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I'm having a bit of a mind blank on this at the moment. I've got a problem where I need to calculate the position of points around a central point (assuming they're all equidistant from the center and from each other). The number of points is variable so it's "DrawCirclePoints(int x)" I'm sure there's a simple solution, but for the life of me, I just can't see it :)

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Everyone gave great answers, crazy quick, so I gave the tick to the first response :) They were all great :) –  JoeBrown Mar 14 '11 at 16:03
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6 Answers

up vote 20 down vote accepted

A point at angle theta on the circle whose centre is (x0,y0) and whose radius is r is (x0 + r cos theta, y0 + r sin theta). Now choose theta values evenly spaced between 0 and 2pi.

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Given a radius length r and an angle t in radians and a circle's center (h,k), you can calculate the coordinates of a point on the circumference as follows (this is pseudo-code, you'll have to adapt it to your language):

float x = r*cos(t) + h;
float y = r*sin(t) + k;
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Here's a solution using C#:

void DrawCirclePoints(int points, double radius, Point center)
{
    double slice = 2 * Math.PI / points;
    for (int i = 0; i < points; i++)
    {
        double angle = slice * i;
        int newX = (int)(center.X + radius * Math.Cos(angle));
        int newY = (int)(center.Y + radius * Math.Sin(angle));
        Point p = new Point(newX, newY);
        Console.WriteLine(p);
    }
}

Sample output from DrawCirclePoints(8, 10, new Point(0,0));:

{X=10,Y=0}
{X=7,Y=7}
{X=0,Y=10}
{X=-7,Y=7}
{X=-10,Y=0}
{X=-7,Y=-7}
{X=0,Y=-10}
{X=7,Y=-7}

Good luck!

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Excellent! Worked great for me, I already translated it to php-cairo and works great! –  Melsi Mar 5 '13 at 13:56
    
Awesome......... –  Thorin Oakenshield May 10 '13 at 8:18
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The angle between each of your points is going to be 2Pi/x so you can say that for points n= 0 to x-1 the angle from a defined 0 point is 2nPi/x.

Assuming your first point is at (r,0) (where r is the distance from the centre point) then the positions relative to the central point will be:

rCos(2nPi/x),rSin(2nPi/x)
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PHP Solution:

    class point{
private $x = 0;
private $y = 0;
public function setX($xpos){
    $this->x = $xpos;
}
public function setY($ypos){
    $this->y = $ypos;
}
public function getX(){
    return $this->x;
}
public function getY(){
    return $this->y;
}
public function printX(){
    echo $this->x;
}
public function printY(){
    echo $this->y;
}

}

    function drawCirclePoints($points, $radius, &$center){
$pointarray = array();
$slice = (2*pi())/$points;
for($i=0;$i<$points;$i++){
    $angle = $slice*$i;
    $newx = (int)(($center->getX() + $radius) * cos($angle));
    $newy = (int)(($center->getY() + $radius) * sin($angle));
    $point = new point();
    $point->setX($newx);
    $point->setY($newy);
    array_push($pointarray,$point);
}
return $pointarray;

}

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For the sake of completion, what you describe as "position of points around a central point(assuming they're all equidistant from the center)" is nothing but "Polar Coordinates". And you are asking for way to Convert between polar and Cartesian coordinates which is given as x = r*con(t), y = r*sin(t).

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