bus.c 49 KB

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  1. // SPDX-License-Identifier: (GPL-2.0 OR BSD-3-Clause)
  2. // Copyright(c) 2015-17 Intel Corporation.
  3. #include <linux/acpi.h>
  4. #include <linux/delay.h>
  5. #include <linux/mod_devicetable.h>
  6. #include <linux/pm_runtime.h>
  7. #include <linux/soundwire/sdw_registers.h>
  8. #include <linux/soundwire/sdw.h>
  9. #include <linux/soundwire/sdw_type.h>
  10. #include "bus.h"
  11. #include "irq.h"
  12. #include "sysfs_local.h"
  13. static DEFINE_IDA(sdw_bus_ida);
  14. static int sdw_get_id(struct sdw_bus *bus)
  15. {
  16. int rc = ida_alloc(&sdw_bus_ida, GFP_KERNEL);
  17. if (rc < 0)
  18. return rc;
  19. bus->id = rc;
  20. if (bus->controller_id == -1)
  21. bus->controller_id = rc;
  22. return 0;
  23. }
  24. /**
  25. * sdw_bus_master_add() - add a bus Master instance
  26. * @bus: bus instance
  27. * @parent: parent device
  28. * @fwnode: firmware node handle
  29. *
  30. * Initializes the bus instance, read properties and create child
  31. * devices.
  32. */
  33. int sdw_bus_master_add(struct sdw_bus *bus, struct device *parent,
  34. struct fwnode_handle *fwnode)
  35. {
  36. struct sdw_master_prop *prop = NULL;
  37. int ret;
  38. if (!parent) {
  39. pr_err("SoundWire parent device is not set\n");
  40. return -ENODEV;
  41. }
  42. ret = sdw_get_id(bus);
  43. if (ret < 0) {
  44. dev_err(parent, "Failed to get bus id\n");
  45. return ret;
  46. }
  47. ret = sdw_master_device_add(bus, parent, fwnode);
  48. if (ret < 0) {
  49. dev_err(parent, "Failed to add master device at link %d\n",
  50. bus->link_id);
  51. return ret;
  52. }
  53. if (!bus->ops) {
  54. dev_err(bus->dev, "SoundWire Bus ops are not set\n");
  55. return -EINVAL;
  56. }
  57. if (!bus->compute_params) {
  58. dev_err(bus->dev,
  59. "Bandwidth allocation not configured, compute_params no set\n");
  60. return -EINVAL;
  61. }
  62. /*
  63. * Give each bus_lock and msg_lock a unique key so that lockdep won't
  64. * trigger a deadlock warning when the locks of several buses are
  65. * grabbed during configuration of a multi-bus stream.
  66. */
  67. lockdep_register_key(&bus->msg_lock_key);
  68. __mutex_init(&bus->msg_lock, "msg_lock", &bus->msg_lock_key);
  69. lockdep_register_key(&bus->bus_lock_key);
  70. __mutex_init(&bus->bus_lock, "bus_lock", &bus->bus_lock_key);
  71. INIT_LIST_HEAD(&bus->slaves);
  72. INIT_LIST_HEAD(&bus->m_rt_list);
  73. /*
  74. * Initialize multi_link flag
  75. */
  76. bus->multi_link = false;
  77. if (bus->ops->read_prop) {
  78. ret = bus->ops->read_prop(bus);
  79. if (ret < 0) {
  80. dev_err(bus->dev,
  81. "Bus read properties failed:%d\n", ret);
  82. return ret;
  83. }
  84. }
  85. sdw_bus_debugfs_init(bus);
  86. /*
  87. * Device numbers in SoundWire are 0 through 15. Enumeration device
  88. * number (0), Broadcast device number (15), Group numbers (12 and
  89. * 13) and Master device number (14) are not used for assignment so
  90. * mask these and other higher bits.
  91. */
  92. /* Set higher order bits */
  93. *bus->assigned = ~GENMASK(SDW_BROADCAST_DEV_NUM, SDW_ENUM_DEV_NUM);
  94. /* Set enumuration device number and broadcast device number */
  95. set_bit(SDW_ENUM_DEV_NUM, bus->assigned);
  96. set_bit(SDW_BROADCAST_DEV_NUM, bus->assigned);
  97. /* Set group device numbers and master device number */
  98. set_bit(SDW_GROUP12_DEV_NUM, bus->assigned);
  99. set_bit(SDW_GROUP13_DEV_NUM, bus->assigned);
  100. set_bit(SDW_MASTER_DEV_NUM, bus->assigned);
  101. /*
  102. * SDW is an enumerable bus, but devices can be powered off. So,
  103. * they won't be able to report as present.
  104. *
  105. * Create Slave devices based on Slaves described in
  106. * the respective firmware (ACPI/DT)
  107. */
  108. if (IS_ENABLED(CONFIG_ACPI) && ACPI_HANDLE(bus->dev))
  109. ret = sdw_acpi_find_slaves(bus);
  110. else if (IS_ENABLED(CONFIG_OF) && bus->dev->of_node)
  111. ret = sdw_of_find_slaves(bus);
  112. else
  113. ret = -ENOTSUPP; /* No ACPI/DT so error out */
  114. if (ret < 0) {
  115. dev_err(bus->dev, "Finding slaves failed:%d\n", ret);
  116. return ret;
  117. }
  118. /*
  119. * Initialize clock values based on Master properties. The max
  120. * frequency is read from max_clk_freq property. Current assumption
  121. * is that the bus will start at highest clock frequency when
  122. * powered on.
  123. *
  124. * Default active bank will be 0 as out of reset the Slaves have
  125. * to start with bank 0 (Table 40 of Spec)
  126. */
  127. prop = &bus->prop;
  128. bus->params.max_dr_freq = prop->max_clk_freq * SDW_DOUBLE_RATE_FACTOR;
  129. bus->params.curr_dr_freq = bus->params.max_dr_freq;
  130. bus->params.curr_bank = SDW_BANK0;
  131. bus->params.next_bank = SDW_BANK1;
  132. ret = sdw_irq_create(bus, fwnode);
  133. if (ret)
  134. return ret;
  135. return 0;
  136. }
  137. EXPORT_SYMBOL(sdw_bus_master_add);
  138. static int sdw_delete_slave(struct device *dev, void *data)
  139. {
  140. struct sdw_slave *slave = dev_to_sdw_dev(dev);
  141. struct sdw_bus *bus = slave->bus;
  142. pm_runtime_disable(dev);
  143. sdw_slave_debugfs_exit(slave);
  144. mutex_lock(&bus->bus_lock);
  145. if (slave->dev_num) { /* clear dev_num if assigned */
  146. clear_bit(slave->dev_num, bus->assigned);
  147. if (bus->ops && bus->ops->put_device_num)
  148. bus->ops->put_device_num(bus, slave);
  149. }
  150. list_del_init(&slave->node);
  151. mutex_unlock(&bus->bus_lock);
  152. device_unregister(dev);
  153. return 0;
  154. }
  155. /**
  156. * sdw_bus_master_delete() - delete the bus master instance
  157. * @bus: bus to be deleted
  158. *
  159. * Remove the instance, delete the child devices.
  160. */
  161. void sdw_bus_master_delete(struct sdw_bus *bus)
  162. {
  163. device_for_each_child(bus->dev, NULL, sdw_delete_slave);
  164. sdw_irq_delete(bus);
  165. sdw_master_device_del(bus);
  166. sdw_bus_debugfs_exit(bus);
  167. lockdep_unregister_key(&bus->bus_lock_key);
  168. lockdep_unregister_key(&bus->msg_lock_key);
  169. ida_free(&sdw_bus_ida, bus->id);
  170. }
  171. EXPORT_SYMBOL(sdw_bus_master_delete);
  172. /*
  173. * SDW IO Calls
  174. */
  175. static inline int find_response_code(enum sdw_command_response resp)
  176. {
  177. switch (resp) {
  178. case SDW_CMD_OK:
  179. return 0;
  180. case SDW_CMD_IGNORED:
  181. return -ENODATA;
  182. case SDW_CMD_TIMEOUT:
  183. return -ETIMEDOUT;
  184. default:
  185. return -EIO;
  186. }
  187. }
  188. static inline int do_transfer(struct sdw_bus *bus, struct sdw_msg *msg)
  189. {
  190. int retry = bus->prop.err_threshold;
  191. enum sdw_command_response resp;
  192. int ret = 0, i;
  193. for (i = 0; i <= retry; i++) {
  194. resp = bus->ops->xfer_msg(bus, msg);
  195. ret = find_response_code(resp);
  196. /* if cmd is ok or ignored return */
  197. if (ret == 0 || ret == -ENODATA)
  198. return ret;
  199. }
  200. return ret;
  201. }
  202. static inline int do_transfer_defer(struct sdw_bus *bus,
  203. struct sdw_msg *msg)
  204. {
  205. struct sdw_defer *defer = &bus->defer_msg;
  206. int retry = bus->prop.err_threshold;
  207. enum sdw_command_response resp;
  208. int ret = 0, i;
  209. defer->msg = msg;
  210. defer->length = msg->len;
  211. init_completion(&defer->complete);
  212. for (i = 0; i <= retry; i++) {
  213. resp = bus->ops->xfer_msg_defer(bus);
  214. ret = find_response_code(resp);
  215. /* if cmd is ok or ignored return */
  216. if (ret == 0 || ret == -ENODATA)
  217. return ret;
  218. }
  219. return ret;
  220. }
  221. static int sdw_transfer_unlocked(struct sdw_bus *bus, struct sdw_msg *msg)
  222. {
  223. int ret;
  224. ret = do_transfer(bus, msg);
  225. if (ret != 0 && ret != -ENODATA)
  226. dev_err(bus->dev, "trf on Slave %d failed:%d %s addr %x count %d\n",
  227. msg->dev_num, ret,
  228. (msg->flags & SDW_MSG_FLAG_WRITE) ? "write" : "read",
  229. msg->addr, msg->len);
  230. return ret;
  231. }
  232. /**
  233. * sdw_transfer() - Synchronous transfer message to a SDW Slave device
  234. * @bus: SDW bus
  235. * @msg: SDW message to be xfered
  236. */
  237. int sdw_transfer(struct sdw_bus *bus, struct sdw_msg *msg)
  238. {
  239. int ret;
  240. mutex_lock(&bus->msg_lock);
  241. ret = sdw_transfer_unlocked(bus, msg);
  242. mutex_unlock(&bus->msg_lock);
  243. return ret;
  244. }
  245. /**
  246. * sdw_show_ping_status() - Direct report of PING status, to be used by Peripheral drivers
  247. * @bus: SDW bus
  248. * @sync_delay: Delay before reading status
  249. */
  250. void sdw_show_ping_status(struct sdw_bus *bus, bool sync_delay)
  251. {
  252. u32 status;
  253. if (!bus->ops->read_ping_status)
  254. return;
  255. /*
  256. * wait for peripheral to sync if desired. 10-15ms should be more than
  257. * enough in most cases.
  258. */
  259. if (sync_delay)
  260. usleep_range(10000, 15000);
  261. mutex_lock(&bus->msg_lock);
  262. status = bus->ops->read_ping_status(bus);
  263. mutex_unlock(&bus->msg_lock);
  264. if (!status)
  265. dev_warn(bus->dev, "%s: no peripherals attached\n", __func__);
  266. else
  267. dev_dbg(bus->dev, "PING status: %#x\n", status);
  268. }
  269. EXPORT_SYMBOL(sdw_show_ping_status);
  270. /**
  271. * sdw_transfer_defer() - Asynchronously transfer message to a SDW Slave device
  272. * @bus: SDW bus
  273. * @msg: SDW message to be xfered
  274. *
  275. * Caller needs to hold the msg_lock lock while calling this
  276. */
  277. int sdw_transfer_defer(struct sdw_bus *bus, struct sdw_msg *msg)
  278. {
  279. int ret;
  280. if (!bus->ops->xfer_msg_defer)
  281. return -ENOTSUPP;
  282. ret = do_transfer_defer(bus, msg);
  283. if (ret != 0 && ret != -ENODATA)
  284. dev_err(bus->dev, "Defer trf on Slave %d failed:%d\n",
  285. msg->dev_num, ret);
  286. return ret;
  287. }
  288. int sdw_fill_msg(struct sdw_msg *msg, struct sdw_slave *slave,
  289. u32 addr, size_t count, u16 dev_num, u8 flags, u8 *buf)
  290. {
  291. memset(msg, 0, sizeof(*msg));
  292. msg->addr = addr; /* addr is 16 bit and truncated here */
  293. msg->len = count;
  294. msg->dev_num = dev_num;
  295. msg->flags = flags;
  296. msg->buf = buf;
  297. if (addr < SDW_REG_NO_PAGE) /* no paging area */
  298. return 0;
  299. if (addr >= SDW_REG_MAX) { /* illegal addr */
  300. pr_err("SDW: Invalid address %x passed\n", addr);
  301. return -EINVAL;
  302. }
  303. if (addr < SDW_REG_OPTIONAL_PAGE) { /* 32k but no page */
  304. if (slave && !slave->prop.paging_support)
  305. return 0;
  306. /* no need for else as that will fall-through to paging */
  307. }
  308. /* paging mandatory */
  309. if (dev_num == SDW_ENUM_DEV_NUM || dev_num == SDW_BROADCAST_DEV_NUM) {
  310. pr_err("SDW: Invalid device for paging :%d\n", dev_num);
  311. return -EINVAL;
  312. }
  313. if (!slave) {
  314. pr_err("SDW: No slave for paging addr\n");
  315. return -EINVAL;
  316. }
  317. if (!slave->prop.paging_support) {
  318. dev_err(&slave->dev,
  319. "address %x needs paging but no support\n", addr);
  320. return -EINVAL;
  321. }
  322. msg->addr_page1 = FIELD_GET(SDW_SCP_ADDRPAGE1_MASK, addr);
  323. msg->addr_page2 = FIELD_GET(SDW_SCP_ADDRPAGE2_MASK, addr);
  324. msg->addr |= BIT(15);
  325. msg->page = true;
  326. return 0;
  327. }
  328. /*
  329. * Read/Write IO functions.
  330. */
  331. static int sdw_ntransfer_no_pm(struct sdw_slave *slave, u32 addr, u8 flags,
  332. size_t count, u8 *val)
  333. {
  334. struct sdw_msg msg;
  335. size_t size;
  336. int ret;
  337. while (count) {
  338. // Only handle bytes up to next page boundary
  339. size = min_t(size_t, count, (SDW_REGADDR + 1) - (addr & SDW_REGADDR));
  340. ret = sdw_fill_msg(&msg, slave, addr, size, slave->dev_num, flags, val);
  341. if (ret < 0)
  342. return ret;
  343. ret = sdw_transfer(slave->bus, &msg);
  344. if (ret < 0 && !slave->is_mockup_device)
  345. return ret;
  346. addr += size;
  347. val += size;
  348. count -= size;
  349. }
  350. return 0;
  351. }
  352. /**
  353. * sdw_nread_no_pm() - Read "n" contiguous SDW Slave registers with no PM
  354. * @slave: SDW Slave
  355. * @addr: Register address
  356. * @count: length
  357. * @val: Buffer for values to be read
  358. *
  359. * Note that if the message crosses a page boundary each page will be
  360. * transferred under a separate invocation of the msg_lock.
  361. */
  362. int sdw_nread_no_pm(struct sdw_slave *slave, u32 addr, size_t count, u8 *val)
  363. {
  364. return sdw_ntransfer_no_pm(slave, addr, SDW_MSG_FLAG_READ, count, val);
  365. }
  366. EXPORT_SYMBOL(sdw_nread_no_pm);
  367. /**
  368. * sdw_nwrite_no_pm() - Write "n" contiguous SDW Slave registers with no PM
  369. * @slave: SDW Slave
  370. * @addr: Register address
  371. * @count: length
  372. * @val: Buffer for values to be written
  373. *
  374. * Note that if the message crosses a page boundary each page will be
  375. * transferred under a separate invocation of the msg_lock.
  376. */
  377. int sdw_nwrite_no_pm(struct sdw_slave *slave, u32 addr, size_t count, const u8 *val)
  378. {
  379. return sdw_ntransfer_no_pm(slave, addr, SDW_MSG_FLAG_WRITE, count, (u8 *)val);
  380. }
  381. EXPORT_SYMBOL(sdw_nwrite_no_pm);
  382. /**
  383. * sdw_write_no_pm() - Write a SDW Slave register with no PM
  384. * @slave: SDW Slave
  385. * @addr: Register address
  386. * @value: Register value
  387. */
  388. int sdw_write_no_pm(struct sdw_slave *slave, u32 addr, u8 value)
  389. {
  390. return sdw_nwrite_no_pm(slave, addr, 1, &value);
  391. }
  392. EXPORT_SYMBOL(sdw_write_no_pm);
  393. static int
  394. sdw_bread_no_pm(struct sdw_bus *bus, u16 dev_num, u32 addr)
  395. {
  396. struct sdw_msg msg;
  397. u8 buf;
  398. int ret;
  399. ret = sdw_fill_msg(&msg, NULL, addr, 1, dev_num,
  400. SDW_MSG_FLAG_READ, &buf);
  401. if (ret < 0)
  402. return ret;
  403. ret = sdw_transfer(bus, &msg);
  404. if (ret < 0)
  405. return ret;
  406. return buf;
  407. }
  408. static int
  409. sdw_bwrite_no_pm(struct sdw_bus *bus, u16 dev_num, u32 addr, u8 value)
  410. {
  411. struct sdw_msg msg;
  412. int ret;
  413. ret = sdw_fill_msg(&msg, NULL, addr, 1, dev_num,
  414. SDW_MSG_FLAG_WRITE, &value);
  415. if (ret < 0)
  416. return ret;
  417. return sdw_transfer(bus, &msg);
  418. }
  419. int sdw_bread_no_pm_unlocked(struct sdw_bus *bus, u16 dev_num, u32 addr)
  420. {
  421. struct sdw_msg msg;
  422. u8 buf;
  423. int ret;
  424. ret = sdw_fill_msg(&msg, NULL, addr, 1, dev_num,
  425. SDW_MSG_FLAG_READ, &buf);
  426. if (ret < 0)
  427. return ret;
  428. ret = sdw_transfer_unlocked(bus, &msg);
  429. if (ret < 0)
  430. return ret;
  431. return buf;
  432. }
  433. EXPORT_SYMBOL(sdw_bread_no_pm_unlocked);
  434. int sdw_bwrite_no_pm_unlocked(struct sdw_bus *bus, u16 dev_num, u32 addr, u8 value)
  435. {
  436. struct sdw_msg msg;
  437. int ret;
  438. ret = sdw_fill_msg(&msg, NULL, addr, 1, dev_num,
  439. SDW_MSG_FLAG_WRITE, &value);
  440. if (ret < 0)
  441. return ret;
  442. return sdw_transfer_unlocked(bus, &msg);
  443. }
  444. EXPORT_SYMBOL(sdw_bwrite_no_pm_unlocked);
  445. /**
  446. * sdw_read_no_pm() - Read a SDW Slave register with no PM
  447. * @slave: SDW Slave
  448. * @addr: Register address
  449. */
  450. int sdw_read_no_pm(struct sdw_slave *slave, u32 addr)
  451. {
  452. u8 buf;
  453. int ret;
  454. ret = sdw_nread_no_pm(slave, addr, 1, &buf);
  455. if (ret < 0)
  456. return ret;
  457. else
  458. return buf;
  459. }
  460. EXPORT_SYMBOL(sdw_read_no_pm);
  461. int sdw_update_no_pm(struct sdw_slave *slave, u32 addr, u8 mask, u8 val)
  462. {
  463. int tmp;
  464. tmp = sdw_read_no_pm(slave, addr);
  465. if (tmp < 0)
  466. return tmp;
  467. tmp = (tmp & ~mask) | val;
  468. return sdw_write_no_pm(slave, addr, tmp);
  469. }
  470. EXPORT_SYMBOL(sdw_update_no_pm);
  471. /* Read-Modify-Write Slave register */
  472. int sdw_update(struct sdw_slave *slave, u32 addr, u8 mask, u8 val)
  473. {
  474. int tmp;
  475. tmp = sdw_read(slave, addr);
  476. if (tmp < 0)
  477. return tmp;
  478. tmp = (tmp & ~mask) | val;
  479. return sdw_write(slave, addr, tmp);
  480. }
  481. EXPORT_SYMBOL(sdw_update);
  482. /**
  483. * sdw_nread() - Read "n" contiguous SDW Slave registers
  484. * @slave: SDW Slave
  485. * @addr: Register address
  486. * @count: length
  487. * @val: Buffer for values to be read
  488. *
  489. * This version of the function will take a PM reference to the slave
  490. * device.
  491. * Note that if the message crosses a page boundary each page will be
  492. * transferred under a separate invocation of the msg_lock.
  493. */
  494. int sdw_nread(struct sdw_slave *slave, u32 addr, size_t count, u8 *val)
  495. {
  496. int ret;
  497. ret = pm_runtime_get_sync(&slave->dev);
  498. if (ret < 0 && ret != -EACCES) {
  499. pm_runtime_put_noidle(&slave->dev);
  500. return ret;
  501. }
  502. ret = sdw_nread_no_pm(slave, addr, count, val);
  503. pm_runtime_mark_last_busy(&slave->dev);
  504. pm_runtime_put(&slave->dev);
  505. return ret;
  506. }
  507. EXPORT_SYMBOL(sdw_nread);
  508. /**
  509. * sdw_nwrite() - Write "n" contiguous SDW Slave registers
  510. * @slave: SDW Slave
  511. * @addr: Register address
  512. * @count: length
  513. * @val: Buffer for values to be written
  514. *
  515. * This version of the function will take a PM reference to the slave
  516. * device.
  517. * Note that if the message crosses a page boundary each page will be
  518. * transferred under a separate invocation of the msg_lock.
  519. */
  520. int sdw_nwrite(struct sdw_slave *slave, u32 addr, size_t count, const u8 *val)
  521. {
  522. int ret;
  523. ret = pm_runtime_get_sync(&slave->dev);
  524. if (ret < 0 && ret != -EACCES) {
  525. pm_runtime_put_noidle(&slave->dev);
  526. return ret;
  527. }
  528. ret = sdw_nwrite_no_pm(slave, addr, count, val);
  529. pm_runtime_mark_last_busy(&slave->dev);
  530. pm_runtime_put(&slave->dev);
  531. return ret;
  532. }
  533. EXPORT_SYMBOL(sdw_nwrite);
  534. /**
  535. * sdw_read() - Read a SDW Slave register
  536. * @slave: SDW Slave
  537. * @addr: Register address
  538. *
  539. * This version of the function will take a PM reference to the slave
  540. * device.
  541. */
  542. int sdw_read(struct sdw_slave *slave, u32 addr)
  543. {
  544. u8 buf;
  545. int ret;
  546. ret = sdw_nread(slave, addr, 1, &buf);
  547. if (ret < 0)
  548. return ret;
  549. return buf;
  550. }
  551. EXPORT_SYMBOL(sdw_read);
  552. /**
  553. * sdw_write() - Write a SDW Slave register
  554. * @slave: SDW Slave
  555. * @addr: Register address
  556. * @value: Register value
  557. *
  558. * This version of the function will take a PM reference to the slave
  559. * device.
  560. */
  561. int sdw_write(struct sdw_slave *slave, u32 addr, u8 value)
  562. {
  563. return sdw_nwrite(slave, addr, 1, &value);
  564. }
  565. EXPORT_SYMBOL(sdw_write);
  566. /*
  567. * SDW alert handling
  568. */
  569. /* called with bus_lock held */
  570. static struct sdw_slave *sdw_get_slave(struct sdw_bus *bus, int i)
  571. {
  572. struct sdw_slave *slave;
  573. list_for_each_entry(slave, &bus->slaves, node) {
  574. if (slave->dev_num == i)
  575. return slave;
  576. }
  577. return NULL;
  578. }
  579. int sdw_compare_devid(struct sdw_slave *slave, struct sdw_slave_id id)
  580. {
  581. if (slave->id.mfg_id != id.mfg_id ||
  582. slave->id.part_id != id.part_id ||
  583. slave->id.class_id != id.class_id ||
  584. (slave->id.unique_id != SDW_IGNORED_UNIQUE_ID &&
  585. slave->id.unique_id != id.unique_id))
  586. return -ENODEV;
  587. return 0;
  588. }
  589. EXPORT_SYMBOL(sdw_compare_devid);
  590. /* called with bus_lock held */
  591. static int sdw_get_device_num(struct sdw_slave *slave)
  592. {
  593. struct sdw_bus *bus = slave->bus;
  594. int bit;
  595. if (bus->ops && bus->ops->get_device_num) {
  596. bit = bus->ops->get_device_num(bus, slave);
  597. if (bit < 0)
  598. goto err;
  599. } else {
  600. bit = find_first_zero_bit(bus->assigned, SDW_MAX_DEVICES);
  601. if (bit == SDW_MAX_DEVICES) {
  602. bit = -ENODEV;
  603. goto err;
  604. }
  605. }
  606. /*
  607. * Do not update dev_num in Slave data structure here,
  608. * Update once program dev_num is successful
  609. */
  610. set_bit(bit, bus->assigned);
  611. err:
  612. return bit;
  613. }
  614. static int sdw_assign_device_num(struct sdw_slave *slave)
  615. {
  616. struct sdw_bus *bus = slave->bus;
  617. int ret, dev_num;
  618. bool new_device = false;
  619. /* check first if device number is assigned, if so reuse that */
  620. if (!slave->dev_num) {
  621. if (!slave->dev_num_sticky) {
  622. mutex_lock(&slave->bus->bus_lock);
  623. dev_num = sdw_get_device_num(slave);
  624. mutex_unlock(&slave->bus->bus_lock);
  625. if (dev_num < 0) {
  626. dev_err(bus->dev, "Get dev_num failed: %d\n",
  627. dev_num);
  628. return dev_num;
  629. }
  630. slave->dev_num = dev_num;
  631. slave->dev_num_sticky = dev_num;
  632. new_device = true;
  633. } else {
  634. slave->dev_num = slave->dev_num_sticky;
  635. }
  636. }
  637. if (!new_device)
  638. dev_dbg(bus->dev,
  639. "Slave already registered, reusing dev_num:%d\n",
  640. slave->dev_num);
  641. /* Clear the slave->dev_num to transfer message on device 0 */
  642. dev_num = slave->dev_num;
  643. slave->dev_num = 0;
  644. ret = sdw_write_no_pm(slave, SDW_SCP_DEVNUMBER, dev_num);
  645. if (ret < 0) {
  646. dev_err(bus->dev, "Program device_num %d failed: %d\n",
  647. dev_num, ret);
  648. return ret;
  649. }
  650. /* After xfer of msg, restore dev_num */
  651. slave->dev_num = slave->dev_num_sticky;
  652. if (bus->ops && bus->ops->new_peripheral_assigned)
  653. bus->ops->new_peripheral_assigned(bus, slave, dev_num);
  654. return 0;
  655. }
  656. void sdw_extract_slave_id(struct sdw_bus *bus,
  657. u64 addr, struct sdw_slave_id *id)
  658. {
  659. dev_dbg(bus->dev, "SDW Slave Addr: %llx\n", addr);
  660. id->sdw_version = SDW_VERSION(addr);
  661. id->unique_id = SDW_UNIQUE_ID(addr);
  662. id->mfg_id = SDW_MFG_ID(addr);
  663. id->part_id = SDW_PART_ID(addr);
  664. id->class_id = SDW_CLASS_ID(addr);
  665. dev_dbg(bus->dev,
  666. "SDW Slave class_id 0x%02x, mfg_id 0x%04x, part_id 0x%04x, unique_id 0x%x, version 0x%x\n",
  667. id->class_id, id->mfg_id, id->part_id, id->unique_id, id->sdw_version);
  668. }
  669. EXPORT_SYMBOL(sdw_extract_slave_id);
  670. static int sdw_program_device_num(struct sdw_bus *bus, bool *programmed)
  671. {
  672. u8 buf[SDW_NUM_DEV_ID_REGISTERS] = {0};
  673. struct sdw_slave *slave, *_s;
  674. struct sdw_slave_id id;
  675. struct sdw_msg msg;
  676. bool found;
  677. int count = 0, ret;
  678. u64 addr;
  679. *programmed = false;
  680. /* No Slave, so use raw xfer api */
  681. ret = sdw_fill_msg(&msg, NULL, SDW_SCP_DEVID_0,
  682. SDW_NUM_DEV_ID_REGISTERS, 0, SDW_MSG_FLAG_READ, buf);
  683. if (ret < 0)
  684. return ret;
  685. do {
  686. ret = sdw_transfer(bus, &msg);
  687. if (ret == -ENODATA) { /* end of device id reads */
  688. dev_dbg(bus->dev, "No more devices to enumerate\n");
  689. ret = 0;
  690. break;
  691. }
  692. if (ret < 0) {
  693. dev_err(bus->dev, "DEVID read fail:%d\n", ret);
  694. break;
  695. }
  696. /*
  697. * Construct the addr and extract. Cast the higher shift
  698. * bits to avoid truncation due to size limit.
  699. */
  700. addr = buf[5] | (buf[4] << 8) | (buf[3] << 16) |
  701. ((u64)buf[2] << 24) | ((u64)buf[1] << 32) |
  702. ((u64)buf[0] << 40);
  703. sdw_extract_slave_id(bus, addr, &id);
  704. found = false;
  705. /* Now compare with entries */
  706. list_for_each_entry_safe(slave, _s, &bus->slaves, node) {
  707. if (sdw_compare_devid(slave, id) == 0) {
  708. found = true;
  709. /*
  710. * To prevent skipping state-machine stages don't
  711. * program a device until we've seen it UNATTACH.
  712. * Must return here because no other device on #0
  713. * can be detected until this one has been
  714. * assigned a device ID.
  715. */
  716. if (slave->status != SDW_SLAVE_UNATTACHED)
  717. return 0;
  718. /*
  719. * Assign a new dev_num to this Slave and
  720. * not mark it present. It will be marked
  721. * present after it reports ATTACHED on new
  722. * dev_num
  723. */
  724. ret = sdw_assign_device_num(slave);
  725. if (ret < 0) {
  726. dev_err(bus->dev,
  727. "Assign dev_num failed:%d\n",
  728. ret);
  729. return ret;
  730. }
  731. *programmed = true;
  732. break;
  733. }
  734. }
  735. if (!found) {
  736. /* TODO: Park this device in Group 13 */
  737. /*
  738. * add Slave device even if there is no platform
  739. * firmware description. There will be no driver probe
  740. * but the user/integration will be able to see the
  741. * device, enumeration status and device number in sysfs
  742. */
  743. sdw_slave_add(bus, &id, NULL);
  744. dev_err(bus->dev, "Slave Entry not found\n");
  745. }
  746. count++;
  747. /*
  748. * Check till error out or retry (count) exhausts.
  749. * Device can drop off and rejoin during enumeration
  750. * so count till twice the bound.
  751. */
  752. } while (ret == 0 && count < (SDW_MAX_DEVICES * 2));
  753. return ret;
  754. }
  755. static void sdw_modify_slave_status(struct sdw_slave *slave,
  756. enum sdw_slave_status status)
  757. {
  758. struct sdw_bus *bus = slave->bus;
  759. mutex_lock(&bus->bus_lock);
  760. dev_vdbg(bus->dev,
  761. "changing status slave %d status %d new status %d\n",
  762. slave->dev_num, slave->status, status);
  763. if (status == SDW_SLAVE_UNATTACHED) {
  764. dev_dbg(&slave->dev,
  765. "initializing enumeration and init completion for Slave %d\n",
  766. slave->dev_num);
  767. reinit_completion(&slave->enumeration_complete);
  768. reinit_completion(&slave->initialization_complete);
  769. } else if ((status == SDW_SLAVE_ATTACHED) &&
  770. (slave->status == SDW_SLAVE_UNATTACHED)) {
  771. dev_dbg(&slave->dev,
  772. "signaling enumeration completion for Slave %d\n",
  773. slave->dev_num);
  774. complete_all(&slave->enumeration_complete);
  775. }
  776. slave->status = status;
  777. mutex_unlock(&bus->bus_lock);
  778. }
  779. static int sdw_slave_clk_stop_callback(struct sdw_slave *slave,
  780. enum sdw_clk_stop_mode mode,
  781. enum sdw_clk_stop_type type)
  782. {
  783. int ret = 0;
  784. mutex_lock(&slave->sdw_dev_lock);
  785. if (slave->probed) {
  786. struct device *dev = &slave->dev;
  787. struct sdw_driver *drv = drv_to_sdw_driver(dev->driver);
  788. if (drv->ops && drv->ops->clk_stop)
  789. ret = drv->ops->clk_stop(slave, mode, type);
  790. }
  791. mutex_unlock(&slave->sdw_dev_lock);
  792. return ret;
  793. }
  794. static int sdw_slave_clk_stop_prepare(struct sdw_slave *slave,
  795. enum sdw_clk_stop_mode mode,
  796. bool prepare)
  797. {
  798. bool wake_en;
  799. u32 val = 0;
  800. int ret;
  801. wake_en = slave->prop.wake_capable;
  802. if (prepare) {
  803. val = SDW_SCP_SYSTEMCTRL_CLK_STP_PREP;
  804. if (mode == SDW_CLK_STOP_MODE1)
  805. val |= SDW_SCP_SYSTEMCTRL_CLK_STP_MODE1;
  806. if (wake_en)
  807. val |= SDW_SCP_SYSTEMCTRL_WAKE_UP_EN;
  808. } else {
  809. ret = sdw_read_no_pm(slave, SDW_SCP_SYSTEMCTRL);
  810. if (ret < 0) {
  811. if (ret != -ENODATA)
  812. dev_err(&slave->dev, "SDW_SCP_SYSTEMCTRL read failed:%d\n", ret);
  813. return ret;
  814. }
  815. val = ret;
  816. val &= ~(SDW_SCP_SYSTEMCTRL_CLK_STP_PREP);
  817. }
  818. ret = sdw_write_no_pm(slave, SDW_SCP_SYSTEMCTRL, val);
  819. if (ret < 0 && ret != -ENODATA)
  820. dev_err(&slave->dev, "SDW_SCP_SYSTEMCTRL write failed:%d\n", ret);
  821. return ret;
  822. }
  823. static int sdw_bus_wait_for_clk_prep_deprep(struct sdw_bus *bus, u16 dev_num, bool prepare)
  824. {
  825. int retry = bus->clk_stop_timeout;
  826. int val;
  827. do {
  828. val = sdw_bread_no_pm(bus, dev_num, SDW_SCP_STAT);
  829. if (val < 0) {
  830. if (val != -ENODATA)
  831. dev_err(bus->dev, "SDW_SCP_STAT bread failed:%d\n", val);
  832. return val;
  833. }
  834. val &= SDW_SCP_STAT_CLK_STP_NF;
  835. if (!val) {
  836. dev_dbg(bus->dev, "clock stop %s done slave:%d\n",
  837. prepare ? "prepare" : "deprepare",
  838. dev_num);
  839. return 0;
  840. }
  841. usleep_range(1000, 1500);
  842. retry--;
  843. } while (retry);
  844. dev_dbg(bus->dev, "clock stop %s did not complete for slave:%d\n",
  845. prepare ? "prepare" : "deprepare",
  846. dev_num);
  847. return -ETIMEDOUT;
  848. }
  849. /**
  850. * sdw_bus_prep_clk_stop: prepare Slave(s) for clock stop
  851. *
  852. * @bus: SDW bus instance
  853. *
  854. * Query Slave for clock stop mode and prepare for that mode.
  855. */
  856. int sdw_bus_prep_clk_stop(struct sdw_bus *bus)
  857. {
  858. bool simple_clk_stop = true;
  859. struct sdw_slave *slave;
  860. bool is_slave = false;
  861. int ret = 0;
  862. /*
  863. * In order to save on transition time, prepare
  864. * each Slave and then wait for all Slave(s) to be
  865. * prepared for clock stop.
  866. * If one of the Slave devices has lost sync and
  867. * replies with Command Ignored/-ENODATA, we continue
  868. * the loop
  869. */
  870. list_for_each_entry(slave, &bus->slaves, node) {
  871. if (!slave->dev_num)
  872. continue;
  873. if (slave->status != SDW_SLAVE_ATTACHED &&
  874. slave->status != SDW_SLAVE_ALERT)
  875. continue;
  876. /* Identify if Slave(s) are available on Bus */
  877. is_slave = true;
  878. ret = sdw_slave_clk_stop_callback(slave,
  879. SDW_CLK_STOP_MODE0,
  880. SDW_CLK_PRE_PREPARE);
  881. if (ret < 0 && ret != -ENODATA) {
  882. dev_err(&slave->dev, "clock stop pre-prepare cb failed:%d\n", ret);
  883. return ret;
  884. }
  885. /* Only prepare a Slave device if needed */
  886. if (!slave->prop.simple_clk_stop_capable) {
  887. simple_clk_stop = false;
  888. ret = sdw_slave_clk_stop_prepare(slave,
  889. SDW_CLK_STOP_MODE0,
  890. true);
  891. if (ret < 0 && ret != -ENODATA) {
  892. dev_err(&slave->dev, "clock stop prepare failed:%d\n", ret);
  893. return ret;
  894. }
  895. }
  896. }
  897. /* Skip remaining clock stop preparation if no Slave is attached */
  898. if (!is_slave)
  899. return 0;
  900. /*
  901. * Don't wait for all Slaves to be ready if they follow the simple
  902. * state machine
  903. */
  904. if (!simple_clk_stop) {
  905. ret = sdw_bus_wait_for_clk_prep_deprep(bus,
  906. SDW_BROADCAST_DEV_NUM, true);
  907. /*
  908. * if there are no Slave devices present and the reply is
  909. * Command_Ignored/-ENODATA, we don't need to continue with the
  910. * flow and can just return here. The error code is not modified
  911. * and its handling left as an exercise for the caller.
  912. */
  913. if (ret < 0)
  914. return ret;
  915. }
  916. /* Inform slaves that prep is done */
  917. list_for_each_entry(slave, &bus->slaves, node) {
  918. if (!slave->dev_num)
  919. continue;
  920. if (slave->status != SDW_SLAVE_ATTACHED &&
  921. slave->status != SDW_SLAVE_ALERT)
  922. continue;
  923. ret = sdw_slave_clk_stop_callback(slave,
  924. SDW_CLK_STOP_MODE0,
  925. SDW_CLK_POST_PREPARE);
  926. if (ret < 0 && ret != -ENODATA) {
  927. dev_err(&slave->dev, "clock stop post-prepare cb failed:%d\n", ret);
  928. return ret;
  929. }
  930. }
  931. return 0;
  932. }
  933. EXPORT_SYMBOL(sdw_bus_prep_clk_stop);
  934. /**
  935. * sdw_bus_clk_stop: stop bus clock
  936. *
  937. * @bus: SDW bus instance
  938. *
  939. * After preparing the Slaves for clock stop, stop the clock by broadcasting
  940. * write to SCP_CTRL register.
  941. */
  942. int sdw_bus_clk_stop(struct sdw_bus *bus)
  943. {
  944. int ret;
  945. /*
  946. * broadcast clock stop now, attached Slaves will ACK this,
  947. * unattached will ignore
  948. */
  949. ret = sdw_bwrite_no_pm(bus, SDW_BROADCAST_DEV_NUM,
  950. SDW_SCP_CTRL, SDW_SCP_CTRL_CLK_STP_NOW);
  951. if (ret < 0) {
  952. if (ret != -ENODATA)
  953. dev_err(bus->dev, "ClockStopNow Broadcast msg failed %d\n", ret);
  954. return ret;
  955. }
  956. return 0;
  957. }
  958. EXPORT_SYMBOL(sdw_bus_clk_stop);
  959. /**
  960. * sdw_bus_exit_clk_stop: Exit clock stop mode
  961. *
  962. * @bus: SDW bus instance
  963. *
  964. * This De-prepares the Slaves by exiting Clock Stop Mode 0. For the Slaves
  965. * exiting Clock Stop Mode 1, they will be de-prepared after they enumerate
  966. * back.
  967. */
  968. int sdw_bus_exit_clk_stop(struct sdw_bus *bus)
  969. {
  970. bool simple_clk_stop = true;
  971. struct sdw_slave *slave;
  972. bool is_slave = false;
  973. int ret;
  974. /*
  975. * In order to save on transition time, de-prepare
  976. * each Slave and then wait for all Slave(s) to be
  977. * de-prepared after clock resume.
  978. */
  979. list_for_each_entry(slave, &bus->slaves, node) {
  980. if (!slave->dev_num)
  981. continue;
  982. if (slave->status != SDW_SLAVE_ATTACHED &&
  983. slave->status != SDW_SLAVE_ALERT)
  984. continue;
  985. /* Identify if Slave(s) are available on Bus */
  986. is_slave = true;
  987. ret = sdw_slave_clk_stop_callback(slave, SDW_CLK_STOP_MODE0,
  988. SDW_CLK_PRE_DEPREPARE);
  989. if (ret < 0)
  990. dev_warn(&slave->dev, "clock stop pre-deprepare cb failed:%d\n", ret);
  991. /* Only de-prepare a Slave device if needed */
  992. if (!slave->prop.simple_clk_stop_capable) {
  993. simple_clk_stop = false;
  994. ret = sdw_slave_clk_stop_prepare(slave, SDW_CLK_STOP_MODE0,
  995. false);
  996. if (ret < 0)
  997. dev_warn(&slave->dev, "clock stop deprepare failed:%d\n", ret);
  998. }
  999. }
  1000. /* Skip remaining clock stop de-preparation if no Slave is attached */
  1001. if (!is_slave)
  1002. return 0;
  1003. /*
  1004. * Don't wait for all Slaves to be ready if they follow the simple
  1005. * state machine
  1006. */
  1007. if (!simple_clk_stop) {
  1008. ret = sdw_bus_wait_for_clk_prep_deprep(bus, SDW_BROADCAST_DEV_NUM, false);
  1009. if (ret < 0)
  1010. dev_warn(bus->dev, "clock stop deprepare wait failed:%d\n", ret);
  1011. }
  1012. list_for_each_entry(slave, &bus->slaves, node) {
  1013. if (!slave->dev_num)
  1014. continue;
  1015. if (slave->status != SDW_SLAVE_ATTACHED &&
  1016. slave->status != SDW_SLAVE_ALERT)
  1017. continue;
  1018. ret = sdw_slave_clk_stop_callback(slave, SDW_CLK_STOP_MODE0,
  1019. SDW_CLK_POST_DEPREPARE);
  1020. if (ret < 0)
  1021. dev_warn(&slave->dev, "clock stop post-deprepare cb failed:%d\n", ret);
  1022. }
  1023. return 0;
  1024. }
  1025. EXPORT_SYMBOL(sdw_bus_exit_clk_stop);
  1026. int sdw_configure_dpn_intr(struct sdw_slave *slave,
  1027. int port, bool enable, int mask)
  1028. {
  1029. u32 addr;
  1030. int ret;
  1031. u8 val = 0;
  1032. if (slave->bus->params.s_data_mode != SDW_PORT_DATA_MODE_NORMAL) {
  1033. dev_dbg(&slave->dev, "TEST FAIL interrupt %s\n",
  1034. enable ? "on" : "off");
  1035. mask |= SDW_DPN_INT_TEST_FAIL;
  1036. }
  1037. addr = SDW_DPN_INTMASK(port);
  1038. /* Set/Clear port ready interrupt mask */
  1039. if (enable) {
  1040. val |= mask;
  1041. val |= SDW_DPN_INT_PORT_READY;
  1042. } else {
  1043. val &= ~(mask);
  1044. val &= ~SDW_DPN_INT_PORT_READY;
  1045. }
  1046. ret = sdw_update_no_pm(slave, addr, (mask | SDW_DPN_INT_PORT_READY), val);
  1047. if (ret < 0)
  1048. dev_err(&slave->dev,
  1049. "SDW_DPN_INTMASK write failed:%d\n", val);
  1050. return ret;
  1051. }
  1052. static int sdw_slave_set_frequency(struct sdw_slave *slave)
  1053. {
  1054. u32 mclk_freq = slave->bus->prop.mclk_freq;
  1055. u32 curr_freq = slave->bus->params.curr_dr_freq >> 1;
  1056. unsigned int scale;
  1057. u8 scale_index;
  1058. u8 base;
  1059. int ret;
  1060. /*
  1061. * frequency base and scale registers are required for SDCA
  1062. * devices. They may also be used for 1.2+/non-SDCA devices.
  1063. * Driver can set the property, we will need a DisCo property
  1064. * to discover this case from platform firmware.
  1065. */
  1066. if (!slave->id.class_id && !slave->prop.clock_reg_supported)
  1067. return 0;
  1068. if (!mclk_freq) {
  1069. dev_err(&slave->dev,
  1070. "no bus MCLK, cannot set SDW_SCP_BUS_CLOCK_BASE\n");
  1071. return -EINVAL;
  1072. }
  1073. /*
  1074. * map base frequency using Table 89 of SoundWire 1.2 spec.
  1075. * The order of the tests just follows the specification, this
  1076. * is not a selection between possible values or a search for
  1077. * the best value but just a mapping. Only one case per platform
  1078. * is relevant.
  1079. * Some BIOS have inconsistent values for mclk_freq but a
  1080. * correct root so we force the mclk_freq to avoid variations.
  1081. */
  1082. if (!(19200000 % mclk_freq)) {
  1083. mclk_freq = 19200000;
  1084. base = SDW_SCP_BASE_CLOCK_19200000_HZ;
  1085. } else if (!(22579200 % mclk_freq)) {
  1086. mclk_freq = 22579200;
  1087. base = SDW_SCP_BASE_CLOCK_22579200_HZ;
  1088. } else if (!(24576000 % mclk_freq)) {
  1089. mclk_freq = 24576000;
  1090. base = SDW_SCP_BASE_CLOCK_24576000_HZ;
  1091. } else if (!(32000000 % mclk_freq)) {
  1092. mclk_freq = 32000000;
  1093. base = SDW_SCP_BASE_CLOCK_32000000_HZ;
  1094. } else if (!(96000000 % mclk_freq)) {
  1095. mclk_freq = 24000000;
  1096. base = SDW_SCP_BASE_CLOCK_24000000_HZ;
  1097. } else {
  1098. dev_err(&slave->dev,
  1099. "Unsupported clock base, mclk %d\n",
  1100. mclk_freq);
  1101. return -EINVAL;
  1102. }
  1103. if (mclk_freq % curr_freq) {
  1104. dev_err(&slave->dev,
  1105. "mclk %d is not multiple of bus curr_freq %d\n",
  1106. mclk_freq, curr_freq);
  1107. return -EINVAL;
  1108. }
  1109. scale = mclk_freq / curr_freq;
  1110. /*
  1111. * map scale to Table 90 of SoundWire 1.2 spec - and check
  1112. * that the scale is a power of two and maximum 64
  1113. */
  1114. scale_index = ilog2(scale);
  1115. if (BIT(scale_index) != scale || scale_index > 6) {
  1116. dev_err(&slave->dev,
  1117. "No match found for scale %d, bus mclk %d curr_freq %d\n",
  1118. scale, mclk_freq, curr_freq);
  1119. return -EINVAL;
  1120. }
  1121. scale_index++;
  1122. ret = sdw_write_no_pm(slave, SDW_SCP_BUS_CLOCK_BASE, base);
  1123. if (ret < 0) {
  1124. dev_err(&slave->dev,
  1125. "SDW_SCP_BUS_CLOCK_BASE write failed:%d\n", ret);
  1126. return ret;
  1127. }
  1128. /* initialize scale for both banks */
  1129. ret = sdw_write_no_pm(slave, SDW_SCP_BUSCLOCK_SCALE_B0, scale_index);
  1130. if (ret < 0) {
  1131. dev_err(&slave->dev,
  1132. "SDW_SCP_BUSCLOCK_SCALE_B0 write failed:%d\n", ret);
  1133. return ret;
  1134. }
  1135. ret = sdw_write_no_pm(slave, SDW_SCP_BUSCLOCK_SCALE_B1, scale_index);
  1136. if (ret < 0)
  1137. dev_err(&slave->dev,
  1138. "SDW_SCP_BUSCLOCK_SCALE_B1 write failed:%d\n", ret);
  1139. dev_dbg(&slave->dev,
  1140. "Configured bus base %d, scale %d, mclk %d, curr_freq %d\n",
  1141. base, scale_index, mclk_freq, curr_freq);
  1142. return ret;
  1143. }
  1144. static int sdw_initialize_slave(struct sdw_slave *slave)
  1145. {
  1146. struct sdw_slave_prop *prop = &slave->prop;
  1147. int status;
  1148. int ret;
  1149. u8 val;
  1150. ret = sdw_slave_set_frequency(slave);
  1151. if (ret < 0)
  1152. return ret;
  1153. if (slave->bus->prop.quirks & SDW_MASTER_QUIRKS_CLEAR_INITIAL_CLASH) {
  1154. /* Clear bus clash interrupt before enabling interrupt mask */
  1155. status = sdw_read_no_pm(slave, SDW_SCP_INT1);
  1156. if (status < 0) {
  1157. dev_err(&slave->dev,
  1158. "SDW_SCP_INT1 (BUS_CLASH) read failed:%d\n", status);
  1159. return status;
  1160. }
  1161. if (status & SDW_SCP_INT1_BUS_CLASH) {
  1162. dev_warn(&slave->dev, "Bus clash detected before INT mask is enabled\n");
  1163. ret = sdw_write_no_pm(slave, SDW_SCP_INT1, SDW_SCP_INT1_BUS_CLASH);
  1164. if (ret < 0) {
  1165. dev_err(&slave->dev,
  1166. "SDW_SCP_INT1 (BUS_CLASH) write failed:%d\n", ret);
  1167. return ret;
  1168. }
  1169. }
  1170. }
  1171. if ((slave->bus->prop.quirks & SDW_MASTER_QUIRKS_CLEAR_INITIAL_PARITY) &&
  1172. !(prop->quirks & SDW_SLAVE_QUIRKS_INVALID_INITIAL_PARITY)) {
  1173. /* Clear parity interrupt before enabling interrupt mask */
  1174. status = sdw_read_no_pm(slave, SDW_SCP_INT1);
  1175. if (status < 0) {
  1176. dev_err(&slave->dev,
  1177. "SDW_SCP_INT1 (PARITY) read failed:%d\n", status);
  1178. return status;
  1179. }
  1180. if (status & SDW_SCP_INT1_PARITY) {
  1181. dev_warn(&slave->dev, "PARITY error detected before INT mask is enabled\n");
  1182. ret = sdw_write_no_pm(slave, SDW_SCP_INT1, SDW_SCP_INT1_PARITY);
  1183. if (ret < 0) {
  1184. dev_err(&slave->dev,
  1185. "SDW_SCP_INT1 (PARITY) write failed:%d\n", ret);
  1186. return ret;
  1187. }
  1188. }
  1189. }
  1190. /*
  1191. * Set SCP_INT1_MASK register, typically bus clash and
  1192. * implementation-defined interrupt mask. The Parity detection
  1193. * may not always be correct on startup so its use is
  1194. * device-dependent, it might e.g. only be enabled in
  1195. * steady-state after a couple of frames.
  1196. */
  1197. val = prop->scp_int1_mask;
  1198. /* Enable SCP interrupts */
  1199. ret = sdw_update_no_pm(slave, SDW_SCP_INTMASK1, val, val);
  1200. if (ret < 0) {
  1201. dev_err(&slave->dev,
  1202. "SDW_SCP_INTMASK1 write failed:%d\n", ret);
  1203. return ret;
  1204. }
  1205. /* No need to continue if DP0 is not present */
  1206. if (!prop->dp0_prop)
  1207. return 0;
  1208. /* Enable DP0 interrupts */
  1209. val = prop->dp0_prop->imp_def_interrupts;
  1210. val |= SDW_DP0_INT_PORT_READY | SDW_DP0_INT_BRA_FAILURE;
  1211. ret = sdw_update_no_pm(slave, SDW_DP0_INTMASK, val, val);
  1212. if (ret < 0)
  1213. dev_err(&slave->dev,
  1214. "SDW_DP0_INTMASK read failed:%d\n", ret);
  1215. return ret;
  1216. }
  1217. static int sdw_handle_dp0_interrupt(struct sdw_slave *slave, u8 *slave_status)
  1218. {
  1219. u8 clear, impl_int_mask;
  1220. int status, status2, ret, count = 0;
  1221. status = sdw_read_no_pm(slave, SDW_DP0_INT);
  1222. if (status < 0) {
  1223. dev_err(&slave->dev,
  1224. "SDW_DP0_INT read failed:%d\n", status);
  1225. return status;
  1226. }
  1227. do {
  1228. clear = status & ~(SDW_DP0_INTERRUPTS | SDW_DP0_SDCA_CASCADE);
  1229. if (status & SDW_DP0_INT_TEST_FAIL) {
  1230. dev_err(&slave->dev, "Test fail for port 0\n");
  1231. clear |= SDW_DP0_INT_TEST_FAIL;
  1232. }
  1233. /*
  1234. * Assumption: PORT_READY interrupt will be received only for
  1235. * ports implementing Channel Prepare state machine (CP_SM)
  1236. */
  1237. if (status & SDW_DP0_INT_PORT_READY) {
  1238. complete(&slave->port_ready[0]);
  1239. clear |= SDW_DP0_INT_PORT_READY;
  1240. }
  1241. if (status & SDW_DP0_INT_BRA_FAILURE) {
  1242. dev_err(&slave->dev, "BRA failed\n");
  1243. clear |= SDW_DP0_INT_BRA_FAILURE;
  1244. }
  1245. impl_int_mask = SDW_DP0_INT_IMPDEF1 |
  1246. SDW_DP0_INT_IMPDEF2 | SDW_DP0_INT_IMPDEF3;
  1247. if (status & impl_int_mask) {
  1248. clear |= impl_int_mask;
  1249. *slave_status = clear;
  1250. }
  1251. /* clear the interrupts but don't touch reserved and SDCA_CASCADE fields */
  1252. ret = sdw_write_no_pm(slave, SDW_DP0_INT, clear);
  1253. if (ret < 0) {
  1254. dev_err(&slave->dev,
  1255. "SDW_DP0_INT write failed:%d\n", ret);
  1256. return ret;
  1257. }
  1258. /* Read DP0 interrupt again */
  1259. status2 = sdw_read_no_pm(slave, SDW_DP0_INT);
  1260. if (status2 < 0) {
  1261. dev_err(&slave->dev,
  1262. "SDW_DP0_INT read failed:%d\n", status2);
  1263. return status2;
  1264. }
  1265. /* filter to limit loop to interrupts identified in the first status read */
  1266. status &= status2;
  1267. count++;
  1268. /* we can get alerts while processing so keep retrying */
  1269. } while ((status & SDW_DP0_INTERRUPTS) && (count < SDW_READ_INTR_CLEAR_RETRY));
  1270. if (count == SDW_READ_INTR_CLEAR_RETRY)
  1271. dev_warn(&slave->dev, "Reached MAX_RETRY on DP0 read\n");
  1272. return ret;
  1273. }
  1274. static int sdw_handle_port_interrupt(struct sdw_slave *slave,
  1275. int port, u8 *slave_status)
  1276. {
  1277. u8 clear, impl_int_mask;
  1278. int status, status2, ret, count = 0;
  1279. u32 addr;
  1280. if (port == 0)
  1281. return sdw_handle_dp0_interrupt(slave, slave_status);
  1282. addr = SDW_DPN_INT(port);
  1283. status = sdw_read_no_pm(slave, addr);
  1284. if (status < 0) {
  1285. dev_err(&slave->dev,
  1286. "SDW_DPN_INT read failed:%d\n", status);
  1287. return status;
  1288. }
  1289. do {
  1290. clear = status & ~SDW_DPN_INTERRUPTS;
  1291. if (status & SDW_DPN_INT_TEST_FAIL) {
  1292. dev_err(&slave->dev, "Test fail for port:%d\n", port);
  1293. clear |= SDW_DPN_INT_TEST_FAIL;
  1294. }
  1295. /*
  1296. * Assumption: PORT_READY interrupt will be received only
  1297. * for ports implementing CP_SM.
  1298. */
  1299. if (status & SDW_DPN_INT_PORT_READY) {
  1300. complete(&slave->port_ready[port]);
  1301. clear |= SDW_DPN_INT_PORT_READY;
  1302. }
  1303. impl_int_mask = SDW_DPN_INT_IMPDEF1 |
  1304. SDW_DPN_INT_IMPDEF2 | SDW_DPN_INT_IMPDEF3;
  1305. if (status & impl_int_mask) {
  1306. clear |= impl_int_mask;
  1307. *slave_status = clear;
  1308. }
  1309. /* clear the interrupt but don't touch reserved fields */
  1310. ret = sdw_write_no_pm(slave, addr, clear);
  1311. if (ret < 0) {
  1312. dev_err(&slave->dev,
  1313. "SDW_DPN_INT write failed:%d\n", ret);
  1314. return ret;
  1315. }
  1316. /* Read DPN interrupt again */
  1317. status2 = sdw_read_no_pm(slave, addr);
  1318. if (status2 < 0) {
  1319. dev_err(&slave->dev,
  1320. "SDW_DPN_INT read failed:%d\n", status2);
  1321. return status2;
  1322. }
  1323. /* filter to limit loop to interrupts identified in the first status read */
  1324. status &= status2;
  1325. count++;
  1326. /* we can get alerts while processing so keep retrying */
  1327. } while ((status & SDW_DPN_INTERRUPTS) && (count < SDW_READ_INTR_CLEAR_RETRY));
  1328. if (count == SDW_READ_INTR_CLEAR_RETRY)
  1329. dev_warn(&slave->dev, "Reached MAX_RETRY on port read");
  1330. return ret;
  1331. }
  1332. static int sdw_handle_slave_alerts(struct sdw_slave *slave)
  1333. {
  1334. struct sdw_slave_intr_status slave_intr;
  1335. u8 clear = 0, bit, port_status[15] = {0};
  1336. int port_num, stat, ret, count = 0;
  1337. unsigned long port;
  1338. bool slave_notify;
  1339. u8 sdca_cascade = 0;
  1340. u8 buf, buf2[2];
  1341. bool parity_check;
  1342. bool parity_quirk;
  1343. sdw_modify_slave_status(slave, SDW_SLAVE_ALERT);
  1344. ret = pm_runtime_get_sync(&slave->dev);
  1345. if (ret < 0 && ret != -EACCES) {
  1346. dev_err(&slave->dev, "Failed to resume device: %d\n", ret);
  1347. pm_runtime_put_noidle(&slave->dev);
  1348. return ret;
  1349. }
  1350. /* Read Intstat 1, Intstat 2 and Intstat 3 registers */
  1351. ret = sdw_read_no_pm(slave, SDW_SCP_INT1);
  1352. if (ret < 0) {
  1353. dev_err(&slave->dev,
  1354. "SDW_SCP_INT1 read failed:%d\n", ret);
  1355. goto io_err;
  1356. }
  1357. buf = ret;
  1358. ret = sdw_nread_no_pm(slave, SDW_SCP_INTSTAT2, 2, buf2);
  1359. if (ret < 0) {
  1360. dev_err(&slave->dev,
  1361. "SDW_SCP_INT2/3 read failed:%d\n", ret);
  1362. goto io_err;
  1363. }
  1364. if (slave->id.class_id) {
  1365. ret = sdw_read_no_pm(slave, SDW_DP0_INT);
  1366. if (ret < 0) {
  1367. dev_err(&slave->dev,
  1368. "SDW_DP0_INT read failed:%d\n", ret);
  1369. goto io_err;
  1370. }
  1371. sdca_cascade = ret & SDW_DP0_SDCA_CASCADE;
  1372. }
  1373. do {
  1374. slave_notify = false;
  1375. /*
  1376. * Check parity, bus clash and Slave (impl defined)
  1377. * interrupt
  1378. */
  1379. if (buf & SDW_SCP_INT1_PARITY) {
  1380. parity_check = slave->prop.scp_int1_mask & SDW_SCP_INT1_PARITY;
  1381. parity_quirk = !slave->first_interrupt_done &&
  1382. (slave->prop.quirks & SDW_SLAVE_QUIRKS_INVALID_INITIAL_PARITY);
  1383. if (parity_check && !parity_quirk)
  1384. dev_err(&slave->dev, "Parity error detected\n");
  1385. clear |= SDW_SCP_INT1_PARITY;
  1386. }
  1387. if (buf & SDW_SCP_INT1_BUS_CLASH) {
  1388. if (slave->prop.scp_int1_mask & SDW_SCP_INT1_BUS_CLASH)
  1389. dev_err(&slave->dev, "Bus clash detected\n");
  1390. clear |= SDW_SCP_INT1_BUS_CLASH;
  1391. }
  1392. /*
  1393. * When bus clash or parity errors are detected, such errors
  1394. * are unlikely to be recoverable errors.
  1395. * TODO: In such scenario, reset bus. Make this configurable
  1396. * via sysfs property with bus reset being the default.
  1397. */
  1398. if (buf & SDW_SCP_INT1_IMPL_DEF) {
  1399. if (slave->prop.scp_int1_mask & SDW_SCP_INT1_IMPL_DEF) {
  1400. dev_dbg(&slave->dev, "Slave impl defined interrupt\n");
  1401. slave_notify = true;
  1402. }
  1403. clear |= SDW_SCP_INT1_IMPL_DEF;
  1404. }
  1405. /* the SDCA interrupts are cleared in the codec driver .interrupt_callback() */
  1406. if (sdca_cascade)
  1407. slave_notify = true;
  1408. /* Check port 0 - 3 interrupts */
  1409. port = buf & SDW_SCP_INT1_PORT0_3;
  1410. /* To get port number corresponding to bits, shift it */
  1411. port = FIELD_GET(SDW_SCP_INT1_PORT0_3, port);
  1412. for_each_set_bit(bit, &port, 8) {
  1413. sdw_handle_port_interrupt(slave, bit,
  1414. &port_status[bit]);
  1415. }
  1416. /* Check if cascade 2 interrupt is present */
  1417. if (buf & SDW_SCP_INT1_SCP2_CASCADE) {
  1418. port = buf2[0] & SDW_SCP_INTSTAT2_PORT4_10;
  1419. for_each_set_bit(bit, &port, 8) {
  1420. /* scp2 ports start from 4 */
  1421. port_num = bit + 4;
  1422. sdw_handle_port_interrupt(slave,
  1423. port_num,
  1424. &port_status[port_num]);
  1425. }
  1426. }
  1427. /* now check last cascade */
  1428. if (buf2[0] & SDW_SCP_INTSTAT2_SCP3_CASCADE) {
  1429. port = buf2[1] & SDW_SCP_INTSTAT3_PORT11_14;
  1430. for_each_set_bit(bit, &port, 8) {
  1431. /* scp3 ports start from 11 */
  1432. port_num = bit + 11;
  1433. sdw_handle_port_interrupt(slave,
  1434. port_num,
  1435. &port_status[port_num]);
  1436. }
  1437. }
  1438. /* Update the Slave driver */
  1439. if (slave_notify) {
  1440. mutex_lock(&slave->sdw_dev_lock);
  1441. if (slave->probed) {
  1442. struct device *dev = &slave->dev;
  1443. struct sdw_driver *drv = drv_to_sdw_driver(dev->driver);
  1444. if (slave->prop.use_domain_irq && slave->irq)
  1445. handle_nested_irq(slave->irq);
  1446. if (drv->ops && drv->ops->interrupt_callback) {
  1447. slave_intr.sdca_cascade = sdca_cascade;
  1448. slave_intr.control_port = clear;
  1449. memcpy(slave_intr.port, &port_status,
  1450. sizeof(slave_intr.port));
  1451. drv->ops->interrupt_callback(slave, &slave_intr);
  1452. }
  1453. }
  1454. mutex_unlock(&slave->sdw_dev_lock);
  1455. }
  1456. /* Ack interrupt */
  1457. ret = sdw_write_no_pm(slave, SDW_SCP_INT1, clear);
  1458. if (ret < 0) {
  1459. dev_err(&slave->dev,
  1460. "SDW_SCP_INT1 write failed:%d\n", ret);
  1461. goto io_err;
  1462. }
  1463. /* at this point all initial interrupt sources were handled */
  1464. slave->first_interrupt_done = true;
  1465. /*
  1466. * Read status again to ensure no new interrupts arrived
  1467. * while servicing interrupts.
  1468. */
  1469. ret = sdw_read_no_pm(slave, SDW_SCP_INT1);
  1470. if (ret < 0) {
  1471. dev_err(&slave->dev,
  1472. "SDW_SCP_INT1 recheck read failed:%d\n", ret);
  1473. goto io_err;
  1474. }
  1475. buf = ret;
  1476. ret = sdw_nread_no_pm(slave, SDW_SCP_INTSTAT2, 2, buf2);
  1477. if (ret < 0) {
  1478. dev_err(&slave->dev,
  1479. "SDW_SCP_INT2/3 recheck read failed:%d\n", ret);
  1480. goto io_err;
  1481. }
  1482. if (slave->id.class_id) {
  1483. ret = sdw_read_no_pm(slave, SDW_DP0_INT);
  1484. if (ret < 0) {
  1485. dev_err(&slave->dev,
  1486. "SDW_DP0_INT recheck read failed:%d\n", ret);
  1487. goto io_err;
  1488. }
  1489. sdca_cascade = ret & SDW_DP0_SDCA_CASCADE;
  1490. }
  1491. /*
  1492. * Make sure no interrupts are pending
  1493. */
  1494. stat = buf || buf2[0] || buf2[1] || sdca_cascade;
  1495. /*
  1496. * Exit loop if Slave is continuously in ALERT state even
  1497. * after servicing the interrupt multiple times.
  1498. */
  1499. count++;
  1500. /* we can get alerts while processing so keep retrying */
  1501. } while (stat != 0 && count < SDW_READ_INTR_CLEAR_RETRY);
  1502. if (count == SDW_READ_INTR_CLEAR_RETRY)
  1503. dev_warn(&slave->dev, "Reached MAX_RETRY on alert read\n");
  1504. io_err:
  1505. pm_runtime_mark_last_busy(&slave->dev);
  1506. pm_runtime_put_autosuspend(&slave->dev);
  1507. return ret;
  1508. }
  1509. static int sdw_update_slave_status(struct sdw_slave *slave,
  1510. enum sdw_slave_status status)
  1511. {
  1512. int ret = 0;
  1513. mutex_lock(&slave->sdw_dev_lock);
  1514. if (slave->probed) {
  1515. struct device *dev = &slave->dev;
  1516. struct sdw_driver *drv = drv_to_sdw_driver(dev->driver);
  1517. if (drv->ops && drv->ops->update_status)
  1518. ret = drv->ops->update_status(slave, status);
  1519. }
  1520. mutex_unlock(&slave->sdw_dev_lock);
  1521. return ret;
  1522. }
  1523. /**
  1524. * sdw_handle_slave_status() - Handle Slave status
  1525. * @bus: SDW bus instance
  1526. * @status: Status for all Slave(s)
  1527. */
  1528. int sdw_handle_slave_status(struct sdw_bus *bus,
  1529. enum sdw_slave_status status[])
  1530. {
  1531. enum sdw_slave_status prev_status;
  1532. struct sdw_slave *slave;
  1533. bool attached_initializing, id_programmed;
  1534. int i, ret = 0;
  1535. /* first check if any Slaves fell off the bus */
  1536. for (i = 1; i <= SDW_MAX_DEVICES; i++) {
  1537. mutex_lock(&bus->bus_lock);
  1538. if (test_bit(i, bus->assigned) == false) {
  1539. mutex_unlock(&bus->bus_lock);
  1540. continue;
  1541. }
  1542. mutex_unlock(&bus->bus_lock);
  1543. slave = sdw_get_slave(bus, i);
  1544. if (!slave)
  1545. continue;
  1546. if (status[i] == SDW_SLAVE_UNATTACHED &&
  1547. slave->status != SDW_SLAVE_UNATTACHED) {
  1548. dev_warn(&slave->dev, "Slave %d state check1: UNATTACHED, status was %d\n",
  1549. i, slave->status);
  1550. sdw_modify_slave_status(slave, SDW_SLAVE_UNATTACHED);
  1551. /* Ensure driver knows that peripheral unattached */
  1552. ret = sdw_update_slave_status(slave, status[i]);
  1553. if (ret < 0)
  1554. dev_warn(&slave->dev, "Update Slave status failed:%d\n", ret);
  1555. }
  1556. }
  1557. if (status[0] == SDW_SLAVE_ATTACHED) {
  1558. dev_dbg(bus->dev, "Slave attached, programming device number\n");
  1559. /*
  1560. * Programming a device number will have side effects,
  1561. * so we deal with other devices at a later time.
  1562. * This relies on those devices reporting ATTACHED, which will
  1563. * trigger another call to this function. This will only
  1564. * happen if at least one device ID was programmed.
  1565. * Error returns from sdw_program_device_num() are currently
  1566. * ignored because there's no useful recovery that can be done.
  1567. * Returning the error here could result in the current status
  1568. * of other devices not being handled, because if no device IDs
  1569. * were programmed there's nothing to guarantee a status change
  1570. * to trigger another call to this function.
  1571. */
  1572. sdw_program_device_num(bus, &id_programmed);
  1573. if (id_programmed)
  1574. return 0;
  1575. }
  1576. /* Continue to check other slave statuses */
  1577. for (i = 1; i <= SDW_MAX_DEVICES; i++) {
  1578. mutex_lock(&bus->bus_lock);
  1579. if (test_bit(i, bus->assigned) == false) {
  1580. mutex_unlock(&bus->bus_lock);
  1581. continue;
  1582. }
  1583. mutex_unlock(&bus->bus_lock);
  1584. slave = sdw_get_slave(bus, i);
  1585. if (!slave)
  1586. continue;
  1587. attached_initializing = false;
  1588. switch (status[i]) {
  1589. case SDW_SLAVE_UNATTACHED:
  1590. if (slave->status == SDW_SLAVE_UNATTACHED)
  1591. break;
  1592. dev_warn(&slave->dev, "Slave %d state check2: UNATTACHED, status was %d\n",
  1593. i, slave->status);
  1594. sdw_modify_slave_status(slave, SDW_SLAVE_UNATTACHED);
  1595. break;
  1596. case SDW_SLAVE_ALERT:
  1597. ret = sdw_handle_slave_alerts(slave);
  1598. if (ret < 0)
  1599. dev_err(&slave->dev,
  1600. "Slave %d alert handling failed: %d\n",
  1601. i, ret);
  1602. break;
  1603. case SDW_SLAVE_ATTACHED:
  1604. if (slave->status == SDW_SLAVE_ATTACHED)
  1605. break;
  1606. prev_status = slave->status;
  1607. sdw_modify_slave_status(slave, SDW_SLAVE_ATTACHED);
  1608. if (prev_status == SDW_SLAVE_ALERT)
  1609. break;
  1610. attached_initializing = true;
  1611. ret = sdw_initialize_slave(slave);
  1612. if (ret < 0)
  1613. dev_err(&slave->dev,
  1614. "Slave %d initialization failed: %d\n",
  1615. i, ret);
  1616. break;
  1617. default:
  1618. dev_err(&slave->dev, "Invalid slave %d status:%d\n",
  1619. i, status[i]);
  1620. break;
  1621. }
  1622. ret = sdw_update_slave_status(slave, status[i]);
  1623. if (ret < 0)
  1624. dev_err(&slave->dev,
  1625. "Update Slave status failed:%d\n", ret);
  1626. if (attached_initializing) {
  1627. dev_dbg(&slave->dev,
  1628. "signaling initialization completion for Slave %d\n",
  1629. slave->dev_num);
  1630. complete_all(&slave->initialization_complete);
  1631. /*
  1632. * If the manager became pm_runtime active, the peripherals will be
  1633. * restarted and attach, but their pm_runtime status may remain
  1634. * suspended. If the 'update_slave_status' callback initiates
  1635. * any sort of deferred processing, this processing would not be
  1636. * cancelled on pm_runtime suspend.
  1637. * To avoid such zombie states, we queue a request to resume.
  1638. * This would be a no-op in case the peripheral was being resumed
  1639. * by e.g. the ALSA/ASoC framework.
  1640. */
  1641. pm_request_resume(&slave->dev);
  1642. }
  1643. }
  1644. return ret;
  1645. }
  1646. EXPORT_SYMBOL(sdw_handle_slave_status);
  1647. void sdw_clear_slave_status(struct sdw_bus *bus, u32 request)
  1648. {
  1649. struct sdw_slave *slave;
  1650. int i;
  1651. /* Check all non-zero devices */
  1652. for (i = 1; i <= SDW_MAX_DEVICES; i++) {
  1653. mutex_lock(&bus->bus_lock);
  1654. if (test_bit(i, bus->assigned) == false) {
  1655. mutex_unlock(&bus->bus_lock);
  1656. continue;
  1657. }
  1658. mutex_unlock(&bus->bus_lock);
  1659. slave = sdw_get_slave(bus, i);
  1660. if (!slave)
  1661. continue;
  1662. if (slave->status != SDW_SLAVE_UNATTACHED) {
  1663. sdw_modify_slave_status(slave, SDW_SLAVE_UNATTACHED);
  1664. slave->first_interrupt_done = false;
  1665. sdw_update_slave_status(slave, SDW_SLAVE_UNATTACHED);
  1666. }
  1667. /* keep track of request, used in pm_runtime resume */
  1668. slave->unattach_request = request;
  1669. }
  1670. }
  1671. EXPORT_SYMBOL(sdw_clear_slave_status);