I'm trying to write a vertex shader that only applies to some vertices.

In Unity, text is rendered as a series of disjointed 4-vertex polys. I'm trying to transform/rotate/scale those polys, but separately. So I can move each letter independently.

I don't think it's possible but if each vertex had an ID, I could group them 0-3, 4-7 etc. and move them that way.

Are there any tricks to modifying vertices depending on what they're attached to, or which "number" they are?

  • 1
    Please use unity3d tag for that thing. The unity tag is for Microsoft Unity. – Lex Li May 7 '13 at 9:44
  • 1
    My bad, I'd never heard of MS Unity :) I'll use unity3d in the future. – Ben Humphreys May 7 '13 at 9:52

I don't believe you can do so directly but you could use the second UV channel to store your IDs.

Here is a re-purposed Unity normal shading example using a "vertex ID" to determine when to apply the normal as a color.

Shader "Custom/ColorIdentity" {
Properties {
    //_MainTex ("Base (RGB)", 2D) = "white" {}
}
SubShader {
    Pass {  
        CGPROGRAM
            #pragma vertex vert
            #pragma fragment frag

            struct appdata {
                float4 vertex : SV_POSITION;
                float3 normal : NORMAL;
                float4 texCoord2 : TEXCOORD1;
            };
            struct v2f {
                float4 pos : SV_POSITION;
                float3 color : COLOR0;
            };

            v2f vert (appdata v)
            {
                v2f o;

                //here is where I read the vertex id, in texCoord2[0]
                //in this case I'm binning all values > 1 to id 1, else id 0
                //that way they can by multiplied against to the vertex normal
                //to turn color on and off.
                int vID = (v.texCoord2[0]>1)?1:0;   

                o.pos = mul (UNITY_MATRIX_MVP, v.vertex);
                o.color = v.normal * vID; //Use normal as color for vertices w/ ids>1
                return o;
            }

            half4 frag (v2f i) : COLOR
            {
                return half4 (i.color, 1);
            }
        ENDCG
    }
}
Fallback "Diffuse"
} 

Also, here is the dummy script I ginned up to assign completely arbitrary IDs. IDs are assigned based on a vertex's position on the y-axis. The bounds were chosen at random based on the mesh I had handy:

public class AssignIdentity : MonoBehaviour {
public GameObject LiveObject;

// Use this for initialization
void Start () {
    Mesh mesh = LiveObject.GetComponent<MeshFilter>().mesh;
    Vector3[] vertices = mesh.vertices;
    Vector2[] uv2s = new Vector2[vertices.Length];

    int i = 0;
    foreach(Vector3 v in vertices){
        if(v.y>9.0f || v.y < 4.0){
            uv2s[i++] = new Vector2(2,0); 
        } else {
            uv2s[i++] = new Vector2(1,0);
        }
    }
    mesh.uv2 = uv2s;
}
}
  • 2
    +1 for the good advice. btw if he needs to transform each letter independently from the others, couldn't he simply create a Text Mesh for each letter? – Heisenbug May 7 '13 at 20:18
  • @Heisenbug Oh fine, go the easy route. :) But yes, you make an excellent point. The simplest solution would be making each letter its own text mesh. – Jerdak May 7 '13 at 20:30
  • 1
    @Heisenbug I had thought of that, but wouldn't it break kerning? There must be a way to get at the polys underneath Text Mesh... – Ben Humphreys May 8 '13 at 8:26
  • 1
    @Ben Humphreys: good point, I didn't think about that. So for simply applying a different shader effect to each quad/letter I'd go through Jerdak's solution. But if you want "I'm trying to transform/rotate/scale those polys, but separately." then kerning would be brake anyway by your applied transformations, doesn't it? – Heisenbug May 8 '13 at 9:43
  • I was thinking of a per-letter animation. So they fly/rotate/scale&fade in, sit in the correctly-kerned position, then animate out again. – Ben Humphreys May 8 '13 at 22:59

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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