vsc-tp.c 14 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright (c) 2023, Intel Corporation.
  4. * Intel Visual Sensing Controller Transport Layer Linux driver
  5. */
  6. #include <linux/acpi.h>
  7. #include <linux/cleanup.h>
  8. #include <linux/crc32.h>
  9. #include <linux/delay.h>
  10. #include <linux/device.h>
  11. #include <linux/interrupt.h>
  12. #include <linux/iopoll.h>
  13. #include <linux/irq.h>
  14. #include <linux/irqreturn.h>
  15. #include <linux/module.h>
  16. #include <linux/mutex.h>
  17. #include <linux/platform_device.h>
  18. #include <linux/spi/spi.h>
  19. #include <linux/types.h>
  20. #include "vsc-tp.h"
  21. #define VSC_TP_RESET_PIN_TOGGLE_INTERVAL_MS 20
  22. #define VSC_TP_ROM_BOOTUP_DELAY_MS 10
  23. #define VSC_TP_ROM_XFER_POLL_TIMEOUT_US (500 * USEC_PER_MSEC)
  24. #define VSC_TP_ROM_XFER_POLL_DELAY_US (20 * USEC_PER_MSEC)
  25. #define VSC_TP_WAIT_FW_POLL_TIMEOUT (2 * HZ)
  26. #define VSC_TP_WAIT_FW_POLL_DELAY_US (20 * USEC_PER_MSEC)
  27. #define VSC_TP_MAX_XFER_COUNT 5
  28. #define VSC_TP_PACKET_SYNC 0x31
  29. #define VSC_TP_CRC_SIZE sizeof(u32)
  30. #define VSC_TP_MAX_MSG_SIZE 2048
  31. /* SPI xfer timeout size */
  32. #define VSC_TP_XFER_TIMEOUT_BYTES 700
  33. #define VSC_TP_PACKET_PADDING_SIZE 1
  34. #define VSC_TP_PACKET_SIZE(pkt) \
  35. (sizeof(struct vsc_tp_packet) + le16_to_cpu((pkt)->len) + VSC_TP_CRC_SIZE)
  36. #define VSC_TP_MAX_PACKET_SIZE \
  37. (sizeof(struct vsc_tp_packet) + VSC_TP_MAX_MSG_SIZE + VSC_TP_CRC_SIZE)
  38. #define VSC_TP_MAX_XFER_SIZE \
  39. (VSC_TP_MAX_PACKET_SIZE + VSC_TP_XFER_TIMEOUT_BYTES)
  40. #define VSC_TP_NEXT_XFER_LEN(len, offset) \
  41. (len + sizeof(struct vsc_tp_packet) + VSC_TP_CRC_SIZE - offset + VSC_TP_PACKET_PADDING_SIZE)
  42. struct vsc_tp_packet {
  43. __u8 sync;
  44. __u8 cmd;
  45. __le16 len;
  46. __le32 seq;
  47. __u8 buf[] __counted_by(len);
  48. };
  49. struct vsc_tp {
  50. /* do the actual data transfer */
  51. struct spi_device *spi;
  52. /* bind with mei framework */
  53. struct platform_device *pdev;
  54. struct gpio_desc *wakeuphost;
  55. struct gpio_desc *resetfw;
  56. struct gpio_desc *wakeupfw;
  57. /* command sequence number */
  58. u32 seq;
  59. /* command buffer */
  60. void *tx_buf;
  61. void *rx_buf;
  62. atomic_t assert_cnt;
  63. wait_queue_head_t xfer_wait;
  64. vsc_tp_event_cb_t event_notify;
  65. void *event_notify_context;
  66. /* used to protect command download */
  67. struct mutex mutex;
  68. };
  69. /* GPIO resources */
  70. static const struct acpi_gpio_params wakeuphost_gpio = { 0, 0, false };
  71. static const struct acpi_gpio_params wakeuphostint_gpio = { 1, 0, false };
  72. static const struct acpi_gpio_params resetfw_gpio = { 2, 0, false };
  73. static const struct acpi_gpio_params wakeupfw = { 3, 0, false };
  74. static const struct acpi_gpio_mapping vsc_tp_acpi_gpios[] = {
  75. { "wakeuphost-gpios", &wakeuphost_gpio, 1 },
  76. { "wakeuphostint-gpios", &wakeuphostint_gpio, 1 },
  77. { "resetfw-gpios", &resetfw_gpio, 1 },
  78. { "wakeupfw-gpios", &wakeupfw, 1 },
  79. {}
  80. };
  81. static irqreturn_t vsc_tp_isr(int irq, void *data)
  82. {
  83. struct vsc_tp *tp = data;
  84. atomic_inc(&tp->assert_cnt);
  85. wake_up(&tp->xfer_wait);
  86. return IRQ_WAKE_THREAD;
  87. }
  88. static irqreturn_t vsc_tp_thread_isr(int irq, void *data)
  89. {
  90. struct vsc_tp *tp = data;
  91. if (tp->event_notify)
  92. tp->event_notify(tp->event_notify_context);
  93. return IRQ_HANDLED;
  94. }
  95. /* wakeup firmware and wait for response */
  96. static int vsc_tp_wakeup_request(struct vsc_tp *tp)
  97. {
  98. int ret;
  99. gpiod_set_value_cansleep(tp->wakeupfw, 0);
  100. ret = wait_event_timeout(tp->xfer_wait,
  101. atomic_read(&tp->assert_cnt),
  102. VSC_TP_WAIT_FW_POLL_TIMEOUT);
  103. if (!ret)
  104. return -ETIMEDOUT;
  105. return read_poll_timeout(gpiod_get_value_cansleep, ret, ret,
  106. VSC_TP_WAIT_FW_POLL_DELAY_US,
  107. VSC_TP_WAIT_FW_POLL_TIMEOUT, false,
  108. tp->wakeuphost);
  109. }
  110. static void vsc_tp_wakeup_release(struct vsc_tp *tp)
  111. {
  112. atomic_dec_if_positive(&tp->assert_cnt);
  113. gpiod_set_value_cansleep(tp->wakeupfw, 1);
  114. }
  115. static int vsc_tp_dev_xfer(struct vsc_tp *tp, void *obuf, void *ibuf, size_t len)
  116. {
  117. struct spi_message msg = { 0 };
  118. struct spi_transfer xfer = {
  119. .tx_buf = obuf,
  120. .rx_buf = ibuf,
  121. .len = len,
  122. };
  123. spi_message_init_with_transfers(&msg, &xfer, 1);
  124. return spi_sync_locked(tp->spi, &msg);
  125. }
  126. static int vsc_tp_xfer_helper(struct vsc_tp *tp, struct vsc_tp_packet *pkt,
  127. void *ibuf, u16 ilen)
  128. {
  129. int ret, offset = 0, cpy_len, src_len, dst_len = sizeof(struct vsc_tp_packet);
  130. int next_xfer_len = VSC_TP_PACKET_SIZE(pkt) + VSC_TP_XFER_TIMEOUT_BYTES;
  131. u8 *src, *crc_src, *rx_buf = tp->rx_buf;
  132. int count_down = VSC_TP_MAX_XFER_COUNT;
  133. u32 recv_crc = 0, crc = ~0;
  134. struct vsc_tp_packet ack;
  135. u8 *dst = (u8 *)&ack;
  136. bool synced = false;
  137. do {
  138. ret = vsc_tp_dev_xfer(tp, pkt, rx_buf, next_xfer_len);
  139. if (ret)
  140. return ret;
  141. memset(pkt, 0, VSC_TP_MAX_XFER_SIZE);
  142. if (synced) {
  143. src = rx_buf;
  144. src_len = next_xfer_len;
  145. } else {
  146. src = memchr(rx_buf, VSC_TP_PACKET_SYNC, next_xfer_len);
  147. if (!src)
  148. continue;
  149. synced = true;
  150. src_len = next_xfer_len - (src - rx_buf);
  151. }
  152. /* traverse received data */
  153. while (src_len > 0) {
  154. cpy_len = min(src_len, dst_len);
  155. memcpy(dst, src, cpy_len);
  156. crc_src = src;
  157. src += cpy_len;
  158. src_len -= cpy_len;
  159. dst += cpy_len;
  160. dst_len -= cpy_len;
  161. if (offset < sizeof(ack)) {
  162. offset += cpy_len;
  163. crc = crc32(crc, crc_src, cpy_len);
  164. if (!src_len)
  165. continue;
  166. if (le16_to_cpu(ack.len)) {
  167. dst = ibuf;
  168. dst_len = min(ilen, le16_to_cpu(ack.len));
  169. } else {
  170. dst = (u8 *)&recv_crc;
  171. dst_len = sizeof(recv_crc);
  172. }
  173. } else if (offset < sizeof(ack) + le16_to_cpu(ack.len)) {
  174. offset += cpy_len;
  175. crc = crc32(crc, crc_src, cpy_len);
  176. if (src_len) {
  177. int remain = sizeof(ack) + le16_to_cpu(ack.len) - offset;
  178. cpy_len = min(src_len, remain);
  179. offset += cpy_len;
  180. crc = crc32(crc, src, cpy_len);
  181. src += cpy_len;
  182. src_len -= cpy_len;
  183. if (src_len) {
  184. dst = (u8 *)&recv_crc;
  185. dst_len = sizeof(recv_crc);
  186. continue;
  187. }
  188. }
  189. next_xfer_len = VSC_TP_NEXT_XFER_LEN(le16_to_cpu(ack.len), offset);
  190. } else if (offset < sizeof(ack) + le16_to_cpu(ack.len) + VSC_TP_CRC_SIZE) {
  191. offset += cpy_len;
  192. if (src_len) {
  193. /* terminate the traverse */
  194. next_xfer_len = 0;
  195. break;
  196. }
  197. next_xfer_len = VSC_TP_NEXT_XFER_LEN(le16_to_cpu(ack.len), offset);
  198. }
  199. }
  200. } while (next_xfer_len > 0 && --count_down);
  201. if (next_xfer_len > 0)
  202. return -EAGAIN;
  203. if (~recv_crc != crc || le32_to_cpu(ack.seq) != tp->seq) {
  204. dev_err(&tp->spi->dev, "recv crc or seq error\n");
  205. return -EINVAL;
  206. }
  207. if (ack.cmd == VSC_TP_CMD_ACK || ack.cmd == VSC_TP_CMD_NACK ||
  208. ack.cmd == VSC_TP_CMD_BUSY) {
  209. dev_err(&tp->spi->dev, "recv cmd ack error\n");
  210. return -EAGAIN;
  211. }
  212. return min(le16_to_cpu(ack.len), ilen);
  213. }
  214. /**
  215. * vsc_tp_xfer - transfer data to firmware
  216. * @tp: vsc_tp device handle
  217. * @cmd: the command to be sent to the device
  218. * @obuf: the tx buffer to be sent to the device
  219. * @olen: the length of tx buffer
  220. * @ibuf: the rx buffer to receive from the device
  221. * @ilen: the length of rx buffer
  222. * Return: the length of received data in case of success,
  223. * otherwise negative value
  224. */
  225. int vsc_tp_xfer(struct vsc_tp *tp, u8 cmd, const void *obuf, size_t olen,
  226. void *ibuf, size_t ilen)
  227. {
  228. struct vsc_tp_packet *pkt = tp->tx_buf;
  229. u32 crc;
  230. int ret;
  231. if (!obuf || !ibuf || olen > VSC_TP_MAX_MSG_SIZE)
  232. return -EINVAL;
  233. guard(mutex)(&tp->mutex);
  234. pkt->sync = VSC_TP_PACKET_SYNC;
  235. pkt->cmd = cmd;
  236. pkt->len = cpu_to_le16(olen);
  237. pkt->seq = cpu_to_le32(++tp->seq);
  238. memcpy(pkt->buf, obuf, olen);
  239. crc = ~crc32(~0, (u8 *)pkt, sizeof(pkt) + olen);
  240. memcpy(pkt->buf + olen, &crc, sizeof(crc));
  241. ret = vsc_tp_wakeup_request(tp);
  242. if (unlikely(ret))
  243. dev_err(&tp->spi->dev, "wakeup firmware failed ret: %d\n", ret);
  244. else
  245. ret = vsc_tp_xfer_helper(tp, pkt, ibuf, ilen);
  246. vsc_tp_wakeup_release(tp);
  247. return ret;
  248. }
  249. EXPORT_SYMBOL_NS_GPL(vsc_tp_xfer, VSC_TP);
  250. /**
  251. * vsc_tp_rom_xfer - transfer data to rom code
  252. * @tp: vsc_tp device handle
  253. * @obuf: the data buffer to be sent to the device
  254. * @ibuf: the buffer to receive data from the device
  255. * @len: the length of tx buffer and rx buffer
  256. * Return: 0 in case of success, negative value in case of error
  257. */
  258. int vsc_tp_rom_xfer(struct vsc_tp *tp, const void *obuf, void *ibuf, size_t len)
  259. {
  260. size_t words = len / sizeof(__be32);
  261. int ret;
  262. if (len % sizeof(__be32) || len > VSC_TP_MAX_MSG_SIZE)
  263. return -EINVAL;
  264. guard(mutex)(&tp->mutex);
  265. /* rom xfer is big endian */
  266. cpu_to_be32_array(tp->tx_buf, obuf, words);
  267. ret = read_poll_timeout(gpiod_get_value_cansleep, ret,
  268. !ret, VSC_TP_ROM_XFER_POLL_DELAY_US,
  269. VSC_TP_ROM_XFER_POLL_TIMEOUT_US, false,
  270. tp->wakeuphost);
  271. if (ret) {
  272. dev_err(&tp->spi->dev, "wait rom failed ret: %d\n", ret);
  273. return ret;
  274. }
  275. ret = vsc_tp_dev_xfer(tp, tp->tx_buf, ibuf ? tp->rx_buf : NULL, len);
  276. if (ret)
  277. return ret;
  278. if (ibuf)
  279. be32_to_cpu_array(ibuf, tp->rx_buf, words);
  280. return ret;
  281. }
  282. /**
  283. * vsc_tp_reset - reset vsc transport layer
  284. * @tp: vsc_tp device handle
  285. */
  286. void vsc_tp_reset(struct vsc_tp *tp)
  287. {
  288. disable_irq(tp->spi->irq);
  289. /* toggle reset pin */
  290. gpiod_set_value_cansleep(tp->resetfw, 0);
  291. msleep(VSC_TP_RESET_PIN_TOGGLE_INTERVAL_MS);
  292. gpiod_set_value_cansleep(tp->resetfw, 1);
  293. /* wait for ROM */
  294. msleep(VSC_TP_ROM_BOOTUP_DELAY_MS);
  295. /*
  296. * Set default host wakeup pin to non-active
  297. * to avoid unexpected host irq interrupt.
  298. */
  299. gpiod_set_value_cansleep(tp->wakeupfw, 1);
  300. atomic_set(&tp->assert_cnt, 0);
  301. enable_irq(tp->spi->irq);
  302. }
  303. EXPORT_SYMBOL_NS_GPL(vsc_tp_reset, VSC_TP);
  304. /**
  305. * vsc_tp_need_read - check if device has data to sent
  306. * @tp: vsc_tp device handle
  307. * Return: true if device has data to sent, otherwise false
  308. */
  309. bool vsc_tp_need_read(struct vsc_tp *tp)
  310. {
  311. if (!atomic_read(&tp->assert_cnt))
  312. return false;
  313. if (!gpiod_get_value_cansleep(tp->wakeuphost))
  314. return false;
  315. if (!gpiod_get_value_cansleep(tp->wakeupfw))
  316. return false;
  317. return true;
  318. }
  319. EXPORT_SYMBOL_NS_GPL(vsc_tp_need_read, VSC_TP);
  320. /**
  321. * vsc_tp_register_event_cb - register a callback function to receive event
  322. * @tp: vsc_tp device handle
  323. * @event_cb: callback function
  324. * @context: execution context of event callback
  325. * Return: 0 in case of success, negative value in case of error
  326. */
  327. int vsc_tp_register_event_cb(struct vsc_tp *tp, vsc_tp_event_cb_t event_cb,
  328. void *context)
  329. {
  330. tp->event_notify = event_cb;
  331. tp->event_notify_context = context;
  332. return 0;
  333. }
  334. EXPORT_SYMBOL_NS_GPL(vsc_tp_register_event_cb, VSC_TP);
  335. /**
  336. * vsc_tp_request_irq - request irq for vsc_tp device
  337. * @tp: vsc_tp device handle
  338. */
  339. int vsc_tp_request_irq(struct vsc_tp *tp)
  340. {
  341. struct spi_device *spi = tp->spi;
  342. struct device *dev = &spi->dev;
  343. int ret;
  344. irq_set_status_flags(spi->irq, IRQ_DISABLE_UNLAZY);
  345. ret = request_threaded_irq(spi->irq, vsc_tp_isr, vsc_tp_thread_isr,
  346. IRQF_TRIGGER_FALLING | IRQF_ONESHOT,
  347. dev_name(dev), tp);
  348. if (ret)
  349. return ret;
  350. return 0;
  351. }
  352. EXPORT_SYMBOL_NS_GPL(vsc_tp_request_irq, VSC_TP);
  353. /**
  354. * vsc_tp_free_irq - free irq for vsc_tp device
  355. * @tp: vsc_tp device handle
  356. */
  357. void vsc_tp_free_irq(struct vsc_tp *tp)
  358. {
  359. free_irq(tp->spi->irq, tp);
  360. }
  361. EXPORT_SYMBOL_NS_GPL(vsc_tp_free_irq, VSC_TP);
  362. /**
  363. * vsc_tp_intr_synchronize - synchronize vsc_tp interrupt
  364. * @tp: vsc_tp device handle
  365. */
  366. void vsc_tp_intr_synchronize(struct vsc_tp *tp)
  367. {
  368. synchronize_irq(tp->spi->irq);
  369. }
  370. EXPORT_SYMBOL_NS_GPL(vsc_tp_intr_synchronize, VSC_TP);
  371. /**
  372. * vsc_tp_intr_enable - enable vsc_tp interrupt
  373. * @tp: vsc_tp device handle
  374. */
  375. void vsc_tp_intr_enable(struct vsc_tp *tp)
  376. {
  377. enable_irq(tp->spi->irq);
  378. }
  379. EXPORT_SYMBOL_NS_GPL(vsc_tp_intr_enable, VSC_TP);
  380. /**
  381. * vsc_tp_intr_disable - disable vsc_tp interrupt
  382. * @tp: vsc_tp device handle
  383. */
  384. void vsc_tp_intr_disable(struct vsc_tp *tp)
  385. {
  386. disable_irq(tp->spi->irq);
  387. }
  388. EXPORT_SYMBOL_NS_GPL(vsc_tp_intr_disable, VSC_TP);
  389. static int vsc_tp_match_any(struct acpi_device *adev, void *data)
  390. {
  391. struct acpi_device **__adev = data;
  392. *__adev = adev;
  393. return 1;
  394. }
  395. static int vsc_tp_probe(struct spi_device *spi)
  396. {
  397. struct vsc_tp *tp;
  398. struct platform_device_info pinfo = {
  399. .name = "intel_vsc",
  400. .data = &tp,
  401. .size_data = sizeof(tp),
  402. .id = PLATFORM_DEVID_NONE,
  403. };
  404. struct device *dev = &spi->dev;
  405. struct platform_device *pdev;
  406. struct acpi_device *adev;
  407. int ret;
  408. tp = devm_kzalloc(dev, sizeof(*tp), GFP_KERNEL);
  409. if (!tp)
  410. return -ENOMEM;
  411. tp->tx_buf = devm_kzalloc(dev, VSC_TP_MAX_XFER_SIZE, GFP_KERNEL);
  412. if (!tp->tx_buf)
  413. return -ENOMEM;
  414. tp->rx_buf = devm_kzalloc(dev, VSC_TP_MAX_XFER_SIZE, GFP_KERNEL);
  415. if (!tp->rx_buf)
  416. return -ENOMEM;
  417. ret = devm_acpi_dev_add_driver_gpios(dev, vsc_tp_acpi_gpios);
  418. if (ret)
  419. return ret;
  420. tp->wakeuphost = devm_gpiod_get(dev, "wakeuphost", GPIOD_IN);
  421. if (IS_ERR(tp->wakeuphost))
  422. return PTR_ERR(tp->wakeuphost);
  423. tp->resetfw = devm_gpiod_get(dev, "resetfw", GPIOD_OUT_HIGH);
  424. if (IS_ERR(tp->resetfw))
  425. return PTR_ERR(tp->resetfw);
  426. tp->wakeupfw = devm_gpiod_get(dev, "wakeupfw", GPIOD_OUT_HIGH);
  427. if (IS_ERR(tp->wakeupfw))
  428. return PTR_ERR(tp->wakeupfw);
  429. atomic_set(&tp->assert_cnt, 0);
  430. init_waitqueue_head(&tp->xfer_wait);
  431. tp->spi = spi;
  432. irq_set_status_flags(spi->irq, IRQ_DISABLE_UNLAZY);
  433. ret = request_threaded_irq(spi->irq, vsc_tp_isr, vsc_tp_thread_isr,
  434. IRQF_TRIGGER_FALLING | IRQF_ONESHOT,
  435. dev_name(dev), tp);
  436. if (ret)
  437. return ret;
  438. mutex_init(&tp->mutex);
  439. /* only one child acpi device */
  440. ret = acpi_dev_for_each_child(ACPI_COMPANION(dev),
  441. vsc_tp_match_any, &adev);
  442. if (!ret) {
  443. ret = -ENODEV;
  444. goto err_destroy_lock;
  445. }
  446. pinfo.fwnode = acpi_fwnode_handle(adev);
  447. pdev = platform_device_register_full(&pinfo);
  448. if (IS_ERR(pdev)) {
  449. ret = PTR_ERR(pdev);
  450. goto err_destroy_lock;
  451. }
  452. tp->pdev = pdev;
  453. spi_set_drvdata(spi, tp);
  454. return 0;
  455. err_destroy_lock:
  456. mutex_destroy(&tp->mutex);
  457. free_irq(spi->irq, tp);
  458. return ret;
  459. }
  460. static void vsc_tp_remove(struct spi_device *spi)
  461. {
  462. struct vsc_tp *tp = spi_get_drvdata(spi);
  463. platform_device_unregister(tp->pdev);
  464. mutex_destroy(&tp->mutex);
  465. free_irq(spi->irq, tp);
  466. }
  467. static void vsc_tp_shutdown(struct spi_device *spi)
  468. {
  469. struct vsc_tp *tp = spi_get_drvdata(spi);
  470. platform_device_unregister(tp->pdev);
  471. mutex_destroy(&tp->mutex);
  472. vsc_tp_reset(tp);
  473. free_irq(spi->irq, tp);
  474. }
  475. static const struct acpi_device_id vsc_tp_acpi_ids[] = {
  476. { "INTC1009" }, /* Raptor Lake */
  477. { "INTC1058" }, /* Tiger Lake */
  478. { "INTC1094" }, /* Alder Lake */
  479. { "INTC10D0" }, /* Meteor Lake */
  480. {}
  481. };
  482. MODULE_DEVICE_TABLE(acpi, vsc_tp_acpi_ids);
  483. static struct spi_driver vsc_tp_driver = {
  484. .probe = vsc_tp_probe,
  485. .remove = vsc_tp_remove,
  486. .shutdown = vsc_tp_shutdown,
  487. .driver = {
  488. .name = "vsc-tp",
  489. .acpi_match_table = vsc_tp_acpi_ids,
  490. },
  491. };
  492. module_spi_driver(vsc_tp_driver);
  493. MODULE_AUTHOR("Wentong Wu <wentong.wu@intel.com>");
  494. MODULE_AUTHOR("Zhifeng Wang <zhifeng.wang@intel.com>");
  495. MODULE_DESCRIPTION("Intel Visual Sensing Controller Transport Layer");
  496. MODULE_LICENSE("GPL");