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i write a boolean that checks to see if a point is within a given distance of a filled rectangle

the rectangle is defined by its bottom left point and its width and height

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yes you can (if you define "distance" properly). what are you blocking on? what do you have so far? –  Mat Mar 30 '11 at 17:57

3 Answers 3

up vote -3 down vote accepted

My approach would be something like this. (This assumes y increases as you go up.)

BOOL IsWithinDistance(POINT pt, RECT rc, int distance)
{
    return (pt.x > (rc.left - distance) &&
        pt.x < (rc.right + rc.width + distance) &&
        pt.y > (rc.bottom - distance) &&
        pt.y < (rc.bottom + rc.height + distance));
}
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can you explain this please –  user570098 Mar 30 '11 at 18:19
    
@user570098 This code seems wrong (doesn't calculate distance from corner correctly - not euclidean distance, anyway) –  anatolyg Mar 30 '11 at 18:22
    
The code is wrong, the distance is not calculated correctly. See my answer for the proper distance calculation. As an example: If one of the bounds of your box was (0,0) and distance==5, then both (-4,0) and (-4,-4) would be considered the same distance. –  EboMike Mar 30 '11 at 18:57

To find the distance between any two points you can use this:

CGFloat distanceBetweenPoints(CGPoint pt1, CGPoint pt2)
{    
    CGFloat dx = pt2.x - pt1.x;    
    CGFloat dy = pt2.y - pt1.y;    
    return sqrt(dx*dx + dy*dy);
}

You could use this to find the distance to the center of the rectangle or to another point if you prefer.

CGFloat distanceToRect = distanceBetweenPoints( aPoint, aRect.center );
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Is this homework? Anyway. Assuming you mean proper distance, as in "distance between the closest point to the rectangle":

int IsWithinDistance(int pointX, int pointY, int rectX, int rectY, int rectWidth, int rectHeight, int distanceThreshold)
{
    int x2 = rectX + rectWidth;
    int y2 = rectY + rectHeight;
    int xDiff = (pointX < rectX) ? rectX - pointX : pointX - x2;
    int yDiff = (pointY < rectY) ? rectY - pointY : pointY - y2;
    int distance2;

    xDiff = (xDiff < 0) ? 0 : xDiff;
    yDiff = (yDiff < 0) ? 0 : yDiff;

    distance2 = xDiff * xDiff + yDiff * yDiff;

    return distance2 < (distanceThreshold * distanceThreshold);
}
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no its not homework, i mean within a distance of any given point of the rectangle –  user570098 Mar 30 '11 at 18:03
    
+1 very nice solution –  chepukha Feb 22 '12 at 19:04

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