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I have found the solution but wanted to ensure my logic is the most efficient. I feel that there is a better way. I have the (x,y) coordinate of the bottom left corner, height and width of 2 rectangles, and i need to return a third rectangle that is their intersection. I do not want to post the code as i feel it is cheating.

  1. I figure out which is furthest left and highest on the graph.
  2. I check if one completely overlaps the other, and reverse to see if the other completely overlaps the first on the X axis.
  3. I check for partial intersection on the X axis.
  4. I basically repeat steps 2 and 3 for the Y axis.
  5. I do some math and get the points of the rectangle based on those conditions.

I may be over thinking this and writing inefficient code. I already turned in a working program but would like to find the best way for my own knowledge. If someone could either agree or point me in the right direction, that would be great!

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I don't know if this would help, but it deals with determining the collesion point of a moving object ... example –  MadProgrammer Jan 31 '13 at 1:11
    
Definitely appreciated! I thought it might have to do with that. I couldn't find anything on the internet that reduced it down to my specific example. Hopefully what i did was close enough to efficient. Thank you! –  Doug B Jan 31 '13 at 1:16

2 Answers 2

up vote 6 down vote accepted

Why not use JDK API to do this for you?

Rectangle rect1 = new Rectangle(100, 100, 200, 240);
Rectangle rect2 = new Rectangle(120, 80, 80, 120);
Rectangle intersection = rect1.intersection(rect2);

To use java.awt.Rectangle class, the parameters of the constructor are: x, y, width, height, in which x, y are the top-left corner of the rectangle. You can easily convert the bottom-left point to top-left.


I recommend the above, but if you really want to do it yourself, you can follow the steps below:

say (x1, y1), (x2, y2) are bottom-left and bottom-right corners of Rect1 respectively, (x3, y3), (x4, y4) are those of Rect2.

  • find the larger one of x1, x3 and the smaller one of x2, x4, say xL, xR respectively
    • if xL >= xR, then return no intersection else
  • find the larger one of y1, y3 and the smaller one of y2, y4, say yT, yB respectively
    • if yT >= yB, then return no intersection else
    • return (xL, yB, xR-xL, yB-yT).

A more Java-like pseudo code:

// Two rectangles, assume the class name is `Rect`
Rect r1 = new Rect(x1, y2, w1, h1);
Rect r2 = new Rect(x3, y4, w2, h2);

// get the coordinates of other points needed later:
int x2 = x1 + w1;
int x4 = x3 + w2;
int y1 = y2 - h1;
int y3 = y4 - h2;

// find intersection:
int xL = Math.max(x1, x3);
int xR = Math.min(x2, x4);
if (xR <= xL)
    return null;
else {
    int yT = Math.max(y1, y3);
    int yB = Math.min(y2, y4);
    if (yB <= yT)
        return null;
    else
        return new Rect(xL, yB, xR-xL, yB-yT);
}

As you see, if your rectangle was originally defined by two diagonal corners, it will be easier, you only need to do the // find intersection part.

share|improve this answer
    
I had to do this for an assignment otherwise i would just use the jdk api. Thats similar to the idea I had, but done much better and simpler. Thank you for the input! –  Doug B Jan 31 '13 at 4:42
    
This pseudo-code is incorrect. –  William Morrison Jan 24 at 21:49
    
I think both int xR = Math.max(x2, x4) and int yB = Math.max(y2, y4) should be changed to Math.min(...) –  user800183 Jan 25 at 6:06
    
@WilliamMorrison, Sorry guys, the original pseudo code was incompatible with the inline steps, I have corrected it. –  shuangwhywhy Jan 26 at 3:26
    
@user800183, Sorry guys, the original pseudo code was incompatible with the inline steps, I have corrected it. –  shuangwhywhy Jan 26 at 3:26

The accepted answer is incorrect. Here's my version, which is correct.

Do not use the accepted answer.

//returns true when intersection is found, false otherwise.
//when returning true, rectangle 'out' holds the intersection of r1 and r2.
private static boolean intersection2(Rectangle r1, Rectangle r2,
        Rectangle out) {
    float xmin = Math.max(r1.x, r2.x);
    float xmax1 = r1.x + r1.width;
    float xmax2 = r2.x + r2.width;
    float xmax = Math.min(xmax1, xmax2);
    if (xmax > xmin) {
        float ymin = Math.max(r1.y, r2.y);
        float ymax1 = r1.y + r1.height;
        float ymax2 = r2.y + r2.height;
        float ymax = Math.min(ymax1, ymax2);
        if (ymax > ymin) {
            out.x = xmin;
            out.y = ymin;
            out.width = xmax - xmin;
            out.height = ymax - ymin;
            return true;
        }
    }
    return false;
}
share|improve this answer
    
@rob read more carefully. out contains the intersection, if it exists. There's even documentation explaining that... Also, its more readable as the variables are named more clearly. Let me know if I can clear anything else up for you. –  William Morrison Feb 27 at 16:25
    
Bah! Just saw the out parameter so it is right if you want to make a nominal change I'll remove the down vote. I still say it's not that readable (remember, your own code is always readable, that doesn't mean someone else can read it) but that's a border line religious argument and this is math we are talking about. –  rjzii Feb 27 at 22:05
    
That's definitely true. I've edited my answer to remove comments on readability @rob –  William Morrison Feb 28 at 1:43
    
Cool, the reason that this one is correct over the accepted answer still isn't obvious though, you might want to elaborate on that as well. –  rjzii Feb 28 at 4:21

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