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Given a cartesian position, how can you map the angle from the origin into the range 0 .. 1?

I have tried:

sweep = atan(pos.y,pos.x) + PI) / (2.*PI);

(where sweep should be between 0 and 1)

This is GLSL, so the atan function is happy with two parameters (y then x) and returns -PI ... PI

This gives 1 in the top-left quadrant, a nice gradient in the top-right going round to the bottom right quadrant and then 0 in the bottom left quadrant:

A badly mapped atan

How do I get a nice single gradient sweep instead? I want the maximum sweep somewhere, and the minimum adjacent to it anti-clockwise.

Here's my GLSL shader code:

Vertex shader:

uniform mat4 MVP_MATRIX;
attribute vec2 VERTEX;
varying vec2 pos;
void main() {
    gl_Position = MVP_MATRIX * vec4(VERTEX,-2,1.);
    pos = gl_Position.xy;
}

Fragment shader:

uniform vec4 COLOUR;
varying vec2 pos;
void main() {
    float PI = 3.14159265358979323846264;
    float sweep = (atan(pos.y,pos.x) + PI) / (2.*PI);
    gl_FragColor = vec4(COLOUR.rgb * sweep,COLOUR.a);
}
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Sorry, I don't understand what it is you want. There's a discontinuity in all trig functions, because the functions are periodic. Are you objecting to the saturated green next to the black? –  duffymo May 16 '12 at 13:24
    
@duffymo yes, have clarified that in the question –  Will May 16 '12 at 13:29

2 Answers 2

up vote 5 down vote accepted

Most programming languages have a two-parameter version of atan, often called atan2 This will usually give a result in the range (-PI, PI]. To convert that to the values 0-1 you can use:

(atan2(y,x) + PI) / (2*PI)

Since your language's atan function takes two arguments, it probably does the same thing as atan2.

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You appear to be using atan2, which returns an angle in (-pi, pi). Make it into:

atan2(pos.y,pos.x) + PI) / (2*PI)
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