1 // SPDX-License-Identifier: GPL-2.0 2 3 #include <linux/acpi.h> 4 #include <linux/array_size.h> 5 #include <linux/bitmap.h> 6 #include <linux/cleanup.h> 7 #include <linux/compat.h> 8 #include <linux/debugfs.h> 9 #include <linux/device.h> 10 #include <linux/err.h> 11 #include <linux/errno.h> 12 #include <linux/file.h> 13 #include <linux/fs.h> 14 #include <linux/idr.h> 15 #include <linux/interrupt.h> 16 #include <linux/irq.h> 17 #include <linux/irqdesc.h> 18 #include <linux/kernel.h> 19 #include <linux/list.h> 20 #include <linux/lockdep.h> 21 #include <linux/module.h> 22 #include <linux/nospec.h> 23 #include <linux/of.h> 24 #include <linux/pinctrl/consumer.h> 25 #include <linux/seq_file.h> 26 #include <linux/slab.h> 27 #include <linux/srcu.h> 28 #include <linux/string.h> 29 #include <linux/string_choices.h> 30 31 #include <linux/gpio.h> 32 #include <linux/gpio/driver.h> 33 #include <linux/gpio/machine.h> 34 35 #include <uapi/linux/gpio.h> 36 37 #include "gpiolib-acpi.h" 38 #include "gpiolib-cdev.h" 39 #include "gpiolib-of.h" 40 #include "gpiolib-swnode.h" 41 #include "gpiolib-sysfs.h" 42 #include "gpiolib.h" 43 44 #define CREATE_TRACE_POINTS 45 #include <trace/events/gpio.h> 46 47 /* Implementation infrastructure for GPIO interfaces. 48 * 49 * The GPIO programming interface allows for inlining speed-critical 50 * get/set operations for common cases, so that access to SOC-integrated 51 * GPIOs can sometimes cost only an instruction or two per bit. 52 */ 53 54 /* Device and char device-related information */ 55 static DEFINE_IDA(gpio_ida); 56 static dev_t gpio_devt; 57 #define GPIO_DEV_MAX 256 /* 256 GPIO chip devices supported */ 58 59 static int gpio_bus_match(struct device *dev, const struct device_driver *drv) 60 { 61 struct fwnode_handle *fwnode = dev_fwnode(dev); 62 63 /* 64 * Only match if the fwnode doesn't already have a proper struct device 65 * created for it. 66 */ 67 if (fwnode && fwnode->dev != dev) 68 return 0; 69 return 1; 70 } 71 72 static const struct bus_type gpio_bus_type = { 73 .name = "gpio", 74 .match = gpio_bus_match, 75 }; 76 77 /* 78 * Number of GPIOs to use for the fast path in set array 79 */ 80 #define FASTPATH_NGPIO CONFIG_GPIOLIB_FASTPATH_LIMIT 81 82 static DEFINE_MUTEX(gpio_lookup_lock); 83 static LIST_HEAD(gpio_lookup_list); 84 85 static LIST_HEAD(gpio_devices); 86 /* Protects the GPIO device list against concurrent modifications. */ 87 static DEFINE_MUTEX(gpio_devices_lock); 88 /* Ensures coherence during read-only accesses to the list of GPIO devices. */ 89 DEFINE_STATIC_SRCU(gpio_devices_srcu); 90 91 static DEFINE_MUTEX(gpio_machine_hogs_mutex); 92 static LIST_HEAD(gpio_machine_hogs); 93 94 const char *const gpio_suffixes[] = { "gpios", "gpio", NULL }; 95 96 static void gpiochip_free_hogs(struct gpio_chip *gc); 97 static int gpiochip_add_irqchip(struct gpio_chip *gc, 98 struct lock_class_key *lock_key, 99 struct lock_class_key *request_key); 100 static void gpiochip_irqchip_remove(struct gpio_chip *gc); 101 static int gpiochip_irqchip_init_hw(struct gpio_chip *gc); 102 static int gpiochip_irqchip_init_valid_mask(struct gpio_chip *gc); 103 static void gpiochip_irqchip_free_valid_mask(struct gpio_chip *gc); 104 105 static bool gpiolib_initialized; 106 107 const char *gpiod_get_label(struct gpio_desc *desc) 108 { 109 struct gpio_desc_label *label; 110 unsigned long flags; 111 112 flags = READ_ONCE(desc->flags); 113 114 label = srcu_dereference_check(desc->label, &desc->gdev->desc_srcu, 115 srcu_read_lock_held(&desc->gdev->desc_srcu)); 116 117 if (test_bit(FLAG_USED_AS_IRQ, &flags)) 118 return label ? label->str : "interrupt"; 119 120 if (!test_bit(FLAG_REQUESTED, &flags)) 121 return NULL; 122 123 return label ? label->str : NULL; 124 } 125 126 static void desc_free_label(struct rcu_head *rh) 127 { 128 kfree(container_of(rh, struct gpio_desc_label, rh)); 129 } 130 131 static int desc_set_label(struct gpio_desc *desc, const char *label) 132 { 133 struct gpio_desc_label *new = NULL, *old; 134 135 if (label) { 136 new = kzalloc(struct_size(new, str, strlen(label) + 1), 137 GFP_KERNEL); 138 if (!new) 139 return -ENOMEM; 140 141 strcpy(new->str, label); 142 } 143 144 old = rcu_replace_pointer(desc->label, new, 1); 145 if (old) 146 call_srcu(&desc->gdev->desc_srcu, &old->rh, desc_free_label); 147 148 return 0; 149 } 150 151 /** 152 * gpio_to_desc - Convert a GPIO number to its descriptor 153 * @gpio: global GPIO number 154 * 155 * Returns: 156 * The GPIO descriptor associated with the given GPIO, or %NULL if no GPIO 157 * with the given number exists in the system. 158 */ 159 struct gpio_desc *gpio_to_desc(unsigned gpio) 160 { 161 struct gpio_device *gdev; 162 163 scoped_guard(srcu, &gpio_devices_srcu) { 164 list_for_each_entry_srcu(gdev, &gpio_devices, list, 165 srcu_read_lock_held(&gpio_devices_srcu)) { 166 if (gdev->base <= gpio && 167 gdev->base + gdev->ngpio > gpio) 168 return &gdev->descs[gpio - gdev->base]; 169 } 170 } 171 172 return NULL; 173 } 174 EXPORT_SYMBOL_GPL(gpio_to_desc); 175 176 /* This function is deprecated and will be removed soon, don't use. */ 177 struct gpio_desc *gpiochip_get_desc(struct gpio_chip *gc, 178 unsigned int hwnum) 179 { 180 return gpio_device_get_desc(gc->gpiodev, hwnum); 181 } 182 183 /** 184 * gpio_device_get_desc() - get the GPIO descriptor corresponding to the given 185 * hardware number for this GPIO device 186 * @gdev: GPIO device to get the descriptor from 187 * @hwnum: hardware number of the GPIO for this chip 188 * 189 * Returns: 190 * A pointer to the GPIO descriptor or %EINVAL if no GPIO exists in the given 191 * chip for the specified hardware number or %ENODEV if the underlying chip 192 * already vanished. 193 * 194 * The reference count of struct gpio_device is *NOT* increased like when the 195 * GPIO is being requested for exclusive usage. It's up to the caller to make 196 * sure the GPIO device will stay alive together with the descriptor returned 197 * by this function. 198 */ 199 struct gpio_desc * 200 gpio_device_get_desc(struct gpio_device *gdev, unsigned int hwnum) 201 { 202 if (hwnum >= gdev->ngpio) 203 return ERR_PTR(-EINVAL); 204 205 return &gdev->descs[array_index_nospec(hwnum, gdev->ngpio)]; 206 } 207 EXPORT_SYMBOL_GPL(gpio_device_get_desc); 208 209 /** 210 * desc_to_gpio - convert a GPIO descriptor to the integer namespace 211 * @desc: GPIO descriptor 212 * 213 * This should disappear in the future but is needed since we still 214 * use GPIO numbers for error messages and sysfs nodes. 215 * 216 * Returns: 217 * The global GPIO number for the GPIO specified by its descriptor. 218 */ 219 int desc_to_gpio(const struct gpio_desc *desc) 220 { 221 return desc->gdev->base + (desc - &desc->gdev->descs[0]); 222 } 223 EXPORT_SYMBOL_GPL(desc_to_gpio); 224 225 226 /** 227 * gpiod_to_chip - Return the GPIO chip to which a GPIO descriptor belongs 228 * @desc: descriptor to return the chip of 229 * 230 * *DEPRECATED* 231 * This function is unsafe and should not be used. Using the chip address 232 * without taking the SRCU read lock may result in dereferencing a dangling 233 * pointer. 234 * 235 * Returns: 236 * Address of the GPIO chip backing this device. 237 */ 238 struct gpio_chip *gpiod_to_chip(const struct gpio_desc *desc) 239 { 240 if (!desc) 241 return NULL; 242 243 return gpio_device_get_chip(desc->gdev); 244 } 245 EXPORT_SYMBOL_GPL(gpiod_to_chip); 246 247 /** 248 * gpiod_to_gpio_device() - Return the GPIO device to which this descriptor 249 * belongs. 250 * @desc: Descriptor for which to return the GPIO device. 251 * 252 * This *DOES NOT* increase the reference count of the GPIO device as it's 253 * expected that the descriptor is requested and the users already holds a 254 * reference to the device. 255 * 256 * Returns: 257 * Address of the GPIO device owning this descriptor. 258 */ 259 struct gpio_device *gpiod_to_gpio_device(struct gpio_desc *desc) 260 { 261 if (!desc) 262 return NULL; 263 264 return desc->gdev; 265 } 266 EXPORT_SYMBOL_GPL(gpiod_to_gpio_device); 267 268 /** 269 * gpiod_is_equal() - Check if two GPIO descriptors refer to the same pin. 270 * @desc: Descriptor to compare. 271 * @other: The second descriptor to compare against. 272 * 273 * Returns: 274 * True if the descriptors refer to the same physical pin. False otherwise. 275 */ 276 bool gpiod_is_equal(struct gpio_desc *desc, struct gpio_desc *other) 277 { 278 return desc == other; 279 } 280 EXPORT_SYMBOL_GPL(gpiod_is_equal); 281 282 /** 283 * gpio_device_get_base() - Get the base GPIO number allocated by this device 284 * @gdev: GPIO device 285 * 286 * Returns: 287 * First GPIO number in the global GPIO numberspace for this device. 288 */ 289 int gpio_device_get_base(struct gpio_device *gdev) 290 { 291 return gdev->base; 292 } 293 EXPORT_SYMBOL_GPL(gpio_device_get_base); 294 295 /** 296 * gpio_device_get_label() - Get the label of this GPIO device 297 * @gdev: GPIO device 298 * 299 * Returns: 300 * Pointer to the string containing the GPIO device label. The string's 301 * lifetime is tied to that of the underlying GPIO device. 302 */ 303 const char *gpio_device_get_label(struct gpio_device *gdev) 304 { 305 return gdev->label; 306 } 307 EXPORT_SYMBOL(gpio_device_get_label); 308 309 /** 310 * gpio_device_get_chip() - Get the gpio_chip implementation of this GPIO device 311 * @gdev: GPIO device 312 * 313 * Returns: 314 * Address of the GPIO chip backing this device. 315 * 316 * *DEPRECATED* 317 * Until we can get rid of all non-driver users of struct gpio_chip, we must 318 * provide a way of retrieving the pointer to it from struct gpio_device. This 319 * is *NOT* safe as the GPIO API is considered to be hot-unpluggable and the 320 * chip can dissapear at any moment (unlike reference-counted struct 321 * gpio_device). 322 * 323 * Use at your own risk. 324 */ 325 struct gpio_chip *gpio_device_get_chip(struct gpio_device *gdev) 326 { 327 return rcu_dereference_check(gdev->chip, 1); 328 } 329 EXPORT_SYMBOL_GPL(gpio_device_get_chip); 330 331 /* dynamic allocation of GPIOs, e.g. on a hotplugged device */ 332 static int gpiochip_find_base_unlocked(u16 ngpio) 333 { 334 unsigned int base = GPIO_DYNAMIC_BASE; 335 struct gpio_device *gdev; 336 337 list_for_each_entry_srcu(gdev, &gpio_devices, list, 338 lockdep_is_held(&gpio_devices_lock)) { 339 /* found a free space? */ 340 if (gdev->base >= base + ngpio) 341 break; 342 /* nope, check the space right after the chip */ 343 base = gdev->base + gdev->ngpio; 344 if (base < GPIO_DYNAMIC_BASE) 345 base = GPIO_DYNAMIC_BASE; 346 if (base > GPIO_DYNAMIC_MAX - ngpio) 347 break; 348 } 349 350 if (base <= GPIO_DYNAMIC_MAX - ngpio) { 351 pr_debug("%s: found new base at %d\n", __func__, base); 352 return base; 353 } else { 354 pr_err("%s: cannot find free range\n", __func__); 355 return -ENOSPC; 356 } 357 } 358 359 /* 360 * This descriptor validation needs to be inserted verbatim into each 361 * function taking a descriptor, so we need to use a preprocessor 362 * macro to avoid endless duplication. If the desc is NULL it is an 363 * optional GPIO and calls should just bail out. 364 */ 365 static int validate_desc(const struct gpio_desc *desc, const char *func) 366 { 367 if (!desc) 368 return 0; 369 370 if (IS_ERR(desc)) { 371 pr_warn("%s: invalid GPIO (errorpointer: %pe)\n", func, desc); 372 return PTR_ERR(desc); 373 } 374 375 return 1; 376 } 377 378 #define VALIDATE_DESC(desc) do { \ 379 int __valid = validate_desc(desc, __func__); \ 380 if (__valid <= 0) \ 381 return __valid; \ 382 } while (0) 383 384 #define VALIDATE_DESC_VOID(desc) do { \ 385 int __valid = validate_desc(desc, __func__); \ 386 if (__valid <= 0) \ 387 return; \ 388 } while (0) 389 390 static int gpiochip_get_direction(struct gpio_chip *gc, unsigned int offset) 391 { 392 int ret; 393 394 lockdep_assert_held(&gc->gpiodev->srcu); 395 396 if (WARN_ON(!gc->get_direction)) 397 return -EOPNOTSUPP; 398 399 ret = gc->get_direction(gc, offset); 400 if (ret < 0) 401 return ret; 402 403 if (ret != GPIO_LINE_DIRECTION_OUT && ret != GPIO_LINE_DIRECTION_IN) 404 ret = -EBADE; 405 406 return ret; 407 } 408 409 /** 410 * gpiod_get_direction - return the current direction of a GPIO 411 * @desc: GPIO to get the direction of 412 * 413 * Returns: 414 * 0 for output, 1 for input, or an error code in case of error. 415 * 416 * This function may sleep if gpiod_cansleep() is true. 417 */ 418 int gpiod_get_direction(struct gpio_desc *desc) 419 { 420 unsigned long flags; 421 unsigned int offset; 422 int ret; 423 424 ret = validate_desc(desc, __func__); 425 if (ret <= 0) 426 return -EINVAL; 427 428 CLASS(gpio_chip_guard, guard)(desc); 429 if (!guard.gc) 430 return -ENODEV; 431 432 offset = gpio_chip_hwgpio(desc); 433 flags = READ_ONCE(desc->flags); 434 435 /* 436 * Open drain emulation using input mode may incorrectly report 437 * input here, fix that up. 438 */ 439 if (test_bit(FLAG_OPEN_DRAIN, &flags) && 440 test_bit(FLAG_IS_OUT, &flags)) 441 return 0; 442 443 if (!guard.gc->get_direction) 444 return -ENOTSUPP; 445 446 ret = gpiochip_get_direction(guard.gc, offset); 447 if (ret < 0) 448 return ret; 449 450 /* 451 * GPIO_LINE_DIRECTION_IN or other positive, 452 * otherwise GPIO_LINE_DIRECTION_OUT. 453 */ 454 if (ret > 0) 455 ret = 1; 456 457 assign_bit(FLAG_IS_OUT, &flags, !ret); 458 WRITE_ONCE(desc->flags, flags); 459 460 return ret; 461 } 462 EXPORT_SYMBOL_GPL(gpiod_get_direction); 463 464 /* 465 * Add a new chip to the global chips list, keeping the list of chips sorted 466 * by range(means [base, base + ngpio - 1]) order. 467 * 468 * Returns: 469 * -EBUSY if the new chip overlaps with some other chip's integer space. 470 */ 471 static int gpiodev_add_to_list_unlocked(struct gpio_device *gdev) 472 { 473 struct gpio_device *prev, *next; 474 475 lockdep_assert_held(&gpio_devices_lock); 476 477 if (list_empty(&gpio_devices)) { 478 /* initial entry in list */ 479 list_add_tail_rcu(&gdev->list, &gpio_devices); 480 return 0; 481 } 482 483 next = list_first_entry(&gpio_devices, struct gpio_device, list); 484 if (gdev->base + gdev->ngpio <= next->base) { 485 /* add before first entry */ 486 list_add_rcu(&gdev->list, &gpio_devices); 487 return 0; 488 } 489 490 prev = list_last_entry(&gpio_devices, struct gpio_device, list); 491 if (prev->base + prev->ngpio <= gdev->base) { 492 /* add behind last entry */ 493 list_add_tail_rcu(&gdev->list, &gpio_devices); 494 return 0; 495 } 496 497 list_for_each_entry_safe(prev, next, &gpio_devices, list) { 498 /* at the end of the list */ 499 if (&next->list == &gpio_devices) 500 break; 501 502 /* add between prev and next */ 503 if (prev->base + prev->ngpio <= gdev->base 504 && gdev->base + gdev->ngpio <= next->base) { 505 list_add_rcu(&gdev->list, &prev->list); 506 return 0; 507 } 508 } 509 510 synchronize_srcu(&gpio_devices_srcu); 511 512 return -EBUSY; 513 } 514 515 /* 516 * Convert a GPIO name to its descriptor 517 * Note that there is no guarantee that GPIO names are globally unique! 518 * Hence this function will return, if it exists, a reference to the first GPIO 519 * line found that matches the given name. 520 */ 521 static struct gpio_desc *gpio_name_to_desc(const char * const name) 522 { 523 struct gpio_device *gdev; 524 struct gpio_desc *desc; 525 struct gpio_chip *gc; 526 527 if (!name) 528 return NULL; 529 530 guard(srcu)(&gpio_devices_srcu); 531 532 list_for_each_entry_srcu(gdev, &gpio_devices, list, 533 srcu_read_lock_held(&gpio_devices_srcu)) { 534 guard(srcu)(&gdev->srcu); 535 536 gc = srcu_dereference(gdev->chip, &gdev->srcu); 537 if (!gc) 538 continue; 539 540 for_each_gpio_desc(gc, desc) { 541 if (desc->name && !strcmp(desc->name, name)) 542 return desc; 543 } 544 } 545 546 return NULL; 547 } 548 549 /* 550 * Take the names from gc->names and assign them to their GPIO descriptors. 551 * Warn if a name is already used for a GPIO line on a different GPIO chip. 552 * 553 * Note that: 554 * 1. Non-unique names are still accepted, 555 * 2. Name collisions within the same GPIO chip are not reported. 556 */ 557 static void gpiochip_set_desc_names(struct gpio_chip *gc) 558 { 559 struct gpio_device *gdev = gc->gpiodev; 560 int i; 561 562 /* First check all names if they are unique */ 563 for (i = 0; i != gc->ngpio; ++i) { 564 struct gpio_desc *gpio; 565 566 gpio = gpio_name_to_desc(gc->names[i]); 567 if (gpio) 568 dev_warn(&gdev->dev, 569 "Detected name collision for GPIO name '%s'\n", 570 gc->names[i]); 571 } 572 573 /* Then add all names to the GPIO descriptors */ 574 for (i = 0; i != gc->ngpio; ++i) 575 gdev->descs[i].name = gc->names[i]; 576 } 577 578 /* 579 * gpiochip_set_names - Set GPIO line names using device properties 580 * @chip: GPIO chip whose lines should be named, if possible 581 * 582 * Looks for device property "gpio-line-names" and if it exists assigns 583 * GPIO line names for the chip. The memory allocated for the assigned 584 * names belong to the underlying firmware node and should not be released 585 * by the caller. 586 */ 587 static int gpiochip_set_names(struct gpio_chip *chip) 588 { 589 struct gpio_device *gdev = chip->gpiodev; 590 struct device *dev = &gdev->dev; 591 const char **names; 592 int ret, i; 593 int count; 594 595 count = device_property_string_array_count(dev, "gpio-line-names"); 596 if (count < 0) 597 return 0; 598 599 /* 600 * When offset is set in the driver side we assume the driver internally 601 * is using more than one gpiochip per the same device. We have to stop 602 * setting friendly names if the specified ones with 'gpio-line-names' 603 * are less than the offset in the device itself. This means all the 604 * lines are not present for every single pin within all the internal 605 * gpiochips. 606 */ 607 if (count <= chip->offset) { 608 dev_warn(dev, "gpio-line-names too short (length %d), cannot map names for the gpiochip at offset %u\n", 609 count, chip->offset); 610 return 0; 611 } 612 613 names = kcalloc(count, sizeof(*names), GFP_KERNEL); 614 if (!names) 615 return -ENOMEM; 616 617 ret = device_property_read_string_array(dev, "gpio-line-names", 618 names, count); 619 if (ret < 0) { 620 dev_warn(dev, "failed to read GPIO line names\n"); 621 kfree(names); 622 return ret; 623 } 624 625 /* 626 * When more that one gpiochip per device is used, 'count' can 627 * contain at most number gpiochips x chip->ngpio. We have to 628 * correctly distribute all defined lines taking into account 629 * chip->offset as starting point from where we will assign 630 * the names to pins from the 'names' array. Since property 631 * 'gpio-line-names' cannot contains gaps, we have to be sure 632 * we only assign those pins that really exists since chip->ngpio 633 * can be different of the chip->offset. 634 */ 635 count = (count > chip->offset) ? count - chip->offset : count; 636 if (count > chip->ngpio) 637 count = chip->ngpio; 638 639 for (i = 0; i < count; i++) { 640 /* 641 * Allow overriding "fixed" names provided by the GPIO 642 * provider. The "fixed" names are more often than not 643 * generic and less informative than the names given in 644 * device properties. 645 */ 646 if (names[chip->offset + i] && names[chip->offset + i][0]) 647 gdev->descs[i].name = names[chip->offset + i]; 648 } 649 650 kfree(names); 651 652 return 0; 653 } 654 655 static unsigned long *gpiochip_allocate_mask(struct gpio_chip *gc) 656 { 657 unsigned long *p; 658 659 p = bitmap_alloc(gc->ngpio, GFP_KERNEL); 660 if (!p) 661 return NULL; 662 663 /* Assume by default all GPIOs are valid */ 664 bitmap_fill(p, gc->ngpio); 665 666 return p; 667 } 668 669 static void gpiochip_free_mask(unsigned long **p) 670 { 671 bitmap_free(*p); 672 *p = NULL; 673 } 674 675 static unsigned int gpiochip_count_reserved_ranges(struct gpio_chip *gc) 676 { 677 struct device *dev = &gc->gpiodev->dev; 678 int size; 679 680 /* Format is "start, count, ..." */ 681 size = device_property_count_u32(dev, "gpio-reserved-ranges"); 682 if (size > 0 && size % 2 == 0) 683 return size; 684 685 return 0; 686 } 687 688 static int gpiochip_apply_reserved_ranges(struct gpio_chip *gc) 689 { 690 struct device *dev = &gc->gpiodev->dev; 691 unsigned int size; 692 u32 *ranges; 693 int ret; 694 695 size = gpiochip_count_reserved_ranges(gc); 696 if (size == 0) 697 return 0; 698 699 ranges = kmalloc_array(size, sizeof(*ranges), GFP_KERNEL); 700 if (!ranges) 701 return -ENOMEM; 702 703 ret = device_property_read_u32_array(dev, "gpio-reserved-ranges", 704 ranges, size); 705 if (ret) { 706 kfree(ranges); 707 return ret; 708 } 709 710 while (size) { 711 u32 count = ranges[--size]; 712 u32 start = ranges[--size]; 713 714 if (start >= gc->ngpio || start + count > gc->ngpio) 715 continue; 716 717 bitmap_clear(gc->gpiodev->valid_mask, start, count); 718 } 719 720 kfree(ranges); 721 return 0; 722 } 723 724 static int gpiochip_init_valid_mask(struct gpio_chip *gc) 725 { 726 int ret; 727 728 if (!(gpiochip_count_reserved_ranges(gc) || gc->init_valid_mask)) 729 return 0; 730 731 gc->gpiodev->valid_mask = gpiochip_allocate_mask(gc); 732 if (!gc->gpiodev->valid_mask) 733 return -ENOMEM; 734 735 ret = gpiochip_apply_reserved_ranges(gc); 736 if (ret) 737 return ret; 738 739 if (gc->init_valid_mask) 740 return gc->init_valid_mask(gc, 741 gc->gpiodev->valid_mask, 742 gc->ngpio); 743 744 return 0; 745 } 746 747 static void gpiochip_free_valid_mask(struct gpio_chip *gc) 748 { 749 gpiochip_free_mask(&gc->gpiodev->valid_mask); 750 } 751 752 static int gpiochip_add_pin_ranges(struct gpio_chip *gc) 753 { 754 /* 755 * Device Tree platforms are supposed to use "gpio-ranges" 756 * property. This check ensures that the ->add_pin_ranges() 757 * won't be called for them. 758 */ 759 if (device_property_present(&gc->gpiodev->dev, "gpio-ranges")) 760 return 0; 761 762 if (gc->add_pin_ranges) 763 return gc->add_pin_ranges(gc); 764 765 return 0; 766 } 767 768 /** 769 * gpiochip_query_valid_mask - return the GPIO validity information 770 * @gc: gpio chip which validity information is queried 771 * 772 * Returns: bitmap representing valid GPIOs or NULL if all GPIOs are valid 773 * 774 * Some GPIO chips may support configurations where some of the pins aren't 775 * available. These chips can have valid_mask set to represent the valid 776 * GPIOs. This function can be used to retrieve this information. 777 */ 778 const unsigned long *gpiochip_query_valid_mask(const struct gpio_chip *gc) 779 { 780 return gc->gpiodev->valid_mask; 781 } 782 EXPORT_SYMBOL_GPL(gpiochip_query_valid_mask); 783 784 bool gpiochip_line_is_valid(const struct gpio_chip *gc, 785 unsigned int offset) 786 { 787 /* 788 * hog pins are requested before registering GPIO chip 789 */ 790 if (!gc->gpiodev) 791 return true; 792 793 /* No mask means all valid */ 794 if (likely(!gc->gpiodev->valid_mask)) 795 return true; 796 return test_bit(offset, gc->gpiodev->valid_mask); 797 } 798 EXPORT_SYMBOL_GPL(gpiochip_line_is_valid); 799 800 static void gpiod_free_irqs(struct gpio_desc *desc) 801 { 802 int irq = gpiod_to_irq(desc); 803 struct irq_desc *irqd = irq_to_desc(irq); 804 void *cookie; 805 806 for (;;) { 807 /* 808 * Make sure the action doesn't go away while we're 809 * dereferencing it. Retrieve and store the cookie value. 810 * If the irq is freed after we release the lock, that's 811 * alright - the underlying maple tree lookup will return NULL 812 * and nothing will happen in free_irq(). 813 */ 814 scoped_guard(mutex, &irqd->request_mutex) { 815 if (!irq_desc_has_action(irqd)) 816 return; 817 818 cookie = irqd->action->dev_id; 819 } 820 821 free_irq(irq, cookie); 822 } 823 } 824 825 /* 826 * The chip is going away but there may be users who had requested interrupts 827 * on its GPIO lines who have no idea about its removal and have no way of 828 * being notified about it. We need to free any interrupts still in use here or 829 * we'll leak memory and resources (like procfs files). 830 */ 831 static void gpiochip_free_remaining_irqs(struct gpio_chip *gc) 832 { 833 struct gpio_desc *desc; 834 835 for_each_gpio_desc_with_flag(gc, desc, FLAG_USED_AS_IRQ) 836 gpiod_free_irqs(desc); 837 } 838 839 static void gpiodev_release(struct device *dev) 840 { 841 struct gpio_device *gdev = to_gpio_device(dev); 842 843 /* Call pending kfree()s for descriptor labels. */ 844 synchronize_srcu(&gdev->desc_srcu); 845 cleanup_srcu_struct(&gdev->desc_srcu); 846 847 ida_free(&gpio_ida, gdev->id); 848 kfree_const(gdev->label); 849 kfree(gdev->descs); 850 cleanup_srcu_struct(&gdev->srcu); 851 kfree(gdev); 852 } 853 854 static const struct device_type gpio_dev_type = { 855 .name = "gpio_chip", 856 .release = gpiodev_release, 857 }; 858 859 #ifdef CONFIG_GPIO_CDEV 860 #define gcdev_register(gdev, devt) gpiolib_cdev_register((gdev), (devt)) 861 #define gcdev_unregister(gdev) gpiolib_cdev_unregister((gdev)) 862 #else 863 /* 864 * gpiolib_cdev_register() indirectly calls device_add(), which is still 865 * required even when cdev is not selected. 866 */ 867 #define gcdev_register(gdev, devt) device_add(&(gdev)->dev) 868 #define gcdev_unregister(gdev) device_del(&(gdev)->dev) 869 #endif 870 871 static int gpiochip_setup_dev(struct gpio_device *gdev) 872 { 873 struct fwnode_handle *fwnode = dev_fwnode(&gdev->dev); 874 int ret; 875 876 device_initialize(&gdev->dev); 877 878 /* 879 * If fwnode doesn't belong to another device, it's safe to clear its 880 * initialized flag. 881 */ 882 if (fwnode && !fwnode->dev) 883 fwnode_dev_initialized(fwnode, false); 884 885 ret = gcdev_register(gdev, gpio_devt); 886 if (ret) 887 return ret; 888 889 ret = gpiochip_sysfs_register(gdev); 890 if (ret) 891 goto err_remove_device; 892 893 dev_dbg(&gdev->dev, "registered GPIOs %u to %u on %s\n", gdev->base, 894 gdev->base + gdev->ngpio - 1, gdev->label); 895 896 return 0; 897 898 err_remove_device: 899 gcdev_unregister(gdev); 900 return ret; 901 } 902 903 static void gpiochip_machine_hog(struct gpio_chip *gc, struct gpiod_hog *hog) 904 { 905 struct gpio_desc *desc; 906 int rv; 907 908 desc = gpiochip_get_desc(gc, hog->chip_hwnum); 909 if (IS_ERR(desc)) { 910 chip_err(gc, "%s: unable to get GPIO desc: %ld\n", __func__, 911 PTR_ERR(desc)); 912 return; 913 } 914 915 rv = gpiod_hog(desc, hog->line_name, hog->lflags, hog->dflags); 916 if (rv) 917 gpiod_err(desc, "%s: unable to hog GPIO line (%s:%u): %d\n", 918 __func__, gc->label, hog->chip_hwnum, rv); 919 } 920 921 static void machine_gpiochip_add(struct gpio_chip *gc) 922 { 923 struct gpiod_hog *hog; 924 925 guard(mutex)(&gpio_machine_hogs_mutex); 926 927 list_for_each_entry(hog, &gpio_machine_hogs, list) { 928 if (!strcmp(gc->label, hog->chip_label)) 929 gpiochip_machine_hog(gc, hog); 930 } 931 } 932 933 static void gpiochip_setup_devs(void) 934 { 935 struct gpio_device *gdev; 936 int ret; 937 938 guard(srcu)(&gpio_devices_srcu); 939 940 list_for_each_entry_srcu(gdev, &gpio_devices, list, 941 srcu_read_lock_held(&gpio_devices_srcu)) { 942 ret = gpiochip_setup_dev(gdev); 943 if (ret) 944 dev_err(&gdev->dev, 945 "Failed to initialize gpio device (%d)\n", ret); 946 } 947 } 948 949 static void gpiochip_set_data(struct gpio_chip *gc, void *data) 950 { 951 gc->gpiodev->data = data; 952 } 953 954 /** 955 * gpiochip_get_data() - get per-subdriver data for the chip 956 * @gc: GPIO chip 957 * 958 * Returns: 959 * The per-subdriver data for the chip. 960 */ 961 void *gpiochip_get_data(struct gpio_chip *gc) 962 { 963 return gc->gpiodev->data; 964 } 965 EXPORT_SYMBOL_GPL(gpiochip_get_data); 966 967 /* 968 * If the calling driver provides the specific firmware node, 969 * use it. Otherwise use the one from the parent device, if any. 970 */ 971 static struct fwnode_handle *gpiochip_choose_fwnode(struct gpio_chip *gc) 972 { 973 if (gc->fwnode) 974 return gc->fwnode; 975 976 if (gc->parent) 977 return dev_fwnode(gc->parent); 978 979 return NULL; 980 } 981 982 int gpiochip_get_ngpios(struct gpio_chip *gc, struct device *dev) 983 { 984 struct fwnode_handle *fwnode = gpiochip_choose_fwnode(gc); 985 u32 ngpios = gc->ngpio; 986 int ret; 987 988 if (ngpios == 0) { 989 ret = fwnode_property_read_u32(fwnode, "ngpios", &ngpios); 990 if (ret == -ENODATA) 991 /* 992 * -ENODATA means that there is no property found and 993 * we want to issue the error message to the user. 994 * Besides that, we want to return different error code 995 * to state that supplied value is not valid. 996 */ 997 ngpios = 0; 998 else if (ret) 999 return ret; 1000 1001 gc->ngpio = ngpios; 1002 } 1003 1004 if (gc->ngpio == 0) { 1005 dev_err(dev, "tried to insert a GPIO chip with zero lines\n"); 1006 return -EINVAL; 1007 } 1008 1009 if (gc->ngpio > FASTPATH_NGPIO) 1010 dev_warn(dev, "line cnt %u is greater than fast path cnt %u\n", 1011 gc->ngpio, FASTPATH_NGPIO); 1012 1013 return 0; 1014 } 1015 EXPORT_SYMBOL_GPL(gpiochip_get_ngpios); 1016 1017 int gpiochip_add_data_with_key(struct gpio_chip *gc, void *data, 1018 struct lock_class_key *lock_key, 1019 struct lock_class_key *request_key) 1020 { 1021 struct gpio_device *gdev; 1022 unsigned int desc_index; 1023 int base = 0; 1024 int ret; 1025 1026 /* Only allow one set() and one set_multiple(). */ 1027 if ((gc->set && gc->set_rv) || 1028 (gc->set_multiple && gc->set_multiple_rv)) 1029 return -EINVAL; 1030 1031 /* 1032 * First: allocate and populate the internal stat container, and 1033 * set up the struct device. 1034 */ 1035 gdev = kzalloc(sizeof(*gdev), GFP_KERNEL); 1036 if (!gdev) 1037 return -ENOMEM; 1038 1039 gdev->dev.type = &gpio_dev_type; 1040 gdev->dev.bus = &gpio_bus_type; 1041 gdev->dev.parent = gc->parent; 1042 rcu_assign_pointer(gdev->chip, gc); 1043 1044 gc->gpiodev = gdev; 1045 gpiochip_set_data(gc, data); 1046 1047 device_set_node(&gdev->dev, gpiochip_choose_fwnode(gc)); 1048 1049 ret = ida_alloc(&gpio_ida, GFP_KERNEL); 1050 if (ret < 0) 1051 goto err_free_gdev; 1052 gdev->id = ret; 1053 1054 ret = dev_set_name(&gdev->dev, GPIOCHIP_NAME "%d", gdev->id); 1055 if (ret) 1056 goto err_free_ida; 1057 1058 if (gc->parent && gc->parent->driver) 1059 gdev->owner = gc->parent->driver->owner; 1060 else if (gc->owner) 1061 /* TODO: remove chip->owner */ 1062 gdev->owner = gc->owner; 1063 else 1064 gdev->owner = THIS_MODULE; 1065 1066 ret = gpiochip_get_ngpios(gc, &gdev->dev); 1067 if (ret) 1068 goto err_free_dev_name; 1069 1070 gdev->descs = kcalloc(gc->ngpio, sizeof(*gdev->descs), GFP_KERNEL); 1071 if (!gdev->descs) { 1072 ret = -ENOMEM; 1073 goto err_free_dev_name; 1074 } 1075 1076 gdev->label = kstrdup_const(gc->label ?: "unknown", GFP_KERNEL); 1077 if (!gdev->label) { 1078 ret = -ENOMEM; 1079 goto err_free_descs; 1080 } 1081 1082 gdev->ngpio = gc->ngpio; 1083 gdev->can_sleep = gc->can_sleep; 1084 1085 scoped_guard(mutex, &gpio_devices_lock) { 1086 /* 1087 * TODO: this allocates a Linux GPIO number base in the global 1088 * GPIO numberspace for this chip. In the long run we want to 1089 * get *rid* of this numberspace and use only descriptors, but 1090 * it may be a pipe dream. It will not happen before we get rid 1091 * of the sysfs interface anyways. 1092 */ 1093 base = gc->base; 1094 if (base < 0) { 1095 base = gpiochip_find_base_unlocked(gc->ngpio); 1096 if (base < 0) { 1097 ret = base; 1098 base = 0; 1099 goto err_free_label; 1100 } 1101 1102 /* 1103 * TODO: it should not be necessary to reflect the 1104 * assigned base outside of the GPIO subsystem. Go over 1105 * drivers and see if anyone makes use of this, else 1106 * drop this and assign a poison instead. 1107 */ 1108 gc->base = base; 1109 } else { 1110 dev_warn(&gdev->dev, 1111 "Static allocation of GPIO base is deprecated, use dynamic allocation.\n"); 1112 } 1113 1114 gdev->base = base; 1115 1116 ret = gpiodev_add_to_list_unlocked(gdev); 1117 if (ret) { 1118 chip_err(gc, "GPIO integer space overlap, cannot add chip\n"); 1119 goto err_free_label; 1120 } 1121 } 1122 1123 rwlock_init(&gdev->line_state_lock); 1124 RAW_INIT_NOTIFIER_HEAD(&gdev->line_state_notifier); 1125 BLOCKING_INIT_NOTIFIER_HEAD(&gdev->device_notifier); 1126 1127 ret = init_srcu_struct(&gdev->srcu); 1128 if (ret) 1129 goto err_remove_from_list; 1130 1131 ret = init_srcu_struct(&gdev->desc_srcu); 1132 if (ret) 1133 goto err_cleanup_gdev_srcu; 1134 1135 #ifdef CONFIG_PINCTRL 1136 INIT_LIST_HEAD(&gdev->pin_ranges); 1137 #endif 1138 1139 if (gc->names) 1140 gpiochip_set_desc_names(gc); 1141 1142 ret = gpiochip_set_names(gc); 1143 if (ret) 1144 goto err_cleanup_desc_srcu; 1145 1146 ret = gpiochip_init_valid_mask(gc); 1147 if (ret) 1148 goto err_cleanup_desc_srcu; 1149 1150 for (desc_index = 0; desc_index < gc->ngpio; desc_index++) { 1151 struct gpio_desc *desc = &gdev->descs[desc_index]; 1152 1153 desc->gdev = gdev; 1154 1155 /* 1156 * We would typically want to use gpiochip_get_direction() here 1157 * but we must not check the return value and bail-out as pin 1158 * controllers can have pins configured to alternate functions 1159 * and return -EINVAL. Also: there's no need to take the SRCU 1160 * lock here. 1161 */ 1162 if (gc->get_direction && gpiochip_line_is_valid(gc, desc_index)) 1163 assign_bit(FLAG_IS_OUT, &desc->flags, 1164 !gc->get_direction(gc, desc_index)); 1165 else 1166 assign_bit(FLAG_IS_OUT, 1167 &desc->flags, !gc->direction_input); 1168 } 1169 1170 ret = of_gpiochip_add(gc); 1171 if (ret) 1172 goto err_free_valid_mask; 1173 1174 ret = gpiochip_add_pin_ranges(gc); 1175 if (ret) 1176 goto err_remove_of_chip; 1177 1178 acpi_gpiochip_add(gc); 1179 1180 machine_gpiochip_add(gc); 1181 1182 ret = gpiochip_irqchip_init_valid_mask(gc); 1183 if (ret) 1184 goto err_free_hogs; 1185 1186 ret = gpiochip_irqchip_init_hw(gc); 1187 if (ret) 1188 goto err_remove_irqchip_mask; 1189 1190 ret = gpiochip_add_irqchip(gc, lock_key, request_key); 1191 if (ret) 1192 goto err_remove_irqchip_mask; 1193 1194 /* 1195 * By first adding the chardev, and then adding the device, 1196 * we get a device node entry in sysfs under 1197 * /sys/bus/gpio/devices/gpiochipN/dev that can be used for 1198 * coldplug of device nodes and other udev business. 1199 * We can do this only if gpiolib has been initialized. 1200 * Otherwise, defer until later. 1201 */ 1202 if (gpiolib_initialized) { 1203 ret = gpiochip_setup_dev(gdev); 1204 if (ret) 1205 goto err_remove_irqchip; 1206 } 1207 return 0; 1208 1209 err_remove_irqchip: 1210 gpiochip_irqchip_remove(gc); 1211 err_remove_irqchip_mask: 1212 gpiochip_irqchip_free_valid_mask(gc); 1213 err_free_hogs: 1214 gpiochip_free_hogs(gc); 1215 acpi_gpiochip_remove(gc); 1216 gpiochip_remove_pin_ranges(gc); 1217 err_remove_of_chip: 1218 of_gpiochip_remove(gc); 1219 err_free_valid_mask: 1220 gpiochip_free_valid_mask(gc); 1221 err_cleanup_desc_srcu: 1222 cleanup_srcu_struct(&gdev->desc_srcu); 1223 err_cleanup_gdev_srcu: 1224 cleanup_srcu_struct(&gdev->srcu); 1225 err_remove_from_list: 1226 scoped_guard(mutex, &gpio_devices_lock) 1227 list_del_rcu(&gdev->list); 1228 synchronize_srcu(&gpio_devices_srcu); 1229 if (gdev->dev.release) { 1230 /* release() has been registered by gpiochip_setup_dev() */ 1231 gpio_device_put(gdev); 1232 goto err_print_message; 1233 } 1234 err_free_label: 1235 kfree_const(gdev->label); 1236 err_free_descs: 1237 kfree(gdev->descs); 1238 err_free_dev_name: 1239 kfree(dev_name(&gdev->dev)); 1240 err_free_ida: 1241 ida_free(&gpio_ida, gdev->id); 1242 err_free_gdev: 1243 kfree(gdev); 1244 err_print_message: 1245 /* failures here can mean systems won't boot... */ 1246 if (ret != -EPROBE_DEFER) { 1247 pr_err("%s: GPIOs %d..%d (%s) failed to register, %d\n", __func__, 1248 base, base + (int)gc->ngpio - 1, 1249 gc->label ? : "generic", ret); 1250 } 1251 return ret; 1252 } 1253 EXPORT_SYMBOL_GPL(gpiochip_add_data_with_key); 1254 1255 /** 1256 * gpiochip_remove() - unregister a gpio_chip 1257 * @gc: the chip to unregister 1258 * 1259 * A gpio_chip with any GPIOs still requested may not be removed. 1260 */ 1261 void gpiochip_remove(struct gpio_chip *gc) 1262 { 1263 struct gpio_device *gdev = gc->gpiodev; 1264 1265 /* FIXME: should the legacy sysfs handling be moved to gpio_device? */ 1266 gpiochip_sysfs_unregister(gdev); 1267 gpiochip_free_hogs(gc); 1268 gpiochip_free_remaining_irqs(gc); 1269 1270 scoped_guard(mutex, &gpio_devices_lock) 1271 list_del_rcu(&gdev->list); 1272 synchronize_srcu(&gpio_devices_srcu); 1273 1274 /* Numb the device, cancelling all outstanding operations */ 1275 rcu_assign_pointer(gdev->chip, NULL); 1276 synchronize_srcu(&gdev->srcu); 1277 gpiochip_irqchip_remove(gc); 1278 acpi_gpiochip_remove(gc); 1279 of_gpiochip_remove(gc); 1280 gpiochip_remove_pin_ranges(gc); 1281 gpiochip_free_valid_mask(gc); 1282 /* 1283 * We accept no more calls into the driver from this point, so 1284 * NULL the driver data pointer. 1285 */ 1286 gpiochip_set_data(gc, NULL); 1287 1288 /* 1289 * The gpiochip side puts its use of the device to rest here: 1290 * if there are no userspace clients, the chardev and device will 1291 * be removed, else it will be dangling until the last user is 1292 * gone. 1293 */ 1294 gcdev_unregister(gdev); 1295 gpio_device_put(gdev); 1296 } 1297 EXPORT_SYMBOL_GPL(gpiochip_remove); 1298 1299 /** 1300 * gpio_device_find() - find a specific GPIO device 1301 * @data: data to pass to match function 1302 * @match: Callback function to check gpio_chip 1303 * 1304 * Returns: 1305 * New reference to struct gpio_device. 1306 * 1307 * Similar to bus_find_device(). It returns a reference to a gpio_device as 1308 * determined by a user supplied @match callback. The callback should return 1309 * 0 if the device doesn't match and non-zero if it does. If the callback 1310 * returns non-zero, this function will return to the caller and not iterate 1311 * over any more gpio_devices. 1312 * 1313 * The callback takes the GPIO chip structure as argument. During the execution 1314 * of the callback function the chip is protected from being freed. TODO: This 1315 * actually has yet to be implemented. 1316 * 1317 * If the function returns non-NULL, the returned reference must be freed by 1318 * the caller using gpio_device_put(). 1319 */ 1320 struct gpio_device *gpio_device_find(const void *data, 1321 int (*match)(struct gpio_chip *gc, 1322 const void *data)) 1323 { 1324 struct gpio_device *gdev; 1325 struct gpio_chip *gc; 1326 1327 might_sleep(); 1328 1329 guard(srcu)(&gpio_devices_srcu); 1330 1331 list_for_each_entry_srcu(gdev, &gpio_devices, list, 1332 srcu_read_lock_held(&gpio_devices_srcu)) { 1333 if (!device_is_registered(&gdev->dev)) 1334 continue; 1335 1336 guard(srcu)(&gdev->srcu); 1337 1338 gc = srcu_dereference(gdev->chip, &gdev->srcu); 1339 1340 if (gc && match(gc, data)) 1341 return gpio_device_get(gdev); 1342 } 1343 1344 return NULL; 1345 } 1346 EXPORT_SYMBOL_GPL(gpio_device_find); 1347 1348 static int gpio_chip_match_by_label(struct gpio_chip *gc, const void *label) 1349 { 1350 return gc->label && !strcmp(gc->label, label); 1351 } 1352 1353 /** 1354 * gpio_device_find_by_label() - wrapper around gpio_device_find() finding the 1355 * GPIO device by its backing chip's label 1356 * @label: Label to lookup 1357 * 1358 * Returns: 1359 * Reference to the GPIO device or NULL. Reference must be released with 1360 * gpio_device_put(). 1361 */ 1362 struct gpio_device *gpio_device_find_by_label(const char *label) 1363 { 1364 return gpio_device_find((void *)label, gpio_chip_match_by_label); 1365 } 1366 EXPORT_SYMBOL_GPL(gpio_device_find_by_label); 1367 1368 static int gpio_chip_match_by_fwnode(struct gpio_chip *gc, const void *fwnode) 1369 { 1370 return device_match_fwnode(&gc->gpiodev->dev, fwnode); 1371 } 1372 1373 /** 1374 * gpio_device_find_by_fwnode() - wrapper around gpio_device_find() finding 1375 * the GPIO device by its fwnode 1376 * @fwnode: Firmware node to lookup 1377 * 1378 * Returns: 1379 * Reference to the GPIO device or NULL. Reference must be released with 1380 * gpio_device_put(). 1381 */ 1382 struct gpio_device *gpio_device_find_by_fwnode(const struct fwnode_handle *fwnode) 1383 { 1384 return gpio_device_find((void *)fwnode, gpio_chip_match_by_fwnode); 1385 } 1386 EXPORT_SYMBOL_GPL(gpio_device_find_by_fwnode); 1387 1388 /** 1389 * gpio_device_get() - Increase the reference count of this GPIO device 1390 * @gdev: GPIO device to increase the refcount for 1391 * 1392 * Returns: 1393 * Pointer to @gdev. 1394 */ 1395 struct gpio_device *gpio_device_get(struct gpio_device *gdev) 1396 { 1397 return to_gpio_device(get_device(&gdev->dev)); 1398 } 1399 EXPORT_SYMBOL_GPL(gpio_device_get); 1400 1401 /** 1402 * gpio_device_put() - Decrease the reference count of this GPIO device and 1403 * possibly free all resources associated with it. 1404 * @gdev: GPIO device to decrease the reference count for 1405 */ 1406 void gpio_device_put(struct gpio_device *gdev) 1407 { 1408 put_device(&gdev->dev); 1409 } 1410 EXPORT_SYMBOL_GPL(gpio_device_put); 1411 1412 /** 1413 * gpio_device_to_device() - Retrieve the address of the underlying struct 1414 * device. 1415 * @gdev: GPIO device for which to return the address. 1416 * 1417 * This does not increase the reference count of the GPIO device nor the 1418 * underlying struct device. 1419 * 1420 * Returns: 1421 * Address of struct device backing this GPIO device. 1422 */ 1423 struct device *gpio_device_to_device(struct gpio_device *gdev) 1424 { 1425 return &gdev->dev; 1426 } 1427 EXPORT_SYMBOL_GPL(gpio_device_to_device); 1428 1429 #ifdef CONFIG_GPIOLIB_IRQCHIP 1430 1431 /* 1432 * The following is irqchip helper code for gpiochips. 1433 */ 1434 1435 static int gpiochip_irqchip_init_hw(struct gpio_chip *gc) 1436 { 1437 struct gpio_irq_chip *girq = &gc->irq; 1438 1439 if (!girq->init_hw) 1440 return 0; 1441 1442 return girq->init_hw(gc); 1443 } 1444 1445 static int gpiochip_irqchip_init_valid_mask(struct gpio_chip *gc) 1446 { 1447 struct gpio_irq_chip *girq = &gc->irq; 1448 1449 if (!girq->init_valid_mask) 1450 return 0; 1451 1452 girq->valid_mask = gpiochip_allocate_mask(gc); 1453 if (!girq->valid_mask) 1454 return -ENOMEM; 1455 1456 girq->init_valid_mask(gc, girq->valid_mask, gc->ngpio); 1457 1458 return 0; 1459 } 1460 1461 static void gpiochip_irqchip_free_valid_mask(struct gpio_chip *gc) 1462 { 1463 gpiochip_free_mask(&gc->irq.valid_mask); 1464 } 1465 1466 static bool gpiochip_irqchip_irq_valid(const struct gpio_chip *gc, 1467 unsigned int offset) 1468 { 1469 if (!gpiochip_line_is_valid(gc, offset)) 1470 return false; 1471 /* No mask means all valid */ 1472 if (likely(!gc->irq.valid_mask)) 1473 return true; 1474 return test_bit(offset, gc->irq.valid_mask); 1475 } 1476 1477 #ifdef CONFIG_IRQ_DOMAIN_HIERARCHY 1478 1479 /** 1480 * gpiochip_set_hierarchical_irqchip() - connects a hierarchical irqchip 1481 * to a gpiochip 1482 * @gc: the gpiochip to set the irqchip hierarchical handler to 1483 * @irqchip: the irqchip to handle this level of the hierarchy, the interrupt 1484 * will then percolate up to the parent 1485 */ 1486 static void gpiochip_set_hierarchical_irqchip(struct gpio_chip *gc, 1487 struct irq_chip *irqchip) 1488 { 1489 /* DT will deal with mapping each IRQ as we go along */ 1490 if (is_of_node(gc->irq.fwnode)) 1491 return; 1492 1493 /* 1494 * This is for legacy and boardfile "irqchip" fwnodes: allocate 1495 * irqs upfront instead of dynamically since we don't have the 1496 * dynamic type of allocation that hardware description languages 1497 * provide. Once all GPIO drivers using board files are gone from 1498 * the kernel we can delete this code, but for a transitional period 1499 * it is necessary to keep this around. 1500 */ 1501 if (is_fwnode_irqchip(gc->irq.fwnode)) { 1502 int i; 1503 int ret; 1504 1505 for (i = 0; i < gc->ngpio; i++) { 1506 struct irq_fwspec fwspec; 1507 unsigned int parent_hwirq; 1508 unsigned int parent_type; 1509 struct gpio_irq_chip *girq = &gc->irq; 1510 1511 /* 1512 * We call the child to parent translation function 1513 * only to check if the child IRQ is valid or not. 1514 * Just pick the rising edge type here as that is what 1515 * we likely need to support. 1516 */ 1517 ret = girq->child_to_parent_hwirq(gc, i, 1518 IRQ_TYPE_EDGE_RISING, 1519 &parent_hwirq, 1520 &parent_type); 1521 if (ret) { 1522 chip_err(gc, "skip set-up on hwirq %d\n", 1523 i); 1524 continue; 1525 } 1526 1527 fwspec.fwnode = gc->irq.fwnode; 1528 /* This is the hwirq for the GPIO line side of things */ 1529 fwspec.param[0] = girq->child_offset_to_irq(gc, i); 1530 /* Just pick something */ 1531 fwspec.param[1] = IRQ_TYPE_EDGE_RISING; 1532 fwspec.param_count = 2; 1533 ret = irq_domain_alloc_irqs(gc->irq.domain, 1, 1534 NUMA_NO_NODE, &fwspec); 1535 if (ret < 0) { 1536 chip_err(gc, 1537 "can not allocate irq for GPIO line %d parent hwirq %d in hierarchy domain: %d\n", 1538 i, parent_hwirq, 1539 ret); 1540 } 1541 } 1542 } 1543 1544 chip_err(gc, "%s unknown fwnode type proceed anyway\n", __func__); 1545 1546 return; 1547 } 1548 1549 static int gpiochip_hierarchy_irq_domain_translate(struct irq_domain *d, 1550 struct irq_fwspec *fwspec, 1551 unsigned long *hwirq, 1552 unsigned int *type) 1553 { 1554 /* We support standard DT translation */ 1555 if (is_of_node(fwspec->fwnode)) 1556 return irq_domain_translate_twothreecell(d, fwspec, hwirq, type); 1557 1558 /* This is for board files and others not using DT */ 1559 if (is_fwnode_irqchip(fwspec->fwnode)) { 1560 int ret; 1561 1562 ret = irq_domain_translate_twocell(d, fwspec, hwirq, type); 1563 if (ret) 1564 return ret; 1565 WARN_ON(*type == IRQ_TYPE_NONE); 1566 return 0; 1567 } 1568 return -EINVAL; 1569 } 1570 1571 static int gpiochip_hierarchy_irq_domain_alloc(struct irq_domain *d, 1572 unsigned int irq, 1573 unsigned int nr_irqs, 1574 void *data) 1575 { 1576 struct gpio_chip *gc = d->host_data; 1577 irq_hw_number_t hwirq; 1578 unsigned int type = IRQ_TYPE_NONE; 1579 struct irq_fwspec *fwspec = data; 1580 union gpio_irq_fwspec gpio_parent_fwspec = {}; 1581 unsigned int parent_hwirq; 1582 unsigned int parent_type; 1583 struct gpio_irq_chip *girq = &gc->irq; 1584 int ret; 1585 1586 /* 1587 * The nr_irqs parameter is always one except for PCI multi-MSI 1588 * so this should not happen. 1589 */ 1590 WARN_ON(nr_irqs != 1); 1591 1592 ret = gc->irq.child_irq_domain_ops.translate(d, fwspec, &hwirq, &type); 1593 if (ret) 1594 return ret; 1595 1596 chip_dbg(gc, "allocate IRQ %d, hwirq %lu\n", irq, hwirq); 1597 1598 ret = girq->child_to_parent_hwirq(gc, hwirq, type, 1599 &parent_hwirq, &parent_type); 1600 if (ret) { 1601 chip_err(gc, "can't look up hwirq %lu\n", hwirq); 1602 return ret; 1603 } 1604 chip_dbg(gc, "found parent hwirq %u\n", parent_hwirq); 1605 1606 /* 1607 * We set handle_bad_irq because the .set_type() should 1608 * always be invoked and set the right type of handler. 1609 */ 1610 irq_domain_set_info(d, 1611 irq, 1612 hwirq, 1613 gc->irq.chip, 1614 gc, 1615 girq->handler, 1616 NULL, NULL); 1617 irq_set_probe(irq); 1618 1619 /* This parent only handles asserted level IRQs */ 1620 ret = girq->populate_parent_alloc_arg(gc, &gpio_parent_fwspec, 1621 parent_hwirq, parent_type); 1622 if (ret) 1623 return ret; 1624 1625 chip_dbg(gc, "alloc_irqs_parent for %d parent hwirq %d\n", 1626 irq, parent_hwirq); 1627 irq_set_lockdep_class(irq, gc->irq.lock_key, gc->irq.request_key); 1628 ret = irq_domain_alloc_irqs_parent(d, irq, 1, &gpio_parent_fwspec); 1629 /* 1630 * If the parent irqdomain is msi, the interrupts have already 1631 * been allocated, so the EEXIST is good. 1632 */ 1633 if (irq_domain_is_msi(d->parent) && (ret == -EEXIST)) 1634 ret = 0; 1635 if (ret) 1636 chip_err(gc, 1637 "failed to allocate parent hwirq %d for hwirq %lu\n", 1638 parent_hwirq, hwirq); 1639 1640 return ret; 1641 } 1642 1643 static unsigned int gpiochip_child_offset_to_irq_noop(struct gpio_chip *gc, 1644 unsigned int offset) 1645 { 1646 return offset; 1647 } 1648 1649 /** 1650 * gpiochip_irq_domain_activate() - Lock a GPIO to be used as an IRQ 1651 * @domain: The IRQ domain used by this IRQ chip 1652 * @data: Outermost irq_data associated with the IRQ 1653 * @reserve: If set, only reserve an interrupt vector instead of assigning one 1654 * 1655 * This function is a wrapper that calls gpiochip_lock_as_irq() and is to be 1656 * used as the activate function for the &struct irq_domain_ops. The host_data 1657 * for the IRQ domain must be the &struct gpio_chip. 1658 * 1659 * Returns: 1660 * 0 on success, or negative errno on failure. 1661 */ 1662 static int gpiochip_irq_domain_activate(struct irq_domain *domain, 1663 struct irq_data *data, bool reserve) 1664 { 1665 struct gpio_chip *gc = domain->host_data; 1666 unsigned int hwirq = irqd_to_hwirq(data); 1667 1668 return gpiochip_lock_as_irq(gc, hwirq); 1669 } 1670 1671 /** 1672 * gpiochip_irq_domain_deactivate() - Unlock a GPIO used as an IRQ 1673 * @domain: The IRQ domain used by this IRQ chip 1674 * @data: Outermost irq_data associated with the IRQ 1675 * 1676 * This function is a wrapper that will call gpiochip_unlock_as_irq() and is to 1677 * be used as the deactivate function for the &struct irq_domain_ops. The 1678 * host_data for the IRQ domain must be the &struct gpio_chip. 1679 */ 1680 static void gpiochip_irq_domain_deactivate(struct irq_domain *domain, 1681 struct irq_data *data) 1682 { 1683 struct gpio_chip *gc = domain->host_data; 1684 unsigned int hwirq = irqd_to_hwirq(data); 1685 1686 return gpiochip_unlock_as_irq(gc, hwirq); 1687 } 1688 1689 static void gpiochip_hierarchy_setup_domain_ops(struct irq_domain_ops *ops) 1690 { 1691 ops->activate = gpiochip_irq_domain_activate; 1692 ops->deactivate = gpiochip_irq_domain_deactivate; 1693 ops->alloc = gpiochip_hierarchy_irq_domain_alloc; 1694 1695 /* 1696 * We only allow overriding the translate() and free() functions for 1697 * hierarchical chips, and this should only be done if the user 1698 * really need something other than 1:1 translation for translate() 1699 * callback and free if user wants to free up any resources which 1700 * were allocated during callbacks, for example populate_parent_alloc_arg. 1701 */ 1702 if (!ops->translate) 1703 ops->translate = gpiochip_hierarchy_irq_domain_translate; 1704 if (!ops->free) 1705 ops->free = irq_domain_free_irqs_common; 1706 } 1707 1708 static struct irq_domain *gpiochip_hierarchy_create_domain(struct gpio_chip *gc) 1709 { 1710 struct irq_domain *domain; 1711 1712 if (!gc->irq.child_to_parent_hwirq || 1713 !gc->irq.fwnode) { 1714 chip_err(gc, "missing irqdomain vital data\n"); 1715 return ERR_PTR(-EINVAL); 1716 } 1717 1718 if (!gc->irq.child_offset_to_irq) 1719 gc->irq.child_offset_to_irq = gpiochip_child_offset_to_irq_noop; 1720 1721 if (!gc->irq.populate_parent_alloc_arg) 1722 gc->irq.populate_parent_alloc_arg = 1723 gpiochip_populate_parent_fwspec_twocell; 1724 1725 gpiochip_hierarchy_setup_domain_ops(&gc->irq.child_irq_domain_ops); 1726 1727 domain = irq_domain_create_hierarchy( 1728 gc->irq.parent_domain, 1729 0, 1730 gc->ngpio, 1731 gc->irq.fwnode, 1732 &gc->irq.child_irq_domain_ops, 1733 gc); 1734 1735 if (!domain) 1736 return ERR_PTR(-ENOMEM); 1737 1738 gpiochip_set_hierarchical_irqchip(gc, gc->irq.chip); 1739 1740 return domain; 1741 } 1742 1743 static bool gpiochip_hierarchy_is_hierarchical(struct gpio_chip *gc) 1744 { 1745 return !!gc->irq.parent_domain; 1746 } 1747 1748 int gpiochip_populate_parent_fwspec_twocell(struct gpio_chip *gc, 1749 union gpio_irq_fwspec *gfwspec, 1750 unsigned int parent_hwirq, 1751 unsigned int parent_type) 1752 { 1753 struct irq_fwspec *fwspec = &gfwspec->fwspec; 1754 1755 fwspec->fwnode = gc->irq.parent_domain->fwnode; 1756 fwspec->param_count = 2; 1757 fwspec->param[0] = parent_hwirq; 1758 fwspec->param[1] = parent_type; 1759 1760 return 0; 1761 } 1762 EXPORT_SYMBOL_GPL(gpiochip_populate_parent_fwspec_twocell); 1763 1764 int gpiochip_populate_parent_fwspec_fourcell(struct gpio_chip *gc, 1765 union gpio_irq_fwspec *gfwspec, 1766 unsigned int parent_hwirq, 1767 unsigned int parent_type) 1768 { 1769 struct irq_fwspec *fwspec = &gfwspec->fwspec; 1770 1771 fwspec->fwnode = gc->irq.parent_domain->fwnode; 1772 fwspec->param_count = 4; 1773 fwspec->param[0] = 0; 1774 fwspec->param[1] = parent_hwirq; 1775 fwspec->param[2] = 0; 1776 fwspec->param[3] = parent_type; 1777 1778 return 0; 1779 } 1780 EXPORT_SYMBOL_GPL(gpiochip_populate_parent_fwspec_fourcell); 1781 1782 #else 1783 1784 static struct irq_domain *gpiochip_hierarchy_create_domain(struct gpio_chip *gc) 1785 { 1786 return ERR_PTR(-EINVAL); 1787 } 1788 1789 static bool gpiochip_hierarchy_is_hierarchical(struct gpio_chip *gc) 1790 { 1791 return false; 1792 } 1793 1794 #endif /* CONFIG_IRQ_DOMAIN_HIERARCHY */ 1795 1796 /** 1797 * gpiochip_irq_map() - maps an IRQ into a GPIO irqchip 1798 * @d: the irqdomain used by this irqchip 1799 * @irq: the global irq number used by this GPIO irqchip irq 1800 * @hwirq: the local IRQ/GPIO line offset on this gpiochip 1801 * 1802 * This function will set up the mapping for a certain IRQ line on a 1803 * gpiochip by assigning the gpiochip as chip data, and using the irqchip 1804 * stored inside the gpiochip. 1805 * 1806 * Returns: 1807 * 0 on success, or negative errno on failure. 1808 */ 1809 static int gpiochip_irq_map(struct irq_domain *d, unsigned int irq, 1810 irq_hw_number_t hwirq) 1811 { 1812 struct gpio_chip *gc = d->host_data; 1813 int ret = 0; 1814 1815 if (!gpiochip_irqchip_irq_valid(gc, hwirq)) 1816 return -ENXIO; 1817 1818 irq_set_chip_data(irq, gc); 1819 /* 1820 * This lock class tells lockdep that GPIO irqs are in a different 1821 * category than their parents, so it won't report false recursion. 1822 */ 1823 irq_set_lockdep_class(irq, gc->irq.lock_key, gc->irq.request_key); 1824 irq_set_chip_and_handler(irq, gc->irq.chip, gc->irq.handler); 1825 /* Chips that use nested thread handlers have them marked */ 1826 if (gc->irq.threaded) 1827 irq_set_nested_thread(irq, 1); 1828 irq_set_noprobe(irq); 1829 1830 if (gc->irq.num_parents == 1) 1831 ret = irq_set_parent(irq, gc->irq.parents[0]); 1832 else if (gc->irq.map) 1833 ret = irq_set_parent(irq, gc->irq.map[hwirq]); 1834 1835 if (ret < 0) 1836 return ret; 1837 1838 /* 1839 * No set-up of the hardware will happen if IRQ_TYPE_NONE 1840 * is passed as default type. 1841 */ 1842 if (gc->irq.default_type != IRQ_TYPE_NONE) 1843 irq_set_irq_type(irq, gc->irq.default_type); 1844 1845 return 0; 1846 } 1847 1848 static void gpiochip_irq_unmap(struct irq_domain *d, unsigned int irq) 1849 { 1850 struct gpio_chip *gc = d->host_data; 1851 1852 if (gc->irq.threaded) 1853 irq_set_nested_thread(irq, 0); 1854 irq_set_chip_and_handler(irq, NULL, NULL); 1855 irq_set_chip_data(irq, NULL); 1856 } 1857 1858 static int gpiochip_irq_select(struct irq_domain *d, struct irq_fwspec *fwspec, 1859 enum irq_domain_bus_token bus_token) 1860 { 1861 struct fwnode_handle *fwnode = fwspec->fwnode; 1862 struct gpio_chip *gc = d->host_data; 1863 unsigned int index = fwspec->param[0]; 1864 1865 if (fwspec->param_count == 3 && is_of_node(fwnode)) 1866 return of_gpiochip_instance_match(gc, index); 1867 1868 /* Fallback for twocells */ 1869 return (fwnode && (d->fwnode == fwnode) && (d->bus_token == bus_token)); 1870 } 1871 1872 static const struct irq_domain_ops gpiochip_domain_ops = { 1873 .map = gpiochip_irq_map, 1874 .unmap = gpiochip_irq_unmap, 1875 .select = gpiochip_irq_select, 1876 /* Virtually all GPIO irqchips are twocell:ed */ 1877 .xlate = irq_domain_xlate_twothreecell, 1878 }; 1879 1880 static struct irq_domain *gpiochip_simple_create_domain(struct gpio_chip *gc) 1881 { 1882 struct fwnode_handle *fwnode = dev_fwnode(&gc->gpiodev->dev); 1883 struct irq_domain *domain; 1884 1885 domain = irq_domain_create_simple(fwnode, gc->ngpio, gc->irq.first, 1886 &gpiochip_domain_ops, gc); 1887 if (!domain) 1888 return ERR_PTR(-EINVAL); 1889 1890 return domain; 1891 } 1892 1893 static int gpiochip_to_irq(struct gpio_chip *gc, unsigned int offset) 1894 { 1895 struct irq_domain *domain = gc->irq.domain; 1896 1897 /* 1898 * Avoid race condition with other code, which tries to lookup 1899 * an IRQ before the irqchip has been properly registered, 1900 * i.e. while gpiochip is still being brought up. 1901 */ 1902 if (!gc->irq.initialized) 1903 return -EPROBE_DEFER; 1904 1905 if (!gpiochip_irqchip_irq_valid(gc, offset)) 1906 return -ENXIO; 1907 1908 #ifdef CONFIG_IRQ_DOMAIN_HIERARCHY 1909 if (irq_domain_is_hierarchy(domain)) { 1910 struct irq_fwspec spec; 1911 1912 spec.fwnode = domain->fwnode; 1913 spec.param_count = 2; 1914 spec.param[0] = gc->irq.child_offset_to_irq(gc, offset); 1915 spec.param[1] = IRQ_TYPE_NONE; 1916 1917 return irq_create_fwspec_mapping(&spec); 1918 } 1919 #endif 1920 1921 return irq_create_mapping(domain, offset); 1922 } 1923 1924 int gpiochip_irq_reqres(struct irq_data *d) 1925 { 1926 struct gpio_chip *gc = irq_data_get_irq_chip_data(d); 1927 unsigned int hwirq = irqd_to_hwirq(d); 1928 1929 return gpiochip_reqres_irq(gc, hwirq); 1930 } 1931 EXPORT_SYMBOL(gpiochip_irq_reqres); 1932 1933 void gpiochip_irq_relres(struct irq_data *d) 1934 { 1935 struct gpio_chip *gc = irq_data_get_irq_chip_data(d); 1936 unsigned int hwirq = irqd_to_hwirq(d); 1937 1938 gpiochip_relres_irq(gc, hwirq); 1939 } 1940 EXPORT_SYMBOL(gpiochip_irq_relres); 1941 1942 static void gpiochip_irq_mask(struct irq_data *d) 1943 { 1944 struct gpio_chip *gc = irq_data_get_irq_chip_data(d); 1945 unsigned int hwirq = irqd_to_hwirq(d); 1946 1947 if (gc->irq.irq_mask) 1948 gc->irq.irq_mask(d); 1949 gpiochip_disable_irq(gc, hwirq); 1950 } 1951 1952 static void gpiochip_irq_unmask(struct irq_data *d) 1953 { 1954 struct gpio_chip *gc = irq_data_get_irq_chip_data(d); 1955 unsigned int hwirq = irqd_to_hwirq(d); 1956 1957 gpiochip_enable_irq(gc, hwirq); 1958 if (gc->irq.irq_unmask) 1959 gc->irq.irq_unmask(d); 1960 } 1961 1962 static void gpiochip_irq_enable(struct irq_data *d) 1963 { 1964 struct gpio_chip *gc = irq_data_get_irq_chip_data(d); 1965 unsigned int hwirq = irqd_to_hwirq(d); 1966 1967 gpiochip_enable_irq(gc, hwirq); 1968 gc->irq.irq_enable(d); 1969 } 1970 1971 static void gpiochip_irq_disable(struct irq_data *d) 1972 { 1973 struct gpio_chip *gc = irq_data_get_irq_chip_data(d); 1974 unsigned int hwirq = irqd_to_hwirq(d); 1975 1976 gc->irq.irq_disable(d); 1977 gpiochip_disable_irq(gc, hwirq); 1978 } 1979 1980 static void gpiochip_set_irq_hooks(struct gpio_chip *gc) 1981 { 1982 struct irq_chip *irqchip = gc->irq.chip; 1983 1984 if (irqchip->flags & IRQCHIP_IMMUTABLE) 1985 return; 1986 1987 chip_warn(gc, "not an immutable chip, please consider fixing it!\n"); 1988 1989 if (!irqchip->irq_request_resources && 1990 !irqchip->irq_release_resources) { 1991 irqchip->irq_request_resources = gpiochip_irq_reqres; 1992 irqchip->irq_release_resources = gpiochip_irq_relres; 1993 } 1994 if (WARN_ON(gc->irq.irq_enable)) 1995 return; 1996 /* Check if the irqchip already has this hook... */ 1997 if (irqchip->irq_enable == gpiochip_irq_enable || 1998 irqchip->irq_mask == gpiochip_irq_mask) { 1999 /* 2000 * ...and if so, give a gentle warning that this is bad 2001 * practice. 2002 */ 2003 chip_info(gc, 2004 "detected irqchip that is shared with multiple gpiochips: please fix the driver.\n"); 2005 return; 2006 } 2007 2008 if (irqchip->irq_disable) { 2009 gc->irq.irq_disable = irqchip->irq_disable; 2010 irqchip->irq_disable = gpiochip_irq_disable; 2011 } else { 2012 gc->irq.irq_mask = irqchip->irq_mask; 2013 irqchip->irq_mask = gpiochip_irq_mask; 2014 } 2015 2016 if (irqchip->irq_enable) { 2017 gc->irq.irq_enable = irqchip->irq_enable; 2018 irqchip->irq_enable = gpiochip_irq_enable; 2019 } else { 2020 gc->irq.irq_unmask = irqchip->irq_unmask; 2021 irqchip->irq_unmask = gpiochip_irq_unmask; 2022 } 2023 } 2024 2025 static int gpiochip_irqchip_add_allocated_domain(struct gpio_chip *gc, 2026 struct irq_domain *domain, 2027 bool allocated_externally) 2028 { 2029 if (!domain) 2030 return -EINVAL; 2031 2032 if (gc->to_irq) 2033 chip_warn(gc, "to_irq is redefined in %s and you shouldn't rely on it\n", __func__); 2034 2035 gc->to_irq = gpiochip_to_irq; 2036 gc->irq.domain = domain; 2037 gc->irq.domain_is_allocated_externally = allocated_externally; 2038 2039 /* 2040 * Using barrier() here to prevent compiler from reordering 2041 * gc->irq.initialized before adding irqdomain. 2042 */ 2043 barrier(); 2044 2045 gc->irq.initialized = true; 2046 2047 return 0; 2048 } 2049 2050 /** 2051 * gpiochip_add_irqchip() - adds an IRQ chip to a GPIO chip 2052 * @gc: the GPIO chip to add the IRQ chip to 2053 * @lock_key: lockdep class for IRQ lock 2054 * @request_key: lockdep class for IRQ request 2055 * 2056 * Returns: 2057 * 0 on success, or a negative errno on failure. 2058 */ 2059 static int gpiochip_add_irqchip(struct gpio_chip *gc, 2060 struct lock_class_key *lock_key, 2061 struct lock_class_key *request_key) 2062 { 2063 struct fwnode_handle *fwnode = dev_fwnode(&gc->gpiodev->dev); 2064 struct irq_chip *irqchip = gc->irq.chip; 2065 struct irq_domain *domain; 2066 unsigned int type; 2067 unsigned int i; 2068 int ret; 2069 2070 if (!irqchip) 2071 return 0; 2072 2073 if (gc->irq.parent_handler && gc->can_sleep) { 2074 chip_err(gc, "you cannot have chained interrupts on a chip that may sleep\n"); 2075 return -EINVAL; 2076 } 2077 2078 type = gc->irq.default_type; 2079 2080 /* 2081 * Specifying a default trigger is a terrible idea if DT or ACPI is 2082 * used to configure the interrupts, as you may end up with 2083 * conflicting triggers. Tell the user, and reset to NONE. 2084 */ 2085 if (WARN(fwnode && type != IRQ_TYPE_NONE, 2086 "%pfw: Ignoring %u default trigger\n", fwnode, type)) 2087 type = IRQ_TYPE_NONE; 2088 2089 gc->irq.default_type = type; 2090 gc->irq.lock_key = lock_key; 2091 gc->irq.request_key = request_key; 2092 2093 /* If a parent irqdomain is provided, let's build a hierarchy */ 2094 if (gpiochip_hierarchy_is_hierarchical(gc)) { 2095 domain = gpiochip_hierarchy_create_domain(gc); 2096 } else { 2097 domain = gpiochip_simple_create_domain(gc); 2098 } 2099 if (IS_ERR(domain)) 2100 return PTR_ERR(domain); 2101 2102 if (gc->irq.parent_handler) { 2103 for (i = 0; i < gc->irq.num_parents; i++) { 2104 void *data; 2105 2106 if (gc->irq.per_parent_data) 2107 data = gc->irq.parent_handler_data_array[i]; 2108 else 2109 data = gc->irq.parent_handler_data ?: gc; 2110 2111 /* 2112 * The parent IRQ chip is already using the chip_data 2113 * for this IRQ chip, so our callbacks simply use the 2114 * handler_data. 2115 */ 2116 irq_set_chained_handler_and_data(gc->irq.parents[i], 2117 gc->irq.parent_handler, 2118 data); 2119 } 2120 } 2121 2122 gpiochip_set_irq_hooks(gc); 2123 2124 ret = gpiochip_irqchip_add_allocated_domain(gc, domain, false); 2125 if (ret) 2126 return ret; 2127 2128 acpi_gpiochip_request_interrupts(gc); 2129 2130 return 0; 2131 } 2132 2133 /** 2134 * gpiochip_irqchip_remove() - removes an irqchip added to a gpiochip 2135 * @gc: the gpiochip to remove the irqchip from 2136 * 2137 * This is called only from gpiochip_remove() 2138 */ 2139 static void gpiochip_irqchip_remove(struct gpio_chip *gc) 2140 { 2141 struct irq_chip *irqchip = gc->irq.chip; 2142 unsigned int offset; 2143 2144 acpi_gpiochip_free_interrupts(gc); 2145 2146 if (irqchip && gc->irq.parent_handler) { 2147 struct gpio_irq_chip *irq = &gc->irq; 2148 unsigned int i; 2149 2150 for (i = 0; i < irq->num_parents; i++) 2151 irq_set_chained_handler_and_data(irq->parents[i], 2152 NULL, NULL); 2153 } 2154 2155 /* Remove all IRQ mappings and delete the domain */ 2156 if (!gc->irq.domain_is_allocated_externally && gc->irq.domain) { 2157 unsigned int irq; 2158 2159 for (offset = 0; offset < gc->ngpio; offset++) { 2160 if (!gpiochip_irqchip_irq_valid(gc, offset)) 2161 continue; 2162 2163 irq = irq_find_mapping(gc->irq.domain, offset); 2164 irq_dispose_mapping(irq); 2165 } 2166 2167 irq_domain_remove(gc->irq.domain); 2168 } 2169 2170 if (irqchip && !(irqchip->flags & IRQCHIP_IMMUTABLE)) { 2171 if (irqchip->irq_request_resources == gpiochip_irq_reqres) { 2172 irqchip->irq_request_resources = NULL; 2173 irqchip->irq_release_resources = NULL; 2174 } 2175 if (irqchip->irq_enable == gpiochip_irq_enable) { 2176 irqchip->irq_enable = gc->irq.irq_enable; 2177 irqchip->irq_disable = gc->irq.irq_disable; 2178 } 2179 } 2180 gc->irq.irq_enable = NULL; 2181 gc->irq.irq_disable = NULL; 2182 gc->irq.chip = NULL; 2183 2184 gpiochip_irqchip_free_valid_mask(gc); 2185 } 2186 2187 /** 2188 * gpiochip_irqchip_add_domain() - adds an irqdomain to a gpiochip 2189 * @gc: the gpiochip to add the irqchip to 2190 * @domain: the irqdomain to add to the gpiochip 2191 * 2192 * This function adds an IRQ domain to the gpiochip. 2193 * 2194 * Returns: 2195 * 0 on success, or negative errno on failure. 2196 */ 2197 int gpiochip_irqchip_add_domain(struct gpio_chip *gc, 2198 struct irq_domain *domain) 2199 { 2200 return gpiochip_irqchip_add_allocated_domain(gc, domain, true); 2201 } 2202 EXPORT_SYMBOL_GPL(gpiochip_irqchip_add_domain); 2203 2204 #else /* CONFIG_GPIOLIB_IRQCHIP */ 2205 2206 static inline int gpiochip_add_irqchip(struct gpio_chip *gc, 2207 struct lock_class_key *lock_key, 2208 struct lock_class_key *request_key) 2209 { 2210 return 0; 2211 } 2212 static void gpiochip_irqchip_remove(struct gpio_chip *gc) {} 2213 2214 static inline int gpiochip_irqchip_init_hw(struct gpio_chip *gc) 2215 { 2216 return 0; 2217 } 2218 2219 static inline int gpiochip_irqchip_init_valid_mask(struct gpio_chip *gc) 2220 { 2221 return 0; 2222 } 2223 static inline void gpiochip_irqchip_free_valid_mask(struct gpio_chip *gc) 2224 { } 2225 2226 #endif /* CONFIG_GPIOLIB_IRQCHIP */ 2227 2228 /** 2229 * gpiochip_generic_request() - request the gpio function for a pin 2230 * @gc: the gpiochip owning the GPIO 2231 * @offset: the offset of the GPIO to request for GPIO function 2232 * 2233 * Returns: 2234 * 0 on success, or negative errno on failure. 2235 */ 2236 int gpiochip_generic_request(struct gpio_chip *gc, unsigned int offset) 2237 { 2238 #ifdef CONFIG_PINCTRL 2239 if (list_empty(&gc->gpiodev->pin_ranges)) 2240 return 0; 2241 #endif 2242 2243 return pinctrl_gpio_request(gc, offset); 2244 } 2245 EXPORT_SYMBOL_GPL(gpiochip_generic_request); 2246 2247 /** 2248 * gpiochip_generic_free() - free the gpio function from a pin 2249 * @gc: the gpiochip to request the gpio function for 2250 * @offset: the offset of the GPIO to free from GPIO function 2251 */ 2252 void gpiochip_generic_free(struct gpio_chip *gc, unsigned int offset) 2253 { 2254 #ifdef CONFIG_PINCTRL 2255 if (list_empty(&gc->gpiodev->pin_ranges)) 2256 return; 2257 #endif 2258 2259 pinctrl_gpio_free(gc, offset); 2260 } 2261 EXPORT_SYMBOL_GPL(gpiochip_generic_free); 2262 2263 /** 2264 * gpiochip_generic_config() - apply configuration for a pin 2265 * @gc: the gpiochip owning the GPIO 2266 * @offset: the offset of the GPIO to apply the configuration 2267 * @config: the configuration to be applied 2268 * 2269 * Returns: 2270 * 0 on success, or negative errno on failure. 2271 */ 2272 int gpiochip_generic_config(struct gpio_chip *gc, unsigned int offset, 2273 unsigned long config) 2274 { 2275 #ifdef CONFIG_PINCTRL 2276 if (list_empty(&gc->gpiodev->pin_ranges)) 2277 return -ENOTSUPP; 2278 #endif 2279 2280 return pinctrl_gpio_set_config(gc, offset, config); 2281 } 2282 EXPORT_SYMBOL_GPL(gpiochip_generic_config); 2283 2284 #ifdef CONFIG_PINCTRL 2285 2286 /** 2287 * gpiochip_add_pingroup_range() - add a range for GPIO <-> pin mapping 2288 * @gc: the gpiochip to add the range for 2289 * @pctldev: the pin controller to map to 2290 * @gpio_offset: the start offset in the current gpio_chip number space 2291 * @pin_group: name of the pin group inside the pin controller 2292 * 2293 * Calling this function directly from a DeviceTree-supported 2294 * pinctrl driver is DEPRECATED. Please see Section 2.1 of 2295 * Documentation/devicetree/bindings/gpio/gpio.txt on how to 2296 * bind pinctrl and gpio drivers via the "gpio-ranges" property. 2297 * 2298 * Returns: 2299 * 0 on success, or negative errno on failure. 2300 */ 2301 int gpiochip_add_pingroup_range(struct gpio_chip *gc, 2302 struct pinctrl_dev *pctldev, 2303 unsigned int gpio_offset, const char *pin_group) 2304 { 2305 struct gpio_pin_range *pin_range; 2306 struct gpio_device *gdev = gc->gpiodev; 2307 int ret; 2308 2309 pin_range = kzalloc(sizeof(*pin_range), GFP_KERNEL); 2310 if (!pin_range) { 2311 chip_err(gc, "failed to allocate pin ranges\n"); 2312 return -ENOMEM; 2313 } 2314 2315 /* Use local offset as range ID */ 2316 pin_range->range.id = gpio_offset; 2317 pin_range->range.gc = gc; 2318 pin_range->range.name = gc->label; 2319 pin_range->range.base = gdev->base + gpio_offset; 2320 pin_range->pctldev = pctldev; 2321 2322 ret = pinctrl_get_group_pins(pctldev, pin_group, 2323 &pin_range->range.pins, 2324 &pin_range->range.npins); 2325 if (ret < 0) { 2326 kfree(pin_range); 2327 return ret; 2328 } 2329 2330 pinctrl_add_gpio_range(pctldev, &pin_range->range); 2331 2332 chip_dbg(gc, "created GPIO range %d->%d ==> %s PINGRP %s\n", 2333 gpio_offset, gpio_offset + pin_range->range.npins - 1, 2334 pinctrl_dev_get_devname(pctldev), pin_group); 2335 2336 list_add_tail(&pin_range->node, &gdev->pin_ranges); 2337 2338 return 0; 2339 } 2340 EXPORT_SYMBOL_GPL(gpiochip_add_pingroup_range); 2341 2342 /** 2343 * gpiochip_add_pin_range() - add a range for GPIO <-> pin mapping 2344 * @gc: the gpiochip to add the range for 2345 * @pinctl_name: the dev_name() of the pin controller to map to 2346 * @gpio_offset: the start offset in the current gpio_chip number space 2347 * @pin_offset: the start offset in the pin controller number space 2348 * @npins: the number of pins from the offset of each pin space (GPIO and 2349 * pin controller) to accumulate in this range 2350 * 2351 * Calling this function directly from a DeviceTree-supported 2352 * pinctrl driver is DEPRECATED. Please see Section 2.1 of 2353 * Documentation/devicetree/bindings/gpio/gpio.txt on how to 2354 * bind pinctrl and gpio drivers via the "gpio-ranges" property. 2355 * 2356 * Returns: 2357 * 0 on success, or a negative errno on failure. 2358 */ 2359 int gpiochip_add_pin_range(struct gpio_chip *gc, const char *pinctl_name, 2360 unsigned int gpio_offset, unsigned int pin_offset, 2361 unsigned int npins) 2362 { 2363 struct gpio_pin_range *pin_range; 2364 struct gpio_device *gdev = gc->gpiodev; 2365 int ret; 2366 2367 pin_range = kzalloc(sizeof(*pin_range), GFP_KERNEL); 2368 if (!pin_range) { 2369 chip_err(gc, "failed to allocate pin ranges\n"); 2370 return -ENOMEM; 2371 } 2372 2373 /* Use local offset as range ID */ 2374 pin_range->range.id = gpio_offset; 2375 pin_range->range.gc = gc; 2376 pin_range->range.name = gc->label; 2377 pin_range->range.base = gdev->base + gpio_offset; 2378 pin_range->range.pin_base = pin_offset; 2379 pin_range->range.npins = npins; 2380 pin_range->pctldev = pinctrl_find_and_add_gpio_range(pinctl_name, 2381 &pin_range->range); 2382 if (IS_ERR(pin_range->pctldev)) { 2383 ret = PTR_ERR(pin_range->pctldev); 2384 chip_err(gc, "could not create pin range\n"); 2385 kfree(pin_range); 2386 return ret; 2387 } 2388 chip_dbg(gc, "created GPIO range %d->%d ==> %s PIN %d->%d\n", 2389 gpio_offset, gpio_offset + npins - 1, 2390 pinctl_name, 2391 pin_offset, pin_offset + npins - 1); 2392 2393 list_add_tail(&pin_range->node, &gdev->pin_ranges); 2394 2395 return 0; 2396 } 2397 EXPORT_SYMBOL_GPL(gpiochip_add_pin_range); 2398 2399 /** 2400 * gpiochip_remove_pin_ranges() - remove all the GPIO <-> pin mappings 2401 * @gc: the chip to remove all the mappings for 2402 */ 2403 void gpiochip_remove_pin_ranges(struct gpio_chip *gc) 2404 { 2405 struct gpio_pin_range *pin_range, *tmp; 2406 struct gpio_device *gdev = gc->gpiodev; 2407 2408 list_for_each_entry_safe(pin_range, tmp, &gdev->pin_ranges, node) { 2409 list_del(&pin_range->node); 2410 pinctrl_remove_gpio_range(pin_range->pctldev, 2411 &pin_range->range); 2412 kfree(pin_range); 2413 } 2414 } 2415 EXPORT_SYMBOL_GPL(gpiochip_remove_pin_ranges); 2416 2417 #endif /* CONFIG_PINCTRL */ 2418 2419 /* These "optional" allocation calls help prevent drivers from stomping 2420 * on each other, and help provide better diagnostics in debugfs. 2421 * They're called even less than the "set direction" calls. 2422 */ 2423 static int gpiod_request_commit(struct gpio_desc *desc, const char *label) 2424 { 2425 unsigned int offset; 2426 int ret; 2427 2428 CLASS(gpio_chip_guard, guard)(desc); 2429 if (!guard.gc) 2430 return -ENODEV; 2431 2432 if (test_and_set_bit(FLAG_REQUESTED, &desc->flags)) 2433 return -EBUSY; 2434 2435 offset = gpio_chip_hwgpio(desc); 2436 if (!gpiochip_line_is_valid(guard.gc, offset)) 2437 return -EINVAL; 2438 2439 /* NOTE: gpio_request() can be called in early boot, 2440 * before IRQs are enabled, for non-sleeping (SOC) GPIOs. 2441 */ 2442 2443 if (guard.gc->request) { 2444 ret = guard.gc->request(guard.gc, offset); 2445 if (ret > 0) 2446 ret = -EBADE; 2447 if (ret) 2448 goto out_clear_bit; 2449 } 2450 2451 if (guard.gc->get_direction) 2452 gpiod_get_direction(desc); 2453 2454 ret = desc_set_label(desc, label ? : "?"); 2455 if (ret) 2456 goto out_clear_bit; 2457 2458 return 0; 2459 2460 out_clear_bit: 2461 clear_bit(FLAG_REQUESTED, &desc->flags); 2462 return ret; 2463 } 2464 2465 int gpiod_request(struct gpio_desc *desc, const char *label) 2466 { 2467 int ret = -EPROBE_DEFER; 2468 2469 VALIDATE_DESC(desc); 2470 2471 if (try_module_get(desc->gdev->owner)) { 2472 ret = gpiod_request_commit(desc, label); 2473 if (ret) 2474 module_put(desc->gdev->owner); 2475 else 2476 gpio_device_get(desc->gdev); 2477 } 2478 2479 if (ret) 2480 gpiod_dbg(desc, "%s: status %d\n", __func__, ret); 2481 2482 return ret; 2483 } 2484 2485 static void gpiod_free_commit(struct gpio_desc *desc) 2486 { 2487 unsigned long flags; 2488 2489 might_sleep(); 2490 2491 CLASS(gpio_chip_guard, guard)(desc); 2492 2493 flags = READ_ONCE(desc->flags); 2494 2495 if (guard.gc && test_bit(FLAG_REQUESTED, &flags)) { 2496 if (guard.gc->free) 2497 guard.gc->free(guard.gc, gpio_chip_hwgpio(desc)); 2498 2499 clear_bit(FLAG_ACTIVE_LOW, &flags); 2500 clear_bit(FLAG_REQUESTED, &flags); 2501 clear_bit(FLAG_OPEN_DRAIN, &flags); 2502 clear_bit(FLAG_OPEN_SOURCE, &flags); 2503 clear_bit(FLAG_PULL_UP, &flags); 2504 clear_bit(FLAG_PULL_DOWN, &flags); 2505 clear_bit(FLAG_BIAS_DISABLE, &flags); 2506 clear_bit(FLAG_EDGE_RISING, &flags); 2507 clear_bit(FLAG_EDGE_FALLING, &flags); 2508 clear_bit(FLAG_IS_HOGGED, &flags); 2509 #ifdef CONFIG_OF_DYNAMIC 2510 WRITE_ONCE(desc->hog, NULL); 2511 #endif 2512 desc_set_label(desc, NULL); 2513 WRITE_ONCE(desc->flags, flags); 2514 #ifdef CONFIG_GPIO_CDEV 2515 WRITE_ONCE(desc->debounce_period_us, 0); 2516 #endif 2517 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_RELEASED); 2518 } 2519 } 2520 2521 void gpiod_free(struct gpio_desc *desc) 2522 { 2523 VALIDATE_DESC_VOID(desc); 2524 2525 gpiod_free_commit(desc); 2526 module_put(desc->gdev->owner); 2527 gpio_device_put(desc->gdev); 2528 } 2529 2530 /** 2531 * gpiochip_dup_line_label - Get a copy of the consumer label. 2532 * @gc: GPIO chip controlling this line. 2533 * @offset: Hardware offset of the line. 2534 * 2535 * Returns: 2536 * Pointer to a copy of the consumer label if the line is requested or NULL 2537 * if it's not. If a valid pointer was returned, it must be freed using 2538 * kfree(). In case of a memory allocation error, the function returns %ENOMEM. 2539 * 2540 * Must not be called from atomic context. 2541 */ 2542 char *gpiochip_dup_line_label(struct gpio_chip *gc, unsigned int offset) 2543 { 2544 struct gpio_desc *desc; 2545 char *label; 2546 2547 desc = gpiochip_get_desc(gc, offset); 2548 if (IS_ERR(desc)) 2549 return NULL; 2550 2551 if (!test_bit(FLAG_REQUESTED, &desc->flags)) 2552 return NULL; 2553 2554 guard(srcu)(&desc->gdev->desc_srcu); 2555 2556 label = kstrdup(gpiod_get_label(desc), GFP_KERNEL); 2557 if (!label) 2558 return ERR_PTR(-ENOMEM); 2559 2560 return label; 2561 } 2562 EXPORT_SYMBOL_GPL(gpiochip_dup_line_label); 2563 2564 static inline const char *function_name_or_default(const char *con_id) 2565 { 2566 return con_id ?: "(default)"; 2567 } 2568 2569 /** 2570 * gpiochip_request_own_desc - Allow GPIO chip to request its own descriptor 2571 * @gc: GPIO chip 2572 * @hwnum: hardware number of the GPIO for which to request the descriptor 2573 * @label: label for the GPIO 2574 * @lflags: lookup flags for this GPIO or 0 if default, this can be used to 2575 * specify things like line inversion semantics with the machine flags 2576 * such as GPIO_OUT_LOW 2577 * @dflags: descriptor request flags for this GPIO or 0 if default, this 2578 * can be used to specify consumer semantics such as open drain 2579 * 2580 * Function allows GPIO chip drivers to request and use their own GPIO 2581 * descriptors via gpiolib API. Difference to gpiod_request() is that this 2582 * function will not increase reference count of the GPIO chip module. This 2583 * allows the GPIO chip module to be unloaded as needed (we assume that the 2584 * GPIO chip driver handles freeing the GPIOs it has requested). 2585 * 2586 * Returns: 2587 * A pointer to the GPIO descriptor, or an ERR_PTR()-encoded negative error 2588 * code on failure. 2589 */ 2590 struct gpio_desc *gpiochip_request_own_desc(struct gpio_chip *gc, 2591 unsigned int hwnum, 2592 const char *label, 2593 enum gpio_lookup_flags lflags, 2594 enum gpiod_flags dflags) 2595 { 2596 struct gpio_desc *desc = gpiochip_get_desc(gc, hwnum); 2597 const char *name = function_name_or_default(label); 2598 int ret; 2599 2600 if (IS_ERR(desc)) { 2601 chip_err(gc, "failed to get GPIO %s descriptor\n", name); 2602 return desc; 2603 } 2604 2605 ret = gpiod_request_commit(desc, label); 2606 if (ret < 0) 2607 return ERR_PTR(ret); 2608 2609 ret = gpiod_configure_flags(desc, label, lflags, dflags); 2610 if (ret) { 2611 gpiod_free_commit(desc); 2612 chip_err(gc, "setup of own GPIO %s failed\n", name); 2613 return ERR_PTR(ret); 2614 } 2615 2616 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_REQUESTED); 2617 2618 return desc; 2619 } 2620 EXPORT_SYMBOL_GPL(gpiochip_request_own_desc); 2621 2622 /** 2623 * gpiochip_free_own_desc - Free GPIO requested by the chip driver 2624 * @desc: GPIO descriptor to free 2625 * 2626 * Function frees the given GPIO requested previously with 2627 * gpiochip_request_own_desc(). 2628 */ 2629 void gpiochip_free_own_desc(struct gpio_desc *desc) 2630 { 2631 if (desc) 2632 gpiod_free_commit(desc); 2633 } 2634 EXPORT_SYMBOL_GPL(gpiochip_free_own_desc); 2635 2636 /* 2637 * Drivers MUST set GPIO direction before making get/set calls. In 2638 * some cases this is done in early boot, before IRQs are enabled. 2639 * 2640 * As a rule these aren't called more than once (except for drivers 2641 * using the open-drain emulation idiom) so these are natural places 2642 * to accumulate extra debugging checks. Note that we can't (yet) 2643 * rely on gpio_request() having been called beforehand. 2644 */ 2645 2646 int gpio_do_set_config(struct gpio_desc *desc, unsigned long config) 2647 { 2648 int ret; 2649 2650 CLASS(gpio_chip_guard, guard)(desc); 2651 if (!guard.gc) 2652 return -ENODEV; 2653 2654 if (!guard.gc->set_config) 2655 return -ENOTSUPP; 2656 2657 ret = guard.gc->set_config(guard.gc, gpio_chip_hwgpio(desc), config); 2658 if (ret > 0) 2659 ret = -EBADE; 2660 2661 #ifdef CONFIG_GPIO_CDEV 2662 /* 2663 * Special case - if we're setting debounce period, we need to store 2664 * it in the descriptor in case user-space wants to know it. 2665 */ 2666 if (!ret && pinconf_to_config_param(config) == PIN_CONFIG_INPUT_DEBOUNCE) 2667 WRITE_ONCE(desc->debounce_period_us, 2668 pinconf_to_config_argument(config)); 2669 #endif 2670 return ret; 2671 } 2672 2673 static int gpio_set_config_with_argument(struct gpio_desc *desc, 2674 enum pin_config_param mode, 2675 u32 argument) 2676 { 2677 unsigned long config; 2678 2679 config = pinconf_to_config_packed(mode, argument); 2680 return gpio_do_set_config(desc, config); 2681 } 2682 2683 static int gpio_set_config_with_argument_optional(struct gpio_desc *desc, 2684 enum pin_config_param mode, 2685 u32 argument) 2686 { 2687 struct device *dev = &desc->gdev->dev; 2688 int gpio = gpio_chip_hwgpio(desc); 2689 int ret; 2690 2691 ret = gpio_set_config_with_argument(desc, mode, argument); 2692 if (ret != -ENOTSUPP) 2693 return ret; 2694 2695 switch (mode) { 2696 case PIN_CONFIG_PERSIST_STATE: 2697 dev_dbg(dev, "Persistence not supported for GPIO %d\n", gpio); 2698 break; 2699 default: 2700 break; 2701 } 2702 2703 return 0; 2704 } 2705 2706 static int gpio_set_config(struct gpio_desc *desc, enum pin_config_param mode) 2707 { 2708 return gpio_set_config_with_argument(desc, mode, 0); 2709 } 2710 2711 static int gpio_set_bias(struct gpio_desc *desc) 2712 { 2713 enum pin_config_param bias; 2714 unsigned long flags; 2715 unsigned int arg; 2716 2717 flags = READ_ONCE(desc->flags); 2718 2719 if (test_bit(FLAG_BIAS_DISABLE, &flags)) 2720 bias = PIN_CONFIG_BIAS_DISABLE; 2721 else if (test_bit(FLAG_PULL_UP, &flags)) 2722 bias = PIN_CONFIG_BIAS_PULL_UP; 2723 else if (test_bit(FLAG_PULL_DOWN, &flags)) 2724 bias = PIN_CONFIG_BIAS_PULL_DOWN; 2725 else 2726 return 0; 2727 2728 switch (bias) { 2729 case PIN_CONFIG_BIAS_PULL_DOWN: 2730 case PIN_CONFIG_BIAS_PULL_UP: 2731 arg = 1; 2732 break; 2733 2734 default: 2735 arg = 0; 2736 break; 2737 } 2738 2739 return gpio_set_config_with_argument_optional(desc, bias, arg); 2740 } 2741 2742 /** 2743 * gpio_set_debounce_timeout() - Set debounce timeout 2744 * @desc: GPIO descriptor to set the debounce timeout 2745 * @debounce: Debounce timeout in microseconds 2746 * 2747 * The function calls the certain GPIO driver to set debounce timeout 2748 * in the hardware. 2749 * 2750 * Returns: 2751 * 0 on success, or negative errno on failure. 2752 */ 2753 int gpio_set_debounce_timeout(struct gpio_desc *desc, unsigned int debounce) 2754 { 2755 int ret; 2756 2757 ret = gpio_set_config_with_argument_optional(desc, 2758 PIN_CONFIG_INPUT_DEBOUNCE, 2759 debounce); 2760 if (!ret) 2761 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_CONFIG); 2762 2763 return ret; 2764 } 2765 2766 static int gpiochip_direction_input(struct gpio_chip *gc, unsigned int offset) 2767 { 2768 int ret; 2769 2770 lockdep_assert_held(&gc->gpiodev->srcu); 2771 2772 if (WARN_ON(!gc->direction_input)) 2773 return -EOPNOTSUPP; 2774 2775 ret = gc->direction_input(gc, offset); 2776 if (ret > 0) 2777 ret = -EBADE; 2778 2779 return ret; 2780 } 2781 2782 static int gpiochip_direction_output(struct gpio_chip *gc, unsigned int offset, 2783 int value) 2784 { 2785 int ret; 2786 2787 lockdep_assert_held(&gc->gpiodev->srcu); 2788 2789 if (WARN_ON(!gc->direction_output)) 2790 return -EOPNOTSUPP; 2791 2792 ret = gc->direction_output(gc, offset, value); 2793 if (ret > 0) 2794 ret = -EBADE; 2795 2796 return ret; 2797 } 2798 2799 /** 2800 * gpiod_direction_input - set the GPIO direction to input 2801 * @desc: GPIO to set to input 2802 * 2803 * Set the direction of the passed GPIO to input, such as gpiod_get_value() can 2804 * be called safely on it. 2805 * 2806 * Returns: 2807 * 0 on success, or negative errno on failure. 2808 */ 2809 int gpiod_direction_input(struct gpio_desc *desc) 2810 { 2811 int ret; 2812 2813 VALIDATE_DESC(desc); 2814 2815 ret = gpiod_direction_input_nonotify(desc); 2816 if (ret == 0) 2817 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_CONFIG); 2818 2819 return ret; 2820 } 2821 EXPORT_SYMBOL_GPL(gpiod_direction_input); 2822 2823 int gpiod_direction_input_nonotify(struct gpio_desc *desc) 2824 { 2825 int ret = 0, dir; 2826 2827 CLASS(gpio_chip_guard, guard)(desc); 2828 if (!guard.gc) 2829 return -ENODEV; 2830 2831 /* 2832 * It is legal to have no .get() and .direction_input() specified if 2833 * the chip is output-only, but you can't specify .direction_input() 2834 * and not support the .get() operation, that doesn't make sense. 2835 */ 2836 if (!guard.gc->get && guard.gc->direction_input) { 2837 gpiod_warn(desc, 2838 "%s: missing get() but have direction_input()\n", 2839 __func__); 2840 return -EIO; 2841 } 2842 2843 /* 2844 * If we have a .direction_input() callback, things are simple, 2845 * just call it. Else we are some input-only chip so try to check the 2846 * direction (if .get_direction() is supported) else we silently 2847 * assume we are in input mode after this. 2848 */ 2849 if (guard.gc->direction_input) { 2850 ret = gpiochip_direction_input(guard.gc, 2851 gpio_chip_hwgpio(desc)); 2852 } else if (guard.gc->get_direction) { 2853 dir = gpiochip_get_direction(guard.gc, gpio_chip_hwgpio(desc)); 2854 if (dir < 0) 2855 return dir; 2856 2857 if (dir != GPIO_LINE_DIRECTION_IN) { 2858 gpiod_warn(desc, 2859 "%s: missing direction_input() operation and line is output\n", 2860 __func__); 2861 return -EIO; 2862 } 2863 } 2864 if (ret == 0) { 2865 clear_bit(FLAG_IS_OUT, &desc->flags); 2866 ret = gpio_set_bias(desc); 2867 } 2868 2869 trace_gpio_direction(desc_to_gpio(desc), 1, ret); 2870 2871 return ret; 2872 } 2873 2874 static int gpiochip_set(struct gpio_chip *gc, unsigned int offset, int value) 2875 { 2876 int ret; 2877 2878 lockdep_assert_held(&gc->gpiodev->srcu); 2879 2880 if (WARN_ON(unlikely(!gc->set && !gc->set_rv))) 2881 return -EOPNOTSUPP; 2882 2883 if (gc->set_rv) { 2884 ret = gc->set_rv(gc, offset, value); 2885 if (ret > 0) 2886 ret = -EBADE; 2887 2888 return ret; 2889 } 2890 2891 gc->set(gc, offset, value); 2892 return 0; 2893 } 2894 2895 static int gpiod_direction_output_raw_commit(struct gpio_desc *desc, int value) 2896 { 2897 int val = !!value, ret = 0, dir; 2898 2899 CLASS(gpio_chip_guard, guard)(desc); 2900 if (!guard.gc) 2901 return -ENODEV; 2902 2903 /* 2904 * It's OK not to specify .direction_output() if the gpiochip is 2905 * output-only, but if there is then not even a .set() operation it 2906 * is pretty tricky to drive the output line. 2907 */ 2908 if (!guard.gc->set && !guard.gc->set_rv && !guard.gc->direction_output) { 2909 gpiod_warn(desc, 2910 "%s: missing set() and direction_output() operations\n", 2911 __func__); 2912 return -EIO; 2913 } 2914 2915 if (guard.gc->direction_output) { 2916 ret = gpiochip_direction_output(guard.gc, 2917 gpio_chip_hwgpio(desc), val); 2918 } else { 2919 /* Check that we are in output mode if we can */ 2920 if (guard.gc->get_direction) { 2921 dir = gpiochip_get_direction(guard.gc, 2922 gpio_chip_hwgpio(desc)); 2923 if (dir < 0) 2924 return dir; 2925 2926 if (dir != GPIO_LINE_DIRECTION_OUT) { 2927 gpiod_warn(desc, 2928 "%s: missing direction_output() operation\n", 2929 __func__); 2930 return -EIO; 2931 } 2932 } 2933 /* 2934 * If we can't actively set the direction, we are some 2935 * output-only chip, so just drive the output as desired. 2936 */ 2937 ret = gpiochip_set(guard.gc, gpio_chip_hwgpio(desc), val); 2938 if (ret) 2939 return ret; 2940 } 2941 2942 if (!ret) 2943 set_bit(FLAG_IS_OUT, &desc->flags); 2944 trace_gpio_value(desc_to_gpio(desc), 0, val); 2945 trace_gpio_direction(desc_to_gpio(desc), 0, ret); 2946 return ret; 2947 } 2948 2949 /** 2950 * gpiod_direction_output_raw - set the GPIO direction to output 2951 * @desc: GPIO to set to output 2952 * @value: initial output value of the GPIO 2953 * 2954 * Set the direction of the passed GPIO to output, such as gpiod_set_value() can 2955 * be called safely on it. The initial value of the output must be specified 2956 * as raw value on the physical line without regard for the ACTIVE_LOW status. 2957 * 2958 * Returns: 2959 * 0 on success, or negative errno on failure. 2960 */ 2961 int gpiod_direction_output_raw(struct gpio_desc *desc, int value) 2962 { 2963 int ret; 2964 2965 VALIDATE_DESC(desc); 2966 2967 ret = gpiod_direction_output_raw_commit(desc, value); 2968 if (ret == 0) 2969 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_CONFIG); 2970 2971 return ret; 2972 } 2973 EXPORT_SYMBOL_GPL(gpiod_direction_output_raw); 2974 2975 /** 2976 * gpiod_direction_output - set the GPIO direction to output 2977 * @desc: GPIO to set to output 2978 * @value: initial output value of the GPIO 2979 * 2980 * Set the direction of the passed GPIO to output, such as gpiod_set_value() can 2981 * be called safely on it. The initial value of the output must be specified 2982 * as the logical value of the GPIO, i.e. taking its ACTIVE_LOW status into 2983 * account. 2984 * 2985 * Returns: 2986 * 0 on success, or negative errno on failure. 2987 */ 2988 int gpiod_direction_output(struct gpio_desc *desc, int value) 2989 { 2990 int ret; 2991 2992 VALIDATE_DESC(desc); 2993 2994 ret = gpiod_direction_output_nonotify(desc, value); 2995 if (ret == 0) 2996 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_CONFIG); 2997 2998 return ret; 2999 } 3000 EXPORT_SYMBOL_GPL(gpiod_direction_output); 3001 3002 int gpiod_direction_output_nonotify(struct gpio_desc *desc, int value) 3003 { 3004 unsigned long flags; 3005 int ret; 3006 3007 flags = READ_ONCE(desc->flags); 3008 3009 if (test_bit(FLAG_ACTIVE_LOW, &flags)) 3010 value = !value; 3011 else 3012 value = !!value; 3013 3014 /* GPIOs used for enabled IRQs shall not be set as output */ 3015 if (test_bit(FLAG_USED_AS_IRQ, &flags) && 3016 test_bit(FLAG_IRQ_IS_ENABLED, &flags)) { 3017 gpiod_err(desc, 3018 "%s: tried to set a GPIO tied to an IRQ as output\n", 3019 __func__); 3020 return -EIO; 3021 } 3022 3023 if (test_bit(FLAG_OPEN_DRAIN, &flags)) { 3024 /* First see if we can enable open drain in hardware */ 3025 ret = gpio_set_config(desc, PIN_CONFIG_DRIVE_OPEN_DRAIN); 3026 if (!ret) 3027 goto set_output_value; 3028 /* Emulate open drain by not actively driving the line high */ 3029 if (value) 3030 goto set_output_flag; 3031 } else if (test_bit(FLAG_OPEN_SOURCE, &flags)) { 3032 ret = gpio_set_config(desc, PIN_CONFIG_DRIVE_OPEN_SOURCE); 3033 if (!ret) 3034 goto set_output_value; 3035 /* Emulate open source by not actively driving the line low */ 3036 if (!value) 3037 goto set_output_flag; 3038 } else { 3039 gpio_set_config(desc, PIN_CONFIG_DRIVE_PUSH_PULL); 3040 } 3041 3042 set_output_value: 3043 ret = gpio_set_bias(desc); 3044 if (ret) 3045 return ret; 3046 return gpiod_direction_output_raw_commit(desc, value); 3047 3048 set_output_flag: 3049 ret = gpiod_direction_input_nonotify(desc); 3050 if (ret) 3051 return ret; 3052 /* 3053 * When emulating open-source or open-drain functionalities by not 3054 * actively driving the line (setting mode to input) we still need to 3055 * set the IS_OUT flag or otherwise we won't be able to set the line 3056 * value anymore. 3057 */ 3058 set_bit(FLAG_IS_OUT, &desc->flags); 3059 return 0; 3060 } 3061 3062 #if IS_ENABLED(CONFIG_HTE) 3063 /** 3064 * gpiod_enable_hw_timestamp_ns - Enable hardware timestamp in nanoseconds. 3065 * 3066 * @desc: GPIO to enable. 3067 * @flags: Flags related to GPIO edge. 3068 * 3069 * Returns: 3070 * 0 on success, or negative errno on failure. 3071 */ 3072 int gpiod_enable_hw_timestamp_ns(struct gpio_desc *desc, unsigned long flags) 3073 { 3074 int ret; 3075 3076 VALIDATE_DESC(desc); 3077 3078 CLASS(gpio_chip_guard, guard)(desc); 3079 if (!guard.gc) 3080 return -ENODEV; 3081 3082 if (!guard.gc->en_hw_timestamp) { 3083 gpiod_warn(desc, "%s: hw ts not supported\n", __func__); 3084 return -ENOTSUPP; 3085 } 3086 3087 ret = guard.gc->en_hw_timestamp(guard.gc, 3088 gpio_chip_hwgpio(desc), flags); 3089 if (ret) 3090 gpiod_warn(desc, "%s: hw ts request failed\n", __func__); 3091 3092 return ret; 3093 } 3094 EXPORT_SYMBOL_GPL(gpiod_enable_hw_timestamp_ns); 3095 3096 /** 3097 * gpiod_disable_hw_timestamp_ns - Disable hardware timestamp. 3098 * 3099 * @desc: GPIO to disable. 3100 * @flags: Flags related to GPIO edge, same value as used during enable call. 3101 * 3102 * Returns: 3103 * 0 on success, or negative errno on failure. 3104 */ 3105 int gpiod_disable_hw_timestamp_ns(struct gpio_desc *desc, unsigned long flags) 3106 { 3107 int ret; 3108 3109 VALIDATE_DESC(desc); 3110 3111 CLASS(gpio_chip_guard, guard)(desc); 3112 if (!guard.gc) 3113 return -ENODEV; 3114 3115 if (!guard.gc->dis_hw_timestamp) { 3116 gpiod_warn(desc, "%s: hw ts not supported\n", __func__); 3117 return -ENOTSUPP; 3118 } 3119 3120 ret = guard.gc->dis_hw_timestamp(guard.gc, gpio_chip_hwgpio(desc), 3121 flags); 3122 if (ret) 3123 gpiod_warn(desc, "%s: hw ts release failed\n", __func__); 3124 3125 return ret; 3126 } 3127 EXPORT_SYMBOL_GPL(gpiod_disable_hw_timestamp_ns); 3128 #endif /* CONFIG_HTE */ 3129 3130 /** 3131 * gpiod_set_config - sets @config for a GPIO 3132 * @desc: descriptor of the GPIO for which to set the configuration 3133 * @config: Same packed config format as generic pinconf 3134 * 3135 * Returns: 3136 * 0 on success, %-ENOTSUPP if the controller doesn't support setting the 3137 * configuration. 3138 */ 3139 int gpiod_set_config(struct gpio_desc *desc, unsigned long config) 3140 { 3141 int ret; 3142 3143 VALIDATE_DESC(desc); 3144 3145 ret = gpio_do_set_config(desc, config); 3146 if (!ret) { 3147 /* These are the only options we notify the userspace about. */ 3148 switch (pinconf_to_config_param(config)) { 3149 case PIN_CONFIG_BIAS_DISABLE: 3150 case PIN_CONFIG_BIAS_PULL_DOWN: 3151 case PIN_CONFIG_BIAS_PULL_UP: 3152 case PIN_CONFIG_DRIVE_OPEN_DRAIN: 3153 case PIN_CONFIG_DRIVE_OPEN_SOURCE: 3154 case PIN_CONFIG_DRIVE_PUSH_PULL: 3155 case PIN_CONFIG_INPUT_DEBOUNCE: 3156 gpiod_line_state_notify(desc, 3157 GPIO_V2_LINE_CHANGED_CONFIG); 3158 break; 3159 default: 3160 break; 3161 } 3162 } 3163 3164 return ret; 3165 } 3166 EXPORT_SYMBOL_GPL(gpiod_set_config); 3167 3168 /** 3169 * gpiod_set_debounce - sets @debounce time for a GPIO 3170 * @desc: descriptor of the GPIO for which to set debounce time 3171 * @debounce: debounce time in microseconds 3172 * 3173 * Returns: 3174 * 0 on success, %-ENOTSUPP if the controller doesn't support setting the 3175 * debounce time. 3176 */ 3177 int gpiod_set_debounce(struct gpio_desc *desc, unsigned int debounce) 3178 { 3179 unsigned long config; 3180 3181 config = pinconf_to_config_packed(PIN_CONFIG_INPUT_DEBOUNCE, debounce); 3182 return gpiod_set_config(desc, config); 3183 } 3184 EXPORT_SYMBOL_GPL(gpiod_set_debounce); 3185 3186 /** 3187 * gpiod_set_transitory - Lose or retain GPIO state on suspend or reset 3188 * @desc: descriptor of the GPIO for which to configure persistence 3189 * @transitory: True to lose state on suspend or reset, false for persistence 3190 * 3191 * Returns: 3192 * 0 on success, otherwise a negative error code. 3193 */ 3194 int gpiod_set_transitory(struct gpio_desc *desc, bool transitory) 3195 { 3196 VALIDATE_DESC(desc); 3197 /* 3198 * Handle FLAG_TRANSITORY first, enabling queries to gpiolib for 3199 * persistence state. 3200 */ 3201 assign_bit(FLAG_TRANSITORY, &desc->flags, transitory); 3202 3203 /* If the driver supports it, set the persistence state now */ 3204 return gpio_set_config_with_argument_optional(desc, 3205 PIN_CONFIG_PERSIST_STATE, 3206 !transitory); 3207 } 3208 3209 /** 3210 * gpiod_is_active_low - test whether a GPIO is active-low or not 3211 * @desc: the gpio descriptor to test 3212 * 3213 * Returns: 3214 * 1 if the GPIO is active-low, 0 otherwise. 3215 */ 3216 int gpiod_is_active_low(const struct gpio_desc *desc) 3217 { 3218 VALIDATE_DESC(desc); 3219 return test_bit(FLAG_ACTIVE_LOW, &desc->flags); 3220 } 3221 EXPORT_SYMBOL_GPL(gpiod_is_active_low); 3222 3223 /** 3224 * gpiod_toggle_active_low - toggle whether a GPIO is active-low or not 3225 * @desc: the gpio descriptor to change 3226 */ 3227 void gpiod_toggle_active_low(struct gpio_desc *desc) 3228 { 3229 VALIDATE_DESC_VOID(desc); 3230 change_bit(FLAG_ACTIVE_LOW, &desc->flags); 3231 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_CONFIG); 3232 } 3233 EXPORT_SYMBOL_GPL(gpiod_toggle_active_low); 3234 3235 static int gpiochip_get(struct gpio_chip *gc, unsigned int offset) 3236 { 3237 int ret; 3238 3239 lockdep_assert_held(&gc->gpiodev->srcu); 3240 3241 /* Make sure this is called after checking for gc->get(). */ 3242 ret = gc->get(gc, offset); 3243 if (ret > 1) 3244 ret = -EBADE; 3245 3246 return ret; 3247 } 3248 3249 static int gpio_chip_get_value(struct gpio_chip *gc, const struct gpio_desc *desc) 3250 { 3251 return gc->get ? gpiochip_get(gc, gpio_chip_hwgpio(desc)) : -EIO; 3252 } 3253 3254 /* I/O calls are only valid after configuration completed; the relevant 3255 * "is this a valid GPIO" error checks should already have been done. 3256 * 3257 * "Get" operations are often inlinable as reading a pin value register, 3258 * and masking the relevant bit in that register. 3259 * 3260 * When "set" operations are inlinable, they involve writing that mask to 3261 * one register to set a low value, or a different register to set it high. 3262 * Otherwise locking is needed, so there may be little value to inlining. 3263 * 3264 *------------------------------------------------------------------------ 3265 * 3266 * IMPORTANT!!! The hot paths -- get/set value -- assume that callers 3267 * have requested the GPIO. That can include implicit requesting by 3268 * a direction setting call. Marking a gpio as requested locks its chip 3269 * in memory, guaranteeing that these table lookups need no more locking 3270 * and that gpiochip_remove() will fail. 3271 * 3272 * REVISIT when debugging, consider adding some instrumentation to ensure 3273 * that the GPIO was actually requested. 3274 */ 3275 3276 static int gpiod_get_raw_value_commit(const struct gpio_desc *desc) 3277 { 3278 struct gpio_device *gdev; 3279 struct gpio_chip *gc; 3280 int value; 3281 3282 /* FIXME Unable to use gpio_chip_guard due to const desc. */ 3283 gdev = desc->gdev; 3284 3285 guard(srcu)(&gdev->srcu); 3286 3287 gc = srcu_dereference(gdev->chip, &gdev->srcu); 3288 if (!gc) 3289 return -ENODEV; 3290 3291 value = gpio_chip_get_value(gc, desc); 3292 value = value < 0 ? value : !!value; 3293 trace_gpio_value(desc_to_gpio(desc), 1, value); 3294 return value; 3295 } 3296 3297 static int gpio_chip_get_multiple(struct gpio_chip *gc, 3298 unsigned long *mask, unsigned long *bits) 3299 { 3300 int ret; 3301 3302 lockdep_assert_held(&gc->gpiodev->srcu); 3303 3304 if (gc->get_multiple) { 3305 ret = gc->get_multiple(gc, mask, bits); 3306 if (ret > 0) 3307 return -EBADE; 3308 } 3309 3310 if (gc->get) { 3311 int i, value; 3312 3313 for_each_set_bit(i, mask, gc->ngpio) { 3314 value = gpiochip_get(gc, i); 3315 if (value < 0) 3316 return value; 3317 __assign_bit(i, bits, value); 3318 } 3319 return 0; 3320 } 3321 return -EIO; 3322 } 3323 3324 /* The 'other' chip must be protected with its GPIO device's SRCU. */ 3325 static bool gpio_device_chip_cmp(struct gpio_device *gdev, struct gpio_chip *gc) 3326 { 3327 guard(srcu)(&gdev->srcu); 3328 3329 return gc == srcu_dereference(gdev->chip, &gdev->srcu); 3330 } 3331 3332 int gpiod_get_array_value_complex(bool raw, bool can_sleep, 3333 unsigned int array_size, 3334 struct gpio_desc **desc_array, 3335 struct gpio_array *array_info, 3336 unsigned long *value_bitmap) 3337 { 3338 struct gpio_chip *gc; 3339 int ret, i = 0; 3340 3341 /* 3342 * Validate array_info against desc_array and its size. 3343 * It should immediately follow desc_array if both 3344 * have been obtained from the same gpiod_get_array() call. 3345 */ 3346 if (array_info && array_info->desc == desc_array && 3347 array_size <= array_info->size && 3348 (void *)array_info == desc_array + array_info->size) { 3349 if (!can_sleep) 3350 WARN_ON(array_info->gdev->can_sleep); 3351 3352 guard(srcu)(&array_info->gdev->srcu); 3353 gc = srcu_dereference(array_info->gdev->chip, 3354 &array_info->gdev->srcu); 3355 if (!gc) 3356 return -ENODEV; 3357 3358 ret = gpio_chip_get_multiple(gc, array_info->get_mask, 3359 value_bitmap); 3360 if (ret) 3361 return ret; 3362 3363 if (!raw && !bitmap_empty(array_info->invert_mask, array_size)) 3364 bitmap_xor(value_bitmap, value_bitmap, 3365 array_info->invert_mask, array_size); 3366 3367 i = find_first_zero_bit(array_info->get_mask, array_size); 3368 if (i == array_size) 3369 return 0; 3370 } else { 3371 array_info = NULL; 3372 } 3373 3374 while (i < array_size) { 3375 DECLARE_BITMAP(fastpath_mask, FASTPATH_NGPIO); 3376 DECLARE_BITMAP(fastpath_bits, FASTPATH_NGPIO); 3377 unsigned long *mask, *bits; 3378 int first, j; 3379 3380 CLASS(gpio_chip_guard, guard)(desc_array[i]); 3381 if (!guard.gc) 3382 return -ENODEV; 3383 3384 if (likely(guard.gc->ngpio <= FASTPATH_NGPIO)) { 3385 mask = fastpath_mask; 3386 bits = fastpath_bits; 3387 } else { 3388 gfp_t flags = can_sleep ? GFP_KERNEL : GFP_ATOMIC; 3389 3390 mask = bitmap_alloc(guard.gc->ngpio, flags); 3391 if (!mask) 3392 return -ENOMEM; 3393 3394 bits = bitmap_alloc(guard.gc->ngpio, flags); 3395 if (!bits) { 3396 bitmap_free(mask); 3397 return -ENOMEM; 3398 } 3399 } 3400 3401 bitmap_zero(mask, guard.gc->ngpio); 3402 3403 if (!can_sleep) 3404 WARN_ON(guard.gc->can_sleep); 3405 3406 /* collect all inputs belonging to the same chip */ 3407 first = i; 3408 do { 3409 const struct gpio_desc *desc = desc_array[i]; 3410 int hwgpio = gpio_chip_hwgpio(desc); 3411 3412 __set_bit(hwgpio, mask); 3413 i++; 3414 3415 if (array_info) 3416 i = find_next_zero_bit(array_info->get_mask, 3417 array_size, i); 3418 } while ((i < array_size) && 3419 gpio_device_chip_cmp(desc_array[i]->gdev, guard.gc)); 3420 3421 ret = gpio_chip_get_multiple(guard.gc, mask, bits); 3422 if (ret) { 3423 if (mask != fastpath_mask) 3424 bitmap_free(mask); 3425 if (bits != fastpath_bits) 3426 bitmap_free(bits); 3427 return ret; 3428 } 3429 3430 for (j = first; j < i; ) { 3431 const struct gpio_desc *desc = desc_array[j]; 3432 int hwgpio = gpio_chip_hwgpio(desc); 3433 int value = test_bit(hwgpio, bits); 3434 3435 if (!raw && test_bit(FLAG_ACTIVE_LOW, &desc->flags)) 3436 value = !value; 3437 __assign_bit(j, value_bitmap, value); 3438 trace_gpio_value(desc_to_gpio(desc), 1, value); 3439 j++; 3440 3441 if (array_info) 3442 j = find_next_zero_bit(array_info->get_mask, i, 3443 j); 3444 } 3445 3446 if (mask != fastpath_mask) 3447 bitmap_free(mask); 3448 if (bits != fastpath_bits) 3449 bitmap_free(bits); 3450 } 3451 return 0; 3452 } 3453 3454 /** 3455 * gpiod_get_raw_value() - return a gpio's raw value 3456 * @desc: gpio whose value will be returned 3457 * 3458 * Returns: 3459 * The GPIO's raw value, i.e. the value of the physical line disregarding 3460 * its ACTIVE_LOW status, or negative errno on failure. 3461 * 3462 * This function can be called from contexts where we cannot sleep, and will 3463 * complain if the GPIO chip functions potentially sleep. 3464 */ 3465 int gpiod_get_raw_value(const struct gpio_desc *desc) 3466 { 3467 VALIDATE_DESC(desc); 3468 /* Should be using gpiod_get_raw_value_cansleep() */ 3469 WARN_ON(desc->gdev->can_sleep); 3470 return gpiod_get_raw_value_commit(desc); 3471 } 3472 EXPORT_SYMBOL_GPL(gpiod_get_raw_value); 3473 3474 /** 3475 * gpiod_get_value() - return a gpio's value 3476 * @desc: gpio whose value will be returned 3477 * 3478 * Returns: 3479 * The GPIO's logical value, i.e. taking the ACTIVE_LOW status into 3480 * account, or negative errno on failure. 3481 * 3482 * This function can be called from contexts where we cannot sleep, and will 3483 * complain if the GPIO chip functions potentially sleep. 3484 */ 3485 int gpiod_get_value(const struct gpio_desc *desc) 3486 { 3487 int value; 3488 3489 VALIDATE_DESC(desc); 3490 /* Should be using gpiod_get_value_cansleep() */ 3491 WARN_ON(desc->gdev->can_sleep); 3492 3493 value = gpiod_get_raw_value_commit(desc); 3494 if (value < 0) 3495 return value; 3496 3497 if (test_bit(FLAG_ACTIVE_LOW, &desc->flags)) 3498 value = !value; 3499 3500 return value; 3501 } 3502 EXPORT_SYMBOL_GPL(gpiod_get_value); 3503 3504 /** 3505 * gpiod_get_raw_array_value() - read raw values from an array of GPIOs 3506 * @array_size: number of elements in the descriptor array / value bitmap 3507 * @desc_array: array of GPIO descriptors whose values will be read 3508 * @array_info: information on applicability of fast bitmap processing path 3509 * @value_bitmap: bitmap to store the read values 3510 * 3511 * Read the raw values of the GPIOs, i.e. the values of the physical lines 3512 * without regard for their ACTIVE_LOW status. 3513 * 3514 * This function can be called from contexts where we cannot sleep, 3515 * and it will complain if the GPIO chip functions potentially sleep. 3516 * 3517 * Returns: 3518 * 0 on success, or negative errno on failure. 3519 */ 3520 int gpiod_get_raw_array_value(unsigned int array_size, 3521 struct gpio_desc **desc_array, 3522 struct gpio_array *array_info, 3523 unsigned long *value_bitmap) 3524 { 3525 if (!desc_array) 3526 return -EINVAL; 3527 return gpiod_get_array_value_complex(true, false, array_size, 3528 desc_array, array_info, 3529 value_bitmap); 3530 } 3531 EXPORT_SYMBOL_GPL(gpiod_get_raw_array_value); 3532 3533 /** 3534 * gpiod_get_array_value() - read values from an array of GPIOs 3535 * @array_size: number of elements in the descriptor array / value bitmap 3536 * @desc_array: array of GPIO descriptors whose values will be read 3537 * @array_info: information on applicability of fast bitmap processing path 3538 * @value_bitmap: bitmap to store the read values 3539 * 3540 * Read the logical values of the GPIOs, i.e. taking their ACTIVE_LOW status 3541 * into account. 3542 * 3543 * This function can be called from contexts where we cannot sleep, 3544 * and it will complain if the GPIO chip functions potentially sleep. 3545 * 3546 * Returns: 3547 * 0 on success, or negative errno on failure. 3548 */ 3549 int gpiod_get_array_value(unsigned int array_size, 3550 struct gpio_desc **desc_array, 3551 struct gpio_array *array_info, 3552 unsigned long *value_bitmap) 3553 { 3554 if (!desc_array) 3555 return -EINVAL; 3556 return gpiod_get_array_value_complex(false, false, array_size, 3557 desc_array, array_info, 3558 value_bitmap); 3559 } 3560 EXPORT_SYMBOL_GPL(gpiod_get_array_value); 3561 3562 /* 3563 * gpio_set_open_drain_value_commit() - Set the open drain gpio's value. 3564 * @desc: gpio descriptor whose state need to be set. 3565 * @value: Non-zero for setting it HIGH otherwise it will set to LOW. 3566 */ 3567 static int gpio_set_open_drain_value_commit(struct gpio_desc *desc, bool value) 3568 { 3569 int ret = 0, offset = gpio_chip_hwgpio(desc); 3570 3571 CLASS(gpio_chip_guard, guard)(desc); 3572 if (!guard.gc) 3573 return -ENODEV; 3574 3575 if (value) { 3576 ret = gpiochip_direction_input(guard.gc, offset); 3577 } else { 3578 ret = gpiochip_direction_output(guard.gc, offset, 0); 3579 if (!ret) 3580 set_bit(FLAG_IS_OUT, &desc->flags); 3581 } 3582 trace_gpio_direction(desc_to_gpio(desc), value, ret); 3583 if (ret < 0) 3584 gpiod_err(desc, 3585 "%s: Error in set_value for open drain err %d\n", 3586 __func__, ret); 3587 3588 return ret; 3589 } 3590 3591 /* 3592 * _gpio_set_open_source_value() - Set the open source gpio's value. 3593 * @desc: gpio descriptor whose state need to be set. 3594 * @value: Non-zero for setting it HIGH otherwise it will set to LOW. 3595 */ 3596 static int gpio_set_open_source_value_commit(struct gpio_desc *desc, bool value) 3597 { 3598 int ret = 0, offset = gpio_chip_hwgpio(desc); 3599 3600 CLASS(gpio_chip_guard, guard)(desc); 3601 if (!guard.gc) 3602 return -ENODEV; 3603 3604 if (value) { 3605 ret = gpiochip_direction_output(guard.gc, offset, 1); 3606 if (!ret) 3607 set_bit(FLAG_IS_OUT, &desc->flags); 3608 } else { 3609 ret = gpiochip_direction_input(guard.gc, offset); 3610 } 3611 trace_gpio_direction(desc_to_gpio(desc), !value, ret); 3612 if (ret < 0) 3613 gpiod_err(desc, 3614 "%s: Error in set_value for open source err %d\n", 3615 __func__, ret); 3616 3617 return ret; 3618 } 3619 3620 static int gpiod_set_raw_value_commit(struct gpio_desc *desc, bool value) 3621 { 3622 if (unlikely(!test_bit(FLAG_IS_OUT, &desc->flags))) 3623 return -EPERM; 3624 3625 CLASS(gpio_chip_guard, guard)(desc); 3626 if (!guard.gc) 3627 return -ENODEV; 3628 3629 trace_gpio_value(desc_to_gpio(desc), 0, value); 3630 return gpiochip_set(guard.gc, gpio_chip_hwgpio(desc), value); 3631 } 3632 3633 /* 3634 * set multiple outputs on the same chip; 3635 * use the chip's set_multiple function if available; 3636 * otherwise set the outputs sequentially; 3637 * @chip: the GPIO chip we operate on 3638 * @mask: bit mask array; one bit per output; BITS_PER_LONG bits per word 3639 * defines which outputs are to be changed 3640 * @bits: bit value array; one bit per output; BITS_PER_LONG bits per word 3641 * defines the values the outputs specified by mask are to be set to 3642 * 3643 * Returns: 0 on success, negative error number on failure. 3644 */ 3645 static int gpiochip_set_multiple(struct gpio_chip *gc, 3646 unsigned long *mask, unsigned long *bits) 3647 { 3648 unsigned int i; 3649 int ret; 3650 3651 lockdep_assert_held(&gc->gpiodev->srcu); 3652 3653 if (gc->set_multiple_rv) { 3654 ret = gc->set_multiple_rv(gc, mask, bits); 3655 if (ret > 0) 3656 ret = -EBADE; 3657 3658 return ret; 3659 } 3660 3661 if (gc->set_multiple) { 3662 gc->set_multiple(gc, mask, bits); 3663 return 0; 3664 } 3665 3666 /* set outputs if the corresponding mask bit is set */ 3667 for_each_set_bit(i, mask, gc->ngpio) { 3668 ret = gpiochip_set(gc, i, test_bit(i, bits)); 3669 if (ret) 3670 break; 3671 } 3672 3673 return ret; 3674 } 3675 3676 int gpiod_set_array_value_complex(bool raw, bool can_sleep, 3677 unsigned int array_size, 3678 struct gpio_desc **desc_array, 3679 struct gpio_array *array_info, 3680 unsigned long *value_bitmap) 3681 { 3682 struct gpio_chip *gc; 3683 int i = 0, ret; 3684 3685 /* 3686 * Validate array_info against desc_array and its size. 3687 * It should immediately follow desc_array if both 3688 * have been obtained from the same gpiod_get_array() call. 3689 */ 3690 if (array_info && array_info->desc == desc_array && 3691 array_size <= array_info->size && 3692 (void *)array_info == desc_array + array_info->size) { 3693 if (!can_sleep) 3694 WARN_ON(array_info->gdev->can_sleep); 3695 3696 for (i = 0; i < array_size; i++) { 3697 if (unlikely(!test_bit(FLAG_IS_OUT, 3698 &desc_array[i]->flags))) 3699 return -EPERM; 3700 } 3701 3702 guard(srcu)(&array_info->gdev->srcu); 3703 gc = srcu_dereference(array_info->gdev->chip, 3704 &array_info->gdev->srcu); 3705 if (!gc) 3706 return -ENODEV; 3707 3708 if (!raw && !bitmap_empty(array_info->invert_mask, array_size)) 3709 bitmap_xor(value_bitmap, value_bitmap, 3710 array_info->invert_mask, array_size); 3711 3712 ret = gpiochip_set_multiple(gc, array_info->set_mask, 3713 value_bitmap); 3714 if (ret) 3715 return ret; 3716 3717 i = find_first_zero_bit(array_info->set_mask, array_size); 3718 if (i == array_size) 3719 return 0; 3720 } else { 3721 array_info = NULL; 3722 } 3723 3724 while (i < array_size) { 3725 DECLARE_BITMAP(fastpath_mask, FASTPATH_NGPIO); 3726 DECLARE_BITMAP(fastpath_bits, FASTPATH_NGPIO); 3727 unsigned long *mask, *bits; 3728 int count = 0; 3729 3730 CLASS(gpio_chip_guard, guard)(desc_array[i]); 3731 if (!guard.gc) 3732 return -ENODEV; 3733 3734 if (likely(guard.gc->ngpio <= FASTPATH_NGPIO)) { 3735 mask = fastpath_mask; 3736 bits = fastpath_bits; 3737 } else { 3738 gfp_t flags = can_sleep ? GFP_KERNEL : GFP_ATOMIC; 3739 3740 mask = bitmap_alloc(guard.gc->ngpio, flags); 3741 if (!mask) 3742 return -ENOMEM; 3743 3744 bits = bitmap_alloc(guard.gc->ngpio, flags); 3745 if (!bits) { 3746 bitmap_free(mask); 3747 return -ENOMEM; 3748 } 3749 } 3750 3751 bitmap_zero(mask, guard.gc->ngpio); 3752 3753 if (!can_sleep) 3754 WARN_ON(guard.gc->can_sleep); 3755 3756 do { 3757 struct gpio_desc *desc = desc_array[i]; 3758 int hwgpio = gpio_chip_hwgpio(desc); 3759 int value = test_bit(i, value_bitmap); 3760 3761 if (unlikely(!test_bit(FLAG_IS_OUT, &desc->flags))) 3762 return -EPERM; 3763 3764 /* 3765 * Pins applicable for fast input but not for 3766 * fast output processing may have been already 3767 * inverted inside the fast path, skip them. 3768 */ 3769 if (!raw && !(array_info && 3770 test_bit(i, array_info->invert_mask)) && 3771 test_bit(FLAG_ACTIVE_LOW, &desc->flags)) 3772 value = !value; 3773 trace_gpio_value(desc_to_gpio(desc), 0, value); 3774 /* 3775 * collect all normal outputs belonging to the same chip 3776 * open drain and open source outputs are set individually 3777 */ 3778 if (test_bit(FLAG_OPEN_DRAIN, &desc->flags) && !raw) { 3779 gpio_set_open_drain_value_commit(desc, value); 3780 } else if (test_bit(FLAG_OPEN_SOURCE, &desc->flags) && !raw) { 3781 gpio_set_open_source_value_commit(desc, value); 3782 } else { 3783 __set_bit(hwgpio, mask); 3784 __assign_bit(hwgpio, bits, value); 3785 count++; 3786 } 3787 i++; 3788 3789 if (array_info) 3790 i = find_next_zero_bit(array_info->set_mask, 3791 array_size, i); 3792 } while ((i < array_size) && 3793 gpio_device_chip_cmp(desc_array[i]->gdev, guard.gc)); 3794 /* push collected bits to outputs */ 3795 if (count != 0) { 3796 ret = gpiochip_set_multiple(guard.gc, mask, bits); 3797 if (ret) 3798 return ret; 3799 } 3800 3801 if (mask != fastpath_mask) 3802 bitmap_free(mask); 3803 if (bits != fastpath_bits) 3804 bitmap_free(bits); 3805 } 3806 return 0; 3807 } 3808 3809 /** 3810 * gpiod_set_raw_value() - assign a gpio's raw value 3811 * @desc: gpio whose value will be assigned 3812 * @value: value to assign 3813 * 3814 * Set the raw value of the GPIO, i.e. the value of its physical line without 3815 * regard for its ACTIVE_LOW status. 3816 * 3817 * This function can be called from contexts where we cannot sleep, and will 3818 * complain if the GPIO chip functions potentially sleep. 3819 * 3820 * Returns: 3821 * 0 on success, negative error number on failure. 3822 */ 3823 int gpiod_set_raw_value(struct gpio_desc *desc, int value) 3824 { 3825 VALIDATE_DESC(desc); 3826 /* Should be using gpiod_set_raw_value_cansleep() */ 3827 WARN_ON(desc->gdev->can_sleep); 3828 return gpiod_set_raw_value_commit(desc, value); 3829 } 3830 EXPORT_SYMBOL_GPL(gpiod_set_raw_value); 3831 3832 /** 3833 * gpiod_set_value_nocheck() - set a GPIO line value without checking 3834 * @desc: the descriptor to set the value on 3835 * @value: value to set 3836 * 3837 * This sets the value of a GPIO line backing a descriptor, applying 3838 * different semantic quirks like active low and open drain/source 3839 * handling. 3840 * 3841 * Returns: 3842 * 0 on success, negative error number on failure. 3843 */ 3844 static int gpiod_set_value_nocheck(struct gpio_desc *desc, int value) 3845 { 3846 if (test_bit(FLAG_ACTIVE_LOW, &desc->flags)) 3847 value = !value; 3848 3849 if (test_bit(FLAG_OPEN_DRAIN, &desc->flags)) 3850 return gpio_set_open_drain_value_commit(desc, value); 3851 else if (test_bit(FLAG_OPEN_SOURCE, &desc->flags)) 3852 return gpio_set_open_source_value_commit(desc, value); 3853 3854 return gpiod_set_raw_value_commit(desc, value); 3855 } 3856 3857 /** 3858 * gpiod_set_value() - assign a gpio's value 3859 * @desc: gpio whose value will be assigned 3860 * @value: value to assign 3861 * 3862 * Set the logical value of the GPIO, i.e. taking its ACTIVE_LOW, 3863 * OPEN_DRAIN and OPEN_SOURCE flags into account. 3864 * 3865 * This function can be called from contexts where we cannot sleep, and will 3866 * complain if the GPIO chip functions potentially sleep. 3867 * 3868 * Returns: 3869 * 0 on success, negative error number on failure. 3870 */ 3871 int gpiod_set_value(struct gpio_desc *desc, int value) 3872 { 3873 VALIDATE_DESC(desc); 3874 /* Should be using gpiod_set_value_cansleep() */ 3875 WARN_ON(desc->gdev->can_sleep); 3876 return gpiod_set_value_nocheck(desc, value); 3877 } 3878 EXPORT_SYMBOL_GPL(gpiod_set_value); 3879 3880 /** 3881 * gpiod_set_raw_array_value() - assign values to an array of GPIOs 3882 * @array_size: number of elements in the descriptor array / value bitmap 3883 * @desc_array: array of GPIO descriptors whose values will be assigned 3884 * @array_info: information on applicability of fast bitmap processing path 3885 * @value_bitmap: bitmap of values to assign 3886 * 3887 * Set the raw values of the GPIOs, i.e. the values of the physical lines 3888 * without regard for their ACTIVE_LOW status. 3889 * 3890 * This function can be called from contexts where we cannot sleep, and will 3891 * complain if the GPIO chip functions potentially sleep. 3892 * 3893 * Returns: 3894 * 0 on success, or negative errno on failure. 3895 */ 3896 int gpiod_set_raw_array_value(unsigned int array_size, 3897 struct gpio_desc **desc_array, 3898 struct gpio_array *array_info, 3899 unsigned long *value_bitmap) 3900 { 3901 if (!desc_array) 3902 return -EINVAL; 3903 return gpiod_set_array_value_complex(true, false, array_size, 3904 desc_array, array_info, value_bitmap); 3905 } 3906 EXPORT_SYMBOL_GPL(gpiod_set_raw_array_value); 3907 3908 /** 3909 * gpiod_set_array_value() - assign values to an array of GPIOs 3910 * @array_size: number of elements in the descriptor array / value bitmap 3911 * @desc_array: array of GPIO descriptors whose values will be assigned 3912 * @array_info: information on applicability of fast bitmap processing path 3913 * @value_bitmap: bitmap of values to assign 3914 * 3915 * Set the logical values of the GPIOs, i.e. taking their ACTIVE_LOW status 3916 * into account. 3917 * 3918 * This function can be called from contexts where we cannot sleep, and will 3919 * complain if the GPIO chip functions potentially sleep. 3920 * 3921 * Returns: 3922 * 0 on success, or negative errno on failure. 3923 */ 3924 int gpiod_set_array_value(unsigned int array_size, 3925 struct gpio_desc **desc_array, 3926 struct gpio_array *array_info, 3927 unsigned long *value_bitmap) 3928 { 3929 if (!desc_array) 3930 return -EINVAL; 3931 return gpiod_set_array_value_complex(false, false, array_size, 3932 desc_array, array_info, 3933 value_bitmap); 3934 } 3935 EXPORT_SYMBOL_GPL(gpiod_set_array_value); 3936 3937 /** 3938 * gpiod_cansleep() - report whether gpio value access may sleep 3939 * @desc: gpio to check 3940 * 3941 * Returns: 3942 * 0 for non-sleepable, 1 for sleepable, or an error code in case of error. 3943 */ 3944 int gpiod_cansleep(const struct gpio_desc *desc) 3945 { 3946 VALIDATE_DESC(desc); 3947 return desc->gdev->can_sleep; 3948 } 3949 EXPORT_SYMBOL_GPL(gpiod_cansleep); 3950 3951 /** 3952 * gpiod_set_consumer_name() - set the consumer name for the descriptor 3953 * @desc: gpio to set the consumer name on 3954 * @name: the new consumer name 3955 * 3956 * Returns: 3957 * 0 on success, or negative errno on failure. 3958 */ 3959 int gpiod_set_consumer_name(struct gpio_desc *desc, const char *name) 3960 { 3961 int ret; 3962 3963 VALIDATE_DESC(desc); 3964 3965 ret = desc_set_label(desc, name); 3966 if (ret == 0) 3967 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_CONFIG); 3968 3969 return ret; 3970 } 3971 EXPORT_SYMBOL_GPL(gpiod_set_consumer_name); 3972 3973 /** 3974 * gpiod_to_irq() - return the IRQ corresponding to a GPIO 3975 * @desc: gpio whose IRQ will be returned (already requested) 3976 * 3977 * Returns: 3978 * The IRQ corresponding to the passed GPIO, or an error code in case of error. 3979 */ 3980 int gpiod_to_irq(const struct gpio_desc *desc) 3981 { 3982 struct gpio_device *gdev; 3983 struct gpio_chip *gc; 3984 int offset; 3985 int ret; 3986 3987 ret = validate_desc(desc, __func__); 3988 if (ret <= 0) 3989 return -EINVAL; 3990 3991 gdev = desc->gdev; 3992 /* FIXME Cannot use gpio_chip_guard due to const desc. */ 3993 guard(srcu)(&gdev->srcu); 3994 gc = srcu_dereference(gdev->chip, &gdev->srcu); 3995 if (!gc) 3996 return -ENODEV; 3997 3998 offset = gpio_chip_hwgpio(desc); 3999 if (gc->to_irq) { 4000 ret = gc->to_irq(gc, offset); 4001 if (ret) 4002 return ret; 4003 4004 /* Zero means NO_IRQ */ 4005 return -ENXIO; 4006 } 4007 #ifdef CONFIG_GPIOLIB_IRQCHIP 4008 if (gc->irq.chip) { 4009 /* 4010 * Avoid race condition with other code, which tries to lookup 4011 * an IRQ before the irqchip has been properly registered, 4012 * i.e. while gpiochip is still being brought up. 4013 */ 4014 return -EPROBE_DEFER; 4015 } 4016 #endif 4017 return -ENXIO; 4018 } 4019 EXPORT_SYMBOL_GPL(gpiod_to_irq); 4020 4021 /** 4022 * gpiochip_lock_as_irq() - lock a GPIO to be used as IRQ 4023 * @gc: the chip the GPIO to lock belongs to 4024 * @offset: the offset of the GPIO to lock as IRQ 4025 * 4026 * This is used directly by GPIO drivers that want to lock down 4027 * a certain GPIO line to be used for IRQs. 4028 * 4029 * Returns: 4030 * 0 on success, or negative errno on failure. 4031 */ 4032 int gpiochip_lock_as_irq(struct gpio_chip *gc, unsigned int offset) 4033 { 4034 struct gpio_desc *desc; 4035 4036 desc = gpiochip_get_desc(gc, offset); 4037 if (IS_ERR(desc)) 4038 return PTR_ERR(desc); 4039 4040 /* 4041 * If it's fast: flush the direction setting if something changed 4042 * behind our back 4043 */ 4044 if (!gc->can_sleep && gc->get_direction) { 4045 int dir = gpiod_get_direction(desc); 4046 4047 if (dir < 0) { 4048 chip_err(gc, "%s: cannot get GPIO direction\n", 4049 __func__); 4050 return dir; 4051 } 4052 } 4053 4054 /* To be valid for IRQ the line needs to be input or open drain */ 4055 if (test_bit(FLAG_IS_OUT, &desc->flags) && 4056 !test_bit(FLAG_OPEN_DRAIN, &desc->flags)) { 4057 chip_err(gc, 4058 "%s: tried to flag a GPIO set as output for IRQ\n", 4059 __func__); 4060 return -EIO; 4061 } 4062 4063 set_bit(FLAG_USED_AS_IRQ, &desc->flags); 4064 set_bit(FLAG_IRQ_IS_ENABLED, &desc->flags); 4065 4066 return 0; 4067 } 4068 EXPORT_SYMBOL_GPL(gpiochip_lock_as_irq); 4069 4070 /** 4071 * gpiochip_unlock_as_irq() - unlock a GPIO used as IRQ 4072 * @gc: the chip the GPIO to lock belongs to 4073 * @offset: the offset of the GPIO to lock as IRQ 4074 * 4075 * This is used directly by GPIO drivers that want to indicate 4076 * that a certain GPIO is no longer used exclusively for IRQ. 4077 */ 4078 void gpiochip_unlock_as_irq(struct gpio_chip *gc, unsigned int offset) 4079 { 4080 struct gpio_desc *desc; 4081 4082 desc = gpiochip_get_desc(gc, offset); 4083 if (IS_ERR(desc)) 4084 return; 4085 4086 clear_bit(FLAG_USED_AS_IRQ, &desc->flags); 4087 clear_bit(FLAG_IRQ_IS_ENABLED, &desc->flags); 4088 } 4089 EXPORT_SYMBOL_GPL(gpiochip_unlock_as_irq); 4090 4091 void gpiochip_disable_irq(struct gpio_chip *gc, unsigned int offset) 4092 { 4093 struct gpio_desc *desc = gpiochip_get_desc(gc, offset); 4094 4095 if (!IS_ERR(desc) && 4096 !WARN_ON(!test_bit(FLAG_USED_AS_IRQ, &desc->flags))) 4097 clear_bit(FLAG_IRQ_IS_ENABLED, &desc->flags); 4098 } 4099 EXPORT_SYMBOL_GPL(gpiochip_disable_irq); 4100 4101 void gpiochip_enable_irq(struct gpio_chip *gc, unsigned int offset) 4102 { 4103 struct gpio_desc *desc = gpiochip_get_desc(gc, offset); 4104 4105 if (!IS_ERR(desc) && 4106 !WARN_ON(!test_bit(FLAG_USED_AS_IRQ, &desc->flags))) { 4107 /* 4108 * We must not be output when using IRQ UNLESS we are 4109 * open drain. 4110 */ 4111 WARN_ON(test_bit(FLAG_IS_OUT, &desc->flags) && 4112 !test_bit(FLAG_OPEN_DRAIN, &desc->flags)); 4113 set_bit(FLAG_IRQ_IS_ENABLED, &desc->flags); 4114 } 4115 } 4116 EXPORT_SYMBOL_GPL(gpiochip_enable_irq); 4117 4118 bool gpiochip_line_is_irq(struct gpio_chip *gc, unsigned int offset) 4119 { 4120 if (offset >= gc->ngpio) 4121 return false; 4122 4123 return test_bit(FLAG_USED_AS_IRQ, &gc->gpiodev->descs[offset].flags); 4124 } 4125 EXPORT_SYMBOL_GPL(gpiochip_line_is_irq); 4126 4127 int gpiochip_reqres_irq(struct gpio_chip *gc, unsigned int offset) 4128 { 4129 int ret; 4130 4131 if (!try_module_get(gc->gpiodev->owner)) 4132 return -ENODEV; 4133 4134 ret = gpiochip_lock_as_irq(gc, offset); 4135 if (ret) { 4136 chip_err(gc, "unable to lock HW IRQ %u for IRQ\n", offset); 4137 module_put(gc->gpiodev->owner); 4138 return ret; 4139 } 4140 return 0; 4141 } 4142 EXPORT_SYMBOL_GPL(gpiochip_reqres_irq); 4143 4144 void gpiochip_relres_irq(struct gpio_chip *gc, unsigned int offset) 4145 { 4146 gpiochip_unlock_as_irq(gc, offset); 4147 module_put(gc->gpiodev->owner); 4148 } 4149 EXPORT_SYMBOL_GPL(gpiochip_relres_irq); 4150 4151 bool gpiochip_line_is_open_drain(struct gpio_chip *gc, unsigned int offset) 4152 { 4153 if (offset >= gc->ngpio) 4154 return false; 4155 4156 return test_bit(FLAG_OPEN_DRAIN, &gc->gpiodev->descs[offset].flags); 4157 } 4158 EXPORT_SYMBOL_GPL(gpiochip_line_is_open_drain); 4159 4160 bool gpiochip_line_is_open_source(struct gpio_chip *gc, unsigned int offset) 4161 { 4162 if (offset >= gc->ngpio) 4163 return false; 4164 4165 return test_bit(FLAG_OPEN_SOURCE, &gc->gpiodev->descs[offset].flags); 4166 } 4167 EXPORT_SYMBOL_GPL(gpiochip_line_is_open_source); 4168 4169 bool gpiochip_line_is_persistent(struct gpio_chip *gc, unsigned int offset) 4170 { 4171 if (offset >= gc->ngpio) 4172 return false; 4173 4174 return !test_bit(FLAG_TRANSITORY, &gc->gpiodev->descs[offset].flags); 4175 } 4176 EXPORT_SYMBOL_GPL(gpiochip_line_is_persistent); 4177 4178 /** 4179 * gpiod_get_raw_value_cansleep() - return a gpio's raw value 4180 * @desc: gpio whose value will be returned 4181 * 4182 * Returns: 4183 * The GPIO's raw value, i.e. the value of the physical line disregarding 4184 * its ACTIVE_LOW status, or negative errno on failure. 4185 * 4186 * This function is to be called from contexts that can sleep. 4187 */ 4188 int gpiod_get_raw_value_cansleep(const struct gpio_desc *desc) 4189 { 4190 might_sleep(); 4191 VALIDATE_DESC(desc); 4192 return gpiod_get_raw_value_commit(desc); 4193 } 4194 EXPORT_SYMBOL_GPL(gpiod_get_raw_value_cansleep); 4195 4196 /** 4197 * gpiod_get_value_cansleep() - return a gpio's value 4198 * @desc: gpio whose value will be returned 4199 * 4200 * Returns: 4201 * The GPIO's logical value, i.e. taking the ACTIVE_LOW status into 4202 * account, or negative errno on failure. 4203 * 4204 * This function is to be called from contexts that can sleep. 4205 */ 4206 int gpiod_get_value_cansleep(const struct gpio_desc *desc) 4207 { 4208 int value; 4209 4210 might_sleep(); 4211 VALIDATE_DESC(desc); 4212 value = gpiod_get_raw_value_commit(desc); 4213 if (value < 0) 4214 return value; 4215 4216 if (test_bit(FLAG_ACTIVE_LOW, &desc->flags)) 4217 value = !value; 4218 4219 return value; 4220 } 4221 EXPORT_SYMBOL_GPL(gpiod_get_value_cansleep); 4222 4223 /** 4224 * gpiod_get_raw_array_value_cansleep() - read raw values from an array of GPIOs 4225 * @array_size: number of elements in the descriptor array / value bitmap 4226 * @desc_array: array of GPIO descriptors whose values will be read 4227 * @array_info: information on applicability of fast bitmap processing path 4228 * @value_bitmap: bitmap to store the read values 4229 * 4230 * Read the raw values of the GPIOs, i.e. the values of the physical lines 4231 * without regard for their ACTIVE_LOW status. 4232 * 4233 * This function is to be called from contexts that can sleep. 4234 * 4235 * Returns: 4236 * 0 on success, or negative errno on failure. 4237 */ 4238 int gpiod_get_raw_array_value_cansleep(unsigned int array_size, 4239 struct gpio_desc **desc_array, 4240 struct gpio_array *array_info, 4241 unsigned long *value_bitmap) 4242 { 4243 might_sleep(); 4244 if (!desc_array) 4245 return -EINVAL; 4246 return gpiod_get_array_value_complex(true, true, array_size, 4247 desc_array, array_info, 4248 value_bitmap); 4249 } 4250 EXPORT_SYMBOL_GPL(gpiod_get_raw_array_value_cansleep); 4251 4252 /** 4253 * gpiod_get_array_value_cansleep() - read values from an array of GPIOs 4254 * @array_size: number of elements in the descriptor array / value bitmap 4255 * @desc_array: array of GPIO descriptors whose values will be read 4256 * @array_info: information on applicability of fast bitmap processing path 4257 * @value_bitmap: bitmap to store the read values 4258 * 4259 * Read the logical values of the GPIOs, i.e. taking their ACTIVE_LOW status 4260 * into account. 4261 * 4262 * This function is to be called from contexts that can sleep. 4263 * 4264 * Returns: 4265 * 0 on success, or negative errno on failure. 4266 */ 4267 int gpiod_get_array_value_cansleep(unsigned int array_size, 4268 struct gpio_desc **desc_array, 4269 struct gpio_array *array_info, 4270 unsigned long *value_bitmap) 4271 { 4272 might_sleep(); 4273 if (!desc_array) 4274 return -EINVAL; 4275 return gpiod_get_array_value_complex(false, true, array_size, 4276 desc_array, array_info, 4277 value_bitmap); 4278 } 4279 EXPORT_SYMBOL_GPL(gpiod_get_array_value_cansleep); 4280 4281 /** 4282 * gpiod_set_raw_value_cansleep() - assign a gpio's raw value 4283 * @desc: gpio whose value will be assigned 4284 * @value: value to assign 4285 * 4286 * Set the raw value of the GPIO, i.e. the value of its physical line without 4287 * regard for its ACTIVE_LOW status. 4288 * 4289 * This function is to be called from contexts that can sleep. 4290 * 4291 * Returns: 4292 * 0 on success, negative error number on failure. 4293 */ 4294 int gpiod_set_raw_value_cansleep(struct gpio_desc *desc, int value) 4295 { 4296 might_sleep(); 4297 VALIDATE_DESC(desc); 4298 return gpiod_set_raw_value_commit(desc, value); 4299 } 4300 EXPORT_SYMBOL_GPL(gpiod_set_raw_value_cansleep); 4301 4302 /** 4303 * gpiod_set_value_cansleep() - assign a gpio's value 4304 * @desc: gpio whose value will be assigned 4305 * @value: value to assign 4306 * 4307 * Set the logical value of the GPIO, i.e. taking its ACTIVE_LOW status into 4308 * account 4309 * 4310 * This function is to be called from contexts that can sleep. 4311 * 4312 * Returns: 4313 * 0 on success, negative error number on failure. 4314 */ 4315 int gpiod_set_value_cansleep(struct gpio_desc *desc, int value) 4316 { 4317 might_sleep(); 4318 VALIDATE_DESC(desc); 4319 return gpiod_set_value_nocheck(desc, value); 4320 } 4321 EXPORT_SYMBOL_GPL(gpiod_set_value_cansleep); 4322 4323 /** 4324 * gpiod_set_raw_array_value_cansleep() - assign values to an array of GPIOs 4325 * @array_size: number of elements in the descriptor array / value bitmap 4326 * @desc_array: array of GPIO descriptors whose values will be assigned 4327 * @array_info: information on applicability of fast bitmap processing path 4328 * @value_bitmap: bitmap of values to assign 4329 * 4330 * Set the raw values of the GPIOs, i.e. the values of the physical lines 4331 * without regard for their ACTIVE_LOW status. 4332 * 4333 * This function is to be called from contexts that can sleep. 4334 * 4335 * Returns: 4336 * 0 on success, or negative errno on failure. 4337 */ 4338 int gpiod_set_raw_array_value_cansleep(unsigned int array_size, 4339 struct gpio_desc **desc_array, 4340 struct gpio_array *array_info, 4341 unsigned long *value_bitmap) 4342 { 4343 might_sleep(); 4344 if (!desc_array) 4345 return -EINVAL; 4346 return gpiod_set_array_value_complex(true, true, array_size, desc_array, 4347 array_info, value_bitmap); 4348 } 4349 EXPORT_SYMBOL_GPL(gpiod_set_raw_array_value_cansleep); 4350 4351 /** 4352 * gpiod_add_lookup_tables() - register GPIO device consumers 4353 * @tables: list of tables of consumers to register 4354 * @n: number of tables in the list 4355 */ 4356 void gpiod_add_lookup_tables(struct gpiod_lookup_table **tables, size_t n) 4357 { 4358 unsigned int i; 4359 4360 guard(mutex)(&gpio_lookup_lock); 4361 4362 for (i = 0; i < n; i++) 4363 list_add_tail(&tables[i]->list, &gpio_lookup_list); 4364 } 4365 4366 /** 4367 * gpiod_set_array_value_cansleep() - assign values to an array of GPIOs 4368 * @array_size: number of elements in the descriptor array / value bitmap 4369 * @desc_array: array of GPIO descriptors whose values will be assigned 4370 * @array_info: information on applicability of fast bitmap processing path 4371 * @value_bitmap: bitmap of values to assign 4372 * 4373 * Set the logical values of the GPIOs, i.e. taking their ACTIVE_LOW status 4374 * into account. 4375 * 4376 * This function is to be called from contexts that can sleep. 4377 * 4378 * Returns: 4379 * 0 on success, or negative errno on failure. 4380 */ 4381 int gpiod_set_array_value_cansleep(unsigned int array_size, 4382 struct gpio_desc **desc_array, 4383 struct gpio_array *array_info, 4384 unsigned long *value_bitmap) 4385 { 4386 might_sleep(); 4387 if (!desc_array) 4388 return -EINVAL; 4389 return gpiod_set_array_value_complex(false, true, array_size, 4390 desc_array, array_info, 4391 value_bitmap); 4392 } 4393 EXPORT_SYMBOL_GPL(gpiod_set_array_value_cansleep); 4394 4395 void gpiod_line_state_notify(struct gpio_desc *desc, unsigned long action) 4396 { 4397 guard(read_lock_irqsave)(&desc->gdev->line_state_lock); 4398 4399 raw_notifier_call_chain(&desc->gdev->line_state_notifier, action, desc); 4400 } 4401 4402 /** 4403 * gpiod_add_lookup_table() - register GPIO device consumers 4404 * @table: table of consumers to register 4405 */ 4406 void gpiod_add_lookup_table(struct gpiod_lookup_table *table) 4407 { 4408 gpiod_add_lookup_tables(&table, 1); 4409 } 4410 EXPORT_SYMBOL_GPL(gpiod_add_lookup_table); 4411 4412 /** 4413 * gpiod_remove_lookup_table() - unregister GPIO device consumers 4414 * @table: table of consumers to unregister 4415 */ 4416 void gpiod_remove_lookup_table(struct gpiod_lookup_table *table) 4417 { 4418 /* Nothing to remove */ 4419 if (!table) 4420 return; 4421 4422 guard(mutex)(&gpio_lookup_lock); 4423 4424 list_del(&table->list); 4425 } 4426 EXPORT_SYMBOL_GPL(gpiod_remove_lookup_table); 4427 4428 /** 4429 * gpiod_add_hogs() - register a set of GPIO hogs from machine code 4430 * @hogs: table of gpio hog entries with a zeroed sentinel at the end 4431 */ 4432 void gpiod_add_hogs(struct gpiod_hog *hogs) 4433 { 4434 struct gpiod_hog *hog; 4435 4436 guard(mutex)(&gpio_machine_hogs_mutex); 4437 4438 for (hog = &hogs[0]; hog->chip_label; hog++) { 4439 list_add_tail(&hog->list, &gpio_machine_hogs); 4440 4441 /* 4442 * The chip may have been registered earlier, so check if it 4443 * exists and, if so, try to hog the line now. 4444 */ 4445 struct gpio_device *gdev __free(gpio_device_put) = 4446 gpio_device_find_by_label(hog->chip_label); 4447 if (gdev) 4448 gpiochip_machine_hog(gpio_device_get_chip(gdev), hog); 4449 } 4450 } 4451 EXPORT_SYMBOL_GPL(gpiod_add_hogs); 4452 4453 void gpiod_remove_hogs(struct gpiod_hog *hogs) 4454 { 4455 struct gpiod_hog *hog; 4456 4457 guard(mutex)(&gpio_machine_hogs_mutex); 4458 4459 for (hog = &hogs[0]; hog->chip_label; hog++) 4460 list_del(&hog->list); 4461 } 4462 EXPORT_SYMBOL_GPL(gpiod_remove_hogs); 4463 4464 static struct gpiod_lookup_table *gpiod_find_lookup_table(struct device *dev) 4465 { 4466 const char *dev_id = dev ? dev_name(dev) : NULL; 4467 struct gpiod_lookup_table *table; 4468 4469 list_for_each_entry(table, &gpio_lookup_list, list) { 4470 if (table->dev_id && dev_id) { 4471 /* 4472 * Valid strings on both ends, must be identical to have 4473 * a match 4474 */ 4475 if (!strcmp(table->dev_id, dev_id)) 4476 return table; 4477 } else { 4478 /* 4479 * One of the pointers is NULL, so both must be to have 4480 * a match 4481 */ 4482 if (dev_id == table->dev_id) 4483 return table; 4484 } 4485 } 4486 4487 return NULL; 4488 } 4489 4490 static struct gpio_desc *gpiod_find(struct device *dev, const char *con_id, 4491 unsigned int idx, unsigned long *flags) 4492 { 4493 struct gpio_desc *desc = ERR_PTR(-ENOENT); 4494 struct gpiod_lookup_table *table; 4495 struct gpiod_lookup *p; 4496 struct gpio_chip *gc; 4497 4498 guard(mutex)(&gpio_lookup_lock); 4499 4500 table = gpiod_find_lookup_table(dev); 4501 if (!table) 4502 return desc; 4503 4504 for (p = &table->table[0]; p->key; p++) { 4505 /* idx must always match exactly */ 4506 if (p->idx != idx) 4507 continue; 4508 4509 /* If the lookup entry has a con_id, require exact match */ 4510 if (p->con_id && (!con_id || strcmp(p->con_id, con_id))) 4511 continue; 4512 4513 if (p->chip_hwnum == U16_MAX) { 4514 desc = gpio_name_to_desc(p->key); 4515 if (desc) { 4516 *flags = p->flags; 4517 return desc; 4518 } 4519 4520 dev_warn(dev, "cannot find GPIO line %s, deferring\n", 4521 p->key); 4522 return ERR_PTR(-EPROBE_DEFER); 4523 } 4524 4525 struct gpio_device *gdev __free(gpio_device_put) = 4526 gpio_device_find_by_label(p->key); 4527 if (!gdev) { 4528 /* 4529 * As the lookup table indicates a chip with 4530 * p->key should exist, assume it may 4531 * still appear later and let the interested 4532 * consumer be probed again or let the Deferred 4533 * Probe infrastructure handle the error. 4534 */ 4535 dev_warn(dev, "cannot find GPIO chip %s, deferring\n", 4536 p->key); 4537 return ERR_PTR(-EPROBE_DEFER); 4538 } 4539 4540 gc = gpio_device_get_chip(gdev); 4541 4542 if (gc->ngpio <= p->chip_hwnum) { 4543 dev_err(dev, 4544 "requested GPIO %u (%u) is out of range [0..%u] for chip %s\n", 4545 idx, p->chip_hwnum, gc->ngpio - 1, 4546 gc->label); 4547 return ERR_PTR(-EINVAL); 4548 } 4549 4550 desc = gpio_device_get_desc(gdev, p->chip_hwnum); 4551 *flags = p->flags; 4552 4553 return desc; 4554 } 4555 4556 return desc; 4557 } 4558 4559 static int platform_gpio_count(struct device *dev, const char *con_id) 4560 { 4561 struct gpiod_lookup_table *table; 4562 struct gpiod_lookup *p; 4563 unsigned int count = 0; 4564 4565 scoped_guard(mutex, &gpio_lookup_lock) { 4566 table = gpiod_find_lookup_table(dev); 4567 if (!table) 4568 return -ENOENT; 4569 4570 for (p = &table->table[0]; p->key; p++) { 4571 if ((con_id && p->con_id && !strcmp(con_id, p->con_id)) || 4572 (!con_id && !p->con_id)) 4573 count++; 4574 } 4575 } 4576 4577 if (!count) 4578 return -ENOENT; 4579 4580 return count; 4581 } 4582 4583 static struct gpio_desc *gpiod_find_by_fwnode(struct fwnode_handle *fwnode, 4584 struct device *consumer, 4585 const char *con_id, 4586 unsigned int idx, 4587 enum gpiod_flags *flags, 4588 unsigned long *lookupflags) 4589 { 4590 const char *name = function_name_or_default(con_id); 4591 struct gpio_desc *desc = ERR_PTR(-ENOENT); 4592 4593 if (is_of_node(fwnode)) { 4594 dev_dbg(consumer, "using DT '%pfw' for '%s' GPIO lookup\n", fwnode, name); 4595 desc = of_find_gpio(to_of_node(fwnode), con_id, idx, lookupflags); 4596 } else if (is_acpi_node(fwnode)) { 4597 dev_dbg(consumer, "using ACPI '%pfw' for '%s' GPIO lookup\n", fwnode, name); 4598 desc = acpi_find_gpio(fwnode, con_id, idx, flags, lookupflags); 4599 } else if (is_software_node(fwnode)) { 4600 dev_dbg(consumer, "using swnode '%pfw' for '%s' GPIO lookup\n", fwnode, name); 4601 desc = swnode_find_gpio(fwnode, con_id, idx, lookupflags); 4602 } 4603 4604 return desc; 4605 } 4606 4607 struct gpio_desc *gpiod_find_and_request(struct device *consumer, 4608 struct fwnode_handle *fwnode, 4609 const char *con_id, 4610 unsigned int idx, 4611 enum gpiod_flags flags, 4612 const char *label, 4613 bool platform_lookup_allowed) 4614 { 4615 unsigned long lookupflags = GPIO_LOOKUP_FLAGS_DEFAULT; 4616 const char *name = function_name_or_default(con_id); 4617 /* 4618 * scoped_guard() is implemented as a for loop, meaning static 4619 * analyzers will complain about these two not being initialized. 4620 */ 4621 struct gpio_desc *desc = NULL; 4622 int ret = 0; 4623 4624 scoped_guard(srcu, &gpio_devices_srcu) { 4625 desc = gpiod_find_by_fwnode(fwnode, consumer, con_id, idx, 4626 &flags, &lookupflags); 4627 if (gpiod_not_found(desc) && platform_lookup_allowed) { 4628 /* 4629 * Either we are not using DT or ACPI, or their lookup 4630 * did not return a result. In that case, use platform 4631 * lookup as a fallback. 4632 */ 4633 dev_dbg(consumer, 4634 "using lookup tables for GPIO lookup\n"); 4635 desc = gpiod_find(consumer, con_id, idx, &lookupflags); 4636 } 4637 4638 if (IS_ERR(desc)) { 4639 dev_dbg(consumer, "No GPIO consumer %s found\n", name); 4640 return desc; 4641 } 4642 4643 /* 4644 * If a connection label was passed use that, else attempt to use 4645 * the device name as label 4646 */ 4647 ret = gpiod_request(desc, label); 4648 } 4649 if (ret) { 4650 if (!(ret == -EBUSY && flags & GPIOD_FLAGS_BIT_NONEXCLUSIVE)) 4651 return ERR_PTR(ret); 4652 4653 /* 4654 * This happens when there are several consumers for 4655 * the same GPIO line: we just return here without 4656 * further initialization. It is a bit of a hack. 4657 * This is necessary to support fixed regulators. 4658 * 4659 * FIXME: Make this more sane and safe. 4660 */ 4661 dev_info(consumer, "nonexclusive access to GPIO for %s\n", name); 4662 return desc; 4663 } 4664 4665 ret = gpiod_configure_flags(desc, con_id, lookupflags, flags); 4666 if (ret < 0) { 4667 gpiod_put(desc); 4668 dev_err(consumer, "setup of GPIO %s failed: %d\n", name, ret); 4669 return ERR_PTR(ret); 4670 } 4671 4672 gpiod_line_state_notify(desc, GPIO_V2_LINE_CHANGED_REQUESTED); 4673 4674 return desc; 4675 } 4676 4677 /** 4678 * fwnode_gpiod_get_index - obtain a GPIO from firmware node 4679 * @fwnode: handle of the firmware node 4680 * @con_id: function within the GPIO consumer 4681 * @index: index of the GPIO to obtain for the consumer 4682 * @flags: GPIO initialization flags 4683 * @label: label to attach to the requested GPIO 4684 * 4685 * This function can be used for drivers that get their configuration 4686 * from opaque firmware. 4687 * 4688 * The function properly finds the corresponding GPIO using whatever is the 4689 * underlying firmware interface and then makes sure that the GPIO 4690 * descriptor is requested before it is returned to the caller. 4691 * 4692 * Returns: 4693 * On successful request the GPIO pin is configured in accordance with 4694 * provided @flags. 4695 * 4696 * In case of error an ERR_PTR() is returned. 4697 */ 4698 struct gpio_desc *fwnode_gpiod_get_index(struct fwnode_handle *fwnode, 4699 const char *con_id, 4700 int index, 4701 enum gpiod_flags flags, 4702 const char *label) 4703 { 4704 return gpiod_find_and_request(NULL, fwnode, con_id, index, flags, label, false); 4705 } 4706 EXPORT_SYMBOL_GPL(fwnode_gpiod_get_index); 4707 4708 /** 4709 * gpiod_count - return the number of GPIOs associated with a device / function 4710 * @dev: GPIO consumer, can be NULL for system-global GPIOs 4711 * @con_id: function within the GPIO consumer 4712 * 4713 * Returns: 4714 * The number of GPIOs associated with a device / function or -ENOENT if no 4715 * GPIO has been assigned to the requested function. 4716 */ 4717 int gpiod_count(struct device *dev, const char *con_id) 4718 { 4719 const struct fwnode_handle *fwnode = dev ? dev_fwnode(dev) : NULL; 4720 int count = -ENOENT; 4721 4722 if (is_of_node(fwnode)) 4723 count = of_gpio_count(fwnode, con_id); 4724 else if (is_acpi_node(fwnode)) 4725 count = acpi_gpio_count(fwnode, con_id); 4726 else if (is_software_node(fwnode)) 4727 count = swnode_gpio_count(fwnode, con_id); 4728 4729 if (count < 0) 4730 count = platform_gpio_count(dev, con_id); 4731 4732 return count; 4733 } 4734 EXPORT_SYMBOL_GPL(gpiod_count); 4735 4736 /** 4737 * gpiod_get - obtain a GPIO for a given GPIO function 4738 * @dev: GPIO consumer, can be NULL for system-global GPIOs 4739 * @con_id: function within the GPIO consumer 4740 * @flags: optional GPIO initialization flags 4741 * 4742 * Returns: 4743 * The GPIO descriptor corresponding to the function @con_id of device 4744 * dev, -ENOENT if no GPIO has been assigned to the requested function, or 4745 * another IS_ERR() code if an error occurred while trying to acquire the GPIO. 4746 */ 4747 struct gpio_desc *__must_check gpiod_get(struct device *dev, const char *con_id, 4748 enum gpiod_flags flags) 4749 { 4750 return gpiod_get_index(dev, con_id, 0, flags); 4751 } 4752 EXPORT_SYMBOL_GPL(gpiod_get); 4753 4754 /** 4755 * gpiod_get_optional - obtain an optional GPIO for a given GPIO function 4756 * @dev: GPIO consumer, can be NULL for system-global GPIOs 4757 * @con_id: function within the GPIO consumer 4758 * @flags: optional GPIO initialization flags 4759 * 4760 * This is equivalent to gpiod_get(), except that when no GPIO was assigned to 4761 * the requested function it will return NULL. This is convenient for drivers 4762 * that need to handle optional GPIOs. 4763 * 4764 * Returns: 4765 * The GPIO descriptor corresponding to the function @con_id of device 4766 * dev, NULL if no GPIO has been assigned to the requested function, or 4767 * another IS_ERR() code if an error occurred while trying to acquire the GPIO. 4768 */ 4769 struct gpio_desc *__must_check gpiod_get_optional(struct device *dev, 4770 const char *con_id, 4771 enum gpiod_flags flags) 4772 { 4773 return gpiod_get_index_optional(dev, con_id, 0, flags); 4774 } 4775 EXPORT_SYMBOL_GPL(gpiod_get_optional); 4776 4777 4778 /** 4779 * gpiod_configure_flags - helper function to configure a given GPIO 4780 * @desc: gpio whose value will be assigned 4781 * @con_id: function within the GPIO consumer 4782 * @lflags: bitmask of gpio_lookup_flags GPIO_* values - returned from 4783 * of_find_gpio() or of_get_gpio_hog() 4784 * @dflags: gpiod_flags - optional GPIO initialization flags 4785 * 4786 * Returns: 4787 * 0 on success, -ENOENT if no GPIO has been assigned to the 4788 * requested function and/or index, or another IS_ERR() code if an error 4789 * occurred while trying to acquire the GPIO. 4790 */ 4791 int gpiod_configure_flags(struct gpio_desc *desc, const char *con_id, 4792 unsigned long lflags, enum gpiod_flags dflags) 4793 { 4794 const char *name = function_name_or_default(con_id); 4795 int ret; 4796 4797 if (lflags & GPIO_ACTIVE_LOW) 4798 set_bit(FLAG_ACTIVE_LOW, &desc->flags); 4799 4800 if (lflags & GPIO_OPEN_DRAIN) 4801 set_bit(FLAG_OPEN_DRAIN, &desc->flags); 4802 else if (dflags & GPIOD_FLAGS_BIT_OPEN_DRAIN) { 4803 /* 4804 * This enforces open drain mode from the consumer side. 4805 * This is necessary for some busses like I2C, but the lookup 4806 * should *REALLY* have specified them as open drain in the 4807 * first place, so print a little warning here. 4808 */ 4809 set_bit(FLAG_OPEN_DRAIN, &desc->flags); 4810 gpiod_warn(desc, 4811 "enforced open drain please flag it properly in DT/ACPI DSDT/board file\n"); 4812 } 4813 4814 if (lflags & GPIO_OPEN_SOURCE) 4815 set_bit(FLAG_OPEN_SOURCE, &desc->flags); 4816 4817 if (((lflags & GPIO_PULL_UP) && (lflags & GPIO_PULL_DOWN)) || 4818 ((lflags & GPIO_PULL_UP) && (lflags & GPIO_PULL_DISABLE)) || 4819 ((lflags & GPIO_PULL_DOWN) && (lflags & GPIO_PULL_DISABLE))) { 4820 gpiod_err(desc, 4821 "multiple pull-up, pull-down or pull-disable enabled, invalid configuration\n"); 4822 return -EINVAL; 4823 } 4824 4825 if (lflags & GPIO_PULL_UP) 4826 set_bit(FLAG_PULL_UP, &desc->flags); 4827 else if (lflags & GPIO_PULL_DOWN) 4828 set_bit(FLAG_PULL_DOWN, &desc->flags); 4829 else if (lflags & GPIO_PULL_DISABLE) 4830 set_bit(FLAG_BIAS_DISABLE, &desc->flags); 4831 4832 ret = gpiod_set_transitory(desc, (lflags & GPIO_TRANSITORY)); 4833 if (ret < 0) 4834 return ret; 4835 4836 /* No particular flag request, return here... */ 4837 if (!(dflags & GPIOD_FLAGS_BIT_DIR_SET)) { 4838 gpiod_dbg(desc, "no flags found for GPIO %s\n", name); 4839 return 0; 4840 } 4841 4842 /* Process flags */ 4843 if (dflags & GPIOD_FLAGS_BIT_DIR_OUT) 4844 ret = gpiod_direction_output_nonotify(desc, 4845 !!(dflags & GPIOD_FLAGS_BIT_DIR_VAL)); 4846 else 4847 ret = gpiod_direction_input_nonotify(desc); 4848 4849 return ret; 4850 } 4851 4852 /** 4853 * gpiod_get_index - obtain a GPIO from a multi-index GPIO function 4854 * @dev: GPIO consumer, can be NULL for system-global GPIOs 4855 * @con_id: function within the GPIO consumer 4856 * @idx: index of the GPIO to obtain in the consumer 4857 * @flags: optional GPIO initialization flags 4858 * 4859 * This variant of gpiod_get() allows to access GPIOs other than the first 4860 * defined one for functions that define several GPIOs. 4861 * 4862 * Returns: 4863 * A valid GPIO descriptor, -ENOENT if no GPIO has been assigned to the 4864 * requested function and/or index, or another IS_ERR() code if an error 4865 * occurred while trying to acquire the GPIO. 4866 */ 4867 struct gpio_desc *__must_check gpiod_get_index(struct device *dev, 4868 const char *con_id, 4869 unsigned int idx, 4870 enum gpiod_flags flags) 4871 { 4872 struct fwnode_handle *fwnode = dev ? dev_fwnode(dev) : NULL; 4873 const char *devname = dev ? dev_name(dev) : "?"; 4874 const char *label = con_id ?: devname; 4875 4876 return gpiod_find_and_request(dev, fwnode, con_id, idx, flags, label, true); 4877 } 4878 EXPORT_SYMBOL_GPL(gpiod_get_index); 4879 4880 /** 4881 * gpiod_get_index_optional - obtain an optional GPIO from a multi-index GPIO 4882 * function 4883 * @dev: GPIO consumer, can be NULL for system-global GPIOs 4884 * @con_id: function within the GPIO consumer 4885 * @index: index of the GPIO to obtain in the consumer 4886 * @flags: optional GPIO initialization flags 4887 * 4888 * This is equivalent to gpiod_get_index(), except that when no GPIO with the 4889 * specified index was assigned to the requested function it will return NULL. 4890 * This is convenient for drivers that need to handle optional GPIOs. 4891 * 4892 * Returns: 4893 * A valid GPIO descriptor, NULL if no GPIO has been assigned to the 4894 * requested function and/or index, or another IS_ERR() code if an error 4895 * occurred while trying to acquire the GPIO. 4896 */ 4897 struct gpio_desc *__must_check gpiod_get_index_optional(struct device *dev, 4898 const char *con_id, 4899 unsigned int index, 4900 enum gpiod_flags flags) 4901 { 4902 struct gpio_desc *desc; 4903 4904 desc = gpiod_get_index(dev, con_id, index, flags); 4905 if (gpiod_not_found(desc)) 4906 return NULL; 4907 4908 return desc; 4909 } 4910 EXPORT_SYMBOL_GPL(gpiod_get_index_optional); 4911 4912 /** 4913 * gpiod_hog - Hog the specified GPIO desc given the provided flags 4914 * @desc: gpio whose value will be assigned 4915 * @name: gpio line name 4916 * @lflags: bitmask of gpio_lookup_flags GPIO_* values - returned from 4917 * of_find_gpio() or of_get_gpio_hog() 4918 * @dflags: gpiod_flags - optional GPIO initialization flags 4919 * 4920 * Returns: 4921 * 0 on success, or negative errno on failure. 4922 */ 4923 int gpiod_hog(struct gpio_desc *desc, const char *name, 4924 unsigned long lflags, enum gpiod_flags dflags) 4925 { 4926 struct gpio_device *gdev = desc->gdev; 4927 struct gpio_desc *local_desc; 4928 int hwnum; 4929 int ret; 4930 4931 CLASS(gpio_chip_guard, guard)(desc); 4932 if (!guard.gc) 4933 return -ENODEV; 4934 4935 if (test_and_set_bit(FLAG_IS_HOGGED, &desc->flags)) 4936 return 0; 4937 4938 hwnum = gpio_chip_hwgpio(desc); 4939 4940 local_desc = gpiochip_request_own_desc(guard.gc, hwnum, name, 4941 lflags, dflags); 4942 if (IS_ERR(local_desc)) { 4943 clear_bit(FLAG_IS_HOGGED, &desc->flags); 4944 ret = PTR_ERR(local_desc); 4945 pr_err("requesting hog GPIO %s (chip %s, offset %d) failed, %d\n", 4946 name, gdev->label, hwnum, ret); 4947 return ret; 4948 } 4949 4950 gpiod_dbg(desc, "hogged as %s/%s\n", 4951 (dflags & GPIOD_FLAGS_BIT_DIR_OUT) ? "output" : "input", 4952 (dflags & GPIOD_FLAGS_BIT_DIR_OUT) ? 4953 str_high_low(dflags & GPIOD_FLAGS_BIT_DIR_VAL) : "?"); 4954 4955 return 0; 4956 } 4957 4958 /** 4959 * gpiochip_free_hogs - Scan gpio-controller chip and release GPIO hog 4960 * @gc: gpio chip to act on 4961 */ 4962 static void gpiochip_free_hogs(struct gpio_chip *gc) 4963 { 4964 struct gpio_desc *desc; 4965 4966 for_each_gpio_desc_with_flag(gc, desc, FLAG_IS_HOGGED) 4967 gpiochip_free_own_desc(desc); 4968 } 4969 4970 /** 4971 * gpiod_get_array - obtain multiple GPIOs from a multi-index GPIO function 4972 * @dev: GPIO consumer, can be NULL for system-global GPIOs 4973 * @con_id: function within the GPIO consumer 4974 * @flags: optional GPIO initialization flags 4975 * 4976 * This function acquires all the GPIOs defined under a given function. 4977 * 4978 * Returns: 4979 * The GPIO descriptors corresponding to the function @con_id of device 4980 * dev, -ENOENT if no GPIO has been assigned to the requested function, 4981 * or another IS_ERR() code if an error occurred while trying to acquire 4982 * the GPIOs. 4983 */ 4984 struct gpio_descs *__must_check gpiod_get_array(struct device *dev, 4985 const char *con_id, 4986 enum gpiod_flags flags) 4987 { 4988 struct gpio_desc *desc; 4989 struct gpio_descs *descs; 4990 struct gpio_device *gdev; 4991 struct gpio_array *array_info = NULL; 4992 int count, bitmap_size; 4993 unsigned long dflags; 4994 size_t descs_size; 4995 4996 count = gpiod_count(dev, con_id); 4997 if (count < 0) 4998 return ERR_PTR(count); 4999 5000 descs_size = struct_size(descs, desc, count); 5001 descs = kzalloc(descs_size, GFP_KERNEL); 5002 if (!descs) 5003 return ERR_PTR(-ENOMEM); 5004 5005 for (descs->ndescs = 0; descs->ndescs < count; descs->ndescs++) { 5006 desc = gpiod_get_index(dev, con_id, descs->ndescs, flags); 5007 if (IS_ERR(desc)) { 5008 gpiod_put_array(descs); 5009 return ERR_CAST(desc); 5010 } 5011 5012 descs->desc[descs->ndescs] = desc; 5013 5014 gdev = gpiod_to_gpio_device(desc); 5015 /* 5016 * If pin hardware number of array member 0 is also 0, select 5017 * its chip as a candidate for fast bitmap processing path. 5018 */ 5019 if (descs->ndescs == 0 && gpio_chip_hwgpio(desc) == 0) { 5020 struct gpio_descs *array; 5021 5022 bitmap_size = BITS_TO_LONGS(gdev->ngpio > count ? 5023 gdev->ngpio : count); 5024 5025 array = krealloc(descs, descs_size + 5026 struct_size(array_info, invert_mask, 3 * bitmap_size), 5027 GFP_KERNEL | __GFP_ZERO); 5028 if (!array) { 5029 gpiod_put_array(descs); 5030 return ERR_PTR(-ENOMEM); 5031 } 5032 5033 descs = array; 5034 5035 array_info = (void *)descs + descs_size; 5036 array_info->get_mask = array_info->invert_mask + 5037 bitmap_size; 5038 array_info->set_mask = array_info->get_mask + 5039 bitmap_size; 5040 5041 array_info->desc = descs->desc; 5042 array_info->size = count; 5043 array_info->gdev = gdev; 5044 bitmap_set(array_info->get_mask, descs->ndescs, 5045 count - descs->ndescs); 5046 bitmap_set(array_info->set_mask, descs->ndescs, 5047 count - descs->ndescs); 5048 descs->info = array_info; 5049 } 5050 5051 /* If there is no cache for fast bitmap processing path, continue */ 5052 if (!array_info) 5053 continue; 5054 5055 /* Unmark array members which don't belong to the 'fast' chip */ 5056 if (array_info->gdev != gdev) { 5057 __clear_bit(descs->ndescs, array_info->get_mask); 5058 __clear_bit(descs->ndescs, array_info->set_mask); 5059 } 5060 /* 5061 * Detect array members which belong to the 'fast' chip 5062 * but their pins are not in hardware order. 5063 */ 5064 else if (gpio_chip_hwgpio(desc) != descs->ndescs) { 5065 /* 5066 * Don't use fast path if all array members processed so 5067 * far belong to the same chip as this one but its pin 5068 * hardware number is different from its array index. 5069 */ 5070 if (bitmap_full(array_info->get_mask, descs->ndescs)) { 5071 array_info = NULL; 5072 } else { 5073 __clear_bit(descs->ndescs, 5074 array_info->get_mask); 5075 __clear_bit(descs->ndescs, 5076 array_info->set_mask); 5077 } 5078 } else { 5079 dflags = READ_ONCE(desc->flags); 5080 /* Exclude open drain or open source from fast output */ 5081 if (test_bit(FLAG_OPEN_DRAIN, &dflags) || 5082 test_bit(FLAG_OPEN_SOURCE, &dflags)) 5083 __clear_bit(descs->ndescs, 5084 array_info->set_mask); 5085 /* Identify 'fast' pins which require invertion */ 5086 if (gpiod_is_active_low(desc)) 5087 __set_bit(descs->ndescs, 5088 array_info->invert_mask); 5089 } 5090 } 5091 if (array_info) 5092 dev_dbg(dev, 5093 "GPIO array info: chip=%s, size=%d, get_mask=%lx, set_mask=%lx, invert_mask=%lx\n", 5094 array_info->gdev->label, array_info->size, 5095 *array_info->get_mask, *array_info->set_mask, 5096 *array_info->invert_mask); 5097 return descs; 5098 } 5099 EXPORT_SYMBOL_GPL(gpiod_get_array); 5100 5101 /** 5102 * gpiod_get_array_optional - obtain multiple GPIOs from a multi-index GPIO 5103 * function 5104 * @dev: GPIO consumer, can be NULL for system-global GPIOs 5105 * @con_id: function within the GPIO consumer 5106 * @flags: optional GPIO initialization flags 5107 * 5108 * This is equivalent to gpiod_get_array(), except that when no GPIO was 5109 * assigned to the requested function it will return NULL. 5110 * 5111 * Returns: 5112 * The GPIO descriptors corresponding to the function @con_id of device 5113 * dev, NULL if no GPIO has been assigned to the requested function, 5114 * or another IS_ERR() code if an error occurred while trying to acquire 5115 * the GPIOs. 5116 */ 5117 struct gpio_descs *__must_check gpiod_get_array_optional(struct device *dev, 5118 const char *con_id, 5119 enum gpiod_flags flags) 5120 { 5121 struct gpio_descs *descs; 5122 5123 descs = gpiod_get_array(dev, con_id, flags); 5124 if (gpiod_not_found(descs)) 5125 return NULL; 5126 5127 return descs; 5128 } 5129 EXPORT_SYMBOL_GPL(gpiod_get_array_optional); 5130 5131 /** 5132 * gpiod_put - dispose of a GPIO descriptor 5133 * @desc: GPIO descriptor to dispose of 5134 * 5135 * No descriptor can be used after gpiod_put() has been called on it. 5136 */ 5137 void gpiod_put(struct gpio_desc *desc) 5138 { 5139 gpiod_free(desc); 5140 } 5141 EXPORT_SYMBOL_GPL(gpiod_put); 5142 5143 /** 5144 * gpiod_put_array - dispose of multiple GPIO descriptors 5145 * @descs: struct gpio_descs containing an array of descriptors 5146 */ 5147 void gpiod_put_array(struct gpio_descs *descs) 5148 { 5149 unsigned int i; 5150 5151 for (i = 0; i < descs->ndescs; i++) 5152 gpiod_put(descs->desc[i]); 5153 5154 kfree(descs); 5155 } 5156 EXPORT_SYMBOL_GPL(gpiod_put_array); 5157 5158 static int gpio_stub_drv_probe(struct device *dev) 5159 { 5160 /* 5161 * The DT node of some GPIO chips have a "compatible" property, but 5162 * never have a struct device added and probed by a driver to register 5163 * the GPIO chip with gpiolib. In such cases, fw_devlink=on will cause 5164 * the consumers of the GPIO chip to get probe deferred forever because 5165 * they will be waiting for a device associated with the GPIO chip 5166 * firmware node to get added and bound to a driver. 5167 * 5168 * To allow these consumers to probe, we associate the struct 5169 * gpio_device of the GPIO chip with the firmware node and then simply 5170 * bind it to this stub driver. 5171 */ 5172 return 0; 5173 } 5174 5175 static struct device_driver gpio_stub_drv = { 5176 .name = "gpio_stub_drv", 5177 .bus = &gpio_bus_type, 5178 .probe = gpio_stub_drv_probe, 5179 }; 5180 5181 static int __init gpiolib_dev_init(void) 5182 { 5183 int ret; 5184 5185 /* Register GPIO sysfs bus */ 5186 ret = bus_register(&gpio_bus_type); 5187 if (ret < 0) { 5188 pr_err("gpiolib: could not register GPIO bus type\n"); 5189 return ret; 5190 } 5191 5192 ret = driver_register(&gpio_stub_drv); 5193 if (ret < 0) { 5194 pr_err("gpiolib: could not register GPIO stub driver\n"); 5195 bus_unregister(&gpio_bus_type); 5196 return ret; 5197 } 5198 5199 ret = alloc_chrdev_region(&gpio_devt, 0, GPIO_DEV_MAX, GPIOCHIP_NAME); 5200 if (ret < 0) { 5201 pr_err("gpiolib: failed to allocate char dev region\n"); 5202 driver_unregister(&gpio_stub_drv); 5203 bus_unregister(&gpio_bus_type); 5204 return ret; 5205 } 5206 5207 gpiolib_initialized = true; 5208 gpiochip_setup_devs(); 5209 5210 #if IS_ENABLED(CONFIG_OF_DYNAMIC) && IS_ENABLED(CONFIG_OF_GPIO) 5211 WARN_ON(of_reconfig_notifier_register(&gpio_of_notifier)); 5212 #endif /* CONFIG_OF_DYNAMIC && CONFIG_OF_GPIO */ 5213 5214 return ret; 5215 } 5216 core_initcall(gpiolib_dev_init); 5217 5218 #ifdef CONFIG_DEBUG_FS 5219 5220 static void gpiolib_dbg_show(struct seq_file *s, struct gpio_device *gdev) 5221 { 5222 bool active_low, is_irq, is_out; 5223 unsigned int gpio = gdev->base; 5224 struct gpio_desc *desc; 5225 struct gpio_chip *gc; 5226 unsigned long flags; 5227 int value; 5228 5229 guard(srcu)(&gdev->srcu); 5230 5231 gc = srcu_dereference(gdev->chip, &gdev->srcu); 5232 if (!gc) { 5233 seq_puts(s, "Underlying GPIO chip is gone\n"); 5234 return; 5235 } 5236 5237 for_each_gpio_desc(gc, desc) { 5238 guard(srcu)(&desc->gdev->desc_srcu); 5239 flags = READ_ONCE(desc->flags); 5240 is_irq = test_bit(FLAG_USED_AS_IRQ, &flags); 5241 if (is_irq || test_bit(FLAG_REQUESTED, &flags)) { 5242 gpiod_get_direction(desc); 5243 is_out = test_bit(FLAG_IS_OUT, &flags); 5244 value = gpio_chip_get_value(gc, desc); 5245 active_low = test_bit(FLAG_ACTIVE_LOW, &flags); 5246 seq_printf(s, " gpio-%-3u (%-20.20s|%-20.20s) %s %s %s%s\n", 5247 gpio, desc->name ?: "", gpiod_get_label(desc), 5248 is_out ? "out" : "in ", 5249 value >= 0 ? str_hi_lo(value) : "? ", 5250 is_irq ? "IRQ " : "", 5251 active_low ? "ACTIVE LOW" : ""); 5252 } else if (desc->name) { 5253 seq_printf(s, " gpio-%-3u (%-20.20s)\n", gpio, desc->name); 5254 } 5255 5256 gpio++; 5257 } 5258 } 5259 5260 struct gpiolib_seq_priv { 5261 bool newline; 5262 int idx; 5263 }; 5264 5265 static void *gpiolib_seq_start(struct seq_file *s, loff_t *pos) 5266 { 5267 struct gpiolib_seq_priv *priv; 5268 struct gpio_device *gdev; 5269 loff_t index = *pos; 5270 5271 priv = kzalloc(sizeof(*priv), GFP_KERNEL); 5272 if (!priv) 5273 return NULL; 5274 5275 s->private = priv; 5276 if (*pos > 0) 5277 priv->newline = true; 5278 priv->idx = srcu_read_lock(&gpio_devices_srcu); 5279 5280 list_for_each_entry_srcu(gdev, &gpio_devices, list, 5281 srcu_read_lock_held(&gpio_devices_srcu)) { 5282 if (index-- == 0) 5283 return gdev; 5284 } 5285 5286 return NULL; 5287 } 5288 5289 static void *gpiolib_seq_next(struct seq_file *s, void *v, loff_t *pos) 5290 { 5291 struct gpiolib_seq_priv *priv = s->private; 5292 struct gpio_device *gdev = v, *next; 5293 5294 next = list_entry_rcu(gdev->list.next, struct gpio_device, list); 5295 gdev = &next->list == &gpio_devices ? NULL : next; 5296 priv->newline = true; 5297 ++*pos; 5298 5299 return gdev; 5300 } 5301 5302 static void gpiolib_seq_stop(struct seq_file *s, void *v) 5303 { 5304 struct gpiolib_seq_priv *priv = s->private; 5305 5306 srcu_read_unlock(&gpio_devices_srcu, priv->idx); 5307 kfree(priv); 5308 } 5309 5310 static int gpiolib_seq_show(struct seq_file *s, void *v) 5311 { 5312 struct gpiolib_seq_priv *priv = s->private; 5313 struct gpio_device *gdev = v; 5314 struct gpio_chip *gc; 5315 struct device *parent; 5316 5317 if (priv->newline) 5318 seq_putc(s, '\n'); 5319 5320 guard(srcu)(&gdev->srcu); 5321 5322 gc = srcu_dereference(gdev->chip, &gdev->srcu); 5323 if (!gc) { 5324 seq_printf(s, "%s: (dangling chip)\n", dev_name(&gdev->dev)); 5325 return 0; 5326 } 5327 5328 seq_printf(s, "%s: GPIOs %u-%u", dev_name(&gdev->dev), gdev->base, 5329 gdev->base + gdev->ngpio - 1); 5330 parent = gc->parent; 5331 if (parent) 5332 seq_printf(s, ", parent: %s/%s", 5333 parent->bus ? parent->bus->name : "no-bus", 5334 dev_name(parent)); 5335 if (gc->label) 5336 seq_printf(s, ", %s", gc->label); 5337 if (gc->can_sleep) 5338 seq_printf(s, ", can sleep"); 5339 seq_printf(s, ":\n"); 5340 5341 if (gc->dbg_show) 5342 gc->dbg_show(s, gc); 5343 else 5344 gpiolib_dbg_show(s, gdev); 5345 5346 return 0; 5347 } 5348 5349 static const struct seq_operations gpiolib_sops = { 5350 .start = gpiolib_seq_start, 5351 .next = gpiolib_seq_next, 5352 .stop = gpiolib_seq_stop, 5353 .show = gpiolib_seq_show, 5354 }; 5355 DEFINE_SEQ_ATTRIBUTE(gpiolib); 5356 5357 static int __init gpiolib_debugfs_init(void) 5358 { 5359 /* /sys/kernel/debug/gpio */ 5360 debugfs_create_file("gpio", 0444, NULL, NULL, &gpiolib_fops); 5361 return 0; 5362 } 5363 subsys_initcall(gpiolib_debugfs_init); 5364 5365 #endif /* DEBUG_FS */ 5366