#include "avif/internal.h"
#include <assert.h>
#include <inttypes.h>
#include <limits.h>
#include <stdio.h>
#include <string.h>
#define AUXTYPE_SIZE 64
#define CONTENTTYPE_SIZE 64
static const size_t VISUALSAMPLEENTRY_SIZE = 78;
static const char xmpContentType[] = AVIF_CONTENT_TYPE_XMP;
static const size_t xmpContentTypeSize = sizeof(xmpContentType);
#define MAX_IPMA_VERSION_AND_FLAGS_SEEN 4
static avifCodecType avifGetCodecType(const uint8_t * fourcc)
{
if (!memcmp(fourcc, "av01", 4)) {
return AVIF_CODEC_TYPE_AV1;
}
#if defined(AVIF_CODEC_AVM)
if (!memcmp(fourcc, "av02", 4)) {
return AVIF_CODEC_TYPE_AV2;
}
#endif
return AVIF_CODEC_TYPE_UNKNOWN;
}
static const char * avifGetConfigurationPropertyName(avifCodecType codecType)
{
switch (codecType) {
case AVIF_CODEC_TYPE_AV1:
return "av1C";
#if defined(AVIF_CODEC_AVM)
case AVIF_CODEC_TYPE_AV2:
return "av2C";
#endif
default:
assert(AVIF_FALSE);
return NULL;
}
}
typedef struct avifFileType
{
uint8_t majorBrand[4];
uint32_t minorVersion;
const uint8_t * compatibleBrands;
int compatibleBrandsCount;
} avifFileType;
typedef struct avifImageSpatialExtents
{
uint32_t width;
uint32_t height;
} avifImageSpatialExtents;
typedef struct avifAuxiliaryType
{
char auxType[AUXTYPE_SIZE];
} avifAuxiliaryType;
typedef struct avifContentType
{
char contentType[CONTENTTYPE_SIZE];
} avifContentType;
typedef struct avifColourInformationBox
{
avifBool hasICC;
uint64_t iccOffset;
size_t iccSize;
avifBool hasNCLX;
avifColorPrimaries colorPrimaries;
avifTransferCharacteristics transferCharacteristics;
avifMatrixCoefficients matrixCoefficients;
avifRange range;
} avifColourInformationBox;
#define MAX_PIXI_PLANE_DEPTHS 4
typedef struct avifPixelInformationProperty
{
uint8_t planeDepths[MAX_PIXI_PLANE_DEPTHS];
uint8_t planeCount;
} avifPixelInformationProperty;
typedef struct avifOperatingPointSelectorProperty
{
uint8_t opIndex;
} avifOperatingPointSelectorProperty;
typedef struct avifLayerSelectorProperty
{
uint16_t layerID;
} avifLayerSelectorProperty;
typedef struct avifAV1LayeredImageIndexingProperty
{
uint32_t layerSize[3];
} avifAV1LayeredImageIndexingProperty;
struct avifMeta;
typedef struct avifProperty
{
uint8_t type[4];
union
{
avifImageSpatialExtents ispe;
avifAuxiliaryType auxC;
avifColourInformationBox colr;
avifCodecConfigurationBox av1C; avifPixelAspectRatioBox pasp;
avifCleanApertureBox clap;
avifImageRotation irot;
avifImageMirror imir;
avifPixelInformationProperty pixi;
avifOperatingPointSelectorProperty a1op;
avifLayerSelectorProperty lsel;
avifAV1LayeredImageIndexingProperty a1lx;
avifContentLightLevelInformationBox clli;
} u;
} avifProperty;
AVIF_ARRAY_DECLARE(avifPropertyArray, avifProperty, prop);
static const avifProperty * avifPropertyArrayFind(const avifPropertyArray * properties, const char * type)
{
for (uint32_t propertyIndex = 0; propertyIndex < properties->count; ++propertyIndex) {
avifProperty * prop = &properties->prop[propertyIndex];
if (!memcmp(prop->type, type, 4)) {
return prop;
}
}
return NULL;
}
AVIF_ARRAY_DECLARE(avifExtentArray, avifExtent, extent);
typedef struct avifDecoderItem
{
uint32_t id;
struct avifMeta * meta; uint8_t type[4];
size_t size;
avifBool idatStored; uint32_t width; uint32_t height; avifContentType contentType;
avifPropertyArray properties;
avifExtentArray extents; avifRWData mergedExtents; avifBool ownsMergedExtents; avifBool partialMergedExtents; uint32_t thumbnailForID; uint32_t auxForID; uint32_t descForID; uint32_t dimgForID; uint32_t premByID; avifBool hasUnsupportedEssentialProperty; avifBool ipmaSeen; avifBool progressive; } avifDecoderItem;
AVIF_ARRAY_DECLARE(avifDecoderItemArray, avifDecoderItem *, item);
typedef struct avifImageGrid
{
uint32_t rows; uint32_t columns; uint32_t outputWidth;
uint32_t outputHeight;
} avifImageGrid;
typedef struct avifSampleTableChunk
{
uint64_t offset;
} avifSampleTableChunk;
AVIF_ARRAY_DECLARE(avifSampleTableChunkArray, avifSampleTableChunk, chunk);
typedef struct avifSampleTableSampleToChunk
{
uint32_t firstChunk;
uint32_t samplesPerChunk;
uint32_t sampleDescriptionIndex;
} avifSampleTableSampleToChunk;
AVIF_ARRAY_DECLARE(avifSampleTableSampleToChunkArray, avifSampleTableSampleToChunk, sampleToChunk);
typedef struct avifSampleTableSampleSize
{
uint32_t size;
} avifSampleTableSampleSize;
AVIF_ARRAY_DECLARE(avifSampleTableSampleSizeArray, avifSampleTableSampleSize, sampleSize);
typedef struct avifSampleTableTimeToSample
{
uint32_t sampleCount;
uint32_t sampleDelta;
} avifSampleTableTimeToSample;
AVIF_ARRAY_DECLARE(avifSampleTableTimeToSampleArray, avifSampleTableTimeToSample, timeToSample);
typedef struct avifSyncSample
{
uint32_t sampleNumber;
} avifSyncSample;
AVIF_ARRAY_DECLARE(avifSyncSampleArray, avifSyncSample, syncSample);
typedef struct avifSampleDescription
{
uint8_t format[4];
avifPropertyArray properties;
} avifSampleDescription;
AVIF_ARRAY_DECLARE(avifSampleDescriptionArray, avifSampleDescription, description);
typedef struct avifSampleTable
{
avifSampleTableChunkArray chunks;
avifSampleDescriptionArray sampleDescriptions;
avifSampleTableSampleToChunkArray sampleToChunks;
avifSampleTableSampleSizeArray sampleSizes;
avifSampleTableTimeToSampleArray timeToSamples;
avifSyncSampleArray syncSamples;
uint32_t allSamplesSize; } avifSampleTable;
static void avifSampleTableDestroy(avifSampleTable * sampleTable);
static avifSampleTable * avifSampleTableCreate()
{
avifSampleTable * sampleTable = (avifSampleTable *)avifAlloc(sizeof(avifSampleTable));
memset(sampleTable, 0, sizeof(avifSampleTable));
if (!avifArrayCreate(&sampleTable->chunks, sizeof(avifSampleTableChunk), 16)) {
goto error;
}
if (!avifArrayCreate(&sampleTable->sampleDescriptions, sizeof(avifSampleDescription), 2)) {
goto error;
}
if (!avifArrayCreate(&sampleTable->sampleToChunks, sizeof(avifSampleTableSampleToChunk), 16)) {
goto error;
}
if (!avifArrayCreate(&sampleTable->sampleSizes, sizeof(avifSampleTableSampleSize), 16)) {
goto error;
}
if (!avifArrayCreate(&sampleTable->timeToSamples, sizeof(avifSampleTableTimeToSample), 16)) {
goto error;
}
if (!avifArrayCreate(&sampleTable->syncSamples, sizeof(avifSyncSample), 16)) {
goto error;
}
return sampleTable;
error:
avifSampleTableDestroy(sampleTable);
return NULL;
}
static void avifSampleTableDestroy(avifSampleTable * sampleTable)
{
avifArrayDestroy(&sampleTable->chunks);
for (uint32_t i = 0; i < sampleTable->sampleDescriptions.count; ++i) {
avifSampleDescription * description = &sampleTable->sampleDescriptions.description[i];
avifArrayDestroy(&description->properties);
}
avifArrayDestroy(&sampleTable->sampleDescriptions);
avifArrayDestroy(&sampleTable->sampleToChunks);
avifArrayDestroy(&sampleTable->sampleSizes);
avifArrayDestroy(&sampleTable->timeToSamples);
avifArrayDestroy(&sampleTable->syncSamples);
avifFree(sampleTable);
}
static uint32_t avifSampleTableGetImageDelta(const avifSampleTable * sampleTable, int imageIndex)
{
int maxSampleIndex = 0;
for (uint32_t i = 0; i < sampleTable->timeToSamples.count; ++i) {
const avifSampleTableTimeToSample * timeToSample = &sampleTable->timeToSamples.timeToSample[i];
maxSampleIndex += timeToSample->sampleCount;
if ((imageIndex < maxSampleIndex) || (i == (sampleTable->timeToSamples.count - 1))) {
return timeToSample->sampleDelta;
}
}
return 1;
}
static avifCodecType avifSampleTableGetCodecType(const avifSampleTable * sampleTable)
{
for (uint32_t i = 0; i < sampleTable->sampleDescriptions.count; ++i) {
const avifCodecType codecType = avifGetCodecType(sampleTable->sampleDescriptions.description[i].format);
if (codecType != AVIF_CODEC_TYPE_UNKNOWN) {
return codecType;
}
}
return AVIF_CODEC_TYPE_UNKNOWN;
}
static uint32_t avifCodecConfigurationBoxGetDepth(const avifCodecConfigurationBox * av1C)
{
if (av1C->twelveBit) {
return 12;
} else if (av1C->highBitdepth) {
return 10;
}
return 8;
}
static avifPixelFormat avifCodecConfigurationBoxGetFormat(const avifCodecConfigurationBox * av1C)
{
if (av1C->monochrome) {
return AVIF_PIXEL_FORMAT_YUV400;
} else if (av1C->chromaSubsamplingY == 1) {
return AVIF_PIXEL_FORMAT_YUV420;
} else if (av1C->chromaSubsamplingX == 1) {
return AVIF_PIXEL_FORMAT_YUV422;
}
return AVIF_PIXEL_FORMAT_YUV444;
}
static const avifPropertyArray * avifSampleTableGetProperties(const avifSampleTable * sampleTable, avifCodecType codecType)
{
for (uint32_t i = 0; i < sampleTable->sampleDescriptions.count; ++i) {
const avifSampleDescription * description = &sampleTable->sampleDescriptions.description[i];
if (avifGetCodecType(description->format) == codecType) {
return &description->properties;
}
}
return NULL;
}
typedef struct avifTrack
{
uint32_t id;
uint32_t auxForID; uint32_t premByID; uint32_t mediaTimescale;
uint64_t mediaDuration;
uint64_t trackDuration;
uint64_t segmentDuration;
avifBool isRepeating;
int repetitionCount;
uint32_t width;
uint32_t height;
avifSampleTable * sampleTable;
struct avifMeta * meta;
} avifTrack;
AVIF_ARRAY_DECLARE(avifTrackArray, avifTrack, track);
avifCodecDecodeInput * avifCodecDecodeInputCreate(void)
{
avifCodecDecodeInput * decodeInput = (avifCodecDecodeInput *)avifAlloc(sizeof(avifCodecDecodeInput));
memset(decodeInput, 0, sizeof(avifCodecDecodeInput));
if (!avifArrayCreate(&decodeInput->samples, sizeof(avifDecodeSample), 1)) {
goto error;
}
return decodeInput;
error:
avifFree(decodeInput);
return NULL;
}
void avifCodecDecodeInputDestroy(avifCodecDecodeInput * decodeInput)
{
for (uint32_t sampleIndex = 0; sampleIndex < decodeInput->samples.count; ++sampleIndex) {
avifDecodeSample * sample = &decodeInput->samples.sample[sampleIndex];
if (sample->ownsData) {
avifRWDataFree((avifRWData *)&sample->data);
}
}
avifArrayDestroy(&decodeInput->samples);
avifFree(decodeInput);
}
static uint32_t avifGetSampleCountOfChunk(const avifSampleTableSampleToChunkArray * sampleToChunks, uint32_t chunkIndex)
{
uint32_t sampleCount = 0;
for (int sampleToChunkIndex = sampleToChunks->count - 1; sampleToChunkIndex >= 0; --sampleToChunkIndex) {
const avifSampleTableSampleToChunk * sampleToChunk = &sampleToChunks->sampleToChunk[sampleToChunkIndex];
if (sampleToChunk->firstChunk <= (chunkIndex + 1)) {
sampleCount = sampleToChunk->samplesPerChunk;
break;
}
}
return sampleCount;
}
static avifBool avifCodecDecodeInputFillFromSampleTable(avifCodecDecodeInput * decodeInput,
avifSampleTable * sampleTable,
const uint32_t imageCountLimit,
const uint64_t sizeHint,
avifDiagnostics * diag)
{
if (imageCountLimit) {
uint32_t imageCountLeft = imageCountLimit;
for (uint32_t chunkIndex = 0; chunkIndex < sampleTable->chunks.count; ++chunkIndex) {
uint32_t sampleCount = avifGetSampleCountOfChunk(&sampleTable->sampleToChunks, chunkIndex);
if (sampleCount == 0) {
avifDiagnosticsPrintf(diag, "Sample table contains a chunk with 0 samples");
return AVIF_FALSE;
}
if (sampleCount > imageCountLeft) {
avifDiagnosticsPrintf(diag, "Exceeded avifDecoder's imageCountLimit");
return AVIF_FALSE;
}
imageCountLeft -= sampleCount;
}
}
uint32_t sampleSizeIndex = 0;
for (uint32_t chunkIndex = 0; chunkIndex < sampleTable->chunks.count; ++chunkIndex) {
avifSampleTableChunk * chunk = &sampleTable->chunks.chunk[chunkIndex];
uint32_t sampleCount = avifGetSampleCountOfChunk(&sampleTable->sampleToChunks, chunkIndex);
if (sampleCount == 0) {
avifDiagnosticsPrintf(diag, "Sample table contains a chunk with 0 samples");
return AVIF_FALSE;
}
uint64_t sampleOffset = chunk->offset;
for (uint32_t sampleIndex = 0; sampleIndex < sampleCount; ++sampleIndex) {
uint32_t sampleSize = sampleTable->allSamplesSize;
if (sampleSize == 0) {
if (sampleSizeIndex >= sampleTable->sampleSizes.count) {
avifDiagnosticsPrintf(diag, "Truncated sample table");
return AVIF_FALSE;
}
avifSampleTableSampleSize * sampleSizePtr = &sampleTable->sampleSizes.sampleSize[sampleSizeIndex];
sampleSize = sampleSizePtr->size;
}
avifDecodeSample * sample = (avifDecodeSample *)avifArrayPushPtr(&decodeInput->samples);
sample->offset = sampleOffset;
sample->size = sampleSize;
sample->spatialID = AVIF_SPATIAL_ID_UNSET; sample->sync = AVIF_FALSE;
if (sampleSize > UINT64_MAX - sampleOffset) {
avifDiagnosticsPrintf(diag,
"Sample table contains an offset/size pair which overflows: [%" PRIu64 " / %u]",
sampleOffset,
sampleSize);
return AVIF_FALSE;
}
if (sizeHint && ((sampleOffset + sampleSize) > sizeHint)) {
avifDiagnosticsPrintf(diag, "Exceeded avifIO's sizeHint, possibly truncated data");
return AVIF_FALSE;
}
sampleOffset += sampleSize;
++sampleSizeIndex;
}
}
for (uint32_t syncSampleIndex = 0; syncSampleIndex < sampleTable->syncSamples.count; ++syncSampleIndex) {
uint32_t frameIndex = sampleTable->syncSamples.syncSample[syncSampleIndex].sampleNumber - 1; if (frameIndex < decodeInput->samples.count) {
decodeInput->samples.sample[frameIndex].sync = AVIF_TRUE;
}
}
if (decodeInput->samples.count > 0) {
decodeInput->samples.sample[0].sync = AVIF_TRUE;
}
return AVIF_TRUE;
}
static avifBool avifCodecDecodeInputFillFromDecoderItem(avifCodecDecodeInput * decodeInput,
avifDecoderItem * item,
avifBool allowProgressive,
const uint32_t imageCountLimit,
const uint64_t sizeHint,
avifDiagnostics * diag)
{
if (sizeHint && (item->size > sizeHint)) {
avifDiagnosticsPrintf(diag, "Exceeded avifIO's sizeHint, possibly truncated data");
return AVIF_FALSE;
}
uint8_t layerCount = 0;
size_t layerSizes[4] = { 0 };
const avifProperty * a1lxProp = avifPropertyArrayFind(&item->properties, "a1lx");
if (a1lxProp) {
size_t remainingSize = item->size;
for (int i = 0; i < 3; ++i) {
++layerCount;
const size_t layerSize = (size_t)a1lxProp->u.a1lx.layerSize[i];
if (layerSize) {
if (layerSize >= remainingSize) { avifDiagnosticsPrintf(diag, "a1lx layer index [%d] does not fit in item size", i);
return AVIF_FALSE;
}
layerSizes[i] = layerSize;
remainingSize -= layerSize;
} else {
layerSizes[i] = remainingSize;
remainingSize = 0;
break;
}
}
if (remainingSize > 0) {
assert(layerCount == 3);
++layerCount;
layerSizes[3] = remainingSize;
}
}
const avifProperty * lselProp = avifPropertyArrayFind(&item->properties, "lsel");
item->progressive = (a1lxProp && (!lselProp || (lselProp->u.lsel.layerID == 0xFFFF)));
if (lselProp && (lselProp->u.lsel.layerID != 0xFFFF)) {
decodeInput->allLayers = AVIF_TRUE;
size_t sampleSize = 0;
if (layerCount > 0) {
if (lselProp->u.lsel.layerID >= layerCount) {
avifDiagnosticsPrintf(diag,
"lsel property requests layer index [%u] which isn't present in a1lx property ([%u] layers)",
lselProp->u.lsel.layerID,
layerCount);
return AVIF_FALSE;
}
for (uint8_t i = 0; i <= lselProp->u.lsel.layerID; ++i) {
sampleSize += layerSizes[i];
}
} else {
sampleSize = item->size;
}
avifDecodeSample * sample = (avifDecodeSample *)avifArrayPushPtr(&decodeInput->samples);
sample->itemID = item->id;
sample->offset = 0;
sample->size = sampleSize;
assert(lselProp->u.lsel.layerID < AVIF_MAX_AV1_LAYER_COUNT);
sample->spatialID = (uint8_t)lselProp->u.lsel.layerID;
sample->sync = AVIF_TRUE;
} else if (allowProgressive && item->progressive) {
if (imageCountLimit && (layerCount > imageCountLimit)) {
avifDiagnosticsPrintf(diag, "Exceeded avifDecoder's imageCountLimit (progressive)");
return AVIF_FALSE;
}
decodeInput->allLayers = AVIF_TRUE;
size_t offset = 0;
for (int i = 0; i < layerCount; ++i) {
avifDecodeSample * sample = (avifDecodeSample *)avifArrayPushPtr(&decodeInput->samples);
sample->itemID = item->id;
sample->offset = offset;
sample->size = layerSizes[i];
sample->spatialID = AVIF_SPATIAL_ID_UNSET;
sample->sync = (i == 0);
offset += layerSizes[i];
}
} else {
avifDecodeSample * sample = (avifDecodeSample *)avifArrayPushPtr(&decodeInput->samples);
sample->itemID = item->id;
sample->offset = 0;
sample->size = item->size;
sample->spatialID = AVIF_SPATIAL_ID_UNSET;
sample->sync = AVIF_TRUE;
}
return AVIF_TRUE;
}
#define BEGIN_STREAM(VARNAME, PTR, SIZE, DIAG, CONTEXT) \
avifROStream VARNAME; \
avifROData VARNAME##_roData; \
VARNAME##_roData.data = PTR; \
VARNAME##_roData.size = SIZE; \
avifROStreamStart(&VARNAME, &VARNAME##_roData, DIAG, CONTEXT)
static avifBool uniqueBoxSeen(uint32_t * uniqueBoxFlags, uint32_t whichFlag, const char * parentBoxType, const char * boxType, avifDiagnostics * diagnostics)
{
const uint32_t flag = 1 << whichFlag;
if (*uniqueBoxFlags & flag) {
avifDiagnosticsPrintf(diagnostics, "Box[%s] contains a duplicate unique box of type '%s'", parentBoxType, boxType);
return AVIF_FALSE;
}
*uniqueBoxFlags |= flag;
return AVIF_TRUE;
}
typedef struct avifTile
{
avifCodecDecodeInput * input;
avifCodecType codecType;
struct avifCodec * codec;
avifImage * image;
uint32_t width; uint32_t height; uint8_t operatingPoint;
} avifTile;
AVIF_ARRAY_DECLARE(avifTileArray, avifTile, tile);
typedef struct avifMeta
{
avifDecoderItemArray items;
avifPropertyArray properties;
avifRWData idat;
uint32_t idatID;
uint32_t primaryItemID;
} avifMeta;
static void avifMetaDestroy(avifMeta * meta);
static avifMeta * avifMetaCreate()
{
avifMeta * meta = (avifMeta *)avifAlloc(sizeof(avifMeta));
memset(meta, 0, sizeof(avifMeta));
if (!avifArrayCreate(&meta->items, sizeof(avifDecoderItem *), 8)) {
goto error;
}
if (!avifArrayCreate(&meta->properties, sizeof(avifProperty), 16)) {
goto error;
}
return meta;
error:
avifMetaDestroy(meta);
return NULL;
}
static void avifMetaDestroy(avifMeta * meta)
{
for (uint32_t i = 0; i < meta->items.count; ++i) {
avifDecoderItem * item = meta->items.item[i];
avifArrayDestroy(&item->properties);
avifArrayDestroy(&item->extents);
if (item->ownsMergedExtents) {
avifRWDataFree(&item->mergedExtents);
}
avifFree(item);
}
avifArrayDestroy(&meta->items);
avifArrayDestroy(&meta->properties);
avifRWDataFree(&meta->idat);
avifFree(meta);
}
static avifDecoderItem * avifMetaFindItem(avifMeta * meta, uint32_t itemID)
{
if (itemID == 0) {
return NULL;
}
for (uint32_t i = 0; i < meta->items.count; ++i) {
if (meta->items.item[i]->id == itemID) {
return meta->items.item[i];
}
}
avifDecoderItem * item = (avifDecoderItem *)avifAlloc(sizeof(avifDecoderItem));
memset(item, 0, sizeof(avifDecoderItem));
if (!avifArrayCreate(&item->properties, sizeof(avifProperty), 16)) {
goto error;
}
if (!avifArrayCreate(&item->extents, sizeof(avifExtent), 1)) {
goto error;
}
item->id = itemID;
item->meta = meta;
avifDecoderItem ** itemPtr = (avifDecoderItem **)avifArrayPushPtr(&meta->items);
*itemPtr = item;
return item;
error:
avifArrayDestroy(&item->extents);
avifArrayDestroy(&item->properties);
avifFree(item);
return NULL;
}
typedef struct avifTileInfo
{
unsigned int tileCount;
unsigned int decodedTileCount;
unsigned int firstTileIndex; avifImageGrid grid;
} avifTileInfo;
typedef struct avifDecoderData
{
avifMeta * meta; avifTrackArray tracks;
avifTileArray tiles;
avifTileInfo color;
avifTileInfo alpha;
avifDecoderSource source;
avifCodec * codec;
avifCodec * codecAlpha;
uint8_t majorBrand[4]; avifDiagnostics * diag; const avifSampleTable * sourceSampleTable; avifBool cicpSet; } avifDecoderData;
static void avifDecoderDataDestroy(avifDecoderData * data);
static avifDecoderData * avifDecoderDataCreate()
{
avifDecoderData * data = (avifDecoderData *)avifAlloc(sizeof(avifDecoderData));
memset(data, 0, sizeof(avifDecoderData));
data->meta = avifMetaCreate();
if (!avifArrayCreate(&data->tracks, sizeof(avifTrack), 2)) {
goto error;
}
if (!avifArrayCreate(&data->tiles, sizeof(avifTile), 8)) {
goto error;
}
return data;
error:
avifDecoderDataDestroy(data);
return NULL;
}
static void avifDecoderDataResetCodec(avifDecoderData * data)
{
for (unsigned int i = 0; i < data->tiles.count; ++i) {
avifTile * tile = &data->tiles.tile[i];
if (tile->image) {
avifImageFreePlanes(tile->image, AVIF_PLANES_ALL); }
if (tile->codec) {
if (tile->codec != data->codec && tile->codec != data->codecAlpha) {
avifCodecDestroy(tile->codec);
}
tile->codec = NULL;
}
}
data->color.decodedTileCount = 0;
data->alpha.decodedTileCount = 0;
if (data->codec) {
avifCodecDestroy(data->codec);
data->codec = NULL;
}
if (data->codecAlpha) {
avifCodecDestroy(data->codecAlpha);
data->codecAlpha = NULL;
}
}
static avifTile * avifDecoderDataCreateTile(avifDecoderData * data, avifCodecType codecType, uint32_t width, uint32_t height, uint8_t operatingPoint)
{
avifTile * tile = (avifTile *)avifArrayPushPtr(&data->tiles);
tile->codecType = codecType;
tile->image = avifImageCreateEmpty();
if (!tile->image) {
goto error;
}
tile->input = avifCodecDecodeInputCreate();
if (!tile->input) {
goto error;
}
tile->width = width;
tile->height = height;
tile->operatingPoint = operatingPoint;
return tile;
error:
if (tile->input) {
avifCodecDecodeInputDestroy(tile->input);
}
if (tile->image) {
avifImageDestroy(tile->image);
}
avifArrayPop(&data->tiles);
return NULL;
}
static avifTrack * avifDecoderDataCreateTrack(avifDecoderData * data)
{
avifTrack * track = (avifTrack *)avifArrayPushPtr(&data->tracks);
track->meta = avifMetaCreate();
return track;
}
static void avifDecoderDataClearTiles(avifDecoderData * data)
{
for (unsigned int i = 0; i < data->tiles.count; ++i) {
avifTile * tile = &data->tiles.tile[i];
if (tile->input) {
avifCodecDecodeInputDestroy(tile->input);
tile->input = NULL;
}
if (tile->codec) {
if (tile->codec != data->codec && tile->codec != data->codecAlpha) {
avifCodecDestroy(tile->codec);
}
tile->codec = NULL;
}
if (tile->image) {
avifImageDestroy(tile->image);
tile->image = NULL;
}
}
data->tiles.count = 0;
data->color.tileCount = 0;
data->color.decodedTileCount = 0;
data->alpha.tileCount = 0;
data->alpha.decodedTileCount = 0;
if (data->codec) {
avifCodecDestroy(data->codec);
data->codec = NULL;
}
if (data->codecAlpha) {
avifCodecDestroy(data->codecAlpha);
data->codecAlpha = NULL;
}
}
static void avifDecoderDataDestroy(avifDecoderData * data)
{
avifMetaDestroy(data->meta);
for (uint32_t i = 0; i < data->tracks.count; ++i) {
avifTrack * track = &data->tracks.track[i];
if (track->sampleTable) {
avifSampleTableDestroy(track->sampleTable);
}
if (track->meta) {
avifMetaDestroy(track->meta);
}
}
avifArrayDestroy(&data->tracks);
avifDecoderDataClearTiles(data);
avifArrayDestroy(&data->tiles);
avifFree(data);
}
static avifResult avifDecoderItemMaxExtent(const avifDecoderItem * item, const avifDecodeSample * sample, avifExtent * outExtent)
{
if (item->extents.count == 0) {
return AVIF_RESULT_TRUNCATED_DATA;
}
if (item->idatStored) {
if (item->meta->idat.size > 0) {
memset(outExtent, 0, sizeof(avifExtent));
return AVIF_RESULT_OK;
}
return AVIF_RESULT_NO_CONTENT;
}
if (sample->size == 0) {
return AVIF_RESULT_TRUNCATED_DATA;
}
uint64_t remainingOffset = sample->offset;
size_t remainingBytes = sample->size;
assert(item->extents.count != 0);
uint64_t minOffset = UINT64_MAX;
uint64_t maxOffset = 0;
for (uint32_t extentIter = 0; extentIter < item->extents.count; ++extentIter) {
avifExtent * extent = &item->extents.extent[extentIter];
uint64_t startOffset = extent->offset;
size_t extentSize = extent->size;
if (remainingOffset) {
if (remainingOffset >= extentSize) {
remainingOffset -= extentSize;
continue;
} else {
if (remainingOffset > UINT64_MAX - startOffset) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
startOffset += remainingOffset;
extentSize -= (size_t)remainingOffset;
remainingOffset = 0;
}
}
const size_t usedExtentSize = (extentSize < remainingBytes) ? extentSize : remainingBytes;
if (usedExtentSize > UINT64_MAX - startOffset) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
const uint64_t endOffset = startOffset + usedExtentSize;
if (minOffset > startOffset) {
minOffset = startOffset;
}
if (maxOffset < endOffset) {
maxOffset = endOffset;
}
remainingBytes -= usedExtentSize;
if (remainingBytes == 0) {
break;
}
}
if (remainingBytes != 0) {
return AVIF_RESULT_TRUNCATED_DATA;
}
outExtent->offset = minOffset;
const uint64_t extentLength = maxOffset - minOffset;
if (extentLength > SIZE_MAX) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
outExtent->size = (size_t)extentLength;
return AVIF_RESULT_OK;
}
static uint8_t avifDecoderItemOperatingPoint(const avifDecoderItem * item)
{
const avifProperty * a1opProp = avifPropertyArrayFind(&item->properties, "a1op");
if (a1opProp) {
return a1opProp->u.a1op.opIndex;
}
return 0; }
static avifResult avifDecoderItemValidateProperties(const avifDecoderItem * item,
const char * configPropName,
avifDiagnostics * diag,
const avifStrictFlags strictFlags)
{
const avifProperty * configProp = avifPropertyArrayFind(&item->properties, configPropName);
if (!configProp) {
avifDiagnosticsPrintf(diag, "Item ID %u of type '%.4s' is missing mandatory %s property", item->id, (const char *)item->type, configPropName);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
if (!memcmp(item->type, "grid", 4)) {
for (uint32_t i = 0; i < item->meta->items.count; ++i) {
avifDecoderItem * tile = item->meta->items.item[i];
if (tile->dimgForID != item->id) {
continue;
}
const avifProperty * tileConfigProp = avifPropertyArrayFind(&tile->properties, configPropName);
if (!tileConfigProp) {
avifDiagnosticsPrintf(diag,
"Tile item ID %u of type '%.4s' is missing mandatory %s property",
tile->id,
(const char *)tile->type,
configPropName);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
if ((tileConfigProp->u.av1C.seqProfile != configProp->u.av1C.seqProfile) ||
(tileConfigProp->u.av1C.seqLevelIdx0 != configProp->u.av1C.seqLevelIdx0) ||
(tileConfigProp->u.av1C.seqTier0 != configProp->u.av1C.seqTier0) ||
(tileConfigProp->u.av1C.highBitdepth != configProp->u.av1C.highBitdepth) ||
(tileConfigProp->u.av1C.twelveBit != configProp->u.av1C.twelveBit) ||
(tileConfigProp->u.av1C.monochrome != configProp->u.av1C.monochrome) ||
(tileConfigProp->u.av1C.chromaSubsamplingX != configProp->u.av1C.chromaSubsamplingX) ||
(tileConfigProp->u.av1C.chromaSubsamplingY != configProp->u.av1C.chromaSubsamplingY) ||
(tileConfigProp->u.av1C.chromaSamplePosition != configProp->u.av1C.chromaSamplePosition)) {
avifDiagnosticsPrintf(diag,
"The fields of the %s property of tile item ID %u of type '%.4s' differs from other tiles",
configPropName,
tile->id,
(const char *)tile->type);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
}
}
const avifProperty * pixiProp = avifPropertyArrayFind(&item->properties, "pixi");
if (!pixiProp && (strictFlags & AVIF_STRICT_PIXI_REQUIRED)) {
avifDiagnosticsPrintf(diag,
"[Strict] Item ID %u of type '%.4s' is missing mandatory pixi property",
item->id,
(const char *)item->type);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
if (pixiProp) {
const uint32_t configDepth = avifCodecConfigurationBoxGetDepth(&configProp->u.av1C);
for (uint8_t i = 0; i < pixiProp->u.pixi.planeCount; ++i) {
if (pixiProp->u.pixi.planeDepths[i] != configDepth) {
avifDiagnosticsPrintf(diag,
"Item ID %u depth specified by pixi property [%u] does not match %s property depth [%u]",
item->id,
pixiProp->u.pixi.planeDepths[i],
configPropName,
configDepth);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
}
}
if (strictFlags & AVIF_STRICT_CLAP_VALID) {
const avifProperty * clapProp = avifPropertyArrayFind(&item->properties, "clap");
if (clapProp) {
const avifProperty * ispeProp = avifPropertyArrayFind(&item->properties, "ispe");
if (!ispeProp) {
avifDiagnosticsPrintf(diag,
"[Strict] Item ID %u is missing an ispe property, so its clap property cannot be validated",
item->id);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
avifCropRect cropRect;
const uint32_t imageW = ispeProp->u.ispe.width;
const uint32_t imageH = ispeProp->u.ispe.height;
const avifPixelFormat configFormat = avifCodecConfigurationBoxGetFormat(&configProp->u.av1C);
avifBool validClap = avifCropRectConvertCleanApertureBox(&cropRect, &clapProp->u.clap, imageW, imageH, configFormat, diag);
if (!validClap) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
}
}
return AVIF_RESULT_OK;
}
static avifResult avifDecoderItemRead(avifDecoderItem * item,
avifIO * io,
avifROData * outData,
size_t offset,
size_t partialByteCount,
avifDiagnostics * diag)
{
if (item->mergedExtents.data && !item->partialMergedExtents) {
if (offset >= item->mergedExtents.size) {
avifDiagnosticsPrintf(diag, "Item ID %u read has overflowing offset", item->id);
return AVIF_RESULT_TRUNCATED_DATA;
}
outData->data = item->mergedExtents.data + offset;
outData->size = item->mergedExtents.size - offset;
return AVIF_RESULT_OK;
}
if (item->extents.count == 0) {
avifDiagnosticsPrintf(diag, "Item ID %u has zero extents", item->id);
return AVIF_RESULT_TRUNCATED_DATA;
}
const avifRWData * idatBuffer = NULL;
if (item->idatStored) {
if (item->meta->idat.size > 0) {
idatBuffer = &item->meta->idat;
} else {
avifDiagnosticsPrintf(diag, "Item ID %u is stored in an idat, but no associated idat box was found", item->id);
return AVIF_RESULT_NO_CONTENT;
}
}
if ((io->sizeHint > 0) && (item->size > io->sizeHint)) {
avifDiagnosticsPrintf(diag, "Item ID %u reported size failed size hint sanity check. Truncated data?", item->id);
return AVIF_RESULT_TRUNCATED_DATA;
}
if (offset >= item->size) {
avifDiagnosticsPrintf(diag, "Item ID %u read has overflowing offset", item->id);
return AVIF_RESULT_TRUNCATED_DATA;
}
const size_t maxOutputSize = item->size - offset;
const size_t readOutputSize = (partialByteCount && (partialByteCount < maxOutputSize)) ? partialByteCount : maxOutputSize;
const size_t totalBytesToRead = offset + readOutputSize;
avifBool singlePersistentBuffer = ((item->extents.count == 1) && (idatBuffer || io->persistent));
if (!singlePersistentBuffer) {
AVIF_CHECKRES(avifRWDataRealloc(&item->mergedExtents, item->size));
item->ownsMergedExtents = AVIF_TRUE;
}
item->partialMergedExtents = AVIF_TRUE;
uint8_t * front = item->mergedExtents.data;
size_t remainingBytes = totalBytesToRead;
for (uint32_t extentIter = 0; extentIter < item->extents.count; ++extentIter) {
avifExtent * extent = &item->extents.extent[extentIter];
size_t bytesToRead = extent->size;
if (bytesToRead > remainingBytes) {
bytesToRead = remainingBytes;
}
avifROData offsetBuffer;
if (idatBuffer) {
if (extent->offset > idatBuffer->size) {
avifDiagnosticsPrintf(diag, "Item ID %u has impossible extent offset in idat buffer", item->id);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
const size_t extentOffset = (size_t)extent->offset;
if (extent->size > idatBuffer->size - extentOffset) {
avifDiagnosticsPrintf(diag, "Item ID %u has impossible extent size in idat buffer", item->id);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
offsetBuffer.data = idatBuffer->data + extentOffset;
offsetBuffer.size = idatBuffer->size - extentOffset;
} else {
if ((io->sizeHint > 0) && (extent->offset > io->sizeHint)) {
avifDiagnosticsPrintf(diag, "Item ID %u extent offset failed size hint sanity check. Truncated data?", item->id);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
avifResult readResult = io->read(io, 0, extent->offset, bytesToRead, &offsetBuffer);
if (readResult != AVIF_RESULT_OK) {
return readResult;
}
if (bytesToRead != offsetBuffer.size) {
avifDiagnosticsPrintf(diag,
"Item ID %u tried to read %zu bytes, but only received %zu bytes",
item->id,
bytesToRead,
offsetBuffer.size);
return AVIF_RESULT_TRUNCATED_DATA;
}
}
if (singlePersistentBuffer) {
memcpy(&item->mergedExtents, &offsetBuffer, sizeof(avifRWData));
item->mergedExtents.size = bytesToRead;
} else {
assert(item->ownsMergedExtents);
assert(front);
memcpy(front, offsetBuffer.data, bytesToRead);
front += bytesToRead;
}
remainingBytes -= bytesToRead;
if (remainingBytes == 0) {
break;
}
}
if (remainingBytes != 0) {
avifDiagnosticsPrintf(diag, "Item ID %u has %zu unexpected trailing bytes", item->id, remainingBytes);
return AVIF_RESULT_TRUNCATED_DATA;
}
outData->data = item->mergedExtents.data + offset;
outData->size = readOutputSize;
item->partialMergedExtents = (item->size != totalBytesToRead);
return AVIF_RESULT_OK;
}
static avifCodecType avifDecoderItemGetGridCodecType(const avifDecoderItem * gridItem)
{
for (uint32_t i = 0; i < gridItem->meta->items.count; ++i) {
avifDecoderItem * item = gridItem->meta->items.item[i];
const avifCodecType tileCodecType = avifGetCodecType(item->type);
if ((item->dimgForID == gridItem->id) && (tileCodecType != AVIF_CODEC_TYPE_UNKNOWN)) {
return tileCodecType;
}
}
return AVIF_CODEC_TYPE_UNKNOWN;
}
static avifBool avifDecoderGenerateImageGridTiles(avifDecoder * decoder, avifImageGrid * grid, avifDecoderItem * gridItem, avifItemCategory itemCategory)
{
unsigned int tilesAvailable = 0;
avifDecoderItem * firstTileItem = NULL;
for (uint32_t i = 0; i < gridItem->meta->items.count; ++i) {
avifDecoderItem * item = gridItem->meta->items.item[i];
if (item->dimgForID != gridItem->id) {
continue;
}
const avifCodecType tileCodecType = avifGetCodecType(item->type);
if (tileCodecType == AVIF_CODEC_TYPE_UNKNOWN) {
avifDiagnosticsPrintf(&decoder->diag, "Tile item ID %u has an unknown item type '%.4s'", item->id, (const char *)item->type);
return AVIF_FALSE;
}
if (item->hasUnsupportedEssentialProperty) {
avifDiagnosticsPrintf(&decoder->diag, "Grid image contains tile with an unsupported property marked as essential");
return AVIF_FALSE;
}
const avifTile * tile =
avifDecoderDataCreateTile(decoder->data, tileCodecType, item->width, item->height, avifDecoderItemOperatingPoint(item));
if (!tile) {
return AVIF_FALSE;
}
if (!avifCodecDecodeInputFillFromDecoderItem(tile->input,
item,
decoder->allowProgressive,
decoder->imageCountLimit,
decoder->io->sizeHint,
&decoder->diag)) {
return AVIF_FALSE;
}
tile->input->itemCategory = itemCategory;
if (firstTileItem == NULL) {
firstTileItem = item;
const char * configPropName = memcmp(item->type, "av02", 4) ? "av1C" : "av2C";
const avifProperty * srcProp = avifPropertyArrayFind(&item->properties, configPropName);
if (!srcProp) {
avifDiagnosticsPrintf(&decoder->diag, "Grid image's first tile is missing an %s property", configPropName);
return AVIF_FALSE;
}
avifProperty * dstProp = (avifProperty *)avifArrayPushPtr(&gridItem->properties);
*dstProp = *srcProp;
if (itemCategory != AVIF_ITEM_ALPHA && item->progressive) {
decoder->progressiveState = AVIF_PROGRESSIVE_STATE_AVAILABLE;
if (tile->input->samples.count > 1) {
decoder->progressiveState = AVIF_PROGRESSIVE_STATE_ACTIVE;
decoder->imageCount = tile->input->samples.count;
}
}
} else if (memcmp(item->type, firstTileItem->type, 4)) {
avifDiagnosticsPrintf(&decoder->diag,
"Tile item ID %u of type '%.4s' differs from other tile type '%.4s'",
item->id,
(const char *)item->type,
(const char *)firstTileItem->type);
return AVIF_FALSE;
}
++tilesAvailable;
}
if (tilesAvailable != grid->rows * grid->columns) {
avifDiagnosticsPrintf(&decoder->diag,
"Grid image of dimensions %ux%u requires %u tiles, but %u were found",
grid->columns,
grid->rows,
grid->rows * grid->columns,
tilesAvailable);
return AVIF_FALSE;
}
return AVIF_TRUE;
}
static avifResult avifDecoderDataAllocateGridImagePlanes(avifDecoderData * data, const avifTileInfo * info, avifImage * dstImage)
{
const avifImageGrid * grid = &info->grid;
const avifTile * tile = &data->tiles.tile[info->firstTileIndex];
if (((tile->image->width * grid->columns) < grid->outputWidth) || ((tile->image->height * grid->rows) < grid->outputHeight)) {
avifDiagnosticsPrintf(data->diag,
"Grid image tiles do not completely cover the image (HEIF (ISO/IEC 23008-12:2017), Section 6.6.2.3.1)");
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
if (((tile->image->width * (grid->columns - 1)) >= grid->outputWidth) ||
((tile->image->height * (grid->rows - 1)) >= grid->outputHeight)) {
avifDiagnosticsPrintf(data->diag,
"Grid image tiles in the rightmost column and bottommost row do not overlap the reconstructed image grid canvas. See MIAF (ISO/IEC 23000-22:2019), Section 7.3.11.4.2, Figure 2");
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
avifBool alpha = (tile->input->itemCategory == AVIF_ITEM_ALPHA);
if (alpha) {
assert(tile->image->yuvFormat == AVIF_PIXEL_FORMAT_NONE);
}
if (!avifAreGridDimensionsValid(tile->image->yuvFormat, grid->outputWidth, grid->outputHeight, tile->image->width, tile->image->height, data->diag)) {
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
const avifBool dimsOrDepthIsDifferent = (dstImage->width != grid->outputWidth) || (dstImage->height != grid->outputHeight) ||
(dstImage->depth != tile->image->depth);
const avifBool yuvFormatIsDifferent = !alpha && (dstImage->yuvFormat != tile->image->yuvFormat);
if (dimsOrDepthIsDifferent || yuvFormatIsDifferent) {
if (alpha) {
avifDiagnosticsPrintf(data->diag, "Alpha plane dimensions do not match color plane dimensions");
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
if (dimsOrDepthIsDifferent) {
avifImageFreePlanes(dstImage, AVIF_PLANES_ALL);
dstImage->width = grid->outputWidth;
dstImage->height = grid->outputHeight;
dstImage->depth = tile->image->depth;
}
if (yuvFormatIsDifferent) {
avifImageFreePlanes(dstImage, AVIF_PLANES_YUV);
dstImage->yuvFormat = tile->image->yuvFormat;
}
if (!data->cicpSet) {
data->cicpSet = AVIF_TRUE;
dstImage->colorPrimaries = tile->image->colorPrimaries;
dstImage->transferCharacteristics = tile->image->transferCharacteristics;
dstImage->matrixCoefficients = tile->image->matrixCoefficients;
}
}
if (avifImageAllocatePlanes(dstImage, alpha ? AVIF_PLANES_A : AVIF_PLANES_YUV) != AVIF_RESULT_OK) {
avifDiagnosticsPrintf(data->diag, "Image allocation failure");
return AVIF_RESULT_OUT_OF_MEMORY;
}
return AVIF_RESULT_OK;
}
static avifBool avifDecoderDataCopyTileToImage(avifDecoderData * data,
const avifTileInfo * info,
avifImage * dstImage,
const avifTile * tile,
unsigned int tileIndex)
{
const avifImageGrid * grid = &info->grid;
const avifTile * firstTile = &data->tiles.tile[info->firstTileIndex];
if (tile != firstTile) {
if ((tile->image->width != firstTile->image->width) || (tile->image->height != firstTile->image->height) ||
(tile->image->depth != firstTile->image->depth) || (tile->image->yuvFormat != firstTile->image->yuvFormat) ||
(tile->image->yuvRange != firstTile->image->yuvRange) || (tile->image->colorPrimaries != firstTile->image->colorPrimaries) ||
(tile->image->transferCharacteristics != firstTile->image->transferCharacteristics) ||
(tile->image->matrixCoefficients != firstTile->image->matrixCoefficients)) {
avifDiagnosticsPrintf(data->diag, "Grid image contains mismatched tiles");
return AVIF_FALSE;
}
}
unsigned int rowIndex = tileIndex / info->grid.columns;
unsigned int colIndex = tileIndex % info->grid.columns;
avifImage srcView;
avifImageSetDefaults(&srcView);
avifImage dstView;
avifImageSetDefaults(&dstView);
avifCropRect dstViewRect = {
firstTile->image->width * colIndex, firstTile->image->height * rowIndex, firstTile->image->width, firstTile->image->height
};
if (dstViewRect.x + dstViewRect.width > grid->outputWidth) {
dstViewRect.width = grid->outputWidth - dstViewRect.x;
}
if (dstViewRect.y + dstViewRect.height > grid->outputHeight) {
dstViewRect.height = grid->outputHeight - dstViewRect.y;
}
const avifCropRect srcViewRect = { 0, 0, dstViewRect.width, dstViewRect.height };
if ((avifImageSetViewRect(&dstView, dstImage, &dstViewRect) != AVIF_RESULT_OK) ||
(avifImageSetViewRect(&srcView, tile->image, &srcViewRect) != AVIF_RESULT_OK)) {
assert(AVIF_FALSE);
return AVIF_FALSE;
}
avifImageCopySamples(&dstView, &srcView, (tile->input->itemCategory == AVIF_ITEM_ALPHA) ? AVIF_PLANES_A : AVIF_PLANES_YUV);
return AVIF_TRUE;
}
static avifResult avifDecoderFindMetadata(avifDecoder * decoder, avifMeta * meta, avifImage * image, uint32_t colorId)
{
if (decoder->ignoreExif && decoder->ignoreXMP) {
return AVIF_RESULT_OK;
}
for (uint32_t itemIndex = 0; itemIndex < meta->items.count; ++itemIndex) {
avifDecoderItem * item = meta->items.item[itemIndex];
if (!item->size) {
continue;
}
if (item->hasUnsupportedEssentialProperty) {
continue;
}
if ((colorId > 0) && (item->descForID != colorId)) {
continue;
}
if (!decoder->ignoreExif && !memcmp(item->type, "Exif", 4)) {
avifROData exifContents;
avifResult readResult = avifDecoderItemRead(item, decoder->io, &exifContents, 0, 0, &decoder->diag);
if (readResult != AVIF_RESULT_OK) {
return readResult;
}
BEGIN_STREAM(exifBoxStream, exifContents.data, exifContents.size, &decoder->diag, "Exif header");
uint32_t exifTiffHeaderOffset;
AVIF_CHECKERR(avifROStreamReadU32(&exifBoxStream, &exifTiffHeaderOffset),
AVIF_RESULT_BMFF_PARSE_FAILED);
AVIF_CHECKRES(avifRWDataSet(&image->exif, avifROStreamCurrent(&exifBoxStream), avifROStreamRemainingBytes(&exifBoxStream)));
} else if (!decoder->ignoreXMP && !memcmp(item->type, "mime", 4) &&
!memcmp(item->contentType.contentType, xmpContentType, xmpContentTypeSize)) {
avifROData xmpContents;
avifResult readResult = avifDecoderItemRead(item, decoder->io, &xmpContents, 0, 0, &decoder->diag);
if (readResult != AVIF_RESULT_OK) {
return readResult;
}
AVIF_CHECKRES(avifImageSetMetadataXMP(image, xmpContents.data, xmpContents.size));
}
}
return AVIF_RESULT_OK;
}
static avifBool isAlphaURN(const char * urn)
{
return !strcmp(urn, AVIF_URN_ALPHA0) || !strcmp(urn, AVIF_URN_ALPHA1);
}
static avifBool avifParseHandlerBox(const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[hdlr]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
uint32_t predefined;
AVIF_CHECK(avifROStreamReadU32(&s, &predefined)); if (predefined != 0) {
avifDiagnosticsPrintf(diag, "Box[hdlr] contains a pre_defined value that is nonzero");
return AVIF_FALSE;
}
uint8_t handlerType[4];
AVIF_CHECK(avifROStreamRead(&s, handlerType, 4)); if (memcmp(handlerType, "pict", 4) != 0) {
avifDiagnosticsPrintf(diag, "Box[hdlr] handler_type is not 'pict'");
return AVIF_FALSE;
}
for (int i = 0; i < 3; ++i) {
uint32_t reserved;
AVIF_CHECK(avifROStreamReadU32(&s, &reserved)); }
AVIF_CHECK(avifROStreamReadString(&s, NULL, 0)); return AVIF_TRUE;
}
static avifBool avifParseItemLocationBox(avifMeta * meta, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[iloc]");
uint8_t version;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, NULL));
if (version > 2) {
avifDiagnosticsPrintf(diag, "Box[iloc] has an unsupported version [%u]", version);
return AVIF_FALSE;
}
uint8_t offsetSize, lengthSize, baseOffsetSize;
AVIF_CHECK(avifROStreamReadBits8(&s, &offsetSize, 4)); AVIF_CHECK(avifROStreamReadBits8(&s, &lengthSize, 4)); AVIF_CHECK(avifROStreamReadBits8(&s, &baseOffsetSize, 4)); if (((version == 1) || (version == 2)) && (baseOffsetSize != 0)) {
avifDiagnosticsPrintf(diag, "Box[iloc] has an unsupported base_offset_size [%u]", baseOffsetSize);
return AVIF_FALSE;
}
uint32_t reserved;
AVIF_CHECK(avifROStreamReadBits(&s, &reserved, 4));
uint16_t tmp16;
uint32_t itemCount;
if (version < 2) {
AVIF_CHECK(avifROStreamReadU16(&s, &tmp16)); itemCount = tmp16;
} else {
AVIF_CHECK(avifROStreamReadU32(&s, &itemCount)); }
for (uint32_t i = 0; i < itemCount; ++i) {
uint32_t itemID;
if (version < 2) {
AVIF_CHECK(avifROStreamReadU16(&s, &tmp16)); itemID = tmp16;
} else {
AVIF_CHECK(avifROStreamReadU32(&s, &itemID)); }
avifDecoderItem * item = avifMetaFindItem(meta, itemID);
if (!item) {
avifDiagnosticsPrintf(diag, "Box[iloc] has an invalid item ID [%u]", itemID);
return AVIF_FALSE;
}
if (item->extents.count > 0) {
avifDiagnosticsPrintf(diag, "Item ID [%u] contains duplicate sets of extents", itemID);
return AVIF_FALSE;
}
if ((version == 1) || (version == 2)) {
AVIF_CHECK(avifROStreamReadBits(&s, &reserved, 12)); if (reserved) {
avifDiagnosticsPrintf(diag, "Box[iloc] has a non null reserved field [%u]", reserved);
return AVIF_FALSE;
}
uint8_t constructionMethod;
AVIF_CHECK(avifROStreamReadBits8(&s, &constructionMethod, 4)); if ((constructionMethod != 0 ) && (constructionMethod != 1 )) {
avifDiagnosticsPrintf(diag, "Box[iloc] has an unsupported construction method [%u]", constructionMethod);
return AVIF_FALSE;
}
if (constructionMethod == 1) {
item->idatStored = AVIF_TRUE;
}
}
uint16_t dataReferenceIndex; AVIF_CHECK(avifROStreamReadU16(&s, &dataReferenceIndex)); uint64_t baseOffset; AVIF_CHECK(avifROStreamReadUX8(&s, &baseOffset, baseOffsetSize)); uint16_t extentCount; AVIF_CHECK(avifROStreamReadU16(&s, &extentCount)); for (int extentIter = 0; extentIter < extentCount; ++extentIter) {
uint64_t extentOffset; AVIF_CHECK(avifROStreamReadUX8(&s, &extentOffset, offsetSize));
uint64_t extentLength; AVIF_CHECK(avifROStreamReadUX8(&s, &extentLength, lengthSize));
avifExtent * extent = (avifExtent *)avifArrayPushPtr(&item->extents);
if (extentOffset > UINT64_MAX - baseOffset) {
avifDiagnosticsPrintf(diag,
"Item ID [%u] contains an extent offset which overflows: [base: %" PRIu64 " offset:%" PRIu64 "]",
itemID,
baseOffset,
extentOffset);
return AVIF_FALSE;
}
uint64_t offset = baseOffset + extentOffset;
extent->offset = offset;
if (extentLength > SIZE_MAX) {
avifDiagnosticsPrintf(diag, "Item ID [%u] contains an extent length which overflows: [%" PRIu64 "]", itemID, extentLength);
return AVIF_FALSE;
}
extent->size = (size_t)extentLength;
if (extent->size > SIZE_MAX - item->size) {
avifDiagnosticsPrintf(diag,
"Item ID [%u] contains an extent length which overflows the item size: [%zu, %zu]",
itemID,
extent->size,
item->size);
return AVIF_FALSE;
}
item->size += extent->size;
}
}
return AVIF_TRUE;
}
static avifBool avifParseImageGridBox(avifImageGrid * grid,
const uint8_t * raw,
size_t rawLen,
uint32_t imageSizeLimit,
uint32_t imageDimensionLimit,
avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[grid]");
uint8_t version, flags;
AVIF_CHECK(avifROStreamRead(&s, &version, 1)); if (version != 0) {
avifDiagnosticsPrintf(diag, "Box[grid] has unsupported version [%u]", version);
return AVIF_FALSE;
}
uint8_t rowsMinusOne, columnsMinusOne;
AVIF_CHECK(avifROStreamRead(&s, &flags, 1)); AVIF_CHECK(avifROStreamRead(&s, &rowsMinusOne, 1)); AVIF_CHECK(avifROStreamRead(&s, &columnsMinusOne, 1)); grid->rows = (uint32_t)rowsMinusOne + 1;
grid->columns = (uint32_t)columnsMinusOne + 1;
uint32_t fieldLength = ((flags & 1) + 1) * 16;
if (fieldLength == 16) {
uint16_t outputWidth16, outputHeight16;
AVIF_CHECK(avifROStreamReadU16(&s, &outputWidth16)); AVIF_CHECK(avifROStreamReadU16(&s, &outputHeight16)); grid->outputWidth = outputWidth16;
grid->outputHeight = outputHeight16;
} else {
if (fieldLength != 32) {
avifDiagnosticsPrintf(diag, "Grid box contains illegal field length: [%u]", fieldLength);
return AVIF_FALSE;
}
AVIF_CHECK(avifROStreamReadU32(&s, &grid->outputWidth)); AVIF_CHECK(avifROStreamReadU32(&s, &grid->outputHeight)); }
if ((grid->outputWidth == 0) || (grid->outputHeight == 0)) {
avifDiagnosticsPrintf(diag, "Grid box contains illegal dimensions: [%u x %u]", grid->outputWidth, grid->outputHeight);
return AVIF_FALSE;
}
if (avifDimensionsTooLarge(grid->outputWidth, grid->outputHeight, imageSizeLimit, imageDimensionLimit)) {
avifDiagnosticsPrintf(diag, "Grid box dimensions are too large: [%u x %u]", grid->outputWidth, grid->outputHeight);
return AVIF_FALSE;
}
return avifROStreamRemainingBytes(&s) == 0;
}
static avifBool avifParseImageSpatialExtentsProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[ispe]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
avifImageSpatialExtents * ispe = &prop->u.ispe;
AVIF_CHECK(avifROStreamReadU32(&s, &ispe->width));
AVIF_CHECK(avifROStreamReadU32(&s, &ispe->height));
return AVIF_TRUE;
}
static avifBool avifParseAuxiliaryTypeProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[auxC]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
AVIF_CHECK(avifROStreamReadString(&s, prop->u.auxC.auxType, AUXTYPE_SIZE));
return AVIF_TRUE;
}
static avifBool avifParseColourInformationBox(avifProperty * prop, uint64_t rawOffset, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[colr]");
avifColourInformationBox * colr = &prop->u.colr;
colr->hasICC = AVIF_FALSE;
colr->hasNCLX = AVIF_FALSE;
uint8_t colorType[4]; AVIF_CHECK(avifROStreamRead(&s, colorType, 4));
if (!memcmp(colorType, "rICC", 4) || !memcmp(colorType, "prof", 4)) {
colr->hasICC = AVIF_TRUE;
colr->iccOffset = rawOffset + avifROStreamOffset(&s);
colr->iccSize = avifROStreamRemainingBytes(&s);
} else if (!memcmp(colorType, "nclx", 4)) {
AVIF_CHECK(avifROStreamReadU16(&s, &colr->colorPrimaries)); AVIF_CHECK(avifROStreamReadU16(&s, &colr->transferCharacteristics)); AVIF_CHECK(avifROStreamReadU16(&s, &colr->matrixCoefficients)); uint8_t full_range_flag;
AVIF_CHECK(avifROStreamReadBits8(&s, &full_range_flag, 1)); colr->range = full_range_flag ? AVIF_RANGE_FULL : AVIF_RANGE_LIMITED;
uint8_t reserved;
AVIF_CHECK(avifROStreamReadBits8(&s, &reserved, 7)); if (reserved) {
avifDiagnosticsPrintf(diag, "Box[colr] contains nonzero reserved bits [%u]", reserved);
return AVIF_FALSE;
}
colr->hasNCLX = AVIF_TRUE;
}
return AVIF_TRUE;
}
static avifBool avifParseContentLightLevelInformationBox(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[clli]");
avifContentLightLevelInformationBox * clli = &prop->u.clli;
AVIF_CHECK(avifROStreamReadU16(&s, &clli->maxCLL)); AVIF_CHECK(avifROStreamReadU16(&s, &clli->maxPALL)); return AVIF_TRUE;
}
static avifBool avifParseCodecConfiguration(avifROStream * s, avifCodecConfigurationBox * config, const char * configPropName, avifDiagnostics * diag)
{
uint32_t marker, version;
AVIF_CHECK(avifROStreamReadBits(s, &marker, 1)); if (!marker) {
avifDiagnosticsPrintf(diag, "%s contains illegal marker: [%u]", configPropName, marker);
return AVIF_FALSE;
}
AVIF_CHECK(avifROStreamReadBits(s, &version, 7)); if (version != 1) {
avifDiagnosticsPrintf(diag, "%s contains illegal version: [%u]", configPropName, version);
return AVIF_FALSE;
}
AVIF_CHECK(avifROStreamReadBits8(s, &config->seqProfile, 3)); AVIF_CHECK(avifROStreamReadBits8(s, &config->seqLevelIdx0, 5)); AVIF_CHECK(avifROStreamReadBits8(s, &config->seqTier0, 1)); AVIF_CHECK(avifROStreamReadBits8(s, &config->highBitdepth, 1)); AVIF_CHECK(avifROStreamReadBits8(s, &config->twelveBit, 1)); AVIF_CHECK(avifROStreamReadBits8(s, &config->monochrome, 1)); AVIF_CHECK(avifROStreamReadBits8(s, &config->chromaSubsamplingX, 1)); AVIF_CHECK(avifROStreamReadBits8(s, &config->chromaSubsamplingY, 1)); AVIF_CHECK(avifROStreamReadBits8(s, &config->chromaSamplePosition, 2));
AVIF_CHECK(avifROStreamSkip(s, 1));
return AVIF_TRUE;
}
static avifBool avifParseCodecConfigurationBoxProperty(avifProperty * prop,
const uint8_t * raw,
size_t rawLen,
const char * configPropName,
avifDiagnostics * diag)
{
char diagContext[10];
snprintf(diagContext, sizeof(diagContext), "Box[%.4s]", configPropName); BEGIN_STREAM(s, raw, rawLen, diag, diagContext);
return avifParseCodecConfiguration(&s, &prop->u.av1C, configPropName, diag);
}
static avifBool avifParsePixelAspectRatioBoxProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[pasp]");
avifPixelAspectRatioBox * pasp = &prop->u.pasp;
AVIF_CHECK(avifROStreamReadU32(&s, &pasp->hSpacing)); AVIF_CHECK(avifROStreamReadU32(&s, &pasp->vSpacing)); return AVIF_TRUE;
}
static avifBool avifParseCleanApertureBoxProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[clap]");
avifCleanApertureBox * clap = &prop->u.clap;
AVIF_CHECK(avifROStreamReadU32(&s, &clap->widthN)); AVIF_CHECK(avifROStreamReadU32(&s, &clap->widthD)); AVIF_CHECK(avifROStreamReadU32(&s, &clap->heightN)); AVIF_CHECK(avifROStreamReadU32(&s, &clap->heightD)); AVIF_CHECK(avifROStreamReadU32(&s, &clap->horizOffN)); AVIF_CHECK(avifROStreamReadU32(&s, &clap->horizOffD)); AVIF_CHECK(avifROStreamReadU32(&s, &clap->vertOffN)); AVIF_CHECK(avifROStreamReadU32(&s, &clap->vertOffD)); return AVIF_TRUE;
}
static avifBool avifParseImageRotationProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[irot]");
avifImageRotation * irot = &prop->u.irot;
uint8_t reserved;
AVIF_CHECK(avifROStreamReadBits8(&s, &reserved, 6)); if (reserved) {
avifDiagnosticsPrintf(diag, "Box[irot] contains nonzero reserved bits [%u]", reserved);
return AVIF_FALSE;
}
AVIF_CHECK(avifROStreamReadBits8(&s, &irot->angle, 2)); return AVIF_TRUE;
}
static avifBool avifParseImageMirrorProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[imir]");
avifImageMirror * imir = &prop->u.imir;
uint8_t reserved;
AVIF_CHECK(avifROStreamReadBits8(&s, &reserved, 7)); if (reserved) {
avifDiagnosticsPrintf(diag, "Box[imir] contains nonzero reserved bits [%u]", reserved);
return AVIF_FALSE;
}
AVIF_CHECK(avifROStreamReadBits8(&s, &imir->axis, 1)); return AVIF_TRUE;
}
static avifBool avifParsePixelInformationProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[pixi]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
avifPixelInformationProperty * pixi = &prop->u.pixi;
AVIF_CHECK(avifROStreamRead(&s, &pixi->planeCount, 1)); if (pixi->planeCount > MAX_PIXI_PLANE_DEPTHS) {
avifDiagnosticsPrintf(diag, "Box[pixi] contains unsupported plane count [%u]", pixi->planeCount);
return AVIF_FALSE;
}
for (uint8_t i = 0; i < pixi->planeCount; ++i) {
AVIF_CHECK(avifROStreamRead(&s, &pixi->planeDepths[i], 1)); }
return AVIF_TRUE;
}
static avifBool avifParseOperatingPointSelectorProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[a1op]");
avifOperatingPointSelectorProperty * a1op = &prop->u.a1op;
AVIF_CHECK(avifROStreamRead(&s, &a1op->opIndex, 1));
if (a1op->opIndex > 31) { avifDiagnosticsPrintf(diag, "Box[a1op] contains an unsupported operating point [%u]", a1op->opIndex);
return AVIF_FALSE;
}
return AVIF_TRUE;
}
static avifBool avifParseLayerSelectorProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[lsel]");
avifLayerSelectorProperty * lsel = &prop->u.lsel;
AVIF_CHECK(avifROStreamReadU16(&s, &lsel->layerID));
if ((lsel->layerID != 0xFFFF) && (lsel->layerID >= AVIF_MAX_AV1_LAYER_COUNT)) {
avifDiagnosticsPrintf(diag, "Box[lsel] contains an unsupported layer [%u]", lsel->layerID);
return AVIF_FALSE;
}
return AVIF_TRUE;
}
static avifBool avifParseAV1LayeredImageIndexingProperty(avifProperty * prop, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[a1lx]");
avifAV1LayeredImageIndexingProperty * a1lx = &prop->u.a1lx;
uint8_t largeSize = 0;
AVIF_CHECK(avifROStreamRead(&s, &largeSize, 1));
if (largeSize & 0xFE) {
avifDiagnosticsPrintf(diag, "Box[a1lx] has bits set in the reserved section [%u]", largeSize);
return AVIF_FALSE;
}
for (int i = 0; i < 3; ++i) {
if (largeSize) {
AVIF_CHECK(avifROStreamReadU32(&s, &a1lx->layerSize[i]));
} else {
uint16_t layerSize16;
AVIF_CHECK(avifROStreamReadU16(&s, &layerSize16));
a1lx->layerSize[i] = (uint32_t)layerSize16;
}
}
return AVIF_TRUE;
}
static avifBool avifParseItemPropertyContainerBox(avifPropertyArray * properties,
uint64_t rawOffset,
const uint8_t * raw,
size_t rawLen,
avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[ipco]");
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
int propertyIndex = avifArrayPushIndex(properties);
avifProperty * prop = &properties->prop[propertyIndex];
memcpy(prop->type, header.type, 4);
if (!memcmp(header.type, "ispe", 4)) {
AVIF_CHECK(avifParseImageSpatialExtentsProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "auxC", 4)) {
AVIF_CHECK(avifParseAuxiliaryTypeProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "colr", 4)) {
AVIF_CHECK(avifParseColourInformationBox(prop, rawOffset + avifROStreamOffset(&s), avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "av1C", 4)) {
AVIF_CHECK(avifParseCodecConfigurationBoxProperty(prop, avifROStreamCurrent(&s), header.size, "av1C", diag));
#if defined(AVIF_CODEC_AVM)
} else if (!memcmp(header.type, "av2C", 4)) {
AVIF_CHECK(avifParseCodecConfigurationBoxProperty(prop, avifROStreamCurrent(&s), header.size, "av2C", diag));
#endif
} else if (!memcmp(header.type, "pasp", 4)) {
AVIF_CHECK(avifParsePixelAspectRatioBoxProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "clap", 4)) {
AVIF_CHECK(avifParseCleanApertureBoxProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "irot", 4)) {
AVIF_CHECK(avifParseImageRotationProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "imir", 4)) {
AVIF_CHECK(avifParseImageMirrorProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "pixi", 4)) {
AVIF_CHECK(avifParsePixelInformationProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "a1op", 4)) {
AVIF_CHECK(avifParseOperatingPointSelectorProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "lsel", 4)) {
AVIF_CHECK(avifParseLayerSelectorProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "a1lx", 4)) {
AVIF_CHECK(avifParseAV1LayeredImageIndexingProperty(prop, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "clli", 4)) {
AVIF_CHECK(avifParseContentLightLevelInformationBox(prop, avifROStreamCurrent(&s), header.size, diag));
}
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
return AVIF_TRUE;
}
static avifBool avifParseItemPropertyAssociation(avifMeta * meta, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag, uint32_t * outVersionAndFlags)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[ipma]");
uint8_t version;
uint32_t flags;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, &flags));
avifBool propertyIndexIsU15 = ((flags & 0x1) != 0);
*outVersionAndFlags = ((uint32_t)version << 24) | flags;
uint32_t entryCount;
AVIF_CHECK(avifROStreamReadU32(&s, &entryCount));
unsigned int prevItemID = 0;
for (uint32_t entryIndex = 0; entryIndex < entryCount; ++entryIndex) {
unsigned int itemID;
if (version < 1) {
uint16_t tmp;
AVIF_CHECK(avifROStreamReadU16(&s, &tmp));
itemID = tmp;
} else {
AVIF_CHECK(avifROStreamReadU32(&s, &itemID));
}
if (itemID <= prevItemID) {
avifDiagnosticsPrintf(diag, "Box[ipma] item IDs are not ordered by increasing ID");
return AVIF_FALSE;
}
prevItemID = itemID;
avifDecoderItem * item = avifMetaFindItem(meta, itemID);
if (!item) {
avifDiagnosticsPrintf(diag, "Box[ipma] has an invalid item ID [%u]", itemID);
return AVIF_FALSE;
}
if (item->ipmaSeen) {
avifDiagnosticsPrintf(diag, "Duplicate Box[ipma] for item ID [%u]", itemID);
return AVIF_FALSE;
}
item->ipmaSeen = AVIF_TRUE;
uint8_t associationCount;
AVIF_CHECK(avifROStreamRead(&s, &associationCount, 1));
for (uint8_t associationIndex = 0; associationIndex < associationCount; ++associationIndex) {
uint8_t essential;
AVIF_CHECK(avifROStreamReadBits8(&s, &essential, 1)); uint32_t propertyIndex;
AVIF_CHECK(avifROStreamReadBits(&s, &propertyIndex, propertyIndexIsU15 ? 15 : 7));
if (propertyIndex == 0) {
continue;
}
--propertyIndex;
if (propertyIndex >= meta->properties.count) {
avifDiagnosticsPrintf(diag,
"Box[ipma] for item ID [%u] contains an illegal property index [%u] (out of [%u] properties)",
itemID,
propertyIndex,
meta->properties.count);
return AVIF_FALSE;
}
const avifProperty * srcProp = &meta->properties.prop[propertyIndex];
static const char * supportedTypes[] = {
"ispe",
"auxC",
"colr",
"av1C",
#if defined(AVIF_CODEC_AVM)
"av2C",
#endif
"pasp",
"clap",
"irot",
"imir",
"pixi",
"a1op",
"lsel",
"a1lx",
"clli"
};
size_t supportedTypesCount = sizeof(supportedTypes) / sizeof(supportedTypes[0]);
avifBool supportedType = AVIF_FALSE;
for (size_t i = 0; i < supportedTypesCount; ++i) {
if (!memcmp(srcProp->type, supportedTypes[i], 4)) {
supportedType = AVIF_TRUE;
break;
}
}
if (supportedType) {
if (essential) {
static const char * const nonessentialTypes[] = {
"a1lx"
};
size_t nonessentialTypesCount = sizeof(nonessentialTypes) / sizeof(nonessentialTypes[0]);
for (size_t i = 0; i < nonessentialTypesCount; ++i) {
if (!memcmp(srcProp->type, nonessentialTypes[i], 4)) {
avifDiagnosticsPrintf(diag,
"Item ID [%u] has a %s property association which must not be marked essential, but is",
itemID,
nonessentialTypes[i]);
return AVIF_FALSE;
}
}
} else {
static const char * const essentialTypes[] = {
"a1op",
"lsel"
};
size_t essentialTypesCount = sizeof(essentialTypes) / sizeof(essentialTypes[0]);
for (size_t i = 0; i < essentialTypesCount; ++i) {
if (!memcmp(srcProp->type, essentialTypes[i], 4)) {
avifDiagnosticsPrintf(diag,
"Item ID [%u] has a %s property association which must be marked essential, but is not",
itemID,
essentialTypes[i]);
return AVIF_FALSE;
}
}
}
avifProperty * dstProp = (avifProperty *)avifArrayPushPtr(&item->properties);
*dstProp = *srcProp;
} else {
if (essential) {
item->hasUnsupportedEssentialProperty = AVIF_TRUE;
}
}
}
}
return AVIF_TRUE;
}
static avifBool avifParsePrimaryItemBox(avifMeta * meta, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
if (meta->primaryItemID > 0) {
avifDiagnosticsPrintf(diag, "Multiple boxes of unique Box[pitm] found");
return AVIF_FALSE;
}
BEGIN_STREAM(s, raw, rawLen, diag, "Box[pitm]");
uint8_t version;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, NULL));
if (version == 0) {
uint16_t tmp16;
AVIF_CHECK(avifROStreamReadU16(&s, &tmp16)); meta->primaryItemID = tmp16;
} else {
AVIF_CHECK(avifROStreamReadU32(&s, &meta->primaryItemID)); }
return AVIF_TRUE;
}
static avifBool avifParseItemDataBox(avifMeta * meta, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
if (meta->idat.size > 0) {
avifDiagnosticsPrintf(diag, "Meta box contains multiple idat boxes");
return AVIF_FALSE;
}
if (rawLen == 0) {
avifDiagnosticsPrintf(diag, "idat box has a length of 0");
return AVIF_FALSE;
}
if (avifRWDataSet(&meta->idat, raw, rawLen) != AVIF_RESULT_OK) {
return AVIF_FALSE;
}
return AVIF_TRUE;
}
static avifBool avifParseItemPropertiesBox(avifMeta * meta, uint64_t rawOffset, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[iprp]");
avifBoxHeader ipcoHeader;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &ipcoHeader));
if (memcmp(ipcoHeader.type, "ipco", 4)) {
avifDiagnosticsPrintf(diag, "Failed to find Box[ipco] as the first box in Box[iprp]");
return AVIF_FALSE;
}
AVIF_CHECK(avifParseItemPropertyContainerBox(&meta->properties,
rawOffset + avifROStreamOffset(&s),
avifROStreamCurrent(&s),
ipcoHeader.size,
diag));
AVIF_CHECK(avifROStreamSkip(&s, ipcoHeader.size));
uint32_t versionAndFlagsSeen[MAX_IPMA_VERSION_AND_FLAGS_SEEN];
uint32_t versionAndFlagsSeenCount = 0;
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader ipmaHeader;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &ipmaHeader));
if (!memcmp(ipmaHeader.type, "ipma", 4)) {
uint32_t versionAndFlags;
AVIF_CHECK(avifParseItemPropertyAssociation(meta, avifROStreamCurrent(&s), ipmaHeader.size, diag, &versionAndFlags));
for (uint32_t i = 0; i < versionAndFlagsSeenCount; ++i) {
if (versionAndFlagsSeen[i] == versionAndFlags) {
avifDiagnosticsPrintf(diag, "Multiple Box[ipma] with a given pair of values of version and flags. See HEIF (ISO 23008-12:2017) 9.3.1");
return AVIF_FALSE;
}
}
if (versionAndFlagsSeenCount == MAX_IPMA_VERSION_AND_FLAGS_SEEN) {
avifDiagnosticsPrintf(diag, "Exceeded possible count of unique ipma version and flags tuples");
return AVIF_FALSE;
}
versionAndFlagsSeen[versionAndFlagsSeenCount] = versionAndFlags;
++versionAndFlagsSeenCount;
} else {
avifDiagnosticsPrintf(diag, "Box[iprp] contains a box that isn't type 'ipma'");
return AVIF_FALSE;
}
AVIF_CHECK(avifROStreamSkip(&s, ipmaHeader.size));
}
return AVIF_TRUE;
}
static avifBool avifParseItemInfoEntry(avifMeta * meta, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[infe]");
uint8_t version;
uint32_t flags;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, &flags));
if (version != 2 && version != 3) {
avifDiagnosticsPrintf(s.diag, "%s: Expecting box version 2 or 3, got version %u", s.diagContext, version);
return AVIF_FALSE;
}
uint32_t itemID;
if (version == 2) {
uint16_t tmp;
AVIF_CHECK(avifROStreamReadU16(&s, &tmp)); itemID = tmp;
} else {
assert(version == 3);
AVIF_CHECK(avifROStreamReadU32(&s, &itemID)); }
uint16_t itemProtectionIndex; AVIF_CHECK(avifROStreamReadU16(&s, &itemProtectionIndex)); uint8_t itemType[4]; AVIF_CHECK(avifROStreamRead(&s, itemType, 4));
avifContentType contentType;
if (!memcmp(itemType, "mime", 4)) {
AVIF_CHECK(avifROStreamReadString(&s, NULL, 0)); AVIF_CHECK(avifROStreamReadString(&s, contentType.contentType, CONTENTTYPE_SIZE)); } else {
memset(&contentType, 0, sizeof(contentType));
}
avifDecoderItem * item = avifMetaFindItem(meta, itemID);
if (!item) {
avifDiagnosticsPrintf(diag, "%s: Box[infe] with item_type %.4s has an invalid item_ID [%u]", s.diagContext, itemType, itemID);
return AVIF_FALSE;
}
memcpy(item->type, itemType, sizeof(itemType));
item->contentType = contentType;
return AVIF_TRUE;
}
static avifBool avifParseItemInfoBox(avifMeta * meta, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[iinf]");
uint8_t version;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, NULL));
uint32_t entryCount;
if (version == 0) {
uint16_t tmp;
AVIF_CHECK(avifROStreamReadU16(&s, &tmp)); entryCount = tmp;
} else if (version == 1) {
AVIF_CHECK(avifROStreamReadU32(&s, &entryCount)); } else {
avifDiagnosticsPrintf(diag, "Box[iinf] has an unsupported version %u", version);
return AVIF_FALSE;
}
for (uint32_t entryIndex = 0; entryIndex < entryCount; ++entryIndex) {
avifBoxHeader infeHeader;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &infeHeader));
if (!memcmp(infeHeader.type, "infe", 4)) {
AVIF_CHECK(avifParseItemInfoEntry(meta, avifROStreamCurrent(&s), infeHeader.size, diag));
} else {
avifDiagnosticsPrintf(diag, "Box[iinf] contains a box that isn't type 'infe'");
return AVIF_FALSE;
}
AVIF_CHECK(avifROStreamSkip(&s, infeHeader.size));
}
return AVIF_TRUE;
}
static avifBool avifParseItemReferenceBox(avifMeta * meta, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[iref]");
uint8_t version;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, NULL));
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader irefHeader;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &irefHeader));
uint32_t fromID = 0;
if (version == 0) {
uint16_t tmp;
AVIF_CHECK(avifROStreamReadU16(&s, &tmp)); fromID = tmp;
} else if (version == 1) {
AVIF_CHECK(avifROStreamReadU32(&s, &fromID)); } else {
break;
}
uint16_t referenceCount = 0;
AVIF_CHECK(avifROStreamReadU16(&s, &referenceCount));
for (uint16_t refIndex = 0; refIndex < referenceCount; ++refIndex) {
uint32_t toID = 0;
if (version == 0) {
uint16_t tmp;
AVIF_CHECK(avifROStreamReadU16(&s, &tmp)); toID = tmp;
} else if (version == 1) {
AVIF_CHECK(avifROStreamReadU32(&s, &toID)); } else {
break;
}
if (fromID && toID) {
avifDecoderItem * item = avifMetaFindItem(meta, fromID);
if (!item) {
avifDiagnosticsPrintf(diag, "Box[iref] has an invalid item ID [%u]", fromID);
return AVIF_FALSE;
}
if (!memcmp(irefHeader.type, "thmb", 4)) {
item->thumbnailForID = toID;
} else if (!memcmp(irefHeader.type, "auxl", 4)) {
item->auxForID = toID;
} else if (!memcmp(irefHeader.type, "cdsc", 4)) {
item->descForID = toID;
} else if (!memcmp(irefHeader.type, "dimg", 4)) {
avifDecoderItem * dimg = avifMetaFindItem(meta, toID);
if (!dimg) {
avifDiagnosticsPrintf(diag, "Box[iref] has an invalid item ID dimg ref [%u]", toID);
return AVIF_FALSE;
}
dimg->dimgForID = fromID;
} else if (!memcmp(irefHeader.type, "prem", 4)) {
item->premByID = toID;
}
}
}
}
return AVIF_TRUE;
}
static avifBool avifParseMetaBox(avifMeta * meta, uint64_t rawOffset, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[meta]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
++meta->idatID;
avifBool firstBox = AVIF_TRUE;
uint32_t uniqueBoxFlags = 0;
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (firstBox) {
if (!memcmp(header.type, "hdlr", 4)) {
AVIF_CHECK(uniqueBoxSeen(&uniqueBoxFlags, 0, "meta", "hdlr", diag));
AVIF_CHECK(avifParseHandlerBox(avifROStreamCurrent(&s), header.size, diag));
firstBox = AVIF_FALSE;
} else {
avifDiagnosticsPrintf(diag, "Box[meta] does not have a Box[hdlr] as its first child box");
return AVIF_FALSE;
}
} else if (!memcmp(header.type, "iloc", 4)) {
AVIF_CHECK(uniqueBoxSeen(&uniqueBoxFlags, 1, "meta", "iloc", diag));
AVIF_CHECK(avifParseItemLocationBox(meta, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "pitm", 4)) {
AVIF_CHECK(uniqueBoxSeen(&uniqueBoxFlags, 2, "meta", "pitm", diag));
AVIF_CHECK(avifParsePrimaryItemBox(meta, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "idat", 4)) {
AVIF_CHECK(uniqueBoxSeen(&uniqueBoxFlags, 3, "meta", "idat", diag));
AVIF_CHECK(avifParseItemDataBox(meta, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "iprp", 4)) {
AVIF_CHECK(uniqueBoxSeen(&uniqueBoxFlags, 4, "meta", "iprp", diag));
AVIF_CHECK(avifParseItemPropertiesBox(meta, rawOffset + avifROStreamOffset(&s), avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "iinf", 4)) {
AVIF_CHECK(uniqueBoxSeen(&uniqueBoxFlags, 5, "meta", "iinf", diag));
AVIF_CHECK(avifParseItemInfoBox(meta, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "iref", 4)) {
AVIF_CHECK(uniqueBoxSeen(&uniqueBoxFlags, 6, "meta", "iref", diag));
AVIF_CHECK(avifParseItemReferenceBox(meta, avifROStreamCurrent(&s), header.size, diag));
}
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
if (firstBox) {
avifDiagnosticsPrintf(diag, "Box[meta] has no child boxes");
return AVIF_FALSE;
}
return AVIF_TRUE;
}
static avifBool avifParseTrackHeaderBox(avifTrack * track,
const uint8_t * raw,
size_t rawLen,
uint32_t imageSizeLimit,
uint32_t imageDimensionLimit,
avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[tkhd]");
uint8_t version;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, NULL));
uint32_t ignored32, trackID;
uint64_t ignored64;
if (version == 1) {
AVIF_CHECK(avifROStreamReadU64(&s, &ignored64)); AVIF_CHECK(avifROStreamReadU64(&s, &ignored64)); AVIF_CHECK(avifROStreamReadU32(&s, &trackID)); AVIF_CHECK(avifROStreamReadU32(&s, &ignored32)); AVIF_CHECK(avifROStreamReadU64(&s, &track->trackDuration)); } else if (version == 0) {
uint32_t trackDuration;
AVIF_CHECK(avifROStreamReadU32(&s, &ignored32)); AVIF_CHECK(avifROStreamReadU32(&s, &ignored32)); AVIF_CHECK(avifROStreamReadU32(&s, &trackID)); AVIF_CHECK(avifROStreamReadU32(&s, &ignored32)); AVIF_CHECK(avifROStreamReadU32(&s, &trackDuration)); track->trackDuration = (trackDuration == AVIF_INDEFINITE_DURATION32) ? AVIF_INDEFINITE_DURATION64 : trackDuration;
} else {
avifDiagnosticsPrintf(diag, "Box[tkhd] has an unsupported version [%u]", version);
return AVIF_FALSE;
}
AVIF_CHECK(avifROStreamSkip(&s, 52));
uint32_t width, height;
AVIF_CHECK(avifROStreamReadU32(&s, &width)); AVIF_CHECK(avifROStreamReadU32(&s, &height)); track->width = width >> 16;
track->height = height >> 16;
if ((track->width == 0) || (track->height == 0)) {
avifDiagnosticsPrintf(diag, "Track ID [%u] has an invalid size [%ux%u]", track->id, track->width, track->height);
return AVIF_FALSE;
}
if (avifDimensionsTooLarge(track->width, track->height, imageSizeLimit, imageDimensionLimit)) {
avifDiagnosticsPrintf(diag, "Track ID [%u] dimensions are too large [%ux%u]", track->id, track->width, track->height);
return AVIF_FALSE;
}
track->id = trackID;
return AVIF_TRUE;
}
static avifBool avifParseMediaHeaderBox(avifTrack * track, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[mdhd]");
uint8_t version;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, NULL));
uint32_t ignored32, mediaTimescale, mediaDuration32;
uint64_t ignored64, mediaDuration64;
if (version == 1) {
AVIF_CHECK(avifROStreamReadU64(&s, &ignored64)); AVIF_CHECK(avifROStreamReadU64(&s, &ignored64)); AVIF_CHECK(avifROStreamReadU32(&s, &mediaTimescale)); AVIF_CHECK(avifROStreamReadU64(&s, &mediaDuration64)); track->mediaDuration = mediaDuration64;
} else if (version == 0) {
AVIF_CHECK(avifROStreamReadU32(&s, &ignored32)); AVIF_CHECK(avifROStreamReadU32(&s, &ignored32)); AVIF_CHECK(avifROStreamReadU32(&s, &mediaTimescale)); AVIF_CHECK(avifROStreamReadU32(&s, &mediaDuration32)); track->mediaDuration = (uint64_t)mediaDuration32;
} else {
avifDiagnosticsPrintf(diag, "Box[mdhd] has an unsupported version [%u]", version);
return AVIF_FALSE;
}
track->mediaTimescale = mediaTimescale;
return AVIF_TRUE;
}
static avifBool avifParseChunkOffsetBox(avifSampleTable * sampleTable, avifBool largeOffsets, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, largeOffsets ? "Box[co64]" : "Box[stco]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
uint32_t entryCount;
AVIF_CHECK(avifROStreamReadU32(&s, &entryCount)); for (uint32_t i = 0; i < entryCount; ++i) {
uint64_t offset;
if (largeOffsets) {
AVIF_CHECK(avifROStreamReadU64(&s, &offset)); } else {
uint32_t offset32;
AVIF_CHECK(avifROStreamReadU32(&s, &offset32)); offset = (uint64_t)offset32;
}
avifSampleTableChunk * chunk = (avifSampleTableChunk *)avifArrayPushPtr(&sampleTable->chunks);
chunk->offset = offset;
}
return AVIF_TRUE;
}
static avifBool avifParseSampleToChunkBox(avifSampleTable * sampleTable, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[stsc]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
uint32_t entryCount;
AVIF_CHECK(avifROStreamReadU32(&s, &entryCount)); uint32_t prevFirstChunk = 0;
for (uint32_t i = 0; i < entryCount; ++i) {
avifSampleTableSampleToChunk * sampleToChunk = (avifSampleTableSampleToChunk *)avifArrayPushPtr(&sampleTable->sampleToChunks);
AVIF_CHECK(avifROStreamReadU32(&s, &sampleToChunk->firstChunk)); AVIF_CHECK(avifROStreamReadU32(&s, &sampleToChunk->samplesPerChunk)); AVIF_CHECK(avifROStreamReadU32(&s, &sampleToChunk->sampleDescriptionIndex)); if (i == 0) {
if (sampleToChunk->firstChunk != 1) {
avifDiagnosticsPrintf(diag, "Box[stsc] does not begin with chunk 1 [%u]", sampleToChunk->firstChunk);
return AVIF_FALSE;
}
} else {
if (sampleToChunk->firstChunk <= prevFirstChunk) {
avifDiagnosticsPrintf(diag, "Box[stsc] chunks are not strictly increasing");
return AVIF_FALSE;
}
}
prevFirstChunk = sampleToChunk->firstChunk;
}
return AVIF_TRUE;
}
static avifBool avifParseSampleSizeBox(avifSampleTable * sampleTable, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[stsz]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
uint32_t allSamplesSize, sampleCount;
AVIF_CHECK(avifROStreamReadU32(&s, &allSamplesSize)); AVIF_CHECK(avifROStreamReadU32(&s, &sampleCount));
if (allSamplesSize > 0) {
sampleTable->allSamplesSize = allSamplesSize;
} else {
for (uint32_t i = 0; i < sampleCount; ++i) {
avifSampleTableSampleSize * sampleSize = (avifSampleTableSampleSize *)avifArrayPushPtr(&sampleTable->sampleSizes);
AVIF_CHECK(avifROStreamReadU32(&s, &sampleSize->size)); }
}
return AVIF_TRUE;
}
static avifBool avifParseSyncSampleBox(avifSampleTable * sampleTable, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[stss]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
uint32_t entryCount;
AVIF_CHECK(avifROStreamReadU32(&s, &entryCount));
for (uint32_t i = 0; i < entryCount; ++i) {
uint32_t sampleNumber = 0;
AVIF_CHECK(avifROStreamReadU32(&s, &sampleNumber)); avifSyncSample * syncSample = (avifSyncSample *)avifArrayPushPtr(&sampleTable->syncSamples);
syncSample->sampleNumber = sampleNumber;
}
return AVIF_TRUE;
}
static avifBool avifParseTimeToSampleBox(avifSampleTable * sampleTable, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[stts]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
uint32_t entryCount;
AVIF_CHECK(avifROStreamReadU32(&s, &entryCount));
for (uint32_t i = 0; i < entryCount; ++i) {
avifSampleTableTimeToSample * timeToSample = (avifSampleTableTimeToSample *)avifArrayPushPtr(&sampleTable->timeToSamples);
AVIF_CHECK(avifROStreamReadU32(&s, &timeToSample->sampleCount)); AVIF_CHECK(avifROStreamReadU32(&s, &timeToSample->sampleDelta)); }
return AVIF_TRUE;
}
static avifBool avifParseSampleDescriptionBox(avifSampleTable * sampleTable,
uint64_t rawOffset,
const uint8_t * raw,
size_t rawLen,
avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[stsd]");
AVIF_CHECK(avifROStreamReadAndEnforceVersion(&s, 0));
uint32_t entryCount;
AVIF_CHECK(avifROStreamReadU32(&s, &entryCount));
for (uint32_t i = 0; i < entryCount; ++i) {
avifBoxHeader sampleEntryHeader;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &sampleEntryHeader));
avifSampleDescription * description = (avifSampleDescription *)avifArrayPushPtr(&sampleTable->sampleDescriptions);
if (!avifArrayCreate(&description->properties, sizeof(avifProperty), 16)) {
avifArrayPop(&sampleTable->sampleDescriptions);
return AVIF_FALSE;
}
memcpy(description->format, sampleEntryHeader.type, sizeof(description->format));
size_t remainingBytes = avifROStreamRemainingBytes(&s);
if ((avifGetCodecType(description->format) != AVIF_CODEC_TYPE_UNKNOWN) && (remainingBytes > VISUALSAMPLEENTRY_SIZE)) {
AVIF_CHECK(avifParseItemPropertyContainerBox(&description->properties,
rawOffset + avifROStreamOffset(&s) + VISUALSAMPLEENTRY_SIZE,
avifROStreamCurrent(&s) + VISUALSAMPLEENTRY_SIZE,
remainingBytes - VISUALSAMPLEENTRY_SIZE,
diag));
}
AVIF_CHECK(avifROStreamSkip(&s, sampleEntryHeader.size));
}
return AVIF_TRUE;
}
static avifBool avifParseSampleTableBox(avifTrack * track, uint64_t rawOffset, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
if (track->sampleTable) {
avifDiagnosticsPrintf(diag, "Duplicate Box[stbl] for a single track detected");
return AVIF_FALSE;
}
track->sampleTable = avifSampleTableCreate();
BEGIN_STREAM(s, raw, rawLen, diag, "Box[stbl]");
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (!memcmp(header.type, "stco", 4)) {
AVIF_CHECK(avifParseChunkOffsetBox(track->sampleTable, AVIF_FALSE, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "co64", 4)) {
AVIF_CHECK(avifParseChunkOffsetBox(track->sampleTable, AVIF_TRUE, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "stsc", 4)) {
AVIF_CHECK(avifParseSampleToChunkBox(track->sampleTable, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "stsz", 4)) {
AVIF_CHECK(avifParseSampleSizeBox(track->sampleTable, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "stss", 4)) {
AVIF_CHECK(avifParseSyncSampleBox(track->sampleTable, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "stts", 4)) {
AVIF_CHECK(avifParseTimeToSampleBox(track->sampleTable, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "stsd", 4)) {
AVIF_CHECK(avifParseSampleDescriptionBox(track->sampleTable,
rawOffset + avifROStreamOffset(&s),
avifROStreamCurrent(&s),
header.size,
diag));
}
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
return AVIF_TRUE;
}
static avifBool avifParseMediaInformationBox(avifTrack * track, uint64_t rawOffset, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[minf]");
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (!memcmp(header.type, "stbl", 4)) {
AVIF_CHECK(avifParseSampleTableBox(track, rawOffset + avifROStreamOffset(&s), avifROStreamCurrent(&s), header.size, diag));
}
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
return AVIF_TRUE;
}
static avifBool avifParseMediaBox(avifTrack * track, uint64_t rawOffset, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[mdia]");
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (!memcmp(header.type, "mdhd", 4)) {
AVIF_CHECK(avifParseMediaHeaderBox(track, avifROStreamCurrent(&s), header.size, diag));
} else if (!memcmp(header.type, "minf", 4)) {
AVIF_CHECK(avifParseMediaInformationBox(track, rawOffset + avifROStreamOffset(&s), avifROStreamCurrent(&s), header.size, diag));
}
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
return AVIF_TRUE;
}
static avifBool avifTrackReferenceBox(avifTrack * track, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[tref]");
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (!memcmp(header.type, "auxl", 4)) {
uint32_t toID;
AVIF_CHECK(avifROStreamReadU32(&s, &toID)); AVIF_CHECK(avifROStreamSkip(&s, header.size - sizeof(uint32_t))); track->auxForID = toID;
} else if (!memcmp(header.type, "prem", 4)) {
uint32_t byID;
AVIF_CHECK(avifROStreamReadU32(&s, &byID)); AVIF_CHECK(avifROStreamSkip(&s, header.size - sizeof(uint32_t))); track->premByID = byID;
} else {
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
}
return AVIF_TRUE;
}
static avifBool avifParseEditListBox(avifTrack * track, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[elst]");
uint8_t version;
uint32_t flags;
AVIF_CHECK(avifROStreamReadVersionAndFlags(&s, &version, &flags));
if ((flags & 1) == 0) {
track->isRepeating = AVIF_FALSE;
return AVIF_TRUE;
}
track->isRepeating = AVIF_TRUE;
uint32_t entryCount;
AVIF_CHECK(avifROStreamReadU32(&s, &entryCount)); if (entryCount != 1) {
avifDiagnosticsPrintf(diag, "Box[elst] contains an entry_count != 1 [%d]", entryCount);
return AVIF_FALSE;
}
if (version == 1) {
AVIF_CHECK(avifROStreamReadU64(&s, &track->segmentDuration)); } else if (version == 0) {
uint32_t segmentDuration;
AVIF_CHECK(avifROStreamReadU32(&s, &segmentDuration)); track->segmentDuration = segmentDuration;
} else {
avifDiagnosticsPrintf(diag, "Box[elst] has an unsupported version [%u]", version);
return AVIF_FALSE;
}
if (track->segmentDuration == 0) {
avifDiagnosticsPrintf(diag, "Box[elst] Invalid value for segment_duration (0).");
return AVIF_FALSE;
}
return AVIF_TRUE;
}
static avifBool avifParseEditBox(avifTrack * track, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[edts]");
avifBool elstBoxSeen = AVIF_FALSE;
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (!memcmp(header.type, "elst", 4)) {
if (elstBoxSeen) {
avifDiagnosticsPrintf(diag, "More than one [elst] Box was found.");
return AVIF_FALSE;
}
AVIF_CHECK(avifParseEditListBox(track, avifROStreamCurrent(&s), header.size, diag));
elstBoxSeen = AVIF_TRUE;
}
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
if (!elstBoxSeen) {
avifDiagnosticsPrintf(diag, "Box[edts] contains no [elst] Box.");
return AVIF_FALSE;
}
return AVIF_TRUE;
}
static avifBool avifParseTrackBox(avifDecoderData * data, uint64_t rawOffset, const uint8_t * raw, size_t rawLen, uint32_t imageSizeLimit, uint32_t imageDimensionLimit)
{
BEGIN_STREAM(s, raw, rawLen, data->diag, "Box[trak]");
avifTrack * track = avifDecoderDataCreateTrack(data);
avifBool edtsBoxSeen = AVIF_FALSE;
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (!memcmp(header.type, "tkhd", 4)) {
AVIF_CHECK(avifParseTrackHeaderBox(track, avifROStreamCurrent(&s), header.size, imageSizeLimit, imageDimensionLimit, data->diag));
} else if (!memcmp(header.type, "meta", 4)) {
AVIF_CHECK(avifParseMetaBox(track->meta, rawOffset + avifROStreamOffset(&s), avifROStreamCurrent(&s), header.size, data->diag));
} else if (!memcmp(header.type, "mdia", 4)) {
AVIF_CHECK(avifParseMediaBox(track, rawOffset + avifROStreamOffset(&s), avifROStreamCurrent(&s), header.size, data->diag));
} else if (!memcmp(header.type, "tref", 4)) {
AVIF_CHECK(avifTrackReferenceBox(track, avifROStreamCurrent(&s), header.size, data->diag));
} else if (!memcmp(header.type, "edts", 4)) {
if (edtsBoxSeen) {
avifDiagnosticsPrintf(data->diag, "More than one [edts] Box was found.");
return AVIF_FALSE;
}
AVIF_CHECK(avifParseEditBox(track, avifROStreamCurrent(&s), header.size, data->diag));
edtsBoxSeen = AVIF_TRUE;
}
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
if (!edtsBoxSeen) {
track->repetitionCount = AVIF_REPETITION_COUNT_UNKNOWN;
} else if (track->isRepeating) {
if (track->trackDuration == AVIF_INDEFINITE_DURATION64) {
track->repetitionCount = AVIF_REPETITION_COUNT_INFINITE;
} else {
assert(track->segmentDuration != 0);
if (track->trackDuration == 0) {
avifDiagnosticsPrintf(data->diag, "Invalid track duration 0.");
return AVIF_FALSE;
}
const uint64_t repetitionCount =
(track->trackDuration / track->segmentDuration) + (track->trackDuration % track->segmentDuration != 0) - 1;
if (repetitionCount > INT_MAX) {
track->repetitionCount = AVIF_REPETITION_COUNT_INFINITE;
} else {
track->repetitionCount = (int)repetitionCount;
}
}
} else {
track->repetitionCount = 0;
}
return AVIF_TRUE;
}
static avifBool avifParseMovieBox(avifDecoderData * data, uint64_t rawOffset, const uint8_t * raw, size_t rawLen, uint32_t imageSizeLimit, uint32_t imageDimensionLimit)
{
BEGIN_STREAM(s, raw, rawLen, data->diag, "Box[moov]");
while (avifROStreamHasBytesLeft(&s, 1)) {
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (!memcmp(header.type, "trak", 4)) {
AVIF_CHECK(
avifParseTrackBox(data, rawOffset + avifROStreamOffset(&s), avifROStreamCurrent(&s), header.size, imageSizeLimit, imageDimensionLimit));
}
AVIF_CHECK(avifROStreamSkip(&s, header.size));
}
return AVIF_TRUE;
}
static avifBool avifParseFileTypeBox(avifFileType * ftyp, const uint8_t * raw, size_t rawLen, avifDiagnostics * diag)
{
BEGIN_STREAM(s, raw, rawLen, diag, "Box[ftyp]");
AVIF_CHECK(avifROStreamRead(&s, ftyp->majorBrand, 4));
AVIF_CHECK(avifROStreamReadU32(&s, &ftyp->minorVersion));
size_t compatibleBrandsBytes = avifROStreamRemainingBytes(&s);
if ((compatibleBrandsBytes % 4) != 0) {
avifDiagnosticsPrintf(diag, "Box[ftyp] contains a compatible brands section that isn't divisible by 4 [%zu]", compatibleBrandsBytes);
return AVIF_FALSE;
}
ftyp->compatibleBrands = avifROStreamCurrent(&s);
AVIF_CHECK(avifROStreamSkip(&s, compatibleBrandsBytes));
ftyp->compatibleBrandsCount = (int)compatibleBrandsBytes / 4;
return AVIF_TRUE;
}
static avifBool avifFileTypeHasBrand(avifFileType * ftyp, const char * brand);
static avifBool avifFileTypeIsCompatible(avifFileType * ftyp);
static avifResult avifParse(avifDecoder * decoder)
{
avifResult readResult;
uint64_t parseOffset = 0;
avifDecoderData * data = decoder->data;
avifBool ftypSeen = AVIF_FALSE;
avifBool metaSeen = AVIF_FALSE;
avifBool moovSeen = AVIF_FALSE;
avifBool needsMeta = AVIF_FALSE;
avifBool needsMoov = AVIF_FALSE;
for (;;) {
avifROData headerContents;
if ((decoder->io->sizeHint > 0) && (parseOffset > decoder->io->sizeHint)) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
readResult = decoder->io->read(decoder->io, 0, parseOffset, 32, &headerContents);
if (readResult != AVIF_RESULT_OK) {
return readResult;
}
if (!headerContents.size) {
break;
}
BEGIN_STREAM(headerStream, headerContents.data, headerContents.size, &decoder->diag, "File-level box header");
avifBoxHeader header;
AVIF_CHECKERR(avifROStreamReadBoxHeaderPartial(&headerStream, &header), AVIF_RESULT_BMFF_PARSE_FAILED);
parseOffset += headerStream.offset;
assert((decoder->io->sizeHint == 0) || (parseOffset <= decoder->io->sizeHint));
uint64_t boxOffset = 0;
avifROData boxContents = AVIF_DATA_EMPTY;
if (!memcmp(header.type, "ftyp", 4) || !memcmp(header.type, "meta", 4) || !memcmp(header.type, "moov", 4)) {
boxOffset = parseOffset;
readResult = decoder->io->read(decoder->io, 0, parseOffset, header.size, &boxContents);
if (readResult != AVIF_RESULT_OK) {
return readResult;
}
if (boxContents.size != header.size) {
return AVIF_RESULT_TRUNCATED_DATA;
}
} else if (header.size > (UINT64_MAX - parseOffset)) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
parseOffset += header.size;
if (!memcmp(header.type, "ftyp", 4)) {
AVIF_CHECKERR(!ftypSeen, AVIF_RESULT_BMFF_PARSE_FAILED);
avifFileType ftyp;
AVIF_CHECKERR(avifParseFileTypeBox(&ftyp, boxContents.data, boxContents.size, data->diag), AVIF_RESULT_BMFF_PARSE_FAILED);
if (!avifFileTypeIsCompatible(&ftyp)) {
return AVIF_RESULT_INVALID_FTYP;
}
ftypSeen = AVIF_TRUE;
memcpy(data->majorBrand, ftyp.majorBrand, 4); needsMeta = avifFileTypeHasBrand(&ftyp, "avif");
needsMoov = avifFileTypeHasBrand(&ftyp, "avis");
} else if (!memcmp(header.type, "meta", 4)) {
AVIF_CHECKERR(!metaSeen, AVIF_RESULT_BMFF_PARSE_FAILED);
AVIF_CHECKERR(avifParseMetaBox(data->meta, boxOffset, boxContents.data, boxContents.size, data->diag),
AVIF_RESULT_BMFF_PARSE_FAILED);
metaSeen = AVIF_TRUE;
} else if (!memcmp(header.type, "moov", 4)) {
AVIF_CHECKERR(!moovSeen, AVIF_RESULT_BMFF_PARSE_FAILED);
AVIF_CHECKERR(avifParseMovieBox(data, boxOffset, boxContents.data, boxContents.size, decoder->imageSizeLimit, decoder->imageDimensionLimit),
AVIF_RESULT_BMFF_PARSE_FAILED);
moovSeen = AVIF_TRUE;
}
if (ftypSeen && (!needsMeta || metaSeen) && (!needsMoov || moovSeen)) {
return AVIF_RESULT_OK;
}
}
if (!ftypSeen) {
return AVIF_RESULT_INVALID_FTYP;
}
if ((needsMeta && !metaSeen) || (needsMoov && !moovSeen)) {
return AVIF_RESULT_TRUNCATED_DATA;
}
return AVIF_RESULT_OK;
}
static avifBool avifFileTypeHasBrand(avifFileType * ftyp, const char * brand)
{
if (!memcmp(ftyp->majorBrand, brand, 4)) {
return AVIF_TRUE;
}
for (int compatibleBrandIndex = 0; compatibleBrandIndex < ftyp->compatibleBrandsCount; ++compatibleBrandIndex) {
const uint8_t * compatibleBrand = &ftyp->compatibleBrands[4 * compatibleBrandIndex];
if (!memcmp(compatibleBrand, brand, 4)) {
return AVIF_TRUE;
}
}
return AVIF_FALSE;
}
static avifBool avifFileTypeIsCompatible(avifFileType * ftyp)
{
return avifFileTypeHasBrand(ftyp, "avif") || avifFileTypeHasBrand(ftyp, "avis");
}
avifBool avifPeekCompatibleFileType(const avifROData * input)
{
BEGIN_STREAM(s, input->data, input->size, NULL, NULL);
avifBoxHeader header;
AVIF_CHECK(avifROStreamReadBoxHeader(&s, &header));
if (memcmp(header.type, "ftyp", 4)) {
return AVIF_FALSE;
}
avifFileType ftyp;
memset(&ftyp, 0, sizeof(avifFileType));
avifBool parsed = avifParseFileTypeBox(&ftyp, avifROStreamCurrent(&s), header.size, NULL);
if (!parsed) {
return AVIF_FALSE;
}
return avifFileTypeIsCompatible(&ftyp);
}
avifDecoder * avifDecoderCreate(void)
{
avifDecoder * decoder = (avifDecoder *)avifAlloc(sizeof(avifDecoder));
memset(decoder, 0, sizeof(avifDecoder));
decoder->maxThreads = 1;
decoder->imageSizeLimit = AVIF_DEFAULT_IMAGE_SIZE_LIMIT;
decoder->imageDimensionLimit = AVIF_DEFAULT_IMAGE_DIMENSION_LIMIT;
decoder->imageCountLimit = AVIF_DEFAULT_IMAGE_COUNT_LIMIT;
decoder->strictFlags = AVIF_STRICT_ENABLED;
return decoder;
}
static void avifDecoderCleanup(avifDecoder * decoder)
{
if (decoder->data) {
avifDecoderDataDestroy(decoder->data);
decoder->data = NULL;
}
if (decoder->image) {
avifImageDestroy(decoder->image);
decoder->image = NULL;
}
avifDiagnosticsClearError(&decoder->diag);
}
void avifDecoderDestroy(avifDecoder * decoder)
{
avifDecoderCleanup(decoder);
avifIODestroy(decoder->io);
avifFree(decoder);
}
avifResult avifDecoderSetSource(avifDecoder * decoder, avifDecoderSource source)
{
decoder->requestedSource = source;
return avifDecoderReset(decoder);
}
void avifDecoderSetIO(avifDecoder * decoder, avifIO * io)
{
avifIODestroy(decoder->io);
decoder->io = io;
}
avifResult avifDecoderSetIOMemory(avifDecoder * decoder, const uint8_t * data, size_t size)
{
avifIO * io = avifIOCreateMemoryReader(data, size);
assert(io);
avifDecoderSetIO(decoder, io);
return AVIF_RESULT_OK;
}
avifResult avifDecoderSetIOFile(avifDecoder * decoder, const char * filename)
{
avifIO * io = avifIOCreateFileReader(filename);
if (!io) {
return AVIF_RESULT_IO_ERROR;
}
avifDecoderSetIO(decoder, io);
return AVIF_RESULT_OK;
}
static avifResult avifExtentMerge(avifExtent * dst, const avifExtent * src)
{
if (!dst->size) {
*dst = *src;
return AVIF_RESULT_OK;
}
if (!src->size) {
return AVIF_RESULT_OK;
}
const uint64_t minExtent1 = dst->offset;
const uint64_t maxExtent1 = dst->offset + dst->size;
const uint64_t minExtent2 = src->offset;
const uint64_t maxExtent2 = src->offset + src->size;
dst->offset = AVIF_MIN(minExtent1, minExtent2);
const uint64_t extentLength = AVIF_MAX(maxExtent1, maxExtent2) - dst->offset;
if (extentLength > SIZE_MAX) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
dst->size = (size_t)extentLength;
return AVIF_RESULT_OK;
}
avifResult avifDecoderNthImageMaxExtent(const avifDecoder * decoder, uint32_t frameIndex, avifExtent * outExtent)
{
if (!decoder->data) {
return AVIF_RESULT_NO_CONTENT;
}
memset(outExtent, 0, sizeof(avifExtent));
uint32_t startFrameIndex = avifDecoderNearestKeyframe(decoder, frameIndex);
uint32_t endFrameIndex = frameIndex;
for (uint32_t currentFrameIndex = startFrameIndex; currentFrameIndex <= endFrameIndex; ++currentFrameIndex) {
for (unsigned int tileIndex = 0; tileIndex < decoder->data->tiles.count; ++tileIndex) {
avifTile * tile = &decoder->data->tiles.tile[tileIndex];
if (currentFrameIndex >= tile->input->samples.count) {
return AVIF_RESULT_NO_IMAGES_REMAINING;
}
avifDecodeSample * sample = &tile->input->samples.sample[currentFrameIndex];
avifExtent sampleExtent;
if (sample->itemID) {
avifDecoderItem * item = avifMetaFindItem(decoder->data->meta, sample->itemID);
avifResult maxExtentResult = avifDecoderItemMaxExtent(item, sample, &sampleExtent);
if (maxExtentResult != AVIF_RESULT_OK) {
return maxExtentResult;
}
} else {
sampleExtent.offset = sample->offset;
sampleExtent.size = sample->size;
}
if (sampleExtent.size > UINT64_MAX - sampleExtent.offset) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
avifResult extentMergeResult = avifExtentMerge(outExtent, &sampleExtent);
if (extentMergeResult != AVIF_RESULT_OK) {
return extentMergeResult;
}
}
}
return AVIF_RESULT_OK;
}
static avifResult avifDecoderPrepareSample(avifDecoder * decoder, avifDecodeSample * sample, size_t partialByteCount)
{
if (!sample->data.size || sample->partialData) {
size_t bytesToRead = sample->size;
if (partialByteCount && (bytesToRead > partialByteCount)) {
bytesToRead = partialByteCount;
}
if (sample->itemID) {
avifDecoderItem * item = avifMetaFindItem(decoder->data->meta, sample->itemID);
avifROData itemContents;
if (sample->offset > SIZE_MAX) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
size_t offset = (size_t)sample->offset;
avifResult readResult = avifDecoderItemRead(item, decoder->io, &itemContents, offset, bytesToRead, &decoder->diag);
if (readResult != AVIF_RESULT_OK) {
return readResult;
}
sample->data = itemContents;
sample->ownsData = AVIF_FALSE;
sample->partialData = item->partialMergedExtents;
} else {
avifROData sampleContents;
if ((decoder->io->sizeHint > 0) && (sample->offset > decoder->io->sizeHint)) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
avifResult readResult = decoder->io->read(decoder->io, 0, sample->offset, bytesToRead, &sampleContents);
if (readResult != AVIF_RESULT_OK) {
return readResult;
}
if (sampleContents.size != bytesToRead) {
return AVIF_RESULT_TRUNCATED_DATA;
}
sample->ownsData = !decoder->io->persistent;
sample->partialData = (bytesToRead != sample->size);
if (decoder->io->persistent) {
sample->data = sampleContents;
} else {
AVIF_CHECKRES(avifRWDataSet((avifRWData *)&sample->data, sampleContents.data, sampleContents.size));
}
}
}
return AVIF_RESULT_OK;
}
avifResult avifDecoderParse(avifDecoder * decoder)
{
avifDiagnosticsClearError(&decoder->diag);
if ((decoder->imageSizeLimit > AVIF_DEFAULT_IMAGE_SIZE_LIMIT) || (decoder->imageSizeLimit == 0)) {
return AVIF_RESULT_NOT_IMPLEMENTED;
}
if (!decoder->io || !decoder->io->read) {
return AVIF_RESULT_IO_NOT_SET;
}
avifDecoderCleanup(decoder);
decoder->data = avifDecoderDataCreate();
decoder->data->diag = &decoder->diag;
avifResult parseResult = avifParse(decoder);
if (parseResult != AVIF_RESULT_OK) {
return parseResult;
}
avifDecoderData * data = decoder->data;
for (uint32_t itemIndex = 0; itemIndex < data->meta->items.count; ++itemIndex) {
avifDecoderItem * item = data->meta->items.item[itemIndex];
if (!item->size) {
continue;
}
if (item->hasUnsupportedEssentialProperty) {
continue;
}
avifBool isGrid = (memcmp(item->type, "grid", 4) == 0);
if ((avifGetCodecType(item->type) == AVIF_CODEC_TYPE_UNKNOWN) && !isGrid) {
continue;
}
const avifProperty * ispeProp = avifPropertyArrayFind(&item->properties, "ispe");
if (ispeProp) {
item->width = ispeProp->u.ispe.width;
item->height = ispeProp->u.ispe.height;
if ((item->width == 0) || (item->height == 0)) {
avifDiagnosticsPrintf(data->diag, "Item ID [%u] has an invalid size [%ux%u]", item->id, item->width, item->height);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
if (avifDimensionsTooLarge(item->width, item->height, decoder->imageSizeLimit, decoder->imageDimensionLimit)) {
avifDiagnosticsPrintf(data->diag, "Item ID [%u] dimensions are too large [%ux%u]", item->id, item->width, item->height);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
} else {
const avifProperty * auxCProp = avifPropertyArrayFind(&item->properties, "auxC");
if (auxCProp && isAlphaURN(auxCProp->u.auxC.auxType)) {
if (decoder->strictFlags & AVIF_STRICT_ALPHA_ISPE_REQUIRED) {
avifDiagnosticsPrintf(data->diag,
"[Strict] Alpha auxiliary image item ID [%u] is missing a mandatory ispe property",
item->id);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
} else {
avifDiagnosticsPrintf(data->diag, "Item ID [%u] is missing a mandatory ispe property", item->id);
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
}
}
return avifDecoderReset(decoder);
}
static avifResult avifCodecCreateInternal(avifCodecChoice choice, const avifTile * tile, avifDiagnostics * diag, avifCodec ** codec)
{
#if defined(AVIF_CODEC_AVM)
if (choice == AVIF_CODEC_CHOICE_AUTO && tile->codecType == AVIF_CODEC_TYPE_AV2) {
choice = AVIF_CODEC_CHOICE_AVM;
}
#endif
AVIF_CHECKERR(tile->codecType == avifCodecTypeFromChoice(choice, AVIF_CODEC_FLAG_CAN_DECODE), AVIF_RESULT_NO_CODEC_AVAILABLE);
*codec = avifCodecCreate(choice, AVIF_CODEC_FLAG_CAN_DECODE);
AVIF_CHECKERR(*codec, AVIF_RESULT_OUT_OF_MEMORY);
(*codec)->diag = diag;
(*codec)->operatingPoint = tile->operatingPoint;
(*codec)->allLayers = tile->input->allLayers;
return AVIF_RESULT_OK;
}
static avifBool avifTilesCanBeDecodedWithSameCodecInstance(avifDecoderData * data)
{
if (data->color.tileCount == 1 && data->alpha.tileCount == 1) {
return AVIF_FALSE;
}
const uint8_t firstTileOperatingPoint = data->tiles.tile[0].operatingPoint;
const avifBool firstTileAllLayers = data->tiles.tile[0].input->allLayers;
for (unsigned int i = 1; i < data->tiles.count; ++i) {
const avifTile * tile = &data->tiles.tile[i];
if (tile->operatingPoint != firstTileOperatingPoint || tile->input->allLayers != firstTileAllLayers) {
return AVIF_FALSE;
}
}
return AVIF_TRUE;
}
static avifResult avifDecoderCreateCodecs(avifDecoder * decoder)
{
avifDecoderData * data = decoder->data;
avifDecoderDataResetCodec(data);
if (data->source == AVIF_DECODER_SOURCE_TRACKS) {
AVIF_CHECKRES(avifCodecCreateInternal(decoder->codecChoice, &decoder->data->tiles.tile[0], &decoder->diag, &data->codec));
data->tiles.tile[0].codec = data->codec;
if (data->tiles.count > 1) {
AVIF_CHECKRES(avifCodecCreateInternal(decoder->codecChoice, &decoder->data->tiles.tile[1], &decoder->diag, &data->codecAlpha));
data->tiles.tile[1].codec = data->codecAlpha;
}
} else {
avifBool canUseSingleCodecInstance = (data->tiles.count == 1) ||
(decoder->imageCount == 1 && avifTilesCanBeDecodedWithSameCodecInstance(data));
if (canUseSingleCodecInstance) {
AVIF_CHECKRES(avifCodecCreateInternal(decoder->codecChoice, &decoder->data->tiles.tile[0], &decoder->diag, &data->codec));
for (unsigned int i = 0; i < decoder->data->tiles.count; ++i) {
decoder->data->tiles.tile[i].codec = data->codec;
}
} else {
for (unsigned int i = 0; i < decoder->data->tiles.count; ++i) {
avifTile * tile = &decoder->data->tiles.tile[i];
AVIF_CHECKRES(avifCodecCreateInternal(decoder->codecChoice, tile, &decoder->diag, &tile->codec));
}
}
}
return AVIF_RESULT_OK;
}
static avifBool avifDecoderItemShouldBeSkipped(const avifDecoderItem * item)
{
return !item->size || item->hasUnsupportedEssentialProperty ||
(avifGetCodecType(item->type) == AVIF_CODEC_TYPE_UNKNOWN && memcmp(item->type, "grid", 4)) || item->thumbnailForID != 0;
}
static avifDecoderItem * avifDecoderDataFindColorItem(avifDecoderData * data)
{
for (uint32_t itemIndex = 0; itemIndex < data->meta->items.count; ++itemIndex) {
avifDecoderItem * item = data->meta->items.item[itemIndex];
if (avifDecoderItemShouldBeSkipped(item)) {
continue;
}
if (item->id == data->meta->primaryItemID) {
return item;
}
}
return NULL;
}
static avifBool avifDecoderItemIsAlphaAux(avifDecoderItem * item, uint32_t colorItemId)
{
if (item->auxForID != colorItemId)
return AVIF_FALSE;
const avifProperty * auxCProp = avifPropertyArrayFind(&item->properties, "auxC");
return auxCProp && isAlphaURN(auxCProp->u.auxC.auxType);
}
static avifResult avifDecoderDataFindAlphaItem(avifDecoderData * data,
avifDecoderItem * colorItem,
avifDecoderItem ** alphaItem,
avifBool * isAlphaItemInInput)
{
for (uint32_t itemIndex = 0; itemIndex < data->meta->items.count; ++itemIndex) {
avifDecoderItem * item = data->meta->items.item[itemIndex];
if (avifDecoderItemShouldBeSkipped(item)) {
continue;
}
if (avifDecoderItemIsAlphaAux(item, colorItem->id)) {
*alphaItem = item;
*isAlphaItemInInput = AVIF_TRUE;
return AVIF_RESULT_OK;
}
}
if (memcmp(colorItem->type, "grid", 4)) {
*alphaItem = NULL;
*isAlphaItemInInput = AVIF_FALSE;
return AVIF_RESULT_OK;
}
uint32_t colorItemCount = data->color.grid.rows * data->color.grid.columns;
if (colorItemCount == 0) {
*alphaItem = NULL;
*isAlphaItemInInput = AVIF_FALSE;
return AVIF_RESULT_OK;
}
uint32_t * alphaItemIndices = avifAlloc(colorItemCount * sizeof(uint32_t));
AVIF_CHECKERR(alphaItemIndices, AVIF_RESULT_OUT_OF_MEMORY);
uint32_t alphaItemCount = 0;
for (uint32_t i = 0; i < colorItem->meta->items.count; ++i) {
const avifDecoderItem * const item = colorItem->meta->items.item[i];
if (item->dimgForID == colorItem->id) {
avifBool seenAlphaForCurrentItem = AVIF_FALSE;
for (uint32_t j = 0; j < colorItem->meta->items.count; ++j) {
avifDecoderItem * auxlItem = colorItem->meta->items.item[j];
if (avifDecoderItemIsAlphaAux(auxlItem, item->id)) {
if (seenAlphaForCurrentItem || auxlItem->dimgForID != 0) {
avifFree(alphaItemIndices);
*alphaItem = NULL;
*isAlphaItemInInput = AVIF_FALSE;
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
alphaItemIndices[alphaItemCount++] = j;
seenAlphaForCurrentItem = AVIF_TRUE;
}
}
if (!seenAlphaForCurrentItem) {
avifFree(alphaItemIndices);
*alphaItem = NULL;
*isAlphaItemInInput = AVIF_FALSE;
return AVIF_RESULT_OK;
}
}
}
assert(alphaItemCount == colorItemCount);
avifResult result;
if (colorItem->meta->items.count >= UINT32_MAX - 1) {
result = AVIF_RESULT_DECODE_ALPHA_FAILED;
} else {
uint32_t newItemID = 0;
avifBool isUsed;
do {
++newItemID;
isUsed = AVIF_FALSE;
for (uint32_t i = 0; i < colorItem->meta->items.count; ++i) {
if (colorItem->meta->items.item[i]->id == newItemID) {
isUsed = AVIF_TRUE;
break;
}
}
} while (isUsed && newItemID != 0);
*alphaItem = avifMetaFindItem(colorItem->meta, newItemID); result = (*alphaItem == NULL) ? AVIF_RESULT_OUT_OF_MEMORY : AVIF_RESULT_OK;
}
if (result != AVIF_RESULT_OK) {
avifFree(alphaItemIndices);
*isAlphaItemInInput = AVIF_FALSE;
return result;
}
memcpy((*alphaItem)->type, "grid", 4);
(*alphaItem)->width = colorItem->width;
(*alphaItem)->height = colorItem->height;
for (uint32_t i = 0; i < alphaItemCount; ++i) {
avifDecoderItem * item = colorItem->meta->items.item[alphaItemIndices[i]];
item->dimgForID = (*alphaItem)->id;
}
avifFree(alphaItemIndices);
*isAlphaItemInInput = AVIF_FALSE;
data->alpha.grid = data->color.grid;
return AVIF_RESULT_OK;
}
static avifResult avifDecoderGenerateImageTiles(avifDecoder * decoder, avifTileInfo * info, avifDecoderItem * item, avifItemCategory itemCategory)
{
const uint32_t previousTileCount = decoder->data->tiles.count;
if ((info->grid.rows > 0) && (info->grid.columns > 0)) {
AVIF_CHECKERR(avifDecoderGenerateImageGridTiles(decoder, &info->grid, item, itemCategory), AVIF_RESULT_INVALID_IMAGE_GRID);
} else {
AVIF_CHECKERR(item->size != 0, AVIF_RESULT_MISSING_IMAGE_ITEM);
const avifCodecType codecType = avifGetCodecType(item->type);
assert(codecType != AVIF_CODEC_TYPE_UNKNOWN);
avifTile * tile =
avifDecoderDataCreateTile(decoder->data, codecType, item->width, item->height, avifDecoderItemOperatingPoint(item));
AVIF_CHECKERR(tile, AVIF_RESULT_OUT_OF_MEMORY);
AVIF_CHECKERR(avifCodecDecodeInputFillFromDecoderItem(tile->input,
item,
decoder->allowProgressive,
decoder->imageCountLimit,
decoder->io->sizeHint,
&decoder->diag),
AVIF_RESULT_BMFF_PARSE_FAILED);
tile->input->itemCategory = itemCategory;
}
info->tileCount = decoder->data->tiles.count - previousTileCount;
return AVIF_RESULT_OK;
}
avifResult avifDecoderReset(avifDecoder * decoder)
{
avifDiagnosticsClearError(&decoder->diag);
avifDecoderData * data = decoder->data;
if (!data) {
return AVIF_RESULT_OK;
}
memset(&data->color.grid, 0, sizeof(data->color.grid));
memset(&data->alpha.grid, 0, sizeof(data->alpha.grid));
avifDecoderDataClearTiles(data);
if (decoder->image) {
avifImageDestroy(decoder->image);
}
decoder->image = avifImageCreateEmpty();
AVIF_CHECKERR(decoder->image, AVIF_RESULT_OUT_OF_MEMORY);
decoder->progressiveState = AVIF_PROGRESSIVE_STATE_UNAVAILABLE;
data->cicpSet = AVIF_FALSE;
memset(&decoder->ioStats, 0, sizeof(decoder->ioStats));
data->sourceSampleTable = NULL; if (decoder->requestedSource == AVIF_DECODER_SOURCE_AUTO) {
if (!memcmp(data->majorBrand, "avis", 4)) {
data->source = AVIF_DECODER_SOURCE_TRACKS;
} else if (!memcmp(data->majorBrand, "avif", 4)) {
data->source = AVIF_DECODER_SOURCE_PRIMARY_ITEM;
} else if (data->tracks.count > 0) {
data->source = AVIF_DECODER_SOURCE_TRACKS;
} else {
data->source = AVIF_DECODER_SOURCE_PRIMARY_ITEM;
}
} else {
data->source = decoder->requestedSource;
}
avifCodecType colorCodecType = AVIF_CODEC_TYPE_UNKNOWN;
const avifPropertyArray * colorProperties = NULL;
if (data->source == AVIF_DECODER_SOURCE_TRACKS) {
avifTrack * colorTrack = NULL;
avifTrack * alphaTrack = NULL;
uint32_t colorTrackIndex = 0;
for (; colorTrackIndex < data->tracks.count; ++colorTrackIndex) {
avifTrack * track = &data->tracks.track[colorTrackIndex];
if (!track->sampleTable) {
continue;
}
if (!track->id) { continue;
}
if (!track->sampleTable->chunks.count) {
continue;
}
colorCodecType = avifSampleTableGetCodecType(track->sampleTable);
if (colorCodecType == AVIF_CODEC_TYPE_UNKNOWN) {
continue;
}
if (track->auxForID != 0) {
continue;
}
break;
}
if (colorTrackIndex == data->tracks.count) {
avifDiagnosticsPrintf(&decoder->diag, "Failed to find AV1 color track");
return AVIF_RESULT_NO_CONTENT;
}
colorTrack = &data->tracks.track[colorTrackIndex];
colorProperties = avifSampleTableGetProperties(colorTrack->sampleTable, colorCodecType);
if (!colorProperties) {
avifDiagnosticsPrintf(&decoder->diag, "Failed to find AV1 color track's color properties");
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
if (colorTrack->meta) {
avifResult findResult = avifDecoderFindMetadata(decoder, colorTrack->meta, decoder->image, 0);
if (findResult != AVIF_RESULT_OK) {
return findResult;
}
}
uint32_t alphaTrackIndex = 0;
avifCodecType alphaCodecType = AVIF_CODEC_TYPE_UNKNOWN;
for (; alphaTrackIndex < data->tracks.count; ++alphaTrackIndex) {
avifTrack * track = &data->tracks.track[alphaTrackIndex];
if (!track->sampleTable) {
continue;
}
if (!track->id) {
continue;
}
if (!track->sampleTable->chunks.count) {
continue;
}
alphaCodecType = avifSampleTableGetCodecType(track->sampleTable);
if (alphaCodecType == AVIF_CODEC_TYPE_UNKNOWN) {
continue;
}
if (track->auxForID == colorTrack->id) {
break;
}
}
if (alphaTrackIndex != data->tracks.count) {
alphaTrack = &data->tracks.track[alphaTrackIndex];
}
const uint8_t operatingPoint = 0; avifTile * colorTile = avifDecoderDataCreateTile(data, colorCodecType, colorTrack->width, colorTrack->height, operatingPoint);
if (!colorTile) {
return AVIF_RESULT_OUT_OF_MEMORY;
}
if (!avifCodecDecodeInputFillFromSampleTable(colorTile->input,
colorTrack->sampleTable,
decoder->imageCountLimit,
decoder->io->sizeHint,
data->diag)) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
data->color.tileCount = 1;
if (alphaTrack) {
avifTile * alphaTile = avifDecoderDataCreateTile(data, alphaCodecType, alphaTrack->width, alphaTrack->height, operatingPoint);
if (!alphaTile) {
return AVIF_RESULT_OUT_OF_MEMORY;
}
if (!avifCodecDecodeInputFillFromSampleTable(alphaTile->input,
alphaTrack->sampleTable,
decoder->imageCountLimit,
decoder->io->sizeHint,
data->diag)) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
alphaTile->input->itemCategory = AVIF_ITEM_ALPHA;
data->alpha.tileCount = 1;
}
data->sourceSampleTable = colorTrack->sampleTable;
decoder->imageIndex = -1;
decoder->imageCount = (int)colorTile->input->samples.count;
decoder->timescale = colorTrack->mediaTimescale;
decoder->durationInTimescales = colorTrack->mediaDuration;
if (colorTrack->mediaTimescale) {
decoder->duration = (double)decoder->durationInTimescales / (double)colorTrack->mediaTimescale;
} else {
decoder->duration = 0;
}
decoder->repetitionCount = colorTrack->repetitionCount;
memset(&decoder->imageTiming, 0, sizeof(decoder->imageTiming));
decoder->image->width = colorTrack->width;
decoder->image->height = colorTrack->height;
decoder->alphaPresent = (alphaTrack != NULL);
decoder->image->alphaPremultiplied = decoder->alphaPresent && (colorTrack->premByID == alphaTrack->id);
} else {
if (data->meta->primaryItemID == 0) {
avifDiagnosticsPrintf(&decoder->diag, "Primary item not specified");
return AVIF_RESULT_MISSING_IMAGE_ITEM;
}
avifDecoderItem * colorItem = avifDecoderDataFindColorItem(data);
if (!colorItem) {
avifDiagnosticsPrintf(&decoder->diag, "Primary item not found");
return AVIF_RESULT_MISSING_IMAGE_ITEM;
}
colorProperties = &colorItem->properties;
if (!memcmp(colorItem->type, "grid", 4)) {
avifROData readData;
AVIF_CHECKRES(avifDecoderItemRead(colorItem, decoder->io, &readData, 0, 0, data->diag));
AVIF_CHECKERR(avifParseImageGridBox(&data->color.grid,
readData.data,
readData.size,
decoder->imageSizeLimit,
decoder->imageDimensionLimit,
data->diag),
AVIF_RESULT_INVALID_IMAGE_GRID);
uint32_t dimgItemCount = 0;
for (uint32_t i = 0; i < colorItem->meta->items.count; ++i) {
if (colorItem->meta->items.item[i]->dimgForID == colorItem->id) {
++dimgItemCount;
}
}
if (dimgItemCount != data->color.grid.rows * data->color.grid.columns) {
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
colorCodecType = avifDecoderItemGetGridCodecType(colorItem);
if (colorCodecType == AVIF_CODEC_TYPE_UNKNOWN) {
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
} else {
colorCodecType = avifGetCodecType(colorItem->type);
assert(colorCodecType != AVIF_CODEC_TYPE_UNKNOWN);
}
avifBool isAlphaItemInInput;
avifDecoderItem * alphaItem;
AVIF_CHECKRES(avifDecoderDataFindAlphaItem(data, colorItem, &alphaItem, &isAlphaItemInInput));
avifCodecType alphaCodecType = AVIF_CODEC_TYPE_UNKNOWN;
if (alphaItem) {
if (!memcmp(alphaItem->type, "grid", 4)) {
if (isAlphaItemInInput) {
avifROData readData;
AVIF_CHECKRES(avifDecoderItemRead(alphaItem, decoder->io, &readData, 0, 0, data->diag));
AVIF_CHECKERR(avifParseImageGridBox(&data->alpha.grid,
readData.data,
readData.size,
decoder->imageSizeLimit,
decoder->imageDimensionLimit,
data->diag),
AVIF_RESULT_INVALID_IMAGE_GRID);
}
alphaCodecType = avifDecoderItemGetGridCodecType(alphaItem);
if (alphaCodecType == AVIF_CODEC_TYPE_UNKNOWN) {
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
} else {
alphaCodecType = avifGetCodecType(alphaItem->type);
assert(alphaCodecType != AVIF_CODEC_TYPE_UNKNOWN);
}
}
AVIF_CHECKRES(avifDecoderFindMetadata(decoder, data->meta, decoder->image, colorItem->id));
decoder->imageIndex = -1;
decoder->imageCount = 1;
decoder->imageTiming.timescale = 1;
decoder->imageTiming.pts = 0;
decoder->imageTiming.ptsInTimescales = 0;
decoder->imageTiming.duration = 1;
decoder->imageTiming.durationInTimescales = 1;
decoder->timescale = 1;
decoder->duration = 1;
decoder->durationInTimescales = 1;
AVIF_CHECKRES(avifDecoderGenerateImageTiles(decoder, &data->color, colorItem, AVIF_ITEM_COLOR));
if ((data->color.grid.rows == 0) || (data->color.grid.columns == 0)) {
if (colorItem->progressive) {
decoder->progressiveState = AVIF_PROGRESSIVE_STATE_AVAILABLE;
const avifTile * colorTile = &data->tiles.tile[0];
if (colorTile->input->samples.count > 1) {
decoder->progressiveState = AVIF_PROGRESSIVE_STATE_ACTIVE;
decoder->imageCount = (int)colorTile->input->samples.count;
}
}
}
if (alphaItem) {
if (!alphaItem->width && !alphaItem->height) {
assert(!(decoder->strictFlags & AVIF_STRICT_ALPHA_ISPE_REQUIRED));
alphaItem->width = colorItem->width;
alphaItem->height = colorItem->height;
}
AVIF_CHECKRES(avifDecoderGenerateImageTiles(decoder, &data->alpha, alphaItem, AVIF_ITEM_ALPHA));
}
decoder->image->width = colorItem->width;
decoder->image->height = colorItem->height;
decoder->alphaPresent = (alphaItem != NULL);
decoder->image->alphaPremultiplied = decoder->alphaPresent && (colorItem->premByID == alphaItem->id);
AVIF_CHECKRES(
avifDecoderItemValidateProperties(colorItem, avifGetConfigurationPropertyName(colorCodecType), &decoder->diag, decoder->strictFlags));
if (alphaItem) {
avifStrictFlags strictFlags = decoder->strictFlags;
if (!isAlphaItemInInput) {
strictFlags &= ~AVIF_STRICT_PIXI_REQUIRED;
}
AVIF_CHECKRES(
avifDecoderItemValidateProperties(alphaItem, avifGetConfigurationPropertyName(alphaCodecType), &decoder->diag, strictFlags));
}
}
decoder->data->color.firstTileIndex = 0;
decoder->data->alpha.firstTileIndex = decoder->data->color.tileCount;
for (uint32_t tileIndex = 0; tileIndex < data->tiles.count; ++tileIndex) {
avifTile * tile = &data->tiles.tile[tileIndex];
for (uint32_t sampleIndex = 0; sampleIndex < tile->input->samples.count; ++sampleIndex) {
avifDecodeSample * sample = &tile->input->samples.sample[sampleIndex];
if (!sample->size) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
if (tile->input->itemCategory == AVIF_ITEM_ALPHA) {
decoder->ioStats.alphaOBUSize += sample->size;
} else {
decoder->ioStats.colorOBUSize += sample->size;
}
}
}
avifBool colrICCSeen = AVIF_FALSE;
avifBool colrNCLXSeen = AVIF_FALSE;
for (uint32_t propertyIndex = 0; propertyIndex < colorProperties->count; ++propertyIndex) {
avifProperty * prop = &colorProperties->prop[propertyIndex];
if (!memcmp(prop->type, "colr", 4)) {
if (prop->u.colr.hasICC) {
if (colrICCSeen) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
avifROData icc;
const avifResult readResult = decoder->io->read(decoder->io, 0, prop->u.colr.iccOffset, prop->u.colr.iccSize, &icc);
if (readResult != AVIF_RESULT_OK) {
return readResult;
}
colrICCSeen = AVIF_TRUE;
AVIF_CHECKRES(avifImageSetProfileICC(decoder->image, icc.data, icc.size));
}
if (prop->u.colr.hasNCLX) {
if (colrNCLXSeen) {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
colrNCLXSeen = AVIF_TRUE;
data->cicpSet = AVIF_TRUE;
decoder->image->colorPrimaries = prop->u.colr.colorPrimaries;
decoder->image->transferCharacteristics = prop->u.colr.transferCharacteristics;
decoder->image->matrixCoefficients = prop->u.colr.matrixCoefficients;
decoder->image->yuvRange = prop->u.colr.range;
}
}
}
const avifProperty * clliProp = avifPropertyArrayFind(colorProperties, "clli");
if (clliProp) {
decoder->image->clli = clliProp->u.clli;
}
const avifProperty * paspProp = avifPropertyArrayFind(colorProperties, "pasp");
if (paspProp) {
decoder->image->transformFlags |= AVIF_TRANSFORM_PASP;
decoder->image->pasp = paspProp->u.pasp;
}
const avifProperty * clapProp = avifPropertyArrayFind(colorProperties, "clap");
if (clapProp) {
decoder->image->transformFlags |= AVIF_TRANSFORM_CLAP;
decoder->image->clap = clapProp->u.clap;
}
const avifProperty * irotProp = avifPropertyArrayFind(colorProperties, "irot");
if (irotProp) {
decoder->image->transformFlags |= AVIF_TRANSFORM_IROT;
decoder->image->irot = irotProp->u.irot;
}
const avifProperty * imirProp = avifPropertyArrayFind(colorProperties, "imir");
if (imirProp) {
decoder->image->transformFlags |= AVIF_TRANSFORM_IMIR;
decoder->image->imir = imirProp->u.imir;
}
if (!data->cicpSet && (data->tiles.count > 0)) {
avifTile * firstTile = &data->tiles.tile[0];
if (firstTile->input->samples.count > 0) {
avifDecodeSample * sample = &firstTile->input->samples.sample[0];
static const size_t searchSampleChunkIncrement = 64;
static const size_t searchSampleSizeMax = 4096;
size_t searchSampleSize = 0;
do {
searchSampleSize += searchSampleChunkIncrement;
if (searchSampleSize > sample->size) {
searchSampleSize = sample->size;
}
avifResult prepareResult = avifDecoderPrepareSample(decoder, sample, searchSampleSize);
if (prepareResult != AVIF_RESULT_OK) {
return prepareResult;
}
avifSequenceHeader sequenceHeader;
if (avifSequenceHeaderParse(&sequenceHeader, &sample->data, firstTile->codecType)) {
data->cicpSet = AVIF_TRUE;
decoder->image->colorPrimaries = sequenceHeader.colorPrimaries;
decoder->image->transferCharacteristics = sequenceHeader.transferCharacteristics;
decoder->image->matrixCoefficients = sequenceHeader.matrixCoefficients;
decoder->image->yuvRange = sequenceHeader.range;
break;
}
} while (searchSampleSize != sample->size && searchSampleSize < searchSampleSizeMax);
}
}
const avifProperty * configProp = avifPropertyArrayFind(colorProperties, avifGetConfigurationPropertyName(colorCodecType));
if (configProp) {
decoder->image->depth = avifCodecConfigurationBoxGetDepth(&configProp->u.av1C);
if (configProp->u.av1C.monochrome) {
decoder->image->yuvFormat = AVIF_PIXEL_FORMAT_YUV400;
} else {
if (configProp->u.av1C.chromaSubsamplingX && configProp->u.av1C.chromaSubsamplingY) {
decoder->image->yuvFormat = AVIF_PIXEL_FORMAT_YUV420;
} else if (configProp->u.av1C.chromaSubsamplingX) {
decoder->image->yuvFormat = AVIF_PIXEL_FORMAT_YUV422;
} else {
decoder->image->yuvFormat = AVIF_PIXEL_FORMAT_YUV444;
}
}
decoder->image->yuvChromaSamplePosition = (avifChromaSamplePosition)configProp->u.av1C.chromaSamplePosition;
} else {
return AVIF_RESULT_BMFF_PARSE_FAILED;
}
return AVIF_RESULT_OK;
}
static avifResult avifDecoderPrepareTiles(avifDecoder * decoder, uint32_t nextImageIndex, const avifTileInfo * info)
{
for (unsigned int tileIndex = info->decodedTileCount; tileIndex < info->tileCount; ++tileIndex) {
avifTile * tile = &decoder->data->tiles.tile[info->firstTileIndex + tileIndex];
if (nextImageIndex >= tile->input->samples.count) {
return AVIF_RESULT_NO_IMAGES_REMAINING;
}
avifDecodeSample * sample = &tile->input->samples.sample[nextImageIndex];
avifResult prepareResult = avifDecoderPrepareSample(decoder, sample, 0);
if (prepareResult != AVIF_RESULT_OK) {
return prepareResult;
}
}
return AVIF_RESULT_OK;
}
static avifResult avifImageLimitedToFullAlpha(avifImage * image)
{
if (image->imageOwnsAlphaPlane) {
return AVIF_RESULT_NOT_IMPLEMENTED;
}
const uint8_t * alphaPlane = image->alphaPlane;
const uint32_t alphaRowBytes = image->alphaRowBytes;
image->alphaPlane = NULL;
image->alphaRowBytes = 0;
const avifResult allocationResult = avifImageAllocatePlanes(image, AVIF_PLANES_A);
if (allocationResult != AVIF_RESULT_OK) {
return allocationResult;
}
if (image->depth > 8) {
for (uint32_t j = 0; j < image->height; ++j) {
const uint8_t * srcRow = &alphaPlane[j * alphaRowBytes];
uint8_t * dstRow = &image->alphaPlane[j * image->alphaRowBytes];
for (uint32_t i = 0; i < image->width; ++i) {
int srcAlpha = *((const uint16_t *)&srcRow[i * 2]);
int dstAlpha = avifLimitedToFullY(image->depth, srcAlpha);
*((uint16_t *)&dstRow[i * 2]) = (uint16_t)dstAlpha;
}
}
} else {
for (uint32_t j = 0; j < image->height; ++j) {
const uint8_t * srcRow = &alphaPlane[j * alphaRowBytes];
uint8_t * dstRow = &image->alphaPlane[j * image->alphaRowBytes];
for (uint32_t i = 0; i < image->width; ++i) {
int srcAlpha = srcRow[i];
int dstAlpha = avifLimitedToFullY(image->depth, srcAlpha);
dstRow[i] = (uint8_t)dstAlpha;
}
}
}
return AVIF_RESULT_OK;
}
static avifResult avifGetErrorForItemCategory(avifItemCategory itemCategory)
{
return (itemCategory == AVIF_ITEM_ALPHA) ? AVIF_RESULT_DECODE_ALPHA_FAILED : AVIF_RESULT_DECODE_COLOR_FAILED;
}
static avifResult avifDecoderDecodeTiles(avifDecoder * decoder, uint32_t nextImageIndex, avifTileInfo * info)
{
const unsigned int oldDecodedTileCount = info->decodedTileCount;
for (unsigned int tileIndex = oldDecodedTileCount; tileIndex < info->tileCount; ++tileIndex) {
avifTile * tile = &decoder->data->tiles.tile[info->firstTileIndex + tileIndex];
const avifDecodeSample * sample = &tile->input->samples.sample[nextImageIndex];
if (sample->data.size < sample->size) {
assert(decoder->allowIncremental);
return AVIF_RESULT_OK;
}
avifBool isLimitedRangeAlpha = AVIF_FALSE;
if (!tile->codec->getNextImage(tile->codec, decoder, sample, tile->input->itemCategory == AVIF_ITEM_ALPHA, &isLimitedRangeAlpha, tile->image)) {
avifDiagnosticsPrintf(&decoder->diag, "tile->codec->getNextImage() failed");
return avifGetErrorForItemCategory(tile->input->itemCategory);
}
if ((tile->input->itemCategory == AVIF_ITEM_ALPHA) && isLimitedRangeAlpha) {
avifResult result = avifImageLimitedToFullAlpha(tile->image);
if (result != AVIF_RESULT_OK) {
avifDiagnosticsPrintf(&decoder->diag, "avifImageLimitedToFullAlpha failed");
return result;
}
}
if ((tile->width != tile->image->width) || (tile->height != tile->image->height)) {
if (!avifImageScale(tile->image,
tile->width,
tile->height,
decoder->imageSizeLimit,
decoder->imageDimensionLimit,
&decoder->diag)) {
avifDiagnosticsPrintf(&decoder->diag, "avifImageScale() failed");
return avifGetErrorForItemCategory(tile->input->itemCategory);
}
}
++info->decodedTileCount;
if ((info->grid.rows > 0) && (info->grid.columns > 0)) {
if (tileIndex == 0) {
AVIF_CHECKRES(avifDecoderDataAllocateGridImagePlanes(decoder->data, info, decoder->image));
}
if (!avifDecoderDataCopyTileToImage(decoder->data, info, decoder->image, tile, tileIndex)) {
return AVIF_RESULT_INVALID_IMAGE_GRID;
}
} else {
assert(info->tileCount == 1);
assert(tileIndex == 0);
avifImage * src = tile->image;
if ((decoder->image->width != src->width) || (decoder->image->height != src->height) ||
(decoder->image->depth != src->depth)) {
if (tile->input->itemCategory == AVIF_ITEM_ALPHA) {
avifDiagnosticsPrintf(&decoder->diag,
"The color image item does not match the alpha image item in width, height, or bit depth");
return AVIF_RESULT_DECODE_ALPHA_FAILED;
}
avifImageFreePlanes(decoder->image, AVIF_PLANES_ALL);
decoder->image->width = src->width;
decoder->image->height = src->height;
decoder->image->depth = src->depth;
}
avifImageStealPlanes(decoder->image, src, tile->input->itemCategory == AVIF_ITEM_ALPHA ? AVIF_PLANES_A : AVIF_PLANES_YUV);
}
}
return AVIF_RESULT_OK;
}
avifResult avifDecoderNextImage(avifDecoder * decoder)
{
avifDiagnosticsClearError(&decoder->diag);
if (!decoder->data || decoder->data->tiles.count == 0) {
return AVIF_RESULT_NO_CONTENT;
}
if (!decoder->io || !decoder->io->read) {
return AVIF_RESULT_IO_NOT_SET;
}
if ((decoder->data->color.decodedTileCount == decoder->data->color.tileCount) &&
(decoder->data->alpha.decodedTileCount == decoder->data->alpha.tileCount)) {
decoder->data->color.decodedTileCount = 0;
decoder->data->alpha.decodedTileCount = 0;
}
assert(decoder->data->tiles.count == (decoder->data->color.tileCount + decoder->data->alpha.tileCount));
const uint32_t nextImageIndex = (uint32_t)(decoder->imageIndex + 1);
if (!decoder->data->tiles.tile[0].codec) {
AVIF_CHECKRES(avifDecoderCreateCodecs(decoder));
}
const avifResult prepareColorTileResult = avifDecoderPrepareTiles(decoder, nextImageIndex, &decoder->data->color);
if (!decoder->allowIncremental || (prepareColorTileResult != AVIF_RESULT_WAITING_ON_IO)) {
AVIF_CHECKRES(prepareColorTileResult);
}
const avifResult prepareAlphaTileResult = avifDecoderPrepareTiles(decoder, nextImageIndex, &decoder->data->alpha);
if (!decoder->allowIncremental || (prepareAlphaTileResult != AVIF_RESULT_WAITING_ON_IO)) {
AVIF_CHECKRES(prepareAlphaTileResult);
}
AVIF_CHECKRES(avifDecoderDecodeTiles(decoder, nextImageIndex, &decoder->data->color));
AVIF_CHECKRES(avifDecoderDecodeTiles(decoder, nextImageIndex, &decoder->data->alpha));
if ((decoder->data->color.decodedTileCount != decoder->data->color.tileCount) ||
(decoder->data->alpha.decodedTileCount != decoder->data->alpha.tileCount)) {
assert(decoder->allowIncremental);
assert((prepareColorTileResult == AVIF_RESULT_WAITING_ON_IO) || (prepareAlphaTileResult == AVIF_RESULT_WAITING_ON_IO));
return AVIF_RESULT_WAITING_ON_IO;
}
assert((prepareColorTileResult == AVIF_RESULT_OK) && (prepareAlphaTileResult == AVIF_RESULT_OK));
decoder->imageIndex = (int)nextImageIndex;
if (decoder->data->sourceSampleTable) {
avifResult timingResult = avifDecoderNthImageTiming(decoder, decoder->imageIndex, &decoder->imageTiming);
if (timingResult != AVIF_RESULT_OK) {
return timingResult;
}
}
return AVIF_RESULT_OK;
}
avifResult avifDecoderNthImageTiming(const avifDecoder * decoder, uint32_t frameIndex, avifImageTiming * outTiming)
{
if (!decoder->data) {
return AVIF_RESULT_NO_CONTENT;
}
if ((frameIndex > INT_MAX) || ((int)frameIndex >= decoder->imageCount)) {
return AVIF_RESULT_NO_IMAGES_REMAINING;
}
if (!decoder->data->sourceSampleTable) {
*outTiming = decoder->imageTiming;
return AVIF_RESULT_OK;
}
outTiming->timescale = decoder->timescale;
outTiming->ptsInTimescales = 0;
for (int imageIndex = 0; imageIndex < (int)frameIndex; ++imageIndex) {
outTiming->ptsInTimescales += avifSampleTableGetImageDelta(decoder->data->sourceSampleTable, imageIndex);
}
outTiming->durationInTimescales = avifSampleTableGetImageDelta(decoder->data->sourceSampleTable, frameIndex);
if (outTiming->timescale > 0) {
outTiming->pts = (double)outTiming->ptsInTimescales / (double)outTiming->timescale;
outTiming->duration = (double)outTiming->durationInTimescales / (double)outTiming->timescale;
} else {
outTiming->pts = 0.0;
outTiming->duration = 0.0;
}
return AVIF_RESULT_OK;
}
avifResult avifDecoderNthImage(avifDecoder * decoder, uint32_t frameIndex)
{
avifDiagnosticsClearError(&decoder->diag);
if (!decoder->data) {
return AVIF_RESULT_NO_CONTENT;
}
if ((frameIndex > INT_MAX) || ((int)frameIndex >= decoder->imageCount)) {
return AVIF_RESULT_NO_IMAGES_REMAINING;
}
int requestedIndex = (int)frameIndex;
if (requestedIndex == (decoder->imageIndex + 1)) {
return avifDecoderNextImage(decoder);
}
if (requestedIndex == decoder->imageIndex) {
if ((decoder->data->color.decodedTileCount == decoder->data->color.tileCount) &&
(decoder->data->alpha.decodedTileCount == decoder->data->alpha.tileCount)) {
return AVIF_RESULT_OK;
}
}
int nearestKeyFrame = (int)avifDecoderNearestKeyframe(decoder, frameIndex);
if ((nearestKeyFrame > (decoder->imageIndex + 1)) || (requestedIndex <= decoder->imageIndex)) {
decoder->imageIndex = nearestKeyFrame - 1; avifDecoderDataResetCodec(decoder->data);
}
for (;;) {
avifResult result = avifDecoderNextImage(decoder);
if (result != AVIF_RESULT_OK) {
return result;
}
if (requestedIndex == decoder->imageIndex) {
break;
}
}
return AVIF_RESULT_OK;
}
avifBool avifDecoderIsKeyframe(const avifDecoder * decoder, uint32_t frameIndex)
{
if (!decoder->data || (decoder->data->tiles.count == 0)) {
return AVIF_FALSE;
}
for (unsigned int i = 0; i < decoder->data->tiles.count; ++i) {
const avifTile * tile = &decoder->data->tiles.tile[i];
if ((frameIndex >= tile->input->samples.count) || !tile->input->samples.sample[frameIndex].sync) {
return AVIF_FALSE;
}
}
return AVIF_TRUE;
}
uint32_t avifDecoderNearestKeyframe(const avifDecoder * decoder, uint32_t frameIndex)
{
if (!decoder->data) {
return 0;
}
for (; frameIndex != 0; --frameIndex) {
if (avifDecoderIsKeyframe(decoder, frameIndex)) {
break;
}
}
return frameIndex;
}
static uint32_t avifGetDecodedRowCount(const avifDecoder * decoder, const avifTileInfo * info)
{
if (info->decodedTileCount == info->tileCount) {
return decoder->image->height;
}
if (info->decodedTileCount == 0) {
return 0;
}
if ((info->grid.rows > 0) && (info->grid.columns > 0)) {
const uint32_t tileHeight = decoder->data->tiles.tile[info->firstTileIndex].height;
return AVIF_MIN((info->decodedTileCount / info->grid.columns) * tileHeight, decoder->image->height);
} else {
return decoder->image->height;
}
}
uint32_t avifDecoderDecodedRowCount(const avifDecoder * decoder)
{
const uint32_t colorRowCount = avifGetDecodedRowCount(decoder, &decoder->data->color);
if (colorRowCount == 0) {
return 0;
}
const uint32_t alphaRowCount = avifGetDecodedRowCount(decoder, &decoder->data->alpha);
return AVIF_MIN(colorRowCount, alphaRowCount);
}
avifResult avifDecoderRead(avifDecoder * decoder, avifImage * image)
{
avifResult result = avifDecoderParse(decoder);
if (result != AVIF_RESULT_OK) {
return result;
}
result = avifDecoderNextImage(decoder);
if (result != AVIF_RESULT_OK) {
return result;
}
return avifImageCopy(image, decoder->image, AVIF_PLANES_ALL);
}
avifResult avifDecoderReadMemory(avifDecoder * decoder, avifImage * image, const uint8_t * data, size_t size)
{
avifDiagnosticsClearError(&decoder->diag);
avifResult result = avifDecoderSetIOMemory(decoder, data, size);
if (result != AVIF_RESULT_OK) {
return result;
}
return avifDecoderRead(decoder, image);
}
avifResult avifDecoderReadFile(avifDecoder * decoder, avifImage * image, const char * filename)
{
avifDiagnosticsClearError(&decoder->diag);
avifResult result = avifDecoderSetIOFile(decoder, filename);
if (result != AVIF_RESULT_OK) {
return result;
}
return avifDecoderRead(decoder, image);
}