1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * Hardware monitoring driver for Analog Devices ADM1275 Hot-Swap Controller 4 * and Digital Power Monitor 5 * 6 * Copyright (c) 2011 Ericsson AB. 7 * Copyright (c) 2018 Guenter Roeck 8 */ 9 10 #include <linux/kernel.h> 11 #include <linux/module.h> 12 #include <linux/init.h> 13 #include <linux/err.h> 14 #include <linux/slab.h> 15 #include <linux/i2c.h> 16 #include <linux/bitops.h> 17 #include <linux/bitfield.h> 18 #include <linux/log2.h> 19 #include "pmbus.h" 20 21 enum chips { adm1075, adm1272, adm1273, adm1275, adm1276, adm1278, adm1281, adm1293, adm1294 }; 22 23 #define ADM1275_MFR_STATUS_IOUT_WARN2 BIT(0) 24 #define ADM1293_MFR_STATUS_VAUX_UV_WARN BIT(5) 25 #define ADM1293_MFR_STATUS_VAUX_OV_WARN BIT(6) 26 27 #define ADM1275_PEAK_IOUT 0xd0 28 #define ADM1275_PEAK_VIN 0xd1 29 #define ADM1275_PEAK_VOUT 0xd2 30 #define ADM1275_PMON_CONTROL 0xd3 31 #define ADM1275_PMON_CONFIG 0xd4 32 33 #define ADM1275_CONVERT_EN BIT(0) 34 35 #define ADM1275_VIN_VOUT_SELECT BIT(6) 36 #define ADM1275_VRANGE BIT(5) 37 #define ADM1075_IRANGE_50 BIT(4) 38 #define ADM1075_IRANGE_25 BIT(3) 39 #define ADM1075_IRANGE_MASK (BIT(3) | BIT(4)) 40 41 #define ADM1272_IRANGE BIT(0) 42 43 #define ADM1278_TSFILT BIT(15) 44 #define ADM1278_TEMP1_EN BIT(3) 45 #define ADM1278_VIN_EN BIT(2) 46 #define ADM1278_VOUT_EN BIT(1) 47 48 #define ADM1278_PMON_DEFCONFIG (ADM1278_VOUT_EN | ADM1278_TEMP1_EN | ADM1278_TSFILT) 49 50 #define ADM1293_IRANGE_25 0 51 #define ADM1293_IRANGE_50 BIT(6) 52 #define ADM1293_IRANGE_100 BIT(7) 53 #define ADM1293_IRANGE_200 (BIT(6) | BIT(7)) 54 #define ADM1293_IRANGE_MASK (BIT(6) | BIT(7)) 55 56 #define ADM1293_VIN_SEL_012 BIT(2) 57 #define ADM1293_VIN_SEL_074 BIT(3) 58 #define ADM1293_VIN_SEL_210 (BIT(2) | BIT(3)) 59 #define ADM1293_VIN_SEL_MASK (BIT(2) | BIT(3)) 60 61 #define ADM1293_VAUX_EN BIT(1) 62 63 #define ADM1278_PEAK_TEMP 0xd7 64 #define ADM1275_IOUT_WARN2_LIMIT 0xd7 65 #define ADM1275_DEVICE_CONFIG 0xd8 66 67 #define ADM1275_IOUT_WARN2_SELECT BIT(4) 68 69 #define ADM1276_PEAK_PIN 0xda 70 #define ADM1075_READ_VAUX 0xdd 71 #define ADM1075_VAUX_OV_WARN_LIMIT 0xde 72 #define ADM1075_VAUX_UV_WARN_LIMIT 0xdf 73 #define ADM1293_IOUT_MIN 0xe3 74 #define ADM1293_PIN_MIN 0xe4 75 #define ADM1075_VAUX_STATUS 0xf6 76 77 #define ADM1075_VAUX_OV_WARN BIT(7) 78 #define ADM1075_VAUX_UV_WARN BIT(6) 79 80 #define ADM1275_VI_AVG_SHIFT 0 81 #define ADM1275_VI_AVG_MASK GENMASK(ADM1275_VI_AVG_SHIFT + 2, \ 82 ADM1275_VI_AVG_SHIFT) 83 #define ADM1275_SAMPLES_AVG_MAX 128 84 85 #define ADM1278_PWR_AVG_SHIFT 11 86 #define ADM1278_PWR_AVG_MASK GENMASK(ADM1278_PWR_AVG_SHIFT + 2, \ 87 ADM1278_PWR_AVG_SHIFT) 88 #define ADM1278_VI_AVG_SHIFT 8 89 #define ADM1278_VI_AVG_MASK GENMASK(ADM1278_VI_AVG_SHIFT + 2, \ 90 ADM1278_VI_AVG_SHIFT) 91 92 struct adm1275_data { 93 int id; 94 bool have_oc_fault; 95 bool have_uc_fault; 96 bool have_vout; 97 bool have_vaux_status; 98 bool have_mfr_vaux_status; 99 bool have_iout_min; 100 bool have_pin_min; 101 bool have_pin_max; 102 bool have_temp_max; 103 bool have_power_sampling; 104 struct pmbus_driver_info info; 105 }; 106 107 #define to_adm1275_data(x) container_of(x, struct adm1275_data, info) 108 109 struct coefficients { 110 s16 m; 111 s16 b; 112 s16 R; 113 }; 114 115 static const struct coefficients adm1075_coefficients[] = { 116 [0] = { 27169, 0, -1 }, /* voltage */ 117 [1] = { 806, 20475, -1 }, /* current, irange25 */ 118 [2] = { 404, 20475, -1 }, /* current, irange50 */ 119 [3] = { 8549, 0, -1 }, /* power, irange25 */ 120 [4] = { 4279, 0, -1 }, /* power, irange50 */ 121 }; 122 123 static const struct coefficients adm1272_coefficients[] = { 124 [0] = { 6770, 0, -2 }, /* voltage, vrange 60V */ 125 [1] = { 4062, 0, -2 }, /* voltage, vrange 100V */ 126 [2] = { 1326, 20480, -1 }, /* current, vsense range 15mV */ 127 [3] = { 663, 20480, -1 }, /* current, vsense range 30mV */ 128 [4] = { 3512, 0, -2 }, /* power, vrange 60V, irange 15mV */ 129 [5] = { 21071, 0, -3 }, /* power, vrange 100V, irange 15mV */ 130 [6] = { 17561, 0, -3 }, /* power, vrange 60V, irange 30mV */ 131 [7] = { 10535, 0, -3 }, /* power, vrange 100V, irange 30mV */ 132 [8] = { 42, 31871, -1 }, /* temperature */ 133 134 }; 135 136 static const struct coefficients adm1275_coefficients[] = { 137 [0] = { 19199, 0, -2 }, /* voltage, vrange set */ 138 [1] = { 6720, 0, -1 }, /* voltage, vrange not set */ 139 [2] = { 807, 20475, -1 }, /* current */ 140 }; 141 142 static const struct coefficients adm1276_coefficients[] = { 143 [0] = { 19199, 0, -2 }, /* voltage, vrange set */ 144 [1] = { 6720, 0, -1 }, /* voltage, vrange not set */ 145 [2] = { 807, 20475, -1 }, /* current */ 146 [3] = { 6043, 0, -2 }, /* power, vrange set */ 147 [4] = { 2115, 0, -1 }, /* power, vrange not set */ 148 }; 149 150 static const struct coefficients adm1278_coefficients[] = { 151 [0] = { 19599, 0, -2 }, /* voltage */ 152 [1] = { 800, 20475, -1 }, /* current */ 153 [2] = { 6123, 0, -2 }, /* power */ 154 [3] = { 42, 31880, -1 }, /* temperature */ 155 }; 156 157 static const struct coefficients adm1293_coefficients[] = { 158 [0] = { 3333, -1, 0 }, /* voltage, vrange 1.2V */ 159 [1] = { 5552, -5, -1 }, /* voltage, vrange 7.4V */ 160 [2] = { 19604, -50, -2 }, /* voltage, vrange 21V */ 161 [3] = { 8000, -100, -2 }, /* current, irange25 */ 162 [4] = { 4000, -100, -2 }, /* current, irange50 */ 163 [5] = { 20000, -1000, -3 }, /* current, irange100 */ 164 [6] = { 10000, -1000, -3 }, /* current, irange200 */ 165 [7] = { 10417, 0, -1 }, /* power, 1.2V, irange25 */ 166 [8] = { 5208, 0, -1 }, /* power, 1.2V, irange50 */ 167 [9] = { 26042, 0, -2 }, /* power, 1.2V, irange100 */ 168 [10] = { 13021, 0, -2 }, /* power, 1.2V, irange200 */ 169 [11] = { 17351, 0, -2 }, /* power, 7.4V, irange25 */ 170 [12] = { 8676, 0, -2 }, /* power, 7.4V, irange50 */ 171 [13] = { 4338, 0, -2 }, /* power, 7.4V, irange100 */ 172 [14] = { 21689, 0, -3 }, /* power, 7.4V, irange200 */ 173 [15] = { 6126, 0, -2 }, /* power, 21V, irange25 */ 174 [16] = { 30631, 0, -3 }, /* power, 21V, irange50 */ 175 [17] = { 15316, 0, -3 }, /* power, 21V, irange100 */ 176 [18] = { 7658, 0, -3 }, /* power, 21V, irange200 */ 177 }; 178 179 static int adm1275_read_samples(const struct adm1275_data *data, 180 struct i2c_client *client, bool is_power) 181 { 182 int shift, ret; 183 u16 mask; 184 185 /* 186 * The PMON configuration register is a 16-bit register only on chips 187 * supporting power average sampling. On other chips it is an 8-bit 188 * register. 189 */ 190 if (data->have_power_sampling) { 191 ret = i2c_smbus_read_word_data(client, ADM1275_PMON_CONFIG); 192 mask = is_power ? ADM1278_PWR_AVG_MASK : ADM1278_VI_AVG_MASK; 193 shift = is_power ? ADM1278_PWR_AVG_SHIFT : ADM1278_VI_AVG_SHIFT; 194 } else { 195 ret = i2c_smbus_read_byte_data(client, ADM1275_PMON_CONFIG); 196 mask = ADM1275_VI_AVG_MASK; 197 shift = ADM1275_VI_AVG_SHIFT; 198 } 199 if (ret < 0) 200 return ret; 201 202 return (ret & mask) >> shift; 203 } 204 205 static int adm1275_write_pmon_config(const struct adm1275_data *data, 206 struct i2c_client *client, u16 word) 207 { 208 int ret, ret2; 209 210 ret = i2c_smbus_write_byte_data(client, ADM1275_PMON_CONTROL, 0); 211 if (ret) 212 return ret; 213 214 if (data->have_power_sampling) 215 ret = i2c_smbus_write_word_data(client, ADM1275_PMON_CONFIG, 216 word); 217 else 218 ret = i2c_smbus_write_byte_data(client, ADM1275_PMON_CONFIG, 219 word); 220 221 /* 222 * We still want to re-enable conversions if writing into 223 * ADM1275_PMON_CONFIG failed. 224 */ 225 ret2 = i2c_smbus_write_byte_data(client, ADM1275_PMON_CONTROL, 226 ADM1275_CONVERT_EN); 227 if (!ret) 228 ret = ret2; 229 230 return ret; 231 } 232 233 static int adm1275_write_samples(const struct adm1275_data *data, 234 struct i2c_client *client, 235 bool is_power, u16 word) 236 { 237 int shift, ret; 238 u16 mask; 239 240 if (data->have_power_sampling) { 241 ret = i2c_smbus_read_word_data(client, ADM1275_PMON_CONFIG); 242 mask = is_power ? ADM1278_PWR_AVG_MASK : ADM1278_VI_AVG_MASK; 243 shift = is_power ? ADM1278_PWR_AVG_SHIFT : ADM1278_VI_AVG_SHIFT; 244 } else { 245 ret = i2c_smbus_read_byte_data(client, ADM1275_PMON_CONFIG); 246 mask = ADM1275_VI_AVG_MASK; 247 shift = ADM1275_VI_AVG_SHIFT; 248 } 249 if (ret < 0) 250 return ret; 251 252 word = (ret & ~mask) | ((word << shift) & mask); 253 254 return adm1275_write_pmon_config(data, client, word); 255 } 256 257 static int adm1275_read_word_data(struct i2c_client *client, int page, 258 int phase, int reg) 259 { 260 const struct pmbus_driver_info *info = pmbus_get_driver_info(client); 261 const struct adm1275_data *data = to_adm1275_data(info); 262 int ret = 0; 263 264 if (page > 0) 265 return -ENXIO; 266 267 switch (reg) { 268 case PMBUS_IOUT_UC_FAULT_LIMIT: 269 if (!data->have_uc_fault) 270 return -ENXIO; 271 ret = pmbus_read_word_data(client, 0, 0xff, 272 ADM1275_IOUT_WARN2_LIMIT); 273 break; 274 case PMBUS_IOUT_OC_FAULT_LIMIT: 275 if (!data->have_oc_fault) 276 return -ENXIO; 277 ret = pmbus_read_word_data(client, 0, 0xff, 278 ADM1275_IOUT_WARN2_LIMIT); 279 break; 280 case PMBUS_VOUT_OV_WARN_LIMIT: 281 if (data->have_vout) 282 return -ENODATA; 283 ret = pmbus_read_word_data(client, 0, 0xff, 284 ADM1075_VAUX_OV_WARN_LIMIT); 285 break; 286 case PMBUS_VOUT_UV_WARN_LIMIT: 287 if (data->have_vout) 288 return -ENODATA; 289 ret = pmbus_read_word_data(client, 0, 0xff, 290 ADM1075_VAUX_UV_WARN_LIMIT); 291 break; 292 case PMBUS_READ_VOUT: 293 if (data->have_vout) 294 return -ENODATA; 295 ret = pmbus_read_word_data(client, 0, 0xff, 296 ADM1075_READ_VAUX); 297 break; 298 case PMBUS_VIRT_READ_IOUT_MIN: 299 if (!data->have_iout_min) 300 return -ENXIO; 301 ret = pmbus_read_word_data(client, 0, 0xff, 302 ADM1293_IOUT_MIN); 303 break; 304 case PMBUS_VIRT_READ_IOUT_MAX: 305 ret = pmbus_read_word_data(client, 0, 0xff, 306 ADM1275_PEAK_IOUT); 307 break; 308 case PMBUS_VIRT_READ_VOUT_MAX: 309 ret = pmbus_read_word_data(client, 0, 0xff, 310 ADM1275_PEAK_VOUT); 311 break; 312 case PMBUS_VIRT_READ_VIN_MAX: 313 ret = pmbus_read_word_data(client, 0, 0xff, 314 ADM1275_PEAK_VIN); 315 break; 316 case PMBUS_VIRT_READ_PIN_MIN: 317 if (!data->have_pin_min) 318 return -ENXIO; 319 ret = pmbus_read_word_data(client, 0, 0xff, 320 ADM1293_PIN_MIN); 321 break; 322 case PMBUS_VIRT_READ_PIN_MAX: 323 if (!data->have_pin_max) 324 return -ENXIO; 325 ret = pmbus_read_word_data(client, 0, 0xff, 326 ADM1276_PEAK_PIN); 327 break; 328 case PMBUS_VIRT_READ_TEMP_MAX: 329 if (!data->have_temp_max) 330 return -ENXIO; 331 ret = pmbus_read_word_data(client, 0, 0xff, 332 ADM1278_PEAK_TEMP); 333 break; 334 case PMBUS_VIRT_RESET_IOUT_HISTORY: 335 case PMBUS_VIRT_RESET_VOUT_HISTORY: 336 case PMBUS_VIRT_RESET_VIN_HISTORY: 337 break; 338 case PMBUS_VIRT_RESET_PIN_HISTORY: 339 if (!data->have_pin_max) 340 return -ENXIO; 341 break; 342 case PMBUS_VIRT_RESET_TEMP_HISTORY: 343 if (!data->have_temp_max) 344 return -ENXIO; 345 break; 346 case PMBUS_VIRT_POWER_SAMPLES: 347 if (!data->have_power_sampling) 348 return -ENXIO; 349 ret = adm1275_read_samples(data, client, true); 350 if (ret < 0) 351 break; 352 ret = BIT(ret); 353 break; 354 case PMBUS_VIRT_IN_SAMPLES: 355 case PMBUS_VIRT_CURR_SAMPLES: 356 ret = adm1275_read_samples(data, client, false); 357 if (ret < 0) 358 break; 359 ret = BIT(ret); 360 break; 361 default: 362 ret = -ENODATA; 363 break; 364 } 365 return ret; 366 } 367 368 static int adm1275_write_word_data(struct i2c_client *client, int page, int reg, 369 u16 word) 370 { 371 const struct pmbus_driver_info *info = pmbus_get_driver_info(client); 372 const struct adm1275_data *data = to_adm1275_data(info); 373 int ret; 374 375 if (page > 0) 376 return -ENXIO; 377 378 switch (reg) { 379 case PMBUS_IOUT_UC_FAULT_LIMIT: 380 case PMBUS_IOUT_OC_FAULT_LIMIT: 381 ret = pmbus_write_word_data(client, 0, ADM1275_IOUT_WARN2_LIMIT, 382 word); 383 break; 384 case PMBUS_VIRT_RESET_IOUT_HISTORY: 385 ret = pmbus_write_word_data(client, 0, ADM1275_PEAK_IOUT, 0); 386 if (!ret && data->have_iout_min) 387 ret = pmbus_write_word_data(client, 0, 388 ADM1293_IOUT_MIN, 0); 389 break; 390 case PMBUS_VIRT_RESET_VOUT_HISTORY: 391 ret = pmbus_write_word_data(client, 0, ADM1275_PEAK_VOUT, 0); 392 break; 393 case PMBUS_VIRT_RESET_VIN_HISTORY: 394 ret = pmbus_write_word_data(client, 0, ADM1275_PEAK_VIN, 0); 395 break; 396 case PMBUS_VIRT_RESET_PIN_HISTORY: 397 ret = pmbus_write_word_data(client, 0, ADM1276_PEAK_PIN, 0); 398 if (!ret && data->have_pin_min) 399 ret = pmbus_write_word_data(client, 0, 400 ADM1293_PIN_MIN, 0); 401 break; 402 case PMBUS_VIRT_RESET_TEMP_HISTORY: 403 ret = pmbus_write_word_data(client, 0, ADM1278_PEAK_TEMP, 0); 404 break; 405 case PMBUS_VIRT_POWER_SAMPLES: 406 if (!data->have_power_sampling) 407 return -ENXIO; 408 word = clamp_val(word, 1, ADM1275_SAMPLES_AVG_MAX); 409 ret = adm1275_write_samples(data, client, true, ilog2(word)); 410 break; 411 case PMBUS_VIRT_IN_SAMPLES: 412 case PMBUS_VIRT_CURR_SAMPLES: 413 word = clamp_val(word, 1, ADM1275_SAMPLES_AVG_MAX); 414 ret = adm1275_write_samples(data, client, false, ilog2(word)); 415 break; 416 default: 417 ret = -ENODATA; 418 break; 419 } 420 return ret; 421 } 422 423 static int adm1275_read_byte_data(struct i2c_client *client, int page, int reg) 424 { 425 const struct pmbus_driver_info *info = pmbus_get_driver_info(client); 426 const struct adm1275_data *data = to_adm1275_data(info); 427 int mfr_status, ret; 428 429 if (page > 0) 430 return -ENXIO; 431 432 switch (reg) { 433 case PMBUS_STATUS_IOUT: 434 ret = pmbus_read_byte_data(client, page, PMBUS_STATUS_IOUT); 435 if (ret < 0) 436 break; 437 if (!data->have_oc_fault && !data->have_uc_fault) 438 break; 439 mfr_status = pmbus_read_byte_data(client, page, 440 PMBUS_STATUS_MFR_SPECIFIC); 441 if (mfr_status < 0) 442 return mfr_status; 443 if (mfr_status & ADM1275_MFR_STATUS_IOUT_WARN2) { 444 ret |= data->have_oc_fault ? 445 PB_IOUT_OC_FAULT : PB_IOUT_UC_FAULT; 446 } 447 break; 448 case PMBUS_STATUS_VOUT: 449 if (data->have_vout) 450 return -ENODATA; 451 ret = 0; 452 if (data->have_vaux_status) { 453 mfr_status = pmbus_read_byte_data(client, 0, 454 ADM1075_VAUX_STATUS); 455 if (mfr_status < 0) 456 return mfr_status; 457 if (mfr_status & ADM1075_VAUX_OV_WARN) 458 ret |= PB_VOLTAGE_OV_WARNING; 459 if (mfr_status & ADM1075_VAUX_UV_WARN) 460 ret |= PB_VOLTAGE_UV_WARNING; 461 } else if (data->have_mfr_vaux_status) { 462 mfr_status = pmbus_read_byte_data(client, page, 463 PMBUS_STATUS_MFR_SPECIFIC); 464 if (mfr_status < 0) 465 return mfr_status; 466 if (mfr_status & ADM1293_MFR_STATUS_VAUX_OV_WARN) 467 ret |= PB_VOLTAGE_OV_WARNING; 468 if (mfr_status & ADM1293_MFR_STATUS_VAUX_UV_WARN) 469 ret |= PB_VOLTAGE_UV_WARNING; 470 } 471 break; 472 default: 473 ret = -ENODATA; 474 break; 475 } 476 return ret; 477 } 478 479 static const struct i2c_device_id adm1275_id[] = { 480 { "adm1075", adm1075 }, 481 { "adm1272", adm1272 }, 482 { "adm1273", adm1273 }, 483 { "adm1275", adm1275 }, 484 { "adm1276", adm1276 }, 485 { "adm1278", adm1278 }, 486 { "adm1281", adm1281 }, 487 { "adm1293", adm1293 }, 488 { "adm1294", adm1294 }, 489 { } 490 }; 491 MODULE_DEVICE_TABLE(i2c, adm1275_id); 492 493 /* Enable VOUT & TEMP1 if not enabled (disabled by default) */ 494 static int adm1275_enable_vout_temp(struct adm1275_data *data, 495 struct i2c_client *client, int config) 496 { 497 int ret; 498 499 if ((config & ADM1278_PMON_DEFCONFIG) != ADM1278_PMON_DEFCONFIG) { 500 config |= ADM1278_PMON_DEFCONFIG; 501 ret = adm1275_write_pmon_config(data, client, config); 502 if (ret < 0) { 503 dev_err(&client->dev, "Failed to enable VOUT/TEMP1 monitoring\n"); 504 return ret; 505 } 506 } 507 return 0; 508 } 509 510 static int adm1275_probe(struct i2c_client *client) 511 { 512 s32 (*config_read_fn)(const struct i2c_client *client, u8 reg); 513 u8 block_buffer[I2C_SMBUS_BLOCK_MAX + 1]; 514 int config, device_config; 515 int ret; 516 struct pmbus_driver_info *info; 517 struct adm1275_data *data; 518 const struct i2c_device_id *mid; 519 const struct coefficients *coefficients; 520 int vindex = -1, voindex = -1, cindex = -1, pindex = -1; 521 int tindex = -1; 522 u32 shunt; 523 u32 avg; 524 525 if (!i2c_check_functionality(client->adapter, 526 I2C_FUNC_SMBUS_READ_BYTE_DATA 527 | I2C_FUNC_SMBUS_BLOCK_DATA)) 528 return -ENODEV; 529 530 ret = i2c_smbus_read_block_data(client, PMBUS_MFR_ID, block_buffer); 531 if (ret < 0) { 532 dev_err(&client->dev, "Failed to read Manufacturer ID\n"); 533 return ret; 534 } 535 if (ret != 3 || strncmp(block_buffer, "ADI", 3)) { 536 dev_err(&client->dev, "Unsupported Manufacturer ID\n"); 537 return -ENODEV; 538 } 539 540 ret = i2c_smbus_read_block_data(client, PMBUS_MFR_MODEL, block_buffer); 541 if (ret < 0) { 542 dev_err(&client->dev, "Failed to read Manufacturer Model\n"); 543 return ret; 544 } 545 for (mid = adm1275_id; mid->name[0]; mid++) { 546 if (!strncasecmp(mid->name, block_buffer, strlen(mid->name))) 547 break; 548 } 549 if (!mid->name[0]) { 550 dev_err(&client->dev, "Unsupported device\n"); 551 return -ENODEV; 552 } 553 554 if (strcmp(client->name, mid->name) != 0) 555 dev_notice(&client->dev, 556 "Device mismatch: Configured %s, detected %s\n", 557 client->name, mid->name); 558 559 if (mid->driver_data == adm1272 || mid->driver_data == adm1273 || 560 mid->driver_data == adm1278 || mid->driver_data == adm1281 || 561 mid->driver_data == adm1293 || mid->driver_data == adm1294) 562 config_read_fn = i2c_smbus_read_word_data; 563 else 564 config_read_fn = i2c_smbus_read_byte_data; 565 config = config_read_fn(client, ADM1275_PMON_CONFIG); 566 if (config < 0) 567 return config; 568 569 device_config = config_read_fn(client, ADM1275_DEVICE_CONFIG); 570 if (device_config < 0) 571 return device_config; 572 573 data = devm_kzalloc(&client->dev, sizeof(struct adm1275_data), 574 GFP_KERNEL); 575 if (!data) 576 return -ENOMEM; 577 578 if (of_property_read_u32(client->dev.of_node, 579 "shunt-resistor-micro-ohms", &shunt)) 580 shunt = 1000; /* 1 mOhm if not set via DT */ 581 582 if (shunt == 0) 583 return -EINVAL; 584 585 data->id = mid->driver_data; 586 587 info = &data->info; 588 589 info->pages = 1; 590 info->format[PSC_VOLTAGE_IN] = direct; 591 info->format[PSC_VOLTAGE_OUT] = direct; 592 info->format[PSC_CURRENT_OUT] = direct; 593 info->format[PSC_POWER] = direct; 594 info->format[PSC_TEMPERATURE] = direct; 595 info->func[0] = PMBUS_HAVE_IOUT | PMBUS_HAVE_STATUS_IOUT | 596 PMBUS_HAVE_SAMPLES; 597 598 info->read_word_data = adm1275_read_word_data; 599 info->read_byte_data = adm1275_read_byte_data; 600 info->write_word_data = adm1275_write_word_data; 601 602 switch (data->id) { 603 case adm1075: 604 if (device_config & ADM1275_IOUT_WARN2_SELECT) 605 data->have_oc_fault = true; 606 else 607 data->have_uc_fault = true; 608 data->have_pin_max = true; 609 data->have_vaux_status = true; 610 611 coefficients = adm1075_coefficients; 612 vindex = 0; 613 switch (config & ADM1075_IRANGE_MASK) { 614 case ADM1075_IRANGE_25: 615 cindex = 1; 616 pindex = 3; 617 break; 618 case ADM1075_IRANGE_50: 619 cindex = 2; 620 pindex = 4; 621 break; 622 default: 623 dev_err(&client->dev, "Invalid input current range"); 624 break; 625 } 626 627 info->func[0] |= PMBUS_HAVE_VIN | PMBUS_HAVE_PIN 628 | PMBUS_HAVE_STATUS_INPUT; 629 if (config & ADM1275_VIN_VOUT_SELECT) 630 info->func[0] |= 631 PMBUS_HAVE_VOUT | PMBUS_HAVE_STATUS_VOUT; 632 break; 633 case adm1272: 634 case adm1273: 635 data->have_vout = true; 636 data->have_pin_max = true; 637 data->have_temp_max = true; 638 data->have_power_sampling = true; 639 640 coefficients = adm1272_coefficients; 641 vindex = (config & ADM1275_VRANGE) ? 1 : 0; 642 cindex = (config & ADM1272_IRANGE) ? 3 : 2; 643 /* pindex depends on the combination of the above */ 644 switch (config & (ADM1275_VRANGE | ADM1272_IRANGE)) { 645 case 0: 646 default: 647 pindex = 4; 648 break; 649 case ADM1275_VRANGE: 650 pindex = 5; 651 break; 652 case ADM1272_IRANGE: 653 pindex = 6; 654 break; 655 case ADM1275_VRANGE | ADM1272_IRANGE: 656 pindex = 7; 657 break; 658 } 659 tindex = 8; 660 661 info->func[0] |= PMBUS_HAVE_PIN | PMBUS_HAVE_STATUS_INPUT | 662 PMBUS_HAVE_VOUT | PMBUS_HAVE_STATUS_VOUT | 663 PMBUS_HAVE_TEMP | PMBUS_HAVE_STATUS_TEMP; 664 665 ret = adm1275_enable_vout_temp(data, client, config); 666 if (ret) 667 return ret; 668 669 if (config & ADM1278_VIN_EN) 670 info->func[0] |= PMBUS_HAVE_VIN; 671 break; 672 case adm1275: 673 if (device_config & ADM1275_IOUT_WARN2_SELECT) 674 data->have_oc_fault = true; 675 else 676 data->have_uc_fault = true; 677 data->have_vout = true; 678 679 coefficients = adm1275_coefficients; 680 vindex = (config & ADM1275_VRANGE) ? 0 : 1; 681 cindex = 2; 682 683 if (config & ADM1275_VIN_VOUT_SELECT) 684 info->func[0] |= 685 PMBUS_HAVE_VOUT | PMBUS_HAVE_STATUS_VOUT; 686 else 687 info->func[0] |= 688 PMBUS_HAVE_VIN | PMBUS_HAVE_STATUS_INPUT; 689 break; 690 case adm1276: 691 if (device_config & ADM1275_IOUT_WARN2_SELECT) 692 data->have_oc_fault = true; 693 else 694 data->have_uc_fault = true; 695 data->have_vout = true; 696 data->have_pin_max = true; 697 698 coefficients = adm1276_coefficients; 699 vindex = (config & ADM1275_VRANGE) ? 0 : 1; 700 cindex = 2; 701 pindex = (config & ADM1275_VRANGE) ? 3 : 4; 702 703 info->func[0] |= PMBUS_HAVE_VIN | PMBUS_HAVE_PIN 704 | PMBUS_HAVE_STATUS_INPUT; 705 if (config & ADM1275_VIN_VOUT_SELECT) 706 info->func[0] |= 707 PMBUS_HAVE_VOUT | PMBUS_HAVE_STATUS_VOUT; 708 break; 709 case adm1278: 710 case adm1281: 711 data->have_vout = true; 712 data->have_pin_max = true; 713 data->have_temp_max = true; 714 data->have_power_sampling = true; 715 716 coefficients = adm1278_coefficients; 717 vindex = 0; 718 cindex = 1; 719 pindex = 2; 720 tindex = 3; 721 722 info->func[0] |= PMBUS_HAVE_PIN | PMBUS_HAVE_STATUS_INPUT | 723 PMBUS_HAVE_VOUT | PMBUS_HAVE_STATUS_VOUT | 724 PMBUS_HAVE_TEMP | PMBUS_HAVE_STATUS_TEMP; 725 726 ret = adm1275_enable_vout_temp(data, client, config); 727 if (ret) 728 return ret; 729 730 if (config & ADM1278_VIN_EN) 731 info->func[0] |= PMBUS_HAVE_VIN; 732 break; 733 case adm1293: 734 case adm1294: 735 data->have_iout_min = true; 736 data->have_pin_min = true; 737 data->have_pin_max = true; 738 data->have_mfr_vaux_status = true; 739 data->have_power_sampling = true; 740 741 coefficients = adm1293_coefficients; 742 743 voindex = 0; 744 switch (config & ADM1293_VIN_SEL_MASK) { 745 case ADM1293_VIN_SEL_012: /* 1.2V */ 746 vindex = 0; 747 break; 748 case ADM1293_VIN_SEL_074: /* 7.4V */ 749 vindex = 1; 750 break; 751 case ADM1293_VIN_SEL_210: /* 21V */ 752 vindex = 2; 753 break; 754 default: /* disabled */ 755 break; 756 } 757 758 switch (config & ADM1293_IRANGE_MASK) { 759 case ADM1293_IRANGE_25: 760 cindex = 3; 761 break; 762 case ADM1293_IRANGE_50: 763 cindex = 4; 764 break; 765 case ADM1293_IRANGE_100: 766 cindex = 5; 767 break; 768 case ADM1293_IRANGE_200: 769 cindex = 6; 770 break; 771 } 772 773 if (vindex >= 0) 774 pindex = 7 + vindex * 4 + (cindex - 3); 775 776 if (config & ADM1293_VAUX_EN) 777 info->func[0] |= 778 PMBUS_HAVE_VOUT | PMBUS_HAVE_STATUS_VOUT; 779 780 info->func[0] |= PMBUS_HAVE_PIN | 781 PMBUS_HAVE_VIN | PMBUS_HAVE_STATUS_INPUT; 782 783 break; 784 default: 785 dev_err(&client->dev, "Unsupported device\n"); 786 return -ENODEV; 787 } 788 789 if (data->have_power_sampling && 790 of_property_read_u32(client->dev.of_node, 791 "adi,power-sample-average", &avg) == 0) { 792 if (!avg || avg > ADM1275_SAMPLES_AVG_MAX || 793 BIT(__fls(avg)) != avg) { 794 dev_err(&client->dev, 795 "Invalid number of power samples"); 796 return -EINVAL; 797 } 798 ret = adm1275_write_samples(data, client, true, ilog2(avg)); 799 if (ret < 0) { 800 dev_err(&client->dev, 801 "Setting power sample averaging failed with error %d", 802 ret); 803 return ret; 804 } 805 } 806 807 if (of_property_read_u32(client->dev.of_node, 808 "adi,volt-curr-sample-average", &avg) == 0) { 809 if (!avg || avg > ADM1275_SAMPLES_AVG_MAX || 810 BIT(__fls(avg)) != avg) { 811 dev_err(&client->dev, 812 "Invalid number of voltage/current samples"); 813 return -EINVAL; 814 } 815 ret = adm1275_write_samples(data, client, false, ilog2(avg)); 816 if (ret < 0) { 817 dev_err(&client->dev, 818 "Setting voltage and current sample averaging failed with error %d", 819 ret); 820 return ret; 821 } 822 } 823 824 if (voindex < 0) 825 voindex = vindex; 826 if (vindex >= 0) { 827 info->m[PSC_VOLTAGE_IN] = coefficients[vindex].m; 828 info->b[PSC_VOLTAGE_IN] = coefficients[vindex].b; 829 info->R[PSC_VOLTAGE_IN] = coefficients[vindex].R; 830 } 831 if (voindex >= 0) { 832 info->m[PSC_VOLTAGE_OUT] = coefficients[voindex].m; 833 info->b[PSC_VOLTAGE_OUT] = coefficients[voindex].b; 834 info->R[PSC_VOLTAGE_OUT] = coefficients[voindex].R; 835 } 836 if (cindex >= 0) { 837 /* Scale current with sense resistor value */ 838 info->m[PSC_CURRENT_OUT] = 839 coefficients[cindex].m * shunt / 1000; 840 info->b[PSC_CURRENT_OUT] = coefficients[cindex].b; 841 info->R[PSC_CURRENT_OUT] = coefficients[cindex].R; 842 } 843 if (pindex >= 0) { 844 info->m[PSC_POWER] = 845 coefficients[pindex].m * shunt / 1000; 846 info->b[PSC_POWER] = coefficients[pindex].b; 847 info->R[PSC_POWER] = coefficients[pindex].R; 848 } 849 if (tindex >= 0) { 850 info->m[PSC_TEMPERATURE] = coefficients[tindex].m; 851 info->b[PSC_TEMPERATURE] = coefficients[tindex].b; 852 info->R[PSC_TEMPERATURE] = coefficients[tindex].R; 853 } 854 855 return pmbus_do_probe(client, info); 856 } 857 858 static struct i2c_driver adm1275_driver = { 859 .driver = { 860 .name = "adm1275", 861 }, 862 .probe = adm1275_probe, 863 .id_table = adm1275_id, 864 }; 865 866 module_i2c_driver(adm1275_driver); 867 868 MODULE_AUTHOR("Guenter Roeck"); 869 MODULE_DESCRIPTION("PMBus driver for Analog Devices ADM1275 and compatibles"); 870 MODULE_LICENSE("GPL"); 871 MODULE_IMPORT_NS("PMBUS"); 872