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I have the following:

bool AreNear(Point Old, Point Current)
{
    int x1 = Convert.ToInt32(Old.X);
    int x2 = Convert.ToInt32(Current.X);
    int y1 = Convert.ToInt32(Old.Y);
    int y2 = Convert.ToInt32(Current.Y);
    if (x1 == x2) {
        if (y1 == y2) {
            return true;
        }
    }
    return false;
}

I want to return true in the function if the current point is in 25 pixels radius of the old point. Can anyone tell me how to do that?

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1  
PS: I would use a more descriptive name for the function, for example, AreNear. Otherwise the meaning of the statement if (ComparePoints(old, current)) cannot be deduced without looking into the subroutine itself. –  Heinzi Oct 23 '12 at 14:17
    
What type are X and Y ? String ? –  Henk Holterman Oct 23 '12 at 14:30

4 Answers 4

up vote 11 down vote accepted

You can use the Pythagorean formula to calculate the distance between two points. In C#:

var d = Math.Sqrt(Math.Pow(x1 - x2, 2) + Math.Pow(y1 - y2, 2)) 

Why does this work? Have a look at the following diagram and remember that a^2 + b^2 = c^2 holds for right triangles:

Pythagoras

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Just calculate the square of the distance using Pythagoras' theorem, and compare to the square of the radius:

bool ComparePoints(Point Old, Point Current)
{
    int x1 = Convert.ToInt32(Old.X);
    int x2 = Convert.ToInt32(Current.X);
    int y1 = Convert.ToInt32(Old.Y);
    int y2 = Convert.ToInt32(Current.Y);
    int dx = x1 - x2;
    int dy = y1 - y2;
    return (dx*dx + dy*dy) < 25*25;
}
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+1 for avoiding those slooow square roots when they aren't necessary. –  MarkJ Oct 23 '12 at 19:47

You can use Math.Abs to get the distance:

public static bool InDistance(Point Old, Point Current, int distance)
{
    int diffX = Math.Abs(Old.X - Current.X);
    int diffY = Math.Abs(Old.Y - Current.Y);
    return diffX <= distance && diffY <= distance;
}

use it:

bool arePointsInDistance = InDistance(new Point(100, 120), new Point(120, 99), 25);
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1  
This checks whether the new point is within a 25 pixel square of the old point (i.e., it uses the maximum metric). –  Heinzi Oct 23 '12 at 14:13
    
Nice alternative choice of metric :) –  Rawling Oct 23 '12 at 14:13

Try using the distance formula http://www.purplemath.com/modules/distform.htm and compare the distance <=25

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