213 lines
		
	
	
		
			7.3 KiB
		
	
	
	
		
			GLSL
		
	
	
	
	
	
			
		
		
	
	
			213 lines
		
	
	
		
			7.3 KiB
		
	
	
	
		
			GLSL
		
	
	
	
	
	
/*
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MIT License
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Copyright (c) 2022 railgunSR
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Permission is hereby granted, free of charge, to any person obtaining a copy
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of this software and associated documentation files (the "Software"), to deal
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in the Software without restriction, including without limitation the rights
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to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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copies of the Software, and to permit persons to whom the Software is
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furnished to do so, subject to the following conditions:
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The above copyright notice and this permission notice shall be included in all
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copies or substantial portions of the Software.
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THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
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SOFTWARE.
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*/
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/*
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THIS MAKES USE OF OPENSIMPLEX2, A NOISE ALGORITHM CREATED BY THE FINE FOLKS 
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OVER AT https://github.com/KdotJPG/OpenSimplex2
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PLEASE GIVE THEM SOME LOVE.
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THE FLAME FUNCTION IS ONE CREATED BY ME BLENDING A LOG2 INTO A EXPONENTIAL.
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*/
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#version 330 core
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out vec4 fragColor;
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uniform float time;
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in vec3 FragPos;
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in vec3 Normal;
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in vec2 TexCoord;
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vec4 openSimplex2_ImproveXY(vec3 X);
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float flameTex(float x, float y);
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void main(){
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    float timeS = time * 0.003;
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    // Normalized pixel coordinates (from 0 to 1)
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    vec2 uv = vec2(TexCoord.x,1-TexCoord.y);
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    // vec4 openVec = openSimplex2_ImproveXY(vec3(uv.x,uv.y,time));
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    vec4 openVec = openSimplex2_ImproveXY(vec3(uv.x*3.0,uv.y*3.0 - timeS,0.0));
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    float nS = 3.0; //noise scale
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    //compose textures
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    float flameXScale = 2.0;
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    float flameYScale = 2.0;
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    float flameVal = flameTex(uv.x*flameXScale-1.0/flameXScale,uv.y*flameYScale-1.0/flameYScale);
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    float flameComp1 = flameVal * openSimplex2_ImproveXY(vec3(uv.x * nS              ,uv.y * nS - timeS * 1.0,0.0)).x;
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    nS = 3.0;
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    float flameComp2 = flameVal * openSimplex2_ImproveXY(vec3(uv.x * nS              ,uv.y * nS - timeS * 2.0,0.0)).x;
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    nS = 5.0;
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    float flameComp3 = flameVal * openSimplex2_ImproveXY(vec3(uv.x * nS + timeS * 1.0,uv.y * nS - timeS * 3.0,0.0)).x;
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    float flameComp4 = flameVal * openSimplex2_ImproveXY(vec3(uv.x * nS - timeS * 1.0,uv.y * nS - timeS * 3.0,0.0)).x;
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    nS = 3.0;
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    float flameComp5 = flameVal * openSimplex2_ImproveXY(vec3(uv.x * nS              ,uv.y * nS - timeS * 1.5,0.0)).x;
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    float val = 
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    flameVal * 3.0 +
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    flameComp1 * 0.2 +
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    flameComp2 * 0.2 +
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    flameComp3 * 0.2 +
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    flameComp4 * 0.2 +
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    flameComp5 * 0.2
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    ;
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    vec4 color = vec4(
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        min(val*2.0,1.0),
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        min(val*0.8,1.0),
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        min(val*0.2,1.0),
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        min(val,1.0)
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        );
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    if(val < 0.3){
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        discard;
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    }
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    // Output to screen
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    fragColor = color;
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}
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//
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//custom flame function
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///
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float flameTex(float x, float y){
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    //flip y
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    float t = 1.0 - y;
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    //calculate vertical component
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    float verticalFlameValue = pow(log(t+1.0),1.4) - step(0.5,t) * (pow((2.0 * (t - 0.5)),3.0) / pow(log(2.0),1.4));
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    //calculate dist along horizontal from vertical component
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    float dist = abs(x-0.5);
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    //want to fade to nothing at dist >= vertical flame value
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    //use exponent to get there
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    //clamp range with min
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    float v = max(2.0 * (verticalFlameValue - dist),0.0);
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    //apply exponent to get value
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    float rVal = pow(v,1.4);
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    return rVal;
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}
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//////////////// K.jpg's Re-oriented 4-Point BCC Noise (OpenSimplex2) ////////////////
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////////////////////// Output: vec4(dF/dx, dF/dy, dF/dz, value) //////////////////////
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// Inspired by Stefan Gustavson's noise
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vec4 permute(vec4 t) {
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    return t * (t * 34.0 + 133.0);
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}
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// Gradient set is a normalized expanded rhombic dodecahedron
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vec3 grad(float hash) {
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    // Random vertex of a cube, +/- 1 each
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    vec3 cube = mod(floor(hash / vec3(1.0, 2.0, 4.0)), 2.0) * 2.0 - 1.0;
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    // Random edge of the three edges connected to that vertex
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    // Also a cuboctahedral vertex
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    // And corresponds to the face of its dual, the rhombic dodecahedron
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    vec3 cuboct = cube;
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    cuboct[int(hash / 16.0)] = 0.0;
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    // In a funky way, pick one of the four points on the rhombic face
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    float type = mod(floor(hash / 8.0), 2.0);
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    vec3 rhomb = (1.0 - type) * cube + type * (cuboct + cross(cube, cuboct));
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    // Expand it so that the new edges are the same length
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    // as the existing ones
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    vec3 grad = cuboct * 1.22474487139 + rhomb;
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    // To make all gradients the same length, we only need to shorten the
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    // second type of vector. We also put in the whole noise scale constant.
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    // The compiler should reduce it into the existing floats. I think.
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    grad *= (1.0 - 0.042942436724648037 * type) * 32.80201376986577;
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    return grad;
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}
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// BCC lattice split up into 2 cube lattices
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vec4 openSimplex2Base(vec3 X) {
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    // First half-lattice, closest edge
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    vec3 v1 = round(X);
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    vec3 d1 = X - v1;
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    vec3 score1 = abs(d1);
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    vec3 dir1 = step(max(score1.yzx, score1.zxy), score1);
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    vec3 v2 = v1 + dir1 * sign(d1);
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    vec3 d2 = X - v2;
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    // Second half-lattice, closest edge
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    vec3 X2 = X + 144.5;
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    vec3 v3 = round(X2);
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    vec3 d3 = X2 - v3;
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    vec3 score2 = abs(d3);
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    vec3 dir2 = step(max(score2.yzx, score2.zxy), score2);
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    vec3 v4 = v3 + dir2 * sign(d3);
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    vec3 d4 = X2 - v4;
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    // Gradient hashes for the four points, two from each half-lattice
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    vec4 hashes = permute(mod(vec4(v1.x, v2.x, v3.x, v4.x), 289.0));
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    hashes = permute(mod(hashes + vec4(v1.y, v2.y, v3.y, v4.y), 289.0));
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    hashes = mod(permute(mod(hashes + vec4(v1.z, v2.z, v3.z, v4.z), 289.0)), 48.0);
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    // Gradient extrapolations & kernel function
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    vec4 a = max(0.5 - vec4(dot(d1, d1), dot(d2, d2), dot(d3, d3), dot(d4, d4)), 0.0);
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    vec4 aa = a * a; vec4 aaaa = aa * aa;
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    vec3 g1 = grad(hashes.x); vec3 g2 = grad(hashes.y);
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    vec3 g3 = grad(hashes.z); vec3 g4 = grad(hashes.w);
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    vec4 extrapolations = vec4(dot(d1, g1), dot(d2, g2), dot(d3, g3), dot(d4, g4));
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    // Derivatives of the noise
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    vec3 derivative = -8.0 * mat4x3(d1, d2, d3, d4) * (aa * a * extrapolations)
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        + mat4x3(g1, g2, g3, g4) * aaaa;
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    // Return it all as a vec4
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    return vec4(derivative, dot(aaaa, extrapolations));
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}
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// Use this if you don't want Z to look different from X and Y
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vec4 openSimplex2_Conventional(vec3 X) {
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    // Rotate around the main diagonal. Not a skew transform.
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    vec4 result = openSimplex2Base(dot(X, vec3(2.0/3.0)) - X);
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    return vec4(dot(result.xyz, vec3(2.0/3.0)) - result.xyz, result.w);
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}
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// Use this if you want to show X and Y in a plane, then use Z for time, vertical, etc.
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vec4 openSimplex2_ImproveXY(vec3 X) {
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    // Rotate so Z points down the main diagonal. Not a skew transform.
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    mat3 orthonormalMap = mat3(
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        0.788675134594813, -0.211324865405187, -0.577350269189626,
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        -0.211324865405187, 0.788675134594813, -0.577350269189626,
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        0.577350269189626, 0.577350269189626, 0.577350269189626);
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    vec4 result = openSimplex2Base(orthonormalMap * X);
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    return vec4(result.xyz * orthonormalMap, result.w);
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}
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//////////////////////////////// End noise code //////////////////////////////// |