6c5128665e3928a7415a21063ce7d77c2986f4ca
[dpdk.git] / lib / librte_vhost / virtio_net.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2010-2016 Intel Corporation
3  */
4
5 #include <stdint.h>
6 #include <stdbool.h>
7 #include <linux/virtio_net.h>
8
9 #include <rte_mbuf.h>
10 #include <rte_memcpy.h>
11 #include <rte_ether.h>
12 #include <rte_ip.h>
13 #include <rte_vhost.h>
14 #include <rte_tcp.h>
15 #include <rte_udp.h>
16 #include <rte_sctp.h>
17 #include <rte_arp.h>
18 #include <rte_spinlock.h>
19 #include <rte_malloc.h>
20 #include <rte_vhost_async.h>
21
22 #include "iotlb.h"
23 #include "vhost.h"
24
25 #define MAX_BATCH_LEN 256
26
27 #define VHOST_ASYNC_BATCH_THRESHOLD 32
28
29 static  __rte_always_inline bool
30 rxvq_is_mergeable(struct virtio_net *dev)
31 {
32         return dev->features & (1ULL << VIRTIO_NET_F_MRG_RXBUF);
33 }
34
35 static  __rte_always_inline bool
36 virtio_net_is_inorder(struct virtio_net *dev)
37 {
38         return dev->features & (1ULL << VIRTIO_F_IN_ORDER);
39 }
40
41 static bool
42 is_valid_virt_queue_idx(uint32_t idx, int is_tx, uint32_t nr_vring)
43 {
44         return (is_tx ^ (idx & 1)) == 0 && idx < nr_vring;
45 }
46
47 static inline void
48 do_data_copy_enqueue(struct virtio_net *dev, struct vhost_virtqueue *vq)
49 {
50         struct batch_copy_elem *elem = vq->batch_copy_elems;
51         uint16_t count = vq->batch_copy_nb_elems;
52         int i;
53
54         for (i = 0; i < count; i++) {
55                 rte_memcpy(elem[i].dst, elem[i].src, elem[i].len);
56                 vhost_log_cache_write_iova(dev, vq, elem[i].log_addr,
57                                            elem[i].len);
58                 PRINT_PACKET(dev, (uintptr_t)elem[i].dst, elem[i].len, 0);
59         }
60
61         vq->batch_copy_nb_elems = 0;
62 }
63
64 static inline void
65 do_data_copy_dequeue(struct vhost_virtqueue *vq)
66 {
67         struct batch_copy_elem *elem = vq->batch_copy_elems;
68         uint16_t count = vq->batch_copy_nb_elems;
69         int i;
70
71         for (i = 0; i < count; i++)
72                 rte_memcpy(elem[i].dst, elem[i].src, elem[i].len);
73
74         vq->batch_copy_nb_elems = 0;
75 }
76
77 static __rte_always_inline void
78 do_flush_shadow_used_ring_split(struct virtio_net *dev,
79                         struct vhost_virtqueue *vq,
80                         uint16_t to, uint16_t from, uint16_t size)
81 {
82         rte_memcpy(&vq->used->ring[to],
83                         &vq->shadow_used_split[from],
84                         size * sizeof(struct vring_used_elem));
85         vhost_log_cache_used_vring(dev, vq,
86                         offsetof(struct vring_used, ring[to]),
87                         size * sizeof(struct vring_used_elem));
88 }
89
90 static __rte_always_inline void
91 flush_shadow_used_ring_split(struct virtio_net *dev, struct vhost_virtqueue *vq)
92 {
93         uint16_t used_idx = vq->last_used_idx & (vq->size - 1);
94
95         if (used_idx + vq->shadow_used_idx <= vq->size) {
96                 do_flush_shadow_used_ring_split(dev, vq, used_idx, 0,
97                                           vq->shadow_used_idx);
98         } else {
99                 uint16_t size;
100
101                 /* update used ring interval [used_idx, vq->size] */
102                 size = vq->size - used_idx;
103                 do_flush_shadow_used_ring_split(dev, vq, used_idx, 0, size);
104
105                 /* update the left half used ring interval [0, left_size] */
106                 do_flush_shadow_used_ring_split(dev, vq, 0, size,
107                                           vq->shadow_used_idx - size);
108         }
109         vq->last_used_idx += vq->shadow_used_idx;
110
111         vhost_log_cache_sync(dev, vq);
112
113         __atomic_add_fetch(&vq->used->idx, vq->shadow_used_idx,
114                            __ATOMIC_RELEASE);
115         vq->shadow_used_idx = 0;
116         vhost_log_used_vring(dev, vq, offsetof(struct vring_used, idx),
117                 sizeof(vq->used->idx));
118 }
119
120 static __rte_always_inline void
121 async_flush_shadow_used_ring_split(struct virtio_net *dev,
122         struct vhost_virtqueue *vq)
123 {
124         uint16_t used_idx = vq->last_used_idx & (vq->size - 1);
125
126         if (used_idx + vq->shadow_used_idx <= vq->size) {
127                 do_flush_shadow_used_ring_split(dev, vq, used_idx, 0,
128                                           vq->shadow_used_idx);
129         } else {
130                 uint16_t size;
131
132                 /* update used ring interval [used_idx, vq->size] */
133                 size = vq->size - used_idx;
134                 do_flush_shadow_used_ring_split(dev, vq, used_idx, 0, size);
135
136                 /* update the left half used ring interval [0, left_size] */
137                 do_flush_shadow_used_ring_split(dev, vq, 0, size,
138                                           vq->shadow_used_idx - size);
139         }
140
141         vq->last_used_idx += vq->shadow_used_idx;
142         vq->shadow_used_idx = 0;
143 }
144
145 static __rte_always_inline void
146 update_shadow_used_ring_split(struct vhost_virtqueue *vq,
147                          uint16_t desc_idx, uint32_t len)
148 {
149         uint16_t i = vq->shadow_used_idx++;
150
151         vq->shadow_used_split[i].id  = desc_idx;
152         vq->shadow_used_split[i].len = len;
153 }
154
155 static __rte_always_inline void
156 vhost_flush_enqueue_shadow_packed(struct virtio_net *dev,
157                                   struct vhost_virtqueue *vq)
158 {
159         int i;
160         uint16_t used_idx = vq->last_used_idx;
161         uint16_t head_idx = vq->last_used_idx;
162         uint16_t head_flags = 0;
163
164         /* Split loop in two to save memory barriers */
165         for (i = 0; i < vq->shadow_used_idx; i++) {
166                 vq->desc_packed[used_idx].id = vq->shadow_used_packed[i].id;
167                 vq->desc_packed[used_idx].len = vq->shadow_used_packed[i].len;
168
169                 used_idx += vq->shadow_used_packed[i].count;
170                 if (used_idx >= vq->size)
171                         used_idx -= vq->size;
172         }
173
174         rte_smp_wmb();
175
176         for (i = 0; i < vq->shadow_used_idx; i++) {
177                 uint16_t flags;
178
179                 if (vq->shadow_used_packed[i].len)
180                         flags = VRING_DESC_F_WRITE;
181                 else
182                         flags = 0;
183
184                 if (vq->used_wrap_counter) {
185                         flags |= VRING_DESC_F_USED;
186                         flags |= VRING_DESC_F_AVAIL;
187                 } else {
188                         flags &= ~VRING_DESC_F_USED;
189                         flags &= ~VRING_DESC_F_AVAIL;
190                 }
191
192                 if (i > 0) {
193                         vq->desc_packed[vq->last_used_idx].flags = flags;
194
195                         vhost_log_cache_used_vring(dev, vq,
196                                         vq->last_used_idx *
197                                         sizeof(struct vring_packed_desc),
198                                         sizeof(struct vring_packed_desc));
199                 } else {
200                         head_idx = vq->last_used_idx;
201                         head_flags = flags;
202                 }
203
204                 vq_inc_last_used_packed(vq, vq->shadow_used_packed[i].count);
205         }
206
207         vq->desc_packed[head_idx].flags = head_flags;
208
209         vhost_log_cache_used_vring(dev, vq,
210                                 head_idx *
211                                 sizeof(struct vring_packed_desc),
212                                 sizeof(struct vring_packed_desc));
213
214         vq->shadow_used_idx = 0;
215         vhost_log_cache_sync(dev, vq);
216 }
217
218 static __rte_always_inline void
219 vhost_flush_dequeue_shadow_packed(struct virtio_net *dev,
220                                   struct vhost_virtqueue *vq)
221 {
222         struct vring_used_elem_packed *used_elem = &vq->shadow_used_packed[0];
223
224         vq->desc_packed[vq->shadow_last_used_idx].id = used_elem->id;
225         rte_smp_wmb();
226         vq->desc_packed[vq->shadow_last_used_idx].flags = used_elem->flags;
227
228         vhost_log_cache_used_vring(dev, vq, vq->shadow_last_used_idx *
229                                    sizeof(struct vring_packed_desc),
230                                    sizeof(struct vring_packed_desc));
231         vq->shadow_used_idx = 0;
232         vhost_log_cache_sync(dev, vq);
233 }
234
235 static __rte_always_inline void
236 vhost_flush_enqueue_batch_packed(struct virtio_net *dev,
237                                  struct vhost_virtqueue *vq,
238                                  uint64_t *lens,
239                                  uint16_t *ids)
240 {
241         uint16_t i;
242         uint16_t flags;
243
244         if (vq->shadow_used_idx) {
245                 do_data_copy_enqueue(dev, vq);
246                 vhost_flush_enqueue_shadow_packed(dev, vq);
247         }
248
249         flags = PACKED_DESC_ENQUEUE_USED_FLAG(vq->used_wrap_counter);
250
251         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
252                 vq->desc_packed[vq->last_used_idx + i].id = ids[i];
253                 vq->desc_packed[vq->last_used_idx + i].len = lens[i];
254         }
255
256         rte_smp_wmb();
257
258         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
259                 vq->desc_packed[vq->last_used_idx + i].flags = flags;
260
261         vhost_log_cache_used_vring(dev, vq, vq->last_used_idx *
262                                    sizeof(struct vring_packed_desc),
263                                    sizeof(struct vring_packed_desc) *
264                                    PACKED_BATCH_SIZE);
265         vhost_log_cache_sync(dev, vq);
266
267         vq_inc_last_used_packed(vq, PACKED_BATCH_SIZE);
268 }
269
270 static __rte_always_inline void
271 vhost_shadow_dequeue_batch_packed_inorder(struct vhost_virtqueue *vq,
272                                           uint16_t id)
273 {
274         vq->shadow_used_packed[0].id = id;
275
276         if (!vq->shadow_used_idx) {
277                 vq->shadow_last_used_idx = vq->last_used_idx;
278                 vq->shadow_used_packed[0].flags =
279                         PACKED_DESC_DEQUEUE_USED_FLAG(vq->used_wrap_counter);
280                 vq->shadow_used_packed[0].len = 0;
281                 vq->shadow_used_packed[0].count = 1;
282                 vq->shadow_used_idx++;
283         }
284
285         vq_inc_last_used_packed(vq, PACKED_BATCH_SIZE);
286 }
287
288 static __rte_always_inline void
289 vhost_shadow_dequeue_batch_packed(struct virtio_net *dev,
290                                   struct vhost_virtqueue *vq,
291                                   uint16_t *ids)
292 {
293         uint16_t flags;
294         uint16_t i;
295         uint16_t begin;
296
297         flags = PACKED_DESC_DEQUEUE_USED_FLAG(vq->used_wrap_counter);
298
299         if (!vq->shadow_used_idx) {
300                 vq->shadow_last_used_idx = vq->last_used_idx;
301                 vq->shadow_used_packed[0].id  = ids[0];
302                 vq->shadow_used_packed[0].len = 0;
303                 vq->shadow_used_packed[0].count = 1;
304                 vq->shadow_used_packed[0].flags = flags;
305                 vq->shadow_used_idx++;
306                 begin = 1;
307         } else
308                 begin = 0;
309
310         vhost_for_each_try_unroll(i, begin, PACKED_BATCH_SIZE) {
311                 vq->desc_packed[vq->last_used_idx + i].id = ids[i];
312                 vq->desc_packed[vq->last_used_idx + i].len = 0;
313         }
314
315         rte_smp_wmb();
316         vhost_for_each_try_unroll(i, begin, PACKED_BATCH_SIZE)
317                 vq->desc_packed[vq->last_used_idx + i].flags = flags;
318
319         vhost_log_cache_used_vring(dev, vq, vq->last_used_idx *
320                                    sizeof(struct vring_packed_desc),
321                                    sizeof(struct vring_packed_desc) *
322                                    PACKED_BATCH_SIZE);
323         vhost_log_cache_sync(dev, vq);
324
325         vq_inc_last_used_packed(vq, PACKED_BATCH_SIZE);
326 }
327
328 static __rte_always_inline void
329 vhost_shadow_dequeue_single_packed(struct vhost_virtqueue *vq,
330                                    uint16_t buf_id,
331                                    uint16_t count)
332 {
333         uint16_t flags;
334
335         flags = vq->desc_packed[vq->last_used_idx].flags;
336         if (vq->used_wrap_counter) {
337                 flags |= VRING_DESC_F_USED;
338                 flags |= VRING_DESC_F_AVAIL;
339         } else {
340                 flags &= ~VRING_DESC_F_USED;
341                 flags &= ~VRING_DESC_F_AVAIL;
342         }
343
344         if (!vq->shadow_used_idx) {
345                 vq->shadow_last_used_idx = vq->last_used_idx;
346
347                 vq->shadow_used_packed[0].id  = buf_id;
348                 vq->shadow_used_packed[0].len = 0;
349                 vq->shadow_used_packed[0].flags = flags;
350                 vq->shadow_used_idx++;
351         } else {
352                 vq->desc_packed[vq->last_used_idx].id = buf_id;
353                 vq->desc_packed[vq->last_used_idx].len = 0;
354                 vq->desc_packed[vq->last_used_idx].flags = flags;
355         }
356
357         vq_inc_last_used_packed(vq, count);
358 }
359
360 static __rte_always_inline void
361 vhost_shadow_dequeue_single_packed_inorder(struct vhost_virtqueue *vq,
362                                            uint16_t buf_id,
363                                            uint16_t count)
364 {
365         uint16_t flags;
366
367         vq->shadow_used_packed[0].id = buf_id;
368
369         flags = vq->desc_packed[vq->last_used_idx].flags;
370         if (vq->used_wrap_counter) {
371                 flags |= VRING_DESC_F_USED;
372                 flags |= VRING_DESC_F_AVAIL;
373         } else {
374                 flags &= ~VRING_DESC_F_USED;
375                 flags &= ~VRING_DESC_F_AVAIL;
376         }
377
378         if (!vq->shadow_used_idx) {
379                 vq->shadow_last_used_idx = vq->last_used_idx;
380                 vq->shadow_used_packed[0].len = 0;
381                 vq->shadow_used_packed[0].flags = flags;
382                 vq->shadow_used_idx++;
383         }
384
385         vq_inc_last_used_packed(vq, count);
386 }
387
388 static __rte_always_inline void
389 vhost_shadow_enqueue_single_packed(struct virtio_net *dev,
390                                    struct vhost_virtqueue *vq,
391                                    uint32_t len[],
392                                    uint16_t id[],
393                                    uint16_t count[],
394                                    uint16_t num_buffers)
395 {
396         uint16_t i;
397         for (i = 0; i < num_buffers; i++) {
398                 /* enqueue shadow flush action aligned with batch num */
399                 if (!vq->shadow_used_idx)
400                         vq->shadow_aligned_idx = vq->last_used_idx &
401                                 PACKED_BATCH_MASK;
402                 vq->shadow_used_packed[vq->shadow_used_idx].id  = id[i];
403                 vq->shadow_used_packed[vq->shadow_used_idx].len = len[i];
404                 vq->shadow_used_packed[vq->shadow_used_idx].count = count[i];
405                 vq->shadow_aligned_idx += count[i];
406                 vq->shadow_used_idx++;
407         }
408
409         if (vq->shadow_aligned_idx >= PACKED_BATCH_SIZE) {
410                 do_data_copy_enqueue(dev, vq);
411                 vhost_flush_enqueue_shadow_packed(dev, vq);
412         }
413 }
414
415 /* avoid write operation when necessary, to lessen cache issues */
416 #define ASSIGN_UNLESS_EQUAL(var, val) do {      \
417         if ((var) != (val))                     \
418                 (var) = (val);                  \
419 } while (0)
420
421 static __rte_always_inline void
422 virtio_enqueue_offload(struct rte_mbuf *m_buf, struct virtio_net_hdr *net_hdr)
423 {
424         uint64_t csum_l4 = m_buf->ol_flags & PKT_TX_L4_MASK;
425
426         if (m_buf->ol_flags & PKT_TX_TCP_SEG)
427                 csum_l4 |= PKT_TX_TCP_CKSUM;
428
429         if (csum_l4) {
430                 net_hdr->flags = VIRTIO_NET_HDR_F_NEEDS_CSUM;
431                 net_hdr->csum_start = m_buf->l2_len + m_buf->l3_len;
432
433                 switch (csum_l4) {
434                 case PKT_TX_TCP_CKSUM:
435                         net_hdr->csum_offset = (offsetof(struct rte_tcp_hdr,
436                                                 cksum));
437                         break;
438                 case PKT_TX_UDP_CKSUM:
439                         net_hdr->csum_offset = (offsetof(struct rte_udp_hdr,
440                                                 dgram_cksum));
441                         break;
442                 case PKT_TX_SCTP_CKSUM:
443                         net_hdr->csum_offset = (offsetof(struct rte_sctp_hdr,
444                                                 cksum));
445                         break;
446                 }
447         } else {
448                 ASSIGN_UNLESS_EQUAL(net_hdr->csum_start, 0);
449                 ASSIGN_UNLESS_EQUAL(net_hdr->csum_offset, 0);
450                 ASSIGN_UNLESS_EQUAL(net_hdr->flags, 0);
451         }
452
453         /* IP cksum verification cannot be bypassed, then calculate here */
454         if (m_buf->ol_flags & PKT_TX_IP_CKSUM) {
455                 struct rte_ipv4_hdr *ipv4_hdr;
456
457                 ipv4_hdr = rte_pktmbuf_mtod_offset(m_buf, struct rte_ipv4_hdr *,
458                                                    m_buf->l2_len);
459                 ipv4_hdr->hdr_checksum = 0;
460                 ipv4_hdr->hdr_checksum = rte_ipv4_cksum(ipv4_hdr);
461         }
462
463         if (m_buf->ol_flags & PKT_TX_TCP_SEG) {
464                 if (m_buf->ol_flags & PKT_TX_IPV4)
465                         net_hdr->gso_type = VIRTIO_NET_HDR_GSO_TCPV4;
466                 else
467                         net_hdr->gso_type = VIRTIO_NET_HDR_GSO_TCPV6;
468                 net_hdr->gso_size = m_buf->tso_segsz;
469                 net_hdr->hdr_len = m_buf->l2_len + m_buf->l3_len
470                                         + m_buf->l4_len;
471         } else if (m_buf->ol_flags & PKT_TX_UDP_SEG) {
472                 net_hdr->gso_type = VIRTIO_NET_HDR_GSO_UDP;
473                 net_hdr->gso_size = m_buf->tso_segsz;
474                 net_hdr->hdr_len = m_buf->l2_len + m_buf->l3_len +
475                         m_buf->l4_len;
476         } else {
477                 ASSIGN_UNLESS_EQUAL(net_hdr->gso_type, 0);
478                 ASSIGN_UNLESS_EQUAL(net_hdr->gso_size, 0);
479                 ASSIGN_UNLESS_EQUAL(net_hdr->hdr_len, 0);
480         }
481 }
482
483 static __rte_always_inline int
484 map_one_desc(struct virtio_net *dev, struct vhost_virtqueue *vq,
485                 struct buf_vector *buf_vec, uint16_t *vec_idx,
486                 uint64_t desc_iova, uint64_t desc_len, uint8_t perm)
487 {
488         uint16_t vec_id = *vec_idx;
489
490         while (desc_len) {
491                 uint64_t desc_addr;
492                 uint64_t desc_chunck_len = desc_len;
493
494                 if (unlikely(vec_id >= BUF_VECTOR_MAX))
495                         return -1;
496
497                 desc_addr = vhost_iova_to_vva(dev, vq,
498                                 desc_iova,
499                                 &desc_chunck_len,
500                                 perm);
501                 if (unlikely(!desc_addr))
502                         return -1;
503
504                 rte_prefetch0((void *)(uintptr_t)desc_addr);
505
506                 buf_vec[vec_id].buf_iova = desc_iova;
507                 buf_vec[vec_id].buf_addr = desc_addr;
508                 buf_vec[vec_id].buf_len  = desc_chunck_len;
509
510                 desc_len -= desc_chunck_len;
511                 desc_iova += desc_chunck_len;
512                 vec_id++;
513         }
514         *vec_idx = vec_id;
515
516         return 0;
517 }
518
519 static __rte_always_inline int
520 fill_vec_buf_split(struct virtio_net *dev, struct vhost_virtqueue *vq,
521                          uint32_t avail_idx, uint16_t *vec_idx,
522                          struct buf_vector *buf_vec, uint16_t *desc_chain_head,
523                          uint32_t *desc_chain_len, uint8_t perm)
524 {
525         uint16_t idx = vq->avail->ring[avail_idx & (vq->size - 1)];
526         uint16_t vec_id = *vec_idx;
527         uint32_t len    = 0;
528         uint64_t dlen;
529         uint32_t nr_descs = vq->size;
530         uint32_t cnt    = 0;
531         struct vring_desc *descs = vq->desc;
532         struct vring_desc *idesc = NULL;
533
534         if (unlikely(idx >= vq->size))
535                 return -1;
536
537         *desc_chain_head = idx;
538
539         if (vq->desc[idx].flags & VRING_DESC_F_INDIRECT) {
540                 dlen = vq->desc[idx].len;
541                 nr_descs = dlen / sizeof(struct vring_desc);
542                 if (unlikely(nr_descs > vq->size))
543                         return -1;
544
545                 descs = (struct vring_desc *)(uintptr_t)
546                         vhost_iova_to_vva(dev, vq, vq->desc[idx].addr,
547                                                 &dlen,
548                                                 VHOST_ACCESS_RO);
549                 if (unlikely(!descs))
550                         return -1;
551
552                 if (unlikely(dlen < vq->desc[idx].len)) {
553                         /*
554                          * The indirect desc table is not contiguous
555                          * in process VA space, we have to copy it.
556                          */
557                         idesc = vhost_alloc_copy_ind_table(dev, vq,
558                                         vq->desc[idx].addr, vq->desc[idx].len);
559                         if (unlikely(!idesc))
560                                 return -1;
561
562                         descs = idesc;
563                 }
564
565                 idx = 0;
566         }
567
568         while (1) {
569                 if (unlikely(idx >= nr_descs || cnt++ >= nr_descs)) {
570                         free_ind_table(idesc);
571                         return -1;
572                 }
573
574                 len += descs[idx].len;
575
576                 if (unlikely(map_one_desc(dev, vq, buf_vec, &vec_id,
577                                                 descs[idx].addr, descs[idx].len,
578                                                 perm))) {
579                         free_ind_table(idesc);
580                         return -1;
581                 }
582
583                 if ((descs[idx].flags & VRING_DESC_F_NEXT) == 0)
584                         break;
585
586                 idx = descs[idx].next;
587         }
588
589         *desc_chain_len = len;
590         *vec_idx = vec_id;
591
592         if (unlikely(!!idesc))
593                 free_ind_table(idesc);
594
595         return 0;
596 }
597
598 /*
599  * Returns -1 on fail, 0 on success
600  */
601 static inline int
602 reserve_avail_buf_split(struct virtio_net *dev, struct vhost_virtqueue *vq,
603                                 uint32_t size, struct buf_vector *buf_vec,
604                                 uint16_t *num_buffers, uint16_t avail_head,
605                                 uint16_t *nr_vec)
606 {
607         uint16_t cur_idx;
608         uint16_t vec_idx = 0;
609         uint16_t max_tries, tries = 0;
610
611         uint16_t head_idx = 0;
612         uint32_t len = 0;
613
614         *num_buffers = 0;
615         cur_idx  = vq->last_avail_idx;
616
617         if (rxvq_is_mergeable(dev))
618                 max_tries = vq->size - 1;
619         else
620                 max_tries = 1;
621
622         while (size > 0) {
623                 if (unlikely(cur_idx == avail_head))
624                         return -1;
625                 /*
626                  * if we tried all available ring items, and still
627                  * can't get enough buf, it means something abnormal
628                  * happened.
629                  */
630                 if (unlikely(++tries > max_tries))
631                         return -1;
632
633                 if (unlikely(fill_vec_buf_split(dev, vq, cur_idx,
634                                                 &vec_idx, buf_vec,
635                                                 &head_idx, &len,
636                                                 VHOST_ACCESS_RW) < 0))
637                         return -1;
638                 len = RTE_MIN(len, size);
639                 update_shadow_used_ring_split(vq, head_idx, len);
640                 size -= len;
641
642                 cur_idx++;
643                 *num_buffers += 1;
644         }
645
646         *nr_vec = vec_idx;
647
648         return 0;
649 }
650
651 static __rte_always_inline int
652 fill_vec_buf_packed_indirect(struct virtio_net *dev,
653                         struct vhost_virtqueue *vq,
654                         struct vring_packed_desc *desc, uint16_t *vec_idx,
655                         struct buf_vector *buf_vec, uint32_t *len, uint8_t perm)
656 {
657         uint16_t i;
658         uint32_t nr_descs;
659         uint16_t vec_id = *vec_idx;
660         uint64_t dlen;
661         struct vring_packed_desc *descs, *idescs = NULL;
662
663         dlen = desc->len;
664         descs = (struct vring_packed_desc *)(uintptr_t)
665                 vhost_iova_to_vva(dev, vq, desc->addr, &dlen, VHOST_ACCESS_RO);
666         if (unlikely(!descs))
667                 return -1;
668
669         if (unlikely(dlen < desc->len)) {
670                 /*
671                  * The indirect desc table is not contiguous
672                  * in process VA space, we have to copy it.
673                  */
674                 idescs = vhost_alloc_copy_ind_table(dev,
675                                 vq, desc->addr, desc->len);
676                 if (unlikely(!idescs))
677                         return -1;
678
679                 descs = idescs;
680         }
681
682         nr_descs =  desc->len / sizeof(struct vring_packed_desc);
683         if (unlikely(nr_descs >= vq->size)) {
684                 free_ind_table(idescs);
685                 return -1;
686         }
687
688         for (i = 0; i < nr_descs; i++) {
689                 if (unlikely(vec_id >= BUF_VECTOR_MAX)) {
690                         free_ind_table(idescs);
691                         return -1;
692                 }
693
694                 *len += descs[i].len;
695                 if (unlikely(map_one_desc(dev, vq, buf_vec, &vec_id,
696                                                 descs[i].addr, descs[i].len,
697                                                 perm)))
698                         return -1;
699         }
700         *vec_idx = vec_id;
701
702         if (unlikely(!!idescs))
703                 free_ind_table(idescs);
704
705         return 0;
706 }
707
708 static __rte_always_inline int
709 fill_vec_buf_packed(struct virtio_net *dev, struct vhost_virtqueue *vq,
710                                 uint16_t avail_idx, uint16_t *desc_count,
711                                 struct buf_vector *buf_vec, uint16_t *vec_idx,
712                                 uint16_t *buf_id, uint32_t *len, uint8_t perm)
713 {
714         bool wrap_counter = vq->avail_wrap_counter;
715         struct vring_packed_desc *descs = vq->desc_packed;
716         uint16_t vec_id = *vec_idx;
717
718         if (avail_idx < vq->last_avail_idx)
719                 wrap_counter ^= 1;
720
721         /*
722          * Perform a load-acquire barrier in desc_is_avail to
723          * enforce the ordering between desc flags and desc
724          * content.
725          */
726         if (unlikely(!desc_is_avail(&descs[avail_idx], wrap_counter)))
727                 return -1;
728
729         *desc_count = 0;
730         *len = 0;
731
732         while (1) {
733                 if (unlikely(vec_id >= BUF_VECTOR_MAX))
734                         return -1;
735
736                 if (unlikely(*desc_count >= vq->size))
737                         return -1;
738
739                 *desc_count += 1;
740                 *buf_id = descs[avail_idx].id;
741
742                 if (descs[avail_idx].flags & VRING_DESC_F_INDIRECT) {
743                         if (unlikely(fill_vec_buf_packed_indirect(dev, vq,
744                                                         &descs[avail_idx],
745                                                         &vec_id, buf_vec,
746                                                         len, perm) < 0))
747                                 return -1;
748                 } else {
749                         *len += descs[avail_idx].len;
750
751                         if (unlikely(map_one_desc(dev, vq, buf_vec, &vec_id,
752                                                         descs[avail_idx].addr,
753                                                         descs[avail_idx].len,
754                                                         perm)))
755                                 return -1;
756                 }
757
758                 if ((descs[avail_idx].flags & VRING_DESC_F_NEXT) == 0)
759                         break;
760
761                 if (++avail_idx >= vq->size) {
762                         avail_idx -= vq->size;
763                         wrap_counter ^= 1;
764                 }
765         }
766
767         *vec_idx = vec_id;
768
769         return 0;
770 }
771
772 static __rte_noinline void
773 copy_vnet_hdr_to_desc(struct virtio_net *dev, struct vhost_virtqueue *vq,
774                 struct buf_vector *buf_vec,
775                 struct virtio_net_hdr_mrg_rxbuf *hdr)
776 {
777         uint64_t len;
778         uint64_t remain = dev->vhost_hlen;
779         uint64_t src = (uint64_t)(uintptr_t)hdr, dst;
780         uint64_t iova = buf_vec->buf_iova;
781
782         while (remain) {
783                 len = RTE_MIN(remain,
784                                 buf_vec->buf_len);
785                 dst = buf_vec->buf_addr;
786                 rte_memcpy((void *)(uintptr_t)dst,
787                                 (void *)(uintptr_t)src,
788                                 len);
789
790                 PRINT_PACKET(dev, (uintptr_t)dst,
791                                 (uint32_t)len, 0);
792                 vhost_log_cache_write_iova(dev, vq,
793                                 iova, len);
794
795                 remain -= len;
796                 iova += len;
797                 src += len;
798                 buf_vec++;
799         }
800 }
801
802 static __rte_always_inline int
803 copy_mbuf_to_desc(struct virtio_net *dev, struct vhost_virtqueue *vq,
804                             struct rte_mbuf *m, struct buf_vector *buf_vec,
805                             uint16_t nr_vec, uint16_t num_buffers)
806 {
807         uint32_t vec_idx = 0;
808         uint32_t mbuf_offset, mbuf_avail;
809         uint32_t buf_offset, buf_avail;
810         uint64_t buf_addr, buf_iova, buf_len;
811         uint32_t cpy_len;
812         uint64_t hdr_addr;
813         struct rte_mbuf *hdr_mbuf;
814         struct batch_copy_elem *batch_copy = vq->batch_copy_elems;
815         struct virtio_net_hdr_mrg_rxbuf tmp_hdr, *hdr = NULL;
816         int error = 0;
817
818         if (unlikely(m == NULL)) {
819                 error = -1;
820                 goto out;
821         }
822
823         buf_addr = buf_vec[vec_idx].buf_addr;
824         buf_iova = buf_vec[vec_idx].buf_iova;
825         buf_len = buf_vec[vec_idx].buf_len;
826
827         if (unlikely(buf_len < dev->vhost_hlen && nr_vec <= 1)) {
828                 error = -1;
829                 goto out;
830         }
831
832         hdr_mbuf = m;
833         hdr_addr = buf_addr;
834         if (unlikely(buf_len < dev->vhost_hlen))
835                 hdr = &tmp_hdr;
836         else
837                 hdr = (struct virtio_net_hdr_mrg_rxbuf *)(uintptr_t)hdr_addr;
838
839         VHOST_LOG_DATA(DEBUG, "(%d) RX: num merge buffers %d\n",
840                 dev->vid, num_buffers);
841
842         if (unlikely(buf_len < dev->vhost_hlen)) {
843                 buf_offset = dev->vhost_hlen - buf_len;
844                 vec_idx++;
845                 buf_addr = buf_vec[vec_idx].buf_addr;
846                 buf_iova = buf_vec[vec_idx].buf_iova;
847                 buf_len = buf_vec[vec_idx].buf_len;
848                 buf_avail = buf_len - buf_offset;
849         } else {
850                 buf_offset = dev->vhost_hlen;
851                 buf_avail = buf_len - dev->vhost_hlen;
852         }
853
854         mbuf_avail  = rte_pktmbuf_data_len(m);
855         mbuf_offset = 0;
856         while (mbuf_avail != 0 || m->next != NULL) {
857                 /* done with current buf, get the next one */
858                 if (buf_avail == 0) {
859                         vec_idx++;
860                         if (unlikely(vec_idx >= nr_vec)) {
861                                 error = -1;
862                                 goto out;
863                         }
864
865                         buf_addr = buf_vec[vec_idx].buf_addr;
866                         buf_iova = buf_vec[vec_idx].buf_iova;
867                         buf_len = buf_vec[vec_idx].buf_len;
868
869                         buf_offset = 0;
870                         buf_avail  = buf_len;
871                 }
872
873                 /* done with current mbuf, get the next one */
874                 if (mbuf_avail == 0) {
875                         m = m->next;
876
877                         mbuf_offset = 0;
878                         mbuf_avail  = rte_pktmbuf_data_len(m);
879                 }
880
881                 if (hdr_addr) {
882                         virtio_enqueue_offload(hdr_mbuf, &hdr->hdr);
883                         if (rxvq_is_mergeable(dev))
884                                 ASSIGN_UNLESS_EQUAL(hdr->num_buffers,
885                                                 num_buffers);
886
887                         if (unlikely(hdr == &tmp_hdr)) {
888                                 copy_vnet_hdr_to_desc(dev, vq, buf_vec, hdr);
889                         } else {
890                                 PRINT_PACKET(dev, (uintptr_t)hdr_addr,
891                                                 dev->vhost_hlen, 0);
892                                 vhost_log_cache_write_iova(dev, vq,
893                                                 buf_vec[0].buf_iova,
894                                                 dev->vhost_hlen);
895                         }
896
897                         hdr_addr = 0;
898                 }
899
900                 cpy_len = RTE_MIN(buf_avail, mbuf_avail);
901
902                 if (likely(cpy_len > MAX_BATCH_LEN ||
903                                         vq->batch_copy_nb_elems >= vq->size)) {
904                         rte_memcpy((void *)((uintptr_t)(buf_addr + buf_offset)),
905                                 rte_pktmbuf_mtod_offset(m, void *, mbuf_offset),
906                                 cpy_len);
907                         vhost_log_cache_write_iova(dev, vq,
908                                                    buf_iova + buf_offset,
909                                                    cpy_len);
910                         PRINT_PACKET(dev, (uintptr_t)(buf_addr + buf_offset),
911                                 cpy_len, 0);
912                 } else {
913                         batch_copy[vq->batch_copy_nb_elems].dst =
914                                 (void *)((uintptr_t)(buf_addr + buf_offset));
915                         batch_copy[vq->batch_copy_nb_elems].src =
916                                 rte_pktmbuf_mtod_offset(m, void *, mbuf_offset);
917                         batch_copy[vq->batch_copy_nb_elems].log_addr =
918                                 buf_iova + buf_offset;
919                         batch_copy[vq->batch_copy_nb_elems].len = cpy_len;
920                         vq->batch_copy_nb_elems++;
921                 }
922
923                 mbuf_avail  -= cpy_len;
924                 mbuf_offset += cpy_len;
925                 buf_avail  -= cpy_len;
926                 buf_offset += cpy_len;
927         }
928
929 out:
930
931         return error;
932 }
933
934 static __rte_always_inline void
935 async_fill_vec(struct iovec *v, void *base, size_t len)
936 {
937         v->iov_base = base;
938         v->iov_len = len;
939 }
940
941 static __rte_always_inline void
942 async_fill_iter(struct rte_vhost_iov_iter *it, size_t count,
943         struct iovec *vec, unsigned long nr_seg)
944 {
945         it->offset = 0;
946         it->count = count;
947
948         if (count) {
949                 it->iov = vec;
950                 it->nr_segs = nr_seg;
951         } else {
952                 it->iov = 0;
953                 it->nr_segs = 0;
954         }
955 }
956
957 static __rte_always_inline void
958 async_fill_desc(struct rte_vhost_async_desc *desc,
959         struct rte_vhost_iov_iter *src, struct rte_vhost_iov_iter *dst)
960 {
961         desc->src = src;
962         desc->dst = dst;
963 }
964
965 static __rte_always_inline int
966 async_mbuf_to_desc(struct virtio_net *dev, struct vhost_virtqueue *vq,
967                         struct rte_mbuf *m, struct buf_vector *buf_vec,
968                         uint16_t nr_vec, uint16_t num_buffers,
969                         struct iovec *src_iovec, struct iovec *dst_iovec,
970                         struct rte_vhost_iov_iter *src_it,
971                         struct rte_vhost_iov_iter *dst_it)
972 {
973         uint32_t vec_idx = 0;
974         uint32_t mbuf_offset, mbuf_avail;
975         uint32_t buf_offset, buf_avail;
976         uint64_t buf_addr, buf_iova, buf_len;
977         uint32_t cpy_len, cpy_threshold;
978         uint64_t hdr_addr;
979         struct rte_mbuf *hdr_mbuf;
980         struct batch_copy_elem *batch_copy = vq->batch_copy_elems;
981         struct virtio_net_hdr_mrg_rxbuf tmp_hdr, *hdr = NULL;
982         int error = 0;
983         uint64_t mapped_len;
984
985         uint32_t tlen = 0;
986         int tvec_idx = 0;
987         void *hpa;
988
989         if (unlikely(m == NULL)) {
990                 error = -1;
991                 goto out;
992         }
993
994         cpy_threshold = vq->async_threshold;
995
996         buf_addr = buf_vec[vec_idx].buf_addr;
997         buf_iova = buf_vec[vec_idx].buf_iova;
998         buf_len = buf_vec[vec_idx].buf_len;
999
1000         if (unlikely(buf_len < dev->vhost_hlen && nr_vec <= 1)) {
1001                 error = -1;
1002                 goto out;
1003         }
1004
1005         hdr_mbuf = m;
1006         hdr_addr = buf_addr;
1007         if (unlikely(buf_len < dev->vhost_hlen))
1008                 hdr = &tmp_hdr;
1009         else
1010                 hdr = (struct virtio_net_hdr_mrg_rxbuf *)(uintptr_t)hdr_addr;
1011
1012         VHOST_LOG_DATA(DEBUG, "(%d) RX: num merge buffers %d\n",
1013                 dev->vid, num_buffers);
1014
1015         if (unlikely(buf_len < dev->vhost_hlen)) {
1016                 buf_offset = dev->vhost_hlen - buf_len;
1017                 vec_idx++;
1018                 buf_addr = buf_vec[vec_idx].buf_addr;
1019                 buf_iova = buf_vec[vec_idx].buf_iova;
1020                 buf_len = buf_vec[vec_idx].buf_len;
1021                 buf_avail = buf_len - buf_offset;
1022         } else {
1023                 buf_offset = dev->vhost_hlen;
1024                 buf_avail = buf_len - dev->vhost_hlen;
1025         }
1026
1027         mbuf_avail  = rte_pktmbuf_data_len(m);
1028         mbuf_offset = 0;
1029
1030         while (mbuf_avail != 0 || m->next != NULL) {
1031                 /* done with current buf, get the next one */
1032                 if (buf_avail == 0) {
1033                         vec_idx++;
1034                         if (unlikely(vec_idx >= nr_vec)) {
1035                                 error = -1;
1036                                 goto out;
1037                         }
1038
1039                         buf_addr = buf_vec[vec_idx].buf_addr;
1040                         buf_iova = buf_vec[vec_idx].buf_iova;
1041                         buf_len = buf_vec[vec_idx].buf_len;
1042
1043                         buf_offset = 0;
1044                         buf_avail  = buf_len;
1045                 }
1046
1047                 /* done with current mbuf, get the next one */
1048                 if (mbuf_avail == 0) {
1049                         m = m->next;
1050
1051                         mbuf_offset = 0;
1052                         mbuf_avail  = rte_pktmbuf_data_len(m);
1053                 }
1054
1055                 if (hdr_addr) {
1056                         virtio_enqueue_offload(hdr_mbuf, &hdr->hdr);
1057                         if (rxvq_is_mergeable(dev))
1058                                 ASSIGN_UNLESS_EQUAL(hdr->num_buffers,
1059                                                 num_buffers);
1060
1061                         if (unlikely(hdr == &tmp_hdr)) {
1062                                 copy_vnet_hdr_to_desc(dev, vq, buf_vec, hdr);
1063                         } else {
1064                                 PRINT_PACKET(dev, (uintptr_t)hdr_addr,
1065                                                 dev->vhost_hlen, 0);
1066                                 vhost_log_cache_write_iova(dev, vq,
1067                                                 buf_vec[0].buf_iova,
1068                                                 dev->vhost_hlen);
1069                         }
1070
1071                         hdr_addr = 0;
1072                 }
1073
1074                 cpy_len = RTE_MIN(buf_avail, mbuf_avail);
1075
1076                 while (unlikely(cpy_len && cpy_len >= cpy_threshold)) {
1077                         hpa = (void *)(uintptr_t)gpa_to_first_hpa(dev,
1078                                         buf_iova + buf_offset,
1079                                         cpy_len, &mapped_len);
1080
1081                         if (unlikely(!hpa || mapped_len < cpy_threshold))
1082                                 break;
1083
1084                         async_fill_vec(src_iovec + tvec_idx,
1085                                 (void *)(uintptr_t)rte_pktmbuf_iova_offset(m,
1086                                 mbuf_offset), (size_t)mapped_len);
1087
1088                         async_fill_vec(dst_iovec + tvec_idx,
1089                                         hpa, (size_t)mapped_len);
1090
1091                         tlen += (uint32_t)mapped_len;
1092                         cpy_len -= (uint32_t)mapped_len;
1093                         mbuf_avail  -= (uint32_t)mapped_len;
1094                         mbuf_offset += (uint32_t)mapped_len;
1095                         buf_avail  -= (uint32_t)mapped_len;
1096                         buf_offset += (uint32_t)mapped_len;
1097                         tvec_idx++;
1098                 }
1099
1100                 if (likely(cpy_len)) {
1101                         if (unlikely(vq->batch_copy_nb_elems >= vq->size)) {
1102                                 rte_memcpy(
1103                                 (void *)((uintptr_t)(buf_addr + buf_offset)),
1104                                 rte_pktmbuf_mtod_offset(m, void *, mbuf_offset),
1105                                 cpy_len);
1106
1107                                 PRINT_PACKET(dev,
1108                                         (uintptr_t)(buf_addr + buf_offset),
1109                                         cpy_len, 0);
1110                         } else {
1111                                 batch_copy[vq->batch_copy_nb_elems].dst =
1112                                 (void *)((uintptr_t)(buf_addr + buf_offset));
1113                                 batch_copy[vq->batch_copy_nb_elems].src =
1114                                 rte_pktmbuf_mtod_offset(m, void *, mbuf_offset);
1115                                 batch_copy[vq->batch_copy_nb_elems].log_addr =
1116                                         buf_iova + buf_offset;
1117                                 batch_copy[vq->batch_copy_nb_elems].len =
1118                                         cpy_len;
1119                                 vq->batch_copy_nb_elems++;
1120                         }
1121
1122                         mbuf_avail  -= cpy_len;
1123                         mbuf_offset += cpy_len;
1124                         buf_avail  -= cpy_len;
1125                         buf_offset += cpy_len;
1126                 }
1127
1128         }
1129
1130 out:
1131         async_fill_iter(src_it, tlen, src_iovec, tvec_idx);
1132         async_fill_iter(dst_it, tlen, dst_iovec, tvec_idx);
1133
1134         return error;
1135 }
1136
1137 static __rte_always_inline int
1138 vhost_enqueue_single_packed(struct virtio_net *dev,
1139                             struct vhost_virtqueue *vq,
1140                             struct rte_mbuf *pkt,
1141                             struct buf_vector *buf_vec,
1142                             uint16_t *nr_descs)
1143 {
1144         uint16_t nr_vec = 0;
1145         uint16_t avail_idx = vq->last_avail_idx;
1146         uint16_t max_tries, tries = 0;
1147         uint16_t buf_id = 0;
1148         uint32_t len = 0;
1149         uint16_t desc_count;
1150         uint32_t size = pkt->pkt_len + sizeof(struct virtio_net_hdr_mrg_rxbuf);
1151         uint16_t num_buffers = 0;
1152         uint32_t buffer_len[vq->size];
1153         uint16_t buffer_buf_id[vq->size];
1154         uint16_t buffer_desc_count[vq->size];
1155
1156         if (rxvq_is_mergeable(dev))
1157                 max_tries = vq->size - 1;
1158         else
1159                 max_tries = 1;
1160
1161         while (size > 0) {
1162                 /*
1163                  * if we tried all available ring items, and still
1164                  * can't get enough buf, it means something abnormal
1165                  * happened.
1166                  */
1167                 if (unlikely(++tries > max_tries))
1168                         return -1;
1169
1170                 if (unlikely(fill_vec_buf_packed(dev, vq,
1171                                                 avail_idx, &desc_count,
1172                                                 buf_vec, &nr_vec,
1173                                                 &buf_id, &len,
1174                                                 VHOST_ACCESS_RW) < 0))
1175                         return -1;
1176
1177                 len = RTE_MIN(len, size);
1178                 size -= len;
1179
1180                 buffer_len[num_buffers] = len;
1181                 buffer_buf_id[num_buffers] = buf_id;
1182                 buffer_desc_count[num_buffers] = desc_count;
1183                 num_buffers += 1;
1184
1185                 *nr_descs += desc_count;
1186                 avail_idx += desc_count;
1187                 if (avail_idx >= vq->size)
1188                         avail_idx -= vq->size;
1189         }
1190
1191         if (copy_mbuf_to_desc(dev, vq, pkt, buf_vec, nr_vec, num_buffers) < 0)
1192                 return -1;
1193
1194         vhost_shadow_enqueue_single_packed(dev, vq, buffer_len, buffer_buf_id,
1195                                            buffer_desc_count, num_buffers);
1196
1197         return 0;
1198 }
1199
1200 static __rte_noinline uint32_t
1201 virtio_dev_rx_split(struct virtio_net *dev, struct vhost_virtqueue *vq,
1202         struct rte_mbuf **pkts, uint32_t count)
1203 {
1204         uint32_t pkt_idx = 0;
1205         uint16_t num_buffers;
1206         struct buf_vector buf_vec[BUF_VECTOR_MAX];
1207         uint16_t avail_head;
1208
1209         /*
1210          * The ordering between avail index and
1211          * desc reads needs to be enforced.
1212          */
1213         avail_head = __atomic_load_n(&vq->avail->idx, __ATOMIC_ACQUIRE);
1214
1215         rte_prefetch0(&vq->avail->ring[vq->last_avail_idx & (vq->size - 1)]);
1216
1217         for (pkt_idx = 0; pkt_idx < count; pkt_idx++) {
1218                 uint32_t pkt_len = pkts[pkt_idx]->pkt_len + dev->vhost_hlen;
1219                 uint16_t nr_vec = 0;
1220
1221                 if (unlikely(reserve_avail_buf_split(dev, vq,
1222                                                 pkt_len, buf_vec, &num_buffers,
1223                                                 avail_head, &nr_vec) < 0)) {
1224                         VHOST_LOG_DATA(DEBUG,
1225                                 "(%d) failed to get enough desc from vring\n",
1226                                 dev->vid);
1227                         vq->shadow_used_idx -= num_buffers;
1228                         break;
1229                 }
1230
1231                 VHOST_LOG_DATA(DEBUG, "(%d) current index %d | end index %d\n",
1232                         dev->vid, vq->last_avail_idx,
1233                         vq->last_avail_idx + num_buffers);
1234
1235                 if (copy_mbuf_to_desc(dev, vq, pkts[pkt_idx],
1236                                                 buf_vec, nr_vec,
1237                                                 num_buffers) < 0) {
1238                         vq->shadow_used_idx -= num_buffers;
1239                         break;
1240                 }
1241
1242                 vq->last_avail_idx += num_buffers;
1243         }
1244
1245         do_data_copy_enqueue(dev, vq);
1246
1247         if (likely(vq->shadow_used_idx)) {
1248                 flush_shadow_used_ring_split(dev, vq);
1249                 vhost_vring_call_split(dev, vq);
1250         }
1251
1252         return pkt_idx;
1253 }
1254
1255 static __rte_always_inline int
1256 virtio_dev_rx_batch_packed(struct virtio_net *dev,
1257                            struct vhost_virtqueue *vq,
1258                            struct rte_mbuf **pkts)
1259 {
1260         bool wrap_counter = vq->avail_wrap_counter;
1261         struct vring_packed_desc *descs = vq->desc_packed;
1262         uint16_t avail_idx = vq->last_avail_idx;
1263         uint64_t desc_addrs[PACKED_BATCH_SIZE];
1264         struct virtio_net_hdr_mrg_rxbuf *hdrs[PACKED_BATCH_SIZE];
1265         uint32_t buf_offset = sizeof(struct virtio_net_hdr_mrg_rxbuf);
1266         uint64_t lens[PACKED_BATCH_SIZE];
1267         uint16_t ids[PACKED_BATCH_SIZE];
1268         uint16_t i;
1269
1270         if (unlikely(avail_idx & PACKED_BATCH_MASK))
1271                 return -1;
1272
1273         if (unlikely((avail_idx + PACKED_BATCH_SIZE) > vq->size))
1274                 return -1;
1275
1276         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
1277                 if (unlikely(pkts[i]->next != NULL))
1278                         return -1;
1279                 if (unlikely(!desc_is_avail(&descs[avail_idx + i],
1280                                             wrap_counter)))
1281                         return -1;
1282         }
1283
1284         rte_smp_rmb();
1285
1286         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
1287                 lens[i] = descs[avail_idx + i].len;
1288
1289         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
1290                 if (unlikely(pkts[i]->pkt_len > (lens[i] - buf_offset)))
1291                         return -1;
1292         }
1293
1294         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
1295                 desc_addrs[i] = vhost_iova_to_vva(dev, vq,
1296                                                   descs[avail_idx + i].addr,
1297                                                   &lens[i],
1298                                                   VHOST_ACCESS_RW);
1299
1300         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
1301                 if (unlikely(!desc_addrs[i]))
1302                         return -1;
1303                 if (unlikely(lens[i] != descs[avail_idx + i].len))
1304                         return -1;
1305         }
1306
1307         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
1308                 rte_prefetch0((void *)(uintptr_t)desc_addrs[i]);
1309                 hdrs[i] = (struct virtio_net_hdr_mrg_rxbuf *)
1310                                         (uintptr_t)desc_addrs[i];
1311                 lens[i] = pkts[i]->pkt_len +
1312                         sizeof(struct virtio_net_hdr_mrg_rxbuf);
1313         }
1314
1315         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
1316                 virtio_enqueue_offload(pkts[i], &hdrs[i]->hdr);
1317
1318         vq_inc_last_avail_packed(vq, PACKED_BATCH_SIZE);
1319
1320         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
1321                 rte_memcpy((void *)(uintptr_t)(desc_addrs[i] + buf_offset),
1322                            rte_pktmbuf_mtod_offset(pkts[i], void *, 0),
1323                            pkts[i]->pkt_len);
1324         }
1325
1326         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
1327                 vhost_log_cache_write_iova(dev, vq, descs[avail_idx + i].addr,
1328                                            lens[i]);
1329
1330         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
1331                 ids[i] = descs[avail_idx + i].id;
1332
1333         vhost_flush_enqueue_batch_packed(dev, vq, lens, ids);
1334
1335         return 0;
1336 }
1337
1338 static __rte_always_inline int16_t
1339 virtio_dev_rx_single_packed(struct virtio_net *dev,
1340                             struct vhost_virtqueue *vq,
1341                             struct rte_mbuf *pkt)
1342 {
1343         struct buf_vector buf_vec[BUF_VECTOR_MAX];
1344         uint16_t nr_descs = 0;
1345
1346         rte_smp_rmb();
1347         if (unlikely(vhost_enqueue_single_packed(dev, vq, pkt, buf_vec,
1348                                                  &nr_descs) < 0)) {
1349                 VHOST_LOG_DATA(DEBUG,
1350                                 "(%d) failed to get enough desc from vring\n",
1351                                 dev->vid);
1352                 return -1;
1353         }
1354
1355         VHOST_LOG_DATA(DEBUG, "(%d) current index %d | end index %d\n",
1356                         dev->vid, vq->last_avail_idx,
1357                         vq->last_avail_idx + nr_descs);
1358
1359         vq_inc_last_avail_packed(vq, nr_descs);
1360
1361         return 0;
1362 }
1363
1364 static __rte_noinline uint32_t
1365 virtio_dev_rx_packed(struct virtio_net *dev,
1366                      struct vhost_virtqueue *__rte_restrict vq,
1367                      struct rte_mbuf **__rte_restrict pkts,
1368                      uint32_t count)
1369 {
1370         uint32_t pkt_idx = 0;
1371         uint32_t remained = count;
1372
1373         do {
1374                 rte_prefetch0(&vq->desc_packed[vq->last_avail_idx]);
1375
1376                 if (remained >= PACKED_BATCH_SIZE) {
1377                         if (!virtio_dev_rx_batch_packed(dev, vq,
1378                                                         &pkts[pkt_idx])) {
1379                                 pkt_idx += PACKED_BATCH_SIZE;
1380                                 remained -= PACKED_BATCH_SIZE;
1381                                 continue;
1382                         }
1383                 }
1384
1385                 if (virtio_dev_rx_single_packed(dev, vq, pkts[pkt_idx]))
1386                         break;
1387                 pkt_idx++;
1388                 remained--;
1389
1390         } while (pkt_idx < count);
1391
1392         if (vq->shadow_used_idx) {
1393                 do_data_copy_enqueue(dev, vq);
1394                 vhost_flush_enqueue_shadow_packed(dev, vq);
1395         }
1396
1397         if (pkt_idx)
1398                 vhost_vring_call_packed(dev, vq);
1399
1400         return pkt_idx;
1401 }
1402
1403 static __rte_always_inline uint32_t
1404 virtio_dev_rx(struct virtio_net *dev, uint16_t queue_id,
1405         struct rte_mbuf **pkts, uint32_t count)
1406 {
1407         struct vhost_virtqueue *vq;
1408         uint32_t nb_tx = 0;
1409
1410         VHOST_LOG_DATA(DEBUG, "(%d) %s\n", dev->vid, __func__);
1411         if (unlikely(!is_valid_virt_queue_idx(queue_id, 0, dev->nr_vring))) {
1412                 VHOST_LOG_DATA(ERR, "(%d) %s: invalid virtqueue idx %d.\n",
1413                         dev->vid, __func__, queue_id);
1414                 return 0;
1415         }
1416
1417         vq = dev->virtqueue[queue_id];
1418
1419         rte_spinlock_lock(&vq->access_lock);
1420
1421         if (unlikely(vq->enabled == 0))
1422                 goto out_access_unlock;
1423
1424         if (dev->features & (1ULL << VIRTIO_F_IOMMU_PLATFORM))
1425                 vhost_user_iotlb_rd_lock(vq);
1426
1427         if (unlikely(vq->access_ok == 0))
1428                 if (unlikely(vring_translate(dev, vq) < 0))
1429                         goto out;
1430
1431         count = RTE_MIN((uint32_t)MAX_PKT_BURST, count);
1432         if (count == 0)
1433                 goto out;
1434
1435         if (vq_is_packed(dev))
1436                 nb_tx = virtio_dev_rx_packed(dev, vq, pkts, count);
1437         else
1438                 nb_tx = virtio_dev_rx_split(dev, vq, pkts, count);
1439
1440 out:
1441         if (dev->features & (1ULL << VIRTIO_F_IOMMU_PLATFORM))
1442                 vhost_user_iotlb_rd_unlock(vq);
1443
1444 out_access_unlock:
1445         rte_spinlock_unlock(&vq->access_lock);
1446
1447         return nb_tx;
1448 }
1449
1450 uint16_t
1451 rte_vhost_enqueue_burst(int vid, uint16_t queue_id,
1452         struct rte_mbuf **__rte_restrict pkts, uint16_t count)
1453 {
1454         struct virtio_net *dev = get_device(vid);
1455
1456         if (!dev)
1457                 return 0;
1458
1459         if (unlikely(!(dev->flags & VIRTIO_DEV_BUILTIN_VIRTIO_NET))) {
1460                 VHOST_LOG_DATA(ERR,
1461                         "(%d) %s: built-in vhost net backend is disabled.\n",
1462                         dev->vid, __func__);
1463                 return 0;
1464         }
1465
1466         return virtio_dev_rx(dev, queue_id, pkts, count);
1467 }
1468
1469 static __rte_always_inline uint16_t
1470 virtio_dev_rx_async_get_info_idx(uint16_t pkts_idx,
1471         uint16_t vq_size, uint16_t n_inflight)
1472 {
1473         return pkts_idx > n_inflight ? (pkts_idx - n_inflight) :
1474                 (vq_size - n_inflight + pkts_idx) & (vq_size - 1);
1475 }
1476
1477 static __rte_noinline uint32_t
1478 virtio_dev_rx_async_submit_split(struct virtio_net *dev,
1479         struct vhost_virtqueue *vq, uint16_t queue_id,
1480         struct rte_mbuf **pkts, uint32_t count)
1481 {
1482         uint32_t pkt_idx = 0, pkt_burst_idx = 0;
1483         uint16_t num_buffers;
1484         struct buf_vector buf_vec[BUF_VECTOR_MAX];
1485         uint16_t avail_head;
1486
1487         struct rte_vhost_iov_iter *it_pool = vq->it_pool;
1488         struct iovec *vec_pool = vq->vec_pool;
1489         struct rte_vhost_async_desc tdes[MAX_PKT_BURST];
1490         struct iovec *src_iovec = vec_pool;
1491         struct iovec *dst_iovec = vec_pool + (VHOST_MAX_ASYNC_VEC >> 1);
1492         struct rte_vhost_iov_iter *src_it = it_pool;
1493         struct rte_vhost_iov_iter *dst_it = it_pool + 1;
1494         uint16_t n_free_slot, slot_idx = 0;
1495         uint16_t pkt_err = 0;
1496         uint16_t segs_await = 0;
1497         struct async_inflight_info *pkts_info = vq->async_pkts_info;
1498         int n_pkts = 0;
1499
1500         avail_head = __atomic_load_n(&vq->avail->idx, __ATOMIC_ACQUIRE);
1501
1502         /*
1503          * The ordering between avail index and
1504          * desc reads needs to be enforced.
1505          */
1506         rte_smp_rmb();
1507
1508         rte_prefetch0(&vq->avail->ring[vq->last_avail_idx & (vq->size - 1)]);
1509
1510         for (pkt_idx = 0; pkt_idx < count; pkt_idx++) {
1511                 uint32_t pkt_len = pkts[pkt_idx]->pkt_len + dev->vhost_hlen;
1512                 uint16_t nr_vec = 0;
1513
1514                 if (unlikely(reserve_avail_buf_split(dev, vq,
1515                                                 pkt_len, buf_vec, &num_buffers,
1516                                                 avail_head, &nr_vec) < 0)) {
1517                         VHOST_LOG_DATA(DEBUG,
1518                                 "(%d) failed to get enough desc from vring\n",
1519                                 dev->vid);
1520                         vq->shadow_used_idx -= num_buffers;
1521                         break;
1522                 }
1523
1524                 VHOST_LOG_DATA(DEBUG, "(%d) current index %d | end index %d\n",
1525                         dev->vid, vq->last_avail_idx,
1526                         vq->last_avail_idx + num_buffers);
1527
1528                 if (async_mbuf_to_desc(dev, vq, pkts[pkt_idx],
1529                                 buf_vec, nr_vec, num_buffers,
1530                                 src_iovec, dst_iovec, src_it, dst_it) < 0) {
1531                         vq->shadow_used_idx -= num_buffers;
1532                         break;
1533                 }
1534
1535                 slot_idx = (vq->async_pkts_idx + pkt_idx) & (vq->size - 1);
1536                 if (src_it->count) {
1537                         async_fill_desc(&tdes[pkt_burst_idx], src_it, dst_it);
1538                         pkt_burst_idx++;
1539                         pkts_info[slot_idx].descs = num_buffers;
1540                         pkts_info[slot_idx].segs = src_it->nr_segs;
1541                         src_iovec += src_it->nr_segs;
1542                         dst_iovec += dst_it->nr_segs;
1543                         src_it += 2;
1544                         dst_it += 2;
1545                         segs_await += src_it->nr_segs;
1546                 } else {
1547                         pkts_info[slot_idx].info = num_buffers;
1548                         vq->async_pkts_inflight_n++;
1549                 }
1550
1551                 vq->last_avail_idx += num_buffers;
1552
1553                 /*
1554                  * conditions to trigger async device transfer:
1555                  * - buffered packet number reaches transfer threshold
1556                  * - this is the last packet in the burst enqueue
1557                  * - unused async iov number is less than max vhost vector
1558                  */
1559                 if (pkt_burst_idx >= VHOST_ASYNC_BATCH_THRESHOLD ||
1560                         (pkt_idx == count - 1 && pkt_burst_idx) ||
1561                         (VHOST_MAX_ASYNC_VEC / 2 - segs_await <
1562                         BUF_VECTOR_MAX)) {
1563                         n_pkts = vq->async_ops.transfer_data(dev->vid,
1564                                         queue_id, tdes, 0, pkt_burst_idx);
1565                         src_iovec = vec_pool;
1566                         dst_iovec = vec_pool + (VHOST_MAX_ASYNC_VEC >> 1);
1567                         src_it = it_pool;
1568                         dst_it = it_pool + 1;
1569                         segs_await = 0;
1570                         vq->async_pkts_inflight_n += pkt_burst_idx;
1571
1572                         if (unlikely(n_pkts < (int)pkt_burst_idx)) {
1573                                 /*
1574                                  * log error packets number here and do actual
1575                                  * error processing when applications poll
1576                                  * completion
1577                                  */
1578                                 pkt_err = pkt_burst_idx - n_pkts;
1579                                 pkt_burst_idx = 0;
1580                                 break;
1581                         }
1582
1583                         pkt_burst_idx = 0;
1584                 }
1585         }
1586
1587         if (pkt_burst_idx) {
1588                 n_pkts = vq->async_ops.transfer_data(dev->vid,
1589                                 queue_id, tdes, 0, pkt_burst_idx);
1590                 vq->async_pkts_inflight_n += pkt_burst_idx;
1591
1592                 if (unlikely(n_pkts < (int)pkt_burst_idx))
1593                         pkt_err = pkt_burst_idx - n_pkts;
1594         }
1595
1596         do_data_copy_enqueue(dev, vq);
1597
1598         while (unlikely(pkt_err && pkt_idx)) {
1599                 if (pkts_info[slot_idx].segs)
1600                         pkt_err--;
1601                 vq->last_avail_idx -= pkts_info[slot_idx].descs;
1602                 vq->shadow_used_idx -= pkts_info[slot_idx].descs;
1603                 vq->async_pkts_inflight_n--;
1604                 slot_idx = (slot_idx - 1) & (vq->size - 1);
1605                 pkt_idx--;
1606         }
1607
1608         n_free_slot = vq->size - vq->async_pkts_idx;
1609         if (n_free_slot > pkt_idx) {
1610                 rte_memcpy(&vq->async_pkts_pending[vq->async_pkts_idx],
1611                         pkts, pkt_idx * sizeof(uintptr_t));
1612                 vq->async_pkts_idx += pkt_idx;
1613         } else {
1614                 rte_memcpy(&vq->async_pkts_pending[vq->async_pkts_idx],
1615                         pkts, n_free_slot * sizeof(uintptr_t));
1616                 rte_memcpy(&vq->async_pkts_pending[0],
1617                         &pkts[n_free_slot],
1618                         (pkt_idx - n_free_slot) * sizeof(uintptr_t));
1619                 vq->async_pkts_idx = pkt_idx - n_free_slot;
1620         }
1621
1622         if (likely(vq->shadow_used_idx))
1623                 async_flush_shadow_used_ring_split(dev, vq);
1624
1625         return pkt_idx;
1626 }
1627
1628 uint16_t rte_vhost_poll_enqueue_completed(int vid, uint16_t queue_id,
1629                 struct rte_mbuf **pkts, uint16_t count)
1630 {
1631         struct virtio_net *dev = get_device(vid);
1632         struct vhost_virtqueue *vq;
1633         uint16_t n_pkts_cpl = 0, n_pkts_put = 0, n_descs = 0;
1634         uint16_t start_idx, pkts_idx, vq_size;
1635         uint16_t n_inflight;
1636         struct async_inflight_info *pkts_info;
1637
1638         if (!dev)
1639                 return 0;
1640
1641         VHOST_LOG_DATA(DEBUG, "(%d) %s\n", dev->vid, __func__);
1642         if (unlikely(!is_valid_virt_queue_idx(queue_id, 0, dev->nr_vring))) {
1643                 VHOST_LOG_DATA(ERR, "(%d) %s: invalid virtqueue idx %d.\n",
1644                         dev->vid, __func__, queue_id);
1645                 return 0;
1646         }
1647
1648         vq = dev->virtqueue[queue_id];
1649
1650         if (unlikely(!vq->async_registered)) {
1651                 VHOST_LOG_DATA(ERR, "(%d) %s: async not registered for queue id %d.\n",
1652                         dev->vid, __func__, queue_id);
1653                 return 0;
1654         }
1655
1656         rte_spinlock_lock(&vq->access_lock);
1657
1658         n_inflight = vq->async_pkts_inflight_n;
1659         pkts_idx = vq->async_pkts_idx;
1660         pkts_info = vq->async_pkts_info;
1661         vq_size = vq->size;
1662         start_idx = virtio_dev_rx_async_get_info_idx(pkts_idx,
1663                 vq_size, vq->async_pkts_inflight_n);
1664
1665         if (count > vq->async_last_pkts_n)
1666                 n_pkts_cpl = vq->async_ops.check_completed_copies(vid,
1667                         queue_id, 0, count - vq->async_last_pkts_n);
1668         n_pkts_cpl += vq->async_last_pkts_n;
1669
1670         rte_smp_wmb();
1671
1672         while (likely((n_pkts_put < count) && n_inflight)) {
1673                 uint16_t info_idx = (start_idx + n_pkts_put) & (vq_size - 1);
1674                 if (n_pkts_cpl && pkts_info[info_idx].segs)
1675                         n_pkts_cpl--;
1676                 else if (!n_pkts_cpl && pkts_info[info_idx].segs)
1677                         break;
1678                 n_pkts_put++;
1679                 n_inflight--;
1680                 n_descs += pkts_info[info_idx].descs;
1681         }
1682
1683         vq->async_last_pkts_n = n_pkts_cpl;
1684
1685         if (n_pkts_put) {
1686                 vq->async_pkts_inflight_n = n_inflight;
1687                 if (likely(vq->enabled && vq->access_ok)) {
1688                         __atomic_add_fetch(&vq->used->idx,
1689                                         n_descs, __ATOMIC_RELEASE);
1690                         vhost_vring_call_split(dev, vq);
1691                 }
1692
1693                 if (start_idx + n_pkts_put <= vq_size) {
1694                         rte_memcpy(pkts, &vq->async_pkts_pending[start_idx],
1695                                 n_pkts_put * sizeof(uintptr_t));
1696                 } else {
1697                         rte_memcpy(pkts, &vq->async_pkts_pending[start_idx],
1698                                 (vq_size - start_idx) * sizeof(uintptr_t));
1699                         rte_memcpy(&pkts[vq_size - start_idx],
1700                                 vq->async_pkts_pending,
1701                                 (n_pkts_put + start_idx - vq_size) *
1702                                 sizeof(uintptr_t));
1703                 }
1704         }
1705
1706         rte_spinlock_unlock(&vq->access_lock);
1707
1708         return n_pkts_put;
1709 }
1710
1711 static __rte_always_inline uint32_t
1712 virtio_dev_rx_async_submit(struct virtio_net *dev, uint16_t queue_id,
1713         struct rte_mbuf **pkts, uint32_t count)
1714 {
1715         struct vhost_virtqueue *vq;
1716         uint32_t nb_tx = 0;
1717
1718         VHOST_LOG_DATA(DEBUG, "(%d) %s\n", dev->vid, __func__);
1719         if (unlikely(!is_valid_virt_queue_idx(queue_id, 0, dev->nr_vring))) {
1720                 VHOST_LOG_DATA(ERR, "(%d) %s: invalid virtqueue idx %d.\n",
1721                         dev->vid, __func__, queue_id);
1722                 return 0;
1723         }
1724
1725         vq = dev->virtqueue[queue_id];
1726
1727         rte_spinlock_lock(&vq->access_lock);
1728
1729         if (unlikely(vq->enabled == 0 || !vq->async_registered))
1730                 goto out_access_unlock;
1731
1732         if (dev->features & (1ULL << VIRTIO_F_IOMMU_PLATFORM))
1733                 vhost_user_iotlb_rd_lock(vq);
1734
1735         if (unlikely(vq->access_ok == 0))
1736                 if (unlikely(vring_translate(dev, vq) < 0))
1737                         goto out;
1738
1739         count = RTE_MIN((uint32_t)MAX_PKT_BURST, count);
1740         if (count == 0)
1741                 goto out;
1742
1743         /* TODO: packed queue not implemented */
1744         if (vq_is_packed(dev))
1745                 nb_tx = 0;
1746         else
1747                 nb_tx = virtio_dev_rx_async_submit_split(dev,
1748                                 vq, queue_id, pkts, count);
1749
1750 out:
1751         if (dev->features & (1ULL << VIRTIO_F_IOMMU_PLATFORM))
1752                 vhost_user_iotlb_rd_unlock(vq);
1753
1754 out_access_unlock:
1755         rte_spinlock_unlock(&vq->access_lock);
1756
1757         return nb_tx;
1758 }
1759
1760 uint16_t
1761 rte_vhost_submit_enqueue_burst(int vid, uint16_t queue_id,
1762                 struct rte_mbuf **pkts, uint16_t count)
1763 {
1764         struct virtio_net *dev = get_device(vid);
1765
1766         if (!dev)
1767                 return 0;
1768
1769         if (unlikely(!(dev->flags & VIRTIO_DEV_BUILTIN_VIRTIO_NET))) {
1770                 VHOST_LOG_DATA(ERR,
1771                         "(%d) %s: built-in vhost net backend is disabled.\n",
1772                         dev->vid, __func__);
1773                 return 0;
1774         }
1775
1776         return virtio_dev_rx_async_submit(dev, queue_id, pkts, count);
1777 }
1778
1779 static inline bool
1780 virtio_net_with_host_offload(struct virtio_net *dev)
1781 {
1782         if (dev->features &
1783                         ((1ULL << VIRTIO_NET_F_CSUM) |
1784                          (1ULL << VIRTIO_NET_F_HOST_ECN) |
1785                          (1ULL << VIRTIO_NET_F_HOST_TSO4) |
1786                          (1ULL << VIRTIO_NET_F_HOST_TSO6) |
1787                          (1ULL << VIRTIO_NET_F_HOST_UFO)))
1788                 return true;
1789
1790         return false;
1791 }
1792
1793 static void
1794 parse_ethernet(struct rte_mbuf *m, uint16_t *l4_proto, void **l4_hdr)
1795 {
1796         struct rte_ipv4_hdr *ipv4_hdr;
1797         struct rte_ipv6_hdr *ipv6_hdr;
1798         void *l3_hdr = NULL;
1799         struct rte_ether_hdr *eth_hdr;
1800         uint16_t ethertype;
1801
1802         eth_hdr = rte_pktmbuf_mtod(m, struct rte_ether_hdr *);
1803
1804         m->l2_len = sizeof(struct rte_ether_hdr);
1805         ethertype = rte_be_to_cpu_16(eth_hdr->ether_type);
1806
1807         if (ethertype == RTE_ETHER_TYPE_VLAN) {
1808                 struct rte_vlan_hdr *vlan_hdr =
1809                         (struct rte_vlan_hdr *)(eth_hdr + 1);
1810
1811                 m->l2_len += sizeof(struct rte_vlan_hdr);
1812                 ethertype = rte_be_to_cpu_16(vlan_hdr->eth_proto);
1813         }
1814
1815         l3_hdr = (char *)eth_hdr + m->l2_len;
1816
1817         switch (ethertype) {
1818         case RTE_ETHER_TYPE_IPV4:
1819                 ipv4_hdr = l3_hdr;
1820                 *l4_proto = ipv4_hdr->next_proto_id;
1821                 m->l3_len = rte_ipv4_hdr_len(ipv4_hdr);
1822                 *l4_hdr = (char *)l3_hdr + m->l3_len;
1823                 m->ol_flags |= PKT_TX_IPV4;
1824                 break;
1825         case RTE_ETHER_TYPE_IPV6:
1826                 ipv6_hdr = l3_hdr;
1827                 *l4_proto = ipv6_hdr->proto;
1828                 m->l3_len = sizeof(struct rte_ipv6_hdr);
1829                 *l4_hdr = (char *)l3_hdr + m->l3_len;
1830                 m->ol_flags |= PKT_TX_IPV6;
1831                 break;
1832         default:
1833                 m->l3_len = 0;
1834                 *l4_proto = 0;
1835                 *l4_hdr = NULL;
1836                 break;
1837         }
1838 }
1839
1840 static __rte_always_inline void
1841 vhost_dequeue_offload(struct virtio_net_hdr *hdr, struct rte_mbuf *m)
1842 {
1843         uint16_t l4_proto = 0;
1844         void *l4_hdr = NULL;
1845         struct rte_tcp_hdr *tcp_hdr = NULL;
1846
1847         if (hdr->flags == 0 && hdr->gso_type == VIRTIO_NET_HDR_GSO_NONE)
1848                 return;
1849
1850         parse_ethernet(m, &l4_proto, &l4_hdr);
1851         if (hdr->flags == VIRTIO_NET_HDR_F_NEEDS_CSUM) {
1852                 if (hdr->csum_start == (m->l2_len + m->l3_len)) {
1853                         switch (hdr->csum_offset) {
1854                         case (offsetof(struct rte_tcp_hdr, cksum)):
1855                                 if (l4_proto == IPPROTO_TCP)
1856                                         m->ol_flags |= PKT_TX_TCP_CKSUM;
1857                                 break;
1858                         case (offsetof(struct rte_udp_hdr, dgram_cksum)):
1859                                 if (l4_proto == IPPROTO_UDP)
1860                                         m->ol_flags |= PKT_TX_UDP_CKSUM;
1861                                 break;
1862                         case (offsetof(struct rte_sctp_hdr, cksum)):
1863                                 if (l4_proto == IPPROTO_SCTP)
1864                                         m->ol_flags |= PKT_TX_SCTP_CKSUM;
1865                                 break;
1866                         default:
1867                                 break;
1868                         }
1869                 }
1870         }
1871
1872         if (l4_hdr && hdr->gso_type != VIRTIO_NET_HDR_GSO_NONE) {
1873                 switch (hdr->gso_type & ~VIRTIO_NET_HDR_GSO_ECN) {
1874                 case VIRTIO_NET_HDR_GSO_TCPV4:
1875                 case VIRTIO_NET_HDR_GSO_TCPV6:
1876                         tcp_hdr = l4_hdr;
1877                         m->ol_flags |= PKT_TX_TCP_SEG;
1878                         m->tso_segsz = hdr->gso_size;
1879                         m->l4_len = (tcp_hdr->data_off & 0xf0) >> 2;
1880                         break;
1881                 case VIRTIO_NET_HDR_GSO_UDP:
1882                         m->ol_flags |= PKT_TX_UDP_SEG;
1883                         m->tso_segsz = hdr->gso_size;
1884                         m->l4_len = sizeof(struct rte_udp_hdr);
1885                         break;
1886                 default:
1887                         VHOST_LOG_DATA(WARNING,
1888                                 "unsupported gso type %u.\n", hdr->gso_type);
1889                         break;
1890                 }
1891         }
1892 }
1893
1894 static __rte_noinline void
1895 copy_vnet_hdr_from_desc(struct virtio_net_hdr *hdr,
1896                 struct buf_vector *buf_vec)
1897 {
1898         uint64_t len;
1899         uint64_t remain = sizeof(struct virtio_net_hdr);
1900         uint64_t src;
1901         uint64_t dst = (uint64_t)(uintptr_t)hdr;
1902
1903         while (remain) {
1904                 len = RTE_MIN(remain, buf_vec->buf_len);
1905                 src = buf_vec->buf_addr;
1906                 rte_memcpy((void *)(uintptr_t)dst,
1907                                 (void *)(uintptr_t)src, len);
1908
1909                 remain -= len;
1910                 dst += len;
1911                 buf_vec++;
1912         }
1913 }
1914
1915 static __rte_always_inline int
1916 copy_desc_to_mbuf(struct virtio_net *dev, struct vhost_virtqueue *vq,
1917                   struct buf_vector *buf_vec, uint16_t nr_vec,
1918                   struct rte_mbuf *m, struct rte_mempool *mbuf_pool)
1919 {
1920         uint32_t buf_avail, buf_offset;
1921         uint64_t buf_addr, buf_len;
1922         uint32_t mbuf_avail, mbuf_offset;
1923         uint32_t cpy_len;
1924         struct rte_mbuf *cur = m, *prev = m;
1925         struct virtio_net_hdr tmp_hdr;
1926         struct virtio_net_hdr *hdr = NULL;
1927         /* A counter to avoid desc dead loop chain */
1928         uint16_t vec_idx = 0;
1929         struct batch_copy_elem *batch_copy = vq->batch_copy_elems;
1930         int error = 0;
1931
1932         buf_addr = buf_vec[vec_idx].buf_addr;
1933         buf_len = buf_vec[vec_idx].buf_len;
1934
1935         if (unlikely(buf_len < dev->vhost_hlen && nr_vec <= 1)) {
1936                 error = -1;
1937                 goto out;
1938         }
1939
1940         if (virtio_net_with_host_offload(dev)) {
1941                 if (unlikely(buf_len < sizeof(struct virtio_net_hdr))) {
1942                         /*
1943                          * No luck, the virtio-net header doesn't fit
1944                          * in a contiguous virtual area.
1945                          */
1946                         copy_vnet_hdr_from_desc(&tmp_hdr, buf_vec);
1947                         hdr = &tmp_hdr;
1948                 } else {
1949                         hdr = (struct virtio_net_hdr *)((uintptr_t)buf_addr);
1950                 }
1951         }
1952
1953         /*
1954          * A virtio driver normally uses at least 2 desc buffers
1955          * for Tx: the first for storing the header, and others
1956          * for storing the data.
1957          */
1958         if (unlikely(buf_len < dev->vhost_hlen)) {
1959                 buf_offset = dev->vhost_hlen - buf_len;
1960                 vec_idx++;
1961                 buf_addr = buf_vec[vec_idx].buf_addr;
1962                 buf_len = buf_vec[vec_idx].buf_len;
1963                 buf_avail  = buf_len - buf_offset;
1964         } else if (buf_len == dev->vhost_hlen) {
1965                 if (unlikely(++vec_idx >= nr_vec))
1966                         goto out;
1967                 buf_addr = buf_vec[vec_idx].buf_addr;
1968                 buf_len = buf_vec[vec_idx].buf_len;
1969
1970                 buf_offset = 0;
1971                 buf_avail = buf_len;
1972         } else {
1973                 buf_offset = dev->vhost_hlen;
1974                 buf_avail = buf_vec[vec_idx].buf_len - dev->vhost_hlen;
1975         }
1976
1977         PRINT_PACKET(dev,
1978                         (uintptr_t)(buf_addr + buf_offset),
1979                         (uint32_t)buf_avail, 0);
1980
1981         mbuf_offset = 0;
1982         mbuf_avail  = m->buf_len - RTE_PKTMBUF_HEADROOM;
1983         while (1) {
1984                 cpy_len = RTE_MIN(buf_avail, mbuf_avail);
1985
1986                 if (likely(cpy_len > MAX_BATCH_LEN ||
1987                                         vq->batch_copy_nb_elems >= vq->size ||
1988                                         (hdr && cur == m))) {
1989                         rte_memcpy(rte_pktmbuf_mtod_offset(cur, void *,
1990                                                 mbuf_offset),
1991                                         (void *)((uintptr_t)(buf_addr +
1992                                                         buf_offset)), cpy_len);
1993                 } else {
1994                         batch_copy[vq->batch_copy_nb_elems].dst =
1995                                 rte_pktmbuf_mtod_offset(cur, void *,
1996                                                 mbuf_offset);
1997                         batch_copy[vq->batch_copy_nb_elems].src =
1998                                 (void *)((uintptr_t)(buf_addr + buf_offset));
1999                         batch_copy[vq->batch_copy_nb_elems].len = cpy_len;
2000                         vq->batch_copy_nb_elems++;
2001                 }
2002
2003                 mbuf_avail  -= cpy_len;
2004                 mbuf_offset += cpy_len;
2005                 buf_avail -= cpy_len;
2006                 buf_offset += cpy_len;
2007
2008                 /* This buf reaches to its end, get the next one */
2009                 if (buf_avail == 0) {
2010                         if (++vec_idx >= nr_vec)
2011                                 break;
2012
2013                         buf_addr = buf_vec[vec_idx].buf_addr;
2014                         buf_len = buf_vec[vec_idx].buf_len;
2015
2016                         buf_offset = 0;
2017                         buf_avail  = buf_len;
2018
2019                         PRINT_PACKET(dev, (uintptr_t)buf_addr,
2020                                         (uint32_t)buf_avail, 0);
2021                 }
2022
2023                 /*
2024                  * This mbuf reaches to its end, get a new one
2025                  * to hold more data.
2026                  */
2027                 if (mbuf_avail == 0) {
2028                         cur = rte_pktmbuf_alloc(mbuf_pool);
2029                         if (unlikely(cur == NULL)) {
2030                                 VHOST_LOG_DATA(ERR, "Failed to "
2031                                         "allocate memory for mbuf.\n");
2032                                 error = -1;
2033                                 goto out;
2034                         }
2035
2036                         prev->next = cur;
2037                         prev->data_len = mbuf_offset;
2038                         m->nb_segs += 1;
2039                         m->pkt_len += mbuf_offset;
2040                         prev = cur;
2041
2042                         mbuf_offset = 0;
2043                         mbuf_avail  = cur->buf_len - RTE_PKTMBUF_HEADROOM;
2044                 }
2045         }
2046
2047         prev->data_len = mbuf_offset;
2048         m->pkt_len    += mbuf_offset;
2049
2050         if (hdr)
2051                 vhost_dequeue_offload(hdr, m);
2052
2053 out:
2054
2055         return error;
2056 }
2057
2058 static void
2059 virtio_dev_extbuf_free(void *addr __rte_unused, void *opaque)
2060 {
2061         rte_free(opaque);
2062 }
2063
2064 static int
2065 virtio_dev_extbuf_alloc(struct rte_mbuf *pkt, uint32_t size)
2066 {
2067         struct rte_mbuf_ext_shared_info *shinfo = NULL;
2068         uint32_t total_len = RTE_PKTMBUF_HEADROOM + size;
2069         uint16_t buf_len;
2070         rte_iova_t iova;
2071         void *buf;
2072
2073         total_len += sizeof(*shinfo) + sizeof(uintptr_t);
2074         total_len = RTE_ALIGN_CEIL(total_len, sizeof(uintptr_t));
2075
2076         if (unlikely(total_len > UINT16_MAX))
2077                 return -ENOSPC;
2078
2079         buf_len = total_len;
2080         buf = rte_malloc(NULL, buf_len, RTE_CACHE_LINE_SIZE);
2081         if (unlikely(buf == NULL))
2082                 return -ENOMEM;
2083
2084         /* Initialize shinfo */
2085         shinfo = rte_pktmbuf_ext_shinfo_init_helper(buf, &buf_len,
2086                                                 virtio_dev_extbuf_free, buf);
2087         if (unlikely(shinfo == NULL)) {
2088                 rte_free(buf);
2089                 VHOST_LOG_DATA(ERR, "Failed to init shinfo\n");
2090                 return -1;
2091         }
2092
2093         iova = rte_malloc_virt2iova(buf);
2094         rte_pktmbuf_attach_extbuf(pkt, buf, iova, buf_len, shinfo);
2095         rte_pktmbuf_reset_headroom(pkt);
2096
2097         return 0;
2098 }
2099
2100 /*
2101  * Allocate a host supported pktmbuf.
2102  */
2103 static __rte_always_inline struct rte_mbuf *
2104 virtio_dev_pktmbuf_alloc(struct virtio_net *dev, struct rte_mempool *mp,
2105                          uint32_t data_len)
2106 {
2107         struct rte_mbuf *pkt = rte_pktmbuf_alloc(mp);
2108
2109         if (unlikely(pkt == NULL)) {
2110                 VHOST_LOG_DATA(ERR,
2111                         "Failed to allocate memory for mbuf.\n");
2112                 return NULL;
2113         }
2114
2115         if (rte_pktmbuf_tailroom(pkt) >= data_len)
2116                 return pkt;
2117
2118         /* attach an external buffer if supported */
2119         if (dev->extbuf && !virtio_dev_extbuf_alloc(pkt, data_len))
2120                 return pkt;
2121
2122         /* check if chained buffers are allowed */
2123         if (!dev->linearbuf)
2124                 return pkt;
2125
2126         /* Data doesn't fit into the buffer and the host supports
2127          * only linear buffers
2128          */
2129         rte_pktmbuf_free(pkt);
2130
2131         return NULL;
2132 }
2133
2134 static __rte_noinline uint16_t
2135 virtio_dev_tx_split(struct virtio_net *dev, struct vhost_virtqueue *vq,
2136         struct rte_mempool *mbuf_pool, struct rte_mbuf **pkts, uint16_t count)
2137 {
2138         uint16_t i;
2139         uint16_t free_entries;
2140         uint16_t dropped = 0;
2141         static bool allocerr_warned;
2142
2143         /*
2144          * The ordering between avail index and
2145          * desc reads needs to be enforced.
2146          */
2147         free_entries = __atomic_load_n(&vq->avail->idx, __ATOMIC_ACQUIRE) -
2148                         vq->last_avail_idx;
2149         if (free_entries == 0)
2150                 return 0;
2151
2152         rte_prefetch0(&vq->avail->ring[vq->last_avail_idx & (vq->size - 1)]);
2153
2154         VHOST_LOG_DATA(DEBUG, "(%d) %s\n", dev->vid, __func__);
2155
2156         count = RTE_MIN(count, MAX_PKT_BURST);
2157         count = RTE_MIN(count, free_entries);
2158         VHOST_LOG_DATA(DEBUG, "(%d) about to dequeue %u buffers\n",
2159                         dev->vid, count);
2160
2161         for (i = 0; i < count; i++) {
2162                 struct buf_vector buf_vec[BUF_VECTOR_MAX];
2163                 uint16_t head_idx;
2164                 uint32_t buf_len;
2165                 uint16_t nr_vec = 0;
2166                 int err;
2167
2168                 if (unlikely(fill_vec_buf_split(dev, vq,
2169                                                 vq->last_avail_idx + i,
2170                                                 &nr_vec, buf_vec,
2171                                                 &head_idx, &buf_len,
2172                                                 VHOST_ACCESS_RO) < 0))
2173                         break;
2174
2175                 update_shadow_used_ring_split(vq, head_idx, 0);
2176
2177                 pkts[i] = virtio_dev_pktmbuf_alloc(dev, mbuf_pool, buf_len);
2178                 if (unlikely(pkts[i] == NULL)) {
2179                         /*
2180                          * mbuf allocation fails for jumbo packets when external
2181                          * buffer allocation is not allowed and linear buffer
2182                          * is required. Drop this packet.
2183                          */
2184                         if (!allocerr_warned) {
2185                                 VHOST_LOG_DATA(ERR,
2186                                         "Failed mbuf alloc of size %d from %s on %s.\n",
2187                                         buf_len, mbuf_pool->name, dev->ifname);
2188                                 allocerr_warned = true;
2189                         }
2190                         dropped += 1;
2191                         i++;
2192                         break;
2193                 }
2194
2195                 err = copy_desc_to_mbuf(dev, vq, buf_vec, nr_vec, pkts[i],
2196                                 mbuf_pool);
2197                 if (unlikely(err)) {
2198                         rte_pktmbuf_free(pkts[i]);
2199                         if (!allocerr_warned) {
2200                                 VHOST_LOG_DATA(ERR,
2201                                         "Failed to copy desc to mbuf on %s.\n",
2202                                         dev->ifname);
2203                                 allocerr_warned = true;
2204                         }
2205                         dropped += 1;
2206                         i++;
2207                         break;
2208                 }
2209         }
2210
2211         vq->last_avail_idx += i;
2212
2213         do_data_copy_dequeue(vq);
2214         if (unlikely(i < count))
2215                 vq->shadow_used_idx = i;
2216         if (likely(vq->shadow_used_idx)) {
2217                 flush_shadow_used_ring_split(dev, vq);
2218                 vhost_vring_call_split(dev, vq);
2219         }
2220
2221         return (i - dropped);
2222 }
2223
2224 static __rte_always_inline int
2225 vhost_reserve_avail_batch_packed(struct virtio_net *dev,
2226                                  struct vhost_virtqueue *vq,
2227                                  struct rte_mempool *mbuf_pool,
2228                                  struct rte_mbuf **pkts,
2229                                  uint16_t avail_idx,
2230                                  uintptr_t *desc_addrs,
2231                                  uint16_t *ids)
2232 {
2233         bool wrap = vq->avail_wrap_counter;
2234         struct vring_packed_desc *descs = vq->desc_packed;
2235         struct virtio_net_hdr *hdr;
2236         uint64_t lens[PACKED_BATCH_SIZE];
2237         uint64_t buf_lens[PACKED_BATCH_SIZE];
2238         uint32_t buf_offset = sizeof(struct virtio_net_hdr_mrg_rxbuf);
2239         uint16_t flags, i;
2240
2241         if (unlikely(avail_idx & PACKED_BATCH_MASK))
2242                 return -1;
2243         if (unlikely((avail_idx + PACKED_BATCH_SIZE) > vq->size))
2244                 return -1;
2245
2246         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
2247                 flags = descs[avail_idx + i].flags;
2248                 if (unlikely((wrap != !!(flags & VRING_DESC_F_AVAIL)) ||
2249                              (wrap == !!(flags & VRING_DESC_F_USED))  ||
2250                              (flags & PACKED_DESC_SINGLE_DEQUEUE_FLAG)))
2251                         return -1;
2252         }
2253
2254         rte_smp_rmb();
2255
2256         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
2257                 lens[i] = descs[avail_idx + i].len;
2258
2259         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
2260                 desc_addrs[i] = vhost_iova_to_vva(dev, vq,
2261                                                   descs[avail_idx + i].addr,
2262                                                   &lens[i], VHOST_ACCESS_RW);
2263         }
2264
2265         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
2266                 if (unlikely(!desc_addrs[i]))
2267                         return -1;
2268                 if (unlikely((lens[i] != descs[avail_idx + i].len)))
2269                         return -1;
2270         }
2271
2272         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
2273                 pkts[i] = virtio_dev_pktmbuf_alloc(dev, mbuf_pool, lens[i]);
2274                 if (!pkts[i])
2275                         goto free_buf;
2276         }
2277
2278         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
2279                 buf_lens[i] = pkts[i]->buf_len - pkts[i]->data_off;
2280
2281         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
2282                 if (unlikely(buf_lens[i] < (lens[i] - buf_offset)))
2283                         goto free_buf;
2284         }
2285
2286         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
2287                 pkts[i]->pkt_len = descs[avail_idx + i].len - buf_offset;
2288                 pkts[i]->data_len = pkts[i]->pkt_len;
2289                 ids[i] = descs[avail_idx + i].id;
2290         }
2291
2292         if (virtio_net_with_host_offload(dev)) {
2293                 vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE) {
2294                         hdr = (struct virtio_net_hdr *)(desc_addrs[i]);
2295                         vhost_dequeue_offload(hdr, pkts[i]);
2296                 }
2297         }
2298
2299         return 0;
2300
2301 free_buf:
2302         for (i = 0; i < PACKED_BATCH_SIZE; i++)
2303                 rte_pktmbuf_free(pkts[i]);
2304
2305         return -1;
2306 }
2307
2308 static __rte_always_inline int
2309 virtio_dev_tx_batch_packed(struct virtio_net *dev,
2310                            struct vhost_virtqueue *vq,
2311                            struct rte_mempool *mbuf_pool,
2312                            struct rte_mbuf **pkts)
2313 {
2314         uint16_t avail_idx = vq->last_avail_idx;
2315         uint32_t buf_offset = sizeof(struct virtio_net_hdr_mrg_rxbuf);
2316         uintptr_t desc_addrs[PACKED_BATCH_SIZE];
2317         uint16_t ids[PACKED_BATCH_SIZE];
2318         uint16_t i;
2319
2320         if (vhost_reserve_avail_batch_packed(dev, vq, mbuf_pool, pkts,
2321                                              avail_idx, desc_addrs, ids))
2322                 return -1;
2323
2324         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
2325                 rte_prefetch0((void *)(uintptr_t)desc_addrs[i]);
2326
2327         vhost_for_each_try_unroll(i, 0, PACKED_BATCH_SIZE)
2328                 rte_memcpy(rte_pktmbuf_mtod_offset(pkts[i], void *, 0),
2329                            (void *)(uintptr_t)(desc_addrs[i] + buf_offset),
2330                            pkts[i]->pkt_len);
2331
2332         if (virtio_net_is_inorder(dev))
2333                 vhost_shadow_dequeue_batch_packed_inorder(vq,
2334                         ids[PACKED_BATCH_SIZE - 1]);
2335         else
2336                 vhost_shadow_dequeue_batch_packed(dev, vq, ids);
2337
2338         vq_inc_last_avail_packed(vq, PACKED_BATCH_SIZE);
2339
2340         return 0;
2341 }
2342
2343 static __rte_always_inline int
2344 vhost_dequeue_single_packed(struct virtio_net *dev,
2345                             struct vhost_virtqueue *vq,
2346                             struct rte_mempool *mbuf_pool,
2347                             struct rte_mbuf **pkts,
2348                             uint16_t *buf_id,
2349                             uint16_t *desc_count)
2350 {
2351         struct buf_vector buf_vec[BUF_VECTOR_MAX];
2352         uint32_t buf_len;
2353         uint16_t nr_vec = 0;
2354         int err;
2355         static bool allocerr_warned;
2356
2357         if (unlikely(fill_vec_buf_packed(dev, vq,
2358                                          vq->last_avail_idx, desc_count,
2359                                          buf_vec, &nr_vec,
2360                                          buf_id, &buf_len,
2361                                          VHOST_ACCESS_RO) < 0))
2362                 return -1;
2363
2364         *pkts = virtio_dev_pktmbuf_alloc(dev, mbuf_pool, buf_len);
2365         if (unlikely(*pkts == NULL)) {
2366                 if (!allocerr_warned) {
2367                         VHOST_LOG_DATA(ERR,
2368                                 "Failed mbuf alloc of size %d from %s on %s.\n",
2369                                 buf_len, mbuf_pool->name, dev->ifname);
2370                         allocerr_warned = true;
2371                 }
2372                 return -1;
2373         }
2374
2375         err = copy_desc_to_mbuf(dev, vq, buf_vec, nr_vec, *pkts,
2376                                 mbuf_pool);
2377         if (unlikely(err)) {
2378                 if (!allocerr_warned) {
2379                         VHOST_LOG_DATA(ERR,
2380                                 "Failed to copy desc to mbuf on %s.\n",
2381                                 dev->ifname);
2382                         allocerr_warned = true;
2383                 }
2384                 rte_pktmbuf_free(*pkts);
2385                 return -1;
2386         }
2387
2388         return 0;
2389 }
2390
2391 static __rte_always_inline int
2392 virtio_dev_tx_single_packed(struct virtio_net *dev,
2393                             struct vhost_virtqueue *vq,
2394                             struct rte_mempool *mbuf_pool,
2395                             struct rte_mbuf **pkts)
2396 {
2397
2398         uint16_t buf_id, desc_count = 0;
2399         int ret;
2400
2401         ret = vhost_dequeue_single_packed(dev, vq, mbuf_pool, pkts, &buf_id,
2402                                         &desc_count);
2403
2404         if (likely(desc_count > 0)) {
2405                 if (virtio_net_is_inorder(dev))
2406                         vhost_shadow_dequeue_single_packed_inorder(vq, buf_id,
2407                                                                    desc_count);
2408                 else
2409                         vhost_shadow_dequeue_single_packed(vq, buf_id,
2410                                         desc_count);
2411
2412                 vq_inc_last_avail_packed(vq, desc_count);
2413         }
2414
2415         return ret;
2416 }
2417
2418 static __rte_noinline uint16_t
2419 virtio_dev_tx_packed(struct virtio_net *dev,
2420                      struct vhost_virtqueue *__rte_restrict vq,
2421                      struct rte_mempool *mbuf_pool,
2422                      struct rte_mbuf **__rte_restrict pkts,
2423                      uint32_t count)
2424 {
2425         uint32_t pkt_idx = 0;
2426         uint32_t remained = count;
2427
2428         do {
2429                 rte_prefetch0(&vq->desc_packed[vq->last_avail_idx]);
2430
2431                 if (remained >= PACKED_BATCH_SIZE) {
2432                         if (!virtio_dev_tx_batch_packed(dev, vq, mbuf_pool,
2433                                                         &pkts[pkt_idx])) {
2434                                 pkt_idx += PACKED_BATCH_SIZE;
2435                                 remained -= PACKED_BATCH_SIZE;
2436                                 continue;
2437                         }
2438                 }
2439
2440                 if (virtio_dev_tx_single_packed(dev, vq, mbuf_pool,
2441                                                 &pkts[pkt_idx]))
2442                         break;
2443                 pkt_idx++;
2444                 remained--;
2445
2446         } while (remained);
2447
2448         if (vq->shadow_used_idx) {
2449                 do_data_copy_dequeue(vq);
2450
2451                 vhost_flush_dequeue_shadow_packed(dev, vq);
2452                 vhost_vring_call_packed(dev, vq);
2453         }
2454
2455         return pkt_idx;
2456 }
2457
2458 uint16_t
2459 rte_vhost_dequeue_burst(int vid, uint16_t queue_id,
2460         struct rte_mempool *mbuf_pool, struct rte_mbuf **pkts, uint16_t count)
2461 {
2462         struct virtio_net *dev;
2463         struct rte_mbuf *rarp_mbuf = NULL;
2464         struct vhost_virtqueue *vq;
2465         int16_t success = 1;
2466
2467         dev = get_device(vid);
2468         if (!dev)
2469                 return 0;
2470
2471         if (unlikely(!(dev->flags & VIRTIO_DEV_BUILTIN_VIRTIO_NET))) {
2472                 VHOST_LOG_DATA(ERR,
2473                         "(%d) %s: built-in vhost net backend is disabled.\n",
2474                         dev->vid, __func__);
2475                 return 0;
2476         }
2477
2478         if (unlikely(!is_valid_virt_queue_idx(queue_id, 1, dev->nr_vring))) {
2479                 VHOST_LOG_DATA(ERR,
2480                         "(%d) %s: invalid virtqueue idx %d.\n",
2481                         dev->vid, __func__, queue_id);
2482                 return 0;
2483         }
2484
2485         vq = dev->virtqueue[queue_id];
2486
2487         if (unlikely(rte_spinlock_trylock(&vq->access_lock) == 0))
2488                 return 0;
2489
2490         if (unlikely(vq->enabled == 0)) {
2491                 count = 0;
2492                 goto out_access_unlock;
2493         }
2494
2495         if (dev->features & (1ULL << VIRTIO_F_IOMMU_PLATFORM))
2496                 vhost_user_iotlb_rd_lock(vq);
2497
2498         if (unlikely(vq->access_ok == 0))
2499                 if (unlikely(vring_translate(dev, vq) < 0)) {
2500                         count = 0;
2501                         goto out;
2502                 }
2503
2504         /*
2505          * Construct a RARP broadcast packet, and inject it to the "pkts"
2506          * array, to looks like that guest actually send such packet.
2507          *
2508          * Check user_send_rarp() for more information.
2509          *
2510          * broadcast_rarp shares a cacheline in the virtio_net structure
2511          * with some fields that are accessed during enqueue and
2512          * __atomic_compare_exchange_n causes a write if performed compare
2513          * and exchange. This could result in false sharing between enqueue
2514          * and dequeue.
2515          *
2516          * Prevent unnecessary false sharing by reading broadcast_rarp first
2517          * and only performing compare and exchange if the read indicates it
2518          * is likely to be set.
2519          */
2520         if (unlikely(__atomic_load_n(&dev->broadcast_rarp, __ATOMIC_ACQUIRE) &&
2521                         __atomic_compare_exchange_n(&dev->broadcast_rarp,
2522                         &success, 0, 0, __ATOMIC_RELEASE, __ATOMIC_RELAXED))) {
2523
2524                 rarp_mbuf = rte_net_make_rarp_packet(mbuf_pool, &dev->mac);
2525                 if (rarp_mbuf == NULL) {
2526                         VHOST_LOG_DATA(ERR, "Failed to make RARP packet.\n");
2527                         count = 0;
2528                         goto out;
2529                 }
2530                 count -= 1;
2531         }
2532
2533         if (vq_is_packed(dev))
2534                 count = virtio_dev_tx_packed(dev, vq, mbuf_pool, pkts, count);
2535         else
2536                 count = virtio_dev_tx_split(dev, vq, mbuf_pool, pkts, count);
2537
2538 out:
2539         if (dev->features & (1ULL << VIRTIO_F_IOMMU_PLATFORM))
2540                 vhost_user_iotlb_rd_unlock(vq);
2541
2542 out_access_unlock:
2543         rte_spinlock_unlock(&vq->access_lock);
2544
2545         if (unlikely(rarp_mbuf != NULL)) {
2546                 /*
2547                  * Inject it to the head of "pkts" array, so that switch's mac
2548                  * learning table will get updated first.
2549                  */
2550                 memmove(&pkts[1], pkts, count * sizeof(struct rte_mbuf *));
2551                 pkts[0] = rarp_mbuf;
2552                 count += 1;
2553         }
2554
2555         return count;
2556 }