These changes are the raw update to linux-4.4.6-rt14. Kernel sources
[kvmfornfv.git] / kernel / drivers / media / platform / vsp1 / vsp1_video.c
1 /*
2  * vsp1_video.c  --  R-Car VSP1 Video Node
3  *
4  * Copyright (C) 2013-2015 Renesas Electronics Corporation
5  *
6  * Contact: Laurent Pinchart (laurent.pinchart@ideasonboard.com)
7  *
8  * This program is free software; you can redistribute it and/or modify
9  * it under the terms of the GNU General Public License as published by
10  * the Free Software Foundation; either version 2 of the License, or
11  * (at your option) any later version.
12  */
13
14 #include <linux/list.h>
15 #include <linux/module.h>
16 #include <linux/mutex.h>
17 #include <linux/sched.h>
18 #include <linux/slab.h>
19 #include <linux/v4l2-mediabus.h>
20 #include <linux/videodev2.h>
21
22 #include <media/media-entity.h>
23 #include <media/v4l2-dev.h>
24 #include <media/v4l2-fh.h>
25 #include <media/v4l2-ioctl.h>
26 #include <media/v4l2-subdev.h>
27 #include <media/videobuf2-v4l2.h>
28 #include <media/videobuf2-dma-contig.h>
29
30 #include "vsp1.h"
31 #include "vsp1_bru.h"
32 #include "vsp1_entity.h"
33 #include "vsp1_rwpf.h"
34 #include "vsp1_uds.h"
35 #include "vsp1_video.h"
36
37 #define VSP1_VIDEO_DEF_FORMAT           V4L2_PIX_FMT_YUYV
38 #define VSP1_VIDEO_DEF_WIDTH            1024
39 #define VSP1_VIDEO_DEF_HEIGHT           768
40
41 #define VSP1_VIDEO_MIN_WIDTH            2U
42 #define VSP1_VIDEO_MAX_WIDTH            8190U
43 #define VSP1_VIDEO_MIN_HEIGHT           2U
44 #define VSP1_VIDEO_MAX_HEIGHT           8190U
45
46 /* -----------------------------------------------------------------------------
47  * Helper functions
48  */
49
50 static const struct vsp1_format_info vsp1_video_formats[] = {
51         { V4L2_PIX_FMT_RGB332, MEDIA_BUS_FMT_ARGB8888_1X32,
52           VI6_FMT_RGB_332, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
53           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
54           1, { 8, 0, 0 }, false, false, 1, 1, false },
55         { V4L2_PIX_FMT_ARGB444, MEDIA_BUS_FMT_ARGB8888_1X32,
56           VI6_FMT_ARGB_4444, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
57           VI6_RPF_DSWAP_P_WDS,
58           1, { 16, 0, 0 }, false, false, 1, 1, true },
59         { V4L2_PIX_FMT_XRGB444, MEDIA_BUS_FMT_ARGB8888_1X32,
60           VI6_FMT_XRGB_4444, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
61           VI6_RPF_DSWAP_P_WDS,
62           1, { 16, 0, 0 }, false, false, 1, 1, true },
63         { V4L2_PIX_FMT_ARGB555, MEDIA_BUS_FMT_ARGB8888_1X32,
64           VI6_FMT_ARGB_1555, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
65           VI6_RPF_DSWAP_P_WDS,
66           1, { 16, 0, 0 }, false, false, 1, 1, true },
67         { V4L2_PIX_FMT_XRGB555, MEDIA_BUS_FMT_ARGB8888_1X32,
68           VI6_FMT_XRGB_1555, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
69           VI6_RPF_DSWAP_P_WDS,
70           1, { 16, 0, 0 }, false, false, 1, 1, false },
71         { V4L2_PIX_FMT_RGB565, MEDIA_BUS_FMT_ARGB8888_1X32,
72           VI6_FMT_RGB_565, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
73           VI6_RPF_DSWAP_P_WDS,
74           1, { 16, 0, 0 }, false, false, 1, 1, false },
75         { V4L2_PIX_FMT_BGR24, MEDIA_BUS_FMT_ARGB8888_1X32,
76           VI6_FMT_BGR_888, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
77           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
78           1, { 24, 0, 0 }, false, false, 1, 1, false },
79         { V4L2_PIX_FMT_RGB24, MEDIA_BUS_FMT_ARGB8888_1X32,
80           VI6_FMT_RGB_888, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
81           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
82           1, { 24, 0, 0 }, false, false, 1, 1, false },
83         { V4L2_PIX_FMT_ABGR32, MEDIA_BUS_FMT_ARGB8888_1X32,
84           VI6_FMT_ARGB_8888, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS,
85           1, { 32, 0, 0 }, false, false, 1, 1, true },
86         { V4L2_PIX_FMT_XBGR32, MEDIA_BUS_FMT_ARGB8888_1X32,
87           VI6_FMT_ARGB_8888, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS,
88           1, { 32, 0, 0 }, false, false, 1, 1, false },
89         { V4L2_PIX_FMT_ARGB32, MEDIA_BUS_FMT_ARGB8888_1X32,
90           VI6_FMT_ARGB_8888, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
91           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
92           1, { 32, 0, 0 }, false, false, 1, 1, true },
93         { V4L2_PIX_FMT_XRGB32, MEDIA_BUS_FMT_ARGB8888_1X32,
94           VI6_FMT_ARGB_8888, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
95           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
96           1, { 32, 0, 0 }, false, false, 1, 1, false },
97         { V4L2_PIX_FMT_UYVY, MEDIA_BUS_FMT_AYUV8_1X32,
98           VI6_FMT_YUYV_422, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
99           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
100           1, { 16, 0, 0 }, false, false, 2, 1, false },
101         { V4L2_PIX_FMT_VYUY, MEDIA_BUS_FMT_AYUV8_1X32,
102           VI6_FMT_YUYV_422, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
103           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
104           1, { 16, 0, 0 }, false, true, 2, 1, false },
105         { V4L2_PIX_FMT_YUYV, MEDIA_BUS_FMT_AYUV8_1X32,
106           VI6_FMT_YUYV_422, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
107           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
108           1, { 16, 0, 0 }, true, false, 2, 1, false },
109         { V4L2_PIX_FMT_YVYU, MEDIA_BUS_FMT_AYUV8_1X32,
110           VI6_FMT_YUYV_422, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
111           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
112           1, { 16, 0, 0 }, true, true, 2, 1, false },
113         { V4L2_PIX_FMT_NV12M, MEDIA_BUS_FMT_AYUV8_1X32,
114           VI6_FMT_Y_UV_420, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
115           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
116           2, { 8, 16, 0 }, false, false, 2, 2, false },
117         { V4L2_PIX_FMT_NV21M, MEDIA_BUS_FMT_AYUV8_1X32,
118           VI6_FMT_Y_UV_420, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
119           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
120           2, { 8, 16, 0 }, false, true, 2, 2, false },
121         { V4L2_PIX_FMT_NV16M, MEDIA_BUS_FMT_AYUV8_1X32,
122           VI6_FMT_Y_UV_422, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
123           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
124           2, { 8, 16, 0 }, false, false, 2, 1, false },
125         { V4L2_PIX_FMT_NV61M, MEDIA_BUS_FMT_AYUV8_1X32,
126           VI6_FMT_Y_UV_422, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
127           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
128           2, { 8, 16, 0 }, false, true, 2, 1, false },
129         { V4L2_PIX_FMT_YUV420M, MEDIA_BUS_FMT_AYUV8_1X32,
130           VI6_FMT_Y_U_V_420, VI6_RPF_DSWAP_P_LLS | VI6_RPF_DSWAP_P_LWS |
131           VI6_RPF_DSWAP_P_WDS | VI6_RPF_DSWAP_P_BTS,
132           3, { 8, 8, 8 }, false, false, 2, 2, false },
133 };
134
135 /*
136  * vsp1_get_format_info - Retrieve format information for a 4CC
137  * @fourcc: the format 4CC
138  *
139  * Return a pointer to the format information structure corresponding to the
140  * given V4L2 format 4CC, or NULL if no corresponding format can be found.
141  */
142 static const struct vsp1_format_info *vsp1_get_format_info(u32 fourcc)
143 {
144         unsigned int i;
145
146         for (i = 0; i < ARRAY_SIZE(vsp1_video_formats); ++i) {
147                 const struct vsp1_format_info *info = &vsp1_video_formats[i];
148
149                 if (info->fourcc == fourcc)
150                         return info;
151         }
152
153         return NULL;
154 }
155
156
157 static struct v4l2_subdev *
158 vsp1_video_remote_subdev(struct media_pad *local, u32 *pad)
159 {
160         struct media_pad *remote;
161
162         remote = media_entity_remote_pad(local);
163         if (remote == NULL ||
164             media_entity_type(remote->entity) != MEDIA_ENT_T_V4L2_SUBDEV)
165                 return NULL;
166
167         if (pad)
168                 *pad = remote->index;
169
170         return media_entity_to_v4l2_subdev(remote->entity);
171 }
172
173 static int vsp1_video_verify_format(struct vsp1_video *video)
174 {
175         struct v4l2_subdev_format fmt;
176         struct v4l2_subdev *subdev;
177         int ret;
178
179         subdev = vsp1_video_remote_subdev(&video->pad, &fmt.pad);
180         if (subdev == NULL)
181                 return -EINVAL;
182
183         fmt.which = V4L2_SUBDEV_FORMAT_ACTIVE;
184         ret = v4l2_subdev_call(subdev, pad, get_fmt, NULL, &fmt);
185         if (ret < 0)
186                 return ret == -ENOIOCTLCMD ? -EINVAL : ret;
187
188         if (video->fmtinfo->mbus != fmt.format.code ||
189             video->format.height != fmt.format.height ||
190             video->format.width != fmt.format.width)
191                 return -EINVAL;
192
193         return 0;
194 }
195
196 static int __vsp1_video_try_format(struct vsp1_video *video,
197                                    struct v4l2_pix_format_mplane *pix,
198                                    const struct vsp1_format_info **fmtinfo)
199 {
200         static const u32 xrgb_formats[][2] = {
201                 { V4L2_PIX_FMT_RGB444, V4L2_PIX_FMT_XRGB444 },
202                 { V4L2_PIX_FMT_RGB555, V4L2_PIX_FMT_XRGB555 },
203                 { V4L2_PIX_FMT_BGR32, V4L2_PIX_FMT_XBGR32 },
204                 { V4L2_PIX_FMT_RGB32, V4L2_PIX_FMT_XRGB32 },
205         };
206
207         const struct vsp1_format_info *info;
208         unsigned int width = pix->width;
209         unsigned int height = pix->height;
210         unsigned int i;
211
212         /* Backward compatibility: replace deprecated RGB formats by their XRGB
213          * equivalent. This selects the format older userspace applications want
214          * while still exposing the new format.
215          */
216         for (i = 0; i < ARRAY_SIZE(xrgb_formats); ++i) {
217                 if (xrgb_formats[i][0] == pix->pixelformat) {
218                         pix->pixelformat = xrgb_formats[i][1];
219                         break;
220                 }
221         }
222
223         /* Retrieve format information and select the default format if the
224          * requested format isn't supported.
225          */
226         info = vsp1_get_format_info(pix->pixelformat);
227         if (info == NULL)
228                 info = vsp1_get_format_info(VSP1_VIDEO_DEF_FORMAT);
229
230         pix->pixelformat = info->fourcc;
231         pix->colorspace = V4L2_COLORSPACE_SRGB;
232         pix->field = V4L2_FIELD_NONE;
233         memset(pix->reserved, 0, sizeof(pix->reserved));
234
235         /* Align the width and height for YUV 4:2:2 and 4:2:0 formats. */
236         width = round_down(width, info->hsub);
237         height = round_down(height, info->vsub);
238
239         /* Clamp the width and height. */
240         pix->width = clamp(width, VSP1_VIDEO_MIN_WIDTH, VSP1_VIDEO_MAX_WIDTH);
241         pix->height = clamp(height, VSP1_VIDEO_MIN_HEIGHT,
242                             VSP1_VIDEO_MAX_HEIGHT);
243
244         /* Compute and clamp the stride and image size. While not documented in
245          * the datasheet, strides not aligned to a multiple of 128 bytes result
246          * in image corruption.
247          */
248         for (i = 0; i < min(info->planes, 2U); ++i) {
249                 unsigned int hsub = i > 0 ? info->hsub : 1;
250                 unsigned int vsub = i > 0 ? info->vsub : 1;
251                 unsigned int align = 128;
252                 unsigned int bpl;
253
254                 bpl = clamp_t(unsigned int, pix->plane_fmt[i].bytesperline,
255                               pix->width / hsub * info->bpp[i] / 8,
256                               round_down(65535U, align));
257
258                 pix->plane_fmt[i].bytesperline = round_up(bpl, align);
259                 pix->plane_fmt[i].sizeimage = pix->plane_fmt[i].bytesperline
260                                             * pix->height / vsub;
261         }
262
263         if (info->planes == 3) {
264                 /* The second and third planes must have the same stride. */
265                 pix->plane_fmt[2].bytesperline = pix->plane_fmt[1].bytesperline;
266                 pix->plane_fmt[2].sizeimage = pix->plane_fmt[1].sizeimage;
267         }
268
269         pix->num_planes = info->planes;
270
271         if (fmtinfo)
272                 *fmtinfo = info;
273
274         return 0;
275 }
276
277 static bool
278 vsp1_video_format_adjust(struct vsp1_video *video,
279                          const struct v4l2_pix_format_mplane *format,
280                          struct v4l2_pix_format_mplane *adjust)
281 {
282         unsigned int i;
283
284         *adjust = *format;
285         __vsp1_video_try_format(video, adjust, NULL);
286
287         if (format->width != adjust->width ||
288             format->height != adjust->height ||
289             format->pixelformat != adjust->pixelformat ||
290             format->num_planes != adjust->num_planes)
291                 return false;
292
293         for (i = 0; i < format->num_planes; ++i) {
294                 if (format->plane_fmt[i].bytesperline !=
295                     adjust->plane_fmt[i].bytesperline)
296                         return false;
297
298                 adjust->plane_fmt[i].sizeimage =
299                         max(adjust->plane_fmt[i].sizeimage,
300                             format->plane_fmt[i].sizeimage);
301         }
302
303         return true;
304 }
305
306 /* -----------------------------------------------------------------------------
307  * Pipeline Management
308  */
309
310 static int vsp1_pipeline_validate_branch(struct vsp1_pipeline *pipe,
311                                          struct vsp1_rwpf *input,
312                                          struct vsp1_rwpf *output)
313 {
314         struct vsp1_entity *entity;
315         unsigned int entities = 0;
316         struct media_pad *pad;
317         bool bru_found = false;
318
319         input->location.left = 0;
320         input->location.top = 0;
321
322         pad = media_entity_remote_pad(&input->entity.pads[RWPF_PAD_SOURCE]);
323
324         while (1) {
325                 if (pad == NULL)
326                         return -EPIPE;
327
328                 /* We've reached a video node, that shouldn't have happened. */
329                 if (media_entity_type(pad->entity) != MEDIA_ENT_T_V4L2_SUBDEV)
330                         return -EPIPE;
331
332                 entity = to_vsp1_entity(media_entity_to_v4l2_subdev(pad->entity));
333
334                 /* A BRU is present in the pipeline, store the compose rectangle
335                  * location in the input RPF for use when configuring the RPF.
336                  */
337                 if (entity->type == VSP1_ENTITY_BRU) {
338                         struct vsp1_bru *bru = to_bru(&entity->subdev);
339                         struct v4l2_rect *rect =
340                                 &bru->inputs[pad->index].compose;
341
342                         bru->inputs[pad->index].rpf = input;
343
344                         input->location.left = rect->left;
345                         input->location.top = rect->top;
346
347                         bru_found = true;
348                 }
349
350                 /* We've reached the WPF, we're done. */
351                 if (entity->type == VSP1_ENTITY_WPF)
352                         break;
353
354                 /* Ensure the branch has no loop. */
355                 if (entities & (1 << entity->subdev.entity.id))
356                         return -EPIPE;
357
358                 entities |= 1 << entity->subdev.entity.id;
359
360                 /* UDS can't be chained. */
361                 if (entity->type == VSP1_ENTITY_UDS) {
362                         if (pipe->uds)
363                                 return -EPIPE;
364
365                         pipe->uds = entity;
366                         pipe->uds_input = bru_found ? pipe->bru
367                                         : &input->entity;
368                 }
369
370                 /* Follow the source link. The link setup operations ensure
371                  * that the output fan-out can't be more than one, there is thus
372                  * no need to verify here that only a single source link is
373                  * activated.
374                  */
375                 pad = &entity->pads[entity->source_pad];
376                 pad = media_entity_remote_pad(pad);
377         }
378
379         /* The last entity must be the output WPF. */
380         if (entity != &output->entity)
381                 return -EPIPE;
382
383         return 0;
384 }
385
386 static void __vsp1_pipeline_cleanup(struct vsp1_pipeline *pipe)
387 {
388         if (pipe->bru) {
389                 struct vsp1_bru *bru = to_bru(&pipe->bru->subdev);
390                 unsigned int i;
391
392                 for (i = 0; i < ARRAY_SIZE(bru->inputs); ++i)
393                         bru->inputs[i].rpf = NULL;
394         }
395
396         INIT_LIST_HEAD(&pipe->entities);
397         pipe->state = VSP1_PIPELINE_STOPPED;
398         pipe->buffers_ready = 0;
399         pipe->num_video = 0;
400         pipe->num_inputs = 0;
401         pipe->output = NULL;
402         pipe->bru = NULL;
403         pipe->lif = NULL;
404         pipe->uds = NULL;
405 }
406
407 static int vsp1_pipeline_validate(struct vsp1_pipeline *pipe,
408                                   struct vsp1_video *video)
409 {
410         struct media_entity_graph graph;
411         struct media_entity *entity = &video->video.entity;
412         struct media_device *mdev = entity->parent;
413         unsigned int i;
414         int ret;
415
416         mutex_lock(&mdev->graph_mutex);
417
418         /* Walk the graph to locate the entities and video nodes. */
419         media_entity_graph_walk_start(&graph, entity);
420
421         while ((entity = media_entity_graph_walk_next(&graph))) {
422                 struct v4l2_subdev *subdev;
423                 struct vsp1_rwpf *rwpf;
424                 struct vsp1_entity *e;
425
426                 if (media_entity_type(entity) != MEDIA_ENT_T_V4L2_SUBDEV) {
427                         pipe->num_video++;
428                         continue;
429                 }
430
431                 subdev = media_entity_to_v4l2_subdev(entity);
432                 e = to_vsp1_entity(subdev);
433                 list_add_tail(&e->list_pipe, &pipe->entities);
434
435                 if (e->type == VSP1_ENTITY_RPF) {
436                         rwpf = to_rwpf(subdev);
437                         pipe->inputs[pipe->num_inputs++] = rwpf;
438                         rwpf->video.pipe_index = pipe->num_inputs;
439                 } else if (e->type == VSP1_ENTITY_WPF) {
440                         rwpf = to_rwpf(subdev);
441                         pipe->output = to_rwpf(subdev);
442                         rwpf->video.pipe_index = 0;
443                 } else if (e->type == VSP1_ENTITY_LIF) {
444                         pipe->lif = e;
445                 } else if (e->type == VSP1_ENTITY_BRU) {
446                         pipe->bru = e;
447                 }
448         }
449
450         mutex_unlock(&mdev->graph_mutex);
451
452         /* We need one output and at least one input. */
453         if (pipe->num_inputs == 0 || !pipe->output) {
454                 ret = -EPIPE;
455                 goto error;
456         }
457
458         /* Follow links downstream for each input and make sure the graph
459          * contains no loop and that all branches end at the output WPF.
460          */
461         for (i = 0; i < pipe->num_inputs; ++i) {
462                 ret = vsp1_pipeline_validate_branch(pipe, pipe->inputs[i],
463                                                     pipe->output);
464                 if (ret < 0)
465                         goto error;
466         }
467
468         return 0;
469
470 error:
471         __vsp1_pipeline_cleanup(pipe);
472         return ret;
473 }
474
475 static int vsp1_pipeline_init(struct vsp1_pipeline *pipe,
476                               struct vsp1_video *video)
477 {
478         int ret;
479
480         mutex_lock(&pipe->lock);
481
482         /* If we're the first user validate and initialize the pipeline. */
483         if (pipe->use_count == 0) {
484                 ret = vsp1_pipeline_validate(pipe, video);
485                 if (ret < 0)
486                         goto done;
487         }
488
489         pipe->use_count++;
490         ret = 0;
491
492 done:
493         mutex_unlock(&pipe->lock);
494         return ret;
495 }
496
497 static void vsp1_pipeline_cleanup(struct vsp1_pipeline *pipe)
498 {
499         mutex_lock(&pipe->lock);
500
501         /* If we're the last user clean up the pipeline. */
502         if (--pipe->use_count == 0)
503                 __vsp1_pipeline_cleanup(pipe);
504
505         mutex_unlock(&pipe->lock);
506 }
507
508 static void vsp1_pipeline_run(struct vsp1_pipeline *pipe)
509 {
510         struct vsp1_device *vsp1 = pipe->output->entity.vsp1;
511
512         vsp1_write(vsp1, VI6_CMD(pipe->output->entity.index), VI6_CMD_STRCMD);
513         pipe->state = VSP1_PIPELINE_RUNNING;
514         pipe->buffers_ready = 0;
515 }
516
517 static bool vsp1_pipeline_stopped(struct vsp1_pipeline *pipe)
518 {
519         unsigned long flags;
520         bool stopped;
521
522         spin_lock_irqsave(&pipe->irqlock, flags);
523         stopped = pipe->state == VSP1_PIPELINE_STOPPED;
524         spin_unlock_irqrestore(&pipe->irqlock, flags);
525
526         return stopped;
527 }
528
529 static int vsp1_pipeline_stop(struct vsp1_pipeline *pipe)
530 {
531         struct vsp1_entity *entity;
532         unsigned long flags;
533         int ret;
534
535         spin_lock_irqsave(&pipe->irqlock, flags);
536         if (pipe->state == VSP1_PIPELINE_RUNNING)
537                 pipe->state = VSP1_PIPELINE_STOPPING;
538         spin_unlock_irqrestore(&pipe->irqlock, flags);
539
540         ret = wait_event_timeout(pipe->wq, vsp1_pipeline_stopped(pipe),
541                                  msecs_to_jiffies(500));
542         ret = ret == 0 ? -ETIMEDOUT : 0;
543
544         list_for_each_entry(entity, &pipe->entities, list_pipe) {
545                 if (entity->route && entity->route->reg)
546                         vsp1_write(entity->vsp1, entity->route->reg,
547                                    VI6_DPR_NODE_UNUSED);
548
549                 v4l2_subdev_call(&entity->subdev, video, s_stream, 0);
550         }
551
552         return ret;
553 }
554
555 static bool vsp1_pipeline_ready(struct vsp1_pipeline *pipe)
556 {
557         unsigned int mask;
558
559         mask = ((1 << pipe->num_inputs) - 1) << 1;
560         if (!pipe->lif)
561                 mask |= 1 << 0;
562
563         return pipe->buffers_ready == mask;
564 }
565
566 /*
567  * vsp1_video_complete_buffer - Complete the current buffer
568  * @video: the video node
569  *
570  * This function completes the current buffer by filling its sequence number,
571  * time stamp and payload size, and hands it back to the videobuf core.
572  *
573  * When operating in DU output mode (deep pipeline to the DU through the LIF),
574  * the VSP1 needs to constantly supply frames to the display. In that case, if
575  * no other buffer is queued, reuse the one that has just been processed instead
576  * of handing it back to the videobuf core.
577  *
578  * Return the next queued buffer or NULL if the queue is empty.
579  */
580 static struct vsp1_video_buffer *
581 vsp1_video_complete_buffer(struct vsp1_video *video)
582 {
583         struct vsp1_pipeline *pipe = to_vsp1_pipeline(&video->video.entity);
584         struct vsp1_video_buffer *next = NULL;
585         struct vsp1_video_buffer *done;
586         unsigned long flags;
587         unsigned int i;
588
589         spin_lock_irqsave(&video->irqlock, flags);
590
591         if (list_empty(&video->irqqueue)) {
592                 spin_unlock_irqrestore(&video->irqlock, flags);
593                 return NULL;
594         }
595
596         done = list_first_entry(&video->irqqueue,
597                                 struct vsp1_video_buffer, queue);
598
599         /* In DU output mode reuse the buffer if the list is singular. */
600         if (pipe->lif && list_is_singular(&video->irqqueue)) {
601                 spin_unlock_irqrestore(&video->irqlock, flags);
602                 return done;
603         }
604
605         list_del(&done->queue);
606
607         if (!list_empty(&video->irqqueue))
608                 next = list_first_entry(&video->irqqueue,
609                                         struct vsp1_video_buffer, queue);
610
611         spin_unlock_irqrestore(&video->irqlock, flags);
612
613         done->buf.sequence = video->sequence++;
614         v4l2_get_timestamp(&done->buf.timestamp);
615         for (i = 0; i < done->buf.vb2_buf.num_planes; ++i)
616                 vb2_set_plane_payload(&done->buf.vb2_buf, i, done->length[i]);
617         vb2_buffer_done(&done->buf.vb2_buf, VB2_BUF_STATE_DONE);
618
619         return next;
620 }
621
622 static void vsp1_video_frame_end(struct vsp1_pipeline *pipe,
623                                  struct vsp1_video *video)
624 {
625         struct vsp1_video_buffer *buf;
626         unsigned long flags;
627
628         buf = vsp1_video_complete_buffer(video);
629         if (buf == NULL)
630                 return;
631
632         spin_lock_irqsave(&pipe->irqlock, flags);
633
634         video->ops->queue(video, buf);
635         pipe->buffers_ready |= 1 << video->pipe_index;
636
637         spin_unlock_irqrestore(&pipe->irqlock, flags);
638 }
639
640 void vsp1_pipeline_frame_end(struct vsp1_pipeline *pipe)
641 {
642         enum vsp1_pipeline_state state;
643         unsigned long flags;
644         unsigned int i;
645
646         if (pipe == NULL)
647                 return;
648
649         /* Complete buffers on all video nodes. */
650         for (i = 0; i < pipe->num_inputs; ++i)
651                 vsp1_video_frame_end(pipe, &pipe->inputs[i]->video);
652
653         if (!pipe->lif)
654                 vsp1_video_frame_end(pipe, &pipe->output->video);
655
656         spin_lock_irqsave(&pipe->irqlock, flags);
657
658         state = pipe->state;
659         pipe->state = VSP1_PIPELINE_STOPPED;
660
661         /* If a stop has been requested, mark the pipeline as stopped and
662          * return.
663          */
664         if (state == VSP1_PIPELINE_STOPPING) {
665                 wake_up(&pipe->wq);
666                 goto done;
667         }
668
669         /* Restart the pipeline if ready. */
670         if (vsp1_pipeline_ready(pipe))
671                 vsp1_pipeline_run(pipe);
672
673 done:
674         spin_unlock_irqrestore(&pipe->irqlock, flags);
675 }
676
677 /*
678  * Propagate the alpha value through the pipeline.
679  *
680  * As the UDS has restricted scaling capabilities when the alpha component needs
681  * to be scaled, we disable alpha scaling when the UDS input has a fixed alpha
682  * value. The UDS then outputs a fixed alpha value which needs to be programmed
683  * from the input RPF alpha.
684  */
685 void vsp1_pipeline_propagate_alpha(struct vsp1_pipeline *pipe,
686                                    struct vsp1_entity *input,
687                                    unsigned int alpha)
688 {
689         struct vsp1_entity *entity;
690         struct media_pad *pad;
691
692         pad = media_entity_remote_pad(&input->pads[RWPF_PAD_SOURCE]);
693
694         while (pad) {
695                 if (media_entity_type(pad->entity) != MEDIA_ENT_T_V4L2_SUBDEV)
696                         break;
697
698                 entity = to_vsp1_entity(media_entity_to_v4l2_subdev(pad->entity));
699
700                 /* The BRU background color has a fixed alpha value set to 255,
701                  * the output alpha value is thus always equal to 255.
702                  */
703                 if (entity->type == VSP1_ENTITY_BRU)
704                         alpha = 255;
705
706                 if (entity->type == VSP1_ENTITY_UDS) {
707                         struct vsp1_uds *uds = to_uds(&entity->subdev);
708
709                         vsp1_uds_set_alpha(uds, alpha);
710                         break;
711                 }
712
713                 pad = &entity->pads[entity->source_pad];
714                 pad = media_entity_remote_pad(pad);
715         }
716 }
717
718 void vsp1_pipelines_suspend(struct vsp1_device *vsp1)
719 {
720         unsigned long flags;
721         unsigned int i;
722         int ret;
723
724         /* To avoid increasing the system suspend time needlessly, loop over the
725          * pipelines twice, first to set them all to the stopping state, and then
726          * to wait for the stop to complete.
727          */
728         for (i = 0; i < vsp1->pdata.wpf_count; ++i) {
729                 struct vsp1_rwpf *wpf = vsp1->wpf[i];
730                 struct vsp1_pipeline *pipe;
731
732                 if (wpf == NULL)
733                         continue;
734
735                 pipe = to_vsp1_pipeline(&wpf->entity.subdev.entity);
736                 if (pipe == NULL)
737                         continue;
738
739                 spin_lock_irqsave(&pipe->irqlock, flags);
740                 if (pipe->state == VSP1_PIPELINE_RUNNING)
741                         pipe->state = VSP1_PIPELINE_STOPPING;
742                 spin_unlock_irqrestore(&pipe->irqlock, flags);
743         }
744
745         for (i = 0; i < vsp1->pdata.wpf_count; ++i) {
746                 struct vsp1_rwpf *wpf = vsp1->wpf[i];
747                 struct vsp1_pipeline *pipe;
748
749                 if (wpf == NULL)
750                         continue;
751
752                 pipe = to_vsp1_pipeline(&wpf->entity.subdev.entity);
753                 if (pipe == NULL)
754                         continue;
755
756                 ret = wait_event_timeout(pipe->wq, vsp1_pipeline_stopped(pipe),
757                                          msecs_to_jiffies(500));
758                 if (ret == 0)
759                         dev_warn(vsp1->dev, "pipeline %u stop timeout\n",
760                                  wpf->entity.index);
761         }
762 }
763
764 void vsp1_pipelines_resume(struct vsp1_device *vsp1)
765 {
766         unsigned int i;
767
768         /* Resume pipeline all running pipelines. */
769         for (i = 0; i < vsp1->pdata.wpf_count; ++i) {
770                 struct vsp1_rwpf *wpf = vsp1->wpf[i];
771                 struct vsp1_pipeline *pipe;
772
773                 if (wpf == NULL)
774                         continue;
775
776                 pipe = to_vsp1_pipeline(&wpf->entity.subdev.entity);
777                 if (pipe == NULL)
778                         continue;
779
780                 if (vsp1_pipeline_ready(pipe))
781                         vsp1_pipeline_run(pipe);
782         }
783 }
784
785 /* -----------------------------------------------------------------------------
786  * videobuf2 Queue Operations
787  */
788
789 static int
790 vsp1_video_queue_setup(struct vb2_queue *vq, const void *parg,
791                      unsigned int *nbuffers, unsigned int *nplanes,
792                      unsigned int sizes[], void *alloc_ctxs[])
793 {
794         const struct v4l2_format *fmt = parg;
795         struct vsp1_video *video = vb2_get_drv_priv(vq);
796         const struct v4l2_pix_format_mplane *format;
797         struct v4l2_pix_format_mplane pix_mp;
798         unsigned int i;
799
800         if (fmt) {
801                 /* Make sure the format is valid and adjust the sizeimage field
802                  * if needed.
803                  */
804                 if (!vsp1_video_format_adjust(video, &fmt->fmt.pix_mp, &pix_mp))
805                         return -EINVAL;
806
807                 format = &pix_mp;
808         } else {
809                 format = &video->format;
810         }
811
812         *nplanes = format->num_planes;
813
814         for (i = 0; i < format->num_planes; ++i) {
815                 sizes[i] = format->plane_fmt[i].sizeimage;
816                 alloc_ctxs[i] = video->alloc_ctx;
817         }
818
819         return 0;
820 }
821
822 static int vsp1_video_buffer_prepare(struct vb2_buffer *vb)
823 {
824         struct vb2_v4l2_buffer *vbuf = to_vb2_v4l2_buffer(vb);
825         struct vsp1_video *video = vb2_get_drv_priv(vb->vb2_queue);
826         struct vsp1_video_buffer *buf = to_vsp1_video_buffer(vbuf);
827         const struct v4l2_pix_format_mplane *format = &video->format;
828         unsigned int i;
829
830         if (vb->num_planes < format->num_planes)
831                 return -EINVAL;
832
833         for (i = 0; i < vb->num_planes; ++i) {
834                 buf->addr[i] = vb2_dma_contig_plane_dma_addr(vb, i);
835                 buf->length[i] = vb2_plane_size(vb, i);
836
837                 if (buf->length[i] < format->plane_fmt[i].sizeimage)
838                         return -EINVAL;
839         }
840
841         return 0;
842 }
843
844 static void vsp1_video_buffer_queue(struct vb2_buffer *vb)
845 {
846         struct vb2_v4l2_buffer *vbuf = to_vb2_v4l2_buffer(vb);
847         struct vsp1_video *video = vb2_get_drv_priv(vb->vb2_queue);
848         struct vsp1_pipeline *pipe = to_vsp1_pipeline(&video->video.entity);
849         struct vsp1_video_buffer *buf = to_vsp1_video_buffer(vbuf);
850         unsigned long flags;
851         bool empty;
852
853         spin_lock_irqsave(&video->irqlock, flags);
854         empty = list_empty(&video->irqqueue);
855         list_add_tail(&buf->queue, &video->irqqueue);
856         spin_unlock_irqrestore(&video->irqlock, flags);
857
858         if (!empty)
859                 return;
860
861         spin_lock_irqsave(&pipe->irqlock, flags);
862
863         video->ops->queue(video, buf);
864         pipe->buffers_ready |= 1 << video->pipe_index;
865
866         if (vb2_is_streaming(&video->queue) &&
867             vsp1_pipeline_ready(pipe))
868                 vsp1_pipeline_run(pipe);
869
870         spin_unlock_irqrestore(&pipe->irqlock, flags);
871 }
872
873 static void vsp1_entity_route_setup(struct vsp1_entity *source)
874 {
875         struct vsp1_entity *sink;
876
877         if (source->route->reg == 0)
878                 return;
879
880         sink = container_of(source->sink, struct vsp1_entity, subdev.entity);
881         vsp1_write(source->vsp1, source->route->reg,
882                    sink->route->inputs[source->sink_pad]);
883 }
884
885 static int vsp1_video_start_streaming(struct vb2_queue *vq, unsigned int count)
886 {
887         struct vsp1_video *video = vb2_get_drv_priv(vq);
888         struct vsp1_pipeline *pipe = to_vsp1_pipeline(&video->video.entity);
889         struct vsp1_entity *entity;
890         unsigned long flags;
891         int ret;
892
893         mutex_lock(&pipe->lock);
894         if (pipe->stream_count == pipe->num_video - 1) {
895                 if (pipe->uds) {
896                         struct vsp1_uds *uds = to_uds(&pipe->uds->subdev);
897
898                         /* If a BRU is present in the pipeline before the UDS,
899                          * the alpha component doesn't need to be scaled as the
900                          * BRU output alpha value is fixed to 255. Otherwise we
901                          * need to scale the alpha component only when available
902                          * at the input RPF.
903                          */
904                         if (pipe->uds_input->type == VSP1_ENTITY_BRU) {
905                                 uds->scale_alpha = false;
906                         } else {
907                                 struct vsp1_rwpf *rpf =
908                                         to_rwpf(&pipe->uds_input->subdev);
909
910                                 uds->scale_alpha = rpf->video.fmtinfo->alpha;
911                         }
912                 }
913
914                 list_for_each_entry(entity, &pipe->entities, list_pipe) {
915                         vsp1_entity_route_setup(entity);
916
917                         ret = v4l2_subdev_call(&entity->subdev, video,
918                                                s_stream, 1);
919                         if (ret < 0) {
920                                 mutex_unlock(&pipe->lock);
921                                 return ret;
922                         }
923                 }
924         }
925
926         pipe->stream_count++;
927         mutex_unlock(&pipe->lock);
928
929         spin_lock_irqsave(&pipe->irqlock, flags);
930         if (vsp1_pipeline_ready(pipe))
931                 vsp1_pipeline_run(pipe);
932         spin_unlock_irqrestore(&pipe->irqlock, flags);
933
934         return 0;
935 }
936
937 static void vsp1_video_stop_streaming(struct vb2_queue *vq)
938 {
939         struct vsp1_video *video = vb2_get_drv_priv(vq);
940         struct vsp1_pipeline *pipe = to_vsp1_pipeline(&video->video.entity);
941         struct vsp1_video_buffer *buffer;
942         unsigned long flags;
943         int ret;
944
945         mutex_lock(&pipe->lock);
946         if (--pipe->stream_count == 0) {
947                 /* Stop the pipeline. */
948                 ret = vsp1_pipeline_stop(pipe);
949                 if (ret == -ETIMEDOUT)
950                         dev_err(video->vsp1->dev, "pipeline stop timeout\n");
951         }
952         mutex_unlock(&pipe->lock);
953
954         vsp1_pipeline_cleanup(pipe);
955         media_entity_pipeline_stop(&video->video.entity);
956
957         /* Remove all buffers from the IRQ queue. */
958         spin_lock_irqsave(&video->irqlock, flags);
959         list_for_each_entry(buffer, &video->irqqueue, queue)
960                 vb2_buffer_done(&buffer->buf.vb2_buf, VB2_BUF_STATE_ERROR);
961         INIT_LIST_HEAD(&video->irqqueue);
962         spin_unlock_irqrestore(&video->irqlock, flags);
963 }
964
965 static struct vb2_ops vsp1_video_queue_qops = {
966         .queue_setup = vsp1_video_queue_setup,
967         .buf_prepare = vsp1_video_buffer_prepare,
968         .buf_queue = vsp1_video_buffer_queue,
969         .wait_prepare = vb2_ops_wait_prepare,
970         .wait_finish = vb2_ops_wait_finish,
971         .start_streaming = vsp1_video_start_streaming,
972         .stop_streaming = vsp1_video_stop_streaming,
973 };
974
975 /* -----------------------------------------------------------------------------
976  * V4L2 ioctls
977  */
978
979 static int
980 vsp1_video_querycap(struct file *file, void *fh, struct v4l2_capability *cap)
981 {
982         struct v4l2_fh *vfh = file->private_data;
983         struct vsp1_video *video = to_vsp1_video(vfh->vdev);
984
985         cap->capabilities = V4L2_CAP_DEVICE_CAPS | V4L2_CAP_STREAMING
986                           | V4L2_CAP_VIDEO_CAPTURE_MPLANE
987                           | V4L2_CAP_VIDEO_OUTPUT_MPLANE;
988
989         if (video->type == V4L2_BUF_TYPE_VIDEO_CAPTURE_MPLANE)
990                 cap->device_caps = V4L2_CAP_VIDEO_CAPTURE_MPLANE
991                                  | V4L2_CAP_STREAMING;
992         else
993                 cap->device_caps = V4L2_CAP_VIDEO_OUTPUT_MPLANE
994                                  | V4L2_CAP_STREAMING;
995
996         strlcpy(cap->driver, "vsp1", sizeof(cap->driver));
997         strlcpy(cap->card, video->video.name, sizeof(cap->card));
998         snprintf(cap->bus_info, sizeof(cap->bus_info), "platform:%s",
999                  dev_name(video->vsp1->dev));
1000
1001         return 0;
1002 }
1003
1004 static int
1005 vsp1_video_get_format(struct file *file, void *fh, struct v4l2_format *format)
1006 {
1007         struct v4l2_fh *vfh = file->private_data;
1008         struct vsp1_video *video = to_vsp1_video(vfh->vdev);
1009
1010         if (format->type != video->queue.type)
1011                 return -EINVAL;
1012
1013         mutex_lock(&video->lock);
1014         format->fmt.pix_mp = video->format;
1015         mutex_unlock(&video->lock);
1016
1017         return 0;
1018 }
1019
1020 static int
1021 vsp1_video_try_format(struct file *file, void *fh, struct v4l2_format *format)
1022 {
1023         struct v4l2_fh *vfh = file->private_data;
1024         struct vsp1_video *video = to_vsp1_video(vfh->vdev);
1025
1026         if (format->type != video->queue.type)
1027                 return -EINVAL;
1028
1029         return __vsp1_video_try_format(video, &format->fmt.pix_mp, NULL);
1030 }
1031
1032 static int
1033 vsp1_video_set_format(struct file *file, void *fh, struct v4l2_format *format)
1034 {
1035         struct v4l2_fh *vfh = file->private_data;
1036         struct vsp1_video *video = to_vsp1_video(vfh->vdev);
1037         const struct vsp1_format_info *info;
1038         int ret;
1039
1040         if (format->type != video->queue.type)
1041                 return -EINVAL;
1042
1043         ret = __vsp1_video_try_format(video, &format->fmt.pix_mp, &info);
1044         if (ret < 0)
1045                 return ret;
1046
1047         mutex_lock(&video->lock);
1048
1049         if (vb2_is_busy(&video->queue)) {
1050                 ret = -EBUSY;
1051                 goto done;
1052         }
1053
1054         video->format = format->fmt.pix_mp;
1055         video->fmtinfo = info;
1056
1057 done:
1058         mutex_unlock(&video->lock);
1059         return ret;
1060 }
1061
1062 static int
1063 vsp1_video_streamon(struct file *file, void *fh, enum v4l2_buf_type type)
1064 {
1065         struct v4l2_fh *vfh = file->private_data;
1066         struct vsp1_video *video = to_vsp1_video(vfh->vdev);
1067         struct vsp1_pipeline *pipe;
1068         int ret;
1069
1070         if (video->queue.owner && video->queue.owner != file->private_data)
1071                 return -EBUSY;
1072
1073         video->sequence = 0;
1074
1075         /* Start streaming on the pipeline. No link touching an entity in the
1076          * pipeline can be activated or deactivated once streaming is started.
1077          *
1078          * Use the VSP1 pipeline object embedded in the first video object that
1079          * starts streaming.
1080          */
1081         pipe = video->video.entity.pipe
1082              ? to_vsp1_pipeline(&video->video.entity) : &video->pipe;
1083
1084         ret = media_entity_pipeline_start(&video->video.entity, &pipe->pipe);
1085         if (ret < 0)
1086                 return ret;
1087
1088         /* Verify that the configured format matches the output of the connected
1089          * subdev.
1090          */
1091         ret = vsp1_video_verify_format(video);
1092         if (ret < 0)
1093                 goto err_stop;
1094
1095         ret = vsp1_pipeline_init(pipe, video);
1096         if (ret < 0)
1097                 goto err_stop;
1098
1099         /* Start the queue. */
1100         ret = vb2_streamon(&video->queue, type);
1101         if (ret < 0)
1102                 goto err_cleanup;
1103
1104         return 0;
1105
1106 err_cleanup:
1107         vsp1_pipeline_cleanup(pipe);
1108 err_stop:
1109         media_entity_pipeline_stop(&video->video.entity);
1110         return ret;
1111 }
1112
1113 static const struct v4l2_ioctl_ops vsp1_video_ioctl_ops = {
1114         .vidioc_querycap                = vsp1_video_querycap,
1115         .vidioc_g_fmt_vid_cap_mplane    = vsp1_video_get_format,
1116         .vidioc_s_fmt_vid_cap_mplane    = vsp1_video_set_format,
1117         .vidioc_try_fmt_vid_cap_mplane  = vsp1_video_try_format,
1118         .vidioc_g_fmt_vid_out_mplane    = vsp1_video_get_format,
1119         .vidioc_s_fmt_vid_out_mplane    = vsp1_video_set_format,
1120         .vidioc_try_fmt_vid_out_mplane  = vsp1_video_try_format,
1121         .vidioc_reqbufs                 = vb2_ioctl_reqbufs,
1122         .vidioc_querybuf                = vb2_ioctl_querybuf,
1123         .vidioc_qbuf                    = vb2_ioctl_qbuf,
1124         .vidioc_dqbuf                   = vb2_ioctl_dqbuf,
1125         .vidioc_create_bufs             = vb2_ioctl_create_bufs,
1126         .vidioc_prepare_buf             = vb2_ioctl_prepare_buf,
1127         .vidioc_streamon                = vsp1_video_streamon,
1128         .vidioc_streamoff               = vb2_ioctl_streamoff,
1129 };
1130
1131 /* -----------------------------------------------------------------------------
1132  * V4L2 File Operations
1133  */
1134
1135 static int vsp1_video_open(struct file *file)
1136 {
1137         struct vsp1_video *video = video_drvdata(file);
1138         struct v4l2_fh *vfh;
1139         int ret = 0;
1140
1141         vfh = kzalloc(sizeof(*vfh), GFP_KERNEL);
1142         if (vfh == NULL)
1143                 return -ENOMEM;
1144
1145         v4l2_fh_init(vfh, &video->video);
1146         v4l2_fh_add(vfh);
1147
1148         file->private_data = vfh;
1149
1150         ret = vsp1_device_get(video->vsp1);
1151         if (ret < 0) {
1152                 v4l2_fh_del(vfh);
1153                 kfree(vfh);
1154         }
1155
1156         return ret;
1157 }
1158
1159 static int vsp1_video_release(struct file *file)
1160 {
1161         struct vsp1_video *video = video_drvdata(file);
1162         struct v4l2_fh *vfh = file->private_data;
1163
1164         mutex_lock(&video->lock);
1165         if (video->queue.owner == vfh) {
1166                 vb2_queue_release(&video->queue);
1167                 video->queue.owner = NULL;
1168         }
1169         mutex_unlock(&video->lock);
1170
1171         vsp1_device_put(video->vsp1);
1172
1173         v4l2_fh_release(file);
1174
1175         file->private_data = NULL;
1176
1177         return 0;
1178 }
1179
1180 static struct v4l2_file_operations vsp1_video_fops = {
1181         .owner = THIS_MODULE,
1182         .unlocked_ioctl = video_ioctl2,
1183         .open = vsp1_video_open,
1184         .release = vsp1_video_release,
1185         .poll = vb2_fop_poll,
1186         .mmap = vb2_fop_mmap,
1187 };
1188
1189 /* -----------------------------------------------------------------------------
1190  * Initialization and Cleanup
1191  */
1192
1193 int vsp1_video_init(struct vsp1_video *video, struct vsp1_entity *rwpf)
1194 {
1195         const char *direction;
1196         int ret;
1197
1198         switch (video->type) {
1199         case V4L2_BUF_TYPE_VIDEO_CAPTURE_MPLANE:
1200                 direction = "output";
1201                 video->pad.flags = MEDIA_PAD_FL_SINK;
1202                 break;
1203
1204         case V4L2_BUF_TYPE_VIDEO_OUTPUT_MPLANE:
1205                 direction = "input";
1206                 video->pad.flags = MEDIA_PAD_FL_SOURCE;
1207                 video->video.vfl_dir = VFL_DIR_TX;
1208                 break;
1209
1210         default:
1211                 return -EINVAL;
1212         }
1213
1214         video->rwpf = rwpf;
1215
1216         mutex_init(&video->lock);
1217         spin_lock_init(&video->irqlock);
1218         INIT_LIST_HEAD(&video->irqqueue);
1219
1220         mutex_init(&video->pipe.lock);
1221         spin_lock_init(&video->pipe.irqlock);
1222         INIT_LIST_HEAD(&video->pipe.entities);
1223         init_waitqueue_head(&video->pipe.wq);
1224         video->pipe.state = VSP1_PIPELINE_STOPPED;
1225
1226         /* Initialize the media entity... */
1227         ret = media_entity_init(&video->video.entity, 1, &video->pad, 0);
1228         if (ret < 0)
1229                 return ret;
1230
1231         /* ... and the format ... */
1232         video->fmtinfo = vsp1_get_format_info(VSP1_VIDEO_DEF_FORMAT);
1233         video->format.pixelformat = video->fmtinfo->fourcc;
1234         video->format.colorspace = V4L2_COLORSPACE_SRGB;
1235         video->format.field = V4L2_FIELD_NONE;
1236         video->format.width = VSP1_VIDEO_DEF_WIDTH;
1237         video->format.height = VSP1_VIDEO_DEF_HEIGHT;
1238         video->format.num_planes = 1;
1239         video->format.plane_fmt[0].bytesperline =
1240                 video->format.width * video->fmtinfo->bpp[0] / 8;
1241         video->format.plane_fmt[0].sizeimage =
1242                 video->format.plane_fmt[0].bytesperline * video->format.height;
1243
1244         /* ... and the video node... */
1245         video->video.v4l2_dev = &video->vsp1->v4l2_dev;
1246         video->video.fops = &vsp1_video_fops;
1247         snprintf(video->video.name, sizeof(video->video.name), "%s %s",
1248                  rwpf->subdev.name, direction);
1249         video->video.vfl_type = VFL_TYPE_GRABBER;
1250         video->video.release = video_device_release_empty;
1251         video->video.ioctl_ops = &vsp1_video_ioctl_ops;
1252
1253         video_set_drvdata(&video->video, video);
1254
1255         /* ... and the buffers queue... */
1256         video->alloc_ctx = vb2_dma_contig_init_ctx(video->vsp1->dev);
1257         if (IS_ERR(video->alloc_ctx)) {
1258                 ret = PTR_ERR(video->alloc_ctx);
1259                 goto error;
1260         }
1261
1262         video->queue.type = video->type;
1263         video->queue.io_modes = VB2_MMAP | VB2_USERPTR | VB2_DMABUF;
1264         video->queue.lock = &video->lock;
1265         video->queue.drv_priv = video;
1266         video->queue.buf_struct_size = sizeof(struct vsp1_video_buffer);
1267         video->queue.ops = &vsp1_video_queue_qops;
1268         video->queue.mem_ops = &vb2_dma_contig_memops;
1269         video->queue.timestamp_flags = V4L2_BUF_FLAG_TIMESTAMP_COPY;
1270         ret = vb2_queue_init(&video->queue);
1271         if (ret < 0) {
1272                 dev_err(video->vsp1->dev, "failed to initialize vb2 queue\n");
1273                 goto error;
1274         }
1275
1276         /* ... and register the video device. */
1277         video->video.queue = &video->queue;
1278         ret = video_register_device(&video->video, VFL_TYPE_GRABBER, -1);
1279         if (ret < 0) {
1280                 dev_err(video->vsp1->dev, "failed to register video device\n");
1281                 goto error;
1282         }
1283
1284         return 0;
1285
1286 error:
1287         vb2_dma_contig_cleanup_ctx(video->alloc_ctx);
1288         vsp1_video_cleanup(video);
1289         return ret;
1290 }
1291
1292 void vsp1_video_cleanup(struct vsp1_video *video)
1293 {
1294         if (video_is_registered(&video->video))
1295                 video_unregister_device(&video->video);
1296
1297         vb2_dma_contig_cleanup_ctx(video->alloc_ctx);
1298         media_entity_cleanup(&video->video.entity);
1299 }