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redirect.c 85 KB

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  1. /*
  2. * USB redirector usb-guest
  3. *
  4. * Copyright (c) 2011-2012 Red Hat, Inc.
  5. *
  6. * Red Hat Authors:
  7. * Hans de Goede <hdegoede@redhat.com>
  8. *
  9. * Permission is hereby granted, free of charge, to any person obtaining a copy
  10. * of this software and associated documentation files (the "Software"), to deal
  11. * in the Software without restriction, including without limitation the rights
  12. * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
  13. * copies of the Software, and to permit persons to whom the Software is
  14. * furnished to do so, subject to the following conditions:
  15. *
  16. * The above copyright notice and this permission notice shall be included in
  17. * all copies or substantial portions of the Software.
  18. *
  19. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  20. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  21. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
  22. * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  23. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  24. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
  25. * THE SOFTWARE.
  26. */
  27. #include "qemu/osdep.h"
  28. #include "qemu/cutils.h"
  29. #include "qemu/units.h"
  30. #include "qapi/error.h"
  31. #include "qemu/timer.h"
  32. #include "sysemu/runstate.h"
  33. #include "sysemu/sysemu.h"
  34. #include "qapi/qmp/qerror.h"
  35. #include "qemu/error-report.h"
  36. #include "qemu/iov.h"
  37. #include "qemu/module.h"
  38. #include "chardev/char-fe.h"
  39. #include <usbredirparser.h>
  40. #include <usbredirfilter.h>
  41. #include "hw/qdev-properties.h"
  42. #include "hw/qdev-properties-system.h"
  43. #include "hw/usb.h"
  44. #include "migration/qemu-file-types.h"
  45. #include "migration/vmstate.h"
  46. #include "qom/object.h"
  47. /* ERROR is defined below. Remove any previous definition. */
  48. #undef ERROR
  49. #define MAX_ENDPOINTS 32
  50. #define NO_INTERFACE_INFO 255 /* Valid interface_count always <= 32 */
  51. #define EP2I(ep_address) (((ep_address & 0x80) >> 3) | (ep_address & 0x0f))
  52. #define I2EP(i) (((i & 0x10) << 3) | (i & 0x0f))
  53. #define USBEP2I(usb_ep) (((usb_ep)->pid == USB_TOKEN_IN) ? \
  54. ((usb_ep)->nr | 0x10) : ((usb_ep)->nr))
  55. #define I2USBEP(d, i) (usb_ep_get(&(d)->dev, \
  56. ((i) & 0x10) ? USB_TOKEN_IN : USB_TOKEN_OUT, \
  57. (i) & 0x0f))
  58. #ifndef USBREDIR_VERSION /* This is not defined in older usbredir versions */
  59. #define USBREDIR_VERSION 0
  60. #endif
  61. typedef struct USBRedirDevice USBRedirDevice;
  62. /* Struct to hold buffered packets */
  63. struct buf_packet {
  64. uint8_t *data;
  65. void *free_on_destroy;
  66. uint16_t len;
  67. uint16_t offset;
  68. uint8_t status;
  69. QTAILQ_ENTRY(buf_packet)next;
  70. };
  71. struct endp_data {
  72. USBRedirDevice *dev;
  73. uint8_t type;
  74. uint8_t interval;
  75. uint8_t interface; /* bInterfaceNumber this ep belongs to */
  76. uint16_t max_packet_size; /* In bytes, not wMaxPacketSize format !! */
  77. uint32_t max_streams;
  78. uint8_t iso_started;
  79. uint8_t iso_error; /* For reporting iso errors to the HC */
  80. uint8_t interrupt_started;
  81. uint8_t interrupt_error;
  82. uint8_t bulk_receiving_enabled;
  83. uint8_t bulk_receiving_started;
  84. uint8_t bufpq_prefilled;
  85. uint8_t bufpq_dropping_packets;
  86. QTAILQ_HEAD(, buf_packet) bufpq;
  87. int32_t bufpq_size;
  88. int32_t bufpq_target_size;
  89. USBPacket *pending_async_packet;
  90. };
  91. struct PacketIdQueueEntry {
  92. uint64_t id;
  93. QTAILQ_ENTRY(PacketIdQueueEntry)next;
  94. };
  95. struct PacketIdQueue {
  96. USBRedirDevice *dev;
  97. const char *name;
  98. QTAILQ_HEAD(, PacketIdQueueEntry) head;
  99. int size;
  100. };
  101. struct USBRedirDevice {
  102. USBDevice dev;
  103. /* Properties */
  104. CharBackend cs;
  105. bool enable_streams;
  106. bool suppress_remote_wake;
  107. bool in_write;
  108. uint8_t debug;
  109. int32_t bootindex;
  110. char *filter_str;
  111. /* Data passed from chardev the fd_read cb to the usbredirparser read cb */
  112. const uint8_t *read_buf;
  113. int read_buf_size;
  114. /* Active chardev-watch-tag */
  115. guint watch;
  116. /* For async handling of close / reject */
  117. QEMUBH *chardev_close_bh;
  118. QEMUBH *device_reject_bh;
  119. /* To delay the usb attach in case of quick chardev close + open */
  120. QEMUTimer *attach_timer;
  121. int64_t next_attach_time;
  122. struct usbredirparser *parser;
  123. struct endp_data endpoint[MAX_ENDPOINTS];
  124. struct PacketIdQueue cancelled;
  125. struct PacketIdQueue already_in_flight;
  126. void (*buffered_bulk_in_complete)(USBRedirDevice *, USBPacket *, uint8_t);
  127. /* Data for device filtering */
  128. struct usb_redir_device_connect_header device_info;
  129. struct usb_redir_interface_info_header interface_info;
  130. struct usbredirfilter_rule *filter_rules;
  131. int filter_rules_count;
  132. int compatible_speedmask;
  133. VMChangeStateEntry *vmstate;
  134. };
  135. #define TYPE_USB_REDIR "usb-redir"
  136. DECLARE_INSTANCE_CHECKER(USBRedirDevice, USB_REDIRECT,
  137. TYPE_USB_REDIR)
  138. static void usbredir_hello(void *priv, struct usb_redir_hello_header *h);
  139. static void usbredir_device_connect(void *priv,
  140. struct usb_redir_device_connect_header *device_connect);
  141. static void usbredir_device_disconnect(void *priv);
  142. static void usbredir_interface_info(void *priv,
  143. struct usb_redir_interface_info_header *interface_info);
  144. static void usbredir_ep_info(void *priv,
  145. struct usb_redir_ep_info_header *ep_info);
  146. static void usbredir_configuration_status(void *priv, uint64_t id,
  147. struct usb_redir_configuration_status_header *configuration_status);
  148. static void usbredir_alt_setting_status(void *priv, uint64_t id,
  149. struct usb_redir_alt_setting_status_header *alt_setting_status);
  150. static void usbredir_iso_stream_status(void *priv, uint64_t id,
  151. struct usb_redir_iso_stream_status_header *iso_stream_status);
  152. static void usbredir_interrupt_receiving_status(void *priv, uint64_t id,
  153. struct usb_redir_interrupt_receiving_status_header
  154. *interrupt_receiving_status);
  155. static void usbredir_bulk_streams_status(void *priv, uint64_t id,
  156. struct usb_redir_bulk_streams_status_header *bulk_streams_status);
  157. static void usbredir_bulk_receiving_status(void *priv, uint64_t id,
  158. struct usb_redir_bulk_receiving_status_header *bulk_receiving_status);
  159. static void usbredir_control_packet(void *priv, uint64_t id,
  160. struct usb_redir_control_packet_header *control_packet,
  161. uint8_t *data, int data_len);
  162. static void usbredir_bulk_packet(void *priv, uint64_t id,
  163. struct usb_redir_bulk_packet_header *bulk_packet,
  164. uint8_t *data, int data_len);
  165. static void usbredir_iso_packet(void *priv, uint64_t id,
  166. struct usb_redir_iso_packet_header *iso_packet,
  167. uint8_t *data, int data_len);
  168. static void usbredir_interrupt_packet(void *priv, uint64_t id,
  169. struct usb_redir_interrupt_packet_header *interrupt_header,
  170. uint8_t *data, int data_len);
  171. static void usbredir_buffered_bulk_packet(void *priv, uint64_t id,
  172. struct usb_redir_buffered_bulk_packet_header *buffered_bulk_packet,
  173. uint8_t *data, int data_len);
  174. static void usbredir_handle_status(USBRedirDevice *dev, USBPacket *p,
  175. int status);
  176. #define VERSION "qemu usb-redir guest " QEMU_VERSION
  177. /*
  178. * Logging stuff
  179. */
  180. #define ERROR(...) \
  181. do { \
  182. if (dev->debug >= usbredirparser_error) { \
  183. error_report("usb-redir error: " __VA_ARGS__); \
  184. } \
  185. } while (0)
  186. #define WARNING(...) \
  187. do { \
  188. if (dev->debug >= usbredirparser_warning) { \
  189. warn_report("" __VA_ARGS__); \
  190. } \
  191. } while (0)
  192. #define INFO(...) \
  193. do { \
  194. if (dev->debug >= usbredirparser_info) { \
  195. error_report("usb-redir: " __VA_ARGS__); \
  196. } \
  197. } while (0)
  198. #define DPRINTF(...) \
  199. do { \
  200. if (dev->debug >= usbredirparser_debug) { \
  201. error_report("usb-redir: " __VA_ARGS__); \
  202. } \
  203. } while (0)
  204. #define DPRINTF2(...) \
  205. do { \
  206. if (dev->debug >= usbredirparser_debug_data) { \
  207. error_report("usb-redir: " __VA_ARGS__); \
  208. } \
  209. } while (0)
  210. static void usbredir_log(void *priv, int level, const char *msg)
  211. {
  212. USBRedirDevice *dev = priv;
  213. if (dev->debug < level) {
  214. return;
  215. }
  216. error_report("%s", msg);
  217. }
  218. static void usbredir_log_data(USBRedirDevice *dev, const char *desc,
  219. const uint8_t *data, int len)
  220. {
  221. if (dev->debug < usbredirparser_debug_data) {
  222. return;
  223. }
  224. qemu_hexdump(stderr, desc, data, len);
  225. }
  226. /*
  227. * usbredirparser io functions
  228. */
  229. static int usbredir_read(void *priv, uint8_t *data, int count)
  230. {
  231. USBRedirDevice *dev = priv;
  232. if (dev->read_buf_size < count) {
  233. count = dev->read_buf_size;
  234. }
  235. memcpy(data, dev->read_buf, count);
  236. dev->read_buf_size -= count;
  237. if (dev->read_buf_size) {
  238. dev->read_buf += count;
  239. } else {
  240. dev->read_buf = NULL;
  241. }
  242. return count;
  243. }
  244. static gboolean usbredir_write_unblocked(void *do_not_use, GIOCondition cond,
  245. void *opaque)
  246. {
  247. USBRedirDevice *dev = opaque;
  248. dev->watch = 0;
  249. usbredirparser_do_write(dev->parser);
  250. return FALSE;
  251. }
  252. static int usbredir_write(void *priv, uint8_t *data, int count)
  253. {
  254. USBRedirDevice *dev = priv;
  255. int r;
  256. if (!qemu_chr_fe_backend_open(&dev->cs)) {
  257. return 0;
  258. }
  259. /* Don't send new data to the chardev until our state is fully synced */
  260. if (!runstate_check(RUN_STATE_RUNNING)) {
  261. return 0;
  262. }
  263. /* Recursion check */
  264. if (dev->in_write) {
  265. DPRINTF("usbredir_write recursion\n");
  266. return 0;
  267. }
  268. dev->in_write = true;
  269. r = qemu_chr_fe_write(&dev->cs, data, count);
  270. if (r < count) {
  271. if (!dev->watch) {
  272. dev->watch = qemu_chr_fe_add_watch(&dev->cs, G_IO_OUT | G_IO_HUP,
  273. usbredir_write_unblocked, dev);
  274. }
  275. if (r < 0) {
  276. r = 0;
  277. }
  278. }
  279. dev->in_write = false;
  280. return r;
  281. }
  282. /*
  283. * Cancelled and buffered packets helpers
  284. */
  285. static void packet_id_queue_init(struct PacketIdQueue *q,
  286. USBRedirDevice *dev, const char *name)
  287. {
  288. q->dev = dev;
  289. q->name = name;
  290. QTAILQ_INIT(&q->head);
  291. q->size = 0;
  292. }
  293. static void packet_id_queue_add(struct PacketIdQueue *q, uint64_t id)
  294. {
  295. USBRedirDevice *dev = q->dev;
  296. struct PacketIdQueueEntry *e;
  297. DPRINTF("adding packet id %"PRIu64" to %s queue\n", id, q->name);
  298. e = g_new0(struct PacketIdQueueEntry, 1);
  299. e->id = id;
  300. QTAILQ_INSERT_TAIL(&q->head, e, next);
  301. q->size++;
  302. }
  303. static int packet_id_queue_remove(struct PacketIdQueue *q, uint64_t id)
  304. {
  305. USBRedirDevice *dev = q->dev;
  306. struct PacketIdQueueEntry *e;
  307. QTAILQ_FOREACH(e, &q->head, next) {
  308. if (e->id == id) {
  309. DPRINTF("removing packet id %"PRIu64" from %s queue\n",
  310. id, q->name);
  311. QTAILQ_REMOVE(&q->head, e, next);
  312. q->size--;
  313. g_free(e);
  314. return 1;
  315. }
  316. }
  317. return 0;
  318. }
  319. static void packet_id_queue_empty(struct PacketIdQueue *q)
  320. {
  321. USBRedirDevice *dev = q->dev;
  322. struct PacketIdQueueEntry *e, *next_e;
  323. DPRINTF("removing %d packet-ids from %s queue\n", q->size, q->name);
  324. QTAILQ_FOREACH_SAFE(e, &q->head, next, next_e) {
  325. QTAILQ_REMOVE(&q->head, e, next);
  326. g_free(e);
  327. }
  328. q->size = 0;
  329. }
  330. static void usbredir_cancel_packet(USBDevice *udev, USBPacket *p)
  331. {
  332. USBRedirDevice *dev = USB_REDIRECT(udev);
  333. int i = USBEP2I(p->ep);
  334. if (p->combined) {
  335. usb_combined_packet_cancel(udev, p);
  336. return;
  337. }
  338. if (dev->endpoint[i].pending_async_packet) {
  339. assert(dev->endpoint[i].pending_async_packet == p);
  340. dev->endpoint[i].pending_async_packet = NULL;
  341. return;
  342. }
  343. packet_id_queue_add(&dev->cancelled, p->id);
  344. usbredirparser_send_cancel_data_packet(dev->parser, p->id);
  345. usbredirparser_do_write(dev->parser);
  346. }
  347. static int usbredir_is_cancelled(USBRedirDevice *dev, uint64_t id)
  348. {
  349. if (!dev->dev.attached) {
  350. return 1; /* Treat everything as cancelled after a disconnect */
  351. }
  352. return packet_id_queue_remove(&dev->cancelled, id);
  353. }
  354. static void usbredir_fill_already_in_flight_from_ep(USBRedirDevice *dev,
  355. struct USBEndpoint *ep)
  356. {
  357. static USBPacket *p;
  358. /* async handled packets for bulk receiving eps do not count as inflight */
  359. if (dev->endpoint[USBEP2I(ep)].bulk_receiving_started) {
  360. return;
  361. }
  362. QTAILQ_FOREACH(p, &ep->queue, queue) {
  363. /* Skip combined packets, except for the first */
  364. if (p->combined && p != p->combined->first) {
  365. continue;
  366. }
  367. if (p->state == USB_PACKET_ASYNC) {
  368. packet_id_queue_add(&dev->already_in_flight, p->id);
  369. }
  370. }
  371. }
  372. static void usbredir_fill_already_in_flight(USBRedirDevice *dev)
  373. {
  374. int ep;
  375. struct USBDevice *udev = &dev->dev;
  376. usbredir_fill_already_in_flight_from_ep(dev, &udev->ep_ctl);
  377. for (ep = 0; ep < USB_MAX_ENDPOINTS; ep++) {
  378. usbredir_fill_already_in_flight_from_ep(dev, &udev->ep_in[ep]);
  379. usbredir_fill_already_in_flight_from_ep(dev, &udev->ep_out[ep]);
  380. }
  381. }
  382. static int usbredir_already_in_flight(USBRedirDevice *dev, uint64_t id)
  383. {
  384. return packet_id_queue_remove(&dev->already_in_flight, id);
  385. }
  386. static USBPacket *usbredir_find_packet_by_id(USBRedirDevice *dev,
  387. uint8_t ep, uint64_t id)
  388. {
  389. USBPacket *p;
  390. if (usbredir_is_cancelled(dev, id)) {
  391. return NULL;
  392. }
  393. p = usb_ep_find_packet_by_id(&dev->dev,
  394. (ep & USB_DIR_IN) ? USB_TOKEN_IN : USB_TOKEN_OUT,
  395. ep & 0x0f, id);
  396. if (p == NULL) {
  397. ERROR("could not find packet with id %"PRIu64"\n", id);
  398. }
  399. return p;
  400. }
  401. static int bufp_alloc(USBRedirDevice *dev, uint8_t *data, uint16_t len,
  402. uint8_t status, uint8_t ep, void *free_on_destroy)
  403. {
  404. struct buf_packet *bufp;
  405. if (!dev->endpoint[EP2I(ep)].bufpq_dropping_packets &&
  406. dev->endpoint[EP2I(ep)].bufpq_size >
  407. 2 * dev->endpoint[EP2I(ep)].bufpq_target_size) {
  408. DPRINTF("bufpq overflow, dropping packets ep %02X\n", ep);
  409. dev->endpoint[EP2I(ep)].bufpq_dropping_packets = 1;
  410. }
  411. /* Since we're interupting the stream anyways, drop enough packets to get
  412. back to our target buffer size */
  413. if (dev->endpoint[EP2I(ep)].bufpq_dropping_packets) {
  414. if (dev->endpoint[EP2I(ep)].bufpq_size >
  415. dev->endpoint[EP2I(ep)].bufpq_target_size) {
  416. free(free_on_destroy);
  417. return -1;
  418. }
  419. dev->endpoint[EP2I(ep)].bufpq_dropping_packets = 0;
  420. }
  421. bufp = g_new(struct buf_packet, 1);
  422. bufp->data = data;
  423. bufp->len = len;
  424. bufp->offset = 0;
  425. bufp->status = status;
  426. bufp->free_on_destroy = free_on_destroy;
  427. QTAILQ_INSERT_TAIL(&dev->endpoint[EP2I(ep)].bufpq, bufp, next);
  428. dev->endpoint[EP2I(ep)].bufpq_size++;
  429. return 0;
  430. }
  431. static void bufp_free(USBRedirDevice *dev, struct buf_packet *bufp,
  432. uint8_t ep)
  433. {
  434. QTAILQ_REMOVE(&dev->endpoint[EP2I(ep)].bufpq, bufp, next);
  435. dev->endpoint[EP2I(ep)].bufpq_size--;
  436. free(bufp->free_on_destroy);
  437. g_free(bufp);
  438. }
  439. static void usbredir_free_bufpq(USBRedirDevice *dev, uint8_t ep)
  440. {
  441. struct buf_packet *buf, *buf_next;
  442. QTAILQ_FOREACH_SAFE(buf, &dev->endpoint[EP2I(ep)].bufpq, next, buf_next) {
  443. bufp_free(dev, buf, ep);
  444. }
  445. }
  446. /*
  447. * USBDevice callbacks
  448. */
  449. static void usbredir_handle_reset(USBDevice *udev)
  450. {
  451. USBRedirDevice *dev = USB_REDIRECT(udev);
  452. DPRINTF("reset device\n");
  453. usbredirparser_send_reset(dev->parser);
  454. usbredirparser_do_write(dev->parser);
  455. }
  456. static void usbredir_handle_iso_data(USBRedirDevice *dev, USBPacket *p,
  457. uint8_t ep)
  458. {
  459. int status, len;
  460. if (!dev->endpoint[EP2I(ep)].iso_started &&
  461. !dev->endpoint[EP2I(ep)].iso_error) {
  462. struct usb_redir_start_iso_stream_header start_iso = {
  463. .endpoint = ep,
  464. };
  465. int pkts_per_sec;
  466. if (dev->dev.speed == USB_SPEED_HIGH) {
  467. pkts_per_sec = 8000 / dev->endpoint[EP2I(ep)].interval;
  468. } else {
  469. pkts_per_sec = 1000 / dev->endpoint[EP2I(ep)].interval;
  470. }
  471. /* Testing has shown that we need circa 60 ms buffer */
  472. dev->endpoint[EP2I(ep)].bufpq_target_size = (pkts_per_sec * 60) / 1000;
  473. /* Aim for approx 100 interrupts / second on the client to
  474. balance latency and interrupt load */
  475. start_iso.pkts_per_urb = pkts_per_sec / 100;
  476. if (start_iso.pkts_per_urb < 1) {
  477. start_iso.pkts_per_urb = 1;
  478. } else if (start_iso.pkts_per_urb > 32) {
  479. start_iso.pkts_per_urb = 32;
  480. }
  481. start_iso.no_urbs = DIV_ROUND_UP(
  482. dev->endpoint[EP2I(ep)].bufpq_target_size,
  483. start_iso.pkts_per_urb);
  484. /* Output endpoints pre-fill only 1/2 of the packets, keeping the rest
  485. as overflow buffer. Also see the usbredir protocol documentation */
  486. if (!(ep & USB_DIR_IN)) {
  487. start_iso.no_urbs *= 2;
  488. }
  489. if (start_iso.no_urbs > 16) {
  490. start_iso.no_urbs = 16;
  491. }
  492. /* No id, we look at the ep when receiving a status back */
  493. usbredirparser_send_start_iso_stream(dev->parser, 0, &start_iso);
  494. usbredirparser_do_write(dev->parser);
  495. DPRINTF("iso stream started pkts/sec %d pkts/urb %d urbs %d ep %02X\n",
  496. pkts_per_sec, start_iso.pkts_per_urb, start_iso.no_urbs, ep);
  497. dev->endpoint[EP2I(ep)].iso_started = 1;
  498. dev->endpoint[EP2I(ep)].bufpq_prefilled = 0;
  499. dev->endpoint[EP2I(ep)].bufpq_dropping_packets = 0;
  500. }
  501. if (ep & USB_DIR_IN) {
  502. struct buf_packet *isop;
  503. if (dev->endpoint[EP2I(ep)].iso_started &&
  504. !dev->endpoint[EP2I(ep)].bufpq_prefilled) {
  505. if (dev->endpoint[EP2I(ep)].bufpq_size <
  506. dev->endpoint[EP2I(ep)].bufpq_target_size) {
  507. return;
  508. }
  509. dev->endpoint[EP2I(ep)].bufpq_prefilled = 1;
  510. }
  511. isop = QTAILQ_FIRST(&dev->endpoint[EP2I(ep)].bufpq);
  512. if (isop == NULL) {
  513. DPRINTF("iso-token-in ep %02X, no isop, iso_error: %d\n",
  514. ep, dev->endpoint[EP2I(ep)].iso_error);
  515. /* Re-fill the buffer */
  516. dev->endpoint[EP2I(ep)].bufpq_prefilled = 0;
  517. /* Check iso_error for stream errors, otherwise its an underrun */
  518. status = dev->endpoint[EP2I(ep)].iso_error;
  519. dev->endpoint[EP2I(ep)].iso_error = 0;
  520. p->status = status ? USB_RET_IOERROR : USB_RET_SUCCESS;
  521. return;
  522. }
  523. DPRINTF2("iso-token-in ep %02X status %d len %d queue-size: %d\n", ep,
  524. isop->status, isop->len, dev->endpoint[EP2I(ep)].bufpq_size);
  525. status = isop->status;
  526. len = isop->len;
  527. if (len > p->iov.size) {
  528. ERROR("received iso data is larger then packet ep %02X (%d > %d)\n",
  529. ep, len, (int)p->iov.size);
  530. len = p->iov.size;
  531. status = usb_redir_babble;
  532. }
  533. usb_packet_copy(p, isop->data, len);
  534. bufp_free(dev, isop, ep);
  535. usbredir_handle_status(dev, p, status);
  536. } else {
  537. /* If the stream was not started because of a pending error don't
  538. send the packet to the usb-host */
  539. if (dev->endpoint[EP2I(ep)].iso_started) {
  540. struct usb_redir_iso_packet_header iso_packet = {
  541. .endpoint = ep,
  542. .length = p->iov.size
  543. };
  544. g_autofree uint8_t *buf = g_malloc(p->iov.size);
  545. /* No id, we look at the ep when receiving a status back */
  546. usb_packet_copy(p, buf, p->iov.size);
  547. usbredirparser_send_iso_packet(dev->parser, 0, &iso_packet,
  548. buf, p->iov.size);
  549. usbredirparser_do_write(dev->parser);
  550. }
  551. status = dev->endpoint[EP2I(ep)].iso_error;
  552. dev->endpoint[EP2I(ep)].iso_error = 0;
  553. DPRINTF2("iso-token-out ep %02X status %d len %zd\n", ep, status,
  554. p->iov.size);
  555. usbredir_handle_status(dev, p, status);
  556. }
  557. }
  558. static void usbredir_stop_iso_stream(USBRedirDevice *dev, uint8_t ep)
  559. {
  560. struct usb_redir_stop_iso_stream_header stop_iso_stream = {
  561. .endpoint = ep
  562. };
  563. if (dev->endpoint[EP2I(ep)].iso_started) {
  564. usbredirparser_send_stop_iso_stream(dev->parser, 0, &stop_iso_stream);
  565. DPRINTF("iso stream stopped ep %02X\n", ep);
  566. dev->endpoint[EP2I(ep)].iso_started = 0;
  567. }
  568. dev->endpoint[EP2I(ep)].iso_error = 0;
  569. usbredir_free_bufpq(dev, ep);
  570. }
  571. /*
  572. * The usb-host may poll the endpoint faster then our guest, resulting in lots
  573. * of smaller bulkp-s. The below buffered_bulk_in_complete* functions combine
  574. * data from multiple bulkp-s into a single packet, avoiding bufpq overflows.
  575. */
  576. static void usbredir_buffered_bulk_add_data_to_packet(USBRedirDevice *dev,
  577. struct buf_packet *bulkp, int count, USBPacket *p, uint8_t ep)
  578. {
  579. usb_packet_copy(p, bulkp->data + bulkp->offset, count);
  580. bulkp->offset += count;
  581. if (bulkp->offset == bulkp->len) {
  582. /* Store status in the last packet with data from this bulkp */
  583. usbredir_handle_status(dev, p, bulkp->status);
  584. bufp_free(dev, bulkp, ep);
  585. }
  586. }
  587. static void usbredir_buffered_bulk_in_complete_raw(USBRedirDevice *dev,
  588. USBPacket *p, uint8_t ep)
  589. {
  590. struct buf_packet *bulkp;
  591. int count;
  592. while ((bulkp = QTAILQ_FIRST(&dev->endpoint[EP2I(ep)].bufpq)) &&
  593. p->actual_length < p->iov.size && p->status == USB_RET_SUCCESS) {
  594. count = bulkp->len - bulkp->offset;
  595. if (count > (p->iov.size - p->actual_length)) {
  596. count = p->iov.size - p->actual_length;
  597. }
  598. usbredir_buffered_bulk_add_data_to_packet(dev, bulkp, count, p, ep);
  599. }
  600. }
  601. static void usbredir_buffered_bulk_in_complete_ftdi(USBRedirDevice *dev,
  602. USBPacket *p, uint8_t ep)
  603. {
  604. const int maxp = dev->endpoint[EP2I(ep)].max_packet_size;
  605. uint8_t header[2] = { 0, 0 };
  606. struct buf_packet *bulkp;
  607. int count;
  608. while ((bulkp = QTAILQ_FIRST(&dev->endpoint[EP2I(ep)].bufpq)) &&
  609. p->actual_length < p->iov.size && p->status == USB_RET_SUCCESS) {
  610. if (bulkp->len < 2) {
  611. WARNING("malformed ftdi bulk in packet\n");
  612. bufp_free(dev, bulkp, ep);
  613. continue;
  614. }
  615. if ((p->actual_length % maxp) == 0) {
  616. usb_packet_copy(p, bulkp->data, 2);
  617. memcpy(header, bulkp->data, 2);
  618. } else {
  619. if (bulkp->data[0] != header[0] || bulkp->data[1] != header[1]) {
  620. break; /* Different header, add to next packet */
  621. }
  622. }
  623. if (bulkp->offset == 0) {
  624. bulkp->offset = 2; /* Skip header */
  625. }
  626. count = bulkp->len - bulkp->offset;
  627. /* Must repeat the header at maxp interval */
  628. if (count > (maxp - (p->actual_length % maxp))) {
  629. count = maxp - (p->actual_length % maxp);
  630. }
  631. usbredir_buffered_bulk_add_data_to_packet(dev, bulkp, count, p, ep);
  632. }
  633. }
  634. static void usbredir_buffered_bulk_in_complete(USBRedirDevice *dev,
  635. USBPacket *p, uint8_t ep)
  636. {
  637. p->status = USB_RET_SUCCESS; /* Clear previous ASYNC status */
  638. dev->buffered_bulk_in_complete(dev, p, ep);
  639. DPRINTF("bulk-token-in ep %02X status %d len %d id %"PRIu64"\n",
  640. ep, p->status, p->actual_length, p->id);
  641. }
  642. static void usbredir_handle_buffered_bulk_in_data(USBRedirDevice *dev,
  643. USBPacket *p, uint8_t ep)
  644. {
  645. /* Input bulk endpoint, buffered packet input */
  646. if (!dev->endpoint[EP2I(ep)].bulk_receiving_started) {
  647. int bpt;
  648. struct usb_redir_start_bulk_receiving_header start = {
  649. .endpoint = ep,
  650. .stream_id = 0,
  651. .no_transfers = 5,
  652. };
  653. /* Round bytes_per_transfer up to a multiple of max_packet_size */
  654. bpt = 512 + dev->endpoint[EP2I(ep)].max_packet_size - 1;
  655. bpt /= dev->endpoint[EP2I(ep)].max_packet_size;
  656. bpt *= dev->endpoint[EP2I(ep)].max_packet_size;
  657. start.bytes_per_transfer = bpt;
  658. /* No id, we look at the ep when receiving a status back */
  659. usbredirparser_send_start_bulk_receiving(dev->parser, 0, &start);
  660. usbredirparser_do_write(dev->parser);
  661. DPRINTF("bulk receiving started bytes/transfer %u count %d ep %02X\n",
  662. start.bytes_per_transfer, start.no_transfers, ep);
  663. dev->endpoint[EP2I(ep)].bulk_receiving_started = 1;
  664. /* We don't really want to drop bulk packets ever, but
  665. having some upper limit to how much we buffer is good. */
  666. dev->endpoint[EP2I(ep)].bufpq_target_size = 5000;
  667. dev->endpoint[EP2I(ep)].bufpq_dropping_packets = 0;
  668. }
  669. if (QTAILQ_EMPTY(&dev->endpoint[EP2I(ep)].bufpq)) {
  670. DPRINTF("bulk-token-in ep %02X, no bulkp\n", ep);
  671. assert(dev->endpoint[EP2I(ep)].pending_async_packet == NULL);
  672. dev->endpoint[EP2I(ep)].pending_async_packet = p;
  673. p->status = USB_RET_ASYNC;
  674. return;
  675. }
  676. usbredir_buffered_bulk_in_complete(dev, p, ep);
  677. }
  678. static void usbredir_stop_bulk_receiving(USBRedirDevice *dev, uint8_t ep)
  679. {
  680. struct usb_redir_stop_bulk_receiving_header stop_bulk = {
  681. .endpoint = ep,
  682. .stream_id = 0,
  683. };
  684. if (dev->endpoint[EP2I(ep)].bulk_receiving_started) {
  685. usbredirparser_send_stop_bulk_receiving(dev->parser, 0, &stop_bulk);
  686. DPRINTF("bulk receiving stopped ep %02X\n", ep);
  687. dev->endpoint[EP2I(ep)].bulk_receiving_started = 0;
  688. }
  689. usbredir_free_bufpq(dev, ep);
  690. }
  691. static void usbredir_handle_bulk_data(USBRedirDevice *dev, USBPacket *p,
  692. uint8_t ep)
  693. {
  694. struct usb_redir_bulk_packet_header bulk_packet;
  695. size_t size = usb_packet_size(p);
  696. const int maxp = dev->endpoint[EP2I(ep)].max_packet_size;
  697. if (usbredir_already_in_flight(dev, p->id)) {
  698. p->status = USB_RET_ASYNC;
  699. return;
  700. }
  701. if (dev->endpoint[EP2I(ep)].bulk_receiving_enabled) {
  702. if (size != 0 && (size % maxp) == 0) {
  703. usbredir_handle_buffered_bulk_in_data(dev, p, ep);
  704. return;
  705. }
  706. WARNING("bulk recv invalid size %zd ep %02x, disabling\n", size, ep);
  707. assert(dev->endpoint[EP2I(ep)].pending_async_packet == NULL);
  708. usbredir_stop_bulk_receiving(dev, ep);
  709. dev->endpoint[EP2I(ep)].bulk_receiving_enabled = 0;
  710. }
  711. DPRINTF("bulk-out ep %02X stream %u len %zd id %"PRIu64"\n",
  712. ep, p->stream, size, p->id);
  713. bulk_packet.endpoint = ep;
  714. bulk_packet.length = size;
  715. bulk_packet.stream_id = p->stream;
  716. bulk_packet.length_high = size >> 16;
  717. assert(bulk_packet.length_high == 0 ||
  718. usbredirparser_peer_has_cap(dev->parser,
  719. usb_redir_cap_32bits_bulk_length));
  720. if (ep & USB_DIR_IN || size == 0) {
  721. usbredirparser_send_bulk_packet(dev->parser, p->id,
  722. &bulk_packet, NULL, 0);
  723. } else {
  724. g_autofree uint8_t *buf = g_malloc(size);
  725. usb_packet_copy(p, buf, size);
  726. usbredir_log_data(dev, "bulk data out:", buf, size);
  727. usbredirparser_send_bulk_packet(dev->parser, p->id,
  728. &bulk_packet, buf, size);
  729. }
  730. usbredirparser_do_write(dev->parser);
  731. p->status = USB_RET_ASYNC;
  732. }
  733. static void usbredir_handle_interrupt_in_data(USBRedirDevice *dev,
  734. USBPacket *p, uint8_t ep)
  735. {
  736. /* Input interrupt endpoint, buffered packet input */
  737. struct buf_packet *intp, *intp_to_free;
  738. int status, len, sum;
  739. if (!dev->endpoint[EP2I(ep)].interrupt_started &&
  740. !dev->endpoint[EP2I(ep)].interrupt_error) {
  741. struct usb_redir_start_interrupt_receiving_header start_int = {
  742. .endpoint = ep,
  743. };
  744. /* No id, we look at the ep when receiving a status back */
  745. usbredirparser_send_start_interrupt_receiving(dev->parser, 0,
  746. &start_int);
  747. usbredirparser_do_write(dev->parser);
  748. DPRINTF("interrupt recv started ep %02X\n", ep);
  749. dev->endpoint[EP2I(ep)].interrupt_started = 1;
  750. /* We don't really want to drop interrupt packets ever, but
  751. having some upper limit to how much we buffer is good. */
  752. dev->endpoint[EP2I(ep)].bufpq_target_size = 1000;
  753. dev->endpoint[EP2I(ep)].bufpq_dropping_packets = 0;
  754. }
  755. /* check for completed interrupt message (with all fragments) */
  756. sum = 0;
  757. QTAILQ_FOREACH(intp, &dev->endpoint[EP2I(ep)].bufpq, next) {
  758. sum += intp->len;
  759. if (intp->len < dev->endpoint[EP2I(ep)].max_packet_size ||
  760. sum >= p->iov.size)
  761. break;
  762. }
  763. if (intp == NULL) {
  764. DPRINTF2("interrupt-token-in ep %02X, no intp, buffered %d\n", ep, sum);
  765. /* Check interrupt_error for stream errors */
  766. status = dev->endpoint[EP2I(ep)].interrupt_error;
  767. dev->endpoint[EP2I(ep)].interrupt_error = 0;
  768. if (status) {
  769. usbredir_handle_status(dev, p, status);
  770. } else {
  771. p->status = USB_RET_NAK;
  772. }
  773. return;
  774. }
  775. /* copy of completed interrupt message */
  776. sum = 0;
  777. status = usb_redir_success;
  778. intp_to_free = NULL;
  779. QTAILQ_FOREACH(intp, &dev->endpoint[EP2I(ep)].bufpq, next) {
  780. if (intp_to_free) {
  781. bufp_free(dev, intp_to_free, ep);
  782. }
  783. DPRINTF("interrupt-token-in ep %02X fragment status %d len %d\n", ep,
  784. intp->status, intp->len);
  785. sum += intp->len;
  786. len = intp->len;
  787. if (status == usb_redir_success) {
  788. status = intp->status;
  789. }
  790. if (sum > p->iov.size) {
  791. ERROR("received int data is larger then packet ep %02X\n", ep);
  792. len -= (sum - p->iov.size);
  793. sum = p->iov.size;
  794. status = usb_redir_babble;
  795. }
  796. usb_packet_copy(p, intp->data, len);
  797. intp_to_free = intp;
  798. if (intp->len < dev->endpoint[EP2I(ep)].max_packet_size ||
  799. sum >= p->iov.size)
  800. break;
  801. }
  802. if (intp_to_free) {
  803. bufp_free(dev, intp_to_free, ep);
  804. }
  805. DPRINTF("interrupt-token-in ep %02X summary status %d len %d\n", ep,
  806. status, sum);
  807. usbredir_handle_status(dev, p, status);
  808. }
  809. /*
  810. * Handle interrupt out data, the usbredir protocol expects us to do this
  811. * async, so that it can report back a completion status. But guests will
  812. * expect immediate completion for an interrupt endpoint, and handling this
  813. * async causes migration issues. So we report success directly, counting
  814. * on the fact that output interrupt packets normally always succeed.
  815. */
  816. static void usbredir_handle_interrupt_out_data(USBRedirDevice *dev,
  817. USBPacket *p, uint8_t ep)
  818. {
  819. struct usb_redir_interrupt_packet_header interrupt_packet;
  820. g_autofree uint8_t *buf = g_malloc(p->iov.size);
  821. DPRINTF("interrupt-out ep %02X len %zd id %"PRIu64"\n", ep,
  822. p->iov.size, p->id);
  823. interrupt_packet.endpoint = ep;
  824. interrupt_packet.length = p->iov.size;
  825. usb_packet_copy(p, buf, p->iov.size);
  826. usbredir_log_data(dev, "interrupt data out:", buf, p->iov.size);
  827. usbredirparser_send_interrupt_packet(dev->parser, p->id,
  828. &interrupt_packet, buf, p->iov.size);
  829. usbredirparser_do_write(dev->parser);
  830. }
  831. static void usbredir_stop_interrupt_receiving(USBRedirDevice *dev,
  832. uint8_t ep)
  833. {
  834. struct usb_redir_stop_interrupt_receiving_header stop_interrupt_recv = {
  835. .endpoint = ep
  836. };
  837. if (dev->endpoint[EP2I(ep)].interrupt_started) {
  838. usbredirparser_send_stop_interrupt_receiving(dev->parser, 0,
  839. &stop_interrupt_recv);
  840. DPRINTF("interrupt recv stopped ep %02X\n", ep);
  841. dev->endpoint[EP2I(ep)].interrupt_started = 0;
  842. }
  843. dev->endpoint[EP2I(ep)].interrupt_error = 0;
  844. usbredir_free_bufpq(dev, ep);
  845. }
  846. static void usbredir_handle_data(USBDevice *udev, USBPacket *p)
  847. {
  848. USBRedirDevice *dev = USB_REDIRECT(udev);
  849. uint8_t ep;
  850. ep = p->ep->nr;
  851. if (p->pid == USB_TOKEN_IN) {
  852. ep |= USB_DIR_IN;
  853. }
  854. switch (dev->endpoint[EP2I(ep)].type) {
  855. case USB_ENDPOINT_XFER_CONTROL:
  856. ERROR("handle_data called for control transfer on ep %02X\n", ep);
  857. p->status = USB_RET_NAK;
  858. break;
  859. case USB_ENDPOINT_XFER_BULK:
  860. if (p->state == USB_PACKET_SETUP && p->pid == USB_TOKEN_IN &&
  861. p->ep->pipeline) {
  862. p->status = USB_RET_ADD_TO_QUEUE;
  863. break;
  864. }
  865. usbredir_handle_bulk_data(dev, p, ep);
  866. break;
  867. case USB_ENDPOINT_XFER_ISOC:
  868. usbredir_handle_iso_data(dev, p, ep);
  869. break;
  870. case USB_ENDPOINT_XFER_INT:
  871. if (ep & USB_DIR_IN) {
  872. usbredir_handle_interrupt_in_data(dev, p, ep);
  873. } else {
  874. usbredir_handle_interrupt_out_data(dev, p, ep);
  875. }
  876. break;
  877. default:
  878. ERROR("handle_data ep %02X has unknown type %d\n", ep,
  879. dev->endpoint[EP2I(ep)].type);
  880. p->status = USB_RET_NAK;
  881. }
  882. }
  883. static void usbredir_flush_ep_queue(USBDevice *dev, USBEndpoint *ep)
  884. {
  885. if (ep->pid == USB_TOKEN_IN && ep->pipeline) {
  886. usb_ep_combine_input_packets(ep);
  887. }
  888. }
  889. static void usbredir_stop_ep(USBRedirDevice *dev, int i)
  890. {
  891. uint8_t ep = I2EP(i);
  892. switch (dev->endpoint[i].type) {
  893. case USB_ENDPOINT_XFER_BULK:
  894. if (ep & USB_DIR_IN) {
  895. usbredir_stop_bulk_receiving(dev, ep);
  896. }
  897. break;
  898. case USB_ENDPOINT_XFER_ISOC:
  899. usbredir_stop_iso_stream(dev, ep);
  900. break;
  901. case USB_ENDPOINT_XFER_INT:
  902. if (ep & USB_DIR_IN) {
  903. usbredir_stop_interrupt_receiving(dev, ep);
  904. }
  905. break;
  906. }
  907. usbredir_free_bufpq(dev, ep);
  908. }
  909. static void usbredir_ep_stopped(USBDevice *udev, USBEndpoint *uep)
  910. {
  911. USBRedirDevice *dev = USB_REDIRECT(udev);
  912. usbredir_stop_ep(dev, USBEP2I(uep));
  913. usbredirparser_do_write(dev->parser);
  914. }
  915. static void usbredir_set_config(USBRedirDevice *dev, USBPacket *p,
  916. int config)
  917. {
  918. struct usb_redir_set_configuration_header set_config;
  919. int i;
  920. DPRINTF("set config %d id %"PRIu64"\n", config, p->id);
  921. for (i = 0; i < MAX_ENDPOINTS; i++) {
  922. usbredir_stop_ep(dev, i);
  923. }
  924. set_config.configuration = config;
  925. usbredirparser_send_set_configuration(dev->parser, p->id, &set_config);
  926. usbredirparser_do_write(dev->parser);
  927. p->status = USB_RET_ASYNC;
  928. }
  929. static void usbredir_get_config(USBRedirDevice *dev, USBPacket *p)
  930. {
  931. DPRINTF("get config id %"PRIu64"\n", p->id);
  932. usbredirparser_send_get_configuration(dev->parser, p->id);
  933. usbredirparser_do_write(dev->parser);
  934. p->status = USB_RET_ASYNC;
  935. }
  936. static void usbredir_set_interface(USBRedirDevice *dev, USBPacket *p,
  937. int interface, int alt)
  938. {
  939. struct usb_redir_set_alt_setting_header set_alt;
  940. int i;
  941. DPRINTF("set interface %d alt %d id %"PRIu64"\n", interface, alt, p->id);
  942. for (i = 0; i < MAX_ENDPOINTS; i++) {
  943. if (dev->endpoint[i].interface == interface) {
  944. usbredir_stop_ep(dev, i);
  945. }
  946. }
  947. set_alt.interface = interface;
  948. set_alt.alt = alt;
  949. usbredirparser_send_set_alt_setting(dev->parser, p->id, &set_alt);
  950. usbredirparser_do_write(dev->parser);
  951. p->status = USB_RET_ASYNC;
  952. }
  953. static void usbredir_get_interface(USBRedirDevice *dev, USBPacket *p,
  954. int interface)
  955. {
  956. struct usb_redir_get_alt_setting_header get_alt;
  957. DPRINTF("get interface %d id %"PRIu64"\n", interface, p->id);
  958. get_alt.interface = interface;
  959. usbredirparser_send_get_alt_setting(dev->parser, p->id, &get_alt);
  960. usbredirparser_do_write(dev->parser);
  961. p->status = USB_RET_ASYNC;
  962. }
  963. static void usbredir_handle_control(USBDevice *udev, USBPacket *p,
  964. int request, int value, int index, int length, uint8_t *data)
  965. {
  966. USBRedirDevice *dev = USB_REDIRECT(udev);
  967. struct usb_redir_control_packet_header control_packet;
  968. if (usbredir_already_in_flight(dev, p->id)) {
  969. p->status = USB_RET_ASYNC;
  970. return;
  971. }
  972. /* Special cases for certain standard device requests */
  973. switch (request) {
  974. case DeviceOutRequest | USB_REQ_SET_ADDRESS:
  975. DPRINTF("set address %d\n", value);
  976. dev->dev.addr = value;
  977. return;
  978. case DeviceOutRequest | USB_REQ_SET_CONFIGURATION:
  979. usbredir_set_config(dev, p, value & 0xff);
  980. return;
  981. case DeviceRequest | USB_REQ_GET_CONFIGURATION:
  982. usbredir_get_config(dev, p);
  983. return;
  984. case InterfaceOutRequest | USB_REQ_SET_INTERFACE:
  985. usbredir_set_interface(dev, p, index, value);
  986. return;
  987. case InterfaceRequest | USB_REQ_GET_INTERFACE:
  988. usbredir_get_interface(dev, p, index);
  989. return;
  990. }
  991. /* Normal ctrl requests, note request is (bRequestType << 8) | bRequest */
  992. DPRINTF(
  993. "ctrl-out type 0x%x req 0x%x val 0x%x index %d len %d id %"PRIu64"\n",
  994. request >> 8, request & 0xff, value, index, length, p->id);
  995. control_packet.request = request & 0xFF;
  996. control_packet.requesttype = request >> 8;
  997. control_packet.endpoint = control_packet.requesttype & USB_DIR_IN;
  998. control_packet.value = value;
  999. control_packet.index = index;
  1000. control_packet.length = length;
  1001. if (control_packet.requesttype & USB_DIR_IN) {
  1002. usbredirparser_send_control_packet(dev->parser, p->id,
  1003. &control_packet, NULL, 0);
  1004. } else {
  1005. usbredir_log_data(dev, "ctrl data out:", data, length);
  1006. usbredirparser_send_control_packet(dev->parser, p->id,
  1007. &control_packet, data, length);
  1008. }
  1009. usbredirparser_do_write(dev->parser);
  1010. p->status = USB_RET_ASYNC;
  1011. }
  1012. static int usbredir_alloc_streams(USBDevice *udev, USBEndpoint **eps,
  1013. int nr_eps, int streams)
  1014. {
  1015. USBRedirDevice *dev = USB_REDIRECT(udev);
  1016. #if USBREDIR_VERSION >= 0x000700
  1017. struct usb_redir_alloc_bulk_streams_header alloc_streams;
  1018. int i;
  1019. if (!usbredirparser_peer_has_cap(dev->parser,
  1020. usb_redir_cap_bulk_streams)) {
  1021. ERROR("peer does not support streams\n");
  1022. goto reject;
  1023. }
  1024. if (streams == 0) {
  1025. ERROR("request to allocate 0 streams\n");
  1026. return -1;
  1027. }
  1028. alloc_streams.no_streams = streams;
  1029. alloc_streams.endpoints = 0;
  1030. for (i = 0; i < nr_eps; i++) {
  1031. alloc_streams.endpoints |= 1 << USBEP2I(eps[i]);
  1032. }
  1033. usbredirparser_send_alloc_bulk_streams(dev->parser, 0, &alloc_streams);
  1034. usbredirparser_do_write(dev->parser);
  1035. return 0;
  1036. #else
  1037. ERROR("usbredir_alloc_streams not implemented\n");
  1038. goto reject;
  1039. #endif
  1040. reject:
  1041. ERROR("streams are not available, disconnecting\n");
  1042. qemu_bh_schedule(dev->device_reject_bh);
  1043. return -1;
  1044. }
  1045. static void usbredir_free_streams(USBDevice *udev, USBEndpoint **eps,
  1046. int nr_eps)
  1047. {
  1048. #if USBREDIR_VERSION >= 0x000700
  1049. USBRedirDevice *dev = USB_REDIRECT(udev);
  1050. struct usb_redir_free_bulk_streams_header free_streams;
  1051. int i;
  1052. if (!usbredirparser_peer_has_cap(dev->parser,
  1053. usb_redir_cap_bulk_streams)) {
  1054. return;
  1055. }
  1056. free_streams.endpoints = 0;
  1057. for (i = 0; i < nr_eps; i++) {
  1058. free_streams.endpoints |= 1 << USBEP2I(eps[i]);
  1059. }
  1060. usbredirparser_send_free_bulk_streams(dev->parser, 0, &free_streams);
  1061. usbredirparser_do_write(dev->parser);
  1062. #endif
  1063. }
  1064. /*
  1065. * Close events can be triggered by usbredirparser_do_write which gets called
  1066. * from within the USBDevice data / control packet callbacks and doing a
  1067. * usb_detach from within these callbacks is not a good idea.
  1068. *
  1069. * So we use a bh handler to take care of close events.
  1070. */
  1071. static void usbredir_chardev_close_bh(void *opaque)
  1072. {
  1073. USBRedirDevice *dev = opaque;
  1074. qemu_bh_cancel(dev->device_reject_bh);
  1075. usbredir_device_disconnect(dev);
  1076. if (dev->parser) {
  1077. DPRINTF("destroying usbredirparser\n");
  1078. usbredirparser_destroy(dev->parser);
  1079. dev->parser = NULL;
  1080. }
  1081. if (dev->watch) {
  1082. g_source_remove(dev->watch);
  1083. dev->watch = 0;
  1084. }
  1085. }
  1086. static void usbredir_create_parser(USBRedirDevice *dev)
  1087. {
  1088. uint32_t caps[USB_REDIR_CAPS_SIZE] = { 0, };
  1089. int flags = 0;
  1090. DPRINTF("creating usbredirparser\n");
  1091. dev->parser = usbredirparser_create();
  1092. if (!dev->parser) {
  1093. error_report("usbredirparser_create() failed");
  1094. exit(1);
  1095. }
  1096. dev->parser->priv = dev;
  1097. dev->parser->log_func = usbredir_log;
  1098. dev->parser->read_func = usbredir_read;
  1099. dev->parser->write_func = usbredir_write;
  1100. dev->parser->hello_func = usbredir_hello;
  1101. dev->parser->device_connect_func = usbredir_device_connect;
  1102. dev->parser->device_disconnect_func = usbredir_device_disconnect;
  1103. dev->parser->interface_info_func = usbredir_interface_info;
  1104. dev->parser->ep_info_func = usbredir_ep_info;
  1105. dev->parser->configuration_status_func = usbredir_configuration_status;
  1106. dev->parser->alt_setting_status_func = usbredir_alt_setting_status;
  1107. dev->parser->iso_stream_status_func = usbredir_iso_stream_status;
  1108. dev->parser->interrupt_receiving_status_func =
  1109. usbredir_interrupt_receiving_status;
  1110. dev->parser->bulk_streams_status_func = usbredir_bulk_streams_status;
  1111. dev->parser->bulk_receiving_status_func = usbredir_bulk_receiving_status;
  1112. dev->parser->control_packet_func = usbredir_control_packet;
  1113. dev->parser->bulk_packet_func = usbredir_bulk_packet;
  1114. dev->parser->iso_packet_func = usbredir_iso_packet;
  1115. dev->parser->interrupt_packet_func = usbredir_interrupt_packet;
  1116. dev->parser->buffered_bulk_packet_func = usbredir_buffered_bulk_packet;
  1117. dev->read_buf = NULL;
  1118. dev->read_buf_size = 0;
  1119. usbredirparser_caps_set_cap(caps, usb_redir_cap_connect_device_version);
  1120. usbredirparser_caps_set_cap(caps, usb_redir_cap_filter);
  1121. usbredirparser_caps_set_cap(caps, usb_redir_cap_ep_info_max_packet_size);
  1122. usbredirparser_caps_set_cap(caps, usb_redir_cap_64bits_ids);
  1123. usbredirparser_caps_set_cap(caps, usb_redir_cap_32bits_bulk_length);
  1124. usbredirparser_caps_set_cap(caps, usb_redir_cap_bulk_receiving);
  1125. #if USBREDIR_VERSION >= 0x000700
  1126. if (dev->enable_streams) {
  1127. usbredirparser_caps_set_cap(caps, usb_redir_cap_bulk_streams);
  1128. }
  1129. #endif
  1130. if (runstate_check(RUN_STATE_INMIGRATE)) {
  1131. flags |= usbredirparser_fl_no_hello;
  1132. }
  1133. usbredirparser_init(dev->parser, VERSION, caps, USB_REDIR_CAPS_SIZE,
  1134. flags);
  1135. usbredirparser_do_write(dev->parser);
  1136. }
  1137. static void usbredir_reject_device(USBRedirDevice *dev)
  1138. {
  1139. usbredir_device_disconnect(dev);
  1140. if (usbredirparser_peer_has_cap(dev->parser, usb_redir_cap_filter)) {
  1141. usbredirparser_send_filter_reject(dev->parser);
  1142. usbredirparser_do_write(dev->parser);
  1143. }
  1144. }
  1145. /*
  1146. * We may need to reject the device when the hcd calls alloc_streams, doing
  1147. * an usb_detach from within a hcd call is not a good idea, hence this bh.
  1148. */
  1149. static void usbredir_device_reject_bh(void *opaque)
  1150. {
  1151. USBRedirDevice *dev = opaque;
  1152. usbredir_reject_device(dev);
  1153. }
  1154. static void usbredir_do_attach(void *opaque)
  1155. {
  1156. USBRedirDevice *dev = opaque;
  1157. Error *local_err = NULL;
  1158. /* In order to work properly with XHCI controllers we need these caps */
  1159. if ((dev->dev.port->speedmask & USB_SPEED_MASK_SUPER) && !(
  1160. usbredirparser_peer_has_cap(dev->parser,
  1161. usb_redir_cap_ep_info_max_packet_size) &&
  1162. usbredirparser_peer_has_cap(dev->parser,
  1163. usb_redir_cap_32bits_bulk_length) &&
  1164. usbredirparser_peer_has_cap(dev->parser,
  1165. usb_redir_cap_64bits_ids))) {
  1166. ERROR("usb-redir-host lacks capabilities needed for use with XHCI\n");
  1167. usbredir_reject_device(dev);
  1168. return;
  1169. }
  1170. usb_device_attach(&dev->dev, &local_err);
  1171. if (local_err) {
  1172. error_report_err(local_err);
  1173. WARNING("rejecting device due to speed mismatch\n");
  1174. usbredir_reject_device(dev);
  1175. }
  1176. }
  1177. /*
  1178. * chardev callbacks
  1179. */
  1180. static int usbredir_chardev_can_read(void *opaque)
  1181. {
  1182. USBRedirDevice *dev = opaque;
  1183. if (!dev->parser) {
  1184. WARNING("chardev_can_read called on non open chardev!\n");
  1185. return 0;
  1186. }
  1187. /* Don't read new data from the chardev until our state is fully synced */
  1188. if (!runstate_check(RUN_STATE_RUNNING)) {
  1189. return 0;
  1190. }
  1191. /* usbredir_parser_do_read will consume *all* data we give it */
  1192. return 1 * MiB;
  1193. }
  1194. static void usbredir_chardev_read(void *opaque, const uint8_t *buf, int size)
  1195. {
  1196. USBRedirDevice *dev = opaque;
  1197. /* No recursion allowed! */
  1198. assert(dev->read_buf == NULL);
  1199. dev->read_buf = buf;
  1200. dev->read_buf_size = size;
  1201. usbredirparser_do_read(dev->parser);
  1202. /* Send any acks, etc. which may be queued now */
  1203. usbredirparser_do_write(dev->parser);
  1204. }
  1205. static void usbredir_chardev_event(void *opaque, QEMUChrEvent event)
  1206. {
  1207. USBRedirDevice *dev = opaque;
  1208. switch (event) {
  1209. case CHR_EVENT_OPENED:
  1210. DPRINTF("chardev open\n");
  1211. /* Make sure any pending closes are handled (no-op if none pending) */
  1212. usbredir_chardev_close_bh(dev);
  1213. qemu_bh_cancel(dev->chardev_close_bh);
  1214. usbredir_create_parser(dev);
  1215. break;
  1216. case CHR_EVENT_CLOSED:
  1217. DPRINTF("chardev close\n");
  1218. qemu_bh_schedule(dev->chardev_close_bh);
  1219. break;
  1220. case CHR_EVENT_BREAK:
  1221. case CHR_EVENT_MUX_IN:
  1222. case CHR_EVENT_MUX_OUT:
  1223. /* Ignore */
  1224. break;
  1225. }
  1226. }
  1227. /*
  1228. * init + destroy
  1229. */
  1230. static void usbredir_vm_state_change(void *priv, bool running, RunState state)
  1231. {
  1232. USBRedirDevice *dev = priv;
  1233. if (state == RUN_STATE_RUNNING && dev->parser != NULL) {
  1234. usbredirparser_do_write(dev->parser); /* Flush any pending writes */
  1235. }
  1236. }
  1237. static void usbredir_init_endpoints(USBRedirDevice *dev)
  1238. {
  1239. int i;
  1240. usb_ep_init(&dev->dev);
  1241. memset(dev->endpoint, 0, sizeof(dev->endpoint));
  1242. for (i = 0; i < MAX_ENDPOINTS; i++) {
  1243. dev->endpoint[i].dev = dev;
  1244. QTAILQ_INIT(&dev->endpoint[i].bufpq);
  1245. }
  1246. }
  1247. static void usbredir_realize(USBDevice *udev, Error **errp)
  1248. {
  1249. USBRedirDevice *dev = USB_REDIRECT(udev);
  1250. int i;
  1251. if (!qemu_chr_fe_backend_connected(&dev->cs)) {
  1252. error_setg(errp, QERR_MISSING_PARAMETER, "chardev");
  1253. return;
  1254. }
  1255. if (dev->filter_str) {
  1256. i = usbredirfilter_string_to_rules(dev->filter_str, ":", "|",
  1257. &dev->filter_rules,
  1258. &dev->filter_rules_count);
  1259. if (i) {
  1260. error_setg(errp, QERR_INVALID_PARAMETER_VALUE, "filter",
  1261. "a usb device filter string");
  1262. return;
  1263. }
  1264. }
  1265. dev->chardev_close_bh = qemu_bh_new(usbredir_chardev_close_bh, dev);
  1266. dev->device_reject_bh = qemu_bh_new(usbredir_device_reject_bh, dev);
  1267. dev->attach_timer = timer_new_ms(QEMU_CLOCK_VIRTUAL, usbredir_do_attach, dev);
  1268. packet_id_queue_init(&dev->cancelled, dev, "cancelled");
  1269. packet_id_queue_init(&dev->already_in_flight, dev, "already-in-flight");
  1270. usbredir_init_endpoints(dev);
  1271. /* We'll do the attach once we receive the speed from the usb-host */
  1272. udev->auto_attach = 0;
  1273. /* Will be cleared during setup when we find conflicts */
  1274. dev->compatible_speedmask = USB_SPEED_MASK_FULL | USB_SPEED_MASK_HIGH;
  1275. /* Let the backend know we are ready */
  1276. qemu_chr_fe_set_handlers(&dev->cs, usbredir_chardev_can_read,
  1277. usbredir_chardev_read, usbredir_chardev_event,
  1278. NULL, dev, NULL, true);
  1279. dev->vmstate =
  1280. qemu_add_vm_change_state_handler(usbredir_vm_state_change, dev);
  1281. }
  1282. static void usbredir_cleanup_device_queues(USBRedirDevice *dev)
  1283. {
  1284. int i;
  1285. packet_id_queue_empty(&dev->cancelled);
  1286. packet_id_queue_empty(&dev->already_in_flight);
  1287. for (i = 0; i < MAX_ENDPOINTS; i++) {
  1288. usbredir_free_bufpq(dev, I2EP(i));
  1289. }
  1290. }
  1291. static void usbredir_unrealize(USBDevice *udev)
  1292. {
  1293. USBRedirDevice *dev = USB_REDIRECT(udev);
  1294. qemu_chr_fe_deinit(&dev->cs, true);
  1295. /* Note must be done after qemu_chr_close, as that causes a close event */
  1296. qemu_bh_delete(dev->chardev_close_bh);
  1297. qemu_bh_delete(dev->device_reject_bh);
  1298. timer_free(dev->attach_timer);
  1299. usbredir_cleanup_device_queues(dev);
  1300. if (dev->parser) {
  1301. usbredirparser_destroy(dev->parser);
  1302. }
  1303. if (dev->watch) {
  1304. g_source_remove(dev->watch);
  1305. }
  1306. free(dev->filter_rules);
  1307. qemu_del_vm_change_state_handler(dev->vmstate);
  1308. }
  1309. static int usbredir_check_filter(USBRedirDevice *dev)
  1310. {
  1311. if (dev->interface_info.interface_count == NO_INTERFACE_INFO) {
  1312. ERROR("No interface info for device\n");
  1313. goto error;
  1314. }
  1315. if (dev->filter_rules) {
  1316. if (!usbredirparser_peer_has_cap(dev->parser,
  1317. usb_redir_cap_connect_device_version)) {
  1318. ERROR("Device filter specified and peer does not have the "
  1319. "connect_device_version capability\n");
  1320. goto error;
  1321. }
  1322. if (usbredirfilter_check(
  1323. dev->filter_rules,
  1324. dev->filter_rules_count,
  1325. dev->device_info.device_class,
  1326. dev->device_info.device_subclass,
  1327. dev->device_info.device_protocol,
  1328. dev->interface_info.interface_class,
  1329. dev->interface_info.interface_subclass,
  1330. dev->interface_info.interface_protocol,
  1331. dev->interface_info.interface_count,
  1332. dev->device_info.vendor_id,
  1333. dev->device_info.product_id,
  1334. dev->device_info.device_version_bcd,
  1335. 0) != 0) {
  1336. goto error;
  1337. }
  1338. }
  1339. return 0;
  1340. error:
  1341. usbredir_reject_device(dev);
  1342. return -1;
  1343. }
  1344. static void usbredir_check_bulk_receiving(USBRedirDevice *dev)
  1345. {
  1346. int i, j, quirks;
  1347. if (!usbredirparser_peer_has_cap(dev->parser,
  1348. usb_redir_cap_bulk_receiving)) {
  1349. return;
  1350. }
  1351. for (i = EP2I(USB_DIR_IN); i < MAX_ENDPOINTS; i++) {
  1352. dev->endpoint[i].bulk_receiving_enabled = 0;
  1353. }
  1354. if (dev->interface_info.interface_count == NO_INTERFACE_INFO) {
  1355. return;
  1356. }
  1357. for (i = 0; i < dev->interface_info.interface_count; i++) {
  1358. quirks = usb_get_quirks(dev->device_info.vendor_id,
  1359. dev->device_info.product_id,
  1360. dev->interface_info.interface_class[i],
  1361. dev->interface_info.interface_subclass[i],
  1362. dev->interface_info.interface_protocol[i]);
  1363. if (!(quirks & USB_QUIRK_BUFFER_BULK_IN)) {
  1364. continue;
  1365. }
  1366. if (quirks & USB_QUIRK_IS_FTDI) {
  1367. dev->buffered_bulk_in_complete =
  1368. usbredir_buffered_bulk_in_complete_ftdi;
  1369. } else {
  1370. dev->buffered_bulk_in_complete =
  1371. usbredir_buffered_bulk_in_complete_raw;
  1372. }
  1373. for (j = EP2I(USB_DIR_IN); j < MAX_ENDPOINTS; j++) {
  1374. if (dev->endpoint[j].interface ==
  1375. dev->interface_info.interface[i] &&
  1376. dev->endpoint[j].type == USB_ENDPOINT_XFER_BULK &&
  1377. dev->endpoint[j].max_packet_size != 0) {
  1378. dev->endpoint[j].bulk_receiving_enabled = 1;
  1379. /*
  1380. * With buffering pipelining is not necessary. Also packet
  1381. * combining and bulk in buffering don't play nice together!
  1382. */
  1383. I2USBEP(dev, j)->pipeline = false;
  1384. break; /* Only buffer for the first ep of each intf */
  1385. }
  1386. }
  1387. }
  1388. }
  1389. /*
  1390. * usbredirparser packet complete callbacks
  1391. */
  1392. static void usbredir_handle_status(USBRedirDevice *dev, USBPacket *p,
  1393. int status)
  1394. {
  1395. switch (status) {
  1396. case usb_redir_success:
  1397. p->status = USB_RET_SUCCESS; /* Clear previous ASYNC status */
  1398. break;
  1399. case usb_redir_stall:
  1400. p->status = USB_RET_STALL;
  1401. break;
  1402. case usb_redir_cancelled:
  1403. /*
  1404. * When the usbredir-host unredirects a device, it will report a status
  1405. * of cancelled for all pending packets, followed by a disconnect msg.
  1406. */
  1407. p->status = USB_RET_IOERROR;
  1408. break;
  1409. case usb_redir_inval:
  1410. WARNING("got invalid param error from usb-host?\n");
  1411. p->status = USB_RET_IOERROR;
  1412. break;
  1413. case usb_redir_babble:
  1414. p->status = USB_RET_BABBLE;
  1415. break;
  1416. case usb_redir_ioerror:
  1417. case usb_redir_timeout:
  1418. default:
  1419. p->status = USB_RET_IOERROR;
  1420. }
  1421. }
  1422. static void usbredir_hello(void *priv, struct usb_redir_hello_header *h)
  1423. {
  1424. USBRedirDevice *dev = priv;
  1425. /* Try to send the filter info now that we've the usb-host's caps */
  1426. if (usbredirparser_peer_has_cap(dev->parser, usb_redir_cap_filter) &&
  1427. dev->filter_rules) {
  1428. usbredirparser_send_filter_filter(dev->parser, dev->filter_rules,
  1429. dev->filter_rules_count);
  1430. usbredirparser_do_write(dev->parser);
  1431. }
  1432. }
  1433. static void usbredir_device_connect(void *priv,
  1434. struct usb_redir_device_connect_header *device_connect)
  1435. {
  1436. USBRedirDevice *dev = priv;
  1437. const char *speed;
  1438. if (timer_pending(dev->attach_timer) || dev->dev.attached) {
  1439. ERROR("Received device connect while already connected\n");
  1440. return;
  1441. }
  1442. switch (device_connect->speed) {
  1443. case usb_redir_speed_low:
  1444. speed = "low speed";
  1445. dev->dev.speed = USB_SPEED_LOW;
  1446. dev->compatible_speedmask &= ~USB_SPEED_MASK_FULL;
  1447. dev->compatible_speedmask &= ~USB_SPEED_MASK_HIGH;
  1448. break;
  1449. case usb_redir_speed_full:
  1450. speed = "full speed";
  1451. dev->dev.speed = USB_SPEED_FULL;
  1452. dev->compatible_speedmask &= ~USB_SPEED_MASK_HIGH;
  1453. break;
  1454. case usb_redir_speed_high:
  1455. speed = "high speed";
  1456. dev->dev.speed = USB_SPEED_HIGH;
  1457. break;
  1458. case usb_redir_speed_super:
  1459. speed = "super speed";
  1460. dev->dev.speed = USB_SPEED_SUPER;
  1461. break;
  1462. default:
  1463. speed = "unknown speed";
  1464. dev->dev.speed = USB_SPEED_FULL;
  1465. }
  1466. if (usbredirparser_peer_has_cap(dev->parser,
  1467. usb_redir_cap_connect_device_version)) {
  1468. INFO("attaching %s device %04x:%04x version %d.%d class %02x\n",
  1469. speed, device_connect->vendor_id, device_connect->product_id,
  1470. ((device_connect->device_version_bcd & 0xf000) >> 12) * 10 +
  1471. ((device_connect->device_version_bcd & 0x0f00) >> 8),
  1472. ((device_connect->device_version_bcd & 0x00f0) >> 4) * 10 +
  1473. ((device_connect->device_version_bcd & 0x000f) >> 0),
  1474. device_connect->device_class);
  1475. } else {
  1476. INFO("attaching %s device %04x:%04x class %02x\n", speed,
  1477. device_connect->vendor_id, device_connect->product_id,
  1478. device_connect->device_class);
  1479. }
  1480. dev->dev.speedmask = (1 << dev->dev.speed) | dev->compatible_speedmask;
  1481. dev->device_info = *device_connect;
  1482. if (usbredir_check_filter(dev)) {
  1483. WARNING("Device %04x:%04x rejected by device filter, not attaching\n",
  1484. device_connect->vendor_id, device_connect->product_id);
  1485. return;
  1486. }
  1487. usbredir_check_bulk_receiving(dev);
  1488. timer_mod(dev->attach_timer, dev->next_attach_time);
  1489. }
  1490. static void usbredir_device_disconnect(void *priv)
  1491. {
  1492. USBRedirDevice *dev = priv;
  1493. /* Stop any pending attaches */
  1494. timer_del(dev->attach_timer);
  1495. if (dev->dev.attached) {
  1496. DPRINTF("detaching device\n");
  1497. usb_device_detach(&dev->dev);
  1498. /*
  1499. * Delay next usb device attach to give the guest a chance to see
  1500. * see the detach / attach in case of quick close / open succession
  1501. */
  1502. dev->next_attach_time = qemu_clock_get_ms(QEMU_CLOCK_VIRTUAL) + 200;
  1503. }
  1504. /* Reset state so that the next dev connected starts with a clean slate */
  1505. usbredir_cleanup_device_queues(dev);
  1506. usbredir_init_endpoints(dev);
  1507. dev->interface_info.interface_count = NO_INTERFACE_INFO;
  1508. dev->dev.addr = 0;
  1509. dev->dev.speed = 0;
  1510. dev->compatible_speedmask = USB_SPEED_MASK_FULL | USB_SPEED_MASK_HIGH;
  1511. }
  1512. static void usbredir_interface_info(void *priv,
  1513. struct usb_redir_interface_info_header *interface_info)
  1514. {
  1515. USBRedirDevice *dev = priv;
  1516. dev->interface_info = *interface_info;
  1517. /*
  1518. * If we receive interface info after the device has already been
  1519. * connected (ie on a set_config), re-check interface dependent things.
  1520. */
  1521. if (timer_pending(dev->attach_timer) || dev->dev.attached) {
  1522. usbredir_check_bulk_receiving(dev);
  1523. if (usbredir_check_filter(dev)) {
  1524. ERROR("Device no longer matches filter after interface info "
  1525. "change, disconnecting!\n");
  1526. }
  1527. }
  1528. }
  1529. static void usbredir_mark_speed_incompatible(USBRedirDevice *dev, int speed)
  1530. {
  1531. dev->compatible_speedmask &= ~(1 << speed);
  1532. dev->dev.speedmask = (1 << dev->dev.speed) | dev->compatible_speedmask;
  1533. }
  1534. static void usbredir_set_pipeline(USBRedirDevice *dev, struct USBEndpoint *uep)
  1535. {
  1536. if (uep->type != USB_ENDPOINT_XFER_BULK) {
  1537. return;
  1538. }
  1539. if (uep->pid == USB_TOKEN_OUT) {
  1540. uep->pipeline = true;
  1541. }
  1542. if (uep->pid == USB_TOKEN_IN && uep->max_packet_size != 0 &&
  1543. usbredirparser_peer_has_cap(dev->parser,
  1544. usb_redir_cap_32bits_bulk_length)) {
  1545. uep->pipeline = true;
  1546. }
  1547. }
  1548. static void usbredir_setup_usb_eps(USBRedirDevice *dev)
  1549. {
  1550. struct USBEndpoint *usb_ep;
  1551. int i;
  1552. for (i = 0; i < MAX_ENDPOINTS; i++) {
  1553. usb_ep = I2USBEP(dev, i);
  1554. usb_ep->type = dev->endpoint[i].type;
  1555. usb_ep->ifnum = dev->endpoint[i].interface;
  1556. usb_ep->max_packet_size = dev->endpoint[i].max_packet_size;
  1557. usb_ep->max_streams = dev->endpoint[i].max_streams;
  1558. usbredir_set_pipeline(dev, usb_ep);
  1559. }
  1560. }
  1561. static void usbredir_ep_info(void *priv,
  1562. struct usb_redir_ep_info_header *ep_info)
  1563. {
  1564. USBRedirDevice *dev = priv;
  1565. int i;
  1566. assert(dev != NULL);
  1567. for (i = 0; i < MAX_ENDPOINTS; i++) {
  1568. dev->endpoint[i].type = ep_info->type[i];
  1569. dev->endpoint[i].interval = ep_info->interval[i];
  1570. dev->endpoint[i].interface = ep_info->interface[i];
  1571. if (usbredirparser_peer_has_cap(dev->parser,
  1572. usb_redir_cap_ep_info_max_packet_size)) {
  1573. dev->endpoint[i].max_packet_size = ep_info->max_packet_size[i];
  1574. }
  1575. #if USBREDIR_VERSION >= 0x000700
  1576. if (usbredirparser_peer_has_cap(dev->parser,
  1577. usb_redir_cap_bulk_streams)) {
  1578. dev->endpoint[i].max_streams = ep_info->max_streams[i];
  1579. }
  1580. #endif
  1581. switch (dev->endpoint[i].type) {
  1582. case usb_redir_type_invalid:
  1583. break;
  1584. case usb_redir_type_iso:
  1585. usbredir_mark_speed_incompatible(dev, USB_SPEED_FULL);
  1586. usbredir_mark_speed_incompatible(dev, USB_SPEED_HIGH);
  1587. /* Fall through */
  1588. case usb_redir_type_interrupt:
  1589. if (!usbredirparser_peer_has_cap(dev->parser,
  1590. usb_redir_cap_ep_info_max_packet_size) ||
  1591. ep_info->max_packet_size[i] > 64) {
  1592. usbredir_mark_speed_incompatible(dev, USB_SPEED_FULL);
  1593. }
  1594. if (!usbredirparser_peer_has_cap(dev->parser,
  1595. usb_redir_cap_ep_info_max_packet_size) ||
  1596. ep_info->max_packet_size[i] > 1024) {
  1597. usbredir_mark_speed_incompatible(dev, USB_SPEED_HIGH);
  1598. }
  1599. if (dev->endpoint[i].interval == 0) {
  1600. ERROR("Received 0 interval for isoc or irq endpoint\n");
  1601. usbredir_reject_device(dev);
  1602. return;
  1603. }
  1604. /* Fall through */
  1605. case usb_redir_type_control:
  1606. case usb_redir_type_bulk:
  1607. DPRINTF("ep: %02X type: %d interface: %d\n", I2EP(i),
  1608. dev->endpoint[i].type, dev->endpoint[i].interface);
  1609. break;
  1610. default:
  1611. ERROR("Received invalid endpoint type\n");
  1612. usbredir_reject_device(dev);
  1613. return;
  1614. }
  1615. }
  1616. /* The new ep info may have caused a speed incompatibility, recheck */
  1617. if (dev->dev.attached &&
  1618. !(dev->dev.port->speedmask & dev->dev.speedmask)) {
  1619. ERROR("Device no longer matches speed after endpoint info change, "
  1620. "disconnecting!\n");
  1621. usbredir_reject_device(dev);
  1622. return;
  1623. }
  1624. usbredir_setup_usb_eps(dev);
  1625. usbredir_check_bulk_receiving(dev);
  1626. }
  1627. static void usbredir_configuration_status(void *priv, uint64_t id,
  1628. struct usb_redir_configuration_status_header *config_status)
  1629. {
  1630. USBRedirDevice *dev = priv;
  1631. USBPacket *p;
  1632. DPRINTF("set config status %d config %d id %"PRIu64"\n",
  1633. config_status->status, config_status->configuration, id);
  1634. p = usbredir_find_packet_by_id(dev, 0, id);
  1635. if (p) {
  1636. if (dev->dev.setup_buf[0] & USB_DIR_IN) {
  1637. dev->dev.data_buf[0] = config_status->configuration;
  1638. p->actual_length = 1;
  1639. }
  1640. usbredir_handle_status(dev, p, config_status->status);
  1641. usb_generic_async_ctrl_complete(&dev->dev, p);
  1642. }
  1643. }
  1644. static void usbredir_alt_setting_status(void *priv, uint64_t id,
  1645. struct usb_redir_alt_setting_status_header *alt_setting_status)
  1646. {
  1647. USBRedirDevice *dev = priv;
  1648. USBPacket *p;
  1649. DPRINTF("alt status %d intf %d alt %d id: %"PRIu64"\n",
  1650. alt_setting_status->status, alt_setting_status->interface,
  1651. alt_setting_status->alt, id);
  1652. p = usbredir_find_packet_by_id(dev, 0, id);
  1653. if (p) {
  1654. if (dev->dev.setup_buf[0] & USB_DIR_IN) {
  1655. dev->dev.data_buf[0] = alt_setting_status->alt;
  1656. p->actual_length = 1;
  1657. }
  1658. usbredir_handle_status(dev, p, alt_setting_status->status);
  1659. usb_generic_async_ctrl_complete(&dev->dev, p);
  1660. }
  1661. }
  1662. static void usbredir_iso_stream_status(void *priv, uint64_t id,
  1663. struct usb_redir_iso_stream_status_header *iso_stream_status)
  1664. {
  1665. USBRedirDevice *dev = priv;
  1666. uint8_t ep = iso_stream_status->endpoint;
  1667. DPRINTF("iso status %d ep %02X id %"PRIu64"\n", iso_stream_status->status,
  1668. ep, id);
  1669. if (!dev->dev.attached || !dev->endpoint[EP2I(ep)].iso_started) {
  1670. return;
  1671. }
  1672. dev->endpoint[EP2I(ep)].iso_error = iso_stream_status->status;
  1673. if (iso_stream_status->status == usb_redir_stall) {
  1674. DPRINTF("iso stream stopped by peer ep %02X\n", ep);
  1675. dev->endpoint[EP2I(ep)].iso_started = 0;
  1676. }
  1677. }
  1678. static void usbredir_interrupt_receiving_status(void *priv, uint64_t id,
  1679. struct usb_redir_interrupt_receiving_status_header
  1680. *interrupt_receiving_status)
  1681. {
  1682. USBRedirDevice *dev = priv;
  1683. uint8_t ep = interrupt_receiving_status->endpoint;
  1684. DPRINTF("interrupt recv status %d ep %02X id %"PRIu64"\n",
  1685. interrupt_receiving_status->status, ep, id);
  1686. if (!dev->dev.attached || !dev->endpoint[EP2I(ep)].interrupt_started) {
  1687. return;
  1688. }
  1689. dev->endpoint[EP2I(ep)].interrupt_error =
  1690. interrupt_receiving_status->status;
  1691. if (interrupt_receiving_status->status == usb_redir_stall) {
  1692. DPRINTF("interrupt receiving stopped by peer ep %02X\n", ep);
  1693. dev->endpoint[EP2I(ep)].interrupt_started = 0;
  1694. }
  1695. }
  1696. static void usbredir_bulk_streams_status(void *priv, uint64_t id,
  1697. struct usb_redir_bulk_streams_status_header *bulk_streams_status)
  1698. {
  1699. #if USBREDIR_VERSION >= 0x000700
  1700. USBRedirDevice *dev = priv;
  1701. if (bulk_streams_status->status == usb_redir_success) {
  1702. DPRINTF("bulk streams status %d eps %08x\n",
  1703. bulk_streams_status->status, bulk_streams_status->endpoints);
  1704. } else {
  1705. ERROR("bulk streams %s failed status %d eps %08x\n",
  1706. (bulk_streams_status->no_streams == 0) ? "free" : "alloc",
  1707. bulk_streams_status->status, bulk_streams_status->endpoints);
  1708. ERROR("usb-redir-host does not provide streams, disconnecting\n");
  1709. usbredir_reject_device(dev);
  1710. }
  1711. #endif
  1712. }
  1713. static void usbredir_bulk_receiving_status(void *priv, uint64_t id,
  1714. struct usb_redir_bulk_receiving_status_header *bulk_receiving_status)
  1715. {
  1716. USBRedirDevice *dev = priv;
  1717. uint8_t ep = bulk_receiving_status->endpoint;
  1718. DPRINTF("bulk recv status %d ep %02X id %"PRIu64"\n",
  1719. bulk_receiving_status->status, ep, id);
  1720. if (!dev->dev.attached || !dev->endpoint[EP2I(ep)].bulk_receiving_started) {
  1721. return;
  1722. }
  1723. if (bulk_receiving_status->status == usb_redir_stall) {
  1724. DPRINTF("bulk receiving stopped by peer ep %02X\n", ep);
  1725. dev->endpoint[EP2I(ep)].bulk_receiving_started = 0;
  1726. }
  1727. }
  1728. static void usbredir_control_packet(void *priv, uint64_t id,
  1729. struct usb_redir_control_packet_header *control_packet,
  1730. uint8_t *data, int data_len)
  1731. {
  1732. USBRedirDevice *dev = priv;
  1733. USBPacket *p;
  1734. int len = control_packet->length;
  1735. DPRINTF("ctrl-in status %d len %d id %"PRIu64"\n", control_packet->status,
  1736. len, id);
  1737. /* Fix up USB-3 ep0 maxpacket size to allow superspeed connected devices
  1738. * to work redirected to a not superspeed capable hcd */
  1739. if (dev->dev.speed == USB_SPEED_SUPER &&
  1740. !((dev->dev.port->speedmask & USB_SPEED_MASK_SUPER)) &&
  1741. control_packet->requesttype == 0x80 &&
  1742. control_packet->request == 6 &&
  1743. control_packet->value == 0x100 && control_packet->index == 0 &&
  1744. data_len >= 18 && data[7] == 9) {
  1745. data[7] = 64;
  1746. }
  1747. p = usbredir_find_packet_by_id(dev, 0, id);
  1748. if (p) {
  1749. usbredir_handle_status(dev, p, control_packet->status);
  1750. if (data_len > 0) {
  1751. usbredir_log_data(dev, "ctrl data in:", data, data_len);
  1752. if (data_len > sizeof(dev->dev.data_buf)) {
  1753. ERROR("ctrl buffer too small (%d > %zu)\n",
  1754. data_len, sizeof(dev->dev.data_buf));
  1755. p->status = USB_RET_STALL;
  1756. data_len = len = sizeof(dev->dev.data_buf);
  1757. }
  1758. memcpy(dev->dev.data_buf, data, data_len);
  1759. }
  1760. p->actual_length = len;
  1761. /*
  1762. * If this is GET_DESCRIPTOR request for configuration descriptor,
  1763. * remove 'remote wakeup' flag from it to prevent idle power down
  1764. * in Windows guest
  1765. */
  1766. if (dev->suppress_remote_wake &&
  1767. control_packet->requesttype == USB_DIR_IN &&
  1768. control_packet->request == USB_REQ_GET_DESCRIPTOR &&
  1769. control_packet->value == (USB_DT_CONFIG << 8) &&
  1770. control_packet->index == 0 &&
  1771. /* bmAttributes field of config descriptor */
  1772. len > 7 && (dev->dev.data_buf[7] & USB_CFG_ATT_WAKEUP)) {
  1773. DPRINTF("Removed remote wake %04X:%04X\n",
  1774. dev->device_info.vendor_id,
  1775. dev->device_info.product_id);
  1776. dev->dev.data_buf[7] &= ~USB_CFG_ATT_WAKEUP;
  1777. }
  1778. usb_generic_async_ctrl_complete(&dev->dev, p);
  1779. }
  1780. free(data);
  1781. }
  1782. static void usbredir_bulk_packet(void *priv, uint64_t id,
  1783. struct usb_redir_bulk_packet_header *bulk_packet,
  1784. uint8_t *data, int data_len)
  1785. {
  1786. USBRedirDevice *dev = priv;
  1787. uint8_t ep = bulk_packet->endpoint;
  1788. int len = (bulk_packet->length_high << 16) | bulk_packet->length;
  1789. USBPacket *p;
  1790. DPRINTF("bulk-in status %d ep %02X stream %u len %d id %"PRIu64"\n",
  1791. bulk_packet->status, ep, bulk_packet->stream_id, len, id);
  1792. p = usbredir_find_packet_by_id(dev, ep, id);
  1793. if (p) {
  1794. size_t size = usb_packet_size(p);
  1795. usbredir_handle_status(dev, p, bulk_packet->status);
  1796. if (data_len > 0) {
  1797. usbredir_log_data(dev, "bulk data in:", data, data_len);
  1798. if (data_len > size) {
  1799. ERROR("bulk got more data then requested (%d > %zd)\n",
  1800. data_len, p->iov.size);
  1801. p->status = USB_RET_BABBLE;
  1802. data_len = len = size;
  1803. }
  1804. usb_packet_copy(p, data, data_len);
  1805. }
  1806. p->actual_length = len;
  1807. if (p->pid == USB_TOKEN_IN && p->ep->pipeline) {
  1808. usb_combined_input_packet_complete(&dev->dev, p);
  1809. } else {
  1810. usb_packet_complete(&dev->dev, p);
  1811. }
  1812. }
  1813. free(data);
  1814. }
  1815. static void usbredir_iso_packet(void *priv, uint64_t id,
  1816. struct usb_redir_iso_packet_header *iso_packet,
  1817. uint8_t *data, int data_len)
  1818. {
  1819. USBRedirDevice *dev = priv;
  1820. uint8_t ep = iso_packet->endpoint;
  1821. DPRINTF2("iso-in status %d ep %02X len %d id %"PRIu64"\n",
  1822. iso_packet->status, ep, data_len, id);
  1823. if (dev->endpoint[EP2I(ep)].type != USB_ENDPOINT_XFER_ISOC) {
  1824. ERROR("received iso packet for non iso endpoint %02X\n", ep);
  1825. free(data);
  1826. return;
  1827. }
  1828. if (dev->endpoint[EP2I(ep)].iso_started == 0) {
  1829. DPRINTF("received iso packet for non started stream ep %02X\n", ep);
  1830. free(data);
  1831. return;
  1832. }
  1833. /* bufp_alloc also adds the packet to the ep queue */
  1834. bufp_alloc(dev, data, data_len, iso_packet->status, ep, data);
  1835. }
  1836. static void usbredir_interrupt_packet(void *priv, uint64_t id,
  1837. struct usb_redir_interrupt_packet_header *interrupt_packet,
  1838. uint8_t *data, int data_len)
  1839. {
  1840. USBRedirDevice *dev = priv;
  1841. uint8_t ep = interrupt_packet->endpoint;
  1842. DPRINTF("interrupt-in status %d ep %02X len %d id %"PRIu64"\n",
  1843. interrupt_packet->status, ep, data_len, id);
  1844. if (dev->endpoint[EP2I(ep)].type != USB_ENDPOINT_XFER_INT) {
  1845. ERROR("received int packet for non interrupt endpoint %02X\n", ep);
  1846. free(data);
  1847. return;
  1848. }
  1849. if (ep & USB_DIR_IN) {
  1850. if (dev->endpoint[EP2I(ep)].interrupt_started == 0) {
  1851. DPRINTF("received int packet while not started ep %02X\n", ep);
  1852. free(data);
  1853. return;
  1854. }
  1855. /* bufp_alloc also adds the packet to the ep queue */
  1856. bufp_alloc(dev, data, data_len, interrupt_packet->status, ep, data);
  1857. /* insufficient data solved with USB_RET_NAK */
  1858. usb_wakeup(usb_ep_get(&dev->dev, USB_TOKEN_IN, ep & 0x0f), 0);
  1859. } else {
  1860. /*
  1861. * We report output interrupt packets as completed directly upon
  1862. * submission, so all we can do here if one failed is warn.
  1863. */
  1864. if (interrupt_packet->status) {
  1865. WARNING("interrupt output failed status %d ep %02X id %"PRIu64"\n",
  1866. interrupt_packet->status, ep, id);
  1867. }
  1868. }
  1869. }
  1870. static void usbredir_buffered_bulk_packet(void *priv, uint64_t id,
  1871. struct usb_redir_buffered_bulk_packet_header *buffered_bulk_packet,
  1872. uint8_t *data, int data_len)
  1873. {
  1874. USBRedirDevice *dev = priv;
  1875. uint8_t status, ep = buffered_bulk_packet->endpoint;
  1876. void *free_on_destroy;
  1877. int i, len;
  1878. DPRINTF("buffered-bulk-in status %d ep %02X len %d id %"PRIu64"\n",
  1879. buffered_bulk_packet->status, ep, data_len, id);
  1880. if (dev->endpoint[EP2I(ep)].type != USB_ENDPOINT_XFER_BULK) {
  1881. ERROR("received buffered-bulk packet for non bulk ep %02X\n", ep);
  1882. free(data);
  1883. return;
  1884. }
  1885. if (dev->endpoint[EP2I(ep)].bulk_receiving_started == 0) {
  1886. DPRINTF("received buffered-bulk packet on not started ep %02X\n", ep);
  1887. free(data);
  1888. return;
  1889. }
  1890. /* Data must be in maxp chunks for buffered_bulk_add_*_data_to_packet */
  1891. len = dev->endpoint[EP2I(ep)].max_packet_size;
  1892. status = usb_redir_success;
  1893. free_on_destroy = NULL;
  1894. for (i = 0; i < data_len; i += len) {
  1895. int r;
  1896. if (len >= (data_len - i)) {
  1897. len = data_len - i;
  1898. status = buffered_bulk_packet->status;
  1899. free_on_destroy = data;
  1900. }
  1901. /* bufp_alloc also adds the packet to the ep queue */
  1902. r = bufp_alloc(dev, data + i, len, status, ep, free_on_destroy);
  1903. if (r) {
  1904. break;
  1905. }
  1906. }
  1907. if (dev->endpoint[EP2I(ep)].pending_async_packet) {
  1908. USBPacket *p = dev->endpoint[EP2I(ep)].pending_async_packet;
  1909. dev->endpoint[EP2I(ep)].pending_async_packet = NULL;
  1910. usbredir_buffered_bulk_in_complete(dev, p, ep);
  1911. usb_packet_complete(&dev->dev, p);
  1912. }
  1913. }
  1914. /*
  1915. * Migration code
  1916. */
  1917. static int usbredir_pre_save(void *priv)
  1918. {
  1919. USBRedirDevice *dev = priv;
  1920. usbredir_fill_already_in_flight(dev);
  1921. return 0;
  1922. }
  1923. static int usbredir_post_load(void *priv, int version_id)
  1924. {
  1925. USBRedirDevice *dev = priv;
  1926. if (dev == NULL || dev->parser == NULL) {
  1927. return 0;
  1928. }
  1929. switch (dev->device_info.speed) {
  1930. case usb_redir_speed_low:
  1931. dev->dev.speed = USB_SPEED_LOW;
  1932. break;
  1933. case usb_redir_speed_full:
  1934. dev->dev.speed = USB_SPEED_FULL;
  1935. break;
  1936. case usb_redir_speed_high:
  1937. dev->dev.speed = USB_SPEED_HIGH;
  1938. break;
  1939. case usb_redir_speed_super:
  1940. dev->dev.speed = USB_SPEED_SUPER;
  1941. break;
  1942. default:
  1943. dev->dev.speed = USB_SPEED_FULL;
  1944. }
  1945. dev->dev.speedmask = (1 << dev->dev.speed);
  1946. usbredir_setup_usb_eps(dev);
  1947. usbredir_check_bulk_receiving(dev);
  1948. return 0;
  1949. }
  1950. /* For usbredirparser migration */
  1951. static int usbredir_put_parser(QEMUFile *f, void *priv, size_t unused,
  1952. const VMStateField *field, JSONWriter *vmdesc)
  1953. {
  1954. USBRedirDevice *dev = priv;
  1955. uint8_t *data;
  1956. int len;
  1957. if (dev->parser == NULL) {
  1958. qemu_put_be32(f, 0);
  1959. return 0;
  1960. }
  1961. usbredirparser_serialize(dev->parser, &data, &len);
  1962. if (!data) {
  1963. error_report("usbredirparser_serialize failed");
  1964. exit(1);
  1965. }
  1966. qemu_put_be32(f, len);
  1967. qemu_put_buffer(f, data, len);
  1968. free(data);
  1969. return 0;
  1970. }
  1971. static int usbredir_get_parser(QEMUFile *f, void *priv, size_t unused,
  1972. const VMStateField *field)
  1973. {
  1974. USBRedirDevice *dev = priv;
  1975. uint8_t *data;
  1976. int len, ret;
  1977. len = qemu_get_be32(f);
  1978. if (len == 0) {
  1979. return 0;
  1980. }
  1981. /*
  1982. * If our chardev is not open already at this point the usbredir connection
  1983. * has been broken (non seamless migration, or restore from disk).
  1984. *
  1985. * In this case create a temporary parser to receive the migration data,
  1986. * and schedule the close_bh to report the device as disconnected to the
  1987. * guest and to destroy the parser again.
  1988. */
  1989. if (dev->parser == NULL) {
  1990. WARNING("usb-redir connection broken during migration\n");
  1991. usbredir_create_parser(dev);
  1992. qemu_bh_schedule(dev->chardev_close_bh);
  1993. }
  1994. data = g_malloc(len);
  1995. qemu_get_buffer(f, data, len);
  1996. ret = usbredirparser_unserialize(dev->parser, data, len);
  1997. g_free(data);
  1998. return ret;
  1999. }
  2000. static const VMStateInfo usbredir_parser_vmstate_info = {
  2001. .name = "usb-redir-parser",
  2002. .put = usbredir_put_parser,
  2003. .get = usbredir_get_parser,
  2004. };
  2005. /* For buffered packets (iso/irq) queue migration */
  2006. static int usbredir_put_bufpq(QEMUFile *f, void *priv, size_t unused,
  2007. const VMStateField *field, JSONWriter *vmdesc)
  2008. {
  2009. struct endp_data *endp = priv;
  2010. USBRedirDevice *dev = endp->dev;
  2011. struct buf_packet *bufp;
  2012. int len, i = 0;
  2013. qemu_put_be32(f, endp->bufpq_size);
  2014. QTAILQ_FOREACH(bufp, &endp->bufpq, next) {
  2015. len = bufp->len - bufp->offset;
  2016. DPRINTF("put_bufpq %d/%d len %d status %d\n", i + 1, endp->bufpq_size,
  2017. len, bufp->status);
  2018. qemu_put_be32(f, len);
  2019. qemu_put_be32(f, bufp->status);
  2020. qemu_put_buffer(f, bufp->data + bufp->offset, len);
  2021. i++;
  2022. }
  2023. assert(i == endp->bufpq_size);
  2024. return 0;
  2025. }
  2026. static int usbredir_get_bufpq(QEMUFile *f, void *priv, size_t unused,
  2027. const VMStateField *field)
  2028. {
  2029. struct endp_data *endp = priv;
  2030. USBRedirDevice *dev = endp->dev;
  2031. struct buf_packet *bufp;
  2032. int i;
  2033. endp->bufpq_size = qemu_get_be32(f);
  2034. for (i = 0; i < endp->bufpq_size; i++) {
  2035. bufp = g_new(struct buf_packet, 1);
  2036. bufp->len = qemu_get_be32(f);
  2037. bufp->status = qemu_get_be32(f);
  2038. bufp->offset = 0;
  2039. bufp->data = malloc(bufp->len); /* regular malloc! */
  2040. if (!bufp->data) {
  2041. error_report("usbredir_get_bufpq: out of memory");
  2042. exit(1);
  2043. }
  2044. bufp->free_on_destroy = bufp->data;
  2045. qemu_get_buffer(f, bufp->data, bufp->len);
  2046. QTAILQ_INSERT_TAIL(&endp->bufpq, bufp, next);
  2047. DPRINTF("get_bufpq %d/%d len %d status %d\n", i + 1, endp->bufpq_size,
  2048. bufp->len, bufp->status);
  2049. }
  2050. return 0;
  2051. }
  2052. static const VMStateInfo usbredir_ep_bufpq_vmstate_info = {
  2053. .name = "usb-redir-bufpq",
  2054. .put = usbredir_put_bufpq,
  2055. .get = usbredir_get_bufpq,
  2056. };
  2057. /* For endp_data migration */
  2058. static bool usbredir_bulk_receiving_needed(void *priv)
  2059. {
  2060. struct endp_data *endp = priv;
  2061. return endp->bulk_receiving_started;
  2062. }
  2063. static const VMStateDescription usbredir_bulk_receiving_vmstate = {
  2064. .name = "usb-redir-ep/bulk-receiving",
  2065. .version_id = 1,
  2066. .minimum_version_id = 1,
  2067. .needed = usbredir_bulk_receiving_needed,
  2068. .fields = (VMStateField[]) {
  2069. VMSTATE_UINT8(bulk_receiving_started, struct endp_data),
  2070. VMSTATE_END_OF_LIST()
  2071. }
  2072. };
  2073. static bool usbredir_stream_needed(void *priv)
  2074. {
  2075. struct endp_data *endp = priv;
  2076. return endp->max_streams;
  2077. }
  2078. static const VMStateDescription usbredir_stream_vmstate = {
  2079. .name = "usb-redir-ep/stream-state",
  2080. .version_id = 1,
  2081. .minimum_version_id = 1,
  2082. .needed = usbredir_stream_needed,
  2083. .fields = (VMStateField[]) {
  2084. VMSTATE_UINT32(max_streams, struct endp_data),
  2085. VMSTATE_END_OF_LIST()
  2086. }
  2087. };
  2088. static const VMStateDescription usbredir_ep_vmstate = {
  2089. .name = "usb-redir-ep",
  2090. .version_id = 1,
  2091. .minimum_version_id = 1,
  2092. .fields = (VMStateField[]) {
  2093. VMSTATE_UINT8(type, struct endp_data),
  2094. VMSTATE_UINT8(interval, struct endp_data),
  2095. VMSTATE_UINT8(interface, struct endp_data),
  2096. VMSTATE_UINT16(max_packet_size, struct endp_data),
  2097. VMSTATE_UINT8(iso_started, struct endp_data),
  2098. VMSTATE_UINT8(iso_error, struct endp_data),
  2099. VMSTATE_UINT8(interrupt_started, struct endp_data),
  2100. VMSTATE_UINT8(interrupt_error, struct endp_data),
  2101. VMSTATE_UINT8(bufpq_prefilled, struct endp_data),
  2102. VMSTATE_UINT8(bufpq_dropping_packets, struct endp_data),
  2103. {
  2104. .name = "bufpq",
  2105. .version_id = 0,
  2106. .field_exists = NULL,
  2107. .size = 0,
  2108. .info = &usbredir_ep_bufpq_vmstate_info,
  2109. .flags = VMS_SINGLE,
  2110. .offset = 0,
  2111. },
  2112. VMSTATE_INT32(bufpq_target_size, struct endp_data),
  2113. VMSTATE_END_OF_LIST()
  2114. },
  2115. .subsections = (const VMStateDescription*[]) {
  2116. &usbredir_bulk_receiving_vmstate,
  2117. &usbredir_stream_vmstate,
  2118. NULL
  2119. }
  2120. };
  2121. /* For PacketIdQueue migration */
  2122. static int usbredir_put_packet_id_q(QEMUFile *f, void *priv, size_t unused,
  2123. const VMStateField *field,
  2124. JSONWriter *vmdesc)
  2125. {
  2126. struct PacketIdQueue *q = priv;
  2127. USBRedirDevice *dev = q->dev;
  2128. struct PacketIdQueueEntry *e;
  2129. int remain = q->size;
  2130. DPRINTF("put_packet_id_q %s size %d\n", q->name, q->size);
  2131. qemu_put_be32(f, q->size);
  2132. QTAILQ_FOREACH(e, &q->head, next) {
  2133. qemu_put_be64(f, e->id);
  2134. remain--;
  2135. }
  2136. assert(remain == 0);
  2137. return 0;
  2138. }
  2139. static int usbredir_get_packet_id_q(QEMUFile *f, void *priv, size_t unused,
  2140. const VMStateField *field)
  2141. {
  2142. struct PacketIdQueue *q = priv;
  2143. USBRedirDevice *dev = q->dev;
  2144. int i, size;
  2145. uint64_t id;
  2146. size = qemu_get_be32(f);
  2147. DPRINTF("get_packet_id_q %s size %d\n", q->name, size);
  2148. for (i = 0; i < size; i++) {
  2149. id = qemu_get_be64(f);
  2150. packet_id_queue_add(q, id);
  2151. }
  2152. assert(q->size == size);
  2153. return 0;
  2154. }
  2155. static const VMStateInfo usbredir_ep_packet_id_q_vmstate_info = {
  2156. .name = "usb-redir-packet-id-q",
  2157. .put = usbredir_put_packet_id_q,
  2158. .get = usbredir_get_packet_id_q,
  2159. };
  2160. static const VMStateDescription usbredir_ep_packet_id_queue_vmstate = {
  2161. .name = "usb-redir-packet-id-queue",
  2162. .version_id = 1,
  2163. .minimum_version_id = 1,
  2164. .fields = (VMStateField[]) {
  2165. {
  2166. .name = "queue",
  2167. .version_id = 0,
  2168. .field_exists = NULL,
  2169. .size = 0,
  2170. .info = &usbredir_ep_packet_id_q_vmstate_info,
  2171. .flags = VMS_SINGLE,
  2172. .offset = 0,
  2173. },
  2174. VMSTATE_END_OF_LIST()
  2175. }
  2176. };
  2177. /* For usb_redir_device_connect_header migration */
  2178. static const VMStateDescription usbredir_device_info_vmstate = {
  2179. .name = "usb-redir-device-info",
  2180. .version_id = 1,
  2181. .minimum_version_id = 1,
  2182. .fields = (VMStateField[]) {
  2183. VMSTATE_UINT8(speed, struct usb_redir_device_connect_header),
  2184. VMSTATE_UINT8(device_class, struct usb_redir_device_connect_header),
  2185. VMSTATE_UINT8(device_subclass, struct usb_redir_device_connect_header),
  2186. VMSTATE_UINT8(device_protocol, struct usb_redir_device_connect_header),
  2187. VMSTATE_UINT16(vendor_id, struct usb_redir_device_connect_header),
  2188. VMSTATE_UINT16(product_id, struct usb_redir_device_connect_header),
  2189. VMSTATE_UINT16(device_version_bcd,
  2190. struct usb_redir_device_connect_header),
  2191. VMSTATE_END_OF_LIST()
  2192. }
  2193. };
  2194. /* For usb_redir_interface_info_header migration */
  2195. static const VMStateDescription usbredir_interface_info_vmstate = {
  2196. .name = "usb-redir-interface-info",
  2197. .version_id = 1,
  2198. .minimum_version_id = 1,
  2199. .fields = (VMStateField[]) {
  2200. VMSTATE_UINT32(interface_count,
  2201. struct usb_redir_interface_info_header),
  2202. VMSTATE_UINT8_ARRAY(interface,
  2203. struct usb_redir_interface_info_header, 32),
  2204. VMSTATE_UINT8_ARRAY(interface_class,
  2205. struct usb_redir_interface_info_header, 32),
  2206. VMSTATE_UINT8_ARRAY(interface_subclass,
  2207. struct usb_redir_interface_info_header, 32),
  2208. VMSTATE_UINT8_ARRAY(interface_protocol,
  2209. struct usb_redir_interface_info_header, 32),
  2210. VMSTATE_END_OF_LIST()
  2211. }
  2212. };
  2213. /* And finally the USBRedirDevice vmstate itself */
  2214. static const VMStateDescription usbredir_vmstate = {
  2215. .name = "usb-redir",
  2216. .version_id = 1,
  2217. .minimum_version_id = 1,
  2218. .pre_save = usbredir_pre_save,
  2219. .post_load = usbredir_post_load,
  2220. .fields = (VMStateField[]) {
  2221. VMSTATE_USB_DEVICE(dev, USBRedirDevice),
  2222. VMSTATE_TIMER_PTR(attach_timer, USBRedirDevice),
  2223. {
  2224. .name = "parser",
  2225. .version_id = 0,
  2226. .field_exists = NULL,
  2227. .size = 0,
  2228. .info = &usbredir_parser_vmstate_info,
  2229. .flags = VMS_SINGLE,
  2230. .offset = 0,
  2231. },
  2232. VMSTATE_STRUCT_ARRAY(endpoint, USBRedirDevice, MAX_ENDPOINTS, 1,
  2233. usbredir_ep_vmstate, struct endp_data),
  2234. VMSTATE_STRUCT(cancelled, USBRedirDevice, 1,
  2235. usbredir_ep_packet_id_queue_vmstate,
  2236. struct PacketIdQueue),
  2237. VMSTATE_STRUCT(already_in_flight, USBRedirDevice, 1,
  2238. usbredir_ep_packet_id_queue_vmstate,
  2239. struct PacketIdQueue),
  2240. VMSTATE_STRUCT(device_info, USBRedirDevice, 1,
  2241. usbredir_device_info_vmstate,
  2242. struct usb_redir_device_connect_header),
  2243. VMSTATE_STRUCT(interface_info, USBRedirDevice, 1,
  2244. usbredir_interface_info_vmstate,
  2245. struct usb_redir_interface_info_header),
  2246. VMSTATE_END_OF_LIST()
  2247. }
  2248. };
  2249. static Property usbredir_properties[] = {
  2250. DEFINE_PROP_CHR("chardev", USBRedirDevice, cs),
  2251. DEFINE_PROP_UINT8("debug", USBRedirDevice, debug, usbredirparser_warning),
  2252. DEFINE_PROP_STRING("filter", USBRedirDevice, filter_str),
  2253. DEFINE_PROP_BOOL("streams", USBRedirDevice, enable_streams, true),
  2254. DEFINE_PROP_BOOL("suppress-remote-wake", USBRedirDevice,
  2255. suppress_remote_wake, true),
  2256. DEFINE_PROP_END_OF_LIST(),
  2257. };
  2258. static void usbredir_class_initfn(ObjectClass *klass, void *data)
  2259. {
  2260. USBDeviceClass *uc = USB_DEVICE_CLASS(klass);
  2261. DeviceClass *dc = DEVICE_CLASS(klass);
  2262. uc->realize = usbredir_realize;
  2263. uc->product_desc = "USB Redirection Device";
  2264. uc->unrealize = usbredir_unrealize;
  2265. uc->cancel_packet = usbredir_cancel_packet;
  2266. uc->handle_reset = usbredir_handle_reset;
  2267. uc->handle_data = usbredir_handle_data;
  2268. uc->handle_control = usbredir_handle_control;
  2269. uc->flush_ep_queue = usbredir_flush_ep_queue;
  2270. uc->ep_stopped = usbredir_ep_stopped;
  2271. uc->alloc_streams = usbredir_alloc_streams;
  2272. uc->free_streams = usbredir_free_streams;
  2273. dc->vmsd = &usbredir_vmstate;
  2274. device_class_set_props(dc, usbredir_properties);
  2275. set_bit(DEVICE_CATEGORY_MISC, dc->categories);
  2276. }
  2277. static void usbredir_instance_init(Object *obj)
  2278. {
  2279. USBDevice *udev = USB_DEVICE(obj);
  2280. USBRedirDevice *dev = USB_REDIRECT(udev);
  2281. device_add_bootindex_property(obj, &dev->bootindex,
  2282. "bootindex", NULL,
  2283. &udev->qdev);
  2284. }
  2285. static const TypeInfo usbredir_dev_info = {
  2286. .name = TYPE_USB_REDIR,
  2287. .parent = TYPE_USB_DEVICE,
  2288. .instance_size = sizeof(USBRedirDevice),
  2289. .class_init = usbredir_class_initfn,
  2290. .instance_init = usbredir_instance_init,
  2291. };
  2292. module_obj(TYPE_USB_REDIR);
  2293. module_kconfig(USB);
  2294. static void usbredir_register_types(void)
  2295. {
  2296. type_register_static(&usbredir_dev_info);
  2297. }
  2298. type_init(usbredir_register_types)