32 #define INTERPOLATE_METHOD(name) \
33 static uint8_t name(float x, float y, const uint8_t *src, \
34 int width, int height, int stride, uint8_t def)
36 #define PIXEL(img, x, y, w, h, stride, def) \
37 ((x) < 0 || (y) < 0) ? (def) : \
38 (((x) >= (w) || (y) >= (h)) ? (def) : \
39 img[(x) + (y) * (stride)])
54 int x_c, x_f, y_c, y_f;
71 return (v1*(x - x_f)*(
y - y_f) + v2*((x - x_f)*(y_c -
y)) +
72 v3*(x_c - x)*(
y - y_f) + v4*((x_c - x)*(y_c -
y)));
81 int x_c, x_f, y_c, y_f;
98 f1 = 1 - sqrt((x_c - x) * (y_c -
y));
99 f2 = 1 - sqrt((x_c - x) * (
y - y_f));
100 f3 = 1 - sqrt((x - x_f) * (y_c -
y));
101 f4 = 1 - sqrt((x - x_f) * (
y - y_f));
102 return (v1 * f1 + v2 * f2 + v3 * f3 + v4 * f4) / (f1 + f2 + f3 + f4);
107 matrix[0] = zoom * cos(angle);
108 matrix[1] = -sin(angle);
110 matrix[3] = -matrix[1];
111 matrix[4] = matrix[0];
121 for (i = 0; i < 9; i++)
122 result[i] = m1[i] + m2[i];
128 for (i = 0; i < 9; i++)
129 result[i] = m1[i] - m2[i];
135 for (i = 0; i < 9; i++)
136 result[i] = m1[i] * scalar;
141 while ((
unsigned)v > (
unsigned)m) {
150 int src_stride,
int dst_stride,
160 switch(interpolate) {
162 func = interpolate_nearest;
168 func = interpolate_biquadratic;
174 for (y = 0; y <
height; y++) {
175 for(x = 0; x <
width; x++) {
176 x_s = x * matrix[0] + y * matrix[1] + matrix[2];
177 y_s = x * matrix[3] + y * matrix[4] + matrix[5];
181 def = src[y * src_stride + x];
184 y_s = av_clipf(y_s, 0, height - 1);
185 x_s = av_clipf(x_s, 0, width - 1);
186 def = src[(int)y_s * src_stride + (
int)x_s];
189 x_s =
mirror(x_s, width-1);
190 y_s =
mirror(y_s, height-1);
194 def = src[(int)y_s * src_stride + (
int)x_s];
197 dst[y * dst_stride + x] =
func(x_s, y_s, src, width, height, src_stride, def);