FFmpeg
exr.c
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1 /*
2  * OpenEXR (.exr) image decoder
3  * Copyright (c) 2006 Industrial Light & Magic, a division of Lucas Digital Ltd. LLC
4  * Copyright (c) 2009 Jimmy Christensen
5  *
6  * B44/B44A, Tile, UINT32 added by Jokyo Images support by CNC - French National Center for Cinema
7  *
8  * This file is part of FFmpeg.
9  *
10  * FFmpeg is free software; you can redistribute it and/or
11  * modify it under the terms of the GNU Lesser General Public
12  * License as published by the Free Software Foundation; either
13  * version 2.1 of the License, or (at your option) any later version.
14  *
15  * FFmpeg is distributed in the hope that it will be useful,
16  * but WITHOUT ANY WARRANTY; without even the implied warranty of
17  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
18  * Lesser General Public License for more details.
19  *
20  * You should have received a copy of the GNU Lesser General Public
21  * License along with FFmpeg; if not, write to the Free Software
22  * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
23  */
24 
25 /**
26  * @file
27  * OpenEXR decoder
28  * @author Jimmy Christensen
29  *
30  * For more information on the OpenEXR format, visit:
31  * http://openexr.com/
32  *
33  * exr_half2float() is credited to Aaftab Munshi, Dan Ginsburg, Dave Shreiner.
34  */
35 
36 #include <float.h>
37 #include <zlib.h>
38 
39 #include "libavutil/avassert.h"
40 #include "libavutil/common.h"
41 #include "libavutil/imgutils.h"
42 #include "libavutil/intfloat.h"
43 #include "libavutil/avstring.h"
44 #include "libavutil/opt.h"
45 #include "libavutil/color_utils.h"
46 
47 #include "avcodec.h"
48 #include "bytestream.h"
49 
50 #if HAVE_BIGENDIAN
51 #include "bswapdsp.h"
52 #endif
53 
54 #include "exrdsp.h"
55 #include "get_bits.h"
56 #include "internal.h"
57 #include "mathops.h"
58 #include "thread.h"
59 
60 enum ExrCompr {
72 };
73 
79 };
80 
86 };
87 
92 };
93 
94 typedef struct EXRChannel {
95  int xsub, ysub;
97 } EXRChannel;
98 
99 typedef struct EXRTileAttribute {
105 
106 typedef struct EXRThreadData {
109 
111  int tmp_size;
112 
114  uint16_t *lut;
115 
116  int ysize, xsize;
117 
119 } EXRThreadData;
120 
121 typedef struct EXRContext {
122  AVClass *class;
126 
127 #if HAVE_BIGENDIAN
128  BswapDSPContext bbdsp;
129 #endif
130 
133  int channel_offsets[4]; // 0 = red, 1 = green, 2 = blue and 3 = alpha
135 
136  int w, h;
137  uint32_t xmax, xmin;
138  uint32_t ymax, ymin;
139  uint32_t xdelta, ydelta;
140 
142 
143  EXRTileAttribute tile_attr; /* header data attribute of tile */
144  int is_tile; /* 0 if scanline, 1 if tile */
145 
146  int is_luma;/* 1 if there is an Y plane */
147 
149  const uint8_t *buf;
150  int buf_size;
151 
155 
157 
158  const char *layer;
159 
161  float gamma;
163 } EXRContext;
164 
165 /* -15 stored using a single precision bias of 127 */
166 #define HALF_FLOAT_MIN_BIASED_EXP_AS_SINGLE_FP_EXP 0x38000000
167 
168 /* max exponent value in single precision that will be converted
169  * to Inf or Nan when stored as a half-float */
170 #define HALF_FLOAT_MAX_BIASED_EXP_AS_SINGLE_FP_EXP 0x47800000
171 
172 /* 255 is the max exponent biased value */
173 #define FLOAT_MAX_BIASED_EXP (0xFF << 23)
174 
175 #define HALF_FLOAT_MAX_BIASED_EXP (0x1F << 10)
176 
177 /**
178  * Convert a half float as a uint16_t into a full float.
179  *
180  * @param hf half float as uint16_t
181  *
182  * @return float value
183  */
184 static union av_intfloat32 exr_half2float(uint16_t hf)
185 {
186  unsigned int sign = (unsigned int) (hf >> 15);
187  unsigned int mantissa = (unsigned int) (hf & ((1 << 10) - 1));
188  unsigned int exp = (unsigned int) (hf & HALF_FLOAT_MAX_BIASED_EXP);
189  union av_intfloat32 f;
190 
192  // we have a half-float NaN or Inf
193  // half-float NaNs will be converted to a single precision NaN
194  // half-float Infs will be converted to a single precision Inf
196  if (mantissa)
197  mantissa = (1 << 23) - 1; // set all bits to indicate a NaN
198  } else if (exp == 0x0) {
199  // convert half-float zero/denorm to single precision value
200  if (mantissa) {
201  mantissa <<= 1;
203  // check for leading 1 in denorm mantissa
204  while ((mantissa & (1 << 10))) {
205  // for every leading 0, decrement single precision exponent by 1
206  // and shift half-float mantissa value to the left
207  mantissa <<= 1;
208  exp -= (1 << 23);
209  }
210  // clamp the mantissa to 10 bits
211  mantissa &= ((1 << 10) - 1);
212  // shift left to generate single-precision mantissa of 23 bits
213  mantissa <<= 13;
214  }
215  } else {
216  // shift left to generate single-precision mantissa of 23 bits
217  mantissa <<= 13;
218  // generate single precision biased exponent value
220  }
221 
222  f.i = (sign << 31) | exp | mantissa;
223 
224  return f;
225 }
226 
227 static int zip_uncompress(EXRContext *s, const uint8_t *src, int compressed_size,
228  int uncompressed_size, EXRThreadData *td)
229 {
230  unsigned long dest_len = uncompressed_size;
231 
232  if (uncompress(td->tmp, &dest_len, src, compressed_size) != Z_OK ||
233  dest_len != uncompressed_size)
234  return AVERROR_INVALIDDATA;
235 
236  av_assert1(uncompressed_size % 2 == 0);
237 
238  s->dsp.predictor(td->tmp, uncompressed_size);
239  s->dsp.reorder_pixels(td->uncompressed_data, td->tmp, uncompressed_size);
240 
241  return 0;
242 }
243 
244 static int rle_uncompress(EXRContext *ctx, const uint8_t *src, int compressed_size,
245  int uncompressed_size, EXRThreadData *td)
246 {
247  uint8_t *d = td->tmp;
248  const int8_t *s = src;
249  int ssize = compressed_size;
250  int dsize = uncompressed_size;
251  uint8_t *dend = d + dsize;
252  int count;
253 
254  while (ssize > 0) {
255  count = *s++;
256 
257  if (count < 0) {
258  count = -count;
259 
260  if ((dsize -= count) < 0 ||
261  (ssize -= count + 1) < 0)
262  return AVERROR_INVALIDDATA;
263 
264  while (count--)
265  *d++ = *s++;
266  } else {
267  count++;
268 
269  if ((dsize -= count) < 0 ||
270  (ssize -= 2) < 0)
271  return AVERROR_INVALIDDATA;
272 
273  while (count--)
274  *d++ = *s;
275 
276  s++;
277  }
278  }
279 
280  if (dend != d)
281  return AVERROR_INVALIDDATA;
282 
283  av_assert1(uncompressed_size % 2 == 0);
284 
285  ctx->dsp.predictor(td->tmp, uncompressed_size);
286  ctx->dsp.reorder_pixels(td->uncompressed_data, td->tmp, uncompressed_size);
287 
288  return 0;
289 }
290 
291 #define USHORT_RANGE (1 << 16)
292 #define BITMAP_SIZE (1 << 13)
293 
294 static uint16_t reverse_lut(const uint8_t *bitmap, uint16_t *lut)
295 {
296  int i, k = 0;
297 
298  for (i = 0; i < USHORT_RANGE; i++)
299  if ((i == 0) || (bitmap[i >> 3] & (1 << (i & 7))))
300  lut[k++] = i;
301 
302  i = k - 1;
303 
304  memset(lut + k, 0, (USHORT_RANGE - k) * 2);
305 
306  return i;
307 }
308 
309 static void apply_lut(const uint16_t *lut, uint16_t *dst, int dsize)
310 {
311  int i;
312 
313  for (i = 0; i < dsize; ++i)
314  dst[i] = lut[dst[i]];
315 }
316 
317 #define HUF_ENCBITS 16 // literal (value) bit length
318 #define HUF_DECBITS 14 // decoding bit size (>= 8)
319 
320 #define HUF_ENCSIZE ((1 << HUF_ENCBITS) + 1) // encoding table size
321 #define HUF_DECSIZE (1 << HUF_DECBITS) // decoding table size
322 #define HUF_DECMASK (HUF_DECSIZE - 1)
323 
324 typedef struct HufDec {
325  int len;
326  int lit;
327  int *p;
328 } HufDec;
329 
330 static void huf_canonical_code_table(uint64_t *hcode)
331 {
332  uint64_t c, n[59] = { 0 };
333  int i;
334 
335  for (i = 0; i < HUF_ENCSIZE; ++i)
336  n[hcode[i]] += 1;
337 
338  c = 0;
339  for (i = 58; i > 0; --i) {
340  uint64_t nc = ((c + n[i]) >> 1);
341  n[i] = c;
342  c = nc;
343  }
344 
345  for (i = 0; i < HUF_ENCSIZE; ++i) {
346  int l = hcode[i];
347 
348  if (l > 0)
349  hcode[i] = l | (n[l]++ << 6);
350  }
351 }
352 
353 #define SHORT_ZEROCODE_RUN 59
354 #define LONG_ZEROCODE_RUN 63
355 #define SHORTEST_LONG_RUN (2 + LONG_ZEROCODE_RUN - SHORT_ZEROCODE_RUN)
356 #define LONGEST_LONG_RUN (255 + SHORTEST_LONG_RUN)
357 
359  int32_t im, int32_t iM, uint64_t *hcode)
360 {
361  GetBitContext gbit;
362  int ret = init_get_bits8(&gbit, gb->buffer, bytestream2_get_bytes_left(gb));
363  if (ret < 0)
364  return ret;
365 
366  for (; im <= iM; im++) {
367  uint64_t l = hcode[im] = get_bits(&gbit, 6);
368 
369  if (l == LONG_ZEROCODE_RUN) {
370  int zerun = get_bits(&gbit, 8) + SHORTEST_LONG_RUN;
371 
372  if (im + zerun > iM + 1)
373  return AVERROR_INVALIDDATA;
374 
375  while (zerun--)
376  hcode[im++] = 0;
377 
378  im--;
379  } else if (l >= SHORT_ZEROCODE_RUN) {
380  int zerun = l - SHORT_ZEROCODE_RUN + 2;
381 
382  if (im + zerun > iM + 1)
383  return AVERROR_INVALIDDATA;
384 
385  while (zerun--)
386  hcode[im++] = 0;
387 
388  im--;
389  }
390  }
391 
392  bytestream2_skip(gb, (get_bits_count(&gbit) + 7) / 8);
394 
395  return 0;
396 }
397 
398 static int huf_build_dec_table(const uint64_t *hcode, int im,
399  int iM, HufDec *hdecod)
400 {
401  for (; im <= iM; im++) {
402  uint64_t c = hcode[im] >> 6;
403  int i, l = hcode[im] & 63;
404 
405  if (c >> l)
406  return AVERROR_INVALIDDATA;
407 
408  if (l > HUF_DECBITS) {
409  HufDec *pl = hdecod + (c >> (l - HUF_DECBITS));
410  if (pl->len)
411  return AVERROR_INVALIDDATA;
412 
413  pl->lit++;
414 
415  pl->p = av_realloc(pl->p, pl->lit * sizeof(int));
416  if (!pl->p)
417  return AVERROR(ENOMEM);
418 
419  pl->p[pl->lit - 1] = im;
420  } else if (l) {
421  HufDec *pl = hdecod + (c << (HUF_DECBITS - l));
422 
423  for (i = 1 << (HUF_DECBITS - l); i > 0; i--, pl++) {
424  if (pl->len || pl->p)
425  return AVERROR_INVALIDDATA;
426  pl->len = l;
427  pl->lit = im;
428  }
429  }
430  }
431 
432  return 0;
433 }
434 
435 #define get_char(c, lc, gb) \
436 { \
437  c = (c << 8) | bytestream2_get_byte(gb); \
438  lc += 8; \
439 }
440 
441 #define get_code(po, rlc, c, lc, gb, out, oe, outb) \
442 { \
443  if (po == rlc) { \
444  if (lc < 8) \
445  get_char(c, lc, gb); \
446  lc -= 8; \
447  \
448  cs = c >> lc; \
449  \
450  if (out + cs > oe || out == outb) \
451  return AVERROR_INVALIDDATA; \
452  \
453  s = out[-1]; \
454  \
455  while (cs-- > 0) \
456  *out++ = s; \
457  } else if (out < oe) { \
458  *out++ = po; \
459  } else { \
460  return AVERROR_INVALIDDATA; \
461  } \
462 }
463 
464 static int huf_decode(const uint64_t *hcode, const HufDec *hdecod,
465  GetByteContext *gb, int nbits,
466  int rlc, int no, uint16_t *out)
467 {
468  uint64_t c = 0;
469  uint16_t *outb = out;
470  uint16_t *oe = out + no;
471  const uint8_t *ie = gb->buffer + (nbits + 7) / 8; // input byte size
472  uint8_t cs;
473  uint16_t s;
474  int i, lc = 0;
475 
476  while (gb->buffer < ie) {
477  get_char(c, lc, gb);
478 
479  while (lc >= HUF_DECBITS) {
480  const HufDec pl = hdecod[(c >> (lc - HUF_DECBITS)) & HUF_DECMASK];
481 
482  if (pl.len) {
483  lc -= pl.len;
484  get_code(pl.lit, rlc, c, lc, gb, out, oe, outb);
485  } else {
486  int j;
487 
488  if (!pl.p)
489  return AVERROR_INVALIDDATA;
490 
491  for (j = 0; j < pl.lit; j++) {
492  int l = hcode[pl.p[j]] & 63;
493 
494  while (lc < l && bytestream2_get_bytes_left(gb) > 0)
495  get_char(c, lc, gb);
496 
497  if (lc >= l) {
498  if ((hcode[pl.p[j]] >> 6) ==
499  ((c >> (lc - l)) & ((1LL << l) - 1))) {
500  lc -= l;
501  get_code(pl.p[j], rlc, c, lc, gb, out, oe, outb);
502  break;
503  }
504  }
505  }
506 
507  if (j == pl.lit)
508  return AVERROR_INVALIDDATA;
509  }
510  }
511  }
512 
513  i = (8 - nbits) & 7;
514  c >>= i;
515  lc -= i;
516 
517  while (lc > 0) {
518  const HufDec pl = hdecod[(c << (HUF_DECBITS - lc)) & HUF_DECMASK];
519 
520  if (pl.len && lc >= pl.len) {
521  lc -= pl.len;
522  get_code(pl.lit, rlc, c, lc, gb, out, oe, outb);
523  } else {
524  return AVERROR_INVALIDDATA;
525  }
526  }
527 
528  if (out - outb != no)
529  return AVERROR_INVALIDDATA;
530  return 0;
531 }
532 
534  uint16_t *dst, int dst_size)
535 {
536  int32_t src_size, im, iM;
537  uint32_t nBits;
538  uint64_t *freq;
539  HufDec *hdec;
540  int ret, i;
541 
542  src_size = bytestream2_get_le32(gb);
543  im = bytestream2_get_le32(gb);
544  iM = bytestream2_get_le32(gb);
545  bytestream2_skip(gb, 4);
546  nBits = bytestream2_get_le32(gb);
547  if (im < 0 || im >= HUF_ENCSIZE ||
548  iM < 0 || iM >= HUF_ENCSIZE ||
549  src_size < 0)
550  return AVERROR_INVALIDDATA;
551 
552  bytestream2_skip(gb, 4);
553 
554  freq = av_mallocz_array(HUF_ENCSIZE, sizeof(*freq));
555  hdec = av_mallocz_array(HUF_DECSIZE, sizeof(*hdec));
556  if (!freq || !hdec) {
557  ret = AVERROR(ENOMEM);
558  goto fail;
559  }
560 
561  if ((ret = huf_unpack_enc_table(gb, im, iM, freq)) < 0)
562  goto fail;
563 
564  if (nBits > 8 * bytestream2_get_bytes_left(gb)) {
566  goto fail;
567  }
568 
569  if ((ret = huf_build_dec_table(freq, im, iM, hdec)) < 0)
570  goto fail;
571  ret = huf_decode(freq, hdec, gb, nBits, iM, dst_size, dst);
572 
573 fail:
574  for (i = 0; i < HUF_DECSIZE; i++)
575  if (hdec)
576  av_freep(&hdec[i].p);
577 
578  av_free(freq);
579  av_free(hdec);
580 
581  return ret;
582 }
583 
584 static inline void wdec14(uint16_t l, uint16_t h, uint16_t *a, uint16_t *b)
585 {
586  int16_t ls = l;
587  int16_t hs = h;
588  int hi = hs;
589  int ai = ls + (hi & 1) + (hi >> 1);
590  int16_t as = ai;
591  int16_t bs = ai - hi;
592 
593  *a = as;
594  *b = bs;
595 }
596 
597 #define NBITS 16
598 #define A_OFFSET (1 << (NBITS - 1))
599 #define MOD_MASK ((1 << NBITS) - 1)
600 
601 static inline void wdec16(uint16_t l, uint16_t h, uint16_t *a, uint16_t *b)
602 {
603  int m = l;
604  int d = h;
605  int bb = (m - (d >> 1)) & MOD_MASK;
606  int aa = (d + bb - A_OFFSET) & MOD_MASK;
607  *b = bb;
608  *a = aa;
609 }
610 
611 static void wav_decode(uint16_t *in, int nx, int ox,
612  int ny, int oy, uint16_t mx)
613 {
614  int w14 = (mx < (1 << 14));
615  int n = (nx > ny) ? ny : nx;
616  int p = 1;
617  int p2;
618 
619  while (p <= n)
620  p <<= 1;
621 
622  p >>= 1;
623  p2 = p;
624  p >>= 1;
625 
626  while (p >= 1) {
627  uint16_t *py = in;
628  uint16_t *ey = in + oy * (ny - p2);
629  uint16_t i00, i01, i10, i11;
630  int oy1 = oy * p;
631  int oy2 = oy * p2;
632  int ox1 = ox * p;
633  int ox2 = ox * p2;
634 
635  for (; py <= ey; py += oy2) {
636  uint16_t *px = py;
637  uint16_t *ex = py + ox * (nx - p2);
638 
639  for (; px <= ex; px += ox2) {
640  uint16_t *p01 = px + ox1;
641  uint16_t *p10 = px + oy1;
642  uint16_t *p11 = p10 + ox1;
643 
644  if (w14) {
645  wdec14(*px, *p10, &i00, &i10);
646  wdec14(*p01, *p11, &i01, &i11);
647  wdec14(i00, i01, px, p01);
648  wdec14(i10, i11, p10, p11);
649  } else {
650  wdec16(*px, *p10, &i00, &i10);
651  wdec16(*p01, *p11, &i01, &i11);
652  wdec16(i00, i01, px, p01);
653  wdec16(i10, i11, p10, p11);
654  }
655  }
656 
657  if (nx & p) {
658  uint16_t *p10 = px + oy1;
659 
660  if (w14)
661  wdec14(*px, *p10, &i00, p10);
662  else
663  wdec16(*px, *p10, &i00, p10);
664 
665  *px = i00;
666  }
667  }
668 
669  if (ny & p) {
670  uint16_t *px = py;
671  uint16_t *ex = py + ox * (nx - p2);
672 
673  for (; px <= ex; px += ox2) {
674  uint16_t *p01 = px + ox1;
675 
676  if (w14)
677  wdec14(*px, *p01, &i00, p01);
678  else
679  wdec16(*px, *p01, &i00, p01);
680 
681  *px = i00;
682  }
683  }
684 
685  p2 = p;
686  p >>= 1;
687  }
688 }
689 
690 static int piz_uncompress(EXRContext *s, const uint8_t *src, int ssize,
691  int dsize, EXRThreadData *td)
692 {
693  GetByteContext gb;
694  uint16_t maxval, min_non_zero, max_non_zero;
695  uint16_t *ptr;
696  uint16_t *tmp = (uint16_t *)td->tmp;
697  uint16_t *out;
698  uint16_t *in;
699  int ret, i, j;
700  int pixel_half_size;/* 1 for half, 2 for float and uint32 */
702  int tmp_offset;
703 
704  if (!td->bitmap)
705  td->bitmap = av_malloc(BITMAP_SIZE);
706  if (!td->lut)
707  td->lut = av_malloc(1 << 17);
708  if (!td->bitmap || !td->lut) {
709  av_freep(&td->bitmap);
710  av_freep(&td->lut);
711  return AVERROR(ENOMEM);
712  }
713 
714  bytestream2_init(&gb, src, ssize);
715  min_non_zero = bytestream2_get_le16(&gb);
716  max_non_zero = bytestream2_get_le16(&gb);
717 
718  if (max_non_zero >= BITMAP_SIZE)
719  return AVERROR_INVALIDDATA;
720 
721  memset(td->bitmap, 0, FFMIN(min_non_zero, BITMAP_SIZE));
722  if (min_non_zero <= max_non_zero)
723  bytestream2_get_buffer(&gb, td->bitmap + min_non_zero,
724  max_non_zero - min_non_zero + 1);
725  memset(td->bitmap + max_non_zero + 1, 0, BITMAP_SIZE - max_non_zero - 1);
726 
727  maxval = reverse_lut(td->bitmap, td->lut);
728 
729  ret = huf_uncompress(&gb, tmp, dsize / sizeof(uint16_t));
730  if (ret)
731  return ret;
732 
733  ptr = tmp;
734  for (i = 0; i < s->nb_channels; i++) {
735  channel = &s->channels[i];
736 
737  if (channel->pixel_type == EXR_HALF)
738  pixel_half_size = 1;
739  else
740  pixel_half_size = 2;
741 
742  for (j = 0; j < pixel_half_size; j++)
743  wav_decode(ptr + j, td->xsize, pixel_half_size, td->ysize,
744  td->xsize * pixel_half_size, maxval);
745  ptr += td->xsize * td->ysize * pixel_half_size;
746  }
747 
748  apply_lut(td->lut, tmp, dsize / sizeof(uint16_t));
749 
750  out = (uint16_t *)td->uncompressed_data;
751  for (i = 0; i < td->ysize; i++) {
752  tmp_offset = 0;
753  for (j = 0; j < s->nb_channels; j++) {
754  channel = &s->channels[j];
755  if (channel->pixel_type == EXR_HALF)
756  pixel_half_size = 1;
757  else
758  pixel_half_size = 2;
759 
760  in = tmp + tmp_offset * td->xsize * td->ysize + i * td->xsize * pixel_half_size;
761  tmp_offset += pixel_half_size;
762 
763 #if HAVE_BIGENDIAN
764  s->bbdsp.bswap16_buf(out, in, td->xsize * pixel_half_size);
765 #else
766  memcpy(out, in, td->xsize * 2 * pixel_half_size);
767 #endif
768  out += td->xsize * pixel_half_size;
769  }
770  }
771 
772  return 0;
773 }
774 
776  int compressed_size, int uncompressed_size,
777  EXRThreadData *td)
778 {
779  unsigned long dest_len, expected_len = 0;
780  const uint8_t *in = td->tmp;
781  uint8_t *out;
782  int c, i, j;
783 
784  for (i = 0; i < s->nb_channels; i++) {
785  if (s->channels[i].pixel_type == EXR_FLOAT) {
786  expected_len += (td->xsize * td->ysize * 3);/* PRX 24 store float in 24 bit instead of 32 */
787  } else if (s->channels[i].pixel_type == EXR_HALF) {
788  expected_len += (td->xsize * td->ysize * 2);
789  } else {//UINT 32
790  expected_len += (td->xsize * td->ysize * 4);
791  }
792  }
793 
794  dest_len = expected_len;
795 
796  if (uncompress(td->tmp, &dest_len, src, compressed_size) != Z_OK) {
797  return AVERROR_INVALIDDATA;
798  } else if (dest_len != expected_len) {
799  return AVERROR_INVALIDDATA;
800  }
801 
802  out = td->uncompressed_data;
803  for (i = 0; i < td->ysize; i++)
804  for (c = 0; c < s->nb_channels; c++) {
805  EXRChannel *channel = &s->channels[c];
806  const uint8_t *ptr[4];
807  uint32_t pixel = 0;
808 
809  switch (channel->pixel_type) {
810  case EXR_FLOAT:
811  ptr[0] = in;
812  ptr[1] = ptr[0] + td->xsize;
813  ptr[2] = ptr[1] + td->xsize;
814  in = ptr[2] + td->xsize;
815 
816  for (j = 0; j < td->xsize; ++j) {
817  uint32_t diff = ((unsigned)*(ptr[0]++) << 24) |
818  (*(ptr[1]++) << 16) |
819  (*(ptr[2]++) << 8);
820  pixel += diff;
821  bytestream_put_le32(&out, pixel);
822  }
823  break;
824  case EXR_HALF:
825  ptr[0] = in;
826  ptr[1] = ptr[0] + td->xsize;
827  in = ptr[1] + td->xsize;
828  for (j = 0; j < td->xsize; j++) {
829  uint32_t diff = (*(ptr[0]++) << 8) | *(ptr[1]++);
830 
831  pixel += diff;
832  bytestream_put_le16(&out, pixel);
833  }
834  break;
835  case EXR_UINT:
836  ptr[0] = in;
837  ptr[1] = ptr[0] + s->xdelta;
838  ptr[2] = ptr[1] + s->xdelta;
839  ptr[3] = ptr[2] + s->xdelta;
840  in = ptr[3] + s->xdelta;
841 
842  for (j = 0; j < s->xdelta; ++j) {
843  uint32_t diff = ((uint32_t)*(ptr[0]++) << 24) |
844  (*(ptr[1]++) << 16) |
845  (*(ptr[2]++) << 8 ) |
846  (*(ptr[3]++));
847  pixel += diff;
848  bytestream_put_le32(&out, pixel);
849  }
850  break;
851  default:
852  return AVERROR_INVALIDDATA;
853  }
854  }
855 
856  return 0;
857 }
858 
859 static void unpack_14(const uint8_t b[14], uint16_t s[16])
860 {
861  unsigned short shift = (b[ 2] >> 2) & 15;
862  unsigned short bias = (0x20 << shift);
863  int i;
864 
865  s[ 0] = (b[0] << 8) | b[1];
866 
867  s[ 4] = s[ 0] + ((((b[ 2] << 4) | (b[ 3] >> 4)) & 0x3f) << shift) - bias;
868  s[ 8] = s[ 4] + ((((b[ 3] << 2) | (b[ 4] >> 6)) & 0x3f) << shift) - bias;
869  s[12] = s[ 8] + ((b[ 4] & 0x3f) << shift) - bias;
870 
871  s[ 1] = s[ 0] + ((b[ 5] >> 2) << shift) - bias;
872  s[ 5] = s[ 4] + ((((b[ 5] << 4) | (b[ 6] >> 4)) & 0x3f) << shift) - bias;
873  s[ 9] = s[ 8] + ((((b[ 6] << 2) | (b[ 7] >> 6)) & 0x3f) << shift) - bias;
874  s[13] = s[12] + ((b[ 7] & 0x3f) << shift) - bias;
875 
876  s[ 2] = s[ 1] + ((b[ 8] >> 2) << shift) - bias;
877  s[ 6] = s[ 5] + ((((b[ 8] << 4) | (b[ 9] >> 4)) & 0x3f) << shift) - bias;
878  s[10] = s[ 9] + ((((b[ 9] << 2) | (b[10] >> 6)) & 0x3f) << shift) - bias;
879  s[14] = s[13] + ((b[10] & 0x3f) << shift) - bias;
880 
881  s[ 3] = s[ 2] + ((b[11] >> 2) << shift) - bias;
882  s[ 7] = s[ 6] + ((((b[11] << 4) | (b[12] >> 4)) & 0x3f) << shift) - bias;
883  s[11] = s[10] + ((((b[12] << 2) | (b[13] >> 6)) & 0x3f) << shift) - bias;
884  s[15] = s[14] + ((b[13] & 0x3f) << shift) - bias;
885 
886  for (i = 0; i < 16; ++i) {
887  if (s[i] & 0x8000)
888  s[i] &= 0x7fff;
889  else
890  s[i] = ~s[i];
891  }
892 }
893 
894 static void unpack_3(const uint8_t b[3], uint16_t s[16])
895 {
896  int i;
897 
898  s[0] = (b[0] << 8) | b[1];
899 
900  if (s[0] & 0x8000)
901  s[0] &= 0x7fff;
902  else
903  s[0] = ~s[0];
904 
905  for (i = 1; i < 16; i++)
906  s[i] = s[0];
907 }
908 
909 
910 static int b44_uncompress(EXRContext *s, const uint8_t *src, int compressed_size,
911  int uncompressed_size, EXRThreadData *td) {
912  const int8_t *sr = src;
913  int stay_to_uncompress = compressed_size;
914  int nb_b44_block_w, nb_b44_block_h;
915  int index_tl_x, index_tl_y, index_out, index_tmp;
916  uint16_t tmp_buffer[16]; /* B44 use 4x4 half float pixel */
917  int c, iY, iX, y, x;
918  int target_channel_offset = 0;
919 
920  /* calc B44 block count */
921  nb_b44_block_w = td->xsize / 4;
922  if ((td->xsize % 4) != 0)
923  nb_b44_block_w++;
924 
925  nb_b44_block_h = td->ysize / 4;
926  if ((td->ysize % 4) != 0)
927  nb_b44_block_h++;
928 
929  for (c = 0; c < s->nb_channels; c++) {
930  if (s->channels[c].pixel_type == EXR_HALF) {/* B44 only compress half float data */
931  for (iY = 0; iY < nb_b44_block_h; iY++) {
932  for (iX = 0; iX < nb_b44_block_w; iX++) {/* For each B44 block */
933  if (stay_to_uncompress < 3) {
934  av_log(s, AV_LOG_ERROR, "Not enough data for B44A block: %d", stay_to_uncompress);
935  return AVERROR_INVALIDDATA;
936  }
937 
938  if (src[compressed_size - stay_to_uncompress + 2] == 0xfc) { /* B44A block */
939  unpack_3(sr, tmp_buffer);
940  sr += 3;
941  stay_to_uncompress -= 3;
942  } else {/* B44 Block */
943  if (stay_to_uncompress < 14) {
944  av_log(s, AV_LOG_ERROR, "Not enough data for B44 block: %d", stay_to_uncompress);
945  return AVERROR_INVALIDDATA;
946  }
947  unpack_14(sr, tmp_buffer);
948  sr += 14;
949  stay_to_uncompress -= 14;
950  }
951 
952  /* copy data to uncompress buffer (B44 block can exceed target resolution)*/
953  index_tl_x = iX * 4;
954  index_tl_y = iY * 4;
955 
956  for (y = index_tl_y; y < FFMIN(index_tl_y + 4, td->ysize); y++) {
957  for (x = index_tl_x; x < FFMIN(index_tl_x + 4, td->xsize); x++) {
958  index_out = target_channel_offset * td->xsize + y * td->channel_line_size + 2 * x;
959  index_tmp = (y-index_tl_y) * 4 + (x-index_tl_x);
960  td->uncompressed_data[index_out] = tmp_buffer[index_tmp] & 0xff;
961  td->uncompressed_data[index_out + 1] = tmp_buffer[index_tmp] >> 8;
962  }
963  }
964  }
965  }
966  target_channel_offset += 2;
967  } else {/* Float or UINT 32 channel */
968  if (stay_to_uncompress < td->ysize * td->xsize * 4) {
969  av_log(s, AV_LOG_ERROR, "Not enough data for uncompress channel: %d", stay_to_uncompress);
970  return AVERROR_INVALIDDATA;
971  }
972 
973  for (y = 0; y < td->ysize; y++) {
974  index_out = target_channel_offset * td->xsize + y * td->channel_line_size;
975  memcpy(&td->uncompressed_data[index_out], sr, td->xsize * 4);
976  sr += td->xsize * 4;
977  }
978  target_channel_offset += 4;
979 
980  stay_to_uncompress -= td->ysize * td->xsize * 4;
981  }
982  }
983 
984  return 0;
985 }
986 
987 static int decode_block(AVCodecContext *avctx, void *tdata,
988  int jobnr, int threadnr)
989 {
990  EXRContext *s = avctx->priv_data;
991  AVFrame *const p = s->picture;
992  EXRThreadData *td = &s->thread_data[threadnr];
993  const uint8_t *channel_buffer[4] = { 0 };
994  const uint8_t *buf = s->buf;
995  uint64_t line_offset, uncompressed_size;
996  uint8_t *ptr;
997  uint32_t data_size;
998  uint64_t line, col = 0;
999  uint64_t tile_x, tile_y, tile_level_x, tile_level_y;
1000  const uint8_t *src;
1001  int step = s->desc->flags & AV_PIX_FMT_FLAG_FLOAT ? 4 : 2 * s->desc->nb_components;
1002  int axmax = (avctx->width - (s->xmax + 1)) * step; /* nb pixel to add at the right of the datawindow */
1003  int bxmin = s->xmin * step; /* nb pixel to add at the left of the datawindow */
1004  int i, x, buf_size = s->buf_size;
1005  int c, rgb_channel_count;
1006  float one_gamma = 1.0f / s->gamma;
1007  avpriv_trc_function trc_func = avpriv_get_trc_function_from_trc(s->apply_trc_type);
1008  int ret;
1009 
1010  line_offset = AV_RL64(s->gb.buffer + jobnr * 8);
1011 
1012  if (s->is_tile) {
1013  if (buf_size < 20 || line_offset > buf_size - 20)
1014  return AVERROR_INVALIDDATA;
1015 
1016  src = buf + line_offset + 20;
1017 
1018  tile_x = AV_RL32(src - 20);
1019  tile_y = AV_RL32(src - 16);
1020  tile_level_x = AV_RL32(src - 12);
1021  tile_level_y = AV_RL32(src - 8);
1022 
1023  data_size = AV_RL32(src - 4);
1024  if (data_size <= 0 || data_size > buf_size - line_offset - 20)
1025  return AVERROR_INVALIDDATA;
1026 
1027  if (tile_level_x || tile_level_y) { /* tile level, is not the full res level */
1028  avpriv_report_missing_feature(s->avctx, "Subres tile before full res tile");
1029  return AVERROR_PATCHWELCOME;
1030  }
1031 
1032  if (s->xmin || s->ymin) {
1033  avpriv_report_missing_feature(s->avctx, "Tiles with xmin/ymin");
1034  return AVERROR_PATCHWELCOME;
1035  }
1036 
1037  line = s->tile_attr.ySize * tile_y;
1038  col = s->tile_attr.xSize * tile_x;
1039 
1040  if (line < s->ymin || line > s->ymax ||
1041  col < s->xmin || col > s->xmax)
1042  return AVERROR_INVALIDDATA;
1043 
1044  td->ysize = FFMIN(s->tile_attr.ySize, s->ydelta - tile_y * s->tile_attr.ySize);
1045  td->xsize = FFMIN(s->tile_attr.xSize, s->xdelta - tile_x * s->tile_attr.xSize);
1046 
1047  if (col) { /* not the first tile of the line */
1048  bxmin = 0; /* doesn't add pixel at the left of the datawindow */
1049  }
1050 
1051  if ((col + td->xsize) != s->xdelta)/* not the last tile of the line */
1052  axmax = 0; /* doesn't add pixel at the right of the datawindow */
1053 
1054  if (td->xsize * (uint64_t)s->current_channel_offset > INT_MAX)
1055  return AVERROR_INVALIDDATA;
1056 
1057  td->channel_line_size = td->xsize * s->current_channel_offset;/* uncompress size of one line */
1058  uncompressed_size = td->channel_line_size * (uint64_t)td->ysize;/* uncompress size of the block */
1059  } else {
1060  if (buf_size < 8 || line_offset > buf_size - 8)
1061  return AVERROR_INVALIDDATA;
1062 
1063  src = buf + line_offset + 8;
1064  line = AV_RL32(src - 8);
1065 
1066  if (line < s->ymin || line > s->ymax)
1067  return AVERROR_INVALIDDATA;
1068 
1069  data_size = AV_RL32(src - 4);
1070  if (data_size <= 0 || data_size > buf_size - line_offset - 8)
1071  return AVERROR_INVALIDDATA;
1072 
1073  td->ysize = FFMIN(s->scan_lines_per_block, s->ymax - line + 1); /* s->ydelta - line ?? */
1074  td->xsize = s->xdelta;
1075 
1076  if (td->xsize * (uint64_t)s->current_channel_offset > INT_MAX)
1077  return AVERROR_INVALIDDATA;
1078 
1079  td->channel_line_size = td->xsize * s->current_channel_offset;/* uncompress size of one line */
1080  uncompressed_size = td->channel_line_size * (uint64_t)td->ysize;/* uncompress size of the block */
1081 
1082  if ((s->compression == EXR_RAW && (data_size != uncompressed_size ||
1083  line_offset > buf_size - uncompressed_size)) ||
1084  (s->compression != EXR_RAW && (data_size > uncompressed_size ||
1085  line_offset > buf_size - data_size))) {
1086  return AVERROR_INVALIDDATA;
1087  }
1088  }
1089 
1090  if (data_size < uncompressed_size || s->is_tile) { /* td->tmp is use for tile reorganization */
1091  av_fast_padded_malloc(&td->tmp, &td->tmp_size, uncompressed_size);
1092  if (!td->tmp)
1093  return AVERROR(ENOMEM);
1094  }
1095 
1096  if (data_size < uncompressed_size) {
1097  av_fast_padded_malloc(&td->uncompressed_data,
1098  &td->uncompressed_size, uncompressed_size + 64);/* Force 64 padding for AVX2 reorder_pixels dst */
1099 
1100  if (!td->uncompressed_data)
1101  return AVERROR(ENOMEM);
1102 
1104  switch (s->compression) {
1105  case EXR_ZIP1:
1106  case EXR_ZIP16:
1107  ret = zip_uncompress(s, src, data_size, uncompressed_size, td);
1108  break;
1109  case EXR_PIZ:
1110  ret = piz_uncompress(s, src, data_size, uncompressed_size, td);
1111  break;
1112  case EXR_PXR24:
1113  ret = pxr24_uncompress(s, src, data_size, uncompressed_size, td);
1114  break;
1115  case EXR_RLE:
1116  ret = rle_uncompress(s, src, data_size, uncompressed_size, td);
1117  break;
1118  case EXR_B44:
1119  case EXR_B44A:
1120  ret = b44_uncompress(s, src, data_size, uncompressed_size, td);
1121  break;
1122  }
1123  if (ret < 0) {
1124  av_log(avctx, AV_LOG_ERROR, "decode_block() failed.\n");
1125  return ret;
1126  }
1127  src = td->uncompressed_data;
1128  }
1129 
1130  if (!s->is_luma) {
1131  channel_buffer[0] = src + td->xsize * s->channel_offsets[0];
1132  channel_buffer[1] = src + td->xsize * s->channel_offsets[1];
1133  channel_buffer[2] = src + td->xsize * s->channel_offsets[2];
1134  rgb_channel_count = 3;
1135  } else { /* put y data in the first channel_buffer */
1136  channel_buffer[0] = src + td->xsize * s->channel_offsets[1];
1137  rgb_channel_count = 1;
1138  }
1139  if (s->channel_offsets[3] >= 0)
1140  channel_buffer[3] = src + td->xsize * s->channel_offsets[3];
1141 
1142  if (s->desc->flags & AV_PIX_FMT_FLAG_FLOAT) {
1143 
1144  /* todo: change this when a floating point pixel format with luma with alpha is implemented */
1145  int channel_count = s->channel_offsets[3] >= 0 ? 4 : rgb_channel_count;
1146  if (s->is_luma) {
1147  channel_buffer[1] = channel_buffer[0];
1148  channel_buffer[2] = channel_buffer[0];
1149  }
1150 
1151  for (c = 0; c < channel_count; c++) {
1152  int plane = s->desc->comp[c].plane;
1153  ptr = p->data[plane] + line * p->linesize[plane] + (col * 4);
1154 
1155  for (i = 0; i < td->ysize; i++, ptr += p->linesize[plane]) {
1156  const uint8_t *src;
1157  union av_intfloat32 *ptr_x;
1158 
1159  src = channel_buffer[c];
1160  ptr_x = (union av_intfloat32 *)ptr;
1161 
1162  // Zero out the start if xmin is not 0
1163  memset(ptr_x, 0, bxmin);
1164  ptr_x += s->xmin;
1165 
1166  if (s->pixel_type == EXR_FLOAT) {
1167  // 32-bit
1168  union av_intfloat32 t;
1169  if (trc_func && c < 3) {
1170  for (x = 0; x < td->xsize; x++) {
1171  t.i = bytestream_get_le32(&src);
1172  t.f = trc_func(t.f);
1173  *ptr_x++ = t;
1174  }
1175  } else {
1176  for (x = 0; x < td->xsize; x++) {
1177  t.i = bytestream_get_le32(&src);
1178  if (t.f > 0.0f && c < 3) /* avoid negative values */
1179  t.f = powf(t.f, one_gamma);
1180  *ptr_x++ = t;
1181  }
1182  }
1183  } else if (s->pixel_type == EXR_HALF) {
1184  // 16-bit
1185  if (c < 3) {
1186  for (x = 0; x < td->xsize; x++) {
1187  *ptr_x++ = s->gamma_table[bytestream_get_le16(&src)];
1188  }
1189  } else {
1190  for (x = 0; x < td->xsize; x++) {
1191  *ptr_x++ = exr_half2float(bytestream_get_le16(&src));;
1192  }
1193  }
1194  }
1195 
1196  // Zero out the end if xmax+1 is not w
1197  memset(ptr_x, 0, axmax);
1198  channel_buffer[c] += td->channel_line_size;
1199  }
1200  }
1201  } else {
1202 
1203  av_assert1(s->pixel_type == EXR_UINT);
1204  ptr = p->data[0] + line * p->linesize[0] + (col * s->desc->nb_components * 2);
1205 
1206  for (i = 0; i < td->ysize; i++, ptr += p->linesize[0]) {
1207 
1208  const uint8_t * a;
1209  const uint8_t *rgb[3];
1210  uint16_t *ptr_x;
1211 
1212  for (c = 0; c < rgb_channel_count; c++) {
1213  rgb[c] = channel_buffer[c];
1214  }
1215 
1216  if (channel_buffer[3])
1217  a = channel_buffer[3];
1218 
1219  ptr_x = (uint16_t *) ptr;
1220 
1221  // Zero out the start if xmin is not 0
1222  memset(ptr_x, 0, bxmin);
1223  ptr_x += s->xmin * s->desc->nb_components;
1224 
1225  for (x = 0; x < td->xsize; x++) {
1226  for (c = 0; c < rgb_channel_count; c++) {
1227  *ptr_x++ = bytestream_get_le32(&rgb[c]) >> 16;
1228  }
1229 
1230  if (channel_buffer[3])
1231  *ptr_x++ = bytestream_get_le32(&a) >> 16;
1232  }
1233 
1234  // Zero out the end if xmax+1 is not w
1235  memset(ptr_x, 0, axmax);
1236 
1237  channel_buffer[0] += td->channel_line_size;
1238  channel_buffer[1] += td->channel_line_size;
1239  channel_buffer[2] += td->channel_line_size;
1240  if (channel_buffer[3])
1241  channel_buffer[3] += td->channel_line_size;
1242  }
1243  }
1244 
1245  return 0;
1246 }
1247 
1248 /**
1249  * Check if the variable name corresponds to its data type.
1250  *
1251  * @param s the EXRContext
1252  * @param value_name name of the variable to check
1253  * @param value_type type of the variable to check
1254  * @param minimum_length minimum length of the variable data
1255  *
1256  * @return bytes to read containing variable data
1257  * -1 if variable is not found
1258  * 0 if buffer ended prematurely
1259  */
1261  const char *value_name,
1262  const char *value_type,
1263  unsigned int minimum_length)
1264 {
1265  int var_size = -1;
1266 
1267  if (bytestream2_get_bytes_left(&s->gb) >= minimum_length &&
1268  !strcmp(s->gb.buffer, value_name)) {
1269  // found value_name, jump to value_type (null terminated strings)
1270  s->gb.buffer += strlen(value_name) + 1;
1271  if (!strcmp(s->gb.buffer, value_type)) {
1272  s->gb.buffer += strlen(value_type) + 1;
1273  var_size = bytestream2_get_le32(&s->gb);
1274  // don't go read past boundaries
1275  if (var_size > bytestream2_get_bytes_left(&s->gb))
1276  var_size = 0;
1277  } else {
1278  // value_type not found, reset the buffer
1279  s->gb.buffer -= strlen(value_name) + 1;
1280  av_log(s->avctx, AV_LOG_WARNING,
1281  "Unknown data type %s for header variable %s.\n",
1282  value_type, value_name);
1283  }
1284  }
1285 
1286  return var_size;
1287 }
1288 
1290 {
1291  AVDictionary *metadata = NULL;
1292  int magic_number, version, i, flags, sar = 0;
1293  int layer_match = 0;
1294  int ret;
1295  int dup_channels = 0;
1296 
1297  s->current_channel_offset = 0;
1298  s->xmin = ~0;
1299  s->xmax = ~0;
1300  s->ymin = ~0;
1301  s->ymax = ~0;
1302  s->xdelta = ~0;
1303  s->ydelta = ~0;
1304  s->channel_offsets[0] = -1;
1305  s->channel_offsets[1] = -1;
1306  s->channel_offsets[2] = -1;
1307  s->channel_offsets[3] = -1;
1308  s->pixel_type = EXR_UNKNOWN;
1309  s->compression = EXR_UNKN;
1310  s->nb_channels = 0;
1311  s->w = 0;
1312  s->h = 0;
1313  s->tile_attr.xSize = -1;
1314  s->tile_attr.ySize = -1;
1315  s->is_tile = 0;
1316  s->is_luma = 0;
1317 
1318  if (bytestream2_get_bytes_left(&s->gb) < 10) {
1319  av_log(s->avctx, AV_LOG_ERROR, "Header too short to parse.\n");
1320  return AVERROR_INVALIDDATA;
1321  }
1322 
1323  magic_number = bytestream2_get_le32(&s->gb);
1324  if (magic_number != 20000630) {
1325  /* As per documentation of OpenEXR, it is supposed to be
1326  * int 20000630 little-endian */
1327  av_log(s->avctx, AV_LOG_ERROR, "Wrong magic number %d.\n", magic_number);
1328  return AVERROR_INVALIDDATA;
1329  }
1330 
1331  version = bytestream2_get_byte(&s->gb);
1332  if (version != 2) {
1333  avpriv_report_missing_feature(s->avctx, "Version %d", version);
1334  return AVERROR_PATCHWELCOME;
1335  }
1336 
1337  flags = bytestream2_get_le24(&s->gb);
1338 
1339  if (flags & 0x02)
1340  s->is_tile = 1;
1341  if (flags & 0x08) {
1342  avpriv_report_missing_feature(s->avctx, "deep data");
1343  return AVERROR_PATCHWELCOME;
1344  }
1345  if (flags & 0x10) {
1346  avpriv_report_missing_feature(s->avctx, "multipart");
1347  return AVERROR_PATCHWELCOME;
1348  }
1349 
1350  // Parse the header
1351  while (bytestream2_get_bytes_left(&s->gb) > 0 && *s->gb.buffer) {
1352  int var_size;
1353  if ((var_size = check_header_variable(s, "channels",
1354  "chlist", 38)) >= 0) {
1355  GetByteContext ch_gb;
1356  if (!var_size) {
1358  goto fail;
1359  }
1360 
1361  bytestream2_init(&ch_gb, s->gb.buffer, var_size);
1362 
1363  while (bytestream2_get_bytes_left(&ch_gb) >= 19) {
1365  enum ExrPixelType current_pixel_type;
1366  int channel_index = -1;
1367  int xsub, ysub;
1368 
1369  if (strcmp(s->layer, "") != 0) {
1370  if (strncmp(ch_gb.buffer, s->layer, strlen(s->layer)) == 0) {
1371  layer_match = 1;
1372  av_log(s->avctx, AV_LOG_INFO,
1373  "Channel match layer : %s.\n", ch_gb.buffer);
1374  ch_gb.buffer += strlen(s->layer);
1375  if (*ch_gb.buffer == '.')
1376  ch_gb.buffer++; /* skip dot if not given */
1377  } else {
1378  layer_match = 0;
1379  av_log(s->avctx, AV_LOG_INFO,
1380  "Channel doesn't match layer : %s.\n", ch_gb.buffer);
1381  }
1382  } else {
1383  layer_match = 1;
1384  }
1385 
1386  if (layer_match) { /* only search channel if the layer match is valid */
1387  if (!av_strcasecmp(ch_gb.buffer, "R") ||
1388  !av_strcasecmp(ch_gb.buffer, "X") ||
1389  !av_strcasecmp(ch_gb.buffer, "U")) {
1390  channel_index = 0;
1391  s->is_luma = 0;
1392  } else if (!av_strcasecmp(ch_gb.buffer, "G") ||
1393  !av_strcasecmp(ch_gb.buffer, "V")) {
1394  channel_index = 1;
1395  s->is_luma = 0;
1396  } else if (!av_strcasecmp(ch_gb.buffer, "Y")) {
1397  channel_index = 1;
1398  s->is_luma = 1;
1399  } else if (!av_strcasecmp(ch_gb.buffer, "B") ||
1400  !av_strcasecmp(ch_gb.buffer, "Z") ||
1401  !av_strcasecmp(ch_gb.buffer, "W")) {
1402  channel_index = 2;
1403  s->is_luma = 0;
1404  } else if (!av_strcasecmp(ch_gb.buffer, "A")) {
1405  channel_index = 3;
1406  } else {
1407  av_log(s->avctx, AV_LOG_WARNING,
1408  "Unsupported channel %.256s.\n", ch_gb.buffer);
1409  }
1410  }
1411 
1412  /* skip until you get a 0 */
1413  while (bytestream2_get_bytes_left(&ch_gb) > 0 &&
1414  bytestream2_get_byte(&ch_gb))
1415  continue;
1416 
1417  if (bytestream2_get_bytes_left(&ch_gb) < 4) {
1418  av_log(s->avctx, AV_LOG_ERROR, "Incomplete header.\n");
1420  goto fail;
1421  }
1422 
1423  current_pixel_type = bytestream2_get_le32(&ch_gb);
1424  if (current_pixel_type >= EXR_UNKNOWN) {
1425  avpriv_report_missing_feature(s->avctx, "Pixel type %d",
1426  current_pixel_type);
1428  goto fail;
1429  }
1430 
1431  bytestream2_skip(&ch_gb, 4);
1432  xsub = bytestream2_get_le32(&ch_gb);
1433  ysub = bytestream2_get_le32(&ch_gb);
1434 
1435  if (xsub != 1 || ysub != 1) {
1437  "Subsampling %dx%d",
1438  xsub, ysub);
1440  goto fail;
1441  }
1442 
1443  if (channel_index >= 0 && s->channel_offsets[channel_index] == -1) { /* channel has not been previously assigned */
1444  if (s->pixel_type != EXR_UNKNOWN &&
1445  s->pixel_type != current_pixel_type) {
1446  av_log(s->avctx, AV_LOG_ERROR,
1447  "RGB channels not of the same depth.\n");
1449  goto fail;
1450  }
1451  s->pixel_type = current_pixel_type;
1452  s->channel_offsets[channel_index] = s->current_channel_offset;
1453  } else if (channel_index >= 0) {
1454  av_log(s->avctx, AV_LOG_WARNING,
1455  "Multiple channels with index %d.\n", channel_index);
1456  if (++dup_channels > 10) {
1458  goto fail;
1459  }
1460  }
1461 
1462  s->channels = av_realloc(s->channels,
1463  ++s->nb_channels * sizeof(EXRChannel));
1464  if (!s->channels) {
1465  ret = AVERROR(ENOMEM);
1466  goto fail;
1467  }
1468  channel = &s->channels[s->nb_channels - 1];
1469  channel->pixel_type = current_pixel_type;
1470  channel->xsub = xsub;
1471  channel->ysub = ysub;
1472 
1473  if (current_pixel_type == EXR_HALF) {
1474  s->current_channel_offset += 2;
1475  } else {/* Float or UINT32 */
1476  s->current_channel_offset += 4;
1477  }
1478  }
1479 
1480  /* Check if all channels are set with an offset or if the channels
1481  * are causing an overflow */
1482  if (!s->is_luma) {/* if we expected to have at least 3 channels */
1483  if (FFMIN3(s->channel_offsets[0],
1484  s->channel_offsets[1],
1485  s->channel_offsets[2]) < 0) {
1486  if (s->channel_offsets[0] < 0)
1487  av_log(s->avctx, AV_LOG_ERROR, "Missing red channel.\n");
1488  if (s->channel_offsets[1] < 0)
1489  av_log(s->avctx, AV_LOG_ERROR, "Missing green channel.\n");
1490  if (s->channel_offsets[2] < 0)
1491  av_log(s->avctx, AV_LOG_ERROR, "Missing blue channel.\n");
1493  goto fail;
1494  }
1495  }
1496 
1497  // skip one last byte and update main gb
1498  s->gb.buffer = ch_gb.buffer + 1;
1499  continue;
1500  } else if ((var_size = check_header_variable(s, "dataWindow", "box2i",
1501  31)) >= 0) {
1502  int xmin, ymin, xmax, ymax;
1503  if (!var_size) {
1505  goto fail;
1506  }
1507 
1508  xmin = bytestream2_get_le32(&s->gb);
1509  ymin = bytestream2_get_le32(&s->gb);
1510  xmax = bytestream2_get_le32(&s->gb);
1511  ymax = bytestream2_get_le32(&s->gb);
1512 
1513  if (xmin > xmax || ymin > ymax ||
1514  ymax == INT_MAX || xmax == INT_MAX ||
1515  (unsigned)xmax - xmin >= INT_MAX ||
1516  (unsigned)ymax - ymin >= INT_MAX) {
1518  goto fail;
1519  }
1520  s->xmin = xmin;
1521  s->xmax = xmax;
1522  s->ymin = ymin;
1523  s->ymax = ymax;
1524  s->xdelta = (s->xmax - s->xmin) + 1;
1525  s->ydelta = (s->ymax - s->ymin) + 1;
1526 
1527  continue;
1528  } else if ((var_size = check_header_variable(s, "displayWindow",
1529  "box2i", 34)) >= 0) {
1530  if (!var_size) {
1532  goto fail;
1533  }
1534 
1535  bytestream2_skip(&s->gb, 8);
1536  s->w = bytestream2_get_le32(&s->gb) + 1;
1537  s->h = bytestream2_get_le32(&s->gb) + 1;
1538 
1539  continue;
1540  } else if ((var_size = check_header_variable(s, "lineOrder",
1541  "lineOrder", 25)) >= 0) {
1542  int line_order;
1543  if (!var_size) {
1545  goto fail;
1546  }
1547 
1548  line_order = bytestream2_get_byte(&s->gb);
1549  av_log(s->avctx, AV_LOG_DEBUG, "line order: %d.\n", line_order);
1550  if (line_order > 2) {
1551  av_log(s->avctx, AV_LOG_ERROR, "Unknown line order.\n");
1553  goto fail;
1554  }
1555 
1556  continue;
1557  } else if ((var_size = check_header_variable(s, "pixelAspectRatio",
1558  "float", 31)) >= 0) {
1559  if (!var_size) {
1561  goto fail;
1562  }
1563 
1564  sar = bytestream2_get_le32(&s->gb);
1565 
1566  continue;
1567  } else if ((var_size = check_header_variable(s, "compression",
1568  "compression", 29)) >= 0) {
1569  if (!var_size) {
1571  goto fail;
1572  }
1573 
1574  if (s->compression == EXR_UNKN)
1575  s->compression = bytestream2_get_byte(&s->gb);
1576  else
1577  av_log(s->avctx, AV_LOG_WARNING,
1578  "Found more than one compression attribute.\n");
1579 
1580  continue;
1581  } else if ((var_size = check_header_variable(s, "tiles",
1582  "tiledesc", 22)) >= 0) {
1583  char tileLevel;
1584 
1585  if (!s->is_tile)
1586  av_log(s->avctx, AV_LOG_WARNING,
1587  "Found tile attribute and scanline flags. Exr will be interpreted as scanline.\n");
1588 
1589  s->tile_attr.xSize = bytestream2_get_le32(&s->gb);
1590  s->tile_attr.ySize = bytestream2_get_le32(&s->gb);
1591 
1592  tileLevel = bytestream2_get_byte(&s->gb);
1593  s->tile_attr.level_mode = tileLevel & 0x0f;
1594  s->tile_attr.level_round = (tileLevel >> 4) & 0x0f;
1595 
1596  if (s->tile_attr.level_mode >= EXR_TILE_LEVEL_UNKNOWN) {
1597  avpriv_report_missing_feature(s->avctx, "Tile level mode %d",
1598  s->tile_attr.level_mode);
1600  goto fail;
1601  }
1602 
1603  if (s->tile_attr.level_round >= EXR_TILE_ROUND_UNKNOWN) {
1604  avpriv_report_missing_feature(s->avctx, "Tile level round %d",
1605  s->tile_attr.level_round);
1607  goto fail;
1608  }
1609 
1610  continue;
1611  } else if ((var_size = check_header_variable(s, "writer",
1612  "string", 1)) >= 0) {
1613  uint8_t key[256] = { 0 };
1614 
1615  bytestream2_get_buffer(&s->gb, key, FFMIN(sizeof(key) - 1, var_size));
1616  av_dict_set(&metadata, "writer", key, 0);
1617 
1618  continue;
1619  }
1620 
1621  // Check if there are enough bytes for a header
1622  if (bytestream2_get_bytes_left(&s->gb) <= 9) {
1623  av_log(s->avctx, AV_LOG_ERROR, "Incomplete header\n");
1625  goto fail;
1626  }
1627 
1628  // Process unknown variables
1629  for (i = 0; i < 2; i++) // value_name and value_type
1630  while (bytestream2_get_byte(&s->gb) != 0);
1631 
1632  // Skip variable length
1633  bytestream2_skip(&s->gb, bytestream2_get_le32(&s->gb));
1634  }
1635 
1636  ff_set_sar(s->avctx, av_d2q(av_int2float(sar), 255));
1637 
1638  if (s->compression == EXR_UNKN) {
1639  av_log(s->avctx, AV_LOG_ERROR, "Missing compression attribute.\n");
1641  goto fail;
1642  }
1643 
1644  if (s->is_tile) {
1645  if (s->tile_attr.xSize < 1 || s->tile_attr.ySize < 1) {
1646  av_log(s->avctx, AV_LOG_ERROR, "Invalid tile attribute.\n");
1648  goto fail;
1649  }
1650  }
1651 
1652  if (bytestream2_get_bytes_left(&s->gb) <= 0) {
1653  av_log(s->avctx, AV_LOG_ERROR, "Incomplete frame.\n");
1655  goto fail;
1656  }
1657 
1658  frame->metadata = metadata;
1659 
1660  // aaand we are done
1661  bytestream2_skip(&s->gb, 1);
1662  return 0;
1663 fail:
1664  av_dict_free(&metadata);
1665  return ret;
1666 }
1667 
1668 static int decode_frame(AVCodecContext *avctx, void *data,
1669  int *got_frame, AVPacket *avpkt)
1670 {
1671  EXRContext *s = avctx->priv_data;
1672  ThreadFrame frame = { .f = data };
1673  AVFrame *picture = data;
1674  uint8_t *ptr;
1675 
1676  int i, y, ret;
1677  int planes;
1678  int out_line_size;
1679  int nb_blocks; /* nb scanline or nb tile */
1680  uint64_t start_offset_table;
1681  uint64_t start_next_scanline;
1682  PutByteContext offset_table_writer;
1683 
1684  bytestream2_init(&s->gb, avpkt->data, avpkt->size);
1685 
1686  if ((ret = decode_header(s, picture)) < 0)
1687  return ret;
1688 
1689  switch (s->pixel_type) {
1690  case EXR_FLOAT:
1691  case EXR_HALF:
1692  if (s->channel_offsets[3] >= 0) {
1693  if (!s->is_luma) {
1694  avctx->pix_fmt = AV_PIX_FMT_GBRAPF32;
1695  } else {
1696  /* todo: change this when a floating point pixel format with luma with alpha is implemented */
1697  avctx->pix_fmt = AV_PIX_FMT_GBRAPF32;
1698  }
1699  } else {
1700  if (!s->is_luma) {
1701  avctx->pix_fmt = AV_PIX_FMT_GBRPF32;
1702  } else {
1703  avctx->pix_fmt = AV_PIX_FMT_GRAYF32;
1704  }
1705  }
1706  break;
1707  case EXR_UINT:
1708  if (s->channel_offsets[3] >= 0) {
1709  if (!s->is_luma) {
1710  avctx->pix_fmt = AV_PIX_FMT_RGBA64;
1711  } else {
1712  avctx->pix_fmt = AV_PIX_FMT_YA16;
1713  }
1714  } else {
1715  if (!s->is_luma) {
1716  avctx->pix_fmt = AV_PIX_FMT_RGB48;
1717  } else {
1718  avctx->pix_fmt = AV_PIX_FMT_GRAY16;
1719  }
1720  }
1721  break;
1722  default:
1723  av_log(avctx, AV_LOG_ERROR, "Missing channel list.\n");
1724  return AVERROR_INVALIDDATA;
1725  }
1726 
1727  if (s->apply_trc_type != AVCOL_TRC_UNSPECIFIED)
1728  avctx->color_trc = s->apply_trc_type;
1729 
1730  switch (s->compression) {
1731  case EXR_RAW:
1732  case EXR_RLE:
1733  case EXR_ZIP1:
1734  s->scan_lines_per_block = 1;
1735  break;
1736  case EXR_PXR24:
1737  case EXR_ZIP16:
1738  s->scan_lines_per_block = 16;
1739  break;
1740  case EXR_PIZ:
1741  case EXR_B44:
1742  case EXR_B44A:
1743  s->scan_lines_per_block = 32;
1744  break;
1745  default:
1746  avpriv_report_missing_feature(avctx, "Compression %d", s->compression);
1747  return AVERROR_PATCHWELCOME;
1748  }
1749 
1750  /* Verify the xmin, xmax, ymin, ymax and xdelta before setting
1751  * the actual image size. */
1752  if (s->xmin > s->xmax ||
1753  s->ymin > s->ymax ||
1754  s->xdelta != s->xmax - s->xmin + 1 ||
1755  s->xmax >= s->w ||
1756  s->ymax >= s->h ||
1757  s->ydelta == 0xFFFFFFFF || s->xdelta == 0xFFFFFFFF
1758  ) {
1759  av_log(avctx, AV_LOG_ERROR, "Wrong or missing size information.\n");
1760  return AVERROR_INVALIDDATA;
1761  }
1762 
1763  if ((ret = ff_set_dimensions(avctx, s->w, s->h)) < 0)
1764  return ret;
1765 
1766  s->desc = av_pix_fmt_desc_get(avctx->pix_fmt);
1767  if (!s->desc)
1768  return AVERROR_INVALIDDATA;
1769 
1770  if (s->desc->flags & AV_PIX_FMT_FLAG_FLOAT) {
1771  planes = s->desc->nb_components;
1772  out_line_size = avctx->width * 4;
1773  } else {
1774  planes = 1;
1775  out_line_size = avctx->width * 2 * s->desc->nb_components;
1776  }
1777 
1778  if (s->is_tile) {
1779  nb_blocks = ((s->xdelta + s->tile_attr.xSize - 1) / s->tile_attr.xSize) *
1780  ((s->ydelta + s->tile_attr.ySize - 1) / s->tile_attr.ySize);
1781  } else { /* scanline */
1782  nb_blocks = (s->ydelta + s->scan_lines_per_block - 1) /
1783  s->scan_lines_per_block;
1784  }
1785 
1786  if ((ret = ff_thread_get_buffer(avctx, &frame, 0)) < 0)
1787  return ret;
1788 
1789  if (bytestream2_get_bytes_left(&s->gb)/8 < nb_blocks)
1790  return AVERROR_INVALIDDATA;
1791 
1792  // check offset table and recreate it if need
1793  if (!s->is_tile && bytestream2_peek_le64(&s->gb) == 0) {
1794  av_log(s->avctx, AV_LOG_DEBUG, "recreating invalid scanline offset table\n");
1795 
1796  start_offset_table = bytestream2_tell(&s->gb);
1797  start_next_scanline = start_offset_table + nb_blocks * 8;
1798  bytestream2_init_writer(&offset_table_writer, &avpkt->data[start_offset_table], nb_blocks * 8);
1799 
1800  for (y = 0; y < nb_blocks; y++) {
1801  /* write offset of prev scanline in offset table */
1802  bytestream2_put_le64(&offset_table_writer, start_next_scanline);
1803 
1804  /* get len of next scanline */
1805  bytestream2_seek(&s->gb, start_next_scanline + 4, SEEK_SET);/* skip line number */
1806  start_next_scanline += (bytestream2_get_le32(&s->gb) + 8);
1807  }
1808  bytestream2_seek(&s->gb, start_offset_table, SEEK_SET);
1809  }
1810 
1811  // save pointer we are going to use in decode_block
1812  s->buf = avpkt->data;
1813  s->buf_size = avpkt->size;
1814 
1815  // Zero out the start if ymin is not 0
1816  for (i = 0; i < planes; i++) {
1817  ptr = picture->data[i];
1818  for (y = 0; y < FFMIN(s->ymin, s->h); y++) {
1819  memset(ptr, 0, out_line_size);
1820  ptr += picture->linesize[i];
1821  }
1822  }
1823 
1824  s->picture = picture;
1825 
1826  avctx->execute2(avctx, decode_block, s->thread_data, NULL, nb_blocks);
1827 
1828  // Zero out the end if ymax+1 is not h
1829  if ((s->ymax+1) < avctx->height)
1830  for (i = 0; i < planes; i++) {
1831  ptr = picture->data[i] + ((s->ymax+1) * picture->linesize[i]);
1832  for (y = s->ymax + 1; y < avctx->height; y++) {
1833  memset(ptr, 0, out_line_size);
1834  ptr += picture->linesize[i];
1835  }
1836  }
1837 
1838  picture->pict_type = AV_PICTURE_TYPE_I;
1839  *got_frame = 1;
1840 
1841  return avpkt->size;
1842 }
1843 
1845 {
1846  EXRContext *s = avctx->priv_data;
1847  uint32_t i;
1848  union av_intfloat32 t;
1849  float one_gamma = 1.0f / s->gamma;
1850  avpriv_trc_function trc_func = NULL;
1851 
1852  s->avctx = avctx;
1853 
1854  ff_exrdsp_init(&s->dsp);
1855 
1856 #if HAVE_BIGENDIAN
1857  ff_bswapdsp_init(&s->bbdsp);
1858 #endif
1859 
1860  trc_func = avpriv_get_trc_function_from_trc(s->apply_trc_type);
1861  if (trc_func) {
1862  for (i = 0; i < 65536; ++i) {
1863  t = exr_half2float(i);
1864  t.f = trc_func(t.f);
1865  s->gamma_table[i] = t;
1866  }
1867  } else {
1868  if (one_gamma > 0.9999f && one_gamma < 1.0001f) {
1869  for (i = 0; i < 65536; ++i) {
1870  s->gamma_table[i] = exr_half2float(i);
1871  }
1872  } else {
1873  for (i = 0; i < 65536; ++i) {
1874  t = exr_half2float(i);
1875  /* If negative value we reuse half value */
1876  if (t.f <= 0.0f) {
1877  s->gamma_table[i] = t;
1878  } else {
1879  t.f = powf(t.f, one_gamma);
1880  s->gamma_table[i] = t;
1881  }
1882  }
1883  }
1884  }
1885 
1886  // allocate thread data, used for non EXR_RAW compression types
1887  s->thread_data = av_mallocz_array(avctx->thread_count, sizeof(EXRThreadData));
1888  if (!s->thread_data)
1889  return AVERROR_INVALIDDATA;
1890 
1891  return 0;
1892 }
1893 
1895 {
1896  EXRContext *s = avctx->priv_data;
1897  int i;
1898  for (i = 0; i < avctx->thread_count; i++) {
1899  EXRThreadData *td = &s->thread_data[i];
1900  av_freep(&td->uncompressed_data);
1901  av_freep(&td->tmp);
1902  av_freep(&td->bitmap);
1903  av_freep(&td->lut);
1904  }
1905 
1906  av_freep(&s->thread_data);
1907  av_freep(&s->channels);
1908 
1909  return 0;
1910 }
1911 
1912 #define OFFSET(x) offsetof(EXRContext, x)
1913 #define VD AV_OPT_FLAG_VIDEO_PARAM | AV_OPT_FLAG_DECODING_PARAM
1914 static const AVOption options[] = {
1915  { "layer", "Set the decoding layer", OFFSET(layer),
1916  AV_OPT_TYPE_STRING, { .str = "" }, 0, 0, VD },
1917  { "gamma", "Set the float gamma value when decoding", OFFSET(gamma),
1918  AV_OPT_TYPE_FLOAT, { .dbl = 1.0f }, 0.001, FLT_MAX, VD },
1919 
1920  // XXX: Note the abuse of the enum using AVCOL_TRC_UNSPECIFIED to subsume the existing gamma option
1921  { "apply_trc", "color transfer characteristics to apply to EXR linear input", OFFSET(apply_trc_type),
1922  AV_OPT_TYPE_INT, {.i64 = AVCOL_TRC_UNSPECIFIED }, 1, AVCOL_TRC_NB-1, VD, "apply_trc_type"},
1923  { "bt709", "BT.709", 0,
1924  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_BT709 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1925  { "gamma", "gamma", 0,
1926  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_UNSPECIFIED }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1927  { "gamma22", "BT.470 M", 0,
1928  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_GAMMA22 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1929  { "gamma28", "BT.470 BG", 0,
1930  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_GAMMA28 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1931  { "smpte170m", "SMPTE 170 M", 0,
1932  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_SMPTE170M }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1933  { "smpte240m", "SMPTE 240 M", 0,
1934  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_SMPTE240M }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1935  { "linear", "Linear", 0,
1936  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_LINEAR }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1937  { "log", "Log", 0,
1938  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_LOG }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1939  { "log_sqrt", "Log square root", 0,
1940  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_LOG_SQRT }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1941  { "iec61966_2_4", "IEC 61966-2-4", 0,
1942  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_IEC61966_2_4 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1943  { "bt1361", "BT.1361", 0,
1944  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_BT1361_ECG }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1945  { "iec61966_2_1", "IEC 61966-2-1", 0,
1946  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_IEC61966_2_1 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1947  { "bt2020_10bit", "BT.2020 - 10 bit", 0,
1948  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_BT2020_10 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1949  { "bt2020_12bit", "BT.2020 - 12 bit", 0,
1950  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_BT2020_12 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1951  { "smpte2084", "SMPTE ST 2084", 0,
1952  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_SMPTEST2084 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1953  { "smpte428_1", "SMPTE ST 428-1", 0,
1954  AV_OPT_TYPE_CONST, {.i64 = AVCOL_TRC_SMPTEST428_1 }, INT_MIN, INT_MAX, VD, "apply_trc_type"},
1955 
1956  { NULL },
1957 };
1958 
1959 static const AVClass exr_class = {
1960  .class_name = "EXR",
1961  .item_name = av_default_item_name,
1962  .option = options,
1963  .version = LIBAVUTIL_VERSION_INT,
1964 };
1965 
1967  .name = "exr",
1968  .long_name = NULL_IF_CONFIG_SMALL("OpenEXR image"),
1969  .type = AVMEDIA_TYPE_VIDEO,
1970  .id = AV_CODEC_ID_EXR,
1971  .priv_data_size = sizeof(EXRContext),
1972  .init = decode_init,
1973  .close = decode_end,
1974  .decode = decode_frame,
1975  .capabilities = AV_CODEC_CAP_DR1 | AV_CODEC_CAP_FRAME_THREADS |
1977  .priv_class = &exr_class,
1978 };
HufDec::len
int len
Definition: exr.c:325
EXRContext::ymin
uint32_t ymin
Definition: exr.c:138
AVCodec
AVCodec.
Definition: codec.h:190
bswapdsp.h
EXRTileAttribute::level_round
enum ExrTileLevelRound level_round
Definition: exr.c:103
AV_LOG_WARNING
#define AV_LOG_WARNING
Something somehow does not look correct.
Definition: log.h:182
EXRThreadData
Definition: exr.c:106
td
#define td
Definition: regdef.h:70
EXR_TILE_ROUND_DOWN
@ EXR_TILE_ROUND_DOWN
Definition: exr.c:90
init
static av_cold int init(AVCodecContext *avctx)
Definition: avrndec.c:35
EXRContext::ymax
uint32_t ymax
Definition: exr.c:138
rle_uncompress
static int rle_uncompress(EXRContext *ctx, const uint8_t *src, int compressed_size, int uncompressed_size, EXRThreadData *td)
Definition: exr.c:244
EXRThreadData::uncompressed_size
int uncompressed_size
Definition: exr.c:108
AVERROR
Filter the word “frame” indicates either a video frame or a group of audio as stored in an AVFrame structure Format for each input and each output the list of supported formats For video that means pixel format For audio that means channel sample they are references to shared objects When the negotiation mechanism computes the intersection of the formats supported at each end of a all references to both lists are replaced with a reference to the intersection And when a single format is eventually chosen for a link amongst the remaining all references to the list are updated That means that if a filter requires that its input and output have the same format amongst a supported all it has to do is use a reference to the same list of formats query_formats can leave some formats unset and return AVERROR(EAGAIN) to cause the negotiation mechanism toagain later. That can be used by filters with complex requirements to use the format negotiated on one link to set the formats supported on another. Frame references ownership and permissions
opt.h
EXR_DWB
@ EXR_DWB
Definition: exr.c:70
EXRTileAttribute
Definition: exr.c:99
AVColorTransferCharacteristic
AVColorTransferCharacteristic
Color Transfer Characteristic.
Definition: pixfmt.h:480
out
FILE * out
Definition: movenc.c:54
EXRThreadData::lut
uint16_t * lut
Definition: exr.c:114
GetByteContext
Definition: bytestream.h:33
EXR_TILE_LEVEL_ONE
@ EXR_TILE_LEVEL_ONE
Definition: exr.c:82
EXRThreadData::uncompressed_data
uint8_t * uncompressed_data
Definition: exr.c:107
VD
#define VD
Definition: exr.c:1913
AV_RL64
uint64_t_TMPL AV_RL64
Definition: bytestream.h:87
av_pix_fmt_desc_get
const AVPixFmtDescriptor * av_pix_fmt_desc_get(enum AVPixelFormat pix_fmt)
Definition: pixdesc.c:2549
AVCOL_TRC_LINEAR
@ AVCOL_TRC_LINEAR
"Linear transfer characteristics"
Definition: pixfmt.h:489
FLOAT_MAX_BIASED_EXP
#define FLOAT_MAX_BIASED_EXP
Definition: exr.c:173
decode_header
static int decode_header(EXRContext *s, AVFrame *frame)
Definition: exr.c:1289
EXRContext::layer
const char * layer
Definition: exr.c:158
pxr24_uncompress
static int pxr24_uncompress(EXRContext *s, const uint8_t *src, int compressed_size, int uncompressed_size, EXRThreadData *td)
Definition: exr.c:775
av_strcasecmp
int av_strcasecmp(const char *a, const char *b)
Locale-independent case-insensitive compare.
Definition: avstring.c:213
get_bits_count
static int get_bits_count(const GetBitContext *s)
Definition: get_bits.h:219
AV_PIX_FMT_FLAG_FLOAT
#define AV_PIX_FMT_FLAG_FLOAT
The pixel format contains IEEE-754 floating point values.
Definition: pixdesc.h:188
EXRContext::xmax
uint32_t xmax
Definition: exr.c:137
ff_exr_decoder
AVCodec ff_exr_decoder
Definition: exr.c:1966
im
float im
Definition: fft.c:82
bytestream2_seek
static av_always_inline int bytestream2_seek(GetByteContext *g, int offset, int whence)
Definition: bytestream.h:208
AVFrame
This structure describes decoded (raw) audio or video data.
Definition: frame.h:300
EXRContext::picture
AVFrame * picture
Definition: exr.c:123
AVCOL_TRC_NB
@ AVCOL_TRC_NB
Not part of ABI.
Definition: pixfmt.h:502
tmp
static uint8_t tmp[11]
Definition: aes_ctr.c:26
step
trying all byte sequences megabyte in length and selecting the best looking sequence will yield cases to try But a word about which is also called distortion Distortion can be quantified by almost any quality measurement one chooses the sum of squared differences is used but more complex methods that consider psychovisual effects can be used as well It makes no difference in this discussion First step
Definition: rate_distortion.txt:58
AVCodecContext::color_trc
enum AVColorTransferCharacteristic color_trc
Color Transfer Characteristic.
Definition: avcodec.h:1147
internal.h
AVPacket::data
uint8_t * data
Definition: packet.h:355
av_intfloat32::i
uint32_t i
Definition: intfloat.h:28
ExrPixelType
ExrPixelType
Definition: exr.c:74
AVOption
AVOption.
Definition: opt.h:246
b
#define b
Definition: input.c:41
AVCOL_TRC_UNSPECIFIED
@ AVCOL_TRC_UNSPECIFIED
Definition: pixfmt.h:483
data
const char data[16]
Definition: mxf.c:91
decode_init
static av_cold int decode_init(AVCodecContext *avctx)
Definition: exr.c:1844
HUF_DECMASK
#define HUF_DECMASK
Definition: exr.c:322
reverse_lut
static uint16_t reverse_lut(const uint8_t *bitmap, uint16_t *lut)
Definition: exr.c:294
decode_frame
static int decode_frame(AVCodecContext *avctx, void *data, int *got_frame, AVPacket *avpkt)
Definition: exr.c:1668
av_mallocz_array
void * av_mallocz_array(size_t nmemb, size_t size)
Definition: mem.c:190
HUF_DECBITS
#define HUF_DECBITS
Definition: exr.c:318
float.h
AVCOL_TRC_BT2020_12
@ AVCOL_TRC_BT2020_12
ITU-R BT2020 for 12-bit system.
Definition: pixfmt.h:496
EXRThreadData::ysize
int ysize
Definition: exr.c:116
AVDictionary
Definition: dict.c:30
options
static const AVOption options[]
Definition: exr.c:1914
EXRThreadData::tmp_size
int tmp_size
Definition: exr.c:111
intfloat.h
thread.h
AVFrame::data
uint8_t * data[AV_NUM_DATA_POINTERS]
pointer to the picture/channel planes.
Definition: frame.h:314
EXRContext::channel_offsets
int channel_offsets[4]
Definition: exr.c:133
av_malloc
#define av_malloc(s)
Definition: tableprint_vlc.h:31
EXR_B44A
@ EXR_B44A
Definition: exr.c:68
EXR_HALF
@ EXR_HALF
Definition: exr.c:76
huf_uncompress
static int huf_uncompress(GetByteContext *gb, uint16_t *dst, int dst_size)
Definition: exr.c:533
bytestream2_skip
static av_always_inline void bytestream2_skip(GetByteContext *g, unsigned int size)
Definition: bytestream.h:164
get_bits
static unsigned int get_bits(GetBitContext *s, int n)
Read 1-25 bits.
Definition: get_bits.h:379
EXRContext::tile_attr
EXRTileAttribute tile_attr
Definition: exr.c:143
apply_lut
static void apply_lut(const uint16_t *lut, uint16_t *dst, int dsize)
Definition: exr.c:309
AVCOL_TRC_IEC61966_2_1
@ AVCOL_TRC_IEC61966_2_1
IEC 61966-2-1 (sRGB or sYCC)
Definition: pixfmt.h:494
fail
#define fail()
Definition: checkasm.h:123
av_int2float
static av_always_inline float av_int2float(uint32_t i)
Reinterpret a 32-bit integer as a float.
Definition: intfloat.h:40
AVCodecContext::thread_count
int thread_count
thread count is used to decide how many independent tasks should be passed to execute()
Definition: avcodec.h:1785
EXR_TILE_LEVEL_RIPMAP
@ EXR_TILE_LEVEL_RIPMAP
Definition: exr.c:84
EXR_TILE_ROUND_UNKNOWN
@ EXR_TILE_ROUND_UNKNOWN
Definition: exr.c:91
GetBitContext
Definition: get_bits.h:61
ff_thread_get_buffer
the pkt_dts and pkt_pts fields in AVFrame will work as usual Restrictions on codec whose streams don t reset across will not work because their bitstreams cannot be decoded in parallel *The contents of buffers must not be read before as well as code calling up to before the decode process starts Call have so the codec calls ff_thread_report set FF_CODEC_CAP_ALLOCATE_PROGRESS in AVCodec caps_internal and use ff_thread_get_buffer() to allocate frames. The frames must then be freed with ff_thread_release_buffer(). Otherwise decode directly into the user-supplied frames. Call ff_thread_report_progress() after some part of the current picture has decoded. A good place to put this is where draw_horiz_band() is called - add this if it isn 't called anywhere
AVCOL_TRC_GAMMA28
@ AVCOL_TRC_GAMMA28
also ITU-R BT470BG
Definition: pixfmt.h:486
AV_PIX_FMT_GRAY16
#define AV_PIX_FMT_GRAY16
Definition: pixfmt.h:381
AVCOL_TRC_LOG_SQRT
@ AVCOL_TRC_LOG_SQRT
"Logarithmic transfer characteristic (100 * Sqrt(10) : 1 range)"
Definition: pixfmt.h:491
FFMIN3
#define FFMIN3(a, b, c)
Definition: common.h:97
EXRContext::avctx
AVCodecContext * avctx
Definition: exr.c:124
AVCOL_TRC_SMPTEST428_1
@ AVCOL_TRC_SMPTEST428_1
Definition: pixfmt.h:500
EXR_DWA
@ EXR_DWA
Definition: exr.c:69
AVCOL_TRC_GAMMA22
@ AVCOL_TRC_GAMMA22
also ITU-R BT470M / ITU-R BT1700 625 PAL & SECAM
Definition: pixfmt.h:485
HufDec
Definition: exr.c:324
HALF_FLOAT_MAX_BIASED_EXP
#define HALF_FLOAT_MAX_BIASED_EXP
Definition: exr.c:175
EXRContext::scan_lines_per_block
int scan_lines_per_block
Definition: exr.c:141
EXRContext::h
int h
Definition: exr.c:136
color_utils.h
ExrDSPContext
Definition: exrdsp.h:25
EXRThreadData::channel_line_size
int channel_line_size
Definition: exr.c:118
USHORT_RANGE
#define USHORT_RANGE
Definition: exr.c:291
avassert.h
decode_end
static av_cold int decode_end(AVCodecContext *avctx)
Definition: exr.c:1894
AV_LOG_ERROR
#define AV_LOG_ERROR
Something went wrong and cannot losslessly be recovered.
Definition: log.h:176
HufDec::lit
int lit
Definition: exr.c:326
av_cold
#define av_cold
Definition: attributes.h:90
init_get_bits8
static int init_get_bits8(GetBitContext *s, const uint8_t *buffer, int byte_size)
Initialize GetBitContext.
Definition: get_bits.h:677
zip_uncompress
static int zip_uncompress(EXRContext *s, const uint8_t *src, int compressed_size, int uncompressed_size, EXRThreadData *td)
Definition: exr.c:227
EXR_FLOAT
@ EXR_FLOAT
Definition: exr.c:77
BITMAP_SIZE
#define BITMAP_SIZE
Definition: exr.c:292
bytestream2_init_writer
static av_always_inline void bytestream2_init_writer(PutByteContext *p, uint8_t *buf, int buf_size)
Definition: bytestream.h:143
EXRContext::compression
enum ExrCompr compression
Definition: exr.c:131
decode
static void decode(AVCodecContext *dec_ctx, AVPacket *pkt, AVFrame *frame, FILE *outfile)
Definition: decode_audio.c:71
check_header_variable
static int check_header_variable(EXRContext *s, const char *value_name, const char *value_type, unsigned int minimum_length)
Check if the variable name corresponds to its data type.
Definition: exr.c:1260
s
#define s(width, name)
Definition: cbs_vp9.c:257
AVCOL_TRC_BT1361_ECG
@ AVCOL_TRC_BT1361_ECG
ITU-R BT1361 Extended Colour Gamut.
Definition: pixfmt.h:493
GetByteContext::buffer
const uint8_t * buffer
Definition: bytestream.h:34
EXRContext::current_channel_offset
int current_channel_offset
Definition: exr.c:154
decode_block
static int decode_block(AVCodecContext *avctx, void *tdata, int jobnr, int threadnr)
Definition: exr.c:987
AV_LOG_DEBUG
#define AV_LOG_DEBUG
Stuff which is only useful for libav* developers.
Definition: log.h:197
EXRChannel::pixel_type
enum ExrPixelType pixel_type
Definition: exr.c:96
ctx
AVFormatContext * ctx
Definition: movenc.c:48
get_bits.h
SHORTEST_LONG_RUN
#define SHORTEST_LONG_RUN
Definition: exr.c:355
key
const char * key
Definition: hwcontext_opencl.c:168
AV_PIX_FMT_GRAYF32
#define AV_PIX_FMT_GRAYF32
Definition: pixfmt.h:429
f
#define f(width, name)
Definition: cbs_vp9.c:255
int32_t
int32_t
Definition: audio_convert.c:194
EXR_ZIP1
@ EXR_ZIP1
Definition: exr.c:63
if
if(ret)
Definition: filter_design.txt:179
EXRContext::desc
const AVPixFmtDescriptor * desc
Definition: exr.c:134
AV_CODEC_CAP_FRAME_THREADS
#define AV_CODEC_CAP_FRAME_THREADS
Codec supports frame-level multithreading.
Definition: codec.h:106
EXRContext::is_luma
int is_luma
Definition: exr.c:146
AV_CODEC_ID_EXR
@ AV_CODEC_ID_EXR
Definition: codec_id.h:229
AV_PIX_FMT_RGBA64
#define AV_PIX_FMT_RGBA64
Definition: pixfmt.h:387
LIBAVUTIL_VERSION_INT
#define LIBAVUTIL_VERSION_INT
Definition: version.h:85
AVClass
Describe the class of an AVClass context structure.
Definition: log.h:67
ff_bswapdsp_init
av_cold void ff_bswapdsp_init(BswapDSPContext *c)
Definition: bswapdsp.c:49
exrdsp.h
NULL
#define NULL
Definition: coverity.c:32
AVERROR_PATCHWELCOME
#define AVERROR_PATCHWELCOME
Not yet implemented in FFmpeg, patches welcome.
Definition: error.h:62
LONG_ZEROCODE_RUN
#define LONG_ZEROCODE_RUN
Definition: exr.c:354
pixel
uint8_t pixel
Definition: tiny_ssim.c:42
SHORT_ZEROCODE_RUN
#define SHORT_ZEROCODE_RUN
Definition: exr.c:353
AVCOL_TRC_IEC61966_2_4
@ AVCOL_TRC_IEC61966_2_4
IEC 61966-2-4.
Definition: pixfmt.h:492
EXR_RLE
@ EXR_RLE
Definition: exr.c:62
EXR_TILE_ROUND_UP
@ EXR_TILE_ROUND_UP
Definition: exr.c:89
EXRChannel::ysub
int ysub
Definition: exr.c:95
avpriv_get_trc_function_from_trc
avpriv_trc_function avpriv_get_trc_function_from_trc(enum AVColorTransferCharacteristic trc)
Determine the function needed to apply the given AVColorTransferCharacteristic to linear input.
Definition: color_utils.c:170
av_default_item_name
const char * av_default_item_name(void *ptr)
Return the context name.
Definition: log.c:235
AV_PICTURE_TYPE_I
@ AV_PICTURE_TYPE_I
Intra.
Definition: avutil.h:274
huf_decode
static int huf_decode(const uint64_t *hcode, const HufDec *hdecod, GetByteContext *gb, int nbits, int rlc, int no, uint16_t *out)
Definition: exr.c:464
src
#define src
Definition: vp8dsp.c:254
mathops.h
bytestream2_get_buffer
static av_always_inline unsigned int bytestream2_get_buffer(GetByteContext *g, uint8_t *dst, unsigned int size)
Definition: bytestream.h:263
ff_exrdsp_init
av_cold void ff_exrdsp_init(ExrDSPContext *c)
Definition: exrdsp.c:49
get_char
#define get_char(c, lc, gb)
Definition: exr.c:435
EXRContext::w
int w
Definition: exr.c:136
AVCOL_TRC_BT2020_10
@ AVCOL_TRC_BT2020_10
ITU-R BT2020 for 10-bit system.
Definition: pixfmt.h:495
av_intfloat32
Definition: intfloat.h:27
unpack_14
static void unpack_14(const uint8_t b[14], uint16_t s[16])
Definition: exr.c:859
EXR_PIZ
@ EXR_PIZ
Definition: exr.c:65
A_OFFSET
#define A_OFFSET
Definition: exr.c:598
exp
int8_t exp
Definition: eval.c:72
c
Undefined Behavior In the C some operations are like signed integer dereferencing freed accessing outside allocated Undefined Behavior must not occur in a C it is not safe even if the output of undefined operations is unused The unsafety may seem nit picking but Optimizing compilers have in fact optimized code on the assumption that no undefined Behavior occurs Optimizing code based on wrong assumptions can and has in some cases lead to effects beyond the output of computations The signed integer overflow problem in speed critical code Code which is highly optimized and works with signed integers sometimes has the problem that often the output of the computation does not c
Definition: undefined.txt:32
bytestream2_get_bytes_left
static av_always_inline int bytestream2_get_bytes_left(GetByteContext *g)
Definition: bytestream.h:154
bytestream2_tell
static av_always_inline int bytestream2_tell(GetByteContext *g)
Definition: bytestream.h:188
for
for(j=16;j >0;--j)
Definition: h264pred_template.c:469
exr_half2float
static union av_intfloat32 exr_half2float(uint16_t hf)
Convert a half float as a uint16_t into a full float.
Definition: exr.c:184
HALF_FLOAT_MIN_BIASED_EXP_AS_SINGLE_FP_EXP
#define HALF_FLOAT_MIN_BIASED_EXP_AS_SINGLE_FP_EXP
Definition: exr.c:166
EXRThreadData::bitmap
uint8_t * bitmap
Definition: exr.c:113
PutByteContext
Definition: bytestream.h:37
EXRContext::pixel_type
enum ExrPixelType pixel_type
Definition: exr.c:132
EXRTileAttribute::level_mode
enum ExrTileLevelMode level_mode
Definition: exr.c:102
EXRChannel::xsub
int xsub
Definition: exr.c:95
EXRContext::thread_data
EXRThreadData * thread_data
Definition: exr.c:156
EXR_RAW
@ EXR_RAW
Definition: exr.c:61
AVFrame::pict_type
enum AVPictureType pict_type
Picture type of the frame.
Definition: frame.h:383
AV_CODEC_CAP_DR1
#define AV_CODEC_CAP_DR1
Codec uses get_buffer() for allocating buffers and supports custom allocators.
Definition: codec.h:50
wdec14
static void wdec14(uint16_t l, uint16_t h, uint16_t *a, uint16_t *b)
Definition: exr.c:584
AVPacket::size
int size
Definition: packet.h:356
wav_decode
static void wav_decode(uint16_t *in, int nx, int ox, int ny, int oy, uint16_t mx)
Definition: exr.c:611
NULL_IF_CONFIG_SMALL
#define NULL_IF_CONFIG_SMALL(x)
Return NULL if CONFIG_SMALL is true, otherwise the argument without modification.
Definition: internal.h:188
powf
#define powf(x, y)
Definition: libm.h:50
AVCOL_TRC_SMPTE240M
@ AVCOL_TRC_SMPTE240M
Definition: pixfmt.h:488
MOD_MASK
#define MOD_MASK
Definition: exr.c:599
AVCOL_TRC_SMPTEST2084
@ AVCOL_TRC_SMPTEST2084
Definition: pixfmt.h:498
AVCOL_TRC_LOG
@ AVCOL_TRC_LOG
"Logarithmic transfer characteristic (100:1 range)"
Definition: pixfmt.h:490
EXRTileAttribute::xSize
int32_t xSize
Definition: exr.c:100
AV_PIX_FMT_GBRPF32
#define AV_PIX_FMT_GBRPF32
Definition: pixfmt.h:426
AV_PIX_FMT_RGB48
#define AV_PIX_FMT_RGB48
Definition: pixfmt.h:383
EXRThreadData::tmp
uint8_t * tmp
Definition: exr.c:110
EXRContext::is_tile
int is_tile
Definition: exr.c:144
EXR_TILE_LEVEL_MIPMAP
@ EXR_TILE_LEVEL_MIPMAP
Definition: exr.c:83
avpriv_report_missing_feature
void avpriv_report_missing_feature(void *avc, const char *msg,...) av_printf_format(2
Log a generic warning message about a missing feature.
huf_build_dec_table
static int huf_build_dec_table(const uint64_t *hcode, int im, int iM, HufDec *hdecod)
Definition: exr.c:398
HufDec::p
int * p
Definition: exr.c:327
EXRContext::gamma
float gamma
Definition: exr.c:161
EXRContext::gb
GetByteContext gb
Definition: exr.c:148
height
#define height
FFMIN
#define FFMIN(a, b)
Definition: common.h:96
a
The reader does not expect b to be semantically here and if the code is changed by maybe adding a a division or other the signedness will almost certainly be mistaken To avoid this confusion a new type was SUINT is the C unsigned type but it holds a signed int to use the same example SUINT a
Definition: undefined.txt:41
AV_CODEC_CAP_SLICE_THREADS
#define AV_CODEC_CAP_SLICE_THREADS
Codec supports slice-based (or partition-based) multithreading.
Definition: codec.h:110
line
Definition: graph2dot.c:48
av_dict_free
void av_dict_free(AVDictionary **pm)
Free all the memory allocated for an AVDictionary struct and all keys and values.
Definition: dict.c:203
EXR_ZIP16
@ EXR_ZIP16
Definition: exr.c:64
EXRContext::apply_trc_type
enum AVColorTransferCharacteristic apply_trc_type
Definition: exr.c:160
version
version
Definition: libkvazaar.c:292
unpack_3
static void unpack_3(const uint8_t b[3], uint16_t s[16])
Definition: exr.c:894
AV_LOG_INFO
#define AV_LOG_INFO
Standard information.
Definition: log.h:187
AVCOL_TRC_BT709
@ AVCOL_TRC_BT709
also ITU-R BT1361
Definition: pixfmt.h:482
HUF_DECSIZE
#define HUF_DECSIZE
Definition: exr.c:321
AV_OPT_TYPE_FLOAT
@ AV_OPT_TYPE_FLOAT
Definition: opt.h:226
planes
static const struct @315 planes[]
av_realloc
void * av_realloc(void *ptr, size_t size)
Allocate, reallocate, or free a block of memory.
Definition: mem.c:134
in
uint8_t pi<< 24) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_U8, uint8_t,(*(const uint8_t *) pi - 0x80) *(1.0f/(1<< 7))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_U8, uint8_t,(*(const uint8_t *) pi - 0x80) *(1.0/(1<< 7))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_S16, int16_t,(*(const int16_t *) pi >> 8)+0x80) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_S16, int16_t, *(const int16_t *) pi *(1.0f/(1<< 15))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_S16, int16_t, *(const int16_t *) pi *(1.0/(1<< 15))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_S32, int32_t,(*(const int32_t *) pi >> 24)+0x80) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_S32, int32_t, *(const int32_t *) pi *(1.0f/(1U<< 31))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_S32, int32_t, *(const int32_t *) pi *(1.0/(1U<< 31))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_FLT, float, av_clip_uint8(lrintf(*(const float *) pi *(1<< 7))+0x80)) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S16, int16_t, AV_SAMPLE_FMT_FLT, float, av_clip_int16(lrintf(*(const float *) pi *(1<< 15)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S32, int32_t, AV_SAMPLE_FMT_FLT, float, av_clipl_int32(llrintf(*(const float *) pi *(1U<< 31)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_DBL, double, av_clip_uint8(lrint(*(const double *) pi *(1<< 7))+0x80)) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S16, int16_t, AV_SAMPLE_FMT_DBL, double, av_clip_int16(lrint(*(const double *) pi *(1<< 15)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S32, int32_t, AV_SAMPLE_FMT_DBL, double, av_clipl_int32(llrint(*(const double *) pi *(1U<< 31)))) #define SET_CONV_FUNC_GROUP(ofmt, ifmt) static void set_generic_function(AudioConvert *ac) { } void ff_audio_convert_free(AudioConvert **ac) { if(! *ac) return;ff_dither_free(&(*ac) ->dc);av_freep(ac);} AudioConvert *ff_audio_convert_alloc(AVAudioResampleContext *avr, enum AVSampleFormat out_fmt, enum AVSampleFormat in_fmt, int channels, int sample_rate, int apply_map) { AudioConvert *ac;int in_planar, out_planar;ac=av_mallocz(sizeof(*ac));if(!ac) return NULL;ac->avr=avr;ac->out_fmt=out_fmt;ac->in_fmt=in_fmt;ac->channels=channels;ac->apply_map=apply_map;if(avr->dither_method !=AV_RESAMPLE_DITHER_NONE &&av_get_packed_sample_fmt(out_fmt)==AV_SAMPLE_FMT_S16 &&av_get_bytes_per_sample(in_fmt) > 2) { ac->dc=ff_dither_alloc(avr, out_fmt, in_fmt, channels, sample_rate, apply_map);if(!ac->dc) { av_free(ac);return NULL;} return ac;} in_planar=ff_sample_fmt_is_planar(in_fmt, channels);out_planar=ff_sample_fmt_is_planar(out_fmt, channels);if(in_planar==out_planar) { ac->func_type=CONV_FUNC_TYPE_FLAT;ac->planes=in_planar ? ac->channels :1;} else if(in_planar) ac->func_type=CONV_FUNC_TYPE_INTERLEAVE;else ac->func_type=CONV_FUNC_TYPE_DEINTERLEAVE;set_generic_function(ac);if(ARCH_AARCH64) ff_audio_convert_init_aarch64(ac);if(ARCH_ARM) ff_audio_convert_init_arm(ac);if(ARCH_X86) ff_audio_convert_init_x86(ac);return ac;} int ff_audio_convert(AudioConvert *ac, AudioData *out, AudioData *in) { int use_generic=1;int len=in->nb_samples;int p;if(ac->dc) { av_log(ac->avr, AV_LOG_TRACE, "%d samples - audio_convert: %s to %s (dithered)\n", len, av_get_sample_fmt_name(ac->in_fmt), av_get_sample_fmt_name(ac->out_fmt));return ff_convert_dither(ac-> in
Definition: audio_convert.c:326
ExrTileLevelRound
ExrTileLevelRound
Definition: exr.c:88
OFFSET
#define OFFSET(x)
Definition: exr.c:1912
get_code
#define get_code(po, rlc, c, lc, gb, out, oe, outb)
Definition: exr.c:441
AV_PIX_FMT_YA16
#define AV_PIX_FMT_YA16
Definition: pixfmt.h:382
i
#define i(width, name, range_min, range_max)
Definition: cbs_h2645.c:269
HUF_ENCSIZE
#define HUF_ENCSIZE
Definition: exr.c:320
common.h
EXRContext::buf
const uint8_t * buf
Definition: exr.c:149
av_assert1
#define av_assert1(cond)
assert() equivalent, that does not lie in speed critical code.
Definition: avassert.h:53
EXRThreadData::xsize
int xsize
Definition: exr.c:116
av_fast_padded_malloc
void av_fast_padded_malloc(void *ptr, unsigned int *size, size_t min_size)
Same behaviour av_fast_malloc but the buffer has additional AV_INPUT_BUFFER_PADDING_SIZE at the end w...
Definition: utils.c:70
EXR_PXR24
@ EXR_PXR24
Definition: exr.c:66
av_d2q
AVRational av_d2q(double d, int max)
Convert a double precision floating point number to a rational.
Definition: rational.c:106
uint8_t
uint8_t
Definition: audio_convert.c:194
AVCodec::name
const char * name
Name of the codec implementation.
Definition: codec.h:197
EXR_UINT
@ EXR_UINT
Definition: exr.c:75
AVCodecContext::height
int height
Definition: avcodec.h:699
AVCodecContext::pix_fmt
enum AVPixelFormat pix_fmt
Pixel format, see AV_PIX_FMT_xxx.
Definition: avcodec.h:736
EXR_B44
@ EXR_B44
Definition: exr.c:67
avcodec.h
EXRContext::nb_channels
int nb_channels
Definition: exr.c:153
ret
ret
Definition: filter_design.txt:187
AVClass::class_name
const char * class_name
The name of the class; usually it is the same name as the context structure type to which the AVClass...
Definition: log.h:72
frame
these buffered frames must be flushed immediately if a new input produces new the filter must not call request_frame to get more It must just process the frame or queue it The task of requesting more frames is left to the filter s request_frame method or the application If a filter has several the filter must be ready for frames arriving randomly on any input any filter with several inputs will most likely require some kind of queuing mechanism It is perfectly acceptable to have a limited queue and to drop frames when the inputs are too unbalanced request_frame For filters that do not use the this method is called when a frame is wanted on an output For a it should directly call filter_frame on the corresponding output For a if there are queued frames already one of these frames should be pushed If the filter should request a frame on one of its repeatedly until at least one frame has been pushed Return or at least make progress towards producing a frame
Definition: filter_design.txt:264
huf_unpack_enc_table
static int huf_unpack_enc_table(GetByteContext *gb, int32_t im, int32_t iM, uint64_t *hcode)
Definition: exr.c:358
EXRContext::gamma_table
union av_intfloat32 gamma_table[65536]
Definition: exr.c:162
avpriv_trc_function
double(* avpriv_trc_function)(double)
Definition: color_utils.h:40
AV_RL32
uint64_t_TMPL AV_WL64 unsigned int_TMPL AV_RL32
Definition: bytestream.h:88
ff_set_sar
int ff_set_sar(AVCodecContext *avctx, AVRational sar)
Check that the provided sample aspect ratio is valid and set it on the codec context.
Definition: utils.c:119
AVCodecContext
main external API structure.
Definition: avcodec.h:526
ThreadFrame
Definition: thread.h:34
EXRContext::channels
EXRChannel * channels
Definition: exr.c:152
EXR_UNKNOWN
@ EXR_UNKNOWN
Definition: exr.c:78
EXRContext::ydelta
uint32_t ydelta
Definition: exr.c:139
wdec16
static void wdec16(uint16_t l, uint16_t h, uint16_t *a, uint16_t *b)
Definition: exr.c:601
AV_OPT_TYPE_INT
@ AV_OPT_TYPE_INT
Definition: opt.h:223
AV_PIX_FMT_GBRAPF32
#define AV_PIX_FMT_GBRAPF32
Definition: pixfmt.h:427
AVCOL_TRC_SMPTE170M
@ AVCOL_TRC_SMPTE170M
also ITU-R BT601-6 525 or 625 / ITU-R BT1358 525 or 625 / ITU-R BT1700 NTSC
Definition: pixfmt.h:487
huf_canonical_code_table
static void huf_canonical_code_table(uint64_t *hcode)
Definition: exr.c:330
EXR_TILE_LEVEL_UNKNOWN
@ EXR_TILE_LEVEL_UNKNOWN
Definition: exr.c:85
av_intfloat32::f
float f
Definition: intfloat.h:29
shift
static int shift(int a, int b)
Definition: sonic.c:82
AVMEDIA_TYPE_VIDEO
@ AVMEDIA_TYPE_VIDEO
Definition: avutil.h:201
ff_set_dimensions
int ff_set_dimensions(AVCodecContext *s, int width, int height)
Check that the provided frame dimensions are valid and set them on the codec context.
Definition: utils.c:104
EXRContext::xmin
uint32_t xmin
Definition: exr.c:137
AVPixFmtDescriptor
Descriptor that unambiguously describes how the bits of a pixel are stored in the up to 4 data planes...
Definition: pixdesc.h:81
diff
static av_always_inline int diff(const uint32_t a, const uint32_t b)
Definition: vf_palettegen.c:136
av_free
#define av_free(p)
Definition: tableprint_vlc.h:34
ExrCompr
ExrCompr
Definition: exr.c:60
AVPacket
This structure stores compressed data.
Definition: packet.h:332
AVCodecContext::priv_data
void * priv_data
Definition: avcodec.h:553
av_freep
#define av_freep(p)
Definition: tableprint_vlc.h:35
av_dict_set
int av_dict_set(AVDictionary **pm, const char *key, const char *value, int flags)
Set the given entry in *pm, overwriting an existing entry.
Definition: dict.c:70
EXRContext::buf_size
int buf_size
Definition: exr.c:150
AVCodecContext::width
int width
picture width / height.
Definition: avcodec.h:699
bytestream.h
imgutils.h
bytestream2_init
static av_always_inline void bytestream2_init(GetByteContext *g, const uint8_t *buf, int buf_size)
Definition: bytestream.h:133
flags
#define flags(name, subs,...)
Definition: cbs_av1.c:565
ExrTileLevelMode
ExrTileLevelMode
Definition: exr.c:81
AVFrame::linesize
int linesize[AV_NUM_DATA_POINTERS]
For video, size in bytes of each picture line.
Definition: frame.h:331
av_log
#define av_log(a,...)
Definition: tableprint_vlc.h:28
EXRTileAttribute::ySize
int32_t ySize
Definition: exr.c:101
AVERROR_INVALIDDATA
#define AVERROR_INVALIDDATA
Invalid data found when processing input.
Definition: error.h:59
exr_class
static const AVClass exr_class
Definition: exr.c:1959
BswapDSPContext
Definition: bswapdsp.h:24
h
h
Definition: vp9dsp_template.c:2038
avstring.h
AV_OPT_TYPE_STRING
@ AV_OPT_TYPE_STRING
Definition: opt.h:227
EXRContext::xdelta
uint32_t xdelta
Definition: exr.c:139
int
int
Definition: ffmpeg_filter.c:192
b44_uncompress
static int b44_uncompress(EXRContext *s, const uint8_t *src, int compressed_size, int uncompressed_size, EXRThreadData *td)
Definition: exr.c:910
AV_OPT_TYPE_CONST
@ AV_OPT_TYPE_CONST
Definition: opt.h:232
AVCodecContext::execute2
int(* execute2)(struct AVCodecContext *c, int(*func)(struct AVCodecContext *c2, void *arg, int jobnr, int threadnr), void *arg2, int *ret, int count)
The codec may call this to execute several independent things.
Definition: avcodec.h:1845
piz_uncompress
static int piz_uncompress(EXRContext *s, const uint8_t *src, int ssize, int dsize, EXRThreadData *td)
Definition: exr.c:690
line
The official guide to swscale for confused that consecutive non overlapping rectangles of slice_bottom special converter These generally are unscaled converters of common like for each output line the vertical scaler pulls lines from a ring buffer When the ring buffer does not contain the wanted line
Definition: swscale.txt:40
channel
channel
Definition: ebur128.h:39
EXRContext::dsp
ExrDSPContext dsp
Definition: exr.c:125
EXR_UNKN
@ EXR_UNKN
Definition: exr.c:71
EXRContext
Definition: exr.c:121
EXRChannel
Definition: exr.c:94