spidev.c 21 KB

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  1. /*
  2. * Simple synchronous userspace interface to SPI devices
  3. *
  4. * Copyright (C) 2006 SWAPP
  5. * Andrea Paterniani <a.paterniani@swapp-eng.it>
  6. * Copyright (C) 2007 David Brownell (simplification, cleanup)
  7. *
  8. * This program is free software; you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation; either version 2 of the License, or
  11. * (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. */
  18. #include <linux/init.h>
  19. #include <linux/module.h>
  20. #include <linux/ioctl.h>
  21. #include <linux/fs.h>
  22. #include <linux/device.h>
  23. #include <linux/err.h>
  24. #include <linux/list.h>
  25. #include <linux/errno.h>
  26. #include <linux/mutex.h>
  27. #include <linux/slab.h>
  28. #include <linux/compat.h>
  29. #include <linux/of.h>
  30. #include <linux/of_device.h>
  31. #include <linux/spi/spi.h>
  32. #include <linux/spi/spidev.h>
  33. #include <linux/uaccess.h>
  34. /*
  35. * This supports access to SPI devices using normal userspace I/O calls.
  36. * Note that while traditional UNIX/POSIX I/O semantics are half duplex,
  37. * and often mask message boundaries, full SPI support requires full duplex
  38. * transfers. There are several kinds of internal message boundaries to
  39. * handle chipselect management and other protocol options.
  40. *
  41. * SPI has a character major number assigned. We allocate minor numbers
  42. * dynamically using a bitmask. You must use hotplug tools, such as udev
  43. * (or mdev with busybox) to create and destroy the /dev/spidevB.C device
  44. * nodes, since there is no fixed association of minor numbers with any
  45. * particular SPI bus or device.
  46. */
  47. #define SPIDEV_MAJOR 153 /* assigned */
  48. #define N_SPI_MINORS 32 /* ... up to 256 */
  49. static DECLARE_BITMAP(minors, N_SPI_MINORS);
  50. /* Bit masks for spi_device.mode management. Note that incorrect
  51. * settings for some settings can cause *lots* of trouble for other
  52. * devices on a shared bus:
  53. *
  54. * - CS_HIGH ... this device will be active when it shouldn't be
  55. * - 3WIRE ... when active, it won't behave as it should
  56. * - NO_CS ... there will be no explicit message boundaries; this
  57. * is completely incompatible with the shared bus model
  58. * - READY ... transfers may proceed when they shouldn't.
  59. *
  60. * REVISIT should changing those flags be privileged?
  61. */
  62. #define SPI_MODE_MASK (SPI_CPHA | SPI_CPOL | SPI_CS_HIGH \
  63. | SPI_LSB_FIRST | SPI_3WIRE | SPI_LOOP \
  64. | SPI_NO_CS | SPI_READY | SPI_TX_DUAL \
  65. | SPI_TX_QUAD | SPI_RX_DUAL | SPI_RX_QUAD)
  66. struct spidev_data {
  67. dev_t devt;
  68. spinlock_t spi_lock;
  69. struct spi_device *spi;
  70. struct list_head device_entry;
  71. /* TX/RX buffers are NULL unless this device is open (users > 0) */
  72. struct mutex buf_lock;
  73. unsigned users;
  74. u8 *tx_buffer;
  75. u8 *rx_buffer;
  76. u32 speed_hz;
  77. };
  78. static LIST_HEAD(device_list);
  79. static DEFINE_MUTEX(device_list_lock);
  80. static unsigned bufsiz = 4096;
  81. module_param(bufsiz, uint, S_IRUGO);
  82. MODULE_PARM_DESC(bufsiz, "data bytes in biggest supported SPI message");
  83. /*-------------------------------------------------------------------------*/
  84. static ssize_t
  85. spidev_sync(struct spidev_data *spidev, struct spi_message *message)
  86. {
  87. DECLARE_COMPLETION_ONSTACK(done);
  88. int status;
  89. struct spi_device *spi;
  90. spin_lock_irq(&spidev->spi_lock);
  91. spi = spidev->spi;
  92. spin_unlock_irq(&spidev->spi_lock);
  93. if (spi == NULL)
  94. status = -ESHUTDOWN;
  95. else
  96. status = spi_sync(spi, message);
  97. if (status == 0)
  98. status = message->actual_length;
  99. return status;
  100. }
  101. static inline ssize_t
  102. spidev_sync_write(struct spidev_data *spidev, size_t len)
  103. {
  104. struct spi_transfer t = {
  105. .tx_buf = spidev->tx_buffer,
  106. .len = len,
  107. .speed_hz = spidev->speed_hz,
  108. };
  109. struct spi_message m;
  110. spi_message_init(&m);
  111. spi_message_add_tail(&t, &m);
  112. return spidev_sync(spidev, &m);
  113. }
  114. static inline ssize_t
  115. spidev_sync_read(struct spidev_data *spidev, size_t len)
  116. {
  117. struct spi_transfer t = {
  118. .rx_buf = spidev->rx_buffer,
  119. .len = len,
  120. .speed_hz = spidev->speed_hz,
  121. };
  122. struct spi_message m;
  123. spi_message_init(&m);
  124. spi_message_add_tail(&t, &m);
  125. return spidev_sync(spidev, &m);
  126. }
  127. /*-------------------------------------------------------------------------*/
  128. /* Read-only message with current device setup */
  129. static ssize_t
  130. spidev_read(struct file *filp, char __user *buf, size_t count, loff_t *f_pos)
  131. {
  132. struct spidev_data *spidev;
  133. ssize_t status = 0;
  134. /* chipselect only toggles at start or end of operation */
  135. if (count > bufsiz)
  136. return -EMSGSIZE;
  137. spidev = filp->private_data;
  138. mutex_lock(&spidev->buf_lock);
  139. status = spidev_sync_read(spidev, count);
  140. if (status > 0) {
  141. unsigned long missing;
  142. missing = copy_to_user(buf, spidev->rx_buffer, status);
  143. if (missing == status)
  144. status = -EFAULT;
  145. else
  146. status = status - missing;
  147. }
  148. mutex_unlock(&spidev->buf_lock);
  149. return status;
  150. }
  151. /* Write-only message with current device setup */
  152. static ssize_t
  153. spidev_write(struct file *filp, const char __user *buf,
  154. size_t count, loff_t *f_pos)
  155. {
  156. struct spidev_data *spidev;
  157. ssize_t status = 0;
  158. unsigned long missing;
  159. /* chipselect only toggles at start or end of operation */
  160. if (count > bufsiz)
  161. return -EMSGSIZE;
  162. spidev = filp->private_data;
  163. mutex_lock(&spidev->buf_lock);
  164. missing = copy_from_user(spidev->tx_buffer, buf, count);
  165. if (missing == 0)
  166. status = spidev_sync_write(spidev, count);
  167. else
  168. status = -EFAULT;
  169. mutex_unlock(&spidev->buf_lock);
  170. return status;
  171. }
  172. static int spidev_message(struct spidev_data *spidev,
  173. struct spi_ioc_transfer *u_xfers, unsigned n_xfers)
  174. {
  175. struct spi_message msg;
  176. struct spi_transfer *k_xfers;
  177. struct spi_transfer *k_tmp;
  178. struct spi_ioc_transfer *u_tmp;
  179. unsigned n, total, tx_total, rx_total;
  180. u8 *tx_buf, *rx_buf;
  181. int status = -EFAULT;
  182. spi_message_init(&msg);
  183. k_xfers = kcalloc(n_xfers, sizeof(*k_tmp), GFP_KERNEL);
  184. if (k_xfers == NULL)
  185. return -ENOMEM;
  186. /* Construct spi_message, copying any tx data to bounce buffer.
  187. * We walk the array of user-provided transfers, using each one
  188. * to initialize a kernel version of the same transfer.
  189. */
  190. tx_buf = spidev->tx_buffer;
  191. rx_buf = spidev->rx_buffer;
  192. total = 0;
  193. tx_total = 0;
  194. rx_total = 0;
  195. for (n = n_xfers, k_tmp = k_xfers, u_tmp = u_xfers;
  196. n;
  197. n--, k_tmp++, u_tmp++) {
  198. k_tmp->len = u_tmp->len;
  199. total += k_tmp->len;
  200. /* Since the function returns the total length of transfers
  201. * on success, restrict the total to positive int values to
  202. * avoid the return value looking like an error. Also check
  203. * each transfer length to avoid arithmetic overflow.
  204. */
  205. if (total > INT_MAX || k_tmp->len > INT_MAX) {
  206. status = -EMSGSIZE;
  207. goto done;
  208. }
  209. if (u_tmp->rx_buf) {
  210. /* this transfer needs space in RX bounce buffer */
  211. rx_total += k_tmp->len;
  212. if (rx_total > bufsiz) {
  213. status = -EMSGSIZE;
  214. goto done;
  215. }
  216. k_tmp->rx_buf = rx_buf;
  217. if (!access_ok(VERIFY_WRITE, (u8 __user *)
  218. (uintptr_t) u_tmp->rx_buf,
  219. u_tmp->len))
  220. goto done;
  221. rx_buf += k_tmp->len;
  222. }
  223. if (u_tmp->tx_buf) {
  224. /* this transfer needs space in TX bounce buffer */
  225. tx_total += k_tmp->len;
  226. if (tx_total > bufsiz) {
  227. status = -EMSGSIZE;
  228. goto done;
  229. }
  230. k_tmp->tx_buf = tx_buf;
  231. if (copy_from_user(tx_buf, (const u8 __user *)
  232. (uintptr_t) u_tmp->tx_buf,
  233. u_tmp->len))
  234. goto done;
  235. tx_buf += k_tmp->len;
  236. }
  237. k_tmp->cs_change = !!u_tmp->cs_change;
  238. k_tmp->tx_nbits = u_tmp->tx_nbits;
  239. k_tmp->rx_nbits = u_tmp->rx_nbits;
  240. k_tmp->bits_per_word = u_tmp->bits_per_word;
  241. k_tmp->delay_usecs = u_tmp->delay_usecs;
  242. k_tmp->speed_hz = u_tmp->speed_hz;
  243. if (!k_tmp->speed_hz)
  244. k_tmp->speed_hz = spidev->speed_hz;
  245. #ifdef VERBOSE
  246. dev_dbg(&spidev->spi->dev,
  247. " xfer len %zd %s%s%s%dbits %u usec %uHz\n",
  248. u_tmp->len,
  249. u_tmp->rx_buf ? "rx " : "",
  250. u_tmp->tx_buf ? "tx " : "",
  251. u_tmp->cs_change ? "cs " : "",
  252. u_tmp->bits_per_word ? : spidev->spi->bits_per_word,
  253. u_tmp->delay_usecs,
  254. u_tmp->speed_hz ? : spidev->spi->max_speed_hz);
  255. #endif
  256. spi_message_add_tail(k_tmp, &msg);
  257. }
  258. status = spidev_sync(spidev, &msg);
  259. if (status < 0)
  260. goto done;
  261. /* copy any rx data out of bounce buffer */
  262. rx_buf = spidev->rx_buffer;
  263. for (n = n_xfers, u_tmp = u_xfers; n; n--, u_tmp++) {
  264. if (u_tmp->rx_buf) {
  265. if (__copy_to_user((u8 __user *)
  266. (uintptr_t) u_tmp->rx_buf, rx_buf,
  267. u_tmp->len)) {
  268. status = -EFAULT;
  269. goto done;
  270. }
  271. rx_buf += u_tmp->len;
  272. }
  273. }
  274. status = total;
  275. done:
  276. kfree(k_xfers);
  277. return status;
  278. }
  279. static struct spi_ioc_transfer *
  280. spidev_get_ioc_message(unsigned int cmd, struct spi_ioc_transfer __user *u_ioc,
  281. unsigned *n_ioc)
  282. {
  283. struct spi_ioc_transfer *ioc;
  284. u32 tmp;
  285. /* Check type, command number and direction */
  286. if (_IOC_TYPE(cmd) != SPI_IOC_MAGIC
  287. || _IOC_NR(cmd) != _IOC_NR(SPI_IOC_MESSAGE(0))
  288. || _IOC_DIR(cmd) != _IOC_WRITE)
  289. return ERR_PTR(-ENOTTY);
  290. tmp = _IOC_SIZE(cmd);
  291. if ((tmp % sizeof(struct spi_ioc_transfer)) != 0)
  292. return ERR_PTR(-EINVAL);
  293. *n_ioc = tmp / sizeof(struct spi_ioc_transfer);
  294. if (*n_ioc == 0)
  295. return NULL;
  296. /* copy into scratch area */
  297. ioc = kmalloc(tmp, GFP_KERNEL);
  298. if (!ioc)
  299. return ERR_PTR(-ENOMEM);
  300. if (__copy_from_user(ioc, u_ioc, tmp)) {
  301. kfree(ioc);
  302. return ERR_PTR(-EFAULT);
  303. }
  304. return ioc;
  305. }
  306. static long
  307. spidev_ioctl(struct file *filp, unsigned int cmd, unsigned long arg)
  308. {
  309. int err = 0;
  310. int retval = 0;
  311. struct spidev_data *spidev;
  312. struct spi_device *spi;
  313. u32 tmp;
  314. unsigned n_ioc;
  315. struct spi_ioc_transfer *ioc;
  316. /* Check type and command number */
  317. if (_IOC_TYPE(cmd) != SPI_IOC_MAGIC)
  318. return -ENOTTY;
  319. /* Check access direction once here; don't repeat below.
  320. * IOC_DIR is from the user perspective, while access_ok is
  321. * from the kernel perspective; so they look reversed.
  322. */
  323. if (_IOC_DIR(cmd) & _IOC_READ)
  324. err = !access_ok(VERIFY_WRITE,
  325. (void __user *)arg, _IOC_SIZE(cmd));
  326. if (err == 0 && _IOC_DIR(cmd) & _IOC_WRITE)
  327. err = !access_ok(VERIFY_READ,
  328. (void __user *)arg, _IOC_SIZE(cmd));
  329. if (err)
  330. return -EFAULT;
  331. /* guard against device removal before, or while,
  332. * we issue this ioctl.
  333. */
  334. spidev = filp->private_data;
  335. spin_lock_irq(&spidev->spi_lock);
  336. spi = spi_dev_get(spidev->spi);
  337. spin_unlock_irq(&spidev->spi_lock);
  338. if (spi == NULL)
  339. return -ESHUTDOWN;
  340. /* use the buffer lock here for triple duty:
  341. * - prevent I/O (from us) so calling spi_setup() is safe;
  342. * - prevent concurrent SPI_IOC_WR_* from morphing
  343. * data fields while SPI_IOC_RD_* reads them;
  344. * - SPI_IOC_MESSAGE needs the buffer locked "normally".
  345. */
  346. mutex_lock(&spidev->buf_lock);
  347. switch (cmd) {
  348. /* read requests */
  349. case SPI_IOC_RD_MODE:
  350. retval = __put_user(spi->mode & SPI_MODE_MASK,
  351. (__u8 __user *)arg);
  352. break;
  353. case SPI_IOC_RD_MODE32:
  354. retval = __put_user(spi->mode & SPI_MODE_MASK,
  355. (__u32 __user *)arg);
  356. break;
  357. case SPI_IOC_RD_LSB_FIRST:
  358. retval = __put_user((spi->mode & SPI_LSB_FIRST) ? 1 : 0,
  359. (__u8 __user *)arg);
  360. break;
  361. case SPI_IOC_RD_BITS_PER_WORD:
  362. retval = __put_user(spi->bits_per_word, (__u8 __user *)arg);
  363. break;
  364. case SPI_IOC_RD_MAX_SPEED_HZ:
  365. retval = __put_user(spidev->speed_hz, (__u32 __user *)arg);
  366. break;
  367. /* write requests */
  368. case SPI_IOC_WR_MODE:
  369. case SPI_IOC_WR_MODE32:
  370. if (cmd == SPI_IOC_WR_MODE)
  371. retval = __get_user(tmp, (u8 __user *)arg);
  372. else
  373. retval = __get_user(tmp, (u32 __user *)arg);
  374. if (retval == 0) {
  375. u32 save = spi->mode;
  376. if (tmp & ~SPI_MODE_MASK) {
  377. retval = -EINVAL;
  378. break;
  379. }
  380. tmp |= spi->mode & ~SPI_MODE_MASK;
  381. spi->mode = (u16)tmp;
  382. retval = spi_setup(spi);
  383. if (retval < 0)
  384. spi->mode = save;
  385. else
  386. dev_dbg(&spi->dev, "spi mode %x\n", tmp);
  387. }
  388. break;
  389. case SPI_IOC_WR_LSB_FIRST:
  390. retval = __get_user(tmp, (__u8 __user *)arg);
  391. if (retval == 0) {
  392. u32 save = spi->mode;
  393. if (tmp)
  394. spi->mode |= SPI_LSB_FIRST;
  395. else
  396. spi->mode &= ~SPI_LSB_FIRST;
  397. retval = spi_setup(spi);
  398. if (retval < 0)
  399. spi->mode = save;
  400. else
  401. dev_dbg(&spi->dev, "%csb first\n",
  402. tmp ? 'l' : 'm');
  403. }
  404. break;
  405. case SPI_IOC_WR_BITS_PER_WORD:
  406. retval = __get_user(tmp, (__u8 __user *)arg);
  407. if (retval == 0) {
  408. u8 save = spi->bits_per_word;
  409. spi->bits_per_word = tmp;
  410. retval = spi_setup(spi);
  411. if (retval < 0)
  412. spi->bits_per_word = save;
  413. else
  414. dev_dbg(&spi->dev, "%d bits per word\n", tmp);
  415. }
  416. break;
  417. case SPI_IOC_WR_MAX_SPEED_HZ:
  418. retval = __get_user(tmp, (__u32 __user *)arg);
  419. if (retval == 0) {
  420. u32 save = spi->max_speed_hz;
  421. spi->max_speed_hz = tmp;
  422. retval = spi_setup(spi);
  423. if (retval >= 0)
  424. spidev->speed_hz = tmp;
  425. else
  426. dev_dbg(&spi->dev, "%d Hz (max)\n", tmp);
  427. spi->max_speed_hz = save;
  428. }
  429. break;
  430. default:
  431. /* segmented and/or full-duplex I/O request */
  432. /* Check message and copy into scratch area */
  433. ioc = spidev_get_ioc_message(cmd,
  434. (struct spi_ioc_transfer __user *)arg, &n_ioc);
  435. if (IS_ERR(ioc)) {
  436. retval = PTR_ERR(ioc);
  437. break;
  438. }
  439. if (!ioc)
  440. break; /* n_ioc is also 0 */
  441. /* translate to spi_message, execute */
  442. retval = spidev_message(spidev, ioc, n_ioc);
  443. kfree(ioc);
  444. break;
  445. }
  446. mutex_unlock(&spidev->buf_lock);
  447. spi_dev_put(spi);
  448. return retval;
  449. }
  450. #ifdef CONFIG_COMPAT
  451. static long
  452. spidev_compat_ioc_message(struct file *filp, unsigned int cmd,
  453. unsigned long arg)
  454. {
  455. struct spi_ioc_transfer __user *u_ioc;
  456. int retval = 0;
  457. struct spidev_data *spidev;
  458. struct spi_device *spi;
  459. unsigned n_ioc, n;
  460. struct spi_ioc_transfer *ioc;
  461. u_ioc = (struct spi_ioc_transfer __user *) compat_ptr(arg);
  462. if (!access_ok(VERIFY_READ, u_ioc, _IOC_SIZE(cmd)))
  463. return -EFAULT;
  464. /* guard against device removal before, or while,
  465. * we issue this ioctl.
  466. */
  467. spidev = filp->private_data;
  468. spin_lock_irq(&spidev->spi_lock);
  469. spi = spi_dev_get(spidev->spi);
  470. spin_unlock_irq(&spidev->spi_lock);
  471. if (spi == NULL)
  472. return -ESHUTDOWN;
  473. /* SPI_IOC_MESSAGE needs the buffer locked "normally" */
  474. mutex_lock(&spidev->buf_lock);
  475. /* Check message and copy into scratch area */
  476. ioc = spidev_get_ioc_message(cmd, u_ioc, &n_ioc);
  477. if (IS_ERR(ioc)) {
  478. retval = PTR_ERR(ioc);
  479. goto done;
  480. }
  481. if (!ioc)
  482. goto done; /* n_ioc is also 0 */
  483. /* Convert buffer pointers */
  484. for (n = 0; n < n_ioc; n++) {
  485. ioc[n].rx_buf = (uintptr_t) compat_ptr(ioc[n].rx_buf);
  486. ioc[n].tx_buf = (uintptr_t) compat_ptr(ioc[n].tx_buf);
  487. }
  488. /* translate to spi_message, execute */
  489. retval = spidev_message(spidev, ioc, n_ioc);
  490. kfree(ioc);
  491. done:
  492. mutex_unlock(&spidev->buf_lock);
  493. spi_dev_put(spi);
  494. return retval;
  495. }
  496. static long
  497. spidev_compat_ioctl(struct file *filp, unsigned int cmd, unsigned long arg)
  498. {
  499. if (_IOC_TYPE(cmd) == SPI_IOC_MAGIC
  500. && _IOC_NR(cmd) == _IOC_NR(SPI_IOC_MESSAGE(0))
  501. && _IOC_DIR(cmd) == _IOC_WRITE)
  502. return spidev_compat_ioc_message(filp, cmd, arg);
  503. return spidev_ioctl(filp, cmd, (unsigned long)compat_ptr(arg));
  504. }
  505. #else
  506. #define spidev_compat_ioctl NULL
  507. #endif /* CONFIG_COMPAT */
  508. static int spidev_open(struct inode *inode, struct file *filp)
  509. {
  510. struct spidev_data *spidev;
  511. int status = -ENXIO;
  512. mutex_lock(&device_list_lock);
  513. list_for_each_entry(spidev, &device_list, device_entry) {
  514. if (spidev->devt == inode->i_rdev) {
  515. status = 0;
  516. break;
  517. }
  518. }
  519. if (status) {
  520. pr_debug("spidev: nothing for minor %d\n", iminor(inode));
  521. goto err_find_dev;
  522. }
  523. if (!spidev->tx_buffer) {
  524. spidev->tx_buffer = kmalloc(bufsiz, GFP_KERNEL);
  525. if (!spidev->tx_buffer) {
  526. dev_dbg(&spidev->spi->dev, "open/ENOMEM\n");
  527. status = -ENOMEM;
  528. goto err_find_dev;
  529. }
  530. }
  531. if (!spidev->rx_buffer) {
  532. spidev->rx_buffer = kmalloc(bufsiz, GFP_KERNEL);
  533. if (!spidev->rx_buffer) {
  534. dev_dbg(&spidev->spi->dev, "open/ENOMEM\n");
  535. status = -ENOMEM;
  536. goto err_alloc_rx_buf;
  537. }
  538. }
  539. spidev->users++;
  540. filp->private_data = spidev;
  541. nonseekable_open(inode, filp);
  542. mutex_unlock(&device_list_lock);
  543. return 0;
  544. err_alloc_rx_buf:
  545. kfree(spidev->tx_buffer);
  546. spidev->tx_buffer = NULL;
  547. err_find_dev:
  548. mutex_unlock(&device_list_lock);
  549. return status;
  550. }
  551. static int spidev_release(struct inode *inode, struct file *filp)
  552. {
  553. struct spidev_data *spidev;
  554. mutex_lock(&device_list_lock);
  555. spidev = filp->private_data;
  556. filp->private_data = NULL;
  557. /* last close? */
  558. spidev->users--;
  559. if (!spidev->users) {
  560. int dofree;
  561. kfree(spidev->tx_buffer);
  562. spidev->tx_buffer = NULL;
  563. kfree(spidev->rx_buffer);
  564. spidev->rx_buffer = NULL;
  565. spin_lock_irq(&spidev->spi_lock);
  566. if (spidev->spi)
  567. spidev->speed_hz = spidev->spi->max_speed_hz;
  568. /* ... after we unbound from the underlying device? */
  569. dofree = (spidev->spi == NULL);
  570. spin_unlock_irq(&spidev->spi_lock);
  571. if (dofree)
  572. kfree(spidev);
  573. }
  574. mutex_unlock(&device_list_lock);
  575. return 0;
  576. }
  577. static const struct file_operations spidev_fops = {
  578. .owner = THIS_MODULE,
  579. /* REVISIT switch to aio primitives, so that userspace
  580. * gets more complete API coverage. It'll simplify things
  581. * too, except for the locking.
  582. */
  583. .write = spidev_write,
  584. .read = spidev_read,
  585. .unlocked_ioctl = spidev_ioctl,
  586. .compat_ioctl = spidev_compat_ioctl,
  587. .open = spidev_open,
  588. .release = spidev_release,
  589. .llseek = no_llseek,
  590. };
  591. /*-------------------------------------------------------------------------*/
  592. /* The main reason to have this class is to make mdev/udev create the
  593. * /dev/spidevB.C character device nodes exposing our userspace API.
  594. * It also simplifies memory management.
  595. */
  596. static struct class *spidev_class;
  597. #ifdef CONFIG_OF
  598. static const struct of_device_id spidev_dt_ids[] = {
  599. { .compatible = "rohm,dh2228fv" },
  600. { .compatible = "lineartechnology,ltc2488" },
  601. {},
  602. };
  603. MODULE_DEVICE_TABLE(of, spidev_dt_ids);
  604. #endif
  605. /*-------------------------------------------------------------------------*/
  606. static int spidev_probe(struct spi_device *spi)
  607. {
  608. struct spidev_data *spidev;
  609. int status;
  610. unsigned long minor;
  611. /*
  612. * spidev should never be referenced in DT without a specific
  613. * compatible string, it is a Linux implementation thing
  614. * rather than a description of the hardware.
  615. */
  616. if (spi->dev.of_node && !of_match_device(spidev_dt_ids, &spi->dev)) {
  617. dev_err(&spi->dev, "buggy DT: spidev listed directly in DT\n");
  618. WARN_ON(spi->dev.of_node &&
  619. !of_match_device(spidev_dt_ids, &spi->dev));
  620. }
  621. /* Allocate driver data */
  622. spidev = kzalloc(sizeof(*spidev), GFP_KERNEL);
  623. if (!spidev)
  624. return -ENOMEM;
  625. /* Initialize the driver data */
  626. spidev->spi = spi;
  627. spin_lock_init(&spidev->spi_lock);
  628. mutex_init(&spidev->buf_lock);
  629. INIT_LIST_HEAD(&spidev->device_entry);
  630. /* If we can allocate a minor number, hook up this device.
  631. * Reusing minors is fine so long as udev or mdev is working.
  632. */
  633. mutex_lock(&device_list_lock);
  634. minor = find_first_zero_bit(minors, N_SPI_MINORS);
  635. if (minor < N_SPI_MINORS) {
  636. struct device *dev;
  637. spidev->devt = MKDEV(SPIDEV_MAJOR, minor);
  638. dev = device_create(spidev_class, &spi->dev, spidev->devt,
  639. spidev, "spidev%d.%d",
  640. spi->master->bus_num, spi->chip_select);
  641. status = PTR_ERR_OR_ZERO(dev);
  642. } else {
  643. dev_dbg(&spi->dev, "no minor number available!\n");
  644. status = -ENODEV;
  645. }
  646. if (status == 0) {
  647. set_bit(minor, minors);
  648. list_add(&spidev->device_entry, &device_list);
  649. }
  650. mutex_unlock(&device_list_lock);
  651. spidev->speed_hz = spi->max_speed_hz;
  652. if (status == 0)
  653. spi_set_drvdata(spi, spidev);
  654. else
  655. kfree(spidev);
  656. return status;
  657. }
  658. static int spidev_remove(struct spi_device *spi)
  659. {
  660. struct spidev_data *spidev = spi_get_drvdata(spi);
  661. /* make sure ops on existing fds can abort cleanly */
  662. spin_lock_irq(&spidev->spi_lock);
  663. spidev->spi = NULL;
  664. spin_unlock_irq(&spidev->spi_lock);
  665. /* prevent new opens */
  666. mutex_lock(&device_list_lock);
  667. list_del(&spidev->device_entry);
  668. device_destroy(spidev_class, spidev->devt);
  669. clear_bit(MINOR(spidev->devt), minors);
  670. if (spidev->users == 0)
  671. kfree(spidev);
  672. mutex_unlock(&device_list_lock);
  673. return 0;
  674. }
  675. static struct spi_driver spidev_spi_driver = {
  676. .driver = {
  677. .name = "spidev",
  678. .of_match_table = of_match_ptr(spidev_dt_ids),
  679. },
  680. .probe = spidev_probe,
  681. .remove = spidev_remove,
  682. /* NOTE: suspend/resume methods are not necessary here.
  683. * We don't do anything except pass the requests to/from
  684. * the underlying controller. The refrigerator handles
  685. * most issues; the controller driver handles the rest.
  686. */
  687. };
  688. /*-------------------------------------------------------------------------*/
  689. static int __init spidev_init(void)
  690. {
  691. int status;
  692. /* Claim our 256 reserved device numbers. Then register a class
  693. * that will key udev/mdev to add/remove /dev nodes. Last, register
  694. * the driver which manages those device numbers.
  695. */
  696. BUILD_BUG_ON(N_SPI_MINORS > 256);
  697. status = register_chrdev(SPIDEV_MAJOR, "spi", &spidev_fops);
  698. if (status < 0)
  699. return status;
  700. spidev_class = class_create(THIS_MODULE, "spidev");
  701. if (IS_ERR(spidev_class)) {
  702. unregister_chrdev(SPIDEV_MAJOR, spidev_spi_driver.driver.name);
  703. return PTR_ERR(spidev_class);
  704. }
  705. status = spi_register_driver(&spidev_spi_driver);
  706. if (status < 0) {
  707. class_destroy(spidev_class);
  708. unregister_chrdev(SPIDEV_MAJOR, spidev_spi_driver.driver.name);
  709. }
  710. return status;
  711. }
  712. module_init(spidev_init);
  713. static void __exit spidev_exit(void)
  714. {
  715. spi_unregister_driver(&spidev_spi_driver);
  716. class_destroy(spidev_class);
  717. unregister_chrdev(SPIDEV_MAJOR, spidev_spi_driver.driver.name);
  718. }
  719. module_exit(spidev_exit);
  720. MODULE_AUTHOR("Andrea Paterniani, <a.paterniani@swapp-eng.it>");
  721. MODULE_DESCRIPTION("User mode SPI device interface");
  722. MODULE_LICENSE("GPL");
  723. MODULE_ALIAS("spi:spidev");