ACPI: Make AC and battery drivers available on !X86
[sfrench/cifs-2.6.git] / drivers / gpu / drm / vc4 / vc4_kms.c
1 /*
2  * Copyright (C) 2015 Broadcom
3  *
4  * This program is free software; you can redistribute it and/or modify
5  * it under the terms of the GNU General Public License version 2 as
6  * published by the Free Software Foundation.
7  */
8
9 /**
10  * DOC: VC4 KMS
11  *
12  * This is the general code for implementing KMS mode setting that
13  * doesn't clearly associate with any of the other objects (plane,
14  * crtc, HDMI encoder).
15  */
16
17 #include <drm/drm_crtc.h>
18 #include <drm/drm_atomic.h>
19 #include <drm/drm_atomic_helper.h>
20 #include <drm/drm_gem_framebuffer_helper.h>
21 #include <drm/drm_plane_helper.h>
22 #include <drm/drm_probe_helper.h>
23 #include "vc4_drv.h"
24 #include "vc4_regs.h"
25
26 struct vc4_ctm_state {
27         struct drm_private_state base;
28         struct drm_color_ctm *ctm;
29         int fifo;
30 };
31
32 static struct vc4_ctm_state *to_vc4_ctm_state(struct drm_private_state *priv)
33 {
34         return container_of(priv, struct vc4_ctm_state, base);
35 }
36
37 struct vc4_load_tracker_state {
38         struct drm_private_state base;
39         u64 hvs_load;
40         u64 membus_load;
41 };
42
43 static struct vc4_load_tracker_state *
44 to_vc4_load_tracker_state(struct drm_private_state *priv)
45 {
46         return container_of(priv, struct vc4_load_tracker_state, base);
47 }
48
49 static struct vc4_ctm_state *vc4_get_ctm_state(struct drm_atomic_state *state,
50                                                struct drm_private_obj *manager)
51 {
52         struct drm_device *dev = state->dev;
53         struct vc4_dev *vc4 = dev->dev_private;
54         struct drm_private_state *priv_state;
55         int ret;
56
57         ret = drm_modeset_lock(&vc4->ctm_state_lock, state->acquire_ctx);
58         if (ret)
59                 return ERR_PTR(ret);
60
61         priv_state = drm_atomic_get_private_obj_state(state, manager);
62         if (IS_ERR(priv_state))
63                 return ERR_CAST(priv_state);
64
65         return to_vc4_ctm_state(priv_state);
66 }
67
68 static struct drm_private_state *
69 vc4_ctm_duplicate_state(struct drm_private_obj *obj)
70 {
71         struct vc4_ctm_state *state;
72
73         state = kmemdup(obj->state, sizeof(*state), GFP_KERNEL);
74         if (!state)
75                 return NULL;
76
77         __drm_atomic_helper_private_obj_duplicate_state(obj, &state->base);
78
79         return &state->base;
80 }
81
82 static void vc4_ctm_destroy_state(struct drm_private_obj *obj,
83                                   struct drm_private_state *state)
84 {
85         struct vc4_ctm_state *ctm_state = to_vc4_ctm_state(state);
86
87         kfree(ctm_state);
88 }
89
90 static const struct drm_private_state_funcs vc4_ctm_state_funcs = {
91         .atomic_duplicate_state = vc4_ctm_duplicate_state,
92         .atomic_destroy_state = vc4_ctm_destroy_state,
93 };
94
95 /* Converts a DRM S31.32 value to the HW S0.9 format. */
96 static u16 vc4_ctm_s31_32_to_s0_9(u64 in)
97 {
98         u16 r;
99
100         /* Sign bit. */
101         r = in & BIT_ULL(63) ? BIT(9) : 0;
102
103         if ((in & GENMASK_ULL(62, 32)) > 0) {
104                 /* We have zero integer bits so we can only saturate here. */
105                 r |= GENMASK(8, 0);
106         } else {
107                 /* Otherwise take the 9 most important fractional bits. */
108                 r |= (in >> 23) & GENMASK(8, 0);
109         }
110
111         return r;
112 }
113
114 static void
115 vc4_ctm_commit(struct vc4_dev *vc4, struct drm_atomic_state *state)
116 {
117         struct vc4_ctm_state *ctm_state = to_vc4_ctm_state(vc4->ctm_manager.state);
118         struct drm_color_ctm *ctm = ctm_state->ctm;
119
120         if (ctm_state->fifo) {
121                 HVS_WRITE(SCALER_OLEDCOEF2,
122                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[0]),
123                                         SCALER_OLEDCOEF2_R_TO_R) |
124                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[3]),
125                                         SCALER_OLEDCOEF2_R_TO_G) |
126                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[6]),
127                                         SCALER_OLEDCOEF2_R_TO_B));
128                 HVS_WRITE(SCALER_OLEDCOEF1,
129                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[1]),
130                                         SCALER_OLEDCOEF1_G_TO_R) |
131                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[4]),
132                                         SCALER_OLEDCOEF1_G_TO_G) |
133                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[7]),
134                                         SCALER_OLEDCOEF1_G_TO_B));
135                 HVS_WRITE(SCALER_OLEDCOEF0,
136                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[2]),
137                                         SCALER_OLEDCOEF0_B_TO_R) |
138                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[5]),
139                                         SCALER_OLEDCOEF0_B_TO_G) |
140                           VC4_SET_FIELD(vc4_ctm_s31_32_to_s0_9(ctm->matrix[8]),
141                                         SCALER_OLEDCOEF0_B_TO_B));
142         }
143
144         HVS_WRITE(SCALER_OLEDOFFS,
145                   VC4_SET_FIELD(ctm_state->fifo, SCALER_OLEDOFFS_DISPFIFO));
146 }
147
148 static void
149 vc4_atomic_complete_commit(struct drm_atomic_state *state)
150 {
151         struct drm_device *dev = state->dev;
152         struct vc4_dev *vc4 = to_vc4_dev(dev);
153         struct vc4_crtc *vc4_crtc;
154         int i;
155
156         for (i = 0; i < dev->mode_config.num_crtc; i++) {
157                 if (!state->crtcs[i].ptr || !state->crtcs[i].commit)
158                         continue;
159
160                 vc4_crtc = to_vc4_crtc(state->crtcs[i].ptr);
161                 vc4_hvs_mask_underrun(dev, vc4_crtc->channel);
162         }
163
164         drm_atomic_helper_wait_for_fences(dev, state, false);
165
166         drm_atomic_helper_wait_for_dependencies(state);
167
168         drm_atomic_helper_commit_modeset_disables(dev, state);
169
170         vc4_ctm_commit(vc4, state);
171
172         drm_atomic_helper_commit_planes(dev, state, 0);
173
174         drm_atomic_helper_commit_modeset_enables(dev, state);
175
176         drm_atomic_helper_fake_vblank(state);
177
178         drm_atomic_helper_commit_hw_done(state);
179
180         drm_atomic_helper_wait_for_flip_done(dev, state);
181
182         drm_atomic_helper_cleanup_planes(dev, state);
183
184         drm_atomic_helper_commit_cleanup_done(state);
185
186         drm_atomic_state_put(state);
187
188         up(&vc4->async_modeset);
189 }
190
191 static void commit_work(struct work_struct *work)
192 {
193         struct drm_atomic_state *state = container_of(work,
194                                                       struct drm_atomic_state,
195                                                       commit_work);
196         vc4_atomic_complete_commit(state);
197 }
198
199 /**
200  * vc4_atomic_commit - commit validated state object
201  * @dev: DRM device
202  * @state: the driver state object
203  * @nonblock: nonblocking commit
204  *
205  * This function commits a with drm_atomic_helper_check() pre-validated state
206  * object. This can still fail when e.g. the framebuffer reservation fails. For
207  * now this doesn't implement asynchronous commits.
208  *
209  * RETURNS
210  * Zero for success or -errno.
211  */
212 static int vc4_atomic_commit(struct drm_device *dev,
213                              struct drm_atomic_state *state,
214                              bool nonblock)
215 {
216         struct vc4_dev *vc4 = to_vc4_dev(dev);
217         int ret;
218
219         if (state->async_update) {
220                 ret = down_interruptible(&vc4->async_modeset);
221                 if (ret)
222                         return ret;
223
224                 ret = drm_atomic_helper_prepare_planes(dev, state);
225                 if (ret) {
226                         up(&vc4->async_modeset);
227                         return ret;
228                 }
229
230                 drm_atomic_helper_async_commit(dev, state);
231
232                 drm_atomic_helper_cleanup_planes(dev, state);
233
234                 up(&vc4->async_modeset);
235
236                 return 0;
237         }
238
239         /* We know for sure we don't want an async update here. Set
240          * state->legacy_cursor_update to false to prevent
241          * drm_atomic_helper_setup_commit() from auto-completing
242          * commit->flip_done.
243          */
244         state->legacy_cursor_update = false;
245         ret = drm_atomic_helper_setup_commit(state, nonblock);
246         if (ret)
247                 return ret;
248
249         INIT_WORK(&state->commit_work, commit_work);
250
251         ret = down_interruptible(&vc4->async_modeset);
252         if (ret)
253                 return ret;
254
255         ret = drm_atomic_helper_prepare_planes(dev, state);
256         if (ret) {
257                 up(&vc4->async_modeset);
258                 return ret;
259         }
260
261         if (!nonblock) {
262                 ret = drm_atomic_helper_wait_for_fences(dev, state, true);
263                 if (ret) {
264                         drm_atomic_helper_cleanup_planes(dev, state);
265                         up(&vc4->async_modeset);
266                         return ret;
267                 }
268         }
269
270         /*
271          * This is the point of no return - everything below never fails except
272          * when the hw goes bonghits. Which means we can commit the new state on
273          * the software side now.
274          */
275
276         BUG_ON(drm_atomic_helper_swap_state(state, false) < 0);
277
278         /*
279          * Everything below can be run asynchronously without the need to grab
280          * any modeset locks at all under one condition: It must be guaranteed
281          * that the asynchronous work has either been cancelled (if the driver
282          * supports it, which at least requires that the framebuffers get
283          * cleaned up with drm_atomic_helper_cleanup_planes()) or completed
284          * before the new state gets committed on the software side with
285          * drm_atomic_helper_swap_state().
286          *
287          * This scheme allows new atomic state updates to be prepared and
288          * checked in parallel to the asynchronous completion of the previous
289          * update. Which is important since compositors need to figure out the
290          * composition of the next frame right after having submitted the
291          * current layout.
292          */
293
294         drm_atomic_state_get(state);
295         if (nonblock)
296                 queue_work(system_unbound_wq, &state->commit_work);
297         else
298                 vc4_atomic_complete_commit(state);
299
300         return 0;
301 }
302
303 static struct drm_framebuffer *vc4_fb_create(struct drm_device *dev,
304                                              struct drm_file *file_priv,
305                                              const struct drm_mode_fb_cmd2 *mode_cmd)
306 {
307         struct drm_mode_fb_cmd2 mode_cmd_local;
308
309         /* If the user didn't specify a modifier, use the
310          * vc4_set_tiling_ioctl() state for the BO.
311          */
312         if (!(mode_cmd->flags & DRM_MODE_FB_MODIFIERS)) {
313                 struct drm_gem_object *gem_obj;
314                 struct vc4_bo *bo;
315
316                 gem_obj = drm_gem_object_lookup(file_priv,
317                                                 mode_cmd->handles[0]);
318                 if (!gem_obj) {
319                         DRM_DEBUG("Failed to look up GEM BO %d\n",
320                                   mode_cmd->handles[0]);
321                         return ERR_PTR(-ENOENT);
322                 }
323                 bo = to_vc4_bo(gem_obj);
324
325                 mode_cmd_local = *mode_cmd;
326
327                 if (bo->t_format) {
328                         mode_cmd_local.modifier[0] =
329                                 DRM_FORMAT_MOD_BROADCOM_VC4_T_TILED;
330                 } else {
331                         mode_cmd_local.modifier[0] = DRM_FORMAT_MOD_NONE;
332                 }
333
334                 drm_gem_object_put_unlocked(gem_obj);
335
336                 mode_cmd = &mode_cmd_local;
337         }
338
339         return drm_gem_fb_create(dev, file_priv, mode_cmd);
340 }
341
342 /* Our CTM has some peculiar limitations: we can only enable it for one CRTC
343  * at a time and the HW only supports S0.9 scalars. To account for the latter,
344  * we don't allow userland to set a CTM that we have no hope of approximating.
345  */
346 static int
347 vc4_ctm_atomic_check(struct drm_device *dev, struct drm_atomic_state *state)
348 {
349         struct vc4_dev *vc4 = to_vc4_dev(dev);
350         struct vc4_ctm_state *ctm_state = NULL;
351         struct drm_crtc *crtc;
352         struct drm_crtc_state *old_crtc_state, *new_crtc_state;
353         struct drm_color_ctm *ctm;
354         int i;
355
356         for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) {
357                 /* CTM is being disabled. */
358                 if (!new_crtc_state->ctm && old_crtc_state->ctm) {
359                         ctm_state = vc4_get_ctm_state(state, &vc4->ctm_manager);
360                         if (IS_ERR(ctm_state))
361                                 return PTR_ERR(ctm_state);
362                         ctm_state->fifo = 0;
363                 }
364         }
365
366         for_each_oldnew_crtc_in_state(state, crtc, old_crtc_state, new_crtc_state, i) {
367                 if (new_crtc_state->ctm == old_crtc_state->ctm)
368                         continue;
369
370                 if (!ctm_state) {
371                         ctm_state = vc4_get_ctm_state(state, &vc4->ctm_manager);
372                         if (IS_ERR(ctm_state))
373                                 return PTR_ERR(ctm_state);
374                 }
375
376                 /* CTM is being enabled or the matrix changed. */
377                 if (new_crtc_state->ctm) {
378                         /* fifo is 1-based since 0 disables CTM. */
379                         int fifo = to_vc4_crtc(crtc)->channel + 1;
380
381                         /* Check userland isn't trying to turn on CTM for more
382                          * than one CRTC at a time.
383                          */
384                         if (ctm_state->fifo && ctm_state->fifo != fifo) {
385                                 DRM_DEBUG_DRIVER("Too many CTM configured\n");
386                                 return -EINVAL;
387                         }
388
389                         /* Check we can approximate the specified CTM.
390                          * We disallow scalars |c| > 1.0 since the HW has
391                          * no integer bits.
392                          */
393                         ctm = new_crtc_state->ctm->data;
394                         for (i = 0; i < ARRAY_SIZE(ctm->matrix); i++) {
395                                 u64 val = ctm->matrix[i];
396
397                                 val &= ~BIT_ULL(63);
398                                 if (val > BIT_ULL(32))
399                                         return -EINVAL;
400                         }
401
402                         ctm_state->fifo = fifo;
403                         ctm_state->ctm = ctm;
404                 }
405         }
406
407         return 0;
408 }
409
410 static int vc4_load_tracker_atomic_check(struct drm_atomic_state *state)
411 {
412         struct drm_plane_state *old_plane_state, *new_plane_state;
413         struct vc4_dev *vc4 = to_vc4_dev(state->dev);
414         struct vc4_load_tracker_state *load_state;
415         struct drm_private_state *priv_state;
416         struct drm_plane *plane;
417         int i;
418
419         priv_state = drm_atomic_get_private_obj_state(state,
420                                                       &vc4->load_tracker);
421         if (IS_ERR(priv_state))
422                 return PTR_ERR(priv_state);
423
424         load_state = to_vc4_load_tracker_state(priv_state);
425         for_each_oldnew_plane_in_state(state, plane, old_plane_state,
426                                        new_plane_state, i) {
427                 struct vc4_plane_state *vc4_plane_state;
428
429                 if (old_plane_state->fb && old_plane_state->crtc) {
430                         vc4_plane_state = to_vc4_plane_state(old_plane_state);
431                         load_state->membus_load -= vc4_plane_state->membus_load;
432                         load_state->hvs_load -= vc4_plane_state->hvs_load;
433                 }
434
435                 if (new_plane_state->fb && new_plane_state->crtc) {
436                         vc4_plane_state = to_vc4_plane_state(new_plane_state);
437                         load_state->membus_load += vc4_plane_state->membus_load;
438                         load_state->hvs_load += vc4_plane_state->hvs_load;
439                 }
440         }
441
442         /* Don't check the load when the tracker is disabled. */
443         if (!vc4->load_tracker_enabled)
444                 return 0;
445
446         /* The absolute limit is 2Gbyte/sec, but let's take a margin to let
447          * the system work when other blocks are accessing the memory.
448          */
449         if (load_state->membus_load > SZ_1G + SZ_512M)
450                 return -ENOSPC;
451
452         /* HVS clock is supposed to run @ 250Mhz, let's take a margin and
453          * consider the maximum number of cycles is 240M.
454          */
455         if (load_state->hvs_load > 240000000ULL)
456                 return -ENOSPC;
457
458         return 0;
459 }
460
461 static struct drm_private_state *
462 vc4_load_tracker_duplicate_state(struct drm_private_obj *obj)
463 {
464         struct vc4_load_tracker_state *state;
465
466         state = kmemdup(obj->state, sizeof(*state), GFP_KERNEL);
467         if (!state)
468                 return NULL;
469
470         __drm_atomic_helper_private_obj_duplicate_state(obj, &state->base);
471
472         return &state->base;
473 }
474
475 static void vc4_load_tracker_destroy_state(struct drm_private_obj *obj,
476                                            struct drm_private_state *state)
477 {
478         struct vc4_load_tracker_state *load_state;
479
480         load_state = to_vc4_load_tracker_state(state);
481         kfree(load_state);
482 }
483
484 static const struct drm_private_state_funcs vc4_load_tracker_state_funcs = {
485         .atomic_duplicate_state = vc4_load_tracker_duplicate_state,
486         .atomic_destroy_state = vc4_load_tracker_destroy_state,
487 };
488
489 static int
490 vc4_atomic_check(struct drm_device *dev, struct drm_atomic_state *state)
491 {
492         int ret;
493
494         ret = vc4_ctm_atomic_check(dev, state);
495         if (ret < 0)
496                 return ret;
497
498         ret = drm_atomic_helper_check(dev, state);
499         if (ret)
500                 return ret;
501
502         return vc4_load_tracker_atomic_check(state);
503 }
504
505 static const struct drm_mode_config_funcs vc4_mode_funcs = {
506         .atomic_check = vc4_atomic_check,
507         .atomic_commit = vc4_atomic_commit,
508         .fb_create = vc4_fb_create,
509 };
510
511 int vc4_kms_load(struct drm_device *dev)
512 {
513         struct vc4_dev *vc4 = to_vc4_dev(dev);
514         struct vc4_ctm_state *ctm_state;
515         struct vc4_load_tracker_state *load_state;
516         int ret;
517
518         /* Start with the load tracker enabled. Can be disabled through the
519          * debugfs load_tracker file.
520          */
521         vc4->load_tracker_enabled = true;
522
523         sema_init(&vc4->async_modeset, 1);
524
525         /* Set support for vblank irq fast disable, before drm_vblank_init() */
526         dev->vblank_disable_immediate = true;
527
528         dev->irq_enabled = true;
529         ret = drm_vblank_init(dev, dev->mode_config.num_crtc);
530         if (ret < 0) {
531                 dev_err(dev->dev, "failed to initialize vblank\n");
532                 return ret;
533         }
534
535         dev->mode_config.max_width = 2048;
536         dev->mode_config.max_height = 2048;
537         dev->mode_config.funcs = &vc4_mode_funcs;
538         dev->mode_config.preferred_depth = 24;
539         dev->mode_config.async_page_flip = true;
540         dev->mode_config.allow_fb_modifiers = true;
541
542         drm_modeset_lock_init(&vc4->ctm_state_lock);
543
544         ctm_state = kzalloc(sizeof(*ctm_state), GFP_KERNEL);
545         if (!ctm_state)
546                 return -ENOMEM;
547
548         drm_atomic_private_obj_init(dev, &vc4->ctm_manager, &ctm_state->base,
549                                     &vc4_ctm_state_funcs);
550
551         load_state = kzalloc(sizeof(*load_state), GFP_KERNEL);
552         if (!load_state) {
553                 drm_atomic_private_obj_fini(&vc4->ctm_manager);
554                 return -ENOMEM;
555         }
556
557         drm_atomic_private_obj_init(dev, &vc4->load_tracker, &load_state->base,
558                                     &vc4_load_tracker_state_funcs);
559
560         drm_mode_config_reset(dev);
561
562         drm_kms_helper_poll_init(dev);
563
564         return 0;
565 }