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Can someone tell me whether my rectangle intersect code is correct?

bool checkCollide(int x, int y, int oWidth, int oHeight,
                  int x2, int y2, int o2Width, int o2Height) {

   bool collide = false;

   if (x >= x2 && x <= x2+o2Width && y >= y2 && y <= y2+o2Height)
      collide = true;

   if (x+oWidth >= x2 && x+oWidth <= x2+o2Width && y >= y2 && y <= y2+o2Height)
      collide = true;

   if (x >= x2 && x<= x2+o2Width && y+oHeight >= y2 && y+oHeight <= y2+o2Height)
      collide = true;

   if (x+oWidth >= x2 && x+oWidth <= x2+o2Width && y+oHeight >= y2 && y+oHeight <= y2+o2Height)
      collide = true;

   return collide;
}
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Does it intersect your rectangles properly? If so, yes. –  Lightness Races in Orbit May 21 '11 at 15:15
3  
Why not write some unit test code to test if it gives the right answer for different inputs? –  Jesper May 21 '11 at 15:17
    
you'd probably be better off asking this one on codereview.stackexchange.com –  rlc May 21 '11 at 15:17
    
And don't forget if you need to handle empty rectangles. –  user180326 May 21 '11 at 16:27

4 Answers 4

Following on from Magnus's answer, I'd take a slightly different approach.

As he says, if the two don't intersect then one will be completely left, completely right, etc. For performance however you can stop testing as soon as any of these conditions are found to be false, e.g.:

if (x2 + owidth2 < x) 
    return false;  // box 2 is left of box 1

if (x + owidth < x2)
    return false;  // box 1 is left of box 2

// etc...
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+1 Good point on the efficiency issue! –  ralphtheninja May 21 '11 at 16:09
    
actually short circuit evaluation of the boolean expressions in your version should produce the same effect. This is more explicit, though. –  Alnitak May 21 '11 at 17:00

First implement interval intersection (i.e. one dimension). Then you can implement rectangle intersection by first applying interval intersection to the x-coordinates and then applying interval intersection to the y-coordinates.

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Nope, a corner of a rectangle doesn't have to be in the other rectangle for the rectangles to collide. What you want to do is to find the logic when they do not intersect and use the negation of that. The picture below shows two rectangles that clearly intersect each other, but only the sides are intersecting, not the corners.

enter image description here

Just formulate the logic as follows: What does it take for the blue to not intersect the red? Well it's either completely to the right, completely to the left, up or below. Formulate an if statement to that and negate it. Let me help you with the beginning:

if (!(x2 > x+oWidth || x2+o2Width < x || ..))
      collide = true;
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checkCollide(0, 0, 3, 3, 1, 1, 1, 1) == false

I'm guessing that's not what you want.

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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  Mark Nov 14 '12 at 0:05

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