FFmpeg
exif.c
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1 /*
2  * EXIF metadata parser
3  * Copyright (c) 2013 Thilo Borgmann <thilo.borgmann _at_ mail.de>
4  * Copyright (c) 2024-2025 Leo Izen <leo.izen@gmail.com>
5  *
6  * This file is part of FFmpeg.
7  *
8  * FFmpeg is free software; you can redistribute it and/or
9  * modify it under the terms of the GNU Lesser General Public
10  * License as published by the Free Software Foundation; either
11  * version 2.1 of the License, or (at your option) any later version.
12  *
13  * FFmpeg is distributed in the hope that it will be useful,
14  * but WITHOUT ANY WARRANTY; without even the implied warranty of
15  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
16  * Lesser General Public License for more details.
17  *
18  * You should have received a copy of the GNU Lesser General Public
19  * License along with FFmpeg; if not, write to the Free Software
20  * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
21  */
22 
23 /**
24  * @file
25  * EXIF metadata parser
26  * @author Thilo Borgmann <thilo.borgmann _at_ mail.de>
27  * @author Leo Izen <leo.izen@gmail.com>
28  */
29 
30 #include <inttypes.h>
31 
32 #include "libavutil/avconfig.h"
33 #include "libavutil/bprint.h"
34 #include "libavutil/display.h"
35 #include "libavutil/intreadwrite.h"
36 #include "libavutil/mem.h"
37 
38 #include "bytestream.h"
39 #include "exif_internal.h"
40 #include "tiff_common.h"
41 
42 #define EXIF_II_LONG 0x49492a00
43 #define EXIF_MM_LONG 0x4d4d002a
44 
45 #define BASE_TAG_SIZE 12
46 #define IFD_EXTRA_SIZE 6
47 
48 #define EXIF_TAG_NAME_LENGTH 32
49 #define MAKERNOTE_TAG 0x927c
50 #define ORIENTATION_TAG 0x112
51 #define EXIFIFD_TAG 0x8769
52 #define IMAGE_WIDTH_TAG 0x100
53 #define IMAGE_LENGTH_TAG 0x101
54 #define PIXEL_X_TAG 0xa002
55 #define PIXEL_Y_TAG 0xa003
56 
57 struct exif_tag {
59  uint16_t id;
60 };
61 
62 static const struct exif_tag tag_list[] = { // JEITA CP-3451 EXIF specification:
63  {"GPSVersionID", 0x00}, // <- Table 12 GPS Attribute Information
64  {"GPSLatitudeRef", 0x01},
65  {"GPSLatitude", 0x02},
66  {"GPSLongitudeRef", 0x03},
67  {"GPSLongitude", 0x04},
68  {"GPSAltitudeRef", 0x05},
69  {"GPSAltitude", 0x06},
70  {"GPSTimeStamp", 0x07},
71  {"GPSSatellites", 0x08},
72  {"GPSStatus", 0x09},
73  {"GPSMeasureMode", 0x0A},
74  {"GPSDOP", 0x0B},
75  {"GPSSpeedRef", 0x0C},
76  {"GPSSpeed", 0x0D},
77  {"GPSTrackRef", 0x0E},
78  {"GPSTrack", 0x0F},
79  {"GPSImgDirectionRef", 0x10},
80  {"GPSImgDirection", 0x11},
81  {"GPSMapDatum", 0x12},
82  {"GPSDestLatitudeRef", 0x13},
83  {"GPSDestLatitude", 0x14},
84  {"GPSDestLongitudeRef", 0x15},
85  {"GPSDestLongitude", 0x16},
86  {"GPSDestBearingRef", 0x17},
87  {"GPSDestBearing", 0x18},
88  {"GPSDestDistanceRef", 0x19},
89  {"GPSDestDistance", 0x1A},
90  {"GPSProcessingMethod", 0x1B},
91  {"GPSAreaInformation", 0x1C},
92  {"GPSDateStamp", 0x1D},
93  {"GPSDifferential", 0x1E},
94  {"ImageWidth", 0x100}, // <- Table 3 TIFF Rev. 6.0 Attribute Information Used in Exif
95  {"ImageLength", 0x101},
96  {"BitsPerSample", 0x102},
97  {"Compression", 0x103},
98  {"PhotometricInterpretation", 0x106},
99  {"Orientation", 0x112},
100  {"SamplesPerPixel", 0x115},
101  {"PlanarConfiguration", 0x11C},
102  {"YCbCrSubSampling", 0x212},
103  {"YCbCrPositioning", 0x213},
104  {"XResolution", 0x11A},
105  {"YResolution", 0x11B},
106  {"ResolutionUnit", 0x128},
107  {"StripOffsets", 0x111},
108  {"RowsPerStrip", 0x116},
109  {"StripByteCounts", 0x117},
110  {"JPEGInterchangeFormat", 0x201},
111  {"JPEGInterchangeFormatLength",0x202},
112  {"TransferFunction", 0x12D},
113  {"WhitePoint", 0x13E},
114  {"PrimaryChromaticities", 0x13F},
115  {"YCbCrCoefficients", 0x211},
116  {"ReferenceBlackWhite", 0x214},
117  {"DateTime", 0x132},
118  {"ImageDescription", 0x10E},
119  {"Make", 0x10F},
120  {"Model", 0x110},
121  {"Software", 0x131},
122  {"Artist", 0x13B},
123  {"Copyright", 0x8298},
124  {"ExifVersion", 0x9000}, // <- Table 4 Exif IFD Attribute Information (1)
125  {"FlashpixVersion", 0xA000},
126  {"ColorSpace", 0xA001},
127  {"ComponentsConfiguration", 0x9101},
128  {"CompressedBitsPerPixel", 0x9102},
129  {"PixelXDimension", 0xA002},
130  {"PixelYDimension", 0xA003},
131  {"MakerNote", 0x927C},
132  {"UserComment", 0x9286},
133  {"RelatedSoundFile", 0xA004},
134  {"DateTimeOriginal", 0x9003},
135  {"DateTimeDigitized", 0x9004},
136  {"SubSecTime", 0x9290},
137  {"SubSecTimeOriginal", 0x9291},
138  {"SubSecTimeDigitized", 0x9292},
139  {"ImageUniqueID", 0xA420},
140  {"ExposureTime", 0x829A}, // <- Table 5 Exif IFD Attribute Information (2)
141  {"FNumber", 0x829D},
142  {"ExposureProgram", 0x8822},
143  {"SpectralSensitivity", 0x8824},
144  {"ISOSpeedRatings", 0x8827},
145  {"OECF", 0x8828},
146  {"ShutterSpeedValue", 0x9201},
147  {"ApertureValue", 0x9202},
148  {"BrightnessValue", 0x9203},
149  {"ExposureBiasValue", 0x9204},
150  {"MaxApertureValue", 0x9205},
151  {"SubjectDistance", 0x9206},
152  {"MeteringMode", 0x9207},
153  {"LightSource", 0x9208},
154  {"Flash", 0x9209},
155  {"FocalLength", 0x920A},
156  {"SubjectArea", 0x9214},
157  {"FlashEnergy", 0xA20B},
158  {"SpatialFrequencyResponse", 0xA20C},
159  {"FocalPlaneXResolution", 0xA20E},
160  {"FocalPlaneYResolution", 0xA20F},
161  {"FocalPlaneResolutionUnit", 0xA210},
162  {"SubjectLocation", 0xA214},
163  {"ExposureIndex", 0xA215},
164  {"SensingMethod", 0xA217},
165  {"FileSource", 0xA300},
166  {"SceneType", 0xA301},
167  {"CFAPattern", 0xA302},
168  {"CustomRendered", 0xA401},
169  {"ExposureMode", 0xA402},
170  {"WhiteBalance", 0xA403},
171  {"DigitalZoomRatio", 0xA404},
172  {"FocalLengthIn35mmFilm", 0xA405},
173  {"SceneCaptureType", 0xA406},
174  {"GainControl", 0xA407},
175  {"Contrast", 0xA408},
176  {"Saturation", 0xA409},
177  {"Sharpness", 0xA40A},
178  {"DeviceSettingDescription", 0xA40B},
179  {"SubjectDistanceRange", 0xA40C},
180 
181  /* InteropIFD tags */
182  {"RelatedImageFileFormat", 0x1000},
183  {"RelatedImageWidth", 0x1001},
184  {"RelatedImageLength", 0x1002},
185 
186  /* private EXIF tags */
187  {"PrintImageMatching", 0xC4A5}, // <- undocumented meaning
188 
189  /* IFD tags */
190  {"ExifIFD", 0x8769}, // <- An IFD pointing to standard Exif metadata
191  {"GPSInfo", 0x8825}, // <- An IFD pointing to GPS Exif Metadata
192  {"InteropIFD", 0xA005}, // <- Table 13 Interoperability IFD Attribute Information
193  {"GlobalParametersIFD", 0x0190},
194  {"ProfileIFD", 0xc6f5},
195 
196  /* Extra FFmpeg tags */
197  { "IFD1", 0xFFFC},
198  { "IFD2", 0xFFFB},
199  { "IFD3", 0xFFFA},
200  { "IFD4", 0xFFF9},
201  { "IFD5", 0xFFF8},
202  { "IFD6", 0xFFF7},
203  { "IFD7", 0xFFF6},
204  { "IFD8", 0xFFF5},
205  { "IFD9", 0xFFF4},
206  { "IFD10", 0xFFF3},
207  { "IFD11", 0xFFF2},
208  { "IFD12", 0xFFF1},
209  { "IFD13", 0xFFF0},
210  { "IFD14", 0xFFEF},
211  { "IFD15", 0xFFEE},
212  { "IFD16", 0xFFED},
213 };
214 
215 /* same as type_sizes but with string == 1 */
216 static const size_t exif_sizes[] = {
217  [0] = 0,
218  [AV_TIFF_BYTE] = 1,
219  [AV_TIFF_STRING] = 1,
220  [AV_TIFF_SHORT] = 2,
221  [AV_TIFF_LONG] = 4,
222  [AV_TIFF_RATIONAL] = 8,
223  [AV_TIFF_SBYTE] = 1,
224  [AV_TIFF_UNDEFINED] = 1,
225  [AV_TIFF_SSHORT] = 2,
226  [AV_TIFF_SLONG] = 4,
227  [AV_TIFF_SRATIONAL] = 8,
228  [AV_TIFF_FLOAT] = 4,
229  [AV_TIFF_DOUBLE] = 8,
230  [AV_TIFF_IFD] = 4,
231 };
232 
233 const char *av_exif_get_tag_name(uint16_t id)
234 {
235  for (size_t i = 0; i < FF_ARRAY_ELEMS(tag_list); i++) {
236  if (tag_list[i].id == id)
237  return tag_list[i].name;
238  }
239 
240  return NULL;
241 }
242 
244 {
245  if (!name)
246  return -1;
247 
248  for (size_t i = 0; i < FF_ARRAY_ELEMS(tag_list); i++) {
249  if (!strcmp(tag_list[i].name, name))
250  return tag_list[i].id;
251  }
252 
253  return -1;
254 }
255 
256 static inline void tput16(PutByteContext *pb, const int le, const uint16_t value)
257 {
258  le ? bytestream2_put_le16(pb, value) : bytestream2_put_be16(pb, value);
259 }
260 
261 static inline void tput32(PutByteContext *pb, const int le, const uint32_t value)
262 {
263  le ? bytestream2_put_le32(pb, value) : bytestream2_put_be32(pb, value);
264 }
265 
266 static inline void tput64(PutByteContext *pb, const int le, const uint64_t value)
267 {
268  le ? bytestream2_put_le64(pb, value) : bytestream2_put_be64(pb, value);
269 }
270 
271 static int exif_read_values(void *logctx, GetByteContext *gb, int le, AVExifEntry *entry)
272 {
273  switch (entry->type) {
274  case AV_TIFF_SHORT:
275  case AV_TIFF_LONG:
276  entry->value.uint = av_calloc(entry->count, sizeof(*entry->value.uint));
277  break;
278  case AV_TIFF_SSHORT:
279  case AV_TIFF_SLONG:
280  entry->value.sint = av_calloc(entry->count, sizeof(*entry->value.sint));
281  break;
282  case AV_TIFF_DOUBLE:
283  case AV_TIFF_FLOAT:
284  entry->value.dbl = av_calloc(entry->count, sizeof(*entry->value.dbl));
285  break;
286  case AV_TIFF_RATIONAL:
287  case AV_TIFF_SRATIONAL:
288  entry->value.rat = av_calloc(entry->count, sizeof(*entry->value.rat));
289  break;
290  case AV_TIFF_UNDEFINED:
291  case AV_TIFF_BYTE:
292  entry->value.ubytes = av_mallocz(entry->count);
293  break;
294  case AV_TIFF_SBYTE:
295  entry->value.sbytes = av_mallocz(entry->count);
296  break;
297  case AV_TIFF_STRING:
298  entry->value.str = av_mallocz(entry->count + 1);
299  break;
300  case AV_TIFF_IFD:
301  av_log(logctx, AV_LOG_WARNING, "Bad IFD type for non-IFD tag\n");
302  return AVERROR_INVALIDDATA;
303  }
304  if (!entry->value.ptr)
305  return AVERROR(ENOMEM);
306  switch (entry->type) {
307  case AV_TIFF_SHORT:
308  for (size_t i = 0; i < entry->count; i++)
309  entry->value.uint[i] = ff_tget_short(gb, le);
310  break;
311  case AV_TIFF_LONG:
312  for (size_t i = 0; i < entry->count; i++)
313  entry->value.uint[i] = ff_tget_long(gb, le);
314  break;
315  case AV_TIFF_SSHORT:
316  for (size_t i = 0; i < entry->count; i++)
317  entry->value.sint[i] = (int16_t) ff_tget_short(gb, le);
318  break;
319  case AV_TIFF_SLONG:
320  for (size_t i = 0; i < entry->count; i++)
321  entry->value.sint[i] = (int32_t) ff_tget_long(gb, le);
322  break;
323  case AV_TIFF_DOUBLE:
324  for (size_t i = 0; i < entry->count; i++)
325  entry->value.dbl[i] = ff_tget_double(gb, le);
326  break;
327  case AV_TIFF_FLOAT:
328  for (size_t i = 0; i < entry->count; i++) {
329  av_alias32 alias = { .u32 = ff_tget_long(gb, le) };
330  entry->value.dbl[i] = alias.f32;
331  }
332  break;
333  case AV_TIFF_RATIONAL:
334  case AV_TIFF_SRATIONAL:
335  for (size_t i = 0; i < entry->count; i++) {
336  int32_t num = ff_tget_long(gb, le);
337  int32_t den = ff_tget_long(gb, le);
338  entry->value.rat[i] = av_make_q(num, den);
339  }
340  break;
341  case AV_TIFF_UNDEFINED:
342  case AV_TIFF_BYTE:
343  /* these three fields are aliased to entry->value.ptr via a union */
344  /* and entry->value.ptr will always be nonzero here */
345  av_assert0(entry->value.ubytes);
346  bytestream2_get_buffer(gb, entry->value.ubytes, entry->count);
347  break;
348  case AV_TIFF_SBYTE:
349  av_assert0(entry->value.sbytes);
350  bytestream2_get_buffer(gb, entry->value.sbytes, entry->count);
351  break;
352  case AV_TIFF_STRING:
353  av_assert0(entry->value.str);
354  bytestream2_get_buffer(gb, entry->value.str, entry->count);
355  break;
356  }
357 
358  return 0;
359 }
360 
361 static void exif_write_values(PutByteContext *pb, int le, const AVExifEntry *entry)
362 {
363  switch (entry->type) {
364  case AV_TIFF_SHORT:
365  for (size_t i = 0; i < entry->count; i++)
366  tput16(pb, le, entry->value.uint[i]);
367  break;
368  case AV_TIFF_LONG:
369  for (size_t i = 0; i < entry->count; i++)
370  tput32(pb, le, entry->value.uint[i]);
371  break;
372  case AV_TIFF_SSHORT:
373  for (size_t i = 0; i < entry->count; i++)
374  tput16(pb, le, entry->value.sint[i]);
375  break;
376  case AV_TIFF_SLONG:
377  for (size_t i = 0; i < entry->count; i++)
378  tput32(pb, le, entry->value.sint[i]);
379  break;
380  case AV_TIFF_DOUBLE:
381  for (size_t i = 0; i < entry->count; i++) {
382  const av_alias64 a = { .f64 = entry->value.dbl[i] };
383  tput64(pb, le, a.u64);
384  }
385  break;
386  case AV_TIFF_FLOAT:
387  for (size_t i = 0; i < entry->count; i++) {
388  const av_alias32 a = { .f32 = entry->value.dbl[i] };
389  tput32(pb, le, a.u32);
390  }
391  break;
392  case AV_TIFF_RATIONAL:
393  case AV_TIFF_SRATIONAL:
394  for (size_t i = 0; i < entry->count; i++) {
395  tput32(pb, le, entry->value.rat[i].num);
396  tput32(pb, le, entry->value.rat[i].den);
397  }
398  break;
399  case AV_TIFF_UNDEFINED:
400  case AV_TIFF_BYTE:
401  bytestream2_put_buffer(pb, entry->value.ubytes, entry->count);
402  break;
403  case AV_TIFF_SBYTE:
404  bytestream2_put_buffer(pb, entry->value.sbytes, entry->count);
405  break;
406  case AV_TIFF_STRING:
407  bytestream2_put_buffer(pb, entry->value.str, entry->count);
408  break;
409  }
410 }
411 
412 static const uint8_t aoc_header[] = { 'A', 'O', 'C', 0, };
413 static const uint8_t casio_header[] = { 'Q', 'V', 'C', 0, 0, 0, };
414 static const uint8_t foveon_header[] = { 'F', 'O', 'V', 'E', 'O', 'N', 0, 0, };
415 static const uint8_t fuji_header[] = { 'F', 'U', 'J', 'I', };
416 static const uint8_t nikon_header[] = { 'N', 'i', 'k', 'o', 'n', 0, };
417 static const uint8_t olympus1_header[] = { 'O', 'L', 'Y', 'M', 'P', 0, };
418 static const uint8_t olympus2_header[] = { 'O', 'L', 'Y', 'M', 'P', 'U', 'S', 0, 'I', 'I', };
419 static const uint8_t panasonic_header[] = { 'P', 'a', 'n', 'a', 's', 'o', 'n', 'i', 'c', 0, 0, 0, };
420 static const uint8_t sigma_header[] = { 'S', 'I', 'G', 'M', 'A', 0, 0, 0, };
421 static const uint8_t sony_header[] = { 'S', 'O', 'N', 'Y', ' ', 'D', 'S', 'C', ' ', 0, 0, 0, };
422 
424  const uint8_t *header;
425  size_t header_size;
426  int result;
427 };
428 
429 #define MAKERNOTE_STRUCT(h, r) { \
430  .header = (h), \
431  .header_size = sizeof((h)), \
432  .result = (r), \
433 }
434 
435 static const struct exif_makernote_data makernote_data[] = {
445 };
446 
447 /*
448  * derived from Exiv2 MakerNote's article
449  * https://exiv2.org/makernote.html or archived at
450  * https://web.archive.org/web/20250311155857/https://exiv2.org/makernote.html
451  */
453 {
455  return -1;
456 
457  for (int i = 0; i < FF_ARRAY_ELEMS(makernote_data); i++) {
459  return makernote_data[i].result;
460  }
461 
462  if (!memcmp(gb->buffer, nikon_header, sizeof(nikon_header))) {
463  if (bytestream2_get_bytes_left(gb) < 14)
464  return -1;
465  else if (AV_RB32(gb->buffer + 10) == EXIF_MM_LONG || AV_RB32(gb->buffer + 10) == EXIF_II_LONG)
466  return -1;
467  return 8;
468  }
469 
470  return 0;
471 }
472 
473 static int exif_parse_ifd_list(void *logctx, GetByteContext *gb, int le,
474  int depth, AVExifMetadata *ifd, int guess);
475 
476 static int exif_decode_tag(void *logctx, GetByteContext *gb, int le,
477  int depth, AVExifEntry *entry)
478 {
479  int ret = 0, makernote_offset = -1, tell, is_ifd, count;
480  enum AVTiffDataType type;
481  uint32_t payload;
482 
483  /* safety check to prevent infinite recursion on malicious IFDs */
484  if (depth > 3)
485  return AVERROR_INVALIDDATA;
486 
487  tell = bytestream2_tell(gb);
488 
489  entry->id = ff_tget_short(gb, le);
490  type = ff_tget_short(gb, le);
491  count = ff_tget_long(gb, le);
492  payload = ff_tget_long(gb, le);
493 
494  av_log(logctx, AV_LOG_DEBUG, "TIFF Tag: id: 0x%04x, type: %d, count: %u, offset: %d, "
495  "payload: %" PRIu32 "\n", entry->id, type, count, tell, payload);
496 
497  /* AV_TIFF_IFD is the largest, numerically */
498  if (type > AV_TIFF_IFD || count >= INT_MAX/8U)
499  return AVERROR_INVALIDDATA;
500 
501  is_ifd = type == AV_TIFF_IFD || ff_tis_ifd(entry->id) || entry->id == MAKERNOTE_TAG;
502 
503  if (is_ifd) {
504  if (!payload)
505  goto end;
506  bytestream2_seek(gb, payload, SEEK_SET);
507  }
508 
509  if (entry->id == MAKERNOTE_TAG) {
510  makernote_offset = exif_get_makernote_offset(gb);
511  if (makernote_offset < 0)
512  is_ifd = 0;
513  }
514 
515  if (is_ifd) {
516  entry->type = AV_TIFF_IFD;
517  entry->count = 1;
518  entry->ifd_offset = makernote_offset > 0 ? makernote_offset : 0;
519  if (entry->ifd_offset) {
520  entry->ifd_lead = av_malloc(entry->ifd_offset);
521  if (!entry->ifd_lead)
522  return AVERROR(ENOMEM);
523  bytestream2_get_buffer(gb, entry->ifd_lead, entry->ifd_offset);
524  }
525  ret = exif_parse_ifd_list(logctx, gb, le, depth + 1, &entry->value.ifd, entry->id == MAKERNOTE_TAG);
526  if (ret < 0 && entry->id == MAKERNOTE_TAG) {
527  /*
528  * we guessed that MakerNote was an IFD
529  * but we were probably incorrect at this
530  * point so we try again as a binary blob
531  */
532  av_log(logctx, AV_LOG_DEBUG, "unrecognized MakerNote IFD, retrying as blob\n");
533  is_ifd = 0;
534  }
535  }
536 
537  /* inverted condition instead of else so we can fall through from above */
538  if (!is_ifd) {
540  entry->count = count;
541  bytestream2_seek(gb, count * exif_sizes[type] > 4 ? payload : tell + 8, SEEK_SET);
542  ret = exif_read_values(logctx, gb, le, entry);
543  }
544 
545 end:
546  bytestream2_seek(gb, tell + BASE_TAG_SIZE, SEEK_SET);
547 
548  return ret;
549 }
550 
551 static int exif_parse_ifd_list(void *logctx, GetByteContext *gb, int le,
552  int depth, AVExifMetadata *ifd, int guess)
553 {
554  uint32_t entries;
555  size_t required_size;
556  void *temp;
557  int ret = 0;
558 
559  av_log(logctx, AV_LOG_DEBUG, "parsing IFD list at offset: %d\n", bytestream2_tell(gb));
560 
561  if (bytestream2_get_bytes_left(gb) < 2) {
562  av_log(logctx, guess ? AV_LOG_DEBUG : AV_LOG_ERROR,
563  "not enough bytes remaining in EXIF buffer: 2 required\n");
565  goto end;
566  }
567 
568  entries = ff_tget_short(gb, le);
569  if (bytestream2_get_bytes_left(gb) < entries * BASE_TAG_SIZE) {
570  av_log(logctx, guess ? AV_LOG_DEBUG : AV_LOG_ERROR,
571  "not enough bytes remaining in EXIF buffer. entries: %" PRIu32 "\n", entries);
573  goto end;
574  }
575  if (entries > 4096) {
576  /* that is a lot of entries, probably an error */
577  av_log(logctx, guess ? AV_LOG_DEBUG : AV_LOG_ERROR,
578  "too many entries: %" PRIu32 "\n", entries);
580  goto end;
581  }
582 
583  ifd->count = entries;
584  av_log(logctx, AV_LOG_DEBUG, "entry count for IFD: %u\n", ifd->count);
585 
586  /* empty IFD is technically legal but equivalent to no metadata present */
587  if (!ifd->count) {
588  ret = 0;
589  goto end;
590  }
591 
592  if (av_size_mult(ifd->count, sizeof(*ifd->entries), &required_size) < 0) {
593  ret = AVERROR(ENOMEM);
594  goto end;
595  }
596  temp = av_fast_realloc(ifd->entries, &ifd->size, required_size);
597  if (!temp) {
598  av_freep(&ifd->entries);
599  ret = AVERROR(ENOMEM);
600  goto end;
601  }
602  ifd->entries = temp;
603 
604  /* entries have pointers in them which can cause issues if */
605  /* they are freed or realloc'd when garbage */
606  memset(ifd->entries, 0, required_size);
607 
608  for (uint32_t i = 0; i < entries; i++) {
609  ret = exif_decode_tag(logctx, gb, le, depth, &ifd->entries[i]);
610  if (ret < 0)
611  goto end;
612  }
613 
614 end:
615  if (ret < 0) {
616  av_exif_free(ifd);
617  return ret;
618  }
619  /*
620  * at the end of an IFD is an pointer to the next IFD
621  * or zero if there are no more IFDs, which is usually the case
622  */
623  ret = ff_tget_long(gb, le);
624 
625  /* overflow */
626  if (ret < 0) {
628  av_exif_free(ifd);
629  }
630 
631  return ret;
632 }
633 
634 /*
635  * note that this function does not free the entry pointer itself
636  * because it's probably part of a larger array that should be freed
637  * all at once
638  */
640 {
641  if (!entry)
642  return;
643  if (entry->type == AV_TIFF_IFD)
644  av_exif_free(&entry->value.ifd);
645  else
646  av_freep(&entry->value.ptr);
647  av_freep(&entry->ifd_lead);
648 }
649 
651 {
652  if (!ifd)
653  return;
654  if (!ifd->entries) {
655  ifd->count = 0;
656  ifd->size = 0;
657  return;
658  }
659  for (size_t i = 0; i < ifd->count; i++) {
660  AVExifEntry *entry = &ifd->entries[i];
662  }
663  av_freep(&ifd->entries);
664  ifd->count = 0;
665  ifd->size = 0;
666 }
667 
668 static size_t exif_get_ifd_size(const AVExifMetadata *ifd)
669 {
670  /* 6 == 4 + 2; 2-byte entry-count at the beginning */
671  /* plus 4-byte next-IFD pointer at the end */
672  size_t total_size = IFD_EXTRA_SIZE;
673  for (size_t i = 0; i < ifd->count; i++) {
674  const AVExifEntry *entry = &ifd->entries[i];
675  if (entry->type == AV_TIFF_IFD) {
676  /* this is an extra IFD, not an entry, so we don't need to add base tag size */
677  size_t base_size = entry->id > 0xFFECu && entry->id <= 0xFFFCu ? 0 : BASE_TAG_SIZE;
678  total_size += base_size + exif_get_ifd_size(&entry->value.ifd) + entry->ifd_offset;
679  } else {
680  size_t payload_size = entry->count * exif_sizes[entry->type];
681  total_size += BASE_TAG_SIZE + (payload_size > 4 ? payload_size : 0);
682  }
683  }
684  return total_size;
685 }
686 
687 static int exif_write_ifd(void *logctx, PutByteContext *pb, int le, int depth, const AVExifMetadata *ifd)
688 {
689  int offset, ret, tell, tell2;
690  tell = bytestream2_tell_p(pb);
691  tput16(pb, le, ifd->count);
692  offset = tell + IFD_EXTRA_SIZE + BASE_TAG_SIZE * (uint32_t) ifd->count;
693  av_log(logctx, AV_LOG_DEBUG, "writing IFD with %u entries and initial offset %d\n", ifd->count, offset);
694  for (size_t i = 0; i < ifd->count; i++) {
695  const AVExifEntry *entry = &ifd->entries[i];
696  av_log(logctx, AV_LOG_DEBUG, "writing TIFF entry: id: 0x%04" PRIx16 ", type: %d, count: %"
697  PRIu32 ", offset: %d, offset value: %d\n",
698  entry->id, entry->type, entry->count,
700  tput16(pb, le, entry->id);
701  if (entry->id == MAKERNOTE_TAG && entry->type == AV_TIFF_IFD) {
702  size_t ifd_size = exif_get_ifd_size(&entry->value.ifd);
703  tput16(pb, le, AV_TIFF_UNDEFINED);
704  tput32(pb, le, ifd_size);
705  } else {
706  tput16(pb, le, entry->type);
707  tput32(pb, le, entry->count);
708  }
709  if (entry->type == AV_TIFF_IFD) {
710  tput32(pb, le, offset);
711  tell2 = bytestream2_tell_p(pb);
712  bytestream2_seek_p(pb, offset, SEEK_SET);
713  if (entry->ifd_offset)
714  bytestream2_put_buffer(pb, entry->ifd_lead, entry->ifd_offset);
715  ret = exif_write_ifd(logctx, pb, le, depth + 1, &entry->value.ifd);
716  if (ret < 0)
717  return ret;
718  offset += ret + entry->ifd_offset;
719  bytestream2_seek_p(pb, tell2, SEEK_SET);
720  } else {
721  size_t payload_size = entry->count * exif_sizes[entry->type];
722  if (payload_size > 4) {
723  tput32(pb, le, offset);
724  tell2 = bytestream2_tell_p(pb);
725  bytestream2_seek_p(pb, offset, SEEK_SET);
726  exif_write_values(pb, le, entry);
727  offset += payload_size;
728  bytestream2_seek_p(pb, tell2, SEEK_SET);
729  } else {
730  /* zero uninitialized excess payload values */
731  AV_WN32(pb->buffer, 0);
732  exif_write_values(pb, le, entry);
733  bytestream2_seek_p(pb, 4 - payload_size, SEEK_CUR);
734  }
735  }
736  }
737 
738  /*
739  * we write 0 if this is the top-level exif IFD
740  * indicating that there are no more IFD pointers
741  */
742  tput32(pb, le, depth ? offset : 0);
743  return offset - tell;
744 }
745 
746 int av_exif_write(void *logctx, const AVExifMetadata *ifd, AVBufferRef **buffer, enum AVExifHeaderMode header_mode)
747 {
748  AVBufferRef *buf = NULL;
749  size_t size, headsize = 8;
750  PutByteContext pb;
751  int ret = 0, off = 0, next;
752  AVExifMetadata *ifd_new = NULL;
753  AVExifMetadata extra_ifds[16] = { 0 };
754 
755  int le = 1;
756 
757  if (*buffer) {
758  ret = AVERROR(EINVAL);
759  goto end;
760  }
761 
762  size = exif_get_ifd_size(ifd);
763  switch (header_mode) {
764  case AV_EXIF_EXIF00:
765  off = 6;
766  break;
767  case AV_EXIF_T_OFF:
768  off = 4;
769  break;
770  case AV_EXIF_ASSUME_BE:
771  le = 0;
772  headsize = 0;
773  break;
774  case AV_EXIF_ASSUME_LE:
775  le = 1;
776  headsize = 0;
777  break;
778  }
779  buf = av_buffer_alloc(size + off + headsize);
780  if (!buf) {
781  ret = AVERROR(ENOMEM);
782  goto end;
783  }
784 
785  if (header_mode == AV_EXIF_EXIF00) {
786  AV_WL32(buf->data, MKTAG('E','x','i','f'));
787  AV_WN16(buf->data + 4, 0);
788  } else if (header_mode == AV_EXIF_T_OFF) {
789  AV_WN32(buf->data, 0);
790  }
791 
792  bytestream2_init_writer(&pb, buf->data + off, buf->size - off);
793 
794  if (header_mode != AV_EXIF_ASSUME_BE && header_mode != AV_EXIF_ASSUME_LE) {
795  /* these constants are be32 in both cases */
796  /* le == 1 always in this case */
797  bytestream2_put_be32(&pb, EXIF_II_LONG);
798  tput32(&pb, le, 8);
799  }
800 
801  int extras = 0;
802  for (int i = 0; i < FF_ARRAY_ELEMS(extra_ifds); i++) {
803  AVExifEntry *extra_entry = NULL;
804  uint16_t extra_tag = 0xFFFCu - i;
805  ret = av_exif_get_entry(logctx, (AVExifMetadata *) ifd, extra_tag, 0, &extra_entry);
806  if (ret < 0)
807  break;
808  if (!ret)
809  continue;
810  av_log(logctx, AV_LOG_DEBUG, "found extra IFD tag: %04x\n", extra_tag);
811  if (!ifd_new) {
812  ifd_new = av_exif_clone_ifd(ifd);
813  if (!ifd_new)
814  break;
815  ifd = ifd_new;
816  }
817  /* calling remove_entry will call av_exif_free on the original */
818  AVExifMetadata *cloned = av_exif_clone_ifd(&extra_entry->value.ifd);
819  if (!cloned)
820  break;
821  extra_ifds[extras++] = *cloned;
822  /* don't use av_exif_free here, we want to preserve internals */
823  av_free(cloned);
824  ret = av_exif_remove_entry(logctx, ifd_new, extra_tag, 0);
825  if (ret < 0)
826  break;
827  }
828 
829  if (ret < 0) {
830  av_log(logctx, AV_LOG_ERROR, "error popping additional IFD: %s\n", av_err2str(ret));
831  goto end;
832  }
833 
834  next = bytestream2_tell_p(&pb);
835  ret = exif_write_ifd(logctx, &pb, le, 0, ifd);
836  if (ret < 0) {
837  av_log(logctx, AV_LOG_ERROR, "error writing EXIF data: %s\n", av_err2str(ret));
838  goto end;
839  }
840  next += ret;
841 
842  for (int i = 0; i < extras; i++) {
843  av_log(logctx, AV_LOG_DEBUG, "writing additional ifd at: %d\n", next);
844  /* exif_write_ifd always writes 0 i.e. last ifd so we overwrite that here */
845  bytestream2_seek_p(&pb, -4, SEEK_CUR);
846  tput32(&pb, le, next);
847  bytestream2_seek_p(&pb, next, SEEK_SET);
848  ret = exif_write_ifd(logctx, &pb, le, 0, &extra_ifds[i]);
849  if (ret < 0) {
850  av_log(logctx, AV_LOG_ERROR, "error writing additional IFD: %s\n", av_err2str(ret));
851  goto end;
852  }
853  next += ret;
854  }
855 
856  *buffer = buf;
857  ret = 0;
858 
859 end:
860  av_exif_free(ifd_new);
861  av_freep(&ifd_new);
862  for (int i = 0; i < FF_ARRAY_ELEMS(extra_ifds); i++)
863  av_exif_free(&extra_ifds[i]);
864  if (ret < 0)
865  av_buffer_unref(&buf);
866 
867  return ret;
868 }
869 
870 int av_exif_parse_buffer(void *logctx, const uint8_t *buf, size_t size,
871  AVExifMetadata *ifd, enum AVExifHeaderMode header_mode)
872 {
873  int ret, le;
874  GetByteContext gbytes;
875  if (size > INT_MAX)
876  return AVERROR(EINVAL);
877  size_t off = 0;
878  switch (header_mode) {
879  case AV_EXIF_EXIF00:
880  if (size < 6)
881  return AVERROR_INVALIDDATA;
882  off = 6;
883  /* fallthrough */
884  case AV_EXIF_T_OFF:
885  if (size < 4)
886  return AVERROR_INVALIDDATA;
887  if (!off)
888  off = AV_RB32(buf) + 4;
889  /* fallthrough */
890  case AV_EXIF_TIFF_HEADER: {
891  int ifd_offset;
892  if (size <= off)
893  return AVERROR_INVALIDDATA;
894  bytestream2_init(&gbytes, buf + off, size - off);
895  // read TIFF header
896  ret = ff_tdecode_header(&gbytes, &le, &ifd_offset);
897  if (ret < 0) {
898  av_log(logctx, AV_LOG_ERROR, "invalid TIFF header in EXIF data: %s\n", av_err2str(ret));
899  return ret;
900  }
901  bytestream2_seek(&gbytes, ifd_offset, SEEK_SET);
902  break;
903  }
904  case AV_EXIF_ASSUME_LE:
905  le = 1;
906  bytestream2_init(&gbytes, buf, size);
907  break;
908  case AV_EXIF_ASSUME_BE:
909  le = 0;
910  bytestream2_init(&gbytes, buf, size);
911  break;
912  default:
913  return AVERROR(EINVAL);
914  }
915 
916  /*
917  * parse IFD0 here. If the return value is positive that tells us
918  * there is subimage metadata, but we don't parse that IFD here
919  */
920  ret = exif_parse_ifd_list(logctx, &gbytes, le, 0, ifd, 0);
921  if (ret < 0) {
922  av_log(logctx, AV_LOG_ERROR, "error decoding EXIF data: %s\n", av_err2str(ret));
923  return ret;
924  }
925  if (!ret)
926  goto finish;
927  int next = ret;
928  bytestream2_seek(&gbytes, next, SEEK_SET);
929 
930  /* cap at 16 extra IFDs for sanity/parse security */
931  for (int extra_tag = 0xFFFCu; extra_tag > 0xFFECu; extra_tag--) {
932  AVExifMetadata extra_ifd = { 0 };
933  ret = exif_parse_ifd_list(logctx, &gbytes, le, 0, &extra_ifd, 1);
934  if (ret < 0) {
935  av_exif_free(&extra_ifd);
936  break;
937  }
938  next = ret;
939  av_log(logctx, AV_LOG_DEBUG, "found extra IFD: %04x with next=%d\n", extra_tag, ret);
940  bytestream2_seek(&gbytes, next, SEEK_SET);
941  ret = av_exif_set_entry(logctx, ifd, extra_tag, AV_TIFF_IFD, 1, NULL, 0, &extra_ifd);
942  av_exif_free(&extra_ifd);
943  if (ret < 0 || !next || bytestream2_get_bytes_left(&gbytes) <= 0)
944  break;
945  }
946 
947 finish:
948  return bytestream2_tell(&gbytes) + off;
949 }
950 
951 #define COLUMN_SEP(i, c) ((i) ? ((i) % (c) ? ", " : "\n") : "")
952 
953 static int exif_ifd_to_dict(void *logctx, const char *prefix, const AVExifMetadata *ifd, AVDictionary **metadata)
954 {
955  AVBPrint bp;
956  int ret = 0;
957  char *key = NULL;
958  char *value = NULL;
959 
960  if (!prefix)
961  prefix = "";
962 
963  for (uint16_t i = 0; i < ifd->count; i++) {
964  const AVExifEntry *entry = &ifd->entries[i];
965  const char *name = av_exif_get_tag_name(entry->id);
966  av_bprint_init(&bp, entry->count * 10, AV_BPRINT_SIZE_UNLIMITED);
967  if (*prefix)
968  av_bprintf(&bp, "%s/", prefix);
969  if (name)
970  av_bprintf(&bp, "%s", name);
971  else
972  av_bprintf(&bp, "0x%04X", entry->id);
973  ret = av_bprint_finalize(&bp, &key);
974  if (ret < 0)
975  goto end;
976  av_bprint_init(&bp, entry->count * 10, AV_BPRINT_SIZE_UNLIMITED);
977  switch (entry->type) {
978  case AV_TIFF_IFD:
979  ret = exif_ifd_to_dict(logctx, key, &entry->value.ifd, metadata);
980  if (ret < 0)
981  goto end;
982  break;
983  case AV_TIFF_SHORT:
984  case AV_TIFF_LONG:
985  for (uint32_t j = 0; j < entry->count; j++)
986  av_bprintf(&bp, "%s%7" PRIu32, COLUMN_SEP(j, 8), (uint32_t)entry->value.uint[j]);
987  break;
988  case AV_TIFF_SSHORT:
989  case AV_TIFF_SLONG:
990  for (uint32_t j = 0; j < entry->count; j++)
991  av_bprintf(&bp, "%s%7" PRId32, COLUMN_SEP(j, 8), (int32_t)entry->value.sint[j]);
992  break;
993  case AV_TIFF_RATIONAL:
994  case AV_TIFF_SRATIONAL:
995  for (uint32_t j = 0; j < entry->count; j++)
996  av_bprintf(&bp, "%s%7i:%-7i", COLUMN_SEP(j, 4), entry->value.rat[j].num, entry->value.rat[j].den);
997  break;
998  case AV_TIFF_DOUBLE:
999  case AV_TIFF_FLOAT:
1000  for (uint32_t j = 0; j < entry->count; j++)
1001  av_bprintf(&bp, "%s%.15g", COLUMN_SEP(j, 4), entry->value.dbl[j]);
1002  break;
1003  case AV_TIFF_STRING:
1004  av_bprintf(&bp, "%s", entry->value.str);
1005  break;
1006  case AV_TIFF_UNDEFINED:
1007  case AV_TIFF_BYTE:
1008  for (uint32_t j = 0; j < entry->count; j++)
1009  av_bprintf(&bp, "%s%3i", COLUMN_SEP(j, 16), entry->value.ubytes[j]);
1010  break;
1011  case AV_TIFF_SBYTE:
1012  for (uint32_t j = 0; j < entry->count; j++)
1013  av_bprintf(&bp, "%s%3i", COLUMN_SEP(j, 16), entry->value.sbytes[j]);
1014  break;
1015  }
1016  if (entry->type != AV_TIFF_IFD) {
1017  if (!av_bprint_is_complete(&bp)) {
1018  av_bprint_finalize(&bp, NULL);
1019  ret = AVERROR(ENOMEM);
1020  goto end;
1021  }
1022  ret = av_bprint_finalize(&bp, &value);
1023  if (ret < 0)
1024  goto end;
1026  key = NULL;
1027  value = NULL;
1028  if (ret < 0)
1029  goto end;
1030  } else {
1031  av_freep(&key);
1032  }
1033  }
1034 
1035 end:
1036  av_freep(&key);
1037  av_freep(&value);
1038  return ret;
1039 }
1040 
1042 {
1043  return exif_ifd_to_dict(logctx, "", ifd, metadata);
1044 }
1045 
1046 #if LIBAVCODEC_VERSION_MAJOR < 63
1047 int avpriv_exif_decode_ifd(void *logctx, const uint8_t *buf, int size,
1048  int le, int depth, AVDictionary **metadata)
1049 {
1050  AVExifMetadata ifd = { 0 };
1051  GetByteContext gb;
1052  int ret;
1053  bytestream2_init(&gb, buf, size);
1054  ret = exif_parse_ifd_list(logctx, &gb, le, depth, &ifd, 0);
1055  if (ret < 0)
1056  return ret;
1057  ret = av_exif_ifd_to_dict(logctx, &ifd, metadata);
1058  av_exif_free(&ifd);
1059  return ret;
1060 }
1061 #endif
1062 
1063 #define EXIF_COPY(fname, srcname) do { \
1064  size_t sz; \
1065  if (av_size_mult(src->count, sizeof(*(fname)), &sz) < 0) { \
1066  ret = AVERROR(ENOMEM); \
1067  goto end; \
1068  } \
1069  (fname) = av_memdup((srcname), sz); \
1070  if (!(fname)) { \
1071  ret = AVERROR(ENOMEM); \
1072  goto end; \
1073  } \
1074 } while (0)
1075 
1077 {
1078  int ret = 0;
1079 
1080  memset(dst, 0, sizeof(*dst));
1081 
1082  dst->count = src->count;
1083  dst->id = src->id;
1084  dst->type = src->type;
1085 
1086  dst->ifd_offset = src->ifd_offset;
1087  if (src->ifd_lead) {
1088  dst->ifd_lead = av_memdup(src->ifd_lead, src->ifd_offset);
1089  if (!dst->ifd_lead) {
1090  ret = AVERROR(ENOMEM);
1091  goto end;
1092  }
1093  } else {
1094  dst->ifd_lead = NULL;
1095  }
1096 
1097  switch(src->type) {
1098  case AV_TIFF_IFD: {
1099  AVExifMetadata *cloned = av_exif_clone_ifd(&src->value.ifd);
1100  if (!cloned) {
1101  ret = AVERROR(ENOMEM);
1102  goto end;
1103  }
1104  dst->value.ifd = *cloned;
1105  av_freep(&cloned);
1106  break;
1107  }
1108  case AV_TIFF_SHORT:
1109  case AV_TIFF_LONG:
1110  EXIF_COPY(dst->value.uint, src->value.uint);
1111  break;
1112  case AV_TIFF_SLONG:
1113  case AV_TIFF_SSHORT:
1114  EXIF_COPY(dst->value.sint, src->value.sint);
1115  break;
1116  case AV_TIFF_RATIONAL:
1117  case AV_TIFF_SRATIONAL:
1118  EXIF_COPY(dst->value.rat, src->value.rat);
1119  break;
1120  case AV_TIFF_DOUBLE:
1121  case AV_TIFF_FLOAT:
1122  EXIF_COPY(dst->value.dbl, src->value.dbl);
1123  break;
1124  case AV_TIFF_BYTE:
1125  case AV_TIFF_UNDEFINED:
1126  EXIF_COPY(dst->value.ubytes, src->value.ubytes);
1127  break;
1128  case AV_TIFF_SBYTE:
1129  EXIF_COPY(dst->value.sbytes, src->value.sbytes);
1130  break;
1131  case AV_TIFF_STRING:
1132  dst->value.str = av_memdup(src->value.str, src->count+1);
1133  if (!dst->value.str) {
1134  ret = AVERROR(ENOMEM);
1135  goto end;
1136  }
1137  break;
1138  }
1139 
1140  return 0;
1141 
1142 end:
1143  av_freep(&dst->ifd_lead);
1144  if (src->type == AV_TIFF_IFD)
1145  av_exif_free(&dst->value.ifd);
1146  else
1147  av_freep(&dst->value.ptr);
1148  memset(dst, 0, sizeof(*dst));
1149 
1150  return ret;
1151 }
1152 
1153 static int exif_get_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, int depth, AVExifEntry **value)
1154 {
1155  int offset = 1;
1156 
1157  if (!ifd || ifd->count && !ifd->entries || !value)
1158  return AVERROR(EINVAL);
1159 
1160  for (size_t i = 0; i < ifd->count; i++) {
1161  if (ifd->entries[i].id == id) {
1162  *value = &ifd->entries[i];
1163  return i + offset;
1164  }
1165  if (ifd->entries[i].type == AV_TIFF_IFD) {
1166  if (depth < 3) {
1167  int ret = exif_get_entry(logctx, &ifd->entries[i].value.ifd, id, depth + 1, value);
1168  if (ret)
1169  return ret < 0 ? ret : ret + offset;
1170  }
1171  offset += ifd->entries[i].value.ifd.count;
1172  }
1173  }
1174 
1175  return 0;
1176 }
1177 
1178 int av_exif_get_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, int flags, AVExifEntry **value)
1179 {
1180  return exif_get_entry(logctx, ifd, id, (flags & AV_EXIF_FLAG_RECURSIVE) ? 0 : INT_MAX, value);
1181 }
1182 
1183 int av_exif_set_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, enum AVTiffDataType type,
1184  uint32_t count, const uint8_t *ifd_lead, uint32_t ifd_offset, const void *value)
1185 {
1186  void *temp;
1187  int ret = 0;
1188  AVExifEntry *entry = NULL;
1189  AVExifEntry src = { 0 };
1190 
1191  if (!ifd || ifd->count && !ifd->entries
1192  || ifd_lead && !ifd_offset || !ifd_lead && ifd_offset
1193  || !value || ifd->count == 0xFFFFu)
1194  return AVERROR(EINVAL);
1195 
1196  ret = av_exif_get_entry(logctx, ifd, id, 0, &entry);
1197  if (ret < 0)
1198  return ret;
1199 
1200  if (entry) {
1202  } else {
1203  size_t required_size;
1204  ret = av_size_mult(ifd->count + 1, sizeof(*ifd->entries), &required_size);
1205  if (ret < 0)
1206  return AVERROR(ENOMEM);
1207  temp = av_fast_realloc(ifd->entries, &ifd->size, required_size);
1208  if (!temp)
1209  return AVERROR(ENOMEM);
1210  ifd->entries = temp;
1211  entry = &ifd->entries[ifd->count++];
1212  }
1213 
1214  src.count = count;
1215  src.id = id;
1216  src.type = type;
1217  src.ifd_lead = (uint8_t *) ifd_lead;
1218  src.ifd_offset = ifd_offset;
1219  if (type == AV_TIFF_IFD)
1220  src.value.ifd = * (const AVExifMetadata *) value;
1221  else
1222  src.value.ptr = (void *) value;
1223 
1225 
1226  if (ret < 0)
1227  ifd->count--;
1228 
1229  return ret;
1230 }
1231 
1232 static int exif_remove_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, int depth)
1233 {
1234  int32_t index = -1;
1235  int ret = 0;
1236 
1237  if (!ifd || ifd->count && !ifd->entries)
1238  return AVERROR(EINVAL);
1239 
1240  for (size_t i = 0; i < ifd->count; i++) {
1241  if (ifd->entries[i].id == id) {
1242  index = i;
1243  break;
1244  }
1245  if (ifd->entries[i].type == AV_TIFF_IFD && depth < 3) {
1246  ret = exif_remove_entry(logctx, &ifd->entries[i].value.ifd, id, depth + 1);
1247  if (ret)
1248  return ret;
1249  }
1250  }
1251 
1252  if (index < 0)
1253  return 0;
1254  exif_free_entry(&ifd->entries[index]);
1255 
1256  if (index == --ifd->count) {
1257  if (!index)
1258  av_freep(&ifd->entries);
1259  return 1;
1260  }
1261 
1262  memmove(&ifd->entries[index], &ifd->entries[index + 1], (ifd->count - index) * sizeof(*ifd->entries));
1263 
1264  return 1 + (ifd->count - index);
1265 }
1266 
1267 int av_exif_remove_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, int flags)
1268 {
1269  return exif_remove_entry(logctx, ifd, id, (flags & AV_EXIF_FLAG_RECURSIVE) ? 0 : INT_MAX);
1270 }
1271 
1273 {
1274  AVExifMetadata *ret = av_mallocz(sizeof(*ret));
1275  if (!ret)
1276  return NULL;
1277 
1278  ret->count = ifd->count;
1279  if (ret->count) {
1280  size_t required_size;
1281  if (av_size_mult(ret->count, sizeof(*ret->entries), &required_size) < 0)
1282  goto fail;
1283  av_fast_mallocz(&ret->entries, &ret->size, required_size);
1284  if (!ret->entries)
1285  goto fail;
1286  }
1287 
1288  for (size_t i = 0; i < ret->count; i++) {
1289  const AVExifEntry *entry = &ifd->entries[i];
1290  AVExifEntry *ret_entry = &ret->entries[i];
1291  int status = exif_clone_entry(ret_entry, entry);
1292  if (status < 0)
1293  goto fail;
1294  }
1295 
1296  return ret;
1297 
1298 fail:
1299  av_exif_free(ret);
1300  av_free(ret);
1301  return NULL;
1302 }
1303 
1304 static const int rotation_lut[2][4] = {
1305  {1, 8, 3, 6}, {4, 7, 2, 5},
1306 };
1307 
1309 {
1310  double rotation = av_display_rotation_get(matrix);
1311  // determinant
1312  int vflip = ((int64_t)matrix[0] * (int64_t)matrix[4]
1313  - (int64_t)matrix[1] * (int64_t)matrix[3]) < 0;
1314  if (!isfinite(rotation))
1315  return 0;
1316  int rot = (int)(rotation + 0.5);
1317  rot = (((rot % 360) + 360) % 360) / 90;
1318  return rotation_lut[vflip][rot];
1319 }
1320 
1322 {
1323  switch (orientation) {
1324  case 1:
1326  break;
1327  case 2:
1330  break;
1331  case 3:
1333  break;
1334  case 4:
1337  break;
1338  case 5:
1341  break;
1342  case 6:
1344  break;
1345  case 7:
1348  break;
1349  case 8:
1351  break;
1352  default:
1353  return AVERROR(EINVAL);
1354  }
1355 
1356  return 0;
1357 }
1358 
1359 int ff_exif_sanitize_ifd(void *logctx, const AVFrame *frame, AVExifMetadata *ifd)
1360 {
1361  int ret = 0;
1362  AVFrameSideData *sd_orient = NULL;
1363  AVExifEntry *or = NULL;
1364  AVExifEntry *iw = NULL;
1365  AVExifEntry *ih = NULL;
1366  AVExifEntry *pw = NULL;
1367  AVExifEntry *ph = NULL;
1368  uint64_t orientation = 1;
1369  uint64_t w = frame->width;
1370  uint64_t h = frame->height;
1371  int rewrite = 0;
1372 
1374 
1375  if (sd_orient)
1376  orientation = av_exif_matrix_to_orientation((int32_t *) sd_orient->data);
1377  if (orientation != 1)
1378  av_log(logctx, AV_LOG_DEBUG, "matrix contains nontrivial EXIF orientation: %" PRIu64 "\n", orientation);
1379 
1380  for (size_t i = 0; i < ifd->count; i++) {
1381  AVExifEntry *entry = &ifd->entries[i];
1382  if (entry->id == ORIENTATION_TAG && entry->count > 0 && entry->type == AV_TIFF_SHORT) {
1383  or = entry;
1384  continue;
1385  }
1386  if (entry->id == IMAGE_WIDTH_TAG && entry->count > 0 && entry->type == AV_TIFF_LONG) {
1387  iw = entry;
1388  continue;
1389  }
1390  if (entry->id == IMAGE_LENGTH_TAG && entry->count > 0 && entry->type == AV_TIFF_LONG) {
1391  ih = entry;
1392  continue;
1393  }
1394  if (entry->id == EXIFIFD_TAG && entry->type == AV_TIFF_IFD) {
1395  AVExifMetadata *exif = &entry->value.ifd;
1396  for (size_t j = 0; j < exif->count; j++) {
1397  AVExifEntry *exifentry = &exif->entries[j];
1398  if (exifentry->id == PIXEL_X_TAG && exifentry->count > 0 && exifentry->type == AV_TIFF_SHORT) {
1399  pw = exifentry;
1400  continue;
1401  }
1402  if (exifentry->id == PIXEL_Y_TAG && exifentry->count > 0 && exifentry->type == AV_TIFF_SHORT) {
1403  ph = exifentry;
1404  continue;
1405  }
1406  }
1407  }
1408  }
1409 
1410  if (or && or->value.uint[0] != orientation) {
1411  rewrite = 1;
1412  or->value.uint[0] = orientation;
1413  }
1414  if (iw && iw->value.uint[0] != w) {
1415  rewrite = 1;
1416  iw->value.uint[0] = w;
1417  }
1418  if (ih && ih->value.uint[0] != h) {
1419  rewrite = 1;
1420  ih->value.uint[0] = h;
1421  }
1422  if (pw && pw->value.uint[0] != w) {
1423  rewrite = 1;
1424  pw->value.uint[0] = w;
1425  }
1426  if (ph && ph->value.uint[0] != h) {
1427  rewrite = 1;
1428  ph->value.uint[0] = h;
1429  }
1430  if (!or && orientation != 1) {
1431  rewrite = 1;
1432  ret = av_exif_set_entry(logctx, ifd, ORIENTATION_TAG, AV_TIFF_SHORT, 1, NULL, 0, &orientation);
1433  if (ret < 0)
1434  goto end;
1435  }
1436  if (!iw && w) {
1437  rewrite = 1;
1438  ret = av_exif_set_entry(logctx, ifd, IMAGE_WIDTH_TAG, AV_TIFF_LONG, 1, NULL, 0, &w);
1439  if (ret < 0)
1440  goto end;
1441  }
1442  if (!ih && h) {
1443  rewrite = 1;
1444  ret = av_exif_set_entry(logctx, ifd, IMAGE_LENGTH_TAG, AV_TIFF_LONG, 1, NULL, 0, &h);
1445  if (ret < 0)
1446  goto end;
1447  }
1448  if (!pw && w && w < 0xFFFFu || !ph && h && h < 0xFFFFu) {
1449  AVExifMetadata *exif;
1450  AVExifEntry *exif_entry;
1451  int exif_found = av_exif_get_entry(logctx, ifd, EXIFIFD_TAG, 0, &exif_entry);
1452  rewrite = 1;
1453  if (exif_found < 0)
1454  goto end;
1455  if (exif_found > 0) {
1456  exif = &exif_entry->value.ifd;
1457  } else {
1458  AVExifMetadata exif_new = { 0 };
1459  ret = av_exif_set_entry(logctx, ifd, EXIFIFD_TAG, AV_TIFF_IFD, 1, NULL, 0, &exif_new);
1460  if (ret < 0) {
1461  av_exif_free(&exif_new);
1462  goto end;
1463  }
1464  exif = &ifd->entries[ifd->count - 1].value.ifd;
1465  }
1466  if (!pw && w && w < 0xFFFFu) {
1467  ret = av_exif_set_entry(logctx, exif, PIXEL_X_TAG, AV_TIFF_SHORT, 1, NULL, 0, &w);
1468  if (ret < 0)
1469  goto end;
1470  }
1471  if (!ph && h && h < 0xFFFFu) {
1472  ret = av_exif_set_entry(logctx, exif, PIXEL_Y_TAG, AV_TIFF_SHORT, 1, NULL, 0, &h);
1473  if (ret < 0)
1474  goto end;
1475  }
1476  }
1477 
1478  return rewrite;
1479 
1480 end:
1481  return ret;
1482 }
1483 
1484 int ff_exif_get_buffer(void *logctx, const AVFrame *frame, AVBufferRef **buffer_ptr, enum AVExifHeaderMode header_mode)
1485 {
1486  AVFrameSideData *sd_exif = NULL;
1487  AVBufferRef *buffer = NULL;
1488  AVExifMetadata ifd = { 0 };
1489  int ret = 0;
1490  int rewrite = 0;
1491 
1492  if (!buffer_ptr || *buffer_ptr)
1493  return AVERROR(EINVAL);
1494 
1496  if (!sd_exif)
1497  return 0;
1498 
1499  ret = av_exif_parse_buffer(logctx, sd_exif->data, sd_exif->size, &ifd, AV_EXIF_TIFF_HEADER);
1500  if (ret < 0)
1501  goto end;
1502 
1503  rewrite = ff_exif_sanitize_ifd(logctx, frame, &ifd);
1504  if (rewrite < 0) {
1505  ret = rewrite;
1506  goto end;
1507  }
1508 
1509  if (rewrite) {
1510  ret = av_exif_write(logctx, &ifd, &buffer, header_mode);
1511  if (ret < 0)
1512  goto end;
1513 
1514  *buffer_ptr = buffer;
1515  } else {
1516  *buffer_ptr = av_buffer_ref(sd_exif->buf);
1517  if (!*buffer_ptr) {
1518  ret = AVERROR(ENOMEM);
1519  goto end;
1520  }
1521  }
1522 
1523  av_exif_free(&ifd);
1524  return rewrite;
1525 
1526 end:
1527  av_exif_free(&ifd);
1528  return ret;
1529 }
flags
const SwsFlags flags[]
Definition: swscale.c:61
av_size_mult
int av_size_mult(size_t a, size_t b, size_t *r)
Multiply two size_t values checking for overflow.
Definition: mem.c:567
AV_EXIF_T_OFF
@ AV_EXIF_T_OFF
The first four bytes point to the actual start, then it's AV_EXIF_TIFF_HEADER.
Definition: exif.h:69
AV_LOG_WARNING
#define AV_LOG_WARNING
Something somehow does not look correct.
Definition: log.h:216
AV_BPRINT_SIZE_UNLIMITED
#define AV_BPRINT_SIZE_UNLIMITED
IFD_EXTRA_SIZE
#define IFD_EXTRA_SIZE
Definition: exif.c:46
exif_tag::name
const char name[EXIF_TAG_NAME_LENGTH]
Definition: exif.c:58
name
it s the only field you need to keep assuming you have a context There is some magic you don t need to care about around this just let it vf default minimum maximum flags name is the option name
Definition: writing_filters.txt:88
entry
#define entry
Definition: aom_film_grain_template.c:66
av_bprint_is_complete
static int av_bprint_is_complete(const AVBPrint *buf)
Test if the print buffer is complete (not truncated).
Definition: bprint.h:218
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
exif_get_ifd_size
static size_t exif_get_ifd_size(const AVExifMetadata *ifd)
Definition: exif.c:668
bytestream2_get_bytes_left
static av_always_inline int bytestream2_get_bytes_left(const GetByteContext *g)
Definition: bytestream.h:158
AV_WL32
#define AV_WL32(p, v)
Definition: intreadwrite.h:422
av_exif_parse_buffer
int av_exif_parse_buffer(void *logctx, const uint8_t *buf, size_t size, AVExifMetadata *ifd, enum AVExifHeaderMode header_mode)
Decodes the EXIF data provided in the buffer and writes it into the struct *ifd.
Definition: exif.c:870
av_bprint_init
void av_bprint_init(AVBPrint *buf, unsigned size_init, unsigned size_max)
Definition: bprint.c:69
av_frame_get_side_data
AVFrameSideData * av_frame_get_side_data(const AVFrame *frame, enum AVFrameSideDataType type)
Definition: frame.c:659
AVExifEntry
Definition: exif.h:85
GetByteContext
Definition: bytestream.h:33
av_exif_write
int av_exif_write(void *logctx, const AVExifMetadata *ifd, AVBufferRef **buffer, enum AVExifHeaderMode header_mode)
Allocates a buffer using av_malloc of an appropriate size and writes the EXIF data represented by ifd...
Definition: exif.c:746
AVExifMetadata
Definition: exif.h:76
bytestream2_tell
static av_always_inline int bytestream2_tell(const GetByteContext *g)
Definition: bytestream.h:192
AVBufferRef::data
uint8_t * data
The data buffer.
Definition: buffer.h:90
exif_sizes
static const size_t exif_sizes[]
Definition: exif.c:216
matrix
Definition: vc1dsp.c:43
av_exif_ifd_to_dict
int av_exif_ifd_to_dict(void *logctx, const AVExifMetadata *ifd, AVDictionary **metadata)
Recursively reads all tags from the IFD and stores them in the provided metadata dictionary.
Definition: exif.c:1041
int64_t
long long int64_t
Definition: coverity.c:34
EXIF_II_LONG
#define EXIF_II_LONG
Definition: exif.c:42
av_exif_orientation_to_matrix
int av_exif_orientation_to_matrix(int32_t *matrix, int orientation)
Convert an orientation constant used by EXIF's orientation tag into a display matrix used by AV_FRAME...
Definition: exif.c:1321
AVExifHeaderMode
AVExifHeaderMode
Definition: exif.h:58
ph
static int FUNC() ph(CodedBitstreamContext *ctx, RWContext *rw, H266RawPH *current)
Definition: cbs_h266_syntax_template.c:3050
AVFrame
This structure describes decoded (raw) audio or video data.
Definition: frame.h:427
bytestream2_seek
static av_always_inline int bytestream2_seek(GetByteContext *g, int offset, int whence)
Definition: bytestream.h:212
AVFrameSideData::buf
AVBufferRef * buf
Definition: frame.h:287
u
#define u(width, name, range_min, range_max)
Definition: cbs_apv.c:68
av_display_matrix_flip
void av_display_matrix_flip(int32_t matrix[9], int hflip, int vflip)
Flip the input matrix horizontally and/or vertically.
Definition: display.c:66
exif_decode_tag
static int exif_decode_tag(void *logctx, GetByteContext *gb, int le, int depth, AVExifEntry *entry)
Definition: exif.c:476
av_exif_set_entry
int av_exif_set_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, enum AVTiffDataType type, uint32_t count, const uint8_t *ifd_lead, uint32_t ifd_offset, const void *value)
Add an entry to the provided EXIF metadata struct.
Definition: exif.c:1183
sony_header
static const uint8_t sony_header[]
Definition: exif.c:421
exif_tag::id
uint16_t id
Definition: exif.c:59
AV_FRAME_DATA_DISPLAYMATRIX
@ AV_FRAME_DATA_DISPLAYMATRIX
This side data contains a 3x3 transformation matrix describing an affine transformation that needs to...
Definition: frame.h:85
av_display_rotation_set
void av_display_rotation_set(int32_t matrix[9], double angle)
Initialize a transformation matrix describing a pure clockwise rotation by the specified angle (in de...
Definition: display.c:51
AVDictionary
Definition: dict.c:32
avpriv_exif_decode_ifd
int avpriv_exif_decode_ifd(void *logctx, const uint8_t *buf, int size, int le, int depth, AVDictionary **metadata)
Definition: exif.c:1047
av_buffer_ref
AVBufferRef * av_buffer_ref(const AVBufferRef *buf)
Create a new reference to an AVBuffer.
Definition: buffer.c:103
casio_header
static const uint8_t casio_header[]
Definition: exif.c:413
exif_read_values
static int exif_read_values(void *logctx, GetByteContext *gb, int le, AVExifEntry *entry)
Definition: exif.c:271
av_memdup
void * av_memdup(const void *p, size_t size)
Duplicate a buffer with av_malloc().
Definition: mem.c:304
exif_clone_entry
static int exif_clone_entry(AVExifEntry *dst, const AVExifEntry *src)
Definition: exif.c:1076
AV_TIFF_SHORT
@ AV_TIFF_SHORT
Definition: exif.h:45
finish
static void finish(void)
Definition: movenc.c:374
fail
#define fail()
Definition: checkasm.h:214
AV_TIFF_UNDEFINED
@ AV_TIFF_UNDEFINED
Definition: exif.h:49
av_exif_free
void av_exif_free(AVExifMetadata *ifd)
Frees all resources associated with the given EXIF metadata struct.
Definition: exif.c:650
type
it s the only field you need to keep assuming you have a context There is some magic you don t need to care about around this just let it vf type
Definition: writing_filters.txt:86
AV_DICT_DONT_STRDUP_VAL
#define AV_DICT_DONT_STRDUP_VAL
Take ownership of a value that's been allocated with av_malloc() or another memory allocation functio...
Definition: dict.h:79
AV_LOG_ERROR
#define AV_LOG_ERROR
Something went wrong and cannot losslessly be recovered.
Definition: log.h:210
AV_TIFF_IFD
@ AV_TIFF_IFD
Definition: exif.h:55
AVFrameSideData::size
size_t size
Definition: frame.h:285
FF_ARRAY_ELEMS
#define FF_ARRAY_ELEMS(a)
Definition: sinewin_tablegen.c:29
exif_makernote_data::header
const uint8_t * header
Definition: exif.c:424
bytestream2_init_writer
static av_always_inline void bytestream2_init_writer(PutByteContext *p, uint8_t *buf, int buf_size)
Definition: bytestream.h:147
EXIFIFD_TAG
#define EXIFIFD_TAG
Definition: exif.c:51
av_fast_realloc
void * av_fast_realloc(void *ptr, unsigned int *size, size_t min_size)
Reallocate the given buffer if it is not large enough, otherwise do nothing.
Definition: mem.c:497
intreadwrite.h
exif_makernote_data::header_size
size_t header_size
Definition: exif.c:425
bytestream2_tell_p
static av_always_inline int bytestream2_tell_p(const PutByteContext *p)
Definition: bytestream.h:197
bytestream2_put_buffer
static av_always_inline unsigned int bytestream2_put_buffer(PutByteContext *p, const uint8_t *src, unsigned int size)
Definition: bytestream.h:286
AV_TIFF_RATIONAL
@ AV_TIFF_RATIONAL
Definition: exif.h:47
PIXEL_Y_TAG
#define PIXEL_Y_TAG
Definition: exif.c:55
GetByteContext::buffer
const uint8_t * buffer
Definition: bytestream.h:34
exif_ifd_to_dict
static int exif_ifd_to_dict(void *logctx, const char *prefix, const AVExifMetadata *ifd, AVDictionary **metadata)
Definition: exif.c:953
av_assert0
#define av_assert0(cond)
assert() equivalent, that is always enabled.
Definition: avassert.h:41
AV_EXIF_EXIF00
@ AV_EXIF_EXIF00
The first six bytes contain "Exif\0\0", then it's AV_EXIF_TIFF_HEADER.
Definition: exif.h:71
av_exif_clone_ifd
AVExifMetadata * av_exif_clone_ifd(const AVExifMetadata *ifd)
Allocates a duplicate of the provided EXIF metadata struct.
Definition: exif.c:1272
tput64
static void tput64(PutByteContext *pb, const int le, const uint64_t value)
Definition: exif.c:266
AV_LOG_DEBUG
#define AV_LOG_DEBUG
Stuff which is only useful for libav* developers.
Definition: log.h:231
AV_EXIF_ASSUME_BE
@ AV_EXIF_ASSUME_BE
skip the TIFF header, assume big endian
Definition: exif.h:67
isfinite
#define isfinite(x)
Definition: libm.h:361
exif_remove_entry
static int exif_remove_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, int depth)
Definition: exif.c:1232
key
const char * key
Definition: hwcontext_opencl.c:189
av_mallocz
#define av_mallocz(s)
Definition: tableprint_vlc.h:31
EXIF_MM_LONG
#define EXIF_MM_LONG
Definition: exif.c:43
exif_write_values
static void exif_write_values(PutByteContext *pb, int le, const AVExifEntry *entry)
Definition: exif.c:361
av_exif_get_tag_id
int32_t av_exif_get_tag_id(const char *name)
Retrieves the tag ID associated with the provided tag string name.
Definition: exif.c:243
ff_tget_short
unsigned ff_tget_short(GetByteContext *gb, int le)
Reads a short from the bytestream using given endianness.
Definition: tiff_common.c:45
result
and forward the result(frame or status change) to the corresponding input. If nothing is possible
metadata
Stream codec metadata
Definition: ogg-flac-chained-meta.txt:2
NULL
#define NULL
Definition: coverity.c:32
exif_internal.h
av_buffer_unref
void av_buffer_unref(AVBufferRef **buf)
Free a given reference and automatically free the buffer if there are no more references to it.
Definition: buffer.c:139
AV_EXIF_TIFF_HEADER
@ AV_EXIF_TIFF_HEADER
The TIFF header starts with 0x49492a00, or 0x4d4d002a.
Definition: exif.h:63
fuji_header
static const uint8_t fuji_header[]
Definition: exif.c:415
tell
static int BS_FUNC() tell(const BSCTX *bc)
Return number of bits already read.
Definition: bitstream_template.h:146
exif_parse_ifd_list
static int exif_parse_ifd_list(void *logctx, GetByteContext *gb, int le, int depth, AVExifMetadata *ifd, int guess)
Definition: exif.c:551
tiff_common.h
olympus1_header
static const uint8_t olympus1_header[]
Definition: exif.c:417
av_fast_mallocz
void av_fast_mallocz(void *ptr, unsigned int *size, size_t min_size)
Allocate and clear a buffer, reusing the given one if large enough.
Definition: mem.c:562
bytestream2_get_buffer
static av_always_inline unsigned int bytestream2_get_buffer(GetByteContext *g, uint8_t *dst, unsigned int size)
Definition: bytestream.h:267
MAKERNOTE_STRUCT
#define MAKERNOTE_STRUCT(h, r)
Definition: exif.c:429
AVExifEntry::count
uint32_t count
Definition: exif.h:88
COLUMN_SEP
#define COLUMN_SEP(i, c)
Definition: exif.c:951
olympus2_header
static const uint8_t olympus2_header[]
Definition: exif.c:418
AV_EXIF_ASSUME_LE
@ AV_EXIF_ASSUME_LE
skip the TIFF header, assume little endian
Definition: exif.h:65
av_exif_remove_entry
int av_exif_remove_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, int flags)
Remove an entry from the provided EXIF metadata struct.
Definition: exif.c:1267
foveon_header
static const uint8_t foveon_header[]
Definition: exif.c:414
AVExifMetadata::size
unsigned int size
Definition: exif.h:82
index
int index
Definition: gxfenc.c:90
exif_write_ifd
static int exif_write_ifd(void *logctx, PutByteContext *pb, int le, int depth, const AVExifMetadata *ifd)
Definition: exif.c:687
panasonic_header
static const uint8_t panasonic_header[]
Definition: exif.c:419
AVExifEntry::value
union AVExifEntry::@120 value
PutByteContext
Definition: bytestream.h:37
AV_TIFF_BYTE
@ AV_TIFF_BYTE
Definition: exif.h:43
AVTiffDataType
AVTiffDataType
Data type identifiers for TIFF tags.
Definition: exif.h:42
av_bprint_finalize
int av_bprint_finalize(AVBPrint *buf, char **ret_str)
Finalize a print buffer.
Definition: bprint.c:235
AV_WN32
#define AV_WN32(p, v)
Definition: intreadwrite.h:372
exif_makernote_data::result
int result
Definition: exif.c:426
ORIENTATION_TAG
#define ORIENTATION_TAG
Definition: exif.c:50
dst
uint8_t ptrdiff_t const uint8_t ptrdiff_t int intptr_t intptr_t int int16_t * dst
Definition: dsp.h:87
AVExifEntry::id
uint16_t id
Definition: exif.h:86
ff_tis_ifd
int ff_tis_ifd(unsigned tag)
Returns a value > 0 if the tag is a known IFD-tag.
Definition: tiff_common.c:33
av_err2str
#define av_err2str(errnum)
Convenience macro, the return value should be used only directly in function arguments but never stan...
Definition: error.h:122
exif_makernote_data
Definition: exif.c:423
PutByteContext::buffer
uint8_t * buffer
Definition: bytestream.h:38
size
int size
Definition: twinvq_data.h:10344
sigma_header
static const uint8_t sigma_header[]
Definition: exif.c:420
av_make_q
static AVRational av_make_q(int num, int den)
Create an AVRational.
Definition: rational.h:71
AV_RB32
uint64_t_TMPL AV_WL64 unsigned int_TMPL AV_WL32 unsigned int_TMPL AV_WL24 unsigned int_TMPL AV_WL16 uint64_t_TMPL AV_WB64 unsigned int_TMPL AV_RB32
Definition: bytestream.h:96
AVFrameSideData::data
uint8_t * data
Definition: frame.h:284
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
offset
it s the only field you need to keep assuming you have a context There is some magic you don t need to care about around this just let it vf offset
Definition: writing_filters.txt:86
BASE_TAG_SIZE
#define BASE_TAG_SIZE
Definition: exif.c:45
makernote_data
static const struct exif_makernote_data makernote_data[]
Definition: exif.c:435
AV_TIFF_STRING
@ AV_TIFF_STRING
Definition: exif.h:44
av_buffer_alloc
AVBufferRef * av_buffer_alloc(size_t size)
Allocate an AVBuffer of the given size using av_malloc().
Definition: buffer.c:77
AV_EXIF_FLAG_RECURSIVE
#define AV_EXIF_FLAG_RECURSIVE
Also check subdirectories.
Definition: exif.h:150
nikon_header
static const uint8_t nikon_header[]
Definition: exif.c:416
AVBufferRef::size
size_t size
Size of data in bytes.
Definition: buffer.h:94
AVExifEntry::ifd
AVExifMetadata ifd
Definition: exif.h:115
tput16
static void tput16(PutByteContext *pb, const int le, const uint16_t value)
Definition: exif.c:256
tput32
static void tput32(PutByteContext *pb, const int le, const uint32_t value)
Definition: exif.c:261
bprint.h
AV_TIFF_SSHORT
@ AV_TIFF_SSHORT
Definition: exif.h:50
AV_TIFF_SRATIONAL
@ AV_TIFF_SRATIONAL
Definition: exif.h:52
i
#define i(width, name, range_min, range_max)
Definition: cbs_h2645.c:256
ff_tget_long
unsigned ff_tget_long(GetByteContext *gb, int le)
Reads a long from the bytestream using given endianness.
Definition: tiff_common.c:51
AVExifMetadata::entries
AVExifEntry * entries
Definition: exif.h:78
display.h
PIXEL_X_TAG
#define PIXEL_X_TAG
Definition: exif.c:54
exif_get_entry
static int exif_get_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, int depth, AVExifEntry **value)
Definition: exif.c:1153
value
it s the only field you need to keep assuming you have a context There is some magic you don t need to care about around this just let it vf default value
Definition: writing_filters.txt:86
AVExifMetadata::count
unsigned int count
Definition: exif.h:80
AVExifEntry::uint
uint64_t * uint
Definition: exif.h:109
IMAGE_LENGTH_TAG
#define IMAGE_LENGTH_TAG
Definition: exif.c:53
exif_get_makernote_offset
static int exif_get_makernote_offset(GetByteContext *gb)
Definition: exif.c:452
av_calloc
void * av_calloc(size_t nmemb, size_t size)
Definition: mem.c:264
ret
ret
Definition: filter_design.txt:187
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:265
av_malloc
void * av_malloc(size_t size)
Allocate a memory block with alignment suitable for all memory accesses (including vectors if availab...
Definition: mem.c:98
AV_TIFF_SLONG
@ AV_TIFF_SLONG
Definition: exif.h:51
AV_TIFF_SBYTE
@ AV_TIFF_SBYTE
Definition: exif.h:48
av_bprintf
void av_bprintf(AVBPrint *buf, const char *fmt,...)
Definition: bprint.c:122
aoc_header
static const uint8_t aoc_header[]
Definition: exif.c:412
exif_tag
Definition: exif.c:57
id
enum AVCodecID id
Definition: dts2pts.c:549
U
#define U(x)
Definition: vpx_arith.h:37
ff_tget_double
double ff_tget_double(GetByteContext *gb, int le)
Reads a double from the bytestream using given endianness.
Definition: tiff_common.c:57
status
ov_status_e status
Definition: dnn_backend_openvino.c:100
EXIF_TAG_NAME_LENGTH
#define EXIF_TAG_NAME_LENGTH
Definition: exif.c:48
buffer
the frame and frame reference mechanism is intended to as much as expensive copies of that data while still allowing the filters to produce correct results The data is stored in buffers represented by AVFrame structures Several references can point to the same frame buffer
Definition: filter_design.txt:49
EXIF_COPY
#define EXIF_COPY(fname, srcname)
Definition: exif.c:1063
bytestream2_seek_p
static av_always_inline int bytestream2_seek_p(PutByteContext *p, int offset, int whence)
Definition: bytestream.h:236
AVExifEntry::type
enum AVTiffDataType type
Definition: exif.h:87
AV_TIFF_DOUBLE
@ AV_TIFF_DOUBLE
Definition: exif.h:54
temp
else temp
Definition: vf_mcdeint.c:271
ff_tdecode_header
int ff_tdecode_header(GetByteContext *gb, int *le, int *ifd_offset)
Decodes a TIFF header from the input bytestream and sets the endianness in *le and the offset to the ...
Definition: tiff_common.c:162
tag_list
static const struct exif_tag tag_list[]
Definition: exif.c:62
ff_exif_sanitize_ifd
int ff_exif_sanitize_ifd(void *logctx, const AVFrame *frame, AVExifMetadata *ifd)
Compares values in the IFD with data in the provided AVFrame and sets the values in that IFD to match...
Definition: exif.c:1359
exif_free_entry
static void exif_free_entry(AVExifEntry *entry)
Definition: exif.c:639
mem.h
AVBufferRef
A reference to a data buffer.
Definition: buffer.h:82
AVFrameSideData
Structure to hold side data for an AVFrame.
Definition: frame.h:282
w
uint8_t w
Definition: llvidencdsp.c:39
IMAGE_WIDTH_TAG
#define IMAGE_WIDTH_TAG
Definition: exif.c:52
av_free
#define av_free(p)
Definition: tableprint_vlc.h:34
AV_TIFF_FLOAT
@ AV_TIFF_FLOAT
Definition: exif.h:53
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:86
ff_exif_get_buffer
int ff_exif_get_buffer(void *logctx, const AVFrame *frame, AVBufferRef **buffer_ptr, enum AVExifHeaderMode header_mode)
Gets all relevant side data, collects it into an IFD, and writes it into the corresponding buffer poi...
Definition: exif.c:1484
av_exif_get_entry
int av_exif_get_entry(void *logctx, AVExifMetadata *ifd, uint16_t id, int flags, AVExifEntry **value)
Get an entry with the tagged ID from the EXIF metadata struct.
Definition: exif.c:1178
AV_FRAME_DATA_EXIF
@ AV_FRAME_DATA_EXIF
Extensible image file format metadata.
Definition: frame.h:262
int32_t
int32_t
Definition: audioconvert.c:56
bytestream.h
av_exif_get_tag_name
const char * av_exif_get_tag_name(uint16_t id)
Retrieves the tag name associated with the provided tag ID.
Definition: exif.c:233
bytestream2_init
static av_always_inline void bytestream2_init(GetByteContext *g, const uint8_t *buf, int buf_size)
Definition: bytestream.h:137
MAKERNOTE_TAG
#define MAKERNOTE_TAG
Definition: exif.c:49
rotation_lut
static const int rotation_lut[2][4]
Definition: exif.c:1304
av_log
#define av_log(a,...)
Definition: tableprint_vlc.h:27
alias
Definition: mccdec.c:78
AVERROR_INVALIDDATA
#define AVERROR_INVALIDDATA
Invalid data found when processing input.
Definition: error.h:61
MKTAG
#define MKTAG(a, b, c, d)
Definition: macros.h:55
h
h
Definition: vp9dsp_template.c:2070
av_exif_matrix_to_orientation
int av_exif_matrix_to_orientation(const int32_t *matrix)
Convert a display matrix used by AV_FRAME_DATA_DISPLAYMATRIX into an orientation constant used by EXI...
Definition: exif.c:1308
AV_TIFF_LONG
@ AV_TIFF_LONG
Definition: exif.h:46
src
#define src
Definition: vp8dsp.c:248
AV_DICT_DONT_STRDUP_KEY
#define AV_DICT_DONT_STRDUP_KEY
Take ownership of a key that's been allocated with av_malloc() or another memory allocation function.
Definition: dict.h:77
av_display_rotation_get
double av_display_rotation_get(const int32_t matrix[9])
Extract the rotation component of the transformation matrix.
Definition: display.c:35
AV_WN16
#define AV_WN16(p, v)
Definition: intreadwrite.h:368