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| 1 | // **************************************************************************** | - | |
| 2 | // * This file is part of the HqMAME project. It is distributed under         * | - | |
| 3 | // * GNU General Public License: https://www.gnu.org/licenses/gpl-3.0         * | - | |
| 4 | // * Copyright (C) Zenju (zenju AT gmx DOT de) - All Rights Reserved          * | - | |
| 5 | // *                                                                          * | - | |
| 6 | // * Additionally and as a special exception, the author gives permission     * | - | |
| 7 | // * to link the code of this program with the MAME library (or with modified * | - | |
| 8 | // * versions of MAME that use the same license as MAME), and distribute      * | - | |
| 9 | // * linked combinations including the two. You must obey the GNU General     * | - | |
| 10 | // * Public License in all respects for all of the code used other than MAME. * | - | |
| 11 | // * If you modify this file, you may extend this exception to your version   * | - | |
| 12 | // * of the file, but you are not obligated to do so. If you do not wish to   * | - | |
| 13 | // * do so, delete this exception statement from your version.                * | - | |
| 14 | // **************************************************************************** | - | |
| 15 | - | ||
| 16 | // ------------------------------------------------------------------------- | 1 | // ------------------------------------------------------------------------- | 
| 17 | // | xBRZ: "Scale by rules" - high quality image upscaling filter by Zenju | | 2 | // | xBRZ: "Scale by rules" - high quality image upscaling filter by Zenju | | 
| 18 | // ------------------------------------------------------------------------- | 3 | // ------------------------------------------------------------------------- | 
| 19 | // using a modified approach of xBR: | 4 | // using a modified approach of xBR: | 
| 20 | // http://board.byuu.org/viewtopic.php?f=10&t=2248 | 5 | // http://board.byuu.org/viewtopic.php?f=10&t=2248 | 
| Line 37... | Line 22... | ||
| 37 | //                - there is a minor inefficiency for the first row of a slice, so avoid processing single rows only; suggestion: process at least 8-16 rows | 22 | //                - there is a minor inefficiency for the first row of a slice, so avoid processing single rows only; suggestion: process at least 8-16 rows | 
| 38 | 23 | ||
| 39 | 24 | ||
| 40 | #include <stddef.h> // for size_t | 25 | #include <stddef.h> // for size_t | 
| 41 | #include <stdint.h> // for uint32_t | 26 | #include <stdint.h> // for uint32_t | 
| - | 27 | #include <stdbool.h> // for bool | |
| 42 | #include <memory.h> // for memset() | 28 | #include <memory.h> // for memset() | 
| 43 | #include <limits.h> | 29 | #include <limits.h> | 
| 44 | #include <math.h> | 30 | #include <math.h> | 
| 45 | 31 | ||
| 46 | 32 | ||
| 47 | #ifdef __cplusplus | - | |
| 48 | 
 | 33 | // prototypes of exported functions | 
| 49 |  | 34 | void xbrz_scale (size_t factor, const uint32_t *src, uint32_t *trg, int srcWidth, int srcHeight, bool has_alpha_channel); | 
| 50 | #define EXTERN_C | - | |
| 51 |  | 35 | void nearest_neighbor_scale (const uint32_t *src, int srcWidth, int srcHeight, uint32_t *trg, int trgWidth, int trgHeight); | 
| 52 | 36 | ||
| 53 | 37 | ||
| 54 | #ifdef _MSC_VER | - | |
| 55 | #define FORCE_INLINE __forceinline | - | |
| 56 | #elif defined __GNUC__ | - | |
| 57 | #define FORCE_INLINE __attribute__((always_inline)) inline | - | |
| 58 | #else | - | |
| 59 | #define FORCE_INLINE inline | - | |
| 60 | #endif | - | |
| 61 | - | ||
| 62 | - | ||
| 63 | //  | 38 | // algorithm configuration | 
| 64 | #define XBRZ_CFG_LUMINANCE_WEIGHT 1 | 39 | #define XBRZ_CFG_LUMINANCE_WEIGHT 1 | 
| 65 | #define XBRZ_CFG_EQUAL_COLOR_TOLERANCE 30 | 40 | #define XBRZ_CFG_EQUAL_COLOR_TOLERANCE 30 | 
| 66 | #define XBRZ_CFG_DOMINANT_DIRECTION_THRESHOLD 3.6 | 41 | #define XBRZ_CFG_DOMINANT_DIRECTION_THRESHOLD 3.6 | 
| 67 | #define XBRZ_CFG_STEEP_DIRECTION_THRESHOLD 2.2 | 42 | #define XBRZ_CFG_STEEP_DIRECTION_THRESHOLD 2.2 | 
| 68 | 43 | ||
| 69 | 44 | ||
| 70 | //  | 45 | // blend types | 
| 71 | #define  | 46 | #define BLEND_NONE 0 | 
| 72 | #define  | 47 | #define BLEND_NORMAL 1 // a normal indication to blend | 
| - | 48 | #define BLEND_DOMINANT 2 // a strong indication to blend | |
| 73 | 49 | ||
| 74 | 50 | ||
| 75 | // handy macros | 51 | // handy macros | 
| 76 | #define GET_BYTE(val,byteno) ((unsigned char) (((val) >> ((byteno) << 3)) & 0xff)) | - | |
| 77 | #define GET_BLUE(val)  GET_BYTE (val, 0) | - | |
| 78 | #define GET_GREEN(val) GET_BYTE (val, 1) | - | |
| 79 | #define GET_RED(val)   GET_BYTE (val, 2) | - | |
| 80 | #define GET_ALPHA(val) GET_BYTE (val, 3) | - | |
| 81 | #define CALC_COLOR24(colFront,colBack,M,N) (unsigned char) ((((unsigned char) (colFront)) * ((unsigned int) (M)) + ((unsigned char) (colBack)) * (((unsigned int) (N)) - ((unsigned int) (M)))) / ((unsigned int) (N))) | - | |
| 82 | #define CALC_COLOR32(colFront,colBack,weightFront,weightBack,weightSum) ((unsigned char) ((((unsigned char) (colFront)) * ((unsigned int) (weightFront)) + ((unsigned char) (colBack)) * ((unsigned int) (weightBack))) / ((unsigned int) (weightSum)))) | - | |
| 83 | #define BYTE_ADVANCE(buffer,offset) (((char *) buffer) + (offset)) | - | |
| 84 | #ifndef MIN | 52 | #ifndef MIN | 
| 85 | #define MIN(a,b) ((a) < (b) ? (a) : (b)) | 53 | #define MIN(a,b) ((a) < (b) ? (a) : (b)) | 
| 86 | #endif // MIN | 54 | #endif // MIN | 
| 87 | #ifndef MAX | 55 | #ifndef MAX | 
| 88 | #define MAX(a,b) ((a) > (b) ? (a) : (b)) | 56 | #define MAX(a,b) ((a) > (b) ? (a) : (b)) | 
| 89 | #endif // MAX | 57 | #endif // MAX | 
| - | 58 | #define GET_BYTE(val,byteno) ((uint8_t) (((val) >> ((byteno) << 3)) & 0xff)) | |
| - | 59 | #define GET_BLUE(val)  GET_BYTE (val, 0) | |
| - | 60 | #define GET_GREEN(val) GET_BYTE (val, 1) | |
| - | 61 | #define GET_RED(val)   GET_BYTE (val, 2) | |
| - | 62 | #define GET_ALPHA(val) GET_BYTE (val, 3) | |
| - | 63 | #define CALC_COLOR24(colFront,colBack,M,N) (uint8_t) ((((uint8_t) (colFront)) * ((unsigned int) (M)) + ((uint8_t) (colBack)) * (((unsigned int) (N)) - ((unsigned int) (M)))) / ((unsigned int) (N))) | |
| - | 64 | #define CALC_COLOR32(colFront,colBack,weightFront,weightBack,weightSum) ((uint8_t) ((((uint8_t) (colFront)) * ((unsigned int) (weightFront)) + ((uint8_t) (colBack)) * ((unsigned int) (weightBack))) / ((unsigned int) (weightSum)))) | |
| - | 65 | #define BYTE_ADVANCE(buffer,offset) (((char *) buffer) + (offset)) | |
| 90 | 66 | ||
| 91 | 67 | ||
| 92 | 
 | 68 | // compress four blend types into a single byte | 
| 93 | { | - | |
| 94 | 
 | 69 | #define getTopL(b)    ((uint8_t) (0x3 & ((uint8_t) (b) >> 0))) | 
| 95 | 
 | 70 | #define getTopR(b)    ((uint8_t) (0x3 & ((uint8_t) (b) >> 2))) | 
| - | 71 | #define getBottomR(b) ((uint8_t) (0x3 & ((uint8_t) (b) >> 4))) | |
| 96 | 
 | 72 | #define getBottomL(b) ((uint8_t) (0x3 & ((uint8_t) (b) >> 6))) | 
| - | 73 | #define setTopL(b,blend_type)    *(b) |= (((uint8_t) (blend_type)) << 0) // buffer is assumed to be initialized before preprocessing! | |
| - | 74 | #define setTopR(b,blend_type)    *(b) |= (((uint8_t) (blend_type)) << 2) | |
| - | 75 | #define setBottomR(b,blend_type) *(b) |= (((uint8_t) (blend_type)) << 4) | |
| 97 | 
 | 76 | #define setBottomL(b,blend_type) *(b) |= (((uint8_t) (blend_type)) << 6) | 
| 98 | }; | - | |
| 99 | 77 | ||
| 100 | 78 | ||
| 101 | typedef struct blendresult_s | 79 | typedef struct blendresult_s | 
| 102 | { | 80 | { | 
| 103 | 
 | 81 |    uint8_t | 
| 104 | 
 | 82 | blend_f, blend_g, | 
| 105 | 
 | 83 | blend_j, blend_k; | 
| 106 | } blendresult_t; | 84 | } blendresult_t; | 
| 107 | 85 | ||
| 108 | 86 | ||
| 109 | typedef struct kernel_3x3_s | 87 | typedef struct kernel_3x3_s | 
| 110 | { | 88 | { | 
| 111 |    uint32_t | 89 |    uint32_t | 
| 112 | 
 | 90 | a, b, c, | 
| 113 | 
 | 91 | d, e, f, | 
| 114 | 
 | 92 | g, h, i; | 
| 115 | } kernel_3x3_t; | 93 | } kernel_3x3_t; | 
| 116 | 94 | ||
| 117 | 95 | ||
| 118 | typedef struct kernel_4x4_s //kernel for preprocessing step | 96 | typedef struct kernel_4x4_s //kernel for preprocessing step | 
| 119 | { | 97 | { | 
| 120 |    uint32_t | 98 |    uint32_t | 
| 121 | 
 | 99 | a, b, c, d, | 
| 122 | 
 | 100 | e, f, g, h, | 
| 123 | 
 | 101 | i, j, k, l, | 
| 124 | 
 | 102 | m, n, o, p; | 
| 125 | } kernel_4x4_t; | 103 | } kernel_4x4_t; | 
| - | 104 | ||
| - | 105 | ||
| - | 106 | typedef struct colorformat_s | |
| - | 107 | { | |
| - | 108 | int bpp; | |
| - | 109 | void (*alphagrad) (uint32_t *pixBack, uint32_t pixFront, unsigned int M, unsigned int N); | |
| - | 110 | double (*dist) (uint32_t pix1, uint32_t pix2); | |
| - | 111 | } colorformat_t; | |
| 126 | 112 | ||
| 127 | 113 | ||
| 128 | typedef struct outmatrix_s | 114 | typedef struct outmatrix_s | 
| 129 | { | 115 | { | 
| 130 | size_t size; | 116 | size_t size; | 
| 131 | uint32_t* ptr; | 117 | uint32_t* ptr; | 
| 132 | int stride; | 118 | int stride; | 
| 133 | int rotDeg; // either 0, 90, 180 or 270 | - | |
| 134 | } outmatrix_t; | 119 | } outmatrix_t; | 
| 135 | 120 | ||
| 136 | 121 | ||
| 137 | static void outmatrix_create (outmatrix_t *mat, size_t size, uint32_t *ptr, int stride, int rotDeg) //access matrix area, top-left at position "out" for image with given width | - | |
| 138 | { | - | |
| 139 | mat->size = size; | - | |
| 140 | mat->ptr = ptr; | - | |
| 141 | mat->stride = stride; | - | |
| 142 | mat->rotDeg = rotDeg; | - | |
| 143 | } | - | |
| 144 | - | ||
| 145 | - | ||
| 146 | 
 | 122 | typedef uint32_t *(outmatrixreffunc_t) (outmatrix_t *mat, size_t I, size_t J); | 
| 147 | { | - | |
| 148 | size_t I_old; | - | |
| 149 | size_t J_old; | - | |
| 150 |    // calculate input matrix coordinates after rotation: (i, j) = (row, col) indices, N = size of (square) matrix | - | |
| 151 | if (mat->rotDeg == 270) { I_old = J; J_old = mat->size - 1 - I; } | - | |
| 152 | else if (mat->rotDeg == 180) { I_old = mat->size - 1 - I; J_old = mat->size - 1 - J; } | - | |
| 153 | else if (mat->rotDeg == 90) { I_old = mat->size - 1 - J; J_old = I; } | - | |
| 154 | else { I_old = I; J_old = J; } | - | |
| 155 | - | ||
| 156 | return (mat->ptr + I_old * mat->stride + J_old); | - | |
| 157 | } | - | |
| 158 | - | ||
| 159 | - | ||
| 160 | typedef void (alphagrad_func) (uint32_t *pixBack, uint32_t pixFront, unsigned int M, unsigned int N); | - | |
| 161 | typedef double (dist_func) (uint32_t pix1, uint32_t pix2); | - | |
| 162 | 123 | ||
| 163 | 124 | ||
| 164 | typedef struct scaler_s | 125 | typedef struct scaler_s | 
| 165 | { | 126 | { | 
| 166 | int factor; | 127 | int factor; | 
| 167 | void (*blend_line_shallow) (uint32_t col, outmatrix_t *out, | 128 | void (*blend_line_shallow) (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref); | 
| 168 | void (*blend_line_steep) (uint32_t col, outmatrix_t *out, | 129 | void (*blend_line_steep) (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref); | 
| 169 | void (*blend_line_steep_and_shallow) (uint32_t col, outmatrix_t *out, | 130 | void (*blend_line_steep_and_shallow) (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref); | 
| 170 | void (*blend_line_diagonal) (uint32_t col, outmatrix_t *out, | 131 | void (*blend_line_diagonal) (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref); | 
| 171 | void (*blend_corner) (uint32_t col, outmatrix_t *out, | 132 | void (*blend_corner) (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref); | 
| 172 | } scaler_t; | 133 | } scaler_t; | 
| 173 | 134 | ||
| 174 | 135 | ||
| 175 | ///////////////////////////////// | 136 | ///////////////////////////////// | 
| 176 | // shallow line scaling functions | 137 | // shallow line scaling functions | 
| 177 | 138 | ||
| 178 | static void blend_line_shallow_2x (uint32_t col, outmatrix_t *out, | 139 | static void blend_line_shallow_2x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 179 | { | 140 | { | 
| 180 | alphagrad (outmatrix_ref (out, 2 - 1, 0), col, 1, 4); | 141 | color_format->alphagrad (outmatrix_ref (out, 2 - 1, 0), col, 1, 4); | 
| 181 | alphagrad (outmatrix_ref (out, 2 - 1, 1), col, 3, 4); | 142 | color_format->alphagrad (outmatrix_ref (out, 2 - 1, 1), col, 3, 4); | 
| 182 | } | 143 | } | 
| 183 | static void blend_line_shallow_3x (uint32_t col, outmatrix_t *out, | 144 | static void blend_line_shallow_3x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 184 | { | 145 | { | 
| 185 | alphagrad (outmatrix_ref (out, 3 - 1, 0), col, 1, 4); | 146 | color_format->alphagrad (outmatrix_ref (out, 3 - 1, 0), col, 1, 4); | 
| 186 | alphagrad (outmatrix_ref (out, 3 - 2, 2), col, 1, 4); | 147 | color_format->alphagrad (outmatrix_ref (out, 3 - 2, 2), col, 1, 4); | 
| 187 | alphagrad (outmatrix_ref (out, 3 - 1, 1), col, 3, 4); | 148 | color_format->alphagrad (outmatrix_ref (out, 3 - 1, 1), col, 3, 4); | 
| 188 | *outmatrix_ref (out, 3 - 1, 2) = col; | 149 | *outmatrix_ref (out, 3 - 1, 2) = col; | 
| 189 | } | 150 | } | 
| 190 | static void blend_line_shallow_4x (uint32_t col, outmatrix_t *out, | 151 | static void blend_line_shallow_4x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 191 | { | 152 | { | 
| 192 | alphagrad (outmatrix_ref (out, 4 - 1, 0), col, 1, 4); | 153 | color_format->alphagrad (outmatrix_ref (out, 4 - 1, 0), col, 1, 4); | 
| 193 | alphagrad (outmatrix_ref (out, 4 - 2, 2), col, 1, 4); | 154 | color_format->alphagrad (outmatrix_ref (out, 4 - 2, 2), col, 1, 4); | 
| 194 | alphagrad (outmatrix_ref (out, 4 - 1, 1), col, 3, 4); | 155 | color_format->alphagrad (outmatrix_ref (out, 4 - 1, 1), col, 3, 4); | 
| 195 | alphagrad (outmatrix_ref (out, 4 - 2, 3), col, 3, 4); | 156 | color_format->alphagrad (outmatrix_ref (out, 4 - 2, 3), col, 3, 4); | 
| 196 | *outmatrix_ref (out, 4 - 1, 2) = col; | 157 | *outmatrix_ref (out, 4 - 1, 2) = col; | 
| 197 | *outmatrix_ref (out, 4 - 1, 3) = col; | 158 | *outmatrix_ref (out, 4 - 1, 3) = col; | 
| 198 | } | 159 | } | 
| 199 | static void blend_line_shallow_5x (uint32_t col, outmatrix_t *out, | 160 | static void blend_line_shallow_5x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 200 | { | 161 | { | 
| 201 | alphagrad (outmatrix_ref (out, 5 - 1, 0), col, 1, 4); | 162 | color_format->alphagrad (outmatrix_ref (out, 5 - 1, 0), col, 1, 4); | 
| 202 | alphagrad (outmatrix_ref (out, 5 - 2, 2), col, 1, 4); | 163 | color_format->alphagrad (outmatrix_ref (out, 5 - 2, 2), col, 1, 4); | 
| 203 | alphagrad (outmatrix_ref (out, 5 - 3, 4), col, 1, 4); | 164 | color_format->alphagrad (outmatrix_ref (out, 5 - 3, 4), col, 1, 4); | 
| 204 | alphagrad (outmatrix_ref (out, 5 - 1, 1), col, 3, 4); | 165 | color_format->alphagrad (outmatrix_ref (out, 5 - 1, 1), col, 3, 4); | 
| 205 | alphagrad (outmatrix_ref (out, 5 - 2, 3), col, 3, 4); | 166 | color_format->alphagrad (outmatrix_ref (out, 5 - 2, 3), col, 3, 4); | 
| 206 | *outmatrix_ref (out, 5 - 1, 2) = col; | 167 | *outmatrix_ref (out, 5 - 1, 2) = col; | 
| 207 | *outmatrix_ref (out, 5 - 1, 3) = col; | 168 | *outmatrix_ref (out, 5 - 1, 3) = col; | 
| 208 | *outmatrix_ref (out, 5 - 1, 4) = col; | 169 | *outmatrix_ref (out, 5 - 1, 4) = col; | 
| 209 | *outmatrix_ref (out, 5 - 2, 4) = col; | 170 | *outmatrix_ref (out, 5 - 2, 4) = col; | 
| 210 | } | 171 | } | 
| 211 | static void blend_line_shallow_6x (uint32_t col, outmatrix_t *out, | 172 | static void blend_line_shallow_6x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 212 | { | 173 | { | 
| 213 | alphagrad (outmatrix_ref (out, 6 - 1, 0), col, 1, 4); | 174 | color_format->alphagrad (outmatrix_ref (out, 6 - 1, 0), col, 1, 4); | 
| 214 | alphagrad (outmatrix_ref (out, 6 - 2, 2), col, 1, 4); | 175 | color_format->alphagrad (outmatrix_ref (out, 6 - 2, 2), col, 1, 4); | 
| 215 | alphagrad (outmatrix_ref (out, 6 - 3, 4), col, 1, 4); | 176 | color_format->alphagrad (outmatrix_ref (out, 6 - 3, 4), col, 1, 4); | 
| 216 | alphagrad (outmatrix_ref (out, 6 - 1, 1), col, 3, 4); | 177 | color_format->alphagrad (outmatrix_ref (out, 6 - 1, 1), col, 3, 4); | 
| 217 | alphagrad (outmatrix_ref (out, 6 - 2, 3), col, 3, 4); | 178 | color_format->alphagrad (outmatrix_ref (out, 6 - 2, 3), col, 3, 4); | 
| 218 | alphagrad (outmatrix_ref (out, 6 - 3, 5), col, 3, 4); | 179 | color_format->alphagrad (outmatrix_ref (out, 6 - 3, 5), col, 3, 4); | 
| 219 | *outmatrix_ref (out, 6 - 1, 2) = col; | 180 | *outmatrix_ref (out, 6 - 1, 2) = col; | 
| 220 | *outmatrix_ref (out, 6 - 1, 3) = col; | 181 | *outmatrix_ref (out, 6 - 1, 3) = col; | 
| 221 | *outmatrix_ref (out, 6 - 1, 4) = col; | 182 | *outmatrix_ref (out, 6 - 1, 4) = col; | 
| 222 | *outmatrix_ref (out, 6 - 1, 5) = col; | 183 | *outmatrix_ref (out, 6 - 1, 5) = col; | 
| 223 | *outmatrix_ref (out, 6 - 2, 4) = col; | 184 | *outmatrix_ref (out, 6 - 2, 4) = col; | 
| Line 225... | Line 186... | ||
| 225 | } | 186 | } | 
| 226 | 187 | ||
| 227 | /////////////////////////////// | 188 | /////////////////////////////// | 
| 228 | // steep line scaling functions | 189 | // steep line scaling functions | 
| 229 | 190 | ||
| 230 | static void blend_line_steep_2x (uint32_t col, outmatrix_t *out, | 191 | static void blend_line_steep_2x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 231 | { | 192 | { | 
| 232 | alphagrad (outmatrix_ref (out, 0, 2 - 1), col, 1, 4); | 193 | color_format->alphagrad (outmatrix_ref (out, 0, 2 - 1), col, 1, 4); | 
| 233 | alphagrad (outmatrix_ref (out, 1, 2 - 1), col, 3, 4); | 194 | color_format->alphagrad (outmatrix_ref (out, 1, 2 - 1), col, 3, 4); | 
| 234 | } | 195 | } | 
| 235 | static void blend_line_steep_3x (uint32_t col, outmatrix_t *out, | 196 | static void blend_line_steep_3x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 236 | { | 197 | { | 
| 237 | alphagrad (outmatrix_ref (out, 0, 3 - 1), col, 1, 4); | 198 | color_format->alphagrad (outmatrix_ref (out, 0, 3 - 1), col, 1, 4); | 
| 238 | alphagrad (outmatrix_ref (out, 2, 3 - 2), col, 1, 4); | 199 | color_format->alphagrad (outmatrix_ref (out, 2, 3 - 2), col, 1, 4); | 
| 239 | alphagrad (outmatrix_ref (out, 1, 3 - 1), col, 3, 4); | 200 | color_format->alphagrad (outmatrix_ref (out, 1, 3 - 1), col, 3, 4); | 
| 240 | *outmatrix_ref (out, 2, 3 - 1) = col; | 201 | *outmatrix_ref (out, 2, 3 - 1) = col; | 
| 241 | } | 202 | } | 
| 242 | static void blend_line_steep_4x (uint32_t col, outmatrix_t *out, | 203 | static void blend_line_steep_4x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 243 | { | 204 | { | 
| 244 | alphagrad (outmatrix_ref (out, 0, 4 - 1), col, 1, 4); | 205 | color_format->alphagrad (outmatrix_ref (out, 0, 4 - 1), col, 1, 4); | 
| 245 | alphagrad (outmatrix_ref (out, 2, 4 - 2), col, 1, 4); | 206 | color_format->alphagrad (outmatrix_ref (out, 2, 4 - 2), col, 1, 4); | 
| 246 | alphagrad (outmatrix_ref (out, 1, 4 - 1), col, 3, 4); | 207 | color_format->alphagrad (outmatrix_ref (out, 1, 4 - 1), col, 3, 4); | 
| 247 | alphagrad (outmatrix_ref (out, 3, 4 - 2), col, 3, 4); | 208 | color_format->alphagrad (outmatrix_ref (out, 3, 4 - 2), col, 3, 4); | 
| 248 | *outmatrix_ref (out, 2, 4 - 1) = col; | 209 | *outmatrix_ref (out, 2, 4 - 1) = col; | 
| 249 | *outmatrix_ref (out, 3, 4 - 1) = col; | 210 | *outmatrix_ref (out, 3, 4 - 1) = col; | 
| 250 | } | 211 | } | 
| 251 | static void blend_line_steep_5x (uint32_t col, outmatrix_t *out, | 212 | static void blend_line_steep_5x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 252 | { | 213 | { | 
| 253 | alphagrad (outmatrix_ref (out, 0, 5 - 1), col, 1, 4); | 214 | color_format->alphagrad (outmatrix_ref (out, 0, 5 - 1), col, 1, 4); | 
| 254 | alphagrad (outmatrix_ref (out, 2, 5 - 2), col, 1, 4); | 215 | color_format->alphagrad (outmatrix_ref (out, 2, 5 - 2), col, 1, 4); | 
| 255 | alphagrad (outmatrix_ref (out, 4, 5 - 3), col, 1, 4); | 216 | color_format->alphagrad (outmatrix_ref (out, 4, 5 - 3), col, 1, 4); | 
| 256 | alphagrad (outmatrix_ref (out, 1, 5 - 1), col, 3, 4); | 217 | color_format->alphagrad (outmatrix_ref (out, 1, 5 - 1), col, 3, 4); | 
| 257 | alphagrad (outmatrix_ref (out, 3, 5 - 2), col, 3, 4); | 218 | color_format->alphagrad (outmatrix_ref (out, 3, 5 - 2), col, 3, 4); | 
| 258 | *outmatrix_ref (out, 2, 5 - 1) = col; | 219 | *outmatrix_ref (out, 2, 5 - 1) = col; | 
| 259 | *outmatrix_ref (out, 3, 5 - 1) = col; | 220 | *outmatrix_ref (out, 3, 5 - 1) = col; | 
| 260 | *outmatrix_ref (out, 4, 5 - 1) = col; | 221 | *outmatrix_ref (out, 4, 5 - 1) = col; | 
| 261 | *outmatrix_ref (out, 4, 5 - 2) = col; | 222 | *outmatrix_ref (out, 4, 5 - 2) = col; | 
| 262 | } | 223 | } | 
| 263 | static void blend_line_steep_6x (uint32_t col, outmatrix_t *out, | 224 | static void blend_line_steep_6x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 264 | { | 225 | { | 
| 265 | alphagrad (outmatrix_ref (out, 0, 6 - 1), col, 1, 4); | 226 | color_format->alphagrad (outmatrix_ref (out, 0, 6 - 1), col, 1, 4); | 
| 266 | alphagrad (outmatrix_ref (out, 2, 6 - 2), col, 1, 4); | 227 | color_format->alphagrad (outmatrix_ref (out, 2, 6 - 2), col, 1, 4); | 
| 267 | alphagrad (outmatrix_ref (out, 4, 6 - 3), col, 1, 4); | 228 | color_format->alphagrad (outmatrix_ref (out, 4, 6 - 3), col, 1, 4); | 
| 268 | alphagrad (outmatrix_ref (out, 1, 6 - 1), col, 3, 4); | 229 | color_format->alphagrad (outmatrix_ref (out, 1, 6 - 1), col, 3, 4); | 
| 269 | alphagrad (outmatrix_ref (out, 3, 6 - 2), col, 3, 4); | 230 | color_format->alphagrad (outmatrix_ref (out, 3, 6 - 2), col, 3, 4); | 
| 270 | alphagrad (outmatrix_ref (out, 5, 6 - 3), col, 3, 4); | 231 | color_format->alphagrad (outmatrix_ref (out, 5, 6 - 3), col, 3, 4); | 
| 271 | *outmatrix_ref (out, 2, 6 - 1) = col; | 232 | *outmatrix_ref (out, 2, 6 - 1) = col; | 
| 272 | *outmatrix_ref (out, 3, 6 - 1) = col; | 233 | *outmatrix_ref (out, 3, 6 - 1) = col; | 
| 273 | *outmatrix_ref (out, 4, 6 - 1) = col; | 234 | *outmatrix_ref (out, 4, 6 - 1) = col; | 
| 274 | *outmatrix_ref (out, 5, 6 - 1) = col; | 235 | *outmatrix_ref (out, 5, 6 - 1) = col; | 
| 275 | *outmatrix_ref (out, 4, 6 - 2) = col; | 236 | *outmatrix_ref (out, 4, 6 - 2) = col; | 
| Line 277... | Line 238... | ||
| 277 | } | 238 | } | 
| 278 | 239 | ||
| 279 | /////////////////////////////////////////// | 240 | /////////////////////////////////////////// | 
| 280 | // steep and shallow line scaling functions | 241 | // steep and shallow line scaling functions | 
| 281 | 242 | ||
| 282 | static void blend_line_steep_and_shallow_2x (uint32_t col, outmatrix_t *out, | 243 | static void blend_line_steep_and_shallow_2x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 283 | { | 244 | { | 
| 284 | alphagrad (outmatrix_ref (out, 1, 0), col, 1, 4); | 245 | color_format->alphagrad (outmatrix_ref (out, 1, 0), col, 1, 4); | 
| 285 | alphagrad (outmatrix_ref (out, 0, 1), col, 1, 4); | 246 | color_format->alphagrad (outmatrix_ref (out, 0, 1), col, 1, 4); | 
| 286 | alphagrad (outmatrix_ref (out, 1, 1), col, 5, 6); //[!] fixes 7/8 used in xBR | 247 | color_format->alphagrad (outmatrix_ref (out, 1, 1), col, 5, 6); //[!] fixes 7/8 used in xBR | 
| 287 | } | 248 | } | 
| 288 | static void blend_line_steep_and_shallow_3x (uint32_t col, outmatrix_t *out, | 249 | static void blend_line_steep_and_shallow_3x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 289 | { | 250 | { | 
| 290 | alphagrad (outmatrix_ref (out, 2, 0), col, 1, 4); | 251 | color_format->alphagrad (outmatrix_ref (out, 2, 0), col, 1, 4); | 
| 291 | alphagrad (outmatrix_ref (out, 0, 2), col, 1, 4); | 252 | color_format->alphagrad (outmatrix_ref (out, 0, 2), col, 1, 4); | 
| 292 | alphagrad (outmatrix_ref (out, 2, 1), col, 3, 4); | 253 | color_format->alphagrad (outmatrix_ref (out, 2, 1), col, 3, 4); | 
| 293 | alphagrad (outmatrix_ref (out, 1, 2), col, 3, 4); | 254 | color_format->alphagrad (outmatrix_ref (out, 1, 2), col, 3, 4); | 
| 294 | *outmatrix_ref (out, 2, 2) = col; | 255 | *outmatrix_ref (out, 2, 2) = col; | 
| 295 | } | 256 | } | 
| 296 | static void blend_line_steep_and_shallow_4x (uint32_t col, outmatrix_t *out, | 257 | static void blend_line_steep_and_shallow_4x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 297 | { | 258 | { | 
| 298 | alphagrad (outmatrix_ref (out, 3, 1), col, 3, 4); | 259 | color_format->alphagrad (outmatrix_ref (out, 3, 1), col, 3, 4); | 
| 299 | alphagrad (outmatrix_ref (out, 1, 3), col, 3, 4); | 260 | color_format->alphagrad (outmatrix_ref (out, 1, 3), col, 3, 4); | 
| 300 | alphagrad (outmatrix_ref (out, 3, 0), col, 1, 4); | 261 | color_format->alphagrad (outmatrix_ref (out, 3, 0), col, 1, 4); | 
| 301 | alphagrad (outmatrix_ref (out, 0, 3), col, 1, 4); | 262 | color_format->alphagrad (outmatrix_ref (out, 0, 3), col, 1, 4); | 
| 302 | alphagrad (outmatrix_ref (out, 2, 2), col, 1, 3); //[!] fixes 1/4 used in xBR | 263 | color_format->alphagrad (outmatrix_ref (out, 2, 2), col, 1, 3); //[!] fixes 1/4 used in xBR | 
| 303 | *outmatrix_ref (out, 3, 3) = col; | 264 | *outmatrix_ref (out, 3, 3) = col; | 
| 304 | *outmatrix_ref (out, 3, 2) = col; | 265 | *outmatrix_ref (out, 3, 2) = col; | 
| 305 | *outmatrix_ref (out, 2, 3) = col; | 266 | *outmatrix_ref (out, 2, 3) = col; | 
| 306 | } | 267 | } | 
| 307 | static void blend_line_steep_and_shallow_5x (uint32_t col, outmatrix_t *out, | 268 | static void blend_line_steep_and_shallow_5x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 308 | { | 269 | { | 
| 309 | alphagrad (outmatrix_ref (out, 0, 5 - 1), col, 1, 4); | 270 | color_format->alphagrad (outmatrix_ref (out, 0, 5 - 1), col, 1, 4); | 
| 310 | alphagrad (outmatrix_ref (out, 2, 5 - 2), col, 1, 4); | 271 | color_format->alphagrad (outmatrix_ref (out, 2, 5 - 2), col, 1, 4); | 
| 311 | alphagrad (outmatrix_ref (out, 1, 5 - 1), col, 3, 4); | 272 | color_format->alphagrad (outmatrix_ref (out, 1, 5 - 1), col, 3, 4); | 
| 312 | alphagrad (outmatrix_ref (out, 5 - 1, 0), col, 1, 4); | 273 | color_format->alphagrad (outmatrix_ref (out, 5 - 1, 0), col, 1, 4); | 
| 313 | alphagrad (outmatrix_ref (out, 5 - 2, 2), col, 1, 4); | 274 | color_format->alphagrad (outmatrix_ref (out, 5 - 2, 2), col, 1, 4); | 
| 314 | alphagrad (outmatrix_ref (out, 5 - 1, 1), col, 3, 4); | 275 | color_format->alphagrad (outmatrix_ref (out, 5 - 1, 1), col, 3, 4); | 
| 315 | alphagrad (outmatrix_ref (out, 3, 3), col, 2, 3); | 276 | color_format->alphagrad (outmatrix_ref (out, 3, 3), col, 2, 3); | 
| 316 | *outmatrix_ref (out, 2, 5 - 1) = col; | 277 | *outmatrix_ref (out, 2, 5 - 1) = col; | 
| 317 | *outmatrix_ref (out, 3, 5 - 1) = col; | 278 | *outmatrix_ref (out, 3, 5 - 1) = col; | 
| 318 | *outmatrix_ref (out, 4, 5 - 1) = col; | 279 | *outmatrix_ref (out, 4, 5 - 1) = col; | 
| 319 | *outmatrix_ref (out, 5 - 1, 2) = col; | 280 | *outmatrix_ref (out, 5 - 1, 2) = col; | 
| 320 | *outmatrix_ref (out, 5 - 1, 3) = col; | 281 | *outmatrix_ref (out, 5 - 1, 3) = col; | 
| 321 | } | 282 | } | 
| 322 | static void blend_line_steep_and_shallow_6x (uint32_t col, outmatrix_t *out, | 283 | static void blend_line_steep_and_shallow_6x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 323 | { | 284 | { | 
| 324 | alphagrad (outmatrix_ref (out, 0, 6 - 1), col, 1, 4); | 285 | color_format->alphagrad (outmatrix_ref (out, 0, 6 - 1), col, 1, 4); | 
| 325 | alphagrad (outmatrix_ref (out, 2, 6 - 2), col, 1, 4); | 286 | color_format->alphagrad (outmatrix_ref (out, 2, 6 - 2), col, 1, 4); | 
| 326 | alphagrad (outmatrix_ref (out, 1, 6 - 1), col, 3, 4); | 287 | color_format->alphagrad (outmatrix_ref (out, 1, 6 - 1), col, 3, 4); | 
| 327 | alphagrad (outmatrix_ref (out, 3, 6 - 2), col, 3, 4); | 288 | color_format->alphagrad (outmatrix_ref (out, 3, 6 - 2), col, 3, 4); | 
| 328 | alphagrad (outmatrix_ref (out, 6 - 1, 0), col, 1, 4); | 289 | color_format->alphagrad (outmatrix_ref (out, 6 - 1, 0), col, 1, 4); | 
| 329 | alphagrad (outmatrix_ref (out, 6 - 2, 2), col, 1, 4); | 290 | color_format->alphagrad (outmatrix_ref (out, 6 - 2, 2), col, 1, 4); | 
| 330 | alphagrad (outmatrix_ref (out, 6 - 1, 1), col, 3, 4); | 291 | color_format->alphagrad (outmatrix_ref (out, 6 - 1, 1), col, 3, 4); | 
| 331 | alphagrad (outmatrix_ref (out, 6 - 2, 3), col, 3, 4); | 292 | color_format->alphagrad (outmatrix_ref (out, 6 - 2, 3), col, 3, 4); | 
| 332 | *outmatrix_ref (out, 2, 6 - 1) = col; | 293 | *outmatrix_ref (out, 2, 6 - 1) = col; | 
| 333 | *outmatrix_ref (out, 3, 6 - 1) = col; | 294 | *outmatrix_ref (out, 3, 6 - 1) = col; | 
| 334 | *outmatrix_ref (out, 4, 6 - 1) = col; | 295 | *outmatrix_ref (out, 4, 6 - 1) = col; | 
| 335 | *outmatrix_ref (out, 5, 6 - 1) = col; | 296 | *outmatrix_ref (out, 5, 6 - 1) = col; | 
| 336 | *outmatrix_ref (out, 4, 6 - 2) = col; | 297 | *outmatrix_ref (out, 4, 6 - 2) = col; | 
| Line 340... | Line 301... | ||
| 340 | } | 301 | } | 
| 341 | 302 | ||
| 342 | ////////////////////////////////// | 303 | ////////////////////////////////// | 
| 343 | // diagonal line scaling functions | 304 | // diagonal line scaling functions | 
| 344 | 305 | ||
| 345 | static void blend_line_diagonal_2x (uint32_t col, outmatrix_t *out, | 306 | static void blend_line_diagonal_2x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 346 | { | 307 | { | 
| 347 | alphagrad (outmatrix_ref (out, 1, 1), col, 1, 2); | 308 | color_format->alphagrad (outmatrix_ref (out, 1, 1), col, 1, 2); | 
| 348 | } | 309 | } | 
| 349 | static void blend_line_diagonal_3x (uint32_t col, outmatrix_t *out, | 310 | static void blend_line_diagonal_3x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 350 | { | 311 | { | 
| 351 | alphagrad (outmatrix_ref (out, 1, 2), col, 1, 8); //conflict with other rotations for this odd scale | 312 | color_format->alphagrad (outmatrix_ref (out, 1, 2), col, 1, 8); //conflict with other rotations for this odd scale | 
| 352 | alphagrad (outmatrix_ref (out, 2, 1), col, 1, 8); | 313 | color_format->alphagrad (outmatrix_ref (out, 2, 1), col, 1, 8); | 
| 353 | alphagrad (outmatrix_ref (out, 2, 2), col, 7, 8); // | 314 | color_format->alphagrad (outmatrix_ref (out, 2, 2), col, 7, 8); // | 
| 354 | } | 315 | } | 
| 355 | static void blend_line_diagonal_4x (uint32_t col, outmatrix_t *out, | 316 | static void blend_line_diagonal_4x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 356 | { | 317 | { | 
| 357 | alphagrad (outmatrix_ref (out, 4 - 1, 4 / 2), col, 1, 2); | 318 | color_format->alphagrad (outmatrix_ref (out, 4 - 1, 4 / 2), col, 1, 2); | 
| 358 | alphagrad (outmatrix_ref (out, 4 - 2, 4 / 2 + 1), col, 1, 2); | 319 | color_format->alphagrad (outmatrix_ref (out, 4 - 2, 4 / 2 + 1), col, 1, 2); | 
| 359 | *outmatrix_ref (out, 4 - 1, 4 - 1) = col; | 320 | *outmatrix_ref (out, 4 - 1, 4 - 1) = col; | 
| 360 | } | 321 | } | 
| 361 | static void blend_line_diagonal_5x (uint32_t col, outmatrix_t *out, | 322 | static void blend_line_diagonal_5x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 362 | { | 323 | { | 
| 363 | alphagrad (outmatrix_ref (out, 5 - 1, 5 / 2 + 0), col, 1, 8); //conflict with other rotations for this odd scale | 324 | color_format->alphagrad (outmatrix_ref (out, 5 - 1, 5 / 2 + 0), col, 1, 8); //conflict with other rotations for this odd scale | 
| 364 | alphagrad (outmatrix_ref (out, 5 - 2, 5 / 2 + 1), col, 1, 8); | 325 | color_format->alphagrad (outmatrix_ref (out, 5 - 2, 5 / 2 + 1), col, 1, 8); | 
| 365 | alphagrad (outmatrix_ref (out, 5 - 3, 5 / 2 + 2), col, 1, 8); // | 326 | color_format->alphagrad (outmatrix_ref (out, 5 - 3, 5 / 2 + 2), col, 1, 8); // | 
| 366 | alphagrad (outmatrix_ref (out, 4, 3), col, 7, 8); | 327 | color_format->alphagrad (outmatrix_ref (out, 4, 3), col, 7, 8); | 
| 367 | alphagrad (outmatrix_ref (out, 3, 4), col, 7, 8); | 328 | color_format->alphagrad (outmatrix_ref (out, 3, 4), col, 7, 8); | 
| 368 | *outmatrix_ref (out, 4, 4) = col; | 329 | *outmatrix_ref (out, 4, 4) = col; | 
| 369 | } | 330 | } | 
| 370 | static void blend_line_diagonal_6x (uint32_t col, outmatrix_t *out, | 331 | static void blend_line_diagonal_6x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 371 | { | 332 | { | 
| 372 | alphagrad (outmatrix_ref (out, 6 - 1, 6 / 2 + 0), col, 1, 2); | 333 | color_format->alphagrad (outmatrix_ref (out, 6 - 1, 6 / 2 + 0), col, 1, 2); | 
| 373 | alphagrad (outmatrix_ref (out, 6 - 2, 6 / 2 + 1), col, 1, 2); | 334 | color_format->alphagrad (outmatrix_ref (out, 6 - 2, 6 / 2 + 1), col, 1, 2); | 
| 374 | alphagrad (outmatrix_ref (out, 6 - 3, 6 / 2 + 2), col, 1, 2); | 335 | color_format->alphagrad (outmatrix_ref (out, 6 - 3, 6 / 2 + 2), col, 1, 2); | 
| 375 | *outmatrix_ref (out, 6 - 2, 6 - 1) = col; | 336 | *outmatrix_ref (out, 6 - 2, 6 - 1) = col; | 
| 376 | *outmatrix_ref (out, 6 - 1, 6 - 1) = col; | 337 | *outmatrix_ref (out, 6 - 1, 6 - 1) = col; | 
| 377 | *outmatrix_ref (out, 6 - 1, 6 - 2) = col; | 338 | *outmatrix_ref (out, 6 - 1, 6 - 2) = col; | 
| 378 | } | 339 | } | 
| 379 | 340 | ||
| 380 | /////////////////////////// | 341 | /////////////////////////// | 
| 381 | // corner scaling functions | 342 | // corner scaling functions | 
| 382 | 343 | ||
| 383 | static void blend_corner_2x (uint32_t col, outmatrix_t *out, | 344 | static void blend_corner_2x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 384 | { | 345 | { | 
| 385 |    //model a round corner | 346 |    // model a round corner | 
| 386 | alphagrad (outmatrix_ref (out, 1, 1), col, 21, 100); //exact: 1 - pi/4 = 0.2146018366 | 347 | color_format->alphagrad (outmatrix_ref (out, 1, 1), col, 21, 100); //exact: 1 - pi/4 = 0.2146018366 | 
| 387 | } | 348 | } | 
| 388 | static void blend_corner_3x (uint32_t col, outmatrix_t *out, | 349 | static void blend_corner_3x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 389 | { | 350 | { | 
| 390 |    //model a round corner | 351 |    // model a round corner | 
| 391 | alphagrad (outmatrix_ref (out, 2, 2), col, 45, 100); //exact: 0.4545939598 | 352 | color_format->alphagrad (outmatrix_ref (out, 2, 2), col, 45, 100); //exact: 0.4545939598 | 
| 392 |    //alphagrad (outmatrix_ref (out, 2, 1), col, 7, 256); //0.02826017254 -> negligible + avoid conflicts with other rotations for this odd scale | 353 |    //color_format->alphagrad (outmatrix_ref (out, 2, 1), col, 7, 256); //0.02826017254 -> negligible + avoid conflicts with other rotations for this odd scale | 
| 393 |    //alphagrad (outmatrix_ref (out, 1, 2), col, 7, 256); //0.02826017254 | 354 |    //color_format->alphagrad (outmatrix_ref (out, 1, 2), col, 7, 256); //0.02826017254 | 
| 394 | } | 355 | } | 
| 395 | static void blend_corner_4x (uint32_t col, outmatrix_t *out, | 356 | static void blend_corner_4x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 396 | { | 357 | { | 
| 397 |    //model a round corner | 358 |    // model a round corner | 
| 398 | alphagrad (outmatrix_ref (out, 3, 3), col, 68, 100); //exact: 0.6848532563 | 359 | color_format->alphagrad (outmatrix_ref (out, 3, 3), col, 68, 100); //exact: 0.6848532563 | 
| 399 | alphagrad (outmatrix_ref (out, 3, 2), col, 9, 100); //0.08677704501 | 360 | color_format->alphagrad (outmatrix_ref (out, 3, 2), col, 9, 100); //0.08677704501 | 
| 400 | alphagrad (outmatrix_ref (out, 2, 3), col, 9, 100); //0.08677704501 | 361 | color_format->alphagrad (outmatrix_ref (out, 2, 3), col, 9, 100); //0.08677704501 | 
| 401 | } | 362 | } | 
| 402 | static void blend_corner_5x (uint32_t col, outmatrix_t *out, | 363 | static void blend_corner_5x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 403 | { | 364 | { | 
| 404 |    // model a round corner | 365 |    // model a round corner | 
| 405 | alphagrad (outmatrix_ref (out, 4, 4), col, 86, 100); //exact: 0.8631434088 | 366 | color_format->alphagrad (outmatrix_ref (out, 4, 4), col, 86, 100); //exact: 0.8631434088 | 
| 406 | alphagrad (outmatrix_ref (out, 4, 3), col, 23, 100); //0.2306749731 | 367 | color_format->alphagrad (outmatrix_ref (out, 4, 3), col, 23, 100); //0.2306749731 | 
| 407 | alphagrad (outmatrix_ref (out, 3, 4), col, 23, 100); //0.2306749731 | 368 | color_format->alphagrad (outmatrix_ref (out, 3, 4), col, 23, 100); //0.2306749731 | 
| 408 |    //alphagrad (outmatrix_ref (out, 4, 2), col, 1, 64); //0.01676812367 -> negligible + avoid conflicts with other rotations for this odd scale | 369 |    //color_format->alphagrad (outmatrix_ref (out, 4, 2), col, 1, 64); //0.01676812367 -> negligible + avoid conflicts with other rotations for this odd scale | 
| 409 |    //alphagrad (outmatrix_ref (out, 2, 4), col, 1, 64); //0.01676812367 | 370 |    //color_format->alphagrad (outmatrix_ref (out, 2, 4), col, 1, 64); //0.01676812367 | 
| 410 | } | 371 | } | 
| 411 | static void blend_corner_6x (uint32_t col, outmatrix_t *out, | 372 | static void blend_corner_6x (uint32_t col, outmatrix_t *out, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) | 
| 412 | { | 373 | { | 
| 413 |    //model a round corner | 374 |    // model a round corner | 
| 414 | alphagrad (outmatrix_ref (out, 5, 5), col, 97, 100); //exact: 0.9711013910 | 375 | color_format->alphagrad (outmatrix_ref (out, 5, 5), col, 97, 100); //exact: 0.9711013910 | 
| 415 | alphagrad (outmatrix_ref (out, 4, 5), col, 42, 100); //0.4236372243 | 376 | color_format->alphagrad (outmatrix_ref (out, 4, 5), col, 42, 100); //0.4236372243 | 
| 416 | alphagrad (outmatrix_ref (out, 5, 4), col, 42, 100); //0.4236372243 | 377 | color_format->alphagrad (outmatrix_ref (out, 5, 4), col, 42, 100); //0.4236372243 | 
| 417 | alphagrad (outmatrix_ref (out, 5, 3), col, 6, 100); //0.05652034508 | 378 | color_format->alphagrad (outmatrix_ref (out, 5, 3), col, 6, 100); //0.05652034508 | 
| 418 | alphagrad (outmatrix_ref (out, 3, 5), col, 6, 100); //0.05652034508 | 379 | color_format->alphagrad (outmatrix_ref (out, 3, 5), col, 6, 100); //0.05652034508 | 
| 419 | } | 380 | } | 
| 420 | 381 | ||
| 421 | ///////////////////////////////////// | 382 | ///////////////////////////////////// | 
| 422 | // scaler objects for various factors | 383 | // scaler objects for various factors | 
| 423 | 384 | ||
| Line 428... | Line 389... | ||
| 428 | { 4, blend_line_shallow_4x, blend_line_steep_4x, blend_line_steep_and_shallow_4x, blend_line_diagonal_4x, blend_corner_4x }, | 389 | { 4, blend_line_shallow_4x, blend_line_steep_4x, blend_line_steep_and_shallow_4x, blend_line_diagonal_4x, blend_corner_4x }, | 
| 429 | { 5, blend_line_shallow_5x, blend_line_steep_5x, blend_line_steep_and_shallow_5x, blend_line_diagonal_5x, blend_corner_5x }, | 390 | { 5, blend_line_shallow_5x, blend_line_steep_5x, blend_line_steep_and_shallow_5x, blend_line_diagonal_5x, blend_corner_5x }, | 
| 430 | { 6, blend_line_shallow_6x, blend_line_steep_6x, blend_line_steep_and_shallow_6x, blend_line_diagonal_6x, blend_corner_6x }, | 391 | { 6, blend_line_shallow_6x, blend_line_steep_6x, blend_line_steep_and_shallow_6x, blend_line_diagonal_6x, blend_corner_6x }, | 
| 431 | }; | 392 | }; | 
| 432 | 393 | ||
| - | 394 | ///////////////////////////////////////////////////// | |
| - | 395 | // alpha gradient functions for various color formats | |
| 433 | 396 | ||
| - | 397 | static void alphagrad24 (uint32_t *pixBack, uint32_t pixFront, unsigned int M, unsigned int N) | |
| - | 398 | { | |
| - | 399 |    // blend front color with opacity M / N over opaque background: http://en.wikipedia.org/wiki/Alpha_compositing#Alpha_blending | |
| - | 400 | *pixBack = ((CALC_COLOR24 (GET_RED (pixFront), GET_RED (*pixBack), M, N) << 16) | |
| - | 401 | | (CALC_COLOR24 (GET_GREEN (pixFront), GET_GREEN (*pixBack), M, N) << 8) | |
| - | 402 | | (CALC_COLOR24 (GET_BLUE (pixFront), GET_BLUE (*pixBack), M, N) << 0)); | |
| - | 403 | } | |
| - | 404 | static void alphagrad32 (uint32_t *pixBack, uint32_t pixFront, unsigned int M, unsigned int N) | |
| - | 405 | { | |
| - | 406 |    // find intermediate color between two colors with alpha channels (=> NO alpha blending!!!) | |
| - | 407 | const unsigned int weightFront = GET_ALPHA (pixFront) * M; | |
| - | 408 | const unsigned int weightBack = GET_ALPHA (*pixBack) * (N - M); | |
| - | 409 | const unsigned int weightSum = weightFront + weightBack; | |
| - | 410 | *pixBack = (weightSum == 0 ? 0 : | |
| - | 411 | (((uint8_t) (weightSum / N)) << 24) | |
| - | 412 | | (CALC_COLOR32 (GET_RED (pixFront), GET_RED (*pixBack), weightFront, weightBack, weightSum) << 16) | |
| - | 413 | | (CALC_COLOR32 (GET_GREEN (pixFront), GET_GREEN (*pixBack), weightFront, weightBack, weightSum) << 8) | |
| - | 414 | | (CALC_COLOR32 (GET_BLUE (pixFront), GET_BLUE (*pixBack), weightFront, weightBack, weightSum) << 0)); | |
| - | 415 | } | |
| - | 416 | ||
| - | 417 | ///////////////////////////////////////////////////// | |
| - | 418 | // color distance functions for various color formats | |
| - | 419 | ||
| - | 420 | static double dist24 (uint32_t pix1, uint32_t pix2) | |
| - | 421 | { | |
| - | 422 |    //30% perf boost compared to plain distYCbCr()! | |
| - | 423 |    //consumes 64 MB memory; using double is only 2% faster, but takes 128 MB | |
| - | 424 | static float diffToDist[256 * 256 * 256]; | |
| - | 425 | static bool is_initialized = false; | |
| - | 426 | if (!is_initialized) | |
| - | 427 |    { | |
| - | 428 | for (uint32_t i = 0; i < 256 * 256 * 256; ++i) //startup time: 114 ms on Intel Core i5 (four cores) | |
| - | 429 |       { | |
| - | 430 | const int r_diff = GET_RED (i) * 2 - 0xFF; | |
| - | 431 | const int g_diff = GET_GREEN (i) * 2 - 0xFF; | |
| - | 432 | const int b_diff = GET_BLUE (i) * 2 - 0xFF; | |
| - | 433 | ||
| - | 434 | const double k_b = 0.0593; //ITU-R BT.2020 conversion | |
| - | 435 | const double k_r = 0.2627; // | |
| - | 436 | const double k_g = 1 - k_b - k_r; | |
| - | 437 | ||
| - | 438 | const double scale_b = 0.5 / (1 - k_b); | |
| - | 439 | const double scale_r = 0.5 / (1 - k_r); | |
| - | 440 | ||
| - | 441 | const double y = k_r * r_diff + k_g * g_diff + k_b * b_diff; //[!], analog YCbCr! | |
| - | 442 | const double c_b = scale_b * (b_diff - y); | |
| - | 443 | const double c_r = scale_r * (r_diff - y); | |
| - | 444 | ||
| - | 445 | diffToDist[i] = (float) (sqrt ((y * y) + (c_b * c_b) + (c_r * c_r))); | |
| - | 446 |       } | |
| - | 447 | is_initialized = true; | |
| - | 448 |    } | |
| - | 449 | ||
| - | 450 | const int r_diff = (int) GET_RED (pix1) - (int) GET_RED (pix2); | |
| - | 451 | const int g_diff = (int) GET_GREEN (pix1) - (int) GET_GREEN (pix2); | |
| - | 452 | const int b_diff = (int) GET_BLUE (pix1) - (int) GET_BLUE (pix2); | |
| - | 453 | ||
| - | 454 | return diffToDist[(((r_diff + 0xFF) / 2) << 16) | //slightly reduce precision (division by 2) to squeeze value into single byte | |
| - | 455 | (((g_diff + 0xFF) / 2) << 8) | | |
| - | 456 | (((b_diff + 0xFF) / 2) << 0)]; | |
| - | 457 | } | |
| - | 458 | static double dist32 (uint32_t pix1, uint32_t pix2) | |
| - | 459 | { | |
| - | 460 |    // Requirements for a color distance handling alpha channel: with a1, a2 in [0, 1] | |
| - | 461 |    //    1. if a1 = a2, distance should be: a1 * distYCbCr() | |
| - | 462 |    //    2. if a1 = 0,  distance should be: a2 * distYCbCr(black, white) = a2 * 255 | |
| - | 463 |    //    3. if a1 = 1,  ??? maybe: 255 * (1 - a2) + a2 * distYCbCr() | |
| - | 464 |    //return MIN (a1, a2) * distYCbCrBuffered(pix1, pix2) + 255 * abs(a1 - a2); | |
| - | 465 |    //=> following code is 15% faster: | |
| - | 466 | const double d = dist24 (pix1, pix2); | |
| - | 467 | const double a1 = GET_ALPHA (pix1) / 255.0; | |
| - | 468 | const double a2 = GET_ALPHA (pix2) / 255.0; | |
| - | 469 | return (a1 < a2 ? a1 * d + 255 * (a2 - a1) : a2 * d + 255 * (a1 - a2)); | |
| - | 470 | } | |
| - | 471 | ||
| - | 472 | /////////////////////////////////////// | |
| - | 473 | // color format objects for various bpp | |
| - | 474 | ||
| - | 475 | static colorformat_t color_format_24 = { 24, alphagrad24, dist24 }; | |
| - | 476 | static colorformat_t color_format_32 = { 32, alphagrad32, dist32 }; | |
| - | 477 | ||
| - | 478 | ////////////////////////////////////////////////////////// | |
| - | 479 | // output matrix reference functions for various rotations | |
| - | 480 | ||
| - | 481 | static uint32_t *outmatrixref_0 (outmatrix_t *mat, size_t I, size_t J) { return (mat->ptr + I * mat->stride + J); } | |
| - | 482 | static uint32_t *outmatrixref_90 (outmatrix_t *mat, size_t I, size_t J) { return (mat->ptr + (mat->size - 1 - J) * mat->stride + I); } | |
| - | 483 | static uint32_t *outmatrixref_180 (outmatrix_t *mat, size_t I, size_t J) { return (mat->ptr + (mat->size - 1 - I) * mat->stride + (mat->size - 1 - J)); } | |
| - | 484 | static uint32_t *outmatrixref_270 (outmatrix_t *mat, size_t I, size_t J) { return (mat->ptr + J * mat->stride + (mat->size - 1 - I)); } | |
| - | 485 | ||
| - | 486 | ||
| - | 487 | /////////////////////////// | |
| - | 488 | // core algorithm functions | |
| - | 489 | ||
| - | 490 | ||
| - | 491 | #ifdef _MSC_VER | |
| - | 492 | #define FORCE_INLINE __forceinline | |
| - | 493 | #elif defined __GNUC__ | |
| - | 494 | #define FORCE_INLINE __attribute__((always_inline)) inline | |
| - | 495 | #else | |
| - | 496 | #define FORCE_INLINE inline | |
| - | 497 | #endif | |
| - | 498 | ||
| - | 499 | ||
| 434 | static FORCE_INLINE void | 500 | static FORCE_INLINE void preprocess_corners (blendresult_t *result, const kernel_4x4_t *ker, colorformat_t *color_format) | 
| 435 | { | 501 | { | 
| 436 |    // detect blend direction | 502 |    // detect blend direction | 
| 437 |    // result: F, G, J, K corners of "GradientType" | 503 |    // result: F, G, J, K corners of "GradientType" | 
| 438 | 504 | ||
| 439 |    // input kernel area naming convention: | 505 |    // input kernel area naming convention: | 
| Line 451... | Line 517... | ||
| 451 | 517 | ||
| 452 | if (((ker->f == ker->g) && (ker->j == ker->k)) || ((ker->f == ker->j) && (ker->g == ker->k))) | 518 | if (((ker->f == ker->g) && (ker->j == ker->k)) || ((ker->f == ker->j) && (ker->g == ker->k))) | 
| 453 | return; | 519 | return; | 
| 454 | 520 | ||
| 455 | const int weight = 4; | 521 | const int weight = 4; | 
| 456 | double jg = dist (ker->i, ker->f) + dist (ker->f, ker->c) + dist (ker->n, ker->k) + dist (ker->k, ker->h) + weight * dist (ker->j, ker->g); | 522 | double jg = color_format->dist (ker->i, ker->f) + color_format->dist (ker->f, ker->c) + color_format->dist (ker->n, ker->k) + color_format->dist (ker->k, ker->h) + weight * color_format->dist (ker->j, ker->g); | 
| 457 | double fk = dist (ker->e, ker->j) + dist (ker->j, ker->o) + dist (ker->b, ker->g) + dist (ker->g, ker->l) + weight * dist (ker->f, ker->k); | 523 | double fk = color_format->dist (ker->e, ker->j) + color_format->dist (ker->j, ker->o) + color_format->dist (ker->b, ker->g) + color_format->dist (ker->g, ker->l) + weight * color_format->dist (ker->f, ker->k); | 
| 458 | 524 | ||
| 459 | if (jg < fk) //test sample: 70% of values max(jg, fk) / min(jg, fk) are between 1.1 and 3.7 with median being 1.8 | 525 | if (jg < fk) //test sample: 70% of values max(jg, fk) / min(jg, fk) are between 1.1 and 3.7 with median being 1.8 | 
| 460 |    { | 526 |    { | 
| 461 | const bool dominantGradient = XBRZ_CFG_DOMINANT_DIRECTION_THRESHOLD * jg < fk; | 527 | const bool dominantGradient = XBRZ_CFG_DOMINANT_DIRECTION_THRESHOLD * jg < fk; | 
| 462 | if (ker->f != ker->g && ker->f != ker->j) | 528 | if (ker->f != ker->g && ker->f != ker->j) | 
| Line 472... | Line 538... | ||
| 472 | result->blend_j = dominantGradient ? BLEND_DOMINANT : BLEND_NORMAL; | 538 | result->blend_j = dominantGradient ? BLEND_DOMINANT : BLEND_NORMAL; | 
| 473 | 539 | ||
| 474 | if (ker->g != ker->f && ker->g != ker->k) | 540 | if (ker->g != ker->f && ker->g != ker->k) | 
| 475 | result->blend_g = dominantGradient ? BLEND_DOMINANT : BLEND_NORMAL; | 541 | result->blend_g = dominantGradient ? BLEND_DOMINANT : BLEND_NORMAL; | 
| 476 |    } | 542 |    } | 
| - | 543 | ||
| 477 | return; | 544 | return; | 
| 478 | } | 545 | } | 
| 479 | - | ||
| 480 | // compress four blend types into a single byte | - | |
| 481 | #define getTopL(b)    ((BlendType) (0x3 & ((unsigned char) (b) >> 0))) | - | |
| 482 | #define getTopR(b)    ((BlendType) (0x3 & ((unsigned char) (b) >> 2))) | - | |
| 483 | #define getBottomR(b) ((BlendType) (0x3 & ((unsigned char) (b) >> 4))) | - | |
| 484 | #define getBottomL(b) ((BlendType) (0x3 & ((unsigned char) (b) >> 6))) | - | |
| 485 | - | ||
| 486 | static inline void setTopL (unsigned char& b, BlendType bt) { b |= (((BlendType) (bt)) << 0); } //buffer is assumed to be initialized before preprocessing! | - | |
| 487 | static inline void setTopR (unsigned char& b, BlendType bt) { b |= (((BlendType) (bt)) << 2); } | - | |
| 488 | static inline void setBottomR (unsigned char& b, BlendType bt) { b |= (((BlendType) (bt)) << 4); } | - | |
| 489 | static inline void setBottomL (unsigned char& b, BlendType bt) { b |= (((BlendType) (bt)) << 6); } | - | |
| 490 | 546 | ||
| 491 | 547 | ||
| 492 | FORCE_INLINE void blend_pixel (const scaler_t *scaler, const kernel_3x3_t *ker, uint32_t *target, int trgWidth, | 548 | static FORCE_INLINE void blend_pixel (const scaler_t *scaler, const kernel_3x3_t *ker, uint32_t *target, int trgWidth, uint8_t blendInfo, colorformat_t *color_format, outmatrixreffunc_t outmatrix_ref) //result of preprocessing all four corners of pixel "e" | 
| 493 | { | 549 | { | 
| 494 |    // input kernel area naming convention: | 550 |    // input kernel area naming convention: | 
| 495 |    // ------------- | 551 |    // ------------- | 
| 496 |    // | A | B | C | | 552 |    // | A | B | C | | 
| 497 |    // ----|---|---| | 553 |    // ----|---|---| | 
| Line 502... | Line 558... | ||
| 502 | 558 | ||
| 503 |    uint32_t | 559 |    uint32_t | 
| 504 | a, b, c, | 560 | a, b, c, | 
| 505 | d, e, f, | 561 | d, e, f, | 
| 506 | g, h, i; | 562 | g, h, i; | 
| 507 | 
 | 563 | uint8_t blend; | 
| 508 | 564 | ||
| 509 | if ( | 565 | if (outmatrix_ref == outmatrixref_270) { a = ker->c; b = ker->f; c = ker->i; d = ker->b; e = ker->e; f = ker->h; g = ker->a; h = ker->d; i = ker->g; blend = ((blendInfo << 6) | (blendInfo >> 2)) & 0xff; } | 
| 510 | else if ( | 566 | else if (outmatrix_ref == outmatrixref_180) { a = ker->i; b = ker->h; c = ker->g; d = ker->f; e = ker->e; f = ker->d; g = ker->c; h = ker->b; i = ker->a; blend = ((blendInfo << 4) | (blendInfo >> 4)) & 0xff; } | 
| 511 | else if ( | 567 | else if (outmatrix_ref == outmatrixref_90) { a = ker->g; b = ker->d; c = ker->a; d = ker->h; e = ker->e; f = ker->b; g = ker->i; h = ker->f; i = ker->c; blend = ((blendInfo << 2) | (blendInfo >> 6)) & 0xff; } | 
| 512 | else { a = ker->a; b = ker->b; c = ker->c; d = ker->d; e = ker->e; f = ker->f; g = ker->g; h = ker->h; i = ker->i; blend = ((blendInfo << 0) | (blendInfo >> 8)) & 0xff; } | 568 | else { a = ker->a; b = ker->b; c = ker->c; d = ker->d; e = ker->e; f = ker->f; g = ker->g; h = ker->h; i = ker->i; blend = ((blendInfo << 0) | (blendInfo >> 8)) & 0xff; } | 
| 513 | 569 | ||
| 514 | if (getBottomR (blend) >= BLEND_NORMAL) | 570 | if (getBottomR (blend) >= BLEND_NORMAL) | 
| 515 |    { | 571 |    { | 
| 516 |       outmatrix_t out; | - | |
| 517 | uint32_t px; | 572 | uint32_t px; | 
| 518 |       bool doLineBlend; | 573 |       bool doLineBlend; | 
| 519 | 574 | ||
| 520 | if (getBottomR (blend) >= BLEND_DOMINANT) | 575 | if (getBottomR (blend) >= BLEND_DOMINANT) | 
| 521 | doLineBlend = true; | 576 | doLineBlend = true; | 
| 522 | else if (getTopR (blend) != BLEND_NONE && (dist (e, g) >= XBRZ_CFG_EQUAL_COLOR_TOLERANCE)) //but support double-blending for 90° corners | 577 | else if (getTopR (blend) != BLEND_NONE && (color_format->dist (e, g) >= XBRZ_CFG_EQUAL_COLOR_TOLERANCE)) //but support double-blending for 90° corners | 
| 523 | doLineBlend = false; // make sure there is no second blending in an adjacent rotation for this pixel: handles insular pixels, mario eyes | 578 | doLineBlend = false; // make sure there is no second blending in an adjacent rotation for this pixel: handles insular pixels, mario eyes | 
| 524 | else if (getBottomL (blend) != BLEND_NONE && (dist (e, c) >= XBRZ_CFG_EQUAL_COLOR_TOLERANCE)) | 579 | else if (getBottomL (blend) != BLEND_NONE && (color_format->dist (e, c) >= XBRZ_CFG_EQUAL_COLOR_TOLERANCE)) | 
| 525 | doLineBlend = false; // make sure there is no second blending in an adjacent rotation for this pixel: handles insular pixels, mario eyes | 580 | doLineBlend = false; // make sure there is no second blending in an adjacent rotation for this pixel: handles insular pixels, mario eyes | 
| 526 | else if ((dist (e, i) >= XBRZ_CFG_EQUAL_COLOR_TOLERANCE) | 581 | else if ((color_format->dist (e, i) >= XBRZ_CFG_EQUAL_COLOR_TOLERANCE) | 
| 527 | && (dist (g, h) < XBRZ_CFG_EQUAL_COLOR_TOLERANCE) | 582 | && (color_format->dist (g, h) < XBRZ_CFG_EQUAL_COLOR_TOLERANCE) | 
| 528 | && (dist (h, i) < XBRZ_CFG_EQUAL_COLOR_TOLERANCE) | 583 | && (color_format->dist (h, i) < XBRZ_CFG_EQUAL_COLOR_TOLERANCE) | 
| 529 | && (dist (i, f) < XBRZ_CFG_EQUAL_COLOR_TOLERANCE) | 584 | && (color_format->dist (i, f) < XBRZ_CFG_EQUAL_COLOR_TOLERANCE) | 
| 530 | && (dist (f, c) < XBRZ_CFG_EQUAL_COLOR_TOLERANCE)) | 585 | && (color_format->dist (f, c) < XBRZ_CFG_EQUAL_COLOR_TOLERANCE)) | 
| 531 | doLineBlend = false; // no full blending for L-shapes; blend corner only (handles "mario mushroom eyes") | 586 | doLineBlend = false; // no full blending for L-shapes; blend corner only (handles "mario mushroom eyes") | 
| 532 |       else | 587 |       else | 
| 533 | doLineBlend = true; | 588 | doLineBlend = true; | 
| 534 | 589 | ||
| - | 590 |       outmatrix_t out; | |
| 535 | 
 | 591 | out.size = scaler->factor; | 
| - | 592 | out.ptr = target; | |
| - | 593 | out.stride = trgWidth; | |
| - | 594 | ||
| 536 | px = (dist (e, f) <= dist (e, h) ? f : h); //choose most similar color | 595 | px = (color_format->dist (e, f) <= color_format->dist (e, h) ? f : h); //choose most similar color | 
| 537 | 596 | ||
| 538 | if (doLineBlend) | 597 | if (doLineBlend) | 
| 539 |       { | 598 |       { | 
| 540 | const double fg = dist (f, g); //test sample: 70% of values max(fg, hc) / min(fg, hc) are between 1.1 and 3.7 with median being 1.9 | 599 | const double fg = color_format->dist (f, g); //test sample: 70% of values max(fg, hc) / min(fg, hc) are between 1.1 and 3.7 with median being 1.9 | 
| 541 | const double hc = dist (h, c); // | 600 | const double hc = color_format->dist (h, c); // | 
| 542 | const bool haveShallowLine = (XBRZ_CFG_STEEP_DIRECTION_THRESHOLD * fg <= hc) && (e != g) && (d != g); | 601 | const bool haveShallowLine = (XBRZ_CFG_STEEP_DIRECTION_THRESHOLD * fg <= hc) && (e != g) && (d != g); | 
| 543 | const bool haveSteepLine = (XBRZ_CFG_STEEP_DIRECTION_THRESHOLD * hc <= fg) && (e != c) && (b != c); | 602 | const bool haveSteepLine = (XBRZ_CFG_STEEP_DIRECTION_THRESHOLD * hc <= fg) && (e != c) && (b != c); | 
| 544 | 603 | ||
| 545 | if (haveShallowLine) | 604 | if (haveShallowLine) | 
| 546 |          { | 605 |          { | 
| 547 | if (haveSteepLine) | 606 | if (haveSteepLine) | 
| 548 | scaler->blend_line_steep_and_shallow (px, &out, | 607 | scaler->blend_line_steep_and_shallow (px, &out, color_format, outmatrix_ref); | 
| 549 |             else | 608 |             else | 
| 550 | scaler->blend_line_shallow (px, &out, | 609 | scaler->blend_line_shallow (px, &out, color_format, outmatrix_ref); | 
| 551 |          } | 610 |          } | 
| 552 |          else | 611 |          else | 
| 553 |          { | 612 |          { | 
| 554 | if (haveSteepLine) | 613 | if (haveSteepLine) | 
| 555 | scaler->blend_line_steep (px, &out, | 614 | scaler->blend_line_steep (px, &out, color_format, outmatrix_ref); | 
| 556 |             else | 615 |             else | 
| 557 | scaler->blend_line_diagonal (px, &out, | 616 | scaler->blend_line_diagonal (px, &out, color_format, outmatrix_ref); | 
| 558 |          } | 617 |          } | 
| 559 |       } | 618 |       } | 
| 560 |       else | 619 |       else | 
| 561 | scaler->blend_corner (px, &out, | 620 | scaler->blend_corner (px, &out, color_format, outmatrix_ref); | 
| 562 |    } | 621 |    } | 
| 563 | } | 622 | } | 
| 564 | 623 | ||
| 565 | 624 | ||
| 566 | void scale_image (const scaler_t *scaler, const uint32_t *src, uint32_t *trg, int srcWidth, int srcHeight, int yFirst, int yLast, | 625 | static void scale_image (const scaler_t *scaler, const uint32_t *src, uint32_t *trg, int srcWidth, int srcHeight, int yFirst, int yLast, colorformat_t *color_format) | 
| 567 | { | 626 | { | 
| 568 | yFirst = MAX (yFirst, 0); | 627 | yFirst = MAX (yFirst, 0); | 
| 569 | yLast = MIN (yLast, srcHeight); | 628 | yLast = MIN (yLast, srcHeight); | 
| 570 | if (yFirst >= yLast || srcWidth <= 0) | 629 | if (yFirst >= yLast || srcWidth <= 0) | 
| 571 | return; | 630 | return; | 
| 572 | 631 | ||
| 573 | const int trgWidth = srcWidth * scaler->factor; | 632 | const int trgWidth = srcWidth * scaler->factor; | 
| 574 | 633 | ||
| 575 |    //"use" space at the end of the image as temporary buffer for "on the fly preprocessing": we even could use larger area of | 634 |    // "use" space at the end of the image as temporary buffer for "on the fly preprocessing": we even could use larger area of | 
| 576 |    //"sizeof(uint32_t) * srcWidth * (yLast - yFirst)" bytes without risk of accidental overwriting before accessing | 635 |    // "sizeof(uint32_t) * srcWidth * (yLast - yFirst)" bytes without risk of accidental overwriting before accessing | 
| 577 | const int bufferSize = srcWidth; | 636 | const int bufferSize = srcWidth; | 
| 578 | 
 | 637 | uint8_t *preProcBuffer = (uint8_t *) (trg + yLast * scaler->factor * trgWidth) - bufferSize; | 
| 579 | memset (preProcBuffer, 0, bufferSize); | 638 | memset (preProcBuffer, 0, bufferSize); | 
| 580 | static_assert(BLEND_NONE == 0, ""); | - | |
| 581 | 639 | ||
| 582 |    //initialize preprocessing buffer for first row of current stripe: detect upper left and right corner blending | 640 |    // initialize preprocessing buffer for first row of current stripe: detect upper left and right corner blending | 
| 583 |    //this cannot be optimized for adjacent processing stripes; we must not allow for a memory race condition! | 641 |    // this cannot be optimized for adjacent processing stripes; we must not allow for a memory race condition! | 
| 584 | if (yFirst > 0) | 642 | if (yFirst > 0) | 
| 585 |    { | 643 |    { | 
| 586 | const int y = yFirst - 1; | 644 | const int y = yFirst - 1; | 
| 587 | 645 | ||
| 588 | const uint32_t* | 646 | const uint32_t *s_m1 = src + srcWidth * MAX (y - 1, 0); | 
| 589 | const uint32_t* | 647 | const uint32_t *s_0 = src + srcWidth * y; //center line | 
| 590 | const uint32_t* | 648 | const uint32_t *s_p1 = src + srcWidth * MIN (y + 1, srcHeight - 1); | 
| 591 | const uint32_t* | 649 | const uint32_t *s_p2 = src + srcWidth * MIN (y + 2, srcHeight - 1); | 
| 592 | 650 | ||
| 593 | for (int x = 0; x < srcWidth; ++x) | 651 | for (int x = 0; x < srcWidth; ++x) | 
| 594 |       { | 652 |       { | 
| 595 |          blendresult_t res; | 653 |          blendresult_t res; | 
| 596 | const int x_m1 = MAX (x - 1, 0); | 654 | const int x_m1 = MAX (x - 1, 0); | 
| 597 | const int x_p1 = MIN (x + 1, srcWidth - 1); | 655 | const int x_p1 = MIN (x + 1, srcWidth - 1); | 
| 598 | const int x_p2 = MIN (x + 2, srcWidth - 1); | 656 | const int x_p2 = MIN (x + 2, srcWidth - 1); | 
| 599 | 657 | ||
| 600 | kernel_4x4_t ker; //perf: initialization is negligible | 658 | kernel_4x4_t ker; // perf: initialization is negligible | 
| 601 | ker.a = s_m1[x_m1]; //read sequentially from memory as far as possible | 659 | ker.a = s_m1[x_m1]; ker.b = s_m1[x]; ker.c = s_m1[x_p1]; ker.d = s_m1[x_p2]; // read sequentially from memory as far as possible | 
| 602 | ker. | 660 | ker.e = s_0[x_m1]; ker.f = s_0[x]; ker.g = s_0[x_p1]; ker.h = s_0[x_p2]; | 
| 603 | ker. | 661 | ker.i = s_p1[x_m1]; ker.j = s_p1[x]; ker.k = s_p1[x_p1]; ker.l = s_p1[x_p2]; | 
| 604 | ker. | 662 | ker.m = s_p2[x_m1]; ker.n = s_p2[x]; ker.o = s_p2[x_p1]; ker.p = s_p2[x_p2]; | 
| 605 | 663 | ||
| 606 | 
 | 664 | preprocess_corners (&res, &ker, color_format); | 
| 607 | ker.f = s_0[x]; | - | |
| 608 | ker.g = s_0[x_p1]; | - | |
| 609 | ker.h = s_0[x_p2]; | - | |
| 610 | 665 | ||
| 611 | ker.i = s_p1[x_m1]; | - | |
| 612 | ker.j = s_p1[x]; | - | |
| 613 | ker.k = s_p1[x_p1]; | - | |
| 614 | ker.l = s_p1[x_p2]; | - | |
| 615 | - | ||
| 616 | ker.m = s_p2[x_m1]; | - | |
| 617 | ker.n = s_p2[x]; | - | |
| 618 | ker.o = s_p2[x_p1]; | - | |
| 619 | ker.p = s_p2[x_p2]; | - | |
| 620 | - | ||
| 621 | preProcessCorners (&res, &ker, dist); | - | |
| 622 |          /* | - | |
| 623 | 
 | 666 |          // preprocessing blend result: | 
| 624 | 
 | 667 |          // --------- | 
| 625 | 
 | 668 |          // | F | G |   //evalute corner between F, G, J, K | 
| 626 | 
 | 669 |          // ----|---|   //input pixel is at position F | 
| 627 | 
 | 670 |          // | J | K | | 
| 628 | 
 | 671 |          // --------- | 
| 629 |          */ | - | |
| 630 | setTopR (preProcBuffer[x], res.blend_j); | - | |
| 631 | 672 | ||
| - | 673 | setTopR (&preProcBuffer[x], res.blend_j); | |
| 632 | if (x + 1 < bufferSize) | 674 | if (x + 1 < bufferSize) | 
| 633 | setTopL (preProcBuffer[x + 1], res.blend_k); | 675 | setTopL (&preProcBuffer[x + 1], res.blend_k); | 
| 634 |       } | 676 |       } | 
| 635 |    } | 677 |    } | 
| 636 |    //------------------------------------------------------------------------------------ | 678 |    //------------------------------------------------------------------------------------ | 
| 637 | 679 | ||
| 638 | for (int y = yFirst; y < yLast; ++y) | 680 | for (int y = yFirst; y < yLast; ++y) | 
| Line 642... | Line 684... | ||
| 642 | const uint32_t* s_m1 = src + srcWidth * MAX (y - 1, 0); | 684 | const uint32_t* s_m1 = src + srcWidth * MAX (y - 1, 0); | 
| 643 | const uint32_t* s_0 = src + srcWidth * y; //center line | 685 | const uint32_t* s_0 = src + srcWidth * y; //center line | 
| 644 | const uint32_t* s_p1 = src + srcWidth * MIN (y + 1, srcHeight - 1); | 686 | const uint32_t* s_p1 = src + srcWidth * MIN (y + 1, srcHeight - 1); | 
| 645 | const uint32_t* s_p2 = src + srcWidth * MIN (y + 2, srcHeight - 1); | 687 | const uint32_t* s_p2 = src + srcWidth * MIN (y + 2, srcHeight - 1); | 
| 646 | 688 | ||
| 647 | 
 | 689 | uint8_t blend_xy1 = 0; // corner blending for current (x, y + 1) position | 
| 648 | 690 | ||
| 649 | for (int x = 0; x < srcWidth; ++x, out += scaler->factor) | 691 | for (int x = 0; x < srcWidth; ++x, out += scaler->factor) | 
| 650 |       { | 692 |       { | 
| 651 |          //all those bounds checks have only insignificant impact on performance! | 693 |          // all those bounds checks have only insignificant impact on performance! | 
| 652 | const int x_m1 = MAX (x - 1, 0); //perf: prefer array indexing to additional pointers! | 694 | const int x_m1 = MAX (x - 1, 0); //perf: prefer array indexing to additional pointers! | 
| 653 | const int x_p1 = MIN (x + 1, srcWidth - 1); | 695 | const int x_p1 = MIN (x + 1, srcWidth - 1); | 
| 654 | const int x_p2 = MIN (x + 2, srcWidth - 1); | 696 | const int x_p2 = MIN (x + 2, srcWidth - 1); | 
| - | 697 | ||
| 655 | kernel_4x4_t ker4; //perf: initialization is negligible | 698 | kernel_4x4_t ker4; //perf: initialization is negligible | 
| - | 699 | ker4.a = s_m1[x_m1]; ker4.b = s_m1[x]; ker4.c = s_m1[x_p1]; ker4.d = s_m1[x_p2]; // read sequentially from memory as far as possible | |
| - | 700 | ker4.e = s_0[x_m1]; ker4.f = s_0[x]; ker4.g = s_0[x_p1]; ker4.h = s_0[x_p2]; | |
| - | 701 | ker4.i = s_p1[x_m1]; ker4.j = s_p1[x]; ker4.k = s_p1[x_p1]; ker4.l = s_p1[x_p2]; | |
| - | 702 | ker4.m = s_p2[x_m1]; ker4.n = s_p2[x]; ker4.o = s_p2[x_p1]; ker4.p = s_p2[x_p2]; | |
| 656 | 703 | ||
| 657 | 
 | 704 |          // evaluate the four corners on bottom-right of current pixel | 
| - | 705 | uint8_t blend_xy = 0; //for current (x, y) position | |
| 658 | 
 | 706 |          { | 
| 659 | 
 | 707 |             blendresult_t res; | 
| 660 | 
 | 708 | preprocess_corners (&res, &ker4, color_format); | 
| 661 | 709 | ||
| 662 | 
 | 710 |             // preprocessing blend result: | 
| 663 | 
 | 711 |             // --------- | 
| - | 712 |             // | F | G |   //evalute corner between F, G, J, K | |
| - | 713 |             // ----|---|   //current input pixel is at position F | |
| 664 | 
 | 714 |             // | J | K | | 
| 665 | 
 | 715 |             // --------- | 
| 666 | 716 | ||
| 667 | ker4.i = s_p1[x_m1]; | - | |
| 668 | ker4.j = s_p1[x]; | - | |
| 669 | ker4.k = s_p1[x_p1]; | - | |
| 670 | ker4.l = s_p1[x_p2]; | - | |
| 671 | - | ||
| 672 | ker4.m = s_p2[x_m1]; | - | |
| 673 | ker4.n = s_p2[x]; | - | |
| 674 | ker4.o = s_p2[x_p1]; | - | |
| 675 | ker4.p = s_p2[x_p2]; | - | |
| 676 | - | ||
| 677 |          //evaluate the four corners on bottom-right of current pixel | - | |
| 678 | unsigned char blend_xy = 0; //for current (x, y) position | - | |
| 679 |          { | - | |
| 680 |             blendresult_t res; | - | |
| 681 | preProcessCorners (&res, &ker4, dist); | - | |
| 682 |             /* | - | |
| 683 |             preprocessing blend result: | - | |
| 684 |             --------- | - | |
| 685 |             | F | G |   //evalute corner between F, G, J, K | - | |
| 686 |             ----|---|   //current input pixel is at position F | - | |
| 687 |             | J | K | | - | |
| 688 |             --------- | - | |
| 689 |             */ | - | |
| 690 | blend_xy = preProcBuffer[x]; | 717 | blend_xy = preProcBuffer[x]; | 
| 691 | setBottomR (blend_xy, res.blend_f); //all four corners of (x, y) have been determined at this point due to processing sequence! | 718 | setBottomR (&blend_xy, res.blend_f); //all four corners of (x, y) have been determined at this point due to processing sequence! | 
| 692 | 719 | ||
| 693 | setTopR (blend_xy1, res.blend_j); //set 2nd known corner for (x, y + 1) | 720 | setTopR (&blend_xy1, res.blend_j); //set 2nd known corner for (x, y + 1) | 
| 694 | preProcBuffer[x] = blend_xy1; //store on current buffer position for use on next row | 721 | preProcBuffer[x] = blend_xy1; //store on current buffer position for use on next row | 
| 695 | 722 | ||
| 696 | blend_xy1 = 0; | 723 | blend_xy1 = 0; | 
| 697 | setTopL (blend_xy1, res.blend_k); //set 1st known corner for (x + 1, y + 1) and buffer for use on next column | 724 | setTopL (&blend_xy1, res.blend_k); //set 1st known corner for (x + 1, y + 1) and buffer for use on next column | 
| 698 | 725 | ||
| 699 | if (x + 1 < bufferSize) //set 3rd known corner for (x + 1, y) | 726 | if (x + 1 < bufferSize) //set 3rd known corner for (x + 1, y) | 
| 700 | setBottomL (preProcBuffer[x + 1], res.blend_g); | 727 | setBottomL (&preProcBuffer[x + 1], res.blend_g); | 
| 701 |          } | 728 |          } | 
| 702 | 729 | ||
| 703 |          //fill block of size scale * scale with the given color | 730 |          //fill block of size scale * scale with the given color | 
| 704 |          { | - | |
| 705 | 
 | 731 | uint32_t *blk = out; | 
| 706 | 
 | 732 | for (int _blk_y = 0; _blk_y < scaler->factor; ++_blk_y, blk = (uint32_t *) BYTE_ADVANCE (blk, trgWidth * sizeof (uint32_t))) | 
| 707 | 
 | 733 | for (int _blk_x = 0; _blk_x < scaler->factor; ++_blk_x) | 
| 708 | 
 | 734 | blk[_blk_x] = ker4.f; | 
| 709 |          } | 735 | |
| 710 |          //place *after* preprocessing step, to not overwrite the results while processing the the last pixel! | 736 |          //place *after* preprocessing step, to not overwrite the results while processing the the last pixel! | 
| 711 | 737 | ||
| 712 |          //blend four corners of current pixel | 738 |          //blend four corners of current pixel | 
| 713 | if (blend_xy != 0) //good 5% perf-improvement | 739 | if (blend_xy != 0) //good 5% perf-improvement | 
| 714 |          { | 740 |          { | 
| 715 | kernel_3x3_t ker3; //perf: initialization is negligible | 741 | kernel_3x3_t ker3; //perf: initialization is negligible | 
| - | 742 | ker3.a = ker4.a; ker3.b = ker4.b; ker3.c = ker4.c; | |
| - | 743 | ker3.d = ker4.e; ker3.e = ker4.f; ker3.f = ker4.g; | |
| - | 744 | ker3.g = ker4.i; ker3.h = ker4.j; ker3.i = ker4.k; | |
| 716 | 745 | ||
| 717 | ker3.a = ker4.a; | - | |
| 718 | ker3.b = ker4.b; | - | |
| 719 | ker3.c = ker4.c; | - | |
| 720 | - | ||
| 721 | ker3.d = ker4.e; | - | |
| 722 | ker3.e = ker4.f; | - | |
| 723 | ker3.f = ker4.g; | - | |
| 724 | - | ||
| 725 | ker3.g = ker4.i; | - | |
| 726 | ker3.h = ker4.j; | - | |
| 727 | ker3.i = ker4.k; | - | |
| 728 | - | ||
| 729 | blend_pixel (scaler, &ker3, out, trgWidth, blend_xy, | 746 | blend_pixel (scaler, &ker3, out, trgWidth, blend_xy, color_format, outmatrixref_0); | 
| 730 | blend_pixel (scaler, &ker3, out, trgWidth, blend_xy, | 747 | blend_pixel (scaler, &ker3, out, trgWidth, blend_xy, color_format, outmatrixref_90); | 
| 731 | blend_pixel (scaler, &ker3, out, trgWidth, blend_xy, | 748 | blend_pixel (scaler, &ker3, out, trgWidth, blend_xy, color_format, outmatrixref_180); | 
| 732 | blend_pixel (scaler, &ker3, out, trgWidth, blend_xy, | 749 | blend_pixel (scaler, &ker3, out, trgWidth, blend_xy, color_format, outmatrixref_270); | 
| 733 |          } | 750 |          } | 
| 734 |       } | 751 |       } | 
| 735 |    } | 752 |    } | 
| 736 | } | 753 | } | 
| 737 | 754 | ||
| 738 | 755 | ||
| 739 | static double dist24 (uint32_t pix1, uint32_t pix2) | - | |
| 740 | { | - | |
| 741 |    //30% perf boost compared to plain distYCbCr()! | - | |
| 742 |    //consumes 64 MB memory; using double is only 2% faster, but takes 128 MB | - | |
| 743 | static float diffToDist[256 * 256 * 256]; | - | |
| 744 | 
 | 756 | ///////////////////// | 
| 745 | 
 | 757 | // exported functions | 
| 746 |    { | - | |
| 747 | for (uint32_t i = 0; i < 256 * 256 * 256; ++i) //startup time: 114 ms on Intel Core i5 (four cores) | - | |
| 748 |       { | - | |
| 749 | const int r_diff = GET_RED (i) * 2 - 0xFF; | - | |
| 750 | const int g_diff = GET_GREEN (i) * 2 - 0xFF; | - | |
| 751 | const int b_diff = GET_BLUE (i) * 2 - 0xFF; | - | |
| 752 | 758 | ||
| 753 | const double k_b = 0.0593; //ITU-R BT.2020 conversion | - | |
| 754 | const double k_r = 0.2627; // | - | |
| 755 | const double k_g = 1 - k_b - k_r; | - | |
| 756 | 759 | ||
| 757 | const double scale_b = 0.5 / (1 - k_b); | - | |
| 758 | const double scale_r = 0.5 / (1 - k_r); | - | |
| 759 | - | ||
| 760 | const double y = k_r * r_diff + k_g * g_diff + k_b * b_diff; //[!], analog YCbCr! | - | |
| 761 | const double c_b = scale_b * (b_diff - y); | - | |
| 762 | const double c_r = scale_r * (r_diff - y); | - | |
| 763 | - | ||
| 764 | diffToDist[i] = (float) (sqrt ((y * y) + (c_b * c_b) + (c_r * c_r))); | - | |
| 765 |       } | - | |
| 766 | is_initialized = true; | - | |
| 767 |    } | - | |
| 768 | - | ||
| 769 | const int r_diff = (int) GET_RED (pix1) - (int) GET_RED (pix2); | - | |
| 770 | const int g_diff = (int) GET_GREEN (pix1) - (int) GET_GREEN (pix2); | - | |
| 771 | const int b_diff = (int) GET_BLUE (pix1) - (int) GET_BLUE (pix2); | - | |
| 772 | - | ||
| 773 | 
 | 760 | void nearest_neighbor_scale (const uint32_t *src, int srcWidth, int srcHeight, uint32_t *trg, int trgWidth, int trgHeight) | 
| 774 | (((g_diff + 0xFF) / 2) << 8) | | - | |
| 775 | (((b_diff + 0xFF) / 2) << 0)]; | - | |
| 776 | } | - | |
| 777 | - | ||
| 778 | - | ||
| 779 | static double dist32 (uint32_t pix1, uint32_t pix2) | - | |
| 780 | { | 761 | { | 
| 781 | const double a1 = GET_ALPHA (pix1) / 255.0; | - | |
| 782 | const double a2 = GET_ALPHA (pix2) / 255.0; | - | |
| 783 |    /* | - | |
| 784 |    Requirements for a color distance handling alpha channel: with a1, a2 in [0, 1] | - | |
| 785 | - | ||
| 786 |        1. if a1 = a2, distance should be: a1 * distYCbCr() | - | |
| 787 |        2. if a1 = 0,  distance should be: a2 * distYCbCr(black, white) = a2 * 255 | - | |
| 788 |        3. if a1 = 1,  ??? maybe: 255 * (1 - a2) + a2 * distYCbCr() | - | |
| 789 |    */ | - | |
| 790 | - | ||
| 791 |    //return MIN (a1, a2) * distYCbCrBuffered(pix1, pix2) + 255 * abs(a1 - a2); | - | |
| 792 |    //=> following code is 15% faster: | - | |
| 793 | const double d = dist24 (pix1, pix2); | - | |
| 794 | return (a1 < a2 ? a1 * d + 255 * (a2 - a1) : a2 * d + 255 * (a1 - a2)); | - | |
| 795 | } | - | |
| 796 | - | ||
| 797 | - | ||
| 798 | static void alphagrad24 (uint32_t *pixBack, uint32_t pixFront, unsigned int M, unsigned int N) | - | |
| 799 | { | - | |
| 800 |    // blend front color with opacity M / N over opaque background: http://en.wikipedia.org/wiki/Alpha_compositing#Alpha_blending | - | |
| 801 | *pixBack = ((CALC_COLOR24 (GET_RED (pixFront), GET_RED (*pixBack), M, N) << 16) | - | |
| 802 | | (CALC_COLOR24 (GET_GREEN (pixFront), GET_GREEN (*pixBack), M, N) << 8) | - | |
| 803 | | (CALC_COLOR24 (GET_BLUE (pixFront), GET_BLUE (*pixBack), M, N) << 0)); | - | |
| 804 | } | - | |
| 805 | - | ||
| 806 | - | ||
| 807 | static void alphagrad32 (uint32_t *pixBack, uint32_t pixFront, unsigned int M, unsigned int N) | - | |
| 808 | { | - | |
| 809 |    // find intermediate color between two colors with alpha channels (=> NO alpha blending!!!) | - | |
| 810 | const unsigned int weightFront = GET_ALPHA (pixFront) * M; | - | |
| 811 | const unsigned int weightBack = GET_ALPHA (*pixBack) * (N - M); | - | |
| 812 | const unsigned int weightSum = weightFront + weightBack; | - | |
| 813 | *pixBack = (weightSum == 0 ? 0 : | - | |
| 814 | (((unsigned char) (weightSum / N)) << 24) | - | |
| 815 | | (CALC_COLOR32 (GET_RED (pixFront), GET_RED (*pixBack), weightFront, weightBack, weightSum) << 16) | - | |
| 816 | | (CALC_COLOR32 (GET_GREEN (pixFront), GET_GREEN (*pixBack), weightFront, weightBack, weightSum) << 8) | - | |
| 817 | | (CALC_COLOR32 (GET_BLUE (pixFront), GET_BLUE (*pixBack), weightFront, weightBack, weightSum) << 0)); | - | |
| 818 | } | - | |
| 819 | - | ||
| 820 | - | ||
| 821 | EXTERN_C void nearestNeighborScale (const uint32_t *src, int srcWidth, int srcHeight, uint32_t *trg, int trgWidth, int trgHeight) | - | |
| 822 | { | - | |
| 823 |    //    nearestNeighborScale (src, srcWidth, srcHeight, srcWidth * sizeof (uint32_t), trg, trgWidth, trgHeight, trgWidth * sizeof (uint32_t), XBRZ_SLICETYPE_TARGET, 0, trgHeight, [](uint32_t pix) { return pix; }); | - | |
| 824 |        //static_assert(std::is_integral<PixSrc>::value, "PixSrc* is expected to be cast-able to char*"); | - | |
| 825 |        //static_assert(std::is_integral<PixTrg>::value, "PixTrg* is expected to be cast-able to char*"); | - | |
| 826 |        //static_assert(std::is_same<decltype(pixCvrt(PixSrc())), PixTrg>::value, "PixConverter returning wrong pixel format"); | - | |
| 827 | - | ||
| 828 | int srcPitch = srcWidth * sizeof (uint32_t); | 762 | int srcPitch = srcWidth * sizeof (uint32_t); | 
| 829 | int trgPitch = trgWidth * sizeof (uint32_t); | 763 | int trgPitch = trgWidth * sizeof (uint32_t); | 
| 830 | int yFirst; | 764 | int yFirst; | 
| 831 | int yLast; | 765 | int yLast; | 
| 832 | 766 | ||
| Line 895... | Line 829... | ||
| 895 | 829 | ||
| 896 | return; | 830 | return; | 
| 897 | } | 831 | } | 
| 898 | 832 | ||
| 899 | 833 | ||
| 900 | 
 | 834 | void xbrz_scale (size_t factor, const uint32_t *src, uint32_t *trg, int srcWidth, int srcHeight, bool has_alpha_channel) | 
| 901 | { | 835 | { | 
| 902 | 
 | 836 | if ((factor < 2) || (factor > 6)) | 
| 903 | } | - | |
| - | 837 | return; // consistency check | |
| 904 | 838 | ||
| 905 | - | ||
| 906 | EXTERN_C bool xbrz_equalcolortest32 (uint32_t col1, uint32_t col2, double luminanceWeight, double equalColorTolerance) | - | |
| 907 | { | - | |
| 908 | return (dist32 (col1, col2) < equalColorTolerance); | - | |
| 909 | } | - | |
| 910 | - | ||
| 911 | - | ||
| 912 | EXTERN_C void xbrz_scale24 (size_t factor, const uint32_t *src, uint32_t *trg, int srcWidth, int srcHeight) | - | |
| 913 | { | - | |
| 914 | if (factor < 7) | - | |
| 915 | 
 | 839 | scale_image (&scalers[factor - 2], src, trg, srcWidth, srcHeight, 0, srcHeight, (has_alpha_channel ? &color_format_32 : &color_format_24)); | 
| 916 | } | - | |
| 917 | - | ||
| 918 | - | ||
| 919 | EXTERN_C void xbrz_scale32 (size_t factor, const uint32_t *src, uint32_t *trg, int srcWidth, int srcHeight) | - | |
| 920 | { | - | |
| 921 | 
 | 840 | return; | 
| 922 | return scale_image (&scalers[factor - 2], src, trg, srcWidth, srcHeight, 0, srcHeight, alphagrad32, dist32); | - | |
| 923 | } | 841 | } |