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I have two rectangles caracterized by 4 values each :

Left position X, top position Y, width W and height H:

X1, Y1, H1, W1
X2, Y2, H2, W2

Rectangles are not rotated, like so:

+--------------------> X axis
|
|    (X,Y)      (X+W, Y)
|    +--------------+
|    |              |
|    |              |
|    |              |
|    +--------------+
v    (X, Y+H)     (X+W,Y+H)

Y axis

What is the best solution to determine whether the intersection of the two rectangles is empty or not?

Thank you.

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possible duplicate of Algorithm to detect intersection of two rectangles? –  Perception Nov 15 '12 at 1:46
    
here's a start on a solution: gamedev.stackexchange.com/questions/25818/… –  Ray Tayek Nov 15 '12 at 1:48
    
@Perception in the other question ..at an arbitrary angle.. my question is simpler and thus i'm looking for a simpler answer –  Majid L Nov 15 '12 at 1:50
    
@RayTayek it sure is a start, thanks :) –  Majid L Nov 15 '12 at 1:51

4 Answers 4

up vote 30 down vote accepted
if (X1+W1<X2 or X2+W2<X1 or Y1+H1<Y2 or Y2+H2<Y1):
    Intersection = Empty
else:
    Intersection = Not Empty
share|improve this answer
    
looks simple and correct, i'll try it out, thanks :) –  Majid L Nov 15 '12 at 2:13
    
saved my day, well done –  Laszlo Boke May 13 '13 at 11:11
    
you made my day ! thanks –  Hito Dec 23 '13 at 15:12
    
Doesn't work if one rectangle is completely inside the other. –  Ankesh Anand Sep 26 at 12:43
    
@AnkeshAnand could you elaborate? When I run through this algorithm, it appears to handle the "completely inside" situation fine. –  Topher Hunt Sep 28 at 23:31

I just tried with a c program and wrote below.

#include<stdio.h>

int check(int i,int j,int i1,int j1, int a, int b,int a1,int b1){
    return (\
    (((i>a) && (i<a1)) && ((j>b)&&(j<b1))) ||\ 
    (((a>i) && (a<i1)) && ((b>j)&&(b<j1))) ||\ 
    (((i1>a) && (i1<a1)) && ((j1>b)&&(j1<b1))) ||\ 
    (((a1>i) && (a1<i1)) && ((b1>j)&&(b1<j1)))\
    );  
}
int main(){
    printf("intersection test:(0,0,100,100),(10,0,1000,1000) :is %s\n",check(0,0,100,100,10,0,1000,1000)?"intersecting":"Not intersecting");
    printf("intersection test:(0,0,100,100),(101,101,1000,1000) :is %s\n",check(0,0,100,100,101,101,1000,1000)?"intersecting":"Not intersecting");
    return 0;
}
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Best example..

/**
 * Check if two rectangles collide
 * x_1, y_1, width_1, and height_1 define the boundaries of the first rectangle
 * x_2, y_2, width_2, and height_2 define the boundaries of the second rectangle
 */
boolean rectangle_collision(float x_1, float y_1, float width_1, float height_1, float x_2, float y_2, float width_2, float height_2)
{
  return !(x_1 > x_2+width_2 || x_1+width_1 < x_2 || y_1 > y_2+height_2 || y_1+height_1 < y_2);
}

and also one other way see this link ... and code it your self..

share|improve this answer
    
thanks exactly the same as the accepted answer :) –  Majid L May 26 at 11:51

Take a look at the rectangle class boolean intersects(Rectangle r)

i.e.

if (r1.intersects(r2))...
share|improve this answer
    
there's no Rectangle object –  Majid L Nov 15 '12 at 2:12

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