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What's a fast way to test if 2 rectangles are intersecting?


A search on the internet came up with this one-liner (WOOT!), but I don't understand how to write it in Javascript, it seems to be written in an ancient form of C++.

struct
{
    LONG    left;
    LONG    top;
    LONG    right;
    LONG    bottom;
} RECT; 

bool IntersectRect(const RECT * r1, const RECT * r2)
{
    return ! ( r2->left > r1->right
        || r2->right left
        || r2->top > r1->bottom
        || r2->bottom top
        );
}
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4  
I think you've made a typo in your copy/paste –  fmark May 2 '10 at 3:35
    
Well, this is where its from and it looks the same to me -- tekpool.wordpress.com/2006/10/11/… –  Jarvis May 2 '10 at 3:36
3  
The original article has a typo. r2->right left doesn't make sense. It's might be broken due to HTML escaping issues. –  Marcelo Cantos May 2 '10 at 3:41
18  
I'm curious how you think the above code would be different in a "modern" form of C++. –  jamesdlin May 2 '10 at 3:58
    
I'm sure the missing characters are < symbols due to html escaping. –  chaiguy May 27 '11 at 15:42

3 Answers 3

up vote 55 down vote accepted

This is how that code can be translated to JavaScript. Note that there is a typo in your code, and in that of the article, as the comments have suggested. Specifically r2->right left should be r2->right < r1->left and r2->bottom top should be r2->bottom < r1->top for the function to work.

function intersectRect(r1, r2) {
  return !(r2.left > r1.right || 
           r2.right < r1.left || 
           r2.top > r1.bottom ||
           r2.bottom < r1.top);
}

Test case:

var rectA = {
  left:   10,
  top:    10,
  right:  30,
  bottom: 30
};

var rectB = {
  left:   20,
  top:    20,
  right:  50,
  bottom: 50
};

var rectC = {
  left:   70,
  top:    70,
  right:  90,
  bottom: 90
};

intersectRect(rectA, rectB);  // returns true
intersectRect(rectA, rectC);  // returns false
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Just to add/confirm - this is testing three boxes that are 20px x 20px, except rectB, which is 30px x 30px –  brighterdean Mar 20 '13 at 12:29
    
if r1 and r2 are identical, the intersectRect function would return false –  zumalifeguard Sep 23 '13 at 15:28
function intersect(a, b) {
  return (a.left <= b.right &&
          b.left <= a.right &&
          a.top <= b.bottom &&
          b.top <= a.bottom)
}

This assumes that the top is normally less than bottom (i.e. that y coordinates increase downwards).

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Good and working solution, but should be a bit slower since all conditions have to be evaluated. The other solution is done as soon as one of the conditions evaluates to true. –  Gigo Jan 14 '13 at 20:43
8  
This one is also done as soon as one of the conditions evaluates to false. I.e. in the exact same cases as the other one. –  DS. Jan 22 '13 at 22:06
    
+1 Correct, don't know what I was thinking. –  Gigo Jan 23 '13 at 14:19
1  
This is better as it removes the negation action. –  Discipol May 31 '13 at 8:47
2  
+1, as much neater than the accepted answer. if using half-open ranges (i.e. rectangle includes top and left but does not include bottom and right, as is common in many graphics systems), changing <= to < should work. –  Jules Aug 8 '13 at 13:08

This is how the .NET Framework implements Rectangle.Intersect

public bool IntersectsWith(Rectangle rect)
{
  if (rect.X < this.X + this.Width && this.X < rect.X + rect.Width && rect.Y < this.Y + this.Height)
    return this.Y < rect.Y + rect.Height;
  else
    return false;
}

Or the static version:

public static Rectangle Intersect(Rectangle a, Rectangle b)
{
  int x = Math.Max(a.X, b.X);
  int num1 = Math.Min(a.X + a.Width, b.X + b.Width);
  int y = Math.Max(a.Y, b.Y);
  int num2 = Math.Min(a.Y + a.Height, b.Y + b.Height);
  if (num1 >= x && num2 >= y)
    return new Rectangle(x, y, num1 - x, num2 - y);
  else
    return Rectangle.Empty;
}
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