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I am trying to understand the behavior of gl_vertexID in vertex shaders. For that I am trying to render 2 squares using two glDrawArrays calls one after another. And want to apply red color to only one square using gl_VertexID in vertex as :

out vec4 color;
in vec4 tdk_Vertex;

void main(void)
{
if(gl_VertexID < 4)
{
    color = vec4(1.0f, 0.0f, 0.0f, 1.0f);
}
else
{
    color = vec4(1.0f, 1.0f, 1.0f, 1.0f);
}
gl_Position = tdk_Vertex;
}

Passing color to fragment shaders.

Square coordinates as :

static GLfloat vertices[] =
       { -0.75f, 0.25f, 0.0f, 1.0f,
         -0.75f, 0.5f,  0.0,  1.0f,
         -0.25f, 0.5f,  0.0f, 1.0f,
         -0.25f, 0.25f, 0.0f, 1.0f,

          0.25f, 0.25f, 0.0f, 1.0f,
          0.25f, 0.5f,  0.0f, 1.0f,
          0.75f, 0.5f, 0.0f,  1.0f,
          0.75f, 0.25f, 0.0f, 1.0f};

Making draw calls as :

for(int i=0; i<8; i+=4)
{
     glDrawArrays(GL_TRIANGLE_FAN, i, 4);
 }

Using Nvidia card, and calling two glDrawArrays calls is displaying the expected result i.e rendering red color to one square and white to other.

Thus, want to know is this correct behaviour or gl_VertexID indices should generated during glDrawArrays call so that both squares have same red color?

I am using 2 glDrawArrays calls , so my understanding is that both squares should be red according to specification :

http://www.opengl.org/sdk/docs/manglsl/xhtml/gl_VertexID.xml

Want to test it for glsl 300 es.

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According to my understanding from glsl es 3.0 specification, both squares should have red color as I am calling two glDrawArrays. But the Nvidia output is confusing me. Can this be a bug in Nvidia ? –  user1896853 Feb 11 '13 at 10:52
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1 Answer

In the case of glDrawArrays, the gl_VertexID is intended to be the index of the vertex within the buffer. Your first draw call renders the indices on the range [0, 4), so those are the values that gl_VertexID will take. Your second draw call renders the indices on the range [4, 8), and those are the values that gl_VertexID will take.

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