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@@ -184,7 +184,7 @@ void main() {
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vec4 test_normal_roughness = imageLoad(source_normal_roughness, test_pos);
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vec3 test_normal = test_normal_roughness.xyz * 2.0 - 1.0;
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test_normal = normalize(test_normal);
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- test_normal.y = -test_normal.y; //because this code reads flipped
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+ test_normal.y = -test_normal.y; // Because this code reads flipped.
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if (dot(ray_dir, test_normal) < 0.001) {
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// if depth was surpassed
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@@ -203,6 +203,7 @@ void main() {
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if (found) {
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float margin_blend = 1.0;
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+ vec2 final_pos = pos;
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vec2 margin = vec2((params.screen_size.x + params.screen_size.y) * 0.05); // make a uniform margin
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if (any(bvec4(lessThan(pos, vec2(0.0, 0.0)), greaterThan(pos, params.screen_size)))) {
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@@ -219,16 +220,40 @@ void main() {
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//margin_blend = 1.0;
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}
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- vec2 final_pos;
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+ // Fade In / Fade Out
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float grad = (steps_taken + 1.0) / float(params.num_steps);
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float initial_fade = params.curve_fade_in == 0.0 ? 1.0 : pow(clamp(grad, 0.0, 1.0), params.curve_fade_in);
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float fade = pow(clamp(1.0 - grad, 0.0, 1.0), params.distance_fade) * initial_fade;
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+
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+ // Ensure that precision errors do not introduce any fade. Even if it is just slightly below 1.0,
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+ // strong specular light can leak through the reflection.
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+ if (fade > 0.999) {
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+ fade = 1.0;
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+ }
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+
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// This is an ad-hoc term to fade out the SSR as roughness increases. Values used
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// are meant to match the visual appearance of a ReflectionProbe.
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float roughness_fade = smoothstep(0.4, 0.7, 1.0 - normal_roughness.w);
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- final_pos = pos;
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- vec4 final_color;
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+ // Schlick term.
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+ float metallic = texelFetch(source_metallic, ssC << 1, 0).w;
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+
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+ // F0 is the reflectance of normally incident light (perpendicular to the surface).
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+ // Dielectric materials have a widely accepted default value of 0.04. We assume that metals reflect all light, so their F0 is 1.0.
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+ float f0 = mix(0.04, 1.0, metallic);
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+ float m = clamp(1.0 - dot(normal, -view_dir), 0.0, 1.0);
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+ float m2 = m * m;
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+ m = m2 * m2 * m; // pow(m,5)
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+ float fresnel_term = f0 + (1.0 - f0) * m; // Fresnel Schlick term.
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+
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+ // The alpha value of final_color controls the blending with specular light in specular_merge.glsl.
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+ // Note that the Fresnel term is multiplied with the RGB color instead of being a part of the alpha value.
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+ // There is a key difference:
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+ // - multiplying a term with RGB darkens the SSR light without introducing/taking away specular light.
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+ // - combining a term into the Alpha value introduces specular light at the expense of the SSR light.
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+ vec4 final_color = vec4(imageLoad(source_diffuse, ivec2(final_pos - 0.5)).rgb * fresnel_term, fade * margin_blend * roughness_fade);
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+
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+ imageStore(ssr_image, ssC, final_color);
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#ifdef MODE_ROUGH
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@@ -259,20 +284,6 @@ void main() {
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#endif // MODE_ROUGH
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- final_color = vec4(imageLoad(source_diffuse, ivec2(final_pos - 0.5)).rgb, fade * margin_blend * roughness_fade);
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-
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- // Schlick term.
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- float metallic = texelFetch(source_metallic, ssC << 1, 0).w;
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- // F0 is the reflectance of normally incident light (perpendicular to the surface).
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- // Dielectric materials have a widely accepted default value of 0.04. We assume that metals reflect all light, so their F0 is 1.0.
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- float f0 = mix(0.04, 1.0, metallic);
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- float m = clamp(1.0 - dot(normal, -view_dir), 0.0, 1.0);
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- float m2 = m * m;
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- m = m2 * m2 * m; // pow(m,5)
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- final_color.a *= f0 + (1.0 - f0) * m; // Fresnel Schlick term.
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-
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- imageStore(ssr_image, ssC, final_color);
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-
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} else {
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#ifdef MODE_ROUGH
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imageStore(blur_radius_image, ssC, vec4(0.0));
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