1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * Linux I2C core 4 * 5 * Copyright (C) 1995-99 Simon G. Vogl 6 * With some changes from Kyösti Mälkki <kmalkki@cc.hut.fi> 7 * Mux support by Rodolfo Giometti <giometti@enneenne.com> and 8 * Michael Lawnick <michael.lawnick.ext@nsn.com> 9 * 10 * Copyright (C) 2013-2017 Wolfram Sang <wsa@kernel.org> 11 */ 12 13 #define pr_fmt(fmt) "i2c-core: " fmt 14 15 #include <dt-bindings/i2c/i2c.h> 16 #include <linux/acpi.h> 17 #include <linux/clk/clk-conf.h> 18 #include <linux/completion.h> 19 #include <linux/debugfs.h> 20 #include <linux/delay.h> 21 #include <linux/err.h> 22 #include <linux/errno.h> 23 #include <linux/gpio/consumer.h> 24 #include <linux/i2c.h> 25 #include <linux/i2c-smbus.h> 26 #include <linux/idr.h> 27 #include <linux/init.h> 28 #include <linux/interrupt.h> 29 #include <linux/irq.h> 30 #include <linux/jump_label.h> 31 #include <linux/kernel.h> 32 #include <linux/module.h> 33 #include <linux/mutex.h> 34 #include <linux/of_device.h> 35 #include <linux/of.h> 36 #include <linux/pinctrl/consumer.h> 37 #include <linux/pinctrl/devinfo.h> 38 #include <linux/pm_domain.h> 39 #include <linux/pm_runtime.h> 40 #include <linux/pm_wakeirq.h> 41 #include <linux/property.h> 42 #include <linux/rwsem.h> 43 #include <linux/slab.h> 44 #include <linux/string_choices.h> 45 46 #include "i2c-core.h" 47 48 #define CREATE_TRACE_POINTS 49 #include <trace/events/i2c.h> 50 51 #define I2C_ADDR_OFFSET_TEN_BIT 0xa000 52 #define I2C_ADDR_OFFSET_SLAVE 0x1000 53 54 #define I2C_ADDR_7BITS_MAX 0x77 55 #define I2C_ADDR_7BITS_COUNT (I2C_ADDR_7BITS_MAX + 1) 56 57 #define I2C_ADDR_DEVICE_ID 0x7c 58 59 /* 60 * core_lock protects i2c_adapter_idr, and guarantees that device detection, 61 * deletion of detected devices are serialized 62 */ 63 static DEFINE_MUTEX(core_lock); 64 static DEFINE_IDR(i2c_adapter_idr); 65 66 static void i2c_deregister_clients(struct i2c_adapter *adap); 67 static int i2c_detect(struct i2c_adapter *adapter, struct i2c_driver *driver); 68 69 static DEFINE_STATIC_KEY_FALSE(i2c_trace_msg_key); 70 static bool is_registered; 71 72 static struct dentry *i2c_debugfs_root; 73 74 int i2c_transfer_trace_reg(void) 75 { 76 static_branch_inc(&i2c_trace_msg_key); 77 return 0; 78 } 79 80 void i2c_transfer_trace_unreg(void) 81 { 82 static_branch_dec(&i2c_trace_msg_key); 83 } 84 85 const char *i2c_freq_mode_string(u32 bus_freq_hz) 86 { 87 switch (bus_freq_hz) { 88 case I2C_MAX_STANDARD_MODE_FREQ: 89 return "Standard Mode (100 kHz)"; 90 case I2C_MAX_FAST_MODE_FREQ: 91 return "Fast Mode (400 kHz)"; 92 case I2C_MAX_FAST_MODE_PLUS_FREQ: 93 return "Fast Mode Plus (1.0 MHz)"; 94 case I2C_MAX_TURBO_MODE_FREQ: 95 return "Turbo Mode (1.4 MHz)"; 96 case I2C_MAX_HIGH_SPEED_MODE_FREQ: 97 return "High Speed Mode (3.4 MHz)"; 98 case I2C_MAX_ULTRA_FAST_MODE_FREQ: 99 return "Ultra Fast Mode (5.0 MHz)"; 100 default: 101 return "Unknown Mode"; 102 } 103 } 104 EXPORT_SYMBOL_GPL(i2c_freq_mode_string); 105 106 const struct i2c_device_id *i2c_match_id(const struct i2c_device_id *id, 107 const struct i2c_client *client) 108 { 109 if (!(id && client)) 110 return NULL; 111 112 while (id->name[0]) { 113 if (strcmp(client->name, id->name) == 0) 114 return id; 115 id++; 116 } 117 return NULL; 118 } 119 EXPORT_SYMBOL_GPL(i2c_match_id); 120 121 const void *i2c_get_match_data(const struct i2c_client *client) 122 { 123 struct i2c_driver *driver = to_i2c_driver(client->dev.driver); 124 const struct i2c_device_id *match; 125 const void *data; 126 127 data = device_get_match_data(&client->dev); 128 if (!data) { 129 match = i2c_match_id(driver->id_table, client); 130 if (!match) 131 return NULL; 132 133 data = (const void *)match->driver_data; 134 } 135 136 return data; 137 } 138 EXPORT_SYMBOL(i2c_get_match_data); 139 140 static int i2c_device_match(struct device *dev, const struct device_driver *drv) 141 { 142 struct i2c_client *client = i2c_verify_client(dev); 143 const struct i2c_driver *driver; 144 145 146 /* Attempt an OF style match */ 147 if (i2c_of_match_device(drv->of_match_table, client)) 148 return 1; 149 150 /* Then ACPI style match */ 151 if (acpi_driver_match_device(dev, drv)) 152 return 1; 153 154 driver = to_i2c_driver(drv); 155 156 /* Finally an I2C match */ 157 if (i2c_match_id(driver->id_table, client)) 158 return 1; 159 160 return 0; 161 } 162 163 static int i2c_device_uevent(const struct device *dev, struct kobj_uevent_env *env) 164 { 165 const struct i2c_client *client = to_i2c_client(dev); 166 int rc; 167 168 rc = of_device_uevent_modalias(dev, env); 169 if (rc != -ENODEV) 170 return rc; 171 172 rc = acpi_device_uevent_modalias(dev, env); 173 if (rc != -ENODEV) 174 return rc; 175 176 return add_uevent_var(env, "MODALIAS=%s%s", I2C_MODULE_PREFIX, client->name); 177 } 178 179 /* i2c bus recovery routines */ 180 static int get_scl_gpio_value(struct i2c_adapter *adap) 181 { 182 return gpiod_get_value_cansleep(adap->bus_recovery_info->scl_gpiod); 183 } 184 185 static void set_scl_gpio_value(struct i2c_adapter *adap, int val) 186 { 187 gpiod_set_value_cansleep(adap->bus_recovery_info->scl_gpiod, val); 188 } 189 190 static int get_sda_gpio_value(struct i2c_adapter *adap) 191 { 192 return gpiod_get_value_cansleep(adap->bus_recovery_info->sda_gpiod); 193 } 194 195 static void set_sda_gpio_value(struct i2c_adapter *adap, int val) 196 { 197 gpiod_set_value_cansleep(adap->bus_recovery_info->sda_gpiod, val); 198 } 199 200 static int i2c_generic_bus_free(struct i2c_adapter *adap) 201 { 202 struct i2c_bus_recovery_info *bri = adap->bus_recovery_info; 203 int ret = -EOPNOTSUPP; 204 205 if (bri->get_bus_free) 206 ret = bri->get_bus_free(adap); 207 else if (bri->get_sda) 208 ret = bri->get_sda(adap); 209 210 if (ret < 0) 211 return ret; 212 213 return ret ? 0 : -EBUSY; 214 } 215 216 /* 217 * We are generating clock pulses. ndelay() determines durating of clk pulses. 218 * We will generate clock with rate 100 KHz and so duration of both clock levels 219 * is: delay in ns = (10^6 / 100) / 2 220 */ 221 #define RECOVERY_NDELAY 5000 222 #define RECOVERY_CLK_CNT 9 223 224 int i2c_generic_scl_recovery(struct i2c_adapter *adap) 225 { 226 struct i2c_bus_recovery_info *bri = adap->bus_recovery_info; 227 int i = 0, scl = 1, ret = 0; 228 229 if (bri->prepare_recovery) 230 bri->prepare_recovery(adap); 231 if (bri->pinctrl) 232 pinctrl_select_state(bri->pinctrl, bri->pins_gpio); 233 234 /* 235 * If we can set SDA, we will always create a STOP to ensure additional 236 * pulses will do no harm. This is achieved by letting SDA follow SCL 237 * half a cycle later. Check the 'incomplete_write_byte' fault injector 238 * for details. Note that we must honour tsu:sto, 4us, but lets use 5us 239 * here for simplicity. 240 */ 241 bri->set_scl(adap, scl); 242 ndelay(RECOVERY_NDELAY); 243 if (bri->set_sda) 244 bri->set_sda(adap, scl); 245 ndelay(RECOVERY_NDELAY / 2); 246 247 /* 248 * By this time SCL is high, as we need to give 9 falling-rising edges 249 */ 250 while (i++ < RECOVERY_CLK_CNT * 2) { 251 if (scl) { 252 /* SCL shouldn't be low here */ 253 if (!bri->get_scl(adap)) { 254 dev_err(&adap->dev, 255 "SCL is stuck low, exit recovery\n"); 256 ret = -EBUSY; 257 break; 258 } 259 } 260 261 scl = !scl; 262 bri->set_scl(adap, scl); 263 /* Creating STOP again, see above */ 264 if (scl) { 265 /* Honour minimum tsu:sto */ 266 ndelay(RECOVERY_NDELAY); 267 } else { 268 /* Honour minimum tf and thd:dat */ 269 ndelay(RECOVERY_NDELAY / 2); 270 } 271 if (bri->set_sda) 272 bri->set_sda(adap, scl); 273 ndelay(RECOVERY_NDELAY / 2); 274 275 if (scl) { 276 ret = i2c_generic_bus_free(adap); 277 if (ret == 0) 278 break; 279 } 280 } 281 282 /* If we can't check bus status, assume recovery worked */ 283 if (ret == -EOPNOTSUPP) 284 ret = 0; 285 286 if (bri->unprepare_recovery) 287 bri->unprepare_recovery(adap); 288 if (bri->pinctrl) 289 pinctrl_select_state(bri->pinctrl, bri->pins_default); 290 291 return ret; 292 } 293 EXPORT_SYMBOL_GPL(i2c_generic_scl_recovery); 294 295 int i2c_recover_bus(struct i2c_adapter *adap) 296 { 297 if (!adap->bus_recovery_info) 298 return -EBUSY; 299 300 dev_dbg(&adap->dev, "Trying i2c bus recovery\n"); 301 return adap->bus_recovery_info->recover_bus(adap); 302 } 303 EXPORT_SYMBOL_GPL(i2c_recover_bus); 304 305 static void i2c_gpio_init_pinctrl_recovery(struct i2c_adapter *adap) 306 { 307 struct i2c_bus_recovery_info *bri = adap->bus_recovery_info; 308 struct device *dev = &adap->dev; 309 struct pinctrl *p = bri->pinctrl ?: dev_pinctrl(dev->parent); 310 311 bri->pinctrl = p; 312 313 /* 314 * we can't change states without pinctrl, so remove the states if 315 * populated 316 */ 317 if (!p) { 318 bri->pins_default = NULL; 319 bri->pins_gpio = NULL; 320 return; 321 } 322 323 if (!bri->pins_default) { 324 bri->pins_default = pinctrl_lookup_state(p, 325 PINCTRL_STATE_DEFAULT); 326 if (IS_ERR(bri->pins_default)) { 327 dev_dbg(dev, PINCTRL_STATE_DEFAULT " state not found for GPIO recovery\n"); 328 bri->pins_default = NULL; 329 } 330 } 331 if (!bri->pins_gpio) { 332 bri->pins_gpio = pinctrl_lookup_state(p, "gpio"); 333 if (IS_ERR(bri->pins_gpio)) 334 bri->pins_gpio = pinctrl_lookup_state(p, "recovery"); 335 336 if (IS_ERR(bri->pins_gpio)) { 337 dev_dbg(dev, "no gpio or recovery state found for GPIO recovery\n"); 338 bri->pins_gpio = NULL; 339 } 340 } 341 342 /* for pinctrl state changes, we need all the information */ 343 if (bri->pins_default && bri->pins_gpio) { 344 dev_info(dev, "using pinctrl states for GPIO recovery"); 345 } else { 346 bri->pinctrl = NULL; 347 bri->pins_default = NULL; 348 bri->pins_gpio = NULL; 349 } 350 } 351 352 static int i2c_gpio_init_generic_recovery(struct i2c_adapter *adap) 353 { 354 struct i2c_bus_recovery_info *bri = adap->bus_recovery_info; 355 struct device *dev = &adap->dev; 356 struct gpio_desc *gpiod; 357 int ret = 0; 358 359 /* 360 * don't touch the recovery information if the driver is not using 361 * generic SCL recovery 362 */ 363 if (bri->recover_bus && bri->recover_bus != i2c_generic_scl_recovery) 364 return 0; 365 366 /* 367 * pins might be taken as GPIO, so we should inform pinctrl about 368 * this and move the state to GPIO 369 */ 370 if (bri->pinctrl) 371 pinctrl_select_state(bri->pinctrl, bri->pins_gpio); 372 373 /* 374 * if there is incomplete or no recovery information, see if generic 375 * GPIO recovery is available 376 */ 377 if (!bri->scl_gpiod) { 378 gpiod = devm_gpiod_get(dev, "scl", GPIOD_OUT_HIGH_OPEN_DRAIN); 379 if (PTR_ERR(gpiod) == -EPROBE_DEFER) { 380 ret = -EPROBE_DEFER; 381 goto cleanup_pinctrl_state; 382 } 383 if (!IS_ERR(gpiod)) { 384 bri->scl_gpiod = gpiod; 385 bri->recover_bus = i2c_generic_scl_recovery; 386 dev_info(dev, "using generic GPIOs for recovery\n"); 387 } 388 } 389 390 /* SDA GPIOD line is optional, so we care about DEFER only */ 391 if (!bri->sda_gpiod) { 392 /* 393 * We have SCL. Pull SCL low and wait a bit so that SDA glitches 394 * have no effect. 395 */ 396 gpiod_direction_output(bri->scl_gpiod, 0); 397 udelay(10); 398 gpiod = devm_gpiod_get(dev, "sda", GPIOD_IN); 399 400 /* Wait a bit in case of a SDA glitch, and then release SCL. */ 401 udelay(10); 402 gpiod_direction_output(bri->scl_gpiod, 1); 403 404 if (PTR_ERR(gpiod) == -EPROBE_DEFER) { 405 ret = -EPROBE_DEFER; 406 goto cleanup_pinctrl_state; 407 } 408 if (!IS_ERR(gpiod)) 409 bri->sda_gpiod = gpiod; 410 } 411 412 cleanup_pinctrl_state: 413 /* change the state of the pins back to their default state */ 414 if (bri->pinctrl) 415 pinctrl_select_state(bri->pinctrl, bri->pins_default); 416 417 return ret; 418 } 419 420 static int i2c_gpio_init_recovery(struct i2c_adapter *adap) 421 { 422 i2c_gpio_init_pinctrl_recovery(adap); 423 return i2c_gpio_init_generic_recovery(adap); 424 } 425 426 static int i2c_init_recovery(struct i2c_adapter *adap) 427 { 428 struct i2c_bus_recovery_info *bri = adap->bus_recovery_info; 429 bool is_error_level = true; 430 char *err_str; 431 432 if (!bri) 433 return 0; 434 435 if (i2c_gpio_init_recovery(adap) == -EPROBE_DEFER) 436 return -EPROBE_DEFER; 437 438 if (!bri->recover_bus) { 439 err_str = "no suitable method provided"; 440 is_error_level = false; 441 goto err; 442 } 443 444 if (bri->scl_gpiod && bri->recover_bus == i2c_generic_scl_recovery) { 445 bri->get_scl = get_scl_gpio_value; 446 bri->set_scl = set_scl_gpio_value; 447 if (bri->sda_gpiod) { 448 bri->get_sda = get_sda_gpio_value; 449 if (gpiod_get_direction(bri->sda_gpiod) == GPIO_LINE_DIRECTION_OUT) 450 bri->set_sda = set_sda_gpio_value; 451 } 452 } else if (bri->recover_bus == i2c_generic_scl_recovery) { 453 /* Generic SCL recovery */ 454 if (!bri->set_scl || !bri->get_scl) { 455 err_str = "no {get|set}_scl() found"; 456 goto err; 457 } 458 if (!bri->set_sda && !bri->get_sda) { 459 err_str = "either get_sda() or set_sda() needed"; 460 goto err; 461 } 462 } 463 464 return 0; 465 err: 466 if (is_error_level) 467 dev_err(&adap->dev, "Not using recovery: %s\n", err_str); 468 else 469 dev_dbg(&adap->dev, "Not using recovery: %s\n", err_str); 470 adap->bus_recovery_info = NULL; 471 472 return -EINVAL; 473 } 474 475 static int i2c_smbus_host_notify_to_irq(const struct i2c_client *client) 476 { 477 struct i2c_adapter *adap = client->adapter; 478 unsigned int irq; 479 480 if (!adap->host_notify_domain) 481 return -ENXIO; 482 483 if (client->flags & I2C_CLIENT_TEN) 484 return -EINVAL; 485 486 irq = irq_create_mapping(adap->host_notify_domain, client->addr); 487 488 return irq > 0 ? irq : -ENXIO; 489 } 490 491 static int i2c_device_probe(struct device *dev) 492 { 493 struct fwnode_handle *fwnode = dev_fwnode(dev); 494 struct i2c_client *client = i2c_verify_client(dev); 495 struct i2c_driver *driver; 496 bool do_power_on; 497 int status; 498 499 if (!client) 500 return 0; 501 502 client->irq = client->init_irq; 503 504 if (!client->irq) { 505 int irq = -ENOENT; 506 507 if (client->flags & I2C_CLIENT_HOST_NOTIFY) { 508 dev_dbg(dev, "Using Host Notify IRQ\n"); 509 /* Keep adapter active when Host Notify is required */ 510 pm_runtime_get_sync(&client->adapter->dev); 511 irq = i2c_smbus_host_notify_to_irq(client); 512 } else if (is_of_node(fwnode)) { 513 irq = fwnode_irq_get_byname(fwnode, "irq"); 514 if (irq == -EINVAL || irq == -ENODATA) 515 irq = fwnode_irq_get(fwnode, 0); 516 } else if (is_acpi_device_node(fwnode)) { 517 bool wake_capable; 518 519 irq = i2c_acpi_get_irq(client, &wake_capable); 520 if (irq > 0 && wake_capable) 521 client->flags |= I2C_CLIENT_WAKE; 522 } 523 if (irq == -EPROBE_DEFER) { 524 status = dev_err_probe(dev, irq, "can't get irq\n"); 525 goto put_sync_adapter; 526 } 527 528 if (irq < 0) 529 irq = 0; 530 531 client->irq = irq; 532 } 533 534 driver = to_i2c_driver(dev->driver); 535 536 /* 537 * An I2C ID table is not mandatory, if and only if, a suitable OF 538 * or ACPI ID table is supplied for the probing device. 539 */ 540 if (!driver->id_table && 541 !acpi_driver_match_device(dev, dev->driver) && 542 !i2c_of_match_device(dev->driver->of_match_table, client)) { 543 status = -ENODEV; 544 goto put_sync_adapter; 545 } 546 547 if (client->flags & I2C_CLIENT_WAKE) { 548 int wakeirq; 549 550 wakeirq = fwnode_irq_get_byname(fwnode, "wakeup"); 551 if (wakeirq == -EPROBE_DEFER) { 552 status = dev_err_probe(dev, wakeirq, "can't get wakeirq\n"); 553 goto put_sync_adapter; 554 } 555 556 device_init_wakeup(&client->dev, true); 557 558 if (wakeirq > 0 && wakeirq != client->irq) 559 status = dev_pm_set_dedicated_wake_irq(dev, wakeirq); 560 else if (client->irq > 0) 561 status = dev_pm_set_wake_irq(dev, client->irq); 562 else 563 status = 0; 564 565 if (status) 566 dev_warn(&client->dev, "failed to set up wakeup irq\n"); 567 } 568 569 dev_dbg(dev, "probe\n"); 570 571 status = of_clk_set_defaults(to_of_node(fwnode), false); 572 if (status < 0) 573 goto err_clear_wakeup_irq; 574 575 do_power_on = !i2c_acpi_waive_d0_probe(dev); 576 status = dev_pm_domain_attach(&client->dev, PD_FLAG_DETACH_POWER_OFF | 577 (do_power_on ? PD_FLAG_ATTACH_POWER_ON : 0)); 578 if (status) 579 goto err_clear_wakeup_irq; 580 581 client->devres_group_id = devres_open_group(&client->dev, NULL, 582 GFP_KERNEL); 583 if (!client->devres_group_id) { 584 status = -ENOMEM; 585 goto err_clear_wakeup_irq; 586 } 587 588 client->debugfs = debugfs_create_dir(dev_name(&client->dev), 589 client->adapter->debugfs); 590 591 if (driver->probe) 592 status = driver->probe(client); 593 else 594 status = -EINVAL; 595 596 /* 597 * Note that we are not closing the devres group opened above so 598 * even resources that were attached to the device after probe is 599 * run are released when i2c_device_remove() is executed. This is 600 * needed as some drivers would allocate additional resources, 601 * for example when updating firmware. 602 */ 603 604 if (status) 605 goto err_release_driver_resources; 606 607 return 0; 608 609 err_release_driver_resources: 610 debugfs_remove_recursive(client->debugfs); 611 devres_release_group(&client->dev, client->devres_group_id); 612 err_clear_wakeup_irq: 613 dev_pm_clear_wake_irq(&client->dev); 614 device_init_wakeup(&client->dev, false); 615 put_sync_adapter: 616 if (client->flags & I2C_CLIENT_HOST_NOTIFY) 617 pm_runtime_put_sync(&client->adapter->dev); 618 619 return status; 620 } 621 622 static void i2c_device_remove(struct device *dev) 623 { 624 struct i2c_client *client = to_i2c_client(dev); 625 struct i2c_driver *driver; 626 627 driver = to_i2c_driver(dev->driver); 628 if (driver->remove) { 629 dev_dbg(dev, "remove\n"); 630 631 driver->remove(client); 632 } 633 634 debugfs_remove_recursive(client->debugfs); 635 636 devres_release_group(&client->dev, client->devres_group_id); 637 638 dev_pm_clear_wake_irq(&client->dev); 639 device_init_wakeup(&client->dev, false); 640 641 client->irq = 0; 642 if (client->flags & I2C_CLIENT_HOST_NOTIFY) 643 pm_runtime_put(&client->adapter->dev); 644 } 645 646 static void i2c_device_shutdown(struct device *dev) 647 { 648 struct i2c_client *client = i2c_verify_client(dev); 649 struct i2c_driver *driver; 650 651 if (!client || !dev->driver) 652 return; 653 driver = to_i2c_driver(dev->driver); 654 if (driver->shutdown) 655 driver->shutdown(client); 656 else if (client->irq > 0) 657 disable_irq(client->irq); 658 } 659 660 static void i2c_client_dev_release(struct device *dev) 661 { 662 kfree(to_i2c_client(dev)); 663 } 664 665 static ssize_t 666 name_show(struct device *dev, struct device_attribute *attr, char *buf) 667 { 668 return sprintf(buf, "%s\n", dev->type == &i2c_client_type ? 669 to_i2c_client(dev)->name : to_i2c_adapter(dev)->name); 670 } 671 static DEVICE_ATTR_RO(name); 672 673 static ssize_t 674 modalias_show(struct device *dev, struct device_attribute *attr, char *buf) 675 { 676 struct i2c_client *client = to_i2c_client(dev); 677 int len; 678 679 len = of_device_modalias(dev, buf, PAGE_SIZE); 680 if (len != -ENODEV) 681 return len; 682 683 len = acpi_device_modalias(dev, buf, PAGE_SIZE - 1); 684 if (len != -ENODEV) 685 return len; 686 687 return sprintf(buf, "%s%s\n", I2C_MODULE_PREFIX, client->name); 688 } 689 static DEVICE_ATTR_RO(modalias); 690 691 static struct attribute *i2c_dev_attrs[] = { 692 &dev_attr_name.attr, 693 /* modalias helps coldplug: modprobe $(cat .../modalias) */ 694 &dev_attr_modalias.attr, 695 NULL 696 }; 697 ATTRIBUTE_GROUPS(i2c_dev); 698 699 const struct bus_type i2c_bus_type = { 700 .name = "i2c", 701 .match = i2c_device_match, 702 .probe = i2c_device_probe, 703 .remove = i2c_device_remove, 704 .shutdown = i2c_device_shutdown, 705 }; 706 EXPORT_SYMBOL_GPL(i2c_bus_type); 707 708 const struct device_type i2c_client_type = { 709 .groups = i2c_dev_groups, 710 .uevent = i2c_device_uevent, 711 .release = i2c_client_dev_release, 712 }; 713 EXPORT_SYMBOL_GPL(i2c_client_type); 714 715 716 /** 717 * i2c_verify_client - return parameter as i2c_client, or NULL 718 * @dev: device, probably from some driver model iterator 719 * 720 * When traversing the driver model tree, perhaps using driver model 721 * iterators like @device_for_each_child(), you can't assume very much 722 * about the nodes you find. Use this function to avoid oopses caused 723 * by wrongly treating some non-I2C device as an i2c_client. 724 */ 725 struct i2c_client *i2c_verify_client(struct device *dev) 726 { 727 return (dev->type == &i2c_client_type) 728 ? to_i2c_client(dev) 729 : NULL; 730 } 731 EXPORT_SYMBOL(i2c_verify_client); 732 733 734 /* Return a unique address which takes the flags of the client into account */ 735 static unsigned short i2c_encode_flags_to_addr(struct i2c_client *client) 736 { 737 unsigned short addr = client->addr; 738 739 /* For some client flags, add an arbitrary offset to avoid collisions */ 740 if (client->flags & I2C_CLIENT_TEN) 741 addr |= I2C_ADDR_OFFSET_TEN_BIT; 742 743 if (client->flags & I2C_CLIENT_SLAVE) 744 addr |= I2C_ADDR_OFFSET_SLAVE; 745 746 return addr; 747 } 748 749 /* This is a permissive address validity check, I2C address map constraints 750 * are purposely not enforced, except for the general call address. */ 751 static int i2c_check_addr_validity(unsigned int addr, unsigned short flags) 752 { 753 if (flags & I2C_CLIENT_TEN) { 754 /* 10-bit address, all values are valid */ 755 if (addr > 0x3ff) 756 return -EINVAL; 757 } else { 758 /* 7-bit address, reject the general call address */ 759 if (addr == 0x00 || addr > 0x7f) 760 return -EINVAL; 761 } 762 return 0; 763 } 764 765 /* And this is a strict address validity check, used when probing. If a 766 * device uses a reserved address, then it shouldn't be probed. 7-bit 767 * addressing is assumed, 10-bit address devices are rare and should be 768 * explicitly enumerated. */ 769 int i2c_check_7bit_addr_validity_strict(unsigned short addr) 770 { 771 /* 772 * Reserved addresses per I2C specification: 773 * 0x00 General call address / START byte 774 * 0x01 CBUS address 775 * 0x02 Reserved for different bus format 776 * 0x03 Reserved for future purposes 777 * 0x04-0x07 Hs-mode master code 778 * 0x78-0x7b 10-bit slave addressing 779 * 0x7c-0x7f Reserved for future purposes 780 */ 781 if (addr < 0x08 || addr > 0x77) 782 return -EINVAL; 783 return 0; 784 } 785 786 static int __i2c_check_addr_busy(struct device *dev, void *addrp) 787 { 788 struct i2c_client *client = i2c_verify_client(dev); 789 int addr = *(int *)addrp; 790 791 if (client && i2c_encode_flags_to_addr(client) == addr) 792 return -EBUSY; 793 return 0; 794 } 795 796 /* walk up mux tree */ 797 static int i2c_check_mux_parents(struct i2c_adapter *adapter, int addr) 798 { 799 struct i2c_adapter *parent = i2c_parent_is_i2c_adapter(adapter); 800 int result; 801 802 result = device_for_each_child(&adapter->dev, &addr, 803 __i2c_check_addr_busy); 804 805 if (!result && parent) 806 result = i2c_check_mux_parents(parent, addr); 807 808 return result; 809 } 810 811 /* recurse down mux tree */ 812 static int i2c_check_mux_children(struct device *dev, void *addrp) 813 { 814 int result; 815 816 if (dev->type == &i2c_adapter_type) 817 result = device_for_each_child(dev, addrp, 818 i2c_check_mux_children); 819 else 820 result = __i2c_check_addr_busy(dev, addrp); 821 822 return result; 823 } 824 825 static int i2c_check_addr_busy(struct i2c_adapter *adapter, int addr) 826 { 827 struct i2c_adapter *parent = i2c_parent_is_i2c_adapter(adapter); 828 int result = 0; 829 830 if (parent) 831 result = i2c_check_mux_parents(parent, addr); 832 833 if (!result) 834 result = device_for_each_child(&adapter->dev, &addr, 835 i2c_check_mux_children); 836 837 return result; 838 } 839 840 /** 841 * i2c_adapter_lock_bus - Get exclusive access to an I2C bus segment 842 * @adapter: Target I2C bus segment 843 * @flags: I2C_LOCK_ROOT_ADAPTER locks the root i2c adapter, I2C_LOCK_SEGMENT 844 * locks only this branch in the adapter tree 845 */ 846 static void i2c_adapter_lock_bus(struct i2c_adapter *adapter, 847 unsigned int flags) 848 { 849 rt_mutex_lock_nested(&adapter->bus_lock, i2c_adapter_depth(adapter)); 850 } 851 852 /** 853 * i2c_adapter_trylock_bus - Try to get exclusive access to an I2C bus segment 854 * @adapter: Target I2C bus segment 855 * @flags: I2C_LOCK_ROOT_ADAPTER trylocks the root i2c adapter, I2C_LOCK_SEGMENT 856 * trylocks only this branch in the adapter tree 857 */ 858 static int i2c_adapter_trylock_bus(struct i2c_adapter *adapter, 859 unsigned int flags) 860 { 861 return rt_mutex_trylock(&adapter->bus_lock); 862 } 863 864 /** 865 * i2c_adapter_unlock_bus - Release exclusive access to an I2C bus segment 866 * @adapter: Target I2C bus segment 867 * @flags: I2C_LOCK_ROOT_ADAPTER unlocks the root i2c adapter, I2C_LOCK_SEGMENT 868 * unlocks only this branch in the adapter tree 869 */ 870 static void i2c_adapter_unlock_bus(struct i2c_adapter *adapter, 871 unsigned int flags) 872 { 873 rt_mutex_unlock(&adapter->bus_lock); 874 } 875 876 static void i2c_dev_set_name(struct i2c_adapter *adap, 877 struct i2c_client *client, 878 struct i2c_board_info const *info) 879 { 880 struct acpi_device *adev = ACPI_COMPANION(&client->dev); 881 882 if (info && info->dev_name) { 883 dev_set_name(&client->dev, "i2c-%s", info->dev_name); 884 return; 885 } 886 887 if (adev) { 888 dev_set_name(&client->dev, "i2c-%s", acpi_dev_name(adev)); 889 return; 890 } 891 892 dev_set_name(&client->dev, "%d-%04x", i2c_adapter_id(adap), 893 i2c_encode_flags_to_addr(client)); 894 } 895 896 int i2c_dev_irq_from_resources(const struct resource *resources, 897 unsigned int num_resources) 898 { 899 struct irq_data *irqd; 900 int i; 901 902 for (i = 0; i < num_resources; i++) { 903 const struct resource *r = &resources[i]; 904 905 if (resource_type(r) != IORESOURCE_IRQ) 906 continue; 907 908 if (r->flags & IORESOURCE_BITS) { 909 irqd = irq_get_irq_data(r->start); 910 if (!irqd) 911 break; 912 913 irqd_set_trigger_type(irqd, r->flags & IORESOURCE_BITS); 914 } 915 916 return r->start; 917 } 918 919 return 0; 920 } 921 922 /* 923 * Serialize device instantiation in case it can be instantiated explicitly 924 * and by auto-detection 925 */ 926 static int i2c_lock_addr(struct i2c_adapter *adap, unsigned short addr, 927 unsigned short flags) 928 { 929 if (!(flags & I2C_CLIENT_TEN) && 930 test_and_set_bit(addr, adap->addrs_in_instantiation)) 931 return -EBUSY; 932 933 return 0; 934 } 935 936 static void i2c_unlock_addr(struct i2c_adapter *adap, unsigned short addr, 937 unsigned short flags) 938 { 939 if (!(flags & I2C_CLIENT_TEN)) 940 clear_bit(addr, adap->addrs_in_instantiation); 941 } 942 943 /** 944 * i2c_new_client_device - instantiate an i2c device 945 * @adap: the adapter managing the device 946 * @info: describes one I2C device; bus_num is ignored 947 * Context: can sleep 948 * 949 * Create an i2c device. Binding is handled through driver model 950 * probe()/remove() methods. A driver may be bound to this device when we 951 * return from this function, or any later moment (e.g. maybe hotplugging will 952 * load the driver module). This call is not appropriate for use by mainboard 953 * initialization logic, which usually runs during an arch_initcall() long 954 * before any i2c_adapter could exist. 955 * 956 * This returns the new i2c client, which may be saved for later use with 957 * i2c_unregister_device(); or an ERR_PTR to describe the error. 958 */ 959 struct i2c_client * 960 i2c_new_client_device(struct i2c_adapter *adap, struct i2c_board_info const *info) 961 { 962 struct fwnode_handle *fwnode = info->fwnode; 963 struct i2c_client *client; 964 bool need_put = false; 965 int status; 966 967 client = kzalloc_obj(*client); 968 if (!client) 969 return ERR_PTR(-ENOMEM); 970 971 client->adapter = adap; 972 973 client->dev.platform_data = info->platform_data; 974 client->flags = info->flags; 975 client->addr = info->addr; 976 977 client->init_irq = info->irq; 978 if (!client->init_irq) 979 client->init_irq = i2c_dev_irq_from_resources(info->resources, 980 info->num_resources); 981 982 strscpy(client->name, info->type, sizeof(client->name)); 983 984 status = i2c_check_addr_validity(client->addr, client->flags); 985 if (status) { 986 dev_err(&adap->dev, "Invalid %d-bit I2C address 0x%02hx\n", 987 client->flags & I2C_CLIENT_TEN ? 10 : 7, client->addr); 988 goto out_err_silent; 989 } 990 991 status = i2c_lock_addr(adap, client->addr, client->flags); 992 if (status) 993 goto out_err_silent; 994 995 /* Check for address business */ 996 status = i2c_check_addr_busy(adap, i2c_encode_flags_to_addr(client)); 997 if (status) 998 goto out_err; 999 1000 client->dev.parent = &client->adapter->dev; 1001 client->dev.bus = &i2c_bus_type; 1002 client->dev.type = &i2c_client_type; 1003 1004 device_enable_async_suspend(&client->dev); 1005 1006 device_set_node(&client->dev, fwnode_handle_get(fwnode)); 1007 1008 if (info->swnode) { 1009 status = device_add_software_node(&client->dev, info->swnode); 1010 if (status) { 1011 dev_err(&adap->dev, 1012 "Failed to add software node to client %s: %d\n", 1013 client->name, status); 1014 goto out_err_put_fwnode; 1015 } 1016 } 1017 1018 i2c_dev_set_name(adap, client, info); 1019 status = device_register(&client->dev); 1020 if (status) 1021 goto out_remove_swnode; 1022 1023 dev_dbg(&adap->dev, "client [%s] registered with bus id %s\n", 1024 client->name, dev_name(&client->dev)); 1025 1026 i2c_unlock_addr(adap, client->addr, client->flags); 1027 1028 return client; 1029 1030 out_remove_swnode: 1031 device_remove_software_node(&client->dev); 1032 need_put = true; 1033 out_err_put_fwnode: 1034 fwnode_handle_put(fwnode); 1035 out_err: 1036 dev_err(&adap->dev, 1037 "Failed to register i2c client %s at 0x%02x (%d)\n", 1038 client->name, client->addr, status); 1039 i2c_unlock_addr(adap, client->addr, client->flags); 1040 out_err_silent: 1041 if (need_put) 1042 put_device(&client->dev); 1043 else 1044 kfree(client); 1045 return ERR_PTR(status); 1046 } 1047 EXPORT_SYMBOL_GPL(i2c_new_client_device); 1048 1049 /** 1050 * i2c_unregister_device - reverse effect of i2c_new_*_device() 1051 * @client: value returned from i2c_new_*_device() 1052 * Context: can sleep 1053 */ 1054 void i2c_unregister_device(struct i2c_client *client) 1055 { 1056 struct fwnode_handle *fwnode; 1057 1058 if (IS_ERR_OR_NULL(client)) 1059 return; 1060 1061 fwnode = dev_fwnode(&client->dev); 1062 if (is_of_node(fwnode)) 1063 of_node_clear_flag(to_of_node(fwnode), OF_POPULATED); 1064 else if (is_acpi_device_node(fwnode)) 1065 acpi_device_clear_enumerated(to_acpi_device_node(fwnode)); 1066 1067 /* 1068 * If the primary fwnode is a software node it is free-ed by 1069 * device_remove_software_node() below, avoid double-free. 1070 */ 1071 if (!is_software_node(fwnode)) 1072 fwnode_handle_put(fwnode); 1073 1074 device_remove_software_node(&client->dev); 1075 device_unregister(&client->dev); 1076 } 1077 EXPORT_SYMBOL_GPL(i2c_unregister_device); 1078 1079 /** 1080 * i2c_find_device_by_fwnode() - find an i2c_client for the fwnode 1081 * @fwnode: &struct fwnode_handle corresponding to the &struct i2c_client 1082 * 1083 * Look up and return the &struct i2c_client corresponding to the @fwnode. 1084 * If no client can be found, or @fwnode is NULL, this returns NULL. 1085 * 1086 * The user must call put_device(&client->dev) once done with the i2c client. 1087 */ 1088 struct i2c_client *i2c_find_device_by_fwnode(struct fwnode_handle *fwnode) 1089 { 1090 struct i2c_client *client; 1091 struct device *dev; 1092 1093 if (IS_ERR_OR_NULL(fwnode)) 1094 return NULL; 1095 1096 dev = bus_find_device_by_fwnode(&i2c_bus_type, fwnode); 1097 if (!dev) 1098 return NULL; 1099 1100 client = i2c_verify_client(dev); 1101 if (!client) 1102 put_device(dev); 1103 1104 return client; 1105 } 1106 EXPORT_SYMBOL(i2c_find_device_by_fwnode); 1107 1108 1109 static const struct i2c_device_id dummy_id[] = { 1110 { .name = "dummy" }, 1111 { .name = "smbus_host_notify" }, 1112 { } 1113 }; 1114 1115 static int dummy_probe(struct i2c_client *client) 1116 { 1117 return 0; 1118 } 1119 1120 static struct i2c_driver dummy_driver = { 1121 .driver.name = "dummy", 1122 .probe = dummy_probe, 1123 .id_table = dummy_id, 1124 }; 1125 1126 /** 1127 * i2c_new_dummy_device - return a new i2c device bound to a dummy driver 1128 * @adapter: the adapter managing the device 1129 * @address: seven bit address to be used 1130 * Context: can sleep 1131 * 1132 * This returns an I2C client bound to the "dummy" driver, intended for use 1133 * with devices that consume multiple addresses. Examples of such chips 1134 * include various EEPROMS (like 24c04 and 24c08 models). 1135 * 1136 * These dummy devices have two main uses. First, most I2C and SMBus calls 1137 * except i2c_transfer() need a client handle; the dummy will be that handle. 1138 * And second, this prevents the specified address from being bound to a 1139 * different driver. 1140 * 1141 * This returns the new i2c client, which should be saved for later use with 1142 * i2c_unregister_device(); or an ERR_PTR to describe the error. 1143 */ 1144 struct i2c_client *i2c_new_dummy_device(struct i2c_adapter *adapter, u16 address) 1145 { 1146 struct i2c_board_info info = { 1147 I2C_BOARD_INFO("dummy", address), 1148 }; 1149 1150 return i2c_new_client_device(adapter, &info); 1151 } 1152 EXPORT_SYMBOL_GPL(i2c_new_dummy_device); 1153 1154 static void devm_i2c_release_dummy(void *client) 1155 { 1156 i2c_unregister_device(client); 1157 } 1158 1159 /** 1160 * devm_i2c_new_dummy_device - return a new i2c device bound to a dummy driver 1161 * @dev: device the managed resource is bound to 1162 * @adapter: the adapter managing the device 1163 * @address: seven bit address to be used 1164 * Context: can sleep 1165 * 1166 * This is the device-managed version of @i2c_new_dummy_device. It returns the 1167 * new i2c client or an ERR_PTR in case of an error. 1168 */ 1169 struct i2c_client *devm_i2c_new_dummy_device(struct device *dev, 1170 struct i2c_adapter *adapter, 1171 u16 address) 1172 { 1173 struct i2c_client *client; 1174 int ret; 1175 1176 client = i2c_new_dummy_device(adapter, address); 1177 if (IS_ERR(client)) 1178 return client; 1179 1180 ret = devm_add_action_or_reset(dev, devm_i2c_release_dummy, client); 1181 if (ret) 1182 return ERR_PTR(ret); 1183 1184 return client; 1185 } 1186 EXPORT_SYMBOL_GPL(devm_i2c_new_dummy_device); 1187 1188 /** 1189 * i2c_new_ancillary_device - Helper to get the instantiated secondary address 1190 * and create the associated device 1191 * @client: Handle to the primary client 1192 * @name: Handle to specify which secondary address to get 1193 * @default_addr: Used as a fallback if no secondary address was specified 1194 * Context: can sleep 1195 * 1196 * I2C clients can be composed of multiple I2C slaves bound together in a single 1197 * component. The I2C client driver then binds to the master I2C slave and needs 1198 * to create I2C dummy clients to communicate with all the other slaves. 1199 * 1200 * This function creates and returns an I2C dummy client whose I2C address is 1201 * retrieved from the platform firmware based on the given slave name. If no 1202 * address is specified by the firmware default_addr is used. 1203 * 1204 * On DT-based platforms the address is retrieved from the "reg" property entry 1205 * cell whose "reg-names" value matches the slave name. 1206 * 1207 * This returns the new i2c client, which should be saved for later use with 1208 * i2c_unregister_device(); or an ERR_PTR to describe the error. 1209 */ 1210 struct i2c_client *i2c_new_ancillary_device(struct i2c_client *client, 1211 const char *name, 1212 u16 default_addr) 1213 { 1214 struct device_node *np = client->dev.of_node; 1215 u32 addr = default_addr; 1216 int i; 1217 1218 i = of_property_match_string(np, "reg-names", name); 1219 if (i >= 0) 1220 of_property_read_u32_index(np, "reg", i, &addr); 1221 1222 dev_dbg(&client->adapter->dev, "Address for %s : 0x%x\n", name, addr); 1223 return i2c_new_dummy_device(client->adapter, addr); 1224 } 1225 EXPORT_SYMBOL_GPL(i2c_new_ancillary_device); 1226 1227 /* ------------------------------------------------------------------------- */ 1228 1229 /* I2C bus adapters -- one roots each I2C or SMBUS segment */ 1230 1231 static void i2c_adapter_dev_release(struct device *dev) 1232 { 1233 struct i2c_adapter *adap = to_i2c_adapter(dev); 1234 complete(&adap->dev_released); 1235 } 1236 1237 unsigned int i2c_adapter_depth(struct i2c_adapter *adapter) 1238 { 1239 unsigned int depth = 0; 1240 struct device *parent; 1241 1242 for (parent = adapter->dev.parent; parent; parent = parent->parent) 1243 if (parent->type == &i2c_adapter_type) 1244 depth++; 1245 1246 WARN_ONCE(depth >= MAX_LOCKDEP_SUBCLASSES, 1247 "adapter depth exceeds lockdep subclass limit\n"); 1248 1249 return depth; 1250 } 1251 EXPORT_SYMBOL_GPL(i2c_adapter_depth); 1252 1253 /* 1254 * Let users instantiate I2C devices through sysfs. This can be used when 1255 * platform initialization code doesn't contain the proper data for 1256 * whatever reason. Also useful for drivers that do device detection and 1257 * detection fails, either because the device uses an unexpected address, 1258 * or this is a compatible device with different ID register values. 1259 * 1260 * Parameter checking may look overzealous, but we really don't want 1261 * the user to provide incorrect parameters. 1262 */ 1263 static ssize_t 1264 new_device_store(struct device *dev, struct device_attribute *attr, 1265 const char *buf, size_t count) 1266 { 1267 struct i2c_adapter *adap = to_i2c_adapter(dev); 1268 struct i2c_board_info info; 1269 struct i2c_client *client; 1270 char *blank, end; 1271 int res; 1272 1273 memset(&info, 0, sizeof(struct i2c_board_info)); 1274 1275 blank = strchr(buf, ' '); 1276 if (!blank) { 1277 dev_err(dev, "%s: Missing parameters\n", "new_device"); 1278 return -EINVAL; 1279 } 1280 if (blank - buf > I2C_NAME_SIZE - 1) { 1281 dev_err(dev, "%s: Invalid device name\n", "new_device"); 1282 return -EINVAL; 1283 } 1284 memcpy(info.type, buf, blank - buf); 1285 1286 /* Parse remaining parameters, reject extra parameters */ 1287 res = sscanf(++blank, "%hi%c", &info.addr, &end); 1288 if (res < 1) { 1289 dev_err(dev, "%s: Can't parse I2C address\n", "new_device"); 1290 return -EINVAL; 1291 } 1292 if (res > 1 && end != '\n') { 1293 dev_err(dev, "%s: Extra parameters\n", "new_device"); 1294 return -EINVAL; 1295 } 1296 1297 if ((info.addr & I2C_ADDR_OFFSET_TEN_BIT) == I2C_ADDR_OFFSET_TEN_BIT) { 1298 info.addr &= ~I2C_ADDR_OFFSET_TEN_BIT; 1299 info.flags |= I2C_CLIENT_TEN; 1300 } 1301 1302 if (info.addr & I2C_ADDR_OFFSET_SLAVE) { 1303 info.addr &= ~I2C_ADDR_OFFSET_SLAVE; 1304 info.flags |= I2C_CLIENT_SLAVE; 1305 } 1306 1307 client = i2c_new_client_device(adap, &info); 1308 if (IS_ERR(client)) 1309 return PTR_ERR(client); 1310 1311 /* Keep track of the added device */ 1312 mutex_lock(&adap->userspace_clients_lock); 1313 list_add_tail(&client->detected, &adap->userspace_clients); 1314 mutex_unlock(&adap->userspace_clients_lock); 1315 dev_info(dev, "%s: Instantiated device %s at 0x%02hx\n", "new_device", 1316 info.type, info.addr); 1317 1318 return count; 1319 } 1320 static DEVICE_ATTR_WO(new_device); 1321 1322 /* 1323 * And of course let the users delete the devices they instantiated, if 1324 * they got it wrong. This interface can only be used to delete devices 1325 * instantiated by i2c_sysfs_new_device above. This guarantees that we 1326 * don't delete devices to which some kernel code still has references. 1327 * 1328 * Parameter checking may look overzealous, but we really don't want 1329 * the user to delete the wrong device. 1330 */ 1331 static ssize_t 1332 delete_device_store(struct device *dev, struct device_attribute *attr, 1333 const char *buf, size_t count) 1334 { 1335 struct i2c_adapter *adap = to_i2c_adapter(dev); 1336 struct i2c_client *client, *next; 1337 unsigned short addr; 1338 char end; 1339 int res; 1340 1341 /* Parse parameters, reject extra parameters */ 1342 res = sscanf(buf, "%hi%c", &addr, &end); 1343 if (res < 1) { 1344 dev_err(dev, "%s: Can't parse I2C address\n", "delete_device"); 1345 return -EINVAL; 1346 } 1347 if (res > 1 && end != '\n') { 1348 dev_err(dev, "%s: Extra parameters\n", "delete_device"); 1349 return -EINVAL; 1350 } 1351 1352 /* Make sure the device was added through sysfs */ 1353 res = -ENOENT; 1354 mutex_lock_nested(&adap->userspace_clients_lock, 1355 i2c_adapter_depth(adap)); 1356 list_for_each_entry_safe(client, next, &adap->userspace_clients, 1357 detected) { 1358 if (i2c_encode_flags_to_addr(client) == addr) { 1359 dev_info(dev, "%s: Deleting device %s at 0x%02hx\n", 1360 "delete_device", client->name, client->addr); 1361 1362 list_del(&client->detected); 1363 i2c_unregister_device(client); 1364 res = count; 1365 break; 1366 } 1367 } 1368 mutex_unlock(&adap->userspace_clients_lock); 1369 1370 if (res < 0) 1371 dev_err(dev, "%s: Can't find device in list\n", 1372 "delete_device"); 1373 return res; 1374 } 1375 static DEVICE_ATTR_IGNORE_LOCKDEP(delete_device, S_IWUSR, NULL, 1376 delete_device_store); 1377 1378 static struct attribute *i2c_adapter_attrs[] = { 1379 &dev_attr_name.attr, 1380 &dev_attr_new_device.attr, 1381 &dev_attr_delete_device.attr, 1382 NULL 1383 }; 1384 ATTRIBUTE_GROUPS(i2c_adapter); 1385 1386 const struct device_type i2c_adapter_type = { 1387 .groups = i2c_adapter_groups, 1388 .release = i2c_adapter_dev_release, 1389 }; 1390 EXPORT_SYMBOL_GPL(i2c_adapter_type); 1391 1392 /** 1393 * i2c_verify_adapter - return parameter as i2c_adapter or NULL 1394 * @dev: device, probably from some driver model iterator 1395 * 1396 * When traversing the driver model tree, perhaps using driver model 1397 * iterators like @device_for_each_child(), you can't assume very much 1398 * about the nodes you find. Use this function to avoid oopses caused 1399 * by wrongly treating some non-I2C device as an i2c_adapter. 1400 */ 1401 struct i2c_adapter *i2c_verify_adapter(struct device *dev) 1402 { 1403 return (dev->type == &i2c_adapter_type) 1404 ? to_i2c_adapter(dev) 1405 : NULL; 1406 } 1407 EXPORT_SYMBOL(i2c_verify_adapter); 1408 1409 static void i2c_scan_static_board_info(struct i2c_adapter *adapter) 1410 { 1411 struct i2c_devinfo *devinfo; 1412 1413 down_read(&__i2c_board_lock); 1414 list_for_each_entry(devinfo, &__i2c_board_list, list) { 1415 if (devinfo->busnum == adapter->nr && 1416 IS_ERR(i2c_new_client_device(adapter, &devinfo->board_info))) 1417 dev_err(&adapter->dev, 1418 "Can't create device at 0x%02x\n", 1419 devinfo->board_info.addr); 1420 } 1421 up_read(&__i2c_board_lock); 1422 } 1423 1424 static int i2c_do_add_adapter(struct i2c_driver *driver, 1425 struct i2c_adapter *adap) 1426 { 1427 /* Detect supported devices on that bus, and instantiate them */ 1428 i2c_detect(adap, driver); 1429 1430 return 0; 1431 } 1432 1433 static int __process_new_adapter(struct device_driver *d, void *data) 1434 { 1435 return i2c_do_add_adapter(to_i2c_driver(d), data); 1436 } 1437 1438 static const struct i2c_lock_operations i2c_adapter_lock_ops = { 1439 .lock_bus = i2c_adapter_lock_bus, 1440 .trylock_bus = i2c_adapter_trylock_bus, 1441 .unlock_bus = i2c_adapter_unlock_bus, 1442 }; 1443 1444 static void i2c_host_notify_irq_teardown(struct i2c_adapter *adap) 1445 { 1446 struct irq_domain *domain = adap->host_notify_domain; 1447 irq_hw_number_t hwirq; 1448 1449 if (!domain) 1450 return; 1451 1452 for (hwirq = 0 ; hwirq < I2C_ADDR_7BITS_COUNT ; hwirq++) 1453 irq_dispose_mapping(irq_find_mapping(domain, hwirq)); 1454 1455 irq_domain_remove(domain); 1456 adap->host_notify_domain = NULL; 1457 } 1458 1459 static int i2c_host_notify_irq_map(struct irq_domain *h, 1460 unsigned int virq, 1461 irq_hw_number_t hw_irq_num) 1462 { 1463 irq_set_chip_and_handler(virq, &dummy_irq_chip, handle_simple_irq); 1464 1465 return 0; 1466 } 1467 1468 static const struct irq_domain_ops i2c_host_notify_irq_ops = { 1469 .map = i2c_host_notify_irq_map, 1470 }; 1471 1472 static int i2c_setup_host_notify_irq_domain(struct i2c_adapter *adap) 1473 { 1474 struct irq_domain *domain; 1475 1476 if (!i2c_check_functionality(adap, I2C_FUNC_SMBUS_HOST_NOTIFY)) 1477 return 0; 1478 1479 domain = irq_domain_create_linear(dev_fwnode(adap->dev.parent), 1480 I2C_ADDR_7BITS_COUNT, 1481 &i2c_host_notify_irq_ops, adap); 1482 if (!domain) 1483 return -ENOMEM; 1484 1485 adap->host_notify_domain = domain; 1486 1487 return 0; 1488 } 1489 1490 /** 1491 * i2c_handle_smbus_host_notify - Forward a Host Notify event to the correct 1492 * I2C client. 1493 * @adap: the adapter 1494 * @addr: the I2C address of the notifying device 1495 * Context: can't sleep 1496 * 1497 * Helper function to be called from an I2C bus driver's interrupt 1498 * handler. It will schedule the Host Notify IRQ. 1499 */ 1500 int i2c_handle_smbus_host_notify(struct i2c_adapter *adap, unsigned short addr) 1501 { 1502 int irq; 1503 1504 if (!adap) 1505 return -EINVAL; 1506 1507 dev_dbg(&adap->dev, "Detected HostNotify from address 0x%02x", addr); 1508 1509 irq = irq_find_mapping(adap->host_notify_domain, addr); 1510 if (irq <= 0) 1511 return -ENXIO; 1512 1513 generic_handle_irq_safe(irq); 1514 1515 return 0; 1516 } 1517 EXPORT_SYMBOL_GPL(i2c_handle_smbus_host_notify); 1518 1519 static int i2c_allocate_adapter_id(struct i2c_adapter *adap) 1520 { 1521 int id, start, end; 1522 1523 if (adap->nr == -1) { 1524 start = __i2c_first_dynamic_bus_num; 1525 end = 0; 1526 } else { 1527 start = adap->nr; 1528 end = adap->nr + 1; 1529 } 1530 1531 mutex_lock(&core_lock); 1532 id = idr_alloc(&i2c_adapter_idr, NULL, start, end, GFP_KERNEL); 1533 mutex_unlock(&core_lock); 1534 if (id < 0) { 1535 if (adap->nr != -1 && id == -ENOSPC) 1536 id = -EBUSY; 1537 pr_err("adapter '%s': failed to allocate id: %d\n", adap->name, id); 1538 return id; 1539 } 1540 1541 adap->nr = id; 1542 1543 return 0; 1544 } 1545 1546 static int i2c_register_adapter(struct i2c_adapter *adap) 1547 { 1548 int res; 1549 1550 /* Can't register until after driver model init */ 1551 if (WARN_ON(!is_registered)) 1552 return -EAGAIN; 1553 1554 /* Sanity checks */ 1555 if (WARN(!adap->name[0], "i2c adapter has no name")) 1556 return -EINVAL; 1557 1558 if (!adap->algo) { 1559 pr_err("adapter '%s': no algo supplied!\n", adap->name); 1560 return -EINVAL; 1561 } 1562 1563 if (!adap->lock_ops) 1564 adap->lock_ops = &i2c_adapter_lock_ops; 1565 1566 adap->locked_flags = 0; 1567 rt_mutex_init(&adap->bus_lock); 1568 rt_mutex_init(&adap->mux_lock); 1569 mutex_init(&adap->userspace_clients_lock); 1570 INIT_LIST_HEAD(&adap->userspace_clients); 1571 1572 /* Set default timeout to 1 second if not already set */ 1573 if (adap->timeout == 0) 1574 adap->timeout = HZ; 1575 1576 /* register soft irqs for Host Notify */ 1577 res = i2c_setup_host_notify_irq_domain(adap); 1578 if (res) { 1579 pr_err("adapter '%s': can't create Host Notify IRQs (%d)\n", 1580 adap->name, res); 1581 return res; 1582 } 1583 1584 res = i2c_allocate_adapter_id(adap); 1585 if (res) 1586 goto err_remove_irq_domain; 1587 1588 res = dev_set_name(&adap->dev, "i2c-%d", adap->nr); 1589 if (res) 1590 goto err_free_id; 1591 1592 adap->dev.bus = &i2c_bus_type; 1593 adap->dev.type = &i2c_adapter_type; 1594 device_initialize(&adap->dev); 1595 1596 res = i2c_init_recovery(adap); 1597 if (res == -EPROBE_DEFER) 1598 goto err_put_adap; 1599 1600 /* 1601 * This adapter can be used as a parent immediately after device_add(), 1602 * setup runtime-pm (especially ignore-children) before hand. 1603 */ 1604 device_enable_async_suspend(&adap->dev); 1605 pm_runtime_no_callbacks(&adap->dev); 1606 pm_suspend_ignore_children(&adap->dev, true); 1607 pm_runtime_enable(&adap->dev); 1608 1609 adap->debugfs = debugfs_create_dir(dev_name(&adap->dev), i2c_debugfs_root); 1610 1611 mutex_lock(&core_lock); 1612 idr_replace(&i2c_adapter_idr, adap, adap->nr); 1613 mutex_unlock(&core_lock); 1614 1615 res = device_add(&adap->dev); 1616 if (res) { 1617 pr_err("adapter '%s': can't register device (%d)\n", adap->name, res); 1618 goto err_replace_id; 1619 } 1620 1621 res = i2c_setup_smbus_alert(adap); 1622 if (res) 1623 goto err_deregister_clients; 1624 1625 dev_dbg(&adap->dev, "adapter [%s] registered\n", adap->name); 1626 1627 /* create pre-declared device nodes */ 1628 of_i2c_register_devices(adap); 1629 i2c_acpi_install_space_handler(adap); 1630 i2c_acpi_register_devices(adap); 1631 1632 if (adap->nr < __i2c_first_dynamic_bus_num) 1633 i2c_scan_static_board_info(adap); 1634 1635 /* Notify drivers */ 1636 mutex_lock(&core_lock); 1637 bus_for_each_drv(&i2c_bus_type, NULL, adap, __process_new_adapter); 1638 mutex_unlock(&core_lock); 1639 1640 return 0; 1641 1642 err_deregister_clients: 1643 i2c_deregister_clients(adap); 1644 device_del(&adap->dev); 1645 err_replace_id: 1646 mutex_lock(&core_lock); 1647 idr_replace(&i2c_adapter_idr, NULL, adap->nr); 1648 mutex_unlock(&core_lock); 1649 debugfs_remove_recursive(adap->debugfs); 1650 pm_runtime_disable(&adap->dev); 1651 err_put_adap: 1652 init_completion(&adap->dev_released); 1653 put_device(&adap->dev); 1654 wait_for_completion(&adap->dev_released); 1655 err_free_id: 1656 mutex_lock(&core_lock); 1657 idr_remove(&i2c_adapter_idr, adap->nr); 1658 mutex_unlock(&core_lock); 1659 err_remove_irq_domain: 1660 i2c_host_notify_irq_teardown(adap); 1661 1662 return res; 1663 } 1664 1665 /** 1666 * i2c_add_adapter - declare i2c adapter, use dynamic bus number 1667 * @adapter: the adapter to add 1668 * Context: can sleep 1669 * 1670 * This routine is used to declare an I2C adapter when its bus number 1671 * doesn't matter or when its bus number is specified by an dt alias. 1672 * Examples of bases when the bus number doesn't matter: I2C adapters 1673 * dynamically added by USB links or PCI plugin cards. 1674 * 1675 * When this returns zero, a new bus number was allocated and stored 1676 * in adap->nr, and the specified adapter became available for clients. 1677 * Otherwise, a negative errno value is returned. 1678 */ 1679 int i2c_add_adapter(struct i2c_adapter *adapter) 1680 { 1681 struct device *dev = &adapter->dev; 1682 int id; 1683 1684 id = of_alias_get_id(dev->of_node, "i2c"); 1685 if (id < 0) 1686 id = -1; 1687 1688 adapter->nr = id; 1689 1690 return i2c_register_adapter(adapter); 1691 } 1692 EXPORT_SYMBOL(i2c_add_adapter); 1693 1694 /** 1695 * i2c_add_numbered_adapter - declare i2c adapter, use static bus number 1696 * @adap: the adapter to register (with adap->nr initialized) 1697 * Context: can sleep 1698 * 1699 * This routine is used to declare an I2C adapter when its bus number 1700 * matters. For example, use it for I2C adapters from system-on-chip CPUs, 1701 * or otherwise built in to the system's mainboard, and where i2c_board_info 1702 * is used to properly configure I2C devices. 1703 * 1704 * If the requested bus number is set to -1, then this function will behave 1705 * identically to i2c_add_adapter, and will dynamically assign a bus number. 1706 * 1707 * If no devices have pre-been declared for this bus, then be sure to 1708 * register the adapter before any dynamically allocated ones. Otherwise 1709 * the required bus ID may not be available. 1710 * 1711 * When this returns zero, the specified adapter became available for 1712 * clients using the bus number provided in adap->nr. Also, the table 1713 * of I2C devices pre-declared using i2c_register_board_info() is scanned, 1714 * and the appropriate driver model device nodes are created. Otherwise, a 1715 * negative errno value is returned. 1716 */ 1717 int i2c_add_numbered_adapter(struct i2c_adapter *adap) 1718 { 1719 if (adap->nr == -1) /* -1 means dynamically assign bus id */ 1720 return i2c_add_adapter(adap); 1721 1722 return i2c_register_adapter(adap); 1723 } 1724 EXPORT_SYMBOL_GPL(i2c_add_numbered_adapter); 1725 1726 static void i2c_do_del_adapter(struct i2c_driver *driver, 1727 struct i2c_adapter *adapter) 1728 { 1729 struct i2c_client *client, *_n; 1730 1731 /* Remove the devices we created ourselves as the result of hardware 1732 * probing (using a driver's detect method) */ 1733 list_for_each_entry_safe(client, _n, &driver->clients, detected) { 1734 if (client->adapter == adapter) { 1735 dev_dbg(&adapter->dev, "Removing %s at 0x%x\n", 1736 client->name, client->addr); 1737 list_del(&client->detected); 1738 i2c_unregister_device(client); 1739 } 1740 } 1741 } 1742 1743 static int __unregister_client(struct device *dev, void *dummy) 1744 { 1745 struct i2c_client *client = i2c_verify_client(dev); 1746 if (client && strcmp(client->name, "dummy")) 1747 i2c_unregister_device(client); 1748 return 0; 1749 } 1750 1751 static int __unregister_dummy(struct device *dev, void *dummy) 1752 { 1753 struct i2c_client *client = i2c_verify_client(dev); 1754 i2c_unregister_device(client); 1755 return 0; 1756 } 1757 1758 static int __process_removed_adapter(struct device_driver *d, void *data) 1759 { 1760 i2c_do_del_adapter(to_i2c_driver(d), data); 1761 return 0; 1762 } 1763 1764 static void i2c_deregister_clients(struct i2c_adapter *adap) 1765 { 1766 struct i2c_client *client, *next; 1767 1768 /* Tell drivers about this removal */ 1769 mutex_lock(&core_lock); 1770 bus_for_each_drv(&i2c_bus_type, NULL, adap, 1771 __process_removed_adapter); 1772 mutex_unlock(&core_lock); 1773 1774 /* Remove devices instantiated from sysfs */ 1775 mutex_lock_nested(&adap->userspace_clients_lock, 1776 i2c_adapter_depth(adap)); 1777 list_for_each_entry_safe(client, next, &adap->userspace_clients, 1778 detected) { 1779 dev_dbg(&adap->dev, "Removing %s at 0x%x\n", client->name, 1780 client->addr); 1781 list_del(&client->detected); 1782 i2c_unregister_device(client); 1783 } 1784 mutex_unlock(&adap->userspace_clients_lock); 1785 1786 /* Detach any active clients. This can't fail, thus we do not 1787 * check the returned value. This is a two-pass process, because 1788 * we can't remove the dummy devices during the first pass: they 1789 * could have been instantiated by real devices wishing to clean 1790 * them up properly, so we give them a chance to do that first. */ 1791 device_for_each_child(&adap->dev, NULL, __unregister_client); 1792 device_for_each_child(&adap->dev, NULL, __unregister_dummy); 1793 } 1794 1795 /** 1796 * i2c_del_adapter - unregister I2C adapter 1797 * @adap: the adapter being unregistered 1798 * Context: can sleep 1799 * 1800 * This unregisters an I2C adapter which was previously registered 1801 * by @i2c_add_adapter or @i2c_add_numbered_adapter. 1802 */ 1803 void i2c_del_adapter(struct i2c_adapter *adap) 1804 { 1805 struct i2c_adapter *found; 1806 1807 /* First make sure that this adapter was ever added */ 1808 mutex_lock(&core_lock); 1809 found = idr_find(&i2c_adapter_idr, adap->nr); 1810 if (found == adap) 1811 idr_replace(&i2c_adapter_idr, NULL, adap->nr); 1812 mutex_unlock(&core_lock); 1813 if (found != adap) { 1814 pr_debug("attempting to delete unregistered adapter [%s]\n", adap->name); 1815 return; 1816 } 1817 1818 i2c_acpi_remove_space_handler(adap); 1819 1820 i2c_deregister_clients(adap); 1821 1822 /* device name is gone after device_unregister */ 1823 dev_dbg(&adap->dev, "adapter [%s] unregistered\n", adap->name); 1824 1825 pm_runtime_disable(&adap->dev); 1826 1827 i2c_host_notify_irq_teardown(adap); 1828 1829 debugfs_remove_recursive(adap->debugfs); 1830 1831 /* wait until all references to the device are gone 1832 * 1833 * FIXME: This is old code and should ideally be replaced by an 1834 * alternative which results in decoupling the lifetime of the struct 1835 * device from the i2c_adapter, like spi or netdev do. Any solution 1836 * should be thoroughly tested with DEBUG_KOBJECT_RELEASE enabled! 1837 */ 1838 init_completion(&adap->dev_released); 1839 device_unregister(&adap->dev); 1840 wait_for_completion(&adap->dev_released); 1841 1842 /* free bus id */ 1843 mutex_lock(&core_lock); 1844 idr_remove(&i2c_adapter_idr, adap->nr); 1845 mutex_unlock(&core_lock); 1846 1847 /* Clear the device structure in case this adapter is ever going to be 1848 added again */ 1849 memset(&adap->dev, 0, sizeof(adap->dev)); 1850 } 1851 EXPORT_SYMBOL(i2c_del_adapter); 1852 1853 static void devm_i2c_del_adapter(void *adapter) 1854 { 1855 i2c_del_adapter(adapter); 1856 } 1857 1858 /** 1859 * devm_i2c_add_adapter - device-managed variant of i2c_add_adapter() 1860 * @dev: managing device for adding this I2C adapter 1861 * @adapter: the adapter to add 1862 * Context: can sleep 1863 * 1864 * Add adapter with dynamic bus number, same with i2c_add_adapter() 1865 * but the adapter will be auto deleted on driver detach. 1866 */ 1867 int devm_i2c_add_adapter(struct device *dev, struct i2c_adapter *adapter) 1868 { 1869 int ret; 1870 1871 ret = i2c_add_adapter(adapter); 1872 if (ret) 1873 return ret; 1874 1875 return devm_add_action_or_reset(dev, devm_i2c_del_adapter, adapter); 1876 } 1877 EXPORT_SYMBOL_GPL(devm_i2c_add_adapter); 1878 1879 static int i2c_dev_or_parent_fwnode_match(struct device *dev, const void *data) 1880 { 1881 if (device_match_fwnode(dev, data)) 1882 return 1; 1883 1884 if (dev->parent && device_match_fwnode(dev->parent, data)) 1885 return 1; 1886 1887 return 0; 1888 } 1889 1890 /** 1891 * i2c_find_adapter_by_fwnode() - find an i2c_adapter for the fwnode 1892 * @fwnode: &struct fwnode_handle corresponding to the &struct i2c_adapter 1893 * 1894 * Look up and return the &struct i2c_adapter corresponding to the @fwnode. 1895 * If no adapter can be found, or @fwnode is NULL, this returns NULL. 1896 * 1897 * The user must call put_device(&adapter->dev) once done with the i2c adapter. 1898 */ 1899 struct i2c_adapter *i2c_find_adapter_by_fwnode(struct fwnode_handle *fwnode) 1900 { 1901 struct i2c_adapter *adapter; 1902 struct device *dev; 1903 1904 if (IS_ERR_OR_NULL(fwnode)) 1905 return NULL; 1906 1907 dev = bus_find_device(&i2c_bus_type, NULL, fwnode, 1908 i2c_dev_or_parent_fwnode_match); 1909 if (!dev) 1910 return NULL; 1911 1912 adapter = i2c_verify_adapter(dev); 1913 if (!adapter) 1914 put_device(dev); 1915 1916 return adapter; 1917 } 1918 EXPORT_SYMBOL(i2c_find_adapter_by_fwnode); 1919 1920 /** 1921 * i2c_get_adapter_by_fwnode() - find an i2c_adapter for the fwnode 1922 * @fwnode: &struct fwnode_handle corresponding to the &struct i2c_adapter 1923 * 1924 * Look up and return the &struct i2c_adapter corresponding to the @fwnode, 1925 * and increment the adapter module's use count. If no adapter can be found, 1926 * or @fwnode is NULL, this returns NULL. 1927 * 1928 * The user must call i2c_put_adapter(adapter) once done with the i2c adapter. 1929 * Note that this is different from i2c_find_adapter_by_node(). 1930 */ 1931 struct i2c_adapter *i2c_get_adapter_by_fwnode(struct fwnode_handle *fwnode) 1932 { 1933 struct i2c_adapter *adapter; 1934 1935 adapter = i2c_find_adapter_by_fwnode(fwnode); 1936 if (!adapter) 1937 return NULL; 1938 1939 if (!try_module_get(adapter->owner)) { 1940 put_device(&adapter->dev); 1941 adapter = NULL; 1942 } 1943 1944 return adapter; 1945 } 1946 EXPORT_SYMBOL(i2c_get_adapter_by_fwnode); 1947 1948 static void i2c_parse_timing(struct device *dev, char *prop_name, u32 *cur_val_p, 1949 u32 def_val, bool use_def) 1950 { 1951 int ret; 1952 1953 ret = device_property_read_u32(dev, prop_name, cur_val_p); 1954 if (ret && use_def) 1955 *cur_val_p = def_val; 1956 1957 dev_dbg(dev, "%s: %u\n", prop_name, *cur_val_p); 1958 } 1959 1960 /** 1961 * i2c_parse_fw_timings - get I2C related timing parameters from firmware 1962 * @dev: The device to scan for I2C timing properties 1963 * @t: the i2c_timings struct to be filled with values 1964 * @use_defaults: bool to use sane defaults derived from the I2C specification 1965 * when properties are not found, otherwise don't update 1966 * 1967 * Scan the device for the generic I2C properties describing timing parameters 1968 * for the signal and fill the given struct with the results. If a property was 1969 * not found and use_defaults was true, then maximum timings are assumed which 1970 * are derived from the I2C specification. If use_defaults is not used, the 1971 * results will be as before, so drivers can apply their own defaults before 1972 * calling this helper. The latter is mainly intended for avoiding regressions 1973 * of existing drivers which want to switch to this function. New drivers 1974 * almost always should use the defaults. 1975 */ 1976 void i2c_parse_fw_timings(struct device *dev, struct i2c_timings *t, bool use_defaults) 1977 { 1978 bool u = use_defaults; 1979 u32 d; 1980 1981 i2c_parse_timing(dev, "clock-frequency", &t->bus_freq_hz, 1982 I2C_MAX_STANDARD_MODE_FREQ, u); 1983 1984 d = t->bus_freq_hz <= I2C_MAX_STANDARD_MODE_FREQ ? 1000 : 1985 t->bus_freq_hz <= I2C_MAX_FAST_MODE_FREQ ? 300 : 120; 1986 i2c_parse_timing(dev, "i2c-scl-rising-time-ns", &t->scl_rise_ns, d, u); 1987 1988 d = t->bus_freq_hz <= I2C_MAX_FAST_MODE_FREQ ? 300 : 120; 1989 i2c_parse_timing(dev, "i2c-scl-falling-time-ns", &t->scl_fall_ns, d, u); 1990 1991 i2c_parse_timing(dev, "i2c-scl-internal-delay-ns", 1992 &t->scl_int_delay_ns, 0, u); 1993 i2c_parse_timing(dev, "i2c-sda-falling-time-ns", &t->sda_fall_ns, 1994 t->scl_fall_ns, u); 1995 i2c_parse_timing(dev, "i2c-sda-hold-time-ns", &t->sda_hold_ns, 0, u); 1996 i2c_parse_timing(dev, "i2c-digital-filter-width-ns", 1997 &t->digital_filter_width_ns, 0, u); 1998 i2c_parse_timing(dev, "i2c-analog-filter-cutoff-frequency", 1999 &t->analog_filter_cutoff_freq_hz, 0, u); 2000 } 2001 EXPORT_SYMBOL_GPL(i2c_parse_fw_timings); 2002 2003 /* ------------------------------------------------------------------------- */ 2004 2005 int i2c_for_each_dev(void *data, int (*fn)(struct device *dev, void *data)) 2006 { 2007 int res; 2008 2009 mutex_lock(&core_lock); 2010 res = bus_for_each_dev(&i2c_bus_type, NULL, data, fn); 2011 mutex_unlock(&core_lock); 2012 2013 return res; 2014 } 2015 EXPORT_SYMBOL_GPL(i2c_for_each_dev); 2016 2017 static int __process_new_driver(struct device *dev, void *data) 2018 { 2019 if (dev->type != &i2c_adapter_type) 2020 return 0; 2021 return i2c_do_add_adapter(data, to_i2c_adapter(dev)); 2022 } 2023 2024 /* 2025 * An i2c_driver is used with one or more i2c_client (device) nodes to access 2026 * i2c slave chips, on a bus instance associated with some i2c_adapter. 2027 */ 2028 2029 int i2c_register_driver(struct module *owner, struct i2c_driver *driver) 2030 { 2031 int res; 2032 2033 /* Can't register until after driver model init */ 2034 if (WARN_ON(!is_registered)) 2035 return -EAGAIN; 2036 2037 /* add the driver to the list of i2c drivers in the driver core */ 2038 driver->driver.owner = owner; 2039 driver->driver.bus = &i2c_bus_type; 2040 INIT_LIST_HEAD(&driver->clients); 2041 2042 /* When registration returns, the driver core 2043 * will have called probe() for all matching-but-unbound devices. 2044 */ 2045 res = driver_register(&driver->driver); 2046 if (res) 2047 return res; 2048 2049 pr_debug("driver [%s] registered\n", driver->driver.name); 2050 2051 /* Walk the adapters that are already present */ 2052 i2c_for_each_dev(driver, __process_new_driver); 2053 2054 return 0; 2055 } 2056 EXPORT_SYMBOL(i2c_register_driver); 2057 2058 static int __process_removed_driver(struct device *dev, void *data) 2059 { 2060 if (dev->type == &i2c_adapter_type) 2061 i2c_do_del_adapter(data, to_i2c_adapter(dev)); 2062 return 0; 2063 } 2064 2065 /** 2066 * i2c_del_driver - unregister I2C driver 2067 * @driver: the driver being unregistered 2068 * Context: can sleep 2069 */ 2070 void i2c_del_driver(struct i2c_driver *driver) 2071 { 2072 i2c_for_each_dev(driver, __process_removed_driver); 2073 2074 driver_unregister(&driver->driver); 2075 pr_debug("driver [%s] unregistered\n", driver->driver.name); 2076 } 2077 EXPORT_SYMBOL(i2c_del_driver); 2078 2079 /* ------------------------------------------------------------------------- */ 2080 2081 struct i2c_cmd_arg { 2082 unsigned cmd; 2083 void *arg; 2084 }; 2085 2086 static int i2c_cmd(struct device *dev, void *_arg) 2087 { 2088 struct i2c_client *client = i2c_verify_client(dev); 2089 struct i2c_cmd_arg *arg = _arg; 2090 struct i2c_driver *driver; 2091 2092 if (!client || !client->dev.driver) 2093 return 0; 2094 2095 driver = to_i2c_driver(client->dev.driver); 2096 if (driver->command) 2097 driver->command(client, arg->cmd, arg->arg); 2098 return 0; 2099 } 2100 2101 void i2c_clients_command(struct i2c_adapter *adap, unsigned int cmd, void *arg) 2102 { 2103 struct i2c_cmd_arg cmd_arg; 2104 2105 cmd_arg.cmd = cmd; 2106 cmd_arg.arg = arg; 2107 device_for_each_child(&adap->dev, &cmd_arg, i2c_cmd); 2108 } 2109 EXPORT_SYMBOL(i2c_clients_command); 2110 2111 static int __init i2c_init(void) 2112 { 2113 int retval; 2114 2115 retval = of_alias_get_highest_id("i2c"); 2116 2117 down_write(&__i2c_board_lock); 2118 if (retval >= __i2c_first_dynamic_bus_num) 2119 __i2c_first_dynamic_bus_num = retval + 1; 2120 up_write(&__i2c_board_lock); 2121 2122 retval = bus_register(&i2c_bus_type); 2123 if (retval) 2124 return retval; 2125 2126 is_registered = true; 2127 2128 i2c_debugfs_root = debugfs_create_dir("i2c", NULL); 2129 2130 retval = i2c_add_driver(&dummy_driver); 2131 if (retval) 2132 goto class_err; 2133 2134 if (IS_ENABLED(CONFIG_OF_DYNAMIC)) 2135 WARN_ON(of_reconfig_notifier_register(&i2c_of_notifier)); 2136 if (IS_ENABLED(CONFIG_ACPI)) 2137 WARN_ON(acpi_reconfig_notifier_register(&i2c_acpi_notifier)); 2138 2139 return 0; 2140 2141 class_err: 2142 is_registered = false; 2143 bus_unregister(&i2c_bus_type); 2144 return retval; 2145 } 2146 2147 static void __exit i2c_exit(void) 2148 { 2149 if (IS_ENABLED(CONFIG_ACPI)) 2150 WARN_ON(acpi_reconfig_notifier_unregister(&i2c_acpi_notifier)); 2151 if (IS_ENABLED(CONFIG_OF_DYNAMIC)) 2152 WARN_ON(of_reconfig_notifier_unregister(&i2c_of_notifier)); 2153 i2c_del_driver(&dummy_driver); 2154 debugfs_remove_recursive(i2c_debugfs_root); 2155 bus_unregister(&i2c_bus_type); 2156 tracepoint_synchronize_unregister(); 2157 } 2158 2159 /* We must initialize early, because some subsystems register i2c drivers 2160 * in subsys_initcall() code, but are linked (and initialized) before i2c. 2161 */ 2162 postcore_initcall(i2c_init); 2163 module_exit(i2c_exit); 2164 2165 /* ---------------------------------------------------- 2166 * the functional interface to the i2c busses. 2167 * ---------------------------------------------------- 2168 */ 2169 2170 /* Check if val is exceeding the quirk IFF quirk is non 0 */ 2171 #define i2c_quirk_exceeded(val, quirk) ((quirk) && ((val) > (quirk))) 2172 2173 static int i2c_quirk_error(struct i2c_adapter *adap, struct i2c_msg *msg, char *err_msg) 2174 { 2175 dev_err_ratelimited(&adap->dev, "adapter quirk: %s (addr 0x%04x, size %u, %s)\n", 2176 err_msg, msg->addr, msg->len, 2177 str_read_write(msg->flags & I2C_M_RD)); 2178 return -EOPNOTSUPP; 2179 } 2180 2181 static int i2c_check_for_quirks(struct i2c_adapter *adap, struct i2c_msg *msgs, int num) 2182 { 2183 const struct i2c_adapter_quirks *q = adap->quirks; 2184 int max_num = q->max_num_msgs, i; 2185 bool do_len_check = true; 2186 2187 if (q->flags & I2C_AQ_COMB) { 2188 max_num = 2; 2189 2190 /* special checks for combined messages */ 2191 if (num == 2) { 2192 if (q->flags & I2C_AQ_COMB_WRITE_FIRST && msgs[0].flags & I2C_M_RD) 2193 return i2c_quirk_error(adap, &msgs[0], "1st comb msg must be write"); 2194 2195 if (q->flags & I2C_AQ_COMB_READ_SECOND && !(msgs[1].flags & I2C_M_RD)) 2196 return i2c_quirk_error(adap, &msgs[1], "2nd comb msg must be read"); 2197 2198 if (q->flags & I2C_AQ_COMB_SAME_ADDR && msgs[0].addr != msgs[1].addr) 2199 return i2c_quirk_error(adap, &msgs[0], "comb msg only to same addr"); 2200 2201 if (i2c_quirk_exceeded(msgs[0].len, q->max_comb_1st_msg_len)) 2202 return i2c_quirk_error(adap, &msgs[0], "msg too long"); 2203 2204 if (i2c_quirk_exceeded(msgs[1].len, q->max_comb_2nd_msg_len)) 2205 return i2c_quirk_error(adap, &msgs[1], "msg too long"); 2206 2207 do_len_check = false; 2208 } 2209 } 2210 2211 if (i2c_quirk_exceeded(num, max_num)) 2212 return i2c_quirk_error(adap, &msgs[0], "too many messages"); 2213 2214 for (i = 0; i < num; i++) { 2215 u16 len = msgs[i].len; 2216 2217 if (msgs[i].flags & I2C_M_RD) { 2218 if (do_len_check && i2c_quirk_exceeded(len, q->max_read_len)) 2219 return i2c_quirk_error(adap, &msgs[i], "msg too long"); 2220 2221 if (q->flags & I2C_AQ_NO_ZERO_LEN_READ && len == 0) 2222 return i2c_quirk_error(adap, &msgs[i], "no zero length"); 2223 } else { 2224 if (do_len_check && i2c_quirk_exceeded(len, q->max_write_len)) 2225 return i2c_quirk_error(adap, &msgs[i], "msg too long"); 2226 2227 if (q->flags & I2C_AQ_NO_ZERO_LEN_WRITE && len == 0) 2228 return i2c_quirk_error(adap, &msgs[i], "no zero length"); 2229 } 2230 } 2231 2232 return 0; 2233 } 2234 2235 /** 2236 * __i2c_transfer - unlocked flavor of i2c_transfer 2237 * @adap: Handle to I2C bus 2238 * @msgs: One or more messages to execute before STOP is issued to 2239 * terminate the operation; each message begins with a START. 2240 * @num: Number of messages to be executed. 2241 * 2242 * Returns negative errno, else the number of messages executed. 2243 * 2244 * Adapter lock must be held when calling this function. No debug logging 2245 * takes place. 2246 */ 2247 int __i2c_transfer(struct i2c_adapter *adap, struct i2c_msg *msgs, int num) 2248 { 2249 unsigned long orig_jiffies; 2250 int ret, try; 2251 2252 if (!adap->algo->master_xfer) { 2253 dev_dbg(&adap->dev, "I2C level transfers not supported\n"); 2254 return -EOPNOTSUPP; 2255 } 2256 2257 if (WARN_ON(!msgs || num < 1)) 2258 return -EINVAL; 2259 2260 ret = __i2c_check_suspended(adap); 2261 if (ret) 2262 return ret; 2263 2264 if (adap->quirks && i2c_check_for_quirks(adap, msgs, num)) 2265 return -EOPNOTSUPP; 2266 2267 /* 2268 * i2c_trace_msg_key gets enabled when tracepoint i2c_transfer gets 2269 * enabled. This is an efficient way of keeping the for-loop from 2270 * being executed when not needed. 2271 */ 2272 if (static_branch_unlikely(&i2c_trace_msg_key)) { 2273 int i; 2274 for (i = 0; i < num; i++) 2275 if (msgs[i].flags & I2C_M_RD) 2276 trace_i2c_read(adap, &msgs[i], i); 2277 else 2278 trace_i2c_write(adap, &msgs[i], i); 2279 } 2280 2281 /* Retry automatically on arbitration loss */ 2282 orig_jiffies = jiffies; 2283 for (ret = 0, try = 0; try <= adap->retries; try++) { 2284 if (i2c_in_atomic_xfer_mode() && adap->algo->master_xfer_atomic) 2285 ret = adap->algo->master_xfer_atomic(adap, msgs, num); 2286 else 2287 ret = adap->algo->master_xfer(adap, msgs, num); 2288 2289 if (ret != -EAGAIN) 2290 break; 2291 if (time_after(jiffies, orig_jiffies + adap->timeout)) 2292 break; 2293 } 2294 2295 if (static_branch_unlikely(&i2c_trace_msg_key)) { 2296 int i; 2297 for (i = 0; i < ret; i++) 2298 if (msgs[i].flags & I2C_M_RD) 2299 trace_i2c_reply(adap, &msgs[i], i); 2300 trace_i2c_result(adap, num, ret); 2301 } 2302 2303 return ret; 2304 } 2305 EXPORT_SYMBOL(__i2c_transfer); 2306 2307 /** 2308 * i2c_transfer - execute a single or combined I2C message 2309 * @adap: Handle to I2C bus 2310 * @msgs: One or more messages to execute before STOP is issued to 2311 * terminate the operation; each message begins with a START. 2312 * @num: Number of messages to be executed. 2313 * 2314 * Returns negative errno, else the number of messages executed. 2315 * 2316 * Note that there is no requirement that each message be sent to 2317 * the same slave address, although that is the most common model. 2318 */ 2319 int i2c_transfer(struct i2c_adapter *adap, struct i2c_msg *msgs, int num) 2320 { 2321 int ret; 2322 2323 /* REVISIT the fault reporting model here is weak: 2324 * 2325 * - When we get an error after receiving N bytes from a slave, 2326 * there is no way to report "N". 2327 * 2328 * - When we get a NAK after transmitting N bytes to a slave, 2329 * there is no way to report "N" ... or to let the master 2330 * continue executing the rest of this combined message, if 2331 * that's the appropriate response. 2332 * 2333 * - When for example "num" is two and we successfully complete 2334 * the first message but get an error part way through the 2335 * second, it's unclear whether that should be reported as 2336 * one (discarding status on the second message) or errno 2337 * (discarding status on the first one). 2338 */ 2339 ret = __i2c_lock_bus_helper(adap); 2340 if (ret) 2341 return ret; 2342 2343 ret = __i2c_transfer(adap, msgs, num); 2344 i2c_unlock_bus(adap, I2C_LOCK_SEGMENT); 2345 2346 return ret; 2347 } 2348 EXPORT_SYMBOL(i2c_transfer); 2349 2350 /** 2351 * i2c_transfer_buffer_flags - issue a single I2C message transferring data 2352 * to/from a buffer 2353 * @client: Handle to slave device 2354 * @buf: Where the data is stored 2355 * @count: How many bytes to transfer, must be less than 64k since msg.len is u16 2356 * @flags: The flags to be used for the message, e.g. I2C_M_RD for reads 2357 * 2358 * Returns negative errno, or else the number of bytes transferred. 2359 */ 2360 int i2c_transfer_buffer_flags(const struct i2c_client *client, char *buf, 2361 int count, u16 flags) 2362 { 2363 int ret; 2364 struct i2c_msg msg = { 2365 .addr = client->addr, 2366 .flags = flags | (client->flags & I2C_M_TEN), 2367 .len = count, 2368 .buf = buf, 2369 }; 2370 2371 ret = i2c_transfer(client->adapter, &msg, 1); 2372 2373 /* 2374 * If everything went ok (i.e. 1 msg transferred), return #bytes 2375 * transferred, else error code. 2376 */ 2377 return (ret == 1) ? count : ret; 2378 } 2379 EXPORT_SYMBOL(i2c_transfer_buffer_flags); 2380 2381 /** 2382 * i2c_get_device_id - get manufacturer, part id and die revision of a device 2383 * @client: The device to query 2384 * @id: The queried information 2385 * 2386 * Returns negative errno on error, zero on success. 2387 */ 2388 int i2c_get_device_id(const struct i2c_client *client, 2389 struct i2c_device_identity *id) 2390 { 2391 struct i2c_adapter *adap = client->adapter; 2392 union i2c_smbus_data raw_id; 2393 int ret; 2394 2395 if (!i2c_check_functionality(adap, I2C_FUNC_SMBUS_READ_I2C_BLOCK)) 2396 return -EOPNOTSUPP; 2397 2398 raw_id.block[0] = 3; 2399 ret = i2c_smbus_xfer(adap, I2C_ADDR_DEVICE_ID, 0, 2400 I2C_SMBUS_READ, client->addr << 1, 2401 I2C_SMBUS_I2C_BLOCK_DATA, &raw_id); 2402 if (ret) 2403 return ret; 2404 2405 id->manufacturer_id = (raw_id.block[1] << 4) | (raw_id.block[2] >> 4); 2406 id->part_id = ((raw_id.block[2] & 0xf) << 5) | (raw_id.block[3] >> 3); 2407 id->die_revision = raw_id.block[3] & 0x7; 2408 return 0; 2409 } 2410 EXPORT_SYMBOL_GPL(i2c_get_device_id); 2411 2412 /** 2413 * i2c_client_get_device_id - get the driver match table entry of a device 2414 * @client: the device to query. The device must be bound to a driver 2415 * 2416 * Returns a pointer to the matching entry if found, NULL otherwise. 2417 */ 2418 const struct i2c_device_id *i2c_client_get_device_id(const struct i2c_client *client) 2419 { 2420 const struct i2c_driver *drv = to_i2c_driver(client->dev.driver); 2421 2422 return i2c_match_id(drv->id_table, client); 2423 } 2424 EXPORT_SYMBOL_GPL(i2c_client_get_device_id); 2425 2426 /* ---------------------------------------------------- 2427 * the i2c address scanning function 2428 * Will not work for 10-bit addresses! 2429 * ---------------------------------------------------- 2430 */ 2431 2432 /* 2433 * Legacy default probe function, mostly relevant for SMBus. The default 2434 * probe method is a quick write, but it is known to corrupt the 24RF08 2435 * EEPROMs due to a state machine bug, and could also irreversibly 2436 * write-protect some EEPROMs, so for address ranges 0x30-0x37 and 0x50-0x5f, 2437 * we use a short byte read instead. Also, some bus drivers don't implement 2438 * quick write, so we fallback to a byte read in that case too. 2439 * On x86, there is another special case for FSC hardware monitoring chips, 2440 * which want regular byte reads (address 0x73.) Fortunately, these are the 2441 * only known chips using this I2C address on PC hardware. 2442 * Returns 1 if probe succeeded, 0 if not. 2443 */ 2444 static int i2c_default_probe(struct i2c_adapter *adap, unsigned short addr) 2445 { 2446 int err; 2447 union i2c_smbus_data dummy; 2448 2449 #ifdef CONFIG_X86 2450 if (addr == 0x73 && (adap->class & I2C_CLASS_HWMON) 2451 && i2c_check_functionality(adap, I2C_FUNC_SMBUS_READ_BYTE_DATA)) 2452 err = i2c_smbus_xfer(adap, addr, 0, I2C_SMBUS_READ, 0, 2453 I2C_SMBUS_BYTE_DATA, &dummy); 2454 else 2455 #endif 2456 if (!((addr & ~0x07) == 0x30 || (addr & ~0x0f) == 0x50) 2457 && i2c_check_functionality(adap, I2C_FUNC_SMBUS_QUICK)) 2458 err = i2c_smbus_xfer(adap, addr, 0, I2C_SMBUS_WRITE, 0, 2459 I2C_SMBUS_QUICK, NULL); 2460 else if (i2c_check_functionality(adap, I2C_FUNC_SMBUS_READ_BYTE)) 2461 err = i2c_smbus_xfer(adap, addr, 0, I2C_SMBUS_READ, 0, 2462 I2C_SMBUS_BYTE, &dummy); 2463 else { 2464 dev_warn(&adap->dev, "No suitable probing method supported for address 0x%02X\n", 2465 addr); 2466 err = -EOPNOTSUPP; 2467 } 2468 2469 return err >= 0; 2470 } 2471 2472 static int i2c_detect_address(struct i2c_client *temp_client, 2473 struct i2c_driver *driver) 2474 { 2475 struct i2c_board_info info; 2476 struct i2c_adapter *adapter = temp_client->adapter; 2477 int addr = temp_client->addr; 2478 int err; 2479 2480 /* Make sure the address is valid */ 2481 err = i2c_check_7bit_addr_validity_strict(addr); 2482 if (err) { 2483 dev_warn(&adapter->dev, "Invalid probe address 0x%02x\n", 2484 addr); 2485 return err; 2486 } 2487 2488 /* Skip if already in use (7 bit, no need to encode flags) */ 2489 if (i2c_check_addr_busy(adapter, addr)) 2490 return 0; 2491 2492 /* Make sure there is something at this address */ 2493 if (!i2c_default_probe(adapter, addr)) 2494 return 0; 2495 2496 /* Finally call the custom detection function */ 2497 memset(&info, 0, sizeof(struct i2c_board_info)); 2498 info.addr = addr; 2499 err = driver->detect(temp_client, &info); 2500 if (err) { 2501 /* -ENODEV is returned if the detection fails. We catch it 2502 here as this isn't an error. */ 2503 return err == -ENODEV ? 0 : err; 2504 } 2505 2506 /* Consistency check */ 2507 if (info.type[0] == '\0') { 2508 dev_err(&adapter->dev, 2509 "%s detection function provided no name for 0x%x\n", 2510 driver->driver.name, addr); 2511 } else { 2512 struct i2c_client *client; 2513 2514 /* Detection succeeded, instantiate the device */ 2515 if (adapter->class & I2C_CLASS_DEPRECATED) 2516 dev_warn(&adapter->dev, 2517 "This adapter will soon drop class based instantiation of devices. " 2518 "Please make sure client 0x%02x gets instantiated by other means. " 2519 "Check 'Documentation/i2c/instantiating-devices.rst' for details.\n", 2520 info.addr); 2521 2522 dev_dbg(&adapter->dev, "Creating %s at 0x%02x\n", 2523 info.type, info.addr); 2524 client = i2c_new_client_device(adapter, &info); 2525 if (!IS_ERR(client)) 2526 list_add_tail(&client->detected, &driver->clients); 2527 else 2528 dev_err(&adapter->dev, "Failed creating %s at 0x%02x\n", 2529 info.type, info.addr); 2530 } 2531 return 0; 2532 } 2533 2534 static int i2c_detect(struct i2c_adapter *adapter, struct i2c_driver *driver) 2535 { 2536 const unsigned short *address_list; 2537 struct i2c_client *temp_client; 2538 int i, err = 0; 2539 2540 address_list = driver->address_list; 2541 if (!driver->detect || !address_list) 2542 return 0; 2543 2544 /* Warn that the adapter lost class based instantiation */ 2545 if (adapter->class == I2C_CLASS_DEPRECATED) { 2546 dev_dbg(&adapter->dev, 2547 "This adapter dropped support for I2C classes and won't auto-detect %s devices anymore. " 2548 "If you need it, check 'Documentation/i2c/instantiating-devices.rst' for alternatives.\n", 2549 driver->driver.name); 2550 return 0; 2551 } 2552 2553 /* Stop here if the classes do not match */ 2554 if (!(adapter->class & driver->class)) 2555 return 0; 2556 2557 /* Set up a temporary client to help detect callback */ 2558 temp_client = kzalloc_obj(*temp_client); 2559 if (!temp_client) 2560 return -ENOMEM; 2561 2562 temp_client->adapter = adapter; 2563 2564 for (i = 0; address_list[i] != I2C_CLIENT_END; i += 1) { 2565 dev_dbg(&adapter->dev, 2566 "found normal entry for adapter %d, addr 0x%02x\n", 2567 i2c_adapter_id(adapter), address_list[i]); 2568 temp_client->addr = address_list[i]; 2569 err = i2c_detect_address(temp_client, driver); 2570 if (unlikely(err)) 2571 break; 2572 } 2573 2574 kfree(temp_client); 2575 2576 return err; 2577 } 2578 2579 int i2c_probe_func_quick_read(struct i2c_adapter *adap, unsigned short addr) 2580 { 2581 return i2c_smbus_xfer(adap, addr, 0, I2C_SMBUS_READ, 0, 2582 I2C_SMBUS_QUICK, NULL) >= 0; 2583 } 2584 EXPORT_SYMBOL_GPL(i2c_probe_func_quick_read); 2585 2586 struct i2c_client * 2587 i2c_new_scanned_device(struct i2c_adapter *adap, 2588 struct i2c_board_info *info, 2589 unsigned short const *addr_list, 2590 int (*probe)(struct i2c_adapter *adap, unsigned short addr)) 2591 { 2592 int i; 2593 2594 if (!probe) 2595 probe = i2c_default_probe; 2596 2597 for (i = 0; addr_list[i] != I2C_CLIENT_END; i++) { 2598 /* Check address validity */ 2599 if (i2c_check_7bit_addr_validity_strict(addr_list[i]) < 0) { 2600 dev_warn(&adap->dev, "Invalid 7-bit address 0x%02x\n", 2601 addr_list[i]); 2602 continue; 2603 } 2604 2605 /* Check address availability (7 bit, no need to encode flags) */ 2606 if (i2c_check_addr_busy(adap, addr_list[i])) { 2607 dev_dbg(&adap->dev, 2608 "Address 0x%02x already in use, not probing\n", 2609 addr_list[i]); 2610 continue; 2611 } 2612 2613 /* Test address responsiveness */ 2614 if (probe(adap, addr_list[i])) 2615 break; 2616 } 2617 2618 if (addr_list[i] == I2C_CLIENT_END) { 2619 dev_dbg(&adap->dev, "Probing failed, no device found\n"); 2620 return ERR_PTR(-ENODEV); 2621 } 2622 2623 info->addr = addr_list[i]; 2624 return i2c_new_client_device(adap, info); 2625 } 2626 EXPORT_SYMBOL_GPL(i2c_new_scanned_device); 2627 2628 struct i2c_adapter *i2c_get_adapter(int nr) 2629 { 2630 struct i2c_adapter *adapter; 2631 2632 mutex_lock(&core_lock); 2633 adapter = idr_find(&i2c_adapter_idr, nr); 2634 if (!adapter) 2635 goto exit; 2636 2637 if (try_module_get(adapter->owner)) 2638 get_device(&adapter->dev); 2639 else 2640 adapter = NULL; 2641 2642 exit: 2643 mutex_unlock(&core_lock); 2644 return adapter; 2645 } 2646 EXPORT_SYMBOL(i2c_get_adapter); 2647 2648 void i2c_put_adapter(struct i2c_adapter *adap) 2649 { 2650 if (!adap) 2651 return; 2652 2653 module_put(adap->owner); 2654 /* Should be last, otherwise we risk use-after-free with 'adap' */ 2655 put_device(&adap->dev); 2656 } 2657 EXPORT_SYMBOL(i2c_put_adapter); 2658 2659 /** 2660 * i2c_get_dma_safe_msg_buf() - get a DMA safe buffer for the given i2c_msg 2661 * @msg: the message to be checked 2662 * @threshold: the minimum number of bytes for which using DMA makes sense. 2663 * Should at least be 1. 2664 * 2665 * Return: NULL if a DMA safe buffer was not obtained. Use msg->buf with PIO. 2666 * Or a valid pointer to be used with DMA. After use, release it by 2667 * calling i2c_put_dma_safe_msg_buf(). 2668 * 2669 * This function must only be called from process context! 2670 */ 2671 u8 *i2c_get_dma_safe_msg_buf(struct i2c_msg *msg, unsigned int threshold) 2672 { 2673 /* also skip 0-length msgs for bogus thresholds of 0 */ 2674 if (!threshold) 2675 pr_debug("DMA buffer for addr=0x%02x with length 0 is bogus\n", 2676 msg->addr); 2677 if (msg->len < threshold || msg->len == 0) 2678 return NULL; 2679 2680 if (msg->flags & I2C_M_DMA_SAFE) 2681 return msg->buf; 2682 2683 pr_debug("using bounce buffer for addr=0x%02x, len=%d\n", 2684 msg->addr, msg->len); 2685 2686 if (msg->flags & I2C_M_RD) 2687 return kzalloc(msg->len, GFP_KERNEL); 2688 else 2689 return kmemdup(msg->buf, msg->len, GFP_KERNEL); 2690 } 2691 EXPORT_SYMBOL_GPL(i2c_get_dma_safe_msg_buf); 2692 2693 /** 2694 * i2c_put_dma_safe_msg_buf - release DMA safe buffer and sync with i2c_msg 2695 * @buf: the buffer obtained from i2c_get_dma_safe_msg_buf(). May be NULL. 2696 * @msg: the message which the buffer corresponds to 2697 * @xferred: bool saying if the message was transferred 2698 */ 2699 void i2c_put_dma_safe_msg_buf(u8 *buf, struct i2c_msg *msg, bool xferred) 2700 { 2701 if (!buf || buf == msg->buf) 2702 return; 2703 2704 if (xferred && msg->flags & I2C_M_RD) 2705 memcpy(msg->buf, buf, msg->len); 2706 2707 kfree(buf); 2708 } 2709 EXPORT_SYMBOL_GPL(i2c_put_dma_safe_msg_buf); 2710 2711 MODULE_AUTHOR("Simon G. Vogl <simon@tk.uni-linz.ac.at>"); 2712 MODULE_DESCRIPTION("I2C-Bus main module"); 2713 MODULE_LICENSE("GPL"); 2714