Optics: cache pixel-area Moffat kernels
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a71180706f
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10 files changed
+693
-56
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@@ -27,7 +27,7 @@ int main(void) {
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goto done;
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const size_t images =
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frame_splat_catalog(&mesh, &catalog, hdr, width, height, test_exposure,
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&psf, 1, NULL);
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&psf, NULL, 1, NULL, NULL);
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if (images != 1 || hdr[3 * (50 * width + 50)] <= 0.0) {
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fputs("flat-space inverse lens-map regression failed\n", stderr);
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goto done;
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@@ -44,10 +44,10 @@ int main(void) {
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omp_set_dynamic(0);
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omp_set_num_threads(1);
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const size_t serial_images = frame_splat_catalog(
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&mesh, &catalog, serial_hdr, width, height, test_exposure, &psf, 1, NULL);
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&mesh, &catalog, serial_hdr, width, height, test_exposure, &psf, NULL, 1, NULL, NULL);
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omp_set_num_threads(4);
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const size_t parallel_images = frame_splat_catalog(
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&mesh, &catalog, parallel_hdr, width, height, test_exposure, &psf, 1, NULL);
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&mesh, &catalog, parallel_hdr, width, height, test_exposure, &psf, NULL, 1, NULL, NULL);
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omp_set_num_threads(original_threads);
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for (int value = 0; value < width * height * 3; ++value)
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if (fabs(serial_hdr[value] - parallel_hdr[value]) >
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@@ -83,6 +83,56 @@ int main(void) {
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fputs("Moffat normalization or wing regression failed\n", stderr);
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goto done;
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}
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/* The cache stores 4-point pixel-area integrals over a 64x64 sub-pixel
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* lattice. Compare its bilinear interpolation with the independent 8-point
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* direct reference at phases on both sides of a pixel boundary. */
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PsfKernelCache cache = {0};
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double *cached_hdr = calloc((size_t)width * height * 3, sizeof *cached_hdr);
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double *reference_hdr = calloc((size_t)width * height * 3, sizeof *reference_hdr);
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if (cached_hdr == NULL || reference_hdr == NULL ||
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psf_kernel_cache_init(&cache, &psf)) {
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free(cached_hdr);
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free(reference_hdr);
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psf_kernel_cache_destroy(&cache);
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fputs("PSF cache construction regression failed\n", stderr);
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goto done;
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}
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const double phases[][2] = {{0.01, 0.99}, {0.499, 0.501}, {0.999, 0.001}};
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for (size_t phase = 0; phase < sizeof phases / sizeof *phases; ++phase) {
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memset(cached_hdr, 0, (size_t)width * height * 3 * sizeof *cached_hdr);
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memset(reference_hdr, 0, (size_t)width * height * 3 * sizeof *reference_hdr);
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if (splat_moffat_cached(cached_hdr, width, height, 50.0 + phases[phase][0],
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50.0 + phases[phase][1], (LinearRgb){1.0, 1.0, 1.0},
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1.0, &psf, &cache) != 0) {
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fputs("ordinary PSF cache unexpectedly fell back\n", stderr);
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free(cached_hdr); free(reference_hdr); psf_kernel_cache_destroy(&cache);
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goto done;
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}
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splat_moffat_direct(reference_hdr, width, height,
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50.0 + phases[phase][0], 50.0 + phases[phase][1],
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(LinearRgb){1.0, 1.0, 1.0}, 1.0, &psf);
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double peak = 0.0, max_error = 0.0;
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for (int value = 0; value < width * height * 3; ++value) {
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peak = fmax(peak, reference_hdr[value]);
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max_error = fmax(max_error, fabs(cached_hdr[value] - reference_hdr[value]));
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}
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if (peak <= 0.0 || max_error > 4e-5 * peak) {
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fputs("PSF cache interpolation accuracy regression failed\n", stderr);
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free(cached_hdr); free(reference_hdr); psf_kernel_cache_destroy(&cache);
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goto done;
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}
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}
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/* A bright event must avoid a cached hard cutoff by selecting the direct
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* reference path when the requested support exceeds the cache. */
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if (splat_moffat_cached(cached_hdr, width, height, 50.5, 50.5,
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(LinearRgb){1.0, 1.0, 1.0}, 1000.0, &psf, &cache) != 1) {
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fputs("bright PSF direct-fallback regression failed\n", stderr);
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free(cached_hdr); free(reference_hdr); psf_kernel_cache_destroy(&cache);
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goto done;
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}
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free(cached_hdr);
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free(reference_hdr);
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psf_kernel_cache_destroy(&cache);
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frame_draw_mesh(&mesh, hdr, width, height, 0.5, 0.5);
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if (hdr[3 * (10 * width + 20)] != 0.25) {
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fputs("mesh diagnostic overlay regression failed\n", stderr);
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@@ -102,7 +152,7 @@ int main(void) {
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if (frame_lens_mesh_build_coarse(&fine_mesh, width, height, 1, 0.1) ||
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frame_lens_mesh_trace(&fine_mesh, &spacetime, &observer, &trace) ||
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frame_splat_catalog(&fine_mesh, &fine_catalog, hdr, width, height,
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test_exposure, &psf, 1, NULL) != 1) {
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test_exposure, &psf, NULL, 1, NULL, NULL) != 1) {
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fputs("fine source-triangle containment regression failed\n", stderr);
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frame_lens_mesh_destroy(&fine_mesh);
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goto done;
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