Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to check collisions between two arrays, one of moving rectangles and the other of stationery boundaries (trying to get the rectangles to bounce off the walls).

The problem is that I wrote a nested for loop that seems to work for 2 out of 4 boundaries. Is my loop not reaching all possible combinations?

Here is my loop:

for(int n=0;n<_f;n++){
   for(int m=0;m<_b;m++){
       if(farr[n].inter(barr[m]))
           farr[n].setD();
   }
}

_f counts the moving rectangles (starts at 0 and increases after each one is added) and _b counts the boundaries. The inter() is a method I am using to detect collisions and it has worked in all other parts of my program.

Any help would be greatly appreciated, Thanks in advace!!!

public boolean inter(Rect rect){
    if(Rect.intersects(rect, rec))
        return true;
    else
        return false;
}

The setD() method:

public void setD(){
    if(_d==0)
        _d=2;
    if(_d==1)
        _d=3;
    if(_d==2)
        _d=0;
    if(_d==3)
        _d=1;
    }

The move method where _d is used:

public void moveF(){
    if(_d==0){_l+=_s;_r+=_s;}
    if(_d==1){_t+=_s;_b+=_s;}
    if(_d==2){_l-=_s;_r-=_s;}
    if(_d==3){_t-=_s;_b-=_s;}
}

_l is left side, _t is top, _r is right, and _b is bottom, and _s is how many pixels it moves per iteration(set to 1 in all cases)

share|improve this question
    
Any chance your objects are penetrating the walls in between evaluations? –  Chris Stratton May 25 '11 at 3:09
    
I don't think so, I am testing them at slow speeds and there are probably at least 10 iterations before it passes through the wall –  Brian May 25 '11 at 3:12
    
Is another thread modifying the arrays while you are looping? –  Ted Hopp May 25 '11 at 3:13
    
Which two boundaries does it work for? Ones in the same axis perchance? Or maybe ones not passing through the origin? If you cut down to one object, do you still see the problem? If so you could start it near the problem wall, and press a key to activate each timestep, while watching log output –  Chris Stratton May 25 '11 at 3:14
    
The method that executes the loop later tells the moving rectangles to move. The boundaries are all rectangles of different dimensions, but the working ones are covering the entire left side of the screen and the entire top side of the screen. –  Brian May 25 '11 at 3:22

1 Answer 1

up vote 0 down vote accepted

Assuming _f, _b, farr, and barr do not change during the execution of the loop, your loop checks all combinations exactly once. So how is it that you "check some collisions twice"? Does setD() do something sneaky? Do you mean that once a rectangle collides there is no need to check more boundaries? If so, that can be fixed with a simple break statement. Otherwise, there likely is a problem with your inter() method, independent as to whether or not it appears to work elsewhere. Can you post your inter implementation?

There is a possibility of another problem, that of assuming continuous properties in a discrete space. As my amazing ascii art (titled: ball and wall) skills demonstrate...

Frame 1:

o__|_

Frame 2:

_o_|_

Frame 3:

__o|_

Frame 4:

___|o

Notice that the ball passed through the wall! In no frame did the ball intersect the wall. This happens if your distance moved per frame can be roughly the same or larger than the characteristic size of your moving object. This is difficult to check for with a simple intersection check. You actually need to check the path that the ball occupied between frames.

If your rectangles and barriers are oriented without rotation, this is still a fairly easy check. Use the bounding rectangle of the moving rectangle between the two frames and intersect that with the barriers.

Other ideas:

  1. You are double colliding, switching the direction twice.

  2. Your rectangles are in two different coordinate spaces.

  3. Some other thread is screwing with your rects.

But basically, your code looks good. How many rectangles do you have? Can you make them distinct colors? Then, in your loop, when you collide, call setD and output the color of the rectangle that collided, and where it was. Then, when you notice a problem, kill the code and look at the output. If you see two collisions in a row (causing the rect to switch directions twice), you'll have caught your bug. Outputting the coordinates might also help, on the off chance that you are in two different coordinate spaces.

If it's a threading issue, then it's time to brush up on critical sections.

Found your mistake:

public void setD(){
    if(_d==0)
        _d=2;
    if(_d==1)
        _d=3;
    if(_d==2)
        _d=0;
    if(_d==3)
        _d=1;
    }

Each of these needs to be else if, otherwise you update 0 to become 2 and then 2 to become 0 in the same call.

share|improve this answer
    
The setD() method just changes the direction the rectangle is moving. Also the rectangles are moving very slowly and I see them inside the boundary for multiple iterations. I also believe that at first I check rectangle1 if it collides with boundary1, and later check if boundary1 collides with rectangle1 –  Brian May 25 '11 at 3:27
    
@Brian: if farr is the rectangles and barr is the barriers, then you only check the collision once, when n=1 and m=1. That happens once in the life of the outer loop. If you also had a barr[n].inter(farr[m]) check, then you would be double-checking. However, depending on your implementation of inter(), you may need to do this check. This is why I asked if you would post the code. –  ccoakley May 25 '11 at 3:31
    
I added the inter() method to the original post, it just allows me to use the intersects() method in a class that isn't a rectangle –  Brian May 25 '11 at 3:34
    
I assume that rec is a member field of type Rect? Not your problem, but tip: shorten method body to return Rect.intersects(rect, rec); I will examine this more closely in a bit. –  ccoakley May 25 '11 at 3:37
    
it seems that it only works when the rectangle is approaching the boundaries from below or from the right =/ I'm so lost, the error is probably somewhere else in the code. –  Brian May 25 '11 at 3:38

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.