187 lines
6.2 KiB
Metal
187 lines
6.2 KiB
Metal
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using namespace metal;
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using namespace raytracing;
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struct Vertex {
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uint posxy;
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uint poszw;
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uint nor;
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uint tex;
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};
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struct RayGenConstantBuffer {
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float4 v0; // frame, strength, radius, offset
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float4 v1;
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float4 v2;
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float4 v3;
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float4 v4;
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};
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struct RayPayload {
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float4 color;
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float3 ray_origin;
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float3 ray_dir;
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};
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constant int SAMPLES = 4;//64;
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float2 equirect(float3 normal, float angle) {
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const float PI = 3.1415926535;
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const float PI2 = PI * 2.0;
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float phi = acos(normal.z);
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float theta = atan2(-normal.y, normal.x) + PI + angle;
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return float2(theta / PI2, phi / PI);
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}
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float rand(int pixel_i, int pixel_j, int sampleIndex, int sampleDimension, int frame, texture2d<float, access::read> sobol, texture2d<float, access::read> scramble, texture2d<float, access::read> rank) {
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pixel_i += frame * 9;
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pixel_j += frame * 11;
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pixel_i = pixel_i & 127;
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pixel_j = pixel_j & 127;
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sampleIndex = sampleIndex & 255;
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sampleDimension = sampleDimension & 255;
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int i = sampleDimension + (pixel_i + pixel_j * 128) * 8;
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int rankedSampleIndex = sampleIndex ^ int(rank.read(uint2(i % 128, uint(i / 128)), 0).r * 255);
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i = sampleDimension + rankedSampleIndex * 256;
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int value = int(sobol.read(uint2(i % 256, uint(i / 256)), 0).r * 255);
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i = (sampleDimension % 8) + (pixel_i + pixel_j * 128) * 8;
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value = value ^ int(scramble.read(uint2(i % 128, uint(i / 128)), 0).r * 255);
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float v = (0.5f + value) / 256.0f;
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return v;
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}
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float3 cos_weighted_hemisphere_direction(uint2 tid, float3 n, uint sample, uint seed, int frame, texture2d<float, access::read> sobol, texture2d<float, access::read> scramble, texture2d<float, access::read> rank) {
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const float PI = 3.1415926535;
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const float PI2 = PI * 2.0;
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float f0 = rand(tid.x, tid.y, sample, seed, frame, sobol, scramble, rank);
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float f1 = rand(tid.x, tid.y, sample, seed + 1, frame, sobol, scramble, rank);
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float z = f0 * 2.0f - 1.0f;
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float a = f1 * PI2;
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float r = sqrt(1.0f - z * z);
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float x = r * cos(a);
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float y = r * sin(a);
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return normalize(n + float3(x, y, z));
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}
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float3 hit_attribute(float3 vertexAttribute[3], float2 barycentrics) {
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return vertexAttribute[0] +
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barycentrics.x * (vertexAttribute[1] - vertexAttribute[0]) +
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barycentrics.y * (vertexAttribute[2] - vertexAttribute[0]);
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}
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float2 hit_attribute2d(float2 vertexAttribute[3], float2 barycentrics) {
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return vertexAttribute[0] +
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barycentrics.x * (vertexAttribute[1] - vertexAttribute[0]) +
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barycentrics.y * (vertexAttribute[2] - vertexAttribute[0]);
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}
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float2 s16_to_f32(uint val) {
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int a = (int)(val << 16) >> 16;
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int b = (int)(val & 0xffff0000) >> 16;
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return float2(a, b) / 32767.0f;
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}
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kernel void raytracingKernel(
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uint2 tid [[thread_position_in_grid]],
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constant RayGenConstantBuffer &constant_buffer [[buffer(0)]],
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texture2d<float, access::read_write> render_target [[texture(0)]],
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texture2d<float, access::read> mytexture0 [[texture(1)]],
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texture2d<float, access::read> mytexture1 [[texture(2)]],
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texture2d<float, access::read> mytexture2 [[texture(3)]],
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texture2d<float, access::read> mytexture_env [[texture(4)]],
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texture2d<float, access::read> mytexture_sobol [[texture(5)]],
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texture2d<float, access::read> mytexture_scramble [[texture(6)]],
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texture2d<float, access::read> mytexture_rank [[texture(7)]],
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instance_acceleration_structure scene [[buffer(1)]],
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device void *indices [[buffer(2)]],
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device void *vertices [[buffer(3)]]
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) {
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uint seed = 0;
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float2 xy = float2(tid) + float2(0.5f, 0.5f);
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float4 tex0 = mytexture0.read(uint2(xy), 0);
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if (tex0.a == 0.0) {
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render_target.write(float4(0.0f, 0.0f, 0.0f, 0.0f), tid);
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return;
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}
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float3 pos = tex0.rgb;
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float3 nor = mytexture1.read(uint2(xy), 0).rgb;
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RayPayload payload;
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ray ray;
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ray.min_distance = constant_buffer.v0.w * 0.01;
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ray.max_distance = constant_buffer.v0.z * 10.0;
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ray.origin = pos;
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float3 accum = float3(0, 0, 0);
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for (int i = 0; i < SAMPLES; ++i) {
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ray.direction = cos_weighted_hemisphere_direction(tid, nor, i, seed, constant_buffer.v0.x, mytexture_sobol, mytexture_scramble, mytexture_rank);
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seed += 1;
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intersector<triangle_data, instancing> in;
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in.assume_geometry_type(geometry_type::triangle);
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in.force_opacity(forced_opacity::opaque);
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in.accept_any_intersection(false);
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typename intersector<triangle_data, instancing>::result_type intersection;
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intersection = in.intersect(ray, scene);
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if (intersection.type == intersection_type::none) {
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float2 tex_coord = equirect(ray.direction, constant_buffer.v1.z);
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uint2 size = uint2(mytexture_env.get_width(), mytexture_env.get_height());
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float3 texenv = mytexture_env.read(uint2(tex_coord * float2(size)), 0).rgb * constant_buffer.v1.x;
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payload.color = float4(texenv.rgb, -1);
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}
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else {
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device uint32_t *inda = (device uint32_t *)(indices);
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uint3 indices_sample = uint3(
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inda[intersection.primitive_id * 3],
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inda[intersection.primitive_id * 3 + 1],
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inda[intersection.primitive_id * 3 + 2]
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);
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device Vertex *verta = (device Vertex *)(vertices);
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float3 vertex_normals[3] = {
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float3(s16_to_f32(verta[indices_sample[0]].nor), s16_to_f32(verta[indices_sample[0]].poszw).y),
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float3(s16_to_f32(verta[indices_sample[1]].nor), s16_to_f32(verta[indices_sample[1]].poszw).y),
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float3(s16_to_f32(verta[indices_sample[2]].nor), s16_to_f32(verta[indices_sample[2]].poszw).y)
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};
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float2 barycentrics = intersection.triangle_barycentric_coord;
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float3 n = normalize(hit_attribute(vertex_normals, barycentrics));
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float2 vertex_uvs[3] = {
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s16_to_f32(verta[indices_sample[0]].tex),
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s16_to_f32(verta[indices_sample[1]].tex),
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s16_to_f32(verta[indices_sample[2]].tex)
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};
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float2 tex_coord = hit_attribute2d(vertex_uvs, barycentrics);
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uint2 size = uint2(mytexture2.get_width(), mytexture2.get_height());
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float3 texpaint2 = pow(mytexture2.read(uint2(tex_coord * float2(size)), 0).rgb, 2.2); // layer base
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payload.color.rgb = texpaint2.rgb;
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}
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accum += payload.color.rgb;
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}
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accum /= SAMPLES;
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float3 texpaint2 = mytexture2.read(uint2(xy), 0).rgb; // layer base
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accum *= texpaint2;
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float3 color = render_target.read(tid).xyz;
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if (constant_buffer.v0.x == 0) {
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color = accum.xyz;
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}
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else {
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float a = 1.0 / constant_buffer.v0.x;
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float b = 1.0 - a;
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color = color * b + accum.xyz * a;
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}
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render_target.write(float4(color.xyz, 1.0f), tid);
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}
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