Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm porting a WebGL project to Three.js. In fact, I'm not very familiar with Shader and Custom Shader, that why I could not use this shader. Please help me to use this in Three.js.

<script id="shader-fs" type="x-shader/x-fragment">
    precision mediump float;
    varying vec4 color;

    void main(void) {
        gl_FragColor = vec4(color.xyz,1);
    } 
</script>

<script id="shader-vs" type="x-shader/x-vertex">        
    attribute vec4 vertex;      
    attribute vec3 normal;              
    uniform mat4 matrix;
    uniform vec3 diffuse_color;
    uniform mat3 matrixIT;
    varying vec4 color;     

    vec3 SpecularColor = vec3(1.0,1.0,1.0);
    void main(void) {
        vec3 toLight = normalize(vec3(0.0,1.0,1.0));
        vec3 normal_cal = normalize(matrixIT*normal);       
        float NDotL = max(dot(normal_cal, toLight), 0.0);
        vec3 eyeDir = vec3(1.0,1.0,1.0);
        float NDotH = 0.0;
        vec3 SpecularLight = vec3(0.0,0.0,0.0);
        if(NDotL > 0.0)
        {
            vec3 halfVector = normalize( toLight + eyeDir);
            float NDotH = max(dot(normal_cal, halfVector), 0.0);
            float specular = pow(NDotH,25.0);
            SpecularLight = specular * SpecularColor;
        }
        color = vec4((NDotL * diffuse_color.xyz) + (SpecularLight.xyz ), 0.5);
        gl_Position = matrix * vertex;
    }
</script>
share|improve this question

2 Answers 2

up vote 0 down vote accepted

This is your vertexShader:

    uniform vec3 diffuse_color;
    varying vec4 color;     

    vec3 SpecularColor = vec3(1.0,1.0,1.0);
    void main(void) {
        vec3 toLight = normalize(vec3(0.0,1.0,1.0));
        //vec3 normal_cal = normalize(matrixIT*normal);
        vec3 normal_cal = normalMatrix * normal;
        float NDotL = max(dot(normal_cal, toLight), 0.0);
        vec3 eyeDir = vec3(1.0,1.0,1.0);
        float NDotH = 0.0;
        vec3 SpecularLight = vec3(0.0,0.0,0.0);
        if(NDotL > 0.0)
        {
            vec3 halfVector = normalize( toLight + eyeDir);
            float NDotH = max(dot(normal_cal, halfVector), 0.0);
            float specular = pow(NDotH,25.0);
            SpecularLight = specular * SpecularColor;
        }
        color = vec4((NDotL * diffuse_color.xyz) + (SpecularLight.xyz ), 0.5);
        //gl_Position = matrix * vertex;
        vec4 mvPosition = modelViewMatrix * vec4( position, 1.0 );
        gl_Position = projectionMatrix * mvPosition;
    }

fragement shader can be kept the same

and this is your shadermaterial definition:

share|improve this answer

At a quick glance, it looks like that's some kind of Phong lighting shader. Since you are moving to Three.js, it might be worth trying its built-in functionalities for this. I.e. create a light (probably THREE.PointLight or THREE.DirectionalLight), add it to the scene and use THREE.MeshPhongMaterial for your objects.

share|improve this answer
    
I already use a Phong with PointLight but the result is different, that's why I want to use ShaderMaterial in this case. –  user1787866 Oct 31 '12 at 8:50
    
@user1787866 - Did it look broken or are you looking for pixel perfection with the previous solution? Did you set the specular coeff (25.0) and light position correctly and tried different light types? IMHO it might be worth experimenting a bit with those and other params before using a custom solution, as built-in shaders keep the code tidy and also have a good change to e.g. work around weird driver specific bugs since they are tested more. You could also post screenshots of before and after three.js and the new code you tried (or better yet, a demo) for error spotting. –  Tapio Oct 31 '12 at 12:46
    
Thank you Tapio. I just don't understand the shader and how it works. That's why I have to post it here to get the helps. I have tried the many kind of light but without the specular coeff. I'll try it again tomorrow when I back to work ;) –  user1787866 Oct 31 '12 at 16:07

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.