2 * Copyright (c) 2003 The FFmpeg Project
4 * This file is part of FFmpeg.
6 * FFmpeg is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU Lesser General Public
8 * License as published by the Free Software Foundation; either
9 * version 2.1 of the License, or (at your option) any later version.
11 * FFmpeg is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 * Lesser General Public License for more details.
16 * You should have received a copy of the GNU Lesser General Public
17 * License along with FFmpeg; if not, write to the Free Software
18 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
22 * How to use this decoder:
23 * SVQ3 data is transported within Apple Quicktime files. Quicktime files
24 * have stsd atoms to describe media trak properties. A stsd atom for a
25 * video trak contains 1 or more ImageDescription atoms. These atoms begin
26 * with the 4-byte length of the atom followed by the codec fourcc. Some
27 * decoders need information in this atom to operate correctly. Such
28 * is the case with SVQ3. In order to get the best use out of this decoder,
29 * the calling app must make the SVQ3 ImageDescription atom available
30 * via the AVCodecContext's extradata[_size] field:
32 * AVCodecContext.extradata = pointer to ImageDescription, first characters
33 * are expected to be 'S', 'V', 'Q', and '3', NOT the 4-byte atom length
34 * AVCodecContext.extradata_size = size of ImageDescription atom memory
35 * buffer (which will be the same as the ImageDescription atom size field
36 * from the QT file, minus 4 bytes since the length is missing)
38 * You will know you have these parameters passed correctly when the decoder
39 * correctly decodes this file:
40 * http://samples.mplayerhq.hu/V-codecs/SVQ3/Vertical400kbit.sorenson3.mov
50 * @file libavcodec/svq3.c
54 #define FULLPEL_MODE 1
55 #define HALFPEL_MODE 2
56 #define THIRDPEL_MODE 3
57 #define PREDICT_MODE 4
59 /* dual scan (from some older h264 draft)
68 static const uint8_t svq3_scan
[16] = {
69 0+0*4, 1+0*4, 2+0*4, 2+1*4,
70 2+2*4, 3+0*4, 3+1*4, 3+2*4,
71 0+1*4, 0+2*4, 1+1*4, 1+2*4,
72 0+3*4, 1+3*4, 2+3*4, 3+3*4,
75 static const uint8_t svq3_pred_0
[25][2] = {
78 { 0, 2 }, { 1, 1 }, { 2, 0 },
79 { 3, 0 }, { 2, 1 }, { 1, 2 }, { 0, 3 },
80 { 0, 4 }, { 1, 3 }, { 2, 2 }, { 3, 1 }, { 4, 0 },
81 { 4, 1 }, { 3, 2 }, { 2, 3 }, { 1, 4 },
82 { 2, 4 }, { 3, 3 }, { 4, 2 },
87 static const int8_t svq3_pred_1
[6][6][5] = {
88 { { 2,-1,-1,-1,-1 }, { 2, 1,-1,-1,-1 }, { 1, 2,-1,-1,-1 },
89 { 2, 1,-1,-1,-1 }, { 1, 2,-1,-1,-1 }, { 1, 2,-1,-1,-1 } },
90 { { 0, 2,-1,-1,-1 }, { 0, 2, 1, 4, 3 }, { 0, 1, 2, 4, 3 },
91 { 0, 2, 1, 4, 3 }, { 2, 0, 1, 3, 4 }, { 0, 4, 2, 1, 3 } },
92 { { 2, 0,-1,-1,-1 }, { 2, 1, 0, 4, 3 }, { 1, 2, 4, 0, 3 },
93 { 2, 1, 0, 4, 3 }, { 2, 1, 4, 3, 0 }, { 1, 2, 4, 0, 3 } },
94 { { 2, 0,-1,-1,-1 }, { 2, 0, 1, 4, 3 }, { 1, 2, 0, 4, 3 },
95 { 2, 1, 0, 4, 3 }, { 2, 1, 3, 4, 0 }, { 2, 4, 1, 0, 3 } },
96 { { 0, 2,-1,-1,-1 }, { 0, 2, 1, 3, 4 }, { 1, 2, 3, 0, 4 },
97 { 2, 0, 1, 3, 4 }, { 2, 1, 3, 0, 4 }, { 2, 0, 4, 3, 1 } },
98 { { 0, 2,-1,-1,-1 }, { 0, 2, 4, 1, 3 }, { 1, 4, 2, 0, 3 },
99 { 4, 2, 0, 1, 3 }, { 2, 0, 1, 4, 3 }, { 4, 2, 1, 0, 3 } },
102 static const struct { uint8_t run
; uint8_t level
; } svq3_dct_tables
[2][16] = {
103 { { 0, 0 }, { 0, 1 }, { 1, 1 }, { 2, 1 }, { 0, 2 }, { 3, 1 }, { 4, 1 }, { 5, 1 },
104 { 0, 3 }, { 1, 2 }, { 2, 2 }, { 6, 1 }, { 7, 1 }, { 8, 1 }, { 9, 1 }, { 0, 4 } },
105 { { 0, 0 }, { 0, 1 }, { 1, 1 }, { 0, 2 }, { 2, 1 }, { 0, 3 }, { 0, 4 }, { 0, 5 },
106 { 3, 1 }, { 4, 1 }, { 1, 2 }, { 1, 3 }, { 0, 6 }, { 0, 7 }, { 0, 8 }, { 0, 9 } }
109 static const uint32_t svq3_dequant_coeff
[32] = {
110 3881, 4351, 4890, 5481, 6154, 6914, 7761, 8718,
111 9781, 10987, 12339, 13828, 15523, 17435, 19561, 21873,
112 24552, 27656, 30847, 34870, 38807, 43747, 49103, 54683,
113 61694, 68745, 77615, 89113,100253,109366,126635,141533
117 static void svq3_luma_dc_dequant_idct_c(DCTELEM
*block
, int qp
)
119 const int qmul
= svq3_dequant_coeff
[qp
];
123 static const int x_offset
[4] = {0, 1*stride
, 4* stride
, 5*stride
};
124 static const int y_offset
[4] = {0, 2*stride
, 8* stride
, 10*stride
};
126 for (i
= 0; i
< 4; i
++){
127 const int offset
= y_offset
[i
];
128 const int z0
= 13*(block
[offset
+stride
*0] + block
[offset
+stride
*4]);
129 const int z1
= 13*(block
[offset
+stride
*0] - block
[offset
+stride
*4]);
130 const int z2
= 7* block
[offset
+stride
*1] - 17*block
[offset
+stride
*5];
131 const int z3
= 17* block
[offset
+stride
*1] + 7*block
[offset
+stride
*5];
139 for (i
= 0; i
< 4; i
++){
140 const int offset
= x_offset
[i
];
141 const int z0
= 13*(temp
[4*0+i
] + temp
[4*2+i
]);
142 const int z1
= 13*(temp
[4*0+i
] - temp
[4*2+i
]);
143 const int z2
= 7* temp
[4*1+i
] - 17*temp
[4*3+i
];
144 const int z3
= 17* temp
[4*1+i
] + 7*temp
[4*3+i
];
146 block
[stride
*0 +offset
] = ((z0
+ z3
)*qmul
+ 0x80000) >> 20;
147 block
[stride
*2 +offset
] = ((z1
+ z2
)*qmul
+ 0x80000) >> 20;
148 block
[stride
*8 +offset
] = ((z1
- z2
)*qmul
+ 0x80000) >> 20;
149 block
[stride
*10+offset
] = ((z0
- z3
)*qmul
+ 0x80000) >> 20;
154 static void svq3_add_idct_c(uint8_t *dst
, DCTELEM
*block
, int stride
, int qp
,
157 const int qmul
= svq3_dequant_coeff
[qp
];
159 uint8_t *cm
= ff_cropTbl
+ MAX_NEG_CROP
;
162 dc
= 13*13*((dc
== 1) ? 1538*block
[0] : ((qmul
*(block
[0] >> 3)) / 2));
166 for (i
= 0; i
< 4; i
++) {
167 const int z0
= 13*(block
[0 + 4*i
] + block
[2 + 4*i
]);
168 const int z1
= 13*(block
[0 + 4*i
] - block
[2 + 4*i
]);
169 const int z2
= 7* block
[1 + 4*i
] - 17*block
[3 + 4*i
];
170 const int z3
= 17* block
[1 + 4*i
] + 7*block
[3 + 4*i
];
172 block
[0 + 4*i
] = z0
+ z3
;
173 block
[1 + 4*i
] = z1
+ z2
;
174 block
[2 + 4*i
] = z1
- z2
;
175 block
[3 + 4*i
] = z0
- z3
;
178 for (i
= 0; i
< 4; i
++) {
179 const int z0
= 13*(block
[i
+ 4*0] + block
[i
+ 4*2]);
180 const int z1
= 13*(block
[i
+ 4*0] - block
[i
+ 4*2]);
181 const int z2
= 7* block
[i
+ 4*1] - 17*block
[i
+ 4*3];
182 const int z3
= 17* block
[i
+ 4*1] + 7*block
[i
+ 4*3];
183 const int rr
= (dc
+ 0x80000);
185 dst
[i
+ stride
*0] = cm
[ dst
[i
+ stride
*0] + (((z0
+ z3
)*qmul
+ rr
) >> 20) ];
186 dst
[i
+ stride
*1] = cm
[ dst
[i
+ stride
*1] + (((z1
+ z2
)*qmul
+ rr
) >> 20) ];
187 dst
[i
+ stride
*2] = cm
[ dst
[i
+ stride
*2] + (((z1
- z2
)*qmul
+ rr
) >> 20) ];
188 dst
[i
+ stride
*3] = cm
[ dst
[i
+ stride
*3] + (((z0
- z3
)*qmul
+ rr
) >> 20) ];
192 static inline int svq3_decode_block(GetBitContext
*gb
, DCTELEM
*block
,
193 int index
, const int type
)
195 static const uint8_t *const scan_patterns
[4] =
196 { luma_dc_zigzag_scan
, zigzag_scan
, svq3_scan
, chroma_dc_scan
};
198 int run
, level
, sign
, vlc
, limit
;
199 const int intra
= (3 * type
) >> 2;
200 const uint8_t *const scan
= scan_patterns
[type
];
202 for (limit
= (16 >> intra
); index
< 16; index
= limit
, limit
+= 8) {
203 for (; (vlc
= svq3_get_ue_golomb(gb
)) != 0; index
++) {
205 if (vlc
== INVALID_VLC
)
208 sign
= (vlc
& 0x1) - 1;
209 vlc
= (vlc
+ 1) >> 1;
215 } else if (vlc
< 4) {
220 level
= ((vlc
+ 9) >> 2) - run
;
224 run
= svq3_dct_tables
[intra
][vlc
].run
;
225 level
= svq3_dct_tables
[intra
][vlc
].level
;
228 level
= (vlc
>> 3) + ((run
== 0) ? 8 : ((run
< 2) ? 2 : ((run
< 5) ? 0 : -1)));
231 level
= (vlc
>> 4) + ((run
== 0) ? 4 : ((run
< 3) ? 2 : ((run
< 10) ? 1 : 0)));
235 if ((index
+= run
) >= limit
)
238 block
[scan
[index
]] = (level
^ sign
) - sign
;
249 static inline void svq3_mc_dir_part(MpegEncContext
*s
,
250 int x
, int y
, int width
, int height
,
251 int mx
, int my
, int dxy
,
252 int thirdpel
, int dir
, int avg
)
254 const Picture
*pic
= (dir
== 0) ? &s
->last_picture
: &s
->next_picture
;
257 int blocksize
= 2 - (width
>>3); //16->0, 8->1, 4->2
262 if (mx
< 0 || mx
>= (s
->h_edge_pos
- width
- 1) ||
263 my
< 0 || my
>= (s
->v_edge_pos
- height
- 1)) {
265 if ((s
->flags
& CODEC_FLAG_EMU_EDGE
)) {
269 mx
= av_clip (mx
, -16, (s
->h_edge_pos
- width
+ 15));
270 my
= av_clip (my
, -16, (s
->v_edge_pos
- height
+ 15));
273 /* form component predictions */
274 dest
= s
->current_picture
.data
[0] + x
+ y
*s
->linesize
;
275 src
= pic
->data
[0] + mx
+ my
*s
->linesize
;
278 ff_emulated_edge_mc(s
->edge_emu_buffer
, src
, s
->linesize
, (width
+ 1), (height
+ 1),
279 mx
, my
, s
->h_edge_pos
, s
->v_edge_pos
);
280 src
= s
->edge_emu_buffer
;
283 (avg
? s
->dsp
.avg_tpel_pixels_tab
: s
->dsp
.put_tpel_pixels_tab
)[dxy
](dest
, src
, s
->linesize
, width
, height
);
285 (avg
? s
->dsp
.avg_pixels_tab
: s
->dsp
.put_pixels_tab
)[blocksize
][dxy
](dest
, src
, s
->linesize
, height
);
287 if (!(s
->flags
& CODEC_FLAG_GRAY
)) {
288 mx
= (mx
+ (mx
< (int) x
)) >> 1;
289 my
= (my
+ (my
< (int) y
)) >> 1;
290 width
= (width
>> 1);
291 height
= (height
>> 1);
294 for (i
= 1; i
< 3; i
++) {
295 dest
= s
->current_picture
.data
[i
] + (x
>> 1) + (y
>> 1)*s
->uvlinesize
;
296 src
= pic
->data
[i
] + mx
+ my
*s
->uvlinesize
;
299 ff_emulated_edge_mc(s
->edge_emu_buffer
, src
, s
->uvlinesize
, (width
+ 1), (height
+ 1),
300 mx
, my
, (s
->h_edge_pos
>> 1), (s
->v_edge_pos
>> 1));
301 src
= s
->edge_emu_buffer
;
304 (avg
? s
->dsp
.avg_tpel_pixels_tab
: s
->dsp
.put_tpel_pixels_tab
)[dxy
](dest
, src
, s
->uvlinesize
, width
, height
);
306 (avg
? s
->dsp
.avg_pixels_tab
: s
->dsp
.put_pixels_tab
)[blocksize
][dxy
](dest
, src
, s
->uvlinesize
, height
);
311 static inline int svq3_mc_dir(H264Context
*h
, int size
, int mode
, int dir
,
314 int i
, j
, k
, mx
, my
, dx
, dy
, x
, y
;
315 MpegEncContext
*const s
= (MpegEncContext
*) h
;
316 const int part_width
= ((size
& 5) == 4) ? 4 : 16 >> (size
& 1);
317 const int part_height
= 16 >> ((unsigned) (size
+ 1) / 3);
318 const int extra_width
= (mode
== PREDICT_MODE
) ? -16*6 : 0;
319 const int h_edge_pos
= 6*(s
->h_edge_pos
- part_width
) - extra_width
;
320 const int v_edge_pos
= 6*(s
->v_edge_pos
- part_height
) - extra_width
;
322 for (i
= 0; i
< 16; i
+= part_height
) {
323 for (j
= 0; j
< 16; j
+= part_width
) {
324 const int b_xy
= (4*s
->mb_x
+ (j
>> 2)) + (4*s
->mb_y
+ (i
>> 2))*h
->b_stride
;
328 k
= ((j
>> 2) & 1) + ((i
>> 1) & 2) + ((j
>> 1) & 4) + (i
& 8);
330 if (mode
!= PREDICT_MODE
) {
331 pred_motion(h
, k
, (part_width
>> 2), dir
, 1, &mx
, &my
);
333 mx
= s
->next_picture
.motion_val
[0][b_xy
][0]<<1;
334 my
= s
->next_picture
.motion_val
[0][b_xy
][1]<<1;
337 mx
= ((mx
* h
->frame_num_offset
) / h
->prev_frame_num_offset
+ 1) >> 1;
338 my
= ((my
* h
->frame_num_offset
) / h
->prev_frame_num_offset
+ 1) >> 1;
340 mx
= ((mx
* (h
->frame_num_offset
- h
->prev_frame_num_offset
)) / h
->prev_frame_num_offset
+ 1) >> 1;
341 my
= ((my
* (h
->frame_num_offset
- h
->prev_frame_num_offset
)) / h
->prev_frame_num_offset
+ 1) >> 1;
345 /* clip motion vector prediction to frame border */
346 mx
= av_clip(mx
, extra_width
- 6*x
, h_edge_pos
- 6*x
);
347 my
= av_clip(my
, extra_width
- 6*y
, v_edge_pos
- 6*y
);
349 /* get (optional) motion vector differential */
350 if (mode
== PREDICT_MODE
) {
353 dy
= svq3_get_se_golomb(&s
->gb
);
354 dx
= svq3_get_se_golomb(&s
->gb
);
356 if (dx
== INVALID_VLC
|| dy
== INVALID_VLC
) {
357 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "invalid MV vlc\n");
362 /* compute motion vector */
363 if (mode
== THIRDPEL_MODE
) {
365 mx
= ((mx
+ 1)>>1) + dx
;
366 my
= ((my
+ 1)>>1) + dy
;
367 fx
= ((unsigned)(mx
+ 0x3000))/3 - 0x1000;
368 fy
= ((unsigned)(my
+ 0x3000))/3 - 0x1000;
369 dxy
= (mx
- 3*fx
) + 4*(my
- 3*fy
);
371 svq3_mc_dir_part(s
, x
, y
, part_width
, part_height
, fx
, fy
, dxy
, 1, dir
, avg
);
374 } else if (mode
== HALFPEL_MODE
|| mode
== PREDICT_MODE
) {
375 mx
= ((unsigned)(mx
+ 1 + 0x3000))/3 + dx
- 0x1000;
376 my
= ((unsigned)(my
+ 1 + 0x3000))/3 + dy
- 0x1000;
377 dxy
= (mx
&1) + 2*(my
&1);
379 svq3_mc_dir_part(s
, x
, y
, part_width
, part_height
, mx
>>1, my
>>1, dxy
, 0, dir
, avg
);
383 mx
= ((unsigned)(mx
+ 3 + 0x6000))/6 + dx
- 0x1000;
384 my
= ((unsigned)(my
+ 3 + 0x6000))/6 + dy
- 0x1000;
386 svq3_mc_dir_part(s
, x
, y
, part_width
, part_height
, mx
, my
, 0, 0, dir
, avg
);
391 /* update mv_cache */
392 if (mode
!= PREDICT_MODE
) {
393 int32_t mv
= pack16to32(mx
,my
);
395 if (part_height
== 8 && i
< 8) {
396 *(int32_t *) h
->mv_cache
[dir
][scan8
[k
] + 1*8] = mv
;
398 if (part_width
== 8 && j
< 8) {
399 *(int32_t *) h
->mv_cache
[dir
][scan8
[k
] + 1 + 1*8] = mv
;
402 if (part_width
== 8 && j
< 8) {
403 *(int32_t *) h
->mv_cache
[dir
][scan8
[k
] + 1] = mv
;
405 if (part_width
== 4 || part_height
== 4) {
406 *(int32_t *) h
->mv_cache
[dir
][scan8
[k
]] = mv
;
410 /* write back motion vectors */
411 fill_rectangle(s
->current_picture
.motion_val
[dir
][b_xy
], part_width
>>2, part_height
>>2, h
->b_stride
, pack16to32(mx
,my
), 4);
418 static int svq3_decode_mb(H264Context
*h
, unsigned int mb_type
)
420 int i
, j
, k
, m
, dir
, mode
;
424 MpegEncContext
*const s
= (MpegEncContext
*) h
;
425 const int mb_xy
= h
->mb_xy
;
426 const int b_xy
= 4*s
->mb_x
+ 4*s
->mb_y
*h
->b_stride
;
428 h
->top_samples_available
= (s
->mb_y
== 0) ? 0x33FF : 0xFFFF;
429 h
->left_samples_available
= (s
->mb_x
== 0) ? 0x5F5F : 0xFFFF;
430 h
->topright_samples_available
= 0xFFFF;
432 if (mb_type
== 0) { /* SKIP */
433 if (s
->pict_type
== FF_P_TYPE
|| s
->next_picture
.mb_type
[mb_xy
] == -1) {
434 svq3_mc_dir_part(s
, 16*s
->mb_x
, 16*s
->mb_y
, 16, 16, 0, 0, 0, 0, 0, 0);
436 if (s
->pict_type
== FF_B_TYPE
) {
437 svq3_mc_dir_part(s
, 16*s
->mb_x
, 16*s
->mb_y
, 16, 16, 0, 0, 0, 0, 1, 1);
440 mb_type
= MB_TYPE_SKIP
;
442 mb_type
= FFMIN(s
->next_picture
.mb_type
[mb_xy
], 6);
443 if (svq3_mc_dir(h
, mb_type
, PREDICT_MODE
, 0, 0) < 0)
445 if (svq3_mc_dir(h
, mb_type
, PREDICT_MODE
, 1, 1) < 0)
448 mb_type
= MB_TYPE_16x16
;
450 } else if (mb_type
< 8) { /* INTER */
451 if (h
->thirdpel_flag
&& h
->halfpel_flag
== !get_bits1 (&s
->gb
)) {
452 mode
= THIRDPEL_MODE
;
453 } else if (h
->halfpel_flag
&& h
->thirdpel_flag
== !get_bits1 (&s
->gb
)) {
460 /* note ref_cache should contain here:
468 for (m
= 0; m
< 2; m
++) {
469 if (s
->mb_x
> 0 && h
->intra4x4_pred_mode
[mb_xy
- 1][0] != -1) {
470 for (i
= 0; i
< 4; i
++) {
471 *(uint32_t *) h
->mv_cache
[m
][scan8
[0] - 1 + i
*8] = *(uint32_t *) s
->current_picture
.motion_val
[m
][b_xy
- 1 + i
*h
->b_stride
];
474 for (i
= 0; i
< 4; i
++) {
475 *(uint32_t *) h
->mv_cache
[m
][scan8
[0] - 1 + i
*8] = 0;
479 memcpy(h
->mv_cache
[m
][scan8
[0] - 1*8], s
->current_picture
.motion_val
[m
][b_xy
- h
->b_stride
], 4*2*sizeof(int16_t));
480 memset(&h
->ref_cache
[m
][scan8
[0] - 1*8], (h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
][4] == -1) ? PART_NOT_AVAILABLE
: 1, 4);
482 if (s
->mb_x
< (s
->mb_width
- 1)) {
483 *(uint32_t *) h
->mv_cache
[m
][scan8
[0] + 4 - 1*8] = *(uint32_t *) s
->current_picture
.motion_val
[m
][b_xy
- h
->b_stride
+ 4];
484 h
->ref_cache
[m
][scan8
[0] + 4 - 1*8] =
485 (h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
+ 1][0] == -1 ||
486 h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
][4] == -1) ? PART_NOT_AVAILABLE
: 1;
488 h
->ref_cache
[m
][scan8
[0] + 4 - 1*8] = PART_NOT_AVAILABLE
;
490 *(uint32_t *) h
->mv_cache
[m
][scan8
[0] - 1 - 1*8] = *(uint32_t *) s
->current_picture
.motion_val
[m
][b_xy
- h
->b_stride
- 1];
491 h
->ref_cache
[m
][scan8
[0] - 1 - 1*8] = (h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
- 1][3] == -1) ? PART_NOT_AVAILABLE
: 1;
493 h
->ref_cache
[m
][scan8
[0] - 1 - 1*8] = PART_NOT_AVAILABLE
;
495 memset(&h
->ref_cache
[m
][scan8
[0] - 1*8 - 1], PART_NOT_AVAILABLE
, 8);
497 if (s
->pict_type
!= FF_B_TYPE
)
501 /* decode motion vector(s) and form prediction(s) */
502 if (s
->pict_type
== FF_P_TYPE
) {
503 if (svq3_mc_dir(h
, (mb_type
- 1), mode
, 0, 0) < 0)
505 } else { /* FF_B_TYPE */
507 if (svq3_mc_dir(h
, 0, mode
, 0, 0) < 0)
510 for (i
= 0; i
< 4; i
++) {
511 memset(s
->current_picture
.motion_val
[0][b_xy
+ i
*h
->b_stride
], 0, 4*2*sizeof(int16_t));
515 if (svq3_mc_dir(h
, 0, mode
, 1, (mb_type
== 3)) < 0)
518 for (i
= 0; i
< 4; i
++) {
519 memset(s
->current_picture
.motion_val
[1][b_xy
+ i
*h
->b_stride
], 0, 4*2*sizeof(int16_t));
524 mb_type
= MB_TYPE_16x16
;
525 } else if (mb_type
== 8 || mb_type
== 33) { /* INTRA4x4 */
526 memset(h
->intra4x4_pred_mode_cache
, -1, 8*5*sizeof(int8_t));
530 for (i
= 0; i
< 4; i
++) {
531 h
->intra4x4_pred_mode_cache
[scan8
[0] - 1 + i
*8] = h
->intra4x4_pred_mode
[mb_xy
- 1][i
];
533 if (h
->intra4x4_pred_mode_cache
[scan8
[0] - 1] == -1) {
534 h
->left_samples_available
= 0x5F5F;
538 h
->intra4x4_pred_mode_cache
[4+8*0] = h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
][4];
539 h
->intra4x4_pred_mode_cache
[5+8*0] = h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
][5];
540 h
->intra4x4_pred_mode_cache
[6+8*0] = h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
][6];
541 h
->intra4x4_pred_mode_cache
[7+8*0] = h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
][3];
543 if (h
->intra4x4_pred_mode_cache
[4+8*0] == -1) {
544 h
->top_samples_available
= 0x33FF;
548 /* decode prediction codes for luma blocks */
549 for (i
= 0; i
< 16; i
+=2) {
550 vlc
= svq3_get_ue_golomb(&s
->gb
);
553 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "luma prediction:%d\n", vlc
);
557 left
= &h
->intra4x4_pred_mode_cache
[scan8
[i
] - 1];
558 top
= &h
->intra4x4_pred_mode_cache
[scan8
[i
] - 8];
560 left
[1] = svq3_pred_1
[top
[0] + 1][left
[0] + 1][svq3_pred_0
[vlc
][0]];
561 left
[2] = svq3_pred_1
[top
[1] + 1][left
[1] + 1][svq3_pred_0
[vlc
][1]];
563 if (left
[1] == -1 || left
[2] == -1){
564 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "weird prediction\n");
568 } else { /* mb_type == 33, DC_128_PRED block type */
569 for (i
= 0; i
< 4; i
++) {
570 memset(&h
->intra4x4_pred_mode_cache
[scan8
[0] + 8*i
], DC_PRED
, 4);
574 write_back_intra_pred_mode(h
);
577 check_intra4x4_pred_mode(h
);
579 h
->top_samples_available
= (s
->mb_y
== 0) ? 0x33FF : 0xFFFF;
580 h
->left_samples_available
= (s
->mb_x
== 0) ? 0x5F5F : 0xFFFF;
582 for (i
= 0; i
< 4; i
++) {
583 memset(&h
->intra4x4_pred_mode_cache
[scan8
[0] + 8*i
], DC_128_PRED
, 4);
586 h
->top_samples_available
= 0x33FF;
587 h
->left_samples_available
= 0x5F5F;
590 mb_type
= MB_TYPE_INTRA4x4
;
591 } else { /* INTRA16x16 */
592 dir
= i_mb_type_info
[mb_type
- 8].pred_mode
;
593 dir
= (dir
>> 1) ^ 3*(dir
& 1) ^ 1;
595 if ((h
->intra16x16_pred_mode
= check_intra_pred_mode(h
, dir
)) == -1){
596 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "check_intra_pred_mode = -1\n");
600 cbp
= i_mb_type_info
[mb_type
- 8].cbp
;
601 mb_type
= MB_TYPE_INTRA16x16
;
604 if (!IS_INTER(mb_type
) && s
->pict_type
!= FF_I_TYPE
) {
605 for (i
= 0; i
< 4; i
++) {
606 memset(s
->current_picture
.motion_val
[0][b_xy
+ i
*h
->b_stride
], 0, 4*2*sizeof(int16_t));
608 if (s
->pict_type
== FF_B_TYPE
) {
609 for (i
= 0; i
< 4; i
++) {
610 memset(s
->current_picture
.motion_val
[1][b_xy
+ i
*h
->b_stride
], 0, 4*2*sizeof(int16_t));
614 if (!IS_INTRA4x4(mb_type
)) {
615 memset(h
->intra4x4_pred_mode
[mb_xy
], DC_PRED
, 8);
617 if (!IS_SKIP(mb_type
) || s
->pict_type
== FF_B_TYPE
) {
618 memset(h
->non_zero_count_cache
+ 8, 0, 4*9*sizeof(uint8_t));
619 s
->dsp
.clear_blocks(h
->mb
);
622 if (!IS_INTRA16x16(mb_type
) && (!IS_SKIP(mb_type
) || s
->pict_type
== FF_B_TYPE
)) {
623 if ((vlc
= svq3_get_ue_golomb(&s
->gb
)) >= 48){
624 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "cbp_vlc=%d\n", vlc
);
628 cbp
= IS_INTRA(mb_type
) ? golomb_to_intra4x4_cbp
[vlc
] : golomb_to_inter_cbp
[vlc
];
630 if (IS_INTRA16x16(mb_type
) || (s
->pict_type
!= FF_I_TYPE
&& s
->adaptive_quant
&& cbp
)) {
631 s
->qscale
+= svq3_get_se_golomb(&s
->gb
);
634 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "qscale:%d\n", s
->qscale
);
638 if (IS_INTRA16x16(mb_type
)) {
639 if (svq3_decode_block(&s
->gb
, h
->mb
, 0, 0)){
640 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "error while decoding intra luma dc\n");
646 const int index
= IS_INTRA16x16(mb_type
) ? 1 : 0;
647 const int type
= ((s
->qscale
< 24 && IS_INTRA4x4(mb_type
)) ? 2 : 1);
649 for (i
= 0; i
< 4; i
++) {
650 if ((cbp
& (1 << i
))) {
651 for (j
= 0; j
< 4; j
++) {
652 k
= index
? ((j
&1) + 2*(i
&1) + 2*(j
&2) + 4*(i
&2)) : (4*i
+ j
);
653 h
->non_zero_count_cache
[ scan8
[k
] ] = 1;
655 if (svq3_decode_block(&s
->gb
, &h
->mb
[16*k
], index
, type
)){
656 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "error while decoding block\n");
664 for (i
= 0; i
< 2; ++i
) {
665 if (svq3_decode_block(&s
->gb
, &h
->mb
[16*(16 + 4*i
)], 0, 3)){
666 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "error while decoding chroma dc block\n");
672 for (i
= 0; i
< 8; i
++) {
673 h
->non_zero_count_cache
[ scan8
[16+i
] ] = 1;
675 if (svq3_decode_block(&s
->gb
, &h
->mb
[16*(16 + i
)], 1, 1)){
676 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "error while decoding chroma ac block\n");
685 s
->current_picture
.mb_type
[mb_xy
] = mb_type
;
687 if (IS_INTRA(mb_type
)) {
688 h
->chroma_pred_mode
= check_intra_pred_mode(h
, DC_PRED8x8
);
694 static int svq3_decode_slice_header(H264Context
*h
)
696 MpegEncContext
*const s
= (MpegEncContext
*) h
;
697 const int mb_xy
= h
->mb_xy
;
700 header
= get_bits(&s
->gb
, 8);
702 if (((header
& 0x9F) != 1 && (header
& 0x9F) != 2) || (header
& 0x60) == 0) {
704 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "unsupported slice header (%02X)\n", header
);
707 int length
= (header
>> 5) & 3;
709 h
->next_slice_index
= get_bits_count(&s
->gb
) + 8*show_bits(&s
->gb
, 8*length
) + 8*length
;
711 if (h
->next_slice_index
> s
->gb
.size_in_bits
) {
712 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "slice after bitstream end\n");
716 s
->gb
.size_in_bits
= h
->next_slice_index
- 8*(length
- 1);
717 skip_bits(&s
->gb
, 8);
719 if (h
->svq3_watermark_key
) {
720 uint32_t header
= AV_RL32(&s
->gb
.buffer
[(get_bits_count(&s
->gb
)>>3)+1]);
721 AV_WL32(&s
->gb
.buffer
[(get_bits_count(&s
->gb
)>>3)+1], header
^ h
->svq3_watermark_key
);
724 memcpy((uint8_t *) &s
->gb
.buffer
[get_bits_count(&s
->gb
) >> 3],
725 &s
->gb
.buffer
[s
->gb
.size_in_bits
>> 3], (length
- 1));
727 skip_bits_long(&s
->gb
, 0);
730 if ((i
= svq3_get_ue_golomb(&s
->gb
)) == INVALID_VLC
|| i
>= 3){
731 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "illegal slice type %d \n", i
);
735 h
->slice_type
= golomb_to_pict_type
[i
];
737 if ((header
& 0x9F) == 2) {
738 i
= (s
->mb_num
< 64) ? 6 : (1 + av_log2 (s
->mb_num
- 1));
739 s
->mb_skip_run
= get_bits(&s
->gb
, i
) - (s
->mb_x
+ (s
->mb_y
* s
->mb_width
));
745 h
->slice_num
= get_bits(&s
->gb
, 8);
746 s
->qscale
= get_bits(&s
->gb
, 5);
747 s
->adaptive_quant
= get_bits1(&s
->gb
);
752 if (h
->unknown_svq3_flag
) {
757 skip_bits(&s
->gb
, 2);
759 while (get_bits1(&s
->gb
)) {
760 skip_bits(&s
->gb
, 8);
763 /* reset intra predictors and invalidate motion vector references */
765 memset(h
->intra4x4_pred_mode
[mb_xy
- 1], -1, 4*sizeof(int8_t));
766 memset(h
->intra4x4_pred_mode
[mb_xy
- s
->mb_x
], -1, 8*sizeof(int8_t)*s
->mb_x
);
769 memset(h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
], -1, 8*sizeof(int8_t)*(s
->mb_width
- s
->mb_x
));
772 h
->intra4x4_pred_mode
[mb_xy
- s
->mb_stride
- 1][3] = -1;
779 static av_cold
int svq3_decode_init(AVCodecContext
*avctx
)
781 MpegEncContext
*const s
= avctx
->priv_data
;
782 H264Context
*const h
= avctx
->priv_data
;
784 unsigned char *extradata
;
787 if (decode_init(avctx
) < 0)
790 s
->flags
= avctx
->flags
;
791 s
->flags2
= avctx
->flags2
;
792 s
->unrestricted_mv
= 1;
795 if (!s
->context_initialized
) {
796 s
->width
= avctx
->width
;
797 s
->height
= avctx
->height
;
799 h
->thirdpel_flag
= 1;
800 h
->unknown_svq3_flag
= 0;
801 h
->chroma_qp
[0] = h
->chroma_qp
[1] = 4;
803 if (MPV_common_init(s
) < 0)
806 h
->b_stride
= 4*s
->mb_width
;
810 /* prowl for the "SEQH" marker in the extradata */
811 extradata
= (unsigned char *)avctx
->extradata
;
812 for (m
= 0; m
< avctx
->extradata_size
; m
++) {
813 if (!memcmp(extradata
, "SEQH", 4))
818 /* if a match was found, parse the extra data */
819 if (extradata
&& !memcmp(extradata
, "SEQH", 4)) {
824 size
= AV_RB32(&extradata
[4]);
825 init_get_bits(&gb
, extradata
+ 8, size
*8);
827 /* 'frame size code' and optional 'width, height' */
828 frame_size_code
= get_bits(&gb
, 3);
829 switch (frame_size_code
) {
830 case 0: avctx
->width
= 160; avctx
->height
= 120; break;
831 case 1: avctx
->width
= 128; avctx
->height
= 96; break;
832 case 2: avctx
->width
= 176; avctx
->height
= 144; break;
833 case 3: avctx
->width
= 352; avctx
->height
= 288; break;
834 case 4: avctx
->width
= 704; avctx
->height
= 576; break;
835 case 5: avctx
->width
= 240; avctx
->height
= 180; break;
836 case 6: avctx
->width
= 320; avctx
->height
= 240; break;
838 avctx
->width
= get_bits(&gb
, 12);
839 avctx
->height
= get_bits(&gb
, 12);
843 h
->halfpel_flag
= get_bits1(&gb
);
844 h
->thirdpel_flag
= get_bits1(&gb
);
852 s
->low_delay
= get_bits1(&gb
);
857 while (get_bits1(&gb
)) {
861 h
->unknown_svq3_flag
= get_bits1(&gb
);
862 avctx
->has_b_frames
= !s
->low_delay
;
863 if (h
->unknown_svq3_flag
) {
865 unsigned watermark_width
= svq3_get_ue_golomb(&gb
);
866 unsigned watermark_height
= svq3_get_ue_golomb(&gb
);
867 int u1
= svq3_get_ue_golomb(&gb
);
868 int u2
= get_bits(&gb
, 8);
869 int u3
= get_bits(&gb
, 2);
870 int u4
= svq3_get_ue_golomb(&gb
);
871 unsigned buf_len
= watermark_width
*watermark_height
*4;
872 int offset
= (get_bits_count(&gb
)+7)>>3;
875 if ((uint64_t)watermark_width
*4 > UINT_MAX
/watermark_height
)
878 buf
= av_malloc(buf_len
);
879 av_log(avctx
, AV_LOG_DEBUG
, "watermark size: %dx%d\n", watermark_width
, watermark_height
);
880 av_log(avctx
, AV_LOG_DEBUG
, "u1: %x u2: %x u3: %x compressed data size: %d offset: %d\n", u1
, u2
, u3
, u4
, offset
);
881 if (uncompress(buf
, (uLong
*)&buf_len
, extradata
+ 8 + offset
, size
- offset
) != Z_OK
) {
882 av_log(avctx
, AV_LOG_ERROR
, "could not uncompress watermark logo\n");
886 h
->svq3_watermark_key
= ff_svq1_packet_checksum(buf
, buf_len
, 0);
887 h
->svq3_watermark_key
= h
->svq3_watermark_key
<< 16 | h
->svq3_watermark_key
;
888 av_log(avctx
, AV_LOG_DEBUG
, "watermark key %#x\n", h
->svq3_watermark_key
);
891 av_log(avctx
, AV_LOG_ERROR
, "this svq3 file contains watermark which need zlib support compiled in\n");
901 static int svq3_decode_frame(AVCodecContext
*avctx
,
902 void *data
, int *data_size
,
905 const uint8_t *buf
= avpkt
->data
;
906 int buf_size
= avpkt
->size
;
907 MpegEncContext
*const s
= avctx
->priv_data
;
908 H264Context
*const h
= avctx
->priv_data
;
911 /* special case for last picture */
913 if (s
->next_picture_ptr
&& !s
->low_delay
) {
914 *(AVFrame
*) data
= *(AVFrame
*) &s
->next_picture
;
915 s
->next_picture_ptr
= NULL
;
916 *data_size
= sizeof(AVFrame
);
921 init_get_bits (&s
->gb
, buf
, 8*buf_size
);
923 s
->mb_x
= s
->mb_y
= h
->mb_xy
= 0;
925 if (svq3_decode_slice_header(h
))
928 s
->pict_type
= h
->slice_type
;
929 s
->picture_number
= h
->slice_num
;
931 if (avctx
->debug
&FF_DEBUG_PICT_INFO
){
932 av_log(h
->s
.avctx
, AV_LOG_DEBUG
, "%c hpel:%d, tpel:%d aqp:%d qp:%d, slice_num:%02X\n",
933 av_get_pict_type_char(s
->pict_type
), h
->halfpel_flag
, h
->thirdpel_flag
,
934 s
->adaptive_quant
, s
->qscale
, h
->slice_num
);
937 /* for hurry_up == 5 */
938 s
->current_picture
.pict_type
= s
->pict_type
;
939 s
->current_picture
.key_frame
= (s
->pict_type
== FF_I_TYPE
);
941 /* Skip B-frames if we do not have reference frames. */
942 if (s
->last_picture_ptr
== NULL
&& s
->pict_type
== FF_B_TYPE
)
944 /* Skip B-frames if we are in a hurry. */
945 if (avctx
->hurry_up
&& s
->pict_type
== FF_B_TYPE
)
947 /* Skip everything if we are in a hurry >= 5. */
948 if (avctx
->hurry_up
>= 5)
950 if ( (avctx
->skip_frame
>= AVDISCARD_NONREF
&& s
->pict_type
== FF_B_TYPE
)
951 ||(avctx
->skip_frame
>= AVDISCARD_NONKEY
&& s
->pict_type
!= FF_I_TYPE
)
952 || avctx
->skip_frame
>= AVDISCARD_ALL
)
955 if (s
->next_p_frame_damaged
) {
956 if (s
->pict_type
== FF_B_TYPE
)
959 s
->next_p_frame_damaged
= 0;
962 if (frame_start(h
) < 0)
965 if (s
->pict_type
== FF_B_TYPE
) {
966 h
->frame_num_offset
= (h
->slice_num
- h
->prev_frame_num
);
968 if (h
->frame_num_offset
< 0) {
969 h
->frame_num_offset
+= 256;
971 if (h
->frame_num_offset
== 0 || h
->frame_num_offset
>= h
->prev_frame_num_offset
) {
972 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "error in B-frame picture id\n");
976 h
->prev_frame_num
= h
->frame_num
;
977 h
->frame_num
= h
->slice_num
;
978 h
->prev_frame_num_offset
= (h
->frame_num
- h
->prev_frame_num
);
980 if (h
->prev_frame_num_offset
< 0) {
981 h
->prev_frame_num_offset
+= 256;
985 for (m
= 0; m
< 2; m
++){
987 for (i
= 0; i
< 4; i
++){
989 for (j
= -1; j
< 4; j
++)
990 h
->ref_cache
[m
][scan8
[0] + 8*i
+ j
]= 1;
992 h
->ref_cache
[m
][scan8
[0] + 8*i
+ j
]= PART_NOT_AVAILABLE
;
996 for (s
->mb_y
= 0; s
->mb_y
< s
->mb_height
; s
->mb_y
++) {
997 for (s
->mb_x
= 0; s
->mb_x
< s
->mb_width
; s
->mb_x
++) {
998 h
->mb_xy
= s
->mb_x
+ s
->mb_y
*s
->mb_stride
;
1000 if ( (get_bits_count(&s
->gb
) + 7) >= s
->gb
.size_in_bits
&&
1001 ((get_bits_count(&s
->gb
) & 7) == 0 || show_bits(&s
->gb
, (-get_bits_count(&s
->gb
) & 7)) == 0)) {
1003 skip_bits(&s
->gb
, h
->next_slice_index
- get_bits_count(&s
->gb
));
1004 s
->gb
.size_in_bits
= 8*buf_size
;
1006 if (svq3_decode_slice_header(h
))
1009 /* TODO: support s->mb_skip_run */
1012 mb_type
= svq3_get_ue_golomb(&s
->gb
);
1014 if (s
->pict_type
== FF_I_TYPE
) {
1016 } else if (s
->pict_type
== FF_B_TYPE
&& mb_type
>= 4) {
1019 if (mb_type
> 33 || svq3_decode_mb(h
, mb_type
)) {
1020 av_log(h
->s
.avctx
, AV_LOG_ERROR
, "error while decoding MB %d %d\n", s
->mb_x
, s
->mb_y
);
1028 if (s
->pict_type
!= FF_B_TYPE
&& !s
->low_delay
) {
1029 s
->current_picture
.mb_type
[s
->mb_x
+ s
->mb_y
*s
->mb_stride
] =
1030 (s
->pict_type
== FF_P_TYPE
&& mb_type
< 8) ? (mb_type
- 1) : -1;
1034 ff_draw_horiz_band(s
, 16*s
->mb_y
, 16);
1039 if (s
->pict_type
== FF_B_TYPE
|| s
->low_delay
) {
1040 *(AVFrame
*) data
= *(AVFrame
*) &s
->current_picture
;
1042 *(AVFrame
*) data
= *(AVFrame
*) &s
->last_picture
;
1045 /* Do not output the last pic after seeking. */
1046 if (s
->last_picture_ptr
|| s
->low_delay
) {
1047 *data_size
= sizeof(AVFrame
);
1054 AVCodec svq3_decoder
= {
1058 sizeof(H264Context
),
1063 CODEC_CAP_DRAW_HORIZ_BAND
| CODEC_CAP_DR1
| CODEC_CAP_DELAY
,
1064 .long_name
= NULL_IF_CONFIG_SMALL("Sorenson Vector Quantizer 3"),
1065 .pix_fmts
= (enum PixelFormat
[]){PIX_FMT_YUVJ420P
, PIX_FMT_NONE
},