1 /* 2 * Created: Fri Jan 19 10:48:35 2001 by faith@acm.org 3 * 4 * Copyright 2001 VA Linux Systems, Inc., Sunnyvale, California. 5 * All Rights Reserved. 6 * 7 * Author Rickard E. (Rik) Faith <faith@valinux.com> 8 * 9 * Permission is hereby granted, free of charge, to any person obtaining a 10 * copy of this software and associated documentation files (the "Software"), 11 * to deal in the Software without restriction, including without limitation 12 * the rights to use, copy, modify, merge, publish, distribute, sublicense, 13 * and/or sell copies of the Software, and to permit persons to whom the 14 * Software is furnished to do so, subject to the following conditions: 15 * 16 * The above copyright notice and this permission notice (including the next 17 * paragraph) shall be included in all copies or substantial portions of the 18 * Software. 19 * 20 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 21 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 22 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL 23 * PRECISION INSIGHT AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM, DAMAGES OR 24 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, 25 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER 26 * DEALINGS IN THE SOFTWARE. 27 */ 28 29 #include <linux/bitops.h> 30 #include <linux/cgroup_dmem.h> 31 #include <linux/debugfs.h> 32 #include <linux/export.h> 33 #include <linux/fs.h> 34 #include <linux/module.h> 35 #include <linux/moduleparam.h> 36 #include <linux/mount.h> 37 #include <linux/pseudo_fs.h> 38 #include <linux/sched.h> 39 #include <linux/slab.h> 40 #include <linux/sprintf.h> 41 #include <linux/srcu.h> 42 #include <linux/xarray.h> 43 44 #include <drm/drm_accel.h> 45 #include <drm/drm_bridge.h> 46 #include <drm/drm_cache.h> 47 #include <drm/drm_client_event.h> 48 #include <drm/drm_color_mgmt.h> 49 #include <drm/drm_drv.h> 50 #include <drm/drm_file.h> 51 #include <drm/drm_managed.h> 52 #include <drm/drm_mode_object.h> 53 #include <drm/drm_panic.h> 54 #include <drm/drm_print.h> 55 #include <drm/drm_privacy_screen_machine.h> 56 #include <drm/drm_ras_genl_family.h> 57 58 #include "drm_crtc_internal.h" 59 #include "drm_internal.h" 60 61 MODULE_AUTHOR("Gareth Hughes, Leif Delgass, José Fonseca, Jon Smirl"); 62 MODULE_DESCRIPTION("DRM shared core routines"); 63 MODULE_LICENSE("GPL and additional rights"); 64 65 DEFINE_XARRAY_ALLOC(drm_minors_xa); 66 67 /* 68 * If the drm core fails to init for whatever reason, 69 * we should prevent any drivers from registering with it. 70 * It's best to check this at drm_dev_init(), as some drivers 71 * prefer to embed struct drm_device into their own device 72 * structure and call drm_dev_init() themselves. 73 */ 74 static bool drm_core_init_complete; 75 76 DEFINE_STATIC_SRCU(drm_unplug_srcu); 77 78 /* 79 * DRM Minors 80 * A DRM device can provide several char-dev interfaces on the DRM-Major. Each 81 * of them is represented by a drm_minor object. Depending on the capabilities 82 * of the device-driver, different interfaces are registered. 83 * 84 * Minors can be accessed via dev->$minor_name. This pointer is either 85 * NULL or a valid drm_minor pointer and stays valid as long as the device is 86 * valid. This means, DRM minors have the same life-time as the underlying 87 * device. However, this doesn't mean that the minor is active. Minors are 88 * registered and unregistered dynamically according to device-state. 89 */ 90 91 static struct xarray *drm_minor_get_xa(enum drm_minor_type type) 92 { 93 if (type == DRM_MINOR_PRIMARY || type == DRM_MINOR_RENDER) 94 return &drm_minors_xa; 95 #if IS_ENABLED(CONFIG_DRM_ACCEL) 96 else if (type == DRM_MINOR_ACCEL) 97 return &accel_minors_xa; 98 #endif 99 else 100 return ERR_PTR(-EOPNOTSUPP); 101 } 102 103 static struct drm_minor **drm_minor_get_slot(struct drm_device *dev, 104 enum drm_minor_type type) 105 { 106 switch (type) { 107 case DRM_MINOR_PRIMARY: 108 return &dev->primary; 109 case DRM_MINOR_RENDER: 110 return &dev->render; 111 case DRM_MINOR_ACCEL: 112 return &dev->accel; 113 default: 114 BUG(); 115 } 116 } 117 118 static void drm_minor_alloc_release(struct drm_device *dev, void *data) 119 { 120 struct drm_minor *minor = data; 121 122 WARN_ON(dev != minor->dev); 123 124 put_device(minor->kdev); 125 126 xa_erase(drm_minor_get_xa(minor->type), minor->index); 127 } 128 129 /* 130 * DRM used to support 64 devices, for backwards compatibility we need to maintain the 131 * minor allocation scheme where minors 0-63 are primary nodes, 64-127 are control nodes, 132 * and 128-191 are render nodes. 133 * After reaching the limit, we're allocating minors dynamically - first-come, first-serve. 134 * Accel nodes are using a distinct major, so the minors are allocated in continuous 0-MAX 135 * range. 136 */ 137 #define DRM_MINOR_LIMIT(t) ({ \ 138 typeof(t) _t = (t); \ 139 _t == DRM_MINOR_ACCEL ? XA_LIMIT(0, ACCEL_MAX_MINORS) : XA_LIMIT(64 * _t, 64 * _t + 63); \ 140 }) 141 #define DRM_EXTENDED_MINOR_LIMIT XA_LIMIT(192, (1 << MINORBITS) - 1) 142 143 static int drm_minor_alloc(struct drm_device *dev, enum drm_minor_type type) 144 { 145 struct drm_minor *minor; 146 int r; 147 148 minor = drmm_kzalloc(dev, sizeof(*minor), GFP_KERNEL); 149 if (!minor) 150 return -ENOMEM; 151 152 minor->type = type; 153 minor->dev = dev; 154 155 r = xa_alloc(drm_minor_get_xa(type), &minor->index, 156 NULL, DRM_MINOR_LIMIT(type), GFP_KERNEL); 157 if (r == -EBUSY && (type == DRM_MINOR_PRIMARY || type == DRM_MINOR_RENDER)) 158 r = xa_alloc(&drm_minors_xa, &minor->index, 159 NULL, DRM_EXTENDED_MINOR_LIMIT, GFP_KERNEL); 160 if (r < 0) 161 return r; 162 163 r = drmm_add_action_or_reset(dev, drm_minor_alloc_release, minor); 164 if (r) 165 return r; 166 167 minor->kdev = drm_sysfs_minor_alloc(minor); 168 if (IS_ERR(minor->kdev)) 169 return PTR_ERR(minor->kdev); 170 171 *drm_minor_get_slot(dev, type) = minor; 172 return 0; 173 } 174 175 static int drm_minor_register(struct drm_device *dev, enum drm_minor_type type) 176 { 177 struct drm_minor *minor; 178 void *entry; 179 int ret; 180 181 DRM_DEBUG("\n"); 182 183 minor = *drm_minor_get_slot(dev, type); 184 if (!minor) 185 return 0; 186 187 if (minor->type != DRM_MINOR_ACCEL) { 188 ret = drm_debugfs_register(minor, minor->index); 189 if (ret) { 190 DRM_ERROR("DRM: Failed to initialize /sys/kernel/debug/dri.\n"); 191 goto err_debugfs; 192 } 193 } 194 195 ret = device_add(minor->kdev); 196 if (ret) 197 goto err_debugfs; 198 199 /* replace NULL with @minor so lookups will succeed from now on */ 200 entry = xa_store(drm_minor_get_xa(type), minor->index, minor, GFP_KERNEL); 201 if (xa_is_err(entry)) { 202 ret = xa_err(entry); 203 goto err_debugfs; 204 } 205 WARN_ON(entry); 206 207 DRM_DEBUG("new minor registered %d\n", minor->index); 208 return 0; 209 210 err_debugfs: 211 drm_debugfs_unregister(minor); 212 return ret; 213 } 214 215 static void drm_minor_unregister(struct drm_device *dev, enum drm_minor_type type) 216 { 217 struct drm_minor *minor; 218 219 minor = *drm_minor_get_slot(dev, type); 220 if (!minor || !device_is_registered(minor->kdev)) 221 return; 222 223 /* replace @minor with NULL so lookups will fail from now on */ 224 xa_store(drm_minor_get_xa(type), minor->index, NULL, GFP_KERNEL); 225 226 device_del(minor->kdev); 227 dev_set_drvdata(minor->kdev, NULL); /* safety belt */ 228 drm_debugfs_unregister(minor); 229 } 230 231 /* 232 * Looks up the given minor-ID and returns the respective DRM-minor object. The 233 * refence-count of the underlying device is increased so you must release this 234 * object with drm_minor_release(). 235 * 236 * As long as you hold this minor, it is guaranteed that the object and the 237 * minor->dev pointer will stay valid! However, the device may get unplugged and 238 * unregistered while you hold the minor. 239 */ 240 struct drm_minor *drm_minor_acquire(struct xarray *minor_xa, unsigned int minor_id) 241 { 242 struct drm_minor *minor; 243 244 xa_lock(minor_xa); 245 minor = xa_load(minor_xa, minor_id); 246 if (minor) 247 drm_dev_get(minor->dev); 248 xa_unlock(minor_xa); 249 250 if (!minor) { 251 return ERR_PTR(-ENODEV); 252 } else if (drm_dev_is_unplugged(minor->dev)) { 253 drm_dev_put(minor->dev); 254 return ERR_PTR(-ENODEV); 255 } 256 257 return minor; 258 } 259 260 void drm_minor_release(struct drm_minor *minor) 261 { 262 drm_dev_put(minor->dev); 263 } 264 265 /** 266 * DOC: driver instance overview 267 * 268 * A device instance for a drm driver is represented by &struct drm_device. This 269 * is allocated and initialized with devm_drm_dev_alloc(), usually from 270 * bus-specific ->probe() callbacks implemented by the driver. The driver then 271 * needs to initialize all the various subsystems for the drm device like memory 272 * management, vblank handling, modesetting support and initial output 273 * configuration plus obviously initialize all the corresponding hardware bits. 274 * Finally when everything is up and running and ready for userspace the device 275 * instance can be published using drm_dev_register(). 276 * 277 * There is also deprecated support for initializing device instances using 278 * bus-specific helpers and the &drm_driver.load callback. But due to 279 * backwards-compatibility needs the device instance have to be published too 280 * early, which requires unpretty global locking to make safe and is therefore 281 * only support for existing drivers not yet converted to the new scheme. 282 * 283 * When cleaning up a device instance everything needs to be done in reverse: 284 * First unpublish the device instance with drm_dev_unregister(). Then clean up 285 * any other resources allocated at device initialization and drop the driver's 286 * reference to &drm_device using drm_dev_put(). 287 * 288 * Note that any allocation or resource which is visible to userspace must be 289 * released only when the final drm_dev_put() is called, and not when the 290 * driver is unbound from the underlying physical struct &device. Best to use 291 * &drm_device managed resources with drmm_add_action(), drmm_kmalloc() and 292 * related functions. 293 * 294 * devres managed resources like devm_kmalloc() can only be used for resources 295 * directly related to the underlying hardware device, and only used in code 296 * paths fully protected by drm_dev_enter() and drm_dev_exit(). 297 * 298 * Display driver example 299 * ~~~~~~~~~~~~~~~~~~~~~~ 300 * 301 * The following example shows a typical structure of a DRM display driver. 302 * The example focus on the probe() function and the other functions that is 303 * almost always present and serves as a demonstration of devm_drm_dev_alloc(). 304 * 305 * .. code-block:: c 306 * 307 * struct driver_device { 308 * struct drm_device drm; 309 * void *userspace_facing; 310 * struct clk *pclk; 311 * }; 312 * 313 * static const struct drm_driver driver_drm_driver = { 314 * [...] 315 * }; 316 * 317 * static int driver_probe(struct platform_device *pdev) 318 * { 319 * struct driver_device *priv; 320 * struct drm_device *drm; 321 * int ret; 322 * 323 * priv = devm_drm_dev_alloc(&pdev->dev, &driver_drm_driver, 324 * struct driver_device, drm); 325 * if (IS_ERR(priv)) 326 * return PTR_ERR(priv); 327 * drm = &priv->drm; 328 * 329 * ret = drmm_mode_config_init(drm); 330 * if (ret) 331 * return ret; 332 * 333 * priv->userspace_facing = drmm_kzalloc(..., GFP_KERNEL); 334 * if (!priv->userspace_facing) 335 * return -ENOMEM; 336 * 337 * priv->pclk = devm_clk_get(dev, "PCLK"); 338 * if (IS_ERR(priv->pclk)) 339 * return PTR_ERR(priv->pclk); 340 * 341 * // Further setup, display pipeline etc 342 * 343 * platform_set_drvdata(pdev, drm); 344 * 345 * ret = drm_mode_config_create_initial_state(drm); 346 * if (ret) 347 * return ret; 348 * 349 * ret = drm_dev_register(drm); 350 * if (ret) 351 * return ret; 352 * 353 * drm_fbdev_{...}_setup(drm, 32); 354 * 355 * return 0; 356 * } 357 * 358 * // This function is called before the devm_ resources are released 359 * static int driver_remove(struct platform_device *pdev) 360 * { 361 * struct drm_device *drm = platform_get_drvdata(pdev); 362 * 363 * drm_dev_unregister(drm); 364 * drm_atomic_helper_shutdown(drm) 365 * 366 * return 0; 367 * } 368 * 369 * // This function is called on kernel restart and shutdown 370 * static void driver_shutdown(struct platform_device *pdev) 371 * { 372 * drm_atomic_helper_shutdown(platform_get_drvdata(pdev)); 373 * } 374 * 375 * static int __maybe_unused driver_pm_suspend(struct device *dev) 376 * { 377 * return drm_mode_config_helper_suspend(dev_get_drvdata(dev)); 378 * } 379 * 380 * static int __maybe_unused driver_pm_resume(struct device *dev) 381 * { 382 * drm_mode_config_helper_resume(dev_get_drvdata(dev)); 383 * 384 * return 0; 385 * } 386 * 387 * static const struct dev_pm_ops driver_pm_ops = { 388 * SET_SYSTEM_SLEEP_PM_OPS(driver_pm_suspend, driver_pm_resume) 389 * }; 390 * 391 * static struct platform_driver driver_driver = { 392 * .driver = { 393 * [...] 394 * .pm = &driver_pm_ops, 395 * }, 396 * .probe = driver_probe, 397 * .remove = driver_remove, 398 * .shutdown = driver_shutdown, 399 * }; 400 * module_platform_driver(driver_driver); 401 * 402 * Drivers that want to support device unplugging (USB, DT overlay unload) should 403 * use drm_dev_unplug() instead of drm_dev_unregister(). The driver must protect 404 * regions that is accessing device resources to prevent use after they're 405 * released. This is done using drm_dev_enter() and drm_dev_exit(). There is one 406 * shortcoming however, drm_dev_unplug() marks the drm_device as unplugged before 407 * drm_atomic_helper_shutdown() is called. This means that if the disable code 408 * paths are protected, they will not run on regular driver module unload, 409 * possibly leaving the hardware enabled. 410 */ 411 412 /** 413 * drm_put_dev - Unregister and release a DRM device 414 * @dev: DRM device 415 * 416 * Called at module unload time or when a PCI device is unplugged. 417 * 418 * Cleans up all DRM device, calling drm_lastclose(). 419 * 420 * Note: Use of this function is deprecated. It will eventually go away 421 * completely. Please use drm_dev_unregister() and drm_dev_put() explicitly 422 * instead to make sure that the device isn't userspace accessible any more 423 * while teardown is in progress, ensuring that userspace can't access an 424 * inconsistent state. 425 */ 426 void drm_put_dev(struct drm_device *dev) 427 { 428 DRM_DEBUG("\n"); 429 430 if (!dev) { 431 DRM_ERROR("cleanup called no dev\n"); 432 return; 433 } 434 435 drm_dev_unregister(dev); 436 drm_dev_put(dev); 437 } 438 EXPORT_SYMBOL(drm_put_dev); 439 440 /** 441 * drm_dev_enter - Enter device critical section 442 * @dev: DRM device 443 * @idx: Pointer to index that will be passed to the matching drm_dev_exit() 444 * 445 * This function marks and protects the beginning of a section that should not 446 * be entered after the device has been unplugged. The section end is marked 447 * with drm_dev_exit(). Calls to this function can be nested. 448 * 449 * Returns: 450 * True if it is OK to enter the section, false otherwise. 451 */ 452 bool drm_dev_enter(struct drm_device *dev, int *idx) 453 { 454 *idx = srcu_read_lock(&drm_unplug_srcu); 455 456 if (dev->unplugged) { 457 srcu_read_unlock(&drm_unplug_srcu, *idx); 458 return false; 459 } 460 461 return true; 462 } 463 EXPORT_SYMBOL(drm_dev_enter); 464 465 /** 466 * drm_dev_exit - Exit device critical section 467 * @idx: index returned from drm_dev_enter() 468 * 469 * This function marks the end of a section that should not be entered after 470 * the device has been unplugged. 471 */ 472 void drm_dev_exit(int idx) 473 { 474 srcu_read_unlock(&drm_unplug_srcu, idx); 475 } 476 EXPORT_SYMBOL(drm_dev_exit); 477 478 /** 479 * drm_dev_unplug - unplug a DRM device 480 * @dev: DRM device 481 * 482 * This unplugs a hotpluggable DRM device, which makes it inaccessible to 483 * userspace operations. Entry-points can use drm_dev_enter() and 484 * drm_dev_exit() to protect device resources in a race free manner. This 485 * essentially unregisters the device like drm_dev_unregister(), but can be 486 * called while there are still open users of @dev. 487 */ 488 void drm_dev_unplug(struct drm_device *dev) 489 { 490 /* 491 * After synchronizing any critical read section is guaranteed to see 492 * the new value of ->unplugged, and any critical section which might 493 * still have seen the old value of ->unplugged is guaranteed to have 494 * finished. 495 */ 496 dev->unplugged = true; 497 synchronize_srcu(&drm_unplug_srcu); 498 499 drm_dev_unregister(dev); 500 501 /* Clear all CPU mappings pointing to this device */ 502 unmap_mapping_range(dev->anon_inode->i_mapping, 0, 0, 1); 503 } 504 EXPORT_SYMBOL(drm_dev_unplug); 505 506 /** 507 * drm_dev_set_dma_dev - set the DMA device for a DRM device 508 * @dev: DRM device 509 * @dma_dev: DMA device or NULL 510 * 511 * Sets the DMA device of the given DRM device. Only required if 512 * the DMA device is different from the DRM device's parent. After 513 * calling this function, the DRM device holds a reference on 514 * @dma_dev. Pass NULL to clear the DMA device. 515 */ 516 void drm_dev_set_dma_dev(struct drm_device *dev, struct device *dma_dev) 517 { 518 dma_dev = get_device(dma_dev); 519 520 put_device(dev->dma_dev); 521 dev->dma_dev = dma_dev; 522 } 523 EXPORT_SYMBOL(drm_dev_set_dma_dev); 524 525 /* 526 * Available recovery methods for wedged device. To be sent along with device 527 * wedged uevent. 528 */ 529 static const char *drm_get_wedge_recovery(unsigned int opt) 530 { 531 switch (BIT(opt)) { 532 case DRM_WEDGE_RECOVERY_NONE: 533 return "none"; 534 case DRM_WEDGE_RECOVERY_REBIND: 535 return "rebind"; 536 case DRM_WEDGE_RECOVERY_BUS_RESET: 537 return "bus-reset"; 538 case DRM_WEDGE_RECOVERY_VENDOR: 539 return "vendor-specific"; 540 default: 541 return NULL; 542 } 543 } 544 545 #define WEDGE_STR_LEN 32 546 #define PID_STR_LEN 15 547 #define COMM_STR_LEN (TASK_COMM_LEN + 5) 548 549 /** 550 * drm_dev_wedged_event - generate a device wedged uevent 551 * @dev: DRM device 552 * @method: method(s) to be used for recovery 553 * @info: optional information about the guilty task 554 * 555 * This generates a device wedged uevent for the DRM device specified by @dev. 556 * Recovery @method\(s) of choice will be sent in the uevent environment as 557 * ``WEDGED=<method1>[,..,<methodN>]`` in order of less to more side-effects. 558 * If caller is unsure about recovery or @method is unknown (0), 559 * ``WEDGED=unknown`` will be sent instead. 560 * 561 * Refer to "Device Wedging" chapter in Documentation/gpu/drm-uapi.rst for more 562 * details. 563 * 564 * Returns: 0 on success, negative error code otherwise. 565 */ 566 int drm_dev_wedged_event(struct drm_device *dev, unsigned long method, 567 struct drm_wedge_task_info *info) 568 { 569 char event_string[WEDGE_STR_LEN], pid_string[PID_STR_LEN], comm_string[COMM_STR_LEN]; 570 char *envp[] = { event_string, NULL, NULL, NULL }; 571 const char *recovery = NULL; 572 unsigned int len, opt; 573 574 len = scnprintf(event_string, sizeof(event_string), "%s", "WEDGED="); 575 576 for_each_set_bit(opt, &method, BITS_PER_TYPE(method)) { 577 recovery = drm_get_wedge_recovery(opt); 578 if (drm_WARN_ONCE(dev, !recovery, "invalid recovery method %u\n", opt)) 579 break; 580 581 len += scnprintf(event_string + len, sizeof(event_string) - len, "%s,", recovery); 582 } 583 584 if (recovery) 585 /* Get rid of trailing comma */ 586 event_string[len - 1] = '\0'; 587 else 588 /* Caller is unsure about recovery, do the best we can at this point. */ 589 snprintf(event_string, sizeof(event_string), "%s", "WEDGED=unknown"); 590 591 drm_info(dev, "device wedged, %s\n", method == DRM_WEDGE_RECOVERY_NONE ? 592 "but no recovery needed" : "needs recovery"); 593 594 if (info && (info->comm[0] != '\0') && (info->pid >= 0)) { 595 snprintf(pid_string, sizeof(pid_string), "PID=%u", info->pid); 596 snprintf(comm_string, sizeof(comm_string), "TASK=%s", info->comm); 597 envp[1] = pid_string; 598 envp[2] = comm_string; 599 } 600 601 return kobject_uevent_env(&dev->primary->kdev->kobj, KOBJ_CHANGE, envp); 602 } 603 EXPORT_SYMBOL(drm_dev_wedged_event); 604 605 /* 606 * DRM internal mount 607 * We want to be able to allocate our own "struct address_space" to control 608 * memory-mappings in VRAM (or stolen RAM, ...). However, core MM does not allow 609 * stand-alone address_space objects, so we need an underlying inode. As there 610 * is no way to allocate an independent inode easily, we need a fake internal 611 * VFS mount-point. 612 * 613 * The drm_fs_inode_new() function allocates a new inode, drm_fs_inode_free() 614 * frees it again. You are allowed to use iget() and iput() to get references to 615 * the inode. But each drm_fs_inode_new() call must be paired with exactly one 616 * drm_fs_inode_free() call (which does not have to be the last iput()). 617 * We use drm_fs_inode_*() to manage our internal VFS mount-point and share it 618 * between multiple inode-users. You could, technically, call 619 * iget() + drm_fs_inode_free() directly after alloc and sometime later do an 620 * iput(), but this way you'd end up with a new vfsmount for each inode. 621 */ 622 623 static int drm_fs_cnt; 624 static struct vfsmount *drm_fs_mnt; 625 626 static int drm_fs_init_fs_context(struct fs_context *fc) 627 { 628 return init_pseudo(fc, 0x010203ff) ? 0 : -ENOMEM; 629 } 630 631 static struct file_system_type drm_fs_type = { 632 .name = "drm", 633 .owner = THIS_MODULE, 634 .init_fs_context = drm_fs_init_fs_context, 635 .kill_sb = kill_anon_super, 636 }; 637 638 static struct inode *drm_fs_inode_new(void) 639 { 640 struct inode *inode; 641 int r; 642 643 r = simple_pin_fs(&drm_fs_type, &drm_fs_mnt, &drm_fs_cnt); 644 if (r < 0) { 645 DRM_ERROR("Cannot mount pseudo fs: %d\n", r); 646 return ERR_PTR(r); 647 } 648 649 inode = alloc_anon_inode(drm_fs_mnt->mnt_sb); 650 if (IS_ERR(inode)) 651 simple_release_fs(&drm_fs_mnt, &drm_fs_cnt); 652 653 return inode; 654 } 655 656 static void drm_fs_inode_free(struct inode *inode) 657 { 658 if (inode) { 659 iput(inode); 660 simple_release_fs(&drm_fs_mnt, &drm_fs_cnt); 661 } 662 } 663 664 /** 665 * DOC: component helper usage recommendations 666 * 667 * DRM drivers that drive hardware where a logical device consists of a pile of 668 * independent hardware blocks are recommended to use the :ref:`component helper 669 * library<component>`. For consistency and better options for code reuse the 670 * following guidelines apply: 671 * 672 * - The entire device initialization procedure should be run from the 673 * &component_master_ops.master_bind callback, starting with 674 * devm_drm_dev_alloc(), then binding all components with 675 * component_bind_all() and finishing with drm_dev_register(). 676 * 677 * - The opaque pointer passed to all components through component_bind_all() 678 * should point at &struct drm_device of the device instance, not some driver 679 * specific private structure. 680 * 681 * - The component helper fills the niche where further standardization of 682 * interfaces is not practical. When there already is, or will be, a 683 * standardized interface like &drm_bridge or &drm_panel, providing its own 684 * functions to find such components at driver load time, like 685 * drm_of_find_panel_or_bridge(), then the component helper should not be 686 * used. 687 */ 688 689 static void drm_dev_init_release(struct drm_device *dev, void *res) 690 { 691 drm_fs_inode_free(dev->anon_inode); 692 693 put_device(dev->dma_dev); 694 dev->dma_dev = NULL; 695 put_device(dev->dev); 696 /* Prevent use-after-free in drm_managed_release when debugging is 697 * enabled. Slightly awkward, but can't really be helped. */ 698 dev->dev = NULL; 699 mutex_destroy(&dev->master_mutex); 700 mutex_destroy(&dev->clientlist_mutex); 701 mutex_destroy(&dev->filelist_mutex); 702 mutex_destroy(&dev->gem_lru_mutex); 703 } 704 705 static int drm_dev_init(struct drm_device *dev, 706 const struct drm_driver *driver, 707 struct device *parent) 708 { 709 struct inode *inode; 710 int ret; 711 712 if (!drm_core_init_complete) { 713 DRM_ERROR("DRM core is not initialized\n"); 714 return -ENODEV; 715 } 716 717 if (WARN_ON(!parent)) 718 return -EINVAL; 719 720 kref_init(&dev->ref); 721 dev->dev = get_device(parent); 722 dev->driver = driver; 723 724 INIT_LIST_HEAD(&dev->managed.resources); 725 spin_lock_init(&dev->managed.lock); 726 727 /* no per-device feature limits by default */ 728 dev->driver_features = ~0u; 729 730 if (drm_core_check_feature(dev, DRIVER_COMPUTE_ACCEL) && 731 (drm_core_check_feature(dev, DRIVER_RENDER) || 732 drm_core_check_feature(dev, DRIVER_MODESET))) { 733 DRM_ERROR("DRM driver can't be both a compute acceleration and graphics driver\n"); 734 return -EINVAL; 735 } 736 737 INIT_LIST_HEAD(&dev->filelist); 738 INIT_LIST_HEAD(&dev->filelist_internal); 739 INIT_LIST_HEAD(&dev->clientlist); 740 INIT_LIST_HEAD(&dev->client_sysrq_list); 741 INIT_LIST_HEAD(&dev->vblank_event_list); 742 743 spin_lock_init(&dev->event_lock); 744 mutex_init(&dev->gem_lru_mutex); 745 mutex_init(&dev->filelist_mutex); 746 mutex_init(&dev->clientlist_mutex); 747 mutex_init(&dev->master_mutex); 748 raw_spin_lock_init(&dev->mode_config.panic_lock); 749 750 ret = drmm_add_action_or_reset(dev, drm_dev_init_release, NULL); 751 if (ret) 752 return ret; 753 754 inode = drm_fs_inode_new(); 755 if (IS_ERR(inode)) { 756 ret = PTR_ERR(inode); 757 DRM_ERROR("Cannot allocate anonymous inode: %d\n", ret); 758 goto err; 759 } 760 761 dev->anon_inode = inode; 762 763 if (drm_core_check_feature(dev, DRIVER_COMPUTE_ACCEL)) { 764 ret = drm_minor_alloc(dev, DRM_MINOR_ACCEL); 765 if (ret) 766 goto err; 767 } else { 768 if (drm_core_check_feature(dev, DRIVER_RENDER)) { 769 ret = drm_minor_alloc(dev, DRM_MINOR_RENDER); 770 if (ret) 771 goto err; 772 } 773 774 ret = drm_minor_alloc(dev, DRM_MINOR_PRIMARY); 775 if (ret) 776 goto err; 777 } 778 779 if (drm_core_check_feature(dev, DRIVER_GEM)) { 780 ret = drm_gem_init(dev); 781 if (ret) { 782 DRM_ERROR("Cannot initialize graphics execution manager (GEM)\n"); 783 goto err; 784 } 785 } 786 787 dev->unique = drmm_kstrdup(dev, dev_name(parent), GFP_KERNEL); 788 if (!dev->unique) { 789 ret = -ENOMEM; 790 goto err; 791 } 792 793 drm_debugfs_dev_init(dev); 794 795 return 0; 796 797 err: 798 drm_managed_release(dev); 799 800 return ret; 801 } 802 803 static void devm_drm_dev_init_release(void *data) 804 { 805 drm_dev_put(data); 806 } 807 808 static int devm_drm_dev_init(struct device *parent, 809 struct drm_device *dev, 810 const struct drm_driver *driver) 811 { 812 int ret; 813 814 ret = drm_dev_init(dev, driver, parent); 815 if (ret) 816 return ret; 817 818 return devm_add_action_or_reset(parent, 819 devm_drm_dev_init_release, dev); 820 } 821 822 void *__devm_drm_dev_alloc(struct device *parent, 823 const struct drm_driver *driver, 824 size_t size, size_t offset) 825 { 826 void *container; 827 struct drm_device *drm; 828 int ret; 829 830 container = kzalloc(size, GFP_KERNEL); 831 if (!container) 832 return ERR_PTR(-ENOMEM); 833 834 drm = container + offset; 835 ret = devm_drm_dev_init(parent, drm, driver); 836 if (ret) { 837 kfree(container); 838 return ERR_PTR(ret); 839 } 840 drmm_add_final_kfree(drm, container); 841 842 return container; 843 } 844 EXPORT_SYMBOL(__devm_drm_dev_alloc); 845 846 /** 847 * __drm_dev_alloc - Allocation of a &drm_device instance 848 * @parent: Parent device object 849 * @driver: DRM driver 850 * @size: the size of the struct which contains struct drm_device 851 * @offset: the offset of the &drm_device within the container. 852 * 853 * This should *NOT* be by any drivers, but is a dedicated interface for the 854 * corresponding Rust abstraction. 855 * 856 * This is the same as devm_drm_dev_alloc(), but without the corresponding 857 * resource management through the parent device, but not the same as 858 * drm_dev_alloc(), since the latter is the deprecated version, which does not 859 * support subclassing. 860 * 861 * Returns: A pointer to new DRM device, or an ERR_PTR on failure. 862 */ 863 void *__drm_dev_alloc(struct device *parent, 864 const struct drm_driver *driver, 865 size_t size, size_t offset) 866 { 867 void *container; 868 struct drm_device *drm; 869 int ret; 870 871 container = kzalloc(size, GFP_KERNEL); 872 if (!container) 873 return ERR_PTR(-ENOMEM); 874 875 drm = container + offset; 876 ret = drm_dev_init(drm, driver, parent); 877 if (ret) { 878 kfree(container); 879 return ERR_PTR(ret); 880 } 881 drmm_add_final_kfree(drm, container); 882 883 return container; 884 } 885 EXPORT_SYMBOL(__drm_dev_alloc); 886 887 /** 888 * drm_dev_alloc - Allocate new DRM device 889 * @driver: DRM driver to allocate device for 890 * @parent: Parent device object 891 * 892 * This is the deprecated version of devm_drm_dev_alloc(), which does not support 893 * subclassing through embedding the struct &drm_device in a driver private 894 * structure, and which does not support automatic cleanup through devres. 895 * 896 * RETURNS: 897 * Pointer to new DRM device, or ERR_PTR on failure. 898 */ 899 struct drm_device *drm_dev_alloc(const struct drm_driver *driver, 900 struct device *parent) 901 { 902 return __drm_dev_alloc(parent, driver, sizeof(struct drm_device), 0); 903 } 904 EXPORT_SYMBOL(drm_dev_alloc); 905 906 static void drm_dev_release(struct kref *ref) 907 { 908 struct drm_device *dev = container_of(ref, struct drm_device, ref); 909 910 /* Just in case register/unregister was never called */ 911 drm_debugfs_dev_fini(dev); 912 913 if (dev->driver->release) 914 dev->driver->release(dev); 915 916 drm_managed_release(dev); 917 918 kfree(dev->managed.final_kfree); 919 } 920 921 /** 922 * drm_dev_get - Take reference of a DRM device 923 * @dev: device to take reference of or NULL 924 * 925 * This increases the ref-count of @dev by one. You *must* already own a 926 * reference when calling this. Use drm_dev_put() to drop this reference 927 * again. 928 * 929 * This function never fails. However, this function does not provide *any* 930 * guarantee whether the device is alive or running. It only provides a 931 * reference to the object and the memory associated with it. 932 */ 933 void drm_dev_get(struct drm_device *dev) 934 { 935 if (dev) 936 kref_get(&dev->ref); 937 } 938 EXPORT_SYMBOL(drm_dev_get); 939 940 /** 941 * drm_dev_put - Drop reference of a DRM device 942 * @dev: device to drop reference of or NULL 943 * 944 * This decreases the ref-count of @dev by one. The device is destroyed if the 945 * ref-count drops to zero. 946 */ 947 void drm_dev_put(struct drm_device *dev) 948 { 949 if (dev) 950 kref_put(&dev->ref, drm_dev_release); 951 } 952 EXPORT_SYMBOL(drm_dev_put); 953 954 static void drmm_cg_unregister_region(struct drm_device *dev, void *arg) 955 { 956 dmem_cgroup_unregister_region(arg); 957 } 958 959 /** 960 * drmm_cgroup_register_region - Register a region of a DRM device to cgroups 961 * @dev: device for region 962 * @region_name: Region name for registering 963 * @size: Size of region in bytes 964 * 965 * This decreases the ref-count of @dev by one. The device is destroyed if the 966 * ref-count drops to zero. 967 */ 968 struct dmem_cgroup_region *drmm_cgroup_register_region(struct drm_device *dev, const char *region_name, u64 size) 969 { 970 struct dmem_cgroup_region *region; 971 int ret; 972 973 region = dmem_cgroup_register_region(size, "drm/%s/%s", dev->unique, region_name); 974 if (IS_ERR_OR_NULL(region)) 975 return region; 976 977 ret = drmm_add_action_or_reset(dev, drmm_cg_unregister_region, region); 978 if (ret) 979 return ERR_PTR(ret); 980 981 return region; 982 } 983 EXPORT_SYMBOL_GPL(drmm_cgroup_register_region); 984 985 static int create_compat_control_link(struct drm_device *dev) 986 { 987 struct drm_minor *minor; 988 char *name; 989 int ret; 990 991 if (!drm_core_check_feature(dev, DRIVER_MODESET)) 992 return 0; 993 994 minor = *drm_minor_get_slot(dev, DRM_MINOR_PRIMARY); 995 if (!minor) 996 return 0; 997 998 /* 999 * Some existing userspace out there uses the existing of the controlD* 1000 * sysfs files to figure out whether it's a modeset driver. It only does 1001 * readdir, hence a symlink is sufficient (and the least confusing 1002 * option). Otherwise controlD* is entirely unused. 1003 * 1004 * Old controlD chardev have been allocated in the range 1005 * 64-127. 1006 */ 1007 name = kasprintf(GFP_KERNEL, "controlD%d", minor->index + 64); 1008 if (!name) 1009 return -ENOMEM; 1010 1011 ret = sysfs_create_link(minor->kdev->kobj.parent, 1012 &minor->kdev->kobj, 1013 name); 1014 1015 kfree(name); 1016 1017 return ret; 1018 } 1019 1020 static void remove_compat_control_link(struct drm_device *dev) 1021 { 1022 struct drm_minor *minor; 1023 char *name; 1024 1025 if (!drm_core_check_feature(dev, DRIVER_MODESET)) 1026 return; 1027 1028 minor = *drm_minor_get_slot(dev, DRM_MINOR_PRIMARY); 1029 if (!minor) 1030 return; 1031 1032 name = kasprintf(GFP_KERNEL, "controlD%d", minor->index + 64); 1033 if (!name) 1034 return; 1035 1036 sysfs_remove_link(minor->kdev->kobj.parent, name); 1037 1038 kfree(name); 1039 } 1040 1041 /** 1042 * drm_dev_register - Register DRM device 1043 * @dev: Device to register 1044 * @flags: Flags passed to the driver's .load() function 1045 * 1046 * Register the DRM device @dev with the system, advertise device to user-space 1047 * and start normal device operation. @dev must be initialized via drm_dev_init() 1048 * previously. 1049 * 1050 * Never call this twice on any device! 1051 * 1052 * NOTE: To ensure backward compatibility with existing drivers method this 1053 * function calls the &drm_driver.load method after registering the device 1054 * nodes, creating race conditions. Usage of the &drm_driver.load methods is 1055 * therefore deprecated, drivers must perform all initialization before calling 1056 * drm_dev_register(). 1057 * 1058 * RETURNS: 1059 * 0 on success, negative error code on failure. 1060 */ 1061 int drm_dev_register(struct drm_device *dev, unsigned long flags) 1062 { 1063 const struct drm_driver *driver = dev->driver; 1064 int ret; 1065 1066 if (!driver->load) 1067 drm_mode_config_validate(dev); 1068 1069 WARN_ON(!dev->managed.final_kfree); 1070 1071 if (drm_dev_needs_global_mutex(dev)) 1072 mutex_lock(&drm_global_mutex); 1073 1074 if (drm_core_check_feature(dev, DRIVER_COMPUTE_ACCEL)) 1075 accel_debugfs_register(dev); 1076 else 1077 drm_debugfs_dev_register(dev); 1078 1079 ret = drm_minor_register(dev, DRM_MINOR_RENDER); 1080 if (ret) 1081 goto err_minors; 1082 1083 ret = drm_minor_register(dev, DRM_MINOR_PRIMARY); 1084 if (ret) 1085 goto err_minors; 1086 1087 ret = drm_minor_register(dev, DRM_MINOR_ACCEL); 1088 if (ret) 1089 goto err_minors; 1090 1091 ret = create_compat_control_link(dev); 1092 if (ret) 1093 goto err_minors; 1094 1095 dev->registered = true; 1096 1097 if (driver->load) { 1098 ret = driver->load(dev, flags); 1099 if (ret) 1100 goto err_minors; 1101 } 1102 1103 if (drm_core_check_feature(dev, DRIVER_MODESET)) { 1104 ret = drm_modeset_register_all(dev); 1105 if (ret) 1106 goto err_unload; 1107 } 1108 drm_panic_register(dev); 1109 drm_client_sysrq_register(dev); 1110 1111 DRM_INFO("Initialized %s %d.%d.%d for %s on minor %d\n", 1112 driver->name, driver->major, driver->minor, 1113 driver->patchlevel, 1114 dev->dev ? dev_name(dev->dev) : "virtual device", 1115 dev->primary ? dev->primary->index : dev->accel->index); 1116 1117 goto out_unlock; 1118 1119 err_unload: 1120 if (dev->driver->unload) 1121 dev->driver->unload(dev); 1122 err_minors: 1123 remove_compat_control_link(dev); 1124 drm_minor_unregister(dev, DRM_MINOR_ACCEL); 1125 drm_minor_unregister(dev, DRM_MINOR_PRIMARY); 1126 drm_minor_unregister(dev, DRM_MINOR_RENDER); 1127 out_unlock: 1128 if (drm_dev_needs_global_mutex(dev)) 1129 mutex_unlock(&drm_global_mutex); 1130 return ret; 1131 } 1132 EXPORT_SYMBOL(drm_dev_register); 1133 1134 /** 1135 * drm_dev_unregister - Unregister DRM device 1136 * @dev: Device to unregister 1137 * 1138 * Unregister the DRM device from the system. This does the reverse of 1139 * drm_dev_register() but does not deallocate the device. The caller must call 1140 * drm_dev_put() to drop their final reference, unless it is managed with devres 1141 * (as devices allocated with devm_drm_dev_alloc() are), in which case there is 1142 * already an unwind action registered. 1143 * 1144 * A special form of unregistering for hotpluggable devices is drm_dev_unplug(), 1145 * which can be called while there are still open users of @dev. 1146 * 1147 * This should be called first in the device teardown code to make sure 1148 * userspace can't access the device instance any more. 1149 */ 1150 void drm_dev_unregister(struct drm_device *dev) 1151 { 1152 dev->registered = false; 1153 1154 drm_client_sysrq_unregister(dev); 1155 drm_panic_unregister(dev); 1156 1157 drm_client_dev_unregister(dev); 1158 1159 if (drm_core_check_feature(dev, DRIVER_MODESET)) 1160 drm_modeset_unregister_all(dev); 1161 1162 if (dev->driver->unload) 1163 dev->driver->unload(dev); 1164 1165 remove_compat_control_link(dev); 1166 drm_minor_unregister(dev, DRM_MINOR_ACCEL); 1167 drm_minor_unregister(dev, DRM_MINOR_PRIMARY); 1168 drm_minor_unregister(dev, DRM_MINOR_RENDER); 1169 drm_debugfs_dev_fini(dev); 1170 } 1171 EXPORT_SYMBOL(drm_dev_unregister); 1172 1173 /* 1174 * DRM Core 1175 * The DRM core module initializes all global DRM objects and makes them 1176 * available to drivers. Once setup, drivers can probe their respective 1177 * devices. 1178 * Currently, core management includes: 1179 * - The "DRM-Global" key/value database 1180 * - Global ID management for connectors 1181 * - DRM major number allocation 1182 * - DRM minor management 1183 * - DRM sysfs class 1184 * - DRM debugfs root 1185 * 1186 * Furthermore, the DRM core provides dynamic char-dev lookups. For each 1187 * interface registered on a DRM device, you can request minor numbers from DRM 1188 * core. DRM core takes care of major-number management and char-dev 1189 * registration. A stub ->open() callback forwards any open() requests to the 1190 * registered minor. 1191 */ 1192 1193 static int drm_stub_open(struct inode *inode, struct file *filp) 1194 { 1195 const struct file_operations *new_fops; 1196 struct drm_minor *minor; 1197 int err; 1198 1199 DRM_DEBUG("\n"); 1200 1201 minor = drm_minor_acquire(&drm_minors_xa, iminor(inode)); 1202 if (IS_ERR(minor)) 1203 return PTR_ERR(minor); 1204 1205 new_fops = fops_get(minor->dev->driver->fops); 1206 if (!new_fops) { 1207 err = -ENODEV; 1208 goto out; 1209 } 1210 1211 replace_fops(filp, new_fops); 1212 if (filp->f_op->open) 1213 err = filp->f_op->open(inode, filp); 1214 else 1215 err = 0; 1216 1217 out: 1218 drm_minor_release(minor); 1219 1220 return err; 1221 } 1222 1223 static const struct file_operations drm_stub_fops = { 1224 .owner = THIS_MODULE, 1225 .open = drm_stub_open, 1226 .llseek = noop_llseek, 1227 }; 1228 1229 static void drm_core_exit(void) 1230 { 1231 drm_ras_genl_family_unregister(); 1232 drm_privacy_screen_lookup_exit(); 1233 drm_panic_exit(); 1234 accel_core_exit(); 1235 unregister_chrdev(DRM_MAJOR, "drm"); 1236 drm_debugfs_remove_root(); 1237 drm_sysfs_destroy(); 1238 WARN_ON(!xa_empty(&drm_minors_xa)); 1239 drm_connector_ida_destroy(); 1240 } 1241 1242 static int __init drm_core_init(void) 1243 { 1244 int ret; 1245 1246 drm_connector_ida_init(); 1247 drm_memcpy_init_early(); 1248 1249 ret = drm_sysfs_init(); 1250 if (ret < 0) { 1251 DRM_ERROR("Cannot create DRM class: %d\n", ret); 1252 goto error; 1253 } 1254 1255 drm_debugfs_init_root(); 1256 drm_debugfs_bridge_params(); 1257 1258 ret = register_chrdev(DRM_MAJOR, "drm", &drm_stub_fops); 1259 if (ret < 0) 1260 goto error; 1261 1262 ret = accel_core_init(); 1263 if (ret < 0) 1264 goto error; 1265 1266 drm_panic_init(); 1267 1268 drm_privacy_screen_lookup_init(); 1269 1270 ret = drm_ras_genl_family_register(); 1271 if (ret < 0) 1272 goto error; 1273 1274 drm_core_init_complete = true; 1275 1276 DRM_DEBUG("Initialized\n"); 1277 return 0; 1278 1279 error: 1280 drm_core_exit(); 1281 return ret; 1282 } 1283 1284 module_init(drm_core_init); 1285 module_exit(drm_core_exit); 1286