focaltech_core.c 86 KB

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  1. /*
  2. *
  3. * FocalTech TouchScreen driver.
  4. *
  5. * Copyright (c) 2012-2019, FocalTech Systems, Ltd., all rights reserved.
  6. *
  7. * This software is licensed under the terms of the GNU General Public
  8. * License version 2, as published by the Free Software Foundation, and
  9. * may be copied, distributed, and modified under those terms.
  10. *
  11. * This program is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. *
  16. */
  17. /*****************************************************************************
  18. *
  19. * File Name: focaltech_core.c
  20. *
  21. * Author: Focaltech Driver Team
  22. *
  23. * Created: 2016-08-08
  24. *
  25. * Abstract: entrance for focaltech ts driver
  26. *
  27. * Version: V1.0
  28. *
  29. *****************************************************************************/
  30. /*****************************************************************************
  31. * Included header files
  32. *****************************************************************************/
  33. #include <linux/module.h>
  34. #include <linux/irq.h>
  35. #include <linux/init.h>
  36. #include <linux/of.h>
  37. #include <linux/of_device.h>
  38. #include <linux/of_gpio.h>
  39. #include <linux/of_irq.h>
  40. #include <dt-bindings/interrupt-controller/arm-gic.h>
  41. #include <linux/of_irq.h>
  42. #include <linux/soc/qcom/panel_event_notifier.h>
  43. #if defined(CONFIG_DRM)
  44. #include <drm/drm_panel.h>
  45. #elif defined(CONFIG_FB)
  46. #include <linux/notifier.h>
  47. #include <linux/fb.h>
  48. #elif defined(CONFIG_HAS_EARLYSUSPEND)
  49. #include <linux/earlysuspend.h>
  50. #define FTS_SUSPEND_LEVEL 1 /* Early-suspend level */
  51. #endif
  52. #include "focaltech_core.h"
  53. #if defined(CONFIG_FTS_TRUSTED_TOUCH)
  54. #include <linux/atomic.h>
  55. #include <linux/clk.h>
  56. #include <linux/pm_runtime.h>
  57. #include <linux/debugfs.h>
  58. #include <linux/fs.h>
  59. #include <linux/uaccess.h>
  60. #include <linux/kobject.h>
  61. #include <linux/sysfs.h>
  62. #include "linux/gunyah/gh_msgq.h"
  63. #include "linux/gunyah/gh_rm_drv.h"
  64. #include <linux/sort.h>
  65. #include <linux/pinctrl/qcom-pinctrl.h>
  66. #endif
  67. /*****************************************************************************
  68. * Private constant and macro definitions using #define
  69. *****************************************************************************/
  70. #define FTS_DRIVER_NAME "fts_ts"
  71. #define INTERVAL_READ_REG 200 /* unit:ms */
  72. #define TIMEOUT_READ_REG 1000 /* unit:ms */
  73. #if FTS_POWER_SOURCE_CUST_EN
  74. #define FTS_VTG_MIN_UV 3000000
  75. #define FTS_VTG_MAX_UV 3300000
  76. #define FTS_LOAD_MAX_UA 30000
  77. #define FTS_LOAD_AVDD_UA 10000
  78. #define FTS_LOAD_DISABLE_UA 0
  79. #define FTS_I2C_VTG_MIN_UV 1800000
  80. #define FTS_I2C_VTG_MAX_UV 1800000
  81. #endif
  82. /*****************************************************************************
  83. * Global variable or extern global variabls/functions
  84. *****************************************************************************/
  85. struct fts_ts_data *fts_data;
  86. #if defined(CONFIG_DRM)
  87. static struct drm_panel *active_panel;
  88. static void fts_ts_panel_notifier_callback(enum panel_event_notifier_tag tag,
  89. struct panel_event_notification *event, void *client_data);
  90. #endif
  91. static struct ft_chip_t ctype[] = {
  92. {0x88, 0x56, 0x52, 0x00, 0x00, 0x00, 0x00, 0x56, 0xB2},
  93. {0x81, 0x54, 0x52, 0x54, 0x52, 0x00, 0x00, 0x54, 0x5C},
  94. {0x1C, 0x87, 0x26, 0x87, 0x20, 0x87, 0xA0, 0x00, 0x00},
  95. };
  96. /*****************************************************************************
  97. * Static function prototypes
  98. *****************************************************************************/
  99. static int fts_ts_suspend(struct device *dev);
  100. static int fts_ts_resume(struct device *dev);
  101. static irqreturn_t fts_irq_handler(int irq, void *data);
  102. static int fts_ts_probe_delayed(struct fts_ts_data *fts_data);
  103. static int fts_ts_enable_reg(struct fts_ts_data *ts_data, bool enable);
  104. static void fts_ts_register_for_panel_events(struct device_node *dp,
  105. struct fts_ts_data *ts_data)
  106. {
  107. const char *touch_type;
  108. int rc = 0;
  109. void *cookie = NULL;
  110. rc = of_property_read_string(dp, "focaltech,touch-type",
  111. &touch_type);
  112. if (rc) {
  113. dev_warn(&fts_data->client->dev,
  114. "%s: No touch type\n", __func__);
  115. return;
  116. }
  117. if (strcmp(touch_type, "primary")) {
  118. pr_err("Invalid touch type\n");
  119. return;
  120. }
  121. cookie = panel_event_notifier_register(PANEL_EVENT_NOTIFICATION_PRIMARY,
  122. PANEL_EVENT_NOTIFIER_CLIENT_PRIMARY_TOUCH, active_panel,
  123. &fts_ts_panel_notifier_callback, ts_data);
  124. if (!cookie) {
  125. pr_err("Failed to register for panel events\n");
  126. return;
  127. }
  128. FTS_DEBUG("registered for panel notifications panel: 0x%x\n",
  129. active_panel);
  130. ts_data->notifier_cookie = cookie;
  131. }
  132. #ifdef CONFIG_FTS_TRUSTED_TOUCH
  133. static void fts_ts_trusted_touch_abort_handler(struct fts_ts_data *fts_data,
  134. int error);
  135. static struct gh_acl_desc *fts_ts_vm_get_acl(enum gh_vm_names vm_name)
  136. {
  137. struct gh_acl_desc *acl_desc;
  138. gh_vmid_t vmid;
  139. gh_rm_get_vmid(vm_name, &vmid);
  140. acl_desc = kzalloc(offsetof(struct gh_acl_desc, acl_entries[1]),
  141. GFP_KERNEL);
  142. if (!acl_desc)
  143. return ERR_PTR(ENOMEM);
  144. acl_desc->n_acl_entries = 1;
  145. acl_desc->acl_entries[0].vmid = vmid;
  146. acl_desc->acl_entries[0].perms = GH_RM_ACL_R | GH_RM_ACL_W;
  147. return acl_desc;
  148. }
  149. static struct gh_sgl_desc *fts_ts_vm_get_sgl(
  150. struct trusted_touch_vm_info *vm_info)
  151. {
  152. struct gh_sgl_desc *sgl_desc;
  153. int i;
  154. sgl_desc = kzalloc(offsetof(struct gh_sgl_desc,
  155. sgl_entries[vm_info->iomem_list_size]), GFP_KERNEL);
  156. if (!sgl_desc)
  157. return ERR_PTR(ENOMEM);
  158. sgl_desc->n_sgl_entries = vm_info->iomem_list_size;
  159. for (i = 0; i < vm_info->iomem_list_size; i++) {
  160. sgl_desc->sgl_entries[i].ipa_base = vm_info->iomem_bases[i];
  161. sgl_desc->sgl_entries[i].size = vm_info->iomem_sizes[i];
  162. }
  163. return sgl_desc;
  164. }
  165. static int fts_ts_populate_vm_info_iomem(struct fts_ts_data *fts_data)
  166. {
  167. int i, gpio, rc = 0;
  168. int num_regs, num_sizes, num_gpios, list_size;
  169. struct resource res;
  170. struct device_node *np = fts_data->dev->of_node;
  171. struct trusted_touch_vm_info *vm_info = fts_data->vm_info;
  172. num_regs = of_property_count_u32_elems(np, "focaltech,trusted-touch-io-bases");
  173. if (num_regs < 0) {
  174. FTS_ERROR("Invalid number of IO regions specified\n");
  175. return -EINVAL;
  176. }
  177. num_sizes = of_property_count_u32_elems(np, "focaltech,trusted-touch-io-sizes");
  178. if (num_sizes < 0) {
  179. FTS_ERROR("Invalid number of IO regions specified\n");
  180. return -EINVAL;
  181. }
  182. if (num_regs != num_sizes) {
  183. FTS_ERROR("IO bases and sizes array lengths mismatch\n");
  184. return -EINVAL;
  185. }
  186. num_gpios = of_gpio_named_count(np, "focaltech,trusted-touch-vm-gpio-list");
  187. if (num_gpios < 0) {
  188. dev_warn(fts_data->dev, "Ignoring invalid trusted gpio list: %d\n", num_gpios);
  189. num_gpios = 0;
  190. }
  191. list_size = num_regs + num_gpios;
  192. vm_info->iomem_list_size = list_size;
  193. vm_info->iomem_bases = devm_kcalloc(fts_data->dev, list_size, sizeof(*vm_info->iomem_bases),
  194. GFP_KERNEL);
  195. if (!vm_info->iomem_bases)
  196. return -ENOMEM;
  197. vm_info->iomem_sizes = devm_kcalloc(fts_data->dev, list_size, sizeof(*vm_info->iomem_sizes),
  198. GFP_KERNEL);
  199. if (!vm_info->iomem_sizes)
  200. return -ENOMEM;
  201. for (i = 0; i < num_gpios; ++i) {
  202. gpio = of_get_named_gpio(np, "focaltech,trusted-touch-vm-gpio-list", i);
  203. if (gpio < 0 || !gpio_is_valid(gpio)) {
  204. FTS_ERROR("Invalid gpio %d at position %d\n", gpio, i);
  205. return gpio;
  206. }
  207. if (!msm_gpio_get_pin_address(gpio, &res)) {
  208. FTS_ERROR("Failed to retrieve gpio-%d resource\n", gpio);
  209. return -ENODATA;
  210. }
  211. vm_info->iomem_bases[i] = res.start;
  212. vm_info->iomem_sizes[i] = resource_size(&res);
  213. }
  214. rc = of_property_read_u32_array(np, "focaltech,trusted-touch-io-bases",
  215. &vm_info->iomem_bases[i], list_size - i);
  216. if (rc) {
  217. FTS_ERROR("Failed to read trusted touch io bases:%d\n", rc);
  218. return rc;
  219. }
  220. rc = of_property_read_u32_array(np, "focaltech,trusted-touch-io-sizes",
  221. &vm_info->iomem_sizes[i], list_size - i);
  222. if (rc) {
  223. FTS_ERROR("Failed to read trusted touch io sizes:%d\n", rc);
  224. return rc;
  225. }
  226. return 0;
  227. }
  228. static int fts_ts_populate_vm_info(struct fts_ts_data *fts_data)
  229. {
  230. int rc;
  231. struct trusted_touch_vm_info *vm_info;
  232. struct device_node *np = fts_data->dev->of_node;
  233. vm_info = devm_kzalloc(fts_data->dev, sizeof(struct trusted_touch_vm_info), GFP_KERNEL);
  234. if (!vm_info)
  235. return -ENOMEM;
  236. fts_data->vm_info = vm_info;
  237. vm_info->vm_name = GH_TRUSTED_VM;
  238. rc = of_property_read_u32(np, "focaltech,trusted-touch-spi-irq", &vm_info->hw_irq);
  239. if (rc) {
  240. pr_err("Failed to read trusted touch SPI irq:%d\n", rc);
  241. return rc;
  242. }
  243. rc = fts_ts_populate_vm_info_iomem(fts_data);
  244. if (rc) {
  245. pr_err("Failed to read trusted touch mmio ranges:%d\n", rc);
  246. return rc;
  247. }
  248. rc = of_property_read_string(np, "focaltech,trusted-touch-type",
  249. &vm_info->trusted_touch_type);
  250. if (rc) {
  251. pr_warn("%s: No trusted touch type selection made\n", __func__);
  252. vm_info->mem_tag = GH_MEM_NOTIFIER_TAG_TOUCH_PRIMARY;
  253. vm_info->irq_label = GH_IRQ_LABEL_TRUSTED_TOUCH_PRIMARY;
  254. rc = 0;
  255. } else if (!strcmp(vm_info->trusted_touch_type, "primary")) {
  256. vm_info->mem_tag = GH_MEM_NOTIFIER_TAG_TOUCH_PRIMARY;
  257. vm_info->irq_label = GH_IRQ_LABEL_TRUSTED_TOUCH_PRIMARY;
  258. } else if (!strcmp(vm_info->trusted_touch_type, "secondary")) {
  259. vm_info->mem_tag = GH_MEM_NOTIFIER_TAG_TOUCH_SECONDARY;
  260. vm_info->irq_label = GH_IRQ_LABEL_TRUSTED_TOUCH_SECONDARY;
  261. }
  262. return 0;
  263. }
  264. static void fts_ts_destroy_vm_info(struct fts_ts_data *fts_data)
  265. {
  266. kfree(fts_data->vm_info->iomem_sizes);
  267. kfree(fts_data->vm_info->iomem_bases);
  268. kfree(fts_data->vm_info);
  269. }
  270. static void fts_ts_vm_deinit(struct fts_ts_data *fts_data)
  271. {
  272. if (fts_data->vm_info->mem_cookie)
  273. gh_mem_notifier_unregister(fts_data->vm_info->mem_cookie);
  274. fts_ts_destroy_vm_info(fts_data);
  275. }
  276. static int fts_ts_trusted_touch_get_vm_state(struct fts_ts_data *fts_data)
  277. {
  278. return atomic_read(&fts_data->vm_info->vm_state);
  279. }
  280. static void fts_ts_trusted_touch_set_vm_state(struct fts_ts_data *fts_data,
  281. int state)
  282. {
  283. atomic_set(&fts_data->vm_info->vm_state, state);
  284. }
  285. #ifdef CONFIG_ARCH_QTI_VM
  286. static int fts_ts_vm_mem_release(struct fts_ts_data *fts_data);
  287. static void fts_ts_trusted_touch_tvm_vm_mode_disable(struct fts_ts_data *fts_data);
  288. static void fts_ts_trusted_touch_abort_tvm(struct fts_ts_data *fts_data);
  289. static void fts_ts_trusted_touch_event_notify(struct fts_ts_data *fts_data, int event);
  290. void fts_ts_trusted_touch_tvm_i2c_failure_report(struct fts_ts_data *fts_data)
  291. {
  292. pr_err("initiating trusted touch abort due to i2c failure\n");
  293. fts_ts_trusted_touch_abort_handler(fts_data,
  294. TRUSTED_TOUCH_EVENT_I2C_FAILURE);
  295. }
  296. static void fts_ts_trusted_touch_reset_gpio_toggle(struct fts_ts_data *fts_data)
  297. {
  298. void __iomem *base;
  299. if (fts_data->bus_type != BUS_TYPE_I2C)
  300. return;
  301. base = ioremap(TOUCH_RESET_GPIO_BASE, TOUCH_RESET_GPIO_SIZE);
  302. writel_relaxed(0x1, base + TOUCH_RESET_GPIO_OFFSET);
  303. /* wait until toggle to finish*/
  304. wmb();
  305. writel_relaxed(0x0, base + TOUCH_RESET_GPIO_OFFSET);
  306. /* wait until toggle to finish*/
  307. wmb();
  308. iounmap(base);
  309. }
  310. static void fts_trusted_touch_intr_gpio_toggle(struct fts_ts_data *fts_data,
  311. bool enable)
  312. {
  313. void __iomem *base;
  314. u32 val;
  315. if (fts_data->bus_type != BUS_TYPE_I2C)
  316. return;
  317. base = ioremap(TOUCH_INTR_GPIO_BASE, TOUCH_INTR_GPIO_SIZE);
  318. val = readl_relaxed(base + TOUCH_RESET_GPIO_OFFSET);
  319. if (enable) {
  320. val |= BIT(0);
  321. writel_relaxed(val, base + TOUCH_INTR_GPIO_OFFSET);
  322. /* wait until toggle to finish*/
  323. wmb();
  324. } else {
  325. val &= ~BIT(0);
  326. writel_relaxed(val, base + TOUCH_INTR_GPIO_OFFSET);
  327. /* wait until toggle to finish*/
  328. wmb();
  329. }
  330. iounmap(base);
  331. }
  332. static int fts_ts_sgl_cmp(const void *a, const void *b)
  333. {
  334. struct gh_sgl_entry *left = (struct gh_sgl_entry *)a;
  335. struct gh_sgl_entry *right = (struct gh_sgl_entry *)b;
  336. return (left->ipa_base - right->ipa_base);
  337. }
  338. static int fts_ts_vm_compare_sgl_desc(struct gh_sgl_desc *expected,
  339. struct gh_sgl_desc *received)
  340. {
  341. int idx;
  342. if (expected->n_sgl_entries != received->n_sgl_entries)
  343. return -E2BIG;
  344. sort(received->sgl_entries, received->n_sgl_entries,
  345. sizeof(received->sgl_entries[0]), fts_ts_sgl_cmp, NULL);
  346. sort(expected->sgl_entries, expected->n_sgl_entries,
  347. sizeof(expected->sgl_entries[0]), fts_ts_sgl_cmp, NULL);
  348. for (idx = 0; idx < expected->n_sgl_entries; idx++) {
  349. struct gh_sgl_entry *left = &expected->sgl_entries[idx];
  350. struct gh_sgl_entry *right = &received->sgl_entries[idx];
  351. if ((left->ipa_base != right->ipa_base) ||
  352. (left->size != right->size)) {
  353. pr_err("sgl mismatch: left_base:%d right base:%d left size:%d right size:%d\n",
  354. left->ipa_base, right->ipa_base,
  355. left->size, right->size);
  356. return -EINVAL;
  357. }
  358. }
  359. return 0;
  360. }
  361. static int fts_ts_vm_handle_vm_hardware(struct fts_ts_data *fts_data)
  362. {
  363. int rc = 0;
  364. if (atomic_read(&fts_data->delayed_vm_probe_pending)) {
  365. rc = fts_ts_probe_delayed(fts_data);
  366. if (rc) {
  367. pr_err(" Delayed probe failure on VM!\n");
  368. return rc;
  369. }
  370. atomic_set(&fts_data->delayed_vm_probe_pending, 0);
  371. return rc;
  372. }
  373. fts_irq_enable();
  374. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_INTERRUPT_ENABLED);
  375. return rc;
  376. }
  377. static void fts_ts_trusted_touch_tvm_vm_mode_enable(struct fts_ts_data *fts_data)
  378. {
  379. struct gh_sgl_desc *sgl_desc, *expected_sgl_desc;
  380. struct gh_acl_desc *acl_desc;
  381. struct irq_data *irq_data;
  382. int rc = 0;
  383. int irq = 0;
  384. if (fts_ts_trusted_touch_get_vm_state(fts_data) != TVM_ALL_RESOURCES_LENT_NOTIFIED) {
  385. pr_err("All lend notifications not received\n");
  386. fts_ts_trusted_touch_event_notify(fts_data,
  387. TRUSTED_TOUCH_EVENT_NOTIFICATIONS_PENDING);
  388. return;
  389. }
  390. acl_desc = fts_ts_vm_get_acl(GH_TRUSTED_VM);
  391. if (IS_ERR(acl_desc)) {
  392. pr_err("failed to populated acl data:rc=%d\n",
  393. PTR_ERR(acl_desc));
  394. goto accept_fail;
  395. }
  396. sgl_desc = gh_rm_mem_accept(fts_data->vm_info->vm_mem_handle,
  397. GH_RM_MEM_TYPE_IO,
  398. GH_RM_TRANS_TYPE_LEND,
  399. GH_RM_MEM_ACCEPT_VALIDATE_ACL_ATTRS |
  400. GH_RM_MEM_ACCEPT_VALIDATE_LABEL |
  401. GH_RM_MEM_ACCEPT_DONE, TRUSTED_TOUCH_MEM_LABEL,
  402. acl_desc, NULL, NULL, 0);
  403. if (IS_ERR_OR_NULL(sgl_desc)) {
  404. pr_err("failed to do mem accept :rc=%d\n",
  405. PTR_ERR(sgl_desc));
  406. goto acl_fail;
  407. }
  408. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_IOMEM_ACCEPTED);
  409. /* Initiate session on tvm */
  410. if (fts_data->bus_type == BUS_TYPE_I2C)
  411. rc = pm_runtime_get_sync(fts_data->client->adapter->dev.parent);
  412. else
  413. rc = pm_runtime_get_sync(fts_data->spi->master->dev.parent);
  414. if (rc < 0) {
  415. pr_err("failed to get sync rc:%d\n", rc);
  416. goto acl_fail;
  417. }
  418. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_I2C_SESSION_ACQUIRED);
  419. expected_sgl_desc = fts_ts_vm_get_sgl(fts_data->vm_info);
  420. if (fts_ts_vm_compare_sgl_desc(expected_sgl_desc, sgl_desc)) {
  421. pr_err("IO sg list does not match\n");
  422. goto sgl_cmp_fail;
  423. }
  424. kfree(expected_sgl_desc);
  425. kfree(acl_desc);
  426. irq = gh_irq_accept(fts_data->vm_info->irq_label, -1, IRQ_TYPE_EDGE_RISING);
  427. fts_trusted_touch_intr_gpio_toggle(fts_data, false);
  428. if (irq < 0) {
  429. pr_err("failed to accept irq\n");
  430. goto accept_fail;
  431. }
  432. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_IRQ_ACCEPTED);
  433. irq_data = irq_get_irq_data(irq);
  434. if (!irq_data) {
  435. pr_err("Invalid irq data for trusted touch\n");
  436. goto accept_fail;
  437. }
  438. if (!irq_data->hwirq) {
  439. pr_err("Invalid irq in irq data\n");
  440. goto accept_fail;
  441. }
  442. if (irq_data->hwirq != fts_data->vm_info->hw_irq) {
  443. pr_err("Invalid irq lent\n");
  444. goto accept_fail;
  445. }
  446. pr_debug("irq:returned from accept:%d\n", irq);
  447. fts_data->irq = irq;
  448. rc = fts_ts_vm_handle_vm_hardware(fts_data);
  449. if (rc) {
  450. pr_err(" Delayed probe failure on VM!\n");
  451. goto accept_fail;
  452. }
  453. atomic_set(&fts_data->trusted_touch_enabled, 1);
  454. pr_info("trusted touch enabled\n");
  455. return;
  456. sgl_cmp_fail:
  457. kfree(expected_sgl_desc);
  458. acl_fail:
  459. kfree(acl_desc);
  460. accept_fail:
  461. fts_ts_trusted_touch_abort_handler(fts_data,
  462. TRUSTED_TOUCH_EVENT_ACCEPT_FAILURE);
  463. }
  464. static void fts_ts_vm_irq_on_lend_callback(void *data,
  465. unsigned long notif_type,
  466. enum gh_irq_label label)
  467. {
  468. struct fts_ts_data *fts_data = data;
  469. pr_debug("received irq lend request for label:%d\n", label);
  470. if (fts_ts_trusted_touch_get_vm_state(fts_data) == TVM_IOMEM_LENT_NOTIFIED)
  471. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_ALL_RESOURCES_LENT_NOTIFIED);
  472. else
  473. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_IRQ_LENT_NOTIFIED);
  474. }
  475. static void fts_ts_vm_mem_on_lend_handler(enum gh_mem_notifier_tag tag,
  476. unsigned long notif_type, void *entry_data, void *notif_msg)
  477. {
  478. struct gh_rm_notif_mem_shared_payload *payload;
  479. struct trusted_touch_vm_info *vm_info;
  480. struct fts_ts_data *fts_data;
  481. fts_data = (struct fts_ts_data *)entry_data;
  482. vm_info = fts_data->vm_info;
  483. if (!vm_info) {
  484. pr_err("Invalid vm_info\n");
  485. return;
  486. }
  487. if (notif_type != GH_RM_NOTIF_MEM_SHARED ||
  488. tag != vm_info->mem_tag) {
  489. pr_err("Invalid command passed from rm\n");
  490. return;
  491. }
  492. if (!entry_data || !notif_msg) {
  493. pr_err("Invalid entry data passed from rm\n");
  494. return;
  495. }
  496. payload = (struct gh_rm_notif_mem_shared_payload *)notif_msg;
  497. if (payload->trans_type != GH_RM_TRANS_TYPE_LEND ||
  498. payload->label != TRUSTED_TOUCH_MEM_LABEL) {
  499. pr_err("Invalid label or transaction type\n");
  500. return;
  501. }
  502. vm_info->vm_mem_handle = payload->mem_handle;
  503. pr_debug("received mem lend request with handle:%d\n",
  504. vm_info->vm_mem_handle);
  505. if (fts_ts_trusted_touch_get_vm_state(fts_data) == TVM_IRQ_LENT_NOTIFIED)
  506. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_ALL_RESOURCES_LENT_NOTIFIED);
  507. else
  508. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_IOMEM_LENT_NOTIFIED);
  509. }
  510. static int fts_ts_vm_mem_release(struct fts_ts_data *fts_data)
  511. {
  512. int rc = 0;
  513. if (!fts_data->vm_info->vm_mem_handle) {
  514. pr_err("Invalid memory handle\n");
  515. return -EINVAL;
  516. }
  517. rc = gh_rm_mem_release(fts_data->vm_info->vm_mem_handle, 0);
  518. if (rc)
  519. pr_err("VM mem release failed: rc=%d\n", rc);
  520. rc = gh_rm_mem_notify(fts_data->vm_info->vm_mem_handle,
  521. GH_RM_MEM_NOTIFY_OWNER_RELEASED,
  522. fts_data->vm_info->mem_tag, 0);
  523. if (rc)
  524. pr_err("Failed to notify mem release to PVM: rc=%d\n");
  525. pr_debug("vm mem release succeded\n");
  526. fts_data->vm_info->vm_mem_handle = 0;
  527. return rc;
  528. }
  529. static void fts_ts_trusted_touch_tvm_vm_mode_disable(struct fts_ts_data *fts_data)
  530. {
  531. int rc = 0;
  532. if (atomic_read(&fts_data->trusted_touch_abort_status)) {
  533. fts_ts_trusted_touch_abort_tvm(fts_data);
  534. return;
  535. }
  536. fts_irq_disable();
  537. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_INTERRUPT_DISABLED);
  538. rc = gh_irq_release(fts_data->vm_info->irq_label);
  539. if (rc) {
  540. pr_err("Failed to release irq rc:%d\n", rc);
  541. goto error;
  542. } else {
  543. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_IRQ_RELEASED);
  544. }
  545. rc = gh_irq_release_notify(fts_data->vm_info->irq_label);
  546. if (rc)
  547. pr_err("Failed to notify release irq rc:%d\n", rc);
  548. pr_debug("vm irq release succeded\n");
  549. fts_release_all_finger();
  550. if (fts_data->bus_type == BUS_TYPE_I2C)
  551. pm_runtime_put_sync(fts_data->client->adapter->dev.parent);
  552. else
  553. pm_runtime_put_sync(fts_data->spi->master->dev.parent);
  554. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_I2C_SESSION_RELEASED);
  555. rc = fts_ts_vm_mem_release(fts_data);
  556. if (rc) {
  557. pr_err("Failed to release mem rc:%d\n", rc);
  558. goto error;
  559. } else {
  560. fts_ts_trusted_touch_set_vm_state(fts_data, TVM_IOMEM_RELEASED);
  561. }
  562. fts_ts_trusted_touch_set_vm_state(fts_data, TRUSTED_TOUCH_TVM_INIT);
  563. atomic_set(&fts_data->trusted_touch_enabled, 0);
  564. pr_info("trusted touch disabled\n");
  565. return;
  566. error:
  567. fts_ts_trusted_touch_abort_handler(fts_data,
  568. TRUSTED_TOUCH_EVENT_RELEASE_FAILURE);
  569. }
  570. int fts_ts_handle_trusted_touch_tvm(struct fts_ts_data *fts_data, int value)
  571. {
  572. int err = 0;
  573. switch (value) {
  574. case 0:
  575. if ((atomic_read(&fts_data->trusted_touch_enabled) == 0) &&
  576. (atomic_read(&fts_data->trusted_touch_abort_status) == 0)) {
  577. pr_err("Trusted touch is already disabled\n");
  578. break;
  579. }
  580. if (atomic_read(&fts_data->trusted_touch_mode) ==
  581. TRUSTED_TOUCH_VM_MODE) {
  582. fts_ts_trusted_touch_tvm_vm_mode_disable(fts_data);
  583. } else {
  584. pr_err("Unsupported trusted touch mode\n");
  585. }
  586. break;
  587. case 1:
  588. if (atomic_read(&fts_data->trusted_touch_enabled)) {
  589. pr_err("Trusted touch usecase underway\n");
  590. err = -EBUSY;
  591. break;
  592. }
  593. if (atomic_read(&fts_data->trusted_touch_mode) ==
  594. TRUSTED_TOUCH_VM_MODE) {
  595. fts_ts_trusted_touch_tvm_vm_mode_enable(fts_data);
  596. } else {
  597. pr_err("Unsupported trusted touch mode\n");
  598. }
  599. break;
  600. default:
  601. FTS_ERROR("unsupported value: %lu\n", value);
  602. err = -EINVAL;
  603. break;
  604. }
  605. return err;
  606. }
  607. static void fts_ts_trusted_touch_abort_tvm(struct fts_ts_data *fts_data)
  608. {
  609. int rc = 0;
  610. int vm_state = fts_ts_trusted_touch_get_vm_state(fts_data);
  611. if (vm_state >= TRUSTED_TOUCH_TVM_STATE_MAX) {
  612. pr_err("invalid tvm driver state: %d\n", vm_state);
  613. return;
  614. }
  615. switch (vm_state) {
  616. case TVM_INTERRUPT_ENABLED:
  617. fts_irq_disable();
  618. case TVM_IRQ_ACCEPTED:
  619. case TVM_INTERRUPT_DISABLED:
  620. rc = gh_irq_release(fts_data->vm_info->irq_label);
  621. if (rc)
  622. pr_err("Failed to release irq rc:%d\n", rc);
  623. rc = gh_irq_release_notify(fts_data->vm_info->irq_label);
  624. if (rc)
  625. pr_err("Failed to notify irq release rc:%d\n", rc);
  626. case TVM_I2C_SESSION_ACQUIRED:
  627. case TVM_IOMEM_ACCEPTED:
  628. case TVM_IRQ_RELEASED:
  629. fts_release_all_finger();
  630. if (fts_data->bus_type == BUS_TYPE_I2C)
  631. pm_runtime_put_sync(fts_data->client->adapter->dev.parent);
  632. else
  633. pm_runtime_put_sync(fts_data->spi->master->dev.parent);
  634. case TVM_I2C_SESSION_RELEASED:
  635. rc = fts_ts_vm_mem_release(fts_data);
  636. if (rc)
  637. pr_err("Failed to release mem rc:%d\n", rc);
  638. case TVM_IOMEM_RELEASED:
  639. case TVM_ALL_RESOURCES_LENT_NOTIFIED:
  640. case TRUSTED_TOUCH_TVM_INIT:
  641. case TVM_IRQ_LENT_NOTIFIED:
  642. case TVM_IOMEM_LENT_NOTIFIED:
  643. atomic_set(&fts_data->trusted_touch_enabled, 0);
  644. }
  645. atomic_set(&fts_data->trusted_touch_abort_status, 0);
  646. fts_ts_trusted_touch_set_vm_state(fts_data, TRUSTED_TOUCH_TVM_INIT);
  647. }
  648. #else
  649. static void fts_ts_bus_put(struct fts_ts_data *fts_data);
  650. static void fts_ts_trusted_touch_abort_pvm(struct fts_ts_data *fts_data)
  651. {
  652. int rc = 0;
  653. int vm_state = fts_ts_trusted_touch_get_vm_state(fts_data);
  654. if (vm_state >= TRUSTED_TOUCH_PVM_STATE_MAX) {
  655. pr_err("Invalid driver state: %d\n", vm_state);
  656. return;
  657. }
  658. switch (vm_state) {
  659. case PVM_IRQ_RELEASE_NOTIFIED:
  660. case PVM_ALL_RESOURCES_RELEASE_NOTIFIED:
  661. case PVM_IRQ_LENT:
  662. case PVM_IRQ_LENT_NOTIFIED:
  663. rc = gh_irq_reclaim(fts_data->vm_info->irq_label);
  664. if (rc)
  665. pr_err("failed to reclaim irq on pvm rc:%d\n", rc);
  666. case PVM_IRQ_RECLAIMED:
  667. case PVM_IOMEM_LENT:
  668. case PVM_IOMEM_LENT_NOTIFIED:
  669. case PVM_IOMEM_RELEASE_NOTIFIED:
  670. rc = gh_rm_mem_reclaim(fts_data->vm_info->vm_mem_handle, 0);
  671. if (rc)
  672. pr_err("failed to reclaim iomem on pvm rc:%d\n", rc);
  673. fts_data->vm_info->vm_mem_handle = 0;
  674. case PVM_IOMEM_RECLAIMED:
  675. case PVM_INTERRUPT_DISABLED:
  676. fts_irq_enable();
  677. case PVM_I2C_RESOURCE_ACQUIRED:
  678. case PVM_INTERRUPT_ENABLED:
  679. fts_ts_bus_put(fts_data);
  680. case TRUSTED_TOUCH_PVM_INIT:
  681. case PVM_I2C_RESOURCE_RELEASED:
  682. atomic_set(&fts_data->trusted_touch_enabled, 0);
  683. atomic_set(&fts_data->trusted_touch_transition, 0);
  684. }
  685. atomic_set(&fts_data->trusted_touch_abort_status, 0);
  686. fts_ts_trusted_touch_set_vm_state(fts_data, TRUSTED_TOUCH_PVM_INIT);
  687. }
  688. static int fts_ts_clk_prepare_enable(struct fts_ts_data *fts_data)
  689. {
  690. int ret;
  691. ret = clk_prepare_enable(fts_data->iface_clk);
  692. if (ret) {
  693. FTS_ERROR("error on clk_prepare_enable(iface_clk):%d\n", ret);
  694. return ret;
  695. }
  696. ret = clk_prepare_enable(fts_data->core_clk);
  697. if (ret) {
  698. clk_disable_unprepare(fts_data->iface_clk);
  699. FTS_ERROR("error clk_prepare_enable(core_clk):%d\n", ret);
  700. }
  701. return ret;
  702. }
  703. static void fts_ts_clk_disable_unprepare(struct fts_ts_data *fts_data)
  704. {
  705. clk_disable_unprepare(fts_data->core_clk);
  706. clk_disable_unprepare(fts_data->iface_clk);
  707. }
  708. static int fts_ts_bus_get(struct fts_ts_data *fts_data)
  709. {
  710. int rc = 0;
  711. struct device *dev = NULL;
  712. cancel_work_sync(&fts_data->resume_work);
  713. reinit_completion(&fts_data->trusted_touch_powerdown);
  714. fts_ts_enable_reg(fts_data, true);
  715. if (fts_data->bus_type == BUS_TYPE_I2C)
  716. dev = fts_data->client->adapter->dev.parent;
  717. else
  718. dev = fts_data->spi->master->dev.parent;
  719. mutex_lock(&fts_data->fts_clk_io_ctrl_mutex);
  720. rc = pm_runtime_get_sync(dev);
  721. if (rc >= 0 && fts_data->core_clk != NULL &&
  722. fts_data->iface_clk != NULL) {
  723. rc = fts_ts_clk_prepare_enable(fts_data);
  724. if (rc)
  725. pm_runtime_put_sync(dev);
  726. }
  727. mutex_unlock(&fts_data->fts_clk_io_ctrl_mutex);
  728. return rc;
  729. }
  730. static void fts_ts_bus_put(struct fts_ts_data *fts_data)
  731. {
  732. struct device *dev = NULL;
  733. if (fts_data->bus_type == BUS_TYPE_I2C)
  734. dev = fts_data->client->adapter->dev.parent;
  735. else
  736. dev = fts_data->spi->master->dev.parent;
  737. mutex_lock(&fts_data->fts_clk_io_ctrl_mutex);
  738. if (fts_data->core_clk != NULL && fts_data->iface_clk != NULL)
  739. fts_ts_clk_disable_unprepare(fts_data);
  740. pm_runtime_put_sync(dev);
  741. mutex_unlock(&fts_data->fts_clk_io_ctrl_mutex);
  742. complete(&fts_data->trusted_touch_powerdown);
  743. fts_ts_enable_reg(fts_data, false);
  744. }
  745. static struct gh_notify_vmid_desc *fts_ts_vm_get_vmid(gh_vmid_t vmid)
  746. {
  747. struct gh_notify_vmid_desc *vmid_desc;
  748. vmid_desc = kzalloc(offsetof(struct gh_notify_vmid_desc,
  749. vmid_entries[1]), GFP_KERNEL);
  750. if (!vmid_desc)
  751. return ERR_PTR(ENOMEM);
  752. vmid_desc->n_vmid_entries = 1;
  753. vmid_desc->vmid_entries[0].vmid = vmid;
  754. return vmid_desc;
  755. }
  756. static void fts_trusted_touch_pvm_vm_mode_disable(struct fts_ts_data *fts_data)
  757. {
  758. int rc = 0;
  759. atomic_set(&fts_data->trusted_touch_transition, 1);
  760. if (atomic_read(&fts_data->trusted_touch_abort_status)) {
  761. fts_ts_trusted_touch_abort_pvm(fts_data);
  762. return;
  763. }
  764. if (fts_ts_trusted_touch_get_vm_state(fts_data) != PVM_ALL_RESOURCES_RELEASE_NOTIFIED)
  765. pr_err("all release notifications are not received yet\n");
  766. rc = gh_rm_mem_reclaim(fts_data->vm_info->vm_mem_handle, 0);
  767. if (rc) {
  768. pr_err("Trusted touch VM mem reclaim failed rc:%d\n", rc);
  769. goto error;
  770. }
  771. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_IOMEM_RECLAIMED);
  772. fts_data->vm_info->vm_mem_handle = 0;
  773. pr_debug("vm mem reclaim succeded!\n");
  774. rc = gh_irq_reclaim(fts_data->vm_info->irq_label);
  775. if (rc) {
  776. pr_err("failed to reclaim irq on pvm rc:%d\n", rc);
  777. goto error;
  778. }
  779. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_IRQ_RECLAIMED);
  780. pr_debug("vm irq reclaim succeded!\n");
  781. fts_irq_enable();
  782. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_INTERRUPT_ENABLED);
  783. fts_ts_bus_put(fts_data);
  784. atomic_set(&fts_data->trusted_touch_transition, 0);
  785. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_I2C_RESOURCE_RELEASED);
  786. fts_ts_trusted_touch_set_vm_state(fts_data, TRUSTED_TOUCH_PVM_INIT);
  787. atomic_set(&fts_data->trusted_touch_enabled, 0);
  788. pr_info("trusted touch disabled\n");
  789. return;
  790. error:
  791. fts_ts_trusted_touch_abort_handler(fts_data,
  792. TRUSTED_TOUCH_EVENT_RECLAIM_FAILURE);
  793. }
  794. static void fts_ts_vm_irq_on_release_callback(void *data,
  795. unsigned long notif_type,
  796. enum gh_irq_label label)
  797. {
  798. struct fts_ts_data *fts_data = data;
  799. if (notif_type != GH_RM_NOTIF_VM_IRQ_RELEASED) {
  800. pr_err("invalid notification type\n");
  801. return;
  802. }
  803. if (fts_ts_trusted_touch_get_vm_state(fts_data) == PVM_IOMEM_RELEASE_NOTIFIED)
  804. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_ALL_RESOURCES_RELEASE_NOTIFIED);
  805. else
  806. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_IRQ_RELEASE_NOTIFIED);
  807. }
  808. static void fts_ts_vm_mem_on_release_handler(enum gh_mem_notifier_tag tag,
  809. unsigned long notif_type, void *entry_data, void *notif_msg)
  810. {
  811. struct gh_rm_notif_mem_released_payload *release_payload;
  812. struct trusted_touch_vm_info *vm_info;
  813. struct fts_ts_data *fts_data;
  814. fts_data = (struct fts_ts_data *)entry_data;
  815. vm_info = fts_data->vm_info;
  816. if (!vm_info) {
  817. pr_err(" Invalid vm_info\n");
  818. return;
  819. }
  820. if (notif_type != GH_RM_NOTIF_MEM_RELEASED) {
  821. pr_err(" Invalid notification type\n");
  822. return;
  823. }
  824. if (tag != vm_info->mem_tag) {
  825. pr_err(" Invalid tag\n");
  826. return;
  827. }
  828. if (!entry_data || !notif_msg) {
  829. pr_err(" Invalid data or notification message\n");
  830. return;
  831. }
  832. release_payload = (struct gh_rm_notif_mem_released_payload *)notif_msg;
  833. if (release_payload->mem_handle != vm_info->vm_mem_handle) {
  834. pr_err("Invalid mem handle detected\n");
  835. return;
  836. }
  837. if (fts_ts_trusted_touch_get_vm_state(fts_data) == PVM_IRQ_RELEASE_NOTIFIED)
  838. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_ALL_RESOURCES_RELEASE_NOTIFIED);
  839. else
  840. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_IOMEM_RELEASE_NOTIFIED);
  841. }
  842. static int fts_ts_vm_mem_lend(struct fts_ts_data *fts_data)
  843. {
  844. struct gh_acl_desc *acl_desc;
  845. struct gh_sgl_desc *sgl_desc;
  846. struct gh_notify_vmid_desc *vmid_desc;
  847. gh_memparcel_handle_t mem_handle;
  848. gh_vmid_t trusted_vmid;
  849. int rc = 0;
  850. acl_desc = fts_ts_vm_get_acl(GH_TRUSTED_VM);
  851. if (IS_ERR(acl_desc)) {
  852. pr_err("Failed to get acl of IO memories for Trusted touch\n");
  853. rc = PTR_ERR(acl_desc);
  854. return rc;
  855. }
  856. sgl_desc = fts_ts_vm_get_sgl(fts_data->vm_info);
  857. if (IS_ERR(sgl_desc)) {
  858. pr_err("Failed to get sgl of IO memories for Trusted touch\n");
  859. rc = PTR_ERR(sgl_desc);
  860. goto sgl_error;
  861. }
  862. rc = gh_rm_mem_lend(GH_RM_MEM_TYPE_IO, 0, TRUSTED_TOUCH_MEM_LABEL,
  863. acl_desc, sgl_desc, NULL, &mem_handle);
  864. if (rc) {
  865. pr_err("Failed to lend IO memories for Trusted touch rc:%d\n",
  866. rc);
  867. goto error;
  868. }
  869. pr_info("vm mem lend succeded\n");
  870. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_IOMEM_LENT);
  871. gh_rm_get_vmid(GH_TRUSTED_VM, &trusted_vmid);
  872. vmid_desc = fts_ts_vm_get_vmid(trusted_vmid);
  873. rc = gh_rm_mem_notify(mem_handle, GH_RM_MEM_NOTIFY_RECIPIENT_SHARED,
  874. fts_data->vm_info->mem_tag, vmid_desc);
  875. if (rc) {
  876. pr_err("Failed to notify mem lend to hypervisor rc:%d\n", rc);
  877. goto vmid_error;
  878. }
  879. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_IOMEM_LENT_NOTIFIED);
  880. fts_data->vm_info->vm_mem_handle = mem_handle;
  881. vmid_error:
  882. kfree(vmid_desc);
  883. error:
  884. kfree(sgl_desc);
  885. sgl_error:
  886. kfree(acl_desc);
  887. return rc;
  888. }
  889. static int fts_ts_trusted_touch_pvm_vm_mode_enable(struct fts_ts_data *fts_data)
  890. {
  891. int rc = 0;
  892. struct trusted_touch_vm_info *vm_info = fts_data->vm_info;
  893. atomic_set(&fts_data->trusted_touch_transition, 1);
  894. mutex_lock(&fts_data->transition_lock);
  895. if (fts_data->suspended) {
  896. FTS_ERROR("Invalid power state for operation\n");
  897. atomic_set(&fts_data->trusted_touch_transition, 0);
  898. rc = -EPERM;
  899. goto error;
  900. }
  901. /* i2c session start and resource acquire */
  902. if (fts_ts_bus_get(fts_data) < 0) {
  903. FTS_ERROR("fts_ts_bus_get failed\n");
  904. rc = -EIO;
  905. goto error;
  906. }
  907. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_I2C_RESOURCE_ACQUIRED);
  908. /* flush pending interurpts from FIFO */
  909. fts_irq_disable();
  910. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_INTERRUPT_DISABLED);
  911. fts_release_all_finger();
  912. rc = fts_ts_vm_mem_lend(fts_data);
  913. if (rc) {
  914. pr_err("Failed to lend memory\n");
  915. goto abort_handler;
  916. }
  917. pr_debug("vm mem lend succeded\n");
  918. rc = gh_irq_lend_v2(vm_info->irq_label, vm_info->vm_name,
  919. fts_data->irq, &fts_ts_vm_irq_on_release_callback, fts_data);
  920. if (rc) {
  921. pr_err("Failed to lend irq\n");
  922. goto abort_handler;
  923. }
  924. pr_debug("vm irq lend succeded for irq:%d\n", fts_data->irq);
  925. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_IRQ_LENT);
  926. rc = gh_irq_lend_notify(vm_info->irq_label);
  927. if (rc) {
  928. pr_err("Failed to notify irq\n");
  929. goto abort_handler;
  930. }
  931. fts_ts_trusted_touch_set_vm_state(fts_data, PVM_IRQ_LENT_NOTIFIED);
  932. mutex_unlock(&fts_data->transition_lock);
  933. atomic_set(&fts_data->trusted_touch_transition, 0);
  934. atomic_set(&fts_data->trusted_touch_enabled, 1);
  935. pr_info("trusted touch enabled\n");
  936. return rc;
  937. abort_handler:
  938. fts_ts_trusted_touch_abort_handler(fts_data, TRUSTED_TOUCH_EVENT_LEND_FAILURE);
  939. error:
  940. mutex_unlock(&fts_data->transition_lock);
  941. return rc;
  942. }
  943. int fts_ts_handle_trusted_touch_pvm(struct fts_ts_data *fts_data, int value)
  944. {
  945. int err = 0;
  946. switch (value) {
  947. case 0:
  948. if (atomic_read(&fts_data->trusted_touch_enabled) == 0 &&
  949. (atomic_read(&fts_data->trusted_touch_abort_status) == 0)) {
  950. pr_err("Trusted touch is already disabled\n");
  951. break;
  952. }
  953. if (atomic_read(&fts_data->trusted_touch_mode) ==
  954. TRUSTED_TOUCH_VM_MODE) {
  955. fts_trusted_touch_pvm_vm_mode_disable(fts_data);
  956. } else {
  957. pr_err("Unsupported trusted touch mode\n");
  958. }
  959. break;
  960. case 1:
  961. if (atomic_read(&fts_data->trusted_touch_enabled)) {
  962. pr_err("Trusted touch usecase underway\n");
  963. err = -EBUSY;
  964. break;
  965. }
  966. if (atomic_read(&fts_data->trusted_touch_mode) ==
  967. TRUSTED_TOUCH_VM_MODE) {
  968. err = fts_ts_trusted_touch_pvm_vm_mode_enable(fts_data);
  969. } else {
  970. pr_err("Unsupported trusted touch mode\n");
  971. }
  972. break;
  973. default:
  974. FTS_ERROR("unsupported value: %lu\n", value);
  975. err = -EINVAL;
  976. break;
  977. }
  978. return err;
  979. }
  980. #endif
  981. static void fts_ts_trusted_touch_event_notify(struct fts_ts_data *fts_data, int event)
  982. {
  983. atomic_set(&fts_data->trusted_touch_event, event);
  984. sysfs_notify(&fts_data->dev->kobj, NULL, "trusted_touch_event");
  985. }
  986. static void fts_ts_trusted_touch_abort_handler(struct fts_ts_data *fts_data, int error)
  987. {
  988. atomic_set(&fts_data->trusted_touch_abort_status, error);
  989. pr_err("TUI session aborted with failure:%d\n", error);
  990. fts_ts_trusted_touch_event_notify(fts_data, error);
  991. #ifdef CONFIG_ARCH_QTI_VM
  992. pr_err("Resetting touch controller\n");
  993. if (fts_ts_trusted_touch_get_vm_state(fts_data) >= TVM_IOMEM_ACCEPTED &&
  994. error == TRUSTED_TOUCH_EVENT_I2C_FAILURE) {
  995. pr_err("Resetting touch controller\n");
  996. fts_ts_trusted_touch_reset_gpio_toggle(fts_data);
  997. }
  998. #endif
  999. }
  1000. static int fts_ts_vm_init(struct fts_ts_data *fts_data)
  1001. {
  1002. int rc = 0;
  1003. struct trusted_touch_vm_info *vm_info;
  1004. void *mem_cookie;
  1005. rc = fts_ts_populate_vm_info(fts_data);
  1006. if (rc) {
  1007. pr_err("Cannot setup vm pipeline\n");
  1008. rc = -EINVAL;
  1009. goto fail;
  1010. }
  1011. vm_info = fts_data->vm_info;
  1012. #ifdef CONFIG_ARCH_QTI_VM
  1013. mem_cookie = gh_mem_notifier_register(vm_info->mem_tag,
  1014. fts_ts_vm_mem_on_lend_handler, fts_data);
  1015. if (!mem_cookie) {
  1016. pr_err("Failed to register on lend mem notifier\n");
  1017. rc = -EINVAL;
  1018. goto init_fail;
  1019. }
  1020. vm_info->mem_cookie = mem_cookie;
  1021. rc = gh_irq_wait_for_lend_v2(vm_info->irq_label, GH_PRIMARY_VM,
  1022. &fts_ts_vm_irq_on_lend_callback, fts_data);
  1023. fts_ts_trusted_touch_set_vm_state(fts_data, TRUSTED_TOUCH_TVM_INIT);
  1024. #else
  1025. mem_cookie = gh_mem_notifier_register(vm_info->mem_tag,
  1026. fts_ts_vm_mem_on_release_handler, fts_data);
  1027. if (!mem_cookie) {
  1028. pr_err("Failed to register on release mem notifier\n");
  1029. rc = -EINVAL;
  1030. goto init_fail;
  1031. }
  1032. vm_info->mem_cookie = mem_cookie;
  1033. fts_ts_trusted_touch_set_vm_state(fts_data, TRUSTED_TOUCH_PVM_INIT);
  1034. #endif
  1035. return rc;
  1036. init_fail:
  1037. fts_ts_vm_deinit(fts_data);
  1038. fail:
  1039. return rc;
  1040. }
  1041. static void fts_ts_dt_parse_trusted_touch_info(struct fts_ts_data *fts_data)
  1042. {
  1043. struct device_node *np = fts_data->dev->of_node;
  1044. int rc = 0;
  1045. const char *selection;
  1046. const char *environment;
  1047. rc = of_property_read_string(np, "focaltech,trusted-touch-mode",
  1048. &selection);
  1049. if (rc) {
  1050. dev_warn(fts_data->dev,
  1051. "%s: No trusted touch mode selection made\n", __func__);
  1052. atomic_set(&fts_data->trusted_touch_mode,
  1053. TRUSTED_TOUCH_MODE_NONE);
  1054. return;
  1055. }
  1056. if (!strcmp(selection, "vm_mode")) {
  1057. atomic_set(&fts_data->trusted_touch_mode,
  1058. TRUSTED_TOUCH_VM_MODE);
  1059. pr_err("Selected trusted touch mode to VM mode\n");
  1060. } else {
  1061. atomic_set(&fts_data->trusted_touch_mode,
  1062. TRUSTED_TOUCH_MODE_NONE);
  1063. pr_err("Invalid trusted_touch mode\n");
  1064. }
  1065. rc = of_property_read_string(np, "focaltech,touch-environment",
  1066. &environment);
  1067. if (rc) {
  1068. dev_warn(fts_data->dev,
  1069. "%s: No trusted touch mode environment\n", __func__);
  1070. }
  1071. fts_data->touch_environment = environment;
  1072. pr_err("Trusted touch environment:%s\n",
  1073. fts_data->touch_environment);
  1074. }
  1075. static void fts_ts_trusted_touch_init(struct fts_ts_data *fts_data)
  1076. {
  1077. int rc = 0;
  1078. atomic_set(&fts_data->trusted_touch_initialized, 0);
  1079. fts_ts_dt_parse_trusted_touch_info(fts_data);
  1080. if (atomic_read(&fts_data->trusted_touch_mode) ==
  1081. TRUSTED_TOUCH_MODE_NONE)
  1082. return;
  1083. init_completion(&fts_data->trusted_touch_powerdown);
  1084. /* Get clocks */
  1085. fts_data->core_clk = devm_clk_get(fts_data->dev->parent,
  1086. "m-ahb");
  1087. if (IS_ERR(fts_data->core_clk)) {
  1088. fts_data->core_clk = NULL;
  1089. dev_warn(fts_data->dev,
  1090. "%s: core_clk is not defined\n", __func__);
  1091. }
  1092. fts_data->iface_clk = devm_clk_get(fts_data->dev->parent,
  1093. "se-clk");
  1094. if (IS_ERR(fts_data->iface_clk)) {
  1095. fts_data->iface_clk = NULL;
  1096. dev_warn(fts_data->dev,
  1097. "%s: iface_clk is not defined\n", __func__);
  1098. }
  1099. if (atomic_read(&fts_data->trusted_touch_mode) ==
  1100. TRUSTED_TOUCH_VM_MODE) {
  1101. rc = fts_ts_vm_init(fts_data);
  1102. if (rc)
  1103. pr_err("Failed to init VM\n");
  1104. }
  1105. atomic_set(&fts_data->trusted_touch_initialized, 1);
  1106. }
  1107. #endif
  1108. /*****************************************************************************
  1109. * Name: fts_wait_tp_to_valid
  1110. * Brief: Read chip id until TP FW become valid(Timeout: TIMEOUT_READ_REG),
  1111. * need call when reset/power on/resume...
  1112. * Input:
  1113. * Output:
  1114. * Return: return 0 if tp valid, otherwise return error code
  1115. *****************************************************************************/
  1116. int fts_wait_tp_to_valid(void)
  1117. {
  1118. int ret = 0;
  1119. int cnt = 0;
  1120. u8 idh = 0;
  1121. u8 idl = 0;
  1122. u8 chip_idh = fts_data->ic_info.ids.chip_idh;
  1123. u8 chip_idl = fts_data->ic_info.ids.chip_idl;
  1124. do {
  1125. ret = fts_read_reg(FTS_REG_CHIP_ID, &idh);
  1126. ret = fts_read_reg(FTS_REG_CHIP_ID2, &idl);
  1127. if ((ret < 0) || (idh != chip_idh) || (idl != chip_idl)) {
  1128. FTS_DEBUG("TP Not Ready,ReadData:0x%02x%02x", idh, idl);
  1129. } else if ((idh == chip_idh) && (idl == chip_idl)) {
  1130. FTS_INFO("TP Ready,Device ID:0x%02x%02x", idh, idl);
  1131. return 0;
  1132. }
  1133. cnt++;
  1134. msleep(INTERVAL_READ_REG);
  1135. } while ((cnt * INTERVAL_READ_REG) < TIMEOUT_READ_REG);
  1136. return -EIO;
  1137. }
  1138. /*****************************************************************************
  1139. * Name: fts_tp_state_recovery
  1140. * Brief: Need execute this function when reset
  1141. * Input:
  1142. * Output:
  1143. * Return:
  1144. *****************************************************************************/
  1145. void fts_tp_state_recovery(struct fts_ts_data *ts_data)
  1146. {
  1147. FTS_FUNC_ENTER();
  1148. /* wait tp stable */
  1149. fts_wait_tp_to_valid();
  1150. /* recover TP charger state 0x8B */
  1151. /* recover TP glove state 0xC0 */
  1152. /* recover TP cover state 0xC1 */
  1153. fts_ex_mode_recovery(ts_data);
  1154. /* recover TP gesture state 0xD0 */
  1155. fts_gesture_recovery(ts_data);
  1156. FTS_FUNC_EXIT();
  1157. }
  1158. int fts_reset_proc(int hdelayms)
  1159. {
  1160. FTS_DEBUG("tp reset");
  1161. gpio_direction_output(fts_data->pdata->reset_gpio, 0);
  1162. msleep(1);
  1163. gpio_direction_output(fts_data->pdata->reset_gpio, 1);
  1164. if (hdelayms) {
  1165. msleep(hdelayms);
  1166. }
  1167. return 0;
  1168. }
  1169. void fts_irq_disable(void)
  1170. {
  1171. unsigned long irqflags;
  1172. FTS_FUNC_ENTER();
  1173. spin_lock_irqsave(&fts_data->irq_lock, irqflags);
  1174. if (!fts_data->irq_disabled) {
  1175. #ifdef CONFIG_FTS_TRUSTED_TOUCH
  1176. if (atomic_read(&fts_data->trusted_touch_transition))
  1177. disable_irq_wake(fts_data->irq);
  1178. else
  1179. disable_irq_nosync(fts_data->irq);
  1180. #else
  1181. disable_irq_nosync(fts_data->irq);
  1182. #endif
  1183. fts_data->irq_disabled = true;
  1184. }
  1185. spin_unlock_irqrestore(&fts_data->irq_lock, irqflags);
  1186. FTS_FUNC_EXIT();
  1187. }
  1188. void fts_irq_enable(void)
  1189. {
  1190. unsigned long irqflags = 0;
  1191. FTS_FUNC_ENTER();
  1192. spin_lock_irqsave(&fts_data->irq_lock, irqflags);
  1193. if (fts_data->irq_disabled) {
  1194. #ifdef CONFIG_FTS_TRUSTED_TOUCH
  1195. if (atomic_read(&fts_data->trusted_touch_transition))
  1196. enable_irq_wake(fts_data->irq);
  1197. else
  1198. enable_irq(fts_data->irq);
  1199. #else
  1200. enable_irq(fts_data->irq);
  1201. #endif
  1202. fts_data->irq_disabled = false;
  1203. }
  1204. spin_unlock_irqrestore(&fts_data->irq_lock, irqflags);
  1205. FTS_FUNC_EXIT();
  1206. }
  1207. void fts_hid2std(void)
  1208. {
  1209. int ret = 0;
  1210. u8 buf[3] = {0xEB, 0xAA, 0x09};
  1211. if (fts_data->bus_type != BUS_TYPE_I2C)
  1212. return;
  1213. ret = fts_write(buf, 3);
  1214. if (ret < 0) {
  1215. FTS_ERROR("hid2std cmd write fail");
  1216. return;
  1217. }
  1218. msleep(20);
  1219. buf[0] = buf[1] = buf[2] = 0;
  1220. ret = fts_read(NULL, 0, buf, 3);
  1221. if (ret < 0)
  1222. FTS_ERROR("hid2std cmd read fail");
  1223. else if ((buf[0] == 0xEB) && (buf[1] == 0xAA) && (buf[2] == 0x08))
  1224. FTS_DEBUG("hidi2c change to stdi2c successful");
  1225. else
  1226. FTS_DEBUG("hidi2c change to stdi2c not support or fail");
  1227. }
  1228. static int fts_get_chip_types(
  1229. struct fts_ts_data *ts_data,
  1230. u8 id_h, u8 id_l, bool fw_valid)
  1231. {
  1232. int i = 0;
  1233. u32 ctype_entries = sizeof(ctype) / sizeof(struct ft_chip_t);
  1234. if ((0x0 == id_h) || (0x0 == id_l)) {
  1235. FTS_ERROR("id_h/id_l is 0");
  1236. return -EINVAL;
  1237. }
  1238. FTS_DEBUG("verify id:0x%02x%02x", id_h, id_l);
  1239. for (i = 0; i < ctype_entries; i++) {
  1240. if (VALID == fw_valid) {
  1241. if ((id_h == ctype[i].chip_idh) && (id_l == ctype[i].chip_idl))
  1242. break;
  1243. } else {
  1244. if (((id_h == ctype[i].rom_idh) && (id_l == ctype[i].rom_idl))
  1245. || ((id_h == ctype[i].pb_idh) && (id_l == ctype[i].pb_idl))
  1246. || ((id_h == ctype[i].bl_idh) && (id_l == ctype[i].bl_idl)))
  1247. break;
  1248. }
  1249. }
  1250. if (i >= ctype_entries)
  1251. return -ENODATA;
  1252. ts_data->ic_info.ids = ctype[i];
  1253. return 0;
  1254. }
  1255. static int fts_read_bootid(struct fts_ts_data *ts_data, u8 *id)
  1256. {
  1257. int ret = 0;
  1258. u8 chip_id[2] = { 0 };
  1259. u8 id_cmd[4] = { 0 };
  1260. u32 id_cmd_len = 0;
  1261. id_cmd[0] = FTS_CMD_START1;
  1262. id_cmd[1] = FTS_CMD_START2;
  1263. ret = fts_write(id_cmd, 2);
  1264. if (ret < 0) {
  1265. FTS_ERROR("start cmd write fail");
  1266. return ret;
  1267. }
  1268. msleep(FTS_CMD_START_DELAY);
  1269. id_cmd[0] = FTS_CMD_READ_ID;
  1270. id_cmd[1] = id_cmd[2] = id_cmd[3] = 0x00;
  1271. if (ts_data->ic_info.is_incell)
  1272. id_cmd_len = FTS_CMD_READ_ID_LEN_INCELL;
  1273. else
  1274. id_cmd_len = FTS_CMD_READ_ID_LEN;
  1275. ret = fts_read(id_cmd, id_cmd_len, chip_id, 2);
  1276. if ((ret < 0) || (0x0 == chip_id[0]) || (0x0 == chip_id[1])) {
  1277. FTS_ERROR("read boot id fail,read:0x%02x%02x", chip_id[0], chip_id[1]);
  1278. return -EIO;
  1279. }
  1280. id[0] = chip_id[0];
  1281. id[1] = chip_id[1];
  1282. return 0;
  1283. }
  1284. /*****************************************************************************
  1285. * Name: fts_get_ic_information
  1286. * Brief: read chip id to get ic information, after run the function, driver w-
  1287. * ill know which IC is it.
  1288. * If cant get the ic information, maybe not focaltech's touch IC, need
  1289. * unregister the driver
  1290. * Input:
  1291. * Output:
  1292. * Return: return 0 if get correct ic information, otherwise return error code
  1293. *****************************************************************************/
  1294. static int fts_get_ic_information(struct fts_ts_data *ts_data)
  1295. {
  1296. int ret = 0;
  1297. int cnt = 0;
  1298. u8 chip_id[2] = { 0 };
  1299. u32 type = ts_data->pdata->type;
  1300. ts_data->ic_info.is_incell = FTS_CHIP_IDC(type);
  1301. ts_data->ic_info.hid_supported = FTS_HID_SUPPORTTED(type);
  1302. do {
  1303. ret = fts_read_reg(FTS_REG_CHIP_ID, &chip_id[0]);
  1304. ret = fts_read_reg(FTS_REG_CHIP_ID2, &chip_id[1]);
  1305. if ((ret < 0) || (0x0 == chip_id[0]) || (0x0 == chip_id[1])) {
  1306. FTS_DEBUG("i2c read invalid, read:0x%02x%02x",
  1307. chip_id[0], chip_id[1]);
  1308. } else {
  1309. ret = fts_get_chip_types(ts_data, chip_id[0], chip_id[1], VALID);
  1310. if (!ret)
  1311. break;
  1312. else
  1313. FTS_DEBUG("TP not ready, read:0x%02x%02x",
  1314. chip_id[0], chip_id[1]);
  1315. }
  1316. cnt++;
  1317. msleep(INTERVAL_READ_REG);
  1318. } while ((cnt * INTERVAL_READ_REG) < TIMEOUT_READ_REG);
  1319. if ((cnt * INTERVAL_READ_REG) >= TIMEOUT_READ_REG) {
  1320. FTS_INFO("fw is invalid, need read boot id");
  1321. if (ts_data->ic_info.hid_supported) {
  1322. fts_hid2std();
  1323. }
  1324. ret = fts_read_bootid(ts_data, &chip_id[0]);
  1325. if (ret < 0) {
  1326. FTS_ERROR("read boot id fail");
  1327. return ret;
  1328. }
  1329. ret = fts_get_chip_types(ts_data, chip_id[0], chip_id[1], INVALID);
  1330. if (ret < 0) {
  1331. FTS_ERROR("can't get ic informaton");
  1332. return ret;
  1333. }
  1334. }
  1335. FTS_INFO("get ic information, chip id = 0x%02x%02x",
  1336. ts_data->ic_info.ids.chip_idh, ts_data->ic_info.ids.chip_idl);
  1337. return 0;
  1338. }
  1339. /*****************************************************************************
  1340. * Reprot related
  1341. *****************************************************************************/
  1342. static void fts_show_touch_buffer(u8 *data, int datalen)
  1343. {
  1344. int i = 0;
  1345. int count = 0;
  1346. char *tmpbuf = NULL;
  1347. tmpbuf = kzalloc(1024, GFP_KERNEL);
  1348. if (!tmpbuf) {
  1349. FTS_ERROR("tmpbuf zalloc fail");
  1350. return;
  1351. }
  1352. for (i = 0; i < datalen; i++) {
  1353. count += snprintf(tmpbuf + count, 1024 - count, "%02X,", data[i]);
  1354. if (count >= 1024)
  1355. break;
  1356. }
  1357. FTS_DEBUG("point buffer:%s", tmpbuf);
  1358. if (tmpbuf) {
  1359. kfree(tmpbuf);
  1360. tmpbuf = NULL;
  1361. }
  1362. }
  1363. void fts_release_all_finger(void)
  1364. {
  1365. struct input_dev *input_dev = fts_data->input_dev;
  1366. #if FTS_MT_PROTOCOL_B_EN
  1367. u32 finger_count = 0;
  1368. u32 max_touches = fts_data->pdata->max_touch_number;
  1369. #endif
  1370. FTS_FUNC_ENTER();
  1371. mutex_lock(&fts_data->report_mutex);
  1372. #if FTS_MT_PROTOCOL_B_EN
  1373. for (finger_count = 0; finger_count < max_touches; finger_count++) {
  1374. input_mt_slot(input_dev, finger_count);
  1375. input_mt_report_slot_state(input_dev, MT_TOOL_FINGER, false);
  1376. }
  1377. #else
  1378. input_mt_sync(input_dev);
  1379. #endif
  1380. input_report_key(input_dev, BTN_TOUCH, 0);
  1381. input_sync(input_dev);
  1382. fts_data->touchs = 0;
  1383. fts_data->key_state = 0;
  1384. mutex_unlock(&fts_data->report_mutex);
  1385. FTS_FUNC_EXIT();
  1386. }
  1387. /*****************************************************************************
  1388. * Name: fts_input_report_key
  1389. * Brief: process key events,need report key-event if key enable.
  1390. * if point's coordinate is in (x_dim-50,y_dim-50) ~ (x_dim+50,y_dim+50),
  1391. * need report it to key event.
  1392. * x_dim: parse from dts, means key x_coordinate, dimension:+-50
  1393. * y_dim: parse from dts, means key y_coordinate, dimension:+-50
  1394. * Input:
  1395. * Output:
  1396. * Return: return 0 if it's key event, otherwise return error code
  1397. *****************************************************************************/
  1398. static int fts_input_report_key(struct fts_ts_data *data, int index)
  1399. {
  1400. int i = 0;
  1401. int x = data->events[index].x;
  1402. int y = data->events[index].y;
  1403. int *x_dim = &data->pdata->key_x_coords[0];
  1404. int *y_dim = &data->pdata->key_y_coords[0];
  1405. if (!data->pdata->have_key) {
  1406. return -EINVAL;
  1407. }
  1408. for (i = 0; i < data->pdata->key_number; i++) {
  1409. if ((x >= x_dim[i] - FTS_KEY_DIM) && (x <= x_dim[i] + FTS_KEY_DIM) &&
  1410. (y >= y_dim[i] - FTS_KEY_DIM) && (y <= y_dim[i] + FTS_KEY_DIM)) {
  1411. if (EVENT_DOWN(data->events[index].flag)
  1412. && !(data->key_state & (1 << i))) {
  1413. input_report_key(data->input_dev, data->pdata->keys[i], 1);
  1414. data->key_state |= (1 << i);
  1415. FTS_DEBUG("Key%d(%d,%d) DOWN!", i, x, y);
  1416. } else if (EVENT_UP(data->events[index].flag)
  1417. && (data->key_state & (1 << i))) {
  1418. input_report_key(data->input_dev, data->pdata->keys[i], 0);
  1419. data->key_state &= ~(1 << i);
  1420. FTS_DEBUG("Key%d(%d,%d) Up!", i, x, y);
  1421. }
  1422. return 0;
  1423. }
  1424. }
  1425. return -EINVAL;
  1426. }
  1427. #if FTS_MT_PROTOCOL_B_EN
  1428. static int fts_input_report_b(struct fts_ts_data *data)
  1429. {
  1430. int i = 0;
  1431. int uppoint = 0;
  1432. int touchs = 0;
  1433. bool va_reported = false;
  1434. u32 max_touch_num = data->pdata->max_touch_number;
  1435. struct ts_event *events = data->events;
  1436. for (i = 0; i < data->touch_point; i++) {
  1437. if (fts_input_report_key(data, i) == 0)
  1438. continue;
  1439. va_reported = true;
  1440. input_mt_slot(data->input_dev, events[i].id);
  1441. if (EVENT_DOWN(events[i].flag)) {
  1442. input_mt_report_slot_state(data->input_dev, MT_TOOL_FINGER, true);
  1443. #if FTS_REPORT_PRESSURE_EN
  1444. if (events[i].p <= 0) {
  1445. events[i].p = 0x3f;
  1446. }
  1447. input_report_abs(data->input_dev, ABS_MT_PRESSURE, events[i].p);
  1448. #endif
  1449. if (events[i].area <= 0) {
  1450. events[i].area = 0x09;
  1451. }
  1452. input_report_abs(data->input_dev, ABS_MT_TOUCH_MAJOR, events[i].area);
  1453. input_report_abs(data->input_dev, ABS_MT_POSITION_X, events[i].x);
  1454. input_report_abs(data->input_dev, ABS_MT_POSITION_Y, events[i].y);
  1455. touchs |= BIT(events[i].id);
  1456. data->touchs |= BIT(events[i].id);
  1457. if ((data->log_level >= 2) ||
  1458. ((1 == data->log_level) && (FTS_TOUCH_DOWN == events[i].flag))) {
  1459. FTS_DEBUG("[B]P%d(%d, %d)[p:%d,tm:%d] DOWN!",
  1460. events[i].id,
  1461. events[i].x, events[i].y,
  1462. events[i].p, events[i].area);
  1463. }
  1464. } else {
  1465. uppoint++;
  1466. input_mt_report_slot_state(data->input_dev, MT_TOOL_FINGER, false);
  1467. data->touchs &= ~BIT(events[i].id);
  1468. if (data->log_level >= 1) {
  1469. FTS_DEBUG("[B]P%d UP!", events[i].id);
  1470. }
  1471. }
  1472. }
  1473. if (unlikely(data->touchs ^ touchs)) {
  1474. for (i = 0; i < max_touch_num; i++) {
  1475. if (BIT(i) & (data->touchs ^ touchs)) {
  1476. if (data->log_level >= 1) {
  1477. FTS_DEBUG("[B]P%d UP!", i);
  1478. }
  1479. va_reported = true;
  1480. input_mt_slot(data->input_dev, i);
  1481. input_mt_report_slot_state(data->input_dev, MT_TOOL_FINGER, false);
  1482. }
  1483. }
  1484. }
  1485. data->touchs = touchs;
  1486. if (va_reported) {
  1487. /* touchs==0, there's no point but key */
  1488. if (EVENT_NO_DOWN(data) || (!touchs)) {
  1489. if (data->log_level >= 1) {
  1490. FTS_DEBUG("[B]Points All Up!");
  1491. }
  1492. input_report_key(data->input_dev, BTN_TOUCH, 0);
  1493. } else {
  1494. input_report_key(data->input_dev, BTN_TOUCH, 1);
  1495. }
  1496. }
  1497. input_sync(data->input_dev);
  1498. return 0;
  1499. }
  1500. #else
  1501. static int fts_input_report_a(struct fts_ts_data *data)
  1502. {
  1503. int i = 0;
  1504. int touchs = 0;
  1505. bool va_reported = false;
  1506. struct ts_event *events = data->events;
  1507. for (i = 0; i < data->touch_point; i++) {
  1508. if (fts_input_report_key(data, i) == 0) {
  1509. continue;
  1510. }
  1511. va_reported = true;
  1512. if (EVENT_DOWN(events[i].flag)) {
  1513. input_report_abs(data->input_dev, ABS_MT_TRACKING_ID, events[i].id);
  1514. #if FTS_REPORT_PRESSURE_EN
  1515. if (events[i].p <= 0) {
  1516. events[i].p = 0x3f;
  1517. }
  1518. input_report_abs(data->input_dev, ABS_MT_PRESSURE, events[i].p);
  1519. #endif
  1520. if (events[i].area <= 0) {
  1521. events[i].area = 0x09;
  1522. }
  1523. input_report_abs(data->input_dev, ABS_MT_TOUCH_MAJOR, events[i].area);
  1524. input_report_abs(data->input_dev, ABS_MT_POSITION_X, events[i].x);
  1525. input_report_abs(data->input_dev, ABS_MT_POSITION_Y, events[i].y);
  1526. input_mt_sync(data->input_dev);
  1527. if ((data->log_level >= 2) ||
  1528. ((1 == data->log_level) && (FTS_TOUCH_DOWN == events[i].flag))) {
  1529. FTS_DEBUG("[A]P%d(%d, %d)[p:%d,tm:%d] DOWN!",
  1530. events[i].id,
  1531. events[i].x, events[i].y,
  1532. events[i].p, events[i].area);
  1533. }
  1534. touchs++;
  1535. }
  1536. }
  1537. /* last point down, current no point but key */
  1538. if (data->touchs && !touchs) {
  1539. va_reported = true;
  1540. }
  1541. data->touchs = touchs;
  1542. if (va_reported) {
  1543. if (EVENT_NO_DOWN(data)) {
  1544. if (data->log_level >= 1) {
  1545. FTS_DEBUG("[A]Points All Up!");
  1546. }
  1547. input_report_key(data->input_dev, BTN_TOUCH, 0);
  1548. input_mt_sync(data->input_dev);
  1549. } else {
  1550. input_report_key(data->input_dev, BTN_TOUCH, 1);
  1551. }
  1552. }
  1553. input_sync(data->input_dev);
  1554. return 0;
  1555. }
  1556. #endif
  1557. static int fts_read_touchdata(struct fts_ts_data *data)
  1558. {
  1559. int ret = 0;
  1560. u8 *buf = data->point_buf;
  1561. memset(buf, 0xFF, data->pnt_buf_size);
  1562. buf[0] = 0x01;
  1563. if (data->gesture_mode) {
  1564. if (0 == fts_gesture_readdata(data, NULL)) {
  1565. FTS_INFO("succuss to get gesture data in irq handler");
  1566. return 1;
  1567. }
  1568. }
  1569. ret = fts_read(buf, 1, buf + 1, data->pnt_buf_size - 1);
  1570. if (ret < 0) {
  1571. FTS_ERROR("read touchdata failed, ret:%d", ret);
  1572. return ret;
  1573. }
  1574. if (data->log_level >= 3) {
  1575. fts_show_touch_buffer(buf, data->pnt_buf_size);
  1576. }
  1577. return 0;
  1578. }
  1579. static int fts_read_parse_touchdata(struct fts_ts_data *data)
  1580. {
  1581. int ret = 0;
  1582. int i = 0;
  1583. u8 pointid = 0;
  1584. int base = 0;
  1585. struct ts_event *events = data->events;
  1586. int max_touch_num = data->pdata->max_touch_number;
  1587. u8 *buf = data->point_buf;
  1588. ret = fts_read_touchdata(data);
  1589. if (ret) {
  1590. return ret;
  1591. }
  1592. data->point_num = buf[FTS_TOUCH_POINT_NUM] & 0x0F;
  1593. data->touch_point = 0;
  1594. if (data->ic_info.is_incell) {
  1595. if ((data->point_num == 0x0F) && (buf[2] == 0xFF) && (buf[3] == 0xFF)
  1596. && (buf[4] == 0xFF) && (buf[5] == 0xFF) && (buf[6] == 0xFF)) {
  1597. FTS_DEBUG("touch buff is 0xff, need recovery state");
  1598. fts_release_all_finger();
  1599. fts_tp_state_recovery(data);
  1600. return -EIO;
  1601. }
  1602. }
  1603. if (data->point_num > max_touch_num) {
  1604. FTS_INFO("invalid point_num(%d)", data->point_num);
  1605. return -EIO;
  1606. }
  1607. for (i = 0; i < max_touch_num; i++) {
  1608. base = FTS_ONE_TCH_LEN * i;
  1609. pointid = (buf[FTS_TOUCH_ID_POS + base]) >> 4;
  1610. if (pointid >= FTS_MAX_ID)
  1611. break;
  1612. else if (pointid >= max_touch_num) {
  1613. FTS_ERROR("ID(%d) beyond max_touch_number", pointid);
  1614. return -EINVAL;
  1615. }
  1616. data->touch_point++;
  1617. events[i].x = ((buf[FTS_TOUCH_X_H_POS + base] & 0x0F) << 8) +
  1618. (buf[FTS_TOUCH_X_L_POS + base] & 0xFF);
  1619. events[i].y = ((buf[FTS_TOUCH_Y_H_POS + base] & 0x0F) << 8) +
  1620. (buf[FTS_TOUCH_Y_L_POS + base] & 0xFF);
  1621. events[i].flag = buf[FTS_TOUCH_EVENT_POS + base] >> 6;
  1622. events[i].id = buf[FTS_TOUCH_ID_POS + base] >> 4;
  1623. events[i].area = buf[FTS_TOUCH_AREA_POS + base] >> 4;
  1624. events[i].p = buf[FTS_TOUCH_PRE_POS + base];
  1625. if (EVENT_DOWN(events[i].flag) && (data->point_num == 0)) {
  1626. FTS_INFO("abnormal touch data from fw");
  1627. return -EIO;
  1628. }
  1629. }
  1630. if (data->touch_point == 0) {
  1631. FTS_INFO("no touch point information");
  1632. return -EIO;
  1633. }
  1634. return 0;
  1635. }
  1636. static void fts_irq_read_report(void)
  1637. {
  1638. int ret = 0;
  1639. struct fts_ts_data *ts_data = fts_data;
  1640. #if FTS_ESDCHECK_EN
  1641. fts_esdcheck_set_intr(1);
  1642. #endif
  1643. #if FTS_POINT_REPORT_CHECK_EN
  1644. fts_prc_queue_work(ts_data);
  1645. #endif
  1646. ret = fts_read_parse_touchdata(ts_data);
  1647. if (ret == 0) {
  1648. mutex_lock(&ts_data->report_mutex);
  1649. #if FTS_MT_PROTOCOL_B_EN
  1650. fts_input_report_b(ts_data);
  1651. #else
  1652. fts_input_report_a(ts_data);
  1653. #endif
  1654. mutex_unlock(&ts_data->report_mutex);
  1655. }
  1656. #if FTS_ESDCHECK_EN
  1657. fts_esdcheck_set_intr(0);
  1658. #endif
  1659. }
  1660. static irqreturn_t fts_irq_handler(int irq, void *data)
  1661. {
  1662. struct fts_ts_data *fts_data = data;
  1663. if (!fts_data) {
  1664. pr_err("%s: Invalid fts_data\n", __func__);
  1665. return IRQ_HANDLED;
  1666. }
  1667. if (!mutex_trylock(&fts_data->transition_lock))
  1668. return IRQ_HANDLED;
  1669. fts_irq_read_report();
  1670. mutex_unlock(&fts_data->transition_lock);
  1671. return IRQ_HANDLED;
  1672. }
  1673. static int fts_irq_registration(struct fts_ts_data *ts_data)
  1674. {
  1675. int ret = 0;
  1676. struct fts_ts_platform_data *pdata = ts_data->pdata;
  1677. #ifdef CONFIG_ARCH_QTI_VM
  1678. pdata->irq_gpio_flags = IRQF_TRIGGER_RISING | IRQF_ONESHOT;
  1679. FTS_INFO("irq:%d, flag:%x", ts_data->irq, pdata->irq_gpio_flags);
  1680. ret = request_threaded_irq(ts_data->irq, NULL, fts_irq_handler,
  1681. pdata->irq_gpio_flags,
  1682. FTS_DRIVER_NAME, ts_data);
  1683. #else
  1684. ts_data->irq = gpio_to_irq(pdata->irq_gpio);
  1685. pdata->irq_gpio_flags = IRQF_TRIGGER_FALLING | IRQF_ONESHOT;
  1686. FTS_INFO("irq:%d, flag:%x", ts_data->irq, pdata->irq_gpio_flags);
  1687. ret = request_threaded_irq(ts_data->irq, NULL, fts_irq_handler,
  1688. pdata->irq_gpio_flags,
  1689. FTS_DRIVER_NAME, ts_data);
  1690. #endif
  1691. return ret;
  1692. }
  1693. static int fts_input_init(struct fts_ts_data *ts_data)
  1694. {
  1695. int ret = 0;
  1696. int key_num = 0;
  1697. struct fts_ts_platform_data *pdata = ts_data->pdata;
  1698. struct input_dev *input_dev;
  1699. FTS_FUNC_ENTER();
  1700. input_dev = input_allocate_device();
  1701. if (!input_dev) {
  1702. FTS_ERROR("Failed to allocate memory for input device");
  1703. return -ENOMEM;
  1704. }
  1705. /* Init and register Input device */
  1706. input_dev->name = FTS_DRIVER_NAME;
  1707. if (ts_data->bus_type == BUS_TYPE_I2C)
  1708. input_dev->id.bustype = BUS_I2C;
  1709. else
  1710. input_dev->id.bustype = BUS_SPI;
  1711. input_dev->dev.parent = ts_data->dev;
  1712. input_set_drvdata(input_dev, ts_data);
  1713. __set_bit(EV_SYN, input_dev->evbit);
  1714. __set_bit(EV_ABS, input_dev->evbit);
  1715. __set_bit(EV_KEY, input_dev->evbit);
  1716. __set_bit(BTN_TOUCH, input_dev->keybit);
  1717. __set_bit(INPUT_PROP_DIRECT, input_dev->propbit);
  1718. if (pdata->have_key) {
  1719. FTS_INFO("set key capabilities");
  1720. for (key_num = 0; key_num < pdata->key_number; key_num++)
  1721. input_set_capability(input_dev, EV_KEY, pdata->keys[key_num]);
  1722. }
  1723. #if FTS_MT_PROTOCOL_B_EN
  1724. input_mt_init_slots(input_dev, pdata->max_touch_number, INPUT_MT_DIRECT);
  1725. #else
  1726. input_set_abs_params(input_dev, ABS_MT_TRACKING_ID, 0, 0x0F, 0, 0);
  1727. #endif
  1728. input_set_abs_params(input_dev, ABS_MT_POSITION_X, pdata->x_min, pdata->x_max, 0, 0);
  1729. input_set_abs_params(input_dev, ABS_MT_POSITION_Y, pdata->y_min, pdata->y_max, 0, 0);
  1730. input_set_abs_params(input_dev, ABS_MT_TOUCH_MAJOR, 0, 0xFF, 0, 0);
  1731. #if FTS_REPORT_PRESSURE_EN
  1732. input_set_abs_params(input_dev, ABS_MT_PRESSURE, 0, 0xFF, 0, 0);
  1733. #endif
  1734. ret = input_register_device(input_dev);
  1735. if (ret) {
  1736. FTS_ERROR("Input device registration failed");
  1737. input_set_drvdata(input_dev, NULL);
  1738. input_free_device(input_dev);
  1739. input_dev = NULL;
  1740. return ret;
  1741. }
  1742. ts_data->input_dev = input_dev;
  1743. FTS_FUNC_EXIT();
  1744. return 0;
  1745. }
  1746. static int fts_report_buffer_init(struct fts_ts_data *ts_data)
  1747. {
  1748. int point_num = 0;
  1749. int events_num = 0;
  1750. point_num = FTS_MAX_POINTS_SUPPORT;
  1751. ts_data->pnt_buf_size = FTS_TOUCH_DATA_LEN + FTS_GESTURE_DATA_LEN;
  1752. ts_data->point_buf = (u8 *)kzalloc(ts_data->pnt_buf_size + 1, GFP_KERNEL);
  1753. if (!ts_data->point_buf) {
  1754. FTS_ERROR("failed to alloc memory for point buf");
  1755. return -ENOMEM;
  1756. }
  1757. events_num = point_num * sizeof(struct ts_event);
  1758. ts_data->events = (struct ts_event *)kzalloc(events_num, GFP_KERNEL);
  1759. if (!ts_data->events) {
  1760. FTS_ERROR("failed to alloc memory for point events");
  1761. kfree_safe(ts_data->point_buf);
  1762. return -ENOMEM;
  1763. }
  1764. return 0;
  1765. }
  1766. #if FTS_POWER_SOURCE_CUST_EN
  1767. /*****************************************************************************
  1768. * Power Control
  1769. *****************************************************************************/
  1770. #if FTS_PINCTRL_EN
  1771. static int fts_pinctrl_init(struct fts_ts_data *ts)
  1772. {
  1773. int ret = 0;
  1774. ts->pinctrl = devm_pinctrl_get(ts->dev);
  1775. if (IS_ERR_OR_NULL(ts->pinctrl)) {
  1776. FTS_ERROR("Failed to get pinctrl, please check dts");
  1777. ret = PTR_ERR(ts->pinctrl);
  1778. goto err_pinctrl_get;
  1779. }
  1780. ts->pins_active = pinctrl_lookup_state(ts->pinctrl, "pmx_ts_active");
  1781. if (IS_ERR_OR_NULL(ts->pins_active)) {
  1782. FTS_ERROR("Pin state[active] not found");
  1783. ret = PTR_ERR(ts->pins_active);
  1784. goto err_pinctrl_lookup;
  1785. }
  1786. ts->pins_suspend = pinctrl_lookup_state(ts->pinctrl, "pmx_ts_suspend");
  1787. if (IS_ERR_OR_NULL(ts->pins_suspend)) {
  1788. FTS_ERROR("Pin state[suspend] not found");
  1789. ret = PTR_ERR(ts->pins_suspend);
  1790. goto err_pinctrl_lookup;
  1791. }
  1792. ts->pins_release = pinctrl_lookup_state(ts->pinctrl, "pmx_ts_release");
  1793. if (IS_ERR_OR_NULL(ts->pins_release)) {
  1794. FTS_ERROR("Pin state[release] not found");
  1795. ret = PTR_ERR(ts->pins_release);
  1796. }
  1797. return 0;
  1798. err_pinctrl_lookup:
  1799. if (ts->pinctrl) {
  1800. devm_pinctrl_put(ts->pinctrl);
  1801. }
  1802. err_pinctrl_get:
  1803. ts->pinctrl = NULL;
  1804. ts->pins_release = NULL;
  1805. ts->pins_suspend = NULL;
  1806. ts->pins_active = NULL;
  1807. return ret;
  1808. }
  1809. static int fts_pinctrl_select_normal(struct fts_ts_data *ts)
  1810. {
  1811. int ret = 0;
  1812. if (ts->pinctrl && ts->pins_active) {
  1813. ret = pinctrl_select_state(ts->pinctrl, ts->pins_active);
  1814. if (ret < 0) {
  1815. FTS_ERROR("Set normal pin state error:%d", ret);
  1816. }
  1817. }
  1818. return ret;
  1819. }
  1820. static int fts_pinctrl_select_suspend(struct fts_ts_data *ts)
  1821. {
  1822. int ret = 0;
  1823. if (ts->pinctrl && ts->pins_suspend) {
  1824. ret = pinctrl_select_state(ts->pinctrl, ts->pins_suspend);
  1825. if (ret < 0) {
  1826. FTS_ERROR("Set suspend pin state error:%d", ret);
  1827. }
  1828. }
  1829. return ret;
  1830. }
  1831. static int fts_pinctrl_select_release(struct fts_ts_data *ts)
  1832. {
  1833. int ret = 0;
  1834. if (ts->pinctrl) {
  1835. if (IS_ERR_OR_NULL(ts->pins_release)) {
  1836. devm_pinctrl_put(ts->pinctrl);
  1837. ts->pinctrl = NULL;
  1838. } else {
  1839. ret = pinctrl_select_state(ts->pinctrl, ts->pins_release);
  1840. if (ret < 0)
  1841. FTS_ERROR("Set gesture pin state error:%d", ret);
  1842. }
  1843. }
  1844. return ret;
  1845. }
  1846. #endif /* FTS_PINCTRL_EN */
  1847. static int fts_power_configure(struct fts_ts_data *ts_data, bool enable)
  1848. {
  1849. int ret = 0;
  1850. FTS_FUNC_ENTER();
  1851. if (enable) {
  1852. if (regulator_count_voltages(ts_data->vdd) > 0) {
  1853. ret = regulator_set_load(ts_data->vdd, FTS_LOAD_MAX_UA);
  1854. if (ret) {
  1855. FTS_ERROR("vdd regulator set_load failed ret=%d", ret);
  1856. return ret;
  1857. }
  1858. ret = regulator_set_voltage(ts_data->vdd, FTS_VTG_MIN_UV,
  1859. FTS_VTG_MAX_UV);
  1860. if (ret) {
  1861. FTS_ERROR("vdd regulator set_vtg failed ret=%d", ret);
  1862. goto err_vdd_load;
  1863. }
  1864. }
  1865. if (!IS_ERR_OR_NULL(ts_data->vcc_i2c)) {
  1866. if (regulator_count_voltages(ts_data->vcc_i2c) > 0) {
  1867. ret = regulator_set_load(ts_data->vcc_i2c, FTS_LOAD_AVDD_UA);
  1868. if (ret) {
  1869. FTS_ERROR("vcc_i2c regulator set_load failed ret=%d", ret);
  1870. goto err_vdd_load;
  1871. }
  1872. ret = regulator_set_voltage(ts_data->vcc_i2c,
  1873. FTS_I2C_VTG_MIN_UV,
  1874. FTS_I2C_VTG_MAX_UV);
  1875. if (ret) {
  1876. FTS_ERROR("vcc_i2c regulator set_vtg failed,ret=%d", ret);
  1877. goto err_vcc_load;
  1878. }
  1879. }
  1880. }
  1881. } else {
  1882. if (regulator_count_voltages(ts_data->vdd) > 0) {
  1883. ret = regulator_set_load(ts_data->vdd, FTS_LOAD_DISABLE_UA);
  1884. if (ret) {
  1885. FTS_ERROR("vdd regulator set_load failed ret=%d", ret);
  1886. return ret;
  1887. }
  1888. }
  1889. if (!IS_ERR_OR_NULL(ts_data->vcc_i2c)) {
  1890. if (regulator_count_voltages(ts_data->vcc_i2c) > 0) {
  1891. ret = regulator_set_load(ts_data->vcc_i2c, FTS_LOAD_DISABLE_UA);
  1892. if (ret) {
  1893. FTS_ERROR("vcc_i2c regulator set_load failed ret=%d", ret);
  1894. return ret;
  1895. }
  1896. }
  1897. }
  1898. }
  1899. FTS_FUNC_EXIT();
  1900. return ret;
  1901. err_vcc_load:
  1902. regulator_set_load(ts_data->vcc_i2c, FTS_LOAD_DISABLE_UA);
  1903. err_vdd_load:
  1904. regulator_set_load(ts_data->vdd, FTS_LOAD_DISABLE_UA);
  1905. return ret;
  1906. }
  1907. static int fts_ts_enable_reg(struct fts_ts_data *ts_data, bool enable)
  1908. {
  1909. int ret = 0;
  1910. if (IS_ERR_OR_NULL(ts_data->vdd)) {
  1911. FTS_ERROR("vdd is invalid");
  1912. return -EINVAL;
  1913. }
  1914. if (enable) {
  1915. fts_power_configure(ts_data, true);
  1916. ret = regulator_enable(ts_data->vdd);
  1917. if (ret)
  1918. FTS_ERROR("enable vdd regulator failed,ret=%d", ret);
  1919. if (!IS_ERR_OR_NULL(ts_data->vcc_i2c)) {
  1920. ret = regulator_enable(ts_data->vcc_i2c);
  1921. if (ret)
  1922. FTS_ERROR("enable vcc_i2c regulator failed,ret=%d", ret);
  1923. }
  1924. } else {
  1925. ret = regulator_disable(ts_data->vdd);
  1926. if (ret)
  1927. FTS_ERROR("disable vdd regulator failed,ret=%d", ret);
  1928. if (!IS_ERR_OR_NULL(ts_data->vcc_i2c)) {
  1929. ret = regulator_disable(ts_data->vcc_i2c);
  1930. if (ret)
  1931. FTS_ERROR("disable vcc_i2c regulator failed,ret=%d", ret);
  1932. }
  1933. fts_power_configure(ts_data, false);
  1934. }
  1935. return ret;
  1936. }
  1937. static int fts_power_source_ctrl(struct fts_ts_data *ts_data, int enable)
  1938. {
  1939. int ret = 0;
  1940. if (IS_ERR_OR_NULL(ts_data->vdd)) {
  1941. FTS_ERROR("vdd is invalid");
  1942. return -EINVAL;
  1943. }
  1944. FTS_FUNC_ENTER();
  1945. if (enable) {
  1946. if (ts_data->power_disabled) {
  1947. FTS_DEBUG("regulator enable !");
  1948. gpio_direction_output(ts_data->pdata->reset_gpio, 0);
  1949. msleep(1);
  1950. ret = fts_ts_enable_reg(ts_data, true);
  1951. if (ret)
  1952. FTS_ERROR("Touch reg enable failed\n");
  1953. ts_data->power_disabled = false;
  1954. }
  1955. } else {
  1956. if (!ts_data->power_disabled) {
  1957. FTS_DEBUG("regulator disable !");
  1958. gpio_direction_output(ts_data->pdata->reset_gpio, 0);
  1959. msleep(1);
  1960. ret = fts_ts_enable_reg(ts_data, false);
  1961. if (ret)
  1962. FTS_ERROR("Touch reg disable failed");
  1963. ts_data->power_disabled = true;
  1964. }
  1965. }
  1966. FTS_FUNC_EXIT();
  1967. return ret;
  1968. }
  1969. /*****************************************************************************
  1970. * Name: fts_power_source_init
  1971. * Brief: Init regulator power:vdd/vcc_io(if have), generally, no vcc_io
  1972. * vdd---->vdd-supply in dts, kernel will auto add "-supply" to parse
  1973. * Must be call after fts_gpio_configure() execute,because this function
  1974. * will operate reset-gpio which request gpio in fts_gpio_configure()
  1975. * Input:
  1976. * Output:
  1977. * Return: return 0 if init power successfully, otherwise return error code
  1978. *****************************************************************************/
  1979. static int fts_power_source_init(struct fts_ts_data *ts_data)
  1980. {
  1981. int ret = 0;
  1982. FTS_FUNC_ENTER();
  1983. ts_data->vdd = regulator_get(ts_data->dev, "vdd");
  1984. if (IS_ERR_OR_NULL(ts_data->vdd)) {
  1985. ret = PTR_ERR(ts_data->vdd);
  1986. FTS_ERROR("get vdd regulator failed,ret=%d", ret);
  1987. return ret;
  1988. }
  1989. ts_data->vcc_i2c = regulator_get(ts_data->dev, "vcc_i2c");
  1990. if (IS_ERR_OR_NULL(ts_data->vcc_i2c))
  1991. FTS_INFO("get vcc_i2c regulator failed");
  1992. #if FTS_PINCTRL_EN
  1993. fts_pinctrl_init(ts_data);
  1994. fts_pinctrl_select_normal(ts_data);
  1995. #endif
  1996. ts_data->power_disabled = true;
  1997. ret = fts_power_source_ctrl(ts_data, ENABLE);
  1998. if (ret) {
  1999. FTS_ERROR("fail to enable power(regulator)");
  2000. }
  2001. FTS_FUNC_EXIT();
  2002. return ret;
  2003. }
  2004. static int fts_power_source_exit(struct fts_ts_data *ts_data)
  2005. {
  2006. #if FTS_PINCTRL_EN
  2007. fts_pinctrl_select_release(ts_data);
  2008. #endif
  2009. fts_power_source_ctrl(ts_data, DISABLE);
  2010. if (!IS_ERR_OR_NULL(ts_data->vdd)) {
  2011. if (regulator_count_voltages(ts_data->vdd) > 0)
  2012. regulator_set_voltage(ts_data->vdd, 0, FTS_VTG_MAX_UV);
  2013. regulator_put(ts_data->vdd);
  2014. }
  2015. if (!IS_ERR_OR_NULL(ts_data->vcc_i2c)) {
  2016. if (regulator_count_voltages(ts_data->vcc_i2c) > 0)
  2017. regulator_set_voltage(ts_data->vcc_i2c, 0, FTS_I2C_VTG_MAX_UV);
  2018. regulator_put(ts_data->vcc_i2c);
  2019. }
  2020. return 0;
  2021. }
  2022. static int fts_power_source_suspend(struct fts_ts_data *ts_data)
  2023. {
  2024. int ret = 0;
  2025. #if FTS_PINCTRL_EN
  2026. fts_pinctrl_select_suspend(ts_data);
  2027. #endif
  2028. ret = fts_power_source_ctrl(ts_data, DISABLE);
  2029. if (ret < 0) {
  2030. FTS_ERROR("power off fail, ret=%d", ret);
  2031. }
  2032. return ret;
  2033. }
  2034. static int fts_power_source_resume(struct fts_ts_data *ts_data)
  2035. {
  2036. int ret = 0;
  2037. #if FTS_PINCTRL_EN
  2038. fts_pinctrl_select_normal(ts_data);
  2039. #endif
  2040. ret = fts_power_source_ctrl(ts_data, ENABLE);
  2041. if (ret < 0) {
  2042. FTS_ERROR("power on fail, ret=%d", ret);
  2043. }
  2044. return ret;
  2045. }
  2046. #endif /* FTS_POWER_SOURCE_CUST_EN */
  2047. static int fts_gpio_configure(struct fts_ts_data *data)
  2048. {
  2049. int ret = 0;
  2050. FTS_FUNC_ENTER();
  2051. /* request irq gpio */
  2052. if (gpio_is_valid(data->pdata->irq_gpio)) {
  2053. ret = gpio_request(data->pdata->irq_gpio, "fts_irq_gpio");
  2054. if (ret) {
  2055. FTS_ERROR("[GPIO]irq gpio request failed");
  2056. goto err_irq_gpio_req;
  2057. }
  2058. ret = gpio_direction_input(data->pdata->irq_gpio);
  2059. if (ret) {
  2060. FTS_ERROR("[GPIO]set_direction for irq gpio failed");
  2061. goto err_irq_gpio_dir;
  2062. }
  2063. }
  2064. /* request reset gpio */
  2065. if (gpio_is_valid(data->pdata->reset_gpio)) {
  2066. ret = gpio_request(data->pdata->reset_gpio, "fts_reset_gpio");
  2067. if (ret) {
  2068. FTS_ERROR("[GPIO]reset gpio request failed");
  2069. goto err_irq_gpio_dir;
  2070. }
  2071. ret = gpio_direction_output(data->pdata->reset_gpio, 1);
  2072. if (ret) {
  2073. FTS_ERROR("[GPIO]set_direction for reset gpio failed");
  2074. goto err_reset_gpio_dir;
  2075. }
  2076. }
  2077. FTS_FUNC_EXIT();
  2078. return 0;
  2079. err_reset_gpio_dir:
  2080. if (gpio_is_valid(data->pdata->reset_gpio))
  2081. gpio_free(data->pdata->reset_gpio);
  2082. err_irq_gpio_dir:
  2083. if (gpio_is_valid(data->pdata->irq_gpio))
  2084. gpio_free(data->pdata->irq_gpio);
  2085. err_irq_gpio_req:
  2086. FTS_FUNC_EXIT();
  2087. return ret;
  2088. }
  2089. static int fts_get_dt_coords(struct device *dev, char *name,
  2090. struct fts_ts_platform_data *pdata)
  2091. {
  2092. int ret = 0;
  2093. u32 coords[FTS_COORDS_ARR_SIZE] = { 0 };
  2094. struct property *prop;
  2095. struct device_node *np = dev->of_node;
  2096. int coords_size;
  2097. prop = of_find_property(np, name, NULL);
  2098. if (!prop)
  2099. return -EINVAL;
  2100. if (!prop->value)
  2101. return -ENODATA;
  2102. coords_size = prop->length / sizeof(u32);
  2103. if (coords_size != FTS_COORDS_ARR_SIZE) {
  2104. FTS_ERROR("invalid:%s, size:%d", name, coords_size);
  2105. return -EINVAL;
  2106. }
  2107. ret = of_property_read_u32_array(np, name, coords, coords_size);
  2108. if (ret < 0) {
  2109. FTS_ERROR("Unable to read %s, please check dts", name);
  2110. pdata->x_min = FTS_X_MIN_DISPLAY_DEFAULT;
  2111. pdata->y_min = FTS_Y_MIN_DISPLAY_DEFAULT;
  2112. pdata->x_max = FTS_X_MAX_DISPLAY_DEFAULT;
  2113. pdata->y_max = FTS_Y_MAX_DISPLAY_DEFAULT;
  2114. return -ENODATA;
  2115. } else {
  2116. pdata->x_min = coords[0];
  2117. pdata->y_min = coords[1];
  2118. pdata->x_max = coords[2];
  2119. pdata->y_max = coords[3];
  2120. }
  2121. FTS_INFO("display x(%d %d) y(%d %d)", pdata->x_min, pdata->x_max,
  2122. pdata->y_min, pdata->y_max);
  2123. return 0;
  2124. }
  2125. static int fts_parse_dt(struct device *dev, struct fts_ts_platform_data *pdata)
  2126. {
  2127. int ret = 0;
  2128. struct device_node *np = dev->of_node;
  2129. u32 temp_val = 0;
  2130. FTS_FUNC_ENTER();
  2131. ret = fts_get_dt_coords(dev, "focaltech,display-coords", pdata);
  2132. if (ret < 0)
  2133. FTS_ERROR("Unable to get display-coords");
  2134. /* key */
  2135. pdata->have_key = of_property_read_bool(np, "focaltech,have-key");
  2136. if (pdata->have_key) {
  2137. ret = of_property_read_u32(np, "focaltech,key-number", &pdata->key_number);
  2138. if (ret < 0)
  2139. FTS_ERROR("Key number undefined!");
  2140. ret = of_property_read_u32_array(np, "focaltech,keys",
  2141. pdata->keys, pdata->key_number);
  2142. if (ret < 0)
  2143. FTS_ERROR("Keys undefined!");
  2144. else if (pdata->key_number > FTS_MAX_KEYS)
  2145. pdata->key_number = FTS_MAX_KEYS;
  2146. ret = of_property_read_u32_array(np, "focaltech,key-x-coords",
  2147. pdata->key_x_coords,
  2148. pdata->key_number);
  2149. if (ret < 0)
  2150. FTS_ERROR("Key Y Coords undefined!");
  2151. ret = of_property_read_u32_array(np, "focaltech,key-y-coords",
  2152. pdata->key_y_coords,
  2153. pdata->key_number);
  2154. if (ret < 0)
  2155. FTS_ERROR("Key X Coords undefined!");
  2156. FTS_INFO("VK Number:%d, key:(%d,%d,%d), "
  2157. "coords:(%d,%d),(%d,%d),(%d,%d)",
  2158. pdata->key_number,
  2159. pdata->keys[0], pdata->keys[1], pdata->keys[2],
  2160. pdata->key_x_coords[0], pdata->key_y_coords[0],
  2161. pdata->key_x_coords[1], pdata->key_y_coords[1],
  2162. pdata->key_x_coords[2], pdata->key_y_coords[2]);
  2163. }
  2164. /* reset, irq gpio info */
  2165. pdata->reset_gpio = of_get_named_gpio_flags(np, "focaltech,reset-gpio",
  2166. 0, &pdata->reset_gpio_flags);
  2167. if (pdata->reset_gpio < 0)
  2168. FTS_ERROR("Unable to get reset_gpio");
  2169. pdata->irq_gpio = of_get_named_gpio_flags(np, "focaltech,irq-gpio",
  2170. 0, &pdata->irq_gpio_flags);
  2171. if (pdata->irq_gpio < 0)
  2172. FTS_ERROR("Unable to get irq_gpio");
  2173. ret = of_property_read_u32(np, "focaltech,max-touch-number", &temp_val);
  2174. if (ret < 0) {
  2175. FTS_ERROR("Unable to get max-touch-number, please check dts");
  2176. pdata->max_touch_number = FTS_MAX_POINTS_SUPPORT;
  2177. } else {
  2178. if (temp_val < 2)
  2179. pdata->max_touch_number = 2; /* max_touch_number must >= 2 */
  2180. else if (temp_val > FTS_MAX_POINTS_SUPPORT)
  2181. pdata->max_touch_number = FTS_MAX_POINTS_SUPPORT;
  2182. else
  2183. pdata->max_touch_number = temp_val;
  2184. }
  2185. FTS_INFO("max touch number:%d, irq gpio:%d, reset gpio:%d",
  2186. pdata->max_touch_number, pdata->irq_gpio, pdata->reset_gpio);
  2187. ret = of_property_read_u32(np, "focaltech,ic-type", &temp_val);
  2188. if (ret < 0)
  2189. pdata->type = _FT3518;
  2190. else
  2191. pdata->type = temp_val;
  2192. FTS_FUNC_EXIT();
  2193. return 0;
  2194. }
  2195. #if defined(CONFIG_DRM)
  2196. static void fts_resume_work(struct work_struct *work)
  2197. {
  2198. struct fts_ts_data *ts_data = container_of(work, struct fts_ts_data,
  2199. resume_work);
  2200. fts_ts_resume(ts_data->dev);
  2201. }
  2202. static void fts_ts_panel_notifier_callback(enum panel_event_notifier_tag tag,
  2203. struct panel_event_notification *notification, void *client_data)
  2204. {
  2205. struct fts_ts_data *ts_data = client_data;
  2206. if (!notification) {
  2207. pr_err("Invalid notification\n");
  2208. return;
  2209. }
  2210. FTS_DEBUG("Notification type:%d, early_trigger:%d",
  2211. notification->notif_type,
  2212. notification->notif_data.early_trigger);
  2213. switch (notification->notif_type) {
  2214. case DRM_PANEL_EVENT_UNBLANK:
  2215. if (notification->notif_data.early_trigger)
  2216. FTS_DEBUG("resume notification pre commit\n");
  2217. else
  2218. queue_work(fts_data->ts_workqueue, &fts_data->resume_work);
  2219. break;
  2220. case DRM_PANEL_EVENT_BLANK:
  2221. if (notification->notif_data.early_trigger) {
  2222. cancel_work_sync(&fts_data->resume_work);
  2223. fts_ts_suspend(ts_data->dev);
  2224. } else {
  2225. FTS_DEBUG("suspend notification post commit\n");
  2226. }
  2227. break;
  2228. case DRM_PANEL_EVENT_BLANK_LP:
  2229. FTS_DEBUG("received lp event\n");
  2230. break;
  2231. case DRM_PANEL_EVENT_FPS_CHANGE:
  2232. FTS_DEBUG("shashank:Received fps change old fps:%d new fps:%d\n",
  2233. notification->notif_data.old_fps,
  2234. notification->notif_data.new_fps);
  2235. break;
  2236. default:
  2237. FTS_DEBUG("notification serviced :%d\n",
  2238. notification->notif_type);
  2239. break;
  2240. }
  2241. }
  2242. #elif defined(CONFIG_FB)
  2243. static void fts_resume_work(struct work_struct *work)
  2244. {
  2245. struct fts_ts_data *ts_data = container_of(work, struct fts_ts_data,
  2246. resume_work);
  2247. fts_ts_resume(ts_data->dev);
  2248. }
  2249. static int fb_notifier_callback(struct notifier_block *self,
  2250. unsigned long event, void *data)
  2251. {
  2252. struct fb_event *evdata = data;
  2253. int *blank = NULL;
  2254. struct fts_ts_data *ts_data = container_of(self, struct fts_ts_data,
  2255. fb_notif);
  2256. if (!(event == FB_EARLY_EVENT_BLANK || event == FB_EVENT_BLANK)) {
  2257. FTS_INFO("event(%lu) do not need process\n", event);
  2258. return 0;
  2259. }
  2260. blank = evdata->data;
  2261. FTS_INFO("FB event:%lu,blank:%d", event, *blank);
  2262. switch (*blank) {
  2263. case FB_BLANK_UNBLANK:
  2264. if (FB_EARLY_EVENT_BLANK == event) {
  2265. FTS_INFO("resume: event = %lu, not care\n", event);
  2266. } else if (FB_EVENT_BLANK == event) {
  2267. queue_work(fts_data->ts_workqueue, &fts_data->resume_work);
  2268. }
  2269. break;
  2270. case FB_BLANK_POWERDOWN:
  2271. if (FB_EARLY_EVENT_BLANK == event) {
  2272. cancel_work_sync(&fts_data->resume_work);
  2273. fts_ts_suspend(ts_data->dev);
  2274. } else if (FB_EVENT_BLANK == event) {
  2275. FTS_INFO("suspend: event = %lu, not care\n", event);
  2276. }
  2277. break;
  2278. default:
  2279. FTS_INFO("FB BLANK(%d) do not need process\n", *blank);
  2280. break;
  2281. }
  2282. return 0;
  2283. }
  2284. #elif defined(CONFIG_HAS_EARLYSUSPEND)
  2285. static void fts_ts_early_suspend(struct early_suspend *handler)
  2286. {
  2287. struct fts_ts_data *ts_data = container_of(handler, struct fts_ts_data,
  2288. early_suspend);
  2289. fts_ts_suspend(ts_data->dev);
  2290. }
  2291. static void fts_ts_late_resume(struct early_suspend *handler)
  2292. {
  2293. struct fts_ts_data *ts_data = container_of(handler, struct fts_ts_data,
  2294. early_suspend);
  2295. fts_ts_resume(ts_data->dev);
  2296. }
  2297. #endif
  2298. static int fts_ts_probe_delayed(struct fts_ts_data *fts_data)
  2299. {
  2300. int ret = 0;
  2301. /* Avoid setting up hardware for TVM during probe */
  2302. #ifdef CONFIG_FTS_TRUSTED_TOUCH
  2303. #ifdef CONFIG_ARCH_QTI_VM
  2304. if (!atomic_read(&fts_data->delayed_vm_probe_pending)) {
  2305. atomic_set(&fts_data->delayed_vm_probe_pending, 1);
  2306. return 0;
  2307. }
  2308. goto tvm_setup;
  2309. #endif
  2310. #endif
  2311. ret = fts_gpio_configure(fts_data);
  2312. if (ret) {
  2313. FTS_ERROR("configure the gpios fail");
  2314. goto err_gpio_config;
  2315. }
  2316. #if FTS_POWER_SOURCE_CUST_EN
  2317. ret = fts_power_source_init(fts_data);
  2318. if (ret) {
  2319. FTS_ERROR("fail to get power(regulator)");
  2320. goto err_power_init;
  2321. }
  2322. #endif
  2323. fts_reset_proc(200);
  2324. ret = fts_get_ic_information(fts_data);
  2325. if (ret) {
  2326. FTS_ERROR("not focal IC, unregister driver");
  2327. goto err_irq_req;
  2328. }
  2329. #ifdef CONFIG_ARCH_QTI_VM
  2330. tvm_setup:
  2331. #endif
  2332. ret = fts_irq_registration(fts_data);
  2333. if (ret) {
  2334. FTS_ERROR("request irq failed");
  2335. #ifdef CONFIG_ARCH_QTI_VM
  2336. return ret;
  2337. #endif
  2338. goto err_irq_req;
  2339. }
  2340. #ifdef CONFIG_ARCH_QTI_VM
  2341. return ret;
  2342. #endif
  2343. ret = fts_fwupg_init(fts_data);
  2344. if (ret)
  2345. FTS_ERROR("init fw upgrade fail");
  2346. return 0;
  2347. err_irq_req:
  2348. if (gpio_is_valid(fts_data->pdata->reset_gpio))
  2349. gpio_free(fts_data->pdata->reset_gpio);
  2350. if (gpio_is_valid(fts_data->pdata->irq_gpio))
  2351. gpio_free(fts_data->pdata->irq_gpio);
  2352. #if FTS_POWER_SOURCE_CUST_EN
  2353. err_power_init:
  2354. fts_power_source_exit(fts_data);
  2355. #endif
  2356. err_gpio_config:
  2357. return ret;
  2358. }
  2359. static int fts_ts_probe_entry(struct fts_ts_data *ts_data)
  2360. {
  2361. int ret = 0;
  2362. int pdata_size = sizeof(struct fts_ts_platform_data);
  2363. FTS_FUNC_ENTER();
  2364. FTS_INFO("%s", FTS_DRIVER_VERSION);
  2365. ts_data->pdata = kzalloc(pdata_size, GFP_KERNEL);
  2366. if (!ts_data->pdata) {
  2367. FTS_ERROR("allocate memory for platform_data fail");
  2368. return -ENOMEM;
  2369. }
  2370. if (ts_data->dev->of_node) {
  2371. ret = fts_parse_dt(ts_data->dev, ts_data->pdata);
  2372. if (ret)
  2373. FTS_ERROR("device-tree parse fail");
  2374. } else {
  2375. if (ts_data->dev->platform_data) {
  2376. memcpy(ts_data->pdata, ts_data->dev->platform_data, pdata_size);
  2377. } else {
  2378. FTS_ERROR("platform_data is null");
  2379. return -ENODEV;
  2380. }
  2381. }
  2382. ts_data->ts_workqueue = create_singlethread_workqueue("fts_wq");
  2383. if (!ts_data->ts_workqueue) {
  2384. FTS_ERROR("create fts workqueue fail");
  2385. }
  2386. spin_lock_init(&ts_data->irq_lock);
  2387. mutex_init(&ts_data->report_mutex);
  2388. mutex_init(&ts_data->bus_lock);
  2389. mutex_init(&ts_data->transition_lock);
  2390. /* Init communication interface */
  2391. ret = fts_bus_init(ts_data);
  2392. if (ret) {
  2393. FTS_ERROR("bus initialize fail");
  2394. goto err_bus_init;
  2395. }
  2396. ret = fts_input_init(ts_data);
  2397. if (ret) {
  2398. FTS_ERROR("input initialize fail");
  2399. goto err_input_init;
  2400. }
  2401. ret = fts_report_buffer_init(ts_data);
  2402. if (ret) {
  2403. FTS_ERROR("report buffer init fail");
  2404. goto err_report_buffer;
  2405. }
  2406. ret = fts_create_apk_debug_channel(ts_data);
  2407. if (ret) {
  2408. FTS_ERROR("create apk debug node fail");
  2409. }
  2410. ret = fts_create_sysfs(ts_data);
  2411. if (ret) {
  2412. FTS_ERROR("create sysfs node fail");
  2413. }
  2414. #if FTS_POINT_REPORT_CHECK_EN
  2415. ret = fts_point_report_check_init(ts_data);
  2416. if (ret) {
  2417. FTS_ERROR("init point report check fail");
  2418. }
  2419. #endif
  2420. ret = fts_ex_mode_init(ts_data);
  2421. if (ret) {
  2422. FTS_ERROR("init glove/cover/charger fail");
  2423. }
  2424. ret = fts_gesture_init(ts_data);
  2425. if (ret) {
  2426. FTS_ERROR("init gesture fail");
  2427. }
  2428. #if FTS_ESDCHECK_EN
  2429. ret = fts_esdcheck_init(ts_data);
  2430. if (ret) {
  2431. FTS_ERROR("init esd check fail");
  2432. }
  2433. #endif
  2434. #ifdef CONFIG_FTS_TRUSTED_TOUCH
  2435. fts_ts_trusted_touch_init(ts_data);
  2436. mutex_init(&(ts_data->fts_clk_io_ctrl_mutex));
  2437. #endif
  2438. #ifndef CONFIG_ARCH_QTI_VM
  2439. if (ts_data->pdata->type == _FT8726) {
  2440. atomic_set(&ts_data->delayed_vm_probe_pending, 1);
  2441. ts_data->suspended = true;
  2442. } else {
  2443. ret = fts_ts_probe_delayed(ts_data);
  2444. if (ret) {
  2445. FTS_ERROR("Failed to enable resources\n");
  2446. goto err_probe_delayed;
  2447. }
  2448. }
  2449. #else
  2450. ret = fts_ts_probe_delayed(ts_data);
  2451. if (ret) {
  2452. FTS_ERROR("Failed to enable resources\n");
  2453. goto err_probe_delayed;
  2454. }
  2455. #endif
  2456. #if defined(CONFIG_DRM)
  2457. if (ts_data->ts_workqueue)
  2458. INIT_WORK(&ts_data->resume_work, fts_resume_work);
  2459. #ifdef CONFIG_FTS_TRUSTED_TOUCH
  2460. if (!strcmp(fts_data->touch_environment, "pvm"))
  2461. #else
  2462. if (active_panel)
  2463. #endif
  2464. fts_ts_register_for_panel_events(ts_data->dev->of_node, ts_data);
  2465. #elif defined(CONFIG_FB)
  2466. if (ts_data->ts_workqueue) {
  2467. INIT_WORK(&ts_data->resume_work, fts_resume_work);
  2468. }
  2469. ts_data->fb_notif.notifier_call = fb_notifier_callback;
  2470. ret = fb_register_client(&ts_data->fb_notif);
  2471. if (ret) {
  2472. FTS_ERROR("[FB]Unable to register fb_notifier: %d", ret);
  2473. }
  2474. #elif defined(CONFIG_HAS_EARLYSUSPEND)
  2475. ts_data->early_suspend.level = EARLY_SUSPEND_LEVEL_BLANK_SCREEN + FTS_SUSPEND_LEVEL;
  2476. ts_data->early_suspend.suspend = fts_ts_early_suspend;
  2477. ts_data->early_suspend.resume = fts_ts_late_resume;
  2478. register_early_suspend(&ts_data->early_suspend);
  2479. #endif
  2480. FTS_FUNC_EXIT();
  2481. return 0;
  2482. err_probe_delayed:
  2483. kfree_safe(ts_data->point_buf);
  2484. kfree_safe(ts_data->events);
  2485. err_report_buffer:
  2486. input_unregister_device(ts_data->input_dev);
  2487. err_input_init:
  2488. if (ts_data->ts_workqueue)
  2489. destroy_workqueue(ts_data->ts_workqueue);
  2490. err_bus_init:
  2491. kfree_safe(ts_data->bus_tx_buf);
  2492. kfree_safe(ts_data->bus_rx_buf);
  2493. kfree_safe(ts_data->pdata);
  2494. FTS_FUNC_EXIT();
  2495. return ret;
  2496. }
  2497. static int fts_ts_remove_entry(struct fts_ts_data *ts_data)
  2498. {
  2499. FTS_FUNC_ENTER();
  2500. #if FTS_POINT_REPORT_CHECK_EN
  2501. fts_point_report_check_exit(ts_data);
  2502. #endif
  2503. fts_release_apk_debug_channel(ts_data);
  2504. fts_remove_sysfs(ts_data);
  2505. fts_ex_mode_exit(ts_data);
  2506. fts_fwupg_exit(ts_data);
  2507. #if FTS_ESDCHECK_EN
  2508. fts_esdcheck_exit(ts_data);
  2509. #endif
  2510. fts_gesture_exit(ts_data);
  2511. fts_bus_exit(ts_data);
  2512. free_irq(ts_data->irq, ts_data);
  2513. input_unregister_device(ts_data->input_dev);
  2514. if (ts_data->ts_workqueue)
  2515. destroy_workqueue(ts_data->ts_workqueue);
  2516. #if defined(CONFIG_DRM)
  2517. if (active_panel && ts_data->notifier_cookie)
  2518. panel_event_notifier_unregister(ts_data->notifier_cookie);
  2519. #elif defined(CONFIG_FB)
  2520. if (fb_unregister_client(&ts_data->fb_notif))
  2521. FTS_ERROR("Error occurred while unregistering fb_notifier.");
  2522. #elif defined(CONFIG_HAS_EARLYSUSPEND)
  2523. unregister_early_suspend(&ts_data->early_suspend);
  2524. #endif
  2525. if (gpio_is_valid(ts_data->pdata->reset_gpio))
  2526. gpio_free(ts_data->pdata->reset_gpio);
  2527. if (gpio_is_valid(ts_data->pdata->irq_gpio))
  2528. gpio_free(ts_data->pdata->irq_gpio);
  2529. #if FTS_POWER_SOURCE_CUST_EN
  2530. fts_power_source_exit(ts_data);
  2531. #endif
  2532. kfree_safe(ts_data->point_buf);
  2533. kfree_safe(ts_data->events);
  2534. kfree_safe(ts_data->pdata);
  2535. kfree_safe(ts_data);
  2536. FTS_FUNC_EXIT();
  2537. return 0;
  2538. }
  2539. static int fts_ts_suspend(struct device *dev)
  2540. {
  2541. int ret = 0;
  2542. struct fts_ts_data *ts_data = fts_data;
  2543. FTS_FUNC_ENTER();
  2544. if (ts_data->suspended) {
  2545. FTS_INFO("Already in suspend state");
  2546. return 0;
  2547. }
  2548. if (ts_data->fw_loading) {
  2549. FTS_INFO("fw upgrade in process, can't suspend");
  2550. return 0;
  2551. }
  2552. #ifdef CONFIG_FTS_TRUSTED_TOUCH
  2553. if (atomic_read(&fts_data->trusted_touch_transition)
  2554. || atomic_read(&fts_data->trusted_touch_enabled))
  2555. wait_for_completion_interruptible(
  2556. &fts_data->trusted_touch_powerdown);
  2557. #endif
  2558. mutex_lock(&ts_data->transition_lock);
  2559. #if FTS_ESDCHECK_EN
  2560. fts_esdcheck_suspend();
  2561. #endif
  2562. if (ts_data->gesture_mode) {
  2563. fts_gesture_suspend(ts_data);
  2564. } else {
  2565. fts_irq_disable();
  2566. FTS_INFO("make TP enter into sleep mode");
  2567. ret = fts_write_reg(FTS_REG_POWER_MODE, FTS_REG_POWER_MODE_SLEEP);
  2568. if (ret < 0)
  2569. FTS_ERROR("set TP to sleep mode fail, ret=%d", ret);
  2570. if (!ts_data->ic_info.is_incell) {
  2571. #if FTS_POWER_SOURCE_CUST_EN
  2572. ret = fts_power_source_suspend(ts_data);
  2573. if (ret < 0) {
  2574. FTS_ERROR("power enter suspend fail");
  2575. }
  2576. #endif
  2577. }
  2578. }
  2579. fts_release_all_finger();
  2580. ts_data->suspended = true;
  2581. mutex_unlock(&ts_data->transition_lock);
  2582. FTS_FUNC_EXIT();
  2583. return 0;
  2584. }
  2585. static int fts_ts_resume(struct device *dev)
  2586. {
  2587. struct fts_ts_data *ts_data = fts_data;
  2588. int ret = 0;
  2589. FTS_FUNC_ENTER();
  2590. if (!ts_data->suspended) {
  2591. FTS_DEBUG("Already in awake state");
  2592. return 0;
  2593. }
  2594. #ifdef CONFIG_FTS_TRUSTED_TOUCH
  2595. if (atomic_read(&ts_data->trusted_touch_transition))
  2596. wait_for_completion_interruptible(
  2597. &ts_data->trusted_touch_powerdown);
  2598. #endif
  2599. if (ts_data->pdata->type == _FT8726 &&
  2600. atomic_read(&ts_data->delayed_vm_probe_pending)) {
  2601. ret = fts_ts_probe_delayed(ts_data);
  2602. if (ret) {
  2603. FTS_ERROR("Failed to enable resources\n");
  2604. return ret;
  2605. }
  2606. ts_data->suspended = false;
  2607. atomic_set(&ts_data->delayed_vm_probe_pending, 0);
  2608. return ret;
  2609. }
  2610. mutex_lock(&ts_data->transition_lock);
  2611. fts_release_all_finger();
  2612. if (!ts_data->ic_info.is_incell) {
  2613. #if FTS_POWER_SOURCE_CUST_EN
  2614. fts_power_source_resume(ts_data);
  2615. #endif
  2616. fts_reset_proc(200);
  2617. }
  2618. fts_wait_tp_to_valid();
  2619. fts_ex_mode_recovery(ts_data);
  2620. #if FTS_ESDCHECK_EN
  2621. fts_esdcheck_resume();
  2622. #endif
  2623. if (ts_data->gesture_mode) {
  2624. fts_gesture_resume(ts_data);
  2625. } else {
  2626. fts_irq_enable();
  2627. }
  2628. ts_data->suspended = false;
  2629. mutex_unlock(&ts_data->transition_lock);
  2630. FTS_FUNC_EXIT();
  2631. return 0;
  2632. }
  2633. /*****************************************************************************
  2634. * TP Driver
  2635. *****************************************************************************/
  2636. static int fts_ts_check_dt(struct device_node *np)
  2637. {
  2638. int i;
  2639. int count;
  2640. struct device_node *node;
  2641. struct drm_panel *panel;
  2642. count = of_count_phandle_with_args(np, "panel", NULL);
  2643. if (count <= 0)
  2644. return 0;
  2645. for (i = 0; i < count; i++) {
  2646. node = of_parse_phandle(np, "panel", i);
  2647. panel = of_drm_find_panel(node);
  2648. of_node_put(node);
  2649. if (!IS_ERR(panel)) {
  2650. active_panel = panel;
  2651. return 0;
  2652. }
  2653. }
  2654. return PTR_ERR(panel);
  2655. }
  2656. static int fts_ts_check_default_tp(struct device_node *dt, const char *prop)
  2657. {
  2658. const char **active_tp = NULL;
  2659. int count, tmp, score = 0;
  2660. const char *active;
  2661. int ret, i;
  2662. count = of_property_count_strings(dt->parent, prop);
  2663. if (count <= 0 || count > 3)
  2664. return -ENODEV;
  2665. active_tp = kcalloc(count, sizeof(char *), GFP_KERNEL);
  2666. if (!active_tp) {
  2667. FTS_ERROR("FTS alloc failed\n");
  2668. return -ENOMEM;
  2669. }
  2670. ret = of_property_read_string_array(dt->parent, prop,
  2671. active_tp, count);
  2672. if (ret < 0) {
  2673. FTS_ERROR("fail to read %s %d\n", prop, ret);
  2674. ret = -ENODEV;
  2675. goto out;
  2676. }
  2677. for (i = 0; i < count; i++) {
  2678. active = active_tp[i];
  2679. if (active != NULL) {
  2680. tmp = of_device_is_compatible(dt, active);
  2681. if (tmp > 0)
  2682. score++;
  2683. }
  2684. }
  2685. if (score <= 0) {
  2686. FTS_INFO("not match this driver\n");
  2687. ret = -ENODEV;
  2688. goto out;
  2689. }
  2690. ret = 0;
  2691. out:
  2692. kfree(active_tp);
  2693. return ret;
  2694. }
  2695. static int fts_ts_i2c_probe(struct i2c_client *client, const struct i2c_device_id *id)
  2696. {
  2697. int ret = 0;
  2698. struct fts_ts_data *ts_data = NULL;
  2699. struct device_node *dp = client->dev.of_node;
  2700. FTS_INFO("Touch Screen(I2C BUS) driver prboe...");
  2701. if (!i2c_check_functionality(client->adapter, I2C_FUNC_I2C)) {
  2702. FTS_ERROR("I2C not supported");
  2703. return -ENODEV;
  2704. }
  2705. ret = fts_ts_check_dt(dp);
  2706. if (ret == -EPROBE_DEFER)
  2707. return ret;
  2708. if (ret) {
  2709. if (!fts_ts_check_default_tp(dp, "qcom,i2c-touch-active"))
  2710. ret = -EPROBE_DEFER;
  2711. else
  2712. ret = -ENODEV;
  2713. return ret;
  2714. }
  2715. /* malloc memory for global struct variable */
  2716. ts_data = (struct fts_ts_data *)kzalloc(sizeof(*ts_data), GFP_KERNEL);
  2717. if (!ts_data) {
  2718. FTS_ERROR("allocate memory for fts_data fail");
  2719. return -ENOMEM;
  2720. }
  2721. fts_data = ts_data;
  2722. ts_data->client = client;
  2723. ts_data->dev = &client->dev;
  2724. ts_data->log_level = 1;
  2725. ts_data->fw_is_running = 0;
  2726. ts_data->bus_type = BUS_TYPE_I2C;
  2727. i2c_set_clientdata(client, ts_data);
  2728. ret = fts_ts_probe_entry(ts_data);
  2729. if (ret) {
  2730. FTS_ERROR("Touch Screen(I2C BUS) driver probe fail");
  2731. kfree_safe(ts_data);
  2732. return ret;
  2733. }
  2734. FTS_INFO("Touch Screen(I2C BUS) driver prboe successfully");
  2735. return 0;
  2736. }
  2737. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(6, 1, 0))
  2738. static void fts_ts_i2c_remove(struct i2c_client *client)
  2739. #else
  2740. static int fts_ts_i2c_remove(struct i2c_client *client)
  2741. #endif
  2742. {
  2743. int rc = 0;
  2744. rc = fts_ts_remove_entry(i2c_get_clientdata(client));
  2745. #if (LINUX_VERSION_CODE < KERNEL_VERSION(6, 1, 0))
  2746. return rc;
  2747. #endif
  2748. }
  2749. static const struct i2c_device_id fts_ts_i2c_id[] = {
  2750. {FTS_DRIVER_NAME, 0},
  2751. {},
  2752. };
  2753. static const struct of_device_id fts_dt_match[] = {
  2754. {.compatible = "focaltech,fts_ts", },
  2755. {},
  2756. };
  2757. MODULE_DEVICE_TABLE(of, fts_dt_match);
  2758. static struct i2c_driver fts_ts_i2c_driver = {
  2759. .probe = fts_ts_i2c_probe,
  2760. .remove = fts_ts_i2c_remove,
  2761. .driver = {
  2762. .name = FTS_DRIVER_NAME,
  2763. .owner = THIS_MODULE,
  2764. .of_match_table = of_match_ptr(fts_dt_match),
  2765. },
  2766. .id_table = fts_ts_i2c_id,
  2767. };
  2768. static int __init fts_ts_i2c_init(void)
  2769. {
  2770. int ret = 0;
  2771. FTS_FUNC_ENTER();
  2772. ret = i2c_add_driver(&fts_ts_i2c_driver);
  2773. if (ret != 0)
  2774. FTS_ERROR("Focaltech touch screen driver init failed!");
  2775. FTS_FUNC_EXIT();
  2776. return ret;
  2777. }
  2778. static void __exit fts_ts_i2c_exit(void)
  2779. {
  2780. i2c_del_driver(&fts_ts_i2c_driver);
  2781. }
  2782. static int fts_ts_spi_probe(struct spi_device *spi)
  2783. {
  2784. int ret = 0;
  2785. struct fts_ts_data *ts_data = NULL;
  2786. struct device_node *dp = spi->dev.of_node;
  2787. FTS_INFO("Touch Screen(SPI BUS) driver prboe...");
  2788. ret = fts_ts_check_dt(dp);
  2789. if (ret == -EPROBE_DEFER)
  2790. return ret;
  2791. if (ret) {
  2792. if (!fts_ts_check_default_tp(dp, "qcom,spi-touch-active"))
  2793. ret = -EPROBE_DEFER;
  2794. else
  2795. ret = -ENODEV;
  2796. return ret;
  2797. }
  2798. spi->mode = SPI_MODE_0;
  2799. spi->bits_per_word = 8;
  2800. ret = spi_setup(spi);
  2801. if (ret) {
  2802. FTS_ERROR("spi setup fail");
  2803. return ret;
  2804. }
  2805. /* malloc memory for global struct variable */
  2806. ts_data = kzalloc(sizeof(*ts_data), GFP_KERNEL);
  2807. if (!ts_data) {
  2808. FTS_ERROR("allocate memory for fts_data fail");
  2809. return -ENOMEM;
  2810. }
  2811. fts_data = ts_data;
  2812. ts_data->spi = spi;
  2813. ts_data->dev = &spi->dev;
  2814. ts_data->log_level = 1;
  2815. ts_data->bus_type = BUS_TYPE_SPI_V2;
  2816. spi_set_drvdata(spi, ts_data);
  2817. ret = fts_ts_probe_entry(ts_data);
  2818. if (ret) {
  2819. FTS_ERROR("Touch Screen(SPI BUS) driver probe fail");
  2820. kfree_safe(ts_data);
  2821. return ret;
  2822. }
  2823. FTS_INFO("Touch Screen(SPI BUS) driver prboe successfully");
  2824. return 0;
  2825. }
  2826. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(6, 1, 0))
  2827. static void fts_ts_spi_remove(struct spi_device *spi)
  2828. #else
  2829. static int fts_ts_spi_remove(struct spi_device *spi)
  2830. #endif
  2831. {
  2832. int rc = 0;
  2833. rc = fts_ts_remove_entry(spi_get_drvdata(spi));
  2834. #if (LINUX_VERSION_CODE < KERNEL_VERSION(6, 1, 0))
  2835. return rc;
  2836. #endif
  2837. }
  2838. static const struct spi_device_id fts_ts_spi_id[] = {
  2839. {FTS_DRIVER_NAME, 0},
  2840. {},
  2841. };
  2842. static struct spi_driver fts_ts_spi_driver = {
  2843. .probe = fts_ts_spi_probe,
  2844. .remove = fts_ts_spi_remove,
  2845. .driver = {
  2846. .name = FTS_DRIVER_NAME,
  2847. .owner = THIS_MODULE,
  2848. #if defined(CONFIG_PM) && FTS_PATCH_COMERR_PM
  2849. .pm = &fts_dev_pm_ops,
  2850. #endif
  2851. .of_match_table = of_match_ptr(fts_dt_match),
  2852. },
  2853. .id_table = fts_ts_spi_id,
  2854. };
  2855. static int __init fts_ts_spi_init(void)
  2856. {
  2857. int ret = 0;
  2858. FTS_FUNC_ENTER();
  2859. ret = spi_register_driver(&fts_ts_spi_driver);
  2860. if (ret != 0)
  2861. FTS_ERROR("Focaltech touch screen driver init failed!");
  2862. FTS_FUNC_EXIT();
  2863. return ret;
  2864. }
  2865. static void __exit fts_ts_spi_exit(void)
  2866. {
  2867. spi_unregister_driver(&fts_ts_spi_driver);
  2868. }
  2869. static int __init fts_ts_init(void)
  2870. {
  2871. int ret = 0;
  2872. ret = fts_ts_i2c_init();
  2873. if (ret)
  2874. FTS_ERROR("Focaltech I2C driver init failed!");
  2875. ret = fts_ts_spi_init();
  2876. if (ret)
  2877. FTS_ERROR("Focaltech SPI driver init failed!");
  2878. return ret;
  2879. }
  2880. static void __exit fts_ts_exit(void)
  2881. {
  2882. fts_ts_i2c_exit();
  2883. fts_ts_spi_exit();
  2884. }
  2885. #ifdef CONFIG_ARCH_QTI_VM
  2886. module_init(fts_ts_init);
  2887. #else
  2888. late_initcall(fts_ts_init);
  2889. #endif
  2890. module_exit(fts_ts_exit);
  2891. MODULE_AUTHOR("FocalTech Driver Team");
  2892. MODULE_DESCRIPTION("FocalTech Touchscreen Driver");
  2893. MODULE_LICENSE("GPL v2");