIT);
1550 1.1 msaitoh if (error != 0)
1551 1.1 msaitoh goto fail;
1552 1.1 msaitoh bus_dmamap_sync(rxr->ptag->dt_dmat, rxbuf->pmap,
1553 1.1 msaitoh 0, adapter->rx_mbuf_sz, BUS_DMASYNC_PREREAD);
1554 1.1 msaitoh /* Update the descriptor and the cached value */
1555 1.1 msaitoh rxr->rx_base[j].read.pkt_addr =
1556 1.1 msaitoh htole64(rxbuf->pmap->dm_segs[0].ds_addr);
1557 1.1 msaitoh rxbuf->addr = htole64(rxbuf->pmap->dm_segs[0].ds_addr);
1558 1.1 msaitoh }
1559 1.1 msaitoh
1560 1.1 msaitoh
1561 1.1 msaitoh /* Setup our descriptor indices */
1562 1.1 msaitoh rxr->next_to_check = 0;
1563 1.1 msaitoh rxr->next_to_refresh = 0;
1564 1.1 msaitoh rxr->lro_enabled = FALSE;
1565 1.1 msaitoh rxr->rx_copies.ev_count = 0;
1566 1.13 msaitoh #if 0 /* NetBSD */
1567 1.1 msaitoh rxr->rx_bytes.ev_count = 0;
1568 1.13 msaitoh #if 1 /* Fix inconsistency */
1569 1.13 msaitoh rxr->rx_packets.ev_count = 0;
1570 1.13 msaitoh #endif
1571 1.13 msaitoh #endif
1572 1.1 msaitoh rxr->vtag_strip = FALSE;
1573 1.1 msaitoh
1574 1.1 msaitoh ixgbe_dmamap_sync(rxr->rxdma.dma_tag, rxr->rxdma.dma_map,
1575 1.1 msaitoh BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
1576 1.1 msaitoh
1577 1.1 msaitoh /*
1578 1.28 msaitoh * Now set up the LRO interface
1579 1.28 msaitoh */
1580 1.1 msaitoh if (ixgbe_rsc_enable)
1581 1.1 msaitoh ixgbe_setup_hw_rsc(rxr);
1582 1.1 msaitoh #ifdef LRO
1583 1.1 msaitoh else if (ifp->if_capenable & IFCAP_LRO) {
1584 1.1 msaitoh device_t dev = adapter->dev;
1585 1.1 msaitoh int err = tcp_lro_init(lro);
1586 1.1 msaitoh if (err) {
1587 1.1 msaitoh device_printf(dev, "LRO Initialization failed!\n");
1588 1.1 msaitoh goto fail;
1589 1.1 msaitoh }
1590 1.1 msaitoh INIT_DEBUGOUT("RX Soft LRO Initialized\n");
1591 1.1 msaitoh rxr->lro_enabled = TRUE;
1592 1.1 msaitoh lro->ifp = adapter->ifp;
1593 1.1 msaitoh }
1594 1.1 msaitoh #endif /* LRO */
1595 1.1 msaitoh
1596 1.1 msaitoh IXGBE_RX_UNLOCK(rxr);
1597 1.28 msaitoh
1598 1.1 msaitoh return (0);
1599 1.1 msaitoh
1600 1.1 msaitoh fail:
1601 1.1 msaitoh ixgbe_free_receive_ring(rxr);
1602 1.1 msaitoh IXGBE_RX_UNLOCK(rxr);
1603 1.28 msaitoh
1604 1.1 msaitoh return (error);
1605 1.28 msaitoh } /* ixgbe_setup_receive_ring */
1606 1.1 msaitoh
1607 1.28 msaitoh /************************************************************************
1608 1.28 msaitoh * ixgbe_setup_receive_structures - Initialize all receive rings.
1609 1.28 msaitoh ************************************************************************/
1610 1.1 msaitoh int
1611 1.1 msaitoh ixgbe_setup_receive_structures(struct adapter *adapter)
1612 1.1 msaitoh {
1613 1.1 msaitoh struct rx_ring *rxr = adapter->rx_rings;
1614 1.28 msaitoh int j;
1615 1.1 msaitoh
1616 1.1 msaitoh for (j = 0; j < adapter->num_queues; j++, rxr++)
1617 1.1 msaitoh if (ixgbe_setup_receive_ring(rxr))
1618 1.1 msaitoh goto fail;
1619 1.1 msaitoh
1620 1.1 msaitoh return (0);
1621 1.1 msaitoh fail:
1622 1.1 msaitoh /*
1623 1.1 msaitoh * Free RX buffers allocated so far, we will only handle
1624 1.1 msaitoh * the rings that completed, the failing case will have
1625 1.1 msaitoh * cleaned up for itself. 'j' failed, so its the terminus.
1626 1.1 msaitoh */
1627 1.1 msaitoh for (int i = 0; i < j; ++i) {
1628 1.1 msaitoh rxr = &adapter->rx_rings[i];
1629 1.27 msaitoh IXGBE_RX_LOCK(rxr);
1630 1.1 msaitoh ixgbe_free_receive_ring(rxr);
1631 1.27 msaitoh IXGBE_RX_UNLOCK(rxr);
1632 1.1 msaitoh }
1633 1.1 msaitoh
1634 1.1 msaitoh return (ENOBUFS);
1635 1.28 msaitoh } /* ixgbe_setup_receive_structures */
1636 1.1 msaitoh
1637 1.3 msaitoh
1638 1.28 msaitoh /************************************************************************
1639 1.28 msaitoh * ixgbe_free_receive_structures - Free all receive rings.
1640 1.28 msaitoh ************************************************************************/
1641 1.1 msaitoh void
1642 1.1 msaitoh ixgbe_free_receive_structures(struct adapter *adapter)
1643 1.1 msaitoh {
1644 1.1 msaitoh struct rx_ring *rxr = adapter->rx_rings;
1645 1.1 msaitoh
1646 1.1 msaitoh INIT_DEBUGOUT("ixgbe_free_receive_structures: begin");
1647 1.1 msaitoh
1648 1.1 msaitoh for (int i = 0; i < adapter->num_queues; i++, rxr++) {
1649 1.1 msaitoh ixgbe_free_receive_buffers(rxr);
1650 1.1 msaitoh #ifdef LRO
1651 1.1 msaitoh /* Free LRO memory */
1652 1.28 msaitoh tcp_lro_free(&rxr->lro);
1653 1.1 msaitoh #endif /* LRO */
1654 1.1 msaitoh /* Free the ring memory as well */
1655 1.1 msaitoh ixgbe_dma_free(adapter, &rxr->rxdma);
1656 1.1 msaitoh IXGBE_RX_LOCK_DESTROY(rxr);
1657 1.1 msaitoh }
1658 1.1 msaitoh
1659 1.1 msaitoh free(adapter->rx_rings, M_DEVBUF);
1660 1.28 msaitoh } /* ixgbe_free_receive_structures */
1661 1.1 msaitoh
1662 1.1 msaitoh
1663 1.28 msaitoh /************************************************************************
1664 1.28 msaitoh * ixgbe_free_receive_buffers - Free receive ring data structures
1665 1.28 msaitoh ************************************************************************/
1666 1.1 msaitoh static void
1667 1.1 msaitoh ixgbe_free_receive_buffers(struct rx_ring *rxr)
1668 1.1 msaitoh {
1669 1.28 msaitoh struct adapter *adapter = rxr->adapter;
1670 1.28 msaitoh struct ixgbe_rx_buf *rxbuf;
1671 1.1 msaitoh
1672 1.1 msaitoh INIT_DEBUGOUT("ixgbe_free_receive_buffers: begin");
1673 1.1 msaitoh
1674 1.1 msaitoh /* Cleanup any existing buffers */
1675 1.1 msaitoh if (rxr->rx_buffers != NULL) {
1676 1.1 msaitoh for (int i = 0; i < adapter->num_rx_desc; i++) {
1677 1.1 msaitoh rxbuf = &rxr->rx_buffers[i];
1678 1.27 msaitoh ixgbe_rx_discard(rxr, i);
1679 1.1 msaitoh if (rxbuf->pmap != NULL) {
1680 1.1 msaitoh ixgbe_dmamap_destroy(rxr->ptag, rxbuf->pmap);
1681 1.1 msaitoh rxbuf->pmap = NULL;
1682 1.1 msaitoh }
1683 1.1 msaitoh }
1684 1.59 msaitoh
1685 1.59 msaitoh /* NetBSD specific. See ixgbe_netbsd.c */
1686 1.59 msaitoh ixgbe_jcl_destroy(adapter, rxr);
1687 1.59 msaitoh
1688 1.1 msaitoh if (rxr->rx_buffers != NULL) {
1689 1.1 msaitoh free(rxr->rx_buffers, M_DEVBUF);
1690 1.1 msaitoh rxr->rx_buffers = NULL;
1691 1.1 msaitoh }
1692 1.1 msaitoh }
1693 1.1 msaitoh
1694 1.1 msaitoh if (rxr->ptag != NULL) {
1695 1.1 msaitoh ixgbe_dma_tag_destroy(rxr->ptag);
1696 1.1 msaitoh rxr->ptag = NULL;
1697 1.1 msaitoh }
1698 1.1 msaitoh
1699 1.1 msaitoh return;
1700 1.28 msaitoh } /* ixgbe_free_receive_buffers */
1701 1.1 msaitoh
1702 1.28 msaitoh /************************************************************************
1703 1.28 msaitoh * ixgbe_rx_input
1704 1.28 msaitoh ************************************************************************/
1705 1.1 msaitoh static __inline void
1706 1.28 msaitoh ixgbe_rx_input(struct rx_ring *rxr, struct ifnet *ifp, struct mbuf *m,
1707 1.28 msaitoh u32 ptype)
1708 1.1 msaitoh {
1709 1.20 msaitoh struct adapter *adapter = ifp->if_softc;
1710 1.1 msaitoh
1711 1.1 msaitoh #ifdef LRO
1712 1.1 msaitoh struct ethercom *ec = &adapter->osdep.ec;
1713 1.1 msaitoh
1714 1.28 msaitoh /*
1715 1.28 msaitoh * ATM LRO is only for IP/TCP packets and TCP checksum of the packet
1716 1.28 msaitoh * should be computed by hardware. Also it should not have VLAN tag in
1717 1.28 msaitoh * ethernet header. In case of IPv6 we do not yet support ext. hdrs.
1718 1.28 msaitoh */
1719 1.1 msaitoh if (rxr->lro_enabled &&
1720 1.1 msaitoh (ec->ec_capenable & ETHERCAP_VLAN_HWTAGGING) != 0 &&
1721 1.1 msaitoh (ptype & IXGBE_RXDADV_PKTTYPE_ETQF) == 0 &&
1722 1.1 msaitoh ((ptype & (IXGBE_RXDADV_PKTTYPE_IPV4 | IXGBE_RXDADV_PKTTYPE_TCP)) ==
1723 1.1 msaitoh (IXGBE_RXDADV_PKTTYPE_IPV4 | IXGBE_RXDADV_PKTTYPE_TCP) ||
1724 1.1 msaitoh (ptype & (IXGBE_RXDADV_PKTTYPE_IPV6 | IXGBE_RXDADV_PKTTYPE_TCP)) ==
1725 1.1 msaitoh (IXGBE_RXDADV_PKTTYPE_IPV6 | IXGBE_RXDADV_PKTTYPE_TCP)) &&
1726 1.1 msaitoh (m->m_pkthdr.csum_flags & (CSUM_DATA_VALID | CSUM_PSEUDO_HDR)) ==
1727 1.1 msaitoh (CSUM_DATA_VALID | CSUM_PSEUDO_HDR)) {
1728 1.1 msaitoh /*
1729 1.1 msaitoh * Send to the stack if:
1730 1.1 msaitoh ** - LRO not enabled, or
1731 1.1 msaitoh ** - no LRO resources, or
1732 1.1 msaitoh ** - lro enqueue fails
1733 1.1 msaitoh */
1734 1.1 msaitoh if (rxr->lro.lro_cnt != 0)
1735 1.1 msaitoh if (tcp_lro_rx(&rxr->lro, m, 0) == 0)
1736 1.1 msaitoh return;
1737 1.1 msaitoh }
1738 1.1 msaitoh #endif /* LRO */
1739 1.1 msaitoh
1740 1.20 msaitoh if_percpuq_enqueue(adapter->ipq, m);
1741 1.28 msaitoh } /* ixgbe_rx_input */
1742 1.1 msaitoh
1743 1.28 msaitoh /************************************************************************
1744 1.28 msaitoh * ixgbe_rx_discard
1745 1.28 msaitoh ************************************************************************/
1746 1.1 msaitoh static __inline void
1747 1.1 msaitoh ixgbe_rx_discard(struct rx_ring *rxr, int i)
1748 1.1 msaitoh {
1749 1.28 msaitoh struct ixgbe_rx_buf *rbuf;
1750 1.1 msaitoh
1751 1.1 msaitoh rbuf = &rxr->rx_buffers[i];
1752 1.1 msaitoh
1753 1.1 msaitoh /*
1754 1.28 msaitoh * With advanced descriptors the writeback
1755 1.28 msaitoh * clobbers the buffer addrs, so its easier
1756 1.28 msaitoh * to just free the existing mbufs and take
1757 1.28 msaitoh * the normal refresh path to get new buffers
1758 1.28 msaitoh * and mapping.
1759 1.28 msaitoh */
1760 1.1 msaitoh
1761 1.26 msaitoh if (rbuf->fmp != NULL) {/* Partial chain ? */
1762 1.27 msaitoh bus_dmamap_sync(rxr->ptag->dt_dmat, rbuf->pmap, 0,
1763 1.27 msaitoh rbuf->buf->m_pkthdr.len, BUS_DMASYNC_POSTREAD);
1764 1.1 msaitoh m_freem(rbuf->fmp);
1765 1.1 msaitoh rbuf->fmp = NULL;
1766 1.1 msaitoh rbuf->buf = NULL; /* rbuf->buf is part of fmp's chain */
1767 1.1 msaitoh } else if (rbuf->buf) {
1768 1.27 msaitoh bus_dmamap_sync(rxr->ptag->dt_dmat, rbuf->pmap, 0,
1769 1.27 msaitoh rbuf->buf->m_pkthdr.len, BUS_DMASYNC_POSTREAD);
1770 1.1 msaitoh m_free(rbuf->buf);
1771 1.1 msaitoh rbuf->buf = NULL;
1772 1.1 msaitoh }
1773 1.4 msaitoh ixgbe_dmamap_unload(rxr->ptag, rbuf->pmap);
1774 1.1 msaitoh
1775 1.1 msaitoh rbuf->flags = 0;
1776 1.1 msaitoh
1777 1.1 msaitoh return;
1778 1.28 msaitoh } /* ixgbe_rx_discard */
1779 1.1 msaitoh
1780 1.1 msaitoh
1781 1.28 msaitoh /************************************************************************
1782 1.28 msaitoh * ixgbe_rxeof
1783 1.1 msaitoh *
1784 1.28 msaitoh * Executes in interrupt context. It replenishes the
1785 1.28 msaitoh * mbufs in the descriptor and sends data which has
1786 1.28 msaitoh * been dma'ed into host memory to upper layer.
1787 1.1 msaitoh *
1788 1.28 msaitoh * Return TRUE for more work, FALSE for all clean.
1789 1.28 msaitoh ************************************************************************/
1790 1.1 msaitoh bool
1791 1.1 msaitoh ixgbe_rxeof(struct ix_queue *que)
1792 1.1 msaitoh {
1793 1.1 msaitoh struct adapter *adapter = que->adapter;
1794 1.1 msaitoh struct rx_ring *rxr = que->rxr;
1795 1.1 msaitoh struct ifnet *ifp = adapter->ifp;
1796 1.1 msaitoh #ifdef LRO
1797 1.1 msaitoh struct lro_ctrl *lro = &rxr->lro;
1798 1.1 msaitoh #endif /* LRO */
1799 1.28 msaitoh union ixgbe_adv_rx_desc *cur;
1800 1.28 msaitoh struct ixgbe_rx_buf *rbuf, *nbuf;
1801 1.1 msaitoh int i, nextp, processed = 0;
1802 1.1 msaitoh u32 staterr = 0;
1803 1.7 msaitoh u32 count = adapter->rx_process_limit;
1804 1.1 msaitoh #ifdef RSS
1805 1.1 msaitoh u16 pkt_info;
1806 1.1 msaitoh #endif
1807 1.1 msaitoh
1808 1.1 msaitoh IXGBE_RX_LOCK(rxr);
1809 1.1 msaitoh
1810 1.1 msaitoh #ifdef DEV_NETMAP
1811 1.28 msaitoh if (adapter->feat_en & IXGBE_FEATURE_NETMAP) {
1812 1.28 msaitoh /* Same as the txeof routine: wakeup clients on intr. */
1813 1.28 msaitoh if (netmap_rx_irq(ifp, rxr->me, &processed)) {
1814 1.28 msaitoh IXGBE_RX_UNLOCK(rxr);
1815 1.28 msaitoh return (FALSE);
1816 1.28 msaitoh }
1817 1.1 msaitoh }
1818 1.1 msaitoh #endif /* DEV_NETMAP */
1819 1.1 msaitoh
1820 1.1 msaitoh for (i = rxr->next_to_check; count != 0;) {
1821 1.28 msaitoh struct mbuf *sendmp, *mp;
1822 1.28 msaitoh u32 rsc, ptype;
1823 1.28 msaitoh u16 len;
1824 1.28 msaitoh u16 vtag = 0;
1825 1.28 msaitoh bool eop;
1826 1.53 msaitoh
1827 1.1 msaitoh /* Sync the ring. */
1828 1.1 msaitoh ixgbe_dmamap_sync(rxr->rxdma.dma_tag, rxr->rxdma.dma_map,
1829 1.1 msaitoh BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
1830 1.1 msaitoh
1831 1.1 msaitoh cur = &rxr->rx_base[i];
1832 1.1 msaitoh staterr = le32toh(cur->wb.upper.status_error);
1833 1.1 msaitoh #ifdef RSS
1834 1.1 msaitoh pkt_info = le16toh(cur->wb.lower.lo_dword.hs_rss.pkt_info);
1835 1.1 msaitoh #endif
1836 1.1 msaitoh
1837 1.1 msaitoh if ((staterr & IXGBE_RXD_STAT_DD) == 0)
1838 1.1 msaitoh break;
1839 1.1 msaitoh
1840 1.1 msaitoh count--;
1841 1.1 msaitoh sendmp = NULL;
1842 1.1 msaitoh nbuf = NULL;
1843 1.1 msaitoh rsc = 0;
1844 1.1 msaitoh cur->wb.upper.status_error = 0;
1845 1.1 msaitoh rbuf = &rxr->rx_buffers[i];
1846 1.1 msaitoh mp = rbuf->buf;
1847 1.1 msaitoh
1848 1.1 msaitoh len = le16toh(cur->wb.upper.length);
1849 1.1 msaitoh ptype = le32toh(cur->wb.lower.lo_dword.data) &
1850 1.1 msaitoh IXGBE_RXDADV_PKTTYPE_MASK;
1851 1.1 msaitoh eop = ((staterr & IXGBE_RXD_STAT_EOP) != 0);
1852 1.1 msaitoh
1853 1.1 msaitoh /* Make sure bad packets are discarded */
1854 1.1 msaitoh if (eop && (staterr & IXGBE_RXDADV_ERR_FRAME_ERR_MASK) != 0) {
1855 1.3 msaitoh #if __FreeBSD_version >= 1100036
1856 1.28 msaitoh if (adapter->feat_en & IXGBE_FEATURE_VF)
1857 1.4 msaitoh if_inc_counter(ifp, IFCOUNTER_IERRORS, 1);
1858 1.3 msaitoh #endif
1859 1.1 msaitoh rxr->rx_discarded.ev_count++;
1860 1.1 msaitoh ixgbe_rx_discard(rxr, i);
1861 1.1 msaitoh goto next_desc;
1862 1.1 msaitoh }
1863 1.1 msaitoh
1864 1.27 msaitoh bus_dmamap_sync(rxr->ptag->dt_dmat, rbuf->pmap, 0,
1865 1.27 msaitoh rbuf->buf->m_pkthdr.len, BUS_DMASYNC_POSTREAD);
1866 1.27 msaitoh
1867 1.1 msaitoh /*
1868 1.28 msaitoh * On 82599 which supports a hardware
1869 1.28 msaitoh * LRO (called HW RSC), packets need
1870 1.28 msaitoh * not be fragmented across sequential
1871 1.28 msaitoh * descriptors, rather the next descriptor
1872 1.28 msaitoh * is indicated in bits of the descriptor.
1873 1.28 msaitoh * This also means that we might proceses
1874 1.28 msaitoh * more than one packet at a time, something
1875 1.28 msaitoh * that has never been true before, it
1876 1.28 msaitoh * required eliminating global chain pointers
1877 1.28 msaitoh * in favor of what we are doing here. -jfv
1878 1.28 msaitoh */
1879 1.1 msaitoh if (!eop) {
1880 1.1 msaitoh /*
1881 1.28 msaitoh * Figure out the next descriptor
1882 1.28 msaitoh * of this frame.
1883 1.28 msaitoh */
1884 1.1 msaitoh if (rxr->hw_rsc == TRUE) {
1885 1.1 msaitoh rsc = ixgbe_rsc_count(cur);
1886 1.1 msaitoh rxr->rsc_num += (rsc - 1);
1887 1.1 msaitoh }
1888 1.1 msaitoh if (rsc) { /* Get hardware index */
1889 1.28 msaitoh nextp = ((staterr & IXGBE_RXDADV_NEXTP_MASK) >>
1890 1.1 msaitoh IXGBE_RXDADV_NEXTP_SHIFT);
1891 1.1 msaitoh } else { /* Just sequential */
1892 1.1 msaitoh nextp = i + 1;
1893 1.1 msaitoh if (nextp == adapter->num_rx_desc)
1894 1.1 msaitoh nextp = 0;
1895 1.1 msaitoh }
1896 1.1 msaitoh nbuf = &rxr->rx_buffers[nextp];
1897 1.1 msaitoh prefetch(nbuf);
1898 1.1 msaitoh }
1899 1.1 msaitoh /*
1900 1.28 msaitoh * Rather than using the fmp/lmp global pointers
1901 1.28 msaitoh * we now keep the head of a packet chain in the
1902 1.28 msaitoh * buffer struct and pass this along from one
1903 1.28 msaitoh * descriptor to the next, until we get EOP.
1904 1.28 msaitoh */
1905 1.1 msaitoh mp->m_len = len;
1906 1.1 msaitoh /*
1907 1.28 msaitoh * See if there is a stored head
1908 1.28 msaitoh * that determines what we are
1909 1.28 msaitoh */
1910 1.1 msaitoh sendmp = rbuf->fmp;
1911 1.1 msaitoh if (sendmp != NULL) { /* secondary frag */
1912 1.1 msaitoh rbuf->buf = rbuf->fmp = NULL;
1913 1.1 msaitoh mp->m_flags &= ~M_PKTHDR;
1914 1.1 msaitoh sendmp->m_pkthdr.len += mp->m_len;
1915 1.1 msaitoh } else {
1916 1.1 msaitoh /*
1917 1.1 msaitoh * Optimize. This might be a small packet,
1918 1.1 msaitoh * maybe just a TCP ACK. Do a fast copy that
1919 1.1 msaitoh * is cache aligned into a new mbuf, and
1920 1.1 msaitoh * leave the old mbuf+cluster for re-use.
1921 1.1 msaitoh */
1922 1.1 msaitoh if (eop && len <= IXGBE_RX_COPY_LEN) {
1923 1.1 msaitoh sendmp = m_gethdr(M_NOWAIT, MT_DATA);
1924 1.1 msaitoh if (sendmp != NULL) {
1925 1.28 msaitoh sendmp->m_data += IXGBE_RX_COPY_ALIGN;
1926 1.28 msaitoh ixgbe_bcopy(mp->m_data, sendmp->m_data,
1927 1.28 msaitoh len);
1928 1.1 msaitoh sendmp->m_len = len;
1929 1.1 msaitoh rxr->rx_copies.ev_count++;
1930 1.1 msaitoh rbuf->flags |= IXGBE_RX_COPY;
1931 1.1 msaitoh }
1932 1.1 msaitoh }
1933 1.1 msaitoh if (sendmp == NULL) {
1934 1.1 msaitoh rbuf->buf = rbuf->fmp = NULL;
1935 1.1 msaitoh sendmp = mp;
1936 1.1 msaitoh }
1937 1.1 msaitoh
1938 1.1 msaitoh /* first desc of a non-ps chain */
1939 1.1 msaitoh sendmp->m_flags |= M_PKTHDR;
1940 1.1 msaitoh sendmp->m_pkthdr.len = mp->m_len;
1941 1.1 msaitoh }
1942 1.1 msaitoh ++processed;
1943 1.1 msaitoh
1944 1.1 msaitoh /* Pass the head pointer on */
1945 1.1 msaitoh if (eop == 0) {
1946 1.1 msaitoh nbuf->fmp = sendmp;
1947 1.1 msaitoh sendmp = NULL;
1948 1.1 msaitoh mp->m_next = nbuf->buf;
1949 1.1 msaitoh } else { /* Sending this frame */
1950 1.1 msaitoh m_set_rcvif(sendmp, ifp);
1951 1.31 msaitoh ++rxr->packets;
1952 1.1 msaitoh rxr->rx_packets.ev_count++;
1953 1.1 msaitoh /* capture data for AIM */
1954 1.1 msaitoh rxr->bytes += sendmp->m_pkthdr.len;
1955 1.1 msaitoh rxr->rx_bytes.ev_count += sendmp->m_pkthdr.len;
1956 1.1 msaitoh /* Process vlan info */
1957 1.28 msaitoh if ((rxr->vtag_strip) && (staterr & IXGBE_RXD_STAT_VP))
1958 1.1 msaitoh vtag = le16toh(cur->wb.upper.vlan);
1959 1.1 msaitoh if (vtag) {
1960 1.29 knakahar vlan_set_tag(sendmp, vtag);
1961 1.1 msaitoh }
1962 1.1 msaitoh if ((ifp->if_capenable & IFCAP_RXCSUM) != 0) {
1963 1.1 msaitoh ixgbe_rx_checksum(staterr, sendmp, ptype,
1964 1.3 msaitoh &adapter->stats.pf);
1965 1.1 msaitoh }
1966 1.8 msaitoh
1967 1.6 msaitoh #if 0 /* FreeBSD */
1968 1.28 msaitoh /*
1969 1.28 msaitoh * In case of multiqueue, we have RXCSUM.PCSD bit set
1970 1.28 msaitoh * and never cleared. This means we have RSS hash
1971 1.28 msaitoh * available to be used.
1972 1.28 msaitoh */
1973 1.28 msaitoh if (adapter->num_queues > 1) {
1974 1.28 msaitoh sendmp->m_pkthdr.flowid =
1975 1.28 msaitoh le32toh(cur->wb.lower.hi_dword.rss);
1976 1.44 msaitoh switch (pkt_info & IXGBE_RXDADV_RSSTYPE_MASK) {
1977 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV4:
1978 1.28 msaitoh M_HASHTYPE_SET(sendmp,
1979 1.28 msaitoh M_HASHTYPE_RSS_IPV4);
1980 1.28 msaitoh break;
1981 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV4_TCP:
1982 1.28 msaitoh M_HASHTYPE_SET(sendmp,
1983 1.28 msaitoh M_HASHTYPE_RSS_TCP_IPV4);
1984 1.28 msaitoh break;
1985 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV6:
1986 1.28 msaitoh M_HASHTYPE_SET(sendmp,
1987 1.28 msaitoh M_HASHTYPE_RSS_IPV6);
1988 1.28 msaitoh break;
1989 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV6_TCP:
1990 1.28 msaitoh M_HASHTYPE_SET(sendmp,
1991 1.28 msaitoh M_HASHTYPE_RSS_TCP_IPV6);
1992 1.28 msaitoh break;
1993 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV6_EX:
1994 1.28 msaitoh M_HASHTYPE_SET(sendmp,
1995 1.28 msaitoh M_HASHTYPE_RSS_IPV6_EX);
1996 1.28 msaitoh break;
1997 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV6_TCP_EX:
1998 1.28 msaitoh M_HASHTYPE_SET(sendmp,
1999 1.28 msaitoh M_HASHTYPE_RSS_TCP_IPV6_EX);
2000 1.28 msaitoh break;
2001 1.6 msaitoh #if __FreeBSD_version > 1100000
2002 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV4_UDP:
2003 1.28 msaitoh M_HASHTYPE_SET(sendmp,
2004 1.28 msaitoh M_HASHTYPE_RSS_UDP_IPV4);
2005 1.28 msaitoh break;
2006 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV6_UDP:
2007 1.28 msaitoh M_HASHTYPE_SET(sendmp,
2008 1.28 msaitoh M_HASHTYPE_RSS_UDP_IPV6);
2009 1.28 msaitoh break;
2010 1.44 msaitoh case IXGBE_RXDADV_RSSTYPE_IPV6_UDP_EX:
2011 1.28 msaitoh M_HASHTYPE_SET(sendmp,
2012 1.28 msaitoh M_HASHTYPE_RSS_UDP_IPV6_EX);
2013 1.28 msaitoh break;
2014 1.28 msaitoh #endif
2015 1.44 msaitoh default:
2016 1.28 msaitoh M_HASHTYPE_SET(sendmp,
2017 1.28 msaitoh M_HASHTYPE_OPAQUE_HASH);
2018 1.28 msaitoh }
2019 1.28 msaitoh } else {
2020 1.28 msaitoh sendmp->m_pkthdr.flowid = que->msix;
2021 1.1 msaitoh M_HASHTYPE_SET(sendmp, M_HASHTYPE_OPAQUE);
2022 1.1 msaitoh }
2023 1.8 msaitoh #endif
2024 1.1 msaitoh }
2025 1.1 msaitoh next_desc:
2026 1.1 msaitoh ixgbe_dmamap_sync(rxr->rxdma.dma_tag, rxr->rxdma.dma_map,
2027 1.1 msaitoh BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
2028 1.1 msaitoh
2029 1.1 msaitoh /* Advance our pointers to the next descriptor. */
2030 1.1 msaitoh if (++i == rxr->num_desc)
2031 1.1 msaitoh i = 0;
2032 1.1 msaitoh
2033 1.1 msaitoh /* Now send to the stack or do LRO */
2034 1.1 msaitoh if (sendmp != NULL) {
2035 1.1 msaitoh rxr->next_to_check = i;
2036 1.28 msaitoh IXGBE_RX_UNLOCK(rxr);
2037 1.1 msaitoh ixgbe_rx_input(rxr, ifp, sendmp, ptype);
2038 1.28 msaitoh IXGBE_RX_LOCK(rxr);
2039 1.1 msaitoh i = rxr->next_to_check;
2040 1.1 msaitoh }
2041 1.1 msaitoh
2042 1.28 msaitoh /* Every 8 descriptors we go to refresh mbufs */
2043 1.1 msaitoh if (processed == 8) {
2044 1.1 msaitoh ixgbe_refresh_mbufs(rxr, i);
2045 1.1 msaitoh processed = 0;
2046 1.1 msaitoh }
2047 1.1 msaitoh }
2048 1.1 msaitoh
2049 1.1 msaitoh /* Refresh any remaining buf structs */
2050 1.1 msaitoh if (ixgbe_rx_unrefreshed(rxr))
2051 1.1 msaitoh ixgbe_refresh_mbufs(rxr, i);
2052 1.1 msaitoh
2053 1.1 msaitoh rxr->next_to_check = i;
2054 1.1 msaitoh
2055 1.28 msaitoh IXGBE_RX_UNLOCK(rxr);
2056 1.28 msaitoh
2057 1.1 msaitoh #ifdef LRO
2058 1.1 msaitoh /*
2059 1.1 msaitoh * Flush any outstanding LRO work
2060 1.1 msaitoh */
2061 1.10 msaitoh tcp_lro_flush_all(lro);
2062 1.1 msaitoh #endif /* LRO */
2063 1.1 msaitoh
2064 1.1 msaitoh /*
2065 1.28 msaitoh * Still have cleaning to do?
2066 1.28 msaitoh */
2067 1.1 msaitoh if ((staterr & IXGBE_RXD_STAT_DD) != 0)
2068 1.28 msaitoh return (TRUE);
2069 1.28 msaitoh
2070 1.28 msaitoh return (FALSE);
2071 1.28 msaitoh } /* ixgbe_rxeof */
2072 1.1 msaitoh
2073 1.1 msaitoh
2074 1.28 msaitoh /************************************************************************
2075 1.28 msaitoh * ixgbe_rx_checksum
2076 1.1 msaitoh *
2077 1.28 msaitoh * Verify that the hardware indicated that the checksum is valid.
2078 1.28 msaitoh * Inform the stack about the status of checksum so that stack
2079 1.28 msaitoh * doesn't spend time verifying the checksum.
2080 1.28 msaitoh ************************************************************************/
2081 1.1 msaitoh static void
2082 1.1 msaitoh ixgbe_rx_checksum(u32 staterr, struct mbuf * mp, u32 ptype,
2083 1.1 msaitoh struct ixgbe_hw_stats *stats)
2084 1.1 msaitoh {
2085 1.28 msaitoh u16 status = (u16)staterr;
2086 1.28 msaitoh u8 errors = (u8)(staterr >> 24);
2087 1.1 msaitoh #if 0
2088 1.28 msaitoh bool sctp = false;
2089 1.1 msaitoh
2090 1.1 msaitoh if ((ptype & IXGBE_RXDADV_PKTTYPE_ETQF) == 0 &&
2091 1.1 msaitoh (ptype & IXGBE_RXDADV_PKTTYPE_SCTP) != 0)
2092 1.8 msaitoh sctp = true;
2093 1.1 msaitoh #endif
2094 1.1 msaitoh
2095 1.8 msaitoh /* IPv4 checksum */
2096 1.1 msaitoh if (status & IXGBE_RXD_STAT_IPCS) {
2097 1.1 msaitoh stats->ipcs.ev_count++;
2098 1.1 msaitoh if (!(errors & IXGBE_RXD_ERR_IPE)) {
2099 1.1 msaitoh /* IP Checksum Good */
2100 1.1 msaitoh mp->m_pkthdr.csum_flags = M_CSUM_IPv4;
2101 1.1 msaitoh } else {
2102 1.1 msaitoh stats->ipcs_bad.ev_count++;
2103 1.1 msaitoh mp->m_pkthdr.csum_flags = M_CSUM_IPv4|M_CSUM_IPv4_BAD;
2104 1.1 msaitoh }
2105 1.1 msaitoh }
2106 1.8 msaitoh /* TCP/UDP/SCTP checksum */
2107 1.1 msaitoh if (status & IXGBE_RXD_STAT_L4CS) {
2108 1.1 msaitoh stats->l4cs.ev_count++;
2109 1.1 msaitoh int type = M_CSUM_TCPv4|M_CSUM_TCPv6|M_CSUM_UDPv4|M_CSUM_UDPv6;
2110 1.1 msaitoh if (!(errors & IXGBE_RXD_ERR_TCPE)) {
2111 1.1 msaitoh mp->m_pkthdr.csum_flags |= type;
2112 1.1 msaitoh } else {
2113 1.1 msaitoh stats->l4cs_bad.ev_count++;
2114 1.1 msaitoh mp->m_pkthdr.csum_flags |= type | M_CSUM_TCP_UDP_BAD;
2115 1.1 msaitoh }
2116 1.1 msaitoh }
2117 1.28 msaitoh } /* ixgbe_rx_checksum */
2118 1.1 msaitoh
2119 1.28 msaitoh /************************************************************************
2120 1.28 msaitoh * ixgbe_dma_malloc
2121 1.28 msaitoh ************************************************************************/
2122 1.1 msaitoh int
2123 1.1 msaitoh ixgbe_dma_malloc(struct adapter *adapter, const bus_size_t size,
2124 1.1 msaitoh struct ixgbe_dma_alloc *dma, const int mapflags)
2125 1.1 msaitoh {
2126 1.1 msaitoh device_t dev = adapter->dev;
2127 1.28 msaitoh int r, rsegs;
2128 1.1 msaitoh
2129 1.28 msaitoh r = ixgbe_dma_tag_create(
2130 1.28 msaitoh /* parent */ adapter->osdep.dmat,
2131 1.28 msaitoh /* alignment */ DBA_ALIGN,
2132 1.28 msaitoh /* bounds */ 0,
2133 1.28 msaitoh /* maxsize */ size,
2134 1.28 msaitoh /* nsegments */ 1,
2135 1.28 msaitoh /* maxsegsize */ size,
2136 1.28 msaitoh /* flags */ BUS_DMA_ALLOCNOW,
2137 1.1 msaitoh &dma->dma_tag);
2138 1.1 msaitoh if (r != 0) {
2139 1.1 msaitoh aprint_error_dev(dev,
2140 1.44 msaitoh "%s: ixgbe_dma_tag_create failed; error %d\n", __func__,
2141 1.44 msaitoh r);
2142 1.1 msaitoh goto fail_0;
2143 1.1 msaitoh }
2144 1.1 msaitoh
2145 1.28 msaitoh r = bus_dmamem_alloc(dma->dma_tag->dt_dmat, size,
2146 1.28 msaitoh dma->dma_tag->dt_alignment, dma->dma_tag->dt_boundary,
2147 1.28 msaitoh &dma->dma_seg, 1, &rsegs, BUS_DMA_NOWAIT);
2148 1.1 msaitoh if (r != 0) {
2149 1.1 msaitoh aprint_error_dev(dev,
2150 1.1 msaitoh "%s: bus_dmamem_alloc failed; error %d\n", __func__, r);
2151 1.1 msaitoh goto fail_1;
2152 1.1 msaitoh }
2153 1.1 msaitoh
2154 1.1 msaitoh r = bus_dmamem_map(dma->dma_tag->dt_dmat, &dma->dma_seg, rsegs,
2155 1.1 msaitoh size, &dma->dma_vaddr, BUS_DMA_NOWAIT);
2156 1.1 msaitoh if (r != 0) {
2157 1.1 msaitoh aprint_error_dev(dev, "%s: bus_dmamem_map failed; error %d\n",
2158 1.1 msaitoh __func__, r);
2159 1.1 msaitoh goto fail_2;
2160 1.1 msaitoh }
2161 1.1 msaitoh
2162 1.1 msaitoh r = ixgbe_dmamap_create(dma->dma_tag, 0, &dma->dma_map);
2163 1.1 msaitoh if (r != 0) {
2164 1.1 msaitoh aprint_error_dev(dev, "%s: bus_dmamem_map failed; error %d\n",
2165 1.1 msaitoh __func__, r);
2166 1.1 msaitoh goto fail_3;
2167 1.1 msaitoh }
2168 1.1 msaitoh
2169 1.28 msaitoh r = bus_dmamap_load(dma->dma_tag->dt_dmat, dma->dma_map,
2170 1.28 msaitoh dma->dma_vaddr, size, NULL, mapflags | BUS_DMA_NOWAIT);
2171 1.1 msaitoh if (r != 0) {
2172 1.1 msaitoh aprint_error_dev(dev, "%s: bus_dmamap_load failed; error %d\n",
2173 1.1 msaitoh __func__, r);
2174 1.1 msaitoh goto fail_4;
2175 1.1 msaitoh }
2176 1.1 msaitoh dma->dma_paddr = dma->dma_map->dm_segs[0].ds_addr;
2177 1.1 msaitoh dma->dma_size = size;
2178 1.1 msaitoh return 0;
2179 1.1 msaitoh fail_4:
2180 1.1 msaitoh ixgbe_dmamap_destroy(dma->dma_tag, dma->dma_map);
2181 1.1 msaitoh fail_3:
2182 1.1 msaitoh bus_dmamem_unmap(dma->dma_tag->dt_dmat, dma->dma_vaddr, size);
2183 1.1 msaitoh fail_2:
2184 1.1 msaitoh bus_dmamem_free(dma->dma_tag->dt_dmat, &dma->dma_seg, rsegs);
2185 1.1 msaitoh fail_1:
2186 1.1 msaitoh ixgbe_dma_tag_destroy(dma->dma_tag);
2187 1.1 msaitoh fail_0:
2188 1.1 msaitoh
2189 1.28 msaitoh return (r);
2190 1.28 msaitoh } /* ixgbe_dma_malloc */
2191 1.28 msaitoh
2192 1.28 msaitoh /************************************************************************
2193 1.28 msaitoh * ixgbe_dma_free
2194 1.28 msaitoh ************************************************************************/
2195 1.3 msaitoh void
2196 1.1 msaitoh ixgbe_dma_free(struct adapter *adapter, struct ixgbe_dma_alloc *dma)
2197 1.1 msaitoh {
2198 1.1 msaitoh bus_dmamap_sync(dma->dma_tag->dt_dmat, dma->dma_map, 0, dma->dma_size,
2199 1.1 msaitoh BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
2200 1.1 msaitoh ixgbe_dmamap_unload(dma->dma_tag, dma->dma_map);
2201 1.1 msaitoh bus_dmamem_free(dma->dma_tag->dt_dmat, &dma->dma_seg, 1);
2202 1.1 msaitoh ixgbe_dma_tag_destroy(dma->dma_tag);
2203 1.28 msaitoh } /* ixgbe_dma_free */
2204 1.1 msaitoh
2205 1.1 msaitoh
2206 1.28 msaitoh /************************************************************************
2207 1.28 msaitoh * ixgbe_allocate_queues
2208 1.1 msaitoh *
2209 1.28 msaitoh * Allocate memory for the transmit and receive rings, and then
2210 1.28 msaitoh * the descriptors associated with each, called only once at attach.
2211 1.28 msaitoh ************************************************************************/
2212 1.1 msaitoh int
2213 1.1 msaitoh ixgbe_allocate_queues(struct adapter *adapter)
2214 1.1 msaitoh {
2215 1.1 msaitoh device_t dev = adapter->dev;
2216 1.1 msaitoh struct ix_queue *que;
2217 1.1 msaitoh struct tx_ring *txr;
2218 1.1 msaitoh struct rx_ring *rxr;
2219 1.28 msaitoh int rsize, tsize, error = IXGBE_SUCCESS;
2220 1.28 msaitoh int txconf = 0, rxconf = 0;
2221 1.1 msaitoh
2222 1.28 msaitoh /* First, allocate the top level queue structs */
2223 1.28 msaitoh adapter->queues = (struct ix_queue *)malloc(sizeof(struct ix_queue) *
2224 1.57 chs adapter->num_queues, M_DEVBUF, M_WAITOK | M_ZERO);
2225 1.1 msaitoh
2226 1.28 msaitoh /* Second, allocate the TX ring struct memory */
2227 1.57 chs adapter->tx_rings = malloc(sizeof(struct tx_ring) *
2228 1.57 chs adapter->num_queues, M_DEVBUF, M_WAITOK | M_ZERO);
2229 1.1 msaitoh
2230 1.28 msaitoh /* Third, allocate the RX ring */
2231 1.28 msaitoh adapter->rx_rings = (struct rx_ring *)malloc(sizeof(struct rx_ring) *
2232 1.57 chs adapter->num_queues, M_DEVBUF, M_WAITOK | M_ZERO);
2233 1.1 msaitoh
2234 1.1 msaitoh /* For the ring itself */
2235 1.28 msaitoh tsize = roundup2(adapter->num_tx_desc * sizeof(union ixgbe_adv_tx_desc),
2236 1.28 msaitoh DBA_ALIGN);
2237 1.1 msaitoh
2238 1.1 msaitoh /*
2239 1.1 msaitoh * Now set up the TX queues, txconf is needed to handle the
2240 1.1 msaitoh * possibility that things fail midcourse and we need to
2241 1.1 msaitoh * undo memory gracefully
2242 1.28 msaitoh */
2243 1.1 msaitoh for (int i = 0; i < adapter->num_queues; i++, txconf++) {
2244 1.1 msaitoh /* Set up some basics */
2245 1.1 msaitoh txr = &adapter->tx_rings[i];
2246 1.1 msaitoh txr->adapter = adapter;
2247 1.28 msaitoh txr->txr_interq = NULL;
2248 1.28 msaitoh /* In case SR-IOV is enabled, align the index properly */
2249 1.5 msaitoh #ifdef PCI_IOV
2250 1.28 msaitoh txr->me = ixgbe_vf_que_index(adapter->iov_mode, adapter->pool,
2251 1.28 msaitoh i);
2252 1.5 msaitoh #else
2253 1.1 msaitoh txr->me = i;
2254 1.5 msaitoh #endif
2255 1.1 msaitoh txr->num_desc = adapter->num_tx_desc;
2256 1.1 msaitoh
2257 1.1 msaitoh /* Initialize the TX side lock */
2258 1.1 msaitoh mutex_init(&txr->tx_mtx, MUTEX_DEFAULT, IPL_NET);
2259 1.1 msaitoh
2260 1.28 msaitoh if (ixgbe_dma_malloc(adapter, tsize, &txr->txdma,
2261 1.28 msaitoh BUS_DMA_NOWAIT)) {
2262 1.1 msaitoh aprint_error_dev(dev,
2263 1.1 msaitoh "Unable to allocate TX Descriptor memory\n");
2264 1.1 msaitoh error = ENOMEM;
2265 1.1 msaitoh goto err_tx_desc;
2266 1.1 msaitoh }
2267 1.1 msaitoh txr->tx_base = (union ixgbe_adv_tx_desc *)txr->txdma.dma_vaddr;
2268 1.1 msaitoh bzero((void *)txr->tx_base, tsize);
2269 1.1 msaitoh
2270 1.28 msaitoh /* Now allocate transmit buffers for the ring */
2271 1.28 msaitoh if (ixgbe_allocate_transmit_buffers(txr)) {
2272 1.1 msaitoh aprint_error_dev(dev,
2273 1.1 msaitoh "Critical Failure setting up transmit buffers\n");
2274 1.1 msaitoh error = ENOMEM;
2275 1.1 msaitoh goto err_tx_desc;
2276 1.1 msaitoh }
2277 1.28 msaitoh if (!(adapter->feat_en & IXGBE_FEATURE_LEGACY_TX)) {
2278 1.28 msaitoh /* Allocate a buf ring */
2279 1.28 msaitoh txr->txr_interq = pcq_create(IXGBE_BR_SIZE, KM_SLEEP);
2280 1.28 msaitoh if (txr->txr_interq == NULL) {
2281 1.28 msaitoh aprint_error_dev(dev,
2282 1.28 msaitoh "Critical Failure setting up buf ring\n");
2283 1.28 msaitoh error = ENOMEM;
2284 1.28 msaitoh goto err_tx_desc;
2285 1.28 msaitoh }
2286 1.28 msaitoh }
2287 1.1 msaitoh }
2288 1.1 msaitoh
2289 1.1 msaitoh /*
2290 1.1 msaitoh * Next the RX queues...
2291 1.53 msaitoh */
2292 1.28 msaitoh rsize = roundup2(adapter->num_rx_desc * sizeof(union ixgbe_adv_rx_desc),
2293 1.28 msaitoh DBA_ALIGN);
2294 1.1 msaitoh for (int i = 0; i < adapter->num_queues; i++, rxconf++) {
2295 1.1 msaitoh rxr = &adapter->rx_rings[i];
2296 1.1 msaitoh /* Set up some basics */
2297 1.1 msaitoh rxr->adapter = adapter;
2298 1.5 msaitoh #ifdef PCI_IOV
2299 1.28 msaitoh /* In case SR-IOV is enabled, align the index properly */
2300 1.28 msaitoh rxr->me = ixgbe_vf_que_index(adapter->iov_mode, adapter->pool,
2301 1.28 msaitoh i);
2302 1.5 msaitoh #else
2303 1.1 msaitoh rxr->me = i;
2304 1.5 msaitoh #endif
2305 1.1 msaitoh rxr->num_desc = adapter->num_rx_desc;
2306 1.1 msaitoh
2307 1.1 msaitoh /* Initialize the RX side lock */
2308 1.1 msaitoh mutex_init(&rxr->rx_mtx, MUTEX_DEFAULT, IPL_NET);
2309 1.1 msaitoh
2310 1.28 msaitoh if (ixgbe_dma_malloc(adapter, rsize, &rxr->rxdma,
2311 1.28 msaitoh BUS_DMA_NOWAIT)) {
2312 1.1 msaitoh aprint_error_dev(dev,
2313 1.1 msaitoh "Unable to allocate RxDescriptor memory\n");
2314 1.1 msaitoh error = ENOMEM;
2315 1.1 msaitoh goto err_rx_desc;
2316 1.1 msaitoh }
2317 1.1 msaitoh rxr->rx_base = (union ixgbe_adv_rx_desc *)rxr->rxdma.dma_vaddr;
2318 1.1 msaitoh bzero((void *)rxr->rx_base, rsize);
2319 1.1 msaitoh
2320 1.28 msaitoh /* Allocate receive buffers for the ring */
2321 1.1 msaitoh if (ixgbe_allocate_receive_buffers(rxr)) {
2322 1.1 msaitoh aprint_error_dev(dev,
2323 1.1 msaitoh "Critical Failure setting up receive buffers\n");
2324 1.1 msaitoh error = ENOMEM;
2325 1.1 msaitoh goto err_rx_desc;
2326 1.1 msaitoh }
2327 1.1 msaitoh }
2328 1.1 msaitoh
2329 1.1 msaitoh /*
2330 1.28 msaitoh * Finally set up the queue holding structs
2331 1.28 msaitoh */
2332 1.1 msaitoh for (int i = 0; i < adapter->num_queues; i++) {
2333 1.1 msaitoh que = &adapter->queues[i];
2334 1.1 msaitoh que->adapter = adapter;
2335 1.3 msaitoh que->me = i;
2336 1.1 msaitoh que->txr = &adapter->tx_rings[i];
2337 1.1 msaitoh que->rxr = &adapter->rx_rings[i];
2338 1.33 knakahar
2339 1.37 knakahar mutex_init(&que->dc_mtx, MUTEX_DEFAULT, IPL_NET);
2340 1.37 knakahar que->disabled_count = 0;
2341 1.1 msaitoh }
2342 1.1 msaitoh
2343 1.1 msaitoh return (0);
2344 1.1 msaitoh
2345 1.1 msaitoh err_rx_desc:
2346 1.1 msaitoh for (rxr = adapter->rx_rings; rxconf > 0; rxr++, rxconf--)
2347 1.1 msaitoh ixgbe_dma_free(adapter, &rxr->rxdma);
2348 1.1 msaitoh err_tx_desc:
2349 1.1 msaitoh for (txr = adapter->tx_rings; txconf > 0; txr++, txconf--)
2350 1.1 msaitoh ixgbe_dma_free(adapter, &txr->txdma);
2351 1.1 msaitoh free(adapter->rx_rings, M_DEVBUF);
2352 1.1 msaitoh free(adapter->tx_rings, M_DEVBUF);
2353 1.1 msaitoh free(adapter->queues, M_DEVBUF);
2354 1.1 msaitoh return (error);
2355 1.28 msaitoh } /* ixgbe_allocate_queues */
2356 1.60 msaitoh
2357 1.60 msaitoh /************************************************************************
2358 1.60 msaitoh * ixgbe_free_queues
2359 1.60 msaitoh *
2360 1.60 msaitoh * Free descriptors for the transmit and receive rings, and then
2361 1.60 msaitoh * the memory associated with each.
2362 1.60 msaitoh ************************************************************************/
2363 1.60 msaitoh void
2364 1.60 msaitoh ixgbe_free_queues(struct adapter *adapter)
2365 1.60 msaitoh {
2366 1.60 msaitoh struct ix_queue *que;
2367 1.60 msaitoh int i;
2368 1.60 msaitoh
2369 1.60 msaitoh ixgbe_free_transmit_structures(adapter);
2370 1.60 msaitoh ixgbe_free_receive_structures(adapter);
2371 1.60 msaitoh for (i = 0; i < adapter->num_queues; i++) {
2372 1.60 msaitoh que = &adapter->queues[i];
2373 1.60 msaitoh mutex_destroy(&que->dc_mtx);
2374 1.60 msaitoh }
2375 1.60 msaitoh free(adapter->queues, M_DEVBUF);
2376 1.60 msaitoh } /* ixgbe_free_queues */
2377