i2c-viperboard.c 12 KB

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  1. /*
  2. * Nano River Technologies viperboard i2c master driver
  3. *
  4. * (C) 2012 by Lemonage GmbH
  5. * Author: Lars Poeschel <poeschel@lemonage.de>
  6. * All rights reserved.
  7. *
  8. * This program is free software; you can redistribute it and/or modify it
  9. * under the terms of the GNU General Public License as published by the
  10. * Free Software Foundation; either version 2 of the License, or (at your
  11. * option) any later version.
  12. *
  13. */
  14. #include <linux/kernel.h>
  15. #include <linux/errno.h>
  16. #include <linux/module.h>
  17. #include <linux/slab.h>
  18. #include <linux/types.h>
  19. #include <linux/mutex.h>
  20. #include <linux/platform_device.h>
  21. #include <linux/usb.h>
  22. #include <linux/i2c.h>
  23. #include <linux/mfd/viperboard.h>
  24. struct vprbrd_i2c {
  25. struct i2c_adapter i2c;
  26. u8 bus_freq_param;
  27. };
  28. /* i2c bus frequency module parameter */
  29. static u8 i2c_bus_param;
  30. static unsigned int i2c_bus_freq = 100;
  31. module_param(i2c_bus_freq, int, 0);
  32. MODULE_PARM_DESC(i2c_bus_freq,
  33. "i2c bus frequency in khz (default is 100) valid values: 10, 100, 200, 400, 1000, 3000, 6000");
  34. static int vprbrd_i2c_status(struct i2c_adapter *i2c,
  35. struct vprbrd_i2c_status *status, bool prev_error)
  36. {
  37. u16 bytes_xfer;
  38. int ret;
  39. struct vprbrd *vb = (struct vprbrd *)i2c->algo_data;
  40. /* check for protocol error */
  41. bytes_xfer = sizeof(struct vprbrd_i2c_status);
  42. ret = usb_control_msg(vb->usb_dev, usb_rcvctrlpipe(vb->usb_dev, 0),
  43. VPRBRD_USB_REQUEST_I2C, VPRBRD_USB_TYPE_IN, 0x0000, 0x0000,
  44. status, bytes_xfer, VPRBRD_USB_TIMEOUT_MS);
  45. if (ret != bytes_xfer)
  46. prev_error = true;
  47. if (prev_error) {
  48. dev_err(&i2c->dev, "failure in usb communication\n");
  49. return -EREMOTEIO;
  50. }
  51. dev_dbg(&i2c->dev, " status = %d\n", status->status);
  52. if (status->status != 0x00) {
  53. dev_err(&i2c->dev, "failure: i2c protocol error\n");
  54. return -EPROTO;
  55. }
  56. return 0;
  57. }
  58. static int vprbrd_i2c_receive(struct usb_device *usb_dev,
  59. struct vprbrd_i2c_read_msg *rmsg, int bytes_xfer)
  60. {
  61. int ret, bytes_actual;
  62. int error = 0;
  63. /* send the read request */
  64. ret = usb_bulk_msg(usb_dev,
  65. usb_sndbulkpipe(usb_dev, VPRBRD_EP_OUT), rmsg,
  66. sizeof(struct vprbrd_i2c_read_hdr), &bytes_actual,
  67. VPRBRD_USB_TIMEOUT_MS);
  68. if ((ret < 0)
  69. || (bytes_actual != sizeof(struct vprbrd_i2c_read_hdr))) {
  70. dev_err(&usb_dev->dev, "failure transmitting usb\n");
  71. error = -EREMOTEIO;
  72. }
  73. /* read the actual data */
  74. ret = usb_bulk_msg(usb_dev,
  75. usb_rcvbulkpipe(usb_dev, VPRBRD_EP_IN), rmsg,
  76. bytes_xfer, &bytes_actual, VPRBRD_USB_TIMEOUT_MS);
  77. if ((ret < 0) || (bytes_xfer != bytes_actual)) {
  78. dev_err(&usb_dev->dev, "failure receiving usb\n");
  79. error = -EREMOTEIO;
  80. }
  81. return error;
  82. }
  83. static int vprbrd_i2c_addr(struct usb_device *usb_dev,
  84. struct vprbrd_i2c_addr_msg *amsg)
  85. {
  86. int ret, bytes_actual;
  87. ret = usb_bulk_msg(usb_dev,
  88. usb_sndbulkpipe(usb_dev, VPRBRD_EP_OUT), amsg,
  89. sizeof(struct vprbrd_i2c_addr_msg), &bytes_actual,
  90. VPRBRD_USB_TIMEOUT_MS);
  91. if ((ret < 0) ||
  92. (sizeof(struct vprbrd_i2c_addr_msg) != bytes_actual)) {
  93. dev_err(&usb_dev->dev, "failure transmitting usb\n");
  94. return -EREMOTEIO;
  95. }
  96. return 0;
  97. }
  98. static int vprbrd_i2c_read(struct vprbrd *vb, struct i2c_msg *msg)
  99. {
  100. int ret;
  101. u16 remain_len, bytes_xfer, len1, len2,
  102. start = 0x0000;
  103. struct vprbrd_i2c_read_msg *rmsg =
  104. (struct vprbrd_i2c_read_msg *)vb->buf;
  105. remain_len = msg->len;
  106. rmsg->header.cmd = VPRBRD_I2C_CMD_READ;
  107. while (remain_len > 0) {
  108. rmsg->header.addr = cpu_to_le16(start + 0x4000);
  109. if (remain_len <= 255) {
  110. len1 = remain_len;
  111. len2 = 0x00;
  112. rmsg->header.len0 = remain_len;
  113. rmsg->header.len1 = 0x00;
  114. rmsg->header.len2 = 0x00;
  115. rmsg->header.len3 = 0x00;
  116. rmsg->header.len4 = 0x00;
  117. rmsg->header.len5 = 0x00;
  118. remain_len = 0;
  119. } else if (remain_len <= 510) {
  120. len1 = remain_len;
  121. len2 = 0x00;
  122. rmsg->header.len0 = remain_len - 255;
  123. rmsg->header.len1 = 0xff;
  124. rmsg->header.len2 = 0x00;
  125. rmsg->header.len3 = 0x00;
  126. rmsg->header.len4 = 0x00;
  127. rmsg->header.len5 = 0x00;
  128. remain_len = 0;
  129. } else if (remain_len <= 512) {
  130. len1 = remain_len;
  131. len2 = 0x00;
  132. rmsg->header.len0 = remain_len - 510;
  133. rmsg->header.len1 = 0xff;
  134. rmsg->header.len2 = 0xff;
  135. rmsg->header.len3 = 0x00;
  136. rmsg->header.len4 = 0x00;
  137. rmsg->header.len5 = 0x00;
  138. remain_len = 0;
  139. } else if (remain_len <= 767) {
  140. len1 = 512;
  141. len2 = remain_len - 512;
  142. rmsg->header.len0 = 0x02;
  143. rmsg->header.len1 = 0xff;
  144. rmsg->header.len2 = 0xff;
  145. rmsg->header.len3 = remain_len - 512;
  146. rmsg->header.len4 = 0x00;
  147. rmsg->header.len5 = 0x00;
  148. bytes_xfer = remain_len;
  149. remain_len = 0;
  150. } else if (remain_len <= 1022) {
  151. len1 = 512;
  152. len2 = remain_len - 512;
  153. rmsg->header.len0 = 0x02;
  154. rmsg->header.len1 = 0xff;
  155. rmsg->header.len2 = 0xff;
  156. rmsg->header.len3 = remain_len - 767;
  157. rmsg->header.len4 = 0xff;
  158. rmsg->header.len5 = 0x00;
  159. remain_len = 0;
  160. } else if (remain_len <= 1024) {
  161. len1 = 512;
  162. len2 = remain_len - 512;
  163. rmsg->header.len0 = 0x02;
  164. rmsg->header.len1 = 0xff;
  165. rmsg->header.len2 = 0xff;
  166. rmsg->header.len3 = remain_len - 1022;
  167. rmsg->header.len4 = 0xff;
  168. rmsg->header.len5 = 0xff;
  169. remain_len = 0;
  170. } else {
  171. len1 = 512;
  172. len2 = 512;
  173. rmsg->header.len0 = 0x02;
  174. rmsg->header.len1 = 0xff;
  175. rmsg->header.len2 = 0xff;
  176. rmsg->header.len3 = 0x02;
  177. rmsg->header.len4 = 0xff;
  178. rmsg->header.len5 = 0xff;
  179. remain_len -= 1024;
  180. start += 1024;
  181. }
  182. rmsg->header.tf1 = cpu_to_le16(len1);
  183. rmsg->header.tf2 = cpu_to_le16(len2);
  184. /* first read transfer */
  185. ret = vprbrd_i2c_receive(vb->usb_dev, rmsg, len1);
  186. if (ret < 0)
  187. return ret;
  188. /* copy the received data */
  189. memcpy(msg->buf + start, rmsg, len1);
  190. /* second read transfer if neccessary */
  191. if (len2 > 0) {
  192. ret = vprbrd_i2c_receive(vb->usb_dev, rmsg, len2);
  193. if (ret < 0)
  194. return ret;
  195. /* copy the received data */
  196. memcpy(msg->buf + start + 512, rmsg, len2);
  197. }
  198. }
  199. return 0;
  200. }
  201. static int vprbrd_i2c_write(struct vprbrd *vb, struct i2c_msg *msg)
  202. {
  203. int ret, bytes_actual;
  204. u16 remain_len, bytes_xfer,
  205. start = 0x0000;
  206. struct vprbrd_i2c_write_msg *wmsg =
  207. (struct vprbrd_i2c_write_msg *)vb->buf;
  208. remain_len = msg->len;
  209. wmsg->header.cmd = VPRBRD_I2C_CMD_WRITE;
  210. wmsg->header.last = 0x00;
  211. wmsg->header.chan = 0x00;
  212. wmsg->header.spi = 0x0000;
  213. while (remain_len > 0) {
  214. wmsg->header.addr = cpu_to_le16(start + 0x4000);
  215. if (remain_len > 503) {
  216. wmsg->header.len1 = 0xff;
  217. wmsg->header.len2 = 0xf8;
  218. remain_len -= 503;
  219. bytes_xfer = 503 + sizeof(struct vprbrd_i2c_write_hdr);
  220. start += 503;
  221. } else if (remain_len > 255) {
  222. wmsg->header.len1 = 0xff;
  223. wmsg->header.len2 = (remain_len - 255);
  224. bytes_xfer = remain_len +
  225. sizeof(struct vprbrd_i2c_write_hdr);
  226. remain_len = 0;
  227. } else {
  228. wmsg->header.len1 = remain_len;
  229. wmsg->header.len2 = 0x00;
  230. bytes_xfer = remain_len +
  231. sizeof(struct vprbrd_i2c_write_hdr);
  232. remain_len = 0;
  233. }
  234. memcpy(wmsg->data, msg->buf + start,
  235. bytes_xfer - sizeof(struct vprbrd_i2c_write_hdr));
  236. ret = usb_bulk_msg(vb->usb_dev,
  237. usb_sndbulkpipe(vb->usb_dev,
  238. VPRBRD_EP_OUT), wmsg,
  239. bytes_xfer, &bytes_actual, VPRBRD_USB_TIMEOUT_MS);
  240. if ((ret < 0) || (bytes_xfer != bytes_actual))
  241. return -EREMOTEIO;
  242. }
  243. return 0;
  244. }
  245. static int vprbrd_i2c_xfer(struct i2c_adapter *i2c, struct i2c_msg *msgs,
  246. int num)
  247. {
  248. struct i2c_msg *pmsg;
  249. int i, ret,
  250. error = 0;
  251. struct vprbrd *vb = (struct vprbrd *)i2c->algo_data;
  252. struct vprbrd_i2c_addr_msg *amsg =
  253. (struct vprbrd_i2c_addr_msg *)vb->buf;
  254. struct vprbrd_i2c_status *smsg = (struct vprbrd_i2c_status *)vb->buf;
  255. dev_dbg(&i2c->dev, "master xfer %d messages:\n", num);
  256. for (i = 0 ; i < num ; i++) {
  257. pmsg = &msgs[i];
  258. dev_dbg(&i2c->dev,
  259. " %d: %s (flags %d) %d bytes to 0x%02x\n",
  260. i, pmsg->flags & I2C_M_RD ? "read" : "write",
  261. pmsg->flags, pmsg->len, pmsg->addr);
  262. /* msgs longer than 2048 bytes are not supported by adapter */
  263. if (pmsg->len > 2048)
  264. return -EINVAL;
  265. mutex_lock(&vb->lock);
  266. /* directly send the message */
  267. if (pmsg->flags & I2C_M_RD) {
  268. /* read data */
  269. amsg->cmd = VPRBRD_I2C_CMD_ADDR;
  270. amsg->unknown2 = 0x00;
  271. amsg->unknown3 = 0x00;
  272. amsg->addr = pmsg->addr;
  273. amsg->unknown1 = 0x01;
  274. amsg->len = cpu_to_le16(pmsg->len);
  275. /* send the addr and len, we're interested to board */
  276. ret = vprbrd_i2c_addr(vb->usb_dev, amsg);
  277. if (ret < 0)
  278. error = ret;
  279. ret = vprbrd_i2c_read(vb, pmsg);
  280. if (ret < 0)
  281. error = ret;
  282. ret = vprbrd_i2c_status(i2c, smsg, error);
  283. if (ret < 0)
  284. error = ret;
  285. /* in case of protocol error, return the error */
  286. if (error < 0)
  287. goto error;
  288. } else {
  289. /* write data */
  290. ret = vprbrd_i2c_write(vb, pmsg);
  291. amsg->cmd = VPRBRD_I2C_CMD_ADDR;
  292. amsg->unknown2 = 0x00;
  293. amsg->unknown3 = 0x00;
  294. amsg->addr = pmsg->addr;
  295. amsg->unknown1 = 0x00;
  296. amsg->len = cpu_to_le16(pmsg->len);
  297. /* send the addr, the data goes to to board */
  298. ret = vprbrd_i2c_addr(vb->usb_dev, amsg);
  299. if (ret < 0)
  300. error = ret;
  301. ret = vprbrd_i2c_status(i2c, smsg, error);
  302. if (ret < 0)
  303. error = ret;
  304. if (error < 0)
  305. goto error;
  306. }
  307. mutex_unlock(&vb->lock);
  308. }
  309. return 0;
  310. error:
  311. mutex_unlock(&vb->lock);
  312. return error;
  313. }
  314. static u32 vprbrd_i2c_func(struct i2c_adapter *i2c)
  315. {
  316. return I2C_FUNC_I2C | I2C_FUNC_SMBUS_EMUL;
  317. }
  318. /* This is the actual algorithm we define */
  319. static const struct i2c_algorithm vprbrd_algorithm = {
  320. .master_xfer = vprbrd_i2c_xfer,
  321. .functionality = vprbrd_i2c_func,
  322. };
  323. static int vprbrd_i2c_probe(struct platform_device *pdev)
  324. {
  325. struct vprbrd *vb = dev_get_drvdata(pdev->dev.parent);
  326. struct vprbrd_i2c *vb_i2c;
  327. int ret;
  328. int pipe;
  329. vb_i2c = kzalloc(sizeof(*vb_i2c), GFP_KERNEL);
  330. if (vb_i2c == NULL)
  331. return -ENOMEM;
  332. /* setup i2c adapter description */
  333. vb_i2c->i2c.owner = THIS_MODULE;
  334. vb_i2c->i2c.class = I2C_CLASS_HWMON;
  335. vb_i2c->i2c.algo = &vprbrd_algorithm;
  336. vb_i2c->i2c.algo_data = vb;
  337. /* save the param in usb capabable memory */
  338. vb_i2c->bus_freq_param = i2c_bus_param;
  339. snprintf(vb_i2c->i2c.name, sizeof(vb_i2c->i2c.name),
  340. "viperboard at bus %03d device %03d",
  341. vb->usb_dev->bus->busnum, vb->usb_dev->devnum);
  342. /* setting the bus frequency */
  343. if ((i2c_bus_param <= VPRBRD_I2C_FREQ_10KHZ)
  344. && (i2c_bus_param >= VPRBRD_I2C_FREQ_6MHZ)) {
  345. pipe = usb_sndctrlpipe(vb->usb_dev, 0);
  346. ret = usb_control_msg(vb->usb_dev, pipe,
  347. VPRBRD_USB_REQUEST_I2C_FREQ, VPRBRD_USB_TYPE_OUT,
  348. 0x0000, 0x0000, &vb_i2c->bus_freq_param, 1,
  349. VPRBRD_USB_TIMEOUT_MS);
  350. if (ret != 1) {
  351. dev_err(&pdev->dev,
  352. "failure setting i2c_bus_freq to %d\n", i2c_bus_freq);
  353. ret = -EIO;
  354. goto error;
  355. }
  356. } else {
  357. dev_err(&pdev->dev,
  358. "invalid i2c_bus_freq setting:%d\n", i2c_bus_freq);
  359. ret = -EIO;
  360. goto error;
  361. }
  362. vb_i2c->i2c.dev.parent = &pdev->dev;
  363. /* attach to i2c layer */
  364. i2c_add_adapter(&vb_i2c->i2c);
  365. platform_set_drvdata(pdev, vb_i2c);
  366. return 0;
  367. error:
  368. kfree(vb_i2c);
  369. return ret;
  370. }
  371. static int vprbrd_i2c_remove(struct platform_device *pdev)
  372. {
  373. struct vprbrd_i2c *vb_i2c = platform_get_drvdata(pdev);
  374. int ret;
  375. ret = i2c_del_adapter(&vb_i2c->i2c);
  376. return ret;
  377. }
  378. static struct platform_driver vprbrd_i2c_driver = {
  379. .driver.name = "viperboard-i2c",
  380. .driver.owner = THIS_MODULE,
  381. .probe = vprbrd_i2c_probe,
  382. .remove = vprbrd_i2c_remove,
  383. };
  384. static int __init vprbrd_i2c_init(void)
  385. {
  386. switch (i2c_bus_freq) {
  387. case 6000:
  388. i2c_bus_param = VPRBRD_I2C_FREQ_6MHZ;
  389. break;
  390. case 3000:
  391. i2c_bus_param = VPRBRD_I2C_FREQ_3MHZ;
  392. break;
  393. case 1000:
  394. i2c_bus_param = VPRBRD_I2C_FREQ_1MHZ;
  395. break;
  396. case 400:
  397. i2c_bus_param = VPRBRD_I2C_FREQ_400KHZ;
  398. break;
  399. case 200:
  400. i2c_bus_param = VPRBRD_I2C_FREQ_200KHZ;
  401. break;
  402. case 100:
  403. i2c_bus_param = VPRBRD_I2C_FREQ_100KHZ;
  404. break;
  405. case 10:
  406. i2c_bus_param = VPRBRD_I2C_FREQ_10KHZ;
  407. break;
  408. default:
  409. pr_warn("invalid i2c_bus_freq (%d)\n", i2c_bus_freq);
  410. i2c_bus_param = VPRBRD_I2C_FREQ_100KHZ;
  411. }
  412. return platform_driver_register(&vprbrd_i2c_driver);
  413. }
  414. subsys_initcall(vprbrd_i2c_init);
  415. static void __exit vprbrd_i2c_exit(void)
  416. {
  417. platform_driver_unregister(&vprbrd_i2c_driver);
  418. }
  419. module_exit(vprbrd_i2c_exit);
  420. MODULE_AUTHOR("Lars Poeschel <poeschel@lemonage.de>");
  421. MODULE_DESCRIPTION("I2C master driver for Nano River Techs Viperboard");
  422. MODULE_LICENSE("GPL");
  423. MODULE_ALIAS("platform:viperboard-i2c");