pvcalls-back.c 30 KB

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  1. /*
  2. * (c) 2017 Stefano Stabellini <stefano@aporeto.com>
  3. *
  4. * This program is free software; you can redistribute it and/or modify
  5. * it under the terms of the GNU General Public License as published by
  6. * the Free Software Foundation; either version 2 of the License, or
  7. * (at your option) any later version.
  8. *
  9. * This program is distributed in the hope that it will be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. * GNU General Public License for more details.
  13. */
  14. #include <linux/inet.h>
  15. #include <linux/kthread.h>
  16. #include <linux/list.h>
  17. #include <linux/radix-tree.h>
  18. #include <linux/module.h>
  19. #include <linux/semaphore.h>
  20. #include <linux/wait.h>
  21. #include <net/sock.h>
  22. #include <net/inet_common.h>
  23. #include <net/inet_connection_sock.h>
  24. #include <net/request_sock.h>
  25. #include <xen/events.h>
  26. #include <xen/grant_table.h>
  27. #include <xen/xen.h>
  28. #include <xen/xenbus.h>
  29. #include <xen/interface/io/pvcalls.h>
  30. #define PVCALLS_VERSIONS "1"
  31. #define MAX_RING_ORDER XENBUS_MAX_RING_GRANT_ORDER
  32. struct pvcalls_back_global {
  33. struct list_head frontends;
  34. struct semaphore frontends_lock;
  35. } pvcalls_back_global;
  36. /*
  37. * Per-frontend data structure. It contains pointers to the command
  38. * ring, its event channel, a list of active sockets and a tree of
  39. * passive sockets.
  40. */
  41. struct pvcalls_fedata {
  42. struct list_head list;
  43. struct xenbus_device *dev;
  44. struct xen_pvcalls_sring *sring;
  45. struct xen_pvcalls_back_ring ring;
  46. int irq;
  47. struct list_head socket_mappings;
  48. struct radix_tree_root socketpass_mappings;
  49. struct semaphore socket_lock;
  50. };
  51. struct pvcalls_ioworker {
  52. struct work_struct register_work;
  53. struct workqueue_struct *wq;
  54. };
  55. struct sock_mapping {
  56. struct list_head list;
  57. struct pvcalls_fedata *fedata;
  58. struct sockpass_mapping *sockpass;
  59. struct socket *sock;
  60. uint64_t id;
  61. grant_ref_t ref;
  62. struct pvcalls_data_intf *ring;
  63. void *bytes;
  64. struct pvcalls_data data;
  65. uint32_t ring_order;
  66. int irq;
  67. atomic_t read;
  68. atomic_t write;
  69. atomic_t io;
  70. atomic_t release;
  71. void (*saved_data_ready)(struct sock *sk);
  72. struct pvcalls_ioworker ioworker;
  73. };
  74. struct sockpass_mapping {
  75. struct list_head list;
  76. struct pvcalls_fedata *fedata;
  77. struct socket *sock;
  78. uint64_t id;
  79. struct xen_pvcalls_request reqcopy;
  80. spinlock_t copy_lock;
  81. struct workqueue_struct *wq;
  82. struct work_struct register_work;
  83. void (*saved_data_ready)(struct sock *sk);
  84. };
  85. static irqreturn_t pvcalls_back_conn_event(int irq, void *sock_map);
  86. static int pvcalls_back_release_active(struct xenbus_device *dev,
  87. struct pvcalls_fedata *fedata,
  88. struct sock_mapping *map);
  89. static void pvcalls_conn_back_read(void *opaque)
  90. {
  91. struct sock_mapping *map = (struct sock_mapping *)opaque;
  92. struct msghdr msg;
  93. struct kvec vec[2];
  94. RING_IDX cons, prod, size, wanted, array_size, masked_prod, masked_cons;
  95. int32_t error;
  96. struct pvcalls_data_intf *intf = map->ring;
  97. struct pvcalls_data *data = &map->data;
  98. unsigned long flags;
  99. int ret;
  100. array_size = XEN_FLEX_RING_SIZE(map->ring_order);
  101. cons = intf->in_cons;
  102. prod = intf->in_prod;
  103. error = intf->in_error;
  104. /* read the indexes first, then deal with the data */
  105. virt_mb();
  106. if (error)
  107. return;
  108. size = pvcalls_queued(prod, cons, array_size);
  109. if (size >= array_size)
  110. return;
  111. spin_lock_irqsave(&map->sock->sk->sk_receive_queue.lock, flags);
  112. if (skb_queue_empty(&map->sock->sk->sk_receive_queue)) {
  113. atomic_set(&map->read, 0);
  114. spin_unlock_irqrestore(&map->sock->sk->sk_receive_queue.lock,
  115. flags);
  116. return;
  117. }
  118. spin_unlock_irqrestore(&map->sock->sk->sk_receive_queue.lock, flags);
  119. wanted = array_size - size;
  120. masked_prod = pvcalls_mask(prod, array_size);
  121. masked_cons = pvcalls_mask(cons, array_size);
  122. memset(&msg, 0, sizeof(msg));
  123. if (masked_prod < masked_cons) {
  124. vec[0].iov_base = data->in + masked_prod;
  125. vec[0].iov_len = wanted;
  126. iov_iter_kvec(&msg.msg_iter, ITER_KVEC|WRITE, vec, 1, wanted);
  127. } else {
  128. vec[0].iov_base = data->in + masked_prod;
  129. vec[0].iov_len = array_size - masked_prod;
  130. vec[1].iov_base = data->in;
  131. vec[1].iov_len = wanted - vec[0].iov_len;
  132. iov_iter_kvec(&msg.msg_iter, ITER_KVEC|WRITE, vec, 2, wanted);
  133. }
  134. atomic_set(&map->read, 0);
  135. ret = inet_recvmsg(map->sock, &msg, wanted, MSG_DONTWAIT);
  136. WARN_ON(ret > wanted);
  137. if (ret == -EAGAIN) /* shouldn't happen */
  138. return;
  139. if (!ret)
  140. ret = -ENOTCONN;
  141. spin_lock_irqsave(&map->sock->sk->sk_receive_queue.lock, flags);
  142. if (ret > 0 && !skb_queue_empty(&map->sock->sk->sk_receive_queue))
  143. atomic_inc(&map->read);
  144. spin_unlock_irqrestore(&map->sock->sk->sk_receive_queue.lock, flags);
  145. /* write the data, then modify the indexes */
  146. virt_wmb();
  147. if (ret < 0) {
  148. atomic_set(&map->read, 0);
  149. intf->in_error = ret;
  150. } else
  151. intf->in_prod = prod + ret;
  152. /* update the indexes, then notify the other end */
  153. virt_wmb();
  154. notify_remote_via_irq(map->irq);
  155. return;
  156. }
  157. static void pvcalls_conn_back_write(struct sock_mapping *map)
  158. {
  159. struct pvcalls_data_intf *intf = map->ring;
  160. struct pvcalls_data *data = &map->data;
  161. struct msghdr msg;
  162. struct kvec vec[2];
  163. RING_IDX cons, prod, size, array_size;
  164. int ret;
  165. cons = intf->out_cons;
  166. prod = intf->out_prod;
  167. /* read the indexes before dealing with the data */
  168. virt_mb();
  169. array_size = XEN_FLEX_RING_SIZE(map->ring_order);
  170. size = pvcalls_queued(prod, cons, array_size);
  171. if (size == 0)
  172. return;
  173. memset(&msg, 0, sizeof(msg));
  174. msg.msg_flags |= MSG_DONTWAIT;
  175. if (pvcalls_mask(prod, array_size) > pvcalls_mask(cons, array_size)) {
  176. vec[0].iov_base = data->out + pvcalls_mask(cons, array_size);
  177. vec[0].iov_len = size;
  178. iov_iter_kvec(&msg.msg_iter, ITER_KVEC|READ, vec, 1, size);
  179. } else {
  180. vec[0].iov_base = data->out + pvcalls_mask(cons, array_size);
  181. vec[0].iov_len = array_size - pvcalls_mask(cons, array_size);
  182. vec[1].iov_base = data->out;
  183. vec[1].iov_len = size - vec[0].iov_len;
  184. iov_iter_kvec(&msg.msg_iter, ITER_KVEC|READ, vec, 2, size);
  185. }
  186. atomic_set(&map->write, 0);
  187. ret = inet_sendmsg(map->sock, &msg, size);
  188. if (ret == -EAGAIN || (ret >= 0 && ret < size)) {
  189. atomic_inc(&map->write);
  190. atomic_inc(&map->io);
  191. }
  192. if (ret == -EAGAIN)
  193. return;
  194. /* write the data, then update the indexes */
  195. virt_wmb();
  196. if (ret < 0) {
  197. intf->out_error = ret;
  198. } else {
  199. intf->out_error = 0;
  200. intf->out_cons = cons + ret;
  201. prod = intf->out_prod;
  202. }
  203. /* update the indexes, then notify the other end */
  204. virt_wmb();
  205. if (prod != cons + ret)
  206. atomic_inc(&map->write);
  207. notify_remote_via_irq(map->irq);
  208. }
  209. static void pvcalls_back_ioworker(struct work_struct *work)
  210. {
  211. struct pvcalls_ioworker *ioworker = container_of(work,
  212. struct pvcalls_ioworker, register_work);
  213. struct sock_mapping *map = container_of(ioworker, struct sock_mapping,
  214. ioworker);
  215. while (atomic_read(&map->io) > 0) {
  216. if (atomic_read(&map->release) > 0) {
  217. atomic_set(&map->release, 0);
  218. return;
  219. }
  220. if (atomic_read(&map->read) > 0)
  221. pvcalls_conn_back_read(map);
  222. if (atomic_read(&map->write) > 0)
  223. pvcalls_conn_back_write(map);
  224. atomic_dec(&map->io);
  225. }
  226. }
  227. static int pvcalls_back_socket(struct xenbus_device *dev,
  228. struct xen_pvcalls_request *req)
  229. {
  230. struct pvcalls_fedata *fedata;
  231. int ret;
  232. struct xen_pvcalls_response *rsp;
  233. fedata = dev_get_drvdata(&dev->dev);
  234. if (req->u.socket.domain != AF_INET ||
  235. req->u.socket.type != SOCK_STREAM ||
  236. (req->u.socket.protocol != IPPROTO_IP &&
  237. req->u.socket.protocol != AF_INET))
  238. ret = -EAFNOSUPPORT;
  239. else
  240. ret = 0;
  241. /* leave the actual socket allocation for later */
  242. rsp = RING_GET_RESPONSE(&fedata->ring, fedata->ring.rsp_prod_pvt++);
  243. rsp->req_id = req->req_id;
  244. rsp->cmd = req->cmd;
  245. rsp->u.socket.id = req->u.socket.id;
  246. rsp->ret = ret;
  247. return 0;
  248. }
  249. static void pvcalls_sk_state_change(struct sock *sock)
  250. {
  251. struct sock_mapping *map = sock->sk_user_data;
  252. if (map == NULL)
  253. return;
  254. atomic_inc(&map->read);
  255. notify_remote_via_irq(map->irq);
  256. }
  257. static void pvcalls_sk_data_ready(struct sock *sock)
  258. {
  259. struct sock_mapping *map = sock->sk_user_data;
  260. struct pvcalls_ioworker *iow;
  261. if (map == NULL)
  262. return;
  263. iow = &map->ioworker;
  264. atomic_inc(&map->read);
  265. atomic_inc(&map->io);
  266. queue_work(iow->wq, &iow->register_work);
  267. }
  268. static struct sock_mapping *pvcalls_new_active_socket(
  269. struct pvcalls_fedata *fedata,
  270. uint64_t id,
  271. grant_ref_t ref,
  272. uint32_t evtchn,
  273. struct socket *sock)
  274. {
  275. int ret;
  276. struct sock_mapping *map;
  277. void *page;
  278. map = kzalloc(sizeof(*map), GFP_KERNEL);
  279. if (map == NULL)
  280. return NULL;
  281. map->fedata = fedata;
  282. map->sock = sock;
  283. map->id = id;
  284. map->ref = ref;
  285. ret = xenbus_map_ring_valloc(fedata->dev, &ref, 1, &page);
  286. if (ret < 0)
  287. goto out;
  288. map->ring = page;
  289. map->ring_order = map->ring->ring_order;
  290. /* first read the order, then map the data ring */
  291. virt_rmb();
  292. if (map->ring_order > MAX_RING_ORDER) {
  293. pr_warn("%s frontend requested ring_order %u, which is > MAX (%u)\n",
  294. __func__, map->ring_order, MAX_RING_ORDER);
  295. goto out;
  296. }
  297. ret = xenbus_map_ring_valloc(fedata->dev, map->ring->ref,
  298. (1 << map->ring_order), &page);
  299. if (ret < 0)
  300. goto out;
  301. map->bytes = page;
  302. ret = bind_interdomain_evtchn_to_irqhandler(fedata->dev->otherend_id,
  303. evtchn,
  304. pvcalls_back_conn_event,
  305. 0,
  306. "pvcalls-backend",
  307. map);
  308. if (ret < 0)
  309. goto out;
  310. map->irq = ret;
  311. map->data.in = map->bytes;
  312. map->data.out = map->bytes + XEN_FLEX_RING_SIZE(map->ring_order);
  313. map->ioworker.wq = alloc_workqueue("pvcalls_io", WQ_UNBOUND, 1);
  314. if (!map->ioworker.wq)
  315. goto out;
  316. atomic_set(&map->io, 1);
  317. INIT_WORK(&map->ioworker.register_work, pvcalls_back_ioworker);
  318. down(&fedata->socket_lock);
  319. list_add_tail(&map->list, &fedata->socket_mappings);
  320. up(&fedata->socket_lock);
  321. write_lock_bh(&map->sock->sk->sk_callback_lock);
  322. map->saved_data_ready = map->sock->sk->sk_data_ready;
  323. map->sock->sk->sk_user_data = map;
  324. map->sock->sk->sk_data_ready = pvcalls_sk_data_ready;
  325. map->sock->sk->sk_state_change = pvcalls_sk_state_change;
  326. write_unlock_bh(&map->sock->sk->sk_callback_lock);
  327. return map;
  328. out:
  329. down(&fedata->socket_lock);
  330. list_del(&map->list);
  331. pvcalls_back_release_active(fedata->dev, fedata, map);
  332. up(&fedata->socket_lock);
  333. return NULL;
  334. }
  335. static int pvcalls_back_connect(struct xenbus_device *dev,
  336. struct xen_pvcalls_request *req)
  337. {
  338. struct pvcalls_fedata *fedata;
  339. int ret = -EINVAL;
  340. struct socket *sock;
  341. struct sock_mapping *map;
  342. struct xen_pvcalls_response *rsp;
  343. struct sockaddr *sa = (struct sockaddr *)&req->u.connect.addr;
  344. fedata = dev_get_drvdata(&dev->dev);
  345. if (req->u.connect.len < sizeof(sa->sa_family) ||
  346. req->u.connect.len > sizeof(req->u.connect.addr) ||
  347. sa->sa_family != AF_INET)
  348. goto out;
  349. ret = sock_create(AF_INET, SOCK_STREAM, 0, &sock);
  350. if (ret < 0)
  351. goto out;
  352. ret = inet_stream_connect(sock, sa, req->u.connect.len, 0);
  353. if (ret < 0) {
  354. sock_release(sock);
  355. goto out;
  356. }
  357. map = pvcalls_new_active_socket(fedata,
  358. req->u.connect.id,
  359. req->u.connect.ref,
  360. req->u.connect.evtchn,
  361. sock);
  362. if (!map) {
  363. ret = -EFAULT;
  364. sock_release(sock);
  365. }
  366. out:
  367. rsp = RING_GET_RESPONSE(&fedata->ring, fedata->ring.rsp_prod_pvt++);
  368. rsp->req_id = req->req_id;
  369. rsp->cmd = req->cmd;
  370. rsp->u.connect.id = req->u.connect.id;
  371. rsp->ret = ret;
  372. return 0;
  373. }
  374. static int pvcalls_back_release_active(struct xenbus_device *dev,
  375. struct pvcalls_fedata *fedata,
  376. struct sock_mapping *map)
  377. {
  378. disable_irq(map->irq);
  379. if (map->sock->sk != NULL) {
  380. write_lock_bh(&map->sock->sk->sk_callback_lock);
  381. map->sock->sk->sk_user_data = NULL;
  382. map->sock->sk->sk_data_ready = map->saved_data_ready;
  383. write_unlock_bh(&map->sock->sk->sk_callback_lock);
  384. }
  385. atomic_set(&map->release, 1);
  386. flush_work(&map->ioworker.register_work);
  387. xenbus_unmap_ring_vfree(dev, map->bytes);
  388. xenbus_unmap_ring_vfree(dev, (void *)map->ring);
  389. unbind_from_irqhandler(map->irq, map);
  390. sock_release(map->sock);
  391. kfree(map);
  392. return 0;
  393. }
  394. static int pvcalls_back_release_passive(struct xenbus_device *dev,
  395. struct pvcalls_fedata *fedata,
  396. struct sockpass_mapping *mappass)
  397. {
  398. if (mappass->sock->sk != NULL) {
  399. write_lock_bh(&mappass->sock->sk->sk_callback_lock);
  400. mappass->sock->sk->sk_user_data = NULL;
  401. mappass->sock->sk->sk_data_ready = mappass->saved_data_ready;
  402. write_unlock_bh(&mappass->sock->sk->sk_callback_lock);
  403. }
  404. sock_release(mappass->sock);
  405. flush_workqueue(mappass->wq);
  406. destroy_workqueue(mappass->wq);
  407. kfree(mappass);
  408. return 0;
  409. }
  410. static int pvcalls_back_release(struct xenbus_device *dev,
  411. struct xen_pvcalls_request *req)
  412. {
  413. struct pvcalls_fedata *fedata;
  414. struct sock_mapping *map, *n;
  415. struct sockpass_mapping *mappass;
  416. int ret = 0;
  417. struct xen_pvcalls_response *rsp;
  418. fedata = dev_get_drvdata(&dev->dev);
  419. down(&fedata->socket_lock);
  420. list_for_each_entry_safe(map, n, &fedata->socket_mappings, list) {
  421. if (map->id == req->u.release.id) {
  422. list_del(&map->list);
  423. up(&fedata->socket_lock);
  424. ret = pvcalls_back_release_active(dev, fedata, map);
  425. goto out;
  426. }
  427. }
  428. mappass = radix_tree_lookup(&fedata->socketpass_mappings,
  429. req->u.release.id);
  430. if (mappass != NULL) {
  431. radix_tree_delete(&fedata->socketpass_mappings, mappass->id);
  432. up(&fedata->socket_lock);
  433. ret = pvcalls_back_release_passive(dev, fedata, mappass);
  434. } else
  435. up(&fedata->socket_lock);
  436. out:
  437. rsp = RING_GET_RESPONSE(&fedata->ring, fedata->ring.rsp_prod_pvt++);
  438. rsp->req_id = req->req_id;
  439. rsp->u.release.id = req->u.release.id;
  440. rsp->cmd = req->cmd;
  441. rsp->ret = ret;
  442. return 0;
  443. }
  444. static void __pvcalls_back_accept(struct work_struct *work)
  445. {
  446. struct sockpass_mapping *mappass = container_of(
  447. work, struct sockpass_mapping, register_work);
  448. struct sock_mapping *map;
  449. struct pvcalls_ioworker *iow;
  450. struct pvcalls_fedata *fedata;
  451. struct socket *sock;
  452. struct xen_pvcalls_response *rsp;
  453. struct xen_pvcalls_request *req;
  454. int notify;
  455. int ret = -EINVAL;
  456. unsigned long flags;
  457. fedata = mappass->fedata;
  458. /*
  459. * __pvcalls_back_accept can race against pvcalls_back_accept.
  460. * We only need to check the value of "cmd" on read. It could be
  461. * done atomically, but to simplify the code on the write side, we
  462. * use a spinlock.
  463. */
  464. spin_lock_irqsave(&mappass->copy_lock, flags);
  465. req = &mappass->reqcopy;
  466. if (req->cmd != PVCALLS_ACCEPT) {
  467. spin_unlock_irqrestore(&mappass->copy_lock, flags);
  468. return;
  469. }
  470. spin_unlock_irqrestore(&mappass->copy_lock, flags);
  471. sock = sock_alloc();
  472. if (sock == NULL)
  473. goto out_error;
  474. sock->type = mappass->sock->type;
  475. sock->ops = mappass->sock->ops;
  476. ret = inet_accept(mappass->sock, sock, O_NONBLOCK, true);
  477. if (ret == -EAGAIN) {
  478. sock_release(sock);
  479. return;
  480. }
  481. map = pvcalls_new_active_socket(fedata,
  482. req->u.accept.id_new,
  483. req->u.accept.ref,
  484. req->u.accept.evtchn,
  485. sock);
  486. if (!map) {
  487. ret = -EFAULT;
  488. sock_release(sock);
  489. goto out_error;
  490. }
  491. map->sockpass = mappass;
  492. iow = &map->ioworker;
  493. atomic_inc(&map->read);
  494. atomic_inc(&map->io);
  495. queue_work(iow->wq, &iow->register_work);
  496. out_error:
  497. rsp = RING_GET_RESPONSE(&fedata->ring, fedata->ring.rsp_prod_pvt++);
  498. rsp->req_id = req->req_id;
  499. rsp->cmd = req->cmd;
  500. rsp->u.accept.id = req->u.accept.id;
  501. rsp->ret = ret;
  502. RING_PUSH_RESPONSES_AND_CHECK_NOTIFY(&fedata->ring, notify);
  503. if (notify)
  504. notify_remote_via_irq(fedata->irq);
  505. mappass->reqcopy.cmd = 0;
  506. }
  507. static void pvcalls_pass_sk_data_ready(struct sock *sock)
  508. {
  509. struct sockpass_mapping *mappass = sock->sk_user_data;
  510. struct pvcalls_fedata *fedata;
  511. struct xen_pvcalls_response *rsp;
  512. unsigned long flags;
  513. int notify;
  514. if (mappass == NULL)
  515. return;
  516. fedata = mappass->fedata;
  517. spin_lock_irqsave(&mappass->copy_lock, flags);
  518. if (mappass->reqcopy.cmd == PVCALLS_POLL) {
  519. rsp = RING_GET_RESPONSE(&fedata->ring,
  520. fedata->ring.rsp_prod_pvt++);
  521. rsp->req_id = mappass->reqcopy.req_id;
  522. rsp->u.poll.id = mappass->reqcopy.u.poll.id;
  523. rsp->cmd = mappass->reqcopy.cmd;
  524. rsp->ret = 0;
  525. mappass->reqcopy.cmd = 0;
  526. spin_unlock_irqrestore(&mappass->copy_lock, flags);
  527. RING_PUSH_RESPONSES_AND_CHECK_NOTIFY(&fedata->ring, notify);
  528. if (notify)
  529. notify_remote_via_irq(mappass->fedata->irq);
  530. } else {
  531. spin_unlock_irqrestore(&mappass->copy_lock, flags);
  532. queue_work(mappass->wq, &mappass->register_work);
  533. }
  534. }
  535. static int pvcalls_back_bind(struct xenbus_device *dev,
  536. struct xen_pvcalls_request *req)
  537. {
  538. struct pvcalls_fedata *fedata;
  539. int ret;
  540. struct sockpass_mapping *map;
  541. struct xen_pvcalls_response *rsp;
  542. fedata = dev_get_drvdata(&dev->dev);
  543. map = kzalloc(sizeof(*map), GFP_KERNEL);
  544. if (map == NULL) {
  545. ret = -ENOMEM;
  546. goto out;
  547. }
  548. INIT_WORK(&map->register_work, __pvcalls_back_accept);
  549. spin_lock_init(&map->copy_lock);
  550. map->wq = alloc_workqueue("pvcalls_wq", WQ_UNBOUND, 1);
  551. if (!map->wq) {
  552. ret = -ENOMEM;
  553. goto out;
  554. }
  555. ret = sock_create(AF_INET, SOCK_STREAM, 0, &map->sock);
  556. if (ret < 0)
  557. goto out;
  558. ret = inet_bind(map->sock, (struct sockaddr *)&req->u.bind.addr,
  559. req->u.bind.len);
  560. if (ret < 0)
  561. goto out;
  562. map->fedata = fedata;
  563. map->id = req->u.bind.id;
  564. down(&fedata->socket_lock);
  565. ret = radix_tree_insert(&fedata->socketpass_mappings, map->id,
  566. map);
  567. up(&fedata->socket_lock);
  568. if (ret)
  569. goto out;
  570. write_lock_bh(&map->sock->sk->sk_callback_lock);
  571. map->saved_data_ready = map->sock->sk->sk_data_ready;
  572. map->sock->sk->sk_user_data = map;
  573. map->sock->sk->sk_data_ready = pvcalls_pass_sk_data_ready;
  574. write_unlock_bh(&map->sock->sk->sk_callback_lock);
  575. out:
  576. if (ret) {
  577. if (map && map->sock)
  578. sock_release(map->sock);
  579. if (map && map->wq)
  580. destroy_workqueue(map->wq);
  581. kfree(map);
  582. }
  583. rsp = RING_GET_RESPONSE(&fedata->ring, fedata->ring.rsp_prod_pvt++);
  584. rsp->req_id = req->req_id;
  585. rsp->cmd = req->cmd;
  586. rsp->u.bind.id = req->u.bind.id;
  587. rsp->ret = ret;
  588. return 0;
  589. }
  590. static int pvcalls_back_listen(struct xenbus_device *dev,
  591. struct xen_pvcalls_request *req)
  592. {
  593. struct pvcalls_fedata *fedata;
  594. int ret = -EINVAL;
  595. struct sockpass_mapping *map;
  596. struct xen_pvcalls_response *rsp;
  597. fedata = dev_get_drvdata(&dev->dev);
  598. down(&fedata->socket_lock);
  599. map = radix_tree_lookup(&fedata->socketpass_mappings, req->u.listen.id);
  600. up(&fedata->socket_lock);
  601. if (map == NULL)
  602. goto out;
  603. ret = inet_listen(map->sock, req->u.listen.backlog);
  604. out:
  605. rsp = RING_GET_RESPONSE(&fedata->ring, fedata->ring.rsp_prod_pvt++);
  606. rsp->req_id = req->req_id;
  607. rsp->cmd = req->cmd;
  608. rsp->u.listen.id = req->u.listen.id;
  609. rsp->ret = ret;
  610. return 0;
  611. }
  612. static int pvcalls_back_accept(struct xenbus_device *dev,
  613. struct xen_pvcalls_request *req)
  614. {
  615. struct pvcalls_fedata *fedata;
  616. struct sockpass_mapping *mappass;
  617. int ret = -EINVAL;
  618. struct xen_pvcalls_response *rsp;
  619. unsigned long flags;
  620. fedata = dev_get_drvdata(&dev->dev);
  621. down(&fedata->socket_lock);
  622. mappass = radix_tree_lookup(&fedata->socketpass_mappings,
  623. req->u.accept.id);
  624. up(&fedata->socket_lock);
  625. if (mappass == NULL)
  626. goto out_error;
  627. /*
  628. * Limitation of the current implementation: only support one
  629. * concurrent accept or poll call on one socket.
  630. */
  631. spin_lock_irqsave(&mappass->copy_lock, flags);
  632. if (mappass->reqcopy.cmd != 0) {
  633. spin_unlock_irqrestore(&mappass->copy_lock, flags);
  634. ret = -EINTR;
  635. goto out_error;
  636. }
  637. mappass->reqcopy = *req;
  638. spin_unlock_irqrestore(&mappass->copy_lock, flags);
  639. queue_work(mappass->wq, &mappass->register_work);
  640. /* Tell the caller we don't need to send back a notification yet */
  641. return -1;
  642. out_error:
  643. rsp = RING_GET_RESPONSE(&fedata->ring, fedata->ring.rsp_prod_pvt++);
  644. rsp->req_id = req->req_id;
  645. rsp->cmd = req->cmd;
  646. rsp->u.accept.id = req->u.accept.id;
  647. rsp->ret = ret;
  648. return 0;
  649. }
  650. static int pvcalls_back_poll(struct xenbus_device *dev,
  651. struct xen_pvcalls_request *req)
  652. {
  653. struct pvcalls_fedata *fedata;
  654. struct sockpass_mapping *mappass;
  655. struct xen_pvcalls_response *rsp;
  656. struct inet_connection_sock *icsk;
  657. struct request_sock_queue *queue;
  658. unsigned long flags;
  659. int ret;
  660. bool data;
  661. fedata = dev_get_drvdata(&dev->dev);
  662. down(&fedata->socket_lock);
  663. mappass = radix_tree_lookup(&fedata->socketpass_mappings,
  664. req->u.poll.id);
  665. up(&fedata->socket_lock);
  666. if (mappass == NULL)
  667. return -EINVAL;
  668. /*
  669. * Limitation of the current implementation: only support one
  670. * concurrent accept or poll call on one socket.
  671. */
  672. spin_lock_irqsave(&mappass->copy_lock, flags);
  673. if (mappass->reqcopy.cmd != 0) {
  674. ret = -EINTR;
  675. goto out;
  676. }
  677. mappass->reqcopy = *req;
  678. icsk = inet_csk(mappass->sock->sk);
  679. queue = &icsk->icsk_accept_queue;
  680. data = READ_ONCE(queue->rskq_accept_head) != NULL;
  681. if (data) {
  682. mappass->reqcopy.cmd = 0;
  683. ret = 0;
  684. goto out;
  685. }
  686. spin_unlock_irqrestore(&mappass->copy_lock, flags);
  687. /* Tell the caller we don't need to send back a notification yet */
  688. return -1;
  689. out:
  690. spin_unlock_irqrestore(&mappass->copy_lock, flags);
  691. rsp = RING_GET_RESPONSE(&fedata->ring, fedata->ring.rsp_prod_pvt++);
  692. rsp->req_id = req->req_id;
  693. rsp->cmd = req->cmd;
  694. rsp->u.poll.id = req->u.poll.id;
  695. rsp->ret = ret;
  696. return 0;
  697. }
  698. static int pvcalls_back_handle_cmd(struct xenbus_device *dev,
  699. struct xen_pvcalls_request *req)
  700. {
  701. int ret = 0;
  702. switch (req->cmd) {
  703. case PVCALLS_SOCKET:
  704. ret = pvcalls_back_socket(dev, req);
  705. break;
  706. case PVCALLS_CONNECT:
  707. ret = pvcalls_back_connect(dev, req);
  708. break;
  709. case PVCALLS_RELEASE:
  710. ret = pvcalls_back_release(dev, req);
  711. break;
  712. case PVCALLS_BIND:
  713. ret = pvcalls_back_bind(dev, req);
  714. break;
  715. case PVCALLS_LISTEN:
  716. ret = pvcalls_back_listen(dev, req);
  717. break;
  718. case PVCALLS_ACCEPT:
  719. ret = pvcalls_back_accept(dev, req);
  720. break;
  721. case PVCALLS_POLL:
  722. ret = pvcalls_back_poll(dev, req);
  723. break;
  724. default:
  725. {
  726. struct pvcalls_fedata *fedata;
  727. struct xen_pvcalls_response *rsp;
  728. fedata = dev_get_drvdata(&dev->dev);
  729. rsp = RING_GET_RESPONSE(
  730. &fedata->ring, fedata->ring.rsp_prod_pvt++);
  731. rsp->req_id = req->req_id;
  732. rsp->cmd = req->cmd;
  733. rsp->ret = -ENOTSUPP;
  734. break;
  735. }
  736. }
  737. return ret;
  738. }
  739. static void pvcalls_back_work(struct pvcalls_fedata *fedata)
  740. {
  741. int notify, notify_all = 0, more = 1;
  742. struct xen_pvcalls_request req;
  743. struct xenbus_device *dev = fedata->dev;
  744. while (more) {
  745. while (RING_HAS_UNCONSUMED_REQUESTS(&fedata->ring)) {
  746. RING_COPY_REQUEST(&fedata->ring,
  747. fedata->ring.req_cons++,
  748. &req);
  749. if (!pvcalls_back_handle_cmd(dev, &req)) {
  750. RING_PUSH_RESPONSES_AND_CHECK_NOTIFY(
  751. &fedata->ring, notify);
  752. notify_all += notify;
  753. }
  754. }
  755. if (notify_all) {
  756. notify_remote_via_irq(fedata->irq);
  757. notify_all = 0;
  758. }
  759. RING_FINAL_CHECK_FOR_REQUESTS(&fedata->ring, more);
  760. }
  761. }
  762. static irqreturn_t pvcalls_back_event(int irq, void *dev_id)
  763. {
  764. struct xenbus_device *dev = dev_id;
  765. struct pvcalls_fedata *fedata = NULL;
  766. if (dev == NULL)
  767. return IRQ_HANDLED;
  768. fedata = dev_get_drvdata(&dev->dev);
  769. if (fedata == NULL)
  770. return IRQ_HANDLED;
  771. pvcalls_back_work(fedata);
  772. return IRQ_HANDLED;
  773. }
  774. static irqreturn_t pvcalls_back_conn_event(int irq, void *sock_map)
  775. {
  776. struct sock_mapping *map = sock_map;
  777. struct pvcalls_ioworker *iow;
  778. if (map == NULL || map->sock == NULL || map->sock->sk == NULL ||
  779. map->sock->sk->sk_user_data != map)
  780. return IRQ_HANDLED;
  781. iow = &map->ioworker;
  782. atomic_inc(&map->write);
  783. atomic_inc(&map->io);
  784. queue_work(iow->wq, &iow->register_work);
  785. return IRQ_HANDLED;
  786. }
  787. static int backend_connect(struct xenbus_device *dev)
  788. {
  789. int err, evtchn;
  790. grant_ref_t ring_ref;
  791. struct pvcalls_fedata *fedata = NULL;
  792. fedata = kzalloc(sizeof(struct pvcalls_fedata), GFP_KERNEL);
  793. if (!fedata)
  794. return -ENOMEM;
  795. fedata->irq = -1;
  796. err = xenbus_scanf(XBT_NIL, dev->otherend, "port", "%u",
  797. &evtchn);
  798. if (err != 1) {
  799. err = -EINVAL;
  800. xenbus_dev_fatal(dev, err, "reading %s/event-channel",
  801. dev->otherend);
  802. goto error;
  803. }
  804. err = xenbus_scanf(XBT_NIL, dev->otherend, "ring-ref", "%u", &ring_ref);
  805. if (err != 1) {
  806. err = -EINVAL;
  807. xenbus_dev_fatal(dev, err, "reading %s/ring-ref",
  808. dev->otherend);
  809. goto error;
  810. }
  811. err = bind_interdomain_evtchn_to_irq(dev->otherend_id, evtchn);
  812. if (err < 0)
  813. goto error;
  814. fedata->irq = err;
  815. err = request_threaded_irq(fedata->irq, NULL, pvcalls_back_event,
  816. IRQF_ONESHOT, "pvcalls-back", dev);
  817. if (err < 0)
  818. goto error;
  819. err = xenbus_map_ring_valloc(dev, &ring_ref, 1,
  820. (void **)&fedata->sring);
  821. if (err < 0)
  822. goto error;
  823. BACK_RING_INIT(&fedata->ring, fedata->sring, XEN_PAGE_SIZE * 1);
  824. fedata->dev = dev;
  825. INIT_LIST_HEAD(&fedata->socket_mappings);
  826. INIT_RADIX_TREE(&fedata->socketpass_mappings, GFP_KERNEL);
  827. sema_init(&fedata->socket_lock, 1);
  828. dev_set_drvdata(&dev->dev, fedata);
  829. down(&pvcalls_back_global.frontends_lock);
  830. list_add_tail(&fedata->list, &pvcalls_back_global.frontends);
  831. up(&pvcalls_back_global.frontends_lock);
  832. return 0;
  833. error:
  834. if (fedata->irq >= 0)
  835. unbind_from_irqhandler(fedata->irq, dev);
  836. if (fedata->sring != NULL)
  837. xenbus_unmap_ring_vfree(dev, fedata->sring);
  838. kfree(fedata);
  839. return err;
  840. }
  841. static int backend_disconnect(struct xenbus_device *dev)
  842. {
  843. struct pvcalls_fedata *fedata;
  844. struct sock_mapping *map, *n;
  845. struct sockpass_mapping *mappass;
  846. struct radix_tree_iter iter;
  847. void **slot;
  848. fedata = dev_get_drvdata(&dev->dev);
  849. down(&fedata->socket_lock);
  850. list_for_each_entry_safe(map, n, &fedata->socket_mappings, list) {
  851. list_del(&map->list);
  852. pvcalls_back_release_active(dev, fedata, map);
  853. }
  854. radix_tree_for_each_slot(slot, &fedata->socketpass_mappings, &iter, 0) {
  855. mappass = radix_tree_deref_slot(slot);
  856. if (!mappass)
  857. continue;
  858. if (radix_tree_exception(mappass)) {
  859. if (radix_tree_deref_retry(mappass))
  860. slot = radix_tree_iter_retry(&iter);
  861. } else {
  862. radix_tree_delete(&fedata->socketpass_mappings,
  863. mappass->id);
  864. pvcalls_back_release_passive(dev, fedata, mappass);
  865. }
  866. }
  867. up(&fedata->socket_lock);
  868. unbind_from_irqhandler(fedata->irq, dev);
  869. xenbus_unmap_ring_vfree(dev, fedata->sring);
  870. list_del(&fedata->list);
  871. kfree(fedata);
  872. dev_set_drvdata(&dev->dev, NULL);
  873. return 0;
  874. }
  875. static int pvcalls_back_probe(struct xenbus_device *dev,
  876. const struct xenbus_device_id *id)
  877. {
  878. int err, abort;
  879. struct xenbus_transaction xbt;
  880. again:
  881. abort = 1;
  882. err = xenbus_transaction_start(&xbt);
  883. if (err) {
  884. pr_warn("%s cannot create xenstore transaction\n", __func__);
  885. return err;
  886. }
  887. err = xenbus_printf(xbt, dev->nodename, "versions", "%s",
  888. PVCALLS_VERSIONS);
  889. if (err) {
  890. pr_warn("%s write out 'versions' failed\n", __func__);
  891. goto abort;
  892. }
  893. err = xenbus_printf(xbt, dev->nodename, "max-page-order", "%u",
  894. MAX_RING_ORDER);
  895. if (err) {
  896. pr_warn("%s write out 'max-page-order' failed\n", __func__);
  897. goto abort;
  898. }
  899. err = xenbus_printf(xbt, dev->nodename, "function-calls",
  900. XENBUS_FUNCTIONS_CALLS);
  901. if (err) {
  902. pr_warn("%s write out 'function-calls' failed\n", __func__);
  903. goto abort;
  904. }
  905. abort = 0;
  906. abort:
  907. err = xenbus_transaction_end(xbt, abort);
  908. if (err) {
  909. if (err == -EAGAIN && !abort)
  910. goto again;
  911. pr_warn("%s cannot complete xenstore transaction\n", __func__);
  912. return err;
  913. }
  914. if (abort)
  915. return -EFAULT;
  916. xenbus_switch_state(dev, XenbusStateInitWait);
  917. return 0;
  918. }
  919. static void set_backend_state(struct xenbus_device *dev,
  920. enum xenbus_state state)
  921. {
  922. while (dev->state != state) {
  923. switch (dev->state) {
  924. case XenbusStateClosed:
  925. switch (state) {
  926. case XenbusStateInitWait:
  927. case XenbusStateConnected:
  928. xenbus_switch_state(dev, XenbusStateInitWait);
  929. break;
  930. case XenbusStateClosing:
  931. xenbus_switch_state(dev, XenbusStateClosing);
  932. break;
  933. default:
  934. WARN_ON(1);
  935. }
  936. break;
  937. case XenbusStateInitWait:
  938. case XenbusStateInitialised:
  939. switch (state) {
  940. case XenbusStateConnected:
  941. backend_connect(dev);
  942. xenbus_switch_state(dev, XenbusStateConnected);
  943. break;
  944. case XenbusStateClosing:
  945. case XenbusStateClosed:
  946. xenbus_switch_state(dev, XenbusStateClosing);
  947. break;
  948. default:
  949. WARN_ON(1);
  950. }
  951. break;
  952. case XenbusStateConnected:
  953. switch (state) {
  954. case XenbusStateInitWait:
  955. case XenbusStateClosing:
  956. case XenbusStateClosed:
  957. down(&pvcalls_back_global.frontends_lock);
  958. backend_disconnect(dev);
  959. up(&pvcalls_back_global.frontends_lock);
  960. xenbus_switch_state(dev, XenbusStateClosing);
  961. break;
  962. default:
  963. WARN_ON(1);
  964. }
  965. break;
  966. case XenbusStateClosing:
  967. switch (state) {
  968. case XenbusStateInitWait:
  969. case XenbusStateConnected:
  970. case XenbusStateClosed:
  971. xenbus_switch_state(dev, XenbusStateClosed);
  972. break;
  973. default:
  974. WARN_ON(1);
  975. }
  976. break;
  977. default:
  978. WARN_ON(1);
  979. }
  980. }
  981. }
  982. static void pvcalls_back_changed(struct xenbus_device *dev,
  983. enum xenbus_state frontend_state)
  984. {
  985. switch (frontend_state) {
  986. case XenbusStateInitialising:
  987. set_backend_state(dev, XenbusStateInitWait);
  988. break;
  989. case XenbusStateInitialised:
  990. case XenbusStateConnected:
  991. set_backend_state(dev, XenbusStateConnected);
  992. break;
  993. case XenbusStateClosing:
  994. set_backend_state(dev, XenbusStateClosing);
  995. break;
  996. case XenbusStateClosed:
  997. set_backend_state(dev, XenbusStateClosed);
  998. if (xenbus_dev_is_online(dev))
  999. break;
  1000. device_unregister(&dev->dev);
  1001. break;
  1002. case XenbusStateUnknown:
  1003. set_backend_state(dev, XenbusStateClosed);
  1004. device_unregister(&dev->dev);
  1005. break;
  1006. default:
  1007. xenbus_dev_fatal(dev, -EINVAL, "saw state %d at frontend",
  1008. frontend_state);
  1009. break;
  1010. }
  1011. }
  1012. static int pvcalls_back_remove(struct xenbus_device *dev)
  1013. {
  1014. return 0;
  1015. }
  1016. static int pvcalls_back_uevent(struct xenbus_device *xdev,
  1017. struct kobj_uevent_env *env)
  1018. {
  1019. return 0;
  1020. }
  1021. static const struct xenbus_device_id pvcalls_back_ids[] = {
  1022. { "pvcalls" },
  1023. { "" }
  1024. };
  1025. static struct xenbus_driver pvcalls_back_driver = {
  1026. .ids = pvcalls_back_ids,
  1027. .probe = pvcalls_back_probe,
  1028. .remove = pvcalls_back_remove,
  1029. .uevent = pvcalls_back_uevent,
  1030. .otherend_changed = pvcalls_back_changed,
  1031. };
  1032. static int __init pvcalls_back_init(void)
  1033. {
  1034. int ret;
  1035. if (!xen_domain())
  1036. return -ENODEV;
  1037. ret = xenbus_register_backend(&pvcalls_back_driver);
  1038. if (ret < 0)
  1039. return ret;
  1040. sema_init(&pvcalls_back_global.frontends_lock, 1);
  1041. INIT_LIST_HEAD(&pvcalls_back_global.frontends);
  1042. return 0;
  1043. }
  1044. module_init(pvcalls_back_init);
  1045. static void __exit pvcalls_back_fin(void)
  1046. {
  1047. struct pvcalls_fedata *fedata, *nfedata;
  1048. down(&pvcalls_back_global.frontends_lock);
  1049. list_for_each_entry_safe(fedata, nfedata,
  1050. &pvcalls_back_global.frontends, list) {
  1051. backend_disconnect(fedata->dev);
  1052. }
  1053. up(&pvcalls_back_global.frontends_lock);
  1054. xenbus_unregister_driver(&pvcalls_back_driver);
  1055. }
  1056. module_exit(pvcalls_back_fin);
  1057. MODULE_DESCRIPTION("Xen PV Calls backend driver");
  1058. MODULE_AUTHOR("Stefano Stabellini <sstabellini@kernel.org>");
  1059. MODULE_LICENSE("GPL");