tcpm.c 122 KB

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  1. // SPDX-License-Identifier: GPL-2.0+
  2. /*
  3. * Copyright 2015-2017 Google, Inc
  4. *
  5. * USB Power Delivery protocol stack.
  6. */
  7. #include <linux/completion.h>
  8. #include <linux/debugfs.h>
  9. #include <linux/device.h>
  10. #include <linux/jiffies.h>
  11. #include <linux/kernel.h>
  12. #include <linux/module.h>
  13. #include <linux/mutex.h>
  14. #include <linux/power_supply.h>
  15. #include <linux/proc_fs.h>
  16. #include <linux/property.h>
  17. #include <linux/sched/clock.h>
  18. #include <linux/seq_file.h>
  19. #include <linux/slab.h>
  20. #include <linux/spinlock.h>
  21. #include <linux/usb/pd.h>
  22. #include <linux/usb/pd_ado.h>
  23. #include <linux/usb/pd_bdo.h>
  24. #include <linux/usb/pd_ext_sdb.h>
  25. #include <linux/usb/pd_vdo.h>
  26. #include <linux/usb/role.h>
  27. #include <linux/usb/tcpm.h>
  28. #include <linux/usb/typec_altmode.h>
  29. #include <linux/workqueue.h>
  30. #define FOREACH_STATE(S) \
  31. S(INVALID_STATE), \
  32. S(TOGGLING), \
  33. S(SRC_UNATTACHED), \
  34. S(SRC_ATTACH_WAIT), \
  35. S(SRC_ATTACHED), \
  36. S(SRC_STARTUP), \
  37. S(SRC_SEND_CAPABILITIES), \
  38. S(SRC_SEND_CAPABILITIES_TIMEOUT), \
  39. S(SRC_NEGOTIATE_CAPABILITIES), \
  40. S(SRC_TRANSITION_SUPPLY), \
  41. S(SRC_READY), \
  42. S(SRC_WAIT_NEW_CAPABILITIES), \
  43. \
  44. S(SNK_UNATTACHED), \
  45. S(SNK_ATTACH_WAIT), \
  46. S(SNK_DEBOUNCED), \
  47. S(SNK_ATTACHED), \
  48. S(SNK_STARTUP), \
  49. S(SNK_DISCOVERY), \
  50. S(SNK_DISCOVERY_DEBOUNCE), \
  51. S(SNK_DISCOVERY_DEBOUNCE_DONE), \
  52. S(SNK_WAIT_CAPABILITIES), \
  53. S(SNK_NEGOTIATE_CAPABILITIES), \
  54. S(SNK_NEGOTIATE_PPS_CAPABILITIES), \
  55. S(SNK_TRANSITION_SINK), \
  56. S(SNK_TRANSITION_SINK_VBUS), \
  57. S(SNK_READY), \
  58. \
  59. S(ACC_UNATTACHED), \
  60. S(DEBUG_ACC_ATTACHED), \
  61. S(AUDIO_ACC_ATTACHED), \
  62. S(AUDIO_ACC_DEBOUNCE), \
  63. \
  64. S(HARD_RESET_SEND), \
  65. S(HARD_RESET_START), \
  66. S(SRC_HARD_RESET_VBUS_OFF), \
  67. S(SRC_HARD_RESET_VBUS_ON), \
  68. S(SNK_HARD_RESET_SINK_OFF), \
  69. S(SNK_HARD_RESET_WAIT_VBUS), \
  70. S(SNK_HARD_RESET_SINK_ON), \
  71. \
  72. S(SOFT_RESET), \
  73. S(SOFT_RESET_SEND), \
  74. \
  75. S(DR_SWAP_ACCEPT), \
  76. S(DR_SWAP_SEND), \
  77. S(DR_SWAP_SEND_TIMEOUT), \
  78. S(DR_SWAP_CANCEL), \
  79. S(DR_SWAP_CHANGE_DR), \
  80. \
  81. S(PR_SWAP_ACCEPT), \
  82. S(PR_SWAP_SEND), \
  83. S(PR_SWAP_SEND_TIMEOUT), \
  84. S(PR_SWAP_CANCEL), \
  85. S(PR_SWAP_START), \
  86. S(PR_SWAP_SRC_SNK_TRANSITION_OFF), \
  87. S(PR_SWAP_SRC_SNK_SOURCE_OFF), \
  88. S(PR_SWAP_SRC_SNK_SOURCE_OFF_CC_DEBOUNCED), \
  89. S(PR_SWAP_SRC_SNK_SINK_ON), \
  90. S(PR_SWAP_SNK_SRC_SINK_OFF), \
  91. S(PR_SWAP_SNK_SRC_SOURCE_ON), \
  92. S(PR_SWAP_SNK_SRC_SOURCE_ON_VBUS_RAMPED_UP), \
  93. \
  94. S(VCONN_SWAP_ACCEPT), \
  95. S(VCONN_SWAP_SEND), \
  96. S(VCONN_SWAP_SEND_TIMEOUT), \
  97. S(VCONN_SWAP_CANCEL), \
  98. S(VCONN_SWAP_START), \
  99. S(VCONN_SWAP_WAIT_FOR_VCONN), \
  100. S(VCONN_SWAP_TURN_ON_VCONN), \
  101. S(VCONN_SWAP_TURN_OFF_VCONN), \
  102. \
  103. S(SNK_TRY), \
  104. S(SNK_TRY_WAIT), \
  105. S(SNK_TRY_WAIT_DEBOUNCE), \
  106. S(SNK_TRY_WAIT_DEBOUNCE_CHECK_VBUS), \
  107. S(SRC_TRYWAIT), \
  108. S(SRC_TRYWAIT_DEBOUNCE), \
  109. S(SRC_TRYWAIT_UNATTACHED), \
  110. \
  111. S(SRC_TRY), \
  112. S(SRC_TRY_WAIT), \
  113. S(SRC_TRY_DEBOUNCE), \
  114. S(SNK_TRYWAIT), \
  115. S(SNK_TRYWAIT_DEBOUNCE), \
  116. S(SNK_TRYWAIT_VBUS), \
  117. S(BIST_RX), \
  118. \
  119. S(GET_STATUS_SEND), \
  120. S(GET_STATUS_SEND_TIMEOUT), \
  121. S(GET_PPS_STATUS_SEND), \
  122. S(GET_PPS_STATUS_SEND_TIMEOUT), \
  123. \
  124. S(ERROR_RECOVERY), \
  125. S(PORT_RESET), \
  126. S(PORT_RESET_WAIT_OFF)
  127. #define GENERATE_ENUM(e) e
  128. #define GENERATE_STRING(s) #s
  129. enum tcpm_state {
  130. FOREACH_STATE(GENERATE_ENUM)
  131. };
  132. static const char * const tcpm_states[] = {
  133. FOREACH_STATE(GENERATE_STRING)
  134. };
  135. enum vdm_states {
  136. VDM_STATE_ERR_BUSY = -3,
  137. VDM_STATE_ERR_SEND = -2,
  138. VDM_STATE_ERR_TMOUT = -1,
  139. VDM_STATE_DONE = 0,
  140. /* Anything >0 represents an active state */
  141. VDM_STATE_READY = 1,
  142. VDM_STATE_BUSY = 2,
  143. VDM_STATE_WAIT_RSP_BUSY = 3,
  144. };
  145. enum pd_msg_request {
  146. PD_MSG_NONE = 0,
  147. PD_MSG_CTRL_REJECT,
  148. PD_MSG_CTRL_WAIT,
  149. PD_MSG_CTRL_NOT_SUPP,
  150. PD_MSG_DATA_SINK_CAP,
  151. PD_MSG_DATA_SOURCE_CAP,
  152. };
  153. /* Events from low level driver */
  154. #define TCPM_CC_EVENT BIT(0)
  155. #define TCPM_VBUS_EVENT BIT(1)
  156. #define TCPM_RESET_EVENT BIT(2)
  157. #define LOG_BUFFER_ENTRIES 1024
  158. #define LOG_BUFFER_ENTRY_SIZE 128
  159. /* Alternate mode support */
  160. #define SVID_DISCOVERY_MAX 16
  161. #define ALTMODE_DISCOVERY_MAX (SVID_DISCOVERY_MAX * MODE_DISCOVERY_MAX)
  162. struct pd_mode_data {
  163. int svid_index; /* current SVID index */
  164. int nsvids;
  165. u16 svids[SVID_DISCOVERY_MAX];
  166. int altmodes; /* number of alternate modes */
  167. struct typec_altmode_desc altmode_desc[ALTMODE_DISCOVERY_MAX];
  168. };
  169. struct pd_pps_data {
  170. u32 min_volt;
  171. u32 max_volt;
  172. u32 max_curr;
  173. u32 out_volt;
  174. u32 op_curr;
  175. bool supported;
  176. bool active;
  177. };
  178. struct tcpm_port {
  179. struct device *dev;
  180. struct mutex lock; /* tcpm state machine lock */
  181. struct workqueue_struct *wq;
  182. struct typec_capability typec_caps;
  183. struct typec_port *typec_port;
  184. struct tcpc_dev *tcpc;
  185. struct usb_role_switch *role_sw;
  186. enum typec_role vconn_role;
  187. enum typec_role pwr_role;
  188. enum typec_data_role data_role;
  189. enum typec_pwr_opmode pwr_opmode;
  190. struct usb_pd_identity partner_ident;
  191. struct typec_partner_desc partner_desc;
  192. struct typec_partner *partner;
  193. enum typec_cc_status cc_req;
  194. enum typec_cc_status cc1;
  195. enum typec_cc_status cc2;
  196. enum typec_cc_polarity polarity;
  197. bool attached;
  198. bool connected;
  199. enum typec_port_type port_type;
  200. bool vbus_present;
  201. bool vbus_never_low;
  202. bool vbus_source;
  203. bool vbus_charge;
  204. bool send_discover;
  205. bool op_vsafe5v;
  206. int try_role;
  207. int try_snk_count;
  208. int try_src_count;
  209. enum pd_msg_request queued_message;
  210. enum tcpm_state enter_state;
  211. enum tcpm_state prev_state;
  212. enum tcpm_state state;
  213. enum tcpm_state delayed_state;
  214. unsigned long delayed_runtime;
  215. unsigned long delay_ms;
  216. spinlock_t pd_event_lock;
  217. u32 pd_events;
  218. struct work_struct event_work;
  219. struct delayed_work state_machine;
  220. struct delayed_work vdm_state_machine;
  221. bool state_machine_running;
  222. struct completion tx_complete;
  223. enum tcpm_transmit_status tx_status;
  224. struct mutex swap_lock; /* swap command lock */
  225. bool swap_pending;
  226. bool non_pd_role_swap;
  227. struct completion swap_complete;
  228. int swap_status;
  229. unsigned int negotiated_rev;
  230. unsigned int message_id;
  231. unsigned int caps_count;
  232. unsigned int hard_reset_count;
  233. bool pd_capable;
  234. bool explicit_contract;
  235. unsigned int rx_msgid;
  236. /* Partner capabilities/requests */
  237. u32 sink_request;
  238. u32 source_caps[PDO_MAX_OBJECTS];
  239. unsigned int nr_source_caps;
  240. u32 sink_caps[PDO_MAX_OBJECTS];
  241. unsigned int nr_sink_caps;
  242. /* Local capabilities */
  243. u32 src_pdo[PDO_MAX_OBJECTS];
  244. unsigned int nr_src_pdo;
  245. u32 snk_pdo[PDO_MAX_OBJECTS];
  246. unsigned int nr_snk_pdo;
  247. u32 snk_vdo[VDO_MAX_OBJECTS];
  248. unsigned int nr_snk_vdo;
  249. unsigned int operating_snk_mw;
  250. bool update_sink_caps;
  251. /* Requested current / voltage */
  252. u32 current_limit;
  253. u32 supply_voltage;
  254. /* Used to export TA voltage and current */
  255. struct power_supply *psy;
  256. struct power_supply_desc psy_desc;
  257. enum power_supply_usb_type usb_type;
  258. u32 bist_request;
  259. /* PD state for Vendor Defined Messages */
  260. enum vdm_states vdm_state;
  261. u32 vdm_retries;
  262. /* next Vendor Defined Message to send */
  263. u32 vdo_data[VDO_MAX_SIZE];
  264. u8 vdo_count;
  265. /* VDO to retry if UFP responder replied busy */
  266. u32 vdo_retry;
  267. /* PPS */
  268. struct pd_pps_data pps_data;
  269. struct completion pps_complete;
  270. bool pps_pending;
  271. int pps_status;
  272. /* Alternate mode data */
  273. struct pd_mode_data mode_data;
  274. struct typec_altmode *partner_altmode[ALTMODE_DISCOVERY_MAX];
  275. struct typec_altmode *port_altmode[ALTMODE_DISCOVERY_MAX];
  276. /* Deadline in jiffies to exit src_try_wait state */
  277. unsigned long max_wait;
  278. /* port belongs to a self powered device */
  279. bool self_powered;
  280. #ifdef CONFIG_DEBUG_FS
  281. struct dentry *dentry;
  282. struct mutex logbuffer_lock; /* log buffer access lock */
  283. int logbuffer_head;
  284. int logbuffer_tail;
  285. u8 *logbuffer[LOG_BUFFER_ENTRIES];
  286. #endif
  287. };
  288. struct pd_rx_event {
  289. struct work_struct work;
  290. struct tcpm_port *port;
  291. struct pd_message msg;
  292. };
  293. #define tcpm_cc_is_sink(cc) \
  294. ((cc) == TYPEC_CC_RP_DEF || (cc) == TYPEC_CC_RP_1_5 || \
  295. (cc) == TYPEC_CC_RP_3_0)
  296. #define tcpm_port_is_sink(port) \
  297. ((tcpm_cc_is_sink((port)->cc1) && !tcpm_cc_is_sink((port)->cc2)) || \
  298. (tcpm_cc_is_sink((port)->cc2) && !tcpm_cc_is_sink((port)->cc1)))
  299. #define tcpm_cc_is_source(cc) ((cc) == TYPEC_CC_RD)
  300. #define tcpm_cc_is_audio(cc) ((cc) == TYPEC_CC_RA)
  301. #define tcpm_cc_is_open(cc) ((cc) == TYPEC_CC_OPEN)
  302. #define tcpm_port_is_source(port) \
  303. ((tcpm_cc_is_source((port)->cc1) && \
  304. !tcpm_cc_is_source((port)->cc2)) || \
  305. (tcpm_cc_is_source((port)->cc2) && \
  306. !tcpm_cc_is_source((port)->cc1)))
  307. #define tcpm_port_is_debug(port) \
  308. (tcpm_cc_is_source((port)->cc1) && tcpm_cc_is_source((port)->cc2))
  309. #define tcpm_port_is_audio(port) \
  310. (tcpm_cc_is_audio((port)->cc1) && tcpm_cc_is_audio((port)->cc2))
  311. #define tcpm_port_is_audio_detached(port) \
  312. ((tcpm_cc_is_audio((port)->cc1) && tcpm_cc_is_open((port)->cc2)) || \
  313. (tcpm_cc_is_audio((port)->cc2) && tcpm_cc_is_open((port)->cc1)))
  314. #define tcpm_try_snk(port) \
  315. ((port)->try_snk_count == 0 && (port)->try_role == TYPEC_SINK && \
  316. (port)->port_type == TYPEC_PORT_DRP)
  317. #define tcpm_try_src(port) \
  318. ((port)->try_src_count == 0 && (port)->try_role == TYPEC_SOURCE && \
  319. (port)->port_type == TYPEC_PORT_DRP)
  320. static enum tcpm_state tcpm_default_state(struct tcpm_port *port)
  321. {
  322. if (port->port_type == TYPEC_PORT_DRP) {
  323. if (port->try_role == TYPEC_SINK)
  324. return SNK_UNATTACHED;
  325. else if (port->try_role == TYPEC_SOURCE)
  326. return SRC_UNATTACHED;
  327. else if (port->tcpc->config &&
  328. port->tcpc->config->default_role == TYPEC_SINK)
  329. return SNK_UNATTACHED;
  330. /* Fall through to return SRC_UNATTACHED */
  331. } else if (port->port_type == TYPEC_PORT_SNK) {
  332. return SNK_UNATTACHED;
  333. }
  334. return SRC_UNATTACHED;
  335. }
  336. static inline
  337. struct tcpm_port *typec_cap_to_tcpm(const struct typec_capability *cap)
  338. {
  339. return container_of(cap, struct tcpm_port, typec_caps);
  340. }
  341. static bool tcpm_port_is_disconnected(struct tcpm_port *port)
  342. {
  343. return (!port->attached && port->cc1 == TYPEC_CC_OPEN &&
  344. port->cc2 == TYPEC_CC_OPEN) ||
  345. (port->attached && ((port->polarity == TYPEC_POLARITY_CC1 &&
  346. port->cc1 == TYPEC_CC_OPEN) ||
  347. (port->polarity == TYPEC_POLARITY_CC2 &&
  348. port->cc2 == TYPEC_CC_OPEN)));
  349. }
  350. /*
  351. * Logging
  352. */
  353. #ifdef CONFIG_DEBUG_FS
  354. static bool tcpm_log_full(struct tcpm_port *port)
  355. {
  356. return port->logbuffer_tail ==
  357. (port->logbuffer_head + 1) % LOG_BUFFER_ENTRIES;
  358. }
  359. __printf(2, 0)
  360. static void _tcpm_log(struct tcpm_port *port, const char *fmt, va_list args)
  361. {
  362. char tmpbuffer[LOG_BUFFER_ENTRY_SIZE];
  363. u64 ts_nsec = local_clock();
  364. unsigned long rem_nsec;
  365. mutex_lock(&port->logbuffer_lock);
  366. if (!port->logbuffer[port->logbuffer_head]) {
  367. port->logbuffer[port->logbuffer_head] =
  368. kzalloc(LOG_BUFFER_ENTRY_SIZE, GFP_KERNEL);
  369. if (!port->logbuffer[port->logbuffer_head]) {
  370. mutex_unlock(&port->logbuffer_lock);
  371. return;
  372. }
  373. }
  374. vsnprintf(tmpbuffer, sizeof(tmpbuffer), fmt, args);
  375. if (tcpm_log_full(port)) {
  376. port->logbuffer_head = max(port->logbuffer_head - 1, 0);
  377. strcpy(tmpbuffer, "overflow");
  378. }
  379. if (port->logbuffer_head < 0 ||
  380. port->logbuffer_head >= LOG_BUFFER_ENTRIES) {
  381. dev_warn(port->dev,
  382. "Bad log buffer index %d\n", port->logbuffer_head);
  383. goto abort;
  384. }
  385. if (!port->logbuffer[port->logbuffer_head]) {
  386. dev_warn(port->dev,
  387. "Log buffer index %d is NULL\n", port->logbuffer_head);
  388. goto abort;
  389. }
  390. rem_nsec = do_div(ts_nsec, 1000000000);
  391. scnprintf(port->logbuffer[port->logbuffer_head],
  392. LOG_BUFFER_ENTRY_SIZE, "[%5lu.%06lu] %s",
  393. (unsigned long)ts_nsec, rem_nsec / 1000,
  394. tmpbuffer);
  395. port->logbuffer_head = (port->logbuffer_head + 1) % LOG_BUFFER_ENTRIES;
  396. abort:
  397. mutex_unlock(&port->logbuffer_lock);
  398. }
  399. __printf(2, 3)
  400. static void tcpm_log(struct tcpm_port *port, const char *fmt, ...)
  401. {
  402. va_list args;
  403. /* Do not log while disconnected and unattached */
  404. if (tcpm_port_is_disconnected(port) &&
  405. (port->state == SRC_UNATTACHED || port->state == SNK_UNATTACHED ||
  406. port->state == TOGGLING))
  407. return;
  408. va_start(args, fmt);
  409. _tcpm_log(port, fmt, args);
  410. va_end(args);
  411. }
  412. __printf(2, 3)
  413. static void tcpm_log_force(struct tcpm_port *port, const char *fmt, ...)
  414. {
  415. va_list args;
  416. va_start(args, fmt);
  417. _tcpm_log(port, fmt, args);
  418. va_end(args);
  419. }
  420. static void tcpm_log_source_caps(struct tcpm_port *port)
  421. {
  422. int i;
  423. for (i = 0; i < port->nr_source_caps; i++) {
  424. u32 pdo = port->source_caps[i];
  425. enum pd_pdo_type type = pdo_type(pdo);
  426. char msg[64];
  427. switch (type) {
  428. case PDO_TYPE_FIXED:
  429. scnprintf(msg, sizeof(msg),
  430. "%u mV, %u mA [%s%s%s%s%s%s]",
  431. pdo_fixed_voltage(pdo),
  432. pdo_max_current(pdo),
  433. (pdo & PDO_FIXED_DUAL_ROLE) ?
  434. "R" : "",
  435. (pdo & PDO_FIXED_SUSPEND) ?
  436. "S" : "",
  437. (pdo & PDO_FIXED_HIGHER_CAP) ?
  438. "H" : "",
  439. (pdo & PDO_FIXED_USB_COMM) ?
  440. "U" : "",
  441. (pdo & PDO_FIXED_DATA_SWAP) ?
  442. "D" : "",
  443. (pdo & PDO_FIXED_EXTPOWER) ?
  444. "E" : "");
  445. break;
  446. case PDO_TYPE_VAR:
  447. scnprintf(msg, sizeof(msg),
  448. "%u-%u mV, %u mA",
  449. pdo_min_voltage(pdo),
  450. pdo_max_voltage(pdo),
  451. pdo_max_current(pdo));
  452. break;
  453. case PDO_TYPE_BATT:
  454. scnprintf(msg, sizeof(msg),
  455. "%u-%u mV, %u mW",
  456. pdo_min_voltage(pdo),
  457. pdo_max_voltage(pdo),
  458. pdo_max_power(pdo));
  459. break;
  460. case PDO_TYPE_APDO:
  461. if (pdo_apdo_type(pdo) == APDO_TYPE_PPS)
  462. scnprintf(msg, sizeof(msg),
  463. "%u-%u mV, %u mA",
  464. pdo_pps_apdo_min_voltage(pdo),
  465. pdo_pps_apdo_max_voltage(pdo),
  466. pdo_pps_apdo_max_current(pdo));
  467. else
  468. strcpy(msg, "undefined APDO");
  469. break;
  470. default:
  471. strcpy(msg, "undefined");
  472. break;
  473. }
  474. tcpm_log(port, " PDO %d: type %d, %s",
  475. i, type, msg);
  476. }
  477. }
  478. static int tcpm_debug_show(struct seq_file *s, void *v)
  479. {
  480. struct tcpm_port *port = (struct tcpm_port *)s->private;
  481. int tail;
  482. mutex_lock(&port->logbuffer_lock);
  483. tail = port->logbuffer_tail;
  484. while (tail != port->logbuffer_head) {
  485. seq_printf(s, "%s\n", port->logbuffer[tail]);
  486. tail = (tail + 1) % LOG_BUFFER_ENTRIES;
  487. }
  488. if (!seq_has_overflowed(s))
  489. port->logbuffer_tail = tail;
  490. mutex_unlock(&port->logbuffer_lock);
  491. return 0;
  492. }
  493. DEFINE_SHOW_ATTRIBUTE(tcpm_debug);
  494. static struct dentry *rootdir;
  495. static void tcpm_debugfs_init(struct tcpm_port *port)
  496. {
  497. mutex_init(&port->logbuffer_lock);
  498. /* /sys/kernel/debug/tcpm/usbcX */
  499. if (!rootdir)
  500. rootdir = debugfs_create_dir("tcpm", NULL);
  501. port->dentry = debugfs_create_file(dev_name(port->dev),
  502. S_IFREG | 0444, rootdir,
  503. port, &tcpm_debug_fops);
  504. }
  505. static void tcpm_debugfs_exit(struct tcpm_port *port)
  506. {
  507. int i;
  508. mutex_lock(&port->logbuffer_lock);
  509. for (i = 0; i < LOG_BUFFER_ENTRIES; i++) {
  510. kfree(port->logbuffer[i]);
  511. port->logbuffer[i] = NULL;
  512. }
  513. mutex_unlock(&port->logbuffer_lock);
  514. debugfs_remove(port->dentry);
  515. if (list_empty(&rootdir->d_subdirs)) {
  516. debugfs_remove(rootdir);
  517. rootdir = NULL;
  518. }
  519. }
  520. #else
  521. __printf(2, 3)
  522. static void tcpm_log(const struct tcpm_port *port, const char *fmt, ...) { }
  523. __printf(2, 3)
  524. static void tcpm_log_force(struct tcpm_port *port, const char *fmt, ...) { }
  525. static void tcpm_log_source_caps(struct tcpm_port *port) { }
  526. static void tcpm_debugfs_init(const struct tcpm_port *port) { }
  527. static void tcpm_debugfs_exit(const struct tcpm_port *port) { }
  528. #endif
  529. static int tcpm_pd_transmit(struct tcpm_port *port,
  530. enum tcpm_transmit_type type,
  531. const struct pd_message *msg)
  532. {
  533. unsigned long timeout;
  534. int ret;
  535. if (msg)
  536. tcpm_log(port, "PD TX, header: %#x", le16_to_cpu(msg->header));
  537. else
  538. tcpm_log(port, "PD TX, type: %#x", type);
  539. reinit_completion(&port->tx_complete);
  540. ret = port->tcpc->pd_transmit(port->tcpc, type, msg);
  541. if (ret < 0)
  542. return ret;
  543. mutex_unlock(&port->lock);
  544. timeout = wait_for_completion_timeout(&port->tx_complete,
  545. msecs_to_jiffies(PD_T_TCPC_TX_TIMEOUT));
  546. mutex_lock(&port->lock);
  547. if (!timeout)
  548. return -ETIMEDOUT;
  549. switch (port->tx_status) {
  550. case TCPC_TX_SUCCESS:
  551. port->message_id = (port->message_id + 1) & PD_HEADER_ID_MASK;
  552. return 0;
  553. case TCPC_TX_DISCARDED:
  554. return -EAGAIN;
  555. case TCPC_TX_FAILED:
  556. default:
  557. return -EIO;
  558. }
  559. }
  560. void tcpm_pd_transmit_complete(struct tcpm_port *port,
  561. enum tcpm_transmit_status status)
  562. {
  563. tcpm_log(port, "PD TX complete, status: %u", status);
  564. port->tx_status = status;
  565. complete(&port->tx_complete);
  566. }
  567. EXPORT_SYMBOL_GPL(tcpm_pd_transmit_complete);
  568. static int tcpm_mux_set(struct tcpm_port *port, int state,
  569. enum usb_role usb_role,
  570. enum typec_orientation orientation)
  571. {
  572. int ret;
  573. tcpm_log(port, "Requesting mux state %d, usb-role %d, orientation %d",
  574. state, usb_role, orientation);
  575. ret = typec_set_orientation(port->typec_port, orientation);
  576. if (ret)
  577. return ret;
  578. if (port->role_sw) {
  579. ret = usb_role_switch_set_role(port->role_sw, usb_role);
  580. if (ret)
  581. return ret;
  582. }
  583. return typec_set_mode(port->typec_port, state);
  584. }
  585. static int tcpm_set_polarity(struct tcpm_port *port,
  586. enum typec_cc_polarity polarity)
  587. {
  588. int ret;
  589. tcpm_log(port, "polarity %d", polarity);
  590. ret = port->tcpc->set_polarity(port->tcpc, polarity);
  591. if (ret < 0)
  592. return ret;
  593. port->polarity = polarity;
  594. return 0;
  595. }
  596. static int tcpm_set_vconn(struct tcpm_port *port, bool enable)
  597. {
  598. int ret;
  599. tcpm_log(port, "vconn:=%d", enable);
  600. ret = port->tcpc->set_vconn(port->tcpc, enable);
  601. if (!ret) {
  602. port->vconn_role = enable ? TYPEC_SOURCE : TYPEC_SINK;
  603. typec_set_vconn_role(port->typec_port, port->vconn_role);
  604. }
  605. return ret;
  606. }
  607. static u32 tcpm_get_current_limit(struct tcpm_port *port)
  608. {
  609. enum typec_cc_status cc;
  610. u32 limit;
  611. cc = port->polarity ? port->cc2 : port->cc1;
  612. switch (cc) {
  613. case TYPEC_CC_RP_1_5:
  614. limit = 1500;
  615. break;
  616. case TYPEC_CC_RP_3_0:
  617. limit = 3000;
  618. break;
  619. case TYPEC_CC_RP_DEF:
  620. default:
  621. if (port->tcpc->get_current_limit)
  622. limit = port->tcpc->get_current_limit(port->tcpc);
  623. else
  624. limit = 0;
  625. break;
  626. }
  627. return limit;
  628. }
  629. static int tcpm_set_current_limit(struct tcpm_port *port, u32 max_ma, u32 mv)
  630. {
  631. int ret = -EOPNOTSUPP;
  632. tcpm_log(port, "Setting voltage/current limit %u mV %u mA", mv, max_ma);
  633. port->supply_voltage = mv;
  634. port->current_limit = max_ma;
  635. if (port->tcpc->set_current_limit)
  636. ret = port->tcpc->set_current_limit(port->tcpc, max_ma, mv);
  637. return ret;
  638. }
  639. /*
  640. * Determine RP value to set based on maximum current supported
  641. * by a port if configured as source.
  642. * Returns CC value to report to link partner.
  643. */
  644. static enum typec_cc_status tcpm_rp_cc(struct tcpm_port *port)
  645. {
  646. const u32 *src_pdo = port->src_pdo;
  647. int nr_pdo = port->nr_src_pdo;
  648. int i;
  649. /*
  650. * Search for first entry with matching voltage.
  651. * It should report the maximum supported current.
  652. */
  653. for (i = 0; i < nr_pdo; i++) {
  654. const u32 pdo = src_pdo[i];
  655. if (pdo_type(pdo) == PDO_TYPE_FIXED &&
  656. pdo_fixed_voltage(pdo) == 5000) {
  657. unsigned int curr = pdo_max_current(pdo);
  658. if (curr >= 3000)
  659. return TYPEC_CC_RP_3_0;
  660. else if (curr >= 1500)
  661. return TYPEC_CC_RP_1_5;
  662. return TYPEC_CC_RP_DEF;
  663. }
  664. }
  665. return TYPEC_CC_RP_DEF;
  666. }
  667. static int tcpm_set_attached_state(struct tcpm_port *port, bool attached)
  668. {
  669. return port->tcpc->set_roles(port->tcpc, attached, port->pwr_role,
  670. port->data_role);
  671. }
  672. static int tcpm_set_roles(struct tcpm_port *port, bool attached,
  673. enum typec_role role, enum typec_data_role data)
  674. {
  675. enum typec_orientation orientation;
  676. enum usb_role usb_role;
  677. int ret;
  678. if (port->polarity == TYPEC_POLARITY_CC1)
  679. orientation = TYPEC_ORIENTATION_NORMAL;
  680. else
  681. orientation = TYPEC_ORIENTATION_REVERSE;
  682. if (data == TYPEC_HOST)
  683. usb_role = USB_ROLE_HOST;
  684. else
  685. usb_role = USB_ROLE_DEVICE;
  686. ret = tcpm_mux_set(port, TYPEC_STATE_USB, usb_role, orientation);
  687. if (ret < 0)
  688. return ret;
  689. ret = port->tcpc->set_roles(port->tcpc, attached, role, data);
  690. if (ret < 0)
  691. return ret;
  692. port->pwr_role = role;
  693. port->data_role = data;
  694. typec_set_data_role(port->typec_port, data);
  695. typec_set_pwr_role(port->typec_port, role);
  696. return 0;
  697. }
  698. static int tcpm_set_pwr_role(struct tcpm_port *port, enum typec_role role)
  699. {
  700. int ret;
  701. ret = port->tcpc->set_roles(port->tcpc, true, role,
  702. port->data_role);
  703. if (ret < 0)
  704. return ret;
  705. port->pwr_role = role;
  706. typec_set_pwr_role(port->typec_port, role);
  707. return 0;
  708. }
  709. static int tcpm_pd_send_source_caps(struct tcpm_port *port)
  710. {
  711. struct pd_message msg;
  712. int i;
  713. memset(&msg, 0, sizeof(msg));
  714. if (!port->nr_src_pdo) {
  715. /* No source capabilities defined, sink only */
  716. msg.header = PD_HEADER_LE(PD_CTRL_REJECT,
  717. port->pwr_role,
  718. port->data_role,
  719. port->negotiated_rev,
  720. port->message_id, 0);
  721. } else {
  722. msg.header = PD_HEADER_LE(PD_DATA_SOURCE_CAP,
  723. port->pwr_role,
  724. port->data_role,
  725. port->negotiated_rev,
  726. port->message_id,
  727. port->nr_src_pdo);
  728. }
  729. for (i = 0; i < port->nr_src_pdo; i++)
  730. msg.payload[i] = cpu_to_le32(port->src_pdo[i]);
  731. return tcpm_pd_transmit(port, TCPC_TX_SOP, &msg);
  732. }
  733. static int tcpm_pd_send_sink_caps(struct tcpm_port *port)
  734. {
  735. struct pd_message msg;
  736. int i;
  737. memset(&msg, 0, sizeof(msg));
  738. if (!port->nr_snk_pdo) {
  739. /* No sink capabilities defined, source only */
  740. msg.header = PD_HEADER_LE(PD_CTRL_REJECT,
  741. port->pwr_role,
  742. port->data_role,
  743. port->negotiated_rev,
  744. port->message_id, 0);
  745. } else {
  746. msg.header = PD_HEADER_LE(PD_DATA_SINK_CAP,
  747. port->pwr_role,
  748. port->data_role,
  749. port->negotiated_rev,
  750. port->message_id,
  751. port->nr_snk_pdo);
  752. }
  753. for (i = 0; i < port->nr_snk_pdo; i++)
  754. msg.payload[i] = cpu_to_le32(port->snk_pdo[i]);
  755. return tcpm_pd_transmit(port, TCPC_TX_SOP, &msg);
  756. }
  757. static void tcpm_set_state(struct tcpm_port *port, enum tcpm_state state,
  758. unsigned int delay_ms)
  759. {
  760. if (delay_ms) {
  761. tcpm_log(port, "pending state change %s -> %s @ %u ms",
  762. tcpm_states[port->state], tcpm_states[state],
  763. delay_ms);
  764. port->delayed_state = state;
  765. mod_delayed_work(port->wq, &port->state_machine,
  766. msecs_to_jiffies(delay_ms));
  767. port->delayed_runtime = jiffies + msecs_to_jiffies(delay_ms);
  768. port->delay_ms = delay_ms;
  769. } else {
  770. tcpm_log(port, "state change %s -> %s",
  771. tcpm_states[port->state], tcpm_states[state]);
  772. port->delayed_state = INVALID_STATE;
  773. port->prev_state = port->state;
  774. port->state = state;
  775. /*
  776. * Don't re-queue the state machine work item if we're currently
  777. * in the state machine and we're immediately changing states.
  778. * tcpm_state_machine_work() will continue running the state
  779. * machine.
  780. */
  781. if (!port->state_machine_running)
  782. mod_delayed_work(port->wq, &port->state_machine, 0);
  783. }
  784. }
  785. static void tcpm_set_state_cond(struct tcpm_port *port, enum tcpm_state state,
  786. unsigned int delay_ms)
  787. {
  788. if (port->enter_state == port->state)
  789. tcpm_set_state(port, state, delay_ms);
  790. else
  791. tcpm_log(port,
  792. "skipped %sstate change %s -> %s [%u ms], context state %s",
  793. delay_ms ? "delayed " : "",
  794. tcpm_states[port->state], tcpm_states[state],
  795. delay_ms, tcpm_states[port->enter_state]);
  796. }
  797. static void tcpm_queue_message(struct tcpm_port *port,
  798. enum pd_msg_request message)
  799. {
  800. port->queued_message = message;
  801. mod_delayed_work(port->wq, &port->state_machine, 0);
  802. }
  803. /*
  804. * VDM/VDO handling functions
  805. */
  806. static void tcpm_queue_vdm(struct tcpm_port *port, const u32 header,
  807. const u32 *data, int cnt)
  808. {
  809. port->vdo_count = cnt + 1;
  810. port->vdo_data[0] = header;
  811. memcpy(&port->vdo_data[1], data, sizeof(u32) * cnt);
  812. /* Set ready, vdm state machine will actually send */
  813. port->vdm_retries = 0;
  814. port->vdm_state = VDM_STATE_READY;
  815. }
  816. static void svdm_consume_identity(struct tcpm_port *port, const __le32 *payload,
  817. int cnt)
  818. {
  819. u32 vdo = le32_to_cpu(payload[VDO_INDEX_IDH]);
  820. u32 product = le32_to_cpu(payload[VDO_INDEX_PRODUCT]);
  821. memset(&port->mode_data, 0, sizeof(port->mode_data));
  822. port->partner_ident.id_header = vdo;
  823. port->partner_ident.cert_stat = le32_to_cpu(payload[VDO_INDEX_CSTAT]);
  824. port->partner_ident.product = product;
  825. typec_partner_set_identity(port->partner);
  826. tcpm_log(port, "Identity: %04x:%04x.%04x",
  827. PD_IDH_VID(vdo),
  828. PD_PRODUCT_PID(product), product & 0xffff);
  829. }
  830. static bool svdm_consume_svids(struct tcpm_port *port, const __le32 *payload,
  831. int cnt)
  832. {
  833. struct pd_mode_data *pmdata = &port->mode_data;
  834. int i;
  835. for (i = 1; i < cnt; i++) {
  836. u32 p = le32_to_cpu(payload[i]);
  837. u16 svid;
  838. svid = (p >> 16) & 0xffff;
  839. if (!svid)
  840. return false;
  841. if (pmdata->nsvids >= SVID_DISCOVERY_MAX)
  842. goto abort;
  843. pmdata->svids[pmdata->nsvids++] = svid;
  844. tcpm_log(port, "SVID %d: 0x%x", pmdata->nsvids, svid);
  845. svid = p & 0xffff;
  846. if (!svid)
  847. return false;
  848. if (pmdata->nsvids >= SVID_DISCOVERY_MAX)
  849. goto abort;
  850. pmdata->svids[pmdata->nsvids++] = svid;
  851. tcpm_log(port, "SVID %d: 0x%x", pmdata->nsvids, svid);
  852. }
  853. return true;
  854. abort:
  855. tcpm_log(port, "SVID_DISCOVERY_MAX(%d) too low!", SVID_DISCOVERY_MAX);
  856. return false;
  857. }
  858. static void svdm_consume_modes(struct tcpm_port *port, const __le32 *payload,
  859. int cnt)
  860. {
  861. struct pd_mode_data *pmdata = &port->mode_data;
  862. struct typec_altmode_desc *paltmode;
  863. int i;
  864. if (pmdata->altmodes >= ARRAY_SIZE(port->partner_altmode)) {
  865. /* Already logged in svdm_consume_svids() */
  866. return;
  867. }
  868. for (i = 1; i < cnt; i++) {
  869. paltmode = &pmdata->altmode_desc[pmdata->altmodes];
  870. memset(paltmode, 0, sizeof(*paltmode));
  871. paltmode->svid = pmdata->svids[pmdata->svid_index];
  872. paltmode->mode = i;
  873. paltmode->vdo = le32_to_cpu(payload[i]);
  874. tcpm_log(port, " Alternate mode %d: SVID 0x%04x, VDO %d: 0x%08x",
  875. pmdata->altmodes, paltmode->svid,
  876. paltmode->mode, paltmode->vdo);
  877. pmdata->altmodes++;
  878. }
  879. }
  880. static void tcpm_register_partner_altmodes(struct tcpm_port *port)
  881. {
  882. struct pd_mode_data *modep = &port->mode_data;
  883. struct typec_altmode *altmode;
  884. int i;
  885. for (i = 0; i < modep->altmodes; i++) {
  886. altmode = typec_partner_register_altmode(port->partner,
  887. &modep->altmode_desc[i]);
  888. if (!altmode)
  889. tcpm_log(port, "Failed to register partner SVID 0x%04x",
  890. modep->altmode_desc[i].svid);
  891. port->partner_altmode[i] = altmode;
  892. }
  893. }
  894. #define supports_modal(port) PD_IDH_MODAL_SUPP((port)->partner_ident.id_header)
  895. static int tcpm_pd_svdm(struct tcpm_port *port, const __le32 *payload, int cnt,
  896. u32 *response)
  897. {
  898. struct typec_altmode *adev;
  899. struct typec_altmode *pdev;
  900. struct pd_mode_data *modep;
  901. u32 p[PD_MAX_PAYLOAD];
  902. int rlen = 0;
  903. int cmd_type;
  904. int cmd;
  905. int i;
  906. for (i = 0; i < cnt; i++)
  907. p[i] = le32_to_cpu(payload[i]);
  908. cmd_type = PD_VDO_CMDT(p[0]);
  909. cmd = PD_VDO_CMD(p[0]);
  910. tcpm_log(port, "Rx VDM cmd 0x%x type %d cmd %d len %d",
  911. p[0], cmd_type, cmd, cnt);
  912. modep = &port->mode_data;
  913. adev = typec_match_altmode(port->port_altmode, ALTMODE_DISCOVERY_MAX,
  914. PD_VDO_VID(p[0]), PD_VDO_OPOS(p[0]));
  915. pdev = typec_match_altmode(port->partner_altmode, ALTMODE_DISCOVERY_MAX,
  916. PD_VDO_VID(p[0]), PD_VDO_OPOS(p[0]));
  917. switch (cmd_type) {
  918. case CMDT_INIT:
  919. switch (cmd) {
  920. case CMD_DISCOVER_IDENT:
  921. /* 6.4.4.3.1: Only respond as UFP (device) */
  922. if (port->data_role == TYPEC_DEVICE &&
  923. port->nr_snk_vdo) {
  924. for (i = 0; i < port->nr_snk_vdo; i++)
  925. response[i + 1] = port->snk_vdo[i];
  926. rlen = port->nr_snk_vdo + 1;
  927. }
  928. break;
  929. case CMD_DISCOVER_SVID:
  930. break;
  931. case CMD_DISCOVER_MODES:
  932. break;
  933. case CMD_ENTER_MODE:
  934. break;
  935. case CMD_EXIT_MODE:
  936. break;
  937. case CMD_ATTENTION:
  938. /* Attention command does not have response */
  939. if (adev)
  940. typec_altmode_attention(adev, p[1]);
  941. return 0;
  942. default:
  943. break;
  944. }
  945. if (rlen >= 1) {
  946. response[0] = p[0] | VDO_CMDT(CMDT_RSP_ACK);
  947. } else if (rlen == 0) {
  948. response[0] = p[0] | VDO_CMDT(CMDT_RSP_NAK);
  949. rlen = 1;
  950. } else {
  951. response[0] = p[0] | VDO_CMDT(CMDT_RSP_BUSY);
  952. rlen = 1;
  953. }
  954. break;
  955. case CMDT_RSP_ACK:
  956. /* silently drop message if we are not connected */
  957. if (IS_ERR_OR_NULL(port->partner))
  958. break;
  959. switch (cmd) {
  960. case CMD_DISCOVER_IDENT:
  961. /* 6.4.4.3.1 */
  962. svdm_consume_identity(port, payload, cnt);
  963. response[0] = VDO(USB_SID_PD, 1, CMD_DISCOVER_SVID);
  964. rlen = 1;
  965. break;
  966. case CMD_DISCOVER_SVID:
  967. /* 6.4.4.3.2 */
  968. if (svdm_consume_svids(port, payload, cnt)) {
  969. response[0] = VDO(USB_SID_PD, 1,
  970. CMD_DISCOVER_SVID);
  971. rlen = 1;
  972. } else if (modep->nsvids && supports_modal(port)) {
  973. response[0] = VDO(modep->svids[0], 1,
  974. CMD_DISCOVER_MODES);
  975. rlen = 1;
  976. }
  977. break;
  978. case CMD_DISCOVER_MODES:
  979. /* 6.4.4.3.3 */
  980. svdm_consume_modes(port, payload, cnt);
  981. modep->svid_index++;
  982. if (modep->svid_index < modep->nsvids) {
  983. u16 svid = modep->svids[modep->svid_index];
  984. response[0] = VDO(svid, 1, CMD_DISCOVER_MODES);
  985. rlen = 1;
  986. } else {
  987. tcpm_register_partner_altmodes(port);
  988. }
  989. break;
  990. case CMD_ENTER_MODE:
  991. if (adev && pdev) {
  992. typec_altmode_update_active(pdev, true);
  993. if (typec_altmode_vdm(adev, p[0], &p[1], cnt)) {
  994. response[0] = VDO(adev->svid, 1,
  995. CMD_EXIT_MODE);
  996. response[0] |= VDO_OPOS(adev->mode);
  997. return 1;
  998. }
  999. }
  1000. return 0;
  1001. case CMD_EXIT_MODE:
  1002. if (adev && pdev) {
  1003. typec_altmode_update_active(pdev, false);
  1004. /* Back to USB Operation */
  1005. WARN_ON(typec_altmode_notify(adev,
  1006. TYPEC_STATE_USB,
  1007. NULL));
  1008. }
  1009. break;
  1010. default:
  1011. break;
  1012. }
  1013. break;
  1014. case CMDT_RSP_NAK:
  1015. switch (cmd) {
  1016. case CMD_ENTER_MODE:
  1017. /* Back to USB Operation */
  1018. if (adev)
  1019. WARN_ON(typec_altmode_notify(adev,
  1020. TYPEC_STATE_USB,
  1021. NULL));
  1022. break;
  1023. default:
  1024. break;
  1025. }
  1026. break;
  1027. default:
  1028. break;
  1029. }
  1030. /* Informing the alternate mode drivers about everything */
  1031. if (adev)
  1032. typec_altmode_vdm(adev, p[0], &p[1], cnt);
  1033. return rlen;
  1034. }
  1035. static void tcpm_handle_vdm_request(struct tcpm_port *port,
  1036. const __le32 *payload, int cnt)
  1037. {
  1038. int rlen = 0;
  1039. u32 response[8] = { };
  1040. u32 p0 = le32_to_cpu(payload[0]);
  1041. if (port->vdm_state == VDM_STATE_BUSY) {
  1042. /* If UFP responded busy retry after timeout */
  1043. if (PD_VDO_CMDT(p0) == CMDT_RSP_BUSY) {
  1044. port->vdm_state = VDM_STATE_WAIT_RSP_BUSY;
  1045. port->vdo_retry = (p0 & ~VDO_CMDT_MASK) |
  1046. CMDT_INIT;
  1047. mod_delayed_work(port->wq, &port->vdm_state_machine,
  1048. msecs_to_jiffies(PD_T_VDM_BUSY));
  1049. return;
  1050. }
  1051. port->vdm_state = VDM_STATE_DONE;
  1052. }
  1053. if (PD_VDO_SVDM(p0))
  1054. rlen = tcpm_pd_svdm(port, payload, cnt, response);
  1055. if (rlen > 0) {
  1056. tcpm_queue_vdm(port, response[0], &response[1], rlen - 1);
  1057. mod_delayed_work(port->wq, &port->vdm_state_machine, 0);
  1058. }
  1059. }
  1060. static void tcpm_send_vdm(struct tcpm_port *port, u32 vid, int cmd,
  1061. const u32 *data, int count)
  1062. {
  1063. u32 header;
  1064. if (WARN_ON(count > VDO_MAX_SIZE - 1))
  1065. count = VDO_MAX_SIZE - 1;
  1066. /* set VDM header with VID & CMD */
  1067. header = VDO(vid, ((vid & USB_SID_PD) == USB_SID_PD) ?
  1068. 1 : (PD_VDO_CMD(cmd) <= CMD_ATTENTION), cmd);
  1069. tcpm_queue_vdm(port, header, data, count);
  1070. mod_delayed_work(port->wq, &port->vdm_state_machine, 0);
  1071. }
  1072. static unsigned int vdm_ready_timeout(u32 vdm_hdr)
  1073. {
  1074. unsigned int timeout;
  1075. int cmd = PD_VDO_CMD(vdm_hdr);
  1076. /* its not a structured VDM command */
  1077. if (!PD_VDO_SVDM(vdm_hdr))
  1078. return PD_T_VDM_UNSTRUCTURED;
  1079. switch (PD_VDO_CMDT(vdm_hdr)) {
  1080. case CMDT_INIT:
  1081. if (cmd == CMD_ENTER_MODE || cmd == CMD_EXIT_MODE)
  1082. timeout = PD_T_VDM_WAIT_MODE_E;
  1083. else
  1084. timeout = PD_T_VDM_SNDR_RSP;
  1085. break;
  1086. default:
  1087. if (cmd == CMD_ENTER_MODE || cmd == CMD_EXIT_MODE)
  1088. timeout = PD_T_VDM_E_MODE;
  1089. else
  1090. timeout = PD_T_VDM_RCVR_RSP;
  1091. break;
  1092. }
  1093. return timeout;
  1094. }
  1095. static void vdm_run_state_machine(struct tcpm_port *port)
  1096. {
  1097. struct pd_message msg;
  1098. int i, res;
  1099. switch (port->vdm_state) {
  1100. case VDM_STATE_READY:
  1101. /* Only transmit VDM if attached */
  1102. if (!port->attached) {
  1103. port->vdm_state = VDM_STATE_ERR_BUSY;
  1104. break;
  1105. }
  1106. /*
  1107. * if there's traffic or we're not in PDO ready state don't send
  1108. * a VDM.
  1109. */
  1110. if (port->state != SRC_READY && port->state != SNK_READY)
  1111. break;
  1112. /* Prepare and send VDM */
  1113. memset(&msg, 0, sizeof(msg));
  1114. msg.header = PD_HEADER_LE(PD_DATA_VENDOR_DEF,
  1115. port->pwr_role,
  1116. port->data_role,
  1117. port->negotiated_rev,
  1118. port->message_id, port->vdo_count);
  1119. for (i = 0; i < port->vdo_count; i++)
  1120. msg.payload[i] = cpu_to_le32(port->vdo_data[i]);
  1121. res = tcpm_pd_transmit(port, TCPC_TX_SOP, &msg);
  1122. if (res < 0) {
  1123. port->vdm_state = VDM_STATE_ERR_SEND;
  1124. } else {
  1125. unsigned long timeout;
  1126. port->vdm_retries = 0;
  1127. port->vdm_state = VDM_STATE_BUSY;
  1128. timeout = vdm_ready_timeout(port->vdo_data[0]);
  1129. mod_delayed_work(port->wq, &port->vdm_state_machine,
  1130. timeout);
  1131. }
  1132. break;
  1133. case VDM_STATE_WAIT_RSP_BUSY:
  1134. port->vdo_data[0] = port->vdo_retry;
  1135. port->vdo_count = 1;
  1136. port->vdm_state = VDM_STATE_READY;
  1137. break;
  1138. case VDM_STATE_BUSY:
  1139. port->vdm_state = VDM_STATE_ERR_TMOUT;
  1140. break;
  1141. case VDM_STATE_ERR_SEND:
  1142. /*
  1143. * A partner which does not support USB PD will not reply,
  1144. * so this is not a fatal error. At the same time, some
  1145. * devices may not return GoodCRC under some circumstances,
  1146. * so we need to retry.
  1147. */
  1148. if (port->vdm_retries < 3) {
  1149. tcpm_log(port, "VDM Tx error, retry");
  1150. port->vdm_retries++;
  1151. port->vdm_state = VDM_STATE_READY;
  1152. }
  1153. break;
  1154. default:
  1155. break;
  1156. }
  1157. }
  1158. static void vdm_state_machine_work(struct work_struct *work)
  1159. {
  1160. struct tcpm_port *port = container_of(work, struct tcpm_port,
  1161. vdm_state_machine.work);
  1162. enum vdm_states prev_state;
  1163. mutex_lock(&port->lock);
  1164. /*
  1165. * Continue running as long as the port is not busy and there was
  1166. * a state change.
  1167. */
  1168. do {
  1169. prev_state = port->vdm_state;
  1170. vdm_run_state_machine(port);
  1171. } while (port->vdm_state != prev_state &&
  1172. port->vdm_state != VDM_STATE_BUSY);
  1173. mutex_unlock(&port->lock);
  1174. }
  1175. enum pdo_err {
  1176. PDO_NO_ERR,
  1177. PDO_ERR_NO_VSAFE5V,
  1178. PDO_ERR_VSAFE5V_NOT_FIRST,
  1179. PDO_ERR_PDO_TYPE_NOT_IN_ORDER,
  1180. PDO_ERR_FIXED_NOT_SORTED,
  1181. PDO_ERR_VARIABLE_BATT_NOT_SORTED,
  1182. PDO_ERR_DUPE_PDO,
  1183. PDO_ERR_PPS_APDO_NOT_SORTED,
  1184. PDO_ERR_DUPE_PPS_APDO,
  1185. };
  1186. static const char * const pdo_err_msg[] = {
  1187. [PDO_ERR_NO_VSAFE5V] =
  1188. " err: source/sink caps should atleast have vSafe5V",
  1189. [PDO_ERR_VSAFE5V_NOT_FIRST] =
  1190. " err: vSafe5V Fixed Supply Object Shall always be the first object",
  1191. [PDO_ERR_PDO_TYPE_NOT_IN_ORDER] =
  1192. " err: PDOs should be in the following order: Fixed; Battery; Variable",
  1193. [PDO_ERR_FIXED_NOT_SORTED] =
  1194. " err: Fixed supply pdos should be in increasing order of their fixed voltage",
  1195. [PDO_ERR_VARIABLE_BATT_NOT_SORTED] =
  1196. " err: Variable/Battery supply pdos should be in increasing order of their minimum voltage",
  1197. [PDO_ERR_DUPE_PDO] =
  1198. " err: Variable/Batt supply pdos cannot have same min/max voltage",
  1199. [PDO_ERR_PPS_APDO_NOT_SORTED] =
  1200. " err: Programmable power supply apdos should be in increasing order of their maximum voltage",
  1201. [PDO_ERR_DUPE_PPS_APDO] =
  1202. " err: Programmable power supply apdos cannot have same min/max voltage and max current",
  1203. };
  1204. static enum pdo_err tcpm_caps_err(struct tcpm_port *port, const u32 *pdo,
  1205. unsigned int nr_pdo)
  1206. {
  1207. unsigned int i;
  1208. /* Should at least contain vSafe5v */
  1209. if (nr_pdo < 1)
  1210. return PDO_ERR_NO_VSAFE5V;
  1211. /* The vSafe5V Fixed Supply Object Shall always be the first object */
  1212. if (pdo_type(pdo[0]) != PDO_TYPE_FIXED ||
  1213. pdo_fixed_voltage(pdo[0]) != VSAFE5V)
  1214. return PDO_ERR_VSAFE5V_NOT_FIRST;
  1215. for (i = 1; i < nr_pdo; i++) {
  1216. if (pdo_type(pdo[i]) < pdo_type(pdo[i - 1])) {
  1217. return PDO_ERR_PDO_TYPE_NOT_IN_ORDER;
  1218. } else if (pdo_type(pdo[i]) == pdo_type(pdo[i - 1])) {
  1219. enum pd_pdo_type type = pdo_type(pdo[i]);
  1220. switch (type) {
  1221. /*
  1222. * The remaining Fixed Supply Objects, if
  1223. * present, shall be sent in voltage order;
  1224. * lowest to highest.
  1225. */
  1226. case PDO_TYPE_FIXED:
  1227. if (pdo_fixed_voltage(pdo[i]) <=
  1228. pdo_fixed_voltage(pdo[i - 1]))
  1229. return PDO_ERR_FIXED_NOT_SORTED;
  1230. break;
  1231. /*
  1232. * The Battery Supply Objects and Variable
  1233. * supply, if present shall be sent in Minimum
  1234. * Voltage order; lowest to highest.
  1235. */
  1236. case PDO_TYPE_VAR:
  1237. case PDO_TYPE_BATT:
  1238. if (pdo_min_voltage(pdo[i]) <
  1239. pdo_min_voltage(pdo[i - 1]))
  1240. return PDO_ERR_VARIABLE_BATT_NOT_SORTED;
  1241. else if ((pdo_min_voltage(pdo[i]) ==
  1242. pdo_min_voltage(pdo[i - 1])) &&
  1243. (pdo_max_voltage(pdo[i]) ==
  1244. pdo_max_voltage(pdo[i - 1])))
  1245. return PDO_ERR_DUPE_PDO;
  1246. break;
  1247. /*
  1248. * The Programmable Power Supply APDOs, if present,
  1249. * shall be sent in Maximum Voltage order;
  1250. * lowest to highest.
  1251. */
  1252. case PDO_TYPE_APDO:
  1253. if (pdo_apdo_type(pdo[i]) != APDO_TYPE_PPS)
  1254. break;
  1255. if (pdo_pps_apdo_max_voltage(pdo[i]) <
  1256. pdo_pps_apdo_max_voltage(pdo[i - 1]))
  1257. return PDO_ERR_PPS_APDO_NOT_SORTED;
  1258. else if (pdo_pps_apdo_min_voltage(pdo[i]) ==
  1259. pdo_pps_apdo_min_voltage(pdo[i - 1]) &&
  1260. pdo_pps_apdo_max_voltage(pdo[i]) ==
  1261. pdo_pps_apdo_max_voltage(pdo[i - 1]) &&
  1262. pdo_pps_apdo_max_current(pdo[i]) ==
  1263. pdo_pps_apdo_max_current(pdo[i - 1]))
  1264. return PDO_ERR_DUPE_PPS_APDO;
  1265. break;
  1266. default:
  1267. tcpm_log_force(port, " Unknown pdo type");
  1268. }
  1269. }
  1270. }
  1271. return PDO_NO_ERR;
  1272. }
  1273. static int tcpm_validate_caps(struct tcpm_port *port, const u32 *pdo,
  1274. unsigned int nr_pdo)
  1275. {
  1276. enum pdo_err err_index = tcpm_caps_err(port, pdo, nr_pdo);
  1277. if (err_index != PDO_NO_ERR) {
  1278. tcpm_log_force(port, " %s", pdo_err_msg[err_index]);
  1279. return -EINVAL;
  1280. }
  1281. return 0;
  1282. }
  1283. static int tcpm_altmode_enter(struct typec_altmode *altmode)
  1284. {
  1285. struct tcpm_port *port = typec_altmode_get_drvdata(altmode);
  1286. u32 header;
  1287. mutex_lock(&port->lock);
  1288. header = VDO(altmode->svid, 1, CMD_ENTER_MODE);
  1289. header |= VDO_OPOS(altmode->mode);
  1290. tcpm_queue_vdm(port, header, NULL, 0);
  1291. mod_delayed_work(port->wq, &port->vdm_state_machine, 0);
  1292. mutex_unlock(&port->lock);
  1293. return 0;
  1294. }
  1295. static int tcpm_altmode_exit(struct typec_altmode *altmode)
  1296. {
  1297. struct tcpm_port *port = typec_altmode_get_drvdata(altmode);
  1298. u32 header;
  1299. mutex_lock(&port->lock);
  1300. header = VDO(altmode->svid, 1, CMD_EXIT_MODE);
  1301. header |= VDO_OPOS(altmode->mode);
  1302. tcpm_queue_vdm(port, header, NULL, 0);
  1303. mod_delayed_work(port->wq, &port->vdm_state_machine, 0);
  1304. mutex_unlock(&port->lock);
  1305. return 0;
  1306. }
  1307. static int tcpm_altmode_vdm(struct typec_altmode *altmode,
  1308. u32 header, const u32 *data, int count)
  1309. {
  1310. struct tcpm_port *port = typec_altmode_get_drvdata(altmode);
  1311. mutex_lock(&port->lock);
  1312. tcpm_queue_vdm(port, header, data, count - 1);
  1313. mod_delayed_work(port->wq, &port->vdm_state_machine, 0);
  1314. mutex_unlock(&port->lock);
  1315. return 0;
  1316. }
  1317. static const struct typec_altmode_ops tcpm_altmode_ops = {
  1318. .enter = tcpm_altmode_enter,
  1319. .exit = tcpm_altmode_exit,
  1320. .vdm = tcpm_altmode_vdm,
  1321. };
  1322. /*
  1323. * PD (data, control) command handling functions
  1324. */
  1325. static inline enum tcpm_state ready_state(struct tcpm_port *port)
  1326. {
  1327. if (port->pwr_role == TYPEC_SOURCE)
  1328. return SRC_READY;
  1329. else
  1330. return SNK_READY;
  1331. }
  1332. static int tcpm_pd_send_control(struct tcpm_port *port,
  1333. enum pd_ctrl_msg_type type);
  1334. static void tcpm_handle_alert(struct tcpm_port *port, const __le32 *payload,
  1335. int cnt)
  1336. {
  1337. u32 p0 = le32_to_cpu(payload[0]);
  1338. unsigned int type = usb_pd_ado_type(p0);
  1339. if (!type) {
  1340. tcpm_log(port, "Alert message received with no type");
  1341. return;
  1342. }
  1343. /* Just handling non-battery alerts for now */
  1344. if (!(type & USB_PD_ADO_TYPE_BATT_STATUS_CHANGE)) {
  1345. switch (port->state) {
  1346. case SRC_READY:
  1347. case SNK_READY:
  1348. tcpm_set_state(port, GET_STATUS_SEND, 0);
  1349. break;
  1350. default:
  1351. tcpm_queue_message(port, PD_MSG_CTRL_WAIT);
  1352. break;
  1353. }
  1354. }
  1355. }
  1356. static void tcpm_pd_data_request(struct tcpm_port *port,
  1357. const struct pd_message *msg)
  1358. {
  1359. enum pd_data_msg_type type = pd_header_type_le(msg->header);
  1360. unsigned int cnt = pd_header_cnt_le(msg->header);
  1361. unsigned int rev = pd_header_rev_le(msg->header);
  1362. unsigned int i;
  1363. switch (type) {
  1364. case PD_DATA_SOURCE_CAP:
  1365. if (port->pwr_role != TYPEC_SINK)
  1366. break;
  1367. for (i = 0; i < cnt; i++)
  1368. port->source_caps[i] = le32_to_cpu(msg->payload[i]);
  1369. port->nr_source_caps = cnt;
  1370. tcpm_log_source_caps(port);
  1371. tcpm_validate_caps(port, port->source_caps,
  1372. port->nr_source_caps);
  1373. /*
  1374. * Adjust revision in subsequent message headers, as required,
  1375. * to comply with 6.2.1.1.5 of the USB PD 3.0 spec. We don't
  1376. * support Rev 1.0 so just do nothing in that scenario.
  1377. */
  1378. if (rev == PD_REV10)
  1379. break;
  1380. if (rev < PD_MAX_REV)
  1381. port->negotiated_rev = rev;
  1382. /*
  1383. * This message may be received even if VBUS is not
  1384. * present. This is quite unexpected; see USB PD
  1385. * specification, sections 8.3.3.6.3.1 and 8.3.3.6.3.2.
  1386. * However, at the same time, we must be ready to
  1387. * receive this message and respond to it 15ms after
  1388. * receiving PS_RDY during power swap operations, no matter
  1389. * if VBUS is available or not (USB PD specification,
  1390. * section 6.5.9.2).
  1391. * So we need to accept the message either way,
  1392. * but be prepared to keep waiting for VBUS after it was
  1393. * handled.
  1394. */
  1395. tcpm_set_state(port, SNK_NEGOTIATE_CAPABILITIES, 0);
  1396. break;
  1397. case PD_DATA_REQUEST:
  1398. if (port->pwr_role != TYPEC_SOURCE ||
  1399. cnt != 1) {
  1400. tcpm_queue_message(port, PD_MSG_CTRL_REJECT);
  1401. break;
  1402. }
  1403. /*
  1404. * Adjust revision in subsequent message headers, as required,
  1405. * to comply with 6.2.1.1.5 of the USB PD 3.0 spec. We don't
  1406. * support Rev 1.0 so just reject in that scenario.
  1407. */
  1408. if (rev == PD_REV10) {
  1409. tcpm_queue_message(port, PD_MSG_CTRL_REJECT);
  1410. break;
  1411. }
  1412. if (rev < PD_MAX_REV)
  1413. port->negotiated_rev = rev;
  1414. port->sink_request = le32_to_cpu(msg->payload[0]);
  1415. tcpm_set_state(port, SRC_NEGOTIATE_CAPABILITIES, 0);
  1416. break;
  1417. case PD_DATA_SINK_CAP:
  1418. /* We don't do anything with this at the moment... */
  1419. for (i = 0; i < cnt; i++)
  1420. port->sink_caps[i] = le32_to_cpu(msg->payload[i]);
  1421. port->nr_sink_caps = cnt;
  1422. break;
  1423. case PD_DATA_VENDOR_DEF:
  1424. tcpm_handle_vdm_request(port, msg->payload, cnt);
  1425. break;
  1426. case PD_DATA_BIST:
  1427. if (port->state == SRC_READY || port->state == SNK_READY) {
  1428. port->bist_request = le32_to_cpu(msg->payload[0]);
  1429. tcpm_set_state(port, BIST_RX, 0);
  1430. }
  1431. break;
  1432. case PD_DATA_ALERT:
  1433. tcpm_handle_alert(port, msg->payload, cnt);
  1434. break;
  1435. case PD_DATA_BATT_STATUS:
  1436. case PD_DATA_GET_COUNTRY_INFO:
  1437. /* Currently unsupported */
  1438. tcpm_queue_message(port, PD_MSG_CTRL_NOT_SUPP);
  1439. break;
  1440. default:
  1441. tcpm_log(port, "Unhandled data message type %#x", type);
  1442. break;
  1443. }
  1444. }
  1445. static void tcpm_pps_complete(struct tcpm_port *port, int result)
  1446. {
  1447. if (port->pps_pending) {
  1448. port->pps_status = result;
  1449. port->pps_pending = false;
  1450. complete(&port->pps_complete);
  1451. }
  1452. }
  1453. static void tcpm_pd_ctrl_request(struct tcpm_port *port,
  1454. const struct pd_message *msg)
  1455. {
  1456. enum pd_ctrl_msg_type type = pd_header_type_le(msg->header);
  1457. enum tcpm_state next_state;
  1458. switch (type) {
  1459. case PD_CTRL_GOOD_CRC:
  1460. case PD_CTRL_PING:
  1461. break;
  1462. case PD_CTRL_GET_SOURCE_CAP:
  1463. switch (port->state) {
  1464. case SRC_READY:
  1465. case SNK_READY:
  1466. tcpm_queue_message(port, PD_MSG_DATA_SOURCE_CAP);
  1467. break;
  1468. default:
  1469. tcpm_queue_message(port, PD_MSG_CTRL_REJECT);
  1470. break;
  1471. }
  1472. break;
  1473. case PD_CTRL_GET_SINK_CAP:
  1474. switch (port->state) {
  1475. case SRC_READY:
  1476. case SNK_READY:
  1477. tcpm_queue_message(port, PD_MSG_DATA_SINK_CAP);
  1478. break;
  1479. default:
  1480. tcpm_queue_message(port, PD_MSG_CTRL_REJECT);
  1481. break;
  1482. }
  1483. break;
  1484. case PD_CTRL_GOTO_MIN:
  1485. break;
  1486. case PD_CTRL_PS_RDY:
  1487. switch (port->state) {
  1488. case SNK_TRANSITION_SINK:
  1489. if (port->vbus_present) {
  1490. tcpm_set_current_limit(port,
  1491. port->current_limit,
  1492. port->supply_voltage);
  1493. port->explicit_contract = true;
  1494. tcpm_set_state(port, SNK_READY, 0);
  1495. } else {
  1496. /*
  1497. * Seen after power swap. Keep waiting for VBUS
  1498. * in a transitional state.
  1499. */
  1500. tcpm_set_state(port,
  1501. SNK_TRANSITION_SINK_VBUS, 0);
  1502. }
  1503. break;
  1504. case PR_SWAP_SRC_SNK_SOURCE_OFF_CC_DEBOUNCED:
  1505. tcpm_set_state(port, PR_SWAP_SRC_SNK_SINK_ON, 0);
  1506. break;
  1507. case PR_SWAP_SNK_SRC_SINK_OFF:
  1508. tcpm_set_state(port, PR_SWAP_SNK_SRC_SOURCE_ON, 0);
  1509. break;
  1510. case VCONN_SWAP_WAIT_FOR_VCONN:
  1511. tcpm_set_state(port, VCONN_SWAP_TURN_OFF_VCONN, 0);
  1512. break;
  1513. default:
  1514. break;
  1515. }
  1516. break;
  1517. case PD_CTRL_REJECT:
  1518. case PD_CTRL_WAIT:
  1519. case PD_CTRL_NOT_SUPP:
  1520. switch (port->state) {
  1521. case SNK_NEGOTIATE_CAPABILITIES:
  1522. /* USB PD specification, Figure 8-43 */
  1523. if (port->explicit_contract)
  1524. next_state = SNK_READY;
  1525. else
  1526. next_state = SNK_WAIT_CAPABILITIES;
  1527. tcpm_set_state(port, next_state, 0);
  1528. break;
  1529. case SNK_NEGOTIATE_PPS_CAPABILITIES:
  1530. /* Revert data back from any requested PPS updates */
  1531. port->pps_data.out_volt = port->supply_voltage;
  1532. port->pps_data.op_curr = port->current_limit;
  1533. port->pps_status = (type == PD_CTRL_WAIT ?
  1534. -EAGAIN : -EOPNOTSUPP);
  1535. tcpm_set_state(port, SNK_READY, 0);
  1536. break;
  1537. case DR_SWAP_SEND:
  1538. port->swap_status = (type == PD_CTRL_WAIT ?
  1539. -EAGAIN : -EOPNOTSUPP);
  1540. tcpm_set_state(port, DR_SWAP_CANCEL, 0);
  1541. break;
  1542. case PR_SWAP_SEND:
  1543. port->swap_status = (type == PD_CTRL_WAIT ?
  1544. -EAGAIN : -EOPNOTSUPP);
  1545. tcpm_set_state(port, PR_SWAP_CANCEL, 0);
  1546. break;
  1547. case VCONN_SWAP_SEND:
  1548. port->swap_status = (type == PD_CTRL_WAIT ?
  1549. -EAGAIN : -EOPNOTSUPP);
  1550. tcpm_set_state(port, VCONN_SWAP_CANCEL, 0);
  1551. break;
  1552. default:
  1553. break;
  1554. }
  1555. break;
  1556. case PD_CTRL_ACCEPT:
  1557. switch (port->state) {
  1558. case SNK_NEGOTIATE_CAPABILITIES:
  1559. port->pps_data.active = false;
  1560. tcpm_set_state(port, SNK_TRANSITION_SINK, 0);
  1561. break;
  1562. case SNK_NEGOTIATE_PPS_CAPABILITIES:
  1563. port->pps_data.active = true;
  1564. port->supply_voltage = port->pps_data.out_volt;
  1565. port->current_limit = port->pps_data.op_curr;
  1566. tcpm_set_state(port, SNK_TRANSITION_SINK, 0);
  1567. break;
  1568. case SOFT_RESET_SEND:
  1569. port->message_id = 0;
  1570. port->rx_msgid = -1;
  1571. if (port->pwr_role == TYPEC_SOURCE)
  1572. next_state = SRC_SEND_CAPABILITIES;
  1573. else
  1574. next_state = SNK_WAIT_CAPABILITIES;
  1575. tcpm_set_state(port, next_state, 0);
  1576. break;
  1577. case DR_SWAP_SEND:
  1578. tcpm_set_state(port, DR_SWAP_CHANGE_DR, 0);
  1579. break;
  1580. case PR_SWAP_SEND:
  1581. tcpm_set_state(port, PR_SWAP_START, 0);
  1582. break;
  1583. case VCONN_SWAP_SEND:
  1584. tcpm_set_state(port, VCONN_SWAP_START, 0);
  1585. break;
  1586. default:
  1587. break;
  1588. }
  1589. break;
  1590. case PD_CTRL_SOFT_RESET:
  1591. tcpm_set_state(port, SOFT_RESET, 0);
  1592. break;
  1593. case PD_CTRL_DR_SWAP:
  1594. if (port->port_type != TYPEC_PORT_DRP) {
  1595. tcpm_queue_message(port, PD_MSG_CTRL_REJECT);
  1596. break;
  1597. }
  1598. /*
  1599. * XXX
  1600. * 6.3.9: If an alternate mode is active, a request to swap
  1601. * alternate modes shall trigger a port reset.
  1602. */
  1603. switch (port->state) {
  1604. case SRC_READY:
  1605. case SNK_READY:
  1606. tcpm_set_state(port, DR_SWAP_ACCEPT, 0);
  1607. break;
  1608. default:
  1609. tcpm_queue_message(port, PD_MSG_CTRL_WAIT);
  1610. break;
  1611. }
  1612. break;
  1613. case PD_CTRL_PR_SWAP:
  1614. if (port->port_type != TYPEC_PORT_DRP) {
  1615. tcpm_queue_message(port, PD_MSG_CTRL_REJECT);
  1616. break;
  1617. }
  1618. switch (port->state) {
  1619. case SRC_READY:
  1620. case SNK_READY:
  1621. tcpm_set_state(port, PR_SWAP_ACCEPT, 0);
  1622. break;
  1623. default:
  1624. tcpm_queue_message(port, PD_MSG_CTRL_WAIT);
  1625. break;
  1626. }
  1627. break;
  1628. case PD_CTRL_VCONN_SWAP:
  1629. switch (port->state) {
  1630. case SRC_READY:
  1631. case SNK_READY:
  1632. tcpm_set_state(port, VCONN_SWAP_ACCEPT, 0);
  1633. break;
  1634. default:
  1635. tcpm_queue_message(port, PD_MSG_CTRL_WAIT);
  1636. break;
  1637. }
  1638. break;
  1639. case PD_CTRL_GET_SOURCE_CAP_EXT:
  1640. case PD_CTRL_GET_STATUS:
  1641. case PD_CTRL_FR_SWAP:
  1642. case PD_CTRL_GET_PPS_STATUS:
  1643. case PD_CTRL_GET_COUNTRY_CODES:
  1644. /* Currently not supported */
  1645. tcpm_queue_message(port, PD_MSG_CTRL_NOT_SUPP);
  1646. break;
  1647. default:
  1648. tcpm_log(port, "Unhandled ctrl message type %#x", type);
  1649. break;
  1650. }
  1651. }
  1652. static void tcpm_pd_ext_msg_request(struct tcpm_port *port,
  1653. const struct pd_message *msg)
  1654. {
  1655. enum pd_ext_msg_type type = pd_header_type_le(msg->header);
  1656. unsigned int data_size = pd_ext_header_data_size_le(msg->ext_msg.header);
  1657. if (!(msg->ext_msg.header & PD_EXT_HDR_CHUNKED)) {
  1658. tcpm_log(port, "Unchunked extended messages unsupported");
  1659. return;
  1660. }
  1661. if (data_size > PD_EXT_MAX_CHUNK_DATA) {
  1662. tcpm_log(port, "Chunk handling not yet supported");
  1663. return;
  1664. }
  1665. switch (type) {
  1666. case PD_EXT_STATUS:
  1667. /*
  1668. * If PPS related events raised then get PPS status to clear
  1669. * (see USB PD 3.0 Spec, 6.5.2.4)
  1670. */
  1671. if (msg->ext_msg.data[USB_PD_EXT_SDB_EVENT_FLAGS] &
  1672. USB_PD_EXT_SDB_PPS_EVENTS)
  1673. tcpm_set_state(port, GET_PPS_STATUS_SEND, 0);
  1674. else
  1675. tcpm_set_state(port, ready_state(port), 0);
  1676. break;
  1677. case PD_EXT_PPS_STATUS:
  1678. /*
  1679. * For now the PPS status message is used to clear events
  1680. * and nothing more.
  1681. */
  1682. tcpm_set_state(port, ready_state(port), 0);
  1683. break;
  1684. case PD_EXT_SOURCE_CAP_EXT:
  1685. case PD_EXT_GET_BATT_CAP:
  1686. case PD_EXT_GET_BATT_STATUS:
  1687. case PD_EXT_BATT_CAP:
  1688. case PD_EXT_GET_MANUFACTURER_INFO:
  1689. case PD_EXT_MANUFACTURER_INFO:
  1690. case PD_EXT_SECURITY_REQUEST:
  1691. case PD_EXT_SECURITY_RESPONSE:
  1692. case PD_EXT_FW_UPDATE_REQUEST:
  1693. case PD_EXT_FW_UPDATE_RESPONSE:
  1694. case PD_EXT_COUNTRY_INFO:
  1695. case PD_EXT_COUNTRY_CODES:
  1696. tcpm_queue_message(port, PD_MSG_CTRL_NOT_SUPP);
  1697. break;
  1698. default:
  1699. tcpm_log(port, "Unhandled extended message type %#x", type);
  1700. break;
  1701. }
  1702. }
  1703. static void tcpm_pd_rx_handler(struct work_struct *work)
  1704. {
  1705. struct pd_rx_event *event = container_of(work,
  1706. struct pd_rx_event, work);
  1707. const struct pd_message *msg = &event->msg;
  1708. unsigned int cnt = pd_header_cnt_le(msg->header);
  1709. struct tcpm_port *port = event->port;
  1710. mutex_lock(&port->lock);
  1711. tcpm_log(port, "PD RX, header: %#x [%d]", le16_to_cpu(msg->header),
  1712. port->attached);
  1713. if (port->attached) {
  1714. enum pd_ctrl_msg_type type = pd_header_type_le(msg->header);
  1715. unsigned int msgid = pd_header_msgid_le(msg->header);
  1716. /*
  1717. * USB PD standard, 6.6.1.2:
  1718. * "... if MessageID value in a received Message is the
  1719. * same as the stored value, the receiver shall return a
  1720. * GoodCRC Message with that MessageID value and drop
  1721. * the Message (this is a retry of an already received
  1722. * Message). Note: this shall not apply to the Soft_Reset
  1723. * Message which always has a MessageID value of zero."
  1724. */
  1725. if (msgid == port->rx_msgid && type != PD_CTRL_SOFT_RESET)
  1726. goto done;
  1727. port->rx_msgid = msgid;
  1728. /*
  1729. * If both ends believe to be DFP/host, we have a data role
  1730. * mismatch.
  1731. */
  1732. if (!!(le16_to_cpu(msg->header) & PD_HEADER_DATA_ROLE) ==
  1733. (port->data_role == TYPEC_HOST)) {
  1734. tcpm_log(port,
  1735. "Data role mismatch, initiating error recovery");
  1736. tcpm_set_state(port, ERROR_RECOVERY, 0);
  1737. } else {
  1738. if (msg->header & PD_HEADER_EXT_HDR)
  1739. tcpm_pd_ext_msg_request(port, msg);
  1740. else if (cnt)
  1741. tcpm_pd_data_request(port, msg);
  1742. else
  1743. tcpm_pd_ctrl_request(port, msg);
  1744. }
  1745. }
  1746. done:
  1747. mutex_unlock(&port->lock);
  1748. kfree(event);
  1749. }
  1750. void tcpm_pd_receive(struct tcpm_port *port, const struct pd_message *msg)
  1751. {
  1752. struct pd_rx_event *event;
  1753. event = kzalloc(sizeof(*event), GFP_ATOMIC);
  1754. if (!event)
  1755. return;
  1756. INIT_WORK(&event->work, tcpm_pd_rx_handler);
  1757. event->port = port;
  1758. memcpy(&event->msg, msg, sizeof(*msg));
  1759. queue_work(port->wq, &event->work);
  1760. }
  1761. EXPORT_SYMBOL_GPL(tcpm_pd_receive);
  1762. static int tcpm_pd_send_control(struct tcpm_port *port,
  1763. enum pd_ctrl_msg_type type)
  1764. {
  1765. struct pd_message msg;
  1766. memset(&msg, 0, sizeof(msg));
  1767. msg.header = PD_HEADER_LE(type, port->pwr_role,
  1768. port->data_role,
  1769. port->negotiated_rev,
  1770. port->message_id, 0);
  1771. return tcpm_pd_transmit(port, TCPC_TX_SOP, &msg);
  1772. }
  1773. /*
  1774. * Send queued message without affecting state.
  1775. * Return true if state machine should go back to sleep,
  1776. * false otherwise.
  1777. */
  1778. static bool tcpm_send_queued_message(struct tcpm_port *port)
  1779. {
  1780. enum pd_msg_request queued_message;
  1781. do {
  1782. queued_message = port->queued_message;
  1783. port->queued_message = PD_MSG_NONE;
  1784. switch (queued_message) {
  1785. case PD_MSG_CTRL_WAIT:
  1786. tcpm_pd_send_control(port, PD_CTRL_WAIT);
  1787. break;
  1788. case PD_MSG_CTRL_REJECT:
  1789. tcpm_pd_send_control(port, PD_CTRL_REJECT);
  1790. break;
  1791. case PD_MSG_CTRL_NOT_SUPP:
  1792. tcpm_pd_send_control(port, PD_CTRL_NOT_SUPP);
  1793. break;
  1794. case PD_MSG_DATA_SINK_CAP:
  1795. tcpm_pd_send_sink_caps(port);
  1796. break;
  1797. case PD_MSG_DATA_SOURCE_CAP:
  1798. tcpm_pd_send_source_caps(port);
  1799. break;
  1800. default:
  1801. break;
  1802. }
  1803. } while (port->queued_message != PD_MSG_NONE);
  1804. if (port->delayed_state != INVALID_STATE) {
  1805. if (time_is_after_jiffies(port->delayed_runtime)) {
  1806. mod_delayed_work(port->wq, &port->state_machine,
  1807. port->delayed_runtime - jiffies);
  1808. return true;
  1809. }
  1810. port->delayed_state = INVALID_STATE;
  1811. }
  1812. return false;
  1813. }
  1814. static int tcpm_pd_check_request(struct tcpm_port *port)
  1815. {
  1816. u32 pdo, rdo = port->sink_request;
  1817. unsigned int max, op, pdo_max, index;
  1818. enum pd_pdo_type type;
  1819. index = rdo_index(rdo);
  1820. if (!index || index > port->nr_src_pdo)
  1821. return -EINVAL;
  1822. pdo = port->src_pdo[index - 1];
  1823. type = pdo_type(pdo);
  1824. switch (type) {
  1825. case PDO_TYPE_FIXED:
  1826. case PDO_TYPE_VAR:
  1827. max = rdo_max_current(rdo);
  1828. op = rdo_op_current(rdo);
  1829. pdo_max = pdo_max_current(pdo);
  1830. if (op > pdo_max)
  1831. return -EINVAL;
  1832. if (max > pdo_max && !(rdo & RDO_CAP_MISMATCH))
  1833. return -EINVAL;
  1834. if (type == PDO_TYPE_FIXED)
  1835. tcpm_log(port,
  1836. "Requested %u mV, %u mA for %u / %u mA",
  1837. pdo_fixed_voltage(pdo), pdo_max, op, max);
  1838. else
  1839. tcpm_log(port,
  1840. "Requested %u -> %u mV, %u mA for %u / %u mA",
  1841. pdo_min_voltage(pdo), pdo_max_voltage(pdo),
  1842. pdo_max, op, max);
  1843. break;
  1844. case PDO_TYPE_BATT:
  1845. max = rdo_max_power(rdo);
  1846. op = rdo_op_power(rdo);
  1847. pdo_max = pdo_max_power(pdo);
  1848. if (op > pdo_max)
  1849. return -EINVAL;
  1850. if (max > pdo_max && !(rdo & RDO_CAP_MISMATCH))
  1851. return -EINVAL;
  1852. tcpm_log(port,
  1853. "Requested %u -> %u mV, %u mW for %u / %u mW",
  1854. pdo_min_voltage(pdo), pdo_max_voltage(pdo),
  1855. pdo_max, op, max);
  1856. break;
  1857. default:
  1858. return -EINVAL;
  1859. }
  1860. port->op_vsafe5v = index == 1;
  1861. return 0;
  1862. }
  1863. #define min_power(x, y) min(pdo_max_power(x), pdo_max_power(y))
  1864. #define min_current(x, y) min(pdo_max_current(x), pdo_max_current(y))
  1865. static int tcpm_pd_select_pdo(struct tcpm_port *port, int *sink_pdo,
  1866. int *src_pdo)
  1867. {
  1868. unsigned int i, j, max_src_mv = 0, min_src_mv = 0, max_mw = 0,
  1869. max_mv = 0, src_mw = 0, src_ma = 0, max_snk_mv = 0,
  1870. min_snk_mv = 0;
  1871. int ret = -EINVAL;
  1872. port->pps_data.supported = false;
  1873. port->usb_type = POWER_SUPPLY_USB_TYPE_PD;
  1874. /*
  1875. * Select the source PDO providing the most power which has a
  1876. * matchig sink cap.
  1877. */
  1878. for (i = 0; i < port->nr_source_caps; i++) {
  1879. u32 pdo = port->source_caps[i];
  1880. enum pd_pdo_type type = pdo_type(pdo);
  1881. switch (type) {
  1882. case PDO_TYPE_FIXED:
  1883. max_src_mv = pdo_fixed_voltage(pdo);
  1884. min_src_mv = max_src_mv;
  1885. break;
  1886. case PDO_TYPE_BATT:
  1887. case PDO_TYPE_VAR:
  1888. max_src_mv = pdo_max_voltage(pdo);
  1889. min_src_mv = pdo_min_voltage(pdo);
  1890. break;
  1891. case PDO_TYPE_APDO:
  1892. if (pdo_apdo_type(pdo) == APDO_TYPE_PPS) {
  1893. port->pps_data.supported = true;
  1894. port->usb_type =
  1895. POWER_SUPPLY_USB_TYPE_PD_PPS;
  1896. }
  1897. continue;
  1898. default:
  1899. tcpm_log(port, "Invalid source PDO type, ignoring");
  1900. continue;
  1901. }
  1902. switch (type) {
  1903. case PDO_TYPE_FIXED:
  1904. case PDO_TYPE_VAR:
  1905. src_ma = pdo_max_current(pdo);
  1906. src_mw = src_ma * min_src_mv / 1000;
  1907. break;
  1908. case PDO_TYPE_BATT:
  1909. src_mw = pdo_max_power(pdo);
  1910. break;
  1911. case PDO_TYPE_APDO:
  1912. continue;
  1913. default:
  1914. tcpm_log(port, "Invalid source PDO type, ignoring");
  1915. continue;
  1916. }
  1917. for (j = 0; j < port->nr_snk_pdo; j++) {
  1918. pdo = port->snk_pdo[j];
  1919. switch (pdo_type(pdo)) {
  1920. case PDO_TYPE_FIXED:
  1921. max_snk_mv = pdo_fixed_voltage(pdo);
  1922. min_snk_mv = max_snk_mv;
  1923. break;
  1924. case PDO_TYPE_BATT:
  1925. case PDO_TYPE_VAR:
  1926. max_snk_mv = pdo_max_voltage(pdo);
  1927. min_snk_mv = pdo_min_voltage(pdo);
  1928. break;
  1929. case PDO_TYPE_APDO:
  1930. continue;
  1931. default:
  1932. tcpm_log(port, "Invalid sink PDO type, ignoring");
  1933. continue;
  1934. }
  1935. if (max_src_mv <= max_snk_mv &&
  1936. min_src_mv >= min_snk_mv) {
  1937. /* Prefer higher voltages if available */
  1938. if ((src_mw == max_mw && min_src_mv > max_mv) ||
  1939. src_mw > max_mw) {
  1940. *src_pdo = i;
  1941. *sink_pdo = j;
  1942. max_mw = src_mw;
  1943. max_mv = min_src_mv;
  1944. ret = 0;
  1945. }
  1946. }
  1947. }
  1948. }
  1949. return ret;
  1950. }
  1951. #define min_pps_apdo_current(x, y) \
  1952. min(pdo_pps_apdo_max_current(x), pdo_pps_apdo_max_current(y))
  1953. static unsigned int tcpm_pd_select_pps_apdo(struct tcpm_port *port)
  1954. {
  1955. unsigned int i, j, max_mw = 0, max_mv = 0;
  1956. unsigned int min_src_mv, max_src_mv, src_ma, src_mw;
  1957. unsigned int min_snk_mv, max_snk_mv, snk_ma;
  1958. u32 pdo;
  1959. unsigned int src_pdo = 0, snk_pdo = 0;
  1960. /*
  1961. * Select the source PPS APDO providing the most power while staying
  1962. * within the board's limits. We skip the first PDO as this is always
  1963. * 5V 3A.
  1964. */
  1965. for (i = 1; i < port->nr_source_caps; ++i) {
  1966. pdo = port->source_caps[i];
  1967. switch (pdo_type(pdo)) {
  1968. case PDO_TYPE_APDO:
  1969. if (pdo_apdo_type(pdo) != APDO_TYPE_PPS) {
  1970. tcpm_log(port, "Not PPS APDO (source), ignoring");
  1971. continue;
  1972. }
  1973. min_src_mv = pdo_pps_apdo_min_voltage(pdo);
  1974. max_src_mv = pdo_pps_apdo_max_voltage(pdo);
  1975. src_ma = pdo_pps_apdo_max_current(pdo);
  1976. src_mw = (src_ma * max_src_mv) / 1000;
  1977. /*
  1978. * Now search through the sink PDOs to find a matching
  1979. * PPS APDO. Again skip the first sink PDO as this will
  1980. * always be 5V 3A.
  1981. */
  1982. for (j = 1; j < port->nr_snk_pdo; j++) {
  1983. pdo = port->snk_pdo[j];
  1984. switch (pdo_type(pdo)) {
  1985. case PDO_TYPE_APDO:
  1986. if (pdo_apdo_type(pdo) != APDO_TYPE_PPS) {
  1987. tcpm_log(port,
  1988. "Not PPS APDO (sink), ignoring");
  1989. continue;
  1990. }
  1991. min_snk_mv =
  1992. pdo_pps_apdo_min_voltage(pdo);
  1993. max_snk_mv =
  1994. pdo_pps_apdo_max_voltage(pdo);
  1995. snk_ma =
  1996. pdo_pps_apdo_max_current(pdo);
  1997. break;
  1998. default:
  1999. tcpm_log(port,
  2000. "Not APDO type (sink), ignoring");
  2001. continue;
  2002. }
  2003. if (max_src_mv <= max_snk_mv &&
  2004. min_src_mv >= min_snk_mv) {
  2005. /* Prefer higher voltages if available */
  2006. if ((src_mw == max_mw &&
  2007. min_src_mv > max_mv) ||
  2008. src_mw > max_mw) {
  2009. src_pdo = i;
  2010. snk_pdo = j;
  2011. max_mw = src_mw;
  2012. max_mv = max_src_mv;
  2013. }
  2014. }
  2015. }
  2016. break;
  2017. default:
  2018. tcpm_log(port, "Not APDO type (source), ignoring");
  2019. continue;
  2020. }
  2021. }
  2022. if (src_pdo) {
  2023. pdo = port->source_caps[src_pdo];
  2024. port->pps_data.min_volt = pdo_pps_apdo_min_voltage(pdo);
  2025. port->pps_data.max_volt = pdo_pps_apdo_max_voltage(pdo);
  2026. port->pps_data.max_curr =
  2027. min_pps_apdo_current(pdo, port->snk_pdo[snk_pdo]);
  2028. port->pps_data.out_volt =
  2029. min(pdo_pps_apdo_max_voltage(pdo), port->pps_data.out_volt);
  2030. port->pps_data.op_curr =
  2031. min(port->pps_data.max_curr, port->pps_data.op_curr);
  2032. }
  2033. return src_pdo;
  2034. }
  2035. static int tcpm_pd_build_request(struct tcpm_port *port, u32 *rdo)
  2036. {
  2037. unsigned int mv, ma, mw, flags;
  2038. unsigned int max_ma, max_mw;
  2039. enum pd_pdo_type type;
  2040. u32 pdo, matching_snk_pdo;
  2041. int src_pdo_index = 0;
  2042. int snk_pdo_index = 0;
  2043. int ret;
  2044. ret = tcpm_pd_select_pdo(port, &snk_pdo_index, &src_pdo_index);
  2045. if (ret < 0)
  2046. return ret;
  2047. pdo = port->source_caps[src_pdo_index];
  2048. matching_snk_pdo = port->snk_pdo[snk_pdo_index];
  2049. type = pdo_type(pdo);
  2050. switch (type) {
  2051. case PDO_TYPE_FIXED:
  2052. mv = pdo_fixed_voltage(pdo);
  2053. break;
  2054. case PDO_TYPE_BATT:
  2055. case PDO_TYPE_VAR:
  2056. mv = pdo_min_voltage(pdo);
  2057. break;
  2058. default:
  2059. tcpm_log(port, "Invalid PDO selected!");
  2060. return -EINVAL;
  2061. }
  2062. /* Select maximum available current within the sink pdo's limit */
  2063. if (type == PDO_TYPE_BATT) {
  2064. mw = min_power(pdo, matching_snk_pdo);
  2065. ma = 1000 * mw / mv;
  2066. } else {
  2067. ma = min_current(pdo, matching_snk_pdo);
  2068. mw = ma * mv / 1000;
  2069. }
  2070. flags = RDO_USB_COMM | RDO_NO_SUSPEND;
  2071. /* Set mismatch bit if offered power is less than operating power */
  2072. max_ma = ma;
  2073. max_mw = mw;
  2074. if (mw < port->operating_snk_mw) {
  2075. flags |= RDO_CAP_MISMATCH;
  2076. if (type == PDO_TYPE_BATT &&
  2077. (pdo_max_power(matching_snk_pdo) > pdo_max_power(pdo)))
  2078. max_mw = pdo_max_power(matching_snk_pdo);
  2079. else if (pdo_max_current(matching_snk_pdo) >
  2080. pdo_max_current(pdo))
  2081. max_ma = pdo_max_current(matching_snk_pdo);
  2082. }
  2083. tcpm_log(port, "cc=%d cc1=%d cc2=%d vbus=%d vconn=%s polarity=%d",
  2084. port->cc_req, port->cc1, port->cc2, port->vbus_source,
  2085. port->vconn_role == TYPEC_SOURCE ? "source" : "sink",
  2086. port->polarity);
  2087. if (type == PDO_TYPE_BATT) {
  2088. *rdo = RDO_BATT(src_pdo_index + 1, mw, max_mw, flags);
  2089. tcpm_log(port, "Requesting PDO %d: %u mV, %u mW%s",
  2090. src_pdo_index, mv, mw,
  2091. flags & RDO_CAP_MISMATCH ? " [mismatch]" : "");
  2092. } else {
  2093. *rdo = RDO_FIXED(src_pdo_index + 1, ma, max_ma, flags);
  2094. tcpm_log(port, "Requesting PDO %d: %u mV, %u mA%s",
  2095. src_pdo_index, mv, ma,
  2096. flags & RDO_CAP_MISMATCH ? " [mismatch]" : "");
  2097. }
  2098. port->current_limit = ma;
  2099. port->supply_voltage = mv;
  2100. return 0;
  2101. }
  2102. static int tcpm_pd_send_request(struct tcpm_port *port)
  2103. {
  2104. struct pd_message msg;
  2105. int ret;
  2106. u32 rdo;
  2107. ret = tcpm_pd_build_request(port, &rdo);
  2108. if (ret < 0)
  2109. return ret;
  2110. memset(&msg, 0, sizeof(msg));
  2111. msg.header = PD_HEADER_LE(PD_DATA_REQUEST,
  2112. port->pwr_role,
  2113. port->data_role,
  2114. port->negotiated_rev,
  2115. port->message_id, 1);
  2116. msg.payload[0] = cpu_to_le32(rdo);
  2117. return tcpm_pd_transmit(port, TCPC_TX_SOP, &msg);
  2118. }
  2119. static int tcpm_pd_build_pps_request(struct tcpm_port *port, u32 *rdo)
  2120. {
  2121. unsigned int out_mv, op_ma, op_mw, min_mv, max_mv, max_ma, flags;
  2122. enum pd_pdo_type type;
  2123. unsigned int src_pdo_index;
  2124. u32 pdo;
  2125. src_pdo_index = tcpm_pd_select_pps_apdo(port);
  2126. if (!src_pdo_index)
  2127. return -EOPNOTSUPP;
  2128. pdo = port->source_caps[src_pdo_index];
  2129. type = pdo_type(pdo);
  2130. switch (type) {
  2131. case PDO_TYPE_APDO:
  2132. if (pdo_apdo_type(pdo) != APDO_TYPE_PPS) {
  2133. tcpm_log(port, "Invalid APDO selected!");
  2134. return -EINVAL;
  2135. }
  2136. min_mv = port->pps_data.min_volt;
  2137. max_mv = port->pps_data.max_volt;
  2138. max_ma = port->pps_data.max_curr;
  2139. out_mv = port->pps_data.out_volt;
  2140. op_ma = port->pps_data.op_curr;
  2141. break;
  2142. default:
  2143. tcpm_log(port, "Invalid PDO selected!");
  2144. return -EINVAL;
  2145. }
  2146. flags = RDO_USB_COMM | RDO_NO_SUSPEND;
  2147. op_mw = (op_ma * out_mv) / 1000;
  2148. if (op_mw < port->operating_snk_mw) {
  2149. /*
  2150. * Try raising current to meet power needs. If that's not enough
  2151. * then try upping the voltage. If that's still not enough
  2152. * then we've obviously chosen a PPS APDO which really isn't
  2153. * suitable so abandon ship.
  2154. */
  2155. op_ma = (port->operating_snk_mw * 1000) / out_mv;
  2156. if ((port->operating_snk_mw * 1000) % out_mv)
  2157. ++op_ma;
  2158. op_ma += RDO_PROG_CURR_MA_STEP - (op_ma % RDO_PROG_CURR_MA_STEP);
  2159. if (op_ma > max_ma) {
  2160. op_ma = max_ma;
  2161. out_mv = (port->operating_snk_mw * 1000) / op_ma;
  2162. if ((port->operating_snk_mw * 1000) % op_ma)
  2163. ++out_mv;
  2164. out_mv += RDO_PROG_VOLT_MV_STEP -
  2165. (out_mv % RDO_PROG_VOLT_MV_STEP);
  2166. if (out_mv > max_mv) {
  2167. tcpm_log(port, "Invalid PPS APDO selected!");
  2168. return -EINVAL;
  2169. }
  2170. }
  2171. }
  2172. tcpm_log(port, "cc=%d cc1=%d cc2=%d vbus=%d vconn=%s polarity=%d",
  2173. port->cc_req, port->cc1, port->cc2, port->vbus_source,
  2174. port->vconn_role == TYPEC_SOURCE ? "source" : "sink",
  2175. port->polarity);
  2176. *rdo = RDO_PROG(src_pdo_index + 1, out_mv, op_ma, flags);
  2177. tcpm_log(port, "Requesting APDO %d: %u mV, %u mA",
  2178. src_pdo_index, out_mv, op_ma);
  2179. port->pps_data.op_curr = op_ma;
  2180. port->pps_data.out_volt = out_mv;
  2181. return 0;
  2182. }
  2183. static int tcpm_pd_send_pps_request(struct tcpm_port *port)
  2184. {
  2185. struct pd_message msg;
  2186. int ret;
  2187. u32 rdo;
  2188. ret = tcpm_pd_build_pps_request(port, &rdo);
  2189. if (ret < 0)
  2190. return ret;
  2191. memset(&msg, 0, sizeof(msg));
  2192. msg.header = PD_HEADER_LE(PD_DATA_REQUEST,
  2193. port->pwr_role,
  2194. port->data_role,
  2195. port->negotiated_rev,
  2196. port->message_id, 1);
  2197. msg.payload[0] = cpu_to_le32(rdo);
  2198. return tcpm_pd_transmit(port, TCPC_TX_SOP, &msg);
  2199. }
  2200. static int tcpm_set_vbus(struct tcpm_port *port, bool enable)
  2201. {
  2202. int ret;
  2203. if (enable && port->vbus_charge)
  2204. return -EINVAL;
  2205. tcpm_log(port, "vbus:=%d charge=%d", enable, port->vbus_charge);
  2206. ret = port->tcpc->set_vbus(port->tcpc, enable, port->vbus_charge);
  2207. if (ret < 0)
  2208. return ret;
  2209. port->vbus_source = enable;
  2210. return 0;
  2211. }
  2212. static int tcpm_set_charge(struct tcpm_port *port, bool charge)
  2213. {
  2214. int ret;
  2215. if (charge && port->vbus_source)
  2216. return -EINVAL;
  2217. if (charge != port->vbus_charge) {
  2218. tcpm_log(port, "vbus=%d charge:=%d", port->vbus_source, charge);
  2219. ret = port->tcpc->set_vbus(port->tcpc, port->vbus_source,
  2220. charge);
  2221. if (ret < 0)
  2222. return ret;
  2223. }
  2224. port->vbus_charge = charge;
  2225. return 0;
  2226. }
  2227. static bool tcpm_start_toggling(struct tcpm_port *port, enum typec_cc_status cc)
  2228. {
  2229. int ret;
  2230. if (!port->tcpc->start_toggling)
  2231. return false;
  2232. tcpm_log_force(port, "Start toggling");
  2233. ret = port->tcpc->start_toggling(port->tcpc, port->port_type, cc);
  2234. return ret == 0;
  2235. }
  2236. static void tcpm_set_cc(struct tcpm_port *port, enum typec_cc_status cc)
  2237. {
  2238. tcpm_log(port, "cc:=%d", cc);
  2239. port->cc_req = cc;
  2240. port->tcpc->set_cc(port->tcpc, cc);
  2241. }
  2242. static int tcpm_init_vbus(struct tcpm_port *port)
  2243. {
  2244. int ret;
  2245. ret = port->tcpc->set_vbus(port->tcpc, false, false);
  2246. port->vbus_source = false;
  2247. port->vbus_charge = false;
  2248. return ret;
  2249. }
  2250. static int tcpm_init_vconn(struct tcpm_port *port)
  2251. {
  2252. int ret;
  2253. ret = port->tcpc->set_vconn(port->tcpc, false);
  2254. port->vconn_role = TYPEC_SINK;
  2255. return ret;
  2256. }
  2257. static void tcpm_typec_connect(struct tcpm_port *port)
  2258. {
  2259. if (!port->connected) {
  2260. /* Make sure we don't report stale identity information */
  2261. memset(&port->partner_ident, 0, sizeof(port->partner_ident));
  2262. port->partner_desc.usb_pd = port->pd_capable;
  2263. if (tcpm_port_is_debug(port))
  2264. port->partner_desc.accessory = TYPEC_ACCESSORY_DEBUG;
  2265. else if (tcpm_port_is_audio(port))
  2266. port->partner_desc.accessory = TYPEC_ACCESSORY_AUDIO;
  2267. else
  2268. port->partner_desc.accessory = TYPEC_ACCESSORY_NONE;
  2269. port->partner = typec_register_partner(port->typec_port,
  2270. &port->partner_desc);
  2271. port->connected = true;
  2272. }
  2273. }
  2274. static int tcpm_src_attach(struct tcpm_port *port)
  2275. {
  2276. enum typec_cc_polarity polarity =
  2277. port->cc2 == TYPEC_CC_RD ? TYPEC_POLARITY_CC2
  2278. : TYPEC_POLARITY_CC1;
  2279. int ret;
  2280. if (port->attached)
  2281. return 0;
  2282. ret = tcpm_set_polarity(port, polarity);
  2283. if (ret < 0)
  2284. return ret;
  2285. ret = tcpm_set_roles(port, true, TYPEC_SOURCE, TYPEC_HOST);
  2286. if (ret < 0)
  2287. return ret;
  2288. ret = port->tcpc->set_pd_rx(port->tcpc, true);
  2289. if (ret < 0)
  2290. goto out_disable_mux;
  2291. /*
  2292. * USB Type-C specification, version 1.2,
  2293. * chapter 4.5.2.2.8.1 (Attached.SRC Requirements)
  2294. * Enable VCONN only if the non-RD port is set to RA.
  2295. */
  2296. if ((polarity == TYPEC_POLARITY_CC1 && port->cc2 == TYPEC_CC_RA) ||
  2297. (polarity == TYPEC_POLARITY_CC2 && port->cc1 == TYPEC_CC_RA)) {
  2298. ret = tcpm_set_vconn(port, true);
  2299. if (ret < 0)
  2300. goto out_disable_pd;
  2301. }
  2302. ret = tcpm_set_vbus(port, true);
  2303. if (ret < 0)
  2304. goto out_disable_vconn;
  2305. port->pd_capable = false;
  2306. port->partner = NULL;
  2307. port->attached = true;
  2308. port->send_discover = true;
  2309. return 0;
  2310. out_disable_vconn:
  2311. tcpm_set_vconn(port, false);
  2312. out_disable_pd:
  2313. port->tcpc->set_pd_rx(port->tcpc, false);
  2314. out_disable_mux:
  2315. tcpm_mux_set(port, TYPEC_STATE_SAFE, USB_ROLE_NONE,
  2316. TYPEC_ORIENTATION_NONE);
  2317. return ret;
  2318. }
  2319. static void tcpm_typec_disconnect(struct tcpm_port *port)
  2320. {
  2321. if (port->connected) {
  2322. typec_unregister_partner(port->partner);
  2323. port->partner = NULL;
  2324. port->connected = false;
  2325. }
  2326. }
  2327. static void tcpm_unregister_altmodes(struct tcpm_port *port)
  2328. {
  2329. struct pd_mode_data *modep = &port->mode_data;
  2330. int i;
  2331. for (i = 0; i < modep->altmodes; i++) {
  2332. typec_unregister_altmode(port->partner_altmode[i]);
  2333. port->partner_altmode[i] = NULL;
  2334. }
  2335. memset(modep, 0, sizeof(*modep));
  2336. }
  2337. static void tcpm_reset_port(struct tcpm_port *port)
  2338. {
  2339. tcpm_unregister_altmodes(port);
  2340. tcpm_typec_disconnect(port);
  2341. port->attached = false;
  2342. port->pd_capable = false;
  2343. port->pps_data.supported = false;
  2344. /*
  2345. * First Rx ID should be 0; set this to a sentinel of -1 so that
  2346. * we can check tcpm_pd_rx_handler() if we had seen it before.
  2347. */
  2348. port->rx_msgid = -1;
  2349. port->tcpc->set_pd_rx(port->tcpc, false);
  2350. tcpm_init_vbus(port); /* also disables charging */
  2351. tcpm_init_vconn(port);
  2352. tcpm_set_current_limit(port, 0, 0);
  2353. tcpm_set_polarity(port, TYPEC_POLARITY_CC1);
  2354. tcpm_mux_set(port, TYPEC_STATE_SAFE, USB_ROLE_NONE,
  2355. TYPEC_ORIENTATION_NONE);
  2356. tcpm_set_attached_state(port, false);
  2357. port->try_src_count = 0;
  2358. port->try_snk_count = 0;
  2359. port->usb_type = POWER_SUPPLY_USB_TYPE_C;
  2360. power_supply_changed(port->psy);
  2361. }
  2362. static void tcpm_detach(struct tcpm_port *port)
  2363. {
  2364. if (!port->attached)
  2365. return;
  2366. if (tcpm_port_is_disconnected(port))
  2367. port->hard_reset_count = 0;
  2368. tcpm_reset_port(port);
  2369. }
  2370. static void tcpm_src_detach(struct tcpm_port *port)
  2371. {
  2372. tcpm_detach(port);
  2373. }
  2374. static int tcpm_snk_attach(struct tcpm_port *port)
  2375. {
  2376. int ret;
  2377. if (port->attached)
  2378. return 0;
  2379. ret = tcpm_set_polarity(port, port->cc2 != TYPEC_CC_OPEN ?
  2380. TYPEC_POLARITY_CC2 : TYPEC_POLARITY_CC1);
  2381. if (ret < 0)
  2382. return ret;
  2383. ret = tcpm_set_roles(port, true, TYPEC_SINK, TYPEC_DEVICE);
  2384. if (ret < 0)
  2385. return ret;
  2386. port->pd_capable = false;
  2387. port->partner = NULL;
  2388. port->attached = true;
  2389. port->send_discover = true;
  2390. return 0;
  2391. }
  2392. static void tcpm_snk_detach(struct tcpm_port *port)
  2393. {
  2394. tcpm_detach(port);
  2395. }
  2396. static int tcpm_acc_attach(struct tcpm_port *port)
  2397. {
  2398. int ret;
  2399. if (port->attached)
  2400. return 0;
  2401. ret = tcpm_set_roles(port, true, TYPEC_SOURCE, TYPEC_HOST);
  2402. if (ret < 0)
  2403. return ret;
  2404. port->partner = NULL;
  2405. tcpm_typec_connect(port);
  2406. port->attached = true;
  2407. return 0;
  2408. }
  2409. static void tcpm_acc_detach(struct tcpm_port *port)
  2410. {
  2411. tcpm_detach(port);
  2412. }
  2413. static inline enum tcpm_state hard_reset_state(struct tcpm_port *port)
  2414. {
  2415. if (port->hard_reset_count < PD_N_HARD_RESET_COUNT)
  2416. return HARD_RESET_SEND;
  2417. if (port->pd_capable)
  2418. return ERROR_RECOVERY;
  2419. if (port->pwr_role == TYPEC_SOURCE)
  2420. return SRC_UNATTACHED;
  2421. if (port->state == SNK_WAIT_CAPABILITIES)
  2422. return SNK_READY;
  2423. return SNK_UNATTACHED;
  2424. }
  2425. static inline enum tcpm_state unattached_state(struct tcpm_port *port)
  2426. {
  2427. if (port->port_type == TYPEC_PORT_DRP) {
  2428. if (port->pwr_role == TYPEC_SOURCE)
  2429. return SRC_UNATTACHED;
  2430. else
  2431. return SNK_UNATTACHED;
  2432. } else if (port->port_type == TYPEC_PORT_SRC) {
  2433. return SRC_UNATTACHED;
  2434. }
  2435. return SNK_UNATTACHED;
  2436. }
  2437. static void tcpm_check_send_discover(struct tcpm_port *port)
  2438. {
  2439. if (port->data_role == TYPEC_HOST && port->send_discover &&
  2440. port->pd_capable) {
  2441. tcpm_send_vdm(port, USB_SID_PD, CMD_DISCOVER_IDENT, NULL, 0);
  2442. port->send_discover = false;
  2443. }
  2444. }
  2445. static void tcpm_swap_complete(struct tcpm_port *port, int result)
  2446. {
  2447. if (port->swap_pending) {
  2448. port->swap_status = result;
  2449. port->swap_pending = false;
  2450. port->non_pd_role_swap = false;
  2451. complete(&port->swap_complete);
  2452. }
  2453. }
  2454. static enum typec_pwr_opmode tcpm_get_pwr_opmode(enum typec_cc_status cc)
  2455. {
  2456. switch (cc) {
  2457. case TYPEC_CC_RP_1_5:
  2458. return TYPEC_PWR_MODE_1_5A;
  2459. case TYPEC_CC_RP_3_0:
  2460. return TYPEC_PWR_MODE_3_0A;
  2461. case TYPEC_CC_RP_DEF:
  2462. default:
  2463. return TYPEC_PWR_MODE_USB;
  2464. }
  2465. }
  2466. static void run_state_machine(struct tcpm_port *port)
  2467. {
  2468. int ret;
  2469. enum typec_pwr_opmode opmode;
  2470. unsigned int msecs;
  2471. port->enter_state = port->state;
  2472. switch (port->state) {
  2473. case TOGGLING:
  2474. break;
  2475. /* SRC states */
  2476. case SRC_UNATTACHED:
  2477. if (!port->non_pd_role_swap)
  2478. tcpm_swap_complete(port, -ENOTCONN);
  2479. tcpm_src_detach(port);
  2480. if (tcpm_start_toggling(port, tcpm_rp_cc(port))) {
  2481. tcpm_set_state(port, TOGGLING, 0);
  2482. break;
  2483. }
  2484. tcpm_set_cc(port, tcpm_rp_cc(port));
  2485. if (port->port_type == TYPEC_PORT_DRP)
  2486. tcpm_set_state(port, SNK_UNATTACHED, PD_T_DRP_SNK);
  2487. break;
  2488. case SRC_ATTACH_WAIT:
  2489. if (tcpm_port_is_debug(port))
  2490. tcpm_set_state(port, DEBUG_ACC_ATTACHED,
  2491. PD_T_CC_DEBOUNCE);
  2492. else if (tcpm_port_is_audio(port))
  2493. tcpm_set_state(port, AUDIO_ACC_ATTACHED,
  2494. PD_T_CC_DEBOUNCE);
  2495. else if (tcpm_port_is_source(port))
  2496. tcpm_set_state(port,
  2497. tcpm_try_snk(port) ? SNK_TRY
  2498. : SRC_ATTACHED,
  2499. PD_T_CC_DEBOUNCE);
  2500. break;
  2501. case SNK_TRY:
  2502. port->try_snk_count++;
  2503. /*
  2504. * Requirements:
  2505. * - Do not drive vconn or vbus
  2506. * - Terminate CC pins (both) to Rd
  2507. * Action:
  2508. * - Wait for tDRPTry (PD_T_DRP_TRY).
  2509. * Until then, ignore any state changes.
  2510. */
  2511. tcpm_set_cc(port, TYPEC_CC_RD);
  2512. tcpm_set_state(port, SNK_TRY_WAIT, PD_T_DRP_TRY);
  2513. break;
  2514. case SNK_TRY_WAIT:
  2515. if (tcpm_port_is_sink(port)) {
  2516. tcpm_set_state(port, SNK_TRY_WAIT_DEBOUNCE, 0);
  2517. } else {
  2518. tcpm_set_state(port, SRC_TRYWAIT, 0);
  2519. port->max_wait = 0;
  2520. }
  2521. break;
  2522. case SNK_TRY_WAIT_DEBOUNCE:
  2523. tcpm_set_state(port, SNK_TRY_WAIT_DEBOUNCE_CHECK_VBUS,
  2524. PD_T_PD_DEBOUNCE);
  2525. break;
  2526. case SNK_TRY_WAIT_DEBOUNCE_CHECK_VBUS:
  2527. if (port->vbus_present && tcpm_port_is_sink(port)) {
  2528. tcpm_set_state(port, SNK_ATTACHED, 0);
  2529. } else {
  2530. tcpm_set_state(port, SRC_TRYWAIT, 0);
  2531. port->max_wait = 0;
  2532. }
  2533. break;
  2534. case SRC_TRYWAIT:
  2535. tcpm_set_cc(port, tcpm_rp_cc(port));
  2536. if (port->max_wait == 0) {
  2537. port->max_wait = jiffies +
  2538. msecs_to_jiffies(PD_T_DRP_TRY);
  2539. tcpm_set_state(port, SRC_TRYWAIT_UNATTACHED,
  2540. PD_T_DRP_TRY);
  2541. } else {
  2542. if (time_is_after_jiffies(port->max_wait))
  2543. tcpm_set_state(port, SRC_TRYWAIT_UNATTACHED,
  2544. jiffies_to_msecs(port->max_wait -
  2545. jiffies));
  2546. else
  2547. tcpm_set_state(port, SNK_UNATTACHED, 0);
  2548. }
  2549. break;
  2550. case SRC_TRYWAIT_DEBOUNCE:
  2551. tcpm_set_state(port, SRC_ATTACHED, PD_T_CC_DEBOUNCE);
  2552. break;
  2553. case SRC_TRYWAIT_UNATTACHED:
  2554. tcpm_set_state(port, SNK_UNATTACHED, 0);
  2555. break;
  2556. case SRC_ATTACHED:
  2557. ret = tcpm_src_attach(port);
  2558. tcpm_set_state(port, SRC_UNATTACHED,
  2559. ret < 0 ? 0 : PD_T_PS_SOURCE_ON);
  2560. break;
  2561. case SRC_STARTUP:
  2562. opmode = tcpm_get_pwr_opmode(tcpm_rp_cc(port));
  2563. typec_set_pwr_opmode(port->typec_port, opmode);
  2564. port->pwr_opmode = TYPEC_PWR_MODE_USB;
  2565. port->caps_count = 0;
  2566. port->negotiated_rev = PD_MAX_REV;
  2567. port->message_id = 0;
  2568. port->rx_msgid = -1;
  2569. port->explicit_contract = false;
  2570. tcpm_set_state(port, SRC_SEND_CAPABILITIES, 0);
  2571. break;
  2572. case SRC_SEND_CAPABILITIES:
  2573. port->caps_count++;
  2574. if (port->caps_count > PD_N_CAPS_COUNT) {
  2575. tcpm_set_state(port, SRC_READY, 0);
  2576. break;
  2577. }
  2578. ret = tcpm_pd_send_source_caps(port);
  2579. if (ret < 0) {
  2580. tcpm_set_state(port, SRC_SEND_CAPABILITIES,
  2581. PD_T_SEND_SOURCE_CAP);
  2582. } else {
  2583. /*
  2584. * Per standard, we should clear the reset counter here.
  2585. * However, that can result in state machine hang-ups.
  2586. * Reset it only in READY state to improve stability.
  2587. */
  2588. /* port->hard_reset_count = 0; */
  2589. port->caps_count = 0;
  2590. port->pd_capable = true;
  2591. tcpm_set_state_cond(port, SRC_SEND_CAPABILITIES_TIMEOUT,
  2592. PD_T_SEND_SOURCE_CAP);
  2593. }
  2594. break;
  2595. case SRC_SEND_CAPABILITIES_TIMEOUT:
  2596. /*
  2597. * Error recovery for a PD_DATA_SOURCE_CAP reply timeout.
  2598. *
  2599. * PD 2.0 sinks are supposed to accept src-capabilities with a
  2600. * 3.0 header and simply ignore any src PDOs which the sink does
  2601. * not understand such as PPS but some 2.0 sinks instead ignore
  2602. * the entire PD_DATA_SOURCE_CAP message, causing contract
  2603. * negotiation to fail.
  2604. *
  2605. * After PD_N_HARD_RESET_COUNT hard-reset attempts, we try
  2606. * sending src-capabilities with a lower PD revision to
  2607. * make these broken sinks work.
  2608. */
  2609. if (port->hard_reset_count < PD_N_HARD_RESET_COUNT) {
  2610. tcpm_set_state(port, HARD_RESET_SEND, 0);
  2611. } else if (port->negotiated_rev > PD_REV20) {
  2612. port->negotiated_rev--;
  2613. port->hard_reset_count = 0;
  2614. tcpm_set_state(port, SRC_SEND_CAPABILITIES, 0);
  2615. } else {
  2616. tcpm_set_state(port, hard_reset_state(port), 0);
  2617. }
  2618. break;
  2619. case SRC_NEGOTIATE_CAPABILITIES:
  2620. ret = tcpm_pd_check_request(port);
  2621. if (ret < 0) {
  2622. tcpm_pd_send_control(port, PD_CTRL_REJECT);
  2623. if (!port->explicit_contract) {
  2624. tcpm_set_state(port,
  2625. SRC_WAIT_NEW_CAPABILITIES, 0);
  2626. } else {
  2627. tcpm_set_state(port, SRC_READY, 0);
  2628. }
  2629. } else {
  2630. tcpm_pd_send_control(port, PD_CTRL_ACCEPT);
  2631. tcpm_set_state(port, SRC_TRANSITION_SUPPLY,
  2632. PD_T_SRC_TRANSITION);
  2633. }
  2634. break;
  2635. case SRC_TRANSITION_SUPPLY:
  2636. /* XXX: regulator_set_voltage(vbus, ...) */
  2637. tcpm_pd_send_control(port, PD_CTRL_PS_RDY);
  2638. port->explicit_contract = true;
  2639. typec_set_pwr_opmode(port->typec_port, TYPEC_PWR_MODE_PD);
  2640. port->pwr_opmode = TYPEC_PWR_MODE_PD;
  2641. tcpm_set_state_cond(port, SRC_READY, 0);
  2642. break;
  2643. case SRC_READY:
  2644. #if 1
  2645. port->hard_reset_count = 0;
  2646. #endif
  2647. port->try_src_count = 0;
  2648. tcpm_swap_complete(port, 0);
  2649. tcpm_typec_connect(port);
  2650. tcpm_check_send_discover(port);
  2651. /*
  2652. * 6.3.5
  2653. * Sending ping messages is not necessary if
  2654. * - the source operates at vSafe5V
  2655. * or
  2656. * - The system is not operating in PD mode
  2657. * or
  2658. * - Both partners are connected using a Type-C connector
  2659. *
  2660. * There is no actual need to send PD messages since the local
  2661. * port type-c and the spec does not clearly say whether PD is
  2662. * possible when type-c is connected to Type-A/B
  2663. */
  2664. break;
  2665. case SRC_WAIT_NEW_CAPABILITIES:
  2666. /* Nothing to do... */
  2667. break;
  2668. /* SNK states */
  2669. case SNK_UNATTACHED:
  2670. if (!port->non_pd_role_swap)
  2671. tcpm_swap_complete(port, -ENOTCONN);
  2672. tcpm_pps_complete(port, -ENOTCONN);
  2673. tcpm_snk_detach(port);
  2674. if (tcpm_start_toggling(port, TYPEC_CC_RD)) {
  2675. tcpm_set_state(port, TOGGLING, 0);
  2676. break;
  2677. }
  2678. tcpm_set_cc(port, TYPEC_CC_RD);
  2679. if (port->port_type == TYPEC_PORT_DRP)
  2680. tcpm_set_state(port, SRC_UNATTACHED, PD_T_DRP_SRC);
  2681. break;
  2682. case SNK_ATTACH_WAIT:
  2683. if ((port->cc1 == TYPEC_CC_OPEN &&
  2684. port->cc2 != TYPEC_CC_OPEN) ||
  2685. (port->cc1 != TYPEC_CC_OPEN &&
  2686. port->cc2 == TYPEC_CC_OPEN))
  2687. tcpm_set_state(port, SNK_DEBOUNCED,
  2688. PD_T_CC_DEBOUNCE);
  2689. else if (tcpm_port_is_disconnected(port))
  2690. tcpm_set_state(port, SNK_UNATTACHED,
  2691. PD_T_PD_DEBOUNCE);
  2692. break;
  2693. case SNK_DEBOUNCED:
  2694. if (tcpm_port_is_disconnected(port))
  2695. tcpm_set_state(port, SNK_UNATTACHED,
  2696. PD_T_PD_DEBOUNCE);
  2697. else if (port->vbus_present)
  2698. tcpm_set_state(port,
  2699. tcpm_try_src(port) ? SRC_TRY
  2700. : SNK_ATTACHED,
  2701. 0);
  2702. else
  2703. /* Wait for VBUS, but not forever */
  2704. tcpm_set_state(port, PORT_RESET, PD_T_PS_SOURCE_ON);
  2705. break;
  2706. case SRC_TRY:
  2707. port->try_src_count++;
  2708. tcpm_set_cc(port, tcpm_rp_cc(port));
  2709. port->max_wait = 0;
  2710. tcpm_set_state(port, SRC_TRY_WAIT, 0);
  2711. break;
  2712. case SRC_TRY_WAIT:
  2713. if (port->max_wait == 0) {
  2714. port->max_wait = jiffies +
  2715. msecs_to_jiffies(PD_T_DRP_TRY);
  2716. msecs = PD_T_DRP_TRY;
  2717. } else {
  2718. if (time_is_after_jiffies(port->max_wait))
  2719. msecs = jiffies_to_msecs(port->max_wait -
  2720. jiffies);
  2721. else
  2722. msecs = 0;
  2723. }
  2724. tcpm_set_state(port, SNK_TRYWAIT, msecs);
  2725. break;
  2726. case SRC_TRY_DEBOUNCE:
  2727. tcpm_set_state(port, SRC_ATTACHED, PD_T_PD_DEBOUNCE);
  2728. break;
  2729. case SNK_TRYWAIT:
  2730. tcpm_set_cc(port, TYPEC_CC_RD);
  2731. tcpm_set_state(port, SNK_TRYWAIT_VBUS, PD_T_CC_DEBOUNCE);
  2732. break;
  2733. case SNK_TRYWAIT_VBUS:
  2734. /*
  2735. * TCPM stays in this state indefinitely until VBUS
  2736. * is detected as long as Rp is not detected for
  2737. * more than a time period of tPDDebounce.
  2738. */
  2739. if (port->vbus_present && tcpm_port_is_sink(port)) {
  2740. tcpm_set_state(port, SNK_ATTACHED, 0);
  2741. break;
  2742. }
  2743. if (!tcpm_port_is_sink(port))
  2744. tcpm_set_state(port, SNK_TRYWAIT_DEBOUNCE, 0);
  2745. break;
  2746. case SNK_TRYWAIT_DEBOUNCE:
  2747. tcpm_set_state(port, SNK_UNATTACHED, PD_T_PD_DEBOUNCE);
  2748. break;
  2749. case SNK_ATTACHED:
  2750. ret = tcpm_snk_attach(port);
  2751. if (ret < 0)
  2752. tcpm_set_state(port, SNK_UNATTACHED, 0);
  2753. else
  2754. tcpm_set_state(port, SNK_STARTUP, 0);
  2755. break;
  2756. case SNK_STARTUP:
  2757. opmode = tcpm_get_pwr_opmode(port->polarity ?
  2758. port->cc2 : port->cc1);
  2759. typec_set_pwr_opmode(port->typec_port, opmode);
  2760. port->pwr_opmode = TYPEC_PWR_MODE_USB;
  2761. port->negotiated_rev = PD_MAX_REV;
  2762. port->message_id = 0;
  2763. port->rx_msgid = -1;
  2764. port->explicit_contract = false;
  2765. tcpm_set_state(port, SNK_DISCOVERY, 0);
  2766. break;
  2767. case SNK_DISCOVERY:
  2768. if (port->vbus_present) {
  2769. tcpm_set_current_limit(port,
  2770. tcpm_get_current_limit(port),
  2771. 5000);
  2772. tcpm_set_charge(port, true);
  2773. tcpm_set_state(port, SNK_WAIT_CAPABILITIES, 0);
  2774. break;
  2775. }
  2776. /*
  2777. * For DRP, timeouts differ. Also, handling is supposed to be
  2778. * different and much more complex (dead battery detection;
  2779. * see USB power delivery specification, section 8.3.3.6.1.5.1).
  2780. */
  2781. tcpm_set_state(port, hard_reset_state(port),
  2782. port->port_type == TYPEC_PORT_DRP ?
  2783. PD_T_DB_DETECT : PD_T_NO_RESPONSE);
  2784. break;
  2785. case SNK_DISCOVERY_DEBOUNCE:
  2786. tcpm_set_state(port, SNK_DISCOVERY_DEBOUNCE_DONE,
  2787. PD_T_CC_DEBOUNCE);
  2788. break;
  2789. case SNK_DISCOVERY_DEBOUNCE_DONE:
  2790. if (!tcpm_port_is_disconnected(port) &&
  2791. tcpm_port_is_sink(port) &&
  2792. time_is_after_jiffies(port->delayed_runtime)) {
  2793. tcpm_set_state(port, SNK_DISCOVERY,
  2794. jiffies_to_msecs(port->delayed_runtime -
  2795. jiffies));
  2796. break;
  2797. }
  2798. tcpm_set_state(port, unattached_state(port), 0);
  2799. break;
  2800. case SNK_WAIT_CAPABILITIES:
  2801. ret = port->tcpc->set_pd_rx(port->tcpc, true);
  2802. if (ret < 0) {
  2803. tcpm_set_state(port, SNK_READY, 0);
  2804. break;
  2805. }
  2806. /*
  2807. * If VBUS has never been low, and we time out waiting
  2808. * for source cap, try a soft reset first, in case we
  2809. * were already in a stable contract before this boot.
  2810. * Do this only once.
  2811. */
  2812. if (port->vbus_never_low) {
  2813. port->vbus_never_low = false;
  2814. tcpm_set_state(port, SOFT_RESET_SEND,
  2815. PD_T_SINK_WAIT_CAP);
  2816. } else {
  2817. tcpm_set_state(port, hard_reset_state(port),
  2818. PD_T_SINK_WAIT_CAP);
  2819. }
  2820. break;
  2821. case SNK_NEGOTIATE_CAPABILITIES:
  2822. port->pd_capable = true;
  2823. port->hard_reset_count = 0;
  2824. ret = tcpm_pd_send_request(port);
  2825. if (ret < 0) {
  2826. /* Let the Source send capabilities again. */
  2827. tcpm_set_state(port, SNK_WAIT_CAPABILITIES, 0);
  2828. } else {
  2829. tcpm_set_state_cond(port, hard_reset_state(port),
  2830. PD_T_SENDER_RESPONSE);
  2831. }
  2832. break;
  2833. case SNK_NEGOTIATE_PPS_CAPABILITIES:
  2834. ret = tcpm_pd_send_pps_request(port);
  2835. if (ret < 0) {
  2836. port->pps_status = ret;
  2837. /*
  2838. * If this was called due to updates to sink
  2839. * capabilities, and pps is no longer valid, we should
  2840. * safely fall back to a standard PDO.
  2841. */
  2842. if (port->update_sink_caps)
  2843. tcpm_set_state(port, SNK_NEGOTIATE_CAPABILITIES, 0);
  2844. else
  2845. tcpm_set_state(port, SNK_READY, 0);
  2846. } else {
  2847. tcpm_set_state_cond(port, hard_reset_state(port),
  2848. PD_T_SENDER_RESPONSE);
  2849. }
  2850. break;
  2851. case SNK_TRANSITION_SINK:
  2852. case SNK_TRANSITION_SINK_VBUS:
  2853. tcpm_set_state(port, hard_reset_state(port),
  2854. PD_T_PS_TRANSITION);
  2855. break;
  2856. case SNK_READY:
  2857. port->try_snk_count = 0;
  2858. port->update_sink_caps = false;
  2859. if (port->explicit_contract) {
  2860. typec_set_pwr_opmode(port->typec_port,
  2861. TYPEC_PWR_MODE_PD);
  2862. port->pwr_opmode = TYPEC_PWR_MODE_PD;
  2863. }
  2864. tcpm_swap_complete(port, 0);
  2865. tcpm_typec_connect(port);
  2866. tcpm_check_send_discover(port);
  2867. tcpm_pps_complete(port, port->pps_status);
  2868. power_supply_changed(port->psy);
  2869. break;
  2870. /* Accessory states */
  2871. case ACC_UNATTACHED:
  2872. tcpm_acc_detach(port);
  2873. tcpm_set_state(port, SRC_UNATTACHED, 0);
  2874. break;
  2875. case DEBUG_ACC_ATTACHED:
  2876. case AUDIO_ACC_ATTACHED:
  2877. ret = tcpm_acc_attach(port);
  2878. if (ret < 0)
  2879. tcpm_set_state(port, ACC_UNATTACHED, 0);
  2880. break;
  2881. case AUDIO_ACC_DEBOUNCE:
  2882. tcpm_set_state(port, ACC_UNATTACHED, PD_T_CC_DEBOUNCE);
  2883. break;
  2884. /* Hard_Reset states */
  2885. case HARD_RESET_SEND:
  2886. tcpm_pd_transmit(port, TCPC_TX_HARD_RESET, NULL);
  2887. tcpm_set_state(port, HARD_RESET_START, 0);
  2888. break;
  2889. case HARD_RESET_START:
  2890. port->hard_reset_count++;
  2891. port->tcpc->set_pd_rx(port->tcpc, false);
  2892. tcpm_unregister_altmodes(port);
  2893. port->send_discover = true;
  2894. if (port->pwr_role == TYPEC_SOURCE)
  2895. tcpm_set_state(port, SRC_HARD_RESET_VBUS_OFF,
  2896. PD_T_PS_HARD_RESET);
  2897. else
  2898. tcpm_set_state(port, SNK_HARD_RESET_SINK_OFF, 0);
  2899. break;
  2900. case SRC_HARD_RESET_VBUS_OFF:
  2901. tcpm_set_vconn(port, true);
  2902. tcpm_set_vbus(port, false);
  2903. tcpm_set_roles(port, port->self_powered, TYPEC_SOURCE,
  2904. TYPEC_HOST);
  2905. tcpm_set_state(port, SRC_HARD_RESET_VBUS_ON, PD_T_SRC_RECOVER);
  2906. break;
  2907. case SRC_HARD_RESET_VBUS_ON:
  2908. tcpm_set_vbus(port, true);
  2909. port->tcpc->set_pd_rx(port->tcpc, true);
  2910. tcpm_set_attached_state(port, true);
  2911. tcpm_set_state(port, SRC_UNATTACHED, PD_T_PS_SOURCE_ON);
  2912. break;
  2913. case SNK_HARD_RESET_SINK_OFF:
  2914. memset(&port->pps_data, 0, sizeof(port->pps_data));
  2915. tcpm_set_vconn(port, false);
  2916. if (port->pd_capable)
  2917. tcpm_set_charge(port, false);
  2918. tcpm_set_roles(port, port->self_powered, TYPEC_SINK,
  2919. TYPEC_DEVICE);
  2920. /*
  2921. * VBUS may or may not toggle, depending on the adapter.
  2922. * If it doesn't toggle, transition to SNK_HARD_RESET_SINK_ON
  2923. * directly after timeout.
  2924. */
  2925. tcpm_set_state(port, SNK_HARD_RESET_SINK_ON, PD_T_SAFE_0V);
  2926. break;
  2927. case SNK_HARD_RESET_WAIT_VBUS:
  2928. /* Assume we're disconnected if VBUS doesn't come back. */
  2929. tcpm_set_state(port, SNK_UNATTACHED,
  2930. PD_T_SRC_RECOVER_MAX + PD_T_SRC_TURN_ON);
  2931. break;
  2932. case SNK_HARD_RESET_SINK_ON:
  2933. /* Note: There is no guarantee that VBUS is on in this state */
  2934. /*
  2935. * XXX:
  2936. * The specification suggests that dual mode ports in sink
  2937. * mode should transition to state PE_SRC_Transition_to_default.
  2938. * See USB power delivery specification chapter 8.3.3.6.1.3.
  2939. * This would mean to to
  2940. * - turn off VCONN, reset power supply
  2941. * - request hardware reset
  2942. * - turn on VCONN
  2943. * - Transition to state PE_Src_Startup
  2944. * SNK only ports shall transition to state Snk_Startup
  2945. * (see chapter 8.3.3.3.8).
  2946. * Similar, dual-mode ports in source mode should transition
  2947. * to PE_SNK_Transition_to_default.
  2948. */
  2949. if (port->pd_capable) {
  2950. tcpm_set_current_limit(port,
  2951. tcpm_get_current_limit(port),
  2952. 5000);
  2953. tcpm_set_charge(port, true);
  2954. }
  2955. tcpm_set_attached_state(port, true);
  2956. tcpm_set_state(port, SNK_STARTUP, 0);
  2957. break;
  2958. /* Soft_Reset states */
  2959. case SOFT_RESET:
  2960. port->message_id = 0;
  2961. port->rx_msgid = -1;
  2962. tcpm_pd_send_control(port, PD_CTRL_ACCEPT);
  2963. if (port->pwr_role == TYPEC_SOURCE)
  2964. tcpm_set_state(port, SRC_SEND_CAPABILITIES, 0);
  2965. else
  2966. tcpm_set_state(port, SNK_WAIT_CAPABILITIES, 0);
  2967. break;
  2968. case SOFT_RESET_SEND:
  2969. port->message_id = 0;
  2970. port->rx_msgid = -1;
  2971. if (tcpm_pd_send_control(port, PD_CTRL_SOFT_RESET))
  2972. tcpm_set_state_cond(port, hard_reset_state(port), 0);
  2973. else
  2974. tcpm_set_state_cond(port, hard_reset_state(port),
  2975. PD_T_SENDER_RESPONSE);
  2976. break;
  2977. /* DR_Swap states */
  2978. case DR_SWAP_SEND:
  2979. tcpm_pd_send_control(port, PD_CTRL_DR_SWAP);
  2980. tcpm_set_state_cond(port, DR_SWAP_SEND_TIMEOUT,
  2981. PD_T_SENDER_RESPONSE);
  2982. break;
  2983. case DR_SWAP_ACCEPT:
  2984. tcpm_pd_send_control(port, PD_CTRL_ACCEPT);
  2985. tcpm_set_state_cond(port, DR_SWAP_CHANGE_DR, 0);
  2986. break;
  2987. case DR_SWAP_SEND_TIMEOUT:
  2988. tcpm_swap_complete(port, -ETIMEDOUT);
  2989. tcpm_set_state(port, ready_state(port), 0);
  2990. break;
  2991. case DR_SWAP_CHANGE_DR:
  2992. if (port->data_role == TYPEC_HOST) {
  2993. tcpm_unregister_altmodes(port);
  2994. tcpm_set_roles(port, true, port->pwr_role,
  2995. TYPEC_DEVICE);
  2996. } else {
  2997. tcpm_set_roles(port, true, port->pwr_role,
  2998. TYPEC_HOST);
  2999. port->send_discover = true;
  3000. }
  3001. tcpm_set_state(port, ready_state(port), 0);
  3002. break;
  3003. /* PR_Swap states */
  3004. case PR_SWAP_ACCEPT:
  3005. tcpm_pd_send_control(port, PD_CTRL_ACCEPT);
  3006. tcpm_set_state(port, PR_SWAP_START, 0);
  3007. break;
  3008. case PR_SWAP_SEND:
  3009. tcpm_pd_send_control(port, PD_CTRL_PR_SWAP);
  3010. tcpm_set_state_cond(port, PR_SWAP_SEND_TIMEOUT,
  3011. PD_T_SENDER_RESPONSE);
  3012. break;
  3013. case PR_SWAP_SEND_TIMEOUT:
  3014. tcpm_swap_complete(port, -ETIMEDOUT);
  3015. tcpm_set_state(port, ready_state(port), 0);
  3016. break;
  3017. case PR_SWAP_START:
  3018. if (port->pwr_role == TYPEC_SOURCE)
  3019. tcpm_set_state(port, PR_SWAP_SRC_SNK_TRANSITION_OFF,
  3020. PD_T_SRC_TRANSITION);
  3021. else
  3022. tcpm_set_state(port, PR_SWAP_SNK_SRC_SINK_OFF, 0);
  3023. break;
  3024. case PR_SWAP_SRC_SNK_TRANSITION_OFF:
  3025. tcpm_set_vbus(port, false);
  3026. port->explicit_contract = false;
  3027. /* allow time for Vbus discharge, must be < tSrcSwapStdby */
  3028. tcpm_set_state(port, PR_SWAP_SRC_SNK_SOURCE_OFF,
  3029. PD_T_SRCSWAPSTDBY);
  3030. break;
  3031. case PR_SWAP_SRC_SNK_SOURCE_OFF:
  3032. tcpm_set_cc(port, TYPEC_CC_RD);
  3033. /* allow CC debounce */
  3034. tcpm_set_state(port, PR_SWAP_SRC_SNK_SOURCE_OFF_CC_DEBOUNCED,
  3035. PD_T_CC_DEBOUNCE);
  3036. break;
  3037. case PR_SWAP_SRC_SNK_SOURCE_OFF_CC_DEBOUNCED:
  3038. /*
  3039. * USB-PD standard, 6.2.1.4, Port Power Role:
  3040. * "During the Power Role Swap Sequence, for the initial Source
  3041. * Port, the Port Power Role field shall be set to Sink in the
  3042. * PS_RDY Message indicating that the initial Source’s power
  3043. * supply is turned off"
  3044. */
  3045. tcpm_set_pwr_role(port, TYPEC_SINK);
  3046. if (tcpm_pd_send_control(port, PD_CTRL_PS_RDY)) {
  3047. tcpm_set_state(port, ERROR_RECOVERY, 0);
  3048. break;
  3049. }
  3050. tcpm_set_state_cond(port, SNK_UNATTACHED, PD_T_PS_SOURCE_ON);
  3051. break;
  3052. case PR_SWAP_SRC_SNK_SINK_ON:
  3053. tcpm_set_state(port, SNK_STARTUP, 0);
  3054. break;
  3055. case PR_SWAP_SNK_SRC_SINK_OFF:
  3056. tcpm_set_charge(port, false);
  3057. tcpm_set_state(port, hard_reset_state(port),
  3058. PD_T_PS_SOURCE_OFF);
  3059. break;
  3060. case PR_SWAP_SNK_SRC_SOURCE_ON:
  3061. tcpm_set_cc(port, tcpm_rp_cc(port));
  3062. tcpm_set_vbus(port, true);
  3063. /*
  3064. * allow time VBUS ramp-up, must be < tNewSrc
  3065. * Also, this window overlaps with CC debounce as well.
  3066. * So, Wait for the max of two which is PD_T_NEWSRC
  3067. */
  3068. tcpm_set_state(port, PR_SWAP_SNK_SRC_SOURCE_ON_VBUS_RAMPED_UP,
  3069. PD_T_NEWSRC);
  3070. break;
  3071. case PR_SWAP_SNK_SRC_SOURCE_ON_VBUS_RAMPED_UP:
  3072. /*
  3073. * USB PD standard, 6.2.1.4:
  3074. * "Subsequent Messages initiated by the Policy Engine,
  3075. * such as the PS_RDY Message sent to indicate that Vbus
  3076. * is ready, will have the Port Power Role field set to
  3077. * Source."
  3078. */
  3079. tcpm_set_pwr_role(port, TYPEC_SOURCE);
  3080. tcpm_pd_send_control(port, PD_CTRL_PS_RDY);
  3081. tcpm_set_state(port, SRC_STARTUP, 0);
  3082. break;
  3083. case VCONN_SWAP_ACCEPT:
  3084. tcpm_pd_send_control(port, PD_CTRL_ACCEPT);
  3085. tcpm_set_state(port, VCONN_SWAP_START, 0);
  3086. break;
  3087. case VCONN_SWAP_SEND:
  3088. tcpm_pd_send_control(port, PD_CTRL_VCONN_SWAP);
  3089. tcpm_set_state(port, VCONN_SWAP_SEND_TIMEOUT,
  3090. PD_T_SENDER_RESPONSE);
  3091. break;
  3092. case VCONN_SWAP_SEND_TIMEOUT:
  3093. tcpm_swap_complete(port, -ETIMEDOUT);
  3094. tcpm_set_state(port, ready_state(port), 0);
  3095. break;
  3096. case VCONN_SWAP_START:
  3097. if (port->vconn_role == TYPEC_SOURCE)
  3098. tcpm_set_state(port, VCONN_SWAP_WAIT_FOR_VCONN, 0);
  3099. else
  3100. tcpm_set_state(port, VCONN_SWAP_TURN_ON_VCONN, 0);
  3101. break;
  3102. case VCONN_SWAP_WAIT_FOR_VCONN:
  3103. tcpm_set_state(port, hard_reset_state(port),
  3104. PD_T_VCONN_SOURCE_ON);
  3105. break;
  3106. case VCONN_SWAP_TURN_ON_VCONN:
  3107. tcpm_set_vconn(port, true);
  3108. tcpm_pd_send_control(port, PD_CTRL_PS_RDY);
  3109. tcpm_set_state(port, ready_state(port), 0);
  3110. break;
  3111. case VCONN_SWAP_TURN_OFF_VCONN:
  3112. tcpm_set_vconn(port, false);
  3113. tcpm_set_state(port, ready_state(port), 0);
  3114. break;
  3115. case DR_SWAP_CANCEL:
  3116. case PR_SWAP_CANCEL:
  3117. case VCONN_SWAP_CANCEL:
  3118. tcpm_swap_complete(port, port->swap_status);
  3119. if (port->pwr_role == TYPEC_SOURCE)
  3120. tcpm_set_state(port, SRC_READY, 0);
  3121. else
  3122. tcpm_set_state(port, SNK_READY, 0);
  3123. break;
  3124. case BIST_RX:
  3125. switch (BDO_MODE_MASK(port->bist_request)) {
  3126. case BDO_MODE_CARRIER2:
  3127. tcpm_pd_transmit(port, TCPC_TX_BIST_MODE_2, NULL);
  3128. break;
  3129. default:
  3130. break;
  3131. }
  3132. /* Always switch to unattached state */
  3133. tcpm_set_state(port, unattached_state(port), 0);
  3134. break;
  3135. case GET_STATUS_SEND:
  3136. tcpm_pd_send_control(port, PD_CTRL_GET_STATUS);
  3137. tcpm_set_state(port, GET_STATUS_SEND_TIMEOUT,
  3138. PD_T_SENDER_RESPONSE);
  3139. break;
  3140. case GET_STATUS_SEND_TIMEOUT:
  3141. tcpm_set_state(port, ready_state(port), 0);
  3142. break;
  3143. case GET_PPS_STATUS_SEND:
  3144. tcpm_pd_send_control(port, PD_CTRL_GET_PPS_STATUS);
  3145. tcpm_set_state(port, GET_PPS_STATUS_SEND_TIMEOUT,
  3146. PD_T_SENDER_RESPONSE);
  3147. break;
  3148. case GET_PPS_STATUS_SEND_TIMEOUT:
  3149. tcpm_set_state(port, ready_state(port), 0);
  3150. break;
  3151. case ERROR_RECOVERY:
  3152. tcpm_swap_complete(port, -EPROTO);
  3153. tcpm_pps_complete(port, -EPROTO);
  3154. tcpm_set_state(port, PORT_RESET, 0);
  3155. break;
  3156. case PORT_RESET:
  3157. tcpm_reset_port(port);
  3158. tcpm_set_cc(port, TYPEC_CC_OPEN);
  3159. tcpm_set_state(port, PORT_RESET_WAIT_OFF,
  3160. PD_T_ERROR_RECOVERY);
  3161. break;
  3162. case PORT_RESET_WAIT_OFF:
  3163. tcpm_set_state(port,
  3164. tcpm_default_state(port),
  3165. port->vbus_present ? PD_T_PS_SOURCE_OFF : 0);
  3166. break;
  3167. default:
  3168. WARN(1, "Unexpected port state %d\n", port->state);
  3169. break;
  3170. }
  3171. }
  3172. static void tcpm_state_machine_work(struct work_struct *work)
  3173. {
  3174. struct tcpm_port *port = container_of(work, struct tcpm_port,
  3175. state_machine.work);
  3176. enum tcpm_state prev_state;
  3177. mutex_lock(&port->lock);
  3178. port->state_machine_running = true;
  3179. if (port->queued_message && tcpm_send_queued_message(port))
  3180. goto done;
  3181. /* If we were queued due to a delayed state change, update it now */
  3182. if (port->delayed_state) {
  3183. tcpm_log(port, "state change %s -> %s [delayed %ld ms]",
  3184. tcpm_states[port->state],
  3185. tcpm_states[port->delayed_state], port->delay_ms);
  3186. port->prev_state = port->state;
  3187. port->state = port->delayed_state;
  3188. port->delayed_state = INVALID_STATE;
  3189. }
  3190. /*
  3191. * Continue running as long as we have (non-delayed) state changes
  3192. * to make.
  3193. */
  3194. do {
  3195. prev_state = port->state;
  3196. run_state_machine(port);
  3197. if (port->queued_message)
  3198. tcpm_send_queued_message(port);
  3199. } while (port->state != prev_state && !port->delayed_state);
  3200. done:
  3201. port->state_machine_running = false;
  3202. mutex_unlock(&port->lock);
  3203. }
  3204. static void _tcpm_cc_change(struct tcpm_port *port, enum typec_cc_status cc1,
  3205. enum typec_cc_status cc2)
  3206. {
  3207. enum typec_cc_status old_cc1, old_cc2;
  3208. enum tcpm_state new_state;
  3209. old_cc1 = port->cc1;
  3210. old_cc2 = port->cc2;
  3211. port->cc1 = cc1;
  3212. port->cc2 = cc2;
  3213. tcpm_log_force(port,
  3214. "CC1: %u -> %u, CC2: %u -> %u [state %s, polarity %d, %s]",
  3215. old_cc1, cc1, old_cc2, cc2, tcpm_states[port->state],
  3216. port->polarity,
  3217. tcpm_port_is_disconnected(port) ? "disconnected"
  3218. : "connected");
  3219. switch (port->state) {
  3220. case TOGGLING:
  3221. if (tcpm_port_is_debug(port) || tcpm_port_is_audio(port) ||
  3222. tcpm_port_is_source(port))
  3223. tcpm_set_state(port, SRC_ATTACH_WAIT, 0);
  3224. else if (tcpm_port_is_sink(port))
  3225. tcpm_set_state(port, SNK_ATTACH_WAIT, 0);
  3226. break;
  3227. case SRC_UNATTACHED:
  3228. case ACC_UNATTACHED:
  3229. if (tcpm_port_is_debug(port) || tcpm_port_is_audio(port) ||
  3230. tcpm_port_is_source(port))
  3231. tcpm_set_state(port, SRC_ATTACH_WAIT, 0);
  3232. break;
  3233. case SRC_ATTACH_WAIT:
  3234. if (tcpm_port_is_disconnected(port) ||
  3235. tcpm_port_is_audio_detached(port))
  3236. tcpm_set_state(port, SRC_UNATTACHED, 0);
  3237. else if (cc1 != old_cc1 || cc2 != old_cc2)
  3238. tcpm_set_state(port, SRC_ATTACH_WAIT, 0);
  3239. break;
  3240. case SRC_ATTACHED:
  3241. case SRC_SEND_CAPABILITIES:
  3242. case SRC_READY:
  3243. if (tcpm_port_is_disconnected(port) ||
  3244. !tcpm_port_is_source(port))
  3245. tcpm_set_state(port, SRC_UNATTACHED, 0);
  3246. break;
  3247. case SNK_UNATTACHED:
  3248. if (tcpm_port_is_sink(port))
  3249. tcpm_set_state(port, SNK_ATTACH_WAIT, 0);
  3250. break;
  3251. case SNK_ATTACH_WAIT:
  3252. if ((port->cc1 == TYPEC_CC_OPEN &&
  3253. port->cc2 != TYPEC_CC_OPEN) ||
  3254. (port->cc1 != TYPEC_CC_OPEN &&
  3255. port->cc2 == TYPEC_CC_OPEN))
  3256. new_state = SNK_DEBOUNCED;
  3257. else if (tcpm_port_is_disconnected(port))
  3258. new_state = SNK_UNATTACHED;
  3259. else
  3260. break;
  3261. if (new_state != port->delayed_state)
  3262. tcpm_set_state(port, SNK_ATTACH_WAIT, 0);
  3263. break;
  3264. case SNK_DEBOUNCED:
  3265. if (tcpm_port_is_disconnected(port))
  3266. new_state = SNK_UNATTACHED;
  3267. else if (port->vbus_present)
  3268. new_state = tcpm_try_src(port) ? SRC_TRY : SNK_ATTACHED;
  3269. else
  3270. new_state = SNK_UNATTACHED;
  3271. if (new_state != port->delayed_state)
  3272. tcpm_set_state(port, SNK_DEBOUNCED, 0);
  3273. break;
  3274. case SNK_READY:
  3275. if (tcpm_port_is_disconnected(port))
  3276. tcpm_set_state(port, unattached_state(port), 0);
  3277. else if (!port->pd_capable &&
  3278. (cc1 != old_cc1 || cc2 != old_cc2))
  3279. tcpm_set_current_limit(port,
  3280. tcpm_get_current_limit(port),
  3281. 5000);
  3282. break;
  3283. case AUDIO_ACC_ATTACHED:
  3284. if (cc1 == TYPEC_CC_OPEN || cc2 == TYPEC_CC_OPEN)
  3285. tcpm_set_state(port, AUDIO_ACC_DEBOUNCE, 0);
  3286. break;
  3287. case AUDIO_ACC_DEBOUNCE:
  3288. if (tcpm_port_is_audio(port))
  3289. tcpm_set_state(port, AUDIO_ACC_ATTACHED, 0);
  3290. break;
  3291. case DEBUG_ACC_ATTACHED:
  3292. if (cc1 == TYPEC_CC_OPEN || cc2 == TYPEC_CC_OPEN)
  3293. tcpm_set_state(port, ACC_UNATTACHED, 0);
  3294. break;
  3295. case SNK_TRY:
  3296. /* Do nothing, waiting for timeout */
  3297. break;
  3298. case SNK_DISCOVERY:
  3299. /* CC line is unstable, wait for debounce */
  3300. if (tcpm_port_is_disconnected(port))
  3301. tcpm_set_state(port, SNK_DISCOVERY_DEBOUNCE, 0);
  3302. break;
  3303. case SNK_DISCOVERY_DEBOUNCE:
  3304. break;
  3305. case SRC_TRYWAIT:
  3306. /* Hand over to state machine if needed */
  3307. if (!port->vbus_present && tcpm_port_is_source(port))
  3308. tcpm_set_state(port, SRC_TRYWAIT_DEBOUNCE, 0);
  3309. break;
  3310. case SRC_TRYWAIT_DEBOUNCE:
  3311. if (port->vbus_present || !tcpm_port_is_source(port))
  3312. tcpm_set_state(port, SRC_TRYWAIT, 0);
  3313. break;
  3314. case SNK_TRY_WAIT_DEBOUNCE:
  3315. if (!tcpm_port_is_sink(port)) {
  3316. port->max_wait = 0;
  3317. tcpm_set_state(port, SRC_TRYWAIT, 0);
  3318. }
  3319. break;
  3320. case SRC_TRY_WAIT:
  3321. if (tcpm_port_is_source(port))
  3322. tcpm_set_state(port, SRC_TRY_DEBOUNCE, 0);
  3323. break;
  3324. case SRC_TRY_DEBOUNCE:
  3325. tcpm_set_state(port, SRC_TRY_WAIT, 0);
  3326. break;
  3327. case SNK_TRYWAIT_DEBOUNCE:
  3328. if (tcpm_port_is_sink(port))
  3329. tcpm_set_state(port, SNK_TRYWAIT_VBUS, 0);
  3330. break;
  3331. case SNK_TRYWAIT_VBUS:
  3332. if (!tcpm_port_is_sink(port))
  3333. tcpm_set_state(port, SNK_TRYWAIT_DEBOUNCE, 0);
  3334. break;
  3335. case SNK_TRYWAIT:
  3336. /* Do nothing, waiting for tCCDebounce */
  3337. break;
  3338. case PR_SWAP_SNK_SRC_SINK_OFF:
  3339. case PR_SWAP_SRC_SNK_TRANSITION_OFF:
  3340. case PR_SWAP_SRC_SNK_SOURCE_OFF:
  3341. case PR_SWAP_SRC_SNK_SOURCE_OFF_CC_DEBOUNCED:
  3342. case PR_SWAP_SNK_SRC_SOURCE_ON:
  3343. /*
  3344. * CC state change is expected in PR_SWAP
  3345. * Ignore it.
  3346. */
  3347. break;
  3348. default:
  3349. if (tcpm_port_is_disconnected(port))
  3350. tcpm_set_state(port, unattached_state(port), 0);
  3351. break;
  3352. }
  3353. }
  3354. static void _tcpm_pd_vbus_on(struct tcpm_port *port)
  3355. {
  3356. tcpm_log_force(port, "VBUS on");
  3357. port->vbus_present = true;
  3358. switch (port->state) {
  3359. case SNK_TRANSITION_SINK_VBUS:
  3360. port->explicit_contract = true;
  3361. tcpm_set_state(port, SNK_READY, 0);
  3362. break;
  3363. case SNK_DISCOVERY:
  3364. tcpm_set_state(port, SNK_DISCOVERY, 0);
  3365. break;
  3366. case SNK_DEBOUNCED:
  3367. tcpm_set_state(port, tcpm_try_src(port) ? SRC_TRY
  3368. : SNK_ATTACHED,
  3369. 0);
  3370. break;
  3371. case SNK_HARD_RESET_WAIT_VBUS:
  3372. tcpm_set_state(port, SNK_HARD_RESET_SINK_ON, 0);
  3373. break;
  3374. case SRC_ATTACHED:
  3375. tcpm_set_state(port, SRC_STARTUP, 0);
  3376. break;
  3377. case SRC_HARD_RESET_VBUS_ON:
  3378. tcpm_set_state(port, SRC_STARTUP, 0);
  3379. break;
  3380. case SNK_TRY:
  3381. /* Do nothing, waiting for timeout */
  3382. break;
  3383. case SRC_TRYWAIT:
  3384. /* Do nothing, Waiting for Rd to be detected */
  3385. break;
  3386. case SRC_TRYWAIT_DEBOUNCE:
  3387. tcpm_set_state(port, SRC_TRYWAIT, 0);
  3388. break;
  3389. case SNK_TRY_WAIT_DEBOUNCE:
  3390. /* Do nothing, waiting for PD_DEBOUNCE to do be done */
  3391. break;
  3392. case SNK_TRYWAIT:
  3393. /* Do nothing, waiting for tCCDebounce */
  3394. break;
  3395. case SNK_TRYWAIT_VBUS:
  3396. if (tcpm_port_is_sink(port))
  3397. tcpm_set_state(port, SNK_ATTACHED, 0);
  3398. break;
  3399. case SNK_TRYWAIT_DEBOUNCE:
  3400. /* Do nothing, waiting for Rp */
  3401. break;
  3402. case SRC_TRY_WAIT:
  3403. case SRC_TRY_DEBOUNCE:
  3404. /* Do nothing, waiting for sink detection */
  3405. break;
  3406. default:
  3407. break;
  3408. }
  3409. }
  3410. static void _tcpm_pd_vbus_off(struct tcpm_port *port)
  3411. {
  3412. tcpm_log_force(port, "VBUS off");
  3413. port->vbus_present = false;
  3414. port->vbus_never_low = false;
  3415. switch (port->state) {
  3416. case SNK_HARD_RESET_SINK_OFF:
  3417. tcpm_set_state(port, SNK_HARD_RESET_WAIT_VBUS, 0);
  3418. break;
  3419. case SRC_HARD_RESET_VBUS_OFF:
  3420. tcpm_set_state(port, SRC_HARD_RESET_VBUS_ON, 0);
  3421. break;
  3422. case HARD_RESET_SEND:
  3423. break;
  3424. case SNK_TRY:
  3425. /* Do nothing, waiting for timeout */
  3426. break;
  3427. case SRC_TRYWAIT:
  3428. /* Hand over to state machine if needed */
  3429. if (tcpm_port_is_source(port))
  3430. tcpm_set_state(port, SRC_TRYWAIT_DEBOUNCE, 0);
  3431. break;
  3432. case SNK_TRY_WAIT_DEBOUNCE:
  3433. /* Do nothing, waiting for PD_DEBOUNCE to do be done */
  3434. break;
  3435. case SNK_TRYWAIT:
  3436. case SNK_TRYWAIT_VBUS:
  3437. case SNK_TRYWAIT_DEBOUNCE:
  3438. break;
  3439. case SNK_ATTACH_WAIT:
  3440. tcpm_set_state(port, SNK_UNATTACHED, 0);
  3441. break;
  3442. case SNK_NEGOTIATE_CAPABILITIES:
  3443. break;
  3444. case PR_SWAP_SRC_SNK_TRANSITION_OFF:
  3445. tcpm_set_state(port, PR_SWAP_SRC_SNK_SOURCE_OFF, 0);
  3446. break;
  3447. case PR_SWAP_SNK_SRC_SINK_OFF:
  3448. /* Do nothing, expected */
  3449. break;
  3450. case PORT_RESET_WAIT_OFF:
  3451. tcpm_set_state(port, tcpm_default_state(port), 0);
  3452. break;
  3453. case SRC_TRY_WAIT:
  3454. case SRC_TRY_DEBOUNCE:
  3455. /* Do nothing, waiting for sink detection */
  3456. break;
  3457. default:
  3458. if (port->pwr_role == TYPEC_SINK &&
  3459. port->attached)
  3460. tcpm_set_state(port, SNK_UNATTACHED, 0);
  3461. break;
  3462. }
  3463. }
  3464. static void _tcpm_pd_hard_reset(struct tcpm_port *port)
  3465. {
  3466. tcpm_log_force(port, "Received hard reset");
  3467. /*
  3468. * If we keep receiving hard reset requests, executing the hard reset
  3469. * must have failed. Revert to error recovery if that happens.
  3470. */
  3471. tcpm_set_state(port,
  3472. port->hard_reset_count < PD_N_HARD_RESET_COUNT ?
  3473. HARD_RESET_START : ERROR_RECOVERY,
  3474. 0);
  3475. }
  3476. static void tcpm_pd_event_handler(struct work_struct *work)
  3477. {
  3478. struct tcpm_port *port = container_of(work, struct tcpm_port,
  3479. event_work);
  3480. u32 events;
  3481. mutex_lock(&port->lock);
  3482. spin_lock(&port->pd_event_lock);
  3483. while (port->pd_events) {
  3484. events = port->pd_events;
  3485. port->pd_events = 0;
  3486. spin_unlock(&port->pd_event_lock);
  3487. if (events & TCPM_RESET_EVENT)
  3488. _tcpm_pd_hard_reset(port);
  3489. if (events & TCPM_VBUS_EVENT) {
  3490. bool vbus;
  3491. vbus = port->tcpc->get_vbus(port->tcpc);
  3492. if (vbus)
  3493. _tcpm_pd_vbus_on(port);
  3494. else
  3495. _tcpm_pd_vbus_off(port);
  3496. }
  3497. if (events & TCPM_CC_EVENT) {
  3498. enum typec_cc_status cc1, cc2;
  3499. if (port->tcpc->get_cc(port->tcpc, &cc1, &cc2) == 0)
  3500. _tcpm_cc_change(port, cc1, cc2);
  3501. }
  3502. spin_lock(&port->pd_event_lock);
  3503. }
  3504. spin_unlock(&port->pd_event_lock);
  3505. mutex_unlock(&port->lock);
  3506. }
  3507. void tcpm_cc_change(struct tcpm_port *port)
  3508. {
  3509. spin_lock(&port->pd_event_lock);
  3510. port->pd_events |= TCPM_CC_EVENT;
  3511. spin_unlock(&port->pd_event_lock);
  3512. queue_work(port->wq, &port->event_work);
  3513. }
  3514. EXPORT_SYMBOL_GPL(tcpm_cc_change);
  3515. void tcpm_vbus_change(struct tcpm_port *port)
  3516. {
  3517. spin_lock(&port->pd_event_lock);
  3518. port->pd_events |= TCPM_VBUS_EVENT;
  3519. spin_unlock(&port->pd_event_lock);
  3520. queue_work(port->wq, &port->event_work);
  3521. }
  3522. EXPORT_SYMBOL_GPL(tcpm_vbus_change);
  3523. void tcpm_pd_hard_reset(struct tcpm_port *port)
  3524. {
  3525. spin_lock(&port->pd_event_lock);
  3526. port->pd_events = TCPM_RESET_EVENT;
  3527. spin_unlock(&port->pd_event_lock);
  3528. queue_work(port->wq, &port->event_work);
  3529. }
  3530. EXPORT_SYMBOL_GPL(tcpm_pd_hard_reset);
  3531. static int tcpm_dr_set(const struct typec_capability *cap,
  3532. enum typec_data_role data)
  3533. {
  3534. struct tcpm_port *port = typec_cap_to_tcpm(cap);
  3535. int ret;
  3536. mutex_lock(&port->swap_lock);
  3537. mutex_lock(&port->lock);
  3538. if (port->port_type != TYPEC_PORT_DRP) {
  3539. ret = -EINVAL;
  3540. goto port_unlock;
  3541. }
  3542. if (port->state != SRC_READY && port->state != SNK_READY) {
  3543. ret = -EAGAIN;
  3544. goto port_unlock;
  3545. }
  3546. if (port->data_role == data) {
  3547. ret = 0;
  3548. goto port_unlock;
  3549. }
  3550. /*
  3551. * XXX
  3552. * 6.3.9: If an alternate mode is active, a request to swap
  3553. * alternate modes shall trigger a port reset.
  3554. * Reject data role swap request in this case.
  3555. */
  3556. if (!port->pd_capable) {
  3557. /*
  3558. * If the partner is not PD capable, reset the port to
  3559. * trigger a role change. This can only work if a preferred
  3560. * role is configured, and if it matches the requested role.
  3561. */
  3562. if (port->try_role == TYPEC_NO_PREFERRED_ROLE ||
  3563. port->try_role == port->pwr_role) {
  3564. ret = -EINVAL;
  3565. goto port_unlock;
  3566. }
  3567. port->non_pd_role_swap = true;
  3568. tcpm_set_state(port, PORT_RESET, 0);
  3569. } else {
  3570. tcpm_set_state(port, DR_SWAP_SEND, 0);
  3571. }
  3572. port->swap_status = 0;
  3573. port->swap_pending = true;
  3574. reinit_completion(&port->swap_complete);
  3575. mutex_unlock(&port->lock);
  3576. if (!wait_for_completion_timeout(&port->swap_complete,
  3577. msecs_to_jiffies(PD_ROLE_SWAP_TIMEOUT)))
  3578. ret = -ETIMEDOUT;
  3579. else
  3580. ret = port->swap_status;
  3581. port->non_pd_role_swap = false;
  3582. goto swap_unlock;
  3583. port_unlock:
  3584. mutex_unlock(&port->lock);
  3585. swap_unlock:
  3586. mutex_unlock(&port->swap_lock);
  3587. return ret;
  3588. }
  3589. static int tcpm_pr_set(const struct typec_capability *cap,
  3590. enum typec_role role)
  3591. {
  3592. struct tcpm_port *port = typec_cap_to_tcpm(cap);
  3593. int ret;
  3594. mutex_lock(&port->swap_lock);
  3595. mutex_lock(&port->lock);
  3596. if (port->port_type != TYPEC_PORT_DRP) {
  3597. ret = -EINVAL;
  3598. goto port_unlock;
  3599. }
  3600. if (port->state != SRC_READY && port->state != SNK_READY) {
  3601. ret = -EAGAIN;
  3602. goto port_unlock;
  3603. }
  3604. if (role == port->pwr_role) {
  3605. ret = 0;
  3606. goto port_unlock;
  3607. }
  3608. port->swap_status = 0;
  3609. port->swap_pending = true;
  3610. reinit_completion(&port->swap_complete);
  3611. tcpm_set_state(port, PR_SWAP_SEND, 0);
  3612. mutex_unlock(&port->lock);
  3613. if (!wait_for_completion_timeout(&port->swap_complete,
  3614. msecs_to_jiffies(PD_ROLE_SWAP_TIMEOUT)))
  3615. ret = -ETIMEDOUT;
  3616. else
  3617. ret = port->swap_status;
  3618. goto swap_unlock;
  3619. port_unlock:
  3620. mutex_unlock(&port->lock);
  3621. swap_unlock:
  3622. mutex_unlock(&port->swap_lock);
  3623. return ret;
  3624. }
  3625. static int tcpm_vconn_set(const struct typec_capability *cap,
  3626. enum typec_role role)
  3627. {
  3628. struct tcpm_port *port = typec_cap_to_tcpm(cap);
  3629. int ret;
  3630. mutex_lock(&port->swap_lock);
  3631. mutex_lock(&port->lock);
  3632. if (port->state != SRC_READY && port->state != SNK_READY) {
  3633. ret = -EAGAIN;
  3634. goto port_unlock;
  3635. }
  3636. if (role == port->vconn_role) {
  3637. ret = 0;
  3638. goto port_unlock;
  3639. }
  3640. port->swap_status = 0;
  3641. port->swap_pending = true;
  3642. reinit_completion(&port->swap_complete);
  3643. tcpm_set_state(port, VCONN_SWAP_SEND, 0);
  3644. mutex_unlock(&port->lock);
  3645. if (!wait_for_completion_timeout(&port->swap_complete,
  3646. msecs_to_jiffies(PD_ROLE_SWAP_TIMEOUT)))
  3647. ret = -ETIMEDOUT;
  3648. else
  3649. ret = port->swap_status;
  3650. goto swap_unlock;
  3651. port_unlock:
  3652. mutex_unlock(&port->lock);
  3653. swap_unlock:
  3654. mutex_unlock(&port->swap_lock);
  3655. return ret;
  3656. }
  3657. static int tcpm_try_role(const struct typec_capability *cap, int role)
  3658. {
  3659. struct tcpm_port *port = typec_cap_to_tcpm(cap);
  3660. struct tcpc_dev *tcpc = port->tcpc;
  3661. int ret = 0;
  3662. mutex_lock(&port->lock);
  3663. if (tcpc->try_role)
  3664. ret = tcpc->try_role(tcpc, role);
  3665. if (!ret && (!tcpc->config || !tcpc->config->try_role_hw))
  3666. port->try_role = role;
  3667. port->try_src_count = 0;
  3668. port->try_snk_count = 0;
  3669. mutex_unlock(&port->lock);
  3670. return ret;
  3671. }
  3672. static int tcpm_pps_set_op_curr(struct tcpm_port *port, u16 op_curr)
  3673. {
  3674. unsigned int target_mw;
  3675. int ret;
  3676. mutex_lock(&port->swap_lock);
  3677. mutex_lock(&port->lock);
  3678. if (!port->pps_data.active) {
  3679. ret = -EOPNOTSUPP;
  3680. goto port_unlock;
  3681. }
  3682. if (port->state != SNK_READY) {
  3683. ret = -EAGAIN;
  3684. goto port_unlock;
  3685. }
  3686. if (op_curr > port->pps_data.max_curr) {
  3687. ret = -EINVAL;
  3688. goto port_unlock;
  3689. }
  3690. target_mw = (op_curr * port->pps_data.out_volt) / 1000;
  3691. if (target_mw < port->operating_snk_mw) {
  3692. ret = -EINVAL;
  3693. goto port_unlock;
  3694. }
  3695. /* Round down operating current to align with PPS valid steps */
  3696. op_curr = op_curr - (op_curr % RDO_PROG_CURR_MA_STEP);
  3697. reinit_completion(&port->pps_complete);
  3698. port->pps_data.op_curr = op_curr;
  3699. port->pps_status = 0;
  3700. port->pps_pending = true;
  3701. tcpm_set_state(port, SNK_NEGOTIATE_PPS_CAPABILITIES, 0);
  3702. mutex_unlock(&port->lock);
  3703. if (!wait_for_completion_timeout(&port->pps_complete,
  3704. msecs_to_jiffies(PD_PPS_CTRL_TIMEOUT)))
  3705. ret = -ETIMEDOUT;
  3706. else
  3707. ret = port->pps_status;
  3708. goto swap_unlock;
  3709. port_unlock:
  3710. mutex_unlock(&port->lock);
  3711. swap_unlock:
  3712. mutex_unlock(&port->swap_lock);
  3713. return ret;
  3714. }
  3715. static int tcpm_pps_set_out_volt(struct tcpm_port *port, u16 out_volt)
  3716. {
  3717. unsigned int target_mw;
  3718. int ret;
  3719. mutex_lock(&port->swap_lock);
  3720. mutex_lock(&port->lock);
  3721. if (!port->pps_data.active) {
  3722. ret = -EOPNOTSUPP;
  3723. goto port_unlock;
  3724. }
  3725. if (port->state != SNK_READY) {
  3726. ret = -EAGAIN;
  3727. goto port_unlock;
  3728. }
  3729. if (out_volt < port->pps_data.min_volt ||
  3730. out_volt > port->pps_data.max_volt) {
  3731. ret = -EINVAL;
  3732. goto port_unlock;
  3733. }
  3734. target_mw = (port->pps_data.op_curr * out_volt) / 1000;
  3735. if (target_mw < port->operating_snk_mw) {
  3736. ret = -EINVAL;
  3737. goto port_unlock;
  3738. }
  3739. /* Round down output voltage to align with PPS valid steps */
  3740. out_volt = out_volt - (out_volt % RDO_PROG_VOLT_MV_STEP);
  3741. reinit_completion(&port->pps_complete);
  3742. port->pps_data.out_volt = out_volt;
  3743. port->pps_status = 0;
  3744. port->pps_pending = true;
  3745. tcpm_set_state(port, SNK_NEGOTIATE_PPS_CAPABILITIES, 0);
  3746. mutex_unlock(&port->lock);
  3747. if (!wait_for_completion_timeout(&port->pps_complete,
  3748. msecs_to_jiffies(PD_PPS_CTRL_TIMEOUT)))
  3749. ret = -ETIMEDOUT;
  3750. else
  3751. ret = port->pps_status;
  3752. goto swap_unlock;
  3753. port_unlock:
  3754. mutex_unlock(&port->lock);
  3755. swap_unlock:
  3756. mutex_unlock(&port->swap_lock);
  3757. return ret;
  3758. }
  3759. static int tcpm_pps_activate(struct tcpm_port *port, bool activate)
  3760. {
  3761. int ret = 0;
  3762. mutex_lock(&port->swap_lock);
  3763. mutex_lock(&port->lock);
  3764. if (!port->pps_data.supported) {
  3765. ret = -EOPNOTSUPP;
  3766. goto port_unlock;
  3767. }
  3768. /* Trying to deactivate PPS when already deactivated so just bail */
  3769. if (!port->pps_data.active && !activate)
  3770. goto port_unlock;
  3771. if (port->state != SNK_READY) {
  3772. ret = -EAGAIN;
  3773. goto port_unlock;
  3774. }
  3775. reinit_completion(&port->pps_complete);
  3776. port->pps_status = 0;
  3777. port->pps_pending = true;
  3778. /* Trigger PPS request or move back to standard PDO contract */
  3779. if (activate) {
  3780. port->pps_data.out_volt = port->supply_voltage;
  3781. port->pps_data.op_curr = port->current_limit;
  3782. tcpm_set_state(port, SNK_NEGOTIATE_PPS_CAPABILITIES, 0);
  3783. } else {
  3784. tcpm_set_state(port, SNK_NEGOTIATE_CAPABILITIES, 0);
  3785. }
  3786. mutex_unlock(&port->lock);
  3787. if (!wait_for_completion_timeout(&port->pps_complete,
  3788. msecs_to_jiffies(PD_PPS_CTRL_TIMEOUT)))
  3789. ret = -ETIMEDOUT;
  3790. else
  3791. ret = port->pps_status;
  3792. goto swap_unlock;
  3793. port_unlock:
  3794. mutex_unlock(&port->lock);
  3795. swap_unlock:
  3796. mutex_unlock(&port->swap_lock);
  3797. return ret;
  3798. }
  3799. static void tcpm_init(struct tcpm_port *port)
  3800. {
  3801. enum typec_cc_status cc1, cc2;
  3802. port->tcpc->init(port->tcpc);
  3803. tcpm_reset_port(port);
  3804. /*
  3805. * XXX
  3806. * Should possibly wait for VBUS to settle if it was enabled locally
  3807. * since tcpm_reset_port() will disable VBUS.
  3808. */
  3809. port->vbus_present = port->tcpc->get_vbus(port->tcpc);
  3810. if (port->vbus_present)
  3811. port->vbus_never_low = true;
  3812. tcpm_set_state(port, tcpm_default_state(port), 0);
  3813. if (port->tcpc->get_cc(port->tcpc, &cc1, &cc2) == 0)
  3814. _tcpm_cc_change(port, cc1, cc2);
  3815. /*
  3816. * Some adapters need a clean slate at startup, and won't recover
  3817. * otherwise. So do not try to be fancy and force a clean disconnect.
  3818. */
  3819. tcpm_set_state(port, PORT_RESET, 0);
  3820. }
  3821. static int tcpm_port_type_set(const struct typec_capability *cap,
  3822. enum typec_port_type type)
  3823. {
  3824. struct tcpm_port *port = typec_cap_to_tcpm(cap);
  3825. mutex_lock(&port->lock);
  3826. if (type == port->port_type)
  3827. goto port_unlock;
  3828. port->port_type = type;
  3829. if (!port->connected) {
  3830. tcpm_set_state(port, PORT_RESET, 0);
  3831. } else if (type == TYPEC_PORT_SNK) {
  3832. if (!(port->pwr_role == TYPEC_SINK &&
  3833. port->data_role == TYPEC_DEVICE))
  3834. tcpm_set_state(port, PORT_RESET, 0);
  3835. } else if (type == TYPEC_PORT_SRC) {
  3836. if (!(port->pwr_role == TYPEC_SOURCE &&
  3837. port->data_role == TYPEC_HOST))
  3838. tcpm_set_state(port, PORT_RESET, 0);
  3839. }
  3840. port_unlock:
  3841. mutex_unlock(&port->lock);
  3842. return 0;
  3843. }
  3844. void tcpm_tcpc_reset(struct tcpm_port *port)
  3845. {
  3846. mutex_lock(&port->lock);
  3847. /* XXX: Maintain PD connection if possible? */
  3848. tcpm_init(port);
  3849. mutex_unlock(&port->lock);
  3850. }
  3851. EXPORT_SYMBOL_GPL(tcpm_tcpc_reset);
  3852. static int tcpm_copy_pdos(u32 *dest_pdo, const u32 *src_pdo,
  3853. unsigned int nr_pdo)
  3854. {
  3855. unsigned int i;
  3856. if (nr_pdo > PDO_MAX_OBJECTS)
  3857. nr_pdo = PDO_MAX_OBJECTS;
  3858. for (i = 0; i < nr_pdo; i++)
  3859. dest_pdo[i] = src_pdo[i];
  3860. return nr_pdo;
  3861. }
  3862. static int tcpm_copy_vdos(u32 *dest_vdo, const u32 *src_vdo,
  3863. unsigned int nr_vdo)
  3864. {
  3865. unsigned int i;
  3866. if (nr_vdo > VDO_MAX_OBJECTS)
  3867. nr_vdo = VDO_MAX_OBJECTS;
  3868. for (i = 0; i < nr_vdo; i++)
  3869. dest_vdo[i] = src_vdo[i];
  3870. return nr_vdo;
  3871. }
  3872. static int tcpm_fw_get_caps(struct tcpm_port *port,
  3873. struct fwnode_handle *fwnode)
  3874. {
  3875. const char *cap_str;
  3876. int ret;
  3877. u32 mw;
  3878. if (!fwnode)
  3879. return -EINVAL;
  3880. /* USB data support is optional */
  3881. ret = fwnode_property_read_string(fwnode, "data-role", &cap_str);
  3882. if (ret == 0) {
  3883. port->typec_caps.data = typec_find_port_data_role(cap_str);
  3884. if (port->typec_caps.data < 0)
  3885. return -EINVAL;
  3886. }
  3887. ret = fwnode_property_read_string(fwnode, "power-role", &cap_str);
  3888. if (ret < 0)
  3889. return ret;
  3890. port->typec_caps.type = typec_find_port_power_role(cap_str);
  3891. if (port->typec_caps.type < 0)
  3892. return -EINVAL;
  3893. port->port_type = port->typec_caps.type;
  3894. if (port->port_type == TYPEC_PORT_SNK)
  3895. goto sink;
  3896. /* Get source pdos */
  3897. ret = fwnode_property_read_u32_array(fwnode, "source-pdos",
  3898. NULL, 0);
  3899. if (ret <= 0)
  3900. return -EINVAL;
  3901. port->nr_src_pdo = min(ret, PDO_MAX_OBJECTS);
  3902. ret = fwnode_property_read_u32_array(fwnode, "source-pdos",
  3903. port->src_pdo, port->nr_src_pdo);
  3904. if ((ret < 0) || tcpm_validate_caps(port, port->src_pdo,
  3905. port->nr_src_pdo))
  3906. return -EINVAL;
  3907. if (port->port_type == TYPEC_PORT_SRC)
  3908. return 0;
  3909. /* Get the preferred power role for DRP */
  3910. ret = fwnode_property_read_string(fwnode, "try-power-role", &cap_str);
  3911. if (ret < 0)
  3912. return ret;
  3913. port->typec_caps.prefer_role = typec_find_power_role(cap_str);
  3914. if (port->typec_caps.prefer_role < 0)
  3915. return -EINVAL;
  3916. sink:
  3917. /* Get sink pdos */
  3918. ret = fwnode_property_read_u32_array(fwnode, "sink-pdos",
  3919. NULL, 0);
  3920. if (ret <= 0)
  3921. return -EINVAL;
  3922. port->nr_snk_pdo = min(ret, PDO_MAX_OBJECTS);
  3923. ret = fwnode_property_read_u32_array(fwnode, "sink-pdos",
  3924. port->snk_pdo, port->nr_snk_pdo);
  3925. if ((ret < 0) || tcpm_validate_caps(port, port->snk_pdo,
  3926. port->nr_snk_pdo))
  3927. return -EINVAL;
  3928. if (fwnode_property_read_u32(fwnode, "op-sink-microwatt", &mw) < 0)
  3929. return -EINVAL;
  3930. port->operating_snk_mw = mw / 1000;
  3931. port->self_powered = fwnode_property_read_bool(fwnode, "self-powered");
  3932. return 0;
  3933. }
  3934. int tcpm_update_source_capabilities(struct tcpm_port *port, const u32 *pdo,
  3935. unsigned int nr_pdo)
  3936. {
  3937. if (tcpm_validate_caps(port, pdo, nr_pdo))
  3938. return -EINVAL;
  3939. mutex_lock(&port->lock);
  3940. port->nr_src_pdo = tcpm_copy_pdos(port->src_pdo, pdo, nr_pdo);
  3941. switch (port->state) {
  3942. case SRC_UNATTACHED:
  3943. case SRC_ATTACH_WAIT:
  3944. case SRC_TRYWAIT:
  3945. tcpm_set_cc(port, tcpm_rp_cc(port));
  3946. break;
  3947. case SRC_SEND_CAPABILITIES:
  3948. case SRC_NEGOTIATE_CAPABILITIES:
  3949. case SRC_READY:
  3950. case SRC_WAIT_NEW_CAPABILITIES:
  3951. tcpm_set_cc(port, tcpm_rp_cc(port));
  3952. tcpm_set_state(port, SRC_SEND_CAPABILITIES, 0);
  3953. break;
  3954. default:
  3955. break;
  3956. }
  3957. mutex_unlock(&port->lock);
  3958. return 0;
  3959. }
  3960. EXPORT_SYMBOL_GPL(tcpm_update_source_capabilities);
  3961. int tcpm_update_sink_capabilities(struct tcpm_port *port, const u32 *pdo,
  3962. unsigned int nr_pdo,
  3963. unsigned int operating_snk_mw)
  3964. {
  3965. if (tcpm_validate_caps(port, pdo, nr_pdo))
  3966. return -EINVAL;
  3967. mutex_lock(&port->lock);
  3968. port->nr_snk_pdo = tcpm_copy_pdos(port->snk_pdo, pdo, nr_pdo);
  3969. port->operating_snk_mw = operating_snk_mw;
  3970. port->update_sink_caps = true;
  3971. switch (port->state) {
  3972. case SNK_NEGOTIATE_CAPABILITIES:
  3973. case SNK_NEGOTIATE_PPS_CAPABILITIES:
  3974. case SNK_READY:
  3975. case SNK_TRANSITION_SINK:
  3976. case SNK_TRANSITION_SINK_VBUS:
  3977. if (port->pps_data.active)
  3978. tcpm_set_state(port, SNK_NEGOTIATE_PPS_CAPABILITIES, 0);
  3979. else
  3980. tcpm_set_state(port, SNK_NEGOTIATE_CAPABILITIES, 0);
  3981. break;
  3982. default:
  3983. break;
  3984. }
  3985. mutex_unlock(&port->lock);
  3986. return 0;
  3987. }
  3988. EXPORT_SYMBOL_GPL(tcpm_update_sink_capabilities);
  3989. /* Power Supply access to expose source power information */
  3990. enum tcpm_psy_online_states {
  3991. TCPM_PSY_OFFLINE = 0,
  3992. TCPM_PSY_FIXED_ONLINE,
  3993. TCPM_PSY_PROG_ONLINE,
  3994. };
  3995. static enum power_supply_property tcpm_psy_props[] = {
  3996. POWER_SUPPLY_PROP_USB_TYPE,
  3997. POWER_SUPPLY_PROP_ONLINE,
  3998. POWER_SUPPLY_PROP_VOLTAGE_MIN,
  3999. POWER_SUPPLY_PROP_VOLTAGE_MAX,
  4000. POWER_SUPPLY_PROP_VOLTAGE_NOW,
  4001. POWER_SUPPLY_PROP_CURRENT_MAX,
  4002. POWER_SUPPLY_PROP_CURRENT_NOW,
  4003. };
  4004. static int tcpm_psy_get_online(struct tcpm_port *port,
  4005. union power_supply_propval *val)
  4006. {
  4007. if (port->vbus_charge) {
  4008. if (port->pps_data.active)
  4009. val->intval = TCPM_PSY_PROG_ONLINE;
  4010. else
  4011. val->intval = TCPM_PSY_FIXED_ONLINE;
  4012. } else {
  4013. val->intval = TCPM_PSY_OFFLINE;
  4014. }
  4015. return 0;
  4016. }
  4017. static int tcpm_psy_get_voltage_min(struct tcpm_port *port,
  4018. union power_supply_propval *val)
  4019. {
  4020. if (port->pps_data.active)
  4021. val->intval = port->pps_data.min_volt * 1000;
  4022. else
  4023. val->intval = port->supply_voltage * 1000;
  4024. return 0;
  4025. }
  4026. static int tcpm_psy_get_voltage_max(struct tcpm_port *port,
  4027. union power_supply_propval *val)
  4028. {
  4029. if (port->pps_data.active)
  4030. val->intval = port->pps_data.max_volt * 1000;
  4031. else
  4032. val->intval = port->supply_voltage * 1000;
  4033. return 0;
  4034. }
  4035. static int tcpm_psy_get_voltage_now(struct tcpm_port *port,
  4036. union power_supply_propval *val)
  4037. {
  4038. val->intval = port->supply_voltage * 1000;
  4039. return 0;
  4040. }
  4041. static int tcpm_psy_get_current_max(struct tcpm_port *port,
  4042. union power_supply_propval *val)
  4043. {
  4044. if (port->pps_data.active)
  4045. val->intval = port->pps_data.max_curr * 1000;
  4046. else
  4047. val->intval = port->current_limit * 1000;
  4048. return 0;
  4049. }
  4050. static int tcpm_psy_get_current_now(struct tcpm_port *port,
  4051. union power_supply_propval *val)
  4052. {
  4053. val->intval = port->current_limit * 1000;
  4054. return 0;
  4055. }
  4056. static int tcpm_psy_get_prop(struct power_supply *psy,
  4057. enum power_supply_property psp,
  4058. union power_supply_propval *val)
  4059. {
  4060. struct tcpm_port *port = power_supply_get_drvdata(psy);
  4061. int ret = 0;
  4062. switch (psp) {
  4063. case POWER_SUPPLY_PROP_USB_TYPE:
  4064. val->intval = port->usb_type;
  4065. break;
  4066. case POWER_SUPPLY_PROP_ONLINE:
  4067. ret = tcpm_psy_get_online(port, val);
  4068. break;
  4069. case POWER_SUPPLY_PROP_VOLTAGE_MIN:
  4070. ret = tcpm_psy_get_voltage_min(port, val);
  4071. break;
  4072. case POWER_SUPPLY_PROP_VOLTAGE_MAX:
  4073. ret = tcpm_psy_get_voltage_max(port, val);
  4074. break;
  4075. case POWER_SUPPLY_PROP_VOLTAGE_NOW:
  4076. ret = tcpm_psy_get_voltage_now(port, val);
  4077. break;
  4078. case POWER_SUPPLY_PROP_CURRENT_MAX:
  4079. ret = tcpm_psy_get_current_max(port, val);
  4080. break;
  4081. case POWER_SUPPLY_PROP_CURRENT_NOW:
  4082. ret = tcpm_psy_get_current_now(port, val);
  4083. break;
  4084. default:
  4085. ret = -EINVAL;
  4086. break;
  4087. }
  4088. return ret;
  4089. }
  4090. static int tcpm_psy_set_online(struct tcpm_port *port,
  4091. const union power_supply_propval *val)
  4092. {
  4093. int ret;
  4094. switch (val->intval) {
  4095. case TCPM_PSY_FIXED_ONLINE:
  4096. ret = tcpm_pps_activate(port, false);
  4097. break;
  4098. case TCPM_PSY_PROG_ONLINE:
  4099. ret = tcpm_pps_activate(port, true);
  4100. break;
  4101. default:
  4102. ret = -EINVAL;
  4103. break;
  4104. }
  4105. return ret;
  4106. }
  4107. static int tcpm_psy_set_prop(struct power_supply *psy,
  4108. enum power_supply_property psp,
  4109. const union power_supply_propval *val)
  4110. {
  4111. struct tcpm_port *port = power_supply_get_drvdata(psy);
  4112. int ret;
  4113. switch (psp) {
  4114. case POWER_SUPPLY_PROP_ONLINE:
  4115. ret = tcpm_psy_set_online(port, val);
  4116. break;
  4117. case POWER_SUPPLY_PROP_VOLTAGE_NOW:
  4118. if (val->intval < port->pps_data.min_volt * 1000 ||
  4119. val->intval > port->pps_data.max_volt * 1000)
  4120. ret = -EINVAL;
  4121. else
  4122. ret = tcpm_pps_set_out_volt(port, val->intval / 1000);
  4123. break;
  4124. case POWER_SUPPLY_PROP_CURRENT_NOW:
  4125. if (val->intval > port->pps_data.max_curr * 1000)
  4126. ret = -EINVAL;
  4127. else
  4128. ret = tcpm_pps_set_op_curr(port, val->intval / 1000);
  4129. break;
  4130. default:
  4131. ret = -EINVAL;
  4132. break;
  4133. }
  4134. return ret;
  4135. }
  4136. static int tcpm_psy_prop_writeable(struct power_supply *psy,
  4137. enum power_supply_property psp)
  4138. {
  4139. switch (psp) {
  4140. case POWER_SUPPLY_PROP_ONLINE:
  4141. case POWER_SUPPLY_PROP_VOLTAGE_NOW:
  4142. case POWER_SUPPLY_PROP_CURRENT_NOW:
  4143. return 1;
  4144. default:
  4145. return 0;
  4146. }
  4147. }
  4148. static enum power_supply_usb_type tcpm_psy_usb_types[] = {
  4149. POWER_SUPPLY_USB_TYPE_C,
  4150. POWER_SUPPLY_USB_TYPE_PD,
  4151. POWER_SUPPLY_USB_TYPE_PD_PPS,
  4152. };
  4153. static const char *tcpm_psy_name_prefix = "tcpm-source-psy-";
  4154. static int devm_tcpm_psy_register(struct tcpm_port *port)
  4155. {
  4156. struct power_supply_config psy_cfg = {};
  4157. const char *port_dev_name = dev_name(port->dev);
  4158. size_t psy_name_len = strlen(tcpm_psy_name_prefix) +
  4159. strlen(port_dev_name) + 1;
  4160. char *psy_name;
  4161. psy_cfg.drv_data = port;
  4162. psy_cfg.fwnode = dev_fwnode(port->dev);
  4163. psy_name = devm_kzalloc(port->dev, psy_name_len, GFP_KERNEL);
  4164. if (!psy_name)
  4165. return -ENOMEM;
  4166. snprintf(psy_name, psy_name_len, "%s%s", tcpm_psy_name_prefix,
  4167. port_dev_name);
  4168. port->psy_desc.name = psy_name;
  4169. port->psy_desc.type = POWER_SUPPLY_TYPE_USB,
  4170. port->psy_desc.usb_types = tcpm_psy_usb_types;
  4171. port->psy_desc.num_usb_types = ARRAY_SIZE(tcpm_psy_usb_types);
  4172. port->psy_desc.properties = tcpm_psy_props,
  4173. port->psy_desc.num_properties = ARRAY_SIZE(tcpm_psy_props),
  4174. port->psy_desc.get_property = tcpm_psy_get_prop,
  4175. port->psy_desc.set_property = tcpm_psy_set_prop,
  4176. port->psy_desc.property_is_writeable = tcpm_psy_prop_writeable,
  4177. port->usb_type = POWER_SUPPLY_USB_TYPE_C;
  4178. port->psy = devm_power_supply_register(port->dev, &port->psy_desc,
  4179. &psy_cfg);
  4180. return PTR_ERR_OR_ZERO(port->psy);
  4181. }
  4182. static int tcpm_copy_caps(struct tcpm_port *port,
  4183. const struct tcpc_config *tcfg)
  4184. {
  4185. if (tcpm_validate_caps(port, tcfg->src_pdo, tcfg->nr_src_pdo) ||
  4186. tcpm_validate_caps(port, tcfg->snk_pdo, tcfg->nr_snk_pdo))
  4187. return -EINVAL;
  4188. port->nr_src_pdo = tcpm_copy_pdos(port->src_pdo, tcfg->src_pdo,
  4189. tcfg->nr_src_pdo);
  4190. port->nr_snk_pdo = tcpm_copy_pdos(port->snk_pdo, tcfg->snk_pdo,
  4191. tcfg->nr_snk_pdo);
  4192. port->nr_snk_vdo = tcpm_copy_vdos(port->snk_vdo, tcfg->snk_vdo,
  4193. tcfg->nr_snk_vdo);
  4194. port->operating_snk_mw = tcfg->operating_snk_mw;
  4195. port->typec_caps.prefer_role = tcfg->default_role;
  4196. port->typec_caps.type = tcfg->type;
  4197. port->typec_caps.data = tcfg->data;
  4198. port->self_powered = tcfg->self_powered;
  4199. return 0;
  4200. }
  4201. struct tcpm_port *tcpm_register_port(struct device *dev, struct tcpc_dev *tcpc)
  4202. {
  4203. struct tcpm_port *port;
  4204. int i, err;
  4205. if (!dev || !tcpc ||
  4206. !tcpc->get_vbus || !tcpc->set_cc || !tcpc->get_cc ||
  4207. !tcpc->set_polarity || !tcpc->set_vconn || !tcpc->set_vbus ||
  4208. !tcpc->set_pd_rx || !tcpc->set_roles || !tcpc->pd_transmit)
  4209. return ERR_PTR(-EINVAL);
  4210. port = devm_kzalloc(dev, sizeof(*port), GFP_KERNEL);
  4211. if (!port)
  4212. return ERR_PTR(-ENOMEM);
  4213. port->dev = dev;
  4214. port->tcpc = tcpc;
  4215. mutex_init(&port->lock);
  4216. mutex_init(&port->swap_lock);
  4217. port->wq = create_singlethread_workqueue(dev_name(dev));
  4218. if (!port->wq)
  4219. return ERR_PTR(-ENOMEM);
  4220. INIT_DELAYED_WORK(&port->state_machine, tcpm_state_machine_work);
  4221. INIT_DELAYED_WORK(&port->vdm_state_machine, vdm_state_machine_work);
  4222. INIT_WORK(&port->event_work, tcpm_pd_event_handler);
  4223. spin_lock_init(&port->pd_event_lock);
  4224. init_completion(&port->tx_complete);
  4225. init_completion(&port->swap_complete);
  4226. init_completion(&port->pps_complete);
  4227. tcpm_debugfs_init(port);
  4228. err = tcpm_fw_get_caps(port, tcpc->fwnode);
  4229. if ((err < 0) && tcpc->config)
  4230. err = tcpm_copy_caps(port, tcpc->config);
  4231. if (err < 0)
  4232. goto out_destroy_wq;
  4233. if (!tcpc->config || !tcpc->config->try_role_hw)
  4234. port->try_role = port->typec_caps.prefer_role;
  4235. else
  4236. port->try_role = TYPEC_NO_PREFERRED_ROLE;
  4237. port->typec_caps.fwnode = tcpc->fwnode;
  4238. port->typec_caps.revision = 0x0120; /* Type-C spec release 1.2 */
  4239. port->typec_caps.pd_revision = 0x0300; /* USB-PD spec release 3.0 */
  4240. port->typec_caps.dr_set = tcpm_dr_set;
  4241. port->typec_caps.pr_set = tcpm_pr_set;
  4242. port->typec_caps.vconn_set = tcpm_vconn_set;
  4243. port->typec_caps.try_role = tcpm_try_role;
  4244. port->typec_caps.port_type_set = tcpm_port_type_set;
  4245. port->partner_desc.identity = &port->partner_ident;
  4246. port->port_type = port->typec_caps.type;
  4247. port->role_sw = usb_role_switch_get(port->dev);
  4248. if (IS_ERR(port->role_sw)) {
  4249. err = PTR_ERR(port->role_sw);
  4250. goto out_destroy_wq;
  4251. }
  4252. err = devm_tcpm_psy_register(port);
  4253. if (err)
  4254. goto out_destroy_wq;
  4255. port->typec_port = typec_register_port(port->dev, &port->typec_caps);
  4256. if (IS_ERR(port->typec_port)) {
  4257. err = PTR_ERR(port->typec_port);
  4258. goto out_destroy_wq;
  4259. }
  4260. if (tcpc->config && tcpc->config->alt_modes) {
  4261. const struct typec_altmode_desc *paltmode = tcpc->config->alt_modes;
  4262. i = 0;
  4263. while (paltmode->svid && i < ARRAY_SIZE(port->port_altmode)) {
  4264. struct typec_altmode *alt;
  4265. alt = typec_port_register_altmode(port->typec_port,
  4266. paltmode);
  4267. if (IS_ERR(alt)) {
  4268. tcpm_log(port,
  4269. "%s: failed to register port alternate mode 0x%x",
  4270. dev_name(dev), paltmode->svid);
  4271. break;
  4272. }
  4273. typec_altmode_set_drvdata(alt, port);
  4274. alt->ops = &tcpm_altmode_ops;
  4275. port->port_altmode[i] = alt;
  4276. i++;
  4277. paltmode++;
  4278. }
  4279. }
  4280. mutex_lock(&port->lock);
  4281. tcpm_init(port);
  4282. mutex_unlock(&port->lock);
  4283. tcpm_log(port, "%s: registered", dev_name(dev));
  4284. return port;
  4285. out_destroy_wq:
  4286. usb_role_switch_put(port->role_sw);
  4287. destroy_workqueue(port->wq);
  4288. return ERR_PTR(err);
  4289. }
  4290. EXPORT_SYMBOL_GPL(tcpm_register_port);
  4291. void tcpm_unregister_port(struct tcpm_port *port)
  4292. {
  4293. int i;
  4294. tcpm_reset_port(port);
  4295. for (i = 0; i < ARRAY_SIZE(port->port_altmode); i++)
  4296. typec_unregister_altmode(port->port_altmode[i]);
  4297. typec_unregister_port(port->typec_port);
  4298. usb_role_switch_put(port->role_sw);
  4299. tcpm_debugfs_exit(port);
  4300. destroy_workqueue(port->wq);
  4301. }
  4302. EXPORT_SYMBOL_GPL(tcpm_unregister_port);
  4303. MODULE_AUTHOR("Guenter Roeck <groeck@chromium.org>");
  4304. MODULE_DESCRIPTION("USB Type-C Port Manager");
  4305. MODULE_LICENSE("GPL");