4 * Copyright (C) 2005-2010 Texas Instruments.
6 * This file is licensed under the terms of the GNU General Public License
7 * version 2. This program is licensed "as is" without any warranty of any
8 * kind, whether express or implied.
10 * Leveraged code from the OMAP2 camera driver
11 * Video-for-Linux (Version 2) camera capture driver for
12 * the OMAP24xx camera controller.
14 * Author: Andy Lowe (source@mvista.com)
16 * Copyright (C) 2004 MontaVista Software, Inc.
17 * Copyright (C) 2010 Texas Instruments.
20 * 20-APR-2006 Khasim Modified VRFB based Rotation,
21 * The image data is always read from 0 degree
23 * to the virtual space of desired rotation angle
24 * 4-DEC-2006 Jian Changed to support better memory management
26 * 17-Nov-2008 Hardik Changed driver to use video_ioctl2
28 * 23-Feb-2010 Vaibhav H Modified to use new DSS2 interface
32 #include <linux/init.h>
33 #include <linux/module.h>
34 #include <linux/vmalloc.h>
35 #include <linux/sched.h>
36 #include <linux/types.h>
37 #include <linux/platform_device.h>
38 #include <linux/irq.h>
39 #include <linux/videodev2.h>
40 #include <linux/dma-mapping.h>
41 #include <linux/slab.h>
43 #include <media/videobuf-dma-contig.h>
44 #include <media/v4l2-device.h>
45 #include <media/v4l2-ioctl.h>
47 #include <video/omapvrfb.h>
48 #include <video/omapdss.h>
50 #include "omap_voutlib.h"
51 #include "omap_voutdef.h"
52 #include "omap_vout_vrfb.h"
54 MODULE_AUTHOR("Texas Instruments");
55 MODULE_DESCRIPTION("OMAP Video for Linux Video out driver");
56 MODULE_LICENSE("GPL");
58 /* Driver Configuration macros */
59 #define VOUT_NAME "omap_vout"
61 enum omap_vout_channels
{
66 static struct videobuf_queue_ops video_vbq_ops
;
67 /* Variables configurable through module params*/
68 static u32 video1_numbuffers
= 3;
69 static u32 video2_numbuffers
= 3;
70 static u32 video1_bufsize
= OMAP_VOUT_MAX_BUF_SIZE
;
71 static u32 video2_bufsize
= OMAP_VOUT_MAX_BUF_SIZE
;
72 static bool vid1_static_vrfb_alloc
;
73 static bool vid2_static_vrfb_alloc
;
76 /* Module parameters */
77 module_param(video1_numbuffers
, uint
, S_IRUGO
);
78 MODULE_PARM_DESC(video1_numbuffers
,
79 "Number of buffers to be allocated at init time for Video1 device.");
81 module_param(video2_numbuffers
, uint
, S_IRUGO
);
82 MODULE_PARM_DESC(video2_numbuffers
,
83 "Number of buffers to be allocated at init time for Video2 device.");
85 module_param(video1_bufsize
, uint
, S_IRUGO
);
86 MODULE_PARM_DESC(video1_bufsize
,
87 "Size of the buffer to be allocated for video1 device");
89 module_param(video2_bufsize
, uint
, S_IRUGO
);
90 MODULE_PARM_DESC(video2_bufsize
,
91 "Size of the buffer to be allocated for video2 device");
93 module_param(vid1_static_vrfb_alloc
, bool, S_IRUGO
);
94 MODULE_PARM_DESC(vid1_static_vrfb_alloc
,
95 "Static allocation of the VRFB buffer for video1 device");
97 module_param(vid2_static_vrfb_alloc
, bool, S_IRUGO
);
98 MODULE_PARM_DESC(vid2_static_vrfb_alloc
,
99 "Static allocation of the VRFB buffer for video2 device");
101 module_param(debug
, bool, S_IRUGO
);
102 MODULE_PARM_DESC(debug
, "Debug level (0-1)");
104 /* list of image formats supported by OMAP2 video pipelines */
105 static const struct v4l2_fmtdesc omap_formats
[] = {
107 /* Note: V4L2 defines RGB565 as:
110 * g2 g1 g0 r4 r3 r2 r1 r0 b4 b3 b2 b1 b0 g5 g4 g3
112 * We interpret RGB565 as:
115 * g2 g1 g0 b4 b3 b2 b1 b0 r4 r3 r2 r1 r0 g5 g4 g3
117 .description
= "RGB565, le",
118 .pixelformat
= V4L2_PIX_FMT_RGB565
,
121 /* Note: V4L2 defines RGB32 as: RGB-8-8-8-8 we use
122 * this for RGB24 unpack mode, the last 8 bits are ignored
124 .description
= "RGB32, le",
125 .pixelformat
= V4L2_PIX_FMT_RGB32
,
128 /* Note: V4L2 defines RGB24 as: RGB-8-8-8 we use
129 * this for RGB24 packed mode
132 .description
= "RGB24, le",
133 .pixelformat
= V4L2_PIX_FMT_RGB24
,
136 .description
= "YUYV (YUV 4:2:2), packed",
137 .pixelformat
= V4L2_PIX_FMT_YUYV
,
140 .description
= "UYVY, packed",
141 .pixelformat
= V4L2_PIX_FMT_UYVY
,
145 #define NUM_OUTPUT_FORMATS (ARRAY_SIZE(omap_formats))
150 static int omap_vout_try_format(struct v4l2_pix_format
*pix
)
154 pix
->height
= clamp(pix
->height
, (u32
)VID_MIN_HEIGHT
,
155 (u32
)VID_MAX_HEIGHT
);
156 pix
->width
= clamp(pix
->width
, (u32
)VID_MIN_WIDTH
, (u32
)VID_MAX_WIDTH
);
158 for (ifmt
= 0; ifmt
< NUM_OUTPUT_FORMATS
; ifmt
++) {
159 if (pix
->pixelformat
== omap_formats
[ifmt
].pixelformat
)
163 if (ifmt
== NUM_OUTPUT_FORMATS
)
166 pix
->pixelformat
= omap_formats
[ifmt
].pixelformat
;
167 pix
->field
= V4L2_FIELD_ANY
;
170 switch (pix
->pixelformat
) {
171 case V4L2_PIX_FMT_YUYV
:
172 case V4L2_PIX_FMT_UYVY
:
174 pix
->colorspace
= V4L2_COLORSPACE_JPEG
;
177 case V4L2_PIX_FMT_RGB565
:
178 case V4L2_PIX_FMT_RGB565X
:
179 pix
->colorspace
= V4L2_COLORSPACE_SRGB
;
182 case V4L2_PIX_FMT_RGB24
:
183 pix
->colorspace
= V4L2_COLORSPACE_SRGB
;
186 case V4L2_PIX_FMT_RGB32
:
187 case V4L2_PIX_FMT_BGR32
:
188 pix
->colorspace
= V4L2_COLORSPACE_SRGB
;
192 pix
->bytesperline
= pix
->width
* bpp
;
193 pix
->sizeimage
= pix
->bytesperline
* pix
->height
;
199 * omap_vout_uservirt_to_phys: This inline function is used to convert user
200 * space virtual address to physical address.
202 static u32
omap_vout_uservirt_to_phys(u32 virtp
)
204 unsigned long physp
= 0;
205 struct vm_area_struct
*vma
;
206 struct mm_struct
*mm
= current
->mm
;
208 /* For kernel direct-mapped memory, take the easy way */
209 if (virtp
>= PAGE_OFFSET
)
210 return virt_to_phys((void *) virtp
);
212 down_read(¤t
->mm
->mmap_sem
);
213 vma
= find_vma(mm
, virtp
);
214 if (vma
&& (vma
->vm_flags
& VM_IO
) && vma
->vm_pgoff
) {
215 /* this will catch, kernel-allocated, mmaped-to-usermode
217 physp
= (vma
->vm_pgoff
<< PAGE_SHIFT
) + (virtp
- vma
->vm_start
);
218 up_read(¤t
->mm
->mmap_sem
);
220 /* otherwise, use get_user_pages() for general userland pages */
221 int res
, nr_pages
= 1;
224 res
= get_user_pages(current
, current
->mm
, virtp
, nr_pages
, 1,
226 up_read(¤t
->mm
->mmap_sem
);
228 if (res
== nr_pages
) {
229 physp
= __pa(page_address(&pages
[0]) +
230 (virtp
& ~PAGE_MASK
));
232 printk(KERN_WARNING VOUT_NAME
233 "get_user_pages failed\n");
242 * Free the V4L2 buffers
244 void omap_vout_free_buffers(struct omap_vout_device
*vout
)
248 /* Allocate memory for the buffers */
249 numbuffers
= (vout
->vid
) ? video2_numbuffers
: video1_numbuffers
;
250 vout
->buffer_size
= (vout
->vid
) ? video2_bufsize
: video1_bufsize
;
252 for (i
= 0; i
< numbuffers
; i
++) {
253 omap_vout_free_buffer(vout
->buf_virt_addr
[i
],
255 vout
->buf_phy_addr
[i
] = 0;
256 vout
->buf_virt_addr
[i
] = 0;
261 * Convert V4L2 rotation to DSS rotation
262 * V4L2 understand 0, 90, 180, 270.
263 * Convert to 0, 1, 2 and 3 respectively for DSS
265 static int v4l2_rot_to_dss_rot(int v4l2_rotation
,
266 enum dss_rotation
*rotation
, bool mirror
)
270 switch (v4l2_rotation
) {
272 *rotation
= dss_rotation_90_degree
;
275 *rotation
= dss_rotation_180_degree
;
278 *rotation
= dss_rotation_270_degree
;
281 *rotation
= dss_rotation_0_degree
;
289 static int omap_vout_calculate_offset(struct omap_vout_device
*vout
)
291 struct omapvideo_info
*ovid
;
292 struct v4l2_rect
*crop
= &vout
->crop
;
293 struct v4l2_pix_format
*pix
= &vout
->pix
;
294 int *cropped_offset
= &vout
->cropped_offset
;
295 int ps
= 2, line_length
= 0;
297 ovid
= &vout
->vid_info
;
299 if (ovid
->rotation_type
== VOUT_ROT_VRFB
) {
300 omap_vout_calculate_vrfb_offset(vout
);
302 vout
->line_length
= line_length
= pix
->width
;
304 if (V4L2_PIX_FMT_YUYV
== pix
->pixelformat
||
305 V4L2_PIX_FMT_UYVY
== pix
->pixelformat
)
307 else if (V4L2_PIX_FMT_RGB32
== pix
->pixelformat
)
309 else if (V4L2_PIX_FMT_RGB24
== pix
->pixelformat
)
314 *cropped_offset
= (line_length
* ps
) *
315 crop
->top
+ crop
->left
* ps
;
318 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
, "%s Offset:%x\n",
319 __func__
, vout
->cropped_offset
);
325 * Convert V4L2 pixel format to DSS pixel format
327 static int video_mode_to_dss_mode(struct omap_vout_device
*vout
)
329 struct omap_overlay
*ovl
;
330 struct omapvideo_info
*ovid
;
331 struct v4l2_pix_format
*pix
= &vout
->pix
;
332 enum omap_color_mode mode
;
334 ovid
= &vout
->vid_info
;
335 ovl
= ovid
->overlays
[0];
337 switch (pix
->pixelformat
) {
338 case V4L2_PIX_FMT_YUYV
:
339 mode
= OMAP_DSS_COLOR_YUV2
;
341 case V4L2_PIX_FMT_UYVY
:
342 mode
= OMAP_DSS_COLOR_UYVY
;
344 case V4L2_PIX_FMT_RGB565
:
345 mode
= OMAP_DSS_COLOR_RGB16
;
347 case V4L2_PIX_FMT_RGB24
:
348 mode
= OMAP_DSS_COLOR_RGB24P
;
350 case V4L2_PIX_FMT_RGB32
:
351 mode
= (ovl
->id
== OMAP_DSS_VIDEO1
) ?
352 OMAP_DSS_COLOR_RGB24U
: OMAP_DSS_COLOR_ARGB32
;
354 case V4L2_PIX_FMT_BGR32
:
355 mode
= OMAP_DSS_COLOR_RGBX32
;
367 static int omapvid_setup_overlay(struct omap_vout_device
*vout
,
368 struct omap_overlay
*ovl
, int posx
, int posy
, int outw
,
372 struct omap_overlay_info info
;
373 int cropheight
, cropwidth
, pixheight
, pixwidth
;
375 if ((ovl
->caps
& OMAP_DSS_OVL_CAP_SCALE
) == 0 &&
376 (outw
!= vout
->pix
.width
|| outh
!= vout
->pix
.height
)) {
381 vout
->dss_mode
= video_mode_to_dss_mode(vout
);
382 if (vout
->dss_mode
== -EINVAL
) {
387 /* Setup the input plane parameters according to
388 * rotation value selected.
390 if (is_rotation_90_or_270(vout
)) {
391 cropheight
= vout
->crop
.width
;
392 cropwidth
= vout
->crop
.height
;
393 pixheight
= vout
->pix
.width
;
394 pixwidth
= vout
->pix
.height
;
396 cropheight
= vout
->crop
.height
;
397 cropwidth
= vout
->crop
.width
;
398 pixheight
= vout
->pix
.height
;
399 pixwidth
= vout
->pix
.width
;
402 ovl
->get_overlay_info(ovl
, &info
);
404 info
.width
= cropwidth
;
405 info
.height
= cropheight
;
406 info
.color_mode
= vout
->dss_mode
;
407 info
.mirror
= vout
->mirror
;
410 info
.out_width
= outw
;
411 info
.out_height
= outh
;
412 info
.global_alpha
= vout
->win
.global_alpha
;
413 if (!is_rotation_enabled(vout
)) {
415 info
.rotation_type
= OMAP_DSS_ROT_DMA
;
416 info
.screen_width
= pixwidth
;
418 info
.rotation
= vout
->rotation
;
419 info
.rotation_type
= OMAP_DSS_ROT_VRFB
;
420 info
.screen_width
= 2048;
423 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
,
424 "%s enable=%d addr=%x width=%d\n height=%d color_mode=%d\n"
425 "rotation=%d mirror=%d posx=%d posy=%d out_width = %d \n"
426 "out_height=%d rotation_type=%d screen_width=%d\n",
427 __func__
, ovl
->is_enabled(ovl
), info
.paddr
, info
.width
, info
.height
,
428 info
.color_mode
, info
.rotation
, info
.mirror
, info
.pos_x
,
429 info
.pos_y
, info
.out_width
, info
.out_height
, info
.rotation_type
,
432 ret
= ovl
->set_overlay_info(ovl
, &info
);
439 v4l2_warn(&vout
->vid_dev
->v4l2_dev
, "setup_overlay failed\n");
444 * Initialize the overlay structure
446 static int omapvid_init(struct omap_vout_device
*vout
, u32 addr
)
449 struct v4l2_window
*win
;
450 struct omap_overlay
*ovl
;
451 int posx
, posy
, outw
, outh
, temp
;
452 struct omap_video_timings
*timing
;
453 struct omapvideo_info
*ovid
= &vout
->vid_info
;
456 for (i
= 0; i
< ovid
->num_overlays
; i
++) {
457 struct omap_dss_device
*dssdev
;
459 ovl
= ovid
->overlays
[i
];
460 dssdev
= ovl
->get_device(ovl
);
465 timing
= &dssdev
->panel
.timings
;
468 outh
= win
->w
.height
;
469 switch (vout
->rotation
) {
470 case dss_rotation_90_degree
:
471 /* Invert the height and width for 90
472 * and 270 degree rotation
477 posy
= (timing
->y_res
- win
->w
.width
) - win
->w
.left
;
481 case dss_rotation_180_degree
:
482 posx
= (timing
->x_res
- win
->w
.width
) - win
->w
.left
;
483 posy
= (timing
->y_res
- win
->w
.height
) - win
->w
.top
;
486 case dss_rotation_270_degree
:
491 posx
= (timing
->x_res
- win
->w
.height
) - win
->w
.top
;
500 ret
= omapvid_setup_overlay(vout
, ovl
, posx
, posy
,
503 goto omapvid_init_err
;
508 v4l2_warn(&vout
->vid_dev
->v4l2_dev
, "apply_changes failed\n");
513 * Apply the changes set the go bit of DSS
515 static int omapvid_apply_changes(struct omap_vout_device
*vout
)
518 struct omap_overlay
*ovl
;
519 struct omapvideo_info
*ovid
= &vout
->vid_info
;
521 for (i
= 0; i
< ovid
->num_overlays
; i
++) {
522 struct omap_dss_device
*dssdev
;
524 ovl
= ovid
->overlays
[i
];
525 dssdev
= ovl
->get_device(ovl
);
528 ovl
->manager
->apply(ovl
->manager
);
534 static int omapvid_handle_interlace_display(struct omap_vout_device
*vout
,
535 unsigned int irqstatus
, struct timeval timevalue
)
539 if (vout
->first_int
) {
544 if (irqstatus
& DISPC_IRQ_EVSYNC_ODD
)
546 else if (irqstatus
& DISPC_IRQ_EVSYNC_EVEN
)
552 if (fid
!= vout
->field_id
) {
554 vout
->field_id
= fid
;
555 } else if (0 == fid
) {
556 if (vout
->cur_frm
== vout
->next_frm
)
559 vout
->cur_frm
->ts
= timevalue
;
560 vout
->cur_frm
->state
= VIDEOBUF_DONE
;
561 wake_up_interruptible(&vout
->cur_frm
->done
);
562 vout
->cur_frm
= vout
->next_frm
;
564 if (list_empty(&vout
->dma_queue
) ||
565 (vout
->cur_frm
!= vout
->next_frm
))
569 return vout
->field_id
;
574 static void omap_vout_isr(void *arg
, unsigned int irqstatus
)
576 int ret
, fid
, mgr_id
;
578 struct omap_overlay
*ovl
;
579 struct timeval timevalue
;
580 struct omapvideo_info
*ovid
;
581 struct omap_dss_device
*cur_display
;
582 struct omap_vout_device
*vout
= (struct omap_vout_device
*)arg
;
584 if (!vout
->streaming
)
587 ovid
= &vout
->vid_info
;
588 ovl
= ovid
->overlays
[0];
590 mgr_id
= ovl
->manager
->id
;
592 /* get the display device attached to the overlay */
593 cur_display
= ovl
->get_device(ovl
);
598 spin_lock(&vout
->vbq_lock
);
599 v4l2_get_timestamp(&timevalue
);
601 switch (cur_display
->type
) {
602 case OMAP_DISPLAY_TYPE_DSI
:
603 case OMAP_DISPLAY_TYPE_DPI
:
604 if (mgr_id
== OMAP_DSS_CHANNEL_LCD
)
605 irq
= DISPC_IRQ_VSYNC
;
606 else if (mgr_id
== OMAP_DSS_CHANNEL_LCD2
)
607 irq
= DISPC_IRQ_VSYNC2
;
611 if (!(irqstatus
& irq
))
614 case OMAP_DISPLAY_TYPE_VENC
:
615 fid
= omapvid_handle_interlace_display(vout
, irqstatus
,
620 case OMAP_DISPLAY_TYPE_HDMI
:
621 if (!(irqstatus
& DISPC_IRQ_EVSYNC_EVEN
))
628 if (!vout
->first_int
&& (vout
->cur_frm
!= vout
->next_frm
)) {
629 vout
->cur_frm
->ts
= timevalue
;
630 vout
->cur_frm
->state
= VIDEOBUF_DONE
;
631 wake_up_interruptible(&vout
->cur_frm
->done
);
632 vout
->cur_frm
= vout
->next_frm
;
636 if (list_empty(&vout
->dma_queue
))
639 vout
->next_frm
= list_entry(vout
->dma_queue
.next
,
640 struct videobuf_buffer
, queue
);
641 list_del(&vout
->next_frm
->queue
);
643 vout
->next_frm
->state
= VIDEOBUF_ACTIVE
;
645 addr
= (unsigned long) vout
->queued_buf_addr
[vout
->next_frm
->i
]
646 + vout
->cropped_offset
;
648 /* First save the configuration in ovelray structure */
649 ret
= omapvid_init(vout
, addr
);
651 printk(KERN_ERR VOUT_NAME
652 "failed to set overlay info\n");
656 /* Enable the pipeline and set the Go bit */
657 ret
= omapvid_apply_changes(vout
);
659 printk(KERN_ERR VOUT_NAME
"failed to change mode\n");
662 spin_unlock(&vout
->vbq_lock
);
665 /* Video buffer call backs */
668 * Buffer setup function is called by videobuf layer when REQBUF ioctl is
669 * called. This is used to setup buffers and return size and count of
670 * buffers allocated. After the call to this buffer, videobuf layer will
671 * setup buffer queue depending on the size and count of buffers
673 static int omap_vout_buffer_setup(struct videobuf_queue
*q
, unsigned int *count
,
676 int startindex
= 0, i
, j
;
677 u32 phy_addr
= 0, virt_addr
= 0;
678 struct omap_vout_device
*vout
= q
->priv_data
;
679 struct omapvideo_info
*ovid
= &vout
->vid_info
;
680 int vid_max_buf_size
;
685 vid_max_buf_size
= vout
->vid
== OMAP_VIDEO1
? video1_bufsize
:
688 if (V4L2_BUF_TYPE_VIDEO_OUTPUT
!= q
->type
)
691 startindex
= (vout
->vid
== OMAP_VIDEO1
) ?
692 video1_numbuffers
: video2_numbuffers
;
693 if (V4L2_MEMORY_MMAP
== vout
->memory
&& *count
< startindex
)
696 if (ovid
->rotation_type
== VOUT_ROT_VRFB
) {
697 if (omap_vout_vrfb_buffer_setup(vout
, count
, startindex
))
701 if (V4L2_MEMORY_MMAP
!= vout
->memory
)
704 /* Now allocated the V4L2 buffers */
705 *size
= PAGE_ALIGN(vout
->pix
.width
* vout
->pix
.height
* vout
->bpp
);
706 startindex
= (vout
->vid
== OMAP_VIDEO1
) ?
707 video1_numbuffers
: video2_numbuffers
;
709 /* Check the size of the buffer */
710 if (*size
> vid_max_buf_size
) {
711 v4l2_err(&vout
->vid_dev
->v4l2_dev
,
712 "buffer allocation mismatch [%u] [%u]\n",
713 *size
, vout
->buffer_size
);
717 for (i
= startindex
; i
< *count
; i
++) {
718 vout
->buffer_size
= *size
;
720 virt_addr
= omap_vout_alloc_buffer(vout
->buffer_size
,
723 if (ovid
->rotation_type
== VOUT_ROT_NONE
) {
726 if (!is_rotation_enabled(vout
))
728 /* Free the VRFB buffers if no space for V4L2 buffers */
729 for (j
= i
; j
< *count
; j
++) {
730 omap_vout_free_buffer(
731 vout
->smsshado_virt_addr
[j
],
732 vout
->smsshado_size
);
733 vout
->smsshado_virt_addr
[j
] = 0;
734 vout
->smsshado_phy_addr
[j
] = 0;
738 vout
->buf_virt_addr
[i
] = virt_addr
;
739 vout
->buf_phy_addr
[i
] = phy_addr
;
741 *count
= vout
->buffer_allocated
= i
;
747 * Free the V4L2 buffers additionally allocated than default
750 static void omap_vout_free_extra_buffers(struct omap_vout_device
*vout
)
752 int num_buffers
= 0, i
;
754 num_buffers
= (vout
->vid
== OMAP_VIDEO1
) ?
755 video1_numbuffers
: video2_numbuffers
;
757 for (i
= num_buffers
; i
< vout
->buffer_allocated
; i
++) {
758 if (vout
->buf_virt_addr
[i
])
759 omap_vout_free_buffer(vout
->buf_virt_addr
[i
],
762 vout
->buf_virt_addr
[i
] = 0;
763 vout
->buf_phy_addr
[i
] = 0;
765 vout
->buffer_allocated
= num_buffers
;
769 * This function will be called when VIDIOC_QBUF ioctl is called.
770 * It prepare buffers before give out for the display. This function
771 * converts user space virtual address into physical address if userptr memory
772 * exchange mechanism is used. If rotation is enabled, it copies entire
773 * buffer into VRFB memory space before giving it to the DSS.
775 static int omap_vout_buffer_prepare(struct videobuf_queue
*q
,
776 struct videobuf_buffer
*vb
,
777 enum v4l2_field field
)
779 struct omap_vout_device
*vout
= q
->priv_data
;
780 struct omapvideo_info
*ovid
= &vout
->vid_info
;
782 if (VIDEOBUF_NEEDS_INIT
== vb
->state
) {
783 vb
->width
= vout
->pix
.width
;
784 vb
->height
= vout
->pix
.height
;
785 vb
->size
= vb
->width
* vb
->height
* vout
->bpp
;
788 vb
->state
= VIDEOBUF_PREPARED
;
789 /* if user pointer memory mechanism is used, get the physical
790 * address of the buffer
792 if (V4L2_MEMORY_USERPTR
== vb
->memory
) {
795 /* Physical address */
796 vout
->queued_buf_addr
[vb
->i
] = (u8
*)
797 omap_vout_uservirt_to_phys(vb
->baddr
);
802 addr
= (unsigned long) vout
->buf_virt_addr
[vb
->i
];
803 size
= (unsigned long) vb
->size
;
805 dma_addr
= dma_map_single(vout
->vid_dev
->v4l2_dev
.dev
, (void *) addr
,
806 size
, DMA_TO_DEVICE
);
807 if (dma_mapping_error(vout
->vid_dev
->v4l2_dev
.dev
, dma_addr
))
808 v4l2_err(&vout
->vid_dev
->v4l2_dev
, "dma_map_single failed\n");
810 vout
->queued_buf_addr
[vb
->i
] = (u8
*)vout
->buf_phy_addr
[vb
->i
];
813 if (ovid
->rotation_type
== VOUT_ROT_VRFB
)
814 return omap_vout_prepare_vrfb(vout
, vb
);
820 * Buffer queue function will be called from the videobuf layer when _QBUF
821 * ioctl is called. It is used to enqueue buffer, which is ready to be
824 static void omap_vout_buffer_queue(struct videobuf_queue
*q
,
825 struct videobuf_buffer
*vb
)
827 struct omap_vout_device
*vout
= q
->priv_data
;
829 /* Driver is also maintainig a queue. So enqueue buffer in the driver
831 list_add_tail(&vb
->queue
, &vout
->dma_queue
);
833 vb
->state
= VIDEOBUF_QUEUED
;
837 * Buffer release function is called from videobuf layer to release buffer
838 * which are already allocated
840 static void omap_vout_buffer_release(struct videobuf_queue
*q
,
841 struct videobuf_buffer
*vb
)
843 struct omap_vout_device
*vout
= q
->priv_data
;
845 vb
->state
= VIDEOBUF_NEEDS_INIT
;
847 if (V4L2_MEMORY_MMAP
!= vout
->memory
)
854 static unsigned int omap_vout_poll(struct file
*file
,
855 struct poll_table_struct
*wait
)
857 struct omap_vout_device
*vout
= file
->private_data
;
858 struct videobuf_queue
*q
= &vout
->vbq
;
860 return videobuf_poll_stream(file
, q
, wait
);
863 static void omap_vout_vm_open(struct vm_area_struct
*vma
)
865 struct omap_vout_device
*vout
= vma
->vm_private_data
;
867 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
,
868 "vm_open [vma=%08lx-%08lx]\n", vma
->vm_start
, vma
->vm_end
);
872 static void omap_vout_vm_close(struct vm_area_struct
*vma
)
874 struct omap_vout_device
*vout
= vma
->vm_private_data
;
876 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
,
877 "vm_close [vma=%08lx-%08lx]\n", vma
->vm_start
, vma
->vm_end
);
881 static struct vm_operations_struct omap_vout_vm_ops
= {
882 .open
= omap_vout_vm_open
,
883 .close
= omap_vout_vm_close
,
886 static int omap_vout_mmap(struct file
*file
, struct vm_area_struct
*vma
)
890 unsigned long start
= vma
->vm_start
;
891 unsigned long size
= (vma
->vm_end
- vma
->vm_start
);
892 struct omap_vout_device
*vout
= file
->private_data
;
893 struct videobuf_queue
*q
= &vout
->vbq
;
895 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
,
896 " %s pgoff=0x%lx, start=0x%lx, end=0x%lx\n", __func__
,
897 vma
->vm_pgoff
, vma
->vm_start
, vma
->vm_end
);
899 /* look for the buffer to map */
900 for (i
= 0; i
< VIDEO_MAX_FRAME
; i
++) {
901 if (NULL
== q
->bufs
[i
])
903 if (V4L2_MEMORY_MMAP
!= q
->bufs
[i
]->memory
)
905 if (q
->bufs
[i
]->boff
== (vma
->vm_pgoff
<< PAGE_SHIFT
))
909 if (VIDEO_MAX_FRAME
== i
) {
910 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
,
911 "offset invalid [offset=0x%lx]\n",
912 (vma
->vm_pgoff
<< PAGE_SHIFT
));
915 /* Check the size of the buffer */
916 if (size
> vout
->buffer_size
) {
917 v4l2_err(&vout
->vid_dev
->v4l2_dev
,
918 "insufficient memory [%lu] [%u]\n",
919 size
, vout
->buffer_size
);
923 q
->bufs
[i
]->baddr
= vma
->vm_start
;
925 vma
->vm_flags
|= VM_DONTEXPAND
| VM_DONTDUMP
;
926 vma
->vm_page_prot
= pgprot_writecombine(vma
->vm_page_prot
);
927 vma
->vm_ops
= &omap_vout_vm_ops
;
928 vma
->vm_private_data
= (void *) vout
;
929 pos
= (void *)vout
->buf_virt_addr
[i
];
930 vma
->vm_pgoff
= virt_to_phys((void *)pos
) >> PAGE_SHIFT
;
933 pfn
= virt_to_phys((void *) pos
) >> PAGE_SHIFT
;
934 if (remap_pfn_range(vma
, start
, pfn
, PAGE_SIZE
, PAGE_SHARED
))
941 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
, "Exiting %s\n", __func__
);
946 static int omap_vout_release(struct file
*file
)
949 struct videobuf_queue
*q
;
950 struct omapvideo_info
*ovid
;
951 struct omap_vout_device
*vout
= file
->private_data
;
953 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
, "Entering %s\n", __func__
);
954 ovid
= &vout
->vid_info
;
960 /* Disable all the overlay managers connected with this interface */
961 for (i
= 0; i
< ovid
->num_overlays
; i
++) {
962 struct omap_overlay
*ovl
= ovid
->overlays
[i
];
963 struct omap_dss_device
*dssdev
= ovl
->get_device(ovl
);
968 /* Turn off the pipeline */
969 ret
= omapvid_apply_changes(vout
);
971 v4l2_warn(&vout
->vid_dev
->v4l2_dev
,
972 "Unable to apply changes\n");
974 /* Free all buffers */
975 omap_vout_free_extra_buffers(vout
);
977 /* Free the VRFB buffers only if they are allocated
978 * during reqbufs. Don't free if init time allocated
980 if (ovid
->rotation_type
== VOUT_ROT_VRFB
) {
981 if (!vout
->vrfb_static_allocation
)
982 omap_vout_free_vrfb_buffers(vout
);
984 videobuf_mmap_free(q
);
986 /* Even if apply changes fails we should continue
987 freeing allocated memory */
988 if (vout
->streaming
) {
991 mask
= DISPC_IRQ_VSYNC
| DISPC_IRQ_EVSYNC_EVEN
|
992 DISPC_IRQ_EVSYNC_ODD
| DISPC_IRQ_VSYNC2
;
993 omap_dispc_unregister_isr(omap_vout_isr
, vout
, mask
);
996 videobuf_streamoff(q
);
997 videobuf_queue_cancel(q
);
1000 if (vout
->mmap_count
!= 0)
1001 vout
->mmap_count
= 0;
1004 file
->private_data
= NULL
;
1006 if (vout
->buffer_allocated
)
1007 videobuf_mmap_free(q
);
1009 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
, "Exiting %s\n", __func__
);
1013 static int omap_vout_open(struct file
*file
)
1015 struct videobuf_queue
*q
;
1016 struct omap_vout_device
*vout
= NULL
;
1018 vout
= video_drvdata(file
);
1019 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
, "Entering %s\n", __func__
);
1024 /* for now, we only support single open */
1030 file
->private_data
= vout
;
1031 vout
->type
= V4L2_BUF_TYPE_VIDEO_OUTPUT
;
1034 video_vbq_ops
.buf_setup
= omap_vout_buffer_setup
;
1035 video_vbq_ops
.buf_prepare
= omap_vout_buffer_prepare
;
1036 video_vbq_ops
.buf_release
= omap_vout_buffer_release
;
1037 video_vbq_ops
.buf_queue
= omap_vout_buffer_queue
;
1038 spin_lock_init(&vout
->vbq_lock
);
1040 videobuf_queue_dma_contig_init(q
, &video_vbq_ops
, q
->dev
,
1041 &vout
->vbq_lock
, vout
->type
, V4L2_FIELD_NONE
,
1042 sizeof(struct videobuf_buffer
), vout
, NULL
);
1044 v4l2_dbg(1, debug
, &vout
->vid_dev
->v4l2_dev
, "Exiting %s\n", __func__
);
1051 static int vidioc_querycap(struct file
*file
, void *fh
,
1052 struct v4l2_capability
*cap
)
1054 struct omap_vout_device
*vout
= fh
;
1056 strlcpy(cap
->driver
, VOUT_NAME
, sizeof(cap
->driver
));
1057 strlcpy(cap
->card
, vout
->vfd
->name
, sizeof(cap
->card
));
1058 cap
->bus_info
[0] = '\0';
1059 cap
->capabilities
= V4L2_CAP_STREAMING
| V4L2_CAP_VIDEO_OUTPUT
|
1060 V4L2_CAP_VIDEO_OUTPUT_OVERLAY
;
1065 static int vidioc_enum_fmt_vid_out(struct file
*file
, void *fh
,
1066 struct v4l2_fmtdesc
*fmt
)
1068 int index
= fmt
->index
;
1070 if (index
>= NUM_OUTPUT_FORMATS
)
1073 fmt
->flags
= omap_formats
[index
].flags
;
1074 strlcpy(fmt
->description
, omap_formats
[index
].description
,
1075 sizeof(fmt
->description
));
1076 fmt
->pixelformat
= omap_formats
[index
].pixelformat
;
1081 static int vidioc_g_fmt_vid_out(struct file
*file
, void *fh
,
1082 struct v4l2_format
*f
)
1084 struct omap_vout_device
*vout
= fh
;
1086 f
->fmt
.pix
= vout
->pix
;
1091 static int vidioc_try_fmt_vid_out(struct file
*file
, void *fh
,
1092 struct v4l2_format
*f
)
1094 struct omap_overlay
*ovl
;
1095 struct omapvideo_info
*ovid
;
1096 struct omap_video_timings
*timing
;
1097 struct omap_vout_device
*vout
= fh
;
1098 struct omap_dss_device
*dssdev
;
1100 ovid
= &vout
->vid_info
;
1101 ovl
= ovid
->overlays
[0];
1102 /* get the display device attached to the overlay */
1103 dssdev
= ovl
->get_device(ovl
);
1108 timing
= &dssdev
->panel
.timings
;
1110 vout
->fbuf
.fmt
.height
= timing
->y_res
;
1111 vout
->fbuf
.fmt
.width
= timing
->x_res
;
1113 omap_vout_try_format(&f
->fmt
.pix
);
1117 static int vidioc_s_fmt_vid_out(struct file
*file
, void *fh
,
1118 struct v4l2_format
*f
)
1121 struct omap_overlay
*ovl
;
1122 struct omapvideo_info
*ovid
;
1123 struct omap_video_timings
*timing
;
1124 struct omap_vout_device
*vout
= fh
;
1125 struct omap_dss_device
*dssdev
;
1127 if (vout
->streaming
)
1130 mutex_lock(&vout
->lock
);
1132 ovid
= &vout
->vid_info
;
1133 ovl
= ovid
->overlays
[0];
1134 dssdev
= ovl
->get_device(ovl
);
1136 /* get the display device attached to the overlay */
1139 goto s_fmt_vid_out_exit
;
1141 timing
= &dssdev
->panel
.timings
;
1143 /* We dont support RGB24-packed mode if vrfb rotation
1145 if ((is_rotation_enabled(vout
)) &&
1146 f
->fmt
.pix
.pixelformat
== V4L2_PIX_FMT_RGB24
) {
1148 goto s_fmt_vid_out_exit
;
1151 /* get the framebuffer parameters */
1153 if (is_rotation_90_or_270(vout
)) {
1154 vout
->fbuf
.fmt
.height
= timing
->x_res
;
1155 vout
->fbuf
.fmt
.width
= timing
->y_res
;
1157 vout
->fbuf
.fmt
.height
= timing
->y_res
;
1158 vout
->fbuf
.fmt
.width
= timing
->x_res
;
1161 /* change to samller size is OK */
1163 bpp
= omap_vout_try_format(&f
->fmt
.pix
);
1164 f
->fmt
.pix
.sizeimage
= f
->fmt
.pix
.width
* f
->fmt
.pix
.height
* bpp
;
1166 /* try & set the new output format */
1168 vout
->pix
= f
->fmt
.pix
;
1171 /* If YUYV then vrfb bpp is 2, for others its 1 */
1172 if (V4L2_PIX_FMT_YUYV
== vout
->pix
.pixelformat
||
1173 V4L2_PIX_FMT_UYVY
== vout
->pix
.pixelformat
)
1176 /* set default crop and win */
1177 omap_vout_new_format(&vout
->pix
, &vout
->fbuf
, &vout
->crop
, &vout
->win
);
1182 mutex_unlock(&vout
->lock
);
1186 static int vidioc_try_fmt_vid_overlay(struct file
*file
, void *fh
,
1187 struct v4l2_format
*f
)
1190 struct omap_vout_device
*vout
= fh
;
1191 struct omap_overlay
*ovl
;
1192 struct omapvideo_info
*ovid
;
1193 struct v4l2_window
*win
= &f
->fmt
.win
;
1195 ovid
= &vout
->vid_info
;
1196 ovl
= ovid
->overlays
[0];
1198 ret
= omap_vout_try_window(&vout
->fbuf
, win
);
1201 if ((ovl
->caps
& OMAP_DSS_OVL_CAP_GLOBAL_ALPHA
) == 0)
1202 win
->global_alpha
= 255;
1204 win
->global_alpha
= f
->fmt
.win
.global_alpha
;
1210 static int vidioc_s_fmt_vid_overlay(struct file
*file
, void *fh
,
1211 struct v4l2_format
*f
)
1214 struct omap_overlay
*ovl
;
1215 struct omapvideo_info
*ovid
;
1216 struct omap_vout_device
*vout
= fh
;
1217 struct v4l2_window
*win
= &f
->fmt
.win
;
1219 mutex_lock(&vout
->lock
);
1220 ovid
= &vout
->vid_info
;
1221 ovl
= ovid
->overlays
[0];
1223 ret
= omap_vout_new_window(&vout
->crop
, &vout
->win
, &vout
->fbuf
, win
);
1225 /* Video1 plane does not support global alpha on OMAP3 */
1226 if ((ovl
->caps
& OMAP_DSS_OVL_CAP_GLOBAL_ALPHA
) == 0)
1227 vout
->win
.global_alpha
= 255;
1229 vout
->win
.global_alpha
= f
->fmt
.win
.global_alpha
;
1231 vout
->win
.chromakey
= f
->fmt
.win
.chromakey
;
1233 mutex_unlock(&vout
->lock
);
1237 static int vidioc_g_fmt_vid_overlay(struct file
*file
, void *fh
,
1238 struct v4l2_format
*f
)
1241 struct omap_overlay
*ovl
;
1242 struct omapvideo_info
*ovid
;
1243 struct omap_vout_device
*vout
= fh
;
1244 struct omap_overlay_manager_info info
;
1245 struct v4l2_window
*win
= &f
->fmt
.win
;
1247 ovid
= &vout
->vid_info
;
1248 ovl
= ovid
->overlays
[0];
1250 win
->w
= vout
->win
.w
;
1251 win
->field
= vout
->win
.field
;
1252 win
->global_alpha
= vout
->win
.global_alpha
;
1254 if (ovl
->manager
&& ovl
->manager
->get_manager_info
) {
1255 ovl
->manager
->get_manager_info(ovl
->manager
, &info
);
1256 key_value
= info
.trans_key
;
1258 win
->chromakey
= key_value
;
1262 static int vidioc_cropcap(struct file
*file
, void *fh
,
1263 struct v4l2_cropcap
*cropcap
)
1265 struct omap_vout_device
*vout
= fh
;
1266 struct v4l2_pix_format
*pix
= &vout
->pix
;
1268 if (cropcap
->type
!= V4L2_BUF_TYPE_VIDEO_OUTPUT
)
1271 /* Width and height are always even */
1272 cropcap
->bounds
.width
= pix
->width
& ~1;
1273 cropcap
->bounds
.height
= pix
->height
& ~1;
1275 omap_vout_default_crop(&vout
->pix
, &vout
->fbuf
, &cropcap
->defrect
);
1276 cropcap
->pixelaspect
.numerator
= 1;
1277 cropcap
->pixelaspect
.denominator
= 1;
1281 static int vidioc_g_crop(struct file
*file
, void *fh
, struct v4l2_crop
*crop
)
1283 struct omap_vout_device
*vout
= fh
;
1285 if (crop
->type
!= V4L2_BUF_TYPE_VIDEO_OUTPUT
)
1287 crop
->c
= vout
->crop
;
1291 static int vidioc_s_crop(struct file
*file
, void *fh
, const struct v4l2_crop
*crop
)
1294 struct omap_vout_device
*vout
= fh
;
1295 struct omapvideo_info
*ovid
;
1296 struct omap_overlay
*ovl
;
1297 struct omap_video_timings
*timing
;
1298 struct omap_dss_device
*dssdev
;
1300 if (vout
->streaming
)
1303 mutex_lock(&vout
->lock
);
1304 ovid
= &vout
->vid_info
;
1305 ovl
= ovid
->overlays
[0];
1306 /* get the display device attached to the overlay */
1307 dssdev
= ovl
->get_device(ovl
);
1314 timing
= &dssdev
->panel
.timings
;
1316 if (is_rotation_90_or_270(vout
)) {
1317 vout
->fbuf
.fmt
.height
= timing
->x_res
;
1318 vout
->fbuf
.fmt
.width
= timing
->y_res
;
1320 vout
->fbuf
.fmt
.height
= timing
->y_res
;
1321 vout
->fbuf
.fmt
.width
= timing
->x_res
;
1324 if (crop
->type
== V4L2_BUF_TYPE_VIDEO_OUTPUT
)
1325 ret
= omap_vout_new_crop(&vout
->pix
, &vout
->crop
, &vout
->win
,
1326 &vout
->fbuf
, &crop
->c
);
1329 mutex_unlock(&vout
->lock
);
1333 static int vidioc_queryctrl(struct file
*file
, void *fh
,
1334 struct v4l2_queryctrl
*ctrl
)
1339 case V4L2_CID_ROTATE
:
1340 ret
= v4l2_ctrl_query_fill(ctrl
, 0, 270, 90, 0);
1342 case V4L2_CID_BG_COLOR
:
1343 ret
= v4l2_ctrl_query_fill(ctrl
, 0, 0xFFFFFF, 1, 0);
1345 case V4L2_CID_VFLIP
:
1346 ret
= v4l2_ctrl_query_fill(ctrl
, 0, 1, 1, 0);
1349 ctrl
->name
[0] = '\0';
1355 static int vidioc_g_ctrl(struct file
*file
, void *fh
, struct v4l2_control
*ctrl
)
1358 struct omap_vout_device
*vout
= fh
;
1361 case V4L2_CID_ROTATE
:
1362 ctrl
->value
= vout
->control
[0].value
;
1364 case V4L2_CID_BG_COLOR
:
1366 struct omap_overlay_manager_info info
;
1367 struct omap_overlay
*ovl
;
1369 ovl
= vout
->vid_info
.overlays
[0];
1370 if (!ovl
->manager
|| !ovl
->manager
->get_manager_info
) {
1375 ovl
->manager
->get_manager_info(ovl
->manager
, &info
);
1376 ctrl
->value
= info
.default_color
;
1379 case V4L2_CID_VFLIP
:
1380 ctrl
->value
= vout
->control
[2].value
;
1388 static int vidioc_s_ctrl(struct file
*file
, void *fh
, struct v4l2_control
*a
)
1391 struct omap_vout_device
*vout
= fh
;
1394 case V4L2_CID_ROTATE
:
1396 struct omapvideo_info
*ovid
;
1397 int rotation
= a
->value
;
1399 ovid
= &vout
->vid_info
;
1401 mutex_lock(&vout
->lock
);
1402 if (rotation
&& ovid
->rotation_type
== VOUT_ROT_NONE
) {
1403 mutex_unlock(&vout
->lock
);
1408 if (rotation
&& vout
->pix
.pixelformat
== V4L2_PIX_FMT_RGB24
) {
1409 mutex_unlock(&vout
->lock
);
1414 if (v4l2_rot_to_dss_rot(rotation
, &vout
->rotation
,
1416 mutex_unlock(&vout
->lock
);
1421 vout
->control
[0].value
= rotation
;
1422 mutex_unlock(&vout
->lock
);
1425 case V4L2_CID_BG_COLOR
:
1427 struct omap_overlay
*ovl
;
1428 unsigned int color
= a
->value
;
1429 struct omap_overlay_manager_info info
;
1431 ovl
= vout
->vid_info
.overlays
[0];
1433 mutex_lock(&vout
->lock
);
1434 if (!ovl
->manager
|| !ovl
->manager
->get_manager_info
) {
1435 mutex_unlock(&vout
->lock
);
1440 ovl
->manager
->get_manager_info(ovl
->manager
, &info
);
1441 info
.default_color
= color
;
1442 if (ovl
->manager
->set_manager_info(ovl
->manager
, &info
)) {
1443 mutex_unlock(&vout
->lock
);
1448 vout
->control
[1].value
= color
;
1449 mutex_unlock(&vout
->lock
);
1452 case V4L2_CID_VFLIP
:
1454 struct omap_overlay
*ovl
;
1455 struct omapvideo_info
*ovid
;
1456 unsigned int mirror
= a
->value
;
1458 ovid
= &vout
->vid_info
;
1459 ovl
= ovid
->overlays
[0];
1461 mutex_lock(&vout
->lock
);
1462 if (mirror
&& ovid
->rotation_type
== VOUT_ROT_NONE
) {
1463 mutex_unlock(&vout
->lock
);
1468 if (mirror
&& vout
->pix
.pixelformat
== V4L2_PIX_FMT_RGB24
) {
1469 mutex_unlock(&vout
->lock
);
1473 vout
->mirror
= mirror
;
1474 vout
->control
[2].value
= mirror
;
1475 mutex_unlock(&vout
->lock
);
1484 static int vidioc_reqbufs(struct file
*file
, void *fh
,
1485 struct v4l2_requestbuffers
*req
)
1488 unsigned int i
, num_buffers
= 0;
1489 struct omap_vout_device
*vout
= fh
;
1490 struct videobuf_queue
*q
= &vout
->vbq
;
1492 if ((req
->type
!= V4L2_BUF_TYPE_VIDEO_OUTPUT
) || (req
->count
< 0))
1494 /* if memory is not mmp or userptr
1496 if ((V4L2_MEMORY_MMAP
!= req
->memory
) &&
1497 (V4L2_MEMORY_USERPTR
!= req
->memory
))
1500 mutex_lock(&vout
->lock
);
1501 /* Cannot be requested when streaming is on */
1502 if (vout
->streaming
) {
1507 /* If buffers are already allocated free them */
1508 if (q
->bufs
[0] && (V4L2_MEMORY_MMAP
== q
->bufs
[0]->memory
)) {
1509 if (vout
->mmap_count
) {
1513 num_buffers
= (vout
->vid
== OMAP_VIDEO1
) ?
1514 video1_numbuffers
: video2_numbuffers
;
1515 for (i
= num_buffers
; i
< vout
->buffer_allocated
; i
++) {
1516 omap_vout_free_buffer(vout
->buf_virt_addr
[i
],
1518 vout
->buf_virt_addr
[i
] = 0;
1519 vout
->buf_phy_addr
[i
] = 0;
1521 vout
->buffer_allocated
= num_buffers
;
1522 videobuf_mmap_free(q
);
1523 } else if (q
->bufs
[0] && (V4L2_MEMORY_USERPTR
== q
->bufs
[0]->memory
)) {
1524 if (vout
->buffer_allocated
) {
1525 videobuf_mmap_free(q
);
1526 for (i
= 0; i
< vout
->buffer_allocated
; i
++) {
1530 vout
->buffer_allocated
= 0;
1534 /*store the memory type in data structure */
1535 vout
->memory
= req
->memory
;
1537 INIT_LIST_HEAD(&vout
->dma_queue
);
1539 /* call videobuf_reqbufs api */
1540 ret
= videobuf_reqbufs(q
, req
);
1544 vout
->buffer_allocated
= req
->count
;
1547 mutex_unlock(&vout
->lock
);
1551 static int vidioc_querybuf(struct file
*file
, void *fh
,
1552 struct v4l2_buffer
*b
)
1554 struct omap_vout_device
*vout
= fh
;
1556 return videobuf_querybuf(&vout
->vbq
, b
);
1559 static int vidioc_qbuf(struct file
*file
, void *fh
,
1560 struct v4l2_buffer
*buffer
)
1562 struct omap_vout_device
*vout
= fh
;
1563 struct videobuf_queue
*q
= &vout
->vbq
;
1565 if ((V4L2_BUF_TYPE_VIDEO_OUTPUT
!= buffer
->type
) ||
1566 (buffer
->index
>= vout
->buffer_allocated
) ||
1567 (q
->bufs
[buffer
->index
]->memory
!= buffer
->memory
)) {
1570 if (V4L2_MEMORY_USERPTR
== buffer
->memory
) {
1571 if ((buffer
->length
< vout
->pix
.sizeimage
) ||
1572 (0 == buffer
->m
.userptr
)) {
1577 if ((is_rotation_enabled(vout
)) &&
1578 vout
->vrfb_dma_tx
.req_status
== DMA_CHAN_NOT_ALLOTED
) {
1579 v4l2_warn(&vout
->vid_dev
->v4l2_dev
,
1580 "DMA Channel not allocated for Rotation\n");
1584 return videobuf_qbuf(q
, buffer
);
1587 static int vidioc_dqbuf(struct file
*file
, void *fh
, struct v4l2_buffer
*b
)
1589 struct omap_vout_device
*vout
= fh
;
1590 struct videobuf_queue
*q
= &vout
->vbq
;
1595 struct videobuf_buffer
*vb
;
1597 vb
= q
->bufs
[b
->index
];
1599 if (!vout
->streaming
)
1602 if (file
->f_flags
& O_NONBLOCK
)
1603 /* Call videobuf_dqbuf for non blocking mode */
1604 ret
= videobuf_dqbuf(q
, (struct v4l2_buffer
*)b
, 1);
1606 /* Call videobuf_dqbuf for blocking mode */
1607 ret
= videobuf_dqbuf(q
, (struct v4l2_buffer
*)b
, 0);
1609 addr
= (unsigned long) vout
->buf_phy_addr
[vb
->i
];
1610 size
= (unsigned long) vb
->size
;
1611 dma_unmap_single(vout
->vid_dev
->v4l2_dev
.dev
, addr
,
1612 size
, DMA_TO_DEVICE
);
1616 static int vidioc_streamon(struct file
*file
, void *fh
, enum v4l2_buf_type i
)
1619 u32 addr
= 0, mask
= 0;
1620 struct omap_vout_device
*vout
= fh
;
1621 struct videobuf_queue
*q
= &vout
->vbq
;
1622 struct omapvideo_info
*ovid
= &vout
->vid_info
;
1624 mutex_lock(&vout
->lock
);
1626 if (vout
->streaming
) {
1631 ret
= videobuf_streamon(q
);
1635 if (list_empty(&vout
->dma_queue
)) {
1640 /* Get the next frame from the buffer queue */
1641 vout
->next_frm
= vout
->cur_frm
= list_entry(vout
->dma_queue
.next
,
1642 struct videobuf_buffer
, queue
);
1643 /* Remove buffer from the buffer queue */
1644 list_del(&vout
->cur_frm
->queue
);
1645 /* Mark state of the current frame to active */
1646 vout
->cur_frm
->state
= VIDEOBUF_ACTIVE
;
1647 /* Initialize field_id and started member */
1650 /* set flag here. Next QBUF will start DMA */
1651 vout
->streaming
= 1;
1653 vout
->first_int
= 1;
1655 if (omap_vout_calculate_offset(vout
)) {
1659 addr
= (unsigned long) vout
->queued_buf_addr
[vout
->cur_frm
->i
]
1660 + vout
->cropped_offset
;
1662 mask
= DISPC_IRQ_VSYNC
| DISPC_IRQ_EVSYNC_EVEN
| DISPC_IRQ_EVSYNC_ODD
1665 /* First save the configuration in ovelray structure */
1666 ret
= omapvid_init(vout
, addr
);
1668 v4l2_err(&vout
->vid_dev
->v4l2_dev
,
1669 "failed to set overlay info\n");
1673 omap_dispc_register_isr(omap_vout_isr
, vout
, mask
);
1675 /* Enable the pipeline and set the Go bit */
1676 ret
= omapvid_apply_changes(vout
);
1678 v4l2_err(&vout
->vid_dev
->v4l2_dev
, "failed to change mode\n");
1680 for (j
= 0; j
< ovid
->num_overlays
; j
++) {
1681 struct omap_overlay
*ovl
= ovid
->overlays
[j
];
1682 struct omap_dss_device
*dssdev
= ovl
->get_device(ovl
);
1685 ret
= ovl
->enable(ovl
);
1695 ret
= videobuf_streamoff(q
);
1697 mutex_unlock(&vout
->lock
);
1701 static int vidioc_streamoff(struct file
*file
, void *fh
, enum v4l2_buf_type i
)
1705 struct omap_vout_device
*vout
= fh
;
1706 struct omapvideo_info
*ovid
= &vout
->vid_info
;
1708 if (!vout
->streaming
)
1711 vout
->streaming
= 0;
1712 mask
= DISPC_IRQ_VSYNC
| DISPC_IRQ_EVSYNC_EVEN
| DISPC_IRQ_EVSYNC_ODD
1715 omap_dispc_unregister_isr(omap_vout_isr
, vout
, mask
);
1717 for (j
= 0; j
< ovid
->num_overlays
; j
++) {
1718 struct omap_overlay
*ovl
= ovid
->overlays
[j
];
1719 struct omap_dss_device
*dssdev
= ovl
->get_device(ovl
);
1725 /* Turn of the pipeline */
1726 ret
= omapvid_apply_changes(vout
);
1728 v4l2_err(&vout
->vid_dev
->v4l2_dev
, "failed to change mode in"
1731 INIT_LIST_HEAD(&vout
->dma_queue
);
1732 ret
= videobuf_streamoff(&vout
->vbq
);
1737 static int vidioc_s_fbuf(struct file
*file
, void *fh
,
1738 const struct v4l2_framebuffer
*a
)
1741 struct omap_overlay
*ovl
;
1742 struct omapvideo_info
*ovid
;
1743 struct omap_vout_device
*vout
= fh
;
1744 struct omap_overlay_manager_info info
;
1745 enum omap_dss_trans_key_type key_type
= OMAP_DSS_COLOR_KEY_GFX_DST
;
1747 ovid
= &vout
->vid_info
;
1748 ovl
= ovid
->overlays
[0];
1750 /* OMAP DSS doesn't support Source and Destination color
1752 if ((a
->flags
& V4L2_FBUF_FLAG_SRC_CHROMAKEY
) &&
1753 (a
->flags
& V4L2_FBUF_FLAG_CHROMAKEY
))
1755 /* OMAP DSS Doesn't support the Destination color key
1756 and alpha blending together */
1757 if ((a
->flags
& V4L2_FBUF_FLAG_CHROMAKEY
) &&
1758 (a
->flags
& V4L2_FBUF_FLAG_LOCAL_ALPHA
))
1761 if ((a
->flags
& V4L2_FBUF_FLAG_SRC_CHROMAKEY
)) {
1762 vout
->fbuf
.flags
|= V4L2_FBUF_FLAG_SRC_CHROMAKEY
;
1763 key_type
= OMAP_DSS_COLOR_KEY_VID_SRC
;
1765 vout
->fbuf
.flags
&= ~V4L2_FBUF_FLAG_SRC_CHROMAKEY
;
1767 if ((a
->flags
& V4L2_FBUF_FLAG_CHROMAKEY
)) {
1768 vout
->fbuf
.flags
|= V4L2_FBUF_FLAG_CHROMAKEY
;
1769 key_type
= OMAP_DSS_COLOR_KEY_GFX_DST
;
1771 vout
->fbuf
.flags
&= ~V4L2_FBUF_FLAG_CHROMAKEY
;
1773 if (a
->flags
& (V4L2_FBUF_FLAG_CHROMAKEY
|
1774 V4L2_FBUF_FLAG_SRC_CHROMAKEY
))
1778 if (ovl
->manager
&& ovl
->manager
->get_manager_info
&&
1779 ovl
->manager
->set_manager_info
) {
1781 ovl
->manager
->get_manager_info(ovl
->manager
, &info
);
1782 info
.trans_enabled
= enable
;
1783 info
.trans_key_type
= key_type
;
1784 info
.trans_key
= vout
->win
.chromakey
;
1786 if (ovl
->manager
->set_manager_info(ovl
->manager
, &info
))
1789 if (a
->flags
& V4L2_FBUF_FLAG_LOCAL_ALPHA
) {
1790 vout
->fbuf
.flags
|= V4L2_FBUF_FLAG_LOCAL_ALPHA
;
1793 vout
->fbuf
.flags
&= ~V4L2_FBUF_FLAG_LOCAL_ALPHA
;
1796 if (ovl
->manager
&& ovl
->manager
->get_manager_info
&&
1797 ovl
->manager
->set_manager_info
) {
1798 ovl
->manager
->get_manager_info(ovl
->manager
, &info
);
1799 /* enable this only if there is no zorder cap */
1800 if ((ovl
->caps
& OMAP_DSS_OVL_CAP_ZORDER
) == 0)
1801 info
.partial_alpha_enabled
= enable
;
1802 if (ovl
->manager
->set_manager_info(ovl
->manager
, &info
))
1809 static int vidioc_g_fbuf(struct file
*file
, void *fh
,
1810 struct v4l2_framebuffer
*a
)
1812 struct omap_overlay
*ovl
;
1813 struct omapvideo_info
*ovid
;
1814 struct omap_vout_device
*vout
= fh
;
1815 struct omap_overlay_manager_info info
;
1817 ovid
= &vout
->vid_info
;
1818 ovl
= ovid
->overlays
[0];
1820 /* The video overlay must stay within the framebuffer and can't be
1821 positioned independently. */
1822 a
->flags
= V4L2_FBUF_FLAG_OVERLAY
;
1823 a
->capability
= V4L2_FBUF_CAP_LOCAL_ALPHA
| V4L2_FBUF_CAP_CHROMAKEY
1824 | V4L2_FBUF_CAP_SRC_CHROMAKEY
;
1826 if (ovl
->manager
&& ovl
->manager
->get_manager_info
) {
1827 ovl
->manager
->get_manager_info(ovl
->manager
, &info
);
1828 if (info
.trans_key_type
== OMAP_DSS_COLOR_KEY_VID_SRC
)
1829 a
->flags
|= V4L2_FBUF_FLAG_SRC_CHROMAKEY
;
1830 if (info
.trans_key_type
== OMAP_DSS_COLOR_KEY_GFX_DST
)
1831 a
->flags
|= V4L2_FBUF_FLAG_CHROMAKEY
;
1833 if (ovl
->manager
&& ovl
->manager
->get_manager_info
) {
1834 ovl
->manager
->get_manager_info(ovl
->manager
, &info
);
1835 if (info
.partial_alpha_enabled
)
1836 a
->flags
|= V4L2_FBUF_FLAG_LOCAL_ALPHA
;
1842 static const struct v4l2_ioctl_ops vout_ioctl_ops
= {
1843 .vidioc_querycap
= vidioc_querycap
,
1844 .vidioc_enum_fmt_vid_out
= vidioc_enum_fmt_vid_out
,
1845 .vidioc_g_fmt_vid_out
= vidioc_g_fmt_vid_out
,
1846 .vidioc_try_fmt_vid_out
= vidioc_try_fmt_vid_out
,
1847 .vidioc_s_fmt_vid_out
= vidioc_s_fmt_vid_out
,
1848 .vidioc_queryctrl
= vidioc_queryctrl
,
1849 .vidioc_g_ctrl
= vidioc_g_ctrl
,
1850 .vidioc_s_fbuf
= vidioc_s_fbuf
,
1851 .vidioc_g_fbuf
= vidioc_g_fbuf
,
1852 .vidioc_s_ctrl
= vidioc_s_ctrl
,
1853 .vidioc_try_fmt_vid_out_overlay
= vidioc_try_fmt_vid_overlay
,
1854 .vidioc_s_fmt_vid_out_overlay
= vidioc_s_fmt_vid_overlay
,
1855 .vidioc_g_fmt_vid_out_overlay
= vidioc_g_fmt_vid_overlay
,
1856 .vidioc_cropcap
= vidioc_cropcap
,
1857 .vidioc_g_crop
= vidioc_g_crop
,
1858 .vidioc_s_crop
= vidioc_s_crop
,
1859 .vidioc_reqbufs
= vidioc_reqbufs
,
1860 .vidioc_querybuf
= vidioc_querybuf
,
1861 .vidioc_qbuf
= vidioc_qbuf
,
1862 .vidioc_dqbuf
= vidioc_dqbuf
,
1863 .vidioc_streamon
= vidioc_streamon
,
1864 .vidioc_streamoff
= vidioc_streamoff
,
1867 static const struct v4l2_file_operations omap_vout_fops
= {
1868 .owner
= THIS_MODULE
,
1869 .poll
= omap_vout_poll
,
1870 .unlocked_ioctl
= video_ioctl2
,
1871 .mmap
= omap_vout_mmap
,
1872 .open
= omap_vout_open
,
1873 .release
= omap_vout_release
,
1876 /* Init functions used during driver initialization */
1877 /* Initial setup of video_data */
1878 static int __init
omap_vout_setup_video_data(struct omap_vout_device
*vout
)
1880 struct video_device
*vfd
;
1881 struct v4l2_pix_format
*pix
;
1882 struct v4l2_control
*control
;
1883 struct omap_overlay
*ovl
= vout
->vid_info
.overlays
[0];
1884 struct omap_dss_device
*display
= ovl
->get_device(ovl
);
1886 /* set the default pix */
1889 /* Set the default picture of QVGA */
1890 pix
->width
= QQVGA_WIDTH
;
1891 pix
->height
= QQVGA_HEIGHT
;
1893 /* Default pixel format is RGB 5-6-5 */
1894 pix
->pixelformat
= V4L2_PIX_FMT_RGB565
;
1895 pix
->field
= V4L2_FIELD_ANY
;
1896 pix
->bytesperline
= pix
->width
* 2;
1897 pix
->sizeimage
= pix
->bytesperline
* pix
->height
;
1899 pix
->colorspace
= V4L2_COLORSPACE_JPEG
;
1901 vout
->bpp
= RGB565_BPP
;
1902 vout
->fbuf
.fmt
.width
= display
->panel
.timings
.x_res
;
1903 vout
->fbuf
.fmt
.height
= display
->panel
.timings
.y_res
;
1905 /* Set the data structures for the overlay parameters*/
1906 vout
->win
.global_alpha
= 255;
1907 vout
->fbuf
.flags
= 0;
1908 vout
->fbuf
.capability
= V4L2_FBUF_CAP_LOCAL_ALPHA
|
1909 V4L2_FBUF_CAP_SRC_CHROMAKEY
| V4L2_FBUF_CAP_CHROMAKEY
;
1910 vout
->win
.chromakey
= 0;
1912 omap_vout_new_format(pix
, &vout
->fbuf
, &vout
->crop
, &vout
->win
);
1914 /*Initialize the control variables for
1915 rotation, flipping and background color. */
1916 control
= vout
->control
;
1917 control
[0].id
= V4L2_CID_ROTATE
;
1918 control
[0].value
= 0;
1921 vout
->control
[2].id
= V4L2_CID_HFLIP
;
1922 vout
->control
[2].value
= 0;
1923 if (vout
->vid_info
.rotation_type
== VOUT_ROT_VRFB
)
1926 control
[1].id
= V4L2_CID_BG_COLOR
;
1927 control
[1].value
= 0;
1929 /* initialize the video_device struct */
1930 vfd
= vout
->vfd
= video_device_alloc();
1933 printk(KERN_ERR VOUT_NAME
": could not allocate"
1934 " video device struct\n");
1937 vfd
->release
= video_device_release
;
1938 vfd
->ioctl_ops
= &vout_ioctl_ops
;
1940 strlcpy(vfd
->name
, VOUT_NAME
, sizeof(vfd
->name
));
1942 vfd
->fops
= &omap_vout_fops
;
1943 vfd
->v4l2_dev
= &vout
->vid_dev
->v4l2_dev
;
1944 vfd
->vfl_dir
= VFL_DIR_TX
;
1945 mutex_init(&vout
->lock
);
1952 /* Setup video buffers */
1953 static int __init
omap_vout_setup_video_bufs(struct platform_device
*pdev
,
1958 struct omapvideo_info
*ovid
;
1959 struct omap_vout_device
*vout
;
1960 struct v4l2_device
*v4l2_dev
= platform_get_drvdata(pdev
);
1961 struct omap2video_device
*vid_dev
=
1962 container_of(v4l2_dev
, struct omap2video_device
, v4l2_dev
);
1964 vout
= vid_dev
->vouts
[vid_num
];
1965 ovid
= &vout
->vid_info
;
1967 numbuffers
= (vid_num
== 0) ? video1_numbuffers
: video2_numbuffers
;
1968 vout
->buffer_size
= (vid_num
== 0) ? video1_bufsize
: video2_bufsize
;
1969 dev_info(&pdev
->dev
, "Buffer Size = %d\n", vout
->buffer_size
);
1971 for (i
= 0; i
< numbuffers
; i
++) {
1972 vout
->buf_virt_addr
[i
] =
1973 omap_vout_alloc_buffer(vout
->buffer_size
,
1974 (u32
*) &vout
->buf_phy_addr
[i
]);
1975 if (!vout
->buf_virt_addr
[i
]) {
1982 vout
->cropped_offset
= 0;
1984 if (ovid
->rotation_type
== VOUT_ROT_VRFB
) {
1985 int static_vrfb_allocation
= (vid_num
== 0) ?
1986 vid1_static_vrfb_alloc
: vid2_static_vrfb_alloc
;
1987 ret
= omap_vout_setup_vrfb_bufs(pdev
, vid_num
,
1988 static_vrfb_allocation
);
1994 for (i
= 0; i
< numbuffers
; i
++) {
1995 omap_vout_free_buffer(vout
->buf_virt_addr
[i
],
1997 vout
->buf_virt_addr
[i
] = 0;
1998 vout
->buf_phy_addr
[i
] = 0;
2004 /* Create video out devices */
2005 static int __init
omap_vout_create_video_devices(struct platform_device
*pdev
)
2008 struct omap_vout_device
*vout
;
2009 struct video_device
*vfd
= NULL
;
2010 struct v4l2_device
*v4l2_dev
= platform_get_drvdata(pdev
);
2011 struct omap2video_device
*vid_dev
= container_of(v4l2_dev
,
2012 struct omap2video_device
, v4l2_dev
);
2014 for (k
= 0; k
< pdev
->num_resources
; k
++) {
2016 vout
= kzalloc(sizeof(struct omap_vout_device
), GFP_KERNEL
);
2018 dev_err(&pdev
->dev
, ": could not allocate memory\n");
2023 vid_dev
->vouts
[k
] = vout
;
2024 vout
->vid_dev
= vid_dev
;
2025 /* Select video2 if only 1 overlay is controlled by V4L2 */
2026 if (pdev
->num_resources
== 1)
2027 vout
->vid_info
.overlays
[0] = vid_dev
->overlays
[k
+ 2];
2029 /* Else select video1 and video2 one by one. */
2030 vout
->vid_info
.overlays
[0] = vid_dev
->overlays
[k
+ 1];
2031 vout
->vid_info
.num_overlays
= 1;
2032 vout
->vid_info
.id
= k
+ 1;
2034 /* Set VRFB as rotation_type for omap2 and omap3 */
2035 if (omap_vout_dss_omap24xx() || omap_vout_dss_omap34xx())
2036 vout
->vid_info
.rotation_type
= VOUT_ROT_VRFB
;
2038 /* Setup the default configuration for the video devices
2040 if (omap_vout_setup_video_data(vout
) != 0) {
2045 /* Allocate default number of buffers for the video streaming
2046 * and reserve the VRFB space for rotation
2048 if (omap_vout_setup_video_bufs(pdev
, k
) != 0) {
2053 /* Register the Video device with V4L2
2056 if (video_register_device(vfd
, VFL_TYPE_GRABBER
, -1) < 0) {
2057 dev_err(&pdev
->dev
, ": Could not register "
2058 "Video for Linux device\n");
2063 video_set_drvdata(vfd
, vout
);
2065 dev_info(&pdev
->dev
, ": registered and initialized"
2066 " video device %d\n", vfd
->minor
);
2067 if (k
== (pdev
->num_resources
- 1))
2072 if (vout
->vid_info
.rotation_type
== VOUT_ROT_VRFB
)
2073 omap_vout_release_vrfb(vout
);
2074 omap_vout_free_buffers(vout
);
2076 video_device_release(vfd
);
2084 /* Driver functions */
2085 static void omap_vout_cleanup_device(struct omap_vout_device
*vout
)
2087 struct video_device
*vfd
;
2088 struct omapvideo_info
*ovid
;
2094 ovid
= &vout
->vid_info
;
2096 if (!video_is_registered(vfd
)) {
2098 * The device was never registered, so release the
2099 * video_device struct directly.
2101 video_device_release(vfd
);
2104 * The unregister function will release the video_device
2105 * struct as well as unregistering it.
2107 video_unregister_device(vfd
);
2110 if (ovid
->rotation_type
== VOUT_ROT_VRFB
) {
2111 omap_vout_release_vrfb(vout
);
2112 /* Free the VRFB buffer if allocated
2115 if (vout
->vrfb_static_allocation
)
2116 omap_vout_free_vrfb_buffers(vout
);
2118 omap_vout_free_buffers(vout
);
2123 static int omap_vout_remove(struct platform_device
*pdev
)
2126 struct v4l2_device
*v4l2_dev
= platform_get_drvdata(pdev
);
2127 struct omap2video_device
*vid_dev
= container_of(v4l2_dev
, struct
2128 omap2video_device
, v4l2_dev
);
2130 v4l2_device_unregister(v4l2_dev
);
2131 for (k
= 0; k
< pdev
->num_resources
; k
++)
2132 omap_vout_cleanup_device(vid_dev
->vouts
[k
]);
2134 for (k
= 0; k
< vid_dev
->num_displays
; k
++) {
2135 if (vid_dev
->displays
[k
]->state
!= OMAP_DSS_DISPLAY_DISABLED
)
2136 vid_dev
->displays
[k
]->driver
->disable(vid_dev
->displays
[k
]);
2138 omap_dss_put_device(vid_dev
->displays
[k
]);
2144 static int __init
omap_vout_probe(struct platform_device
*pdev
)
2147 struct omap_overlay
*ovl
;
2148 struct omap_dss_device
*dssdev
= NULL
;
2149 struct omap_dss_device
*def_display
;
2150 struct omap2video_device
*vid_dev
= NULL
;
2152 if (omapdss_is_initialized() == false)
2153 return -EPROBE_DEFER
;
2155 ret
= omapdss_compat_init();
2157 dev_err(&pdev
->dev
, "failed to init dss\n");
2161 if (pdev
->num_resources
== 0) {
2162 dev_err(&pdev
->dev
, "probed for an unknown device\n");
2167 vid_dev
= kzalloc(sizeof(struct omap2video_device
), GFP_KERNEL
);
2168 if (vid_dev
== NULL
) {
2173 vid_dev
->num_displays
= 0;
2174 for_each_dss_dev(dssdev
) {
2175 omap_dss_get_device(dssdev
);
2177 if (!dssdev
->driver
) {
2178 dev_warn(&pdev
->dev
, "no driver for display: %s\n",
2180 omap_dss_put_device(dssdev
);
2184 vid_dev
->displays
[vid_dev
->num_displays
++] = dssdev
;
2187 if (vid_dev
->num_displays
== 0) {
2188 dev_err(&pdev
->dev
, "no displays\n");
2193 vid_dev
->num_overlays
= omap_dss_get_num_overlays();
2194 for (i
= 0; i
< vid_dev
->num_overlays
; i
++)
2195 vid_dev
->overlays
[i
] = omap_dss_get_overlay(i
);
2197 vid_dev
->num_managers
= omap_dss_get_num_overlay_managers();
2198 for (i
= 0; i
< vid_dev
->num_managers
; i
++)
2199 vid_dev
->managers
[i
] = omap_dss_get_overlay_manager(i
);
2201 /* Get the Video1 overlay and video2 overlay.
2202 * Setup the Display attached to that overlays
2204 for (i
= 1; i
< vid_dev
->num_overlays
; i
++) {
2205 ovl
= omap_dss_get_overlay(i
);
2206 dssdev
= ovl
->get_device(ovl
);
2209 def_display
= dssdev
;
2211 dev_warn(&pdev
->dev
, "cannot find display\n");
2215 struct omap_dss_driver
*dssdrv
= def_display
->driver
;
2217 ret
= dssdrv
->enable(def_display
);
2219 /* Here we are not considering a error
2220 * as display may be enabled by frame
2223 dev_warn(&pdev
->dev
,
2224 "'%s' Display already enabled\n",
2230 if (v4l2_device_register(&pdev
->dev
, &vid_dev
->v4l2_dev
) < 0) {
2231 dev_err(&pdev
->dev
, "v4l2_device_register failed\n");
2236 ret
= omap_vout_create_video_devices(pdev
);
2240 for (i
= 0; i
< vid_dev
->num_displays
; i
++) {
2241 struct omap_dss_device
*display
= vid_dev
->displays
[i
];
2243 if (display
->driver
->update
)
2244 display
->driver
->update(display
, 0, 0,
2245 display
->panel
.timings
.x_res
,
2246 display
->panel
.timings
.y_res
);
2251 v4l2_device_unregister(&vid_dev
->v4l2_dev
);
2253 for (i
= 1; i
< vid_dev
->num_overlays
; i
++) {
2255 ovl
= omap_dss_get_overlay(i
);
2256 dssdev
= ovl
->get_device(ovl
);
2259 def_display
= dssdev
;
2261 if (def_display
&& def_display
->driver
)
2262 def_display
->driver
->disable(def_display
);
2267 omapdss_compat_uninit();
2271 static struct platform_driver omap_vout_driver
= {
2275 .remove
= omap_vout_remove
,
2278 static int __init
omap_vout_init(void)
2280 if (platform_driver_probe(&omap_vout_driver
, omap_vout_probe
) != 0) {
2281 printk(KERN_ERR VOUT_NAME
":Could not register Video driver\n");
2287 static void omap_vout_cleanup(void)
2289 platform_driver_unregister(&omap_vout_driver
);
2292 late_initcall(omap_vout_init
);
2293 module_exit(omap_vout_cleanup
);