net.c 29 KB

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  1. /* Copyright (C) 2009 Red Hat, Inc.
  2. * Author: Michael S. Tsirkin <mst@redhat.com>
  3. *
  4. * This work is licensed under the terms of the GNU GPL, version 2.
  5. *
  6. * virtio-net server in host kernel.
  7. */
  8. #include <linux/compat.h>
  9. #include <linux/eventfd.h>
  10. #include <linux/vhost.h>
  11. #include <linux/virtio_net.h>
  12. #include <linux/miscdevice.h>
  13. #include <linux/module.h>
  14. #include <linux/moduleparam.h>
  15. #include <linux/mutex.h>
  16. #include <linux/workqueue.h>
  17. #include <linux/file.h>
  18. #include <linux/slab.h>
  19. #include <linux/vmalloc.h>
  20. #include <linux/net.h>
  21. #include <linux/if_packet.h>
  22. #include <linux/if_arp.h>
  23. #include <linux/if_tun.h>
  24. #include <linux/if_macvlan.h>
  25. #include <linux/if_vlan.h>
  26. #include <net/sock.h>
  27. #include "vhost.h"
  28. static int experimental_zcopytx = 1;
  29. module_param(experimental_zcopytx, int, 0444);
  30. MODULE_PARM_DESC(experimental_zcopytx, "Enable Zero Copy TX;"
  31. " 1 -Enable; 0 - Disable");
  32. /* Max number of bytes transferred before requeueing the job.
  33. * Using this limit prevents one virtqueue from starving others. */
  34. #define VHOST_NET_WEIGHT 0x80000
  35. /* MAX number of TX used buffers for outstanding zerocopy */
  36. #define VHOST_MAX_PEND 128
  37. #define VHOST_GOODCOPY_LEN 256
  38. /*
  39. * For transmit, used buffer len is unused; we override it to track buffer
  40. * status internally; used for zerocopy tx only.
  41. */
  42. /* Lower device DMA failed */
  43. #define VHOST_DMA_FAILED_LEN ((__force __virtio32)3)
  44. /* Lower device DMA done */
  45. #define VHOST_DMA_DONE_LEN ((__force __virtio32)2)
  46. /* Lower device DMA in progress */
  47. #define VHOST_DMA_IN_PROGRESS ((__force __virtio32)1)
  48. /* Buffer unused */
  49. #define VHOST_DMA_CLEAR_LEN ((__force __virtio32)0)
  50. #define VHOST_DMA_IS_DONE(len) ((__force u32)(len) >= (__force u32)VHOST_DMA_DONE_LEN)
  51. enum {
  52. VHOST_NET_FEATURES = VHOST_FEATURES |
  53. (1ULL << VHOST_NET_F_VIRTIO_NET_HDR) |
  54. (1ULL << VIRTIO_NET_F_MRG_RXBUF) |
  55. (1ULL << VIRTIO_F_VERSION_1),
  56. };
  57. enum {
  58. VHOST_NET_VQ_RX = 0,
  59. VHOST_NET_VQ_TX = 1,
  60. VHOST_NET_VQ_MAX = 2,
  61. };
  62. struct vhost_net_ubuf_ref {
  63. /* refcount follows semantics similar to kref:
  64. * 0: object is released
  65. * 1: no outstanding ubufs
  66. * >1: outstanding ubufs
  67. */
  68. atomic_t refcount;
  69. wait_queue_head_t wait;
  70. struct vhost_virtqueue *vq;
  71. };
  72. struct vhost_net_virtqueue {
  73. struct vhost_virtqueue vq;
  74. /* hdr is used to store the virtio header.
  75. * Since each iovec has >= 1 byte length, we never need more than
  76. * header length entries to store the header. */
  77. struct iovec hdr[sizeof(struct virtio_net_hdr_mrg_rxbuf)];
  78. size_t vhost_hlen;
  79. size_t sock_hlen;
  80. /* vhost zerocopy support fields below: */
  81. /* last used idx for outstanding DMA zerocopy buffers */
  82. int upend_idx;
  83. /* first used idx for DMA done zerocopy buffers */
  84. int done_idx;
  85. /* an array of userspace buffers info */
  86. struct ubuf_info *ubuf_info;
  87. /* Reference counting for outstanding ubufs.
  88. * Protected by vq mutex. Writers must also take device mutex. */
  89. struct vhost_net_ubuf_ref *ubufs;
  90. };
  91. struct vhost_net {
  92. struct vhost_dev dev;
  93. struct vhost_net_virtqueue vqs[VHOST_NET_VQ_MAX];
  94. struct vhost_poll poll[VHOST_NET_VQ_MAX];
  95. /* Number of TX recently submitted.
  96. * Protected by tx vq lock. */
  97. unsigned tx_packets;
  98. /* Number of times zerocopy TX recently failed.
  99. * Protected by tx vq lock. */
  100. unsigned tx_zcopy_err;
  101. /* Flush in progress. Protected by tx vq lock. */
  102. bool tx_flush;
  103. };
  104. static unsigned vhost_net_zcopy_mask __read_mostly;
  105. static void vhost_net_enable_zcopy(int vq)
  106. {
  107. vhost_net_zcopy_mask |= 0x1 << vq;
  108. }
  109. static struct vhost_net_ubuf_ref *
  110. vhost_net_ubuf_alloc(struct vhost_virtqueue *vq, bool zcopy)
  111. {
  112. struct vhost_net_ubuf_ref *ubufs;
  113. /* No zero copy backend? Nothing to count. */
  114. if (!zcopy)
  115. return NULL;
  116. ubufs = kmalloc(sizeof(*ubufs), GFP_KERNEL);
  117. if (!ubufs)
  118. return ERR_PTR(-ENOMEM);
  119. atomic_set(&ubufs->refcount, 1);
  120. init_waitqueue_head(&ubufs->wait);
  121. ubufs->vq = vq;
  122. return ubufs;
  123. }
  124. static int vhost_net_ubuf_put(struct vhost_net_ubuf_ref *ubufs)
  125. {
  126. int r = atomic_sub_return(1, &ubufs->refcount);
  127. if (unlikely(!r))
  128. wake_up(&ubufs->wait);
  129. return r;
  130. }
  131. static void vhost_net_ubuf_put_and_wait(struct vhost_net_ubuf_ref *ubufs)
  132. {
  133. vhost_net_ubuf_put(ubufs);
  134. wait_event(ubufs->wait, !atomic_read(&ubufs->refcount));
  135. }
  136. static void vhost_net_ubuf_put_wait_and_free(struct vhost_net_ubuf_ref *ubufs)
  137. {
  138. vhost_net_ubuf_put_and_wait(ubufs);
  139. kfree(ubufs);
  140. }
  141. static void vhost_net_clear_ubuf_info(struct vhost_net *n)
  142. {
  143. int i;
  144. for (i = 0; i < VHOST_NET_VQ_MAX; ++i) {
  145. kfree(n->vqs[i].ubuf_info);
  146. n->vqs[i].ubuf_info = NULL;
  147. }
  148. }
  149. static int vhost_net_set_ubuf_info(struct vhost_net *n)
  150. {
  151. bool zcopy;
  152. int i;
  153. for (i = 0; i < VHOST_NET_VQ_MAX; ++i) {
  154. zcopy = vhost_net_zcopy_mask & (0x1 << i);
  155. if (!zcopy)
  156. continue;
  157. n->vqs[i].ubuf_info = kmalloc(sizeof(*n->vqs[i].ubuf_info) *
  158. UIO_MAXIOV, GFP_KERNEL);
  159. if (!n->vqs[i].ubuf_info)
  160. goto err;
  161. }
  162. return 0;
  163. err:
  164. vhost_net_clear_ubuf_info(n);
  165. return -ENOMEM;
  166. }
  167. static void vhost_net_vq_reset(struct vhost_net *n)
  168. {
  169. int i;
  170. vhost_net_clear_ubuf_info(n);
  171. for (i = 0; i < VHOST_NET_VQ_MAX; i++) {
  172. n->vqs[i].done_idx = 0;
  173. n->vqs[i].upend_idx = 0;
  174. n->vqs[i].ubufs = NULL;
  175. n->vqs[i].vhost_hlen = 0;
  176. n->vqs[i].sock_hlen = 0;
  177. }
  178. }
  179. static void vhost_net_tx_packet(struct vhost_net *net)
  180. {
  181. ++net->tx_packets;
  182. if (net->tx_packets < 1024)
  183. return;
  184. net->tx_packets = 0;
  185. net->tx_zcopy_err = 0;
  186. }
  187. static void vhost_net_tx_err(struct vhost_net *net)
  188. {
  189. ++net->tx_zcopy_err;
  190. }
  191. static bool vhost_net_tx_select_zcopy(struct vhost_net *net)
  192. {
  193. /* TX flush waits for outstanding DMAs to be done.
  194. * Don't start new DMAs.
  195. */
  196. return !net->tx_flush &&
  197. net->tx_packets / 64 >= net->tx_zcopy_err;
  198. }
  199. static bool vhost_sock_zcopy(struct socket *sock)
  200. {
  201. return unlikely(experimental_zcopytx) &&
  202. sock_flag(sock->sk, SOCK_ZEROCOPY);
  203. }
  204. /* Pop first len bytes from iovec. Return number of segments used. */
  205. static int move_iovec_hdr(struct iovec *from, struct iovec *to,
  206. size_t len, int iov_count)
  207. {
  208. int seg = 0;
  209. size_t size;
  210. while (len && seg < iov_count) {
  211. size = min(from->iov_len, len);
  212. to->iov_base = from->iov_base;
  213. to->iov_len = size;
  214. from->iov_len -= size;
  215. from->iov_base += size;
  216. len -= size;
  217. ++from;
  218. ++to;
  219. ++seg;
  220. }
  221. return seg;
  222. }
  223. /* Copy iovec entries for len bytes from iovec. */
  224. static void copy_iovec_hdr(const struct iovec *from, struct iovec *to,
  225. size_t len, int iovcount)
  226. {
  227. int seg = 0;
  228. size_t size;
  229. while (len && seg < iovcount) {
  230. size = min(from->iov_len, len);
  231. to->iov_base = from->iov_base;
  232. to->iov_len = size;
  233. len -= size;
  234. ++from;
  235. ++to;
  236. ++seg;
  237. }
  238. }
  239. /* In case of DMA done not in order in lower device driver for some reason.
  240. * upend_idx is used to track end of used idx, done_idx is used to track head
  241. * of used idx. Once lower device DMA done contiguously, we will signal KVM
  242. * guest used idx.
  243. */
  244. static void vhost_zerocopy_signal_used(struct vhost_net *net,
  245. struct vhost_virtqueue *vq)
  246. {
  247. struct vhost_net_virtqueue *nvq =
  248. container_of(vq, struct vhost_net_virtqueue, vq);
  249. int i, add;
  250. int j = 0;
  251. for (i = nvq->done_idx; i != nvq->upend_idx; i = (i + 1) % UIO_MAXIOV) {
  252. if (vq->heads[i].len == VHOST_DMA_FAILED_LEN)
  253. vhost_net_tx_err(net);
  254. if (VHOST_DMA_IS_DONE(vq->heads[i].len)) {
  255. vq->heads[i].len = VHOST_DMA_CLEAR_LEN;
  256. ++j;
  257. } else
  258. break;
  259. }
  260. while (j) {
  261. add = min(UIO_MAXIOV - nvq->done_idx, j);
  262. vhost_add_used_and_signal_n(vq->dev, vq,
  263. &vq->heads[nvq->done_idx], add);
  264. nvq->done_idx = (nvq->done_idx + add) % UIO_MAXIOV;
  265. j -= add;
  266. }
  267. }
  268. static void vhost_zerocopy_callback(struct ubuf_info *ubuf, bool success)
  269. {
  270. struct vhost_net_ubuf_ref *ubufs = ubuf->ctx;
  271. struct vhost_virtqueue *vq = ubufs->vq;
  272. int cnt;
  273. rcu_read_lock_bh();
  274. /* set len to mark this desc buffers done DMA */
  275. vq->heads[ubuf->desc].len = success ?
  276. VHOST_DMA_DONE_LEN : VHOST_DMA_FAILED_LEN;
  277. cnt = vhost_net_ubuf_put(ubufs);
  278. /*
  279. * Trigger polling thread if guest stopped submitting new buffers:
  280. * in this case, the refcount after decrement will eventually reach 1.
  281. * We also trigger polling periodically after each 16 packets
  282. * (the value 16 here is more or less arbitrary, it's tuned to trigger
  283. * less than 10% of times).
  284. */
  285. if (cnt <= 1 || !(cnt % 16))
  286. vhost_poll_queue(&vq->poll);
  287. rcu_read_unlock_bh();
  288. }
  289. /* Expects to be always run from workqueue - which acts as
  290. * read-size critical section for our kind of RCU. */
  291. static void handle_tx(struct vhost_net *net)
  292. {
  293. struct vhost_net_virtqueue *nvq = &net->vqs[VHOST_NET_VQ_TX];
  294. struct vhost_virtqueue *vq = &nvq->vq;
  295. unsigned out, in;
  296. int head;
  297. struct msghdr msg = {
  298. .msg_name = NULL,
  299. .msg_namelen = 0,
  300. .msg_control = NULL,
  301. .msg_controllen = 0,
  302. .msg_flags = MSG_DONTWAIT,
  303. };
  304. size_t len, total_len = 0;
  305. int err;
  306. size_t hdr_size;
  307. struct socket *sock;
  308. struct vhost_net_ubuf_ref *uninitialized_var(ubufs);
  309. bool zcopy, zcopy_used;
  310. mutex_lock(&vq->mutex);
  311. sock = vq->private_data;
  312. if (!sock)
  313. goto out;
  314. vhost_disable_notify(&net->dev, vq);
  315. hdr_size = nvq->vhost_hlen;
  316. zcopy = nvq->ubufs;
  317. for (;;) {
  318. /* Release DMAs done buffers first */
  319. if (zcopy)
  320. vhost_zerocopy_signal_used(net, vq);
  321. /* If more outstanding DMAs, queue the work.
  322. * Handle upend_idx wrap around
  323. */
  324. if (unlikely((nvq->upend_idx + vq->num - VHOST_MAX_PEND)
  325. % UIO_MAXIOV == nvq->done_idx))
  326. break;
  327. head = vhost_get_vq_desc(vq, vq->iov,
  328. ARRAY_SIZE(vq->iov),
  329. &out, &in,
  330. NULL, NULL);
  331. /* On error, stop handling until the next kick. */
  332. if (unlikely(head < 0))
  333. break;
  334. /* Nothing new? Wait for eventfd to tell us they refilled. */
  335. if (head == vq->num) {
  336. if (unlikely(vhost_enable_notify(&net->dev, vq))) {
  337. vhost_disable_notify(&net->dev, vq);
  338. continue;
  339. }
  340. break;
  341. }
  342. if (in) {
  343. vq_err(vq, "Unexpected descriptor format for TX: "
  344. "out %d, int %d\n", out, in);
  345. break;
  346. }
  347. /* Skip header. TODO: support TSO. */
  348. len = iov_length(vq->iov, out);
  349. iov_iter_init(&msg.msg_iter, WRITE, vq->iov, out, len);
  350. iov_iter_advance(&msg.msg_iter, hdr_size);
  351. /* Sanity check */
  352. if (!iov_iter_count(&msg.msg_iter)) {
  353. vq_err(vq, "Unexpected header len for TX: "
  354. "%zd expected %zd\n",
  355. len, hdr_size);
  356. break;
  357. }
  358. len = iov_iter_count(&msg.msg_iter);
  359. zcopy_used = zcopy && len >= VHOST_GOODCOPY_LEN
  360. && (nvq->upend_idx + 1) % UIO_MAXIOV !=
  361. nvq->done_idx
  362. && vhost_net_tx_select_zcopy(net);
  363. /* use msg_control to pass vhost zerocopy ubuf info to skb */
  364. if (zcopy_used) {
  365. struct ubuf_info *ubuf;
  366. ubuf = nvq->ubuf_info + nvq->upend_idx;
  367. vq->heads[nvq->upend_idx].id = cpu_to_vhost32(vq, head);
  368. vq->heads[nvq->upend_idx].len = VHOST_DMA_IN_PROGRESS;
  369. ubuf->callback = vhost_zerocopy_callback;
  370. ubuf->ctx = nvq->ubufs;
  371. ubuf->desc = nvq->upend_idx;
  372. msg.msg_control = ubuf;
  373. msg.msg_controllen = sizeof(ubuf);
  374. ubufs = nvq->ubufs;
  375. atomic_inc(&ubufs->refcount);
  376. nvq->upend_idx = (nvq->upend_idx + 1) % UIO_MAXIOV;
  377. } else {
  378. msg.msg_control = NULL;
  379. ubufs = NULL;
  380. }
  381. /* TODO: Check specific error and bomb out unless ENOBUFS? */
  382. err = sock->ops->sendmsg(NULL, sock, &msg, len);
  383. if (unlikely(err < 0)) {
  384. if (zcopy_used) {
  385. vhost_net_ubuf_put(ubufs);
  386. nvq->upend_idx = ((unsigned)nvq->upend_idx - 1)
  387. % UIO_MAXIOV;
  388. }
  389. vhost_discard_vq_desc(vq, 1);
  390. break;
  391. }
  392. if (err != len)
  393. pr_debug("Truncated TX packet: "
  394. " len %d != %zd\n", err, len);
  395. if (!zcopy_used)
  396. vhost_add_used_and_signal(&net->dev, vq, head, 0);
  397. else
  398. vhost_zerocopy_signal_used(net, vq);
  399. total_len += len;
  400. vhost_net_tx_packet(net);
  401. if (unlikely(total_len >= VHOST_NET_WEIGHT)) {
  402. vhost_poll_queue(&vq->poll);
  403. break;
  404. }
  405. }
  406. out:
  407. mutex_unlock(&vq->mutex);
  408. }
  409. static int peek_head_len(struct sock *sk)
  410. {
  411. struct sk_buff *head;
  412. int len = 0;
  413. unsigned long flags;
  414. spin_lock_irqsave(&sk->sk_receive_queue.lock, flags);
  415. head = skb_peek(&sk->sk_receive_queue);
  416. if (likely(head)) {
  417. len = head->len;
  418. if (skb_vlan_tag_present(head))
  419. len += VLAN_HLEN;
  420. }
  421. spin_unlock_irqrestore(&sk->sk_receive_queue.lock, flags);
  422. return len;
  423. }
  424. /* This is a multi-buffer version of vhost_get_desc, that works if
  425. * vq has read descriptors only.
  426. * @vq - the relevant virtqueue
  427. * @datalen - data length we'll be reading
  428. * @iovcount - returned count of io vectors we fill
  429. * @log - vhost log
  430. * @log_num - log offset
  431. * @quota - headcount quota, 1 for big buffer
  432. * returns number of buffer heads allocated, negative on error
  433. */
  434. static int get_rx_bufs(struct vhost_virtqueue *vq,
  435. struct vring_used_elem *heads,
  436. int datalen,
  437. unsigned *iovcount,
  438. struct vhost_log *log,
  439. unsigned *log_num,
  440. unsigned int quota)
  441. {
  442. unsigned int out, in;
  443. int seg = 0;
  444. int headcount = 0;
  445. unsigned d;
  446. int r, nlogs = 0;
  447. /* len is always initialized before use since we are always called with
  448. * datalen > 0.
  449. */
  450. u32 uninitialized_var(len);
  451. while (datalen > 0 && headcount < quota) {
  452. if (unlikely(seg >= UIO_MAXIOV)) {
  453. r = -ENOBUFS;
  454. goto err;
  455. }
  456. r = vhost_get_vq_desc(vq, vq->iov + seg,
  457. ARRAY_SIZE(vq->iov) - seg, &out,
  458. &in, log, log_num);
  459. if (unlikely(r < 0))
  460. goto err;
  461. d = r;
  462. if (d == vq->num) {
  463. r = 0;
  464. goto err;
  465. }
  466. if (unlikely(out || in <= 0)) {
  467. vq_err(vq, "unexpected descriptor format for RX: "
  468. "out %d, in %d\n", out, in);
  469. r = -EINVAL;
  470. goto err;
  471. }
  472. if (unlikely(log)) {
  473. nlogs += *log_num;
  474. log += *log_num;
  475. }
  476. heads[headcount].id = cpu_to_vhost32(vq, d);
  477. len = iov_length(vq->iov + seg, in);
  478. heads[headcount].len = cpu_to_vhost32(vq, len);
  479. datalen -= len;
  480. ++headcount;
  481. seg += in;
  482. }
  483. heads[headcount - 1].len = cpu_to_vhost32(vq, len + datalen);
  484. *iovcount = seg;
  485. if (unlikely(log))
  486. *log_num = nlogs;
  487. /* Detect overrun */
  488. if (unlikely(datalen > 0)) {
  489. r = UIO_MAXIOV + 1;
  490. goto err;
  491. }
  492. return headcount;
  493. err:
  494. vhost_discard_vq_desc(vq, headcount);
  495. return r;
  496. }
  497. /* Expects to be always run from workqueue - which acts as
  498. * read-size critical section for our kind of RCU. */
  499. static void handle_rx(struct vhost_net *net)
  500. {
  501. struct vhost_net_virtqueue *nvq = &net->vqs[VHOST_NET_VQ_RX];
  502. struct vhost_virtqueue *vq = &nvq->vq;
  503. unsigned uninitialized_var(in), log;
  504. struct vhost_log *vq_log;
  505. struct msghdr msg = {
  506. .msg_name = NULL,
  507. .msg_namelen = 0,
  508. .msg_control = NULL, /* FIXME: get and handle RX aux data. */
  509. .msg_controllen = 0,
  510. .msg_flags = MSG_DONTWAIT,
  511. };
  512. struct virtio_net_hdr_mrg_rxbuf hdr = {
  513. .hdr.flags = 0,
  514. .hdr.gso_type = VIRTIO_NET_HDR_GSO_NONE
  515. };
  516. size_t total_len = 0;
  517. int err, mergeable;
  518. s16 headcount;
  519. size_t vhost_hlen, sock_hlen;
  520. size_t vhost_len, sock_len;
  521. struct socket *sock;
  522. mutex_lock(&vq->mutex);
  523. sock = vq->private_data;
  524. if (!sock)
  525. goto out;
  526. vhost_disable_notify(&net->dev, vq);
  527. vhost_hlen = nvq->vhost_hlen;
  528. sock_hlen = nvq->sock_hlen;
  529. vq_log = unlikely(vhost_has_feature(vq, VHOST_F_LOG_ALL)) ?
  530. vq->log : NULL;
  531. mergeable = vhost_has_feature(vq, VIRTIO_NET_F_MRG_RXBUF);
  532. while ((sock_len = peek_head_len(sock->sk))) {
  533. sock_len += sock_hlen;
  534. vhost_len = sock_len + vhost_hlen;
  535. headcount = get_rx_bufs(vq, vq->heads, vhost_len,
  536. &in, vq_log, &log,
  537. likely(mergeable) ? UIO_MAXIOV : 1);
  538. /* On error, stop handling until the next kick. */
  539. if (unlikely(headcount < 0))
  540. break;
  541. /* On overrun, truncate and discard */
  542. if (unlikely(headcount > UIO_MAXIOV)) {
  543. iov_iter_init(&msg.msg_iter, READ, vq->iov, 1, 1);
  544. err = sock->ops->recvmsg(NULL, sock, &msg,
  545. 1, MSG_DONTWAIT | MSG_TRUNC);
  546. pr_debug("Discarded rx packet: len %zd\n", sock_len);
  547. continue;
  548. }
  549. /* OK, now we need to know about added descriptors. */
  550. if (!headcount) {
  551. if (unlikely(vhost_enable_notify(&net->dev, vq))) {
  552. /* They have slipped one in as we were
  553. * doing that: check again. */
  554. vhost_disable_notify(&net->dev, vq);
  555. continue;
  556. }
  557. /* Nothing new? Wait for eventfd to tell us
  558. * they refilled. */
  559. break;
  560. }
  561. /* We don't need to be notified again. */
  562. if (unlikely((vhost_hlen)))
  563. /* Skip header. TODO: support TSO. */
  564. move_iovec_hdr(vq->iov, nvq->hdr, vhost_hlen, in);
  565. else
  566. /* Copy the header for use in VIRTIO_NET_F_MRG_RXBUF:
  567. * needed because recvmsg can modify msg_iov. */
  568. copy_iovec_hdr(vq->iov, nvq->hdr, sock_hlen, in);
  569. iov_iter_init(&msg.msg_iter, READ, vq->iov, in, sock_len);
  570. err = sock->ops->recvmsg(NULL, sock, &msg,
  571. sock_len, MSG_DONTWAIT | MSG_TRUNC);
  572. /* Userspace might have consumed the packet meanwhile:
  573. * it's not supposed to do this usually, but might be hard
  574. * to prevent. Discard data we got (if any) and keep going. */
  575. if (unlikely(err != sock_len)) {
  576. pr_debug("Discarded rx packet: "
  577. " len %d, expected %zd\n", err, sock_len);
  578. vhost_discard_vq_desc(vq, headcount);
  579. continue;
  580. }
  581. if (unlikely(vhost_hlen) &&
  582. memcpy_toiovecend(nvq->hdr, (unsigned char *)&hdr, 0,
  583. vhost_hlen)) {
  584. vq_err(vq, "Unable to write vnet_hdr at addr %p\n",
  585. vq->iov->iov_base);
  586. break;
  587. }
  588. /* TODO: Should check and handle checksum. */
  589. if (likely(mergeable) &&
  590. memcpy_toiovecend(nvq->hdr, (unsigned char *)&headcount,
  591. offsetof(typeof(hdr), num_buffers),
  592. sizeof hdr.num_buffers)) {
  593. vq_err(vq, "Failed num_buffers write");
  594. vhost_discard_vq_desc(vq, headcount);
  595. break;
  596. }
  597. vhost_add_used_and_signal_n(&net->dev, vq, vq->heads,
  598. headcount);
  599. if (unlikely(vq_log))
  600. vhost_log_write(vq, vq_log, log, vhost_len);
  601. total_len += vhost_len;
  602. if (unlikely(total_len >= VHOST_NET_WEIGHT)) {
  603. vhost_poll_queue(&vq->poll);
  604. break;
  605. }
  606. }
  607. out:
  608. mutex_unlock(&vq->mutex);
  609. }
  610. static void handle_tx_kick(struct vhost_work *work)
  611. {
  612. struct vhost_virtqueue *vq = container_of(work, struct vhost_virtqueue,
  613. poll.work);
  614. struct vhost_net *net = container_of(vq->dev, struct vhost_net, dev);
  615. handle_tx(net);
  616. }
  617. static void handle_rx_kick(struct vhost_work *work)
  618. {
  619. struct vhost_virtqueue *vq = container_of(work, struct vhost_virtqueue,
  620. poll.work);
  621. struct vhost_net *net = container_of(vq->dev, struct vhost_net, dev);
  622. handle_rx(net);
  623. }
  624. static void handle_tx_net(struct vhost_work *work)
  625. {
  626. struct vhost_net *net = container_of(work, struct vhost_net,
  627. poll[VHOST_NET_VQ_TX].work);
  628. handle_tx(net);
  629. }
  630. static void handle_rx_net(struct vhost_work *work)
  631. {
  632. struct vhost_net *net = container_of(work, struct vhost_net,
  633. poll[VHOST_NET_VQ_RX].work);
  634. handle_rx(net);
  635. }
  636. static int vhost_net_open(struct inode *inode, struct file *f)
  637. {
  638. struct vhost_net *n;
  639. struct vhost_dev *dev;
  640. struct vhost_virtqueue **vqs;
  641. int i;
  642. n = kmalloc(sizeof *n, GFP_KERNEL | __GFP_NOWARN | __GFP_REPEAT);
  643. if (!n) {
  644. n = vmalloc(sizeof *n);
  645. if (!n)
  646. return -ENOMEM;
  647. }
  648. vqs = kmalloc(VHOST_NET_VQ_MAX * sizeof(*vqs), GFP_KERNEL);
  649. if (!vqs) {
  650. kvfree(n);
  651. return -ENOMEM;
  652. }
  653. dev = &n->dev;
  654. vqs[VHOST_NET_VQ_TX] = &n->vqs[VHOST_NET_VQ_TX].vq;
  655. vqs[VHOST_NET_VQ_RX] = &n->vqs[VHOST_NET_VQ_RX].vq;
  656. n->vqs[VHOST_NET_VQ_TX].vq.handle_kick = handle_tx_kick;
  657. n->vqs[VHOST_NET_VQ_RX].vq.handle_kick = handle_rx_kick;
  658. for (i = 0; i < VHOST_NET_VQ_MAX; i++) {
  659. n->vqs[i].ubufs = NULL;
  660. n->vqs[i].ubuf_info = NULL;
  661. n->vqs[i].upend_idx = 0;
  662. n->vqs[i].done_idx = 0;
  663. n->vqs[i].vhost_hlen = 0;
  664. n->vqs[i].sock_hlen = 0;
  665. }
  666. vhost_dev_init(dev, vqs, VHOST_NET_VQ_MAX);
  667. vhost_poll_init(n->poll + VHOST_NET_VQ_TX, handle_tx_net, POLLOUT, dev);
  668. vhost_poll_init(n->poll + VHOST_NET_VQ_RX, handle_rx_net, POLLIN, dev);
  669. f->private_data = n;
  670. return 0;
  671. }
  672. static void vhost_net_disable_vq(struct vhost_net *n,
  673. struct vhost_virtqueue *vq)
  674. {
  675. struct vhost_net_virtqueue *nvq =
  676. container_of(vq, struct vhost_net_virtqueue, vq);
  677. struct vhost_poll *poll = n->poll + (nvq - n->vqs);
  678. if (!vq->private_data)
  679. return;
  680. vhost_poll_stop(poll);
  681. }
  682. static int vhost_net_enable_vq(struct vhost_net *n,
  683. struct vhost_virtqueue *vq)
  684. {
  685. struct vhost_net_virtqueue *nvq =
  686. container_of(vq, struct vhost_net_virtqueue, vq);
  687. struct vhost_poll *poll = n->poll + (nvq - n->vqs);
  688. struct socket *sock;
  689. sock = vq->private_data;
  690. if (!sock)
  691. return 0;
  692. return vhost_poll_start(poll, sock->file);
  693. }
  694. static struct socket *vhost_net_stop_vq(struct vhost_net *n,
  695. struct vhost_virtqueue *vq)
  696. {
  697. struct socket *sock;
  698. mutex_lock(&vq->mutex);
  699. sock = vq->private_data;
  700. vhost_net_disable_vq(n, vq);
  701. vq->private_data = NULL;
  702. mutex_unlock(&vq->mutex);
  703. return sock;
  704. }
  705. static void vhost_net_stop(struct vhost_net *n, struct socket **tx_sock,
  706. struct socket **rx_sock)
  707. {
  708. *tx_sock = vhost_net_stop_vq(n, &n->vqs[VHOST_NET_VQ_TX].vq);
  709. *rx_sock = vhost_net_stop_vq(n, &n->vqs[VHOST_NET_VQ_RX].vq);
  710. }
  711. static void vhost_net_flush_vq(struct vhost_net *n, int index)
  712. {
  713. vhost_poll_flush(n->poll + index);
  714. vhost_poll_flush(&n->vqs[index].vq.poll);
  715. }
  716. static void vhost_net_flush(struct vhost_net *n)
  717. {
  718. vhost_net_flush_vq(n, VHOST_NET_VQ_TX);
  719. vhost_net_flush_vq(n, VHOST_NET_VQ_RX);
  720. if (n->vqs[VHOST_NET_VQ_TX].ubufs) {
  721. mutex_lock(&n->vqs[VHOST_NET_VQ_TX].vq.mutex);
  722. n->tx_flush = true;
  723. mutex_unlock(&n->vqs[VHOST_NET_VQ_TX].vq.mutex);
  724. /* Wait for all lower device DMAs done. */
  725. vhost_net_ubuf_put_and_wait(n->vqs[VHOST_NET_VQ_TX].ubufs);
  726. mutex_lock(&n->vqs[VHOST_NET_VQ_TX].vq.mutex);
  727. n->tx_flush = false;
  728. atomic_set(&n->vqs[VHOST_NET_VQ_TX].ubufs->refcount, 1);
  729. mutex_unlock(&n->vqs[VHOST_NET_VQ_TX].vq.mutex);
  730. }
  731. }
  732. static int vhost_net_release(struct inode *inode, struct file *f)
  733. {
  734. struct vhost_net *n = f->private_data;
  735. struct socket *tx_sock;
  736. struct socket *rx_sock;
  737. vhost_net_stop(n, &tx_sock, &rx_sock);
  738. vhost_net_flush(n);
  739. vhost_dev_stop(&n->dev);
  740. vhost_dev_cleanup(&n->dev, false);
  741. vhost_net_vq_reset(n);
  742. if (tx_sock)
  743. sockfd_put(tx_sock);
  744. if (rx_sock)
  745. sockfd_put(rx_sock);
  746. /* Make sure no callbacks are outstanding */
  747. synchronize_rcu_bh();
  748. /* We do an extra flush before freeing memory,
  749. * since jobs can re-queue themselves. */
  750. vhost_net_flush(n);
  751. kfree(n->dev.vqs);
  752. kvfree(n);
  753. return 0;
  754. }
  755. static struct socket *get_raw_socket(int fd)
  756. {
  757. struct {
  758. struct sockaddr_ll sa;
  759. char buf[MAX_ADDR_LEN];
  760. } uaddr;
  761. int uaddr_len = sizeof uaddr, r;
  762. struct socket *sock = sockfd_lookup(fd, &r);
  763. if (!sock)
  764. return ERR_PTR(-ENOTSOCK);
  765. /* Parameter checking */
  766. if (sock->sk->sk_type != SOCK_RAW) {
  767. r = -ESOCKTNOSUPPORT;
  768. goto err;
  769. }
  770. r = sock->ops->getname(sock, (struct sockaddr *)&uaddr.sa,
  771. &uaddr_len, 0);
  772. if (r)
  773. goto err;
  774. if (uaddr.sa.sll_family != AF_PACKET) {
  775. r = -EPFNOSUPPORT;
  776. goto err;
  777. }
  778. return sock;
  779. err:
  780. sockfd_put(sock);
  781. return ERR_PTR(r);
  782. }
  783. static struct socket *get_tap_socket(int fd)
  784. {
  785. struct file *file = fget(fd);
  786. struct socket *sock;
  787. if (!file)
  788. return ERR_PTR(-EBADF);
  789. sock = tun_get_socket(file);
  790. if (!IS_ERR(sock))
  791. return sock;
  792. sock = macvtap_get_socket(file);
  793. if (IS_ERR(sock))
  794. fput(file);
  795. return sock;
  796. }
  797. static struct socket *get_socket(int fd)
  798. {
  799. struct socket *sock;
  800. /* special case to disable backend */
  801. if (fd == -1)
  802. return NULL;
  803. sock = get_raw_socket(fd);
  804. if (!IS_ERR(sock))
  805. return sock;
  806. sock = get_tap_socket(fd);
  807. if (!IS_ERR(sock))
  808. return sock;
  809. return ERR_PTR(-ENOTSOCK);
  810. }
  811. static long vhost_net_set_backend(struct vhost_net *n, unsigned index, int fd)
  812. {
  813. struct socket *sock, *oldsock;
  814. struct vhost_virtqueue *vq;
  815. struct vhost_net_virtqueue *nvq;
  816. struct vhost_net_ubuf_ref *ubufs, *oldubufs = NULL;
  817. int r;
  818. mutex_lock(&n->dev.mutex);
  819. r = vhost_dev_check_owner(&n->dev);
  820. if (r)
  821. goto err;
  822. if (index >= VHOST_NET_VQ_MAX) {
  823. r = -ENOBUFS;
  824. goto err;
  825. }
  826. vq = &n->vqs[index].vq;
  827. nvq = &n->vqs[index];
  828. mutex_lock(&vq->mutex);
  829. /* Verify that ring has been setup correctly. */
  830. if (!vhost_vq_access_ok(vq)) {
  831. r = -EFAULT;
  832. goto err_vq;
  833. }
  834. sock = get_socket(fd);
  835. if (IS_ERR(sock)) {
  836. r = PTR_ERR(sock);
  837. goto err_vq;
  838. }
  839. /* start polling new socket */
  840. oldsock = vq->private_data;
  841. if (sock != oldsock) {
  842. ubufs = vhost_net_ubuf_alloc(vq,
  843. sock && vhost_sock_zcopy(sock));
  844. if (IS_ERR(ubufs)) {
  845. r = PTR_ERR(ubufs);
  846. goto err_ubufs;
  847. }
  848. vhost_net_disable_vq(n, vq);
  849. vq->private_data = sock;
  850. r = vhost_init_used(vq);
  851. if (r)
  852. goto err_used;
  853. r = vhost_net_enable_vq(n, vq);
  854. if (r)
  855. goto err_used;
  856. oldubufs = nvq->ubufs;
  857. nvq->ubufs = ubufs;
  858. n->tx_packets = 0;
  859. n->tx_zcopy_err = 0;
  860. n->tx_flush = false;
  861. }
  862. mutex_unlock(&vq->mutex);
  863. if (oldubufs) {
  864. vhost_net_ubuf_put_wait_and_free(oldubufs);
  865. mutex_lock(&vq->mutex);
  866. vhost_zerocopy_signal_used(n, vq);
  867. mutex_unlock(&vq->mutex);
  868. }
  869. if (oldsock) {
  870. vhost_net_flush_vq(n, index);
  871. sockfd_put(oldsock);
  872. }
  873. mutex_unlock(&n->dev.mutex);
  874. return 0;
  875. err_used:
  876. vq->private_data = oldsock;
  877. vhost_net_enable_vq(n, vq);
  878. if (ubufs)
  879. vhost_net_ubuf_put_wait_and_free(ubufs);
  880. err_ubufs:
  881. sockfd_put(sock);
  882. err_vq:
  883. mutex_unlock(&vq->mutex);
  884. err:
  885. mutex_unlock(&n->dev.mutex);
  886. return r;
  887. }
  888. static long vhost_net_reset_owner(struct vhost_net *n)
  889. {
  890. struct socket *tx_sock = NULL;
  891. struct socket *rx_sock = NULL;
  892. long err;
  893. struct vhost_memory *memory;
  894. mutex_lock(&n->dev.mutex);
  895. err = vhost_dev_check_owner(&n->dev);
  896. if (err)
  897. goto done;
  898. memory = vhost_dev_reset_owner_prepare();
  899. if (!memory) {
  900. err = -ENOMEM;
  901. goto done;
  902. }
  903. vhost_net_stop(n, &tx_sock, &rx_sock);
  904. vhost_net_flush(n);
  905. vhost_dev_reset_owner(&n->dev, memory);
  906. vhost_net_vq_reset(n);
  907. done:
  908. mutex_unlock(&n->dev.mutex);
  909. if (tx_sock)
  910. sockfd_put(tx_sock);
  911. if (rx_sock)
  912. sockfd_put(rx_sock);
  913. return err;
  914. }
  915. static int vhost_net_set_features(struct vhost_net *n, u64 features)
  916. {
  917. size_t vhost_hlen, sock_hlen, hdr_len;
  918. int i;
  919. hdr_len = (features & ((1ULL << VIRTIO_NET_F_MRG_RXBUF) |
  920. (1ULL << VIRTIO_F_VERSION_1))) ?
  921. sizeof(struct virtio_net_hdr_mrg_rxbuf) :
  922. sizeof(struct virtio_net_hdr);
  923. if (features & (1 << VHOST_NET_F_VIRTIO_NET_HDR)) {
  924. /* vhost provides vnet_hdr */
  925. vhost_hlen = hdr_len;
  926. sock_hlen = 0;
  927. } else {
  928. /* socket provides vnet_hdr */
  929. vhost_hlen = 0;
  930. sock_hlen = hdr_len;
  931. }
  932. mutex_lock(&n->dev.mutex);
  933. if ((features & (1 << VHOST_F_LOG_ALL)) &&
  934. !vhost_log_access_ok(&n->dev)) {
  935. mutex_unlock(&n->dev.mutex);
  936. return -EFAULT;
  937. }
  938. for (i = 0; i < VHOST_NET_VQ_MAX; ++i) {
  939. mutex_lock(&n->vqs[i].vq.mutex);
  940. n->vqs[i].vq.acked_features = features;
  941. n->vqs[i].vhost_hlen = vhost_hlen;
  942. n->vqs[i].sock_hlen = sock_hlen;
  943. mutex_unlock(&n->vqs[i].vq.mutex);
  944. }
  945. mutex_unlock(&n->dev.mutex);
  946. return 0;
  947. }
  948. static long vhost_net_set_owner(struct vhost_net *n)
  949. {
  950. int r;
  951. mutex_lock(&n->dev.mutex);
  952. if (vhost_dev_has_owner(&n->dev)) {
  953. r = -EBUSY;
  954. goto out;
  955. }
  956. r = vhost_net_set_ubuf_info(n);
  957. if (r)
  958. goto out;
  959. r = vhost_dev_set_owner(&n->dev);
  960. if (r)
  961. vhost_net_clear_ubuf_info(n);
  962. vhost_net_flush(n);
  963. out:
  964. mutex_unlock(&n->dev.mutex);
  965. return r;
  966. }
  967. static long vhost_net_ioctl(struct file *f, unsigned int ioctl,
  968. unsigned long arg)
  969. {
  970. struct vhost_net *n = f->private_data;
  971. void __user *argp = (void __user *)arg;
  972. u64 __user *featurep = argp;
  973. struct vhost_vring_file backend;
  974. u64 features;
  975. int r;
  976. switch (ioctl) {
  977. case VHOST_NET_SET_BACKEND:
  978. if (copy_from_user(&backend, argp, sizeof backend))
  979. return -EFAULT;
  980. return vhost_net_set_backend(n, backend.index, backend.fd);
  981. case VHOST_GET_FEATURES:
  982. features = VHOST_NET_FEATURES;
  983. if (copy_to_user(featurep, &features, sizeof features))
  984. return -EFAULT;
  985. return 0;
  986. case VHOST_SET_FEATURES:
  987. if (copy_from_user(&features, featurep, sizeof features))
  988. return -EFAULT;
  989. if (features & ~VHOST_NET_FEATURES)
  990. return -EOPNOTSUPP;
  991. return vhost_net_set_features(n, features);
  992. case VHOST_RESET_OWNER:
  993. return vhost_net_reset_owner(n);
  994. case VHOST_SET_OWNER:
  995. return vhost_net_set_owner(n);
  996. default:
  997. mutex_lock(&n->dev.mutex);
  998. r = vhost_dev_ioctl(&n->dev, ioctl, argp);
  999. if (r == -ENOIOCTLCMD)
  1000. r = vhost_vring_ioctl(&n->dev, ioctl, argp);
  1001. else
  1002. vhost_net_flush(n);
  1003. mutex_unlock(&n->dev.mutex);
  1004. return r;
  1005. }
  1006. }
  1007. #ifdef CONFIG_COMPAT
  1008. static long vhost_net_compat_ioctl(struct file *f, unsigned int ioctl,
  1009. unsigned long arg)
  1010. {
  1011. return vhost_net_ioctl(f, ioctl, (unsigned long)compat_ptr(arg));
  1012. }
  1013. #endif
  1014. static const struct file_operations vhost_net_fops = {
  1015. .owner = THIS_MODULE,
  1016. .release = vhost_net_release,
  1017. .unlocked_ioctl = vhost_net_ioctl,
  1018. #ifdef CONFIG_COMPAT
  1019. .compat_ioctl = vhost_net_compat_ioctl,
  1020. #endif
  1021. .open = vhost_net_open,
  1022. .llseek = noop_llseek,
  1023. };
  1024. static struct miscdevice vhost_net_misc = {
  1025. .minor = VHOST_NET_MINOR,
  1026. .name = "vhost-net",
  1027. .fops = &vhost_net_fops,
  1028. };
  1029. static int vhost_net_init(void)
  1030. {
  1031. if (experimental_zcopytx)
  1032. vhost_net_enable_zcopy(VHOST_NET_VQ_TX);
  1033. return misc_register(&vhost_net_misc);
  1034. }
  1035. module_init(vhost_net_init);
  1036. static void vhost_net_exit(void)
  1037. {
  1038. misc_deregister(&vhost_net_misc);
  1039. }
  1040. module_exit(vhost_net_exit);
  1041. MODULE_VERSION("0.0.1");
  1042. MODULE_LICENSE("GPL v2");
  1043. MODULE_AUTHOR("Michael S. Tsirkin");
  1044. MODULE_DESCRIPTION("Host kernel accelerator for virtio net");
  1045. MODULE_ALIAS_MISCDEV(VHOST_NET_MINOR);
  1046. MODULE_ALIAS("devname:vhost-net");