Coverage Report

Created: 2026-08-17 07:50

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/ffmpeg/libswscale/swscale_internal.h
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/*
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 * Copyright (C) 2001-2011 Michael Niedermayer <michaelni@gmx.at>
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 *
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 * This file is part of FFmpeg.
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 *
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 * FFmpeg is free software; you can redistribute it and/or
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 * modify it under the terms of the GNU Lesser General Public
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 * License as published by the Free Software Foundation; either
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 * version 2.1 of the License, or (at your option) any later version.
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 *
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 * FFmpeg is distributed in the hope that it will be useful,
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 * but WITHOUT ANY WARRANTY; without even the implied warranty of
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 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
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 * Lesser General Public License for more details.
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 *
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 * You should have received a copy of the GNU Lesser General Public
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 * License along with FFmpeg; if not, write to the Free Software
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 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
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 */
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#ifndef SWSCALE_SWSCALE_INTERNAL_H
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#define SWSCALE_SWSCALE_INTERNAL_H
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#include <stdatomic.h>
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#include <assert.h>
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#include "config.h"
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#include "swscale.h"
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#include "graph.h"
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#include "libavfilter/framepool.h"
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#include "libavutil/avassert.h"
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#include "libavutil/common.h"
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#include "libavutil/frame.h"
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#include "libavutil/intreadwrite.h"
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#include "libavutil/log.h"
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#include "libavutil/mem_internal.h"
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#include "libavutil/pixfmt.h"
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#include "libavutil/pixdesc.h"
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#include "libavutil/slicethread.h"
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#include "libavutil/half2float.h"
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43
#if HAVE_ALTIVEC
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#define SWSINTERNAL_ADDITIONAL_ASM_SIZE (7*16 + 2*8 + /* alignment */ 16)
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#endif
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#ifndef SWSINTERNAL_ADDITIONAL_ASM_SIZE
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0
#define SWSINTERNAL_ADDITIONAL_ASM_SIZE 0
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#endif
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#define STR(s) AV_TOSTRING(s) // AV_STRINGIFY is too long
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0
#define YUVRGB_TABLE_HEADROOM 512
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0
#define YUVRGB_TABLE_LUMA_HEADROOM 512
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0
#define MAX_FILTER_SIZE SWS_MAX_FILTER_SIZE
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#define SWS_MAX_THREADS 8192 /* sanity clamp */
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#if HAVE_BIGENDIAN
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#define ALT32_CORR (-1)
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#else
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0
#define ALT32_CORR   1
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#endif
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#if ARCH_X86_64
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#   define APCK_PTR2  8
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#   define APCK_COEF 16
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#   define APCK_SIZE 24
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#else
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#   define APCK_PTR2  4
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#   define APCK_COEF  8
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0
#   define APCK_SIZE 16
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#endif
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75
0
#define RETCODE_USE_CASCADE -12345
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typedef struct SwsInternal SwsInternal;
78
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static inline SwsInternal *sws_internal(const SwsContext *sws)
80
0
{
81
0
    return (SwsInternal *) sws;
82
0
}
Unexecuted instantiation: swscale.c:sws_internal
Unexecuted instantiation: utils.c:sws_internal
Unexecuted instantiation: vscale.c:sws_internal
Unexecuted instantiation: yuv2rgb.c:sws_internal
Unexecuted instantiation: alphablend.c:sws_internal
Unexecuted instantiation: graph.c:sws_internal
Unexecuted instantiation: hscale_fast_bilinear.c:sws_internal
Unexecuted instantiation: input.c:sws_internal
Unexecuted instantiation: ops_dispatch.c:sws_internal
Unexecuted instantiation: options.c:sws_internal
Unexecuted instantiation: output.c:sws_internal
Unexecuted instantiation: rgb2rgb.c:sws_internal
Unexecuted instantiation: slice.c:sws_internal
Unexecuted instantiation: swscale_unscaled.c:sws_internal
Unexecuted instantiation: gamma.c:sws_internal
Unexecuted instantiation: hscale.c:sws_internal
83
84
SwsBackend ff_sws_enabled_backends(const SwsContext *ctx);
85
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typedef struct Range {
87
    unsigned int start;
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    unsigned int len;
89
} Range;
90
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typedef struct RangeList {
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    Range          *ranges;
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    unsigned int nb_ranges;
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    int             ranges_allocated;
95
} RangeList;
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int ff_range_add(RangeList *r, unsigned int start, unsigned int len);
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typedef int (*SwsFunc)(SwsInternal *c, const uint8_t *const src[],
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                       const int srcStride[], int srcSliceY, int srcSliceH,
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                       uint8_t *const dst[], const int dstStride[]);
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typedef void (*SwsColorFunc)(const SwsInternal *c, uint8_t *dst, int dst_stride,
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                             const uint8_t *src, int src_stride, int w, int h);
105
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typedef struct SwsLuts {
107
    uint16_t *in;
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    uint16_t *out;
109
} SwsLuts;
110
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typedef struct SwsColorXform {
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    SwsLuts gamma;
113
    int16_t mat[3][3];
114
} SwsColorXform;
115
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/**
117
 * Write one line of horizontally scaled data to planar output
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 * without any additional vertical scaling (or point-scaling).
119
 *
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 * @param src     scaled source data, 15 bits for 8-10-bit output,
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 *                19 bits for 16-bit output (in int32_t)
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 * @param dest    pointer to the output plane. For >8-bit
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 *                output, this is in uint16_t
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 * @param dstW    width of destination in pixels
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 * @param dither  ordered dither array of type int16_t and size 8
126
 * @param offset  Dither offset
127
 */
128
typedef void (*yuv2planar1_fn)(const int16_t *src, uint8_t *dest, int dstW,
129
                               const uint8_t *dither, int offset);
130
131
/**
132
 * Write one line of horizontally scaled data to planar output
133
 * with multi-point vertical scaling between input pixels.
134
 *
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 * @param filter        vertical luma/alpha scaling coefficients, 12 bits [0,4096]
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 * @param src           scaled luma (Y) or alpha (A) source data, 15 bits for
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 *                      8-10-bit output, 19 bits for 16-bit output (in int32_t)
138
 * @param filterSize    number of vertical input lines to scale
139
 * @param dest          pointer to output plane. For >8-bit
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 *                      output, this is in uint16_t
141
 * @param dstW          width of destination pixels
142
 * @param offset        Dither offset
143
 */
144
typedef void (*yuv2planarX_fn)(const int16_t *filter, int filterSize,
145
                               const int16_t **src, uint8_t *dest, int dstW,
146
                               const uint8_t *dither, int offset);
147
148
/**
149
 * Write one line of horizontally scaled chroma to interleaved output
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 * with multi-point vertical scaling between input pixels.
151
 *
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 * @param dstFormat     destination pixel format
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 * @param chrDither     ordered dither array of type uint8_t and size 8
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 * @param chrFilter     vertical chroma scaling coefficients, 12 bits [0,4096]
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 * @param chrUSrc       scaled chroma (U) source data, 15 bits for 8-10-bit
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 *                      output, 19 bits for 16-bit output (in int32_t)
157
 * @param chrVSrc       scaled chroma (V) source data, 15 bits for 8-10-bit
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 *                      output, 19 bits for 16-bit output (in int32_t)
159
 * @param chrFilterSize number of vertical chroma input lines to scale
160
 * @param dest          pointer to the output plane. For >8-bit
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 *                      output, this is in uint16_t
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 * @param dstW          width of chroma planes
163
 */
164
typedef void (*yuv2interleavedX_fn)(enum AVPixelFormat dstFormat,
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                                    const uint8_t *chrDither,
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                                    const int16_t *chrFilter,
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                                    int chrFilterSize,
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                                    const int16_t **chrUSrc,
169
                                    const int16_t **chrVSrc,
170
                                    uint8_t *dest, int dstW);
171
172
/**
173
 * Write one line of horizontally scaled Y/U/V/A to packed-pixel YUV/RGB
174
 * output without any additional vertical scaling (or point-scaling). Note
175
 * that this function may do chroma scaling, see the "uvalpha" argument.
176
 *
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 * @param c       SWS scaling context
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 * @param lumSrc  scaled luma (Y) source data, 15 bits for 8-10-bit output,
179
 *                19 bits for 16-bit output (in int32_t)
180
 * @param chrUSrc scaled chroma (U) source data, 15 bits for 8-10-bit output,
181
 *                19 bits for 16-bit output (in int32_t)
182
 * @param chrVSrc scaled chroma (V) source data, 15 bits for 8-10-bit output,
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 *                19 bits for 16-bit output (in int32_t)
184
 * @param alpSrc  scaled alpha (A) source data, 15 bits for 8-10-bit output,
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 *                19 bits for 16-bit output (in int32_t)
186
 * @param dest    pointer to the output plane. For 16-bit output, this is
187
 *                uint16_t
188
 * @param dstW    width of lumSrc and alpSrc in pixels, number of pixels
189
 *                to write into dest[]
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 * @param uvalpha chroma scaling coefficient for the second line of chroma
191
 *                pixels, either 2048 or 0. If 0, one chroma input is used
192
 *                for 2 output pixels (or if the SWS_FULL_CHR_H_INT flag
193
 *                is set, it generates 1 output pixel). If 2048, two chroma
194
 *                input pixels should be averaged for 2 output pixels (this
195
 *                only happens if SWS_FULL_CHR_H_INT is not set)
196
 * @param y       vertical line number for this output. This does not need
197
 *                to be used to calculate the offset in the destination,
198
 *                but can be used to generate comfort noise using dithering
199
 *                for some output formats.
200
 */
201
typedef void (*yuv2packed1_fn)(SwsInternal *c, const int16_t *lumSrc,
202
                               const int16_t *chrUSrc[2],
203
                               const int16_t *chrVSrc[2],
204
                               const int16_t *alpSrc, uint8_t *dest,
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                               int dstW, int uvalpha, int y);
206
/**
207
 * Write one line of horizontally scaled Y/U/V/A to packed-pixel YUV/RGB
208
 * output by doing bilinear scaling between two input lines.
209
 *
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 * @param c       SWS scaling context
211
 * @param lumSrc  scaled luma (Y) source data, 15 bits for 8-10-bit output,
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 *                19 bits for 16-bit output (in int32_t)
213
 * @param chrUSrc scaled chroma (U) source data, 15 bits for 8-10-bit output,
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 *                19 bits for 16-bit output (in int32_t)
215
 * @param chrVSrc scaled chroma (V) source data, 15 bits for 8-10-bit output,
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 *                19 bits for 16-bit output (in int32_t)
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 * @param alpSrc  scaled alpha (A) source data, 15 bits for 8-10-bit output,
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 *                19 bits for 16-bit output (in int32_t)
219
 * @param dest    pointer to the output plane. For 16-bit output, this is
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 *                uint16_t
221
 * @param dstW    width of lumSrc and alpSrc in pixels, number of pixels
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 *                to write into dest[]
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 * @param yalpha  luma/alpha scaling coefficients for the second input line.
224
 *                The first line's coefficients can be calculated by using
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 *                4096 - yalpha
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 * @param uvalpha chroma scaling coefficient for the second input line. The
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 *                first line's coefficients can be calculated by using
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 *                4096 - uvalpha
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 * @param y       vertical line number for this output. This does not need
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 *                to be used to calculate the offset in the destination,
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 *                but can be used to generate comfort noise using dithering
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 *                for some output formats.
233
 */
234
typedef void (*yuv2packed2_fn)(SwsInternal *c, const int16_t *lumSrc[2],
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                               const int16_t *chrUSrc[2],
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                               const int16_t *chrVSrc[2],
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                               const int16_t *alpSrc[2],
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                               uint8_t *dest,
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                               int dstW, int yalpha, int uvalpha, int y);
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/**
241
 * Write one line of horizontally scaled Y/U/V/A to packed-pixel YUV/RGB
242
 * output by doing multi-point vertical scaling between input pixels.
243
 *
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 * @param c             SWS scaling context
245
 * @param lumFilter     vertical luma/alpha scaling coefficients, 12 bits [0,4096]
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 * @param lumSrc        scaled luma (Y) source data, 15 bits for 8-10-bit output,
247
 *                      19 bits for 16-bit output (in int32_t)
248
 * @param lumFilterSize number of vertical luma/alpha input lines to scale
249
 * @param chrFilter     vertical chroma scaling coefficients, 12 bits [0,4096]
250
 * @param chrUSrc       scaled chroma (U) source data, 15 bits for 8-10-bit output,
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 *                      19 bits for 16-bit output (in int32_t)
252
 * @param chrVSrc       scaled chroma (V) source data, 15 bits for 8-10-bit output,
253
 *                      19 bits for 16-bit output (in int32_t)
254
 * @param chrFilterSize number of vertical chroma input lines to scale
255
 * @param alpSrc        scaled alpha (A) source data, 15 bits for 8-10-bit output,
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 *                      19 bits for 16-bit output (in int32_t)
257
 * @param dest          pointer to the output plane. For 16-bit output, this is
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 *                      uint16_t
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 * @param dstW          width of lumSrc and alpSrc in pixels, number of pixels
260
 *                      to write into dest[]
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 * @param y             vertical line number for this output. This does not need
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 *                      to be used to calculate the offset in the destination,
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 *                      but can be used to generate comfort noise using dithering
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 *                      or some output formats.
265
 */
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typedef void (*yuv2packedX_fn)(SwsInternal *c, const int16_t *lumFilter,
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                               const int16_t **lumSrc, int lumFilterSize,
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                               const int16_t *chrFilter,
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                               const int16_t **chrUSrc,
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                               const int16_t **chrVSrc, int chrFilterSize,
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                               const int16_t **alpSrc, uint8_t *dest,
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                               int dstW, int y);
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274
/**
275
 * Write one line of horizontally scaled Y/U/V/A to YUV/RGB
276
 * output by doing multi-point vertical scaling between input pixels.
277
 *
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 * @param c             SWS scaling context
279
 * @param lumFilter     vertical luma/alpha scaling coefficients, 12 bits [0,4096]
280
 * @param lumSrc        scaled luma (Y) source data, 15 bits for 8-10-bit output,
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 *                      19 bits for 16-bit output (in int32_t)
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 * @param lumFilterSize number of vertical luma/alpha input lines to scale
283
 * @param chrFilter     vertical chroma scaling coefficients, 12 bits [0,4096]
284
 * @param chrUSrc       scaled chroma (U) source data, 15 bits for 8-10-bit output,
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 *                      19 bits for 16-bit output (in int32_t)
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 * @param chrVSrc       scaled chroma (V) source data, 15 bits for 8-10-bit output,
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 *                      19 bits for 16-bit output (in int32_t)
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 * @param chrFilterSize number of vertical chroma input lines to scale
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 * @param alpSrc        scaled alpha (A) source data, 15 bits for 8-10-bit output,
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 *                      19 bits for 16-bit output (in int32_t)
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 * @param dest          pointer to the output planes. For 16-bit output, this is
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 *                      uint16_t
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 * @param dstW          width of lumSrc and alpSrc in pixels, number of pixels
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 *                      to write into dest[]
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 * @param y             vertical line number for this output. This does not need
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 *                      to be used to calculate the offset in the destination,
297
 *                      but can be used to generate comfort noise using dithering
298
 *                      or some output formats.
299
 */
300
typedef void (*yuv2anyX_fn)(SwsInternal *c, const int16_t *lumFilter,
301
                            const int16_t **lumSrc, int lumFilterSize,
302
                            const int16_t *chrFilter,
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                            const int16_t **chrUSrc,
304
                            const int16_t **chrVSrc, int chrFilterSize,
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                            const int16_t **alpSrc, uint8_t **dest,
306
                            int dstW, int y);
307
308
/**
309
 * Unscaled conversion of luma/alpha plane to YV12 for horizontal scaler.
310
 */
311
typedef void (*planar1_YV12_fn)(uint8_t *dst, const uint8_t *src, const uint8_t *src2,
312
                                const uint8_t *src3, int width, uint32_t *pal,
313
                                void *opaque);
314
315
/**
316
 * Unscaled conversion of chroma plane to YV12 for horizontal scaler.
317
 */
318
typedef void (*planar2_YV12_fn)(uint8_t *dst, uint8_t *dst2, const uint8_t *src,
319
                                const uint8_t *src2, const uint8_t *src3,
320
                                int width, uint32_t *pal, void *opaque);
321
322
/**
323
 * Unscaled conversion of arbitrary planar data (e.g. RGBA) to YV12, through
324
 * conversion using the given color matrix.
325
 */
326
typedef void (*planarX_YV12_fn)(uint8_t *dst, const uint8_t *src[4], int width,
327
                                int32_t *rgb2yuv, void *opaque);
328
329
typedef void (*planarX2_YV12_fn)(uint8_t *dst, uint8_t *dst2,
330
                                 const uint8_t *src[4], int width,
331
                                 int32_t *rgb2yuv, void *opaque);
332
333
struct SwsSlice;
334
struct SwsFilterDescriptor;
335
336
/* This struct should be aligned on at least a 32-byte boundary. */
337
struct SwsInternal {
338
    /* Currently active user-facing options. Also contains AVClass */
339
    SwsContext opts;
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341
    /* Parent context (for slice contexts) */
342
    SwsContext *parent;
343
344
    AVSliceThread      *slicethread;
345
    SwsContext        **slice_ctx;
346
    int              nb_slice_ctx;
347
348
    /* Scaling graph, reinitialized dynamically as needed. */
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    SwsGraph *graph[2]; /* top, bottom fields */
350
351
    // values passed to current sws_receive_slice() call
352
    int dst_slice_start;
353
    int dst_slice_height;
354
355
    /**
356
     * Note that src, dst, srcStride, dstStride will be copied in the
357
     * sws_scale() wrapper so they can be freely modified here.
358
     */
359
    SwsFunc convert_unscaled;
360
    int chrSrcW;                  ///< Width  of source      chroma     planes.
361
    int chrSrcH;                  ///< Height of source      chroma     planes.
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    int chrDstW;                  ///< Width  of destination chroma     planes.
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    int chrDstH;                  ///< Height of destination chroma     planes.
364
    int lumXInc, chrXInc;
365
    int lumYInc, chrYInc;
366
    int dstFormatBpp;             ///< Number of bits per pixel of the destination pixel format.
367
    int srcFormatBpp;             ///< Number of bits per pixel of the source      pixel format.
368
    int dstBpc, srcBpc;
369
    int chrSrcHSubSample;         ///< Binary logarithm of horizontal subsampling factor between luma/alpha and chroma planes in source      image.
370
    int chrSrcVSubSample;         ///< Binary logarithm of vertical   subsampling factor between luma/alpha and chroma planes in source      image.
371
    int chrDstHSubSample;         ///< Binary logarithm of horizontal subsampling factor between luma/alpha and chroma planes in destination image.
372
    int chrDstVSubSample;         ///< Binary logarithm of vertical   subsampling factor between luma/alpha and chroma planes in destination image.
373
    int vChrDrop;                 ///< Binary logarithm of extra vertical subsampling factor in source image chroma planes specified by user.
374
    int sliceDir;                 ///< Direction that slices are fed to the scaler (1 = top-to-bottom, -1 = bottom-to-top).
375
376
    AVFrame *frame_src;
377
    AVFrame *frame_dst;
378
379
    RangeList src_ranges;
380
381
    /* The cascaded_* fields allow splitting a scaler task into multiple
382
     * sequential steps, this is for example used to limit the maximum
383
     * downscaling factor that needs to be supported in one scaler.
384
     */
385
    SwsContext *cascaded_context[3];
386
    int cascaded_tmpStride[2][4];
387
    uint8_t *cascaded_tmp[2][4];
388
    int cascaded_mainindex;
389
390
    double gamma_value;
391
    int is_internal_gamma;
392
    uint16_t *gamma;
393
    uint16_t *inv_gamma;
394
395
    int numDesc;
396
    int descIndex[2];
397
    int numSlice;
398
    struct SwsSlice *slice;
399
    struct SwsFilterDescriptor *desc;
400
401
    uint32_t pal_yuv[256];
402
    uint32_t pal_rgb[256];
403
404
    float uint2float_lut[256];
405
406
    /**
407
     * @name Scaled horizontal lines ring buffer.
408
     * The horizontal scaler keeps just enough scaled lines in a ring buffer
409
     * so they may be passed to the vertical scaler. The pointers to the
410
     * allocated buffers for each line are duplicated in sequence in the ring
411
     * buffer to simplify indexing and avoid wrapping around between lines
412
     * inside the vertical scaler code. The wrapping is done before the
413
     * vertical scaler is called.
414
     */
415
    //@{
416
    int lastInLumBuf;             ///< Last scaled horizontal luma/alpha line from source in the ring buffer.
417
    int lastInChrBuf;             ///< Last scaled horizontal chroma     line from source in the ring buffer.
418
    //@}
419
420
    uint8_t *formatConvBuffer;
421
    int needAlpha;
422
423
    /**
424
     * @name Horizontal and vertical filters.
425
     * To better understand the following fields, here is a pseudo-code of
426
     * their usage in filtering a horizontal line:
427
     * @code
428
     * for (i = 0; i < width; i++) {
429
     *     dst[i] = 0;
430
     *     for (j = 0; j < filterSize; j++)
431
     *         dst[i] += src[ filterPos[i] + j ] * filter[ filterSize * i + j ];
432
     *     dst[i] >>= FRAC_BITS; // The actual implementation is fixed-point.
433
     * }
434
     * @endcode
435
     */
436
    //@{
437
    int16_t *hLumFilter;          ///< Array of horizontal filter coefficients for luma/alpha planes.
438
    int16_t *hChrFilter;          ///< Array of horizontal filter coefficients for chroma     planes.
439
    int16_t *vLumFilter;          ///< Array of vertical   filter coefficients for luma/alpha planes.
440
    int16_t *vChrFilter;          ///< Array of vertical   filter coefficients for chroma     planes.
441
    int32_t *hLumFilterPos;       ///< Array of horizontal filter starting positions for each dst[i] for luma/alpha planes.
442
    int32_t *hChrFilterPos;       ///< Array of horizontal filter starting positions for each dst[i] for chroma     planes.
443
    int32_t *vLumFilterPos;       ///< Array of vertical   filter starting positions for each dst[i] for luma/alpha planes.
444
    int32_t *vChrFilterPos;       ///< Array of vertical   filter starting positions for each dst[i] for chroma     planes.
445
    int hLumFilterSize;           ///< Horizontal filter size for luma/alpha pixels.
446
    int hChrFilterSize;           ///< Horizontal filter size for chroma     pixels.
447
    int vLumFilterSize;           ///< Vertical   filter size for luma/alpha pixels.
448
    int vChrFilterSize;           ///< Vertical   filter size for chroma     pixels.
449
    //@}
450
451
    int lumMmxextFilterCodeSize;  ///< Runtime-generated MMXEXT horizontal fast bilinear scaler code size for luma/alpha planes.
452
    int chrMmxextFilterCodeSize;  ///< Runtime-generated MMXEXT horizontal fast bilinear scaler code size for chroma planes.
453
    uint8_t *lumMmxextFilterCode; ///< Runtime-generated MMXEXT horizontal fast bilinear scaler code for luma/alpha planes.
454
    uint8_t *chrMmxextFilterCode; ///< Runtime-generated MMXEXT horizontal fast bilinear scaler code for chroma planes.
455
456
    int canMMXEXTBeUsed;
457
    int warned_unuseable_bilinear;
458
459
    int dstY;                     ///< Last destination vertical line output from last slice.
460
    void *yuvTable;             // pointer to the yuv->rgb table start so it can be freed()
461
    // alignment ensures the offset can be added in a single
462
    // instruction on e.g. ARM
463
    DECLARE_ALIGNED(16, int, table_gV)[256 + 2*YUVRGB_TABLE_HEADROOM];
464
    uint8_t *table_rV[256 + 2*YUVRGB_TABLE_HEADROOM];
465
    uint8_t *table_gU[256 + 2*YUVRGB_TABLE_HEADROOM];
466
    uint8_t *table_bU[256 + 2*YUVRGB_TABLE_HEADROOM];
467
    DECLARE_ALIGNED(16, int32_t, input_rgb2yuv_table)[16+40*4]; // This table can contain both C and SIMD formatted values, the C vales are always at the XY_IDX points
468
0
#define RY_IDX 0
469
0
#define GY_IDX 1
470
0
#define BY_IDX 2
471
0
#define RU_IDX 3
472
0
#define GU_IDX 4
473
0
#define BU_IDX 5
474
0
#define RV_IDX 6
475
0
#define GV_IDX 7
476
0
#define BV_IDX 8
477
0
#define RGB2YUV_SHIFT 15
478
479
    int *dither_error[4];
480
481
    //Colorspace stuff
482
    int contrast, brightness, saturation;    // for sws_getColorspaceDetails
483
    int srcColorspaceTable[4];
484
    int dstColorspaceTable[4];
485
    int src0Alpha;
486
    int dst0Alpha;
487
    int srcXYZ;
488
    int dstXYZ;
489
    int yuv2rgb_y_offset;
490
    int yuv2rgb_y_coeff;
491
    int yuv2rgb_v2r_coeff;
492
    int yuv2rgb_v2g_coeff;
493
    int yuv2rgb_u2g_coeff;
494
    int yuv2rgb_u2b_coeff;
495
496
#define RED_DITHER            "0*8"
497
#define GREEN_DITHER          "1*8"
498
#define BLUE_DITHER           "2*8"
499
#define Y_COEFF               "3*8"
500
#define VR_COEFF              "4*8"
501
#define UB_COEFF              "5*8"
502
#define VG_COEFF              "6*8"
503
#define UG_COEFF              "7*8"
504
#define Y_OFFSET              "8*8"
505
#define U_OFFSET              "9*8"
506
#define V_OFFSET              "10*8"
507
#define LUM_MMX_FILTER_OFFSET "11*8"
508
#define CHR_MMX_FILTER_OFFSET "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)
509
#define DSTW_OFFSET           "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*2"
510
#define ESP_OFFSET            "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*2+8"
511
#define VROUNDER_OFFSET       "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*2+16"
512
#define U_TEMP                "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*2+24"
513
#define V_TEMP                "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*2+32"
514
#define Y_TEMP                "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*2+40"
515
#define ALP_MMX_FILTER_OFFSET "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*2+48"
516
#define UV_OFF_PX             "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*3+48"
517
#define UV_OFF_BYTE           "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*3+56"
518
#define DITHER16              "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*3+64"
519
#define DITHER32              "11*8+4*4*"AV_STRINGIFY(MAX_FILTER_SIZE)"*3+80"
520
#define DITHER32_INT          (11*8+4*4*MAX_FILTER_SIZE*3+80) // value equal to above, used for checking that the struct hasn't been changed by mistake
521
522
    DECLARE_ALIGNED(8, uint64_t, redDither);
523
    DECLARE_ALIGNED(8, uint64_t, greenDither);
524
    DECLARE_ALIGNED(8, uint64_t, blueDither);
525
526
    DECLARE_ALIGNED(8, uint64_t, yCoeff);
527
    DECLARE_ALIGNED(8, uint64_t, vrCoeff);
528
    DECLARE_ALIGNED(8, uint64_t, ubCoeff);
529
    DECLARE_ALIGNED(8, uint64_t, vgCoeff);
530
    DECLARE_ALIGNED(8, uint64_t, ugCoeff);
531
    DECLARE_ALIGNED(8, uint64_t, yOffset);
532
    DECLARE_ALIGNED(8, uint64_t, uOffset);
533
    DECLARE_ALIGNED(8, uint64_t, vOffset);
534
    int32_t lumMmxFilter[4 * MAX_FILTER_SIZE];
535
    int32_t chrMmxFilter[4 * MAX_FILTER_SIZE];
536
    int dstW_mmx;
537
    DECLARE_ALIGNED(8, uint64_t, esp);
538
    DECLARE_ALIGNED(8, uint64_t, vRounder);
539
    DECLARE_ALIGNED(8, uint64_t, u_temp);
540
    DECLARE_ALIGNED(8, uint64_t, v_temp);
541
    DECLARE_ALIGNED(8, uint64_t, y_temp);
542
    int32_t alpMmxFilter[4 * MAX_FILTER_SIZE];
543
    // alignment of these values is not necessary, but merely here
544
    // to maintain the same offset across x8632 and x86-64. Once we
545
    // use proper offset macros in the asm, they can be removed.
546
    DECLARE_ALIGNED(8, ptrdiff_t, uv_off); ///< offset (in pixels) between u and v planes
547
    DECLARE_ALIGNED(8, ptrdiff_t, uv_offx2); ///< offset (in bytes) between u and v planes
548
    DECLARE_ALIGNED(8, uint16_t, dither16)[8];
549
    DECLARE_ALIGNED(8, uint32_t, dither32)[8];
550
551
    const uint8_t *chrDither8, *lumDither8;
552
553
    int use_mmx_vfilter;
554
555
/* pre defined color-spaces gamma */
556
0
#define XYZ_GAMMA (2.6)
557
0
#define RGB_GAMMA (2.2)
558
    SwsColorFunc  xyz12Torgb48;
559
    SwsColorFunc  rgb48Toxyz12;
560
    SwsColorXform xyz2rgb;
561
    SwsColorXform rgb2xyz;
562
563
    /* function pointers for swscale() */
564
    yuv2planar1_fn yuv2plane1;
565
    yuv2planarX_fn yuv2planeX;
566
    yuv2interleavedX_fn yuv2nv12cX;
567
    yuv2packed1_fn yuv2packed1;
568
    yuv2packed2_fn yuv2packed2;
569
    yuv2packedX_fn yuv2packedX;
570
    yuv2anyX_fn yuv2anyX;
571
572
    /// Opaque data pointer passed to all input functions.
573
    void *input_opaque;
574
575
    planar1_YV12_fn lumToYV12;
576
    planar1_YV12_fn alpToYV12;
577
    planar2_YV12_fn chrToYV12;
578
579
    /**
580
     * Functions to read planar input, such as planar RGB, and convert
581
     * internally to Y/UV/A.
582
     */
583
    /** @{ */
584
    planarX_YV12_fn  readLumPlanar;
585
    planarX_YV12_fn  readAlpPlanar;
586
    planarX2_YV12_fn readChrPlanar;
587
    /** @} */
588
589
    /**
590
     * Scale one horizontal line of input data using a bilinear filter
591
     * to produce one line of output data. Compared to SwsInternal->hScale(),
592
     * please take note of the following caveats when using these:
593
     * - Scaling is done using only 7 bits instead of 14-bit coefficients.
594
     * - You can use no more than 5 input pixels to produce 4 output
595
     *   pixels. Therefore, this filter should not be used for downscaling
596
     *   by more than ~20% in width (because that equals more than 5/4th
597
     *   downscaling and thus more than 5 pixels input per 4 pixels output).
598
     * - In general, bilinear filters create artifacts during downscaling
599
     *   (even when <20%), because one output pixel will span more than one
600
     *   input pixel, and thus some pixels will need edges of both neighbor
601
     *   pixels to interpolate the output pixel. Since you can use at most
602
     *   two input pixels per output pixel in bilinear scaling, this is
603
     *   impossible and thus downscaling by any size will create artifacts.
604
     * To enable this type of scaling, set SWS_FAST_BILINEAR
605
     * in SwsInternal->flags.
606
     */
607
    /** @{ */
608
    void (*hyscale_fast)(SwsInternal *c,
609
                         int16_t *dst, int dstWidth,
610
                         const uint8_t *src, int srcW, int xInc);
611
    void (*hcscale_fast)(SwsInternal *c,
612
                         int16_t *dst1, int16_t *dst2, int dstWidth,
613
                         const uint8_t *src1, const uint8_t *src2,
614
                         int srcW, int xInc);
615
    /** @} */
616
617
    /**
618
     * Scale one horizontal line of input data using a filter over the input
619
     * lines, to produce one (differently sized) line of output data.
620
     *
621
     * @param dst        pointer to destination buffer for horizontally scaled
622
     *                   data. If the number of bits per component of one
623
     *                   destination pixel (SwsInternal->dstBpc) is <= 10, data
624
     *                   will be 15 bpc in 16 bits (int16_t) width. Else (i.e.
625
     *                   SwsInternal->dstBpc == 16), data will be 19bpc in
626
     *                   32 bits (int32_t) width.
627
     * @param dstW       width of destination image
628
     * @param src        pointer to source data to be scaled. If the number of
629
     *                   bits per component of a source pixel (SwsInternal->srcBpc)
630
     *                   is 8, this is 8bpc in 8 bits (uint8_t) width. Else
631
     *                   (i.e. SwsInternal->dstBpc > 8), this is native depth
632
     *                   in 16 bits (uint16_t) width. In other words, for 9-bit
633
     *                   YUV input, this is 9bpc, for 10-bit YUV input, this is
634
     *                   10bpc, and for 16-bit RGB or YUV, this is 16bpc.
635
     * @param filter     filter coefficients to be used per output pixel for
636
     *                   scaling. This contains 14bpp filtering coefficients.
637
     *                   Guaranteed to contain dstW * filterSize entries.
638
     * @param filterPos  position of the first input pixel to be used for
639
     *                   each output pixel during scaling. Guaranteed to
640
     *                   contain dstW entries.
641
     * @param filterSize the number of input coefficients to be used (and
642
     *                   thus the number of input pixels to be used) for
643
     *                   creating a single output pixel. Is aligned to 4
644
     *                   (and input coefficients thus padded with zeroes)
645
     *                   to simplify creating SIMD code.
646
     */
647
    /** @{ */
648
    void (*hyScale)(SwsInternal *c, int16_t *dst, int dstW,
649
                    const uint8_t *src, const int16_t *filter,
650
                    const int32_t *filterPos, int filterSize);
651
    void (*hcScale)(SwsInternal *c, int16_t *dst, int dstW,
652
                    const uint8_t *src, const int16_t *filter,
653
                    const int32_t *filterPos, int filterSize);
654
    /** @} */
655
656
    /**
657
     * Color range conversion functions if needed.
658
     * If SwsInternal->dstBpc is > 14:
659
     * - int16_t *dst (data is 15 bpc)
660
     * - uint16_t coeff
661
     * - int32_t offset
662
     * Otherwise (SwsInternal->dstBpc is <= 14):
663
     * - int32_t *dst (data is 19 bpc)
664
     * - uint32_t coeff
665
     * - int64_t offset
666
     */
667
    /** @{ */
668
    void (*lumConvertRange)(int16_t *dst, int width,
669
                            uint32_t coeff, int64_t offset);
670
    void (*chrConvertRange)(int16_t *dst1, int16_t *dst2, int width,
671
                            uint32_t coeff, int64_t offset);
672
    /** @} */
673
674
    uint32_t lumConvertRange_coeff;
675
    uint32_t chrConvertRange_coeff;
676
    int64_t  lumConvertRange_offset;
677
    int64_t  chrConvertRange_offset;
678
679
    int needs_hcscale; ///< Set if there are chroma planes to be converted.
680
681
    // scratch buffer for converting packed rgb0 sources
682
    // filled with a copy of the input frame + fully opaque alpha,
683
    // then passed as input to further conversion
684
    uint8_t     *rgb0_scratch;
685
    unsigned int rgb0_scratch_allocated;
686
687
    // scratch buffer for converting XYZ sources
688
    // filled with the input converted to rgb48
689
    // then passed as input to further conversion
690
    uint8_t     *xyz_scratch;
691
    unsigned int xyz_scratch_allocated;
692
693
    unsigned int dst_slice_align;
694
    atomic_int   stride_unaligned_warned;
695
    atomic_int   data_unaligned_warned;
696
    int          color_conversion_warned;
697
698
    Half2FloatTables *h2f_tables;
699
700
    // Hardware specific private data
701
    void *hw_priv; /* refstruct */
702
703
    int is_legacy_init;
704
705
    FFFramePool frame_pool; /* for sws_scale_frame() data allocations */
706
};
707
//FIXME check init (where 0)
708
709
static_assert(offsetof(SwsInternal, redDither) + DITHER32_INT == offsetof(SwsInternal, dither32),
710
              "dither32 must be at the same offset as redDither + DITHER32_INT");
711
712
#if ARCH_X86_64
713
/* x86 yuv2gbrp uses the SwsInternal for yuv coefficients
714
   if struct offsets change the asm needs to be updated too */
715
static_assert(offsetof(SwsInternal, yuv2rgb_y_offset) == 40348,
716
              "yuv2rgb_y_offset must be updated in x86 asm");
717
#endif
718
719
SwsFunc ff_yuv2rgb_get_func_ptr(SwsInternal *c);
720
int ff_yuv2rgb_c_init_tables(SwsInternal *c, const int inv_table[4],
721
                             int fullRange, int brightness,
722
                             int contrast, int saturation);
723
void ff_yuv2rgb_init_tables_ppc(SwsInternal *c, const int inv_table[4],
724
                                int brightness, int contrast, int saturation);
725
726
void ff_updateMMXDitherTables(SwsInternal *c, int dstY);
727
728
void ff_update_palette(SwsInternal *c, const uint32_t *pal);
729
730
av_cold void ff_sws_init_range_convert(SwsInternal *c);
731
av_cold void ff_sws_init_range_convert_aarch64(SwsInternal *c);
732
av_cold void ff_sws_init_range_convert_loongarch(SwsInternal *c);
733
av_cold void ff_sws_init_range_convert_riscv(SwsInternal *c);
734
av_cold void ff_sws_init_range_convert_x86(SwsInternal *c);
735
736
av_cold void ff_sws_init_xyzdsp(SwsInternal *c);
737
av_cold void ff_sws_init_xyzdsp_aarch64(SwsInternal *c);
738
739
av_cold int ff_sws_fill_xyztables(SwsInternal *c);
740
741
SwsFunc ff_yuv2rgb_init_x86(SwsInternal *c);
742
SwsFunc ff_yuv2rgb_init_ppc(SwsInternal *c);
743
SwsFunc ff_yuv2rgb_init_loongarch(SwsInternal *c);
744
SwsFunc ff_yuv2rgb_init_aarch64(SwsInternal *c);
745
746
static av_always_inline int is16BPS(enum AVPixelFormat pix_fmt)
747
0
{
748
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
749
0
    av_assert0(desc);
750
0
    return desc->comp[0].depth == 16;
751
0
}
Unexecuted instantiation: swscale.c:is16BPS
Unexecuted instantiation: utils.c:is16BPS
Unexecuted instantiation: vscale.c:is16BPS
Unexecuted instantiation: yuv2rgb.c:is16BPS
Unexecuted instantiation: alphablend.c:is16BPS
Unexecuted instantiation: graph.c:is16BPS
Unexecuted instantiation: hscale_fast_bilinear.c:is16BPS
Unexecuted instantiation: input.c:is16BPS
Unexecuted instantiation: ops_dispatch.c:is16BPS
Unexecuted instantiation: options.c:is16BPS
Unexecuted instantiation: output.c:is16BPS
Unexecuted instantiation: rgb2rgb.c:is16BPS
Unexecuted instantiation: slice.c:is16BPS
Unexecuted instantiation: swscale_unscaled.c:is16BPS
Unexecuted instantiation: gamma.c:is16BPS
Unexecuted instantiation: hscale.c:is16BPS
752
753
static av_always_inline int is32BPS(enum AVPixelFormat pix_fmt)
754
0
{
755
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
756
0
    av_assert0(desc);
757
0
    return desc->comp[0].depth == 32;
758
0
}
Unexecuted instantiation: swscale.c:is32BPS
Unexecuted instantiation: utils.c:is32BPS
Unexecuted instantiation: vscale.c:is32BPS
Unexecuted instantiation: yuv2rgb.c:is32BPS
Unexecuted instantiation: alphablend.c:is32BPS
Unexecuted instantiation: graph.c:is32BPS
Unexecuted instantiation: hscale_fast_bilinear.c:is32BPS
Unexecuted instantiation: input.c:is32BPS
Unexecuted instantiation: ops_dispatch.c:is32BPS
Unexecuted instantiation: options.c:is32BPS
Unexecuted instantiation: output.c:is32BPS
Unexecuted instantiation: rgb2rgb.c:is32BPS
Unexecuted instantiation: slice.c:is32BPS
Unexecuted instantiation: swscale_unscaled.c:is32BPS
Unexecuted instantiation: gamma.c:is32BPS
Unexecuted instantiation: hscale.c:is32BPS
759
760
static av_always_inline int isNBPS(enum AVPixelFormat pix_fmt)
761
0
{
762
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
763
0
    av_assert0(desc);
764
0
    return desc->comp[0].depth >= 9 && desc->comp[0].depth <= 14;
765
0
}
Unexecuted instantiation: swscale.c:isNBPS
Unexecuted instantiation: utils.c:isNBPS
Unexecuted instantiation: vscale.c:isNBPS
Unexecuted instantiation: yuv2rgb.c:isNBPS
Unexecuted instantiation: alphablend.c:isNBPS
Unexecuted instantiation: graph.c:isNBPS
Unexecuted instantiation: hscale_fast_bilinear.c:isNBPS
Unexecuted instantiation: input.c:isNBPS
Unexecuted instantiation: ops_dispatch.c:isNBPS
Unexecuted instantiation: options.c:isNBPS
Unexecuted instantiation: output.c:isNBPS
Unexecuted instantiation: rgb2rgb.c:isNBPS
Unexecuted instantiation: slice.c:isNBPS
Unexecuted instantiation: swscale_unscaled.c:isNBPS
Unexecuted instantiation: gamma.c:isNBPS
Unexecuted instantiation: hscale.c:isNBPS
766
767
static av_always_inline int isBE(enum AVPixelFormat pix_fmt)
768
0
{
769
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
770
0
    av_assert0(desc);
771
0
    return desc->flags & AV_PIX_FMT_FLAG_BE;
772
0
}
Unexecuted instantiation: swscale.c:isBE
Unexecuted instantiation: utils.c:isBE
Unexecuted instantiation: vscale.c:isBE
Unexecuted instantiation: yuv2rgb.c:isBE
Unexecuted instantiation: alphablend.c:isBE
Unexecuted instantiation: graph.c:isBE
Unexecuted instantiation: hscale_fast_bilinear.c:isBE
Unexecuted instantiation: input.c:isBE
Unexecuted instantiation: ops_dispatch.c:isBE
Unexecuted instantiation: options.c:isBE
Unexecuted instantiation: output.c:isBE
Unexecuted instantiation: rgb2rgb.c:isBE
Unexecuted instantiation: slice.c:isBE
Unexecuted instantiation: swscale_unscaled.c:isBE
Unexecuted instantiation: gamma.c:isBE
Unexecuted instantiation: hscale.c:isBE
773
774
static av_always_inline int isYUV(enum AVPixelFormat pix_fmt)
775
0
{
776
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
777
0
    av_assert0(desc);
778
0
    return !(desc->flags & AV_PIX_FMT_FLAG_RGB) && desc->nb_components >= 2;
779
0
}
Unexecuted instantiation: swscale.c:isYUV
Unexecuted instantiation: utils.c:isYUV
Unexecuted instantiation: vscale.c:isYUV
Unexecuted instantiation: yuv2rgb.c:isYUV
Unexecuted instantiation: alphablend.c:isYUV
Unexecuted instantiation: graph.c:isYUV
Unexecuted instantiation: hscale_fast_bilinear.c:isYUV
Unexecuted instantiation: input.c:isYUV
Unexecuted instantiation: ops_dispatch.c:isYUV
Unexecuted instantiation: options.c:isYUV
Unexecuted instantiation: output.c:isYUV
Unexecuted instantiation: rgb2rgb.c:isYUV
Unexecuted instantiation: slice.c:isYUV
Unexecuted instantiation: swscale_unscaled.c:isYUV
Unexecuted instantiation: gamma.c:isYUV
Unexecuted instantiation: hscale.c:isYUV
780
781
static av_always_inline int isPlanarYUV(enum AVPixelFormat pix_fmt)
782
0
{
783
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
784
0
    av_assert0(desc);
785
0
    return ((desc->flags & AV_PIX_FMT_FLAG_PLANAR) && isYUV(pix_fmt));
786
0
}
Unexecuted instantiation: swscale.c:isPlanarYUV
Unexecuted instantiation: utils.c:isPlanarYUV
Unexecuted instantiation: vscale.c:isPlanarYUV
Unexecuted instantiation: yuv2rgb.c:isPlanarYUV
Unexecuted instantiation: alphablend.c:isPlanarYUV
Unexecuted instantiation: graph.c:isPlanarYUV
Unexecuted instantiation: hscale_fast_bilinear.c:isPlanarYUV
Unexecuted instantiation: input.c:isPlanarYUV
Unexecuted instantiation: ops_dispatch.c:isPlanarYUV
Unexecuted instantiation: options.c:isPlanarYUV
Unexecuted instantiation: output.c:isPlanarYUV
Unexecuted instantiation: rgb2rgb.c:isPlanarYUV
Unexecuted instantiation: slice.c:isPlanarYUV
Unexecuted instantiation: swscale_unscaled.c:isPlanarYUV
Unexecuted instantiation: gamma.c:isPlanarYUV
Unexecuted instantiation: hscale.c:isPlanarYUV
787
788
/*
789
 * Identity semi-planar YUV formats. Specifically, those are YUV formats
790
 * where the second and third components (U & V) are on the same plane.
791
 */
792
static av_always_inline int isSemiPlanarYUV(enum AVPixelFormat pix_fmt)
793
0
{
794
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
795
0
    av_assert0(desc);
796
0
    return (isPlanarYUV(pix_fmt) && desc->comp[1].plane == desc->comp[2].plane);
797
0
}
Unexecuted instantiation: swscale.c:isSemiPlanarYUV
Unexecuted instantiation: utils.c:isSemiPlanarYUV
Unexecuted instantiation: vscale.c:isSemiPlanarYUV
Unexecuted instantiation: yuv2rgb.c:isSemiPlanarYUV
Unexecuted instantiation: alphablend.c:isSemiPlanarYUV
Unexecuted instantiation: graph.c:isSemiPlanarYUV
Unexecuted instantiation: hscale_fast_bilinear.c:isSemiPlanarYUV
Unexecuted instantiation: input.c:isSemiPlanarYUV
Unexecuted instantiation: ops_dispatch.c:isSemiPlanarYUV
Unexecuted instantiation: options.c:isSemiPlanarYUV
Unexecuted instantiation: output.c:isSemiPlanarYUV
Unexecuted instantiation: rgb2rgb.c:isSemiPlanarYUV
Unexecuted instantiation: slice.c:isSemiPlanarYUV
Unexecuted instantiation: swscale_unscaled.c:isSemiPlanarYUV
Unexecuted instantiation: gamma.c:isSemiPlanarYUV
Unexecuted instantiation: hscale.c:isSemiPlanarYUV
798
799
static av_always_inline int isRGB(enum AVPixelFormat pix_fmt)
800
0
{
801
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
802
0
    av_assert0(desc);
803
0
    return (desc->flags & AV_PIX_FMT_FLAG_RGB);
804
0
}
Unexecuted instantiation: swscale.c:isRGB
Unexecuted instantiation: utils.c:isRGB
Unexecuted instantiation: vscale.c:isRGB
Unexecuted instantiation: yuv2rgb.c:isRGB
Unexecuted instantiation: alphablend.c:isRGB
Unexecuted instantiation: graph.c:isRGB
Unexecuted instantiation: hscale_fast_bilinear.c:isRGB
Unexecuted instantiation: input.c:isRGB
Unexecuted instantiation: ops_dispatch.c:isRGB
Unexecuted instantiation: options.c:isRGB
Unexecuted instantiation: output.c:isRGB
Unexecuted instantiation: rgb2rgb.c:isRGB
Unexecuted instantiation: slice.c:isRGB
Unexecuted instantiation: swscale_unscaled.c:isRGB
Unexecuted instantiation: gamma.c:isRGB
Unexecuted instantiation: hscale.c:isRGB
805
806
static av_always_inline int isGray(enum AVPixelFormat pix_fmt)
807
0
{
808
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
809
0
    av_assert0(desc);
810
0
    return !(desc->flags & AV_PIX_FMT_FLAG_PAL) &&
811
0
           !(desc->flags & AV_PIX_FMT_FLAG_HWACCEL) &&
812
0
           desc->nb_components <= 2 &&
813
0
           pix_fmt != AV_PIX_FMT_MONOBLACK &&
814
0
           pix_fmt != AV_PIX_FMT_MONOWHITE;
815
0
}
Unexecuted instantiation: swscale.c:isGray
Unexecuted instantiation: utils.c:isGray
Unexecuted instantiation: vscale.c:isGray
Unexecuted instantiation: yuv2rgb.c:isGray
Unexecuted instantiation: alphablend.c:isGray
Unexecuted instantiation: graph.c:isGray
Unexecuted instantiation: hscale_fast_bilinear.c:isGray
Unexecuted instantiation: input.c:isGray
Unexecuted instantiation: ops_dispatch.c:isGray
Unexecuted instantiation: options.c:isGray
Unexecuted instantiation: output.c:isGray
Unexecuted instantiation: rgb2rgb.c:isGray
Unexecuted instantiation: slice.c:isGray
Unexecuted instantiation: swscale_unscaled.c:isGray
Unexecuted instantiation: gamma.c:isGray
Unexecuted instantiation: hscale.c:isGray
816
817
static av_always_inline int isRGBinInt(enum AVPixelFormat pix_fmt)
818
0
{
819
0
    return pix_fmt == AV_PIX_FMT_RGB48BE     ||
820
0
           pix_fmt == AV_PIX_FMT_RGB48LE     ||
821
0
           pix_fmt == AV_PIX_FMT_RGB32       ||
822
0
           pix_fmt == AV_PIX_FMT_RGB32_1     ||
823
0
           pix_fmt == AV_PIX_FMT_RGB24       ||
824
0
           pix_fmt == AV_PIX_FMT_RGB565BE    ||
825
0
           pix_fmt == AV_PIX_FMT_RGB565LE    ||
826
0
           pix_fmt == AV_PIX_FMT_RGB555BE    ||
827
0
           pix_fmt == AV_PIX_FMT_RGB555LE    ||
828
0
           pix_fmt == AV_PIX_FMT_RGB444BE    ||
829
0
           pix_fmt == AV_PIX_FMT_RGB444LE    ||
830
0
           pix_fmt == AV_PIX_FMT_RGB8        ||
831
0
           pix_fmt == AV_PIX_FMT_RGB4        ||
832
0
           pix_fmt == AV_PIX_FMT_RGB4_BYTE   ||
833
0
           pix_fmt == AV_PIX_FMT_RGBA64BE    ||
834
0
           pix_fmt == AV_PIX_FMT_RGBA64LE    ||
835
0
           pix_fmt == AV_PIX_FMT_MONOBLACK   ||
836
0
           pix_fmt == AV_PIX_FMT_MONOWHITE;
837
0
}
Unexecuted instantiation: swscale.c:isRGBinInt
Unexecuted instantiation: utils.c:isRGBinInt
Unexecuted instantiation: vscale.c:isRGBinInt
Unexecuted instantiation: yuv2rgb.c:isRGBinInt
Unexecuted instantiation: alphablend.c:isRGBinInt
Unexecuted instantiation: graph.c:isRGBinInt
Unexecuted instantiation: hscale_fast_bilinear.c:isRGBinInt
Unexecuted instantiation: input.c:isRGBinInt
Unexecuted instantiation: ops_dispatch.c:isRGBinInt
Unexecuted instantiation: options.c:isRGBinInt
Unexecuted instantiation: output.c:isRGBinInt
Unexecuted instantiation: rgb2rgb.c:isRGBinInt
Unexecuted instantiation: slice.c:isRGBinInt
Unexecuted instantiation: swscale_unscaled.c:isRGBinInt
Unexecuted instantiation: gamma.c:isRGBinInt
Unexecuted instantiation: hscale.c:isRGBinInt
838
839
static av_always_inline int isBGRinInt(enum AVPixelFormat pix_fmt)
840
0
{
841
0
    return pix_fmt == AV_PIX_FMT_BGR48BE     ||
842
0
           pix_fmt == AV_PIX_FMT_BGR48LE     ||
843
0
           pix_fmt == AV_PIX_FMT_BGR32       ||
844
0
           pix_fmt == AV_PIX_FMT_BGR32_1     ||
845
0
           pix_fmt == AV_PIX_FMT_BGR24       ||
846
0
           pix_fmt == AV_PIX_FMT_BGR565BE    ||
847
0
           pix_fmt == AV_PIX_FMT_BGR565LE    ||
848
0
           pix_fmt == AV_PIX_FMT_BGR555BE    ||
849
0
           pix_fmt == AV_PIX_FMT_BGR555LE    ||
850
0
           pix_fmt == AV_PIX_FMT_BGR444BE    ||
851
0
           pix_fmt == AV_PIX_FMT_BGR444LE    ||
852
0
           pix_fmt == AV_PIX_FMT_BGR8        ||
853
0
           pix_fmt == AV_PIX_FMT_BGR4        ||
854
0
           pix_fmt == AV_PIX_FMT_BGR4_BYTE   ||
855
0
           pix_fmt == AV_PIX_FMT_BGRA64BE    ||
856
0
           pix_fmt == AV_PIX_FMT_BGRA64LE    ||
857
0
           pix_fmt == AV_PIX_FMT_MONOBLACK   ||
858
0
           pix_fmt == AV_PIX_FMT_MONOWHITE;
859
0
}
Unexecuted instantiation: swscale.c:isBGRinInt
Unexecuted instantiation: utils.c:isBGRinInt
Unexecuted instantiation: vscale.c:isBGRinInt
Unexecuted instantiation: yuv2rgb.c:isBGRinInt
Unexecuted instantiation: alphablend.c:isBGRinInt
Unexecuted instantiation: graph.c:isBGRinInt
Unexecuted instantiation: hscale_fast_bilinear.c:isBGRinInt
Unexecuted instantiation: input.c:isBGRinInt
Unexecuted instantiation: ops_dispatch.c:isBGRinInt
Unexecuted instantiation: options.c:isBGRinInt
Unexecuted instantiation: output.c:isBGRinInt
Unexecuted instantiation: rgb2rgb.c:isBGRinInt
Unexecuted instantiation: slice.c:isBGRinInt
Unexecuted instantiation: swscale_unscaled.c:isBGRinInt
Unexecuted instantiation: gamma.c:isBGRinInt
Unexecuted instantiation: hscale.c:isBGRinInt
860
861
static av_always_inline int isBayer(enum AVPixelFormat pix_fmt)
862
0
{
863
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
864
0
    av_assert0(desc);
865
0
    return !!(desc->flags & AV_PIX_FMT_FLAG_BAYER);
866
0
}
Unexecuted instantiation: swscale.c:isBayer
Unexecuted instantiation: utils.c:isBayer
Unexecuted instantiation: vscale.c:isBayer
Unexecuted instantiation: yuv2rgb.c:isBayer
Unexecuted instantiation: alphablend.c:isBayer
Unexecuted instantiation: graph.c:isBayer
Unexecuted instantiation: hscale_fast_bilinear.c:isBayer
Unexecuted instantiation: input.c:isBayer
Unexecuted instantiation: ops_dispatch.c:isBayer
Unexecuted instantiation: options.c:isBayer
Unexecuted instantiation: output.c:isBayer
Unexecuted instantiation: rgb2rgb.c:isBayer
Unexecuted instantiation: slice.c:isBayer
Unexecuted instantiation: swscale_unscaled.c:isBayer
Unexecuted instantiation: gamma.c:isBayer
Unexecuted instantiation: hscale.c:isBayer
867
868
static av_always_inline int isBayer16BPS(enum AVPixelFormat pix_fmt)
869
0
{
870
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
871
0
    av_assert0(desc);
872
0
    return desc->comp[1].depth == 8;
873
0
}
Unexecuted instantiation: swscale.c:isBayer16BPS
Unexecuted instantiation: utils.c:isBayer16BPS
Unexecuted instantiation: vscale.c:isBayer16BPS
Unexecuted instantiation: yuv2rgb.c:isBayer16BPS
Unexecuted instantiation: alphablend.c:isBayer16BPS
Unexecuted instantiation: graph.c:isBayer16BPS
Unexecuted instantiation: hscale_fast_bilinear.c:isBayer16BPS
Unexecuted instantiation: input.c:isBayer16BPS
Unexecuted instantiation: ops_dispatch.c:isBayer16BPS
Unexecuted instantiation: options.c:isBayer16BPS
Unexecuted instantiation: output.c:isBayer16BPS
Unexecuted instantiation: rgb2rgb.c:isBayer16BPS
Unexecuted instantiation: slice.c:isBayer16BPS
Unexecuted instantiation: swscale_unscaled.c:isBayer16BPS
Unexecuted instantiation: gamma.c:isBayer16BPS
Unexecuted instantiation: hscale.c:isBayer16BPS
874
875
static av_always_inline int isAnyRGB(enum AVPixelFormat pix_fmt)
876
0
{
877
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
878
0
    av_assert0(desc);
879
0
    return (desc->flags & AV_PIX_FMT_FLAG_RGB) ||
880
0
            pix_fmt == AV_PIX_FMT_MONOBLACK || pix_fmt == AV_PIX_FMT_MONOWHITE;
881
0
}
Unexecuted instantiation: swscale.c:isAnyRGB
Unexecuted instantiation: utils.c:isAnyRGB
Unexecuted instantiation: vscale.c:isAnyRGB
Unexecuted instantiation: yuv2rgb.c:isAnyRGB
Unexecuted instantiation: alphablend.c:isAnyRGB
Unexecuted instantiation: graph.c:isAnyRGB
Unexecuted instantiation: hscale_fast_bilinear.c:isAnyRGB
Unexecuted instantiation: input.c:isAnyRGB
Unexecuted instantiation: ops_dispatch.c:isAnyRGB
Unexecuted instantiation: options.c:isAnyRGB
Unexecuted instantiation: output.c:isAnyRGB
Unexecuted instantiation: rgb2rgb.c:isAnyRGB
Unexecuted instantiation: slice.c:isAnyRGB
Unexecuted instantiation: swscale_unscaled.c:isAnyRGB
Unexecuted instantiation: gamma.c:isAnyRGB
Unexecuted instantiation: hscale.c:isAnyRGB
882
883
static av_always_inline int isFloat(enum AVPixelFormat pix_fmt)
884
0
{
885
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
886
0
    av_assert0(desc);
887
0
    return desc->flags & AV_PIX_FMT_FLAG_FLOAT;
888
0
}
Unexecuted instantiation: swscale.c:isFloat
Unexecuted instantiation: utils.c:isFloat
Unexecuted instantiation: vscale.c:isFloat
Unexecuted instantiation: yuv2rgb.c:isFloat
Unexecuted instantiation: alphablend.c:isFloat
Unexecuted instantiation: graph.c:isFloat
Unexecuted instantiation: hscale_fast_bilinear.c:isFloat
Unexecuted instantiation: input.c:isFloat
Unexecuted instantiation: ops_dispatch.c:isFloat
Unexecuted instantiation: options.c:isFloat
Unexecuted instantiation: output.c:isFloat
Unexecuted instantiation: rgb2rgb.c:isFloat
Unexecuted instantiation: slice.c:isFloat
Unexecuted instantiation: swscale_unscaled.c:isFloat
Unexecuted instantiation: gamma.c:isFloat
Unexecuted instantiation: hscale.c:isFloat
889
890
static av_always_inline int isFloat16(enum AVPixelFormat pix_fmt)
891
0
{
892
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
893
0
    av_assert0(desc);
894
0
    return (desc->flags & AV_PIX_FMT_FLAG_FLOAT) && desc->comp[0].depth == 16;
895
0
}
Unexecuted instantiation: swscale.c:isFloat16
Unexecuted instantiation: utils.c:isFloat16
Unexecuted instantiation: vscale.c:isFloat16
Unexecuted instantiation: yuv2rgb.c:isFloat16
Unexecuted instantiation: alphablend.c:isFloat16
Unexecuted instantiation: graph.c:isFloat16
Unexecuted instantiation: hscale_fast_bilinear.c:isFloat16
Unexecuted instantiation: input.c:isFloat16
Unexecuted instantiation: ops_dispatch.c:isFloat16
Unexecuted instantiation: options.c:isFloat16
Unexecuted instantiation: output.c:isFloat16
Unexecuted instantiation: rgb2rgb.c:isFloat16
Unexecuted instantiation: slice.c:isFloat16
Unexecuted instantiation: swscale_unscaled.c:isFloat16
Unexecuted instantiation: gamma.c:isFloat16
Unexecuted instantiation: hscale.c:isFloat16
896
897
static av_always_inline int isALPHA(enum AVPixelFormat pix_fmt)
898
0
{
899
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
900
0
    av_assert0(desc);
901
0
    if (pix_fmt == AV_PIX_FMT_PAL8)
902
0
        return 1;
903
0
    return desc->flags & AV_PIX_FMT_FLAG_ALPHA;
904
0
}
Unexecuted instantiation: swscale.c:isALPHA
Unexecuted instantiation: utils.c:isALPHA
Unexecuted instantiation: vscale.c:isALPHA
Unexecuted instantiation: yuv2rgb.c:isALPHA
Unexecuted instantiation: alphablend.c:isALPHA
Unexecuted instantiation: graph.c:isALPHA
Unexecuted instantiation: hscale_fast_bilinear.c:isALPHA
Unexecuted instantiation: input.c:isALPHA
Unexecuted instantiation: ops_dispatch.c:isALPHA
Unexecuted instantiation: options.c:isALPHA
Unexecuted instantiation: output.c:isALPHA
Unexecuted instantiation: rgb2rgb.c:isALPHA
Unexecuted instantiation: slice.c:isALPHA
Unexecuted instantiation: swscale_unscaled.c:isALPHA
Unexecuted instantiation: gamma.c:isALPHA
Unexecuted instantiation: hscale.c:isALPHA
905
906
static av_always_inline int isPacked(enum AVPixelFormat pix_fmt)
907
0
{
908
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
909
0
    av_assert0(desc);
910
0
    return (desc->nb_components >= 2 && !(desc->flags & AV_PIX_FMT_FLAG_PLANAR)) ||
911
0
            pix_fmt == AV_PIX_FMT_PAL8 ||
912
0
            pix_fmt == AV_PIX_FMT_MONOBLACK || pix_fmt == AV_PIX_FMT_MONOWHITE;
913
0
}
Unexecuted instantiation: swscale.c:isPacked
Unexecuted instantiation: utils.c:isPacked
Unexecuted instantiation: vscale.c:isPacked
Unexecuted instantiation: yuv2rgb.c:isPacked
Unexecuted instantiation: alphablend.c:isPacked
Unexecuted instantiation: graph.c:isPacked
Unexecuted instantiation: hscale_fast_bilinear.c:isPacked
Unexecuted instantiation: input.c:isPacked
Unexecuted instantiation: ops_dispatch.c:isPacked
Unexecuted instantiation: options.c:isPacked
Unexecuted instantiation: output.c:isPacked
Unexecuted instantiation: rgb2rgb.c:isPacked
Unexecuted instantiation: slice.c:isPacked
Unexecuted instantiation: swscale_unscaled.c:isPacked
Unexecuted instantiation: gamma.c:isPacked
Unexecuted instantiation: hscale.c:isPacked
914
915
static av_always_inline int isPlanar(enum AVPixelFormat pix_fmt)
916
0
{
917
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
918
0
    av_assert0(desc);
919
0
    return (desc->nb_components >= 2 && (desc->flags & AV_PIX_FMT_FLAG_PLANAR));
920
0
}
Unexecuted instantiation: swscale.c:isPlanar
Unexecuted instantiation: utils.c:isPlanar
Unexecuted instantiation: vscale.c:isPlanar
Unexecuted instantiation: yuv2rgb.c:isPlanar
Unexecuted instantiation: alphablend.c:isPlanar
Unexecuted instantiation: graph.c:isPlanar
Unexecuted instantiation: hscale_fast_bilinear.c:isPlanar
Unexecuted instantiation: input.c:isPlanar
Unexecuted instantiation: ops_dispatch.c:isPlanar
Unexecuted instantiation: options.c:isPlanar
Unexecuted instantiation: output.c:isPlanar
Unexecuted instantiation: rgb2rgb.c:isPlanar
Unexecuted instantiation: slice.c:isPlanar
Unexecuted instantiation: swscale_unscaled.c:isPlanar
Unexecuted instantiation: gamma.c:isPlanar
Unexecuted instantiation: hscale.c:isPlanar
921
922
static av_always_inline int isPackedRGB(enum AVPixelFormat pix_fmt)
923
0
{
924
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
925
0
    av_assert0(desc);
926
0
    return ((desc->flags & (AV_PIX_FMT_FLAG_PLANAR | AV_PIX_FMT_FLAG_RGB)) == AV_PIX_FMT_FLAG_RGB);
927
0
}
Unexecuted instantiation: swscale.c:isPackedRGB
Unexecuted instantiation: utils.c:isPackedRGB
Unexecuted instantiation: vscale.c:isPackedRGB
Unexecuted instantiation: yuv2rgb.c:isPackedRGB
Unexecuted instantiation: alphablend.c:isPackedRGB
Unexecuted instantiation: graph.c:isPackedRGB
Unexecuted instantiation: hscale_fast_bilinear.c:isPackedRGB
Unexecuted instantiation: input.c:isPackedRGB
Unexecuted instantiation: ops_dispatch.c:isPackedRGB
Unexecuted instantiation: options.c:isPackedRGB
Unexecuted instantiation: output.c:isPackedRGB
Unexecuted instantiation: rgb2rgb.c:isPackedRGB
Unexecuted instantiation: slice.c:isPackedRGB
Unexecuted instantiation: swscale_unscaled.c:isPackedRGB
Unexecuted instantiation: gamma.c:isPackedRGB
Unexecuted instantiation: hscale.c:isPackedRGB
928
929
static av_always_inline int isPlanarRGB(enum AVPixelFormat pix_fmt)
930
0
{
931
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
932
0
    av_assert0(desc);
933
0
    return ((desc->flags & (AV_PIX_FMT_FLAG_PLANAR | AV_PIX_FMT_FLAG_RGB)) ==
934
0
            (AV_PIX_FMT_FLAG_PLANAR | AV_PIX_FMT_FLAG_RGB));
935
0
}
Unexecuted instantiation: swscale.c:isPlanarRGB
Unexecuted instantiation: utils.c:isPlanarRGB
Unexecuted instantiation: vscale.c:isPlanarRGB
Unexecuted instantiation: yuv2rgb.c:isPlanarRGB
Unexecuted instantiation: alphablend.c:isPlanarRGB
Unexecuted instantiation: graph.c:isPlanarRGB
Unexecuted instantiation: hscale_fast_bilinear.c:isPlanarRGB
Unexecuted instantiation: input.c:isPlanarRGB
Unexecuted instantiation: ops_dispatch.c:isPlanarRGB
Unexecuted instantiation: options.c:isPlanarRGB
Unexecuted instantiation: output.c:isPlanarRGB
Unexecuted instantiation: rgb2rgb.c:isPlanarRGB
Unexecuted instantiation: slice.c:isPlanarRGB
Unexecuted instantiation: swscale_unscaled.c:isPlanarRGB
Unexecuted instantiation: gamma.c:isPlanarRGB
Unexecuted instantiation: hscale.c:isPlanarRGB
936
937
static av_always_inline int usePal(enum AVPixelFormat pix_fmt)
938
0
{
939
0
    switch (pix_fmt) {
940
0
    case AV_PIX_FMT_PAL8:
941
0
    case AV_PIX_FMT_BGR4_BYTE:
942
0
    case AV_PIX_FMT_BGR8:
943
0
    case AV_PIX_FMT_GRAY8:
944
0
    case AV_PIX_FMT_RGB4_BYTE:
945
0
    case AV_PIX_FMT_RGB8:
946
0
        return 1;
947
0
    default:
948
0
        return 0;
949
0
    }
950
0
}
Unexecuted instantiation: swscale.c:usePal
Unexecuted instantiation: utils.c:usePal
Unexecuted instantiation: vscale.c:usePal
Unexecuted instantiation: yuv2rgb.c:usePal
Unexecuted instantiation: alphablend.c:usePal
Unexecuted instantiation: graph.c:usePal
Unexecuted instantiation: hscale_fast_bilinear.c:usePal
Unexecuted instantiation: input.c:usePal
Unexecuted instantiation: ops_dispatch.c:usePal
Unexecuted instantiation: options.c:usePal
Unexecuted instantiation: output.c:usePal
Unexecuted instantiation: rgb2rgb.c:usePal
Unexecuted instantiation: slice.c:usePal
Unexecuted instantiation: swscale_unscaled.c:usePal
Unexecuted instantiation: gamma.c:usePal
Unexecuted instantiation: hscale.c:usePal
951
952
/*
953
 * Identity formats where the data is in the high bits, and the low bits are shifted away.
954
 */
955
static av_always_inline int isDataInHighBits(enum AVPixelFormat pix_fmt)
956
0
{
957
0
    int i;
958
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
959
0
    av_assert0(desc);
960
0
    if (desc->flags & (AV_PIX_FMT_FLAG_BITSTREAM | AV_PIX_FMT_FLAG_HWACCEL))
961
0
        return 0;
962
0
    for (i = 0; i < desc->nb_components; i++) {
963
0
        if (!desc->comp[i].shift)
964
0
            return 0;
965
0
        if ((desc->comp[i].shift + desc->comp[i].depth) & 0x7)
966
0
            return 0;
967
0
    }
968
0
    return 1;
969
0
}
Unexecuted instantiation: swscale.c:isDataInHighBits
Unexecuted instantiation: utils.c:isDataInHighBits
Unexecuted instantiation: vscale.c:isDataInHighBits
Unexecuted instantiation: yuv2rgb.c:isDataInHighBits
Unexecuted instantiation: alphablend.c:isDataInHighBits
Unexecuted instantiation: graph.c:isDataInHighBits
Unexecuted instantiation: hscale_fast_bilinear.c:isDataInHighBits
Unexecuted instantiation: input.c:isDataInHighBits
Unexecuted instantiation: ops_dispatch.c:isDataInHighBits
Unexecuted instantiation: options.c:isDataInHighBits
Unexecuted instantiation: output.c:isDataInHighBits
Unexecuted instantiation: rgb2rgb.c:isDataInHighBits
Unexecuted instantiation: slice.c:isDataInHighBits
Unexecuted instantiation: swscale_unscaled.c:isDataInHighBits
Unexecuted instantiation: gamma.c:isDataInHighBits
Unexecuted instantiation: hscale.c:isDataInHighBits
970
971
/*
972
 * Identity formats where the chroma planes are swapped (CrCb order).
973
 */
974
static av_always_inline int isSwappedChroma(enum AVPixelFormat pix_fmt)
975
0
{
976
0
    const AVPixFmtDescriptor *desc = av_pix_fmt_desc_get(pix_fmt);
977
0
    av_assert0(desc);
978
0
    if (!isYUV(pix_fmt))
979
0
        return 0;
980
0
    if ((desc->flags & AV_PIX_FMT_FLAG_ALPHA) && desc->nb_components < 4)
981
0
        return 0;
982
0
    if (desc->nb_components < 3)
983
0
        return 0;
984
0
    if (!isPlanarYUV(pix_fmt) || isSemiPlanarYUV(pix_fmt))
985
0
        return desc->comp[1].offset > desc->comp[2].offset;
986
0
    else
987
0
        return desc->comp[1].plane > desc->comp[2].plane;
988
0
}
Unexecuted instantiation: swscale.c:isSwappedChroma
Unexecuted instantiation: utils.c:isSwappedChroma
Unexecuted instantiation: vscale.c:isSwappedChroma
Unexecuted instantiation: yuv2rgb.c:isSwappedChroma
Unexecuted instantiation: alphablend.c:isSwappedChroma
Unexecuted instantiation: graph.c:isSwappedChroma
Unexecuted instantiation: hscale_fast_bilinear.c:isSwappedChroma
Unexecuted instantiation: input.c:isSwappedChroma
Unexecuted instantiation: ops_dispatch.c:isSwappedChroma
Unexecuted instantiation: options.c:isSwappedChroma
Unexecuted instantiation: output.c:isSwappedChroma
Unexecuted instantiation: rgb2rgb.c:isSwappedChroma
Unexecuted instantiation: slice.c:isSwappedChroma
Unexecuted instantiation: swscale_unscaled.c:isSwappedChroma
Unexecuted instantiation: gamma.c:isSwappedChroma
Unexecuted instantiation: hscale.c:isSwappedChroma
989
990
extern const uint64_t ff_dither4[2];
991
extern const uint64_t ff_dither8[2];
992
993
extern const uint8_t ff_dither_2x2_4[3][8];
994
extern const uint8_t ff_dither_2x2_8[3][8];
995
extern const uint8_t ff_dither_4x4_16[5][8];
996
extern const uint8_t ff_dither_8x8_32[9][8];
997
extern const uint8_t ff_dither_8x8_73[9][8];
998
extern const uint8_t ff_dither_8x8_128[9][8];
999
extern const uint8_t ff_dither_8x8_220[9][8];
1000
1001
extern const int32_t ff_yuv2rgb_coeffs[11][4];
1002
1003
extern const AVClass ff_sws_context_class;
1004
1005
int ff_sws_init_single_context(SwsContext *sws, SwsFilter *srcFilter,
1006
                               SwsFilter *dstFilter);
1007
1008
/**
1009
 * Set c->convert_unscaled to an unscaled converter if one exists for the
1010
 * specific source and destination formats, bit depths, flags, etc.
1011
 */
1012
void ff_get_unscaled_swscale(SwsInternal *c);
1013
void ff_get_unscaled_swscale_ppc(SwsInternal *c);
1014
void ff_get_unscaled_swscale_arm(SwsInternal *c);
1015
void ff_get_unscaled_swscale_aarch64(SwsInternal *c);
1016
1017
void ff_sws_init_scale(SwsInternal *c);
1018
1019
void ff_sws_init_input_funcs(SwsInternal *c,
1020
                             planar1_YV12_fn *lumToYV12,
1021
                             planar1_YV12_fn *alpToYV12,
1022
                             planar2_YV12_fn *chrToYV12,
1023
                             planarX_YV12_fn *readLumPlanar,
1024
                             planarX_YV12_fn *readAlpPlanar,
1025
                             planarX2_YV12_fn *readChrPlanar);
1026
void ff_sws_init_output_funcs(SwsInternal *c,
1027
                              yuv2planar1_fn *yuv2plane1,
1028
                              yuv2planarX_fn *yuv2planeX,
1029
                              yuv2interleavedX_fn *yuv2nv12cX,
1030
                              yuv2packed1_fn *yuv2packed1,
1031
                              yuv2packed2_fn *yuv2packed2,
1032
                              yuv2packedX_fn *yuv2packedX,
1033
                              yuv2anyX_fn *yuv2anyX);
1034
void ff_sws_init_swscale_ppc(SwsInternal *c);
1035
void ff_sws_init_swscale_vsx(SwsInternal *c);
1036
void ff_sws_init_swscale_x86(SwsInternal *c);
1037
void ff_sws_init_swscale_aarch64(SwsInternal *c);
1038
void ff_sws_init_swscale_arm(SwsInternal *c);
1039
void ff_sws_init_swscale_loongarch(SwsInternal *c);
1040
void ff_sws_init_swscale_riscv(SwsInternal *c);
1041
1042
int ff_sws_init_altivec_bufs(SwsInternal *c);
1043
void ff_sws_free_altivec_bufs(SwsInternal *c);
1044
1045
void ff_hyscale_fast_c(SwsInternal *c, int16_t *dst, int dstWidth,
1046
                       const uint8_t *src, int srcW, int xInc);
1047
void ff_hcscale_fast_c(SwsInternal *c, int16_t *dst1, int16_t *dst2,
1048
                       int dstWidth, const uint8_t *src1,
1049
                       const uint8_t *src2, int srcW, int xInc);
1050
int ff_init_hscaler_mmxext(int dstW, int xInc, uint8_t *filterCode,
1051
                           int16_t *filter, int32_t *filterPos,
1052
                           int numSplits);
1053
void ff_hyscale_fast_mmxext(SwsInternal *c, int16_t *dst,
1054
                            int dstWidth, const uint8_t *src,
1055
                            int srcW, int xInc);
1056
void ff_hcscale_fast_mmxext(SwsInternal *c, int16_t *dst1, int16_t *dst2,
1057
                            int dstWidth, const uint8_t *src1,
1058
                            const uint8_t *src2, int srcW, int xInc);
1059
1060
int ff_sws_alphablendaway(SwsInternal *c, const uint8_t *const src[],
1061
                          const int srcStride[], int srcSliceY, int srcSliceH,
1062
                          uint8_t *const dst[], const int dstStride[]);
1063
1064
void ff_copyPlane(const uint8_t *src, int srcStride,
1065
                  int srcSliceY, int srcSliceH, int width,
1066
                  uint8_t *dst, int dstStride);
1067
1068
static inline void fillPlane16(uint8_t *plane, int stride, int width, int height, int y,
1069
                               int alpha, int bits, const int big_endian)
1070
0
{
1071
0
    uint8_t *ptr = plane + stride * y;
1072
0
    int v = alpha ? 0xFFFF>>(16-bits) : (1<<(bits-1));
1073
0
    if (big_endian != HAVE_BIGENDIAN)
1074
0
        v = av_bswap16(v);
1075
0
    for (int i = 0; i < height; i++) {
1076
0
        for (int j = 0; j < width; j++)
1077
0
            AV_WN16(ptr + 2 * j, v);
1078
0
        ptr += stride;
1079
0
    }
1080
0
}
Unexecuted instantiation: swscale.c:fillPlane16
Unexecuted instantiation: utils.c:fillPlane16
Unexecuted instantiation: vscale.c:fillPlane16
Unexecuted instantiation: yuv2rgb.c:fillPlane16
Unexecuted instantiation: alphablend.c:fillPlane16
Unexecuted instantiation: graph.c:fillPlane16
Unexecuted instantiation: hscale_fast_bilinear.c:fillPlane16
Unexecuted instantiation: input.c:fillPlane16
Unexecuted instantiation: ops_dispatch.c:fillPlane16
Unexecuted instantiation: options.c:fillPlane16
Unexecuted instantiation: output.c:fillPlane16
Unexecuted instantiation: rgb2rgb.c:fillPlane16
Unexecuted instantiation: slice.c:fillPlane16
Unexecuted instantiation: swscale_unscaled.c:fillPlane16
Unexecuted instantiation: gamma.c:fillPlane16
Unexecuted instantiation: hscale.c:fillPlane16
1081
1082
static inline void fillPlane32(uint8_t *plane, int stride, int width, int height, int y,
1083
                               int alpha, int bits, const int big_endian, int is_float)
1084
0
{
1085
0
    uint8_t *ptr = plane + stride * y;
1086
0
    uint32_t v;
1087
0
    uint32_t onef32 = 0x3f800000;
1088
0
    if (is_float)
1089
0
        v = alpha ? onef32 : 0;
1090
0
    else
1091
0
        v = alpha ? 0xFFFFFFFF>>(32-bits) : (1<<(bits-1));
1092
0
    if (big_endian != HAVE_BIGENDIAN)
1093
0
        v = av_bswap32(v);
1094
1095
0
    for (int i = 0; i < height; i++) {
1096
0
        for (int j = 0; j < width; j++)
1097
0
            AV_WN32(ptr + 4 * j, v);
1098
0
        ptr += stride;
1099
0
    }
1100
0
}
Unexecuted instantiation: swscale.c:fillPlane32
Unexecuted instantiation: utils.c:fillPlane32
Unexecuted instantiation: vscale.c:fillPlane32
Unexecuted instantiation: yuv2rgb.c:fillPlane32
Unexecuted instantiation: alphablend.c:fillPlane32
Unexecuted instantiation: graph.c:fillPlane32
Unexecuted instantiation: hscale_fast_bilinear.c:fillPlane32
Unexecuted instantiation: input.c:fillPlane32
Unexecuted instantiation: ops_dispatch.c:fillPlane32
Unexecuted instantiation: options.c:fillPlane32
Unexecuted instantiation: output.c:fillPlane32
Unexecuted instantiation: rgb2rgb.c:fillPlane32
Unexecuted instantiation: slice.c:fillPlane32
Unexecuted instantiation: swscale_unscaled.c:fillPlane32
Unexecuted instantiation: gamma.c:fillPlane32
Unexecuted instantiation: hscale.c:fillPlane32
1101
1102
1103
#define MAX_SLICE_PLANES 4
1104
1105
/// Slice plane
1106
typedef struct SwsPlane
1107
{
1108
    int available_lines;    ///< max number of lines that can be hold by this plane
1109
    int sliceY;             ///< index of first line
1110
    int sliceH;             ///< number of lines
1111
    uint8_t **line;         ///< line buffer
1112
    uint8_t **tmp;          ///< Tmp line buffer used by mmx code
1113
} SwsPlane;
1114
1115
/**
1116
 * Struct which defines a slice of an image to be scaled or an output for
1117
 * a scaled slice.
1118
 * A slice can also be used as intermediate ring buffer for scaling steps.
1119
 */
1120
typedef struct SwsSlice
1121
{
1122
    int width;              ///< Slice line width
1123
    int h_chr_sub_sample;   ///< horizontal chroma subsampling factor
1124
    int v_chr_sub_sample;   ///< vertical chroma subsampling factor
1125
    int is_ring;            ///< flag to identify if this slice is a ring buffer
1126
    int should_free_lines;  ///< flag to identify if there are dynamic allocated lines
1127
    enum AVPixelFormat fmt; ///< planes pixel format
1128
    SwsPlane plane[MAX_SLICE_PLANES];   ///< color planes
1129
} SwsSlice;
1130
1131
/**
1132
 * Struct which holds all necessary data for processing a slice.
1133
 * A processing step can be a color conversion or horizontal/vertical scaling.
1134
 */
1135
typedef struct SwsFilterDescriptor
1136
{
1137
    SwsSlice *src;  ///< Source slice
1138
    SwsSlice *dst;  ///< Output slice
1139
1140
    int alpha;      ///< Flag for processing alpha channel
1141
    void *instance; ///< Filter instance data
1142
1143
    /// Function for processing input slice sliceH lines starting from line sliceY
1144
    int (*process)(SwsInternal *c, struct SwsFilterDescriptor *desc, int sliceY, int sliceH);
1145
} SwsFilterDescriptor;
1146
1147
// warp input lines in the form (src + width*i + j) to slice format (line[i][j])
1148
// relative=true means first line src[x][0] otherwise first line is src[x][lum/crh Y]
1149
int ff_init_slice_from_src(SwsSlice * s, uint8_t *const src[4], const int stride[4],
1150
                           int srcW, int lumY, int lumH, int chrY, int chrH, int relative);
1151
1152
// Initialize scaler filter descriptor chain
1153
int ff_init_filters(SwsInternal *c);
1154
1155
// Free all filter data
1156
int ff_free_filters(SwsInternal *c);
1157
1158
/*
1159
 function for applying ring buffer logic into slice s
1160
 It checks if the slice can hold more @lum lines, if yes
1161
 do nothing otherwise remove @lum least used lines.
1162
 It applies the same procedure for @chr lines.
1163
*/
1164
int ff_rotate_slice(SwsSlice *s, int lum, int chr);
1165
1166
/// initializes gamma conversion descriptor
1167
int ff_init_gamma_convert(SwsFilterDescriptor *desc, SwsSlice * src, uint16_t *table);
1168
1169
/// initializes lum pixel format conversion descriptor
1170
int ff_init_desc_fmt_convert(SwsFilterDescriptor *desc, SwsSlice * src, SwsSlice *dst, uint32_t *pal);
1171
1172
/// initializes lum horizontal scaling descriptor
1173
int ff_init_desc_hscale(SwsFilterDescriptor *desc, SwsSlice *src, SwsSlice *dst, uint16_t *filter, int * filter_pos, int filter_size, int xInc);
1174
1175
/// initializes chr pixel format conversion descriptor
1176
int ff_init_desc_cfmt_convert(SwsFilterDescriptor *desc, SwsSlice * src, SwsSlice *dst, uint32_t *pal);
1177
1178
/// initializes chr horizontal scaling descriptor
1179
int ff_init_desc_chscale(SwsFilterDescriptor *desc, SwsSlice *src, SwsSlice *dst, uint16_t *filter, int * filter_pos, int filter_size, int xInc);
1180
1181
int ff_init_desc_no_chr(SwsFilterDescriptor *desc, SwsSlice * src, SwsSlice *dst);
1182
1183
/// initializes vertical scaling descriptors
1184
int ff_init_vscale(SwsInternal *c, SwsFilterDescriptor *desc, SwsSlice *src, SwsSlice *dst);
1185
1186
/// setup vertical scaler functions
1187
void ff_init_vscale_pfn(SwsInternal *c, yuv2planar1_fn yuv2plane1, yuv2planarX_fn yuv2planeX,
1188
    yuv2interleavedX_fn yuv2nv12cX, yuv2packed1_fn yuv2packed1, yuv2packed2_fn yuv2packed2,
1189
    yuv2packedX_fn yuv2packedX, yuv2anyX_fn yuv2anyX, int use_mmx);
1190
1191
int ff_sws_slice_worker(void *priv, int jobnr, int threadnr,
1192
                        int nb_jobs, int nb_threads);
1193
1194
int ff_swscale(SwsInternal *c, const uint8_t *const src[], const int srcStride[],
1195
               int srcSliceY, int srcSliceH, uint8_t *const dst[],
1196
               const int dstStride[], int dstSliceY, int dstSliceH);
1197
1198
/**
1199
 * Helper for dispatching a single function across multiple threads. This is
1200
 * a wrapper around avpriv_slicethread_create2() + avpriv_slicethread_execute2(),
1201
 * falling back to direct invocation if threading is not available.
1202
 */
1203
int ff_sws_thread_exec(void *priv,
1204
                       int (*func)(void *priv, int jobnr, int threadnr, int nb_jobs, int nb_threads),
1205
                       int nb_threads, int nb_jobs);
1206
1207
//number of extra lines to process
1208
#define MAX_LINES_AHEAD 4
1209
1210
//shuffle filter and filterPos for hyScale and hcScale filters in avx2
1211
int ff_shuffle_filter_coefficients(SwsInternal *c, int* filterPos, int filterSize, int16_t *filter, int dstW);
1212
#endif /* SWSCALE_SWSCALE_INTERNAL_H */