1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * Hardware monitoring driver for PMBus devices 4 * 5 * Copyright (c) 2010, 2011 Ericsson AB. 6 * Copyright (c) 2012 Guenter Roeck 7 */ 8 9 #include <linux/atomic.h> 10 #include <linux/debugfs.h> 11 #include <linux/delay.h> 12 #include <linux/dcache.h> 13 #include <linux/kernel.h> 14 #include <linux/math64.h> 15 #include <linux/module.h> 16 #include <linux/init.h> 17 #include <linux/err.h> 18 #include <linux/slab.h> 19 #include <linux/i2c.h> 20 #include <linux/hwmon.h> 21 #include <linux/hwmon-sysfs.h> 22 #include <linux/pmbus.h> 23 #include <linux/regulator/driver.h> 24 #include <linux/regulator/machine.h> 25 #include <linux/thermal.h> 26 #include <linux/workqueue.h> 27 #include "pmbus.h" 28 29 /* 30 * Number of additional attribute pointers to allocate 31 * with each call to krealloc 32 */ 33 #define PMBUS_ATTR_ALLOC_SIZE 32 34 #define PMBUS_NAME_SIZE 24 35 36 /* 37 * The type of operation used for picking the delay between 38 * successive pmbus operations. 39 */ 40 /* PMBUS_OP_WRITE and PMBUS_OP_PAGE_CHANGE are defined in pmbus.h */ 41 42 static int wp = -1; 43 module_param(wp, int, 0444); 44 45 struct pmbus_sensor { 46 struct pmbus_sensor *next; 47 char name[PMBUS_NAME_SIZE]; /* sysfs sensor name */ 48 struct sensor_device_attribute attribute; 49 u8 page; /* page number */ 50 u8 phase; /* phase number, 0xff for all phases */ 51 u16 reg; /* register */ 52 enum pmbus_sensor_classes class; /* sensor class */ 53 bool update; /* runtime sensor update needed */ 54 bool convert; /* Whether or not to apply linear/vid/direct */ 55 int data; /* Sensor data; negative if there was a read error */ 56 }; 57 #define to_pmbus_sensor(_attr) \ 58 container_of(_attr, struct pmbus_sensor, attribute) 59 60 struct pmbus_boolean { 61 char name[PMBUS_NAME_SIZE]; /* sysfs boolean name */ 62 struct sensor_device_attribute attribute; 63 struct pmbus_sensor *s1; 64 struct pmbus_sensor *s2; 65 }; 66 #define to_pmbus_boolean(_attr) \ 67 container_of(_attr, struct pmbus_boolean, attribute) 68 69 struct pmbus_label { 70 char name[PMBUS_NAME_SIZE]; /* sysfs label name */ 71 struct sensor_device_attribute attribute; 72 char label[PMBUS_NAME_SIZE]; /* label */ 73 }; 74 #define to_pmbus_label(_attr) \ 75 container_of(_attr, struct pmbus_label, attribute) 76 77 /* Macros for converting between sensor index and register/page/status mask */ 78 79 #define PB_STATUS_MASK 0xffff 80 #define PB_REG_SHIFT 16 81 #define PB_REG_MASK 0x3ff 82 #define PB_PAGE_SHIFT 26 83 #define PB_PAGE_MASK 0x3f 84 85 #define pb_reg_to_index(page, reg, mask) (((page) << PB_PAGE_SHIFT) | \ 86 ((reg) << PB_REG_SHIFT) | (mask)) 87 88 #define pb_index_to_page(index) (((index) >> PB_PAGE_SHIFT) & PB_PAGE_MASK) 89 #define pb_index_to_reg(index) (((index) >> PB_REG_SHIFT) & PB_REG_MASK) 90 #define pb_index_to_mask(index) ((index) & PB_STATUS_MASK) 91 92 struct pmbus_data { 93 struct device *dev; 94 struct device *hwmon_dev; 95 struct regulator_dev **rdevs; 96 97 u32 flags; /* from platform data */ 98 99 bool have_pmbus_revision; 100 u8 revision; /* The PMBus revision the device is compliant with */ 101 102 int exponent[PMBUS_PAGES]; 103 /* linear mode: exponent for output voltages */ 104 105 const struct pmbus_driver_info *info; 106 107 int max_attributes; 108 int num_attributes; 109 struct attribute_group group; 110 const struct attribute_group **groups; 111 112 struct pmbus_sensor *sensors; 113 114 struct mutex update_lock; 115 116 #if IS_ENABLED(CONFIG_REGULATOR) 117 atomic_t regulator_events[PMBUS_PAGES]; 118 struct work_struct regulator_notify_work; 119 #endif 120 121 bool has_status_word; /* device uses STATUS_WORD register */ 122 int (*read_status)(struct i2c_client *client, int page); 123 124 s16 currpage; /* current page, -1 for unknown/unset */ 125 s16 currphase; /* current phase, 0xff for all, -1 for unknown/unset */ 126 127 int vout_low[PMBUS_PAGES]; /* voltage low margin */ 128 int vout_high[PMBUS_PAGES]; /* voltage high margin */ 129 130 ktime_t next_access_backoff; /* Wait until at least this time */ 131 }; 132 133 struct pmbus_debugfs_entry { 134 struct i2c_client *client; 135 u8 page; 136 u8 reg; 137 }; 138 139 static const int pmbus_fan_rpm_mask[] = { 140 PB_FAN_1_RPM, 141 PB_FAN_2_RPM, 142 PB_FAN_1_RPM, 143 PB_FAN_2_RPM, 144 }; 145 146 static const int pmbus_fan_config_registers[] = { 147 PMBUS_FAN_CONFIG_12, 148 PMBUS_FAN_CONFIG_12, 149 PMBUS_FAN_CONFIG_34, 150 PMBUS_FAN_CONFIG_34 151 }; 152 153 static const int pmbus_fan_command_registers[] = { 154 PMBUS_FAN_COMMAND_1, 155 PMBUS_FAN_COMMAND_2, 156 PMBUS_FAN_COMMAND_3, 157 PMBUS_FAN_COMMAND_4, 158 }; 159 160 void pmbus_clear_cache(struct i2c_client *client) 161 { 162 struct pmbus_data *data = i2c_get_clientdata(client); 163 struct pmbus_sensor *sensor; 164 165 for (sensor = data->sensors; sensor; sensor = sensor->next) 166 sensor->data = -ENODATA; 167 } 168 EXPORT_SYMBOL_NS_GPL(pmbus_clear_cache, "PMBUS"); 169 170 void pmbus_set_update(struct i2c_client *client, u8 reg, bool update) 171 { 172 struct pmbus_data *data = i2c_get_clientdata(client); 173 struct pmbus_sensor *sensor; 174 175 for (sensor = data->sensors; sensor; sensor = sensor->next) 176 if (sensor->reg == reg) 177 sensor->update = update; 178 } 179 EXPORT_SYMBOL_NS_GPL(pmbus_set_update, "PMBUS"); 180 181 /* Some chips need a delay between accesses. */ 182 void pmbus_wait(struct i2c_client *client) 183 { 184 struct pmbus_data *data = i2c_get_clientdata(client); 185 s64 delay; 186 187 if (!data) 188 return; 189 190 delay = ktime_us_delta(data->next_access_backoff, ktime_get()); 191 192 if (delay > 0) 193 fsleep(delay); 194 } 195 EXPORT_SYMBOL_NS_GPL(pmbus_wait, "PMBUS"); 196 197 /* Sets the last operation timestamp for pmbus_wait */ 198 void pmbus_update_ts(struct i2c_client *client, int op) 199 { 200 struct pmbus_data *data = i2c_get_clientdata(client); 201 const struct pmbus_driver_info *info; 202 int delay; 203 204 if (!data) 205 return; 206 207 info = data->info; 208 delay = info->access_delay; 209 210 if (op & PMBUS_OP_WRITE) 211 delay = max(delay, info->write_delay); 212 if (op & PMBUS_OP_PAGE_CHANGE) 213 delay = max(delay, info->page_change_delay); 214 215 if (delay > 0) 216 data->next_access_backoff = ktime_add_us(ktime_get(), delay); 217 } 218 EXPORT_SYMBOL_NS_GPL(pmbus_update_ts, "PMBUS"); 219 220 int pmbus_set_page(struct i2c_client *client, int page, int phase) 221 { 222 struct pmbus_data *data = i2c_get_clientdata(client); 223 int rv; 224 225 if (page < 0) 226 return 0; 227 228 if (!(data->info->func[page] & PMBUS_PAGE_VIRTUAL) && 229 data->info->pages > 1 && page != data->currpage) { 230 pmbus_wait(client); 231 rv = i2c_smbus_write_byte_data(client, PMBUS_PAGE, page); 232 pmbus_update_ts(client, PMBUS_OP_WRITE | PMBUS_OP_PAGE_CHANGE); 233 if (rv < 0) 234 return rv; 235 236 pmbus_wait(client); 237 rv = i2c_smbus_read_byte_data(client, PMBUS_PAGE); 238 pmbus_update_ts(client, 0); 239 if (rv < 0) 240 return rv; 241 242 if (rv != page) 243 return -EIO; 244 } 245 data->currpage = page; 246 247 if (data->info->phases[page] && data->currphase != phase && 248 !(data->info->func[page] & PMBUS_PHASE_VIRTUAL)) { 249 pmbus_wait(client); 250 rv = i2c_smbus_write_byte_data(client, PMBUS_PHASE, 251 phase); 252 pmbus_update_ts(client, PMBUS_OP_WRITE); 253 if (rv) 254 return rv; 255 } 256 data->currphase = phase; 257 258 return 0; 259 } 260 EXPORT_SYMBOL_NS_GPL(pmbus_set_page, "PMBUS"); 261 262 int pmbus_write_byte(struct i2c_client *client, int page, u8 value) 263 { 264 int rv; 265 266 rv = pmbus_set_page(client, page, 0xff); 267 if (rv < 0) 268 return rv; 269 270 pmbus_wait(client); 271 rv = i2c_smbus_write_byte(client, value); 272 pmbus_update_ts(client, PMBUS_OP_WRITE); 273 274 return rv; 275 } 276 EXPORT_SYMBOL_NS_GPL(pmbus_write_byte, "PMBUS"); 277 278 /* 279 * _pmbus_write_byte() is similar to pmbus_write_byte(), but checks if 280 * a device specific mapping function exists and calls it if necessary. 281 */ 282 static int _pmbus_write_byte(struct i2c_client *client, int page, u8 value) 283 { 284 struct pmbus_data *data = i2c_get_clientdata(client); 285 const struct pmbus_driver_info *info = data->info; 286 int status; 287 288 if (info->write_byte) { 289 status = info->write_byte(client, page, value); 290 if (status != -ENODATA) 291 return status; 292 } 293 return pmbus_write_byte(client, page, value); 294 } 295 296 int pmbus_write_word_data(struct i2c_client *client, int page, u8 reg, 297 u16 word) 298 { 299 int rv; 300 301 rv = pmbus_set_page(client, page, 0xff); 302 if (rv < 0) 303 return rv; 304 305 pmbus_wait(client); 306 rv = i2c_smbus_write_word_data(client, reg, word); 307 pmbus_update_ts(client, PMBUS_OP_WRITE); 308 309 return rv; 310 } 311 EXPORT_SYMBOL_NS_GPL(pmbus_write_word_data, "PMBUS"); 312 313 static int pmbus_write_virt_reg(struct i2c_client *client, int page, int reg, 314 u16 word) 315 { 316 int bit; 317 int id; 318 int rv; 319 320 switch (reg) { 321 case PMBUS_VIRT_FAN_TARGET_1 ... PMBUS_VIRT_FAN_TARGET_4: 322 id = reg - PMBUS_VIRT_FAN_TARGET_1; 323 bit = pmbus_fan_rpm_mask[id]; 324 rv = pmbus_update_fan(client, page, id, bit, bit, word); 325 break; 326 default: 327 rv = -ENXIO; 328 break; 329 } 330 331 return rv; 332 } 333 334 /* 335 * _pmbus_write_word_data() is similar to pmbus_write_word_data(), but checks if 336 * a device specific mapping function exists and calls it if necessary. 337 */ 338 static int _pmbus_write_word_data(struct i2c_client *client, int page, int reg, 339 u16 word) 340 { 341 struct pmbus_data *data = i2c_get_clientdata(client); 342 const struct pmbus_driver_info *info = data->info; 343 int status; 344 345 if (info->write_word_data) { 346 status = info->write_word_data(client, page, reg, word); 347 if (status != -ENODATA) 348 return status; 349 } 350 351 if (reg >= PMBUS_VIRT_BASE) 352 return pmbus_write_virt_reg(client, page, reg, word); 353 354 return pmbus_write_word_data(client, page, reg, word); 355 } 356 357 /* 358 * _pmbus_write_byte_data() is similar to pmbus_write_byte_data(), but checks if 359 * a device specific mapping function exists and calls it if necessary. 360 */ 361 static int _pmbus_write_byte_data(struct i2c_client *client, int page, int reg, u8 value) 362 { 363 struct pmbus_data *data = i2c_get_clientdata(client); 364 const struct pmbus_driver_info *info = data->info; 365 int status; 366 367 if (info->write_byte_data) { 368 status = info->write_byte_data(client, page, reg, value); 369 if (status != -ENODATA) 370 return status; 371 } 372 return pmbus_write_byte_data(client, page, reg, value); 373 } 374 375 /* 376 * _pmbus_read_byte_data() is similar to pmbus_read_byte_data(), but checks if 377 * a device specific mapping function exists and calls it if necessary. 378 */ 379 static int _pmbus_read_byte_data(struct i2c_client *client, int page, int reg) 380 { 381 struct pmbus_data *data = i2c_get_clientdata(client); 382 const struct pmbus_driver_info *info = data->info; 383 int status; 384 385 if (info->read_byte_data) { 386 status = info->read_byte_data(client, page, reg); 387 if (status != -ENODATA) 388 return status; 389 } 390 return pmbus_read_byte_data(client, page, reg); 391 } 392 393 int pmbus_update_fan(struct i2c_client *client, int page, int id, 394 u8 config, u8 mask, u16 command) 395 { 396 int from; 397 int rv; 398 u8 to; 399 400 from = _pmbus_read_byte_data(client, page, 401 pmbus_fan_config_registers[id]); 402 if (from < 0) 403 return from; 404 405 to = (from & ~mask) | (config & mask); 406 if (to != from) { 407 rv = _pmbus_write_byte_data(client, page, 408 pmbus_fan_config_registers[id], to); 409 if (rv < 0) 410 return rv; 411 } 412 413 return _pmbus_write_word_data(client, page, 414 pmbus_fan_command_registers[id], command); 415 } 416 EXPORT_SYMBOL_NS_GPL(pmbus_update_fan, "PMBUS"); 417 418 int pmbus_read_word_data(struct i2c_client *client, int page, int phase, u8 reg) 419 { 420 int rv; 421 422 rv = pmbus_set_page(client, page, phase); 423 if (rv < 0) 424 return rv; 425 426 pmbus_wait(client); 427 rv = i2c_smbus_read_word_data(client, reg); 428 pmbus_update_ts(client, 0); 429 430 return rv; 431 } 432 EXPORT_SYMBOL_NS_GPL(pmbus_read_word_data, "PMBUS"); 433 434 static int pmbus_read_virt_reg(struct i2c_client *client, int page, int reg) 435 { 436 int rv; 437 int id; 438 439 switch (reg) { 440 case PMBUS_VIRT_FAN_TARGET_1 ... PMBUS_VIRT_FAN_TARGET_4: 441 id = reg - PMBUS_VIRT_FAN_TARGET_1; 442 rv = pmbus_get_fan_rate_device(client, page, id, rpm); 443 break; 444 default: 445 rv = -ENXIO; 446 break; 447 } 448 449 return rv; 450 } 451 452 /* 453 * _pmbus_read_word_data() is similar to pmbus_read_word_data(), but checks if 454 * a device specific mapping function exists and calls it if necessary. 455 */ 456 static int _pmbus_read_word_data(struct i2c_client *client, int page, 457 int phase, int reg) 458 { 459 struct pmbus_data *data = i2c_get_clientdata(client); 460 const struct pmbus_driver_info *info = data->info; 461 int status; 462 463 if (info->read_word_data) { 464 status = info->read_word_data(client, page, phase, reg); 465 if (status != -ENODATA) 466 return status; 467 } 468 469 if (reg >= PMBUS_VIRT_BASE) 470 return pmbus_read_virt_reg(client, page, reg); 471 472 return pmbus_read_word_data(client, page, phase, reg); 473 } 474 475 /* Same as above, but without phase parameter, for use in check functions */ 476 static int __pmbus_read_word_data(struct i2c_client *client, int page, int reg) 477 { 478 return _pmbus_read_word_data(client, page, 0xff, reg); 479 } 480 481 int pmbus_read_byte_data(struct i2c_client *client, int page, u8 reg) 482 { 483 int rv; 484 485 rv = pmbus_set_page(client, page, 0xff); 486 if (rv < 0) 487 return rv; 488 489 pmbus_wait(client); 490 rv = i2c_smbus_read_byte_data(client, reg); 491 pmbus_update_ts(client, 0); 492 493 return rv; 494 } 495 EXPORT_SYMBOL_NS_GPL(pmbus_read_byte_data, "PMBUS"); 496 497 int pmbus_write_byte_data(struct i2c_client *client, int page, u8 reg, u8 value) 498 { 499 int rv; 500 501 rv = pmbus_set_page(client, page, 0xff); 502 if (rv < 0) 503 return rv; 504 505 pmbus_wait(client); 506 rv = i2c_smbus_write_byte_data(client, reg, value); 507 pmbus_update_ts(client, PMBUS_OP_WRITE); 508 509 return rv; 510 } 511 EXPORT_SYMBOL_NS_GPL(pmbus_write_byte_data, "PMBUS"); 512 513 int pmbus_update_byte_data(struct i2c_client *client, int page, u8 reg, 514 u8 mask, u8 value) 515 { 516 unsigned int tmp; 517 int rv; 518 519 rv = _pmbus_read_byte_data(client, page, reg); 520 if (rv < 0) 521 return rv; 522 523 tmp = (rv & ~mask) | (value & mask); 524 525 if (tmp != rv) 526 rv = _pmbus_write_byte_data(client, page, reg, tmp); 527 528 return rv < 0 ? rv : 0; 529 } 530 EXPORT_SYMBOL_NS_GPL(pmbus_update_byte_data, "PMBUS"); 531 532 /** 533 * pmbus_read_smbus_i2c_block_data() - Read SMBus/I2C block data 534 * @client: Handle to slave device 535 * @reg: Byte interpreted by slave 536 * @data_buf: Byte array into which data will be read 537 * Return: Negative errno or number of bytes read 538 * 539 * PMBus internal function to read a SMBus block from a PMBus chip. 540 * 541 * PMBus chips report various properties using SMBus block read operations. 542 * However, not all I2C controllers support this operation. 543 * 544 * Execute SMBus block read if supported. If not supported, but SMBus I2C block 545 * read is supported, use it instead. Note that at most 31 data bytes can be 546 * read from the device if i2c_smbus_read_i2c_block_data() is used to read the 547 * data. This is a SMBUs protocol limit which can not be avoided. 548 * 549 * Return -EOPNOTSUPP if neither I2C_FUNC_SMBUS_READ_BLOCK_DATA nor 550 * I2C_FUNC_SMBUS_READ_I2C_BLOCK is supported. 551 * 552 * Callers must hold pmbus_lock or execute calls from the probe function. 553 */ 554 int pmbus_read_smbus_i2c_block_data(struct i2c_client *client, u8 reg, char *data_buf) 555 { 556 u8 buf[I2C_SMBUS_BLOCK_MAX]; 557 int blen, len, ret; 558 559 if (i2c_check_functionality(client->adapter, 560 I2C_FUNC_SMBUS_READ_BLOCK_DATA)) { 561 pmbus_wait(client); 562 ret = i2c_smbus_read_block_data(client, reg, data_buf); 563 pmbus_update_ts(client, 0); 564 return ret; 565 } 566 567 if (!i2c_check_functionality(client->adapter, I2C_FUNC_SMBUS_READ_I2C_BLOCK)) { 568 dev_err_once(&client->dev, "I2C adapter does not support I2C_FUNC_SMBUS_READ_I2C_BLOCK\n"); 569 return -EOPNOTSUPP; 570 } 571 572 /* 573 * If the returned data is valid SMBus block data, the first byte 574 * must be the data length. 575 * 576 * i2c_smbus_read_i2c_block_data() may return an error if the chip 577 * sends NACK before the number of requested bytes is received. 578 * Handle this by reading the data length first, then reading the 579 * entire message up to I2C_SMBUS_BLOCK_MAX bytes. This ensures 580 * that requested number of bytes never exceeds the number of 581 * bytes sent by the chip. 582 */ 583 pmbus_wait(client); 584 ret = i2c_smbus_read_i2c_block_data(client, reg, 1, buf); 585 pmbus_update_ts(client, 0); 586 if (ret < 0) 587 return ret; 588 589 len = buf[0]; 590 if (len == 0) 591 return 0; 592 blen = len; 593 if (len >= I2C_SMBUS_BLOCK_MAX) 594 len = I2C_SMBUS_BLOCK_MAX - 1; 595 pmbus_wait(client); 596 ret = i2c_smbus_read_i2c_block_data(client, reg, len + 1, buf); 597 pmbus_update_ts(client, 0); 598 if (ret < 0) 599 return ret; 600 if (buf[0] != blen) 601 return -EIO; 602 memcpy(data_buf, buf + 1, len); 603 return len; 604 } 605 EXPORT_SYMBOL_NS_GPL(pmbus_read_smbus_i2c_block_data, "PMBUS"); 606 607 static int pmbus_read_block_data(struct i2c_client *client, int page, u8 reg, 608 char *data_buf) 609 { 610 int rv; 611 612 rv = pmbus_set_page(client, page, 0xff); 613 if (rv < 0) 614 return rv; 615 616 return pmbus_read_smbus_i2c_block_data(client, reg, data_buf); 617 } 618 619 static struct pmbus_sensor *pmbus_find_sensor(struct pmbus_data *data, int page, 620 int reg) 621 { 622 struct pmbus_sensor *sensor; 623 624 for (sensor = data->sensors; sensor; sensor = sensor->next) { 625 if (sensor->page == page && sensor->reg == reg) 626 return sensor; 627 } 628 629 return ERR_PTR(-EINVAL); 630 } 631 632 static int pmbus_get_fan_rate(struct i2c_client *client, int page, int id, 633 enum pmbus_fan_mode mode, 634 bool from_cache) 635 { 636 struct pmbus_data *data = i2c_get_clientdata(client); 637 bool want_rpm, have_rpm; 638 struct pmbus_sensor *s; 639 int config; 640 int reg; 641 642 want_rpm = (mode == rpm); 643 644 if (from_cache) { 645 reg = want_rpm ? PMBUS_VIRT_FAN_TARGET_1 : PMBUS_VIRT_PWM_1; 646 s = pmbus_find_sensor(data, page, reg + id); 647 if (IS_ERR(s)) 648 return PTR_ERR(s); 649 650 return s->data; 651 } 652 653 config = _pmbus_read_byte_data(client, page, 654 pmbus_fan_config_registers[id]); 655 if (config < 0) 656 return config; 657 658 have_rpm = !!(config & pmbus_fan_rpm_mask[id]); 659 if (want_rpm == have_rpm) 660 return pmbus_read_word_data(client, page, 0xff, 661 pmbus_fan_command_registers[id]); 662 663 /* Can't sensibly map between RPM and PWM, just return zero */ 664 return 0; 665 } 666 667 int pmbus_get_fan_rate_device(struct i2c_client *client, int page, int id, 668 enum pmbus_fan_mode mode) 669 { 670 return pmbus_get_fan_rate(client, page, id, mode, false); 671 } 672 EXPORT_SYMBOL_NS_GPL(pmbus_get_fan_rate_device, "PMBUS"); 673 674 int pmbus_get_fan_rate_cached(struct i2c_client *client, int page, int id, 675 enum pmbus_fan_mode mode) 676 { 677 return pmbus_get_fan_rate(client, page, id, mode, true); 678 } 679 EXPORT_SYMBOL_NS_GPL(pmbus_get_fan_rate_cached, "PMBUS"); 680 681 static void pmbus_clear_fault_page(struct i2c_client *client, int page) 682 { 683 _pmbus_write_byte(client, page, PMBUS_CLEAR_FAULTS); 684 } 685 686 void pmbus_clear_faults(struct i2c_client *client) 687 { 688 struct pmbus_data *data = i2c_get_clientdata(client); 689 int i; 690 691 for (i = 0; i < data->info->pages; i++) 692 pmbus_clear_fault_page(client, i); 693 } 694 EXPORT_SYMBOL_NS_GPL(pmbus_clear_faults, "PMBUS"); 695 696 static int pmbus_check_status_cml(struct i2c_client *client) 697 { 698 struct pmbus_data *data = i2c_get_clientdata(client); 699 int status, status2; 700 701 status = data->read_status(client, -1); 702 if (status < 0 || (status & PB_STATUS_CML)) { 703 status2 = _pmbus_read_byte_data(client, -1, PMBUS_STATUS_CML); 704 if (status2 < 0 || (status2 & PB_CML_FAULT_INVALID_COMMAND)) 705 return -EIO; 706 } 707 return 0; 708 } 709 710 static bool pmbus_check_register(struct i2c_client *client, 711 int (*func)(struct i2c_client *client, 712 int page, int reg), 713 int page, int reg) 714 { 715 int rv; 716 struct pmbus_data *data = i2c_get_clientdata(client); 717 718 rv = func(client, page, reg); 719 if (rv >= 0 && !(data->flags & PMBUS_SKIP_STATUS_CHECK)) 720 rv = pmbus_check_status_cml(client); 721 if (rv < 0 && (data->flags & PMBUS_READ_STATUS_AFTER_FAILED_CHECK)) 722 data->read_status(client, -1); 723 if (reg < PMBUS_VIRT_BASE) 724 pmbus_clear_fault_page(client, -1); 725 return rv >= 0; 726 } 727 728 static bool pmbus_check_status_register(struct i2c_client *client, int page) 729 { 730 int status; 731 struct pmbus_data *data = i2c_get_clientdata(client); 732 733 status = data->read_status(client, page); 734 if (status >= 0 && !(data->flags & PMBUS_SKIP_STATUS_CHECK) && 735 (status & PB_STATUS_CML)) { 736 status = _pmbus_read_byte_data(client, -1, PMBUS_STATUS_CML); 737 if (status < 0 || (status & PB_CML_FAULT_INVALID_COMMAND)) 738 status = -EIO; 739 } 740 741 pmbus_clear_fault_page(client, -1); 742 return status >= 0; 743 } 744 745 bool pmbus_check_byte_register(struct i2c_client *client, int page, int reg) 746 { 747 return pmbus_check_register(client, _pmbus_read_byte_data, page, reg); 748 } 749 EXPORT_SYMBOL_NS_GPL(pmbus_check_byte_register, "PMBUS"); 750 751 bool pmbus_check_word_register(struct i2c_client *client, int page, int reg) 752 { 753 return pmbus_check_register(client, __pmbus_read_word_data, page, reg); 754 } 755 EXPORT_SYMBOL_NS_GPL(pmbus_check_word_register, "PMBUS"); 756 757 static bool __maybe_unused pmbus_check_block_register(struct i2c_client *client, 758 int page, int reg) 759 { 760 int rv; 761 struct pmbus_data *data = i2c_get_clientdata(client); 762 char data_buf[I2C_SMBUS_BLOCK_MAX + 2]; 763 764 rv = pmbus_read_block_data(client, page, reg, data_buf); 765 if (rv >= 0 && !(data->flags & PMBUS_SKIP_STATUS_CHECK)) 766 rv = pmbus_check_status_cml(client); 767 if (rv < 0 && (data->flags & PMBUS_READ_STATUS_AFTER_FAILED_CHECK)) 768 data->read_status(client, -1); 769 pmbus_clear_fault_page(client, -1); 770 return rv >= 0; 771 } 772 773 const struct pmbus_driver_info *pmbus_get_driver_info(struct i2c_client *client) 774 { 775 struct pmbus_data *data = i2c_get_clientdata(client); 776 777 return data->info; 778 } 779 EXPORT_SYMBOL_NS_GPL(pmbus_get_driver_info, "PMBUS"); 780 781 static int pmbus_get_status(struct i2c_client *client, int page, int reg) 782 { 783 struct pmbus_data *data = i2c_get_clientdata(client); 784 int status; 785 786 switch (reg) { 787 case PMBUS_STATUS_WORD: 788 status = data->read_status(client, page); 789 break; 790 default: 791 status = _pmbus_read_byte_data(client, page, reg); 792 break; 793 } 794 if (status < 0) 795 pmbus_clear_faults(client); 796 return status; 797 } 798 799 static void pmbus_update_sensor_data(struct i2c_client *client, struct pmbus_sensor *sensor) 800 { 801 if (sensor->data < 0 || sensor->update) 802 sensor->data = _pmbus_read_word_data(client, sensor->page, 803 sensor->phase, sensor->reg); 804 } 805 806 /* 807 * Convert ieee754 sensor values to milli- or micro-units 808 * depending on sensor type. 809 * 810 * ieee754 data format: 811 * bit 15: sign 812 * bit 10..14: exponent 813 * bit 0..9: mantissa 814 * exponent=0: 815 * v=(−1)^signbit * 2^(−14) * 0.significantbits 816 * exponent=1..30: 817 * v=(−1)^signbit * 2^(exponent - 15) * 1.significantbits 818 * exponent=31: 819 * v=NaN 820 * 821 * Add the number mantissa bits into the calculations for simplicity. 822 * To do that, add '10' to the exponent. By doing that, we can just add 823 * 0x400 to normal values and get the expected result. 824 */ 825 static long pmbus_reg2data_ieee754(struct pmbus_data *data, 826 struct pmbus_sensor *sensor) 827 { 828 int exponent; 829 bool sign; 830 long val; 831 832 /* only support half precision for now */ 833 sign = sensor->data & 0x8000; 834 exponent = (sensor->data >> 10) & 0x1f; 835 val = sensor->data & 0x3ff; 836 837 if (exponent == 0) { /* subnormal */ 838 exponent = -(14 + 10); 839 } else if (exponent == 0x1f) { /* NaN, convert to min/max */ 840 exponent = 0; 841 val = 65504; 842 } else { 843 exponent -= (15 + 10); /* normal */ 844 val |= 0x400; 845 } 846 847 /* scale result to milli-units for all sensors except fans */ 848 if (sensor->class != PSC_FAN) 849 val = val * 1000L; 850 851 /* scale result to micro-units for power sensors */ 852 if (sensor->class == PSC_POWER) 853 val = val * 1000L; 854 855 if (exponent >= 0) 856 val <<= exponent; 857 else 858 val >>= -exponent; 859 860 if (sign) 861 val = -val; 862 863 return val; 864 } 865 866 /* 867 * Convert linear sensor values to milli- or micro-units 868 * depending on sensor type. 869 */ 870 static s64 pmbus_reg2data_linear(struct pmbus_data *data, 871 struct pmbus_sensor *sensor) 872 { 873 s16 exponent; 874 s32 mantissa; 875 s64 val; 876 877 if (sensor->class == PSC_VOLTAGE_OUT) { /* LINEAR16 */ 878 exponent = data->exponent[sensor->page]; 879 mantissa = (u16)sensor->data; 880 } else { /* LINEAR11 */ 881 exponent = ((s16)sensor->data) >> 11; 882 mantissa = ((s16)((sensor->data & 0x7ff) << 5)) >> 5; 883 } 884 885 val = mantissa; 886 887 /* scale result to milli-units for all sensors except fans */ 888 if (sensor->class != PSC_FAN) 889 val = val * 1000LL; 890 891 /* scale result to micro-units for power sensors */ 892 if (sensor->class == PSC_POWER) 893 val = val * 1000LL; 894 895 if (exponent >= 0) 896 val <<= exponent; 897 else 898 val >>= -exponent; 899 900 return val; 901 } 902 903 /* 904 * Convert direct sensor values to milli- or micro-units 905 * depending on sensor type. 906 */ 907 static s64 pmbus_reg2data_direct(struct pmbus_data *data, 908 struct pmbus_sensor *sensor) 909 { 910 s64 b, val = (s16)sensor->data; 911 s32 m, R; 912 913 m = data->info->m[sensor->class]; 914 b = data->info->b[sensor->class]; 915 R = data->info->R[sensor->class]; 916 917 if (m == 0) 918 return 0; 919 920 /* X = 1/m * (Y * 10^-R - b) */ 921 R = -R; 922 /* scale result to milli-units for everything but fans */ 923 if (!(sensor->class == PSC_FAN || sensor->class == PSC_PWM)) { 924 R += 3; 925 b *= 1000; 926 } 927 928 /* scale result to micro-units for power sensors */ 929 if (sensor->class == PSC_POWER) { 930 R += 3; 931 b *= 1000; 932 } 933 934 while (R > 0) { 935 val *= 10; 936 R--; 937 } 938 while (R < 0) { 939 val = div_s64(val + 5LL, 10L); /* round closest */ 940 R++; 941 } 942 943 val = div_s64(val - b, m); 944 return val; 945 } 946 947 /* 948 * Convert VID sensor values to milli- or micro-units 949 * depending on sensor type. 950 */ 951 static s64 pmbus_reg2data_vid(struct pmbus_data *data, 952 struct pmbus_sensor *sensor) 953 { 954 long val = sensor->data; 955 long rv = 0; 956 957 switch (data->info->vrm_version[sensor->page]) { 958 case vr11: 959 if (val >= 0x02 && val <= 0xb2) 960 rv = DIV_ROUND_CLOSEST(160000 - (val - 2) * 625, 100); 961 break; 962 case vr12: 963 if (val >= 0x01) 964 rv = 250 + (val - 1) * 5; 965 break; 966 case vr13: 967 if (val >= 0x01) 968 rv = 500 + (val - 1) * 10; 969 break; 970 case imvp9: 971 if (val >= 0x01) 972 rv = 200 + (val - 1) * 10; 973 break; 974 case amd625mv: 975 if (val >= 0x0 && val <= 0xd8) 976 rv = DIV_ROUND_CLOSEST(155000 - val * 625, 100); 977 break; 978 case nvidia195mv: 979 if (val >= 0x01) 980 rv = 195 + (val - 1) * 5; /* VID step is 5mv */ 981 break; 982 } 983 return rv; 984 } 985 986 static s64 pmbus_reg2data(struct pmbus_data *data, struct pmbus_sensor *sensor) 987 { 988 s64 val; 989 990 if (!sensor->convert) 991 return sensor->data; 992 993 switch (data->info->format[sensor->class]) { 994 case direct: 995 val = pmbus_reg2data_direct(data, sensor); 996 break; 997 case vid: 998 val = pmbus_reg2data_vid(data, sensor); 999 break; 1000 case ieee754: 1001 val = pmbus_reg2data_ieee754(data, sensor); 1002 break; 1003 case linear: 1004 default: 1005 val = pmbus_reg2data_linear(data, sensor); 1006 break; 1007 } 1008 return val; 1009 } 1010 1011 #define MAX_IEEE_MANTISSA (0x7ff * 1000) 1012 #define MIN_IEEE_MANTISSA (0x400 * 1000) 1013 1014 static u16 pmbus_data2reg_ieee754(struct pmbus_data *data, 1015 struct pmbus_sensor *sensor, long val) 1016 { 1017 u16 exponent = (15 + 10); 1018 long mantissa; 1019 u16 sign = 0; 1020 1021 /* simple case */ 1022 if (val == 0) 1023 return 0; 1024 1025 if (val < 0) { 1026 sign = 0x8000; 1027 val = -val; 1028 } 1029 1030 /* Power is in uW. Convert to mW before converting. */ 1031 if (sensor->class == PSC_POWER) 1032 val = DIV_ROUND_CLOSEST(val, 1000L); 1033 1034 /* 1035 * For simplicity, convert fan data to milli-units 1036 * before calculating the exponent. 1037 */ 1038 if (sensor->class == PSC_FAN) 1039 val = val * 1000; 1040 1041 /* Reduce large mantissa until it fits into 10 bit */ 1042 while (val > MAX_IEEE_MANTISSA && exponent < 30) { 1043 exponent++; 1044 val >>= 1; 1045 } 1046 /* 1047 * Increase small mantissa to generate valid 'normal' 1048 * number 1049 */ 1050 while (val < MIN_IEEE_MANTISSA && exponent > 1) { 1051 exponent--; 1052 val <<= 1; 1053 } 1054 1055 /* Convert mantissa from milli-units to units */ 1056 mantissa = DIV_ROUND_CLOSEST(val, 1000); 1057 1058 /* 1059 * Ensure that the resulting number is within range. 1060 * Valid range is 0x400..0x7ff, where bit 10 reflects 1061 * the implied high bit in normalized ieee754 numbers. 1062 * Set the range to 0x400..0x7ff to reflect this. 1063 * The upper bit is then removed by the mask against 1064 * 0x3ff in the final assignment. 1065 */ 1066 if (mantissa > 0x7ff) 1067 mantissa = 0x7ff; 1068 else if (mantissa < 0x400) 1069 mantissa = 0x400; 1070 1071 /* Convert to sign, 5 bit exponent, 10 bit mantissa */ 1072 return sign | (mantissa & 0x3ff) | ((exponent << 10) & 0x7c00); 1073 } 1074 1075 #define MAX_LIN_MANTISSA (1023 * 1000) 1076 #define MIN_LIN_MANTISSA (511 * 1000) 1077 1078 static u16 pmbus_data2reg_linear(struct pmbus_data *data, 1079 struct pmbus_sensor *sensor, s64 val) 1080 { 1081 s16 exponent = 0, mantissa; 1082 bool negative = false; 1083 1084 /* simple case */ 1085 if (val == 0) 1086 return 0; 1087 1088 if (sensor->class == PSC_VOLTAGE_OUT) { 1089 /* LINEAR16 does not support negative voltages */ 1090 if (val < 0) 1091 return 0; 1092 1093 /* 1094 * For a static exponents, we don't have a choice 1095 * but to adjust the value to it. 1096 */ 1097 if (data->exponent[sensor->page] < 0) 1098 val <<= -data->exponent[sensor->page]; 1099 else 1100 val >>= data->exponent[sensor->page]; 1101 val = DIV_ROUND_CLOSEST_ULL(val, 1000); 1102 return clamp_val(val, 0, 0xffff); 1103 } 1104 1105 if (val < 0) { 1106 negative = true; 1107 val = -val; 1108 } 1109 1110 /* Power is in uW. Convert to mW before converting. */ 1111 if (sensor->class == PSC_POWER) 1112 val = DIV_ROUND_CLOSEST_ULL(val, 1000); 1113 1114 /* 1115 * For simplicity, convert fan data to milli-units 1116 * before calculating the exponent. 1117 */ 1118 if (sensor->class == PSC_FAN) 1119 val = val * 1000LL; 1120 1121 /* Reduce large mantissa until it fits into 10 bit */ 1122 while (val >= MAX_LIN_MANTISSA && exponent < 15) { 1123 exponent++; 1124 val >>= 1; 1125 } 1126 /* Increase small mantissa to improve precision */ 1127 while (val < MIN_LIN_MANTISSA && exponent > -15) { 1128 exponent--; 1129 val <<= 1; 1130 } 1131 1132 /* Convert mantissa from milli-units to units */ 1133 mantissa = clamp_val(DIV_ROUND_CLOSEST_ULL(val, 1000), 0, 0x3ff); 1134 1135 /* restore sign */ 1136 if (negative) 1137 mantissa = -mantissa; 1138 1139 /* Convert to 5 bit exponent, 11 bit mantissa */ 1140 return (mantissa & 0x7ff) | ((exponent << 11) & 0xf800); 1141 } 1142 1143 static u16 pmbus_data2reg_direct(struct pmbus_data *data, 1144 struct pmbus_sensor *sensor, s64 val) 1145 { 1146 s64 b; 1147 s32 m, R; 1148 1149 m = data->info->m[sensor->class]; 1150 b = data->info->b[sensor->class]; 1151 R = data->info->R[sensor->class]; 1152 1153 /* Power is in uW. Adjust R and b. */ 1154 if (sensor->class == PSC_POWER) { 1155 R -= 3; 1156 b *= 1000; 1157 } 1158 1159 /* Calculate Y = (m * X + b) * 10^R */ 1160 if (!(sensor->class == PSC_FAN || sensor->class == PSC_PWM)) { 1161 R -= 3; /* Adjust R and b for data in milli-units */ 1162 b *= 1000; 1163 } 1164 val = val * m + b; 1165 1166 while (R > 0) { 1167 val *= 10; 1168 R--; 1169 } 1170 while (R < 0) { 1171 val = div_s64(val + 5LL, 10L); /* round closest */ 1172 R++; 1173 } 1174 1175 return (u16)clamp_val(val, S16_MIN, S16_MAX); 1176 } 1177 1178 static u16 pmbus_data2reg_vid(struct pmbus_data *data, 1179 struct pmbus_sensor *sensor, s64 val) 1180 { 1181 switch (data->info->vrm_version[sensor->page]) { 1182 case vr12: 1183 val = clamp_val(val, 250, 1520); 1184 return 1 + DIV_ROUND_CLOSEST_ULL(val - 250, 5); 1185 case vr13: 1186 val = clamp_val(val, 500, 3040); 1187 return 1 + DIV_ROUND_CLOSEST_ULL(val - 500, 10); 1188 case imvp9: 1189 val = clamp_val(val, 200, 2740); 1190 return 1 + DIV_ROUND_CLOSEST_ULL(val - 200, 10); 1191 case amd625mv: 1192 val = clamp_val(val, 200, 1550); 1193 return DIV_ROUND_CLOSEST_ULL((1550LL - val) * 100LL, 625); 1194 case nvidia195mv: 1195 val = clamp_val(val, 195, 1465); 1196 return 1 + DIV_ROUND_CLOSEST_ULL(val - 195, 5); 1197 case vr11: 1198 default: 1199 val = clamp_val(val, 500, 1600); 1200 return 2 + DIV_ROUND_CLOSEST_ULL((1600LL - val) * 100LL, 625); 1201 } 1202 } 1203 1204 static u16 pmbus_data2reg(struct pmbus_data *data, 1205 struct pmbus_sensor *sensor, s64 val) 1206 { 1207 u16 regval; 1208 1209 if (!sensor->convert) 1210 return val; 1211 1212 switch (data->info->format[sensor->class]) { 1213 case direct: 1214 regval = pmbus_data2reg_direct(data, sensor, val); 1215 break; 1216 case vid: 1217 regval = pmbus_data2reg_vid(data, sensor, val); 1218 break; 1219 case ieee754: 1220 regval = pmbus_data2reg_ieee754(data, sensor, val); 1221 break; 1222 case linear: 1223 default: 1224 regval = pmbus_data2reg_linear(data, sensor, val); 1225 break; 1226 } 1227 return regval; 1228 } 1229 1230 /* 1231 * Return boolean calculated from converted data. 1232 * <index> defines a status register index and mask. 1233 * The mask is in the lower 8 bits, the register index is in bits 8..23. 1234 * 1235 * The associated pmbus_boolean structure contains optional pointers to two 1236 * sensor attributes. If specified, those attributes are compared against each 1237 * other to determine if a limit has been exceeded. 1238 * 1239 * If the sensor attribute pointers are NULL, the function returns true if 1240 * (status[reg] & mask) is true. 1241 * 1242 * If sensor attribute pointers are provided, a comparison against a specified 1243 * limit has to be performed to determine the boolean result. 1244 * In this case, the function returns true if v1 >= v2 (where v1 and v2 are 1245 * sensor values referenced by sensor attribute pointers s1 and s2). 1246 * 1247 * To determine if an object exceeds upper limits, specify <s1,s2> = <v,limit>. 1248 * To determine if an object exceeds lower limits, specify <s1,s2> = <limit,v>. 1249 * 1250 * If a negative value is stored in any of the referenced registers, this value 1251 * reflects an error code which will be returned. 1252 */ 1253 static int pmbus_get_boolean(struct i2c_client *client, struct pmbus_boolean *b, 1254 int index) 1255 { 1256 struct pmbus_data *data = i2c_get_clientdata(client); 1257 struct pmbus_sensor *s1 = b->s1; 1258 struct pmbus_sensor *s2 = b->s2; 1259 u16 mask = pb_index_to_mask(index); 1260 u8 page = pb_index_to_page(index); 1261 u16 reg = pb_index_to_reg(index); 1262 int ret, status; 1263 u16 regval; 1264 1265 guard(pmbus_lock)(client); 1266 1267 status = pmbus_get_status(client, page, reg); 1268 if (status < 0) 1269 return status; 1270 1271 if (s1) 1272 pmbus_update_sensor_data(client, s1); 1273 if (s2) 1274 pmbus_update_sensor_data(client, s2); 1275 1276 regval = status & mask; 1277 if (regval) { 1278 /* Generic STATUS_WORD alarms are not individually clearable. */ 1279 if (data->revision >= PMBUS_REV_12 && 1280 reg != PMBUS_STATUS_WORD) { 1281 ret = _pmbus_write_byte_data(client, page, reg, regval); 1282 if (ret) 1283 return ret; 1284 } else { 1285 pmbus_clear_fault_page(client, page); 1286 } 1287 } 1288 if (s1 && s2) { 1289 s64 v1, v2; 1290 1291 if (s1->data < 0) 1292 return s1->data; 1293 if (s2->data < 0) 1294 return s2->data; 1295 1296 v1 = pmbus_reg2data(data, s1); 1297 v2 = pmbus_reg2data(data, s2); 1298 ret = !!(regval && v1 >= v2); 1299 } else { 1300 ret = !!regval; 1301 } 1302 return ret; 1303 } 1304 1305 static ssize_t pmbus_show_boolean(struct device *dev, 1306 struct device_attribute *da, char *buf) 1307 { 1308 struct sensor_device_attribute *attr = to_sensor_dev_attr(da); 1309 struct pmbus_boolean *boolean = to_pmbus_boolean(attr); 1310 struct i2c_client *client = to_i2c_client(dev->parent); 1311 int val; 1312 1313 val = pmbus_get_boolean(client, boolean, attr->index); 1314 if (val < 0) 1315 return val; 1316 return sysfs_emit(buf, "%d\n", val); 1317 } 1318 1319 static ssize_t pmbus_show_zero(struct device *dev, 1320 struct device_attribute *devattr, char *buf) 1321 { 1322 return sysfs_emit(buf, "0\n"); 1323 } 1324 1325 static ssize_t pmbus_show_sensor(struct device *dev, 1326 struct device_attribute *devattr, char *buf) 1327 { 1328 struct i2c_client *client = to_i2c_client(dev->parent); 1329 struct sensor_device_attribute *attr = to_sensor_dev_attr(devattr); 1330 struct pmbus_sensor *sensor = to_pmbus_sensor(attr); 1331 struct pmbus_data *data = i2c_get_clientdata(client); 1332 s64 val; 1333 1334 scoped_guard(pmbus_lock, client) { 1335 pmbus_update_sensor_data(client, sensor); 1336 if (sensor->data < 0) 1337 return sensor->data; 1338 val = pmbus_reg2data(data, sensor); 1339 } 1340 1341 return sysfs_emit(buf, "%lld\n", val); 1342 } 1343 1344 static ssize_t pmbus_set_sensor(struct device *dev, 1345 struct device_attribute *devattr, 1346 const char *buf, size_t count) 1347 { 1348 struct i2c_client *client = to_i2c_client(dev->parent); 1349 struct pmbus_data *data = i2c_get_clientdata(client); 1350 struct sensor_device_attribute *attr = to_sensor_dev_attr(devattr); 1351 struct pmbus_sensor *sensor = to_pmbus_sensor(attr); 1352 s64 val; 1353 int ret; 1354 u16 regval; 1355 1356 if (kstrtos64(buf, 10, &val) < 0) 1357 return -EINVAL; 1358 1359 guard(pmbus_lock)(client); 1360 1361 regval = pmbus_data2reg(data, sensor, val); 1362 ret = _pmbus_write_word_data(client, sensor->page, sensor->reg, regval); 1363 if (ret < 0) 1364 return ret; 1365 1366 sensor->data = -ENODATA; 1367 return count; 1368 } 1369 1370 static ssize_t pmbus_show_label(struct device *dev, 1371 struct device_attribute *da, char *buf) 1372 { 1373 struct sensor_device_attribute *attr = to_sensor_dev_attr(da); 1374 struct pmbus_label *label = to_pmbus_label(attr); 1375 1376 return sysfs_emit(buf, "%s\n", label->label); 1377 } 1378 1379 static int pmbus_add_attribute(struct pmbus_data *data, struct attribute *attr) 1380 { 1381 if (data->num_attributes >= data->max_attributes - 1) { 1382 int new_max_attrs = data->max_attributes + PMBUS_ATTR_ALLOC_SIZE; 1383 void *new_attrs = devm_krealloc_array(data->dev, data->group.attrs, 1384 new_max_attrs, sizeof(void *), 1385 GFP_KERNEL); 1386 if (!new_attrs) 1387 return -ENOMEM; 1388 data->group.attrs = new_attrs; 1389 data->max_attributes = new_max_attrs; 1390 } 1391 1392 data->group.attrs[data->num_attributes++] = attr; 1393 data->group.attrs[data->num_attributes] = NULL; 1394 return 0; 1395 } 1396 1397 static void pmbus_dev_attr_init(struct device_attribute *dev_attr, 1398 const char *name, 1399 umode_t mode, 1400 ssize_t (*show)(struct device *dev, 1401 struct device_attribute *attr, 1402 char *buf), 1403 ssize_t (*store)(struct device *dev, 1404 struct device_attribute *attr, 1405 const char *buf, size_t count)) 1406 { 1407 sysfs_attr_init(&dev_attr->attr); 1408 dev_attr->attr.name = name; 1409 dev_attr->attr.mode = mode; 1410 dev_attr->show = show; 1411 dev_attr->store = store; 1412 } 1413 1414 static void pmbus_attr_init(struct sensor_device_attribute *a, 1415 const char *name, 1416 umode_t mode, 1417 ssize_t (*show)(struct device *dev, 1418 struct device_attribute *attr, 1419 char *buf), 1420 ssize_t (*store)(struct device *dev, 1421 struct device_attribute *attr, 1422 const char *buf, size_t count), 1423 int idx) 1424 { 1425 pmbus_dev_attr_init(&a->dev_attr, name, mode, show, store); 1426 a->index = idx; 1427 } 1428 1429 static int pmbus_add_boolean(struct pmbus_data *data, 1430 const char *name, const char *type, int seq, 1431 struct pmbus_sensor *s1, 1432 struct pmbus_sensor *s2, 1433 u8 page, u16 reg, u16 mask) 1434 { 1435 struct pmbus_boolean *boolean; 1436 struct sensor_device_attribute *a; 1437 1438 if (WARN((s1 && !s2) || (!s1 && s2), "Bad s1/s2 parameters\n")) 1439 return -EINVAL; 1440 1441 boolean = devm_kzalloc(data->dev, sizeof(*boolean), GFP_KERNEL); 1442 if (!boolean) 1443 return -ENOMEM; 1444 1445 a = &boolean->attribute; 1446 1447 snprintf(boolean->name, sizeof(boolean->name), "%s%d_%s", 1448 name, seq, type); 1449 boolean->s1 = s1; 1450 boolean->s2 = s2; 1451 pmbus_attr_init(a, boolean->name, 0444, pmbus_show_boolean, NULL, 1452 pb_reg_to_index(page, reg, mask)); 1453 1454 return pmbus_add_attribute(data, &a->dev_attr.attr); 1455 } 1456 1457 /* of thermal for pmbus temperature sensors */ 1458 struct pmbus_thermal_data { 1459 struct pmbus_data *pmbus_data; 1460 struct pmbus_sensor *sensor; 1461 }; 1462 1463 static int pmbus_thermal_get_temp(struct thermal_zone_device *tz, int *temp) 1464 { 1465 struct pmbus_thermal_data *tdata = thermal_zone_device_priv(tz); 1466 struct pmbus_sensor *sensor = tdata->sensor; 1467 struct pmbus_data *pmbus_data = tdata->pmbus_data; 1468 struct i2c_client *client = to_i2c_client(pmbus_data->dev); 1469 struct device *dev = pmbus_data->hwmon_dev; 1470 int _temp; 1471 1472 if (!dev) { 1473 /* May not even get to hwmon yet */ 1474 *temp = 0; 1475 return 0; 1476 } 1477 1478 scoped_guard(pmbus_lock, client) { 1479 pmbus_update_sensor_data(client, sensor); 1480 if (sensor->data < 0) 1481 return sensor->data; 1482 _temp = (int)pmbus_reg2data(pmbus_data, sensor); 1483 } 1484 1485 *temp = _temp; 1486 return 0; 1487 } 1488 1489 static const struct thermal_zone_device_ops pmbus_thermal_ops = { 1490 .get_temp = pmbus_thermal_get_temp, 1491 }; 1492 1493 static int pmbus_thermal_add_sensor(struct pmbus_data *pmbus_data, 1494 struct pmbus_sensor *sensor, int index) 1495 { 1496 struct device *dev = pmbus_data->dev; 1497 struct pmbus_thermal_data *tdata; 1498 struct thermal_zone_device *tzd; 1499 1500 tdata = devm_kzalloc(dev, sizeof(*tdata), GFP_KERNEL); 1501 if (!tdata) 1502 return -ENOMEM; 1503 1504 tdata->sensor = sensor; 1505 tdata->pmbus_data = pmbus_data; 1506 1507 tzd = devm_thermal_of_zone_register(dev, index, tdata, 1508 &pmbus_thermal_ops); 1509 /* 1510 * If CONFIG_THERMAL_OF is disabled, this returns -ENODEV, 1511 * so ignore that error but forward any other error. 1512 */ 1513 if (IS_ERR(tzd) && (PTR_ERR(tzd) != -ENODEV)) 1514 return PTR_ERR(tzd); 1515 1516 return 0; 1517 } 1518 1519 static struct pmbus_sensor *pmbus_add_sensor(struct pmbus_data *data, 1520 const char *name, const char *type, 1521 int seq, int page, int phase, 1522 int reg, 1523 enum pmbus_sensor_classes class, 1524 bool update, bool readonly, 1525 bool writeonly, bool convert) 1526 { 1527 struct sensor_device_attribute *a; 1528 struct pmbus_sensor *sensor; 1529 1530 sensor = devm_kzalloc(data->dev, sizeof(*sensor), GFP_KERNEL); 1531 if (!sensor) 1532 return NULL; 1533 a = &sensor->attribute; 1534 1535 if (type) 1536 snprintf(sensor->name, sizeof(sensor->name), "%s%d_%s", 1537 name, seq, type); 1538 else 1539 snprintf(sensor->name, sizeof(sensor->name), "%s%d", 1540 name, seq); 1541 1542 if (data->flags & PMBUS_WRITE_PROTECTED) 1543 readonly = true; 1544 1545 sensor->page = page; 1546 sensor->phase = phase; 1547 sensor->reg = reg; 1548 sensor->class = class; 1549 sensor->update = update; 1550 sensor->convert = convert; 1551 sensor->data = -ENODATA; 1552 pmbus_attr_init(a, sensor->name, readonly ? 0444 : 0644, 1553 writeonly ? pmbus_show_zero : pmbus_show_sensor, 1554 pmbus_set_sensor, -1); 1555 1556 if (pmbus_add_attribute(data, &a->dev_attr.attr)) 1557 return NULL; 1558 1559 sensor->next = data->sensors; 1560 data->sensors = sensor; 1561 1562 /* temperature sensors with _input values are registered with thermal */ 1563 if (class == PSC_TEMPERATURE && strcmp(type, "input") == 0) 1564 pmbus_thermal_add_sensor(data, sensor, seq); 1565 1566 return sensor; 1567 } 1568 1569 static int pmbus_add_label(struct pmbus_data *data, 1570 const char *name, int seq, 1571 const char *lstring, int index, int phase) 1572 { 1573 struct sensor_device_attribute *a; 1574 struct pmbus_label *label; 1575 1576 label = devm_kzalloc(data->dev, sizeof(*label), GFP_KERNEL); 1577 if (!label) 1578 return -ENOMEM; 1579 1580 a = &label->attribute; 1581 1582 snprintf(label->name, sizeof(label->name), "%s%d_label", name, seq); 1583 if (!index) { 1584 if (phase == 0xff) 1585 strscpy(label->label, lstring); 1586 else 1587 snprintf(label->label, sizeof(label->label), "%s.%d", 1588 lstring, phase); 1589 } else { 1590 if (phase == 0xff) 1591 snprintf(label->label, sizeof(label->label), "%s%d", 1592 lstring, index); 1593 else 1594 snprintf(label->label, sizeof(label->label), "%s%d.%d", 1595 lstring, index, phase); 1596 } 1597 1598 pmbus_attr_init(a, label->name, 0444, pmbus_show_label, NULL, -1); 1599 return pmbus_add_attribute(data, &a->dev_attr.attr); 1600 } 1601 1602 /* 1603 * Search for attributes. Allocate sensors, booleans, and labels as needed. 1604 */ 1605 1606 /* 1607 * The pmbus_limit_attr structure describes a single limit attribute 1608 * and its associated alarm attribute. 1609 */ 1610 struct pmbus_limit_attr { 1611 u16 reg; /* Limit register */ 1612 u16 sbit; /* Alarm attribute status bit */ 1613 bool readonly:1; /* True if the attribute is read-only */ 1614 bool writeonly:1; /* True if the attribute is write-only */ 1615 bool update:1; /* True if register needs updates */ 1616 bool low:1; /* True if low limit; for limits with compare functions only */ 1617 const char *attr; /* Attribute name */ 1618 const char *alarm; /* Alarm attribute name */ 1619 }; 1620 1621 /* 1622 * The pmbus_sensor_attr structure describes one sensor attribute. This 1623 * description includes a reference to the associated limit attributes. 1624 */ 1625 struct pmbus_sensor_attr { 1626 u16 reg; /* sensor register */ 1627 u16 gbit; /* generic status bit */ 1628 u8 nlimit; /* # of limit registers */ 1629 enum pmbus_sensor_classes class;/* sensor class */ 1630 const char *label; /* sensor label */ 1631 bool paged:1; /* true if paged sensor */ 1632 bool update:1; /* true if update needed */ 1633 bool compare:1; /* true if compare function needed */ 1634 u32 func; /* sensor mask */ 1635 u32 sfunc; /* sensor status mask */ 1636 int sreg; /* status register */ 1637 const struct pmbus_limit_attr *limit;/* limit registers */ 1638 }; 1639 1640 /* 1641 * Add a set of limit attributes and, if supported, the associated 1642 * alarm attributes. 1643 * returns 0 if no alarm register found, 1 if an alarm register was found, 1644 * < 0 on errors. 1645 */ 1646 static int pmbus_add_limit_attrs(struct i2c_client *client, 1647 struct pmbus_data *data, 1648 const struct pmbus_driver_info *info, 1649 const char *name, int index, int page, 1650 struct pmbus_sensor *base, 1651 const struct pmbus_sensor_attr *attr) 1652 { 1653 const struct pmbus_limit_attr *l = attr->limit; 1654 int nlimit = attr->nlimit; 1655 int have_alarm = 0; 1656 int i, ret; 1657 struct pmbus_sensor *curr; 1658 1659 for (i = 0; i < nlimit; i++) { 1660 if (pmbus_check_word_register(client, page, l->reg)) { 1661 curr = pmbus_add_sensor(data, name, l->attr, index, 1662 page, 0xff, l->reg, attr->class, 1663 attr->update || l->update, 1664 l->readonly, l->writeonly, true); 1665 if (!curr) 1666 return -ENOMEM; 1667 if (l->sbit && (info->func[page] & attr->sfunc)) { 1668 ret = pmbus_add_boolean(data, name, 1669 l->alarm, index, 1670 attr->compare ? l->low ? curr : base 1671 : NULL, 1672 attr->compare ? l->low ? base : curr 1673 : NULL, 1674 page, attr->sreg, l->sbit); 1675 if (ret) 1676 return ret; 1677 have_alarm = 1; 1678 } 1679 } 1680 l++; 1681 } 1682 return have_alarm; 1683 } 1684 1685 static int pmbus_add_sensor_attrs_one(struct i2c_client *client, 1686 struct pmbus_data *data, 1687 const struct pmbus_driver_info *info, 1688 const char *name, 1689 int index, int page, int phase, 1690 const struct pmbus_sensor_attr *attr, 1691 bool paged) 1692 { 1693 struct pmbus_sensor *base; 1694 bool upper = !!(attr->gbit & 0xff00); /* need to check STATUS_WORD */ 1695 int ret; 1696 1697 if (attr->label) { 1698 ret = pmbus_add_label(data, name, index, attr->label, 1699 paged ? page + 1 : 0, phase); 1700 if (ret) 1701 return ret; 1702 } 1703 base = pmbus_add_sensor(data, name, "input", index, page, phase, 1704 attr->reg, attr->class, true, true, false, true); 1705 if (!base) 1706 return -ENOMEM; 1707 /* No limit and alarm attributes for phase specific sensors */ 1708 if (attr->sfunc && phase == 0xff) { 1709 ret = pmbus_add_limit_attrs(client, data, info, name, 1710 index, page, base, attr); 1711 if (ret < 0) 1712 return ret; 1713 /* 1714 * Add generic alarm attribute only if there are no individual 1715 * alarm attributes, if there is a global alarm bit, and if 1716 * the generic status register (word or byte, depending on 1717 * which global bit is set) for this page is accessible. 1718 */ 1719 if (!ret && attr->gbit && 1720 (!upper || data->has_status_word) && 1721 pmbus_check_status_register(client, page)) { 1722 ret = pmbus_add_boolean(data, name, "alarm", index, 1723 NULL, NULL, 1724 page, PMBUS_STATUS_WORD, 1725 attr->gbit); 1726 if (ret) 1727 return ret; 1728 } 1729 } 1730 return 0; 1731 } 1732 1733 static bool pmbus_sensor_is_paged(const struct pmbus_driver_info *info, 1734 const struct pmbus_sensor_attr *attr) 1735 { 1736 int p; 1737 1738 if (attr->paged) 1739 return true; 1740 1741 /* 1742 * Some attributes may be present on more than one page despite 1743 * not being marked with the paged attribute. If that is the case, 1744 * then treat the sensor as being paged and add the page suffix to the 1745 * attribute name. 1746 * We don't just add the paged attribute to all such attributes, in 1747 * order to maintain the un-suffixed labels in the case where the 1748 * attribute is only on page 0. 1749 */ 1750 for (p = 1; p < info->pages; p++) { 1751 if (info->func[p] & attr->func) 1752 return true; 1753 } 1754 return false; 1755 } 1756 1757 static int pmbus_add_sensor_attrs(struct i2c_client *client, 1758 struct pmbus_data *data, 1759 const char *name, 1760 const struct pmbus_sensor_attr *attrs, 1761 int nattrs) 1762 { 1763 const struct pmbus_driver_info *info = data->info; 1764 int index, i; 1765 int ret; 1766 1767 index = 1; 1768 for (i = 0; i < nattrs; i++) { 1769 int page, pages; 1770 bool paged = pmbus_sensor_is_paged(info, attrs); 1771 1772 pages = paged ? info->pages : 1; 1773 for (page = 0; page < pages; page++) { 1774 if (info->func[page] & attrs->func) { 1775 ret = pmbus_add_sensor_attrs_one(client, data, info, 1776 name, index, page, 1777 0xff, attrs, paged); 1778 if (ret) 1779 return ret; 1780 index++; 1781 } 1782 if (info->phases[page]) { 1783 int phase; 1784 1785 for (phase = 0; phase < info->phases[page]; 1786 phase++) { 1787 if (!(info->pfunc[phase] & attrs->func)) 1788 continue; 1789 ret = pmbus_add_sensor_attrs_one(client, 1790 data, info, name, index, page, 1791 phase, attrs, paged); 1792 if (ret) 1793 return ret; 1794 index++; 1795 } 1796 } 1797 } 1798 attrs++; 1799 } 1800 return 0; 1801 } 1802 1803 static const struct pmbus_limit_attr vin_limit_attrs[] = { 1804 { 1805 .reg = PMBUS_VIN_UV_WARN_LIMIT, 1806 .attr = "min", 1807 .alarm = "min_alarm", 1808 .sbit = PB_VOLTAGE_UV_WARNING, 1809 }, { 1810 .reg = PMBUS_VIN_UV_FAULT_LIMIT, 1811 .attr = "lcrit", 1812 .alarm = "lcrit_alarm", 1813 .sbit = PB_VOLTAGE_UV_FAULT | PB_VOLTAGE_VIN_OFF, 1814 }, { 1815 .reg = PMBUS_VIN_OV_WARN_LIMIT, 1816 .attr = "max", 1817 .alarm = "max_alarm", 1818 .sbit = PB_VOLTAGE_OV_WARNING, 1819 }, { 1820 .reg = PMBUS_VIN_OV_FAULT_LIMIT, 1821 .attr = "crit", 1822 .alarm = "crit_alarm", 1823 .sbit = PB_VOLTAGE_OV_FAULT, 1824 }, { 1825 .reg = PMBUS_VIRT_READ_VIN_AVG, 1826 .update = true, 1827 .readonly = true, 1828 .attr = "average", 1829 }, { 1830 .reg = PMBUS_VIRT_READ_VIN_MIN, 1831 .update = true, 1832 .readonly = true, 1833 .attr = "lowest", 1834 }, { 1835 .reg = PMBUS_VIRT_READ_VIN_MAX, 1836 .update = true, 1837 .readonly = true, 1838 .attr = "highest", 1839 }, { 1840 .reg = PMBUS_VIRT_RESET_VIN_HISTORY, 1841 .writeonly = true, 1842 .attr = "reset_history", 1843 }, { 1844 .reg = PMBUS_MFR_VIN_MIN, 1845 .readonly = true, 1846 .attr = "rated_min", 1847 }, { 1848 .reg = PMBUS_MFR_VIN_MAX, 1849 .readonly = true, 1850 .attr = "rated_max", 1851 }, 1852 }; 1853 1854 static const struct pmbus_limit_attr vmon_limit_attrs[] = { 1855 { 1856 .reg = PMBUS_VIRT_VMON_UV_WARN_LIMIT, 1857 .attr = "min", 1858 .alarm = "min_alarm", 1859 .sbit = PB_VOLTAGE_UV_WARNING, 1860 }, { 1861 .reg = PMBUS_VIRT_VMON_UV_FAULT_LIMIT, 1862 .attr = "lcrit", 1863 .alarm = "lcrit_alarm", 1864 .sbit = PB_VOLTAGE_UV_FAULT, 1865 }, { 1866 .reg = PMBUS_VIRT_VMON_OV_WARN_LIMIT, 1867 .attr = "max", 1868 .alarm = "max_alarm", 1869 .sbit = PB_VOLTAGE_OV_WARNING, 1870 }, { 1871 .reg = PMBUS_VIRT_VMON_OV_FAULT_LIMIT, 1872 .attr = "crit", 1873 .alarm = "crit_alarm", 1874 .sbit = PB_VOLTAGE_OV_FAULT, 1875 } 1876 }; 1877 1878 static const struct pmbus_limit_attr vout_limit_attrs[] = { 1879 { 1880 .reg = PMBUS_VOUT_UV_WARN_LIMIT, 1881 .attr = "min", 1882 .alarm = "min_alarm", 1883 .sbit = PB_VOLTAGE_UV_WARNING, 1884 }, { 1885 .reg = PMBUS_VOUT_UV_FAULT_LIMIT, 1886 .attr = "lcrit", 1887 .alarm = "lcrit_alarm", 1888 .sbit = PB_VOLTAGE_UV_FAULT, 1889 }, { 1890 .reg = PMBUS_VOUT_OV_WARN_LIMIT, 1891 .attr = "max", 1892 .alarm = "max_alarm", 1893 .sbit = PB_VOLTAGE_OV_WARNING, 1894 }, { 1895 .reg = PMBUS_VOUT_OV_FAULT_LIMIT, 1896 .attr = "crit", 1897 .alarm = "crit_alarm", 1898 .sbit = PB_VOLTAGE_OV_FAULT, 1899 }, { 1900 .reg = PMBUS_VIRT_READ_VOUT_AVG, 1901 .update = true, 1902 .readonly = true, 1903 .attr = "average", 1904 }, { 1905 .reg = PMBUS_VIRT_READ_VOUT_MIN, 1906 .update = true, 1907 .readonly = true, 1908 .attr = "lowest", 1909 }, { 1910 .reg = PMBUS_VIRT_READ_VOUT_MAX, 1911 .update = true, 1912 .readonly = true, 1913 .attr = "highest", 1914 }, { 1915 .reg = PMBUS_VIRT_RESET_VOUT_HISTORY, 1916 .writeonly = true, 1917 .attr = "reset_history", 1918 }, { 1919 .reg = PMBUS_MFR_VOUT_MIN, 1920 .readonly = true, 1921 .attr = "rated_min", 1922 }, { 1923 .reg = PMBUS_MFR_VOUT_MAX, 1924 .readonly = true, 1925 .attr = "rated_max", 1926 }, 1927 }; 1928 1929 static const struct pmbus_sensor_attr voltage_attributes[] = { 1930 { 1931 .reg = PMBUS_READ_VIN, 1932 .class = PSC_VOLTAGE_IN, 1933 .label = "vin", 1934 .func = PMBUS_HAVE_VIN, 1935 .sfunc = PMBUS_HAVE_STATUS_INPUT, 1936 .sreg = PMBUS_STATUS_INPUT, 1937 .gbit = PB_STATUS_VIN_UV, 1938 .limit = vin_limit_attrs, 1939 .nlimit = ARRAY_SIZE(vin_limit_attrs), 1940 }, { 1941 .reg = PMBUS_VIRT_READ_VMON, 1942 .class = PSC_VOLTAGE_IN, 1943 .label = "vmon", 1944 .func = PMBUS_HAVE_VMON, 1945 .sfunc = PMBUS_HAVE_STATUS_VMON, 1946 .sreg = PMBUS_VIRT_STATUS_VMON, 1947 .limit = vmon_limit_attrs, 1948 .nlimit = ARRAY_SIZE(vmon_limit_attrs), 1949 }, { 1950 .reg = PMBUS_READ_VCAP, 1951 .class = PSC_VOLTAGE_IN, 1952 .label = "vcap", 1953 .func = PMBUS_HAVE_VCAP, 1954 }, { 1955 .reg = PMBUS_READ_VOUT, 1956 .class = PSC_VOLTAGE_OUT, 1957 .label = "vout", 1958 .paged = true, 1959 .func = PMBUS_HAVE_VOUT, 1960 .sfunc = PMBUS_HAVE_STATUS_VOUT, 1961 .sreg = PMBUS_STATUS_VOUT, 1962 .gbit = PB_STATUS_VOUT_OV, 1963 .limit = vout_limit_attrs, 1964 .nlimit = ARRAY_SIZE(vout_limit_attrs), 1965 } 1966 }; 1967 1968 /* Current attributes */ 1969 1970 static const struct pmbus_limit_attr iin_limit_attrs[] = { 1971 { 1972 .reg = PMBUS_IIN_OC_WARN_LIMIT, 1973 .attr = "max", 1974 .alarm = "max_alarm", 1975 .sbit = PB_IIN_OC_WARNING, 1976 }, { 1977 .reg = PMBUS_IIN_OC_FAULT_LIMIT, 1978 .attr = "crit", 1979 .alarm = "crit_alarm", 1980 .sbit = PB_IIN_OC_FAULT, 1981 }, { 1982 .reg = PMBUS_VIRT_READ_IIN_AVG, 1983 .update = true, 1984 .readonly = true, 1985 .attr = "average", 1986 }, { 1987 .reg = PMBUS_VIRT_READ_IIN_MIN, 1988 .update = true, 1989 .readonly = true, 1990 .attr = "lowest", 1991 }, { 1992 .reg = PMBUS_VIRT_READ_IIN_MAX, 1993 .update = true, 1994 .readonly = true, 1995 .attr = "highest", 1996 }, { 1997 .reg = PMBUS_VIRT_RESET_IIN_HISTORY, 1998 .writeonly = true, 1999 .attr = "reset_history", 2000 }, { 2001 .reg = PMBUS_MFR_IIN_MAX, 2002 .readonly = true, 2003 .attr = "rated_max", 2004 }, 2005 }; 2006 2007 static const struct pmbus_limit_attr iout_limit_attrs[] = { 2008 { 2009 .reg = PMBUS_IOUT_OC_WARN_LIMIT, 2010 .attr = "max", 2011 .alarm = "max_alarm", 2012 .sbit = PB_IOUT_OC_WARNING, 2013 }, { 2014 .reg = PMBUS_IOUT_UC_FAULT_LIMIT, 2015 .attr = "lcrit", 2016 .alarm = "lcrit_alarm", 2017 .sbit = PB_IOUT_UC_FAULT, 2018 }, { 2019 .reg = PMBUS_IOUT_OC_FAULT_LIMIT, 2020 .attr = "crit", 2021 .alarm = "crit_alarm", 2022 .sbit = PB_IOUT_OC_FAULT, 2023 }, { 2024 .reg = PMBUS_VIRT_READ_IOUT_AVG, 2025 .update = true, 2026 .readonly = true, 2027 .attr = "average", 2028 }, { 2029 .reg = PMBUS_VIRT_READ_IOUT_MIN, 2030 .update = true, 2031 .readonly = true, 2032 .attr = "lowest", 2033 }, { 2034 .reg = PMBUS_VIRT_READ_IOUT_MAX, 2035 .update = true, 2036 .readonly = true, 2037 .attr = "highest", 2038 }, { 2039 .reg = PMBUS_VIRT_RESET_IOUT_HISTORY, 2040 .writeonly = true, 2041 .attr = "reset_history", 2042 }, { 2043 .reg = PMBUS_MFR_IOUT_MAX, 2044 .readonly = true, 2045 .attr = "rated_max", 2046 }, 2047 }; 2048 2049 static const struct pmbus_sensor_attr current_attributes[] = { 2050 { 2051 .reg = PMBUS_READ_IIN, 2052 .class = PSC_CURRENT_IN, 2053 .label = "iin", 2054 .func = PMBUS_HAVE_IIN, 2055 .sfunc = PMBUS_HAVE_STATUS_INPUT, 2056 .sreg = PMBUS_STATUS_INPUT, 2057 .gbit = PB_STATUS_INPUT, 2058 .limit = iin_limit_attrs, 2059 .nlimit = ARRAY_SIZE(iin_limit_attrs), 2060 }, { 2061 .reg = PMBUS_READ_IOUT, 2062 .class = PSC_CURRENT_OUT, 2063 .label = "iout", 2064 .paged = true, 2065 .func = PMBUS_HAVE_IOUT, 2066 .sfunc = PMBUS_HAVE_STATUS_IOUT, 2067 .sreg = PMBUS_STATUS_IOUT, 2068 .gbit = PB_STATUS_IOUT_OC, 2069 .limit = iout_limit_attrs, 2070 .nlimit = ARRAY_SIZE(iout_limit_attrs), 2071 } 2072 }; 2073 2074 /* Power attributes */ 2075 2076 static const struct pmbus_limit_attr pin_limit_attrs[] = { 2077 { 2078 .reg = PMBUS_PIN_OP_WARN_LIMIT, 2079 .attr = "max", 2080 .alarm = "alarm", 2081 .sbit = PB_PIN_OP_WARNING, 2082 }, { 2083 .reg = PMBUS_VIRT_READ_PIN_AVG, 2084 .update = true, 2085 .readonly = true, 2086 .attr = "average", 2087 }, { 2088 .reg = PMBUS_VIRT_READ_PIN_MIN, 2089 .update = true, 2090 .readonly = true, 2091 .attr = "input_lowest", 2092 }, { 2093 .reg = PMBUS_VIRT_READ_PIN_MAX, 2094 .update = true, 2095 .readonly = true, 2096 .attr = "input_highest", 2097 }, { 2098 .reg = PMBUS_VIRT_RESET_PIN_HISTORY, 2099 .writeonly = true, 2100 .attr = "reset_history", 2101 }, { 2102 .reg = PMBUS_MFR_PIN_MAX, 2103 .readonly = true, 2104 .attr = "rated_max", 2105 }, 2106 }; 2107 2108 static const struct pmbus_limit_attr pout_limit_attrs[] = { 2109 { 2110 .reg = PMBUS_POUT_MAX, 2111 .attr = "cap", 2112 .alarm = "cap_alarm", 2113 .sbit = PB_POWER_LIMITING, 2114 }, { 2115 .reg = PMBUS_POUT_OP_WARN_LIMIT, 2116 .attr = "max", 2117 .alarm = "max_alarm", 2118 .sbit = PB_POUT_OP_WARNING, 2119 }, { 2120 .reg = PMBUS_POUT_OP_FAULT_LIMIT, 2121 .attr = "crit", 2122 .alarm = "crit_alarm", 2123 .sbit = PB_POUT_OP_FAULT, 2124 }, { 2125 .reg = PMBUS_VIRT_READ_POUT_AVG, 2126 .update = true, 2127 .readonly = true, 2128 .attr = "average", 2129 }, { 2130 .reg = PMBUS_VIRT_READ_POUT_MIN, 2131 .update = true, 2132 .readonly = true, 2133 .attr = "input_lowest", 2134 }, { 2135 .reg = PMBUS_VIRT_READ_POUT_MAX, 2136 .update = true, 2137 .readonly = true, 2138 .attr = "input_highest", 2139 }, { 2140 .reg = PMBUS_VIRT_RESET_POUT_HISTORY, 2141 .writeonly = true, 2142 .attr = "reset_history", 2143 }, { 2144 .reg = PMBUS_MFR_POUT_MAX, 2145 .readonly = true, 2146 .attr = "rated_max", 2147 }, 2148 }; 2149 2150 static const struct pmbus_sensor_attr power_attributes[] = { 2151 { 2152 .reg = PMBUS_READ_PIN, 2153 .class = PSC_POWER, 2154 .label = "pin", 2155 .func = PMBUS_HAVE_PIN, 2156 .sfunc = PMBUS_HAVE_STATUS_INPUT, 2157 .sreg = PMBUS_STATUS_INPUT, 2158 .gbit = PB_STATUS_INPUT, 2159 .limit = pin_limit_attrs, 2160 .nlimit = ARRAY_SIZE(pin_limit_attrs), 2161 }, { 2162 .reg = PMBUS_READ_POUT, 2163 .class = PSC_POWER, 2164 .label = "pout", 2165 .paged = true, 2166 .func = PMBUS_HAVE_POUT, 2167 .sfunc = PMBUS_HAVE_STATUS_IOUT, 2168 .sreg = PMBUS_STATUS_IOUT, 2169 .limit = pout_limit_attrs, 2170 .nlimit = ARRAY_SIZE(pout_limit_attrs), 2171 } 2172 }; 2173 2174 /* Temperature atributes */ 2175 2176 static const struct pmbus_limit_attr temp_limit_attrs[] = { 2177 { 2178 .reg = PMBUS_UT_WARN_LIMIT, 2179 .low = true, 2180 .attr = "min", 2181 .alarm = "min_alarm", 2182 .sbit = PB_TEMP_UT_WARNING, 2183 }, { 2184 .reg = PMBUS_UT_FAULT_LIMIT, 2185 .low = true, 2186 .attr = "lcrit", 2187 .alarm = "lcrit_alarm", 2188 .sbit = PB_TEMP_UT_FAULT, 2189 }, { 2190 .reg = PMBUS_OT_WARN_LIMIT, 2191 .attr = "max", 2192 .alarm = "max_alarm", 2193 .sbit = PB_TEMP_OT_WARNING, 2194 }, { 2195 .reg = PMBUS_OT_FAULT_LIMIT, 2196 .attr = "crit", 2197 .alarm = "crit_alarm", 2198 .sbit = PB_TEMP_OT_FAULT, 2199 }, { 2200 .reg = PMBUS_VIRT_READ_TEMP_MIN, 2201 .readonly = true, 2202 .attr = "lowest", 2203 }, { 2204 .reg = PMBUS_VIRT_READ_TEMP_AVG, 2205 .readonly = true, 2206 .attr = "average", 2207 }, { 2208 .reg = PMBUS_VIRT_READ_TEMP_MAX, 2209 .readonly = true, 2210 .attr = "highest", 2211 }, { 2212 .reg = PMBUS_VIRT_RESET_TEMP_HISTORY, 2213 .writeonly = true, 2214 .attr = "reset_history", 2215 }, { 2216 .reg = PMBUS_MFR_MAX_TEMP_1, 2217 .readonly = true, 2218 .attr = "rated_max", 2219 }, 2220 }; 2221 2222 static const struct pmbus_limit_attr temp_limit_attrs2[] = { 2223 { 2224 .reg = PMBUS_UT_WARN_LIMIT, 2225 .low = true, 2226 .attr = "min", 2227 .alarm = "min_alarm", 2228 .sbit = PB_TEMP_UT_WARNING, 2229 }, { 2230 .reg = PMBUS_UT_FAULT_LIMIT, 2231 .low = true, 2232 .attr = "lcrit", 2233 .alarm = "lcrit_alarm", 2234 .sbit = PB_TEMP_UT_FAULT, 2235 }, { 2236 .reg = PMBUS_OT_WARN_LIMIT, 2237 .attr = "max", 2238 .alarm = "max_alarm", 2239 .sbit = PB_TEMP_OT_WARNING, 2240 }, { 2241 .reg = PMBUS_OT_FAULT_LIMIT, 2242 .attr = "crit", 2243 .alarm = "crit_alarm", 2244 .sbit = PB_TEMP_OT_FAULT, 2245 }, { 2246 .reg = PMBUS_VIRT_READ_TEMP2_MIN, 2247 .readonly = true, 2248 .attr = "lowest", 2249 }, { 2250 .reg = PMBUS_VIRT_READ_TEMP2_AVG, 2251 .readonly = true, 2252 .attr = "average", 2253 }, { 2254 .reg = PMBUS_VIRT_READ_TEMP2_MAX, 2255 .readonly = true, 2256 .attr = "highest", 2257 }, { 2258 .reg = PMBUS_VIRT_RESET_TEMP2_HISTORY, 2259 .writeonly = true, 2260 .attr = "reset_history", 2261 }, { 2262 .reg = PMBUS_MFR_MAX_TEMP_2, 2263 .readonly = true, 2264 .attr = "rated_max", 2265 }, 2266 }; 2267 2268 static const struct pmbus_limit_attr temp_limit_attrs3[] = { 2269 { 2270 .reg = PMBUS_UT_WARN_LIMIT, 2271 .low = true, 2272 .attr = "min", 2273 .alarm = "min_alarm", 2274 .sbit = PB_TEMP_UT_WARNING, 2275 }, { 2276 .reg = PMBUS_UT_FAULT_LIMIT, 2277 .low = true, 2278 .attr = "lcrit", 2279 .alarm = "lcrit_alarm", 2280 .sbit = PB_TEMP_UT_FAULT, 2281 }, { 2282 .reg = PMBUS_OT_WARN_LIMIT, 2283 .attr = "max", 2284 .alarm = "max_alarm", 2285 .sbit = PB_TEMP_OT_WARNING, 2286 }, { 2287 .reg = PMBUS_OT_FAULT_LIMIT, 2288 .attr = "crit", 2289 .alarm = "crit_alarm", 2290 .sbit = PB_TEMP_OT_FAULT, 2291 }, { 2292 .reg = PMBUS_MFR_MAX_TEMP_3, 2293 .readonly = true, 2294 .attr = "rated_max", 2295 }, 2296 }; 2297 2298 static const struct pmbus_sensor_attr temp_attributes[] = { 2299 { 2300 .reg = PMBUS_READ_TEMPERATURE_1, 2301 .class = PSC_TEMPERATURE, 2302 .paged = true, 2303 .update = true, 2304 .compare = true, 2305 .func = PMBUS_HAVE_TEMP, 2306 .sfunc = PMBUS_HAVE_STATUS_TEMP, 2307 .sreg = PMBUS_STATUS_TEMPERATURE, 2308 .gbit = PB_STATUS_TEMPERATURE, 2309 .limit = temp_limit_attrs, 2310 .nlimit = ARRAY_SIZE(temp_limit_attrs), 2311 }, { 2312 .reg = PMBUS_READ_TEMPERATURE_2, 2313 .class = PSC_TEMPERATURE, 2314 .paged = true, 2315 .update = true, 2316 .compare = true, 2317 .func = PMBUS_HAVE_TEMP2, 2318 .sfunc = PMBUS_HAVE_STATUS_TEMP, 2319 .sreg = PMBUS_STATUS_TEMPERATURE, 2320 .gbit = PB_STATUS_TEMPERATURE, 2321 .limit = temp_limit_attrs2, 2322 .nlimit = ARRAY_SIZE(temp_limit_attrs2), 2323 }, { 2324 .reg = PMBUS_READ_TEMPERATURE_3, 2325 .class = PSC_TEMPERATURE, 2326 .paged = true, 2327 .update = true, 2328 .compare = true, 2329 .func = PMBUS_HAVE_TEMP3, 2330 .sfunc = PMBUS_HAVE_STATUS_TEMP, 2331 .sreg = PMBUS_STATUS_TEMPERATURE, 2332 .gbit = PB_STATUS_TEMPERATURE, 2333 .limit = temp_limit_attrs3, 2334 .nlimit = ARRAY_SIZE(temp_limit_attrs3), 2335 } 2336 }; 2337 2338 static const int pmbus_fan_registers[] = { 2339 PMBUS_READ_FAN_SPEED_1, 2340 PMBUS_READ_FAN_SPEED_2, 2341 PMBUS_READ_FAN_SPEED_3, 2342 PMBUS_READ_FAN_SPEED_4 2343 }; 2344 2345 static const int pmbus_fan_status_registers[] = { 2346 PMBUS_STATUS_FAN_12, 2347 PMBUS_STATUS_FAN_12, 2348 PMBUS_STATUS_FAN_34, 2349 PMBUS_STATUS_FAN_34 2350 }; 2351 2352 static const u32 pmbus_fan_flags[] = { 2353 PMBUS_HAVE_FAN12, 2354 PMBUS_HAVE_FAN12, 2355 PMBUS_HAVE_FAN34, 2356 PMBUS_HAVE_FAN34 2357 }; 2358 2359 static const u32 pmbus_fan_status_flags[] = { 2360 PMBUS_HAVE_STATUS_FAN12, 2361 PMBUS_HAVE_STATUS_FAN12, 2362 PMBUS_HAVE_STATUS_FAN34, 2363 PMBUS_HAVE_STATUS_FAN34 2364 }; 2365 2366 /* Fans */ 2367 2368 /* Precondition: FAN_CONFIG_x_y and FAN_COMMAND_x must exist for the fan ID */ 2369 static int pmbus_add_fan_ctrl(struct i2c_client *client, 2370 struct pmbus_data *data, int index, int page, 2371 int id, u8 config) 2372 { 2373 struct pmbus_sensor *sensor; 2374 2375 sensor = pmbus_add_sensor(data, "fan", "target", index, page, 2376 0xff, PMBUS_VIRT_FAN_TARGET_1 + id, PSC_FAN, 2377 false, false, false, true); 2378 2379 if (!sensor) 2380 return -ENOMEM; 2381 2382 if (!((data->info->func[page] & PMBUS_HAVE_PWM12) || 2383 (data->info->func[page] & PMBUS_HAVE_PWM34))) 2384 return 0; 2385 2386 sensor = pmbus_add_sensor(data, "pwm", NULL, index, page, 2387 0xff, PMBUS_VIRT_PWM_1 + id, PSC_PWM, 2388 false, false, false, true); 2389 2390 if (!sensor) 2391 return -ENOMEM; 2392 2393 sensor = pmbus_add_sensor(data, "pwm", "enable", index, page, 2394 0xff, PMBUS_VIRT_PWM_ENABLE_1 + id, PSC_PWM, 2395 true, false, false, false); 2396 2397 if (!sensor) 2398 return -ENOMEM; 2399 2400 return 0; 2401 } 2402 2403 static int pmbus_add_fan_attributes(struct i2c_client *client, 2404 struct pmbus_data *data) 2405 { 2406 const struct pmbus_driver_info *info = data->info; 2407 int index = 1; 2408 int page; 2409 int ret; 2410 2411 for (page = 0; page < info->pages; page++) { 2412 int f; 2413 2414 for (f = 0; f < ARRAY_SIZE(pmbus_fan_registers); f++) { 2415 int regval; 2416 2417 if (!(info->func[page] & pmbus_fan_flags[f])) 2418 break; 2419 2420 if (!pmbus_check_word_register(client, page, 2421 pmbus_fan_registers[f])) 2422 break; 2423 2424 /* 2425 * Skip fan if not installed. 2426 * Each fan configuration register covers multiple fans, 2427 * so we have to do some magic. 2428 */ 2429 regval = _pmbus_read_byte_data(client, page, 2430 pmbus_fan_config_registers[f]); 2431 if (regval < 0 || 2432 (!(regval & (PB_FAN_1_INSTALLED >> ((f & 1) * 4))))) 2433 continue; 2434 2435 if (pmbus_add_sensor(data, "fan", "input", index, 2436 page, 0xff, pmbus_fan_registers[f], 2437 PSC_FAN, true, true, false, true) == NULL) 2438 return -ENOMEM; 2439 2440 /* Fan control */ 2441 if (pmbus_check_word_register(client, page, 2442 pmbus_fan_command_registers[f])) { 2443 ret = pmbus_add_fan_ctrl(client, data, index, 2444 page, f, regval); 2445 if (ret < 0) 2446 return ret; 2447 } 2448 2449 /* 2450 * Each fan status register covers multiple fans, 2451 * so we have to do some magic. 2452 */ 2453 if ((info->func[page] & pmbus_fan_status_flags[f]) && 2454 pmbus_check_byte_register(client, 2455 page, pmbus_fan_status_registers[f])) { 2456 int reg; 2457 2458 if (f > 1) /* fan 3, 4 */ 2459 reg = PMBUS_STATUS_FAN_34; 2460 else 2461 reg = PMBUS_STATUS_FAN_12; 2462 ret = pmbus_add_boolean(data, "fan", 2463 "alarm", index, NULL, NULL, page, reg, 2464 PB_FAN_FAN1_WARNING >> (f & 1)); 2465 if (ret) 2466 return ret; 2467 ret = pmbus_add_boolean(data, "fan", 2468 "fault", index, NULL, NULL, page, reg, 2469 PB_FAN_FAN1_FAULT >> (f & 1)); 2470 if (ret) 2471 return ret; 2472 } 2473 index++; 2474 } 2475 } 2476 return 0; 2477 } 2478 2479 struct pmbus_samples_attr { 2480 int reg; 2481 char *name; 2482 }; 2483 2484 struct pmbus_samples_reg { 2485 int page; 2486 struct pmbus_samples_attr *attr; 2487 struct sensor_device_attribute attribute; 2488 }; 2489 2490 static struct pmbus_samples_attr pmbus_samples_registers[] = { 2491 { 2492 .reg = PMBUS_VIRT_SAMPLES, 2493 .name = "samples", 2494 }, { 2495 .reg = PMBUS_VIRT_IN_SAMPLES, 2496 .name = "in_samples", 2497 }, { 2498 .reg = PMBUS_VIRT_CURR_SAMPLES, 2499 .name = "curr_samples", 2500 }, { 2501 .reg = PMBUS_VIRT_POWER_SAMPLES, 2502 .name = "power_samples", 2503 }, { 2504 .reg = PMBUS_VIRT_TEMP_SAMPLES, 2505 .name = "temp_samples", 2506 } 2507 }; 2508 2509 #define to_samples_reg(x) container_of(x, struct pmbus_samples_reg, attribute) 2510 2511 static ssize_t pmbus_show_samples(struct device *dev, 2512 struct device_attribute *devattr, char *buf) 2513 { 2514 int val; 2515 struct i2c_client *client = to_i2c_client(dev->parent); 2516 struct sensor_device_attribute *attr = to_sensor_dev_attr(devattr); 2517 struct pmbus_samples_reg *reg = to_samples_reg(attr); 2518 2519 scoped_guard(pmbus_lock, client) { 2520 val = _pmbus_read_word_data(client, reg->page, 0xff, reg->attr->reg); 2521 if (val < 0) 2522 return val; 2523 } 2524 2525 return sysfs_emit(buf, "%d\n", val); 2526 } 2527 2528 static ssize_t pmbus_set_samples(struct device *dev, 2529 struct device_attribute *devattr, 2530 const char *buf, size_t count) 2531 { 2532 int ret; 2533 long val; 2534 struct i2c_client *client = to_i2c_client(dev->parent); 2535 struct sensor_device_attribute *attr = to_sensor_dev_attr(devattr); 2536 struct pmbus_samples_reg *reg = to_samples_reg(attr); 2537 2538 if (kstrtol(buf, 0, &val) < 0) 2539 return -EINVAL; 2540 2541 guard(pmbus_lock)(client); 2542 2543 ret = _pmbus_write_word_data(client, reg->page, reg->attr->reg, val); 2544 2545 return ret ? : count; 2546 } 2547 2548 static int pmbus_add_samples_attr(struct pmbus_data *data, int page, 2549 struct pmbus_samples_attr *attr) 2550 { 2551 struct sensor_device_attribute *a; 2552 struct pmbus_samples_reg *reg; 2553 2554 reg = devm_kzalloc(data->dev, sizeof(*reg), GFP_KERNEL); 2555 if (!reg) 2556 return -ENOMEM; 2557 2558 reg->attr = attr; 2559 reg->page = page; 2560 2561 a = ®->attribute; 2562 2563 pmbus_attr_init(a, attr->name, 0644, 2564 pmbus_show_samples, pmbus_set_samples, -1); 2565 2566 return pmbus_add_attribute(data, &a->dev_attr.attr); 2567 } 2568 2569 static int pmbus_add_samples_attributes(struct i2c_client *client, 2570 struct pmbus_data *data) 2571 { 2572 const struct pmbus_driver_info *info = data->info; 2573 int s; 2574 2575 if (!(info->func[0] & PMBUS_HAVE_SAMPLES)) 2576 return 0; 2577 2578 for (s = 0; s < ARRAY_SIZE(pmbus_samples_registers); s++) { 2579 struct pmbus_samples_attr *attr; 2580 int ret; 2581 2582 attr = &pmbus_samples_registers[s]; 2583 if (!pmbus_check_word_register(client, 0, attr->reg)) 2584 continue; 2585 2586 ret = pmbus_add_samples_attr(data, 0, attr); 2587 if (ret) 2588 return ret; 2589 } 2590 2591 return 0; 2592 } 2593 2594 static int pmbus_find_attributes(struct i2c_client *client, 2595 struct pmbus_data *data) 2596 { 2597 int ret; 2598 2599 /* Voltage sensors */ 2600 ret = pmbus_add_sensor_attrs(client, data, "in", voltage_attributes, 2601 ARRAY_SIZE(voltage_attributes)); 2602 if (ret) 2603 return ret; 2604 2605 /* Current sensors */ 2606 ret = pmbus_add_sensor_attrs(client, data, "curr", current_attributes, 2607 ARRAY_SIZE(current_attributes)); 2608 if (ret) 2609 return ret; 2610 2611 /* Power sensors */ 2612 ret = pmbus_add_sensor_attrs(client, data, "power", power_attributes, 2613 ARRAY_SIZE(power_attributes)); 2614 if (ret) 2615 return ret; 2616 2617 /* Temperature sensors */ 2618 ret = pmbus_add_sensor_attrs(client, data, "temp", temp_attributes, 2619 ARRAY_SIZE(temp_attributes)); 2620 if (ret) 2621 return ret; 2622 2623 /* Fans */ 2624 ret = pmbus_add_fan_attributes(client, data); 2625 if (ret) 2626 return ret; 2627 2628 ret = pmbus_add_samples_attributes(client, data); 2629 return ret; 2630 } 2631 2632 /* 2633 * The pmbus_class_attr_map structure maps one sensor class to 2634 * it's corresponding sensor attributes array. 2635 */ 2636 struct pmbus_class_attr_map { 2637 enum pmbus_sensor_classes class; 2638 int nattr; 2639 const struct pmbus_sensor_attr *attr; 2640 }; 2641 2642 static const struct pmbus_class_attr_map class_attr_map[] = { 2643 { 2644 .class = PSC_VOLTAGE_IN, 2645 .attr = voltage_attributes, 2646 .nattr = ARRAY_SIZE(voltage_attributes), 2647 }, { 2648 .class = PSC_VOLTAGE_OUT, 2649 .attr = voltage_attributes, 2650 .nattr = ARRAY_SIZE(voltage_attributes), 2651 }, { 2652 .class = PSC_CURRENT_IN, 2653 .attr = current_attributes, 2654 .nattr = ARRAY_SIZE(current_attributes), 2655 }, { 2656 .class = PSC_CURRENT_OUT, 2657 .attr = current_attributes, 2658 .nattr = ARRAY_SIZE(current_attributes), 2659 }, { 2660 .class = PSC_POWER, 2661 .attr = power_attributes, 2662 .nattr = ARRAY_SIZE(power_attributes), 2663 }, { 2664 .class = PSC_TEMPERATURE, 2665 .attr = temp_attributes, 2666 .nattr = ARRAY_SIZE(temp_attributes), 2667 } 2668 }; 2669 2670 /* 2671 * Read the coefficients for direct mode. 2672 */ 2673 static int pmbus_read_coefficients(struct i2c_client *client, 2674 struct pmbus_driver_info *info, 2675 const struct pmbus_sensor_attr *attr) 2676 { 2677 int rv; 2678 union i2c_smbus_data data; 2679 enum pmbus_sensor_classes class = attr->class; 2680 s8 R; 2681 s16 m, b; 2682 2683 data.block[0] = 2; 2684 data.block[1] = attr->reg; 2685 data.block[2] = 0x01; 2686 2687 pmbus_wait(client); 2688 rv = i2c_smbus_xfer(client->adapter, client->addr, client->flags, 2689 I2C_SMBUS_WRITE, PMBUS_COEFFICIENTS, 2690 I2C_SMBUS_BLOCK_PROC_CALL, &data); 2691 pmbus_update_ts(client, PMBUS_OP_WRITE); 2692 2693 if (rv < 0) 2694 return rv; 2695 2696 if (data.block[0] != 5) 2697 return -EIO; 2698 2699 m = data.block[1] | (data.block[2] << 8); 2700 b = data.block[3] | (data.block[4] << 8); 2701 R = data.block[5]; 2702 info->m[class] = m; 2703 info->b[class] = b; 2704 info->R[class] = R; 2705 2706 return rv; 2707 } 2708 2709 static int pmbus_init_coefficients(struct i2c_client *client, 2710 struct pmbus_driver_info *info) 2711 { 2712 int i, n, ret = -EINVAL; 2713 const struct pmbus_class_attr_map *map; 2714 const struct pmbus_sensor_attr *attr; 2715 2716 for (i = 0; i < ARRAY_SIZE(class_attr_map); i++) { 2717 map = &class_attr_map[i]; 2718 if (info->format[map->class] != direct) 2719 continue; 2720 for (n = 0; n < map->nattr; n++) { 2721 attr = &map->attr[n]; 2722 if (map->class != attr->class) 2723 continue; 2724 ret = pmbus_read_coefficients(client, info, attr); 2725 if (ret >= 0) 2726 break; 2727 } 2728 if (ret < 0) { 2729 dev_err(&client->dev, 2730 "No coefficients found for sensor class %d\n", 2731 map->class); 2732 return -EINVAL; 2733 } 2734 } 2735 2736 return 0; 2737 } 2738 2739 /* 2740 * Identify chip parameters. 2741 * This function is called for all chips. 2742 */ 2743 static int pmbus_identify_common(struct i2c_client *client, 2744 struct pmbus_data *data, int page) 2745 { 2746 int vout_mode = -1; 2747 2748 if (pmbus_check_byte_register(client, page, PMBUS_VOUT_MODE)) 2749 vout_mode = _pmbus_read_byte_data(client, page, 2750 PMBUS_VOUT_MODE); 2751 if (vout_mode >= 0 && vout_mode != 0xff) { 2752 /* 2753 * Not all chips support the VOUT_MODE command, 2754 * so a failure to read it is not an error. 2755 */ 2756 switch (vout_mode >> 5) { 2757 case 0: /* linear mode */ 2758 if (data->info->format[PSC_VOLTAGE_OUT] != linear) 2759 return -ENODEV; 2760 2761 data->exponent[page] = ((s8)(vout_mode << 3)) >> 3; 2762 break; 2763 case 1: /* VID mode */ 2764 if (data->info->format[PSC_VOLTAGE_OUT] != vid) 2765 return -ENODEV; 2766 break; 2767 case 2: /* direct mode */ 2768 if (data->info->format[PSC_VOLTAGE_OUT] != direct) 2769 return -ENODEV; 2770 break; 2771 case 3: /* ieee 754 half precision */ 2772 if (data->info->format[PSC_VOLTAGE_OUT] != ieee754) 2773 return -ENODEV; 2774 break; 2775 default: 2776 return -ENODEV; 2777 } 2778 } 2779 2780 return 0; 2781 } 2782 2783 static int pmbus_read_status_byte(struct i2c_client *client, int page) 2784 { 2785 return _pmbus_read_byte_data(client, page, PMBUS_STATUS_BYTE); 2786 } 2787 2788 static int pmbus_read_status_word(struct i2c_client *client, int page) 2789 { 2790 return _pmbus_read_word_data(client, page, 0xff, PMBUS_STATUS_WORD); 2791 } 2792 2793 /* PEC attribute support */ 2794 2795 static ssize_t pec_show(struct device *dev, struct device_attribute *dummy, 2796 char *buf) 2797 { 2798 struct i2c_client *client = to_i2c_client(dev); 2799 2800 return sysfs_emit(buf, "%d\n", !!(client->flags & I2C_CLIENT_PEC)); 2801 } 2802 2803 static ssize_t pec_store(struct device *dev, struct device_attribute *dummy, 2804 const char *buf, size_t count) 2805 { 2806 struct i2c_client *client = to_i2c_client(dev); 2807 bool enable; 2808 int err; 2809 2810 err = kstrtobool(buf, &enable); 2811 if (err < 0) 2812 return err; 2813 2814 if (enable) 2815 client->flags |= I2C_CLIENT_PEC; 2816 else 2817 client->flags &= ~I2C_CLIENT_PEC; 2818 2819 return count; 2820 } 2821 2822 static DEVICE_ATTR_RW(pec); 2823 2824 static void pmbus_remove_pec(void *dev) 2825 { 2826 device_remove_file(dev, &dev_attr_pec); 2827 } 2828 2829 static void pmbus_init_wp(struct i2c_client *client, struct pmbus_data *data) 2830 { 2831 int ret; 2832 2833 switch (wp) { 2834 case 0: 2835 _pmbus_write_byte_data(client, -1, 2836 PMBUS_WRITE_PROTECT, 0); 2837 break; 2838 2839 case 1: 2840 _pmbus_write_byte_data(client, -1, 2841 PMBUS_WRITE_PROTECT, PB_WP_VOUT); 2842 break; 2843 2844 case 2: 2845 _pmbus_write_byte_data(client, -1, 2846 PMBUS_WRITE_PROTECT, PB_WP_OP); 2847 break; 2848 2849 case 3: 2850 _pmbus_write_byte_data(client, -1, 2851 PMBUS_WRITE_PROTECT, PB_WP_ALL); 2852 break; 2853 2854 default: 2855 /* Ignore the other values */ 2856 break; 2857 } 2858 2859 ret = _pmbus_read_byte_data(client, -1, PMBUS_WRITE_PROTECT); 2860 if (ret < 0) 2861 return; 2862 2863 switch (ret & PB_WP_ANY) { 2864 case PB_WP_ALL: 2865 data->flags |= PMBUS_OP_PROTECTED; 2866 fallthrough; 2867 case PB_WP_OP: 2868 data->flags |= PMBUS_VOUT_PROTECTED; 2869 fallthrough; 2870 case PB_WP_VOUT: 2871 data->flags |= PMBUS_WRITE_PROTECTED | PMBUS_SKIP_STATUS_CHECK; 2872 break; 2873 2874 default: 2875 break; 2876 } 2877 } 2878 2879 static int pmbus_init_common(struct i2c_client *client, struct pmbus_data *data, 2880 struct pmbus_driver_info *info) 2881 { 2882 struct device *dev = &client->dev; 2883 int page, ret; 2884 2885 /* 2886 * Figure out if PEC is enabled before accessing any other register. 2887 * Make sure PEC is disabled, will be enabled later if needed. 2888 */ 2889 client->flags &= ~I2C_CLIENT_PEC; 2890 2891 /* Enable PEC if the controller and bus supports it */ 2892 if (!(data->flags & PMBUS_NO_CAPABILITY)) { 2893 pmbus_wait(client); 2894 ret = i2c_smbus_read_byte_data(client, PMBUS_CAPABILITY); 2895 pmbus_update_ts(client, 0); 2896 2897 if (ret >= 0 && (ret & PB_CAPABILITY_ERROR_CHECK)) { 2898 if (i2c_check_functionality(client->adapter, I2C_FUNC_SMBUS_PEC)) 2899 client->flags |= I2C_CLIENT_PEC; 2900 } 2901 } 2902 2903 /* 2904 * Some PMBus chips don't support PMBUS_STATUS_WORD, so try 2905 * to use PMBUS_STATUS_BYTE instead if that is the case. 2906 * Bail out if both registers are not supported. 2907 */ 2908 data->read_status = pmbus_read_status_word; 2909 pmbus_wait(client); 2910 ret = i2c_smbus_read_word_data(client, PMBUS_STATUS_WORD); 2911 pmbus_update_ts(client, 0); 2912 2913 if (ret < 0 || ret == 0xffff) { 2914 data->read_status = pmbus_read_status_byte; 2915 pmbus_wait(client); 2916 ret = i2c_smbus_read_byte_data(client, PMBUS_STATUS_BYTE); 2917 pmbus_update_ts(client, 0); 2918 2919 if (ret < 0 || ret == 0xff) { 2920 dev_err(dev, "PMBus status register not found\n"); 2921 return -ENODEV; 2922 } 2923 } else { 2924 data->has_status_word = true; 2925 } 2926 2927 /* 2928 * Check if the chip is write protected. If it is, we can not clear 2929 * faults, and we should not try it. Also, in that case, writes into 2930 * limit registers need to be disabled. 2931 */ 2932 if (!(data->flags & PMBUS_NO_WRITE_PROTECT)) 2933 pmbus_init_wp(client, data); 2934 2935 if (info->have_pmbus_revision) { 2936 data->have_pmbus_revision = true; 2937 data->revision = info->pmbus_revision; 2938 } else { 2939 ret = i2c_smbus_read_byte_data(client, PMBUS_REVISION); 2940 if (ret >= 0) { 2941 data->have_pmbus_revision = true; 2942 data->revision = ret; 2943 } 2944 } 2945 2946 if (data->info->pages) 2947 pmbus_clear_faults(client); 2948 else 2949 pmbus_clear_fault_page(client, -1); 2950 2951 if (info->identify) { 2952 ret = (*info->identify)(client, info); 2953 if (ret < 0) { 2954 dev_err(dev, "Chip identification failed\n"); 2955 return ret; 2956 } 2957 } 2958 2959 if (info->pages <= 0 || info->pages > PMBUS_PAGES) { 2960 dev_err(dev, "Bad number of PMBus pages: %d\n", info->pages); 2961 return -ENODEV; 2962 } 2963 2964 for (page = 0; page < info->pages; page++) { 2965 ret = pmbus_identify_common(client, data, page); 2966 if (ret < 0) { 2967 dev_err(dev, "Failed to identify chip capabilities\n"); 2968 return ret; 2969 } 2970 } 2971 2972 if (data->flags & PMBUS_USE_COEFFICIENTS_CMD) { 2973 if (!i2c_check_functionality(client->adapter, 2974 I2C_FUNC_SMBUS_BLOCK_PROC_CALL)) 2975 return -ENODEV; 2976 2977 ret = pmbus_init_coefficients(client, info); 2978 if (ret < 0) 2979 return ret; 2980 } 2981 2982 if (client->flags & I2C_CLIENT_PEC) { 2983 /* 2984 * If I2C_CLIENT_PEC is set here, both the I2C adapter and the 2985 * chip support PEC. Add 'pec' attribute to client device to let 2986 * the user control it. 2987 */ 2988 ret = device_create_file(dev, &dev_attr_pec); 2989 if (ret) 2990 return ret; 2991 ret = devm_add_action_or_reset(dev, pmbus_remove_pec, dev); 2992 if (ret) 2993 return ret; 2994 } 2995 2996 return 0; 2997 } 2998 2999 /* A PMBus status flag and the corresponding REGULATOR_ERROR_* and REGULATOR_EVENTS_* flag */ 3000 struct pmbus_status_assoc { 3001 int pflag, rflag, eflag; 3002 }; 3003 3004 /* PMBus->regulator bit mappings for a PMBus status register */ 3005 struct pmbus_status_category { 3006 int func; 3007 int reg; 3008 const struct pmbus_status_assoc *bits; /* zero-terminated */ 3009 }; 3010 3011 static const struct pmbus_status_category __maybe_unused pmbus_status_flag_map[] = { 3012 { 3013 .func = PMBUS_HAVE_STATUS_VOUT, 3014 .reg = PMBUS_STATUS_VOUT, 3015 .bits = (const struct pmbus_status_assoc[]) { 3016 { PB_VOLTAGE_UV_WARNING, REGULATOR_ERROR_UNDER_VOLTAGE_WARN, 3017 REGULATOR_EVENT_UNDER_VOLTAGE_WARN }, 3018 { PB_VOLTAGE_UV_FAULT, REGULATOR_ERROR_UNDER_VOLTAGE, 3019 REGULATOR_EVENT_UNDER_VOLTAGE }, 3020 { PB_VOLTAGE_OV_WARNING, REGULATOR_ERROR_OVER_VOLTAGE_WARN, 3021 REGULATOR_EVENT_OVER_VOLTAGE_WARN }, 3022 { PB_VOLTAGE_OV_FAULT, REGULATOR_ERROR_REGULATION_OUT, 3023 REGULATOR_EVENT_OVER_VOLTAGE_WARN }, 3024 { }, 3025 }, 3026 }, { 3027 .func = PMBUS_HAVE_STATUS_IOUT, 3028 .reg = PMBUS_STATUS_IOUT, 3029 .bits = (const struct pmbus_status_assoc[]) { 3030 { PB_IOUT_OC_WARNING, REGULATOR_ERROR_OVER_CURRENT_WARN, 3031 REGULATOR_EVENT_OVER_CURRENT_WARN }, 3032 { PB_IOUT_OC_FAULT, REGULATOR_ERROR_OVER_CURRENT, 3033 REGULATOR_EVENT_OVER_CURRENT }, 3034 { PB_IOUT_OC_LV_FAULT, REGULATOR_ERROR_OVER_CURRENT, 3035 REGULATOR_EVENT_OVER_CURRENT }, 3036 { }, 3037 }, 3038 }, { 3039 .func = PMBUS_HAVE_STATUS_TEMP, 3040 .reg = PMBUS_STATUS_TEMPERATURE, 3041 .bits = (const struct pmbus_status_assoc[]) { 3042 { PB_TEMP_OT_WARNING, REGULATOR_ERROR_OVER_TEMP_WARN, 3043 REGULATOR_EVENT_OVER_TEMP_WARN }, 3044 { PB_TEMP_OT_FAULT, REGULATOR_ERROR_OVER_TEMP, 3045 REGULATOR_EVENT_OVER_TEMP }, 3046 { }, 3047 }, 3048 }, 3049 }; 3050 3051 static int _pmbus_is_enabled(struct i2c_client *client, u8 page) 3052 { 3053 int ret; 3054 3055 ret = _pmbus_read_byte_data(client, page, PMBUS_OPERATION); 3056 3057 if (ret < 0) 3058 return ret; 3059 3060 return !!(ret & PB_OPERATION_CONTROL_ON); 3061 } 3062 3063 static int __maybe_unused pmbus_is_enabled(struct i2c_client *client, u8 page) 3064 { 3065 guard(pmbus_lock)(client); 3066 3067 return _pmbus_is_enabled(client, page); 3068 } 3069 3070 #define to_dev_attr(_dev_attr) \ 3071 container_of(_dev_attr, struct device_attribute, attr) 3072 3073 static void pmbus_notify(struct pmbus_data *data, int page, int reg, int flags) 3074 { 3075 int i; 3076 3077 for (i = 0; i < data->num_attributes; i++) { 3078 struct device_attribute *da = to_dev_attr(data->group.attrs[i]); 3079 struct sensor_device_attribute *attr = to_sensor_dev_attr(da); 3080 int index = attr->index; 3081 u16 smask, sreg; 3082 u8 spage; 3083 3084 if (index == -1) 3085 continue; 3086 3087 smask = pb_index_to_mask(index); 3088 spage = pb_index_to_page(index); 3089 sreg = pb_index_to_reg(index); 3090 3091 if (reg == sreg && page == spage && (smask & flags)) { 3092 dev_dbg(data->dev, "sysfs notify: %s", da->attr.name); 3093 sysfs_notify(&data->hwmon_dev->kobj, NULL, 3094 da->attr.name); 3095 kobject_uevent(&data->hwmon_dev->kobj, KOBJ_CHANGE); 3096 flags &= ~smask; 3097 } 3098 3099 if (!flags) 3100 break; 3101 } 3102 } 3103 3104 static int _pmbus_get_flags(struct i2c_client *client, u8 page, unsigned int *flags, 3105 unsigned int *event, bool notify) 3106 { 3107 struct pmbus_data *data = i2c_get_clientdata(client); 3108 int i, status; 3109 const struct pmbus_status_category *cat; 3110 const struct pmbus_status_assoc *bit; 3111 int func = data->info->func[page]; 3112 3113 *flags = 0; 3114 *event = 0; 3115 3116 for (i = 0; i < ARRAY_SIZE(pmbus_status_flag_map); i++) { 3117 cat = &pmbus_status_flag_map[i]; 3118 if (!(func & cat->func)) 3119 continue; 3120 3121 status = _pmbus_read_byte_data(client, page, cat->reg); 3122 if (status < 0) 3123 return status; 3124 3125 for (bit = cat->bits; bit->pflag; bit++) 3126 if (status & bit->pflag) { 3127 *flags |= bit->rflag; 3128 *event |= bit->eflag; 3129 } 3130 3131 if (notify && status) 3132 pmbus_notify(data, page, cat->reg, status); 3133 } 3134 3135 /* 3136 * Map what bits of STATUS_{WORD,BYTE} we can to REGULATOR_ERROR_* 3137 * bits. Some of the other bits are tempting (especially for cases 3138 * where we don't have the relevant PMBUS_HAVE_STATUS_* 3139 * functionality), but there's an unfortunate ambiguity in that 3140 * they're defined as indicating a fault *or* a warning, so we can't 3141 * easily determine whether to report REGULATOR_ERROR_<foo> or 3142 * REGULATOR_ERROR_<foo>_WARN. 3143 */ 3144 status = pmbus_get_status(client, page, PMBUS_STATUS_WORD); 3145 if (status < 0) 3146 return status; 3147 3148 if (_pmbus_is_enabled(client, page)) { 3149 if (status & PB_STATUS_OFF) { 3150 *flags |= REGULATOR_ERROR_FAIL; 3151 *event |= REGULATOR_EVENT_FAIL; 3152 } 3153 3154 if (status & PB_STATUS_POWER_GOOD_N) { 3155 *flags |= REGULATOR_ERROR_REGULATION_OUT; 3156 *event |= REGULATOR_EVENT_REGULATION_OUT; 3157 } 3158 } 3159 /* 3160 * Unlike most other status bits, PB_STATUS_{IOUT_OC,VOUT_OV} are 3161 * defined strictly as fault indicators (not warnings). 3162 */ 3163 if (status & PB_STATUS_IOUT_OC) { 3164 *flags |= REGULATOR_ERROR_OVER_CURRENT; 3165 *event |= REGULATOR_EVENT_OVER_CURRENT; 3166 } 3167 if (status & PB_STATUS_VOUT_OV) { 3168 *flags |= REGULATOR_ERROR_REGULATION_OUT; 3169 *event |= REGULATOR_EVENT_FAIL; 3170 } 3171 3172 /* 3173 * If we haven't discovered any thermal faults or warnings via 3174 * PMBUS_STATUS_TEMPERATURE, map PB_STATUS_TEMPERATURE to a warning as 3175 * a (conservative) best-effort interpretation. 3176 */ 3177 if (!(*flags & (REGULATOR_ERROR_OVER_TEMP | REGULATOR_ERROR_OVER_TEMP_WARN)) && 3178 (status & PB_STATUS_TEMPERATURE)) { 3179 *flags |= REGULATOR_ERROR_OVER_TEMP_WARN; 3180 *event |= REGULATOR_EVENT_OVER_TEMP_WARN; 3181 } 3182 3183 return 0; 3184 } 3185 3186 static int __maybe_unused pmbus_get_flags(struct i2c_client *client, u8 page, unsigned int *flags, 3187 unsigned int *event, bool notify) 3188 { 3189 guard(pmbus_lock)(client); 3190 3191 return _pmbus_get_flags(client, page, flags, event, notify); 3192 } 3193 3194 #if IS_ENABLED(CONFIG_REGULATOR) 3195 static int pmbus_regulator_is_enabled(struct regulator_dev *rdev) 3196 { 3197 struct device *dev = rdev_get_dev(rdev); 3198 struct i2c_client *client = to_i2c_client(dev->parent); 3199 3200 return pmbus_is_enabled(client, rdev_get_id(rdev)); 3201 } 3202 3203 static int _pmbus_regulator_on_off(struct regulator_dev *rdev, bool enable) 3204 { 3205 struct device *dev = rdev_get_dev(rdev); 3206 struct i2c_client *client = to_i2c_client(dev->parent); 3207 u8 page = rdev_get_id(rdev); 3208 3209 guard(pmbus_lock)(client); 3210 3211 return pmbus_update_byte_data(client, page, PMBUS_OPERATION, 3212 PB_OPERATION_CONTROL_ON, 3213 enable ? PB_OPERATION_CONTROL_ON : 0); 3214 } 3215 3216 static int pmbus_regulator_enable(struct regulator_dev *rdev) 3217 { 3218 return _pmbus_regulator_on_off(rdev, 1); 3219 } 3220 3221 static int pmbus_regulator_disable(struct regulator_dev *rdev) 3222 { 3223 return _pmbus_regulator_on_off(rdev, 0); 3224 } 3225 3226 static int pmbus_regulator_get_error_flags(struct regulator_dev *rdev, unsigned int *flags) 3227 { 3228 struct device *dev = rdev_get_dev(rdev); 3229 struct i2c_client *client = to_i2c_client(dev->parent); 3230 int event; 3231 3232 return pmbus_get_flags(client, rdev_get_id(rdev), flags, &event, false); 3233 } 3234 3235 static int pmbus_regulator_get_status(struct regulator_dev *rdev) 3236 { 3237 struct device *dev = rdev_get_dev(rdev); 3238 struct i2c_client *client = to_i2c_client(dev->parent); 3239 u8 page = rdev_get_id(rdev); 3240 int status, ret; 3241 int event; 3242 3243 guard(pmbus_lock)(client); 3244 3245 status = pmbus_get_status(client, page, PMBUS_STATUS_WORD); 3246 if (status < 0) 3247 return status; 3248 3249 if (status & PB_STATUS_OFF) 3250 return REGULATOR_STATUS_OFF; 3251 3252 /* If regulator is ON & reports power good then return ON */ 3253 if (!(status & PB_STATUS_POWER_GOOD_N)) 3254 return REGULATOR_STATUS_ON; 3255 3256 ret = _pmbus_get_flags(client, rdev_get_id(rdev), &status, &event, false); 3257 if (ret) 3258 return ret; 3259 3260 if (status & (REGULATOR_ERROR_UNDER_VOLTAGE | REGULATOR_ERROR_OVER_CURRENT | 3261 REGULATOR_ERROR_REGULATION_OUT | REGULATOR_ERROR_FAIL | REGULATOR_ERROR_OVER_TEMP)) 3262 return REGULATOR_STATUS_ERROR; 3263 3264 return REGULATOR_STATUS_UNDEFINED; 3265 } 3266 3267 static int pmbus_regulator_get_low_margin(struct i2c_client *client, int page) 3268 { 3269 struct pmbus_data *data = i2c_get_clientdata(client); 3270 struct pmbus_sensor s = { 3271 .page = page, 3272 .class = PSC_VOLTAGE_OUT, 3273 .convert = true, 3274 .data = -1, 3275 }; 3276 3277 if (data->vout_low[page] < 0) { 3278 if (pmbus_check_word_register(client, page, PMBUS_MFR_VOUT_MIN)) 3279 s.data = _pmbus_read_word_data(client, page, 0xff, 3280 PMBUS_MFR_VOUT_MIN); 3281 if (s.data < 0) { 3282 s.data = _pmbus_read_word_data(client, page, 0xff, 3283 PMBUS_VOUT_MARGIN_LOW); 3284 if (s.data < 0) 3285 return s.data; 3286 } 3287 data->vout_low[page] = pmbus_reg2data(data, &s); 3288 } 3289 3290 return data->vout_low[page]; 3291 } 3292 3293 static int pmbus_regulator_get_high_margin(struct i2c_client *client, int page) 3294 { 3295 struct pmbus_data *data = i2c_get_clientdata(client); 3296 struct pmbus_sensor s = { 3297 .page = page, 3298 .class = PSC_VOLTAGE_OUT, 3299 .convert = true, 3300 .data = -1, 3301 }; 3302 3303 if (data->vout_high[page] < 0) { 3304 if (pmbus_check_word_register(client, page, PMBUS_MFR_VOUT_MAX)) 3305 s.data = _pmbus_read_word_data(client, page, 0xff, 3306 PMBUS_MFR_VOUT_MAX); 3307 if (s.data < 0) { 3308 s.data = _pmbus_read_word_data(client, page, 0xff, 3309 PMBUS_VOUT_MARGIN_HIGH); 3310 if (s.data < 0) 3311 return s.data; 3312 } 3313 data->vout_high[page] = pmbus_reg2data(data, &s); 3314 } 3315 3316 return data->vout_high[page]; 3317 } 3318 3319 static int pmbus_regulator_get_voltage(struct regulator_dev *rdev) 3320 { 3321 struct device *dev = rdev_get_dev(rdev); 3322 struct i2c_client *client = to_i2c_client(dev->parent); 3323 struct pmbus_data *data = i2c_get_clientdata(client); 3324 struct pmbus_sensor s = { 3325 .page = rdev_get_id(rdev), 3326 .class = PSC_VOLTAGE_OUT, 3327 .convert = true, 3328 }; 3329 int voltage; 3330 3331 scoped_guard(pmbus_lock, client) { 3332 s.data = _pmbus_read_word_data(client, s.page, 0xff, PMBUS_READ_VOUT); 3333 if (s.data < 0) 3334 return s.data; 3335 voltage = (int)pmbus_reg2data(data, &s); 3336 } 3337 3338 return voltage * 1000; /* unit is uV */ 3339 } 3340 3341 static int pmbus_regulator_set_voltage(struct regulator_dev *rdev, int min_uv, 3342 int max_uv, unsigned int *selector) 3343 { 3344 struct device *dev = rdev_get_dev(rdev); 3345 struct i2c_client *client = to_i2c_client(dev->parent); 3346 struct pmbus_data *data = i2c_get_clientdata(client); 3347 struct pmbus_sensor s = { 3348 .page = rdev_get_id(rdev), 3349 .class = PSC_VOLTAGE_OUT, 3350 .convert = true, 3351 .data = -1, 3352 }; 3353 int val = DIV_ROUND_CLOSEST(min_uv, 1000); /* convert to mV */ 3354 int low, high; 3355 3356 *selector = 0; 3357 3358 guard(pmbus_lock)(client); 3359 3360 low = pmbus_regulator_get_low_margin(client, s.page); 3361 if (low < 0) 3362 return low; 3363 3364 high = pmbus_regulator_get_high_margin(client, s.page); 3365 if (high < 0) 3366 return high; 3367 3368 /* Make sure we are within margins */ 3369 if (low > val) 3370 val = low; 3371 if (high < val) 3372 val = high; 3373 3374 val = pmbus_data2reg(data, &s, val); 3375 3376 return _pmbus_write_word_data(client, s.page, PMBUS_VOUT_COMMAND, (u16)val); 3377 } 3378 3379 static int pmbus_regulator_list_voltage(struct regulator_dev *rdev, 3380 unsigned int selector) 3381 { 3382 struct device *dev = rdev_get_dev(rdev); 3383 struct i2c_client *client = to_i2c_client(dev->parent); 3384 struct pmbus_data *data = i2c_get_clientdata(client); 3385 int val, low, high; 3386 3387 if (data->flags & PMBUS_VOUT_PROTECTED) 3388 return 0; 3389 3390 if (selector >= rdev->desc->n_voltages || 3391 selector < rdev->desc->linear_min_sel) 3392 return -EINVAL; 3393 3394 selector -= rdev->desc->linear_min_sel; 3395 val = DIV_ROUND_CLOSEST(rdev->desc->min_uV + 3396 (rdev->desc->uV_step * selector), 1000); /* convert to mV */ 3397 3398 guard(pmbus_lock)(client); 3399 3400 low = pmbus_regulator_get_low_margin(client, rdev_get_id(rdev)); 3401 if (low < 0) 3402 return low; 3403 3404 high = pmbus_regulator_get_high_margin(client, rdev_get_id(rdev)); 3405 if (high < 0) 3406 return high; 3407 3408 if (val >= low && val <= high) 3409 return val * 1000; /* unit is uV */ 3410 3411 return 0; 3412 } 3413 3414 const struct regulator_ops pmbus_regulator_ops = { 3415 .enable = pmbus_regulator_enable, 3416 .disable = pmbus_regulator_disable, 3417 .is_enabled = pmbus_regulator_is_enabled, 3418 .get_error_flags = pmbus_regulator_get_error_flags, 3419 .get_status = pmbus_regulator_get_status, 3420 .get_voltage = pmbus_regulator_get_voltage, 3421 .set_voltage = pmbus_regulator_set_voltage, 3422 .list_voltage = pmbus_regulator_list_voltage, 3423 }; 3424 EXPORT_SYMBOL_NS_GPL(pmbus_regulator_ops, "PMBUS"); 3425 3426 int pmbus_regulator_init_cb(struct regulator_dev *rdev, 3427 struct regulator_config *config) 3428 { 3429 struct pmbus_data *data = config->driver_data; 3430 struct regulation_constraints *constraints = rdev->constraints; 3431 3432 if (data->flags & PMBUS_OP_PROTECTED) 3433 constraints->valid_ops_mask &= ~REGULATOR_CHANGE_STATUS; 3434 3435 if (data->flags & PMBUS_VOUT_PROTECTED) 3436 constraints->valid_ops_mask &= ~REGULATOR_CHANGE_VOLTAGE; 3437 3438 return 0; 3439 } 3440 EXPORT_SYMBOL_NS_GPL(pmbus_regulator_init_cb, "PMBUS"); 3441 3442 static void pmbus_regulator_notify_work_cancel(void *data) 3443 { 3444 struct pmbus_data *pdata = data; 3445 3446 cancel_work_sync(&pdata->regulator_notify_work); 3447 } 3448 3449 static void pmbus_regulator_notify_worker(struct work_struct *work) 3450 { 3451 struct pmbus_data *data = 3452 container_of(work, struct pmbus_data, regulator_notify_work); 3453 int i, j; 3454 3455 for (i = 0; i < data->info->pages; i++) { 3456 unsigned int event; 3457 3458 event = atomic_xchg(&data->regulator_events[i], 0); 3459 if (!event) 3460 continue; 3461 3462 for (j = 0; j < data->info->num_regulators; j++) { 3463 if (i != rdev_get_id(data->rdevs[j])) 3464 continue; 3465 while (event) { 3466 unsigned int _event = BIT(__ffs(event)); 3467 3468 regulator_notifier_call_chain(data->rdevs[j], 3469 _event, NULL); 3470 event &= ~_event; 3471 } 3472 break; 3473 } 3474 } 3475 } 3476 3477 static int pmbus_regulator_register(struct pmbus_data *data) 3478 { 3479 struct device *dev = data->dev; 3480 const struct pmbus_driver_info *info = data->info; 3481 const struct pmbus_platform_data *pdata = dev_get_platdata(dev); 3482 int i, ret; 3483 3484 data->rdevs = devm_kzalloc(dev, sizeof(struct regulator_dev *) * info->num_regulators, 3485 GFP_KERNEL); 3486 if (!data->rdevs) 3487 return -ENOMEM; 3488 3489 for (i = 0; i < info->num_regulators; i++) { 3490 struct regulator_config config = { }; 3491 3492 config.dev = dev; 3493 config.driver_data = data; 3494 3495 if (pdata && pdata->reg_init_data) 3496 config.init_data = &pdata->reg_init_data[i]; 3497 3498 data->rdevs[i] = devm_regulator_register(dev, &info->reg_desc[i], 3499 &config); 3500 if (IS_ERR(data->rdevs[i])) 3501 return dev_err_probe(dev, PTR_ERR(data->rdevs[i]), 3502 "Failed to register %s regulator\n", 3503 info->reg_desc[i].name); 3504 } 3505 3506 INIT_WORK(&data->regulator_notify_work, pmbus_regulator_notify_worker); 3507 3508 ret = devm_add_action_or_reset(dev, pmbus_regulator_notify_work_cancel, data); 3509 if (ret) 3510 return ret; 3511 3512 return 0; 3513 } 3514 3515 static void pmbus_regulator_notify(struct pmbus_data *data, int page, int event) 3516 { 3517 atomic_or(event, &data->regulator_events[page]); 3518 schedule_work(&data->regulator_notify_work); 3519 } 3520 #else 3521 static int pmbus_regulator_register(struct pmbus_data *data) 3522 { 3523 return 0; 3524 } 3525 3526 static void pmbus_regulator_notify(struct pmbus_data *data, int page, int event) 3527 { 3528 } 3529 #endif 3530 3531 static int pmbus_write_smbalert_mask(struct i2c_client *client, u8 page, u8 reg, u8 val) 3532 { 3533 int ret; 3534 3535 guard(pmbus_lock)(client); 3536 3537 ret = _pmbus_write_word_data(client, page, PMBUS_SMBALERT_MASK, reg | (val << 8)); 3538 3539 /* 3540 * Clear fault systematically in case writing PMBUS_SMBALERT_MASK 3541 * is not supported by the chip. 3542 */ 3543 pmbus_clear_fault_page(client, page); 3544 3545 return ret; 3546 } 3547 3548 void pmbus_check_and_notify_faults(struct i2c_client *client) 3549 { 3550 struct pmbus_data *data = i2c_get_clientdata(client); 3551 int i, status, event; 3552 3553 guard(pmbus_lock)(client); 3554 3555 for (i = 0; i < data->info->pages; i++) { 3556 _pmbus_get_flags(client, i, &status, &event, true); 3557 3558 if (event) 3559 pmbus_regulator_notify(data, i, event); 3560 } 3561 3562 pmbus_clear_faults(client); 3563 } 3564 EXPORT_SYMBOL_NS_GPL(pmbus_check_and_notify_faults, "PMBUS"); 3565 3566 static irqreturn_t pmbus_fault_handler(int irq, void *pdata) 3567 { 3568 struct pmbus_data *data = pdata; 3569 struct i2c_client *client = to_i2c_client(data->dev); 3570 3571 pmbus_check_and_notify_faults(client); 3572 3573 return IRQ_HANDLED; 3574 } 3575 3576 static int pmbus_irq_setup(struct i2c_client *client, struct pmbus_data *data) 3577 { 3578 struct device *dev = &client->dev; 3579 const struct pmbus_status_category *cat; 3580 const struct pmbus_status_assoc *bit; 3581 int i, j, err, func; 3582 u8 mask; 3583 3584 static const u8 misc_status[] = {PMBUS_STATUS_CML, PMBUS_STATUS_OTHER, 3585 PMBUS_STATUS_MFR_SPECIFIC, PMBUS_STATUS_FAN_12, 3586 PMBUS_STATUS_FAN_34}; 3587 3588 if (!client->irq) 3589 return 0; 3590 3591 for (i = 0; i < data->info->pages; i++) { 3592 func = data->info->func[i]; 3593 3594 for (j = 0; j < ARRAY_SIZE(pmbus_status_flag_map); j++) { 3595 cat = &pmbus_status_flag_map[j]; 3596 if (!(func & cat->func)) 3597 continue; 3598 mask = 0; 3599 for (bit = cat->bits; bit->pflag; bit++) 3600 mask |= bit->pflag; 3601 3602 err = pmbus_write_smbalert_mask(client, i, cat->reg, ~mask); 3603 if (err) 3604 dev_dbg_once(dev, "Failed to set smbalert for reg 0x%02x\n", 3605 cat->reg); 3606 } 3607 3608 for (j = 0; j < ARRAY_SIZE(misc_status); j++) 3609 pmbus_write_smbalert_mask(client, i, misc_status[j], 0xff); 3610 } 3611 3612 /* Register notifiers */ 3613 err = devm_request_threaded_irq(dev, client->irq, NULL, pmbus_fault_handler, 3614 IRQF_ONESHOT, "pmbus-irq", data); 3615 if (err) 3616 return err; 3617 3618 return 0; 3619 } 3620 3621 static struct dentry *pmbus_debugfs_dir; /* pmbus debugfs directory */ 3622 3623 static int pmbus_debugfs_get(void *data, u64 *val) 3624 { 3625 struct pmbus_debugfs_entry *entry = data; 3626 struct i2c_client *client = entry->client; 3627 int rc; 3628 3629 guard(pmbus_lock)(client); 3630 3631 rc = _pmbus_read_byte_data(client, entry->page, entry->reg); 3632 if (rc < 0) 3633 return rc; 3634 3635 *val = rc; 3636 3637 return 0; 3638 } 3639 DEFINE_DEBUGFS_ATTRIBUTE(pmbus_debugfs_ops, pmbus_debugfs_get, NULL, 3640 "0x%02llx\n"); 3641 3642 static int pmbus_debugfs_get_revision(void *data, u64 *val) 3643 { 3644 struct pmbus_data *pdata = data; 3645 3646 *val = pdata->revision; 3647 3648 return 0; 3649 } 3650 DEFINE_DEBUGFS_ATTRIBUTE(pmbus_debugfs_revision_ops, pmbus_debugfs_get_revision, NULL, 3651 "0x%02llx\n"); 3652 3653 static int pmbus_debugfs_get_status(void *data, u64 *val) 3654 { 3655 struct pmbus_debugfs_entry *entry = data; 3656 struct i2c_client *client = entry->client; 3657 struct pmbus_data *pdata = i2c_get_clientdata(client); 3658 int rc; 3659 3660 guard(pmbus_lock)(client); 3661 3662 rc = pdata->read_status(client, entry->page); 3663 if (rc < 0) 3664 return rc; 3665 3666 *val = rc; 3667 3668 return 0; 3669 } 3670 DEFINE_DEBUGFS_ATTRIBUTE(pmbus_debugfs_ops_status, pmbus_debugfs_get_status, 3671 NULL, "0x%04llx\n"); 3672 3673 static ssize_t pmbus_debugfs_block_read(struct file *file, char __user *buf, 3674 size_t count, loff_t *ppos) 3675 { 3676 int rc; 3677 struct pmbus_debugfs_entry *entry = file->private_data; 3678 struct i2c_client *client = entry->client; 3679 char data[I2C_SMBUS_BLOCK_MAX + 2] = { 0 }; 3680 3681 scoped_guard(pmbus_lock, client) { 3682 rc = pmbus_read_block_data(client, entry->page, entry->reg, data); 3683 if (rc < 0) 3684 return rc; 3685 } 3686 3687 /* Add newline at the end of a read data */ 3688 data[rc] = '\n'; 3689 3690 /* Include newline into the length */ 3691 rc += 1; 3692 3693 return simple_read_from_buffer(buf, count, ppos, data, rc); 3694 } 3695 3696 static const struct file_operations pmbus_debugfs_block_ops = { 3697 .llseek = noop_llseek, 3698 .read = pmbus_debugfs_block_read, 3699 .write = NULL, 3700 .open = simple_open, 3701 }; 3702 3703 static void pmbus_remove_symlink(void *symlink) 3704 { 3705 debugfs_remove(symlink); 3706 } 3707 3708 struct pmbus_debugfs_data { 3709 u8 reg; 3710 u32 flag; 3711 const char *name; 3712 }; 3713 3714 static const struct pmbus_debugfs_data pmbus_debugfs_block_data[] = { 3715 { .reg = PMBUS_MFR_ID, .name = "mfr_id" }, 3716 { .reg = PMBUS_MFR_MODEL, .name = "mfr_model" }, 3717 { .reg = PMBUS_MFR_REVISION, .name = "mfr_revision" }, 3718 { .reg = PMBUS_MFR_LOCATION, .name = "mfr_location" }, 3719 { .reg = PMBUS_MFR_DATE, .name = "mfr_date" }, 3720 { .reg = PMBUS_MFR_SERIAL, .name = "mfr_serial" }, 3721 }; 3722 3723 static const struct pmbus_debugfs_data pmbus_debugfs_status_data[] = { 3724 { .reg = PMBUS_STATUS_VOUT, .flag = PMBUS_HAVE_STATUS_VOUT, .name = "status%d_vout" }, 3725 { .reg = PMBUS_STATUS_IOUT, .flag = PMBUS_HAVE_STATUS_IOUT, .name = "status%d_iout" }, 3726 { .reg = PMBUS_STATUS_INPUT, .flag = PMBUS_HAVE_STATUS_INPUT, .name = "status%d_input" }, 3727 { .reg = PMBUS_STATUS_TEMPERATURE, .flag = PMBUS_HAVE_STATUS_TEMP, 3728 .name = "status%d_temp" }, 3729 { .reg = PMBUS_STATUS_FAN_12, .flag = PMBUS_HAVE_STATUS_FAN12, .name = "status%d_fan12" }, 3730 { .reg = PMBUS_STATUS_FAN_34, .flag = PMBUS_HAVE_STATUS_FAN34, .name = "status%d_fan34" }, 3731 { .reg = PMBUS_STATUS_CML, .name = "status%d_cml" }, 3732 { .reg = PMBUS_STATUS_OTHER, .name = "status%d_other" }, 3733 { .reg = PMBUS_STATUS_MFR_SPECIFIC, .name = "status%d_mfr" }, 3734 }; 3735 3736 static void pmbus_init_debugfs(struct i2c_client *client, 3737 struct pmbus_data *data) 3738 { 3739 struct dentry *symlink_d, *debugfs = client->debugfs; 3740 struct pmbus_debugfs_entry *entries; 3741 const char *pathname, *symlink; 3742 char name[PMBUS_NAME_SIZE]; 3743 int page, i, idx = 0; 3744 3745 /* 3746 * client->debugfs may be NULL or an ERR_PTR(). dentry_path_raw() 3747 * does not check if its parameters are valid, so validate 3748 * client->debugfs before using it. 3749 */ 3750 if (!pmbus_debugfs_dir || IS_ERR_OR_NULL(debugfs)) 3751 return; 3752 3753 /* 3754 * Backwards compatibility: Create symlink from /pmbus/<hwmon_device> 3755 * to i2c debugfs directory. 3756 */ 3757 pathname = dentry_path_raw(debugfs, name, sizeof(name)); 3758 if (IS_ERR(pathname)) 3759 return; 3760 3761 /* 3762 * The path returned by dentry_path_raw() starts with '/'. Prepend it 3763 * with ".." to get the symlink relative to the pmbus root directory. 3764 */ 3765 symlink = kasprintf(GFP_KERNEL, "..%s", pathname); 3766 if (!symlink) 3767 return; 3768 3769 symlink_d = debugfs_create_symlink(dev_name(data->hwmon_dev), 3770 pmbus_debugfs_dir, symlink); 3771 kfree(symlink); 3772 3773 devm_add_action_or_reset(data->dev, pmbus_remove_symlink, symlink_d); 3774 3775 /* 3776 * Allocate the max possible entries we need. 3777 * device specific: 3778 * ARRAY_SIZE(pmbus_debugfs_block_data) + 2 3779 * page specific: 3780 * ARRAY_SIZE(pmbus_debugfs_status_data) + 1 3781 */ 3782 entries = devm_kcalloc(data->dev, 3783 ARRAY_SIZE(pmbus_debugfs_block_data) + 2 + 3784 data->info->pages * (ARRAY_SIZE(pmbus_debugfs_status_data) + 1), 3785 sizeof(*entries), GFP_KERNEL); 3786 if (!entries) 3787 return; 3788 3789 guard(pmbus_lock)(client); 3790 3791 /* 3792 * Add device-specific entries. 3793 * Please note that the PMBUS standard allows all registers to be 3794 * page-specific. 3795 * To reduce the number of debugfs entries for devices with many pages 3796 * assume that values of the following registers are the same for all 3797 * pages and report values only for page 0. 3798 */ 3799 if (!(data->flags & PMBUS_NO_CAPABILITY) && 3800 pmbus_check_byte_register(client, 0, PMBUS_CAPABILITY)) { 3801 entries[idx].client = client; 3802 entries[idx].page = 0; 3803 entries[idx].reg = PMBUS_CAPABILITY; 3804 debugfs_create_file("capability", 0444, debugfs, 3805 &entries[idx++], 3806 &pmbus_debugfs_ops); 3807 } 3808 if (data->have_pmbus_revision) 3809 debugfs_create_file("pmbus_revision", 0444, debugfs, data, 3810 &pmbus_debugfs_revision_ops); 3811 3812 for (i = 0; i < ARRAY_SIZE(pmbus_debugfs_block_data); i++) { 3813 const struct pmbus_debugfs_data *d = &pmbus_debugfs_block_data[i]; 3814 3815 if (pmbus_check_block_register(client, 0, d->reg)) { 3816 entries[idx].client = client; 3817 entries[idx].page = 0; 3818 entries[idx].reg = d->reg; 3819 debugfs_create_file(d->name, 0444, debugfs, 3820 &entries[idx++], 3821 &pmbus_debugfs_block_ops); 3822 } 3823 } 3824 3825 /* Add page specific entries */ 3826 for (page = 0; page < data->info->pages; ++page) { 3827 /* Check accessibility of status register if it's not page 0 */ 3828 if (!page || pmbus_check_status_register(client, page)) { 3829 /* No need to set reg as we have special read op. */ 3830 entries[idx].client = client; 3831 entries[idx].page = page; 3832 scnprintf(name, PMBUS_NAME_SIZE, "status%d", page); 3833 debugfs_create_file(name, 0444, debugfs, 3834 &entries[idx++], 3835 &pmbus_debugfs_ops_status); 3836 } 3837 3838 for (i = 0; i < ARRAY_SIZE(pmbus_debugfs_status_data); i++) { 3839 const struct pmbus_debugfs_data *d = 3840 &pmbus_debugfs_status_data[i]; 3841 3842 if ((data->info->func[page] & d->flag) || 3843 (!d->flag && pmbus_check_byte_register(client, page, d->reg))) { 3844 entries[idx].client = client; 3845 entries[idx].page = page; 3846 entries[idx].reg = d->reg; 3847 scnprintf(name, PMBUS_NAME_SIZE, d->name, page); 3848 debugfs_create_file(name, 0444, debugfs, 3849 &entries[idx++], 3850 &pmbus_debugfs_ops); 3851 } 3852 } 3853 } 3854 } 3855 3856 int pmbus_do_probe(struct i2c_client *client, struct pmbus_driver_info *info) 3857 { 3858 struct device *dev = &client->dev; 3859 const struct pmbus_platform_data *pdata = dev_get_platdata(dev); 3860 struct pmbus_data *data; 3861 size_t groups_num = 0; 3862 int ret; 3863 int i; 3864 char *name; 3865 3866 if (!info) 3867 return -ENODEV; 3868 3869 if (!i2c_check_functionality(client->adapter, I2C_FUNC_SMBUS_WRITE_BYTE 3870 | I2C_FUNC_SMBUS_BYTE_DATA 3871 | I2C_FUNC_SMBUS_WORD_DATA)) 3872 return -ENODEV; 3873 3874 data = devm_kzalloc(dev, sizeof(*data), GFP_KERNEL); 3875 if (!data) 3876 return -ENOMEM; 3877 3878 if (info->groups) 3879 while (info->groups[groups_num]) 3880 groups_num++; 3881 3882 data->groups = devm_kcalloc(dev, groups_num + 2, sizeof(void *), 3883 GFP_KERNEL); 3884 if (!data->groups) 3885 return -ENOMEM; 3886 3887 i2c_set_clientdata(client, data); 3888 mutex_init(&data->update_lock); 3889 data->dev = dev; 3890 3891 if (pdata) 3892 data->flags = pdata->flags; 3893 data->info = info; 3894 data->currpage = -1; 3895 data->currphase = -1; 3896 3897 for (i = 0; i < ARRAY_SIZE(data->vout_low); i++) { 3898 data->vout_low[i] = -1; 3899 data->vout_high[i] = -1; 3900 } 3901 3902 ret = pmbus_init_common(client, data, info); 3903 if (ret < 0) 3904 return ret; 3905 3906 ret = pmbus_find_attributes(client, data); 3907 if (ret) 3908 return ret; 3909 3910 /* 3911 * If there are no attributes, something is wrong. 3912 * Bail out instead of trying to register nothing. 3913 */ 3914 if (!data->num_attributes) { 3915 dev_err(dev, "No attributes found\n"); 3916 return -ENODEV; 3917 } 3918 3919 name = devm_kstrdup(dev, client->name, GFP_KERNEL); 3920 if (!name) 3921 return -ENOMEM; 3922 strreplace(name, '-', '_'); 3923 3924 data->groups[0] = &data->group; 3925 memcpy(data->groups + 1, info->groups, sizeof(void *) * groups_num); 3926 data->hwmon_dev = devm_hwmon_device_register_with_groups(dev, name, 3927 data, data->groups); 3928 if (IS_ERR(data->hwmon_dev)) { 3929 dev_err(dev, "Failed to register hwmon device\n"); 3930 return PTR_ERR(data->hwmon_dev); 3931 } 3932 3933 ret = pmbus_regulator_register(data); 3934 if (ret) 3935 return ret; 3936 3937 ret = pmbus_irq_setup(client, data); 3938 if (ret) 3939 return ret; 3940 3941 pmbus_init_debugfs(client, data); 3942 3943 return 0; 3944 } 3945 EXPORT_SYMBOL_NS_GPL(pmbus_do_probe, "PMBUS"); 3946 3947 struct dentry *pmbus_get_debugfs_dir(struct i2c_client *client) 3948 { 3949 /* 3950 * client->debugfs may be an ERR_PTR(). Returning that to 3951 * the calling code would potentially require additional 3952 * complexity in the calling code and otherwise add no 3953 * value. Return NULL in that case. 3954 */ 3955 if (IS_ERR_OR_NULL(client->debugfs)) 3956 return NULL; 3957 return client->debugfs; 3958 } 3959 EXPORT_SYMBOL_NS_GPL(pmbus_get_debugfs_dir, "PMBUS"); 3960 3961 void pmbus_lock(struct i2c_client *client) 3962 { 3963 struct pmbus_data *data = i2c_get_clientdata(client); 3964 3965 mutex_lock(&data->update_lock); 3966 } 3967 EXPORT_SYMBOL_NS_GPL(pmbus_lock, "PMBUS"); 3968 3969 int pmbus_lock_interruptible(struct i2c_client *client) 3970 { 3971 struct pmbus_data *data = i2c_get_clientdata(client); 3972 3973 return mutex_lock_interruptible(&data->update_lock); 3974 } 3975 EXPORT_SYMBOL_NS_GPL(pmbus_lock_interruptible, "PMBUS"); 3976 3977 void pmbus_unlock(struct i2c_client *client) 3978 { 3979 struct pmbus_data *data = i2c_get_clientdata(client); 3980 3981 mutex_unlock(&data->update_lock); 3982 } 3983 EXPORT_SYMBOL_NS_GPL(pmbus_unlock, "PMBUS"); 3984 3985 static int __init pmbus_core_init(void) 3986 { 3987 pmbus_debugfs_dir = debugfs_create_dir("pmbus", NULL); 3988 if (IS_ERR(pmbus_debugfs_dir)) 3989 pmbus_debugfs_dir = NULL; 3990 3991 return 0; 3992 } 3993 3994 static void __exit pmbus_core_exit(void) 3995 { 3996 debugfs_remove_recursive(pmbus_debugfs_dir); 3997 } 3998 3999 module_init(pmbus_core_init); 4000 module_exit(pmbus_core_exit); 4001 4002 MODULE_AUTHOR("Guenter Roeck"); 4003 MODULE_DESCRIPTION("PMBus core driver"); 4004 MODULE_LICENSE("GPL"); 4005