file_storage.c 104 KB

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  1. /*
  2. * file_storage.c -- File-backed USB Storage Gadget, for USB development
  3. *
  4. * Copyright (C) 2003-2008 Alan Stern
  5. * All rights reserved.
  6. *
  7. * Redistribution and use in source and binary forms, with or without
  8. * modification, are permitted provided that the following conditions
  9. * are met:
  10. * 1. Redistributions of source code must retain the above copyright
  11. * notice, this list of conditions, and the following disclaimer,
  12. * without modification.
  13. * 2. Redistributions in binary form must reproduce the above copyright
  14. * notice, this list of conditions and the following disclaimer in the
  15. * documentation and/or other materials provided with the distribution.
  16. * 3. The names of the above-listed copyright holders may not be used
  17. * to endorse or promote products derived from this software without
  18. * specific prior written permission.
  19. *
  20. * ALTERNATIVELY, this software may be distributed under the terms of the
  21. * GNU General Public License ("GPL") as published by the Free Software
  22. * Foundation, either version 2 of that License or (at your option) any
  23. * later version.
  24. *
  25. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS
  26. * IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO,
  27. * THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
  28. * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR
  29. * CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
  30. * EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
  31. * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
  32. * PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
  33. * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
  34. * NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
  35. * SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  36. */
  37. /*
  38. * The File-backed Storage Gadget acts as a USB Mass Storage device,
  39. * appearing to the host as a disk drive or as a CD-ROM drive. In addition
  40. * to providing an example of a genuinely useful gadget driver for a USB
  41. * device, it also illustrates a technique of double-buffering for increased
  42. * throughput. Last but not least, it gives an easy way to probe the
  43. * behavior of the Mass Storage drivers in a USB host.
  44. *
  45. * Backing storage is provided by a regular file or a block device, specified
  46. * by the "file" module parameter. Access can be limited to read-only by
  47. * setting the optional "ro" module parameter. (For CD-ROM emulation,
  48. * access is always read-only.) The gadget will indicate that it has
  49. * removable media if the optional "removable" module parameter is set.
  50. *
  51. * The gadget supports the Control-Bulk (CB), Control-Bulk-Interrupt (CBI),
  52. * and Bulk-Only (also known as Bulk-Bulk-Bulk or BBB) transports, selected
  53. * by the optional "transport" module parameter. It also supports the
  54. * following protocols: RBC (0x01), ATAPI or SFF-8020i (0x02), QIC-157 (0c03),
  55. * UFI (0x04), SFF-8070i (0x05), and transparent SCSI (0x06), selected by
  56. * the optional "protocol" module parameter. In addition, the default
  57. * Vendor ID, Product ID, release number and serial number can be overridden.
  58. *
  59. * There is support for multiple logical units (LUNs), each of which has
  60. * its own backing file. The number of LUNs can be set using the optional
  61. * "luns" module parameter (anywhere from 1 to 8), and the corresponding
  62. * files are specified using comma-separated lists for "file" and "ro".
  63. * The default number of LUNs is taken from the number of "file" elements;
  64. * it is 1 if "file" is not given. If "removable" is not set then a backing
  65. * file must be specified for each LUN. If it is set, then an unspecified
  66. * or empty backing filename means the LUN's medium is not loaded. Ideally
  67. * each LUN would be settable independently as a disk drive or a CD-ROM
  68. * drive, but currently all LUNs have to be the same type. The CD-ROM
  69. * emulation includes a single data track and no audio tracks; hence there
  70. * need be only one backing file per LUN.
  71. *
  72. * Requirements are modest; only a bulk-in and a bulk-out endpoint are
  73. * needed (an interrupt-out endpoint is also needed for CBI). The memory
  74. * requirement amounts to two 16K buffers, size configurable by a parameter.
  75. * Support is included for both full-speed and high-speed operation.
  76. *
  77. * Note that the driver is slightly non-portable in that it assumes a
  78. * single memory/DMA buffer will be useable for bulk-in, bulk-out, and
  79. * interrupt-in endpoints. With most device controllers this isn't an
  80. * issue, but there may be some with hardware restrictions that prevent
  81. * a buffer from being used by more than one endpoint.
  82. *
  83. * Module options:
  84. *
  85. * file=filename[,filename...]
  86. * Required if "removable" is not set, names of
  87. * the files or block devices used for
  88. * backing storage
  89. * serial=HHHH... Required serial number (string of hex chars)
  90. * ro=b[,b...] Default false, booleans for read-only access
  91. * removable Default false, boolean for removable media
  92. * luns=N Default N = number of filenames, number of
  93. * LUNs to support
  94. * nofua=b[,b...] Default false, booleans for ignore FUA flag
  95. * in SCSI WRITE(10,12) commands
  96. * stall Default determined according to the type of
  97. * USB device controller (usually true),
  98. * boolean to permit the driver to halt
  99. * bulk endpoints
  100. * cdrom Default false, boolean for whether to emulate
  101. * a CD-ROM drive
  102. * transport=XXX Default BBB, transport name (CB, CBI, or BBB)
  103. * protocol=YYY Default SCSI, protocol name (RBC, 8020 or
  104. * ATAPI, QIC, UFI, 8070, or SCSI;
  105. * also 1 - 6)
  106. * vendor=0xVVVV Default 0x0525 (NetChip), USB Vendor ID
  107. * product=0xPPPP Default 0xa4a5 (FSG), USB Product ID
  108. * release=0xRRRR Override the USB release number (bcdDevice)
  109. * buflen=N Default N=16384, buffer size used (will be
  110. * rounded down to a multiple of
  111. * PAGE_CACHE_SIZE)
  112. *
  113. * If CONFIG_USB_FILE_STORAGE_TEST is not set, only the "file", "serial", "ro",
  114. * "removable", "luns", "nofua", "stall", and "cdrom" options are available;
  115. * default values are used for everything else.
  116. *
  117. * The pathnames of the backing files and the ro settings are available in
  118. * the attribute files "file", "nofua", and "ro" in the lun<n> subdirectory of
  119. * the gadget's sysfs directory. If the "removable" option is set, writing to
  120. * these files will simulate ejecting/loading the medium (writing an empty
  121. * line means eject) and adjusting a write-enable tab. Changes to the ro
  122. * setting are not allowed when the medium is loaded or if CD-ROM emulation
  123. * is being used.
  124. *
  125. * This gadget driver is heavily based on "Gadget Zero" by David Brownell.
  126. * The driver's SCSI command interface was based on the "Information
  127. * technology - Small Computer System Interface - 2" document from
  128. * X3T9.2 Project 375D, Revision 10L, 7-SEP-93, available at
  129. * <http://www.t10.org/ftp/t10/drafts/s2/s2-r10l.pdf>. The single exception
  130. * is opcode 0x23 (READ FORMAT CAPACITIES), which was based on the
  131. * "Universal Serial Bus Mass Storage Class UFI Command Specification"
  132. * document, Revision 1.0, December 14, 1998, available at
  133. * <http://www.usb.org/developers/devclass_docs/usbmass-ufi10.pdf>.
  134. */
  135. /*
  136. * Driver Design
  137. *
  138. * The FSG driver is fairly straightforward. There is a main kernel
  139. * thread that handles most of the work. Interrupt routines field
  140. * callbacks from the controller driver: bulk- and interrupt-request
  141. * completion notifications, endpoint-0 events, and disconnect events.
  142. * Completion events are passed to the main thread by wakeup calls. Many
  143. * ep0 requests are handled at interrupt time, but SetInterface,
  144. * SetConfiguration, and device reset requests are forwarded to the
  145. * thread in the form of "exceptions" using SIGUSR1 signals (since they
  146. * should interrupt any ongoing file I/O operations).
  147. *
  148. * The thread's main routine implements the standard command/data/status
  149. * parts of a SCSI interaction. It and its subroutines are full of tests
  150. * for pending signals/exceptions -- all this polling is necessary since
  151. * the kernel has no setjmp/longjmp equivalents. (Maybe this is an
  152. * indication that the driver really wants to be running in userspace.)
  153. * An important point is that so long as the thread is alive it keeps an
  154. * open reference to the backing file. This will prevent unmounting
  155. * the backing file's underlying filesystem and could cause problems
  156. * during system shutdown, for example. To prevent such problems, the
  157. * thread catches INT, TERM, and KILL signals and converts them into
  158. * an EXIT exception.
  159. *
  160. * In normal operation the main thread is started during the gadget's
  161. * fsg_bind() callback and stopped during fsg_unbind(). But it can also
  162. * exit when it receives a signal, and there's no point leaving the
  163. * gadget running when the thread is dead. So just before the thread
  164. * exits, it deregisters the gadget driver. This makes things a little
  165. * tricky: The driver is deregistered at two places, and the exiting
  166. * thread can indirectly call fsg_unbind() which in turn can tell the
  167. * thread to exit. The first problem is resolved through the use of the
  168. * REGISTERED atomic bitflag; the driver will only be deregistered once.
  169. * The second problem is resolved by having fsg_unbind() check
  170. * fsg->state; it won't try to stop the thread if the state is already
  171. * FSG_STATE_TERMINATED.
  172. *
  173. * To provide maximum throughput, the driver uses a circular pipeline of
  174. * buffer heads (struct fsg_buffhd). In principle the pipeline can be
  175. * arbitrarily long; in practice the benefits don't justify having more
  176. * than 2 stages (i.e., double buffering). But it helps to think of the
  177. * pipeline as being a long one. Each buffer head contains a bulk-in and
  178. * a bulk-out request pointer (since the buffer can be used for both
  179. * output and input -- directions always are given from the host's
  180. * point of view) as well as a pointer to the buffer and various state
  181. * variables.
  182. *
  183. * Use of the pipeline follows a simple protocol. There is a variable
  184. * (fsg->next_buffhd_to_fill) that points to the next buffer head to use.
  185. * At any time that buffer head may still be in use from an earlier
  186. * request, so each buffer head has a state variable indicating whether
  187. * it is EMPTY, FULL, or BUSY. Typical use involves waiting for the
  188. * buffer head to be EMPTY, filling the buffer either by file I/O or by
  189. * USB I/O (during which the buffer head is BUSY), and marking the buffer
  190. * head FULL when the I/O is complete. Then the buffer will be emptied
  191. * (again possibly by USB I/O, during which it is marked BUSY) and
  192. * finally marked EMPTY again (possibly by a completion routine).
  193. *
  194. * A module parameter tells the driver to avoid stalling the bulk
  195. * endpoints wherever the transport specification allows. This is
  196. * necessary for some UDCs like the SuperH, which cannot reliably clear a
  197. * halt on a bulk endpoint. However, under certain circumstances the
  198. * Bulk-only specification requires a stall. In such cases the driver
  199. * will halt the endpoint and set a flag indicating that it should clear
  200. * the halt in software during the next device reset. Hopefully this
  201. * will permit everything to work correctly. Furthermore, although the
  202. * specification allows the bulk-out endpoint to halt when the host sends
  203. * too much data, implementing this would cause an unavoidable race.
  204. * The driver will always use the "no-stall" approach for OUT transfers.
  205. *
  206. * One subtle point concerns sending status-stage responses for ep0
  207. * requests. Some of these requests, such as device reset, can involve
  208. * interrupting an ongoing file I/O operation, which might take an
  209. * arbitrarily long time. During that delay the host might give up on
  210. * the original ep0 request and issue a new one. When that happens the
  211. * driver should not notify the host about completion of the original
  212. * request, as the host will no longer be waiting for it. So the driver
  213. * assigns to each ep0 request a unique tag, and it keeps track of the
  214. * tag value of the request associated with a long-running exception
  215. * (device-reset, interface-change, or configuration-change). When the
  216. * exception handler is finished, the status-stage response is submitted
  217. * only if the current ep0 request tag is equal to the exception request
  218. * tag. Thus only the most recently received ep0 request will get a
  219. * status-stage response.
  220. *
  221. * Warning: This driver source file is too long. It ought to be split up
  222. * into a header file plus about 3 separate .c files, to handle the details
  223. * of the Gadget, USB Mass Storage, and SCSI protocols.
  224. */
  225. /* #define VERBOSE_DEBUG */
  226. /* #define DUMP_MSGS */
  227. #include <linux/blkdev.h>
  228. #include <linux/completion.h>
  229. #include <linux/dcache.h>
  230. #include <linux/delay.h>
  231. #include <linux/device.h>
  232. #include <linux/fcntl.h>
  233. #include <linux/file.h>
  234. #include <linux/fs.h>
  235. #include <linux/kref.h>
  236. #include <linux/kthread.h>
  237. #include <linux/limits.h>
  238. #include <linux/module.h>
  239. #include <linux/rwsem.h>
  240. #include <linux/slab.h>
  241. #include <linux/spinlock.h>
  242. #include <linux/string.h>
  243. #include <linux/freezer.h>
  244. #include <linux/utsname.h>
  245. #include <linux/usb/ch9.h>
  246. #include <linux/usb/gadget.h>
  247. #include "gadget_chips.h"
  248. /*
  249. * Kbuild is not very cooperative with respect to linking separately
  250. * compiled library objects into one module. So for now we won't use
  251. * separate compilation ... ensuring init/exit sections work to shrink
  252. * the runtime footprint, and giving us at least some parts of what
  253. * a "gcc --combine ... part1.c part2.c part3.c ... " build would.
  254. */
  255. #include "epautoconf.c"
  256. /*-------------------------------------------------------------------------*/
  257. #define DRIVER_DESC "File-backed Storage Gadget"
  258. #define DRIVER_NAME "g_file_storage"
  259. #define DRIVER_VERSION "1 September 2010"
  260. static char fsg_string_manufacturer[64];
  261. static const char fsg_string_product[] = DRIVER_DESC;
  262. static const char fsg_string_config[] = "Self-powered";
  263. static const char fsg_string_interface[] = "Mass Storage";
  264. #include "storage_common.c"
  265. MODULE_DESCRIPTION(DRIVER_DESC);
  266. MODULE_AUTHOR("Alan Stern");
  267. MODULE_LICENSE("Dual BSD/GPL");
  268. /*
  269. * This driver assumes self-powered hardware and has no way for users to
  270. * trigger remote wakeup. It uses autoconfiguration to select endpoints
  271. * and endpoint addresses.
  272. */
  273. /*-------------------------------------------------------------------------*/
  274. /* Encapsulate the module parameter settings */
  275. static struct {
  276. char *file[FSG_MAX_LUNS];
  277. char *serial;
  278. bool ro[FSG_MAX_LUNS];
  279. bool nofua[FSG_MAX_LUNS];
  280. unsigned int num_filenames;
  281. unsigned int num_ros;
  282. unsigned int num_nofuas;
  283. unsigned int nluns;
  284. bool removable;
  285. bool can_stall;
  286. bool cdrom;
  287. char *transport_parm;
  288. char *protocol_parm;
  289. unsigned short vendor;
  290. unsigned short product;
  291. unsigned short release;
  292. unsigned int buflen;
  293. int transport_type;
  294. char *transport_name;
  295. int protocol_type;
  296. char *protocol_name;
  297. } mod_data = { // Default values
  298. .transport_parm = "BBB",
  299. .protocol_parm = "SCSI",
  300. .removable = 0,
  301. .can_stall = 1,
  302. .cdrom = 0,
  303. .vendor = FSG_VENDOR_ID,
  304. .product = FSG_PRODUCT_ID,
  305. .release = 0xffff, // Use controller chip type
  306. .buflen = 16384,
  307. };
  308. module_param_array_named(file, mod_data.file, charp, &mod_data.num_filenames,
  309. S_IRUGO);
  310. MODULE_PARM_DESC(file, "names of backing files or devices");
  311. module_param_named(serial, mod_data.serial, charp, S_IRUGO);
  312. MODULE_PARM_DESC(serial, "USB serial number");
  313. module_param_array_named(ro, mod_data.ro, bool, &mod_data.num_ros, S_IRUGO);
  314. MODULE_PARM_DESC(ro, "true to force read-only");
  315. module_param_array_named(nofua, mod_data.nofua, bool, &mod_data.num_nofuas,
  316. S_IRUGO);
  317. MODULE_PARM_DESC(nofua, "true to ignore SCSI WRITE(10,12) FUA bit");
  318. module_param_named(luns, mod_data.nluns, uint, S_IRUGO);
  319. MODULE_PARM_DESC(luns, "number of LUNs");
  320. module_param_named(removable, mod_data.removable, bool, S_IRUGO);
  321. MODULE_PARM_DESC(removable, "true to simulate removable media");
  322. module_param_named(stall, mod_data.can_stall, bool, S_IRUGO);
  323. MODULE_PARM_DESC(stall, "false to prevent bulk stalls");
  324. module_param_named(cdrom, mod_data.cdrom, bool, S_IRUGO);
  325. MODULE_PARM_DESC(cdrom, "true to emulate cdrom instead of disk");
  326. /* In the non-TEST version, only the module parameters listed above
  327. * are available. */
  328. #ifdef CONFIG_USB_FILE_STORAGE_TEST
  329. module_param_named(transport, mod_data.transport_parm, charp, S_IRUGO);
  330. MODULE_PARM_DESC(transport, "type of transport (BBB, CBI, or CB)");
  331. module_param_named(protocol, mod_data.protocol_parm, charp, S_IRUGO);
  332. MODULE_PARM_DESC(protocol, "type of protocol (RBC, 8020, QIC, UFI, "
  333. "8070, or SCSI)");
  334. module_param_named(vendor, mod_data.vendor, ushort, S_IRUGO);
  335. MODULE_PARM_DESC(vendor, "USB Vendor ID");
  336. module_param_named(product, mod_data.product, ushort, S_IRUGO);
  337. MODULE_PARM_DESC(product, "USB Product ID");
  338. module_param_named(release, mod_data.release, ushort, S_IRUGO);
  339. MODULE_PARM_DESC(release, "USB release number");
  340. module_param_named(buflen, mod_data.buflen, uint, S_IRUGO);
  341. MODULE_PARM_DESC(buflen, "I/O buffer size");
  342. #endif /* CONFIG_USB_FILE_STORAGE_TEST */
  343. /*
  344. * These definitions will permit the compiler to avoid generating code for
  345. * parts of the driver that aren't used in the non-TEST version. Even gcc
  346. * can recognize when a test of a constant expression yields a dead code
  347. * path.
  348. */
  349. #ifdef CONFIG_USB_FILE_STORAGE_TEST
  350. #define transport_is_bbb() (mod_data.transport_type == USB_PR_BULK)
  351. #define transport_is_cbi() (mod_data.transport_type == USB_PR_CBI)
  352. #define protocol_is_scsi() (mod_data.protocol_type == USB_SC_SCSI)
  353. #else
  354. #define transport_is_bbb() 1
  355. #define transport_is_cbi() 0
  356. #define protocol_is_scsi() 1
  357. #endif /* CONFIG_USB_FILE_STORAGE_TEST */
  358. /*-------------------------------------------------------------------------*/
  359. struct fsg_dev {
  360. /* lock protects: state, all the req_busy's, and cbbuf_cmnd */
  361. spinlock_t lock;
  362. struct usb_gadget *gadget;
  363. /* filesem protects: backing files in use */
  364. struct rw_semaphore filesem;
  365. /* reference counting: wait until all LUNs are released */
  366. struct kref ref;
  367. struct usb_ep *ep0; // Handy copy of gadget->ep0
  368. struct usb_request *ep0req; // For control responses
  369. unsigned int ep0_req_tag;
  370. const char *ep0req_name;
  371. struct usb_request *intreq; // For interrupt responses
  372. int intreq_busy;
  373. struct fsg_buffhd *intr_buffhd;
  374. unsigned int bulk_out_maxpacket;
  375. enum fsg_state state; // For exception handling
  376. unsigned int exception_req_tag;
  377. u8 config, new_config;
  378. unsigned int running : 1;
  379. unsigned int bulk_in_enabled : 1;
  380. unsigned int bulk_out_enabled : 1;
  381. unsigned int intr_in_enabled : 1;
  382. unsigned int phase_error : 1;
  383. unsigned int short_packet_received : 1;
  384. unsigned int bad_lun_okay : 1;
  385. unsigned long atomic_bitflags;
  386. #define REGISTERED 0
  387. #define IGNORE_BULK_OUT 1
  388. #define SUSPENDED 2
  389. struct usb_ep *bulk_in;
  390. struct usb_ep *bulk_out;
  391. struct usb_ep *intr_in;
  392. struct fsg_buffhd *next_buffhd_to_fill;
  393. struct fsg_buffhd *next_buffhd_to_drain;
  394. int thread_wakeup_needed;
  395. struct completion thread_notifier;
  396. struct task_struct *thread_task;
  397. int cmnd_size;
  398. u8 cmnd[MAX_COMMAND_SIZE];
  399. enum data_direction data_dir;
  400. u32 data_size;
  401. u32 data_size_from_cmnd;
  402. u32 tag;
  403. unsigned int lun;
  404. u32 residue;
  405. u32 usb_amount_left;
  406. /* The CB protocol offers no way for a host to know when a command
  407. * has completed. As a result the next command may arrive early,
  408. * and we will still have to handle it. For that reason we need
  409. * a buffer to store new commands when using CB (or CBI, which
  410. * does not oblige a host to wait for command completion either). */
  411. int cbbuf_cmnd_size;
  412. u8 cbbuf_cmnd[MAX_COMMAND_SIZE];
  413. unsigned int nluns;
  414. struct fsg_lun *luns;
  415. struct fsg_lun *curlun;
  416. /* Must be the last entry */
  417. struct fsg_buffhd buffhds[];
  418. };
  419. typedef void (*fsg_routine_t)(struct fsg_dev *);
  420. static int exception_in_progress(struct fsg_dev *fsg)
  421. {
  422. return (fsg->state > FSG_STATE_IDLE);
  423. }
  424. /* Make bulk-out requests be divisible by the maxpacket size */
  425. static void set_bulk_out_req_length(struct fsg_dev *fsg,
  426. struct fsg_buffhd *bh, unsigned int length)
  427. {
  428. unsigned int rem;
  429. bh->bulk_out_intended_length = length;
  430. rem = length % fsg->bulk_out_maxpacket;
  431. if (rem > 0)
  432. length += fsg->bulk_out_maxpacket - rem;
  433. bh->outreq->length = length;
  434. }
  435. static struct fsg_dev *the_fsg;
  436. static struct usb_gadget_driver fsg_driver;
  437. /*-------------------------------------------------------------------------*/
  438. static int fsg_set_halt(struct fsg_dev *fsg, struct usb_ep *ep)
  439. {
  440. const char *name;
  441. if (ep == fsg->bulk_in)
  442. name = "bulk-in";
  443. else if (ep == fsg->bulk_out)
  444. name = "bulk-out";
  445. else
  446. name = ep->name;
  447. DBG(fsg, "%s set halt\n", name);
  448. return usb_ep_set_halt(ep);
  449. }
  450. /*-------------------------------------------------------------------------*/
  451. /*
  452. * DESCRIPTORS ... most are static, but strings and (full) configuration
  453. * descriptors are built on demand. Also the (static) config and interface
  454. * descriptors are adjusted during fsg_bind().
  455. */
  456. /* There is only one configuration. */
  457. #define CONFIG_VALUE 1
  458. static struct usb_device_descriptor
  459. device_desc = {
  460. .bLength = sizeof device_desc,
  461. .bDescriptorType = USB_DT_DEVICE,
  462. .bcdUSB = cpu_to_le16(0x0200),
  463. .bDeviceClass = USB_CLASS_PER_INTERFACE,
  464. /* The next three values can be overridden by module parameters */
  465. .idVendor = cpu_to_le16(FSG_VENDOR_ID),
  466. .idProduct = cpu_to_le16(FSG_PRODUCT_ID),
  467. .bcdDevice = cpu_to_le16(0xffff),
  468. .iManufacturer = FSG_STRING_MANUFACTURER,
  469. .iProduct = FSG_STRING_PRODUCT,
  470. .iSerialNumber = FSG_STRING_SERIAL,
  471. .bNumConfigurations = 1,
  472. };
  473. static struct usb_config_descriptor
  474. config_desc = {
  475. .bLength = sizeof config_desc,
  476. .bDescriptorType = USB_DT_CONFIG,
  477. /* wTotalLength computed by usb_gadget_config_buf() */
  478. .bNumInterfaces = 1,
  479. .bConfigurationValue = CONFIG_VALUE,
  480. .iConfiguration = FSG_STRING_CONFIG,
  481. .bmAttributes = USB_CONFIG_ATT_ONE | USB_CONFIG_ATT_SELFPOWER,
  482. .bMaxPower = CONFIG_USB_GADGET_VBUS_DRAW / 2,
  483. };
  484. static struct usb_qualifier_descriptor
  485. dev_qualifier = {
  486. .bLength = sizeof dev_qualifier,
  487. .bDescriptorType = USB_DT_DEVICE_QUALIFIER,
  488. .bcdUSB = cpu_to_le16(0x0200),
  489. .bDeviceClass = USB_CLASS_PER_INTERFACE,
  490. .bNumConfigurations = 1,
  491. };
  492. static int populate_bos(struct fsg_dev *fsg, u8 *buf)
  493. {
  494. memcpy(buf, &fsg_bos_desc, USB_DT_BOS_SIZE);
  495. buf += USB_DT_BOS_SIZE;
  496. memcpy(buf, &fsg_ext_cap_desc, USB_DT_USB_EXT_CAP_SIZE);
  497. buf += USB_DT_USB_EXT_CAP_SIZE;
  498. memcpy(buf, &fsg_ss_cap_desc, USB_DT_USB_SS_CAP_SIZE);
  499. return USB_DT_BOS_SIZE + USB_DT_USB_SS_CAP_SIZE
  500. + USB_DT_USB_EXT_CAP_SIZE;
  501. }
  502. /*
  503. * Config descriptors must agree with the code that sets configurations
  504. * and with code managing interfaces and their altsettings. They must
  505. * also handle different speeds and other-speed requests.
  506. */
  507. static int populate_config_buf(struct usb_gadget *gadget,
  508. u8 *buf, u8 type, unsigned index)
  509. {
  510. enum usb_device_speed speed = gadget->speed;
  511. int len;
  512. const struct usb_descriptor_header **function;
  513. if (index > 0)
  514. return -EINVAL;
  515. if (gadget_is_dualspeed(gadget) && type == USB_DT_OTHER_SPEED_CONFIG)
  516. speed = (USB_SPEED_FULL + USB_SPEED_HIGH) - speed;
  517. function = gadget_is_dualspeed(gadget) && speed == USB_SPEED_HIGH
  518. ? (const struct usb_descriptor_header **)fsg_hs_function
  519. : (const struct usb_descriptor_header **)fsg_fs_function;
  520. /* for now, don't advertise srp-only devices */
  521. if (!gadget_is_otg(gadget))
  522. function++;
  523. len = usb_gadget_config_buf(&config_desc, buf, EP0_BUFSIZE, function);
  524. ((struct usb_config_descriptor *) buf)->bDescriptorType = type;
  525. return len;
  526. }
  527. /*-------------------------------------------------------------------------*/
  528. /* These routines may be called in process context or in_irq */
  529. /* Caller must hold fsg->lock */
  530. static void wakeup_thread(struct fsg_dev *fsg)
  531. {
  532. /* Tell the main thread that something has happened */
  533. fsg->thread_wakeup_needed = 1;
  534. if (fsg->thread_task)
  535. wake_up_process(fsg->thread_task);
  536. }
  537. static void raise_exception(struct fsg_dev *fsg, enum fsg_state new_state)
  538. {
  539. unsigned long flags;
  540. /* Do nothing if a higher-priority exception is already in progress.
  541. * If a lower-or-equal priority exception is in progress, preempt it
  542. * and notify the main thread by sending it a signal. */
  543. spin_lock_irqsave(&fsg->lock, flags);
  544. if (fsg->state <= new_state) {
  545. fsg->exception_req_tag = fsg->ep0_req_tag;
  546. fsg->state = new_state;
  547. if (fsg->thread_task)
  548. send_sig_info(SIGUSR1, SEND_SIG_FORCED,
  549. fsg->thread_task);
  550. }
  551. spin_unlock_irqrestore(&fsg->lock, flags);
  552. }
  553. /*-------------------------------------------------------------------------*/
  554. /* The disconnect callback and ep0 routines. These always run in_irq,
  555. * except that ep0_queue() is called in the main thread to acknowledge
  556. * completion of various requests: set config, set interface, and
  557. * Bulk-only device reset. */
  558. static void fsg_disconnect(struct usb_gadget *gadget)
  559. {
  560. struct fsg_dev *fsg = get_gadget_data(gadget);
  561. DBG(fsg, "disconnect or port reset\n");
  562. raise_exception(fsg, FSG_STATE_DISCONNECT);
  563. }
  564. static int ep0_queue(struct fsg_dev *fsg)
  565. {
  566. int rc;
  567. rc = usb_ep_queue(fsg->ep0, fsg->ep0req, GFP_ATOMIC);
  568. if (rc != 0 && rc != -ESHUTDOWN) {
  569. /* We can't do much more than wait for a reset */
  570. WARNING(fsg, "error in submission: %s --> %d\n",
  571. fsg->ep0->name, rc);
  572. }
  573. return rc;
  574. }
  575. static void ep0_complete(struct usb_ep *ep, struct usb_request *req)
  576. {
  577. struct fsg_dev *fsg = ep->driver_data;
  578. if (req->actual > 0)
  579. dump_msg(fsg, fsg->ep0req_name, req->buf, req->actual);
  580. if (req->status || req->actual != req->length)
  581. DBG(fsg, "%s --> %d, %u/%u\n", __func__,
  582. req->status, req->actual, req->length);
  583. if (req->status == -ECONNRESET) // Request was cancelled
  584. usb_ep_fifo_flush(ep);
  585. if (req->status == 0 && req->context)
  586. ((fsg_routine_t) (req->context))(fsg);
  587. }
  588. /*-------------------------------------------------------------------------*/
  589. /* Bulk and interrupt endpoint completion handlers.
  590. * These always run in_irq. */
  591. static void bulk_in_complete(struct usb_ep *ep, struct usb_request *req)
  592. {
  593. struct fsg_dev *fsg = ep->driver_data;
  594. struct fsg_buffhd *bh = req->context;
  595. if (req->status || req->actual != req->length)
  596. DBG(fsg, "%s --> %d, %u/%u\n", __func__,
  597. req->status, req->actual, req->length);
  598. if (req->status == -ECONNRESET) // Request was cancelled
  599. usb_ep_fifo_flush(ep);
  600. /* Hold the lock while we update the request and buffer states */
  601. smp_wmb();
  602. spin_lock(&fsg->lock);
  603. bh->inreq_busy = 0;
  604. bh->state = BUF_STATE_EMPTY;
  605. wakeup_thread(fsg);
  606. spin_unlock(&fsg->lock);
  607. }
  608. static void bulk_out_complete(struct usb_ep *ep, struct usb_request *req)
  609. {
  610. struct fsg_dev *fsg = ep->driver_data;
  611. struct fsg_buffhd *bh = req->context;
  612. dump_msg(fsg, "bulk-out", req->buf, req->actual);
  613. if (req->status || req->actual != bh->bulk_out_intended_length)
  614. DBG(fsg, "%s --> %d, %u/%u\n", __func__,
  615. req->status, req->actual,
  616. bh->bulk_out_intended_length);
  617. if (req->status == -ECONNRESET) // Request was cancelled
  618. usb_ep_fifo_flush(ep);
  619. /* Hold the lock while we update the request and buffer states */
  620. smp_wmb();
  621. spin_lock(&fsg->lock);
  622. bh->outreq_busy = 0;
  623. bh->state = BUF_STATE_FULL;
  624. wakeup_thread(fsg);
  625. spin_unlock(&fsg->lock);
  626. }
  627. #ifdef CONFIG_USB_FILE_STORAGE_TEST
  628. static void intr_in_complete(struct usb_ep *ep, struct usb_request *req)
  629. {
  630. struct fsg_dev *fsg = ep->driver_data;
  631. struct fsg_buffhd *bh = req->context;
  632. if (req->status || req->actual != req->length)
  633. DBG(fsg, "%s --> %d, %u/%u\n", __func__,
  634. req->status, req->actual, req->length);
  635. if (req->status == -ECONNRESET) // Request was cancelled
  636. usb_ep_fifo_flush(ep);
  637. /* Hold the lock while we update the request and buffer states */
  638. smp_wmb();
  639. spin_lock(&fsg->lock);
  640. fsg->intreq_busy = 0;
  641. bh->state = BUF_STATE_EMPTY;
  642. wakeup_thread(fsg);
  643. spin_unlock(&fsg->lock);
  644. }
  645. #else
  646. static void intr_in_complete(struct usb_ep *ep, struct usb_request *req)
  647. {}
  648. #endif /* CONFIG_USB_FILE_STORAGE_TEST */
  649. /*-------------------------------------------------------------------------*/
  650. /* Ep0 class-specific handlers. These always run in_irq. */
  651. #ifdef CONFIG_USB_FILE_STORAGE_TEST
  652. static void received_cbi_adsc(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  653. {
  654. struct usb_request *req = fsg->ep0req;
  655. static u8 cbi_reset_cmnd[6] = {
  656. SEND_DIAGNOSTIC, 4, 0xff, 0xff, 0xff, 0xff};
  657. /* Error in command transfer? */
  658. if (req->status || req->length != req->actual ||
  659. req->actual < 6 || req->actual > MAX_COMMAND_SIZE) {
  660. /* Not all controllers allow a protocol stall after
  661. * receiving control-out data, but we'll try anyway. */
  662. fsg_set_halt(fsg, fsg->ep0);
  663. return; // Wait for reset
  664. }
  665. /* Is it the special reset command? */
  666. if (req->actual >= sizeof cbi_reset_cmnd &&
  667. memcmp(req->buf, cbi_reset_cmnd,
  668. sizeof cbi_reset_cmnd) == 0) {
  669. /* Raise an exception to stop the current operation
  670. * and reinitialize our state. */
  671. DBG(fsg, "cbi reset request\n");
  672. raise_exception(fsg, FSG_STATE_RESET);
  673. return;
  674. }
  675. VDBG(fsg, "CB[I] accept device-specific command\n");
  676. spin_lock(&fsg->lock);
  677. /* Save the command for later */
  678. if (fsg->cbbuf_cmnd_size)
  679. WARNING(fsg, "CB[I] overwriting previous command\n");
  680. fsg->cbbuf_cmnd_size = req->actual;
  681. memcpy(fsg->cbbuf_cmnd, req->buf, fsg->cbbuf_cmnd_size);
  682. wakeup_thread(fsg);
  683. spin_unlock(&fsg->lock);
  684. }
  685. #else
  686. static void received_cbi_adsc(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  687. {}
  688. #endif /* CONFIG_USB_FILE_STORAGE_TEST */
  689. static int class_setup_req(struct fsg_dev *fsg,
  690. const struct usb_ctrlrequest *ctrl)
  691. {
  692. struct usb_request *req = fsg->ep0req;
  693. int value = -EOPNOTSUPP;
  694. u16 w_index = le16_to_cpu(ctrl->wIndex);
  695. u16 w_value = le16_to_cpu(ctrl->wValue);
  696. u16 w_length = le16_to_cpu(ctrl->wLength);
  697. if (!fsg->config)
  698. return value;
  699. /* Handle Bulk-only class-specific requests */
  700. if (transport_is_bbb()) {
  701. switch (ctrl->bRequest) {
  702. case US_BULK_RESET_REQUEST:
  703. if (ctrl->bRequestType != (USB_DIR_OUT |
  704. USB_TYPE_CLASS | USB_RECIP_INTERFACE))
  705. break;
  706. if (w_index != 0 || w_value != 0 || w_length != 0) {
  707. value = -EDOM;
  708. break;
  709. }
  710. /* Raise an exception to stop the current operation
  711. * and reinitialize our state. */
  712. DBG(fsg, "bulk reset request\n");
  713. raise_exception(fsg, FSG_STATE_RESET);
  714. value = DELAYED_STATUS;
  715. break;
  716. case US_BULK_GET_MAX_LUN:
  717. if (ctrl->bRequestType != (USB_DIR_IN |
  718. USB_TYPE_CLASS | USB_RECIP_INTERFACE))
  719. break;
  720. if (w_index != 0 || w_value != 0 || w_length != 1) {
  721. value = -EDOM;
  722. break;
  723. }
  724. VDBG(fsg, "get max LUN\n");
  725. *(u8 *) req->buf = fsg->nluns - 1;
  726. value = 1;
  727. break;
  728. }
  729. }
  730. /* Handle CBI class-specific requests */
  731. else {
  732. switch (ctrl->bRequest) {
  733. case USB_CBI_ADSC_REQUEST:
  734. if (ctrl->bRequestType != (USB_DIR_OUT |
  735. USB_TYPE_CLASS | USB_RECIP_INTERFACE))
  736. break;
  737. if (w_index != 0 || w_value != 0) {
  738. value = -EDOM;
  739. break;
  740. }
  741. if (w_length > MAX_COMMAND_SIZE) {
  742. value = -EOVERFLOW;
  743. break;
  744. }
  745. value = w_length;
  746. fsg->ep0req->context = received_cbi_adsc;
  747. break;
  748. }
  749. }
  750. if (value == -EOPNOTSUPP)
  751. VDBG(fsg,
  752. "unknown class-specific control req "
  753. "%02x.%02x v%04x i%04x l%u\n",
  754. ctrl->bRequestType, ctrl->bRequest,
  755. le16_to_cpu(ctrl->wValue), w_index, w_length);
  756. return value;
  757. }
  758. /*-------------------------------------------------------------------------*/
  759. /* Ep0 standard request handlers. These always run in_irq. */
  760. static int standard_setup_req(struct fsg_dev *fsg,
  761. const struct usb_ctrlrequest *ctrl)
  762. {
  763. struct usb_request *req = fsg->ep0req;
  764. int value = -EOPNOTSUPP;
  765. u16 w_index = le16_to_cpu(ctrl->wIndex);
  766. u16 w_value = le16_to_cpu(ctrl->wValue);
  767. /* Usually this just stores reply data in the pre-allocated ep0 buffer,
  768. * but config change events will also reconfigure hardware. */
  769. switch (ctrl->bRequest) {
  770. case USB_REQ_GET_DESCRIPTOR:
  771. if (ctrl->bRequestType != (USB_DIR_IN | USB_TYPE_STANDARD |
  772. USB_RECIP_DEVICE))
  773. break;
  774. switch (w_value >> 8) {
  775. case USB_DT_DEVICE:
  776. VDBG(fsg, "get device descriptor\n");
  777. device_desc.bMaxPacketSize0 = fsg->ep0->maxpacket;
  778. value = sizeof device_desc;
  779. memcpy(req->buf, &device_desc, value);
  780. break;
  781. case USB_DT_DEVICE_QUALIFIER:
  782. VDBG(fsg, "get device qualifier\n");
  783. if (!gadget_is_dualspeed(fsg->gadget) ||
  784. fsg->gadget->speed == USB_SPEED_SUPER)
  785. break;
  786. /*
  787. * Assume ep0 uses the same maxpacket value for both
  788. * speeds
  789. */
  790. dev_qualifier.bMaxPacketSize0 = fsg->ep0->maxpacket;
  791. value = sizeof dev_qualifier;
  792. memcpy(req->buf, &dev_qualifier, value);
  793. break;
  794. case USB_DT_OTHER_SPEED_CONFIG:
  795. VDBG(fsg, "get other-speed config descriptor\n");
  796. if (!gadget_is_dualspeed(fsg->gadget) ||
  797. fsg->gadget->speed == USB_SPEED_SUPER)
  798. break;
  799. goto get_config;
  800. case USB_DT_CONFIG:
  801. VDBG(fsg, "get configuration descriptor\n");
  802. get_config:
  803. value = populate_config_buf(fsg->gadget,
  804. req->buf,
  805. w_value >> 8,
  806. w_value & 0xff);
  807. break;
  808. case USB_DT_STRING:
  809. VDBG(fsg, "get string descriptor\n");
  810. /* wIndex == language code */
  811. value = usb_gadget_get_string(&fsg_stringtab,
  812. w_value & 0xff, req->buf);
  813. break;
  814. case USB_DT_BOS:
  815. VDBG(fsg, "get bos descriptor\n");
  816. if (gadget_is_superspeed(fsg->gadget))
  817. value = populate_bos(fsg, req->buf);
  818. break;
  819. }
  820. break;
  821. /* One config, two speeds */
  822. case USB_REQ_SET_CONFIGURATION:
  823. if (ctrl->bRequestType != (USB_DIR_OUT | USB_TYPE_STANDARD |
  824. USB_RECIP_DEVICE))
  825. break;
  826. VDBG(fsg, "set configuration\n");
  827. if (w_value == CONFIG_VALUE || w_value == 0) {
  828. fsg->new_config = w_value;
  829. /* Raise an exception to wipe out previous transaction
  830. * state (queued bufs, etc) and set the new config. */
  831. raise_exception(fsg, FSG_STATE_CONFIG_CHANGE);
  832. value = DELAYED_STATUS;
  833. }
  834. break;
  835. case USB_REQ_GET_CONFIGURATION:
  836. if (ctrl->bRequestType != (USB_DIR_IN | USB_TYPE_STANDARD |
  837. USB_RECIP_DEVICE))
  838. break;
  839. VDBG(fsg, "get configuration\n");
  840. *(u8 *) req->buf = fsg->config;
  841. value = 1;
  842. break;
  843. case USB_REQ_SET_INTERFACE:
  844. if (ctrl->bRequestType != (USB_DIR_OUT| USB_TYPE_STANDARD |
  845. USB_RECIP_INTERFACE))
  846. break;
  847. if (fsg->config && w_index == 0) {
  848. /* Raise an exception to wipe out previous transaction
  849. * state (queued bufs, etc) and install the new
  850. * interface altsetting. */
  851. raise_exception(fsg, FSG_STATE_INTERFACE_CHANGE);
  852. value = DELAYED_STATUS;
  853. }
  854. break;
  855. case USB_REQ_GET_INTERFACE:
  856. if (ctrl->bRequestType != (USB_DIR_IN | USB_TYPE_STANDARD |
  857. USB_RECIP_INTERFACE))
  858. break;
  859. if (!fsg->config)
  860. break;
  861. if (w_index != 0) {
  862. value = -EDOM;
  863. break;
  864. }
  865. VDBG(fsg, "get interface\n");
  866. *(u8 *) req->buf = 0;
  867. value = 1;
  868. break;
  869. default:
  870. VDBG(fsg,
  871. "unknown control req %02x.%02x v%04x i%04x l%u\n",
  872. ctrl->bRequestType, ctrl->bRequest,
  873. w_value, w_index, le16_to_cpu(ctrl->wLength));
  874. }
  875. return value;
  876. }
  877. static int fsg_setup(struct usb_gadget *gadget,
  878. const struct usb_ctrlrequest *ctrl)
  879. {
  880. struct fsg_dev *fsg = get_gadget_data(gadget);
  881. int rc;
  882. int w_length = le16_to_cpu(ctrl->wLength);
  883. ++fsg->ep0_req_tag; // Record arrival of a new request
  884. fsg->ep0req->context = NULL;
  885. fsg->ep0req->length = 0;
  886. dump_msg(fsg, "ep0-setup", (u8 *) ctrl, sizeof(*ctrl));
  887. if ((ctrl->bRequestType & USB_TYPE_MASK) == USB_TYPE_CLASS)
  888. rc = class_setup_req(fsg, ctrl);
  889. else
  890. rc = standard_setup_req(fsg, ctrl);
  891. /* Respond with data/status or defer until later? */
  892. if (rc >= 0 && rc != DELAYED_STATUS) {
  893. rc = min(rc, w_length);
  894. fsg->ep0req->length = rc;
  895. fsg->ep0req->zero = rc < w_length;
  896. fsg->ep0req_name = (ctrl->bRequestType & USB_DIR_IN ?
  897. "ep0-in" : "ep0-out");
  898. rc = ep0_queue(fsg);
  899. }
  900. /* Device either stalls (rc < 0) or reports success */
  901. return rc;
  902. }
  903. /*-------------------------------------------------------------------------*/
  904. /* All the following routines run in process context */
  905. /* Use this for bulk or interrupt transfers, not ep0 */
  906. static void start_transfer(struct fsg_dev *fsg, struct usb_ep *ep,
  907. struct usb_request *req, int *pbusy,
  908. enum fsg_buffer_state *state)
  909. {
  910. int rc;
  911. if (ep == fsg->bulk_in)
  912. dump_msg(fsg, "bulk-in", req->buf, req->length);
  913. else if (ep == fsg->intr_in)
  914. dump_msg(fsg, "intr-in", req->buf, req->length);
  915. spin_lock_irq(&fsg->lock);
  916. *pbusy = 1;
  917. *state = BUF_STATE_BUSY;
  918. spin_unlock_irq(&fsg->lock);
  919. rc = usb_ep_queue(ep, req, GFP_KERNEL);
  920. if (rc != 0) {
  921. *pbusy = 0;
  922. *state = BUF_STATE_EMPTY;
  923. /* We can't do much more than wait for a reset */
  924. /* Note: currently the net2280 driver fails zero-length
  925. * submissions if DMA is enabled. */
  926. if (rc != -ESHUTDOWN && !(rc == -EOPNOTSUPP &&
  927. req->length == 0))
  928. WARNING(fsg, "error in submission: %s --> %d\n",
  929. ep->name, rc);
  930. }
  931. }
  932. static int sleep_thread(struct fsg_dev *fsg)
  933. {
  934. int rc = 0;
  935. /* Wait until a signal arrives or we are woken up */
  936. for (;;) {
  937. try_to_freeze();
  938. set_current_state(TASK_INTERRUPTIBLE);
  939. if (signal_pending(current)) {
  940. rc = -EINTR;
  941. break;
  942. }
  943. if (fsg->thread_wakeup_needed)
  944. break;
  945. schedule();
  946. }
  947. __set_current_state(TASK_RUNNING);
  948. fsg->thread_wakeup_needed = 0;
  949. return rc;
  950. }
  951. /*-------------------------------------------------------------------------*/
  952. static int do_read(struct fsg_dev *fsg)
  953. {
  954. struct fsg_lun *curlun = fsg->curlun;
  955. u32 lba;
  956. struct fsg_buffhd *bh;
  957. int rc;
  958. u32 amount_left;
  959. loff_t file_offset, file_offset_tmp;
  960. unsigned int amount;
  961. ssize_t nread;
  962. /* Get the starting Logical Block Address and check that it's
  963. * not too big */
  964. if (fsg->cmnd[0] == READ_6)
  965. lba = get_unaligned_be24(&fsg->cmnd[1]);
  966. else {
  967. lba = get_unaligned_be32(&fsg->cmnd[2]);
  968. /* We allow DPO (Disable Page Out = don't save data in the
  969. * cache) and FUA (Force Unit Access = don't read from the
  970. * cache), but we don't implement them. */
  971. if ((fsg->cmnd[1] & ~0x18) != 0) {
  972. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  973. return -EINVAL;
  974. }
  975. }
  976. if (lba >= curlun->num_sectors) {
  977. curlun->sense_data = SS_LOGICAL_BLOCK_ADDRESS_OUT_OF_RANGE;
  978. return -EINVAL;
  979. }
  980. file_offset = ((loff_t) lba) << curlun->blkbits;
  981. /* Carry out the file reads */
  982. amount_left = fsg->data_size_from_cmnd;
  983. if (unlikely(amount_left == 0))
  984. return -EIO; // No default reply
  985. for (;;) {
  986. /* Figure out how much we need to read:
  987. * Try to read the remaining amount.
  988. * But don't read more than the buffer size.
  989. * And don't try to read past the end of the file.
  990. */
  991. amount = min((unsigned int) amount_left, mod_data.buflen);
  992. amount = min((loff_t) amount,
  993. curlun->file_length - file_offset);
  994. /* Wait for the next buffer to become available */
  995. bh = fsg->next_buffhd_to_fill;
  996. while (bh->state != BUF_STATE_EMPTY) {
  997. rc = sleep_thread(fsg);
  998. if (rc)
  999. return rc;
  1000. }
  1001. /* If we were asked to read past the end of file,
  1002. * end with an empty buffer. */
  1003. if (amount == 0) {
  1004. curlun->sense_data =
  1005. SS_LOGICAL_BLOCK_ADDRESS_OUT_OF_RANGE;
  1006. curlun->sense_data_info = file_offset >> curlun->blkbits;
  1007. curlun->info_valid = 1;
  1008. bh->inreq->length = 0;
  1009. bh->state = BUF_STATE_FULL;
  1010. break;
  1011. }
  1012. /* Perform the read */
  1013. file_offset_tmp = file_offset;
  1014. nread = vfs_read(curlun->filp,
  1015. (char __user *) bh->buf,
  1016. amount, &file_offset_tmp);
  1017. VLDBG(curlun, "file read %u @ %llu -> %d\n", amount,
  1018. (unsigned long long) file_offset,
  1019. (int) nread);
  1020. if (signal_pending(current))
  1021. return -EINTR;
  1022. if (nread < 0) {
  1023. LDBG(curlun, "error in file read: %d\n",
  1024. (int) nread);
  1025. nread = 0;
  1026. } else if (nread < amount) {
  1027. LDBG(curlun, "partial file read: %d/%u\n",
  1028. (int) nread, amount);
  1029. nread = round_down(nread, curlun->blksize);
  1030. }
  1031. file_offset += nread;
  1032. amount_left -= nread;
  1033. fsg->residue -= nread;
  1034. /* Except at the end of the transfer, nread will be
  1035. * equal to the buffer size, which is divisible by the
  1036. * bulk-in maxpacket size.
  1037. */
  1038. bh->inreq->length = nread;
  1039. bh->state = BUF_STATE_FULL;
  1040. /* If an error occurred, report it and its position */
  1041. if (nread < amount) {
  1042. curlun->sense_data = SS_UNRECOVERED_READ_ERROR;
  1043. curlun->sense_data_info = file_offset >> curlun->blkbits;
  1044. curlun->info_valid = 1;
  1045. break;
  1046. }
  1047. if (amount_left == 0)
  1048. break; // No more left to read
  1049. /* Send this buffer and go read some more */
  1050. bh->inreq->zero = 0;
  1051. start_transfer(fsg, fsg->bulk_in, bh->inreq,
  1052. &bh->inreq_busy, &bh->state);
  1053. fsg->next_buffhd_to_fill = bh->next;
  1054. }
  1055. return -EIO; // No default reply
  1056. }
  1057. /*-------------------------------------------------------------------------*/
  1058. static int do_write(struct fsg_dev *fsg)
  1059. {
  1060. struct fsg_lun *curlun = fsg->curlun;
  1061. u32 lba;
  1062. struct fsg_buffhd *bh;
  1063. int get_some_more;
  1064. u32 amount_left_to_req, amount_left_to_write;
  1065. loff_t usb_offset, file_offset, file_offset_tmp;
  1066. unsigned int amount;
  1067. ssize_t nwritten;
  1068. int rc;
  1069. if (curlun->ro) {
  1070. curlun->sense_data = SS_WRITE_PROTECTED;
  1071. return -EINVAL;
  1072. }
  1073. spin_lock(&curlun->filp->f_lock);
  1074. curlun->filp->f_flags &= ~O_SYNC; // Default is not to wait
  1075. spin_unlock(&curlun->filp->f_lock);
  1076. /* Get the starting Logical Block Address and check that it's
  1077. * not too big */
  1078. if (fsg->cmnd[0] == WRITE_6)
  1079. lba = get_unaligned_be24(&fsg->cmnd[1]);
  1080. else {
  1081. lba = get_unaligned_be32(&fsg->cmnd[2]);
  1082. /* We allow DPO (Disable Page Out = don't save data in the
  1083. * cache) and FUA (Force Unit Access = write directly to the
  1084. * medium). We don't implement DPO; we implement FUA by
  1085. * performing synchronous output. */
  1086. if ((fsg->cmnd[1] & ~0x18) != 0) {
  1087. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1088. return -EINVAL;
  1089. }
  1090. /* FUA */
  1091. if (!curlun->nofua && (fsg->cmnd[1] & 0x08)) {
  1092. spin_lock(&curlun->filp->f_lock);
  1093. curlun->filp->f_flags |= O_DSYNC;
  1094. spin_unlock(&curlun->filp->f_lock);
  1095. }
  1096. }
  1097. if (lba >= curlun->num_sectors) {
  1098. curlun->sense_data = SS_LOGICAL_BLOCK_ADDRESS_OUT_OF_RANGE;
  1099. return -EINVAL;
  1100. }
  1101. /* Carry out the file writes */
  1102. get_some_more = 1;
  1103. file_offset = usb_offset = ((loff_t) lba) << curlun->blkbits;
  1104. amount_left_to_req = amount_left_to_write = fsg->data_size_from_cmnd;
  1105. while (amount_left_to_write > 0) {
  1106. /* Queue a request for more data from the host */
  1107. bh = fsg->next_buffhd_to_fill;
  1108. if (bh->state == BUF_STATE_EMPTY && get_some_more) {
  1109. /* Figure out how much we want to get:
  1110. * Try to get the remaining amount,
  1111. * but not more than the buffer size.
  1112. */
  1113. amount = min(amount_left_to_req, mod_data.buflen);
  1114. /* Beyond the end of the backing file? */
  1115. if (usb_offset >= curlun->file_length) {
  1116. get_some_more = 0;
  1117. curlun->sense_data =
  1118. SS_LOGICAL_BLOCK_ADDRESS_OUT_OF_RANGE;
  1119. curlun->sense_data_info = usb_offset >> curlun->blkbits;
  1120. curlun->info_valid = 1;
  1121. continue;
  1122. }
  1123. /* Get the next buffer */
  1124. usb_offset += amount;
  1125. fsg->usb_amount_left -= amount;
  1126. amount_left_to_req -= amount;
  1127. if (amount_left_to_req == 0)
  1128. get_some_more = 0;
  1129. /* Except at the end of the transfer, amount will be
  1130. * equal to the buffer size, which is divisible by
  1131. * the bulk-out maxpacket size.
  1132. */
  1133. set_bulk_out_req_length(fsg, bh, amount);
  1134. start_transfer(fsg, fsg->bulk_out, bh->outreq,
  1135. &bh->outreq_busy, &bh->state);
  1136. fsg->next_buffhd_to_fill = bh->next;
  1137. continue;
  1138. }
  1139. /* Write the received data to the backing file */
  1140. bh = fsg->next_buffhd_to_drain;
  1141. if (bh->state == BUF_STATE_EMPTY && !get_some_more)
  1142. break; // We stopped early
  1143. if (bh->state == BUF_STATE_FULL) {
  1144. smp_rmb();
  1145. fsg->next_buffhd_to_drain = bh->next;
  1146. bh->state = BUF_STATE_EMPTY;
  1147. /* Did something go wrong with the transfer? */
  1148. if (bh->outreq->status != 0) {
  1149. curlun->sense_data = SS_COMMUNICATION_FAILURE;
  1150. curlun->sense_data_info = file_offset >> curlun->blkbits;
  1151. curlun->info_valid = 1;
  1152. break;
  1153. }
  1154. amount = bh->outreq->actual;
  1155. if (curlun->file_length - file_offset < amount) {
  1156. LERROR(curlun,
  1157. "write %u @ %llu beyond end %llu\n",
  1158. amount, (unsigned long long) file_offset,
  1159. (unsigned long long) curlun->file_length);
  1160. amount = curlun->file_length - file_offset;
  1161. }
  1162. /* Don't accept excess data. The spec doesn't say
  1163. * what to do in this case. We'll ignore the error.
  1164. */
  1165. amount = min(amount, bh->bulk_out_intended_length);
  1166. /* Don't write a partial block */
  1167. amount = round_down(amount, curlun->blksize);
  1168. if (amount == 0)
  1169. goto empty_write;
  1170. /* Perform the write */
  1171. file_offset_tmp = file_offset;
  1172. nwritten = vfs_write(curlun->filp,
  1173. (char __user *) bh->buf,
  1174. amount, &file_offset_tmp);
  1175. VLDBG(curlun, "file write %u @ %llu -> %d\n", amount,
  1176. (unsigned long long) file_offset,
  1177. (int) nwritten);
  1178. if (signal_pending(current))
  1179. return -EINTR; // Interrupted!
  1180. if (nwritten < 0) {
  1181. LDBG(curlun, "error in file write: %d\n",
  1182. (int) nwritten);
  1183. nwritten = 0;
  1184. } else if (nwritten < amount) {
  1185. LDBG(curlun, "partial file write: %d/%u\n",
  1186. (int) nwritten, amount);
  1187. nwritten = round_down(nwritten, curlun->blksize);
  1188. }
  1189. file_offset += nwritten;
  1190. amount_left_to_write -= nwritten;
  1191. fsg->residue -= nwritten;
  1192. /* If an error occurred, report it and its position */
  1193. if (nwritten < amount) {
  1194. curlun->sense_data = SS_WRITE_ERROR;
  1195. curlun->sense_data_info = file_offset >> curlun->blkbits;
  1196. curlun->info_valid = 1;
  1197. break;
  1198. }
  1199. empty_write:
  1200. /* Did the host decide to stop early? */
  1201. if (bh->outreq->actual < bh->bulk_out_intended_length) {
  1202. fsg->short_packet_received = 1;
  1203. break;
  1204. }
  1205. continue;
  1206. }
  1207. /* Wait for something to happen */
  1208. rc = sleep_thread(fsg);
  1209. if (rc)
  1210. return rc;
  1211. }
  1212. return -EIO; // No default reply
  1213. }
  1214. /*-------------------------------------------------------------------------*/
  1215. static int do_synchronize_cache(struct fsg_dev *fsg)
  1216. {
  1217. struct fsg_lun *curlun = fsg->curlun;
  1218. int rc;
  1219. /* We ignore the requested LBA and write out all file's
  1220. * dirty data buffers. */
  1221. rc = fsg_lun_fsync_sub(curlun);
  1222. if (rc)
  1223. curlun->sense_data = SS_WRITE_ERROR;
  1224. return 0;
  1225. }
  1226. /*-------------------------------------------------------------------------*/
  1227. static void invalidate_sub(struct fsg_lun *curlun)
  1228. {
  1229. struct file *filp = curlun->filp;
  1230. struct inode *inode = filp->f_path.dentry->d_inode;
  1231. unsigned long rc;
  1232. rc = invalidate_mapping_pages(inode->i_mapping, 0, -1);
  1233. VLDBG(curlun, "invalidate_mapping_pages -> %ld\n", rc);
  1234. }
  1235. static int do_verify(struct fsg_dev *fsg)
  1236. {
  1237. struct fsg_lun *curlun = fsg->curlun;
  1238. u32 lba;
  1239. u32 verification_length;
  1240. struct fsg_buffhd *bh = fsg->next_buffhd_to_fill;
  1241. loff_t file_offset, file_offset_tmp;
  1242. u32 amount_left;
  1243. unsigned int amount;
  1244. ssize_t nread;
  1245. /* Get the starting Logical Block Address and check that it's
  1246. * not too big */
  1247. lba = get_unaligned_be32(&fsg->cmnd[2]);
  1248. if (lba >= curlun->num_sectors) {
  1249. curlun->sense_data = SS_LOGICAL_BLOCK_ADDRESS_OUT_OF_RANGE;
  1250. return -EINVAL;
  1251. }
  1252. /* We allow DPO (Disable Page Out = don't save data in the
  1253. * cache) but we don't implement it. */
  1254. if ((fsg->cmnd[1] & ~0x10) != 0) {
  1255. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1256. return -EINVAL;
  1257. }
  1258. verification_length = get_unaligned_be16(&fsg->cmnd[7]);
  1259. if (unlikely(verification_length == 0))
  1260. return -EIO; // No default reply
  1261. /* Prepare to carry out the file verify */
  1262. amount_left = verification_length << curlun->blkbits;
  1263. file_offset = ((loff_t) lba) << curlun->blkbits;
  1264. /* Write out all the dirty buffers before invalidating them */
  1265. fsg_lun_fsync_sub(curlun);
  1266. if (signal_pending(current))
  1267. return -EINTR;
  1268. invalidate_sub(curlun);
  1269. if (signal_pending(current))
  1270. return -EINTR;
  1271. /* Just try to read the requested blocks */
  1272. while (amount_left > 0) {
  1273. /* Figure out how much we need to read:
  1274. * Try to read the remaining amount, but not more than
  1275. * the buffer size.
  1276. * And don't try to read past the end of the file.
  1277. */
  1278. amount = min((unsigned int) amount_left, mod_data.buflen);
  1279. amount = min((loff_t) amount,
  1280. curlun->file_length - file_offset);
  1281. if (amount == 0) {
  1282. curlun->sense_data =
  1283. SS_LOGICAL_BLOCK_ADDRESS_OUT_OF_RANGE;
  1284. curlun->sense_data_info = file_offset >> curlun->blkbits;
  1285. curlun->info_valid = 1;
  1286. break;
  1287. }
  1288. /* Perform the read */
  1289. file_offset_tmp = file_offset;
  1290. nread = vfs_read(curlun->filp,
  1291. (char __user *) bh->buf,
  1292. amount, &file_offset_tmp);
  1293. VLDBG(curlun, "file read %u @ %llu -> %d\n", amount,
  1294. (unsigned long long) file_offset,
  1295. (int) nread);
  1296. if (signal_pending(current))
  1297. return -EINTR;
  1298. if (nread < 0) {
  1299. LDBG(curlun, "error in file verify: %d\n",
  1300. (int) nread);
  1301. nread = 0;
  1302. } else if (nread < amount) {
  1303. LDBG(curlun, "partial file verify: %d/%u\n",
  1304. (int) nread, amount);
  1305. nread = round_down(nread, curlun->blksize);
  1306. }
  1307. if (nread == 0) {
  1308. curlun->sense_data = SS_UNRECOVERED_READ_ERROR;
  1309. curlun->sense_data_info = file_offset >> curlun->blkbits;
  1310. curlun->info_valid = 1;
  1311. break;
  1312. }
  1313. file_offset += nread;
  1314. amount_left -= nread;
  1315. }
  1316. return 0;
  1317. }
  1318. /*-------------------------------------------------------------------------*/
  1319. static int do_inquiry(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  1320. {
  1321. u8 *buf = (u8 *) bh->buf;
  1322. static char vendor_id[] = "Linux ";
  1323. static char product_disk_id[] = "File-Stor Gadget";
  1324. static char product_cdrom_id[] = "File-CD Gadget ";
  1325. if (!fsg->curlun) { // Unsupported LUNs are okay
  1326. fsg->bad_lun_okay = 1;
  1327. memset(buf, 0, 36);
  1328. buf[0] = 0x7f; // Unsupported, no device-type
  1329. buf[4] = 31; // Additional length
  1330. return 36;
  1331. }
  1332. memset(buf, 0, 8);
  1333. buf[0] = (mod_data.cdrom ? TYPE_ROM : TYPE_DISK);
  1334. if (mod_data.removable)
  1335. buf[1] = 0x80;
  1336. buf[2] = 2; // ANSI SCSI level 2
  1337. buf[3] = 2; // SCSI-2 INQUIRY data format
  1338. buf[4] = 31; // Additional length
  1339. // No special options
  1340. sprintf(buf + 8, "%-8s%-16s%04x", vendor_id,
  1341. (mod_data.cdrom ? product_cdrom_id :
  1342. product_disk_id),
  1343. mod_data.release);
  1344. return 36;
  1345. }
  1346. static int do_request_sense(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  1347. {
  1348. struct fsg_lun *curlun = fsg->curlun;
  1349. u8 *buf = (u8 *) bh->buf;
  1350. u32 sd, sdinfo;
  1351. int valid;
  1352. /*
  1353. * From the SCSI-2 spec., section 7.9 (Unit attention condition):
  1354. *
  1355. * If a REQUEST SENSE command is received from an initiator
  1356. * with a pending unit attention condition (before the target
  1357. * generates the contingent allegiance condition), then the
  1358. * target shall either:
  1359. * a) report any pending sense data and preserve the unit
  1360. * attention condition on the logical unit, or,
  1361. * b) report the unit attention condition, may discard any
  1362. * pending sense data, and clear the unit attention
  1363. * condition on the logical unit for that initiator.
  1364. *
  1365. * FSG normally uses option a); enable this code to use option b).
  1366. */
  1367. #if 0
  1368. if (curlun && curlun->unit_attention_data != SS_NO_SENSE) {
  1369. curlun->sense_data = curlun->unit_attention_data;
  1370. curlun->unit_attention_data = SS_NO_SENSE;
  1371. }
  1372. #endif
  1373. if (!curlun) { // Unsupported LUNs are okay
  1374. fsg->bad_lun_okay = 1;
  1375. sd = SS_LOGICAL_UNIT_NOT_SUPPORTED;
  1376. sdinfo = 0;
  1377. valid = 0;
  1378. } else {
  1379. sd = curlun->sense_data;
  1380. sdinfo = curlun->sense_data_info;
  1381. valid = curlun->info_valid << 7;
  1382. curlun->sense_data = SS_NO_SENSE;
  1383. curlun->sense_data_info = 0;
  1384. curlun->info_valid = 0;
  1385. }
  1386. memset(buf, 0, 18);
  1387. buf[0] = valid | 0x70; // Valid, current error
  1388. buf[2] = SK(sd);
  1389. put_unaligned_be32(sdinfo, &buf[3]); /* Sense information */
  1390. buf[7] = 18 - 8; // Additional sense length
  1391. buf[12] = ASC(sd);
  1392. buf[13] = ASCQ(sd);
  1393. return 18;
  1394. }
  1395. static int do_read_capacity(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  1396. {
  1397. struct fsg_lun *curlun = fsg->curlun;
  1398. u32 lba = get_unaligned_be32(&fsg->cmnd[2]);
  1399. int pmi = fsg->cmnd[8];
  1400. u8 *buf = (u8 *) bh->buf;
  1401. /* Check the PMI and LBA fields */
  1402. if (pmi > 1 || (pmi == 0 && lba != 0)) {
  1403. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1404. return -EINVAL;
  1405. }
  1406. put_unaligned_be32(curlun->num_sectors - 1, &buf[0]);
  1407. /* Max logical block */
  1408. put_unaligned_be32(curlun->blksize, &buf[4]); /* Block length */
  1409. return 8;
  1410. }
  1411. static int do_read_header(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  1412. {
  1413. struct fsg_lun *curlun = fsg->curlun;
  1414. int msf = fsg->cmnd[1] & 0x02;
  1415. u32 lba = get_unaligned_be32(&fsg->cmnd[2]);
  1416. u8 *buf = (u8 *) bh->buf;
  1417. if ((fsg->cmnd[1] & ~0x02) != 0) { /* Mask away MSF */
  1418. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1419. return -EINVAL;
  1420. }
  1421. if (lba >= curlun->num_sectors) {
  1422. curlun->sense_data = SS_LOGICAL_BLOCK_ADDRESS_OUT_OF_RANGE;
  1423. return -EINVAL;
  1424. }
  1425. memset(buf, 0, 8);
  1426. buf[0] = 0x01; /* 2048 bytes of user data, rest is EC */
  1427. store_cdrom_address(&buf[4], msf, lba);
  1428. return 8;
  1429. }
  1430. static int do_read_toc(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  1431. {
  1432. struct fsg_lun *curlun = fsg->curlun;
  1433. int msf = fsg->cmnd[1] & 0x02;
  1434. int start_track = fsg->cmnd[6];
  1435. u8 *buf = (u8 *) bh->buf;
  1436. if ((fsg->cmnd[1] & ~0x02) != 0 || /* Mask away MSF */
  1437. start_track > 1) {
  1438. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1439. return -EINVAL;
  1440. }
  1441. memset(buf, 0, 20);
  1442. buf[1] = (20-2); /* TOC data length */
  1443. buf[2] = 1; /* First track number */
  1444. buf[3] = 1; /* Last track number */
  1445. buf[5] = 0x16; /* Data track, copying allowed */
  1446. buf[6] = 0x01; /* Only track is number 1 */
  1447. store_cdrom_address(&buf[8], msf, 0);
  1448. buf[13] = 0x16; /* Lead-out track is data */
  1449. buf[14] = 0xAA; /* Lead-out track number */
  1450. store_cdrom_address(&buf[16], msf, curlun->num_sectors);
  1451. return 20;
  1452. }
  1453. static int do_mode_sense(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  1454. {
  1455. struct fsg_lun *curlun = fsg->curlun;
  1456. int mscmnd = fsg->cmnd[0];
  1457. u8 *buf = (u8 *) bh->buf;
  1458. u8 *buf0 = buf;
  1459. int pc, page_code;
  1460. int changeable_values, all_pages;
  1461. int valid_page = 0;
  1462. int len, limit;
  1463. if ((fsg->cmnd[1] & ~0x08) != 0) { // Mask away DBD
  1464. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1465. return -EINVAL;
  1466. }
  1467. pc = fsg->cmnd[2] >> 6;
  1468. page_code = fsg->cmnd[2] & 0x3f;
  1469. if (pc == 3) {
  1470. curlun->sense_data = SS_SAVING_PARAMETERS_NOT_SUPPORTED;
  1471. return -EINVAL;
  1472. }
  1473. changeable_values = (pc == 1);
  1474. all_pages = (page_code == 0x3f);
  1475. /* Write the mode parameter header. Fixed values are: default
  1476. * medium type, no cache control (DPOFUA), and no block descriptors.
  1477. * The only variable value is the WriteProtect bit. We will fill in
  1478. * the mode data length later. */
  1479. memset(buf, 0, 8);
  1480. if (mscmnd == MODE_SENSE) {
  1481. buf[2] = (curlun->ro ? 0x80 : 0x00); // WP, DPOFUA
  1482. buf += 4;
  1483. limit = 255;
  1484. } else { // MODE_SENSE_10
  1485. buf[3] = (curlun->ro ? 0x80 : 0x00); // WP, DPOFUA
  1486. buf += 8;
  1487. limit = 65535; // Should really be mod_data.buflen
  1488. }
  1489. /* No block descriptors */
  1490. /* The mode pages, in numerical order. The only page we support
  1491. * is the Caching page. */
  1492. if (page_code == 0x08 || all_pages) {
  1493. valid_page = 1;
  1494. buf[0] = 0x08; // Page code
  1495. buf[1] = 10; // Page length
  1496. memset(buf+2, 0, 10); // None of the fields are changeable
  1497. if (!changeable_values) {
  1498. buf[2] = 0x04; // Write cache enable,
  1499. // Read cache not disabled
  1500. // No cache retention priorities
  1501. put_unaligned_be16(0xffff, &buf[4]);
  1502. /* Don't disable prefetch */
  1503. /* Minimum prefetch = 0 */
  1504. put_unaligned_be16(0xffff, &buf[8]);
  1505. /* Maximum prefetch */
  1506. put_unaligned_be16(0xffff, &buf[10]);
  1507. /* Maximum prefetch ceiling */
  1508. }
  1509. buf += 12;
  1510. }
  1511. /* Check that a valid page was requested and the mode data length
  1512. * isn't too long. */
  1513. len = buf - buf0;
  1514. if (!valid_page || len > limit) {
  1515. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1516. return -EINVAL;
  1517. }
  1518. /* Store the mode data length */
  1519. if (mscmnd == MODE_SENSE)
  1520. buf0[0] = len - 1;
  1521. else
  1522. put_unaligned_be16(len - 2, buf0);
  1523. return len;
  1524. }
  1525. static int do_start_stop(struct fsg_dev *fsg)
  1526. {
  1527. struct fsg_lun *curlun = fsg->curlun;
  1528. int loej, start;
  1529. if (!mod_data.removable) {
  1530. curlun->sense_data = SS_INVALID_COMMAND;
  1531. return -EINVAL;
  1532. }
  1533. // int immed = fsg->cmnd[1] & 0x01;
  1534. loej = fsg->cmnd[4] & 0x02;
  1535. start = fsg->cmnd[4] & 0x01;
  1536. #ifdef CONFIG_USB_FILE_STORAGE_TEST
  1537. if ((fsg->cmnd[1] & ~0x01) != 0 || // Mask away Immed
  1538. (fsg->cmnd[4] & ~0x03) != 0) { // Mask LoEj, Start
  1539. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1540. return -EINVAL;
  1541. }
  1542. if (!start) {
  1543. /* Are we allowed to unload the media? */
  1544. if (curlun->prevent_medium_removal) {
  1545. LDBG(curlun, "unload attempt prevented\n");
  1546. curlun->sense_data = SS_MEDIUM_REMOVAL_PREVENTED;
  1547. return -EINVAL;
  1548. }
  1549. if (loej) { // Simulate an unload/eject
  1550. up_read(&fsg->filesem);
  1551. down_write(&fsg->filesem);
  1552. fsg_lun_close(curlun);
  1553. up_write(&fsg->filesem);
  1554. down_read(&fsg->filesem);
  1555. }
  1556. } else {
  1557. /* Our emulation doesn't support mounting; the medium is
  1558. * available for use as soon as it is loaded. */
  1559. if (!fsg_lun_is_open(curlun)) {
  1560. curlun->sense_data = SS_MEDIUM_NOT_PRESENT;
  1561. return -EINVAL;
  1562. }
  1563. }
  1564. #endif
  1565. return 0;
  1566. }
  1567. static int do_prevent_allow(struct fsg_dev *fsg)
  1568. {
  1569. struct fsg_lun *curlun = fsg->curlun;
  1570. int prevent;
  1571. if (!mod_data.removable) {
  1572. curlun->sense_data = SS_INVALID_COMMAND;
  1573. return -EINVAL;
  1574. }
  1575. prevent = fsg->cmnd[4] & 0x01;
  1576. if ((fsg->cmnd[4] & ~0x01) != 0) { // Mask away Prevent
  1577. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1578. return -EINVAL;
  1579. }
  1580. if (curlun->prevent_medium_removal && !prevent)
  1581. fsg_lun_fsync_sub(curlun);
  1582. curlun->prevent_medium_removal = prevent;
  1583. return 0;
  1584. }
  1585. static int do_read_format_capacities(struct fsg_dev *fsg,
  1586. struct fsg_buffhd *bh)
  1587. {
  1588. struct fsg_lun *curlun = fsg->curlun;
  1589. u8 *buf = (u8 *) bh->buf;
  1590. buf[0] = buf[1] = buf[2] = 0;
  1591. buf[3] = 8; // Only the Current/Maximum Capacity Descriptor
  1592. buf += 4;
  1593. put_unaligned_be32(curlun->num_sectors, &buf[0]);
  1594. /* Number of blocks */
  1595. put_unaligned_be32(curlun->blksize, &buf[4]); /* Block length */
  1596. buf[4] = 0x02; /* Current capacity */
  1597. return 12;
  1598. }
  1599. static int do_mode_select(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  1600. {
  1601. struct fsg_lun *curlun = fsg->curlun;
  1602. /* We don't support MODE SELECT */
  1603. curlun->sense_data = SS_INVALID_COMMAND;
  1604. return -EINVAL;
  1605. }
  1606. /*-------------------------------------------------------------------------*/
  1607. static int halt_bulk_in_endpoint(struct fsg_dev *fsg)
  1608. {
  1609. int rc;
  1610. rc = fsg_set_halt(fsg, fsg->bulk_in);
  1611. if (rc == -EAGAIN)
  1612. VDBG(fsg, "delayed bulk-in endpoint halt\n");
  1613. while (rc != 0) {
  1614. if (rc != -EAGAIN) {
  1615. WARNING(fsg, "usb_ep_set_halt -> %d\n", rc);
  1616. rc = 0;
  1617. break;
  1618. }
  1619. /* Wait for a short time and then try again */
  1620. if (msleep_interruptible(100) != 0)
  1621. return -EINTR;
  1622. rc = usb_ep_set_halt(fsg->bulk_in);
  1623. }
  1624. return rc;
  1625. }
  1626. static int wedge_bulk_in_endpoint(struct fsg_dev *fsg)
  1627. {
  1628. int rc;
  1629. DBG(fsg, "bulk-in set wedge\n");
  1630. rc = usb_ep_set_wedge(fsg->bulk_in);
  1631. if (rc == -EAGAIN)
  1632. VDBG(fsg, "delayed bulk-in endpoint wedge\n");
  1633. while (rc != 0) {
  1634. if (rc != -EAGAIN) {
  1635. WARNING(fsg, "usb_ep_set_wedge -> %d\n", rc);
  1636. rc = 0;
  1637. break;
  1638. }
  1639. /* Wait for a short time and then try again */
  1640. if (msleep_interruptible(100) != 0)
  1641. return -EINTR;
  1642. rc = usb_ep_set_wedge(fsg->bulk_in);
  1643. }
  1644. return rc;
  1645. }
  1646. static int throw_away_data(struct fsg_dev *fsg)
  1647. {
  1648. struct fsg_buffhd *bh;
  1649. u32 amount;
  1650. int rc;
  1651. while ((bh = fsg->next_buffhd_to_drain)->state != BUF_STATE_EMPTY ||
  1652. fsg->usb_amount_left > 0) {
  1653. /* Throw away the data in a filled buffer */
  1654. if (bh->state == BUF_STATE_FULL) {
  1655. smp_rmb();
  1656. bh->state = BUF_STATE_EMPTY;
  1657. fsg->next_buffhd_to_drain = bh->next;
  1658. /* A short packet or an error ends everything */
  1659. if (bh->outreq->actual < bh->bulk_out_intended_length ||
  1660. bh->outreq->status != 0) {
  1661. raise_exception(fsg, FSG_STATE_ABORT_BULK_OUT);
  1662. return -EINTR;
  1663. }
  1664. continue;
  1665. }
  1666. /* Try to submit another request if we need one */
  1667. bh = fsg->next_buffhd_to_fill;
  1668. if (bh->state == BUF_STATE_EMPTY && fsg->usb_amount_left > 0) {
  1669. amount = min(fsg->usb_amount_left,
  1670. (u32) mod_data.buflen);
  1671. /* Except at the end of the transfer, amount will be
  1672. * equal to the buffer size, which is divisible by
  1673. * the bulk-out maxpacket size.
  1674. */
  1675. set_bulk_out_req_length(fsg, bh, amount);
  1676. start_transfer(fsg, fsg->bulk_out, bh->outreq,
  1677. &bh->outreq_busy, &bh->state);
  1678. fsg->next_buffhd_to_fill = bh->next;
  1679. fsg->usb_amount_left -= amount;
  1680. continue;
  1681. }
  1682. /* Otherwise wait for something to happen */
  1683. rc = sleep_thread(fsg);
  1684. if (rc)
  1685. return rc;
  1686. }
  1687. return 0;
  1688. }
  1689. static int finish_reply(struct fsg_dev *fsg)
  1690. {
  1691. struct fsg_buffhd *bh = fsg->next_buffhd_to_fill;
  1692. int rc = 0;
  1693. switch (fsg->data_dir) {
  1694. case DATA_DIR_NONE:
  1695. break; // Nothing to send
  1696. /* If we don't know whether the host wants to read or write,
  1697. * this must be CB or CBI with an unknown command. We mustn't
  1698. * try to send or receive any data. So stall both bulk pipes
  1699. * if we can and wait for a reset. */
  1700. case DATA_DIR_UNKNOWN:
  1701. if (mod_data.can_stall) {
  1702. fsg_set_halt(fsg, fsg->bulk_out);
  1703. rc = halt_bulk_in_endpoint(fsg);
  1704. }
  1705. break;
  1706. /* All but the last buffer of data must have already been sent */
  1707. case DATA_DIR_TO_HOST:
  1708. if (fsg->data_size == 0)
  1709. ; // Nothing to send
  1710. /* If there's no residue, simply send the last buffer */
  1711. else if (fsg->residue == 0) {
  1712. bh->inreq->zero = 0;
  1713. start_transfer(fsg, fsg->bulk_in, bh->inreq,
  1714. &bh->inreq_busy, &bh->state);
  1715. fsg->next_buffhd_to_fill = bh->next;
  1716. }
  1717. /* There is a residue. For CB and CBI, simply mark the end
  1718. * of the data with a short packet. However, if we are
  1719. * allowed to stall, there was no data at all (residue ==
  1720. * data_size), and the command failed (invalid LUN or
  1721. * sense data is set), then halt the bulk-in endpoint
  1722. * instead. */
  1723. else if (!transport_is_bbb()) {
  1724. if (mod_data.can_stall &&
  1725. fsg->residue == fsg->data_size &&
  1726. (!fsg->curlun || fsg->curlun->sense_data != SS_NO_SENSE)) {
  1727. bh->state = BUF_STATE_EMPTY;
  1728. rc = halt_bulk_in_endpoint(fsg);
  1729. } else {
  1730. bh->inreq->zero = 1;
  1731. start_transfer(fsg, fsg->bulk_in, bh->inreq,
  1732. &bh->inreq_busy, &bh->state);
  1733. fsg->next_buffhd_to_fill = bh->next;
  1734. }
  1735. }
  1736. /*
  1737. * For Bulk-only, mark the end of the data with a short
  1738. * packet. If we are allowed to stall, halt the bulk-in
  1739. * endpoint. (Note: This violates the Bulk-Only Transport
  1740. * specification, which requires us to pad the data if we
  1741. * don't halt the endpoint. Presumably nobody will mind.)
  1742. */
  1743. else {
  1744. bh->inreq->zero = 1;
  1745. start_transfer(fsg, fsg->bulk_in, bh->inreq,
  1746. &bh->inreq_busy, &bh->state);
  1747. fsg->next_buffhd_to_fill = bh->next;
  1748. if (mod_data.can_stall)
  1749. rc = halt_bulk_in_endpoint(fsg);
  1750. }
  1751. break;
  1752. /* We have processed all we want from the data the host has sent.
  1753. * There may still be outstanding bulk-out requests. */
  1754. case DATA_DIR_FROM_HOST:
  1755. if (fsg->residue == 0)
  1756. ; // Nothing to receive
  1757. /* Did the host stop sending unexpectedly early? */
  1758. else if (fsg->short_packet_received) {
  1759. raise_exception(fsg, FSG_STATE_ABORT_BULK_OUT);
  1760. rc = -EINTR;
  1761. }
  1762. /* We haven't processed all the incoming data. Even though
  1763. * we may be allowed to stall, doing so would cause a race.
  1764. * The controller may already have ACK'ed all the remaining
  1765. * bulk-out packets, in which case the host wouldn't see a
  1766. * STALL. Not realizing the endpoint was halted, it wouldn't
  1767. * clear the halt -- leading to problems later on. */
  1768. #if 0
  1769. else if (mod_data.can_stall) {
  1770. fsg_set_halt(fsg, fsg->bulk_out);
  1771. raise_exception(fsg, FSG_STATE_ABORT_BULK_OUT);
  1772. rc = -EINTR;
  1773. }
  1774. #endif
  1775. /* We can't stall. Read in the excess data and throw it
  1776. * all away. */
  1777. else
  1778. rc = throw_away_data(fsg);
  1779. break;
  1780. }
  1781. return rc;
  1782. }
  1783. static int send_status(struct fsg_dev *fsg)
  1784. {
  1785. struct fsg_lun *curlun = fsg->curlun;
  1786. struct fsg_buffhd *bh;
  1787. int rc;
  1788. u8 status = US_BULK_STAT_OK;
  1789. u32 sd, sdinfo = 0;
  1790. /* Wait for the next buffer to become available */
  1791. bh = fsg->next_buffhd_to_fill;
  1792. while (bh->state != BUF_STATE_EMPTY) {
  1793. rc = sleep_thread(fsg);
  1794. if (rc)
  1795. return rc;
  1796. }
  1797. if (curlun) {
  1798. sd = curlun->sense_data;
  1799. sdinfo = curlun->sense_data_info;
  1800. } else if (fsg->bad_lun_okay)
  1801. sd = SS_NO_SENSE;
  1802. else
  1803. sd = SS_LOGICAL_UNIT_NOT_SUPPORTED;
  1804. if (fsg->phase_error) {
  1805. DBG(fsg, "sending phase-error status\n");
  1806. status = US_BULK_STAT_PHASE;
  1807. sd = SS_INVALID_COMMAND;
  1808. } else if (sd != SS_NO_SENSE) {
  1809. DBG(fsg, "sending command-failure status\n");
  1810. status = US_BULK_STAT_FAIL;
  1811. VDBG(fsg, " sense data: SK x%02x, ASC x%02x, ASCQ x%02x;"
  1812. " info x%x\n",
  1813. SK(sd), ASC(sd), ASCQ(sd), sdinfo);
  1814. }
  1815. if (transport_is_bbb()) {
  1816. struct bulk_cs_wrap *csw = bh->buf;
  1817. /* Store and send the Bulk-only CSW */
  1818. csw->Signature = cpu_to_le32(US_BULK_CS_SIGN);
  1819. csw->Tag = fsg->tag;
  1820. csw->Residue = cpu_to_le32(fsg->residue);
  1821. csw->Status = status;
  1822. bh->inreq->length = US_BULK_CS_WRAP_LEN;
  1823. bh->inreq->zero = 0;
  1824. start_transfer(fsg, fsg->bulk_in, bh->inreq,
  1825. &bh->inreq_busy, &bh->state);
  1826. } else if (mod_data.transport_type == USB_PR_CB) {
  1827. /* Control-Bulk transport has no status phase! */
  1828. return 0;
  1829. } else { // USB_PR_CBI
  1830. struct interrupt_data *buf = bh->buf;
  1831. /* Store and send the Interrupt data. UFI sends the ASC
  1832. * and ASCQ bytes. Everything else sends a Type (which
  1833. * is always 0) and the status Value. */
  1834. if (mod_data.protocol_type == USB_SC_UFI) {
  1835. buf->bType = ASC(sd);
  1836. buf->bValue = ASCQ(sd);
  1837. } else {
  1838. buf->bType = 0;
  1839. buf->bValue = status;
  1840. }
  1841. fsg->intreq->length = CBI_INTERRUPT_DATA_LEN;
  1842. fsg->intr_buffhd = bh; // Point to the right buffhd
  1843. fsg->intreq->buf = bh->inreq->buf;
  1844. fsg->intreq->context = bh;
  1845. start_transfer(fsg, fsg->intr_in, fsg->intreq,
  1846. &fsg->intreq_busy, &bh->state);
  1847. }
  1848. fsg->next_buffhd_to_fill = bh->next;
  1849. return 0;
  1850. }
  1851. /*-------------------------------------------------------------------------*/
  1852. /* Check whether the command is properly formed and whether its data size
  1853. * and direction agree with the values we already have. */
  1854. static int check_command(struct fsg_dev *fsg, int cmnd_size,
  1855. enum data_direction data_dir, unsigned int mask,
  1856. int needs_medium, const char *name)
  1857. {
  1858. int i;
  1859. int lun = fsg->cmnd[1] >> 5;
  1860. static const char dirletter[4] = {'u', 'o', 'i', 'n'};
  1861. char hdlen[20];
  1862. struct fsg_lun *curlun;
  1863. /* Adjust the expected cmnd_size for protocol encapsulation padding.
  1864. * Transparent SCSI doesn't pad. */
  1865. if (protocol_is_scsi())
  1866. ;
  1867. /* There's some disagreement as to whether RBC pads commands or not.
  1868. * We'll play it safe and accept either form. */
  1869. else if (mod_data.protocol_type == USB_SC_RBC) {
  1870. if (fsg->cmnd_size == 12)
  1871. cmnd_size = 12;
  1872. /* All the other protocols pad to 12 bytes */
  1873. } else
  1874. cmnd_size = 12;
  1875. hdlen[0] = 0;
  1876. if (fsg->data_dir != DATA_DIR_UNKNOWN)
  1877. sprintf(hdlen, ", H%c=%u", dirletter[(int) fsg->data_dir],
  1878. fsg->data_size);
  1879. VDBG(fsg, "SCSI command: %s; Dc=%d, D%c=%u; Hc=%d%s\n",
  1880. name, cmnd_size, dirletter[(int) data_dir],
  1881. fsg->data_size_from_cmnd, fsg->cmnd_size, hdlen);
  1882. /* We can't reply at all until we know the correct data direction
  1883. * and size. */
  1884. if (fsg->data_size_from_cmnd == 0)
  1885. data_dir = DATA_DIR_NONE;
  1886. if (fsg->data_dir == DATA_DIR_UNKNOWN) { // CB or CBI
  1887. fsg->data_dir = data_dir;
  1888. fsg->data_size = fsg->data_size_from_cmnd;
  1889. } else { // Bulk-only
  1890. if (fsg->data_size < fsg->data_size_from_cmnd) {
  1891. /* Host data size < Device data size is a phase error.
  1892. * Carry out the command, but only transfer as much
  1893. * as we are allowed. */
  1894. fsg->data_size_from_cmnd = fsg->data_size;
  1895. fsg->phase_error = 1;
  1896. }
  1897. }
  1898. fsg->residue = fsg->usb_amount_left = fsg->data_size;
  1899. /* Conflicting data directions is a phase error */
  1900. if (fsg->data_dir != data_dir && fsg->data_size_from_cmnd > 0) {
  1901. fsg->phase_error = 1;
  1902. return -EINVAL;
  1903. }
  1904. /* Verify the length of the command itself */
  1905. if (cmnd_size != fsg->cmnd_size) {
  1906. /* Special case workaround: There are plenty of buggy SCSI
  1907. * implementations. Many have issues with cbw->Length
  1908. * field passing a wrong command size. For those cases we
  1909. * always try to work around the problem by using the length
  1910. * sent by the host side provided it is at least as large
  1911. * as the correct command length.
  1912. * Examples of such cases would be MS-Windows, which issues
  1913. * REQUEST SENSE with cbw->Length == 12 where it should
  1914. * be 6, and xbox360 issuing INQUIRY, TEST UNIT READY and
  1915. * REQUEST SENSE with cbw->Length == 10 where it should
  1916. * be 6 as well.
  1917. */
  1918. if (cmnd_size <= fsg->cmnd_size) {
  1919. DBG(fsg, "%s is buggy! Expected length %d "
  1920. "but we got %d\n", name,
  1921. cmnd_size, fsg->cmnd_size);
  1922. cmnd_size = fsg->cmnd_size;
  1923. } else {
  1924. fsg->phase_error = 1;
  1925. return -EINVAL;
  1926. }
  1927. }
  1928. /* Check that the LUN values are consistent */
  1929. if (transport_is_bbb()) {
  1930. if (fsg->lun != lun)
  1931. DBG(fsg, "using LUN %d from CBW, "
  1932. "not LUN %d from CDB\n",
  1933. fsg->lun, lun);
  1934. }
  1935. /* Check the LUN */
  1936. curlun = fsg->curlun;
  1937. if (curlun) {
  1938. if (fsg->cmnd[0] != REQUEST_SENSE) {
  1939. curlun->sense_data = SS_NO_SENSE;
  1940. curlun->sense_data_info = 0;
  1941. curlun->info_valid = 0;
  1942. }
  1943. } else {
  1944. fsg->bad_lun_okay = 0;
  1945. /* INQUIRY and REQUEST SENSE commands are explicitly allowed
  1946. * to use unsupported LUNs; all others may not. */
  1947. if (fsg->cmnd[0] != INQUIRY &&
  1948. fsg->cmnd[0] != REQUEST_SENSE) {
  1949. DBG(fsg, "unsupported LUN %d\n", fsg->lun);
  1950. return -EINVAL;
  1951. }
  1952. }
  1953. /* If a unit attention condition exists, only INQUIRY and
  1954. * REQUEST SENSE commands are allowed; anything else must fail. */
  1955. if (curlun && curlun->unit_attention_data != SS_NO_SENSE &&
  1956. fsg->cmnd[0] != INQUIRY &&
  1957. fsg->cmnd[0] != REQUEST_SENSE) {
  1958. curlun->sense_data = curlun->unit_attention_data;
  1959. curlun->unit_attention_data = SS_NO_SENSE;
  1960. return -EINVAL;
  1961. }
  1962. /* Check that only command bytes listed in the mask are non-zero */
  1963. fsg->cmnd[1] &= 0x1f; // Mask away the LUN
  1964. for (i = 1; i < cmnd_size; ++i) {
  1965. if (fsg->cmnd[i] && !(mask & (1 << i))) {
  1966. if (curlun)
  1967. curlun->sense_data = SS_INVALID_FIELD_IN_CDB;
  1968. return -EINVAL;
  1969. }
  1970. }
  1971. /* If the medium isn't mounted and the command needs to access
  1972. * it, return an error. */
  1973. if (curlun && !fsg_lun_is_open(curlun) && needs_medium) {
  1974. curlun->sense_data = SS_MEDIUM_NOT_PRESENT;
  1975. return -EINVAL;
  1976. }
  1977. return 0;
  1978. }
  1979. /* wrapper of check_command for data size in blocks handling */
  1980. static int check_command_size_in_blocks(struct fsg_dev *fsg, int cmnd_size,
  1981. enum data_direction data_dir, unsigned int mask,
  1982. int needs_medium, const char *name)
  1983. {
  1984. if (fsg->curlun)
  1985. fsg->data_size_from_cmnd <<= fsg->curlun->blkbits;
  1986. return check_command(fsg, cmnd_size, data_dir,
  1987. mask, needs_medium, name);
  1988. }
  1989. static int do_scsi_command(struct fsg_dev *fsg)
  1990. {
  1991. struct fsg_buffhd *bh;
  1992. int rc;
  1993. int reply = -EINVAL;
  1994. int i;
  1995. static char unknown[16];
  1996. dump_cdb(fsg);
  1997. /* Wait for the next buffer to become available for data or status */
  1998. bh = fsg->next_buffhd_to_drain = fsg->next_buffhd_to_fill;
  1999. while (bh->state != BUF_STATE_EMPTY) {
  2000. rc = sleep_thread(fsg);
  2001. if (rc)
  2002. return rc;
  2003. }
  2004. fsg->phase_error = 0;
  2005. fsg->short_packet_received = 0;
  2006. down_read(&fsg->filesem); // We're using the backing file
  2007. switch (fsg->cmnd[0]) {
  2008. case INQUIRY:
  2009. fsg->data_size_from_cmnd = fsg->cmnd[4];
  2010. if ((reply = check_command(fsg, 6, DATA_DIR_TO_HOST,
  2011. (1<<4), 0,
  2012. "INQUIRY")) == 0)
  2013. reply = do_inquiry(fsg, bh);
  2014. break;
  2015. case MODE_SELECT:
  2016. fsg->data_size_from_cmnd = fsg->cmnd[4];
  2017. if ((reply = check_command(fsg, 6, DATA_DIR_FROM_HOST,
  2018. (1<<1) | (1<<4), 0,
  2019. "MODE SELECT(6)")) == 0)
  2020. reply = do_mode_select(fsg, bh);
  2021. break;
  2022. case MODE_SELECT_10:
  2023. fsg->data_size_from_cmnd = get_unaligned_be16(&fsg->cmnd[7]);
  2024. if ((reply = check_command(fsg, 10, DATA_DIR_FROM_HOST,
  2025. (1<<1) | (3<<7), 0,
  2026. "MODE SELECT(10)")) == 0)
  2027. reply = do_mode_select(fsg, bh);
  2028. break;
  2029. case MODE_SENSE:
  2030. fsg->data_size_from_cmnd = fsg->cmnd[4];
  2031. if ((reply = check_command(fsg, 6, DATA_DIR_TO_HOST,
  2032. (1<<1) | (1<<2) | (1<<4), 0,
  2033. "MODE SENSE(6)")) == 0)
  2034. reply = do_mode_sense(fsg, bh);
  2035. break;
  2036. case MODE_SENSE_10:
  2037. fsg->data_size_from_cmnd = get_unaligned_be16(&fsg->cmnd[7]);
  2038. if ((reply = check_command(fsg, 10, DATA_DIR_TO_HOST,
  2039. (1<<1) | (1<<2) | (3<<7), 0,
  2040. "MODE SENSE(10)")) == 0)
  2041. reply = do_mode_sense(fsg, bh);
  2042. break;
  2043. case ALLOW_MEDIUM_REMOVAL:
  2044. fsg->data_size_from_cmnd = 0;
  2045. if ((reply = check_command(fsg, 6, DATA_DIR_NONE,
  2046. (1<<4), 0,
  2047. "PREVENT-ALLOW MEDIUM REMOVAL")) == 0)
  2048. reply = do_prevent_allow(fsg);
  2049. break;
  2050. case READ_6:
  2051. i = fsg->cmnd[4];
  2052. fsg->data_size_from_cmnd = (i == 0) ? 256 : i;
  2053. if ((reply = check_command_size_in_blocks(fsg, 6,
  2054. DATA_DIR_TO_HOST,
  2055. (7<<1) | (1<<4), 1,
  2056. "READ(6)")) == 0)
  2057. reply = do_read(fsg);
  2058. break;
  2059. case READ_10:
  2060. fsg->data_size_from_cmnd = get_unaligned_be16(&fsg->cmnd[7]);
  2061. if ((reply = check_command_size_in_blocks(fsg, 10,
  2062. DATA_DIR_TO_HOST,
  2063. (1<<1) | (0xf<<2) | (3<<7), 1,
  2064. "READ(10)")) == 0)
  2065. reply = do_read(fsg);
  2066. break;
  2067. case READ_12:
  2068. fsg->data_size_from_cmnd = get_unaligned_be32(&fsg->cmnd[6]);
  2069. if ((reply = check_command_size_in_blocks(fsg, 12,
  2070. DATA_DIR_TO_HOST,
  2071. (1<<1) | (0xf<<2) | (0xf<<6), 1,
  2072. "READ(12)")) == 0)
  2073. reply = do_read(fsg);
  2074. break;
  2075. case READ_CAPACITY:
  2076. fsg->data_size_from_cmnd = 8;
  2077. if ((reply = check_command(fsg, 10, DATA_DIR_TO_HOST,
  2078. (0xf<<2) | (1<<8), 1,
  2079. "READ CAPACITY")) == 0)
  2080. reply = do_read_capacity(fsg, bh);
  2081. break;
  2082. case READ_HEADER:
  2083. if (!mod_data.cdrom)
  2084. goto unknown_cmnd;
  2085. fsg->data_size_from_cmnd = get_unaligned_be16(&fsg->cmnd[7]);
  2086. if ((reply = check_command(fsg, 10, DATA_DIR_TO_HOST,
  2087. (3<<7) | (0x1f<<1), 1,
  2088. "READ HEADER")) == 0)
  2089. reply = do_read_header(fsg, bh);
  2090. break;
  2091. case READ_TOC:
  2092. if (!mod_data.cdrom)
  2093. goto unknown_cmnd;
  2094. fsg->data_size_from_cmnd = get_unaligned_be16(&fsg->cmnd[7]);
  2095. if ((reply = check_command(fsg, 10, DATA_DIR_TO_HOST,
  2096. (7<<6) | (1<<1), 1,
  2097. "READ TOC")) == 0)
  2098. reply = do_read_toc(fsg, bh);
  2099. break;
  2100. case READ_FORMAT_CAPACITIES:
  2101. fsg->data_size_from_cmnd = get_unaligned_be16(&fsg->cmnd[7]);
  2102. if ((reply = check_command(fsg, 10, DATA_DIR_TO_HOST,
  2103. (3<<7), 1,
  2104. "READ FORMAT CAPACITIES")) == 0)
  2105. reply = do_read_format_capacities(fsg, bh);
  2106. break;
  2107. case REQUEST_SENSE:
  2108. fsg->data_size_from_cmnd = fsg->cmnd[4];
  2109. if ((reply = check_command(fsg, 6, DATA_DIR_TO_HOST,
  2110. (1<<4), 0,
  2111. "REQUEST SENSE")) == 0)
  2112. reply = do_request_sense(fsg, bh);
  2113. break;
  2114. case START_STOP:
  2115. fsg->data_size_from_cmnd = 0;
  2116. if ((reply = check_command(fsg, 6, DATA_DIR_NONE,
  2117. (1<<1) | (1<<4), 0,
  2118. "START-STOP UNIT")) == 0)
  2119. reply = do_start_stop(fsg);
  2120. break;
  2121. case SYNCHRONIZE_CACHE:
  2122. fsg->data_size_from_cmnd = 0;
  2123. if ((reply = check_command(fsg, 10, DATA_DIR_NONE,
  2124. (0xf<<2) | (3<<7), 1,
  2125. "SYNCHRONIZE CACHE")) == 0)
  2126. reply = do_synchronize_cache(fsg);
  2127. break;
  2128. case TEST_UNIT_READY:
  2129. fsg->data_size_from_cmnd = 0;
  2130. reply = check_command(fsg, 6, DATA_DIR_NONE,
  2131. 0, 1,
  2132. "TEST UNIT READY");
  2133. break;
  2134. /* Although optional, this command is used by MS-Windows. We
  2135. * support a minimal version: BytChk must be 0. */
  2136. case VERIFY:
  2137. fsg->data_size_from_cmnd = 0;
  2138. if ((reply = check_command(fsg, 10, DATA_DIR_NONE,
  2139. (1<<1) | (0xf<<2) | (3<<7), 1,
  2140. "VERIFY")) == 0)
  2141. reply = do_verify(fsg);
  2142. break;
  2143. case WRITE_6:
  2144. i = fsg->cmnd[4];
  2145. fsg->data_size_from_cmnd = (i == 0) ? 256 : i;
  2146. if ((reply = check_command_size_in_blocks(fsg, 6,
  2147. DATA_DIR_FROM_HOST,
  2148. (7<<1) | (1<<4), 1,
  2149. "WRITE(6)")) == 0)
  2150. reply = do_write(fsg);
  2151. break;
  2152. case WRITE_10:
  2153. fsg->data_size_from_cmnd = get_unaligned_be16(&fsg->cmnd[7]);
  2154. if ((reply = check_command_size_in_blocks(fsg, 10,
  2155. DATA_DIR_FROM_HOST,
  2156. (1<<1) | (0xf<<2) | (3<<7), 1,
  2157. "WRITE(10)")) == 0)
  2158. reply = do_write(fsg);
  2159. break;
  2160. case WRITE_12:
  2161. fsg->data_size_from_cmnd = get_unaligned_be32(&fsg->cmnd[6]);
  2162. if ((reply = check_command_size_in_blocks(fsg, 12,
  2163. DATA_DIR_FROM_HOST,
  2164. (1<<1) | (0xf<<2) | (0xf<<6), 1,
  2165. "WRITE(12)")) == 0)
  2166. reply = do_write(fsg);
  2167. break;
  2168. /* Some mandatory commands that we recognize but don't implement.
  2169. * They don't mean much in this setting. It's left as an exercise
  2170. * for anyone interested to implement RESERVE and RELEASE in terms
  2171. * of Posix locks. */
  2172. case FORMAT_UNIT:
  2173. case RELEASE:
  2174. case RESERVE:
  2175. case SEND_DIAGNOSTIC:
  2176. // Fall through
  2177. default:
  2178. unknown_cmnd:
  2179. fsg->data_size_from_cmnd = 0;
  2180. sprintf(unknown, "Unknown x%02x", fsg->cmnd[0]);
  2181. if ((reply = check_command(fsg, fsg->cmnd_size,
  2182. DATA_DIR_UNKNOWN, ~0, 0, unknown)) == 0) {
  2183. fsg->curlun->sense_data = SS_INVALID_COMMAND;
  2184. reply = -EINVAL;
  2185. }
  2186. break;
  2187. }
  2188. up_read(&fsg->filesem);
  2189. if (reply == -EINTR || signal_pending(current))
  2190. return -EINTR;
  2191. /* Set up the single reply buffer for finish_reply() */
  2192. if (reply == -EINVAL)
  2193. reply = 0; // Error reply length
  2194. if (reply >= 0 && fsg->data_dir == DATA_DIR_TO_HOST) {
  2195. reply = min((u32) reply, fsg->data_size_from_cmnd);
  2196. bh->inreq->length = reply;
  2197. bh->state = BUF_STATE_FULL;
  2198. fsg->residue -= reply;
  2199. } // Otherwise it's already set
  2200. return 0;
  2201. }
  2202. /*-------------------------------------------------------------------------*/
  2203. static int received_cbw(struct fsg_dev *fsg, struct fsg_buffhd *bh)
  2204. {
  2205. struct usb_request *req = bh->outreq;
  2206. struct bulk_cb_wrap *cbw = req->buf;
  2207. /* Was this a real packet? Should it be ignored? */
  2208. if (req->status || test_bit(IGNORE_BULK_OUT, &fsg->atomic_bitflags))
  2209. return -EINVAL;
  2210. /* Is the CBW valid? */
  2211. if (req->actual != US_BULK_CB_WRAP_LEN ||
  2212. cbw->Signature != cpu_to_le32(
  2213. US_BULK_CB_SIGN)) {
  2214. DBG(fsg, "invalid CBW: len %u sig 0x%x\n",
  2215. req->actual,
  2216. le32_to_cpu(cbw->Signature));
  2217. /* The Bulk-only spec says we MUST stall the IN endpoint
  2218. * (6.6.1), so it's unavoidable. It also says we must
  2219. * retain this state until the next reset, but there's
  2220. * no way to tell the controller driver it should ignore
  2221. * Clear-Feature(HALT) requests.
  2222. *
  2223. * We aren't required to halt the OUT endpoint; instead
  2224. * we can simply accept and discard any data received
  2225. * until the next reset. */
  2226. wedge_bulk_in_endpoint(fsg);
  2227. set_bit(IGNORE_BULK_OUT, &fsg->atomic_bitflags);
  2228. return -EINVAL;
  2229. }
  2230. /* Is the CBW meaningful? */
  2231. if (cbw->Lun >= FSG_MAX_LUNS || cbw->Flags & ~US_BULK_FLAG_IN ||
  2232. cbw->Length <= 0 || cbw->Length > MAX_COMMAND_SIZE) {
  2233. DBG(fsg, "non-meaningful CBW: lun = %u, flags = 0x%x, "
  2234. "cmdlen %u\n",
  2235. cbw->Lun, cbw->Flags, cbw->Length);
  2236. /* We can do anything we want here, so let's stall the
  2237. * bulk pipes if we are allowed to. */
  2238. if (mod_data.can_stall) {
  2239. fsg_set_halt(fsg, fsg->bulk_out);
  2240. halt_bulk_in_endpoint(fsg);
  2241. }
  2242. return -EINVAL;
  2243. }
  2244. /* Save the command for later */
  2245. fsg->cmnd_size = cbw->Length;
  2246. memcpy(fsg->cmnd, cbw->CDB, fsg->cmnd_size);
  2247. if (cbw->Flags & US_BULK_FLAG_IN)
  2248. fsg->data_dir = DATA_DIR_TO_HOST;
  2249. else
  2250. fsg->data_dir = DATA_DIR_FROM_HOST;
  2251. fsg->data_size = le32_to_cpu(cbw->DataTransferLength);
  2252. if (fsg->data_size == 0)
  2253. fsg->data_dir = DATA_DIR_NONE;
  2254. fsg->lun = cbw->Lun;
  2255. fsg->tag = cbw->Tag;
  2256. return 0;
  2257. }
  2258. static int get_next_command(struct fsg_dev *fsg)
  2259. {
  2260. struct fsg_buffhd *bh;
  2261. int rc = 0;
  2262. if (transport_is_bbb()) {
  2263. /* Wait for the next buffer to become available */
  2264. bh = fsg->next_buffhd_to_fill;
  2265. while (bh->state != BUF_STATE_EMPTY) {
  2266. rc = sleep_thread(fsg);
  2267. if (rc)
  2268. return rc;
  2269. }
  2270. /* Queue a request to read a Bulk-only CBW */
  2271. set_bulk_out_req_length(fsg, bh, US_BULK_CB_WRAP_LEN);
  2272. start_transfer(fsg, fsg->bulk_out, bh->outreq,
  2273. &bh->outreq_busy, &bh->state);
  2274. /* We will drain the buffer in software, which means we
  2275. * can reuse it for the next filling. No need to advance
  2276. * next_buffhd_to_fill. */
  2277. /* Wait for the CBW to arrive */
  2278. while (bh->state != BUF_STATE_FULL) {
  2279. rc = sleep_thread(fsg);
  2280. if (rc)
  2281. return rc;
  2282. }
  2283. smp_rmb();
  2284. rc = received_cbw(fsg, bh);
  2285. bh->state = BUF_STATE_EMPTY;
  2286. } else { // USB_PR_CB or USB_PR_CBI
  2287. /* Wait for the next command to arrive */
  2288. while (fsg->cbbuf_cmnd_size == 0) {
  2289. rc = sleep_thread(fsg);
  2290. if (rc)
  2291. return rc;
  2292. }
  2293. /* Is the previous status interrupt request still busy?
  2294. * The host is allowed to skip reading the status,
  2295. * so we must cancel it. */
  2296. if (fsg->intreq_busy)
  2297. usb_ep_dequeue(fsg->intr_in, fsg->intreq);
  2298. /* Copy the command and mark the buffer empty */
  2299. fsg->data_dir = DATA_DIR_UNKNOWN;
  2300. spin_lock_irq(&fsg->lock);
  2301. fsg->cmnd_size = fsg->cbbuf_cmnd_size;
  2302. memcpy(fsg->cmnd, fsg->cbbuf_cmnd, fsg->cmnd_size);
  2303. fsg->cbbuf_cmnd_size = 0;
  2304. spin_unlock_irq(&fsg->lock);
  2305. /* Use LUN from the command */
  2306. fsg->lun = fsg->cmnd[1] >> 5;
  2307. }
  2308. /* Update current lun */
  2309. if (fsg->lun >= 0 && fsg->lun < fsg->nluns)
  2310. fsg->curlun = &fsg->luns[fsg->lun];
  2311. else
  2312. fsg->curlun = NULL;
  2313. return rc;
  2314. }
  2315. /*-------------------------------------------------------------------------*/
  2316. static int enable_endpoint(struct fsg_dev *fsg, struct usb_ep *ep,
  2317. const struct usb_endpoint_descriptor *d)
  2318. {
  2319. int rc;
  2320. ep->driver_data = fsg;
  2321. ep->desc = d;
  2322. rc = usb_ep_enable(ep);
  2323. if (rc)
  2324. ERROR(fsg, "can't enable %s, result %d\n", ep->name, rc);
  2325. return rc;
  2326. }
  2327. static int alloc_request(struct fsg_dev *fsg, struct usb_ep *ep,
  2328. struct usb_request **preq)
  2329. {
  2330. *preq = usb_ep_alloc_request(ep, GFP_ATOMIC);
  2331. if (*preq)
  2332. return 0;
  2333. ERROR(fsg, "can't allocate request for %s\n", ep->name);
  2334. return -ENOMEM;
  2335. }
  2336. /*
  2337. * Reset interface setting and re-init endpoint state (toggle etc).
  2338. * Call with altsetting < 0 to disable the interface. The only other
  2339. * available altsetting is 0, which enables the interface.
  2340. */
  2341. static int do_set_interface(struct fsg_dev *fsg, int altsetting)
  2342. {
  2343. int rc = 0;
  2344. int i;
  2345. const struct usb_endpoint_descriptor *d;
  2346. if (fsg->running)
  2347. DBG(fsg, "reset interface\n");
  2348. reset:
  2349. /* Deallocate the requests */
  2350. for (i = 0; i < fsg_num_buffers; ++i) {
  2351. struct fsg_buffhd *bh = &fsg->buffhds[i];
  2352. if (bh->inreq) {
  2353. usb_ep_free_request(fsg->bulk_in, bh->inreq);
  2354. bh->inreq = NULL;
  2355. }
  2356. if (bh->outreq) {
  2357. usb_ep_free_request(fsg->bulk_out, bh->outreq);
  2358. bh->outreq = NULL;
  2359. }
  2360. }
  2361. if (fsg->intreq) {
  2362. usb_ep_free_request(fsg->intr_in, fsg->intreq);
  2363. fsg->intreq = NULL;
  2364. }
  2365. /* Disable the endpoints */
  2366. if (fsg->bulk_in_enabled) {
  2367. usb_ep_disable(fsg->bulk_in);
  2368. fsg->bulk_in_enabled = 0;
  2369. }
  2370. if (fsg->bulk_out_enabled) {
  2371. usb_ep_disable(fsg->bulk_out);
  2372. fsg->bulk_out_enabled = 0;
  2373. }
  2374. if (fsg->intr_in_enabled) {
  2375. usb_ep_disable(fsg->intr_in);
  2376. fsg->intr_in_enabled = 0;
  2377. }
  2378. fsg->running = 0;
  2379. if (altsetting < 0 || rc != 0)
  2380. return rc;
  2381. DBG(fsg, "set interface %d\n", altsetting);
  2382. /* Enable the endpoints */
  2383. d = fsg_ep_desc(fsg->gadget,
  2384. &fsg_fs_bulk_in_desc, &fsg_hs_bulk_in_desc,
  2385. &fsg_ss_bulk_in_desc);
  2386. if ((rc = enable_endpoint(fsg, fsg->bulk_in, d)) != 0)
  2387. goto reset;
  2388. fsg->bulk_in_enabled = 1;
  2389. d = fsg_ep_desc(fsg->gadget,
  2390. &fsg_fs_bulk_out_desc, &fsg_hs_bulk_out_desc,
  2391. &fsg_ss_bulk_out_desc);
  2392. if ((rc = enable_endpoint(fsg, fsg->bulk_out, d)) != 0)
  2393. goto reset;
  2394. fsg->bulk_out_enabled = 1;
  2395. fsg->bulk_out_maxpacket = usb_endpoint_maxp(d);
  2396. clear_bit(IGNORE_BULK_OUT, &fsg->atomic_bitflags);
  2397. if (transport_is_cbi()) {
  2398. d = fsg_ep_desc(fsg->gadget,
  2399. &fsg_fs_intr_in_desc, &fsg_hs_intr_in_desc,
  2400. &fsg_ss_intr_in_desc);
  2401. if ((rc = enable_endpoint(fsg, fsg->intr_in, d)) != 0)
  2402. goto reset;
  2403. fsg->intr_in_enabled = 1;
  2404. }
  2405. /* Allocate the requests */
  2406. for (i = 0; i < fsg_num_buffers; ++i) {
  2407. struct fsg_buffhd *bh = &fsg->buffhds[i];
  2408. if ((rc = alloc_request(fsg, fsg->bulk_in, &bh->inreq)) != 0)
  2409. goto reset;
  2410. if ((rc = alloc_request(fsg, fsg->bulk_out, &bh->outreq)) != 0)
  2411. goto reset;
  2412. bh->inreq->buf = bh->outreq->buf = bh->buf;
  2413. bh->inreq->context = bh->outreq->context = bh;
  2414. bh->inreq->complete = bulk_in_complete;
  2415. bh->outreq->complete = bulk_out_complete;
  2416. }
  2417. if (transport_is_cbi()) {
  2418. if ((rc = alloc_request(fsg, fsg->intr_in, &fsg->intreq)) != 0)
  2419. goto reset;
  2420. fsg->intreq->complete = intr_in_complete;
  2421. }
  2422. fsg->running = 1;
  2423. for (i = 0; i < fsg->nluns; ++i)
  2424. fsg->luns[i].unit_attention_data = SS_RESET_OCCURRED;
  2425. return rc;
  2426. }
  2427. /*
  2428. * Change our operational configuration. This code must agree with the code
  2429. * that returns config descriptors, and with interface altsetting code.
  2430. *
  2431. * It's also responsible for power management interactions. Some
  2432. * configurations might not work with our current power sources.
  2433. * For now we just assume the gadget is always self-powered.
  2434. */
  2435. static int do_set_config(struct fsg_dev *fsg, u8 new_config)
  2436. {
  2437. int rc = 0;
  2438. /* Disable the single interface */
  2439. if (fsg->config != 0) {
  2440. DBG(fsg, "reset config\n");
  2441. fsg->config = 0;
  2442. rc = do_set_interface(fsg, -1);
  2443. }
  2444. /* Enable the interface */
  2445. if (new_config != 0) {
  2446. fsg->config = new_config;
  2447. if ((rc = do_set_interface(fsg, 0)) != 0)
  2448. fsg->config = 0; // Reset on errors
  2449. else
  2450. INFO(fsg, "%s config #%d\n",
  2451. usb_speed_string(fsg->gadget->speed),
  2452. fsg->config);
  2453. }
  2454. return rc;
  2455. }
  2456. /*-------------------------------------------------------------------------*/
  2457. static void handle_exception(struct fsg_dev *fsg)
  2458. {
  2459. siginfo_t info;
  2460. int sig;
  2461. int i;
  2462. int num_active;
  2463. struct fsg_buffhd *bh;
  2464. enum fsg_state old_state;
  2465. u8 new_config;
  2466. struct fsg_lun *curlun;
  2467. unsigned int exception_req_tag;
  2468. int rc;
  2469. /* Clear the existing signals. Anything but SIGUSR1 is converted
  2470. * into a high-priority EXIT exception. */
  2471. for (;;) {
  2472. sig = dequeue_signal_lock(current, &current->blocked, &info);
  2473. if (!sig)
  2474. break;
  2475. if (sig != SIGUSR1) {
  2476. if (fsg->state < FSG_STATE_EXIT)
  2477. DBG(fsg, "Main thread exiting on signal\n");
  2478. raise_exception(fsg, FSG_STATE_EXIT);
  2479. }
  2480. }
  2481. /* Cancel all the pending transfers */
  2482. if (fsg->intreq_busy)
  2483. usb_ep_dequeue(fsg->intr_in, fsg->intreq);
  2484. for (i = 0; i < fsg_num_buffers; ++i) {
  2485. bh = &fsg->buffhds[i];
  2486. if (bh->inreq_busy)
  2487. usb_ep_dequeue(fsg->bulk_in, bh->inreq);
  2488. if (bh->outreq_busy)
  2489. usb_ep_dequeue(fsg->bulk_out, bh->outreq);
  2490. }
  2491. /* Wait until everything is idle */
  2492. for (;;) {
  2493. num_active = fsg->intreq_busy;
  2494. for (i = 0; i < fsg_num_buffers; ++i) {
  2495. bh = &fsg->buffhds[i];
  2496. num_active += bh->inreq_busy + bh->outreq_busy;
  2497. }
  2498. if (num_active == 0)
  2499. break;
  2500. if (sleep_thread(fsg))
  2501. return;
  2502. }
  2503. /* Clear out the controller's fifos */
  2504. if (fsg->bulk_in_enabled)
  2505. usb_ep_fifo_flush(fsg->bulk_in);
  2506. if (fsg->bulk_out_enabled)
  2507. usb_ep_fifo_flush(fsg->bulk_out);
  2508. if (fsg->intr_in_enabled)
  2509. usb_ep_fifo_flush(fsg->intr_in);
  2510. /* Reset the I/O buffer states and pointers, the SCSI
  2511. * state, and the exception. Then invoke the handler. */
  2512. spin_lock_irq(&fsg->lock);
  2513. for (i = 0; i < fsg_num_buffers; ++i) {
  2514. bh = &fsg->buffhds[i];
  2515. bh->state = BUF_STATE_EMPTY;
  2516. }
  2517. fsg->next_buffhd_to_fill = fsg->next_buffhd_to_drain =
  2518. &fsg->buffhds[0];
  2519. exception_req_tag = fsg->exception_req_tag;
  2520. new_config = fsg->new_config;
  2521. old_state = fsg->state;
  2522. if (old_state == FSG_STATE_ABORT_BULK_OUT)
  2523. fsg->state = FSG_STATE_STATUS_PHASE;
  2524. else {
  2525. for (i = 0; i < fsg->nluns; ++i) {
  2526. curlun = &fsg->luns[i];
  2527. curlun->prevent_medium_removal = 0;
  2528. curlun->sense_data = curlun->unit_attention_data =
  2529. SS_NO_SENSE;
  2530. curlun->sense_data_info = 0;
  2531. curlun->info_valid = 0;
  2532. }
  2533. fsg->state = FSG_STATE_IDLE;
  2534. }
  2535. spin_unlock_irq(&fsg->lock);
  2536. /* Carry out any extra actions required for the exception */
  2537. switch (old_state) {
  2538. default:
  2539. break;
  2540. case FSG_STATE_ABORT_BULK_OUT:
  2541. send_status(fsg);
  2542. spin_lock_irq(&fsg->lock);
  2543. if (fsg->state == FSG_STATE_STATUS_PHASE)
  2544. fsg->state = FSG_STATE_IDLE;
  2545. spin_unlock_irq(&fsg->lock);
  2546. break;
  2547. case FSG_STATE_RESET:
  2548. /* In case we were forced against our will to halt a
  2549. * bulk endpoint, clear the halt now. (The SuperH UDC
  2550. * requires this.) */
  2551. if (test_and_clear_bit(IGNORE_BULK_OUT, &fsg->atomic_bitflags))
  2552. usb_ep_clear_halt(fsg->bulk_in);
  2553. if (transport_is_bbb()) {
  2554. if (fsg->ep0_req_tag == exception_req_tag)
  2555. ep0_queue(fsg); // Complete the status stage
  2556. } else if (transport_is_cbi())
  2557. send_status(fsg); // Status by interrupt pipe
  2558. /* Technically this should go here, but it would only be
  2559. * a waste of time. Ditto for the INTERFACE_CHANGE and
  2560. * CONFIG_CHANGE cases. */
  2561. // for (i = 0; i < fsg->nluns; ++i)
  2562. // fsg->luns[i].unit_attention_data = SS_RESET_OCCURRED;
  2563. break;
  2564. case FSG_STATE_INTERFACE_CHANGE:
  2565. rc = do_set_interface(fsg, 0);
  2566. if (fsg->ep0_req_tag != exception_req_tag)
  2567. break;
  2568. if (rc != 0) // STALL on errors
  2569. fsg_set_halt(fsg, fsg->ep0);
  2570. else // Complete the status stage
  2571. ep0_queue(fsg);
  2572. break;
  2573. case FSG_STATE_CONFIG_CHANGE:
  2574. rc = do_set_config(fsg, new_config);
  2575. if (fsg->ep0_req_tag != exception_req_tag)
  2576. break;
  2577. if (rc != 0) // STALL on errors
  2578. fsg_set_halt(fsg, fsg->ep0);
  2579. else // Complete the status stage
  2580. ep0_queue(fsg);
  2581. break;
  2582. case FSG_STATE_DISCONNECT:
  2583. for (i = 0; i < fsg->nluns; ++i)
  2584. fsg_lun_fsync_sub(fsg->luns + i);
  2585. do_set_config(fsg, 0); // Unconfigured state
  2586. break;
  2587. case FSG_STATE_EXIT:
  2588. case FSG_STATE_TERMINATED:
  2589. do_set_config(fsg, 0); // Free resources
  2590. spin_lock_irq(&fsg->lock);
  2591. fsg->state = FSG_STATE_TERMINATED; // Stop the thread
  2592. spin_unlock_irq(&fsg->lock);
  2593. break;
  2594. }
  2595. }
  2596. /*-------------------------------------------------------------------------*/
  2597. static int fsg_main_thread(void *fsg_)
  2598. {
  2599. struct fsg_dev *fsg = fsg_;
  2600. /* Allow the thread to be killed by a signal, but set the signal mask
  2601. * to block everything but INT, TERM, KILL, and USR1. */
  2602. allow_signal(SIGINT);
  2603. allow_signal(SIGTERM);
  2604. allow_signal(SIGKILL);
  2605. allow_signal(SIGUSR1);
  2606. /* Allow the thread to be frozen */
  2607. set_freezable();
  2608. /* Arrange for userspace references to be interpreted as kernel
  2609. * pointers. That way we can pass a kernel pointer to a routine
  2610. * that expects a __user pointer and it will work okay. */
  2611. set_fs(get_ds());
  2612. /* The main loop */
  2613. while (fsg->state != FSG_STATE_TERMINATED) {
  2614. if (exception_in_progress(fsg) || signal_pending(current)) {
  2615. handle_exception(fsg);
  2616. continue;
  2617. }
  2618. if (!fsg->running) {
  2619. sleep_thread(fsg);
  2620. continue;
  2621. }
  2622. if (get_next_command(fsg))
  2623. continue;
  2624. spin_lock_irq(&fsg->lock);
  2625. if (!exception_in_progress(fsg))
  2626. fsg->state = FSG_STATE_DATA_PHASE;
  2627. spin_unlock_irq(&fsg->lock);
  2628. if (do_scsi_command(fsg) || finish_reply(fsg))
  2629. continue;
  2630. spin_lock_irq(&fsg->lock);
  2631. if (!exception_in_progress(fsg))
  2632. fsg->state = FSG_STATE_STATUS_PHASE;
  2633. spin_unlock_irq(&fsg->lock);
  2634. if (send_status(fsg))
  2635. continue;
  2636. spin_lock_irq(&fsg->lock);
  2637. if (!exception_in_progress(fsg))
  2638. fsg->state = FSG_STATE_IDLE;
  2639. spin_unlock_irq(&fsg->lock);
  2640. }
  2641. spin_lock_irq(&fsg->lock);
  2642. fsg->thread_task = NULL;
  2643. spin_unlock_irq(&fsg->lock);
  2644. /* If we are exiting because of a signal, unregister the
  2645. * gadget driver. */
  2646. if (test_and_clear_bit(REGISTERED, &fsg->atomic_bitflags))
  2647. usb_gadget_unregister_driver(&fsg_driver);
  2648. /* Let the unbind and cleanup routines know the thread has exited */
  2649. complete_and_exit(&fsg->thread_notifier, 0);
  2650. }
  2651. /*-------------------------------------------------------------------------*/
  2652. /* The write permissions and store_xxx pointers are set in fsg_bind() */
  2653. static DEVICE_ATTR(ro, 0444, fsg_show_ro, NULL);
  2654. static DEVICE_ATTR(nofua, 0644, fsg_show_nofua, NULL);
  2655. static DEVICE_ATTR(file, 0444, fsg_show_file, NULL);
  2656. /*-------------------------------------------------------------------------*/
  2657. static void fsg_release(struct kref *ref)
  2658. {
  2659. struct fsg_dev *fsg = container_of(ref, struct fsg_dev, ref);
  2660. kfree(fsg->luns);
  2661. kfree(fsg);
  2662. }
  2663. static void lun_release(struct device *dev)
  2664. {
  2665. struct rw_semaphore *filesem = dev_get_drvdata(dev);
  2666. struct fsg_dev *fsg =
  2667. container_of(filesem, struct fsg_dev, filesem);
  2668. kref_put(&fsg->ref, fsg_release);
  2669. }
  2670. static void /* __init_or_exit */ fsg_unbind(struct usb_gadget *gadget)
  2671. {
  2672. struct fsg_dev *fsg = get_gadget_data(gadget);
  2673. int i;
  2674. struct fsg_lun *curlun;
  2675. struct usb_request *req = fsg->ep0req;
  2676. DBG(fsg, "unbind\n");
  2677. clear_bit(REGISTERED, &fsg->atomic_bitflags);
  2678. /* If the thread isn't already dead, tell it to exit now */
  2679. if (fsg->state != FSG_STATE_TERMINATED) {
  2680. raise_exception(fsg, FSG_STATE_EXIT);
  2681. wait_for_completion(&fsg->thread_notifier);
  2682. /* The cleanup routine waits for this completion also */
  2683. complete(&fsg->thread_notifier);
  2684. }
  2685. /* Unregister the sysfs attribute files and the LUNs */
  2686. for (i = 0; i < fsg->nluns; ++i) {
  2687. curlun = &fsg->luns[i];
  2688. if (curlun->registered) {
  2689. device_remove_file(&curlun->dev, &dev_attr_nofua);
  2690. device_remove_file(&curlun->dev, &dev_attr_ro);
  2691. device_remove_file(&curlun->dev, &dev_attr_file);
  2692. fsg_lun_close(curlun);
  2693. device_unregister(&curlun->dev);
  2694. curlun->registered = 0;
  2695. }
  2696. }
  2697. /* Free the data buffers */
  2698. for (i = 0; i < fsg_num_buffers; ++i)
  2699. kfree(fsg->buffhds[i].buf);
  2700. /* Free the request and buffer for endpoint 0 */
  2701. if (req) {
  2702. kfree(req->buf);
  2703. usb_ep_free_request(fsg->ep0, req);
  2704. }
  2705. set_gadget_data(gadget, NULL);
  2706. }
  2707. static int __init check_parameters(struct fsg_dev *fsg)
  2708. {
  2709. int prot;
  2710. int gcnum;
  2711. /* Store the default values */
  2712. mod_data.transport_type = USB_PR_BULK;
  2713. mod_data.transport_name = "Bulk-only";
  2714. mod_data.protocol_type = USB_SC_SCSI;
  2715. mod_data.protocol_name = "Transparent SCSI";
  2716. /* Some peripheral controllers are known not to be able to
  2717. * halt bulk endpoints correctly. If one of them is present,
  2718. * disable stalls.
  2719. */
  2720. if (gadget_is_at91(fsg->gadget))
  2721. mod_data.can_stall = 0;
  2722. if (mod_data.release == 0xffff) { // Parameter wasn't set
  2723. gcnum = usb_gadget_controller_number(fsg->gadget);
  2724. if (gcnum >= 0)
  2725. mod_data.release = 0x0300 + gcnum;
  2726. else {
  2727. WARNING(fsg, "controller '%s' not recognized\n",
  2728. fsg->gadget->name);
  2729. mod_data.release = 0x0399;
  2730. }
  2731. }
  2732. prot = simple_strtol(mod_data.protocol_parm, NULL, 0);
  2733. #ifdef CONFIG_USB_FILE_STORAGE_TEST
  2734. if (strnicmp(mod_data.transport_parm, "BBB", 10) == 0) {
  2735. ; // Use default setting
  2736. } else if (strnicmp(mod_data.transport_parm, "CB", 10) == 0) {
  2737. mod_data.transport_type = USB_PR_CB;
  2738. mod_data.transport_name = "Control-Bulk";
  2739. } else if (strnicmp(mod_data.transport_parm, "CBI", 10) == 0) {
  2740. mod_data.transport_type = USB_PR_CBI;
  2741. mod_data.transport_name = "Control-Bulk-Interrupt";
  2742. } else {
  2743. ERROR(fsg, "invalid transport: %s\n", mod_data.transport_parm);
  2744. return -EINVAL;
  2745. }
  2746. if (strnicmp(mod_data.protocol_parm, "SCSI", 10) == 0 ||
  2747. prot == USB_SC_SCSI) {
  2748. ; // Use default setting
  2749. } else if (strnicmp(mod_data.protocol_parm, "RBC", 10) == 0 ||
  2750. prot == USB_SC_RBC) {
  2751. mod_data.protocol_type = USB_SC_RBC;
  2752. mod_data.protocol_name = "RBC";
  2753. } else if (strnicmp(mod_data.protocol_parm, "8020", 4) == 0 ||
  2754. strnicmp(mod_data.protocol_parm, "ATAPI", 10) == 0 ||
  2755. prot == USB_SC_8020) {
  2756. mod_data.protocol_type = USB_SC_8020;
  2757. mod_data.protocol_name = "8020i (ATAPI)";
  2758. } else if (strnicmp(mod_data.protocol_parm, "QIC", 3) == 0 ||
  2759. prot == USB_SC_QIC) {
  2760. mod_data.protocol_type = USB_SC_QIC;
  2761. mod_data.protocol_name = "QIC-157";
  2762. } else if (strnicmp(mod_data.protocol_parm, "UFI", 10) == 0 ||
  2763. prot == USB_SC_UFI) {
  2764. mod_data.protocol_type = USB_SC_UFI;
  2765. mod_data.protocol_name = "UFI";
  2766. } else if (strnicmp(mod_data.protocol_parm, "8070", 4) == 0 ||
  2767. prot == USB_SC_8070) {
  2768. mod_data.protocol_type = USB_SC_8070;
  2769. mod_data.protocol_name = "8070i";
  2770. } else {
  2771. ERROR(fsg, "invalid protocol: %s\n", mod_data.protocol_parm);
  2772. return -EINVAL;
  2773. }
  2774. mod_data.buflen &= PAGE_CACHE_MASK;
  2775. if (mod_data.buflen <= 0) {
  2776. ERROR(fsg, "invalid buflen\n");
  2777. return -ETOOSMALL;
  2778. }
  2779. #endif /* CONFIG_USB_FILE_STORAGE_TEST */
  2780. /* Serial string handling.
  2781. * On a real device, the serial string would be loaded
  2782. * from permanent storage. */
  2783. if (mod_data.serial) {
  2784. const char *ch;
  2785. unsigned len = 0;
  2786. /* Sanity check :
  2787. * The CB[I] specification limits the serial string to
  2788. * 12 uppercase hexadecimal characters.
  2789. * BBB need at least 12 uppercase hexadecimal characters,
  2790. * with a maximum of 126. */
  2791. for (ch = mod_data.serial; *ch; ++ch) {
  2792. ++len;
  2793. if ((*ch < '0' || *ch > '9') &&
  2794. (*ch < 'A' || *ch > 'F')) { /* not uppercase hex */
  2795. WARNING(fsg,
  2796. "Invalid serial string character: %c\n",
  2797. *ch);
  2798. goto no_serial;
  2799. }
  2800. }
  2801. if (len > 126 ||
  2802. (mod_data.transport_type == USB_PR_BULK && len < 12) ||
  2803. (mod_data.transport_type != USB_PR_BULK && len > 12)) {
  2804. WARNING(fsg, "Invalid serial string length!\n");
  2805. goto no_serial;
  2806. }
  2807. fsg_strings[FSG_STRING_SERIAL - 1].s = mod_data.serial;
  2808. } else {
  2809. WARNING(fsg, "No serial-number string provided!\n");
  2810. no_serial:
  2811. device_desc.iSerialNumber = 0;
  2812. }
  2813. return 0;
  2814. }
  2815. static int __init fsg_bind(struct usb_gadget *gadget,
  2816. struct usb_gadget_driver *driver)
  2817. {
  2818. struct fsg_dev *fsg = the_fsg;
  2819. int rc;
  2820. int i;
  2821. struct fsg_lun *curlun;
  2822. struct usb_ep *ep;
  2823. struct usb_request *req;
  2824. char *pathbuf, *p;
  2825. fsg->gadget = gadget;
  2826. set_gadget_data(gadget, fsg);
  2827. fsg->ep0 = gadget->ep0;
  2828. fsg->ep0->driver_data = fsg;
  2829. if ((rc = check_parameters(fsg)) != 0)
  2830. goto out;
  2831. if (mod_data.removable) { // Enable the store_xxx attributes
  2832. dev_attr_file.attr.mode = 0644;
  2833. dev_attr_file.store = fsg_store_file;
  2834. if (!mod_data.cdrom) {
  2835. dev_attr_ro.attr.mode = 0644;
  2836. dev_attr_ro.store = fsg_store_ro;
  2837. }
  2838. }
  2839. /* Only for removable media? */
  2840. dev_attr_nofua.attr.mode = 0644;
  2841. dev_attr_nofua.store = fsg_store_nofua;
  2842. /* Find out how many LUNs there should be */
  2843. i = mod_data.nluns;
  2844. if (i == 0)
  2845. i = max(mod_data.num_filenames, 1u);
  2846. if (i > FSG_MAX_LUNS) {
  2847. ERROR(fsg, "invalid number of LUNs: %d\n", i);
  2848. rc = -EINVAL;
  2849. goto out;
  2850. }
  2851. /* Create the LUNs, open their backing files, and register the
  2852. * LUN devices in sysfs. */
  2853. fsg->luns = kzalloc(i * sizeof(struct fsg_lun), GFP_KERNEL);
  2854. if (!fsg->luns) {
  2855. rc = -ENOMEM;
  2856. goto out;
  2857. }
  2858. fsg->nluns = i;
  2859. for (i = 0; i < fsg->nluns; ++i) {
  2860. curlun = &fsg->luns[i];
  2861. curlun->cdrom = !!mod_data.cdrom;
  2862. curlun->ro = mod_data.cdrom || mod_data.ro[i];
  2863. curlun->initially_ro = curlun->ro;
  2864. curlun->removable = mod_data.removable;
  2865. curlun->nofua = mod_data.nofua[i];
  2866. curlun->dev.release = lun_release;
  2867. curlun->dev.parent = &gadget->dev;
  2868. curlun->dev.driver = &fsg_driver.driver;
  2869. dev_set_drvdata(&curlun->dev, &fsg->filesem);
  2870. dev_set_name(&curlun->dev,"%s-lun%d",
  2871. dev_name(&gadget->dev), i);
  2872. kref_get(&fsg->ref);
  2873. rc = device_register(&curlun->dev);
  2874. if (rc) {
  2875. INFO(fsg, "failed to register LUN%d: %d\n", i, rc);
  2876. put_device(&curlun->dev);
  2877. goto out;
  2878. }
  2879. curlun->registered = 1;
  2880. rc = device_create_file(&curlun->dev, &dev_attr_ro);
  2881. if (rc)
  2882. goto out;
  2883. rc = device_create_file(&curlun->dev, &dev_attr_nofua);
  2884. if (rc)
  2885. goto out;
  2886. rc = device_create_file(&curlun->dev, &dev_attr_file);
  2887. if (rc)
  2888. goto out;
  2889. if (mod_data.file[i] && *mod_data.file[i]) {
  2890. rc = fsg_lun_open(curlun, mod_data.file[i]);
  2891. if (rc)
  2892. goto out;
  2893. } else if (!mod_data.removable) {
  2894. ERROR(fsg, "no file given for LUN%d\n", i);
  2895. rc = -EINVAL;
  2896. goto out;
  2897. }
  2898. }
  2899. /* Find all the endpoints we will use */
  2900. usb_ep_autoconfig_reset(gadget);
  2901. ep = usb_ep_autoconfig(gadget, &fsg_fs_bulk_in_desc);
  2902. if (!ep)
  2903. goto autoconf_fail;
  2904. ep->driver_data = fsg; // claim the endpoint
  2905. fsg->bulk_in = ep;
  2906. ep = usb_ep_autoconfig(gadget, &fsg_fs_bulk_out_desc);
  2907. if (!ep)
  2908. goto autoconf_fail;
  2909. ep->driver_data = fsg; // claim the endpoint
  2910. fsg->bulk_out = ep;
  2911. if (transport_is_cbi()) {
  2912. ep = usb_ep_autoconfig(gadget, &fsg_fs_intr_in_desc);
  2913. if (!ep)
  2914. goto autoconf_fail;
  2915. ep->driver_data = fsg; // claim the endpoint
  2916. fsg->intr_in = ep;
  2917. }
  2918. /* Fix up the descriptors */
  2919. device_desc.idVendor = cpu_to_le16(mod_data.vendor);
  2920. device_desc.idProduct = cpu_to_le16(mod_data.product);
  2921. device_desc.bcdDevice = cpu_to_le16(mod_data.release);
  2922. i = (transport_is_cbi() ? 3 : 2); // Number of endpoints
  2923. fsg_intf_desc.bNumEndpoints = i;
  2924. fsg_intf_desc.bInterfaceSubClass = mod_data.protocol_type;
  2925. fsg_intf_desc.bInterfaceProtocol = mod_data.transport_type;
  2926. fsg_fs_function[i + FSG_FS_FUNCTION_PRE_EP_ENTRIES] = NULL;
  2927. if (gadget_is_dualspeed(gadget)) {
  2928. fsg_hs_function[i + FSG_HS_FUNCTION_PRE_EP_ENTRIES] = NULL;
  2929. /* Assume endpoint addresses are the same for both speeds */
  2930. fsg_hs_bulk_in_desc.bEndpointAddress =
  2931. fsg_fs_bulk_in_desc.bEndpointAddress;
  2932. fsg_hs_bulk_out_desc.bEndpointAddress =
  2933. fsg_fs_bulk_out_desc.bEndpointAddress;
  2934. fsg_hs_intr_in_desc.bEndpointAddress =
  2935. fsg_fs_intr_in_desc.bEndpointAddress;
  2936. }
  2937. if (gadget_is_superspeed(gadget)) {
  2938. unsigned max_burst;
  2939. fsg_ss_function[i + FSG_SS_FUNCTION_PRE_EP_ENTRIES] = NULL;
  2940. /* Calculate bMaxBurst, we know packet size is 1024 */
  2941. max_burst = min_t(unsigned, mod_data.buflen / 1024, 15);
  2942. /* Assume endpoint addresses are the same for both speeds */
  2943. fsg_ss_bulk_in_desc.bEndpointAddress =
  2944. fsg_fs_bulk_in_desc.bEndpointAddress;
  2945. fsg_ss_bulk_in_comp_desc.bMaxBurst = max_burst;
  2946. fsg_ss_bulk_out_desc.bEndpointAddress =
  2947. fsg_fs_bulk_out_desc.bEndpointAddress;
  2948. fsg_ss_bulk_out_comp_desc.bMaxBurst = max_burst;
  2949. }
  2950. if (gadget_is_otg(gadget))
  2951. fsg_otg_desc.bmAttributes |= USB_OTG_HNP;
  2952. rc = -ENOMEM;
  2953. /* Allocate the request and buffer for endpoint 0 */
  2954. fsg->ep0req = req = usb_ep_alloc_request(fsg->ep0, GFP_KERNEL);
  2955. if (!req)
  2956. goto out;
  2957. req->buf = kmalloc(EP0_BUFSIZE, GFP_KERNEL);
  2958. if (!req->buf)
  2959. goto out;
  2960. req->complete = ep0_complete;
  2961. /* Allocate the data buffers */
  2962. for (i = 0; i < fsg_num_buffers; ++i) {
  2963. struct fsg_buffhd *bh = &fsg->buffhds[i];
  2964. /* Allocate for the bulk-in endpoint. We assume that
  2965. * the buffer will also work with the bulk-out (and
  2966. * interrupt-in) endpoint. */
  2967. bh->buf = kmalloc(mod_data.buflen, GFP_KERNEL);
  2968. if (!bh->buf)
  2969. goto out;
  2970. bh->next = bh + 1;
  2971. }
  2972. fsg->buffhds[fsg_num_buffers - 1].next = &fsg->buffhds[0];
  2973. /* This should reflect the actual gadget power source */
  2974. usb_gadget_set_selfpowered(gadget);
  2975. snprintf(fsg_string_manufacturer, sizeof fsg_string_manufacturer,
  2976. "%s %s with %s",
  2977. init_utsname()->sysname, init_utsname()->release,
  2978. gadget->name);
  2979. fsg->thread_task = kthread_create(fsg_main_thread, fsg,
  2980. "file-storage-gadget");
  2981. if (IS_ERR(fsg->thread_task)) {
  2982. rc = PTR_ERR(fsg->thread_task);
  2983. goto out;
  2984. }
  2985. INFO(fsg, DRIVER_DESC ", version: " DRIVER_VERSION "\n");
  2986. INFO(fsg, "NOTE: This driver is deprecated. "
  2987. "Consider using g_mass_storage instead.\n");
  2988. INFO(fsg, "Number of LUNs=%d\n", fsg->nluns);
  2989. pathbuf = kmalloc(PATH_MAX, GFP_KERNEL);
  2990. for (i = 0; i < fsg->nluns; ++i) {
  2991. curlun = &fsg->luns[i];
  2992. if (fsg_lun_is_open(curlun)) {
  2993. p = NULL;
  2994. if (pathbuf) {
  2995. p = d_path(&curlun->filp->f_path,
  2996. pathbuf, PATH_MAX);
  2997. if (IS_ERR(p))
  2998. p = NULL;
  2999. }
  3000. LINFO(curlun, "ro=%d, nofua=%d, file: %s\n",
  3001. curlun->ro, curlun->nofua, (p ? p : "(error)"));
  3002. }
  3003. }
  3004. kfree(pathbuf);
  3005. DBG(fsg, "transport=%s (x%02x)\n",
  3006. mod_data.transport_name, mod_data.transport_type);
  3007. DBG(fsg, "protocol=%s (x%02x)\n",
  3008. mod_data.protocol_name, mod_data.protocol_type);
  3009. DBG(fsg, "VendorID=x%04x, ProductID=x%04x, Release=x%04x\n",
  3010. mod_data.vendor, mod_data.product, mod_data.release);
  3011. DBG(fsg, "removable=%d, stall=%d, cdrom=%d, buflen=%u\n",
  3012. mod_data.removable, mod_data.can_stall,
  3013. mod_data.cdrom, mod_data.buflen);
  3014. DBG(fsg, "I/O thread pid: %d\n", task_pid_nr(fsg->thread_task));
  3015. set_bit(REGISTERED, &fsg->atomic_bitflags);
  3016. /* Tell the thread to start working */
  3017. wake_up_process(fsg->thread_task);
  3018. return 0;
  3019. autoconf_fail:
  3020. ERROR(fsg, "unable to autoconfigure all endpoints\n");
  3021. rc = -ENOTSUPP;
  3022. out:
  3023. fsg->state = FSG_STATE_TERMINATED; // The thread is dead
  3024. fsg_unbind(gadget);
  3025. complete(&fsg->thread_notifier);
  3026. return rc;
  3027. }
  3028. /*-------------------------------------------------------------------------*/
  3029. static void fsg_suspend(struct usb_gadget *gadget)
  3030. {
  3031. struct fsg_dev *fsg = get_gadget_data(gadget);
  3032. DBG(fsg, "suspend\n");
  3033. set_bit(SUSPENDED, &fsg->atomic_bitflags);
  3034. }
  3035. static void fsg_resume(struct usb_gadget *gadget)
  3036. {
  3037. struct fsg_dev *fsg = get_gadget_data(gadget);
  3038. DBG(fsg, "resume\n");
  3039. clear_bit(SUSPENDED, &fsg->atomic_bitflags);
  3040. }
  3041. /*-------------------------------------------------------------------------*/
  3042. static __refdata struct usb_gadget_driver fsg_driver = {
  3043. .max_speed = USB_SPEED_SUPER,
  3044. .function = (char *) fsg_string_product,
  3045. .bind = fsg_bind,
  3046. .unbind = fsg_unbind,
  3047. .disconnect = fsg_disconnect,
  3048. .setup = fsg_setup,
  3049. .suspend = fsg_suspend,
  3050. .resume = fsg_resume,
  3051. .driver = {
  3052. .name = DRIVER_NAME,
  3053. .owner = THIS_MODULE,
  3054. // .release = ...
  3055. // .suspend = ...
  3056. // .resume = ...
  3057. },
  3058. };
  3059. static int __init fsg_alloc(void)
  3060. {
  3061. struct fsg_dev *fsg;
  3062. fsg = kzalloc(sizeof *fsg +
  3063. fsg_num_buffers * sizeof *(fsg->buffhds), GFP_KERNEL);
  3064. if (!fsg)
  3065. return -ENOMEM;
  3066. spin_lock_init(&fsg->lock);
  3067. init_rwsem(&fsg->filesem);
  3068. kref_init(&fsg->ref);
  3069. init_completion(&fsg->thread_notifier);
  3070. the_fsg = fsg;
  3071. return 0;
  3072. }
  3073. static int __init fsg_init(void)
  3074. {
  3075. int rc;
  3076. struct fsg_dev *fsg;
  3077. rc = fsg_num_buffers_validate();
  3078. if (rc != 0)
  3079. return rc;
  3080. if ((rc = fsg_alloc()) != 0)
  3081. return rc;
  3082. fsg = the_fsg;
  3083. rc = usb_gadget_probe_driver(&fsg_driver);
  3084. if (rc != 0)
  3085. kref_put(&fsg->ref, fsg_release);
  3086. return rc;
  3087. }
  3088. module_init(fsg_init);
  3089. static void __exit fsg_cleanup(void)
  3090. {
  3091. struct fsg_dev *fsg = the_fsg;
  3092. /* Unregister the driver iff the thread hasn't already done so */
  3093. if (test_and_clear_bit(REGISTERED, &fsg->atomic_bitflags))
  3094. usb_gadget_unregister_driver(&fsg_driver);
  3095. /* Wait for the thread to finish up */
  3096. wait_for_completion(&fsg->thread_notifier);
  3097. kref_put(&fsg->ref, fsg_release);
  3098. }
  3099. module_exit(fsg_cleanup);