1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (C) 2012 Simon Budig, <simon.budig@kernelconcepts.de> 4 * Daniel Wagener <daniel.wagener@kernelconcepts.de> (M09 firmware support) 5 * Lothar Waßmann <LW@KARO-electronics.de> (DT support) 6 * Dario Binacchi <dario.binacchi@amarulasolutions.com> (regmap support) 7 */ 8 9 /* 10 * This is a driver for the EDT "Polytouch" family of touch controllers 11 * based on the FocalTech FT5x06 line of chips. 12 * 13 * Development of this driver has been sponsored by Glyn: 14 * http://www.glyn.com/Products/Displays 15 */ 16 17 #include <linux/debugfs.h> 18 #include <linux/delay.h> 19 #include <linux/gpio/consumer.h> 20 #include <linux/i2c.h> 21 #include <linux/interrupt.h> 22 #include <linux/input.h> 23 #include <linux/input/mt.h> 24 #include <linux/input/touchscreen.h> 25 #include <linux/irq.h> 26 #include <linux/kernel.h> 27 #include <linux/module.h> 28 #include <linux/property.h> 29 #include <linux/ratelimit.h> 30 #include <linux/regmap.h> 31 #include <linux/regulator/consumer.h> 32 #include <linux/slab.h> 33 #include <linux/uaccess.h> 34 35 #include <linux/unaligned.h> 36 37 #define WORK_REGISTER_THRESHOLD 0x00 38 #define WORK_REGISTER_REPORT_RATE 0x08 39 #define WORK_REGISTER_GAIN 0x30 40 #define WORK_REGISTER_OFFSET 0x31 41 #define WORK_REGISTER_NUM_X 0x33 42 #define WORK_REGISTER_NUM_Y 0x34 43 44 #define PMOD_REGISTER_ACTIVE 0x00 45 #define PMOD_REGISTER_HIBERNATE 0x03 46 47 #define M09_REGISTER_THRESHOLD 0x80 48 #define M09_REGISTER_GAIN 0x92 49 #define M09_REGISTER_OFFSET 0x93 50 #define M09_REGISTER_NUM_X 0x94 51 #define M09_REGISTER_NUM_Y 0x95 52 53 #define M12_REGISTER_REPORT_RATE 0x88 54 55 #define EV_REGISTER_THRESHOLD 0x40 56 #define EV_REGISTER_GAIN 0x41 57 #define EV_REGISTER_OFFSET_Y 0x45 58 #define EV_REGISTER_OFFSET_X 0x46 59 60 #define NO_REGISTER 0xff 61 62 #define WORK_REGISTER_OPMODE 0x3c 63 #define FACTORY_REGISTER_OPMODE 0x01 64 #define PMOD_REGISTER_OPMODE 0xa5 65 66 #define TOUCH_EVENT_DOWN 0x00 67 #define TOUCH_EVENT_UP 0x01 68 #define TOUCH_EVENT_ON 0x02 69 #define TOUCH_EVENT_RESERVED 0x03 70 71 #define EDT_NAME_LEN 23 72 #define EDT_SWITCH_MODE_RETRIES 10 73 #define EDT_SWITCH_MODE_DELAY 5 /* msec */ 74 #define EDT_RAW_DATA_RETRIES 100 75 #define EDT_RAW_DATA_DELAY 1000 /* usec */ 76 77 #define EDT_DEFAULT_NUM_X 1024 78 #define EDT_DEFAULT_NUM_Y 1024 79 80 #define M06_REG_CMD(factory) ((factory) ? 0xf3 : 0xfc) 81 #define M06_REG_ADDR(factory, addr) ((factory) ? (addr) & 0x7f : (addr) & 0x3f) 82 83 enum edt_pmode { 84 EDT_PMODE_NOT_SUPPORTED, 85 EDT_PMODE_HIBERNATE, 86 EDT_PMODE_POWEROFF, 87 }; 88 89 enum edt_ver { 90 EDT_M06, 91 EDT_M09, 92 EDT_M12, 93 EV_FT, 94 GENERIC_FT, 95 }; 96 97 struct edt_reg_addr { 98 int reg_threshold; 99 int reg_report_rate; 100 int reg_gain; 101 int reg_offset; 102 int reg_offset_x; 103 int reg_offset_y; 104 int reg_num_x; 105 int reg_num_y; 106 }; 107 108 struct edt_ft5x06_ts_data { 109 struct i2c_client *client; 110 struct input_dev *input; 111 struct touchscreen_properties prop; 112 u16 num_x; 113 u16 num_y; 114 struct regulator *vcc; 115 struct regulator *iovcc; 116 117 struct gpio_desc *reset_gpio; 118 struct gpio_desc *wake_gpio; 119 120 struct regmap *regmap; 121 122 #if defined(CONFIG_DEBUG_FS) 123 u8 *raw_buffer; 124 size_t raw_bufsize; 125 #endif 126 127 struct mutex mutex; 128 bool factory_mode; 129 enum edt_pmode suspend_mode; 130 int threshold; 131 int gain; 132 int offset; 133 int offset_x; 134 int offset_y; 135 int report_rate; 136 int max_support_points; 137 int point_len; 138 u8 tdata_cmd; 139 int tdata_len; 140 int tdata_offset; 141 142 char name[EDT_NAME_LEN]; 143 char fw_version[EDT_NAME_LEN]; 144 145 struct edt_reg_addr reg_addr; 146 enum edt_ver version; 147 unsigned int crc_errors; 148 unsigned int header_errors; 149 }; 150 151 struct edt_i2c_chip_data { 152 int max_support_points; 153 }; 154 155 static const struct regmap_config edt_ft5x06_i2c_regmap_config = { 156 .reg_bits = 8, 157 .val_bits = 8, 158 }; 159 160 static bool edt_ft5x06_ts_check_crc(struct edt_ft5x06_ts_data *tsdata, 161 u8 *buf, int buflen) 162 { 163 int i; 164 u8 crc = 0; 165 166 for (i = 0; i < buflen - 1; i++) 167 crc ^= buf[i]; 168 169 if (crc != buf[buflen - 1]) { 170 tsdata->crc_errors++; 171 dev_err_ratelimited(&tsdata->client->dev, 172 "crc error: 0x%02x expected, got 0x%02x\n", 173 crc, buf[buflen - 1]); 174 return false; 175 } 176 177 return true; 178 } 179 180 static int edt_M06_i2c_read(void *context, const void *reg_buf, size_t reg_size, 181 void *val_buf, size_t val_size) 182 { 183 struct device *dev = context; 184 struct i2c_client *i2c = to_i2c_client(dev); 185 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(i2c); 186 struct i2c_msg xfer[2]; 187 bool reg_read = false; 188 u8 addr; 189 u8 wlen; 190 u8 wbuf[4], rbuf[3]; 191 int ret; 192 193 addr = *((u8 *)reg_buf); 194 wbuf[0] = addr; 195 switch (addr) { 196 case 0xf5: 197 wlen = 3; 198 wbuf[0] = 0xf5; 199 wbuf[1] = 0xe; 200 wbuf[2] = *((u8 *)val_buf); 201 break; 202 case 0xf9: 203 wlen = 1; 204 break; 205 default: 206 wlen = 2; 207 reg_read = true; 208 wbuf[0] = M06_REG_CMD(tsdata->factory_mode); 209 wbuf[1] = M06_REG_ADDR(tsdata->factory_mode, addr); 210 wbuf[1] |= tsdata->factory_mode ? 0x80 : 0x40; 211 } 212 213 xfer[0].addr = i2c->addr; 214 xfer[0].flags = 0; 215 xfer[0].len = wlen; 216 xfer[0].buf = wbuf; 217 218 xfer[1].addr = i2c->addr; 219 xfer[1].flags = I2C_M_RD; 220 xfer[1].len = reg_read ? 2 : val_size; 221 xfer[1].buf = reg_read ? rbuf : val_buf; 222 223 ret = i2c_transfer(i2c->adapter, xfer, 2); 224 if (ret != 2) { 225 if (ret < 0) 226 return ret; 227 228 return -EIO; 229 } 230 231 if (addr == 0xf9) { 232 u8 *buf = (u8 *)val_buf; 233 234 if (buf[0] != 0xaa || buf[1] != 0xaa || 235 buf[2] != val_size) { 236 tsdata->header_errors++; 237 dev_err_ratelimited(dev, 238 "Unexpected header: %02x%02x%02x\n", 239 buf[0], buf[1], buf[2]); 240 return -EIO; 241 } 242 243 if (!edt_ft5x06_ts_check_crc(tsdata, val_buf, val_size)) 244 return -EIO; 245 } else if (reg_read) { 246 wbuf[2] = rbuf[0]; 247 wbuf[3] = rbuf[1]; 248 if (!edt_ft5x06_ts_check_crc(tsdata, wbuf, 4)) 249 return -EIO; 250 251 *((u8 *)val_buf) = rbuf[0]; 252 } 253 254 return 0; 255 } 256 257 static int edt_M06_i2c_write(void *context, const void *data, size_t count) 258 { 259 struct device *dev = context; 260 struct i2c_client *i2c = to_i2c_client(dev); 261 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(i2c); 262 u8 addr, val; 263 u8 wbuf[4]; 264 struct i2c_msg xfer; 265 int ret; 266 267 addr = *((u8 *)data); 268 val = *((u8 *)data + 1); 269 270 wbuf[0] = M06_REG_CMD(tsdata->factory_mode); 271 wbuf[1] = M06_REG_ADDR(tsdata->factory_mode, addr); 272 wbuf[2] = val; 273 wbuf[3] = wbuf[0] ^ wbuf[1] ^ wbuf[2]; 274 275 xfer.addr = i2c->addr; 276 xfer.flags = 0; 277 xfer.len = 4; 278 xfer.buf = wbuf; 279 280 ret = i2c_transfer(i2c->adapter, &xfer, 1); 281 if (ret != 1) { 282 if (ret < 0) 283 return ret; 284 285 return -EIO; 286 } 287 288 return 0; 289 } 290 291 static const struct regmap_config edt_M06_i2c_regmap_config = { 292 .reg_bits = 8, 293 .val_bits = 8, 294 .read = edt_M06_i2c_read, 295 .write = edt_M06_i2c_write, 296 }; 297 298 static irqreturn_t edt_ft5x06_ts_isr(int irq, void *dev_id) 299 { 300 struct edt_ft5x06_ts_data *tsdata = dev_id; 301 struct device *dev = &tsdata->client->dev; 302 u8 rdbuf[63]; 303 int i, type, x, y, id; 304 int error; 305 306 memset(rdbuf, 0, sizeof(rdbuf)); 307 error = regmap_bulk_read(tsdata->regmap, tsdata->tdata_cmd, rdbuf, 308 tsdata->tdata_len); 309 if (error) { 310 dev_err_ratelimited(dev, "Unable to fetch data, error: %d\n", 311 error); 312 goto out; 313 } 314 315 for (i = 0; i < tsdata->max_support_points; i++) { 316 u8 *buf = &rdbuf[i * tsdata->point_len + tsdata->tdata_offset]; 317 318 type = buf[0] >> 6; 319 /* ignore Reserved events */ 320 if (type == TOUCH_EVENT_RESERVED) 321 continue; 322 323 /* M06 sometimes sends bogus coordinates in TOUCH_DOWN */ 324 if (tsdata->version == EDT_M06 && type == TOUCH_EVENT_DOWN) 325 continue; 326 327 x = get_unaligned_be16(buf) & 0x0fff; 328 y = get_unaligned_be16(buf + 2) & 0x0fff; 329 /* The FT5x26 send the y coordinate first */ 330 if (tsdata->version == EV_FT) 331 swap(x, y); 332 333 id = (buf[2] >> 4) & 0x0f; 334 335 input_mt_slot(tsdata->input, id); 336 if (input_mt_report_slot_state(tsdata->input, MT_TOOL_FINGER, 337 type != TOUCH_EVENT_UP)) 338 touchscreen_report_pos(tsdata->input, &tsdata->prop, 339 x, y, true); 340 } 341 342 input_mt_report_pointer_emulation(tsdata->input, true); 343 input_sync(tsdata->input); 344 345 out: 346 return IRQ_HANDLED; 347 } 348 349 struct edt_ft5x06_attribute { 350 struct device_attribute dattr; 351 size_t field_offset; 352 u8 limit_low; 353 u8 limit_high; 354 u8 addr_m06; 355 u8 addr_m09; 356 u8 addr_ev; 357 }; 358 359 #define EDT_ATTR(_field, _mode, _addr_m06, _addr_m09, _addr_ev, \ 360 _limit_low, _limit_high) \ 361 struct edt_ft5x06_attribute edt_ft5x06_attr_##_field = { \ 362 .dattr = __ATTR(_field, _mode, \ 363 edt_ft5x06_setting_show, \ 364 edt_ft5x06_setting_store), \ 365 .field_offset = offsetof(struct edt_ft5x06_ts_data, _field), \ 366 .addr_m06 = _addr_m06, \ 367 .addr_m09 = _addr_m09, \ 368 .addr_ev = _addr_ev, \ 369 .limit_low = _limit_low, \ 370 .limit_high = _limit_high, \ 371 } 372 373 static ssize_t edt_ft5x06_setting_show(struct device *dev, 374 struct device_attribute *dattr, 375 char *buf) 376 { 377 struct i2c_client *client = to_i2c_client(dev); 378 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 379 struct edt_ft5x06_attribute *attr = 380 container_of(dattr, struct edt_ft5x06_attribute, dattr); 381 u8 *field = (u8 *)tsdata + attr->field_offset; 382 unsigned int val; 383 int error; 384 u8 addr; 385 386 guard(mutex)(&tsdata->mutex); 387 388 if (tsdata->factory_mode) 389 return -EIO; 390 391 switch (tsdata->version) { 392 case EDT_M06: 393 addr = attr->addr_m06; 394 break; 395 396 case EDT_M09: 397 case EDT_M12: 398 case GENERIC_FT: 399 addr = attr->addr_m09; 400 break; 401 402 case EV_FT: 403 addr = attr->addr_ev; 404 break; 405 406 default: 407 return -ENODEV; 408 } 409 410 if (addr != NO_REGISTER) { 411 error = regmap_read(tsdata->regmap, addr, &val); 412 if (error) { 413 dev_err(&tsdata->client->dev, 414 "Failed to fetch attribute %s, error %d\n", 415 dattr->attr.name, error); 416 return error; 417 } 418 } else { 419 val = *field; 420 } 421 422 if (val != *field) { 423 dev_warn(&tsdata->client->dev, 424 "%s: read (%d) and stored value (%d) differ\n", 425 dattr->attr.name, val, *field); 426 *field = val; 427 } 428 429 return sysfs_emit(buf, "%d\n", val); 430 } 431 432 static ssize_t edt_ft5x06_setting_store(struct device *dev, 433 struct device_attribute *dattr, 434 const char *buf, size_t count) 435 { 436 struct i2c_client *client = to_i2c_client(dev); 437 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 438 struct edt_ft5x06_attribute *attr = 439 container_of(dattr, struct edt_ft5x06_attribute, dattr); 440 u8 *field = (u8 *)tsdata + attr->field_offset; 441 unsigned int val; 442 int error; 443 u8 addr; 444 445 guard(mutex)(&tsdata->mutex); 446 447 if (tsdata->factory_mode) 448 return -EIO; 449 450 error = kstrtouint(buf, 0, &val); 451 if (error) 452 return error; 453 454 if (val < attr->limit_low || val > attr->limit_high) 455 return -ERANGE; 456 457 switch (tsdata->version) { 458 case EDT_M06: 459 addr = attr->addr_m06; 460 break; 461 462 case EDT_M09: 463 case EDT_M12: 464 case GENERIC_FT: 465 addr = attr->addr_m09; 466 break; 467 468 case EV_FT: 469 addr = attr->addr_ev; 470 break; 471 472 default: 473 return -ENODEV; 474 } 475 476 if (addr != NO_REGISTER) { 477 error = regmap_write(tsdata->regmap, addr, val); 478 if (error) { 479 dev_err(&tsdata->client->dev, 480 "Failed to update attribute %s, error: %d\n", 481 dattr->attr.name, error); 482 return error; 483 } 484 } 485 *field = val; 486 487 return count; 488 } 489 490 /* m06, m09: range 0-31, m12: range 0-5 */ 491 static EDT_ATTR(gain, S_IWUSR | S_IRUGO, WORK_REGISTER_GAIN, 492 M09_REGISTER_GAIN, EV_REGISTER_GAIN, 0, 31); 493 /* m06, m09: range 0-31, m12: range 0-16 */ 494 static EDT_ATTR(offset, S_IWUSR | S_IRUGO, WORK_REGISTER_OFFSET, 495 M09_REGISTER_OFFSET, NO_REGISTER, 0, 31); 496 /* m06, m09, m12: no supported, ev_ft: range 0-80 */ 497 static EDT_ATTR(offset_x, S_IWUSR | S_IRUGO, NO_REGISTER, NO_REGISTER, 498 EV_REGISTER_OFFSET_X, 0, 80); 499 /* m06, m09, m12: no supported, ev_ft: range 0-80 */ 500 static EDT_ATTR(offset_y, S_IWUSR | S_IRUGO, NO_REGISTER, NO_REGISTER, 501 EV_REGISTER_OFFSET_Y, 0, 80); 502 /* m06: range 20 to 80, m09: range 0 to 30, m12: range 1 to 255... */ 503 static EDT_ATTR(threshold, S_IWUSR | S_IRUGO, WORK_REGISTER_THRESHOLD, 504 M09_REGISTER_THRESHOLD, EV_REGISTER_THRESHOLD, 0, 255); 505 /* m06: range 3 to 14, m12: range 1 to 255 */ 506 static EDT_ATTR(report_rate, S_IWUSR | S_IRUGO, WORK_REGISTER_REPORT_RATE, 507 M12_REGISTER_REPORT_RATE, NO_REGISTER, 0, 255); 508 509 static ssize_t model_show(struct device *dev, struct device_attribute *attr, 510 char *buf) 511 { 512 struct i2c_client *client = to_i2c_client(dev); 513 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 514 515 return sysfs_emit(buf, "%s\n", tsdata->name); 516 } 517 518 static DEVICE_ATTR_RO(model); 519 520 static ssize_t fw_version_show(struct device *dev, 521 struct device_attribute *attr, char *buf) 522 { 523 struct i2c_client *client = to_i2c_client(dev); 524 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 525 526 return sysfs_emit(buf, "%s\n", tsdata->fw_version); 527 } 528 529 static DEVICE_ATTR_RO(fw_version); 530 531 /* m06 only */ 532 static ssize_t header_errors_show(struct device *dev, 533 struct device_attribute *attr, char *buf) 534 { 535 struct i2c_client *client = to_i2c_client(dev); 536 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 537 538 return sysfs_emit(buf, "%d\n", tsdata->header_errors); 539 } 540 541 static DEVICE_ATTR_RO(header_errors); 542 543 /* m06 only */ 544 static ssize_t crc_errors_show(struct device *dev, 545 struct device_attribute *attr, char *buf) 546 { 547 struct i2c_client *client = to_i2c_client(dev); 548 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 549 550 return sysfs_emit(buf, "%d\n", tsdata->crc_errors); 551 } 552 553 static DEVICE_ATTR_RO(crc_errors); 554 555 static struct attribute *edt_ft5x06_attrs[] = { 556 &edt_ft5x06_attr_gain.dattr.attr, 557 &edt_ft5x06_attr_offset.dattr.attr, 558 &edt_ft5x06_attr_offset_x.dattr.attr, 559 &edt_ft5x06_attr_offset_y.dattr.attr, 560 &edt_ft5x06_attr_threshold.dattr.attr, 561 &edt_ft5x06_attr_report_rate.dattr.attr, 562 &dev_attr_model.attr, 563 &dev_attr_fw_version.attr, 564 &dev_attr_header_errors.attr, 565 &dev_attr_crc_errors.attr, 566 NULL 567 }; 568 ATTRIBUTE_GROUPS(edt_ft5x06); 569 570 static void edt_ft5x06_restore_reg_parameters(struct edt_ft5x06_ts_data *tsdata) 571 { 572 struct edt_reg_addr *reg_addr = &tsdata->reg_addr; 573 struct regmap *regmap = tsdata->regmap; 574 575 regmap_write(regmap, reg_addr->reg_threshold, tsdata->threshold); 576 regmap_write(regmap, reg_addr->reg_gain, tsdata->gain); 577 if (reg_addr->reg_offset != NO_REGISTER) 578 regmap_write(regmap, reg_addr->reg_offset, tsdata->offset); 579 if (reg_addr->reg_offset_x != NO_REGISTER) 580 regmap_write(regmap, reg_addr->reg_offset_x, tsdata->offset_x); 581 if (reg_addr->reg_offset_y != NO_REGISTER) 582 regmap_write(regmap, reg_addr->reg_offset_y, tsdata->offset_y); 583 if (reg_addr->reg_report_rate != NO_REGISTER) 584 regmap_write(regmap, reg_addr->reg_report_rate, 585 tsdata->report_rate); 586 } 587 588 #ifdef CONFIG_DEBUG_FS 589 static int edt_ft5x06_factory_mode(struct edt_ft5x06_ts_data *tsdata) 590 { 591 struct i2c_client *client = tsdata->client; 592 int retries = EDT_SWITCH_MODE_RETRIES; 593 unsigned int val; 594 int error; 595 596 if (tsdata->version != EDT_M06) { 597 dev_err(&client->dev, 598 "No factory mode support for non-M06 devices\n"); 599 return -EINVAL; 600 } 601 602 disable_irq(client->irq); 603 604 if (!tsdata->raw_buffer) { 605 tsdata->raw_bufsize = tsdata->num_x * tsdata->num_y * 606 sizeof(u16); 607 tsdata->raw_buffer = kzalloc(tsdata->raw_bufsize, GFP_KERNEL); 608 if (!tsdata->raw_buffer) { 609 error = -ENOMEM; 610 goto err_out; 611 } 612 } 613 614 /* mode register is 0x3c when in the work mode */ 615 error = regmap_write(tsdata->regmap, WORK_REGISTER_OPMODE, 0x03); 616 if (error) { 617 dev_err(&client->dev, 618 "failed to switch to factory mode, error %d\n", error); 619 goto err_out; 620 } 621 622 tsdata->factory_mode = true; 623 do { 624 mdelay(EDT_SWITCH_MODE_DELAY); 625 /* mode register is 0x01 when in factory mode */ 626 error = regmap_read(tsdata->regmap, FACTORY_REGISTER_OPMODE, 627 &val); 628 if (!error && val == 0x03) 629 break; 630 } while (--retries > 0); 631 632 if (retries == 0) { 633 dev_err(&client->dev, "not in factory mode after %dms.\n", 634 EDT_SWITCH_MODE_RETRIES * EDT_SWITCH_MODE_DELAY); 635 error = -EIO; 636 goto err_out; 637 } 638 639 return 0; 640 641 err_out: 642 kfree(tsdata->raw_buffer); 643 tsdata->raw_buffer = NULL; 644 tsdata->factory_mode = false; 645 enable_irq(client->irq); 646 647 return error; 648 } 649 650 static int edt_ft5x06_work_mode(struct edt_ft5x06_ts_data *tsdata) 651 { 652 struct i2c_client *client = tsdata->client; 653 int retries = EDT_SWITCH_MODE_RETRIES; 654 unsigned int val; 655 int error; 656 657 /* mode register is 0x01 when in the factory mode */ 658 error = regmap_write(tsdata->regmap, FACTORY_REGISTER_OPMODE, 0x1); 659 if (error) { 660 dev_err(&client->dev, 661 "failed to switch to work mode, error: %d\n", error); 662 return error; 663 } 664 665 tsdata->factory_mode = false; 666 667 do { 668 mdelay(EDT_SWITCH_MODE_DELAY); 669 /* mode register is 0x01 when in factory mode */ 670 error = regmap_read(tsdata->regmap, WORK_REGISTER_OPMODE, &val); 671 if (!error && val == 0x01) 672 break; 673 } while (--retries > 0); 674 675 if (retries == 0) { 676 dev_err(&client->dev, "not in work mode after %dms.\n", 677 EDT_SWITCH_MODE_RETRIES * EDT_SWITCH_MODE_DELAY); 678 tsdata->factory_mode = true; 679 return -EIO; 680 } 681 682 kfree(tsdata->raw_buffer); 683 tsdata->raw_buffer = NULL; 684 685 edt_ft5x06_restore_reg_parameters(tsdata); 686 enable_irq(client->irq); 687 688 return 0; 689 } 690 691 static int edt_ft5x06_debugfs_mode_get(void *data, u64 *mode) 692 { 693 struct edt_ft5x06_ts_data *tsdata = data; 694 695 *mode = tsdata->factory_mode; 696 697 return 0; 698 }; 699 700 static int edt_ft5x06_debugfs_mode_set(void *data, u64 mode) 701 { 702 struct edt_ft5x06_ts_data *tsdata = data; 703 704 if (mode > 1) 705 return -ERANGE; 706 707 guard(mutex)(&tsdata->mutex); 708 709 if (mode == tsdata->factory_mode) 710 return 0; 711 712 return mode ? edt_ft5x06_factory_mode(tsdata) : 713 edt_ft5x06_work_mode(tsdata); 714 }; 715 716 DEFINE_SIMPLE_ATTRIBUTE(debugfs_mode_fops, edt_ft5x06_debugfs_mode_get, 717 edt_ft5x06_debugfs_mode_set, "%llu\n"); 718 719 static ssize_t edt_ft5x06_debugfs_raw_data_read(struct file *file, 720 char __user *buf, size_t count, 721 loff_t *off) 722 { 723 struct edt_ft5x06_ts_data *tsdata = file->private_data; 724 struct i2c_client *client = tsdata->client; 725 int retries = EDT_RAW_DATA_RETRIES; 726 unsigned int val; 727 int i, error; 728 size_t read = 0; 729 int colbytes; 730 u8 *rdbuf; 731 732 if (*off < 0 || *off >= tsdata->raw_bufsize) 733 return 0; 734 735 guard(mutex)(&tsdata->mutex); 736 737 if (!tsdata->factory_mode || !tsdata->raw_buffer) 738 return -EIO; 739 740 error = regmap_write(tsdata->regmap, 0x08, 0x01); 741 if (error) { 742 dev_err(&client->dev, 743 "failed to write 0x08 register, error %d\n", error); 744 return error; 745 } 746 747 do { 748 usleep_range(EDT_RAW_DATA_DELAY, EDT_RAW_DATA_DELAY + 100); 749 error = regmap_read(tsdata->regmap, 0x08, &val); 750 if (error) { 751 dev_err(&client->dev, 752 "failed to read 0x08 register, error %d\n", 753 error); 754 return error; 755 } 756 757 if (val == 1) 758 break; 759 } while (--retries > 0); 760 761 if (retries == 0) { 762 dev_err(&client->dev, 763 "timed out waiting for register to settle\n"); 764 return -ETIMEDOUT; 765 } 766 767 rdbuf = tsdata->raw_buffer; 768 colbytes = tsdata->num_y * sizeof(u16); 769 770 for (i = 0; i < tsdata->num_x; i++) { 771 rdbuf[0] = i; /* column index */ 772 error = regmap_bulk_read(tsdata->regmap, 0xf5, rdbuf, colbytes); 773 if (error) 774 return error; 775 776 rdbuf += colbytes; 777 } 778 779 read = min_t(size_t, count, tsdata->raw_bufsize - *off); 780 if (copy_to_user(buf, tsdata->raw_buffer + *off, read)) 781 return -EFAULT; 782 783 *off += read; 784 return read; 785 }; 786 787 static const struct file_operations debugfs_raw_data_fops = { 788 .open = simple_open, 789 .read = edt_ft5x06_debugfs_raw_data_read, 790 }; 791 792 static void edt_ft5x06_ts_prepare_debugfs(struct edt_ft5x06_ts_data *tsdata) 793 { 794 struct dentry *debug_dir = tsdata->client->debugfs; 795 796 debugfs_create_u16("num_x", S_IRUSR, debug_dir, &tsdata->num_x); 797 debugfs_create_u16("num_y", S_IRUSR, debug_dir, &tsdata->num_y); 798 799 debugfs_create_file("mode", S_IRUSR | S_IWUSR, 800 debug_dir, tsdata, &debugfs_mode_fops); 801 debugfs_create_file("raw_data", S_IRUSR, 802 debug_dir, tsdata, &debugfs_raw_data_fops); 803 } 804 805 static void edt_ft5x06_ts_teardown_debugfs(struct edt_ft5x06_ts_data *tsdata) 806 { 807 guard(mutex)(&tsdata->mutex); 808 809 kfree(tsdata->raw_buffer); 810 tsdata->raw_buffer = NULL; 811 } 812 813 #else 814 815 static int edt_ft5x06_factory_mode(struct edt_ft5x06_ts_data *tsdata) 816 { 817 return -ENOSYS; 818 } 819 820 static void edt_ft5x06_ts_prepare_debugfs(struct edt_ft5x06_ts_data *tsdata) 821 { 822 } 823 824 static void edt_ft5x06_ts_teardown_debugfs(struct edt_ft5x06_ts_data *tsdata) 825 { 826 } 827 828 #endif /* CONFIG_DEBUGFS */ 829 830 static int edt_ft5x06_ts_identify(struct i2c_client *client, 831 struct edt_ft5x06_ts_data *tsdata) 832 { 833 u8 rdbuf[EDT_NAME_LEN]; 834 char *p; 835 int error; 836 char *model_name = tsdata->name; 837 char *fw_version = tsdata->fw_version; 838 839 /* see what we find if we assume it is a M06 * 840 * if we get less than EDT_NAME_LEN, we don't want 841 * to have garbage in there 842 */ 843 memset(rdbuf, 0, sizeof(rdbuf)); 844 error = regmap_bulk_read(tsdata->regmap, 0xBB, rdbuf, EDT_NAME_LEN - 1); 845 if (error) 846 return error; 847 848 /* Probe content for something consistent. 849 * M06 starts with a response byte, M12 gives the data directly. 850 * M09/Generic does not provide model number information. 851 */ 852 if (!strncasecmp(rdbuf + 1, "EP0", 3)) { 853 tsdata->version = EDT_M06; 854 855 /* remove last '$' end marker */ 856 rdbuf[EDT_NAME_LEN - 1] = '\0'; 857 if (rdbuf[EDT_NAME_LEN - 2] == '$') 858 rdbuf[EDT_NAME_LEN - 2] = '\0'; 859 860 /* look for Model/Version separator */ 861 p = strchr(rdbuf, '*'); 862 if (p) 863 *p++ = '\0'; 864 strscpy(model_name, rdbuf + 1, EDT_NAME_LEN); 865 strscpy(fw_version, p ? p : "", EDT_NAME_LEN); 866 867 regmap_exit(tsdata->regmap); 868 tsdata->regmap = regmap_init_i2c(client, 869 &edt_M06_i2c_regmap_config); 870 if (IS_ERR(tsdata->regmap)) { 871 dev_err(&client->dev, "regmap allocation failed\n"); 872 return PTR_ERR(tsdata->regmap); 873 } 874 } else if (!strncasecmp(rdbuf, "EP0", 3)) { 875 tsdata->version = EDT_M12; 876 877 /* remove last '$' end marker */ 878 rdbuf[EDT_NAME_LEN - 2] = '\0'; 879 if (rdbuf[EDT_NAME_LEN - 3] == '$') 880 rdbuf[EDT_NAME_LEN - 3] = '\0'; 881 882 /* look for Model/Version separator */ 883 p = strchr(rdbuf, '*'); 884 if (p) 885 *p++ = '\0'; 886 strscpy(model_name, rdbuf, EDT_NAME_LEN); 887 strscpy(fw_version, p ? p : "", EDT_NAME_LEN); 888 } else { 889 /* If it is not an EDT M06/M12 touchscreen, then the model 890 * detection is a bit hairy. The different ft5x06 891 * firmwares around don't reliably implement the 892 * identification registers. Well, we'll take a shot. 893 * 894 * The main difference between generic focaltec based 895 * touches and EDT M09 is that we know how to retrieve 896 * the max coordinates for the latter. 897 */ 898 tsdata->version = GENERIC_FT; 899 900 error = regmap_bulk_read(tsdata->regmap, 0xA6, rdbuf, 2); 901 if (error) 902 return error; 903 904 strscpy(fw_version, rdbuf, 2); 905 906 error = regmap_bulk_read(tsdata->regmap, 0xA8, rdbuf, 1); 907 if (error) 908 return error; 909 910 /* This "model identification" is not exact. Unfortunately 911 * not all firmwares for the ft5x06 put useful values in 912 * the identification registers. 913 */ 914 switch (rdbuf[0]) { 915 case 0x11: /* EDT EP0110M09 */ 916 case 0x35: /* EDT EP0350M09 */ 917 case 0x43: /* EDT EP0430M09 */ 918 case 0x50: /* EDT EP0500M09 */ 919 case 0x57: /* EDT EP0570M09 */ 920 case 0x70: /* EDT EP0700M09 */ 921 tsdata->version = EDT_M09; 922 snprintf(model_name, EDT_NAME_LEN, "EP0%i%i0M09", 923 rdbuf[0] >> 4, rdbuf[0] & 0x0F); 924 break; 925 case 0xa1: /* EDT EP1010ML00 */ 926 tsdata->version = EDT_M09; 927 snprintf(model_name, EDT_NAME_LEN, "EP%i%i0ML00", 928 rdbuf[0] >> 4, rdbuf[0] & 0x0F); 929 break; 930 case 0x5a: /* Solomon Goldentek Display */ 931 snprintf(model_name, EDT_NAME_LEN, "GKTW50SCED1R0"); 932 break; 933 case 0x59: /* Evervision Display with FT5xx6 TS */ 934 tsdata->version = EV_FT; 935 error = regmap_bulk_read(tsdata->regmap, 0x53, rdbuf, 1); 936 if (error) 937 return error; 938 strscpy(fw_version, rdbuf, 1); 939 snprintf(model_name, EDT_NAME_LEN, 940 "EVERVISION-FT5726NEi"); 941 break; 942 default: 943 snprintf(model_name, EDT_NAME_LEN, 944 "generic ft5x06 (%02x)", 945 rdbuf[0]); 946 break; 947 } 948 } 949 950 return 0; 951 } 952 953 static void edt_ft5x06_ts_get_defaults(struct device *dev, 954 struct edt_ft5x06_ts_data *tsdata) 955 { 956 struct edt_reg_addr *reg_addr = &tsdata->reg_addr; 957 struct regmap *regmap = tsdata->regmap; 958 u32 val; 959 int error; 960 961 error = device_property_read_u32(dev, "threshold", &val); 962 if (!error) { 963 regmap_write(regmap, reg_addr->reg_threshold, val); 964 tsdata->threshold = val; 965 } 966 967 error = device_property_read_u32(dev, "gain", &val); 968 if (!error) { 969 regmap_write(regmap, reg_addr->reg_gain, val); 970 tsdata->gain = val; 971 } 972 973 error = device_property_read_u32(dev, "offset", &val); 974 if (!error) { 975 if (reg_addr->reg_offset != NO_REGISTER) 976 regmap_write(regmap, reg_addr->reg_offset, val); 977 tsdata->offset = val; 978 } 979 980 error = device_property_read_u32(dev, "offset-x", &val); 981 if (!error) { 982 if (reg_addr->reg_offset_x != NO_REGISTER) 983 regmap_write(regmap, reg_addr->reg_offset_x, val); 984 tsdata->offset_x = val; 985 } 986 987 error = device_property_read_u32(dev, "offset-y", &val); 988 if (!error) { 989 if (reg_addr->reg_offset_y != NO_REGISTER) 990 regmap_write(regmap, reg_addr->reg_offset_y, val); 991 tsdata->offset_y = val; 992 } 993 } 994 995 static void edt_ft5x06_ts_get_parameters(struct edt_ft5x06_ts_data *tsdata) 996 { 997 struct edt_reg_addr *reg_addr = &tsdata->reg_addr; 998 struct regmap *regmap = tsdata->regmap; 999 unsigned int val; 1000 1001 regmap_read(regmap, reg_addr->reg_threshold, &tsdata->threshold); 1002 regmap_read(regmap, reg_addr->reg_gain, &tsdata->gain); 1003 if (reg_addr->reg_offset != NO_REGISTER) 1004 regmap_read(regmap, reg_addr->reg_offset, &tsdata->offset); 1005 if (reg_addr->reg_offset_x != NO_REGISTER) 1006 regmap_read(regmap, reg_addr->reg_offset_x, &tsdata->offset_x); 1007 if (reg_addr->reg_offset_y != NO_REGISTER) 1008 regmap_read(regmap, reg_addr->reg_offset_y, &tsdata->offset_y); 1009 if (reg_addr->reg_report_rate != NO_REGISTER) 1010 regmap_read(regmap, reg_addr->reg_report_rate, 1011 &tsdata->report_rate); 1012 tsdata->num_x = EDT_DEFAULT_NUM_X; 1013 if (reg_addr->reg_num_x != NO_REGISTER) { 1014 if (!regmap_read(regmap, reg_addr->reg_num_x, &val)) 1015 tsdata->num_x = val; 1016 } 1017 tsdata->num_y = EDT_DEFAULT_NUM_Y; 1018 if (reg_addr->reg_num_y != NO_REGISTER) { 1019 if (!regmap_read(regmap, reg_addr->reg_num_y, &val)) 1020 tsdata->num_y = val; 1021 } 1022 } 1023 1024 static void edt_ft5x06_ts_set_tdata_parameters(struct edt_ft5x06_ts_data *tsdata) 1025 { 1026 int crclen; 1027 1028 if (tsdata->version == EDT_M06) { 1029 tsdata->tdata_cmd = 0xf9; 1030 tsdata->tdata_offset = 5; 1031 tsdata->point_len = 4; 1032 crclen = 1; 1033 } else { 1034 tsdata->tdata_cmd = 0x0; 1035 tsdata->tdata_offset = 3; 1036 tsdata->point_len = 6; 1037 crclen = 0; 1038 } 1039 1040 tsdata->tdata_len = tsdata->point_len * tsdata->max_support_points + 1041 tsdata->tdata_offset + crclen; 1042 } 1043 1044 static void edt_ft5x06_ts_set_regs(struct edt_ft5x06_ts_data *tsdata) 1045 { 1046 struct edt_reg_addr *reg_addr = &tsdata->reg_addr; 1047 1048 switch (tsdata->version) { 1049 case EDT_M06: 1050 reg_addr->reg_threshold = WORK_REGISTER_THRESHOLD; 1051 reg_addr->reg_report_rate = WORK_REGISTER_REPORT_RATE; 1052 reg_addr->reg_gain = WORK_REGISTER_GAIN; 1053 reg_addr->reg_offset = WORK_REGISTER_OFFSET; 1054 reg_addr->reg_offset_x = NO_REGISTER; 1055 reg_addr->reg_offset_y = NO_REGISTER; 1056 reg_addr->reg_num_x = WORK_REGISTER_NUM_X; 1057 reg_addr->reg_num_y = WORK_REGISTER_NUM_Y; 1058 break; 1059 1060 case EDT_M09: 1061 case EDT_M12: 1062 reg_addr->reg_threshold = M09_REGISTER_THRESHOLD; 1063 reg_addr->reg_report_rate = tsdata->version == EDT_M12 ? 1064 M12_REGISTER_REPORT_RATE : NO_REGISTER; 1065 reg_addr->reg_gain = M09_REGISTER_GAIN; 1066 reg_addr->reg_offset = M09_REGISTER_OFFSET; 1067 reg_addr->reg_offset_x = NO_REGISTER; 1068 reg_addr->reg_offset_y = NO_REGISTER; 1069 reg_addr->reg_num_x = M09_REGISTER_NUM_X; 1070 reg_addr->reg_num_y = M09_REGISTER_NUM_Y; 1071 break; 1072 1073 case EV_FT: 1074 reg_addr->reg_threshold = EV_REGISTER_THRESHOLD; 1075 reg_addr->reg_report_rate = NO_REGISTER; 1076 reg_addr->reg_gain = EV_REGISTER_GAIN; 1077 reg_addr->reg_offset = NO_REGISTER; 1078 reg_addr->reg_offset_x = EV_REGISTER_OFFSET_X; 1079 reg_addr->reg_offset_y = EV_REGISTER_OFFSET_Y; 1080 reg_addr->reg_num_x = NO_REGISTER; 1081 reg_addr->reg_num_y = NO_REGISTER; 1082 break; 1083 1084 case GENERIC_FT: 1085 /* this is a guesswork */ 1086 reg_addr->reg_threshold = M09_REGISTER_THRESHOLD; 1087 reg_addr->reg_report_rate = NO_REGISTER; 1088 reg_addr->reg_gain = M09_REGISTER_GAIN; 1089 reg_addr->reg_offset = M09_REGISTER_OFFSET; 1090 reg_addr->reg_offset_x = NO_REGISTER; 1091 reg_addr->reg_offset_y = NO_REGISTER; 1092 reg_addr->reg_num_x = NO_REGISTER; 1093 reg_addr->reg_num_y = NO_REGISTER; 1094 break; 1095 } 1096 } 1097 1098 static void edt_ft5x06_exit_regmap(void *arg) 1099 { 1100 struct edt_ft5x06_ts_data *data = arg; 1101 1102 if (!IS_ERR_OR_NULL(data->regmap)) 1103 regmap_exit(data->regmap); 1104 } 1105 1106 static void edt_ft5x06_disable_regulators(void *arg) 1107 { 1108 struct edt_ft5x06_ts_data *data = arg; 1109 1110 regulator_disable(data->vcc); 1111 regulator_disable(data->iovcc); 1112 } 1113 1114 static int edt_ft5x06_ts_probe(struct i2c_client *client) 1115 { 1116 const struct i2c_device_id *id = i2c_client_get_device_id(client); 1117 const struct edt_i2c_chip_data *chip_data; 1118 struct edt_ft5x06_ts_data *tsdata; 1119 unsigned int val; 1120 struct input_dev *input; 1121 unsigned long irq_flags; 1122 int error; 1123 u32 report_rate; 1124 1125 dev_dbg(&client->dev, "probing for EDT FT5x06 I2C\n"); 1126 1127 tsdata = devm_kzalloc(&client->dev, sizeof(*tsdata), GFP_KERNEL); 1128 if (!tsdata) { 1129 dev_err(&client->dev, "failed to allocate driver data.\n"); 1130 return -ENOMEM; 1131 } 1132 1133 tsdata->regmap = regmap_init_i2c(client, &edt_ft5x06_i2c_regmap_config); 1134 if (IS_ERR(tsdata->regmap)) { 1135 dev_err(&client->dev, "regmap allocation failed\n"); 1136 return PTR_ERR(tsdata->regmap); 1137 } 1138 1139 /* 1140 * We are not using devm_regmap_init_i2c() and instead install a 1141 * custom action because we may replace regmap with M06-specific one 1142 * and we need to make sure that it will not be released too early. 1143 */ 1144 error = devm_add_action_or_reset(&client->dev, edt_ft5x06_exit_regmap, 1145 tsdata); 1146 if (error) 1147 return error; 1148 1149 chip_data = device_get_match_data(&client->dev); 1150 if (!chip_data) 1151 chip_data = (const struct edt_i2c_chip_data *)id->driver_data; 1152 if (!chip_data || !chip_data->max_support_points) { 1153 dev_err(&client->dev, "invalid or missing chip data\n"); 1154 return -EINVAL; 1155 } 1156 1157 tsdata->max_support_points = chip_data->max_support_points; 1158 1159 tsdata->vcc = devm_regulator_get(&client->dev, "vcc"); 1160 if (IS_ERR(tsdata->vcc)) 1161 return dev_err_probe(&client->dev, PTR_ERR(tsdata->vcc), 1162 "failed to request regulator\n"); 1163 1164 tsdata->iovcc = devm_regulator_get(&client->dev, "iovcc"); 1165 if (IS_ERR(tsdata->iovcc)) { 1166 error = PTR_ERR(tsdata->iovcc); 1167 if (error != -EPROBE_DEFER) 1168 dev_err(&client->dev, 1169 "failed to request iovcc regulator: %d\n", error); 1170 return error; 1171 } 1172 1173 error = regulator_enable(tsdata->iovcc); 1174 if (error < 0) { 1175 dev_err(&client->dev, "failed to enable iovcc: %d\n", error); 1176 return error; 1177 } 1178 1179 /* Delay enabling VCC for > 10us (T_ivd) after IOVCC */ 1180 usleep_range(10, 100); 1181 1182 error = regulator_enable(tsdata->vcc); 1183 if (error < 0) { 1184 dev_err(&client->dev, "failed to enable vcc: %d\n", error); 1185 regulator_disable(tsdata->iovcc); 1186 return error; 1187 } 1188 1189 error = devm_add_action_or_reset(&client->dev, 1190 edt_ft5x06_disable_regulators, 1191 tsdata); 1192 if (error) 1193 return error; 1194 1195 tsdata->reset_gpio = devm_gpiod_get_optional(&client->dev, 1196 "reset", GPIOD_OUT_HIGH); 1197 if (IS_ERR(tsdata->reset_gpio)) { 1198 error = PTR_ERR(tsdata->reset_gpio); 1199 dev_err(&client->dev, 1200 "Failed to request GPIO reset pin, error %d\n", error); 1201 return error; 1202 } 1203 1204 tsdata->wake_gpio = devm_gpiod_get_optional(&client->dev, 1205 "wake", GPIOD_OUT_LOW); 1206 if (IS_ERR(tsdata->wake_gpio)) { 1207 error = PTR_ERR(tsdata->wake_gpio); 1208 dev_err(&client->dev, 1209 "Failed to request GPIO wake pin, error %d\n", error); 1210 return error; 1211 } 1212 1213 /* 1214 * Check which sleep modes we can support. Power-off requires the 1215 * reset-pin to ensure correct power-down/power-up behaviour. Start with 1216 * the EDT_PMODE_POWEROFF test since this is the deepest possible sleep 1217 * mode. 1218 */ 1219 if (tsdata->reset_gpio) 1220 tsdata->suspend_mode = EDT_PMODE_POWEROFF; 1221 else if (tsdata->wake_gpio) 1222 tsdata->suspend_mode = EDT_PMODE_HIBERNATE; 1223 else 1224 tsdata->suspend_mode = EDT_PMODE_NOT_SUPPORTED; 1225 1226 if (tsdata->wake_gpio) { 1227 usleep_range(5000, 6000); 1228 gpiod_set_value_cansleep(tsdata->wake_gpio, 1); 1229 usleep_range(5000, 6000); 1230 } 1231 1232 if (tsdata->reset_gpio) { 1233 usleep_range(5000, 6000); 1234 gpiod_set_value_cansleep(tsdata->reset_gpio, 0); 1235 msleep(300); 1236 } 1237 1238 input = devm_input_allocate_device(&client->dev); 1239 if (!input) { 1240 dev_err(&client->dev, "failed to allocate input device.\n"); 1241 return -ENOMEM; 1242 } 1243 1244 mutex_init(&tsdata->mutex); 1245 tsdata->client = client; 1246 tsdata->input = input; 1247 tsdata->factory_mode = false; 1248 i2c_set_clientdata(client, tsdata); 1249 1250 error = edt_ft5x06_ts_identify(client, tsdata); 1251 if (error) { 1252 dev_err(&client->dev, "touchscreen probe failed\n"); 1253 return error; 1254 } 1255 1256 /* 1257 * Dummy read access. EP0700MLP1 returns bogus data on the first 1258 * register read access and ignores writes. 1259 */ 1260 regmap_read(tsdata->regmap, 0x00, &val); 1261 1262 edt_ft5x06_ts_set_tdata_parameters(tsdata); 1263 edt_ft5x06_ts_set_regs(tsdata); 1264 edt_ft5x06_ts_get_defaults(&client->dev, tsdata); 1265 edt_ft5x06_ts_get_parameters(tsdata); 1266 1267 if (tsdata->reg_addr.reg_report_rate != NO_REGISTER && 1268 !device_property_read_u32(&client->dev, 1269 "report-rate-hz", &report_rate)) { 1270 if (tsdata->version == EDT_M06) 1271 tsdata->report_rate = clamp_val(report_rate, 30, 140); 1272 else 1273 tsdata->report_rate = clamp_val(report_rate, 1, 255); 1274 1275 if (report_rate != tsdata->report_rate) 1276 dev_warn(&client->dev, 1277 "report-rate %dHz is unsupported, use %dHz\n", 1278 report_rate, tsdata->report_rate); 1279 1280 if (tsdata->version == EDT_M06) 1281 tsdata->report_rate /= 10; 1282 1283 regmap_write(tsdata->regmap, tsdata->reg_addr.reg_report_rate, 1284 tsdata->report_rate); 1285 } 1286 1287 dev_dbg(&client->dev, 1288 "Model \"%s\", Rev. \"%s\", %dx%d sensors\n", 1289 tsdata->name, tsdata->fw_version, tsdata->num_x, tsdata->num_y); 1290 1291 input->name = tsdata->name; 1292 input->id.bustype = BUS_I2C; 1293 input->dev.parent = &client->dev; 1294 1295 input_set_abs_params(input, ABS_MT_POSITION_X, 1296 0, tsdata->num_x * 64 - 1, 0, 0); 1297 input_set_abs_params(input, ABS_MT_POSITION_Y, 1298 0, tsdata->num_y * 64 - 1, 0, 0); 1299 1300 touchscreen_parse_properties(input, true, &tsdata->prop); 1301 1302 error = input_mt_init_slots(input, tsdata->max_support_points, 1303 INPUT_MT_DIRECT); 1304 if (error) { 1305 dev_err(&client->dev, "Unable to init MT slots.\n"); 1306 return error; 1307 } 1308 1309 irq_flags = irq_get_trigger_type(client->irq); 1310 if (irq_flags == IRQF_TRIGGER_NONE) 1311 irq_flags = IRQF_TRIGGER_FALLING; 1312 irq_flags |= IRQF_ONESHOT; 1313 1314 error = devm_request_threaded_irq(&client->dev, client->irq, 1315 NULL, edt_ft5x06_ts_isr, irq_flags, 1316 client->name, tsdata); 1317 if (error) { 1318 dev_err(&client->dev, "Unable to request touchscreen IRQ.\n"); 1319 return error; 1320 } 1321 1322 error = input_register_device(input); 1323 if (error) 1324 return error; 1325 1326 edt_ft5x06_ts_prepare_debugfs(tsdata); 1327 1328 dev_dbg(&client->dev, 1329 "EDT FT5x06 initialized: IRQ %d, WAKE pin %d, Reset pin %d.\n", 1330 client->irq, 1331 tsdata->wake_gpio ? desc_to_gpio(tsdata->wake_gpio) : -1, 1332 tsdata->reset_gpio ? desc_to_gpio(tsdata->reset_gpio) : -1); 1333 1334 return 0; 1335 } 1336 1337 static void edt_ft5x06_ts_remove(struct i2c_client *client) 1338 { 1339 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 1340 1341 edt_ft5x06_ts_teardown_debugfs(tsdata); 1342 } 1343 1344 static int edt_ft5x06_ts_suspend(struct device *dev) 1345 { 1346 struct i2c_client *client = to_i2c_client(dev); 1347 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 1348 struct gpio_desc *reset_gpio = tsdata->reset_gpio; 1349 int ret; 1350 1351 if (device_may_wakeup(dev)) 1352 return 0; 1353 1354 if (tsdata->suspend_mode == EDT_PMODE_NOT_SUPPORTED) 1355 return 0; 1356 1357 /* Enter hibernate mode. */ 1358 ret = regmap_write(tsdata->regmap, PMOD_REGISTER_OPMODE, 1359 PMOD_REGISTER_HIBERNATE); 1360 if (ret) 1361 dev_warn(dev, "Failed to set hibernate mode\n"); 1362 1363 if (tsdata->suspend_mode == EDT_PMODE_HIBERNATE) 1364 return 0; 1365 1366 /* 1367 * Power-off according the datasheet. Cut the power may leaf the irq 1368 * line in an undefined state depending on the host pull resistor 1369 * settings. Disable the irq to avoid adjusting each host till the 1370 * device is back in a full functional state. 1371 */ 1372 disable_irq(tsdata->client->irq); 1373 1374 gpiod_set_value_cansleep(reset_gpio, 1); 1375 usleep_range(1000, 2000); 1376 1377 ret = regulator_disable(tsdata->vcc); 1378 if (ret) 1379 dev_warn(dev, "Failed to disable vcc\n"); 1380 ret = regulator_disable(tsdata->iovcc); 1381 if (ret) 1382 dev_warn(dev, "Failed to disable iovcc\n"); 1383 1384 return 0; 1385 } 1386 1387 static int edt_ft5x06_ts_resume(struct device *dev) 1388 { 1389 struct i2c_client *client = to_i2c_client(dev); 1390 struct edt_ft5x06_ts_data *tsdata = i2c_get_clientdata(client); 1391 int ret = 0; 1392 1393 if (device_may_wakeup(dev)) 1394 return 0; 1395 1396 if (tsdata->suspend_mode == EDT_PMODE_NOT_SUPPORTED) 1397 return 0; 1398 1399 if (tsdata->suspend_mode == EDT_PMODE_POWEROFF) { 1400 struct gpio_desc *reset_gpio = tsdata->reset_gpio; 1401 1402 /* 1403 * We can't check if the regulator is a dummy or a real 1404 * regulator. So we need to specify the 5ms reset time (T_rst) 1405 * here instead of the 100us T_rtp time. We also need to wait 1406 * 300ms in case it was a real supply and the power was cutted 1407 * of. Toggle the reset pin is also a way to exit the hibernate 1408 * mode. 1409 */ 1410 gpiod_set_value_cansleep(reset_gpio, 1); 1411 usleep_range(5000, 6000); 1412 1413 ret = regulator_enable(tsdata->iovcc); 1414 if (ret) { 1415 dev_err(dev, "Failed to enable iovcc\n"); 1416 return ret; 1417 } 1418 1419 /* Delay enabling VCC for > 10us (T_ivd) after IOVCC */ 1420 usleep_range(10, 100); 1421 1422 ret = regulator_enable(tsdata->vcc); 1423 if (ret) { 1424 dev_err(dev, "Failed to enable vcc\n"); 1425 regulator_disable(tsdata->iovcc); 1426 return ret; 1427 } 1428 1429 usleep_range(1000, 2000); 1430 gpiod_set_value_cansleep(reset_gpio, 0); 1431 msleep(300); 1432 1433 edt_ft5x06_restore_reg_parameters(tsdata); 1434 enable_irq(tsdata->client->irq); 1435 1436 if (tsdata->factory_mode) 1437 ret = edt_ft5x06_factory_mode(tsdata); 1438 } else { 1439 struct gpio_desc *wake_gpio = tsdata->wake_gpio; 1440 1441 gpiod_set_value_cansleep(wake_gpio, 0); 1442 usleep_range(5000, 6000); 1443 gpiod_set_value_cansleep(wake_gpio, 1); 1444 } 1445 1446 return ret; 1447 } 1448 1449 static DEFINE_SIMPLE_DEV_PM_OPS(edt_ft5x06_ts_pm_ops, 1450 edt_ft5x06_ts_suspend, edt_ft5x06_ts_resume); 1451 1452 static const struct edt_i2c_chip_data edt_ft5x06_data = { 1453 .max_support_points = 5, 1454 }; 1455 1456 static const struct edt_i2c_chip_data edt_ft3518_data = { 1457 .max_support_points = 10, 1458 }; 1459 1460 static const struct edt_i2c_chip_data edt_ft5452_data = { 1461 .max_support_points = 5, 1462 }; 1463 1464 static const struct edt_i2c_chip_data edt_ft5506_data = { 1465 .max_support_points = 10, 1466 }; 1467 1468 static const struct edt_i2c_chip_data edt_ft6236_data = { 1469 .max_support_points = 2, 1470 }; 1471 1472 static const struct edt_i2c_chip_data edt_ft8201_data = { 1473 .max_support_points = 10, 1474 }; 1475 1476 static const struct edt_i2c_chip_data edt_ft8716_data = { 1477 .max_support_points = 10, 1478 }; 1479 1480 static const struct edt_i2c_chip_data edt_ft8719_data = { 1481 .max_support_points = 10, 1482 }; 1483 1484 static const struct i2c_device_id edt_ft5x06_ts_id[] = { 1485 { .name = "edt-ft5x06", .driver_data = (long)&edt_ft5x06_data }, 1486 { .name = "edt-ft5506", .driver_data = (long)&edt_ft5506_data }, 1487 { .name = "ev-ft5726", .driver_data = (long)&edt_ft5506_data }, 1488 { .name = "ft3518", .driver_data = (long)&edt_ft3518_data }, 1489 { .name = "ft5452", .driver_data = (long)&edt_ft5452_data }, 1490 /* Note no edt- prefix for compatibility with the ft6236.c driver */ 1491 { .name = "ft6236", .driver_data = (long)&edt_ft6236_data }, 1492 { .name = "ft8201", .driver_data = (long)&edt_ft8201_data }, 1493 { .name = "ft8716", .driver_data = (long)&edt_ft8716_data }, 1494 { .name = "ft8719", .driver_data = (long)&edt_ft8719_data }, 1495 { /* sentinel */ } 1496 }; 1497 MODULE_DEVICE_TABLE(i2c, edt_ft5x06_ts_id); 1498 1499 static const struct of_device_id edt_ft5x06_of_match[] = { 1500 { .compatible = "edt,edt-ft5206", .data = &edt_ft5x06_data }, 1501 { .compatible = "edt,edt-ft5306", .data = &edt_ft5x06_data }, 1502 { .compatible = "edt,edt-ft5406", .data = &edt_ft5x06_data }, 1503 { .compatible = "edt,edt-ft5506", .data = &edt_ft5506_data }, 1504 { .compatible = "evervision,ev-ft5726", .data = &edt_ft5506_data }, 1505 { .compatible = "focaltech,ft3518", .data = &edt_ft3518_data }, 1506 { .compatible = "focaltech,ft5426", .data = &edt_ft5506_data }, 1507 { .compatible = "focaltech,ft5452", .data = &edt_ft5452_data }, 1508 /* Note focaltech vendor prefix for compatibility with ft6236.c */ 1509 { .compatible = "focaltech,ft6236", .data = &edt_ft6236_data }, 1510 { .compatible = "focaltech,ft8201", .data = &edt_ft8201_data }, 1511 { .compatible = "focaltech,ft8716", .data = &edt_ft8716_data }, 1512 { .compatible = "focaltech,ft8719", .data = &edt_ft8719_data }, 1513 { /* sentinel */ } 1514 }; 1515 MODULE_DEVICE_TABLE(of, edt_ft5x06_of_match); 1516 1517 static struct i2c_driver edt_ft5x06_ts_driver = { 1518 .driver = { 1519 .name = "edt_ft5x06", 1520 .dev_groups = edt_ft5x06_groups, 1521 .of_match_table = edt_ft5x06_of_match, 1522 .pm = pm_sleep_ptr(&edt_ft5x06_ts_pm_ops), 1523 .probe_type = PROBE_PREFER_ASYNCHRONOUS, 1524 }, 1525 .id_table = edt_ft5x06_ts_id, 1526 .probe = edt_ft5x06_ts_probe, 1527 .remove = edt_ft5x06_ts_remove, 1528 }; 1529 1530 module_i2c_driver(edt_ft5x06_ts_driver); 1531 1532 MODULE_AUTHOR("Simon Budig <simon.budig@kernelconcepts.de>"); 1533 MODULE_DESCRIPTION("EDT FT5x06 I2C Touchscreen Driver"); 1534 MODULE_LICENSE("GPL v2"); 1535