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still need to change interp mode to hsv_circular
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a1065bee5c
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2
flam3.c
2
flam3.c
@ -480,7 +480,7 @@ flam3_genome *sheep_edge(flam3_genome *cp, double blend, int seqflag, double sta
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flam3_rotate(&spun[0], blend*360.0, spun[0].interpolation_type);
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flam3_rotate(&spun[1], blend*360.0, spun[0].interpolation_type);
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fprintf(stderr, "xyzzy %d %d\n", spun[0].palette_interpolation, spun[1].palette_interpolation);
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//fprintf(stderr, "xyzzy %d %d\n", spun[0].palette_interpolation, spun[1].palette_interpolation);
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/* Now call the interpolation */
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if (argi("unsmoother",0) == 0)
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@ -172,13 +172,15 @@ void interpolate_cmap(flam3_palette cmap, double blend,
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t[4] = p1[i].index;
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/* take the shorter way around the hue circle */
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if (0 == i) {
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fprintf(stderr, "xxx interpolating between hues, %g %g\n", s[0], t[0]);
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}
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if ((s[0] - t[0]) > 3.0)
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// if (0 == i) {
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// fprintf(stderr, "xxx interpolating between hues, %g %g\n", s[0], t[0]);
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// }
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/* Correct the first hue to go the short way around */
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if ((s[0] - t[0]) > 3.0) /* first hue much bigger than second hue */
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s[0] -= 6.0
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if ((s[0] - t[0]) < -3.0) /* first hue much smaller than second hue */
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s[0] += 6.0;
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if ((t[0] - s[0]) > 3.0)
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t[0] += 6.0;
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for (j = 0; j < 5; j++)
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t[j] = ((1.0-blend) * s[j]) + (blend * t[j]);
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@ -372,7 +374,7 @@ void flam3_interpolate_n(flam3_genome *result, int ncp,
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flam3_genome *cpi, double *c, double stagger) {
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int i, j, k, numstd;
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fprintf(stderr, "xxx pi=%d\n", cpi[0].palette_interpolation);
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// fprintf(stderr, "xxx pi=%d\n", cpi[0].palette_interpolation);
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if (flam3_palette_interpolation_sweep != cpi[0].palette_interpolation) {
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@ -384,8 +386,8 @@ void flam3_interpolate_n(flam3_genome *result, int ncp,
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for (k = 0; k < ncp; k++) {
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if (i == 0) {
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fprintf(stderr, "ncp=%d, k=%d\n", ncp, k);
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fprintf(stderr, "rgb=%g %g %g\n", cpi[k].palette[i].color[0], cpi[k].palette[i].color[1], cpi[k].palette[i].color[2]);
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// fprintf(stderr, "ncp=%d, k=%d\n", ncp, k);
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// fprintf(stderr, "rgb=%g %g %g\n", cpi[k].palette[i].color[0], cpi[k].palette[i].color[1], cpi[k].palette[i].color[2]);
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}
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if (flam3_palette_interpolation_rgb != cpi[0].palette_interpolation)
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rgb2hsv(cpi[k].palette[i].color, t);
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@ -394,19 +396,25 @@ void flam3_interpolate_n(flam3_genome *result, int ncp,
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for (l = 0; l < 3; l++)
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t[l] = cpi[k].palette[i].color[l];
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}
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if (i == 0) {
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fprintf(stderr, "hsv=%g %g %g\n", t[0], t[1], t[2]);
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}
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// if (i == 0) {
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// fprintf(stderr, "hsv=%g %g %g\n", t[0], t[1], t[2]);
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// }
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if (2 == ncp && cpi[0].palette_interpolation == flam3_palette_interpolation_hsv2) {
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if (2 == ncp && k == 0 &&cpi[0].palette_interpolation == flam3_palette_interpolation_hsv2) {
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/* should also support blending between rgb and hsv,
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and change the color of the cut, so we can keep
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a dominant color but control what it is. */
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double z[3];
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rgb2hsv(cpi[1-k].palette[i].color, z);
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if ((z[0] - t[0]) > 3.0) t[0] += 6.0;
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if (i == 0)
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fprintf(stderr, "adjusted %g %g\n", z[0], t[0]);
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/* only adjust the first coordinate based on the other control point's hue */
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double second_color[3];
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rgb2hsv(cpi[1].palette[i].color, second_color);
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/* Adjust the hue so that we go the shorter direction around the circle */
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if ((second_color[0] - t[0]) > 3.0) {
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t[0] += 6.0;
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} else if ((second_color[0] - t[0]) < -3.0) {
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t[0] -= 6.0;
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}
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}
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for (j = 0; j < 3; j++)
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@ -422,8 +430,8 @@ void flam3_interpolate_n(flam3_genome *result, int ncp,
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if (alpha1 == 1)
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s[3] = 1.0;
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if (i == 0)
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fprintf(stderr, "s0=%g\n", s[0]);
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// if (i == 0)
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// fprintf(stderr, "s0=%g\n", s[0]);
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if (flam3_palette_interpolation_rgb != cpi[0].palette_interpolation)
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hsv2rgb(s, result->palette[i].color);
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@ -435,11 +443,11 @@ void flam3_interpolate_n(flam3_genome *result, int ncp,
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result->palette[i].color[3] = s[3];
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result->palette[i].index = s[4];
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if (i == 0)
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fprintf(stderr, "result rgb=%g %g %g\n",
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result->palette[0].color[0],
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result->palette[0].color[1],
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result->palette[0].color[2]);
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// if (i == 0)
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// fprintf(stderr, "result rgb=%g %g %g\n",
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// result->palette[0].color[0],
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// result->palette[0].color[1],
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// result->palette[0].color[2]);
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for (j = 0; j < 4; j++) {
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if (result->palette[i].color[j] < 0.0)
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