4 * Copyright 2001 VA Linux Systems, Inc., Sunnyvale, California.
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:
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
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.
29 #include <linux/debugfs.h>
31 #include <linux/module.h>
32 #include <linux/moduleparam.h>
33 #include <linux/mount.h>
34 #include <linux/slab.h>
36 #include <drm/drm_drv.h>
39 #include "drm_crtc_internal.h"
40 #include "drm_legacy.h"
41 #include "drm_internal.h"
42 #include "drm_crtc_internal.h"
45 * drm_debug: Enable debug output.
46 * Bitmask of DRM_UT_x. See include/drm/drmP.h for details.
48 unsigned int drm_debug = 0;
49 EXPORT_SYMBOL(drm_debug);
51 MODULE_AUTHOR("Gareth Hughes, Leif Delgass, José Fonseca, Jon Smirl");
52 MODULE_DESCRIPTION("DRM shared core routines");
53 MODULE_LICENSE("GPL and additional rights");
54 MODULE_PARM_DESC(debug, "Enable debug output, where each bit enables a debug category.\n"
55 "\t\tBit 0 (0x01) will enable CORE messages (drm core code)\n"
56 "\t\tBit 1 (0x02) will enable DRIVER messages (drm controller code)\n"
57 "\t\tBit 2 (0x04) will enable KMS messages (modesetting code)\n"
58 "\t\tBit 3 (0x08) will enable PRIME messages (prime code)\n"
59 "\t\tBit 4 (0x10) will enable ATOMIC messages (atomic code)\n"
60 "\t\tBit 5 (0x20) will enable VBL messages (vblank code)\n"
61 "\t\tBit 7 (0x80) will enable LEASE messages (leasing code)");
62 module_param_named(debug, drm_debug, int, 0600);
64 static DEFINE_SPINLOCK(drm_minor_lock);
65 static struct idr drm_minors_idr;
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.
74 static bool drm_core_init_complete = false;
76 static struct dentry *drm_debugfs_root;
78 #define DRM_PRINTK_FMT "[" DRM_NAME ":%s]%s %pV"
80 void drm_dev_printk(const struct device *dev, const char *level,
81 unsigned int category, const char *function_name,
82 const char *prefix, const char *format, ...)
87 if (category != DRM_UT_NONE && !(drm_debug & category))
90 va_start(args, format);
95 dev_printk(level, dev, DRM_PRINTK_FMT, function_name, prefix,
98 printk("%s" DRM_PRINTK_FMT, level, function_name, prefix, &vaf);
102 EXPORT_SYMBOL(drm_dev_printk);
104 void drm_printk(const char *level, unsigned int category,
105 const char *format, ...)
107 struct va_format vaf;
110 if (category != DRM_UT_NONE && !(drm_debug & category))
113 va_start(args, format);
117 printk("%s" "[" DRM_NAME ":%ps]%s %pV",
118 level, __builtin_return_address(0),
119 strcmp(level, KERN_ERR) == 0 ? " *ERROR*" : "", &vaf);
123 EXPORT_SYMBOL(drm_printk);
127 * A DRM device can provide several char-dev interfaces on the DRM-Major. Each
128 * of them is represented by a drm_minor object. Depending on the capabilities
129 * of the device-driver, different interfaces are registered.
131 * Minors can be accessed via dev->$minor_name. This pointer is either
132 * NULL or a valid drm_minor pointer and stays valid as long as the device is
133 * valid. This means, DRM minors have the same life-time as the underlying
134 * device. However, this doesn't mean that the minor is active. Minors are
135 * registered and unregistered dynamically according to device-state.
138 static struct drm_minor **drm_minor_get_slot(struct drm_device *dev,
142 case DRM_MINOR_PRIMARY:
143 return &dev->primary;
144 case DRM_MINOR_RENDER:
146 case DRM_MINOR_CONTROL:
147 return &dev->control;
153 static int drm_minor_alloc(struct drm_device *dev, unsigned int type)
155 struct drm_minor *minor;
159 minor = kzalloc(sizeof(*minor), GFP_KERNEL);
166 idr_preload(GFP_KERNEL);
167 spin_lock_irqsave(&drm_minor_lock, flags);
168 r = idr_alloc(&drm_minors_idr,
173 spin_unlock_irqrestore(&drm_minor_lock, flags);
181 minor->kdev = drm_sysfs_minor_alloc(minor);
182 if (IS_ERR(minor->kdev)) {
183 r = PTR_ERR(minor->kdev);
187 *drm_minor_get_slot(dev, type) = minor;
191 spin_lock_irqsave(&drm_minor_lock, flags);
192 idr_remove(&drm_minors_idr, minor->index);
193 spin_unlock_irqrestore(&drm_minor_lock, flags);
199 static void drm_minor_free(struct drm_device *dev, unsigned int type)
201 struct drm_minor **slot, *minor;
204 slot = drm_minor_get_slot(dev, type);
209 put_device(minor->kdev);
211 spin_lock_irqsave(&drm_minor_lock, flags);
212 idr_remove(&drm_minors_idr, minor->index);
213 spin_unlock_irqrestore(&drm_minor_lock, flags);
219 static int drm_minor_register(struct drm_device *dev, unsigned int type)
221 struct drm_minor *minor;
227 minor = *drm_minor_get_slot(dev, type);
231 ret = drm_debugfs_init(minor, minor->index, drm_debugfs_root);
233 DRM_ERROR("DRM: Failed to initialize /sys/kernel/debug/dri.\n");
237 ret = device_add(minor->kdev);
241 /* replace NULL with @minor so lookups will succeed from now on */
242 spin_lock_irqsave(&drm_minor_lock, flags);
243 idr_replace(&drm_minors_idr, minor, minor->index);
244 spin_unlock_irqrestore(&drm_minor_lock, flags);
246 DRM_DEBUG("new minor registered %d\n", minor->index);
250 drm_debugfs_cleanup(minor);
254 static void drm_minor_unregister(struct drm_device *dev, unsigned int type)
256 struct drm_minor *minor;
259 minor = *drm_minor_get_slot(dev, type);
260 if (!minor || !device_is_registered(minor->kdev))
263 /* replace @minor with NULL so lookups will fail from now on */
264 spin_lock_irqsave(&drm_minor_lock, flags);
265 idr_replace(&drm_minors_idr, NULL, minor->index);
266 spin_unlock_irqrestore(&drm_minor_lock, flags);
268 device_del(minor->kdev);
269 dev_set_drvdata(minor->kdev, NULL); /* safety belt */
270 drm_debugfs_cleanup(minor);
274 * Looks up the given minor-ID and returns the respective DRM-minor object. The
275 * refence-count of the underlying device is increased so you must release this
276 * object with drm_minor_release().
278 * As long as you hold this minor, it is guaranteed that the object and the
279 * minor->dev pointer will stay valid! However, the device may get unplugged and
280 * unregistered while you hold the minor.
282 struct drm_minor *drm_minor_acquire(unsigned int minor_id)
284 struct drm_minor *minor;
287 spin_lock_irqsave(&drm_minor_lock, flags);
288 minor = idr_find(&drm_minors_idr, minor_id);
290 drm_dev_get(minor->dev);
291 spin_unlock_irqrestore(&drm_minor_lock, flags);
294 return ERR_PTR(-ENODEV);
295 } else if (drm_dev_is_unplugged(minor->dev)) {
296 drm_dev_put(minor->dev);
297 return ERR_PTR(-ENODEV);
303 void drm_minor_release(struct drm_minor *minor)
305 drm_dev_put(minor->dev);
309 * DOC: driver instance overview
311 * A device instance for a drm driver is represented by &struct drm_device. This
312 * is allocated with drm_dev_alloc(), usually from bus-specific ->probe()
313 * callbacks implemented by the driver. The driver then needs to initialize all
314 * the various subsystems for the drm device like memory management, vblank
315 * handling, modesetting support and intial output configuration plus obviously
316 * initialize all the corresponding hardware bits. An important part of this is
317 * also calling drm_dev_set_unique() to set the userspace-visible unique name of
318 * this device instance. Finally when everything is up and running and ready for
319 * userspace the device instance can be published using drm_dev_register().
321 * There is also deprecated support for initalizing device instances using
322 * bus-specific helpers and the &drm_driver.load callback. But due to
323 * backwards-compatibility needs the device instance have to be published too
324 * early, which requires unpretty global locking to make safe and is therefore
325 * only support for existing drivers not yet converted to the new scheme.
327 * When cleaning up a device instance everything needs to be done in reverse:
328 * First unpublish the device instance with drm_dev_unregister(). Then clean up
329 * any other resources allocated at device initialization and drop the driver's
330 * reference to &drm_device using drm_dev_put().
332 * Note that the lifetime rules for &drm_device instance has still a lot of
333 * historical baggage. Hence use the reference counting provided by
334 * drm_dev_get() and drm_dev_put() only carefully.
336 * It is recommended that drivers embed &struct drm_device into their own device
337 * structure, which is supported through drm_dev_init().
341 * drm_put_dev - Unregister and release a DRM device
344 * Called at module unload time or when a PCI device is unplugged.
346 * Cleans up all DRM device, calling drm_lastclose().
348 * Note: Use of this function is deprecated. It will eventually go away
349 * completely. Please use drm_dev_unregister() and drm_dev_put() explicitly
350 * instead to make sure that the device isn't userspace accessible any more
351 * while teardown is in progress, ensuring that userspace can't access an
352 * inconsistent state.
354 void drm_put_dev(struct drm_device *dev)
359 DRM_ERROR("cleanup called no dev\n");
363 drm_dev_unregister(dev);
366 EXPORT_SYMBOL(drm_put_dev);
368 static void drm_device_set_unplugged(struct drm_device *dev)
371 atomic_set(&dev->unplugged, 1);
375 * drm_dev_unplug - unplug a DRM device
378 * This unplugs a hotpluggable DRM device, which makes it inaccessible to
379 * userspace operations. Entry-points can use drm_dev_is_unplugged(). This
380 * essentially unregisters the device like drm_dev_unregister(), but can be
381 * called while there are still open users of @dev.
383 void drm_dev_unplug(struct drm_device *dev)
385 drm_dev_unregister(dev);
387 mutex_lock(&drm_global_mutex);
388 drm_device_set_unplugged(dev);
389 if (dev->open_count == 0)
391 mutex_unlock(&drm_global_mutex);
393 EXPORT_SYMBOL(drm_dev_unplug);
397 * We want to be able to allocate our own "struct address_space" to control
398 * memory-mappings in VRAM (or stolen RAM, ...). However, core MM does not allow
399 * stand-alone address_space objects, so we need an underlying inode. As there
400 * is no way to allocate an independent inode easily, we need a fake internal
403 * The drm_fs_inode_new() function allocates a new inode, drm_fs_inode_free()
404 * frees it again. You are allowed to use iget() and iput() to get references to
405 * the inode. But each drm_fs_inode_new() call must be paired with exactly one
406 * drm_fs_inode_free() call (which does not have to be the last iput()).
407 * We use drm_fs_inode_*() to manage our internal VFS mount-point and share it
408 * between multiple inode-users. You could, technically, call
409 * iget() + drm_fs_inode_free() directly after alloc and sometime later do an
410 * iput(), but this way you'd end up with a new vfsmount for each inode.
413 static int drm_fs_cnt;
414 static struct vfsmount *drm_fs_mnt;
416 static const struct dentry_operations drm_fs_dops = {
417 .d_dname = simple_dname,
420 static const struct super_operations drm_fs_sops = {
421 .statfs = simple_statfs,
424 static struct dentry *drm_fs_mount(struct file_system_type *fs_type, int flags,
425 const char *dev_name, void *data)
427 return mount_pseudo(fs_type,
434 static struct file_system_type drm_fs_type = {
436 .owner = THIS_MODULE,
437 .mount = drm_fs_mount,
438 .kill_sb = kill_anon_super,
441 static struct inode *drm_fs_inode_new(void)
446 r = simple_pin_fs(&drm_fs_type, &drm_fs_mnt, &drm_fs_cnt);
448 DRM_ERROR("Cannot mount pseudo fs: %d\n", r);
452 inode = alloc_anon_inode(drm_fs_mnt->mnt_sb);
454 simple_release_fs(&drm_fs_mnt, &drm_fs_cnt);
459 static void drm_fs_inode_free(struct inode *inode)
463 simple_release_fs(&drm_fs_mnt, &drm_fs_cnt);
468 * drm_dev_init - Initialise new DRM device
470 * @driver: DRM driver
471 * @parent: Parent device object
473 * Initialize a new DRM device. No device registration is done.
474 * Call drm_dev_register() to advertice the device to user space and register it
475 * with other core subsystems. This should be done last in the device
476 * initialization sequence to make sure userspace can't access an inconsistent
479 * The initial ref-count of the object is 1. Use drm_dev_get() and
480 * drm_dev_put() to take and drop further ref-counts.
482 * Note that for purely virtual devices @parent can be NULL.
484 * Drivers that do not want to allocate their own device struct
485 * embedding &struct drm_device can call drm_dev_alloc() instead. For drivers
486 * that do embed &struct drm_device it must be placed first in the overall
487 * structure, and the overall structure must be allocated using kmalloc(): The
488 * drm core's release function unconditionally calls kfree() on the @dev pointer
489 * when the final reference is released. To override this behaviour, and so
490 * allow embedding of the drm_device inside the driver's device struct at an
491 * arbitrary offset, you must supply a &drm_driver.release callback and control
492 * the finalization explicitly.
495 * 0 on success, or error code on failure.
497 int drm_dev_init(struct drm_device *dev,
498 struct drm_driver *driver,
499 struct device *parent)
503 if (!drm_core_init_complete) {
504 DRM_ERROR("DRM core is not initialized\n");
508 kref_init(&dev->ref);
510 dev->driver = driver;
512 INIT_LIST_HEAD(&dev->filelist);
513 INIT_LIST_HEAD(&dev->ctxlist);
514 INIT_LIST_HEAD(&dev->vmalist);
515 INIT_LIST_HEAD(&dev->maplist);
516 INIT_LIST_HEAD(&dev->vblank_event_list);
518 spin_lock_init(&dev->buf_lock);
519 spin_lock_init(&dev->event_lock);
520 mutex_init(&dev->struct_mutex);
521 mutex_init(&dev->filelist_mutex);
522 mutex_init(&dev->ctxlist_mutex);
523 mutex_init(&dev->master_mutex);
525 dev->anon_inode = drm_fs_inode_new();
526 if (IS_ERR(dev->anon_inode)) {
527 ret = PTR_ERR(dev->anon_inode);
528 DRM_ERROR("Cannot allocate anonymous inode: %d\n", ret);
532 if (drm_core_check_feature(dev, DRIVER_RENDER)) {
533 ret = drm_minor_alloc(dev, DRM_MINOR_RENDER);
538 ret = drm_minor_alloc(dev, DRM_MINOR_PRIMARY);
542 ret = drm_ht_create(&dev->map_hash, 12);
546 drm_legacy_ctxbitmap_init(dev);
548 if (drm_core_check_feature(dev, DRIVER_GEM)) {
549 ret = drm_gem_init(dev);
551 DRM_ERROR("Cannot initialize graphics execution manager (GEM)\n");
556 /* Use the parent device name as DRM device unique identifier, but fall
557 * back to the driver name for virtual devices like vgem. */
558 ret = drm_dev_set_unique(dev, parent ? dev_name(parent) : driver->name);
565 if (drm_core_check_feature(dev, DRIVER_GEM))
566 drm_gem_destroy(dev);
568 drm_legacy_ctxbitmap_cleanup(dev);
569 drm_ht_remove(&dev->map_hash);
571 drm_minor_free(dev, DRM_MINOR_PRIMARY);
572 drm_minor_free(dev, DRM_MINOR_RENDER);
573 drm_minor_free(dev, DRM_MINOR_CONTROL);
574 drm_fs_inode_free(dev->anon_inode);
576 mutex_destroy(&dev->master_mutex);
577 mutex_destroy(&dev->ctxlist_mutex);
578 mutex_destroy(&dev->filelist_mutex);
579 mutex_destroy(&dev->struct_mutex);
582 EXPORT_SYMBOL(drm_dev_init);
585 * drm_dev_fini - Finalize a dead DRM device
588 * Finalize a dead DRM device. This is the converse to drm_dev_init() and
589 * frees up all data allocated by it. All driver private data should be
590 * finalized first. Note that this function does not free the @dev, that is
591 * left to the caller.
593 * The ref-count of @dev must be zero, and drm_dev_fini() should only be called
594 * from a &drm_driver.release callback.
596 void drm_dev_fini(struct drm_device *dev)
598 drm_vblank_cleanup(dev);
600 if (drm_core_check_feature(dev, DRIVER_GEM))
601 drm_gem_destroy(dev);
603 drm_legacy_ctxbitmap_cleanup(dev);
604 drm_ht_remove(&dev->map_hash);
605 drm_fs_inode_free(dev->anon_inode);
607 drm_minor_free(dev, DRM_MINOR_PRIMARY);
608 drm_minor_free(dev, DRM_MINOR_RENDER);
609 drm_minor_free(dev, DRM_MINOR_CONTROL);
611 mutex_destroy(&dev->master_mutex);
612 mutex_destroy(&dev->ctxlist_mutex);
613 mutex_destroy(&dev->filelist_mutex);
614 mutex_destroy(&dev->struct_mutex);
617 EXPORT_SYMBOL(drm_dev_fini);
620 * drm_dev_alloc - Allocate new DRM device
621 * @driver: DRM driver to allocate device for
622 * @parent: Parent device object
624 * Allocate and initialize a new DRM device. No device registration is done.
625 * Call drm_dev_register() to advertice the device to user space and register it
626 * with other core subsystems. This should be done last in the device
627 * initialization sequence to make sure userspace can't access an inconsistent
630 * The initial ref-count of the object is 1. Use drm_dev_get() and
631 * drm_dev_put() to take and drop further ref-counts.
633 * Note that for purely virtual devices @parent can be NULL.
635 * Drivers that wish to subclass or embed &struct drm_device into their
636 * own struct should look at using drm_dev_init() instead.
639 * Pointer to new DRM device, or ERR_PTR on failure.
641 struct drm_device *drm_dev_alloc(struct drm_driver *driver,
642 struct device *parent)
644 struct drm_device *dev;
647 dev = kzalloc(sizeof(*dev), GFP_KERNEL);
649 return ERR_PTR(-ENOMEM);
651 ret = drm_dev_init(dev, driver, parent);
659 EXPORT_SYMBOL(drm_dev_alloc);
661 static void drm_dev_release(struct kref *ref)
663 struct drm_device *dev = container_of(ref, struct drm_device, ref);
665 if (dev->driver->release) {
666 dev->driver->release(dev);
674 * drm_dev_get - Take reference of a DRM device
675 * @dev: device to take reference of or NULL
677 * This increases the ref-count of @dev by one. You *must* already own a
678 * reference when calling this. Use drm_dev_put() to drop this reference
681 * This function never fails. However, this function does not provide *any*
682 * guarantee whether the device is alive or running. It only provides a
683 * reference to the object and the memory associated with it.
685 void drm_dev_get(struct drm_device *dev)
690 EXPORT_SYMBOL(drm_dev_get);
693 * drm_dev_put - Drop reference of a DRM device
694 * @dev: device to drop reference of or NULL
696 * This decreases the ref-count of @dev by one. The device is destroyed if the
697 * ref-count drops to zero.
699 void drm_dev_put(struct drm_device *dev)
702 kref_put(&dev->ref, drm_dev_release);
704 EXPORT_SYMBOL(drm_dev_put);
707 * drm_dev_unref - Drop reference of a DRM device
708 * @dev: device to drop reference of or NULL
710 * This is a compatibility alias for drm_dev_put() and should not be used by new
713 void drm_dev_unref(struct drm_device *dev)
717 EXPORT_SYMBOL(drm_dev_unref);
719 static int create_compat_control_link(struct drm_device *dev)
721 struct drm_minor *minor;
725 if (!drm_core_check_feature(dev, DRIVER_MODESET))
728 minor = *drm_minor_get_slot(dev, DRM_MINOR_PRIMARY);
733 * Some existing userspace out there uses the existing of the controlD*
734 * sysfs files to figure out whether it's a modeset driver. It only does
735 * readdir, hence a symlink is sufficient (and the least confusing
736 * option). Otherwise controlD* is entirely unused.
738 * Old controlD chardev have been allocated in the range
741 name = kasprintf(GFP_KERNEL, "controlD%d", minor->index + 64);
745 ret = sysfs_create_link(minor->kdev->kobj.parent,
754 static void remove_compat_control_link(struct drm_device *dev)
756 struct drm_minor *minor;
759 if (!drm_core_check_feature(dev, DRIVER_MODESET))
762 minor = *drm_minor_get_slot(dev, DRM_MINOR_PRIMARY);
766 name = kasprintf(GFP_KERNEL, "controlD%d", minor->index);
770 sysfs_remove_link(minor->kdev->kobj.parent, name);
776 * drm_dev_register - Register DRM device
777 * @dev: Device to register
778 * @flags: Flags passed to the driver's .load() function
780 * Register the DRM device @dev with the system, advertise device to user-space
781 * and start normal device operation. @dev must be allocated via drm_dev_alloc()
784 * Never call this twice on any device!
786 * NOTE: To ensure backward compatibility with existing drivers method this
787 * function calls the &drm_driver.load method after registering the device
788 * nodes, creating race conditions. Usage of the &drm_driver.load methods is
789 * therefore deprecated, drivers must perform all initialization before calling
790 * drm_dev_register().
793 * 0 on success, negative error code on failure.
795 int drm_dev_register(struct drm_device *dev, unsigned long flags)
797 struct drm_driver *driver = dev->driver;
800 mutex_lock(&drm_global_mutex);
802 ret = drm_minor_register(dev, DRM_MINOR_CONTROL);
806 ret = drm_minor_register(dev, DRM_MINOR_RENDER);
810 ret = drm_minor_register(dev, DRM_MINOR_PRIMARY);
814 ret = create_compat_control_link(dev);
818 dev->registered = true;
820 if (dev->driver->load) {
821 ret = dev->driver->load(dev, flags);
826 if (drm_core_check_feature(dev, DRIVER_MODESET))
827 drm_modeset_register_all(dev);
831 DRM_INFO("Initialized %s %d.%d.%d %s for %s on minor %d\n",
832 driver->name, driver->major, driver->minor,
833 driver->patchlevel, driver->date,
834 dev->dev ? dev_name(dev->dev) : "virtual device",
835 dev->primary->index);
840 remove_compat_control_link(dev);
841 drm_minor_unregister(dev, DRM_MINOR_PRIMARY);
842 drm_minor_unregister(dev, DRM_MINOR_RENDER);
843 drm_minor_unregister(dev, DRM_MINOR_CONTROL);
845 mutex_unlock(&drm_global_mutex);
848 EXPORT_SYMBOL(drm_dev_register);
851 * drm_dev_unregister - Unregister DRM device
852 * @dev: Device to unregister
854 * Unregister the DRM device from the system. This does the reverse of
855 * drm_dev_register() but does not deallocate the device. The caller must call
856 * drm_dev_put() to drop their final reference.
858 * A special form of unregistering for hotpluggable devices is drm_dev_unplug(),
859 * which can be called while there are still open users of @dev.
861 * This should be called first in the device teardown code to make sure
862 * userspace can't access the device instance any more.
864 void drm_dev_unregister(struct drm_device *dev)
866 struct drm_map_list *r_list, *list_temp;
868 if (drm_core_check_feature(dev, DRIVER_LEGACY))
871 dev->registered = false;
873 if (drm_core_check_feature(dev, DRIVER_MODESET))
874 drm_modeset_unregister_all(dev);
876 if (dev->driver->unload)
877 dev->driver->unload(dev);
880 drm_pci_agp_destroy(dev);
882 list_for_each_entry_safe(r_list, list_temp, &dev->maplist, head)
883 drm_legacy_rmmap(dev, r_list->map);
885 remove_compat_control_link(dev);
886 drm_minor_unregister(dev, DRM_MINOR_PRIMARY);
887 drm_minor_unregister(dev, DRM_MINOR_RENDER);
888 drm_minor_unregister(dev, DRM_MINOR_CONTROL);
890 EXPORT_SYMBOL(drm_dev_unregister);
893 * drm_dev_set_unique - Set the unique name of a DRM device
894 * @dev: device of which to set the unique name
897 * Sets the unique name of a DRM device using the specified string. Drivers
898 * can use this at driver probe time if the unique name of the devices they
901 * Return: 0 on success or a negative error code on failure.
903 int drm_dev_set_unique(struct drm_device *dev, const char *name)
906 dev->unique = kstrdup(name, GFP_KERNEL);
908 return dev->unique ? 0 : -ENOMEM;
910 EXPORT_SYMBOL(drm_dev_set_unique);
914 * The DRM core module initializes all global DRM objects and makes them
915 * available to drivers. Once setup, drivers can probe their respective
917 * Currently, core management includes:
918 * - The "DRM-Global" key/value database
919 * - Global ID management for connectors
920 * - DRM major number allocation
921 * - DRM minor management
925 * Furthermore, the DRM core provides dynamic char-dev lookups. For each
926 * interface registered on a DRM device, you can request minor numbers from DRM
927 * core. DRM core takes care of major-number management and char-dev
928 * registration. A stub ->open() callback forwards any open() requests to the
932 static int drm_stub_open(struct inode *inode, struct file *filp)
934 const struct file_operations *new_fops;
935 struct drm_minor *minor;
940 mutex_lock(&drm_global_mutex);
941 minor = drm_minor_acquire(iminor(inode));
943 err = PTR_ERR(minor);
947 new_fops = fops_get(minor->dev->driver->fops);
953 replace_fops(filp, new_fops);
954 if (filp->f_op->open)
955 err = filp->f_op->open(inode, filp);
960 drm_minor_release(minor);
962 mutex_unlock(&drm_global_mutex);
966 static const struct file_operations drm_stub_fops = {
967 .owner = THIS_MODULE,
968 .open = drm_stub_open,
969 .llseek = noop_llseek,
972 static void drm_core_exit(void)
974 unregister_chrdev(DRM_MAJOR, "drm");
975 debugfs_remove(drm_debugfs_root);
977 idr_destroy(&drm_minors_idr);
978 drm_connector_ida_destroy();
979 drm_global_release();
982 static int __init drm_core_init(void)
987 drm_connector_ida_init();
988 idr_init(&drm_minors_idr);
990 ret = drm_sysfs_init();
992 DRM_ERROR("Cannot create DRM class: %d\n", ret);
996 drm_debugfs_root = debugfs_create_dir("dri", NULL);
997 if (!drm_debugfs_root) {
999 DRM_ERROR("Cannot create debugfs-root: %d\n", ret);
1003 ret = register_chrdev(DRM_MAJOR, "drm", &drm_stub_fops);
1007 drm_core_init_complete = true;
1009 DRM_DEBUG("Initialized\n");
1017 module_init(drm_core_init);
1018 module_exit(drm_core_exit);