#include <assert.h>
#include <limits.h>
#include <math.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include "src/mux/animi.h"
#include "src/utils/utils.h"
#include "src/webp/decode.h"
#include "src/webp/encode.h"
#include "src/webp/format_constants.h"
#include "src/webp/mux.h"
#include "src/webp/mux_types.h"
#include "src/webp/types.h"
#if defined(_MSC_VER) && _MSC_VER < 1900
#define snprintf _snprintf
#endif
#define ERROR_STR_MAX_LENGTH 100
typedef struct {
int x_offset, y_offset, width, height;
} FrameRectangle;
typedef struct {
WebPMuxFrameInfo sub_frame; WebPMuxFrameInfo key_frame; int is_key_frame; } EncodedFrame;
struct WebPAnimEncoder {
const int canvas_width; const int canvas_height; const WebPAnimEncoderOptions options;
FrameRectangle prev_rect; WebPConfig last_config; WebPConfig last_config_reversed;
WebPPicture* curr_canvas;
WebPPicture curr_canvas_copy; int curr_canvas_copy_modified;
WebPPicture prev_canvas; WebPPicture prev_canvas_disposed;
EncodedFrame* encoded_frames; size_t size; size_t start; size_t count; size_t flush_count;
int64_t best_delta; int keyframe; int count_since_key_frame;
int first_timestamp; int prev_timestamp; int prev_candidate_undecided;
int is_first_frame; int got_null_frame;
size_t in_frame_count; size_t out_frame_count;
WebPMux* mux; char error_str[ERROR_STR_MAX_LENGTH]; };
#define DELTA_INFINITY (1ULL << 32)
#define KEYFRAME_NONE (-1)
static void ResetCounters(WebPAnimEncoder* const enc) {
enc->start = 0;
enc->count = 0;
enc->flush_count = 0;
enc->best_delta = DELTA_INFINITY;
enc->keyframe = KEYFRAME_NONE;
}
static void DisableKeyframes(WebPAnimEncoderOptions* const enc_options) {
enc_options->kmax = INT_MAX;
enc_options->kmin = enc_options->kmax - 1;
}
#define MAX_CACHED_FRAMES 30
static void SanitizeEncoderOptions(WebPAnimEncoderOptions* const enc_options) {
int print_warning = enc_options->verbose;
if (enc_options->minimize_size) {
DisableKeyframes(enc_options);
}
if (enc_options->kmax == 1) { enc_options->kmin = 0;
enc_options->kmax = 0;
return;
} else if (enc_options->kmax <= 0) {
DisableKeyframes(enc_options);
print_warning = 0;
}
if (enc_options->kmin >= enc_options->kmax) {
enc_options->kmin = enc_options->kmax - 1;
if (print_warning) {
fprintf(stderr, "WARNING: Setting kmin = %d, so that kmin < kmax.\n",
enc_options->kmin);
}
} else {
const int kmin_limit = enc_options->kmax / 2 + 1;
if (enc_options->kmin < kmin_limit && kmin_limit < enc_options->kmax) {
enc_options->kmin = kmin_limit;
if (print_warning) {
fprintf(stderr,
"WARNING: Setting kmin = %d, so that kmin >= kmax / 2 + 1.\n",
enc_options->kmin);
}
}
}
if (enc_options->kmax - enc_options->kmin > MAX_CACHED_FRAMES) {
enc_options->kmin = enc_options->kmax - MAX_CACHED_FRAMES;
if (print_warning) {
fprintf(stderr,
"WARNING: Setting kmin = %d, so that kmax - kmin <= %d.\n",
enc_options->kmin, MAX_CACHED_FRAMES);
}
}
assert(enc_options->kmin < enc_options->kmax);
}
#undef MAX_CACHED_FRAMES
static void DefaultEncoderOptions(WebPAnimEncoderOptions* const enc_options) {
enc_options->anim_params.loop_count = 0;
enc_options->anim_params.bgcolor = 0xffffffff; enc_options->minimize_size = 0;
DisableKeyframes(enc_options);
enc_options->allow_mixed = 0;
enc_options->verbose = 0;
}
int WebPAnimEncoderOptionsInitInternal(WebPAnimEncoderOptions* enc_options,
int abi_version) {
if (enc_options == NULL ||
WEBP_ABI_IS_INCOMPATIBLE(abi_version, WEBP_MUX_ABI_VERSION)) {
return 0;
}
DefaultEncoderOptions(enc_options);
return 1;
}
#define TRANSPARENT_COLOR 0x00000000
static void ClearRectangle(WebPPicture* const picture,
int left, int top, int width, int height) {
int j;
for (j = top; j < top + height; ++j) {
uint32_t* const dst = picture->argb + j * picture->argb_stride;
int i;
for (i = left; i < left + width; ++i) {
dst[i] = TRANSPARENT_COLOR;
}
}
}
static void WebPUtilClearPic(WebPPicture* const picture,
const FrameRectangle* const rect) {
if (rect != NULL) {
ClearRectangle(picture, rect->x_offset, rect->y_offset,
rect->width, rect->height);
} else {
ClearRectangle(picture, 0, 0, picture->width, picture->height);
}
}
static void MarkNoError(WebPAnimEncoder* const enc) {
enc->error_str[0] = '\0'; }
static void MarkError(WebPAnimEncoder* const enc, const char* str) {
if (snprintf(enc->error_str, ERROR_STR_MAX_LENGTH, "%s.", str) < 0) {
assert(0); }
}
static void MarkError2(WebPAnimEncoder* const enc,
const char* str, int error_code) {
if (snprintf(enc->error_str, ERROR_STR_MAX_LENGTH, "%s: %d.", str,
error_code) < 0) {
assert(0); }
}
WebPAnimEncoder* WebPAnimEncoderNewInternal(
int width, int height, const WebPAnimEncoderOptions* enc_options,
int abi_version) {
WebPAnimEncoder* enc;
if (WEBP_ABI_IS_INCOMPATIBLE(abi_version, WEBP_MUX_ABI_VERSION)) {
return NULL;
}
if (width <= 0 || height <= 0 ||
(width * (uint64_t)height) >= MAX_IMAGE_AREA) {
return NULL;
}
enc = (WebPAnimEncoder*)WebPSafeCalloc(1, sizeof(*enc));
if (enc == NULL) return NULL;
MarkNoError(enc);
*(int*)&enc->canvas_width = width;
*(int*)&enc->canvas_height = height;
if (enc_options != NULL) {
*(WebPAnimEncoderOptions*)&enc->options = *enc_options;
SanitizeEncoderOptions((WebPAnimEncoderOptions*)&enc->options);
} else {
DefaultEncoderOptions((WebPAnimEncoderOptions*)&enc->options);
}
if (!WebPPictureInit(&enc->curr_canvas_copy) ||
!WebPPictureInit(&enc->prev_canvas) ||
!WebPPictureInit(&enc->prev_canvas_disposed)) {
goto Err;
}
enc->curr_canvas_copy.width = width;
enc->curr_canvas_copy.height = height;
enc->curr_canvas_copy.use_argb = 1;
if (!WebPPictureAlloc(&enc->curr_canvas_copy) ||
!WebPPictureCopy(&enc->curr_canvas_copy, &enc->prev_canvas) ||
!WebPPictureCopy(&enc->curr_canvas_copy, &enc->prev_canvas_disposed)) {
goto Err;
}
WebPUtilClearPic(&enc->prev_canvas, NULL);
enc->curr_canvas_copy_modified = 1;
ResetCounters(enc);
enc->size = enc->options.kmax - enc->options.kmin + 1;
if (enc->size < 2) enc->size = 2;
enc->encoded_frames =
(EncodedFrame*)WebPSafeCalloc(enc->size, sizeof(*enc->encoded_frames));
if (enc->encoded_frames == NULL) goto Err;
enc->mux = WebPMuxNew();
if (enc->mux == NULL) goto Err;
enc->count_since_key_frame = 0;
enc->first_timestamp = 0;
enc->prev_timestamp = 0;
enc->prev_candidate_undecided = 0;
enc->is_first_frame = 1;
enc->got_null_frame = 0;
return enc;
Err:
WebPAnimEncoderDelete(enc);
return NULL;
}
static void FrameRelease(EncodedFrame* const encoded_frame) {
if (encoded_frame != NULL) {
WebPDataClear(&encoded_frame->sub_frame.bitstream);
WebPDataClear(&encoded_frame->key_frame.bitstream);
memset(encoded_frame, 0, sizeof(*encoded_frame));
}
}
void WebPAnimEncoderDelete(WebPAnimEncoder* enc) {
if (enc != NULL) {
WebPPictureFree(&enc->curr_canvas_copy);
WebPPictureFree(&enc->prev_canvas);
WebPPictureFree(&enc->prev_canvas_disposed);
if (enc->encoded_frames != NULL) {
size_t i;
for (i = 0; i < enc->size; ++i) {
FrameRelease(&enc->encoded_frames[i]);
}
WebPSafeFree(enc->encoded_frames);
}
WebPMuxDelete(enc->mux);
WebPSafeFree(enc);
}
}
static EncodedFrame* GetFrame(const WebPAnimEncoder* const enc,
size_t position) {
assert(enc->start + position < enc->size);
return &enc->encoded_frames[enc->start + position];
}
typedef int (*ComparePixelsFunc)(const uint32_t*, int, const uint32_t*, int,
int, int);
static WEBP_INLINE int ComparePixelsLossless(const uint32_t* src, int src_step,
const uint32_t* dst, int dst_step,
int length, int max_allowed_diff) {
(void)max_allowed_diff;
assert(length > 0);
while (length-- > 0) {
if (*src != *dst) {
return 0;
}
src += src_step;
dst += dst_step;
}
return 1;
}
static WEBP_INLINE int PixelsAreSimilar(uint32_t src, uint32_t dst,
int max_allowed_diff) {
const int src_a = (src >> 24) & 0xff;
const int src_r = (src >> 16) & 0xff;
const int src_g = (src >> 8) & 0xff;
const int src_b = (src >> 0) & 0xff;
const int dst_a = (dst >> 24) & 0xff;
const int dst_r = (dst >> 16) & 0xff;
const int dst_g = (dst >> 8) & 0xff;
const int dst_b = (dst >> 0) & 0xff;
return (src_a == dst_a) &&
(abs(src_r - dst_r) * dst_a <= (max_allowed_diff * 255)) &&
(abs(src_g - dst_g) * dst_a <= (max_allowed_diff * 255)) &&
(abs(src_b - dst_b) * dst_a <= (max_allowed_diff * 255));
}
static WEBP_INLINE int ComparePixelsLossy(const uint32_t* src, int src_step,
const uint32_t* dst, int dst_step,
int length, int max_allowed_diff) {
assert(length > 0);
while (length-- > 0) {
if (!PixelsAreSimilar(*src, *dst, max_allowed_diff)) {
return 0;
}
src += src_step;
dst += dst_step;
}
return 1;
}
static int IsEmptyRect(const FrameRectangle* const rect) {
return (rect->width == 0) || (rect->height == 0);
}
static int QualityToMaxDiff(float quality) {
const double val = pow(quality / 100., 0.5);
const double max_diff = 31 * (1 - val) + 1 * val;
return (int)(max_diff + 0.5);
}
static void MinimizeChangeRectangle(const WebPPicture* const src,
const WebPPicture* const dst,
FrameRectangle* const rect,
int is_lossless, float quality) {
int i, j;
const ComparePixelsFunc compare_pixels =
is_lossless ? ComparePixelsLossless : ComparePixelsLossy;
const int max_allowed_diff_lossy = QualityToMaxDiff(quality);
const int max_allowed_diff = is_lossless ? 0 : max_allowed_diff_lossy;
assert(src->width == dst->width && src->height == dst->height);
assert(rect->x_offset + rect->width <= dst->width);
assert(rect->y_offset + rect->height <= dst->height);
for (i = rect->x_offset; i < rect->x_offset + rect->width; ++i) {
const uint32_t* const src_argb =
&src->argb[rect->y_offset * src->argb_stride + i];
const uint32_t* const dst_argb =
&dst->argb[rect->y_offset * dst->argb_stride + i];
if (compare_pixels(src_argb, src->argb_stride, dst_argb, dst->argb_stride,
rect->height, max_allowed_diff)) {
--rect->width; ++rect->x_offset;
} else {
break;
}
}
if (rect->width == 0) goto NoChange;
for (i = rect->x_offset + rect->width - 1; i >= rect->x_offset; --i) {
const uint32_t* const src_argb =
&src->argb[rect->y_offset * src->argb_stride + i];
const uint32_t* const dst_argb =
&dst->argb[rect->y_offset * dst->argb_stride + i];
if (compare_pixels(src_argb, src->argb_stride, dst_argb, dst->argb_stride,
rect->height, max_allowed_diff)) {
--rect->width; } else {
break;
}
}
if (rect->width == 0) goto NoChange;
for (j = rect->y_offset; j < rect->y_offset + rect->height; ++j) {
const uint32_t* const src_argb =
&src->argb[j * src->argb_stride + rect->x_offset];
const uint32_t* const dst_argb =
&dst->argb[j * dst->argb_stride + rect->x_offset];
if (compare_pixels(src_argb, 1, dst_argb, 1, rect->width,
max_allowed_diff)) {
--rect->height; ++rect->y_offset;
} else {
break;
}
}
if (rect->height == 0) goto NoChange;
for (j = rect->y_offset + rect->height - 1; j >= rect->y_offset; --j) {
const uint32_t* const src_argb =
&src->argb[j * src->argb_stride + rect->x_offset];
const uint32_t* const dst_argb =
&dst->argb[j * dst->argb_stride + rect->x_offset];
if (compare_pixels(src_argb, 1, dst_argb, 1, rect->width,
max_allowed_diff)) {
--rect->height; } else {
break;
}
}
if (rect->height == 0) goto NoChange;
if (IsEmptyRect(rect)) {
NoChange:
rect->x_offset = 0;
rect->y_offset = 0;
rect->width = 0;
rect->height = 0;
}
}
static WEBP_INLINE void SnapToEvenOffsets(FrameRectangle* const rect) {
rect->width += (rect->x_offset & 1);
rect->height += (rect->y_offset & 1);
rect->x_offset &= ~1;
rect->y_offset &= ~1;
}
typedef struct {
int should_try; int empty_rect_allowed; FrameRectangle rect_ll; WebPPicture sub_frame_ll; FrameRectangle rect_lossy; WebPPicture sub_frame_lossy; } SubFrameParams;
static int SubFrameParamsInit(SubFrameParams* const params,
int should_try, int empty_rect_allowed) {
params->should_try = should_try;
params->empty_rect_allowed = empty_rect_allowed;
if (!WebPPictureInit(¶ms->sub_frame_ll) ||
!WebPPictureInit(¶ms->sub_frame_lossy)) {
return 0;
}
return 1;
}
static void SubFrameParamsFree(SubFrameParams* const params) {
WebPPictureFree(¶ms->sub_frame_ll);
WebPPictureFree(¶ms->sub_frame_lossy);
}
static int GetSubRect(const WebPPicture* const prev_canvas,
const WebPPicture* const curr_canvas, int is_key_frame,
int is_first_frame, int empty_rect_allowed,
int is_lossless, float quality,
FrameRectangle* const rect,
WebPPicture* const sub_frame) {
if (!is_key_frame || is_first_frame) { MinimizeChangeRectangle(prev_canvas, curr_canvas, rect,
is_lossless, quality);
}
if (IsEmptyRect(rect)) {
if (empty_rect_allowed) { return 1;
} else { rect->width = 1;
rect->height = 1;
assert(rect->x_offset == 0);
assert(rect->y_offset == 0);
}
}
SnapToEvenOffsets(rect);
return WebPPictureView(curr_canvas, rect->x_offset, rect->y_offset,
rect->width, rect->height, sub_frame);
}
static int GetSubRects(const WebPPicture* const prev_canvas,
const WebPPicture* const curr_canvas, int is_key_frame,
int is_first_frame, float quality,
SubFrameParams* const params) {
params->rect_ll.x_offset = 0;
params->rect_ll.y_offset = 0;
params->rect_ll.width = curr_canvas->width;
params->rect_ll.height = curr_canvas->height;
if (!GetSubRect(prev_canvas, curr_canvas, is_key_frame, is_first_frame,
params->empty_rect_allowed, 1, quality,
¶ms->rect_ll, ¶ms->sub_frame_ll)) {
return 0;
}
params->rect_lossy = params->rect_ll; return GetSubRect(prev_canvas, curr_canvas, is_key_frame, is_first_frame,
params->empty_rect_allowed, 0, quality,
¶ms->rect_lossy, ¶ms->sub_frame_lossy);
}
static WEBP_INLINE int clip(int v, int min_v, int max_v) {
return (v < min_v) ? min_v : (v > max_v) ? max_v : v;
}
int WebPAnimEncoderRefineRect(
const WebPPicture* const prev_canvas, const WebPPicture* const curr_canvas,
int is_lossless, float quality, int* const x_offset, int* const y_offset,
int* const width, int* const height) {
FrameRectangle rect;
int right, left, bottom, top;
if (prev_canvas == NULL || curr_canvas == NULL ||
prev_canvas->width != curr_canvas->width ||
prev_canvas->height != curr_canvas->height ||
!prev_canvas->use_argb || !curr_canvas->use_argb) {
return 0;
}
right = clip(*x_offset + *width, 0, curr_canvas->width);
left = clip(*x_offset, 0, curr_canvas->width - 1);
bottom = clip(*y_offset + *height, 0, curr_canvas->height);
top = clip(*y_offset, 0, curr_canvas->height - 1);
rect.x_offset = left;
rect.y_offset = top;
rect.width = clip(right - left, 0, curr_canvas->width - rect.x_offset);
rect.height = clip(bottom - top, 0, curr_canvas->height - rect.y_offset);
MinimizeChangeRectangle(prev_canvas, curr_canvas, &rect, is_lossless,
quality);
SnapToEvenOffsets(&rect);
*x_offset = rect.x_offset;
*y_offset = rect.y_offset;
*width = rect.width;
*height = rect.height;
return 1;
}
static void DisposeFrameRectangle(int dispose_method,
const FrameRectangle* const rect,
WebPPicture* const curr_canvas) {
assert(rect != NULL);
if (dispose_method == WEBP_MUX_DISPOSE_BACKGROUND) {
WebPUtilClearPic(curr_canvas, rect);
}
}
static uint32_t RectArea(const FrameRectangle* const rect) {
return (uint32_t)rect->width * rect->height;
}
static int IsLosslessBlendingPossible(const WebPPicture* const src,
const WebPPicture* const dst,
const FrameRectangle* const rect) {
int i, j;
assert(src->width == dst->width && src->height == dst->height);
assert(rect->x_offset + rect->width <= dst->width);
assert(rect->y_offset + rect->height <= dst->height);
for (j = rect->y_offset; j < rect->y_offset + rect->height; ++j) {
for (i = rect->x_offset; i < rect->x_offset + rect->width; ++i) {
const uint32_t src_pixel = src->argb[j * src->argb_stride + i];
const uint32_t dst_pixel = dst->argb[j * dst->argb_stride + i];
const uint32_t dst_alpha = dst_pixel >> 24;
if (dst_alpha != 0xff && src_pixel != dst_pixel) {
return 0;
}
}
}
return 1;
}
static int IsLossyBlendingPossible(const WebPPicture* const src,
const WebPPicture* const dst,
const FrameRectangle* const rect,
float quality) {
const int max_allowed_diff_lossy = QualityToMaxDiff(quality);
int i, j;
assert(src->width == dst->width && src->height == dst->height);
assert(rect->x_offset + rect->width <= dst->width);
assert(rect->y_offset + rect->height <= dst->height);
for (j = rect->y_offset; j < rect->y_offset + rect->height; ++j) {
for (i = rect->x_offset; i < rect->x_offset + rect->width; ++i) {
const uint32_t src_pixel = src->argb[j * src->argb_stride + i];
const uint32_t dst_pixel = dst->argb[j * dst->argb_stride + i];
const uint32_t dst_alpha = dst_pixel >> 24;
if (dst_alpha != 0xff &&
!PixelsAreSimilar(src_pixel, dst_pixel, max_allowed_diff_lossy)) {
return 0;
}
}
}
return 1;
}
static int IncreaseTransparency(const WebPPicture* const src,
const FrameRectangle* const rect,
WebPPicture* const dst) {
int i, j;
int modified = 0;
assert(src != NULL && dst != NULL && rect != NULL);
assert(src->width == dst->width && src->height == dst->height);
for (j = rect->y_offset; j < rect->y_offset + rect->height; ++j) {
const uint32_t* const psrc = src->argb + j * src->argb_stride;
uint32_t* const pdst = dst->argb + j * dst->argb_stride;
for (i = rect->x_offset; i < rect->x_offset + rect->width; ++i) {
if (psrc[i] == pdst[i] && pdst[i] != TRANSPARENT_COLOR) {
pdst[i] = TRANSPARENT_COLOR;
modified = 1;
}
}
}
return modified;
}
#undef TRANSPARENT_COLOR
static int FlattenSimilarBlocks(const WebPPicture* const src,
const FrameRectangle* const rect,
WebPPicture* const dst, float quality) {
const int max_allowed_diff_lossy = QualityToMaxDiff(quality);
int i, j;
int modified = 0;
const int block_size = 8;
const int y_start = (rect->y_offset + block_size) & ~(block_size - 1);
const int y_end = (rect->y_offset + rect->height) & ~(block_size - 1);
const int x_start = (rect->x_offset + block_size) & ~(block_size - 1);
const int x_end = (rect->x_offset + rect->width) & ~(block_size - 1);
assert(src != NULL && dst != NULL && rect != NULL);
assert(src->width == dst->width && src->height == dst->height);
assert((block_size & (block_size - 1)) == 0); for (j = y_start; j < y_end; j += block_size) {
for (i = x_start; i < x_end; i += block_size) {
int cnt = 0;
int avg_r = 0, avg_g = 0, avg_b = 0;
int x, y;
const uint32_t* const psrc = src->argb + j * src->argb_stride + i;
uint32_t* const pdst = dst->argb + j * dst->argb_stride + i;
for (y = 0; y < block_size; ++y) {
for (x = 0; x < block_size; ++x) {
const uint32_t src_pixel = psrc[x + y * src->argb_stride];
const int alpha = src_pixel >> 24;
if (alpha == 0xff &&
PixelsAreSimilar(src_pixel, pdst[x + y * dst->argb_stride],
max_allowed_diff_lossy)) {
++cnt;
avg_r += (src_pixel >> 16) & 0xff;
avg_g += (src_pixel >> 8) & 0xff;
avg_b += (src_pixel >> 0) & 0xff;
}
}
}
if (cnt == block_size * block_size) {
const uint32_t color = (0x00 << 24) |
((avg_r / cnt) << 16) |
((avg_g / cnt) << 8) |
((avg_b / cnt) << 0);
for (y = 0; y < block_size; ++y) {
for (x = 0; x < block_size; ++x) {
pdst[x + y * dst->argb_stride] = color;
}
}
modified = 1;
}
}
}
return modified;
}
static int EncodeFrame(const WebPConfig* const config, WebPPicture* const pic,
WebPMemoryWriter* const memory) {
pic->use_argb = 1;
pic->writer = WebPMemoryWrite;
pic->custom_ptr = memory;
if (!WebPEncode(config, pic)) {
return 0;
}
return 1;
}
typedef struct {
WebPMemoryWriter mem;
WebPMuxFrameInfo info;
FrameRectangle rect;
int evaluate; } Candidate;
static WebPEncodingError EncodeCandidate(WebPPicture* const sub_frame,
const FrameRectangle* const rect,
const WebPConfig* const encoder_config,
int use_blending,
Candidate* const candidate) {
WebPConfig config = *encoder_config;
WebPEncodingError error_code = VP8_ENC_OK;
assert(candidate != NULL);
memset(candidate, 0, sizeof(*candidate));
candidate->rect = *rect;
candidate->info.id = WEBP_CHUNK_ANMF;
candidate->info.x_offset = rect->x_offset;
candidate->info.y_offset = rect->y_offset;
candidate->info.dispose_method = WEBP_MUX_DISPOSE_NONE; candidate->info.blend_method =
use_blending ? WEBP_MUX_BLEND : WEBP_MUX_NO_BLEND;
candidate->info.duration = 0;
WebPMemoryWriterInit(&candidate->mem);
if (!config.lossless && use_blending) {
config.autofilter = 0;
config.filter_strength = 0;
}
if (!EncodeFrame(&config, sub_frame, &candidate->mem)) {
error_code = sub_frame->error_code;
goto Err;
}
candidate->evaluate = 1;
return error_code;
Err:
WebPMemoryWriterClear(&candidate->mem);
return error_code;
}
static void CopyCurrentCanvas(WebPAnimEncoder* const enc) {
if (enc->curr_canvas_copy_modified) {
WebPCopyPixels(enc->curr_canvas, &enc->curr_canvas_copy);
enc->curr_canvas_copy.progress_hook = enc->curr_canvas->progress_hook;
enc->curr_canvas_copy.user_data = enc->curr_canvas->user_data;
enc->curr_canvas_copy_modified = 0;
}
}
enum {
LL_DISP_NONE = 0,
LL_DISP_BG,
LOSSY_DISP_NONE,
LOSSY_DISP_BG,
CANDIDATE_COUNT
};
#define MIN_COLORS_LOSSY 31
#define MAX_COLORS_LOSSLESS 194
static WebPEncodingError GenerateCandidates(
WebPAnimEncoder* const enc, Candidate candidates[CANDIDATE_COUNT],
WebPMuxAnimDispose dispose_method, int is_lossless, int is_key_frame,
SubFrameParams* const params,
const WebPConfig* const config_ll, const WebPConfig* const config_lossy) {
WebPEncodingError error_code = VP8_ENC_OK;
const int is_dispose_none = (dispose_method == WEBP_MUX_DISPOSE_NONE);
Candidate* const candidate_ll =
is_dispose_none ? &candidates[LL_DISP_NONE] : &candidates[LL_DISP_BG];
Candidate* const candidate_lossy = is_dispose_none
? &candidates[LOSSY_DISP_NONE]
: &candidates[LOSSY_DISP_BG];
WebPPicture* const curr_canvas = &enc->curr_canvas_copy;
const WebPPicture* const prev_canvas =
is_dispose_none ? &enc->prev_canvas : &enc->prev_canvas_disposed;
int use_blending_ll, use_blending_lossy;
int evaluate_ll, evaluate_lossy;
CopyCurrentCanvas(enc);
use_blending_ll =
!is_key_frame &&
IsLosslessBlendingPossible(prev_canvas, curr_canvas, ¶ms->rect_ll);
use_blending_lossy =
!is_key_frame &&
IsLossyBlendingPossible(prev_canvas, curr_canvas, ¶ms->rect_lossy,
config_lossy->quality);
if (!enc->options.allow_mixed) {
evaluate_ll = is_lossless;
evaluate_lossy = !is_lossless;
} else if (enc->options.minimize_size) {
evaluate_ll = 1;
evaluate_lossy = 1;
} else { const int num_colors = WebPGetColorPalette(¶ms->sub_frame_ll, NULL);
evaluate_ll = (num_colors < MAX_COLORS_LOSSLESS);
evaluate_lossy = (num_colors >= MIN_COLORS_LOSSY);
}
if (evaluate_ll) {
CopyCurrentCanvas(enc);
if (use_blending_ll) {
enc->curr_canvas_copy_modified =
IncreaseTransparency(prev_canvas, ¶ms->rect_ll, curr_canvas);
}
error_code = EncodeCandidate(¶ms->sub_frame_ll, ¶ms->rect_ll,
config_ll, use_blending_ll, candidate_ll);
if (error_code != VP8_ENC_OK) return error_code;
}
if (evaluate_lossy) {
CopyCurrentCanvas(enc);
if (use_blending_lossy) {
enc->curr_canvas_copy_modified =
FlattenSimilarBlocks(prev_canvas, ¶ms->rect_lossy, curr_canvas,
config_lossy->quality);
}
error_code =
EncodeCandidate(¶ms->sub_frame_lossy, ¶ms->rect_lossy,
config_lossy, use_blending_lossy, candidate_lossy);
if (error_code != VP8_ENC_OK) return error_code;
enc->curr_canvas_copy_modified = 1;
}
return error_code;
}
#undef MIN_COLORS_LOSSY
#undef MAX_COLORS_LOSSLESS
static void GetEncodedData(const WebPMemoryWriter* const memory,
WebPData* const encoded_data) {
encoded_data->bytes = memory->mem;
encoded_data->size = memory->size;
}
static void SetPreviousDisposeMethod(WebPAnimEncoder* const enc,
WebPMuxAnimDispose dispose_method) {
const size_t position = enc->count - 2;
EncodedFrame* const prev_enc_frame = GetFrame(enc, position);
assert(enc->count >= 2);
if (enc->prev_candidate_undecided) {
assert(dispose_method == WEBP_MUX_DISPOSE_NONE);
prev_enc_frame->sub_frame.dispose_method = dispose_method;
prev_enc_frame->key_frame.dispose_method = dispose_method;
} else {
WebPMuxFrameInfo* const prev_info = prev_enc_frame->is_key_frame
? &prev_enc_frame->key_frame
: &prev_enc_frame->sub_frame;
prev_info->dispose_method = dispose_method;
}
}
static int IncreasePreviousDuration(WebPAnimEncoder* const enc, int duration) {
const size_t position = enc->count - 1;
EncodedFrame* const prev_enc_frame = GetFrame(enc, position);
int new_duration;
assert(enc->count >= 1);
assert(!prev_enc_frame->is_key_frame ||
prev_enc_frame->sub_frame.duration ==
prev_enc_frame->key_frame.duration);
assert(prev_enc_frame->sub_frame.duration ==
(prev_enc_frame->sub_frame.duration & (MAX_DURATION - 1)));
assert(duration == (duration & (MAX_DURATION - 1)));
new_duration = prev_enc_frame->sub_frame.duration + duration;
if (new_duration >= MAX_DURATION) { const FrameRectangle rect = { 0, 0, 1, 1 };
const uint8_t lossless_1x1_bytes[] = {
0x52, 0x49, 0x46, 0x46, 0x14, 0x00, 0x00, 0x00, 0x57, 0x45, 0x42, 0x50,
0x56, 0x50, 0x38, 0x4c, 0x08, 0x00, 0x00, 0x00, 0x2f, 0x00, 0x00, 0x00,
0x10, 0x88, 0x88, 0x08
};
const WebPData lossless_1x1 = {
lossless_1x1_bytes, sizeof(lossless_1x1_bytes)
};
const uint8_t lossy_1x1_bytes[] = {
0x52, 0x49, 0x46, 0x46, 0x40, 0x00, 0x00, 0x00, 0x57, 0x45, 0x42, 0x50,
0x56, 0x50, 0x38, 0x58, 0x0a, 0x00, 0x00, 0x00, 0x10, 0x00, 0x00, 0x00,
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x41, 0x4c, 0x50, 0x48, 0x02, 0x00,
0x00, 0x00, 0x00, 0x00, 0x56, 0x50, 0x38, 0x20, 0x18, 0x00, 0x00, 0x00,
0x30, 0x01, 0x00, 0x9d, 0x01, 0x2a, 0x01, 0x00, 0x01, 0x00, 0x02, 0x00,
0x34, 0x25, 0xa4, 0x00, 0x03, 0x70, 0x00, 0xfe, 0xfb, 0xfd, 0x50, 0x00
};
const WebPData lossy_1x1 = { lossy_1x1_bytes, sizeof(lossy_1x1_bytes) };
const int can_use_lossless =
(enc->last_config.lossless || enc->options.allow_mixed);
EncodedFrame* const curr_enc_frame = GetFrame(enc, enc->count);
curr_enc_frame->is_key_frame = 0;
curr_enc_frame->sub_frame.id = WEBP_CHUNK_ANMF;
curr_enc_frame->sub_frame.x_offset = 0;
curr_enc_frame->sub_frame.y_offset = 0;
curr_enc_frame->sub_frame.dispose_method = WEBP_MUX_DISPOSE_NONE;
curr_enc_frame->sub_frame.blend_method = WEBP_MUX_BLEND;
curr_enc_frame->sub_frame.duration = duration;
if (!WebPDataCopy(can_use_lossless ? &lossless_1x1 : &lossy_1x1,
&curr_enc_frame->sub_frame.bitstream)) {
return 0;
}
++enc->count;
++enc->count_since_key_frame;
enc->flush_count = enc->count - 1;
enc->prev_candidate_undecided = 0;
enc->prev_rect = rect;
} else { prev_enc_frame->sub_frame.duration = new_duration;
prev_enc_frame->key_frame.duration = new_duration;
}
return 1;
}
static void PickBestCandidate(WebPAnimEncoder* const enc,
Candidate* const candidates, int is_key_frame,
EncodedFrame* const encoded_frame) {
int i;
int best_idx = -1;
size_t best_size = ~0;
for (i = 0; i < CANDIDATE_COUNT; ++i) {
if (candidates[i].evaluate) {
const size_t candidate_size = candidates[i].mem.size;
if (candidate_size < best_size) {
best_idx = i;
best_size = candidate_size;
}
}
}
assert(best_idx != -1);
for (i = 0; i < CANDIDATE_COUNT; ++i) {
if (candidates[i].evaluate) {
if (i == best_idx) {
WebPMuxFrameInfo* const dst = is_key_frame
? &encoded_frame->key_frame
: &encoded_frame->sub_frame;
*dst = candidates[i].info;
GetEncodedData(&candidates[i].mem, &dst->bitstream);
if (!is_key_frame) {
const WebPMuxAnimDispose prev_dispose_method =
(best_idx == LL_DISP_NONE || best_idx == LOSSY_DISP_NONE)
? WEBP_MUX_DISPOSE_NONE
: WEBP_MUX_DISPOSE_BACKGROUND;
SetPreviousDisposeMethod(enc, prev_dispose_method);
}
enc->prev_rect = candidates[i].rect; } else {
WebPMemoryWriterClear(&candidates[i].mem);
candidates[i].evaluate = 0;
}
}
}
}
static WebPEncodingError SetFrame(WebPAnimEncoder* const enc,
const WebPConfig* const config,
int is_key_frame,
EncodedFrame* const encoded_frame,
int* const frame_skipped) {
int i;
WebPEncodingError error_code = VP8_ENC_OK;
const WebPPicture* const curr_canvas = &enc->curr_canvas_copy;
const WebPPicture* const prev_canvas = &enc->prev_canvas;
Candidate candidates[CANDIDATE_COUNT];
const int is_lossless = config->lossless;
const int consider_lossless = is_lossless || enc->options.allow_mixed;
const int consider_lossy = !is_lossless || enc->options.allow_mixed;
const int is_first_frame = enc->is_first_frame;
const int empty_rect_allowed_none = !is_first_frame;
const int empty_rect_allowed_bg = 0;
const int dispose_bg_possible =
!is_key_frame && !enc->prev_candidate_undecided;
SubFrameParams dispose_none_params;
SubFrameParams dispose_bg_params;
WebPConfig config_ll = *config;
WebPConfig config_lossy = *config;
config_ll.lossless = 1;
config_lossy.lossless = 0;
enc->last_config = *config;
enc->last_config_reversed = config->lossless ? config_lossy : config_ll;
*frame_skipped = 0;
if (!SubFrameParamsInit(&dispose_none_params, 1, empty_rect_allowed_none) ||
!SubFrameParamsInit(&dispose_bg_params, 0, empty_rect_allowed_bg)) {
return VP8_ENC_ERROR_INVALID_CONFIGURATION;
}
memset(candidates, 0, sizeof(candidates));
if (!GetSubRects(prev_canvas, curr_canvas, is_key_frame, is_first_frame,
config_lossy.quality, &dispose_none_params)) {
error_code = VP8_ENC_ERROR_INVALID_CONFIGURATION;
goto Err;
}
if ((consider_lossless && IsEmptyRect(&dispose_none_params.rect_ll)) ||
(consider_lossy && IsEmptyRect(&dispose_none_params.rect_lossy))) {
assert(empty_rect_allowed_none);
*frame_skipped = 1;
goto End;
}
if (dispose_bg_possible) {
WebPPicture* const prev_canvas_disposed = &enc->prev_canvas_disposed;
WebPCopyPixels(prev_canvas, prev_canvas_disposed);
DisposeFrameRectangle(WEBP_MUX_DISPOSE_BACKGROUND, &enc->prev_rect,
prev_canvas_disposed);
if (!GetSubRects(prev_canvas_disposed, curr_canvas, is_key_frame,
is_first_frame, config_lossy.quality,
&dispose_bg_params)) {
error_code = VP8_ENC_ERROR_INVALID_CONFIGURATION;
goto Err;
}
assert(!IsEmptyRect(&dispose_bg_params.rect_ll));
assert(!IsEmptyRect(&dispose_bg_params.rect_lossy));
if (enc->options.minimize_size) { dispose_bg_params.should_try = 1;
dispose_none_params.should_try = 1;
} else if ((is_lossless &&
RectArea(&dispose_bg_params.rect_ll) <
RectArea(&dispose_none_params.rect_ll)) ||
(!is_lossless &&
RectArea(&dispose_bg_params.rect_lossy) <
RectArea(&dispose_none_params.rect_lossy))) {
dispose_bg_params.should_try = 1; dispose_none_params.should_try = 0;
}
}
if (dispose_none_params.should_try) {
error_code = GenerateCandidates(
enc, candidates, WEBP_MUX_DISPOSE_NONE, is_lossless, is_key_frame,
&dispose_none_params, &config_ll, &config_lossy);
if (error_code != VP8_ENC_OK) goto Err;
}
if (dispose_bg_params.should_try) {
assert(!enc->is_first_frame);
assert(dispose_bg_possible);
error_code = GenerateCandidates(
enc, candidates, WEBP_MUX_DISPOSE_BACKGROUND, is_lossless, is_key_frame,
&dispose_bg_params, &config_ll, &config_lossy);
if (error_code != VP8_ENC_OK) goto Err;
}
PickBestCandidate(enc, candidates, is_key_frame, encoded_frame);
goto End;
Err:
for (i = 0; i < CANDIDATE_COUNT; ++i) {
if (candidates[i].evaluate) {
WebPMemoryWriterClear(&candidates[i].mem);
}
}
End:
SubFrameParamsFree(&dispose_none_params);
SubFrameParamsFree(&dispose_bg_params);
return error_code;
}
static int64_t KeyFramePenalty(const EncodedFrame* const encoded_frame) {
return ((int64_t)encoded_frame->key_frame.bitstream.size -
encoded_frame->sub_frame.bitstream.size);
}
static int CacheFrame(WebPAnimEncoder* const enc,
const WebPConfig* const config) {
int ok = 0;
int frame_skipped = 0;
WebPEncodingError error_code = VP8_ENC_OK;
const size_t position = enc->count;
EncodedFrame* const encoded_frame = GetFrame(enc, position);
++enc->count;
if (enc->is_first_frame) { error_code = SetFrame(enc, config, 1, encoded_frame, &frame_skipped);
if (error_code != VP8_ENC_OK) goto End;
assert(frame_skipped == 0); assert(position == 0 && enc->count == 1);
encoded_frame->is_key_frame = 1;
enc->flush_count = 0;
enc->count_since_key_frame = 0;
enc->prev_candidate_undecided = 0;
} else {
++enc->count_since_key_frame;
if (enc->count_since_key_frame <= enc->options.kmin) {
error_code = SetFrame(enc, config, 0, encoded_frame, &frame_skipped);
if (error_code != VP8_ENC_OK) goto End;
if (frame_skipped) goto Skip;
encoded_frame->is_key_frame = 0;
enc->flush_count = enc->count - 1;
enc->prev_candidate_undecided = 0;
} else {
int64_t curr_delta;
FrameRectangle prev_rect_key, prev_rect_sub;
error_code = SetFrame(enc, config, 0, encoded_frame, &frame_skipped);
if (error_code != VP8_ENC_OK) goto End;
if (frame_skipped) goto Skip;
prev_rect_sub = enc->prev_rect;
error_code = SetFrame(enc, config, 1, encoded_frame, &frame_skipped);
if (error_code != VP8_ENC_OK) goto End;
assert(frame_skipped == 0); prev_rect_key = enc->prev_rect;
curr_delta = KeyFramePenalty(encoded_frame);
if (curr_delta <= enc->best_delta) { if (enc->keyframe != KEYFRAME_NONE) {
EncodedFrame* const old_keyframe = GetFrame(enc, enc->keyframe);
assert(old_keyframe->is_key_frame);
old_keyframe->is_key_frame = 0;
}
encoded_frame->is_key_frame = 1;
enc->prev_candidate_undecided = 1;
enc->keyframe = (int)position;
enc->best_delta = curr_delta;
enc->flush_count = enc->count - 1; } else {
encoded_frame->is_key_frame = 0;
enc->prev_candidate_undecided = 0;
}
if (enc->count_since_key_frame >= enc->options.kmax) {
enc->flush_count = enc->count - 1;
enc->count_since_key_frame = 0;
enc->keyframe = KEYFRAME_NONE;
enc->best_delta = DELTA_INFINITY;
}
if (!enc->prev_candidate_undecided) {
enc->prev_rect =
encoded_frame->is_key_frame ? prev_rect_key : prev_rect_sub;
}
}
}
WebPCopyPixels(enc->curr_canvas, &enc->prev_canvas);
enc->is_first_frame = 0;
Skip:
ok = 1;
++enc->in_frame_count;
End:
if (!ok || frame_skipped) {
FrameRelease(encoded_frame);
--enc->count;
if (!enc->is_first_frame) --enc->count_since_key_frame;
if (!ok) {
MarkError2(enc, "ERROR adding frame. WebPEncodingError", error_code);
}
}
enc->curr_canvas->error_code = error_code; assert(ok || error_code != VP8_ENC_OK);
return ok;
}
static int FlushFrames(WebPAnimEncoder* const enc) {
while (enc->flush_count > 0) {
WebPMuxError err;
EncodedFrame* const curr = GetFrame(enc, 0);
const WebPMuxFrameInfo* const info =
curr->is_key_frame ? &curr->key_frame : &curr->sub_frame;
assert(enc->mux != NULL);
err = WebPMuxPushFrame(enc->mux, info, 1);
if (err != WEBP_MUX_OK) {
MarkError2(enc, "ERROR adding frame. WebPMuxError", err);
return 0;
}
if (enc->options.verbose) {
fprintf(stderr, "INFO: Added frame. offset:%d,%d dispose:%d blend:%d\n",
info->x_offset, info->y_offset, info->dispose_method,
info->blend_method);
}
++enc->out_frame_count;
FrameRelease(curr);
++enc->start;
--enc->flush_count;
--enc->count;
if (enc->keyframe != KEYFRAME_NONE) --enc->keyframe;
}
if (enc->count == 1 && enc->start != 0) {
const int enc_start_tmp = (int)enc->start;
EncodedFrame temp = enc->encoded_frames[0];
enc->encoded_frames[0] = enc->encoded_frames[enc_start_tmp];
enc->encoded_frames[enc_start_tmp] = temp;
FrameRelease(&enc->encoded_frames[enc_start_tmp]);
enc->start = 0;
}
return 1;
}
#undef DELTA_INFINITY
#undef KEYFRAME_NONE
int WebPAnimEncoderAdd(WebPAnimEncoder* enc, WebPPicture* frame, int timestamp,
const WebPConfig* encoder_config) {
WebPConfig config;
int ok;
if (enc == NULL) {
return 0;
}
MarkNoError(enc);
if (!enc->is_first_frame) {
const uint32_t prev_frame_duration =
(uint32_t)timestamp - enc->prev_timestamp;
if (prev_frame_duration >= MAX_DURATION) {
if (frame != NULL) {
frame->error_code = VP8_ENC_ERROR_INVALID_CONFIGURATION;
}
MarkError(enc, "ERROR adding frame: timestamps must be non-decreasing");
return 0;
}
if (!IncreasePreviousDuration(enc, (int)prev_frame_duration)) {
return 0;
}
if (enc->count == enc->size && !FlushFrames(enc)) {
return 0;
}
} else {
enc->first_timestamp = timestamp;
}
if (frame == NULL) { enc->got_null_frame = 1;
enc->prev_timestamp = timestamp;
return 1;
}
if (frame->width != enc->canvas_width ||
frame->height != enc->canvas_height) {
frame->error_code = VP8_ENC_ERROR_INVALID_CONFIGURATION;
MarkError(enc, "ERROR adding frame: Invalid frame dimensions");
return 0;
}
if (!frame->use_argb) { if (enc->options.verbose) {
fprintf(stderr, "WARNING: Converting frame from YUV(A) to ARGB format; "
"this incurs a small loss.\n");
}
if (!WebPPictureYUVAToARGB(frame)) {
MarkError(enc, "ERROR converting frame from YUV(A) to ARGB");
return 0;
}
}
if (encoder_config != NULL) {
if (!WebPValidateConfig(encoder_config)) {
MarkError(enc, "ERROR adding frame: Invalid WebPConfig");
return 0;
}
config = *encoder_config;
} else {
if (!WebPConfigInit(&config)) {
MarkError(enc, "Cannot Init config");
return 0;
}
config.lossless = 1;
}
assert(enc->curr_canvas == NULL);
enc->curr_canvas = frame; assert(enc->curr_canvas_copy_modified == 1);
CopyCurrentCanvas(enc);
ok = CacheFrame(enc, &config) && FlushFrames(enc);
enc->curr_canvas = NULL;
enc->curr_canvas_copy_modified = 1;
if (ok) {
enc->prev_timestamp = timestamp;
}
return ok;
}
WEBP_NODISCARD static int DecodeFrameOntoCanvas(
const WebPMuxFrameInfo* const frame, WebPPicture* const canvas) {
const WebPData* const image = &frame->bitstream;
WebPPicture sub_image;
WebPDecoderConfig config;
if (!WebPInitDecoderConfig(&config)) {
return 0;
}
WebPUtilClearPic(canvas, NULL);
if (WebPGetFeatures(image->bytes, image->size, &config.input) !=
VP8_STATUS_OK) {
return 0;
}
if (!WebPPictureView(canvas, frame->x_offset, frame->y_offset,
config.input.width, config.input.height, &sub_image)) {
return 0;
}
config.output.is_external_memory = 1;
config.output.colorspace = MODE_BGRA;
config.output.u.RGBA.rgba = (uint8_t*)sub_image.argb;
config.output.u.RGBA.stride = sub_image.argb_stride * 4;
config.output.u.RGBA.size = config.output.u.RGBA.stride * sub_image.height;
if (WebPDecode(image->bytes, image->size, &config) != VP8_STATUS_OK) {
return 0;
}
return 1;
}
static int FrameToFullCanvas(WebPAnimEncoder* const enc,
const WebPMuxFrameInfo* const frame,
WebPData* const full_image) {
WebPPicture* const canvas_buf = &enc->curr_canvas_copy;
WebPMemoryWriter mem1, mem2;
WebPMemoryWriterInit(&mem1);
WebPMemoryWriterInit(&mem2);
if (!DecodeFrameOntoCanvas(frame, canvas_buf)) goto Err;
if (!EncodeFrame(&enc->last_config, canvas_buf, &mem1)) goto Err;
GetEncodedData(&mem1, full_image);
if (enc->options.allow_mixed) {
if (!EncodeFrame(&enc->last_config_reversed, canvas_buf, &mem2)) goto Err;
if (mem2.size < mem1.size) {
GetEncodedData(&mem2, full_image);
WebPMemoryWriterClear(&mem1);
} else {
WebPMemoryWriterClear(&mem2);
}
}
return 1;
Err:
WebPMemoryWriterClear(&mem1);
WebPMemoryWriterClear(&mem2);
return 0;
}
static WebPMuxError OptimizeSingleFrame(WebPAnimEncoder* const enc,
WebPData* const webp_data) {
WebPMuxError err = WEBP_MUX_OK;
int canvas_width, canvas_height;
WebPMuxFrameInfo frame;
WebPData full_image;
WebPData webp_data2;
WebPMux* const mux = WebPMuxCreate(webp_data, 0);
if (mux == NULL) return WEBP_MUX_BAD_DATA;
assert(enc->out_frame_count == 1);
WebPDataInit(&frame.bitstream);
WebPDataInit(&full_image);
WebPDataInit(&webp_data2);
err = WebPMuxGetFrame(mux, 1, &frame);
if (err != WEBP_MUX_OK) goto End;
if (frame.id != WEBP_CHUNK_ANMF) goto End; err = WebPMuxGetCanvasSize(mux, &canvas_width, &canvas_height);
if (err != WEBP_MUX_OK) goto End;
if (!FrameToFullCanvas(enc, &frame, &full_image)) {
err = WEBP_MUX_BAD_DATA;
goto End;
}
err = WebPMuxSetImage(mux, &full_image, 1);
if (err != WEBP_MUX_OK) goto End;
err = WebPMuxAssemble(mux, &webp_data2);
if (err != WEBP_MUX_OK) goto End;
if (webp_data2.size < webp_data->size) { WebPDataClear(webp_data);
*webp_data = webp_data2;
WebPDataInit(&webp_data2);
}
End:
WebPDataClear(&frame.bitstream);
WebPDataClear(&full_image);
WebPMuxDelete(mux);
WebPDataClear(&webp_data2);
return err;
}
int WebPAnimEncoderAssemble(WebPAnimEncoder* enc, WebPData* webp_data) {
WebPMux* mux;
WebPMuxError err;
if (enc == NULL) {
return 0;
}
MarkNoError(enc);
if (webp_data == NULL) {
MarkError(enc, "ERROR assembling: NULL input");
return 0;
}
if (enc->in_frame_count == 0) {
MarkError(enc, "ERROR: No frames to assemble");
return 0;
}
if (!enc->got_null_frame && enc->in_frame_count > 1 && enc->count > 0) {
const double delta_time =
(uint32_t)enc->prev_timestamp - enc->first_timestamp;
const int average_duration = (int)(delta_time / (enc->in_frame_count - 1));
if (!IncreasePreviousDuration(enc, average_duration)) {
return 0;
}
}
enc->flush_count = enc->count;
if (!FlushFrames(enc)) {
return 0;
}
mux = enc->mux;
err = WebPMuxSetCanvasSize(mux, enc->canvas_width, enc->canvas_height);
if (err != WEBP_MUX_OK) goto Err;
err = WebPMuxSetAnimationParams(mux, &enc->options.anim_params);
if (err != WEBP_MUX_OK) goto Err;
err = WebPMuxAssemble(mux, webp_data);
if (err != WEBP_MUX_OK) goto Err;
if (enc->out_frame_count == 1) {
err = OptimizeSingleFrame(enc, webp_data);
if (err != WEBP_MUX_OK) goto Err;
}
return 1;
Err:
MarkError2(enc, "ERROR assembling WebP", err);
return 0;
}
const char* WebPAnimEncoderGetError(WebPAnimEncoder* enc) {
if (enc == NULL) return NULL;
return enc->error_str;
}
WebPMuxError WebPAnimEncoderSetChunk(
WebPAnimEncoder* enc, const char fourcc[4], const WebPData* chunk_data,
int copy_data) {
if (enc == NULL) return WEBP_MUX_INVALID_ARGUMENT;
return WebPMuxSetChunk(enc->mux, fourcc, chunk_data, copy_data);
}
WebPMuxError WebPAnimEncoderGetChunk(
const WebPAnimEncoder* enc, const char fourcc[4], WebPData* chunk_data) {
if (enc == NULL) return WEBP_MUX_INVALID_ARGUMENT;
return WebPMuxGetChunk(enc->mux, fourcc, chunk_data);
}
WebPMuxError WebPAnimEncoderDeleteChunk(
WebPAnimEncoder* enc, const char fourcc[4]) {
if (enc == NULL) return WEBP_MUX_INVALID_ARGUMENT;
return WebPMuxDeleteChunk(enc->mux, fourcc);
}